mirror of
https://github.com/slackhq/nebula.git
synced 2026-08-15 19:56:58 +02:00
Compare commits
16 Commits
| Author | SHA1 | Date | |
|---|---|---|---|
| f5ddff5ca1 | |||
| 400cbc26a1 | |||
| 01b31360df | |||
| 5bdf645b0b | |||
| 0375aff451 | |||
| 6cb00c613c | |||
| 40b4ae7fb4 | |||
| cf51b6dfd7 | |||
| fe93ebd017 | |||
| 961ddbfbc1 | |||
| 67bd9e848a | |||
| bc3f5d0400 | |||
| aef8e39cc4 | |||
| 69863d6c81 | |||
| 5d35351437 | |||
| f95857b4c3 |
+1
-1
@@ -10,7 +10,7 @@ import (
|
||||
"github.com/slackhq/nebula/noiseutil"
|
||||
)
|
||||
|
||||
const ReplayWindow = 1024
|
||||
const ReplayWindow = 8192
|
||||
|
||||
type ConnectionState struct {
|
||||
eKey noiseutil.CipherState
|
||||
|
||||
@@ -0,0 +1,125 @@
|
||||
package nebula
|
||||
|
||||
import (
|
||||
"io"
|
||||
"log/slog"
|
||||
"testing"
|
||||
)
|
||||
|
||||
func TestInnerECN(t *testing.T) {
|
||||
cases := []struct {
|
||||
name string
|
||||
pkt []byte
|
||||
want byte
|
||||
}{
|
||||
{"empty", nil, 0},
|
||||
{"v4_NotECT", v4WithToS(0x00), 0x00},
|
||||
{"v4_ECT0", v4WithToS(0x02), 0x02},
|
||||
{"v4_ECT1", v4WithToS(0x01), 0x01},
|
||||
{"v4_CE", v4WithToS(0x03), 0x03},
|
||||
{"v4_DSCP_then_NotECT", v4WithToS(0x88 | 0x00), 0x00},
|
||||
{"v4_DSCP_then_CE", v4WithToS(0x88 | 0x03), 0x03},
|
||||
{"v6_NotECT", v6WithTC(0x00), 0x00},
|
||||
{"v6_ECT0", v6WithTC(0x02), 0x02},
|
||||
{"v6_CE", v6WithTC(0x03), 0x03},
|
||||
{"v6_DSCP_then_CE", v6WithTC(0x88 | 0x03), 0x03},
|
||||
{"unknown_version", []byte{0xa5, 0xff}, 0},
|
||||
}
|
||||
for _, c := range cases {
|
||||
t.Run(c.name, func(t *testing.T) {
|
||||
got := innerECN(c.pkt)
|
||||
if got != c.want {
|
||||
t.Errorf("innerECN=0x%02x want 0x%02x", got, c.want)
|
||||
}
|
||||
})
|
||||
}
|
||||
}
|
||||
|
||||
// v4WithToS returns a 2-byte slice tall enough for innerECN: byte 0 carries
|
||||
// version=4 in the high nibble, byte 1 is the full ToS so we exercise both
|
||||
// the DSCP and ECN portions through the byte 1 mask.
|
||||
func v4WithToS(tos byte) []byte {
|
||||
return []byte{0x45, tos}
|
||||
}
|
||||
|
||||
// v6WithTC builds a 2-byte slice that places a known traffic class value
|
||||
// across bytes 0 (high nibble of TC) and 1 (low nibble of TC). innerECN
|
||||
// extracts ECN as (b[1]>>4)&0x03, which corresponds to TC[1:0].
|
||||
func v6WithTC(tc byte) []byte {
|
||||
return []byte{0x60 | (tc>>4)&0x0f, (tc & 0x0f) << 4}
|
||||
}
|
||||
|
||||
func TestApplyOuterECN(t *testing.T) {
|
||||
silent := slog.New(slog.NewTextHandler(io.Discard, nil))
|
||||
hi := &HostInfo{}
|
||||
|
||||
// Build a v4 packet helper with a given inner ECN field.
