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Author SHA1 Message Date
Nate Brown e9357ff426 Experimenting with fw event reporting 2026-07-07 14:30:55 -05:00
150 changed files with 5306 additions and 11526 deletions
-113
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@@ -1,113 +0,0 @@
name: Code-sign Windows binaries
description: >
Sign every .exe under a given path in place via the DefinedNet code-signer
Lambda. If `role` or `bucket` is empty, logs a notice and skips signing so
forks and dev branches without AWS access still produce usable builds.
inputs:
path:
description: "Directory whose .exe files should be signed in place"
required: true
role:
description: "IAM role ARN to assume via OIDC; empty disables signing"
required: false
default: ""
bucket:
description: "S3 staging bucket the code-signer Lambda reads from; empty disables signing"
required: false
default: ""
region:
description: "AWS region for the role and Lambda"
required: false
default: "us-east-2"
function-name:
description: "Code-signer Lambda function name"
required: false
default: "code-signer"
key-prefix:
description: "S3 key prefix the caller is authorized to write under"
required: false
default: "code-signing/slackhq/nebula"
runs:
using: composite
steps:
- name: Skip notice
if: inputs.role == '' || inputs.bucket == ''
shell: sh
run: echo "::notice::code-signer role or bucket not set; skipping code signing."
- name: Configure AWS credentials
if: inputs.role != '' && inputs.bucket != ''
uses: aws-actions/configure-aws-credentials@v6
with:
role-to-assume: ${{ inputs.role }}
aws-region: ${{ inputs.region }}
# Default is 12 retries to ride out IAM trust-policy propagation; once
# the role is stable we want a real misconfiguration to fail fast.
retry-max-attempts: 5
- name: Sign .exe files
if: inputs.role != '' && inputs.bucket != ''
shell: sh
env:
SIGN_PATH: ${{ inputs.path }}
BUCKET: ${{ inputs.bucket }}
FUNCTION_NAME: ${{ inputs.function-name }}
KEY_PREFIX: ${{ inputs.key-prefix }}
run: |
set -eu
RUN="${GITHUB_RUN_ID}-${GITHUB_RUN_ATTEMPT}"
find "$SIGN_PATH" -name '*.exe' -print | while read -r path
do
rel=${path#"$SIGN_PATH"/}
file=$(basename "$path")
name=${file%.exe}
prefix="${KEY_PREFIX}/${RUN}"
src="${prefix}/unsigned/${rel}"
dst="${prefix}/signed/${rel}"
echo "::group::Sign ${rel}"
echo "Uploading unsigned to s3://${BUCKET}/${src}"
aws s3 cp --no-progress "$path" "s3://${BUCKET}/${src}" >/dev/null
echo "Invoking ${FUNCTION_NAME} Lambda"
payload=$(jq -nc \
--arg s "$src" \
--arg d "$dst" \
--arg p "$name" \
'{source_key: $s, dest_key: $d, program_name: $p}')
meta=$(aws lambda invoke \
--function-name "$FUNCTION_NAME" \
--cli-binary-format raw-in-base64-out \
--payload "$payload" \
--output json \
/tmp/sign-resp.json)
if echo "$meta" | jq -e '.FunctionError != null' >/dev/null
then
echo "::endgroup::"
echo "::error::code-signer Lambda failed for ${rel}"
cat /tmp/sign-resp.json >&2
exit 1
fi
echo "Downloading signed back to ${path}"
aws s3 cp --no-progress "s3://${BUCKET}/${dst}" "$path" >/dev/null
aws s3 rm "s3://${BUCKET}/${src}" >/dev/null 2>&1 || true
aws s3 rm "s3://${BUCKET}/${dst}" >/dev/null 2>&1 || true
# Sanity-check the bytes we got back actually carry an Authenticode
# signature that this machine can validate end to end.
status=$(powershell -NoProfile -Command "(Get-AuthenticodeSignature -FilePath '$path').Status" | tr -d '\r')
if [ "$status" != "Valid" ]
then
echo "::endgroup::"
echo "::error::${rel} signature status: ${status} (expected Valid)"
exit 1
fi
echo "Signed ${rel} (sha256=$(jq -r '.sha256' /tmp/sign-resp.json), status=${status})"
echo "::endgroup::"
done
+8 -18
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@@ -24,7 +24,7 @@ jobs:
mv build/*.tar.gz release
- name: Upload artifacts
uses: actions/upload-artifact@v7
uses: actions/upload-artifact@v6
with:
name: linux-latest
path: release
@@ -32,9 +32,6 @@ jobs:
build-windows:
name: Build Windows
runs-on: windows-latest
permissions:
id-token: write
contents: read
steps:
- uses: actions/checkout@v6
@@ -57,15 +54,8 @@ jobs:
mkdir build\dist\windows
mv dist\windows\wintun build\dist\windows\
- name: Code-sign
uses: ./.github/actions/code-sign
with:
path: build
role: ${{ secrets.DEFINED_CODE_SIGNER_ROLE }}
bucket: ${{ secrets.DEFINED_CODE_SIGNER_BUCKET }}
- name: Upload artifacts
uses: actions/upload-artifact@v7
uses: actions/upload-artifact@v6
with:
name: windows-latest
path: build
@@ -85,7 +75,7 @@ jobs:
- name: Import certificates
if: env.HAS_SIGNING_CREDS == 'true'
uses: Apple-Actions/import-codesign-certs@v7
uses: Apple-Actions/import-codesign-certs@v6
with:
p12-file-base64: ${{ secrets.APPLE_DEVELOPER_CERTIFICATE_P12_BASE64 }}
p12-password: ${{ secrets.APPLE_DEVELOPER_CERTIFICATE_PASSWORD }}
@@ -114,7 +104,7 @@ jobs:
fi
- name: Upload artifacts
uses: actions/upload-artifact@v7
uses: actions/upload-artifact@v6
with:
name: darwin-latest
path: ./release/*
@@ -138,21 +128,21 @@ jobs:
- name: Download artifacts
if: ${{ env.HAS_DOCKER_CREDS == 'true' }}
uses: actions/download-artifact@v8
uses: actions/download-artifact@v7
with:
name: linux-latest
path: artifacts
- name: Login to Docker Hub
if: ${{ env.HAS_DOCKER_CREDS == 'true' }}
uses: docker/login-action@v4
uses: docker/login-action@v3
with:
username: ${{ vars.DOCKERHUB_USERNAME }}
password: ${{ secrets.DOCKERHUB_TOKEN }}
- name: Set up Docker Buildx
if: ${{ env.HAS_DOCKER_CREDS == 'true' }}
uses: docker/setup-buildx-action@v4
uses: docker/setup-buildx-action@v3
- name: Build and push images
if: ${{ env.HAS_DOCKER_CREDS == 'true' }}
@@ -173,7 +163,7 @@ jobs:
- uses: actions/checkout@v6
- name: Download artifacts
uses: actions/download-artifact@v8
uses: actions/download-artifact@v7
with:
path: artifacts
+16 -81
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@@ -14,18 +14,10 @@ on:
- 'go.sum'
jobs:
smoke-extra-libvirt:
smoke-extra:
if: github.ref == 'refs/heads/master' || contains(github.event.pull_request.labels.*.name, 'smoke-test-extra')
name: ${{ matrix.target }}
name: Run extra smoke tests
runs-on: ubuntu-latest
strategy:
fail-fast: false
matrix:
target:
- freebsd-amd64
- openbsd-amd64
- netbsd-amd64
- linux-amd64-ipv6disable
env:
VAGRANT_DEFAULT_PROVIDER: libvirt
steps:
@@ -48,85 +40,28 @@ jobs:
sudo chmod 666 /var/run/libvirt/libvirt-sock
vagrant plugin install vagrant-libvirt
- name: ${{ matrix.target }}
run: make smoke-vagrant/${{ matrix.target }}
- name: freebsd-amd64
run: make smoke-vagrant/freebsd-amd64
timeout-minutes: 30
- name: openbsd-amd64
run: make smoke-vagrant/openbsd-amd64
# linux-386 needs VirtualBox, which conflicts with KVM/libvirt -- isolated job.
smoke-extra-virtualbox:
if: github.ref == 'refs/heads/master' || contains(github.event.pull_request.labels.*.name, 'smoke-test-extra')
name: linux-386
runs-on: ubuntu-latest
env:
VAGRANT_DEFAULT_PROVIDER: virtualbox
steps:
- name: netbsd-amd64
run: make smoke-vagrant/netbsd-amd64
- uses: actions/checkout@v6
- name: linux-amd64-ipv6disable
run: make smoke-vagrant/linux-amd64-ipv6disable
- uses: actions/setup-go@v6
with:
go-version: '1.25'
check-latest: true
- name: add hashicorp source
run: wget -O- https://apt.releases.hashicorp.com/gpg | gpg --dearmor | sudo tee /usr/share/keyrings/hashicorp-archive-keyring.gpg && echo "deb [signed-by=/usr/share/keyrings/hashicorp-archive-keyring.gpg] https://apt.releases.hashicorp.com $(lsb_release -cs) main" | sudo tee /etc/apt/sources.list.d/hashicorp.list
- name: install vagrant and virtualbox
# linux-386 runs last because it requires disabling KVM to use VirtualBox,
# which prevents libvirt (used by the other tests) from working after this point.
- name: install virtualbox for i386 test
run: |
sudo apt-get update && sudo apt-get install -y vagrant virtualbox
sudo apt-get install -y virtualbox
sudo rmmod kvm_amd kvm_intel kvm 2>/dev/null || true
- name: linux-386
env:
VAGRANT_DEFAULT_PROVIDER: virtualbox
run: make smoke-vagrant/linux-386
timeout-minutes: 30
smoke-windows:
if: github.ref == 'refs/heads/master' || contains(github.event.pull_request.labels.*.name, 'smoke-test-extra')
name: Run windows smoke test
runs-on: windows-latest
steps:
- uses: actions/checkout@v6
- uses: actions/setup-go@v6
with:
go-version: '1.25'
check-latest: true
# WSL2 + Ubuntu so the smoke can run a real linux peer with its own
# netns. iputils-ping is needed for the in-WSL ping check. WSL1 has no
# real kernel and would lack /dev/net/tun, so we have to force WSL2.
- uses: Vampire/setup-wsl@v3
with:
distribution: Ubuntu-24.04
additional-packages: iputils-ping iproute2
# Vampire/setup-wsl provisions WSL1 even when the WSL2 platform is present.
# Convert the distro to WSL2 explicitly before we try to use /dev/net/tun.
- name: convert distro to WSL2
shell: pwsh
run: |
wsl --set-version Ubuntu-24.04 2
wsl --shutdown
wsl --list --verbose
- name: build windows nebula
run: make bin-windows
- name: build linux nebula for WSL
shell: bash
env:
GOOS: linux
GOARCH: amd64
run: |
mkdir -p build/linux-amd64
go build -o build/linux-amd64/nebula ./cmd/nebula
- name: run smoke-windows
shell: pwsh
working-directory: ./.github/workflows/smoke
run: ./smoke-windows.ps1
timeout-minutes: 15
-272
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@@ -1,272 +0,0 @@
#!/usr/bin/env pwsh
# Windows smoke test for the nebula tun + UDP + NLM code paths.
#
# Topology:
# - lighthouse runs natively on the Windows host (wintun + windows UDP)
# - peer runs inside WSL2 (Linux build of nebula, /dev/net/tun)
#
# WSL2 gives us a real netns boundary so the loopback fast-path on Windows
# does not short-circuit the overlay -- when WSL pings the lighthouse VPN IP,
# Linux has no idea that IP is local to the Windows host, so the packet is
# forced through nebula. Same in reverse.
$ErrorActionPreference = 'Stop'
# wsl.exe emits UTF-16 LE by default which PowerShell reads as bytes, mangling
# every captured string. WSL_UTF8 makes wsl.exe emit UTF-8 instead.
$env:WSL_UTF8 = '1'
$RepoRoot = Resolve-Path "$PSScriptRoot\..\..\.."
$Nebula = Join-Path $RepoRoot 'nebula.exe'
$NebulaCert = Join-Path $RepoRoot 'nebula-cert.exe'
$NebulaLinux = Join-Path $RepoRoot 'build\linux-amd64\nebula'
if (-not (Test-Path $Nebula)) { throw "missing $Nebula; run 'make bin-windows' first" }
if (-not (Test-Path $NebulaCert)) { throw "missing $NebulaCert; run 'make bin-windows' first" }
if (-not (Test-Path $NebulaLinux)) { throw "missing $NebulaLinux; build the linux nebula first" }
# Matches the distro installed by Vampire/setup-wsl in smoke-extra.yml.
$Distro = 'Ubuntu-24.04'
$listed = (wsl --list --quiet 2>$null) -join "`n"
if ($listed -notmatch [regex]::Escape($Distro)) {
throw "WSL distro $Distro not registered. Got: $listed"
}
Write-Host "Using WSL distro: $Distro"
# Windows host as seen from inside WSL: WSL's default-route gateway. We extract
# it with a regex rather than awk fields so PowerShell does not eat any '$N'
# tokens, and tabs/double-spaces in `ip route` output do not confuse a cut.
$ipCmd = 'ip route show default | grep -oE "([0-9]+\.){3}[0-9]+" | head -1'
$WindowsIp = (wsl -d $Distro -- bash -c $ipCmd).Trim()
if (-not $WindowsIp) { throw "could not determine Windows host IP from WSL" }
Write-Host "Windows host IP from WSL: $WindowsIp"
$WorkDir = Join-Path $env:TEMP 'nebula-smoke-windows'
if (Test-Path $WorkDir) { Remove-Item -Recurse -Force $WorkDir }
New-Item -ItemType Directory -Path $WorkDir | Out-Null
$WslDir = '/tmp/nebula-smoke'
wsl -d $Distro -- bash -c "rm -rf $WslDir && mkdir -p $WslDir" | Out-Null
$DevName = 'nebula-smoke'
$Ip1 = '192.168.241.1'
$Ip2 = '192.168.241.2'
$Port = 4242
& $NebulaCert ca -name 'smoke-ca' -out-crt "$WorkDir\ca.crt" -out-key "$WorkDir\ca.key"
if ($LASTEXITCODE -ne 0) { throw "nebula-cert ca failed (exit $LASTEXITCODE)" }
& $NebulaCert sign -name 'lighthouse' -networks "$Ip1/24" -ca-crt "$WorkDir\ca.crt" -ca-key "$WorkDir\ca.key" -out-crt "$WorkDir\lighthouse.crt" -out-key "$WorkDir\lighthouse.key"
if ($LASTEXITCODE -ne 0) { throw "nebula-cert sign lighthouse failed (exit $LASTEXITCODE)" }
& $NebulaCert sign -name 'peer' -networks "$Ip2/24" -ca-crt "$WorkDir\ca.crt" -ca-key "$WorkDir\ca.key" -out-crt "$WorkDir\peer.crt" -out-key "$WorkDir\peer.key"
if ($LASTEXITCODE -ne 0) { throw "nebula-cert sign peer failed (exit $LASTEXITCODE)" }
# Windows lighthouse config.
@"
pki:
ca: $WorkDir\ca.crt
cert: $WorkDir\lighthouse.crt
key: $WorkDir\lighthouse.key
static_host_map: {}
lighthouse:
am_lighthouse: true
interval: 60
hosts: []
listen:
host: 0.0.0.0
port: $Port
tun:
disabled: false
dev: $DevName
drop_local_broadcast: false
drop_multicast: false
tx_queue: 500
mtu: 1300
network_category: private
logging:
level: info
format: text
firewall:
outbound_action: drop
inbound_action: drop
conntrack:
tcp_timeout: 12m
udp_timeout: 3m
default_timeout: 10m
outbound:
- port: any
proto: any
host: any
inbound:
- port: any
proto: any
host: any
"@ | Out-File -FilePath "$WorkDir\lighthouse.yml" -Encoding utf8
# WSL peer config (paths are POSIX, deliberately).
@"
pki:
ca: $WslDir/ca.crt
cert: $WslDir/peer.crt
key: $WslDir/peer.key
static_host_map:
"${Ip1}": ["${WindowsIp}:$Port"]
lighthouse:
am_lighthouse: false
interval: 60
hosts:
- "${Ip1}"
listen:
host: 0.0.0.0
port: 0
tun:
disabled: false
dev: nebula1
drop_local_broadcast: false
drop_multicast: false
tx_queue: 500
mtu: 1300
logging:
level: info
format: text
firewall:
outbound_action: drop
inbound_action: drop
conntrack:
tcp_timeout: 12m
udp_timeout: 3m
default_timeout: 10m
outbound:
- port: any
proto: any
host: any
inbound:
- port: any
proto: any
host: any
"@ | Out-File -FilePath "$WorkDir\peer.yml" -Encoding utf8
# Stage WSL artifacts. Convert Windows paths to WSL paths ourselves rather than
# calling `wslpath`, because PowerShell's argument-passing to external EXEs
# strips backslashes from path arguments in ways that are hard to escape around.
function ConvertTo-WslPath {
param([string]$WindowsPath)
if ($WindowsPath -notmatch '^([A-Za-z]):\\(.*)$') {
throw "cannot convert path to WSL: $WindowsPath"
}
return "/mnt/$($matches[1].ToLower())/$($matches[2].Replace('\','/'))"
}
$WslWorkDir = ConvertTo-WslPath $WorkDir
$WslNebulaPath = ConvertTo-WslPath $NebulaLinux
wsl -d $Distro -- bash -c "cp '$WslWorkDir/ca.crt' '$WslWorkDir/peer.crt' '$WslWorkDir/peer.key' '$WslWorkDir/peer.yml' $WslDir/ && cp '$WslNebulaPath' $WslDir/nebula && chmod +x $WslDir/nebula"
# Make sure WSL has tun support and /dev/net/tun is usable before starting
# nebula. Diagnostics first so a fail here points at the real problem (e.g.
# WSL1 distros do not have a real kernel and will not have tun).
Write-Host '=== WSL diagnostic ==='
wsl --version 2>&1 | Out-Host
wsl --list --verbose 2>&1 | Out-Host
wsl -d $Distro -u root -- uname -a | Out-Host
wsl -d $Distro -u root -- bash -c "modprobe tun 2>&1 || true; mkdir -p /dev/net; [ -c /dev/net/tun ] || mknod /dev/net/tun c 10 200; chmod 600 /dev/net/tun; ls -l /dev/net/tun"
if ($LASTEXITCODE -ne 0) { throw "failed to prepare /dev/net/tun in WSL (TUN support missing?)" }
# Deliberately no New-NetFirewallRule calls here -- nebula's windows_bypass_wdf
# feature is supposed to install WFP permit filters that let inbound traffic
# through Windows Defender Firewall on its own. If this smoke regresses, that
# feature regressed.
$lhOut = Join-Path $WorkDir 'lighthouse.out.log'
$lhErr = Join-Path $WorkDir 'lighthouse.err.log'
$lhProc = Start-Process -FilePath $Nebula -ArgumentList @('-config', "$WorkDir\lighthouse.yml") `
-PassThru -NoNewWindow `
-RedirectStandardOutput $lhOut `
-RedirectStandardError $lhErr
# Run nebula in WSL as root with no sudo + no shell wrapper. PowerShell's
# Start-Process arg quoting mangles `bash -c "..."` strings that contain
# spaces/redirections, so we skip bash entirely and let Start-Process do the
# stdout/stderr capture itself.
$peerOut = Join-Path $WorkDir 'peer.out.log'
$peerErr = Join-Path $WorkDir 'peer.err.log'
$peerProc = Start-Process -FilePath 'wsl' `
-ArgumentList @('-d', $Distro, '-u', 'root', '--', "$WslDir/nebula", '-config', "$WslDir/peer.yml") `
-PassThru -NoNewWindow `
-RedirectStandardOutput $peerOut `
-RedirectStandardError $peerErr
function Wait-Until {
param([scriptblock]$Predicate, [int]$TimeoutSec, [string]$What)
$deadline = (Get-Date).AddSeconds($TimeoutSec)
while ((Get-Date) -lt $deadline) {
if (& $Predicate) { return }
Start-Sleep -Milliseconds 500
}
throw "timed out waiting for: $What"
}
try {
Wait-Until -TimeoutSec 30 -What "windows wintun adapter $DevName with NetworkCategory=Private" -Predicate {
if ($lhProc.HasExited) { throw "lighthouse exited (code $($lhProc.ExitCode)) before tun was ready" }
$p = Get-NetConnectionProfile -InterfaceAlias $DevName -ErrorAction SilentlyContinue
$p -and ("$($p.NetworkCategory)" -ieq 'Private')
}
Write-Host "OK: $DevName NetworkCategory=Private"
Wait-Until -TimeoutSec 30 -What "WSL nebula1 with $Ip2" -Predicate {
if ($peerProc.HasExited) { throw "peer exited (code $($peerProc.ExitCode)) before tun was ready" }
$r = wsl -d $Distro -u root -- bash -c "ip -o addr show nebula1 2>/dev/null | grep -q 'inet $Ip2' && echo yes"
("$r").Trim() -eq 'yes'
}
Write-Host "OK: WSL nebula1 has $Ip2"
Wait-Until -TimeoutSec 30 -What "ping from WSL peer to windows lighthouse ($Ip1)" -Predicate {
if ($peerProc.HasExited) { throw "peer exited (code $($peerProc.ExitCode)) before ping succeeded" }
$r = wsl -d $Distro -u root -- bash -c "ping -c1 -W1 $Ip1 >/dev/null 2>&1 && echo OK"
("$r").Trim() -eq 'OK'
}
Write-Host "OK: WSL peer -> windows lighthouse"
Wait-Until -TimeoutSec 30 -What "ping from windows lighthouse to WSL peer ($Ip2)" -Predicate {
$null = & ping.exe -n 1 -w 1000 $Ip2
$LASTEXITCODE -eq 0
}
Write-Host "OK: windows lighthouse -> WSL peer"
Write-Host ''
Write-Host 'All smoke checks passed.'
}
catch {
Write-Host ''
Write-Host '=== lighthouse stdout ==='
Get-Content $lhOut -ErrorAction SilentlyContinue | Out-Host
Write-Host '=== lighthouse stderr ==='
Get-Content $lhErr -ErrorAction SilentlyContinue | Out-Host
Write-Host '=== peer stdout ==='
Get-Content $peerOut -ErrorAction SilentlyContinue | Out-Host
Write-Host '=== peer stderr ==='
Get-Content $peerErr -ErrorAction SilentlyContinue | Out-Host
Write-Host '=== nebula WFP filters ==='
# Dump nebula-installed filters so we can verify they got registered with
# the conditions we expect.
$wfpDump = Join-Path $WorkDir 'wfp.xml'
netsh wfp show filters file=$wfpDump 2>&1 | Out-Null
if (Test-Path $wfpDump) {
Select-String -Path $wfpDump -Pattern 'Nebula' -Context 0,80 -ErrorAction SilentlyContinue | Out-Host
}
throw
}
finally {
if (-not $lhProc.HasExited) {
Stop-Process -Id $lhProc.Id -Force -ErrorAction SilentlyContinue
$lhProc.WaitForExit(5000) | Out-Null
}
wsl -d $Distro -u root -- bash -c "pkill -f $WslDir/nebula 2>/dev/null; true" | Out-Null
# pkill returns 1 when no match and wsl propagates that; the smoke is done
# so we don't want it to leak into the script's exit code.
$global:LASTEXITCODE = 0
if ($peerProc -and -not $peerProc.HasExited) {
Stop-Process -Id $peerProc.Id -Force -ErrorAction SilentlyContinue
}
}
+6 -6
View File
@@ -82,7 +82,7 @@ docker exec host4 tcpdump -i eth0 -q -w - -U 2>logs/host4.outside.log >logs/host
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 host4 ncat -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 &
@@ -155,11 +155,11 @@ echo " *** Testing conntrack"
echo
set -x
# host4's outbound firewall only allows ICMP to the lighthouse, so host4
# 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
# host2 speaking to host4 on UDP 4000 should allow it to reply, when firewall rules would normally not permit this
docker exec host2 sh -c "/usr/bin/echo host2 | ncat -nuv 192.168.100.4 4000"
docker exec host2 ncat -e '/usr/bin/echo helloagainfromhost2' -nkluv 0.0.0.0 4000 &
sleep 1
docker exec host4 sh -c "/usr/bin/echo host4 | ncat -nuv 192.168.100.2 4000"
docker exec host4 sh -c 'kill 1'
docker exec host3 sh -c 'kill 1'
@@ -1,7 +1,7 @@
# -*- mode: ruby -*-
# vi: set ft=ruby :
Vagrant.configure("2") do |config|
config.vm.box = "DefinedNet/netbsd10"
config.vm.box = "generic/netbsd9"
config.vm.synced_folder "../build", "/nebula", type: "rsync"
end
+2 -2
View File
@@ -45,7 +45,7 @@ jobs:
- name: Build test mobile
run: make build-test-mobile
- uses: actions/upload-artifact@v7
- uses: actions/upload-artifact@v6
with:
name: e2e packet flow linux-latest
path: e2e/mermaid/linux-latest
@@ -125,7 +125,7 @@ jobs:
- name: End 2 end
run: make e2evv
- uses: actions/upload-artifact@v7
- uses: actions/upload-artifact@v6
with:
name: e2e packet flow ${{ matrix.os }}
path: e2e/mermaid/${{ matrix.os }}
-14
View File
@@ -2,21 +2,7 @@ version: "2"
linters:
default: none
enable:
- sloglint
- testifylint
settings:
sloglint:
# Enforce key-value pair form for Info/Debug/Warn/Error/Log/With and
# the package-level slog equivalents. Use l.Log(ctx, level, ...) for
# custom levels instead of LogAttrs when you can.
#
# LogAttrs is also flagged by this rule because it takes ...slog.Attr;
# the few legitimate sites (where attrs is built up as a []slog.Attr)
# carry a //nolint:sloglint with rationale.
kv-only: true
# no-mixed-args is on by default: forbids mixing kv and attrs in one call.
# discard-handler is on by default (since Go 1.24): suggests
# slog.DiscardHandler over slog.NewTextHandler(io.Discard, nil).
exclusions:
generated: lax
presets:
+44 -195
View File
@@ -1,43 +1,23 @@
package nebula
import (
"context"
"fmt"
"log/slog"
"math"
mathbits "math/bits"
"github.com/rcrowley/go-metrics"
"github.com/sirupsen/logrus"
)
const bitsPerWord = 64
// Bits is a sliding-window anti-replay tracker. The window is stored as a
// circular bitmap packed into uint64 words (8x denser than a []bool), so a
// length-N window costs N/8 bytes. length must be a power of two.
type Bits struct {
length uint64
lengthMask uint64
current uint64
bits []uint64
bits []bool
lostCounter metrics.Counter
dupeCounter metrics.Counter
outOfWindowCounter metrics.Counter
}
func NewBits(length uint64) *Bits {
if length == 0 || length&(length-1) != 0 {
panic(fmt.Sprintf("Bits length must be a power of two, got %d", length))
}
nWords := length / bitsPerWord
if nWords == 0 {
nWords = 1
}
func NewBits(bits uint64) *Bits {
b := &Bits{
length: length,
lengthMask: length - 1,
bits: make([]uint64, nWords),
length: bits,
bits: make([]bool, bits, bits),
current: 0,
lostCounter: metrics.GetOrRegisterCounter("network.packets.lost", nil),
dupeCounter: metrics.GetOrRegisterCounter("network.packets.duplicate", nil),
@@ -45,219 +25,88 @@ func NewBits(length uint64) *Bits {
}
// There is no counter value 0, mark it to avoid counting a lost packet later.
b.bits[0] = 1
b.bits[0] = true
b.current = 0
return b
}
func (b *Bits) get(i uint64) bool {
pos := i & b.lengthMask
//bit-shifting by 6 because i is a bit index, not a u64 index, and we need to find the u64 without bit in it
return b.bits[pos>>6]&(uint64(1)<<(pos&63)) != 0
}
func (b *Bits) set(i uint64) {
pos := i & b.lengthMask
b.bits[pos>>6] |= uint64(1) << (pos & 63)
}
// clearRange clears `count` bits starting at circular position `startPos`
// (already masked to [0, length)) and returns how many of them were set
// before the clear. count must be in [1, length].
func (b *Bits) clearRange(startPos, count uint64) uint64 {
wasSet := uint64(0)
if count >= b.length {
for _, w := range b.bits {
wasSet += uint64(mathbits.OnesCount64(w))
}
clear(b.bits)
return wasSet
}
pos := startPos
remaining := count
// handle the potential partial word before pos becomes u64 aligned
word := pos >> 6
bit := pos & 63
take := uint64(64) - bit
if take > remaining {
take = remaining
}
if take > b.length-pos {
take = b.length - pos
}
var mask uint64
if take == 64 {
mask = math.MaxUint64
} else {
mask = ((uint64(1) << take) - 1) << bit
}
wasSet += uint64(mathbits.OnesCount64(b.bits[word] & mask))
b.bits[word] &^= mask
remaining -= take
pos = (pos + take) & b.lengthMask
// Clear whole words, keeping track of the number of set bits
for remaining >= 64 {
word = pos >> 6
wasSet += uint64(mathbits.OnesCount64(b.bits[word]))
b.bits[word] = 0
remaining -= 64
pos = (pos + 64) & b.lengthMask
}
// Clear the remaining partial word
if remaining > 0 {
word = pos >> 6
mask = (uint64(1) << remaining) - 1
wasSet += uint64(mathbits.OnesCount64(b.bits[word] & mask))
b.bits[word] &^= mask
}
return wasSet
}
func (b *Bits) strictlyWithinWindow(i uint64) bool {
// Handle the case where the window hasn't slid yet. This avoids u64 underflow.
inWarmup := b.current < b.length
if i < b.length && inWarmup {
return true
}
// Next, if the packet is in-window, see if we've seen it before
if i > b.current-b.length {
return true
}
return false //not within window!
}
// Check returns true if i is within (or way out in front of) the window, and not a replay
func (b *Bits) Check(l *slog.Logger, i uint64) bool {
func (b *Bits) Check(l *logrus.Logger, i uint64) bool {
// If i is the next number, return true.
if i > b.current {
return true
}
if b.strictlyWithinWindow(i) {
return !b.get(i)
// If i is within the window, check if it's been set already.
if i > b.current-b.length || i < b.length && b.current < b.length {
return !b.bits[i%b.length]
}
// Not within the window
if l.Enabled(context.Background(), slog.LevelDebug) {
l.Debug("rejected a packet (top)", "current", b.current, "incoming", i)
if l.Level >= logrus.DebugLevel {
l.Debugf("rejected a packet (top) %d %d\n", b.current, i)
}
return false
}
// Update has three branches:
// - i == b.current+1: fast path; advance the cursor by one and lose-count
// the slot we just stomped (only past warmup; see the i > b.length guard
// below).
// - i > b.current+1: jump path; clear all slots between current and i
// (or up to a full window's worth, whichever is smaller) via clearRange,
// then mark i. Two arms here: a warmup arm that handles the very first
// window before the cursor has slid, and a steady-state arm that treats
// every cleared empty slot as a lost packet.
// - i <= b.current: in-window check for duplicates; out-of-window otherwise.
//
// NewBits seeds bits[0]=1 so counter 0 looks "received" — Update never
// clears that marker during warmup (clearRange skips position 0 when
// startPos=1), and once b.current >= b.length the marker is no longer
// consulted. The marker prevents a fictitious "lost" hit on the first real
// counter.
func (b *Bits) Update(l *slog.Logger, i uint64) bool {
// Fast path: i is the next expected counter. Split out so the function
// stays small and avoids paying for the slow paths' slog argument-build
// stack frame on every call. The bit read/test/write is inlined to
// touch the backing word once.
func (b *Bits) Update(l *logrus.Logger, i uint64) bool {
// If i is the next number, return true and update current.
if i == b.current+1 {
pos := i & b.lengthMask
word := pos >> 6
mask := uint64(1) << (pos & 63)
w := b.bits[word]
if i > b.length && w&mask == 0 {
// Check if the oldest bit was lost since we are shifting the window by 1 and occupying it with this counter
// The very first window can only be tracked as lost once we are on the 2nd window or greater
if b.bits[i%b.length] == false && i > b.length {
b.lostCounter.Inc(1)
}
b.bits[word] = w | mask
b.bits[i%b.length] = true
b.current = i
return true
}
return b.updateSlow(l, i)
}
// updateSlow handles jumps, in-window backfill, dupes, and out-of-window.
func (b *Bits) updateSlow(l *slog.Logger, i uint64) bool {
// If i is a jump, adjust the window, record lost, update current, and return true
if i > b.current {
end := i
if end > b.current+b.length {
end = b.current + b.length
}
count := end - b.current
startPos := (b.current + 1) & b.lengthMask
var lost int64
if b.current >= b.length {
// Steady state: every cleared slot is past warmup, so any unset
// bit we evict is a lost packet from the previous cycle.
wasSet := b.clearRange(startPos, count)
lost = int64(count) - int64(wasSet)
} else {
// Warmup (the very first window). Some cleared slots represent
// packets <= length where eviction is not "lost" in the usual
// sense. This branch is taken at most once per connection so we
// don't bother optimizing it.
for n := b.current + 1; n <= end; n++ {
if !b.get(n) && n > b.length {
lost++
}
lost := int64(0)
// Zero out the bits between the current and the new counter value, limited by the window size,
// since the window is shifting
for n := b.current + 1; n <= min(i, b.current+b.length); n++ {
if b.bits[n%b.length] == false && n > b.length {
lost++
}
b.clearRange(startPos, count)
b.bits[n%b.length] = false
}
// Anything past the new window can never be backfilled, so it's lost.
if i > b.current+b.length {
lost += int64(i - b.current - b.length)
}
// Only record any skipped packets as a result of the window moving further than the window length
// Any loss within the new window will be accounted for in future calls
lost += max(0, int64(i-b.current-b.length))
b.lostCounter.Inc(lost)
b.set(i)
b.bits[i%b.length] = true
b.current = i
return true
}
// If i is within the current window but below the current counter, check to see if it's a duplicate
if b.strictlyWithinWindow(i) {
pos := i & b.lengthMask
word := pos >> 6
mask := uint64(1) << (pos & 63)
w := b.bits[word]
if b.current == i || w&mask != 0 {
if l.Enabled(context.Background(), slog.LevelDebug) {
l.Debug("Receive window",
"accepted", false,
"currentCounter", b.current,
"incomingCounter", i,
"reason", "duplicate",
)
// If i is within the current window but below the current counter,
// Check to see if it's a duplicate
if i > b.current-b.length || i < b.length && b.current < b.length {
if b.current == i || b.bits[i%b.length] == true {
if l.Level >= logrus.DebugLevel {
l.WithField("receiveWindow", m{"accepted": false, "currentCounter": b.current, "incomingCounter": i, "reason": "duplicate"}).
Debug("Receive window")
}
b.dupeCounter.Inc(1)
return false
}
b.bits[word] = w | mask
b.bits[i%b.length] = true
return true
}
// In all other cases, fail and don't change current.
b.outOfWindowCounter.Inc(1)
if l.Enabled(context.Background(), slog.LevelDebug) {
l.Debug("Receive window",
"accepted", false,
"currentCounter", b.current,
"incomingCounter", i,
"reason", "nonsense",
)
if l.Level >= logrus.DebugLevel {
l.WithField("accepted", false).
WithField("currentCounter", b.current).
WithField("incomingCounter", i).
WithField("reason", "nonsense").
Debug("Receive window")
}
return false
}
+129 -276
View File
@@ -7,79 +7,61 @@ import (
"github.com/stretchr/testify/assert"
)
// snapshot returns the bitmap as a []bool of length b.length, for readable
// test assertions against the now-packed []uint64 storage.
func (b *Bits) snapshot() []bool {
out := make([]bool, b.length)
for i := uint64(0); i < b.length; i++ {
out[i] = b.get(i)
}
return out
}
func TestBitsRequiresPowerOfTwo(t *testing.T) {
assert.Panics(t, func() { NewBits(10) })
assert.Panics(t, func() { NewBits(0) })
assert.NotPanics(t, func() { NewBits(1) })
assert.NotPanics(t, func() { NewBits(16) })
assert.NotPanics(t, func() { NewBits(1024) })
assert.NotPanics(t, func() { NewBits(16384) })
}
func TestBits(t *testing.T) {
l := test.NewLogger()
b := NewBits(16)
assert.EqualValues(t, 16, b.length)
b := NewBits(10)
// make sure it is the right size
assert.Len(t, b.bits, 10)
// This is initialized to zero - receive one. This should work.
assert.True(t, b.Check(l, 1))
assert.True(t, b.Update(l, 1))
assert.EqualValues(t, 1, b.current)
g := []bool{true, true, false, false, false, false, false, false, false, false, false, false, false, false, false, false}
assert.Equal(t, g, b.snapshot())
g := []bool{true, true, false, false, false, false, false, false, false, false}
assert.Equal(t, g, b.bits)
// Receive two
assert.True(t, b.Check(l, 2))
assert.True(t, b.Update(l, 2))
assert.EqualValues(t, 2, b.current)
g = []bool{true, true, true, false, false, false, false, false, false, false, false, false, false, false, false, false}
assert.Equal(t, g, b.snapshot())
g = []bool{true, true, true, false, false, false, false, false, false, false}
assert.Equal(t, g, b.bits)
// Receive two again - it will fail
assert.False(t, b.Check(l, 2))
assert.False(t, b.Update(l, 2))
assert.EqualValues(t, 2, b.current)
// Jump ahead to 25, which clears the window and sets slot 25%16 = 9.
assert.True(t, b.Check(l, 25))
assert.True(t, b.Update(l, 25))
assert.EqualValues(t, 25, b.current)
g = []bool{false, false, false, false, false, false, false, false, false, true, false, false, false, false, false, false}
assert.Equal(t, g, b.snapshot())
// Jump ahead to 15, which should clear everything and set the 6th element
assert.True(t, b.Check(l, 15))
assert.True(t, b.Update(l, 15))
assert.EqualValues(t, 15, b.current)
g = []bool{false, false, false, false, false, true, false, false, false, false}
assert.Equal(t, g, b.bits)
// Mark 24, which is in window (current 25, length 16, window covers [10,25]).
assert.True(t, b.Check(l, 24))
assert.True(t, b.Update(l, 24))
assert.EqualValues(t, 25, b.current)
g = []bool{false, false, false, false, false, false, false, false, true, true, false, false, false, false, false, false}
assert.Equal(t, g, b.snapshot())
// Mark 14, which is allowed because it is in the window
assert.True(t, b.Check(l, 14))
assert.True(t, b.Update(l, 14))
assert.EqualValues(t, 15, b.current)
g = []bool{false, false, false, false, true, true, false, false, false, false}
assert.Equal(t, g, b.bits)
// Mark 5, not allowed because 5 <= current-length (25-16=9).
// Mark 5, which is not allowed because it is not in the window
assert.False(t, b.Check(l, 5))
assert.False(t, b.Update(l, 5))
assert.EqualValues(t, 25, b.current)
g = []bool{false, false, false, false, false, false, false, false, true, true, false, false, false, false, false, false}
assert.Equal(t, g, b.snapshot())
assert.EqualValues(t, 15, b.current)
g = []bool{false, false, false, false, true, true, false, false, false, false}
assert.Equal(t, g, b.bits)
// Make sure we handle wrapping around once to the same slot. With
// length=16, packets 1 and 17 share slot 1.
b = NewBits(16)
// make sure we handle wrapping around once to the current position
b = NewBits(10)
assert.True(t, b.Update(l, 1))
assert.True(t, b.Update(l, 17))
assert.Equal(t, []bool{false, true, false, false, false, false, false, false, false, false, false, false, false, false, false, false}, b.snapshot())
assert.True(t, b.Update(l, 11))
assert.Equal(t, []bool{false, true, false, false, false, false, false, false, false, false}, b.bits)
// Walk through a few windows in order
b = NewBits(16)
b = NewBits(10)
for i := uint64(1); i <= 100; i++ {
assert.True(t, b.Check(l, i), "Error while checking %v", i)
assert.True(t, b.Update(l, i), "Error while updating %v", i)
@@ -90,31 +72,24 @@ func TestBits(t *testing.T) {
func TestBitsLargeJumps(t *testing.T) {
l := test.NewLogger()
// length=16. Update(55) from current=0:
// warmup, per-bit loop sees no n>16 with unset bits (slot 0 was set by
// NewBits and gets re-evaluated when n=16; n=16 is not strictly > 16),
// so the loop contributes 0. The jump exceeds the window so we record
// 55 - 0 - 16 = 39 packets fell out the back.
b := NewBits(16)
b := NewBits(10)
b.lostCounter.Clear()
assert.True(t, b.Update(l, 55))
assert.Equal(t, int64(39), b.lostCounter.Count())
// Update(100): clears 16 slots starting at slot 56%16=8. Only slot 7 (for
// packet 55) was set, so 16 - 1 = 15 evicted slots had unset bits.
// Plus 100 - 55 - 16 = 29 packets fell past the window. Total 44.
assert.True(t, b.Update(l, 100))
assert.Equal(t, int64(39+44), b.lostCounter.Count())
b = NewBits(10)
b.lostCounter.Clear()
assert.True(t, b.Update(l, 55)) // We saw packet 55 and can still track 45,46,47,48,49,50,51,52,53,54
assert.Equal(t, int64(45), b.lostCounter.Count())
// Update(200): same shape: 16 - 1 = 15 evicted unset, plus 200 - 100 - 16 = 84 past window. Total 99.
assert.True(t, b.Update(l, 200))
assert.Equal(t, int64(39+44+99), b.lostCounter.Count())
assert.True(t, b.Update(l, 100)) // We saw packet 55 and 100 and can still track 90,91,92,93,94,95,96,97,98,99
assert.Equal(t, int64(89), b.lostCounter.Count())
assert.True(t, b.Update(l, 200)) // We saw packet 55, 100, and 200 and can still track 190,191,192,193,194,195,196,197,198,199
assert.Equal(t, int64(188), b.lostCounter.Count())
}
func TestBitsDupeCounter(t *testing.T) {
l := test.NewLogger()
b := NewBits(16)
b := NewBits(10)
b.lostCounter.Clear()
b.dupeCounter.Clear()
b.outOfWindowCounter.Clear()
@@ -139,117 +114,120 @@ func TestBitsDupeCounter(t *testing.T) {
func TestBitsOutOfWindowCounter(t *testing.T) {
l := test.NewLogger()
b := NewBits(16)
b := NewBits(10)
b.lostCounter.Clear()
b.dupeCounter.Clear()
b.outOfWindowCounter.Clear()
// Jump to 20 (warmup branch + 4 past-window packets).
assert.True(t, b.Update(l, 20))
assert.Equal(t, int64(0), b.outOfWindowCounter.Count())
// 9 single-step advances, each evicts a slot whose bit was cleared during
// the jump above and whose value was never seen, so each contributes 1
// to lostCounter.
for n := uint64(21); n <= 29; n++ {
assert.True(t, b.Update(l, n))
}
assert.True(t, b.Update(l, 21))
assert.True(t, b.Update(l, 22))
assert.True(t, b.Update(l, 23))
assert.True(t, b.Update(l, 24))
assert.True(t, b.Update(l, 25))
assert.True(t, b.Update(l, 26))
assert.True(t, b.Update(l, 27))
assert.True(t, b.Update(l, 28))
assert.True(t, b.Update(l, 29))
assert.Equal(t, int64(0), b.outOfWindowCounter.Count())
// 0 is below current-length (29-16=13) so it falls outside the window.
assert.False(t, b.Update(l, 0))
assert.Equal(t, int64(1), b.outOfWindowCounter.Count())
// 4 from the Update(20) jump + 9 from 21..29.
assert.Equal(t, int64(13), b.lostCounter.Count())
assert.Equal(t, int64(19), b.lostCounter.Count()) // packet 0 wasn't lost
assert.Equal(t, int64(0), b.dupeCounter.Count())
assert.Equal(t, int64(1), b.outOfWindowCounter.Count())
}
func TestBitsLostCounter(t *testing.T) {
l := test.NewLogger()
b := NewBits(16)
b := NewBits(10)
b.lostCounter.Clear()
b.dupeCounter.Clear()
b.outOfWindowCounter.Clear()
// Walk 20..29 like the original, just with a bigger window. Same
// reasoning as TestBitsOutOfWindowCounter: 4 past-window from Update(20),
// then 9 more from the unit advances.
for n := uint64(20); n <= 29; n++ {
assert.True(t, b.Update(l, n))
}
assert.Equal(t, int64(13), b.lostCounter.Count())
assert.True(t, b.Update(l, 20))
assert.True(t, b.Update(l, 21))
assert.True(t, b.Update(l, 22))
assert.True(t, b.Update(l, 23))
assert.True(t, b.Update(l, 24))
assert.True(t, b.Update(l, 25))
assert.True(t, b.Update(l, 26))
assert.True(t, b.Update(l, 27))
assert.True(t, b.Update(l, 28))
assert.True(t, b.Update(l, 29))
assert.Equal(t, int64(19), b.lostCounter.Count()) // packet 0 wasn't lost
assert.Equal(t, int64(0), b.dupeCounter.Count())
assert.Equal(t, int64(0), b.outOfWindowCounter.Count())
b = NewBits(16)
b = NewBits(10)
b.lostCounter.Clear()
b.dupeCounter.Clear()
b.outOfWindowCounter.Clear()
// Update(15) clears the warmup window (no lost), sets slot 15.
assert.True(t, b.Update(l, 15))
assert.True(t, b.Update(l, 9))
assert.Equal(t, int64(0), b.lostCounter.Count())
// Update(16): slot 0 was already set (NewBits seeded it), and 16 is not
// strictly > length, so nothing is recorded as lost.
assert.True(t, b.Update(l, 16))
// 10 will set 0 index, 0 was already set, no lost packets
assert.True(t, b.Update(l, 10))
assert.Equal(t, int64(0), b.lostCounter.Count())
// Update(17): we jumped straight from 0 to 15, so slot 1 was cleared
// (and never re-set). 17 > 16 is past warmup, so packet 1 is recorded lost.
assert.True(t, b.Update(l, 17))
// 11 will set 1 index, 1 was missed, we should see 1 packet lost
assert.True(t, b.Update(l, 11))
assert.Equal(t, int64(1), b.lostCounter.Count())
// Now let's fill in the window, should end up with 8 lost packets
assert.True(t, b.Update(l, 12))
assert.True(t, b.Update(l, 13))
assert.True(t, b.Update(l, 14))
assert.True(t, b.Update(l, 15))
assert.True(t, b.Update(l, 16))
assert.True(t, b.Update(l, 17))
assert.True(t, b.Update(l, 18))
assert.True(t, b.Update(l, 19))
assert.Equal(t, int64(8), b.lostCounter.Count())
// Fill in 18..30 in single steps. Each i evicts slot i%16. Slots 2..14
// were all cleared during Update(15), and we never re-set any of them,
// so each i in 18..30 is a fresh lost packet — 13 more.
for n := uint64(18); n <= 30; n++ {
assert.True(t, b.Update(l, n))
}
assert.Equal(t, int64(14), b.lostCounter.Count())
// Jump ahead by a window size
assert.True(t, b.Update(l, 29))
assert.Equal(t, int64(8), b.lostCounter.Count())
// Now lets walk ahead normally through the window, the missed packets should fill in
assert.True(t, b.Update(l, 30))
assert.True(t, b.Update(l, 31))
assert.True(t, b.Update(l, 32))
assert.True(t, b.Update(l, 33))
assert.True(t, b.Update(l, 34))
assert.True(t, b.Update(l, 35))
assert.True(t, b.Update(l, 36))
assert.True(t, b.Update(l, 37))
assert.True(t, b.Update(l, 38))
// 39 packets tracked, 22 seen, 17 lost
assert.Equal(t, int64(17), b.lostCounter.Count())
// Jump ahead by exactly one window size.
assert.True(t, b.Update(l, 46))
// end = min(46, 30+16) = 46, count = 16, all slots cleared. Before the
// jump every slot 0..15 had been set (Update(15), (16), (17), 18..30),
// so wasSet=16 and 46 == current+length means no past-window slack:
// lost contribution = 0.
assert.Equal(t, int64(14), b.lostCounter.Count())
// Walk 47..55. The Update(46) jump cleared every slot, so only slot 14
// (for packet 46) is set when we start. Each subsequent unit step lands
// on a slot that was cleared and is past warmup, so it counts as lost.
// 9 more = 23.
for n := uint64(47); n <= 55; n++ {
assert.True(t, b.Update(l, n))
}
assert.Equal(t, int64(23), b.lostCounter.Count())
// Jump ahead by two windows: clears the window plus past-window loss.
assert.True(t, b.Update(l, 87))
// current=55, length=16. end = min(87, 71) = 71. count=16, all slots
// cleared. Slots set before the clear are slots 14,15,0..7 (10 total).
// Lost from clear = 16 - 10 = 6. Past window: 87 - 55 - 16 = 16. +22.
assert.Equal(t, int64(45), b.lostCounter.Count())
// Jump ahead by 2 windows, should have recording 1 full window missing
assert.True(t, b.Update(l, 58))
assert.Equal(t, int64(27), b.lostCounter.Count())
// Now lets walk ahead normally through the window, the missed packets should fill in from this window
assert.True(t, b.Update(l, 59))
assert.True(t, b.Update(l, 60))
assert.True(t, b.Update(l, 61))
assert.True(t, b.Update(l, 62))
assert.True(t, b.Update(l, 63))
assert.True(t, b.Update(l, 64))
assert.True(t, b.Update(l, 65))
assert.True(t, b.Update(l, 66))
assert.True(t, b.Update(l, 67))
// 68 packets tracked, 32 seen, 36 missed
assert.Equal(t, int64(36), b.lostCounter.Count())
assert.Equal(t, int64(0), b.dupeCounter.Count())
assert.Equal(t, int64(0), b.outOfWindowCounter.Count())
}
func TestBitsLostCounterIssue1(t *testing.T) {
l := test.NewLogger()
b := NewBits(16)
b := NewBits(10)
b.lostCounter.Clear()
b.dupeCounter.Clear()
b.outOfWindowCounter.Clear()
// Receive 4, backfill 1, then 9, 2, 3, 5, 6, 7 (skip 8), 10, 11, 14.
// Then jump to 25 — slot 25%16=9 is being evicted, but it had been set
// (we received packet 9), so no spurious lost increment. The original
// regression was about double-counting a missing packet when its slot
// got cleared on a jump. With the jump path now using clearRange's
// word-level wasSet count, the same semantics hold.
assert.True(t, b.Update(l, 4))
assert.Equal(t, int64(0), b.lostCounter.Count())
assert.True(t, b.Update(l, 1))
@@ -266,7 +244,7 @@ func TestBitsLostCounterIssue1(t *testing.T) {
assert.Equal(t, int64(0), b.lostCounter.Count())
assert.True(t, b.Update(l, 7))
assert.Equal(t, int64(0), b.lostCounter.Count())
// Skip packet 8.
// assert.True(t, b.Update(l, 8))
assert.True(t, b.Update(l, 10))
assert.Equal(t, int64(0), b.lostCounter.Count())
assert.True(t, b.Update(l, 11))
@@ -274,23 +252,9 @@ func TestBitsLostCounterIssue1(t *testing.T) {
assert.True(t, b.Update(l, 14))
assert.Equal(t, int64(0), b.lostCounter.Count())
// Jump to 25. With length=16, slot 25%16=9 corresponds to packet 9
// (which we DID receive), so its bit is set and no lost++ from that
// eviction. The trace below shows the only loss is packet 8.
assert.True(t, b.Update(l, 25))
// current was 14, i=25. end=min(25,30)=25. count=11. startPos=15.
// steady? current=14<16, so warmup branch: per-bit n=15..25, count those
// with !get(n) AND n>16. n=17..25 are >16. Among slots 17%16=1..25%16=9
// did we set slots 1..9 (packets 1..9)? Yes for all but slot 8 (packet 8
// was skipped). n=24 maps to slot 8 which is FALSE → lost++. All other
// n in 17..25 map to slots that are set. n=16 is not strictly > 16. So
// lost = 1.
// Issue seems to be here, we reset missing packet 8 to false here and don't increment the lost counter
assert.True(t, b.Update(l, 19))
assert.Equal(t, int64(1), b.lostCounter.Count())
// Fill in 12, 13, 15, 16. Each is below current=25 (in-window). 16 must
// recheck slot 0 — it was set by NewBits and then cleared by the
// Update(25) jump, so 16 backfills cleanly.
assert.True(t, b.Update(l, 12))
assert.Equal(t, int64(1), b.lostCounter.Count())
assert.True(t, b.Update(l, 13))
@@ -299,140 +263,29 @@ func TestBitsLostCounterIssue1(t *testing.T) {
assert.Equal(t, int64(1), b.lostCounter.Count())
assert.True(t, b.Update(l, 16))
assert.Equal(t, int64(1), b.lostCounter.Count())
assert.True(t, b.Update(l, 17))
assert.Equal(t, int64(1), b.lostCounter.Count())
assert.True(t, b.Update(l, 18))
assert.Equal(t, int64(1), b.lostCounter.Count())
assert.True(t, b.Update(l, 20))
assert.Equal(t, int64(1), b.lostCounter.Count())
assert.True(t, b.Update(l, 21))
// We missed packet 8 above and that loss is still recorded once, never
// double-counted, never zeroed.
// We missed packet 8 above
assert.Equal(t, int64(1), b.lostCounter.Count())
assert.Equal(t, int64(0), b.dupeCounter.Count())
assert.Equal(t, int64(0), b.outOfWindowCounter.Count())
}
// TestBitsWarmupOvershoot exercises the jump path's warmup arm with an
// overshoot past one full window. NewBits leaves current=0 with only slot 0
// "set" by the marker. Jumping straight to length+k must (a) clear every
// slot the jump straddles, (b) count only past-window slack (not the
// in-window slots, which never had a "lost" tenant during warmup), and
// (c) leave the cursor at the new counter so subsequent unit advances
// count from steady state. The marker bit at slot 0 is irrelevant once
// current >= length.
func TestBitsWarmupOvershoot(t *testing.T) {
l := test.NewLogger()
b := NewBits(16)
b.lostCounter.Clear()
// Jump from current=0 to i=20 (length=16, overshoot=4).
// Warmup arm: counts slots in [1..16] where bit unset and n>length.
// Only n=16 was unset and >length: but slot 16%16=0 is the marker,
// so b.get(16) reads bits[0]=1 and skips. Result: 0 lost from the loop.
// Past-window: i - current - length = 20 - 0 - 16 = 4 lost.
assert.True(t, b.Update(l, 20))
assert.Equal(t, int64(4), b.lostCounter.Count())
assert.Equal(t, uint64(20), b.current)
// Steady state now (current=20 >= length=16). Unit advance to 21
// stomps slot 21%16=5, which was cleared by the jump and not reset,
// so this is +1 lost.
assert.True(t, b.Update(l, 21))
assert.Equal(t, int64(5), b.lostCounter.Count())
}
// TestBitsCheckAcrossWarmupBoundary pins the underflow trick in Check's
// in-window clause. While in warmup, b.current-b.length underflows uint64
// to a huge value so the first OR-clause is always false; the second
// clause (i < length && current < length) carries the in-window check.
// Once current >= length the regimes flip cleanly.
func TestBitsCheckAcrossWarmupBoundary(t *testing.T) {
l := test.NewLogger()
b := NewBits(16)
// Warmup: current=0. Check(0) must read the marker (set) and return false.
assert.False(t, b.Check(l, 0), "marker slot should look already-received")
// Warmup: any 0 < i < length is in-window and unset → accepted.
for i := uint64(1); i < 16; i++ {
assert.True(t, b.Check(l, i), "warmup in-window i=%d should be accepted", i)
}
// Warmup: i >= length but > current is "next number" so accepted.
assert.True(t, b.Check(l, 16))
assert.True(t, b.Check(l, 1_000_000))
// Cross into steady state.
assert.True(t, b.Update(l, 100))
// Now current=100, length=16. In-window range is [85..100].
// 84 is just outside: the underflow clause activates; 84 > 100-16=84 is false.
// And the warmup clause is false (current >= length). So out of window.
assert.False(t, b.Check(l, 84))
// 85 sits at the boundary. 85 > 84 is true → in window, unset → accept.
assert.True(t, b.Check(l, 85))
// 100 is current itself; not strictly greater, in-window, but already set.
assert.False(t, b.Check(l, 100))
// Way out: clearly out of window.
assert.False(t, b.Check(l, 50))
}
// TestBitsMarkerInvariant verifies the seeded bits[0]=1 marker behaves
// correctly across warmup and beyond. Update should never clear the marker
// during warmup (clearRange skips position 0 when startPos=1), and once
// current >= length the marker is no longer consulted by Check/Update on
// the live path — but it must still report counter 0 as a duplicate while
// we are in warmup.
func TestBitsMarkerInvariant(t *testing.T) {
l := test.NewLogger()
b := NewBits(8)
// Counter 0 is the seeded marker; Check sees it as already received.
assert.False(t, b.Check(l, 0))
// Update(0) at current=0 hits the duplicate branch.
b.dupeCounter.Clear()
assert.False(t, b.Update(l, 0))
assert.Equal(t, int64(1), b.dupeCounter.Count())
// Walk forward through warmup; the marker must remain set.
for n := uint64(1); n <= 7; n++ {
assert.True(t, b.Update(l, n))
}
// Position 0 (the marker) should still read as set because we never
// cleared it; Update(0) still looks like a duplicate.
assert.False(t, b.Check(l, 0))
// Cross into steady state with a unit advance to 8: pos=0, evicts the
// marker bit. The lost-counter guard (i > b.length) is false (8 == 8),
// so this advance does NOT charge a lost packet — exactly what the
// marker is there to prevent.
b.lostCounter.Clear()
assert.True(t, b.Update(l, 8))
assert.Equal(t, int64(0), b.lostCounter.Count())
// The slot at pos 0 is now occupied by counter 8.
assert.False(t, b.Check(l, 8))
}
// BenchmarkBitsUpdateInOrder is the steady-state hot path: each call is
// i == current+1.
func BenchmarkBitsUpdateInOrder(b *testing.B) {
l := test.NewLogger()
z := NewBits(16384)
func BenchmarkBits(b *testing.B) {
z := NewBits(10)
for n := 0; n < b.N; n++ {
z.Update(l, uint64(n)+1)
}
}
for i := range z.bits {
z.bits[i] = true
}
for i := range z.bits {
z.bits[i] = false
}
// BenchmarkBitsUpdateReorder simulates light reorder within the window:
// every other packet arrives one slot behind its predecessor (forces the
// in-window backfill branch).
func BenchmarkBitsUpdateReorder(b *testing.B) {
l := test.NewLogger()
z := NewBits(16384)
for n := 0; n < b.N; n++ {
base := uint64(n) * 2
z.Update(l, base+2)
z.Update(l, base+1)
}
}
// BenchmarkBitsUpdateLargeJumps stresses the clearRange word-level path.
func BenchmarkBitsUpdateLargeJumps(b *testing.B) {
l := test.NewLogger()
z := NewBits(16384)
for n := 0; n < b.N; n++ {
z.Update(l, uint64(n+1)*1000)
}
}
-4
View File
@@ -217,10 +217,6 @@ func (ncp *CAPool) verify(c Certificate, now time.Time, certFp string, signerFp
return nil, err
}
if signer.Certificate.Curve() != c.Curve() {
return nil, ErrCurveMismatch
}
if signer.Certificate.Expired(now) {
return nil, ErrRootExpired
}
-28
View File
@@ -654,31 +654,3 @@ func TestCertificateV2_Verify_Subnets(t *testing.T) {
_, err = caPool.VerifyCertificate(time.Now(), c)
require.NoError(t, err)
}
func TestCertificateV2_CurveMismatch(t *testing.T) {
caIp1 := mustParsePrefixUnmapped("10.0.0.0/16")
caIp2 := mustParsePrefixUnmapped("192.168.0.0/24")
ca, _, caKey, _ := NewTestCaCert(Version2, Curve_P256, time.Now(), time.Now().Add(10*time.Minute), []netip.Prefix{caIp1, caIp2}, nil, []string{"test"})
caPem, err := ca.MarshalPEM()
require.NoError(t, err)
caPool := NewCAPool()
b, err := caPool.AddCAFromPEM(caPem)
require.NoError(t, err)
assert.Empty(t, b)
// ip is outside the network
cIp1 := mustParsePrefixUnmapped("10.0.0.1/24")
c, _, _, _ := NewTestCert(Version2, Curve_P256, ca, caKey, "test", time.Now(), time.Now().Add(5*time.Minute), []netip.Prefix{cIp1}, nil, []string{"test"})
fp, _ := c.Fingerprint()
_, err = caPool.verify(c, time.Now(), fp, c.Issuer())
require.NoError(t, err)
//
c2 := c.(*certificateV2)
c2.curve = Curve_CURVE25519
fp, _ = c.Fingerprint()
_, err = caPool.verify(c, time.Now(), fp, c.Issuer())
require.Error(t, err)
}
-3
View File
@@ -112,9 +112,6 @@ func (c *certificateV1) CheckSignature(key []byte) bool {
}
switch c.details.curve {
case Curve_CURVE25519:
if len(key) != ed25519.PublicKeySize {
return false //avoids a panic internal to ed25519
}
return ed25519.Verify(key, b, c.signature)
case Curve_P256:
pubKey, err := ecdsa.ParseUncompressedPublicKey(elliptic.P256(), key)
-3
View File
@@ -151,9 +151,6 @@ func (c *certificateV2) CheckSignature(key []byte) bool {
switch c.curve {
case Curve_CURVE25519:
if len(key) != ed25519.PublicKeySize {
return false //avoids a panic internal to ed25519
}
return ed25519.Verify(key, b, c.signature)
case Curve_P256:
pubKey, err := ecdsa.ParseUncompressedPublicKey(elliptic.P256(), key)
-1
View File
@@ -22,7 +22,6 @@ var (
ErrCaNotFound = errors.New("could not find ca for the certificate")
ErrUnknownVersion = errors.New("certificate version unrecognized")
ErrCertPubkeyPresent = errors.New("certificate has unexpected pubkey present")
ErrCurveMismatch = errors.New("certificate curve does not match CA")
ErrInvalidPEMBlock = errors.New("input did not contain a valid PEM encoded block")
ErrInvalidPEMCertificateBanner = errors.New("bytes did not contain a proper certificate banner")
-52
View File
@@ -163,55 +163,3 @@ func P256Keypair() ([]byte, []byte) {
pubkey := privkey.PublicKey()
return pubkey.Bytes(), privkey.Bytes()
}
// DummyCert is a minimal cert.Certificate implementation for testing error paths.
type DummyCert struct {
Version_ cert.Version
Curve_ cert.Curve
Groups_ []string
IsCA_ bool
Issuer_ string
Name_ string
Networks_ []netip.Prefix
NotAfter_ time.Time
NotBefore_ time.Time
PublicKey_ []byte
Signature_ []byte
UnsafeNetworks_ []netip.Prefix
}
func (d *DummyCert) Version() cert.Version { return d.Version_ }
func (d *DummyCert) Curve() cert.Curve { return d.Curve_ }
func (d *DummyCert) Groups() []string { return d.Groups_ }
func (d *DummyCert) IsCA() bool { return d.IsCA_ }
func (d *DummyCert) Issuer() string { return d.Issuer_ }
func (d *DummyCert) Name() string { return d.Name_ }
func (d *DummyCert) Networks() []netip.Prefix { return d.Networks_ }
func (d *DummyCert) NotAfter() time.Time { return d.NotAfter_ }
func (d *DummyCert) NotBefore() time.Time { return d.NotBefore_ }
func (d *DummyCert) PublicKey() []byte { return d.PublicKey_ }
func (d *DummyCert) Signature() []byte { return d.Signature_ }
func (d *DummyCert) UnsafeNetworks() []netip.Prefix { return d.UnsafeNetworks_ }
func (d *DummyCert) Fingerprint() (string, error) { return "", nil }
func (d *DummyCert) CheckSignature(key []byte) bool { return false }
func (d *DummyCert) MarshalForHandshakes() ([]byte, error) { return nil, nil }
func (d *DummyCert) MarshalPEM() ([]byte, error) { return nil, nil }
func (d *DummyCert) MarshalJSON() ([]byte, error) { return nil, nil }
func (d *DummyCert) Marshal() ([]byte, error) { return nil, nil }
func (d *DummyCert) String() string { return "dummy" }
func (d *DummyCert) Copy() cert.Certificate { return d }
func (d *DummyCert) VerifyPrivateKey(c cert.Curve, k []byte) error { return nil }
func (d *DummyCert) Expired(time.Time) bool { return false }
func (d *DummyCert) MarshalPublicKeyPEM() []byte { return nil }
func (d *DummyCert) PublicKeyPEM() []byte { return nil }
// NewTestCAPool creates a CAPool from the given CA certificates, panicking on error.
func NewTestCAPool(cas ...cert.Certificate) *cert.CAPool {
pool := cert.NewCAPool()
for _, ca := range cas {
if err := pool.AddCA(ca); err != nil {
panic(err)
}
}
return pool
}
+3 -10
View File
@@ -3,15 +3,8 @@
package main
import (
"log/slog"
"os"
import "github.com/sirupsen/logrus"
"github.com/slackhq/nebula/logging"
)
// newPlatformLogger returns a *slog.Logger that writes to stdout. Non-Windows
// platforms have no special sink to integrate with.
func newPlatformLogger() *slog.Logger {
return logging.NewLogger(os.Stdout)
func HookLogger(l *logrus.Logger) {
// Do nothing, let the logs flow to stdout/stderr
}
+39 -71
View File
@@ -1,86 +1,54 @@
package main
import (
"context"
"log/slog"
"strings"
"sync"
"fmt"
"io/ioutil"
"os"
"github.com/slackhq/nebula/logging"
"github.com/kardianos/service"
"github.com/sirupsen/logrus"
)
// newPlatformLogger returns a *slog.Logger that routes every log record
// through the Windows service logger so records end up in the Windows
// Event Log. All the heavy lifting (level management, format swap,
// timestamp toggle, WithAttrs/WithGroup) comes from logging.NewHandler;
// this file only contributes:
//
// - an io.Writer that forwards each formatted line to the service
// logger at the current record's Event Log severity, and
// - a thin severityTag that embeds *logging.Handler and overrides
// only Handle / WithAttrs / WithGroup, so Event Viewer's severity
// column and severity-based filters keep working the way they did
// before the slog migration.
//
// Format (text vs json) is carried by the embedded *logging.Handler, so
// logging.format: json in config still produces JSON lines in Event
// Viewer, same as the pre-slog logrus setup.
func newPlatformLogger() *slog.Logger {
w := &eventLogWriter{}
return slog.New(&severityTag{Handler: logging.NewHandler(w), w: w})
// HookLogger routes the logrus logs through the service logger so that they end up in the Windows Event Viewer
// logrus output will be discarded
func HookLogger(l *logrus.Logger) {
l.AddHook(newLogHook(logger))
l.SetOutput(ioutil.Discard)
}
// eventLogWriter forwards slog-formatted lines to the Windows service
// logger at the severity most recently stashed by severityTag.Handle.
