mirror of
https://github.com/slackhq/nebula.git
synced 2026-08-15 18:27:00 +02:00
Compare commits
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| 4485c47641 |
@@ -25,9 +25,9 @@ inputs:
|
||||
required: false
|
||||
default: "code-signer"
|
||||
key-prefix:
|
||||
description: "S3 key prefix the caller is authorized to write under"
|
||||
description: "S3 key prefix to write under; defaults to code-signing/<owner>/<repo> of the calling repo"
|
||||
required: false
|
||||
default: "code-signing/slackhq/nebula"
|
||||
default: ""
|
||||
|
||||
runs:
|
||||
using: composite
|
||||
@@ -57,6 +57,9 @@ runs:
|
||||
KEY_PREFIX: ${{ inputs.key-prefix }}
|
||||
run: |
|
||||
set -eu
|
||||
# Default the prefix to this repo so the S3 key attributes the sign correctly.
|
||||
# nebula-nightly runs this same action but writes under its own repo's prefix.
|
||||
KEY_PREFIX="${KEY_PREFIX:-code-signing/$GITHUB_REPOSITORY}"
|
||||
RUN="${GITHUB_RUN_ID}-${GITHUB_RUN_ATTEMPT}"
|
||||
|
||||
find "$SIGN_PATH" -name '*.exe' -print | while read -r path
|
||||
|
||||
@@ -1,34 +0,0 @@
|
||||
name: gofmt
|
||||
on:
|
||||
push:
|
||||
branches:
|
||||
- master
|
||||
pull_request:
|
||||
paths:
|
||||
- '.github/workflows/gofmt.yml'
|
||||
- '**.go'
|
||||
jobs:
|
||||
|
||||
gofmt:
|
||||
name: Run gofmt
|
||||
runs-on: ubuntu-latest
|
||||
steps:
|
||||
|
||||
- uses: actions/checkout@v6
|
||||
|
||||
- uses: actions/setup-go@v6
|
||||
with:
|
||||
go-version: '1.25'
|
||||
check-latest: true
|
||||
|
||||
- name: Install goimports
|
||||
run: |
|
||||
go install golang.org/x/tools/cmd/goimports@latest
|
||||
|
||||
- name: gofmt
|
||||
run: |
|
||||
if [ "$(find . -iname '*.go' | grep -v '\.pb\.go$' | xargs goimports -l)" ]
|
||||
then
|
||||
find . -iname '*.go' | grep -v '\.pb\.go$' | xargs goimports -d
|
||||
exit 1
|
||||
fi
|
||||
@@ -10,11 +10,11 @@ jobs:
|
||||
name: Build Linux/BSD All
|
||||
runs-on: ubuntu-latest
|
||||
steps:
|
||||
- uses: actions/checkout@v6
|
||||
- uses: actions/checkout@v7
|
||||
|
||||
- uses: actions/setup-go@v6
|
||||
- uses: actions/setup-go@v7
|
||||
with:
|
||||
go-version: '1.25'
|
||||
go-version: '1.26'
|
||||
check-latest: true
|
||||
|
||||
- name: Build
|
||||
@@ -36,11 +36,11 @@ jobs:
|
||||
id-token: write
|
||||
contents: read
|
||||
steps:
|
||||
- uses: actions/checkout@v6
|
||||
- uses: actions/checkout@v7
|
||||
|
||||
- uses: actions/setup-go@v6
|
||||
- uses: actions/setup-go@v7
|
||||
with:
|
||||
go-version: '1.25'
|
||||
go-version: '1.26'
|
||||
check-latest: true
|
||||
|
||||
- name: Build
|
||||
@@ -76,11 +76,11 @@ jobs:
|
||||
HAS_SIGNING_CREDS: ${{ secrets.AC_USERNAME != '' }}
|
||||
runs-on: macos-latest
|
||||
steps:
|
||||
- uses: actions/checkout@v6
|
||||
- uses: actions/checkout@v7
|
||||
|
||||
- uses: actions/setup-go@v6
|
||||
- uses: actions/setup-go@v7
|
||||
with:
|
||||
go-version: '1.25'
|
||||
go-version: '1.26'
|
||||
check-latest: true
|
||||
|
||||
- name: Import certificates
|
||||
@@ -134,7 +134,7 @@ jobs:
|
||||
# be overwritten
|
||||
- name: Checkout code
|
||||
if: ${{ env.HAS_DOCKER_CREDS == 'true' }}
|
||||
uses: actions/checkout@v6
|
||||
uses: actions/checkout@v7
|
||||
|
||||
- name: Download artifacts
|
||||
if: ${{ env.HAS_DOCKER_CREDS == 'true' }}
|
||||
@@ -163,14 +163,17 @@ jobs:
|
||||
mkdir -p build/linux-{amd64,arm64}
|
||||
tar -zxvf artifacts/nebula-linux-amd64.tar.gz -C build/linux-amd64/
|
||||
tar -zxvf artifacts/nebula-linux-arm64.tar.gz -C build/linux-arm64/
|
||||
docker buildx build . --push -f docker/Dockerfile --platform linux/amd64,linux/arm64 --tag "${DOCKER_IMAGE_REPO}:${DOCKER_IMAGE_TAG}" --tag "${DOCKER_IMAGE_REPO}:${GITHUB_REF#refs/tags/v}"
|
||||
docker buildx build . --push -f docker/Dockerfile --platform linux/amd64,linux/arm64 \
|
||||
--build-arg VERSION="${GITHUB_REF#refs/tags/v}" \
|
||||
--build-arg REVISION="${GITHUB_SHA}" \
|
||||
--tag "${DOCKER_IMAGE_REPO}:${DOCKER_IMAGE_TAG}" --tag "${DOCKER_IMAGE_REPO}:${GITHUB_REF#refs/tags/v}"
|
||||
|
||||
release:
|
||||
name: Create and Upload Release
|
||||
needs: [build-linux, build-darwin, build-windows]
|
||||
runs-on: ubuntu-latest
|
||||
steps:
|
||||
- uses: actions/checkout@v6
|
||||
- uses: actions/checkout@v7
|
||||
|
||||
- name: Download artifacts
|
||||
uses: actions/download-artifact@v8
|
||||
|
||||
@@ -30,11 +30,11 @@ jobs:
|
||||
VAGRANT_DEFAULT_PROVIDER: libvirt
|
||||
steps:
|
||||
|
||||
- uses: actions/checkout@v6
|
||||
- uses: actions/checkout@v7
|
||||
|
||||
- uses: actions/setup-go@v6
|
||||
- uses: actions/setup-go@v7
|
||||
with:
|
||||
go-version: '1.25'
|
||||
go-version: '1.26'
|
||||
check-latest: true
|
||||
|
||||
- name: add hashicorp source
|
||||
@@ -62,11 +62,11 @@ jobs:
|
||||
VAGRANT_DEFAULT_PROVIDER: virtualbox
|
||||
steps:
|
||||
|
||||
- uses: actions/checkout@v6
|
||||
- uses: actions/checkout@v7
|
||||
|
||||
- uses: actions/setup-go@v6
|
||||
- uses: actions/setup-go@v7
|
||||
with:
|
||||
go-version: '1.25'
|
||||
go-version: '1.26'
|
||||
check-latest: true
|
||||
|
||||
- name: add hashicorp source
|
||||
@@ -88,11 +88,11 @@ jobs:
|
||||
runs-on: windows-latest
|
||||
steps:
|
||||
|
||||
- uses: actions/checkout@v6
|
||||
- uses: actions/checkout@v7
|
||||
|
||||
- uses: actions/setup-go@v6
|
||||
- uses: actions/setup-go@v7
|
||||
with:
|
||||
go-version: '1.25'
|
||||
go-version: '1.26'
|
||||
check-latest: true
|
||||
|
||||
# WSL2 + Ubuntu so the smoke can run a real linux peer with its own
|
||||
|
||||
+13
-25
@@ -18,38 +18,26 @@ jobs:
|
||||
runs-on: ubuntu-latest
|
||||
steps:
|
||||
|
||||
- uses: actions/checkout@v6
|
||||
- uses: actions/checkout@v7
|
||||
|
||||
- uses: actions/setup-go@v6
|
||||
- uses: actions/setup-go@v7
|
||||
with:
|
||||
go-version: '1.25'
|
||||
go-version: '1.26'
|
||||
check-latest: true
|
||||
|
||||
- name: build
|
||||
run: make bin-docker CGO_ENABLED=1 BUILD_ARGS=-race
|
||||
- name: Smoke Docker
|
||||
run: make smoke-docker
|
||||
|
||||
- name: setup docker image
|
||||
working-directory: ./.github/workflows/smoke
|
||||
run: ./build.sh
|
||||
- name: Smoke Docker IPv6 overlay
|
||||
run: make smoke-docker-ipv6
|
||||
|
||||
- name: run smoke
|
||||
working-directory: ./.github/workflows/smoke
|
||||
run: ./smoke.sh
|
||||
- name: Smoke Relay Docker
|
||||
run: make smoke-relay-docker
|
||||
|
||||
- name: setup relay docker image
|
||||
working-directory: ./.github/workflows/smoke
|
||||
run: ./build-relay.sh
|
||||
- name: Smoke Docker boringcrypto
|
||||
run: make boringcrypto smoke-docker
|
||||
|
||||
- name: run smoke relay
|
||||
working-directory: ./.github/workflows/smoke
|
||||
run: ./smoke-relay.sh
|
||||
|
||||
- name: setup docker image for P256
|
||||
working-directory: ./.github/workflows/smoke
|
||||
run: NAME="smoke-p256" CURVE=P256 ./build.sh
|
||||
|
||||
- name: run smoke-p256
|
||||
working-directory: ./.github/workflows/smoke
|
||||
run: NAME="smoke-p256" ./smoke.sh
|
||||
- name: Smoke Docker fips140
|
||||
run: make fips140-all GOALS=smoke-docker
|
||||
|
||||
timeout-minutes: 10
|
||||
|
||||
@@ -5,6 +5,19 @@ set -e -x
|
||||
rm -rf ./build
|
||||
mkdir ./build
|
||||
|
||||
if [ "$SMOKE_OVERLAY_IPV6" ]
|
||||
then
|
||||
LIGHTHOUSE_NIP="fd00:4242:0:0:0:ffff:c0a8:6401"
|
||||
HOST2_NIP="fd00:4242:0:0:0:ffff:c0a8:6402"
|
||||
HOST3_NIP="fd00:4242:0:0:0:ffff:c0a8:6403"
|
||||
HOST4_NIP="fd00:4242:0:0:0:ffff:c0a8:6404"
|
||||
else
|
||||
LIGHTHOUSE_NIP="192.168.100.1"
|
||||
HOST2_NIP="192.168.100.2"
|
||||
HOST3_NIP="192.168.100.3"
|
||||
HOST4_NIP="192.168.100.4"
|
||||
fi
|
||||
|
||||
# Smoke containers run on a dedicated docker network whose subnet is allocated
|
||||
# at smoke time, not known at build time. Configs are written with TEST-NET-3
|
||||
# placeholder IPs (RFC 5737) and smoke.sh / smoke-vagrant.sh / smoke-relay.sh
|
||||
@@ -31,24 +44,24 @@ LIGHTHOUSE_IP="203.0.113.2"
|
||||
../genconfig.sh >lighthouse1.yml
|
||||
|
||||
HOST="host2" \
|
||||
LIGHTHOUSES="192.168.100.1 $LIGHTHOUSE_IP:4242" \
|
||||
LIGHTHOUSES="$LIGHTHOUSE_NIP $LIGHTHOUSE_IP:4242" \
|
||||
../genconfig.sh >host2.yml
|
||||
|
||||
HOST="host3" \
|
||||
LIGHTHOUSES="192.168.100.1 $LIGHTHOUSE_IP:4242" \
|
||||
LIGHTHOUSES="$LIGHTHOUSE_NIP $LIGHTHOUSE_IP:4242" \
|
||||
INBOUND='[{"port": "any", "proto": "icmp", "group": "lighthouse"}]' \
|
||||
../genconfig.sh >host3.yml
|
||||
|
||||
HOST="host4" \
|
||||
LIGHTHOUSES="192.168.100.1 $LIGHTHOUSE_IP:4242" \
|
||||
LIGHTHOUSES="$LIGHTHOUSE_NIP $LIGHTHOUSE_IP:4242" \
|
||||
OUTBOUND='[{"port": "any", "proto": "icmp", "group": "lighthouse"}]' \
|
||||
../genconfig.sh >host4.yml
|
||||
|
||||
../../../../nebula-cert ca -curve "${CURVE:-25519}" -name "Smoke Test"
|
||||
../../../../nebula-cert sign -name "lighthouse1" -groups "lighthouse,lighthouse1" -ip "192.168.100.1/24"
|
||||
../../../../nebula-cert sign -name "host2" -groups "host,host2" -ip "192.168.100.2/24"
|
||||
../../../../nebula-cert sign -name "host3" -groups "host,host3" -ip "192.168.100.3/24"
|
||||
../../../../nebula-cert sign -name "host4" -groups "host,host4" -ip "192.168.100.4/24"
|
||||
../../../../nebula-cert sign -name "lighthouse1" -groups "lighthouse,lighthouse1" -ip "$LIGHTHOUSE_NIP/24"
|
||||
../../../../nebula-cert sign -name "host2" -groups "host,host2" -ip "$HOST2_NIP/24"
|
||||
../../../../nebula-cert sign -name "host3" -groups "host,host3" -ip "$HOST3_NIP/24"
|
||||
../../../../nebula-cert sign -name "host4" -groups "host,host4" -ip "$HOST4_NIP/24"
|
||||
)
|
||||
|
||||
docker build -t "nebula:${NAME:-smoke}" .
|
||||
|
||||
@@ -47,6 +47,19 @@ HOST2_IP="$PREFIX.3"
|
||||
HOST3_IP="$PREFIX.4"
|
||||
HOST4_IP="$PREFIX.5"
|
||||
|
||||
if [ "$SMOKE_OVERLAY_IPV6" ]
|
||||
then
|
||||
LIGHTHOUSE_NIP="fd00:4242:0:0:0:ffff:c0a8:6401"
|
||||
HOST2_NIP="fd00:4242:0:0:0:ffff:c0a8:6402"
|
||||
HOST3_NIP="fd00:4242:0:0:0:ffff:c0a8:6403"
|
||||
HOST4_NIP="fd00:4242:0:0:0:ffff:c0a8:6404"
|
||||
else
|
||||
LIGHTHOUSE_NIP="192.168.100.1"
|
||||
HOST2_NIP="192.168.100.2"
|
||||
HOST3_NIP="192.168.100.3"
|
||||
HOST4_NIP="192.168.100.4"
|
||||
fi
|
||||
|
||||
# Sed the placeholder TEST-NET-3 IPs in the host configs to the real ones.
|
||||
# build/lighthouse1.yml has no IPs to rewrite so it's skipped.
|
||||
for f in build/host2.yml build/host3.yml build/host4.yml; do
|
||||
@@ -80,28 +93,28 @@ docker exec host3 tcpdump -i eth0 -q -w - -U 2>logs/host3.outside.log >logs/host
|
||||
docker exec host4 tcpdump -i tun0 -q -w - -U 2>logs/host4.inside.log >logs/host4.inside.pcap &
|
||||
docker exec host4 tcpdump -i eth0 -q -w - -U 2>logs/host4.outside.log >logs/host4.outside.pcap &
|
||||
|
||||
docker exec host2 ncat -nklv 0.0.0.0 2000 &
|
||||
docker exec host3 ncat -nklv 0.0.0.0 2000 &
|
||||
docker exec host4 ncat -e '/usr/bin/echo helloagainfromhost4' -nkluv 0.0.0.0 4000 &
|
||||
docker exec host2 ncat -e '/usr/bin/echo host2' -nkluv 0.0.0.0 3000 &
|
||||
docker exec host3 ncat -e '/usr/bin/echo host3' -nkluv 0.0.0.0 3000 &
|
||||
docker exec host2 ncat -nklv 2000 &
|
||||
docker exec host3 ncat -nklv 2000 &
|
||||
docker exec host4 ncat -e '/usr/bin/echo helloagainfromhost4' -nkluv 4000 &
|
||||
docker exec host2 ncat -e '/usr/bin/echo host2' -nkluv 3000 &
|
||||
docker exec host3 ncat -e '/usr/bin/echo host3' -nkluv 3000 &
|
||||
|
||||
set +x
|
||||
echo
|
||||
echo " *** Testing ping from lighthouse1"
|
||||
echo
|
||||
set -x
|
||||
docker exec lighthouse1 ping -c1 192.168.100.2
|
||||
docker exec lighthouse1 ping -c1 192.168.100.3
|
||||
docker exec lighthouse1 ping -c1 $HOST2_NIP
|
||||
docker exec lighthouse1 ping -c1 $HOST3_NIP
|
||||
|
||||
set +x
|
||||
echo
|
||||
echo " *** Testing ping from host2"
|
||||
echo
|
||||
set -x
|
||||
docker exec host2 ping -c1 192.168.100.1
|
||||
docker exec host2 ping -c1 $LIGHTHOUSE_NIP
|
||||
# Should fail because not allowed by host3 inbound firewall
|
||||
! docker exec host2 ping -c1 192.168.100.3 -w5 || exit 1
|
||||
! docker exec host2 ping -c1 $HOST3_NIP -w5 || exit 1
|
||||
|
||||
set +x
|
||||
echo
|
||||
@@ -109,34 +122,34 @@ echo " *** Testing ncat from host2"
|
||||
echo
|
||||
set -x
|
||||
# Should fail because not allowed by host3 inbound firewall
|
||||
! docker exec host2 ncat -nzv -w5 192.168.100.3 2000 || exit 1
|
||||
! docker exec host2 ncat -nzuv -w5 192.168.100.3 3000 | grep -q host3 || exit 1
|
||||
! docker exec host2 ncat -nzv -w5 $HOST3_NIP 2000 || exit 1
|
||||
! docker exec host2 ncat -nzuv -w5 $HOST3_NIP 3000 | grep -q host3 || exit 1
|
||||
|
||||
set +x
|
||||
echo
|
||||
echo " *** Testing ping from host3"
|
||||
echo
|
||||
set -x
|
||||
docker exec host3 ping -c1 192.168.100.1
|
||||
docker exec host3 ping -c1 192.168.100.2
|
||||
docker exec host3 ping -c1 $LIGHTHOUSE_NIP
|
||||
docker exec host3 ping -c1 $HOST2_NIP
|
||||
|
||||
set +x
|
||||
echo
|
||||
echo " *** Testing ncat from host3"
|
||||
echo
|
||||
set -x
|
||||
docker exec host3 ncat -nzv -w5 192.168.100.2 2000
|
||||
docker exec host3 ncat -nzuv -w5 192.168.100.2 3000 | grep -q host2
|
||||
docker exec host3 ncat -nzv -w5 $HOST2_NIP 2000
|
||||
docker exec host3 ncat -nzuv -w5 $HOST2_NIP 3000 | grep -q host2
|
||||
|
||||
set +x
|
||||
echo
|
||||
echo " *** Testing ping from host4"
|
||||
echo
|
||||
set -x
|
||||
docker exec host4 ping -c1 192.168.100.1
|
||||
docker exec host4 ping -c1 $LIGHTHOUSE_NIP
|
||||
# Should fail because not allowed by host4 outbound firewall
|
||||
! docker exec host4 ping -c1 192.168.100.2 -w5 || exit 1
|
||||
! docker exec host4 ping -c1 192.168.100.3 -w5 || exit 1
|
||||
! docker exec host4 ping -c1 $HOST2_NIP -w5 || exit 1
|
||||
! docker exec host4 ping -c1 $HOST3_NIP -w5 || exit 1
|
||||
|
||||
set +x
|
||||
echo
|
||||
@@ -144,10 +157,10 @@ echo " *** Testing ncat from host4"
|
||||
echo
|
||||
set -x
|
||||
# Should fail because not allowed by host4 outbound firewall
|
||||
! docker exec host4 ncat -nzv -w5 192.168.100.2 2000 || exit 1
|
||||
! docker exec host4 ncat -nzv -w5 192.168.100.3 2000 || exit 1
|
||||
! docker exec host4 ncat -nzuv -w5 192.168.100.2 3000 | grep -q host2 || exit 1
|
||||
! docker exec host4 ncat -nzuv -w5 192.168.100.3 3000 | grep -q host3 || exit 1
|
||||
! docker exec host4 ncat -nzv -w5 $HOST2_NIP 2000 || exit 1
|
||||
! docker exec host4 ncat -nzv -w5 $HOST3_NIP 2000 || exit 1
|
||||
! docker exec host4 ncat -nzuv -w5 $HOST2_NIP 3000 | grep -q host2 || exit 1
|
||||
! docker exec host4 ncat -nzuv -w5 $HOST3_NIP 3000 | grep -q host3 || exit 1
|
||||
|
||||
set +x
|
||||
echo
|
||||
@@ -159,7 +172,7 @@ set -x
|
||||
# cannot initiate UDP to host2. Once host2 initiates a flow to host4:4000,
|
||||
# conntrack must let host4's listener reply on that flow. If it doesn't,
|
||||
# the echo back from host4 never reaches host2.
|
||||
docker exec host2 sh -c "(/usr/bin/echo host2; sleep 2) | ncat -nuv 192.168.100.4 4000" | grep -q helloagainfromhost4
|
||||
docker exec host2 sh -c "(/usr/bin/echo host2; sleep 2) | ncat -nuv $HOST4_NIP 4000" | grep -q helloagainfromhost4
|
||||
|
||||
docker exec host4 sh -c 'kill 1'
|
||||
docker exec host3 sh -c 'kill 1'
|
||||
|
||||
+106
-83
@@ -13,20 +13,28 @@ on:
|
||||
- 'go.sum'
|
||||
jobs:
|
||||
|
||||
test-linux:
|
||||
name: Build all and test on ubuntu-linux
|
||||
static:
|
||||
name: Static checks
|
||||
runs-on: ubuntu-latest
|
||||
steps:
|
||||
|
||||
- uses: actions/checkout@v6
|
||||
- uses: actions/checkout@v7
|
||||
|
||||
- uses: actions/setup-go@v6
|
||||
- uses: actions/setup-go@v7
|
||||
with:
|
||||
go-version: '1.25'
|
||||
go-version: '1.26'
|
||||
check-latest: true
|
||||
|
||||
- name: Build
|
||||
run: make all
|
||||
- name: Install goimports
|
||||
run: go install golang.org/x/tools/cmd/goimports@latest
|
||||
|
||||
- name: gofmt
|
||||
run: |
|
||||
if [ "$(find . -iname '*.go' | grep -v '\.pb\.go$' | xargs goimports -l)" ]
|
||||
then
|
||||
find . -iname '*.go' | grep -v '\.pb\.go$' | xargs goimports -d
|
||||
exit 1
|
||||
fi
|
||||
|
||||
- name: Vet
|
||||
run: make vet
|
||||
@@ -34,99 +42,114 @@ jobs:
|
||||
- name: golangci-lint
|
||||
uses: golangci/golangci-lint-action@v9
|
||||
with:
|
||||
version: v2.5
|
||||
|
||||
- name: Test
|
||||
run: make test
|
||||
|
||||
- name: End 2 end
|
||||
run: make e2evv
|
||||
|
||||
- name: Build test mobile
|
||||
run: make build-test-mobile
|
||||
|
||||
- uses: actions/upload-artifact@v7
|
||||
with:
|
||||
name: e2e packet flow linux-latest
|
||||
path: e2e/mermaid/linux-latest
|
||||
if-no-files-found: warn
|
||||
|
||||
test-linux-boringcrypto:
|
||||
name: Build and test on linux with boringcrypto
|
||||
runs-on: ubuntu-latest
|
||||
steps:
|
||||
|
||||
- uses: actions/checkout@v6
|
||||
|
||||
- uses: actions/setup-go@v6
|
||||
with:
|
||||
go-version: '1.25'
|
||||
check-latest: true
|
||||
|
||||
- name: Build
|
||||
run: make bin-boringcrypto
|
||||
|
||||
- name: Test
|
||||
run: make test-boringcrypto
|
||||
|
||||
- name: End 2 end
|
||||
run: make e2e GOEXPERIMENT=boringcrypto CGO_ENABLED=1 TEST_ENV="TEST_LOGS=1" TEST_FLAGS="-v -ldflags -checklinkname=0"
|
||||
|
||||
test-linux-pkcs11:
|
||||
name: Build and test on linux with pkcs11
|
||||
runs-on: ubuntu-latest
|
||||
steps:
|
||||
|
||||
- uses: actions/checkout@v6
|
||||
|
||||
- uses: actions/setup-go@v6
|
||||
with:
|
||||
go-version: '1.25'
|
||||
check-latest: true
|
||||
|
||||
- name: Build
|
||||
run: make bin-pkcs11
|
||||
|
||||
- name: Test
|
||||
run: make test-pkcs11
|
||||
version: v2.12
|
||||
|
||||
test:
|
||||
name: Build and test on ${{ matrix.os }}
|
||||
name: Test ${{ matrix.name }}
|
||||
runs-on: ${{ matrix.os }}
|
||||
strategy:
|
||||
fail-fast: false
|
||||
matrix:
|
||||
os: [windows-latest, macos-latest]
|
||||
include:
|
||||
- name: linux
|
||||
os: ubuntu-latest
|
||||
build-cmd: go build ./cmd/nebula ./cmd/nebula-cert
|
||||
test-cmd: make test
|
||||
e2e-cmd: make e2evv
|
||||
- name: linux-boringcrypto
|
||||
os: ubuntu-latest
|
||||
build-cmd: make boringcrypto
|
||||
test-cmd: make boringcrypto test
|
||||
e2e-cmd: make boringcrypto e2evv
|
||||
- name: linux-fips140
|
||||
os: ubuntu-latest
|
||||
build-cmd: make fips140-all
|
||||
test-cmd: make fips140-all GOALS=test
|
||||
e2e-cmd: make fips140-all GOALS=e2evv
|
||||
- name: linux-pkcs11
|
||||
os: ubuntu-latest
|
||||
build-cmd: make bin-pkcs11
|
||||
test-cmd: make test-pkcs11
|
||||
e2e-cmd: ''
|
||||
- name: macos
|
||||
os: macos-latest
|
||||
build-cmd: go build ./cmd/nebula ./cmd/nebula-cert
|
||||
test-cmd: make test
|
||||
e2e-cmd: make e2evv
|
||||
- name: windows
|
||||
os: windows-latest
|
||||
build-cmd: go build ./cmd/nebula ./cmd/nebula-cert
|
||||
test-cmd: make test
|
||||
e2e-cmd: make e2evv
|
||||
steps:
|
||||
|
||||
- uses: actions/checkout@v6
|
||||
- uses: actions/checkout@v7
|
||||
|
||||
- uses: actions/setup-go@v6
|
||||
- uses: actions/setup-go@v7
|
||||
with:
|
||||
go-version: '1.25'
|
||||
go-version: '1.26'
|
||||
check-latest: true
|
||||
|
||||
- name: Build nebula
|
||||
run: go build ./cmd/nebula
|
||||
- name: Build
|
||||
run: ${{ matrix.build-cmd }}
|
||||
|
||||
- name: Build nebula-cert
|
||||
run: go build ./cmd/nebula-cert
|
||||
|
||||
- name: Vet
|
||||
run: make vet
|
||||
|
||||
- name: golangci-lint
|
||||
uses: golangci/golangci-lint-action@v9
|
||||
with:
|
||||
version: v2.5
|
||||
- name: Cross-build darwin-amd64
|
||||
if: matrix.name == 'macos'
|
||||
run: GOARCH=amd64 go build -o /tmp/nebula-amd64 ./cmd/nebula && GOARCH=amd64 go build -o /tmp/nebula-cert-amd64 ./cmd/nebula-cert
|
||||
|
||||
- name: Test
|
||||
run: make test
|
||||
run: ${{ matrix.test-cmd }}
|
||||
|
||||
- name: End 2 end
|
||||
run: make e2evv
|
||||
if: matrix.e2e-cmd != ''
|
||||
run: ${{ matrix.e2e-cmd }}
|
||||
|
||||
- uses: actions/upload-artifact@v7
|
||||
if: matrix.e2e-cmd != '' && always()
|
||||
with:
|
||||
name: e2e packet flow ${{ matrix.os }}
|
||||
path: e2e/mermaid/${{ matrix.os }}
|
||||
name: e2e packet flow ${{ matrix.name }}
|
||||
path: e2e/mermaid/
|
||||
if-no-files-found: warn
|
||||
|
||||
cross-build:
|
||||
name: Cross-build ${{ matrix.name }}
|
||||
runs-on: ubuntu-latest
|
||||
strategy:
|
||||
fail-fast: false
|
||||
matrix:
|
||||
include:
|
||||
- {name: linux-arm, make-target: all-cross-linux-arm}
|
||||
- {name: linux-mips, make-target: all-cross-linux-mips}
|
||||
- {name: linux-other, make-target: all-cross-linux-other}
|
||||
- {name: freebsd, make-target: all-freebsd}
|
||||
- {name: openbsd, make-target: all-openbsd}
|
||||
- {name: netbsd, make-target: all-netbsd}
|
||||
- {name: windows, make-target: all-cross-windows}
|
||||
- {name: mobile, make-target: build-test-mobile}
|
||||
steps:
|
||||
|
||||
- uses: actions/checkout@v7
|
||||
|
||||
- uses: actions/setup-go@v7
|
||||
with:
|
||||
go-version: '1.26'
|
||||
check-latest: true
|
||||
|
||||
- name: Build ${{ matrix.name }}
|
||||
run: make -j"$(nproc)" ${{ matrix.make-target }}
|
||||
|
||||
finish:
|
||||
name: CI status
|
||||
if: always()
|
||||
needs: [static, test, cross-build]
|
||||
runs-on: ubuntu-latest
|
||||
steps:
|
||||
|
||||
- name: Fail if any upstream job failed
|
||||
if: contains(needs.*.result, 'failure') || contains(needs.*.result, 'cancelled')
|
||||
run: |
|
||||
echo "upstream results: ${{ toJSON(needs) }}"
|
||||
exit 1
|
||||
|
||||
- name: All upstream jobs passed
|
||||
run: echo "ok"
|
||||
|
||||
@@ -60,6 +60,29 @@ ALL = $(ALL_LINUX) \
|
||||
windows-amd64 \
|
||||
windows-arm64
|
||||
|
||||
# Cross-build shards used by .github/workflows/test.yml — same as ALL_*
|
||||
# but with the arch that has a native CI runner removed, so the cross-build
|
||||
# job is not duplicating coverage the native test jobs already give.
|
||||
ALL_CROSS_LINUX = $(filter-out linux-amd64,$(ALL_LINUX))
|
||||
|
||||
# ALL_CROSS_LINUX further split into family sub-shards so each can run on
|
||||
# its own CI runner in parallel. Union of the three must equal
|
||||
# ALL_CROSS_LINUX; adding a new linux arch goes into the matching family.
|
||||
ALL_CROSS_LINUX_ARM = linux-arm-5 linux-arm-6 linux-arm-7 linux-arm64
|
||||
ALL_CROSS_LINUX_MIPS = linux-mips linux-mipsle linux-mips64 linux-mips64le linux-mips-softfloat
|
||||
ALL_CROSS_LINUX_OTHER = linux-386 linux-ppc64le linux-riscv64 linux-loong64
|
||||
|
||||
# Based on section 2.2 of the Go Cryptographic Module CVMP Security Policy #5247
|
||||
ALL_FIPS140 = linux-amd64-fips140 \
|
||||
linux-arm64-fips140 \
|
||||
windows-amd64-fips140 \
|
||||
windows-arm64-fips140 \
|
||||
darwin-arm64-fips140 \
|
||||
freebsd-amd64-fips140 \
|
||||
linux-arm-7-fips140 \
|
||||
linux-mips64-fips140 \
|
||||
linux-ppc64le-fips140
|
||||
|
||||
e2e:
|
||||
$(TEST_ENV) go test -tags=e2e_testing -count=1 $(TEST_FLAGS) ./e2e
|
||||
|
||||
@@ -82,6 +105,35 @@ DOCKER_BIN = build/linux-amd64/nebula build/linux-amd64/nebula-cert
|
||||
|
||||
all: $(ALL:%=build/%/nebula) $(ALL:%=build/%/nebula-cert)
|
||||
|
||||
all-linux: $(ALL_LINUX:%=build/%/nebula) $(ALL_LINUX:%=build/%/nebula-cert)
|
||||
|
||||
all-freebsd: $(ALL_FREEBSD:%=build/%/nebula) $(ALL_FREEBSD:%=build/%/nebula-cert)
|
||||
|
||||
all-openbsd: $(ALL_OPENBSD:%=build/%/nebula) $(ALL_OPENBSD:%=build/%/nebula-cert)
|
||||
|
||||
all-netbsd: $(ALL_NETBSD:%=build/%/nebula) $(ALL_NETBSD:%=build/%/nebula-cert)
|
||||
|
||||
all-darwin: build/darwin-amd64/nebula build/darwin-amd64/nebula-cert build/darwin-arm64/nebula build/darwin-arm64/nebula-cert
|
||||
|
||||
all-windows: build/windows-amd64/nebula.exe build/windows-amd64/nebula-cert.exe build/windows-arm64/nebula.exe build/windows-arm64/nebula-cert.exe
|
||||
|
||||
# CI cross-build shards. darwin-arm64 is covered by the native macos-latest
|
||||
# job; windows-amd64 is covered by the native windows-latest job; both are
|
||||
# omitted here to avoid building them a second time. darwin-amd64 stays in
|
||||
# all-cross-darwin because intel mac is only a labeled/master-time native
|
||||
# job, so PRs still need cross-build coverage for it.
|
||||
all-cross-linux: $(ALL_CROSS_LINUX:%=build/%/nebula) $(ALL_CROSS_LINUX:%=build/%/nebula-cert)
|
||||
|
||||
all-cross-linux-arm: $(ALL_CROSS_LINUX_ARM:%=build/%/nebula) $(ALL_CROSS_LINUX_ARM:%=build/%/nebula-cert)
|
||||
|
||||
all-cross-linux-mips: $(ALL_CROSS_LINUX_MIPS:%=build/%/nebula) $(ALL_CROSS_LINUX_MIPS:%=build/%/nebula-cert)
|
||||
|
||||
all-cross-linux-other: $(ALL_CROSS_LINUX_OTHER:%=build/%/nebula) $(ALL_CROSS_LINUX_OTHER:%=build/%/nebula-cert)
|
||||
|
||||
all-cross-darwin: build/darwin-amd64/nebula build/darwin-amd64/nebula-cert
|
||||
|
||||
all-cross-windows: build/windows-arm64/nebula.exe build/windows-arm64/nebula-cert.exe
|
||||
|
||||
docker: docker/linux-$(shell go env GOARCH)
|
||||
|
||||
release: $(ALL:%=build/nebula-%.tar.gz)
|
||||
@@ -96,6 +148,8 @@ release-netbsd: $(ALL_NETBSD:%=build/nebula-%.tar.gz)
|
||||
|
||||
release-boringcrypto: build/nebula-linux-$(shell go env GOARCH)-boringcrypto.tar.gz
|
||||
|
||||
release-fips140: $(ALL_FIPS140:%=build/nebula-%.tar.gz)
|
||||
|
||||
BUILD_ARGS += -trimpath
|
||||
|
||||
bin-windows: build/windows-amd64/nebula.exe build/windows-amd64/nebula-cert.exe
|
||||
@@ -116,17 +170,20 @@ bin-freebsd-arm64: build/freebsd-arm64/nebula build/freebsd-arm64/nebula-cert
|
||||
bin-boringcrypto: build/linux-$(shell go env GOARCH)-boringcrypto/nebula build/linux-$(shell go env GOARCH)-boringcrypto/nebula-cert
|
||||
mv $? .
|
||||
|
||||
bin-fips140: build/linux-$(shell go env GOARCH)-fips140/nebula build/linux-$(shell go env GOARCH)-fips140/nebula-cert
|
||||
mv $? .
|
||||
|
||||
bin-pkcs11: BUILD_ARGS += -tags pkcs11
|
||||
bin-pkcs11: CGO_ENABLED = 1
|
||||
bin-pkcs11: bin
|
||||
|
||||
bin:
|
||||
go build $(BUILD_ARGS) -ldflags "$(LDFLAGS)" -o ./nebula${NEBULA_CMD_SUFFIX} ${NEBULA_CMD_PATH}
|
||||
go build $(BUILD_ARGS) -ldflags "$(LDFLAGS)" -o ./nebula-cert${NEBULA_CMD_SUFFIX} ./cmd/nebula-cert
|
||||
$(GOENV) go build $(BUILD_ARGS) -ldflags "$(LDFLAGS)" -o ./nebula${NEBULA_CMD_SUFFIX} ${NEBULA_CMD_PATH}
|
||||
$(GOENV) go build $(BUILD_ARGS) -ldflags "$(LDFLAGS)" -o ./nebula-cert${NEBULA_CMD_SUFFIX} ./cmd/nebula-cert
|
||||
|
||||
install:
|
||||
go install $(BUILD_ARGS) -ldflags "$(LDFLAGS)" ${NEBULA_CMD_PATH}
|
||||
go install $(BUILD_ARGS) -ldflags "$(LDFLAGS)" ./cmd/nebula-cert
|
||||
$(GOENV) go install $(BUILD_ARGS) -ldflags "$(LDFLAGS)" ${NEBULA_CMD_PATH}
|
||||
$(GOENV) go install $(BUILD_ARGS) -ldflags "$(LDFLAGS)" ./cmd/nebula-cert
|
||||
|
||||
build/linux-arm-%: GOENV += GOARM=$(word 3, $(subst -, ,$*))
|
||||
build/linux-mips-%: GOENV += GOMIPS=$(word 3, $(subst -, ,$*))
|
||||
@@ -137,8 +194,11 @@ build/linux-mips-softfloat/%: LDFLAGS += -s -w
|
||||
# boringcrypto
|
||||
build/linux-amd64-boringcrypto/%: GOENV += GOEXPERIMENT=boringcrypto CGO_ENABLED=1
|
||||
build/linux-arm64-boringcrypto/%: GOENV += GOEXPERIMENT=boringcrypto CGO_ENABLED=1
|
||||
build/linux-amd64-boringcrypto/%: LDFLAGS += -checklinkname=0
|
||||
build/linux-arm64-boringcrypto/%: LDFLAGS += -checklinkname=0
|
||||
|
||||
# fips140
|
||||
FIPSVERSION = v1.0.0
|
||||
$(foreach _rule, $(ALL_FIPS140), build/$(_rule)/%): GOENV += GOFIPS140=$(FIPSVERSION)
|
||||
$(foreach _rule, $(ALL_FIPS140), build/$(_rule)/%): BUILD_ARGS += -tags fips140enforce
|
||||
|
||||
build/%/nebula: .FORCE
|
||||
GOOS=$(firstword $(subst -, , $*)) \
|
||||
@@ -169,10 +229,7 @@ vet:
|
||||
go vet $(VET_FLAGS) -v ./...
|
||||
|
||||
test:
|
||||
go test -v ./...
|
||||
|
||||
test-boringcrypto:
|
||||
GOEXPERIMENT=boringcrypto CGO_ENABLED=1 go test -ldflags "-checklinkname=0" -v ./...
|
||||
$(TEST_ENV) go test $(TEST_FLAGS) -v ./...
|
||||
|
||||
test-pkcs11:
|
||||
CGO_ENABLED=1 go test -v -tags pkcs11 ./...
|
||||
@@ -215,26 +272,72 @@ ifeq ($(words $(MAKECMDGOALS)),1)
|
||||
@$(MAKE) service ${.DEFAULT_GOAL} --no-print-directory
|
||||
endif
|
||||
|
||||
# Useful to chain together, like:
|
||||
# - make fips140 e2evv
|
||||
# - make fips140 smoke-docker
|
||||
# Use `release-fips140` to build release binaries
|
||||
fips140:
|
||||
@echo > $(NULL_FILE)
|
||||
ifeq ($(strip $(GOFIPS140)),)
|
||||
$(eval GOFIPS140 = $(FIPSVERSION))
|
||||
endif
|
||||
$(eval GOENV += GOFIPS140=$(GOFIPS140))
|
||||
$(eval BUILD_ARGS += -tags fips140enforce)
|
||||
$(eval TEST_ENV += $(GOENV))
|
||||
$(eval CURVE = P256)
|
||||
ifeq ($(words $(MAKECMDGOALS)),1)
|
||||
@$(MAKE) fips140 GOFIPS140=$(GOFIPS140) ${.DEFAULT_GOAL} --no-print-directory
|
||||
endif
|
||||
|
||||
# To test the future pending module, use like `make fips140-latest test`
|
||||
ALL_GOFIPS140 = v1.0.0 v1.26.0 latest
|
||||
define FIPS140_rule
|
||||
fips140-$(1): GOFIPS140 = $(1)
|
||||
fips140-$(1): fips140
|
||||
endef
|
||||
$(foreach _rule, $(ALL_GOFIPS140), $(eval $(call FIPS140_rule,$(_rule))))
|
||||
|
||||
# Iterate and run the goals for all fips versions, like `make fips140-all GOALS=test`
|
||||
fips140-all:
|
||||
@$(foreach _v,$(ALL_GOFIPS140),$(MAKE) fips140-$(_v) $(GOALS) &&) true
|
||||
|
||||
# Useful to chain together, like:
|
||||
# - make boringcrypto e2evv
|
||||
# - make boringcrypto smoke-docker
|
||||
# Use `release-boringcrypto` or `bin-boringcrypto` to build release binaries
|
||||
boringcrypto:
|
||||
@echo > $(NULL_FILE)
|
||||
$(eval GOENV += GOEXPERIMENT=boringcrypto CGO_ENABLED=1)
|
||||
$(eval TEST_ENV += $(GOENV))
|
||||
$(eval CURVE = P256)
|
||||
ifeq ($(words $(MAKECMDGOALS)),1)
|
||||
@$(MAKE) boringcrypto ${.DEFAULT_GOAL} --no-print-directory
|
||||
endif
|
||||
|
||||
bin-docker: bin build/linux-amd64/nebula build/linux-amd64/nebula-cert
|
||||
|
||||
smoke-docker: BUILD_ARGS += -race
|
||||
smoke-docker: GOENV += CGO_ENABLED=1
|
||||
smoke-docker: bin-docker
|
||||
cd .github/workflows/smoke/ && ./build.sh
|
||||
cd .github/workflows/smoke/ && ./smoke.sh
|
||||
cd .github/workflows/smoke/ && NAME="smoke-p256" CURVE="P256" ./build.sh
|
||||
cd .github/workflows/smoke/ && NAME="smoke-p256" ./smoke.sh
|
||||
# This is so we can limit `fips140` smoke test to just P256 curve.
|
||||
if [ "$(CURVE)" != "P256" ]; then cd .github/workflows/smoke/ && $(GOENV) ./build.sh; fi
|
||||
if [ "$(CURVE)" != "P256" ]; then cd .github/workflows/smoke/ && $(GOENV) ./smoke.sh; fi
|
||||
cd .github/workflows/smoke/ && $(GOENV) NAME="smoke-p256" CURVE="P256" ./build.sh
|
||||
cd .github/workflows/smoke/ && $(GOENV) NAME="smoke-p256" ./smoke.sh
|
||||
|
||||
smoke-relay-docker: BUILD_ARGS += -race
|
||||
smoke-relay-docker: GOENV += CGO_ENABLED=1
|
||||
smoke-relay-docker: bin-docker
|
||||
cd .github/workflows/smoke/ && ./build-relay.sh
|
||||
cd .github/workflows/smoke/ && ./smoke-relay.sh
|
||||
cd .github/workflows/smoke/ && $(GOENV) ./build-relay.sh
|
||||
cd .github/workflows/smoke/ && $(GOENV) ./smoke-relay.sh
|
||||
|
||||
smoke-docker-race: BUILD_ARGS = -race
|
||||
smoke-docker-race: CGO_ENABLED = 1
|
||||
smoke-docker-race: smoke-docker
|
||||
smoke-docker-ipv6: export SMOKE_OVERLAY_IPV6 = 1
|
||||
smoke-docker-ipv6: smoke-docker
|
||||
|
||||
smoke-vagrant/%: bin-docker build/%/nebula
|
||||
cd .github/workflows/smoke/ && ./build.sh $*
|
||||
cd .github/workflows/smoke/ && ./smoke-vagrant.sh $*
|
||||
|
||||
.FORCE:
|
||||
.PHONY: bench bench-cpu bench-cpu-long bin build-test-mobile e2e e2ev e2evv e2evvv e2evvvv proto release service smoke-docker smoke-docker-race test test-cov-html smoke-vagrant/%
|
||||
.PHONY: all all-linux all-freebsd all-openbsd all-netbsd all-darwin all-windows all-cross-linux all-cross-linux-arm all-cross-linux-mips all-cross-linux-other all-cross-darwin all-cross-windows bench bench-cpu bench-cpu-long bin bin-windows bin-windows-arm64 bin-darwin bin-freebsd bin-freebsd-arm64 bin-boringcrypto bin-fips140 bin-pkcs11 bin-docker boringcrypto build-test-mobile docker e2e e2ev e2evv e2evvv e2evvvv e2e-bench fips140 fips140-all $(ALL_GOFIPS140:%=fips140-%) install proto release release-linux release-freebsd release-openbsd release-netbsd release-boringcrypto release-fips140 service smoke-docker smoke-relay-docker smoke-docker-ipv6 test test-pkcs11 test-cov-html vet smoke-vagrant/%
|
||||
.DEFAULT_GOAL := bin
|
||||
|
||||
@@ -145,17 +145,27 @@ To build nebula for a specific platform (ex, Windows):
|
||||
|
||||
See the [Makefile](Makefile) for more details on build targets
|
||||
|
||||
## Curve P256 and BoringCrypto
|
||||
## Curve P256 and FIPS 140-3 mode
|
||||
|
||||
The default curve used for cryptographic handshakes and signatures is Curve25519. This is the recommended setting for most users. If your deployment has certain compliance requirements, you have the option of creating your CA using `nebula-cert ca -curve P256` to use NIST Curve P256. The CA will then sign certificates using ECDSA P256, and any hosts using these certificates will use P256 for ECDH handshakes.
|
||||
|
||||
In addition, Nebula can be built using the [BoringCrypto GOEXPERIMENT](https://github.com/golang/go/blob/go1.20/src/crypto/internal/boring/README.md) by running either of the following make targets:
|
||||
Nebula can be built to support the [FIPS 140-3](https://go.dev/doc/security/fips140) mode of Go by running either of the following make targets. (This sets GOFIPS140=v1.0.0, which must be done at compile time so that the correct AES-GCM can be used for FIPS 140-3 enforcement mode).
|
||||
|
||||
```sh
|
||||
make fips140
|
||||
make fips140 test
|
||||
make release-fips140
|
||||
```
|
||||
|
||||
Nebula can also be built using the [BoringCrypto GOEXPERIMENT](https://github.com/golang/go/blob/go1.20/src/crypto/internal/boring/README.md) by running either of the following make targets.
|
||||
|
||||
```sh
|
||||
make bin-boringcrypto
|
||||
make release-boringcrypto
|
||||
```
|
||||
|
||||
NOTE: boringcrypto support is deprecated and will be removed in the next release. Users should migrate to the native FIPS 140-3 mode described above.
|
||||
|
||||
This is not the recommended default deployment, but may be useful based on your compliance requirements.
|
||||
|
||||
## Credits
|
||||
|
||||
+10
-4
@@ -13,6 +13,12 @@ import (
|
||||
"golang.org/x/crypto/ed25519"
|
||||
)
|
||||
|
||||
// testCertNow is the reference "now" used to derive default before/after times
|
||||
// in NewTestCaCert and NewTestCert. Holding it fixed for the lifetime of the
|
||||
// test binary keeps CA and leaf defaults aligned at the same second, so a leaf
|
||||
// signed with default times can never expire after its CA on a rounding race.
|
||||
var testCertNow = time.Now().Round(time.Second)
|
||||
|
||||
// NewTestCaCert will create a new ca certificate
|
||||
func NewTestCaCert(version Version, curve Curve, before, after time.Time, networks, unsafeNetworks []netip.Prefix, groups []string) (Certificate, []byte, []byte, []byte) {
|
||||
var err error
|
||||
@@ -34,10 +40,10 @@ func NewTestCaCert(version Version, curve Curve, before, after time.Time, networ
|
||||
}
|
||||
|
||||
if before.IsZero() {
|
||||
before = time.Now().Add(time.Second * -60).Round(time.Second)
|
||||
before = testCertNow.Add(time.Second * -60)
|
||||
}
|
||||
if after.IsZero() {
|
||||
after = time.Now().Add(time.Second * 60).Round(time.Second)
|
||||
after = testCertNow.Add(time.Second * 60)
|
||||
}
|
||||
|
||||
t := &TBSCertificate{
|
||||
@@ -70,11 +76,11 @@ func NewTestCaCert(version Version, curve Curve, before, after time.Time, networ
|
||||
// Expiry times are defaulted if you do not pass them in
|
||||
func NewTestCert(v Version, curve Curve, ca Certificate, key []byte, name string, before, after time.Time, networks, unsafeNetworks []netip.Prefix, groups []string) (Certificate, []byte, []byte, []byte) {
|
||||
if before.IsZero() {
|
||||
before = time.Now().Add(time.Second * -60).Round(time.Second)
|
||||
before = testCertNow.Add(time.Second * -60)
|
||||
}
|
||||
|
||||
if after.IsZero() {
|
||||
after = time.Now().Add(time.Second * 60).Round(time.Second)
|
||||
after = testCertNow.Add(time.Second * 60)
|
||||
}
|
||||
|
||||
if len(networks) == 0 {
|
||||
|
||||
+32
-2
@@ -148,6 +148,9 @@ func MarshalSigningPublicKeyToPEM(curve Curve, b []byte) []byte {
|
||||
}
|
||||
}
|
||||
|
||||
// UnmarshalPublicKeyFromPEM will try to unmarshal the first pem block in a byte array, returning any non
|
||||
// consumed data or an error on failure. Only key-agreement (ECDH) public key banners are accepted.
|
||||
// Use UnmarshalSigningPublicKeyFromPEM for Ed25519/ECDSA banners.
|
||||
func UnmarshalPublicKeyFromPEM(b []byte) ([]byte, []byte, Curve, error) {
|
||||
k, r := pem.Decode(b)
|
||||
if k == nil {
|
||||
@@ -156,10 +159,10 @@ func UnmarshalPublicKeyFromPEM(b []byte) ([]byte, []byte, Curve, error) {
|
||||
var expectedLen int
|
||||
var curve Curve
|
||||
switch k.Type {
|
||||
case X25519PublicKeyBanner, Ed25519PublicKeyBanner:
|
||||
case X25519PublicKeyBanner:
|
||||
expectedLen = 32
|
||||
curve = Curve_CURVE25519
|
||||
case P256PublicKeyBanner, ECDSAP256PublicKeyBanner:
|
||||
case P256PublicKeyBanner:
|
||||
// Uncompressed
|
||||
expectedLen = 65
|
||||
curve = Curve_P256
|
||||
@@ -172,6 +175,33 @@ func UnmarshalPublicKeyFromPEM(b []byte) ([]byte, []byte, Curve, error) {
|
||||
return k.Bytes, r, curve, nil
|
||||
}
|
||||
|
||||
// UnmarshalSigningPublicKeyFromPEM will try to unmarshal the first pem block in a byte array, returning any non
|
||||
// consumed data or an error on failure. Only Ed25519/ECDSA public key banners are accepted.
|
||||
// Use UnmarshalPublicKeyFromPEM for X25519/P256 (ECDH) banners.
|
||||
func UnmarshalSigningPublicKeyFromPEM(b []byte) ([]byte, []byte, Curve, error) {
|
||||
k, r := pem.Decode(b)
|
||||
if k == nil {
|
||||
return nil, r, 0, fmt.Errorf("input did not contain a valid PEM encoded block")
|
||||
}
|
||||
var expectedLen int
|
||||
var curve Curve
|
||||
switch k.Type {
|
||||
case Ed25519PublicKeyBanner:
|
||||
expectedLen = 32
|
||||
curve = Curve_CURVE25519
|
||||
case ECDSAP256PublicKeyBanner:
|
||||
// Uncompressed
|
||||
expectedLen = 65
|
||||
curve = Curve_P256
|
||||
default:
|
||||
return nil, r, 0, fmt.Errorf("bytes did not contain a proper Ed25519/ECDSA public key banner")
|
||||
}
|
||||
if len(k.Bytes) != expectedLen {
|
||||
return nil, r, 0, fmt.Errorf("key was not %d bytes, is invalid %s public key", expectedLen, curve)
|
||||
}
|
||||
return k.Bytes, r, curve, nil
|
||||
}
|
||||
|
||||
func MarshalPrivateKeyToPEM(curve Curve, b []byte) []byte {
|
||||
switch curve {
|
||||
case Curve_CURVE25519:
|
||||
|
||||
+88
-68
@@ -255,60 +255,6 @@ AAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAA=
|
||||
func TestUnmarshalPublicKeyFromPEM(t *testing.T) {
|
||||
t.Parallel()
|
||||
pubKey := []byte(`# A good key
|
||||
-----BEGIN NEBULA ED25519 PUBLIC KEY-----
|
||||
AAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAA=
|
||||
-----END NEBULA ED25519 PUBLIC KEY-----
|
||||
`)
|
||||
shortKey := []byte(`# A short key
|
||||
-----BEGIN NEBULA ED25519 PUBLIC KEY-----
|
||||
AAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAA==
|
||||
-----END NEBULA ED25519 PUBLIC KEY-----
|
||||
`)
|
||||
invalidBanner := []byte(`# Invalid banner
|
||||
-----BEGIN NOT A NEBULA PUBLIC KEY-----
|
||||
AAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAA=
|
||||
-----END NOT A NEBULA PUBLIC KEY-----
|
||||
`)
|
||||
invalidPem := []byte(`# Not a valid PEM format
|
||||
-BEGIN NEBULA ED25519 PUBLIC KEY-----
|
||||
AAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAA=
|
||||
-END NEBULA ED25519 PUBLIC KEY-----`)
|
||||
|
||||
keyBundle := appendByteSlices(pubKey, shortKey, invalidBanner, invalidPem)
|
||||
|
||||
// Success test case
|
||||
k, rest, curve, err := UnmarshalPublicKeyFromPEM(keyBundle)
|
||||
assert.Len(t, k, 32)
|
||||
assert.Equal(t, Curve_CURVE25519, curve)
|
||||
require.NoError(t, err)
|
||||
assert.Equal(t, rest, appendByteSlices(shortKey, invalidBanner, invalidPem))
|
||||
|
||||
// Fail due to short key
|
||||
k, rest, curve, err = UnmarshalPublicKeyFromPEM(rest)
|
||||
assert.Nil(t, k)
|
||||
assert.Equal(t, Curve_CURVE25519, curve)
|
||||
assert.Equal(t, rest, appendByteSlices(invalidBanner, invalidPem))
|
||||
require.EqualError(t, err, "key was not 32 bytes, is invalid CURVE25519 public key")
|
||||
|
||||
// Fail due to invalid banner
|
||||
k, rest, curve, err = UnmarshalPublicKeyFromPEM(rest)
|
||||
assert.Nil(t, k)
|
||||
assert.Equal(t, Curve_CURVE25519, curve)
|
||||
require.EqualError(t, err, "bytes did not contain a proper public key banner")
|
||||
assert.Equal(t, rest, invalidPem)
|
||||
|
||||
// Fail due to invalid PEM format, because
|
||||
// it's missing the requisite pre-encapsulation boundary.
|
||||
k, rest, curve, err = UnmarshalPublicKeyFromPEM(rest)
|
||||
assert.Nil(t, k)
|
||||
assert.Equal(t, Curve_CURVE25519, curve)
|
||||
assert.Equal(t, rest, invalidPem)
|
||||
require.EqualError(t, err, "input did not contain a valid PEM encoded block")
|
||||
}
|
||||
|
||||
func TestUnmarshalX25519PublicKey(t *testing.T) {
|
||||
t.Parallel()
|
||||
pubKey := []byte(`# A good key
|
||||
-----BEGIN NEBULA X25519 PUBLIC KEY-----
|
||||
AAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAA=
|
||||
-----END NEBULA X25519 PUBLIC KEY-----
|
||||
@@ -319,7 +265,7 @@ AAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAA
|
||||
AAAAAAAAAAAAAAAAAAAAAAA=
|
||||
-----END NEBULA P256 PUBLIC KEY-----
|
||||
`)
|
||||
oldPubP256Key := []byte(`# A good key
|
||||
signingKey := []byte(`# A signing key has the wrong scope for this function
|
||||
-----BEGIN NEBULA ECDSA P256 PUBLIC KEY-----
|
||||
AAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAA
|
||||
AAAAAAAAAAAAAAAAAAAAAAA=
|
||||
@@ -340,44 +286,118 @@ AAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAA=
|
||||
AAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAA=
|
||||
-END NEBULA X25519 PUBLIC KEY-----`)
|
||||
|
||||
keyBundle := appendByteSlices(pubKey, pubP256Key, oldPubP256Key, shortKey, invalidBanner, invalidPem)
|
||||
keyBundle := appendByteSlices(pubKey, pubP256Key, signingKey, shortKey, invalidBanner, invalidPem)
|
||||
|
||||
// Success test case
|
||||
// X25519 key
|
||||
k, rest, curve, err := UnmarshalPublicKeyFromPEM(keyBundle)
|
||||
assert.Len(t, k, 32)
|
||||
require.NoError(t, err)
|
||||
assert.Equal(t, rest, appendByteSlices(pubP256Key, oldPubP256Key, shortKey, invalidBanner, invalidPem))
|
||||
assert.Equal(t, rest, appendByteSlices(pubP256Key, signingKey, shortKey, invalidBanner, invalidPem))
|
||||
assert.Equal(t, Curve_CURVE25519, curve)
|
||||
|
||||
// Success test case
|
||||
// P256 key
|
||||
k, rest, curve, err = UnmarshalPublicKeyFromPEM(rest)
|
||||
assert.Len(t, k, 65)
|
||||
require.NoError(t, err)
|
||||
assert.Equal(t, rest, appendByteSlices(oldPubP256Key, shortKey, invalidBanner, invalidPem))
|
||||
assert.Equal(t, rest, appendByteSlices(signingKey, shortKey, invalidBanner, invalidPem))
|
||||
assert.Equal(t, Curve_P256, curve)
|
||||
|
||||
// Success test case
|
||||
k, rest, curve, err = UnmarshalPublicKeyFromPEM(rest)
|
||||
assert.Len(t, k, 65)
|
||||
require.NoError(t, err)
|
||||
// Reject a signing public key (Ed25519/ECDSA banner)
|
||||
k, rest, _, err = UnmarshalPublicKeyFromPEM(rest)
|
||||
assert.Nil(t, k)
|
||||
assert.Equal(t, rest, appendByteSlices(shortKey, invalidBanner, invalidPem))
|
||||
assert.Equal(t, Curve_P256, curve)
|
||||
require.EqualError(t, err, "bytes did not contain a proper public key banner")
|
||||
|
||||
// Fail due to short key
|
||||
k, rest, curve, err = UnmarshalPublicKeyFromPEM(rest)
|
||||
k, rest, _, err = UnmarshalPublicKeyFromPEM(rest)
|
||||
assert.Nil(t, k)
|
||||
assert.Equal(t, rest, appendByteSlices(invalidBanner, invalidPem))
|
||||
require.EqualError(t, err, "key was not 32 bytes, is invalid CURVE25519 public key")
|
||||
|
||||
// Fail due to invalid banner
|
||||
k, rest, curve, err = UnmarshalPublicKeyFromPEM(rest)
|
||||
k, rest, _, err = UnmarshalPublicKeyFromPEM(rest)
|
||||
assert.Nil(t, k)
|
||||
require.EqualError(t, err, "bytes did not contain a proper public key banner")
|
||||
assert.Equal(t, rest, invalidPem)
|
||||
|
||||
// Fail due to invalid PEM format, because
|
||||
// it's missing the requisite pre-encapsulation boundary.
|
||||
k, rest, curve, err = UnmarshalPublicKeyFromPEM(rest)
|
||||
k, rest, _, err = UnmarshalPublicKeyFromPEM(rest)
|
||||
assert.Nil(t, k)
|
||||
assert.Equal(t, rest, invalidPem)
|
||||
require.EqualError(t, err, "input did not contain a valid PEM encoded block")
|
||||
}
|
||||
|
||||
func TestUnmarshalSigningPublicKeyFromPEM(t *testing.T) {
|
||||
t.Parallel()
|
||||
pubKey := []byte(`# A good key
|
||||
-----BEGIN NEBULA ED25519 PUBLIC KEY-----
|
||||
AAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAA=
|
||||
-----END NEBULA ED25519 PUBLIC KEY-----
|
||||
`)
|
||||
pubP256Key := []byte(`# A good key
|
||||
-----BEGIN NEBULA ECDSA P256 PUBLIC KEY-----
|
||||
AAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAA
|
||||
AAAAAAAAAAAAAAAAAAAAAAA=
|
||||
-----END NEBULA ECDSA P256 PUBLIC KEY-----
|
||||
`)
|
||||
ecdhKey := []byte(`# A key-agreement key has the wrong scope for this function
|
||||
-----BEGIN NEBULA X25519 PUBLIC KEY-----
|
||||
AAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAA=
|
||||
-----END NEBULA X25519 PUBLIC KEY-----
|
||||
`)
|
||||
shortKey := []byte(`# A short key
|
||||
-----BEGIN NEBULA ED25519 PUBLIC KEY-----
|
||||
AAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAA==
|
||||
-----END NEBULA ED25519 PUBLIC KEY-----
|
||||
`)
|
||||
invalidBanner := []byte(`# Invalid banner
|
||||
-----BEGIN NOT A NEBULA PUBLIC KEY-----
|
||||
AAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAA=
|
||||
-----END NOT A NEBULA PUBLIC KEY-----
|
||||
`)
|
||||
invalidPem := []byte(`# Not a valid PEM format
|
||||
-BEGIN NEBULA ED25519 PUBLIC KEY-----
|
||||
AAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAAA=
|
||||
-END NEBULA ED25519 PUBLIC KEY-----`)
|
||||
|
||||
keyBundle := appendByteSlices(pubKey, pubP256Key, ecdhKey, shortKey, invalidBanner, invalidPem)
|
||||
|
||||
// Ed25519 key
|
||||
k, rest, curve, err := UnmarshalSigningPublicKeyFromPEM(keyBundle)
|
||||
assert.Len(t, k, 32)
|
||||
require.NoError(t, err)
|
||||
assert.Equal(t, rest, appendByteSlices(pubP256Key, ecdhKey, shortKey, invalidBanner, invalidPem))
|
||||
assert.Equal(t, Curve_CURVE25519, curve)
|
||||
|
||||
// ECDSA P256 key
|
||||
k, rest, curve, err = UnmarshalSigningPublicKeyFromPEM(rest)
|
||||
assert.Len(t, k, 65)
|
||||
require.NoError(t, err)
|
||||
assert.Equal(t, rest, appendByteSlices(ecdhKey, shortKey, invalidBanner, invalidPem))
|
||||
assert.Equal(t, Curve_P256, curve)
|
||||
|
||||
// Reject a key-agreement public key (X25519/P256 banner)
|
||||
k, rest, _, err = UnmarshalSigningPublicKeyFromPEM(rest)
|
||||
assert.Nil(t, k)
|
||||
assert.Equal(t, rest, appendByteSlices(shortKey, invalidBanner, invalidPem))
|
||||
require.EqualError(t, err, "bytes did not contain a proper Ed25519/ECDSA public key banner")
|
||||
|
||||
// Fail due to short key
|
||||
k, rest, _, err = UnmarshalSigningPublicKeyFromPEM(rest)
|
||||
assert.Nil(t, k)
|
||||
assert.Equal(t, rest, appendByteSlices(invalidBanner, invalidPem))
|
||||
require.EqualError(t, err, "key was not 32 bytes, is invalid CURVE25519 public key")
|
||||
|
||||
// Fail due to invalid banner
|
||||
k, rest, _, err = UnmarshalSigningPublicKeyFromPEM(rest)
|
||||
assert.Nil(t, k)
|
||||
require.EqualError(t, err, "bytes did not contain a proper Ed25519/ECDSA public key banner")
|
||||
assert.Equal(t, rest, invalidPem)
|
||||
|
||||
// Fail due to invalid PEM format, because
|
||||
// it's missing the requisite pre-encapsulation boundary.
|
||||
k, rest, _, err = UnmarshalSigningPublicKeyFromPEM(rest)
|
||||
assert.Nil(t, k)
|
||||
assert.Equal(t, rest, invalidPem)
|
||||
require.EqualError(t, err, "input did not contain a valid PEM encoded block")
|
||||
|
||||
+10
-4
@@ -14,6 +14,12 @@ import (
|
||||
"golang.org/x/crypto/ed25519"
|
||||
)
|
||||
|
||||
// testCertNow is the reference "now" used to derive default before/after times
|
||||
// in NewTestCaCert and NewTestCert. Holding it fixed for the lifetime of the
|
||||
// test binary keeps CA and leaf defaults aligned at the same second, so a leaf
|
||||
// signed with default times can never expire after its CA on a rounding race.
|
||||
var testCertNow = time.Now().Round(time.Second)
|
||||
|
||||
// NewTestCaCert will create a new ca certificate
|
||||
func NewTestCaCert(version cert.Version, curve cert.Curve, before, after time.Time, networks, unsafeNetworks []netip.Prefix, groups []string) (cert.Certificate, []byte, []byte, []byte) {
|
||||
var err error
|
||||
@@ -35,10 +41,10 @@ func NewTestCaCert(version cert.Version, curve cert.Curve, before, after time.Ti
|
||||
}
|
||||
|
||||
if before.IsZero() {
|
||||
before = time.Now().Add(time.Second * -60).Round(time.Second)
|
||||
before = testCertNow.Add(time.Second * -60)
|
||||
}
|
||||
if after.IsZero() {
|
||||
after = time.Now().Add(time.Second * 60).Round(time.Second)
|
||||
after = testCertNow.Add(time.Second * 60)
|
||||
}
|
||||
|
||||
t := &cert.TBSCertificate{
|
||||
@@ -71,11 +77,11 @@ func NewTestCaCert(version cert.Version, curve cert.Curve, before, after time.Ti
|
||||
// Expiry times are defaulted if you do not pass them in
|
||||
func NewTestCert(v cert.Version, curve cert.Curve, ca cert.Certificate, key []byte, name string, before, after time.Time, networks, unsafeNetworks []netip.Prefix, groups []string) (cert.Certificate, []byte, []byte, []byte) {
|
||||
if before.IsZero() {
|
||||
before = time.Now().Add(time.Second * -60).Round(time.Second)
|
||||
before = testCertNow.Add(time.Second * -60)
|
||||
}
|
||||
|
||||
if after.IsZero() {
|
||||
after = time.Now().Add(time.Second * 60).Round(time.Second)
|
||||
after = testCertNow.Add(time.Second * 60)
|
||||
}
|
||||
|
||||
var pub, priv []byte
|
||||
|
||||
+41
-8
@@ -3,6 +3,7 @@ package main
|
||||
import (
|
||||
"crypto/ecdsa"
|
||||
"crypto/elliptic"
|
||||
"crypto/fips140"
|
||||
"crypto/rand"
|
||||
"flag"
|
||||
"fmt"
|
||||
@@ -43,6 +44,13 @@ type caFlags struct {
|
||||
subnets *string
|
||||
}
|
||||
|
||||
func defaultCurve() string {
|
||||
if fips140.Enforced() {
|
||||
return "P256"
|
||||
}
|
||||
return "25519"
|
||||
}
|
||||
|
||||
func newCaFlags() *caFlags {
|
||||
cf := caFlags{set: flag.NewFlagSet("ca", flag.ContinueOnError)}
|
||||
cf.set.Usage = func() {}
|
||||
@@ -59,7 +67,7 @@ func newCaFlags() *caFlags {
|
||||
cf.argonParallelism = cf.set.Uint("argon-parallelism", 4, "Optional: Argon2 parallelism parameter used for encrypted private key passphrase")
|
||||
cf.argonIterations = cf.set.Uint("argon-iterations", 1, "Optional: Argon2 iterations parameter used for encrypted private key passphrase")
|
||||
cf.encryption = cf.set.Bool("encrypt", false, "Optional: prompt for passphrase and write out-key in an encrypted format")
|
||||
cf.curve = cf.set.String("curve", "25519", "EdDSA/ECDSA Curve (25519, P256)")
|
||||
cf.curve = cf.set.String("curve", defaultCurve(), "EdDSA/ECDSA Curve (25519, P256)")
|
||||
cf.p11url = p11Flag(cf.set)
|
||||
|
||||
cf.ips = cf.set.String("ips", "", "Deprecated, see -networks")
|
||||
@@ -97,6 +105,19 @@ func ca(args []string, out io.Writer, errOut io.Writer, pr PasswordReader) error
|
||||
if err = mustFlagString("out-key", cf.outKeyPath); err != nil {
|
||||
return err
|
||||
}
|
||||
} else {
|
||||
// out-key is meaningless under PKCS#11 because the private key never
|
||||
// leaves the HSM; reject it so we never silently accept or claim a
|
||||
// stdout slot for it.
|
||||
outKeySet := false
|
||||
cf.set.Visit(func(f *flag.Flag) {
|
||||
if f.Name == "out-key" {
|
||||
outKeySet = true
|
||||
}
|
||||
})
|
||||
if outKeySet {
|
||||
return newHelpErrorf("cannot set -out-key with -pkcs11")
|
||||
}
|
||||
}
|
||||
if err := mustFlagString("out-crt", cf.outCertPath); err != nil {
|
||||
return err
|
||||
@@ -171,12 +192,21 @@ func ca(args []string, out io.Writer, errOut io.Writer, pr PasswordReader) error
|
||||
}
|
||||
}
|
||||
|
||||
var claims ioClaims
|
||||
if err := reserveOutputs(&claims,
|
||||
"out-key", *cf.outKeyPath,
|
||||
"out-crt", *cf.outCertPath,
|
||||
"out-qr", *cf.outQRPath,
|
||||
); err != nil {
|
||||
return err
|
||||
}
|
||||
|
||||
var passphrase []byte
|
||||
if !isP11 && *cf.encryption {
|
||||
passphrase = []byte(os.Getenv("NEBULA_CA_PASSPHRASE"))
|
||||
if len(passphrase) == 0 {
|
||||
for i := 0; i < 5; i++ {
|
||||
out.Write([]byte("Enter passphrase: "))
|
||||
errOut.Write([]byte("Enter passphrase: "))
|
||||
passphrase, err = pr.ReadPassword()
|
||||
|
||||
if err == ErrNoTerminal {
|
||||
@@ -261,14 +291,16 @@ func ca(args []string, out io.Writer, errOut io.Writer, pr PasswordReader) error
|
||||
Curve: curve,
|
||||
}
|
||||
|
||||
if !isP11 {
|
||||
if !isP11 && !isStdio(*cf.outKeyPath) {
|
||||
if _, err := os.Stat(*cf.outKeyPath); err == nil {
|
||||
return fmt.Errorf("refusing to overwrite existing CA key: %s", *cf.outKeyPath)
|
||||
}
|
||||
}
|
||||
|
||||
if _, err := os.Stat(*cf.outCertPath); err == nil {
|
||||
return fmt.Errorf("refusing to overwrite existing CA cert: %s", *cf.outCertPath)
|
||||
if !isStdio(*cf.outCertPath) {
|
||||
if _, err := os.Stat(*cf.outCertPath); err == nil {
|
||||
return fmt.Errorf("refusing to overwrite existing CA cert: %s", *cf.outCertPath)
|
||||
}
|
||||
}
|
||||
|
||||
var c cert.Certificate
|
||||
@@ -294,7 +326,7 @@ func ca(args []string, out io.Writer, errOut io.Writer, pr PasswordReader) error
|
||||
b = cert.MarshalSigningPrivateKeyToPEM(curve, rawPriv)
|
||||
}
|
||||
|
||||
err = os.WriteFile(*cf.outKeyPath, b, 0600)
|
||||
err = writeOutput(*cf.outKeyPath, b, 0600, out)
|
||||
if err != nil {
|
||||
return fmt.Errorf("error while writing out-key: %s", err)
|
||||
}
|
||||
@@ -305,7 +337,7 @@ func ca(args []string, out io.Writer, errOut io.Writer, pr PasswordReader) error
|
||||
return fmt.Errorf("error while marshalling certificate: %s", err)
|
||||
}
|
||||
|
||||
err = os.WriteFile(*cf.outCertPath, b, 0600)
|
||||
err = writeOutput(*cf.outCertPath, b, 0600, out)
|
||||
if err != nil {
|
||||
return fmt.Errorf("error while writing out-crt: %s", err)
|
||||
}
|
||||
@@ -316,7 +348,7 @@ func ca(args []string, out io.Writer, errOut io.Writer, pr PasswordReader) error
|
||||
return fmt.Errorf("error while generating qr code: %s", err)
|
||||
}
|
||||
|
||||
err = os.WriteFile(*cf.outQRPath, b, 0600)
|
||||
err = writeOutput(*cf.outQRPath, b, 0600, out)
|
||||
if err != nil {
|
||||
return fmt.Errorf("error while writing out-qr: %s", err)
|
||||
}
|
||||
@@ -332,6 +364,7 @@ func caSummary() string {
|
||||
func caHelp(out io.Writer) {
|
||||
cf := newCaFlags()
|
||||
out.Write([]byte("Usage of " + os.Args[0] + " " + caSummary() + "\n"))
|
||||
out.Write([]byte(stdioHelpText))
|
||||
cf.set.SetOutput(out)
|
||||
cf.set.PrintDefaults()
|
||||
}
|
||||
|
||||
@@ -27,6 +27,7 @@ func Test_caHelp(t *testing.T) {
|
||||
assert.Equal(
|
||||
t,
|
||||
"Usage of "+os.Args[0]+" ca <flags>: create a self signed certificate authority\n"+
|
||||
" Pass \"-\" to any path flag to read from stdin or write to stdout.\n"+
|
||||
" -argon-iterations uint\n"+
|
||||
" \tOptional: Argon2 iterations parameter used for encrypted private key passphrase (default 1)\n"+
|
||||
" -argon-memory uint\n"+
|
||||
@@ -84,7 +85,7 @@ func Test_ca(t *testing.T) {
|
||||
err: nil,
|
||||
}
|
||||
|
||||
pwPromptOb := "Enter passphrase: "
|
||||
pwPromptEB := "Enter passphrase: "
|
||||
|
||||
// required args
|
||||
assertHelpError(t, ca(
|
||||
@@ -168,8 +169,8 @@ func Test_ca(t *testing.T) {
|
||||
eb.Reset()
|
||||
args = []string{"-version", "1", "-encrypt", "-name", "test", "-duration", "100m", "-groups", "1,2,3,4,5", "-out-crt", crtF.Name(), "-out-key", keyF.Name()}
|
||||
require.NoError(t, ca(args, ob, eb, testpw))
|
||||
assert.Equal(t, pwPromptOb, ob.String())
|
||||
assert.Empty(t, eb.String())
|
||||
assert.Empty(t, ob.String())
|
||||
assert.Equal(t, pwPromptEB, eb.String())
|
||||
|
||||
// test encrypted key with passphrase environment variable
|
||||
os.Remove(keyF.Name())
|
||||
@@ -207,8 +208,8 @@ func Test_ca(t *testing.T) {
|
||||
eb.Reset()
|
||||
args = []string{"-version", "1", "-encrypt", "-name", "test", "-duration", "100m", "-groups", "1,2,3,4,5", "-out-crt", crtF.Name(), "-out-key", keyF.Name()}
|
||||
require.Error(t, ca(args, ob, eb, errpw))
|
||||
assert.Equal(t, pwPromptOb, ob.String())
|
||||
assert.Empty(t, eb.String())
|
||||
assert.Empty(t, ob.String())
|
||||
assert.Equal(t, pwPromptEB, eb.String())
|
||||
|
||||
// test when user fails to enter a password
|
||||
os.Remove(keyF.Name())
|
||||
@@ -217,8 +218,8 @@ func Test_ca(t *testing.T) {
|
||||
eb.Reset()
|
||||
args = []string{"-version", "1", "-encrypt", "-name", "test", "-duration", "100m", "-groups", "1,2,3,4,5", "-out-crt", crtF.Name(), "-out-key", keyF.Name()}
|
||||
require.EqualError(t, ca(args, ob, eb, nopw), "no passphrase specified, remove -encrypt flag to write out-key in plaintext")
|
||||
assert.Equal(t, strings.Repeat(pwPromptOb, 5), ob.String()) // prompts 5 times before giving up
|
||||
assert.Empty(t, eb.String())
|
||||
assert.Empty(t, ob.String())
|
||||
assert.Equal(t, strings.Repeat(pwPromptEB, 5), eb.String()) // prompts 5 times before giving up
|
||||
|
||||
// create valid cert/key for overwrite tests
|
||||
os.Remove(keyF.Name())
|
||||
@@ -247,3 +248,67 @@ func Test_ca(t *testing.T) {
|
||||
os.Remove(keyF.Name())
|
||||
|
||||
}
|
||||
|
||||
func Test_ca_stdio(t *testing.T) {
|
||||
nopw := &StubPasswordReader{}
|
||||
|
||||
keyF, err := os.CreateTemp("", "ca.key")
|
||||
require.NoError(t, err)
|
||||
os.Remove(keyF.Name())
|
||||
defer os.Remove(keyF.Name())
|
||||
|
||||
crtF, err := os.CreateTemp("", "ca.crt")
|
||||
require.NoError(t, err)
|
||||
os.Remove(crtF.Name())
|
||||
defer os.Remove(crtF.Name())
|
||||
|
||||
// out-crt on stdout, out-key on disk
|
||||
ob := &bytes.Buffer{}
|
||||
eb := &bytes.Buffer{}
|
||||
require.NoError(t, ca([]string{"-name", "test-ca", "-duration", "1h", "-out-crt", "-", "-out-key", keyF.Name()}, ob, eb, nopw))
|
||||
assert.Empty(t, eb.String())
|
||||
c, _, err := cert.UnmarshalCertificateFromPEM(ob.Bytes())
|
||||
require.NoError(t, err)
|
||||
assert.True(t, c.IsCA())
|
||||
assert.Equal(t, "test-ca", c.Name())
|
||||
|
||||
// out-key on stdout, out-crt on disk
|
||||
os.Remove(keyF.Name())
|
||||
ob.Reset()
|
||||
eb.Reset()
|
||||
require.NoError(t, ca([]string{"-name", "test-ca", "-duration", "1h", "-out-crt", crtF.Name(), "-out-key", "-"}, ob, eb, nopw))
|
||||
assert.Empty(t, eb.String())
|
||||
_, _, curve, err := cert.UnmarshalSigningPrivateKeyFromPEM(ob.Bytes())
|
||||
require.NoError(t, err)
|
||||
assert.Equal(t, cert.Curve_CURVE25519, curve)
|
||||
|
||||
// dual stdout is rejected up front
|
||||
os.Remove(crtF.Name())
|
||||
ob.Reset()
|
||||
eb.Reset()
|
||||
require.EqualError(t,
|
||||
ca([]string{"-name", "test-ca", "-duration", "1h", "-out-crt", "-", "-out-key", "-"}, ob, eb, nopw),
|
||||
`-out-key and -out-crt both set to "-", only one output may write to stdout`)
|
||||
assert.Empty(t, ob.String())
|
||||
|
||||
// an output conflict combined with -encrypt must error BEFORE prompting
|
||||
// for a passphrase; pr would record any read attempt
|
||||
tracker := &trackingPasswordReader{}
|
||||
ob.Reset()
|
||||
eb.Reset()
|
||||
require.EqualError(t,
|
||||
ca([]string{"-name", "test-ca", "-duration", "1h", "-encrypt", "-out-crt", "-", "-out-key", "-"}, ob, eb, tracker),
|
||||
`-out-key and -out-crt both set to "-", only one output may write to stdout`)
|
||||
assert.Empty(t, ob.String())
|
||||
assert.Empty(t, eb.String())
|
||||
assert.Zero(t, tracker.calls, "passphrase prompt should not have been called")
|
||||
}
|
||||
|
||||
type trackingPasswordReader struct {
|
||||
calls int
|
||||
}
|
||||
|
||||
func (pr *trackingPasswordReader) ReadPassword() ([]byte, error) {
|
||||
pr.calls++
|
||||
return []byte(""), nil
|
||||
}
|
||||
|
||||
@@ -0,0 +1,5 @@
|
||||
//go:build fips140enforce
|
||||
|
||||
//go:debug fips140=only
|
||||
|
||||
package main
|
||||
@@ -24,7 +24,7 @@ func newKeygenFlags() *keygenFlags {
|
||||
cf.set.Usage = func() {}
|
||||
cf.outPubPath = cf.set.String("out-pub", "", "Required: path to write the public key to")
|
||||
cf.outKeyPath = cf.set.String("out-key", "", "Required: path to write the private key to")
|
||||
cf.curve = cf.set.String("curve", "25519", "ECDH Curve (25519, P256)")
|
||||
cf.curve = cf.set.String("curve", defaultCurve(), "ECDH Curve (25519, P256)")
|
||||
cf.p11url = p11Flag(cf.set)
|
||||
return &cf
|
||||
}
|
||||
@@ -42,6 +42,8 @@ func keygen(args []string, out io.Writer, errOut io.Writer) error {
|
||||
if err = mustFlagString("out-key", cf.outKeyPath); err != nil {
|
||||
return err
|
||||
}
|
||||
} else if *cf.outKeyPath != "" {
|
||||
return newHelpErrorf("cannot set -out-key with -pkcs11")
|
||||
}
|
||||
if err = mustFlagString("out-pub", cf.outPubPath); err != nil {
|
||||
return err
|
||||
@@ -69,6 +71,14 @@ func keygen(args []string, out io.Writer, errOut io.Writer) error {
|
||||
}
|
||||
}
|
||||
|
||||
var claims ioClaims
|
||||
if err := reserveOutputs(&claims,
|
||||
"out-key", *cf.outKeyPath,
|
||||
"out-pub", *cf.outPubPath,
|
||||
); err != nil {
|
||||
return err
|
||||
}
|
||||
|
||||
if isP11 {
|
||||
p11Client, err := pkclient.FromUrl(*cf.p11url)
|
||||
if err != nil {
|
||||
@@ -82,12 +92,12 @@ func keygen(args []string, out io.Writer, errOut io.Writer) error {
|
||||
return fmt.Errorf("error while getting public key: %w", err)
|
||||
}
|
||||
} else {
|
||||
err = os.WriteFile(*cf.outKeyPath, cert.MarshalPrivateKeyToPEM(curve, rawPriv), 0600)
|
||||
err = writeOutput(*cf.outKeyPath, cert.MarshalPrivateKeyToPEM(curve, rawPriv), 0600, out)
|
||||
if err != nil {
|
||||
return fmt.Errorf("error while writing out-key: %s", err)
|
||||
}
|
||||
}
|
||||
err = os.WriteFile(*cf.outPubPath, cert.MarshalPublicKeyToPEM(curve, pub), 0600)
|
||||
err = writeOutput(*cf.outPubPath, cert.MarshalPublicKeyToPEM(curve, pub), 0600, out)
|
||||
if err != nil {
|
||||
return fmt.Errorf("error while writing out-pub: %s", err)
|
||||
}
|
||||
@@ -102,6 +112,7 @@ func keygenSummary() string {
|
||||
func keygenHelp(out io.Writer) {
|
||||
cf := newKeygenFlags()
|
||||
_, _ = out.Write([]byte("Usage of " + os.Args[0] + " " + keygenSummary() + "\n"))
|
||||
_, _ = out.Write([]byte(stdioHelpText))
|
||||
cf.set.SetOutput(out)
|
||||
cf.set.PrintDefaults()
|
||||
}
|
||||
|
||||
@@ -20,6 +20,7 @@ func Test_keygenHelp(t *testing.T) {
|
||||
assert.Equal(
|
||||
t,
|
||||
"Usage of "+os.Args[0]+" keygen <flags>: create a public/private key pair. the public key can be passed to `nebula-cert sign`\n"+
|
||||
" Pass \"-\" to any path flag to read from stdin or write to stdout.\n"+
|
||||
" -curve string\n"+
|
||||
" \tECDH Curve (25519, P256) (default \"25519\")\n"+
|
||||
" -out-key string\n"+
|
||||
@@ -93,3 +94,43 @@ func Test_keygen(t *testing.T) {
|
||||
require.NoError(t, err)
|
||||
assert.Len(t, lPub, 32)
|
||||
}
|
||||
|
||||
func Test_keygen_stdio(t *testing.T) {
|
||||
keyF, err := os.CreateTemp("", "test.key")
|
||||
require.NoError(t, err)
|
||||
os.Remove(keyF.Name())
|
||||
defer os.Remove(keyF.Name())
|
||||
|
||||
pubF, err := os.CreateTemp("", "test.pub")
|
||||
require.NoError(t, err)
|
||||
os.Remove(pubF.Name())
|
||||
defer os.Remove(pubF.Name())
|
||||
|
||||
// out-pub on stdout, out-key on disk
|
||||
ob := &bytes.Buffer{}
|
||||
eb := &bytes.Buffer{}
|
||||
require.NoError(t, keygen([]string{"-out-pub", "-", "-out-key", keyF.Name()}, ob, eb))
|
||||
assert.Empty(t, eb.String())
|
||||
lPub, _, curve, err := cert.UnmarshalPublicKeyFromPEM(ob.Bytes())
|
||||
require.NoError(t, err)
|
||||
assert.Equal(t, cert.Curve_CURVE25519, curve)
|
||||
assert.Len(t, lPub, 32)
|
||||
|
||||
// out-key on stdout, out-pub on disk
|
||||
os.Remove(keyF.Name())
|
||||
ob.Reset()
|
||||
eb.Reset()
|
||||
require.NoError(t, keygen([]string{"-out-pub", pubF.Name(), "-out-key", "-"}, ob, eb))
|
||||
assert.Empty(t, eb.String())
|
||||
lKey, _, curve, err := cert.UnmarshalPrivateKeyFromPEM(ob.Bytes())
|
||||
require.NoError(t, err)
|
||||
assert.Equal(t, cert.Curve_CURVE25519, curve)
|
||||
assert.Len(t, lKey, 32)
|
||||
|
||||
// both on stdout is a conflict caught up front
|
||||
ob.Reset()
|
||||
eb.Reset()
|
||||
require.EqualError(t, keygen([]string{"-out-pub", "-", "-out-key", "-"}, ob, eb),
|
||||
`-out-key and -out-pub both set to "-", only one output may write to stdout`)
|
||||
assert.Empty(t, ob.String())
|
||||
}
|
||||
|
||||
@@ -22,7 +22,9 @@ func (pr StdinPasswordReader) ReadPassword() ([]byte, error) {
|
||||
}
|
||||
|
||||
password, err := term.ReadPassword(int(os.Stdin.Fd()))
|
||||
fmt.Println()
|
||||
// Terminal echo is off while reading, so the user's Enter key does not
|
||||
// produce a visible newline. Emit one on stderr to match the prompt.
|
||||
fmt.Fprintln(os.Stderr)
|
||||
|
||||
return password, err
|
||||
}
|
||||
|
||||
@@ -40,11 +40,23 @@ func printCert(args []string, out io.Writer, errOut io.Writer) error {
|
||||
return err
|
||||
}
|
||||
|
||||
rawCert, err := os.ReadFile(*pf.path)
|
||||
var claims ioClaims
|
||||
if err := reserveInputs(&claims, "path", *pf.path); err != nil {
|
||||
return err
|
||||
}
|
||||
if err := reserveOutputs(&claims, "out-qr", *pf.outQRPath); err != nil {
|
||||
return err
|
||||
}
|
||||
|
||||
rawCert, err := readInput("path", *pf.path, &claims)
|
||||
if err != nil {
|
||||
return fmt.Errorf("unable to read cert; %s", err)
|
||||
}
|
||||
|
||||
// When the QR is going to stdout, suppress the human-readable text/json
|
||||
// output so the binary stream is not contaminated.