|
||||
v4 := func(innerECN byte) []byte {
|
||||
// 20-byte minimal IPv4 header with ToS = innerECN (DSCP zeroed).
|
||||
return []byte{
|
||||
0x45, innerECN, 0, 28,
|
||||
0, 0, 0x40, 0,
|
||||
64, 6, 0, 0,
|
||||
10, 0, 0, 1,
|
||||
10, 0, 0, 2,
|
||||
}
|
||||
}
|
||||
// Build a v6 packet helper with a given inner ECN field. ECN occupies
|
||||
// TC[1:0] which sit at byte 1 mask 0x30.
|
||||
v6 := func(innerECN byte) []byte {
|
||||
// 40-byte minimal IPv6 header with TC[1:0] = innerECN.
|
||||
pkt := make([]byte, 40)
|
||||
pkt[0] = 0x60 // version=6, TC[7:4]=0
|
||||
pkt[1] = (innerECN & 0x03) << 4 // TC[3:0]: low 2 bits = ECN, top 2 = DSCP-low (0)
|
||||
return pkt
|
||||
}
|
||||
|
||||
type cell struct {
|
||||
outer byte
|
||||
inner byte
|
||||
wantECN byte
|
||||
wantSame bool // expect inner unchanged (true => verify the byte didn't move)
|
||||
}
|
||||
|
||||
// RFC 6040 normal-mode combine table. Only outer==CE causes mutation.
|
||||
table := []cell{
|
||||
{ecnNotECT, ecnNotECT, ecnNotECT, true},
|
||||
{ecnNotECT, ecnECT0, ecnECT0, true},
|
||||
{ecnNotECT, ecnECT1, ecnECT1, true},
|
||||
{ecnNotECT, ecnCE, ecnCE, true},
|
||||
|
||||
{ecnECT0, ecnNotECT, ecnNotECT, true},
|
||||
{ecnECT0, ecnECT0, ecnECT0, true},
|
||||
{ecnECT0, ecnECT1, ecnECT1, true},
|
||||
{ecnECT0, ecnCE, ecnCE, true},
|
||||
|
||||
{ecnECT1, ecnNotECT, ecnNotECT, true},
|
||||
{ecnECT1, ecnECT0, ecnECT0, true},
|
||||
{ecnECT1, ecnECT1, ecnECT1, true},
|
||||
{ecnECT1, ecnCE, ecnCE, true},
|
||||
|
||||
{ecnCE, ecnNotECT, ecnNotECT, true}, // legacy: log, leave alone
|
||||
{ecnCE, ecnECT0, ecnCE, false}, // CE folded in
|
||||
{ecnCE, ecnECT1, ecnCE, false},
|
||||
{ecnCE, ecnCE, ecnCE, true},
|
||||
}
|
||||
|
||||
for _, c := range table {
|
||||
t.Run("v4", func(t *testing.T) {
|
||||
pkt := v4(c.inner)
|
||||
applyOuterECN(pkt, c.outer, hi, silent)
|
||||
got := pkt[1] & 0x03
|
||||
if got != c.wantECN {
|
||||
t.Errorf("v4 outer=0x%02x inner=0x%02x: got 0x%02x want 0x%02x", c.outer, c.inner, got, c.wantECN)
|
||||
}
|
||||
})
|
||||
t.Run("v6", func(t *testing.T) {
|
||||
pkt := v6(c.inner)
|
||||
applyOuterECN(pkt, c.outer, hi, silent)
|
||||
got := (pkt[1] >> 4) & 0x03
|
||||
if got != c.wantECN {
|
||||
t.Errorf("v6 outer=0x%02x inner=0x%02x: got 0x%02x want 0x%02x", c.outer, c.inner, got, c.wantECN)
|
||||
}
|
||||
})
|
||||
}
|
||||
}
|
||||
+44
-25
@@ -80,8 +80,8 @@ type firewallMetrics struct {
|
||||
type FirewallConntrack struct {
|
||||
sync.Mutex
|
||||
|
||||
Conns map[firewall.Packet]*conn
|
||||
TimerWheel *TimerWheel[firewall.Packet]
|
||||
Conns map[firewall.PacketKey]*conn
|
||||
TimerWheel *TimerWheel[firewall.PacketKey]
|
||||
}
|
||||
|
||||
// FirewallTable is the entry point for a rule, the evaluation order is:
|
||||
@@ -166,8 +166,8 @@ func NewFirewall(l *slog.Logger, tcpTimeout, UDPTimeout, defaultTimeout time.Dur
|
||||
|
||||
return &Firewall{
|
||||
Conntrack: &FirewallConntrack{
|
||||
Conns: make(map[firewall.Packet]*conn),
|
||||
TimerWheel: NewTimerWheel[firewall.Packet](tmin, tmax),
|
||||
Conns: make(map[firewall.PacketKey]*conn),
|
||||
TimerWheel: NewTimerWheel[firewall.PacketKey](tmin, tmax),