// The mutex serializes the stash + inner.Handle + Write cycle per record
// across all concurrent goroutines; slog's builtin text/json handlers
// each hold their own mutex around Write, but that only protects the
// Write call itself, not our stash-then-handle sequence.
type eventLogWriter struct {
mu sync.Mutex
level slog.Level
type logHook struct {
sl service.Logger
}
func (w *eventLogWriter) Write(p []byte) (int, error) {
line := strings.TrimRight(string(p), "\n")
switch {
case w.level >= slog.LevelError:
return len(p), logger.Error(line)
case w.level >= slog.LevelWarn:
return len(p), logger.Warning(line)
func newLogHook(sl service.Logger) *logHook {
return &logHook{sl: sl}
}
func (h *logHook) Fire(entry *logrus.Entry) error {
line, err := entry.String()
if err != nil {
fmt.Fprintf(os.Stderr, "Unable to read entry, %v", err)
return err
}
switch entry.Level {
case logrus.PanicLevel:
return h.sl.Error(line)
case logrus.FatalLevel:
return h.sl.Error(line)
case logrus.ErrorLevel:
return h.sl.Error(line)
case logrus.WarnLevel:
return h.sl.Warning(line)
case logrus.InfoLevel:
return h.sl.Info(line)
case logrus.DebugLevel:
return h.sl.Info(line)
default:
return len(p), logger.Info(line)
return nil
}
}
// severityTag embeds *logging.Handler to pick up everything it does for
// free (Enabled, SetLevel, GetLevel, SetFormat, GetFormat,
// SetDisableTimestamp) and overrides only Handle / WithAttrs / WithGroup
// so each record's slog.Level is stashed on the writer before formatting
// and so derived handlers stay wrapped as severityTag rather than
// downgrading to bare *logging.Handler.
type severityTag struct {
*logging.Handler
w *eventLogWriter
}
func (s *severityTag) Handle(ctx context.Context, r slog.Record) error {
s.w.mu.Lock()
defer s.w.mu.Unlock()
s.w.level = r.Level
return s.Handler.Handle(ctx, r)
}
func (s *severityTag) WithAttrs(attrs []slog.Attr) slog.Handler {
if len(attrs) == 0 {
return s
}
return &severityTag{Handler: s.Handler.WithAttrs(attrs).(*logging.Handler), w: s.w}
}
func (s *severityTag) WithGroup(name string) slog.Handler {
if name == "" {
return s
}
return &severityTag{Handler: s.Handler.WithGroup(name).(*logging.Handler), w: s.w}
func (h *logHook) Levels() []logrus.Level {
return logrus.AllLevels
}
+5 -14
View File
@@ -7,9 +7,9 @@ import (
"runtime/debug"
"strings"
"github.com/sirupsen/logrus"
"github.com/slackhq/nebula"
"github.com/slackhq/nebula/config"
"github.com/slackhq/nebula/logging"
"github.com/slackhq/nebula/util"
)
@@ -50,11 +50,12 @@ func main() {
os.Exit(0)
}
l := logging.NewLogger(os.Stdout)
l := logrus.New()
l.Out = os.Stdout
if *serviceFlag != "" {
if err := doService(configPath, configTest, Build, serviceFlag); err != nil {
l.Error("Service command failed", "error", err)
l.WithError(err).Error("Service command failed")
os.Exit(1)
}
return
@@ -73,16 +74,6 @@ func main() {
os.Exit(1)
}
if err := logging.ApplyConfig(l, c); err != nil {
fmt.Printf("failed to apply logging config: %s", err)
os.Exit(1)
}
c.RegisterReloadCallback(func(c *config.C) {
if err := logging.ApplyConfig(l, c); err != nil {
l.Error("Failed to reconfigure logger on reload", "error", err)
}
})
ctrl, err := nebula.Main(c, *configTest, Build, l, nil)
if err != nil {
util.LogWithContextIfNeeded("Failed to start", err, l)
@@ -99,7 +90,7 @@ func main() {
go ctrl.ShutdownBlock()
if err := wait(); err != nil {
l.Error("Nebula stopped due to fatal error", "error", err)
l.WithError(err).Error("Nebula stopped due to fatal error")
os.Exit(2)
}
+4 -12
View File
@@ -7,9 +7,9 @@ import (
"path/filepath"
"github.com/kardianos/service"
"github.com/sirupsen/logrus"
"github.com/slackhq/nebula"
"github.com/slackhq/nebula/config"
"github.com/slackhq/nebula/logging"
)
var logger service.Logger
@@ -25,7 +25,8 @@ func (p *program) Start(s service.Service) error {
// Start should not block.
logger.Info("Nebula service starting.")
l := newPlatformLogger()
l := logrus.New()
HookLogger(l)
c := config.NewC(l)
err := c.Load(*p.configPath)
@@ -33,15 +34,6 @@ func (p *program) Start(s service.Service) error {
return fmt.Errorf("failed to load config: %s", err)
}
if err := logging.ApplyConfig(l, c); err != nil {
return fmt.Errorf("failed to apply logging config: %s", err)
}
c.RegisterReloadCallback(func(c *config.C) {
if err := logging.ApplyConfig(l, c); err != nil {
l.Error("Failed to reconfigure logger on reload", "error", err)
}
})
p.control, err = nebula.Main(c, *p.configTest, Build, l, nil)
if err != nil {
return err
@@ -93,7 +85,7 @@ func doService(configPath *string, configTest *bool, build string, serviceFlag *
// Here are what the different loggers are doing:
// - `log` is the standard go log utility, meant to be used while the process is still attached to stdout/stderr
// - `logger` is the service log utility that may be attached to a special place depending on OS (Windows will have it attached to the event log)
// - in program.Start we build a *slog.Logger via newPlatformLogger; on non-Windows that is a stdout-backed slog logger, on Windows it routes records through the service logger
// - above, in `Run` we create a `logrus.Logger` which is what nebula expects to use
s, err := service.New(prg, svcConfig)
if err != nil {
return err
+4 -13
View File
@@ -7,9 +7,9 @@ import (
"runtime/debug"
"strings"
"github.com/sirupsen/logrus"
"github.com/slackhq/nebula"
"github.com/slackhq/nebula/config"
"github.com/slackhq/nebula/logging"
"github.com/slackhq/nebula/util"
)
@@ -55,7 +55,8 @@ func main() {
os.Exit(1)
}
l := logging.NewLogger(os.Stdout)
l := logrus.New()
l.Out = os.Stdout
c := config.NewC(l)
err := c.Load(*configPath)
@@ -64,16 +65,6 @@ func main() {
os.Exit(1)
}
if err := logging.ApplyConfig(l, c); err != nil {
fmt.Printf("failed to apply logging config: %s", err)
os.Exit(1)
}
c.RegisterReloadCallback(func(c *config.C) {
if err := logging.ApplyConfig(l, c); err != nil {
l.Error("Failed to reconfigure logger on reload", "error", err)
}
})
ctrl, err := nebula.Main(c, *configTest, Build, l, nil)
if err != nil {
util.LogWithContextIfNeeded("Failed to start", err, l)
@@ -91,7 +82,7 @@ func main() {
notifyReady(l)
if err := wait(); err != nil {
l.Error("Nebula stopped due to fatal error", "error", err)
l.WithError(err).Error("Nebula stopped due to fatal error")
os.Exit(2)
}
+8 -7
View File
@@ -1,10 +1,11 @@
package main
import (
"log/slog"
"net"
"os"
"time"
"github.com/sirupsen/logrus"
)
// SdNotifyReady tells systemd the service is ready and dependent services can now be started
@@ -12,30 +13,30 @@ import (
// https://www.freedesktop.org/software/systemd/man/systemd.service.html
const SdNotifyReady = "READY=1"
func notifyReady(l *slog.Logger) {
func notifyReady(l *logrus.Logger) {
sockName := os.Getenv("NOTIFY_SOCKET")
if sockName == "" {
l.Debug("NOTIFY_SOCKET systemd env var not set, not sending ready signal")
l.Debugln("NOTIFY_SOCKET systemd env var not set, not sending ready signal")
return
}
conn, err := net.DialTimeout("unixgram", sockName, time.Second)
if err != nil {
l.Error("failed to connect to systemd notification socket", "error", err)
l.WithError(err).Error("failed to connect to systemd notification socket")
return
}
defer conn.Close()
err = conn.SetWriteDeadline(time.Now().Add(time.Second))
if err != nil {
l.Error("failed to set the write deadline for the systemd notification socket", "error", err)
l.WithError(err).Error("failed to set the write deadline for the systemd notification socket")
return
}
if _, err = conn.Write([]byte(SdNotifyReady)); err != nil {
l.Error("failed to signal the systemd notification socket", "error", err)
l.WithError(err).Error("failed to signal the systemd notification socket")
return
}
l.Debug("notified systemd the service is ready")
l.Debugln("notified systemd the service is ready")
}
+2 -2
View File
@@ -3,8 +3,8 @@
package main
import "log/slog"
import "github.com/sirupsen/logrus"
func notifyReady(_ *slog.Logger) {
func notifyReady(_ *logrus.Logger) {
// No init service to notify
}
+6 -15
View File
@@ -4,7 +4,6 @@ import (
"context"
"errors"
"fmt"
"log/slog"
"math"
"os"
"os/signal"
@@ -17,6 +16,7 @@ import (
"time"
"dario.cat/mergo"
"github.com/sirupsen/logrus"
"go.yaml.in/yaml/v3"
)
@@ -26,11 +26,11 @@ type C struct {
Settings map[string]any
oldSettings map[string]any
callbacks []func(*C)
l *slog.Logger
l *logrus.Logger
reloadLock sync.Mutex
}
func NewC(l *slog.Logger) *C {
func NewC(l *logrus.Logger) *C {
return &C{
Settings: make(map[string]any),
l: l,
@@ -107,18 +107,12 @@ func (c *C) HasChanged(k string) bool {
newVals, err := yaml.Marshal(nv)
if err != nil {
c.l.Error("Error while marshaling new config",
"config_path", k,
"error", err,
)
c.l.WithField("config_path", k).WithError(err).Error("Error while marshaling new config")
}
oldVals, err := yaml.Marshal(ov)
if err != nil {
c.l.Error("Error while marshaling old config",
"config_path", k,
"error", err,
)
c.l.WithField("config_path", k).WithError(err).Error("Error while marshaling old config")
}
return string(newVals) != string(oldVals)
@@ -160,10 +154,7 @@ func (c *C) ReloadConfig() {
err := c.Load(c.path)
if err != nil {
c.l.Error("Error occurred while reloading config",
"config_path", c.path,
"error", err,
)
c.l.WithField("config_path", c.path).WithError(err).Error("Error occurred while reloading config")
return
}
+99 -77
View File
@@ -5,12 +5,13 @@ import (
"context"
"encoding/binary"
"fmt"
"log/slog"
"net/netip"
"sync"
"sync/atomic"
"time"
"github.com/rcrowley/go-metrics"
"github.com/sirupsen/logrus"
"github.com/slackhq/nebula/cert"
"github.com/slackhq/nebula/config"
"github.com/slackhq/nebula/header"
@@ -44,16 +45,19 @@ type connectionManager struct {
inactivityTimeout atomic.Int64
dropInactive atomic.Bool
l *slog.Logger
metricsTxPunchy metrics.Counter
l *logrus.Logger
}
func newConnectionManagerFromConfig(l *slog.Logger, c *config.C, hm *HostMap, p *Punchy) *connectionManager {
func newConnectionManagerFromConfig(l *logrus.Logger, c *config.C, hm *HostMap, p *Punchy) *connectionManager {
cm := &connectionManager{
hostMap: hm,
l: l,
punchy: p,
relayUsed: make(map[uint32]struct{}),
relayUsedLock: &sync.RWMutex{},
hostMap: hm,
l: l,
punchy: p,
relayUsed: make(map[uint32]struct{}),
relayUsedLock: &sync.RWMutex{},
metricsTxPunchy: metrics.GetOrRegisterCounter("messages.tx.punchy", nil),
}
cm.reload(c, true)
@@ -81,10 +85,9 @@ func (cm *connectionManager) reload(c *config.C, initial bool) {
old := cm.getInactivityTimeout()
cm.inactivityTimeout.Store((int64)(c.GetDuration("tunnels.inactivity_timeout", 10*time.Minute)))
if !initial {
cm.l.Info("Inactivity timeout has changed",
"oldDuration", old,
"newDuration", cm.getInactivityTimeout(),
)
cm.l.WithField("oldDuration", old).
WithField("newDuration", cm.getInactivityTimeout()).
Info("Inactivity timeout has changed")
}
}
@@ -92,10 +95,9 @@ func (cm *connectionManager) reload(c *config.C, initial bool) {
old := cm.dropInactive.Load()
cm.dropInactive.Store(c.GetBool("tunnels.drop_inactive", false))
if !initial {
cm.l.Info("Drop inactive setting has changed",
"oldBool", old,
"newBool", cm.dropInactive.Load(),
)
cm.l.WithField("oldBool", old).
WithField("newBool", cm.dropInactive.Load()).
Info("Drop inactive setting has changed")
}
}
}
@@ -254,7 +256,7 @@ func (cm *connectionManager) migrateRelayUsed(oldhostinfo, newhostinfo *HostInfo
var err error
index, err = AddRelay(cm.l, newhostinfo, cm.hostMap, r.PeerAddr, nil, r.Type, Requested)
if err != nil {
cm.l.Error("failed to migrate relay to new hostinfo", "error", err)
cm.l.WithError(err).Error("failed to migrate relay to new hostinfo")
continue
}
switch r.Type {
@@ -302,16 +304,16 @@ func (cm *connectionManager) migrateRelayUsed(oldhostinfo, newhostinfo *HostInfo
msg, err := req.Marshal()
if err != nil {
cm.l.Error("failed to marshal Control message to migrate relay", "error", err)
cm.l.WithError(err).Error("failed to marshal Control message to migrate relay")
} 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,
"initiatorRelayIndex", req.InitiatorRelayIndex,
"responderRelayIndex", req.ResponderRelayIndex,
"vpnAddrs", newhostinfo.vpnAddrs,
)
cm.l.WithFields(logrus.Fields{
"relayFrom": req.RelayFromAddr,
"relayTo": req.RelayToAddr,
"initiatorRelayIndex": req.InitiatorRelayIndex,
"responderRelayIndex": req.ResponderRelayIndex,
"vpnAddrs": newhostinfo.vpnAddrs}).
Info("send CreateRelayRequest")
}
}
}
@@ -323,7 +325,7 @@ func (cm *connectionManager) makeTrafficDecision(localIndex uint32, now time.Tim
hostinfo := cm.hostMap.Indexes[localIndex]
if hostinfo == nil {
cm.l.Debug("Not found in hostmap", "localIndex", localIndex)
cm.l.WithField("localIndex", localIndex).Debugln("Not found in hostmap")
return doNothing, nil, nil
}
@@ -343,10 +345,10 @@ func (cm *connectionManager) makeTrafficDecision(localIndex uint32, now time.Tim
// A hostinfo is determined alive if there is incoming traffic
if inTraffic {
decision := doNothing
if cm.l.Enabled(context.Background(), slog.LevelDebug) {
hostinfo.logger(cm.l).Debug("Tunnel status",
"tunnelCheck", m{"state": "alive", "method": "passive"},
)
if cm.l.Level >= logrus.DebugLevel {
hostinfo.logger(cm.l).
WithField("tunnelCheck", m{"state": "alive", "method": "passive"}).
Debug("Tunnel status")
}
hostinfo.pendingDeletion.Store(false)
@@ -365,7 +367,7 @@ func (cm *connectionManager) makeTrafficDecision(localIndex uint32, now time.Tim
if !outTraffic {
// Send a punch packet to keep the NAT state alive
cm.punchy.SendPunch(hostinfo)
cm.sendPunch(hostinfo)
}
return decision, hostinfo, primary
@@ -373,9 +375,9 @@ func (cm *connectionManager) makeTrafficDecision(localIndex uint32, now time.Tim
if hostinfo.pendingDeletion.Load() {
// We have already sent a test packet and nothing was returned, this hostinfo is dead
hostinfo.logger(cm.l).Info("Tunnel status",
"tunnelCheck", m{"state": "dead", "method": "active"},
)
hostinfo.logger(cm.l).
WithField("tunnelCheck", m{"state": "dead", "method": "active"}).
Info("Tunnel status")
return deleteTunnel, hostinfo, nil
}
@@ -386,39 +388,40 @@ func (cm *connectionManager) makeTrafficDecision(localIndex uint32, now time.Tim
inactiveFor, isInactive := cm.isInactive(hostinfo, now)
if isInactive {
// Tunnel is inactive, tear it down
hostinfo.logger(cm.l).Info("Dropping tunnel due to inactivity",
"inactiveDuration", inactiveFor,
"primary", mainHostInfo,
)
hostinfo.logger(cm.l).
WithField("inactiveDuration", inactiveFor).
WithField("primary", mainHostInfo).
Info("Dropping tunnel due to inactivity")
return closeTunnel, hostinfo, primary
}
// If we aren't sending or receiving traffic then its an unused tunnel and we don't to test the tunnel.
// Just maintain NAT state if configured to do so.
cm.punchy.SendPunch(hostinfo)
cm.sendPunch(hostinfo)
cm.trafficTimer.Add(hostinfo.localIndexId, cm.checkInterval)
return doNothing, nil, nil
}
// We aren't receiving traffic but we are sending it. The outbound
// traffic itself refreshes the primary remote's NAT state; this
// fans out to non-primary remotes, but only if target_all_remotes
// is configured.
cm.punchy.SendPunchToAll(hostinfo)
if cm.punchy.GetTargetEverything() {
// This is similar to the old punchy behavior with a slight optimization.
// We aren't receiving traffic but we are sending it, punch on all known
// ips in case we need to re-prime NAT state
cm.sendPunch(hostinfo)
}
if cm.l.Enabled(context.Background(), slog.LevelDebug) {
hostinfo.logger(cm.l).Debug("Tunnel status",
"tunnelCheck", m{"state": "testing", "method": "active"},
)
if cm.l.Level >= logrus.DebugLevel {
hostinfo.logger(cm.l).
WithField("tunnelCheck", m{"state": "testing", "method": "active"}).
Debug("Tunnel status")
}
// Send a test packet to trigger an authenticated tunnel test, this should suss out any lingering tunnel issues
decision = sendTestPacket
} else {
if cm.l.Enabled(context.Background(), slog.LevelDebug) {
hostinfo.logger(cm.l).Debug("Hostinfo sadness")
if cm.l.Level >= logrus.DebugLevel {
hostinfo.logger(cm.l).Debugf("Hostinfo sadness")
}
}
@@ -490,16 +493,14 @@ func (cm *connectionManager) isInvalidCertificate(now time.Time, hostinfo *HostI
return false //cert is still valid! yay!
} else if err == cert.ErrBlockListed { //avoiding errors.Is for speed
// Block listed certificates should always be disconnected
hostinfo.logger(cm.l).Info("Remote certificate is blocked, tearing down the tunnel",
"error", err,
"fingerprint", remoteCert.Fingerprint,
)
hostinfo.logger(cm.l).WithError(err).
WithField("fingerprint", remoteCert.Fingerprint).
Info("Remote certificate is blocked, tearing down the tunnel")
return true
} else if cm.intf.disconnectInvalid.Load() {
hostinfo.logger(cm.l).Info("Remote certificate is no longer valid, tearing down the tunnel",
"error", err,
"fingerprint", remoteCert.Fingerprint,
)
hostinfo.logger(cm.l).WithError(err).
WithField("fingerprint", remoteCert.Fingerprint).
Info("Remote certificate is no longer valid, tearing down the tunnel")
return true
} else {
//if we reach here, the cert is no longer valid, but we're configured to keep tunnels from now-invalid certs open
@@ -507,17 +508,41 @@ func (cm *connectionManager) isInvalidCertificate(now time.Time, hostinfo *HostI
}
}
func (cm *connectionManager) sendPunch(hostinfo *HostInfo) {
if !cm.punchy.GetPunch() {
// Punching is disabled
return
}
if cm.intf.lightHouse.IsAnyLighthouseAddr(hostinfo.vpnAddrs) {
// Do not punch to lighthouses, we assume our lighthouse update interval is good enough.
// In the event the update interval is not sufficient to maintain NAT state then a publicly available lighthouse
// would lose the ability to notify us and punchy.respond would become unreliable.
return
}
if cm.punchy.GetTargetEverything() {
hostinfo.remotes.ForEach(cm.hostMap.GetPreferredRanges(), func(addr netip.AddrPort, preferred bool) {
cm.metricsTxPunchy.Inc(1)
cm.intf.outside.WriteTo([]byte{1}, addr)
})
} else if hostinfo.remote.IsValid() {
cm.metricsTxPunchy.Inc(1)
cm.intf.outside.WriteTo([]byte{1}, hostinfo.remote)
}
}
func (cm *connectionManager) tryRehandshake(hostinfo *HostInfo) {
cs := cm.intf.pki.getCertState()
curCrt := hostinfo.ConnectionState.myCert
curCrtVersion := curCrt.Version()
myCrt := cs.getCertificate(curCrtVersion)
if myCrt == nil {
cm.l.Info("Re-handshaking with remote",
"vpnAddrs", hostinfo.vpnAddrs,
"version", curCrtVersion,
"reason", "local certificate removed",
)
cm.l.WithField("vpnAddrs", hostinfo.vpnAddrs).
WithField("version", curCrtVersion).
WithField("reason", "local certificate removed").
Info("Re-handshaking with remote")
cm.intf.handshakeManager.StartHandshake(hostinfo.vpnAddrs[0], nil)
return
}
@@ -525,12 +550,11 @@ func (cm *connectionManager) tryRehandshake(hostinfo *HostInfo) {
if peerCrt != nil && curCrtVersion < peerCrt.Certificate.Version() {
// if our certificate version is less than theirs, and we have a matching version available, rehandshake?
if cs.getCertificate(peerCrt.Certificate.Version()) != nil {
cm.l.Info("Re-handshaking with remote",
"vpnAddrs", hostinfo.vpnAddrs,
"version", curCrtVersion,
"peerVersion", peerCrt.Certificate.Version(),
"reason", "local certificate version lower than peer, attempting to correct",
)
cm.l.WithField("vpnAddrs", hostinfo.vpnAddrs).
WithField("version", curCrtVersion).
WithField("peerVersion", peerCrt.Certificate.Version()).
WithField("reason", "local certificate version lower than peer, attempting to correct").
Info("Re-handshaking with remote")
cm.intf.handshakeManager.StartHandshake(hostinfo.vpnAddrs[0], func(hh *HandshakeHostInfo) {
hh.initiatingVersionOverride = peerCrt.Certificate.Version()
})
@@ -538,19 +562,17 @@ func (cm *connectionManager) tryRehandshake(hostinfo *HostInfo) {
}
}
if !bytes.Equal(curCrt.Signature(), myCrt.Signature()) {
cm.l.Info("Re-handshaking with remote",
"vpnAddrs", hostinfo.vpnAddrs,
"reason", "local certificate is not current",
)
cm.l.WithField("vpnAddrs", hostinfo.vpnAddrs).
WithField("reason", "local certificate is not current").
Info("Re-handshaking with remote")
cm.intf.handshakeManager.StartHandshake(hostinfo.vpnAddrs[0], nil)
return
}
if curCrtVersion < cs.initiatingVersion {
cm.l.Info("Re-handshaking with remote",
"vpnAddrs", hostinfo.vpnAddrs,
"reason", "current cert version < pki.initiatingVersion",
)
cm.l.WithField("vpnAddrs", hostinfo.vpnAddrs).
WithField("reason", "current cert version < pki.initiatingVersion").
Info("Re-handshaking with remote")
cm.intf.handshakeManager.StartHandshake(hostinfo.vpnAddrs[0], nil)
return
+27 -23
View File
@@ -7,9 +7,9 @@ import (
"testing"
"time"
"github.com/flynn/noise"
"github.com/slackhq/nebula/cert"
"github.com/slackhq/nebula/config"
"github.com/slackhq/nebula/overlay/overlaytest"
"github.com/slackhq/nebula/test"
"github.com/slackhq/nebula/udp"
"github.com/stretchr/testify/assert"
@@ -46,13 +46,13 @@ func Test_NewConnectionManagerTest(t *testing.T) {
initiatingVersion: cert.Version1,
privateKey: []byte{},
v1Cert: &dummyCert{version: cert.Version1},
v1Credential: nil,
v1HandshakeBytes: []byte{},
}
lh := newTestLighthouse()
ifce := &Interface{
hostMap: hostMap,
inside: &overlaytest.NoopTun{},
inside: &test.NoopTun{},
outside: &udp.NoopConn{},
firewall: &Firewall{},
lightHouse: lh,
@@ -63,9 +63,9 @@ func Test_NewConnectionManagerTest(t *testing.T) {
ifce.pki.cs.Store(cs)
// Create manager
conf := config.NewC(test.NewLogger())
punchy := NewPunchyFromConfig(test.NewLogger(), conf, nil)
nc := newConnectionManagerFromConfig(test.NewLogger(), conf, hostMap, punchy)
conf := config.NewC(l)
punchy := NewPunchyFromConfig(l, conf)
nc := newConnectionManagerFromConfig(l, conf, hostMap, punchy)
nc.intf = ifce
p := []byte("")
nb := make([]byte, 12, 12)
@@ -79,6 +79,7 @@ func Test_NewConnectionManagerTest(t *testing.T) {
}
hostinfo.ConnectionState = &ConnectionState{
myCert: &dummyCert{version: cert.Version1},
H: &noise.HandshakeState{},
}
nc.hostMap.unlockedAddHostInfo(hostinfo, ifce)
@@ -128,13 +129,13 @@ func Test_NewConnectionManagerTest2(t *testing.T) {
initiatingVersion: cert.Version1,
privateKey: []byte{},
v1Cert: &dummyCert{version: cert.Version1},
v1Credential: nil,
v1HandshakeBytes: []byte{},
}
lh := newTestLighthouse()
ifce := &Interface{
hostMap: hostMap,
inside: &overlaytest.NoopTun{},
inside: &test.NoopTun{},
outside: &udp.NoopConn{},
firewall: &Firewall{},
lightHouse: lh,
@@ -145,9 +146,9 @@ func Test_NewConnectionManagerTest2(t *testing.T) {
ifce.pki.cs.Store(cs)
// Create manager
conf := config.NewC(test.NewLogger())
punchy := NewPunchyFromConfig(test.NewLogger(), conf, nil)
nc := newConnectionManagerFromConfig(test.NewLogger(), conf, hostMap, punchy)
conf := config.NewC(l)
punchy := NewPunchyFromConfig(l, conf)
nc := newConnectionManagerFromConfig(l, conf, hostMap, punchy)
nc.intf = ifce
p := []byte("")
nb := make([]byte, 12, 12)
@@ -161,6 +162,7 @@ func Test_NewConnectionManagerTest2(t *testing.T) {
}
hostinfo.ConnectionState = &ConnectionState{
myCert: &dummyCert{version: cert.Version1},
H: &noise.HandshakeState{},
}
nc.hostMap.unlockedAddHostInfo(hostinfo, ifce)
@@ -212,13 +214,13 @@ func Test_NewConnectionManager_DisconnectInactive(t *testing.T) {
initiatingVersion: cert.Version1,
privateKey: []byte{},
v1Cert: &dummyCert{version: cert.Version1},
v1Credential: nil,
v1HandshakeBytes: []byte{},
}
lh := newTestLighthouse()
ifce := &Interface{
hostMap: hostMap,
inside: &overlaytest.NoopTun{},
inside: &test.NoopTun{},
outside: &udp.NoopConn{},
firewall: &Firewall{},
lightHouse: lh,
@@ -229,12 +231,12 @@ func Test_NewConnectionManager_DisconnectInactive(t *testing.T) {
ifce.pki.cs.Store(cs)
// Create manager
conf := config.NewC(test.NewLogger())
conf := config.NewC(l)
conf.Settings["tunnels"] = map[string]any{
"drop_inactive": true,
}
punchy := NewPunchyFromConfig(test.NewLogger(), conf, nil)
nc := newConnectionManagerFromConfig(test.NewLogger(), conf, hostMap, punchy)
punchy := NewPunchyFromConfig(l, conf)
nc := newConnectionManagerFromConfig(l, conf, hostMap, punchy)
assert.True(t, nc.dropInactive.Load())
nc.intf = ifce
@@ -246,6 +248,7 @@ func Test_NewConnectionManager_DisconnectInactive(t *testing.T) {
}
hostinfo.ConnectionState = &ConnectionState{
myCert: &dummyCert{version: cert.Version1},
H: &noise.HandshakeState{},
}
nc.hostMap.unlockedAddHostInfo(hostinfo, ifce)
@@ -336,15 +339,15 @@ func Test_NewConnectionManagerTest_DisconnectInvalid(t *testing.T) {
cachedPeerCert, err := ncp.VerifyCertificate(now.Add(time.Second), peerCert)
cs := &CertState{
privateKey: []byte{},
v1Cert: &dummyCert{},
v1Credential: nil,
privateKey: []byte{},
v1Cert: &dummyCert{},
v1HandshakeBytes: []byte{},
}
lh := newTestLighthouse()
ifce := &Interface{
hostMap: hostMap,
inside: &overlaytest.NoopTun{},
inside: &test.NoopTun{},
outside: &udp.NoopConn{},
firewall: &Firewall{},
lightHouse: lh,
@@ -357,9 +360,9 @@ func Test_NewConnectionManagerTest_DisconnectInvalid(t *testing.T) {
ifce.disconnectInvalid.Store(true)
// Create manager
conf := config.NewC(test.NewLogger())
punchy := NewPunchyFromConfig(test.NewLogger(), conf, nil)
nc := newConnectionManagerFromConfig(test.NewLogger(), conf, hostMap, punchy)
conf := config.NewC(l)
punchy := NewPunchyFromConfig(l, conf)
nc := newConnectionManagerFromConfig(l, conf, hostMap, punchy)
nc.intf = ifce
ifce.connectionManager = nc
@@ -368,6 +371,7 @@ func Test_NewConnectionManagerTest_DisconnectInvalid(t *testing.T) {
ConnectionState: &ConnectionState{
myCert: &dummyCert{},
peerCert: cachedPeerCert,
H: &noise.HandshakeState{},
},
}
nc.hostMap.unlockedAddHostInfo(hostinfo, ifce)
+53 -18
View File
@@ -1,20 +1,24 @@
package nebula
import (
"crypto/rand"
"encoding/json"
"fmt"
"sync"
"sync/atomic"
"github.com/flynn/noise"
"github.com/sirupsen/logrus"
"github.com/slackhq/nebula/cert"
"github.com/slackhq/nebula/handshake"
"github.com/slackhq/nebula/noiseutil"
)
const ReplayWindow = 1024
type ConnectionState struct {
eKey noiseutil.CipherState
dKey noiseutil.CipherState
eKey *NebulaCipherState
dKey *NebulaCipherState
H *noise.HandshakeState
myCert cert.Certificate
peerCert *cert.CachedCertificate
initiator bool
@@ -23,24 +27,55 @@ type ConnectionState struct {
writeLock sync.Mutex
}
// newConnectionStateFromResult builds a fully-populated ConnectionState from a
// completed handshake.Result. It seeds messageCounter and the replay window so
// that the post-handshake message indices already used on the wire don't count
// as missed traffic in the data plane.
func newConnectionStateFromResult(r *handshake.Result) *ConnectionState {
func NewConnectionState(l *logrus.Logger, cs *CertState, crt cert.Certificate, initiator bool, pattern noise.HandshakePattern) (*ConnectionState, error) {
var dhFunc noise.DHFunc
switch crt.Curve() {
case cert.Curve_CURVE25519:
dhFunc = noise.DH25519
case cert.Curve_P256:
if cs.pkcs11Backed {
dhFunc = noiseutil.DHP256PKCS11
} else {
dhFunc = noiseutil.DHP256
}
default:
return nil, fmt.Errorf("invalid curve: %s", crt.Curve())
}
var ncs noise.CipherSuite
if cs.cipher == "chachapoly" {
ncs = noise.NewCipherSuite(dhFunc, noise.CipherChaChaPoly, noise.HashSHA256)
} else {
ncs = noise.NewCipherSuite(dhFunc, noiseutil.CipherAESGCM, noise.HashSHA256)
}
static := noise.DHKey{Private: cs.privateKey, Public: crt.PublicKey()}
hs, err := noise.NewHandshakeState(noise.Config{
CipherSuite: ncs,
Random: rand.Reader,
Pattern: pattern,
Initiator: initiator,
StaticKeypair: static,
//NOTE: These should come from CertState (pki.go) when we finally implement it
PresharedKey: []byte{},
PresharedKeyPlacement: 0,
})
if err != nil {
return nil, fmt.Errorf("NewConnectionState: %s", err)
}
// The queue and ready params prevent a counter race that would happen when
// sending stored packets and simultaneously accepting new traffic.
ci := &ConnectionState{
myCert: r.MyCert,
initiator: r.Initiator,
peerCert: r.RemoteCert,
eKey: noiseutil.NewCipherState(r.EKey, r.Cipher),
dKey: noiseutil.NewCipherState(r.DKey, r.Cipher),
H: hs,
initiator: initiator,
window: NewBits(ReplayWindow),
myCert: crt,
}
ci.messageCounter.Add(r.MessageIndex)
for i := uint64(1); i <= r.MessageIndex; i++ {
ci.window.Update(nil, i)
}
return ci
// always start the counter from 2, as packet 1 and packet 2 are handshake packets.
ci.messageCounter.Add(2)
return ci, nil
}
func (cs *ConnectionState) MarshalJSON() ([]byte, error) {
-114
View File
@@ -1,114 +0,0 @@
package nebula
import (
"net/netip"
"testing"
"time"
"github.com/flynn/noise"
"github.com/slackhq/nebula/cert"
ct "github.com/slackhq/nebula/cert_test"
"github.com/slackhq/nebula/handshake"
"github.com/slackhq/nebula/header"
"github.com/stretchr/testify/assert"
"github.com/stretchr/testify/require"
)
// runTestHandshake runs a complete IX handshake between two freshly-built
// peers and returns the initiator and responder Results. Used to produce
// real cipher states for tests that need to exercise post-handshake glue.
func runTestHandshake(t *testing.T) (initR, respR *handshake.Result) {
t.Helper()
ca, _, caKey, _ := ct.NewTestCaCert(
cert.Version2, cert.Curve_CURVE25519, time.Time{}, time.Time{}, nil, nil, nil,
)
caPool := ct.NewTestCAPool(ca)
makeCreds := func(name string, networks []netip.Prefix) handshake.GetCredentialFunc {
c, _, rawKey, _ := ct.NewTestCert(
cert.Version2, cert.Curve_CURVE25519, ca, caKey,
name, ca.NotBefore(), ca.NotAfter(), networks, nil, nil,
)
priv, _, _, err := cert.UnmarshalPrivateKeyFromPEM(rawKey)
require.NoError(t, err)
hsBytes, err := c.MarshalForHandshakes()
require.NoError(t, err)
ncs := noise.NewCipherSuite(noise.DH25519, noise.CipherChaChaPoly, noise.HashSHA256)
cred := handshake.NewCredential(c, hsBytes, priv, ncs)
return func(v cert.Version) *handshake.Credential {
if v == cert.Version2 {
return cred
}
return nil
}
}
verifier := func(c cert.Certificate) (*cert.CachedCertificate, error) {
return caPool.VerifyCertificate(time.Now(), c)
}
initCreds := makeCreds("initiator", []netip.Prefix{netip.MustParsePrefix("10.0.0.1/24")})
respCreds := makeCreds("responder", []netip.Prefix{netip.MustParsePrefix("10.0.0.2/24")})
initM, err := handshake.NewMachine(
cert.Version2, initCreds, verifier,
func() (uint32, error) { return 1000, nil },
true, header.HandshakeIXPSK0,
)
require.NoError(t, err)
respM, err := handshake.NewMachine(
cert.Version2, respCreds, verifier,
func() (uint32, error) { return 2000, nil },
false, header.HandshakeIXPSK0,
)
require.NoError(t, err)
msg1, err := initM.Initiate(nil)
require.NoError(t, err)
resp, respR, err := respM.ProcessPacket(nil, msg1)
require.NoError(t, err)
require.NotNil(t, respR)
_, initR, err = initM.ProcessPacket(nil, resp)
require.NoError(t, err)
require.NotNil(t, initR)
return initR, respR
}
func TestNewConnectionStateFromResult(t *testing.T) {
initR, respR := runTestHandshake(t)
t.Run("initiator", func(t *testing.T) {
ci := newConnectionStateFromResult(initR)
assert.True(t, ci.initiator)
assert.Equal(t, initR.MyCert, ci.myCert)
assert.Equal(t, initR.RemoteCert, ci.peerCert)
assert.NotNil(t, ci.eKey)
assert.NotNil(t, ci.dKey)
// IX has 2 handshake messages; the next data-plane send is counter=3.
assert.Equal(t, uint64(2), ci.messageCounter.Load(),
"messageCounter must equal Result.MessageIndex so the next send is N+1")
// Both handshake counters must be marked seen so they don't appear lost.
// Check returns false if an index has already been recorded.
assert.False(t, ci.window.Check(nil, 1), "counter 1 must already be seen")
assert.False(t, ci.window.Check(nil, 2), "counter 2 must already be seen")
// Counter 3 is the next data-plane message and must NOT be pre-marked.
assert.True(t, ci.window.Check(nil, 3), "counter 3 must not be pre-seeded")
})
t.Run("responder", func(t *testing.T) {
ci := newConnectionStateFromResult(respR)
assert.False(t, ci.initiator)
assert.Equal(t, respR.MyCert, ci.myCert)
assert.Equal(t, respR.RemoteCert, ci.peerCert)
assert.NotNil(t, ci.eKey)
assert.NotNil(t, ci.dKey)
assert.Equal(t, uint64(2), ci.messageCounter.Load())
})
}
+37 -8
View File
@@ -3,14 +3,15 @@ package nebula
import (
"context"
"errors"
"log/slog"
"net/netip"
"os"
"os/signal"
"sync"
"syscall"
"github.com/sirupsen/logrus"
"github.com/slackhq/nebula/cert"
"github.com/slackhq/nebula/firewall/events"
"github.com/slackhq/nebula/header"
"github.com/slackhq/nebula/overlay"
)
@@ -46,7 +47,7 @@ type Control struct {
state RunState
f *Interface
l *slog.Logger
l *logrus.Logger
ctx context.Context
cancel context.CancelFunc
sshStart func()
@@ -151,7 +152,7 @@ func (c *Control) Stop() {
c.CloseAllTunnels(false)
if err := c.f.Close(); err != nil {
c.l.Error("Close interface failed", "error", err)
c.l.WithError(err).Error("Close interface failed")
}
c.stateLock.Lock()
c.state = StateStopped
@@ -166,7 +167,7 @@ func (c *Control) ShutdownBlock() {
rawSig := <-sigChan
sig := rawSig.String()
c.l.Info("Caught signal, shutting down", "signal", sig)
c.l.WithField("signal", sig).Info("Caught signal, shutting down")
c.Stop()
}
@@ -303,10 +304,8 @@ func (c *Control) CloseAllTunnels(excludeLighthouses bool) (closed int) {
c.f.send(header.CloseTunnel, 0, h.ConnectionState, h, []byte{}, make([]byte, 12, 12), make([]byte, mtu))
c.f.closeTunnel(h)
c.l.Debug("Sending close tunnel message",
"vpnAddrs", h.vpnAddrs,
"udpAddr", h.remote,
)
c.l.WithField("vpnAddrs", h.vpnAddrs).WithField("udpAddr", h.remote).
Debug("Sending close tunnel message")
closed++
}
@@ -342,6 +341,36 @@ func (c *Control) Device() overlay.Device {
return c.f.inside
}
// SetFirewallEventReporter installs an event reporter on the current firewall.
// Passing nil clears any installed reporter. The reporter is carried across
// firewall rule reloads. Report* methods are invoked while nebula holds
// internal locks and must be non-blocking; in particular they must not call
// back into *Control methods that touch the firewall, or deadlock will
// result.
//
// Installation is performed by shallow-copying the current *Firewall,
// setting the reporter field on the copy, and swapping the pointer under
// the conntrack lock. Every Firewall the data path sees therefore has an
// immutable reporter slot, and emit sites can read it without any
// synchronization of their own.
func (c *Control) SetFirewallEventReporter(r events.Reporter) {
old := c.f.firewall
if old == nil {
return
}
old.Conntrack.Lock()
defer old.Conntrack.Unlock()
// Re-read under the lock in case a concurrent reload swapped in a new
// Firewall between the unlocked load above and here. Both Firewalls share
// the same Conntrack pointer in the normal (non-overflow) reload path,
// so the lock we hold is the right one for whichever we see now.
current := c.f.firewall
fw := *current
fw.reporter = r
c.f.firewall = &fw
}
func copyHostInfo(h *HostInfo, preferredRanges []netip.Prefix) ControlHostInfo {
chi := ControlHostInfo{
VpnAddrs: make([]netip.Addr, len(h.vpnAddrs)),
+2 -1
View File
@@ -6,6 +6,7 @@ import (
"reflect"
"testing"
"github.com/sirupsen/logrus"
"github.com/slackhq/nebula/cert"
"github.com/slackhq/nebula/test"
"github.com/stretchr/testify/assert"
@@ -82,7 +83,7 @@ func TestControl_GetHostInfoByVpnIp(t *testing.T) {
f: &Interface{
hostMap: hm,
},
l: test.NewLogger(),
l: logrus.New(),
}
thi := c.GetHostInfoByVpnAddr(vpnIp, false)
+60 -12
View File
@@ -5,6 +5,8 @@ package nebula
import (
"net/netip"
"github.com/google/gopacket"
"github.com/google/gopacket/layers"
"github.com/slackhq/nebula/header"
"github.com/slackhq/nebula/overlay"
"github.com/slackhq/nebula/udp"
@@ -20,9 +22,7 @@ func (c *Control) WaitForType(msgType header.MessageType, subType header.Message
panic(err)
}
pipeTo.InjectUDPPacket(p)
match := h.Type == msgType && h.Subtype == subType
p.Release()
if match {
if h.Type == msgType && h.Subtype == subType {
return
}
}
@@ -38,9 +38,7 @@ func (c *Control) WaitForTypeByIndex(toIndex uint32, msgType header.MessageType,
panic(err)
}
pipeTo.InjectUDPPacket(p)
match := h.RemoteIndex == toIndex && h.Type == msgType && h.Subtype == subType
p.Release()
if match {
if h.RemoteIndex == toIndex && h.Type == msgType && h.Subtype == subType {
return
}
}
@@ -92,15 +90,65 @@ func (c *Control) GetTunTxChan() <-chan []byte {
return c.f.inside.(*overlay.TestTun).TxPackets
}
// InjectUDPPacket injects a packet into the udp side. We copy internally so the caller keeps ownership of p.
// The copy comes from the freelist so steady-state alloc is zero.
// InjectUDPPacket will inject a packet into the udp side of nebula
func (c *Control) InjectUDPPacket(p *udp.Packet) {
c.f.outside.(*udp.TesterConn).Send(p.Copy())
c.f.outside.(*udp.TesterConn).Send(p)
}
// InjectTunPacket pushes an IP packet onto the tun interface.
func (c *Control) InjectTunPacket(packet []byte) {
c.f.inside.(*overlay.TestTun).Send(packet)
// InjectTunUDPPacket puts a udp packet on the tun interface. Using UDP here because it's a simpler protocol
func (c *Control) InjectTunUDPPacket(toAddr netip.Addr, toPort uint16, fromAddr netip.Addr, fromPort uint16, data []byte) {
serialize := make([]gopacket.SerializableLayer, 0)
var netLayer gopacket.NetworkLayer
if toAddr.Is6() {
if !fromAddr.Is6() {
panic("Cant send ipv6 to ipv4")
}
ip := &layers.IPv6{
Version: 6,
NextHeader: layers.IPProtocolUDP,
SrcIP: fromAddr.Unmap().AsSlice(),
DstIP: toAddr.Unmap().AsSlice(),
}
serialize = append(serialize, ip)
netLayer = ip
} else {
if !fromAddr.Is4() {
panic("Cant send ipv4 to ipv6")
}
ip := &layers.IPv4{
Version: 4,
TTL: 64,
Protocol: layers.IPProtocolUDP,
SrcIP: fromAddr.Unmap().AsSlice(),
DstIP: toAddr.Unmap().AsSlice(),
}
serialize = append(serialize, ip)
netLayer = ip
}
udp := layers.UDP{
SrcPort: layers.UDPPort(fromPort),
DstPort: layers.UDPPort(toPort),
}
err := udp.SetNetworkLayerForChecksum(netLayer)
if err != nil {
panic(err)
}
buffer := gopacket.NewSerializeBuffer()
opt := gopacket.SerializeOptions{
ComputeChecksums: true,
FixLengths: true,
}
serialize = append(serialize, &udp, gopacket.Payload(data))
err = gopacket.SerializeLayers(buffer, opt, serialize...)
if err != nil {
panic(err)
}
c.f.inside.(*overlay.TestTun).Send(buffer.Bytes())
}
func (c *Control) GetVpnAddrs() []netip.Addr {
+17 -39
View File
@@ -3,7 +3,6 @@ package nebula
import (
"context"
"fmt"
"log/slog"
"net"
"net/netip"
"strconv"
@@ -13,12 +12,13 @@ import (
"github.com/gaissmai/bart"
"github.com/miekg/dns"
"github.com/sirupsen/logrus"
"github.com/slackhq/nebula/config"
)
type dnsServer struct {
sync.RWMutex
l *slog.Logger
l *logrus.Logger
ctx context.Context
dnsMap4 map[string]netip.Addr
dnsMap6 map[string]netip.Addr
@@ -55,7 +55,7 @@ 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 *logrus.Logger, cs *CertState, hostMap *HostMap, c *config.C) (*dnsServer, error) {
ds := &dnsServer{
l: l,
ctx: ctx,
@@ -69,7 +69,7 @@ func newDnsServerFromConfig(ctx context.Context, l *slog.Logger, cs *CertState,
c.RegisterReloadCallback(func(c *config.C) {
if err := ds.reload(c, false); err != nil {
ds.l.Error("Failed to reload DNS responder from config", "error", err)
l.WithError(err).Error("Failed to reload DNS responder from config")
}
})
@@ -145,7 +145,7 @@ func (d *dnsServer) shutdownServer(srv *dns.Server, started chan struct{}, reaso
<-started
}
if err := srv.Shutdown(); err != nil {
d.l.Warn("Failed to shut down the DNS responder", "reason", reason, "error", err)
d.l.WithError(err).WithField("reason", reason).Warn("Failed to shut down the DNS responder")
}
}
@@ -188,7 +188,7 @@ func (d *dnsServer) Start() {
}
}()
d.l.Info("Starting DNS responder", "dnsListener", addr)
d.l.WithField("dnsListener", addr).Info("Starting DNS responder")
err := server.ListenAndServe()
close(done)
@@ -201,7 +201,7 @@ func (d *dnsServer) Start() {
}
if err != nil {
d.l.Warn("Failed to run the DNS responder", "error", err)
d.l.WithError(err).Warn("Failed to run the DNS responder")
}
}
@@ -216,34 +216,25 @@ func (d *dnsServer) Stop() {
d.shutdownServer(srv, started, "stop")
}
// Query returns the address for the given name and query type. The second
// return value reports whether the name is known at all (in either A or AAAA),
// which lets callers distinguish NODATA from NXDOMAIN.
func (d *dnsServer) Query(q uint16, data string) (netip.Addr, bool) {
func (d *dnsServer) Query(q uint16, data string) netip.Addr {
data = strings.ToLower(data)
d.RLock()
defer d.RUnlock()
addr4, haveV4 := d.dnsMap4[data]
addr6, haveV6 := d.dnsMap6[data]
nameExists := haveV4 || haveV6
switch q {
case dns.TypeA:
if haveV4 {
return addr4, nameExists
if r, ok := d.dnsMap4[data]; ok {
return r
}
case dns.TypeAAAA:
if haveV6 {
return addr6, nameExists
if r, ok := d.dnsMap6[data]; ok {
return r
}
}
return netip.Addr{}, nameExists
return netip.Addr{}
}
func (d *dnsServer) QueryCert(data string) string {
if len(data) < 2 {
return ""
}
ip, err := netip.ParseAddr(data[:len(data)-1])
if err != nil {
return ""
@@ -314,23 +305,12 @@ func (d *dnsServer) isSelfNebulaOrLocalhost(addr string) bool {
}
func (d *dnsServer) parseQuery(m *dns.Msg, w dns.ResponseWriter) {
debugEnabled := d.l.Enabled(context.Background(), slog.LevelDebug)
// Per RFC 2308 §2.2, a name that exists but has no record of the requested
// type must be answered with NOERROR and an empty answer section (NODATA),
// not NXDOMAIN (RFC 2308 §2.1), which is reserved for names that do not
// exist at all.
anyNameExists := false
for _, q := range m.Question {
switch q.Qtype {
case dns.TypeA, dns.TypeAAAA:
qType := dns.TypeToString[q.Qtype]
if debugEnabled {
d.l.Debug("DNS query", "type", qType, "name", q.Name)
}
ip, nameExists := d.Query(q.Qtype, q.Name)
if nameExists {
anyNameExists = true
}
d.l.Debugf("Query for %s %s", qType, q.Name)
ip := d.Query(q.Qtype, q.Name)
if ip.IsValid() {
rr, err := dns.NewRR(fmt.Sprintf("%s %s %s", q.Name, qType, ip))
if err == nil {
@@ -342,9 +322,7 @@ func (d *dnsServer) parseQuery(m *dns.Msg, w dns.ResponseWriter) {
if !d.isSelfNebulaOrLocalhost(w.RemoteAddr().String()) {
return
}
if debugEnabled {
d.l.Debug("DNS query", "type", "TXT", "name", q.Name)
}
d.l.Debugf("Query for TXT %s", q.Name)
ip := d.QueryCert(q.Name)
if ip != "" {
rr, err := dns.NewRR(fmt.Sprintf("%s TXT %s", q.Name, ip))
@@ -355,7 +333,7 @@ func (d *dnsServer) parseQuery(m *dns.Msg, w dns.ResponseWriter) {
}
}
if len(m.Answer) == 0 && !anyNameExists {
if len(m.Answer) == 0 {
m.Rcode = dns.RcodeNameError
}
}
+7 -56
View File
@@ -2,7 +2,7 @@ package nebula
import (
"context"
"log/slog"
"io"
"net"
"net/netip"
"strconv"
@@ -10,26 +10,14 @@ import (
"time"
"github.com/miekg/dns"
"github.com/sirupsen/logrus"
"github.com/slackhq/nebula/config"
"github.com/stretchr/testify/assert"
"github.com/stretchr/testify/require"
)
type stubDNSWriter struct{}
func (stubDNSWriter) LocalAddr() net.Addr { return &net.UDPAddr{} }
func (stubDNSWriter) RemoteAddr() net.Addr {
return &net.UDPAddr{IP: net.ParseIP("127.0.0.1"), Port: 5353}
}
func (stubDNSWriter) Write([]byte) (int, error) { return 0, nil }
func (stubDNSWriter) WriteMsg(*dns.Msg) error { return nil }
func (stubDNSWriter) Close() error { return nil }
func (stubDNSWriter) TsigStatus() error { return nil }
func (stubDNSWriter) TsigTimersOnly(bool) {}
func (stubDNSWriter) Hijack() {}
func TestParsequery(t *testing.T) {
l := slog.New(slog.DiscardHandler)
l := logrus.New()
hostMap := &HostMap{}
ds := &dnsServer{
l: l,
@@ -45,56 +33,18 @@ func TestParsequery(t *testing.T) {
netip.MustParseAddr("fd01::25"),
}
ds.Add("test.com.com", addrs)
ds.Add("v4only.com.com", []netip.Addr{netip.MustParseAddr("1.2.3.6")})
ds.Add("v6only.com.com", []netip.Addr{netip.MustParseAddr("fd01::26")})
m := &dns.Msg{}
m.SetQuestion("test.com.com", dns.TypeA)
ds.parseQuery(m, nil)
assert.NotNil(t, m.Answer)
assert.Equal(t, "1.2.3.4", m.Answer[0].(*dns.A).A.String())
assert.Equal(t, dns.RcodeSuccess, m.Rcode)
m = &dns.Msg{}
m.SetQuestion("test.com.com", dns.TypeAAAA)
ds.parseQuery(m, nil)
assert.NotNil(t, m.Answer)
assert.Equal(t, "fd01::24", m.Answer[0].(*dns.AAAA).AAAA.String())
assert.Equal(t, dns.RcodeSuccess, m.Rcode)
// A known name with no record of the requested type should return NODATA
// (NOERROR with empty answer), not NXDOMAIN.
m = &dns.Msg{}
m.SetQuestion("v4only.com.com", dns.TypeAAAA)
ds.parseQuery(m, nil)
assert.Empty(t, m.Answer)
assert.Equal(t, dns.RcodeSuccess, m.Rcode)
m = &dns.Msg{}
m.SetQuestion("v6only.com.com", dns.TypeA)
ds.parseQuery(m, nil)
assert.Empty(t, m.Answer)
assert.Equal(t, dns.RcodeSuccess, m.Rcode)
// An unknown name should still return NXDOMAIN.
m = &dns.Msg{}
m.SetQuestion("unknown.com.com", dns.TypeA)
ds.parseQuery(m, nil)
assert.Empty(t, m.Answer)
assert.Equal(t, dns.RcodeNameError, m.Rcode)
// short lookups should not fail
m = &dns.Msg{}
m.Question = []dns.Question{{Name: "", Qtype: dns.TypeTXT, Qclass: dns.ClassINET}}
ds.parseQuery(m, stubDNSWriter{})
assert.Empty(t, m.Answer)
assert.Equal(t, dns.RcodeNameError, m.Rcode)
m = &dns.Msg{}
m.Question = []dns.Question{{Name: ".", Qtype: dns.TypeTXT, Qclass: dns.ClassINET}}
ds.parseQuery(m, stubDNSWriter{})
assert.Empty(t, m.Answer)
assert.Equal(t, dns.RcodeNameError, m.Rcode)
}
func Test_getDnsServerAddr(t *testing.T) {
@@ -136,9 +86,10 @@ func Test_getDnsServerAddr(t *testing.T) {
func newTestDnsServer(t *testing.T) (*dnsServer, *config.C) {
t.Helper()
sl := slog.New(slog.DiscardHandler)
l := logrus.New()
l.Out = io.Discard
ds := &dnsServer{
l: sl,
l: l,
ctx: context.Background(),
dnsMap4: make(map[string]netip.Addr),
dnsMap6: make(map[string]netip.Addr),
@@ -146,7 +97,7 @@ func newTestDnsServer(t *testing.T) (*dnsServer, *config.C) {
}
ds.mux = dns.NewServeMux()
ds.mux.HandleFunc(".", ds.handleDnsRequest)
return ds, config.NewC(nil)
return ds, config.NewC(l)
}
func setDnsConfig(c *config.C, host string, port string, amLighthouse, serveDns bool) {
+12 -24
View File
@@ -28,7 +28,6 @@ func makeHandshakePacket(from, to netip.AddrPort, subtype header.MessageSubType,
}
func TestHandshakeRetransmitDuplicate(t *testing.T) {
t.Parallel()
// Verify the responder correctly handles receiving the same msg1 multiple times
// (retransmission). The duplicate goes through CheckAndComplete -> ErrAlreadySeen
// and the cached response is resent.
@@ -47,7 +46,7 @@ func TestHandshakeRetransmitDuplicate(t *testing.T) {
defer r.RenderFlow()
t.Log("Trigger handshake from me to them")
myControl.InjectTunPacket(BuildTunUDPPacket(theirVpnIpNet[0].Addr(), 80, myVpnIpNet[0].Addr(), 80, []byte("Hi")))
myControl.InjectTunUDPPacket(theirVpnIpNet[0].Addr(), 80, myVpnIpNet[0].Addr(), 80, []byte("Hi"))
t.Log("Grab my msg1")
msg1 := myControl.GetFromUDP(true)
@@ -79,7 +78,6 @@ func TestHandshakeRetransmitDuplicate(t *testing.T) {
}
func TestHandshakeTruncatedPacketRecovery(t *testing.T) {
t.Parallel()
// Verify that a truncated handshake packet is ignored and the real
// packet can still complete the handshake.
@@ -97,7 +95,7 @@ func TestHandshakeTruncatedPacketRecovery(t *testing.T) {
defer r.RenderFlow()
t.Log("Trigger handshake")
myControl.InjectTunPacket(BuildTunUDPPacket(theirVpnIpNet[0].Addr(), 80, myVpnIpNet[0].Addr(), 80, []byte("Hi")))
myControl.InjectTunUDPPacket(theirVpnIpNet[0].Addr(), 80, myVpnIpNet[0].Addr(), 80, []byte("Hi"))
t.Log("Get msg1 and deliver to responder")
msg1 := myControl.GetFromUDP(true)
@@ -128,7 +126,6 @@ func TestHandshakeTruncatedPacketRecovery(t *testing.T) {
}
func TestHandshakeOrphanedMsg2Dropped(t *testing.T) {
t.Parallel()
// A msg2 arriving with no matching pending index should be silently dropped
// with no response sent and no state changes.
@@ -146,7 +143,7 @@ func TestHandshakeOrphanedMsg2Dropped(t *testing.T) {
defer r.RenderFlow()
t.Log("Complete a normal handshake")
myControl.InjectTunPacket(BuildTunUDPPacket(theirVpnIpNet[0].Addr(), 80, myVpnIpNet[0].Addr(), 80, []byte("Hi")))
myControl.InjectTunUDPPacket(theirVpnIpNet[0].Addr(), 80, myVpnIpNet[0].Addr(), 80, []byte("Hi"))
r.RouteForAllUntilTxTun(theirControl)
assertTunnel(t, myVpnIpNet[0].Addr(), theirVpnIpNet[0].Addr(), myControl, theirControl, r)
@@ -171,7 +168,6 @@ func TestHandshakeOrphanedMsg2Dropped(t *testing.T) {
}
func TestHandshakeUnknownMessageCounter(t *testing.T) {
t.Parallel()
// A handshake packet with an unexpected message counter should be silently
// dropped with no side effects and no UDP response.
@@ -203,7 +199,6 @@ func TestHandshakeUnknownMessageCounter(t *testing.T) {
}
func TestHandshakeUnknownSubtype(t *testing.T) {
t.Parallel()
// A handshake packet with an unknown subtype should be silently dropped.
ca, _, caKey, _ := cert_test.NewTestCaCert(cert.Version1, cert.Curve_CURVE25519, time.Now(), time.Now().Add(10*time.Minute), nil, nil, []string{})
@@ -229,7 +224,6 @@ func TestHandshakeUnknownSubtype(t *testing.T) {
}
func TestHandshakeLateResponse(t *testing.T) {
t.Parallel()
// After a handshake times out, a late response should be silently ignored
// with no new tunnels created.
@@ -248,7 +242,7 @@ func TestHandshakeLateResponse(t *testing.T) {
theirControl.Start()
t.Log("Trigger handshake from me")
myControl.InjectTunPacket(BuildTunUDPPacket(theirVpnIpNet[0].Addr(), 80, myVpnIpNet[0].Addr(), 80, []byte("Hi")))
myControl.InjectTunUDPPacket(theirVpnIpNet[0].Addr(), 80, myVpnIpNet[0].Addr(), 80, []byte("Hi"))
t.Log("Grab msg1 but don't deliver")
msg1 := myControl.GetFromUDP(true)
@@ -279,7 +273,6 @@ func TestHandshakeLateResponse(t *testing.T) {
}
func TestHandshakeSelfConnectionRejected(t *testing.T) {
t.Parallel()
// Verify that a node rejects a handshake containing its own VPN IP in the
// peer cert. We do this by sending the initiator's own msg1 back to itself.
@@ -292,7 +285,7 @@ func TestHandshakeSelfConnectionRejected(t *testing.T) {
myControl.Start()
t.Log("Trigger handshake from me")
myControl.InjectTunPacket(BuildTunUDPPacket(netip.MustParseAddr("10.128.0.2"), 80, myVpnIpNet[0].Addr(), 80, []byte("Hi")))
myControl.InjectTunUDPPacket(netip.MustParseAddr("10.128.0.2"), 80, myVpnIpNet[0].Addr(), 80, []byte("Hi"))
msg1 := myControl.GetFromUDP(true)
t.Log("Drain any handshake retransmits before injecting")
@@ -328,7 +321,6 @@ func TestHandshakeSelfConnectionRejected(t *testing.T) {
}
func TestHandshakeMessageCounter0Dropped(t *testing.T) {
t.Parallel()
// MessageCounter=0 is not a valid handshake message and should be dropped.
ca, _, caKey, _ := cert_test.NewTestCaCert(cert.Version1, cert.Curve_CURVE25519, time.Now(), time.Now().Add(10*time.Minute), nil, nil, []string{})
@@ -349,7 +341,6 @@ func TestHandshakeMessageCounter0Dropped(t *testing.T) {
}
func TestHandshakeRemoteAllowList(t *testing.T) {
t.Parallel()
// Verify that a handshake from a blocked underlay IP is dropped with no
// response and no state changes. Then verify the same packet from an
// allowed IP succeeds.
@@ -375,7 +366,7 @@ func TestHandshakeRemoteAllowList(t *testing.T) {
defer r.RenderFlow()
t.Log("Trigger handshake from them")
theirControl.InjectTunPacket(BuildTunUDPPacket(myVpnIpNet[0].Addr(), 80, theirVpnIpNet[0].Addr(), 80, []byte("Hi")))
theirControl.InjectTunUDPPacket(myVpnIpNet[0].Addr(), 80, theirVpnIpNet[0].Addr(), 80, []byte("Hi"))
msg1 := theirControl.GetFromUDP(true)
t.Log("Rewrite the source to a blocked IP and inject")
@@ -408,7 +399,6 @@ func TestHandshakeRemoteAllowList(t *testing.T) {
}
func TestHandshakeAlreadySeenPreferredRemote(t *testing.T) {
t.Parallel()
// When a duplicate msg1 arrives via ErrAlreadySeen, verify the tunnel
// remains functional and hostmap index count is stable.
@@ -426,7 +416,7 @@ func TestHandshakeAlreadySeenPreferredRemote(t *testing.T) {
defer r.RenderFlow()
t.Log("Complete a normal handshake via the router")
myControl.InjectTunPacket(BuildTunUDPPacket(theirVpnIpNet[0].Addr(), 80, myVpnIpNet[0].Addr(), 80, []byte("Hi")))
myControl.InjectTunUDPPacket(theirVpnIpNet[0].Addr(), 80, myVpnIpNet[0].Addr(), 80, []byte("Hi"))
r.RouteForAllUntilTxTun(theirControl)
assertTunnel(t, myVpnIpNet[0].Addr(), theirVpnIpNet[0].Addr(), myControl, theirControl, r)
@@ -437,7 +427,7 @@ func TestHandshakeAlreadySeenPreferredRemote(t *testing.T) {
originalRemote := hi.CurrentRemote
t.Log("Re-trigger traffic to cause a new handshake attempt (ErrAlreadySeen)")
myControl.InjectTunPacket(BuildTunUDPPacket(theirVpnIpNet[0].Addr(), 80, myVpnIpNet[0].Addr(), 80, []byte("roam")))
myControl.InjectTunUDPPacket(theirVpnIpNet[0].Addr(), 80, myVpnIpNet[0].Addr(), 80, []byte("roam"))
r.RouteForAllUntilTxTun(theirControl)
t.Log("Verify tunnel still works")
@@ -455,7 +445,6 @@ func TestHandshakeAlreadySeenPreferredRemote(t *testing.T) {
}
func TestHandshakeWrongResponderPacketStore(t *testing.T) {
t.Parallel()
// Verify that when the wrong host responds, the cached packets are
// transferred to the new handshake, the evil tunnel is closed, evil's
// address is blocked, and the correct tunnel is eventually established.
@@ -475,8 +464,8 @@ func TestHandshakeWrongResponderPacketStore(t *testing.T) {
evilControl.Start()
t.Log("Send multiple packets to them (cached during handshake)")
myControl.InjectTunPacket(BuildTunUDPPacket(theirVpnIpNet[0].Addr(), 80, myVpnIpNet[0].Addr(), 80, []byte("packet1")))
myControl.InjectTunPacket(BuildTunUDPPacket(theirVpnIpNet[0].Addr(), 80, myVpnIpNet[0].Addr(), 80, []byte("packet2")))
myControl.InjectTunUDPPacket(theirVpnIpNet[0].Addr(), 80, myVpnIpNet[0].Addr(), 80, []byte("packet1"))
myControl.InjectTunUDPPacket(theirVpnIpNet[0].Addr(), 80, myVpnIpNet[0].Addr(), 80, []byte("packet2"))
t.Log("Route until evil tunnel is closed")
h := &header.H{}
@@ -519,7 +508,6 @@ func TestHandshakeWrongResponderPacketStore(t *testing.T) {
}
func TestHandshakeRelayComplete(t *testing.T) {
t.Parallel()
// Verify that a relay handshake completes correctly and relay state is
// properly maintained on all three nodes.
@@ -540,7 +528,7 @@ func TestHandshakeRelayComplete(t *testing.T) {
theirControl.Start()
t.Log("Trigger handshake via relay")
myControl.InjectTunPacket(BuildTunUDPPacket(theirVpnIpNet[0].Addr(), 80, myVpnIpNet[0].Addr(), 80, []byte("Hi via relay")))
myControl.InjectTunUDPPacket(theirVpnIpNet[0].Addr(), 80, myVpnIpNet[0].Addr(), 80, []byte("Hi via relay"))
p := r.RouteForAllUntilTxTun(theirControl)
assertUdpPacket(t, []byte("Hi via relay"), p, myVpnIpNet[0].Addr(), theirVpnIpNet[0].Addr(), 80, 80)
@@ -568,7 +556,7 @@ func TestHandshakeRelayComplete(t *testing.T) {
}
// NOTE: Relay V1 cert + IPv6 rejection is not tested here because
// BuildTunUDPPacket from a V4 node to a V6 address panics in the test
// InjectTunUDPPacket from a V4 node to a V6 address panics in the test
// framework. The check is in handshake_manager.go handleOutbound relay
// logic (lines ~304-313): if the relay host has a V1 cert and either
// address is IPv6, the relay is skipped.
+53 -154
View File
@@ -11,12 +11,12 @@ import (
"github.com/google/gopacket"
"github.com/google/gopacket/layers"
"github.com/sirupsen/logrus"
"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/overlay"
"github.com/slackhq/nebula/udp"
"github.com/stretchr/testify/assert"
"github.com/stretchr/testify/require"
@@ -40,22 +40,11 @@ func BenchmarkHotPath(b *testing.B) {
r.CancelFlowLogs()
assertTunnel(b, myVpnIpNet[0].Addr(), theirVpnIpNet[0].Addr(), myControl, theirControl, r)
// Pre-build the IP packet bytes once so the bench measures the data plane,
// not gopacket SerializeLayers overhead.
prebuilt := BuildTunUDPPacket(theirVpnIpNet[0].Addr(), 80, myVpnIpNet[0].Addr(), 80, []byte("Hi from me"))
// EnableFanIn switches the router to a 0-alloc routing path. Required
// for hot-path benchmarks; would conflict with GetFromUDP-using tests.
r.EnableFanIn()
b.ResetTimer()
for n := 0; n < b.N; n++ {
myControl.InjectTunPacket(prebuilt)
// Release the TUN-side bytes back to the harness freelist; the bench
// just confirms a packet arrived, the contents aren't inspected.
overlay.ReleaseTunBuf(r.RouteForAllUntilTxTun(theirControl))
myControl.InjectTunUDPPacket(theirVpnIpNet[0].Addr(), 80, myVpnIpNet[0].Addr(), 80, []byte("Hi from me"))
_ = r.RouteForAllUntilTxTun(theirControl)
}
myControl.Stop()
@@ -83,15 +72,11 @@ func BenchmarkHotPathRelay(b *testing.B) {
theirControl.Start()
assertTunnel(b, theirVpnIpNet[0].Addr(), myVpnIpNet[0].Addr(), theirControl, myControl, r)
prebuilt := BuildTunUDPPacket(theirVpnIpNet[0].Addr(), 80, myVpnIpNet[0].Addr(), 80, []byte("Hi from me"))
r.EnableFanIn()
b.ResetTimer()
for n := 0; n < b.N; n++ {
myControl.InjectTunPacket(prebuilt)
overlay.ReleaseTunBuf(r.RouteForAllUntilTxTun(theirControl))
myControl.InjectTunUDPPacket(theirVpnIpNet[0].Addr(), 80, myVpnIpNet[0].Addr(), 80, []byte("Hi from me"))
_ = r.RouteForAllUntilTxTun(theirControl)
}
myControl.Stop()
@@ -100,7 +85,6 @@ func BenchmarkHotPathRelay(b *testing.B) {
}
func TestGoodHandshake(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{})
myControl, myVpnIpNet, myUdpAddr, _ := newSimpleServer(cert.Version1, ca, caKey, "me", "10.128.0.1/24", nil)
theirControl, theirVpnIpNet, theirUdpAddr, _ := newSimpleServer(cert.Version1, ca, caKey, "them", "10.128.0.2/24", nil)
@@ -113,7 +97,7 @@ func TestGoodHandshake(t *testing.T) {
theirControl.Start()
t.Log("Send a udp packet through to begin standing up the tunnel, this should come out the other side")
myControl.InjectTunPacket(BuildTunUDPPacket(theirVpnIpNet[0].Addr(), 80, myVpnIpNet[0].Addr(), 80, []byte("Hi from me")))
myControl.InjectTunUDPPacket(theirVpnIpNet[0].Addr(), 80, myVpnIpNet[0].Addr(), 80, []byte("Hi from me"))
t.Log("Have them consume my stage 0 packet. They have a tunnel now")
theirControl.InjectUDPPacket(myControl.GetFromUDP(true))
@@ -151,7 +135,6 @@ func TestGoodHandshake(t *testing.T) {
}
func TestGoodHandshakeNoOverlap(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, myUdpAddr, _ := newSimpleServer(cert.Version2, ca, caKey, "me", "10.128.0.1/24", nil)
theirControl, theirVpnIpNet, theirUdpAddr, _ := newSimpleServer(cert.Version2, ca, caKey, "them", "2001::69/24", nil) //look ma, cross-stack!