|
||||
qrToStdout := isStdio(*pf.outQRPath)
|
||||
|
||||
var c cert.Certificate
|
||||
var qrBytes []byte
|
||||
part := 0
|
||||
@@ -57,11 +69,13 @@ func printCert(args []string, out io.Writer, errOut io.Writer) error {
|
||||
return fmt.Errorf("error while unmarshaling cert: %s", err)
|
||||
}
|
||||
|
||||
if *pf.json {
|
||||
jsonCerts = append(jsonCerts, c)
|
||||
} else {
|
||||
_, _ = out.Write([]byte(c.String()))
|
||||
_, _ = out.Write([]byte("\n"))
|
||||
if !qrToStdout {
|
||||
if *pf.json {
|
||||
jsonCerts = append(jsonCerts, c)
|
||||
} else {
|
||||
_, _ = out.Write([]byte(c.String()))
|
||||
_, _ = out.Write([]byte("\n"))
|
||||
}
|
||||
}
|
||||
|
||||
if *pf.outQRPath != "" {
|
||||
@@ -79,7 +93,7 @@ func printCert(args []string, out io.Writer, errOut io.Writer) error {
|
||||
part++
|
||||
}
|
||||
|
||||
if *pf.json {
|
||||
if *pf.json && !qrToStdout {
|
||||
b, _ := json.Marshal(jsonCerts)
|
||||
_, _ = out.Write(b)
|
||||
_, _ = out.Write([]byte("\n"))
|
||||
@@ -91,7 +105,7 @@ func printCert(args []string, out io.Writer, errOut io.Writer) error {
|
||||
return fmt.Errorf("error while generating qr code: %s", err)
|
||||
}
|
||||
|
||||
err = os.WriteFile(*pf.outQRPath, b, 0600)
|
||||
err = writeOutput(*pf.outQRPath, b, 0600, out)
|
||||
if err != nil {
|
||||
return fmt.Errorf("error while writing out-qr: %s", err)
|
||||
}
|
||||
@@ -107,6 +121,7 @@ func printSummary() string {
|
||||
func printHelp(out io.Writer) {
|
||||
pf := newPrintFlags()
|
||||
out.Write([]byte("Usage of " + os.Args[0] + " " + printSummary() + "\n"))
|
||||
out.Write([]byte(stdioHelpText))
|
||||
pf.set.SetOutput(out)
|
||||
pf.set.PrintDefaults()
|
||||
}
|
||||
|
||||
@@ -25,6 +25,7 @@ func Test_printHelp(t *testing.T) {
|
||||
assert.Equal(
|
||||
t,
|
||||
"Usage of "+os.Args[0]+" print <flags>: prints details about a certificate\n"+
|
||||
" Pass \"-\" to any path flag to read from stdin or write to stdout.\n"+
|
||||
" -json\n"+
|
||||
" \tOptional: outputs certificates in json format\n"+
|
||||
" -out-qr string\n"+
|
||||
@@ -178,6 +179,44 @@ func Test_printCert(t *testing.T) {
|
||||
ob.String(),
|
||||
)
|
||||
assert.Empty(t, eb.String())
|
||||
|
||||
// read cert from stdin
|
||||
ob.Reset()
|
||||
eb.Reset()
|
||||
withStdin(t, bytes.NewReader(p))
|
||||
err = printCert([]string{"-json", "-path", "-"}, ob, eb)
|
||||
require.NoError(t, err)
|
||||
assert.Equal(
|
||||
t,
|
||||
`[{"details":{"curve":"CURVE25519","groups":["hi"],"isCa":false,"issuer":"`+c.Issuer()+`","name":"test","networks":["10.0.0.123/8"],"notAfter":"0001-01-01T00:00:00Z","notBefore":"0001-01-01T00:00:00Z","publicKey":"`+pk+`","unsafeNetworks":[]},"fingerprint":"`+fp+`","signature":"`+sig+`","version":1}]
|
||||
`,
|
||||
ob.String(),
|
||||
)
|
||||
assert.Empty(t, eb.String())
|
||||
|
||||
// -out-qr - sends only the PNG to stdout, suppressing the cert dump
|
||||
ob.Reset()
|
||||
eb.Reset()
|
||||
withStdin(t, bytes.NewReader(p))
|
||||
err = printCert([]string{"-path", "-", "-out-qr", "-"}, ob, eb)
|
||||
require.NoError(t, err)
|
||||
assert.Empty(t, eb.String())
|
||||
stdout := ob.Bytes()
|
||||
require.NotEmpty(t, stdout)
|
||||
// PNG magic, no PEM/JSON noise prepended
|
||||
assert.Equal(t, []byte{0x89, 'P', 'N', 'G', 0x0d, 0x0a, 0x1a, 0x0a}, stdout[:8])
|
||||
assert.NotContains(t, string(stdout), "NebulaCertificate")
|
||||
assert.NotContains(t, string(stdout), `"details"`)
|
||||
|
||||
// json + out-qr - still suppresses json
|
||||
ob.Reset()
|
||||
eb.Reset()
|
||||
withStdin(t, bytes.NewReader(p))
|
||||
err = printCert([]string{"-json", "-path", "-", "-out-qr", "-"}, ob, eb)
|
||||
require.NoError(t, err)
|
||||
assert.Empty(t, eb.String())
|
||||
assert.Equal(t, []byte{0x89, 'P', 'N', 'G'}, ob.Bytes()[:4])
|
||||
assert.NotContains(t, ob.String(), `"details"`)
|
||||
}
|
||||
|
||||
// NewTestCaCert will generate a CA cert
|
||||
|
||||
+42
-20
@@ -85,6 +85,9 @@ func signCert(args []string, out io.Writer, errOut io.Writer, pr PasswordReader)
|
||||
if !isP11 && *sf.inPubPath != "" && *sf.outKeyPath != "" {
|
||||
return newHelpErrorf("cannot set both -in-pub and -out-key")
|
||||
}
|
||||
if isP11 && *sf.outKeyPath != "" {
|
||||
return newHelpErrorf("cannot set -out-key with -pkcs11")
|
||||
}
|
||||
|
||||
var v4Networks []netip.Prefix
|
||||
var v6Networks []netip.Prefix
|
||||
@@ -102,13 +105,35 @@ func signCert(args []string, out io.Writer, errOut io.Writer, pr PasswordReader)
|
||||
return newHelpErrorf("-version must be either %v or %v", cert.Version1, cert.Version2)
|
||||
}
|
||||
|
||||
if *sf.outKeyPath == "" {
|
||||
*sf.outKeyPath = *sf.name + ".key"
|
||||
}
|
||||
if *sf.outCertPath == "" {
|
||||
*sf.outCertPath = *sf.name + ".crt"
|
||||
}
|
||||
|
||||
var claims ioClaims
|
||||
if err := reserveInputs(&claims,
|
||||
"ca-key", *sf.caKeyPath,
|
||||
"ca-crt", *sf.caCertPath,
|
||||
"in-pub", *sf.inPubPath,
|
||||
); err != nil {
|
||||
return err
|
||||
}
|
||||
if err := reserveOutputs(&claims,
|
||||
"out-key", *sf.outKeyPath,
|
||||
"out-crt", *sf.outCertPath,
|
||||
"out-qr", *sf.outQRPath,
|
||||
); err != nil {
|
||||
return err
|
||||
}
|
||||
|
||||
var curve cert.Curve
|
||||
var caKey []byte
|
||||
|
||||
if !isP11 {
|
||||
var rawCAKey []byte
|
||||
rawCAKey, err := os.ReadFile(*sf.caKeyPath)
|
||||
|
||||
rawCAKey, err = readInput("ca-key", *sf.caKeyPath, &claims)
|
||||
if err != nil {
|
||||
return fmt.Errorf("error while reading ca-key: %s", err)
|
||||
}
|
||||
@@ -121,7 +146,7 @@ func signCert(args []string, out io.Writer, errOut io.Writer, pr PasswordReader)
|
||||
if len(passphrase) == 0 {
|
||||
// ask for a passphrase until we get one
|
||||
for i := 0; i < 5; i++ {
|
||||
out.Write([]byte("Enter passphrase: "))
|
||||
errOut.Write([]byte("Enter passphrase: "))
|
||||
passphrase, err = pr.ReadPassword()
|
||||
|
||||
if errors.Is(err, ErrNoTerminal) {
|
||||
@@ -147,7 +172,7 @@ func signCert(args []string, out io.Writer, errOut io.Writer, pr PasswordReader)
|
||||
}
|
||||
}
|
||||
|
||||
rawCACert, err := os.ReadFile(*sf.caCertPath)
|
||||
rawCACert, err := readInput("ca-crt", *sf.caCertPath, &claims)
|
||||
if err != nil {
|
||||
return fmt.Errorf("error while reading ca-crt: %s", err)
|
||||
}
|
||||
@@ -245,7 +270,7 @@ func signCert(args []string, out io.Writer, errOut io.Writer, pr PasswordReader)
|
||||
|
||||
if *sf.inPubPath != "" {
|
||||
var pubCurve cert.Curve
|
||||
rawPub, err := os.ReadFile(*sf.inPubPath)
|
||||
rawPub, err := readInput("in-pub", *sf.inPubPath, &claims)
|
||||
if err != nil {
|
||||
return fmt.Errorf("error while reading in-pub: %s", err)
|
||||
}
|
||||
@@ -266,16 +291,10 @@ func signCert(args []string, out io.Writer, errOut io.Writer, pr PasswordReader)
|
||||
pub, rawPriv = newKeypair(curve)
|
||||
}
|
||||
|
||||
if *sf.outKeyPath == "" {
|
||||
*sf.outKeyPath = *sf.name + ".key"
|
||||
}
|
||||
|
||||
if *sf.outCertPath == "" {
|
||||
*sf.outCertPath = *sf.name + ".crt"
|
||||
}
|
||||
|
||||
if _, err := os.Stat(*sf.outCertPath); err == nil {
|
||||
return fmt.Errorf("refusing to overwrite existing cert: %s", *sf.outCertPath)
|
||||
if !isStdio(*sf.outCertPath) {
|
||||
if _, err := os.Stat(*sf.outCertPath); err == nil {
|
||||
return fmt.Errorf("refusing to overwrite existing cert: %s", *sf.outCertPath)
|
||||
}
|
||||
}
|
||||
|
||||
var crts []cert.Certificate
|
||||
@@ -360,11 +379,13 @@ func signCert(args []string, out io.Writer, errOut io.Writer, pr PasswordReader)
|
||||
}
|
||||
|
||||
if !isP11 && *sf.inPubPath == "" {
|
||||
if _, err := os.Stat(*sf.outKeyPath); err == nil {
|
||||
return fmt.Errorf("refusing to overwrite existing key: %s", *sf.outKeyPath)
|
||||
if !isStdio(*sf.outKeyPath) {
|
||||
if _, err := os.Stat(*sf.outKeyPath); err == nil {
|
||||
return fmt.Errorf("refusing to overwrite existing key: %s", *sf.outKeyPath)
|
||||
}
|
||||
}
|
||||
|
||||
err = os.WriteFile(*sf.outKeyPath, cert.MarshalPrivateKeyToPEM(curve, rawPriv), 0600)
|
||||
err = writeOutput(*sf.outKeyPath, cert.MarshalPrivateKeyToPEM(curve, rawPriv), 0600, out)
|
||||
if err != nil {
|
||||
return fmt.Errorf("error while writing out-key: %s", err)
|
||||
}
|
||||
@@ -379,7 +400,7 @@ func signCert(args []string, out io.Writer, errOut io.Writer, pr PasswordReader)
|
||||
b = append(b, sb...)
|
||||
}
|
||||
|
||||
err = os.WriteFile(*sf.outCertPath, b, 0600)
|
||||
err = writeOutput(*sf.outCertPath, b, 0600, out)
|
||||
if err != nil {
|
||||
return fmt.Errorf("error while writing out-crt: %s", err)
|
||||
}
|
||||
@@ -390,7 +411,7 @@ func signCert(args []string, out io.Writer, errOut io.Writer, pr PasswordReader)
|
||||
return fmt.Errorf("error while generating qr code: %s", err)
|
||||
}
|
||||
|
||||
err = os.WriteFile(*sf.outQRPath, b, 0600)
|
||||
err = writeOutput(*sf.outQRPath, b, 0600, out)
|
||||
if err != nil {
|
||||
return fmt.Errorf("error while writing out-qr: %s", err)
|
||||
}
|
||||
@@ -440,6 +461,7 @@ func signSummary() string {
|
||||
func signHelp(out io.Writer) {
|
||||
sf := newSignFlags()
|
||||
out.Write([]byte("Usage of " + os.Args[0] + " " + signSummary() + "\n"))
|
||||
out.Write([]byte(stdioHelpText))
|
||||
sf.set.SetOutput(out)
|
||||
sf.set.PrintDefaults()
|
||||
}
|
||||
|
||||
@@ -27,6 +27,7 @@ func Test_signHelp(t *testing.T) {
|
||||
assert.Equal(
|
||||
t,
|
||||
"Usage of "+os.Args[0]+" sign <flags>: create and sign a certificate\n"+
|
||||
" Pass \"-\" to any path flag to read from stdin or write to stdout.\n"+
|
||||
" -ca-crt string\n"+
|
||||
" \tOptional: path to the signing CA cert (default \"ca.crt\")\n"+
|
||||
" -ca-key string\n"+
|
||||
@@ -376,15 +377,18 @@ func Test_signCert(t *testing.T) {
|
||||
// test with the proper password
|
||||
args = []string{"-version", "1", "-ca-crt", caCrtF.Name(), "-ca-key", caKeyF.Name(), "-name", "test", "-ip", "1.1.1.1/24", "-out-crt", crtF.Name(), "-out-key", keyF.Name(), "-duration", "100m", "-subnets", "10.1.1.1/32, , 10.2.2.2/32 , , ,, 10.5.5.5/32", "-groups", "1,, 2 , ,,,3,4,5"}
|
||||
require.NoError(t, signCert(args, ob, eb, testpw))
|
||||
assert.Equal(t, "Enter passphrase: ", ob.String())
|
||||
assert.Empty(t, eb.String())
|
||||
assert.Empty(t, ob.String())
|
||||
assert.Equal(t, "Enter passphrase: ", eb.String())
|
||||
|
||||
// test with the proper password in the environment
|
||||
os.Remove(crtF.Name())
|
||||
os.Remove(keyF.Name())
|
||||
args = []string{"-version", "1", "-ca-crt", caCrtF.Name(), "-ca-key", caKeyF.Name(), "-name", "test", "-ip", "1.1.1.1/24", "-out-crt", crtF.Name(), "-out-key", keyF.Name(), "-duration", "100m", "-subnets", "10.1.1.1/32, , 10.2.2.2/32 , , ,, 10.5.5.5/32", "-groups", "1,, 2 , ,,,3,4,5"}
|
||||
os.Setenv("NEBULA_CA_PASSPHRASE", string(passphrase))
|
||||
ob.Reset()
|
||||
eb.Reset()
|
||||
require.NoError(t, signCert(args, ob, eb, testpw))
|
||||
assert.Empty(t, ob.String())
|
||||
assert.Empty(t, eb.String())
|
||||
os.Setenv("NEBULA_CA_PASSPHRASE", "")
|
||||
|
||||
@@ -395,8 +399,8 @@ func Test_signCert(t *testing.T) {
|
||||
testpw.password = []byte("invalid password")
|
||||
args = []string{"-version", "1", "-ca-crt", caCrtF.Name(), "-ca-key", caKeyF.Name(), "-name", "test", "-ip", "1.1.1.1/24", "-out-crt", crtF.Name(), "-out-key", keyF.Name(), "-duration", "100m", "-subnets", "10.1.1.1/32, , 10.2.2.2/32 , , ,, 10.5.5.5/32", "-groups", "1,, 2 , ,,,3,4,5"}
|
||||
require.Error(t, signCert(args, ob, eb, testpw))
|
||||
assert.Equal(t, "Enter passphrase: ", ob.String())
|
||||
assert.Empty(t, eb.String())
|
||||
assert.Empty(t, ob.String())
|
||||
assert.Equal(t, "Enter passphrase: ", eb.String())
|
||||
|
||||
// test with the wrong password in environment
|
||||
ob.Reset()
|
||||
@@ -416,8 +420,8 @@ func Test_signCert(t *testing.T) {
|
||||
args = []string{"-version", "1", "-ca-crt", caCrtF.Name(), "-ca-key", caKeyF.Name(), "-name", "test", "-ip", "1.1.1.1/24", "-out-crt", crtF.Name(), "-out-key", keyF.Name(), "-duration", "100m", "-subnets", "10.1.1.1/32, , 10.2.2.2/32 , , ,, 10.5.5.5/32", "-groups", "1,, 2 , ,,,3,4,5"}
|
||||
require.Error(t, signCert(args, ob, eb, nopw))
|
||||
// normally the user hitting enter on the prompt would add newlines between these
|
||||
assert.Equal(t, "Enter passphrase: Enter passphrase: Enter passphrase: Enter passphrase: Enter passphrase: ", ob.String())
|
||||
assert.Empty(t, eb.String())
|
||||
assert.Empty(t, ob.String())
|
||||
assert.Equal(t, "Enter passphrase: Enter passphrase: Enter passphrase: Enter passphrase: Enter passphrase: ", eb.String())
|
||||
|
||||
// test an error condition
|
||||
ob.Reset()
|
||||
@@ -425,6 +429,106 @@ func Test_signCert(t *testing.T) {
|
||||
|
||||
args = []string{"-version", "1", "-ca-crt", caCrtF.Name(), "-ca-key", caKeyF.Name(), "-name", "test", "-ip", "1.1.1.1/24", "-out-crt", crtF.Name(), "-out-key", keyF.Name(), "-duration", "100m", "-subnets", "10.1.1.1/32, , 10.2.2.2/32 , , ,, 10.5.5.5/32", "-groups", "1,, 2 , ,,,3,4,5"}
|
||||
require.Error(t, signCert(args, ob, eb, errpw))
|
||||
assert.Equal(t, "Enter passphrase: ", ob.String())
|
||||
assert.Empty(t, eb.String())
|
||||
assert.Empty(t, ob.String())
|
||||
assert.Equal(t, "Enter passphrase: ", eb.String())
|
||||
}
|
||||
|
||||
func Test_signCert_stdio(t *testing.T) {
|
||||
nopw := &StubPasswordReader{
|
||||
password: []byte(""),
|
||||
err: nil,
|
||||
}
|
||||
|
||||
caPub, caPriv, _ := ed25519.GenerateKey(rand.Reader)
|
||||
rawCAKey := cert.MarshalSigningPrivateKeyToPEM(cert.Curve_CURVE25519, caPriv)
|
||||
|
||||
ca, _ := NewTestCaCert("ca", caPub, caPriv, time.Now(), time.Now().Add(time.Minute*200), nil, nil, nil)
|
||||
rawCACrt, _ := ca.MarshalPEM()
|
||||
|
||||
caCrtF, err := os.CreateTemp("", "sign-cert.crt")
|
||||
require.NoError(t, err)
|
||||
defer os.Remove(caCrtF.Name())
|
||||
caCrtF.Write(rawCACrt)
|
||||
|
||||
caKeyF, err := os.CreateTemp("", "sign-cert.key")
|
||||
require.NoError(t, err)
|
||||
defer os.Remove(caKeyF.Name())
|
||||
caKeyF.Write(rawCAKey)
|
||||
|
||||
keyF, err := os.CreateTemp("", "sign.key")
|
||||
require.NoError(t, err)
|
||||
os.Remove(keyF.Name())
|
||||
defer os.Remove(keyF.Name())
|
||||
|
||||
// ca-key on stdin, cert to stdout
|
||||
withStdin(t, bytes.NewReader(rawCAKey))
|
||||
ob := &bytes.Buffer{}
|
||||
eb := &bytes.Buffer{}
|
||||
args := []string{"-version", "1", "-ca-crt", caCrtF.Name(), "-ca-key", "-", "-name", "stdin-test", "-ip", "1.1.1.1/24", "-out-crt", "-", "-out-key", keyF.Name(), "-duration", "100m"}
|
||||
require.NoError(t, signCert(args, ob, eb, nopw))
|
||||
assert.Empty(t, eb.String())
|
||||
|
||||
lCrt, _, err := cert.UnmarshalCertificateFromPEM(ob.Bytes())
|
||||
require.NoError(t, err)
|
||||
assert.Equal(t, "stdin-test", lCrt.Name())
|
||||
assert.True(t, lCrt.CheckSignature(caPub))
|
||||
|
||||
// two flags reading from stdin should error before any read attempt;
|
||||
// otherwise an interactive shell would hang on io.ReadAll
|
||||
stdinIn := bytes.NewReader(rawCAKey)
|
||||
withStdin(t, stdinIn)
|
||||
ob.Reset()
|
||||
eb.Reset()
|
||||
args = []string{"-version", "1", "-ca-crt", "-", "-ca-key", "-", "-name", "stdin-test", "-ip", "1.1.1.1/24", "-out-crt", "nope", "-out-key", "nope", "-duration", "100m"}
|
||||
require.EqualError(t, signCert(args, ob, eb, nopw),
|
||||
`-ca-key and -ca-crt both set to "-", only one input may read from stdin`)
|
||||
assert.Equal(t, len(rawCAKey), stdinIn.Len(), "stdin should be untouched when conflict is caught up front")
|
||||
|
||||
// two flags writing to stdout should error before any output is written
|
||||
// AND before stdin is consumed
|
||||
stdinR := bytes.NewReader(rawCAKey)
|
||||
withStdin(t, stdinR)
|
||||
ob.Reset()
|
||||
eb.Reset()
|
||||
args = []string{"-version", "1", "-ca-crt", caCrtF.Name(), "-ca-key", "-", "-name", "stdin-test", "-ip", "1.1.1.1/24", "-out-crt", "-", "-out-key", "-", "-duration", "100m"}
|
||||
require.EqualError(t, signCert(args, ob, eb, nopw),
|
||||
`-out-key and -out-crt both set to "-", only one output may write to stdout`)
|
||||
assert.Empty(t, ob.String())
|
||||
// stdin should be untouched because the conflict was caught up front
|
||||
assert.Equal(t, len(rawCAKey), stdinR.Len())
|
||||
|
||||
// out-key on stdout, cert on disk
|
||||
keyF2, err := os.CreateTemp("", "sign.key")
|
||||
require.NoError(t, err)
|
||||
os.Remove(keyF2.Name())
|
||||
defer os.Remove(keyF2.Name())
|
||||
crtF, err := os.CreateTemp("", "sign.crt")
|
||||
require.NoError(t, err)
|
||||
os.Remove(crtF.Name())
|
||||
defer os.Remove(crtF.Name())
|
||||
|
||||
ob.Reset()
|
||||
eb.Reset()
|
||||
args = []string{"-version", "1", "-ca-crt", caCrtF.Name(), "-ca-key", caKeyF.Name(), "-name", "stdin-test", "-ip", "1.1.1.1/24", "-out-crt", crtF.Name(), "-out-key", "-", "-duration", "100m"}
|
||||
require.NoError(t, signCert(args, ob, eb, nopw))
|
||||
assert.Empty(t, eb.String())
|
||||
_, _, curve, err := cert.UnmarshalPrivateKeyFromPEM(ob.Bytes())
|
||||
require.NoError(t, err)
|
||||
assert.Equal(t, cert.Curve_CURVE25519, curve)
|
||||
|
||||
// in-pub on stdin (caller already has a keypair, only the cert is generated)
|
||||
inPub, _ := x25519Keypair()
|
||||
rawInPub := cert.MarshalPublicKeyToPEM(cert.Curve_CURVE25519, inPub)
|
||||
|
||||
withStdin(t, bytes.NewReader(rawInPub))
|
||||
os.Remove(crtF.Name())
|
||||
ob.Reset()
|
||||
eb.Reset()
|
||||
args = []string{"-version", "1", "-ca-crt", caCrtF.Name(), "-ca-key", caKeyF.Name(), "-name", "in-pub-test", "-ip", "1.1.1.1/24", "-in-pub", "-", "-out-crt", "-", "-duration", "100m"}
|
||||
require.NoError(t, signCert(args, ob, eb, nopw))
|
||||
assert.Empty(t, eb.String())
|
||||
stdinCrt, _, err := cert.UnmarshalCertificateFromPEM(ob.Bytes())
|
||||
require.NoError(t, err)
|
||||
assert.Equal(t, "in-pub-test", stdinCrt.Name())
|
||||
assert.Equal(t, inPub, stdinCrt.PublicKey())
|
||||
}
|
||||
|
||||
@@ -0,0 +1,117 @@
|
||||
package main
|
||||
|
||||
import (
|
||||
"fmt"
|
||||
"io"
|
||||
"os"
|
||||
)
|
||||
|
||||
// stdioPath is the special path value that selects stdin (for inputs) or
|
||||
// stdout (for outputs) instead of a file on disk.
|
||||
const stdioPath = "-"
|
||||
|
||||
// stdioHelpText is rendered just under the Usage line of each subcommand
|
||||
// help so the - convention is documented once instead of on every flag.
|
||||
const stdioHelpText = " Pass \"-\" to any path flag to read from stdin or write to stdout.\n"
|
||||
|
||||
// stdinReader is the source used when an input flag is set to "-".
|
||||
// It is a package level var so tests can swap in a deterministic reader.
|
||||
// Tests that mutate stdinReader cannot run with t.Parallel().
|
||||
var stdinReader io.Reader = os.Stdin
|
||||
|
||||
// ioClaims tracks which flags have claimed stdin and stdout during a single
|
||||
// command invocation so we can refuse a second flag asking for the same
|
||||
// stream.
|
||||
type ioClaims struct {
|
||||
in string
|
||||
out string
|
||||
}
|
||||
|
||||
func (c *ioClaims) claimIn(flagName string) error {
|
||||
if c.in != "" && c.in != flagName {
|
||||
return fmt.Errorf("-%s and -%s both set to %q, only one input may read from stdin", c.in, flagName, stdioPath)
|
||||
}
|
||||
c.in = flagName
|
||||
return nil
|
||||
}
|
||||
|
||||
func (c *ioClaims) claimOut(flagName string) error {
|
||||
if c.out != "" && c.out != flagName {
|
||||
return fmt.Errorf("-%s and -%s both set to %q, only one output may write to stdout", c.out, flagName, stdioPath)
|
||||
}
|
||||
c.out = flagName
|
||||
return nil
|
||||
}
|
||||
|
||||
// reserveInputs walks alternating (flagName, path) pairs and claims stdin
|
||||
// for any path equal to stdioPath. It must be called before any input is
|
||||
// read so a conflict can be reported immediately instead of blocking on
|
||||
// io.ReadAll while waiting for input that will never arrive.
|
||||
func reserveInputs(claims *ioClaims, pairs ...string) error {
|
||||
return reserveStdio(claims, "reserveInputs", (*ioClaims).claimIn, pairs)
|
||||
}
|
||||
|
||||
// reserveOutputs walks alternating (flagName, path) pairs and claims stdout
|
||||
// for any path equal to stdioPath. It must be called before any output is
|
||||
// written so a conflict cannot leave one stream half written before the
|
||||
// second flag fails.
|
||||
func reserveOutputs(claims *ioClaims, pairs ...string) error {
|
||||
return reserveStdio(claims, "reserveOutputs", (*ioClaims).claimOut, pairs)
|
||||
}
|
||||
|
||||
func reserveStdio(claims *ioClaims, who string, claim func(*ioClaims, string) error, pairs []string) error {
|
||||
if len(pairs)%2 != 0 {
|
||||
panic(who + " requires alternating name, path pairs")
|
||||
}
|
||||
for i := 0; i < len(pairs); i += 2 {
|
||||
name, path := pairs[i], pairs[i+1]
|
||||
if path != stdioPath {
|
||||
continue
|
||||
}
|
||||
if err := claim(claims, name); err != nil {
|
||||
return err
|
||||
}
|
||||
}
|
||||
return nil
|
||||
}
|
||||
|
||||
// readInput returns the bytes referenced by path, reading from stdin when
|
||||
// path is stdioPath.
|
||||
func readInput(flagName, path string, claims *ioClaims) ([]byte, error) {
|
||||
if path == stdioPath {
|
||||
if err := claims.claimIn(flagName); err != nil {
|
||||
return nil, err
|
||||
}
|
||||
return io.ReadAll(stdinReader)
|
||||
}
|
||||
return os.ReadFile(path)
|
||||
}
|
||||
|
||||
// openInput returns a reader for path. When path is stdioPath the returned
|
||||
// reader wraps stdin and Close is a no-op.
|
||||
func openInput(flagName, path string, claims *ioClaims) (io.ReadCloser, error) {
|
||||
if path == stdioPath {
|
||||
if err := claims.claimIn(flagName); err != nil {
|
||||
return nil, err
|
||||
}
|
||||
return io.NopCloser(stdinReader), nil
|
||||
}
|
||||
return os.Open(path)
|
||||
}
|
||||
|
||||
// writeOutput writes data to path, or to stdout when path is stdioPath. perm
|
||||
// is only used for file output. The caller must have already claimed stdout
|
||||
// via reserveOutputs before invoking with stdioPath.
|
||||
func writeOutput(path string, data []byte, perm os.FileMode, stdout io.Writer) error {
|
||||
if path == stdioPath {
|
||||
_, err := stdout.Write(data)
|
||||
return err
|
||||
}
|
||||
return os.WriteFile(path, data, perm)
|
||||
}
|
||||
|
||||
// isStdio reports whether path is the stdio sentinel and so should skip
|
||||
// existence checks like "refuse to overwrite".
|
||||
func isStdio(path string) bool {
|
||||
return path == stdioPath
|
||||
}
|
||||
@@ -0,0 +1,167 @@
|
||||
package main
|
||||
|
||||
import (
|
||||
"bytes"
|
||||
"io"
|
||||
"os"
|
||||
"path/filepath"
|
||||
"testing"
|
||||
|
||||
"github.com/stretchr/testify/assert"
|
||||
"github.com/stretchr/testify/require"
|
||||
)
|
||||
|
||||
// withStdin temporarily replaces stdinReader for the duration of t.
|
||||
func withStdin(t *testing.T, r io.Reader) {
|
||||
t.Helper()
|
||||
prev := stdinReader
|
||||
stdinReader = r
|
||||
t.Cleanup(func() { stdinReader = prev })
|
||||
}
|
||||
|
||||
func Test_readInput_stdin(t *testing.T) {
|
||||
withStdin(t, bytes.NewBufferString("hello"))
|
||||
var claims ioClaims
|
||||
|
||||
got, err := readInput("path", "-", &claims)
|
||||
require.NoError(t, err)
|
||||
assert.Equal(t, []byte("hello"), got)
|
||||
assert.Equal(t, "path", claims.in)
|
||||
}
|
||||
|
||||
func Test_readInput_file(t *testing.T) {
|
||||
dir := t.TempDir()
|
||||
p := filepath.Join(dir, "f")
|
||||
require.NoError(t, os.WriteFile(p, []byte("file"), 0600))
|
||||
var claims ioClaims
|
||||
|
||||
got, err := readInput("path", p, &claims)
|
||||
require.NoError(t, err)
|
||||
assert.Equal(t, []byte("file"), got)
|
||||
assert.Empty(t, claims.in)
|
||||
}
|
||||
|
||||
func Test_readInput_doubleStdinErrors(t *testing.T) {
|
||||
withStdin(t, bytes.NewBufferString("hello"))
|
||||
var claims ioClaims
|
||||
|
||||
_, err := readInput("ca-key", "-", &claims)
|
||||
require.NoError(t, err)
|
||||
|
||||
_, err = readInput("ca-crt", "-", &claims)
|
||||
require.EqualError(t, err, `-ca-key and -ca-crt both set to "-", only one input may read from stdin`)
|
||||
}
|
||||
|
||||
func Test_openInput_stdin(t *testing.T) {
|
||||
withStdin(t, bytes.NewBufferString("hi"))
|
||||
var claims ioClaims
|
||||
|
||||
r, err := openInput("ca", "-", &claims)
|
||||
require.NoError(t, err)
|
||||
defer r.Close()
|
||||
b, err := io.ReadAll(r)
|
||||
require.NoError(t, err)
|
||||
assert.Equal(t, []byte("hi"), b)
|
||||
}
|
||||
|
||||
func Test_openInput_doubleStdinErrors(t *testing.T) {
|
||||
withStdin(t, bytes.NewBufferString("hi"))
|
||||
var claims ioClaims
|
||||
|
||||
r, err := openInput("ca", "-", &claims)
|
||||
require.NoError(t, err)
|
||||
r.Close()
|
||||
|
||||
_, err = openInput("crt", "-", &claims)
|
||||
require.EqualError(t, err, `-ca and -crt both set to "-", only one input may read from stdin`)
|
||||
}
|
||||
|
||||
func Test_writeOutput_stdout(t *testing.T) {
|
||||
out := &bytes.Buffer{}
|
||||
|
||||
err := writeOutput("-", []byte("payload"), 0600, out)
|
||||
require.NoError(t, err)
|
||||
assert.Equal(t, "payload", out.String())
|
||||
}
|
||||
|
||||
func Test_writeOutput_file(t *testing.T) {
|
||||
dir := t.TempDir()
|
||||
p := filepath.Join(dir, "f")
|
||||
out := &bytes.Buffer{}
|
||||
|
||||
err := writeOutput(p, []byte("payload"), 0600, out)
|
||||
require.NoError(t, err)
|
||||
assert.Empty(t, out.String())
|
||||
got, err := os.ReadFile(p)
|
||||
require.NoError(t, err)
|
||||
assert.Equal(t, []byte("payload"), got)
|
||||
}
|
||||
|
||||
func Test_reserveOutputs_noConflict(t *testing.T) {
|
||||
var claims ioClaims
|
||||
require.NoError(t, reserveOutputs(&claims,
|
||||
"out-key", "/tmp/key",
|
||||
"out-crt", "-",
|
||||
"out-qr", "",
|
||||
))
|
||||
assert.Equal(t, "out-crt", claims.out)
|
||||
}
|
||||
|
||||
func Test_reserveOutputs_conflict(t *testing.T) {
|
||||
var claims ioClaims
|
||||
err := reserveOutputs(&claims,
|
||||
"out-key", "-",
|
||||
"out-crt", "-",
|
||||
)
|
||||
require.EqualError(t, err, `-out-key and -out-crt both set to "-", only one output may write to stdout`)
|
||||
}
|
||||
|
||||
func Test_reserveOutputs_panicsOnOddPairs(t *testing.T) {
|
||||
defer func() {
|
||||
r := recover()
|
||||
require.NotNil(t, r)
|
||||
}()
|
||||
var claims ioClaims
|
||||
_ = reserveOutputs(&claims, "out-key")
|
||||
}
|
||||
|
||||
func Test_reserveInputs_noConflict(t *testing.T) {
|
||||
var claims ioClaims
|
||||
require.NoError(t, reserveInputs(&claims,
|
||||
"ca-key", "/tmp/ca.key",
|
||||
"ca-crt", "-",
|
||||
"in-pub", "",
|
||||
))
|
||||
assert.Equal(t, "ca-crt", claims.in)
|
||||
}
|
||||
|
||||
func Test_reserveInputs_conflict(t *testing.T) {
|
||||
var claims ioClaims
|
||||
err := reserveInputs(&claims,
|
||||
"ca-key", "-",
|
||||
"ca-crt", "-",
|
||||
)
|
||||
require.EqualError(t, err, `-ca-key and -ca-crt both set to "-", only one input may read from stdin`)
|
||||
}
|
||||
|
||||
func Test_claimIn_idempotent(t *testing.T) {
|
||||
// pre-claim then a lazy re-claim of the same flag should be a no-op
|
||||
var claims ioClaims
|
||||
require.NoError(t, claims.claimIn("ca-key"))
|
||||
require.NoError(t, claims.claimIn("ca-key"))
|
||||
assert.Equal(t, "ca-key", claims.in)
|
||||
}
|
||||
|
||||
func Test_claimOut_idempotent(t *testing.T) {
|
||||
var claims ioClaims
|
||||
require.NoError(t, claims.claimOut("out-crt"))
|
||||
require.NoError(t, claims.claimOut("out-crt"))
|
||||
assert.Equal(t, "out-crt", claims.out)
|
||||
}
|
||||
|
||||
func Test_isStdio(t *testing.T) {
|
||||
assert.True(t, isStdio("-"))
|
||||
assert.False(t, isStdio(""))
|
||||
assert.False(t, isStdio("./-"))
|
||||
assert.False(t, isStdio("foo"))
|
||||
}
|
||||
@@ -39,18 +39,26 @@ func verify(args []string, out io.Writer, errOut io.Writer) error {
|
||||
return err
|
||||
}
|
||||
|
||||
caFile, err := os.Open(*vf.caPath)
|
||||
var claims ioClaims
|
||||
if err := reserveInputs(&claims,
|
||||
"ca", *vf.caPath,
|
||||
"crt", *vf.certPath,
|
||||
); err != nil {
|
||||
return err
|
||||
}
|
||||
|
||||
caReader, err := openInput("ca", *vf.caPath, &claims)
|
||||
if err != nil {
|
||||
return fmt.Errorf("error while reading ca: %w", err)
|
||||
}
|
||||
defer caFile.Close()
|
||||
defer caReader.Close()
|
||||
|
||||
caPool, err := cert.NewCAPoolFromPEMReader(caFile)
|
||||
caPool, err := cert.NewCAPoolFromPEMReader(caReader)
|
||||
if err != nil && !errors.Is(err, cert.ErrExpired) {
|
||||
return fmt.Errorf("error while adding ca cert to pool: %w", err)
|
||||
}
|
||||
|
||||
rawCert, err := os.ReadFile(*vf.certPath)
|
||||
rawCert, err := readInput("crt", *vf.certPath, &claims)
|
||||
if err != nil {
|
||||
return fmt.Errorf("unable to read crt: %w", err)
|
||||
}
|
||||
@@ -85,6 +93,7 @@ func verifySummary() string {
|
||||
func verifyHelp(out io.Writer) {
|
||||
vf := newVerifyFlags()
|
||||
_, _ = out.Write([]byte("Usage of " + os.Args[0] + " " + verifySummary() + "\n"))
|
||||
_, _ = out.Write([]byte(stdioHelpText))
|
||||
vf.set.SetOutput(out)
|
||||
vf.set.PrintDefaults()
|
||||
}
|
||||
|
||||
@@ -23,6 +23,7 @@ func Test_verifyHelp(t *testing.T) {
|
||||
assert.Equal(
|
||||
t,
|
||||
"Usage of "+os.Args[0]+" verify <flags>: verifies a certificate isn't expired and was signed by a trusted authority.\n"+
|
||||
" Pass \"-\" to any path flag to read from stdin or write to stdout.\n"+
|
||||
" -ca string\n"+
|
||||
" \tRequired: path to a file containing one or more ca certificates\n"+
|
||||
" -crt string\n"+
|
||||
@@ -122,3 +123,46 @@ func Test_verify(t *testing.T) {
|
||||
assert.Empty(t, eb.String())
|
||||
require.NoError(t, err)
|
||||
}
|
||||
|
||||
func Test_verify_stdio(t *testing.T) {
|
||||
ob := &bytes.Buffer{}
|
||||
eb := &bytes.Buffer{}
|
||||
|
||||
caPub, caPriv, _ := ed25519.GenerateKey(rand.Reader)
|
||||
ca, _ := NewTestCaCert("test-ca", caPub, caPriv, time.Now().Add(time.Hour*-1), time.Now().Add(time.Hour*2), nil, nil, nil)
|
||||
caPEM, _ := ca.MarshalPEM()
|
||||
|
||||
crt, _ := NewTestCert(ca, caPriv, "test-cert", time.Now().Add(time.Hour*-1), time.Now().Add(time.Hour), nil, nil, nil)
|
||||
crtPEM, _ := crt.MarshalPEM()
|
||||
|
||||
caFile, err := os.CreateTemp("", "verify-ca")
|
||||
require.NoError(t, err)
|
||||
defer os.Remove(caFile.Name())
|
||||
caFile.Write(caPEM)
|
||||
|
||||
// crt on stdin, ca on disk
|
||||
withStdin(t, bytes.NewReader(crtPEM))
|
||||
require.NoError(t, verify([]string{"-ca", caFile.Name(), "-crt", "-"}, ob, eb))
|
||||
assert.Empty(t, ob.String())
|
||||
assert.Empty(t, eb.String())
|
||||
|
||||
// ca on stdin, crt on disk
|
||||
certFile, err := os.CreateTemp("", "verify-cert")
|
||||
require.NoError(t, err)
|
||||
defer os.Remove(certFile.Name())
|
||||
certFile.Write(crtPEM)
|
||||
|
||||
withStdin(t, bytes.NewReader(caPEM))
|
||||
ob.Reset()
|
||||
eb.Reset()
|
||||
require.NoError(t, verify([]string{"-ca", "-", "-crt", certFile.Name()}, ob, eb))
|
||||
assert.Empty(t, ob.String())
|
||||
assert.Empty(t, eb.String())
|
||||
|
||||
// both flags on stdin should error
|
||||
withStdin(t, bytes.NewReader(caPEM))
|
||||
ob.Reset()
|
||||
eb.Reset()
|
||||
require.EqualError(t, verify([]string{"-ca", "-", "-crt", "-"}, ob, eb),
|
||||
`-ca and -crt both set to "-", only one input may read from stdin`)
|
||||
}
|
||||
|
||||
@@ -0,0 +1,5 @@
|
||||
//go:build fips140enforce
|
||||
|
||||
//go:debug fips140=only
|
||||
|
||||
package main
|
||||
@@ -53,7 +53,12 @@ func main() {
|
||||
l := logging.NewLogger(os.Stdout)
|
||||
|
||||
if *serviceFlag != "" {
|
||||
if err := doService(configPath, configTest, Build, serviceFlag); err != nil {
|
||||
if *configTest {
|
||||
fmt.Println("-test is not supported with -service, run the config test without -service")
|
||||
os.Exit(1)
|
||||
}
|
||||
|
||||
if err := doService(configPath, Build, serviceFlag); err != nil {
|
||||
l.Error("Service command failed", "error", err)
|
||||
os.Exit(1)
|
||||
}
|
||||
@@ -61,9 +66,12 @@ func main() {
|
||||
}
|
||||
|
||||
if *configPath == "" {
|
||||
fmt.Println("-config flag must be set")
|
||||
flag.Usage()
|
||||
os.Exit(1)
|
||||
p, err := config.DefaultPath()
|
||||
if err != nil {
|
||||
fmt.Println(err)
|
||||
os.Exit(1)
|
||||
}
|
||||
*configPath = p
|
||||
}
|
||||
|
||||
c := config.NewC(l)
|
||||
@@ -90,15 +98,14 @@ func main() {
|
||||
}
|
||||
|
||||
if !*configTest {
|
||||
wait, err := ctrl.Start()
|
||||
if err != nil {
|
||||
if err := ctrl.Start(); err != nil {
|
||||
util.LogWithContextIfNeeded("Error while running", err, l)
|
||||
os.Exit(1)
|
||||
}
|
||||
|
||||
go ctrl.ShutdownBlock()
|
||||
|
||||
if err := wait(); err != nil {
|
||||
if err := ctrl.Wait(); err != nil {
|
||||
l.Error("Nebula stopped due to fatal error", "error", err)
|
||||
os.Exit(2)
|
||||
}
|
||||
|
||||
@@ -4,7 +4,6 @@ import (
|
||||
"fmt"
|
||||
"log"
|
||||
"os"
|
||||
"path/filepath"
|
||||
|
||||
"github.com/kardianos/service"
|
||||
"github.com/slackhq/nebula"
|
||||
@@ -16,7 +15,6 @@ var logger service.Logger
|
||||
|
||||
type program struct {
|
||||
configPath *string
|
||||
configTest *bool
|
||||
build string
|
||||
control *nebula.Control
|
||||
}
|
||||
@@ -42,39 +40,47 @@ func (p *program) Start(s service.Service) error {
|
||||
}
|
||||
})
|
||||
|
||||
p.control, err = nebula.Main(c, *p.configTest, Build, l, nil)
|
||||
p.control, err = nebula.Main(c, false, Build, l, nil)
|
||||
if err != nil {
|
||||
return err
|
||||
}
|
||||
|
||||
p.control.Start()
|
||||
if err := p.control.Start(); err != nil {
|
||||
return err
|
||||
}
|
||||
|
||||
// Nebula can stop itself on a fatal packet reader error, make sure to log it if it happens.
|
||||
go func() {
|
||||
if err := p.control.Wait(); err != nil {
|
||||
logger.Error(fmt.Sprintf("Nebula stopped due to fatal error: %v", err))
|
||||
os.Exit(2)
|
||||
}
|
||||
}()
|
||||
|
||||
return nil
|
||||
}
|
||||
|
||||
func (p *program) Stop(s service.Service) error {
|
||||
logger.Info("Nebula service stopping.")
|
||||
if p.control == nil {
|
||||
return nil
|
||||
}
|
||||
|
||||
p.control.Stop()
|
||||
|
||||
// block until nebula has fully drained before reporting stopped.
|
||||
// error logging is handled by Start.
|
||||
_ = p.control.Wait()
|
||||
return nil
|
||||
}
|
||||
|
||||
func fileExists(filename string) bool {
|
||||
_, err := os.Stat(filename)
|
||||
if os.IsNotExist(err) {
|
||||
return false
|
||||
}
|
||||
return true
|
||||
}
|
||||
|
||||
func doService(configPath *string, configTest *bool, build string, serviceFlag *string) error {
|
||||
func doService(configPath *string, build string, serviceFlag *string) error {
|
||||
if *configPath == "" {
|
||||
ex, err := os.Executable()
|
||||
p, err := config.DefaultPath()
|
||||
if err != nil {
|
||||
return err
|
||||
}
|
||||
*configPath = filepath.Dir(ex) + "/config.yaml"
|
||||
if !fileExists(*configPath) {
|
||||
*configPath = filepath.Dir(ex) + "/config.yml"
|
||||
}
|
||||
*configPath = p
|
||||
}
|
||||
|
||||
svcConfig := &service.Config{
|
||||
@@ -86,7 +92,6 @@ func doService(configPath *string, configTest *bool, build string, serviceFlag *
|
||||
|
||||
prg := &program{
|
||||
configPath: configPath,
|
||||
configTest: configTest,
|
||||
build: build,
|
||||
}
|
||||
|
||||
@@ -118,8 +123,9 @@ func doService(configPath *string, configTest *bool, build string, serviceFlag *
|
||||
switch *serviceFlag {
|
||||
case "run":
|
||||
if err := s.Run(); err != nil {
|
||||
// Route any errors to the system logger
|
||||
// Route any errors to the system logger and report the failure
|
||||
logger.Error(err)
|
||||
return err
|
||||
}
|
||||
default:
|
||||
if err := service.Control(s, *serviceFlag); err != nil {
|
||||
|
||||
@@ -0,0 +1,96 @@
|
||||
//go:build linux && !android && !e2e_testing
|
||||
|
||||
package main
|
||||
|
||||
import (
|
||||
"fmt"
|
||||
"net/netip"
|
||||
"os"
|
||||
"path/filepath"
|
||||
"runtime"
|
||||
"testing"
|
||||
"time"
|
||||
|
||||
"github.com/slackhq/nebula"
|
||||
"github.com/slackhq/nebula/cert"
|
||||
cert_test "github.com/slackhq/nebula/cert_test"
|
||||
"github.com/slackhq/nebula/config"
|
||||
"github.com/slackhq/nebula/test"
|
||||
"github.com/stretchr/testify/require"
|
||||
)
|
||||
|
||||
// TestControlStopClosesOnTimer reproduces the dnclient lifecycle: nebula runs as
|
||||
// a library, and on a config update dnclient calls Stop() in-process to tear the
|
||||
// old instance down before starting a new one. This boots a real nebula (real
|
||||
// blocking UDP sockets, tun disabled), lets it run, then Stop()s it on a timer
|
||||
// and asserts it actually closes. If the reader goroutines parked in recvmmsg
|
||||
// don't wake on Close(), Wait() blocks forever and this fails with a goroutine
|
||||
// dump instead of relying on a process signal to unstick them.
|
||||
func TestControlStopClosesOnTimer(t *testing.T) {
|
||||
l := test.NewLogger()
|
||||
dir := t.TempDir()
|
||||
|
||||
before := time.Now().Add(-time.Hour)
|
||||
after := time.Now().Add(time.Hour)
|
||||
ca, _, caKey, caPEM := cert_test.NewTestCaCert(cert.Version2, cert.Curve_CURVE25519, before, after, nil, nil, nil)
|
||||
networks := []netip.Prefix{netip.MustParsePrefix("10.0.0.1/24")}
|
||||
_, _, keyPEM, certPEM := cert_test.NewTestCert(cert.Version2, cert.Curve_CURVE25519, ca, caKey, "close-on-timer", before, after, networks, nil, nil)
|
||||
|
||||
caPath := filepath.Join(dir, "ca.pem")
|
||||
certPath := filepath.Join(dir, "cert.pem")
|
||||
keyPath := filepath.Join(dir, "key.pem")
|
||||
require.NoError(t, os.WriteFile(caPath, caPEM, 0o600))
|
||||
require.NoError(t, os.WriteFile(certPath, certPEM, 0o600))
|
||||
require.NoError(t, os.WriteFile(keyPath, keyPEM, 0o600))
|
||||
|
||||
// tun disabled so no device/root is needed; routines: 2 so we exercise the
|
||||
// multi-socket (SO_REUSEPORT) teardown, which is where dnclient runs.
|
||||
configBody := fmt.Sprintf(`
|
||||
pki:
|
||||
ca: %s
|
||||
cert: %s
|
||||
key: %s
|
||||
listen:
|
||||
host: 127.0.0.1
|
||||
port: 0
|
||||
tun:
|
||||
disabled: true
|
||||
firewall:
|
||||
outbound:
|
||||
- port: any
|
||||
proto: any
|
||||
host: any
|
||||
inbound:
|
||||
- port: any
|
||||
proto: any
|
||||
host: any
|
||||
routines: 2
|
||||
`, caPath, certPath, keyPath)
|
||||
require.NoError(t, os.WriteFile(filepath.Join(dir, "config.yml"), []byte(configBody), 0o600))
|
||||
|
||||
c := config.NewC(l)
|
||||
require.NoError(t, c.Load(dir))
|
||||
|
||||
ctrl, err := nebula.Main(c, false, "close-on-timer", l, nil)
|
||||
require.NoError(t, err)
|
||||
require.NoError(t, ctrl.Start())
|
||||
|
||||
// Run like a live nebula, then close on a timer, exactly as dnclient does.
|
||||
<-time.NewTimer(5 * time.Second).C
|
||||
|
||||
stopped := make(chan struct{})
|
||||
go func() {
|
||||
ctrl.Stop() // closes the udp sockets (shutdown(2)) and the tun
|
||||
ctrl.Wait() // blocks until every reader goroutine has returned
|
||||
close(stopped)
|
||||
}()
|
||||
|
||||
select {
|
||||
case <-stopped:
|
||||
t.Log("nebula closed cleanly on timer")
|
||||
case <-time.After(10 * time.Second):
|
||||
buf := make([]byte, 1<<20)
|
||||
n := runtime.Stack(buf, true)
|
||||
t.Fatalf("nebula did NOT close within 10s of Stop(): a blocking reader never woke\n%s", buf[:n])
|
||||
}
|
||||
}
|
||||
@@ -0,0 +1,5 @@
|
||||
//go:build fips140enforce
|
||||
|
||||
//go:debug fips140=only
|
||||
|
||||
package main
|
||||
+8
-6
@@ -50,9 +50,12 @@ func main() {
|
||||
}
|
||||
|
||||
if *configPath == "" {
|
||||
fmt.Println("-config flag must be set")
|
||||
flag.Usage()
|
||||
os.Exit(1)
|
||||
p, err := config.DefaultPath()
|
||||
if err != nil {
|
||||
fmt.Println(err)
|
||||
os.Exit(1)
|
||||
}
|
||||
*configPath = p
|
||||
}
|
||||
|
||||
l := logging.NewLogger(os.Stdout)
|
||||
@@ -81,8 +84,7 @@ func main() {
|
||||
}
|
||||
|
||||
if !*configTest {
|
||||
wait, err := ctrl.Start()
|
||||
if err != nil {
|
||||
if err := ctrl.Start(); err != nil {
|
||||
util.LogWithContextIfNeeded("Error while running", err, l)
|
||||
os.Exit(1)
|
||||
}
|
||||
@@ -90,7 +92,7 @@ func main() {
|
||||
go ctrl.ShutdownBlock()
|
||||
notifyReady(l)
|
||||
|
||||
if err := wait(); err != nil {
|
||||
if err := ctrl.Wait(); err != nil {
|
||||
l.Error("Nebula stopped due to fatal error", "error", err)
|
||||
os.Exit(2)
|
||||
}
|
||||
|
||||
@@ -0,0 +1,29 @@
|
||||
package config
|
||||
|
||||
import (
|
||||
"fmt"
|
||||
"os"
|
||||
"path/filepath"
|
||||
)
|
||||
|
||||
// DefaultPath returns a path to a config file alongside the running executable, preferring config.yaml over config.yml.
|
||||
// If neither file exists an error is returned that names both paths checked.
|
||||
func DefaultPath() (string, error) {
|
||||
ex, err := os.Executable()
|
||||
if err != nil {
|
||||
return "", err
|
||||
}
|
||||
return defaultPathInDir(filepath.Dir(ex))
|
||||
}
|
||||
|
||||
func defaultPathInDir(dir string) (string, error) {
|
||||
yamlPath := filepath.Join(dir, "config.yaml")
|
||||
if _, err := os.Stat(yamlPath); err == nil {
|
||||
return yamlPath, nil
|
||||
}
|
||||
ymlPath := filepath.Join(dir, "config.yml")
|
||||
if _, err := os.Stat(ymlPath); err == nil {
|
||||
return ymlPath, nil
|
||||
}
|
||||
return "", fmt.Errorf("no default config found at %s or %s", yamlPath, ymlPath)
|
||||
}
|
||||
@@ -0,0 +1,67 @@
|
||||
package config
|
||||
|
||||
import (
|
||||
"os"
|
||||
"path/filepath"
|
||||
"testing"
|
||||
|
||||
"github.com/stretchr/testify/assert"
|
||||
"github.com/stretchr/testify/require"
|
||||
)
|
||||
|
||||
func TestDefaultPathInDir(t *testing.T) {
|
||||
t.Run("prefers config.yaml when both exist", func(t *testing.T) {
|
||||
dir := t.TempDir()
|
||||
want := filepath.Join(dir, "config.yaml")
|
||||
other := filepath.Join(dir, "config.yml")
|
||||
require.NoError(t, os.WriteFile(want, []byte("a: 1"), 0644))
|
||||
require.NoError(t, os.WriteFile(other, []byte("a: 2"), 0644))
|
||||
|
||||
got, err := defaultPathInDir(dir)
|
||||
require.NoError(t, err)
|
||||
assert.Equal(t, want, got)
|
||||
})
|
||||
|
||||
t.Run("returns config.yaml when only it exists", func(t *testing.T) {
|
||||
dir := t.TempDir()
|
||||
want := filepath.Join(dir, "config.yaml")
|
||||
require.NoError(t, os.WriteFile(want, []byte("a: 1"), 0644))
|
||||
|
||||
got, err := defaultPathInDir(dir)
|
||||
require.NoError(t, err)
|
||||
assert.Equal(t, want, got)
|
||||
})
|
||||
|
||||
t.Run("falls back to config.yml when only it exists", func(t *testing.T) {
|
||||
dir := t.TempDir()
|
||||
want := filepath.Join(dir, "config.yml")
|
||||
require.NoError(t, os.WriteFile(want, []byte("a: 1"), 0644))
|
||||
|
||||
got, err := defaultPathInDir(dir)
|
||||
require.NoError(t, err)
|
||||
assert.Equal(t, want, got)
|
||||
})
|
||||
|
||||
t.Run("errors when neither exists and names both paths", func(t *testing.T) {
|
||||
dir := t.TempDir()
|
||||
got, err := defaultPathInDir(dir)
|
||||
assert.Empty(t, got)
|
||||
require.Error(t, err)
|
||||
assert.Contains(t, err.Error(), filepath.Join(dir, "config.yaml"))
|
||||
assert.Contains(t, err.Error(), filepath.Join(dir, "config.yml"))
|
||||
})
|
||||
}
|
||||
|
||||
func TestDefaultPath(t *testing.T) {
|
||||
got, err := DefaultPath()
|
||||
if err != nil {
|
||||
ex, exErr := os.Executable()
|
||||
require.NoError(t, exErr)
|
||||
assert.Contains(t, err.Error(), filepath.Dir(ex))
|
||||
return
|
||||
}
|
||||
ex, err := os.Executable()
|
||||
require.NoError(t, err)
|
||||
assert.Equal(t, filepath.Dir(ex), filepath.Dir(got))
|
||||
assert.Contains(t, []string{"config.yaml", "config.yml"}, filepath.Base(got))
|
||||
}
|
||||
+2
-10
@@ -136,14 +136,6 @@ func (cm *connectionManager) getAndResetTrafficCheck(h *HostInfo, now time.Time)
|
||||
return in, out
|
||||
}
|
||||
|
||||
// AddTrafficWatch must be called for every new HostInfo.
|
||||
// We will continue to monitor the HostInfo until the tunnel is dropped.
|
||||
func (cm *connectionManager) AddTrafficWatch(h *HostInfo) {
|
||||
if h.out.Swap(true) == false {
|
||||
cm.trafficTimer.Add(h.localIndexId, cm.checkInterval)
|
||||
}
|
||||
}
|
||||
|
||||
func (cm *connectionManager) Start(ctx context.Context) {
|
||||
clockSource := time.NewTicker(cm.trafficTimer.t.tickDuration)
|
||||
defer clockSource.Stop()
|
||||
@@ -306,8 +298,8 @@ func (cm *connectionManager) migrateRelayUsed(oldhostinfo, newhostinfo *HostInfo
|
||||
} else {
|
||||
cm.intf.SendMessageToHostInfo(header.Control, 0, newhostinfo, msg, make([]byte, 12), make([]byte, mtu))
|
||||
cm.l.Info("send CreateRelayRequest",
|
||||
"relayFrom", req.RelayFromAddr,
|
||||
"relayTo", req.RelayToAddr,
|
||||
"relayFrom", relayFrom,
|
||||
"relayTo", relayTo,
|
||||
"initiatorRelayIndex", req.InitiatorRelayIndex,
|
||||
"responderRelayIndex", req.ResponderRelayIndex,
|
||||
"vpnAddrs", newhostinfo.vpnAddrs,
|
||||
|
||||
@@ -25,6 +25,7 @@ func newTestLighthouse() *LightHouse {
|
||||
lighthouses := []netip.Addr{}
|
||||
staticList := map[netip.Addr]struct{}{}
|
||||
|
||||
lh.localAddrsFn = func(*LocalAllowList) []netip.Addr { return nil }
|
||||
lh.lighthouses.Store(&lighthouses)
|
||||
lh.staticList.Store(&staticList)
|
||||
|
||||
|
||||
+53
-1
@@ -2,15 +2,17 @@ package nebula
|
||||
|
||||
import (
|
||||
"encoding/json"
|
||||
"log/slog"
|
||||
"sync"
|
||||
"sync/atomic"
|
||||
|
||||
"github.com/slackhq/nebula/cert"
|
||||
"github.com/slackhq/nebula/handshake"
|
||||
"github.com/slackhq/nebula/header"
|
||||
"github.com/slackhq/nebula/noiseutil"
|
||||
)
|
||||
|
||||
const ReplayWindow = 8192
|
||||
const ReplayWindow = 1024
|
||||
|
||||
type ConnectionState struct {
|
||||
eKey noiseutil.CipherState
|
||||
@@ -20,6 +22,7 @@ type ConnectionState struct {
|
||||
initiator bool
|
||||
messageCounter atomic.Uint64
|
||||
window *Bits
|
||||
decryptLock sync.Mutex
|
||||
writeLock sync.Mutex
|
||||
}
|
||||
|
||||
@@ -54,3 +57,52 @@ func (cs *ConnectionState) MarshalJSON() ([]byte, error) {
|
||||
func (cs *ConnectionState) Curve() cert.Curve {
|
||||
return cs.myCert.Curve()
|
||||
}
|
||||
|
||||
func (cs *ConnectionState) Decrypt(l *slog.Logger, messageCounter uint64, out []byte, packet []byte, nb []byte) ([]byte, error) {
|
||||
var err error
|
||||
cs.decryptLock.Lock()
|
||||
result := cs.window.Check(l, messageCounter)
|
||||
cs.decryptLock.Unlock()
|
||||
if !result {
|
||||
return nil, ErrAlreadySeen
|
||||
}
|
||||
|
||||
out, err = cs.dKey.DecryptDanger(out, packet[:header.Len], packet[header.Len:], messageCounter, nb)
|
||||
if err != nil {
|
||||
return nil, err
|
||||
}
|
||||
|
||||
cs.decryptLock.Lock()
|
||||
result = cs.window.Update(l, messageCounter)
|
||||
cs.decryptLock.Unlock()
|
||||
if !result {
|
||||
return nil, ErrAlreadySeen
|
||||
}
|
||||
return out, nil
|
||||
}
|
||||
|
||||
// VerifyRelay verifies AEAD protected (but not encrypted) relay frames. packet must be length-checked by the caller.
|
||||
func (cs *ConnectionState) VerifyRelay(l *slog.Logger, messageCounter uint64, packet []byte, nb []byte) error {
|
||||
cs.decryptLock.Lock()
|
||||
result := cs.window.Check(l, messageCounter)
|
||||
cs.decryptLock.Unlock()
|
||||
if !result {
|
||||
return ErrAlreadySeen
|
||||
}
|
||||
|
||||
signedPayload := packet[:len(packet)-cs.dKey.Overhead()]
|
||||
signatureValue := packet[len(packet)-cs.dKey.Overhead():]
|
||||
_, err := cs.dKey.DecryptDanger(nil, signedPayload, signatureValue, messageCounter, nb)
|
||||
if err != nil {
|
||||
return err
|
||||
}
|
||||
|
||||
cs.decryptLock.Lock()
|
||||
result = cs.window.Update(l, messageCounter)
|
||||
cs.decryptLock.Unlock()
|
||||
if !result {
|
||||
return ErrAlreadySeen
|
||||
}
|
||||
|
||||
return nil
|
||||
}
|
||||
|
||||
+60
-26
@@ -53,6 +53,7 @@ type Control struct {
|
||||
statsStart func()
|
||||
dnsStart func()
|
||||
lighthouseStart func()
|
||||
networkChangeStart func(rebind func())
|
||||
connectionManagerStart func(context.Context)
|
||||
}
|
||||
|
||||
@@ -69,29 +70,29 @@ type ControlHostInfo struct {
|
||||
}
|
||||
|
||||
// Start actually runs nebula, this is a nonblocking call.
|
||||
// The returned function blocks until nebula has fully stopped and returns the
|
||||
// first fatal reader error (if any). A nil error means nebula shut down
|
||||
// gracefully; a non-nil error means a reader hit an unexpected failure that
|
||||
// triggered the shutdown.
|
||||
func (c *Control) Start() (func() error, error) {
|
||||
// Use Wait to block until nebula has fully stopped and to learn whether a fatal reader error caused the shutdown.
|
||||
func (c *Control) Start() error {
|
||||
c.stateLock.Lock()
|
||||
defer c.stateLock.Unlock()
|
||||
switch c.state {
|
||||
case StateReady:
|
||||
//yay!
|
||||
case StateStopped, StateStopping:
|
||||
return nil, ErrAlreadyStopped
|
||||
return ErrAlreadyStopped
|
||||
case StateStarted:
|
||||
return nil, ErrAlreadyStarted
|
||||
return ErrAlreadyStarted
|
||||
default:
|
||||
return nil, ErrUnknownState
|
||||
return ErrUnknownState
|
||||
}
|
||||
|
||||
// Activate the interface
|
||||
err := c.f.activate()
|
||||
if err != nil {
|
||||
// Cancel before Close so a caller returning from Wait always observes a dead Context
|
||||
c.cancel()
|
||||
_ = c.f.Close()
|
||||
c.state = StateStopped
|
||||
return nil, err
|
||||
return err
|
||||
}
|
||||
|
||||
// Call all the delayed funcs that waited patiently for the interface to be created.
|
||||
@@ -104,6 +105,9 @@ func (c *Control) Start() (func() error, error) {
|
||||
if c.dnsStart != nil {
|
||||
go c.dnsStart()
|
||||
}
|
||||
if c.networkChangeStart != nil {
|
||||
go c.networkChangeStart(c.RebindUDPServer)
|
||||
}
|
||||
if c.connectionManagerStart != nil {
|
||||
go c.connectionManagerStart(c.ctx)
|
||||
}
|
||||
@@ -114,13 +118,9 @@ func (c *Control) Start() (func() error, error) {
|
||||
c.f.triggerShutdown = c.Stop
|
||||
|
||||
// Start reading packets.
|
||||
out, err := c.f.run()
|
||||
if err != nil {
|
||||
c.state = StateStopped
|
||||
return nil, err
|
||||
}
|
||||
c.f.run()
|
||||
c.state = StateStarted
|
||||
return out, nil
|
||||
return nil
|
||||
}
|
||||
|
||||
func (c *Control) State() RunState {
|
||||
@@ -133,10 +133,26 @@ func (c *Control) Context() context.Context {
|
||||
return c.ctx
|
||||
}
|
||||
|
||||
// Stop is a non-blocking call that signals nebula to close all tunnels and shut down
|
||||
// Stop tears nebula down, closing all tunnels and releasing everything it holds.
|
||||
// Use Wait to block until the shutdown has completed.
|
||||
// A Control that has been stopped cannot be started again, Start will return ErrAlreadyStopped.
|
||||
func (c *Control) Stop() {
|
||||
c.stateLock.Lock()
|
||||
if c.state != StateStarted {
|
||||
switch c.state {
|
||||
case StateStarted:
|
||||
// Fall through to the full teardown below
|
||||
|
||||
case StateReady:
|
||||
// Never started
|
||||
c.cancel()
|
||||
c.state = StateStopped
|
||||
if err := c.f.Close(); err != nil {
|
||||
c.l.Error("Close interface failed", "error", err)
|
||||
}
|
||||
c.stateLock.Unlock()
|
||||
return
|
||||
|
||||
default:
|
||||
c.stateLock.Unlock()
|
||||
// We are stopping or stopped already
|
||||
return
|
||||
@@ -145,19 +161,26 @@ func (c *Control) Stop() {
|
||||
c.state = StateStopping
|
||||
c.stateLock.Unlock()
|
||||
|
||||
// Stop the handshakeManager (and other services), to prevent new tunnels from
|
||||
// being created while we're shutting them all down.
|
||||
// Closing tunnels can be slow with a large hostmap, don't hold the lock for it
|
||||
c.cancel()
|
||||
|
||||
c.CloseAllTunnels(false)
|
||||
|
||||
c.stateLock.Lock()
|
||||
c.state = StateStopped
|
||||
if err := c.f.Close(); err != nil {
|
||||
c.l.Error("Close interface failed", "error", err)
|
||||
}
|
||||
c.stateLock.Lock()
|
||||
c.state = StateStopped
|
||||
c.stateLock.Unlock()
|
||||
}
|
||||
|
||||
// Wait blocks until nebula has fully stopped, either via Stop or an internal fatal error,
|
||||
// and returns the first fatal packet reader error if there was one.
|
||||
// It is safe to call from multiple goroutines and at any point in the lifecycle,
|
||||
// but a Wait on a Control that is never started and never stopped will block forever.
|
||||
func (c *Control) Wait() error {
|
||||
return c.f.wait()
|
||||
}
|
||||
|
||||
// ShutdownBlock will listen for and block on term and interrupt signals, calling Control.Stop() once signalled
|
||||
func (c *Control) ShutdownBlock() {
|
||||
sigChan := make(chan os.Signal, 1)
|
||||
@@ -170,9 +193,20 @@ func (c *Control) ShutdownBlock() {
|
||||
c.Stop()
|
||||
}
|
||||
|
||||
// RebindUDPServer asks the UDP listener to rebind it's listener. Mainly used on mobile clients when interfaces change
|
||||
// RebindUDPServer asks the UDP listener to rebind it's listener. Mainly used on mobile clients when interfaces change.
|
||||
func (c *Control) RebindUDPServer() {
|
||||
_ = c.f.outside.Rebind()
|
||||
c.stateLock.Lock()
|
||||
defer c.stateLock.Unlock()
|
||||
|
||||
if c.state != StateStarted {
|
||||
return
|
||||
}
|
||||
|
||||
// A failure here means we are likely still pinned to the interface we came up on, so the rest of this is
|
||||
// unlikely to help. Say so instead of silently carrying on as if we rebound.
|
||||
if err := c.f.outside.Rebind(); err != nil {
|
||||
c.l.Error("Failed to rebind udp socket", "error", err)
|
||||
}
|
||||
|
||||
// Trigger a lighthouse update, useful for mobile clients that should have an update interval of 0
|
||||
c.f.lightHouse.SendUpdate()
|
||||
@@ -305,7 +339,7 @@ func (c *Control) CloseAllTunnels(excludeLighthouses bool) (closed int) {
|
||||
|
||||
c.l.Debug("Sending close tunnel message",
|
||||
"vpnAddrs", h.vpnAddrs,
|
||||
"udpAddr", h.remote,
|
||||
"udpAddr", h.GetRemote(),
|
||||
)
|
||||
closed++
|
||||
}
|
||||
@@ -350,7 +384,7 @@ func copyHostInfo(h *HostInfo, preferredRanges []netip.Prefix) ControlHostInfo {
|
||||
RemoteAddrs: h.remotes.CopyAddrs(preferredRanges),
|
||||
CurrentRelaysToMe: h.relayState.CopyRelayIps(),
|
||||
CurrentRelaysThroughMe: h.relayState.CopyRelayForIps(),
|
||||
CurrentRemote: h.remote,
|
||||
CurrentRemote: h.GetRemote(),
|
||||
}
|
||||
|
||||
for i, a := range h.vpnAddrs {
|
||||
|
||||
@@ -0,0 +1,292 @@
|
||||
package nebula
|
||||
|
||||
import (
|
||||
"context"
|
||||
"errors"
|
||||
"io"
|
||||
"net/netip"
|
||||
"sync"
|
||||
"testing"
|
||||
"time"
|
||||
|
||||
"github.com/gaissmai/bart"
|
||||
"github.com/slackhq/nebula/config"
|
||||
"github.com/slackhq/nebula/routing"
|
||||
"github.com/slackhq/nebula/test"
|
||||
"github.com/slackhq/nebula/udp"
|
||||
"github.com/stretchr/testify/assert"
|
||||
"github.com/stretchr/testify/require"
|
||||
)
|
||||
|
||||
type fakeDevice struct {
|
||||
closeOnce sync.Once
|
||||
closedCh chan struct{}
|
||||
closed bool
|
||||
}
|
||||
|
||||
func newFakeDevice() *fakeDevice {
|
||||
return &fakeDevice{closedCh: make(chan struct{})}
|
||||
}
|
||||
|
||||
// Read blocks until Close like a real tun with no traffic, then reports EOF
|
||||
// the same way a closed device does
|
||||
func (d *fakeDevice) Read(p []byte) (int, error) {
|
||||
<-d.closedCh
|
||||
return 0, io.EOF
|
||||
}
|
||||
|
||||
func (d *fakeDevice) Write(p []byte) (int, error) { return len(p), nil }
|
||||
|
||||
func (d *fakeDevice) Close() error {
|
||||
d.closeOnce.Do(func() {
|
||||
d.closed = true
|
||||
close(d.closedCh)
|
||||
})
|
||||
return nil
|
||||
}
|
||||
|
||||
func (d *fakeDevice) Activate() error { return nil }
|
||||
func (d *fakeDevice) Networks() []netip.Prefix { return nil }
|
||||
func (d *fakeDevice) Name() string { return "fake" }
|
||||
func (d *fakeDevice) RoutesFor(netip.Addr) routing.Gateways { return nil }
|
||||
func (d *fakeDevice) SupportsMultiqueue() bool { return false }
|
||||
func (d *fakeDevice) NewMultiQueueReader() (io.ReadWriteCloser, error) {
|
||||
return nil, errors.New("unsupported")
|
||||
}
|
||||
|
||||
// newReadyControl hand-builds the minimum Control that Main would have
|
||||
// produced right before Start, including the construction token NewInterface
|
||||
// takes so waiters block until Close releases the resources
|
||||
func newReadyControl(t *testing.T) (*Control, *fakeDevice, *fakeConn) {
|
||||
l := test.NewLogger()
|
||||
dev := newFakeDevice()
|
||||
conn := &fakeConn{}
|
||||
ctx, cancel := context.WithCancel(context.Background())
|
||||
|
||||
myVpnNet := netip.MustParsePrefix("10.128.0.1/16")
|
||||
nt := new(bart.Lite)
|
||||
nt.Insert(myVpnNet)
|
||||
cs := &CertState{
|
||||
myVpnNetworks: []netip.Prefix{myVpnNet},
|
||||
myVpnNetworksTable: nt,
|
||||
}
|
||||
lh, err := NewLightHouseFromConfig(ctx, l, config.NewC(l), cs, nil, nil)
|
||||
require.NoError(t, err)
|
||||
|
||||
f := &Interface{
|
||||
ctx: ctx,
|
||||
inside: dev,
|
||||
outside: conn,
|
||||
writers: []udp.Conn{conn},
|
||||
readers: make([]io.ReadWriteCloser, 1),
|
||||
routines: 1,
|
||||
hostMap: newHostMap(l),
|
||||
lightHouse: lh,
|
||||
l: l,
|
||||
}
|
||||
f.wg.Add(1)
|
||||
|
||||
return &Control{
|
||||
state: StateReady,
|
||||
f: f,
|
||||
l: l,
|
||||
ctx: ctx,
|
||||
cancel: cancel,
|
||||
}, dev, conn
|
||||
}
|
||||
|
||||
func TestControl_StopBeforeStart(t *testing.T) {
|
||||
c, dev, conn := newReadyControl(t)
|
||||
|
||||
// A Stop on a never started control must release everything Main acquired
|
||||
c.Stop()
|
||||
assert.Equal(t, StateStopped, c.State())
|
||||
assert.True(t, dev.closed, "the tun device should have been closed")
|
||||
assert.True(t, conn.closed, "the udp socket should have been closed")
|
||||
require.ErrorIs(t, c.ctx.Err(), context.Canceled, "the service context should have been cancelled")
|
||||
|
||||
// Wait must return promptly now that the resources are released
|
||||
require.NoError(t, c.Wait())
|
||||
|
||||
// A stopped control can never be started
|
||||
require.ErrorIs(t, c.Start(), ErrAlreadyStopped)
|
||||
|
||||
// A second Stop is a harmless no-op
|
||||
c.Stop()
|
||||
assert.Equal(t, StateStopped, c.State())
|
||||
require.NoError(t, c.Wait())
|
||||
}
|
||||
|
||||
func TestControl_WaitBlocksUntilStop(t *testing.T) {
|
||||
c, _, _ := newReadyControl(t)
|
||||
|
||||
done := make(chan error, 1)
|
||||
go func() { done <- c.Wait() }()
|
||||
|
||||
select {
|
||||
case <-done:
|
||||
t.Fatal("Wait returned before Stop")
|
||||
case <-time.After(50 * time.Millisecond):
|
||||
}
|
||||
|
||||
c.Stop()
|
||||
select {
|
||||
case err := <-done:
|
||||
require.NoError(t, err)
|
||||
case <-time.After(time.Second):
|
||||
t.Fatal("Wait did not return after Stop")
|
||||
}
|
||||
}
|
||||
|
||||
type fakeConn struct {
|
||||
closed bool
|
||||
rebinds int
|
||||
}
|
||||
|
||||
func (c *fakeConn) Rebind() error { c.rebinds++; return nil }
|
||||
func (c *fakeConn) LocalAddr() (netip.AddrPort, error) { return netip.AddrPort{}, nil }
|
||||
func (c *fakeConn) ListenOut(_ udp.EncReader) error { return nil }
|
||||
func (c *fakeConn) WriteTo(_ []byte, _ netip.AddrPort) error { return nil }
|
||||
func (c *fakeConn) ReloadConfig(_ *config.C) {}
|
||||
func (c *fakeConn) SupportsMultipleReaders() bool { return true }
|
||||
func (c *fakeConn) Close() error { c.closed = true; return nil }
|
||||
|
||||
type multiqueueDevice struct {
|
||||
*fakeDevice
|
||||
}
|
||||
|
||||
func (d *multiqueueDevice) SupportsMultiqueue() bool { return true }
|
||||
|
||||
func TestControl_StartMultiqueueFailureReleases(t *testing.T) {
|
||||
dev := &multiqueueDevice{fakeDevice: newFakeDevice()}
|
||||
conn := &fakeConn{}
|
||||
ctx, cancel := context.WithCancel(context.Background())
|
||||
f := &Interface{
|
||||
ctx: ctx,
|
||||
inside: dev,
|
||||
outside: conn,
|
||||
writers: []udp.Conn{conn},
|
||||
readers: make([]io.ReadWriteCloser, 2),
|
||||
routines: 2,
|
||||
l: test.NewLogger(),
|
||||
}
|
||||
f.wg.Add(1)
|
||||
|
||||
c := &Control{
|
||||
state: StateReady,
|
||||
f: f,
|
||||
l: test.NewLogger(),
|
||||
ctx: ctx,
|
||||
cancel: cancel,
|
||||
}
|
||||
|
||||
// The second reader fails to open, everything must be released
|
||||
require.Error(t, c.Start())
|
||||
assert.Equal(t, StateStopped, c.State())
|
||||
assert.True(t, dev.closed, "the tun device should have been closed")
|
||||
assert.True(t, conn.closed, "the udp socket should have been closed")
|
||||
require.ErrorIs(t, c.ctx.Err(), context.Canceled)
|
||||
|
||||
// And Wait must not hang on the construction token
|
||||
require.NoError(t, c.Wait())
|
||||
}
|
||||
|
||||
func TestInterface_CloseIsIdempotent(t *testing.T) {
|
||||
dev := newFakeDevice()
|
||||
f := &Interface{
|
||||
inside: dev,
|
||||
l: test.NewLogger(),
|
||||
}
|
||||
f.wg.Add(1)
|
||||
|
||||
require.NoError(t, f.Close())
|
||||
assert.True(t, dev.closed)
|
||||
|
||||
// A second Close must not double release the wg token or the device
|
||||
require.NoError(t, f.Close())
|
||||
require.NoError(t, f.wait())
|
||||
}
|
||||
|
||||
func TestControl_FatalErrorReportsThroughWait(t *testing.T) {
|
||||
c, dev, conn := newReadyControl(t)
|
||||
|
||||
// Mirror what Start wires up, without needing real packet readers
|
||||
c.f.triggerShutdown = c.Stop
|
||||
c.state = StateStarted
|
||||
|
||||
boom := errors.New("boom")
|
||||
c.f.onFatal(boom)
|
||||
|
||||
require.ErrorIs(t, c.Wait(), boom)
|
||||
assert.Equal(t, StateStopped, c.State())
|
||||
assert.True(t, dev.closed)
|
||||
assert.True(t, conn.closed)
|
||||
|
||||
// A second fatal error must not fire the shutdown again or replace the first
|
||||
c.f.onFatal(errors.New("later"))
|
||||
require.ErrorIs(t, c.Wait(), boom)
|
||||
|
||||
// Wait stays factual, a Stop after the death does not mask the error
|
||||
c.Stop()
|
||||
require.ErrorIs(t, c.Wait(), boom)
|
||||
}
|
||||
|
||||
func TestControl_ConcurrentStopAndStart(t *testing.T) {
|
||||
c, _, _ := newReadyControl(t)
|
||||
|
||||
var wg sync.WaitGroup
|
||||
for i := 0; i < 2; i++ {
|
||||
wg.Go(func() { c.Stop() })
|
||||
}
|
||||
wg.Go(func() { _ = c.Start() })
|
||||
wg.Go(func() {
|
||||
_ = c.Wait()
|
||||
// A returned Wait must always observe the final state, no matter how
|
||||
// the race resolved
|
||||
assert.Equal(t, StateStopped, c.State())
|
||||
})
|
||||
wg.Wait()
|
||||
|
||||
// However the race resolves, the control must end fully stopped with no
|
||||
// panic and Wait must observe the final state
|
||||
require.NoError(t, c.Wait())
|
||||
assert.Equal(t, StateStopped, c.State())
|
||||
require.ErrorIs(t, c.Start(), ErrAlreadyStopped)
|
||||
}
|
||||
|
||||
func TestControl_StartStopLifecycle(t *testing.T) {
|
||||
c, dev, conn := newReadyControl(t)
|
||||
|
||||
require.NoError(t, c.Start())
|
||||
assert.Equal(t, StateStarted, c.State())
|
||||
require.ErrorIs(t, c.Start(), ErrAlreadyStarted)
|
||||
|
||||
// Stop must unpark the reader blocked in the device and release everything
|
||||
c.Stop()
|
||||
assert.Equal(t, StateStopped, c.State())
|
||||
assert.True(t, dev.closed, "the tun device should have been closed")
|
||||
assert.True(t, conn.closed, "the udp socket should have been closed")
|
||||
require.ErrorIs(t, c.ctx.Err(), context.Canceled)
|
||||
|
||||
// The reader drained off a closed device, that is not a fatal error
|
||||
require.NoError(t, c.Wait())
|
||||
require.ErrorIs(t, c.Start(), ErrAlreadyStopped)
|
||||
}
|
||||
|
||||
func TestControl_RebindIsGatedByState(t *testing.T) {
|
||||
c, _, conn := newReadyControl(t)
|
||||
|
||||
// A rebind before Start reaches nothing, the interface is not up
|
||||
c.RebindUDPServer()
|
||||
assert.Equal(t, 0, conn.rebinds, "rebind before start must be a no-op")
|
||||
|
||||
require.NoError(t, c.Start())
|
||||
c.RebindUDPServer()
|
||||
assert.Equal(t, 1, conn.rebinds, "rebind while started must reach the conn")
|
||||
|
||||
// A rebind racing a completed stop must not touch the closed conn
|
||||
c.Stop()
|
||||
require.NoError(t, c.Wait())
|
||||
c.RebindUDPServer()
|
||||
assert.Equal(t, 1, conn.rebinds, "rebind after stop must be a no-op")
|
||||
}
|
||||
+161
-6
@@ -1,6 +1,8 @@
|
||||
package nebula
|
||||
|
||||
import (
|
||||
"bytes"
|
||||
"log/slog"
|
||||
"net"
|
||||
"net/netip"
|
||||
"reflect"
|
||||
@@ -9,6 +11,7 @@ import (
|
||||
"github.com/slackhq/nebula/cert"
|
||||
"github.com/slackhq/nebula/test"
|
||||
"github.com/stretchr/testify/assert"
|
||||
"github.com/stretchr/testify/require"
|
||||
)
|
||||
|
||||
func TestControl_GetHostInfoByVpnIp(t *testing.T) {
|
||||
@@ -42,8 +45,7 @@ func TestControl_GetHostInfoByVpnIp(t *testing.T) {
|
||||
assert.True(t, ok)
|
||||
|
||||
crt := &dummyCert{}
|
||||
hm.unlockedAddHostInfo(&HostInfo{
|
||||
remote: remote1,
|
||||
hi := &HostInfo{
|
||||
remotes: remotes,
|
||||
ConnectionState: &ConnectionState{
|
||||
peerCert: &cert.CachedCertificate{Certificate: crt},
|
||||
@@ -56,13 +58,14 @@ func TestControl_GetHostInfoByVpnIp(t *testing.T) {
|
||||
relayForByAddr: map[netip.Addr]*Relay{},
|
||||
relayForByIdx: map[uint32]*Relay{},
|
||||
},
|
||||
}, &Interface{})
|
||||
}
|
||||
hi.remote.Store(&remote1)
|
||||
hm.unlockedAddHostInfo(hi, &Interface{})
|
||||
|
||||
vpnIp2, ok := netip.AddrFromSlice(ipNet2.IP)
|
||||
assert.True(t, ok)
|
||||
|
||||
hm.unlockedAddHostInfo(&HostInfo{
|
||||
remote: remote1,
|
||||
hi2 := &HostInfo{
|
||||
remotes: remotes,
|
||||
ConnectionState: &ConnectionState{
|
||||
peerCert: nil,
|
||||
@@ -75,7 +78,9 @@ func TestControl_GetHostInfoByVpnIp(t *testing.T) {
|
||||
relayForByAddr: map[netip.Addr]*Relay{},
|
||||
relayForByIdx: map[uint32]*Relay{},
|
||||
},
|
||||
}, &Interface{})
|
||||
}
|
||||
hi2.remote.Store(&remote1)
|
||||
hm.unlockedAddHostInfo(hi2, &Interface{})
|
||||
|
||||
c := Control{
|
||||
state: StateReady,
|
||||
@@ -119,3 +124,153 @@ func assertFields(t *testing.T, expected []string, actualStruct any) {
|
||||
|
||||
assert.Equal(t, expected, fields)
|
||||
}
|
||||
|
||||
// alwaysAllowV4/V6 are check funcs that accept every entry (including nil pointers),
|
||||
// letting us inject a nil *V4AddrPort/*V6AddrPort into a RemoteList's reported cache
|
||||
// the same way a malformed proto message off the wire could.
|
||||
func alwaysAllowV4(netip.Addr, *V4AddrPort) bool { return true }
|
||||
func alwaysAllowV6(netip.Addr, *V6AddrPort) bool { return true }
|
||||
|
||||
// TestGetRelays_SkipsNilRelayAddrs proves GetRelays tolerates nil entries in the
|
||||
// RelayVpnAddrs proto slice (which protoAddrToNetAddr would nil-deref on) and still
|
||||
// returns the valid relays, including the legacy OldRelayVpnAddrs.
|
||||
func TestGetRelays_SkipsNilRelayAddrs(t *testing.T) {
|
||||
good := netip.MustParseAddr("10.0.0.9")
|
||||
|
||||
d := &NebulaMetaDetails{
|
||||
OldRelayVpnAddrs: []uint32{0x0a000001}, // 10.0.0.1
|
||||
RelayVpnAddrs: []*Addr{
|
||||
nil,
|
||||
netAddrToProtoAddr(good),
|
||||
nil,
|
||||
},
|
||||
}
|
||||
|
||||
var relays []netip.Addr
|
||||
require.NotPanics(t, func() { relays = d.GetRelays() })
|
||||
|
||||
assert.Equal(t, []netip.Addr{
|
||||
netip.MustParseAddr("10.0.0.1"),
|
||||
good,
|
||||
}, relays)
|
||||
}
|
||||
|
||||
// TestGetRelays_AllNil ensures an all-nil RelayVpnAddrs slice yields no relays and no panic.
|
||||
func TestGetRelays_AllNil(t *testing.T) {
|
||||
d := &NebulaMetaDetails{RelayVpnAddrs: []*Addr{nil, nil}}
|
||||
var relays []netip.Addr
|
||||
require.NotPanics(t, func() { relays = d.GetRelays() })
|
||||
assert.Empty(t, relays)
|
||||
}
|
||||
|
||||
// TestRemoteList_CopyCache_SkipsNilReported proves CopyCache skips nil reported
|
||||
// pointers (v4 and v6) instead of nil-dereferencing them in protoV*AddrPortToNetAddrPort.
|
||||
func TestRemoteList_CopyCache_SkipsNilReported(t *testing.T) {
|
||||
owner := netip.MustParseAddr("10.0.0.1")
|
||||
rl := NewRemoteList([]netip.Addr{owner}, nil)
|
||||
|
||||
rl.unlockedSetV4(owner, owner, []*V4AddrPort{
|
||||
nil,
|
||||
newIp4AndPortFromString("1.2.3.4:5"),
|
||||
nil,
|
||||
}, alwaysAllowV4)
|
||||
|
||||
rl.unlockedSetV6(owner, owner, []*V6AddrPort{
|
||||
nil,
|
||||
newIp6AndPortFromString("[1::1]:6"),
|
||||
nil,
|
||||
}, alwaysAllowV6)
|
||||
|
||||
var cm *CacheMap
|
||||
require.NotPanics(t, func() { cm = rl.CopyCache() })
|
||||
|
||||
c := (*cm)[owner.String()]
|
||||
require.NotNil(t, c)
|
||||
assert.ElementsMatch(t, []netip.AddrPort{
|
||||
netip.MustParseAddrPort("1.2.3.4:5"),
|
||||
netip.MustParseAddrPort("[1::1]:6"),
|
||||
}, c.Reported)
|
||||
}
|
||||
|
||||
// TestRemoteList_Rebuild_SkipsNilReported drives unlockedCollect (via Rebuild) with
|
||||
// nil reported entries and confirms only the valid addresses survive, with no panic.
|
||||
func TestRemoteList_Rebuild_SkipsNilReported(t *testing.T) {
|
||||
owner := netip.MustParseAddr("10.0.0.1")
|
||||
rl := NewRemoteList([]netip.Addr{owner}, nil)
|
||||
|
||||
rl.unlockedSetV4(owner, owner, []*V4AddrPort{
|
||||
nil,
|
||||
newIp4AndPortFromString("1.2.3.4:5"),
|
||||
}, alwaysAllowV4)
|
||||
rl.unlockedSetV6(owner, owner, []*V6AddrPort{
|
||||
newIp6AndPortFromString("[1::1]:6"),
|
||||
nil,
|
||||
}, alwaysAllowV6)
|
||||
|
||||
require.NotPanics(t, func() { rl.Rebuild([]netip.Prefix{}) })
|
||||
|
||||
assert.ElementsMatch(t, []netip.AddrPort{
|
||||
netip.MustParseAddrPort("1.2.3.4:5"),
|
||||
netip.MustParseAddrPort("[1::1]:6"),
|
||||
}, rl.addrs)
|
||||
}
|
||||
|
||||
// newRelayControl marshals a NebulaControl the way it arrives on the wire so we can feed
|
||||
// it through HandleControlMsg's unmarshal + validate path.
|
||||
func newRelayControl(t *testing.T, typ NebulaControl_MessageType, from, to *Addr) []byte {
|
||||
t.Helper()
|
||||
msg := &NebulaControl{
|
||||
Type: typ,
|
||||
RelayFromAddr: from,
|
||||
RelayToAddr: to,
|
||||
}
|
||||
b, err := msg.Marshal()
|
||||
require.NoError(t, err)
|
||||
return b
|
||||
}
|
||||
|
||||
// TestRelayManager_HandleControlMsg_NilRelayAddrs verifies the validation block added to
|
||||
// HandleControlMsg: CreateRelay{Request,Response} carrying a nil RelayFromAddr or
|
||||
// RelayToAddr are dropped with a debug log rather than nil-dereferencing downstream.
|
||||
func TestRelayManager_HandleControlMsg_NilRelayAddrs(t *testing.T) {
|
||||
good := netAddrToProtoAddr(netip.MustParseAddr("10.0.0.9"))
|
||||
|
||||
cases := []struct {
|
||||
name string
|
||||
typ NebulaControl_MessageType
|
||||
from *Addr
|
||||
to *Addr
|
||||
wantLog string // debug substring expected, "" == expect no drop log
|
||||
}{
|
||||
{"request nil from", NebulaControl_CreateRelayRequest, nil, good, "nil RelayFromAddr"},
|
||||
{"request nil to", NebulaControl_CreateRelayRequest, good, nil, "nil RelayToAddr"},
|
||||
{"request both nil", NebulaControl_CreateRelayRequest, nil, nil, "nil RelayFromAddr"},
|
||||
{"response nil from", NebulaControl_CreateRelayResponse, nil, good, "nil RelayFromAddr"},
|
||||
{"response nil to", NebulaControl_CreateRelayResponse, good, nil, "nil RelayToAddr"},
|
||||
// A non-relay control type is not subject to the relay-addr validation and must
|
||||
// pass through it untouched (the final switch simply no-ops on it).
|
||||
{"unrelated type nil addrs", NebulaControl_None, nil, nil, ""},
|
||||
}
|
||||
|
||||
for _, tc := range cases {
|
||||
t.Run(tc.name, func(t *testing.T) {
|
||||
var buf bytes.Buffer
|
||||
l := test.NewLoggerWithOutputAndLevel(&buf, slog.LevelDebug)
|
||||
rm := &relayManager{l: l, hostmap: newHostMap(l)}
|
||||
rm.useRelays.Store(true)
|
||||
|
||||
f := &Interface{l: l}
|
||||
h := &HostInfo{vpnAddrs: []netip.Addr{netip.MustParseAddr("10.0.0.2")}, localIndexId: 1}
|
||||
|
||||
d := newRelayControl(t, tc.typ, tc.from, tc.to)
|
||||
|
||||
require.NotPanics(t, func() { rm.HandleControlMsg(h, d, f) })
|
||||
|
||||
if tc.wantLog == "" {
|
||||
assert.NotContains(t, buf.String(), "nil Relay")
|
||||
} else {
|
||||
assert.Contains(t, buf.String(), tc.wantLog)
|
||||
}
|
||||
})
|
||||
}
|
||||
}
|
||||
|
||||
+21
-1
@@ -108,7 +108,19 @@ func (c *Control) GetVpnAddrs() []netip.Addr {
|
||||
}
|
||||
|
||||
func (c *Control) GetUDPAddr() netip.AddrPort {
|
||||
return c.f.outside.(*udp.TesterConn).Addr
|
||||
return c.f.outside.(*udp.TesterConn).GetAddr()
|
||||
}
|
||||
|
||||
// SetUDPAddr moves this node to a new underlay address, standing in for a laptop waking up on a different
|
||||
// network. Register the new address with the router as well or nothing will route back.