|
||||
},
|
||||
InRules: newFirewallTable(),
|
||||
OutRules: newFirewallTable(),
|
||||
@@ -422,12 +422,27 @@ 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 {
|
||||
// Check if we spoke to this tuple, if we did then allow this packet
|
||||
if f.inConns(fp, h, caPool, localCache) {
|
||||
//
|
||||
// key is the dense conntrack key — used as-is for the inConns fast path
|
||||
// without touching fp at all. fp is the rich Packet form rule matching
|
||||
// needs (CIDR lookups, family checks); on the conntrack-miss slow path
|
||||
// Drop ensures fp is hydrated from key (idempotent if the caller already
|
||||
// filled fp). On accept-via-conntrack the caller's fp is left untouched.
|
||||
func (f *Firewall) Drop(key firewall.PacketKey, fp *firewall.Packet, incoming bool, h *HostInfo, caPool *cert.CAPool, localCache firewall.ConntrackCache) error {
|
||||
// Check if we spoke to this tuple, if we did then allow this packet.
|
||||
// Hot path: only the dense key is touched.
|
||||
if f.inConns(key, h, caPool, localCache) {
|
||||
return nil
|
||||
}
|
||||
|
||||
// Conntrack miss → rule matching needs the rich Packet form. Hydrate
|
||||
// from the key if the caller passed a zero-valued fp (the inbound path
|
||||
// after batch.ParsePacket). Outbound callers Hydrate themselves and
|
||||
// skip this hop.
|
||||
if !fp.LocalAddr.IsValid() {
|
||||
key.Hydrate(fp)
|
||||
}
|
||||
|
||||
// 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
|
||||
@@ -467,13 +482,13 @@ 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, h.ConnectionState.peerCert, caPool) {
|
||||
f.metrics(incoming).droppedNoRule.Inc(1)
|
||||
return ErrNoMatchingRule
|
||||
}
|
||||
|
||||
// We always want to conntrack since it is a faster operation
|
||||
f.addConn(fp, incoming)
|
||||
f.addConn(key, fp.Protocol, incoming)
|
||||
|
||||
return nil
|
||||
}
|
||||
@@ -502,9 +517,9 @@ func (f *Firewall) EmitStats() {
|
||||
metrics.GetOrRegisterGauge("firewall.rules.hash", nil).Update(int64(f.GetRuleHashFNV()))
|
||||
}
|
||||
|
||||
func (f *Firewall) inConns(fp firewall.Packet, h *HostInfo, caPool *cert.CAPool, localCache firewall.ConntrackCache) bool {
|
||||
func (f *Firewall) inConns(key firewall.PacketKey, h *HostInfo, caPool *cert.CAPool, localCache firewall.ConntrackCache) bool {
|
||||
if localCache != nil {
|
||||
if _, ok := localCache[fp]; ok {
|
||||
if _, ok := localCache[key]; ok {
|
||||
return true
|
||||
}
|
||||
}
|
||||
@@ -517,7 +532,7 @@ func (f *Firewall) inConns(fp firewall.Packet, h *HostInfo, caPool *cert.CAPool,
|
||||
f.evict(ep)
|
||||
}
|
||||
|
||||
c, ok := conntrack.Conns[fp]
|
||||
c, ok := conntrack.Conns[key]
|
||||
|
||||
if !ok {
|
||||
conntrack.Unlock()
|
||||
@@ -526,7 +541,11 @@ func (f *Firewall) inConns(fp firewall.Packet, h *HostInfo, caPool *cert.CAPool,
|
||||
|
||||
if c.rulesVersion != f.rulesVersion {
|
||||
// This conntrack entry was for an older rule set, validate
|
||||
// it still passes with the current rule set
|
||||
// it still passes with the current rule set. Rule matching needs
|
||||
// the rich Packet form, so hydrate from key.