@@ -187,7 +170,6 @@ func TestGoodHandshakeNoOverlap(t *testing.T) {
}
func TestWrongResponderHandshake(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{})
myControl, myVpnIpNet, myUdpAddr, _ := newSimpleServer(cert.Version1, ca, caKey, "me", "10.128.0.100/24", nil)
@@ -207,7 +189,7 @@ func TestWrongResponderHandshake(t *testing.T) {
evilControl.Start()
t.Log("Start the handshake process, we will route until we see the evil tunnel closed")
myControl.InjectTunPacket(BuildTunUDPPacket(theirVpnIpNet[0].Addr(), 80, myVpnIpNet[0].Addr(), 80, []byte("Hi from me")))
myControl.InjectTunUDPPacket(theirVpnIpNet[0].Addr(), 80, myVpnIpNet[0].Addr(), 80, []byte("Hi from me"))
h := &header.H{}
r.RouteForAllExitFunc(func(p *udp.Packet, c *nebula.Control) router.ExitType {
@@ -264,7 +246,6 @@ func TestWrongResponderHandshake(t *testing.T) {
}
func TestWrongResponderHandshakeStaticHostMap(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{})
theirControl, theirVpnIpNet, theirUdpAddr, _ := newSimpleServer(cert.Version1, ca, caKey, "them", "10.128.0.99/24", nil)
@@ -289,7 +270,7 @@ func TestWrongResponderHandshakeStaticHostMap(t *testing.T) {
evilControl.Start()
t.Log("Start the handshake process, we will route until we see the evil tunnel closed")
myControl.InjectTunPacket(BuildTunUDPPacket(theirVpnIpNet[0].Addr(), 80, myVpnIpNet[0].Addr(), 80, []byte("Hi from me")))
myControl.InjectTunUDPPacket(theirVpnIpNet[0].Addr(), 80, myVpnIpNet[0].Addr(), 80, []byte("Hi from me"))
h := &header.H{}
r.RouteForAllExitFunc(func(p *udp.Packet, c *nebula.Control) router.ExitType {
@@ -347,7 +328,6 @@ func TestWrongResponderHandshakeStaticHostMap(t *testing.T) {
}
func TestStage1Race(t *testing.T) {
t.Parallel()
// This tests ensures that two hosts handshaking with each other at the same time will allow traffic to flow
// But will eventually collapse down to a single tunnel
@@ -368,8 +348,8 @@ func TestStage1Race(t *testing.T) {
theirControl.Start()
t.Log("Trigger a handshake to start on both me and them")
myControl.InjectTunPacket(BuildTunUDPPacket(theirVpnIpNet[0].Addr(), 80, myVpnIpNet[0].Addr(), 80, []byte("Hi from me")))
theirControl.InjectTunPacket(BuildTunUDPPacket(myVpnIpNet[0].Addr(), 80, theirVpnIpNet[0].Addr(), 80, []byte("Hi from them")))
myControl.InjectTunUDPPacket(theirVpnIpNet[0].Addr(), 80, myVpnIpNet[0].Addr(), 80, []byte("Hi from me"))
theirControl.InjectTunUDPPacket(myVpnIpNet[0].Addr(), 80, theirVpnIpNet[0].Addr(), 80, []byte("Hi from them"))
t.Log("Get both stage 1 handshake packets")
myHsForThem := myControl.GetFromUDP(true)
@@ -428,7 +408,6 @@ func TestStage1Race(t *testing.T) {
}
func TestUncleanShutdownRaceLoser(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{})
myControl, myVpnIpNet, myUdpAddr, _ := newSimpleServer(cert.Version1, ca, caKey, "me ", "10.128.0.1/24", nil)
theirControl, theirVpnIpNet, theirUdpAddr, _ := newSimpleServer(cert.Version1, ca, caKey, "them", "10.128.0.2/24", nil)
@@ -446,7 +425,7 @@ func TestUncleanShutdownRaceLoser(t *testing.T) {
theirControl.Start()
r.Log("Trigger a handshake from me to them")
myControl.InjectTunPacket(BuildTunUDPPacket(theirVpnIpNet[0].Addr(), 80, myVpnIpNet[0].Addr(), 80, []byte("Hi from me")))
myControl.InjectTunUDPPacket(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)
@@ -457,7 +436,7 @@ func TestUncleanShutdownRaceLoser(t *testing.T) {
myHostmap.Indexes = map[uint32]*nebula.HostInfo{}
myHostmap.RemoteIndexes = map[uint32]*nebula.HostInfo{}
myControl.InjectTunPacket(BuildTunUDPPacket(theirVpnIpNet[0].Addr(), 80, myVpnIpNet[0].Addr(), 80, []byte("Hi from me again")))
myControl.InjectTunUDPPacket(theirVpnIpNet[0].Addr(), 80, myVpnIpNet[0].Addr(), 80, []byte("Hi from me again"))
p = r.RouteForAllUntilTxTun(theirControl)
assertUdpPacket(t, []byte("Hi from me again"), p, myVpnIpNet[0].Addr(), theirVpnIpNet[0].Addr(), 80, 80)
@@ -478,7 +457,6 @@ func TestUncleanShutdownRaceLoser(t *testing.T) {
}
func TestUncleanShutdownRaceWinner(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{})
myControl, myVpnIpNet, myUdpAddr, _ := newSimpleServer(cert.Version1, ca, caKey, "me ", "10.128.0.1/24", nil)
theirControl, theirVpnIpNet, theirUdpAddr, _ := newSimpleServer(cert.Version1, ca, caKey, "them", "10.128.0.2/24", nil)
@@ -496,7 +474,7 @@ func TestUncleanShutdownRaceWinner(t *testing.T) {
theirControl.Start()
r.Log("Trigger a handshake from me to them")
myControl.InjectTunPacket(BuildTunUDPPacket(theirVpnIpNet[0].Addr(), 80, myVpnIpNet[0].Addr(), 80, []byte("Hi from me")))
myControl.InjectTunUDPPacket(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)
@@ -508,7 +486,7 @@ func TestUncleanShutdownRaceWinner(t *testing.T) {
theirHostmap.Indexes = map[uint32]*nebula.HostInfo{}
theirHostmap.RemoteIndexes = map[uint32]*nebula.HostInfo{}
theirControl.InjectTunPacket(BuildTunUDPPacket(myVpnIpNet[0].Addr(), 80, theirVpnIpNet[0].Addr(), 80, []byte("Hi from them again")))
theirControl.InjectTunUDPPacket(myVpnIpNet[0].Addr(), 80, theirVpnIpNet[0].Addr(), 80, []byte("Hi from them again"))
p = r.RouteForAllUntilTxTun(myControl)
assertUdpPacket(t, []byte("Hi from them again"), p, theirVpnIpNet[0].Addr(), myVpnIpNet[0].Addr(), 80, 80)
r.RenderHostmaps("Derp hostmaps", myControl, theirControl)
@@ -530,7 +508,6 @@ func TestUncleanShutdownRaceWinner(t *testing.T) {
}
func TestRelays(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{})
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}})
@@ -551,7 +528,7 @@ func TestRelays(t *testing.T) {
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")))
myControl.InjectTunUDPPacket(theirVpnIpNet[0].Addr(), 80, myVpnIpNet[0].Addr(), 80, []byte("Hi from me"))
p := r.RouteForAllUntilTxTun(theirControl)
r.Log("Assert the tunnel works")
@@ -560,7 +537,6 @@ func TestRelays(t *testing.T) {
}
func TestRelaysDontCareAboutIps(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", m{"relay": m{"use_relays": true}})
relayControl, relayVpnIpNet, relayUdpAddr, _ := newSimpleServer(cert.Version2, ca, caKey, "relay ", "2001::9999/24", m{"relay": m{"am_relay": true}})
@@ -581,7 +557,7 @@ func TestRelaysDontCareAboutIps(t *testing.T) {
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")))
myControl.InjectTunUDPPacket(theirVpnIpNet[0].Addr(), 80, myVpnIpNet[0].Addr(), 80, []byte("Hi from me"))
p := r.RouteForAllUntilTxTun(theirControl)
r.Log("Assert the tunnel works")
@@ -590,7 +566,6 @@ func TestRelaysDontCareAboutIps(t *testing.T) {
}
func TestReestablishRelays(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{})
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}})
@@ -611,14 +586,14 @@ func TestReestablishRelays(t *testing.T) {
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")))
myControl.InjectTunUDPPacket(theirVpnIpNet[0].Addr(), 80, myVpnIpNet[0].Addr(), 80, []byte("Hi from me"))
p := r.RouteForAllUntilTxTun(theirControl)
r.Log("Assert the tunnel works")
assertUdpPacket(t, []byte("Hi from me"), p, myVpnIpNet[0].Addr(), theirVpnIpNet[0].Addr(), 80, 80)
t.Log("Ensure packet traversal from them to me via the relay")
theirControl.InjectTunPacket(BuildTunUDPPacket(myVpnIpNet[0].Addr(), 80, theirVpnIpNet[0].Addr(), 80, []byte("Hi from them")))
theirControl.InjectTunUDPPacket(myVpnIpNet[0].Addr(), 80, theirVpnIpNet[0].Addr(), 80, []byte("Hi from them"))
p = r.RouteForAllUntilTxTun(myControl)
r.Log("Assert the tunnel works")
@@ -633,7 +608,7 @@ func TestReestablishRelays(t *testing.T) {
for curIndexes >= start {
curIndexes = len(myControl.GetHostmap().Indexes)
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")))
myControl.InjectTunUDPPacket(theirVpnIpNet[0].Addr(), 80, myVpnIpNet[0].Addr(), 80, []byte("Hi from me should fail"))
r.RouteForAllExitFunc(func(p *udp.Packet, c *nebula.Control) router.ExitType {
return router.RouteAndExit
@@ -650,7 +625,7 @@ func TestReestablishRelays(t *testing.T) {
myControl.InjectLightHouseAddr(relayVpnIpNet[0].Addr(), relayUdpAddr)
myControl.InjectRelays(theirVpnIpNet[0].Addr(), []netip.Addr{relayVpnIpNet[0].Addr()})
relayControl.InjectLightHouseAddr(theirVpnIpNet[0].Addr(), theirUdpAddr)
myControl.InjectTunPacket(BuildTunUDPPacket(theirVpnIpNet[0].Addr(), 80, myVpnIpNet[0].Addr(), 80, []byte("Hi from me")))
myControl.InjectTunUDPPacket(theirVpnIpNet[0].Addr(), 80, myVpnIpNet[0].Addr(), 80, []byte("Hi from me"))
p = r.RouteForAllUntilTxTun(theirControl)
r.Log("Assert the tunnel works")
@@ -685,7 +660,7 @@ func TestReestablishRelays(t *testing.T) {
t.Log("Assert the tunnel works the other way, too")
for {
t.Log("RouteForAllUntilTxTun")
theirControl.InjectTunPacket(BuildTunUDPPacket(myVpnIpNet[0].Addr(), 80, theirVpnIpNet[0].Addr(), 80, []byte("Hi from them")))
theirControl.InjectTunUDPPacket(myVpnIpNet[0].Addr(), 80, theirVpnIpNet[0].Addr(), 80, []byte("Hi from them"))
p = r.RouteForAllUntilTxTun(myControl)
r.Log("Assert the tunnel works")
@@ -722,7 +697,6 @@ func TestReestablishRelays(t *testing.T) {
}
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
ca, _, caKey, _ := cert_test.NewTestCaCert(cert.Version1, cert.Curve_CURVE25519, time.Now(), time.Now().Add(10*time.Minute), nil, nil, []string{})
myControl, myVpnIpNet, myUdpAddr, _ := newSimpleServer(cert.Version1, ca, caKey, "me ", "10.128.0.1/24", m{"relay": m{"use_relays": true}})
@@ -755,8 +729,8 @@ func TestStage1RaceRelays(t *testing.T) {
assertTunnel(t, theirVpnIpNet[0].Addr(), relayVpnIpNet[0].Addr(), theirControl, relayControl, r)
r.Log("Trigger a handshake from both them and me via relay to them and me")
myControl.InjectTunPacket(BuildTunUDPPacket(theirVpnIpNet[0].Addr(), 80, myVpnIpNet[0].Addr(), 80, []byte("Hi from me")))
theirControl.InjectTunPacket(BuildTunUDPPacket(myVpnIpNet[0].Addr(), 80, theirVpnIpNet[0].Addr(), 80, []byte("Hi from them")))
myControl.InjectTunUDPPacket(theirVpnIpNet[0].Addr(), 80, myVpnIpNet[0].Addr(), 80, []byte("Hi from me"))
theirControl.InjectTunUDPPacket(myVpnIpNet[0].Addr(), 80, theirVpnIpNet[0].Addr(), 80, []byte("Hi from them"))
r.Log("Wait for a packet from them to me")
p := r.RouteForAllUntilTxTun(myControl)
@@ -770,12 +744,12 @@ func TestStage1RaceRelays(t *testing.T) {
}
func TestStage1RaceRelays2(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
ca, _, caKey, _ := cert_test.NewTestCaCert(cert.Version1, cert.Curve_CURVE25519, time.Now(), time.Now().Add(10*time.Minute), nil, nil, []string{})
myControl, myVpnIpNet, myUdpAddr, _ := 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}})
l := NewTestLogger()
// Teach my how to get to the relay and that their can be reached via the relay
myControl.InjectLightHouseAddr(relayVpnIpNet[0].Addr(), relayUdpAddr)
@@ -797,41 +771,49 @@ func TestStage1RaceRelays2(t *testing.T) {
theirControl.Start()
r.Log("Get a tunnel between me and relay")
l.Info("Get a tunnel between me and relay")
assertTunnel(t, myVpnIpNet[0].Addr(), relayVpnIpNet[0].Addr(), myControl, relayControl, r)
r.Log("Get a tunnel between them and relay")
l.Info("Get a tunnel between them and relay")
assertTunnel(t, theirVpnIpNet[0].Addr(), relayVpnIpNet[0].Addr(), theirControl, relayControl, r)
r.Log("Trigger a handshake from both them and me via relay to them and me")
myControl.InjectTunPacket(BuildTunUDPPacket(theirVpnIpNet[0].Addr(), 80, myVpnIpNet[0].Addr(), 80, []byte("Hi from me")))
theirControl.InjectTunPacket(BuildTunUDPPacket(myVpnIpNet[0].Addr(), 80, theirVpnIpNet[0].Addr(), 80, []byte("Hi from them")))
l.Info("Trigger a handshake from both them and me via relay to them and me")
myControl.InjectTunUDPPacket(theirVpnIpNet[0].Addr(), 80, myVpnIpNet[0].Addr(), 80, []byte("Hi from me"))
theirControl.InjectTunUDPPacket(myVpnIpNet[0].Addr(), 80, theirVpnIpNet[0].Addr(), 80, []byte("Hi from them"))
//r.RouteUntilAfterMsgType(myControl, header.Control, header.MessageNone)
//r.RouteUntilAfterMsgType(theirControl, header.Control, header.MessageNone)
r.Log("Wait for a packet from them to me; myControl")
r.Log("Wait for a packet from them to me")
l.Info("Wait for a packet from them to me; myControl")
r.RouteForAllUntilTxTun(myControl)
r.Log("Wait for a packet from them to me; theirControl")
l.Info("Wait for a packet from them to me; theirControl")
r.RouteForAllUntilTxTun(theirControl)
r.Log("Assert the tunnel works")
l.Info("Assert the tunnel works")
assertTunnel(t, theirVpnIpNet[0].Addr(), myVpnIpNet[0].Addr(), theirControl, myControl, r)
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),
)
l.Info("Wait until we remove extra tunnels")
l.WithFields(
logrus.Fields{
"myControl": len(myControl.GetHostmap().Indexes),
"theirControl": len(theirControl.GetHostmap().Indexes),
"relayControl": len(relayControl.GetHostmap().Indexes),
}).Info("Waiting for hostinfos to be removed...")
hostInfos := len(myControl.GetHostmap().Indexes) + len(theirControl.GetHostmap().Indexes) + len(relayControl.GetHostmap().Indexes)
retries := 60
for hostInfos > 6 && retries > 0 {
hostInfos = len(myControl.GetHostmap().Indexes) + len(theirControl.GetHostmap().Indexes) + len(relayControl.GetHostmap().Indexes)
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),
)
l.WithFields(
logrus.Fields{
"myControl": len(myControl.GetHostmap().Indexes),
"theirControl": len(theirControl.GetHostmap().Indexes),
"relayControl": len(relayControl.GetHostmap().Indexes),
}).Info("Waiting for hostinfos to be removed...")
assertTunnel(t, myVpnIpNet[0].Addr(), theirVpnIpNet[0].Addr(), myControl, theirControl, r)
t.Log("Connection manager hasn't ticked yet")
time.Sleep(time.Second)
@@ -839,6 +821,7 @@ func TestStage1RaceRelays2(t *testing.T) {
}
r.Log("Assert the tunnel works")
l.Info("Assert the tunnel works")
assertTunnel(t, theirVpnIpNet[0].Addr(), myVpnIpNet[0].Addr(), theirControl, myControl, r)
myControl.Stop()
@@ -847,7 +830,6 @@ func TestStage1RaceRelays2(t *testing.T) {
}
func TestRehandshakingRelays(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{})
myControl, myVpnIpNet, _, _ := newSimpleServer(cert.Version1, ca, caKey, "me ", "10.128.0.1/24", m{"relay": m{"use_relays": true}})
relayControl, relayVpnIpNet, relayUdpAddr, relayConfig := newSimpleServer(cert.Version1, ca, caKey, "relay ", "10.128.0.128/24", m{"relay": m{"am_relay": true}})
@@ -868,7 +850,7 @@ func TestRehandshakingRelays(t *testing.T) {
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")))
myControl.InjectTunUDPPacket(theirVpnIpNet[0].Addr(), 80, myVpnIpNet[0].Addr(), 80, []byte("Hi from me"))
p := r.RouteForAllUntilTxTun(theirControl)
r.Log("Assert the tunnel works")
@@ -951,7 +933,6 @@ func TestRehandshakingRelays(t *testing.T) {
}
func TestRehandshakingRelaysPrimary(t *testing.T) {
t.Parallel()
// This test is the same as TestRehandshakingRelays but one of the terminal types is a primary swap winner
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 ", "10.128.0.128/24", m{"relay": m{"use_relays": true}})
@@ -973,7 +954,7 @@ func TestRehandshakingRelaysPrimary(t *testing.T) {
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")))
myControl.InjectTunUDPPacket(theirVpnIpNet[0].Addr(), 80, myVpnIpNet[0].Addr(), 80, []byte("Hi from me"))
p := r.RouteForAllUntilTxTun(theirControl)
r.Log("Assert the tunnel works")
@@ -1056,7 +1037,6 @@ func TestRehandshakingRelaysPrimary(t *testing.T) {
}
func TestRehandshaking(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{})
myControl, myVpnIpNet, myUdpAddr, myConfig := newSimpleServer(cert.Version1, ca, caKey, "me ", "10.128.0.2/24", nil)
theirControl, theirVpnIpNet, theirUdpAddr, theirConfig := newSimpleServer(cert.Version1, ca, caKey, "them", "10.128.0.1/24", nil)
@@ -1152,7 +1132,6 @@ func TestRehandshaking(t *testing.T) {
}
func TestRehandshakingLoser(t *testing.T) {
t.Parallel()
// The purpose of this test is that the race loser renews their certificate and rehandshakes. The final tunnel
// Should be the one with the new certificate
ca, _, caKey, _ := cert_test.NewTestCaCert(cert.Version1, cert.Curve_CURVE25519, time.Now(), time.Now().Add(10*time.Minute), nil, nil, []string{})
@@ -1251,7 +1230,6 @@ func TestRehandshakingLoser(t *testing.T) {
}
func TestRaceRegression(t *testing.T) {
t.Parallel()
// This test forces stage 1, stage 2, stage 1 to be received by me from them
// We had a bug where we were not finding the duplicate handshake and responding to the final stage 1 which
// caused a cross-linked hostinfo
@@ -1275,8 +1253,8 @@ func TestRaceRegression(t *testing.T) {
//them rx stage:2 initiatorIndex=120607833 responderIndex=4209862089
t.Log("Start both handshakes")
myControl.InjectTunPacket(BuildTunUDPPacket(theirVpnIpNet[0].Addr(), 80, myVpnIpNet[0].Addr(), 80, []byte("Hi from me")))
theirControl.InjectTunPacket(BuildTunUDPPacket(myVpnIpNet[0].Addr(), 80, theirVpnIpNet[0].Addr(), 80, []byte("Hi from them")))
myControl.InjectTunUDPPacket(theirVpnIpNet[0].Addr(), 80, myVpnIpNet[0].Addr(), 80, []byte("Hi from me"))
theirControl.InjectTunUDPPacket(myVpnIpNet[0].Addr(), 80, theirVpnIpNet[0].Addr(), 80, []byte("Hi from them"))
t.Log("Get both stage 1")
myStage1ForThem := myControl.GetFromUDP(true)
@@ -1312,7 +1290,6 @@ func TestRaceRegression(t *testing.T) {
}
func TestV2NonPrimaryWithLighthouse(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, ff::1/64", m{"lighthouse": m{"am_lighthouse": true}})
@@ -1353,7 +1330,6 @@ func TestV2NonPrimaryWithLighthouse(t *testing.T) {
}
func TestV2NonPrimaryWithOffNetLighthouse(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 ", "2001::1/64", m{"lighthouse": m{"am_lighthouse": true}})
@@ -1393,84 +1369,7 @@ func TestV2NonPrimaryWithOffNetLighthouse(t *testing.T) {
theirControl.Stop()
}
func TestLighthouseUpdateOnReload(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{})
// Create the lighthouse
lhControl, lhVpnIpNet, lhUdpAddr, _ := newSimpleServer(cert.Version2, ca, caKey, "lh", "10.128.0.1/24", m{"lighthouse": m{"am_lighthouse": true}})
// Create a client with NO lighthouse configured and a long update interval.
// The initial SendUpdate at startup will be a no-op since no lighthouses are known.
myControl, myVpnIpNet, _, myConfig := newSimpleServer(cert.Version2, ca, caKey, "me", "10.128.0.2/24", m{
"lighthouse": m{
"interval": 600,
"local_allow_list": m{
"10.0.0.0/24": true,
"::/0": false,
},
},
})
r := router.NewR(t, lhControl, myControl)
defer r.RenderFlow()
lhControl.Start()
myControl.Start()
// Drain any startup packets (there should be none meaningful)
r.FlushAll()
// Verify lighthouse has no knowledge of the client
assert.Nil(t, lhControl.QueryLighthouse(myVpnIpNet[0].Addr()))
// Build a new config that adds the lighthouse
newSettings := make(m)
for k, v := range myConfig.Settings {
newSettings[k] = v
}
newSettings["static_host_map"] = m{
lhVpnIpNet[0].Addr().String(): []any{lhUdpAddr.String()},
}
newSettings["lighthouse"] = m{
"hosts": []any{lhVpnIpNet[0].Addr().String()},
"interval": 600,
"local_allow_list": m{
"10.0.0.0/24": true,
"::/0": false,
},
}
newCfg, err := yaml.Marshal(newSettings)
require.NoError(t, err)
// Reload the config. The lighthouse.hosts change triggers TriggerUpdate,
// which wakes the update worker. It calls SendUpdate, initiating a
// handshake to the new lighthouse and caching the HostUpdateNotification.
require.NoError(t, myConfig.ReloadConfigString(string(newCfg)))
// Route until the lighthouse receives the HostUpdateNotification.
// This covers: handshake stage 1, stage 2, then the cached update.
done := make(chan struct{})
go func() {
r.RouteForAllUntilAfterMsgTypeTo(lhControl, header.LightHouse, 0)
close(done)
}()
select {
case <-done:
case <-time.After(5 * time.Second):
t.Fatal("timed out waiting for lighthouse update after config reload")
}
// Verify lighthouse now has the client's addresses
assert.NotNil(t, lhControl.QueryLighthouse(myVpnIpNet[0].Addr()))
r.RenderHostmaps("Final hostmaps", lhControl, myControl)
lhControl.Stop()
myControl.Stop()
}
func TestGoodHandshakeUnsafeDest(t *testing.T) {
t.Parallel()
unsafePrefix := "192.168.6.0/24"
ca, _, caKey, _ := cert_test.NewTestCaCert(cert.Version2, cert.Curve_CURVE25519, time.Now(), time.Now().Add(10*time.Minute), nil, nil, []string{})
theirControl, theirVpnIpNet, theirUdpAddr, _ := newSimpleServerWithUdpAndUnsafeNetworks(cert.Version2, ca, caKey, "spooky", "10.128.0.2/24", netip.MustParseAddrPort("10.64.0.2:4242"), unsafePrefix, nil)
@@ -1492,7 +1391,7 @@ func TestGoodHandshakeUnsafeDest(t *testing.T) {
theirControl.Start()
t.Log("Send a udp packet through to begin standing up the tunnel, this should come out the other side")
myControl.InjectTunPacket(BuildTunUDPPacket(spookyDest, 80, myVpnIpNet[0].Addr(), 80, []byte("Hi from me")))
myControl.InjectTunUDPPacket(spookyDest, 80, myVpnIpNet[0].Addr(), 80, []byte("Hi from me"))
t.Log("Have them consume my stage 0 packet. They have a tunnel now")
theirControl.InjectUDPPacket(myControl.GetFromUDP(true))
@@ -1520,7 +1419,7 @@ func TestGoodHandshakeUnsafeDest(t *testing.T) {
assertUdpPacket(t, []byte("Hi from me"), myCachedPacket, myVpnIpNet[0].Addr(), spookyDest, 80, 80)
//reply
theirControl.InjectTunPacket(BuildTunUDPPacket(myVpnIpNet[0].Addr(), 80, spookyDest, 80, []byte("Hi from the spookyman")))
theirControl.InjectTunUDPPacket(myVpnIpNet[0].Addr(), 80, spookyDest, 80, []byte("Hi from the spookyman"))
//wait for reply
theirControl.WaitForType(1, 0, myControl)
theirCachedPacket := myControl.GetFromTun(true)
+21 -82
View File
@@ -4,7 +4,8 @@
package e2e
import (
"log/slog"
"fmt"
"io"
"net/netip"
"os"
"strings"
@@ -14,13 +15,12 @@ import (
"dario.cat/mergo"
"github.com/google/gopacket"
"github.com/google/gopacket/layers"
"github.com/sirupsen/logrus"
"github.com/slackhq/nebula"
"github.com/slackhq/nebula/cert"
"github.com/slackhq/nebula/cert_test"
"github.com/slackhq/nebula/config"
"github.com/slackhq/nebula/e2e/router"
"github.com/slackhq/nebula/logging"
"github.com/stretchr/testify/assert"
"github.com/stretchr/testify/require"
"go.yaml.in/yaml/v3"
@@ -132,7 +132,8 @@ func newSimpleServerWithUdpAndUnsafeNetworks(v cert.Version, caCrt cert.Certific
"port": udpAddr.Port(),
},
"logging": m{
"level": testLogLevelName(),
"timestamp_format": fmt.Sprintf("%v 15:04:05.000000", name),
"level": l.Level.String(),
},
"timers": m{
"pending_deletion_interval": 2,
@@ -233,7 +234,8 @@ func newServer(caCrt []cert.Certificate, certs []cert.Certificate, key []byte, o
"port": udpAddr.Port(),
},
"logging": m{
"level": testLogLevelName(),
"timestamp_format": fmt.Sprintf("%v 15:04:05.000000", certs[0].Name()),
"level": l.Level.String(),
},
"timers": m{
"pending_deletion_interval": 2,
@@ -292,12 +294,12 @@ func deadline(t *testing.T, seconds time.Duration) doneCb {
func assertTunnel(t testing.TB, vpnIpA, vpnIpB netip.Addr, controlA, controlB *nebula.Control, r *router.R) {
// Send a packet from them to me
controlB.InjectTunPacket(BuildTunUDPPacket(vpnIpA, 80, vpnIpB, 90, []byte("Hi from B")))
controlB.InjectTunUDPPacket(vpnIpA, 80, vpnIpB, 90, []byte("Hi from B"))
bPacket := r.RouteForAllUntilTxTun(controlA)
assertUdpPacket(t, []byte("Hi from B"), bPacket, vpnIpB, vpnIpA, 90, 80)
// And once more from me to them
controlA.InjectTunPacket(BuildTunUDPPacket(vpnIpB, 80, vpnIpA, 90, []byte("Hello from A")))
controlA.InjectTunUDPPacket(vpnIpB, 80, vpnIpA, 90, []byte("Hello from A"))
aPacket := r.RouteForAllUntilTxTun(controlB)
assertUdpPacket(t, []byte("Hello from A"), aPacket, vpnIpA, vpnIpB, 90, 80)
}
@@ -377,87 +379,24 @@ func getAddrs(ns []netip.Prefix) []netip.Addr {
return a
}
func NewTestLogger() *slog.Logger {
func NewTestLogger() *logrus.Logger {
l := logrus.New()
v := os.Getenv("TEST_LOGS")
if v == "" {
return slog.New(slog.DiscardHandler)
l.SetOutput(io.Discard)
l.SetLevel(logrus.PanicLevel)
return l
}
level := slog.LevelInfo
switch v {
case "2":
level = slog.LevelDebug
l.SetLevel(logrus.DebugLevel)
case "3":
level = logging.LevelTrace
l.SetLevel(logrus.TraceLevel)
default:
l.SetLevel(logrus.InfoLevel)
}
return slog.New(slog.NewTextHandler(os.Stderr, &slog.HandlerOptions{Level: level}))
}
// testLogLevelName returns the level name string accepted by logging.ApplyConfig
// for the current TEST_LOGS setting. Kept in sync with NewTestLogger.
func testLogLevelName() string {
switch os.Getenv("TEST_LOGS") {
case "2":
return "debug"
case "3":
return "trace"
case "":
return "info"
}
return "info"
}
// BuildTunUDPPacket assembles an IP+UDP packet suitable for Control.InjectTunPacket.
// Using UDP here because it's a simpler protocol.
func BuildTunUDPPacket(toAddr netip.Addr, toPort uint16, fromAddr netip.Addr, fromPort uint16, data []byte) []byte {
serialize := make([]gopacket.SerializableLayer, 0)
var netLayer gopacket.NetworkLayer
if toAddr.Is6() {
if !fromAddr.Is6() {
panic("Cant send ipv6 to ipv4")
}
ip := &layers.IPv6{
Version: 6,
NextHeader: layers.IPProtocolUDP,
SrcIP: fromAddr.Unmap().AsSlice(),
DstIP: toAddr.Unmap().AsSlice(),
}
serialize = append(serialize, ip)
netLayer = ip
} else {
if !fromAddr.Is4() {
panic("Cant send ipv4 to ipv6")
}
ip := &layers.IPv4{
Version: 4,
TTL: 64,
Protocol: layers.IPProtocolUDP,
SrcIP: fromAddr.Unmap().AsSlice(),
DstIP: toAddr.Unmap().AsSlice(),
}
serialize = append(serialize, ip)
netLayer = ip
}
udp := layers.UDP{
SrcPort: layers.UDPPort(fromPort),
DstPort: layers.UDPPort(toPort),
}
if err := udp.SetNetworkLayerForChecksum(netLayer); err != nil {
panic(err)
}
buffer := gopacket.NewSerializeBuffer()
opt := gopacket.SerializeOptions{
ComputeChecksums: true,
FixLengths: true,
}
serialize = append(serialize, &udp, gopacket.Payload(data))
if err := gopacket.SerializeLayers(buffer, opt, serialize...); err != nil {
panic(err)
}
return buffer.Bytes()
return l
}
-47
View File
@@ -1,47 +0,0 @@
//go:build e2e_testing
// +build e2e_testing
package e2e
import (
"testing"
"time"
"github.com/slackhq/nebula/cert"
"github.com/slackhq/nebula/cert_test"
"github.com/slackhq/nebula/e2e/router"
"go.uber.org/goleak"
)
// TestNoGoroutineLeaks brings up two nebula instances, completes a tunnel,
// stops both, and asserts no goroutines leak past the shutdown. goleak's
// retry mechanism gives the wg.Wait()-driven goroutines a moment to drain
// before failing the assertion.
//
// Intentionally NOT t.Parallel()'d: concurrent tests would have their own
// goroutines running and trip the assertion.
func TestNoGoroutineLeaks(t *testing.T) {
defer goleak.VerifyNone(t)
ca, _, caKey, _ := cert_test.NewTestCaCert(cert.Version1, cert.Curve_CURVE25519, time.Now(), time.Now().Add(10*time.Minute), nil, nil, []string{})
myControl, myVpnIpNet, myUdpAddr, _ := newSimpleServer(cert.Version1, ca, caKey, "me", "10.128.0.1/24", nil)
theirControl, theirVpnIpNet, theirUdpAddr, _ := newSimpleServer(cert.Version1, ca, caKey, "them", "10.128.0.2/24", nil)
myControl.InjectLightHouseAddr(theirVpnIpNet[0].Addr(), theirUdpAddr)
theirControl.InjectLightHouseAddr(myVpnIpNet[0].Addr(), myUdpAddr)
myControl.Start()
theirControl.Start()
r := router.NewR(t, myControl, theirControl)
assertTunnel(t, myVpnIpNet[0].Addr(), theirVpnIpNet[0].Addr(), myControl, theirControl, r)
myControl.Stop()
theirControl.Stop()
r.RenderFlow()
// Settle period: Stop() is non-blocking; the wg-driven goroutines need
// a moment to drain. goleak retries internally too, but a short explicit
// settle reduces flakes when the suite is busy.
time.Sleep(50 * time.Millisecond)
}
+54 -188
View File
@@ -13,7 +13,6 @@ import (
"regexp"
"sort"
"sync"
"sync/atomic"
"testing"
"time"
@@ -25,19 +24,6 @@ import (
"golang.org/x/exp/maps"
)
// outNatKey is the (from, to) pair used by outNat. Comparable struct, so it works as a map key without the
// allocation cost of a string-concat key.
type outNatKey struct {
from, to netip.AddrPort
}
// fannedPacket pairs a UDP TX packet with its source control so the router can route it after popping from
// the fan-in channel.
type fannedPacket struct {
from *nebula.Control
pkt *udp.Packet
}
type R struct {
// Simple map of the ip:port registered on a control to the control
// Basically a router, right?
@@ -48,28 +34,12 @@ type R struct {
// A last used map, if an inbound packet hit the inNat map then
// all return packets should use the same last used inbound address for the outbound sender
outNat map[outNatKey]netip.AddrPort
// map[from address + ":" + to address] => ip:port to rewrite in the udp packet to receiver
outNat map[string]netip.AddrPort
// A map of vpn ip to the nebula control it belongs to
vpnControls map[netip.Addr]*nebula.Control
// Cached select infrastructure for RouteForAllUntilTxTun.
// The controls map is immutable after NewR so the cases are good for the test lifetime.
// We only rebuild if a different receiver is asked.
selRecvCtl *nebula.Control
selCases []reflect.SelectCase
selCtls []*nebula.Control
// Optional fan-in mode for hot-path benchmarks: one forwarder goroutine per control drains UDP TX into udpFanIn,
// so RouteForAllUntilTxTun can do a fixed 2-way native select instead of paying reflect.Select per call.
// Off by default (would otherwise interleave with tests that use GetFromUDP directly on the same control).
// Enabled by EnableFanIn.
udpFanIn chan fannedPacket
stopFanIn chan struct{}
fanInWG sync.WaitGroup
fanInMu sync.Mutex
fanInOn atomic.Bool
ignoreFlows []ignoreFlow
flow []flowEntry
@@ -149,7 +119,7 @@ func NewR(t testing.TB, controls ...*nebula.Control) *R {
controls: make(map[netip.AddrPort]*nebula.Control),
vpnControls: make(map[netip.Addr]*nebula.Control),
inNat: make(map[netip.AddrPort]*nebula.Control),
outNat: make(map[outNatKey]netip.AddrPort),
outNat: make(map[string]netip.AddrPort),
flow: []flowEntry{},
ignoreFlows: []ignoreFlow{},
fn: filepath.Join("mermaid", fmt.Sprintf("%s.md", t.Name())),
@@ -183,10 +153,8 @@ func NewR(t testing.TB, controls ...*nebula.Control) *R {
case <-ctx.Done():
return
case <-clockSource.C:
r.Lock()
r.renderHostmaps("clock tick")
r.renderFlow()
r.Unlock()
}
}
}()
@@ -212,21 +180,15 @@ func (r *R) AddRoute(ip netip.Addr, port uint16, c *nebula.Control) {
// RenderFlow renders the packet flow seen up until now and stops further automatic renders from happening.
func (r *R) RenderFlow() {
r.cancelRender()
r.Lock()
defer r.Unlock()
r.renderFlow()
}
// CancelFlowLogs stops flow logs from being tracked and destroys any logs already collected
func (r *R) CancelFlowLogs() {
r.cancelRender()
r.Lock()
r.flow = nil
r.Unlock()
}
// renderFlow writes the flow log to disk. Caller must hold r.Lock. renderFlow reads r.flow / r.additionalGraphs and
// the *packet pointers stashed inside, all of which are mutated under the same lock by routing paths.
func (r *R) renderFlow() {
if r.flow == nil {
return
@@ -472,157 +434,68 @@ func (r *R) RouteUntilTxTun(sender *nebula.Control, receiver *nebula.Control) []
panic("No control for udp tx " + a.String())
}
fp := r.unlockedInjectFlow(sender, c, p, false)
c.InjectUDPPacket(p) // copies internally; original is ours to release
c.InjectUDPPacket(p)
fp.WasReceived()
r.Unlock()
p.Release()
}
}
}
// RouteForAllUntilTxTun will route for everyone and return when a packet is seen on the receiver's tun.
// If a control's UDP TX address can't be matched to a registered control, we panic.
//
// For allocation-sensitive callers (hot-path benchmarks, in particular relay
// benches with 3+ controls), call EnableFanIn() first.
// RouteForAllUntilTxTun will route for everyone and return when a packet is seen on receivers tun
// If the router doesn't have the nebula controller for that address, we panic
func (r *R) RouteForAllUntilTxTun(receiver *nebula.Control) []byte {
if r.fanInOn.Load() {
return r.routeFanIn(receiver)
}
return r.routeReflect(receiver)
}
// routeFanIn is the alloc-free path used when EnableFanIn is in effect.
func (r *R) routeFanIn(receiver *nebula.Control) []byte {
tunTx := receiver.GetTunTxChan()
for {
select {
case p := <-tunTx:
r.Lock()
if r.flow != nil {
np := udp.Packet{Data: make([]byte, len(p))}
copy(np.Data, p)
r.unlockedInjectFlow(receiver, receiver, &np, true)
}
r.Unlock()
return p
case fp := <-r.udpFanIn:
r.routeUDP(fp.from, fp.pkt)
}
}
}
// routeReflect is the default reflect.Select-based path. Pays the boxing allocation per call but doesn't interfere
// with tests that pull packets directly from controls' UDP TX channels via GetFromUDP.
func (r *R) routeReflect(receiver *nebula.Control) []byte {
sc, cm := r.selectCasesFor(receiver)
for {
x, rx, _ := reflect.Select(sc)
if x == 0 {
p := rx.Interface().([]byte)
r.Lock()
if r.flow != nil {
np := udp.Packet{Data: make([]byte, len(p))}
copy(np.Data, p)
r.unlockedInjectFlow(cm[x], cm[x], &np, true)
}
r.Unlock()
return p
}
r.routeUDP(cm[x], rx.Interface().(*udp.Packet))
}
}
// EnableFanIn switches RouteForAllUntilTxTun to the alloc-free fan-in path.
// One forwarder goroutine per registered control drains UDP TX into a shared channel that RouteForAllUntilTxTun selects
// on alongside the receiver's TUN TX channel.
func (r *R) EnableFanIn() {
r.fanInMu.Lock()
defer r.fanInMu.Unlock()
if r.fanInOn.Load() {
return
}
r.udpFanIn = make(chan fannedPacket, 32)
r.stopFanIn = make(chan struct{})
for _, c := range r.controls {
r.startFanInWorker(c)
}
r.fanInOn.Store(true)
r.t.Cleanup(r.stopFanInWorkers)
}
// startFanInWorker spawns a goroutine that drains c's UDP TX into r.udpFanIn.
func (r *R) startFanInWorker(c *nebula.Control) {
r.fanInWG.Add(1)
udpTx := c.GetUDPTxChan()
go func() {
defer r.fanInWG.Done()
for {
select {
case <-r.stopFanIn:
return
case p := <-udpTx:
select {
case <-r.stopFanIn:
p.Release()
return
case r.udpFanIn <- fannedPacket{from: c, pkt: p}:
}
}
}
}()
}
// stopFanInWorkers signals the fan-in goroutines to exit and waits for them.
func (r *R) stopFanInWorkers() {
r.fanInMu.Lock()
wasOn := r.fanInOn.Swap(false)
r.fanInMu.Unlock()
if !wasOn {
return
}
close(r.stopFanIn)
r.fanInWG.Wait()
}
// routeUDP forwards a UDP TX packet from the named source control to the destination control derived from p.To,
// releasing the source packet after InjectUDPPacket has copied its bytes into a fresh pool slot.
func (r *R) routeUDP(from *nebula.Control, p *udp.Packet) {
r.Lock()
defer r.Unlock()
a := from.GetUDPAddr()
c := r.getControl(a, p.To, p)
if c == nil {
panic(fmt.Sprintf("No control for udp tx %s", p.To))
}
fp := r.unlockedInjectFlow(from, c, p, false)
c.InjectUDPPacket(p) // copies internally; original is ours to release
fp.WasReceived()
p.Release()
}
// selectCasesFor returns the SelectCase array used by routeReflect: one slot for the receiver's TUN TX channel followed
// by one per control's UDP TX channel. Cached for the test lifetime, only rebuilt if the receiver changes.
func (r *R) selectCasesFor(receiver *nebula.Control) ([]reflect.SelectCase, []*nebula.Control) {
r.Lock()
defer r.Unlock()
if r.selRecvCtl == receiver && r.selCases != nil {
return r.selCases, r.selCtls
}
sc := make([]reflect.SelectCase, len(r.controls)+1)
cm := make([]*nebula.Control, len(r.controls)+1)
sc[0] = reflect.SelectCase{Dir: reflect.SelectRecv, Chan: reflect.ValueOf(receiver.GetTunTxChan())}
cm[0] = receiver
i := 1
i := 0
sc[i] = reflect.SelectCase{
Dir: reflect.SelectRecv,
Chan: reflect.ValueOf(receiver.GetTunTxChan()),
Send: reflect.Value{},
}
cm[i] = receiver
i++
for _, c := range r.controls {
sc[i] = reflect.SelectCase{Dir: reflect.SelectRecv, Chan: reflect.ValueOf(c.GetUDPTxChan())}
sc[i] = reflect.SelectCase{
Dir: reflect.SelectRecv,
Chan: reflect.ValueOf(c.GetUDPTxChan()),
Send: reflect.Value{},
}
cm[i] = c
i++
}
r.selRecvCtl = receiver
r.selCases = sc
r.selCtls = cm
return sc, cm
for {
x, rx, _ := reflect.Select(sc)
r.Lock()
if x == 0 {
// we are the tun tx, we can exit
p := rx.Interface().([]byte)
np := udp.Packet{Data: make([]byte, len(p))}
copy(np.Data, p)
r.unlockedInjectFlow(cm[x], cm[x], &np, true)
r.Unlock()
return p
} else {
// we are a udp tx, route and continue
p := rx.Interface().(*udp.Packet)
a := cm[x].GetUDPAddr()
c := r.getControl(a, p.To, p)
if c == nil {
r.Unlock()
panic(fmt.Sprintf("No control for udp tx %s", p.To))
}
fp := r.unlockedInjectFlow(cm[x], c, p, false)
c.InjectUDPPacket(p)
fp.WasReceived()
}
r.Unlock()
}
}
// RouteExitFunc will call the whatDo func with each udp packet from sender.
@@ -649,7 +522,6 @@ func (r *R) RouteExitFunc(sender *nebula.Control, whatDo ExitFunc) {
switch e {
case ExitNow:
r.Unlock()
p.Release()
return
case RouteAndExit:
@@ -657,7 +529,6 @@ func (r *R) RouteExitFunc(sender *nebula.Control, whatDo ExitFunc) {
receiver.InjectUDPPacket(p)
fp.WasReceived()
r.Unlock()
p.Release()
return
case KeepRouting:
@@ -670,7 +541,6 @@ func (r *R) RouteExitFunc(sender *nebula.Control, whatDo ExitFunc) {
}
r.Unlock()
p.Release()
}
}
@@ -771,7 +641,6 @@ func (r *R) RouteForAllExitFunc(whatDo ExitFunc) {
switch e {
case ExitNow:
r.Unlock()
p.Release()
return
case RouteAndExit:
@@ -779,7 +648,6 @@ func (r *R) RouteForAllExitFunc(whatDo ExitFunc) {
receiver.InjectUDPPacket(p)
fp.WasReceived()
r.Unlock()
p.Release()
return
case KeepRouting:
@@ -791,7 +659,6 @@ func (r *R) RouteForAllExitFunc(whatDo ExitFunc) {
panic(fmt.Sprintf("Unknown exitFunc return: %v", e))
}
r.Unlock()
p.Release()
}
}
@@ -835,20 +702,19 @@ func (r *R) FlushAll() {
}
receiver.InjectUDPPacket(p)
r.Unlock()
p.Release()
}
}
// getControl performs or seeds NAT translation and returns the control for toAddr, p from fields may change
// This is an internal router function, the caller must hold the lock
func (r *R) getControl(fromAddr, toAddr netip.AddrPort, p *udp.Packet) *nebula.Control {
if newAddr, ok := r.outNat[outNatKey{from: fromAddr, to: toAddr}]; ok {
if newAddr, ok := r.outNat[fromAddr.String()+":"+toAddr.String()]; ok {
p.From = newAddr
}
c, ok := r.inNat[toAddr]
if ok {
r.outNat[outNatKey{from: c.GetUDPAddr(), to: fromAddr}] = toAddr
r.outNat[c.GetUDPAddr().String()+":"+fromAddr.String()] = toAddr
return c
}
-125
View File
@@ -1,125 +0,0 @@
//go:build e2e_testing
// +build e2e_testing
package e2e
import (
"crypto/ed25519"
"crypto/rand"
"encoding/pem"
"net"
"strings"
"testing"
"time"
"github.com/slackhq/nebula/cert"
"github.com/slackhq/nebula/cert_test"
"github.com/stretchr/testify/assert"
"github.com/stretchr/testify/require"
"golang.org/x/crypto/ssh"
)
func TestSSHDLifecycle(t *testing.T) {
// TestSSHDLifecycle exercises the in-process sshd through several config reloads and a Control.Stop.
ca, _, caKey, _ := cert_test.NewTestCaCert(
cert.Version1, cert.Curve_CURVE25519,
time.Now(), time.Now().Add(10*time.Minute),
nil, nil, []string{},
)
hostKeyPEM := generateSSHHostKey(t)
clientSigner, clientAuthKey := generateSSHClientKey(t)
sshdAddr := allocLoopbackPort(t)
overrides := m{
"sshd": m{
"enabled": true,
"listen": sshdAddr,
"host_key": hostKeyPEM,
"authorized_users": []m{{
"user": "tester",
"keys": []string{clientAuthKey},
}},
},
}
control, _, _, _ := newSimpleServer(cert.Version1, ca, caKey, "sshd-test", "10.222.0.1/24", overrides)
control.Start()
t.Cleanup(func() { control.Stop() })
// sshd binds in a goroutine after Start returns; wait for it.
require.Eventually(t, func() bool { return canDial(sshdAddr) }, 2*time.Second, 25*time.Millisecond,
"sshd never started listening")
for i := 1; i <= 3; i++ {
out := sshExecReload(t, sshdAddr, clientSigner)
assert.Contains(t, out, "Reloading config", "reload cycle %d", i)
require.Eventually(t, func() bool { return canDial(sshdAddr) }, 2*time.Second, 25*time.Millisecond,
"sshd not listening after reload cycle %d", i)
}
control.Stop()
require.Eventually(t, func() bool { return !canDial(sshdAddr) }, 2*time.Second, 25*time.Millisecond,
"sshd still listening after Control.Stop")
}
func canDial(addr string) bool {
c, err := net.DialTimeout("tcp", addr, 100*time.Millisecond)
if err != nil {
return false
}
_ = c.Close()
return true
}
// allocLoopbackPort grabs an unused TCP port on 127.0.0.1, closes it, and returns the address. There
// is a small race between releasing the port and the sshd reclaiming it; in practice the OS keeps the
// port available long enough for the test to bind it.
func allocLoopbackPort(t *testing.T) string {
t.Helper()
l, err := net.Listen("tcp", "127.0.0.1:0")
require.NoError(t, err)
addr := l.Addr().String()
require.NoError(t, l.Close())
return addr
}
func generateSSHHostKey(t *testing.T) string {
t.Helper()
_, priv, err := ed25519.GenerateKey(rand.Reader)
require.NoError(t, err)
block, err := ssh.MarshalPrivateKey(priv, "nebula-e2e-host")
require.NoError(t, err)
return string(pem.EncodeToMemory(block))
}
func generateSSHClientKey(t *testing.T) (ssh.Signer, string) {
t.Helper()
_, priv, err := ed25519.GenerateKey(rand.Reader)
require.NoError(t, err)
signer, err := ssh.NewSignerFromKey(priv)
require.NoError(t, err)
auth := strings.TrimSpace(string(ssh.MarshalAuthorizedKey(signer.PublicKey())))
return signer, auth
}
func sshExecReload(t *testing.T, addr string, signer ssh.Signer) string {
t.Helper()
cfg := &ssh.ClientConfig{
User: "tester",
Auth: []ssh.AuthMethod{ssh.PublicKeys(signer)},
HostKeyCallback: ssh.InsecureIgnoreHostKey(),
Timeout: 2 * time.Second,
}
client, err := ssh.Dial("tcp", addr, cfg)
require.NoError(t, err)
defer client.Close()
sess, err := client.NewSession()
require.NoError(t, err)
defer sess.Close()
// reload tears the channel down before sending exit-status, so Output returns an error on the
// channel close. The output buffer still has whatever the reload callback wrote before that.
out, _ := sess.Output("reload")
return string(out)
}
+2 -8
View File
@@ -19,7 +19,6 @@ import (
)
func TestDropInactiveTunnels(t *testing.T) {
t.Parallel()
// The goal of this test is to ensure the shortest inactivity timeout will close the tunnel on both sides
// under ideal conditions
ca, _, caKey, _ := cert_test.NewTestCaCert(cert.Version1, cert.Curve_CURVE25519, time.Now(), time.Now().Add(10*time.Minute), nil, nil, []string{})
@@ -64,7 +63,6 @@ func TestDropInactiveTunnels(t *testing.T) {
}
func TestCertUpgrade(t *testing.T) {
t.Parallel()
// The goal of this test is to ensure the shortest inactivity timeout will close the tunnel on both sides
// under ideal conditions
ca, _, caKey, _ := cert_test.NewTestCaCert(cert.Version1, cert.Curve_CURVE25519, time.Now(), time.Now().Add(10*time.Minute), nil, nil, []string{})
@@ -159,7 +157,6 @@ func TestCertUpgrade(t *testing.T) {
}
func TestCertDowngrade(t *testing.T) {
t.Parallel()
// The goal of this test is to ensure the shortest inactivity timeout will close the tunnel on both sides
// under ideal conditions
ca, _, caKey, _ := cert_test.NewTestCaCert(cert.Version1, cert.Curve_CURVE25519, time.Now(), time.Now().Add(10*time.Minute), nil, nil, []string{})
@@ -258,7 +255,6 @@ func TestCertDowngrade(t *testing.T) {
}
func TestCertMismatchCorrection(t *testing.T) {
t.Parallel()
// The goal of this test is to ensure the shortest inactivity timeout will close the tunnel on both sides
// under ideal conditions
ca, _, caKey, _ := cert_test.NewTestCaCert(cert.Version1, cert.Curve_CURVE25519, time.Now(), time.Now().Add(10*time.Minute), nil, nil, []string{})
@@ -326,7 +322,6 @@ func TestCertMismatchCorrection(t *testing.T) {
}
func TestCrossStackRelaysWork(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}})
@@ -355,14 +350,14 @@ func TestCrossStackRelaysWork(t *testing.T) {
theirControl.Start()
t.Log("Trigger a handshake from me to them via the relay")
myControl.InjectTunPacket(BuildTunUDPPacket(theirVpnV6.Addr(), 80, myVpnV6.Addr(), 80, []byte("Hi from me")))
myControl.InjectTunUDPPacket(theirVpnV6.Addr(), 80, myVpnV6.Addr(), 80, []byte("Hi from me"))
p := r.RouteForAllUntilTxTun(theirControl)
r.Log("Assert the tunnel works")
assertUdpPacket(t, []byte("Hi from me"), p, myVpnV6.Addr(), theirVpnV6.Addr(), 80, 80)
t.Log("reply?")
theirControl.InjectTunPacket(BuildTunUDPPacket(myVpnV6.Addr(), 80, theirVpnV6.Addr(), 80, []byte("Hi from them")))
theirControl.InjectTunUDPPacket(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)
@@ -374,7 +369,6 @@ func TestCrossStackRelaysWork(t *testing.T) {
}
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{})
myControl, myVpnIpNet, myUdpAddr, _ := newSimpleServer(cert.Version1, ca, caKey, "me", "10.128.0.1/24", m{"tunnels": m{"drop_inactive": true, "inactivity_timeout": "5s"}})
theirControl, theirVpnIpNet, theirUdpAddr, _ := newSimpleServer(cert.Version1, ca, caKey, "them", "10.128.0.2/24", m{"tunnels": m{"drop_inactive": true, "inactivity_timeout": "10m"}})
+14 -43
View File
@@ -138,14 +138,6 @@ listen:
# max, net.core.rmem_max and net.core.wmem_max
#read_buffer: 10485760
#write_buffer: 10485760
# On Windows only
# When true, Nebula installs a WFP (Windows Filtering Platform) PERMIT filter scoped to UDP at the listener port.
# WFP sits below Windows Defender Firewall, so this lets peer handshakes reach Nebula's outside socket regardless
# of WDF's inbound rules.
# Default true; set to false to leave WDF in charge of inbound decisions on the listener port. Not reloadable.
#windows_bypass_wdf: 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.
@@ -171,21 +163,17 @@ listen:
punchy:
# Continues to punch inbound/outbound at a regular interval to avoid expiration of firewall nat mappings
# This setting is reloadable.
punch: true
# respond means that a node you are trying to reach will connect back out to you if your hole punching fails
# this is extremely useful if one node is behind a difficult nat, such as a symmetric NAT
# Default is false
# This setting is reloadable.
#respond: true
# delays a punch response for misbehaving NATs, default is 1 second.
# This setting is reloadable.
#delay: 1s
# set the delay before attempting punchy.respond. Default is 5 seconds. respond must be true to take effect.
# This setting is reloadable.
#respond_delay: 5s
# Cipher allows you to choose between the available ciphers for your network. Options are chachapoly or aes
@@ -294,24 +282,6 @@ tun:
# metric: 100
# install: true
# On Windows only, sets the network category of the nebula interface. Without this, Windows often
# leaves the network as "Unidentified" and treats it as Public, which makes the host firewall more
# restrictive than you usually want for an overlay between trusted peers. Valid values:
# private - treat the nebula network as a private/trusted network (default)
# public - treat it as a public/untrusted network
# domain - treat it as a domain-authenticated network
# unset - leave whatever Windows decided alone
# Not reloadable.
#network_category: private
# On Windows only
# When true, Nebula installs a WFP (Windows Filtering Platform) PERMIT filter scoped to the nebula adapter LUID.
# WFP sits below Windows Defender Firewall, so this lets inbound traffic through regardless of WDF rules.
# Filters are auto-removed when the adapter goes away.
# See listen.windows_bypass_wdf for the matching control over inbound to nebula's outside UDP listener.
# Default true; set to false to leave WDF in charge of inbound decisions on the nebula interface. Not reloadable.
#windows_bypass_wdf: true
# On linux only, set to true to manage unsafe routes directly on the system route table with gateway routes instead of
# in nebula configuration files. Default false, not reloadable.
#use_system_route_table: false
@@ -322,21 +292,24 @@ tun:
# Configure logging level
logging:
# trace, debug, info, warn, or error. Default is info and is reloadable.
# fatal and panic are accepted for backwards compatibility and map to error.
#NOTE: Debug and trace modes can log remotely controlled/untrusted data which can quickly fill a disk in some
# scenarios. Debug and trace logging are also CPU intensive and will decrease performance overall.
# Only enable debug or trace logging while actively investigating an issue.
# panic, fatal, error, warning, info, or debug. Default is info and is reloadable.
#NOTE: Debug mode can log remotely controlled/untrusted data which can quickly fill a disk in some
# scenarios. Debug logging is also CPU intensive and will decrease performance overall.
# Only enable debug logging while actively investigating an issue.
level: info
# json or text formats currently available. Default is text.
# json or text formats currently available. Default is text
format: text
# Disable timestamp logging. Useful when output is redirected to a logging system that already adds timestamps. Default is false.
# Disable timestamp logging. useful when output is redirected to logging system that already adds timestamps. Default is false
#disable_timestamp: true
# Timestamps use RFC3339Nano ("2006-01-02T15:04:05.999999999Z07:00") and are not configurable.
# timestamp format is specified in Go time format, see:
# https://golang.org/pkg/time/#pkg-constants
# default when `format: json`: "2006-01-02T15:04:05Z07:00" (RFC3339)
# default when `format: text`:
# when TTY attached: seconds since beginning of execution
# otherwise: "2006-01-02T15:04:05Z07:00" (RFC3339)
# As an example, to log as RFC3339 with millisecond precision, set to:
#timestamp_format: "2006-01-02T15:04:05.000Z07:00"
# The stats section is reloadable. A HUP may change the backend, toggle stats
# on or off, switch the listen/host address, or pick up new DNS for the
# configured graphite host.
#stats:
#type: graphite
#prefix: nebula
@@ -354,12 +327,10 @@ logging:
# enables counter metrics for meta packets
# e.g.: `messages.tx.handshake`
# NOTE: `message.{tx,rx}.recv_error` is always emitted
# Not reloadable.
#message_metrics: false
# enables detailed counter metrics for lighthouse packets
# e.g.: `lighthouse.rx.HostQuery`
# Not reloadable.
#lighthouse_metrics: false
# Handshake Manager Settings
+3 -2
View File
@@ -7,9 +7,9 @@ import (
"net"
"os"
"github.com/sirupsen/logrus"
"github.com/slackhq/nebula"
"github.com/slackhq/nebula/config"
"github.com/slackhq/nebula/logging"
"github.com/slackhq/nebula/overlay"
"github.com/slackhq/nebula/service"
)
@@ -64,7 +64,8 @@ pki:
return err
}
logger := logging.NewLogger(os.Stdout)
logger := logrus.New()
logger.Out = os.Stdout
ctrl, err := nebula.Main(&cfg, false, "custom-app", logger, overlay.NewUserDeviceFromConfig)
if err != nil {
+116 -42
View File
@@ -1,13 +1,11 @@
package nebula
import (
"context"
"crypto/sha256"
"encoding/hex"
"errors"
"fmt"
"hash/fnv"
"log/slog"
"net/netip"
"reflect"
"slices"
@@ -18,9 +16,11 @@ import (
"github.com/gaissmai/bart"
"github.com/rcrowley/go-metrics"
"github.com/sirupsen/logrus"
"github.com/slackhq/nebula/cert"
"github.com/slackhq/nebula/config"
"github.com/slackhq/nebula/firewall"
"github.com/slackhq/nebula/firewall/events"
)
type FirewallInterface interface {
@@ -68,7 +68,15 @@ type Firewall struct {
incomingMetrics firewallMetrics
outgoingMetrics firewallMetrics
l *slog.Logger
// reporter is the optional embedder-supplied event sink. Immutable for
// the lifetime of this Firewall; Control.SetFirewallEventReporter
// installs it by shallow-copying the Firewall under the conntrack lock
// and swapping the pointer, and reloadFirewall carries it forward.
// Read unsynchronized on the data path: the preceding Firewall-pointer
// read pins the field's value for the duration of that call.
reporter events.Reporter
l *logrus.Logger
}
type firewallMetrics struct {
@@ -132,7 +140,7 @@ type firewallLocalCIDR struct {
// NewFirewall creates a new Firewall object. A TimerWheel is created for you from the provided timeouts.
// The certificate provided should be the highest version loaded in memory.
func NewFirewall(l *slog.Logger, tcpTimeout, UDPTimeout, defaultTimeout time.Duration, c cert.Certificate) *Firewall {
func NewFirewall(l *logrus.Logger, tcpTimeout, UDPTimeout, defaultTimeout time.Duration, c cert.Certificate) *Firewall {
//TODO: error on 0 duration
var tmin, tmax time.Duration
@@ -192,7 +200,7 @@ func NewFirewall(l *slog.Logger, tcpTimeout, UDPTimeout, defaultTimeout time.Dur
}
}
func NewFirewallFromConfig(l *slog.Logger, cs *CertState, c *config.C) (*Firewall, error) {
func NewFirewallFromConfig(l *logrus.Logger, cs *CertState, c *config.C) (*Firewall, error) {
certificate := cs.getCertificate(cert.Version2)
if certificate == nil {
certificate = cs.getCertificate(cert.Version1)
@@ -220,7 +228,7 @@ func NewFirewallFromConfig(l *slog.Logger, cs *CertState, c *config.C) (*Firewal
case "drop":
fw.InSendReject = false
default:
l.Warn("invalid firewall.inbound_action, defaulting to `drop`", "action", inboundAction)
l.WithField("action", inboundAction).Warn("invalid firewall.inbound_action, defaulting to `drop`")
fw.InSendReject = false
}
@@ -231,7 +239,7 @@ func NewFirewallFromConfig(l *slog.Logger, cs *CertState, c *config.C) (*Firewal
case "drop":
fw.OutSendReject = false
default:
l.Warn("invalid firewall.outbound_action, defaulting to `drop`", "action", outboundAction)
l.WithField("action", outboundAction).Warn("invalid firewall.outbound_action, defaulting to `drop`")
fw.OutSendReject = false
}
@@ -269,7 +277,7 @@ func (f *Firewall) AddRule(incoming bool, proto uint8, startPort int32, endPort
case firewall.ProtoICMP, firewall.ProtoICMPv6:
//ICMP traffic doesn't have ports, so we always coerce to "any", even if a value is provided
if startPort != firewall.PortAny {
f.l.Warn("ignoring port specification for ICMP firewall rule", "startPort", startPort)
f.l.WithField("startPort", startPort).Warn("ignoring port specification for ICMP firewall rule")
}
startPort = firewall.PortAny
endPort = firewall.PortAny
@@ -291,9 +299,8 @@ func (f *Firewall) AddRule(incoming bool, proto uint8, startPort int32, endPort
if !incoming {
direction = "outgoing"
}
f.l.Info("Firewall rule added",
"firewallRule", m{"direction": direction, "proto": proto, "startPort": startPort, "endPort": endPort, "groups": groups, "host": host, "cidr": cidr, "localCidr": localCidr, "caName": caName, "caSha": caSha},
)
f.l.WithField("firewallRule", m{"direction": direction, "proto": proto, "startPort": startPort, "endPort": endPort, "groups": groups, "host": host, "cidr": cidr, "localCidr": localCidr, "caName": caName, "caSha": caSha}).
Info("Firewall rule added")
return fp.addRule(f, startPort, endPort, groups, host, cidr, localCidr, caName, caSha)
}
@@ -316,7 +323,7 @@ func (f *Firewall) GetRuleHashes() string {
return "SHA:" + f.GetRuleHash() + ",FNV:" + strconv.FormatUint(uint64(f.GetRuleHashFNV()), 10)
}
func AddFirewallRulesFromConfig(l *slog.Logger, inbound bool, c *config.C, fw FirewallInterface) error {
func AddFirewallRulesFromConfig(l *logrus.Logger, inbound bool, c *config.C, fw FirewallInterface) error {
var table string
if inbound {
table = "firewall.inbound"
@@ -374,7 +381,7 @@ func AddFirewallRulesFromConfig(l *slog.Logger, inbound bool, c *config.C, fw Fi
startPort = firewall.PortAny
endPort = firewall.PortAny
if sPort != "" {
l.Warn("ignoring port specification for ICMP firewall rule", "port", sPort)
l.WithField("port", sPort).Warn("ignoring port specification for ICMP firewall rule")
}
default:
return fmt.Errorf("%s rule #%v; proto was not understood; `%s`", table, i, r.Proto)
@@ -398,11 +405,7 @@ func AddFirewallRulesFromConfig(l *slog.Logger, inbound bool, c *config.C, fw Fi
}
if warning := r.sanity(); warning != nil {
l.Warn("firewall rule sanity check",
"table", table,
"rule", i,
"warning", warning,
)
l.Warnf("%s rule #%v; %s", table, i, warning)
}
err = fw.AddRule(inbound, proto, startPort, endPort, r.Groups, r.Host, r.Cidr, r.LocalCidr, r.CAName, r.CASha)
@@ -422,23 +425,27 @@ 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.
func (f *Firewall) Drop(fp firewall.Packet, incoming bool, h *HostInfo, caPool *cert.CAPool, localCache firewall.ConntrackCache) error {
func (f *Firewall) Drop(fp firewall.Packet, ctx firewall.PacketContext, 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
if f.inConns(fp, h, caPool, localCache) {
return nil
}
peerCert := h.ConnectionState.peerCert
// 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
if h.vpnAddrs[0] != fp.RemoteAddr {
f.metrics(incoming).droppedRemoteAddr.Inc(1)
f.reportDrop(incoming, events.DropInvalidRemoteIP, fp, ctx, peerCert)
return ErrInvalidRemoteIP
}
} else {
nwType, ok := h.networks.Lookup(fp.RemoteAddr)
if !ok {
f.metrics(incoming).droppedRemoteAddr.Inc(1)
f.reportDrop(incoming, events.DropInvalidRemoteIP, fp, ctx, peerCert)
return ErrInvalidRemoteIP
}
switch nwType {
@@ -446,11 +453,13 @@ func (f *Firewall) Drop(fp firewall.Packet, incoming bool, h *HostInfo, caPool *
break // nothing special
case NetworkTypeVPNPeer:
f.metrics(incoming).droppedRemoteAddr.Inc(1)
f.reportDrop(incoming, events.DropPeerRejected, fp, ctx, peerCert)
return ErrPeerRejected // reject for now, one day this may have different FW rules
case NetworkTypeUnsafe:
break // nothing special, one day this may have different FW rules
default:
f.metrics(incoming).droppedRemoteAddr.Inc(1)
f.reportDrop(incoming, events.DropUnknownNetwork, fp, ctx, peerCert)
return ErrUnknownNetworkType //should never happen
}
}
@@ -458,6 +467,7 @@ func (f *Firewall) Drop(fp firewall.Packet, incoming bool, h *HostInfo, caPool *
// Make sure we are supposed to be handling this local ip address
if !f.routableNetworks.Contains(fp.LocalAddr) {
f.metrics(incoming).droppedLocalAddr.Inc(1)
f.reportDrop(incoming, events.DropInvalidLocalIP, fp, ctx, peerCert)
return ErrInvalidLocalIP
}
@@ -467,13 +477,14 @@ func (f *Firewall) Drop(fp firewall.Packet, incoming bool, h *HostInfo, caPool *
}
// We now know which firewall table to check against
if !table.match(fp, incoming, h.ConnectionState.peerCert, caPool) {
if !table.match(fp, incoming, peerCert, caPool) {
f.metrics(incoming).droppedNoRule.Inc(1)
f.reportDrop(incoming, events.DropNoMatchingRule, fp, ctx, peerCert)
return ErrNoMatchingRule
}
// We always want to conntrack since it is a faster operation
f.addConn(fp, incoming)
f.addConn(fp, ctx, incoming, peerCert)
return nil
}
@@ -492,6 +503,59 @@ func (f *Firewall) Destroy() {
//TODO: clean references if/when needed
}
func (f *Firewall) reportDrop(incoming bool, reason events.DropReason, fp firewall.Packet, ctx firewall.PacketContext, peerCert *cert.CachedCertificate) {
r := f.reporter
if r == nil {
return
}
r.ReportDrop(events.DropEvent{
Incoming: incoming,
Reason: reason,
Packet: fp,
Context: ctx,
PeerCert: peerCert,
RulesVersion: f.rulesVersion,
})
}
func (f *Firewall) reportFlowCreate(incoming bool, fp firewall.Packet, ctx firewall.PacketContext, peerCert *cert.CachedCertificate) {
r := f.reporter
if r == nil {
return
}
r.ReportFlowCreate(events.FlowCreateEvent{
Incoming: incoming,
Packet: fp,
Context: ctx,
PeerCert: peerCert,
RulesVersion: f.rulesVersion,
})
}
func (f *Firewall) reportFlowEvict(incoming bool, fp firewall.Packet, rulesVersion uint16, expired bool) {
r := f.reporter
if r == nil {
return
}
r.ReportFlowEvict(events.FlowEvictEvent{
Incoming: incoming,
Packet: fp,
RulesVersion: rulesVersion,
Expired: expired,
})
}
func (f *Firewall) reportRulesReload(oldVersion, newVersion uint16) {
r := f.reporter
if r == nil {
return
}
r.ReportRulesReload(events.RulesReloadEvent{
OldVersion: oldVersion,
NewVersion: newVersion,
})
}
func (f *Firewall) EmitStats() {
conntrack := f.Conntrack
conntrack.Lock()
@@ -534,26 +598,28 @@ func (f *Firewall) inConns(fp firewall.Packet, h *HostInfo, caPool *cert.CAPool,
// We now know which firewall table to check against
if !table.match(fp, c.incoming, h.ConnectionState.peerCert, caPool) {
if f.l.Enabled(context.Background(), slog.LevelDebug) {
h.logger(f.l).Debug("dropping old conntrack entry, does not match new ruleset",
"fwPacket", fp,
"incoming", c.incoming,
"rulesVersion", f.rulesVersion,
"oldRulesVersion", c.rulesVersion,
)
if f.l.Level >= logrus.DebugLevel {
h.logger(f.l).
WithField("fwPacket", fp).
WithField("incoming", c.incoming).
WithField("rulesVersion", f.rulesVersion).
WithField("oldRulesVersion", c.rulesVersion).
Debugln("dropping old conntrack entry, does not match new ruleset")
}
oldRulesVersion := c.rulesVersion
delete(conntrack.Conns, fp)
f.reportFlowEvict(c.incoming, fp, oldRulesVersion, false)
conntrack.Unlock()
return false
}
if f.l.Enabled(context.Background(), slog.LevelDebug) {
h.logger(f.l).Debug("keeping old conntrack entry, does match new ruleset",
"fwPacket", fp,
"incoming", c.incoming,
"rulesVersion", f.rulesVersion,
"oldRulesVersion", c.rulesVersion,
)
if f.l.Level >= logrus.DebugLevel {
h.logger(f.l).
WithField("fwPacket", fp).
WithField("incoming", c.incoming).
WithField("rulesVersion", f.rulesVersion).
WithField("oldRulesVersion", c.rulesVersion).
Debugln("keeping old conntrack entry, does match new ruleset")
}
c.rulesVersion = f.rulesVersion
@@ -577,7 +643,7 @@ func (f *Firewall) inConns(fp firewall.Packet, h *HostInfo, caPool *cert.CAPool,
return true
}
func (f *Firewall) addConn(fp firewall.Packet, incoming bool) {
func (f *Firewall) addConn(fp firewall.Packet, ctx firewall.PacketContext, incoming bool, peerCert *cert.CachedCertificate) {
var timeout time.Duration
c := &conn{}
@@ -592,7 +658,8 @@ func (f *Firewall) addConn(fp firewall.Packet, incoming bool) {
conntrack := f.Conntrack
conntrack.Lock()
if _, ok := conntrack.Conns[fp]; !ok {
_, existing := conntrack.Conns[fp]
if !existing {
conntrack.TimerWheel.Advance(time.Now())
conntrack.TimerWheel.Add(fp, timeout)
}
@@ -603,6 +670,13 @@ func (f *Firewall) addConn(fp firewall.Packet, incoming bool) {
c.rulesVersion = f.rulesVersion
c.Expires = time.Now().Add(timeout)
conntrack.Conns[fp] = c
// Report only when this represents a genuinely new flow. Fires under the
// conntrack lock so FlowCreate/FlowEvict events stay ordered relative to
// RulesReloadEvent, which also fires under this lock.
if !existing {
f.reportFlowCreate(incoming, fp, ctx, peerCert)
}
conntrack.Unlock()
}
@@ -626,7 +700,10 @@ func (f *Firewall) evict(p firewall.Packet) {
}
// This conn is done
rulesVersion := t.rulesVersion
incoming := t.incoming
delete(conntrack.Conns, p)
f.reportFlowEvict(incoming, p, rulesVersion, true)
}
func (ft *FirewallTable) match(p firewall.Packet, incoming bool, c *cert.CachedCertificate, caPool *cert.CAPool) bool {
@@ -941,7 +1018,7 @@ type rule struct {
CASha string
}
func convertRule(l *slog.Logger, p any, table string, i int) (rule, error) {
func convertRule(l *logrus.Logger, p any, table string, i int) (rule, error) {
r := rule{}
m, ok := p.(map[string]any)
@@ -972,10 +1049,7 @@ func convertRule(l *slog.Logger, p any, table string, i int) (rule, error) {
return r, errors.New("group should contain a single value, an array with more than one entry was provided")
}
l.Warn("group was an array with a single value, converting to simple value",
"table", table,
"rule", i,
)
l.Warnf("%s rule #%v; group was an array with a single value, converting to simple value", table, i)
m["group"] = v[0]
}
+6 -7
View File
@@ -2,9 +2,10 @@ package firewall
import (
"context"
"log/slog"
"sync/atomic"
"time"
"github.com/sirupsen/logrus"
)
// ConntrackCache is used as a local routine cache to know if a given flow
@@ -15,17 +16,15 @@ type ConntrackCacheTicker struct {
cacheV uint64
cacheTick atomic.Uint64
l *slog.Logger
cache ConntrackCache
}
func NewConntrackCacheTicker(ctx context.Context, l *slog.Logger, d time.Duration) *ConntrackCacheTicker {
func NewConntrackCacheTicker(ctx context.Context, d time.Duration) *ConntrackCacheTicker {
if d == 0 {
return nil
}
c := &ConntrackCacheTicker{
l: l,
cache: ConntrackCache{},
}
@@ -49,15 +48,15 @@ func (c *ConntrackCacheTicker) tick(ctx context.Context, d time.Duration) {
// Get checks if the cache ticker has moved to the next version before returning
// the map. If it has moved, we reset the map.
func (c *ConntrackCacheTicker) Get() ConntrackCache {
func (c *ConntrackCacheTicker) Get(l *logrus.Logger) ConntrackCache {
if c == nil {
return nil
}
if tick := c.cacheTick.Load(); tick != c.cacheV {
c.cacheV = tick
if ll := len(c.cache); ll > 0 {
if c.l.Enabled(context.Background(), slog.LevelDebug) {
c.l.Debug("resetting conntrack cache", "len", ll)
if l.Level == logrus.DebugLevel {
l.WithField("len", ll).Debug("resetting conntrack cache")
}
c.cache = make(ConntrackCache, ll)
}
-69
View File
@@ -1,69 +0,0 @@
package firewall
import (
"bytes"
"log/slog"
"strings"
"testing"
"github.com/slackhq/nebula/test"
"github.com/stretchr/testify/assert"
)
// The tests below pin the log format produced by ConntrackCacheTicker.Get
// so changes cannot silently break what operators are grepping for. The
// ticker's internal state (cache + cacheTick) is poked directly to avoid
// racing a goroutine-driven tick in tests.
func newFixedTicker(t *testing.T, l *slog.Logger, cacheLen int) *ConntrackCacheTicker {
t.Helper()
c := &ConntrackCacheTicker{
l: l,
cache: make(ConntrackCache, cacheLen),
}
for i := 0; i < cacheLen; i++ {
c.cache[Packet{LocalPort: uint16(i) + 1}] = struct{}{}
}
c.cacheTick.Store(1) // cacheV starts at 0, so Get() takes the reset path
return c
}
func TestConntrackCacheTicker_Get_TextFormat(t *testing.T) {
buf := &bytes.Buffer{}
l := test.NewLoggerWithOutputAndLevel(buf, slog.LevelDebug)
c := newFixedTicker(t, l, 3)
c.Get()
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, slog.LevelDebug)
c := newFixedTicker(t, l, 2)
c.Get()
assert.JSONEq(t, `{"level":"DEBUG","msg":"resetting conntrack cache","len":2}`, strings.TrimSpace(buf.String()))
}
func TestConntrackCacheTicker_Get_QuietBelowDebug(t *testing.T) {
buf := &bytes.Buffer{}
l := test.NewLoggerWithOutputAndLevel(buf, slog.LevelInfo)
c := newFixedTicker(t, l, 5)
c.Get()
assert.Empty(t, buf.String())
}
func TestConntrackCacheTicker_Get_QuietWhenCacheEmpty(t *testing.T) {
buf := &bytes.Buffer{}
l := test.NewLoggerWithOutputAndLevel(buf, slog.LevelDebug)
c := newFixedTicker(t, l, 0)
c.Get()
assert.Empty(t, buf.String())
}
+102
View File
@@ -0,0 +1,102 @@
// Package events defines the opt-in firewall event reporting interface.
//
// Nebula emits raw packet-level events (drops, flow creations, flow evictions,
// rule reloads) and does no aggregation, counting, batching, rule-description,
// transport, or timestamping. Embedders correlate events back to yaml rules
// out of band and capture whatever clock they need themselves. All Report*
// methods are invoked while nebula holds internal locks and must be
// non-blocking.
//
// Events are passed to Report* methods by value. Implementations must not
// take the address of a received event: doing so forces Go's escape
// analysis to move the event to the heap and costs one allocation per call.
// To forward an event, either copy its fields into the reporter's own
// pooled record or send it through a value-typed channel (chan DropEvent,
// not chan *DropEvent).
package events
import (
"github.com/slackhq/nebula/cert"
"github.com/slackhq/nebula/firewall"
)
type DropReason uint8
const (
DropInvalidLocalIP DropReason = iota
DropInvalidRemoteIP
DropPeerRejected
DropUnknownNetwork
DropNoMatchingRule
)
func (r DropReason) String() string {
switch r {
case DropInvalidLocalIP:
return "invalid_local_ip"
case DropInvalidRemoteIP:
return "invalid_remote_ip"
case DropPeerRejected:
return "peer_rejected"
case DropUnknownNetwork:
return "unknown_network"
case DropNoMatchingRule:
return "no_matching_rule"
default:
return "unknown"
}
}
// DropEvent is emitted for every packet that fails the firewall check. Drops
// are not aggregated; every drop produces one event.
type DropEvent struct {
Incoming bool
Reason DropReason
Packet firewall.Packet
Context firewall.PacketContext
PeerCert *cert.CachedCertificate
RulesVersion uint16
}
// FlowCreateEvent is emitted when a packet is allowed and a new conntrack
// entry is created. Subsequent packets in the same flow do not re-emit.
type FlowCreateEvent struct {
Incoming bool
Packet firewall.Packet
Context firewall.PacketContext
PeerCert *cert.CachedCertificate
RulesVersion uint16
}
// FlowEvictEvent is emitted when a conntrack entry is removed. Context is
// not carried: timer-wheel eviction has no packet in hand, and reload
// revalidation evicts the OLD flow rather than the triggering packet.
// RulesVersion is the version under which the flow was originally allowed,
// which may differ from the current firewall version.
type FlowEvictEvent struct {
Incoming bool
Packet firewall.Packet
RulesVersion uint16
// Expired is true when eviction was due to conntrack timeout; false when
// the entry was removed because it failed re-validation after a reload.
Expired bool
}
// RulesReloadEvent is emitted once after each successful firewall reload.