|
||||
func (c *Control) SetUDPAddr(addr netip.AddrPort) {
|
||||
c.f.outside.(*udp.TesterConn).SetAddr(addr)
|
||||
}
|
||||
|
||||
// SetLocalAddrsFn replaces underlay address discovery so a test can advertise its simulated address instead of
|
||||
// whatever this machine's NICs happen to be. Call it before Start, SendUpdate reads it from the update worker.
|
||||
func (c *Control) SetLocalAddrsFn(fn func(*LocalAllowList) []netip.Addr) {
|
||||
c.f.lightHouse.localAddrsFn = fn
|
||||
}
|
||||
|
||||
func (c *Control) KillPendingTunnel(vpnIp netip.Addr) bool {
|
||||
@@ -125,6 +137,14 @@ func (c *Control) GetHostmap() *HostMap {
|
||||
return c.f.hostMap
|
||||
}
|
||||
|
||||
// GetHostmapIndexCount returns the number of entries in the main hostmap Indexes table, holding
|
||||
// the hostmap read lock so tests can poll it while connection manager churns tunnels.
|
||||
func (c *Control) GetHostmapIndexCount() int {
|
||||
c.f.hostMap.RLock()
|
||||
defer c.f.hostMap.RUnlock()
|
||||
return len(c.f.hostMap.Indexes)
|
||||
}
|
||||
|
||||
func (c *Control) GetF() *Interface {
|
||||
return c.f
|
||||
}
|
||||
|
||||
Vendored
+1
-1
@@ -62,7 +62,7 @@ function nebula.dissector(tvbuf, pktinfo, root)
|
||||
tree:add(pf_version, tvbuf:range(0,1))
|
||||
local type = tree:add(pf_type, tvbuf:range(0,1))
|
||||
|
||||
local nebula_type = bit32.band(tvbuf:range(0,1):uint(), 0x0F)
|
||||
local nebula_type = bit.band(tvbuf:range(0,1):uint(), 0x0F)
|
||||
if nebula_type == 0 then
|
||||
local stage = tvbuf(8,8):uint64()
|
||||
tree:add(pf_subtype_handshake, tvbuf:range(1,1))
|
||||
|
||||
+106
-31
@@ -11,19 +11,21 @@ import (
|
||||
"sync"
|
||||
"sync/atomic"
|
||||
|
||||
"github.com/gaissmai/bart"
|
||||
"github.com/miekg/dns"
|
||||
"github.com/slackhq/nebula/config"
|
||||
)
|
||||
|
||||
type dnsServer struct {
|
||||
sync.RWMutex
|
||||
l *slog.Logger
|
||||
ctx context.Context
|
||||
dnsMap4 map[string]netip.Addr
|
||||
dnsMap6 map[string]netip.Addr
|
||||
hostMap *HostMap
|
||||
myVpnAddrsTable *bart.Lite
|
||||
l *slog.Logger
|
||||
ctx context.Context
|
||||
dnsMap4 map[string]netip.Addr
|
||||
dnsMap6 map[string]netip.Addr
|
||||
hostMap *HostMap
|
||||
pki *PKI
|
||||
|
||||
// selfHost is the cached FQDN we last seeded for ourselves
|
||||
selfHost string
|
||||
|
||||
mux *dns.ServeMux
|
||||
|
||||
@@ -55,14 +57,14 @@ type dnsServer struct {
|
||||
// they no-op when DNS isn't enabled. Each Start invocation owns a ctx-cancel
|
||||
// watcher that tears the listener down on nebula shutdown. The returned
|
||||
// pointer is always non-nil, even on error.
|
||||
func newDnsServerFromConfig(ctx context.Context, l *slog.Logger, cs *CertState, hostMap *HostMap, c *config.C) (*dnsServer, error) {
|
||||
func newDnsServerFromConfig(ctx context.Context, l *slog.Logger, pki *PKI, hostMap *HostMap, c *config.C) (*dnsServer, error) {
|
||||
ds := &dnsServer{
|
||||
l: l,
|
||||
ctx: ctx,
|
||||
dnsMap4: make(map[string]netip.Addr),
|
||||
dnsMap6: make(map[string]netip.Addr),
|
||||
hostMap: hostMap,
|
||||
myVpnAddrsTable: cs.myVpnAddrsTable,
|
||||
l: l,
|
||||
ctx: ctx,
|
||||
dnsMap4: make(map[string]netip.Addr),
|
||||
dnsMap6: make(map[string]netip.Addr),
|
||||
hostMap: hostMap,
|
||||
pki: pki,
|
||||
}
|
||||
ds.mux = dns.NewServeMux()
|
||||
ds.mux.HandleFunc(".", ds.handleDnsRequest)
|
||||
@@ -76,6 +78,7 @@ func newDnsServerFromConfig(ctx context.Context, l *slog.Logger, cs *CertState,
|
||||
if err := ds.reload(c, true); err != nil {
|
||||
return ds, err
|
||||
}
|
||||
ds.seedSelf()
|
||||
return ds, nil
|
||||
}
|
||||
|
||||
@@ -94,8 +97,7 @@ func (d *dnsServer) reload(c *config.C, initial bool) error {
|
||||
newAddr := getDnsServerAddr(c)
|
||||
|
||||
d.serverMu.Lock()
|
||||
running := d.server
|
||||
runningStarted := d.started
|
||||
running := d.server != nil
|
||||
sameAddr := d.addr == newAddr
|
||||
d.addr = newAddr
|
||||
d.enabled.Store(enabled)
|
||||
@@ -109,29 +111,26 @@ func (d *dnsServer) reload(c *config.C, initial bool) error {
|
||||
}
|
||||
|
||||
if !enabled {
|
||||
if running != nil {
|
||||
if running {
|
||||
d.Stop()
|
||||
}
|
||||
// Drop any records that accumulated while enabled; a later re-enable
|
||||
// will repopulate from fresh handshakes.
|
||||
// will repopulate from fresh handshakes and a fresh seedSelf.
|
||||
d.clearRecords()
|
||||
return nil
|
||||
}
|
||||
|
||||
if running == nil {
|
||||
if !running {
|
||||
// Was disabled (or never started); bring it up now.
|
||||
go d.Start()
|
||||
return nil
|
||||
} else if !sameAddr {
|
||||
// Stop clears the slot before shutting down, otherwise the Start below can find the dying server and refuse
|
||||
d.Stop()
|
||||
go d.Start()
|
||||
}
|
||||
|
||||
if sameAddr {
|
||||
return nil
|
||||
}
|
||||
|
||||
d.shutdownServer(running, runningStarted, "reload")
|
||||
// Old Start goroutine has now exited; bring up a fresh listener on the
|
||||
// new address.
|
||||
go d.Start()
|
||||
// Refresh the self entry every enabled reload so cert renewals that change our name or VPN addresses are picked up.
|
||||
d.seedSelf()
|
||||
return nil
|
||||
}
|
||||
|
||||
@@ -162,7 +161,9 @@ func (d *dnsServer) Start() {
|
||||
|
||||
started := make(chan struct{})
|
||||
d.serverMu.Lock()
|
||||
if d.ctx.Err() != nil {
|
||||
// Re-check enabled under the lock, a disable that raced our check above snapshots the slot under it too.
|
||||
// Two reloads in quick succession can both spawn a Start, the loser would orphan the live listener past Stop
|
||||
if d.ctx.Err() != nil || d.server != nil || !d.enabled.Load() {
|
||||
d.serverMu.Unlock()
|
||||
return
|
||||
}
|
||||
@@ -200,6 +201,14 @@ func (d *dnsServer) Start() {
|
||||
close(started)
|
||||
}
|
||||
|
||||
// Release our slot, unless a reload already replaced us, so a dead listener can't block a future Start
|
||||
d.serverMu.Lock()
|
||||
if d.server == server {
|
||||
d.server = nil
|
||||
d.started = nil
|
||||
}
|
||||
d.serverMu.Unlock()
|
||||
|
||||
if err != nil {
|
||||
d.l.Warn("Failed to run the DNS responder", "error", err)
|
||||
}
|
||||
@@ -249,6 +258,20 @@ func (d *dnsServer) QueryCert(data string) string {
|
||||
return ""
|
||||
}
|
||||
|
||||
// The hostmap only ever contains peers we have handshaked with, so it never carries an entry for ourselves.
|
||||
// Answer self lookups straight from the local cert state.
|
||||
if cs := d.certState(); cs != nil && cs.myVpnAddrsTable != nil && cs.myVpnAddrsTable.Contains(ip) {
|
||||
c := cs.GetDefaultCertificate()
|
||||
if c == nil {
|
||||
return ""
|
||||
}
|
||||
b, err := c.MarshalJSON()
|
||||
if err != nil {
|
||||
return ""
|
||||
}
|
||||
return string(b)
|
||||
}
|
||||
|
||||
hostinfo := d.hostMap.QueryVpnAddr(ip)
|
||||
if hostinfo == nil {
|
||||
return ""
|
||||
@@ -266,12 +289,60 @@ func (d *dnsServer) QueryCert(data string) string {
|
||||
return string(b)
|
||||
}
|
||||
|
||||
// clearRecords drops all DNS records.
|
||||
// clearRecords drops all DNS records, including the self entry.
|
||||
func (d *dnsServer) clearRecords() {
|
||||
d.Lock()
|
||||
defer d.Unlock()
|
||||
clear(d.dnsMap4)
|
||||
clear(d.dnsMap6)
|
||||
d.selfHost = ""
|
||||
}
|
||||
|
||||
// seedSelf inserts (or refreshes) a record for our own cert name pointing at our VPN addresses,
|
||||
// so a single-lighthouse network can resolve the lighthouse's own hostname without the two-process workaround.
|
||||
func (d *dnsServer) seedSelf() {
|
||||
if !d.enabled.Load() {
|
||||
return
|
||||
}
|
||||
cs := d.certState()
|
||||
if cs == nil {
|
||||
return
|
||||
}
|
||||
c := cs.GetDefaultCertificate()
|
||||
if c == nil {
|
||||
return
|
||||
}
|
||||
newHost := strings.ToLower(c.Name()) + "."
|
||||
|
||||
d.Lock()
|
||||
defer d.Unlock()
|
||||
if d.selfHost != "" && d.selfHost != newHost {
|
||||
delete(d.dnsMap4, d.selfHost)
|
||||
delete(d.dnsMap6, d.selfHost)
|
||||
}
|
||||
d.selfHost = newHost
|
||||
delete(d.dnsMap4, newHost)
|
||||
delete(d.dnsMap6, newHost)
|
||||
haveV4, haveV6 := false, false
|
||||
for _, addr := range cs.myVpnAddrs {
|
||||
if addr.Is4() && !haveV4 {
|
||||
d.dnsMap4[newHost] = addr
|
||||
haveV4 = true
|
||||
} else if addr.Is6() && !haveV6 {
|
||||
d.dnsMap6[newHost] = addr
|
||||
haveV6 = true
|
||||
}
|
||||
if haveV4 && haveV6 {
|
||||
break
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
func (d *dnsServer) certState() *CertState {
|
||||
if d.pki == nil {
|
||||
return nil
|
||||
}
|
||||
return d.pki.getCertState()
|
||||
}
|
||||
|
||||
// Add adds the first IPv4 and IPv6 address that appears in `addresses` as the record for `host`
|
||||
@@ -309,8 +380,12 @@ func (d *dnsServer) isSelfNebulaOrLocalhost(addr string) bool {
|
||||
return true
|
||||
}
|
||||
|
||||
cs := d.certState()
|
||||
if cs == nil || cs.myVpnAddrsTable == nil {
|
||||
return false
|
||||
}
|
||||
//if we found it in this table, it's good
|
||||
return d.myVpnAddrsTable.Contains(b)
|
||||
return cs.myVpnAddrsTable.Contains(b)
|
||||
}
|
||||
|
||||
func (d *dnsServer) parseQuery(m *dns.Msg, w dns.ResponseWriter) {
|
||||
|
||||
+295
-4
@@ -9,7 +9,10 @@ import (
|
||||
"testing"
|
||||
"time"
|
||||
|
||||
"github.com/gaissmai/bart"
|
||||
"github.com/miekg/dns"
|
||||
"github.com/slackhq/nebula/cert"
|
||||
"github.com/slackhq/nebula/cert_test"
|
||||
"github.com/slackhq/nebula/config"
|
||||
"github.com/stretchr/testify/assert"
|
||||
"github.com/stretchr/testify/require"
|
||||
@@ -191,14 +194,51 @@ func TestDnsServer_reload_initial_serveDnsWithoutLighthouse(t *testing.T) {
|
||||
}
|
||||
|
||||
func TestDnsServer_reload_sameAddr_noOp(t *testing.T) {
|
||||
port := freeUDPPort(t)
|
||||
ds, c := newTestDnsServer(t)
|
||||
setDnsConfig(c, "127.0.0.1", "0", true, true)
|
||||
|
||||
setDnsConfig(c, "127.0.0.1", port, true, true)
|
||||
require.NoError(t, ds.reload(c, true))
|
||||
// No server running yet, no addr change. Reload should not spawn anything.
|
||||
|
||||
go ds.Start()
|
||||
waitForBind(t, ds)
|
||||
|
||||
ds.serverMu.Lock()
|
||||
before := ds.server
|
||||
ds.serverMu.Unlock()
|
||||
require.NotNil(t, before)
|
||||
|
||||
// Same address, so the running listener must be left alone rather than rebuilt under live queries
|
||||
require.NoError(t, ds.reload(c, false))
|
||||
assert.True(t, ds.enabled.Load())
|
||||
assert.Nil(t, ds.server)
|
||||
|
||||
ds.serverMu.Lock()
|
||||
after := ds.server
|
||||
ds.serverMu.Unlock()
|
||||
assert.Same(t, before, after, "a same-address reload must not restart the listener")
|
||||
|
||||
ds.Stop()
|
||||
}
|
||||
|
||||
// The branch the old sameAddr test was accidentally hitting: enabled with nothing running means reload starts it.
|
||||
func TestDnsServer_reload_whenNotRunning_starts(t *testing.T) {
|
||||
port := freeUDPPort(t)
|
||||
ds, c := newTestDnsServer(t)
|
||||
setDnsConfig(c, "127.0.0.1", port, true, true)
|
||||
|
||||
// initial only records config, it never starts anything
|
||||
require.NoError(t, ds.reload(c, true))
|
||||
ds.serverMu.Lock()
|
||||
assert.Nil(t, ds.server, "the initial reload must not start a listener")
|
||||
ds.serverMu.Unlock()
|
||||
|
||||
require.NoError(t, ds.reload(c, false))
|
||||
waitForBind(t, ds)
|
||||
|
||||
ds.serverMu.Lock()
|
||||
assert.NotNil(t, ds.server, "a reload with nothing running should bring DNS up")
|
||||
ds.serverMu.Unlock()
|
||||
|
||||
ds.Stop()
|
||||
}
|
||||
|
||||
func TestDnsServer_StartStop_lifecycle(t *testing.T) {
|
||||
@@ -276,6 +316,92 @@ func TestDnsServer_Stop_beforeBind_doesNotHang(t *testing.T) {
|
||||
}
|
||||
}
|
||||
|
||||
// newTestPKI builds a minimal *PKI with a single v1 cert whose name and
|
||||
// VPN addresses are caller-provided, suitable for exercising seedSelf and
|
||||
// QueryCert self handling.
|
||||
func newTestPKI(t *testing.T, name string, addrs []netip.Addr) *PKI {
|
||||
t.Helper()
|
||||
networks := make([]netip.Prefix, 0, len(addrs))
|
||||
for _, a := range addrs {
|
||||
bits := 32
|
||||
if a.Is6() {
|
||||
bits = 128
|
||||
}
|
||||
networks = append(networks, netip.PrefixFrom(a, bits))
|
||||
}
|
||||
ca, _, caKey, _ := cert_test.NewTestCaCert(cert.Version2, cert.Curve_CURVE25519, time.Time{}, time.Time{}, nil, nil, nil)
|
||||
c, _, _, _ := cert_test.NewTestCert(cert.Version2, cert.Curve_CURVE25519, ca, caKey, name, time.Time{}, time.Time{}, networks, nil, nil)
|
||||
|
||||
addrsTable := new(bart.Lite)
|
||||
for _, a := range addrs {
|
||||
addrsTable.Insert(netip.PrefixFrom(a, a.BitLen()))
|
||||
}
|
||||
|
||||
cs := &CertState{
|
||||
v2Cert: c,
|
||||
initiatingVersion: cert.Version2,
|
||||
myVpnAddrs: addrs,
|
||||
myVpnAddrsTable: addrsTable,
|
||||
}
|
||||
pki := &PKI{}
|
||||
pki.cs.Store(cs)
|
||||
return pki
|
||||
}
|
||||
|
||||
func TestDnsServer_seedSelf_addsOwnRecord(t *testing.T) {
|
||||
ds, c := newTestDnsServer(t)
|
||||
myV4 := netip.MustParseAddr("10.0.0.1")
|
||||
myV6 := netip.MustParseAddr("fd00::1")
|
||||
ds.pki = newTestPKI(t, "lighthouse", []netip.Addr{myV4, myV6})
|
||||
setDnsConfig(c, "127.0.0.1", "0", true, true)
|
||||
require.NoError(t, ds.reload(c, true))
|
||||
|
||||
ds.seedSelf()
|
||||
got4, exists := ds.Query(dns.TypeA, "lighthouse.")
|
||||
assert.True(t, exists)
|
||||
assert.Equal(t, myV4, got4)
|
||||
got6, exists := ds.Query(dns.TypeAAAA, "lighthouse.")
|
||||
assert.True(t, exists)
|
||||
assert.Equal(t, myV6, got6)
|
||||
}
|
||||
|
||||
func TestDnsServer_seedSelf_disabled_noOp(t *testing.T) {
|
||||
ds, c := newTestDnsServer(t)
|
||||
ds.pki = newTestPKI(t, "lighthouse", []netip.Addr{netip.MustParseAddr("10.0.0.1")})
|
||||
setDnsConfig(c, "127.0.0.1", "0", true, false)
|
||||
require.NoError(t, ds.reload(c, true))
|
||||
|
||||
ds.seedSelf()
|
||||
_, exists := ds.Query(dns.TypeA, "lighthouse.")
|
||||
assert.False(t, exists)
|
||||
}
|
||||
|
||||
func TestDnsServer_clearRecords_dropsSelfHost(t *testing.T) {
|
||||
ds, c := newTestDnsServer(t)
|
||||
ds.pki = newTestPKI(t, "lighthouse", []netip.Addr{netip.MustParseAddr("10.0.0.1")})
|
||||
setDnsConfig(c, "127.0.0.1", "0", true, true)
|
||||
require.NoError(t, ds.reload(c, true))
|
||||
ds.seedSelf()
|
||||
require.NotEmpty(t, ds.selfHost)
|
||||
|
||||
ds.clearRecords()
|
||||
assert.Empty(t, ds.selfHost)
|
||||
_, exists := ds.Query(dns.TypeA, "lighthouse.")
|
||||
assert.False(t, exists)
|
||||
}
|
||||
|
||||
func TestDnsServer_QueryCert_returnsOwnCert(t *testing.T) {
|
||||
ds, _ := newTestDnsServer(t)
|
||||
myV4 := netip.MustParseAddr("10.0.0.1")
|
||||
ds.pki = newTestPKI(t, "lighthouse", []netip.Addr{myV4})
|
||||
|
||||
got := ds.QueryCert(myV4.String() + ".")
|
||||
assert.NotEmpty(t, got, "TXT lookup of our own VPN address should return our cert")
|
||||
|
||||
other := netip.MustParseAddr("10.0.0.99")
|
||||
assert.Empty(t, ds.QueryCert(other.String()+"."), "unknown peer IP should return nothing")
|
||||
}
|
||||
|
||||
func TestDnsServer_reload_disable_stopsRunningServer(t *testing.T) {
|
||||
port := freeUDPPort(t)
|
||||
ds, c := newTestDnsServer(t)
|
||||
@@ -338,3 +464,168 @@ func waitFor(t *testing.T, cond func() bool) {
|
||||
}
|
||||
t.Fatal("timed out waiting for condition")
|
||||
}
|
||||
|
||||
// Two reloads in quick succession, or a HUP before Control.Start, can race two Starts at the same listener.
|
||||
func TestDnsServer_Start_isIdempotent(t *testing.T) {
|
||||
port := freeUDPPort(t)
|
||||
ds, c := newTestDnsServer(t)
|
||||
setDnsConfig(c, "127.0.0.1", port, true, true)
|
||||
require.NoError(t, ds.reload(c, true))
|
||||
|
||||
go ds.Start()
|
||||
waitForBind(t, ds)
|
||||
|
||||
ds.serverMu.Lock()
|
||||
first := ds.server
|
||||
ds.serverMu.Unlock()
|
||||
require.NotNil(t, first)
|
||||
|
||||
// If the second Start replaces the tracked server, Stop kills the wrong one and the port leaks
|
||||
done := make(chan struct{})
|
||||
go func() {
|
||||
ds.Start()
|
||||
close(done)
|
||||
}()
|
||||
select {
|
||||
case <-done:
|
||||
case <-time.After(time.Second * 5):
|
||||
t.Fatal("second Start never returned")
|
||||
}
|
||||
|
||||
ds.serverMu.Lock()
|
||||
second := ds.server
|
||||
ds.serverMu.Unlock()
|
||||
assert.Same(t, first, second, "a second Start must not replace the running server")
|
||||
|
||||
// The real proof, after Stop the port must actually be free
|
||||
ds.Stop()
|
||||
waitFor(t, func() bool {
|
||||
pc, err := net.ListenPacket("udp", "127.0.0.1:"+port)
|
||||
if err != nil {
|
||||
return false
|
||||
}
|
||||
_ = pc.Close()
|
||||
return true
|
||||
})
|
||||
}
|
||||
|
||||
// An address change must actually end up listening on the new port. Start's guard refuses when a server is already
|
||||
// installed, so reload has to clear the slot before shutting the old one down.
|
||||
func TestDnsServer_reload_addrChange_restarts(t *testing.T) {
|
||||
first := freeUDPPort(t)
|
||||
second := freeUDPPort(t)
|
||||
|
||||
ds, c := newTestDnsServer(t)
|
||||
setDnsConfig(c, "127.0.0.1", first, true, true)
|
||||
require.NoError(t, ds.reload(c, true))
|
||||
|
||||
go ds.Start()
|
||||
waitForBind(t, ds)
|
||||
|
||||
// Cycle a few times, the failure this guards against depends on which goroutine wins serverMu
|
||||
for i := range 8 {
|
||||
want := second
|
||||
if i%2 == 1 {
|
||||
want = first
|
||||
}
|
||||
setDnsConfig(c, "127.0.0.1", want, true, true)
|
||||
require.NoError(t, ds.reload(c, false))
|
||||
waitForBind(t, ds)
|
||||
|
||||
ds.serverMu.Lock()
|
||||
srv := ds.server
|
||||
ds.serverMu.Unlock()
|
||||
require.NotNil(t, srv, "reload left DNS down instead of restarting it")
|
||||
require.Equal(t, "127.0.0.1:"+want, srv.Addr, "reload should be serving the new address")
|
||||
}
|
||||
|
||||
// Land back on second so the port assertions below are meaningful
|
||||
setDnsConfig(c, "127.0.0.1", second, true, true)
|
||||
require.NoError(t, ds.reload(c, false))
|
||||
waitForBind(t, ds)
|
||||
|
||||
// The old port must be released and the new one actually held
|
||||
waitFor(t, func() bool {
|
||||
pc, err := net.ListenPacket("udp", "127.0.0.1:"+first)
|
||||
if err != nil {
|
||||
return false
|
||||
}
|
||||
_ = pc.Close()
|
||||
return true
|
||||
})
|
||||
_, err := net.ListenPacket("udp", "127.0.0.1:"+second)
|
||||
require.Error(t, err, "the new address should be bound by the DNS responder")
|
||||
|
||||
ds.Stop()
|
||||
}
|
||||
|
||||
// A listener that dies on its own must release the slot, or a later same-addr reload sees it as running and no-ops.
|
||||
func TestDnsServer_Start_bindFailure_releasesSlot(t *testing.T) {
|
||||
port := freeUDPPort(t)
|
||||
blocker, err := net.ListenPacket("udp", "127.0.0.1:"+port)
|
||||
require.NoError(t, err)
|
||||
|
||||
ds, c := newTestDnsServer(t)
|
||||
setDnsConfig(c, "127.0.0.1", port, true, true)
|
||||
require.NoError(t, ds.reload(c, true))
|
||||
|
||||
ds.Start() // returns once the bind fails
|
||||
|
||||
ds.serverMu.Lock()
|
||||
assert.Nil(t, ds.server, "a listener that failed to bind must not stay parked in the slot")
|
||||
ds.serverMu.Unlock()
|
||||
|
||||
// With the slot released, a reload can retry once the port frees up
|
||||
require.NoError(t, blocker.Close())
|
||||
require.NoError(t, ds.reload(c, false))
|
||||
waitForBind(t, ds)
|
||||
|
||||
ds.serverMu.Lock()
|
||||
assert.NotNil(t, ds.server, "a same-addr reload should retry after a failed bind")
|
||||
ds.serverMu.Unlock()
|
||||
|
||||
ds.Stop()
|
||||
}
|
||||
|
||||
// A disable that lands while Start is between its unlocked check and the guard must not leave a listener behind.
|
||||
func TestDnsServer_Start_refusesWhenDisabledUnderLock(t *testing.T) {
|
||||
port := freeUDPPort(t)
|
||||
ds, c := newTestDnsServer(t)
|
||||
setDnsConfig(c, "127.0.0.1", port, true, true)
|
||||
require.NoError(t, ds.reload(c, true))
|
||||
require.True(t, ds.enabled.Load())
|
||||
|
||||
// Holding serverMu parks Start on the lock, the only way to land the disable in that window on purpose
|
||||
ds.serverMu.Lock()
|
||||
|
||||
done := make(chan struct{})
|
||||
go func() {
|
||||
ds.Start()
|
||||
close(done)
|
||||
}()
|
||||
|
||||
select {
|
||||
case <-done:
|
||||
ds.serverMu.Unlock()
|
||||
t.Fatal("Start returned early, the test never exercised the window")
|
||||
case <-time.After(time.Millisecond * 100):
|
||||
}
|
||||
|
||||
// The disable reload's critical section. It sees nothing running, so it never calls Stop.
|
||||
ds.enabled.Store(false)
|
||||
ds.serverMu.Unlock()
|
||||
|
||||
select {
|
||||
case <-done:
|
||||
case <-time.After(time.Second * 5):
|
||||
t.Fatal("Start never returned")
|
||||
}
|
||||
|
||||
ds.serverMu.Lock()
|
||||
assert.Nil(t, ds.server, "Start must not install a listener a disable already cancelled")
|
||||
ds.serverMu.Unlock()
|
||||
|
||||
pc, err := net.ListenPacket("udp", "127.0.0.1:"+port)
|
||||
require.NoError(t, err, "an orphaned listener is still holding the port")
|
||||
_ = pc.Close()
|
||||
}
|
||||
|
||||
@@ -1,6 +1,16 @@
|
||||
FROM gcr.io/distroless/static:latest
|
||||
|
||||
ARG TARGETOS TARGETARCH
|
||||
|
||||
ARG VERSION=dev
|
||||
ARG REVISION=unknown
|
||||
LABEL org.opencontainers.image.title="nebula" \
|
||||
org.opencontainers.image.description="A scalable overlay networking tool with a focus on performance, simplicity and security" \
|
||||
org.opencontainers.image.vendor="Nebula OSS" \
|
||||
org.opencontainers.image.source="https://github.com/slackhq/nebula" \
|
||||
org.opencontainers.image.version="${VERSION}" \
|
||||
org.opencontainers.image.revision="${REVISION}"
|
||||
|
||||
COPY build/$TARGETOS-$TARGETARCH/nebula /nebula
|
||||
COPY build/$TARGETOS-$TARGETARCH/nebula-cert /nebula-cert
|
||||
|
||||
|
||||
@@ -0,0 +1,85 @@
|
||||
//go:build e2e_testing
|
||||
// +build e2e_testing
|
||||
|
||||
package e2e
|
||||
|
||||
import (
|
||||
"testing"
|
||||
"time"
|
||||
|
||||
"github.com/slackhq/nebula"
|
||||
"github.com/slackhq/nebula/cert"
|
||||
"github.com/slackhq/nebula/cert_test"
|
||||
"github.com/slackhq/nebula/e2e/router"
|
||||
"github.com/slackhq/nebula/header"
|
||||
"github.com/slackhq/nebula/udp"
|
||||
"github.com/stretchr/testify/assert"
|
||||
"github.com/stretchr/testify/require"
|
||||
)
|
||||
|
||||
func assertTestRequestEchoed(t *testing.T, cipher string) {
|
||||
ca, _, caKey, _ := cert_test.NewTestCaCert(cert.Version1, cert.Curve_CURVE25519, time.Now(), time.Now().Add(10*time.Minute), nil, nil, []string{})
|
||||
over := m{"cipher": cipher}
|
||||
a, aNet, aUdp, _ := newSimpleServer(cert.Version1, ca, caKey, "a", "10.128.0.1/24", over)
|
||||
b, bNet, bUdp, _ := newSimpleServer(cert.Version1, ca, caKey, "b", "10.128.0.2/24", over)
|
||||
|
||||
a.InjectLightHouseAddr(bNet[0].Addr(), bUdp)
|
||||
b.InjectLightHouseAddr(aNet[0].Addr(), aUdp)
|
||||
a.Start()
|
||||
b.Start()
|
||||
t.Cleanup(func() { a.Stop(); b.Stop() })
|
||||
r := router.NewR(t, a, b)
|
||||
defer r.RenderFlow()
|
||||
|
||||
assertTunnel(t, aNet[0].Addr(), bNet[0].Addr(), a, b, r)
|
||||
drainUDPTx(a)
|
||||
drainUDPTx(b)
|
||||
|
||||
payload := []byte("a test payload well over sixteen bytes long, wow it's so very long long long!")
|
||||
require.Greater(t, len(payload), header.Len)
|
||||
a.GetF().SendMessageToVpnAddr(header.Test, header.TestRequest, bNet[0].Addr(), payload, make([]byte, 12, 12), make([]byte, udp.MTU))
|
||||
|
||||
// Deliver A's request to B; B must echo a reply back
|
||||
b.InjectUDPPacket(a.GetFromUDP(true))
|
||||
reply := nextUDPTxOfType(t, b, header.Test, header.TestReply, 2*time.Second)
|
||||
|
||||
assert.Equal(t, aUdp, reply.To, "the reply must go back to the requester")
|
||||
// header + echoed payload + 16-byte AEAD tag: proves the whole payload
|
||||
// round-tripped rather than being dropped or truncated.
|
||||
assert.Equal(t, header.Len+len(payload)+16, len(reply.Data), "the full payload must be echoed back")
|
||||
}
|
||||
|
||||
func TestTestRequestEchoesLongPayloadAES(t *testing.T) {
|
||||
assertTestRequestEchoed(t, "aes")
|
||||
}
|
||||
|
||||
func TestTestRequestEchoesLongPayloadChaChaPoly(t *testing.T) {
|
||||
assertTestRequestEchoed(t, "chachapoly")
|
||||
}
|
||||
|
||||
// drainUDPTx empties a control's UDP tx queue without blocking.
|
||||
func drainUDPTx(c *nebula.Control) {
|
||||
for c.GetFromUDP(false) != nil {
|
||||
}
|
||||
}
|
||||
|
||||
// nextUDPTxOfType returns the next packet a control transmits whose nebula
|
||||
// header matches (wantType, wantSub), skipping unrelated packets.
|
||||
// It fails the test if none arrives within the timeout.
|
||||
func nextUDPTxOfType(t *testing.T, c *nebula.Control, wantType header.MessageType, wantSub header.MessageSubType, within time.Duration) *udp.Packet {
|
||||
t.Helper()
|
||||
ch := c.GetUDPTxChan()
|
||||
timeout := time.After(within)
|
||||
for {
|
||||
select {
|
||||
case p := <-ch:
|
||||
var h header.H
|
||||
if err := h.Parse(p.Data); err == nil && h.Type == wantType && h.Subtype == wantSub {
|
||||
return p
|
||||
}
|
||||
case <-timeout:
|
||||
t.Fatalf("timed out waiting for a %v/%v packet on the udp tx queue", wantType, wantSub)
|
||||
return nil
|
||||
}
|
||||
}
|
||||
}
|
||||
+173
-30
@@ -405,7 +405,7 @@ func TestStage1Race(t *testing.T) {
|
||||
|
||||
r.Log("Spin until connection manager tears down a tunnel")
|
||||
|
||||
for len(myControl.GetHostmap().Indexes)+len(theirControl.GetHostmap().Indexes) > 2 {
|
||||
for myControl.GetHostmapIndexCount()+theirControl.GetHostmapIndexCount() > 2 {
|
||||
assertTunnel(t, myVpnIpNet[0].Addr(), theirVpnIpNet[0].Addr(), myControl, theirControl, r)
|
||||
t.Log("Connection manager hasn't ticked yet")
|
||||
time.Sleep(time.Second)
|
||||
@@ -453,9 +453,11 @@ func TestUncleanShutdownRaceLoser(t *testing.T) {
|
||||
|
||||
r.Log("Nuke my hostmap")
|
||||
myHostmap := myControl.GetHostmap()
|
||||
myHostmap.Lock()
|
||||
myHostmap.Hosts = map[netip.Addr]*nebula.HostInfo{}
|
||||
myHostmap.Indexes = map[uint32]*nebula.HostInfo{}
|
||||
myHostmap.RemoteIndexes = map[uint32]*nebula.HostInfo{}
|
||||
myHostmap.Unlock()
|
||||
|
||||
myControl.InjectTunPacket(BuildTunUDPPacket(theirVpnIpNet[0].Addr(), 80, myVpnIpNet[0].Addr(), 80, []byte("Hi from me again")))
|
||||
p = r.RouteForAllUntilTxTun(theirControl)
|
||||
@@ -465,10 +467,10 @@ func TestUncleanShutdownRaceLoser(t *testing.T) {
|
||||
assertTunnel(t, myVpnIpNet[0].Addr(), theirVpnIpNet[0].Addr(), myControl, theirControl, r)
|
||||
|
||||
r.Log("Wait for the dead index to go away")
|
||||
start := len(theirControl.GetHostmap().Indexes)
|
||||
start := theirControl.GetHostmapIndexCount()
|
||||
for {
|
||||
assertTunnel(t, myVpnIpNet[0].Addr(), theirVpnIpNet[0].Addr(), myControl, theirControl, r)
|
||||
if len(theirControl.GetHostmap().Indexes) < start {
|
||||
if theirControl.GetHostmapIndexCount() < start {
|
||||
break
|
||||
}
|
||||
time.Sleep(time.Second)
|
||||
@@ -504,9 +506,11 @@ func TestUncleanShutdownRaceWinner(t *testing.T) {
|
||||
|
||||
r.Log("Nuke my hostmap")
|
||||
theirHostmap := theirControl.GetHostmap()
|
||||
theirHostmap.Lock()
|
||||
theirHostmap.Hosts = map[netip.Addr]*nebula.HostInfo{}
|
||||
theirHostmap.Indexes = map[uint32]*nebula.HostInfo{}
|
||||
theirHostmap.RemoteIndexes = map[uint32]*nebula.HostInfo{}
|
||||
theirHostmap.Unlock()
|
||||
|
||||
theirControl.InjectTunPacket(BuildTunUDPPacket(myVpnIpNet[0].Addr(), 80, theirVpnIpNet[0].Addr(), 80, []byte("Hi from them again")))
|
||||
p = r.RouteForAllUntilTxTun(myControl)
|
||||
@@ -517,10 +521,10 @@ func TestUncleanShutdownRaceWinner(t *testing.T) {
|
||||
assertTunnel(t, myVpnIpNet[0].Addr(), theirVpnIpNet[0].Addr(), myControl, theirControl, r)
|
||||
|
||||
r.Log("Wait for the dead index to go away")
|
||||
start := len(myControl.GetHostmap().Indexes)
|
||||
start := myControl.GetHostmapIndexCount()
|
||||
for {
|
||||
assertTunnel(t, myVpnIpNet[0].Addr(), theirVpnIpNet[0].Addr(), myControl, theirControl, r)
|
||||
if len(myControl.GetHostmap().Indexes) < start {
|
||||
if myControl.GetHostmapIndexCount() < start {
|
||||
break
|
||||
}
|
||||
time.Sleep(time.Second)
|
||||
@@ -628,10 +632,10 @@ func TestReestablishRelays(t *testing.T) {
|
||||
r.Log("Close the tunnel")
|
||||
relayControl.CloseTunnel(theirVpnIpNet[0].Addr(), true)
|
||||
|
||||
start := len(myControl.GetHostmap().Indexes)
|
||||
curIndexes := len(myControl.GetHostmap().Indexes)
|
||||
start := myControl.GetHostmapIndexCount()
|
||||
curIndexes := myControl.GetHostmapIndexCount()
|
||||
for curIndexes >= start {
|
||||
curIndexes = len(myControl.GetHostmap().Indexes)
|
||||
curIndexes = myControl.GetHostmapIndexCount()
|
||||
r.Logf("Wait for the dead index to go away:start=%v indexes, current=%v indexes", start, curIndexes)
|
||||
myControl.InjectTunPacket(BuildTunUDPPacket(theirVpnIpNet[0].Addr(), 80, myVpnIpNet[0].Addr(), 80, []byte("Hi from me should fail")))
|
||||
|
||||
@@ -721,6 +725,70 @@ func TestReestablishRelays(t *testing.T) {
|
||||
|
||||
}
|
||||
|
||||
func TestRelayHandshakeOverDisestablishedEntry(t *testing.T) {
|
||||
t.Parallel()
|
||||
// If them tears down the tunnel while me keeps Established relay state, me's next
|
||||
// handshake flows through the relay with no fresh CreateRelayRequest and lands on
|
||||
// them's Disestablished terminal relay entry. them must re-establish that entry, or
|
||||
// its first transmit deletes its only relay and the tunnel is born transmit-dead:
|
||||
// them can receive but every send is silently dropped.
|
||||
ca, _, caKey, _ := cert_test.NewTestCaCert(cert.Version1, cert.Curve_CURVE25519, time.Now(), time.Now().Add(10*time.Minute), nil, nil, []string{})
|
||||
myControl, myVpnIpNet, _, _ := newSimpleServer(cert.Version1, ca, caKey, "me ", "10.128.0.1/24", m{"relay": m{"use_relays": true}})
|
||||
relayControl, relayVpnIpNet, relayUdpAddr, _ := newSimpleServer(cert.Version1, ca, caKey, "relay ", "10.128.0.128/24", m{"relay": m{"am_relay": true}})
|
||||
theirControl, theirVpnIpNet, theirUdpAddr, _ := newSimpleServer(cert.Version1, ca, caKey, "them ", "10.128.0.2/24", m{"relay": m{"use_relays": true}})
|
||||
|
||||
// Teach my how to get to the relay and that their can be reached via the relay
|
||||
myControl.InjectLightHouseAddr(relayVpnIpNet[0].Addr(), relayUdpAddr)
|
||||
myControl.InjectRelays(theirVpnIpNet[0].Addr(), []netip.Addr{relayVpnIpNet[0].Addr()})
|
||||
relayControl.InjectLightHouseAddr(theirVpnIpNet[0].Addr(), theirUdpAddr)
|
||||
|
||||
// Build a router so we don't have to reason who gets which packet
|
||||
r := router.NewR(t, myControl, relayControl, theirControl)
|
||||
defer r.RenderFlow()
|
||||
|
||||
// Start the servers
|
||||
myControl.Start()
|
||||
relayControl.Start()
|
||||
theirControl.Start()
|
||||
|
||||
t.Log("Trigger a handshake from me to them via the relay")
|
||||
myControl.InjectTunPacket(BuildTunUDPPacket(theirVpnIpNet[0].Addr(), 80, myVpnIpNet[0].Addr(), 80, []byte("Hi from me")))
|
||||
|
||||
p := r.RouteForAllUntilTxTun(theirControl)
|
||||
assertUdpPacket(t, []byte("Hi from me"), p, myVpnIpNet[0].Addr(), theirVpnIpNet[0].Addr(), 80, 80)
|
||||
oldIdx := myControl.GetHostInfoByVpnAddr(theirVpnIpNet[0].Addr(), false).LocalIndex
|
||||
|
||||
t.Log("Close the tunnel on them only, marking their relay entry Disestablished")
|
||||
theirControl.CloseTunnel(myVpnIpNet[0].Addr(), true)
|
||||
|
||||
t.Log("Re-handshake from me, riding the still-Established relay state")
|
||||
myControl.ReHandshake(theirVpnIpNet[0].Addr())
|
||||
for {
|
||||
h := myControl.GetHostInfoByVpnAddr(theirVpnIpNet[0].Addr(), false)
|
||||
if h != nil && h.LocalIndex != oldIdx && h.RemoteIndex != 0 {
|
||||
break
|
||||
}
|
||||
r.RouteForAllExitFunc(func(*udp.Packet, *nebula.Control) router.ExitType {
|
||||
return router.RouteAndExit
|
||||
})
|
||||
}
|
||||
|
||||
hAtThem := theirControl.GetHostInfoByVpnAddr(myVpnIpNet[0].Addr(), false)
|
||||
require.NotNil(t, hAtThem, "them should have completed the relayed handshake")
|
||||
require.Equal(t, []netip.Addr{relayVpnIpNet[0].Addr()}, hAtThem.CurrentRelaysToMe, "them should know a relay for the new tunnel")
|
||||
|
||||
t.Log("Send from them to me; their only relay entry must survive the transmit")
|
||||
theirControl.InjectTunPacket(BuildTunUDPPacket(myVpnIpNet[0].Addr(), 80, theirVpnIpNet[0].Addr(), 80, []byte("Hi from them")))
|
||||
require.Never(t, func() bool {
|
||||
h := theirControl.GetHostInfoByVpnAddr(myVpnIpNet[0].Addr(), false)
|
||||
return h == nil || len(h.CurrentRelaysToMe) == 0
|
||||
}, time.Second, 10*time.Millisecond, "them deleted its only relay entry; the tunnel is permanently transmit-dead")
|
||||
|
||||
p = r.RouteForAllUntilTxTun(myControl)
|
||||
assertUdpPacket(t, []byte("Hi from them"), p, theirVpnIpNet[0].Addr(), myVpnIpNet[0].Addr(), 80, 80)
|
||||
r.RenderHostmaps("Final hostmaps", myControl, relayControl, theirControl)
|
||||
}
|
||||
|
||||
func TestStage1RaceRelays(t *testing.T) {
|
||||
t.Parallel()
|
||||
//NOTE: this is a race between me and relay resulting in a full tunnel from me to them via relay
|
||||
@@ -819,18 +887,18 @@ func TestStage1RaceRelays2(t *testing.T) {
|
||||
|
||||
t.Log("Wait until we remove extra tunnels")
|
||||
t.Logf("Waiting for hostinfos to be removed... myControl=%d theirControl=%d relayControl=%d",
|
||||
len(myControl.GetHostmap().Indexes),
|
||||
len(theirControl.GetHostmap().Indexes),
|
||||
len(relayControl.GetHostmap().Indexes),
|
||||
myControl.GetHostmapIndexCount(),
|
||||
theirControl.GetHostmapIndexCount(),
|
||||
relayControl.GetHostmapIndexCount(),
|
||||
)
|
||||
hostInfos := len(myControl.GetHostmap().Indexes) + len(theirControl.GetHostmap().Indexes) + len(relayControl.GetHostmap().Indexes)
|
||||
hostInfos := myControl.GetHostmapIndexCount() + theirControl.GetHostmapIndexCount() + relayControl.GetHostmapIndexCount()
|
||||
retries := 60
|
||||
for hostInfos > 6 && retries > 0 {
|
||||
hostInfos = len(myControl.GetHostmap().Indexes) + len(theirControl.GetHostmap().Indexes) + len(relayControl.GetHostmap().Indexes)
|
||||
hostInfos = myControl.GetHostmapIndexCount() + theirControl.GetHostmapIndexCount() + relayControl.GetHostmapIndexCount()
|
||||
t.Logf("Waiting for hostinfos to be removed... myControl=%d theirControl=%d relayControl=%d",
|
||||
len(myControl.GetHostmap().Indexes),
|
||||
len(theirControl.GetHostmap().Indexes),
|
||||
len(relayControl.GetHostmap().Indexes),
|
||||
myControl.GetHostmapIndexCount(),
|
||||
theirControl.GetHostmapIndexCount(),
|
||||
relayControl.GetHostmapIndexCount(),
|
||||
)
|
||||
assertTunnel(t, myVpnIpNet[0].Addr(), theirVpnIpNet[0].Addr(), myControl, theirControl, r)
|
||||
t.Log("Connection manager hasn't ticked yet")
|
||||
@@ -924,24 +992,24 @@ func TestRehandshakingRelays(t *testing.T) {
|
||||
assertTunnel(t, theirVpnIpNet[0].Addr(), myVpnIpNet[0].Addr(), theirControl, myControl, r)
|
||||
r.RenderHostmaps("working hostmaps", myControl, relayControl, theirControl)
|
||||
// We should have two hostinfos on all sides
|
||||
for len(myControl.GetHostmap().Indexes) != 2 {
|
||||
t.Logf("Waiting for myControl hostinfos (%v != 2) to get cleaned up from lack of use...", len(myControl.GetHostmap().Indexes))
|
||||
for myControl.GetHostmapIndexCount() != 2 {
|
||||
t.Logf("Waiting for myControl hostinfos (%v != 2) to get cleaned up from lack of use...", myControl.GetHostmapIndexCount())
|
||||
r.Log("Assert the relay tunnel still works")
|
||||
assertTunnel(t, theirVpnIpNet[0].Addr(), myVpnIpNet[0].Addr(), theirControl, myControl, r)
|
||||
r.Log("yupitdoes")
|
||||
time.Sleep(time.Second)
|
||||
}
|
||||
t.Logf("myControl hostinfos got cleaned up!")
|
||||
for len(theirControl.GetHostmap().Indexes) != 2 {
|
||||
t.Logf("Waiting for theirControl hostinfos (%v != 2) to get cleaned up from lack of use...", len(theirControl.GetHostmap().Indexes))
|
||||
for theirControl.GetHostmapIndexCount() != 2 {
|
||||
t.Logf("Waiting for theirControl hostinfos (%v != 2) to get cleaned up from lack of use...", theirControl.GetHostmapIndexCount())
|
||||
r.Log("Assert the relay tunnel still works")
|
||||
assertTunnel(t, theirVpnIpNet[0].Addr(), myVpnIpNet[0].Addr(), theirControl, myControl, r)
|
||||
r.Log("yupitdoes")
|
||||
time.Sleep(time.Second)
|
||||
}
|
||||
t.Logf("theirControl hostinfos got cleaned up!")
|
||||
for len(relayControl.GetHostmap().Indexes) != 2 {
|
||||
t.Logf("Waiting for relayControl hostinfos (%v != 2) to get cleaned up from lack of use...", len(relayControl.GetHostmap().Indexes))
|
||||
for relayControl.GetHostmapIndexCount() != 2 {
|
||||
t.Logf("Waiting for relayControl hostinfos (%v != 2) to get cleaned up from lack of use...", relayControl.GetHostmapIndexCount())
|
||||
r.Log("Assert the relay tunnel still works")
|
||||
assertTunnel(t, theirVpnIpNet[0].Addr(), myVpnIpNet[0].Addr(), theirControl, myControl, r)
|
||||
r.Log("yupitdoes")
|
||||
@@ -1029,24 +1097,24 @@ func TestRehandshakingRelaysPrimary(t *testing.T) {
|
||||
assertTunnel(t, theirVpnIpNet[0].Addr(), myVpnIpNet[0].Addr(), theirControl, myControl, r)
|
||||
r.RenderHostmaps("working hostmaps", myControl, relayControl, theirControl)
|
||||
// We should have two hostinfos on all sides
|
||||
for len(myControl.GetHostmap().Indexes) != 2 {
|
||||
t.Logf("Waiting for myControl hostinfos (%v != 2) to get cleaned up from lack of use...", len(myControl.GetHostmap().Indexes))
|
||||
for myControl.GetHostmapIndexCount() != 2 {
|
||||
t.Logf("Waiting for myControl hostinfos (%v != 2) to get cleaned up from lack of use...", myControl.GetHostmapIndexCount())
|
||||
r.Log("Assert the relay tunnel still works")
|
||||
assertTunnel(t, theirVpnIpNet[0].Addr(), myVpnIpNet[0].Addr(), theirControl, myControl, r)
|
||||
r.Log("yupitdoes")
|
||||
time.Sleep(time.Second)
|
||||
}
|
||||
t.Logf("myControl hostinfos got cleaned up!")
|
||||
for len(theirControl.GetHostmap().Indexes) != 2 {
|
||||
t.Logf("Waiting for theirControl hostinfos (%v != 2) to get cleaned up from lack of use...", len(theirControl.GetHostmap().Indexes))
|
||||
for theirControl.GetHostmapIndexCount() != 2 {
|
||||
t.Logf("Waiting for theirControl hostinfos (%v != 2) to get cleaned up from lack of use...", theirControl.GetHostmapIndexCount())
|
||||
r.Log("Assert the relay tunnel still works")
|
||||
assertTunnel(t, theirVpnIpNet[0].Addr(), myVpnIpNet[0].Addr(), theirControl, myControl, r)
|
||||
r.Log("yupitdoes")
|
||||
time.Sleep(time.Second)
|
||||
}
|
||||
t.Logf("theirControl hostinfos got cleaned up!")
|
||||
for len(relayControl.GetHostmap().Indexes) != 2 {
|
||||
t.Logf("Waiting for relayControl hostinfos (%v != 2) to get cleaned up from lack of use...", len(relayControl.GetHostmap().Indexes))
|
||||
for relayControl.GetHostmapIndexCount() != 2 {
|
||||
t.Logf("Waiting for relayControl hostinfos (%v != 2) to get cleaned up from lack of use...", relayControl.GetHostmapIndexCount())
|
||||
r.Log("Assert the relay tunnel still works")
|
||||
assertTunnel(t, theirVpnIpNet[0].Addr(), myVpnIpNet[0].Addr(), theirControl, myControl, r)
|
||||
r.Log("yupitdoes")
|
||||
@@ -1123,7 +1191,7 @@ func TestRehandshaking(t *testing.T) {
|
||||
theirConfig.ReloadConfigString(string(rc))
|
||||
|
||||
r.Log("Spin until there is only 1 tunnel")
|
||||
for len(myControl.GetHostmap().Indexes)+len(theirControl.GetHostmap().Indexes) > 2 {
|
||||
for myControl.GetHostmapIndexCount()+theirControl.GetHostmapIndexCount() > 2 {
|
||||
assertTunnel(t, myVpnIpNet[0].Addr(), theirVpnIpNet[0].Addr(), myControl, theirControl, r)
|
||||
t.Log("Connection manager hasn't ticked yet")
|
||||
time.Sleep(time.Second)
|
||||
@@ -1223,7 +1291,7 @@ func TestRehandshakingLoser(t *testing.T) {
|
||||
myConfig.ReloadConfigString(string(rc))
|
||||
|
||||
r.Log("Spin until there is only 1 tunnel")
|
||||
for len(myControl.GetHostmap().Indexes)+len(theirControl.GetHostmap().Indexes) > 2 {
|
||||
for myControl.GetHostmapIndexCount()+theirControl.GetHostmapIndexCount() > 2 {
|
||||
assertTunnel(t, myVpnIpNet[0].Addr(), theirVpnIpNet[0].Addr(), myControl, theirControl, r)
|
||||
t.Log("Connection manager hasn't ticked yet")
|
||||
time.Sleep(time.Second)
|
||||
@@ -1535,3 +1603,78 @@ func TestGoodHandshakeUnsafeDest(t *testing.T) {
|
||||
myControl.Stop()
|
||||
theirControl.Stop()
|
||||
}
|
||||
|
||||
func TestMultiVpnAddrDeletePrimaryKeepsSecondAddr(t *testing.T) {
|
||||
t.Parallel()
|
||||
// Regression for the hostmap multi-vpnAddr delete bug. A dual-stack (v4+v6) V2-cert peer that
|
||||
// handshakes twice at once ends up with two hostinfos linked in the shared next/prev chain, with the
|
||||
// primary owning both addresses. Deleting that primary (e.g. connection manager dropping it, a
|
||||
// CloseTunnel, a collision) must promote the surviving sibling for EVERY address. The pre-fix code
|
||||
// unlinked the chain once per address, so it promoted the sibling for the first address and orphaned
|
||||
// the second: the peer stayed reachable at its v4 addr but not its v6 addr despite a live tunnel.
|
||||
|
||||
ca, _, caKey, _ := cert_test.NewTestCaCert(cert.Version2, cert.Curve_CURVE25519, time.Now(), time.Now().Add(10*time.Minute), nil, nil, []string{})
|
||||
myControl, myVpnIpNet, myUdpAddr, _ := newSimpleServer(cert.Version2, ca, caKey, "me ", "10.128.0.1/24,fd00::1/64", nil)
|
||||
theirControl, theirVpnIpNet, theirUdpAddr, _ := newSimpleServer(cert.Version2, ca, caKey, "them", "10.128.0.2/24,fd00::2/64", nil)
|
||||
|
||||
// This bug only exists for peers carrying more than one vpn address
|
||||
require.Len(t, theirVpnIpNet, 2)
|
||||
theirV4 := theirVpnIpNet[0].Addr()
|
||||
theirV6 := theirVpnIpNet[1].Addr()
|
||||
|
||||
// Put their info in our lighthouse and vice versa
|
||||
myControl.InjectLightHouseAddr(theirV4, theirUdpAddr)
|
||||
theirControl.InjectLightHouseAddr(myVpnIpNet[0].Addr(), myUdpAddr)
|
||||
|
||||
// Build a router so we don't have to reason who gets which packet
|
||||
r := router.NewR(t, myControl, theirControl)
|
||||
defer r.RenderFlow()
|
||||
|
||||
myControl.Start()
|
||||
theirControl.Start()
|
||||
|
||||
// Race a handshake so both of us build a hostinfo for the other, leaving my hostmap with a single
|
||||
// host (them) backed by two linked hostinfos, just like TestStage1Race.
|
||||
myControl.InjectTunPacket(BuildTunUDPPacket(theirV4, 80, myVpnIpNet[0].Addr(), 80, []byte("Hi from me")))
|
||||
theirControl.InjectTunPacket(BuildTunUDPPacket(myVpnIpNet[0].Addr(), 80, theirV4, 80, []byte("Hi from them")))
|
||||
|
||||
myHsForThem := myControl.GetFromUDP(true)
|
||||
theirHsForMe := theirControl.GetFromUDP(true)
|
||||
|
||||
r.InjectUDPPacket(theirControl, myControl, theirHsForMe)
|
||||
r.InjectUDPPacket(myControl, theirControl, myHsForThem)
|
||||
|
||||
r.RouteForAllUntilTxTun(theirControl)
|
||||
r.RouteForAllUntilTxTun(myControl)
|
||||
|
||||
r.RenderHostmaps("Racing hostmaps", myControl, theirControl)
|
||||
|
||||
// Two hostinfos for them means the shared next/prev chain has a sibling to promote. The Hosts map has
|
||||
// one entry per vpn address (two, for dual stack), so the index count is what tells us there are two
|
||||
// hostinfos.
|
||||
require.Len(t, myControl.ListHostmapIndexes(false), 2)
|
||||
|
||||
// The primary owns both of their addresses
|
||||
primaryV4 := myControl.GetHostInfoByVpnAddr(theirV4, false)
|
||||
primaryV6 := myControl.GetHostInfoByVpnAddr(theirV6, false)
|
||||
require.NotNil(t, primaryV4)
|
||||
require.NotNil(t, primaryV6)
|
||||
require.Equal(t, primaryV4.LocalIndex, primaryV6.LocalIndex, "both addrs should point at the same primary")
|
||||
|
||||
// Delete the primary tunnel. localOnly so we don't perturb their side, we only care about my hostmap.
|
||||
require.True(t, myControl.CloseTunnel(theirV4, true))
|
||||
|
||||
// The surviving sibling must still serve BOTH addresses.
|
||||
survivorV4 := myControl.GetHostInfoByVpnAddr(theirV4, false)
|
||||
survivorV6 := myControl.GetHostInfoByVpnAddr(theirV6, false)
|
||||
require.NotNil(t, survivorV4, "v4 addr should still resolve to the surviving tunnel")
|
||||
// Pre-fix this is nil: the second address was orphaned when the primary was deleted.
|
||||
require.NotNil(t, survivorV6, "v6 addr was orphaned after deleting the primary (multi-vpnAddr delete bug)")
|
||||
assert.Equal(t, survivorV4.LocalIndex, survivorV6.LocalIndex, "both addrs should promote to the same survivor")
|
||||
assert.NotEqual(t, primaryV4.LocalIndex, survivorV4.LocalIndex, "a different hostinfo should now be primary")
|
||||
|
||||
r.RenderHostmaps("Final hostmaps", myControl, theirControl)
|
||||
|
||||
myControl.Stop()
|
||||
theirControl.Stop()
|
||||
}
|
||||
|
||||
@@ -0,0 +1,225 @@
|
||||
//go:build e2e_testing
|
||||
// +build e2e_testing
|
||||
|
||||
package e2e
|
||||
|
||||
import (
|
||||
"net/netip"
|
||||
"testing"
|
||||
"time"
|
||||
|
||||
"github.com/slackhq/nebula"
|
||||
"github.com/slackhq/nebula/cert"
|
||||
"github.com/slackhq/nebula/cert_test"
|
||||
"github.com/slackhq/nebula/e2e/router"
|
||||
"github.com/slackhq/nebula/header"
|
||||
"github.com/slackhq/nebula/udp"
|
||||
"github.com/stretchr/testify/assert"
|
||||
"github.com/stretchr/testify/require"
|
||||
)
|
||||
|
||||
// reportedAddrs is what the lighthouse would hand a peer asking where vpnAddr is.
|
||||
func reportedAddrs(t *testing.T, lh *nebula.Control, vpnAddr netip.Addr) []netip.AddrPort {
|
||||
t.Helper()
|
||||
cm := lh.QueryLighthouse(vpnAddr)
|
||||
if cm == nil {
|
||||
return nil
|
||||
}
|
||||
var out []netip.AddrPort
|
||||
for _, c := range *cm {
|
||||
out = append(out, c.Reported...)
|
||||
out = append(out, c.Learned...)
|
||||
}
|
||||
return out
|
||||
}
|
||||
|
||||
// waitForLighthouseMsg routes until a lighthouse message lands on lh, or gives up. Reports whether one arrived.
|
||||
func waitForLighthouseMsg(t *testing.T, r *router.R, lh *nebula.Control, wait time.Duration) bool {
|
||||
t.Helper()
|
||||
h := &header.H{}
|
||||
return r.RouteForAllExitFuncOrTimeout(wait, func(p *udp.Packet, c *nebula.Control) router.ExitType {
|
||||
if c != lh {
|
||||
return router.KeepRouting
|
||||
}
|
||||
// Punches are a single byte and never parse, they are just not what we are after
|
||||
if err := h.Parse(p.Data); err != nil {
|
||||
return router.KeepRouting
|
||||
}
|
||||
if h.Type == header.LightHouse {
|
||||
return router.RouteAndExit
|
||||
}
|
||||
return router.KeepRouting
|
||||
})
|
||||
}
|
||||
|
||||
// A laptop that changes networks has to tell the lighthouse promptly, otherwise the lighthouse keeps handing peers
|
||||
// the old address and their punches land nowhere. On a long lighthouse interval the only thing that closes that
|
||||
// window is the rebind, which on darwin the network change monitor drives. The e2e build compiles the monitor out,
|
||||
// so we call RebindUDPServer directly, which is the same thing the monitor does.
|
||||
func TestRebindSendsLighthouseUpdate(t *testing.T) {
|
||||
t.Parallel()
|
||||
ca, _, caKey, _ := cert_test.NewTestCaCert(cert.Version2, cert.Curve_CURVE25519, time.Now(), time.Now().Add(10*time.Minute), nil, nil, []string{})
|
||||
|
||||
lhControl, lhVpnIpNet, lhUdpAddr, _ := newSimpleServer(cert.Version2, ca, caKey, "lh", "10.128.0.1/24", m{
|
||||
"lighthouse": m{"am_lighthouse": true},
|
||||
})
|
||||
|
||||
// 600s interval, so nothing scheduled can send an update during this test. A rebind is the only thing that can.
|
||||
myControl, _, _, _ := newSimpleServer(cert.Version2, ca, caKey, "me", "10.128.0.2/24", m{
|
||||
"lighthouse": m{
|
||||
"hosts": []any{lhVpnIpNet[0].Addr().String()},
|
||||
"interval": 600,
|
||||
},
|
||||
"static_host_map": m{
|
||||
lhVpnIpNet[0].Addr().String(): []any{lhUdpAddr.String()},
|
||||
},
|
||||
})
|
||||
|
||||
r := router.NewR(t, lhControl, myControl)
|
||||
defer r.RenderFlow()
|
||||
|
||||
lhControl.Start()
|
||||
myControl.Start()
|
||||
|
||||
// Let the startup registration finish, then clear everything it left behind
|
||||
require.True(t, waitForLighthouseMsg(t, r, lhControl, time.Second*5), "expected an initial registration")
|
||||
r.RouteFor(time.Millisecond * 400)
|
||||
|
||||
// Nothing should be talking to the lighthouse on its own now
|
||||
require.False(t, waitForLighthouseMsg(t, r, lhControl, time.Millisecond*200),
|
||||
"nothing should reach the lighthouse before the rebind")
|
||||
|
||||
myControl.RebindUDPServer()
|
||||
|
||||
assert.True(t, waitForLighthouseMsg(t, r, lhControl, time.Second*5),
|
||||
"a rebind should push an update to the lighthouse rather than waiting out the interval")
|
||||
|
||||
lhControl.Stop()
|
||||
myControl.Stop()
|
||||
}
|
||||
|
||||
// The other half of a rebind: every live tunnel requeries the lighthouse on its next send. That query is what makes
|
||||
// the lighthouse tell the peer to punch toward our new address, which is the part that actually revives a tunnel
|
||||
// whose remote NAT state died while we were on a different network.
|
||||
func TestRebindRequeriesPeersOnNextSend(t *testing.T) {
|
||||
t.Parallel()
|
||||
ca, _, caKey, _ := cert_test.NewTestCaCert(cert.Version2, cert.Curve_CURVE25519, time.Now(), time.Now().Add(10*time.Minute), nil, nil, []string{})
|
||||
|
||||
lhControl, lhVpnIpNet, lhUdpAddr, _ := newSimpleServer(cert.Version2, ca, caKey, "lh", "10.128.0.1/24", m{
|
||||
"lighthouse": m{"am_lighthouse": true},
|
||||
})
|
||||
|
||||
lhCfg := m{
|
||||
"lighthouse": m{
|
||||
"hosts": []any{lhVpnIpNet[0].Addr().String()},
|
||||
"interval": 600,
|
||||
// Without this the peers advertise this machine's real addresses and then try to punch at them,
|
||||
// which the router has no route for.
|
||||
"local_allow_list": m{
|
||||
"10.0.0.0/24": true,
|
||||
"::/0": false,
|
||||
},
|
||||
},
|
||||
"static_host_map": m{
|
||||
lhVpnIpNet[0].Addr().String(): []any{lhUdpAddr.String()},
|
||||
},
|
||||
}
|
||||
|
||||
myControl, myVpnIpNet, myUdpAddr, _ := newSimpleServer(cert.Version2, ca, caKey, "me", "10.128.0.2/24", lhCfg)
|
||||
theirControl, theirVpnIpNet, theirUdpAddr, _ := newSimpleServer(cert.Version2, ca, caKey, "them", "10.128.0.3/24", lhCfg)
|
||||
|
||||
r := router.NewR(t, lhControl, myControl, theirControl)
|
||||
defer r.RenderFlow()
|
||||
|
||||
lhControl.Start()
|
||||
myControl.Start()
|
||||
theirControl.Start()
|
||||
r.RouteFor(time.Millisecond * 500)
|
||||
|
||||
// Point the peers at each other directly, this test is about the rebind and not about lighthouse discovery
|
||||
myControl.InjectLightHouseAddr(theirVpnIpNet[0].Addr(), theirUdpAddr)
|
||||
theirControl.InjectLightHouseAddr(myVpnIpNet[0].Addr(), myUdpAddr)
|
||||
|
||||
myControl.InjectTunPacket(BuildTunUDPPacket(theirVpnIpNet[0].Addr(), 80, myVpnIpNet[0].Addr(), 80, []byte("initial")))
|
||||
r.RouteFor(time.Second)
|
||||
require.NotNil(t, myControl.GetHostInfoByVpnAddr(theirVpnIpNet[0].Addr(), false), "expected a tunnel to them")
|
||||
r.RouteFor(time.Millisecond * 300)
|
||||
|
||||
// Assert on what the peer sees rather than on lighthouse traffic. A query for them makes the lighthouse send
|
||||
// them a punch notification, which is the whole point. Our own update to the lighthouse sends them nothing,
|
||||
// so this cannot be satisfied by the update the rebind itself pushes.
|
||||
myControl.InjectTunPacket(BuildTunUDPPacket(theirVpnIpNet[0].Addr(), 80, myVpnIpNet[0].Addr(), 80, []byte("quiet")))
|
||||
require.False(t, waitForLighthouseMsg(t, r, theirControl, time.Millisecond*300),
|
||||
"an ordinary send should not requery the lighthouse")
|
||||
|
||||
myControl.RebindUDPServer()
|
||||
r.RouteFor(time.Millisecond * 300) // let the update the rebind itself sends pass by
|
||||
|
||||
myControl.InjectTunPacket(BuildTunUDPPacket(theirVpnIpNet[0].Addr(), 80, myVpnIpNet[0].Addr(), 80, []byte("after rebind")))
|
||||
assert.True(t, waitForLighthouseMsg(t, r, theirControl, time.Second*5),
|
||||
"the first send after a rebind should requery the lighthouse, which then tells the peer to punch at us")
|
||||
|
||||
lhControl.Stop()
|
||||
myControl.Stop()
|
||||
theirControl.Stop()
|
||||
}
|
||||
|
||||
// The scenario this whole thing exists for: a laptop sleeps at the office and wakes up at home on a new address.
|
||||
// Until it tells the lighthouse, the lighthouse keeps handing peers the office address, so their punches land
|
||||
// nowhere and the tunnel stays dead. On a long interval the rebind is the only thing that closes that window.
|
||||
func TestRebindAdvertisesNewAddressAfterMove(t *testing.T) {
|
||||
t.Parallel()
|
||||
ca, _, caKey, _ := cert_test.NewTestCaCert(cert.Version2, cert.Curve_CURVE25519, time.Now(), time.Now().Add(10*time.Minute), nil, nil, []string{})
|
||||
|
||||
lhControl, lhVpnIpNet, lhUdpAddr, _ := newSimpleServer(cert.Version2, ca, caKey, "lh", "10.128.0.1/24", m{
|
||||
"lighthouse": m{"am_lighthouse": true},
|
||||
})
|
||||
|
||||
myControl, myVpnIpNet, myUdpAddr, _ := newSimpleServer(cert.Version2, ca, caKey, "me", "10.128.0.2/24", m{
|
||||
"lighthouse": m{
|
||||
"hosts": []any{lhVpnIpNet[0].Addr().String()},
|
||||
"interval": 600,
|
||||
},
|
||||
"static_host_map": m{
|
||||
lhVpnIpNet[0].Addr().String(): []any{lhUdpAddr.String()},
|
||||
},
|
||||
})
|
||||
|
||||
// Advertise wherever we currently are rather than this machine's real NICs, read fresh each time so a move
|
||||
// is picked up.
|
||||
myControl.SetLocalAddrsFn(func(*nebula.LocalAllowList) []netip.Addr {
|
||||
return []netip.Addr{myControl.GetUDPAddr().Addr()}
|
||||
})
|
||||
|
||||
r := router.NewR(t, lhControl, myControl)
|
||||
defer r.RenderFlow()
|
||||
|
||||
lhControl.Start()
|
||||
myControl.Start()
|
||||
|
||||
require.True(t, waitForLighthouseMsg(t, r, lhControl, time.Second*5), "expected an initial registration")
|
||||
r.RouteFor(time.Millisecond * 400)
|
||||
|
||||
require.Contains(t, reportedAddrs(t, lhControl, myVpnIpNet[0].Addr()), myUdpAddr,
|
||||
"the lighthouse should know the address we started on")
|
||||
|
||||
// Wake up somewhere else
|
||||
newAddr := netip.MustParseAddrPort("10.0.0.99:4242")
|
||||
myControl.SetUDPAddr(newAddr)
|
||||
r.AddRoute(newAddr.Addr(), newAddr.Port(), myControl)
|
||||
|
||||
// Nothing has told the lighthouse, and with interval 600 nothing scheduled will
|
||||
r.RouteFor(time.Millisecond * 400)
|
||||
require.NotContains(t, reportedAddrs(t, lhControl, myVpnIpNet[0].Addr()), newAddr,
|
||||
"the lighthouse should still be handing out the old address before the rebind")
|
||||
|
||||
myControl.RebindUDPServer()
|
||||
require.True(t, waitForLighthouseMsg(t, r, lhControl, time.Second*5), "expected an update after the rebind")
|
||||
r.RouteFor(time.Millisecond * 400)
|
||||
|
||||
assert.Contains(t, reportedAddrs(t, lhControl, myVpnIpNet[0].Addr()), newAddr,
|
||||
"after the rebind the lighthouse should hand peers our new address")
|
||||
|
||||
lhControl.Stop()
|
||||
myControl.Stop()
|
||||
}
|
||||
+129
-27
@@ -114,6 +114,28 @@ type packet struct {
|
||||
packet *udp.Packet
|
||||
tun bool // a packet pulled off a tun device
|
||||
rx bool // the packet was received by a udp device
|
||||
|
||||
// h is the nebula header, parsed once when the packet is recorded. parseErr says why there isn't one, which
|
||||
// the flow log reports rather than hiding. Punchy sends a single byte, so an unparseable packet is normal.
|
||||
h header.H
|
||||
parseErr error
|
||||
}
|
||||
|
||||
// fromAddr and toAddr are the addresses this packet actually travelled between. Reading them off the control
|
||||
// instead would misreport the whole history once a test moves a node. Tun packets are synthesized without
|
||||
// addresses, so they fall back to the control.
|
||||
func (p *packet) fromAddr() netip.AddrPort {
|
||||
if p.tun || !p.packet.From.IsValid() {
|
||||
return p.from.GetUDPAddr()
|
||||
}
|
||||
return p.packet.From
|
||||
}
|
||||
|
||||
func (p *packet) toAddr() netip.AddrPort {
|
||||
if p.tun || !p.packet.To.IsValid() {
|
||||
return p.to.GetUDPAddr()
|
||||
}
|
||||
return p.packet.To
|
||||
}
|
||||
|
||||
func (p *packet) WasReceived() {
|
||||
@@ -249,7 +271,7 @@ func (r *R) renderFlow() {
|
||||
continue
|
||||
}
|
||||
|
||||
addr := e.packet.from.GetUDPAddr()
|
||||
addr := e.packet.fromAddr()
|
||||
if _, ok := participants[addr]; ok {
|
||||
continue
|
||||
}
|
||||
@@ -268,7 +290,6 @@ func (r *R) renderFlow() {
|
||||
}
|
||||
|
||||
// Print packets
|
||||
h := &header.H{}
|
||||
for _, e := range r.flow {
|
||||
if e.packet == nil {
|
||||
//fmt.Fprintf(f, " note over %s: %s\n", strings.Join(participantsVals, ", "), e.note)
|
||||
@@ -280,21 +301,22 @@ func (r *R) renderFlow() {
|
||||
fmt.Fprintln(f, r.formatUdpPacket(p))
|
||||
|
||||
} else {
|
||||
if err := h.Parse(p.packet.Data); err != nil {
|
||||
panic(err)
|
||||
}
|
||||
|
||||
line := "--x"
|
||||
if p.rx {
|
||||
line = "->>"
|
||||
}
|
||||
|
||||
fmt.Fprintf(f,
|
||||
" %s%s%s: %s(%s), index %v, counter: %v\n",
|
||||
normalizeName(p.from.GetUDPAddr().String()),
|
||||
detail := fmt.Sprintf("%s(%s), index %v, counter: %v",
|
||||
p.h.TypeName(), p.h.SubTypeName(), p.h.RemoteIndex, p.h.MessageCounter)
|
||||
if p.parseErr != nil {
|
||||
detail = fmt.Sprintf("unparsed, %v (%d bytes)", p.parseErr, len(p.packet.Data))
|
||||
}
|
||||
|
||||
fmt.Fprintf(f, " %s%s%s: %s\n",
|
||||
normalizeName(p.fromAddr().String()),
|
||||
line,
|
||||
normalizeName(p.to.GetUDPAddr().String()),
|
||||
h.TypeName(), h.SubTypeName(), h.RemoteIndex, h.MessageCounter,
|
||||
normalizeName(p.toAddr().String()),
|
||||
detail,
|
||||
)
|
||||
}
|
||||
}
|
||||
@@ -408,29 +430,34 @@ func (r *R) unlockedInjectFlow(from, to *nebula.Control, p *udp.Packet, tun bool
|
||||
|
||||
r.renderHostmaps(fmt.Sprintf("Packet %v", len(r.flow)))
|
||||
|
||||
if len(r.ignoreFlows) > 0 {
|
||||
var h header.H
|
||||
err := h.Parse(p.Data)
|
||||
if err != nil {
|
||||
panic(err)
|
||||
}
|
||||
var h header.H
|
||||
var parseErr error
|
||||
if !tun {
|
||||
parseErr = h.Parse(p.Data)
|
||||
}
|
||||
|
||||
for _, i := range r.ignoreFlows {
|
||||
if !tun {
|
||||
if i.messageType == h.Type && i.subType == h.Subtype {
|
||||
return nil
|
||||
}
|
||||
} else if i.tun.HasValue && i.tun.IsTrue {
|
||||
// Decide before copying, the copy comes from a freelist and an ignored packet would never be released
|
||||
for _, i := range r.ignoreFlows {
|
||||
if tun {
|
||||
if i.tun.HasValue && i.tun.IsTrue {
|
||||
return nil
|
||||
}
|
||||
continue
|
||||
}
|
||||
|
||||
// A packet we could not parse has no type to match against, so no rule can ignore it
|
||||
if parseErr == nil && i.messageType == h.Type && i.subType == h.Subtype {
|
||||
return nil
|
||||
}
|
||||
}
|
||||
|
||||
fp := &packet{
|
||||
from: from,
|
||||
to: to,
|
||||
packet: p.Copy(),
|
||||
tun: tun,
|
||||
from: from,
|
||||
to: to,
|
||||
packet: p.Copy(),
|
||||
tun: tun,
|
||||
h: h,
|
||||
parseErr: parseErr,
|
||||
}
|
||||
|
||||
r.flow = append(r.flow, flowEntry{packet: fp})
|
||||
@@ -690,6 +717,81 @@ func (r *R) RouteUntilAfterMsgType(sender *nebula.Control, msgType header.Messag
|
||||
})
|
||||
}
|
||||
|
||||
// RouteFor routes everything that shows up for the given duration and then returns. Use it to let a test settle
|
||||
// deterministically rather than sleeping and hoping: a single FlushAll races a completing handshake, which queues
|
||||
// more packets right behind it.
|
||||
func (r *R) RouteFor(d time.Duration) {
|
||||
r.RouteForAllExitFuncOrTimeout(d, func(*udp.Packet, *nebula.Control) ExitType {
|
||||
return KeepRouting
|
||||
})
|
||||
}
|
||||
|
||||
// RouteForAllExitFuncOrTimeout is RouteForAllExitFunc with a deadline, reporting whether whatDo asked to exit
|
||||
// before time ran out. The unbounded version blocks forever on a quiet network, so this is what a test needs to
|
||||
// assert that something does NOT happen, or to route for a fixed settling period.
|
||||
func (r *R) RouteForAllExitFuncOrTimeout(timeout time.Duration, whatDo ExitFunc) bool {
|
||||
sc := make([]reflect.SelectCase, 0, len(r.controls)+1)
|
||||
cm := make([]*nebula.Control, 0, len(r.controls))
|
||||
|
||||
for _, c := range r.controls {
|
||||
sc = append(sc, reflect.SelectCase{
|
||||
Dir: reflect.SelectRecv,
|
||||
Chan: reflect.ValueOf(c.GetUDPTxChan()),
|
||||
Send: reflect.Value{},
|
||||
})
|
||||
cm = append(cm, c)
|
||||
}
|
||||
|
||||
timer := time.NewTimer(timeout)
|
||||
defer timer.Stop()
|
||||
sc = append(sc, reflect.SelectCase{
|
||||
Dir: reflect.SelectRecv,
|
||||
Chan: reflect.ValueOf(timer.C),
|
||||
Send: reflect.Value{},
|
||||
})
|
||||
|
||||
for {
|
||||
x, rx, _ := reflect.Select(sc)
|
||||
if x == len(cm) {
|
||||
return false
|
||||
}
|
||||
|
||||
r.Lock()
|
||||
p := rx.Interface().(*udp.Packet)
|
||||
receiver := r.getControl(cm[x].GetUDPAddr(), p.To, p)
|
||||
if receiver == nil {
|
||||
r.Unlock()
|
||||
panic("Can't RouteForAllExitFuncOrTimeout for host: " + p.To.String())
|
||||
}
|
||||
|
||||
e := whatDo(p, receiver)
|
||||
switch e {
|
||||
case ExitNow:
|
||||
r.Unlock()
|
||||
p.Release()
|
||||
return true
|
||||
|
||||
case RouteAndExit:
|
||||
fp := r.unlockedInjectFlow(cm[x], receiver, p, false)
|
||||
receiver.InjectUDPPacket(p)
|
||||
fp.WasReceived()
|
||||
r.Unlock()
|
||||
p.Release()
|
||||
return true
|
||||
|
||||
case KeepRouting:
|
||||
fp := r.unlockedInjectFlow(cm[x], receiver, p, false)
|
||||
receiver.InjectUDPPacket(p)
|
||||
fp.WasReceived()
|
||||
|
||||
default:
|
||||
panic(fmt.Sprintf("Unknown exitFunc return: %v", e))
|
||||
}
|
||||
r.Unlock()
|
||||
p.Release()
|
||||
}
|
||||
}
|
||||
|
||||
func (r *R) RouteForAllUntilAfterMsgTypeTo(receiver *nebula.Control, msgType header.MessageType, subType header.MessageSubType) {
|
||||
h := &header.H{}
|
||||
r.RouteForAllExitFunc(func(p *udp.Packet, r *nebula.Control) ExitType {
|
||||
|
||||
+101
-6
@@ -15,6 +15,7 @@ import (
|
||||
"github.com/slackhq/nebula/header"
|
||||
"github.com/slackhq/nebula/udp"
|
||||
"github.com/stretchr/testify/assert"
|
||||
"github.com/stretchr/testify/require"
|
||||
"gopkg.in/yaml.v3"
|
||||
)
|
||||
|
||||
@@ -42,8 +43,8 @@ func TestDropInactiveTunnels(t *testing.T) {
|
||||
r.Log("Go inactive and wait for the tunnels to get dropped")
|
||||
waitStart := time.Now()
|
||||
for {
|
||||
myIndexes := len(myControl.GetHostmap().Indexes)
|
||||
theirIndexes := len(theirControl.GetHostmap().Indexes)
|
||||
myIndexes := myControl.GetHostmapIndexCount()
|
||||
theirIndexes := theirControl.GetHostmapIndexCount()
|
||||
if myIndexes == 0 && theirIndexes == 0 {
|
||||
break
|
||||
}
|
||||
@@ -373,6 +374,100 @@ func TestCrossStackRelaysWork(t *testing.T) {
|
||||
//relayControl.Stop()
|
||||
}
|
||||
|
||||
// TestRelayReplayProtection asserts that a relay (forwarding-type) node rejects
|
||||
// replayed relay frames. A captured relay frame, re-injected with the same
|
||||
// message counter, must be dropped by the replay window rather than re-forwarded
|
||||
// to the relay target. Before the fix, handleOutsideRelayPacket authenticated the
|
||||
// frame but never advanced the replay window, so every replay was re-forwarded.
|
||||
func TestRelayReplayProtection(t *testing.T) {
|
||||
t.Parallel()
|
||||
ca, _, caKey, _ := cert_test.NewTestCaCert(cert.Version2, cert.Curve_CURVE25519, time.Now(), time.Now().Add(10*time.Minute), nil, nil, []string{})
|
||||
myControl, myVpnIpNet, _, _ := newSimpleServer(cert.Version2, ca, caKey, "me ", "10.128.0.1/24,fc00::1/64", m{"relay": m{"use_relays": true}})
|
||||
relayControl, relayVpnIpNet, relayUdpAddr, _ := newSimpleServer(cert.Version2, ca, caKey, "relay ", "10.128.0.128/24,fc00::128/64", m{"relay": m{"am_relay": true}})
|
||||
theirUdp := netip.MustParseAddrPort("10.0.0.2:4242")
|
||||
theirControl, theirVpnIpNet, theirUdpAddr, _ := newSimpleServerWithUdp(cert.Version2, ca, caKey, "them ", "fc00::2/64", theirUdp, m{"relay": m{"use_relays": true}})
|
||||
|
||||
myVpnV6 := myVpnIpNet[1]
|
||||
relayVpnV4 := relayVpnIpNet[0]
|
||||
relayVpnV6 := relayVpnIpNet[1]
|
||||
theirVpnV6 := theirVpnIpNet[0]
|
||||
|
||||
// Teach me how to reach the relay and that them is reachable via the relay
|
||||
myControl.InjectLightHouseAddr(relayVpnV4.Addr(), relayUdpAddr)
|
||||
myControl.InjectLightHouseAddr(relayVpnV6.Addr(), relayUdpAddr)
|
||||
myControl.InjectRelays(theirVpnV6.Addr(), []netip.Addr{relayVpnV6.Addr()})
|
||||
relayControl.InjectLightHouseAddr(theirVpnV6.Addr(), theirUdpAddr)
|
||||
|
||||
r := router.NewR(t, myControl, relayControl, theirControl)
|
||||
defer r.RenderFlow()
|
||||
|
||||
myControl.Start()
|
||||
relayControl.Start()
|
||||
theirControl.Start()
|
||||
|
||||
// Establish the relayed tunnel in both directions so all handshakes complete.
|
||||
t.Log("Establish the relayed tunnel")
|
||||
myControl.InjectTunPacket(BuildTunUDPPacket(theirVpnV6.Addr(), 80, myVpnV6.Addr(), 80, []byte("Hi from me")))
|
||||
p := r.RouteForAllUntilTxTun(theirControl)
|
||||
assertUdpPacket(t, []byte("Hi from me"), p, myVpnV6.Addr(), theirVpnV6.Addr(), 80, 80)
|
||||
theirControl.InjectTunPacket(BuildTunUDPPacket(myVpnV6.Addr(), 80, theirVpnV6.Addr(), 80, []byte("Hi from them")))
|
||||
p = r.RouteForAllUntilTxTun(myControl)
|
||||
assertUdpPacket(t, []byte("Hi from them"), p, theirVpnV6.Addr(), myVpnV6.Addr(), 80, 80)
|
||||
|
||||
// Drain anything still queued on me's UDP tx so the next packet we pull is the
|
||||
// relay frame we are about to generate.
|
||||
for myControl.GetFromUDP(false) != nil {
|
||||
}
|
||||
|
||||
// Capture a single legitimate relay frame that me transmits toward the relay.
|
||||
t.Log("Capture a relay frame from me -> relay")
|
||||
myControl.InjectTunPacket(BuildTunUDPPacket(theirVpnV6.Addr(), 80, myVpnV6.Addr(), 80, []byte("replay me")))
|
||||
relayFrame := myControl.GetFromUDP(true)
|
||||
require.Equal(t, relayUdpAddr, relayFrame.To, "captured frame should be addressed to the relay")
|
||||
var fh header.H
|
||||
require.NoError(t, fh.Parse(relayFrame.Data))
|
||||
require.Equal(t, header.Message, fh.Type)
|
||||
require.Equal(t, header.MessageRelay, fh.Subtype)
|
||||
|
||||
// drainForwards counts relay frames the relay forwards toward them within the
|
||||
// settle window. We match on destination + (Message, MessageRelay) so the
|
||||
// relay's own direct traffic to them can't be miscounted.
|
||||
drainForwards := func(settle time.Duration) int {
|
||||
ch := relayControl.GetUDPTxChan()
|
||||
count := 0
|
||||
for {
|
||||
select {
|
||||
case pkt := <-ch:
|
||||
var ph header.H
|
||||
if pkt.To == theirUdpAddr && ph.Parse(pkt.Data) == nil &&
|
||||
ph.Type == header.Message && ph.Subtype == header.MessageRelay {
|
||||
count++
|
||||
}
|
||||
pkt.Release()
|
||||
case <-time.After(settle):
|
||||
return count
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
// First delivery of the captured frame: the relay should forward it once.
|
||||
t.Log("Deliver the captured frame once; relay forwards it to them")
|
||||
relayControl.InjectUDPPacket(relayFrame)
|
||||
require.Equal(t, 1, drainForwards(200*time.Millisecond), "relay should forward the first, legitimate copy")
|
||||
|
||||
// Replay the exact same frame several times. A correct replay window rejects
|
||||
// these duplicates so the relay forwards none of them.
|
||||
t.Log("Replay the captured frame; relay must drop the duplicates")
|
||||
const replays = 3
|
||||
for i := 0; i < replays; i++ {
|
||||
relayControl.InjectUDPPacket(relayFrame)
|
||||
}
|
||||
forwarded := drainForwards(200 * time.Millisecond)
|
||||
assert.Equal(t, 0, forwarded, "relay re-forwarded %d/%d replayed relay frames; replay protection is ineffective on relay tunnels", forwarded, replays)
|
||||
|
||||
r.RenderHostmaps("Final hostmaps", myControl, relayControl, theirControl)
|
||||
}
|
||||
|
||||
func TestCloseTunnelAuthenticated(t *testing.T) {
|
||||
t.Parallel()
|
||||
ca, _, caKey, _ := cert_test.NewTestCaCert(cert.Version1, cert.Curve_CURVE25519, time.Now(), time.Now().Add(10*time.Minute), nil, nil, []string{})
|
||||
@@ -398,8 +493,8 @@ func TestCloseTunnelAuthenticated(t *testing.T) {
|
||||
|
||||
waitStart := time.Now()
|
||||
for {
|
||||
myIndexes := len(myControl.GetHostmap().Indexes)
|
||||
theirIndexes := len(theirControl.GetHostmap().Indexes)
|
||||
myIndexes := myControl.GetHostmapIndexCount()
|
||||
theirIndexes := theirControl.GetHostmapIndexCount()
|
||||
if myIndexes == 0 && theirIndexes == 0 {
|
||||
break
|
||||
}
|
||||
@@ -453,8 +548,8 @@ func TestCloseTunnelAuthenticated(t *testing.T) {
|
||||
r.Log("Injected bogus close tunnel. Let's see!")
|
||||
waitStart = time.Now()
|
||||
for {
|
||||
myIndexes := len(myControl.GetHostmap().Indexes)
|
||||
theirIndexes := len(theirControl.GetHostmap().Indexes)
|
||||
myIndexes := myControl.GetHostmapIndexCount()
|
||||
theirIndexes := theirControl.GetHostmapIndexCount()
|
||||
if myIndexes == 0 {
|
||||
t.Fatal("myIndexes should not be 0")
|
||||
}
|
||||
|
||||
@@ -1,125 +0,0 @@
|
||||
package nebula
|
||||
|
||||
import (
|
||||
"io"
|
||||
"log/slog"
|
||||
"testing"
|
||||
)
|
||||
|
||||
func TestInnerECN(t *testing.T) {
|
||||
cases := []struct {
|
||||
name string
|
||||
pkt []byte
|
||||
want byte
|
||||
}{
|
||||
{"empty", nil, 0},
|
||||
{"v4_NotECT", v4WithToS(0x00), 0x00},
|
||||
{"v4_ECT0", v4WithToS(0x02), 0x02},
|
||||
{"v4_ECT1", v4WithToS(0x01), 0x01},
|
||||
{"v4_CE", v4WithToS(0x03), 0x03},
|
||||
{"v4_DSCP_then_NotECT", v4WithToS(0x88 | 0x00), 0x00},
|
||||
{"v4_DSCP_then_CE", v4WithToS(0x88 | 0x03), 0x03},
|
||||
{"v6_NotECT", v6WithTC(0x00), 0x00},
|
||||
{"v6_ECT0", v6WithTC(0x02), 0x02},
|
||||
{"v6_CE", v6WithTC(0x03), 0x03},
|
||||
{"v6_DSCP_then_CE", v6WithTC(0x88 | 0x03), 0x03},
|
||||
{"unknown_version", []byte{0xa5, 0xff}, 0},
|
||||
}
|
||||
for _, c := range cases {
|
||||
t.Run(c.name, func(t *testing.T) {
|
||||
got := innerECN(c.pkt)
|
||||
if got != c.want {
|
||||
t.Errorf("innerECN=0x%02x want 0x%02x", got, c.want)
|
||||
}
|
||||
})
|
||||
}
|
||||
}
|
||||
|
||||
// v4WithToS returns a 2-byte slice tall enough for innerECN: byte 0 carries
|
||||
// version=4 in the high nibble, byte 1 is the full ToS so we exercise both
|
||||
// the DSCP and ECN portions through the byte 1 mask.
|
||||
func v4WithToS(tos byte) []byte {
|
||||
return []byte{0x45, tos}
|
||||
}
|
||||
|
||||
// v6WithTC builds a 2-byte slice that places a known traffic class value
|
||||
// across bytes 0 (high nibble of TC) and 1 (low nibble of TC). innerECN
|
||||
// extracts ECN as (b[1]>>4)&0x03, which corresponds to TC[1:0].