|
||||
var fp firewall.Packet
|
||||
key.Hydrate(&fp)
|
||||
|
||||
table := f.OutRules
|
||||
if c.incoming {
|
||||
table = f.InRules
|
||||
@@ -542,7 +561,7 @@ func (f *Firewall) inConns(fp firewall.Packet, h *HostInfo, caPool *cert.CAPool,
|
||||
"oldRulesVersion", c.rulesVersion,
|
||||
)
|
||||
}
|
||||
delete(conntrack.Conns, fp)
|
||||
delete(conntrack.Conns, key)
|
||||
conntrack.Unlock()
|
||||
return false
|
||||
}
|
||||
@@ -559,7 +578,7 @@ func (f *Firewall) inConns(fp firewall.Packet, h *HostInfo, caPool *cert.CAPool,
|
||||
c.rulesVersion = f.rulesVersion
|
||||
}
|
||||
|
||||
switch fp.Protocol {
|
||||
switch key.Protocol {
|
||||
case firewall.ProtoTCP:
|
||||
c.Expires = time.Now().Add(f.TCPTimeout)
|
||||
case firewall.ProtoUDP:
|
||||
@@ -571,17 +590,17 @@ func (f *Firewall) inConns(fp firewall.Packet, h *HostInfo, caPool *cert.CAPool,
|
||||
conntrack.Unlock()
|
||||
|
||||
if localCache != nil {
|
||||
localCache[fp] = struct{}{}
|
||||
localCache[key] = struct{}{}
|
||||
}
|
||||
|
||||
return true
|
||||
}
|
||||
|
||||
func (f *Firewall) addConn(fp firewall.Packet, incoming bool) {
|
||||
func (f *Firewall) addConn(key firewall.PacketKey, protocol uint8, incoming bool) {
|
||||
var timeout time.Duration
|
||||
c := &conn{}
|
||||
|
||||
switch fp.Protocol {
|
||||
switch protocol {
|
||||
case firewall.ProtoTCP:
|
||||
timeout = f.TCPTimeout
|
||||
case firewall.ProtoUDP:
|
||||
@@ -592,9 +611,9 @@ func (f *Firewall) addConn(fp firewall.Packet, incoming bool) {
|
||||
|
||||
conntrack := f.Conntrack
|
||||
conntrack.Lock()
|
||||
if _, ok := conntrack.Conns[fp]; !ok {
|
||||
if _, ok := conntrack.Conns[key]; !ok {
|
||||
conntrack.TimerWheel.Advance(time.Now())
|
||||
conntrack.TimerWheel.Add(fp, timeout)
|
||||
conntrack.TimerWheel.Add(key, timeout)
|
||||
}
|
||||
|
||||
// Record which rulesVersion allowed this connection, so we can retest after
|
||||
@@ -602,16 +621,16 @@ func (f *Firewall) addConn(fp firewall.Packet, incoming bool) {
|
||||
c.incoming = incoming
|
||||
c.rulesVersion = f.rulesVersion
|
||||
c.Expires = time.Now().Add(timeout)
|
||||
conntrack.Conns[fp] = c
|
||||
conntrack.Conns[key] = c
|
||||
conntrack.Unlock()
|
||||
}
|
||||
|
||||
// Evict checks if a conntrack entry has expired, if so it is removed, if not it is re-added to the wheel
|
||||
// Caller must own the connMutex lock!