// Reporters that bucket state by RulesVersion should close the old bucket
// and open a new one on receipt.
type RulesReloadEvent struct {
OldVersion uint16
NewVersion uint16
}
// Reporter is the embedder-supplied sink for firewall events. Implementations
// that want a timestamp should call time.Now() themselves at the top of the
// method; nebula does not provide one. See the package doc for the
// do-not-take-address rule.
type Reporter interface {
ReportDrop(DropEvent)
ReportFlowCreate(FlowCreateEvent)
ReportFlowEvict(FlowEvictEvent)
ReportRulesReload(RulesReloadEvent)
}
+21
View File
@@ -31,6 +31,27 @@ type Packet struct {
Fragment bool
}
// PacketContext carries additional parsed details about a packet that are
// useful for event reporting but deliberately kept out of Packet so Packet
// can keep being used as a conntrack map key. Populated alongside Packet by
// newPacket.
//
// Fields are interpreted based on Packet.Protocol:
// - ProtoTCP: TCPFlags is meaningful; ICMPType / ICMPCode are zero
// - ProtoICMP, ProtoICMPv6: ICMPType / ICMPCode are meaningful; TCPFlags is zero
// - ProtoUDP and others: only Length is meaningful
type PacketContext struct {
// Length is the total IP packet length in bytes, including headers.
Length uint16
// TCPFlags is the flag byte from the TCP header (bits for FIN, SYN, RST,
// PSH, ACK, URG, ECE, CWR).
TCPFlags uint8
// ICMPType is the type field of the ICMP / ICMPv6 header.
ICMPType uint8
// ICMPCode is the code field of the ICMP / ICMPv6 header.
ICMPCode uint8
}
func (fp *Packet) Copy() *Packet {
return &Packet{
LocalAddr: fp.LocalAddr,
+731
View File
@@ -0,0 +1,731 @@
package nebula
import (
"net"
"net/netip"
"sync"
"testing"
"time"
"github.com/gaissmai/bart"
"github.com/google/gopacket"
"github.com/google/gopacket/layers"
"github.com/slackhq/nebula/cert"
"github.com/slackhq/nebula/firewall"
"github.com/slackhq/nebula/firewall/events"
"github.com/slackhq/nebula/test"
"github.com/stretchr/testify/assert"
"github.com/stretchr/testify/require"
)
// recordingReporter captures every event fired against it. Its methods take
// the conntrack lock implicitly (via the firewall code path that invokes
// them), so we synchronize accumulator mutations with a small mutex to keep
// the race detector happy across goroutines in case a test introduces any.
type recordingReporter struct {
mu sync.Mutex
drops []recordedDrop
creates []recordedCreate
evicts []recordedEvict
reloads []recordedReload
}
type recordedDrop struct {
incoming bool
reason events.DropReason
remote netip.Addr
local netip.Addr
peerName string
rulesVersion uint16
ctx firewall.PacketContext
}
type recordedCreate struct {
incoming bool
remote netip.Addr
local netip.Addr
peerName string
rulesVersion uint16
ctx firewall.PacketContext
}
type recordedEvict struct {
incoming bool
remote netip.Addr
local netip.Addr
rulesVersion uint16
expired bool
}
type recordedReload struct {
oldVersion uint16
newVersion uint16
}
func (r *recordingReporter) ReportDrop(e events.DropEvent) {
r.mu.Lock()
defer r.mu.Unlock()
name := ""
if e.PeerCert != nil && e.PeerCert.Certificate != nil {
name = e.PeerCert.Certificate.Name()
}
r.drops = append(r.drops, recordedDrop{
incoming: e.Incoming,
reason: e.Reason,
remote: e.Packet.RemoteAddr,
local: e.Packet.LocalAddr,
peerName: name,
rulesVersion: e.RulesVersion,
ctx: e.Context,
})
}
func (r *recordingReporter) ReportFlowCreate(e events.FlowCreateEvent) {
r.mu.Lock()
defer r.mu.Unlock()
name := ""
if e.PeerCert != nil && e.PeerCert.Certificate != nil {
name = e.PeerCert.Certificate.Name()
}
r.creates = append(r.creates, recordedCreate{
incoming: e.Incoming,
remote: e.Packet.RemoteAddr,
local: e.Packet.LocalAddr,
peerName: name,
rulesVersion: e.RulesVersion,
ctx: e.Context,
})
}
func (r *recordingReporter) ReportFlowEvict(e events.FlowEvictEvent) {
r.mu.Lock()
defer r.mu.Unlock()
r.evicts = append(r.evicts, recordedEvict{
incoming: e.Incoming,
remote: e.Packet.RemoteAddr,
local: e.Packet.LocalAddr,
rulesVersion: e.RulesVersion,
expired: e.Expired,
})
}
func (r *recordingReporter) ReportRulesReload(e events.RulesReloadEvent) {
r.mu.Lock()
defer r.mu.Unlock()
r.reloads = append(r.reloads, recordedReload{
oldVersion: e.OldVersion,
newVersion: e.NewVersion,
})
}
// eventFixture builds a Firewall wired to a Control plus a packet/hostinfo
// pair that a test can reuse. By default the ruleset allows the packet;
// callers mutate fw / p / h as needed before invoking Drop.
type eventFixture struct {
ctl *Control
fw *Firewall
p firewall.Packet
h *HostInfo
cp *cert.CAPool
}
func newEventFixture(t *testing.T) *eventFixture {
t.Helper()
l := test.NewLogger()
// myVpnNetworksTable covers our single peer address so buildNetworks takes
// the "simple case" path (h.networks stays nil); tests that want a populated
// BART table overwrite h.networks directly.
vpnNetworks := new(bart.Lite)
vpnNetworks.Insert(netip.MustParsePrefix("1.2.3.0/24"))
// Use the same cert for "peer" and "local" endpoints, matching the
// TestFirewall_Drop fixture style: LocalAddr == RemoteAddr == peer vpn addr.
c := &dummyCert{
name: "host1",
networks: []netip.Prefix{netip.MustParsePrefix("1.2.3.4/24")},
groups: []string{"default-group"},
issuer: "signer-shasum",
}
h := &HostInfo{
ConnectionState: &ConnectionState{
peerCert: &cert.CachedCertificate{
Certificate: c,
InvertedGroups: map[string]struct{}{"default-group": {}},
},
},
vpnAddrs: []netip.Addr{netip.MustParseAddr("1.2.3.4")},
}
h.buildNetworks(vpnNetworks, c)
fw := NewFirewall(l, time.Minute, time.Minute, time.Minute, c)
require.NoError(t, fw.AddRule(true, firewall.ProtoAny, 0, 0, []string{"any"}, "", "", "", "", ""))
require.NoError(t, fw.AddRule(false, firewall.ProtoAny, 0, 0, []string{"any"}, "", "", "", "", ""))
ctl := &Control{
f: &Interface{firewall: fw},
l: l,
}
return &eventFixture{
ctl: ctl,
fw: fw,
p: firewall.Packet{
LocalAddr: netip.MustParseAddr("1.2.3.4"),
RemoteAddr: netip.MustParseAddr("1.2.3.4"),
LocalPort: 10,
RemotePort: 90,
Protocol: firewall.ProtoUDP,
},
h: h,
cp: cert.NewCAPool(),
}
}
// firewall() returns the currently-installed firewall. Needed because
// SetFirewallEventReporter replaces it via shallow-copy swap.
func (f *eventFixture) firewall() *Firewall {
return f.ctl.f.firewall
}
func TestEvents_ReportDrop_InvalidRemoteIP(t *testing.T) {
f := newEventFixture(t)
r := &recordingReporter{}
f.ctl.SetFirewallEventReporter(r)
// Packet to an address not in the cert's networks.
f.p.RemoteAddr = netip.MustParseAddr("9.9.9.9")
assert.Equal(t, ErrInvalidRemoteIP, f.firewall().Drop(f.p, firewall.PacketContext{}, false, f.h, f.cp, nil))
require.Len(t, r.drops, 1)
assert.Equal(t, events.DropInvalidRemoteIP, r.drops[0].reason)
assert.False(t, r.drops[0].incoming)
assert.Equal(t, "host1", r.drops[0].peerName)
assert.Empty(t, r.creates)
assert.Empty(t, r.evicts)
}
func TestEvents_ReportDrop_InvalidLocalIP(t *testing.T) {
f := newEventFixture(t)
r := &recordingReporter{}
f.ctl.SetFirewallEventReporter(r)
// LocalAddr outside our routable networks.
f.p.LocalAddr = netip.MustParseAddr("9.9.9.9")
assert.Equal(t, ErrInvalidLocalIP, f.firewall().Drop(f.p, firewall.PacketContext{}, true, f.h, f.cp, nil))
require.Len(t, r.drops, 1)
assert.Equal(t, events.DropInvalidLocalIP, r.drops[0].reason)
assert.True(t, r.drops[0].incoming)
}
func TestEvents_ReportDrop_NoMatchingRule(t *testing.T) {
f := newEventFixture(t)
// Reset to a firewall with no matching rule.
l := test.NewLogger()
fw := NewFirewall(l, time.Minute, time.Minute, time.Minute, f.h.ConnectionState.peerCert.Certificate)
// Rule that won't match (group not in peer's groups).
require.NoError(t, fw.AddRule(true, firewall.ProtoAny, 0, 0, []string{"nope"}, "", "", "", "", ""))
require.NoError(t, fw.AddRule(false, firewall.ProtoAny, 0, 0, []string{"nope"}, "", "", "", "", ""))
f.ctl.f.firewall = fw
r := &recordingReporter{}
f.ctl.SetFirewallEventReporter(r)
assert.Equal(t, ErrNoMatchingRule, f.firewall().Drop(f.p, firewall.PacketContext{}, true, f.h, f.cp, nil))
require.Len(t, r.drops, 1)
assert.Equal(t, events.DropNoMatchingRule, r.drops[0].reason)
}
func TestEvents_ReportDrop_PeerRejected(t *testing.T) {
f := newEventFixture(t)
// Re-classify the remote as VPNPeer so it triggers DropPeerRejected.
f.h.networks = new(bart.Table[NetworkType])
f.h.networks.Insert(netip.MustParsePrefix("1.2.3.0/24"), NetworkTypeVPNPeer)
r := &recordingReporter{}
f.ctl.SetFirewallEventReporter(r)
assert.Equal(t, ErrPeerRejected, f.firewall().Drop(f.p, firewall.PacketContext{}, true, f.h, f.cp, nil))
require.Len(t, r.drops, 1)
assert.Equal(t, events.DropPeerRejected, r.drops[0].reason)
}
func TestEvents_ReportDrop_UnknownNetwork(t *testing.T) {
f := newEventFixture(t)
// Insert an unrecognized NetworkType value to hit the default branch.
f.h.networks = new(bart.Table[NetworkType])
f.h.networks.Insert(netip.MustParsePrefix("1.2.3.0/24"), NetworkTypeUnknown)
r := &recordingReporter{}
f.ctl.SetFirewallEventReporter(r)
assert.Equal(t, ErrUnknownNetworkType, f.firewall().Drop(f.p, firewall.PacketContext{}, true, f.h, f.cp, nil))
require.Len(t, r.drops, 1)
assert.Equal(t, events.DropUnknownNetwork, r.drops[0].reason)
}
func TestEvents_ReportFlowCreate_OnceOnly(t *testing.T) {
f := newEventFixture(t)
r := &recordingReporter{}
f.ctl.SetFirewallEventReporter(r)
// First allowed packet creates the conntrack entry.
require.NoError(t, f.firewall().Drop(f.p, firewall.PacketContext{}, true, f.h, f.cp, nil))
// Second matching packet on the same tuple is short-circuited by conntrack
// and must not fire another FlowCreate.
require.NoError(t, f.firewall().Drop(f.p, firewall.PacketContext{}, true, f.h, f.cp, nil))
require.Len(t, r.creates, 1)
assert.True(t, r.creates[0].incoming)
assert.Equal(t, f.p.RemoteAddr, r.creates[0].remote)
assert.Empty(t, r.drops)
}
func TestEvents_ReportFlowEvict_OnReloadPurge(t *testing.T) {
f := newEventFixture(t)
r := &recordingReporter{}
f.ctl.SetFirewallEventReporter(r)
// Create a flow under the current rules.
require.NoError(t, f.firewall().Drop(f.p, firewall.PacketContext{}, true, f.h, f.cp, nil))
require.Len(t, r.creates, 1)
// Simulate a reload that produces rules the existing flow no longer
// matches. Bump rulesVersion and replace InRules with an empty table so
// revalidation fails.
fw := f.firewall()
fw.Conntrack.Lock()
fw.rulesVersion++
fw.InRules = newFirewallTable()
fw.Conntrack.Unlock()
// Next packet triggers re-validation, which fails and evicts the entry.
err := fw.Drop(f.p, firewall.PacketContext{}, true, f.h, f.cp, nil)
assert.Equal(t, ErrNoMatchingRule, err)
require.Len(t, r.evicts, 1)
assert.False(t, r.evicts[0].expired, "evict from reload purge is not expiration")
assert.True(t, r.evicts[0].incoming)
}
func TestEvents_ReportFlowEvict_OnTimeout(t *testing.T) {
f := newEventFixture(t)
r := &recordingReporter{}
f.ctl.SetFirewallEventReporter(r)
require.NoError(t, f.firewall().Drop(f.p, firewall.PacketContext{}, true, f.h, f.cp, nil))
require.Len(t, r.creates, 1)
// Force expiration by rewinding the entry's deadline.
fw := f.firewall()
fw.Conntrack.Lock()
c := fw.Conntrack.Conns[f.p]
require.NotNil(t, c)
c.Expires = time.Now().Add(-time.Hour)
fw.evict(f.p)
fw.Conntrack.Unlock()
require.Len(t, r.evicts, 1)
assert.True(t, r.evicts[0].expired)
}
func TestEvents_SetNil_Clears(t *testing.T) {
f := newEventFixture(t)
r := &recordingReporter{}
f.ctl.SetFirewallEventReporter(r)
require.NoError(t, f.firewall().Drop(f.p, firewall.PacketContext{}, true, f.h, f.cp, nil))
require.Len(t, r.creates, 1)
f.ctl.SetFirewallEventReporter(nil)
resetConntrack(f.firewall())
require.NoError(t, f.firewall().Drop(f.p, firewall.PacketContext{}, true, f.h, f.cp, nil))
// No second create should be recorded.
assert.Len(t, r.creates, 1)
}
func TestEvents_ReporterSurvivesSwap(t *testing.T) {
f := newEventFixture(t)
r := &recordingReporter{}
f.ctl.SetFirewallEventReporter(r)
// Simulate a reload by swapping in a fresh Firewall that carries the
// reporter forward. Mirrors what reloadFirewall does with the shared
// conntrack pointer.
l := test.NewLogger()
oldFw := f.firewall()
newFw := NewFirewall(l, time.Minute, time.Minute, time.Minute, f.h.ConnectionState.peerCert.Certificate)
require.NoError(t, newFw.AddRule(true, firewall.ProtoAny, 0, 0, []string{"any"}, "", "", "", "", ""))
require.NoError(t, newFw.AddRule(false, firewall.ProtoAny, 0, 0, []string{"any"}, "", "", "", "", ""))
newFw.Conntrack = oldFw.Conntrack
newFw.rulesVersion = oldFw.rulesVersion + 1
newFw.reporter = oldFw.reporter
f.ctl.f.firewall = newFw
newFw.reportRulesReload(oldFw.rulesVersion, newFw.rulesVersion)
require.Len(t, r.reloads, 1)
assert.Equal(t, oldFw.rulesVersion, r.reloads[0].oldVersion)
assert.Equal(t, newFw.rulesVersion, r.reloads[0].newVersion)
// Events on the new firewall should still reach the same reporter.
require.NoError(t, newFw.Drop(f.p, firewall.PacketContext{}, true, f.h, f.cp, nil))
require.Len(t, r.creates, 1)
assert.Equal(t, newFw.rulesVersion, r.creates[0].rulesVersion)
}
func TestEvents_InstallDoesNotMutateOldFirewall(t *testing.T) {
f := newEventFixture(t)
before := f.firewall()
r := &recordingReporter{}
f.ctl.SetFirewallEventReporter(r)
after := f.firewall()
assert.NotSame(t, before, after, "SetFirewallEventReporter must replace the Firewall pointer")
assert.Nil(t, before.reporter, "the pre-install Firewall must remain untouched")
assert.NotNil(t, after.reporter)
}
// --- PacketContext parse tests --------------------------------------------
func mustSerialize(t *testing.T, lrs ...gopacket.SerializableLayer) []byte {
t.Helper()
buf := gopacket.NewSerializeBuffer()
opt := gopacket.SerializeOptions{ComputeChecksums: false, FixLengths: true}
require.NoError(t, gopacket.SerializeLayers(buf, opt, lrs...))
return buf.Bytes()
}
func TestPacketContext_IPv4_TCPFlags(t *testing.T) {
ip := &layers.IPv4{
Version: 4, TTL: 64, Protocol: layers.IPProtocolTCP,
SrcIP: net.IPv4(10, 0, 0, 1), DstIP: net.IPv4(10, 0, 0, 2),
}
tcp := &layers.TCP{SrcPort: 1234, DstPort: 80, SYN: true, ACK: true}
require.NoError(t, tcp.SetNetworkLayerForChecksum(ip))
data := mustSerialize(t, ip, tcp, gopacket.Payload([]byte("hello")))
var fp firewall.Packet
var ctx firewall.PacketContext
require.NoError(t, newPacket(data, true, &fp, &ctx))
assert.Equal(t, uint8(firewall.ProtoTCP), fp.Protocol)
// SYN (0x02) + ACK (0x10) = 0x12
assert.Equal(t, uint8(0x12), ctx.TCPFlags)
assert.Equal(t, uint16(len(data)), ctx.Length)
assert.Equal(t, uint8(0), ctx.ICMPType)
assert.Equal(t, uint8(0), ctx.ICMPCode)
}
func TestPacketContext_IPv4_ICMPTypeCode(t *testing.T) {
ip := &layers.IPv4{
Version: 4, TTL: 64, Protocol: layers.IPProtocolICMPv4,
SrcIP: net.IPv4(10, 0, 0, 1), DstIP: net.IPv4(10, 0, 0, 2),
}
// Destination Unreachable, code 3 (port unreachable)
icmp := &layers.ICMPv4{
TypeCode: layers.CreateICMPv4TypeCode(layers.ICMPv4TypeDestinationUnreachable, layers.ICMPv4CodePort),
}
data := mustSerialize(t, ip, icmp, gopacket.Payload([]byte{0, 0, 0, 0}))
var fp firewall.Packet
var ctx firewall.PacketContext
require.NoError(t, newPacket(data, true, &fp, &ctx))
assert.Equal(t, uint8(firewall.ProtoICMP), fp.Protocol)
assert.Equal(t, uint8(layers.ICMPv4TypeDestinationUnreachable), ctx.ICMPType)
assert.Equal(t, uint8(layers.ICMPv4CodePort), ctx.ICMPCode)
assert.Equal(t, uint16(len(data)), ctx.Length)
assert.Equal(t, uint8(0), ctx.TCPFlags)
}
func TestPacketContext_IPv4_UDPLengthOnly(t *testing.T) {
ip := &layers.IPv4{
Version: 4, TTL: 64, Protocol: layers.IPProtocolUDP,
SrcIP: net.IPv4(10, 0, 0, 1), DstIP: net.IPv4(10, 0, 0, 2),
}
udp := &layers.UDP{SrcPort: 1234, DstPort: 53}
require.NoError(t, udp.SetNetworkLayerForChecksum(ip))
data := mustSerialize(t, ip, udp, gopacket.Payload([]byte("query")))
var fp firewall.Packet
var ctx firewall.PacketContext
require.NoError(t, newPacket(data, true, &fp, &ctx))
assert.Equal(t, uint8(firewall.ProtoUDP), fp.Protocol)
assert.Equal(t, uint16(len(data)), ctx.Length)
assert.Zero(t, ctx.TCPFlags)
assert.Zero(t, ctx.ICMPType)
assert.Zero(t, ctx.ICMPCode)
}
func TestPacketContext_IPv6_TCPFlags(t *testing.T) {
ip := &layers.IPv6{
Version: 6, HopLimit: 64, NextHeader: layers.IPProtocolTCP,
SrcIP: net.ParseIP("fd00::1"), DstIP: net.ParseIP("fd00::2"),
}
tcp := &layers.TCP{SrcPort: 1234, DstPort: 443, FIN: true, ACK: true}
require.NoError(t, tcp.SetNetworkLayerForChecksum(ip))
data := mustSerialize(t, ip, tcp, gopacket.Payload([]byte("bye")))
var fp firewall.Packet
var ctx firewall.PacketContext
require.NoError(t, newPacket(data, true, &fp, &ctx))
assert.Equal(t, uint8(firewall.ProtoTCP), fp.Protocol)
// FIN (0x01) + ACK (0x10) = 0x11
assert.Equal(t, uint8(0x11), ctx.TCPFlags)
assert.Equal(t, uint16(len(data)), ctx.Length)
}
func TestPacketContext_IPv6_ICMPv6TypeCode(t *testing.T) {
ip := &layers.IPv6{
Version: 6, HopLimit: 64, NextHeader: layers.IPProtocolICMPv6,
SrcIP: net.ParseIP("fd00::1"), DstIP: net.ParseIP("fd00::2"),
}
icmp := &layers.ICMPv6{
TypeCode: layers.CreateICMPv6TypeCode(layers.ICMPv6TypeDestinationUnreachable, layers.ICMPv6CodePortUnreachable),
}
require.NoError(t, icmp.SetNetworkLayerForChecksum(ip))
data := mustSerialize(t, ip, icmp, gopacket.Payload([]byte{0, 0, 0, 0, 0, 0, 0, 0}))
var fp firewall.Packet
var ctx firewall.PacketContext
require.NoError(t, newPacket(data, true, &fp, &ctx))
assert.Equal(t, uint8(firewall.ProtoICMPv6), fp.Protocol)
assert.Equal(t, uint8(layers.ICMPv6TypeDestinationUnreachable), ctx.ICMPType)
assert.Equal(t, uint8(layers.ICMPv6CodePortUnreachable), ctx.ICMPCode)
assert.Equal(t, uint16(len(data)), ctx.Length)
}
// TestPacketContext_NilOK confirms a nil context pointer is accepted by
// newPacket (the hot path may elect not to pass one).
func TestPacketContext_NilOK(t *testing.T) {
ip := &layers.IPv4{
Version: 4, TTL: 64, Protocol: layers.IPProtocolUDP,
SrcIP: net.IPv4(10, 0, 0, 1), DstIP: net.IPv4(10, 0, 0, 2),
}
udp := &layers.UDP{SrcPort: 1, DstPort: 2}
require.NoError(t, udp.SetNetworkLayerForChecksum(ip))
data := mustSerialize(t, ip, udp)
var fp firewall.Packet
require.NoError(t, newPacket(data, true, &fp, nil))
}
// TestPacketContext_FlowCreateCarriesContext exercises the full Drop -> addConn
// -> ReportFlowCreate path with a realistic TCP packet and confirms the
// context makes it into the reporter.
func TestPacketContext_FlowCreateCarriesContext(t *testing.T) {
f := newEventFixture(t)
r := &recordingReporter{}
f.ctl.SetFirewallEventReporter(r)
// Hand-construct a matching TCP packet.
ctx := firewall.PacketContext{Length: 1500, TCPFlags: 0x12}
p := f.p
p.Protocol = firewall.ProtoTCP
require.NoError(t, f.firewall().Drop(p, ctx, true, f.h, f.cp, nil))
require.Len(t, r.creates, 1)
assert.Equal(t, uint16(1500), r.creates[0].ctx.Length)
assert.Equal(t, uint8(0x12), r.creates[0].ctx.TCPFlags)
}
// --- benchmarks ------------------------------------------------------------
// noopReporter is the cheapest possible reporter. Methods discard the event.
type noopReporter struct{}
func (noopReporter) ReportDrop(events.DropEvent) {}
func (noopReporter) ReportFlowCreate(events.FlowCreateEvent) {}
func (noopReporter) ReportFlowEvict(events.FlowEvictEvent) {}
func (noopReporter) ReportRulesReload(events.RulesReloadEvent) {
}
// bufferedReporter demonstrates a realistic zero-alloc reporter: each event
// is forwarded to a value-typed channel. The channel send is a memcpy into
// the channel's pre-allocated ring buffer -- no heap traffic. A background
// goroutine would drain these; the bench skips draining to keep the report
// path pure.
type bufferedReporter struct {
drops chan events.DropEvent
flows chan events.FlowCreateEvent
evicts chan events.FlowEvictEvent
}
func newBufferedReporter(cap int) *bufferedReporter {
return &bufferedReporter{
drops: make(chan events.DropEvent, cap),
flows: make(chan events.FlowCreateEvent, cap),
evicts: make(chan events.FlowEvictEvent, cap),
}
}
func (r *bufferedReporter) ReportDrop(e events.DropEvent) {
select {
case r.drops <- e:
default:
}
}
func (r *bufferedReporter) ReportFlowCreate(e events.FlowCreateEvent) {
select {
case r.flows <- e:
default:
}
}
func (r *bufferedReporter) ReportFlowEvict(e events.FlowEvictEvent) {
select {
case r.evicts <- e:
default:
}
}
func (r *bufferedReporter) ReportRulesReload(events.RulesReloadEvent) {}
// pointerReporter is the anti-pattern: it takes the address of the incoming
// event struct, which forces the callee-side copy onto the heap. Kept for
// comparison so we can see the alloc cost an unwary reporter would incur.
type pointerReporter struct {
last *events.DropEvent
}
func (r *pointerReporter) ReportDrop(e events.DropEvent) {
r.last = &e
}
func (r *pointerReporter) ReportFlowCreate(events.FlowCreateEvent) {}
func (r *pointerReporter) ReportFlowEvict(events.FlowEvictEvent) {}
func (r *pointerReporter) ReportRulesReload(events.RulesReloadEvent) {
}
func newBenchFixture(b *testing.B) *eventFixture {
b.Helper()
l := test.NewLogger()
vpnNetworks := new(bart.Lite)
vpnNetworks.Insert(netip.MustParsePrefix("1.2.3.0/24"))
c := &dummyCert{
name: "host1",
networks: []netip.Prefix{netip.MustParsePrefix("1.2.3.4/24")},
groups: []string{"default-group"},
issuer: "signer-shasum",
}
h := &HostInfo{
ConnectionState: &ConnectionState{
peerCert: &cert.CachedCertificate{
Certificate: c,
InvertedGroups: map[string]struct{}{"default-group": {}},
},
},
vpnAddrs: []netip.Addr{netip.MustParseAddr("1.2.3.4")},
}
h.buildNetworks(vpnNetworks, c)
fw := NewFirewall(l, time.Minute, time.Minute, time.Minute, c)
// Inbound rule that matches our packet; outbound has no match so we can
// also benchmark the no-rule drop path.
if err := fw.AddRule(true, firewall.ProtoAny, 0, 0, []string{"any"}, "", "", "", "", ""); err != nil {
b.Fatal(err)
}
ctl := &Control{f: &Interface{firewall: fw}, l: l}
return &eventFixture{
ctl: ctl,
fw: fw,
p: firewall.Packet{
LocalAddr: netip.MustParseAddr("1.2.3.4"),
RemoteAddr: netip.MustParseAddr("1.2.3.4"),
LocalPort: 10,
RemotePort: 90,
Protocol: firewall.ProtoUDP,
},
h: h,
cp: cert.NewCAPool(),
}
}
// BenchmarkFirewallDropPath measures the cost of Firewall.Drop on a packet
// that reaches the no-matching-rule branch (the longest drop path). Compare
// reporter shapes:
//
// nilReporter -- no reporter installed (feature cost when off)
// noopReporter -- reporter installed, methods discard args (minimum on-cost)
// bufferedReporter -- realistic zero-alloc reporter: value-typed channels
// pointerReporter -- anti-pattern that takes &composite-literal (allocates)
func BenchmarkFirewallDropPath(b *testing.B) {
run := func(b *testing.B, install func(*Control)) {
f := newBenchFixture(b)
install(f.ctl)
b.ReportAllocs()
b.ResetTimer()
for i := 0; i < b.N; i++ {
_ = f.firewall().Drop(f.p, firewall.PacketContext{}, false, f.h, f.cp, nil)
}
}
b.Run("nilReporter", func(b *testing.B) { run(b, func(*Control) {}) })
b.Run("noopReporter", func(b *testing.B) {
run(b, func(c *Control) { c.SetFirewallEventReporter(noopReporter{}) })
})
b.Run("bufferedReporter", func(b *testing.B) {
run(b, func(c *Control) { c.SetFirewallEventReporter(newBufferedReporter(1024)) })
})
b.Run("pointerReporter", func(b *testing.B) {
run(b, func(c *Control) { c.SetFirewallEventReporter(&pointerReporter{}) })
})
}
// BenchmarkConntrackCreate measures Firewall.Drop for an allowed inbound
// packet on a fresh conntrack (so addConn fires each iteration).
func BenchmarkConntrackCreate(b *testing.B) {
run := func(b *testing.B, install func(*Control)) {
f := newBenchFixture(b)
install(f.ctl)
b.ReportAllocs()
b.ResetTimer()
for i := 0; i < b.N; i++ {
resetConntrack(f.firewall())
_ = f.firewall().Drop(f.p, firewall.PacketContext{}, true, f.h, f.cp, nil)
}
}
b.Run("nilReporter", func(b *testing.B) { run(b, func(*Control) {}) })
b.Run("noopReporter", func(b *testing.B) {
run(b, func(c *Control) { c.SetFirewallEventReporter(noopReporter{}) })
})
b.Run("bufferedReporter", func(b *testing.B) {
run(b, func(c *Control) { c.SetFirewallEventReporter(newBufferedReporter(1024)) })
})
}
// BenchmarkConntrackHit measures the hot path where a flow is already in
// conntrack and short-circuits rule evaluation. The reporter slot is checked
// only on create/evict, so this bench should show the reporter having zero
// impact regardless of install state.
func BenchmarkConntrackHit(b *testing.B) {
b.Run("nilReporter", func(b *testing.B) {
f := newBenchFixture(b)
// Prime conntrack.
require.NoError(b, f.firewall().Drop(f.p, firewall.PacketContext{}, true, f.h, f.cp, nil))
b.ReportAllocs()
b.ResetTimer()
for i := 0; i < b.N; i++ {
_ = f.firewall().Drop(f.p, firewall.PacketContext{}, true, f.h, f.cp, nil)
}
})
b.Run("noopReporter", func(b *testing.B) {
f := newBenchFixture(b)
f.ctl.SetFirewallEventReporter(noopReporter{})
require.NoError(b, f.firewall().Drop(f.p, firewall.PacketContext{}, true, f.h, f.cp, nil))
b.ReportAllocs()
b.ResetTimer()
for i := 0; i < b.N; i++ {
_ = f.firewall().Drop(f.p, firewall.PacketContext{}, true, f.h, f.cp, nil)
}
})
}
+108 -98
View File
@@ -3,13 +3,13 @@ package nebula
import (
"bytes"
"errors"
"log/slog"
"math"
"net/netip"
"testing"
"time"
"github.com/gaissmai/bart"
"github.com/sirupsen/logrus"
"github.com/slackhq/nebula/cert"
"github.com/slackhq/nebula/config"
"github.com/slackhq/nebula/firewall"
@@ -58,8 +58,9 @@ func TestNewFirewall(t *testing.T) {
}
func TestFirewall_AddRule(t *testing.T) {
l := test.NewLogger()
ob := &bytes.Buffer{}
l := test.NewLoggerWithOutput(ob)
l.SetOutput(ob)
c := &dummyCert{}
fw := NewFirewall(l, time.Second, time.Minute, time.Hour, c)
@@ -176,8 +177,9 @@ func TestFirewall_AddRule(t *testing.T) {
}
func TestFirewall_Drop(t *testing.T) {
l := test.NewLogger()
ob := &bytes.Buffer{}
l := test.NewLoggerWithOutput(ob)
l.SetOutput(ob)
myVpnNetworksTable := new(bart.Lite)
myVpnNetworksTable.Insert(netip.MustParsePrefix("1.1.1.1/8"))
p := firewall.Packet{
@@ -211,49 +213,50 @@ func TestFirewall_Drop(t *testing.T) {
cp := cert.NewCAPool()
// Drop outbound
assert.Equal(t, ErrNoMatchingRule, fw.Drop(p, false, &h, cp, nil))
assert.Equal(t, ErrNoMatchingRule, fw.Drop(p, firewall.PacketContext{}, false, &h, cp, nil))
// Allow inbound
resetConntrack(fw)
require.NoError(t, fw.Drop(p, true, &h, cp, nil))
require.NoError(t, fw.Drop(p, firewall.PacketContext{}, true, &h, cp, nil))
// Allow outbound because conntrack
require.NoError(t, fw.Drop(p, false, &h, cp, nil))
require.NoError(t, fw.Drop(p, firewall.PacketContext{}, false, &h, cp, nil))
// test remote mismatch
oldRemote := p.RemoteAddr
p.RemoteAddr = netip.MustParseAddr("1.2.3.10")
assert.Equal(t, fw.Drop(p, false, &h, cp, nil), ErrInvalidRemoteIP)
assert.Equal(t, fw.Drop(p, firewall.PacketContext{}, 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, true, &h, cp, nil), ErrNoMatchingRule)
assert.Equal(t, fw.Drop(p, firewall.PacketContext{}, 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, true, &h, cp, nil))
require.NoError(t, fw.Drop(p, firewall.PacketContext{}, 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, true, &h, cp, nil), ErrNoMatchingRule)
assert.Equal(t, fw.Drop(p, firewall.PacketContext{}, 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, true, &h, cp, nil))
require.NoError(t, fw.Drop(p, firewall.PacketContext{}, true, &h, cp, nil))
}
func TestFirewall_DropV6(t *testing.T) {
l := test.NewLogger()
ob := &bytes.Buffer{}
l := test.NewLoggerWithOutput(ob)
l.SetOutput(ob)
myVpnNetworksTable := new(bart.Lite)
myVpnNetworksTable.Insert(netip.MustParsePrefix("fd00::/7"))
@@ -289,44 +292,44 @@ func TestFirewall_DropV6(t *testing.T) {
cp := cert.NewCAPool()
// Drop outbound
assert.Equal(t, ErrNoMatchingRule, fw.Drop(p, false, &h, cp, nil))
assert.Equal(t, ErrNoMatchingRule, fw.Drop(p, firewall.PacketContext{}, false, &h, cp, nil))
// Allow inbound
resetConntrack(fw)
require.NoError(t, fw.Drop(p, true, &h, cp, nil))
require.NoError(t, fw.Drop(p, firewall.PacketContext{}, true, &h, cp, nil))
// Allow outbound because conntrack
require.NoError(t, fw.Drop(p, false, &h, cp, nil))
require.NoError(t, fw.Drop(p, firewall.PacketContext{}, false, &h, cp, nil))
// test remote mismatch
oldRemote := p.RemoteAddr
p.RemoteAddr = netip.MustParseAddr("fd12::56")
assert.Equal(t, fw.Drop(p, false, &h, cp, nil), ErrInvalidRemoteIP)
assert.Equal(t, fw.Drop(p, firewall.PacketContext{}, 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, true, &h, cp, nil), ErrNoMatchingRule)
assert.Equal(t, fw.Drop(p, firewall.PacketContext{}, 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, true, &h, cp, nil))
require.NoError(t, fw.Drop(p, firewall.PacketContext{}, 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, true, &h, cp, nil), ErrNoMatchingRule)
assert.Equal(t, fw.Drop(p, firewall.PacketContext{}, 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, true, &h, cp, nil))
require.NoError(t, fw.Drop(p, firewall.PacketContext{}, true, &h, cp, nil))
}
func BenchmarkFirewallTable_match(b *testing.B) {
@@ -482,8 +485,9 @@ func BenchmarkFirewallTable_match(b *testing.B) {
}
func TestFirewall_Drop2(t *testing.T) {
l := test.NewLogger()
ob := &bytes.Buffer{}
l := test.NewLoggerWithOutput(ob)
l.SetOutput(ob)
myVpnNetworksTable := new(bart.Lite)
myVpnNetworksTable.Insert(netip.MustParsePrefix("1.1.1.1/8"))
@@ -533,15 +537,16 @@ func TestFirewall_Drop2(t *testing.T) {
cp := cert.NewCAPool()
// h1/c1 lacks the proper groups
require.ErrorIs(t, fw.Drop(p, true, &h1, cp, nil), ErrNoMatchingRule)
require.ErrorIs(t, fw.Drop(p, firewall.PacketContext{}, true, &h1, cp, nil), ErrNoMatchingRule)
// c has the proper groups
resetConntrack(fw)
require.NoError(t, fw.Drop(p, true, &h, cp, nil))
require.NoError(t, fw.Drop(p, firewall.PacketContext{}, true, &h, cp, nil))
}
func TestFirewall_Drop3(t *testing.T) {
l := test.NewLogger()
ob := &bytes.Buffer{}
l := test.NewLoggerWithOutput(ob)
l.SetOutput(ob)
myVpnNetworksTable := new(bart.Lite)
myVpnNetworksTable.Insert(netip.MustParsePrefix("1.1.1.1/8"))
@@ -613,23 +618,24 @@ func TestFirewall_Drop3(t *testing.T) {
cp := cert.NewCAPool()
// c1 should pass because host match
require.NoError(t, fw.Drop(p, true, &h1, cp, nil))
require.NoError(t, fw.Drop(p, firewall.PacketContext{}, true, &h1, cp, nil))
// c2 should pass because ca sha match
resetConntrack(fw)
require.NoError(t, fw.Drop(p, true, &h2, cp, nil))
require.NoError(t, fw.Drop(p, firewall.PacketContext{}, true, &h2, cp, nil))
// c3 should fail because no match
resetConntrack(fw)
assert.Equal(t, fw.Drop(p, true, &h3, cp, nil), ErrNoMatchingRule)
assert.Equal(t, fw.Drop(p, firewall.PacketContext{}, 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, true, &h1, cp, nil))
require.NoError(t, fw.Drop(p, firewall.PacketContext{}, true, &h1, cp, nil))
}
func TestFirewall_Drop3V6(t *testing.T) {
l := test.NewLogger()
ob := &bytes.Buffer{}
l := test.NewLoggerWithOutput(ob)
l.SetOutput(ob)
myVpnNetworksTable := new(bart.Lite)
myVpnNetworksTable.Insert(netip.MustParsePrefix("fd00::/7"))
@@ -661,12 +667,13 @@ 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, true, &h, cp, nil))
require.NoError(t, fw.Drop(p, firewall.PacketContext{}, true, &h, cp, nil))
}
func TestFirewall_DropConntrackReload(t *testing.T) {
l := test.NewLogger()
ob := &bytes.Buffer{}
l := test.NewLoggerWithOutput(ob)
l.SetOutput(ob)
myVpnNetworksTable := new(bart.Lite)
myVpnNetworksTable.Insert(netip.MustParsePrefix("1.1.1.1/8"))
@@ -702,12 +709,12 @@ func TestFirewall_DropConntrackReload(t *testing.T) {
cp := cert.NewCAPool()
// Drop outbound
assert.Equal(t, fw.Drop(p, false, &h, cp, nil), ErrNoMatchingRule)
assert.Equal(t, fw.Drop(p, firewall.PacketContext{}, false, &h, cp, nil), ErrNoMatchingRule)
// Allow inbound
resetConntrack(fw)
require.NoError(t, fw.Drop(p, true, &h, cp, nil))
require.NoError(t, fw.Drop(p, firewall.PacketContext{}, true, &h, cp, nil))
// Allow outbound because conntrack
require.NoError(t, fw.Drop(p, false, &h, cp, nil))
require.NoError(t, fw.Drop(p, firewall.PacketContext{}, false, &h, cp, nil))
oldFw := fw
fw = NewFirewall(l, time.Second, time.Minute, time.Hour, c.Certificate)
@@ -716,7 +723,7 @@ 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, false, &h, cp, nil))
require.NoError(t, fw.Drop(p, firewall.PacketContext{}, false, &h, cp, nil))
oldFw = fw
fw = NewFirewall(l, time.Second, time.Minute, time.Hour, c.Certificate)
@@ -725,12 +732,13 @@ 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, false, &h, cp, nil), ErrNoMatchingRule)
assert.Equal(t, fw.Drop(p, firewall.PacketContext{}, false, &h, cp, nil), ErrNoMatchingRule)
}
func TestFirewall_ICMPPortBehavior(t *testing.T) {
l := test.NewLogger()
ob := &bytes.Buffer{}
l := test.NewLoggerWithOutput(ob)
l.SetOutput(ob)
myVpnNetworksTable := new(bart.Lite)
myVpnNetworksTable.Insert(netip.MustParsePrefix("1.1.1.1/8"))
@@ -770,12 +778,12 @@ func TestFirewall_ICMPPortBehavior(t *testing.T) {
p.LocalPort = 0
p.RemotePort = 0
// Drop outbound
assert.Equal(t, fw.Drop(*p, false, &h, cp, nil), ErrNoMatchingRule)
assert.Equal(t, fw.Drop(*p, firewall.PacketContext{}, false, &h, cp, nil), ErrNoMatchingRule)
// Allow inbound
resetConntrack(fw)
require.NoError(t, fw.Drop(*p, true, &h, cp, nil))
require.NoError(t, fw.Drop(*p, firewall.PacketContext{}, true, &h, cp, nil))
//now also allow outbound
require.NoError(t, fw.Drop(*p, false, &h, cp, nil))
require.NoError(t, fw.Drop(*p, firewall.PacketContext{}, false, &h, cp, nil))
})
t.Run("nonzero ports", func(t *testing.T) {
@@ -783,12 +791,12 @@ func TestFirewall_ICMPPortBehavior(t *testing.T) {
p.LocalPort = 0xabcd
p.RemotePort = 0x1234
// Drop outbound
assert.Equal(t, fw.Drop(*p, false, &h, cp, nil), ErrNoMatchingRule)
assert.Equal(t, fw.Drop(*p, firewall.PacketContext{}, false, &h, cp, nil), ErrNoMatchingRule)
// Allow inbound
resetConntrack(fw)
require.NoError(t, fw.Drop(*p, true, &h, cp, nil))
require.NoError(t, fw.Drop(*p, firewall.PacketContext{}, true, &h, cp, nil))
//now also allow outbound
require.NoError(t, fw.Drop(*p, false, &h, cp, nil))
require.NoError(t, fw.Drop(*p, firewall.PacketContext{}, false, &h, cp, nil))
})
})
@@ -800,12 +808,12 @@ func TestFirewall_ICMPPortBehavior(t *testing.T) {
p.LocalPort = 0
p.RemotePort = 0
// Drop outbound
assert.Equal(t, fw.Drop(*p, false, &h, cp, nil), ErrNoMatchingRule)
assert.Equal(t, fw.Drop(*p, firewall.PacketContext{}, false, &h, cp, nil), ErrNoMatchingRule)
// Allow inbound
resetConntrack(fw)
assert.Equal(t, fw.Drop(*p, true, &h, cp, nil), ErrNoMatchingRule)
assert.Equal(t, fw.Drop(*p, firewall.PacketContext{}, true, &h, cp, nil), ErrNoMatchingRule)
//now also allow outbound
assert.Equal(t, fw.Drop(*p, false, &h, cp, nil), ErrNoMatchingRule)
assert.Equal(t, fw.Drop(*p, firewall.PacketContext{}, false, &h, cp, nil), ErrNoMatchingRule)
})
t.Run("nonzero ports, still blocked", func(t *testing.T) {
@@ -813,12 +821,12 @@ func TestFirewall_ICMPPortBehavior(t *testing.T) {
p.LocalPort = 0xabcd
p.RemotePort = 0x1234
// Drop outbound
assert.Equal(t, fw.Drop(*p, false, &h, cp, nil), ErrNoMatchingRule)
assert.Equal(t, fw.Drop(*p, firewall.PacketContext{}, false, &h, cp, nil), ErrNoMatchingRule)
// Allow inbound
resetConntrack(fw)
assert.Equal(t, fw.Drop(*p, true, &h, cp, nil), ErrNoMatchingRule)
assert.Equal(t, fw.Drop(*p, firewall.PacketContext{}, true, &h, cp, nil), ErrNoMatchingRule)
//now also allow outbound
assert.Equal(t, fw.Drop(*p, false, &h, cp, nil), ErrNoMatchingRule)
assert.Equal(t, fw.Drop(*p, firewall.PacketContext{}, false, &h, cp, nil), ErrNoMatchingRule)
})
t.Run("nonzero, matching ports, still blocked", func(t *testing.T) {
@@ -826,12 +834,12 @@ func TestFirewall_ICMPPortBehavior(t *testing.T) {
p.LocalPort = 80
p.RemotePort = 80
// Drop outbound
assert.Equal(t, fw.Drop(*p, false, &h, cp, nil), ErrNoMatchingRule)
assert.Equal(t, fw.Drop(*p, firewall.PacketContext{}, false, &h, cp, nil), ErrNoMatchingRule)
// Allow inbound
resetConntrack(fw)
assert.Equal(t, fw.Drop(*p, true, &h, cp, nil), ErrNoMatchingRule)
assert.Equal(t, fw.Drop(*p, firewall.PacketContext{}, true, &h, cp, nil), ErrNoMatchingRule)
//now also allow outbound
assert.Equal(t, fw.Drop(*p, false, &h, cp, nil), ErrNoMatchingRule)
assert.Equal(t, fw.Drop(*p, firewall.PacketContext{}, false, &h, cp, nil), ErrNoMatchingRule)
})
})
t.Run("Any proto, any port", func(t *testing.T) {
@@ -843,12 +851,12 @@ func TestFirewall_ICMPPortBehavior(t *testing.T) {
p.LocalPort = 0
p.RemotePort = 0
// Drop outbound
assert.Equal(t, fw.Drop(*p, false, &h, cp, nil), ErrNoMatchingRule)
assert.Equal(t, fw.Drop(*p, firewall.PacketContext{}, false, &h, cp, nil), ErrNoMatchingRule)
// Allow inbound
resetConntrack(fw)
require.NoError(t, fw.Drop(*p, true, &h, cp, nil))
require.NoError(t, fw.Drop(*p, firewall.PacketContext{}, true, &h, cp, nil))
//now also allow outbound
require.NoError(t, fw.Drop(*p, false, &h, cp, nil))
require.NoError(t, fw.Drop(*p, firewall.PacketContext{}, false, &h, cp, nil))
})
t.Run("nonzero ports, allowed", func(t *testing.T) {
@@ -857,23 +865,24 @@ func TestFirewall_ICMPPortBehavior(t *testing.T) {
p.LocalPort = 0xabcd
p.RemotePort = 0x1234
// Drop outbound
assert.Equal(t, fw.Drop(*p, false, &h, cp, nil), ErrNoMatchingRule)
assert.Equal(t, fw.Drop(*p, firewall.PacketContext{}, false, &h, cp, nil), ErrNoMatchingRule)
// Allow inbound
resetConntrack(fw)
require.NoError(t, fw.Drop(*p, true, &h, cp, nil))
require.NoError(t, fw.Drop(*p, firewall.PacketContext{}, true, &h, cp, nil))
//now also allow outbound
require.NoError(t, fw.Drop(*p, false, &h, cp, nil))
require.NoError(t, fw.Drop(*p, firewall.PacketContext{}, false, &h, cp, nil))
//different ID is blocked
p.RemotePort++
require.Equal(t, fw.Drop(*p, false, &h, cp, nil), ErrNoMatchingRule)
require.Equal(t, fw.Drop(*p, firewall.PacketContext{}, false, &h, cp, nil), ErrNoMatchingRule)
})
})
}
func TestFirewall_DropIPSpoofing(t *testing.T) {
l := test.NewLogger()
ob := &bytes.Buffer{}
l := test.NewLoggerWithOutput(ob)
l.SetOutput(ob)
myVpnNetworksTable := new(bart.Lite)
myVpnNetworksTable.Insert(netip.MustParsePrefix("192.0.2.1/24"))
@@ -913,7 +922,7 @@ func TestFirewall_DropIPSpoofing(t *testing.T) {
Protocol: firewall.ProtoUDP,
Fragment: false,
}
assert.Equal(t, fw.Drop(p, true, &h1, cp, nil), ErrInvalidRemoteIP)
assert.Equal(t, fw.Drop(p, firewall.PacketContext{}, true, &h1, cp, nil), ErrInvalidRemoteIP)
}
func BenchmarkLookup(b *testing.B) {
@@ -1033,28 +1042,28 @@ func TestNewFirewallFromConfig(t *testing.T) {
l := test.NewLogger()
// Test a bad rule definition
c := &dummyCert{}
cs, err := newCertState(cert.Version2, nil, c, false, cert.Curve_CURVE25519, nil, "aes")
cs, err := newCertState(cert.Version2, nil, c, false, cert.Curve_CURVE25519, nil)
require.NoError(t, err)
conf := config.NewC(test.NewLogger())
conf := config.NewC(l)
conf.Settings["firewall"] = map[string]any{"outbound": "asdf"}
_, err = NewFirewallFromConfig(l, cs, conf)
require.EqualError(t, err, "firewall.outbound failed to parse, should be an array of rules")
// Test both port and code
conf = config.NewC(test.NewLogger())
conf = config.NewC(l)
conf.Settings["firewall"] = map[string]any{"outbound": []any{map[string]any{"port": "1", "code": "2"}}}
_, err = NewFirewallFromConfig(l, cs, conf)
require.EqualError(t, err, "firewall.outbound rule #0; only one of port or code should be provided")
// Test missing host, group, cidr, ca_name and ca_sha
conf = config.NewC(test.NewLogger())
conf = config.NewC(l)
conf.Settings["firewall"] = map[string]any{"outbound": []any{map[string]any{}}}
_, err = NewFirewallFromConfig(l, cs, conf)
require.EqualError(t, err, "firewall.outbound rule #0; at least one of host, group, cidr, local_cidr, ca_name, or ca_sha must be provided")
// Test code/port error
conf = config.NewC(test.NewLogger())
conf = config.NewC(l)
conf.Settings["firewall"] = map[string]any{"outbound": []any{map[string]any{"code": "a", "host": "testh", "proto": "any"}}}
_, err = NewFirewallFromConfig(l, cs, conf)
require.EqualError(t, err, "firewall.outbound rule #0; code was not a number; `a`")
@@ -1064,25 +1073,25 @@ func TestNewFirewallFromConfig(t *testing.T) {
require.EqualError(t, err, "firewall.outbound rule #0; port was not a number; `a`")
// Test proto error
conf = config.NewC(test.NewLogger())
conf = config.NewC(l)
conf.Settings["firewall"] = map[string]any{"outbound": []any{map[string]any{"code": "1", "host": "testh"}}}
_, err = NewFirewallFromConfig(l, cs, conf)
require.EqualError(t, err, "firewall.outbound rule #0; proto was not understood; ``")
// Test cidr parse error
conf = config.NewC(test.NewLogger())
conf = config.NewC(l)
conf.Settings["firewall"] = map[string]any{"outbound": []any{map[string]any{"code": "1", "cidr": "testh", "proto": "any"}}}
_, err = NewFirewallFromConfig(l, cs, conf)
require.EqualError(t, err, "firewall.outbound rule #0; cidr did not parse; netip.ParsePrefix(\"testh\"): no '/'")
// Test local_cidr parse error
conf = config.NewC(test.NewLogger())
conf = config.NewC(l)
conf.Settings["firewall"] = map[string]any{"outbound": []any{map[string]any{"code": "1", "local_cidr": "testh", "proto": "any"}}}
_, err = NewFirewallFromConfig(l, cs, conf)
require.EqualError(t, err, "firewall.outbound rule #0; local_cidr did not parse; netip.ParsePrefix(\"testh\"): no '/'")
// Test both group and groups
conf = config.NewC(test.NewLogger())
conf = config.NewC(l)
conf.Settings["firewall"] = map[string]any{"inbound": []any{map[string]any{"port": "1", "proto": "any", "group": "a", "groups": []string{"b", "c"}}}}
_, err = NewFirewallFromConfig(l, cs, conf)
require.EqualError(t, err, "firewall.inbound rule #0; only one of group or groups should be defined, both provided")
@@ -1091,35 +1100,35 @@ func TestNewFirewallFromConfig(t *testing.T) {
func TestAddFirewallRulesFromConfig(t *testing.T) {
l := test.NewLogger()
// Test adding tcp rule
conf := config.NewC(test.NewLogger())
conf := config.NewC(l)
mf := &mockFirewall{}
conf.Settings["firewall"] = map[string]any{"outbound": []any{map[string]any{"port": "1", "proto": "tcp", "host": "a"}}}
require.NoError(t, AddFirewallRulesFromConfig(l, false, conf, mf))
assert.Equal(t, addRuleCall{incoming: false, proto: firewall.ProtoTCP, startPort: 1, endPort: 1, groups: nil, host: "a", ip: "", localIp: ""}, mf.lastCall)
// Test adding udp rule
conf = config.NewC(test.NewLogger())
conf = config.NewC(l)
mf = &mockFirewall{}
conf.Settings["firewall"] = map[string]any{"outbound": []any{map[string]any{"port": "1", "proto": "udp", "host": "a"}}}
require.NoError(t, AddFirewallRulesFromConfig(l, false, conf, mf))
assert.Equal(t, addRuleCall{incoming: false, proto: firewall.ProtoUDP, startPort: 1, endPort: 1, groups: nil, host: "a", ip: "", localIp: ""}, mf.lastCall)
// Test adding icmp rule
conf = config.NewC(test.NewLogger())
conf = config.NewC(l)
mf = &mockFirewall{}
conf.Settings["firewall"] = map[string]any{"outbound": []any{map[string]any{"port": "1", "proto": "icmp", "host": "a"}}}
require.NoError(t, AddFirewallRulesFromConfig(l, false, conf, mf))
assert.Equal(t, addRuleCall{incoming: false, proto: firewall.ProtoICMP, startPort: firewall.PortAny, endPort: firewall.PortAny, groups: nil, host: "a", ip: "", localIp: ""}, mf.lastCall)
// Test adding icmp rule no port
conf = config.NewC(test.NewLogger())
conf = config.NewC(l)
mf = &mockFirewall{}
conf.Settings["firewall"] = map[string]any{"outbound": []any{map[string]any{"proto": "icmp", "host": "a"}}}
require.NoError(t, AddFirewallRulesFromConfig(l, false, conf, mf))
assert.Equal(t, addRuleCall{incoming: false, proto: firewall.ProtoICMP, startPort: firewall.PortAny, endPort: firewall.PortAny, groups: nil, host: "a", ip: "", localIp: ""}, mf.lastCall)
// Test adding any rule
conf = config.NewC(test.NewLogger())
conf = config.NewC(l)
mf = &mockFirewall{}
conf.Settings["firewall"] = map[string]any{"inbound": []any{map[string]any{"port": "1", "proto": "any", "host": "a"}}}
require.NoError(t, AddFirewallRulesFromConfig(l, true, conf, mf))
@@ -1127,14 +1136,14 @@ func TestAddFirewallRulesFromConfig(t *testing.T) {
// Test adding rule with cidr
cidr := netip.MustParsePrefix("10.0.0.0/8")
conf = config.NewC(test.NewLogger())
conf = config.NewC(l)
mf = &mockFirewall{}
conf.Settings["firewall"] = map[string]any{"inbound": []any{map[string]any{"port": "1", "proto": "any", "cidr": cidr.String()}}}
require.NoError(t, AddFirewallRulesFromConfig(l, true, conf, mf))
assert.Equal(t, addRuleCall{incoming: true, proto: firewall.ProtoAny, startPort: 1, endPort: 1, groups: nil, ip: cidr.String(), localIp: ""}, mf.lastCall)
// Test adding rule with local_cidr
conf = config.NewC(test.NewLogger())
conf = config.NewC(l)
mf = &mockFirewall{}
conf.Settings["firewall"] = map[string]any{"inbound": []any{map[string]any{"port": "1", "proto": "any", "local_cidr": cidr.String()}}}
require.NoError(t, AddFirewallRulesFromConfig(l, true, conf, mf))
@@ -1142,82 +1151,82 @@ func TestAddFirewallRulesFromConfig(t *testing.T) {
// Test adding rule with cidr ipv6
cidr6 := netip.MustParsePrefix("fd00::/8")
conf = config.NewC(test.NewLogger())
conf = config.NewC(l)
mf = &mockFirewall{}
conf.Settings["firewall"] = map[string]any{"inbound": []any{map[string]any{"port": "1", "proto": "any", "cidr": cidr6.String()}}}
require.NoError(t, AddFirewallRulesFromConfig(l, true, conf, mf))
assert.Equal(t, addRuleCall{incoming: true, proto: firewall.ProtoAny, startPort: 1, endPort: 1, groups: nil, ip: cidr6.String(), localIp: ""}, mf.lastCall)
// Test adding rule with any cidr
conf = config.NewC(test.NewLogger())
conf = config.NewC(l)
mf = &mockFirewall{}
conf.Settings["firewall"] = map[string]any{"inbound": []any{map[string]any{"port": "1", "proto": "any", "cidr": "any"}}}
require.NoError(t, AddFirewallRulesFromConfig(l, true, conf, mf))
assert.Equal(t, addRuleCall{incoming: true, proto: firewall.ProtoAny, startPort: 1, endPort: 1, groups: nil, ip: "any", localIp: ""}, mf.lastCall)
// Test adding rule with junk cidr
conf = config.NewC(test.NewLogger())
conf = config.NewC(l)
mf = &mockFirewall{}
conf.Settings["firewall"] = map[string]any{"inbound": []any{map[string]any{"port": "1", "proto": "any", "cidr": "junk/junk"}}}
require.EqualError(t, AddFirewallRulesFromConfig(l, true, conf, mf), "firewall.inbound rule #0; cidr did not parse; netip.ParsePrefix(\"junk/junk\"): ParseAddr(\"junk\"): unable to parse IP")
// Test adding rule with local_cidr ipv6
conf = config.NewC(test.NewLogger())
conf = config.NewC(l)
mf = &mockFirewall{}
conf.Settings["firewall"] = map[string]any{"inbound": []any{map[string]any{"port": "1", "proto": "any", "local_cidr": cidr6.String()}}}
require.NoError(t, AddFirewallRulesFromConfig(l, true, conf, mf))
assert.Equal(t, addRuleCall{incoming: true, proto: firewall.ProtoAny, startPort: 1, endPort: 1, groups: nil, ip: "", localIp: cidr6.String()}, mf.lastCall)
// Test adding rule with any local_cidr
conf = config.NewC(test.NewLogger())
conf = config.NewC(l)
mf = &mockFirewall{}
conf.Settings["firewall"] = map[string]any{"inbound": []any{map[string]any{"port": "1", "proto": "any", "local_cidr": "any"}}}
require.NoError(t, AddFirewallRulesFromConfig(l, true, conf, mf))
assert.Equal(t, addRuleCall{incoming: true, proto: firewall.ProtoAny, startPort: 1, endPort: 1, groups: nil, localIp: "any"}, mf.lastCall)
// Test adding rule with junk local_cidr
conf = config.NewC(test.NewLogger())
conf = config.NewC(l)
mf = &mockFirewall{}
conf.Settings["firewall"] = map[string]any{"inbound": []any{map[string]any{"port": "1", "proto": "any", "local_cidr": "junk/junk"}}}
require.EqualError(t, AddFirewallRulesFromConfig(l, true, conf, mf), "firewall.inbound rule #0; local_cidr did not parse; netip.ParsePrefix(\"junk/junk\"): ParseAddr(\"junk\"): unable to parse IP")
// Test adding rule with ca_sha
conf = config.NewC(test.NewLogger())
conf = config.NewC(l)
mf = &mockFirewall{}
conf.Settings["firewall"] = map[string]any{"inbound": []any{map[string]any{"port": "1", "proto": "any", "ca_sha": "12312313123"}}}
require.NoError(t, AddFirewallRulesFromConfig(l, true, conf, mf))
assert.Equal(t, addRuleCall{incoming: true, proto: firewall.ProtoAny, startPort: 1, endPort: 1, groups: nil, ip: "", localIp: "", caSha: "12312313123"}, mf.lastCall)
// Test adding rule with ca_name
conf = config.NewC(test.NewLogger())
conf = config.NewC(l)
mf = &mockFirewall{}
conf.Settings["firewall"] = map[string]any{"inbound": []any{map[string]any{"port": "1", "proto": "any", "ca_name": "root01"}}}
require.NoError(t, AddFirewallRulesFromConfig(l, true, conf, mf))
assert.Equal(t, addRuleCall{incoming: true, proto: firewall.ProtoAny, startPort: 1, endPort: 1, groups: nil, ip: "", localIp: "", caName: "root01"}, mf.lastCall)
// Test single group
conf = config.NewC(test.NewLogger())
conf = config.NewC(l)
mf = &mockFirewall{}
conf.Settings["firewall"] = map[string]any{"inbound": []any{map[string]any{"port": "1", "proto": "any", "group": "a"}}}
require.NoError(t, AddFirewallRulesFromConfig(l, true, conf, mf))
assert.Equal(t, addRuleCall{incoming: true, proto: firewall.ProtoAny, startPort: 1, endPort: 1, groups: []string{"a"}, ip: "", localIp: ""}, mf.lastCall)
// Test single groups
conf = config.NewC(test.NewLogger())
conf = config.NewC(l)
mf = &mockFirewall{}
conf.Settings["firewall"] = map[string]any{"inbound": []any{map[string]any{"port": "1", "proto": "any", "groups": "a"}}}
require.NoError(t, AddFirewallRulesFromConfig(l, true, conf, mf))
assert.Equal(t, addRuleCall{incoming: true, proto: firewall.ProtoAny, startPort: 1, endPort: 1, groups: []string{"a"}, ip: "", localIp: ""}, mf.lastCall)
// Test multiple AND groups
conf = config.NewC(test.NewLogger())
conf = config.NewC(l)
mf = &mockFirewall{}
conf.Settings["firewall"] = map[string]any{"inbound": []any{map[string]any{"port": "1", "proto": "any", "groups": []string{"a", "b"}}}}
require.NoError(t, AddFirewallRulesFromConfig(l, true, conf, mf))
assert.Equal(t, addRuleCall{incoming: true, proto: firewall.ProtoAny, startPort: 1, endPort: 1, groups: []string{"a", "b"}, ip: "", localIp: ""}, mf.lastCall)
// Test Add error
conf = config.NewC(test.NewLogger())
conf = config.NewC(l)
mf = &mockFirewall{}
mf.nextCallReturn = errors.New("test error")
conf.Settings["firewall"] = map[string]any{"inbound": []any{map[string]any{"port": "1", "proto": "any", "host": "a"}}}
@@ -1225,8 +1234,9 @@ func TestAddFirewallRulesFromConfig(t *testing.T) {
}
func TestFirewall_convertRule(t *testing.T) {
l := test.NewLogger()
ob := &bytes.Buffer{}
l := test.NewLoggerWithOutput(ob)
l.SetOutput(ob)
// Ensure group array of 1 is converted and a warning is printed
c := map[string]any{
@@ -1234,9 +1244,7 @@ func TestFirewall_convertRule(t *testing.T) {
}
r, err := convertRule(l, c, "test", 1)
assert.Contains(t, ob.String(), "group was an array with a single value, converting to simple value")
assert.Contains(t, ob.String(), "table=test")
assert.Contains(t, ob.String(), "rule=1")
assert.Contains(t, ob.String(), "test rule #1; group was an array with a single value, converting to simple value")
require.NoError(t, err)
assert.Equal(t, []string{"group1"}, r.Groups)
@@ -1262,8 +1270,9 @@ func TestFirewall_convertRule(t *testing.T) {
}
func TestFirewall_convertRuleSanity(t *testing.T) {
l := test.NewLogger()
ob := &bytes.Buffer{}
l := test.NewLoggerWithOutput(ob)
l.SetOutput(ob)
noWarningPlease := []map[string]any{
{"group": "group1"},
@@ -1327,7 +1336,7 @@ func (c *testcase) Test(t *testing.T, fw *Firewall) {
t.Helper()
cp := cert.NewCAPool()
resetConntrack(fw)
err := fw.Drop(c.p, true, c.h, cp, nil)
err := fw.Drop(c.p, firewall.PacketContext{}, true, c.h, cp, nil)
if c.err == nil {
require.NoError(t, err, "failed to not drop remote address %s", c.p.RemoteAddr)
} else {
@@ -1377,7 +1386,7 @@ type testsetup struct {
fw *Firewall
}
func newSetup(t *testing.T, l *slog.Logger, myPrefixes ...netip.Prefix) testsetup {
func newSetup(t *testing.T, l *logrus.Logger, myPrefixes ...netip.Prefix) testsetup {
c := dummyCert{
name: "me",
networks: myPrefixes,
@@ -1388,7 +1397,7 @@ func newSetup(t *testing.T, l *slog.Logger, myPrefixes ...netip.Prefix) testsetu
return newSetupFromCert(t, l, c)
}
func newSetupFromCert(t *testing.T, l *slog.Logger, c dummyCert) testsetup {
func newSetupFromCert(t *testing.T, l *logrus.Logger, c dummyCert) testsetup {
myVpnNetworksTable := new(bart.Lite)
for _, prefix := range c.Networks() {
myVpnNetworksTable.Insert(prefix)
@@ -1405,8 +1414,9 @@ func newSetupFromCert(t *testing.T, l *slog.Logger, c dummyCert) testsetup {
func TestFirewall_Drop_EnforceIPMatch(t *testing.T) {
t.Parallel()
l := test.NewLogger()
ob := &bytes.Buffer{}
l := test.NewLoggerWithOutput(ob)
l.SetOutput(ob)
myPrefix := netip.MustParsePrefix("1.1.1.1/8")
// for now, it's okay that these are all "incoming", the logic this test tries to check doesn't care about in/out
+3 -3
View File
@@ -9,7 +9,7 @@ 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 v0.26.0
github.com/gogo/protobuf v1.3.2
github.com/google/gopacket v1.1.19
github.com/kardianos/service v1.2.4
@@ -18,15 +18,15 @@ require (
github.com/nbrownus/go-metrics-prometheus v0.0.0-20210712211119-974a6260965f
github.com/prometheus/client_golang v1.23.2
github.com/rcrowley/go-metrics v0.0.0-20201227073835-cf1acfcdf475
github.com/sirupsen/logrus v1.9.4
github.com/skip2/go-qrcode v0.0.0-20200617195104-da1b6568686e
github.com/stefanberger/go-pkcs11uri v0.0.0-20230803200340-78284954bff6
github.com/stretchr/testify v1.11.1
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/exp v0.0.0-20230725093048-515e97ebf090
golang.org/x/net v0.53.0
golang.org/x/net v0.52.0
golang.org/x/sync v0.20.0
golang.org/x/sys v0.43.0
golang.org/x/term v0.42.0
+6 -4
View File
@@ -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 v0.26.0 h1:xOZ57E9hJLBiQaSyeZa9wgWhGuzfGACgqp4BE77OkO0=
github.com/gaissmai/bart v0.26.0/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=
@@ -133,6 +133,8 @@ github.com/rogpeppe/go-internal v1.10.0/go.mod h1:UQnix2H7Ngw/k4C5ijL5+65zddjncj
github.com/sirupsen/logrus v1.2.0/go.mod h1:LxeOpSwHxABJmUn/MG1IvRgCAasNZTLOkJPxbbu5VWo=
github.com/sirupsen/logrus v1.4.2/go.mod h1:tLMulIdttU9McNUspp0xgXVQah82FyeX6MwdIuYE2rE=
github.com/sirupsen/logrus v1.6.0/go.mod h1:7uNnSEd1DgxDLC74fIahvMZmmYsHGZGEOFrfsX/uA88=
github.com/sirupsen/logrus v1.9.4 h1:TsZE7l11zFCLZnZ+teH4Umoq5BhEIfIzfRDZ1Uzql2w=
github.com/sirupsen/logrus v1.9.4/go.mod h1:ftWc9WdOfJ0a92nsE2jF5u5ZwH8Bv2zdeOC42RjbV2g=
github.com/skip2/go-qrcode v0.0.0-20200617195104-da1b6568686e h1:MRM5ITcdelLK2j1vwZ3Je0FKVCfqOLp5zO6trqMLYs0=
github.com/skip2/go-qrcode v0.0.0-20200617195104-da1b6568686e/go.mod h1:XV66xRDqSt+GTGFMVlhk3ULuV0y9ZmzeVGR4mloJI3M=
github.com/stefanberger/go-pkcs11uri v0.0.0-20230803200340-78284954bff6 h1:pnnLyeX7o/5aX8qUQ69P/mLojDqwda8hFOCBTmP/6hw=
@@ -182,8 +184,8 @@ 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 v0.52.0 h1:He/TN1l0e4mmR3QqHMT2Xab3Aj3L9qjbhRm78/6jrW0=
golang.org/x/net v0.52.0/go.mod h1:R1MAz7uMZxVMualyPXb+VaqGSa3LIaUqk0eEt3w36Sw=
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=
-57
View File
@@ -1,57 +0,0 @@
package handshake
import (
"crypto/rand"
"github.com/flynn/noise"
"github.com/slackhq/nebula/cert"
)
// Credential holds everything needed to participate in a handshake
// at a given cert version. Version and Curve are read from Cert; the public
// half of the static keypair likewise comes from Cert.PublicKey().
type Credential struct {
Cert cert.Certificate // the certificate
Bytes []byte // pre-marshaled certificate bytes
privateKey []byte // static private key (public half lives in Cert)
cipherSuite noise.CipherSuite // pre-built cipher suite (DH + cipher + hash)
}
// NewCredential creates a Credential with all material needed for handshake
// participation. The cipherSuite should be pre-built by the caller with the
// appropriate DH function, cipher, and hash.
func NewCredential(
c cert.Certificate,
hsBytes []byte,
privateKey []byte,
cipherSuite noise.CipherSuite,
) *Credential {
return &Credential{
Cert: c,
Bytes: hsBytes,
privateKey: privateKey,
cipherSuite: cipherSuite,
}
}
// buildHandshakeState creates a noise.HandshakeState from this credential.
func (hc *Credential) buildHandshakeState(initiator bool, pattern noise.HandshakePattern) (*noise.HandshakeState, error) {
return noise.NewHandshakeState(noise.Config{
CipherSuite: hc.cipherSuite,
Random: rand.Reader,
Pattern: pattern,
Initiator: initiator,
StaticKeypair: noise.DHKey{Private: hc.privateKey, Public: hc.Cert.PublicKey()},
PresharedKey: []byte{},
PresharedKeyPlacement: 0,
})
}
// GetCredentialFunc returns the handshake credential for the given version,
// or nil if that version is not available.
//
// Implementations must return credentials drawn from a snapshot stable for
// the lifetime of any single Machine. The Machine may call this multiple
// times during a handshake (e.g. when negotiating to the peer's version)
// and assumes the underlying static keypair is consistent across calls.
type GetCredentialFunc func(v cert.Version) *Credential
-21
View File
@@ -1,21 +0,0 @@
package handshake
import "errors"
var (
ErrInitiateOnResponder = errors.New("initiate called on responder")
ErrInitiateAlreadyCalled = errors.New("initiate already called")
ErrInitiateNotCalled = errors.New("initiate must be called before ProcessPacket for initiators")
ErrPacketTooShort = errors.New("packet too short")
ErrPublicKeyMismatch = errors.New("public key mismatch between certificate and handshake")
ErrIncompleteHandshake = errors.New("handshake completed without receiving required content")
ErrMachineFailed = errors.New("handshake machine has failed")
ErrUnknownSubtype = errors.New("unknown handshake subtype")
ErrMissingContent = errors.New("expected handshake content but message was empty")
ErrUnexpectedContent = errors.New("received unexpected handshake content")
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")
ErrMultiMessageUnsupported = errors.New("multi-message handshake patterns are not yet supported by the manager")
ErrSubtypeMismatch = errors.New("packet subtype does not match handshake machine subtype")
)
-29
View File
@@ -1,29 +0,0 @@
// This file documents the wire format the nebula handshake speaks. It is
// not run through protoc; the encoder/decoder in payload.go is hand-written
// against this shape directly to keep the parser narrow and panic-free.