|
||||
func v6WithTC(tc byte) []byte {
|
||||
return []byte{0x60 | (tc>>4)&0x0f, (tc & 0x0f) << 4}
|
||||
}
|
||||
|
||||
func TestApplyOuterECN(t *testing.T) {
|
||||
silent := slog.New(slog.NewTextHandler(io.Discard, nil))
|
||||
hi := &HostInfo{}
|
||||
|
||||
// Build a v4 packet helper with a given inner ECN field.
|
||||
v4 := func(innerECN byte) []byte {
|
||||
// 20-byte minimal IPv4 header with ToS = innerECN (DSCP zeroed).
|
||||
return []byte{
|
||||
0x45, innerECN, 0, 28,
|
||||
0, 0, 0x40, 0,
|
||||
64, 6, 0, 0,
|
||||
10, 0, 0, 1,
|
||||
10, 0, 0, 2,
|
||||
}
|
||||
}
|
||||
// Build a v6 packet helper with a given inner ECN field. ECN occupies
|
||||
// TC[1:0] which sit at byte 1 mask 0x30.
|
||||
v6 := func(innerECN byte) []byte {
|
||||
// 40-byte minimal IPv6 header with TC[1:0] = innerECN.
|
||||
pkt := make([]byte, 40)
|
||||
pkt[0] = 0x60 // version=6, TC[7:4]=0
|
||||
pkt[1] = (innerECN & 0x03) << 4 // TC[3:0]: low 2 bits = ECN, top 2 = DSCP-low (0)
|
||||
return pkt
|
||||
}
|
||||
|
||||
type cell struct {
|
||||
outer byte
|
||||
inner byte
|
||||
wantECN byte
|
||||
wantSame bool // expect inner unchanged (true => verify the byte didn't move)
|
||||
}
|
||||
|
||||
// RFC 6040 normal-mode combine table. Only outer==CE causes mutation.
|
||||
table := []cell{
|
||||
{ecnNotECT, ecnNotECT, ecnNotECT, true},
|
||||
{ecnNotECT, ecnECT0, ecnECT0, true},
|
||||
{ecnNotECT, ecnECT1, ecnECT1, true},
|
||||
{ecnNotECT, ecnCE, ecnCE, true},
|
||||
|
||||
{ecnECT0, ecnNotECT, ecnNotECT, true},
|
||||
{ecnECT0, ecnECT0, ecnECT0, true},
|
||||
{ecnECT0, ecnECT1, ecnECT1, true},
|
||||
{ecnECT0, ecnCE, ecnCE, true},
|
||||
|
||||
{ecnECT1, ecnNotECT, ecnNotECT, true},
|
||||
{ecnECT1, ecnECT0, ecnECT0, true},
|
||||
{ecnECT1, ecnECT1, ecnECT1, true},
|
||||
{ecnECT1, ecnCE, ecnCE, true},
|
||||
|
||||
{ecnCE, ecnNotECT, ecnNotECT, true}, // legacy: log, leave alone
|
||||
{ecnCE, ecnECT0, ecnCE, false}, // CE folded in
|
||||
{ecnCE, ecnECT1, ecnCE, false},
|
||||
{ecnCE, ecnCE, ecnCE, true},
|
||||
}
|
||||
|
||||
for _, c := range table {
|
||||
t.Run("v4", func(t *testing.T) {
|
||||
pkt := v4(c.inner)
|
||||
applyOuterECN(pkt, c.outer, hi, silent)
|
||||
got := pkt[1] & 0x03
|
||||
if got != c.wantECN {
|
||||
t.Errorf("v4 outer=0x%02x inner=0x%02x: got 0x%02x want 0x%02x", c.outer, c.inner, got, c.wantECN)
|
||||
}
|
||||
})
|
||||
t.Run("v6", func(t *testing.T) {
|
||||
pkt := v6(c.inner)
|
||||
applyOuterECN(pkt, c.outer, hi, silent)
|
||||
got := (pkt[1] >> 4) & 0x03
|
||||
if got != c.wantECN {
|
||||
t.Errorf("v6 outer=0x%02x inner=0x%02x: got 0x%02x want 0x%02x", c.outer, c.inner, got, c.wantECN)
|
||||
}
|
||||
})
|
||||
}
|
||||
}
|
||||
+9
-1
@@ -146,6 +146,14 @@ listen:
|
||||
# Default true; set to false to leave WDF in charge of inbound decisions on the listener port. Not reloadable.
|
||||
#windows_bypass_wdf: true
|
||||
|
||||
# On macOS only
|
||||
# macOS scopes the udp socket to the interface it was created on, so moving between networks (wifi to wired,
|
||||
# office to home) leaves Nebula sending out an interface that no longer has a route. When true, Nebula watches
|
||||
# the routing socket and rebinds the listener once the change settles.
|
||||
# iOS does not use this, the host app drives the same rebind itself.
|
||||
# Default true. Not reloadable.
|
||||
#rebind_on_network_change: true
|
||||
|
||||
# By default, Nebula replies to packets it has no tunnel for with a "recv_error" packet. This packet helps speed up reconnection
|
||||
# in the case that Nebula on either side did not shut down cleanly. This response can be abused as a way to discover if Nebula is running
|
||||
# on a host though. This option lets you configure if you want to send "recv_error" packets always, never, or only to private network remotes.
|
||||
@@ -397,7 +405,7 @@ firewall:
|
||||
# `drop` (default): silently drop the packet.
|
||||
# `reject`: send a reject reply.
|
||||
# - For TCP, this will be a RST "Connection Reset" packet.
|
||||
# - For other protocols, this will be an ICMP port unreachable packet.
|
||||
# - For other protocols, this will be an ICMP "Destination unreachable: Communication administratively prohibited" packet.
|
||||
outbound_action: drop
|
||||
inbound_action: drop
|
||||
|
||||
|
||||
@@ -8,6 +8,15 @@ Before=sshd.service
|
||||
Type=notify
|
||||
NotifyAccess=main
|
||||
SyslogIdentifier=nebula
|
||||
|
||||
# Uncomment to run as an unprivileged user with only CAP_NET_ADMIN. Requires a
|
||||
# nebula user that owns the config directory. Add CAP_NET_BIND_SERVICE to both
|
||||
# lines if any listener (lighthouse DNS, listen.port, stats, sshd) binds <1024.
|
||||
#User=nebula
|
||||
#Group=nebula
|
||||
#CapabilityBoundingSet=CAP_NET_ADMIN
|
||||
#AmbientCapabilities=CAP_NET_ADMIN
|
||||
|
||||
ExecReload=/bin/kill -HUP $MAINPID
|
||||
ExecStart=/usr/local/bin/nebula -config /etc/nebula/config.yml
|
||||
Restart=always
|
||||
|
||||
+79
-81
@@ -44,8 +44,8 @@ type Firewall struct {
|
||||
InRules *FirewallTable
|
||||
OutRules *FirewallTable
|
||||
|
||||
InSendReject bool
|
||||
OutSendReject bool
|
||||
InboundSendReject bool
|
||||
OutboundSendReject bool
|
||||
|
||||
//TODO: we should have many more options for TCP, an option for ICMP, and mimic the kernel a bit better
|
||||
// https://www.kernel.org/doc/Documentation/networking/nf_conntrack-sysctl.txt
|
||||
@@ -58,8 +58,9 @@ type Firewall struct {
|
||||
routableNetworks *bart.Lite
|
||||
|
||||
// assignedNetworks is a list of vpn networks assigned to us in the certificate.
|
||||
assignedNetworks []netip.Prefix
|
||||
hasUnsafeNetworks bool
|
||||
assignedNetworks []netip.Prefix
|
||||
// unsafeNetworks is the list of unsafe networks issued to us in the certificate
|
||||
unsafeNetworks []netip.Prefix
|
||||
|
||||
rules string
|
||||
rulesVersion uint16
|
||||
@@ -80,8 +81,8 @@ type firewallMetrics struct {
|
||||
type FirewallConntrack struct {
|
||||
sync.Mutex
|
||||
|
||||
Conns map[firewall.PacketKey]*conn
|
||||
TimerWheel *TimerWheel[firewall.PacketKey]
|
||||
Conns map[firewall.Packet]*conn
|
||||
TimerWheel *TimerWheel[firewall.Packet]
|
||||
}
|
||||
|
||||
// FirewallTable is the entry point for a rule, the evaluation order is:
|
||||
@@ -158,26 +159,25 @@ func NewFirewall(l *slog.Logger, tcpTimeout, UDPTimeout, defaultTimeout time.Dur
|
||||
assignedNetworks = append(assignedNetworks, network)
|
||||
}
|
||||
|
||||
hasUnsafeNetworks := false
|
||||
for _, n := range c.UnsafeNetworks() {
|
||||
unsafeNetworks := c.UnsafeNetworks()
|
||||
for _, n := range unsafeNetworks {
|
||||
routableNetworks.Insert(n)
|
||||
hasUnsafeNetworks = true
|
||||
}
|
||||
|
||||
return &Firewall{
|
||||
Conntrack: &FirewallConntrack{
|
||||
Conns: make(map[firewall.PacketKey]*conn),
|
||||
TimerWheel: NewTimerWheel[firewall.PacketKey](tmin, tmax),
|
||||
Conns: make(map[firewall.Packet]*conn),
|
||||
TimerWheel: NewTimerWheel[firewall.Packet](tmin, tmax),
|
||||
},
|
||||
InRules: newFirewallTable(),
|
||||
OutRules: newFirewallTable(),
|
||||
TCPTimeout: tcpTimeout,
|
||||
UDPTimeout: UDPTimeout,
|
||||
DefaultTimeout: defaultTimeout,
|
||||
routableNetworks: routableNetworks,
|
||||
assignedNetworks: assignedNetworks,
|
||||
hasUnsafeNetworks: hasUnsafeNetworks,
|
||||
l: l,
|
||||
InRules: newFirewallTable(),
|
||||
OutRules: newFirewallTable(),
|
||||
TCPTimeout: tcpTimeout,
|
||||
UDPTimeout: UDPTimeout,
|
||||
DefaultTimeout: defaultTimeout,
|
||||
routableNetworks: routableNetworks,
|
||||
assignedNetworks: assignedNetworks,
|
||||
unsafeNetworks: unsafeNetworks,
|
||||
l: l,
|
||||
|
||||
incomingMetrics: firewallMetrics{
|
||||
droppedLocalAddr: metrics.GetOrRegisterCounter("firewall.incoming.dropped.local_addr", nil),
|
||||
@@ -216,23 +216,23 @@ func NewFirewallFromConfig(l *slog.Logger, cs *CertState, c *config.C) (*Firewal
|
||||
inboundAction := c.GetString("firewall.inbound_action", "drop")
|
||||
switch inboundAction {
|
||||
case "reject":
|
||||
fw.InSendReject = true
|
||||
fw.InboundSendReject = true
|
||||
case "drop":
|
||||
fw.InSendReject = false
|
||||
fw.InboundSendReject = false
|
||||
default:
|
||||
l.Warn("invalid firewall.inbound_action, defaulting to `drop`", "action", inboundAction)
|
||||
fw.InSendReject = false
|
||||
fw.InboundSendReject = false
|
||||
}
|
||||
|
||||
outboundAction := c.GetString("firewall.outbound_action", "drop")
|
||||
switch outboundAction {
|
||||
case "reject":
|
||||
fw.OutSendReject = true
|
||||
fw.OutboundSendReject = true
|
||||
case "drop":
|
||||
fw.OutSendReject = false
|
||||
fw.OutboundSendReject = false
|
||||
default:
|
||||
l.Warn("invalid firewall.outbound_action, defaulting to `drop`", "action", outboundAction)
|
||||
fw.OutSendReject = false
|
||||
fw.OutboundSendReject = false
|
||||
}
|
||||
|
||||
err := AddFirewallRulesFromConfig(l, false, c, fw)
|
||||
@@ -422,27 +422,7 @@ var ErrNoMatchingRule = errors.New("no matching rule in firewall table")
|
||||
|
||||
// Drop returns an error if the packet should be dropped, explaining why. It
|
||||
// returns nil if the packet should not be dropped.
|
||||
//
|
||||
// key is the dense conntrack key — used as-is for the inConns fast path
|
||||
// without touching fp at all. fp is the rich Packet form rule matching
|
||||
// needs (CIDR lookups, family checks); on the conntrack-miss slow path
|
||||
// Drop ensures fp is hydrated from key (idempotent if the caller already
|
||||
// filled fp). On accept-via-conntrack the caller's fp is left untouched.
|
||||
func (f *Firewall) Drop(key firewall.PacketKey, fp *firewall.Packet, incoming bool, h *HostInfo, caPool *cert.CAPool, localCache firewall.ConntrackCache) error {
|
||||
// Check if we spoke to this tuple, if we did then allow this packet.
|
||||
// Hot path: only the dense key is touched.
|
||||
if f.inConns(key, h, caPool, localCache) {
|
||||
return nil
|
||||
}
|
||||
|
||||
// Conntrack miss → rule matching needs the rich Packet form. Hydrate
|
||||
// from the key if the caller passed a zero-valued fp (the inbound path
|
||||
// after batch.ParsePacket). Outbound callers Hydrate themselves and
|
||||
// skip this hop.
|
||||
if !fp.LocalAddr.IsValid() {
|
||||
key.Hydrate(fp)
|
||||
}
|
||||
|
||||
func (f *Firewall) Drop(fp firewall.Packet, incoming bool, h *HostInfo, caPool *cert.CAPool, localCache firewall.ConntrackCache) error {
|
||||
// Make sure remote address matches nebula certificate, and determine how to treat it
|
||||
if h.networks == nil {
|
||||
// Simple case: Certificate has one address and no unsafe networks
|
||||
@@ -476,19 +456,24 @@ func (f *Firewall) Drop(key firewall.PacketKey, fp *firewall.Packet, incoming bo
|
||||
return ErrInvalidLocalIP
|
||||
}
|
||||
|
||||
// Check if we spoke to this tuple, if we did then allow this packet
|
||||
if f.inConns(fp, h, caPool, localCache) {
|
||||
return nil
|
||||
}
|
||||
|
||||
table := f.OutRules
|
||||
if incoming {
|
||||
table = f.InRules
|
||||
}
|
||||
|
||||
// We now know which firewall table to check against
|
||||
if !table.match(*fp, incoming, h.ConnectionState.peerCert, caPool) {
|
||||
if !table.match(fp, incoming, h.ConnectionState.peerCert, caPool) {
|
||||
f.metrics(incoming).droppedNoRule.Inc(1)
|
||||
return ErrNoMatchingRule
|
||||
}
|
||||
|
||||
// We always want to conntrack since it is a faster operation
|
||||
f.addConn(key, fp.Protocol, incoming)
|
||||
f.addConn(fp, incoming)
|
||||
|
||||
return nil
|
||||
}
|
||||
@@ -517,9 +502,9 @@ func (f *Firewall) EmitStats() {
|
||||
metrics.GetOrRegisterGauge("firewall.rules.hash", nil).Update(int64(f.GetRuleHashFNV()))
|
||||
}
|
||||
|
||||
func (f *Firewall) inConns(key firewall.PacketKey, h *HostInfo, caPool *cert.CAPool, localCache firewall.ConntrackCache) bool {
|
||||
func (f *Firewall) inConns(fp firewall.Packet, h *HostInfo, caPool *cert.CAPool, localCache firewall.ConntrackCache) bool {
|
||||
if localCache != nil {
|
||||
if _, ok := localCache[key]; ok {
|
||||
if _, ok := localCache[fp]; ok {
|
||||
return true
|
||||
}
|
||||
}
|
||||
@@ -532,7 +517,7 @@ func (f *Firewall) inConns(key firewall.PacketKey, h *HostInfo, caPool *cert.CAP
|
||||
f.evict(ep)
|
||||
}
|
||||
|
||||
c, ok := conntrack.Conns[key]
|
||||
c, ok := conntrack.Conns[fp]
|
||||
|
||||
if !ok {
|
||||
conntrack.Unlock()
|
||||
@@ -541,11 +526,7 @@ func (f *Firewall) inConns(key firewall.PacketKey, h *HostInfo, caPool *cert.CAP
|
||||
|
||||
if c.rulesVersion != f.rulesVersion {
|
||||
// This conntrack entry was for an older rule set, validate
|
||||
// it still passes with the current rule set. Rule matching needs
|
||||
// the rich Packet form, so hydrate from key.
|
||||
var fp firewall.Packet
|
||||
key.Hydrate(&fp)
|
||||
|
||||
// it still passes with the current rule set
|
||||
table := f.OutRules
|
||||
if c.incoming {
|
||||
table = f.InRules
|
||||
@@ -561,7 +542,7 @@ func (f *Firewall) inConns(key firewall.PacketKey, h *HostInfo, caPool *cert.CAP
|
||||
"oldRulesVersion", c.rulesVersion,
|
||||
)
|
||||
}
|
||||
delete(conntrack.Conns, key)
|
||||
delete(conntrack.Conns, fp)
|
||||
conntrack.Unlock()
|
||||
return false
|
||||
}
|
||||
@@ -578,7 +559,7 @@ func (f *Firewall) inConns(key firewall.PacketKey, h *HostInfo, caPool *cert.CAP
|
||||
c.rulesVersion = f.rulesVersion
|
||||
}
|
||||
|
||||
switch key.Protocol {
|
||||
switch fp.Protocol {
|
||||
case firewall.ProtoTCP:
|
||||
c.Expires = time.Now().Add(f.TCPTimeout)
|
||||
case firewall.ProtoUDP:
|
||||
@@ -590,17 +571,17 @@ func (f *Firewall) inConns(key firewall.PacketKey, h *HostInfo, caPool *cert.CAP
|
||||
conntrack.Unlock()
|
||||
|
||||
if localCache != nil {
|
||||
localCache[key] = struct{}{}
|
||||
localCache[fp] = struct{}{}
|
||||
}
|
||||
|
||||
return true
|
||||
}
|
||||
|
||||
func (f *Firewall) addConn(key firewall.PacketKey, protocol uint8, incoming bool) {
|
||||
func (f *Firewall) addConn(fp firewall.Packet, incoming bool) {
|
||||
var timeout time.Duration
|
||||
c := &conn{}
|
||||
|
||||
switch protocol {
|
||||
switch fp.Protocol {
|
||||
case firewall.ProtoTCP:
|
||||
timeout = f.TCPTimeout
|
||||
case firewall.ProtoUDP:
|
||||
@@ -611,9 +592,9 @@ func (f *Firewall) addConn(key firewall.PacketKey, protocol uint8, incoming bool
|
||||
|
||||
conntrack := f.Conntrack
|
||||
conntrack.Lock()
|
||||
if _, ok := conntrack.Conns[key]; !ok {
|
||||
if _, ok := conntrack.Conns[fp]; !ok {
|
||||
conntrack.TimerWheel.Advance(time.Now())
|
||||
conntrack.TimerWheel.Add(key, timeout)
|
||||
conntrack.TimerWheel.Add(fp, timeout)
|
||||
}
|
||||
|
||||
// Record which rulesVersion allowed this connection, so we can retest after
|
||||
@@ -621,16 +602,16 @@ func (f *Firewall) addConn(key firewall.PacketKey, protocol uint8, incoming bool
|
||||
c.incoming = incoming
|
||||
c.rulesVersion = f.rulesVersion
|
||||
c.Expires = time.Now().Add(timeout)
|
||||
conntrack.Conns[key] = c
|
||||
conntrack.Conns[fp] = c
|
||||
conntrack.Unlock()
|
||||
}
|
||||
|
||||
// Evict checks if a conntrack entry has expired, if so it is removed, if not it is re-added to the wheel
|
||||
// Caller must own the connMutex lock!
|
||||
func (f *Firewall) evict(key firewall.PacketKey) {
|
||||
func (f *Firewall) evict(p firewall.Packet) {
|
||||
// Are we still tracking this conn?
|
||||
conntrack := f.Conntrack
|
||||
t, ok := conntrack.Conns[key]
|
||||
t, ok := conntrack.Conns[p]
|
||||
if !ok {
|
||||
return
|
||||
}
|
||||
@@ -640,12 +621,12 @@ func (f *Firewall) evict(key firewall.PacketKey) {
|
||||
// Timeout is in the future, re-add the timer
|
||||
if newT > 0 {
|
||||
conntrack.TimerWheel.Advance(time.Now())
|
||||
conntrack.TimerWheel.Add(key, newT)
|
||||
conntrack.TimerWheel.Add(p, newT)
|
||||
return
|
||||
}
|
||||
|
||||
// This conn is done
|
||||
delete(conntrack.Conns, key)
|
||||
delete(conntrack.Conns, p)
|
||||
}
|
||||
|
||||
func (ft *FirewallTable) match(p firewall.Packet, incoming bool, c *cert.CachedCertificate, caPool *cert.CAPool) bool {
|
||||
@@ -916,7 +897,7 @@ func (flc *firewallLocalCIDR) addRule(f *Firewall, localCidr string) error {
|
||||
}
|
||||
|
||||
if localCidr == "" {
|
||||
if !f.hasUnsafeNetworks || f.defaultLocalCIDRAny {
|
||||
if len(f.unsafeNetworks) == 0 || f.defaultLocalCIDRAny {
|
||||
flc.Any = true
|
||||
return nil
|
||||
}
|
||||
@@ -1074,7 +1055,6 @@ func (r *rule) sanity() error {
|
||||
}
|
||||
|
||||
func parsePort(s string) (int32, int32, error) {
|
||||
var err error
|
||||
const notAPort int32 = -2
|
||||
if s == "any" {
|
||||
return firewall.PortAny, firewall.PortAny, nil
|
||||
@@ -1083,11 +1063,11 @@ func parsePort(s string) (int32, int32, error) {
|
||||
return firewall.PortFragment, firewall.PortFragment, nil
|
||||
}
|
||||
if !strings.Contains(s, `-`) {
|
||||
rPort, err := strconv.Atoi(s)
|
||||
rPort, err := parsePortValue("", s)
|
||||
if err != nil {
|
||||
return notAPort, notAPort, fmt.Errorf("was not a number; `%s`", s)
|
||||
return notAPort, notAPort, err
|
||||
}
|
||||
return int32(rPort), int32(rPort), nil
|
||||
return rPort, rPort, nil
|
||||
}
|
||||
|
||||
sPorts := strings.SplitN(s, `-`, 2)
|
||||
@@ -1098,22 +1078,40 @@ func parsePort(s string) (int32, int32, error) {
|
||||
return notAPort, notAPort, fmt.Errorf("appears to be a range but could not be parsed; `%s`", s)
|
||||
}
|
||||
|
||||
rStartPort, err := strconv.Atoi(sPorts[0])
|
||||
startPort, err := parsePortValue("beginning range ", sPorts[0])
|
||||
if err != nil {
|
||||
return notAPort, notAPort, fmt.Errorf("beginning range was not a number; `%s`", sPorts[0])
|
||||
return notAPort, notAPort, err
|
||||
}
|
||||
|
||||
rEndPort, err := strconv.Atoi(sPorts[1])
|
||||
endPort, err := parsePortValue("ending range ", sPorts[1])
|
||||
if err != nil {
|
||||
return notAPort, notAPort, fmt.Errorf("ending range was not a number; `%s`", sPorts[1])
|
||||
return notAPort, notAPort, err
|
||||
}
|
||||
|
||||
startPort := int32(rStartPort)
|
||||
endPort := int32(rEndPort)
|
||||
|
||||
if startPort == firewall.PortAny {
|
||||
endPort = firewall.PortAny
|
||||
}
|
||||
|
||||
return startPort, endPort, nil
|
||||
}
|
||||
|
||||
// parsePortValue accepts a base-10 decimal in [0, 65535] and returns it
|
||||
// widened to int32. Using strconv.ParseUint with bitSize 16 rejects
|
||||
// negative input, out-of-range input (>65535), and any non-decimal byte
|
||||
// by construction, so the int32 widening that follows is provably safe
|
||||
// and cannot collide with firewall.PortAny (0) or firewall.PortFragment
|
||||
// (-1) via integer truncation.
|
||||
//
|
||||
// prefix is prepended to both error messages so callers can disambiguate
|
||||
// the single-port path (prefix="") from the range bounds (prefix="beginning
|
||||
// range " / "ending range "), preserving the historical error strings.
|
||||
func parsePortValue(prefix, s string) (int32, error) {
|
||||
n, err := strconv.ParseUint(s, 10, 16)
|
||||
if err == nil {
|
||||
return int32(n), nil
|
||||
}
|
||||
if errors.Is(err, strconv.ErrRange) {
|
||||
return 0, fmt.Errorf("%sout of range [0,65535]; `%s`", prefix, s)
|
||||
}
|
||||
return 0, fmt.Errorf("%swas not a number; `%s`", prefix, s)
|
||||
}
|
||||
|
||||
+4
-8
@@ -5,15 +5,11 @@ import (
|
||||
"log/slog"
|
||||
"sync/atomic"
|
||||
"time"
|
||||
|
||||
"github.com/slackhq/nebula/logging"
|
||||
)
|
||||
|
||||
// ConntrackCache is used as a local routine cache to know if a given flow
|
||||
// has been seen in the conntrack table. Keyed on PacketKey (dense form)
|
||||
// rather than Packet so the lookup hashes raw bytes instead of the
|
||||
// unique.Handle each netip.Addr in Packet carries.
|
||||
type ConntrackCache map[PacketKey]struct{}
|
||||
// has been seen in the conntrack table.
|
||||
type ConntrackCache map[Packet]struct{}
|
||||
|
||||
type ConntrackCacheTicker struct {
|
||||
cacheV uint64
|
||||
@@ -60,8 +56,8 @@ func (c *ConntrackCacheTicker) Get() ConntrackCache {
|
||||
if tick := c.cacheTick.Load(); tick != c.cacheV {
|
||||
c.cacheV = tick
|
||||
if ll := len(c.cache); ll > 0 {
|
||||
if c.l.Enabled(context.Background(), logging.LevelTrace) {
|
||||
c.l.Log(context.Background(), logging.LevelTrace, "resetting conntrack cache", "len", ll)
|
||||
if c.l.Enabled(context.Background(), slog.LevelDebug) {
|
||||
c.l.Debug("resetting conntrack cache", "len", ll)
|
||||
}
|
||||
c.cache = make(ConntrackCache, ll)
|
||||
}
|
||||
|
||||
@@ -6,7 +6,6 @@ import (
|
||||
"strings"
|
||||
"testing"
|
||||
|
||||
"github.com/slackhq/nebula/logging"
|
||||
"github.com/slackhq/nebula/test"
|
||||
"github.com/stretchr/testify/assert"
|
||||
)
|
||||
@@ -23,7 +22,7 @@ func newFixedTicker(t *testing.T, l *slog.Logger, cacheLen int) *ConntrackCacheT
|
||||
cache: make(ConntrackCache, cacheLen),
|
||||
}
|
||||
for i := 0; i < cacheLen; i++ {
|
||||
c.cache[PacketKey{LocalPort: uint16(i) + 1}] = struct{}{}
|
||||
c.cache[Packet{LocalPort: uint16(i) + 1}] = struct{}{}
|
||||
}
|
||||
c.cacheTick.Store(1) // cacheV starts at 0, so Get() takes the reset path
|
||||
return c
|
||||
@@ -31,27 +30,27 @@ func newFixedTicker(t *testing.T, l *slog.Logger, cacheLen int) *ConntrackCacheT
|
||||
|
||||
func TestConntrackCacheTicker_Get_TextFormat(t *testing.T) {
|
||||
buf := &bytes.Buffer{}
|
||||
l := test.NewLoggerWithOutputAndLevel(buf, logging.LevelTrace)
|
||||
l := test.NewLoggerWithOutputAndLevel(buf, slog.LevelDebug)
|
||||
|
||||
c := newFixedTicker(t, l, 3)
|
||||
c.Get()
|
||||
|
||||
assert.Equal(t, "level=DEBUG-4 msg=\"resetting conntrack cache\" len=3\n", buf.String())
|
||||
assert.Equal(t, "level=DEBUG msg=\"resetting conntrack cache\" len=3\n", buf.String())
|
||||
}
|
||||
|
||||
func TestConntrackCacheTicker_Get_JSONFormat(t *testing.T) {
|
||||
buf := &bytes.Buffer{}
|
||||
l := test.NewJSONLoggerWithOutput(buf, logging.LevelTrace)
|
||||
l := test.NewJSONLoggerWithOutput(buf, slog.LevelDebug)
|
||||
|
||||
c := newFixedTicker(t, l, 2)
|
||||
c.Get()
|
||||
|
||||
assert.JSONEq(t, `{"level":"DEBUG-4","msg":"resetting conntrack cache","len":2}`, strings.TrimSpace(buf.String()))
|
||||
assert.JSONEq(t, `{"level":"DEBUG","msg":"resetting conntrack cache","len":2}`, strings.TrimSpace(buf.String()))
|
||||
}
|
||||
|
||||
func TestConntrackCacheTicker_Get_QuietBelowTrace(t *testing.T) {
|
||||
func TestConntrackCacheTicker_Get_QuietBelowDebug(t *testing.T) {
|
||||
buf := &bytes.Buffer{}
|
||||
l := test.NewLoggerWithOutputAndLevel(buf, slog.LevelDebug)
|
||||
l := test.NewLoggerWithOutputAndLevel(buf, slog.LevelInfo)
|
||||
|
||||
c := newFixedTicker(t, l, 5)
|
||||
c.Get()
|
||||
@@ -61,7 +60,7 @@ func TestConntrackCacheTicker_Get_QuietBelowTrace(t *testing.T) {
|
||||
|
||||
func TestConntrackCacheTicker_Get_QuietWhenCacheEmpty(t *testing.T) {
|
||||
buf := &bytes.Buffer{}
|
||||
l := test.NewLoggerWithOutputAndLevel(buf, logging.LevelTrace)
|
||||
l := test.NewLoggerWithOutputAndLevel(buf, slog.LevelDebug)
|
||||
|
||||
c := newFixedTicker(t, l, 0)
|
||||
c.Get()
|
||||
|
||||
@@ -19,25 +19,6 @@ const (
|
||||
PortFragment = -1 // Special value for matching `port: fragment`
|
||||
)
|
||||
|
||||
// PacketKey is the firewall's conntrack and ConntrackCache map key — the
|
||||
// dense form of the 5-tuple plus the protocol and fragment flag the
|
||||
// firewall actually discriminates flows on. Kept separate from Packet so
|
||||
// the conntrack-hit fast path doesn't pay for hashing the unique.Handle
|
||||
// each netip.Addr carries, and so the inbound parser can skip the
|
||||
// AddrFrom4/AddrFrom16 calls until rule matching actually needs them.
|
||||
//
|
||||
// Superset of the coalescer's flowKey shape (same 5-tuple, just in
|
||||
// Local/Remote orientation rather than wire src/dst).
|
||||
type PacketKey struct {
|
||||
LocalAddr [16]byte
|
||||
RemoteAddr [16]byte
|
||||
LocalPort uint16
|
||||
RemotePort uint16
|
||||
IsV6 bool
|
||||
Protocol uint8
|
||||
Fragment bool
|
||||
}
|
||||
|
||||
type Packet struct {
|
||||
LocalAddr netip.Addr
|
||||
RemoteAddr netip.Addr
|
||||
@@ -50,61 +31,6 @@ type Packet struct {
|
||||
Fragment bool
|
||||
}
|
||||
|
||||
// Key derives a PacketKey from a populated Packet. Used by the few code
|
||||
// paths that have a Packet but no Key in hand (e.g. tests). Both inbound
|
||||
// and outbound production parsers write straight into a PacketKey via
|
||||
// batch.ParsePacket, so this function is rarely on the hot path.
|
||||
func (fp *Packet) Key() PacketKey {
|
||||
k := PacketKey{
|
||||
Protocol: fp.Protocol,
|
||||
Fragment: fp.Fragment,
|
||||
}
|
||||
k.LocalPort = fp.LocalPort
|
||||
k.RemotePort = fp.RemotePort
|
||||
k.IsV6 = !fp.LocalAddr.Is4()
|
||||
if k.IsV6 {
|
||||
k.LocalAddr = fp.LocalAddr.As16()
|
||||
k.RemoteAddr = fp.RemoteAddr.As16()
|
||||
} else {
|
||||
v4 := fp.LocalAddr.As4()
|
||||
copy(k.LocalAddr[:4], v4[:])
|
||||
v4 = fp.RemoteAddr.As4()
|
||||
copy(k.RemoteAddr[:4], v4[:])
|
||||
}
|
||||
return k
|
||||
}
|
||||
|
||||
// Hydrate fills fp's netip.Addr fields and copies the rest from k. Called
|
||||
// by the firewall slow path when conntrack misses and rule matching needs
|
||||
// the rich Packet form (CIDR lookups, family checks). The fast path skips
|
||||
// this entirely.
|
||||
func (k *PacketKey) Hydrate(fp *Packet) {
|
||||
fp.LocalPort = k.LocalPort
|
||||
fp.RemotePort = k.RemotePort
|
||||
fp.Protocol = k.Protocol
|
||||
fp.Fragment = k.Fragment
|
||||
if k.IsV6 {
|
||||
fp.LocalAddr = netip.AddrFrom16(k.LocalAddr)
|
||||
fp.RemoteAddr = netip.AddrFrom16(k.RemoteAddr)
|
||||
} else {
|
||||
var v4 [4]byte
|
||||
copy(v4[:], k.LocalAddr[:4])
|
||||
fp.LocalAddr = netip.AddrFrom4(v4)
|
||||
copy(v4[:], k.RemoteAddr[:4])
|
||||
fp.RemoteAddr = netip.AddrFrom4(v4)
|
||||
}
|
||||
}
|
||||
|
||||
func (k *PacketKey) GetRemoteAddr() netip.Addr {
|
||||
if k.IsV6 {
|
||||
return netip.AddrFrom16(k.RemoteAddr)
|
||||
} else {
|
||||
var v4 [4]byte
|
||||
copy(v4[:], k.RemoteAddr[:4])
|
||||
return netip.AddrFrom4(v4)
|
||||
}
|
||||
}
|
||||
|
||||
func (fp *Packet) Copy() *Packet {
|
||||
return &Packet{
|
||||
LocalAddr: fp.LocalAddr,
|
||||
|
||||
+275
-53
@@ -211,44 +211,44 @@ func TestFirewall_Drop(t *testing.T) {
|
||||
cp := cert.NewCAPool()
|
||||
|
||||
// Drop outbound
|
||||
assert.Equal(t, ErrNoMatchingRule, fw.Drop(p.Key(), &p, false, &h, cp, nil))
|
||||
assert.Equal(t, ErrNoMatchingRule, fw.Drop(p, false, &h, cp, nil))
|
||||
// Allow inbound
|
||||
resetConntrack(fw)
|
||||
require.NoError(t, fw.Drop(p.Key(), &p, true, &h, cp, nil))
|
||||
require.NoError(t, fw.Drop(p, true, &h, cp, nil))
|
||||
// Allow outbound because conntrack
|
||||
require.NoError(t, fw.Drop(p.Key(), &p, false, &h, cp, nil))
|
||||
require.NoError(t, fw.Drop(p, false, &h, cp, nil))
|
||||
|
||||
// test remote mismatch
|
||||
oldRemote := p.RemoteAddr
|
||||
p.RemoteAddr = netip.MustParseAddr("1.2.3.10")
|
||||
assert.Equal(t, fw.Drop(p.Key(), &p, false, &h, cp, nil), ErrInvalidRemoteIP)
|
||||
assert.Equal(t, fw.Drop(p, false, &h, cp, nil), ErrInvalidRemoteIP)
|
||||
p.RemoteAddr = oldRemote
|
||||
|
||||
// ensure signer doesn't get in the way of group checks
|
||||
fw = NewFirewall(l, time.Second, time.Minute, time.Hour, &c)
|
||||
require.NoError(t, fw.AddRule(true, firewall.ProtoAny, 0, 0, []string{"nope"}, "", "", "", "", "signer-shasum"))
|
||||
require.NoError(t, fw.AddRule(true, firewall.ProtoAny, 0, 0, []string{"default-group"}, "", "", "", "", "signer-shasum-bad"))
|
||||
assert.Equal(t, fw.Drop(p.Key(), &p, true, &h, cp, nil), ErrNoMatchingRule)
|
||||
assert.Equal(t, fw.Drop(p, true, &h, cp, nil), ErrNoMatchingRule)
|
||||
|
||||
// test caSha doesn't drop on match
|
||||
fw = NewFirewall(l, time.Second, time.Minute, time.Hour, &c)
|
||||
require.NoError(t, fw.AddRule(true, firewall.ProtoAny, 0, 0, []string{"nope"}, "", "", "", "", "signer-shasum-bad"))
|
||||
require.NoError(t, fw.AddRule(true, firewall.ProtoAny, 0, 0, []string{"default-group"}, "", "", "", "", "signer-shasum"))
|
||||
require.NoError(t, fw.Drop(p.Key(), &p, true, &h, cp, nil))
|
||||
require.NoError(t, fw.Drop(p, true, &h, cp, nil))
|
||||
|
||||
// ensure ca name doesn't get in the way of group checks
|
||||
cp.CAs["signer-shasum"] = &cert.CachedCertificate{Certificate: &dummyCert{name: "ca-good"}}
|
||||
fw = NewFirewall(l, time.Second, time.Minute, time.Hour, &c)
|
||||
require.NoError(t, fw.AddRule(true, firewall.ProtoAny, 0, 0, []string{"nope"}, "", "", "", "ca-good", ""))
|
||||
require.NoError(t, fw.AddRule(true, firewall.ProtoAny, 0, 0, []string{"default-group"}, "", "", "", "ca-good-bad", ""))
|
||||
assert.Equal(t, fw.Drop(p.Key(), &p, true, &h, cp, nil), ErrNoMatchingRule)
|
||||
assert.Equal(t, fw.Drop(p, true, &h, cp, nil), ErrNoMatchingRule)
|
||||
|
||||
// test caName doesn't drop on match
|
||||
cp.CAs["signer-shasum"] = &cert.CachedCertificate{Certificate: &dummyCert{name: "ca-good"}}
|
||||
fw = NewFirewall(l, time.Second, time.Minute, time.Hour, &c)
|
||||
require.NoError(t, fw.AddRule(true, firewall.ProtoAny, 0, 0, []string{"nope"}, "", "", "", "ca-good-bad", ""))
|
||||
require.NoError(t, fw.AddRule(true, firewall.ProtoAny, 0, 0, []string{"default-group"}, "", "", "", "ca-good", ""))
|
||||
require.NoError(t, fw.Drop(p.Key(), &p, true, &h, cp, nil))
|
||||
require.NoError(t, fw.Drop(p, true, &h, cp, nil))
|
||||
}
|
||||
|
||||
func TestFirewall_DropV6(t *testing.T) {
|
||||
@@ -289,44 +289,44 @@ func TestFirewall_DropV6(t *testing.T) {
|
||||
cp := cert.NewCAPool()
|
||||
|
||||
// Drop outbound
|
||||
assert.Equal(t, ErrNoMatchingRule, fw.Drop(p.Key(), &p, false, &h, cp, nil))
|
||||
assert.Equal(t, ErrNoMatchingRule, fw.Drop(p, false, &h, cp, nil))
|
||||
// Allow inbound
|
||||
resetConntrack(fw)
|
||||
require.NoError(t, fw.Drop(p.Key(), &p, true, &h, cp, nil))
|
||||
require.NoError(t, fw.Drop(p, true, &h, cp, nil))
|
||||
// Allow outbound because conntrack
|
||||
require.NoError(t, fw.Drop(p.Key(), &p, false, &h, cp, nil))
|
||||
require.NoError(t, fw.Drop(p, false, &h, cp, nil))
|
||||
|
||||
// test remote mismatch
|
||||
oldRemote := p.RemoteAddr
|
||||
p.RemoteAddr = netip.MustParseAddr("fd12::56")
|
||||
assert.Equal(t, fw.Drop(p.Key(), &p, false, &h, cp, nil), ErrInvalidRemoteIP)
|
||||
assert.Equal(t, fw.Drop(p, false, &h, cp, nil), ErrInvalidRemoteIP)
|
||||
p.RemoteAddr = oldRemote
|
||||
|
||||
// ensure signer doesn't get in the way of group checks
|
||||
fw = NewFirewall(l, time.Second, time.Minute, time.Hour, &c)
|
||||
require.NoError(t, fw.AddRule(true, firewall.ProtoAny, 0, 0, []string{"nope"}, "", "", "", "", "signer-shasum"))
|
||||
require.NoError(t, fw.AddRule(true, firewall.ProtoAny, 0, 0, []string{"default-group"}, "", "", "", "", "signer-shasum-bad"))
|
||||
assert.Equal(t, fw.Drop(p.Key(), &p, true, &h, cp, nil), ErrNoMatchingRule)
|
||||
assert.Equal(t, fw.Drop(p, true, &h, cp, nil), ErrNoMatchingRule)
|
||||
|
||||
// test caSha doesn't drop on match
|
||||
fw = NewFirewall(l, time.Second, time.Minute, time.Hour, &c)
|
||||
require.NoError(t, fw.AddRule(true, firewall.ProtoAny, 0, 0, []string{"nope"}, "", "", "", "", "signer-shasum-bad"))
|
||||
require.NoError(t, fw.AddRule(true, firewall.ProtoAny, 0, 0, []string{"default-group"}, "", "", "", "", "signer-shasum"))
|
||||
require.NoError(t, fw.Drop(p.Key(), &p, true, &h, cp, nil))
|
||||
require.NoError(t, fw.Drop(p, true, &h, cp, nil))
|
||||
|
||||
// ensure ca name doesn't get in the way of group checks
|
||||
cp.CAs["signer-shasum"] = &cert.CachedCertificate{Certificate: &dummyCert{name: "ca-good"}}
|
||||
fw = NewFirewall(l, time.Second, time.Minute, time.Hour, &c)
|
||||
require.NoError(t, fw.AddRule(true, firewall.ProtoAny, 0, 0, []string{"nope"}, "", "", "", "ca-good", ""))
|
||||
require.NoError(t, fw.AddRule(true, firewall.ProtoAny, 0, 0, []string{"default-group"}, "", "", "", "ca-good-bad", ""))
|
||||
assert.Equal(t, fw.Drop(p.Key(), &p, true, &h, cp, nil), ErrNoMatchingRule)
|
||||
assert.Equal(t, fw.Drop(p, true, &h, cp, nil), ErrNoMatchingRule)
|
||||
|
||||
// test caName doesn't drop on match
|
||||
cp.CAs["signer-shasum"] = &cert.CachedCertificate{Certificate: &dummyCert{name: "ca-good"}}
|
||||
fw = NewFirewall(l, time.Second, time.Minute, time.Hour, &c)
|
||||
require.NoError(t, fw.AddRule(true, firewall.ProtoAny, 0, 0, []string{"nope"}, "", "", "", "ca-good-bad", ""))
|
||||
require.NoError(t, fw.AddRule(true, firewall.ProtoAny, 0, 0, []string{"default-group"}, "", "", "", "ca-good", ""))
|
||||
require.NoError(t, fw.Drop(p.Key(), &p, true, &h, cp, nil))
|
||||
require.NoError(t, fw.Drop(p, true, &h, cp, nil))
|
||||
}
|
||||
|
||||
func BenchmarkFirewallTable_match(b *testing.B) {
|
||||
@@ -533,10 +533,10 @@ func TestFirewall_Drop2(t *testing.T) {
|
||||
cp := cert.NewCAPool()
|
||||
|
||||
// h1/c1 lacks the proper groups
|
||||
require.ErrorIs(t, fw.Drop(p.Key(), &p, true, &h1, cp, nil), ErrNoMatchingRule)
|
||||
require.ErrorIs(t, fw.Drop(p, true, &h1, cp, nil), ErrNoMatchingRule)
|
||||
// c has the proper groups
|
||||
resetConntrack(fw)
|
||||
require.NoError(t, fw.Drop(p.Key(), &p, true, &h, cp, nil))
|
||||
require.NoError(t, fw.Drop(p, true, &h, cp, nil))
|
||||
}
|
||||
|
||||
func TestFirewall_Drop3(t *testing.T) {
|
||||
@@ -613,18 +613,18 @@ func TestFirewall_Drop3(t *testing.T) {
|
||||
cp := cert.NewCAPool()
|
||||
|
||||
// c1 should pass because host match
|
||||
require.NoError(t, fw.Drop(p.Key(), &p, true, &h1, cp, nil))
|
||||
require.NoError(t, fw.Drop(p, true, &h1, cp, nil))
|
||||
// c2 should pass because ca sha match
|
||||
resetConntrack(fw)
|
||||
require.NoError(t, fw.Drop(p.Key(), &p, true, &h2, cp, nil))
|
||||
require.NoError(t, fw.Drop(p, true, &h2, cp, nil))
|
||||
// c3 should fail because no match
|
||||
resetConntrack(fw)
|
||||
assert.Equal(t, fw.Drop(p.Key(), &p, true, &h3, cp, nil), ErrNoMatchingRule)
|
||||
assert.Equal(t, fw.Drop(p, true, &h3, cp, nil), ErrNoMatchingRule)
|
||||
|
||||
// Test a remote address match
|
||||
fw = NewFirewall(l, time.Second, time.Minute, time.Hour, c.Certificate)
|
||||
require.NoError(t, fw.AddRule(true, firewall.ProtoAny, 1, 1, []string{}, "", "1.2.3.4/24", "", "", ""))
|
||||
require.NoError(t, fw.Drop(p.Key(), &p, true, &h1, cp, nil))
|
||||
require.NoError(t, fw.Drop(p, true, &h1, cp, nil))
|
||||
}
|
||||
|
||||
func TestFirewall_Drop3V6(t *testing.T) {
|
||||
@@ -661,7 +661,7 @@ func TestFirewall_Drop3V6(t *testing.T) {
|
||||
fw := NewFirewall(l, time.Second, time.Minute, time.Hour, c.Certificate)
|
||||
cp := cert.NewCAPool()
|
||||
require.NoError(t, fw.AddRule(true, firewall.ProtoAny, 1, 1, []string{}, "", "fd12::34/120", "", "", ""))
|
||||
require.NoError(t, fw.Drop(p.Key(), &p, true, &h, cp, nil))
|
||||
require.NoError(t, fw.Drop(p, true, &h, cp, nil))
|
||||
}
|
||||
|
||||
func TestFirewall_DropConntrackReload(t *testing.T) {
|
||||
@@ -702,12 +702,12 @@ func TestFirewall_DropConntrackReload(t *testing.T) {
|
||||
cp := cert.NewCAPool()
|
||||
|
||||
// Drop outbound
|
||||
assert.Equal(t, fw.Drop(p.Key(), &p, false, &h, cp, nil), ErrNoMatchingRule)
|
||||
assert.Equal(t, fw.Drop(p, false, &h, cp, nil), ErrNoMatchingRule)
|
||||
// Allow inbound
|
||||
resetConntrack(fw)
|
||||
require.NoError(t, fw.Drop(p.Key(), &p, true, &h, cp, nil))
|
||||
require.NoError(t, fw.Drop(p, true, &h, cp, nil))
|
||||
// Allow outbound because conntrack
|
||||
require.NoError(t, fw.Drop(p.Key(), &p, false, &h, cp, nil))
|
||||
require.NoError(t, fw.Drop(p, false, &h, cp, nil))
|
||||
|
||||
oldFw := fw
|
||||
fw = NewFirewall(l, time.Second, time.Minute, time.Hour, c.Certificate)
|
||||
@@ -716,7 +716,7 @@ func TestFirewall_DropConntrackReload(t *testing.T) {
|
||||
fw.rulesVersion = oldFw.rulesVersion + 1
|
||||
|
||||
// Allow outbound because conntrack and new rules allow port 10
|
||||
require.NoError(t, fw.Drop(p.Key(), &p, false, &h, cp, nil))
|
||||
require.NoError(t, fw.Drop(p, false, &h, cp, nil))
|
||||
|
||||
oldFw = fw
|
||||
fw = NewFirewall(l, time.Second, time.Minute, time.Hour, c.Certificate)
|
||||
@@ -725,7 +725,7 @@ func TestFirewall_DropConntrackReload(t *testing.T) {
|
||||
fw.rulesVersion = oldFw.rulesVersion + 1
|
||||
|
||||
// Drop outbound because conntrack doesn't match new ruleset
|
||||
assert.Equal(t, fw.Drop(p.Key(), &p, false, &h, cp, nil), ErrNoMatchingRule)
|
||||
assert.Equal(t, fw.Drop(p, false, &h, cp, nil), ErrNoMatchingRule)
|
||||
}
|
||||
|
||||
func TestFirewall_ICMPPortBehavior(t *testing.T) {
|
||||
@@ -770,12 +770,12 @@ func TestFirewall_ICMPPortBehavior(t *testing.T) {
|
||||
p.LocalPort = 0
|
||||
p.RemotePort = 0
|
||||
// Drop outbound
|
||||
assert.Equal(t, fw.Drop(p.Key(), p, false, &h, cp, nil), ErrNoMatchingRule)
|
||||
assert.Equal(t, fw.Drop(*p, false, &h, cp, nil), ErrNoMatchingRule)
|
||||
// Allow inbound
|
||||
resetConntrack(fw)
|
||||
require.NoError(t, fw.Drop(p.Key(), p, true, &h, cp, nil))
|
||||
require.NoError(t, fw.Drop(*p, true, &h, cp, nil))
|
||||
//now also allow outbound
|
||||
require.NoError(t, fw.Drop(p.Key(), p, false, &h, cp, nil))
|
||||
require.NoError(t, fw.Drop(*p, false, &h, cp, nil))
|
||||
})
|
||||
|
||||
t.Run("nonzero ports", func(t *testing.T) {
|
||||
@@ -783,12 +783,12 @@ func TestFirewall_ICMPPortBehavior(t *testing.T) {
|
||||
p.LocalPort = 0xabcd
|
||||
p.RemotePort = 0x1234
|
||||
// Drop outbound
|
||||
assert.Equal(t, fw.Drop(p.Key(), p, false, &h, cp, nil), ErrNoMatchingRule)
|
||||
assert.Equal(t, fw.Drop(*p, false, &h, cp, nil), ErrNoMatchingRule)
|
||||
// Allow inbound
|
||||
resetConntrack(fw)
|
||||
require.NoError(t, fw.Drop(p.Key(), p, true, &h, cp, nil))
|
||||
require.NoError(t, fw.Drop(*p, true, &h, cp, nil))
|
||||
//now also allow outbound
|
||||
require.NoError(t, fw.Drop(p.Key(), p, false, &h, cp, nil))
|
||||
require.NoError(t, fw.Drop(*p, false, &h, cp, nil))
|
||||
})
|
||||
})
|
||||
|
||||
@@ -800,12 +800,12 @@ func TestFirewall_ICMPPortBehavior(t *testing.T) {
|
||||
p.LocalPort = 0
|
||||
p.RemotePort = 0
|
||||
// Drop outbound
|
||||
assert.Equal(t, fw.Drop(p.Key(), p, false, &h, cp, nil), ErrNoMatchingRule)
|
||||
assert.Equal(t, fw.Drop(*p, false, &h, cp, nil), ErrNoMatchingRule)
|
||||
// Allow inbound
|
||||
resetConntrack(fw)
|
||||
assert.Equal(t, fw.Drop(p.Key(), p, true, &h, cp, nil), ErrNoMatchingRule)
|
||||
assert.Equal(t, fw.Drop(*p, true, &h, cp, nil), ErrNoMatchingRule)
|
||||
//now also allow outbound
|
||||
assert.Equal(t, fw.Drop(p.Key(), p, false, &h, cp, nil), ErrNoMatchingRule)
|
||||
assert.Equal(t, fw.Drop(*p, false, &h, cp, nil), ErrNoMatchingRule)
|
||||
})
|
||||
|
||||
t.Run("nonzero ports, still blocked", func(t *testing.T) {
|
||||
@@ -813,12 +813,12 @@ func TestFirewall_ICMPPortBehavior(t *testing.T) {
|
||||
p.LocalPort = 0xabcd
|
||||
p.RemotePort = 0x1234
|
||||
// Drop outbound
|
||||
assert.Equal(t, fw.Drop(p.Key(), p, false, &h, cp, nil), ErrNoMatchingRule)
|
||||
assert.Equal(t, fw.Drop(*p, false, &h, cp, nil), ErrNoMatchingRule)
|
||||
// Allow inbound
|
||||
resetConntrack(fw)
|
||||
assert.Equal(t, fw.Drop(p.Key(), p, true, &h, cp, nil), ErrNoMatchingRule)
|
||||
assert.Equal(t, fw.Drop(*p, true, &h, cp, nil), ErrNoMatchingRule)
|
||||
//now also allow outbound
|
||||
assert.Equal(t, fw.Drop(p.Key(), p, false, &h, cp, nil), ErrNoMatchingRule)
|
||||
assert.Equal(t, fw.Drop(*p, false, &h, cp, nil), ErrNoMatchingRule)
|
||||
})
|
||||
|
||||
t.Run("nonzero, matching ports, still blocked", func(t *testing.T) {
|
||||
@@ -826,12 +826,12 @@ func TestFirewall_ICMPPortBehavior(t *testing.T) {
|
||||
p.LocalPort = 80
|
||||
p.RemotePort = 80
|
||||
// Drop outbound
|
||||
assert.Equal(t, fw.Drop(p.Key(), p, false, &h, cp, nil), ErrNoMatchingRule)
|
||||
assert.Equal(t, fw.Drop(*p, false, &h, cp, nil), ErrNoMatchingRule)
|
||||
// Allow inbound
|
||||
resetConntrack(fw)
|
||||
assert.Equal(t, fw.Drop(p.Key(), p, true, &h, cp, nil), ErrNoMatchingRule)
|
||||
assert.Equal(t, fw.Drop(*p, true, &h, cp, nil), ErrNoMatchingRule)
|
||||
//now also allow outbound
|
||||
assert.Equal(t, fw.Drop(p.Key(), p, false, &h, cp, nil), ErrNoMatchingRule)
|
||||
assert.Equal(t, fw.Drop(*p, false, &h, cp, nil), ErrNoMatchingRule)
|
||||
})
|
||||
})
|
||||
t.Run("Any proto, any port", func(t *testing.T) {
|
||||
@@ -843,12 +843,12 @@ func TestFirewall_ICMPPortBehavior(t *testing.T) {
|
||||
p.LocalPort = 0
|
||||
p.RemotePort = 0
|
||||
// Drop outbound
|
||||
assert.Equal(t, fw.Drop(p.Key(), p, false, &h, cp, nil), ErrNoMatchingRule)
|
||||
assert.Equal(t, fw.Drop(*p, false, &h, cp, nil), ErrNoMatchingRule)
|
||||
// Allow inbound
|
||||
resetConntrack(fw)
|
||||
require.NoError(t, fw.Drop(p.Key(), p, true, &h, cp, nil))
|
||||
require.NoError(t, fw.Drop(*p, true, &h, cp, nil))
|
||||
//now also allow outbound
|
||||
require.NoError(t, fw.Drop(p.Key(), p, false, &h, cp, nil))
|
||||
require.NoError(t, fw.Drop(*p, false, &h, cp, nil))
|
||||
})
|
||||
|
||||
t.Run("nonzero ports, allowed", func(t *testing.T) {
|
||||
@@ -857,15 +857,15 @@ func TestFirewall_ICMPPortBehavior(t *testing.T) {
|
||||
p.LocalPort = 0xabcd
|
||||
p.RemotePort = 0x1234
|
||||
// Drop outbound
|
||||
assert.Equal(t, fw.Drop(p.Key(), p, false, &h, cp, nil), ErrNoMatchingRule)
|
||||
assert.Equal(t, fw.Drop(*p, false, &h, cp, nil), ErrNoMatchingRule)
|
||||
// Allow inbound
|
||||
resetConntrack(fw)
|
||||
require.NoError(t, fw.Drop(p.Key(), p, true, &h, cp, nil))
|
||||
require.NoError(t, fw.Drop(*p, true, &h, cp, nil))
|
||||
//now also allow outbound
|
||||
require.NoError(t, fw.Drop(p.Key(), p, false, &h, cp, nil))
|
||||
require.NoError(t, fw.Drop(*p, false, &h, cp, nil))
|
||||
//different ID is blocked
|
||||
p.RemotePort++
|
||||
require.Equal(t, fw.Drop(p.Key(), p, false, &h, cp, nil), ErrNoMatchingRule)
|
||||
require.Equal(t, fw.Drop(*p, false, &h, cp, nil), ErrNoMatchingRule)
|
||||
})
|
||||
})
|
||||
|
||||
@@ -913,7 +913,160 @@ func TestFirewall_DropIPSpoofing(t *testing.T) {
|
||||
Protocol: firewall.ProtoUDP,
|
||||
Fragment: false,
|
||||
}
|
||||
assert.Equal(t, fw.Drop(p.Key(), &p, true, &h1, cp, nil), ErrInvalidRemoteIP)
|
||||
assert.Equal(t, fw.Drop(p, true, &h1, cp, nil), ErrInvalidRemoteIP)
|
||||
}
|
||||
|
||||
func TestFirewall_ConntrackSourceSpoofingAcrossPeers(t *testing.T) {
|
||||
l := test.NewLoggerWithOutput(&bytes.Buffer{})
|
||||
|
||||
myVpnNetworksTable := new(bart.Lite)
|
||||
myVpnNetworksTable.Insert(netip.MustParsePrefix("192.0.2.1/24"))
|
||||
|
||||
owner := &dummyCert{
|
||||
name: "owner",
|
||||
networks: []netip.Prefix{netip.MustParsePrefix("192.0.2.1/24")},
|
||||
}
|
||||
|
||||
victim := &cert.CachedCertificate{
|
||||
Certificate: &dummyCert{
|
||||
name: "victim",
|
||||
networks: []netip.Prefix{netip.MustParsePrefix("192.0.2.2/24")},
|
||||
},
|
||||
}
|
||||
victimHI := HostInfo{
|
||||
ConnectionState: &ConnectionState{peerCert: victim},
|
||||
vpnAddrs: []netip.Addr{netip.MustParseAddr("192.0.2.2")},
|
||||
}
|
||||
victimHI.buildNetworks(myVpnNetworksTable, victim.Certificate)
|
||||
|
||||
attacker := &cert.CachedCertificate{
|
||||
Certificate: &dummyCert{
|
||||
name: "attacker",
|
||||
networks: []netip.Prefix{netip.MustParsePrefix("192.0.2.3/24")},
|
||||
},
|
||||
}
|
||||
attackerHI := HostInfo{
|
||||
ConnectionState: &ConnectionState{peerCert: attacker},
|
||||
vpnAddrs: []netip.Addr{netip.MustParseAddr("192.0.2.3")},
|
||||
}
|
||||
attackerHI.buildNetworks(myVpnNetworksTable, attacker.Certificate)
|
||||
|
||||
fw := NewFirewall(l, time.Second, time.Minute, time.Hour, owner)
|
||||
// Allow any inbound traffic that passes the cert / source-IP checks.
|
||||
require.NoError(t, fw.AddRule(true, firewall.ProtoAny, 0, 0, []string{"any"}, "", "", "", "", ""))
|
||||
cp := cert.NewCAPool()
|
||||
|
||||
flow := firewall.Packet{
|
||||
LocalAddr: netip.MustParseAddr("192.0.2.1"),
|
||||
RemoteAddr: netip.MustParseAddr("192.0.2.2"),
|
||||
LocalPort: 443,
|
||||
RemotePort: 55000,
|
||||
Protocol: firewall.ProtoUDP,
|
||||
}
|
||||
|
||||
require.NoError(t, fw.Drop(flow, true, &victimHI, cp, nil),
|
||||
"victim's own traffic from its own overlay IP must be allowed")
|
||||
|
||||
unseen := flow
|
||||
unseen.RemotePort = 55001
|
||||
assert.Equal(t, ErrInvalidRemoteIP, fw.Drop(unseen, true, &attackerHI, cp, nil),
|
||||
"sanity: attacker forging victim's source IP must be rejected when no conntrack entry exists")
|
||||
|
||||
got := fw.Drop(flow, true, &attackerHI, cp, nil)
|
||||
t.Logf("attacker replaying victim's 4-tuple: Drop returned %v (nil == packet ALLOWED == spoof succeeded)", got)
|
||||
assert.Equal(t, ErrInvalidRemoteIP, got,
|
||||
"SECURITY: attacker spoofed victim's overlay source IP (192.0.2.2) by reusing an existing conntrack 4-tuple; Drop returned %v instead of rejecting", got)
|
||||
}
|
||||
|
||||
// BenchmarkFirewallDropConntrackHit measures Drop on an already-established flow
|
||||
// (a conntrack hit). This is the fast path that the source-IP<->cert binding
|
||||
// reordering adds work to, so it quantifies the cost of moving the address checks
|
||||
// ahead of the conntrack lookup. Cases:
|
||||
// - simple: peer cert has one address, no unsafe networks (h.networks == nil),
|
||||
// so the remote-address check is a single netip.Addr compare.
|
||||
// - complex: peer cert has unsafe networks (h.networks populated), so the
|
||||
// remote-address check is a BART lookup.
|
||||
// - noCache/localCache: whether a per-batch ConntrackCache is supplied, which in
|
||||
// the original code let the fast path skip straight past the address checks.
|
||||
func BenchmarkFirewallDropConntrackHit(b *testing.B) {
|
||||
l := test.NewLoggerWithOutput(&bytes.Buffer{})
|
||||
|
||||
myVpnNetworksTable := new(bart.Lite)
|
||||
myVpnNetworksTable.Insert(netip.MustParsePrefix("192.0.2.1/24"))
|
||||
|
||||
owner := &dummyCert{
|
||||
name: "owner",
|
||||
networks: []netip.Prefix{netip.MustParsePrefix("192.0.2.1/24")},
|
||||
}
|
||||
|
||||
simpleCert := &cert.CachedCertificate{
|
||||
Certificate: &dummyCert{
|
||||
name: "simple",
|
||||
networks: []netip.Prefix{netip.MustParsePrefix("192.0.2.2/24")},
|
||||
},
|
||||
}
|
||||
simpleHost := &HostInfo{
|
||||
ConnectionState: &ConnectionState{peerCert: simpleCert},
|
||||
vpnAddrs: []netip.Addr{netip.MustParseAddr("192.0.2.2")},
|
||||
}
|
||||
simpleHost.buildNetworks(myVpnNetworksTable, simpleCert.Certificate)
|
||||
|
||||
complexCert := &cert.CachedCertificate{
|
||||
Certificate: &dummyCert{
|
||||
name: "complex",
|
||||
networks: []netip.Prefix{netip.MustParsePrefix("192.0.2.2/24")},
|
||||
unsafeNetworks: []netip.Prefix{netip.MustParsePrefix("198.51.100.0/24")},
|
||||
},
|
||||
}
|
||||
complexHost := &HostInfo{
|
||||
ConnectionState: &ConnectionState{peerCert: complexCert},
|
||||
vpnAddrs: []netip.Addr{netip.MustParseAddr("192.0.2.2")},
|
||||
}
|
||||
complexHost.buildNetworks(myVpnNetworksTable, complexCert.Certificate)
|
||||
|
||||
cp := cert.NewCAPool()
|
||||
|
||||
flow := firewall.Packet{
|
||||
LocalAddr: netip.MustParseAddr("192.0.2.1"),
|
||||
RemoteAddr: netip.MustParseAddr("192.0.2.2"),
|
||||
LocalPort: 443,
|
||||
RemotePort: 55000,
|
||||
Protocol: firewall.ProtoUDP,
|
||||
}
|
||||
|
||||
cases := []struct {
|
||||
name string
|
||||
host *HostInfo
|
||||
useCache bool
|
||||
}{
|
||||
{"simple/noCache", simpleHost, false},
|
||||
{"simple/localCache", simpleHost, true},
|
||||
{"complex/noCache", complexHost, false},
|
||||
{"complex/localCache", complexHost, true},
|
||||
}
|
||||
|
||||
for _, tc := range cases {
|
||||
b.Run(tc.name, func(b *testing.B) {
|
||||
fw := NewFirewall(l, time.Second, time.Minute, time.Hour, owner)
|
||||
require.NoError(b, fw.AddRule(true, firewall.ProtoAny, 0, 0, []string{"any"}, "", "", "", "", ""))
|
||||
|
||||
// Establish the conntrack entry so every benchmarked Drop is a hit.
|
||||
require.NoError(b, fw.Drop(flow, true, tc.host, cp, nil))
|
||||
|
||||
var cache firewall.ConntrackCache
|
||||
if tc.useCache {
|
||||
cache = firewall.ConntrackCache{}
|
||||
}
|
||||
|
||||
b.ReportAllocs()
|
||||
b.ResetTimer()
|
||||
for i := 0; i < b.N; i++ {
|
||||
if err := fw.Drop(flow, true, tc.host, cp, cache); err != nil {
|
||||
b.Fatal(err)
|
||||
}
|
||||
}
|
||||
})
|
||||
}
|
||||
}
|
||||
|
||||
func BenchmarkLookup(b *testing.B) {
|
||||
@@ -1029,6 +1182,75 @@ func Test_parsePort(t *testing.T) {
|
||||
require.NoError(t, err)
|
||||
}
|
||||
|
||||
// Test_parsePort_invalid covers inputs that must error. The named bug is
|
||||
// that int32(strconv.Atoi("4294967296")) truncates to 0 == firewall.PortAny,
|
||||
// silently turning a typo into a match-all-ports rule; the rest are
|
||||
// representative syntax/range probes.
|
||||
func Test_parsePort_invalid(t *testing.T) {
|
||||
tests := []struct {
|
||||
name string
|
||||
input string
|
||||
wantErrContains string
|
||||
}{
|
||||
// Numeric overflow (the named bug + boundary).
|
||||
{"named bug: 2^32 truncates to PortAny", "4294967296", "out of range"},
|
||||
{"just above max real port", "65536", "out of range"},
|
||||
|
||||
// Negatives route through the range branch and hit the empty-half
|
||||
// guard; included as defense in depth so a future refactor cannot
|
||||
// accidentally reach the int32 cast.
|
||||
{"negative", "-1", "could not be parsed"},
|
||||
|
||||
// Syntax probes.
|
||||
{"NUL between digits", "4\x002", "was not a number"},
|
||||
{"hex notation", "0x10", "was not a number"},
|
||||
{"scientific notation", "1e3", "was not a number"},
|
||||
{"leading whitespace", " 42", "was not a number"},
|
||||
{"fullwidth digits", "42", "was not a number"},
|
||||
|
||||
// Range branch.
|
||||
{"range upper out of range", "1-65536", "ending range out of range"},
|
||||
{"range lower out of range", "65536-65537", "beginning range out of range"},
|
||||
{"range with negative upper", "1--1", "ending range was not a number"},
|
||||
}
|
||||
|
||||
for _, tc := range tests {
|
||||
t.Run(tc.name, func(t *testing.T) {
|
||||
_, _, err := parsePort(tc.input)
|
||||
require.Error(t, err, "input %q must error", tc.input)
|
||||
require.ErrorContains(t, err, tc.wantErrContains)
|
||||
})
|
||||
}
|
||||
}
|
||||
|
||||
// Test_parsePort_valid_boundaries locks in success cases at 0, 1, and 65535
|
||||
// so a future refactor cannot regress the boundaries.
|
||||
func Test_parsePort_valid_boundaries(t *testing.T) {
|
||||
tests := []struct {
|
||||
name string
|
||||
input string
|
||||
wantStart int32
|
||||
wantEnd int32
|
||||
}{
|
||||
{"zero is PortAny", "0", 0, 0},
|
||||
{"min real port", "1", 1, 1},
|
||||
{"max real port", "65535", 65535, 65535},
|
||||
{"range zero to max forces end to zero", "0-65535", 0, 0},
|
||||
{"range max to max", "65535-65535", 65535, 65535},
|
||||
{"range one to max", "1-65535", 1, 65535},
|
||||
{"range with whitespace inside", " 1 - 2 ", 1, 2},
|
||||
}
|
||||
|
||||
for _, tc := range tests {
|
||||
t.Run(tc.name, func(t *testing.T) {
|
||||
s, e, err := parsePort(tc.input)
|
||||
require.NoError(t, err)
|
||||
assert.Equal(t, tc.wantStart, s, "start port")
|
||||
assert.Equal(t, tc.wantEnd, e, "end port")
|
||||
})
|
||||
}
|
||||
}
|
||||
|
||||
func TestNewFirewallFromConfig(t *testing.T) {
|
||||
l := test.NewLogger()
|
||||
// Test a bad rule definition
|
||||
@@ -1327,7 +1549,7 @@ func (c *testcase) Test(t *testing.T, fw *Firewall) {
|
||||
t.Helper()
|
||||
cp := cert.NewCAPool()
|
||||
resetConntrack(fw)
|
||||
err := fw.Drop(c.p.Key(), &c.p, true, c.h, cp, nil)
|
||||
err := fw.Drop(c.p, true, c.h, cp, nil)
|
||||
if c.err == nil {
|
||||
require.NoError(t, err, "failed to not drop remote address %s", c.p.RemoteAddr)
|
||||
} else {
|
||||
@@ -1519,6 +1741,6 @@ func (mf *mockFirewall) AddRule(incoming bool, proto uint8, startPort int32, end
|
||||
|
||||
func resetConntrack(fw *Firewall) {
|
||||
fw.Conntrack.Lock()
|
||||
fw.Conntrack.Conns = map[firewall.PacketKey]*conn{}
|
||||
fw.Conntrack.Conns = map[firewall.Packet]*conn{}
|
||||
fw.Conntrack.Unlock()
|
||||
}
|
||||
|
||||
@@ -1,6 +1,6 @@
|
||||
module github.com/slackhq/nebula
|
||||
|
||||
go 1.25.0
|
||||
go 1.26.0
|
||||
|
||||
require (
|
||||
dario.cat/mergo v1.0.2
|
||||
@@ -9,10 +9,10 @@ require (
|
||||
github.com/armon/go-radix v1.0.0
|
||||
github.com/cyberdelia/go-metrics-graphite v0.0.0-20161219230853-39f87cc3b432
|
||||
github.com/flynn/noise v1.1.0
|
||||
github.com/gaissmai/bart v0.26.1
|
||||
github.com/gaissmai/bart v0.28.0
|
||||
github.com/gogo/protobuf v1.3.2
|
||||
github.com/google/gopacket v1.1.19
|
||||
github.com/kardianos/service v1.2.4
|
||||
github.com/kardianos/service v1.3.0
|
||||
github.com/miekg/dns v1.1.72
|
||||
github.com/miekg/pkcs11 v1.1.2
|
||||
github.com/nbrownus/go-metrics-prometheus v0.0.0-20210712211119-974a6260965f
|
||||
@@ -24,15 +24,15 @@ require (
|
||||
github.com/vishvananda/netlink v1.3.1
|
||||
go.uber.org/goleak v1.3.0
|
||||
go.yaml.in/yaml/v3 v3.0.4
|
||||
golang.org/x/crypto v0.50.0
|
||||
golang.org/x/crypto v0.54.0
|
||||
golang.org/x/exp v0.0.0-20230725093048-515e97ebf090
|
||||
golang.org/x/net v0.53.0
|
||||
golang.org/x/sync v0.20.0
|
||||
golang.org/x/sys v0.43.0
|
||||
golang.org/x/term v0.42.0
|
||||
golang.org/x/net v0.57.0
|
||||
golang.org/x/sync v0.22.0
|
||||
golang.org/x/sys v0.47.0
|
||||
golang.org/x/term v0.45.0
|
||||
golang.zx2c4.com/wintun v0.0.0-20230126152724-0fa3db229ce2
|
||||
golang.zx2c4.com/wireguard v0.0.0-20230325221338-052af4a8072b
|
||||
golang.zx2c4.com/wireguard/windows v0.6.1
|
||||
golang.zx2c4.com/wireguard/windows v1.0.1
|
||||
google.golang.org/protobuf v1.36.11
|
||||
gopkg.in/yaml.v3 v3.0.1
|
||||
gvisor.dev/gvisor v0.0.0-20240423190808-9d7a357edefe
|
||||
@@ -43,7 +43,6 @@ require (
|
||||
github.com/cespare/xxhash/v2 v2.3.0 // indirect
|
||||
github.com/davecgh/go-spew v1.1.1 // indirect
|
||||
github.com/google/btree v1.1.2 // indirect
|
||||
github.com/guptarohit/asciigraph v0.9.0 // indirect
|
||||
github.com/munnerz/goautoneg v0.0.0-20191010083416-a7dc8b61c822 // indirect
|
||||
github.com/pmezard/go-difflib v1.0.0 // indirect
|
||||
github.com/prometheus/client_model v0.6.2 // indirect
|
||||
@@ -51,7 +50,7 @@ require (
|
||||
github.com/prometheus/procfs v0.16.1 // indirect
|
||||
github.com/vishvananda/netns v0.0.5 // indirect
|
||||
go.yaml.in/yaml/v2 v2.4.2 // indirect
|
||||
golang.org/x/mod v0.34.0 // indirect
|
||||
golang.org/x/mod v0.36.0 // indirect
|
||||
golang.org/x/time v0.5.0 // indirect
|
||||
golang.org/x/tools v0.43.0 // indirect
|
||||
golang.org/x/tools v0.45.0 // indirect
|
||||
)
|
||||
|
||||
@@ -26,8 +26,8 @@ github.com/davecgh/go-spew v1.1.1 h1:vj9j/u1bqnvCEfJOwUhtlOARqs3+rkHYY13jYWTU97c
|
||||
github.com/davecgh/go-spew v1.1.1/go.mod h1:J7Y8YcW2NihsgmVo/mv3lAwl/skON4iLHjSsI+c5H38=
|
||||
github.com/flynn/noise v1.1.0 h1:KjPQoQCEFdZDiP03phOvGi11+SVVhBG2wOWAorLsstg=
|
||||
github.com/flynn/noise v1.1.0/go.mod h1:xbMo+0i6+IGbYdJhF31t2eR1BIU0CYc12+BNAKwUTag=
|
||||
github.com/gaissmai/bart v0.26.1 h1:+w4rnLGNlA2GDVn382Tfe3jOsK5vOr5n4KmigJ9lbTo=
|
||||
github.com/gaissmai/bart v0.26.1/go.mod h1:GREWQfTLRWz/c5FTOsIw+KkscuFkIV5t8Rp7Nd1Td5c=
|
||||
github.com/gaissmai/bart v0.28.0 h1:89yZLo8NmyqD0RYgJ3QO9HhqqGGw+oWhf90cZm69Lko=
|
||||
github.com/gaissmai/bart v0.28.0/go.mod h1:GREWQfTLRWz/c5FTOsIw+KkscuFkIV5t8Rp7Nd1Td5c=
|
||||
github.com/go-kit/kit v0.8.0/go.mod h1:xBxKIO96dXMWWy0MnWVtmwkA9/13aqxPnvrjFYMA2as=
|
||||
github.com/go-kit/kit v0.9.0/go.mod h1:xBxKIO96dXMWWy0MnWVtmwkA9/13aqxPnvrjFYMA2as=
|
||||
github.com/go-kit/log v0.1.0/go.mod h1:zbhenjAZHb184qTLMA9ZjW7ThYL0H2mk7Q6pNt4vbaY=
|
||||
@@ -60,16 +60,14 @@ github.com/google/go-cmp v0.7.0/go.mod h1:pXiqmnSA92OHEEa9HXL2W4E7lf9JzCmGVUdgjX
|
||||
github.com/google/gofuzz v1.0.0/go.mod h1:dBl0BpW6vV/+mYPU4Po3pmUjxk6FQPldtuIdl/M65Eg=
|
||||
github.com/google/gopacket v1.1.19 h1:ves8RnFZPGiFnTS0uPQStjwru6uO6h+nlr9j6fL7kF8=
|
||||
github.com/google/gopacket v1.1.19/go.mod h1:iJ8V8n6KS+z2U1A8pUwu8bW5SyEMkXJB8Yo/Vo+TKTo=
|
||||
github.com/guptarohit/asciigraph v0.9.0 h1:MvCSRRVkT2XvU1IO6n92o7l7zqx1DiFaoszOUZQztbY=
|
||||
github.com/guptarohit/asciigraph v0.9.0/go.mod h1:dYl5wwK4gNsnFf9Zp+l06rFiDZ5YtXM6x7SRWZ3KGag=
|
||||
github.com/jpillora/backoff v1.0.0/go.mod h1:J/6gKK9jxlEcS3zixgDgUAsiuZ7yrSoa/FX5e0EB2j4=
|
||||
github.com/json-iterator/go v1.1.6/go.mod h1:+SdeFBvtyEkXs7REEP0seUULqWtbJapLOCVDaaPEHmU=
|
||||
github.com/json-iterator/go v1.1.10/go.mod h1:KdQUCv79m/52Kvf8AW2vK1V8akMuk1QjK/uOdHXbAo4=
|
||||
github.com/json-iterator/go v1.1.11/go.mod h1:KdQUCv79m/52Kvf8AW2vK1V8akMuk1QjK/uOdHXbAo4=
|
||||
github.com/julienschmidt/httprouter v1.2.0/go.mod h1:SYymIcj16QtmaHHD7aYtjjsJG7VTCxuUUipMqKk8s4w=
|
||||
github.com/julienschmidt/httprouter v1.3.0/go.mod h1:JR6WtHb+2LUe8TCKY3cZOxFyyO8IZAc4RVcycCCAKdM=
|
||||
github.com/kardianos/service v1.2.4 h1:XNlGtZOYNx2u91urOdg/Kfmc+gfmuIo1Dd3rEi2OgBk=
|
||||
github.com/kardianos/service v1.2.4/go.mod h1:E4V9ufUuY82F7Ztlu1eN9VXWIQxg8NoLQlmFe0MtrXc=
|
||||
github.com/kardianos/service v1.3.0 h1:/LGy+xPP2TM+GLTiCZ2di7cy0Jd/qrawlTUfqKYFdTI=
|
||||
github.com/kardianos/service v1.3.0/go.mod h1:E4V9ufUuY82F7Ztlu1eN9VXWIQxg8NoLQlmFe0MtrXc=
|
||||
github.com/kisielk/errcheck v1.5.0/go.mod h1:pFxgyoBC7bSaBwPgfKdkLd5X25qrDl4LWUI2bnpBCr8=
|
||||
github.com/kisielk/gotool v1.0.0/go.mod h1:XhKaO+MFFWcvkIS/tQcRk01m1F5IRFswLeQ+oQHNcck=
|
||||
github.com/klauspost/compress v1.18.0 h1:c/Cqfb0r+Yi+JtIEq73FWXVkRonBlf0CRNYc8Zttxdo=
|
||||
@@ -164,16 +162,16 @@ golang.org/x/crypto v0.0.0-20190308221718-c2843e01d9a2/go.mod h1:djNgcEr1/C05ACk
|
||||
golang.org/x/crypto v0.0.0-20191011191535-87dc89f01550/go.mod h1:yigFU9vqHzYiE8UmvKecakEJjdnWj3jj499lnFckfCI=
|
||||
golang.org/x/crypto v0.0.0-20200622213623-75b288015ac9/go.mod h1:LzIPMQfyMNhhGPhUkYOs5KpL4U8rLKemX1yGLhDgUto=
|
||||
golang.org/x/crypto v0.0.0-20210322153248-0c34fe9e7dc2/go.mod h1:T9bdIzuCu7OtxOm1hfPfRQxPLYneinmdGuTeoZ9dtd4=
|
||||
golang.org/x/crypto v0.50.0 h1:zO47/JPrL6vsNkINmLoo/PH1gcxpls50DNogFvB5ZGI=
|
||||
golang.org/x/crypto v0.50.0/go.mod h1:3muZ7vA7PBCE6xgPX7nkzzjiUq87kRItoJQM1Yo8S+Q=
|
||||
golang.org/x/crypto v0.54.0 h1:YLIA59K4fiNzHzjnZt2tUJQjQtUWfWbeHBqKtk3eScw=
|
||||
golang.org/x/crypto v0.54.0/go.mod h1:KWL8ny2AZdGR2cWmzeHrp2azQPGogOv+HeQaVEXC2dk=
|
||||
golang.org/x/exp v0.0.0-20230725093048-515e97ebf090 h1:Di6/M8l0O2lCLc6VVRWhgCiApHV8MnQurBnFSHsQtNY=
|
||||
golang.org/x/exp v0.0.0-20230725093048-515e97ebf090/go.mod h1:FXUEEKJgO7OQYeo8N01OfiKP8RXMtf6e8aTskBGqWdc=
|
||||
golang.org/x/lint v0.0.0-20200302205851-738671d3881b/go.mod h1:3xt1FjdF8hUf6vQPIChWIBhFzV8gjjsPE/fR3IyQdNY=
|
||||
golang.org/x/mod v0.1.1-0.20191105210325-c90efee705ee/go.mod h1:QqPTAvyqsEbceGzBzNggFXnrqF1CaUcvgkdR5Ot7KZg=
|
||||
golang.org/x/mod v0.2.0/go.mod h1:s0Qsj1ACt9ePp/hMypM3fl4fZqREWJwdYDEqhRiZZUA=
|
||||
golang.org/x/mod v0.3.0/go.mod h1:s0Qsj1ACt9ePp/hMypM3fl4fZqREWJwdYDEqhRiZZUA=
|
||||
golang.org/x/mod v0.34.0 h1:xIHgNUUnW6sYkcM5Jleh05DvLOtwc6RitGHbDk4akRI=
|
||||
golang.org/x/mod v0.34.0/go.mod h1:ykgH52iCZe79kzLLMhyCUzhMci+nQj+0XkbXpNYtVjY=
|
||||
golang.org/x/mod v0.36.0 h1:JJjpVx6myfUsUdAzZuOSTTmRE0PfZeNWzzvKrP7amb4=
|
||||
golang.org/x/mod v0.36.0/go.mod h1:moc6ELqsWcOw5Ef3xVprK5ul/MvtVvkIXLziUOICjUQ=
|
||||
golang.org/x/net v0.0.0-20180724234803-3673e40ba225/go.mod h1:mL1N/T3taQHkDXs73rZJwtUhF3w3ftmwwsq0BUmARs4=
|
||||
golang.org/x/net v0.0.0-20181114220301-adae6a3d119a/go.mod h1:mL1N/T3taQHkDXs73rZJwtUhF3w3ftmwwsq0BUmARs4=
|
||||
golang.org/x/net v0.0.0-20190108225652-1e06a53dbb7e/go.mod h1:mL1N/T3taQHkDXs73rZJwtUhF3w3ftmwwsq0BUmARs4=
|
||||
@@ -184,8 +182,8 @@ golang.org/x/net v0.0.0-20200226121028-0de0cce0169b/go.mod h1:z5CRVTTTmAJ677TzLL
|
||||
golang.org/x/net v0.0.0-20200625001655-4c5254603344/go.mod h1:/O7V0waA8r7cgGh81Ro3o1hOxt32SMVPicZroKQ2sZA=
|
||||
golang.org/x/net v0.0.0-20201021035429-f5854403a974/go.mod h1:sp8m0HH+o8qH0wwXwYZr8TS3Oi6o0r6Gce1SSxlDquU=
|
||||
golang.org/x/net v0.0.0-20210226172049-e18ecbb05110/go.mod h1:m0MpNAwzfU5UDzcl9v0D8zg8gWTRqZa9RBIspLL5mdg=
|
||||
golang.org/x/net v0.53.0 h1:d+qAbo5L0orcWAr0a9JweQpjXF19LMXJE8Ey7hwOdUA=
|
||||
golang.org/x/net v0.53.0/go.mod h1:JvMuJH7rrdiCfbeHoo3fCQU24Lf5JJwT9W3sJFulfgs=
|
||||
golang.org/x/net v0.57.0 h1:K5+3DljvIuDG9/Jv9rvyMywYNFCQ9RSUY6OOTTkT+tE=
|
||||
golang.org/x/net v0.57.0/go.mod h1:KpXc8iv+r3XplLAG/f7Jsf9RPszJzdR0f58q9vGOuEU=
|
||||
golang.org/x/oauth2 v0.0.0-20190226205417-e64efc72b421/go.mod h1:gOpvHmFTYa4IltrdGE7lF6nIHvwfUNPOp7c8zoXwtLw=
|
||||
golang.org/x/sync v0.0.0-20181108010431-42b317875d0f/go.mod h1:RxMgew5VJxzue5/jJTE5uejpjVlOe/izrB70Jof72aM=
|
||||
golang.org/x/sync v0.0.0-20181221193216-37e7f081c4d4/go.mod h1:RxMgew5VJxzue5/jJTE5uejpjVlOe/izrB70Jof72aM=
|
||||
@@ -193,8 +191,8 @@ golang.org/x/sync v0.0.0-20190423024810-112230192c58/go.mod h1:RxMgew5VJxzue5/jJ
|
||||
golang.org/x/sync v0.0.0-20190911185100-cd5d95a43a6e/go.mod h1:RxMgew5VJxzue5/jJTE5uejpjVlOe/izrB70Jof72aM=
|
||||
golang.org/x/sync v0.0.0-20201020160332-67f06af15bc9/go.mod h1:RxMgew5VJxzue5/jJTE5uejpjVlOe/izrB70Jof72aM=
|
||||
golang.org/x/sync v0.0.0-20201207232520-09787c993a3a/go.mod h1:RxMgew5VJxzue5/jJTE5uejpjVlOe/izrB70Jof72aM=
|
||||
golang.org/x/sync v0.20.0 h1:e0PTpb7pjO8GAtTs2dQ6jYa5BWYlMuX047Dco/pItO4=
|
||||
golang.org/x/sync v0.20.0/go.mod h1:9xrNwdLfx4jkKbNva9FpL6vEN7evnE43NNNJQ2LF3+0=
|
||||
golang.org/x/sync v0.22.0 h1:SZjpbeLmrCk4xhRSZFNZW5gFUeCeFgjekvI/+gfScek=
|
||||
golang.org/x/sync v0.22.0/go.mod h1:9xrNwdLfx4jkKbNva9FpL6vEN7evnE43NNNJQ2LF3+0=
|
||||
golang.org/x/sys v0.0.0-20180905080454-ebe1bf3edb33/go.mod h1:STP8DvDyc/dI5b8T5hshtkjS+E42TnysNCUPdjciGhY=
|
||||
golang.org/x/sys v0.0.0-20181116152217-5ac8a444bdc5/go.mod h1:STP8DvDyc/dI5b8T5hshtkjS+E42TnysNCUPdjciGhY=
|
||||
golang.org/x/sys v0.0.0-20190215142949-d0b11bdaac8a/go.mod h1:STP8DvDyc/dI5b8T5hshtkjS+E42TnysNCUPdjciGhY=
|
||||
@@ -210,11 +208,11 @@ golang.org/x/sys v0.0.0-20210124154548-22da62e12c0c/go.mod h1:h1NjWce9XRLGQEsW7w
|
||||
golang.org/x/sys v0.0.0-20210603081109-ebe580a85c40/go.mod h1:oPkhp1MJrh7nUepCBck5+mAzfO9JrbApNNgaTdGDITg=
|
||||
golang.org/x/sys v0.2.0/go.mod h1:oPkhp1MJrh7nUepCBck5+mAzfO9JrbApNNgaTdGDITg=
|
||||
golang.org/x/sys v0.10.0/go.mod h1:oPkhp1MJrh7nUepCBck5+mAzfO9JrbApNNgaTdGDITg=
|
||||
golang.org/x/sys v0.43.0 h1:Rlag2XtaFTxp19wS8MXlJwTvoh8ArU6ezoyFsMyCTNI=
|
||||
golang.org/x/sys v0.43.0/go.mod h1:4GL1E5IUh+htKOUEOaiffhrAeqysfVGipDYzABqnCmw=
|
||||
golang.org/x/sys v0.47.0 h1:o7XGOvZQCADBQQ4Y7VNq2dRWQR7JmOUW8Kxx4ZsNgWs=
|
||||
golang.org/x/sys v0.47.0/go.mod h1:4GL1E5IUh+htKOUEOaiffhrAeqysfVGipDYzABqnCmw=
|
||||
golang.org/x/term v0.0.0-20201126162022-7de9c90e9dd1/go.mod h1:bj7SfCRtBDWHUb9snDiAeCFNEtKQo2Wmx5Cou7ajbmo=
|
||||
golang.org/x/term v0.42.0 h1:UiKe+zDFmJobeJ5ggPwOshJIVt6/Ft0rcfrXZDLWAWY=
|
||||
golang.org/x/term v0.42.0/go.mod h1:Dq/D+snpsbazcBG5+F9Q1n2rXV8Ma+71xEjTRufARgY=
|
||||
golang.org/x/term v0.45.0 h1:NwWyBmoJCbfTHpxrWoZ9C6/VxOf7ic219I8xZZFdrf0=
|
||||
golang.org/x/term v0.45.0/go.mod h1:9aqxs0blBcrm/n0L9QW0aRVD+ktan8ssZromtqJC43w=
|
||||
golang.org/x/text v0.3.0/go.mod h1:NqM8EUOU14njkJ3fqMW+pc6Ldnwhi/IjpwHt7yyuwOQ=
|
||||
golang.org/x/text v0.3.2/go.mod h1:bEr9sfX3Q8Zfm5fL9x+3itogRgK3+ptLWKqgva+5dAk=
|
||||
golang.org/x/text v0.3.3/go.mod h1:5Zoc/QRtKVWzQhOtBMvqHzDpF6irO9z98xDceosuGiQ=
|
||||
@@ -225,8 +223,8 @@ golang.org/x/tools v0.0.0-20191119224855-298f0cb1881e/go.mod h1:b+2E5dAYhXwXZwtn
|
||||
golang.org/x/tools v0.0.0-20200130002326-2f3ba24bd6e7/go.mod h1:TB2adYChydJhpapKDTa4BR/hXlZSLoq2Wpct/0txZ28=
|
||||
golang.org/x/tools v0.0.0-20200619180055-7c47624df98f/go.mod h1:EkVYQZoAsY45+roYkvgYkIh4xh/qjgUK9TdY2XT94GE=
|
||||
golang.org/x/tools v0.0.0-20210106214847-113979e3529a/go.mod h1:emZCQorbCU4vsT4fOWvOPXz4eW1wZW4PmDk9uLelYpA=
|
||||
golang.org/x/tools v0.43.0 h1:12BdW9CeB3Z+J/I/wj34VMl8X+fEXBxVR90JeMX5E7s=
|
||||
golang.org/x/tools v0.43.0/go.mod h1:uHkMso649BX2cZK6+RpuIPXS3ho2hZo4FVwfoy1vIk0=
|
||||
golang.org/x/tools v0.45.0 h1:18qN3FAooORvApf5XjCXgsuayZOEtXf6JK18I3+ONa8=
|
||||
golang.org/x/tools v0.45.0/go.mod h1:LuUGqqaXcXMEFEruIVJVm5mgDD8vww/z/SR1gQ4uE/0=
|
||||
golang.org/x/xerrors v0.0.0-20190717185122-a985d3407aa7/go.mod h1:I/5z698sn9Ka8TeJc9MKroUUfqBBauWjQqLJ2OPfmY0=
|
||||
golang.org/x/xerrors v0.0.0-20191011141410-1b5146add898/go.mod h1:I/5z698sn9Ka8TeJc9MKroUUfqBBauWjQqLJ2OPfmY0=
|
||||
golang.org/x/xerrors v0.0.0-20191204190536-9bdfabe68543/go.mod h1:I/5z698sn9Ka8TeJc9MKroUUfqBBauWjQqLJ2OPfmY0=
|
||||
@@ -235,8 +233,8 @@ golang.zx2c4.com/wintun v0.0.0-20230126152724-0fa3db229ce2 h1:B82qJJgjvYKsXS9jeu
|
||||
golang.zx2c4.com/wintun v0.0.0-20230126152724-0fa3db229ce2/go.mod h1:deeaetjYA+DHMHg+sMSMI58GrEteJUUzzw7en6TJQcI=
|
||||
golang.zx2c4.com/wireguard v0.0.0-20230325221338-052af4a8072b h1:J1CaxgLerRR5lgx3wnr6L04cJFbWoceSK9JWBdglINo=
|
||||
golang.zx2c4.com/wireguard v0.0.0-20230325221338-052af4a8072b/go.mod h1:tqur9LnfstdR9ep2LaJT4lFUl0EjlHtge+gAjmsHUG4=
|
||||
golang.zx2c4.com/wireguard/windows v0.6.1 h1:XMaKojH1Hs/raMrmnir4n35nTvzvWj7NmSYzHn2F4qU=
|
||||
golang.zx2c4.com/wireguard/windows v0.6.1/go.mod h1:04aqInu5GYuTFvMuDw/rKBAF7mHrltW/3rekpfbbZDM=
|
||||
golang.zx2c4.com/wireguard/windows v1.0.1 h1:eOxiDVbywPC+ZQqvdCK7x+ZwWXKbYv50TtH8ysFIbw8=
|
||||
golang.zx2c4.com/wireguard/windows v1.0.1/go.mod h1:+fbT3FFdX4zzYDLwJh5+HPEcNN/3HyNdzhNSVsQM+zs=
|
||||
google.golang.org/appengine v1.4.0/go.mod h1:xpcJRLb0r/rnEns0DIKYYv+WjYCduHsrkT7/EB5XEv4=
|
||||
google.golang.org/protobuf v0.0.0-20200109180630-ec00e32a8dfd/go.mod h1:DFci5gLYBciE7Vtevhsrf46CRTquxDuWsQurQQe4oz8=
|
||||
google.golang.org/protobuf v0.0.0-20200221191635-4d8936d0db64/go.mod h1:kwYJMbMJ01Woi6D6+Kah6886xMZcty6N08ah7+eCXa0=
|
||||
|
||||
@@ -13,6 +13,7 @@ var (
|
||||
ErrUnknownSubtype = errors.New("unknown handshake subtype")
|
||||
ErrMissingContent = errors.New("expected handshake content but message was empty")
|
||||
ErrUnexpectedContent = errors.New("received unexpected handshake content")
|
||||
ErrInvalidRemoteIndex = errors.New("peer sent an invalid index in handshake payload")
|
||||
ErrIndexAllocation = errors.New("failed to allocate local index")
|
||||
ErrNoCredential = errors.New("no handshake credential available for cert version")
|
||||
ErrAsymmetricCipherKeys = errors.New("noise produced only one cipher key")
|
||||
|
||||
+10
-2
@@ -312,11 +312,19 @@ func (m *Machine) processPayload(msg []byte, flags msgFlags) error {
|
||||
|
||||
// Process payload
|
||||
if flags.expectsPayload {
|
||||
var remoteIndex uint32
|
||||
if m.result.Initiator {
|
||||
m.result.RemoteIndex = payload.ResponderIndex
|
||||
remoteIndex = payload.ResponderIndex
|
||||
} else {
|
||||
m.result.RemoteIndex = payload.InitiatorIndex
|
||||
remoteIndex = payload.InitiatorIndex
|
||||
}
|
||||
// The payload presence check above can be satisfied by Time alone, so a payload
|
||||
// could still carry a zero index here. We need to reject it.