|
||||
func (f *Firewall) evict(p firewall.Packet) {
|
||||
func (f *Firewall) evict(key firewall.PacketKey) {
|
||||
// Are we still tracking this conn?
|
||||
conntrack := f.Conntrack
|
||||
t, ok := conntrack.Conns[p]
|
||||
t, ok := conntrack.Conns[key]
|
||||
if !ok {
|
||||
return
|
||||
}
|
||||
@@ -621,12 +640,12 @@ func (f *Firewall) evict(p firewall.Packet) {
|
||||
// Timeout is in the future, re-add the timer
|
||||
if newT > 0 {
|
||||
conntrack.TimerWheel.Advance(time.Now())
|
||||
conntrack.TimerWheel.Add(p, newT)
|
||||
conntrack.TimerWheel.Add(key, newT)
|
||||
return
|
||||
}
|
||||
|
||||
// This conn is done
|
||||
delete(conntrack.Conns, p)
|
||||
delete(conntrack.Conns, key)
|
||||
}
|
||||
|
||||
func (ft *FirewallTable) match(p firewall.Packet, incoming bool, c *cert.CachedCertificate, caPool *cert.CAPool) bool {
|
||||
|
||||
+8
-4
@@ -5,11 +5,15 @@ import (
|
||||
"log/slog"
|
||||
"sync/atomic"
|
||||
"time"
|
||||
|
||||
"github.com/slackhq/nebula/logging"
|
||||
)
|
||||
|
||||
// ConntrackCache is used as a local routine cache to know if a given flow
|
||||
// has been seen in the conntrack table.
|
||||
type ConntrackCache map[Packet]struct{}
|
||||
// has been seen in the conntrack table. Keyed on PacketKey (dense form)
|
||||
// rather than Packet so the lookup hashes raw bytes instead of the
|
||||
// unique.Handle each netip.Addr in Packet carries.
|
||||
type ConntrackCache map[PacketKey]struct{}
|
||||
|
||||
type ConntrackCacheTicker struct {
|
||||
cacheV uint64
|
||||
@@ -56,8 +60,8 @@ func (c *ConntrackCacheTicker) Get() ConntrackCache {
|
||||
if tick := c.cacheTick.Load(); tick != c.cacheV {
|
||||
c.cacheV = tick
|
||||
if ll := len(c.cache); ll > 0 {
|
||||
if c.l.Enabled(context.Background(), slog.LevelDebug) {
|
||||
c.l.Debug("resetting conntrack cache", "len", ll)
|
||||
if c.l.Enabled(context.Background(), logging.LevelTrace) {
|
||||
c.l.Log(context.Background(), logging.LevelTrace, "resetting conntrack cache", "len", ll)
|
||||
}
|
||||
c.cache = make(ConntrackCache, ll)
|
||||
}
|
||||
|
||||
@@ -6,6 +6,7 @@ import (
|
||||
"strings"
|
||||
"testing"
|
||||
|
||||
"github.com/slackhq/nebula/logging"
|
||||
"github.com/slackhq/nebula/test"
|
||||
"github.com/stretchr/testify/assert"
|
||||
)
|
||||
@@ -22,7 +23,7 @@ func newFixedTicker(t *testing.T, l *slog.Logger, cacheLen int) *ConntrackCacheT
|
||||
cache: make(ConntrackCache, cacheLen),
|
||||
}
|
||||
for i := 0; i < cacheLen; i++ {
|
||||
c.cache[Packet{LocalPort: uint16(i) + 1}] = struct{}{}
|
||||
c.cache[PacketKey{LocalPort: uint16(i) + 1}] = struct{}{}
|
||||
}
|
||||
c.cacheTick.Store(1) // cacheV starts at 0, so Get() takes the reset path
|
||||
return c
|
||||
@@ -30,27 +31,27 @@ func newFixedTicker(t *testing.T, l *slog.Logger, cacheLen int) *ConntrackCacheT
|
||||
|
||||
func TestConntrackCacheTicker_Get_TextFormat(t *testing.T) {
|
||||
buf := &bytes.Buffer{}
|
||||