//
// Any change to the wire format must be reflected here, and adding a new
// field requires updating MarshalPayload / unmarshalPayloadDetails together
// with the field-uniqueness and wire-type checks in those functions.
syntax = "proto3";
package nebula.handshake;
message NebulaHandshake {
NebulaHandshakeDetails Details = 1;
bytes Hmac = 2;
}
message NebulaHandshakeDetails {
bytes Cert = 1;
uint32 InitiatorIndex = 2;
uint32 ResponderIndex = 3;
// Cookie was reserved for an anti-DoS mechanism that was never
// implemented. No released version of nebula has ever populated it; the
// hand-written parser silently skips it on read.
uint64 Cookie = 4 [deprecated = true];
uint64 Time = 5;
uint32 CertVersion = 8;
// reserved for WIP multiport
reserved 6, 7;
}
-116
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@@ -1,116 +0,0 @@
package handshake
import (
"net/netip"
"testing"
"time"
"github.com/flynn/noise"
"github.com/slackhq/nebula/cert"
ct "github.com/slackhq/nebula/cert_test"
"github.com/slackhq/nebula/header"
"github.com/stretchr/testify/require"
)
// testCertState holds cert material for a test peer.
type testCertState struct {
version cert.Version
creds map[cert.Version]*Credential
}
func (s *testCertState) getCredential(v cert.Version) *Credential {
return s.creds[v]
}
func newTestCertState(
t *testing.T, ca cert.Certificate, caKey []byte, name string, networks []netip.Prefix,
) *testCertState {
return newTestCertStateWithCipher(t, ca, caKey, name, networks, noise.CipherChaChaPoly)
}
func newTestCertStateWithCipher(
t *testing.T, ca cert.Certificate, caKey []byte, name string, networks []netip.Prefix,
cipher noise.CipherFunc,
) *testCertState {
t.Helper()
c, _, rawPrivKey, _ := ct.NewTestCert(
cert.Version2, cert.Curve_CURVE25519, ca, caKey,
name, ca.NotBefore(), ca.NotAfter(), networks, nil, nil,
)
priv, _, _, err := cert.UnmarshalPrivateKeyFromPEM(rawPrivKey)
require.NoError(t, err)
hsBytes, err := c.MarshalForHandshakes()
require.NoError(t, err)
ncs := noise.NewCipherSuite(noise.DH25519, cipher, noise.HashSHA256)
return &testCertState{
version: cert.Version2,
creds: map[cert.Version]*Credential{
cert.Version2: NewCredential(c, hsBytes, priv, ncs),
},
}
}
func testVerifier(pool *cert.CAPool) CertVerifier {
return func(c cert.Certificate) (*cert.CachedCertificate, error) {
return pool.VerifyCertificate(time.Now(), c)
}
}
func newTestMachine(
t *testing.T,
cs *testCertState,
verifier CertVerifier,
initiator bool,
localIndex uint32,
) *Machine {
t.Helper()
m, err := NewMachine(
cs.version, cs.getCredential,
verifier, func() (uint32, error) { return localIndex, nil },
initiator, header.HandshakeIXPSK0,
)
require.NoError(t, err)
return m
}
func initiateHandshake(
t *testing.T,
initCS *testCertState, initVerifier CertVerifier,
respCS *testCertState, respVerifier CertVerifier,
) (initM, respM *Machine, respResult *Result, resp []byte, err error) {
t.Helper()
initM = newTestMachine(t, initCS, initVerifier, true, 100)
msg1, merr := initM.Initiate(nil)
require.NoError(t, merr)
respM = newTestMachine(t, respCS, respVerifier, false, 200)
resp, respResult, err = respM.ProcessPacket(nil, msg1)
return
}
func doFullHandshake(
t *testing.T, initCS, respCS *testCertState, caPool *cert.CAPool,
) (initResult, respResult *Result) {
t.Helper()
v := testVerifier(caPool)
initM := newTestMachine(t, initCS, v, true, 1000)
respM := newTestMachine(t, respCS, v, false, 2000)
msg1, err := initM.Initiate(nil)
require.NoError(t, err)
resp, respResult, err := respM.ProcessPacket(nil, msg1)
require.NoError(t, err)
require.NotNil(t, respResult)
require.NotEmpty(t, resp)
_, initResult, err = initM.ProcessPacket(nil, resp)
require.NoError(t, err)
require.NotNil(t, initResult)
return initResult, respResult
}
-446
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@@ -1,446 +0,0 @@
package handshake
import (
"bytes"
"fmt"
"slices"
"time"
"github.com/flynn/noise"
"github.com/slackhq/nebula/cert"
"github.com/slackhq/nebula/header"
)
// IndexAllocator is called by the Machine to allocate a local index for the
// handshake. It is called at most once, when the first outgoing message that
// carries a payload is built.
//
// Implementations MUST NOT return 0. Zero is reserved as a sentinel meaning
// "no index assigned" on the wire and in the payload-presence checks. If an
// allocator ever returned 0, a legitimate handshake's payload could be
// indistinguishable from an empty one and would be rejected.
type IndexAllocator func() (uint32, error)
// CertVerifier is called by the Machine after reconstructing the peer's
// certificate from the handshake. The verifier performs all validation
// (CA trust, expiry, policy checks, allow lists).
type CertVerifier func(cert.Certificate) (*cert.CachedCertificate, error)
// Result contains the results of a successful handshake.
// Returned by ProcessPacket when the handshake is complete.
type Result struct {
EKey *noise.CipherState
DKey *noise.CipherState
Cipher noise.CipherFunc // identifies which post-handshake CipherState the data plane should wrap EKey/DKey in
MyCert cert.Certificate
RemoteCert *cert.CachedCertificate
RemoteIndex uint32
LocalIndex uint32
HandshakeTime uint64
MessageIndex uint64 // number of messages exchanged during the handshake
Initiator bool
}
// Machine drives a Noise handshake through N messages. It handles Noise
// protocol operations, certificate reconstruction, and payload encoding.
// Certificate validation is delegated to the caller via CertVerifier.
//
// A Machine is not safe for concurrent use. The caller must ensure that
// Initiate and ProcessPacket are not called concurrently.
//
// Error contract: when ProcessPacket or Initiate returns an error, callers
// must check Failed() to decide what to do next. If Failed() is false the
// underlying noise state was not advanced (the packet was rejected before
// ReadMessage took effect, or the rejection is non-fatal like a stale
// retransmit) and the Machine can accept another packet. If Failed() is
// true the Machine is unrecoverable and the caller must abandon it.
type Machine struct {
hs *noise.HandshakeState
getCred GetCredentialFunc
allocIndex IndexAllocator
verifier CertVerifier
result *Result
msgs []msgFlags
myVersion cert.Version
subtype header.MessageSubType
indexAllocated bool
remoteCertSet bool
payloadSet bool
failed bool
}
// NewMachine creates a handshake state machine. The subtype determines both
// the noise pattern and the per-message content layout. The credential for
// `version` is fetched via getCred and used to seed the noise.HandshakeState.
// IndexAllocator is called lazily when the first outgoing payload is built.
func NewMachine(
version cert.Version,
getCred GetCredentialFunc,
verifier CertVerifier,
allocIndex IndexAllocator,
initiator bool,
subtype header.MessageSubType,
) (*Machine, error) {
info, err := subtypeInfoFor(subtype)
if err != nil {
return nil, err
}
cred := getCred(version)
if cred == nil {
return nil, fmt.Errorf("%w: %v", ErrNoCredential, version)
}
hs, err := cred.buildHandshakeState(initiator, info.pattern)
if err != nil {
return nil, fmt.Errorf("build noise state: %w", err)
}
return &Machine{
hs: hs,
subtype: subtype,
msgs: info.msgs,
getCred: getCred,
allocIndex: allocIndex,
verifier: verifier,
myVersion: version,
result: &Result{
Initiator: initiator,
Cipher: cred.cipherSuite,
},
}, nil
}
// Failed returns true if the Machine is in an unrecoverable state.
func (m *Machine) Failed() bool {
return m.failed
}
// Subtype returns the handshake subtype this Machine was built for.
func (m *Machine) Subtype() header.MessageSubType {
return m.subtype
}
// MessageIndex returns the noise handshake message index, which equals the
// wire counter of the most recently sent or received message.
func (m *Machine) MessageIndex() int {
return m.hs.MessageIndex()
}
// requireComplete checks that both a peer cert and payload have been received.
// Marks the machine as failed if not.
func (m *Machine) requireComplete() error {
if !m.payloadSet || !m.remoteCertSet {
m.failed = true
return ErrIncompleteHandshake
}
return nil
}
// myMsgFlags returns the flags for the current outgoing message.
func (m *Machine) myMsgFlags() msgFlags {
idx := m.hs.MessageIndex()
if idx < len(m.msgs) {
return m.msgs[idx]
}
return msgFlags{}
}
// peerMsgFlags returns the flags for the message we just read.
func (m *Machine) peerMsgFlags() msgFlags {
idx := m.hs.MessageIndex() - 1
if idx >= 0 && idx < len(m.msgs) {
return m.msgs[idx]
}
return msgFlags{}
}
// Initiate produces the first handshake message. Only valid for initiators,
// and must be called exactly once before ProcessPacket.
//
// out is a destination buffer the message is appended to and returned. Pass
// nil to allocate fresh, or pass a re-used buffer sliced to length 0 (e.g.
// buf[:0]) with sufficient capacity to avoid allocation.
//
// An error return may not indicate a fatal condition, check Failed() to
// determine if the Machine can still be used.
func (m *Machine) Initiate(out []byte) ([]byte, error) {
if m.failed {
return nil, ErrMachineFailed
}
if !m.result.Initiator {
m.failed = true
return nil, ErrInitiateOnResponder
}
if m.hs.MessageIndex() != 0 {
m.failed = true
return nil, ErrInitiateAlreadyCalled
}
// At MessageIndex=0 with RemoteIndex still zero, buildResponse produces
// header counter 1 and remote index 0, which is what the initial message needs.
out, _, _, err := m.buildResponse(out)
if err != nil {
m.failed = true
return nil, err
}
return out, nil
}
// ProcessPacket handles an incoming handshake message. It advances the Noise
// state, validates the peer certificate via the verifier, and optionally
// produces a response.
//
// out is a destination buffer the response is appended to and returned. Pass
// nil to allocate fresh, or pass a re-used buffer sliced to length 0 (e.g.
// buf[:0]) with sufficient capacity to avoid allocation. The returned slice
// is nil when no outgoing message is produced (handshake complete on this
// side, or final message of a multi-message pattern).
//
// Returns a non-nil Result when the handshake is complete.
// An error return may not indicate a fatal condition, check Failed() to
// determine if the Machine can still be used.
func (m *Machine) ProcessPacket(out, packet []byte) ([]byte, *Result, error) {
if m.failed {
return nil, nil, ErrMachineFailed
}
if len(packet) < header.Len {
return nil, nil, ErrPacketTooShort
}
// Reject packets whose subtype doesn't match the one this Machine was
// built for. A pending handshake that suddenly receives a different
// subtype on its index is either a stray packet that matched by chance
// or a peer protocol violation; drop it without failing the Machine so
// the legitimate retransmit can still complete.
if header.MessageSubType(packet[1]) != m.subtype {
return nil, nil, ErrSubtypeMismatch
}
if m.result.Initiator && m.hs.MessageIndex() == 0 {
m.failed = true
return nil, nil, ErrInitiateNotCalled
}
// The (eKey, dKey) ordering here is correct for IX, where the initiator
// completes the handshake by reading the responder's stage-2 message.
// noise returns (cs1, cs2) where cs1 is the initiator->responder cipher.
// For 3-message patterns where a responder finishes by reading the final
// message, this ordering would be wrong; revisit when XX/pqIX lands.
msg, eKey, dKey, err := m.hs.ReadMessage(nil, packet[header.Len:])
if err != nil {
// Noise ReadMessage failed. The noise library checkpoints and rolls back
// on failure, so the Machine is still alive. The caller can retry with
// a different packet.
return nil, nil, fmt.Errorf("noise ReadMessage: %w", err)
}
// From here on, noise state has advanced. Any error is fatal.
flags := m.peerMsgFlags()
if err := m.processPayload(msg, flags); err != nil {
return nil, nil, err
}
// If ReadMessage derived keys, the handshake is complete. Noise should
// always produce both keys together; asymmetry is a protocol invariant
// violation.
if eKey != nil || dKey != nil {
if eKey == nil || dKey == nil {
m.failed = true
return nil, nil, ErrAsymmetricCipherKeys
}
if err := m.requireComplete(); err != nil {
return nil, nil, err
}
return nil, m.completed(eKey, dKey), nil
}
// ReadMessage didn't complete, produce the next outgoing message
out, dk, ek, err := m.buildResponse(out)
if err != nil {
m.failed = true
return nil, nil, err
}
if ek != nil || dk != nil {
if ek == nil || dk == nil {
m.failed = true
return nil, nil, ErrAsymmetricCipherKeys
}
if err := m.requireComplete(); err != nil {
return nil, nil, err
}
return out, m.completed(ek, dk), nil
}
return out, nil, nil
}
func (m *Machine) completed(eKey, dKey *noise.CipherState) *Result {
m.result.EKey = eKey
m.result.DKey = dKey
m.result.MessageIndex = uint64(m.hs.MessageIndex())
return m.result
}
func (m *Machine) processPayload(msg []byte, flags msgFlags) error {
if len(msg) == 0 {
if flags.expectsPayload || flags.expectsCert {
m.failed = true
return ErrMissingContent
}
return nil
}
payload, err := UnmarshalPayload(msg)
if err != nil {
m.failed = true
return fmt.Errorf("unmarshal handshake: %w", err)
}
// Assert the payload contains exactly what we expect
hasPayloadData := payload.InitiatorIndex != 0 || payload.ResponderIndex != 0 || payload.Time != 0
if hasPayloadData != flags.expectsPayload {
m.failed = true
return ErrUnexpectedContent
}
hasCertData := len(payload.Cert) > 0
if hasCertData != flags.expectsCert {
m.failed = true
return ErrUnexpectedContent
}
// Process payload
if flags.expectsPayload {
if m.result.Initiator {
m.result.RemoteIndex = payload.ResponderIndex
} else {
m.result.RemoteIndex = payload.InitiatorIndex
}
m.result.HandshakeTime = payload.Time
m.payloadSet = true
}
// Process certificate
if flags.expectsCert {
if err := m.validateCert(payload); err != nil {
return err
}
}
return nil
}
func (m *Machine) validateCert(payload Payload) error {
cred := m.getCred(m.myVersion)
if cred == nil {
m.failed = true
return fmt.Errorf("%w: %v", ErrNoCredential, m.myVersion)
}
rc, err := cert.Recombine(
cert.Version(payload.CertVersion),
payload.Cert,
m.hs.PeerStatic(),
cred.Cert.Curve(),
)
if err != nil {
m.failed = true
return fmt.Errorf("recombine cert: %w", err)
}
if !bytes.Equal(rc.PublicKey(), m.hs.PeerStatic()) {
m.failed = true
return ErrPublicKeyMismatch
}
// Version negotiation, if the peer sent a different version and we have it, switch
if rc.Version() != m.myVersion {
if m.getCred(rc.Version()) != nil {
m.myVersion = rc.Version()
}
}
verified, err := m.verifier(rc)
if err != nil {
m.failed = true
return fmt.Errorf("verify cert: %w", err)
}
m.result.RemoteCert = verified
m.remoteCertSet = true
return nil
}
func (m *Machine) marshalOutgoing(flags msgFlags) ([]byte, error) {
if !flags.expectsPayload && !flags.expectsCert {
return nil, nil
}
var p Payload
if flags.expectsPayload {
if !m.indexAllocated {
index, err := m.allocIndex()
if err != nil {
return nil, fmt.Errorf("%w: %w", ErrIndexAllocation, err)
}
m.result.LocalIndex = index
m.indexAllocated = true
}
if m.result.Initiator {
p.InitiatorIndex = m.result.LocalIndex
} else {
p.ResponderIndex = m.result.LocalIndex
p.InitiatorIndex = m.result.RemoteIndex
}
p.Time = uint64(time.Now().UnixNano())
}
if flags.expectsCert {
cred := m.getCred(m.myVersion)
if cred == nil {
return nil, fmt.Errorf("%w: %v", ErrNoCredential, m.myVersion)
}
p.Cert = cred.Bytes
p.CertVersion = uint32(cred.Cert.Version())
m.result.MyCert = cred.Cert
}
return MarshalPayload(nil, p), nil
}
func (m *Machine) buildResponse(out []byte) ([]byte, *noise.CipherState, *noise.CipherState, error) {
flags := m.myMsgFlags()
hsBytes, err := m.marshalOutgoing(flags)
if err != nil {
return nil, nil, nil, err
}
// Extend out by header.Len to make room for the header. slices.Grow is a
// no-op when the cap is already sufficient (the zero-copy case where the
// caller passed a pre-sized buffer). header.Encode overwrites the new
// bytes, so they don't need to be zeroed.
start := len(out)
out = slices.Grow(out, header.Len)[:start+header.Len]
header.Encode(
out[start:],
header.Version, header.Handshake, m.subtype,
m.result.RemoteIndex,
uint64(m.hs.MessageIndex()+1),
)
// noise.WriteMessage appends the encrypted handshake message to out,
// reusing capacity when present.
//
// The (dKey, eKey) ordering here is correct for IX, where the responder
// completes the handshake by writing the stage-2 message. noise returns
// (cs1, cs2) where cs1 is the initiator->responder cipher (which is the
// responder's decrypt key). For 3-message patterns where an initiator
// finishes by writing the final message, this ordering would be wrong;
// revisit when XX/pqIX lands.
out, dKey, eKey, err := m.hs.WriteMessage(out, hsBytes)
if err != nil {
return nil, nil, nil, fmt.Errorf("noise WriteMessage: %w", err)
}
return out, dKey, eKey, nil
}
-662
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@@ -1,662 +0,0 @@
package handshake
import (
"net/netip"
"testing"
"time"
"github.com/flynn/noise"
"github.com/slackhq/nebula/cert"
ct "github.com/slackhq/nebula/cert_test"
"github.com/slackhq/nebula/header"
"github.com/slackhq/nebula/noiseutil"
"github.com/stretchr/testify/assert"
"github.com/stretchr/testify/require"
)
func TestMachineIXHappyPath(t *testing.T) {
ca, _, caKey, _ := ct.NewTestCaCert(
cert.Version2, cert.Curve_CURVE25519, time.Time{}, time.Time{}, nil, nil, nil,
)
caPool := ct.NewTestCAPool(ca)
initCS := newTestCertState(t, ca, caKey, "initiator", []netip.Prefix{netip.MustParsePrefix("10.0.0.1/24")})
respCS := newTestCertState(t, ca, caKey, "responder", []netip.Prefix{netip.MustParsePrefix("10.0.0.2/24")})
initR, respR := doFullHandshake(t, initCS, respCS, caPool)
assert.Equal(t, "responder", initR.RemoteCert.Certificate.Name())
assert.Equal(t, "initiator", respR.RemoteCert.Certificate.Name())
assert.Equal(t, uint32(1000), initR.LocalIndex)
assert.Equal(t, uint32(2000), initR.RemoteIndex)
assert.Equal(t, uint32(2000), respR.LocalIndex)
assert.Equal(t, uint32(1000), respR.RemoteIndex)
assert.Equal(t, uint64(2), initR.MessageIndex, "IX has 2 messages")
assert.Equal(t, uint64(2), respR.MessageIndex, "IX has 2 messages")
ct1, err := initR.EKey.Encrypt(nil, nil, []byte("hello"))
require.NoError(t, err)
pt1, err := respR.DKey.Decrypt(nil, nil, ct1)
require.NoError(t, err)
assert.Equal(t, []byte("hello"), pt1)
ct2, err := respR.EKey.Encrypt(nil, nil, []byte("world"))
require.NoError(t, err)
pt2, err := initR.DKey.Decrypt(nil, nil, ct2)
require.NoError(t, err)
assert.Equal(t, []byte("world"), pt2)
}
func TestMachineInitiateErrors(t *testing.T) {
ca, _, caKey, _ := ct.NewTestCaCert(
cert.Version2, cert.Curve_CURVE25519, time.Time{}, time.Time{}, nil, nil, nil,
)
caPool := ct.NewTestCAPool(ca)
cs := newTestCertState(t, ca, caKey, "test", []netip.Prefix{netip.MustParsePrefix("10.0.0.1/24")})
v := testVerifier(caPool)
t.Run("initiate on responder", func(t *testing.T) {
m := newTestMachine(t, cs, v, false, 100)
_, err := m.Initiate(nil)
require.ErrorIs(t, err, ErrInitiateOnResponder)
assert.True(t, m.Failed())
})
t.Run("initiate called twice", func(t *testing.T) {
m := newTestMachine(t, cs, v, true, 100)
_, err := m.Initiate(nil)
require.NoError(t, err)
_, err = m.Initiate(nil)
require.ErrorIs(t, err, ErrInitiateAlreadyCalled)
assert.True(t, m.Failed())
})
t.Run("process packet before initiate on initiator", func(t *testing.T) {
m := newTestMachine(t, cs, v, true, 100)
_, _, err := m.ProcessPacket(nil, make([]byte, 100))
require.ErrorIs(t, err, ErrInitiateNotCalled)
assert.True(t, m.Failed())
})
t.Run("calling failed machine", func(t *testing.T) {
m := newTestMachine(t, cs, v, false, 100)
_, err := m.Initiate(nil) // fails: responder
require.Error(t, err)
_, err = m.Initiate(nil) // fails: already failed
require.ErrorIs(t, err, ErrMachineFailed)
})
}
func TestMachineProcessPacketErrors(t *testing.T) {
ca, _, caKey, _ := ct.NewTestCaCert(
cert.Version2, cert.Curve_CURVE25519, time.Time{}, time.Time{}, nil, nil, nil,
)
caPool := ct.NewTestCAPool(ca)
cs := newTestCertState(t, ca, caKey, "test", []netip.Prefix{netip.MustParsePrefix("10.0.0.1/24")})
v := testVerifier(caPool)
t.Run("packet too short", func(t *testing.T) {
m := newTestMachine(t, cs, v, false, 100)
_, _, err := m.ProcessPacket(nil, []byte{1, 2, 3})
require.ErrorIs(t, err, ErrPacketTooShort)
assert.False(t, m.Failed(), "short packet should not kill machine")
})
t.Run("noise decryption failure is recoverable", func(t *testing.T) {
initCS := newTestCertState(t, ca, caKey, "init", []netip.Prefix{netip.MustParsePrefix("10.0.0.1/24")})
initM := newTestMachine(t, initCS, v, true, 100)
msg1, err := initM.Initiate(nil)
require.NoError(t, err)
respM := newTestMachine(t, cs, v, false, 200)
resp, _, err := respM.ProcessPacket(nil, msg1)
require.NoError(t, err)
corrupted := make([]byte, len(resp))
copy(corrupted, resp)
for i := header.Len; i < len(corrupted); i++ {
corrupted[i] ^= 0xff
}
_, _, err = initM.ProcessPacket(nil, corrupted)
require.Error(t, err)
assert.False(t, initM.Failed(), "noise failure should be recoverable")
// And the machine should still complete a real handshake afterward.
_, result, err := initM.ProcessPacket(nil, resp)
require.NoError(t, err)
require.NotNil(t, result, "initiator should complete on the legitimate response")
})
t.Run("invalid cert is fatal", func(t *testing.T) {
otherCA, _, otherCAKey, _ := ct.NewTestCaCert(
cert.Version2, cert.Curve_CURVE25519, time.Time{}, time.Time{}, nil, nil, nil,
)
otherCS := newTestCertState(t, otherCA, otherCAKey, "other", []netip.Prefix{netip.MustParsePrefix("10.0.0.2/24")})
initM := newTestMachine(t, otherCS, testVerifier(ct.NewTestCAPool(otherCA)), true, 100)
msg1, err := initM.Initiate(nil)
require.NoError(t, err)
respM := newTestMachine(t, cs, v, false, 200)
_, _, err = respM.ProcessPacket(nil, msg1)
require.Error(t, err)
assert.True(t, respM.Failed(), "cert validation failure should kill machine")
})
t.Run("subtype mismatch is recoverable", func(t *testing.T) {
initCS := newTestCertState(t, ca, caKey, "init", []netip.Prefix{netip.MustParsePrefix("10.0.0.1/24")})
initM := newTestMachine(t, initCS, v, true, 100)
msg1, err := initM.Initiate(nil)
require.NoError(t, err)
// Mutate the subtype byte (offset 1 in the header) to a value the
// responder Machine wasn't built for.
bad := make([]byte, len(msg1))
copy(bad, msg1)
bad[1] = 0xff
respM := newTestMachine(t, cs, v, false, 200)
_, _, err = respM.ProcessPacket(nil, bad)
require.ErrorIs(t, err, ErrSubtypeMismatch)
assert.False(t, respM.Failed(), "subtype mismatch should not kill the machine")
// And the machine should still complete a real handshake afterward.
resp, result, err := respM.ProcessPacket(nil, msg1)
require.NoError(t, err)
require.NotNil(t, result, "responder should complete on the legitimate stage-1 packet")
assert.NotEmpty(t, resp, "responder should produce a stage-2 reply")
})
}
// TestMachineProcessPayload exercises processPayload's internal validation
// directly. Most of these failure modes can't be reached black-box once the
// subtype check at the top of ProcessPacket gates external callers, so we
// drive them by hand here for coverage.
func TestMachineProcessPayload(t *testing.T) {
ca, _, caKey, _ := ct.NewTestCaCert(
cert.Version2, cert.Curve_CURVE25519, time.Time{}, time.Time{}, nil, nil, nil,
)
caPool := ct.NewTestCAPool(ca)
cs := newTestCertState(t, ca, caKey, "test", []netip.Prefix{netip.MustParsePrefix("10.0.0.1/24")})
v := testVerifier(caPool)
t.Run("empty message with expects fails", func(t *testing.T) {
m := newTestMachine(t, cs, v, false, 100)
err := m.processPayload(nil, msgFlags{expectsPayload: true, expectsCert: true})
require.ErrorIs(t, err, ErrMissingContent)
assert.True(t, m.Failed())
})
t.Run("empty message with no expects passes", func(t *testing.T) {
m := newTestMachine(t, cs, v, false, 100)
err := m.processPayload(nil, msgFlags{})
require.NoError(t, err)
assert.False(t, m.Failed())
})
t.Run("malformed protobuf is fatal", func(t *testing.T) {
m := newTestMachine(t, cs, v, false, 100)
err := m.processPayload([]byte{0xff, 0xff, 0xff}, msgFlags{expectsPayload: true, expectsCert: true})
require.Error(t, err)
assert.True(t, m.Failed())
})
t.Run("unexpected payload data is fatal", func(t *testing.T) {
m := newTestMachine(t, cs, v, false, 100)
// A payload with index data when none was expected.
bytes := MarshalPayload(nil, Payload{InitiatorIndex: 42, Time: 1})
err := m.processPayload(bytes, msgFlags{expectsPayload: false, expectsCert: false})
require.ErrorIs(t, err, ErrUnexpectedContent)
assert.True(t, m.Failed())
})
t.Run("unexpected cert data is fatal", func(t *testing.T) {
m := newTestMachine(t, cs, v, false, 100)
// A payload with cert when none was expected.
bytes := MarshalPayload(nil, Payload{Cert: []byte{1, 2, 3}, CertVersion: 2})
err := m.processPayload(bytes, msgFlags{expectsPayload: false, expectsCert: false})
require.ErrorIs(t, err, ErrUnexpectedContent)
assert.True(t, m.Failed())
})
t.Run("missing payload data when expected is fatal", func(t *testing.T) {
m := newTestMachine(t, cs, v, false, 100)
// Cert present, but no index/time fields.
bytes := MarshalPayload(nil, Payload{Cert: []byte{1, 2, 3}, CertVersion: 2})
err := m.processPayload(bytes, msgFlags{expectsPayload: true, expectsCert: true})
require.ErrorIs(t, err, ErrUnexpectedContent)
assert.True(t, m.Failed())
})
}
// TestMachineRequireComplete checks the fail-on-incomplete-handshake path
// directly. Like processPayload above this isn't reachable from a normal IX
// flow, so we drive it by hand.
func TestMachineRequireComplete(t *testing.T) {
ca, _, caKey, _ := ct.NewTestCaCert(
cert.Version2, cert.Curve_CURVE25519, time.Time{}, time.Time{}, nil, nil, nil,
)
caPool := ct.NewTestCAPool(ca)
cs := newTestCertState(t, ca, caKey, "test", []netip.Prefix{netip.MustParsePrefix("10.0.0.1/24")})
v := testVerifier(caPool)
t.Run("missing both fails", func(t *testing.T) {
m := newTestMachine(t, cs, v, false, 100)
err := m.requireComplete()
require.ErrorIs(t, err, ErrIncompleteHandshake)
assert.True(t, m.Failed())
})
t.Run("payload only fails", func(t *testing.T) {
m := newTestMachine(t, cs, v, false, 100)
m.payloadSet = true
err := m.requireComplete()
require.ErrorIs(t, err, ErrIncompleteHandshake)
assert.True(t, m.Failed())
})
t.Run("cert only fails", func(t *testing.T) {
m := newTestMachine(t, cs, v, false, 100)
m.remoteCertSet = true
err := m.requireComplete()
require.ErrorIs(t, err, ErrIncompleteHandshake)
assert.True(t, m.Failed())
})
t.Run("both set passes", func(t *testing.T) {
m := newTestMachine(t, cs, v, false, 100)
m.payloadSet = true
m.remoteCertSet = true
err := m.requireComplete()
require.NoError(t, err)
assert.False(t, m.Failed())
})
}
func TestMachineAESCipher(t *testing.T) {
ca, _, caKey, _ := ct.NewTestCaCert(
cert.Version2, cert.Curve_CURVE25519, time.Time{}, time.Time{}, nil, nil, nil,
)
caPool := ct.NewTestCAPool(ca)
initCS := newTestCertStateWithCipher(
t, ca, caKey, "init",
[]netip.Prefix{netip.MustParsePrefix("10.0.0.1/24")},
noiseutil.CipherAESGCM,
)
respCS := newTestCertStateWithCipher(
t, ca, caKey, "resp",
[]netip.Prefix{netip.MustParsePrefix("10.0.0.2/24")},
noiseutil.CipherAESGCM,
)
initR, respR := doFullHandshake(t, initCS, respCS, caPool)
ct1, err := initR.EKey.Encrypt(nil, nil, []byte("works"))
require.NoError(t, err)
pt1, err := respR.DKey.Decrypt(nil, nil, ct1)
require.NoError(t, err)
assert.Equal(t, []byte("works"), pt1)
ct2, err := respR.EKey.Encrypt(nil, nil, []byte("back"))
require.NoError(t, err)
pt2, err := initR.DKey.Decrypt(nil, nil, ct2)
require.NoError(t, err)
assert.Equal(t, []byte("back"), pt2)
}
func TestResultFields(t *testing.T) {
ca, _, caKey, _ := ct.NewTestCaCert(
cert.Version2, cert.Curve_CURVE25519, time.Time{}, time.Time{}, nil, nil, nil,
)
caPool := ct.NewTestCAPool(ca)
initCS := newTestCertState(t, ca, caKey, "init", []netip.Prefix{netip.MustParsePrefix("10.0.0.1/24")})
respCS := newTestCertState(t, ca, caKey, "resp", []netip.Prefix{netip.MustParsePrefix("10.0.0.2/24")})
initR, respR := doFullHandshake(t, initCS, respCS, caPool)
assert.True(t, initR.Initiator)
assert.False(t, respR.Initiator)
assert.NotZero(t, initR.HandshakeTime)
assert.NotZero(t, respR.HandshakeTime)
assert.NotNil(t, initR.RemoteCert)
assert.NotNil(t, respR.RemoteCert)
}
func TestMachineBufferReuse(t *testing.T) {
ca, _, caKey, _ := ct.NewTestCaCert(
cert.Version2, cert.Curve_CURVE25519, time.Time{}, time.Time{}, nil, nil, nil,
)
caPool := ct.NewTestCAPool(ca)
initCS := newTestCertState(t, ca, caKey, "init", []netip.Prefix{netip.MustParsePrefix("10.0.0.1/24")})
respCS := newTestCertState(t, ca, caKey, "resp", []netip.Prefix{netip.MustParsePrefix("10.0.0.2/24")})
v := testVerifier(caPool)
initM := newTestMachine(t, initCS, v, true, 1000)
respM := newTestMachine(t, respCS, v, false, 2000)
msg1, err := initM.Initiate(nil)
require.NoError(t, err)
t.Run("response writes into provided buffer", func(t *testing.T) {
buf := make([]byte, 0, 4096)
resp, result, err := respM.ProcessPacket(buf, msg1)
require.NoError(t, err)
require.NotNil(t, result)
assert.NotEmpty(t, resp, "response should have content")
assert.Equal(t, &buf[:1][0], &resp[:1][0],
"response should reuse the provided buffer's backing array")
})
t.Run("initiate writes into provided buffer", func(t *testing.T) {
initM2 := newTestMachine(t, initCS, v, true, 3000)
buf := make([]byte, 0, 4096)
msg, err := initM2.Initiate(buf)
require.NoError(t, err)
assert.NotEmpty(t, msg, "initiate should have content")
assert.Equal(t, &buf[:1][0], &msg[:1][0],
"initiate should reuse the provided buffer's backing array")
})
t.Run("nil out still works", func(t *testing.T) {
initM2 := newTestMachine(t, initCS, v, true, 4000)
respM2 := newTestMachine(t, respCS, v, false, 5000)
msg1, err := initM2.Initiate(nil)
require.NoError(t, err)
resp, _, err := respM2.ProcessPacket(nil, msg1)
require.NoError(t, err)
out, result, err := initM2.ProcessPacket(nil, resp)
require.NoError(t, err)
assert.NotNil(t, result)
assert.Nil(t, out, "initiator should have no response for IX msg2")
})
}
func TestMachineMsgIndexTracking(t *testing.T) {
ca, _, caKey, _ := ct.NewTestCaCert(
cert.Version2, cert.Curve_CURVE25519, time.Time{}, time.Time{}, nil, nil, nil,
)
caPool := ct.NewTestCAPool(ca)
initCS := newTestCertState(t, ca, caKey, "init", []netip.Prefix{netip.MustParsePrefix("10.0.0.1/24")})
respCS := newTestCertState(t, ca, caKey, "resp", []netip.Prefix{netip.MustParsePrefix("10.0.0.2/24")})
v := testVerifier(caPool)
initM := newTestMachine(t, initCS, v, true, 100)
respM := newTestMachine(t, respCS, v, false, 200)
msg1, err := initM.Initiate(nil)
require.NoError(t, err)
resp1, result1, err := respM.ProcessPacket(nil, msg1)
require.NoError(t, err)
assert.NotNil(t, result1)
_, result2, err := initM.ProcessPacket(nil, resp1)
require.NoError(t, err)
assert.NotNil(t, result2)
}
func TestMachineThreeMessagePattern(t *testing.T) {
registerTestXXInfo(t)
// Use HandshakeXX (3 messages) to verify the Machine handles multi-message
// patterns correctly. XX flow:
// msg1 (I->R): [E] - payload only, no cert
// msg2 (R->I): [E, ee, S, es] - payload + cert
// msg3 (I->R): [S, se] - cert only (no payload, not first two)
ca, _, caKey, _ := ct.NewTestCaCert(
cert.Version2, cert.Curve_CURVE25519, time.Time{}, time.Time{}, nil, nil, nil,
)
caPool := ct.NewTestCAPool(ca)
v := testVerifier(caPool)
initCS := newTestCertState(t, ca, caKey, "init", []netip.Prefix{netip.MustParsePrefix("10.0.0.1/24")})
respCS := newTestCertState(t, ca, caKey, "resp", []netip.Prefix{netip.MustParsePrefix("10.0.0.2/24")})
initM, err := NewMachine(
cert.Version2,
initCS.getCredential, v,
func() (uint32, error) { return 1000, nil },
true, header.HandshakeXXPSK0,
)
require.NoError(t, err)
respM, err := NewMachine(
cert.Version2,
respCS.getCredential, v,
func() (uint32, error) { return 2000, nil },
false, header.HandshakeXXPSK0,
)
require.NoError(t, err)
// msg1: initiator -> responder (E only, no cert)
msg1, err := initM.Initiate(nil)
require.NoError(t, err)
assert.NotEmpty(t, msg1)
// Responder processes msg1, should not complete yet, should produce msg2
msg2, result, err := respM.ProcessPacket(nil, msg1)
require.NoError(t, err)
assert.Nil(t, result, "XX should not complete on msg1")
assert.NotEmpty(t, msg2, "responder should produce msg2")
// Initiator processes msg2: gets responder's cert, produces msg3, and
// completes (WriteMessage for msg3 derives keys)
msg3, initResult, err := initM.ProcessPacket(nil, msg2)
require.NoError(t, err)
require.NotNil(t, initResult, "XX initiator should complete after reading msg2 and writing msg3")
assert.NotEmpty(t, msg3, "initiator should produce msg3")
assert.Equal(t, "resp", initResult.RemoteCert.Certificate.Name())
// Responder processes msg3: gets initiator's cert and completes
_, respResult, err := respM.ProcessPacket(nil, msg3)
require.NoError(t, err)
require.NotNil(t, respResult, "XX responder should complete on msg3")
assert.Equal(t, "init", respResult.RemoteCert.Certificate.Name())
assert.Equal(t, uint64(3), initResult.MessageIndex, "XX has 3 messages")
assert.Equal(t, uint64(3), respResult.MessageIndex, "XX has 3 messages")
// Verify keys work
ct1, err := initResult.EKey.Encrypt(nil, nil, []byte("three messages"))
require.NoError(t, err)
pt1, err := respResult.DKey.Decrypt(nil, nil, ct1)
require.NoError(t, err)
assert.Equal(t, []byte("three messages"), pt1)
}
// NOTE: ErrIncompleteHandshake is tested implicitly. It can't be triggered with
// IX since the cert is always in the payload. A 3-message pattern test (HybridIX)
// should exercise the case where cert arrives in msg3 and verify that completing
// without it fails.
func TestMachineExpiredCert(t *testing.T) {
ca, _, caKey, _ := ct.NewTestCaCert(
cert.Version2, cert.Curve_CURVE25519,
time.Now().Add(-24*time.Hour), time.Now().Add(24*time.Hour),
nil, nil, nil,
)
caPool := ct.NewTestCAPool(ca)
expCert, _, expKeyPEM, _ := ct.NewTestCert(
cert.Version2, cert.Curve_CURVE25519, ca, caKey,
"expired", time.Now().Add(-2*time.Hour), time.Now().Add(-1*time.Hour),
[]netip.Prefix{netip.MustParsePrefix("10.0.0.1/24")}, nil, nil,
)
expKey, _, _, err := cert.UnmarshalPrivateKeyFromPEM(expKeyPEM)
require.NoError(t, err)
expHsBytes, err := expCert.MarshalForHandshakes()
require.NoError(t, err)
ncs := noise.NewCipherSuite(noise.DH25519, noise.CipherChaChaPoly, noise.HashSHA256)
expiredCS := &testCertState{
version: cert.Version2,
creds: map[cert.Version]*Credential{
cert.Version2: NewCredential(expCert, expHsBytes, expKey, ncs),
},
}
respCS := newTestCertState(
t, ca, caKey, "responder",
[]netip.Prefix{netip.MustParsePrefix("10.0.0.2/24")},
)
_, respM, _, _, err := initiateHandshake(
t, expiredCS, testVerifier(caPool),
respCS, testVerifier(caPool),
)
require.ErrorContains(t, err, "verify cert")
assert.True(t, respM.Failed())
}
func TestMachineNoCertNetworks(t *testing.T) {
ca, _, caKey, _ := ct.NewTestCaCert(
cert.Version2, cert.Curve_CURVE25519, time.Time{}, time.Time{}, nil, nil, nil,
)
caPool := ct.NewTestCAPool(ca)
caHsBytes, err := ca.MarshalForHandshakes()
require.NoError(t, err)
ncs := noise.NewCipherSuite(noise.DH25519, noise.CipherChaChaPoly, noise.HashSHA256)
noNetCS := &testCertState{
version: cert.Version2,
creds: map[cert.Version]*Credential{
cert.Version2: NewCredential(ca, caHsBytes, caKey, ncs),
},
}
respCS := newTestCertState(
t, ca, caKey, "responder",
[]netip.Prefix{netip.MustParsePrefix("10.0.0.2/24")},
)
_, respM, _, _, err := initiateHandshake(
t, noNetCS, testVerifier(caPool),
respCS, testVerifier(caPool),
)
require.Error(t, err)
assert.True(t, respM.Failed())
}
func TestMachineDifferentCAs(t *testing.T) {
ca1, _, caKey1, _ := ct.NewTestCaCert(
cert.Version2, cert.Curve_CURVE25519, time.Time{}, time.Time{}, nil, nil, nil,
)
ca2, _, caKey2, _ := ct.NewTestCaCert(
cert.Version2, cert.Curve_CURVE25519, time.Time{}, time.Time{}, nil, nil, nil,
)
initCS := newTestCertState(
t, ca1, caKey1, "init",
[]netip.Prefix{netip.MustParsePrefix("10.0.0.1/24")},
)
respCS := newTestCertState(
t, ca2, caKey2, "resp",
[]netip.Prefix{netip.MustParsePrefix("10.0.0.2/24")},
)
_, respM, _, _, err := initiateHandshake(
t, initCS, testVerifier(ct.NewTestCAPool(ca1)),
respCS, testVerifier(ct.NewTestCAPool(ca2)),
)
require.ErrorContains(t, err, "verify cert")
assert.True(t, respM.Failed())
}
func TestMachineVersionNegotiation(t *testing.T) {
ca1, _, caKey1, _ := ct.NewTestCaCert(
cert.Version1, cert.Curve_CURVE25519, time.Time{}, time.Time{}, nil, nil, nil,
)
ca2, _, caKey2, _ := ct.NewTestCaCert(
cert.Version2, cert.Curve_CURVE25519, time.Time{}, time.Time{}, nil, nil, nil,
)
caPool := ct.NewTestCAPool(ca1, ca2)
makeMultiVersionResp := func(t *testing.T) *testCertState {
t.Helper()
respCertV1, _, respKeyPEM, _ := ct.NewTestCert(
cert.Version1, cert.Curve_CURVE25519, ca1, caKey1, "resp",
ca1.NotBefore(), ca1.NotAfter(),
[]netip.Prefix{netip.MustParsePrefix("10.0.0.2/24")}, nil, nil,
)
respKey, _, _, _ := cert.UnmarshalPrivateKeyFromPEM(respKeyPEM)
respCertV2, _ := ct.NewTestCertDifferentVersion(respCertV1, cert.Version2, ca2, caKey2)
respHsV1, _ := respCertV1.MarshalForHandshakes()
respHsV2, _ := respCertV2.MarshalForHandshakes()
ncs := noise.NewCipherSuite(noise.DH25519, noise.CipherChaChaPoly, noise.HashSHA256)
return &testCertState{
version: cert.Version1,
creds: map[cert.Version]*Credential{
cert.Version1: NewCredential(respCertV1, respHsV1, respKey, ncs),
cert.Version2: NewCredential(respCertV2, respHsV2, respKey, ncs),
},
}
}
t.Run("responder matches initiator version", func(t *testing.T) {
initCS := newTestCertState(
t, ca2, caKey2, "init",
[]netip.Prefix{netip.MustParsePrefix("10.0.0.1/24")},
)
respCS := makeMultiVersionResp(t)
v := testVerifier(caPool)
initM, _, respResult, resp, err := initiateHandshake(
t, initCS, v,
respCS, v,
)
require.NoError(t, err)
require.NotNil(t, respResult)
assert.Equal(t, cert.Version2, respResult.MyCert.Version(),
"responder should negotiate to initiator's version")
_, initResult, err := initM.ProcessPacket(nil, resp)
require.NoError(t, err)
require.NotNil(t, initResult)
assert.Equal(t, cert.Version2, initResult.RemoteCert.Certificate.Version(),
"initiator should see V2 cert from responder")
})
t.Run("responder keeps version when no match available", func(t *testing.T) {
initCS := newTestCertState(
t, ca2, caKey2, "init",
[]netip.Prefix{netip.MustParsePrefix("10.0.0.1/24")},
)
respCert, _, respKeyPEM, _ := ct.NewTestCert(
cert.Version1, cert.Curve_CURVE25519, ca1, caKey1, "resp",
ca1.NotBefore(), ca1.NotAfter(),
[]netip.Prefix{netip.MustParsePrefix("10.0.0.2/24")}, nil, nil,
)
respKey, _, _, _ := cert.UnmarshalPrivateKeyFromPEM(respKeyPEM)
respHs, _ := respCert.MarshalForHandshakes()
ncs := noise.NewCipherSuite(noise.DH25519, noise.CipherChaChaPoly, noise.HashSHA256)
respCS := &testCertState{
version: cert.Version1,
creds: map[cert.Version]*Credential{
cert.Version1: NewCredential(respCert, respHs, respKey, ncs),
},
}
v := testVerifier(caPool)
_, _, respResult, _, err := initiateHandshake(
t, initCS, v,
respCS, v,
)
require.NoError(t, err)
require.NotNil(t, respResult)
assert.Equal(t, cert.Version1, respResult.MyCert.Version(),
"responder should keep V1 when V2 not available")
})
}
-54
View File
@@ -1,54 +0,0 @@
package handshake
import (
"fmt"
"github.com/flynn/noise"
"github.com/slackhq/nebula/header"
)
// msgFlags tracks what application data a handshake message carries.
type msgFlags struct {
expectsPayload bool // message carries indexes and time
expectsCert bool // message carries the certificate
}
// subtypeInfo bundles the noise pattern with the per-message flags for a
// given handshake subtype.
type subtypeInfo struct {
pattern noise.HandshakePattern
msgs []msgFlags
}
// subtypeInfos defines the noise pattern and message content layout for each
// handshake subtype.
var subtypeInfos = map[header.MessageSubType]subtypeInfo{
// IX: 2 messages, both carry payload and cert
header.HandshakeIXPSK0: {
pattern: noise.HandshakeIX,
msgs: []msgFlags{
{expectsPayload: true, expectsCert: true},
{expectsPayload: true, expectsCert: true},
},
},
// XX: 3 messages
// msg1 (I->R): payload only
// msg2 (R->I): payload + cert
// msg3 (I->R): cert only
//header.HandshakeXXPSK0: {
// pattern: noise.HandshakeXX,
// msgs: []msgFlags{
// {expectsPayload: true, expectsCert: false},
// {expectsPayload: true, expectsCert: true},
// {expectsPayload: false, expectsCert: true},
// },
//},
}
func subtypeInfoFor(subtype header.MessageSubType) (subtypeInfo, error) {
if info, ok := subtypeInfos[subtype]; ok {
return info, nil
}
return subtypeInfo{}, fmt.Errorf("%w: %d", ErrUnknownSubtype, subtype)
}
-63
View File
@@ -1,63 +0,0 @@
package handshake
import (
"testing"
"github.com/flynn/noise"
"github.com/slackhq/nebula/header"
"github.com/stretchr/testify/assert"
"github.com/stretchr/testify/require"
)
func TestSubtypeInfo(t *testing.T) {
t.Run("IX", func(t *testing.T) {
info, err := subtypeInfoFor(header.HandshakeIXPSK0)
require.NoError(t, err)
assert.Equal(t, noise.HandshakeIX.Name, info.pattern.Name)
require.Len(t, info.msgs, 2)
// msg1: payload + cert
assert.True(t, info.msgs[0].expectsPayload)
assert.True(t, info.msgs[0].expectsCert)
// msg2: payload + cert
assert.True(t, info.msgs[1].expectsPayload)
assert.True(t, info.msgs[1].expectsCert)
})
t.Run("XX", func(t *testing.T) {
registerTestXXInfo(t)
info, err := subtypeInfoFor(header.HandshakeXXPSK0)
require.NoError(t, err)
assert.Equal(t, noise.HandshakeXX.Name, info.pattern.Name)
require.Len(t, info.msgs, 3)
// msg1: payload only
assert.True(t, info.msgs[0].expectsPayload)
assert.False(t, info.msgs[0].expectsCert)
// msg2: payload + cert
assert.True(t, info.msgs[1].expectsPayload)
assert.True(t, info.msgs[1].expectsCert)
// msg3: cert only
assert.False(t, info.msgs[2].expectsPayload)
assert.True(t, info.msgs[2].expectsCert)
})
t.Run("unknown subtype returns error", func(t *testing.T) {
_, err := subtypeInfoFor(99)
require.ErrorIs(t, err, ErrUnknownSubtype)
})
}
// registerTestXXInfo temporarily registers XX subtype info for testing.
func registerTestXXInfo(t *testing.T) {
t.Helper()
subtypeInfos[header.HandshakeXXPSK0] = subtypeInfo{
pattern: noise.HandshakeXX,
msgs: []msgFlags{
{expectsPayload: true, expectsCert: false},
{expectsPayload: true, expectsCert: true},
{expectsPayload: false, expectsCert: true},
},
}
t.Cleanup(func() {
delete(subtypeInfos, header.HandshakeXXPSK0)
})
}
-173
View File
@@ -1,173 +0,0 @@
package handshake
import (
"errors"
"math"
"google.golang.org/protobuf/encoding/protowire"
)
var (
errInvalidHandshakeMessage = errors.New("invalid handshake message")
errInvalidHandshakeDetails = errors.New("invalid handshake details")
)
// Payload represents the decoded fields of a handshake message.
// Wire format is protobuf-compatible with NebulaHandshake{Details: NebulaHandshakeDetails{...}}.
type Payload struct {
Cert []byte
InitiatorIndex uint32
ResponderIndex uint32
Time uint64
CertVersion uint32
}
// Proto field numbers for NebulaHandshakeDetails
const (
fieldCert = 1 // bytes
fieldInitiatorIndex = 2 // uint32
fieldResponderIndex = 3 // uint32
fieldTime = 5 // uint64
fieldCertVersion = 8 // uint32
)
// MarshalPayload encodes a handshake payload in protobuf wire format compatible
// with NebulaHandshake{Details: NebulaHandshakeDetails{...}}.
// Returns out (which may be nil), with the marshalled Payload appended to it.
func MarshalPayload(out []byte, p Payload) []byte {
var details []byte
if len(p.Cert) > 0 {
details = protowire.AppendTag(details, fieldCert, protowire.BytesType)
details = protowire.AppendBytes(details, p.Cert)
}
if p.InitiatorIndex != 0 {
details = protowire.AppendTag(details, fieldInitiatorIndex, protowire.VarintType)
details = protowire.AppendVarint(details, uint64(p.InitiatorIndex))
}
if p.ResponderIndex != 0 {
details = protowire.AppendTag(details, fieldResponderIndex, protowire.VarintType)
details = protowire.AppendVarint(details, uint64(p.ResponderIndex))
}
if p.Time != 0 {
details = protowire.AppendTag(details, fieldTime, protowire.VarintType)
details = protowire.AppendVarint(details, p.Time)
}
if p.CertVersion != 0 {
details = protowire.AppendTag(details, fieldCertVersion, protowire.VarintType)
details = protowire.AppendVarint(details, uint64(p.CertVersion))
}
out = protowire.AppendTag(out, 1, protowire.BytesType)
out = protowire.AppendBytes(out, details)
return out
}
// UnmarshalPayload decodes a protobuf-encoded NebulaHandshake message.
func UnmarshalPayload(b []byte) (Payload, error) {
var p Payload
for len(b) > 0 {
num, typ, n := protowire.ConsumeTag(b)
if n < 0 {
return p, errInvalidHandshakeMessage
}
b = b[n:]
switch {
case num == 1 && typ == protowire.BytesType:
details, n := protowire.ConsumeBytes(b)
if n < 0 {
return p, errInvalidHandshakeMessage
}
b = b[n:]
if err := unmarshalPayloadDetails(&p, details); err != nil {
return p, err
}
default:
n := protowire.ConsumeFieldValue(num, typ, b)
if n < 0 {
return p, errInvalidHandshakeMessage
}
b = b[n:]
}
}
return p, nil
}
func unmarshalPayloadDetails(p *Payload, b []byte) error {
for len(b) > 0 {
num, typ, n := protowire.ConsumeTag(b)
if n < 0 {
return errInvalidHandshakeDetails
}
b = b[n:]
// For known field numbers, reject any non-matching wire type as a
// hard error rather than silently skipping. The caller will catch
// missing-field cases downstream, but a wire-type mismatch on a tag
// we know is a peer protocol violation worth flagging here.
// Repeated occurrences of a singular field follow proto3 last-wins.
switch num {
case fieldCert:
if typ != protowire.BytesType {
return errInvalidHandshakeDetails
}
v, n := protowire.ConsumeBytes(b)
if n < 0 {
return errInvalidHandshakeDetails
}
p.Cert = append([]byte(nil), v...)
b = b[n:]
case fieldInitiatorIndex:
if typ != protowire.VarintType {
return errInvalidHandshakeDetails
}
v, n := protowire.ConsumeVarint(b)
if n < 0 || v > math.MaxUint32 {
return errInvalidHandshakeDetails
}
p.InitiatorIndex = uint32(v)
b = b[n:]
case fieldResponderIndex:
if typ != protowire.VarintType {
return errInvalidHandshakeDetails
}
v, n := protowire.ConsumeVarint(b)
if n < 0 || v > math.MaxUint32 {
return errInvalidHandshakeDetails
}
p.ResponderIndex = uint32(v)
b = b[n:]
case fieldTime:
if typ != protowire.VarintType {
return errInvalidHandshakeDetails
}
v, n := protowire.ConsumeVarint(b)
if n < 0 {
return errInvalidHandshakeDetails
}
p.Time = v
b = b[n:]
case fieldCertVersion:
if typ != protowire.VarintType {
return errInvalidHandshakeDetails
}
v, n := protowire.ConsumeVarint(b)
if n < 0 || v > math.MaxUint32 {
return errInvalidHandshakeDetails
}
p.CertVersion = uint32(v)
b = b[n:]
default:
n := protowire.ConsumeFieldValue(num, typ, b)
if n < 0 {
return errInvalidHandshakeDetails
}
b = b[n:]
}
}
return nil
}
-361
View File
@@ -1,361 +0,0 @@
package handshake
import (
"bytes"
"math"
"testing"
"github.com/stretchr/testify/assert"
"github.com/stretchr/testify/require"
"google.golang.org/protobuf/encoding/protowire"
)
func TestPayloadRoundTrip(t *testing.T) {
t.Run("all fields set", func(t *testing.T) {
data := MarshalPayload(nil, Payload{
Cert: []byte("test-cert-bytes"),
CertVersion: 2,
InitiatorIndex: 12345,
ResponderIndex: 67890,
Time: 1234567890,
})
got, err := UnmarshalPayload(data)
require.NoError(t, err)
assert.Equal(t, []byte("test-cert-bytes"), got.Cert)
assert.Equal(t, uint32(12345), got.InitiatorIndex)
assert.Equal(t, uint32(67890), got.ResponderIndex)
assert.Equal(t, uint64(1234567890), got.Time)
assert.Equal(t, uint32(2), got.CertVersion)
})
t.Run("minimal fields", func(t *testing.T) {
data := MarshalPayload(nil, Payload{InitiatorIndex: 1})
got, err := UnmarshalPayload(data)
require.NoError(t, err)
assert.Equal(t, uint32(1), got.InitiatorIndex)
assert.Equal(t, uint32(0), got.ResponderIndex)
assert.Equal(t, uint64(0), got.Time)
assert.Nil(t, got.Cert)
})
t.Run("empty payload", func(t *testing.T) {
data := MarshalPayload(nil, Payload{})
got, err := UnmarshalPayload(data)
require.NoError(t, err)
assert.Equal(t, uint32(0), got.InitiatorIndex)
})
t.Run("large cert bytes", func(t *testing.T) {
bigCert := make([]byte, 4096)
for i := range bigCert {
bigCert[i] = byte(i % 256)
}
data := MarshalPayload(nil, Payload{
Cert: bigCert,
CertVersion: 2,
InitiatorIndex: 999,
})
got, err := UnmarshalPayload(data)
require.NoError(t, err)
assert.Equal(t, bigCert, got.Cert)
assert.Equal(t, uint32(999), got.InitiatorIndex)
})
t.Run("append to existing buffer", func(t *testing.T) {
prefix := []byte("prefix")
data := MarshalPayload(prefix, Payload{InitiatorIndex: 42})
assert.Equal(t, []byte("prefix"), data[:6])
got, err := UnmarshalPayload(data[6:])
require.NoError(t, err)
assert.Equal(t, uint32(42), got.InitiatorIndex)
})
}
func TestPayloadUnknownFields(t *testing.T) {
t.Run("unknown field in outer message is skipped", func(t *testing.T) {
// Marshal a normal payload then append an unknown field (field 99, varint)
data := MarshalPayload(nil, Payload{InitiatorIndex: 42})
data = protowire.AppendTag(data, 99, protowire.VarintType)
data = protowire.AppendVarint(data, 12345)
got, err := UnmarshalPayload(data)
require.NoError(t, err)
assert.Equal(t, uint32(42), got.InitiatorIndex)
})
t.Run("unknown field in details is skipped", func(t *testing.T) {
// Build details with a known field + unknown field
var details []byte
details = protowire.AppendTag(details, fieldInitiatorIndex, protowire.VarintType)
details = protowire.AppendVarint(details, 77)
// Unknown field 50, varint
details = protowire.AppendTag(details, 50, protowire.VarintType)
details = protowire.AppendVarint(details, 9999)
// Another known field after the unknown one
details = protowire.AppendTag(details, fieldResponderIndex, protowire.VarintType)
details = protowire.AppendVarint(details, 88)
// Wrap in outer message
var data []byte
data = protowire.AppendTag(data, 1, protowire.BytesType)
data = protowire.AppendBytes(data, details)
got, err := UnmarshalPayload(data)
require.NoError(t, err)
assert.Equal(t, uint32(77), got.InitiatorIndex)
assert.Equal(t, uint32(88), got.ResponderIndex)
})
t.Run("reserved fields 6 and 7 are skipped", func(t *testing.T) {
// Fields 6 and 7 are reserved in the proto definition
var details []byte
details = protowire.AppendTag(details, fieldInitiatorIndex, protowire.VarintType)
details = protowire.AppendVarint(details, 100)
details = protowire.AppendTag(details, 6, protowire.VarintType)
details = protowire.AppendVarint(details, 1)
details = protowire.AppendTag(details, 7, protowire.VarintType)
details = protowire.AppendVarint(details, 2)
var data []byte
data = protowire.AppendTag(data, 1, protowire.BytesType)
data = protowire.AppendBytes(data, details)
got, err := UnmarshalPayload(data)
require.NoError(t, err)
assert.Equal(t, uint32(100), got.InitiatorIndex)
})
}
func TestPayloadBytesConsumed(t *testing.T) {
t.Run("all bytes consumed on valid input", func(t *testing.T) {
original := Payload{
Cert: []byte("cert"),
CertVersion: 2,
InitiatorIndex: 100,
ResponderIndex: 200,
Time: 999,
}
data := MarshalPayload(nil, original)
got, err := UnmarshalPayload(data)
require.NoError(t, err)
// Re-marshal and compare — proves we consumed and reproduced all fields
remarshaled := MarshalPayload(nil, got)
assert.Equal(t, data, remarshaled)
})
}
// wrapDetails wraps raw detail bytes in the outer NebulaHandshake envelope
// so UnmarshalPayload can reach unmarshalPayloadDetails.
func wrapDetails(details []byte) []byte {
var out []byte
out = protowire.AppendTag(out, 1, protowire.BytesType)
out = protowire.AppendBytes(out, details)
return out
}
func TestPayloadUnmarshalErrors(t *testing.T) {
t.Run("nil input", func(t *testing.T) {
got, err := UnmarshalPayload(nil)
require.NoError(t, err)
assert.Equal(t, uint32(0), got.InitiatorIndex)
})
t.Run("truncated outer tag", func(t *testing.T) {
_, err := UnmarshalPayload([]byte{0x80})
assert.Error(t, err)
})
t.Run("truncated outer details field", func(t *testing.T) {
_, err := UnmarshalPayload([]byte{0x0a, 0x64, 0x01, 0x02, 0x03, 0x04, 0x05})
assert.Error(t, err)
})
t.Run("truncated outer unknown field", func(t *testing.T) {
// Valid tag for unknown field 99 varint, but no value follows
var data []byte
data = protowire.AppendTag(data, 99, protowire.VarintType)
_, err := UnmarshalPayload(data)
assert.Error(t, err)
})
t.Run("truncated details tag", func(t *testing.T) {
_, err := UnmarshalPayload(wrapDetails([]byte{0x80}))
assert.Error(t, err)
})
t.Run("truncated cert bytes", func(t *testing.T) {
// Field 1 (cert), bytes type, length 10 but only 2 bytes
var details []byte
details = protowire.AppendTag(details, fieldCert, protowire.BytesType)
details = append(details, 0x0a, 0x01, 0x02) // length 10, only 2 bytes
_, err := UnmarshalPayload(wrapDetails(details))
assert.Error(t, err)
})
t.Run("truncated initiator index varint", func(t *testing.T) {
var details []byte
details = protowire.AppendTag(details, fieldInitiatorIndex, protowire.VarintType)
details = append(details, 0x80) // incomplete varint
_, err := UnmarshalPayload(wrapDetails(details))
assert.Error(t, err)
})
t.Run("truncated responder index varint", func(t *testing.T) {
var details []byte
details = protowire.AppendTag(details, fieldResponderIndex, protowire.VarintType)
details = append(details, 0x80)
_, err := UnmarshalPayload(wrapDetails(details))
assert.Error(t, err)
})
t.Run("truncated time varint", func(t *testing.T) {
var details []byte
details = protowire.AppendTag(details, fieldTime, protowire.VarintType)
details = append(details, 0x80)
_, err := UnmarshalPayload(wrapDetails(details))
assert.Error(t, err)
})
t.Run("truncated cert version varint", func(t *testing.T) {
var details []byte
details = protowire.AppendTag(details, fieldCertVersion, protowire.VarintType)
details = append(details, 0x80)
_, err := UnmarshalPayload(wrapDetails(details))
assert.Error(t, err)
})
t.Run("truncated unknown field in details", func(t *testing.T) {
var details []byte
details = protowire.AppendTag(details, 50, protowire.VarintType)
details = append(details, 0x80) // incomplete varint
_, err := UnmarshalPayload(wrapDetails(details))
assert.Error(t, err)
})
t.Run("cert with wrong wire type rejected", func(t *testing.T) {
// fieldCert as Varint instead of Bytes.
var details []byte
details = protowire.AppendTag(details, fieldCert, protowire.VarintType)
details = protowire.AppendVarint(details, 42)
_, err := UnmarshalPayload(wrapDetails(details))
assert.Error(t, err)
})
t.Run("initiator index with wrong wire type rejected", func(t *testing.T) {
// fieldInitiatorIndex as Bytes instead of Varint.
var details []byte
details = protowire.AppendTag(details, fieldInitiatorIndex, protowire.BytesType)
details = protowire.AppendBytes(details, []byte{1, 2, 3})
_, err := UnmarshalPayload(wrapDetails(details))
assert.Error(t, err)
})
t.Run("time with wrong wire type rejected", func(t *testing.T) {
var details []byte
details = protowire.AppendTag(details, fieldTime, protowire.BytesType)
details = protowire.AppendBytes(details, []byte{1, 2, 3})
_, err := UnmarshalPayload(wrapDetails(details))
assert.Error(t, err)
})
t.Run("cert version with wrong wire type rejected", func(t *testing.T) {
var details []byte
details = protowire.AppendTag(details, fieldCertVersion, protowire.BytesType)
details = protowire.AppendBytes(details, []byte{1, 2, 3})
_, err := UnmarshalPayload(wrapDetails(details))
assert.Error(t, err)
})
t.Run("repeated singular field follows proto3 last-wins", func(t *testing.T) {
// Per proto3, multiple instances of a singular field are accepted and
// the last value wins. We keep this behavior so that peers using
// alternative encoders aren't rejected.
var details []byte
details = protowire.AppendTag(details, fieldInitiatorIndex, protowire.VarintType)
details = protowire.AppendVarint(details, 1)
details = protowire.AppendTag(details, fieldInitiatorIndex, protowire.VarintType)
details = protowire.AppendVarint(details, 42)
got, err := UnmarshalPayload(wrapDetails(details))
require.NoError(t, err)
assert.Equal(t, uint32(42), got.InitiatorIndex)
})
t.Run("initiator index varint overflow rejected", func(t *testing.T) {
var details []byte
details = protowire.AppendTag(details, fieldInitiatorIndex, protowire.VarintType)
details = protowire.AppendVarint(details, math.MaxUint32+1)
_, err := UnmarshalPayload(wrapDetails(details))
assert.Error(t, err)
})
t.Run("cert version varint overflow rejected", func(t *testing.T) {
var details []byte
details = protowire.AppendTag(details, fieldCertVersion, protowire.VarintType)
details = protowire.AppendVarint(details, math.MaxUint32+1)
_, err := UnmarshalPayload(wrapDetails(details))
assert.Error(t, err)
})
}
// FuzzPayload feeds arbitrary bytes through UnmarshalPayload to confirm it
// never panics, and for any input that parses cleanly, that re-marshal +
// re-parse is a fix-point. Inputs come from an authenticated peer (post-
// noise-decrypt), so the threat model is "valid peer behaving arbitrarily,"
// not "unauthenticated injection."
func FuzzPayload(f *testing.F) {
// Seed corpus with a handful of known-good shapes.
f.Add(MarshalPayload(nil, Payload{}))
f.Add(MarshalPayload(nil, Payload{Cert: []byte{1, 2, 3}, CertVersion: 2}))
f.Add(MarshalPayload(nil, Payload{InitiatorIndex: 42, Time: 1}))
f.Add(MarshalPayload(nil, Payload{
Cert: []byte("seed-cert"),
InitiatorIndex: 1,
ResponderIndex: 2,
Time: 3,
CertVersion: 2,
}))
f.Add([]byte{})
f.Add([]byte{0xff})
f.Fuzz(func(t *testing.T, data []byte) {
p1, err := UnmarshalPayload(data)
if err != nil {
return
}
// For any input that parses, re-marshaling and re-parsing must
// yield an equivalent Payload. This catches dispatch bugs (e.g.
// emitting a field on marshal that we don't accept on parse) and
// any non-idempotent parsing behavior.
b2 := MarshalPayload(nil, p1)
p2, err := UnmarshalPayload(b2)
if err != nil {
t.Fatalf("re-parse of self-marshaled payload failed: %v\nintermediate: %x\n", err, b2)
}
if !payloadsEqual(p1, p2) {
t.Fatalf("re-marshal not idempotent\nfirst: %+v\nsecond: %+v", p1, p2)
}
})
}
func payloadsEqual(a, b Payload) bool {
return bytes.Equal(a.Cert, b.Cert) &&
a.InitiatorIndex == b.InitiatorIndex &&
a.ResponderIndex == b.ResponderIndex &&
a.Time == b.Time &&
a.CertVersion == b.CertVersion
}
+678
View File
@@ -0,0 +1,678 @@
package nebula
import (
"bytes"
"net/netip"
"time"
"github.com/flynn/noise"
"github.com/sirupsen/logrus"
"github.com/slackhq/nebula/cert"
"github.com/slackhq/nebula/header"
)
// NOISE IX Handshakes
// This function constructs a handshake packet, but does not actually send it
// Sending is done by the handshake manager
func ixHandshakeStage0(f *Interface, hh *HandshakeHostInfo) bool {
err := f.handshakeManager.allocateIndex(hh)
if err != nil {
f.l.WithError(err).WithField("vpnAddrs", hh.hostinfo.vpnAddrs).
WithField("handshake", m{"stage": 0, "style": "ix_psk0"}).Error("Failed to generate index")
return false
}
cs := f.pki.getCertState()
v := cs.initiatingVersion
if hh.initiatingVersionOverride != cert.VersionPre1 {
v = hh.initiatingVersionOverride
} else if v < cert.Version2 {
// If we're connecting to a v6 address we should encourage use of a V2 cert
for _, a := range hh.hostinfo.vpnAddrs {
if a.Is6() {
v = cert.Version2
break
}
}
}
crt := cs.getCertificate(v)
if crt == nil {
f.l.WithField("vpnAddrs", hh.hostinfo.vpnAddrs).
WithField("handshake", m{"stage": 0, "style": "ix_psk0"}).
WithField("certVersion", v).
Error("Unable to handshake with host because no certificate is available")
return false
}
crtHs := cs.getHandshakeBytes(v)
if crtHs == nil {
f.l.WithField("vpnAddrs", hh.hostinfo.vpnAddrs).
WithField("handshake", m{"stage": 0, "style": "ix_psk0"}).
WithField("certVersion", v).
Error("Unable to handshake with host because no certificate handshake bytes is available")
return false
}
ci, err := NewConnectionState(f.l, cs, crt, true, noise.HandshakeIX)
if err != nil {
f.l.WithError(err).WithField("vpnAddrs", hh.hostinfo.vpnAddrs).
WithField("handshake", m{"stage": 0, "style": "ix_psk0"}).
WithField("certVersion", v).
Error("Failed to create connection state")
return false
}
hh.hostinfo.ConnectionState = ci
hs := &NebulaHandshake{
Details: &NebulaHandshakeDetails{
InitiatorIndex: hh.hostinfo.localIndexId,
Time: uint64(time.Now().UnixNano()),
Cert: crtHs,
CertVersion: uint32(v),
},
}
hsBytes, err := hs.Marshal()
if err != nil {
f.l.WithError(err).WithField("vpnAddrs", hh.hostinfo.vpnAddrs).
WithField("certVersion", v).
WithField("handshake", m{"stage": 0, "style": "ix_psk0"}).Error("Failed to marshal handshake message")
return false
}
h := header.Encode(make([]byte, header.Len), header.Version, header.Handshake, header.HandshakeIXPSK0, 0, 1)
msg, _, _, err := ci.H.WriteMessage(h, hsBytes)
if err != nil {
f.l.WithError(err).WithField("vpnAddrs", hh.hostinfo.vpnAddrs).
WithField("handshake", m{"stage": 0, "style": "ix_psk0"}).Error("Failed to call noise.WriteMessage")
return false
}
// We are sending handshake packet 1, so we don't expect to receive
// handshake packet 1 from the responder
ci.window.Update(f.l, 1)
hh.hostinfo.HandshakePacket[0] = msg
hh.ready = true
return true
}
func ixHandshakeStage1(f *Interface, via ViaSender, packet []byte, h *header.H) {
cs := f.pki.getCertState()
crt := cs.GetDefaultCertificate()
if crt == nil {
f.l.WithField("from", via).
WithField("handshake", m{"stage": 0, "style": "ix_psk0"}).
WithField("certVersion", cs.initiatingVersion).
Error("Unable to handshake with host because no certificate is available")
return
}
ci, err := NewConnectionState(f.l, cs, crt, false, noise.HandshakeIX)
if err != nil {
f.l.WithError(err).WithField("from", via).
WithField("handshake", m{"stage": 1, "style": "ix_psk0"}).
Error("Failed to create connection state")
return
}
// Mark packet 1 as seen so it doesn't show up as missed
ci.window.Update(f.l, 1)
msg, _, _, err := ci.H.ReadMessage(nil, packet[header.Len:])
if err != nil {
f.l.WithError(err).WithField("from", via).
WithField("handshake", m{"stage": 1, "style": "ix_psk0"}).
Error("Failed to call noise.ReadMessage")
return
}
hs := &NebulaHandshake{}
err = hs.Unmarshal(msg)
if err != nil || hs.Details == nil {
f.l.WithError(err).WithField("from", via).
WithField("handshake", m{"stage": 1, "style": "ix_psk0"}).
Error("Failed unmarshal handshake message")
return
}
rc, err := cert.Recombine(cert.Version(hs.Details.CertVersion), hs.Details.Cert, ci.H.PeerStatic(), ci.Curve())
if err != nil {
f.l.WithError(err).WithField("from", via).
WithField("handshake", m{"stage": 1, "style": "ix_psk0"}).
Info("Handshake did not contain a certificate")
return
}
remoteCert, err := f.pki.GetCAPool().VerifyCertificate(time.Now(), rc)
if err != nil {
fp, fperr := rc.Fingerprint()
if fperr != nil {
fp = "<error generating certificate fingerprint>"
}
e := f.l.WithError(err).WithField("from", via).
WithField("handshake", m{"stage": 1, "style": "ix_psk0"}).
WithField("certVpnNetworks", rc.Networks()).
WithField("certFingerprint", fp)
if f.l.Level >= logrus.DebugLevel {
e = e.WithField("cert", rc)
}
e.Info("Invalid certificate from host")
return
}
if !bytes.Equal(remoteCert.Certificate.PublicKey(), ci.H.PeerStatic()) {
f.l.WithField("from", via).
WithField("handshake", m{"stage": 1, "style": "ix_psk0"}).