|
||||
if remoteIndex == 0 {
|
||||
m.failed = true
|
||||
return ErrInvalidRemoteIndex
|
||||
}
|
||||
m.result.RemoteIndex = remoteIndex
|
||||
m.result.HandshakeTime = payload.Time
|
||||
m.payloadSet = true
|
||||
}
|
||||
|
||||
@@ -229,6 +229,24 @@ func TestMachineProcessPayload(t *testing.T) {
|
||||
require.ErrorIs(t, err, ErrUnexpectedContent)
|
||||
assert.True(t, m.Failed())
|
||||
})
|
||||
|
||||
t.Run("zero initiator index on responder is fatal", func(t *testing.T) {
|
||||
m := newTestMachine(t, cs, v, false, 100)
|
||||
bytes := MarshalPayload(nil, Payload{InitiatorIndex: 0, Time: 1})
|
||||
err := m.processPayload(bytes, msgFlags{expectsPayload: true})
|
||||
require.ErrorIs(t, err, ErrInvalidRemoteIndex)
|
||||
assert.True(t, m.Failed())
|
||||
assert.Zero(t, m.result.RemoteIndex)
|
||||
})
|
||||
|
||||
t.Run("zero responder index on initiator is fatal", func(t *testing.T) {
|
||||
m := newTestMachine(t, cs, v, true, 100)
|
||||
bytes := MarshalPayload(nil, Payload{InitiatorIndex: 100, ResponderIndex: 0, Time: 1})
|
||||
err := m.processPayload(bytes, msgFlags{expectsPayload: true})
|
||||
require.ErrorIs(t, err, ErrInvalidRemoteIndex)
|
||||
assert.True(t, m.Failed())
|
||||
assert.Zero(t, m.result.RemoteIndex)
|
||||
})
|
||||
}
|
||||
|
||||
// TestMachineRequireComplete checks the fail-on-incomplete-handshake path
|
||||
|
||||
+15
-15
@@ -83,6 +83,7 @@ type HandshakeHostInfo struct {
|
||||
initiatingVersionOverride cert.Version // Should we use a non-default cert version for this handshake?
|
||||
counter int64 // How many attempts have we made so far
|
||||
lastRemotes []netip.AddrPort // Remotes that we sent to during the previous attempt
|
||||
lastRelays []netip.Addr // Relays we attempted to use during the previous attempt
|
||||
packetStore []*cachedPacket // A set of packets to be transmitted once the handshake completes
|
||||
|
||||
hostinfo *HostInfo
|
||||
@@ -217,7 +218,6 @@ func (hm *HandshakeManager) handleOutbound(vpnIp netip.Addr, lighthouseTriggered
|
||||
fields := []any{
|
||||
"udpAddrs", hh.hostinfo.remotes.CopyAddrs(hm.mainHostMap.GetPreferredRanges()),
|
||||
"initiatorIndex", hh.hostinfo.localIndexId,
|
||||
"remoteIndex", hh.hostinfo.remoteIndexId,
|
||||
"durationNs", time.Since(hh.startTime).Nanoseconds(),
|
||||
}
|
||||
// hh.machine can be nil here if buildStage0Packet never succeeded
|
||||
@@ -295,7 +295,13 @@ func (hm *HandshakeManager) handleOutbound(vpnIp netip.Addr, lighthouseTriggered
|
||||
hm.messageMetrics.Tx(header.Handshake, hh.machine.Subtype(), 1)
|
||||
err := hm.outside.WriteTo(stage0, addr)
|
||||
if err != nil {
|
||||
hostinfo.logger(hm.l).Error("Failed to send handshake message",
|
||||
// These repeat every attempt, so match the success log below and only shout when the remotes changed
|
||||
level := slog.LevelDebug
|
||||
if remotesHaveChanged {
|
||||
level = slog.LevelError
|
||||
}
|
||||
|
||||
hostinfo.logger(hm.l).Log(context.Background(), level, "Failed to send handshake message",
|
||||
"udpAddr", addr,
|
||||
"initiatorIndex", hostinfo.localIndexId,
|
||||
"handshake", hsFields,
|
||||
@@ -323,7 +329,7 @@ func (hm *HandshakeManager) handleOutbound(vpnIp netip.Addr, lighthouseTriggered
|
||||
)
|
||||
}
|
||||
|
||||
hm.f.relayManager.StartRelays(hm.f, vpnIp, hostinfo, stage0)
|
||||
hm.f.relayManager.StartRelays(hm.f, vpnIp, hh, stage0)
|
||||
|
||||
// If a lighthouse triggered this attempt then we are still in the timer wheel and do not need to re-add
|
||||
if !lighthouseTriggered {
|
||||
@@ -430,14 +436,11 @@ func (hm *HandshakeManager) CheckAndComplete(hostinfo *HostInfo, handshakePacket
|
||||
// Check if we already have a tunnel with this vpn ip
|
||||
existingHostInfo, found := hm.mainHostMap.Hosts[hostinfo.vpnAddrs[0]]
|
||||
if found && existingHostInfo != nil {
|
||||
testHostInfo := existingHostInfo
|
||||
for testHostInfo != nil {
|
||||
// Is it just a delayed handshake packet?
|
||||
// Is it just a delayed handshake packet? Check every hostinfo we hold for this address.
|
||||
for _, testHostInfo := range hm.mainHostMap.unlockedGetHostList(hostinfo.vpnAddrs[0]) {
|
||||
if bytes.Equal(hostinfo.HandshakePacket[handshakePacket], testHostInfo.HandshakePacket[handshakePacket]) {
|
||||
return testHostInfo, ErrAlreadySeen
|
||||
}
|
||||
|
||||
testHostInfo = testHostInfo.next
|
||||
}
|
||||
|
||||
// Is this a newer handshake?
|
||||
@@ -465,7 +468,6 @@ func (hm *HandshakeManager) CheckAndComplete(hostinfo *HostInfo, handshakePacket
|
||||
// We have a collision, but this can happen since we can't control
|
||||
// the remote ID. Just log about the situation as a note.
|
||||
hostinfo.logger(hm.l).Info("New host shadows existing host remoteIndex",
|
||||
"remoteIndex", hostinfo.remoteIndexId,
|
||||
"collision", existingRemoteIndex.vpnAddrs,
|
||||
)
|
||||
}
|
||||
@@ -488,7 +490,6 @@ func (hm *HandshakeManager) Complete(hostinfo *HostInfo, f *Interface) {
|
||||
// We have a collision, but this can happen since we can't control
|
||||
// the remote ID. Just log about the situation as a note.
|
||||
hostinfo.logger(hm.l).Info("New host shadows existing host remoteIndex",
|
||||
"remoteIndex", hostinfo.remoteIndexId,
|
||||
"collision", existingRemoteIndex.vpnAddrs,
|
||||
)
|
||||
}
|
||||
@@ -534,7 +535,9 @@ func (hm *HandshakeManager) DeleteHostInfo(hostinfo *HostInfo) {
|
||||
|
||||
func (hm *HandshakeManager) unlockedDeleteHostInfo(hostinfo *HostInfo) {
|
||||
for _, addr := range hostinfo.vpnAddrs {
|
||||
delete(hm.vpnIps, addr)
|
||||
if cur, ok := hm.vpnIps[addr]; ok && cur.hostinfo == hostinfo {
|
||||
delete(hm.vpnIps, addr)
|
||||
}
|
||||
}
|
||||
|
||||
if len(hm.vpnIps) == 0 {
|
||||
@@ -798,7 +801,6 @@ func (hm *HandshakeManager) beginHandshake(via ViaSender, packet []byte, h *head
|
||||
}
|
||||
|
||||
hm.sendHandshakeResponse(via, response, hostinfo, false)
|
||||
f.connectionManager.AddTrafficWatch(hostinfo)
|
||||
hostinfo.remotes.RefreshFromHandshake(vpnAddrs)
|
||||
|
||||
// Don't wait for UpdateWorker
|
||||
@@ -965,7 +967,6 @@ func (hm *HandshakeManager) continueHandshake(via ViaSender, hh *HandshakeHostIn
|
||||
hostinfo.buildNetworks(f.myVpnNetworksTable, remoteCert.Certificate)
|
||||
|
||||
hm.Complete(hostinfo, f)
|
||||
f.connectionManager.AddTrafficWatch(hostinfo)
|
||||
|
||||
if len(hh.packetStore) > 0 {
|
||||
if f.l.Enabled(context.Background(), slog.LevelDebug) {
|
||||
@@ -974,7 +975,6 @@ func (hm *HandshakeManager) continueHandshake(via ViaSender, hh *HandshakeHostIn
|
||||
nb := make([]byte, 12, 12)
|
||||
out := make([]byte, mtu)
|
||||
for _, cp := range hh.packetStore {
|
||||
//todo use a sendbatcher
|
||||
cp.callback(cp.messageType, cp.messageSubType, hostinfo, cp.packet, nb, out)
|
||||
}
|
||||
f.cachedPacketMetrics.sent.Inc(int64(len(hh.packetStore)))
|
||||
@@ -1085,7 +1085,7 @@ func (hm *HandshakeManager) sendHandshakeResponse(via ViaSender, msg []byte, hos
|
||||
hostinfo.relayState.InsertRelayTo(via.relayHI.vpnAddrs[0])
|
||||
// We received a valid handshake on this relay, so make sure the relay
|
||||
// state reflects that, in case it had been marked Disestablished.
|
||||
via.relayHI.relayState.UpdateRelayForByIdxState(via.remoteIdx, Established)
|
||||
via.relayHI.relayState.UpdateRelayForByIdxState(via.relay.LocalIndex, Established)
|
||||
f.SendVia(via.relayHI, via.relay, msg, make([]byte, 12), make([]byte, mtu), false)
|
||||
f.l.Info("Handshake message sent", append(logFields, "relay", via.relayHI.vpnAddrs[0])...)
|
||||
}
|
||||
|
||||
+171
-119
@@ -56,11 +56,20 @@ type Relay struct {
|
||||
}
|
||||
|
||||
type HostMap struct {
|
||||
sync.RWMutex //Because we concurrently read and write to our maps
|
||||
Indexes map[uint32]*HostInfo
|
||||
Relays map[uint32]*HostInfo // Maps a Relay IDX to a Relay HostInfo object
|
||||
RemoteIndexes map[uint32]*HostInfo
|
||||
sync.RWMutex //Because we concurrently read and write to our maps
|
||||
Indexes map[uint32]*HostInfo
|
||||
Relays map[uint32]*HostInfo // Maps a Relay IDX to a Relay HostInfo object
|
||||
RemoteIndexes map[uint32]*HostInfo
|
||||
// Hosts maps a vpn address to its primary hostinfo, one entry per address we hold a tunnel
|
||||
// for. moreHosts only has an entry while an address is held by 2 or more hostinfos and stores
|
||||
// the full most-recent-first list; moreHosts[a][0] is always the same hostinfo as Hosts[a].
|
||||
// Each address gets its own independent list, so a hostinfo owning multiple addresses can
|
||||
// never corrupt another address's ordering the way the old shared next/prev chain could.
|
||||
// Entries in moreHosts are only ever written by unlockedSetHostsForAddr; Hosts is written
|
||||
// directly only in the single-hostinfo fast paths where moreHosts is known to have no entry,
|
||||
// and unlockedDeleteHostInfo swaps either map for a fresh one when it fully drains.
|
||||
Hosts map[netip.Addr]*HostInfo
|
||||
moreHosts map[netip.Addr][]*HostInfo
|
||||
preferredRanges atomic.Pointer[[]netip.Prefix]
|
||||
l *slog.Logger
|
||||
}
|
||||
@@ -138,9 +147,9 @@ func (rs *RelayState) InsertRelayTo(ip netip.Addr) {
|
||||
}
|
||||
|
||||
func (rs *RelayState) CopyRelayIps() []netip.Addr {
|
||||
ret := make([]netip.Addr, len(rs.relays))
|
||||
rs.RLock()
|
||||
defer rs.RUnlock()
|
||||
ret := make([]netip.Addr, len(rs.relays))
|
||||
copy(ret, rs.relays)
|
||||
return ret
|
||||
}
|
||||
@@ -229,7 +238,7 @@ const (
|
||||
)
|
||||
|
||||
type HostInfo struct {
|
||||
remote netip.AddrPort
|
||||
remote atomic.Pointer[netip.AddrPort]
|
||||
remotes *RemoteList
|
||||
promoteCounter atomic.Uint32
|
||||
ConnectionState *ConnectionState
|
||||
@@ -266,10 +275,6 @@ type HostInfo struct {
|
||||
lastRoam time.Time
|
||||
lastRoamRemote netip.AddrPort
|
||||
|
||||
// Used to track other hostinfos for this vpn ip since only 1 can be primary
|
||||
// Synchronised via hostmap lock and not the hostinfo lock.
|
||||
next, prev *HostInfo
|
||||
|
||||
//TODO: in, out, and others might benefit from being an atomic.Int32. We could collapse connectionManager pendingDeletion, relayUsed, and in/out into this 1 thing
|
||||
in, out, pendingDeletion atomic.Bool
|
||||
|
||||
@@ -282,7 +287,6 @@ type HostInfo struct {
|
||||
type ViaSender struct {
|
||||
UdpAddr netip.AddrPort
|
||||
relayHI *HostInfo // relayHI is the host info object of the relay
|
||||
remoteIdx uint32 // remoteIdx is the index included in the header of the received packet
|
||||
relay *Relay // relay contains the rest of the relay information, including the PeerIP of the host trying to communicate with us.
|
||||
IsRelayed bool // IsRelayed is true if the packet was sent through a relay
|
||||
}
|
||||
@@ -334,6 +338,7 @@ func newHostMap(l *slog.Logger) *HostMap {
|
||||
Relays: map[uint32]*HostInfo{},
|
||||
RemoteIndexes: map[uint32]*HostInfo{},
|
||||
Hosts: map[netip.Addr]*HostInfo{},
|
||||
moreHosts: map[netip.Addr][]*HostInfo{},
|
||||
l: l,
|
||||
}
|
||||
}
|
||||
@@ -382,13 +387,55 @@ func (hm *HostMap) EmitStats() {
|
||||
metrics.GetOrRegisterGauge("hostmap.main.relayIndexes", nil).Update(int64(relaysLen))
|
||||
}
|
||||
|
||||
// DeleteHostInfo will fully unlink the hostinfo and return true if it was the final hostinfo for this vpn ip
|
||||
// unlockedSetHostsForAddr stores the per-address hostinfo list (list[0] is the primary). An empty
|
||||
// list removes the address. This is the one place Hosts and moreHosts are written together, keep
|
||||
// it that way. Callers must hold the write lock.
|
||||
func (hm *HostMap) unlockedSetHostsForAddr(addr netip.Addr, list []*HostInfo) {
|
||||
if len(list) == 0 {
|
||||
delete(hm.Hosts, addr)
|
||||
delete(hm.moreHosts, addr)
|
||||
return
|
||||
}
|
||||
hm.Hosts[addr] = list[0]
|
||||
if len(list) > 1 {
|
||||
hm.moreHosts[addr] = list
|
||||
} else {
|
||||
delete(hm.moreHosts, addr)
|
||||
}
|
||||
}
|
||||
|
||||
// unlockedGetHostList returns every hostinfo holding addr, primary first, or nil if we have no
|
||||
// tunnel for addr. The common single-hostinfo case builds a fresh one element list, so keep this
|
||||
// off the packet hot path; the primary is a direct Hosts read. Callers must hold the lock (read
|
||||
// or write).
|
||||
func (hm *HostMap) unlockedGetHostList(addr netip.Addr) []*HostInfo {
|
||||
if list, ok := hm.moreHosts[addr]; ok {
|
||||
return list
|
||||
}
|
||||
if h, ok := hm.Hosts[addr]; ok {
|
||||
return []*HostInfo{h}
|
||||
}
|
||||
return nil
|
||||
}
|
||||
|
||||
// removeHostInfo returns list with hi removed (order preserved), or list unchanged if hi is
|
||||
// absent. It deletes in place: every mutator holds the hostmap write lock and no reader ever
|
||||
// retains a slice across a mutation (readers iterate under RLock), so there is no snapshot to
|
||||
// invalidate.
|
||||
func removeHostInfo(list []*HostInfo, hi *HostInfo) []*HostInfo {
|
||||
idx := slices.Index(list, hi)
|
||||
if idx < 0 {
|
||||
return list
|
||||
}
|
||||
return slices.Delete(list, idx, idx+1)
|
||||
}
|
||||
|
||||
// DeleteHostInfo will fully unlink the hostinfo and return true if no other hostinfo still holds
|
||||
// any of its vpn addrs, meaning we no longer have a tunnel to the peer
|
||||
func (hm *HostMap) DeleteHostInfo(hostinfo *HostInfo) bool {
|
||||
// Delete the host itself, ensuring it's not modified anymore
|
||||
hm.Lock()
|
||||
// If we have a previous or next hostinfo then we are not the last one for this vpn ip
|
||||
final := (hostinfo.next == nil && hostinfo.prev == nil)
|
||||
hm.unlockedDeleteHostInfo(hostinfo)
|
||||
final := hm.unlockedDeleteHostInfo(hostinfo)
|
||||
hm.Unlock()
|
||||
|
||||
return final
|
||||
@@ -400,85 +447,66 @@ func (hm *HostMap) MakePrimary(hostinfo *HostInfo) {
|
||||
hm.unlockedMakePrimary(hostinfo)
|
||||
}
|
||||
|
||||
func (hm *HostMap) unlockedMakePrimary(hostinfo *HostInfo) {
|
||||
// Get the current primary, if it exists
|
||||
oldHostinfo := hm.Hosts[hostinfo.vpnAddrs[0]]
|
||||
|
||||
// Every address in the hostinfo gets elevated to primary
|
||||
for _, vpnAddr := range hostinfo.vpnAddrs {
|
||||
//NOTE: It is possible that we leave a dangling hostinfo here but connection manager works on
|
||||
// indexes so it should be fine.
|
||||
hm.Hosts[vpnAddr] = hostinfo
|
||||
// unlockedMakePrimary reports whether hostinfo is (now) the primary for each of its addresses,
|
||||
// false only when it is no longer in the hostmap at all.
|
||||
func (hm *HostMap) unlockedMakePrimary(hostinfo *HostInfo) bool {
|
||||
// A hostinfo that is no longer in the hostmap must not be re-inserted here. Callers can race
|
||||
// tunnel teardown, deciding to promote under the read lock and only taking the write lock
|
||||
// after a delete fully unlinked the hostinfo (connection manager swapPrimary, AddRelay). Every
|
||||
// live hostinfo is registered in Indexes by unlockedAddHostInfo, so this is a membership test.
|
||||
if hm.Indexes[hostinfo.localIndexId] != hostinfo {
|
||||
return false
|
||||
}
|
||||
|
||||
// If we are already primary then we won't bother re-linking
|
||||
if oldHostinfo == hostinfo {
|
||||
return
|
||||
}
|
||||
|
||||
// Unlink this hostinfo
|
||||
if hostinfo.prev != nil {
|
||||
hostinfo.prev.next = hostinfo.next
|
||||
}
|
||||
if hostinfo.next != nil {
|
||||
hostinfo.next.prev = hostinfo.prev
|
||||
}
|
||||
|
||||
// If there wasn't a previous primary then clear out any links
|
||||
if oldHostinfo == nil {
|
||||
hostinfo.next = nil
|
||||
hostinfo.prev = nil
|
||||
return
|
||||
}
|
||||
|
||||
// Relink the hostinfo as primary
|
||||
hostinfo.next = oldHostinfo
|
||||
oldHostinfo.prev = hostinfo
|
||||
hostinfo.prev = nil
|
||||
}
|
||||
|
||||
func (hm *HostMap) unlockedDeleteHostInfo(hostinfo *HostInfo) {
|
||||
// Move hostinfo to the front (primary) of each of its address lists. The lists are
|
||||
// independent per address, so this can never leave a dangling entry the way promoting
|
||||
// against a single shared chain could.
|
||||
for _, addr := range hostinfo.vpnAddrs {
|
||||
h := hm.Hosts[addr]
|
||||
for h != nil {
|
||||
if h == hostinfo {
|
||||
hm.unlockedInnerDeleteHostInfo(h, addr)
|
||||
}
|
||||
h = h.next
|
||||
if hm.Hosts[addr] == hostinfo {
|
||||
// Already primary for this address, the list is already in the right order
|
||||
continue
|
||||
}
|
||||
list := removeHostInfo(hm.unlockedGetHostList(addr), hostinfo)
|
||||
list = append([]*HostInfo{hostinfo}, list...)
|
||||
hm.unlockedSetHostsForAddr(addr, list)
|
||||
}
|
||||
return true
|
||||
}
|
||||
|
||||
func (hm *HostMap) unlockedInnerDeleteHostInfo(hostinfo *HostInfo, addr netip.Addr) {
|
||||
primary, ok := hm.Hosts[addr]
|
||||
isLastHostinfo := hostinfo.next == nil && hostinfo.prev == nil
|
||||
if ok && primary == hostinfo {
|
||||
// The vpn addr pointer points to the same hostinfo as the local index id, we can remove it
|
||||
delete(hm.Hosts, addr)
|
||||
if len(hm.Hosts) == 0 {
|
||||
hm.Hosts = map[netip.Addr]*HostInfo{}
|
||||
}
|
||||
|
||||
if hostinfo.next != nil {
|
||||
// We had more than 1 hostinfo at this vpn addr, promote the next in the list to primary
|
||||
hm.Hosts[addr] = hostinfo.next
|
||||
// It is primary, there is no previous hostinfo now
|
||||
hostinfo.next.prev = nil
|
||||
}
|
||||
|
||||
} else {
|
||||
// Relink if we were in the middle of multiple hostinfos for this vpn addr
|
||||
if hostinfo.prev != nil {
|
||||
hostinfo.prev.next = hostinfo.next
|
||||
}
|
||||
|
||||
if hostinfo.next != nil {
|
||||
hostinfo.next.prev = hostinfo.prev
|
||||
// unlockedDeleteHostInfo removes hostinfo from every one of its address lists and from the index
|
||||
// maps. It returns true if this was the last hostinfo for all of its addresses (we no longer have
|
||||
// any tunnel to the peer), which the caller uses to decide whether to clear learned lighthouse
|
||||
// state and disestablish relays.
|
||||
func (hm *HostMap) unlockedDeleteHostInfo(hostinfo *HostInfo) bool {
|
||||
// Remove this hostinfo from each of its address lists. The lists are independent, so a
|
||||
// sibling is never promoted to an address it does not own and no other list is touched.
|
||||
final := true
|
||||
for _, addr := range hostinfo.vpnAddrs {
|
||||
if list, ok := hm.moreHosts[addr]; ok {
|
||||
list = removeHostInfo(list, hostinfo)
|
||||
hm.unlockedSetHostsForAddr(addr, list)
|
||||
if len(list) > 0 {
|
||||
final = false
|
||||
}
|
||||
} else if existing, ok := hm.Hosts[addr]; ok {
|
||||
if existing == hostinfo {
|
||||
// Common case, the only hostinfo for this address. moreHosts has no entry to clean up.
|
||||
delete(hm.Hosts, addr)
|
||||
} else {
|
||||
// We don't hold this address but another hostinfo does, we still have a tunnel to the peer
|
||||
final = false
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
hostinfo.next = nil
|
||||
hostinfo.prev = nil
|
||||
// Go maps never shrink their buckets, replace fully drained maps so a node that churned
|
||||
// through a large peer count gives the memory back. Same idiom as the index maps below.
|
||||
if len(hm.Hosts) == 0 {
|
||||
hm.Hosts = map[netip.Addr]*HostInfo{}
|
||||
}
|
||||
if len(hm.moreHosts) == 0 {
|
||||
hm.moreHosts = map[netip.Addr][]*HostInfo{}
|
||||
}
|
||||
|
||||
// The remote index uses index ids outside our control so lets make sure we are only removing
|
||||
// the remote index pointer here if it points to the hostinfo we are deleting
|
||||
@@ -502,7 +530,7 @@ func (hm *HostMap) unlockedInnerDeleteHostInfo(hostinfo *HostInfo, addr netip.Ad
|
||||
)
|
||||
}
|
||||
|
||||
if isLastHostinfo {
|
||||
if final {
|
||||
// I have lost connectivity to my peers. My relay tunnel is likely broken. Mark the next
|
||||
// hops as 'Requested' so that new relay tunnels are created in the future.
|
||||
hm.unlockedDisestablishVpnAddrRelayFor(hostinfo)
|
||||
@@ -511,6 +539,8 @@ func (hm *HostMap) unlockedInnerDeleteHostInfo(hostinfo *HostInfo, addr netip.Ad
|
||||
for _, localRelayIdx := range hostinfo.relayState.CopyRelayForIdxs() {
|
||||
delete(hm.Relays, localRelayIdx)
|
||||
}
|
||||
|
||||
return final
|
||||
}
|
||||
|
||||
func (hm *HostMap) QueryIndex(index uint32) *HostInfo {
|
||||
@@ -554,19 +584,30 @@ func (hm *HostMap) QueryVpnAddrsRelayFor(targetIps []netip.Addr, relayHostIp net
|
||||
hm.RLock()
|
||||
defer hm.RUnlock()
|
||||
|
||||
// This runs per relayed packet, so check the primary with a single map probe and only consult
|
||||
// moreHosts when the primary can't relay for us.
|
||||
h, ok := hm.Hosts[relayHostIp]
|
||||
if !ok {
|
||||
return nil, nil, errors.New("unable to find host")
|
||||
}
|
||||
|
||||
for h != nil {
|
||||
for _, targetIp := range targetIps {
|
||||
r, ok := h.relayState.QueryRelayForByIp(targetIp)
|
||||
if ok && r.State == Established {
|
||||
return h, r, nil
|
||||
for _, targetIp := range targetIps {
|
||||
r, ok := h.relayState.QueryRelayForByIp(targetIp)
|
||||
if ok && r.State == Established {
|
||||
return h, r, nil
|
||||
}
|
||||
}
|
||||
|
||||
if list, ok := hm.moreHosts[relayHostIp]; ok {
|
||||
// list[0] is the primary we already checked
|
||||
for _, h := range list[1:] {
|
||||
for _, targetIp := range targetIps {
|
||||
r, ok := h.relayState.QueryRelayForByIp(targetIp)
|
||||
if ok && r.State == Established {
|
||||
return h, r, nil
|
||||
}
|
||||
}
|
||||
}
|
||||
h = h.next
|
||||
}
|
||||
|
||||
return nil, nil, errors.New("unable to find host with relay")
|
||||
@@ -574,20 +615,14 @@ func (hm *HostMap) QueryVpnAddrsRelayFor(targetIps []netip.Addr, relayHostIp net
|
||||
|
||||
func (hm *HostMap) unlockedDisestablishVpnAddrRelayFor(hi *HostInfo) {
|
||||
for _, relayHostIp := range hi.relayState.CopyRelayIps() {
|
||||
if h, ok := hm.Hosts[relayHostIp]; ok {
|
||||
for h != nil {
|
||||
h.relayState.UpdateRelayForByIpState(hi.vpnAddrs[0], Disestablished)
|
||||
h = h.next
|
||||
}
|
||||
for _, h := range hm.unlockedGetHostList(relayHostIp) {
|
||||
h.relayState.UpdateRelayForByIpState(hi.vpnAddrs[0], Disestablished)
|
||||
}
|
||||
}
|
||||
for _, rs := range hi.relayState.CopyAllRelayFor() {
|
||||
if rs.Type == ForwardingType {
|
||||
if h, ok := hm.Hosts[rs.PeerAddr]; ok {
|
||||
for h != nil {
|
||||
h.relayState.UpdateRelayForByIpState(hi.vpnAddrs[0], Disestablished)
|
||||
h = h.next
|
||||
}
|
||||
for _, h := range hm.unlockedGetHostList(rs.PeerAddr) {
|
||||
h.relayState.UpdateRelayForByIpState(hi.vpnAddrs[0], Disestablished)
|
||||
}
|
||||
}
|
||||
}
|
||||
@@ -623,6 +658,11 @@ func (hm *HostMap) unlockedAddHostInfo(hostinfo *HostInfo, f *Interface) {
|
||||
hm.Indexes[hostinfo.localIndexId] = hostinfo
|
||||
hm.RemoteIndexes[hostinfo.remoteIndexId] = hostinfo
|
||||
|
||||
hostinfo.out.Store(true)
|
||||
if f.connectionManager != nil { // f.connectionManager is only nil in some unit tests
|
||||
f.connectionManager.trafficTimer.Add(hostinfo.localIndexId, f.connectionManager.checkInterval)
|
||||
}
|
||||
|
||||
if hm.l.Enabled(context.Background(), slog.LevelDebug) {
|
||||
hm.l.Debug("Hostmap vpnIp added",
|
||||
"hostMap", m{"vpnAddrs": hostinfo.vpnAddrs, "mapTotalSize": len(hm.Hosts),
|
||||
@@ -632,22 +672,27 @@ func (hm *HostMap) unlockedAddHostInfo(hostinfo *HostInfo, f *Interface) {
|
||||
}
|
||||
|
||||
func (hm *HostMap) unlockedInnerAddHostInfo(vpnAddr netip.Addr, hostinfo *HostInfo, f *Interface) {
|
||||
existing := hm.Hosts[vpnAddr]
|
||||
hm.Hosts[vpnAddr] = hostinfo
|
||||
|
||||
if existing != nil && existing != hostinfo {
|
||||
hostinfo.next = existing
|
||||
existing.prev = hostinfo
|
||||
existing, ok := hm.Hosts[vpnAddr]
|
||||
if !ok {
|
||||
// Common case, the first hostinfo for this address. moreHosts stays empty.
|
||||
hm.Hosts[vpnAddr] = hostinfo
|
||||
return
|
||||
}
|
||||
|
||||
i := 1
|
||||
check := hostinfo
|
||||
for check != nil {
|
||||
if i > MaxHostInfosPerVpnIp {
|
||||
hm.unlockedDeleteHostInfo(check)
|
||||
}
|
||||
check = check.next
|
||||
i++
|
||||
// The new hostinfo becomes the primary for this address. Remove any stale copy of it first so
|
||||
// we never hold a duplicate, then prepend.
|
||||
list, ok := hm.moreHosts[vpnAddr]
|
||||
if !ok {
|
||||
list = []*HostInfo{existing}
|
||||
}
|
||||
list = removeHostInfo(list, hostinfo)
|
||||
list = append([]*HostInfo{hostinfo}, list...)
|
||||
hm.unlockedSetHostsForAddr(vpnAddr, list)
|
||||
|
||||
// Enforce the per-address cap by fully retiring the oldest hostinfo once we exceed it.
|
||||
// Deleting it removes it from all of its addresses and the index maps, matching prior behavior.
|
||||
if len(list) > MaxHostInfosPerVpnIp {
|
||||
hm.unlockedDeleteHostInfo(list[len(list)-1])
|
||||
}
|
||||
}
|
||||
|
||||
@@ -679,7 +724,7 @@ func (hm *HostMap) ForEachIndex(f controlEach) {
|
||||
func (i *HostInfo) TryPromoteBest(preferredRanges []netip.Prefix, ifce *Interface) {
|
||||
c := i.promoteCounter.Add(1)
|
||||
if c%ifce.tryPromoteEvery.Load() == 0 {
|
||||
remote := i.remote
|
||||
remote := i.GetRemote()
|
||||
|
||||
// return early if we are already on a preferred remote
|
||||
if remote.IsValid() {
|
||||
@@ -721,11 +766,18 @@ func (i *HostInfo) GetCert() *cert.CachedCertificate {
|
||||
return nil
|
||||
}
|
||||
|
||||
func (i *HostInfo) GetRemote() netip.AddrPort {
|
||||
if p := i.remote.Load(); p != nil {
|
||||
return *p
|
||||
}
|
||||
return netip.AddrPort{}
|
||||
}
|
||||
|
||||
// TODO: Maybe use ViaSender here?
|
||||
func (i *HostInfo) SetRemote(remote netip.AddrPort) {
|
||||
// We copy here because we likely got this remote from a source that reuses the object
|
||||
if i.remote != remote {
|
||||
i.remote = remote
|
||||
if i.GetRemote() != remote {
|
||||
i.remote.Store(&remote)
|
||||
i.remotes.LearnRemote(i.vpnAddrs[0], remote)
|
||||
}
|
||||
}
|
||||
@@ -737,7 +789,7 @@ func (i *HostInfo) SetRemoteIfPreferred(hm *HostMap, via ViaSender) bool {
|
||||
return false
|
||||
}
|
||||
|
||||
currentRemote := i.remote
|
||||
currentRemote := i.GetRemote()
|
||||
if !currentRemote.IsValid() {
|
||||
i.SetRemote(via.UdpAddr)
|
||||
return true
|
||||
|
||||
+294
-137
@@ -2,6 +2,7 @@ package nebula
|
||||
|
||||
import (
|
||||
"net/netip"
|
||||
"slices"
|
||||
"testing"
|
||||
|
||||
"github.com/slackhq/nebula/config"
|
||||
@@ -10,78 +11,84 @@ import (
|
||||
"github.com/stretchr/testify/require"
|
||||
)
|
||||
|
||||
// chainIds returns the localIndexIds of the hostinfos holding addr, primary (index 0) first. It
|
||||
// also validates the Hosts/moreHosts sync contract on every call so a mutation that broke it
|
||||
// fails fast.
|
||||
func chainIds(t *testing.T, hm *HostMap, addr netip.Addr) []uint32 {
|
||||
t.Helper()
|
||||
assertHostMapInvariants(t, hm)
|
||||
list := hm.unlockedGetHostList(addr)
|
||||
ids := make([]uint32, len(list))
|
||||
for i, h := range list {
|
||||
ids[i] = h.localIndexId
|
||||
}
|
||||
return ids
|
||||
}
|
||||
|
||||
// assertHostMapInvariants checks the Hosts/moreHosts contract: moreHosts only holds addresses
|
||||
// with 2 or more hostinfos, its first entry is always the primary in Hosts, lists never hold
|
||||
// duplicates, every hostinfo in a list owns the address and is registered in Indexes, and every
|
||||
// indexed hostinfo is reachable through each of its addresses.
|
||||
func assertHostMapInvariants(t *testing.T, hm *HostMap) {
|
||||
t.Helper()
|
||||
for addr, list := range hm.moreHosts {
|
||||
require.GreaterOrEqualf(t, len(list), 2, "moreHosts[%s] must hold at least 2 hostinfos", addr)
|
||||
require.Samef(t, hm.Hosts[addr], list[0], "moreHosts[%s][0] must match the primary in Hosts", addr)
|
||||
seen := map[*HostInfo]bool{}
|
||||
for _, h := range list {
|
||||
require.NotNilf(t, h, "moreHosts[%s] must never hold a nil hostinfo", addr)
|
||||
require.Falsef(t, seen[h], "moreHosts[%s] holds hostinfo %d twice", addr, h.localIndexId)
|
||||
seen[h] = true
|
||||
require.Samef(t, hm.Indexes[h.localIndexId], h, "moreHosts[%s] member %d is not registered in Indexes", addr, h.localIndexId)
|
||||
require.Truef(t, slices.Contains(h.vpnAddrs, addr), "moreHosts[%s] member %d does not own the address", addr, h.localIndexId)
|
||||
}
|
||||
}
|
||||
for addr, h := range hm.Hosts {
|
||||
require.NotNilf(t, h, "Hosts[%s] must never be nil", addr)
|
||||
require.Samef(t, hm.Indexes[h.localIndexId], h, "Hosts[%s] primary %d is not registered in Indexes", addr, h.localIndexId)
|
||||
require.Truef(t, slices.Contains(h.vpnAddrs, addr), "Hosts[%s] primary (index %d) does not own the address", addr, h.localIndexId)
|
||||
}
|
||||
for idx, h := range hm.Indexes {
|
||||
require.Equalf(t, idx, h.localIndexId, "Indexes[%d] holds hostinfo with localIndexId %d", idx, h.localIndexId)
|
||||
for _, va := range h.vpnAddrs {
|
||||
require.Truef(t, slices.Contains(hm.unlockedGetHostList(va), h), "indexed hostinfo %d is missing from the list for %s", idx, va)
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
func TestHostMap_MakePrimary(t *testing.T) {
|
||||
l := test.NewLogger()
|
||||
hm := newHostMap(l)
|
||||
|
||||
f := &Interface{}
|
||||
a := netip.MustParseAddr("0.0.0.1")
|
||||
|
||||
h1 := &HostInfo{vpnAddrs: []netip.Addr{netip.MustParseAddr("0.0.0.1")}, localIndexId: 1}
|
||||
h2 := &HostInfo{vpnAddrs: []netip.Addr{netip.MustParseAddr("0.0.0.1")}, localIndexId: 2}
|
||||
h3 := &HostInfo{vpnAddrs: []netip.Addr{netip.MustParseAddr("0.0.0.1")}, localIndexId: 3}
|
||||
h4 := &HostInfo{vpnAddrs: []netip.Addr{netip.MustParseAddr("0.0.0.1")}, localIndexId: 4}
|
||||
h1 := &HostInfo{vpnAddrs: []netip.Addr{a}, localIndexId: 1}
|
||||
h2 := &HostInfo{vpnAddrs: []netip.Addr{a}, localIndexId: 2}
|
||||
h3 := &HostInfo{vpnAddrs: []netip.Addr{a}, localIndexId: 3}
|
||||
h4 := &HostInfo{vpnAddrs: []netip.Addr{a}, localIndexId: 4}
|
||||
|
||||
hm.unlockedAddHostInfo(h4, f)
|
||||
hm.unlockedAddHostInfo(h3, f)
|
||||
hm.unlockedAddHostInfo(h2, f)
|
||||
hm.unlockedAddHostInfo(h1, f)
|
||||
|
||||
// Make sure we go h1 -> h2 -> h3 -> h4
|
||||
prim := hm.QueryVpnAddr(netip.MustParseAddr("0.0.0.1"))
|
||||
assert.Equal(t, h1.localIndexId, prim.localIndexId)
|
||||
assert.Equal(t, h2.localIndexId, prim.next.localIndexId)
|
||||
assert.Nil(t, prim.prev)
|
||||
assert.Equal(t, h1.localIndexId, h2.prev.localIndexId)
|
||||
assert.Equal(t, h3.localIndexId, h2.next.localIndexId)
|
||||
assert.Equal(t, h2.localIndexId, h3.prev.localIndexId)
|
||||
assert.Equal(t, h4.localIndexId, h3.next.localIndexId)
|
||||
assert.Equal(t, h3.localIndexId, h4.prev.localIndexId)
|
||||
assert.Nil(t, h4.next)
|
||||
// Most-recently-added is primary: h1, h2, h3, h4
|
||||
assert.Equal(t, []uint32{1, 2, 3, 4}, chainIds(t, hm, a))
|
||||
assert.Equal(t, h1, hm.QueryVpnAddr(a))
|
||||
|
||||
// Swap h3/middle to primary
|
||||
// Swap the middle to primary: h3, h1, h2, h4
|
||||
hm.MakePrimary(h3)
|
||||
assert.Equal(t, []uint32{3, 1, 2, 4}, chainIds(t, hm, a))
|
||||
assert.Equal(t, h3, hm.QueryVpnAddr(a))
|
||||
|
||||
// Make sure we go h3 -> h1 -> h2 -> h4
|
||||
prim = hm.QueryVpnAddr(netip.MustParseAddr("0.0.0.1"))
|
||||
assert.Equal(t, h3.localIndexId, prim.localIndexId)
|
||||
assert.Equal(t, h1.localIndexId, prim.next.localIndexId)
|
||||
assert.Nil(t, prim.prev)
|
||||
assert.Equal(t, h2.localIndexId, h1.next.localIndexId)
|
||||
assert.Equal(t, h3.localIndexId, h1.prev.localIndexId)
|
||||
assert.Equal(t, h4.localIndexId, h2.next.localIndexId)
|
||||
assert.Equal(t, h1.localIndexId, h2.prev.localIndexId)
|
||||
assert.Equal(t, h2.localIndexId, h4.prev.localIndexId)
|
||||
assert.Nil(t, h4.next)
|
||||
|
||||
// Swap h4/tail to primary
|
||||
// Swap the tail to primary: h4, h3, h1, h2
|
||||
hm.MakePrimary(h4)
|
||||
assert.Equal(t, []uint32{4, 3, 1, 2}, chainIds(t, hm, a))
|
||||
|
||||
// Make sure we go h4 -> h3 -> h1 -> h2
|
||||
prim = hm.QueryVpnAddr(netip.MustParseAddr("0.0.0.1"))
|
||||
assert.Equal(t, h4.localIndexId, prim.localIndexId)
|
||||
assert.Equal(t, h3.localIndexId, prim.next.localIndexId)
|
||||
assert.Nil(t, prim.prev)
|
||||
assert.Equal(t, h1.localIndexId, h3.next.localIndexId)
|
||||
assert.Equal(t, h4.localIndexId, h3.prev.localIndexId)
|
||||
assert.Equal(t, h2.localIndexId, h1.next.localIndexId)
|
||||
assert.Equal(t, h3.localIndexId, h1.prev.localIndexId)
|
||||
assert.Equal(t, h1.localIndexId, h2.prev.localIndexId)
|
||||
assert.Nil(t, h2.next)
|
||||
|
||||
// Swap h4 again should be no-op
|
||||
// Swapping the current primary again is a no-op
|
||||
hm.MakePrimary(h4)
|
||||
|
||||
// Make sure we go h4 -> h3 -> h1 -> h2
|
||||
prim = hm.QueryVpnAddr(netip.MustParseAddr("0.0.0.1"))
|
||||
assert.Equal(t, h4.localIndexId, prim.localIndexId)
|
||||
assert.Equal(t, h3.localIndexId, prim.next.localIndexId)
|
||||
assert.Nil(t, prim.prev)
|
||||
assert.Equal(t, h1.localIndexId, h3.next.localIndexId)
|
||||
assert.Equal(t, h4.localIndexId, h3.prev.localIndexId)
|
||||
assert.Equal(t, h2.localIndexId, h1.next.localIndexId)
|
||||
assert.Equal(t, h3.localIndexId, h1.prev.localIndexId)
|
||||
assert.Equal(t, h1.localIndexId, h2.prev.localIndexId)
|
||||
assert.Nil(t, h2.next)
|
||||
assert.Equal(t, []uint32{4, 3, 1, 2}, chainIds(t, hm, a))
|
||||
}
|
||||
|
||||
func TestHostMap_DeleteHostInfo(t *testing.T) {
|
||||
@@ -89,13 +96,14 @@ func TestHostMap_DeleteHostInfo(t *testing.T) {
|
||||
hm := newHostMap(l)
|
||||
|
||||
f := &Interface{}
|
||||
a := netip.MustParseAddr("0.0.0.1")
|
||||
|
||||
h1 := &HostInfo{vpnAddrs: []netip.Addr{netip.MustParseAddr("0.0.0.1")}, localIndexId: 1}
|
||||
h2 := &HostInfo{vpnAddrs: []netip.Addr{netip.MustParseAddr("0.0.0.1")}, localIndexId: 2}
|
||||
h3 := &HostInfo{vpnAddrs: []netip.Addr{netip.MustParseAddr("0.0.0.1")}, localIndexId: 3}
|
||||
h4 := &HostInfo{vpnAddrs: []netip.Addr{netip.MustParseAddr("0.0.0.1")}, localIndexId: 4}
|
||||
h5 := &HostInfo{vpnAddrs: []netip.Addr{netip.MustParseAddr("0.0.0.1")}, localIndexId: 5}
|
||||
h6 := &HostInfo{vpnAddrs: []netip.Addr{netip.MustParseAddr("0.0.0.1")}, localIndexId: 6}
|
||||
h1 := &HostInfo{vpnAddrs: []netip.Addr{a}, localIndexId: 1}
|
||||
h2 := &HostInfo{vpnAddrs: []netip.Addr{a}, localIndexId: 2}
|
||||
h3 := &HostInfo{vpnAddrs: []netip.Addr{a}, localIndexId: 3}
|
||||
h4 := &HostInfo{vpnAddrs: []netip.Addr{a}, localIndexId: 4}
|
||||
h5 := &HostInfo{vpnAddrs: []netip.Addr{a}, localIndexId: 5}
|
||||
h6 := &HostInfo{vpnAddrs: []netip.Addr{a}, localIndexId: 6}
|
||||
|
||||
hm.unlockedAddHostInfo(h6, f)
|
||||
hm.unlockedAddHostInfo(h5, f)
|
||||
@@ -104,94 +112,243 @@ func TestHostMap_DeleteHostInfo(t *testing.T) {
|
||||
hm.unlockedAddHostInfo(h2, f)
|
||||
hm.unlockedAddHostInfo(h1, f)
|
||||
|
||||
// h6 should be deleted
|
||||
assert.Nil(t, h6.next)
|
||||
assert.Nil(t, h6.prev)
|
||||
h := hm.QueryIndex(h6.localIndexId)
|
||||
assert.Nil(t, h)
|
||||
// h6 is evicted by the MaxHostInfosPerVpnIp cap; the rest are newest-first.
|
||||
assert.Nil(t, hm.QueryIndex(h6.localIndexId))
|
||||
assert.Equal(t, []uint32{1, 2, 3, 4, 5}, chainIds(t, hm, a))
|
||||
|
||||
// Make sure we go h1 -> h2 -> h3 -> h4 -> h5
|
||||
prim := hm.QueryVpnAddr(netip.MustParseAddr("0.0.0.1"))
|
||||
assert.Equal(t, h1.localIndexId, prim.localIndexId)
|
||||
assert.Equal(t, h2.localIndexId, prim.next.localIndexId)
|
||||
assert.Nil(t, prim.prev)
|
||||
assert.Equal(t, h1.localIndexId, h2.prev.localIndexId)
|
||||
assert.Equal(t, h3.localIndexId, h2.next.localIndexId)
|
||||
assert.Equal(t, h2.localIndexId, h3.prev.localIndexId)
|
||||
assert.Equal(t, h4.localIndexId, h3.next.localIndexId)
|
||||
assert.Equal(t, h3.localIndexId, h4.prev.localIndexId)
|
||||
assert.Equal(t, h5.localIndexId, h4.next.localIndexId)
|
||||
assert.Equal(t, h4.localIndexId, h5.prev.localIndexId)
|
||||
assert.Nil(t, h5.next)
|
||||
// Delete primary; not final since siblings remain.
|
||||
assert.False(t, hm.DeleteHostInfo(h1))
|
||||
assert.Equal(t, []uint32{2, 3, 4, 5}, chainIds(t, hm, a))
|
||||
|
||||
// Delete primary
|
||||
hm.DeleteHostInfo(h1)
|
||||
assert.Nil(t, h1.prev)
|
||||
assert.Nil(t, h1.next)
|
||||
// Deleting the same hostinfo again must not report final while siblings remain and must not
|
||||
// disturb the list. The old chain code got this wrong: the first delete nil'd next/prev, so a
|
||||
// second delete looked final and wiped lighthouse state out from under the live sibling.
|
||||
assert.False(t, hm.DeleteHostInfo(h1))
|
||||
assert.Equal(t, []uint32{2, 3, 4, 5}, chainIds(t, hm, a))
|
||||
|
||||
// Make sure we go h2 -> h3 -> h4 -> h5
|
||||
prim = hm.QueryVpnAddr(netip.MustParseAddr("0.0.0.1"))
|
||||
assert.Equal(t, h2.localIndexId, prim.localIndexId)
|
||||
assert.Equal(t, h3.localIndexId, prim.next.localIndexId)
|
||||
assert.Nil(t, prim.prev)
|
||||
assert.Equal(t, h3.localIndexId, h2.next.localIndexId)
|
||||
assert.Equal(t, h2.localIndexId, h3.prev.localIndexId)
|
||||
assert.Equal(t, h4.localIndexId, h3.next.localIndexId)
|
||||
assert.Equal(t, h3.localIndexId, h4.prev.localIndexId)
|
||||
assert.Equal(t, h5.localIndexId, h4.next.localIndexId)
|
||||
assert.Equal(t, h4.localIndexId, h5.prev.localIndexId)
|
||||
assert.Nil(t, h5.next)
|
||||
// Delete a middle node.
|
||||
assert.False(t, hm.DeleteHostInfo(h3))
|
||||
assert.Equal(t, []uint32{2, 4, 5}, chainIds(t, hm, a))
|
||||
|
||||
// Delete in the middle
|
||||
hm.DeleteHostInfo(h3)
|
||||
assert.Nil(t, h3.prev)
|
||||
assert.Nil(t, h3.next)
|
||||
// Delete the tail.
|
||||
assert.False(t, hm.DeleteHostInfo(h5))
|
||||
assert.Equal(t, []uint32{2, 4}, chainIds(t, hm, a))
|
||||
|
||||
// Make sure we go h2 -> h4 -> h5
|
||||
prim = hm.QueryVpnAddr(netip.MustParseAddr("0.0.0.1"))
|
||||
assert.Equal(t, h2.localIndexId, prim.localIndexId)
|
||||
assert.Equal(t, h4.localIndexId, prim.next.localIndexId)
|
||||
assert.Nil(t, prim.prev)
|
||||
assert.Equal(t, h4.localIndexId, h2.next.localIndexId)
|
||||
assert.Equal(t, h2.localIndexId, h4.prev.localIndexId)
|
||||
assert.Equal(t, h5.localIndexId, h4.next.localIndexId)
|
||||
assert.Equal(t, h4.localIndexId, h5.prev.localIndexId)
|
||||
assert.Nil(t, h5.next)
|
||||
// Delete the head; h4 remains and becomes primary.
|
||||
assert.False(t, hm.DeleteHostInfo(h2))
|
||||
assert.Equal(t, []uint32{4}, chainIds(t, hm, a))
|
||||
assert.Equal(t, h4, hm.QueryVpnAddr(a))
|
||||
|
||||
// Delete the tail
|
||||
hm.DeleteHostInfo(h5)
|
||||
assert.Nil(t, h5.prev)
|
||||
assert.Nil(t, h5.next)
|
||||
// Delete the only remaining item; final is true and the address is gone.
|
||||
assert.True(t, hm.DeleteHostInfo(h4))
|
||||
assert.Empty(t, chainIds(t, hm, a))
|
||||
assert.Nil(t, hm.QueryVpnAddr(a))
|
||||
|
||||
// Make sure we go h2 -> h4
|
||||
prim = hm.QueryVpnAddr(netip.MustParseAddr("0.0.0.1"))
|
||||
assert.Equal(t, h2.localIndexId, prim.localIndexId)
|
||||
assert.Equal(t, h4.localIndexId, prim.next.localIndexId)
|
||||
assert.Nil(t, prim.prev)
|
||||
assert.Equal(t, h4.localIndexId, h2.next.localIndexId)
|
||||
assert.Equal(t, h2.localIndexId, h4.prev.localIndexId)
|
||||
assert.Nil(t, h4.next)
|
||||
// Deleting an already-gone hostinfo is still final; nothing holds the address anymore.
|
||||
assert.True(t, hm.DeleteHostInfo(h4))
|
||||
assert.Empty(t, chainIds(t, hm, a))
|
||||
}
|
||||
|
||||
// Delete the head
|
||||
hm.DeleteHostInfo(h2)
|
||||
assert.Nil(t, h2.prev)
|
||||
assert.Nil(t, h2.next)
|
||||
// TestHostMap_MakePrimary_DeletedHostInfo covers promoting a hostinfo that lost a race with
|
||||
// tunnel teardown: swapPrimary and AddRelay decide to promote while holding a stale pointer and
|
||||
// only take the write lock after a delete fully unlinked the hostinfo. MakePrimary must be a
|
||||
// no-op, not a resurrection that installs an unmanaged primary.
|
||||
func TestHostMap_MakePrimary_DeletedHostInfo(t *testing.T) {
|
||||
l := test.NewLogger()
|
||||
hm := newHostMap(l)
|
||||
f := &Interface{}
|
||||
a := netip.MustParseAddr("0.0.0.1")
|
||||
|
||||
// Make sure we only have h4
|
||||
prim = hm.QueryVpnAddr(netip.MustParseAddr("0.0.0.1"))
|
||||
assert.Equal(t, h4.localIndexId, prim.localIndexId)
|
||||
assert.Nil(t, prim.prev)
|
||||
assert.Nil(t, prim.next)
|
||||
assert.Nil(t, h4.next)
|
||||
h1 := &HostInfo{vpnAddrs: []netip.Addr{a}, localIndexId: 1}
|
||||
h2 := &HostInfo{vpnAddrs: []netip.Addr{a}, localIndexId: 2}
|
||||
hm.unlockedAddHostInfo(h1, f)
|
||||
hm.unlockedAddHostInfo(h2, f)
|
||||
|
||||
// Delete the only item
|
||||
hm.DeleteHostInfo(h4)
|
||||
assert.Nil(t, h4.prev)
|
||||
assert.Nil(t, h4.next)
|
||||
// h1 is fully deleted while another goroutine still holds a pointer to it.
|
||||
assert.False(t, hm.DeleteHostInfo(h1))
|
||||
assert.Equal(t, []uint32{2}, chainIds(t, hm, a))
|
||||
|
||||
// Make sure we have nil
|
||||
prim = hm.QueryVpnAddr(netip.MustParseAddr("0.0.0.1"))
|
||||
assert.Nil(t, prim)
|
||||
// The stale promote must not bring it back.
|
||||
hm.MakePrimary(h1)
|
||||
assert.Equal(t, []uint32{2}, chainIds(t, hm, a))
|
||||
assert.Equal(t, h2, hm.QueryVpnAddr(a))
|
||||
assert.Nil(t, hm.QueryIndex(h1.localIndexId))
|
||||
}
|
||||
|
||||
// TestHostMap_QueryVpnAddrsRelayFor_NonPrimary makes sure a relay established on an older
|
||||
// hostinfo is still found after a newer tunnel without relay state takes primary for the same
|
||||
// address. The lookup checks the primary first and falls back to the rest of the list.
|
||||
func TestHostMap_QueryVpnAddrsRelayFor_NonPrimary(t *testing.T) {
|
||||
l := test.NewLogger()
|
||||
hm := newHostMap(l)
|
||||
f := &Interface{}
|
||||
relayAddr := netip.MustParseAddr("0.0.0.9")
|
||||
target := netip.MustParseAddr("0.0.0.1")
|
||||
|
||||
older := &HostInfo{
|
||||
vpnAddrs: []netip.Addr{relayAddr},
|
||||
localIndexId: 1,
|
||||
relayState: RelayState{
|
||||
relayForByAddr: map[netip.Addr]*Relay{},
|
||||
relayForByIdx: map[uint32]*Relay{},
|
||||
},
|
||||
}
|
||||
older.relayState.InsertRelay(target, 100, &Relay{Type: ForwardingType, State: Established, LocalIndex: 100, PeerAddr: target})
|
||||
hm.unlockedAddHostInfo(older, f)
|
||||
|
||||
// The relay is found on the primary.
|
||||
h, r, err := hm.QueryVpnAddrsRelayFor([]netip.Addr{target}, relayAddr)
|
||||
require.NoError(t, err)
|
||||
assert.Equal(t, older, h)
|
||||
assert.Equal(t, uint32(100), r.LocalIndex)
|
||||
|
||||
// A re-handshake with no relay state takes primary; the established relay on the older
|
||||
// hostinfo must still be found through the fallback.
|
||||
newer := &HostInfo{vpnAddrs: []netip.Addr{relayAddr}, localIndexId: 2}
|
||||
hm.unlockedAddHostInfo(newer, f)
|
||||
assert.Equal(t, []uint32{2, 1}, chainIds(t, hm, relayAddr))
|
||||
|
||||
h, r, err = hm.QueryVpnAddrsRelayFor([]netip.Addr{target}, relayAddr)
|
||||
require.NoError(t, err)
|
||||
assert.Equal(t, older, h)
|
||||
assert.Equal(t, uint32(100), r.LocalIndex)
|
||||
|
||||
// No hostinfo at all is a plain miss.
|
||||
_, _, err = hm.QueryVpnAddrsRelayFor([]netip.Addr{target}, netip.MustParseAddr("0.0.0.42"))
|
||||
require.Error(t, err)
|
||||
}
|
||||
|
||||
// TestHostMap_DeleteHostInfo_MultipleVpnAddrs exercises the case where a hostinfo carries more than one
|
||||
// vpnAddr and shares its next/prev chain with a live sibling. Deleting the head must not corrupt the
|
||||
// sibling: every address the sibling owns has to keep pointing at it. The pre-fix code unlinked the shared
|
||||
// chain once per vpnAddr, so on the first address it nil'd next/prev, and on the second address the node
|
||||
// looked already-detached: it dropped the map entry instead of promoting the sibling (and tripped the
|
||||
// isLastHostinfo relay teardown). See unlockedDeleteHostInfo.
|
||||
func TestHostMap_DeleteHostInfo_MultipleVpnAddrs(t *testing.T) {
|
||||
l := test.NewLogger()
|
||||
hm := newHostMap(l)
|
||||
|
||||
f := &Interface{}
|
||||
|
||||
a := netip.MustParseAddr("0.0.0.1")
|
||||
b := netip.MustParseAddr("0.0.0.2")
|
||||
|
||||
// Two tunnels for the same peer, each reachable at both a and b.
|
||||
other := &HostInfo{vpnAddrs: []netip.Addr{a, b}, localIndexId: 1}
|
||||
head := &HostInfo{vpnAddrs: []netip.Addr{a, b}, localIndexId: 2}
|
||||
|
||||
hm.unlockedAddHostInfo(other, f)
|
||||
hm.unlockedAddHostInfo(head, f)
|
||||
|
||||
// head is primary for both addresses, other is next in each address's list.
|
||||
assert.Equal(t, head, hm.QueryVpnAddr(a))
|
||||
assert.Equal(t, head, hm.QueryVpnAddr(b))
|
||||
assert.Equal(t, []uint32{2, 1}, chainIds(t, hm, a))
|
||||
assert.Equal(t, []uint32{2, 1}, chainIds(t, hm, b))
|
||||
|
||||
// Delete the head. other is still live, so it must become primary for BOTH addresses.
|
||||
assert.False(t, hm.DeleteHostInfo(head))
|
||||
assert.Equal(t, other, hm.QueryVpnAddr(a))
|
||||
assert.Equal(t, other, hm.QueryVpnAddr(b))
|
||||
assert.Equal(t, []uint32{1}, chainIds(t, hm, a))
|
||||
assert.Equal(t, []uint32{1}, chainIds(t, hm, b))
|
||||
|
||||
// head is fully removed from the index map.
|
||||
assert.Nil(t, hm.QueryIndex(head.localIndexId))
|
||||
}
|
||||
|
||||
// TestHostMap_DeleteHostInfo_DivergentVpnAddrs covers chained hostinfos for the same peer whose
|
||||
// vpnAddrs sets differ (a re-handshake cert added a second address). Deleting the superset node
|
||||
// must not promote a sibling to an address it does not own.
|
||||
func TestHostMap_DeleteHostInfo_DivergentVpnAddrs(t *testing.T) {
|
||||
l := test.NewLogger()
|
||||
hm := newHostMap(l)
|
||||
f := &Interface{}
|
||||
a := netip.MustParseAddr("0.0.0.1")
|
||||
b := netip.MustParseAddr("0.0.0.2")
|
||||
|
||||
// sub owns only a; super (a newer handshake) owns a and b.
|
||||
sub := &HostInfo{vpnAddrs: []netip.Addr{a}, localIndexId: 1}
|
||||
super := &HostInfo{vpnAddrs: []netip.Addr{a, b}, localIndexId: 2}
|
||||
hm.unlockedAddHostInfo(sub, f)
|
||||
hm.unlockedAddHostInfo(super, f)
|
||||
|
||||
assert.Equal(t, []uint32{2, 1}, chainIds(t, hm, a))
|
||||
assert.Equal(t, []uint32{2}, chainIds(t, hm, b))
|
||||
|
||||
// Delete super: a promotes to sub (which owns it); b has no remaining owner and must be
|
||||
// removed, not dangled at sub (which does not own b).
|
||||
assert.False(t, hm.DeleteHostInfo(super))
|
||||
assert.Equal(t, []uint32{1}, chainIds(t, hm, a))
|
||||
assert.Empty(t, chainIds(t, hm, b))
|
||||
assert.Equal(t, sub, hm.QueryVpnAddr(a))
|
||||
assert.Nil(t, hm.QueryVpnAddr(b))
|
||||
assert.Nil(t, hm.QueryIndex(super.localIndexId))
|
||||
|
||||
// Deleting sub cleans up fully.
|
||||
assert.True(t, hm.DeleteHostInfo(sub))
|
||||
assert.Nil(t, hm.QueryVpnAddr(a))
|
||||
assertHostMapInvariants(t, hm)
|
||||
}
|
||||
|
||||
// TestHostMap_AddDivergentOverlap covers a new hostinfo claiming addresses currently owned by two
|
||||
// DIFFERENT hostinfos. The old single shared next/prev chain overwrote a pointer and orphaned one
|
||||
// of them (in Indexes but unreachable via its address); independent per-address lists cannot.
|
||||
func TestHostMap_AddDivergentOverlap(t *testing.T) {
|
||||
l := test.NewLogger()
|
||||
hm := newHostMap(l)
|
||||
f := &Interface{}
|
||||
a := netip.MustParseAddr("0.0.0.1")
|
||||
b := netip.MustParseAddr("0.0.0.2")
|
||||
|
||||
hiA := &HostInfo{vpnAddrs: []netip.Addr{a}, localIndexId: 1}
|
||||
hiP := &HostInfo{vpnAddrs: []netip.Addr{b}, localIndexId: 2}
|
||||
hm.unlockedAddHostInfo(hiA, f)
|
||||
hm.unlockedAddHostInfo(hiP, f)
|
||||
|
||||
hiB := &HostInfo{vpnAddrs: []netip.Addr{a, b}, localIndexId: 3}
|
||||
hm.unlockedAddHostInfo(hiB, f)
|
||||
|
||||
assert.Equal(t, []uint32{3, 1}, chainIds(t, hm, a))
|
||||
assert.Equal(t, []uint32{3, 2}, chainIds(t, hm, b))
|
||||
// hiA is still reachable via its address (not orphaned) and still indexed.
|
||||
assert.Contains(t, chainIds(t, hm, a), hiA.localIndexId)
|
||||
assert.NotNil(t, hm.QueryIndex(hiA.localIndexId))
|
||||
}
|
||||
|
||||
// TestHostMap_MaxHostInfosPerVpnIp_MultipleVpnAddrs verifies the MaxHostInfosPerVpnIp overflow prune
|
||||
// (unlockedInnerAddHostInfo calls unlockedDeleteHostInfo on the oldest node once the chain is too long)
|
||||
// still behaves when hostinfos carry more than one vpnAddr. The pruned node is always the tail, so it is
|
||||
// primary for none of the addresses, and both address chains must stay consistent afterwards.
|
||||
func TestHostMap_MaxHostInfosPerVpnIp_MultipleVpnAddrs(t *testing.T) {
|
||||
l := test.NewLogger()
|
||||
hm := newHostMap(l)
|
||||
|
||||
f := &Interface{}
|
||||
|
||||
a := netip.MustParseAddr("0.0.0.1")
|
||||
b := netip.MustParseAddr("0.0.0.2")
|
||||
|
||||
// Add one more than the cap, newest last so it becomes head. Every hostinfo owns both a and b.
|
||||
hostinfos := make([]*HostInfo, 0, MaxHostInfosPerVpnIp+1)
|
||||
for i := 0; i <= MaxHostInfosPerVpnIp; i++ {
|
||||
hostinfos = append(hostinfos, &HostInfo{vpnAddrs: []netip.Addr{a, b}, localIndexId: uint32(i + 1)})
|
||||
}
|
||||
// Add oldest first (highest index in our slice) so the very first one added is the overflow victim.
|
||||
for i := len(hostinfos) - 1; i >= 0; i-- {
|
||||
hm.unlockedAddHostInfo(hostinfos[i], f)
|
||||
}
|
||||
|
||||
oldest := hostinfos[len(hostinfos)-1]
|
||||
|
||||
// The oldest hostinfo was pruned from both lists and the index map.
|
||||
assert.Nil(t, hm.QueryIndex(oldest.localIndexId))
|
||||
|
||||
// Both addresses hold exactly MaxHostInfosPerVpnIp survivors in the same order; oldest is absent.
|
||||
require.Len(t, chainIds(t, hm, a), MaxHostInfosPerVpnIp)
|
||||
assert.Equal(t, chainIds(t, hm, a), chainIds(t, hm, b), "both addresses must list the same survivors in the same order")
|
||||
assert.NotContains(t, chainIds(t, hm, a), oldest.localIndexId)
|
||||
assert.Equal(t, hm.QueryVpnAddr(a), hm.QueryVpnAddr(b))
|
||||
}
|
||||
|
||||
func TestHostMap_reload(t *testing.T) {
|
||||
|
||||
@@ -2,7 +2,6 @@ package nebula
|
||||
|
||||
import (
|
||||
"context"
|
||||
"io"
|
||||
"log/slog"
|
||||
"net/netip"
|
||||
|
||||
@@ -10,26 +9,12 @@ import (
|
||||
"github.com/slackhq/nebula/header"
|
||||
"github.com/slackhq/nebula/iputil"
|
||||
"github.com/slackhq/nebula/noiseutil"
|
||||
"github.com/slackhq/nebula/overlay/batch"
|
||||
"github.com/slackhq/nebula/overlay/tio"
|
||||
"github.com/slackhq/nebula/routing"
|
||||
)
|
||||
|
||||
func (f *Interface) consumeInsidePacket(pkt tio.Packet, fwPacket *firewall.Packet, nb []byte, sendBatch batch.TxBatcher, rejectBuf []byte, q int, localCache firewall.ConntrackCache) {
|
||||
// borrowed: pkt.Bytes is owned by the originating tio.Queue and is
|
||||
// only valid until the next Read on that queue. Every consumer below
|
||||
// (parse, self-forward, handshake cache, sendInsideMessage) reads it
|
||||
// synchronously; do not retain pkt outside this call. If a future
|
||||
// caller needs to keep the packet, use pkt.Clone() to detach it from
|
||||
// the borrow.
|
||||
//
|
||||
// pkt.Bytes is either one IP datagram (GSO zero) or a TSO/USO
|
||||
// superpacket. In both cases the L3+L4 headers at the start describe
|
||||
// the same 5-tuple every segment will share, so a single parse +
|
||||
// firewall check covers the whole superpacket.
|
||||
packet := pkt.Bytes
|
||||
var parsed batch.RxParsed
|
||||
if err := batch.ParsePacket(packet, false, &parsed); err != nil {
|
||||
func (f *Interface) consumeInsidePacket(packet []byte, fwPacket *firewall.Packet, nb, out []byte, q int, localCache firewall.ConntrackCache) {
|
||||
err := newPacket(packet, false, fwPacket)
|
||||
if err != nil {
|
||||
if f.l.Enabled(context.Background(), slog.LevelDebug) {
|
||||
f.l.Debug("Error while validating outbound packet",
|
||||
"packet", packet,
|
||||
@@ -39,8 +24,6 @@ func (f *Interface) consumeInsidePacket(pkt tio.Packet, fwPacket *firewall.Packe
|
||||
return
|
||||
}
|
||||
|
||||
parsed.Key.Hydrate(fwPacket)
|
||||
|
||||
// Ignore local broadcast packets
|
||||
if f.dropLocalBroadcast {
|
||||
if f.myBroadcastAddrsTable.Contains(fwPacket.RemoteAddr) {
|
||||
@@ -54,14 +37,7 @@ func (f *Interface) consumeInsidePacket(pkt tio.Packet, fwPacket *firewall.Packe
|
||||
// routes packets from the Nebula addr to the Nebula addr through the Nebula
|
||||
// TUN device.
|
||||
if immediatelyForwardToSelf {
|
||||
// Write copies into the kernel queue synchronously, so seg's lifetime ends at return.
|
||||
// A self-forwarded superpacket would be re-handed to the
|
||||
// kernel as one giant blob; segment first so the loopback
|
||||
// path sees one IP datagram per Write.
|
||||
err := tio.SegmentSuperpacket(pkt, func(seg []byte) error {
|
||||
_, werr := f.readers[q].Write(seg)
|
||||
return werr
|
||||
})
|
||||
_, err := f.readers[q].Write(packet)
|
||||
if err != nil {
|
||||
f.l.Error("Failed to forward to tun", "error", err)
|
||||
}
|
||||
@@ -77,23 +53,11 @@ func (f *Interface) consumeInsidePacket(pkt tio.Packet, fwPacket *firewall.Packe
|
||||
}
|
||||
|
||||
hostinfo, ready := f.getOrHandshakeConsiderRouting(fwPacket, func(hh *HandshakeHostInfo) {
|
||||
// borrowed: SegmentSuperpacket builds each segment in the kernel-supplied pkt
|
||||
// bytes underneath. cachePacket explicitly copies its argument (handshake_manager.go cachePacket),
|
||||
// so retaining segments past the loop is safe.
|
||||
err := tio.SegmentSuperpacket(pkt, func(seg []byte) error {
|
||||
hh.cachePacket(f.l, header.Message, 0, seg, f.sendMessageNow, f.cachedPacketMetrics)
|
||||
return nil
|
||||
})
|
||||
if err != nil && f.l.Enabled(context.Background(), slog.LevelDebug) {
|
||||
f.l.Debug("Failed to segment superpacket for handshake cache",
|
||||
"error", err,
|
||||
"vpnAddr", fwPacket.RemoteAddr,
|
||||
)
|
||||
}
|
||||
hh.cachePacket(f.l, header.Message, 0, packet, f.sendMessageNow, f.cachedPacketMetrics)
|
||||
})
|
||||
|
||||
if hostinfo == nil {
|
||||
f.rejectInside(packet, rejectBuf, q)
|
||||
f.rejectInside(packet, out, q)
|
||||
if f.l.Enabled(context.Background(), slog.LevelDebug) {
|
||||
f.l.Debug("dropping outbound packet, vpnAddr not in our vpn networks or in unsafe networks",
|
||||
"vpnAddr", fwPacket.RemoteAddr,
|
||||
@@ -107,11 +71,12 @@ func (f *Interface) consumeInsidePacket(pkt tio.Packet, fwPacket *firewall.Packe
|
||||
return
|
||||
}
|
||||
|
||||
dropReason := f.firewall.Drop(parsed.Key, fwPacket, false, hostinfo, f.pki.GetCAPool(), localCache)
|
||||
dropReason := f.firewall.Drop(*fwPacket, false, hostinfo, f.pki.GetCAPool(), localCache)
|
||||
if dropReason == nil {
|
||||
f.sendInsideMessage(hostinfo, pkt, nb, sendBatch, rejectBuf, q)
|
||||
f.sendNoMetrics(header.Message, 0, hostinfo.ConnectionState, hostinfo, netip.AddrPort{}, packet, nb, out, q)
|
||||
|
||||
} else {
|
||||
f.rejectInside(packet, rejectBuf, q)
|
||||
f.rejectInside(packet, out, q)
|
||||
if f.l.Enabled(context.Background(), slog.LevelDebug) {
|
||||
hostinfo.logger(f.l).Debug("dropping outbound packet",
|
||||
"fwPacket", fwPacket,
|
||||
@@ -121,151 +86,8 @@ func (f *Interface) consumeInsidePacket(pkt tio.Packet, fwPacket *firewall.Packe
|
||||
}
|
||||
}
|
||||
|
||||
func (f *Interface) sendInsideEncrypt(hostinfo *HostInfo, ci *ConnectionState, seg, scratch, nb []byte) []byte {
|
||||
if noiseutil.EncryptLockNeeded {
|
||||
ci.writeLock.Lock()
|
||||
}
|
||||
c := ci.messageCounter.Add(1)
|
||||
|
||||
out := header.Encode(scratch, header.Version, header.Message, 0, hostinfo.remoteIndexId, c)
|
||||
f.connectionManager.Out(hostinfo)
|
||||
|
||||
out, encErr := ci.eKey.EncryptDanger(out, out, seg, c, nb)
|
||||
if noiseutil.EncryptLockNeeded {
|
||||
ci.writeLock.Unlock()
|
||||
}
|
||||
if encErr != nil {
|
||||
hostinfo.logger(f.l).Error("Failed to encrypt outgoing packet",
|
||||
"error", encErr,
|
||||
"udpAddr", hostinfo.remote,
|
||||
"counter", c,
|
||||
)
|
||||
// Skip this segment; the rest of the superpacket can still
|
||||
// go out — TCP will retransmit anything we drop here.
|
||||
return nil
|
||||
}
|
||||
|
||||
return out
|
||||
}
|
||||
|
||||
// sendInsideMessage encrypts a firewall-approved inside packet (or every
|
||||
// segment of a TSO/USO superpacket) into the caller's batch slot for
|
||||
// later sendmmsg flush. Segmentation is fused with encryption here so the
|
||||
// kernel-supplied superpacket bytes never get written into a separate
|
||||
// scratch arena: SegmentSuperpacket builds each segment's plaintext in
|
||||
// segScratch[:segLen] in turn, and we encrypt directly into a fresh
|
||||
// SendBatch slot.
|
||||
func (f *Interface) sendInsideMessage(hostinfo *HostInfo, pkt tio.Packet, nb []byte, sendBatch batch.TxBatcher, rejectBuf []byte, q int) {
|
||||
ci := hostinfo.ConnectionState
|
||||
if ci.eKey == nil {
|
||||
return
|
||||
}
|
||||
|
||||
ecnEnabled := f.ecnEnabled.Load()
|
||||
if hostinfo.lastRebindCount != f.rebindCount {
|
||||
//NOTE: there is an update hole if a tunnel isn't used and exactly 256 rebinds occur before the tunnel is
|
||||
// finally used again. This tunnel would eventually be torn down and recreated if this action didn't help.
|
||||
f.lightHouse.QueryServer(hostinfo.vpnAddrs[0])
|
||||
hostinfo.lastRebindCount = f.rebindCount
|
||||
if f.l.Enabled(context.Background(), slog.LevelDebug) {
|
||||
hostinfo.logger(f.l).Debug("Lighthouse update triggered for punch due to rebind counter",
|
||||
"vpnAddrs", hostinfo.vpnAddrs,
|
||||
)
|
||||
}
|
||||
}
|
||||
|
||||
if !hostinfo.remote.IsValid() { //the relay path
|
||||
//first, find our relay hostinfo:
|
||||
var relayHostInfo *HostInfo
|
||||
var relay *Relay
|
||||
var err error
|
||||
for _, relayIP := range hostinfo.relayState.CopyRelayIps() {
|
||||
relayHostInfo, relay, err = f.hostMap.QueryVpnAddrsRelayFor(hostinfo.vpnAddrs, relayIP)
|
||||
if err != nil {
|
||||
hostinfo.relayState.DeleteRelay(relayIP)
|
||||
hostinfo.logger(f.l).Info("sendNoMetrics failed to find HostInfo",
|
||||
"relay", relayIP,
|
||||
"error", err,
|
||||
)
|
||||
continue
|
||||
}
|
||||
break
|
||||
}
|
||||
if relayHostInfo == nil || relay == nil {
|
||||
//failure already logged
|
||||
return
|
||||
}
|
||||
|
||||
err = tio.SegmentSuperpacket(pkt, func(seg []byte) error {
|
||||
//relay header + header + plaintext + AEAD tag (16 bytes for both AES-GCM and ChaCha20-Poly1305) + relay tag
|
||||
scratch := sendBatch.Reserve(header.Len + header.Len + len(seg) + 16 + 16)
|
||||
|
||||
innerPacket := f.sendInsideEncrypt(hostinfo, ci, seg, scratch[header.Len:], nb)
|
||||
if innerPacket == nil {
|
||||
return nil
|
||||
}
|
||||
|
||||
//now we need to do a relay-encrypt:
|
||||
toSend, err := f.prepareSendVia(relayHostInfo, relay, innerPacket, nb, scratch, true)
|
||||
if err != nil {
|
||||
//already logged
|
||||
return nil
|
||||
}
|
||||
|
||||
var ecn byte
|
||||
if ecnEnabled {
|
||||
ecn = innerECN(seg)
|
||||
}
|
||||
sendBatch.Commit(toSend, relayHostInfo.remote, ecn)
|
||||
return nil
|
||||
})
|
||||
if err != nil {
|
||||
hostinfo.logger(f.l).Error("Failed to segment superpacket for relay send", "error", err)
|
||||
}
|
||||
return
|
||||
}
|
||||
|
||||
err := tio.SegmentSuperpacket(pkt, func(seg []byte) error {
|
||||
// header + plaintext + AEAD tag (16 bytes for both AES-GCM and ChaCha20-Poly1305)
|
||||
scratch := sendBatch.Reserve(header.Len + len(seg) + 16)
|
||||
|
||||
out := f.sendInsideEncrypt(hostinfo, ci, seg, scratch, nb)
|
||||
if out == nil {
|
||||
return nil
|
||||
}
|
||||
|
||||
var ecn byte
|
||||
if ecnEnabled {
|
||||
ecn = innerECN(seg)
|
||||
}
|
||||
sendBatch.Commit(out, hostinfo.remote, ecn)
|
||||
return nil
|
||||
})
|
||||
if err != nil {
|
||||
hostinfo.logger(f.l).Error("Failed to segment superpacket for send",
|
||||
"error", err,
|
||||
)
|
||||
}
|
||||
}
|
||||
|
||||
// innerECN returns the 2-bit IP-level ECN codepoint of an inner IPv4 or IPv6
|
||||
// packet, or 0 if pkt is too short or its IP version is unrecognized. Used at
|
||||
// encap to copy the inner codepoint onto the outer carrier per RFC 6040.
|
||||
func innerECN(pkt []byte) byte {
|
||||
if len(pkt) < 2 {
|
||||
return 0
|
||||
}
|
||||
switch pkt[0] >> 4 {
|
||||
case 4:
|
||||
return pkt[1] & 0x03
|
||||
case 6:
|
||||
return (pkt[1] >> 4) & 0x03
|
||||
}
|
||||
return 0
|
||||
}
|
||||
|
||||
func (f *Interface) rejectInside(packet []byte, out []byte, q int) {
|
||||
if !f.firewall.InSendReject {
|
||||
if !f.firewall.OutboundSendReject {
|
||||
return
|
||||
}
|
||||
|
||||
@@ -281,7 +103,7 @@ func (f *Interface) rejectInside(packet []byte, out []byte, q int) {
|
||||
}
|
||||
|
||||
func (f *Interface) rejectOutside(packet []byte, ci *ConnectionState, hostinfo *HostInfo, nb, out []byte, q int) {
|
||||
if !f.firewall.OutSendReject {
|
||||
if !f.firewall.InboundSendReject {
|
||||
return
|
||||
}
|
||||
|
||||
@@ -394,16 +216,15 @@ func (f *Interface) getOrHandshakeConsiderRouting(fwPacket *firewall.Packet, cac
|
||||
}
|
||||
|
||||
func (f *Interface) sendMessageNow(t header.MessageType, st header.MessageSubType, hostinfo *HostInfo, p, nb, out []byte) {
|
||||
var parsed batch.RxParsed
|
||||
if err := batch.ParsePacket(p, false, &parsed); err != nil {
|
||||
fp := &firewall.Packet{}
|
||||
err := newPacket(p, false, fp)
|
||||
if err != nil {
|
||||
f.l.Warn("error while parsing outgoing packet for firewall check", "error", err)
|
||||
return
|
||||
}
|
||||
fp := &firewall.Packet{}
|
||||
parsed.Key.Hydrate(fp)
|
||||
|
||||
// check if packet is in outbound fw rules
|
||||
dropReason := f.firewall.Drop(parsed.Key, fp, false, hostinfo, f.pki.GetCAPool(), nil)
|
||||
dropReason := f.firewall.Drop(*fp, false, hostinfo, f.pki.GetCAPool(), nil)
|
||||
if dropReason != nil {
|
||||
if f.l.Enabled(context.Background(), slog.LevelDebug) {
|
||||
f.l.Debug("dropping cached packet",
|
||||
@@ -454,13 +275,21 @@ func (f *Interface) sendTo(t header.MessageType, st header.MessageSubType, ci *C
|
||||
f.sendNoMetrics(t, st, ci, hostinfo, remote, p, nb, out, 0)
|
||||
}
|
||||
|
||||
func (f *Interface) prepareSendVia(via *HostInfo,
|
||||
// SendVia sends a payload through a Relay tunnel. No authentication or encryption is done
|
||||
// to the payload for the ultimate target host, making this a useful method for sending
|
||||
// handshake messages to peers through relay tunnels.
|
||||
// via is the HostInfo through which the message is relayed.
|
||||
// ad is the plaintext data to authenticate, but not encrypt
|
||||
// nb is a buffer used to store the nonce value, re-used for performance reasons.
|
||||
// out is a buffer used to store the result of the Encrypt operation
|
||||
// q indicates which writer to use to send the packet.
|
||||
func (f *Interface) SendVia(via *HostInfo,
|
||||
relay *Relay,
|
||||
ad,
|
||||
nb,
|
||||
out []byte,
|
||||
nocopy bool,
|
||||
) ([]byte, error) {
|
||||
) {
|
||||
if noiseutil.EncryptLockNeeded {
|
||||
// NOTE: for goboring AESGCMTLS we need to lock because of the nonce check
|
||||
via.ConnectionState.writeLock.Lock()
|
||||
@@ -482,7 +311,7 @@ func (f *Interface) prepareSendVia(via *HostInfo,
|
||||
"headerLen", len(out),
|
||||
"cipherOverhead", via.ConnectionState.eKey.Overhead(),
|
||||
)
|
||||
return nil, io.ErrShortBuffer
|
||||
return
|
||||
}
|
||||
|
||||
// The header bytes are written to the 'out' slice; Grow the slice to hold the header and associated data payload.
|
||||
@@ -502,39 +331,20 @@ func (f *Interface) prepareSendVia(via *HostInfo,
|
||||
}
|
||||
if err != nil {
|
||||
via.logger(f.l).Info("Failed to EncryptDanger in sendVia", "error", err)
|
||||
return nil, err
|
||||
return
|
||||
}
|
||||
f.connectionManager.RelayUsed(relay.LocalIndex)
|
||||
return out, nil
|
||||
}
|
||||
|
||||
// SendVia sends a payload through a Relay tunnel. No authentication or encryption is done
|
||||
// to the payload for the ultimate target host, making this a useful method for sending
|
||||
// handshake messages to peers through relay tunnels.
|
||||
// via is the HostInfo through which the message is relayed.
|
||||
// ad is the plaintext data to authenticate, but not encrypt
|
||||
// nb is a buffer used to store the nonce value, re-used for performance reasons.
|
||||
// out is a buffer used to store the result of the Encrypt operation
|
||||
// q indicates which writer to use to send the packet.
|
||||
func (f *Interface) SendVia(via *HostInfo,
|
||||
relay *Relay,
|
||||
ad,
|
||||
nb,
|
||||
out []byte,
|
||||
nocopy bool,
|
||||
) {
|
||||
toSend, err := f.prepareSendVia(via, relay, ad, nb, out, nocopy)
|
||||
err = f.writers[0].WriteTo(toSend, via.remote)
|
||||
err = f.writers[0].WriteTo(out, via.GetRemote())
|
||||
if err != nil {
|
||||
via.logger(f.l).Info("Failed to WriteTo in sendVia", "error", err)
|
||||
}
|
||||
f.connectionManager.RelayUsed(relay.LocalIndex)
|
||||
}
|
||||
|
||||
func (f *Interface) sendNoMetrics(t header.MessageType, st header.MessageSubType, ci *ConnectionState, hostinfo *HostInfo, remote netip.AddrPort, p, nb, out []byte, q int) {
|
||||
if ci.eKey == nil {
|
||||
return
|
||||
}
|
||||
useRelay := !remote.IsValid() && !hostinfo.remote.IsValid()
|
||||
useRelay := !remote.IsValid() && !hostinfo.GetRemote().IsValid()
|
||||
fullOut := out
|
||||
|
||||
if useRelay {
|
||||
@@ -581,7 +391,6 @@ func (f *Interface) sendNoMetrics(t header.MessageType, st header.MessageSubType
|
||||
"error", err,
|
||||
"udpAddr", remote,
|
||||
"counter", c,
|
||||
"attemptedCounter", c,
|
||||
)
|
||||
return
|
||||
}
|
||||
@@ -594,12 +403,12 @@ func (f *Interface) sendNoMetrics(t header.MessageType, st header.MessageSubType
|
||||
"udpAddr", remote,
|
||||
)
|
||||
}
|
||||
} else if hostinfo.remote.IsValid() {
|
||||
err = f.writers[q].WriteTo(out, hostinfo.remote)
|
||||
} else if hr := hostinfo.GetRemote(); hr.IsValid() {
|
||||
err = f.writers[q].WriteTo(out, hr)
|
||||
if err != nil {
|
||||
hostinfo.logger(f.l).Error("Failed to write outgoing packet",
|
||||
"error", err,
|
||||
"udpAddr", remote,
|
||||
"udpAddr", hr,
|
||||
)
|
||||
}
|
||||
} else {
|
||||
|
||||
+89
-134
@@ -2,25 +2,25 @@ package nebula
|
||||
|
||||
import (
|
||||
"context"
|
||||
"crypto/fips140"
|
||||
"errors"
|
||||
"fmt"
|
||||
"io"
|
||||
"log/slog"
|
||||
"net/netip"
|
||||
"runtime"
|
||||
"slices"
|
||||
"sync"
|
||||
"sync/atomic"
|
||||
"time"
|
||||
|
||||
"github.com/gaissmai/bart"
|
||||
"github.com/rcrowley/go-metrics"
|
||||
"github.com/slackhq/nebula/util"
|
||||
|
||||
"github.com/slackhq/nebula/cert"
|
||||
"github.com/slackhq/nebula/config"
|
||||
"github.com/slackhq/nebula/firewall"
|
||||
"github.com/slackhq/nebula/header"
|
||||
"github.com/slackhq/nebula/overlay"
|
||||
"github.com/slackhq/nebula/overlay/batch"
|
||||
"github.com/slackhq/nebula/overlay/tio"
|
||||
"github.com/slackhq/nebula/udp"
|
||||
)
|
||||
|
||||
@@ -50,14 +50,7 @@ type InterfaceConfig struct {
|
||||
reQueryWait time.Duration
|
||||
|
||||
ConntrackCacheTimeout time.Duration
|
||||
|
||||
// CpuAffinity, when non-empty, names the CPUs each TUN reader goroutine
|
||||
// should pin to. Queue i pins to CpuAffinity[i % len(CpuAffinity)] —
|
||||
// shorter lists than `routines` cycle. Empty list keeps the default
|
||||
// pin-to-(i % NumCPU) behavior.