l := test.NewLoggerWithOutputAndLevel(buf, slog.LevelDebug)
|
||||
l := test.NewLoggerWithOutputAndLevel(buf, logging.LevelTrace)
|
||||
|
||||
c := newFixedTicker(t, l, 3)
|
||||
c.Get()
|
||||
|
||||
assert.Equal(t, "level=DEBUG msg=\"resetting conntrack cache\" len=3\n", buf.String())
|
||||
assert.Equal(t, "level=DEBUG-4 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)
|
||||
l := test.NewJSONLoggerWithOutput(buf, logging.LevelTrace)
|
||||
|
||||
c := newFixedTicker(t, l, 2)
|
||||
c.Get()
|
||||
|
||||
assert.JSONEq(t, `{"level":"DEBUG","msg":"resetting conntrack cache","len":2}`, strings.TrimSpace(buf.String()))
|
||||
assert.JSONEq(t, `{"level":"DEBUG-4","msg":"resetting conntrack cache","len":2}`, strings.TrimSpace(buf.String()))
|
||||
}
|
||||
|
||||
func TestConntrackCacheTicker_Get_QuietBelowDebug(t *testing.T) {
|
||||
func TestConntrackCacheTicker_Get_QuietBelowTrace(t *testing.T) {
|
||||
buf := &bytes.Buffer{}
|
||||
l := test.NewLoggerWithOutputAndLevel(buf, slog.LevelInfo)
|
||||
l := test.NewLoggerWithOutputAndLevel(buf, slog.LevelDebug)
|
||||
|
||||
c := newFixedTicker(t, l, 5)
|
||||
c.Get()
|
||||
@@ -60,7 +61,7 @@ func TestConntrackCacheTicker_Get_QuietBelowDebug(t *testing.T) {
|
||||
|
||||
func TestConntrackCacheTicker_Get_QuietWhenCacheEmpty(t *testing.T) {
|
||||
buf := &bytes.Buffer{}
|
||||
l := test.NewLoggerWithOutputAndLevel(buf, slog.LevelDebug)
|
||||
l := test.NewLoggerWithOutputAndLevel(buf, logging.LevelTrace)
|
||||
|
||||
c := newFixedTicker(t, l, 0)
|
||||
c.Get()
|
||||
|
||||
@@ -19,6 +19,25 @@ const (
|
||||
PortFragment = -1 // Special value for matching `port: fragment`
|
||||
)
|
||||
|
||||
// PacketKey is the firewall's conntrack and ConntrackCache map key — the
|
||||
// dense form of the 5-tuple plus the protocol and fragment flag the
|
||||
// firewall actually discriminates flows on. Kept separate from Packet so
|
||||
// the conntrack-hit fast path doesn't pay for hashing the unique.Handle
|
||||
// each netip.Addr carries, and so the inbound parser can skip the
|
||||
// AddrFrom4/AddrFrom16 calls until rule matching actually needs them.
|
||||
//
|
||||
// Superset of the coalescer's flowKey shape (same 5-tuple, just in
|
||||
// Local/Remote orientation rather than wire src/dst).
|
||||
type PacketKey struct {
|
||||
LocalAddr [16]byte
|
||||
RemoteAddr [16]byte
|
||||
LocalPort uint16
|
||||
RemotePort uint16
|
||||
IsV6 bool
|
||||
Protocol uint8
|
||||
Fragment bool
|
||||
}
|
||||
|
||||
type Packet struct {
|
||||
LocalAddr netip.Addr
|
||||
RemoteAddr netip.Addr
|
||||
@@ -31,6 +50,61 @@ type Packet struct {
|
||||
Fragment bool
|
||||
}
|
||||
|
||||
// Key derives a PacketKey from a populated Packet. Used by the few code
|
||||
// paths that have a Packet but no Key in hand (e.g. tests). Both inbound
|
||||
// and outbound production parsers write straight into a PacketKey via
|
||||
// batch.ParsePacket, so this function is rarely on the hot path.