WithField("cert", remoteCert).Info("public key mismatch between certificate and handshake")
return
}
if remoteCert.Certificate.Version() != ci.myCert.Version() {
// We started off using the wrong certificate version, lets see if we can match the version that was sent to us
myCertOtherVersion := cs.getCertificate(remoteCert.Certificate.Version())
if myCertOtherVersion == nil {
if f.l.Level >= logrus.DebugLevel {
f.l.WithError(err).WithFields(m{
"from": via,
"handshake": m{"stage": 1, "style": "ix_psk0"},
"cert": remoteCert,
}).Debug("Might be unable to handshake with host due to missing certificate version")
}
} else {
// Record the certificate we are actually using
ci.myCert = myCertOtherVersion
}
}
if len(remoteCert.Certificate.Networks()) == 0 {
f.l.WithError(err).WithField("from", via).
WithField("cert", remoteCert).
WithField("handshake", m{"stage": 1, "style": "ix_psk0"}).
Info("No networks in certificate")
return
}
certName := remoteCert.Certificate.Name()
certVersion := remoteCert.Certificate.Version()
fingerprint := remoteCert.Fingerprint
issuer := remoteCert.Certificate.Issuer()
vpnNetworks := remoteCert.Certificate.Networks()
anyVpnAddrsInCommon := false
vpnAddrs := make([]netip.Addr, len(vpnNetworks))
for i, network := range vpnNetworks {
if f.myVpnAddrsTable.Contains(network.Addr()) {
f.l.WithField("vpnNetworks", vpnNetworks).WithField("from", via).
WithField("certName", certName).
WithField("certVersion", certVersion).
WithField("fingerprint", fingerprint).
WithField("issuer", issuer).
WithField("handshake", m{"stage": 1, "style": "ix_psk0"}).Error("Refusing to handshake with myself")
return
}
vpnAddrs[i] = network.Addr()
if f.myVpnNetworksTable.Contains(network.Addr()) {
anyVpnAddrsInCommon = true
}
}
if !via.IsRelayed {
// We only want to apply the remote allow list for direct tunnels here
if !f.lightHouse.GetRemoteAllowList().AllowAll(vpnAddrs, via.UdpAddr.Addr()) {
f.l.WithField("vpnAddrs", vpnAddrs).WithField("from", via).
Debug("lighthouse.remote_allow_list denied incoming handshake")
return
}
}
myIndex, err := generateIndex(f.l)
if err != nil {
f.l.WithError(err).WithField("vpnAddrs", vpnAddrs).WithField("from", via).
WithField("certName", certName).
WithField("certVersion", certVersion).
WithField("fingerprint", fingerprint).
WithField("issuer", issuer).
WithField("handshake", m{"stage": 1, "style": "ix_psk0"}).Error("Failed to generate index")
return
}
hostinfo := &HostInfo{
ConnectionState: ci,
localIndexId: myIndex,
remoteIndexId: hs.Details.InitiatorIndex,
vpnAddrs: vpnAddrs,
HandshakePacket: make(map[uint8][]byte, 0),
lastHandshakeTime: hs.Details.Time,
relayState: RelayState{
relays: nil,
relayForByAddr: map[netip.Addr]*Relay{},
relayForByIdx: map[uint32]*Relay{},
},
}
msgRxL := f.l.WithFields(m{
"vpnAddrs": vpnAddrs,
"from": via,
"certName": certName,
"certVersion": certVersion,
"fingerprint": fingerprint,
"issuer": issuer,
"initiatorIndex": hs.Details.InitiatorIndex,
"responderIndex": hs.Details.ResponderIndex,
"remoteIndex": h.RemoteIndex,
"handshake": m{"stage": 1, "style": "ix_psk0"},
})
if anyVpnAddrsInCommon {
msgRxL.Info("Handshake message received")
} else {
//todo warn if not lighthouse or relay?
msgRxL.Info("Handshake message received, but no vpnNetworks in common.")
}
hs.Details.ResponderIndex = myIndex
hs.Details.Cert = cs.getHandshakeBytes(ci.myCert.Version())
if hs.Details.Cert == nil {
msgRxL.WithField("myCertVersion", ci.myCert.Version()).
Error("Unable to handshake with host because no certificate handshake bytes is available")
return
}
hs.Details.CertVersion = uint32(ci.myCert.Version())
// Update the time in case their clock is way off from ours
hs.Details.Time = uint64(time.Now().UnixNano())
hsBytes, err := hs.Marshal()
if err != nil {
f.l.WithError(err).WithField("vpnAddrs", hostinfo.vpnAddrs).WithField("from", via).
WithField("certName", certName).
WithField("certVersion", certVersion).
WithField("fingerprint", fingerprint).
WithField("issuer", issuer).
WithField("handshake", m{"stage": 1, "style": "ix_psk0"}).Error("Failed to marshal handshake message")
return
}
nh := header.Encode(make([]byte, header.Len), header.Version, header.Handshake, header.HandshakeIXPSK0, hs.Details.InitiatorIndex, 2)
msg, dKey, eKey, err := ci.H.WriteMessage(nh, hsBytes)
if err != nil {
f.l.WithError(err).WithField("vpnAddrs", hostinfo.vpnAddrs).WithField("from", via).
WithField("certName", certName).
WithField("certVersion", certVersion).
WithField("fingerprint", fingerprint).
WithField("issuer", issuer).
WithField("handshake", m{"stage": 1, "style": "ix_psk0"}).Error("Failed to call noise.WriteMessage")
return
} else if dKey == nil || eKey == nil {
f.l.WithField("vpnAddrs", hostinfo.vpnAddrs).WithField("from", via).
WithField("certName", certName).
WithField("certVersion", certVersion).
WithField("fingerprint", fingerprint).
WithField("issuer", issuer).
WithField("handshake", m{"stage": 1, "style": "ix_psk0"}).Error("Noise did not arrive at a key")
return
}
hostinfo.HandshakePacket[0] = make([]byte, len(packet[header.Len:]))
copy(hostinfo.HandshakePacket[0], packet[header.Len:])
// Regardless of whether you are the sender or receiver, you should arrive here
// and complete standing up the connection.
hostinfo.HandshakePacket[2] = make([]byte, len(msg))
copy(hostinfo.HandshakePacket[2], msg)
// We are sending handshake packet 2, so we don't expect to receive
// handshake packet 2 from the initiator.
ci.window.Update(f.l, 2)
ci.peerCert = remoteCert
ci.dKey = NewNebulaCipherState(dKey)
ci.eKey = NewNebulaCipherState(eKey)
hostinfo.remotes = f.lightHouse.QueryCache(vpnAddrs)
if !via.IsRelayed {
hostinfo.SetRemote(via.UdpAddr)
}
hostinfo.buildNetworks(f.myVpnNetworksTable, remoteCert.Certificate)
existing, err := f.handshakeManager.CheckAndComplete(hostinfo, 0, f)
if err != nil {
switch err {
case ErrAlreadySeen:
// Update remote if preferred
if existing.SetRemoteIfPreferred(f.hostMap, via) {
// Send a test packet to ensure the other side has also switched to
// the preferred remote
f.SendMessageToVpnAddr(header.Test, header.TestRequest, vpnAddrs[0], []byte(""), make([]byte, 12, 12), make([]byte, mtu))
}
msg = existing.HandshakePacket[2]
f.messageMetrics.Tx(header.Handshake, header.MessageSubType(msg[1]), 1)
if !via.IsRelayed {
err := f.outside.WriteTo(msg, via.UdpAddr)
if err != nil {
f.l.WithField("vpnAddrs", existing.vpnAddrs).WithField("from", via).
WithField("handshake", m{"stage": 2, "style": "ix_psk0"}).WithField("cached", true).
WithError(err).Error("Failed to send handshake message")
} else {
f.l.WithField("vpnAddrs", existing.vpnAddrs).WithField("from", via).
WithField("handshake", m{"stage": 2, "style": "ix_psk0"}).WithField("cached", true).
Info("Handshake message sent")
}
return
} else {
if via.relay == nil {
f.l.Error("Handshake send failed: both addr and via.relay are nil.")
return
}
hostinfo.relayState.InsertRelayTo(via.relayHI.vpnAddrs[0])
f.SendVia(via.relayHI, via.relay, msg, make([]byte, 12), make([]byte, mtu), false)
f.l.WithField("vpnAddrs", existing.vpnAddrs).WithField("relay", via.relayHI.vpnAddrs[0]).
WithField("handshake", m{"stage": 2, "style": "ix_psk0"}).WithField("cached", true).
Info("Handshake message sent")
return
}
case ErrExistingHostInfo:
// This means there was an existing tunnel and this handshake was older than the one we are currently based on
f.l.WithField("vpnAddrs", vpnAddrs).WithField("from", via).
WithField("certName", certName).
WithField("certVersion", certVersion).
WithField("oldHandshakeTime", existing.lastHandshakeTime).
WithField("newHandshakeTime", hostinfo.lastHandshakeTime).
WithField("fingerprint", fingerprint).
WithField("issuer", issuer).
WithField("initiatorIndex", hs.Details.InitiatorIndex).WithField("responderIndex", hs.Details.ResponderIndex).
WithField("remoteIndex", h.RemoteIndex).WithField("handshake", m{"stage": 1, "style": "ix_psk0"}).
Info("Handshake too old")
// Send a test packet to trigger an authenticated tunnel test, this should suss out any lingering tunnel issues
f.SendMessageToVpnAddr(header.Test, header.TestRequest, vpnAddrs[0], []byte(""), make([]byte, 12, 12), make([]byte, mtu))
return
case ErrLocalIndexCollision:
// This means we failed to insert because of collision on localIndexId. Just let the next handshake packet retry
f.l.WithField("vpnAddrs", vpnAddrs).WithField("from", via).
WithField("certName", certName).
WithField("certVersion", certVersion).
WithField("fingerprint", fingerprint).
WithField("issuer", issuer).
WithField("initiatorIndex", hs.Details.InitiatorIndex).WithField("responderIndex", hs.Details.ResponderIndex).
WithField("remoteIndex", h.RemoteIndex).WithField("handshake", m{"stage": 1, "style": "ix_psk0"}).
WithField("localIndex", hostinfo.localIndexId).WithField("collision", existing.vpnAddrs).
Error("Failed to add HostInfo due to localIndex collision")
return
default:
// Shouldn't happen, but just in case someone adds a new error type to CheckAndComplete
// And we forget to update it here
f.l.WithError(err).WithField("vpnAddrs", vpnAddrs).WithField("from", via).
WithField("certName", certName).
WithField("certVersion", certVersion).
WithField("fingerprint", fingerprint).
WithField("issuer", issuer).
WithField("initiatorIndex", hs.Details.InitiatorIndex).WithField("responderIndex", hs.Details.ResponderIndex).
WithField("remoteIndex", h.RemoteIndex).WithField("handshake", m{"stage": 1, "style": "ix_psk0"}).
Error("Failed to add HostInfo to HostMap")
return
}
}
// Do the send
f.messageMetrics.Tx(header.Handshake, header.MessageSubType(msg[1]), 1)
if !via.IsRelayed {
err = f.outside.WriteTo(msg, via.UdpAddr)
log := f.l.WithField("vpnAddrs", vpnAddrs).WithField("from", via).
WithField("certName", certName).
WithField("certVersion", certVersion).
WithField("fingerprint", fingerprint).
WithField("issuer", issuer).
WithField("initiatorIndex", hs.Details.InitiatorIndex).WithField("responderIndex", hs.Details.ResponderIndex).
WithField("remoteIndex", h.RemoteIndex).WithField("handshake", m{"stage": 2, "style": "ix_psk0"})
if err != nil {
log.WithError(err).Error("Failed to send handshake")
} else {
log.Info("Handshake message sent")
}
} else {
if via.relay == nil {
f.l.Error("Handshake send failed: both addr and via.relay are nil.")
return
}
hostinfo.relayState.InsertRelayTo(via.relayHI.vpnAddrs[0])
// I successfully received a handshake. Just in case I marked this tunnel as 'Disestablished', ensure
// it's correctly marked as working.
via.relayHI.relayState.UpdateRelayForByIdxState(via.remoteIdx, Established)
f.SendVia(via.relayHI, via.relay, msg, make([]byte, 12), make([]byte, mtu), false)
f.l.WithField("vpnAddrs", vpnAddrs).WithField("relay", via.relayHI.vpnAddrs[0]).
WithField("certName", certName).
WithField("certVersion", certVersion).
WithField("fingerprint", fingerprint).
WithField("issuer", issuer).
WithField("initiatorIndex", hs.Details.InitiatorIndex).WithField("responderIndex", hs.Details.ResponderIndex).
WithField("remoteIndex", h.RemoteIndex).WithField("handshake", m{"stage": 2, "style": "ix_psk0"}).
Info("Handshake message sent")
}
f.connectionManager.AddTrafficWatch(hostinfo)
hostinfo.remotes.RefreshFromHandshake(vpnAddrs)
return
}
func ixHandshakeStage2(f *Interface, via ViaSender, hh *HandshakeHostInfo, packet []byte, h *header.H) bool {
if hh == nil {
// Nothing here to tear down, got a bogus stage 2 packet
return true
}
hh.Lock()
defer hh.Unlock()
hostinfo := hh.hostinfo
if !via.IsRelayed {
// The vpnAddr we know about is the one we tried to handshake with, use it to apply the remote allow list.
if !f.lightHouse.GetRemoteAllowList().AllowAll(hostinfo.vpnAddrs, via.UdpAddr.Addr()) {
f.l.WithField("vpnAddrs", hostinfo.vpnAddrs).WithField("from", via).Debug("lighthouse.remote_allow_list denied incoming handshake")
return false
}
}
ci := hostinfo.ConnectionState
msg, eKey, dKey, err := ci.H.ReadMessage(nil, packet[header.Len:])
if err != nil {
f.l.WithError(err).WithField("vpnAddrs", hostinfo.vpnAddrs).WithField("from", via).
WithField("handshake", m{"stage": 2, "style": "ix_psk0"}).WithField("header", h).
Error("Failed to call noise.ReadMessage")
// We don't want to tear down the connection on a bad ReadMessage because it could be an attacker trying
// to DOS us. Every other error condition after should to allow a possible good handshake to complete in the
// near future
return false
} else if dKey == nil || eKey == nil {
f.l.WithField("vpnAddrs", hostinfo.vpnAddrs).WithField("from", via).
WithField("handshake", m{"stage": 2, "style": "ix_psk0"}).
Error("Noise did not arrive at a key")
// This should be impossible in IX but just in case, if we get here then there is no chance to recover
// the handshake state machine. Tear it down
return true
}
hs := &NebulaHandshake{}
err = hs.Unmarshal(msg)
if err != nil || hs.Details == nil {
f.l.WithError(err).WithField("vpnAddrs", hostinfo.vpnAddrs).WithField("from", via).
WithField("handshake", m{"stage": 2, "style": "ix_psk0"}).Error("Failed unmarshal handshake message")
// The handshake state machine is complete, if things break now there is no chance to recover. Tear down and start again
return true
}
rc, err := cert.Recombine(cert.Version(hs.Details.CertVersion), hs.Details.Cert, ci.H.PeerStatic(), ci.Curve())
if err != nil {
f.l.WithError(err).WithField("from", via).
WithField("vpnAddrs", hostinfo.vpnAddrs).
WithField("handshake", m{"stage": 2, "style": "ix_psk0"}).
Info("Handshake did not contain a certificate")
return true
}
remoteCert, err := f.pki.GetCAPool().VerifyCertificate(time.Now(), rc)
if err != nil {
fp, err := rc.Fingerprint()
if err != nil {
fp = "<error generating certificate fingerprint>"
}
e := f.l.WithError(err).WithField("from", via).
WithField("vpnAddrs", hostinfo.vpnAddrs).
WithField("handshake", m{"stage": 2, "style": "ix_psk0"}).
WithField("certFingerprint", fp).
WithField("certVpnNetworks", rc.Networks())
if f.l.Level >= logrus.DebugLevel {
e = e.WithField("cert", rc)
}
e.Info("Invalid certificate from host")
return true
}
if !bytes.Equal(remoteCert.Certificate.PublicKey(), ci.H.PeerStatic()) {
f.l.WithField("from", via).
WithField("handshake", m{"stage": 2, "style": "ix_psk0"}).
WithField("cert", remoteCert).Info("public key mismatch between certificate and handshake")
return true
}
if len(remoteCert.Certificate.Networks()) == 0 {
f.l.WithError(err).WithField("from", via).
WithField("vpnAddrs", hostinfo.vpnAddrs).
WithField("cert", remoteCert).
WithField("handshake", m{"stage": 2, "style": "ix_psk0"}).
Info("No networks in certificate")
return true
}
vpnNetworks := remoteCert.Certificate.Networks()
certName := remoteCert.Certificate.Name()
certVersion := remoteCert.Certificate.Version()
fingerprint := remoteCert.Fingerprint
issuer := remoteCert.Certificate.Issuer()
hostinfo.remoteIndexId = hs.Details.ResponderIndex
hostinfo.lastHandshakeTime = hs.Details.Time
// Store their cert and our symmetric keys
ci.peerCert = remoteCert
ci.dKey = NewNebulaCipherState(dKey)
ci.eKey = NewNebulaCipherState(eKey)
// Make sure the current udpAddr being used is set for responding
if !via.IsRelayed {
hostinfo.SetRemote(via.UdpAddr)
} else {
hostinfo.relayState.InsertRelayTo(via.relayHI.vpnAddrs[0])
}
correctHostResponded := false
anyVpnAddrsInCommon := false
vpnAddrs := make([]netip.Addr, len(vpnNetworks))
for i, network := range vpnNetworks {
vpnAddrs[i] = network.Addr()
if f.myVpnNetworksTable.Contains(network.Addr()) {
anyVpnAddrsInCommon = true
}
if hostinfo.vpnAddrs[0] == network.Addr() {
// todo is it more correct to see if any of hostinfo.vpnAddrs are in the cert? it should have len==1, but one day it might not?
correctHostResponded = true
}
}
// Ensure the right host responded
if !correctHostResponded {
f.l.WithField("intendedVpnAddrs", hostinfo.vpnAddrs).WithField("haveVpnNetworks", vpnNetworks).
WithField("from", via).
WithField("certName", certName).
WithField("certVersion", certVersion).
WithField("handshake", m{"stage": 2, "style": "ix_psk0"}).
Info("Incorrect host responded to handshake")
// Release our old handshake from pending, it should not continue
f.handshakeManager.DeleteHostInfo(hostinfo)
// Create a new hostinfo/handshake for the intended vpn ip
//TODO is hostinfo.vpnAddrs[0] always the address to use?
f.handshakeManager.StartHandshake(hostinfo.vpnAddrs[0], func(newHH *HandshakeHostInfo) {
// Block the current used address
newHH.hostinfo.remotes = hostinfo.remotes
newHH.hostinfo.remotes.BlockRemote(via)
f.l.WithField("blockedUdpAddrs", newHH.hostinfo.remotes.CopyBlockedRemotes()).
WithField("vpnNetworks", vpnNetworks).
WithField("remotes", newHH.hostinfo.remotes.CopyAddrs(f.hostMap.GetPreferredRanges())).
Info("Blocked addresses for handshakes")
// Swap the packet store to benefit the original intended recipient
newHH.packetStore = hh.packetStore
hh.packetStore = []*cachedPacket{}
// Finally, put the correct vpn addrs in the host info, tell them to close the tunnel, and return true to tear down
hostinfo.vpnAddrs = vpnAddrs
f.sendCloseTunnel(hostinfo)
})
return true
}
// Mark packet 2 as seen so it doesn't show up as missed
ci.window.Update(f.l, 2)
duration := time.Since(hh.startTime).Nanoseconds()
msgRxL := f.l.WithField("vpnAddrs", vpnAddrs).WithField("from", via).
WithField("certName", certName).
WithField("certVersion", certVersion).
WithField("fingerprint", fingerprint).
WithField("issuer", issuer).
WithField("initiatorIndex", hs.Details.InitiatorIndex).WithField("responderIndex", hs.Details.ResponderIndex).
WithField("remoteIndex", h.RemoteIndex).WithField("handshake", m{"stage": 2, "style": "ix_psk0"}).
WithField("durationNs", duration).
WithField("sentCachedPackets", len(hh.packetStore))
if anyVpnAddrsInCommon {
msgRxL.Info("Handshake message received")
} else {
//todo warn if not lighthouse or relay?
msgRxL.Info("Handshake message received, but no vpnNetworks in common.")
}
// Build up the radix for the firewall if we have subnets in the cert
hostinfo.vpnAddrs = vpnAddrs
hostinfo.buildNetworks(f.myVpnNetworksTable, remoteCert.Certificate)
// Complete our handshake and update metrics, this will replace any existing tunnels for the vpnAddrs here
f.handshakeManager.Complete(hostinfo, f)
f.connectionManager.AddTrafficWatch(hostinfo)
if f.l.Level >= logrus.DebugLevel {
hostinfo.logger(f.l).Debugf("Sending %d stored packets", len(hh.packetStore))
}
if len(hh.packetStore) > 0 {
nb := make([]byte, 12, 12)
out := make([]byte, mtu)
for _, cp := range hh.packetStore {
cp.callback(cp.messageType, cp.messageSubType, hostinfo, cp.packet, nb, out)
}
f.cachedPacketMetrics.sent.Inc(int64(len(hh.packetStore)))
}
hostinfo.remotes.RefreshFromHandshake(vpnAddrs)
f.metricHandshakes.Update(duration)
return false
}
+216 -655
View File
File diff suppressed because it is too large Load Diff
+1 -136
View File
@@ -5,7 +5,6 @@ import (
"testing"
"time"
"github.com/gaissmai/bart"
"github.com/slackhq/nebula/cert"
"github.com/slackhq/nebula/header"
"github.com/slackhq/nebula/test"
@@ -28,7 +27,7 @@ func Test_NewHandshakeManagerVpnIp(t *testing.T) {
initiatingVersion: cert.Version1,
privateKey: []byte{},
v1Cert: &dummyCert{version: cert.Version1},
v1Credential: nil,
v1HandshakeBytes: []byte{},
}
blah := NewHandshakeManager(l, mainHM, lh, &udp.NoopConn{}, defaultHandshakeConfig)
@@ -101,137 +100,3 @@ func (mw *mockEncWriter) GetHostInfo(_ netip.Addr) *HostInfo {
func (mw *mockEncWriter) GetCertState() *CertState {
return &CertState{initiatingVersion: cert.Version2}
}
func TestValidatePeerCert(t *testing.T) {
l := test.NewLogger()
myNetwork := netip.MustParsePrefix("10.0.0.1/24")
myAddrTable := new(bart.Lite)
myAddrTable.Insert(netip.PrefixFrom(myNetwork.Addr(), myNetwork.Addr().BitLen()))
myNetTable := new(bart.Lite)
myNetTable.Insert(myNetwork.Masked())
newHM := func() *HandshakeManager {
hm := NewHandshakeManager(l, newHostMap(l), newTestLighthouse(), &udp.NoopConn{}, defaultHandshakeConfig)
hm.f = &Interface{
handshakeManager: hm,
pki: &PKI{},
l: l,
myVpnAddrsTable: myAddrTable,
myVpnNetworksTable: myNetTable,
lightHouse: hm.lightHouse,
}
return hm
}
cached := func(networks ...netip.Prefix) *cert.CachedCertificate {
return &cert.CachedCertificate{
Certificate: &dummyCert{name: "peer", networks: networks},
}
}
via := ViaSender{
UdpAddr: netip.MustParseAddrPort("198.51.100.7:4242"),
IsRelayed: true, // skip the remote allow list (covered separately)
}
t.Run("addr inside our networks sets anyVpnAddrsInCommon", func(t *testing.T) {
hm := newHM()
// 10.0.0.2 falls inside our 10.0.0.0/24
addrs, common, ok := hm.validatePeerCert(via, cached(netip.MustParsePrefix("10.0.0.2/24")))
assert.True(t, ok)
assert.True(t, common)
assert.Equal(t, []netip.Addr{netip.MustParseAddr("10.0.0.2")}, addrs)
})
t.Run("addr outside our networks leaves anyVpnAddrsInCommon false", func(t *testing.T) {
hm := newHM()
addrs, common, ok := hm.validatePeerCert(via, cached(netip.MustParsePrefix("192.168.1.5/24")))
assert.True(t, ok)
assert.False(t, common)
assert.Equal(t, []netip.Addr{netip.MustParseAddr("192.168.1.5")}, addrs)
})
t.Run("any matching network is enough", func(t *testing.T) {
hm := newHM()
addrs, common, ok := hm.validatePeerCert(via, cached(
netip.MustParsePrefix("192.168.1.5/24"),
netip.MustParsePrefix("10.0.0.42/24"),
))
assert.True(t, ok)
assert.True(t, common)
assert.Len(t, addrs, 2)
})
t.Run("self-handshake is rejected", func(t *testing.T) {
hm := newHM()
// 10.0.0.1 is in myVpnAddrsTable
addrs, common, ok := hm.validatePeerCert(via, cached(netip.MustParsePrefix("10.0.0.1/24")))
assert.False(t, ok)
assert.False(t, common)
assert.Nil(t, addrs)
})
t.Run("cert with no networks is rejected", func(t *testing.T) {
hm := newHM()
addrs, common, ok := hm.validatePeerCert(via, cached())
assert.False(t, ok)
assert.False(t, common)
assert.Nil(t, addrs)
})
}
func TestHandleIncomingDispatch(t *testing.T) {
l := test.NewLogger()
newHM := func() *HandshakeManager {
hm := NewHandshakeManager(l, newHostMap(l), newTestLighthouse(), &udp.NoopConn{}, defaultHandshakeConfig)
hm.f = &Interface{
handshakeManager: hm,
pki: &PKI{},
l: l,
}
return hm
}
via := ViaSender{
UdpAddr: netip.MustParseAddrPort("198.51.100.7:4242"),
IsRelayed: true, // bypass remote allow list
}
// A packet body of zero length is fine for these tests: dispatch is
// gated on header fields, and we assert that we never reach noise/cert
// processing for any of the malformed shapes here.
pkt := make([]byte, header.Len)
t.Run("unsupported subtype dropped", func(t *testing.T) {
hm := newHM()
h := &header.H{Type: header.Handshake, Subtype: header.MessageSubType(99), MessageCounter: 1}
hm.HandleIncoming(via, pkt, h)
assert.Empty(t, hm.indexes, "no pending handshake should be created")
})
t.Run("stage-1 with non-zero RemoteIndex dropped", func(t *testing.T) {
hm := newHM()
h := &header.H{
Type: header.Handshake,
Subtype: header.HandshakeIXPSK0,
RemoteIndex: 0xdeadbeef,
MessageCounter: 1,
}
hm.HandleIncoming(via, pkt, h)
assert.Empty(t, hm.indexes, "spoofed stage-1 must not create a pending machine")
})
t.Run("continuation with no matching pending index dropped", func(t *testing.T) {
hm := newHM()
h := &header.H{
Type: header.Handshake,
Subtype: header.HandshakeIXPSK0,
RemoteIndex: 0xcafef00d,
MessageCounter: 2,
}
hm.HandleIncoming(via, pkt, h)
assert.Empty(t, hm.indexes, "orphan stage-2 must not create state")
})
}
-14
View File
@@ -174,10 +174,6 @@ func (h *H) SubTypeName() string {
return SubTypeName(h.Type, h.Subtype)
}
func (h *H) IsValidSubType() bool {
return IsValidSubType(h.Type, h.Subtype)
}
// SubTypeName will transform a nebula message sub type into a human string
func SubTypeName(t MessageType, s MessageSubType) string {
if n, ok := subTypeMap[t]; ok {
@@ -189,16 +185,6 @@ func SubTypeName(t MessageType, s MessageSubType) string {
return "unknown"
}
func IsValidSubType(t MessageType, s MessageSubType) bool {
if n, ok := subTypeMap[t]; ok {
if _, ok := (*n)[s]; ok {
return true
}
}
return false
}
// NewHeader turns bytes into a header
func NewHeader(b []byte) (*H, error) {
h := new(H)
+29 -47
View File
@@ -1,11 +1,9 @@
package nebula
import (
"context"
"encoding/json"
"errors"
"fmt"
"log/slog"
"net"
"net/netip"
"slices"
@@ -15,10 +13,10 @@ import (
"github.com/gaissmai/bart"
"github.com/rcrowley/go-metrics"
"github.com/sirupsen/logrus"
"github.com/slackhq/nebula/cert"
"github.com/slackhq/nebula/config"
"github.com/slackhq/nebula/header"
"github.com/slackhq/nebula/logging"
)
const defaultPromoteEvery = 1000 // Count of packets sent before we try moving a tunnel to a preferred underlay ip address
@@ -62,7 +60,7 @@ type HostMap struct {
RemoteIndexes map[uint32]*HostInfo
Hosts map[netip.Addr]*HostInfo
preferredRanges atomic.Pointer[[]netip.Prefix]
l *slog.Logger
l *logrus.Logger
}
// For synchronization, treat the pointed-to Relay struct as immutable. To edit the Relay
@@ -315,7 +313,7 @@ type cachedPacketMetrics struct {
dropped metrics.Counter
}
func NewHostMapFromConfig(l *slog.Logger, c *config.C) *HostMap {
func NewHostMapFromConfig(l *logrus.Logger, c *config.C) *HostMap {
hm := newHostMap(l)
hm.reload(c, true)
@@ -323,12 +321,13 @@ func NewHostMapFromConfig(l *slog.Logger, c *config.C) *HostMap {
hm.reload(c, false)
})
l.Info("Main HostMap created", "preferredRanges", hm.GetPreferredRanges())
l.WithField("preferredRanges", hm.GetPreferredRanges()).
Info("Main HostMap created")
return hm
}
func newHostMap(l *slog.Logger) *HostMap {
func newHostMap(l *logrus.Logger) *HostMap {
return &HostMap{
Indexes: map[uint32]*HostInfo{},
Relays: map[uint32]*HostInfo{},
@@ -347,10 +346,7 @@ func (hm *HostMap) reload(c *config.C, initial bool) {
preferredRange, err := netip.ParsePrefix(rawPreferredRange)
if err != nil {
hm.l.Warn("Failed to parse preferred ranges, ignoring",
"error", err,
"range", rawPreferredRanges,
)
hm.l.WithError(err).WithField("range", rawPreferredRanges).Warn("Failed to parse preferred ranges, ignoring")
continue
}
@@ -359,10 +355,7 @@ func (hm *HostMap) reload(c *config.C, initial bool) {
oldRanges := hm.preferredRanges.Swap(&preferredRanges)
if !initial {
hm.l.Info("preferred_ranges changed",
"oldPreferredRanges", *oldRanges,
"newPreferredRanges", preferredRanges,
)
hm.l.WithField("oldPreferredRanges", *oldRanges).WithField("newPreferredRanges", preferredRanges).Info("preferred_ranges changed")
}
}
}
@@ -495,11 +488,10 @@ func (hm *HostMap) unlockedInnerDeleteHostInfo(hostinfo *HostInfo, addr netip.Ad
hm.Indexes = map[uint32]*HostInfo{}
}
if hm.l.Enabled(context.Background(), slog.LevelDebug) {
hm.l.Debug("Hostmap hostInfo deleted",
"hostMap", m{"mapTotalSize": len(hm.Hosts),
"vpnAddrs": hostinfo.vpnAddrs, "indexNumber": hostinfo.localIndexId, "remoteIndexNumber": hostinfo.remoteIndexId},
)
if hm.l.Level >= logrus.DebugLevel {
hm.l.WithField("hostMap", m{"mapTotalSize": len(hm.Hosts),
"vpnAddrs": hostinfo.vpnAddrs, "indexNumber": hostinfo.localIndexId, "remoteIndexNumber": hostinfo.remoteIndexId}).
Debug("Hostmap hostInfo deleted")
}
if isLastHostinfo {
@@ -623,11 +615,10 @@ func (hm *HostMap) unlockedAddHostInfo(hostinfo *HostInfo, f *Interface) {
hm.Indexes[hostinfo.localIndexId] = hostinfo
hm.RemoteIndexes[hostinfo.remoteIndexId] = hostinfo
if hm.l.Enabled(context.Background(), slog.LevelDebug) {
hm.l.Debug("Hostmap vpnIp added",
"hostMap", m{"vpnAddrs": hostinfo.vpnAddrs, "mapTotalSize": len(hm.Hosts),
"hostinfo": m{"existing": true, "localIndexId": hostinfo.localIndexId, "vpnAddrs": hostinfo.vpnAddrs}},
)
if hm.l.Level >= logrus.DebugLevel {
hm.l.WithField("hostMap", m{"vpnAddrs": hostinfo.vpnAddrs, "mapTotalSize": len(hm.Hosts),
"hostinfo": m{"existing": true, "localIndexId": hostinfo.localIndexId, "vpnAddrs": hostinfo.vpnAddrs}}).
Debug("Hostmap vpnIp added")
}
}
@@ -793,21 +784,18 @@ func (i *HostInfo) buildNetworks(myVpnNetworksTable *bart.Lite, c cert.Certifica
}
}
// logger returns a derived slog.Logger with per-hostinfo fields pre-bound.
func (i *HostInfo) logger(l *slog.Logger) *slog.Logger {
func (i *HostInfo) logger(l *logrus.Logger) *logrus.Entry {
if i == nil {
return l
return logrus.NewEntry(l)
}
li := l.With(
"vpnAddrs", i.vpnAddrs,
"localIndex", i.localIndexId,
"remoteIndex", i.remoteIndexId,
)
li := l.WithField("vpnAddrs", i.vpnAddrs).
WithField("localIndex", i.localIndexId).
WithField("remoteIndex", i.remoteIndexId)
if connState := i.ConnectionState; connState != nil {
if peerCert := connState.peerCert; peerCert != nil {
li = li.With("certName", peerCert.Certificate.Name())
li = li.WithField("certName", peerCert.Certificate.Name())
}
}
@@ -816,17 +804,14 @@ func (i *HostInfo) logger(l *slog.Logger) *slog.Logger {
// Utility functions
func localAddrs(l *slog.Logger, allowList *LocalAllowList) []netip.Addr {
func localAddrs(l *logrus.Logger, allowList *LocalAllowList) []netip.Addr {
//FIXME: This function is pretty garbage
var finalAddrs []netip.Addr
ifaces, _ := net.Interfaces()
for _, i := range ifaces {
allow := allowList.AllowName(i.Name)
if l.Enabled(context.Background(), logging.LevelTrace) {
l.Log(context.Background(), logging.LevelTrace, "localAllowList.AllowName",
"interfaceName", i.Name,
"allow", allow,
)
if l.Level >= logrus.TraceLevel {
l.WithField("interfaceName", i.Name).WithField("allow", allow).Trace("localAllowList.AllowName")
}
if !allow {
@@ -844,8 +829,8 @@ func localAddrs(l *slog.Logger, allowList *LocalAllowList) []netip.Addr {
}
if !addr.IsValid() {
if l.Enabled(context.Background(), slog.LevelDebug) {
l.Debug("addr was invalid", "localAddr", rawAddr)
if l.Level >= logrus.DebugLevel {
l.WithField("localAddr", rawAddr).Debug("addr was invalid")
}
continue
}
@@ -853,11 +838,8 @@ func localAddrs(l *slog.Logger, allowList *LocalAllowList) []netip.Addr {
if addr.IsLoopback() == false && addr.IsLinkLocalUnicast() == false {
isAllowed := allowList.Allow(addr)
if l.Enabled(context.Background(), logging.LevelTrace) {
l.Log(context.Background(), logging.LevelTrace, "localAllowList.Allow",
"localAddr", addr,
"allowed", isAllowed,
)
if l.Level >= logrus.TraceLevel {
l.WithField("localAddr", addr).WithField("allowed", isAllowed).Trace("localAllowList.Allow")
}
if !isAllowed {
continue
+1 -1
View File
@@ -196,7 +196,7 @@ func TestHostMap_DeleteHostInfo(t *testing.T) {
func TestHostMap_reload(t *testing.T) {
l := test.NewLogger()
c := config.NewC(test.NewLogger())
c := config.NewC(l)
hm := NewHostMapFromConfig(l, c)
+75 -247
View File
@@ -1,32 +1,21 @@
package nebula
import (
"context"
"io"
"log/slog"
"net/netip"
"github.com/sirupsen/logrus"
"github.com/slackhq/nebula/firewall"
"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/routing"
"github.com/slackhq/nebula/wire"
)
func (f *Interface) consumeInsidePacket(pkt wire.TunPacket, fwPacket *firewall.Packet, nb []byte, sendBatch *batch.SendBatch, 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. If you must keep
// the packet, use pkt.Clone() to detach it
packet := pkt.Bytes
err := newPacket(packet, false, fwPacket)
func (f *Interface) consumeInsidePacket(packet []byte, fwPacket *firewall.Packet, fwCtx *firewall.PacketContext, nb, out []byte, q int, localCache firewall.ConntrackCache) {
err := newPacket(packet, false, fwPacket, fwCtx)
if err != nil {
if f.l.Enabled(context.Background(), slog.LevelDebug) {
f.l.Debug("Error while validating outbound packet",
"packet", packet,
"error", err,
)
if f.l.Level >= logrus.DebugLevel {
f.l.WithField("packet", packet).Debugf("Error while validating outbound packet: %s", err)
}
return
}
@@ -44,12 +33,9 @@ func (f *Interface) consumeInsidePacket(pkt wire.TunPacket, fwPacket *firewall.P
// routes packets from the Nebula addr to the Nebula addr through the Nebula
// TUN device.
if immediatelyForwardToSelf {
err := pkt.PerSegment(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)
f.l.WithError(err).Error("Failed to forward to tun")
}
}
// Otherwise, drop. On linux, we should never see these packets - Linux
@@ -63,28 +49,15 @@ func (f *Interface) consumeInsidePacket(pkt wire.TunPacket, fwPacket *firewall.P
}
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 := pkt.PerSegment(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)
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,
"fwPacket", fwPacket,
)
f.rejectInside(packet, out, q)
if f.l.Level >= logrus.DebugLevel {
f.l.WithField("vpnAddr", fwPacket.RemoteAddr).
WithField("fwPacket", fwPacket).
Debugln("dropping outbound packet, vpnAddr not in our vpn networks or in unsafe networks")
}
return
}
@@ -93,138 +66,21 @@ func (f *Interface) consumeInsidePacket(pkt wire.TunPacket, fwPacket *firewall.P
return
}
dropReason := f.firewall.Drop(*fwPacket, false, hostinfo, f.pki.GetCAPool(), localCache)
dropReason := f.firewall.Drop(*fwPacket, *fwCtx, false, hostinfo, f.pki.GetCAPool(), localCache)
if dropReason == nil {
f.sendInsideMessage(hostinfo, pkt, nb, sendBatch)
f.sendNoMetrics(header.Message, 0, hostinfo.ConnectionState, hostinfo, netip.AddrPort{}, packet, nb, out, q)
} else {
f.rejectInside(packet, rejectBuf, q)
if f.l.Enabled(context.Background(), slog.LevelDebug) {
hostinfo.logger(f.l).Debug("dropping outbound packet",
"fwPacket", fwPacket,
"reason", dropReason,
)
f.rejectInside(packet, out, q)
if f.l.Level >= logrus.DebugLevel {
hostinfo.logger(f.l).
WithField("fwPacket", fwPacket).
WithField("reason", dropReason).
Debugln("dropping outbound packet")
}
}
}
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: PerSegment 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 wire.TunPacket, nb []byte, sendBatch *batch.SendBatch) {
ci := hostinfo.ConnectionState
if ci.eKey == nil {
return
}
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 = pkt.PerSegment(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
}
sendBatch.Commit(toSend, relayHostInfo.remote, 0)
return nil
})
if err != nil {
hostinfo.logger(f.l).Error("Failed to segment superpacket for relay send", "error", err)
}
return
}
err := pkt.PerSegment(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
}
sendBatch.Commit(out, hostinfo.remote, 0)
return nil
})
if err != nil {
hostinfo.logger(f.l).Error("Failed to segment superpacket for send",
"error", err,
)
}
}
func (f *Interface) rejectInside(packet []byte, out []byte, q int) {
if !f.firewall.InSendReject {
return
@@ -237,7 +93,7 @@ func (f *Interface) rejectInside(packet []byte, out []byte, q int) {
_, err := f.readers[q].Write(out)
if err != nil {
f.l.Error("Failed to write to tun", "error", err)
f.l.WithError(err).Error("Failed to write to tun")
}
}
@@ -252,11 +108,11 @@ func (f *Interface) rejectOutside(packet []byte, ci *ConnectionState, hostinfo *
}
if len(out) > iputil.MaxRejectPacketSize {
if f.l.Enabled(context.Background(), slog.LevelInfo) {
f.l.Info("rejectOutside: packet too big, not sending",
"packet", packet,
"outPacket", out,
)
if f.l.GetLevel() >= logrus.InfoLevel {
f.l.
WithField("packet", packet).
WithField("outPacket", out).
Info("rejectOutside: packet too big, not sending")
}
return
}
@@ -328,11 +184,10 @@ func (f *Interface) getOrHandshakeConsiderRouting(fwPacket *firewall.Packet, cac
// This would also need to interact with unsafe_route updates through reloading the config or
// use of the use_system_route_table option
if f.l.Enabled(context.Background(), slog.LevelDebug) {
f.l.Debug("Calculated gateway for ECMP not available, attempting other gateways",
"destination", destinationAddr,
"originalGateway", gatewayAddr,
)
if f.l.Level >= logrus.DebugLevel {
f.l.WithField("destination", destinationAddr).
WithField("originalGateway", gatewayAddr).
Debugln("Calculated gateway for ECMP not available, attempting other gateways")
}
for i := range gateways {
@@ -356,20 +211,20 @@ func (f *Interface) getOrHandshakeConsiderRouting(fwPacket *firewall.Packet, cac
func (f *Interface) sendMessageNow(t header.MessageType, st header.MessageSubType, hostinfo *HostInfo, p, nb, out []byte) {
fp := &firewall.Packet{}
err := newPacket(p, false, fp)
ctx := &firewall.PacketContext{}
err := newPacket(p, false, fp, ctx)
if err != nil {
f.l.Warn("error while parsing outgoing packet for firewall check", "error", err)
f.l.Warnf("error while parsing outgoing packet for firewall check; %v", err)
return
}
// check if packet is in outbound fw rules
dropReason := f.firewall.Drop(*fp, false, hostinfo, f.pki.GetCAPool(), nil)
dropReason := f.firewall.Drop(*fp, *ctx, false, hostinfo, f.pki.GetCAPool(), nil)
if dropReason != nil {
if f.l.Enabled(context.Background(), slog.LevelDebug) {
f.l.Debug("dropping cached packet",
"fwPacket", fp,
"reason", dropReason,
)
if f.l.Level >= logrus.DebugLevel {
f.l.WithField("fwPacket", fp).
WithField("reason", dropReason).
Debugln("dropping cached packet")
}
return
}
@@ -385,10 +240,9 @@ func (f *Interface) SendMessageToVpnAddr(t header.MessageType, st header.Message
})
if hostInfo == nil {
if f.l.Enabled(context.Background(), slog.LevelDebug) {
f.l.Debug("dropping SendMessageToVpnAddr, vpnAddr not in our vpn networks or in unsafe routes",
"vpnAddr", vpnAddr,
)
if f.l.Level >= logrus.DebugLevel {
f.l.WithField("vpnAddr", vpnAddr).
Debugln("dropping SendMessageToVpnAddr, vpnAddr not in our vpn networks or in unsafe routes")
}
return
}
@@ -414,13 +268,21 @@ 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()
@@ -436,13 +298,13 @@ func (f *Interface) prepareSendVia(via *HostInfo,
if noiseutil.EncryptLockNeeded {
via.ConnectionState.writeLock.Unlock()
}
via.logger(f.l).Error("SendVia out buffer not large enough for relay",
"outCap", cap(out),
"payloadLen", len(ad),
"headerLen", len(out),
"cipherOverhead", via.ConnectionState.eKey.Overhead(),
)
return nil, io.ErrShortBuffer
via.logger(f.l).
WithField("outCap", cap(out)).
WithField("payloadLen", len(ad)).
WithField("headerLen", len(out)).
WithField("cipherOverhead", via.ConnectionState.eKey.Overhead()).
Error("SendVia out buffer not large enough for relay")
return
}
// The header bytes are written to the 'out' slice; Grow the slice to hold the header and associated data payload.
@@ -461,37 +323,14 @@ func (f *Interface) prepareSendVia(via *HostInfo,
via.ConnectionState.writeLock.Unlock()
}
if err != nil {
via.logger(f.l).Info("Failed to EncryptDanger in sendVia", "error", err)
return nil, err
}
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)
if err != nil {
via.logger(f.l).Info("Failed to prepareSendVia", "error", err)
via.logger(f.l).WithError(err).Info("Failed to EncryptDanger in sendVia")
return
}
err = f.writers[0].WriteTo(toSend, via.remote)
err = f.writers[0].WriteTo(out, via.remote)
if err != nil {
via.logger(f.l).Info("Failed to WriteTo in sendVia", "error", err)
via.logger(f.l).WithError(err).Info("Failed to WriteTo in sendVia")
}
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) {
@@ -528,10 +367,8 @@ func (f *Interface) sendNoMetrics(t header.MessageType, st header.MessageSubType
// 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) {
f.l.Debug("Lighthouse update triggered for punch due to rebind counter",
"vpnAddrs", hostinfo.vpnAddrs,
)
if f.l.Level >= logrus.DebugLevel {
f.l.WithField("vpnAddrs", hostinfo.vpnAddrs).Debug("Lighthouse update triggered for punch due to rebind counter")
}
}
@@ -541,30 +378,24 @@ func (f *Interface) sendNoMetrics(t header.MessageType, st header.MessageSubType
ci.writeLock.Unlock()
}
if err != nil {
hostinfo.logger(f.l).Error("Failed to encrypt outgoing packet",
"error", err,
"udpAddr", remote,
"counter", c,
"attemptedCounter", c,
)
hostinfo.logger(f.l).WithError(err).
WithField("udpAddr", remote).WithField("counter", c).
WithField("attemptedCounter", c).
Error("Failed to encrypt outgoing packet")
return
}
if remote.IsValid() {
err = f.writers[q].WriteTo(out, remote)
if err != nil {
hostinfo.logger(f.l).Error("Failed to write outgoing packet",
"error", err,
"udpAddr", remote,
)
hostinfo.logger(f.l).WithError(err).
WithField("udpAddr", remote).Error("Failed to write outgoing packet")
}
} else if hostinfo.remote.IsValid() {
err = f.writers[q].WriteTo(out, hostinfo.remote)
if err != nil {
hostinfo.logger(f.l).Error("Failed to write outgoing packet",
"error", err,
"udpAddr", remote,
)
hostinfo.logger(f.l).WithError(err).
WithField("udpAddr", remote).Error("Failed to write outgoing packet")
}
} else {
// Try to send via a relay
@@ -572,10 +403,7 @@ func (f *Interface) sendNoMetrics(t header.MessageType, st header.MessageSubType
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,
)
hostinfo.logger(f.l).WithField("relay", relayIP).WithError(err).Info("sendNoMetrics failed to find HostInfo")
continue
}
f.SendVia(relayHostInfo, relay, out, nb, fullOut[:header.Len+len(out)], true)
+55 -80
View File
@@ -4,7 +4,7 @@ import (
"context"
"errors"
"fmt"
"log/slog"
"io"
"net/netip"
"sync"
"sync/atomic"
@@ -12,15 +12,11 @@ import (
"github.com/gaissmai/bart"
"github.com/rcrowley/go-metrics"
"github.com/slackhq/nebula/util"
"github.com/slackhq/nebula/wire"
"github.com/sirupsen/logrus"
"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"
)
@@ -40,7 +36,6 @@ type InterfaceConfig struct {
DropLocalBroadcast bool
DropMulticast bool
routines int
batchSize int
MessageMetrics *MessageMetrics
version string
relayManager *relayManager
@@ -51,7 +46,7 @@ type InterfaceConfig struct {
reQueryWait time.Duration
ConntrackCacheTimeout time.Duration
l *slog.Logger
l *logrus.Logger
}
type Interface struct {
@@ -73,7 +68,6 @@ type Interface struct {
dropLocalBroadcast bool
dropMulticast bool
routines int
batchSize int
disconnectInvalid atomic.Bool
closed atomic.Bool
relayManager *relayManager
@@ -93,12 +87,8 @@ 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)
@@ -110,7 +100,7 @@ type Interface struct {
messageMetrics *MessageMetrics
cachedPacketMetrics *cachedPacketMetrics
l *slog.Logger
l *logrus.Logger
}
type EncWriter interface {
@@ -194,11 +184,9 @@ func NewInterface(ctx context.Context, c *InterfaceConfig) (*Interface, error) {
dropLocalBroadcast: c.DropLocalBroadcast,
dropMulticast: c.DropMulticast,
routines: c.routines,
batchSize: c.batchSize,
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,
@@ -235,16 +223,13 @@ func (f *Interface) activate() error {
addr, err := f.outside.LocalAddr()
if err != nil {
f.l.Error("Failed to get udp listen address", "error", err)
f.l.WithError(err).Error("Failed to get udp listen address")
}
f.l.Info("Nebula interface is active",
"interface", f.inside.Name(),
"networks", f.myVpnNetworks,
"build", f.version,
"udpAddr", addr,
"boringcrypto", boringEnabled(),
)
f.l.WithField("interface", f.inside.Name()).WithField("networks", f.myVpnNetworks).
WithField("build", f.version).WithField("udpAddr", addr).
WithField("boringcrypto", boringEnabled()).
Info("Nebula interface is active")
if f.routines > 1 {
if !f.inside.SupportsMultiqueue() || !f.outside.SupportsMultipleReaders() {
@@ -256,17 +241,15 @@ 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 {
arena := util.NewArena(max(f.batchSize, 1) * udp.MTU)
f.batchers[i] = batch.NewPassthrough(f.readers[i], f.batchSize, arena)
f.readers[i] = reader
}
f.wg.Add(1) // for us to wait on Close() to return
@@ -322,64 +305,49 @@ func (f *Interface) listenOut(i int) {
li = f.outside
}
ctCache := firewall.NewConntrackCacheTicker(f.ctx, f.l, f.conntrackCacheTimeout)
ctCache := firewall.NewConntrackCacheTicker(f.ctx, f.conntrackCacheTimeout)
lhh := f.lightHouse.NewRequestHandler()
plaintext := make([]byte, udp.MTU)
h := &header.H{}
fwPacket := &firewall.Packet{}
fwCtx := &firewall.PacketContext{}
nb := make([]byte, 12, 12)
listener := func(fromUdpAddr netip.AddrPort, payload []byte, meta udp.RxMeta) {
f.readOutsidePackets(ViaSender{UdpAddr: fromUdpAddr}, 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)
err := li.ListenOut(func(fromUdpAddr netip.AddrPort, payload []byte) {
f.readOutsidePackets(ViaSender{UdpAddr: fromUdpAddr}, plaintext[:0], payload, h, fwPacket, fwCtx, lhh, nb, i, ctCache.Get(f.l))
})
if err != nil && !f.closed.Load() {
f.l.Error("Error while reading inbound packet, closing", "error", err)
f.l.WithError(err).Error("Error while reading inbound packet, closing")
f.onFatal(err)
}
f.l.Debug("underlay reader is done", "reader", i)
f.l.Debugf("underlay reader %v is done", i)
}
func (f *Interface) listenIn(reader tio.Queue, q int) {
packetMem := make([]byte, mtu+16) //MTU + some leading slack space for platforms that return "bonus info"
// TODO get the amount of bonus info from the reader
packets := make([]wire.TunPacket, 1)
rejectBuf := make([]byte, mtu)
arenaSize := batch.SendBatchCap * (udp.MTU + 32)
sb := batch.NewSendBatch(f.writers[q], batch.SendBatchCap, util.NewArena(arenaSize))
func (f *Interface) listenIn(reader io.ReadWriteCloser, i int) {
packet := make([]byte, mtu)
out := make([]byte, mtu)
fwPacket := &firewall.Packet{}
fwCtx := &firewall.PacketContext{}
nb := make([]byte, 12, 12)
conntrackCache := firewall.NewConntrackCacheTicker(f.ctx, f.l, f.conntrackCacheTimeout)
conntrackCache := firewall.NewConntrackCacheTicker(f.ctx, f.conntrackCacheTimeout)
for {
n, err := reader.Read(packets, packetMem)
n, err := reader.Read(packet)
if err != nil {
if !f.closed.Load() {
f.l.Error("Error while reading outbound packet, closing", "error", err, "reader", q)
f.l.WithError(err).WithField("reader", i).Error("Error while reading outbound packet, closing")
f.onFatal(err)
}
break
}
ctCache := conntrackCache.Get()
for i := range n {
f.consumeInsidePacket(packets[i], fwPacket, nb, sb, rejectBuf, q, ctCache)
}
if err := sb.Flush(); err != nil {
f.l.Error("Failed to write outgoing batch", "error", err, "writer", q)
}
f.consumeInsidePacket(packet[:n], fwPacket, fwCtx, nb, out, i, conntrackCache.Get(f.l))
}
f.l.Debug("overlay reader is done", "reader", q)
f.l.Debugf("overlay reader %v is done", i)
}
func (f *Interface) RegisterConfigChangeCallbacks(c *config.C) {
@@ -399,7 +367,7 @@ func (f *Interface) reloadDisconnectInvalid(c *config.C) {
if initial || c.HasChanged("pki.disconnect_invalid") {
f.disconnectInvalid.Store(c.GetBool("pki.disconnect_invalid", true))
if !initial {
f.l.Info("pki.disconnect_invalid changed", "value", f.disconnectInvalid.Load())
f.l.Infof("pki.disconnect_invalid changed to %v", f.disconnectInvalid.Load())
}
}
}
@@ -413,7 +381,7 @@ func (f *Interface) reloadFirewall(c *config.C) {
fw, err := NewFirewallFromConfig(f.l, f.pki.getCertState(), c)
if err != nil {
f.l.Error("Error while creating firewall during reload", "error", err)
f.l.WithError(err).Error("Error while creating firewall during reload")
return
}
@@ -426,23 +394,28 @@ func (f *Interface) reloadFirewall(c *config.C) {
// If rulesVersion is back to zero, we have wrapped all the way around. Be
// safe and just reset conntrack in this case.
if fw.rulesVersion == 0 {
f.l.Warn("firewall rulesVersion has overflowed, resetting conntrack",
"firewallHashes", fw.GetRuleHashes(),
"oldFirewallHashes", oldFw.GetRuleHashes(),
"rulesVersion", fw.rulesVersion,
)
f.l.WithField("firewallHashes", fw.GetRuleHashes()).
WithField("oldFirewallHashes", oldFw.GetRuleHashes()).
WithField("rulesVersion", fw.rulesVersion).
Warn("firewall rulesVersion has overflowed, resetting conntrack")
} else {
fw.Conntrack = conntrack
}
fw.reporter = oldFw.reporter
f.firewall = fw
// Fire ReportRulesReload under the conntrack lock so the reporter cannot
// observe a FlowCreate/FlowEvict for the new rulesVersion before it
// observes the reload marker. Report* must be non-blocking.
fw.reportRulesReload(oldFw.rulesVersion, fw.rulesVersion)
oldFw.Destroy()
f.l.Info("New firewall has been installed",
"firewallHashes", fw.GetRuleHashes(),
"oldFirewallHashes", oldFw.GetRuleHashes(),
"rulesVersion", fw.rulesVersion,
)
f.l.WithField("firewallHashes", fw.GetRuleHashes()).
WithField("oldFirewallHashes", oldFw.GetRuleHashes()).
WithField("rulesVersion", fw.rulesVersion).
Info("New firewall has been installed")
}
func (f *Interface) reloadSendRecvError(c *config.C) {
@@ -464,7 +437,8 @@ func (f *Interface) reloadSendRecvError(c *config.C) {
}
}
f.l.Info("Loaded send_recv_error config", "sendRecvError", f.sendRecvErrorConfig.String())
f.l.WithField("sendRecvError", f.sendRecvErrorConfig.String()).
Info("Loaded send_recv_error config")
}
}
@@ -487,7 +461,8 @@ func (f *Interface) reloadAcceptRecvError(c *config.C) {
}
}
f.l.Info("Loaded accept_recv_error config", "acceptRecvError", f.acceptRecvErrorConfig.String())
f.l.WithField("acceptRecvError", f.acceptRecvErrorConfig.String()).
Info("Loaded accept_recv_error config")
}
}
@@ -561,7 +536,7 @@ func (f *Interface) Close() error {
for i, u := range f.writers {
err := u.Close()
if err != nil {
f.l.Error("Error while closing udp socket", "error", err, "writer", i)
f.l.WithError(err).WithField("writer", i).Error("Error while closing udp socket")
errs = append(errs, err)
}
}
+111 -167
View File
@@ -5,7 +5,6 @@ import (
"encoding/binary"
"errors"
"fmt"
"log/slog"
"net"
"net/netip"
"slices"
@@ -15,10 +14,11 @@ import (
"time"
"github.com/gaissmai/bart"
"github.com/rcrowley/go-metrics"
"github.com/sirupsen/logrus"
"github.com/slackhq/nebula/cert"
"github.com/slackhq/nebula/config"
"github.com/slackhq/nebula/header"
"github.com/slackhq/nebula/logging"
"github.com/slackhq/nebula/udp"
"github.com/slackhq/nebula/util"
)
@@ -34,6 +34,7 @@ type LightHouse struct {
myVpnNetworks []netip.Prefix
myVpnNetworksTable *bart.Lite
punchConn udp.Conn
punchy *Punchy
// Local cache of answers from light houses
@@ -68,18 +69,18 @@ type LightHouse struct {
// Addr's of relays that can be used by peers to access me
relaysForMe atomic.Pointer[[]netip.Addr]
updateTrigger chan struct{}
queryChan chan netip.Addr
queryChan chan netip.Addr
calculatedRemotes atomic.Pointer[bart.Table[[]*calculatedRemote]] // Maps VpnAddr to []*calculatedRemote
metrics *MessageMetrics
l *slog.Logger
metrics *MessageMetrics
metricHolepunchTx metrics.Counter
l *logrus.Logger
}
// NewLightHouseFromConfig will build a Lighthouse struct from the values provided in the config object
// addrMap should be nil unless this is during a config reload
func NewLightHouseFromConfig(ctx context.Context, l *slog.Logger, c *config.C, cs *CertState, pc udp.Conn, p *Punchy) (*LightHouse, error) {
func NewLightHouseFromConfig(ctx context.Context, l *logrus.Logger, c *config.C, cs *CertState, pc udp.Conn, p *Punchy) (*LightHouse, error) {
amLighthouse := c.GetBool("lighthouse.am_lighthouse", false)
nebulaPort := uint32(c.GetInt("listen.port", 0))
if amLighthouse && nebulaPort == 0 {
@@ -102,8 +103,8 @@ func NewLightHouseFromConfig(ctx context.Context, l *slog.Logger, c *config.C, c
myVpnNetworksTable: cs.myVpnNetworksTable,
addrMap: make(map[netip.Addr]*RemoteList),
nebulaPort: nebulaPort,
punchConn: pc,
punchy: p,
updateTrigger: make(chan struct{}, 1),
queryChan: make(chan netip.Addr, c.GetUint32("handshakes.query_buffer", 64)),
l: l,
}
@@ -114,6 +115,9 @@ func NewLightHouseFromConfig(ctx context.Context, l *slog.Logger, c *config.C, c
if c.GetBool("stats.lighthouse_metrics", false) {
h.metrics = newLighthouseMetrics()
h.metricHolepunchTx = metrics.GetOrRegisterCounter("messages.tx.holepunch", nil)
} else {
h.metricHolepunchTx = metrics.NilCounter{}
}
err := h.reload(c, true)
@@ -127,7 +131,7 @@ func NewLightHouseFromConfig(ctx context.Context, l *slog.Logger, c *config.C, c
case *util.ContextualError:
v.Log(l)
case error:
l.Error("failed to reload lighthouse", "error", err)
l.WithError(err).Error("failed to reload lighthouse")
}
})
@@ -199,10 +203,8 @@ func (lh *LightHouse) reload(c *config.C, initial bool) error {
//TODO: we could technically insert all returned addrs instead of just the first one if a dns lookup was used
addr := addrs[0].Unmap()
if lh.myVpnNetworksTable.Contains(addr) {
lh.l.Warn("Ignoring lighthouse.advertise_addrs report because it is within the nebula network range",
"addr", rawAddr,
"entry", i+1,
)
lh.l.WithField("addr", rawAddr).WithField("entry", i+1).
Warn("Ignoring lighthouse.advertise_addrs report because it is within the nebula network range")
continue
}
@@ -220,9 +222,7 @@ func (lh *LightHouse) reload(c *config.C, initial bool) error {
lh.interval.Store(int64(c.GetInt("lighthouse.interval", 10)))
if !initial {
lh.l.Info("lighthouse.interval changed",
"interval", lh.interval.Load(),
)
lh.l.Infof("lighthouse.interval changed to %v", lh.interval.Load())
if lh.updateCancel != nil {
// May not always have a running routine
@@ -316,7 +316,6 @@ func (lh *LightHouse) reload(c *config.C, initial bool) error {
if !initial {
//NOTE: we are not tearing down existing lighthouse connections because they might be used for non lighthouse traffic
lh.l.Info("lighthouse.hosts has changed")
lh.TriggerUpdate()
}
}
@@ -334,12 +333,9 @@ func (lh *LightHouse) reload(c *config.C, initial bool) error {
for _, v := range c.GetStringSlice("relay.relays", nil) {
configRIP, err := netip.ParseAddr(v)
if err != nil {
lh.l.Warn("Parse relay from config failed",
"relay", v,
"error", err,
)
lh.l.WithField("relay", v).WithError(err).Warn("Parse relay from config failed")
} else {
lh.l.Info("Read relay from config", "relay", v)
lh.l.WithField("relay", v).Info("Read relay from config")
relaysForMe = append(relaysForMe, configRIP)
}
}
@@ -364,10 +360,8 @@ func (lh *LightHouse) parseLighthouses(c *config.C) ([]netip.Addr, error) {
}
if !lh.myVpnNetworksTable.Contains(addr) {
lh.l.Warn("lighthouse host is not within our networks, lighthouse functionality will work but layer 3 network traffic to the lighthouse will not",
"vpnAddr", addr,
"networks", lh.myVpnNetworks,
)
lh.l.WithFields(m{"vpnAddr": addr, "networks": lh.myVpnNetworks}).
Warn("lighthouse host is not within our networks, lighthouse functionality will work but layer 3 network traffic to the lighthouse will not")
}
out[i] = addr
}
@@ -438,11 +432,8 @@ func (lh *LightHouse) loadStaticMap(c *config.C, staticList map[netip.Addr]struc
}
if !lh.myVpnNetworksTable.Contains(vpnAddr) {
lh.l.Warn("static_host_map key is not within our networks, layer 3 network traffic to this host will not work",
"vpnAddr", vpnAddr,
"networks", lh.myVpnNetworks,
"entry", i+1,
)
lh.l.WithFields(m{"vpnAddr": vpnAddr, "networks": lh.myVpnNetworks, "entry": i + 1}).
Warn("static_host_map key is not within our networks, layer 3 network traffic to this host will not work")
}
vals, ok := v.([]any)
@@ -543,13 +534,12 @@ func (lh *LightHouse) DeleteVpnAddrs(allVpnAddrs []netip.Addr) {
lh.Lock()
rm, ok := lh.addrMap[allVpnAddrs[0]]
if ok {
debugEnabled := lh.l.Enabled(context.Background(), slog.LevelDebug)
for _, addr := range allVpnAddrs {
srm := lh.addrMap[addr]
if srm == rm {
delete(lh.addrMap, addr)
if debugEnabled {
lh.l.Debug("deleting from lighthouse", "vpnAddr", addr)
if lh.l.Level >= logrus.DebugLevel {
lh.l.Debugf("deleting %s from lighthouse.", addr)
}
}
}
@@ -666,12 +656,9 @@ func (lh *LightHouse) unlockedGetRemoteList(allAddrs []netip.Addr) *RemoteList {
func (lh *LightHouse) shouldAdd(vpnAddrs []netip.Addr, to netip.Addr) bool {
allow := lh.GetRemoteAllowList().AllowAll(vpnAddrs, to)
if lh.l.Enabled(context.Background(), logging.LevelTrace) {
lh.l.Log(context.Background(), logging.LevelTrace, "remoteAllowList.Allow",
"vpnAddrs", vpnAddrs,
"udpAddr", to,
"allow", allow,
)
if lh.l.Level >= logrus.TraceLevel {
lh.l.WithField("vpnAddrs", vpnAddrs).WithField("udpAddr", to).WithField("allow", allow).
Trace("remoteAllowList.Allow")
}
if !allow {
return false
@@ -688,12 +675,9 @@ func (lh *LightHouse) shouldAdd(vpnAddrs []netip.Addr, to netip.Addr) bool {
func (lh *LightHouse) unlockedShouldAddV4(vpnAddr netip.Addr, to *V4AddrPort) bool {
udpAddr := protoV4AddrPortToNetAddrPort(to)
allow := lh.GetRemoteAllowList().Allow(vpnAddr, udpAddr.Addr())
if lh.l.Enabled(context.Background(), logging.LevelTrace) {
lh.l.Log(context.Background(), logging.LevelTrace, "remoteAllowList.Allow",
"vpnAddr", vpnAddr,
"udpAddr", udpAddr,
"allow", allow,
)
if lh.l.Level >= logrus.TraceLevel {
lh.l.WithField("vpnAddr", vpnAddr).WithField("udpAddr", udpAddr).WithField("allow", allow).
Trace("remoteAllowList.Allow")
}
if !allow {
@@ -711,12 +695,9 @@ func (lh *LightHouse) unlockedShouldAddV4(vpnAddr netip.Addr, to *V4AddrPort) bo
func (lh *LightHouse) unlockedShouldAddV6(vpnAddr netip.Addr, to *V6AddrPort) bool {
udpAddr := protoV6AddrPortToNetAddrPort(to)
allow := lh.GetRemoteAllowList().Allow(vpnAddr, udpAddr.Addr())
if lh.l.Enabled(context.Background(), logging.LevelTrace) {
lh.l.Log(context.Background(), logging.LevelTrace, "remoteAllowList.Allow",
"vpnAddr", vpnAddr,
"udpAddr", udpAddr,
"allow", allow,
)
if lh.l.Level >= logrus.TraceLevel {
lh.l.WithField("vpnAddr", vpnAddr).WithField("udpAddr", udpAddr).WithField("allow", allow).
Trace("remoteAllowList.Allow")
}
if !allow {
@@ -791,10 +772,8 @@ func (lh *LightHouse) innerQueryServer(addr netip.Addr, nb, out []byte) {
if v == cert.Version1 {
if !addr.Is4() {
lh.l.Error("Can't query lighthouse for v6 address using a v1 protocol",
"queryVpnAddr", addr,
"lighthouseAddr", lhVpnAddr,
)
lh.l.WithField("queryVpnAddr", addr).WithField("lighthouseAddr", lhVpnAddr).
Error("Can't query lighthouse for v6 address using a v1 protocol")
continue
}
@@ -805,11 +784,9 @@ func (lh *LightHouse) innerQueryServer(addr netip.Addr, nb, out []byte) {
v1Query, err = msg.Marshal()
if err != nil {
lh.l.Error("Failed to marshal lighthouse v1 query payload",
"error", err,
"queryVpnAddr", addr,
"lighthouseAddr", lhVpnAddr,
)
lh.l.WithError(err).WithField("queryVpnAddr", addr).
WithField("lighthouseAddr", lhVpnAddr).
Error("Failed to marshal lighthouse v1 query payload")
continue
}
}
@@ -824,11 +801,9 @@ func (lh *LightHouse) innerQueryServer(addr netip.Addr, nb, out []byte) {
v2Query, err = msg.Marshal()
if err != nil {
lh.l.Error("Failed to marshal lighthouse v2 query payload",
"error", err,
"queryVpnAddr", addr,
"lighthouseAddr", lhVpnAddr,
)
lh.l.WithError(err).WithField("queryVpnAddr", addr).
WithField("lighthouseAddr", lhVpnAddr).
Error("Failed to marshal lighthouse v2 query payload")
continue
}
}
@@ -837,11 +812,7 @@ func (lh *LightHouse) innerQueryServer(addr netip.Addr, nb, out []byte) {
queried++
} else {
lh.l.Debug("unsupported protocol version",
"op", "query",
"queryVpnAddr", addr,
"version", v,
)
lh.l.Debugf("Can not query lighthouse for %v using unknown protocol version: %v", addr, v)
continue
}
}
@@ -870,24 +841,11 @@ func (lh *LightHouse) StartUpdateWorker() {
return
case <-clockSource.C:
continue
case <-lh.updateTrigger:
continue
}
}
}()
}
// TriggerUpdate requests an immediate lighthouse update. This is a non-blocking
// operation intended to be called after a handshake completes with a lighthouse,
// so the lighthouse has our current addresses without waiting for the next
// periodic update.
func (lh *LightHouse) TriggerUpdate() {
select {
case lh.updateTrigger <- struct{}{}:
default:
}
}
func (lh *LightHouse) SendUpdate() {
var v4 []*V4AddrPort
var v6 []*V6AddrPort
@@ -933,9 +891,8 @@ func (lh *LightHouse) SendUpdate() {
if v == cert.Version1 {
if v1Update == nil {
if !lh.myVpnNetworks[0].Addr().Is4() {
lh.l.Warn("cannot update lighthouse using v1 protocol without an IPv4 address",
"lighthouseAddr", lhVpnAddr,
)
lh.l.WithField("lighthouseAddr", lhVpnAddr).
Warn("cannot update lighthouse using v1 protocol without an IPv4 address")
continue
}
var relays []uint32
@@ -959,10 +916,8 @@ func (lh *LightHouse) SendUpdate() {
v1Update, err = msg.Marshal()
if err != nil {
lh.l.Error("Error while marshaling for lighthouse v1 update",
"error", err,
"lighthouseAddr", lhVpnAddr,
)
lh.l.WithError(err).WithField("lighthouseAddr", lhVpnAddr).
Error("Error while marshaling for lighthouse v1 update")
continue
}
}
@@ -988,10 +943,8 @@ func (lh *LightHouse) SendUpdate() {
v2Update, err = msg.Marshal()
if err != nil {
lh.l.Error("Error while marshaling for lighthouse v2 update",
"error", err,
"lighthouseAddr", lhVpnAddr,
)
lh.l.WithError(err).WithField("lighthouseAddr", lhVpnAddr).
Error("Error while marshaling for lighthouse v2 update")
continue
}
}
@@ -1000,10 +953,7 @@ func (lh *LightHouse) SendUpdate() {
updated++
} else {
lh.l.Debug("unsupported protocol version",
"op", "update",
"version", v,
)
lh.l.Debugf("Can not update lighthouse using unknown protocol version: %v", v)
continue
}
}
@@ -1017,7 +967,7 @@ type LightHouseHandler struct {
out []byte
pb []byte
meta *NebulaMeta
l *slog.Logger
l *logrus.Logger
}
func (lh *LightHouse) NewRequestHandler() *LightHouseHandler {
@@ -1066,19 +1016,14 @@ func (lhh *LightHouseHandler) HandleRequest(rAddr netip.AddrPort, fromVpnAddrs [
n := lhh.resetMeta()
err := n.Unmarshal(p)
if err != nil {
lhh.l.Error("Failed to unmarshal lighthouse packet",
"error", err,
"vpnAddrs", fromVpnAddrs,
"udpAddr", rAddr,
)
lhh.l.WithError(err).WithField("vpnAddrs", fromVpnAddrs).WithField("udpAddr", rAddr).
Error("Failed to unmarshal lighthouse packet")
return
}
if n.Details == nil {
lhh.l.Error("Invalid lighthouse update",
"vpnAddrs", fromVpnAddrs,
"udpAddr", rAddr,
)
lhh.l.WithField("vpnAddrs", fromVpnAddrs).WithField("udpAddr", rAddr).
Error("Invalid lighthouse update")
return
}
@@ -1106,29 +1051,25 @@ func (lhh *LightHouseHandler) HandleRequest(rAddr netip.AddrPort, fromVpnAddrs [
func (lhh *LightHouseHandler) handleHostQuery(n *NebulaMeta, fromVpnAddrs []netip.Addr, addr netip.AddrPort, w EncWriter) {
// Exit if we don't answer queries
if !lhh.lh.amLighthouse {
if lhh.l.Enabled(context.Background(), slog.LevelDebug) {
lhh.l.Debug("I don't answer queries, but received one", "from", addr)
if lhh.l.Level >= logrus.DebugLevel {
lhh.l.Debugln("I don't answer queries, but received from: ", addr)
}
return
}
queryVpnAddr, useVersion, err := n.Details.GetVpnAddrAndVersion()
if err != nil {
if lhh.l.Enabled(context.Background(), slog.LevelDebug) {
lhh.l.Debug("Dropping malformed HostQuery",
"from", fromVpnAddrs,
"details", n.Details,
)
if lhh.l.Level >= logrus.DebugLevel {
lhh.l.WithField("from", fromVpnAddrs).WithField("details", n.Details).