|
||||
CpuAffinity []int
|
||||
|
||||
l *slog.Logger
|
||||
l *slog.Logger
|
||||
}
|
||||
|
||||
type Interface struct {
|
||||
@@ -81,16 +74,7 @@ type Interface struct {
|
||||
routines int
|
||||
disconnectInvalid atomic.Bool
|
||||
closed atomic.Bool
|
||||
// cpuAffinity, when non-empty, names the CPUs each TUN reader goroutine
|
||||
// should pin to. Queue i pins to cpuAffinity[i % len(cpuAffinity)].
|
||||
// Empty falls back to the default pin-to-(i % NumCPU) behavior.
|
||||
cpuAffinity []int
|
||||
// ecnEnabled gates RFC 6040 underlay ECN propagation. When true,
|
||||
// inside.go copies the inner ECN onto the outer carrier on encap and
|
||||
// decryptToTun folds outer CE into the inner header on decap. Toggle
|
||||
// via tunnels.ecn (default true).
|
||||
ecnEnabled atomic.Bool
|
||||
relayManager *relayManager
|
||||
relayManager *relayManager
|
||||
|
||||
tryPromoteEvery atomic.Uint32
|
||||
reQueryEvery atomic.Uint32
|
||||
@@ -107,12 +91,8 @@ type Interface struct {
|
||||
|
||||
ctx context.Context
|
||||
writers []udp.Conn
|
||||
readers []tio.Queue
|
||||
// batchers is one per tun queue, wrapping readers[i].
|
||||
// decryptToTun sends plaintext into the batch.RxBatcher;
|
||||
// listenOut calls its Flush at the end of each UDP recvmmsg batch.
|
||||
batchers []batch.RxBatcher
|
||||
wg sync.WaitGroup
|
||||
readers []io.ReadWriteCloser
|
||||
wg sync.WaitGroup
|
||||
|
||||
// fatalErr holds the first unexpected reader error that caused shutdown.
|
||||
// nil means "no fatal error" (yet)
|
||||
@@ -210,8 +190,7 @@ func NewInterface(ctx context.Context, c *InterfaceConfig) (*Interface, error) {
|
||||
routines: c.routines,
|
||||
version: c.version,
|
||||
writers: make([]udp.Conn, c.routines),
|
||||
readers: make([]tio.Queue, c.routines),
|
||||
batchers: make([]batch.RxBatcher, c.routines),
|
||||
readers: make([]io.ReadWriteCloser, c.routines),
|
||||
myVpnNetworks: cs.myVpnNetworks,
|
||||
myVpnNetworksTable: cs.myVpnNetworksTable,
|
||||
myVpnAddrs: cs.myVpnAddrs,
|
||||
@@ -220,7 +199,6 @@ func NewInterface(ctx context.Context, c *InterfaceConfig) (*Interface, error) {
|
||||
relayManager: c.relayManager,
|
||||
connectionManager: c.connectionManager,
|
||||
conntrackCacheTimeout: c.ConntrackCacheTimeout,
|
||||
cpuAffinity: c.CpuAffinity,
|
||||
|
||||
metricHandshakes: metrics.GetOrRegisterHistogram("handshakes", nil, metrics.NewExpDecaySample(1028, 0.015)),
|
||||
messageMetrics: c.MessageMetrics,
|
||||
@@ -238,6 +216,9 @@ func NewInterface(ctx context.Context, c *InterfaceConfig) (*Interface, error) {
|
||||
|
||||
ifce.connectionManager.intf = ifce
|
||||
|
||||
// Held until Close so waiting on the interface blocks until the resources are actually released
|
||||
ifce.wg.Add(1)
|
||||
|
||||
return ifce, nil
|
||||
}
|
||||
|
||||
@@ -258,6 +239,9 @@ func (f *Interface) activate() error {
|
||||
"build", f.version,
|
||||
"udpAddr", addr,
|
||||
"boringcrypto", boringEnabled(),
|
||||
"fips140Version", fips140.Version(),
|
||||
"fips140Enabled", fips140.Enabled(),
|
||||
"fips140Enforced", fips140.Enforced(),
|
||||
)
|
||||
|
||||
if f.routines > 1 {
|
||||
@@ -270,38 +254,27 @@ func (f *Interface) activate() error {
|
||||
metrics.GetOrRegisterGauge("routines", nil).Update(int64(f.routines))
|
||||
|
||||
// Prepare n tun queues
|
||||
var reader io.ReadWriteCloser = f.inside
|
||||
for i := 0; i < f.routines; i++ {
|
||||
if i > 0 {
|
||||
if err = f.inside.NewMultiQueueReader(); err != nil {
|
||||
reader, err = f.inside.NewMultiQueueReader()
|
||||
if err != nil {
|
||||
return err
|
||||
}
|
||||
}
|
||||
}
|
||||
f.readers = f.inside.Readers()
|
||||
for i := range f.readers {
|
||||
caps := tio.QueueCapabilities(f.readers[i])
|
||||
if caps.TSO || caps.USO {
|
||||
// Multi-lane: TCP gets coalesced when TSO is on, UDP when USO
|
||||
// is on, everything else (and either lane disabled) falls
|
||||
// through to passthrough so non-IP / non-TCP-UDP traffic still
|
||||
// reaches the TUN.
|
||||
f.batchers[i] = batch.NewMultiCoalescer(f.readers[i], caps.TSO, caps.USO)
|
||||
} else {
|
||||
f.batchers[i] = batch.NewPassthrough(f.readers[i])
|
||||
}
|
||||
f.readers[i] = reader
|
||||
}
|
||||
|
||||
f.wg.Add(1) // for us to wait on Close() to return
|
||||
// On error the caller owns the cleanup, Control.Start cancels the service context
|
||||
// before releasing our resources so a waiter never observes a live context
|
||||
if err = f.inside.Activate(); err != nil {
|
||||
f.wg.Done()
|
||||
f.inside.Close()
|
||||
return err
|
||||
}
|
||||
|
||||
return nil
|
||||
}
|
||||
|
||||
func (f *Interface) run() (func() error, error) {
|
||||
func (f *Interface) run() {
|
||||
// Launch n queues to read packets from udp
|
||||
for i := 0; i < f.routines; i++ {
|
||||
f.wg.Go(func() {
|
||||
@@ -316,13 +289,14 @@ func (f *Interface) run() (func() error, error) {
|
||||
})
|
||||
}
|
||||
|
||||
return func() error {
|
||||
f.wg.Wait()
|
||||
if e := f.fatalErr.Load(); e != nil {
|
||||
return *e
|
||||
}
|
||||
return nil
|
||||
}, nil
|
||||
}
|
||||
|
||||
func (f *Interface) wait() error {
|
||||
f.wg.Wait()
|
||||
if e := f.fatalErr.Load(); e != nil {
|
||||
return *e
|
||||
}
|
||||
return nil
|
||||
}
|
||||
|
||||
// onFatal stores the first fatal reader error, and calls triggerShutdown if it was the first one
|
||||
@@ -346,25 +320,19 @@ func (f *Interface) listenOut(i int) {
|
||||
|
||||
ctCache := firewall.NewConntrackCacheTicker(f.ctx, f.l, f.conntrackCacheTimeout)
|
||||
lhh := f.lightHouse.NewRequestHandler()
|
||||
plaintext := make([]byte, udp.MTU)
|
||||
h := &header.H{}
|
||||
fwPacket := &firewall.Packet{}
|
||||
parsedRx := &batch.RxParsed{}
|
||||
nb := make([]byte, 12, 12)
|
||||
|
||||
listener := func(fromUdpAddr netip.AddrPort, payload []byte, meta udp.RxMeta) {
|
||||
plaintext := f.batchers[i].Reserve(len(payload))
|
||||
f.readOutsidePackets(ViaSender{UdpAddr: fromUdpAddr}, plaintext[:0], payload, h, fwPacket, parsedRx, lhh, nb, i, ctCache.Get(), meta)
|
||||
}
|
||||
err := li.ListenOut(func(fromUdpAddr netip.AddrPort, payload []byte) {
|
||||
f.readOutsidePackets(ViaSender{UdpAddr: fromUdpAddr}, plaintext[:0], payload, h, fwPacket, lhh, nb, i, ctCache.Get())
|
||||
})
|
||||
|
||||
flusher := func() {
|
||||
if err := f.batchers[i].Flush(); err != nil {
|
||||
f.l.Error("Failed to flush tun coalescer", "error", err)
|
||||
}
|
||||
}
|
||||
|
||||
err := li.ListenOut(listener, flusher)
|
||||
|
||||
if err != nil && !f.closed.Load() {
|
||||
// An error after teardown began is shutdown noise, the closed flag covers resources
|
||||
// Close releases itself and the cancelled ctx covers ones torn down by their owners
|
||||
// reacting to it, like the user device pipes
|
||||
if err != nil && !f.closed.Load() && f.ctx.Err() == nil {
|
||||
f.l.Error("Error while reading inbound packet, closing", "error", err)
|
||||
f.onFatal(err)
|
||||
}
|
||||
@@ -372,49 +340,26 @@ func (f *Interface) listenOut(i int) {
|
||||
f.l.Debug("underlay reader is done", "reader", i)
|
||||
}
|
||||
|
||||
func (f *Interface) listenIn(reader tio.Queue, i int) {
|
||||
// Pin this goroutine to one CPU. LockOSThread alone keeps the goroutine
|
||||
// on a single OS thread but the kernel can still migrate that thread
|
||||
// across CPUs — XPS reads smp_processor_id() at sendmmsg time and picks
|
||||
// the TX ring from the current CPU's xps_cpus map, so an unpinned
|
||||
// thread bouncing between CPUs spreads one nebula flow's packets across
|
||||
// multiple TX rings, which the rings then drain at independent rates
|
||||
// and the wire delivers reordered.
|
||||
//
|
||||
// Pinning keeps every sendmmsg from this goroutine going through the
|
||||
// same TX ring, so the wire sees per-flow order. Cost: less scheduler
|
||||
// flexibility — if i % NumCPU collides between two TUN reader
|
||||
// goroutines they share a CPU.
|
||||
cpu := i % runtime.NumCPU()
|
||||
if n := len(f.cpuAffinity); n > 0 {
|
||||
cpu = f.cpuAffinity[i%n]
|
||||
}
|
||||
if err := util.PinThreadToCPU(cpu); err != nil {
|
||||
f.l.Warn("failed to pin tun reader to CPU", "queue", i, "cpu", cpu, "err", err)
|
||||
}
|
||||
rejectBuf := make([]byte, mtu)
|
||||
sb := batch.NewSendBatch(f.writers[i], batch.SendBatchCap, udp.MTU+32)
|
||||
func (f *Interface) listenIn(reader io.ReadWriteCloser, i int) {
|
||||
packet := make([]byte, mtu)
|
||||
out := make([]byte, mtu)
|
||||
fwPacket := &firewall.Packet{}
|
||||
nb := make([]byte, 12, 12)
|
||||
|
||||
conntrackCache := firewall.NewConntrackCacheTicker(f.ctx, f.l, f.conntrackCacheTimeout)
|
||||
|
||||
for {
|
||||
pkts, err := reader.Read()
|
||||
n, err := reader.Read(packet)
|
||||
if err != nil {
|
||||
if !f.closed.Load() {
|
||||
// Same shutdown noise handling as listenOut
|
||||
if !f.closed.Load() && f.ctx.Err() == nil {
|
||||
f.l.Error("Error while reading outbound packet, closing", "error", err, "reader", i)
|
||||
f.onFatal(err)
|
||||
}
|
||||
break
|
||||
}
|
||||
|
||||
for _, pkt := range pkts {
|
||||
f.consumeInsidePacket(pkt, fwPacket, nb, sb, rejectBuf, i, conntrackCache.Get())
|
||||
}
|
||||
if err := sb.Flush(); err != nil {
|
||||
f.l.Error("Failed to write outgoing batch", "error", err, "writer", i)
|
||||
}
|
||||
f.consumeInsidePacket(packet[:n], fwPacket, nb, out, i, conntrackCache.Get())
|
||||
}
|
||||
|
||||
f.l.Debug("overlay reader is done", "reader", i)
|
||||
@@ -426,7 +371,6 @@ func (f *Interface) RegisterConfigChangeCallbacks(c *config.C) {
|
||||
c.RegisterReloadCallback(f.reloadAcceptRecvError)
|
||||
c.RegisterReloadCallback(f.reloadDisconnectInvalid)
|
||||
c.RegisterReloadCallback(f.reloadMisc)
|
||||
c.RegisterReloadCallback(f.reloadEcn)
|
||||
|
||||
for _, udpConn := range f.writers {
|
||||
c.RegisterReloadCallback(udpConn.ReloadConfig)
|
||||
@@ -444,13 +388,22 @@ func (f *Interface) reloadDisconnectInvalid(c *config.C) {
|
||||
}
|
||||
|
||||
func (f *Interface) reloadFirewall(c *config.C) {
|
||||
//TODO: need to trigger/detect if the certificate changed too
|
||||
if c.HasChanged("firewall") == false {
|
||||
cs := f.pki.getCertState()
|
||||
curCert := cs.getCertificate(cert.Version2)
|
||||
if curCert == nil {
|
||||
curCert = cs.getCertificate(cert.Version1)
|
||||
}
|
||||
|
||||
// The firewall builds its routableNetworks set from the certificate's UnsafeNetworks at construction.
|
||||
// Check to see if that set has changed, and if so, rebuild the firewall.
|
||||
certUnsafeChanged := curCert != nil && !slices.Equal(curCert.UnsafeNetworks(), f.firewall.unsafeNetworks)
|
||||
|
||||
if !c.HasChanged("firewall") && !certUnsafeChanged {
|
||||
f.l.Debug("No firewall config change detected")
|
||||
return
|
||||
}
|
||||
|
||||
fw, err := NewFirewallFromConfig(f.l, f.pki.getCertState(), c)
|
||||
fw, err := NewFirewallFromConfig(f.l, cs, c)
|
||||
if err != nil {
|
||||
f.l.Error("Error while creating firewall during reload", "error", err)
|
||||
return
|
||||
@@ -550,20 +503,6 @@ func (f *Interface) reloadMisc(c *config.C) {
|
||||
}
|
||||
}
|
||||
|
||||
// reloadEcn syncs Interface.ecnEnabled with the tunnels.ecn config knob.
|
||||
// Default is enabled (RFC 6040 normal mode); set false on the rare path
|
||||
// where an underlay middlebox rewrites or drops ECN bits unpredictably.
|
||||
func (f *Interface) reloadEcn(c *config.C) {
|
||||
initial := c.InitialLoad()
|
||||
if initial || c.HasChanged("tunnels.ecn") {
|
||||
v := c.GetBool("tunnels.ecn", true)
|
||||
f.ecnEnabled.Store(v)
|
||||
if !initial {
|
||||
f.l.Info("tunnels.ecn changed", "enabled", v)
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
func (f *Interface) emitStats(ctx context.Context, i time.Duration) {
|
||||
ticker := time.NewTicker(i)
|
||||
defer ticker.Stop()
|
||||
@@ -574,26 +513,34 @@ func (f *Interface) emitStats(ctx context.Context, i time.Duration) {
|
||||
certInitiatingVersion := metrics.GetOrRegisterGauge("certificate.initiating_version", nil)
|
||||
certMaxVersion := metrics.GetOrRegisterGauge("certificate.max_version", nil)
|
||||
|
||||
emit := func() {
|
||||
f.firewall.EmitStats()
|
||||
f.handshakeManager.EmitStats()
|
||||
udpStats()
|
||||
|
||||
certState := f.pki.getCertState()
|
||||
defaultCrt := certState.GetDefaultCertificate()
|
||||
certExpirationGauge.Update(int64(defaultCrt.NotAfter().Sub(time.Now()) / time.Second))
|
||||
certInitiatingVersion.Update(int64(defaultCrt.Version()))
|
||||
|
||||
// Report the max certificate version we are capable of using
|
||||
if certState.v2Cert != nil {
|
||||
certMaxVersion.Update(int64(certState.v2Cert.Version()))
|
||||
} else {
|
||||
certMaxVersion.Update(int64(certState.v1Cert.Version()))
|
||||
}
|
||||
}
|
||||
|
||||
// Prime gauges so a Prometheus scrape that lands before the first tick
|
||||
// sees real values instead of the zero defaults (issue #907).
|
||||
emit()
|
||||
|
||||
for {
|
||||
select {
|
||||
case <-ctx.Done():
|
||||
return
|
||||
case <-ticker.C:
|
||||
f.firewall.EmitStats()
|
||||
f.handshakeManager.EmitStats()
|
||||
udpStats()
|
||||
|
||||
certState := f.pki.getCertState()
|
||||
defaultCrt := certState.GetDefaultCertificate()
|
||||
certExpirationGauge.Update(int64(defaultCrt.NotAfter().Sub(time.Now()) / time.Second))
|
||||
certInitiatingVersion.Update(int64(defaultCrt.Version()))
|
||||
|
||||
// Report the max certificate version we are capable of using
|
||||
if certState.v2Cert != nil {
|
||||
certMaxVersion.Update(int64(certState.v2Cert.Version()))
|
||||
} else {
|
||||
certMaxVersion.Update(int64(certState.v1Cert.Version()))
|
||||
}
|
||||
emit()
|
||||
}
|
||||
}
|
||||
}
|
||||
@@ -606,9 +553,15 @@ func (f *Interface) GetCertState() *CertState {
|
||||
return f.pki.getCertState()
|
||||
}
|
||||
|
||||
// Close releases the interface's resources: the udp sockets and the tun device.
|
||||
// It is idempotent and safe to call at any point in the lifecycle, including on an interface that never activated,
|
||||
// calls after the first return nil without doing anything.
|
||||
func (f *Interface) Close() error {
|
||||
if !f.closed.CompareAndSwap(false, true) {
|
||||
return nil
|
||||
}
|
||||
|
||||
var errs []error
|
||||
f.closed.Store(true)
|
||||
|
||||
// Release the udp readers
|
||||
for i, u := range f.writers {
|
||||
@@ -624,6 +577,8 @@ func (f *Interface) Close() error {
|
||||
if closeErr != nil {
|
||||
errs = append(errs, closeErr)
|
||||
}
|
||||
|
||||
// Release the construction token so waiters know the resources are gone
|
||||
f.wg.Done()
|
||||
return errors.Join(errs...)
|
||||
}
|
||||
|
||||
@@ -0,0 +1,73 @@
|
||||
//go:build linux || darwin
|
||||
|
||||
package nebula
|
||||
|
||||
import (
|
||||
"context"
|
||||
"net/netip"
|
||||
"testing"
|
||||
"time"
|
||||
|
||||
"github.com/rcrowley/go-metrics"
|
||||
"github.com/slackhq/nebula/cert"
|
||||
"github.com/slackhq/nebula/firewall"
|
||||
"github.com/slackhq/nebula/overlay/overlaytest"
|
||||
"github.com/slackhq/nebula/test"
|
||||
"github.com/slackhq/nebula/udp"
|
||||
"github.com/stretchr/testify/assert"
|
||||
"github.com/stretchr/testify/require"
|
||||
)
|
||||
|
||||
// Test_emitStats_primesGauges covers issue #907: a Prometheus scrape that
|
||||
// landed before the first ticker fire used to read 0 for the cert gauges.
|
||||
// emitStats now primes the gauges before entering the ticker loop. We assert
|
||||
// the gauge is zero before the first call and non-zero after.
|
||||
func Test_emitStats_primesGauges(t *testing.T) {
|
||||
defer metrics.DefaultRegistry.UnregisterAll()
|
||||
|
||||
l := test.NewLogger()
|
||||
hostMap := newHostMap(l)
|
||||
preferredRanges := []netip.Prefix{netip.MustParsePrefix("10.0.0.0/8")}
|
||||
hostMap.preferredRanges.Store(&preferredRanges)
|
||||
|
||||
notAfter := time.Now().Add(time.Hour)
|
||||
cs := &CertState{
|
||||
initiatingVersion: cert.Version1,
|
||||
privateKey: []byte{},
|
||||
v1Cert: &dummyCert{version: cert.Version1, notAfter: notAfter},
|
||||
v1Credential: nil,
|
||||
}
|
||||
|
||||
lh := newTestLighthouse()
|
||||
ifce := &Interface{
|
||||
hostMap: hostMap,
|
||||
inside: &overlaytest.NoopTun{},
|
||||
outside: &udp.NoopConn{},
|
||||
firewall: &Firewall{Conntrack: &FirewallConntrack{Conns: map[firewall.Packet]*conn{}}},
|
||||
lightHouse: lh,
|
||||
pki: &PKI{},
|
||||
handshakeManager: NewHandshakeManager(l, hostMap, lh, &udp.NoopConn{}, defaultHandshakeConfig),
|
||||
l: l,
|
||||
// On linux, udp.NewUDPStatsEmitter indexes writers[0] and asserts to
|
||||
// *udp.StdConn. A zero value works: getMemInfo sees a nil rawConn,
|
||||
// returns an error, and the emitter falls through to a no-op.
|
||||
writers: []udp.Conn{&udp.StdConn{}},
|
||||
}
|
||||
ifce.pki.cs.Store(cs)
|
||||
|
||||
ttlGauge := metrics.GetOrRegisterGauge("certificate.ttl_seconds", nil)
|
||||
require.Zero(t, ttlGauge.Value(), "gauge should be zero before emitStats runs")
|
||||
|
||||
// Pre-cancel the context so emitStats returns after priming the gauges
|
||||
// without ever reading from ticker.C. The one hour interval is just a
|
||||
// belt-and-suspenders, the test does not expect the ticker to fire.
|
||||
ctx, cancel := context.WithCancel(context.Background())
|
||||
cancel()
|
||||
ifce.emitStats(ctx, time.Hour)
|
||||
|
||||
ttl := ttlGauge.Value()
|
||||
assert.Positive(t, ttl, "ttl gauge should be primed by emitStats before its first tick")
|
||||
assert.LessOrEqual(t, ttl, int64(3600))
|
||||
assert.Equal(t, int64(cert.Version1), metrics.GetOrRegisterGauge("certificate.initiating_version", nil).Value())
|
||||
assert.Equal(t, int64(cert.Version1), metrics.GetOrRegisterGauge("certificate.max_version", nil).Value())
|
||||
}
|
||||
@@ -0,0 +1,120 @@
|
||||
package nebula
|
||||
|
||||
import (
|
||||
"net/netip"
|
||||
"testing"
|
||||
|
||||
"github.com/slackhq/nebula/cert"
|
||||
"github.com/slackhq/nebula/config"
|
||||
"github.com/slackhq/nebula/test"
|
||||
"github.com/stretchr/testify/assert"
|
||||
"github.com/stretchr/testify/require"
|
||||
)
|
||||
|
||||
// TestReloadFirewall_CertUnsafeNetworksChanged verifies that reloadFirewall
|
||||
// rebuilds the firewall when only the certificate's UnsafeNetworks have changed,
|
||||
// even if the firewall section of the YAML has not.
|
||||
func TestReloadFirewall_CertUnsafeNetworksChanged(t *testing.T) {
|
||||
l := test.NewLogger()
|
||||
|
||||
vpnNet := netip.MustParsePrefix("10.0.0.1/24")
|
||||
initialUnsafe := []netip.Prefix{netip.MustParsePrefix("198.51.100.0/24")}
|
||||
|
||||
// dummyCert avoids dragging the real signing pipeline into a unit test.
|
||||
c1 := &dummyCert{
|
||||
version: cert.Version2,
|
||||
networks: []netip.Prefix{vpnNet},
|
||||
unsafeNetworks: initialUnsafe,
|
||||
}
|
||||
pki := &PKI{}
|
||||
pki.cs.Store(&CertState{v2Cert: c1, initiatingVersion: cert.Version2})
|
||||
|
||||
rawYAML := `firewall:
|
||||
outbound:
|
||||
- port: any
|
||||
proto: any
|
||||
host: any
|
||||
inbound:
|
||||
- port: any
|
||||
proto: any
|
||||
host: any
|
||||
`
|
||||
cfg := config.NewC(l)
|
||||
require.NoError(t, cfg.LoadString(rawYAML))
|
||||
|
||||
fw, err := NewFirewallFromConfig(l, pki.getCertState(), cfg)
|
||||
require.NoError(t, err)
|
||||
require.Equal(t, initialUnsafe, fw.unsafeNetworks)
|
||||
|
||||
f := &Interface{
|
||||
pki: pki,
|
||||
firewall: fw,
|
||||
l: l,
|
||||
}
|
||||
|
||||
// Swap the cert with a different UnsafeNetworks set.
|
||||
newUnsafe := []netip.Prefix{
|
||||
netip.MustParsePrefix("198.51.100.0/24"),
|
||||
netip.MustParsePrefix("203.0.113.0/24"),
|
||||
}
|
||||
c2 := &dummyCert{
|
||||
version: cert.Version2,
|
||||
networks: []netip.Prefix{vpnNet},
|
||||
unsafeNetworks: newUnsafe,
|
||||
}
|
||||
pki.cs.Store(&CertState{v2Cert: c2, initiatingVersion: cert.Version2})
|
||||
|
||||
// Reload with the same YAML so HasChanged("firewall") reports false.
|
||||
require.NoError(t, cfg.ReloadConfigString(rawYAML))
|
||||
require.False(t, cfg.HasChanged("firewall"))
|
||||
|
||||
f.reloadFirewall(cfg)
|
||||
|
||||
assert.NotSame(t, fw, f.firewall, "firewall pointer should have been replaced")
|
||||
assert.Equal(t, newUnsafe, f.firewall.unsafeNetworks)
|
||||
assert.True(t, f.firewall.routableNetworks.Contains(netip.MustParseAddr("203.0.113.5")))
|
||||
}
|
||||
|
||||
// TestReloadFirewall_NoChange verifies that reloadFirewall is a no-op when
|
||||
// neither the firewall config nor the cert's UnsafeNetworks have changed.
|
||||
func TestReloadFirewall_NoChange(t *testing.T) {
|
||||
l := test.NewLogger()
|
||||
|
||||
vpnNet := netip.MustParsePrefix("10.0.0.1/24")
|
||||
unsafe := []netip.Prefix{netip.MustParsePrefix("198.51.100.0/24")}
|
||||
|
||||
c1 := &dummyCert{
|
||||
version: cert.Version2,
|
||||
networks: []netip.Prefix{vpnNet},
|
||||
unsafeNetworks: unsafe,
|
||||
}
|
||||
pki := &PKI{}
|
||||
pki.cs.Store(&CertState{v2Cert: c1, initiatingVersion: cert.Version2})
|
||||
|
||||
rawYAML := `firewall:
|
||||
outbound:
|
||||
- port: any
|
||||
proto: any
|
||||
host: any
|
||||
inbound:
|
||||
- port: any
|
||||
proto: any
|
||||
host: any
|
||||
`
|
||||
cfg := config.NewC(l)
|
||||
require.NoError(t, cfg.LoadString(rawYAML))
|
||||
|
||||
fw, err := NewFirewallFromConfig(l, pki.getCertState(), cfg)
|
||||
require.NoError(t, err)
|
||||
|
||||
f := &Interface{
|
||||
pki: pki,
|
||||
firewall: fw,
|
||||
l: l,
|
||||
}
|
||||
|
||||
require.NoError(t, cfg.ReloadConfigString(rawYAML))
|
||||
f.reloadFirewall(cfg)
|
||||
|
||||
assert.Same(t, fw, f.firewall, "firewall should not have been replaced")
|
||||
}
|
||||
+290
-19
@@ -4,26 +4,54 @@ import (
|
||||
"encoding/binary"
|
||||
|
||||
"golang.org/x/net/ipv4"
|
||||
"golang.org/x/net/ipv6"
|
||||
)
|
||||
|
||||
const (
|
||||
// Need 96 bytes for the largest reject packet:
|
||||
// MaxIPv4RejectPacketSize is the largest IPv4 reject packet:
|
||||
// - 20 byte ipv4 header
|
||||
// - 8 byte icmpv4 header
|
||||
// - 68 byte body (60 byte max orig ipv4 header + 8 byte orig icmpv4 header)
|
||||
MaxRejectPacketSize = ipv4.HeaderLen + 8 + 60 + 8
|
||||
maxIPv4RejectPacketSize = ipv4.HeaderLen + 8 + 60 + 8
|
||||
|
||||
// MaxRejectPacketSize is sized for the largest possible reject packet (IPv6):
|
||||
// - 40 byte ipv6 header
|
||||
// - 8 byte icmpv6 header
|
||||
// - up to 1000 byte body (original packet, possibly truncated. We want to stay
|
||||
// under the MTU with Nebula overhead included)
|
||||
maxIPv6RejectPacketSize = ipv6.HeaderLen + 8 + 1000
|
||||
|
||||
MaxRejectPacketSize = maxIPv6RejectPacketSize
|
||||
)
|
||||
|
||||
func CreateRejectPacket(packet []byte, out []byte) []byte {
|
||||
if len(packet) < ipv4.HeaderLen || int(packet[0]>>4) != ipv4.Version {
|
||||
if len(packet) < 1 {
|
||||
return nil
|
||||
}
|
||||
|
||||
switch packet[9] {
|
||||
case 6: // tcp
|
||||
return ipv4CreateRejectTCPPacket(packet, out)
|
||||
version := int(packet[0] >> 4)
|
||||
switch version {
|
||||
case ipv4.Version:
|
||||
if len(packet) < ipv4.HeaderLen {
|
||||
return nil
|
||||
}
|
||||
// Do not send reject packets for non-first fragments
|
||||
if packet[6]&0x1f != 0 || packet[7] != 0 {
|
||||
return nil
|
||||
}
|
||||
switch packet[9] {
|
||||
case 6: // tcp
|
||||
return ipv4CreateRejectTCPPacket(packet, out)
|
||||
default:
|
||||
return ipv4CreateRejectICMPPacket(packet, out)
|
||||
}
|
||||
case ipv6.Version:
|
||||
if len(packet) < ipv6.HeaderLen {
|
||||
return nil
|
||||
}
|
||||
return ipv6CreateRejectPacket(packet, out)
|
||||
default:
|
||||
return ipv4CreateRejectICMPPacket(packet, out)
|
||||
return nil
|
||||
}
|
||||
}
|
||||
|
||||
@@ -35,12 +63,17 @@ func ipv4CreateRejectICMPPacket(packet []byte, out []byte) []byte {
|
||||
return nil
|
||||
}
|
||||
|
||||
// ICMP reply includes original header and first 8 bytes of the packet
|
||||
packetLen := len(packet)
|
||||
if packetLen > ihl+8 {
|
||||
packetLen = ihl + 8
|
||||
// Do not generate ICMP errors in response to ICMP error packets
|
||||
if packet[9] == 1 && len(packet) > ihl {
|
||||
icmpType := packet[ihl]
|
||||
if icmpType == 3 || icmpType == 4 || icmpType == 5 || icmpType == 11 || icmpType == 12 {
|
||||
return nil
|
||||
}
|
||||
}
|
||||
|
||||
// ICMP reply includes original header and first 8 bytes of the packet
|
||||
packetLen := min(len(packet), ihl+8)
|
||||
|
||||
outLen := ipv4.HeaderLen + 8 + packetLen
|
||||
if outLen > cap(out) {
|
||||
return nil
|
||||
@@ -71,14 +104,14 @@ func ipv4CreateRejectICMPPacket(packet []byte, out []byte) []byte {
|
||||
|
||||
// ICMP Destination Unreachable
|
||||
icmpOut := out[ipv4.HeaderLen:]
|
||||
icmpOut[0] = 3 // type (Destination unreachable)
|
||||
icmpOut[1] = 3 // code (Port unreachable error)
|
||||
icmpOut[2] = 0 // checksum
|
||||
icmpOut[3] = 0 // .
|
||||
icmpOut[4] = 0 // unused
|
||||
icmpOut[5] = 0 // .
|
||||
icmpOut[6] = 0 // .
|
||||
icmpOut[7] = 0 // .
|
||||
icmpOut[0] = 3 // type (Destination unreachable)
|
||||
icmpOut[1] = 13 // code (Communication administratively prohibited)
|
||||
icmpOut[2] = 0 // checksum
|
||||
icmpOut[3] = 0 // .
|
||||
icmpOut[4] = 0 // unused
|
||||
icmpOut[5] = 0 // .
|
||||
icmpOut[6] = 0 // .
|
||||
icmpOut[7] = 0 // .
|
||||
|
||||
// Copy original IP header and first 8 bytes as body
|
||||
copy(icmpOut[8:], packet[:packetLen])
|
||||
@@ -165,7 +198,193 @@ func ipv4CreateRejectTCPPacket(packet []byte, out []byte) []byte {
|
||||
return out
|
||||
}
|
||||
|
||||
func ipv6CreateRejectPacket(packet []byte, out []byte) []byte {
|
||||
proto, offset, isFragment := ipv6FindUpperProtocol(packet)
|
||||
if isFragment {
|
||||
return nil
|
||||
}
|
||||
switch proto {
|
||||
case 6: // tcp
|
||||
return ipv6CreateRejectTCPPacket(packet, out, offset)
|
||||
default:
|
||||
return ipv6CreateRejectICMPPacket(packet, out, proto, offset)
|
||||
}
|
||||
}
|
||||
|
||||
func ipv6CreateRejectICMPPacket(packet []byte, out []byte, proto uint8, offset int) []byte {
|
||||
// Do not generate ICMPv6 errors in response to ICMPv6 error packets
|
||||
if proto == 58 && len(packet) > offset {
|
||||
icmpType := packet[offset]
|
||||
if icmpType >= 1 && icmpType <= 4 {
|
||||
return nil
|
||||
}
|
||||
}
|
||||
|
||||
// Include as much of the original packet as possible, up to 1000 bytes,
|
||||
// so the response fits comfortably within any tunnel MTU.
|
||||
packetLen := min(len(packet), 1000)
|
||||
|
||||
outLen := ipv6.HeaderLen + 8 + packetLen
|
||||
if outLen > cap(out) {
|
||||
return nil
|
||||
}
|
||||
|
||||
out = out[:outLen]
|
||||
|
||||
// IPv6 header
|
||||
ipHdr := out[0:ipv6.HeaderLen]
|
||||
ipHdr[0] = ipv6.Version << 4 // version, traffic class (high bits)
|
||||
ipHdr[1] = 0 // traffic class (low bits), flow label (high bits)
|
||||
ipHdr[2] = 0 // flow label
|
||||
ipHdr[3] = 0 // flow label
|
||||
|
||||
payloadLen := uint16(outLen - ipv6.HeaderLen)
|
||||
binary.BigEndian.PutUint16(ipHdr[4:], payloadLen) // payload length
|
||||
ipHdr[6] = 58 // next header (ICMPv6)
|
||||
ipHdr[7] = 64 // hop limit
|
||||
|
||||
// Swap dest / src IPs (each 16 bytes, src at 8, dst at 24)
|
||||
copy(ipHdr[8:24], packet[24:40])
|
||||
copy(ipHdr[24:40], packet[8:24])
|
||||
|
||||
// ICMPv6 Destination Unreachable
|
||||
icmpOut := out[ipv6.HeaderLen:]
|
||||
icmpOut[0] = 1 // type (Destination Unreachable)
|
||||
icmpOut[1] = 1 // code (Communication with destination administratively prohibited)
|
||||
icmpOut[2] = 0 // checksum
|
||||
icmpOut[3] = 0 // .
|
||||
icmpOut[4] = 0 // unused
|
||||
icmpOut[5] = 0 // .
|
||||
icmpOut[6] = 0 // .
|
||||
icmpOut[7] = 0 // .
|
||||
|
||||
copy(icmpOut[8:], packet[:packetLen])
|
||||
|
||||
// ICMPv6 checksum uses a pseudo-header
|
||||
csum := ipv6PseudoheaderChecksum(ipHdr[8:24], ipHdr[24:40], 58, uint32(payloadLen))
|
||||
binary.BigEndian.PutUint16(icmpOut[2:], tcpipChecksum(icmpOut, csum))
|
||||
|
||||
return out
|
||||
}
|
||||
|
||||
func ipv6CreateRejectTCPPacket(packet []byte, out []byte, offset int) []byte {
|
||||
const tcpLen = 20
|
||||
|
||||
if len(packet) < offset+tcpLen {
|
||||
return nil
|
||||
}
|
||||
|
||||
outLen := ipv6.HeaderLen + tcpLen
|
||||
if outLen > cap(out) {
|
||||
return nil
|
||||
}
|
||||
|
||||
out = out[:outLen]
|
||||
|
||||
// IPv6 header
|
||||
ipHdr := out[0:ipv6.HeaderLen]
|
||||
ipHdr[0] = ipv6.Version << 4 // version, traffic class (high bits)
|
||||
ipHdr[1] = 0 // traffic class (low bits), flow label (high bits)
|
||||
ipHdr[2] = 0 // flow label
|
||||
ipHdr[3] = 0 // flow label
|
||||
|
||||
binary.BigEndian.PutUint16(ipHdr[4:], tcpLen) // payload length
|
||||
ipHdr[6] = 6 // next header (TCP)
|
||||
ipHdr[7] = 64 // hop limit
|
||||
|
||||
// Swap dest / src IPs
|
||||
copy(ipHdr[8:24], packet[24:40])
|
||||
copy(ipHdr[24:40], packet[8:24])
|
||||
|
||||
// TCP RST
|
||||
tcpIn := packet[offset:]
|
||||
var ackSeq, seq uint32
|
||||
outFlags := byte(0b00000100) // RST
|
||||
|
||||
inAck := tcpIn[13]&0b00010000 != 0
|
||||
if inAck {
|
||||
seq = binary.BigEndian.Uint32(tcpIn[8:])
|
||||
} else {
|
||||
inSyn := uint32((tcpIn[13] & 0b00000010) >> 1)
|
||||
inFin := uint32(tcpIn[13] & 0b00000001)
|
||||
ackSeq = binary.BigEndian.Uint32(tcpIn[4:]) + inSyn + inFin + uint32(len(tcpIn)) - uint32(tcpIn[12]>>4)<<2
|
||||
outFlags |= 0b00010000 // ACK
|
||||
}
|
||||
|
||||
tcpOut := out[ipv6.HeaderLen:]
|
||||
// Swap dest / src ports
|
||||
copy(tcpOut[0:2], tcpIn[2:4])
|
||||
copy(tcpOut[2:4], tcpIn[0:2])
|
||||
binary.BigEndian.PutUint32(tcpOut[4:], seq)
|
||||
binary.BigEndian.PutUint32(tcpOut[8:], ackSeq)
|
||||
tcpOut[12] = (tcpLen >> 2) << 4 // data offset, reserved, NS
|
||||
tcpOut[13] = outFlags // CWR, ECE, URG, ACK, PSH, RST, SYN, FIN
|
||||
tcpOut[14] = 0 // window size
|
||||
tcpOut[15] = 0 // .
|
||||
tcpOut[16] = 0 // checksum
|
||||
tcpOut[17] = 0 // .
|
||||
tcpOut[18] = 0 // URG Pointer
|
||||
tcpOut[19] = 0 // .
|
||||
|
||||
// Calculate checksum with IPv6 pseudo-header
|
||||
csum := ipv6PseudoheaderChecksum(ipHdr[8:24], ipHdr[24:40], 6, tcpLen)
|
||||
binary.BigEndian.PutUint16(tcpOut[16:], tcpipChecksum(tcpOut, csum))
|
||||
|
||||
return out
|
||||
}
|
||||
|
||||
func ipv6FindUpperProtocol(packet []byte) (nextHeader uint8, offset int, isFragment bool) {
|
||||
nextHeader = packet[6]
|
||||
offset = ipv6.HeaderLen
|
||||
|
||||
for {
|
||||
switch nextHeader {
|
||||
case 0, 43, 60: // Hop-by-Hop, Routing, Destination
|
||||
if len(packet) < offset+2 {
|
||||
return nextHeader, offset, isFragment
|
||||
}
|
||||
nextHeader = packet[offset]
|
||||
offset += (int(packet[offset+1]) + 1) << 3
|
||||
|
||||
case 44: // Fragment
|
||||
if len(packet) < offset+8 {
|
||||
return nextHeader, offset, isFragment
|
||||
}
|
||||
if packet[offset+2] != 0 || packet[offset+3]&0xf8 != 0 {
|
||||
isFragment = true
|
||||
}
|
||||
nextHeader = packet[offset]
|
||||
offset += 8
|
||||
|
||||
case 51: // AH
|
||||
if len(packet) < offset+2 {
|
||||
return nextHeader, offset, isFragment
|
||||
}
|
||||
nextHeader = packet[offset]
|
||||
offset += (int(packet[offset+1]) + 2) << 2
|
||||
|
||||
default:
|
||||
return nextHeader, offset, isFragment
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
func CreateICMPEchoResponse(packet, out []byte) []byte {
|
||||
if len(packet) < 1 {
|
||||
return nil
|
||||
}
|
||||
|
||||
switch packet[0] >> 4 {
|
||||
case 4:
|
||||
return createICMPv4EchoResponse(packet, out)
|
||||
case 6:
|
||||
return createICMPv6EchoResponse(packet, out)
|
||||
default:
|
||||
return nil
|
||||
}
|
||||
}
|
||||
|
||||
func createICMPv4EchoResponse(packet, out []byte) []byte {
|
||||
// Return early if this is not a simple ICMP Echo Request
|
||||
//TODO: make constants out of these
|
||||
if !(len(packet) >= 28 && len(packet) <= 9001 && packet[0] == 0x45 && packet[9] == 0x01 && packet[20] == 0x08) {
|
||||
@@ -199,6 +418,43 @@ func CreateICMPEchoResponse(packet, out []byte) []byte {
|
||||
return out
|
||||
}
|
||||
|
||||
func createICMPv6EchoResponse(packet, out []byte) []byte {
|
||||
// IPv6 header (40 bytes) + ICMPv6 header (8 bytes minimum)
|
||||
if len(packet) < ipv6.HeaderLen+8 || len(packet) > 9001 {
|
||||
return nil
|
||||
}
|
||||
|
||||
// Next Header must be ICMPv6 (58)
|
||||
if packet[6] != 58 {
|
||||
return nil
|
||||
}
|
||||
|
||||
// ICMPv6 type must be Echo Request (128)
|
||||
if packet[ipv6.HeaderLen] != 128 {
|
||||
return nil
|
||||
}
|
||||
|
||||
out = out[:len(packet)]
|
||||
copy(out, packet)
|
||||
|
||||
// Swap src/dst addresses (bytes 8-23 and 24-39)
|
||||
copy(out[8:24], packet[24:40])
|
||||
copy(out[24:40], packet[8:24])
|
||||
|
||||
// Change ICMPv6 type to Echo Reply (129)
|
||||
icmp := out[ipv6.HeaderLen:]
|
||||
icmp[0] = 129
|
||||
icmp[2] = 0
|
||||
icmp[3] = 0
|
||||
|
||||
// ICMPv6 checksum uses a pseudo-header with src, dst, length, and next header
|
||||
payloadLen := uint32(len(icmp))
|
||||
csum := ipv6PseudoheaderChecksum(out[8:24], out[24:40], 58, payloadLen)
|
||||
binary.BigEndian.PutUint16(icmp[2:], tcpipChecksum(icmp, csum))
|
||||
|
||||
return out
|
||||
}
|
||||
|
||||
// calculates the TCP/IP checksum defined in rfc1071. The passed-in
|
||||
// csum is any initial checksum data that's already been computed.
|
||||
//
|
||||
@@ -236,3 +492,18 @@ func ipv4PseudoheaderChecksum(src, dst []byte, proto, length uint32) (csum uint3
|
||||
csum += length >> 16
|
||||
return csum
|
||||
}
|
||||
|
||||
// based on:
|
||||
// - https://github.com/google/gopacket/blob/v1.1.19/layers/tcpip.go#L37-L48
|
||||
func ipv6PseudoheaderChecksum(src, dst []byte, proto, length uint32) (csum uint32) {
|
||||
for i := 0; i < 16; i += 2 {
|
||||
csum += uint32(src[i]) << 8
|
||||
csum += uint32(src[i+1])
|
||||
csum += uint32(dst[i]) << 8
|
||||
csum += uint32(dst[i+1])
|
||||
}
|
||||
csum += proto
|
||||
csum += length & 0xffff
|
||||
csum += length >> 16
|
||||
return csum
|
||||
}
|
||||
|
||||
+404
-1
@@ -1,11 +1,13 @@
|
||||
package iputil
|
||||
|
||||
import (
|
||||
"encoding/binary"
|
||||
"net"
|
||||
"testing"
|
||||
|
||||
"github.com/stretchr/testify/assert"
|
||||
"golang.org/x/net/ipv4"
|
||||
"golang.org/x/net/ipv6"
|
||||
)
|
||||
|
||||
func Test_CreateRejectPacket(t *testing.T) {
|
||||
@@ -43,7 +45,7 @@ func Test_CreateRejectPacket(t *testing.T) {
|
||||
}
|
||||
b = append(b, []byte{0, 3, 0, 4, 0, 0, 0, 0}...)
|
||||
|
||||
expectedLen = MaxRejectPacketSize
|
||||
expectedLen = maxIPv4RejectPacketSize
|
||||
out = make([]byte, MaxRejectPacketSize)
|
||||
rejectPacket = CreateRejectPacket(b, out)
|
||||
assert.NotNil(t, rejectPacket)
|
||||
@@ -71,3 +73,404 @@ func Test_CreateRejectPacket(t *testing.T) {
|
||||
assert.NotNil(t, rejectPacket)
|
||||
assert.Len(t, rejectPacket, expectedLen)
|
||||
}
|
||||
|
||||
func Test_CreateRejectPacket_NoFragment(t *testing.T) {
|
||||
out := make([]byte, MaxRejectPacketSize)
|
||||
|
||||
// IPv4: non-zero fragment offset should not generate reject packet
|
||||
h := ipv4.Header{
|
||||
Len: 20,
|
||||
Src: net.IPv4(10, 0, 0, 1),
|
||||
Dst: net.IPv4(10, 0, 0, 2),
|
||||
Protocol: 17, // UDP
|
||||
}
|
||||
b, err := h.Marshal()
|
||||
if err != nil {
|
||||
t.Fatalf("h.Marshal: %v", err)
|
||||
}
|
||||
b = append(b, make([]byte, 8)...)
|
||||
// Set fragment offset to non-zero (byte 6-7, offset in 8-byte units)
|
||||
b[6] = 0x00
|
||||
b[7] = 0x01
|
||||
assert.Nil(t, CreateRejectPacket(b, out))
|
||||
|
||||
// MF flag with zero offset (first fragment) should still generate reject
|
||||
b[6] = 0x20 // MF flag set
|
||||
b[7] = 0x00
|
||||
assert.NotNil(t, CreateRejectPacket(b, out))
|
||||
|
||||
// Non-fragment should still generate reject packet
|
||||
b[6] = 0x00
|
||||
b[7] = 0x00
|
||||
assert.NotNil(t, CreateRejectPacket(b, out))
|
||||
|
||||
// DF flag only (not a fragment) should still generate reject packet
|
||||
b[6] = 0x40
|
||||
b[7] = 0x00
|
||||
assert.NotNil(t, CreateRejectPacket(b, out))
|
||||
}
|
||||
|
||||
func Test_CreateRejectPacketIPv6_NoFragment(t *testing.T) {
|
||||
src := net.ParseIP("fd00::1")
|
||||
dst := net.ParseIP("fd00::2")
|
||||
out := make([]byte, MaxRejectPacketSize)
|
||||
|
||||
// IPv6 with Fragment header and non-zero offset should not generate reject
|
||||
fragHeader := []byte{
|
||||
17, // next header: UDP
|
||||
0, // reserved
|
||||
0, 9, // fragment offset=1 (shifted left 3), M=1
|
||||
0, 0, 0, 1, // identification
|
||||
}
|
||||
udpPayload := make([]byte, 8)
|
||||
payload := append(fragHeader, udpPayload...)
|
||||
packet := makeIPv6Packet(src, dst, 44, payload) // next header 44 = Fragment
|
||||
assert.Nil(t, CreateRejectPacket(packet, out))
|
||||
|
||||
// Fragment header with zero offset (first fragment) should still generate reject
|
||||
fragHeader[2] = 0
|
||||
fragHeader[3] = 1 // offset=0, M=1
|
||||
payload = append(fragHeader, udpPayload...)
|
||||
packet = makeIPv6Packet(src, dst, 44, payload)
|
||||
assert.NotNil(t, CreateRejectPacket(packet, out))
|
||||
}
|
||||
|
||||
func Test_CreateRejectPacket_NoICMPError(t *testing.T) {
|
||||
out := make([]byte, MaxRejectPacketSize)
|
||||
|
||||
// ICMP error types should not generate reject packets
|
||||
icmpErrorTypes := []byte{3, 4, 5, 11, 12}
|
||||
for _, icmpType := range icmpErrorTypes {
|
||||
h := ipv4.Header{
|
||||
Len: 20,
|
||||
Src: net.IPv4(10, 0, 0, 1),
|
||||
Dst: net.IPv4(10, 0, 0, 2),
|
||||
Protocol: 1, // ICMP
|
||||
}
|
||||
|
||||
b, err := h.Marshal()
|
||||
if err != nil {
|
||||
t.Fatalf("h.Marshal: %v", err)
|
||||
}
|
||||
b = append(b, icmpType, 0, 0, 0, 0, 0, 0, 0)
|
||||
|
||||
rejectPacket := CreateRejectPacket(b, out)
|
||||
assert.Nil(t, rejectPacket, "ICMP type %d should not generate a reject packet", icmpType)
|
||||
}
|
||||
|
||||
// ICMP non-error types should still generate reject packets
|
||||
icmpNonErrorTypes := []byte{0, 8, 13, 14}
|
||||
for _, icmpType := range icmpNonErrorTypes {
|
||||
h := ipv4.Header{
|
||||
Len: 20,
|
||||
Src: net.IPv4(10, 0, 0, 1),
|
||||
Dst: net.IPv4(10, 0, 0, 2),
|
||||
Protocol: 1, // ICMP
|
||||
}
|
||||
|
||||
b, err := h.Marshal()
|
||||
if err != nil {
|
||||
t.Fatalf("h.Marshal: %v", err)
|
||||
}
|
||||
b = append(b, icmpType, 0, 0, 0, 0, 0, 0, 0)
|
||||
|
||||
rejectPacket := CreateRejectPacket(b, out)
|
||||
assert.NotNil(t, rejectPacket, "ICMP type %d should generate a reject packet", icmpType)
|
||||
}
|
||||
}
|
||||
|
||||
func makeIPv6Packet(src, dst net.IP, nextHeader uint8, payload []byte) []byte {
|
||||
b := make([]byte, ipv6.HeaderLen+len(payload))
|
||||
b[0] = ipv6.Version << 4
|
||||
binary.BigEndian.PutUint16(b[4:], uint16(len(payload)))
|
||||
b[6] = nextHeader
|
||||
b[7] = 64
|
||||
copy(b[8:24], src.To16())
|
||||
copy(b[24:40], dst.To16())
|
||||
copy(b[ipv6.HeaderLen:], payload)
|
||||
return b
|
||||
}
|
||||
|
||||
func Test_CreateRejectPacketIPv6_ICMP(t *testing.T) {
|
||||
src := net.ParseIP("fd00::1")
|
||||
dst := net.ParseIP("fd00::2")
|
||||
|
||||
// Small UDP packet: entire original included in body
|
||||
udpPayload := make([]byte, 20)
|
||||
udpPayload[0] = 0x00 // src port high
|
||||
udpPayload[1] = 0x50 // src port low (80)
|
||||
udpPayload[2] = 0x01 // dst port high
|
||||
udpPayload[3] = 0xBB // dst port low (443)
|
||||
packet := makeIPv6Packet(src, dst, 17, udpPayload)
|
||||
|
||||
out := make([]byte, MaxRejectPacketSize)
|
||||
rejectPacket := CreateRejectPacket(packet, out)
|
||||
assert.NotNil(t, rejectPacket)
|
||||
|
||||
// Small packet fits entirely: 40 (ipv6 hdr) + 8 (icmpv6 hdr) + 60 (original)
|
||||
expectedLen := ipv6.HeaderLen + 8 + len(packet)
|
||||
assert.Len(t, rejectPacket, expectedLen)
|
||||
|
||||
// Verify version
|
||||
assert.Equal(t, byte(ipv6.Version<<4), rejectPacket[0]&0xf0)
|
||||
// Verify next header is ICMPv6 (58)
|
||||
assert.Equal(t, byte(58), rejectPacket[6])
|
||||
// Verify src/dst are swapped
|
||||
assert.Equal(t, dst.To16(), net.IP(rejectPacket[8:24]))
|
||||
assert.Equal(t, src.To16(), net.IP(rejectPacket[24:40]))
|
||||
// Verify ICMPv6 type=1 (Dest Unreachable), code=1 (Administratively prohibited)
|
||||
assert.Equal(t, byte(1), rejectPacket[ipv6.HeaderLen])
|
||||
assert.Equal(t, byte(1), rejectPacket[ipv6.HeaderLen+1])
|
||||
// Verify entire original packet is included in body
|
||||
assert.Equal(t, packet, rejectPacket[ipv6.HeaderLen+8:])
|
||||
|
||||
// Large packet: body is truncated to 1000 bytes
|
||||
largePkt := makeIPv6Packet(src, dst, 17, make([]byte, 1200))
|
||||
rejectPacket = CreateRejectPacket(largePkt, out)
|
||||
assert.NotNil(t, rejectPacket)
|
||||
assert.Len(t, rejectPacket, ipv6.HeaderLen+8+1000)
|
||||
assert.Equal(t, largePkt[:1000], rejectPacket[ipv6.HeaderLen+8:])
|
||||
}
|
||||
|
||||
func Test_CreateRejectPacketIPv6_TCP(t *testing.T) {
|
||||
src := net.ParseIP("fd00::1")
|
||||
dst := net.ParseIP("fd00::2")
|
||||
|
||||
// TCP SYN packet (next header 6)
|
||||
tcpPayload := make([]byte, 20)
|
||||
tcpPayload[0] = 0x00 // src port high
|
||||
tcpPayload[1] = 0x50 // src port low (80)
|
||||
tcpPayload[2] = 0x01 // dst port high
|
||||
tcpPayload[3] = 0xBB // dst port low (443)
|
||||
binary.BigEndian.PutUint32(tcpPayload[4:], 1000) // seq
|
||||
binary.BigEndian.PutUint32(tcpPayload[8:], 0) // ack seq
|
||||
tcpPayload[12] = (20 >> 2) << 4 // data offset
|
||||
tcpPayload[13] = 0b00000010 // SYN flag
|
||||
|
||||
packet := makeIPv6Packet(src, dst, 6, tcpPayload)
|
||||
|
||||
out := make([]byte, MaxRejectPacketSize)
|
||||
rejectPacket := CreateRejectPacket(packet, out)
|
||||
assert.NotNil(t, rejectPacket)
|
||||
|
||||
// Expected: 40 (ipv6 hdr) + 20 (tcp RST)
|
||||
expectedLen := ipv6.HeaderLen + 20
|
||||
assert.Len(t, rejectPacket, expectedLen)
|
||||
|
||||
// Verify version
|
||||
assert.Equal(t, byte(ipv6.Version<<4), rejectPacket[0]&0xf0)
|
||||
// Verify next header is TCP (6)
|
||||
assert.Equal(t, byte(6), rejectPacket[6])
|
||||
// Verify src/dst are swapped
|
||||
assert.Equal(t, dst.To16(), net.IP(rejectPacket[8:24]))
|
||||
assert.Equal(t, src.To16(), net.IP(rejectPacket[24:40]))
|
||||
// Verify ports are swapped
|
||||
tcpOut := rejectPacket[ipv6.HeaderLen:]
|
||||
assert.Equal(t, uint16(443), binary.BigEndian.Uint16(tcpOut[0:2]))
|
||||
assert.Equal(t, uint16(80), binary.BigEndian.Uint16(tcpOut[2:4]))
|
||||
// RST+ACK flags (since input was SYN without ACK)
|
||||
assert.Equal(t, byte(0b00010100), tcpOut[13])
|
||||
// ack_seq = original seq (1000) + SYN (1) + FIN (0) + segment data (0)
|
||||
assert.Equal(t, uint32(1001), binary.BigEndian.Uint32(tcpOut[8:]))
|
||||
}
|
||||
|
||||
func Test_CreateRejectPacketIPv6_TCPWithACK(t *testing.T) {
|
||||
src := net.ParseIP("fd00::1")
|
||||
dst := net.ParseIP("fd00::2")
|
||||
|
||||
// TCP packet with ACK set
|
||||
tcpPayload := make([]byte, 20)
|
||||
tcpPayload[0] = 0x00
|
||||
tcpPayload[1] = 0x50
|
||||
tcpPayload[2] = 0x01
|
||||
tcpPayload[3] = 0xBB
|
||||
binary.BigEndian.PutUint32(tcpPayload[4:], 1000) // seq
|
||||
binary.BigEndian.PutUint32(tcpPayload[8:], 2000) // ack seq
|
||||
tcpPayload[12] = (20 >> 2) << 4 // data offset
|
||||
tcpPayload[13] = 0b00010000 // ACK flag
|
||||
|
||||
packet := makeIPv6Packet(src, dst, 6, tcpPayload)
|
||||
|
||||
out := make([]byte, MaxRejectPacketSize)
|
||||
rejectPacket := CreateRejectPacket(packet, out)
|
||||
assert.NotNil(t, rejectPacket)
|
||||
|
||||
tcpOut := rejectPacket[ipv6.HeaderLen:]
|
||||
// RST only (no ACK) since input had ACK
|
||||
assert.Equal(t, byte(0b00000100), tcpOut[13])
|
||||
// seq = original ack_seq
|
||||
assert.Equal(t, uint32(2000), binary.BigEndian.Uint32(tcpOut[4:]))
|
||||
}
|
||||
|
||||
func Test_CreateRejectPacketIPv6_NoICMPError(t *testing.T) {
|
||||
src := net.ParseIP("fd00::1")
|
||||
dst := net.ParseIP("fd00::2")
|
||||
out := make([]byte, MaxRejectPacketSize)
|
||||
|
||||
// ICMPv6 error types (1-4) should not generate reject packets
|
||||
for icmpType := byte(1); icmpType <= 4; icmpType++ {
|
||||
payload := make([]byte, 8)
|
||||
payload[0] = icmpType
|
||||
packet := makeIPv6Packet(src, dst, 58, payload)
|
||||
|
||||
rejectPacket := CreateRejectPacket(packet, out)
|
||||
assert.Nil(t, rejectPacket, "ICMPv6 type %d should not generate a reject packet", icmpType)
|
||||
}
|
||||
|
||||
// ICMPv6 non-error types should still generate reject packets
|
||||
nonErrorTypes := []byte{128, 129, 133, 134}
|
||||
for _, icmpType := range nonErrorTypes {
|
||||
payload := make([]byte, 8)
|
||||
payload[0] = icmpType
|
||||
packet := makeIPv6Packet(src, dst, 58, payload)
|
||||
|
||||
rejectPacket := CreateRejectPacket(packet, out)
|
||||
assert.NotNil(t, rejectPacket, "ICMPv6 type %d should generate a reject packet", icmpType)
|
||||
}
|
||||
}
|
||||
|
||||
func Test_CreateRejectPacketIPv6_TooShort(t *testing.T) {
|
||||
// Packet too short to be valid IPv6
|
||||
out := make([]byte, MaxRejectPacketSize)
|
||||
assert.Nil(t, CreateRejectPacket([]byte{0x60}, out))
|
||||
assert.Nil(t, CreateRejectPacket(make([]byte, 39), out))
|
||||
}
|
||||
|
||||
func Test_CreateRejectPacketIPv6_ExtensionHeaders(t *testing.T) {
|
||||
src := net.ParseIP("fd00::1")
|
||||
dst := net.ParseIP("fd00::2")
|
||||
|
||||
// IPv6 + Hop-by-Hop extension header + TCP
|
||||
hopByHop := []byte{
|
||||
6, // next header: TCP
|
||||
0, // length (8 bytes total)
|
||||
0, 0, // padding
|
||||
0, 0, 0, 0,
|
||||
}
|
||||
tcpPayload := make([]byte, 20)
|
||||
tcpPayload[0] = 0x00
|
||||
tcpPayload[1] = 0x50
|
||||
tcpPayload[2] = 0x01
|
||||
tcpPayload[3] = 0xBB
|
||||
binary.BigEndian.PutUint32(tcpPayload[4:], 1000)
|
||||
binary.BigEndian.PutUint32(tcpPayload[8:], 2000)
|
||||
tcpPayload[12] = (20 >> 2) << 4
|
||||
tcpPayload[13] = 0b00010000 // ACK
|
||||
|
||||
payload := append(hopByHop, tcpPayload...)
|
||||
packet := makeIPv6Packet(src, dst, 0, payload) // next header 0 = Hop-by-Hop
|
||||
|
||||
out := make([]byte, MaxRejectPacketSize)
|
||||
rejectPacket := CreateRejectPacket(packet, out)
|
||||
assert.NotNil(t, rejectPacket)
|
||||
|
||||
// Should produce TCP RST
|
||||
expectedLen := ipv6.HeaderLen + 20
|
||||
assert.Len(t, rejectPacket, expectedLen)
|
||||
assert.Equal(t, byte(6), rejectPacket[6]) // next header is TCP
|
||||
tcpOut := rejectPacket[ipv6.HeaderLen:]
|
||||
assert.Equal(t, byte(0b00000100), tcpOut[13]) // RST only
|
||||
}
|
||||
|
||||
func TestCreateICMPEchoResponse_IPv4(t *testing.T) {
|
||||
// Build a simple IPv4 ICMP Echo Request
|
||||
packet := make([]byte, 28)
|
||||
packet[0] = 0x45 // version 4, IHL 5
|
||||
binary.BigEndian.PutUint16(packet[2:], uint16(28)) // total length
|
||||
packet[8] = 64 // TTL
|
||||
packet[9] = 1 // protocol ICMP
|
||||
copy(packet[12:16], net.IPv4(10, 0, 0, 1).To4()) // src
|
||||
copy(packet[16:20], net.IPv4(10, 0, 0, 2).To4()) // dst
|
||||
packet[20] = 8 // ICMP Echo Request
|
||||
|
||||
out := make([]byte, len(packet))
|
||||
result := CreateICMPEchoResponse(packet, out)
|
||||
assert.NotNil(t, result)
|
||||
assert.Equal(t, byte(0x45), result[0])
|
||||
// src/dst swapped
|
||||
assert.Equal(t, net.IPv4(10, 0, 0, 2).To4(), net.IP(result[12:16]))
|
||||
assert.Equal(t, net.IPv4(10, 0, 0, 1).To4(), net.IP(result[16:20]))
|
||||
// ICMP Echo Reply
|
||||
assert.Equal(t, byte(0), result[20])
|
||||
}
|
||||
|
||||
func TestCreateICMPEchoResponse_IPv6(t *testing.T) {
|
||||
src := net.ParseIP("fd00::1").To16()
|
||||
dst := net.ParseIP("fd00::2").To16()
|
||||
|
||||
// Build an IPv6 ICMPv6 Echo Request packet
|
||||
// IPv6 header (40 bytes) + ICMPv6 (8 bytes)
|
||||
packet := make([]byte, 48)
|
||||
packet[0] = 0x60 // version 6
|
||||
payloadLen := uint16(8) // ICMPv6 header only
|
||||
binary.BigEndian.PutUint16(packet[4:], payloadLen)
|
||||
packet[6] = 58 // Next Header: ICMPv6
|
||||
packet[7] = 64 // Hop Limit
|
||||
copy(packet[8:24], src) // src address
|
||||
copy(packet[24:40], dst) // dst address
|
||||
|
||||
// ICMPv6 Echo Request
|
||||
icmp := packet[40:]
|
||||
icmp[0] = 128 // type: Echo Request
|
||||
icmp[1] = 0 // code
|
||||
binary.BigEndian.PutUint16(icmp[4:], 1) // identifier
|
||||
binary.BigEndian.PutUint16(icmp[6:], 1) // sequence number
|
||||
|
||||
// Compute correct checksum for the request
|
||||
csum := ipv6PseudoheaderChecksum(src, dst, 58, uint32(payloadLen))
|
||||
binary.BigEndian.PutUint16(icmp[2:], tcpipChecksum(icmp, csum))
|
||||
|
||||
out := make([]byte, len(packet))
|
||||
result := CreateICMPEchoResponse(packet, out)
|
||||
assert.NotNil(t, result)
|
||||
|
||||
// Version should still be 6
|
||||
assert.Equal(t, byte(6), result[0]>>4)
|
||||
// src/dst swapped
|
||||
assert.Equal(t, dst, net.IP(result[8:24]))
|
||||
assert.Equal(t, src, net.IP(result[24:40]))
|
||||
// ICMPv6 Echo Reply type
|
||||
assert.Equal(t, byte(129), result[40])
|
||||
|
||||
// Verify checksum is valid (tcpipChecksum returns 0 when data+checksum is correct)
|
||||
respIcmp := result[40:]
|
||||
verifyCsum := ipv6PseudoheaderChecksum(result[8:24], result[24:40], 58, uint32(payloadLen))
|
||||
assert.Equal(t, uint16(0), tcpipChecksum(respIcmp, verifyCsum))
|
||||
}
|
||||
|
||||
func TestCreateICMPEchoResponse_IPv6_NotEchoRequest(t *testing.T) {
|
||||
src := net.ParseIP("fd00::1").To16()
|
||||
dst := net.ParseIP("fd00::2").To16()
|
||||
|
||||
packet := make([]byte, 48)
|
||||
packet[0] = 0x60
|
||||
binary.BigEndian.PutUint16(packet[4:], 8)
|
||||
packet[6] = 58
|
||||
packet[7] = 64
|
||||
copy(packet[8:24], src)
|
||||
copy(packet[24:40], dst)
|
||||
|
||||
// ICMPv6 type 1 (Destination Unreachable) - not Echo Request
|
||||
packet[40] = 1
|
||||
|
||||
out := make([]byte, len(packet))
|
||||
result := CreateICMPEchoResponse(packet, out)
|
||||
assert.Nil(t, result)
|
||||
}
|
||||
|
||||
func TestCreateICMPEchoResponse_IPv6_NotICMPv6(t *testing.T) {
|
||||
src := net.ParseIP("fd00::1").To16()
|
||||
dst := net.ParseIP("fd00::2").To16()
|
||||
|
||||
packet := make([]byte, 48)
|
||||
packet[0] = 0x60
|
||||
binary.BigEndian.PutUint16(packet[4:], 8)
|
||||
packet[6] = 6 // TCP, not ICMPv6
|
||||
packet[7] = 64
|
||||
copy(packet[8:24], src)
|
||||
copy(packet[24:40], dst)
|
||||
|
||||
out := make([]byte, len(packet))
|
||||
result := CreateICMPEchoResponse(packet, out)
|
||||
assert.Nil(t, result)
|
||||
}
|
||||
|
||||
+40
-7
@@ -36,6 +36,10 @@ type LightHouse struct {
|
||||
myVpnNetworksTable *bart.Lite
|
||||
punchy *Punchy
|
||||
|
||||
// localAddrsFn enumerates the underlay addresses we advertise. It is a field so tests can supply simulated
|
||||
// addresses rather than whatever this machine's NICs happen to be. Set it before Start.
|
||||
localAddrsFn func(*LocalAllowList) []netip.Addr
|
||||
|
||||
// Local cache of answers from light houses
|
||||
// map of vpn addr to answers
|
||||
addrMap map[netip.Addr]*RemoteList
|
||||
@@ -107,6 +111,10 @@ func NewLightHouseFromConfig(ctx context.Context, l *slog.Logger, c *config.C, c
|
||||
queryChan: make(chan netip.Addr, c.GetUint32("handshakes.query_buffer", 64)),
|
||||
l: l,
|
||||
}
|
||||
h.localAddrsFn = func(al *LocalAllowList) []netip.Addr {
|
||||
return localAddrs(h.l, al)
|
||||
}
|
||||
|
||||
lighthouses := make([]netip.Addr, 0)
|
||||
h.lighthouses.Store(&lighthouses)
|
||||
staticList := make(map[netip.Addr]struct{})
|
||||
@@ -272,16 +280,18 @@ func (lh *LightHouse) reload(c *config.C, initial bool) error {
|
||||
//NOTE: many things will get much simpler when we combine static_host_map and lighthouse.hosts in config
|
||||
if initial || c.HasChanged("static_host_map") || c.HasChanged("static_map.cadence") || c.HasChanged("static_map.network") || c.HasChanged("static_map.lookup_timeout") {
|
||||
// Clean up. Entries still in the static_host_map will be re-built.
|
||||
// Entries no longer present must have their (possible) background DNS goroutines stopped.
|
||||
if existingStaticList := lh.staticList.Load(); existingStaticList != nil {
|
||||
ourselves := lh.myVpnNetworks[0].Addr()
|
||||
oldStaticList := lh.staticList.Load()
|
||||
if oldStaticList != nil {
|
||||
lh.RLock()
|
||||
for staticVpnAddr := range *existingStaticList {
|
||||
for staticVpnAddr := range *oldStaticList {
|
||||
if am, ok := lh.addrMap[staticVpnAddr]; ok && am != nil {
|
||||
am.hr.Cancel()
|
||||
am.ResetForOwner(ourselves)
|
||||
}
|
||||
}
|
||||
lh.RUnlock()
|
||||
}
|
||||
|
||||
// Build a new list based on current config.
|
||||
staticList := make(map[netip.Addr]struct{})
|
||||
err := lh.loadStaticMap(c, staticList)
|
||||
@@ -289,6 +299,21 @@ func (lh *LightHouse) reload(c *config.C, initial bool) error {
|
||||
return err
|
||||
}
|
||||
|
||||
// For entries removed from static_host_map, stop the DNS goroutine and drop the cached addrs.
|
||||
// All addrs must come from the lighthouses now that it's no longer a static host.
|
||||
if oldStaticList != nil {
|
||||
lh.RLock()
|
||||
for staticVpnAddr := range *oldStaticList {
|
||||
if _, stillStatic := staticList[staticVpnAddr]; stillStatic {
|
||||
continue
|
||||
}
|
||||
if am, ok := lh.addrMap[staticVpnAddr]; ok && am != nil {
|
||||
am.ClearHostnameResults()
|
||||
}
|
||||
}
|
||||
lh.RUnlock()
|
||||
}
|
||||
|
||||
lh.staticList.Store(&staticList)
|
||||
if !initial {
|
||||
if c.HasChanged("static_host_map") {
|
||||
@@ -901,7 +926,7 @@ func (lh *LightHouse) SendUpdate() {
|
||||
}
|
||||
|
||||
lal := lh.GetLocalAllowList()
|
||||
for _, e := range localAddrs(lh.l, lal) {
|
||||
for _, e := range lh.localAddrsFn(lal) {
|
||||
if lh.myVpnNetworksTable.Contains(e) {
|
||||
continue
|
||||
}
|
||||
@@ -1401,6 +1426,9 @@ func (lhh *LightHouseHandler) handleHostPunchNotification(n *NebulaMeta, fromVpn
|
||||
|
||||
remoteAllowList := lhh.lh.GetRemoteAllowList()
|
||||
for _, a := range n.Details.V4AddrPorts {
|
||||
if a == nil {
|
||||
continue
|
||||
}
|
||||
b := protoV4AddrPortToNetAddrPort(a)
|
||||
if remoteAllowList.Allow(detailsVpnAddr, b.Addr()) {
|
||||
lhh.lh.punchy.Schedule(b, detailsVpnAddr)
|
||||
@@ -1408,6 +1436,9 @@ func (lhh *LightHouseHandler) handleHostPunchNotification(n *NebulaMeta, fromVpn
|
||||
}
|
||||
|
||||
for _, a := range n.Details.V6AddrPorts {
|
||||
if a == nil {
|
||||
continue
|
||||
}
|
||||
b := protoV6AddrPortToNetAddrPort(a)
|
||||
if remoteAllowList.Allow(detailsVpnAddr, b.Addr()) {
|
||||
lhh.lh.punchy.Schedule(b, detailsVpnAddr)
|
||||
@@ -1437,7 +1468,7 @@ func protoV6AddrPortToNetAddrPort(ap *V6AddrPort) netip.AddrPort {
|
||||
b := [16]byte{}
|
||||
binary.BigEndian.PutUint64(b[:8], ap.Hi)
|
||||
binary.BigEndian.PutUint64(b[8:], ap.Lo)
|
||||
return netip.AddrPortFrom(netip.AddrFrom16(b), uint16(ap.Port))
|
||||
return netip.AddrPortFrom(netip.AddrFrom16(b).Unmap(), uint16(ap.Port))
|
||||
}
|
||||
|
||||
func netAddrToProtoAddr(addr netip.Addr) *Addr {
|
||||
@@ -1477,7 +1508,9 @@ func (d *NebulaMetaDetails) GetRelays() []netip.Addr {
|
||||
|
||||
if len(d.RelayVpnAddrs) > 0 {
|
||||
for _, r := range d.RelayVpnAddrs {
|
||||
relays = append(relays, protoAddrToNetAddr(r))
|
||||
if r != nil {
|
||||
relays = append(relays, protoAddrToNetAddr(r))
|
||||
}
|
||||
}
|
||||
}
|
||||
return relays
|
||||
|
||||
@@ -303,6 +303,132 @@ func TestLighthouse_reload(t *testing.T) {
|
||||
require.NoError(t, err)
|
||||
}
|
||||
|
||||
// TestLighthouse_reloadStaticHostMap verifies that reloading static_host_map applies the new
|
||||
// config rather than appending to it. See issue #718.
|
||||
func TestLighthouse_reloadStaticHostMap(t *testing.T) {
|
||||
l := test.NewLogger()
|
||||
c := config.NewC(l)
|
||||
c.Settings["lighthouse"] = map[string]any{"am_lighthouse": true}
|
||||
c.Settings["listen"] = map[string]any{"port": 4242}
|
||||
c.Settings["static_host_map"] = map[string]any{
|
||||
"10.128.0.2": []any{"1.1.1.1:4242"},
|
||||
}
|
||||
|
||||
myVpnNet := netip.MustParsePrefix("10.128.0.1/24")
|
||||
nt := new(bart.Lite)
|
||||
nt.Insert(myVpnNet)
|
||||
cs := &CertState{
|
||||
myVpnNetworks: []netip.Prefix{myVpnNet},
|
||||
myVpnNetworksTable: nt,
|
||||
}
|
||||
|
||||
lh, err := NewLightHouseFromConfig(t.Context(), l, c, cs, nil, nil)
|
||||
require.NoError(t, err)
|
||||
|
||||
staticHost := netip.MustParseAddr("10.128.0.2")
|
||||
otherHost := netip.MustParseAddr("10.128.0.3")
|
||||
|
||||
// Capture the RemoteList pointer up front; an in-flight handshake would hold the same one
|
||||
// on hostinfo.remotes, so it must reflect every reload below.
|
||||
pinned := lh.Query(staticHost)
|
||||
require.NotNil(t, pinned)
|
||||
assert.Equal(t, []netip.AddrPort{netip.MustParseAddrPort("1.1.1.1:4242")}, pinned.CopyAddrs([]netip.Prefix{}))
|
||||
|
||||
// Replace the remote address. The new address should be the only entry.
|
||||
nc := map[string]any{
|
||||
"static_host_map": map[string]any{
|
||||
"10.128.0.2": []any{"2.2.2.2:4242"},
|
||||
},
|
||||
}
|
||||
rc, err := yaml.Marshal(nc)
|
||||
require.NoError(t, err)
|
||||
require.NoError(t, c.ReloadConfigString(string(rc)))
|
||||
|
||||
rl := lh.Query(staticHost)
|
||||
require.NotNil(t, rl)
|
||||
assert.Same(t, pinned, rl, "RemoteList pointer must stay stable so in-flight handshakes pick up the change")
|
||||
assert.Equal(t, []netip.AddrPort{netip.MustParseAddrPort("2.2.2.2:4242")}, rl.CopyAddrs([]netip.Prefix{}))
|
||||
|
||||
// Reload back to the original IP. Mirrors the round-trip in issue #718 step 6-8 where
|
||||
// the buggy reload produced [1.1.1.1, 2.2.2.2, 1.1.1.1] instead of [1.1.1.1].
|
||||
nc = map[string]any{
|
||||
"static_host_map": map[string]any{
|
||||
"10.128.0.2": []any{"1.1.1.1:4242"},
|
||||
},
|
||||
}
|
||||
rc, err = yaml.Marshal(nc)
|
||||
require.NoError(t, err)
|
||||
require.NoError(t, c.ReloadConfigString(string(rc)))
|
||||
|
||||
rl = lh.Query(staticHost)
|
||||
require.NotNil(t, rl)
|
||||
assert.Same(t, pinned, rl)
|
||||
assert.Equal(t, []netip.AddrPort{netip.MustParseAddrPort("1.1.1.1:4242")}, rl.CopyAddrs([]netip.Prefix{}))
|
||||
|
||||
// Reload with the same config. An unchanged entry must not duplicate.
|
||||
require.NoError(t, c.ReloadConfigString(string(rc)))
|
||||
|
||||
rl = lh.Query(staticHost)
|
||||
require.NotNil(t, rl)
|
||||
assert.Same(t, pinned, rl)
|
||||
assert.Equal(t, []netip.AddrPort{netip.MustParseAddrPort("1.1.1.1:4242")}, rl.CopyAddrs([]netip.Prefix{}))
|
||||
|
||||
// Switch back to 2.2.2.2 so the rest of the test continues against a known address.
|
||||
nc = map[string]any{
|
||||
"static_host_map": map[string]any{
|
||||
"10.128.0.2": []any{"2.2.2.2:4242"},
|
||||
},
|
||||
}
|
||||
rc, err = yaml.Marshal(nc)
|
||||
require.NoError(t, err)
|
||||
require.NoError(t, c.ReloadConfigString(string(rc)))
|
||||
|
||||
// Add a second host alongside the first. Both should be present, neither duplicated.
|
||||
nc = map[string]any{
|
||||
"static_host_map": map[string]any{
|
||||
"10.128.0.2": []any{"2.2.2.2:4242"},
|
||||
"10.128.0.3": []any{"3.3.3.3:4242"},
|
||||
},
|
||||
}
|
||||
rc, err = yaml.Marshal(nc)
|
||||
require.NoError(t, err)
|
||||
require.NoError(t, c.ReloadConfigString(string(rc)))
|
||||
|
||||
rl = lh.Query(staticHost)
|
||||
require.NotNil(t, rl)
|
||||
assert.Same(t, pinned, rl, "adding a sibling entry must not displace the existing RemoteList")
|
||||
assert.Equal(t, []netip.AddrPort{netip.MustParseAddrPort("2.2.2.2:4242")}, rl.CopyAddrs([]netip.Prefix{}))
|
||||
|
||||
rl = lh.Query(otherHost)
|
||||
require.NotNil(t, rl)
|
||||
assert.Equal(t, []netip.AddrPort{netip.MustParseAddrPort("3.3.3.3:4242")}, rl.CopyAddrs([]netip.Prefix{}))
|
||||
|
||||
// Drop the first host entirely. The vpnAddr is no longer marked static, our owner
|
||||
// contribution is cleared, but the addrMap entry stays in place so non-static cache
|
||||
// data (from lighthouse queries) on the same RemoteList isn't lost. In-flight handshakes
|
||||
// that already had the pointer see an empty address list rather than retrying stale ones.
|
||||
nc = map[string]any{
|
||||
"static_host_map": map[string]any{
|
||||
"10.128.0.3": []any{"3.3.3.3:4242"},
|
||||
},
|
||||
}
|
||||
rc, err = yaml.Marshal(nc)
|
||||
require.NoError(t, err)
|
||||
require.NoError(t, c.ReloadConfigString(string(rc)))
|
||||
|
||||
_, isStatic := lh.GetStaticHostList()[staticHost]
|
||||
assert.False(t, isStatic)
|
||||
|
||||
rl = lh.Query(staticHost)
|
||||
require.NotNil(t, rl)
|
||||
assert.Same(t, pinned, rl)
|
||||
assert.Empty(t, rl.CopyAddrs([]netip.Prefix{}))
|
||||
|
||||
rl = lh.Query(otherHost)
|
||||
require.NotNil(t, rl)
|
||||
assert.Equal(t, []netip.AddrPort{netip.MustParseAddrPort("3.3.3.3:4242")}, rl.CopyAddrs([]netip.Prefix{}))
|
||||
}
|
||||
|
||||
func newLHHostRequest(fromAddr netip.AddrPort, myVpnIp, queryVpnIp netip.Addr, lhh *LightHouseHandler) testLhReply {
|
||||
req := &NebulaMeta{
|
||||
Type: NebulaMeta_HostQuery,
|
||||
|
||||
@@ -5,10 +5,7 @@ import (
|
||||
"fmt"
|
||||
"log/slog"
|
||||
"net"
|
||||
"net/http"
|
||||
_ "net/http/pprof"
|
||||
"net/netip"
|
||||
"runtime"
|
||||
"runtime/debug"
|
||||
"strings"
|
||||
"time"
|
||||
@@ -36,9 +33,6 @@ func Main(c *config.C, configTest bool, buildVersion string, l *slog.Logger, dev
|
||||
buildVersion = moduleVersion()
|
||||
}
|
||||
|
||||
//todo no merge
|
||||
go http.ListenAndServe(":6060", nil)
|
||||
|
||||
// Print the config if in test, the exit comes later
|
||||
if configTest {
|
||||
b, err := yaml.Marshal(c.Settings)
|
||||
@@ -136,6 +130,17 @@ func Main(c *config.C, configTest bool, buildVersion string, l *slog.Logger, dev
|
||||
udpConns := make([]udp.Conn, routines)
|
||||
port := c.GetInt("listen.port", 0)
|
||||
|
||||
// Callers get no handle to these until the Control is returned, release them on any error.
|
||||
defer func() {
|
||||
if reterr != nil {
|
||||
for _, u := range udpConns {
|
||||
if u != nil {
|
||||
_ = u.Close()
|
||||
}
|
||||
}
|
||||
}
|
||||
}()
|
||||
|
||||
if !configTest {
|
||||
rawListenHost := c.GetString("listen.host", "0.0.0.0")
|
||||
var listenHost netip.Addr
|
||||
@@ -200,7 +205,7 @@ func Main(c *config.C, configTest bool, buildVersion string, l *slog.Logger, dev
|
||||
handshakeManager := NewHandshakeManager(l, hostMap, lightHouse, udpConns[0], handshakeConfig)
|
||||
lightHouse.handshakeTrigger = handshakeManager.trigger
|
||||
|
||||
ds, err := newDnsServerFromConfig(ctx, l, pki.getCertState(), hostMap, c)
|
||||
ds, err := newDnsServerFromConfig(ctx, l, pki, hostMap, c)
|
||||
if err != nil {
|
||||
l.Warn("Failed to start DNS responder", "error", err)
|
||||
}
|
||||
@@ -226,7 +231,6 @@ func Main(c *config.C, configTest bool, buildVersion string, l *slog.Logger, dev
|
||||
relayManager: NewRelayManager(ctx, l, hostMap, c),
|
||||
punchy: punchy,
|
||||
ConntrackCacheTimeout: conntrackCacheTimeout,
|
||||
CpuAffinity: parseCpuAffinity(c, l, routines),
|
||||
l: l,
|
||||
}
|
||||
|
||||
@@ -244,7 +248,6 @@ func Main(c *config.C, configTest bool, buildVersion string, l *slog.Logger, dev
|
||||
ifce.reloadDisconnectInvalid(c)
|
||||
ifce.reloadSendRecvError(c)
|
||||
ifce.reloadAcceptRecvError(c)
|
||||
ifce.reloadEcn(c)
|
||||
|
||||
handshakeManager.f = ifce
|
||||
go handshakeManager.Run(ctx)
|
||||
@@ -265,6 +268,8 @@ func Main(c *config.C, configTest bool, buildVersion string, l *slog.Logger, dev
|
||||
|
||||
attachCommands(l, c, ssh, ifce)
|
||||
|
||||
networkChanges := udp.NewNetworkChangeMonitor(ctx, l, c)
|
||||
|
||||
return &Control{
|
||||
state: StateReady,
|
||||
f: ifce,
|
||||
@@ -275,57 +280,11 @@ func Main(c *config.C, configTest bool, buildVersion string, l *slog.Logger, dev
|
||||
statsStart: stats.Start,
|
||||
dnsStart: ds.Start,
|
||||
lighthouseStart: lightHouse.StartUpdateWorker,
|
||||
networkChangeStart: networkChanges.Start,
|
||||
connectionManagerStart: connManager.Start,
|
||||
}, nil
|
||||
}
|
||||
|
||||
// parseCpuAffinity reads `tun.cpu_affinity` from the config — a list of
|
||||
// integer CPU IDs, one per TUN reader goroutine. Empty / unset returns nil
|
||||
// (listenIn falls back to its default `i % NumCPU` pinning). Length
|
||||
// mismatch with `routines` is a warning, not an error: shorter lists are
|
||||
// modulo-cycled across queues, longer lists' tail is ignored. Invalid
|
||||
// entries (non-integer, out of range) are also a warning and disable the
|
||||
// override entirely so we don't silently pin to the wrong CPU.
|
||||
func parseCpuAffinity(c *config.C, l *slog.Logger, routines int) []int {
|
||||
raw := c.Get("tun.cpu_affinity")
|
||||
if raw == nil {
|
||||
return nil
|
||||
}
|
||||
rv, ok := raw.([]any)
|
||||
if !ok {
|
||||
l.Warn("tun.cpu_affinity must be a list of integers; ignoring", "value", raw)
|
||||
return nil
|
||||
}
|
||||
nCPU := runtime.NumCPU()
|
||||
cpus := make([]int, 0, len(rv))
|
||||
for i, e := range rv {
|
||||
var cpu int
|
||||
switch v := e.(type) {
|
||||
case int:
|
||||
cpu = v
|
||||
case int64:
|
||||
cpu = int(v)
|
||||
case float64:
|
||||
cpu = int(v)
|
||||
default:
|
||||
l.Warn("tun.cpu_affinity entry not an integer; ignoring affinity",
|
||||
"index", i, "value", e)
|
||||
return nil
|
||||
}
|
||||
if cpu < 0 || cpu >= nCPU {
|
||||
l.Warn("tun.cpu_affinity entry out of range; ignoring affinity",
|
||||
"index", i, "cpu", cpu, "num_cpu", nCPU)
|
||||
return nil
|
||||
}
|
||||
cpus = append(cpus, cpu)
|
||||
}
|
||||
if len(cpus) != routines {
|
||||
l.Warn("tun.cpu_affinity length doesn't match routines; queues will modulo-cycle through the list",
|
||||
"affinity_len", len(cpus), "routines", routines)
|
||||
}
|
||||
return cpus
|
||||
}
|
||||
|
||||
func moduleVersion() string {
|
||||
info, ok := debug.ReadBuildInfo()
|
||||
if !ok {
|
||||
|
||||
+4
-65
@@ -4,77 +4,16 @@
|
||||
package noiseutil
|
||||
|
||||
import (
|
||||
"crypto/aes"
|
||||
"crypto/cipher"
|
||||
"encoding/binary"
|
||||
|
||||
// unsafe needed for go:linkname
|
||||
_ "unsafe"
|
||||
"crypto/boring"
|
||||
|
||||
"github.com/flynn/noise"
|
||||
)
|
||||
|
||||
var CipherAESGCM noise.CipherFunc = CipherAESGCMFIPS140
|
||||
|
||||
// EncryptLockNeeded indicates if calls to Encrypt need a lock
|
||||
// This is true for boringcrypto because the Seal function verifies that the
|
||||
// nonce is strictly increasing.
|
||||
const EncryptLockNeeded = true
|
||||
|
||||
// NewGCMTLS is no longer exposed in go1.19+, so we need to link it in
|
||||
// See: https://github.com/golang/go/issues/56326
|
||||
//
|
||||
// NewGCMTLS is the internal method used with boringcrypto that provides a
|
||||
// validated mode of AES-GCM which enforces the nonce is strictly
|
||||
// monotonically increasing. This is the TLS 1.2 specification for nonce
|
||||
// generation (which also matches the method used by the Noise Protocol)
|
||||
//
|
||||
// - https://github.com/golang/go/blob/go1.19/src/crypto/tls/cipher_suites.go#L520-L522
|
||||
// - https://github.com/golang/go/blob/go1.19/src/crypto/internal/boring/aes.go#L235-L237
|
||||
// - https://github.com/golang/go/blob/go1.19/src/crypto/internal/boring/aes.go#L250
|
||||
// - https://github.com/google/boringssl/blob/ae223d6138807a13006342edfeef32e813246b39/include/openssl/aead.h#L379-L381
|
||||
// - https://github.com/google/boringssl/blob/ae223d6138807a13006342edfeef32e813246b39/crypto/fipsmodule/cipher/e_aes.c#L1082-L1093
|
||||
//
|
||||
//go:linkname newGCMTLS crypto/internal/boring.NewGCMTLS
|
||||
func newGCMTLS(c cipher.Block) (cipher.AEAD, error)
|
||||
|
||||
type cipherFn struct {
|
||||
fn func([32]byte) noise.Cipher
|
||||
name string
|
||||
}
|
||||
|
||||
func (c cipherFn) Cipher(k [32]byte) noise.Cipher { return c.fn(k) }
|
||||
func (c cipherFn) CipherName() string { return c.name }
|
||||
|
||||
// CipherAESGCM is the AES256-GCM AEAD cipher (using NewGCMTLS when GoBoring is present)
|
||||
var CipherAESGCM noise.CipherFunc = cipherFn{cipherAESGCMBoring, "AESGCM"}
|
||||
|
||||
func cipherAESGCMBoring(k [32]byte) noise.Cipher {
|
||||
c, err := aes.NewCipher(k[:])
|
||||
if err != nil {
|
||||
panic(err)
|
||||
}
|
||||
gcm, err := newGCMTLS(c)
|
||||
if err != nil {
|
||||
panic(err)
|
||||
}
|
||||
return aeadCipher{
|
||||
gcm,
|
||||
func(n uint64) []byte {
|
||||
var nonce [12]byte
|
||||
binary.BigEndian.PutUint64(nonce[4:], n)
|
||||
return nonce[:]
|
||||
},
|
||||
}
|
||||
}
|
||||
|
||||
type aeadCipher struct {
|
||||
cipher.AEAD
|
||||
nonce func(uint64) []byte
|
||||
}
|
||||
|
||||
func (c aeadCipher) Encrypt(out []byte, n uint64, ad, plaintext []byte) []byte {
|
||||
return c.Seal(out, c.nonce(n), plaintext, ad)
|
||||
}
|
||||
|
||||
func (c aeadCipher) Decrypt(out []byte, n uint64, ad, ciphertext []byte) ([]byte, error) {
|
||||
return c.Open(out, c.nonce(n), ciphertext, ad)
|
||||
}
|
||||
var boringEnabled = boring.Enabled()
|
||||
|
||||
@@ -4,8 +4,6 @@
|
||||
package noiseutil
|
||||
|
||||
import (
|
||||
"crypto/boring"
|
||||
"encoding/hex"
|
||||
"testing"
|
||||
|
||||
"github.com/stretchr/testify/assert"
|
||||
@@ -14,33 +12,3 @@ import (
|
||||
func TestEncryptLockNeeded(t *testing.T) {
|
||||
assert.True(t, EncryptLockNeeded)
|
||||
}
|
||||
|
||||
// Ensure NewGCMTLS validates the nonce is non-repeating
|
||||
func TestNewGCMTLS(t *testing.T) {
|
||||
assert.True(t, boring.Enabled())
|
||||
|
||||
// Test Case 16 from GCM Spec:
|
||||
// - (now dead link): http://csrc.nist.gov/groups/ST/toolkit/BCM/documents/proposedmodes/gcm/gcm-spec.pdf
|
||||
// - as listed in boringssl tests: https://github.com/google/boringssl/blob/fips-20220613/crypto/cipher_extra/test/cipher_tests.txt#L412-L418
|
||||
key, _ := hex.DecodeString("feffe9928665731c6d6a8f9467308308feffe9928665731c6d6a8f9467308308")
|
||||
iv, _ := hex.DecodeString("cafebabefacedbaddecaf888")
|
||||
plaintext, _ := hex.DecodeString("d9313225f88406e5a55909c5aff5269a86a7a9531534f7da2e4c303d8a318a721c3c0c95956809532fcf0e2449a6b525b16aedf5aa0de657ba637b39")
|
||||
aad, _ := hex.DecodeString("feedfacedeadbeeffeedfacedeadbeefabaddad2")
|
||||
expected, _ := hex.DecodeString("522dc1f099567d07f47f37a32a84427d643a8cdcbfe5c0c97598a2bd2555d1aa8cb08e48590dbb3da7b08b1056828838c5f61e6393ba7a0abcc9f662")
|
||||
expectedTag, _ := hex.DecodeString("76fc6ece0f4e1768cddf8853bb2d551b")
|
||||
|
||||
expected = append(expected, expectedTag...)
|
||||
|
||||
var keyArray [32]byte
|
||||
copy(keyArray[:], key)
|
||||
c := CipherAESGCM.Cipher(keyArray)
|
||||
aead := c.(aeadCipher).AEAD
|
||||
|
||||
dst := aead.Seal([]byte{}, iv, plaintext, aad)
|
||||
assert.Equal(t, expected, dst)
|
||||
|
||||
// We expect this to fail since we are re-encrypting with a repeat IV
|
||||
assert.PanicsWithError(t, "boringcrypto: EVP_AEAD_CTX_seal failed", func() {
|
||||
dst = aead.Seal([]byte{}, iv, plaintext, aad)
|
||||
})
|
||||
}
|
||||
|
||||
@@ -29,8 +29,11 @@ type CipherState interface {
|
||||
// NewCipherState wraps the post-handshake noise.CipherState in the per-cipher type that matches cipherFunc.
|
||||
// cipherFunc must be the same cipher used to build the noise CipherSuite that produced s.
|
||||
func NewCipherState(s *noise.CipherState, cipherFunc noise.CipherFunc) CipherState {
|
||||
if cs, ok := s.Cipher().(CipherState); ok {
|
||||
return cs
|
||||
}
|
||||
switch cipherFunc.CipherName() {
|
||||
case CipherAESGCM.CipherName():
|
||||
case noise.CipherAESGCM.CipherName():
|
||||
return NewCipherStateAESGCM(s)
|
||||
case noise.CipherChaChaPoly.CipherName():
|
||||
return NewCipherStateChaChaPoly(s)
|
||||
|
||||
@@ -1,6 +1,7 @@
|
||||
package noiseutil
|
||||
|
||||
import (
|
||||
"crypto/fips140"
|
||||
"testing"
|
||||
|
||||
"github.com/flynn/noise"
|
||||
@@ -10,24 +11,30 @@ import (
|
||||
|
||||
func TestCipherStateAESGCMRoundtrip(t *testing.T) {
|
||||
enc, dec := buildCipherStates(t, CipherAESGCM)
|
||||
roundtrip(t, NewCipherStateAESGCM(enc), NewCipherStateAESGCM(dec))
|
||||
roundtrip(t, NewCipherState(enc, CipherAESGCM), NewCipherState(dec, CipherAESGCM))
|
||||
}
|
||||
|
||||
func TestCipherStateChaChaPolyRoundtrip(t *testing.T) {
|
||||
enc, dec := buildCipherStates(t, noise.CipherChaChaPoly)
|
||||
roundtrip(t, NewCipherStateChaChaPoly(enc), NewCipherStateChaChaPoly(dec))
|
||||
roundtrip(t, NewCipherState(enc, noise.CipherChaChaPoly), NewCipherState(dec, noise.CipherChaChaPoly))
|
||||
}
|
||||
|
||||
func TestNewCipherStateDispatch(t *testing.T) {
|
||||
encA, _ := buildCipherStates(t, CipherAESGCM)
|
||||
encC, _ := buildCipherStates(t, noise.CipherChaChaPoly)
|
||||
|
||||
assert.IsType(t, &CipherStateAESGCM{}, NewCipherState(encA, CipherAESGCM))
|
||||
if !boringEnabled && !fips140.Enabled() {
|
||||
assert.IsType(t, &CipherStateAESGCM{}, NewCipherState(encA, CipherAESGCM))
|
||||
} else {
|
||||
// fips140
|
||||
assert.IsType(t, encA.Cipher(), NewCipherState(encA, CipherAESGCM))
|
||||
}
|
||||
|
||||
assert.IsType(t, &CipherStateChaChaPoly{}, NewCipherState(encC, noise.CipherChaChaPoly))
|
||||
}
|
||||
|
||||
func TestNewCipherStateUnsupportedPanics(t *testing.T) {
|
||||
enc, _ := buildCipherStates(t, CipherAESGCM)
|
||||
enc, _ := buildCipherStates(t, noise.CipherChaChaPoly)
|
||||
assert.Panics(t, func() {
|
||||
NewCipherState(enc, fakeCipher{})
|
||||
})
|
||||
|
||||
@@ -0,0 +1,179 @@
|
||||
package noiseutil
|
||||
|
||||
import (
|
||||
"bytes"
|
||||
"crypto/cipher"
|
||||
"crypto/fips140"
|
||||
"encoding/binary"
|
||||
"fmt"
|
||||
"reflect"
|
||||
"runtime"
|
||||
"unsafe"
|
||||
|
||||
// unsafe needed for go:linkname
|
||||
_ "crypto/tls"
|
||||
_ "unsafe"
|
||||
|
||||
"github.com/flynn/noise"
|
||||
)
|
||||
|
||||
// TODO: Use NewGCMWithCounterNonce or NewGCMForQUIC once available:
|
||||
// - https://github.com/golang/go/issues/73110
|
||||
// - https://github.com/golang/go/issues/79219
|
||||
// Using tls.aeadAESGCMTLS13 gives us the TLS 1.3 GCM, which also verifies
|
||||
// that the nonce is strictly increasing. This works for both boringcrypto
|
||||
// and fips140.
|
||||
//
|
||||
//go:linkname aeadAESGCMTLS13 crypto/tls.aeadAESGCMTLS13
|
||||
func aeadAESGCMTLS13(key, noncePrefix []byte) cipher.AEAD
|
||||
|
||||
type cipherFn struct {
|
||||
fn func([32]byte) noise.Cipher
|
||||
name string
|
||||
}
|
||||
|
||||
func (c cipherFn) Cipher(k [32]byte) noise.Cipher { return c.fn(k) }
|
||||
func (c cipherFn) CipherName() string { return c.name }
|
||||
|
||||
// CipherAESGCMFIPS140 is the AES256-GCM AEAD cipher (using tls.aeadAESGCMTLS13, for both boringcrypto and fips140)
|
||||
var CipherAESGCMFIPS140 noise.CipherFunc = cipherFn{cipherAESGCMFIPS140, "AESGCM"}
|
||||
|
||||
// tls.aeadAESGCMTLS13 uses a 4 byte static prefix and an 8 byte XOR mask
|
||||
var emptyNonce = []byte{0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0}
|
||||
|
||||
func cipherAESGCMFIPS140(k [32]byte) noise.Cipher {
|
||||
gcm := aeadAESGCMTLS13(k[:], emptyNonce)
|
||||
gcm = extractFIPSAEAD(gcm)
|
||||
return &aeadGCMFIPS140Cipher{
|
||||
AEAD: gcm,
|
||||
}
|
||||
}
|
||||
|
||||
type aeadGCMFIPS140Cipher struct {
|
||||
cipher.AEAD
|
||||
ready bool
|
||||
}
|
||||
|
||||
// Extract the internal FIPS GCM implementation from the tls wrapper. The TLS
|
||||
// wrapper is not thread safe around Open, so instead of locking around it we
|
||||
// can grab the internal implementation that is thread safe. This is the FIPS
|
||||
// module implementation: `crypto/internal/fips140/aes/gcm.GCMWithXORCounterNonce`
|
||||
//
|
||||
// - https://github.com/golang/go/blob/go1.26.4/src/crypto/internal/fips140/aes/gcm/gcm_nonces.go#L212-L287
|
||||
//
|
||||
// The wrapper is struct `crypto/tls.xorNonceAEAD` , with field `aead`:
|
||||
//
|
||||
// - https://github.com/golang/go/blob/go1.26.4/src/crypto/tls/cipher_suites.go#L482-L487
|
||||
//
|
||||
// This can be cleaned up once these FIPS implementations are exposed directly:
|
||||
//
|
||||
// - https://github.com/golang/go/issues/73110
|
||||
func extractFIPSAEAD(xorNonceAEAD cipher.AEAD) cipher.AEAD {
|
||||
r := reflect.ValueOf(xorNonceAEAD)
|
||||
v := r.Elem().FieldByName("aead")
|
||||
if !v.IsValid() {
|
||||
// The internal crypto/tls.xorNonceAEAD struct no longer has an `aead`
|
||||
// field. This can only happen on a Go version this code was not built
|
||||
// against; the package init() self-test guards against ever reaching
|
||||
// this at runtime, so this is a defensive fail-fast.
|
||||
panic(fmt.Sprintf("noiseutil: could not extract FIPS AEAD from %T on %s: no `aead` field (incompatible Go version)", xorNonceAEAD, runtime.Version()))
|
||||
}
|
||||
v2 := reflect.NewAt(v.Type(), unsafe.Pointer(v.UnsafeAddr())).Elem()
|
||||
aead, ok := v2.Interface().(cipher.AEAD)
|
||||
if !ok {
|
||||
panic(fmt.Sprintf("noiseutil: extracted FIPS `aead` field is %s, not a cipher.AEAD, on %s (incompatible Go version)", v2.Type(), runtime.Version()))
|
||||
}
|
||||
return aead
|
||||
}
|
||||
|
||||
func (c *aeadGCMFIPS140Cipher) init(nonce []byte) {
|
||||
// GCMWithXORCounterNonce expects that the first call to Seal
|
||||
// is with a counter of `0`, this is how it extracts the nonce mask.
|
||||
// We can clean this up in the future when NewGCMWithCounterNonce or
|
||||
// NewGCMForQUIC are available:
|
||||
if !bytes.Equal(emptyNonce, nonce) {
|
||||
c.AEAD.Seal([]byte{}, emptyNonce, []byte{}, []byte{})
|
||||
}
|
||||
c.ready = true
|
||||
}
|
||||
|
||||
func (c *aeadGCMFIPS140Cipher) Seal(dst, nonce, plaintext, additionalData []byte) []byte {
|
||||
if !c.ready {
|
||||
c.init(nonce)
|
||||
}
|
||||
return c.AEAD.Seal(dst, nonce, plaintext, additionalData)
|
||||
}
|
||||
|
||||
func (c *aeadGCMFIPS140Cipher) Encrypt(out []byte, n uint64, ad, plaintext []byte) []byte {
|
||||
return c.Seal(out, aeadGCMFIPS140CipherNonce(n), plaintext, ad)
|
||||
}
|
||||
|
||||
func (c *aeadGCMFIPS140Cipher) Decrypt(out []byte, n uint64, ad, ciphertext []byte) ([]byte, error) {
|
||||
return c.Open(out, aeadGCMFIPS140CipherNonce(n), ciphertext, ad)
|
||||
}
|
||||
|
||||
func (c *aeadGCMFIPS140Cipher) EncryptDanger(out, ad, plaintext []byte, n uint64, nb []byte) ([]byte, error) {
|
||||
binary.BigEndian.PutUint64(nb[4:], n)
|
||||
out = c.Seal(out, nb, plaintext, ad)
|
||||
return out, nil
|
||||
}
|
||||
|
||||
func (c *aeadGCMFIPS140Cipher) DecryptDanger(out, ad, ciphertext []byte, n uint64, nb []byte) ([]byte, error) {
|
||||
binary.BigEndian.PutUint64(nb[4:], n)
|
||||
return c.Open(out, nb, ciphertext, ad)
|
||||
}
|
||||
|
||||
func aeadGCMFIPS140CipherNonce(n uint64) []byte {
|
||||
// GCMWithXORCounterNonce uses a 4 byte static prefix and an 8 byte nonce
|
||||
var nonce [12]byte
|
||||
binary.BigEndian.PutUint64(nonce[4:], n)
|
||||
return nonce[:]
|
||||
}
|
||||
|
||||
// init validates the go:linkname + reflection extraction and the nonce-reuse
|
||||
// protection at startup, in every build. cipherAESGCMFIPS140 relies on unexported
|
||||
// crypto/tls and crypto/internal/fips140 internals; if a future Go version changes
|
||||
// those, this fails fast with a clear message instead of panicking per-handshake
|
||||
// (or, worse, silently losing the strictly-increasing nonce check that is the whole
|
||||
// point of using this cipher). Because this file has no build tag, this self-test
|
||||
// runs even in non-FIPS builds, so the default CI lane catches an incompatible Go.
|
||||
func init() {
|
||||
var key [32]byte
|
||||
c := cipherAESGCMFIPS140(key)
|
||||
|
||||
// Verify the extracted AEAD produces a working encrypt/decrypt roundtrip.
|
||||
plaintext := []byte("nebula fips140 self-test")
|
||||
ad := []byte("ad")
|
||||
ct := c.Encrypt(nil, 1, ad, plaintext)
|
||||
pt, err := c.Decrypt(nil, 1, ad, ct)
|
||||
if err != nil {
|
||||
panic(fmt.Sprintf("noiseutil: FIPS AES-GCM self-test roundtrip failed on %s: %v", runtime.Version(), err))
|
||||
}
|
||||
if !bytes.Equal(pt, plaintext) {
|
||||
panic(fmt.Sprintf("noiseutil: FIPS AES-GCM self-test roundtrip returned wrong plaintext on %s", runtime.Version()))
|
||||
}
|
||||
|
||||
// Verify the nonce-reuse protection still fires: re-encrypting with the same
|
||||
// counter must panic. This is the guarantee we depend on for nonce safety, so
|
||||
// if the extraction ever silently yields an AEAD without it, refuse to start.
|
||||
// The strictly-increasing nonce check only exists under boringcrypto/fips140;
|
||||
// in a plain build aeadAESGCMTLS13 wraps a standard GCM that does not enforce
|
||||
// it (and CipherAESGCMFIPS140 is unused there anyway), so only assert it when
|
||||
// one of those modes is active.
|
||||
if (boringEnabled || fips140.Enabled()) && !reusePanics(c) {
|
||||
panic(fmt.Sprintf("noiseutil: FIPS AES-GCM self-test did not reject a reused nonce on %s; nonce-reuse protection is missing (incompatible Go version)", runtime.Version()))
|
||||
}
|
||||
}
|
||||
|
||||
// reusePanics reports whether re-encrypting with an already-used counter panics,
|
||||
// as GCMWithXORCounterNonce is expected to.
|
||||
func reusePanics(c noise.Cipher) (panicked bool) {
|
||||
c.Encrypt(nil, 2, nil, nil)
|
||||
defer func() {
|
||||
if recover() != nil {
|
||||
panicked = true
|
||||
}
|
||||
}()
|
||||
c.Encrypt(nil, 2, nil, nil)
|
||||
return false
|
||||
}
|
||||
@@ -0,0 +1,48 @@
|
||||
package noiseutil
|
||||
|
||||
import (
|
||||
"crypto/cipher"
|
||||
"crypto/fips140"
|
||||
"encoding/hex"
|
||||
"testing"
|
||||
|
||||
"github.com/stretchr/testify/assert"
|
||||
)
|
||||
|
||||
// Ensure NewAESGCM validates the nonce is non-repeating
|
||||
func TestNewAESGCM(t *testing.T) {
|
||||
if !boringEnabled && !fips140.Enabled() {
|
||||
t.Skip("TestNewAESGCM is only for fips140/boringcrypto")
|
||||
}
|
||||
|
||||
key, _ := hex.DecodeString("feffe9928665731c6d6a8f9467308308feffe9928665731c6d6a8f9467308308")
|
||||
iv, _ := hex.DecodeString("00000000facedbaddecaf888")
|
||||
plaintext, _ := hex.DecodeString("d9313225f88406e5a55909c5aff5269a86a7a9531534f7da2e4c303d8a318a721c3c0c95956809532fcf0e2449a6b525b16aedf5aa0de657ba637b39")
|
||||
aad, _ := hex.DecodeString("feedfacedeadbeeffeedfacedeadbeefabaddad2")
|
||||
expected, _ := hex.DecodeString("6a65c2edd45bd63c7e29f40e3d2ed8ba2b99f4c83135383d5676652f255059ceb24863ff10afb1089db701245da87fb88d3acd5f9dd0770cac220c3c04145caf25e190aeb775e7080401c628")
|
||||
|
||||
var keyArray [32]byte
|
||||
copy(keyArray[:], key)
|
||||
c := CipherAESGCM.Cipher(keyArray)
|
||||
aead := c.(cipher.AEAD)
|
||||
|
||||
dst := aead.Seal([]byte{}, iv, plaintext, aad)
|
||||
t.Logf("%x", dst)
|
||||
assert.Equal(t, expected, dst)
|
||||
|
||||
// We expect this to fail since we are re-encrypting with a repeat IV
|
||||
switch {
|
||||
case boringEnabled:
|
||||
assert.PanicsWithError(t, "boringcrypto: EVP_AEAD_CTX_seal failed", func() {
|
||||
dst = aead.Seal([]byte{}, iv, plaintext, aad)
|
||||
})
|
||||
case fips140.Version() == "v1.0.0":
|
||||
assert.PanicsWithValue(t, "crypto/cipher: counter decreased", func() {
|
||||
dst = aead.Seal([]byte{}, iv, plaintext, aad)
|
||||
})
|
||||
default:
|
||||
assert.PanicsWithValue(t, "crypto/cipher: counter decreased or remained the same", func() {
|
||||
dst = aead.Seal([]byte{}, iv, plaintext, aad)
|
||||
})
|
||||
}
|
||||
}
|
||||
@@ -0,0 +1,13 @@
|
||||
//go:build fips140enforce
|
||||
|
||||
package noiseutil
|
||||
|
||||
import (
|
||||
"crypto/fips140"
|
||||
)
|
||||
|
||||
func init() {
|
||||
if !fips140.Enforced() {
|
||||
panic("Nebula compiled with fips140 expects FIPS140 to be enforced. Do not set GODEBUG=fips140, or if you do it must be set as GODEBUG=fips140=only")
|
||||
}
|
||||
}
|
||||
+15
-4
@@ -1,14 +1,25 @@
|
||||
//go:build !boringcrypto
|
||||
// +build !boringcrypto
|
||||
|
||||
package noiseutil
|
||||
|
||||
import (
|
||||
"crypto/fips140"
|
||||
|
||||
"github.com/flynn/noise"
|
||||
)
|
||||
|
||||
// EncryptLockNeeded indicates if calls to Encrypt need a lock
|
||||
const EncryptLockNeeded = false
|
||||
var EncryptLockNeeded = fips140.Enabled()
|
||||
|
||||
// CipherAESGCM is the standard noise.CipherAESGCM when boringcrypto is not enabled
|
||||
var CipherAESGCM noise.CipherFunc = noise.CipherAESGCM
|
||||
var CipherAESGCM noise.CipherFunc = initAESGCM()
|
||||
|
||||
func initAESGCM() noise.CipherFunc {
|
||||
if fips140.Enabled() {
|
||||
return CipherAESGCMFIPS140
|
||||
} else {
|
||||
return noise.CipherAESGCM
|
||||
}
|
||||
|
||||
}
|
||||
|
||||
var boringEnabled = false
|
||||
|
||||
@@ -1,14 +0,0 @@
|
||||
//go:build !boringcrypto
|
||||
// +build !boringcrypto
|
||||
|
||||
package noiseutil
|
||||
|
||||
import (
|
||||
"testing"
|
||||
|
||||
"github.com/stretchr/testify/assert"
|
||||
)
|
||||
|
||||
func TestEncryptLockNeeded(t *testing.T) {
|
||||
assert.False(t, EncryptLockNeeded)
|
||||
}
|
||||
+234
-135
@@ -2,20 +2,27 @@ package nebula
|
||||
|
||||
import (
|
||||
"context"
|
||||
"encoding/binary"
|
||||
"errors"
|
||||
"log/slog"
|
||||
"net/netip"
|
||||
"time"
|
||||
|
||||
"github.com/google/gopacket/layers"
|
||||
"golang.org/x/net/ipv6"
|
||||
|
||||
"github.com/slackhq/nebula/firewall"
|
||||
"github.com/slackhq/nebula/header"
|
||||
"github.com/slackhq/nebula/overlay/batch"
|
||||
"github.com/slackhq/nebula/udp"
|
||||
"golang.org/x/net/ipv4"
|
||||
)
|
||||
|
||||
const (
|
||||
minFwPacketLen = 4
|
||||
)
|
||||
|
||||
var ErrOutOfWindow = errors.New("out of window packet")
|
||||
|
||||
func (f *Interface) readOutsidePackets(via ViaSender, out []byte, packet []byte, h *header.H, fwPacket *firewall.Packet, parsedRx *batch.RxParsed, lhf *LightHouseHandler, nb []byte, q int, localCache firewall.ConntrackCache, meta udp.RxMeta) {
|
||||
func (f *Interface) readOutsidePackets(via ViaSender, out []byte, packet []byte, h *header.H, fwPacket *firewall.Packet, lhf *LightHouseHandler, nb []byte, q int, localCache firewall.ConntrackCache) {
|
||||
err := h.Parse(packet)
|
||||
if err != nil {
|
||||
// Hole punch packets are 0 or 1 byte big, so lets ignore printing those errors
|
||||
@@ -95,27 +102,31 @@ func (f *Interface) readOutsidePackets(via ViaSender, out []byte, packet []byte,
|
||||
return
|
||||
}
|
||||
|
||||
if len(packet) < header.Len+hostinfo.ConnectionState.dKey.Overhead() {
|
||||
f.messageMetrics.RxInvalid(1)
|
||||
if f.l.Enabled(context.Background(), slog.LevelDebug) {
|
||||
f.l.Debug("packet too small", "from", via, "length", len(packet))
|
||||
}
|
||||
return
|
||||
}
|
||||
|
||||
// All remaining packets are encrypted
|
||||
ci := hostinfo.ConnectionState
|
||||
if !ci.window.Check(f.l, h.MessageCounter) {
|
||||
return
|
||||
}
|
||||
|
||||
// Relay packets are special
|
||||
if isMessageRelay {
|
||||
f.handleOutsideRelayPacket(hostinfo, via, out, packet, h, fwPacket, parsedRx, lhf, nb, q, localCache, meta)
|
||||
|
||||
// Relay packets are special, this branch should always early-return
|
||||
if err = hostinfo.ConnectionState.VerifyRelay(f.l, h.MessageCounter, packet, nb); err != nil {
|
||||
if f.l.Enabled(context.Background(), slog.LevelDebug) {
|
||||
hostinfo.logger(f.l).Debug("Failed to verify relay packet", "error", err, "from", via, "header", h)
|
||||
}
|
||||
return
|
||||
}
|
||||
f.handleOutsideRelayPacket(hostinfo, via, out, packet, h, fwPacket, lhf, nb, q, localCache)
|
||||
return
|
||||
}
|
||||
|
||||
out, err = f.decrypt(hostinfo, h.MessageCounter, out, packet, h, nb)
|
||||
out, err = hostinfo.ConnectionState.Decrypt(f.l, h.MessageCounter, out, packet, nb)
|
||||
if err != nil {
|
||||
if f.l.Enabled(context.Background(), slog.LevelDebug) {
|
||||
hostinfo.logger(f.l).Debug("Failed to decrypt packet",
|
||||
"error", err,
|
||||
"from", via,
|
||||
"header", h,
|
||||
)
|
||||
hostinfo.logger(f.l).Debug("Failed to decrypt packet", "error", err, "from", via, "header", h)
|
||||
}
|
||||
return
|
||||
}
|
||||
@@ -128,7 +139,7 @@ func (f *Interface) readOutsidePackets(via ViaSender, out []byte, packet []byte,
|
||||
case header.Message:
|
||||
switch h.Subtype {
|
||||
case header.MessageNone:
|
||||
f.handleOutsideMessagePacket(hostinfo, out, packet, fwPacket, parsedRx, nb, q, localCache, meta)
|
||||
f.handleOutsideMessagePacket(hostinfo, out, packet, fwPacket, nb, q, localCache)
|
||||
default:
|
||||
hostinfo.logger(f.l).Error("IsValidSubType was true, but unexpected message subtype seen", "from", via, "header", h)
|
||||
return
|
||||
@@ -143,7 +154,8 @@ func (f *Interface) readOutsidePackets(via ViaSender, out []byte, packet []byte,
|
||||
case header.TestReply:
|
||||
// No-op, useful for the Roaming and connectionManager side-effects above
|
||||
case header.TestRequest:
|
||||
f.send(header.Test, header.TestReply, ci, hostinfo, out, nb, out)
|
||||
//recycle the input packet ciphertext as our output buffer
|
||||
f.send(header.Test, header.TestReply, hostinfo.ConnectionState, hostinfo, out, nb, packet)
|
||||
default:
|
||||
hostinfo.logger(f.l).Error("IsValidSubType was true, but unexpected test subtype seen", "from", via, "header", h)
|
||||
return
|
||||
@@ -161,21 +173,9 @@ func (f *Interface) readOutsidePackets(via ViaSender, out []byte, packet []byte,
|
||||
}
|
||||
}
|
||||
|
||||
func (f *Interface) handleOutsideRelayPacket(hostinfo *HostInfo, via ViaSender, out []byte, packet []byte, h *header.H, fwPacket *firewall.Packet, parsedRx *batch.RxParsed, lhf *LightHouseHandler, nb []byte, q int, localCache firewall.ConntrackCache, meta udp.RxMeta) {
|
||||
// The entire body is sent as AD, not encrypted.
|
||||
// The packet consists of a 16-byte parsed Nebula header, Associated Data-protected payload, and a trailing 16-byte AEAD signature value.
|
||||
// The packet is guaranteed to be at least 16 bytes at this point, b/c it got past the h.Parse() call above. If it's
|
||||
// otherwise malformed (meaning, there is no trailing 16 byte AEAD value), then this will result in at worst a 0-length slice
|
||||
// which will gracefully fail in the DecryptDanger call.
|
||||
signedPayload := packet[:len(packet)-hostinfo.ConnectionState.dKey.Overhead()]
|
||||
signatureValue := packet[len(packet)-hostinfo.ConnectionState.dKey.Overhead():]
|
||||
var err error
|
||||
out, err = hostinfo.ConnectionState.dKey.DecryptDanger(out, signedPayload, signatureValue, h.MessageCounter, nb)
|
||||
if err != nil {
|
||||
return
|
||||
}
|
||||
// Successfully validated the thing. Get rid of the Relay header.
|
||||
signedPayload = signedPayload[header.Len:]
|
||||
func (f *Interface) handleOutsideRelayPacket(hostinfo *HostInfo, via ViaSender, out []byte, packet []byte, h *header.H, fwPacket *firewall.Packet, lhf *LightHouseHandler, nb []byte, q int, localCache firewall.ConntrackCache) {
|
||||
// Successfully validated the thing. Get rid of the Relay header and the AEAD tag
|
||||
signedPayload := packet[header.Len : len(packet)-hostinfo.ConnectionState.dKey.Overhead()]
|
||||
// Pull the Roaming parts up here, and return in all call paths.
|
||||
f.handleHostRoaming(hostinfo, via)
|
||||
// Track usage of both the HostInfo and the Relay for the received & authenticated packet
|
||||
@@ -187,8 +187,7 @@ func (f *Interface) handleOutsideRelayPacket(hostinfo *HostInfo, via ViaSender,
|
||||
// The only way this happens is if hostmap has an index to the correct HostInfo, but the HostInfo is missing
|
||||
// its internal mapping. This should never happen.
|
||||
hostinfo.logger(f.l).Error("HostInfo missing remote relay index",
|
||||
"vpnAddrs", hostinfo.vpnAddrs,
|
||||
"remoteIndex", h.RemoteIndex,
|
||||
"relayRemoteIndex", h.RemoteIndex,
|
||||
)
|
||||
return
|
||||
}
|
||||
@@ -200,20 +199,18 @@ func (f *Interface) handleOutsideRelayPacket(hostinfo *HostInfo, via ViaSender,
|
||||
via = ViaSender{
|
||||
UdpAddr: via.UdpAddr,
|
||||
relayHI: hostinfo,
|
||||
remoteIdx: relay.RemoteIndex,
|
||||
relay: relay,
|
||||
IsRelayed: true,
|
||||
}
|
||||
f.readOutsidePackets(via, out[:0], signedPayload, h, fwPacket, parsedRx, lhf, nb, q, localCache, meta)
|
||||
return
|
||||
f.readOutsidePackets(via, out[:0], signedPayload, h, fwPacket, lhf, nb, q, localCache)
|
||||
case ForwardingType:
|
||||
// Find the target HostInfo relay object
|
||||
targetHI, targetRelay, err := f.hostMap.QueryVpnAddrsRelayFor(hostinfo.vpnAddrs, relay.PeerAddr)
|
||||
if err != nil {
|
||||
hostinfo.logger(f.l).Info("Failed to find target host info by ip",
|
||||
"relayTo", relay.PeerAddr,
|
||||
"relayFrom", hostinfo.vpnAddrs[0],
|
||||
"error", err,
|
||||
"hostinfo.vpnAddrs", hostinfo.vpnAddrs,
|
||||
)
|
||||
return
|
||||
}
|
||||
@@ -222,9 +219,10 @@ func (f *Interface) handleOutsideRelayPacket(hostinfo *HostInfo, via ViaSender,
|
||||
if targetRelay.State == Established {
|
||||
switch targetRelay.Type {
|
||||
case ForwardingType:
|
||||
// Forward this packet through the relay tunnel
|
||||
// Find the target HostInfo //todo it would potentially be nice to batch these
|
||||
f.SendVia(targetHI, targetRelay, signedPayload, nb, out, false)
|
||||
// Forward this packet through the relay tunnel, rebuilding it in place.
|
||||
// Encode overwrites the old outer header, and the new AEAD tag lands where the old one was
|
||||
fwdBuf := packet[:0:len(packet)] // Cap to len(packet) to protect memory from a larger parent buffer
|
||||
f.SendVia(targetHI, targetRelay, signedPayload, nb, fwdBuf, true)
|
||||
case TerminalType:
|
||||
hostinfo.logger(f.l).Error("Unexpected Relay Type of Terminal")
|
||||
return
|
||||
@@ -264,7 +262,8 @@ func (f *Interface) sendCloseTunnel(h *HostInfo) {
|
||||
}
|
||||
|
||||
func (f *Interface) handleHostRoaming(hostinfo *HostInfo, via ViaSender) {
|
||||
if !via.IsRelayed && hostinfo.remote != via.UdpAddr {
|
||||
curRemote := hostinfo.GetRemote()
|
||||
if !via.IsRelayed && curRemote != via.UdpAddr {
|
||||
if !f.lightHouse.GetRemoteAllowList().AllowAll(hostinfo.vpnAddrs, via.UdpAddr.Addr()) {
|
||||
if f.l.Enabled(context.Background(), slog.LevelDebug) {
|
||||
hostinfo.logger(f.l).Debug("lighthouse.remote_allow_list denied roaming", "newAddr", via.UdpAddr)
|
||||
@@ -276,7 +275,7 @@ func (f *Interface) handleHostRoaming(hostinfo *HostInfo, via ViaSender) {
|
||||
if f.l.Enabled(context.Background(), slog.LevelDebug) {
|
||||
hostinfo.logger(f.l).Debug("Suppressing roam back to previous remote",
|
||||
"suppressSeconds", RoamingSuppressSeconds,
|
||||
"udpAddr", hostinfo.remote,
|
||||
"udpAddr", curRemote,
|
||||
"newAddr", via.UdpAddr,
|
||||
)
|
||||
}
|
||||
@@ -284,11 +283,11 @@ func (f *Interface) handleHostRoaming(hostinfo *HostInfo, via ViaSender) {
|
||||
}
|
||||
|
||||
hostinfo.logger(f.l).Info("Host roamed to new udp ip/port.",
|
||||
"udpAddr", hostinfo.remote,
|
||||
"udpAddr", curRemote,
|
||||
"newAddr", via.UdpAddr,
|
||||
)
|
||||
hostinfo.lastRoam = time.Now()
|
||||
hostinfo.lastRoamRemote = hostinfo.remote
|
||||
hostinfo.lastRoamRemote = curRemote
|
||||
hostinfo.SetRemote(via.UdpAddr)
|
||||
}
|
||||
|
||||
@@ -304,95 +303,194 @@ var (
|
||||
)
|
||||
|
||||
// newPacket validates and parses the interesting bits for the firewall out of the ip and sub protocol headers
|
||||
// newPacket parses data into a fully-hydrated firewall.Packet — kept as a
|
||||
// thin wrapper around newPacketKey + Hydrate so there's one source of
|
||||
// parse logic. Callers that don't need the netip.Addr-rich form (e.g.
|
||||
// conntrack-only paths) should use newPacketKey directly.
|
||||
func newPacket(data []byte, incoming bool, fp *firewall.Packet) error {
|
||||
var parsed batch.RxParsed
|
||||
if err := batch.ParsePacket(data, incoming, &parsed); err != nil {
|
||||
return err
|
||||
if len(data) < 1 {
|
||||
return ErrPacketTooShort
|
||||
}
|
||||
parsed.Key.Hydrate(fp)
|
||||
|
||||
version := int((data[0] >> 4) & 0x0f)
|
||||
switch version {
|
||||
case ipv4.Version:
|
||||
return parseV4(data, incoming, fp)
|
||||
case ipv6.Version:
|
||||
return parseV6(data, incoming, fp)
|
||||
}
|
||||
return ErrUnknownIPVersion
|
||||
}
|
||||
|
||||
func parseV6(data []byte, incoming bool, fp *firewall.Packet) error {
|
||||
dataLen := len(data)
|
||||
if dataLen < ipv6.HeaderLen {
|
||||
return ErrIPv6PacketTooShort
|
||||
}
|
||||
|
||||
if incoming {
|
||||
fp.RemoteAddr, _ = netip.AddrFromSlice(data[8:24])
|
||||
fp.LocalAddr, _ = netip.AddrFromSlice(data[24:40])
|
||||
} else {
|
||||
fp.LocalAddr, _ = netip.AddrFromSlice(data[8:24])
|
||||
fp.RemoteAddr, _ = netip.AddrFromSlice(data[24:40])
|
||||
}
|
||||
|
||||
protoAt := 6 // NextHeader is at 6 bytes into the ipv6 header
|
||||
offset := ipv6.HeaderLen // Start at the end of the ipv6 header
|
||||
next := 0
|
||||
for {
|
||||
if protoAt >= dataLen {
|
||||
break
|
||||
}
|
||||
proto := layers.IPProtocol(data[protoAt])
|
||||
|
||||
switch proto {
|
||||
case layers.IPProtocolESP, layers.IPProtocolNoNextHeader:
|
||||
fp.Protocol = uint8(proto)
|
||||
fp.RemotePort = 0
|
||||
fp.LocalPort = 0
|
||||
fp.Fragment = false
|
||||
return nil
|
||||
|
||||
case layers.IPProtocolICMPv6:
|
||||
if dataLen < offset+6 {
|
||||
return ErrIPv6PacketTooShort
|
||||
}
|
||||
fp.Protocol = uint8(proto)
|
||||
fp.LocalPort = 0 //incoming vs outgoing doesn't matter for icmpv6
|
||||
icmptype := data[offset+1]
|
||||
switch icmptype {
|
||||
case layers.ICMPv6TypeEchoRequest, layers.ICMPv6TypeEchoReply:
|
||||
fp.RemotePort = binary.BigEndian.Uint16(data[offset+4 : offset+6]) //identifier
|
||||
default:
|
||||
fp.RemotePort = 0
|
||||
}
|
||||
fp.Fragment = false
|
||||
return nil
|
||||
|
||||
case layers.IPProtocolTCP, layers.IPProtocolUDP:
|
||||
if dataLen < offset+4 {
|
||||
return ErrIPv6PacketTooShort
|
||||
}
|
||||
|
||||
fp.Protocol = uint8(proto)
|
||||
if incoming {
|
||||
fp.RemotePort = binary.BigEndian.Uint16(data[offset : offset+2])
|
||||
fp.LocalPort = binary.BigEndian.Uint16(data[offset+2 : offset+4])
|
||||
} else {
|
||||
fp.LocalPort = binary.BigEndian.Uint16(data[offset : offset+2])
|
||||
fp.RemotePort = binary.BigEndian.Uint16(data[offset+2 : offset+4])
|
||||
}
|
||||
|
||||
fp.Fragment = false
|
||||
return nil
|
||||
|
||||
case layers.IPProtocolIPv6Fragment:
|
||||
// Fragment header is 8 bytes, need at least offset+4 to read the offset field
|
||||
if dataLen < offset+8 {
|
||||
return ErrIPv6PacketTooShort
|
||||
}
|
||||
|
||||
// Check if this is the first fragment
|
||||
fragmentOffset := binary.BigEndian.Uint16(data[offset+2:offset+4]) &^ uint16(0x7) // Remove the reserved and M flag bits
|
||||
if fragmentOffset != 0 {
|
||||
// Non-first fragment, use what we have now and stop processing
|
||||
fp.Protocol = data[offset]
|
||||
fp.Fragment = true
|
||||
fp.RemotePort = 0
|
||||
fp.LocalPort = 0
|
||||
return nil
|
||||
}
|
||||
|
||||
// The next loop should be the transport layer since we are the first fragment
|
||||
next = 8 // Fragment headers are always 8 bytes
|
||||
|
||||
case layers.IPProtocolAH:
|
||||
// Auth headers, used by IPSec, have a different meaning for header length
|
||||
if dataLen <= offset+1 {
|
||||
break
|
||||
}
|
||||
next = (int(data[offset+1]) + 2) << 2
|
||||
|
||||
default:
|
||||
// Normal ipv6 header length processing
|
||||
if dataLen <= offset+1 {
|
||||
break
|
||||
}
|
||||
next = (int(data[offset+1]) + 1) << 3
|
||||
}
|
||||
|
||||
if next <= 0 {
|
||||
// Safety check, each ipv6 header has to be at least 8 bytes
|
||||
next = 8
|
||||
}
|
||||
|
||||
protoAt = offset
|
||||
offset = offset + next
|
||||
}
|
||||
|
||||
return ErrIPv6CouldNotFindPayload
|
||||
}
|
||||
|
||||
func parseV4(data []byte, incoming bool, fp *firewall.Packet) error {
|
||||
// Do we at least have an ipv4 header worth of data?
|
||||
if len(data) < ipv4.HeaderLen {
|
||||
return ErrIPv4PacketTooShort
|
||||
}
|
||||
|
||||
// Adjust our start position based on the advertised ip header length
|
||||
ihl := int(data[0]&0x0f) << 2
|
||||
|
||||
// Well-formed ip header length?
|
||||
if ihl < ipv4.HeaderLen {
|
||||
return ErrIPv4InvalidHeaderLength
|
||||
}
|
||||
|
||||
// Check if this is the second or further fragment of a fragmented packet.
|
||||
flagsfrags := binary.BigEndian.Uint16(data[6:8])
|
||||
fp.Fragment = (flagsfrags & 0x1FFF) != 0
|
||||
|
||||
// Firewall handles protocol checks
|
||||
fp.Protocol = data[9]
|
||||
|
||||
// Accounting for a variable header length, do we have enough data for our src/dst tuples?
|
||||
minLen := ihl
|
||||
if !fp.Fragment {
|
||||
if fp.Protocol == firewall.ProtoICMP {
|
||||
minLen += minFwPacketLen + 2
|
||||
} else {
|
||||
minLen += minFwPacketLen
|
||||
}
|
||||
}
|
||||
|
||||
if len(data) < minLen {
|
||||
return ErrIPv4InvalidHeaderLength
|
||||
}
|
||||
|
||||
if incoming { // Firewall packets are locally oriented
|
||||
fp.RemoteAddr, _ = netip.AddrFromSlice(data[12:16])
|
||||
fp.LocalAddr, _ = netip.AddrFromSlice(data[16:20])
|
||||
} else {
|
||||
fp.LocalAddr, _ = netip.AddrFromSlice(data[12:16])
|
||||
fp.RemoteAddr, _ = netip.AddrFromSlice(data[16:20])
|
||||
}
|
||||
|
||||
if fp.Fragment {
|
||||
fp.RemotePort = 0
|
||||
fp.LocalPort = 0
|
||||
} else if fp.Protocol == firewall.ProtoICMP { //note that orientation doesn't matter on ICMP
|
||||
fp.RemotePort = binary.BigEndian.Uint16(data[ihl+4 : ihl+6]) //identifier
|
||||
fp.LocalPort = 0 //code would be uint16(data[ihl+1])
|
||||
} else if incoming {
|
||||
fp.RemotePort = binary.BigEndian.Uint16(data[ihl : ihl+2]) //src port
|
||||
fp.LocalPort = binary.BigEndian.Uint16(data[ihl+2 : ihl+4]) //dst port
|
||||
} else {
|
||||
fp.LocalPort = binary.BigEndian.Uint16(data[ihl : ihl+2]) //src port
|
||||
fp.RemotePort = binary.BigEndian.Uint16(data[ihl+2 : ihl+4]) //dst port
|
||||
}
|
||||
|
||||
return nil
|
||||
}
|
||||
|
||||
func (f *Interface) decrypt(hostinfo *HostInfo, mc uint64, out []byte, packet []byte, h *header.H, nb []byte) ([]byte, error) {
|
||||
var err error
|
||||
out, err = hostinfo.ConnectionState.dKey.DecryptDanger(out, packet[:header.Len], packet[header.Len:], mc, nb)
|
||||
if err != nil {
|
||||
return nil, err
|
||||
}
|
||||
|
||||
if !hostinfo.ConnectionState.window.Update(f.l, mc) {
|
||||
return nil, ErrOutOfWindow
|
||||
}
|
||||
|
||||
return out, nil
|
||||
}
|
||||
|
||||
// 2-bit IP-level ECN codepoints (lower bits of IPv4 ToS / IPv6 TC).
|
||||
const (
|
||||
ecnNotECT = 0x00
|
||||
ecnECT1 = 0x01
|
||||
ecnECT0 = 0x02
|
||||
ecnCE = 0x03
|
||||
)
|
||||
|
||||
// applyOuterECN folds an outer CE mark from the underlay into the inner
|
||||
// IP header per RFC 6040 normal mode. It mutates pkt[1] in place. Other
|
||||
// codepoints are advisory only and leave the inner unchanged.
|
||||
//
|
||||
// Merge cases (outer × inner → action):
|
||||
//
|
||||
// outer != CE : no-op (inner is authoritative)
|
||||
// outer == CE, inner Not-ECT : log; cannot propagate to a non-ECN host
|
||||
// outer == CE, inner ECT/CE : rewrite inner ECN to CE
|
||||
func applyOuterECN(pkt []byte, outerECN byte, hostinfo *HostInfo, l *slog.Logger) {
|
||||
if outerECN&ecnCE != ecnCE || len(pkt) < 2 {
|
||||
return
|
||||
}
|
||||
switch pkt[0] >> 4 {
|
||||
case 4:
|
||||
switch pkt[1] & 0x03 {
|
||||
case ecnNotECT:
|
||||
if l.Enabled(context.Background(), slog.LevelDebug) {
|
||||
hostinfo.logger(l).Debug("RFC 6040: outer CE on inner Not-ECT, leaving inner unchanged")
|
||||
}
|
||||
case ecnCE:
|
||||
// Already CE.
|
||||
default:
|
||||
pkt[1] = (pkt[1] &^ 0x03) | ecnCE
|
||||
}
|
||||
case 6:
|
||||
switch (pkt[1] >> 4) & 0x03 {
|
||||
case ecnNotECT:
|
||||
if l.Enabled(context.Background(), slog.LevelDebug) {
|
||||
hostinfo.logger(l).Debug("RFC 6040: outer CE on inner Not-ECT, leaving inner unchanged")
|
||||
}
|
||||
case ecnCE:
|
||||
// Already CE.
|
||||
default:
|
||||
pkt[1] = (pkt[1] &^ 0x30) | (ecnCE << 4)
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
func (f *Interface) handleOutsideMessagePacket(hostinfo *HostInfo, out []byte, packet []byte, fwPacket *firewall.Packet, parsedRx *batch.RxParsed, nb []byte, q int, localCache firewall.ConntrackCache, meta udp.RxMeta) {
|
||||
// RFC 6040 normal-mode combine: fold any outer CE mark stamped by the
|
||||
// underlay into the inner header before firewall + TUN write. Other
|
||||
// outer codepoints are advisory only — we keep the inner unchanged.
|
||||
if f.ecnEnabled.Load() {
|
||||
applyOuterECN(out, meta.OuterECN, hostinfo, f.l)
|
||||
}
|
||||
|
||||
// Single IP+L4 walk feeds the firewall conntrack key (parsedRx.Key)
|
||||
// and the batcher hint (parsedRx.tcp/udp). Replaces newPacket — and
|
||||
// pointedly does NOT fill fwPacket.LocalAddr/RemoteAddr, since
|
||||
// firewall.Drop's fast path uses Key alone and only hydrates fwPacket
|
||||
// from Key on the slow path.
|
||||
*fwPacket = firewall.Packet{}
|
||||
err := batch.ParsePacket(out, true, parsedRx)
|
||||
func (f *Interface) handleOutsideMessagePacket(hostinfo *HostInfo, out []byte, packet []byte, fwPacket *firewall.Packet, nb []byte, q int, localCache firewall.ConntrackCache) {
|
||||
err := newPacket(out, true, fwPacket)
|
||||
if err != nil {
|
||||
hostinfo.logger(f.l).Warn("Error while validating inbound packet",
|
||||
"error", err,
|
||||
@@ -401,7 +499,7 @@ func (f *Interface) handleOutsideMessagePacket(hostinfo *HostInfo, out []byte, p
|
||||
return
|
||||
}
|
||||
|
||||
dropReason := f.firewall.Drop(parsedRx.Key, fwPacket, true, hostinfo, f.pki.GetCAPool(), localCache)
|
||||
dropReason := f.firewall.Drop(*fwPacket, true, hostinfo, f.pki.GetCAPool(), localCache)
|
||||
if dropReason != nil {
|
||||
// NOTE: We give `packet` as the `out` here since we already decrypted from it and we don't need it anymore
|
||||
// This gives us a buffer to build the reject packet in
|
||||
@@ -415,7 +513,7 @@ func (f *Interface) handleOutsideMessagePacket(hostinfo *HostInfo, out []byte, p
|
||||
return
|
||||
}
|
||||
|
||||
err = f.batchers[q].CommitInbound(out, parsedRx)
|
||||
_, err = f.readers[q].Write(out)
|
||||
if err != nil {
|
||||
f.l.Error("Failed to write to tun", "error", err)
|
||||
}
|
||||
@@ -462,10 +560,11 @@ func (f *Interface) handleRecvError(addr netip.AddrPort, h *header.H) {
|
||||
return
|
||||
}
|
||||
|
||||
if hostinfo.remote.IsValid() && hostinfo.remote != addr {
|
||||
hr := hostinfo.GetRemote()
|
||||
if hr.IsValid() && hr != addr {
|
||||
f.l.Info("Someone spoofing recv_errors?",
|
||||
"addr", addr,
|
||||
"hostinfoRemote", hostinfo.remote,
|
||||
"hostinfoRemote", hr,
|
||||
)
|
||||
return
|
||||
}
|
||||
|
||||
+54
-20
@@ -11,7 +11,6 @@ import (
|
||||
"github.com/google/gopacket/layers"
|
||||
|
||||
"github.com/slackhq/nebula/firewall"
|
||||
"github.com/slackhq/nebula/overlay/batch"
|
||||
"github.com/stretchr/testify/assert"
|
||||
"github.com/stretchr/testify/require"
|
||||
"golang.org/x/net/ipv4"
|
||||
@@ -22,13 +21,13 @@ func Test_newPacket(t *testing.T) {
|
||||
|
||||
// length fails
|
||||
err := newPacket([]byte{}, true, p)
|
||||
require.ErrorIs(t, err, batch.ErrPacketTooShort)
|
||||
require.ErrorIs(t, err, ErrPacketTooShort)
|
||||
|
||||
err = newPacket([]byte{0x40}, true, p)
|
||||
require.ErrorIs(t, err, batch.ErrIPv4PacketTooShort)
|
||||
require.ErrorIs(t, err, ErrIPv4PacketTooShort)
|
||||
|
||||
err = newPacket([]byte{0x60}, true, p)
|
||||
require.ErrorIs(t, err, batch.ErrIPv6PacketTooShort)
|
||||
require.ErrorIs(t, err, ErrIPv6PacketTooShort)
|
||||
|
||||
// length fail with ip options
|
||||
h := ipv4.Header{
|
||||
@@ -41,15 +40,15 @@ func Test_newPacket(t *testing.T) {
|
||||
|
||||
b, _ := h.Marshal()
|
||||
err = newPacket(b, true, p)
|
||||
require.ErrorIs(t, err, batch.ErrIPv4InvalidHeaderLength)
|
||||
require.ErrorIs(t, err, ErrIPv4InvalidHeaderLength)
|
||||
|
||||
// not an ipv4 packet
|
||||
err = newPacket([]byte{0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0}, true, p)
|
||||
require.ErrorIs(t, err, batch.ErrUnknownIPVersion)
|
||||
require.ErrorIs(t, err, ErrUnknownIPVersion)
|
||||
|
||||
// invalid ihl
|
||||
err = newPacket([]byte{4<<4 | (8 >> 2 & 0x0f), 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0}, true, p)
|
||||
require.ErrorIs(t, err, batch.ErrIPv4InvalidHeaderLength)
|
||||
require.ErrorIs(t, err, ErrIPv4InvalidHeaderLength)
|
||||
|
||||
// account for variable ip header length - incoming
|
||||
h = ipv4.Header{
|
||||
@@ -116,7 +115,7 @@ func Test_newPacket_v6(t *testing.T) {
|
||||
require.NoError(t, err)
|
||||
|
||||
err = newPacket(buffer.Bytes(), true, p)
|
||||
require.ErrorIs(t, err, batch.ErrIPv6CouldNotFindPayload)
|
||||
require.ErrorIs(t, err, ErrIPv6CouldNotFindPayload)
|
||||
|
||||
// A v6 packet with a hop-by-hop extension
|
||||
// ICMPv6 Payload (Echo Request)
|
||||
@@ -150,12 +149,12 @@ func Test_newPacket_v6(t *testing.T) {
|
||||
// A full IPv6 header and 1 byte in the first extension, but missing
|
||||
// the length byte.
|
||||
err = newPacket(buffer.Bytes()[:41], true, p)
|
||||
require.ErrorIs(t, err, batch.ErrIPv6CouldNotFindPayload)
|
||||
require.ErrorIs(t, err, ErrIPv6CouldNotFindPayload)
|
||||
|
||||
// A full IPv6 header plus 1 full extension, but only 1 byte of the
|
||||
// next layer, missing length byte
|
||||
err = newPacket(buffer.Bytes()[:49], true, p)
|
||||
require.ErrorIs(t, err, batch.ErrIPv6CouldNotFindPayload)
|
||||
require.ErrorIs(t, err, ErrIPv6CouldNotFindPayload)
|
||||
err = nil
|
||||
|
||||
// A good ICMP packet
|
||||
@@ -218,7 +217,7 @@ func Test_newPacket_v6(t *testing.T) {
|
||||
b = buffer.Bytes()
|
||||
b[6] = 255 // 255 is a reserved protocol number
|
||||
err = newPacket(b, true, p)
|
||||
require.ErrorIs(t, err, batch.ErrIPv6CouldNotFindPayload)
|
||||
require.ErrorIs(t, err, ErrIPv6CouldNotFindPayload)
|
||||
|
||||
// A good UDP packet
|
||||
ip = layers.IPv6{
|
||||
@@ -265,7 +264,7 @@ func Test_newPacket_v6(t *testing.T) {
|
||||
|
||||
// Too short UDP packet
|
||||
err = newPacket(b[:len(b)-10], false, p) // pull off the last 10 bytes
|
||||
require.ErrorIs(t, err, batch.ErrIPv6PacketTooShort)
|
||||
require.ErrorIs(t, err, ErrIPv6PacketTooShort)
|
||||
|
||||
// A good TCP packet
|
||||
b[6] = byte(layers.IPProtocolTCP)
|
||||
@@ -292,7 +291,7 @@ func Test_newPacket_v6(t *testing.T) {
|
||||
|
||||
// Too short TCP packet
|
||||
err = newPacket(b[:len(b)-10], false, p) // pull off the last 10 bytes
|
||||
require.ErrorIs(t, err, batch.ErrIPv6PacketTooShort)
|
||||
require.ErrorIs(t, err, ErrIPv6PacketTooShort)
|
||||
|
||||
// A good UDP packet with an AH header
|
||||
ip = layers.IPv6{
|
||||
@@ -337,12 +336,12 @@ func Test_newPacket_v6(t *testing.T) {
|
||||
|
||||
// Ensure buffer bounds checking during processing
|
||||
err = newPacket(b[:41], true, p)
|
||||
require.ErrorIs(t, err, batch.ErrIPv6PacketTooShort)
|
||||
require.ErrorIs(t, err, ErrIPv6PacketTooShort)
|
||||
|
||||
// Invalid AH header
|
||||
b = buffer.Bytes()
|
||||
err = newPacket(b, true, p)
|
||||
require.ErrorIs(t, err, batch.ErrIPv6CouldNotFindPayload)
|
||||
require.ErrorIs(t, err, ErrIPv6CouldNotFindPayload)
|
||||
}
|
||||
|
||||
func Test_newPacket_ipv6Fragment(t *testing.T) {
|
||||
@@ -449,7 +448,7 @@ func Test_newPacket_ipv6Fragment(t *testing.T) {
|
||||
|
||||
// Too short of a fragment packet
|
||||
err = newPacket(secondFrag[:len(secondFrag)-10], false, p)
|
||||
require.ErrorIs(t, err, batch.ErrIPv6PacketTooShort)
|
||||
require.ErrorIs(t, err, ErrIPv6PacketTooShort)
|
||||
}
|
||||
|
||||
func BenchmarkParseV6(b *testing.B) {
|
||||
@@ -530,7 +529,7 @@ func BenchmarkParseV6(b *testing.B) {
|
||||
|
||||
b.Run("Normal", func(b *testing.B) {
|
||||
for i := 0; i < b.N; i++ {
|
||||
if err = newPacket(normalPacket, true, fp); err != nil {
|
||||
if err = parseV6(normalPacket, true, fp); err != nil {
|
||||
b.Fatal(err)
|
||||
}
|
||||
}
|
||||
@@ -538,7 +537,7 @@ func BenchmarkParseV6(b *testing.B) {
|
||||
|
||||
b.Run("FirstFragment", func(b *testing.B) {
|
||||
for i := 0; i < b.N; i++ {
|
||||
if err = newPacket(firstFrag, true, fp); err != nil {
|
||||
if err = parseV6(firstFrag, true, fp); err != nil {
|
||||
b.Fatal(err)
|
||||
}
|
||||
}
|
||||
@@ -546,7 +545,7 @@ func BenchmarkParseV6(b *testing.B) {
|
||||
|
||||
b.Run("SecondFragment", func(b *testing.B) {
|
||||
for i := 0; i < b.N; i++ {
|
||||
if err = newPacket(secondFrag, true, fp); err != nil {
|
||||
if err = parseV6(secondFrag, true, fp); err != nil {
|
||||
b.Fatal(err)
|
||||
}
|
||||
}
|
||||
@@ -591,7 +590,7 @@ func BenchmarkParseV6(b *testing.B) {
|
||||
|
||||
b.Run("200 HopByHop headers", func(b *testing.B) {
|
||||
for i := 0; i < b.N; i++ {
|
||||
if err = newPacket(evilBytes, false, fp); err != nil {
|
||||
if err = parseV6(evilBytes, false, fp); err != nil {
|
||||
b.Fatal(err)
|
||||
}
|
||||
}
|
||||
@@ -641,3 +640,38 @@ func serializeAH(ah *layers.IPSecAH) []byte {
|
||||
|
||||
return buf.Bytes()
|
||||
}
|
||||
|
||||
// Test_newPacket_v6ExtHeaderOverflow is a regression test for the IPv6 extension-header
|
||||
// length uint8 overflow in parseV6. A Destination-Options header with HdrExtLen=255 spans
|
||||
// (255+1)*8 = 2048 bytes, so the real transport header sits at offset 2088. Before the fix
|
||||
// the advance was computed in uint8 and wrapped to 0 (then clamped to 8), so the firewall
|
||||
// read the transport header ~2KB too early from attacker-controlled option bytes while the
|
||||
// host OS parses the real header, a firewall port/proto bypass. The fix makes parseV6 land
|
||||
// on the same offset the host does.
|
||||
func Test_newPacket_v6ExtHeaderOverflow(t *testing.T) {
|
||||
p := &firewall.Packet{}
|
||||
|
||||
const (
|
||||
hdrLen = 40 // IPv6 header
|
||||
extLen = 2048 // (255+1)*8, the true Destination-Options header size
|
||||
realTCPAt = hdrLen + extLen // 2088, where the host reads the transport header
|
||||
forgedTCPAt = hdrLen + 8 // 48, where the pre-fix wrapped+clamped walk landed
|
||||
)
|
||||
|
||||
pkt := make([]byte, realTCPAt+4)
|
||||
pkt[0] = 0x60 // version 6
|
||||
pkt[6] = byte(layers.IPProtocolIPv6Destination) // NextHeader -> Destination Options
|
||||
pkt[40] = byte(firewall.ProtoTCP) // Dest-Options NextHeader -> TCP
|
||||
pkt[41] = 255 // HdrExtLen = 255
|
||||
|
||||
// Forged transport header at the pre-fix (wrong) offset: dst port 443.
|
||||
binary.BigEndian.PutUint16(pkt[forgedTCPAt+2:forgedTCPAt+4], 443)
|
||||
// Real transport header at the offset the host actually uses: dst port 22.
|
||||
binary.BigEndian.PutUint16(pkt[realTCPAt+2:realTCPAt+4], 22)
|
||||
|
||||
require.NoError(t, newPacket(pkt, true, p))
|
||||
assert.Equal(t, uint8(firewall.ProtoTCP), p.Protocol)
|
||||
// LocalPort is the destination port for incoming traffic. It must be the real port (22)
|
||||
// the host delivers to, not the forged 443 at the overflowed offset.
|
||||
assert.Equal(t, uint16(22), p.LocalPort, "firewall must parse the real transport header, not the overflowed offset")
|
||||
}
|
||||
|
||||
@@ -1,35 +0,0 @@
|
||||
package batch
|
||||
|
||||
import "net/netip"
|
||||
|
||||
type RxBatcher interface {
|
||||
// Reserve creates a pkt to borrow
|
||||
Reserve(sz int) []byte
|
||||
// Commit borrows pkt. The caller must keep pkt valid until the next Flush.
|
||||
// Walks IP+L4 headers itself; prefer CommitInbound when the caller already
|
||||
// has an RxParsed in hand from ParsePacket.
|
||||
Commit(pkt []byte) error
|
||||
// CommitInbound is Commit with a hint produced by ParsePacket, so the
|
||||
// batcher can skip the IP+L4 re-parse. Borrowed slice contract is the
|
||||
// same as Commit. Implementations that don't coalesce may delegate to
|
||||
// Commit.
|
||||
CommitInbound(pkt []byte, parsed *RxParsed) error
|
||||
// Flush emits every queued packet in arrival order. Returns the
|
||||
// first error observed; keeps draining so one bad packet doesn't hold up
|
||||
// the rest. After Flush returns, borrowed payload slices may be recycled.
|
||||
Flush() error
|
||||
}
|
||||
|
||||
type TxBatcher interface {
|
||||
// Reserve creates a pkt to borrow
|
||||
Reserve(sz int) []byte
|
||||
// Commit borrows pkt and records its destination plus the 2-bit
|
||||
// IP-level ECN codepoint to set on the outer (carrier) header. The
|
||||
// caller must keep pkt valid until the next Flush. Pass 0 (Not-ECT)
|
||||
// to leave the outer ECN field unset.
|
||||
Commit(pkt []byte, dst netip.AddrPort, outerECN byte)
|
||||
// Flush emits every queued packet via the underlying batch writer in
|
||||
// arrival order. Returns an errors.Join of one or more errors. After Flush returns,
|
||||
// borrowed payload slices may be recycled.
|
||||
Flush() error
|
||||
}
|
||||
@@ -1,163 +0,0 @@
|
||||
package batch
|
||||
|
||||
import (
|
||||
"bytes"
|
||||
"encoding/binary"
|
||||
)
|
||||
|
||||
// flowKey identifies a transport flow by {src, dst, sport, dport, family}.
|
||||
// Comparable, so map lookups and linear scans over the slot list stay tight.
|
||||
// Shared by the TCP and UDP coalescers; each coalescer keeps its own
|
||||
// openSlots map, so a TCP and UDP flow on the same 5-tuple-without-proto
|
||||
// never alias.
|
||||
type flowKey struct {
|
||||
src, dst [16]byte
|
||||
sport, dport uint16
|
||||
isV6 bool
|
||||
}
|
||||
|
||||
// initialSlots is the starting capacity of the slot pool. One flow per
|
||||
// packet is the worst case so this matches a typical carrier-side
|
||||
// recvmmsg batch on the encrypted UDP socket.
|
||||
const initialSlots = 64
|
||||
|
||||
// parsedIP is the IP-level result of parseIPPrologue. The caller layers
|
||||
// L4-specific parsing (TCP / UDP) on top.
|
||||
type parsedIP struct {
|
||||
fk flowKey
|
||||
ipHdrLen int
|
||||
// pkt is the original buffer trimmed to the IP-declared total length.
|
||||
// Anything below the IP layer (transport parsers) should slice into
|
||||
// pkt rather than the unbounded original.
|
||||
pkt []byte
|
||||
}
|
||||
|
||||
// parseIPPrologue extracts the IP-level fields the coalescers care about:
|
||||
// IHL/payload length, version, src/dst addresses, and the L4 protocol byte.
|
||||
// Returns ok=false for malformed input, IPv4 with options or fragmentation,
|
||||
// or IPv6 with extension headers (all rejected by both coalescers in
|
||||
// identical ways before this refactor).
|
||||
//
|
||||
// On success, p.pkt is len-trimmed to the IP-declared length so callers
|
||||
// don't have to repeat the trim. wantProto is the IANA protocol number to
|
||||
// require (6 for TCP, 17 for UDP); ok=false for any other value.
|
||||
func parseIPPrologue(pkt []byte, wantProto byte) (parsedIP, bool) {
|
||||
var p parsedIP
|
||||
if len(pkt) < 20 {
|
||||
return p, false
|
||||
}
|
||||
v := pkt[0] >> 4
|
||||
switch v {
|
||||
case 4:
|
||||
ihl := int(pkt[0]&0x0f) * 4
|
||||
if ihl != 20 {
|
||||
return p, false
|
||||
}
|
||||
if pkt[9] != wantProto {
|
||||
return p, false
|
||||
}
|
||||
// Reject actual fragmentation (MF or non-zero frag offset).
|
||||
if binary.BigEndian.Uint16(pkt[6:8])&0x3fff != 0 {
|
||||
return p, false
|
||||
}
|
||||
totalLen := int(binary.BigEndian.Uint16(pkt[2:4]))
|
||||
if totalLen > len(pkt) || totalLen < ihl {
|
||||
return p, false
|
||||
}
|
||||
p.ipHdrLen = 20
|
||||
p.fk.isV6 = false
|
||||
copy(p.fk.src[:4], pkt[12:16])
|
||||
copy(p.fk.dst[:4], pkt[16:20])
|
||||
p.pkt = pkt[:totalLen]
|
||||
case 6:
|
||||
if len(pkt) < 40 {
|
||||
return p, false
|
||||
}
|
||||
if pkt[6] != wantProto {
|
||||
return p, false
|
||||
}
|
||||
payloadLen := int(binary.BigEndian.Uint16(pkt[4:6]))
|
||||
if 40+payloadLen > len(pkt) {
|
||||
return p, false
|
||||
}
|
||||
p.ipHdrLen = 40
|
||||
p.fk.isV6 = true
|
||||
copy(p.fk.src[:], pkt[8:24])
|
||||
copy(p.fk.dst[:], pkt[24:40])
|
||||
p.pkt = pkt[:40+payloadLen]
|
||||
default:
|
||||
return p, false
|
||||
}
|
||||
return p, true
|
||||
}
|
||||
|
||||
// ipHeadersMatch compares the IP portion of two packet header prefixes for
|
||||
// byte-for-byte equality on every field that must be identical across
|
||||
// coalesced segments. Size/IPID/IPCsum and the 2-bit IP-level ECN field are
|
||||
// masked out — the appendPayload step merges CE into the seed.
|
||||
//
|
||||
// The transport (L4) portion of the header is checked separately by the
|
||||
// per-protocol matcher.
|
||||
func ipHeadersMatch(a, b []byte, isV6 bool) bool {
|
||||
if isV6 {
|
||||
// IPv6: byte 0 = version/TC[7:4], byte 1 = TC[3:0]/flow[19:16],
|
||||
// bytes [2:4] = flow[15:0], [6:8] = next_hdr/hop, [8:40] = src+dst.
|
||||
// ECN lives in TC[1:0] = byte 1 mask 0x30. Skip [4:6] payload_len.
|
||||
if a[0] != b[0] {
|
||||
return false
|
||||
}
|
||||
if a[1]&^0x30 != b[1]&^0x30 {
|
||||
return false
|
||||
}
|
||||
if !bytes.Equal(a[2:4], b[2:4]) {
|
||||
return false
|
||||
}
|
||||
if !bytes.Equal(a[6:40], b[6:40]) {
|
||||
return false
|
||||
}
|
||||
return true
|
||||
}
|
||||
// IPv4: byte 0 = version/IHL, byte 1 = DSCP(6)|ECN(2),
|
||||
// [6:10] flags/fragoff/TTL/proto, [12:20] src+dst.
|
||||
// Skip [2:4] total len, [4:6] id, [10:12] csum.
|
||||
if a[0] != b[0] {
|
||||
return false
|
||||
}
|
||||
if a[1]&^0x03 != b[1]&^0x03 {
|
||||
return false
|
||||
}
|
||||
if !bytes.Equal(a[6:10], b[6:10]) {
|
||||
return false
|
||||
}
|
||||
if !bytes.Equal(a[12:20], b[12:20]) {
|
||||
return false
|
||||
}
|
||||
return true
|
||||
}
|
||||
|
||||
// mergeECNIntoSeed ORs the 2-bit IP-level ECN field of pkt's IP header
|
||||
// onto the seed's IP header, so a CE mark on any coalesced segment
|
||||
// propagates to the final superpacket. (CE is 0b11; ORing yields CE if
|
||||
// any segment carried it.) Used by both TCP and UDP coalescers, so the
|
||||
// invariant lives in one place.
|
||||
func mergeECNIntoSeed(seedHdr, pktHdr []byte, isV6 bool) {
|
||||
if isV6 {
|
||||
seedHdr[1] |= pktHdr[1] & 0x30
|
||||
} else {
|
||||
seedHdr[1] |= pktHdr[1] & 0x03
|
||||
}
|
||||
}
|
||||
|
||||
// reserveFromBacking implements the Reserve half of the RxBatcher contract
|
||||
// shared by TCP and UDP coalescers. The backing slice grows on demand;
|
||||
// already-committed slices reference the old array and remain valid until
|
||||
// Flush resets backing.
|
||||
func reserveFromBacking(backing *[]byte, sz int) []byte {
|
||||
if len(*backing)+sz > cap(*backing) {
|
||||
newCap := max(cap(*backing)*2, sz)
|
||||
*backing = make([]byte, 0, newCap)
|
||||
}
|
||||
start := len(*backing)
|
||||
*backing = (*backing)[:start+sz]
|
||||
return (*backing)[start : start+sz : start+sz]
|
||||
}
|
||||
@@ -1,443 +0,0 @@
|
||||
package batch
|
||||
|
||||
import (
|
||||
"encoding/binary"
|
||||
"errors"
|
||||
|
||||
"github.com/slackhq/nebula/firewall"
|
||||
)
|
||||
|
||||
// IANA protocol numbers we recognise during the inbound parse. Kept local
|
||||
// (rather than reaching for the firewall constants for every one of these)
|
||||
// so the byte-comparison hot path doesn't depend on cross-package values.
|
||||
const (
|
||||
ipProtoICMP = 1
|
||||
ipProtoIPv6Fragment = 44
|
||||
ipProtoESP = 50
|
||||
ipProtoAH = 51
|
||||
ipProtoICMPv6 = 58
|
||||
ipProtoNoNextHdr = 59
|
||||
|
||||
icmpv6TypeEchoRequest = 128
|
||||
icmpv6TypeEchoReply = 129
|
||||
)
|
||||
|
||||
// Packet parse errors — the canonical sentinel set for IP+L4 parsing.
|
||||
// Both inbound and outbound callers share this surface, so any code path
|
||||
// that ends up at firewall.PacketKey reports drops with the same errors.
|
||||
var (
|
||||
ErrPacketTooShort = errors.New("packet is too short")
|
||||
ErrUnknownIPVersion = errors.New("packet is an unknown ip version")
|
||||
ErrIPv4InvalidHeaderLength = errors.New("invalid ipv4 header length")
|
||||
ErrIPv4PacketTooShort = errors.New("ipv4 packet is too short")
|
||||
ErrIPv6PacketTooShort = errors.New("ipv6 packet is too short")
|
||||
ErrIPv6CouldNotFindPayload = errors.New("could not find payload in ipv6 packet")
|
||||
)
|
||||
|
||||
// RxKind discriminates how an inbound plaintext packet should be committed
|
||||
// after its firewall.Packet has been built. RxKindPassthrough means the
|
||||
// IP shape is valid (firewall could match on it) but the coalescer's
|
||||
// strict checks reject it — caller should still write it via the
|
||||
// passthrough lane.
|
||||
type RxKind uint8
|
||||
|
||||
const (
|
||||
RxKindPassthrough RxKind = iota
|
||||
RxKindTCP
|
||||
RxKindUDP
|
||||
)
|
||||
|
||||
// RxParsed is the unified result of one IP+L4 walk:
|
||||
// - Key: the firewall's conntrack/cache lookup key. The dense form lets
|
||||
// firewall.Drop hit conntrack without ever filling the rich Packet's
|
||||
// netip.Addr fields. On a conntrack miss, Drop hydrates the caller's
|
||||
// Packet from Key.
|
||||
// - tcp/udp: the coalescer hint so commitParsed doesn't re-walk the
|
||||
// headers. Meaningful only when Kind is RxKindTCP / RxKindUDP.
|
||||
type RxParsed struct {
|
||||
Kind RxKind
|
||||
Key firewall.PacketKey
|
||||
tcp parsedTCP
|
||||
udp parsedUDP
|
||||
}
|
||||
|
||||
// ParsePacket walks an IP packet once and fills parsed.Key. When incoming
|
||||
// is true and the L4 shape is coalesce-eligible, also fills parsed.tcp /
|
||||
// parsed.udp so CommitInbound can dispatch into the coalescer without
|
||||
// re-walking the headers.
|
||||
//
|
||||
// Direction selects the Key orientation:
|
||||
//
|
||||
// incoming=true → wire src → Key.RemoteAddr/Port, wire dst → Key.LocalAddr/Port
|
||||
// incoming=false → wire src → Key.LocalAddr/Port, wire dst → Key.RemoteAddr/Port
|
||||
//
|
||||
// ICMP always lands the identifier in Key.RemotePort, regardless of direction.
|
||||
//
|
||||
// Eligibility rules for the coalescer hint match the coalescer's own
|
||||
// parseTCPBase/parseUDP:
|
||||
// - IPv4 strict: IHL == 20, no fragmentation (MF or offset), proto TCP/UDP.
|
||||
// - IPv6 strict: NextHeader is directly TCP or UDP (no extension headers).
|
||||
//
|
||||
// The hint is only filled for incoming packets, since the outbound path
|
||||
// does not feed an inbound coalescer. Outbound callers see Kind stay at
|
||||
// RxKindPassthrough and parsed.tcp/udp stay zero.
|
||||
func ParsePacket(pkt []byte, incoming bool, parsed *RxParsed) error {
|
||||
parsed.Kind = RxKindPassthrough
|
||||
// Reset Key in full: v4 only writes the low 4 bytes of each address
|
||||
// field, so without this a v6 call followed by a v4 reusing the same
|
||||
// RxParsed would inherit the high 12 bytes — breaking the conntrack
|
||||
// map equality for v4 flows.
|
||||
parsed.Key = firewall.PacketKey{}
|
||||
if len(pkt) < 1 {
|
||||
return ErrPacketTooShort
|
||||
}
|
||||
switch pkt[0] >> 4 {
|
||||
case 4:
|
||||
return parsePacketV4(pkt, incoming, parsed)
|
||||
case 6:
|
||||
return parsePacketV6(pkt, incoming, parsed)
|
||||
}
|
||||
return ErrUnknownIPVersion
|
||||
}
|
||||
|
||||
// parsePacketV4 fills parsed.Key from an IPv4 packet. Direction selects
|
||||
// Local/Remote orientation. When incoming and the shape is strict, also
|
||||
// fills the coalescer hint.
|
||||
func parsePacketV4(pkt []byte, incoming bool, parsed *RxParsed) error {
|
||||
if len(pkt) < 20 {
|
||||
return ErrIPv4PacketTooShort
|
||||
}
|
||||
ihl := int(pkt[0]&0x0f) << 2
|
||||
if ihl < 20 {
|
||||
return ErrIPv4InvalidHeaderLength
|
||||
}
|
||||
flagsfrags := binary.BigEndian.Uint16(pkt[6:8])
|
||||
parsed.Key.Fragment = (flagsfrags & 0x1FFF) != 0
|
||||
parsed.Key.Protocol = pkt[9]
|
||||
parsed.Key.IsV6 = false
|
||||
|
||||
// minFwPacketLen (4) is the L4-header prefix the firewall needs to pull
|
||||
// ports; ICMP needs two extra bytes for the identifier.
|
||||
minLen := ihl
|
||||
if !parsed.Key.Fragment {
|
||||
if parsed.Key.Protocol == firewall.ProtoICMP {
|
||||
minLen += 4 + 2
|
||||
} else {
|
||||
minLen += 4
|
||||
}
|
||||
}
|
||||
if len(pkt) < minLen {
|
||||
return ErrIPv4InvalidHeaderLength
|
||||
}
|
||||
|
||||
if incoming {
|
||||
copy(parsed.Key.RemoteAddr[:4], pkt[12:16])
|
||||
copy(parsed.Key.LocalAddr[:4], pkt[16:20])
|
||||
} else {
|
||||
copy(parsed.Key.LocalAddr[:4], pkt[12:16])
|
||||
copy(parsed.Key.RemoteAddr[:4], pkt[16:20])
|
||||
}
|
||||
|
||||
switch {
|
||||
case parsed.Key.Fragment:
|
||||
parsed.Key.RemotePort = 0
|
||||
parsed.Key.LocalPort = 0
|
||||
case parsed.Key.Protocol == firewall.ProtoICMP:
|
||||
parsed.Key.RemotePort = binary.BigEndian.Uint16(pkt[ihl+4 : ihl+6])
|
||||
parsed.Key.LocalPort = 0
|
||||
case incoming:
|
||||
parsed.Key.RemotePort = binary.BigEndian.Uint16(pkt[ihl : ihl+2])
|
||||
parsed.Key.LocalPort = binary.BigEndian.Uint16(pkt[ihl+2 : ihl+4])
|
||||
default:
|
||||
parsed.Key.LocalPort = binary.BigEndian.Uint16(pkt[ihl : ihl+2])
|
||||
parsed.Key.RemotePort = binary.BigEndian.Uint16(pkt[ihl+2 : ihl+4])
|
||||
}
|
||||
|
||||
// Coalescer hint is inbound-only: no inbound coalescer fires on outgoing.
|
||||
if !incoming {
|
||||
return nil
|
||||
}
|
||||
// Coalescer-eligible? Strict shape: IHL==20, no MF/offset, TCP or UDP.
|
||||
if ihl != 20 || (flagsfrags&0x3FFF) != 0 {
|
||||
return nil
|
||||
}
|
||||
if parsed.Key.Protocol != ipProtoTCP && parsed.Key.Protocol != ipProtoUDP {
|
||||
return nil
|
||||
}
|
||||
totalLen := int(binary.BigEndian.Uint16(pkt[2:4]))
|
||||
if totalLen > len(pkt) || totalLen < 20 {
|
||||
return nil
|
||||
}
|
||||
pktTrim := pkt[:totalLen]
|
||||
|
||||
switch parsed.Key.Protocol {
|
||||
case ipProtoTCP:
|
||||
fillParsedTCPv4(pktTrim, parsed)
|
||||
case ipProtoUDP:
|
||||
fillParsedUDPv4(pktTrim, parsed)
|
||||
}
|
||||
return nil
|
||||
}
|
||||
|
||||
// fillParsedTCPv4 fills parsed.tcp from a strict-shape IPv4+TCP packet
|
||||
// already validated to have IHL==20 and to be totalLen-trimmed.
|
||||
func fillParsedTCPv4(pkt []byte, parsed *RxParsed) {
|
||||
if len(pkt) < 40 { // IPv4(20) + min TCP(20)
|
||||
return
|
||||
}
|
||||
tcpOff := int(pkt[32]>>4) * 4
|
||||
if tcpOff < 20 || tcpOff > 60 {
|
||||
return
|
||||
}
|
||||
if len(pkt) < 20+tcpOff {
|
||||
return
|
||||
}
|
||||
p := &parsed.tcp
|
||||
p.ipHdrLen = 20
|
||||
p.tcpHdrLen = tcpOff
|
||||
p.hdrLen = 20 + tcpOff
|
||||
p.payLen = len(pkt) - p.hdrLen
|
||||
p.seq = binary.BigEndian.Uint32(pkt[24:28])
|
||||
p.flags = pkt[33]
|
||||
p.fk.isV6 = false
|
||||
p.fk.sport = parsed.Key.RemotePort
|
||||
p.fk.dport = parsed.Key.LocalPort
|
||||
copy(p.fk.src[:4], pkt[12:16])
|
||||
copy(p.fk.dst[:4], pkt[16:20])
|
||||
parsed.Kind = RxKindTCP
|
||||
}
|
||||
|
||||
// fillParsedUDPv4 fills parsed.udp from a strict-shape IPv4+UDP packet.
|
||||
func fillParsedUDPv4(pkt []byte, parsed *RxParsed) {
|
||||
if len(pkt) < 28 { // IPv4(20) + UDP(8)
|
||||
return
|
||||
}
|
||||
udpLen := int(binary.BigEndian.Uint16(pkt[24:26]))
|
||||
if udpLen < 8 || udpLen > len(pkt)-20 {
|
||||
return
|
||||
}
|
||||
p := &parsed.udp
|
||||
p.ipHdrLen = 20
|
||||
p.hdrLen = 28
|
||||
p.payLen = udpLen - 8
|
||||
p.fk.isV6 = false
|
||||
p.fk.sport = parsed.Key.RemotePort
|
||||
p.fk.dport = parsed.Key.LocalPort
|
||||
copy(p.fk.src[:4], pkt[12:16])
|
||||
copy(p.fk.dst[:4], pkt[16:20])
|
||||
parsed.Kind = RxKindUDP
|
||||
}
|
||||
|
||||
// parsePacketV6 fills parsed.Key from an IPv6 packet. Direction selects
|
||||
// Local/Remote orientation. The coalescer hint fast path only triggers
|
||||
// when NextHeader is directly TCP or UDP — any extension header chain
|
||||
// falls into the lenient walk below, and the hint stays unfilled.
|
||||
func parsePacketV6(pkt []byte, incoming bool, parsed *RxParsed) error {
|
||||
if len(pkt) < 40 {
|
||||
return ErrIPv6PacketTooShort
|
||||
}
|
||||
parsed.Key.IsV6 = true
|
||||
if incoming {
|
||||
copy(parsed.Key.RemoteAddr[:], pkt[8:24])
|
||||
copy(parsed.Key.LocalAddr[:], pkt[24:40])
|
||||
} else {
|
||||
copy(parsed.Key.LocalAddr[:], pkt[8:24])
|
||||
copy(parsed.Key.RemoteAddr[:], pkt[24:40])
|
||||
}
|
||||
|
||||
if proto := pkt[6]; proto == ipProtoTCP || proto == ipProtoUDP {
|
||||
// Strict v6: ports are at the IP header end. Always fill key; only
|
||||
// fill the coalescer hint if the L4 shape passes.
|
||||
if len(pkt) < 44 {
|
||||
return ErrIPv6PacketTooShort
|
||||
}
|
||||
parsed.Key.Protocol = proto
|
||||
parsed.Key.Fragment = false
|
||||
if incoming {
|
||||
parsed.Key.RemotePort = binary.BigEndian.Uint16(pkt[40:42])
|
||||
parsed.Key.LocalPort = binary.BigEndian.Uint16(pkt[42:44])
|
||||
} else {
|
||||
parsed.Key.LocalPort = binary.BigEndian.Uint16(pkt[40:42])
|
||||
parsed.Key.RemotePort = binary.BigEndian.Uint16(pkt[42:44])
|
||||
}
|
||||
|
||||
// Coalescer hint is inbound-only.
|
||||
if !incoming {
|
||||
return nil
|
||||
}
|
||||
payloadLen := int(binary.BigEndian.Uint16(pkt[4:6]))
|
||||
if 40+payloadLen > len(pkt) {
|
||||
return nil
|
||||
}
|
||||
pktTrim := pkt[:40+payloadLen]
|
||||
|
||||
switch proto {
|
||||
case ipProtoTCP:
|
||||
fillParsedTCPv6(pktTrim, parsed)
|
||||
case ipProtoUDP:
|
||||
fillParsedUDPv6(pktTrim, parsed)
|
||||
}
|
||||
return nil
|
||||
}
|
||||
|
||||
// Slow path: walk extension header chain. Coalescer hint never fires
|
||||
// here, so direction only matters for L4 port orientation.
|
||||
return walkV6Headers(pkt, incoming, parsed)
|
||||
}
|
||||
|
||||
func fillParsedTCPv6(pkt []byte, parsed *RxParsed) {
|
||||
if len(pkt) < 60 { // IPv6(40) + min TCP(20)
|
||||
return
|
||||
}
|
||||
tcpOff := int(pkt[52]>>4) * 4
|
||||
if tcpOff < 20 || tcpOff > 60 {
|
||||
return
|
||||
}
|
||||
if len(pkt) < 40+tcpOff {
|
||||
return
|
||||
}
|
||||
p := &parsed.tcp
|
||||
p.ipHdrLen = 40
|
||||
p.tcpHdrLen = tcpOff
|
||||
p.hdrLen = 40 + tcpOff
|
||||
p.payLen = len(pkt) - p.hdrLen
|
||||
p.seq = binary.BigEndian.Uint32(pkt[44:48])
|
||||
p.flags = pkt[53]
|
||||
p.fk.isV6 = true
|
||||
p.fk.sport = parsed.Key.RemotePort
|
||||
p.fk.dport = parsed.Key.LocalPort
|
||||
copy(p.fk.src[:], pkt[8:24])
|
||||
copy(p.fk.dst[:], pkt[24:40])
|
||||
parsed.Kind = RxKindTCP
|
||||
}
|
||||
|
||||
func fillParsedUDPv6(pkt []byte, parsed *RxParsed) {
|
||||
if len(pkt) < 48 { // IPv6(40) + UDP(8)
|
||||
return
|
||||
}
|
||||
udpLen := int(binary.BigEndian.Uint16(pkt[44:46]))
|
||||
if udpLen < 8 || udpLen > len(pkt)-40 {
|
||||
return
|
||||
}
|
||||
p := &parsed.udp
|
||||
p.ipHdrLen = 40
|
||||
p.hdrLen = 48
|
||||
p.payLen = udpLen - 8
|
||||
p.fk.isV6 = true
|
||||
p.fk.sport = parsed.Key.RemotePort
|
||||
p.fk.dport = parsed.Key.LocalPort
|
||||
copy(p.fk.src[:], pkt[8:24])
|
||||
copy(p.fk.dst[:], pkt[24:40])
|
||||
parsed.Kind = RxKindUDP
|
||||
}
|
||||
|
||||
// walkV6Headers handles every IPv6 case the strict "NextHeader == TCP/UDP"
|
||||
// fast path doesn't: ESP, NoNextHeader, ICMPv6, fragment headers (first vs
|
||||
// later), AH, generic extension headers. Coalescer eligibility is always
|
||||
// RxKindPassthrough on this path (parsed already initialised that way).
|
||||
// Direction matters only for the L4 port orientation when the chain
|
||||
// terminates at TCP/UDP.
|
||||
func walkV6Headers(pkt []byte, incoming bool, parsed *RxParsed) error {
|
||||
dataLen := len(pkt)
|
||||
protoAt := 6
|
||||
offset := 40
|
||||
next := 0
|
||||
for {
|
||||
if protoAt >= dataLen {
|
||||
break
|
||||
}
|
||||
proto := pkt[protoAt]
|
||||
switch proto {
|
||||
case ipProtoESP, ipProtoNoNextHdr:
|
||||
parsed.Key.Protocol = proto
|
||||
parsed.Key.RemotePort = 0
|
||||
parsed.Key.LocalPort = 0
|
||||
parsed.Key.Fragment = false
|
||||
return nil
|
||||
|
||||
case ipProtoICMPv6:
|
||||
if dataLen < offset+6 {
|
||||
return ErrIPv6PacketTooShort
|
||||
}
|
||||
parsed.Key.Protocol = proto
|
||||
parsed.Key.LocalPort = 0
|
||||
switch pkt[offset+1] {
|
||||
case icmpv6TypeEchoRequest, icmpv6TypeEchoReply:
|
||||
parsed.Key.RemotePort = binary.BigEndian.Uint16(pkt[offset+4 : offset+6])
|
||||
default:
|
||||
parsed.Key.RemotePort = 0
|
||||
}
|
||||
parsed.Key.Fragment = false
|
||||
return nil
|
||||
|
||||
case ipProtoTCP, ipProtoUDP:
|
||||
// Reachable when an extension-header chain ends at TCP/UDP. The
|
||||
// strict-eligible fast path above already handled the no-extension
|
||||
// case; here we only fill firewall ports and stay passthrough.
|
||||
if dataLen < offset+4 {
|
||||
return ErrIPv6PacketTooShort
|
||||
}
|
||||
parsed.Key.Protocol = proto
|
||||
if incoming {
|
||||
parsed.Key.RemotePort = binary.BigEndian.Uint16(pkt[offset : offset+2])
|
||||
parsed.Key.LocalPort = binary.BigEndian.Uint16(pkt[offset+2 : offset+4])
|
||||
} else {
|
||||
parsed.Key.LocalPort = binary.BigEndian.Uint16(pkt[offset : offset+2])
|
||||
parsed.Key.RemotePort = binary.BigEndian.Uint16(pkt[offset+2 : offset+4])
|
||||
}
|
||||
parsed.Key.Fragment = false
|
||||
return nil
|
||||
|
||||
case ipProtoIPv6Fragment:
|
||||
if dataLen < offset+8 {
|
||||
return ErrIPv6PacketTooShort
|
||||
}
|
||||
fragmentOffset := binary.BigEndian.Uint16(pkt[offset+2:offset+4]) &^ uint16(0x7)
|
||||
if fragmentOffset != 0 {
|
||||
// Non-first fragment: report the fragment flag and stop.
|
||||
parsed.Key.Protocol = pkt[offset]
|
||||
parsed.Key.Fragment = true
|
||||
parsed.Key.RemotePort = 0
|
||||
parsed.Key.LocalPort = 0
|
||||
return nil
|
||||
}
|
||||
next = 8
|
||||
|
||||
case ipProtoAH:
|
||||
if dataLen <= offset+1 {
|
||||
break
|
||||
}
|
||||
next = int(pkt[offset+1]+2) << 2
|
||||
|
||||
default:
|
||||
if dataLen <= offset+1 {
|
||||
break
|
||||
}
|
||||
next = int(pkt[offset+1]+1) << 3
|
||||
}
|
||||
|
||||
if next <= 0 {
|
||||
next = 8
|
||||
}
|
||||
protoAt = offset
|
||||
offset = offset + next
|
||||
}
|
||||
return ErrIPv6CouldNotFindPayload
|
||||
}
|
||||
|
||||
// CommitInbound dispatches pkt to the appropriate lane using parsed.Kind,
|
||||
// skipping the IP+L4 re-parse that MultiCoalescer.Commit would otherwise
|
||||
// do. Borrowed slice contract is identical to MultiCoalescer.Commit.