Debugln("Dropping malformed HostQuery")
}
return
}
if useVersion == cert.Version1 && queryVpnAddr.Is6() {
// this case really shouldn't be possible to represent, but reject it anyway.
if lhh.l.Enabled(context.Background(), slog.LevelDebug) {
lhh.l.Debug("invalid vpn addr for v1 handleHostQuery",
"vpnAddrs", fromVpnAddrs,
"queryVpnAddr", queryVpnAddr,
)
if lhh.l.Level >= logrus.DebugLevel {
lhh.l.WithField("vpnAddrs", fromVpnAddrs).WithField("queryVpnAddr", queryVpnAddr).
Debugln("invalid vpn addr for v1 handleHostQuery")
}
return
}
@@ -1153,10 +1094,7 @@ func (lhh *LightHouseHandler) handleHostQuery(n *NebulaMeta, fromVpnAddrs []neti
}
if err != nil {
lhh.l.Error("Failed to marshal lighthouse host query reply",
"error", err,
"vpnAddrs", fromVpnAddrs,
)
lhh.l.WithError(err).WithField("vpnAddrs", fromVpnAddrs).Error("Failed to marshal lighthouse host query reply")
return
}
@@ -1184,10 +1122,8 @@ func (lhh *LightHouseHandler) sendHostPunchNotification(n *NebulaMeta, fromVpnAd
if ok {
whereToPunch = newDest
} else {
if lhh.l.Enabled(context.Background(), slog.LevelDebug) {
lhh.l.Debug("unable to punch to host, no addresses in common",
"to", crt.Networks(),
)
if lhh.l.Level >= logrus.DebugLevel {
lhh.l.WithField("to", crt.Networks()).Debugln("unable to punch to host, no addresses in common")
}
}
}
@@ -1213,10 +1149,7 @@ func (lhh *LightHouseHandler) sendHostPunchNotification(n *NebulaMeta, fromVpnAd
}
if err != nil {
lhh.l.Error("Failed to marshal lighthouse host was queried for",
"error", err,
"vpnAddrs", fromVpnAddrs,
)
lhh.l.WithError(err).WithField("vpnAddrs", fromVpnAddrs).Error("Failed to marshal lighthouse host was queried for")
return
}
@@ -1258,11 +1191,8 @@ func (lhh *LightHouseHandler) coalesceAnswers(v cert.Version, c *cache, n *Nebul
n.Details.RelayVpnAddrs = append(n.Details.RelayVpnAddrs, netAddrToProtoAddr(r))
}
} else {
if lhh.l.Enabled(context.Background(), slog.LevelDebug) {
lhh.l.Debug("unsupported protocol version",
"op", "coalesceAnswers",
"version", v,
)
if lhh.l.Level >= logrus.DebugLevel {
lhh.l.WithField("version", v).Debug("unsupported protocol version")
}
}
}
@@ -1275,11 +1205,8 @@ func (lhh *LightHouseHandler) handleHostQueryReply(n *NebulaMeta, fromVpnAddrs [
certVpnAddr, _, err := n.Details.GetVpnAddrAndVersion()
if err != nil {
if lhh.l.Enabled(context.Background(), slog.LevelDebug) {
lhh.l.Error("dropping malformed HostQueryReply",
"error", err,
"vpnAddrs", fromVpnAddrs,
)
if lhh.l.Level >= logrus.DebugLevel {
lhh.l.WithError(err).WithField("vpnAddrs", fromVpnAddrs).Error("dropping malformed HostQueryReply")
}
return
}
@@ -1304,8 +1231,8 @@ func (lhh *LightHouseHandler) handleHostQueryReply(n *NebulaMeta, fromVpnAddrs [
func (lhh *LightHouseHandler) handleHostUpdateNotification(n *NebulaMeta, fromVpnAddrs []netip.Addr, w EncWriter) {
if !lhh.lh.amLighthouse {
if lhh.l.Enabled(context.Background(), slog.LevelDebug) {
lhh.l.Debug("I am not a lighthouse, do not take host updates", "from", fromVpnAddrs)
if lhh.l.Level >= logrus.DebugLevel {
lhh.l.Debugln("I am not a lighthouse, do not take host updates: ", fromVpnAddrs)
}
return
}
@@ -1328,11 +1255,8 @@ func (lhh *LightHouseHandler) handleHostUpdateNotification(n *NebulaMeta, fromVp
//Simple check that the host sent this not someone else, if detailsVpnAddr is filled
if detailsVpnAddr.IsValid() && !slices.Contains(fromVpnAddrs, detailsVpnAddr) {
if lhh.l.Enabled(context.Background(), slog.LevelDebug) {
lhh.l.Debug("Host sent invalid update",
"vpnAddrs", fromVpnAddrs,
"answer", detailsVpnAddr,
)
if lhh.l.Level >= logrus.DebugLevel {
lhh.l.WithField("vpnAddrs", fromVpnAddrs).WithField("answer", detailsVpnAddr).Debugln("Host sent invalid update")
}
return
}
@@ -1354,9 +1278,7 @@ func (lhh *LightHouseHandler) handleHostUpdateNotification(n *NebulaMeta, fromVp
switch useVersion {
case cert.Version1:
if !fromVpnAddrs[0].Is4() {
lhh.l.Error("Can not send HostUpdateNotificationAck for a ipv6 vpn ip in a v1 message",
"vpnAddrs", fromVpnAddrs,
)
lhh.l.WithField("vpnAddrs", fromVpnAddrs).Error("Can not send HostUpdateNotificationAck for a ipv6 vpn ip in a v1 message")
return
}
vpnAddrB := fromVpnAddrs[0].As4()
@@ -1364,16 +1286,13 @@ func (lhh *LightHouseHandler) handleHostUpdateNotification(n *NebulaMeta, fromVp
case cert.Version2:
// do nothing, we want to send a blank message
default:
lhh.l.Error("invalid protocol version", "useVersion", useVersion)
lhh.l.WithField("useVersion", useVersion).Error("invalid protocol version")
return
}
ln, err := n.MarshalTo(lhh.pb)
if err != nil {
lhh.l.Error("Failed to marshal lighthouse host update ack",
"error", err,
"vpnAddrs", fromVpnAddrs,
)
lhh.l.WithError(err).WithField("vpnAddrs", fromVpnAddrs).Error("Failed to marshal lighthouse host update ack")
return
}
@@ -1390,34 +1309,59 @@ func (lhh *LightHouseHandler) handleHostPunchNotification(n *NebulaMeta, fromVpn
detailsVpnAddr, _, err := n.Details.GetVpnAddrAndVersion()
if err != nil {
if lhh.l.Enabled(context.Background(), slog.LevelDebug) {
lhh.l.Debug("dropping invalid HostPunchNotification",
"details", n.Details,
"error", err,
)
if lhh.l.Level >= logrus.DebugLevel {
lhh.l.WithField("details", n.Details).WithError(err).Debugln("dropping invalid HostPunchNotification")
}
return
}
empty := []byte{0}
punch := func(vpnPeer netip.AddrPort, logVpnAddr netip.Addr) {
if !vpnPeer.IsValid() {
return
}
go func() {
time.Sleep(lhh.lh.punchy.GetDelay())
lhh.lh.metricHolepunchTx.Inc(1)
lhh.lh.punchConn.WriteTo(empty, vpnPeer)
}()
if lhh.l.Level >= logrus.DebugLevel {
lhh.l.Debugf("Punching on %v for %v", vpnPeer, logVpnAddr)
}
}
remoteAllowList := lhh.lh.GetRemoteAllowList()
for _, a := range n.Details.V4AddrPorts {
b := protoV4AddrPortToNetAddrPort(a)
if remoteAllowList.Allow(detailsVpnAddr, b.Addr()) {
lhh.lh.punchy.Schedule(b, detailsVpnAddr)
punch(b, detailsVpnAddr)
}
}
for _, a := range n.Details.V6AddrPorts {
b := protoV6AddrPortToNetAddrPort(a)
if remoteAllowList.Allow(detailsVpnAddr, b.Addr()) {
lhh.lh.punchy.Schedule(b, detailsVpnAddr)
punch(b, detailsVpnAddr)
}
}
// This sends a nebula test packet to the host trying to contact us. In the case
// of a double nat or other difficult scenario, this may help establish
// a tunnel. ScheduleRespond is a no-op when punchy.respond is disabled.
lhh.lh.punchy.ScheduleRespond(detailsVpnAddr)
// a tunnel.
if lhh.lh.punchy.GetRespond() {
go func() {
time.Sleep(lhh.lh.punchy.GetRespondDelay())
if lhh.l.Level >= logrus.DebugLevel {
lhh.l.Debugf("Sending a nebula test packet to vpn addr %s", detailsVpnAddr)
}
//NOTE: we have to allocate a new output buffer here since we are spawning a new goroutine
// for each punchBack packet. We should move this into a timerwheel or a single goroutine
// managed by a channel.
w.SendMessageToVpnAddr(header.Test, header.TestRequest, detailsVpnAddr, []byte(""), make([]byte, 12, 12), make([]byte, mtu))
}()
}
}
func protoAddrToNetAddr(addr *Addr) netip.Addr {
+45
View File
@@ -0,0 +1,45 @@
package nebula
import (
"fmt"
"strings"
"time"
"github.com/sirupsen/logrus"
"github.com/slackhq/nebula/config"
)
func configLogger(l *logrus.Logger, c *config.C) error {
// set up our logging level
logLevel, err := logrus.ParseLevel(strings.ToLower(c.GetString("logging.level", "info")))
if err != nil {
return fmt.Errorf("%s; possible levels: %s", err, logrus.AllLevels)
}
l.SetLevel(logLevel)
disableTimestamp := c.GetBool("logging.disable_timestamp", false)
timestampFormat := c.GetString("logging.timestamp_format", "")
fullTimestamp := (timestampFormat != "")
if timestampFormat == "" {
timestampFormat = time.RFC3339
}
logFormat := strings.ToLower(c.GetString("logging.format", "text"))
switch logFormat {
case "text":
l.Formatter = &logrus.TextFormatter{
TimestampFormat: timestampFormat,
FullTimestamp: fullTimestamp,
DisableTimestamp: disableTimestamp,
}
case "json":
l.Formatter = &logrus.JSONFormatter{
TimestampFormat: timestampFormat,
DisableTimestamp: disableTimestamp,
}
default:
return fmt.Errorf("unknown log format `%s`. possible formats: %s", logFormat, []string{"text", "json"})
}
return nil
}
-233
View File
@@ -1,233 +0,0 @@
// Package logging wires the nebula runtime-reconfigurable slog handler used
// by nebula.Main and the nebula CLI binaries. Callers build a logger with
// NewLogger, then call ApplyConfig at startup and from a config reload
// callback to push logging.level, logging.format, and
// logging.disable_timestamp changes onto the logger without rebuilding it.
package logging
import (
"context"
"fmt"
"io"
"log/slog"
"strings"
"sync/atomic"
"time"
)
// Config is the subset of *config.C that ApplyConfig reads. Declaring it
// here keeps the logging package from depending on config directly, which
// would cycle through the shared test helpers (test.NewLogger imports
// logging, and config's tests import test). *config.C satisfies this
// interface structurally with no adapter.
type Config interface {
GetString(key, def string) string
GetBool(key string, def bool) bool
}
// LevelTrace is a custom slog level below Debug, used when logging.level is
// "trace". slog has no builtin trace level; the value is one step below
// slog.LevelDebug in slog's 4-point spacing.
const LevelTrace = slog.Level(-8)
// NewLogger returns a *slog.Logger whose level, format, and timestamp
// emission can be reconfigured at runtime via ApplyConfig and the SSH debug
// commands. The default configuration is info-level text output so log
// calls made before ApplyConfig runs still produce output. Timestamps
// follow slog's default RFC3339Nano format; set logging.disable_timestamp
// in config to suppress them.
//
// ApplyConfig and the SSH commands discover the reconfig surface via
// structural type-assertion on l.Handler(), so replacement implementations
// (tests, platform-specific sinks) need only implement the subset of
// {SetLevel(slog.Level), SetFormat(string) error, SetDisableTimestamp(bool)}
// they care about. Callers that pass a plain *slog.Logger without these
// methods get a silent no-op; reconfiguration is always opt-in.
func NewLogger(w io.Writer) *slog.Logger {
return slog.New(NewHandler(w))
}
// NewHandler builds the *Handler that NewLogger wraps. Exported for
// platform-specific sinks (notably cmd/nebula-service/logs_windows.go)
// that want to wrap the handler with extra behavior, such as tagging each
// record with its Event Log severity, while still benefiting from all the
// level / format / timestamp / WithAttrs machinery implemented here.
func NewHandler(w io.Writer) *Handler {
root := &handlerRoot{}
root.level.Set(slog.LevelInfo)
opts := &slog.HandlerOptions{Level: &root.level}
return &Handler{
root: root,
text: slog.NewTextHandler(w, opts),
json: slog.NewJSONHandler(w, opts),
}
}
// handlerRoot carries the reconfiguration state shared by every logger
// derived from a NewHandler call. All fields are consulted on the log
// path and updated lock-free.
type handlerRoot struct {
level slog.LevelVar
disableTimestamp atomic.Bool
// jsonMode picks which of the pre-derived inner handlers Handler.Handle
// dispatches to. Flipping it propagates instantly to every derived logger
// without rebuilding or chain-replaying anything.
jsonMode atomic.Bool
}
// Handler is the slog.Handler returned by NewHandler. It holds two
// pre-derived slog handlers -- one text, one json -- both built from the
// same accumulated WithAttrs/WithGroup state. Handle picks which one to
// dispatch to based on handlerRoot.jsonMode, so a SetFormat call takes
// effect immediately across the whole process without having to rebuild
// any derived loggers.
type Handler struct {
root *handlerRoot
text slog.Handler
json slog.Handler
}
func (h *Handler) Enabled(_ context.Context, l slog.Level) bool {
return h.root.level.Level() <= l
}
func (h *Handler) Handle(ctx context.Context, r slog.Record) error {
if h.root.disableTimestamp.Load() {
r.Time = time.Time{}
}
if h.root.jsonMode.Load() {
return h.json.Handle(ctx, r)
}
return h.text.Handle(ctx, r)
}
func (h *Handler) WithAttrs(attrs []slog.Attr) slog.Handler {
if len(attrs) == 0 {
return h
}
return &Handler{
root: h.root,
text: h.text.WithAttrs(attrs),
json: h.json.WithAttrs(attrs),
}
}
func (h *Handler) WithGroup(name string) slog.Handler {
if name == "" {
return h
}
return &Handler{
root: h.root,
text: h.text.WithGroup(name),
json: h.json.WithGroup(name),
}
}
// SetLevel updates the effective log level. Propagates to every derived
// logger via the shared LevelVar.
func (h *Handler) SetLevel(level slog.Level) { h.root.level.Set(level) }
// GetLevel reports the current log level.
func (h *Handler) GetLevel() slog.Level { return h.root.level.Level() }
// SetFormat flips the output format atomically. Valid formats are "text"
// and "json". Every derived logger sees the new format on its next Handle
// call; no rebuild or registration is required.
func (h *Handler) SetFormat(format string) error {
switch format {
case "text":
h.root.jsonMode.Store(false)
case "json":
h.root.jsonMode.Store(true)
default:
return fmt.Errorf("unknown log format `%s`. possible formats: %s", format, []string{"text", "json"})
}
return nil
}
// GetFormat reports the currently selected format name.
func (h *Handler) GetFormat() string {
if h.root.jsonMode.Load() {
return "json"
}
return "text"
}
// SetDisableTimestamp toggles whether Handle zeroes r.Time before
// dispatching (slog's builtin text/json handlers skip emitting the time
// attribute on a zero time).
func (h *Handler) SetDisableTimestamp(v bool) { h.root.disableTimestamp.Store(v) }
// ApplyConfig reads logging.level, logging.format, and (optionally)
// logging.disable_timestamp from c and applies them to l. The reconfig
// surface is discovered via structural type-assertion on l.Handler(), so
// foreign handlers silently opt out of whichever capabilities they do not
// implement.
//
// nebula.Main does NOT call this function on your behalf; callers that want
// config-driven log level / format / timestamp updates invoke it at
// startup and register it as a reload callback themselves. This keeps the
// library from mutating an embedder's logger without their say-so.
func ApplyConfig(l *slog.Logger, c Config) error {
h := l.Handler()
lvl, err := ParseLevel(strings.ToLower(c.GetString("logging.level", "info")))
if err != nil {
return err
}
if ls, ok := h.(interface{ SetLevel(slog.Level) }); ok {
ls.SetLevel(lvl)
}
format := strings.ToLower(c.GetString("logging.format", "text"))
if fs, ok := h.(interface{ SetFormat(string) error }); ok {
if err := fs.SetFormat(format); err != nil {
return err
}
}
if ts, ok := h.(interface{ SetDisableTimestamp(bool) }); ok {
ts.SetDisableTimestamp(c.GetBool("logging.disable_timestamp", false))
}
return nil
}
// ParseLevel converts a config-string level name ("trace", "debug", "info",
// "warn"/"warning", "error", "fatal"/"panic") to a slog.Level. "fatal" and
// "panic" are accepted for backwards compatibility with pre-slog configs
// and both map to slog.LevelError.
func ParseLevel(s string) (slog.Level, error) {
switch s {
case "trace":
return LevelTrace, nil
case "debug":
return slog.LevelDebug, nil
case "info":
return slog.LevelInfo, nil
case "warn", "warning":
return slog.LevelWarn, nil
case "error":
return slog.LevelError, nil
case "fatal", "panic":
return slog.LevelError, nil
default:
return 0, fmt.Errorf("not a valid logging level: %q", s)
}
}
// LevelName returns a human-readable name for a slog.Level matching the
// strings accepted by ParseLevel.
func LevelName(l slog.Level) string {
switch {
case l <= LevelTrace:
return "trace"
case l <= slog.LevelDebug:
return "debug"
case l <= slog.LevelInfo:
return "info"
case l <= slog.LevelWarn:
return "warn"
default:
return "error"
}
}
-90
View File
@@ -1,90 +0,0 @@
package logging
import (
"context"
"io"
"log/slog"
"testing"
)
// BenchmarkLogger_* compare the handler returned by NewLogger against a
// stock slog text handler. The key thing we care about is the per-log
// cost on a logger that has been derived via .With(), because that is the
// shape subsystems store on their structs (HostInfo.logger(),
// lh.l.With("subsystem", ...), etc.) and call from hot paths.
func BenchmarkLogger_Stock_RootInfo(b *testing.B) {
l := slog.New(slog.DiscardHandler)
b.ReportAllocs()
b.ResetTimer()
for i := 0; i < b.N; i++ {
l.Info("hello", "i", i)
}
}
func BenchmarkLogger_Nebula_RootInfo(b *testing.B) {
l := NewLogger(io.Discard)
b.ReportAllocs()
b.ResetTimer()
for i := 0; i < b.N; i++ {
l.Info("hello", "i", i)
}
}
func BenchmarkLogger_Stock_DerivedInfo(b *testing.B) {
l := slog.New(slog.DiscardHandler).With(
"subsystem", "bench",
"localIndex", 1234,
)
b.ReportAllocs()
b.ResetTimer()
for i := 0; i < b.N; i++ {
l.Info("hello", "i", i)
}
}
func BenchmarkLogger_Nebula_DerivedInfo(b *testing.B) {
l := NewLogger(io.Discard).With(
"subsystem", "bench",
"localIndex", 1234,
)
b.ReportAllocs()
b.ResetTimer()
for i := 0; i < b.N; i++ {
l.Info("hello", "i", i)
}
}
// Gated-off-path benchmarks: mimic the typical hot-path shape
// `if l.Enabled(ctx, slog.LevelDebug) { ... }` where the log is gated below
// the active level. This is the dominant pattern in inside.go/outside.go and
// what we pay on every packet.
func BenchmarkLogger_Stock_DerivedEnabledGateMiss(b *testing.B) {
l := slog.New(slog.DiscardHandler).With(
"subsystem", "bench",
"localIndex", 1234,
)
ctx := context.Background()
b.ReportAllocs()
b.ResetTimer()
for i := 0; i < b.N; i++ {
if l.Enabled(ctx, slog.LevelDebug) {
l.Debug("hello", "i", i)
}
}
}
func BenchmarkLogger_Nebula_DerivedEnabledGateMiss(b *testing.B) {
l := NewLogger(io.Discard).With(
"subsystem", "bench",
"localIndex", 1234,
)
ctx := context.Background()
b.ReportAllocs()
b.ResetTimer()
for i := 0; i < b.N; i++ {
if l.Enabled(ctx, slog.LevelDebug) {
l.Debug("hello", "i", i)
}
}
}
+38 -20
View File
@@ -3,13 +3,13 @@ package nebula
import (
"context"
"fmt"
"log/slog"
"net"
"net/netip"
"runtime/debug"
"strings"
"time"
"github.com/sirupsen/logrus"
"github.com/slackhq/nebula/config"
"github.com/slackhq/nebula/overlay"
"github.com/slackhq/nebula/sshd"
@@ -20,7 +20,7 @@ import (
type m = map[string]any
func Main(c *config.C, configTest bool, buildVersion string, l *slog.Logger, deviceFactory overlay.DeviceFactory) (retcon *Control, reterr error) {
func Main(c *config.C, configTest bool, buildVersion string, logger *logrus.Logger, deviceFactory overlay.DeviceFactory) (retcon *Control, reterr error) {
ctx, cancel := context.WithCancel(context.Background())
// Automatically cancel the context if Main returns an error, to signal all created goroutines to quit.
defer func() {
@@ -33,6 +33,11 @@ func Main(c *config.C, configTest bool, buildVersion string, l *slog.Logger, dev
buildVersion = moduleVersion()
}
l := logger
l.Formatter = &logrus.TextFormatter{
FullTimestamp: true,
}
// Print the config if in test, the exit comes later
if configTest {
b, err := yaml.Marshal(c.Settings)
@@ -41,9 +46,21 @@ func Main(c *config.C, configTest bool, buildVersion string, l *slog.Logger, dev
}
// Print the final config
l.Info(string(b))
l.Println(string(b))
}
err := configLogger(l, c)
if err != nil {
return nil, util.ContextualizeIfNeeded("Failed to configure the logger", err)
}
c.RegisterReloadCallback(func(c *config.C) {
err := configLogger(l, c)
if err != nil {
l.WithError(err).Error("Failed to configure the logger")
}
})
pki, err := NewPKIFromConfig(l, c)
if err != nil {
return nil, util.ContextualizeIfNeeded("Failed to load PKI from config", err)
@@ -53,9 +70,9 @@ func Main(c *config.C, configTest bool, buildVersion string, l *slog.Logger, dev
if err != nil {
return nil, util.ContextualizeIfNeeded("Error while loading firewall rules", err)
}
l.Info("Firewall started", "firewallHashes", fw.GetRuleHashes())
l.WithField("firewallHashes", fw.GetRuleHashes()).Info("Firewall started")
ssh, err := sshd.NewSSHServer(ctx, l.With("subsystem", "sshd"))
ssh, err := sshd.NewSSHServer(l.WithField("subsystem", "sshd"))
if err != nil {
return nil, util.ContextualizeIfNeeded("Error while creating SSH server", err)
}
@@ -64,7 +81,7 @@ func Main(c *config.C, configTest bool, buildVersion string, l *slog.Logger, dev
if c.GetBool("sshd.enabled", false) {
sshStart, err = configSSH(l, ssh, c)
if err != nil {
l.Warn("Failed to configure sshd, ssh debugging will not be available", "error", err)
l.WithError(err).Warn("Failed to configure sshd, ssh debugging will not be available")
sshStart = nil
}
}
@@ -82,7 +99,7 @@ func Main(c *config.C, configTest bool, buildVersion string, l *slog.Logger, dev
routines = 1
}
if routines > 1 {
l.Info("Using multiple routines", "routines", routines)
l.WithField("routines", routines).Info("Using multiple routines")
}
} else {
// deprecated and undocumented
@@ -90,7 +107,7 @@ func Main(c *config.C, configTest bool, buildVersion string, l *slog.Logger, dev
udpQueues := c.GetInt("listen.routines", 1)
routines = max(tunQueues, udpQueues)
if routines != 1 {
l.Warn("Setting tun.routines and listen.routines is deprecated. Use `routines` instead", "routines", routines)
l.WithField("routines", routines).Warn("Setting tun.routines and listen.routines is deprecated. Use `routines` instead")
}
}
@@ -103,7 +120,7 @@ func Main(c *config.C, configTest bool, buildVersion string, l *slog.Logger, dev
conntrackCacheTimeout = 1 * time.Second
}
if conntrackCacheTimeout > 0 {
l.Info("Using routine-local conntrack cache", "duration", conntrackCacheTimeout)
l.WithField("duration", conntrackCacheTimeout).Info("Using routine-local conntrack cache")
}
var tun overlay.Device
@@ -149,7 +166,7 @@ func Main(c *config.C, configTest bool, buildVersion string, l *slog.Logger, dev
}
for i := 0; i < routines; i++ {
l.Info("listening", "addr", netip.AddrPortFrom(listenHost, uint16(port)))
l.Infof("listening on %v", netip.AddrPortFrom(listenHost, uint16(port)))
udpServer, err := udp.NewListener(l, listenHost, port, routines > 1, c.GetInt("listen.batch", 64))
if err != nil {
return nil, util.NewContextualError("Failed to open udp listener", m{"queue": i}, err)
@@ -170,7 +187,7 @@ func Main(c *config.C, configTest bool, buildVersion string, l *slog.Logger, dev
}
hostMap := NewHostMapFromConfig(l, c)
punchy := NewPunchyFromConfig(l, c, udpConns[0])
punchy := NewPunchyFromConfig(l, c)
connManager := newConnectionManagerFromConfig(l, c, hostMap, punchy)
lightHouse, err := NewLightHouseFromConfig(ctx, l, c, pki.getCertState(), udpConns[0], punchy)
if err != nil {
@@ -184,10 +201,14 @@ func Main(c *config.C, configTest bool, buildVersion string, l *slog.Logger, dev
messageMetrics = newMessageMetricsOnlyRecvError()
}
useRelays := c.GetBool("relay.use_relays", DefaultUseRelays) && !c.GetBool("relay.am_relay", false)
handshakeConfig := HandshakeConfig{
tryInterval: c.GetDuration("handshakes.try_interval", DefaultHandshakeTryInterval),
retries: int64(c.GetInt("handshakes.retries", DefaultHandshakeRetries)),
triggerBuffer: c.GetInt("handshakes.trigger_buffer", DefaultHandshakeTriggerBuffer),
tryInterval: c.GetDuration("handshakes.try_interval", DefaultHandshakeTryInterval),
retries: int64(c.GetInt("handshakes.retries", DefaultHandshakeRetries)),
triggerBuffer: c.GetInt("handshakes.trigger_buffer", DefaultHandshakeTriggerBuffer),
useRelays: useRelays,
messageMetrics: messageMetrics,
}
@@ -196,7 +217,7 @@ func Main(c *config.C, configTest bool, buildVersion string, l *slog.Logger, dev
ds, err := newDnsServerFromConfig(ctx, l, pki.getCertState(), hostMap, c)
if err != nil {
l.Warn("Failed to start DNS responder", "error", err)
l.WithError(err).Warn("Failed to start DNS responder")
}
ifConfig := &InterfaceConfig{
@@ -215,7 +236,6 @@ func Main(c *config.C, configTest bool, buildVersion string, l *slog.Logger, dev
DropLocalBroadcast: c.GetBool("tun.drop_local_broadcast", false),
DropMulticast: c.GetBool("tun.drop_multicast", false),
routines: routines,
batchSize: c.GetInt("listen.batch", 64),
MessageMetrics: messageMetrics,
version: buildVersion,
relayManager: NewRelayManager(ctx, l, hostMap, c),
@@ -241,11 +261,9 @@ func Main(c *config.C, configTest bool, buildVersion string, l *slog.Logger, dev
handshakeManager.f = ifce
go handshakeManager.Run(ctx)
punchy.Start(ctx, ifce, hostMap, lightHouse)
}
stats, err := newStatsServerFromConfig(ctx, l, c, buildVersion, configTest)
statsStart, err := startStats(l, c, buildVersion, configTest)
if err != nil {
return nil, util.ContextualizeIfNeeded("Failed to start stats emitter", err)
}
@@ -265,7 +283,7 @@ func Main(c *config.C, configTest bool, buildVersion string, l *slog.Logger, dev
ctx: ctx,
cancel: cancel,
sshStart: sshStart,
statsStart: stats.Start,
statsStart: statsStart,
dnsStart: ds.Start,
lighthouseStart: lightHouse.StartUpdateWorker,
connectionManagerStart: connManager.Start,
-8
View File
@@ -13,8 +13,6 @@ type MessageMetrics struct {
rxUnknown metrics.Counter
txUnknown metrics.Counter
rxInvalid metrics.Counter
}
func (m *MessageMetrics) Rx(t header.MessageType, s header.MessageSubType, i int64) {
@@ -35,11 +33,6 @@ func (m *MessageMetrics) Tx(t header.MessageType, s header.MessageSubType, i int
}
}
}
func (m *MessageMetrics) RxInvalid(i int64) {
if m != nil && m.rxInvalid != nil {
m.rxInvalid.Inc(i)
}
}
func newMessageMetrics() *MessageMetrics {
gen := func(t string) [][]metrics.Counter {
@@ -63,7 +56,6 @@ func newMessageMetrics() *MessageMetrics {
rxUnknown: metrics.GetOrRegisterCounter("messages.rx.other", nil),
txUnknown: metrics.GetOrRegisterCounter("messages.tx.other", nil),
rxInvalid: metrics.GetOrRegisterCounter("messages.rx.invalid", nil),
}
}
+632 -45
View File
@@ -124,7 +124,7 @@ func (x NebulaControl_MessageType) String() string {
}
func (NebulaControl_MessageType) EnumDescriptor() ([]byte, []int) {
return fileDescriptor_2d65afa7693df5ef, []int{6, 0}
return fileDescriptor_2d65afa7693df5ef, []int{8, 0}
}
type NebulaMeta struct {
@@ -489,6 +489,142 @@ func (m *NebulaPing) GetTime() uint64 {
return 0
}
type NebulaHandshake struct {
Details *NebulaHandshakeDetails `protobuf:"bytes,1,opt,name=Details,proto3" json:"Details,omitempty"`
Hmac []byte `protobuf:"bytes,2,opt,name=Hmac,proto3" json:"Hmac,omitempty"`
}
func (m *NebulaHandshake) Reset() { *m = NebulaHandshake{} }
func (m *NebulaHandshake) String() string { return proto.CompactTextString(m) }
func (*NebulaHandshake) ProtoMessage() {}
func (*NebulaHandshake) Descriptor() ([]byte, []int) {
return fileDescriptor_2d65afa7693df5ef, []int{6}
}
func (m *NebulaHandshake) XXX_Unmarshal(b []byte) error {
return m.Unmarshal(b)
}
func (m *NebulaHandshake) XXX_Marshal(b []byte, deterministic bool) ([]byte, error) {
if deterministic {
return xxx_messageInfo_NebulaHandshake.Marshal(b, m, deterministic)
} else {
b = b[:cap(b)]
n, err := m.MarshalToSizedBuffer(b)
if err != nil {
return nil, err
}
return b[:n], nil
}
}
func (m *NebulaHandshake) XXX_Merge(src proto.Message) {
xxx_messageInfo_NebulaHandshake.Merge(m, src)
}
func (m *NebulaHandshake) XXX_Size() int {
return m.Size()
}
func (m *NebulaHandshake) XXX_DiscardUnknown() {
xxx_messageInfo_NebulaHandshake.DiscardUnknown(m)
}
var xxx_messageInfo_NebulaHandshake proto.InternalMessageInfo
func (m *NebulaHandshake) GetDetails() *NebulaHandshakeDetails {
if m != nil {
return m.Details
}
return nil
}
func (m *NebulaHandshake) GetHmac() []byte {
if m != nil {
return m.Hmac
}
return nil
}
type NebulaHandshakeDetails struct {
Cert []byte `protobuf:"bytes,1,opt,name=Cert,proto3" json:"Cert,omitempty"`
InitiatorIndex uint32 `protobuf:"varint,2,opt,name=InitiatorIndex,proto3" json:"InitiatorIndex,omitempty"`
ResponderIndex uint32 `protobuf:"varint,3,opt,name=ResponderIndex,proto3" json:"ResponderIndex,omitempty"`
Cookie uint64 `protobuf:"varint,4,opt,name=Cookie,proto3" json:"Cookie,omitempty"`
Time uint64 `protobuf:"varint,5,opt,name=Time,proto3" json:"Time,omitempty"`
CertVersion uint32 `protobuf:"varint,8,opt,name=CertVersion,proto3" json:"CertVersion,omitempty"`
}
func (m *NebulaHandshakeDetails) Reset() { *m = NebulaHandshakeDetails{} }
func (m *NebulaHandshakeDetails) String() string { return proto.CompactTextString(m) }
func (*NebulaHandshakeDetails) ProtoMessage() {}
func (*NebulaHandshakeDetails) Descriptor() ([]byte, []int) {
return fileDescriptor_2d65afa7693df5ef, []int{7}
}
func (m *NebulaHandshakeDetails) XXX_Unmarshal(b []byte) error {
return m.Unmarshal(b)
}
func (m *NebulaHandshakeDetails) XXX_Marshal(b []byte, deterministic bool) ([]byte, error) {
if deterministic {
return xxx_messageInfo_NebulaHandshakeDetails.Marshal(b, m, deterministic)
} else {
b = b[:cap(b)]
n, err := m.MarshalToSizedBuffer(b)
if err != nil {
return nil, err
}
return b[:n], nil
}
}
func (m *NebulaHandshakeDetails) XXX_Merge(src proto.Message) {
xxx_messageInfo_NebulaHandshakeDetails.Merge(m, src)
}
func (m *NebulaHandshakeDetails) XXX_Size() int {
return m.Size()
}
func (m *NebulaHandshakeDetails) XXX_DiscardUnknown() {
xxx_messageInfo_NebulaHandshakeDetails.DiscardUnknown(m)
}
var xxx_messageInfo_NebulaHandshakeDetails proto.InternalMessageInfo
func (m *NebulaHandshakeDetails) GetCert() []byte {
if m != nil {
return m.Cert
}
return nil
}
func (m *NebulaHandshakeDetails) GetInitiatorIndex() uint32 {
if m != nil {
return m.InitiatorIndex
}
return 0
}
func (m *NebulaHandshakeDetails) GetResponderIndex() uint32 {
if m != nil {
return m.ResponderIndex
}
return 0
}
func (m *NebulaHandshakeDetails) GetCookie() uint64 {
if m != nil {
return m.Cookie
}
return 0
}
func (m *NebulaHandshakeDetails) GetTime() uint64 {
if m != nil {
return m.Time
}
return 0
}
func (m *NebulaHandshakeDetails) GetCertVersion() uint32 {
if m != nil {
return m.CertVersion
}
return 0
}
type NebulaControl struct {
Type NebulaControl_MessageType `protobuf:"varint,1,opt,name=Type,proto3,enum=nebula.NebulaControl_MessageType" json:"Type,omitempty"`
InitiatorRelayIndex uint32 `protobuf:"varint,2,opt,name=InitiatorRelayIndex,proto3" json:"InitiatorRelayIndex,omitempty"`
@@ -503,7 +639,7 @@ func (m *NebulaControl) Reset() { *m = NebulaControl{} }
func (m *NebulaControl) String() string { return proto.CompactTextString(m) }
func (*NebulaControl) ProtoMessage() {}
func (*NebulaControl) Descriptor() ([]byte, []int) {
return fileDescriptor_2d65afa7693df5ef, []int{6}
return fileDescriptor_2d65afa7693df5ef, []int{8}
}
func (m *NebulaControl) XXX_Unmarshal(b []byte) error {
return m.Unmarshal(b)
@@ -593,55 +729,65 @@ func init() {
proto.RegisterType((*V4AddrPort)(nil), "nebula.V4AddrPort")
proto.RegisterType((*V6AddrPort)(nil), "nebula.V6AddrPort")
proto.RegisterType((*NebulaPing)(nil), "nebula.NebulaPing")
proto.RegisterType((*NebulaHandshake)(nil), "nebula.NebulaHandshake")
proto.RegisterType((*NebulaHandshakeDetails)(nil), "nebula.NebulaHandshakeDetails")
proto.RegisterType((*NebulaControl)(nil), "nebula.NebulaControl")
}
func init() { proto.RegisterFile("nebula.proto", fileDescriptor_2d65afa7693df5ef) }
var fileDescriptor_2d65afa7693df5ef = []byte{
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0xb1, 0x7e, 0x84, 0x57, 0x71, 0xdd, 0x99, 0x1d, 0xb8, 0xd1, 0xc2, 0x5e, 0x52, 0xfc, 0x32, 0x9f,
0x51, 0x45, 0x5e, 0x9f, 0x9d, 0x0e, 0x32, 0xe6, 0xee, 0xa0, 0x8a, 0x26, 0x66, 0x2b, 0xdb, 0x91,
0x4d, 0x74, 0x88, 0x5c, 0x5b, 0x7f, 0x28, 0xd0, 0xaf, 0xd6, 0x09, 0xfa, 0x94, 0x86, 0x5c, 0xee,
0xd2, 0x21, 0x72, 0x8d, 0x47, 0xd0, 0x3b, 0x0b, 0x3c, 0xee, 0xd9, 0x9c, 0x85, 0x67, 0x81, 0x4b,
0x1f, 0x13, 0xa7, 0x77, 0xb2, 0x82, 0x47, 0x68, 0xb4, 0x66, 0x81, 0x4b, 0x13, 0x5e, 0xec, 0xe7,
0x4e, 0x16, 0xfb, 0xd0, 0x9c, 0x32, 0xb6, 0xf4, 0xa8, 0xa9, 0x49, 0x67, 0x92, 0x28, 0xf3, 0xab,
0x91, 0xfb, 0x85, 0x23, 0x68, 0x8b, 0x1e, 0x6e, 0x69, 0x18, 0x79, 0x2c, 0x30, 0x5b, 0xb2, 0x60,
0x31, 0x75, 0xae, 0xb5, 0x9a, 0x86, 0x7e, 0xae, 0xb5, 0x74, 0xa3, 0x65, 0xfd, 0x5a, 0x87, 0x6e,
0x7c, 0xb0, 0x29, 0x0b, 0x78, 0xc8, 0x7c, 0xfc, 0xa2, 0xf4, 0xdd, 0x3e, 0x2d, 0xbb, 0x96, 0x90,
0x2a, 0x3e, 0xdd, 0xe7, 0x70, 0x98, 0x1d, 0x4e, 0x0e, 0x4f, 0xf1, 0xdc, 0x55, 0x90, 0x50, 0x64,
0xc7, 0x2c, 0x28, 0x62, 0x07, 0xaa, 0x20, 0xfc, 0x0c, 0x7a, 0xe9, 0x38, 0xdf, 0x30, 0x79, 0xa9,
0xb5, 0xec, 0xe9, 0xd8, 0x41, 0x8a, 0xcf, 0xc2, 0x37, 0x21, 0x5b, 0x49, 0x76, 0x23, 0x63, 0xef,
0x61, 0x38, 0x86, 0x76, 0xb1, 0x70, 0xd5, 0x93, 0x53, 0x24, 0x64, 0xcf, 0x48, 0x56, 0x5c, 0xaf,
0x50, 0x94, 0x29, 0xd6, 0xec, 0xbf, 0xfe, 0x00, 0x7d, 0xc0, 0x69, 0x48, 0x6d, 0x4e, 0x25, 0x9f,
0xd0, 0x87, 0x0d, 0x8d, 0xb8, 0xa1, 0xe0, 0x47, 0x70, 0x58, 0xca, 0x0b, 0x4b, 0x22, 0x6a, 0xa8,
0xa7, 0xc7, 0xbf, 0x3d, 0x0f, 0x95, 0xa7, 0xe7, 0xa1, 0xf2, 0xd7, 0xf3, 0x50, 0xf9, 0xe5, 0x65,
0x58, 0x7b, 0x7a, 0x19, 0xd6, 0xfe, 0x7c, 0x19, 0xd6, 0x7e, 0x18, 0xdc, 0x7b, 0x7c, 0xb1, 0xb9,
0x1b, 0x3b, 0x6c, 0xf5, 0x26, 0xf2, 0x6d, 0x67, 0xb9, 0x78, 0x78, 0x13, 0xb7, 0x74, 0xd7, 0x94,
0x3f, 0xc2, 0xe3, 0x7f, 0x03, 0x00, 0x00, 0xff, 0xff, 0xea, 0x6f, 0xbc, 0x50, 0x18, 0x07, 0x00,
0x00,
}
func (m *NebulaMeta) Marshal() (dAtA []byte, err error) {
@@ -926,6 +1072,103 @@ func (m *NebulaPing) MarshalToSizedBuffer(dAtA []byte) (int, error) {
return len(dAtA) - i, nil
}
func (m *NebulaHandshake) Marshal() (dAtA []byte, err error) {
size := m.Size()
dAtA = make([]byte, size)
n, err := m.MarshalToSizedBuffer(dAtA[:size])
if err != nil {
return nil, err
}
return dAtA[:n], nil
}
func (m *NebulaHandshake) MarshalTo(dAtA []byte) (int, error) {
size := m.Size()
return m.MarshalToSizedBuffer(dAtA[:size])
}
func (m *NebulaHandshake) MarshalToSizedBuffer(dAtA []byte) (int, error) {
i := len(dAtA)
_ = i
var l int
_ = l
if len(m.Hmac) > 0 {
i -= len(m.Hmac)
copy(dAtA[i:], m.Hmac)
i = encodeVarintNebula(dAtA, i, uint64(len(m.Hmac)))
i--
dAtA[i] = 0x12
}
if m.Details != nil {
{
size, err := m.Details.MarshalToSizedBuffer(dAtA[:i])
if err != nil {
return 0, err
}
i -= size
i = encodeVarintNebula(dAtA, i, uint64(size))
}
i--
dAtA[i] = 0xa
}
return len(dAtA) - i, nil
}
func (m *NebulaHandshakeDetails) Marshal() (dAtA []byte, err error) {
size := m.Size()
dAtA = make([]byte, size)
n, err := m.MarshalToSizedBuffer(dAtA[:size])
if err != nil {
return nil, err
}
return dAtA[:n], nil
}
func (m *NebulaHandshakeDetails) MarshalTo(dAtA []byte) (int, error) {
size := m.Size()
return m.MarshalToSizedBuffer(dAtA[:size])
}
func (m *NebulaHandshakeDetails) MarshalToSizedBuffer(dAtA []byte) (int, error) {
i := len(dAtA)
_ = i
var l int
_ = l
if m.CertVersion != 0 {
i = encodeVarintNebula(dAtA, i, uint64(m.CertVersion))
i--
dAtA[i] = 0x40
}
if m.Time != 0 {
i = encodeVarintNebula(dAtA, i, uint64(m.Time))
i--
dAtA[i] = 0x28
}
if m.Cookie != 0 {
i = encodeVarintNebula(dAtA, i, uint64(m.Cookie))
i--
dAtA[i] = 0x20
}
if m.ResponderIndex != 0 {
i = encodeVarintNebula(dAtA, i, uint64(m.ResponderIndex))
i--
dAtA[i] = 0x18
}
if m.InitiatorIndex != 0 {
i = encodeVarintNebula(dAtA, i, uint64(m.InitiatorIndex))
i--
dAtA[i] = 0x10
}
if len(m.Cert) > 0 {
i -= len(m.Cert)
copy(dAtA[i:], m.Cert)
i = encodeVarintNebula(dAtA, i, uint64(len(m.Cert)))
i--
dAtA[i] = 0xa
}
return len(dAtA) - i, nil
}
func (m *NebulaControl) Marshal() (dAtA []byte, err error) {
size := m.Size()
dAtA = make([]byte, size)
@@ -1132,6 +1375,51 @@ func (m *NebulaPing) Size() (n int) {
return n
}
func (m *NebulaHandshake) Size() (n int) {
if m == nil {
return 0
}
var l int
_ = l
if m.Details != nil {
l = m.Details.Size()
n += 1 + l + sovNebula(uint64(l))
}
l = len(m.Hmac)
if l > 0 {
n += 1 + l + sovNebula(uint64(l))
}
return n
}
func (m *NebulaHandshakeDetails) Size() (n int) {
if m == nil {
return 0
}
var l int
_ = l
l = len(m.Cert)
if l > 0 {
n += 1 + l + sovNebula(uint64(l))
}
if m.InitiatorIndex != 0 {
n += 1 + sovNebula(uint64(m.InitiatorIndex))
}
if m.ResponderIndex != 0 {
n += 1 + sovNebula(uint64(m.ResponderIndex))
}
if m.Cookie != 0 {
n += 1 + sovNebula(uint64(m.Cookie))
}
if m.Time != 0 {
n += 1 + sovNebula(uint64(m.Time))
}
if m.CertVersion != 0 {
n += 1 + sovNebula(uint64(m.CertVersion))
}
return n
}
func (m *NebulaControl) Size() (n int) {
if m == nil {
return 0
@@ -1948,6 +2236,305 @@ func (m *NebulaPing) Unmarshal(dAtA []byte) error {
}
return nil
}
func (m *NebulaHandshake) Unmarshal(dAtA []byte) error {
l := len(dAtA)
iNdEx := 0
for iNdEx < l {
preIndex := iNdEx
var wire uint64
for shift := uint(0); ; shift += 7 {
if shift >= 64 {
return ErrIntOverflowNebula
}
if iNdEx >= l {
return io.ErrUnexpectedEOF
}
b := dAtA[iNdEx]
iNdEx++
wire |= uint64(b&0x7F) << shift
if b < 0x80 {
break
}
}
fieldNum := int32(wire >> 3)
wireType := int(wire & 0x7)
if wireType == 4 {
return fmt.Errorf("proto: NebulaHandshake: wiretype end group for non-group")
}
if fieldNum <= 0 {
return fmt.Errorf("proto: NebulaHandshake: illegal tag %d (wire type %d)", fieldNum, wire)
}
switch fieldNum {
case 1:
if wireType != 2 {
return fmt.Errorf("proto: wrong wireType = %d for field Details", wireType)
}
var msglen int
for shift := uint(0); ; shift += 7 {
if shift >= 64 {
return ErrIntOverflowNebula
}
if iNdEx >= l {
return io.ErrUnexpectedEOF
}
b := dAtA[iNdEx]
iNdEx++
msglen |= int(b&0x7F) << shift
if b < 0x80 {
break
}
}
if msglen < 0 {
return ErrInvalidLengthNebula
}
postIndex := iNdEx + msglen
if postIndex < 0 {
return ErrInvalidLengthNebula
}
if postIndex > l {
return io.ErrUnexpectedEOF
}
if m.Details == nil {
m.Details = &NebulaHandshakeDetails{}
}
if err := m.Details.Unmarshal(dAtA[iNdEx:postIndex]); err != nil {
return err
}
iNdEx = postIndex
case 2:
if wireType != 2 {
return fmt.Errorf("proto: wrong wireType = %d for field Hmac", wireType)
}
var byteLen int
for shift := uint(0); ; shift += 7 {
if shift >= 64 {
return ErrIntOverflowNebula
}
if iNdEx >= l {
return io.ErrUnexpectedEOF
}
b := dAtA[iNdEx]
iNdEx++
byteLen |= int(b&0x7F) << shift
if b < 0x80 {
break
}
}
if byteLen < 0 {
return ErrInvalidLengthNebula
}
postIndex := iNdEx + byteLen
if postIndex < 0 {
return ErrInvalidLengthNebula
}
if postIndex > l {
return io.ErrUnexpectedEOF
}
m.Hmac = append(m.Hmac[:0], dAtA[iNdEx:postIndex]...)
if m.Hmac == nil {
m.Hmac = []byte{}
}
iNdEx = postIndex
default:
iNdEx = preIndex
skippy, err := skipNebula(dAtA[iNdEx:])
if err != nil {
return err
}
if (skippy < 0) || (iNdEx+skippy) < 0 {
return ErrInvalidLengthNebula
}
if (iNdEx + skippy) > l {
return io.ErrUnexpectedEOF
}
iNdEx += skippy
}
}
if iNdEx > l {
return io.ErrUnexpectedEOF
}
return nil
}
func (m *NebulaHandshakeDetails) Unmarshal(dAtA []byte) error {
l := len(dAtA)
iNdEx := 0
for iNdEx < l {
preIndex := iNdEx
var wire uint64
for shift := uint(0); ; shift += 7 {
if shift >= 64 {
return ErrIntOverflowNebula
}
if iNdEx >= l {
return io.ErrUnexpectedEOF
}
b := dAtA[iNdEx]
iNdEx++
wire |= uint64(b&0x7F) << shift
if b < 0x80 {
break
}
}
fieldNum := int32(wire >> 3)
wireType := int(wire & 0x7)
if wireType == 4 {
return fmt.Errorf("proto: NebulaHandshakeDetails: wiretype end group for non-group")
}
if fieldNum <= 0 {
return fmt.Errorf("proto: NebulaHandshakeDetails: illegal tag %d (wire type %d)", fieldNum, wire)
}
switch fieldNum {
case 1:
if wireType != 2 {
return fmt.Errorf("proto: wrong wireType = %d for field Cert", wireType)
}
var byteLen int
for shift := uint(0); ; shift += 7 {
if shift >= 64 {
return ErrIntOverflowNebula
}
if iNdEx >= l {
return io.ErrUnexpectedEOF
}
b := dAtA[iNdEx]
iNdEx++
byteLen |= int(b&0x7F) << shift
if b < 0x80 {
break
}
}
if byteLen < 0 {
return ErrInvalidLengthNebula
}
postIndex := iNdEx + byteLen
if postIndex < 0 {
return ErrInvalidLengthNebula
}
if postIndex > l {
return io.ErrUnexpectedEOF
}
m.Cert = append(m.Cert[:0], dAtA[iNdEx:postIndex]...)
if m.Cert == nil {
m.Cert = []byte{}
}
iNdEx = postIndex
case 2:
if wireType != 0 {
return fmt.Errorf("proto: wrong wireType = %d for field InitiatorIndex", wireType)
}
m.InitiatorIndex = 0
for shift := uint(0); ; shift += 7 {
if shift >= 64 {
return ErrIntOverflowNebula
}
if iNdEx >= l {
return io.ErrUnexpectedEOF
}
b := dAtA[iNdEx]
iNdEx++
m.InitiatorIndex |= uint32(b&0x7F) << shift
if b < 0x80 {
break
}
}
case 3:
if wireType != 0 {
return fmt.Errorf("proto: wrong wireType = %d for field ResponderIndex", wireType)
}
m.ResponderIndex = 0
for shift := uint(0); ; shift += 7 {
if shift >= 64 {
return ErrIntOverflowNebula
}
if iNdEx >= l {
return io.ErrUnexpectedEOF
}
b := dAtA[iNdEx]
iNdEx++
m.ResponderIndex |= uint32(b&0x7F) << shift
if b < 0x80 {
break
}
}
case 4:
if wireType != 0 {
return fmt.Errorf("proto: wrong wireType = %d for field Cookie", wireType)
}
m.Cookie = 0
for shift := uint(0); ; shift += 7 {
if shift >= 64 {
return ErrIntOverflowNebula
}
if iNdEx >= l {
return io.ErrUnexpectedEOF
}
b := dAtA[iNdEx]
iNdEx++
m.Cookie |= uint64(b&0x7F) << shift
if b < 0x80 {
break
}
}
case 5:
if wireType != 0 {
return fmt.Errorf("proto: wrong wireType = %d for field Time", wireType)
}
m.Time = 0
for shift := uint(0); ; shift += 7 {
if shift >= 64 {
return ErrIntOverflowNebula
}
if iNdEx >= l {
return io.ErrUnexpectedEOF
}
b := dAtA[iNdEx]
iNdEx++
m.Time |= uint64(b&0x7F) << shift
if b < 0x80 {
break
}
}
case 8:
if wireType != 0 {
return fmt.Errorf("proto: wrong wireType = %d for field CertVersion", wireType)
}
m.CertVersion = 0
for shift := uint(0); ; shift += 7 {
if shift >= 64 {
return ErrIntOverflowNebula
}
if iNdEx >= l {
return io.ErrUnexpectedEOF
}
b := dAtA[iNdEx]
iNdEx++
m.CertVersion |= uint32(b&0x7F) << shift
if b < 0x80 {
break
}
}
default:
iNdEx = preIndex
skippy, err := skipNebula(dAtA[iNdEx:])
if err != nil {
return err
}
if (skippy < 0) || (iNdEx+skippy) < 0 {
return ErrInvalidLengthNebula
}
if (iNdEx + skippy) > l {
return io.ErrUnexpectedEOF
}
iNdEx += skippy
}
}
if iNdEx > l {
return io.ErrUnexpectedEOF
}
return nil
}
func (m *NebulaControl) Unmarshal(dAtA []byte) error {
l := len(dAtA)
iNdEx := 0
+15 -3
View File
@@ -60,9 +60,21 @@ message NebulaPing {
uint64 Time = 2;
}
// NebulaHandshake / NebulaHandshakeDetails moved to
// handshake/handshake.proto. The handshake package speaks that wire format
// directly via a hand-written encoder/decoder.
message NebulaHandshake {
NebulaHandshakeDetails Details = 1;
bytes Hmac = 2;
}
message NebulaHandshakeDetails {
bytes Cert = 1;
uint32 InitiatorIndex = 2;
uint32 ResponderIndex = 3;
uint64 Cookie = 4;
uint64 Time = 5;
uint32 CertVersion = 8;
// reserved for WIP multiport
reserved 6, 7;
}
message NebulaControl {
enum MessageType {
+75
View File
@@ -0,0 +1,75 @@
package nebula
import (
"crypto/cipher"
"encoding/binary"
"errors"
"github.com/flynn/noise"
)
type endianness interface {
PutUint64(b []byte, v uint64)
}
var noiseEndianness endianness = binary.BigEndian
type NebulaCipherState struct {
c noise.Cipher
//k [32]byte
//n uint64
}
func NewNebulaCipherState(s *noise.CipherState) *NebulaCipherState {
return &NebulaCipherState{c: s.Cipher()}
}
// EncryptDanger encrypts and authenticates a given payload.
//
// out is a destination slice to hold the output of the EncryptDanger operation.
// - ad is additional data, which will be authenticated and appended to out, but not encrypted.
// - plaintext is encrypted, authenticated and appended to out.
// - n is a nonce value which must never be re-used with this key.
// - nb is a buffer used for temporary storage in the implementation of this call, which should
// be re-used by callers to minimize garbage collection.
func (s *NebulaCipherState) EncryptDanger(out, ad, plaintext []byte, n uint64, nb []byte) ([]byte, error) {
if s != nil {
// TODO: Is this okay now that we have made messageCounter atomic?
// Alternative may be to split the counter space into ranges
//if n <= s.n {
// return nil, errors.New("CRITICAL: a duplicate counter value was used")
//}
//s.n = n
nb[0] = 0
nb[1] = 0
nb[2] = 0
nb[3] = 0
noiseEndianness.PutUint64(nb[4:], n)
out = s.c.(cipher.AEAD).Seal(out, nb, plaintext, ad)
//l.Debugf("Encryption: outlen: %d, nonce: %d, ad: %s, plainlen %d", len(out), n, ad, len(plaintext))
return out, nil
} else {
return nil, errors.New("no cipher state available to encrypt")
}
}
func (s *NebulaCipherState) DecryptDanger(out, ad, ciphertext []byte, n uint64, nb []byte) ([]byte, error) {
if s != nil {
nb[0] = 0
nb[1] = 0
nb[2] = 0
nb[3] = 0
noiseEndianness.PutUint64(nb[4:], n)
return s.c.(cipher.AEAD).Open(out, nb, ciphertext, ad)
} else {
return []byte{}, nil
}
}
func (s *NebulaCipherState) Overhead() int {
if s != nil {
return s.c.(cipher.AEAD).Overhead()
}
return 0
}
-53
View File
@@ -1,53 +0,0 @@
package noiseutil
import (
"crypto/cipher"
"encoding/binary"
"errors"
"github.com/flynn/noise"
)
// CipherStateAESGCM is the data-plane wrapper for the AES-GCM AEAD cipher.
// AES-GCM uses big-endian nonce encoding per the Noise spec.
type CipherStateAESGCM struct {
c cipher.AEAD
}
// NewCipherStateAESGCM extracts the underlying AEAD from the post-handshake noise.CipherState.
// The caller is responsible for ensuring the noise cipher is actually AES-GCM,
// otherwise the type assertion still succeeds but the nonce endianness will be wrong on the wire.
func NewCipherStateAESGCM(s *noise.CipherState) *CipherStateAESGCM {
return &CipherStateAESGCM{c: s.Cipher().(cipher.AEAD)}
}
func (s *CipherStateAESGCM) EncryptDanger(out, ad, plaintext []byte, n uint64, nb []byte) ([]byte, error) {
if s == nil {
return nil, errors.New("no cipher state available to encrypt")
}
nb[0] = 0
nb[1] = 0
nb[2] = 0
nb[3] = 0
binary.BigEndian.PutUint64(nb[4:], n)
return s.c.Seal(out, nb, plaintext, ad), nil
}
func (s *CipherStateAESGCM) DecryptDanger(out, ad, ciphertext []byte, n uint64, nb []byte) ([]byte, error) {
if s == nil {
return []byte{}, nil
}
nb[0] = 0
nb[1] = 0
nb[2] = 0
nb[3] = 0
binary.BigEndian.PutUint64(nb[4:], n)
return s.c.Open(out, nb, ciphertext, ad)
}
func (s *CipherStateAESGCM) Overhead() int {
if s == nil {
return 0
}
return s.c.Overhead()
}
-52
View File
@@ -1,52 +0,0 @@
package noiseutil
import (
"crypto/cipher"
"encoding/binary"
"errors"
"github.com/flynn/noise"
)
// CipherStateChaChaPoly is the data-plane wrapper for the ChaCha20-Poly1305 AEAD cipher.
// ChaCha20-Poly1305 uses little-endian nonce encoding per the Noise spec.
type CipherStateChaChaPoly struct {
c cipher.AEAD
}
// NewCipherStateChaChaPoly extracts the underlying AEAD from the post-handshake noise.CipherState.
// The caller is responsible for ensuring the noise cipher is actually ChaCha20-Poly1305.
func NewCipherStateChaChaPoly(s *noise.CipherState) *CipherStateChaChaPoly {
return &CipherStateChaChaPoly{c: s.Cipher().(cipher.AEAD)}
}
func (s *CipherStateChaChaPoly) EncryptDanger(out, ad, plaintext []byte, n uint64, nb []byte) ([]byte, error) {
if s == nil {
return nil, errors.New("no cipher state available to encrypt")
}
nb[0] = 0
nb[1] = 0
nb[2] = 0
nb[3] = 0
binary.LittleEndian.PutUint64(nb[4:], n)
return s.c.Seal(out, nb, plaintext, ad), nil
}
func (s *CipherStateChaChaPoly) DecryptDanger(out, ad, ciphertext []byte, n uint64, nb []byte) ([]byte, error) {
if s == nil {
return []byte{}, nil
}
nb[0] = 0
nb[1] = 0
nb[2] = 0
nb[3] = 0
binary.LittleEndian.PutUint64(nb[4:], n)
return s.c.Open(out, nb, ciphertext, ad)
}
func (s *CipherStateChaChaPoly) Overhead() int {
if s == nil {
return 0
}
return s.c.Overhead()
}
-40
View File
@@ -1,40 +0,0 @@
package noiseutil
import (
"fmt"
"github.com/flynn/noise"
)
// CipherState is the post-handshake AEAD cipher used for the data plane.
// Each supported cipher has its own concrete implementation in this package with the nonce endianness hardcoded,
// so the encrypt/decrypt fast path avoids interface dispatch on the byte order.
type CipherState interface {
// EncryptDanger encrypts and authenticates a given payload.
//
// out is a destination slice to hold the output of the EncryptDanger operation.
// - ad is additional data, which will be authenticated and appended to out, but not encrypted.
// - plaintext is encrypted, authenticated and appended to out.
// - n is a nonce value which must never be re-used with this key.
// - nb is a scratch buffer used to assemble the nonce.
EncryptDanger(out, ad, plaintext []byte, n uint64, nb []byte) ([]byte, error)
// DecryptDanger authenticates and decrypts a given payload, with the same argument shape as EncryptDanger.
DecryptDanger(out, ad, ciphertext []byte, n uint64, nb []byte) ([]byte, error)
// Overhead returns the AEAD tag size, or 0 if the receiver is nil.
Overhead() int
}
// 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 {
switch cipherFunc.CipherName() {
case CipherAESGCM.CipherName():
return NewCipherStateAESGCM(s)
case noise.CipherChaChaPoly.CipherName():
return NewCipherStateChaChaPoly(s)
default:
panic(fmt.Sprintf("noiseutil: unsupported cipher %q", cipherFunc.CipherName()))
}
}
-222
View File
@@ -1,222 +0,0 @@
package noiseutil
import (
"testing"
"github.com/flynn/noise"
"github.com/stretchr/testify/assert"
"github.com/stretchr/testify/require"
)
func TestCipherStateAESGCMRoundtrip(t *testing.T) {
enc, dec := buildCipherStates(t, CipherAESGCM)
roundtrip(t, NewCipherStateAESGCM(enc), NewCipherStateAESGCM(dec))
}
func TestCipherStateChaChaPolyRoundtrip(t *testing.T) {
enc, dec := buildCipherStates(t, noise.CipherChaChaPoly)
roundtrip(t, NewCipherStateChaChaPoly(enc), NewCipherStateChaChaPoly(dec))
}
func TestNewCipherStateDispatch(t *testing.T) {
encA, _ := buildCipherStates(t, CipherAESGCM)
encC, _ := buildCipherStates(t, noise.CipherChaChaPoly)
assert.IsType(t, &CipherStateAESGCM{}, NewCipherState(encA, CipherAESGCM))
assert.IsType(t, &CipherStateChaChaPoly{}, NewCipherState(encC, noise.CipherChaChaPoly))
}
func TestNewCipherStateUnsupportedPanics(t *testing.T) {
enc, _ := buildCipherStates(t, CipherAESGCM)
assert.Panics(t, func() {
NewCipherState(enc, fakeCipher{})
})
}
type fakeCipher struct{}
func (fakeCipher) Cipher(k [32]byte) noise.Cipher { return nil }
func (fakeCipher) CipherName() string { return "Fake" }
// buildCipherStates runs an in-memory NN handshake with the requested cipher
// to produce a pair of post-handshake CipherStates that share keys.
func buildCipherStates(t *testing.T, c noise.CipherFunc) (*noise.CipherState, *noise.CipherState) {
t.Helper()
suite := noise.NewCipherSuite(noise.DH25519, c, noise.HashSHA256)
cfg := noise.Config{CipherSuite: suite, Pattern: noise.HandshakeNN}
cfg.Initiator = true
hsI, err := noise.NewHandshakeState(cfg)
require.NoError(t, err)
cfg.Initiator = false
hsR, err := noise.NewHandshakeState(cfg)
require.NoError(t, err)
msg, _, _, err := hsI.WriteMessage(nil, nil)
require.NoError(t, err)
_, _, _, err = hsR.ReadMessage(nil, msg)
require.NoError(t, err)
msg, dR, _, err := hsR.WriteMessage(nil, nil)
require.NoError(t, err)
_, eI, _, err := hsI.ReadMessage(nil, msg)
require.NoError(t, err)
require.NotNil(t, eI)
require.NotNil(t, dR)
// noise returns (cs1, cs2) where cs1 is the initiator->responder cipher.
return eI, dR
}
func roundtrip(t *testing.T, enc, dec CipherState) {
t.Helper()
plaintext := []byte("nebula cipher state roundtrip")
ad := []byte("aad")
nb := make([]byte, 12)
ct, err := enc.EncryptDanger(nil, ad, plaintext, 1, nb)
require.NoError(t, err)
assert.NotEqual(t, plaintext, ct)
pt, err := dec.DecryptDanger(nil, ad, ct, 1, nb)
require.NoError(t, err)
assert.Equal(t, plaintext, pt)
// Wrong nonce must fail authentication.
_, err = dec.DecryptDanger(nil, ad, ct, 2, nb)
require.Error(t, err)
assert.Equal(t, enc.Overhead(), dec.Overhead())
assert.Equal(t, 16, enc.Overhead())
}
func BenchmarkCipherStateEncryptAESGCM(b *testing.B) {
enc, _ := buildCipherStatesB(b, CipherAESGCM)
benchEncryptCipherState(b, NewCipherState(enc, CipherAESGCM))
}
func BenchmarkCipherStateEncryptChaChaPoly(b *testing.B) {
enc, _ := buildCipherStatesB(b, noise.CipherChaChaPoly)
benchEncryptCipherState(b, NewCipherState(enc, noise.CipherChaChaPoly))
}
func benchEncryptCipherState(b *testing.B, cs CipherState) {
plaintext := make([]byte, 1280)
ad := make([]byte, 16)
nb := make([]byte, 12)
out := make([]byte, 0, len(plaintext)+cs.Overhead())
b.ResetTimer()
b.ReportAllocs()
for i := 0; i < b.N; i++ {
var err error
out, err = cs.EncryptDanger(out[:0], ad, plaintext, uint64(i+1), nb)
if err != nil {
b.Fatal(err)
}
}
}
func buildCipherStatesB(b *testing.B, c noise.CipherFunc) (*noise.CipherState, *noise.CipherState) {
b.Helper()
suite := noise.NewCipherSuite(noise.DH25519, c, noise.HashSHA256)
cfg := noise.Config{CipherSuite: suite, Pattern: noise.HandshakeNN}
cfg.Initiator = true
hsI, err := noise.NewHandshakeState(cfg)
if err != nil {
b.Fatal(err)
}
cfg.Initiator = false
hsR, err := noise.NewHandshakeState(cfg)
if err != nil {
b.Fatal(err)
}
msg, _, _, err := hsI.WriteMessage(nil, nil)
if err != nil {
b.Fatal(err)
}
if _, _, _, err := hsR.ReadMessage(nil, msg); err != nil {
b.Fatal(err)
}
msg, dR, _, err := hsR.WriteMessage(nil, nil)
if err != nil {
b.Fatal(err)
}
_, eI, _, err := hsI.ReadMessage(nil, msg)
if err != nil {
b.Fatal(err)
}
return eI, dR
}
// TestDecryptDangerRelayShapeNoAlloc covers the AD-only relay path used in
// outside.go's handleOutsideRelayPacket: the body is AD, the trailing 16 bytes
// are the AEAD tag, the plaintext is empty, and the caller passes nil as the
// destination because it only needs the auth side-effect. The call must
// succeed, return an empty plaintext, and not allocate on the hot path.
func TestDecryptDangerRelayShapeNoAlloc(t *testing.T) {
cases := []struct {
name string
c noise.CipherFunc
wrap func(*noise.CipherState) CipherState
}{
{"AESGCM", CipherAESGCM, func(cs *noise.CipherState) CipherState { return NewCipherStateAESGCM(cs) }},
{"ChaChaPoly", noise.CipherChaChaPoly, func(cs *noise.CipherState) CipherState { return NewCipherStateChaChaPoly(cs) }},
}
for _, tc := range cases {
t.Run(tc.name, func(t *testing.T) {
encCS, decCS := buildCipherStates(t, tc.c)
enc, dec := tc.wrap(encCS), tc.wrap(decCS)
ad := make([]byte, 1200) // typical relay packet body size
for i := range ad {
ad[i] = byte(i)
}
nb := make([]byte, 12)
// Build the "signature value" the way handleOutsideRelayPacket sees it:
// empty plaintext encrypted with the body as AD yields just the 16-byte tag.
tag, err := enc.EncryptDanger(nil, ad, nil, 1, nb)
require.NoError(t, err)
require.Len(t, tag, dec.Overhead())
// Sanity: the relay-shaped call returns empty plaintext, no error.
out, err := dec.DecryptDanger(nil, ad, tag, 1, nb)
require.NoError(t, err)
assert.Empty(t, out)
// Tampering with the AD must fail authentication.
ad[0] ^= 0xff
_, err = dec.DecryptDanger(nil, ad, tag, 1, nb)
require.Error(t, err)
ad[0] ^= 0xff
// The hot path must not allocate. AllocsPerRun does a warm-up run, so any
// one-time setup is excluded. Counter has to advance so the AEAD nonce is
// unique per call, but we don't care whether the auth succeeds — we only
// care about whether the call path allocates.
var counter uint64 = 2
allocs := testing.AllocsPerRun(100, func() {
_, _ = dec.DecryptDanger(nil, ad, tag, counter, nb)
counter++
})
assert.Equal(t, 0.0, allocs, "DecryptDanger(nil, ...) must not allocate")
})
}
}
func TestCipherStateNilSafety(t *testing.T) {
var aes *CipherStateAESGCM
_, err := aes.EncryptDanger(nil, nil, nil, 0, make([]byte, 12))
require.Error(t, err)
out, err := aes.DecryptDanger(nil, nil, nil, 0, make([]byte, 12))
require.NoError(t, err)
assert.Empty(t, out)
assert.Equal(t, 0, aes.Overhead())
var cc *CipherStateChaChaPoly
_, err = cc.EncryptDanger(nil, nil, nil, 0, make([]byte, 12))
require.Error(t, err)
out, err = cc.DecryptDanger(nil, nil, nil, 0, make([]byte, 12))
require.NoError(t, err)
assert.Empty(t, out)
assert.Equal(t, 0, cc.Overhead())
}
+265 -244
View File
@@ -1,16 +1,15 @@
package nebula
import (
"context"
"encoding/binary"
"errors"
"log/slog"
"net/netip"
"time"
"github.com/google/gopacket/layers"
"golang.org/x/net/ipv6"
"github.com/sirupsen/logrus"
"github.com/slackhq/nebula/firewall"
"github.com/slackhq/nebula/header"
"golang.org/x/net/ipv4"
@@ -20,241 +19,215 @@ const (
minFwPacketLen = 4
)
var ErrOutOfWindow = errors.New("out of window packet")
func (f *Interface) readOutsidePackets(via ViaSender, packet []byte, h *header.H, fwPacket *firewall.Packet, lhf *LightHouseHandler, nb []byte, q int, localCache firewall.ConntrackCache) {
func (f *Interface) readOutsidePackets(via ViaSender, out []byte, packet []byte, h *header.H, fwPacket *firewall.Packet, fwCtx *firewall.PacketContext, 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
// TODO: record metrics for rx holepunch/punchy packets?
if len(packet) > 1 {
f.messageMetrics.RxInvalid(1)
if f.l.Enabled(context.Background(), slog.LevelDebug) {
f.l.Debug("Error while parsing inbound packet",
"from", via,
"error", err,
"packet", packet,
)
}
}
return
}
if h.Version != header.Version {
f.messageMetrics.RxInvalid(1)
if f.l.Enabled(context.Background(), slog.LevelDebug) {
f.l.Debug("Unexpected header version received", "from", via)
}
return
}
// Check before processing to see if this is a expected type/subtype
if !h.IsValidSubType() {
f.messageMetrics.RxInvalid(1)
if f.l.Enabled(context.Background(), slog.LevelDebug) {
f.l.Debug("Unexpected packet received", "from", via)
f.l.WithField("packet", packet).Infof("Error while parsing inbound packet from %s: %s", via, err)
}
return
}
//l.Error("in packet ", header, packet[HeaderLen:])
if !via.IsRelayed {
if f.myVpnNetworksTable.Contains(via.UdpAddr.Addr()) {
f.messageMetrics.RxInvalid(1)
if f.l.Enabled(context.Background(), slog.LevelDebug) {
f.l.Debug("Refusing to process double encrypted packet", "from", via)
if f.l.Level >= logrus.DebugLevel {
f.l.WithField("from", via).Debug("Refusing to process double encrypted packet")
}
return
}
}
// don't keep Rx metrics for message type, since you can see those in the tun metrics
if h.Type != header.Message {
f.messageMetrics.Rx(h.Type, h.Subtype, 1)
}
// Unencrypted packets
switch h.Type {
case header.Handshake:
f.handshakeManager.HandleIncoming(via, packet, h)
return
case header.RecvError:
f.handleRecvError(via.UdpAddr, h)
return
}
// Relay packets are special
isMessageRelay := (h.Type == header.Message && h.Subtype == header.MessageRelay)
var hostinfo *HostInfo
if isMessageRelay {
// verify if we've seen this index before, otherwise respond to the handshake initiation
if h.Type == header.Message && h.Subtype == header.MessageRelay {
hostinfo = f.hostMap.QueryRelayIndex(h.RemoteIndex)
} else {
hostinfo = f.hostMap.QueryIndex(h.RemoteIndex)
}
// At this point we should have a valid existing tunnel, verify and send
// recvError if necessary
if hostinfo == nil || hostinfo.ConnectionState == nil {
if !via.IsRelayed {
f.maybeSendRecvError(via.UdpAddr, h.RemoteIndex)
}
return
var ci *ConnectionState
if hostinfo != nil {
ci = hostinfo.ConnectionState
}
// 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, packet, h, fwPacket, lhf, nb, q, localCache)
return
}
out := f.batchers[q].Reserve(len(packet))[:0]
out, err = f.decrypt(hostinfo, h.MessageCounter, out, packet, h, 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,
)
}
return
}
// Roam before we respond
f.handleHostRoaming(hostinfo, via)
f.connectionManager.In(hostinfo)
switch h.Type {
case header.Message:
if !f.handleEncrypted(ci, via, h) {
return
}
switch h.Subtype {
case header.MessageNone:
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
if !f.decryptToTun(hostinfo, h.MessageCounter, out, packet, fwPacket, fwCtx, nb, q, localCache) {
return
}
case header.MessageRelay:
// 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():]
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:]
// 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
f.connectionManager.In(hostinfo)
f.connectionManager.RelayUsed(h.RemoteIndex)
relay, ok := hostinfo.relayState.QueryRelayForByIdx(h.RemoteIndex)
if !ok {
// 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).WithFields(logrus.Fields{"vpnAddrs": hostinfo.vpnAddrs, "remoteIndex": h.RemoteIndex}).Error("HostInfo missing remote relay index")
return
}
switch relay.Type {
case TerminalType:
// If I am the target of this relay, process the unwrapped packet
// From this recursive point, all these variables are 'burned'. We shouldn't rely on them again.
via = ViaSender{
UdpAddr: via.UdpAddr,
relayHI: hostinfo,
remoteIdx: relay.RemoteIndex,
relay: relay,
IsRelayed: true,
}
f.readOutsidePackets(via, out[:0], signedPayload, h, fwPacket, fwCtx, lhf, nb, q, localCache)
return
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).WithField("relayTo", relay.PeerAddr).WithError(err).WithField("hostinfo.vpnAddrs", hostinfo.vpnAddrs).Info("Failed to find target host info by ip")
return
}
// If that relay is Established, forward the payload through it
if targetRelay.State == Established {
switch targetRelay.Type {
case ForwardingType:
// Forward this packet through the relay tunnel
// Find the target HostInfo
f.SendVia(targetHI, targetRelay, signedPayload, nb, out, false)
return
case TerminalType:
hostinfo.logger(f.l).Error("Unexpected Relay Type of Terminal")
}
} else {
hostinfo.logger(f.l).WithFields(logrus.Fields{"relayTo": relay.PeerAddr, "relayFrom": hostinfo.vpnAddrs[0], "targetRelayState": targetRelay.State}).Info("Unexpected target relay state")
return
}
}
}
case header.LightHouse:
f.messageMetrics.Rx(h.Type, h.Subtype, 1)
if !f.handleEncrypted(ci, via, h) {
return
}
d, err := f.decrypt(hostinfo, h.MessageCounter, out, packet, h, nb)
if err != nil {
hostinfo.logger(f.l).WithError(err).WithField("from", via).