|
||||
func (m *MultiCoalescer) CommitInbound(pkt []byte, parsed *RxParsed) error {
|
||||
switch parsed.Kind {
|
||||
case RxKindTCP:
|
||||
if m.tcp != nil {
|
||||
return m.tcp.commitParsed(pkt, parsed.tcp)
|
||||
}
|
||||
case RxKindUDP:
|
||||
if m.udp != nil {
|
||||
return m.udp.commitParsed(pkt, parsed.udp)
|
||||
}
|
||||
}
|
||||
return m.pt.Commit(pkt)
|
||||
}
|
||||
@@ -1,394 +0,0 @@
|
||||
package batch
|
||||
|
||||
import (
|
||||
"encoding/binary"
|
||||
"net/netip"
|
||||
"testing"
|
||||
|
||||
"github.com/slackhq/nebula/firewall"
|
||||
)
|
||||
|
||||
// parseV4InboundBaseline mirrors what outside.go's parseV4(incoming=true)
|
||||
// does, so the "split" bench measures the *current* state: firewall-side
|
||||
// parse, then m.Commit re-parses inside the coalescer. Two walks per
|
||||
// packet. Kept faithful in shape (one read per field, AddrFromSlice for
|
||||
// the addrs) so the CPU profile matches the production parseV4.
|
||||
func parseV4InboundBaseline(pkt []byte, fp *firewall.Packet) bool {
|
||||
if len(pkt) < 20 {
|
||||
return false
|
||||
}
|
||||
ihl := int(pkt[0]&0x0f) << 2
|
||||
if ihl < 20 {
|
||||
return false
|
||||
}
|
||||
flagsfrags := binary.BigEndian.Uint16(pkt[6:8])
|
||||
fp.Fragment = (flagsfrags & 0x1FFF) != 0
|
||||
fp.Protocol = pkt[9]
|
||||
minLen := ihl
|
||||
if !fp.Fragment {
|
||||
if fp.Protocol == firewall.ProtoICMP {
|
||||
minLen += 4 + 2
|
||||
} else {
|
||||
minLen += 4
|
||||
}
|
||||
}
|
||||
if len(pkt) < minLen {
|
||||
return false
|
||||
}
|
||||
fp.RemoteAddr, _ = netip.AddrFromSlice(pkt[12:16])
|
||||
fp.LocalAddr, _ = netip.AddrFromSlice(pkt[16:20])
|
||||
switch {
|
||||
case fp.Fragment:
|
||||
fp.RemotePort = 0
|
||||
fp.LocalPort = 0
|
||||
case fp.Protocol == firewall.ProtoICMP:
|
||||
fp.RemotePort = binary.BigEndian.Uint16(pkt[ihl+4 : ihl+6])
|
||||
fp.LocalPort = 0
|
||||
default:
|
||||
fp.RemotePort = binary.BigEndian.Uint16(pkt[ihl : ihl+2])
|
||||
fp.LocalPort = binary.BigEndian.Uint16(pkt[ihl+2 : ihl+4])
|
||||
}
|
||||
return true
|
||||
}
|
||||
|
||||
// parseV6InboundBaseline is the v6 analogue: replicates parseV6's
|
||||
// extension-header walk so the split bench captures its true cost.
|
||||
func parseV6InboundBaseline(pkt []byte, fp *firewall.Packet) bool {
|
||||
dataLen := len(pkt)
|
||||
if dataLen < 40 {
|
||||
return false
|
||||
}
|
||||
fp.RemoteAddr, _ = netip.AddrFromSlice(pkt[8:24])
|
||||
fp.LocalAddr, _ = netip.AddrFromSlice(pkt[24:40])
|
||||
|
||||
protoAt := 6
|
||||
offset := 40
|
||||
next := 0
|
||||
for {
|
||||
if protoAt >= dataLen {
|
||||
return false
|
||||
}
|
||||
proto := pkt[protoAt]
|
||||
switch proto {
|
||||
case ipProtoESP, ipProtoNoNextHdr:
|
||||
fp.Protocol = proto
|
||||
fp.RemotePort = 0
|
||||
fp.LocalPort = 0
|
||||
fp.Fragment = false
|
||||
return true
|
||||
case ipProtoICMPv6:
|
||||
if dataLen < offset+6 {
|
||||
return false
|
||||
}
|
||||
fp.Protocol = proto
|
||||
fp.LocalPort = 0
|
||||
switch pkt[offset+1] {
|
||||
case icmpv6TypeEchoRequest, icmpv6TypeEchoReply:
|
||||
fp.RemotePort = binary.BigEndian.Uint16(pkt[offset+4 : offset+6])
|
||||
default:
|
||||
fp.RemotePort = 0
|
||||
}
|
||||
fp.Fragment = false
|
||||
return true
|
||||
case ipProtoTCP, ipProtoUDP:
|
||||
if dataLen < offset+4 {
|
||||
return false
|
||||
}
|
||||
fp.Protocol = proto
|
||||
fp.RemotePort = binary.BigEndian.Uint16(pkt[offset : offset+2])
|
||||
fp.LocalPort = binary.BigEndian.Uint16(pkt[offset+2 : offset+4])
|
||||
fp.Fragment = false
|
||||
return true
|
||||
case ipProtoIPv6Fragment:
|
||||
if dataLen < offset+8 {
|
||||
return false
|
||||
}
|
||||
fragmentOffset := binary.BigEndian.Uint16(pkt[offset+2:offset+4]) &^ uint16(0x7)
|
||||
if fragmentOffset != 0 {
|
||||
fp.Protocol = pkt[offset]
|
||||
fp.Fragment = true
|
||||
fp.RemotePort = 0
|
||||
fp.LocalPort = 0
|
||||
return true
|
||||
}
|
||||
next = 8
|
||||
case ipProtoAH:
|
||||
if dataLen <= offset+1 {
|
||||
return false
|
||||
}
|
||||
next = int(pkt[offset+1]+2) << 2
|
||||
default:
|
||||
if dataLen <= offset+1 {
|
||||
return false
|
||||
}
|
||||
next = int(pkt[offset+1]+1) << 3
|
||||
}
|
||||
if next <= 0 {
|
||||
next = 8
|
||||
}
|
||||
protoAt = offset
|
||||
offset = offset + next
|
||||
}
|
||||
}
|
||||
|
||||
// runRxSplit drives the split path: faithful inbound parse for the firewall
|
||||
// side, then m.Commit re-parses to coalesce. v6 controls which baseline
|
||||
// parser we run.
|
||||
func runRxSplit(b *testing.B, pkts [][]byte, batchSize int, v6 bool) {
|
||||
b.Helper()
|
||||
m := NewMultiCoalescer(nopTunWriter{}, true, true)
|
||||
var fp firewall.Packet
|
||||
b.ReportAllocs()
|
||||
b.SetBytes(int64(len(pkts[0])))
|
||||
b.ResetTimer()
|
||||
for i := 0; i < b.N; i++ {
|
||||
pkt := pkts[i%len(pkts)]
|
||||
var ok bool
|
||||
if v6 {
|
||||
ok = parseV6InboundBaseline(pkt, &fp)
|
||||
} else {
|
||||
ok = parseV4InboundBaseline(pkt, &fp)
|
||||
}
|
||||
if !ok {
|
||||
b.Fatal("baseline parse failed")
|
||||
}
|
||||
if err := m.Commit(pkt); err != nil {
|
||||
b.Fatal(err)
|
||||
}
|
||||
if (i+1)%batchSize == 0 {
|
||||
if err := m.Flush(); err != nil {
|
||||
b.Fatal(err)
|
||||
}
|
||||
}
|
||||
}
|
||||
_ = m.Flush()
|
||||
}
|
||||
|
||||
// runRxUnified drives the unified path: ParseInbound walks once, filling
|
||||
// the conntrack key + coalescer hint in parsed; CommitInbound dispatches
|
||||
// without re-parsing.
|
||||
func runRxUnified(b *testing.B, pkts [][]byte, batchSize int) {
|
||||
b.Helper()
|
||||
m := NewMultiCoalescer(nopTunWriter{}, true, true)
|
||||
var parsed RxParsed
|
||||
b.ReportAllocs()
|
||||
b.SetBytes(int64(len(pkts[0])))
|
||||
b.ResetTimer()
|
||||
for i := 0; i < b.N; i++ {
|
||||
pkt := pkts[i%len(pkts)]
|
||||
if err := ParsePacket(pkt, true, &parsed); err != nil {
|
||||
b.Fatal(err)
|
||||
}
|
||||
if err := m.CommitInbound(pkt, &parsed); err != nil {
|
||||
b.Fatal(err)
|
||||
}
|
||||
if (i+1)%batchSize == 0 {
|
||||
if err := m.Flush(); err != nil {
|
||||
b.Fatal(err)
|
||||
}
|
||||
}
|
||||
}
|
||||
_ = m.Flush()
|
||||
}
|
||||
|
||||
// buildUDPv4Bulk returns N UDP packets on a single 5-tuple suitable for the
|
||||
// UDP coalescer's append path.
|
||||
func buildUDPv4Bulk(n, payloadLen int) [][]byte {
|
||||
pkts := make([][]byte, n)
|
||||
pay := make([]byte, payloadLen)
|
||||
for i := range n {
|
||||
pkts[i] = buildUDPv4(1000, 53, pay)
|
||||
}
|
||||
return pkts
|
||||
}
|
||||
|
||||
func buildTCPv6Bulk(n, payloadLen int) [][]byte {
|
||||
pkts := make([][]byte, n)
|
||||
pay := make([]byte, payloadLen)
|
||||
seq := uint32(1000)
|
||||
for i := range n {
|
||||
pkts[i] = buildTCPv6(0, seq, tcpAck, pay)
|
||||
seq += uint32(payloadLen)
|
||||
}
|
||||
return pkts
|
||||
}
|
||||
|
||||
func buildICMPv4Bulk(n int) [][]byte {
|
||||
pkts := make([][]byte, n)
|
||||
for i := range pkts {
|
||||
pkts[i] = buildICMPv4()
|
||||
}
|
||||
return pkts
|
||||
}
|
||||
|
||||
// === TCPv4 ===
|
||||
|
||||
func BenchmarkRxSplitTCPv4(b *testing.B) {
|
||||
pkts := buildTCPv4BulkFlow(tcpCoalesceMaxSegs, 1200)
|
||||
runRxSplit(b, pkts, tcpCoalesceMaxSegs, false)
|
||||
}
|
||||
|
||||
func BenchmarkRxUnifiedTCPv4(b *testing.B) {
|
||||
pkts := buildTCPv4BulkFlow(tcpCoalesceMaxSegs, 1200)
|
||||
runRxUnified(b, pkts, tcpCoalesceMaxSegs)
|
||||
}
|
||||
|
||||
// === TCPv4 interleaved (4 flows) ===
|
||||
|
||||
func BenchmarkRxSplitTCPv4Interleaved4(b *testing.B) {
|
||||
pkts := buildTCPv4Interleaved(4, tcpCoalesceMaxSegs, 1200)
|
||||
runRxSplit(b, pkts, len(pkts), false)
|
||||
}
|
||||
|
||||
func BenchmarkRxUnifiedTCPv4Interleaved4(b *testing.B) {
|
||||
pkts := buildTCPv4Interleaved(4, tcpCoalesceMaxSegs, 1200)
|
||||
runRxUnified(b, pkts, len(pkts))
|
||||
}
|
||||
|
||||
// === UDPv4 ===
|
||||
|
||||
func BenchmarkRxSplitUDPv4(b *testing.B) {
|
||||
pkts := buildUDPv4Bulk(udpCoalesceMaxSegs, 1200)
|
||||
runRxSplit(b, pkts, udpCoalesceMaxSegs, false)
|
||||
}
|
||||
|
||||
func BenchmarkRxUnifiedUDPv4(b *testing.B) {
|
||||
pkts := buildUDPv4Bulk(udpCoalesceMaxSegs, 1200)
|
||||
runRxUnified(b, pkts, udpCoalesceMaxSegs)
|
||||
}
|
||||
|
||||
// === TCPv6 ===
|
||||
|
||||
func BenchmarkRxSplitTCPv6(b *testing.B) {
|
||||
pkts := buildTCPv6Bulk(tcpCoalesceMaxSegs, 1200)
|
||||
runRxSplit(b, pkts, tcpCoalesceMaxSegs, true)
|
||||
}
|
||||
|
||||
func BenchmarkRxUnifiedTCPv6(b *testing.B) {
|
||||
pkts := buildTCPv6Bulk(tcpCoalesceMaxSegs, 1200)
|
||||
runRxUnified(b, pkts, tcpCoalesceMaxSegs)
|
||||
}
|
||||
|
||||
// === ICMPv4 (passthrough) — measures the unified parser on the coalescer-
|
||||
// rejected path, where both lenient and unified must still fill fp. ===
|
||||
|
||||
func BenchmarkRxSplitICMPv4(b *testing.B) {
|
||||
pkts := buildICMPv4Bulk(64)
|
||||
runRxSplit(b, pkts, 64, false)
|
||||
}
|
||||
|
||||
func BenchmarkRxUnifiedICMPv4(b *testing.B) {
|
||||
pkts := buildICMPv4Bulk(64)
|
||||
runRxUnified(b, pkts, 64)
|
||||
}
|
||||
|
||||
// === Firewall fast-path (conntrack-hit) — exercises the savings from the
|
||||
// dense PacketKey: smaller hash key for the per-routine ConntrackCache,
|
||||
// and skipping the AddrFrom4 calls that the old path needed to fill the
|
||||
// netip.Addr-rich firewall.Packet up-front. ===
|
||||
//
|
||||
// The "split" baseline simulates the legacy path: parseV4InboundBaseline
|
||||
// fills a netip.Addr-rich Packet, then we probe a localCache keyed on
|
||||
// Packet. The "unified" path: ParseInbound fills only the dense PacketKey,
|
||||
// and we probe a localCache keyed on PacketKey. Both paths follow with
|
||||
// the coalescer Commit so the bench captures end-to-end RX-side cost.
|
||||
|
||||
// runRxSplitWithCache mirrors runRxSplit but runs the legacy-style
|
||||
// firewall fast path (localCache keyed on firewall.Packet) on every
|
||||
// packet so we can compare against the unified path.
|
||||
func runRxSplitWithCache(b *testing.B, pkts [][]byte, batchSize int) {
|
||||
b.Helper()
|
||||
m := NewMultiCoalescer(nopTunWriter{}, true, true)
|
||||
var fp firewall.Packet
|
||||
|
||||
// Pre-warm a per-packet cache keyed on the netip.Addr-rich Packet form.
|
||||
cache := make(map[firewall.Packet]struct{}, len(pkts))
|
||||
for _, pkt := range pkts {
|
||||
var seedFp firewall.Packet
|
||||
if !parseV4InboundBaseline(pkt, &seedFp) {
|
||||
b.Fatal("seed parse failed")
|
||||
}
|
||||
cache[seedFp] = struct{}{}
|
||||
}
|
||||
|
||||
b.ReportAllocs()
|
||||
b.SetBytes(int64(len(pkts[0])))
|
||||
b.ResetTimer()
|
||||
for i := 0; i < b.N; i++ {
|
||||
pkt := pkts[i%len(pkts)]
|
||||
if !parseV4InboundBaseline(pkt, &fp) {
|
||||
b.Fatal("baseline parse failed")
|
||||
}
|
||||
if _, ok := cache[fp]; !ok {
|
||||
b.Fatal("cache miss")
|
||||
}
|
||||
if err := m.Commit(pkt); err != nil {
|
||||
b.Fatal(err)
|
||||
}
|
||||
if (i+1)%batchSize == 0 {
|
||||
if err := m.Flush(); err != nil {
|
||||
b.Fatal(err)
|
||||
}
|
||||
}
|
||||
}
|
||||
_ = m.Flush()
|
||||
}
|
||||
|
||||
// runRxUnifiedWithCache: unified path with a PacketKey-keyed localCache.
|
||||
// Each iteration: ParseInbound → conntrack-cache hit → CommitInbound.
|
||||
func runRxUnifiedWithCache(b *testing.B, pkts [][]byte, batchSize int) {
|
||||
b.Helper()
|
||||
m := NewMultiCoalescer(nopTunWriter{}, true, true)
|
||||
var parsed RxParsed
|
||||
|
||||
cache := make(firewall.ConntrackCache, len(pkts))
|
||||
for _, pkt := range pkts {
|
||||
var seed RxParsed
|
||||
if err := ParsePacket(pkt, true, &seed); err != nil {
|
||||
b.Fatal(err)
|
||||
}
|
||||
cache[seed.Key] = struct{}{}
|
||||
}
|
||||
|
||||
b.ReportAllocs()
|
||||
b.SetBytes(int64(len(pkts[0])))
|
||||
b.ResetTimer()
|
||||
for i := 0; i < b.N; i++ {
|
||||
pkt := pkts[i%len(pkts)]
|
||||
if err := ParsePacket(pkt, true, &parsed); err != nil {
|
||||
b.Fatal(err)
|
||||
}
|
||||
if _, ok := cache[parsed.Key]; !ok {
|
||||
b.Fatal("cache miss")
|
||||
}
|
||||
if err := m.CommitInbound(pkt, &parsed); err != nil {
|
||||
b.Fatal(err)
|
||||
}
|
||||
if (i+1)%batchSize == 0 {
|
||||
if err := m.Flush(); err != nil {
|
||||
b.Fatal(err)
|
||||
}
|
||||
}
|
||||
}
|
||||
_ = m.Flush()
|
||||
}
|
||||
|
||||
func BenchmarkRxSplitTCPv4WithCache(b *testing.B) {
|
||||
pkts := buildTCPv4BulkFlow(tcpCoalesceMaxSegs, 1200)
|
||||
runRxSplitWithCache(b, pkts, tcpCoalesceMaxSegs)
|
||||
}
|
||||
|
||||
func BenchmarkRxUnifiedTCPv4WithCache(b *testing.B) {
|
||||
pkts := buildTCPv4BulkFlow(tcpCoalesceMaxSegs, 1200)
|
||||
runRxUnifiedWithCache(b, pkts, tcpCoalesceMaxSegs)
|
||||
}
|
||||
|
||||
func BenchmarkRxSplitInterleaved4WithCache(b *testing.B) {
|
||||
pkts := buildTCPv4Interleaved(4, tcpCoalesceMaxSegs, 1200)
|
||||
runRxSplitWithCache(b, pkts, len(pkts))
|
||||
}
|
||||
|
||||
func BenchmarkRxUnifiedInterleaved4WithCache(b *testing.B) {
|
||||
pkts := buildTCPv4Interleaved(4, tcpCoalesceMaxSegs, 1200)
|
||||
runRxUnifiedWithCache(b, pkts, len(pkts))
|
||||
}
|
||||
@@ -1,174 +0,0 @@
|
||||
package batch
|
||||
|
||||
import (
|
||||
"net/netip"
|
||||
"testing"
|
||||
|
||||
"github.com/slackhq/nebula/firewall"
|
||||
)
|
||||
|
||||
// TestParseInboundParity asserts that ParseInbound + Key.Hydrate produces
|
||||
// the same firewall.Packet that the lenient baseline parsers (which
|
||||
// mirror outside.go's parseV4/parseV6 with incoming=true) produce for
|
||||
// every shape we care about. Catches drift between the unified
|
||||
// parse-then-hydrate flow and the production newPacket behavior so
|
||||
// swapping one for the other is observably safe.
|
||||
func TestParseInboundParity(t *testing.T) {
|
||||
cases := []struct {
|
||||
name string
|
||||
pkt []byte
|
||||
v6 bool
|
||||
}{
|
||||
{"tcp_v4", buildTCPv4Ports(1234, 443, 1000, tcpAck, []byte("payload")), false},
|
||||
{"tcp_v4_psh", buildTCPv4Ports(1234, 443, 2000, tcpAckPsh, make([]byte, 1200)), false},
|
||||
{"udp_v4", buildUDPv4(40000, 53, []byte("dnsquery")), false},
|
||||
{"icmp_v4", buildICMPv4(), false},
|
||||
{"tcp_v6", buildTCPv6(0, 5000, tcpAck, make([]byte, 800)), true},
|
||||
{"udp_v6", buildUDPv6(40001, 53, []byte("v6dns")), true},
|
||||
}
|
||||
|
||||
for _, tc := range cases {
|
||||
t.Run(tc.name, func(t *testing.T) {
|
||||
var fpUnified, fpBaseline firewall.Packet
|
||||
var parsed RxParsed
|
||||
|
||||
if err := ParsePacket(tc.pkt, true, &parsed); err != nil {
|
||||
t.Fatalf("ParsePacket: %v", err)
|
||||
}
|
||||
parsed.Key.Hydrate(&fpUnified)
|
||||
var ok bool
|
||||
if tc.v6 {
|
||||
ok = parseV6InboundBaseline(tc.pkt, &fpBaseline)
|
||||
} else {
|
||||
ok = parseV4InboundBaseline(tc.pkt, &fpBaseline)
|
||||
}
|
||||
if !ok {
|
||||
t.Fatalf("baseline parse failed")
|
||||
}
|
||||
|
||||
if fpUnified != fpBaseline {
|
||||
t.Errorf("firewall.Packet mismatch:\n unified: %+v\n baseline: %+v", fpUnified, fpBaseline)
|
||||
}
|
||||
})
|
||||
}
|
||||
}
|
||||
|
||||
// TestParseInboundFlowKey checks that the coalescer hint the unified parser
|
||||
// produces matches what parseTCPBase/parseUDP would produce on the same
|
||||
// packet — same flowKey, ipHdrLen, payLen, etc. The hint is only valid
|
||||
// when Kind is RxKindTCP/RxKindUDP.
|
||||
func TestParseInboundFlowKey(t *testing.T) {
|
||||
t.Run("tcp_v4", func(t *testing.T) {
|
||||
pkt := buildTCPv4Ports(1234, 443, 5000, tcpAck, make([]byte, 800))
|
||||
var parsed RxParsed
|
||||
if err := ParsePacket(pkt, true, &parsed); err != nil {
|
||||
t.Fatal(err)
|
||||
}
|
||||
if parsed.Kind != RxKindTCP {
|
||||
t.Fatalf("kind=%v want TCP", parsed.Kind)
|
||||
}
|
||||
ref, ok := parseTCPBase(pkt)
|
||||
if !ok {
|
||||
t.Fatal("parseTCPBase failed")
|
||||
}
|
||||
if parsed.tcp != ref {
|
||||
t.Errorf("parsedTCP mismatch:\n unified: %+v\n ref: %+v", parsed.tcp, ref)
|
||||
}
|
||||
})
|
||||
|
||||
t.Run("udp_v4", func(t *testing.T) {
|
||||
pkt := buildUDPv4(40000, 53, []byte("dnsquery"))
|
||||
var parsed RxParsed
|
||||
if err := ParsePacket(pkt, true, &parsed); err != nil {
|
||||
t.Fatal(err)
|
||||
}
|
||||
if parsed.Kind != RxKindUDP {
|
||||
t.Fatalf("kind=%v want UDP", parsed.Kind)
|
||||
}
|
||||
ref, ok := parseUDP(pkt)
|
||||
if !ok {
|
||||
t.Fatal("parseUDP failed")
|
||||
}
|
||||
if parsed.udp != ref {
|
||||
t.Errorf("parsedUDP mismatch:\n unified: %+v\n ref: %+v", parsed.udp, ref)
|
||||
}
|
||||
})
|
||||
|
||||
t.Run("tcp_v6", func(t *testing.T) {
|
||||
pkt := buildTCPv6(0, 9000, tcpAck, make([]byte, 800))
|
||||
var parsed RxParsed
|
||||
if err := ParsePacket(pkt, true, &parsed); err != nil {
|
||||
t.Fatal(err)
|
||||
}
|
||||
if parsed.Kind != RxKindTCP {
|
||||
t.Fatalf("kind=%v want TCP", parsed.Kind)
|
||||
}
|
||||
ref, ok := parseTCPBase(pkt)
|
||||
if !ok {
|
||||
t.Fatal("parseTCPBase failed")
|
||||
}
|
||||
if parsed.tcp != ref {
|
||||
t.Errorf("parsedTCP mismatch:\n unified: %+v\n ref: %+v", parsed.tcp, ref)
|
||||
}
|
||||
})
|
||||
}
|
||||
|
||||
// TestParseInboundICMPPassthrough confirms ICMP packets populate the
|
||||
// conntrack key (including the ICMP identifier in RemotePort) but stay
|
||||
// RxKindPassthrough so the batcher writes them verbatim. After Hydrate
|
||||
// the firewall.Packet form should match what the legacy parseV4 produced.
|
||||
func TestParseInboundICMPPassthrough(t *testing.T) {
|
||||
pkt := buildICMPv4()
|
||||
// Stamp a non-zero identifier into the ICMP header so we can check
|
||||
// RemotePort gets it.
|
||||
pkt[20] = 8 // type=echo
|
||||
pkt[24] = 0xab
|
||||
pkt[25] = 0xcd
|
||||
|
||||
var parsed RxParsed
|
||||
if err := ParsePacket(pkt, true, &parsed); err != nil {
|
||||
t.Fatal(err)
|
||||
}
|
||||
if parsed.Kind != RxKindPassthrough {
|
||||
t.Errorf("kind=%v want Passthrough", parsed.Kind)
|
||||
}
|
||||
var fp firewall.Packet
|
||||
parsed.Key.Hydrate(&fp)
|
||||
if fp.Protocol != firewall.ProtoICMP {
|
||||
t.Errorf("Protocol=%d want %d", fp.Protocol, firewall.ProtoICMP)
|
||||
}
|
||||
if fp.RemotePort != 0xabcd {
|
||||
t.Errorf("RemotePort=0x%x want 0xabcd", fp.RemotePort)
|
||||
}
|
||||
if fp.LocalPort != 0 {
|
||||
t.Errorf("LocalPort=%d want 0", fp.LocalPort)
|
||||
}
|
||||
wantRemote := netip.MustParseAddr("10.0.0.1")
|
||||
wantLocal := netip.MustParseAddr("10.0.0.2")
|
||||
if fp.RemoteAddr != wantRemote || fp.LocalAddr != wantLocal {
|
||||
t.Errorf("addrs: remote=%v local=%v want %v/%v", fp.RemoteAddr, fp.LocalAddr, wantRemote, wantLocal)
|
||||
}
|
||||
}
|
||||
|
||||
// TestParseInboundV4Fragment confirms a fragmented v4 packet fills the
|
||||
// conntrack key with Fragment=true and falls into Passthrough on the
|
||||
// coalescer side.
|
||||
func TestParseInboundV4Fragment(t *testing.T) {
|
||||
// Build a TCP packet then twiddle the IP flags to make it look like a
|
||||
// non-first fragment (offset != 0).
|
||||
pkt := buildTCPv4Ports(1234, 443, 1000, tcpAck, []byte("payload"))
|
||||
// Set a non-zero fragment offset (bytes 6-7, low 13 bits).
|
||||
pkt[6] = 0x00
|
||||
pkt[7] = 0x10 // offset = 16 (in 8-byte units)
|
||||
|
||||
var parsed RxParsed
|
||||
if err := ParsePacket(pkt, true, &parsed); err != nil {
|
||||
t.Fatal(err)
|
||||
}
|
||||
if !parsed.Key.Fragment {
|
||||
t.Error("Fragment=false, want true")
|
||||
}
|
||||
if parsed.Kind != RxKindPassthrough {
|
||||
t.Errorf("kind=%v want Passthrough", parsed.Kind)
|
||||
}
|
||||
}
|
||||
@@ -1,133 +0,0 @@
|
||||
package batch
|
||||
|
||||
import (
|
||||
"errors"
|
||||
"io"
|
||||
)
|
||||
|
||||
// MultiCoalescer fans plaintext packets out to lane-specific batchers based
|
||||
// on the IP/L4 protocol of the packet, sharing a single Reserve arena
|
||||
// across lanes so the caller's allocation pattern is unchanged.
|
||||
//
|
||||
// Lanes are processed independently: the TCP coalescer only sees TCP, the
|
||||
// UDP coalescer only sees UDP, and the passthrough lane handles everything
|
||||
// else. Per-flow arrival order is preserved because a single 5-tuple only
|
||||
// ever lands in one lane and each lane preserves its own slot order.
|
||||
//
|
||||
// Cross-lane order is NOT preserved across the TCP/UDP/passthrough split.
|
||||
// This is acceptable because the carrier-side recvmmsg path already
|
||||
// stable-sorts by (peer, message counter) before delivering plaintext
|
||||
// here, so replay-window invariants are unaffected, and apps observe
|
||||
// correct per-flow ordering — which is all the IP layer guarantees anyway.
|
||||
// Do not "fix" this by interleaving lane outputs at flush time; that
|
||||
// negates the entire point of coalescing (each lane needs to see runs of
|
||||
// adjacent same-flow packets to coalesce them).
|
||||
type MultiCoalescer struct {
|
||||
tcp *TCPCoalescer
|
||||
udp *UDPCoalescer
|
||||
pt *Passthrough
|
||||
|
||||
// arena shared across all lanes so a single Reserve grows one backing
|
||||
// slice; lane Commit calls borrow into this same arena.
|
||||
backing []byte
|
||||
}
|
||||
|
||||
// NewMultiCoalescer builds a multi-lane batcher. tcpEnabled lets the caller
|
||||
// opt out of TCP coalescing (e.g. when the queue can't do TSO); udpEnabled
|
||||
// likewise gates UDP coalescing (only enable when USO was negotiated).
|
||||
// Either lane disabled redirects its traffic into the passthrough lane.
|
||||
func NewMultiCoalescer(w io.Writer, tcpEnabled, udpEnabled bool) *MultiCoalescer {
|
||||
m := &MultiCoalescer{
|
||||
pt: NewPassthrough(w),
|
||||
backing: make([]byte, 0, initialSlots*65535),
|
||||
}
|
||||
if tcpEnabled {
|
||||
m.tcp = NewTCPCoalescer(w)
|
||||
}
|
||||
if udpEnabled {
|
||||
m.udp = NewUDPCoalescer(w)
|
||||
}
|
||||
return m
|
||||
}
|
||||
|
||||
func (m *MultiCoalescer) Reserve(sz int) []byte {
|
||||
if len(m.backing)+sz > cap(m.backing) {
|
||||
newCap := max(cap(m.backing)*2, sz)
|
||||
m.backing = make([]byte, 0, newCap)
|
||||
}
|
||||
start := len(m.backing)
|
||||
m.backing = m.backing[:start+sz]
|
||||
return m.backing[start : start+sz : start+sz]
|
||||
}
|
||||
|
||||
// Commit dispatches pkt to the appropriate lane based on IP version + L4
|
||||
// proto. Borrowed slice contract is identical to the single-lane batchers,
|
||||
// pkt must remain valid until the next Flush.
|
||||
//
|
||||
// On the success path the IP/TCP-or-UDP parse happens here once and the
|
||||
// parsed struct is handed to the lane via commitParsed so the lane doesn't
|
||||
// re-walk the header.
|
||||
func (m *MultiCoalescer) Commit(pkt []byte) error {
|
||||
if len(pkt) < 20 {
|
||||
return m.pt.Commit(pkt)
|
||||
}
|
||||
v := pkt[0] >> 4
|
||||
var proto byte
|
||||
switch v {
|
||||
case 4:
|
||||
proto = pkt[9]
|
||||
case 6:
|
||||
if len(pkt) < 40 {
|
||||
return m.pt.Commit(pkt)
|
||||
}
|
||||
proto = pkt[6]
|
||||
default:
|
||||
return m.pt.Commit(pkt)
|
||||
}
|
||||
switch proto {
|
||||
case ipProtoTCP:
|
||||
if m.tcp != nil {
|
||||
info, ok := parseTCPBase(pkt)
|
||||
if !ok {
|
||||
// Malformed/unsupported TCP shape (IP options, fragments, ...).
|
||||
// Handle this via passthrough support in the TCP coalescer, to attempt to preserve flow order.
|
||||
m.tcp.addPassthrough(pkt)
|
||||
return nil
|
||||
}
|
||||
return m.tcp.commitParsed(pkt, info)
|
||||
}
|
||||
case ipProtoUDP:
|
||||
if m.udp != nil {
|
||||
info, ok := parseUDP(pkt)
|
||||
if !ok {
|
||||
m.udp.addPassthrough(pkt) //we could also m.pt.Commit() here I guess?
|
||||
return nil
|
||||
}
|
||||
return m.udp.commitParsed(pkt, info)
|
||||
}
|
||||
}
|
||||
return m.pt.Commit(pkt)
|
||||
}
|
||||
|
||||
// Flush drains every lane in a fixed order: TCP, UDP, passthrough. Errors
|
||||
// from a lane do not stop subsequent lanes from flushing, we keep
|
||||
// draining and return the first observed error so a single bad packet
|
||||
// doesn't strand the others.
|
||||
func (m *MultiCoalescer) Flush() error {
|
||||
var errs []error
|
||||
if m.tcp != nil {
|
||||
if err := m.tcp.Flush(); err != nil {
|
||||
errs = append(errs, err)
|
||||
}
|
||||
}
|
||||
if m.udp != nil {
|
||||
if err := m.udp.Flush(); err != nil {
|
||||
errs = append(errs, err)
|
||||
}
|
||||
}
|
||||
if err := m.pt.Flush(); err != nil {
|
||||
errs = append(errs, err)
|
||||
}
|
||||
m.backing = m.backing[:0]
|
||||
return errors.Join(errs...)
|
||||
}
|
||||
@@ -1,94 +0,0 @@
|
||||
package batch
|
||||
|
||||
import (
|
||||
"testing"
|
||||
)
|
||||
|
||||
// TestMultiCoalescerRoutesByProto confirms TCP/UDP/other land in the right
|
||||
// lane: TCP and UDP get coalesced when their lanes are enabled, anything
|
||||
// else (ICMP here) falls through to plain Write.
|
||||
func TestMultiCoalescerRoutesByProto(t *testing.T) {
|
||||
w := &fakeTunWriter{gsoEnabled: true}
|
||||
m := NewMultiCoalescer(w, true, true)
|
||||
|
||||
tcpPay := make([]byte, 1200)
|
||||
udpPay := make([]byte, 1200)
|
||||
icmp := make([]byte, 28)
|
||||
icmp[0] = 0x45
|
||||
icmp[2] = 0
|
||||
icmp[3] = 28
|
||||
icmp[9] = 1
|
||||
|
||||
if err := m.Commit(buildTCPv4(1000, tcpAck, tcpPay)); err != nil {
|
||||
t.Fatal(err)
|
||||
}
|
||||
if err := m.Commit(buildTCPv4(2200, tcpAck, tcpPay)); err != nil {
|
||||
t.Fatal(err)
|
||||
}
|
||||
if err := m.Commit(buildUDPv4(2000, 53, udpPay)); err != nil {
|
||||
t.Fatal(err)
|
||||
}
|
||||
if err := m.Commit(buildUDPv4(2000, 53, udpPay)); err != nil {
|
||||
t.Fatal(err)
|
||||
}
|
||||
if err := m.Commit(icmp); err != nil {
|
||||
t.Fatal(err)
|
||||
}
|
||||
if err := m.Flush(); err != nil {
|
||||
t.Fatal(err)
|
||||
}
|
||||
// 1 TCP super (2 segments) + 1 UDP super (2 segments) = 2 gso writes.
|
||||
if len(w.gsoWrites) != 2 {
|
||||
t.Fatalf("want 2 gso writes (one TCP + one UDP), got %d", len(w.gsoWrites))
|
||||
}
|
||||
if len(w.writes) != 1 {
|
||||
t.Fatalf("want 1 plain write (ICMP), got %d", len(w.writes))
|
||||
}
|
||||
}
|
||||
|
||||
// TestMultiCoalescerDisabledUDPFallsThrough verifies that when the UDP lane
|
||||
// is disabled (e.g. kernel doesn't support USO), UDP packets still reach
|
||||
// the kernel via the passthrough lane rather than being lost.
|
||||
func TestMultiCoalescerDisabledUDPFallsThrough(t *testing.T) {
|
||||
w := &fakeTunWriter{gsoEnabled: true}
|
||||
m := NewMultiCoalescer(w, true, false) // TSO on, USO off
|
||||
|
||||
if err := m.Commit(buildUDPv4(1000, 53, make([]byte, 800))); err != nil {
|
||||
t.Fatal(err)
|
||||
}
|
||||
if err := m.Commit(buildUDPv4(1000, 53, make([]byte, 800))); err != nil {
|
||||
t.Fatal(err)
|
||||
}
|
||||
if err := m.Flush(); err != nil {
|
||||
t.Fatal(err)
|
||||
}
|
||||
if len(w.gsoWrites) != 0 {
|
||||
t.Errorf("UDP must NOT be coalesced when USO disabled, got %d gso writes", len(w.gsoWrites))
|
||||
}
|
||||
if len(w.writes) != 2 {
|
||||
t.Errorf("UDP must pass through as 2 plain writes, got %d", len(w.writes))
|
||||
}
|
||||
}
|
||||
|
||||
// TestMultiCoalescerDisabledTCPFallsThrough mirrors the TSO=off case.
|
||||
func TestMultiCoalescerDisabledTCPFallsThrough(t *testing.T) {
|
||||
w := &fakeTunWriter{gsoEnabled: true}
|
||||
m := NewMultiCoalescer(w, false, true) // TSO off, USO on
|
||||
|
||||
pay := make([]byte, 1200)
|
||||
if err := m.Commit(buildTCPv4(1000, tcpAck, pay)); err != nil {
|
||||
t.Fatal(err)
|
||||
}
|
||||
if err := m.Commit(buildTCPv4(2200, tcpAck, pay)); err != nil {
|
||||
t.Fatal(err)
|
||||
}
|
||||
if err := m.Flush(); err != nil {
|
||||
t.Fatal(err)
|
||||
}
|
||||
if len(w.gsoWrites) != 0 {
|
||||
t.Errorf("TCP must NOT be coalesced when TSO disabled, got %d gso writes", len(w.gsoWrites))
|
||||
}
|
||||
if len(w.writes) != 2 {
|
||||
t.Errorf("TCP must pass through as 2 plain writes, got %d", len(w.writes))
|
||||
}
|
||||
}
|
||||
@@ -1,62 +0,0 @@
|
||||
package batch
|
||||
|
||||
import (
|
||||
"io"
|
||||
|
||||
"github.com/slackhq/nebula/udp"
|
||||
)
|
||||
|
||||
// Passthrough is a RxBatcher that doesn't batch anything, it just accumulates and then sends packets.
|
||||
type Passthrough struct {
|
||||
out io.Writer
|
||||
slots [][]byte
|
||||
backing []byte
|
||||
cursor int
|
||||
}
|
||||
|
||||
func NewPassthrough(w io.Writer) *Passthrough {
|
||||
const baseNumSlots = 128
|
||||
return &Passthrough{
|
||||
out: w,
|
||||
slots: make([][]byte, 0, baseNumSlots),
|
||||
backing: make([]byte, 0, baseNumSlots*udp.MTU),
|
||||
}
|
||||
}
|
||||
|
||||
func (p *Passthrough) Reserve(sz int) []byte {
|
||||
if len(p.backing)+sz > cap(p.backing) {
|
||||
// Grow: allocate a fresh backing. Already-committed slices still
|
||||
// reference the old array and remain valid until Flush drops them.
|
||||
newCap := max(cap(p.backing)*2, sz)
|
||||
p.backing = make([]byte, 0, newCap)
|
||||
}
|
||||
start := len(p.backing)
|
||||
p.backing = p.backing[:start+sz]
|
||||
return p.backing[start : start+sz : start+sz] //return zero length, sz-cap slice
|
||||
}
|
||||
|
||||
func (p *Passthrough) Commit(pkt []byte) error {
|
||||
p.slots = append(p.slots, pkt)
|
||||
return nil
|
||||
}
|
||||
|
||||
// CommitInbound ignores the hint — Passthrough never coalesces, so there's
|
||||
// no IP/L4 re-parse to skip. Present so Passthrough satisfies the RxBatcher
|
||||
// interface alongside MultiCoalescer.
|
||||
func (p *Passthrough) CommitInbound(pkt []byte, _ *RxParsed) error {
|
||||
return p.Commit(pkt)
|
||||
}
|
||||
|
||||
func (p *Passthrough) Flush() error {
|
||||
var firstErr error
|
||||
for _, s := range p.slots {
|
||||
_, err := p.out.Write(s)
|
||||
if err != nil && firstErr == nil {
|
||||
firstErr = err
|
||||
}
|
||||
}
|
||||
clear(p.slots)
|
||||
p.slots = p.slots[:0]
|
||||
p.backing = p.backing[:0]
|
||||
return firstErr
|
||||
}
|
||||
@@ -1,731 +0,0 @@
|
||||
package batch
|
||||
|
||||
import (
|
||||
"bytes"
|
||||
"encoding/binary"
|
||||
"io"
|
||||
"log/slog"
|
||||
"net/netip"
|
||||
"slices"
|
||||
|
||||
"github.com/slackhq/nebula/overlay/tio"
|
||||
)
|
||||
|
||||
// ipProtoTCP is the IANA protocol number for TCP. Hardcoded instead of
|
||||
// reaching for golang.org/x/sys/unix — that package doesn't define the
|
||||
// constant on Windows, which would break cross-compiles even though this
|
||||
// file runs unchanged on every platform.
|
||||
const ipProtoTCP = 6
|
||||
|
||||
// tcpCoalesceBufSize caps total bytes per superpacket. Mirrors the kernel's
|
||||
// sk_gso_max_size of ~64KiB; anything beyond this would be rejected anyway.
|
||||
const tcpCoalesceBufSize = 65535
|
||||
|
||||
// tcpCoalesceMaxSegs caps how many segments we'll coalesce into a single
|
||||
// superpacket. Keeping this well below the kernel's TSO ceiling bounds
|
||||
// latency.
|
||||
const tcpCoalesceMaxSegs = 64
|
||||
|
||||
// tcpCoalesceHdrCap is the scratch space we copy a seed's IP+TCP header
|
||||
// into. IPv6 (40) + TCP with full options (60) = 100 bytes.
|
||||
const tcpCoalesceHdrCap = 100
|
||||
|
||||
// coalesceSlot is one entry in the coalescer's ordered event queue. When
|
||||
// passthrough is true the slot holds a single borrowed packet that must be
|
||||
// emitted verbatim (non-TCP, non-admissible TCP, or oversize seed). When
|
||||
// passthrough is false the slot is an in-progress coalesced superpacket:
|
||||
// hdrBuf is a mutable copy of the seed's IP+TCP header (we patch total
|
||||
// length and pseudo-header partial at flush), and payIovs are *borrowed*
|
||||
// slices from the caller's plaintext buffers — no payload is ever copied.
|
||||
// The caller (listenOut) must keep those buffers alive until Flush.
|
||||
type coalesceSlot struct {
|
||||
passthrough bool
|
||||
rawPkt []byte // borrowed when passthrough
|
||||
|
||||
fk flowKey
|
||||
hdrBuf [tcpCoalesceHdrCap]byte
|
||||
hdrLen int
|
||||
ipHdrLen int
|
||||
isV6 bool
|
||||
gsoSize int
|
||||
numSeg int
|
||||
totalPay int
|
||||
nextSeq uint32
|
||||
// psh closes the chain: set when the last-accepted segment had PSH or
|
||||
// was sub-gsoSize. No further appends after that.
|
||||
psh bool
|
||||
payIovs [][]byte
|
||||
}
|
||||
|
||||
// TCPCoalescer accumulates adjacent in-flow TCP data segments across
|
||||
// multiple concurrent flows and emits each flow's run as a single TSO
|
||||
// superpacket via tio.GSOWriter. All output — coalesced or not — is
|
||||
// deferred until Flush so arrival order is preserved on the wire. Owns
|
||||
// no locks; one coalescer per TUN write queue.
|
||||
type TCPCoalescer struct {
|
||||
plainW io.Writer
|
||||
gsoW tio.GSOWriter // nil when the queue doesn't support TSO
|
||||
|
||||
// slots is the ordered event queue. Flush walks it once and emits each
|
||||
// entry as either a WriteGSO (coalesced) or a plainW.Write (passthrough).
|
||||
slots []*coalesceSlot
|
||||
// openSlots maps a flow key to its most recent non-sealed slot, so new
|
||||
// segments can extend an in-progress superpacket in O(1). Slots are
|
||||
// removed from this map when they close (PSH or short-last-segment),
|
||||
// when a non-admissible packet for that flow arrives, or in Flush.
|
||||
openSlots map[flowKey]*coalesceSlot
|
||||
// lastSlot caches the most recently touched open slot. Steady-state
|
||||
// bulk traffic is dominated by a single flow, so comparing the
|
||||
// incoming key against the cached slot's own fk lets the hot path
|
||||
// skip the map lookup (and the aeshash of a 38-byte key) entirely.
|
||||
// Kept in lockstep with openSlots: nil whenever the slot it pointed
|
||||
// at is removed/sealed.
|
||||
lastSlot *coalesceSlot
|
||||
pool []*coalesceSlot // free list for reuse
|
||||
|
||||
backing []byte
|
||||
}
|
||||
|
||||
func NewTCPCoalescer(w io.Writer) *TCPCoalescer {
|
||||
c := &TCPCoalescer{
|
||||
plainW: w,
|
||||
slots: make([]*coalesceSlot, 0, initialSlots),
|
||||
openSlots: make(map[flowKey]*coalesceSlot, initialSlots),
|
||||
pool: make([]*coalesceSlot, 0, initialSlots),
|
||||
backing: make([]byte, 0, initialSlots*65535),
|
||||
}
|
||||
if gw, ok := tio.SupportsGSO(w, tio.GSOProtoTCP); ok {
|
||||
c.gsoW = gw
|
||||
}
|
||||
return c
|
||||
}
|
||||
|
||||
// parsedTCP holds the fields extracted from a single parse so later steps
|
||||
// (admission, slot lookup, canAppend) don't re-walk the header.
|
||||
type parsedTCP struct {
|
||||
fk flowKey
|
||||
ipHdrLen int
|
||||
tcpHdrLen int
|
||||
hdrLen int
|
||||
payLen int
|
||||
seq uint32
|
||||
flags byte
|
||||
}
|
||||
|
||||
// parseTCPBase extracts the flow key and IP/TCP offsets for any TCP packet,
|
||||
// regardless of whether it's admissible for coalescing. Returns ok=false
|
||||
// for non-TCP or malformed input. Accepts IPv4 (no options, no fragmentation)
|
||||
// and IPv6 (no extension headers).
|
||||
func parseTCPBase(pkt []byte) (parsedTCP, bool) {
|
||||
var p parsedTCP
|
||||
ip, ok := parseIPPrologue(pkt, ipProtoTCP)
|
||||
if !ok {
|
||||
return p, false
|
||||
}
|
||||
pkt = ip.pkt
|
||||
p.fk = ip.fk
|
||||
p.ipHdrLen = ip.ipHdrLen
|
||||
|
||||
if len(pkt) < p.ipHdrLen+20 {
|
||||
return p, false
|
||||
}
|
||||
tcpOff := int(pkt[p.ipHdrLen+12]>>4) * 4
|
||||
if tcpOff < 20 || tcpOff > 60 {
|
||||
return p, false
|
||||
}
|
||||
if len(pkt) < p.ipHdrLen+tcpOff {
|
||||
return p, false
|
||||
}
|
||||
p.tcpHdrLen = tcpOff
|
||||
p.hdrLen = p.ipHdrLen + tcpOff
|
||||
p.payLen = len(pkt) - p.hdrLen
|
||||
p.seq = binary.BigEndian.Uint32(pkt[p.ipHdrLen+4 : p.ipHdrLen+8])
|
||||
p.flags = pkt[p.ipHdrLen+13]
|
||||
p.fk.sport = binary.BigEndian.Uint16(pkt[p.ipHdrLen : p.ipHdrLen+2])
|
||||
p.fk.dport = binary.BigEndian.Uint16(pkt[p.ipHdrLen+2 : p.ipHdrLen+4])
|
||||
return p, true
|
||||
}
|
||||
|
||||
// TCP flag bits (byte 13 of the TCP header). Only the bits actually consulted
|
||||
// by the coalescer are named; FIN/SYN/RST/URG/CWR are rejected via the
|
||||
// negative mask in coalesceable, not by name.
|
||||
const (
|
||||
tcpFlagPsh = 0x08
|
||||
tcpFlagAck = 0x10
|
||||
tcpFlagEce = 0x40
|
||||
)
|
||||
|
||||
// coalesceable reports whether a parsed TCP segment is eligible for
|
||||
// coalescing. Accepts ACK, ACK|PSH, ACK|ECE, ACK|PSH|ECE with a
|
||||
// non-empty payload. CWR is excluded because it marks a one-shot
|
||||
// congestion-window-reduced transition the receiver must observe at a
|
||||
// segment boundary.
|
||||
func (p parsedTCP) coalesceable() bool {
|
||||
if p.flags&tcpFlagAck == 0 {
|
||||
return false
|
||||
}
|
||||
if p.flags&^(tcpFlagAck|tcpFlagPsh|tcpFlagEce) != 0 {
|
||||
return false
|
||||
}
|
||||
return p.payLen > 0
|
||||
}
|
||||
|
||||
func (c *TCPCoalescer) Reserve(sz int) []byte {
|
||||
return reserveFromBacking(&c.backing, sz)
|
||||
}
|
||||
|
||||
// Commit borrows pkt. The caller must keep pkt valid until the next Flush,
|
||||
// whether or not the packet was coalesced — passthrough (non-admissible)
|
||||
// packets are queued and written at Flush time, not synchronously.
|
||||
func (c *TCPCoalescer) Commit(pkt []byte) error {
|
||||
if c.gsoW == nil {
|
||||
c.addPassthrough(pkt)
|
||||
return nil
|
||||
}
|
||||
info, ok := parseTCPBase(pkt)
|
||||
if !ok {
|
||||
c.addPassthrough(pkt)
|
||||
return nil
|
||||
}
|
||||
return c.commitParsed(pkt, info)
|
||||
}
|
||||
|
||||
// commitParsed is the post-parse half of Commit. The caller must have
|
||||
// already verified parseTCPBase succeeded (info is a valid TCP parse).
|
||||
// Used by MultiCoalescer.Commit to avoid re-walking the IP/TCP header
|
||||
// after the dispatcher has already done so.
|
||||
func (c *TCPCoalescer) commitParsed(pkt []byte, info parsedTCP) error {
|
||||
if c.gsoW == nil {
|
||||
c.addPassthrough(pkt)
|
||||
return nil
|
||||
}
|
||||
if !info.coalesceable() {
|
||||
// TCP but not admissible (SYN/FIN/RST/URG/CWR or zero-payload).
|
||||
// Seal this flow's open slot so later in-flow packets don't extend
|
||||
// it and accidentally reorder past this passthrough.
|
||||
if last := c.lastSlot; last != nil && last.fk == info.fk {
|
||||
c.lastSlot = nil
|
||||
}
|
||||
delete(c.openSlots, info.fk)
|
||||
c.addPassthrough(pkt)
|
||||
return nil
|
||||
}
|
||||
|
||||
// Single-flow fast path: with only one open flow the cache hits every
|
||||
// packet, and len(openSlots)==1 lets us skip the 38-byte fk compare
|
||||
// when there are multiple flows in flight (where the hit rate would
|
||||
// be ~0 and the compare is pure overhead).
|
||||
var open *coalesceSlot
|
||||
if last := c.lastSlot; last != nil && len(c.openSlots) == 1 && last.fk == info.fk {
|
||||
open = last
|
||||
} else {
|
||||
open = c.openSlots[info.fk]
|
||||
}
|
||||
if open != nil {
|
||||
if c.canAppend(open, pkt, info) {
|
||||
c.appendPayload(open, pkt, info)
|
||||
if open.psh {
|
||||
delete(c.openSlots, info.fk)
|
||||
c.lastSlot = nil
|
||||
} else {
|
||||
c.lastSlot = open
|
||||
}
|
||||
return nil
|
||||
}
|
||||
// Can't extend — seal it and fall through to seed a fresh slot.
|
||||
delete(c.openSlots, info.fk)
|
||||
if c.lastSlot == open {
|
||||
c.lastSlot = nil
|
||||
}
|
||||
}
|
||||
c.seed(pkt, info)
|
||||
return nil
|
||||
}
|
||||
|
||||
// Flush emits every queued event in (per-flow) seq order. Coalesced slots
|
||||
// go out via WriteGSO; passthrough slots go out via plainW.Write.
|
||||
// reorderForFlush first sorts each flow's slots into TCP-seq order within
|
||||
// passthrough-bounded segments and merges contiguous adjacent slots, so
|
||||
// any wire-side reorder that crossed an rxOrder batch boundary doesn't
|
||||
// get amplified into kernel-visible reorder by the slot machinery.
|
||||
// Returns the first error observed; keeps draining so one bad packet
|
||||
// doesn't hold up the rest. After Flush returns, borrowed payload slices
|
||||
// may be recycled.
|
||||
func (c *TCPCoalescer) Flush() error {
|
||||
c.reorderForFlush()
|
||||
var first error
|
||||
for _, s := range c.slots {
|
||||
var err error
|
||||
if s.passthrough {
|
||||
_, err = c.plainW.Write(s.rawPkt)
|
||||
} else {
|
||||
err = c.flushSlot(s)
|
||||
}
|
||||
if err != nil && first == nil {
|
||||
first = err
|
||||
}
|
||||
c.release(s)
|
||||
}
|
||||
clear(c.slots)
|
||||
c.slots = c.slots[:0]
|
||||
clear(c.openSlots)
|
||||
c.lastSlot = nil
|
||||
|
||||
c.backing = c.backing[:0]
|
||||
return first
|
||||
}
|
||||
|
||||
func (c *TCPCoalescer) addPassthrough(pkt []byte) {
|
||||
s := c.take()
|
||||
s.passthrough = true
|
||||
s.rawPkt = pkt
|
||||
c.slots = append(c.slots, s)
|
||||
}
|
||||
|
||||
func (c *TCPCoalescer) seed(pkt []byte, info parsedTCP) {
|
||||
if info.hdrLen > tcpCoalesceHdrCap || info.hdrLen+info.payLen > tcpCoalesceBufSize {
|
||||
// Pathological shape — can't fit our scratch, emit as-is.
|
||||
c.addPassthrough(pkt)
|
||||
return
|
||||
}
|
||||
s := c.take()
|
||||
s.passthrough = false
|
||||
s.rawPkt = nil
|
||||
copy(s.hdrBuf[:], pkt[:info.hdrLen])
|
||||
s.hdrLen = info.hdrLen
|
||||
s.ipHdrLen = info.ipHdrLen
|
||||
s.isV6 = info.fk.isV6
|
||||
s.fk = info.fk
|
||||
s.gsoSize = info.payLen
|
||||
s.numSeg = 1
|
||||
s.totalPay = info.payLen
|
||||
s.nextSeq = info.seq + uint32(info.payLen)
|
||||
s.psh = info.flags&tcpFlagPsh != 0
|
||||
s.payIovs = append(s.payIovs[:0], pkt[info.hdrLen:info.hdrLen+info.payLen])
|
||||
c.slots = append(c.slots, s)
|
||||
if !s.psh {
|
||||
c.openSlots[info.fk] = s
|
||||
c.lastSlot = s
|
||||
} else if last := c.lastSlot; last != nil && last.fk == info.fk {
|
||||
// PSH-on-seed seals the slot immediately. Any prior cached open
|
||||
// slot for this flow has just been sealed-and-replaced by this
|
||||
// passthrough-shaped seed, so drop the cache too.
|
||||
c.lastSlot = nil
|
||||
}
|
||||
}
|
||||
|
||||
// canAppend reports whether info's packet extends the slot's seed: same
|
||||
// header shape and stable contents, adjacent seq, not oversized, chain not
|
||||
// closed.
|
||||
func (c *TCPCoalescer) canAppend(s *coalesceSlot, pkt []byte, info parsedTCP) bool {
|
||||
if s.psh {
|
||||
return false
|
||||
}
|
||||
if info.hdrLen != s.hdrLen {
|
||||
return false
|
||||
}
|
||||
if info.seq != s.nextSeq {
|
||||
return false
|
||||
}
|
||||
if s.numSeg >= tcpCoalesceMaxSegs {
|
||||
return false
|
||||
}
|
||||
if info.payLen > s.gsoSize {
|
||||
return false
|
||||
}
|
||||
if s.hdrLen+s.totalPay+info.payLen > tcpCoalesceBufSize {
|
||||
return false
|
||||
}
|
||||
// ECE state must be stable across a burst — receivers expect the
|
||||
// flag set on every segment of a CE-echoing window or none.
|
||||
seedFlags := s.hdrBuf[s.ipHdrLen+13]
|
||||
if (seedFlags^info.flags)&tcpFlagEce != 0 {
|
||||
return false
|
||||
}
|
||||
if !headersMatch(s.hdrBuf[:s.hdrLen], pkt[:info.hdrLen], s.isV6, s.ipHdrLen) {
|
||||
return false
|
||||
}
|
||||
return true
|
||||
}
|
||||
|
||||
func (c *TCPCoalescer) appendPayload(s *coalesceSlot, pkt []byte, info parsedTCP) {
|
||||
s.payIovs = append(s.payIovs, pkt[info.hdrLen:info.hdrLen+info.payLen])
|
||||
s.numSeg++
|
||||
s.totalPay += info.payLen
|
||||
s.nextSeq = info.seq + uint32(info.payLen)
|
||||
if info.flags&tcpFlagPsh != 0 {
|
||||
// Propagate PSH into the seed header so kernel TSO sets it on the
|
||||
// last segment. Without this the sender's push signal is dropped.
|
||||
s.hdrBuf[s.ipHdrLen+13] |= tcpFlagPsh
|
||||
}
|
||||
// Merge IP-level CE marks into the seed: headersMatch ignores ECN, so
|
||||
// this is the one place the signal is preserved.
|
||||
mergeECNIntoSeed(s.hdrBuf[:s.ipHdrLen], pkt[:s.ipHdrLen], s.isV6)
|
||||
if info.payLen < s.gsoSize || info.flags&tcpFlagPsh != 0 {
|
||||
s.psh = true
|
||||
}
|
||||
}
|
||||
|
||||
func (c *TCPCoalescer) take() *coalesceSlot {
|
||||
if n := len(c.pool); n > 0 {
|
||||
s := c.pool[n-1]
|
||||
c.pool[n-1] = nil
|
||||
c.pool = c.pool[:n-1]
|
||||
return s
|
||||
}
|
||||
return &coalesceSlot{}
|
||||
}
|
||||
|
||||
func (c *TCPCoalescer) release(s *coalesceSlot) {
|
||||
s.passthrough = false
|
||||
s.rawPkt = nil
|
||||
clear(s.payIovs)
|
||||
s.payIovs = s.payIovs[:0]
|
||||
s.numSeg = 0
|
||||
s.totalPay = 0
|
||||
s.psh = false
|
||||
c.pool = append(c.pool, s)
|
||||
}
|
||||
|
||||
// flushSlot patches the header and calls WriteGSO. Does not remove the
|
||||
// slot from c.slots.
|
||||
func (c *TCPCoalescer) flushSlot(s *coalesceSlot) error {
|
||||
total := s.hdrLen + s.totalPay
|
||||
l4Len := total - s.ipHdrLen
|
||||
hdr := s.hdrBuf[:s.hdrLen]
|
||||
|
||||
if s.isV6 {
|
||||
binary.BigEndian.PutUint16(hdr[4:6], uint16(l4Len))
|
||||
} else {
|
||||
binary.BigEndian.PutUint16(hdr[2:4], uint16(total))
|
||||
hdr[10] = 0
|
||||
hdr[11] = 0
|
||||
binary.BigEndian.PutUint16(hdr[10:12], ipv4HdrChecksum(hdr[:s.ipHdrLen]))
|
||||
}
|
||||
|
||||
var psum uint32
|
||||
if s.isV6 {
|
||||
psum = pseudoSumIPv6(hdr[8:24], hdr[24:40], ipProtoTCP, l4Len)
|
||||
} else {
|
||||
psum = pseudoSumIPv4(hdr[12:16], hdr[16:20], ipProtoTCP, l4Len)
|
||||
}
|
||||
tcsum := s.ipHdrLen + 16
|
||||
binary.BigEndian.PutUint16(hdr[tcsum:tcsum+2], foldOnceNoInvert(psum))
|
||||
|
||||
return c.gsoW.WriteGSO(hdr[:s.ipHdrLen], hdr[s.ipHdrLen:], s.payIovs, tio.GSOProtoTCP)
|
||||
}
|
||||
|
||||
// headersMatch compares two IP+TCP header prefixes for byte-for-byte
|
||||
// equality on every field that must be identical across coalesced
|
||||
// segments. Size/IPID/IPCsum/seq/flags/tcpCsum are masked out, as is the
|
||||
// 2-bit IP-level ECN field — appendPayload merges CE into the seed.
|
||||
func headersMatch(a, b []byte, isV6 bool, ipHdrLen int) bool {
|
||||
if len(a) != len(b) {
|
||||
return false
|
||||
}
|
||||
if !ipHeadersMatch(a, b, isV6) {
|
||||
return false
|
||||
}
|
||||
// TCP: compare [0:4] ports, [8:13] ack+dataoff, [14:16] window,
|
||||
// [18:tcpHdrLen] options (incl. urgent).
|
||||
tcp := ipHdrLen
|
||||
if !bytes.Equal(a[tcp:tcp+4], b[tcp:tcp+4]) {
|
||||
return false
|
||||
}
|
||||
if !bytes.Equal(a[tcp+8:tcp+13], b[tcp+8:tcp+13]) {
|
||||
return false
|
||||
}
|
||||
if !bytes.Equal(a[tcp+14:tcp+16], b[tcp+14:tcp+16]) {
|
||||
return false
|
||||
}
|
||||
if !bytes.Equal(a[tcp+18:], b[tcp+18:]) {
|
||||
return false
|
||||
}
|
||||
return true
|
||||
}
|
||||
|
||||
// reorderForFlush neutralizes wire-side reorder that the rxOrder buffer
|
||||
// couldn't catch (anything crossing a recvmmsg batch boundary). Without
|
||||
// this pass a small wire reorder — counter 250 arriving in batch K when
|
||||
// 200..249 are coming in batch K+1 — would seed an out-of-seq slot first
|
||||
// and emit it ahead of the lower-seq slot, manifesting at the inner TCP
|
||||
// receiver as a much larger reorder than the wire actually had.
|
||||
//
|
||||
// Two phases:
|
||||
// 1. Sort each passthrough-bounded segment of c.slots by (flow, seq).
|
||||
// Cross-flow ordering inside a segment isn't preserved (it never was
|
||||
// and doesn't matter for any single flow's TCP correctness).
|
||||
// 2. Sweep once and merge adjacent same-flow slots whose ranges are now
|
||||
// contiguous AND whose tail is gsoSize-aligned. The tail constraint
|
||||
// matters because the kernel TSO splitter chops at gsoSize from the
|
||||
// start of the merged payload — a short segment in the middle would
|
||||
// desynchronize every later segment.
|
||||
//
|
||||
// Passthrough slots act as barriers: the merge check skips them on either
|
||||
// side, so a SYN/FIN/RST/CWR is never reordered relative to its flow's
|
||||
// data.
|
||||
func (c *TCPCoalescer) reorderForFlush() {
|
||||
if len(c.slots) <= 1 {
|
||||
return
|
||||
}
|
||||
runStart := 0
|
||||
for i := 0; i <= len(c.slots); i++ {
|
||||
if i < len(c.slots) && !c.slots[i].passthrough {
|
||||
continue
|
||||
}
|
||||
c.sortRun(c.slots[runStart:i])
|
||||
runStart = i + 1
|
||||
}
|
||||
out := c.slots[:0]
|
||||
logged := false
|
||||
for _, s := range c.slots {
|
||||
if n := len(out); n > 0 {
|
||||
prev := out[n-1]
|
||||
if !prev.passthrough && !s.passthrough && prev.fk == s.fk {
|
||||
// Same-flow neighbors after sort. If they aren't seq-
|
||||
// contiguous it's a real gap — packets the wire reordered
|
||||
// across batches, or actual loss before nebula. Log it so
|
||||
// the operator can quantify how often it happens; the data
|
||||
// itself still emits in seq order, kernel TCP handles the
|
||||
// gap via its OOO queue.
|
||||
if prev.nextSeq != slotSeedSeq(s) {
|
||||
logged = true
|
||||
gap := int64(slotSeedSeq(s)) - int64(prev.nextSeq)
|
||||
slog.Default().Warn("tcp coalesce: cross-slot seq gap",
|
||||
"src", flowKeyAddr(s.fk, false),
|
||||
"dst", flowKeyAddr(s.fk, true),
|
||||
"sport", s.fk.sport,
|
||||
"dport", s.fk.dport,
|
||||
"prev_seed_seq", slotSeedSeq(prev),
|
||||
"prev_next_seq", prev.nextSeq,
|
||||
"this_seed_seq", slotSeedSeq(s),
|
||||
"gap_bytes", gap,
|
||||
"prev_seg_count", prev.numSeg,
|
||||
"prev_total_pay", prev.totalPay,
|
||||
)
|
||||
}
|
||||
if canMergeSlots(prev, s) {
|
||||
mergeSlots(prev, s)
|
||||
c.release(s)
|
||||
continue
|
||||
}
|
||||
}
|
||||
}
|
||||
out = append(out, s)
|
||||
}
|
||||
if logged {
|
||||
slog.Default().Warn("==== end of batch ====")
|
||||
}
|
||||
c.slots = out
|
||||
}
|
||||
|
||||
// flowKeyAddr returns the src or dst address from fk as a netip.Addr for
|
||||
// logging. Only used on the cold gap-log path so the netip allocation
|
||||
// doesn't matter.
|
||||
func flowKeyAddr(fk flowKey, dst bool) netip.Addr {
|
||||
src := fk.src
|
||||
if dst {
|
||||
src = fk.dst
|
||||
}
|
||||
if fk.isV6 {
|
||||
return netip.AddrFrom16(src)
|
||||
}
|
||||
var v4 [4]byte
|
||||
copy(v4[:], src[:4])
|
||||
return netip.AddrFrom4(v4)
|
||||
}
|
||||
|
||||
// sortRun stable-sorts run by (flowKey, seedSeq) so each flow's slots
|
||||
// cluster together in seq order, ready for the merge sweep. Stable so
|
||||
// equal-key slots keep their original relative position (defensive — a
|
||||
// duplicate seedSeq would already mean something's wrong upstream).
|
||||
func (c *TCPCoalescer) sortRun(run []*coalesceSlot) {
|
||||
if len(run) <= 1 {
|
||||
return
|
||||
}
|
||||
// slices.SortStableFunc with a free, non-capturing comparator avoids the
|
||||
// reflection + closure-escape allocations that sort.SliceStable forces.
|
||||
slices.SortStableFunc(run, compareCoalesceSlots)
|
||||
}
|
||||
|
||||
func compareCoalesceSlots(a, b *coalesceSlot) int {
|
||||
if cmp := flowKeyCompare(a.fk, b.fk); cmp != 0 {
|
||||
return cmp
|
||||
}
|
||||
aSeq, bSeq := slotSeedSeq(a), slotSeedSeq(b)
|
||||
if aSeq == bSeq {
|
||||
return 0
|
||||
}
|
||||
if tcpSeqLess(aSeq, bSeq) {
|
||||
return -1
|
||||
}
|
||||
return 1
|
||||
}
|
||||
|
||||
// slotSeedSeq returns the TCP seq of the slot's seed (first segment).
|
||||
// nextSeq tracks the seq just past the last appended byte; subtracting
|
||||
// totalPay walks back to the seed. uint32 wraparound is the right TCP
|
||||
// arithmetic so no special-casing is needed.
|
||||
func slotSeedSeq(s *coalesceSlot) uint32 {
|
||||
return s.nextSeq - uint32(s.totalPay)
|
||||
}
|
||||
|
||||
// tcpSeqLess reports whether a precedes b in TCP serial-number arithmetic
|
||||
// (RFC 1323 §2.3). The signed int32 cast turns the modular subtraction
|
||||
// into the right comparison even across the 2^32 wrap.
|
||||
func tcpSeqLess(a, b uint32) bool {
|
||||
return int32(a-b) < 0
|
||||
}
|
||||
|
||||
// flowKeyCompare orders flowKeys deterministically. The exact ordering
|
||||
// is irrelevant — only that same-flow slots cluster together so the
|
||||
// post-sort sweep can merge contiguous pairs.
|
||||
func flowKeyCompare(a, b flowKey) int {
|
||||
// Cheap scalar fields first so most non-matching keys short-circuit
|
||||
// without ever calling bytes.Compare. sport is the ephemeral port on
|
||||
// egress flows and discriminates fastest. For matching keys (same
|
||||
// flow), array equality on src/dst inlines to word-sized compares,
|
||||
// so we only pay bytes.Compare when the arrays actually differ.
|
||||
if a.sport != b.sport {
|
||||
if a.sport < b.sport {
|
||||
return -1
|
||||
}
|
||||
return 1
|
||||
}
|
||||
if a.dport != b.dport {
|
||||
if a.dport < b.dport {
|
||||
return -1
|
||||
}
|
||||
return 1
|
||||
}
|
||||
if a.dst != b.dst {
|
||||
return bytes.Compare(a.dst[:], b.dst[:])
|
||||
}
|
||||
if a.src != b.src {
|
||||
return bytes.Compare(a.src[:], b.src[:])
|
||||
}
|
||||
if a.isV6 != b.isV6 {
|
||||
if !a.isV6 {
|
||||
return -1
|
||||
}
|
||||
return 1
|
||||
}
|
||||
return 0
|
||||
}
|
||||
|
||||
// canMergeSlots reports whether s can fold into prev as one merged TSO
|
||||
// superpacket. Same flow, contiguous TCP byte range, equal gsoSize, and
|
||||
// fits within the kernel TSO limits. The tail-of-prev check rejects any
|
||||
// merge whose first slot ended on a sub-gsoSize segment — kernel TSO
|
||||
// would split the merged skb at gsoSize boundaries from the start, so a
|
||||
// short segment in the middle would corrupt every later segment. PSH and
|
||||
// ECE state must agree across both slots: PSH is a semantic delimiter
|
||||
// (preserving the sender's push boundary) and ECE state must be uniform
|
||||
// across a window (the same rule canAppend enforces for in-flow appends).
|
||||
//
|
||||
// Note: a slot sealed by reorder (canAppend returned false on seq
|
||||
// mismatch) keeps psh=false, so this restriction does not block the
|
||||
// reorder-fix merge — only legitimate PSH-set seals.
|
||||
func canMergeSlots(prev, s *coalesceSlot) bool {
|
||||
if prev.psh {
|
||||
return false
|
||||
}
|
||||
if prev.fk != s.fk {
|
||||
return false
|
||||
}
|
||||
if prev.gsoSize != s.gsoSize {
|
||||
return false
|
||||
}
|
||||
if prev.nextSeq != slotSeedSeq(s) {
|
||||
return false
|
||||
}
|
||||
if prev.numSeg+s.numSeg > tcpCoalesceMaxSegs {
|
||||
return false
|
||||
}
|
||||
if prev.hdrLen+prev.totalPay+s.totalPay > tcpCoalesceBufSize {
|
||||
return false
|
||||
}
|
||||
if len(prev.payIovs[len(prev.payIovs)-1]) != prev.gsoSize {
|
||||
return false
|
||||
}
|
||||
prevFlags := prev.hdrBuf[prev.ipHdrLen+13]
|
||||
sFlags := s.hdrBuf[s.ipHdrLen+13]
|
||||
if (prevFlags^sFlags)&tcpFlagEce != 0 {
|
||||
return false
|
||||
}
|
||||
if !headersMatch(prev.hdrBuf[:prev.hdrLen], s.hdrBuf[:s.hdrLen], prev.isV6, prev.ipHdrLen) {
|
||||
return false
|
||||
}
|
||||
return true
|
||||
}
|
||||
|
||||
// mergeSlots folds src into dst in place: payIovs concatenated, counters
|
||||
// and totals updated, PSH and IP-level CE bits OR'd into the seed header
|
||||
// so neither the push signal nor a CE mark is lost. The seed header's
|
||||
// seq, gsoSize, and fk are unchanged. Caller is responsible for releasing
|
||||
// src (it's no longer in c.slots after this call).
|
||||
func mergeSlots(dst, src *coalesceSlot) {
|
||||
dst.payIovs = append(dst.payIovs, src.payIovs...)
|
||||
dst.numSeg += src.numSeg
|
||||
dst.totalPay += src.totalPay
|
||||
dst.nextSeq = src.nextSeq
|
||||
if src.psh {
|
||||
dst.psh = true
|
||||
dst.hdrBuf[dst.ipHdrLen+13] |= tcpFlagPsh
|
||||
}
|
||||
mergeECNIntoSeed(dst.hdrBuf[:dst.ipHdrLen], src.hdrBuf[:src.ipHdrLen], dst.isV6)
|
||||
}
|
||||
|
||||
// ipv4HdrChecksum computes the IPv4 header checksum over hdr (which must
|
||||
// already have its checksum field zeroed) and returns the folded/inverted
|
||||
// 16-bit value to store.
|
||||
func ipv4HdrChecksum(hdr []byte) uint16 {
|
||||
var sum uint32
|
||||
for i := 0; i+1 < len(hdr); i += 2 {
|
||||
sum += uint32(binary.BigEndian.Uint16(hdr[i : i+2]))
|
||||
}
|
||||
if len(hdr)%2 == 1 {
|
||||
sum += uint32(hdr[len(hdr)-1]) << 8
|
||||
}
|
||||
for sum>>16 != 0 {
|
||||
sum = (sum & 0xffff) + (sum >> 16)
|
||||
}
|
||||
return ^uint16(sum)
|
||||
}
|
||||
|
||||
// pseudoSumIPv4 / pseudoSumIPv6 build the L4 pseudo-header partial sum
|
||||
// expected by the virtio NEEDS_CSUM kernel path: the 32-bit accumulator
|
||||
// before folding. proto selects the L4 (TCP or UDP); the UDP coalescer
|
||||
// reuses these helpers.
|
||||
func pseudoSumIPv4(src, dst []byte, proto byte, l4Len int) uint32 {
|
||||
var sum uint32
|
||||
sum += uint32(binary.BigEndian.Uint16(src[0:2]))
|
||||
sum += uint32(binary.BigEndian.Uint16(src[2:4]))
|
||||
sum += uint32(binary.BigEndian.Uint16(dst[0:2]))
|
||||
sum += uint32(binary.BigEndian.Uint16(dst[2:4]))
|
||||
sum += uint32(proto)
|
||||
sum += uint32(l4Len)
|
||||
return sum
|
||||
}
|
||||
|
||||
func pseudoSumIPv6(src, dst []byte, proto byte, l4Len int) uint32 {
|
||||
var sum uint32
|
||||
for i := 0; i < 16; i += 2 {
|
||||
sum += uint32(binary.BigEndian.Uint16(src[i : i+2]))
|
||||
sum += uint32(binary.BigEndian.Uint16(dst[i : i+2]))
|
||||
}
|
||||
sum += uint32(l4Len >> 16)
|
||||
sum += uint32(l4Len & 0xffff)
|
||||
sum += uint32(proto)
|
||||
return sum
|
||||
}
|
||||
|
||||
// foldOnceNoInvert folds the 32-bit accumulator to 16 bits and returns it
|
||||
// unchanged (no one's complement). This is what virtio NEEDS_CSUM wants in
|
||||
// the L4 checksum field — the kernel will add the payload sum and invert.
|
||||
func foldOnceNoInvert(sum uint32) uint16 {
|
||||
for sum>>16 != 0 {
|
||||
sum = (sum & 0xffff) + (sum >> 16)
|
||||
}
|
||||
return uint16(sum)
|
||||
}
|
||||
@@ -1,239 +0,0 @@
|
||||
package batch
|
||||
|
||||
import (
|
||||
"encoding/binary"
|
||||
"runtime"
|
||||
"testing"
|
||||
|
||||
"github.com/slackhq/nebula/overlay/tio"
|
||||
)
|
||||
|
||||
// nopTunWriter is a zero-alloc tio.GSOWriter for benchmarks. Discards
|
||||
// everything but satisfies the interface the coalescer detects.
|
||||
type nopTunWriter struct{}
|
||||
|
||||
func (nopTunWriter) Write(p []byte) (int, error) { return len(p), nil }
|
||||
func (nopTunWriter) WriteGSO(hdr []byte, transportHdr []byte, pays [][]byte, _ tio.GSOProto) error {
|
||||
return nil
|
||||
}
|
||||
func (nopTunWriter) Capabilities() tio.Capabilities {
|
||||
return tio.Capabilities{TSO: true, USO: true}
|
||||
}
|
||||
|
||||
// buildTCPv4BulkFlow returns a slice of N adjacent ACK-only TCP segments
|
||||
// on a single 5-tuple, each carrying payloadLen bytes. Seq numbers are
|
||||
// contiguous so every packet is coalesceable onto the previous one.
|
||||
func buildTCPv4BulkFlow(n, payloadLen int) [][]byte {
|
||||
pkts := make([][]byte, n)
|
||||
pay := make([]byte, payloadLen)
|
||||
seq := uint32(1000)
|
||||
for i := range n {
|
||||
pkts[i] = buildTCPv4(seq, tcpAck, pay)
|
||||
seq += uint32(payloadLen)
|
||||
}
|
||||
return pkts
|
||||
}
|
||||
|
||||
// buildTCPv4Interleaved returns nFlows * perFlow packets with per-flow
|
||||
// seq continuity but round-robin across flows — worst case for any
|
||||
// "last-slot" cache.
|
||||
func buildTCPv4Interleaved(nFlows, perFlow, payloadLen int) [][]byte {
|
||||
pay := make([]byte, payloadLen)
|
||||
seqs := make([]uint32, nFlows)
|
||||
for i := range seqs {
|
||||
seqs[i] = uint32(1000 + i*1000000)
|
||||
}
|
||||
pkts := make([][]byte, 0, nFlows*perFlow)
|
||||
for range perFlow {
|
||||
for f := range nFlows {
|
||||
sport := uint16(10000 + f)
|
||||
pkts = append(pkts, buildTCPv4Ports(sport, 2000, seqs[f], tcpAck, pay))
|
||||
seqs[f] += uint32(payloadLen)
|
||||
}
|
||||
}
|
||||
return pkts
|
||||
}
|
||||
|
||||
// buildICMPv4 returns a minimal non-TCP packet that takes the passthrough
|
||||
// branch in Commit.
|
||||
func buildICMPv4() []byte {
|
||||
pkt := make([]byte, 28)
|
||||
pkt[0] = 0x45
|
||||
binary.BigEndian.PutUint16(pkt[2:4], 28)
|
||||
pkt[9] = 1 // ICMP
|
||||
copy(pkt[12:16], []byte{10, 0, 0, 1})
|
||||
copy(pkt[16:20], []byte{10, 0, 0, 2})
|
||||
return pkt
|
||||
}
|
||||
|
||||
// runCommitBench drives Commit over pkts batchSize at a time, flushing
|
||||
// between batches, and reports per-packet cost.
|
||||
func runCommitBench(b *testing.B, pkts [][]byte, batchSize int) {
|
||||
b.Helper()
|
||||
c := NewTCPCoalescer(nopTunWriter{})
|
||||
b.ReportAllocs()
|
||||
b.SetBytes(int64(len(pkts[0])))
|
||||
b.ResetTimer()
|
||||
for i := 0; i < b.N; i++ {
|
||||
pkt := pkts[i%len(pkts)]
|
||||
if err := c.Commit(pkt); err != nil {
|
||||
b.Fatal(err)
|
||||
}
|
||||
if (i+1)%batchSize == 0 {
|
||||
if err := c.Flush(); err != nil {
|
||||
b.Fatal(err)
|
||||
}
|
||||
}
|
||||
}
|
||||
// Drain any trailing partial batch so slot state doesn't leak across runs.
|
||||
_ = c.Flush()
|
||||
}
|
||||
|
||||
// BenchmarkCommitSingleFlow is the bulk-TCP steady state: one flow,
|
||||
// contiguous seq, 1200-byte payloads. Every packet past the seed should
|
||||
// append onto the open slot. This is the case we most care about.
|
||||
func BenchmarkCommitSingleFlow(b *testing.B) {
|
||||
pkts := buildTCPv4BulkFlow(tcpCoalesceMaxSegs, 1200)
|
||||
runCommitBench(b, pkts, tcpCoalesceMaxSegs)
|
||||
}
|
||||
|
||||
// BenchmarkCommitInterleaved4 has 4 concurrent bulk flows round-robined.
|
||||
// A single-entry fast-path cache will miss on every packet; an N-way
|
||||
// cache or map lookup carries the weight.
|
||||
func BenchmarkCommitInterleaved4(b *testing.B) {
|
||||
pkts := buildTCPv4Interleaved(4, tcpCoalesceMaxSegs, 1200)
|
||||
runCommitBench(b, pkts, len(pkts))
|
||||
}
|
||||
|
||||
// BenchmarkCommitInterleaved16 stresses the map at higher flow counts.
|
||||
func BenchmarkCommitInterleaved16(b *testing.B) {
|
||||
pkts := buildTCPv4Interleaved(16, tcpCoalesceMaxSegs, 1200)
|
||||
runCommitBench(b, pkts, len(pkts))
|
||||
}
|
||||
|
||||
// BenchmarkCommitPassthrough exercises the non-TCP branch: parseTCPBase
|
||||
// bails early and addPassthrough is the only work.
|
||||
func BenchmarkCommitPassthrough(b *testing.B) {
|
||||
pkt := buildICMPv4()
|
||||
pkts := make([][]byte, 64)
|
||||
for i := range pkts {
|
||||
pkts[i] = pkt
|
||||
}
|
||||
runCommitBench(b, pkts, 64)
|
||||
}
|
||||
|
||||
// BenchmarkCommitNonCoalesceableTCP sends SYN|ACK packets on one flow.
|
||||
// Each packet takes the "TCP but not admissible" branch which does a
|
||||
// map delete + passthrough. Measures the seal-without-slot cost.
|
||||
func BenchmarkCommitNonCoalesceableTCP(b *testing.B) {
|
||||
pay := make([]byte, 0)
|
||||
pkts := make([][]byte, 64)
|
||||
for i := range pkts {
|
||||
pkts[i] = buildTCPv4(uint32(1000+i), tcpSyn|tcpAck, pay)
|
||||
}
|
||||
runCommitBench(b, pkts, 64)
|
||||
}
|
||||
|
||||
// runMultiCommitBench drives MultiCoalescer.Commit. The dispatcher does
|
||||
// the IP/L4 parse once and passes the parsed struct to the lane, so this
|
||||
// is the bench that shows the savings of skipping the lane's re-parse.
|
||||
func runMultiCommitBench(b *testing.B, pkts [][]byte, batchSize int) {
|
||||
b.Helper()
|
||||
m := NewMultiCoalescer(nopTunWriter{}, true, true)
|
||||
b.ReportAllocs()
|
||||
b.SetBytes(int64(len(pkts[0])))
|
||||
b.ResetTimer()
|
||||
for i := 0; i < b.N; i++ {
|
||||
pkt := pkts[i%len(pkts)]
|
||||
if err := m.Commit(pkt); err != nil {
|
||||
b.Fatal(err)
|
||||
}
|
||||
if (i+1)%batchSize == 0 {
|
||||
if err := m.Flush(); err != nil {
|
||||
b.Fatal(err)
|
||||
}
|
||||
}
|
||||
}
|
||||
_ = m.Flush()
|
||||
}
|
||||
|
||||
// BenchmarkMultiCommitSingleFlow is the multi-lane analogue of
|
||||
// BenchmarkCommitSingleFlow — same workload but routed through the
|
||||
// dispatcher. The delta vs the single-lane bench measures dispatcher
|
||||
// overhead.
|
||||
func BenchmarkMultiCommitSingleFlow(b *testing.B) {
|
||||
pkts := buildTCPv4BulkFlow(tcpCoalesceMaxSegs, 1200)
|
||||
runMultiCommitBench(b, pkts, tcpCoalesceMaxSegs)
|
||||
}
|
||||
|
||||
// BenchmarkMultiCommitInterleaved4 mirrors BenchmarkCommitInterleaved4
|
||||
// through the dispatcher.
|
||||
func BenchmarkMultiCommitInterleaved4(b *testing.B) {
|
||||
pkts := buildTCPv4Interleaved(4, tcpCoalesceMaxSegs, 1200)
|
||||
runMultiCommitBench(b, pkts, len(pkts))
|
||||
}
|
||||
|
||||
// flowKeyPair is one comparison input for the flowKeyCompare bench.
|
||||
type flowKeyPair struct{ a, b flowKey }
|
||||
|
||||
// makeFlowKey builds an IPv4 flowKey from compact inputs.
|
||||
func makeFlowKey(srcLow, dstLow uint32, sport, dport uint16) flowKey {
|
||||
var fk flowKey
|
||||
binary.BigEndian.PutUint32(fk.src[12:16], srcLow)
|
||||
binary.BigEndian.PutUint32(fk.dst[12:16], dstLow)
|
||||
fk.sport = sport
|
||||
fk.dport = dport
|
||||
return fk
|
||||
}
|
||||
|
||||
// flowKeyCases are the workload mixes flowKeyCompare sees in practice.
|
||||
// - sameFlow: equal keys; tests the equal-path cost (sort runs hit this
|
||||
// repeatedly when many segments share a flow).
|
||||
// - sportDiffers: same src/dst/dport, different sport — the typical
|
||||
// "sibling flows from one host to one server" pattern.
|
||||
// - dstDiffers: same src/sport/dport, different dst — outbound to many
|
||||
// servers from a fixed local port.
|
||||
// - allDiffer: every field differs; worst case for short-circuiting.
|
||||
func flowKeyCases() map[string][]flowKeyPair {
|
||||
const n = 64
|
||||
cases := map[string][]flowKeyPair{
|
||||
"sameFlow": make([]flowKeyPair, n),
|
||||
"sportDiffers": make([]flowKeyPair, n),
|
||||
"dstDiffers": make([]flowKeyPair, n),
|
||||
"allDiffer": make([]flowKeyPair, n),
|
||||
}
|
||||
for i := range n {
|
||||
base := makeFlowKey(0x0a000001, 0x0a000002, 40000, 443)
|
||||
cases["sameFlow"][i] = flowKeyPair{a: base, b: base}
|
||||
cases["sportDiffers"][i] = flowKeyPair{
|
||||
a: base,
|
||||
b: makeFlowKey(0x0a000001, 0x0a000002, uint16(40001+i), 443),
|
||||
}
|
||||
cases["dstDiffers"][i] = flowKeyPair{
|
||||
a: base,
|
||||
b: makeFlowKey(0x0a000001, uint32(0x0a000002+i+1), 40000, 443),
|
||||
}
|
||||
cases["allDiffer"][i] = flowKeyPair{
|
||||
a: makeFlowKey(uint32(0x0a000001+i), uint32(0x0a000002+i), uint16(40000+i), uint16(80+i)),
|
||||
b: makeFlowKey(uint32(0x0b000001+i), uint32(0x0b000002+i), uint16(50000+i), uint16(443+i)),
|
||||
}
|
||||
}
|
||||
return cases
|
||||
}
|
||||
|
||||
// BenchmarkFlowKeyCompare measures flowKeyCompare across the workloads
|
||||
// the sort step actually sees. Use this to compare reorderings.
|
||||
func BenchmarkFlowKeyCompare(b *testing.B) {
|
||||
for name, pairs := range flowKeyCases() {
|
||||
b.Run(name, func(b *testing.B) {
|
||||
b.ReportAllocs()
|
||||
b.ResetTimer()
|
||||
var sink int
|
||||
for i := 0; i < b.N; i++ {
|
||||
p := pairs[i&(len(pairs)-1)]
|
||||
sink += flowKeyCompare(p.a, p.b)
|
||||
}
|
||||
runtime.KeepAlive(sink)
|
||||
})
|
||||
}
|
||||
}
|
||||
File diff suppressed because it is too large
Load Diff
@@ -1,64 +0,0 @@
|
||||
package batch
|
||||
|
||||
import "net/netip"
|
||||
|
||||
const SendBatchCap = 128
|
||||
|
||||
// batchWriter is the minimal subset of udp.Conn needed by SendBatch to flush.
|
||||
type batchWriter interface {
|
||||
WriteBatch(bufs [][]byte, addrs []netip.AddrPort, outerECNs []byte) error
|
||||
}
|
||||
|
||||
// SendBatch accumulates encrypted UDP packets and flushes them via WriteBatch.
|
||||
// One SendBatch is owned by each listenIn goroutine; no locking is needed.
|
||||
// The backing arena grows on demand: when there isn't room for the next slot
|
||||
// we allocate a fresh backing array. Already-committed slices keep referencing
|
||||
// the old array and remain valid until Flush drops them.
|
||||
type SendBatch struct {
|
||||
out batchWriter
|
||||
bufs [][]byte
|
||||
dsts []netip.AddrPort
|
||||
ecns []byte
|
||||
backing []byte
|
||||
}
|
||||
|
||||
func NewSendBatch(out batchWriter, batchCap, slotCap int) *SendBatch {
|
||||
return &SendBatch{
|
||||
out: out,
|
||||
bufs: make([][]byte, 0, batchCap),
|
||||
dsts: make([]netip.AddrPort, 0, batchCap),
|
||||
ecns: make([]byte, 0, batchCap),
|
||||
backing: make([]byte, 0, batchCap*slotCap),
|
||||
}
|
||||
}
|
||||
|
||||
func (b *SendBatch) Reserve(sz int) []byte {
|
||||
if len(b.backing)+sz > cap(b.backing) {
|
||||
// Grow: allocate a fresh backing. Already-committed slices still
|
||||
// reference the old array and remain valid until Flush drops them.
|
||||
newCap := max(cap(b.backing)*2, sz)
|
||||
b.backing = make([]byte, 0, newCap)
|
||||
}
|
||||
start := len(b.backing)
|
||||
b.backing = b.backing[:start+sz]
|
||||
return b.backing[start : start+sz : start+sz]
|
||||
}
|
||||
|
||||
func (b *SendBatch) Commit(pkt []byte, dst netip.AddrPort, outerECN byte) {
|
||||
b.bufs = append(b.bufs, pkt)
|
||||
b.dsts = append(b.dsts, dst)
|
||||
b.ecns = append(b.ecns, outerECN)
|
||||
}
|
||||
|
||||
func (b *SendBatch) Flush() error {
|
||||
var err error
|
||||
if len(b.bufs) > 0 {
|
||||
err = b.out.WriteBatch(b.bufs, b.dsts, b.ecns)
|
||||
}
|
||||
clear(b.bufs)
|
||||
b.bufs = b.bufs[:0]
|
||||
b.dsts = b.dsts[:0]
|
||||
b.ecns = b.ecns[:0]
|
||||
b.backing = b.backing[:0]
|
||||
return err
|
||||
}
|
||||
Some files were not shown because too many files have changed in this diff Show More
Reference in New Issue
Block a user