WithField("packet", packet).
Error("Failed to decrypt lighthouse packet")
return
}
//TODO: assert via is not relayed
lhf.HandleRequest(via.UdpAddr, hostinfo.vpnAddrs, out, f)
lhf.HandleRequest(via.UdpAddr, hostinfo.vpnAddrs, d, f)
// Fallthrough to the bottom to record incoming traffic
case header.Test:
switch h.Subtype {
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)
default:
hostinfo.logger(f.l).Error("IsValidSubType was true, but unexpected test subtype seen", "from", via, "header", h)
f.messageMetrics.Rx(h.Type, h.Subtype, 1)
if !f.handleEncrypted(ci, via, h) {
return
}
d, err := f.decrypt(hostinfo, h.MessageCounter, out, packet, h, nb)
if err != nil {
hostinfo.logger(f.l).WithError(err).WithField("from", via).
WithField("packet", packet).
Error("Failed to decrypt test packet")
return
}
if h.Subtype == header.TestRequest {
// This testRequest might be from TryPromoteBest, so we should roam
// to the new IP address before responding
f.handleHostRoaming(hostinfo, via)
f.send(header.Test, header.TestReply, ci, hostinfo, d, nb, out)
}
// Fallthrough to the bottom to record incoming traffic
// Non encrypted messages below here, they should not fall through to avoid tracking incoming traffic since they
// are unauthenticated
case header.Handshake:
f.messageMetrics.Rx(h.Type, h.Subtype, 1)
f.handshakeManager.HandleIncoming(via, packet, h)
return
case header.RecvError:
f.messageMetrics.Rx(h.Type, h.Subtype, 1)
f.handleRecvError(via.UdpAddr, h)
return
case header.CloseTunnel:
hostinfo.logger(f.l).Info("Close tunnel received, tearing down.", "from", via)
f.messageMetrics.Rx(h.Type, h.Subtype, 1)
if !f.handleEncrypted(ci, via, h) {
return
}
_, err = f.decrypt(hostinfo, h.MessageCounter, out, packet, h, nb)
if err != nil {
hostinfo.logger(f.l).WithError(err).WithField("from", via).
WithField("packet", packet).
Error("Failed to decrypt CloseTunnel packet")
return
}
hostinfo.logger(f.l).WithField("from", via).
Info("Close tunnel received, tearing down.")
f.closeTunnel(hostinfo)
return
case header.Control:
f.relayManager.HandleControlMsg(hostinfo, out, f)
default:
hostinfo.logger(f.l).Error("IsValidSubType was true, but unexpected message type seen", "from", via, "header", h)
}
}
func (f *Interface) handleOutsideRelayPacket(hostinfo *HostInfo, via ViaSender, packet []byte, h *header.H, fwPacket *firewall.Packet, lhf *LightHouseHandler, nb []byte, q int, localCache firewall.ConntrackCache) {
// 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():]
// The decrypted output is empty (relay packets carry their payload as AD) and unused.
// The recursive readOutsidePackets call below operates on signedPayload. Passing
// nil avoids reserving an arena slot.
if _, err := hostinfo.ConnectionState.dKey.DecryptDanger(nil, signedPayload, signatureValue, h.MessageCounter, nb); err != nil {
return
}
// Successfully validated the thing. Get rid of the Relay header.
signedPayload = signedPayload[header.Len:]
// 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
f.connectionManager.In(hostinfo)
f.connectionManager.RelayUsed(h.RemoteIndex)
relay, ok := hostinfo.relayState.QueryRelayForByIdx(h.RemoteIndex)
if !ok {
// 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,
)
return
}
switch relay.Type {
case TerminalType:
// If I am the target of this relay, process the unwrapped packet
// From this recursive point, all these variables are 'burned'. We shouldn't rely on them again.
via = ViaSender{
UdpAddr: via.UdpAddr,
relayHI: hostinfo,
remoteIdx: relay.RemoteIndex,
relay: relay,
IsRelayed: true,
if !f.handleEncrypted(ci, via, h) {
return
}
f.readOutsidePackets(via, 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)
d, err := f.decrypt(hostinfo, h.MessageCounter, out, packet, h, nb)
if err != nil {
hostinfo.logger(f.l).Info("Failed to find target host info by ip",
"relayTo", relay.PeerAddr,
"error", err,
"hostinfo.vpnAddrs", hostinfo.vpnAddrs,
)
hostinfo.logger(f.l).WithError(err).WithField("from", via).
WithField("packet", packet).
Error("Failed to decrypt Control packet")
return
}
// If that relay is Established, forward the payload through it
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
out := f.batchers[q].Reserve(len(packet) + header.Len + hostinfo.ConnectionState.dKey.Overhead())[:0]
f.SendVia(targetHI, targetRelay, signedPayload, nb, out, false)
case TerminalType:
hostinfo.logger(f.l).Error("Unexpected Relay Type of Terminal")
return
default:
if f.l.Enabled(context.Background(), slog.LevelDebug) {
hostinfo.logger(f.l).Debug("Unexpected targetRelay Type", "from", via, "relayType", targetRelay.Type)
}
return
}
} else {
hostinfo.logger(f.l).Info("Unexpected target relay state",
"relayTo", relay.PeerAddr,
"relayFrom", hostinfo.vpnAddrs[0],
"targetRelayState", targetRelay.State,
)
return
}
f.relayManager.HandleControlMsg(hostinfo, d, f)
default:
if f.l.Enabled(context.Background(), slog.LevelDebug) {
hostinfo.logger(f.l).Debug("Unexpected relay type", "from", via, "relayType", relay.Type)
}
f.messageMetrics.Rx(h.Type, h.Subtype, 1)
hostinfo.logger(f.l).Debugf("Unexpected packet received from %s", via)
return
}
f.handleHostRoaming(hostinfo, via)
f.connectionManager.In(hostinfo)
}
// closeTunnel closes a tunnel locally, it does not send a closeTunnel packet to the remote
@@ -274,27 +247,20 @@ func (f *Interface) sendCloseTunnel(h *HostInfo) {
func (f *Interface) handleHostRoaming(hostinfo *HostInfo, via ViaSender) {
if !via.IsRelayed && hostinfo.remote != 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)
}
hostinfo.logger(f.l).WithField("newAddr", via.UdpAddr).Debug("lighthouse.remote_allow_list denied roaming")
return
}
if !hostinfo.lastRoam.IsZero() && via.UdpAddr == hostinfo.lastRoamRemote && time.Since(hostinfo.lastRoam) < RoamingSuppressSeconds*time.Second {
if f.l.Enabled(context.Background(), slog.LevelDebug) {
hostinfo.logger(f.l).Debug("Suppressing roam back to previous remote",
"suppressSeconds", RoamingSuppressSeconds,
"udpAddr", hostinfo.remote,
"newAddr", via.UdpAddr,
)
if f.l.Level >= logrus.DebugLevel {
hostinfo.logger(f.l).WithField("udpAddr", hostinfo.remote).WithField("newAddr", via.UdpAddr).
Debugf("Suppressing roam back to previous remote for %d seconds", RoamingSuppressSeconds)
}
return
}
hostinfo.logger(f.l).Info("Host roamed to new udp ip/port.",
"udpAddr", hostinfo.remote,
"newAddr", via.UdpAddr,
)
hostinfo.logger(f.l).WithField("udpAddr", hostinfo.remote).WithField("newAddr", via.UdpAddr).
Info("Host roamed to new udp ip/port.")
hostinfo.lastRoam = time.Now()
hostinfo.lastRoamRemote = hostinfo.remote
hostinfo.SetRemote(via.UdpAddr)
@@ -302,6 +268,23 @@ func (f *Interface) handleHostRoaming(hostinfo *HostInfo, via ViaSender) {
}
// handleEncrypted returns true if a packet should be processed, false otherwise
func (f *Interface) handleEncrypted(ci *ConnectionState, via ViaSender, h *header.H) bool {
// If connectionstate does not exist, send a recv error, if possible, to encourage a fast reconnect
if ci == nil {
if !via.IsRelayed {
f.maybeSendRecvError(via.UdpAddr, h.RemoteIndex)
}
return false
}
// If the window check fails, refuse to process the packet, but don't send a recv error
if !ci.window.Check(f.l, h.MessageCounter) {
return false
}
return true
}
var (
ErrPacketTooShort = errors.New("packet is too short")
ErrUnknownIPVersion = errors.New("packet is an unknown ip version")
@@ -312,7 +295,10 @@ var (
)
// newPacket validates and parses the interesting bits for the firewall out of the ip and sub protocol headers
func newPacket(data []byte, incoming bool, fp *firewall.Packet) error {
func newPacket(data []byte, incoming bool, fp *firewall.Packet, ctx *firewall.PacketContext) error {
if ctx != nil {
*ctx = firewall.PacketContext{}
}
if len(data) < 1 {
return ErrPacketTooShort
}
@@ -320,14 +306,14 @@ func newPacket(data []byte, incoming bool, fp *firewall.Packet) error {
version := int((data[0] >> 4) & 0x0f)
switch version {
case ipv4.Version:
return parseV4(data, incoming, fp)
return parseV4(data, incoming, fp, ctx)
case ipv6.Version:
return parseV6(data, incoming, fp)
return parseV6(data, incoming, fp, ctx)
}
return ErrUnknownIPVersion
}
func parseV6(data []byte, incoming bool, fp *firewall.Packet) error {
func parseV6(data []byte, incoming bool, fp *firewall.Packet, ctx *firewall.PacketContext) error {
dataLen := len(data)
if dataLen < ipv6.HeaderLen {
return ErrIPv6PacketTooShort
@@ -372,6 +358,11 @@ func parseV6(data []byte, incoming bool, fp *firewall.Packet) error {
fp.RemotePort = 0
}
fp.Fragment = false
if ctx != nil {
ctx.Length = binary.BigEndian.Uint16(data[4:6]) + uint16(ipv6.HeaderLen)
ctx.ICMPType = data[offset]
ctx.ICMPCode = data[offset+1]
}
return nil
case layers.IPProtocolTCP, layers.IPProtocolUDP:
@@ -389,6 +380,12 @@ func parseV6(data []byte, incoming bool, fp *firewall.Packet) error {
}
fp.Fragment = false
if ctx != nil {
ctx.Length = binary.BigEndian.Uint16(data[4:6]) + uint16(ipv6.HeaderLen)
if proto == layers.IPProtocolTCP && dataLen >= offset+14 {
ctx.TCPFlags = data[offset+13]
}
}
return nil
case layers.IPProtocolIPv6Fragment:
@@ -440,7 +437,7 @@ func parseV6(data []byte, incoming bool, fp *firewall.Packet) error {
return ErrIPv6CouldNotFindPayload
}
func parseV4(data []byte, incoming bool, fp *firewall.Packet) error {
func parseV4(data []byte, incoming bool, fp *firewall.Packet, ctx *firewall.PacketContext) error {
// Do we at least have an ipv4 header worth of data?
if len(data) < ipv4.HeaderLen {
return ErrIPv4PacketTooShort
@@ -497,6 +494,21 @@ func parseV4(data []byte, incoming bool, fp *firewall.Packet) error {
fp.RemotePort = binary.BigEndian.Uint16(data[ihl+2 : ihl+4]) //dst port
}
if ctx != nil {
ctx.Length = binary.BigEndian.Uint16(data[2:4])
if !fp.Fragment {
switch fp.Protocol {
case firewall.ProtoICMP:
ctx.ICMPType = data[ihl]
ctx.ICMPCode = data[ihl+1]
case firewall.ProtoTCP:
if len(data) >= ihl+14 {
ctx.TCPFlags = data[ihl+13]
}
}
}
}
return nil
}
@@ -508,40 +520,55 @@ func (f *Interface) decrypt(hostinfo *HostInfo, mc uint64, out []byte, packet []
}
if !hostinfo.ConnectionState.window.Update(f.l, mc) {
return nil, ErrOutOfWindow
hostinfo.logger(f.l).WithField("header", h).
Debugln("dropping out of window packet")
return nil, errors.New("out of window packet")
}
return out, nil
}
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)
func (f *Interface) decryptToTun(hostinfo *HostInfo, messageCounter uint64, out []byte, packet []byte, fwPacket *firewall.Packet, fwCtx *firewall.PacketContext, nb []byte, q int, localCache firewall.ConntrackCache) bool {
var err error
out, err = hostinfo.ConnectionState.dKey.DecryptDanger(out, packet[:header.Len], packet[header.Len:], messageCounter, nb)
if err != nil {
hostinfo.logger(f.l).Warn("Error while validating inbound packet",
"error", err,
"packet", out,
)
return
hostinfo.logger(f.l).WithError(err).Error("Failed to decrypt packet")
return false
}
dropReason := f.firewall.Drop(*fwPacket, true, hostinfo, f.pki.GetCAPool(), localCache)
err = newPacket(out, true, fwPacket, fwCtx)
if err != nil {
hostinfo.logger(f.l).WithError(err).WithField("packet", out).
Warnf("Error while validating inbound packet")
return false
}
if !hostinfo.ConnectionState.window.Update(f.l, messageCounter) {
hostinfo.logger(f.l).WithField("fwPacket", fwPacket).
Debugln("dropping out of window packet")
return false
}
dropReason := f.firewall.Drop(*fwPacket, *fwCtx, 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
f.rejectOutside(out, hostinfo.ConnectionState, hostinfo, nb, packet, q)
if f.l.Enabled(context.Background(), slog.LevelDebug) {
hostinfo.logger(f.l).Debug("dropping inbound packet",
"fwPacket", fwPacket,
"reason", dropReason,
)
if f.l.Level >= logrus.DebugLevel {
hostinfo.logger(f.l).WithField("fwPacket", fwPacket).
WithField("reason", dropReason).
Debugln("dropping inbound packet")
}
return
return false
}
err = f.batchers[q].Commit(out)
f.connectionManager.In(hostinfo)
_, err = f.readers[q].Write(out)
if err != nil {
f.l.Error("Failed to write to tun", "error", err)
f.l.WithError(err).Error("Failed to write to tun")
}
return true
}
func (f *Interface) maybeSendRecvError(endpoint netip.AddrPort, index uint32) {
@@ -555,41 +582,35 @@ func (f *Interface) sendRecvError(endpoint netip.AddrPort, index uint32) {
b := header.Encode(make([]byte, header.Len), header.Version, header.RecvError, 0, index, 0)
_ = f.outside.WriteTo(b, endpoint)
if f.l.Enabled(context.Background(), slog.LevelDebug) {
f.l.Debug("Recv error sent",
"index", index,
"udpAddr", endpoint,
)
if f.l.Level >= logrus.DebugLevel {
f.l.WithField("index", index).
WithField("udpAddr", endpoint).
Debug("Recv error sent")
}
}
func (f *Interface) handleRecvError(addr netip.AddrPort, h *header.H) {
if !f.acceptRecvErrorConfig.ShouldRecvError(addr) {
f.l.Debug("Recv error received, ignoring",
"index", h.RemoteIndex,
"udpAddr", addr,
)
f.l.WithField("index", h.RemoteIndex).
WithField("udpAddr", addr).
Debug("Recv error received, ignoring")
return
}
if f.l.Enabled(context.Background(), slog.LevelDebug) {
f.l.Debug("Recv error received",
"index", h.RemoteIndex,
"udpAddr", addr,
)
if f.l.Level >= logrus.DebugLevel {
f.l.WithField("index", h.RemoteIndex).
WithField("udpAddr", addr).
Debug("Recv error received")
}
hostinfo := f.hostMap.QueryReverseIndex(h.RemoteIndex)
if hostinfo == nil {
f.l.Debug("Did not find remote index in main hostmap", "remoteIndex", h.RemoteIndex)
f.l.WithField("remoteIndex", h.RemoteIndex).Debugln("Did not find remote index in main hostmap")
return
}
if hostinfo.remote.IsValid() && hostinfo.remote != addr {
f.l.Info("Someone spoofing recv_errors?",
"addr", addr,
"hostinfoRemote", hostinfo.remote,
)
f.l.Infoln("Someone spoofing recv_errors? ", addr, hostinfo.remote)
return
}
+34 -34
View File
@@ -20,13 +20,13 @@ func Test_newPacket(t *testing.T) {
p := &firewall.Packet{}
// length fails
err := newPacket([]byte{}, true, p)
err := newPacket([]byte{}, true, p, nil)
require.ErrorIs(t, err, ErrPacketTooShort)
err = newPacket([]byte{0x40}, true, p)
err = newPacket([]byte{0x40}, true, p, nil)
require.ErrorIs(t, err, ErrIPv4PacketTooShort)
err = newPacket([]byte{0x60}, true, p)
err = newPacket([]byte{0x60}, true, p, nil)
require.ErrorIs(t, err, ErrIPv6PacketTooShort)
// length fail with ip options
@@ -39,15 +39,15 @@ func Test_newPacket(t *testing.T) {
}
b, _ := h.Marshal()
err = newPacket(b, true, p)
err = newPacket(b, true, p, nil)
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)
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, nil)
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)
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, nil)
require.ErrorIs(t, err, ErrIPv4InvalidHeaderLength)
// account for variable ip header length - incoming
@@ -62,7 +62,7 @@ func Test_newPacket(t *testing.T) {
b, _ = h.Marshal()
b = append(b, []byte{0, 3, 0, 4}...)
err = newPacket(b, true, p)
err = newPacket(b, true, p, nil)
require.NoError(t, err)
assert.Equal(t, uint8(firewall.ProtoTCP), p.Protocol)
@@ -84,7 +84,7 @@ func Test_newPacket(t *testing.T) {
b, _ = h.Marshal()
b = append(b, []byte{0, 5, 0, 6}...)
err = newPacket(b, false, p)
err = newPacket(b, false, p, nil)
require.NoError(t, err)
assert.Equal(t, uint8(2), p.Protocol)
@@ -114,7 +114,7 @@ func Test_newPacket_v6(t *testing.T) {
err := gopacket.SerializeLayers(buffer, opt, &ip)
require.NoError(t, err)
err = newPacket(buffer.Bytes(), true, p)
err = newPacket(buffer.Bytes(), true, p, nil)
require.ErrorIs(t, err, ErrIPv6CouldNotFindPayload)
// A v6 packet with a hop-by-hop extension
@@ -148,12 +148,12 @@ 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)
err = newPacket(buffer.Bytes()[:41], true, p, nil)
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)
err = newPacket(buffer.Bytes()[:49], true, p, nil)
require.ErrorIs(t, err, ErrIPv6CouldNotFindPayload)
err = nil
@@ -173,7 +173,7 @@ func Test_newPacket_v6(t *testing.T) {
buffer.Clear()
require.NoError(t, gopacket.SerializeLayers(buffer, opt, &ip, &icmp))
require.Error(t, newPacket(buffer.Bytes(), true, p))
require.Error(t, newPacket(buffer.Bytes(), true, p, nil))
buffer.Clear()
echo := layers.ICMPv6Echo{
@@ -181,7 +181,7 @@ func Test_newPacket_v6(t *testing.T) {
SeqNumber: 1234,
}
require.NoError(t, gopacket.SerializeLayers(buffer, opt, &ip, &icmp, &echo))
require.NoError(t, newPacket(buffer.Bytes(), true, p))
require.NoError(t, newPacket(buffer.Bytes(), true, p, nil))
assert.Equal(t, uint8(layers.IPProtocolICMPv6), p.Protocol)
assert.Equal(t, netip.MustParseAddr("ff02::2"), p.RemoteAddr)
assert.Equal(t, netip.MustParseAddr("ff02::1"), p.LocalAddr)
@@ -192,7 +192,7 @@ func Test_newPacket_v6(t *testing.T) {
// A good ESP packet
b := buffer.Bytes()
b[6] = byte(layers.IPProtocolESP)
err = newPacket(b, true, p)
err = newPacket(b, true, p, nil)
require.NoError(t, err)
assert.Equal(t, uint8(layers.IPProtocolESP), p.Protocol)
assert.Equal(t, netip.MustParseAddr("ff02::2"), p.RemoteAddr)
@@ -204,7 +204,7 @@ func Test_newPacket_v6(t *testing.T) {
// A good None packet
b = buffer.Bytes()
b[6] = byte(layers.IPProtocolNoNextHeader)
err = newPacket(b, true, p)
err = newPacket(b, true, p, nil)
require.NoError(t, err)
assert.Equal(t, uint8(layers.IPProtocolNoNextHeader), p.Protocol)
assert.Equal(t, netip.MustParseAddr("ff02::2"), p.RemoteAddr)
@@ -216,7 +216,7 @@ func Test_newPacket_v6(t *testing.T) {
// An unknown protocol packet
b = buffer.Bytes()
b[6] = 255 // 255 is a reserved protocol number
err = newPacket(b, true, p)
err = newPacket(b, true, p, nil)
require.ErrorIs(t, err, ErrIPv6CouldNotFindPayload)
// A good UDP packet
@@ -243,7 +243,7 @@ func Test_newPacket_v6(t *testing.T) {
b = buffer.Bytes()
// incoming
err = newPacket(b, true, p)
err = newPacket(b, true, p, nil)
require.NoError(t, err)
assert.Equal(t, uint8(firewall.ProtoUDP), p.Protocol)
assert.Equal(t, netip.MustParseAddr("ff02::2"), p.RemoteAddr)
@@ -253,7 +253,7 @@ func Test_newPacket_v6(t *testing.T) {
assert.False(t, p.Fragment)
// outgoing
err = newPacket(b, false, p)
err = newPacket(b, false, p, nil)
require.NoError(t, err)
assert.Equal(t, uint8(firewall.ProtoUDP), p.Protocol)
assert.Equal(t, netip.MustParseAddr("ff02::2"), p.LocalAddr)
@@ -263,14 +263,14 @@ func Test_newPacket_v6(t *testing.T) {
assert.False(t, p.Fragment)
// Too short UDP packet
err = newPacket(b[:len(b)-10], false, p) // pull off the last 10 bytes
err = newPacket(b[:len(b)-10], false, p, nil) // pull off the last 10 bytes
require.ErrorIs(t, err, ErrIPv6PacketTooShort)
// A good TCP packet
b[6] = byte(layers.IPProtocolTCP)
// incoming
err = newPacket(b, true, p)
err = newPacket(b, true, p, nil)
require.NoError(t, err)
assert.Equal(t, uint8(firewall.ProtoTCP), p.Protocol)
assert.Equal(t, netip.MustParseAddr("ff02::2"), p.RemoteAddr)
@@ -280,7 +280,7 @@ func Test_newPacket_v6(t *testing.T) {
assert.False(t, p.Fragment)
// outgoing
err = newPacket(b, false, p)
err = newPacket(b, false, p, nil)
require.NoError(t, err)
assert.Equal(t, uint8(firewall.ProtoTCP), p.Protocol)
assert.Equal(t, netip.MustParseAddr("ff02::2"), p.LocalAddr)
@@ -290,7 +290,7 @@ func Test_newPacket_v6(t *testing.T) {
assert.False(t, p.Fragment)
// Too short TCP packet
err = newPacket(b[:len(b)-10], false, p) // pull off the last 10 bytes
err = newPacket(b[:len(b)-10], false, p, nil) // pull off the last 10 bytes
require.ErrorIs(t, err, ErrIPv6PacketTooShort)
// A good UDP packet with an AH header
@@ -325,7 +325,7 @@ func Test_newPacket_v6(t *testing.T) {
b = append(b, ahb...)
b = append(b, udpHeader...)
err = newPacket(b, true, p)
err = newPacket(b, true, p, nil)
require.NoError(t, err)
assert.Equal(t, uint8(firewall.ProtoUDP), p.Protocol)
assert.Equal(t, netip.MustParseAddr("ff02::2"), p.RemoteAddr)
@@ -335,12 +335,12 @@ func Test_newPacket_v6(t *testing.T) {
assert.False(t, p.Fragment)
// Ensure buffer bounds checking during processing
err = newPacket(b[:41], true, p)
err = newPacket(b[:41], true, p, nil)
require.ErrorIs(t, err, ErrIPv6PacketTooShort)
// Invalid AH header
b = buffer.Bytes()
err = newPacket(b, true, p)
err = newPacket(b, true, p, nil)
require.ErrorIs(t, err, ErrIPv6CouldNotFindPayload)
}
@@ -388,7 +388,7 @@ func Test_newPacket_ipv6Fragment(t *testing.T) {
firstFrag = append(firstFrag, []byte{0xde, 0xad, 0xbe, 0xef}...)
// Test first fragment incoming
err = newPacket(firstFrag, true, p)
err = newPacket(firstFrag, true, p, nil)
require.NoError(t, err)
assert.Equal(t, netip.MustParseAddr("ff02::2"), p.RemoteAddr)
assert.Equal(t, netip.MustParseAddr("ff02::1"), p.LocalAddr)
@@ -398,7 +398,7 @@ func Test_newPacket_ipv6Fragment(t *testing.T) {
assert.False(t, p.Fragment)
// Test first fragment outgoing
err = newPacket(firstFrag, false, p)
err = newPacket(firstFrag, false, p, nil)
require.NoError(t, err)
assert.Equal(t, netip.MustParseAddr("ff02::2"), p.LocalAddr)
assert.Equal(t, netip.MustParseAddr("ff02::1"), p.RemoteAddr)
@@ -427,7 +427,7 @@ func Test_newPacket_ipv6Fragment(t *testing.T) {
secondFrag = append(secondFrag, []byte{0xde, 0xad, 0xbe, 0xef}...)
// Test second fragment incoming
err = newPacket(secondFrag, true, p)
err = newPacket(secondFrag, true, p, nil)
require.NoError(t, err)
assert.Equal(t, netip.MustParseAddr("ff02::2"), p.RemoteAddr)
assert.Equal(t, netip.MustParseAddr("ff02::1"), p.LocalAddr)
@@ -437,7 +437,7 @@ func Test_newPacket_ipv6Fragment(t *testing.T) {
assert.True(t, p.Fragment)
// Test second fragment outgoing
err = newPacket(secondFrag, false, p)
err = newPacket(secondFrag, false, p, nil)
require.NoError(t, err)
assert.Equal(t, netip.MustParseAddr("ff02::2"), p.LocalAddr)
assert.Equal(t, netip.MustParseAddr("ff02::1"), p.RemoteAddr)
@@ -447,7 +447,7 @@ func Test_newPacket_ipv6Fragment(t *testing.T) {
assert.True(t, p.Fragment)
// Too short of a fragment packet
err = newPacket(secondFrag[:len(secondFrag)-10], false, p)
err = newPacket(secondFrag[:len(secondFrag)-10], false, p, nil)
require.ErrorIs(t, err, ErrIPv6PacketTooShort)
}
@@ -529,7 +529,7 @@ func BenchmarkParseV6(b *testing.B) {
b.Run("Normal", func(b *testing.B) {
for i := 0; i < b.N; i++ {
if err = parseV6(normalPacket, true, fp); err != nil {
if err = parseV6(normalPacket, true, fp, nil); err != nil {
b.Fatal(err)
}
}
@@ -537,7 +537,7 @@ func BenchmarkParseV6(b *testing.B) {
b.Run("FirstFragment", func(b *testing.B) {
for i := 0; i < b.N; i++ {
if err = parseV6(firstFrag, true, fp); err != nil {
if err = parseV6(firstFrag, true, fp, nil); err != nil {
b.Fatal(err)
}
}
@@ -545,7 +545,7 @@ func BenchmarkParseV6(b *testing.B) {
b.Run("SecondFragment", func(b *testing.B) {
for i := 0; i < b.N; i++ {
if err = parseV6(secondFrag, true, fp); err != nil {
if err = parseV6(secondFrag, true, fp, nil); err != nil {
b.Fatal(err)
}
}
@@ -590,7 +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 = parseV6(evilBytes, false, fp); err != nil {
if err = parseV6(evilBytes, false, fp, nil); err != nil {
b.Fatal(err)
}
}
-42
View File
@@ -1,42 +0,0 @@
package batch
// Arena is an injectable byte-slab that hands out non-overlapping borrowed
// slices via Reserve and releases them in bulk via Reset. Coalescers take
// an *Arena at construction so the caller controls the slab lifetime and
// can share one slab across multiple coalescers (MultiCoalescer hands the
// same *Arena to every lane so the lanes don't carry their own backings).
//
// Reserve borrows; the slice is valid until the next Reset. The slab grows
// (by allocating a fresh, larger backing array) if a Reserve doesn't fit;
// pre-size the arena via NewArena to avoid that path on the hot path.
type Arena struct {
buf []byte
}
// NewArena returns an Arena with a pre-allocated backing of the given
// capacity. Pass 0 if you don't intend to call Reserve (e.g. a test that
// only feeds the coalescer pre-made []byte packets via Commit).
func NewArena(capacity int) *Arena {
return &Arena{buf: make([]byte, 0, capacity)}
}
// Reserve hands out a non-overlapping sz-byte slice from the arena. If the
// request doesn't fit the current backing, a fresh, larger backing is
// allocated; already-borrowed slices reference the old backing and remain
// valid until Reset.
func (a *Arena) Reserve(sz int) []byte {
if len(a.buf)+sz > cap(a.buf) {
newCap := max(cap(a.buf)*2, sz)
a.buf = make([]byte, 0, newCap)
}
start := len(a.buf)
a.buf = a.buf[:start+sz]
return a.buf[start : start+sz : start+sz]
}
// Reset releases every slice handed out since the last Reset. Callers must
// not use any previously-borrowed slice after this returns. The underlying
// backing array is retained so subsequent Reserves don't re-allocate.
func (a *Arena) Reset() {
a.buf = a.buf[:0]
}
-46
View File
@@ -1,46 +0,0 @@
package batch
import (
"io"
"github.com/slackhq/nebula/util"
)
// Passthrough is a RxBatcher that doesn't batch anything, it just accumulates and then sends packets.
type Passthrough struct {
out io.Writer
slots [][]byte
arena *util.Arena
cursor int
}
func NewPassthrough(w io.Writer, slots int, arena *util.Arena) *Passthrough {
return &Passthrough{
out: w,
slots: make([][]byte, 0, slots),
arena: arena,
}
}
func (p *Passthrough) Reserve(sz int) []byte {
return p.arena.Reserve(sz)
}
func (p *Passthrough) Commit(pkt []byte) error {
p.slots = append(p.slots, pkt)
return nil
}
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.arena.Reset()
return firstErr
}
-12
View File
@@ -1,12 +0,0 @@
package batch
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
Commit(pkt []byte) 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
}
-60
View File
@@ -1,60 +0,0 @@
package batch
import (
"net/netip"
"github.com/slackhq/nebula/util"
)
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.
// Slot bytes are borrowed from the injected Arena and remain valid until
// Flush, which Resets the arena.
type SendBatch struct {
out batchWriter
bufs [][]byte
dsts []netip.AddrPort
ecns []byte
arena *util.Arena
}
// NewSendBatch makes a SendBatch with batchCap slots backed by arena.
func NewSendBatch(out batchWriter, batchCap int, arena *util.Arena) *SendBatch {
return &SendBatch{
out: out,
bufs: make([][]byte, 0, batchCap),
dsts: make([]netip.AddrPort, 0, batchCap),
ecns: make([]byte, 0, batchCap),
arena: arena,
}
}
func (b *SendBatch) Reserve(sz int) []byte {
return b.arena.Reserve(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.arena.Reset()
return err
}
-126
View File
@@ -1,126 +0,0 @@
package batch
import (
"net/netip"
"testing"
"github.com/slackhq/nebula/util"
)
type fakeBatchWriter struct {
bufs [][]byte
addrs []netip.AddrPort
ecns []byte
}
func (w *fakeBatchWriter) WriteBatch(bufs [][]byte, addrs []netip.AddrPort, ecns []byte) error {
// Snapshot — SendBatch.Flush nils its slot pointers right after WriteBatch
// returns, so tests must capture data before that happens.
w.bufs = make([][]byte, len(bufs))
for i, b := range bufs {
cp := make([]byte, len(b))
copy(cp, b)
w.bufs[i] = cp
}
w.addrs = append(w.addrs[:0], addrs...)
w.ecns = append(w.ecns[:0], ecns...)
return nil
}
func TestSendBatchReserveCommitFlush(t *testing.T) {
fw := &fakeBatchWriter{}
b := NewSendBatch(fw, 4, util.NewArena(32))
ap := netip.MustParseAddrPort("10.0.0.1:4242")
for i := 0; i < 4; i++ {
slot := b.Reserve(32)
if cap(slot) != 32 {
t.Fatalf("slot %d: cap=%d want 32", i, cap(slot))
}
pkt := append(slot[:0], byte(i), byte(i+1), byte(i+2))
b.Commit(pkt, ap, 0)
}
if err := b.Flush(); err != nil {
t.Fatalf("Flush: %v", err)
}
if len(fw.bufs) != 4 {
t.Fatalf("WriteBatch got %d bufs want 4", len(fw.bufs))
}
for i, buf := range fw.bufs {
if len(buf) != 3 || buf[0] != byte(i) {
t.Errorf("buf %d: %x", i, buf)
}
if fw.addrs[i] != ap {
t.Errorf("addr %d: got %v want %v", i, fw.addrs[i], ap)
}
}
// Flush again with nothing committed — should be a no-op.
fw.bufs = nil
if err := b.Flush(); err != nil {
t.Fatalf("empty Flush: %v", err)
}
if fw.bufs != nil {
t.Fatalf("empty Flush triggered WriteBatch")
}
// Reuse after Flush.
slot := b.Reserve(32)
if cap(slot) != 32 {
t.Fatalf("after Flush Reserve wrong cap: %d", cap(slot))
}
}
func TestSendBatchSlotsDoNotOverlap(t *testing.T) {
fw := &fakeBatchWriter{}
b := NewSendBatch(fw, 3, util.NewArena(8))
ap := netip.MustParseAddrPort("10.0.0.1:80")
for i := 0; i < 3; i++ {
s := b.Reserve(8)
pkt := append(s[:0], byte(0xA0+i), byte(0xB0+i))
b.Commit(pkt, ap, 0)
}
if err := b.Flush(); err != nil {
t.Fatalf("Flush: %v", err)
}
for i, buf := range fw.bufs {
if buf[0] != byte(0xA0+i) || buf[1] != byte(0xB0+i) {
t.Errorf("slot %d corrupted: %x", i, buf)
}
}
}
func TestSendBatchGrowPreservesCommitted(t *testing.T) {
fw := &fakeBatchWriter{}
// Tiny initial backing forces a grow on the second Reserve.
b := NewSendBatch(fw, 1, util.NewArena(4))
ap := netip.MustParseAddrPort("10.0.0.1:80")
s1 := b.Reserve(4)
pkt1 := append(s1[:0], 0x11, 0x22, 0x33, 0x44)
b.Commit(pkt1, ap, 0)
s2 := b.Reserve(8) // exceeds remaining cap, triggers grow
pkt2 := append(s2[:0], 0xA, 0xB, 0xC, 0xD, 0xE)
b.Commit(pkt2, ap, 0)
// pkt1 must still be intact even though backing reallocated.
if pkt1[0] != 0x11 || pkt1[3] != 0x44 {
t.Fatalf("first packet corrupted by grow: %x", pkt1)
}
if err := b.Flush(); err != nil {
t.Fatalf("Flush: %v", err)
}
if len(fw.bufs) != 2 {
t.Fatalf("got %d bufs want 2", len(fw.bufs))
}
if fw.bufs[0][0] != 0x11 || fw.bufs[0][3] != 0x44 {
t.Errorf("first packet on the wire: %x", fw.bufs[0])
}
if fw.bufs[1][0] != 0xA || fw.bufs[1][4] != 0xE {
t.Errorf("second packet on the wire: %x", fw.bufs[1])
}
}
+2 -8
View File
@@ -4,21 +4,15 @@ import (
"io"
"net/netip"
"github.com/slackhq/nebula/overlay/tio"
"github.com/slackhq/nebula/routing"
)
// defaultBatchBufSize is the per-Queue scratch size for Read on backends
// that don't do TSO segmentation. 65535 covers any single IP packet.
const defaultBatchBufSize = 65535
type Device interface {
io.Closer
io.ReadWriteCloser
Activate() error
Networks() []netip.Prefix
Name() string
RoutesFor(netip.Addr) routing.Gateways
SupportsMultiqueue() bool
NewMultiQueueReader() error
Readers() []tio.Queue
NewMultiQueueReader() (io.ReadWriteCloser, error)
}
-358
View File
@@ -1,358 +0,0 @@
//go:build !e2e_testing
// +build !e2e_testing
package overlay
import (
"errors"
"fmt"
"log/slog"
"runtime"
"strings"
"syscall"
"time"
"unsafe"
"golang.org/x/sys/windows"
)
// networkCategory mirrors NLM_NETWORK_CATEGORY from netlistmgr.h.
type networkCategory int32
const (
networkCategoryPublic networkCategory = 0
networkCategoryPrivate networkCategory = 1
networkCategoryDomainAuthenticated networkCategory = 2
)
func (c networkCategory) String() string {
switch c {
case networkCategoryPublic:
return "public"
case networkCategoryPrivate:
return "private"
case networkCategoryDomainAuthenticated:
return "domain"
}
return fmt.Sprintf("unknown(%d)", c)
}
// parseNetworkCategory accepts the user-supplied tun.network_category. A
// second return of false means "leave the category alone".
func parseNetworkCategory(s string) (networkCategory, bool, error) {
switch strings.ToLower(strings.TrimSpace(s)) {
case "", "unset":
return 0, false, nil
case "public":
return networkCategoryPublic, true, nil
case "private":
return networkCategoryPrivate, true, nil
case "domain", "domainauthenticated":
return networkCategoryDomainAuthenticated, true, nil
}
return 0, false, fmt.Errorf("unknown tun.network_category %q (expected public, private, domain, or unset)", s)
}
// CLSID_NetworkListManager {DCB00C01-570F-4A9B-8D69-199FDBA5723B}
var clsidNetworkListManager = windows.GUID{
Data1: 0xDCB00C01, Data2: 0x570F, Data3: 0x4A9B,
Data4: [8]byte{0x8D, 0x69, 0x19, 0x9F, 0xDB, 0xA5, 0x72, 0x3B},
}
// IID_INetworkListManager {DCB00000-570F-4A9B-8D69-199FDBA5723B}
var iidINetworkListManager = windows.GUID{
Data1: 0xDCB00000, Data2: 0x570F, Data3: 0x4A9B,
Data4: [8]byte{0x8D, 0x69, 0x19, 0x9F, 0xDB, 0xA5, 0x72, 0x3B},
}
// x/sys/windows doesn't expose CoCreateInstance, so we bind it ourselves.
var procCoCreateInstance = windows.NewLazySystemDLL("ole32.dll").NewProc("CoCreateInstance")
const clsCtxAll = windows.CLSCTX_INPROC_SERVER | windows.CLSCTX_INPROC_HANDLER |
windows.CLSCTX_LOCAL_SERVER | windows.CLSCTX_REMOTE_SERVER
const (
hrSFALSE = 0x00000001
hrRPCEChangedMode = 0x80010106
)
type hresult uint32
func (h hresult) failed() bool { return int32(h) < 0 }
func (h hresult) String() string {
return fmt.Sprintf("HRESULT 0x%08x", uint32(h))
}
var errAdapterNotFound = errors.New("adapter not present in network connections enumeration")
// Vtable layouts. Slot order must match the declaration order in netlistmgr.h.
// All NLM interfaces here derive from IDispatch, which derives from IUnknown.
type iUnknownVtbl struct {
QueryInterface uintptr
AddRef uintptr
Release uintptr
}
type iDispatchVtbl struct {
iUnknownVtbl
GetTypeInfoCount uintptr
GetTypeInfo uintptr
GetIDsOfNames uintptr
Invoke uintptr
}
type iNetworkListManagerVtbl struct {
iDispatchVtbl
GetNetworks uintptr
GetNetwork uintptr
GetNetworkConnections uintptr
GetNetworkConnection uintptr
IsConnectedToInternet uintptr
IsConnected uintptr
GetConnectivity uintptr
}
type iNetworkListManager struct{ Vtbl *iNetworkListManagerVtbl }
func (n *iNetworkListManager) Release() {
syscall.SyscallN(n.Vtbl.Release, uintptr(unsafe.Pointer(n)))
}
func (n *iNetworkListManager) GetNetworkConnections() (*iEnumNetworkConnections, error) {
var enum *iEnumNetworkConnections
r1, _, _ := syscall.SyscallN(n.Vtbl.GetNetworkConnections,
uintptr(unsafe.Pointer(n)), uintptr(unsafe.Pointer(&enum)),
)
if hr := hresult(r1); hr.failed() {
return nil, fmt.Errorf("INetworkListManager.GetNetworkConnections: %s", hr)
}
return enum, nil
}
type iEnumNetworkConnectionsVtbl struct {
iDispatchVtbl
NewEnum uintptr
Next uintptr
Skip uintptr
Reset uintptr
Clone uintptr
}
type iEnumNetworkConnections struct{ Vtbl *iEnumNetworkConnectionsVtbl }
func (e *iEnumNetworkConnections) Release() {
syscall.SyscallN(e.Vtbl.Release, uintptr(unsafe.Pointer(e)))
}
// Next returns the next connection, or (nil, nil) at the end of the enumeration.
func (e *iEnumNetworkConnections) Next() (*iNetworkConnection, error) {
var conn *iNetworkConnection
var fetched uint32
r1, _, _ := syscall.SyscallN(e.Vtbl.Next,
uintptr(unsafe.Pointer(e)), 1,
uintptr(unsafe.Pointer(&conn)), uintptr(unsafe.Pointer(&fetched)),
)
if hr := hresult(r1); hr.failed() {
return nil, fmt.Errorf("IEnumNetworkConnections.Next: %s", hr)
}
if fetched == 0 {
return nil, nil
}
return conn, nil
}
type iNetworkConnectionVtbl struct {
iDispatchVtbl
GetNetwork uintptr
IsConnectedToInternet uintptr
IsConnected uintptr
GetConnectivity uintptr
GetConnectionId uintptr
GetAdapterId uintptr
GetDomainType uintptr
}
type iNetworkConnection struct{ Vtbl *iNetworkConnectionVtbl }
func (c *iNetworkConnection) Release() {
syscall.SyscallN(c.Vtbl.Release, uintptr(unsafe.Pointer(c)))
}
func (c *iNetworkConnection) GetAdapterId() (windows.GUID, error) {
var g windows.GUID
r1, _, _ := syscall.SyscallN(c.Vtbl.GetAdapterId,
uintptr(unsafe.Pointer(c)), uintptr(unsafe.Pointer(&g)),
)
if hr := hresult(r1); hr.failed() {
return windows.GUID{}, fmt.Errorf("INetworkConnection.GetAdapterId: %s", hr)
}
return g, nil
}
func (c *iNetworkConnection) GetNetwork() (*iNetwork, error) {
var net *iNetwork
r1, _, _ := syscall.SyscallN(c.Vtbl.GetNetwork,
uintptr(unsafe.Pointer(c)), uintptr(unsafe.Pointer(&net)),
)
if hr := hresult(r1); hr.failed() {
return nil, fmt.Errorf("INetworkConnection.GetNetwork: %s", hr)
}
return net, nil
}
type iNetworkVtbl struct {
iDispatchVtbl
GetName uintptr
SetName uintptr
GetDescription uintptr
SetDescription uintptr
GetNetworkId uintptr
GetDomainType uintptr
GetNetworkConnections uintptr
GetTimeCreatedAndConnected uintptr
IsConnectedToInternet uintptr
IsConnected uintptr
GetConnectivity uintptr
GetCategory uintptr
SetCategory uintptr
}
type iNetwork struct{ Vtbl *iNetworkVtbl }
func (n *iNetwork) Release() {
syscall.SyscallN(n.Vtbl.Release, uintptr(unsafe.Pointer(n)))
}
func (n *iNetwork) GetCategory() (networkCategory, error) {
var c networkCategory
r1, _, _ := syscall.SyscallN(n.Vtbl.GetCategory,
uintptr(unsafe.Pointer(n)), uintptr(unsafe.Pointer(&c)),
)
if hr := hresult(r1); hr.failed() {
return 0, fmt.Errorf("INetwork.GetCategory: %s", hr)
}
return c, nil
}
func (n *iNetwork) SetCategory(c networkCategory) error {
r1, _, _ := syscall.SyscallN(n.Vtbl.SetCategory,
uintptr(unsafe.Pointer(n)), uintptr(int32(c)),
)
if hr := hresult(r1); hr.failed() {
return fmt.Errorf("INetwork.SetCategory: %s", hr)
}
return nil
}
// coInit initializes COM for the current OS thread. The returned function must
// be deferred to balance a successful init. RPC_E_CHANGED_MODE means COM is
// already initialized in a different mode on this thread, which is still fine
// for our calls but we must not Uninitialize in that case.
func coInit() (func(), error) {
err := windows.CoInitializeEx(0, windows.COINIT_MULTITHREADED)
if err == nil {
return windows.CoUninitialize, nil
}
if e, ok := err.(syscall.Errno); ok {
switch uint32(e) {
case hrSFALSE:
return windows.CoUninitialize, nil
case hrRPCEChangedMode:
return func() {}, nil
}
}
return nil, fmt.Errorf("CoInitializeEx: %w", err)
}
func createNetworkListManager() (*iNetworkListManager, error) {
var nlm *iNetworkListManager
r1, _, _ := procCoCreateInstance.Call(
uintptr(unsafe.Pointer(&clsidNetworkListManager)),
0,
uintptr(clsCtxAll),
uintptr(unsafe.Pointer(&iidINetworkListManager)),
uintptr(unsafe.Pointer(&nlm)),
)
if hr := hresult(r1); hr.failed() {
return nil, fmt.Errorf("CoCreateInstance(NetworkListManager): %s", hr)
}
return nlm, nil
}
// setNetworkCategory locates the network connection bound to adapterGUID and
// sets the category of its parent network. Returns errAdapterNotFound if the
// adapter is not yet visible in the NLM enumeration.
func setNetworkCategory(adapterGUID windows.GUID, cat networkCategory) error {
deinit, err := coInit()
if err != nil {
return err
}
defer deinit()
nlm, err := createNetworkListManager()
if err != nil {
return err
}
defer nlm.Release()
enum, err := nlm.GetNetworkConnections()
if err != nil {
return err
}
defer enum.Release()
for {
conn, err := enum.Next()
if err != nil {
return err
}
if conn == nil {
return errAdapterNotFound
}
guid, err := conn.GetAdapterId()
if err != nil || guid != adapterGUID {
conn.Release()
continue
}
net, err := conn.GetNetwork()
conn.Release()
if err != nil {
return err
}
err = net.SetCategory(cat)
net.Release()
return err
}
}
// applyNetworkCategory polls until the wintun adapter shows up in the NLM
// enumeration, then sets the category. Intended to run in its own goroutine.
func applyNetworkCategory(l *slog.Logger, adapterGUID windows.GUID, cat networkCategory) {
// COM Init/Uninit must be paired on the same OS thread.
runtime.LockOSThread()
defer runtime.UnlockOSThread()
const (
attempts = 30
interval = 500 * time.Millisecond
)
for i := 0; i < attempts; i++ {
err := setNetworkCategory(adapterGUID, cat)
if err == nil {
l.Info("Set Windows network category", "category", cat.String())
return
}
if !errors.Is(err, errAdapterNotFound) {
l.Warn("Failed to set Windows network category", "error", err, "category", cat.String())
return
}
time.Sleep(interval)
}
l.Warn("Gave up waiting for adapter to appear in NLM enumeration; network category not set",
"category", cat.String(),
"waited", time.Duration(attempts)*interval,
)
}
-109
View File
@@ -1,109 +0,0 @@
//go:build !e2e_testing
// +build !e2e_testing
package overlay
import (
"testing"
)
func Test_parseNetworkCategory(t *testing.T) {
cases := []struct {
in string
wantCat networkCategory
wantApply bool
wantErr bool
}{
{"", 0, false, false},
{"unset", 0, false, false},
{" UNSET ", 0, false, false},
{"private", networkCategoryPrivate, true, false},
{"Private", networkCategoryPrivate, true, false},
{" PRIVATE ", networkCategoryPrivate, true, false},
{"public", networkCategoryPublic, true, false},
{"PUBLIC", networkCategoryPublic, true, false},
{"domain", networkCategoryDomainAuthenticated, true, false},
{"DomainAuthenticated", networkCategoryDomainAuthenticated, true, false},
{"garbage", 0, false, true},
{"privates", 0, false, true},
}
for _, tc := range cases {
cat, apply, err := parseNetworkCategory(tc.in)
if (err != nil) != tc.wantErr {
t.Errorf("parseNetworkCategory(%q) err=%v, wantErr=%v", tc.in, err, tc.wantErr)
continue
}
if cat != tc.wantCat || apply != tc.wantApply {
t.Errorf("parseNetworkCategory(%q) = (%v, %v), want (%v, %v)", tc.in, cat, apply, tc.wantCat, tc.wantApply)
}
}
}
// Test_NLM_round_trip exercises every COM call path used by setNetworkCategory
// without mutating the host's network state. It validates the CLSID/IID
// constants and every vtable index by enumerating connections, fetching the
// adapter id and parent network, reading the current category, and writing it
// back unchanged.
//
// Requires Windows but does not require admin or the wintun driver. Skips if
// no network connections are available (unlikely outside of an isolated
// container).
func Test_NLM_round_trip(t *testing.T) {
deinit, err := coInit()
if err != nil {
t.Fatalf("coInit: %v", err)
}
defer deinit()
nlm, err := createNetworkListManager()
if err != nil {
t.Fatalf("createNetworkListManager: %v", err)
}
defer nlm.Release()
enum, err := nlm.GetNetworkConnections()
if err != nil {
t.Fatalf("GetNetworkConnections: %v", err)
}
defer enum.Release()
saw := 0
for {
conn, err := enum.Next()
if err != nil {
t.Fatalf("EnumNetworkConnections.Next: %v", err)
}
if conn == nil {
break
}
saw++
if _, err := conn.GetAdapterId(); err != nil {
conn.Release()
t.Fatalf("INetworkConnection.GetAdapterId: %v", err)
}
net, err := conn.GetNetwork()
conn.Release()
if err != nil {
t.Fatalf("INetworkConnection.GetNetwork: %v", err)
}
cat, err := net.GetCategory()
if err != nil {
net.Release()
t.Fatalf("INetwork.GetCategory: %v", err)
}
// Set to the current value so the host's NLM state is unchanged but
// SetCategory's vtable slot is still validated end-to-end.
if err := net.SetCategory(cat); err != nil {
net.Release()
t.Fatalf("INetwork.SetCategory(%v): %v", cat, err)
}
net.Release()
}
if saw == 0 {
t.Skip("no NLM network connections available; skipping round-trip")
}
}
-61
View File
@@ -1,61 +0,0 @@
// Package overlaytest provides fakes of overlay.Device for tests that do
// not want to touch a real tun device or route table.
package overlaytest
import (
"errors"
"net/netip"
"github.com/slackhq/nebula/overlay/tio"
"github.com/slackhq/nebula/routing"
"github.com/slackhq/nebula/wire"
)
// NoopTun is an overlay.Device that silently discards every read and write.
// Useful in tests that need to construct a nebula Interface but do not
// exercise the datapath.
type NoopTun struct{}
func (NoopTun) Capabilities() tio.Capabilities {
return tio.Capabilities{}
}
func (NoopTun) RoutesFor(addr netip.Addr) routing.Gateways {
return routing.Gateways{}
}
func (NoopTun) Activate() error {
return nil
}
func (NoopTun) Networks() []netip.Prefix {
return []netip.Prefix{}
}
func (NoopTun) Name() string {
return "noop"
}
func (NoopTun) Read(p []wire.TunPacket, mem []byte) (int, error) {
return 0, nil
}
func (NoopTun) Write([]byte) (int, error) {
return 0, nil
}
func (NoopTun) SupportsMultiqueue() bool {
return false
}
func (NoopTun) NewMultiQueueReader() error {
return errors.New("unsupported")
}
func (NoopTun) Readers() []tio.Queue {
return []tio.Queue{NoopTun{}}
}
func (NoopTun) Close() error {
return nil
}
+3 -6
View File
@@ -2,7 +2,6 @@ package overlay
import (
"fmt"
"log/slog"
"math"
"net"
"net/netip"
@@ -10,6 +9,7 @@ import (
"strconv"
"github.com/gaissmai/bart"
"github.com/sirupsen/logrus"
"github.com/slackhq/nebula/config"
"github.com/slackhq/nebula/routing"
)
@@ -48,14 +48,11 @@ func (r Route) String() string {
return s
}
func makeRouteTree(l *slog.Logger, routes []Route, allowMTU bool) (*bart.Table[routing.Gateways], error) {
func makeRouteTree(l *logrus.Logger, routes []Route, allowMTU bool) (*bart.Table[routing.Gateways], error) {
routeTree := new(bart.Table[routing.Gateways])
for _, r := range routes {
if !allowMTU && r.MTU > 0 {
l.Warn("route MTU is not supported on this platform",
"goos", runtime.GOOS,
"route", r,
)
l.WithField("route", r).Warnf("route MTU is not supported in %s", runtime.GOOS)
}
gateways := r.Via
+2 -2
View File
@@ -295,7 +295,7 @@ func Test_makeRouteTree(t *testing.T) {
routes, err := parseUnsafeRoutes(c, []netip.Prefix{n})
require.NoError(t, err)
assert.Len(t, routes, 2)
routeTree, err := makeRouteTree(test.NewLogger(), routes, true)
routeTree, err := makeRouteTree(l, routes, true)
require.NoError(t, err)
ip, err := netip.ParseAddr("1.0.0.2")
@@ -367,7 +367,7 @@ func Test_makeMultipathUnsafeRouteTree(t *testing.T) {
routes, err := parseUnsafeRoutes(c, []netip.Prefix{n})
require.NoError(t, err)
assert.Len(t, routes, 3)
routeTree, err := makeRouteTree(test.NewLogger(), routes, true)
routeTree, err := makeRouteTree(l, routes, true)
require.NoError(t, err)
ip, err := netip.ParseAddr("192.168.86.1")
-80
View File
@@ -1,80 +0,0 @@
package tio
import (
"encoding/binary"
"errors"
"fmt"
"golang.org/x/sys/unix"
)
type pollQueueSet struct {
pq []*Poll
// pqi is exactly the same as pq, but stored as the interface type
pqi []Queue
shutdownFd int
}
func NewPollQueueSet() (QueueSet, error) {
shutdownFd, err := unix.Eventfd(0, unix.EFD_NONBLOCK|unix.EFD_CLOEXEC)
if err != nil {
return nil, fmt.Errorf("failed to create eventfd: %w", err)
}
out := &pollQueueSet{
pq: []*Poll{},
pqi: []Queue{},
shutdownFd: shutdownFd,
}
return out, nil
}
func (c *pollQueueSet) Queues() []Queue {
return c.pqi
}
func (c *pollQueueSet) Add(fd int) error {
x, err := newPoll(fd, c.shutdownFd)
if err != nil {
return err
}
c.pq = append(c.pq, x)
c.pqi = append(c.pqi, x)
return nil
}
func (c *pollQueueSet) wakeForShutdown() error {
var buf [8]byte
binary.NativeEndian.PutUint64(buf[:], 1)
_, err := unix.Write(c.shutdownFd, buf[:])
return err
}
func (c *pollQueueSet) Close() error {
if c.shutdownFd < 0 {
return nil
}
errs := []error{}
if err := c.wakeForShutdown(); err != nil {
errs = append(errs, err)
}
for _, x := range c.pq {
if err := x.Close(); err != nil {
errs = append(errs, err)
}
}
// All Polls reference shutdownFd in their pollfd arrays, so close it
// only after every Poll.Close has returned.
if err := unix.Close(c.shutdownFd); err != nil {
errs = append(errs, err)
}
c.shutdownFd = -1
return errors.Join(errs...)
}
-122
View File
@@ -1,122 +0,0 @@
package tio
import (
"io"
"github.com/slackhq/nebula/wire"
)
// QueueSet holds one or many Queue objects and helps close them in an orderly way.
type QueueSet interface {
io.Closer
Queues() []Queue
// Add takes a tun fd, adds it to the set, and prepares it for use as a Queue.
Add(fd int) error
}
// Capabilities advertises which kernel offload features a Queue successfully negotiated.
// Callers consult this to decide which coalescers to wire onto the write path.
type Capabilities struct {
// TSO means the FD was opened with IFF_VNET_HDR and the kernel agreed
// to TUN_F_TSO4|TSO6 — i.e. WriteGSO with GSOProtoTCP is safe.
TSO bool
// USO means the kernel additionally agreed to TUN_F_USO4|USO6, so
// WriteGSO with GSOProtoUDP is safe. Linux ≥ 6.2.
USO bool
}
// Queue is a readable/writable Poll queue. One Queue is driven by a single
// read goroutine plus a single writer (see Write below).
type Queue interface {
io.Closer
// Read will read at least 1 packet from the tun (up to len(p)).
// mem will be used to provide the backing for each of p[n].Bytes.
// Callers should size mem and p to avoid exhausting mem before p.
// Returns the number of packets actually read, or error.
Read(p []wire.TunPacket, mem []byte) (int, error)
// Write emits a single packet on the plaintext (outside→inside)
// delivery path.
Write(p []byte) (int, error)
// Capabilities returns the Queue's negotiated offload capabilities,
// or the zero value when q does not advertise any.
Capabilities() Capabilities
}
// GSOInfo describes a kernel-supplied superpacket sitting in Packet.Bytes.
// The zero value means "not a superpacket" — Bytes is one regular IP
// datagram and no segmentation is required.
type GSOInfo struct {
// Size is the GSO segment size: max payload bytes per segment
// (== TCP MSS for TSO, == UDP payload chunk for USO). Zero means
// not a superpacket.
Size uint16
// HdrLen is the total L3+L4 header length within Bytes (already
// corrected via correctHdrLen, so safe to slice on).
HdrLen uint16
// CsumStart is the L4 header offset inside Bytes (== L3 header
// length).
CsumStart uint16
// Proto picks the L4 protocol (TCP or UDP) so the segmenter knows
// which checksum/header layout to apply.
Proto GSOProto
}
// GSOProto selects the L4 protocol for a GSO superpacket. Determines which
// VIRTIO_NET_HDR_GSO_* type the writer stamps and which checksum offset
// inside the transport header virtio NEEDS_CSUM expects.
type GSOProto uint8
const (
GSOProtoNone GSOProto = iota
GSOProtoTCP
GSOProtoUDP
)
// GSOWriter is implemented by Queues that can emit a TCP or UDP superpacket
// assembled from a header prefix plus one or more borrowed payload
// fragments, in a single vectored write (writev with a leading
// virtio_net_hdr). This lets the coalescer avoid copying payload bytes
// between the caller's decrypt buffer and the TUN. Backends without GSO
// support do not implement this interface and coalescing is skipped.
//
// hdr contains the IPv4/IPv6 header prefix (mutable - callers will have
// filled in total length and IP csum). transportHdr is the TCP or UDP
// header (mutable - the L4 checksum field must hold the pseudo-header
// partial, single-fold not inverted, per virtio NEEDS_CSUM semantics).
// pays are non-overlapping payload fragments whose concatenation is the
// full superpacket payload; they are read-only from the writer's
// perspective and must remain valid until the call returns. Every segment
// in pays except possibly the last is exactly the same size. proto picks
// the L4 protocol so the writer knows which GSOType / CsumOffset to set.
//
// Callers should also consult CapsProvider (via SupportsGSO or
// QueueCapabilities) for the per-protocol negotiated capability; an
// implementation of GSOWriter is necessary but not sufficient since USO
// may not have been negotiated even when TSO was.
type GSOWriter interface {
WriteGSO(hdr []byte, transportHdr []byte, pays [][]byte, proto GSOProto) error
}
// SupportsGSO reports whether w implements GSOWriter and the underlying
// queue advertises the negotiated capability for `want`. A writer that
// implements GSOWriter but not CapsProvider is treated as permissive
// (used by tests and fakes that don't negotiate).
func SupportsGSO(w Queue, want GSOProto) (GSOWriter, bool) {
gw, ok := w.(GSOWriter)
if !ok {
return nil, false
}
caps := w.Capabilities()
switch want {
case GSOProtoTCP:
return gw, caps.TSO
case GSOProtoUDP:
return gw, caps.USO
default:
return gw, false
}
}
-168
View File
@@ -1,168 +0,0 @@
package tio
import (
"fmt"
"os"
"sync"
"sync/atomic"
"github.com/slackhq/nebula/wire"
"golang.org/x/sys/unix"
)
type Poll struct {
fd int
readPoll [2]unix.PollFd
writePoll [2]unix.PollFd
writeLock sync.Mutex
closed atomic.Bool
}
func newPoll(fd int, shutdownFd int) (*Poll, error) {
if err := unix.SetNonblock(fd, true); err != nil {
_ = unix.Close(fd)
return nil, fmt.Errorf("failed to set Poll device as nonblocking: %w", err)
}
out := &Poll{
fd: fd,
readPoll: [2]unix.PollFd{
{Fd: int32(fd), Events: unix.POLLIN},
{Fd: int32(shutdownFd), Events: unix.POLLIN},
},
writePoll: [2]unix.PollFd{
{Fd: int32(fd), Events: unix.POLLOUT},
{Fd: int32(shutdownFd), Events: unix.POLLIN},
},
writeLock: sync.Mutex{},
}
return out, nil
}
// blockOnRead waits until the Poll fd is readable or shutdown has been signaled.
// Returns os.ErrClosed if Close was called.
func (t *Poll) blockOnRead() error {
const problemFlags = unix.POLLHUP | unix.POLLNVAL | unix.POLLERR
var err error
for {
_, err = unix.Poll(t.readPoll[:], -1)
if err != unix.EINTR {
break
}
}
tunEvents := t.readPoll[0].Revents
shutdownEvents := t.readPoll[1].Revents
t.readPoll[0].Revents = 0
t.readPoll[1].Revents = 0
if err != nil {
return err
}
if shutdownEvents&(unix.POLLIN|problemFlags) != 0 {
return os.ErrClosed
}
if tunEvents&problemFlags != 0 {
return os.ErrClosed
}
return nil
}
func (t *Poll) blockOnWrite() error {
const problemFlags = unix.POLLHUP | unix.POLLNVAL | unix.POLLERR
var err error
for {
_, err = unix.Poll(t.writePoll[:], -1)
if err != unix.EINTR {
break
}
}
t.writeLock.Lock()
tunEvents := t.writePoll[0].Revents
shutdownEvents := t.writePoll[1].Revents
t.writePoll[0].Revents = 0
t.writePoll[1].Revents = 0
t.writeLock.Unlock()
if err != nil {
return err
}
if shutdownEvents&(unix.POLLIN|problemFlags) != 0 {
return os.ErrClosed
}
if tunEvents&problemFlags != 0 {
return os.ErrClosed
}
return nil
}
func (t *Poll) Read(p []wire.TunPacket, mem []byte) (int, error) {
if len(p) == 0 || len(mem) == 0 {
return 0, nil //todo should this be an err?
}
p[0].Meta = struct{}{}
n, err := t.readOne(mem)
if err != nil {
return 0, err
}
p[0].Bytes = mem[:n]
return 1, nil
}
func (t *Poll) readOne(to []byte) (int, error) {
for {
n, errno := unix.Read(t.fd, to)
if errno == nil {
return n, nil
}
switch errno {
case unix.EAGAIN:
if err := t.blockOnRead(); err != nil {
return 0, err
}
case unix.EINTR:
// retry
case unix.EBADF:
return 0, os.ErrClosed
default:
return 0, errno
}
}
}
func (t *Poll) Write(from []byte) (int, error) {
for {
n, errno := unix.Write(t.fd, from)
if errno == nil {
return n, nil
}
switch errno {
case unix.EAGAIN:
if err := t.blockOnWrite(); err != nil {
return 0, err
}
case unix.EINTR:
// retry
case unix.EBADF:
return 0, os.ErrClosed
default:
return 0, errno
}
}
}
func (t *Poll) Close() error {
if t.closed.Swap(true) {
return nil
}
//shutdownFd is owned by the container, so we should not close it
var err error
if t.fd >= 0 {
err = unix.Close(t.fd)
t.fd = -1
}
return err
}
func (t *Poll) Capabilities() Capabilities {
return Capabilities{}
}
-106
View File
@@ -1,106 +0,0 @@
//go:build linux && !android && !e2e_testing
// +build linux,!android,!e2e_testing
package tio
import (
"errors"
"os"
"sync"
"testing"
"time"
"github.com/slackhq/nebula/wire"
"github.com/stretchr/testify/require"
"golang.org/x/sys/unix"
)
// newReadPipe returns a read fd. The matching write fd is registered for cleanup.
// The caller takes ownership of the read fd (pass it into a QueueSet).
func newReadPipe(t *testing.T) int {
t.Helper()
var fds [2]int
if err := unix.Pipe2(fds[:], unix.O_CLOEXEC); err != nil {
t.Fatalf("pipe2: %v", err)
}
t.Cleanup(func() { _ = unix.Close(fds[1]) })
return fds[0]
}
func TestPoll_WakeForShutdown_WakesFriends(t *testing.T) {
parent, err := NewPollQueueSet()
require.NoError(t, err)
require.NoError(t, parent.Add(newReadPipe(t)))
require.NoError(t, parent.Add(newReadPipe(t)))
// QueueSet.Close owns the read fds we Added — don't register a separate
// Cleanup to close them or we'll double-close whatever fd the kernel
// has since reused.
readers := parent.Queues()
errs := make([]error, len(readers))
var wg sync.WaitGroup
for i, r := range readers {
wg.Add(1)
go func(i int, r Queue) {
defer wg.Done()
pkts := make([]wire.TunPacket, 1)
_, errs[i] = r.Read(pkts, make([]byte, 64))
}(i, r)
}
time.Sleep(50 * time.Millisecond)
if err := parent.Close(); err != nil {
t.Fatalf("Close: %v", err)
}
done := make(chan struct{})
go func() { wg.Wait(); close(done) }()
select {
case <-done:
case <-time.After(2 * time.Second):
t.Fatal("readers did not wake")
}
for i, err := range errs {
if !errors.Is(err, os.ErrClosed) {
t.Errorf("reader %d: expected os.ErrClosed, got %v", i, err)
}
}
}
func TestPoll_Close_Idempotent(t *testing.T) {
shutdownFd, err := unix.Eventfd(0, unix.EFD_NONBLOCK|unix.EFD_CLOEXEC)
require.NoError(t, err)
t.Cleanup(func() { _ = unix.Close(shutdownFd) })
tf, err := newPoll(newReadPipe(t), shutdownFd)
require.NoError(t, err)
if err := tf.Close(); err != nil {
t.Fatalf("first Close: %v", err)
}
if err := tf.Close(); err != nil {
t.Fatalf("second Close should be a no-op, got %v", err)
}
}
func TestPollQueueSet_Close_ClosesEventfd(t *testing.T) {
qs, err := NewPollQueueSet()
require.NoError(t, err)
require.NoError(t, qs.Add(newReadPipe(t)))
fd := qs.(*pollQueueSet).shutdownFd
require.NoError(t, qs.Close())
// Closing the eventfd again should fail with EBADF, proving Close
// actually released it.
if err := unix.Close(fd); err == nil {
t.Fatalf("eventfd %d still open after QueueSet.Close", fd)
}
// Second Close must be a no-op (and must not double-close the eventfd
// in case the kernel handed it out to another caller in the meantime).
if err := qs.Close(); err != nil {
t.Fatalf("second Close: %v", err)
}
}
+4 -4
View File
@@ -2,10 +2,10 @@ package overlay
import (
"fmt"
"log/slog"
"net"
"net/netip"
"github.com/sirupsen/logrus"
"github.com/slackhq/nebula/config"
"github.com/slackhq/nebula/util"
)
@@ -22,9 +22,9 @@ func (e *NameError) Error() string {
}
// TODO: We may be able to remove routines
type DeviceFactory func(c *config.C, l *slog.Logger, vpnNetworks []netip.Prefix, routines int) (Device, error)
type DeviceFactory func(c *config.C, l *logrus.Logger, vpnNetworks []netip.Prefix, routines int) (Device, error)
func NewDeviceFromConfig(c *config.C, l *slog.Logger, vpnNetworks []netip.Prefix, routines int) (Device, error) {
func NewDeviceFromConfig(c *config.C, l *logrus.Logger, vpnNetworks []netip.Prefix, routines int) (Device, error) {
switch {
case c.GetBool("tun.disabled", false):
tun := newDisabledTun(vpnNetworks, c.GetInt("tun.tx_queue", 500), c.GetBool("stats.message_metrics", false), l)
@@ -36,7 +36,7 @@ func NewDeviceFromConfig(c *config.C, l *slog.Logger, vpnNetworks []netip.Prefix
}
func NewFdDeviceFromConfig(fd *int) DeviceFactory {
return func(c *config.C, l *slog.Logger, vpnNetworks []netip.Prefix, routines int) (Device, error) {
return func(c *config.C, l *logrus.Logger, vpnNetworks []netip.Prefix, routines int) (Device, error) {
return newTunFromFd(c, l, *fd, vpnNetworks)
}
}

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