|
||||
func (fp *Packet) Key() PacketKey {
|
||||
k := PacketKey{
|
||||
Protocol: fp.Protocol,
|
||||
Fragment: fp.Fragment,
|
||||
}
|
||||
k.LocalPort = fp.LocalPort
|
||||
k.RemotePort = fp.RemotePort
|
||||
k.IsV6 = !fp.LocalAddr.Is4()
|
||||
if k.IsV6 {
|
||||
k.LocalAddr = fp.LocalAddr.As16()
|
||||
k.RemoteAddr = fp.RemoteAddr.As16()
|
||||
} else {
|
||||
v4 := fp.LocalAddr.As4()
|
||||
copy(k.LocalAddr[:4], v4[:])
|
||||
v4 = fp.RemoteAddr.As4()
|
||||
copy(k.RemoteAddr[:4], v4[:])
|
||||
}
|
||||
return k
|
||||
}
|
||||
|
||||
// Hydrate fills fp's netip.Addr fields and copies the rest from k. Called
|
||||
// by the firewall slow path when conntrack misses and rule matching needs
|
||||
// the rich Packet form (CIDR lookups, family checks). The fast path skips
|
||||
// this entirely.
|
||||
func (k *PacketKey) Hydrate(fp *Packet) {
|
||||
fp.LocalPort = k.LocalPort
|
||||
fp.RemotePort = k.RemotePort
|
||||
fp.Protocol = k.Protocol
|
||||
fp.Fragment = k.Fragment
|
||||
if k.IsV6 {
|
||||
fp.LocalAddr = netip.AddrFrom16(k.LocalAddr)
|
||||
fp.RemoteAddr = netip.AddrFrom16(k.RemoteAddr)
|
||||
} else {
|
||||
var v4 [4]byte
|
||||
copy(v4[:], k.LocalAddr[:4])
|
||||
fp.LocalAddr = netip.AddrFrom4(v4)
|
||||
copy(v4[:], k.RemoteAddr[:4])
|
||||
fp.RemoteAddr = netip.AddrFrom4(v4)
|
||||
}
|
||||
}
|
||||
|
||||
func (k *PacketKey) GetRemoteAddr() netip.Addr {
|
||||
if k.IsV6 {
|
||||
return netip.AddrFrom16(k.RemoteAddr)
|
||||
} else {
|
||||
var v4 [4]byte
|
||||
copy(v4[:], k.RemoteAddr[:4])
|
||||
return netip.AddrFrom4(v4)
|
||||
}
|
||||
}
|
||||
|
||||
func (fp *Packet) Copy() *Packet {
|
||||
return &Packet{
|
||||
LocalAddr: fp.LocalAddr,
|
||||
|
||||
+53
-53
@@ -211,44 +211,44 @@ 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.Key(), &p, false, &h, cp, nil))
|
||||
// Allow inbound
|
||||
resetConntrack(fw)
|
||||
require.NoError(t, fw.Drop(p, true, &h, cp, nil))
|
||||
require.NoError(t, fw.Drop(p.Key(), &p, true, &h, cp, nil))
|
||||
// Allow outbound because conntrack
|
||||
require.NoError(t, fw.Drop(p, false, &h, cp, nil))
|
||||
require.NoError(t, fw.Drop(p.Key(), &p, false, &h, cp, nil))
|
||||
|
||||
// test remote mismatch
|
||||
oldRemote := p.RemoteAddr
|
||||
p.RemoteAddr = netip.MustParseAddr("1.2.3.10")
|
||||
assert.Equal(t, fw.Drop(p, false, &h, cp, nil), ErrInvalidRemoteIP)
|
||||
assert.Equal(t, fw.Drop(p.Key(), &p, false, &h, cp, nil), ErrInvalidRemoteIP)
|
||||
p.RemoteAddr = oldRemote
|
||||
|
||||
// ensure signer doesn't get in the way of group checks
|
||||
fw = NewFirewall(l, time.Second, time.Minute, time.Hour, &c)
|
||||
require.NoError(t, fw.AddRule(true, firewall.ProtoAny, 0, 0, []string{"nope"}, "", "", "", "", "signer-shasum"))
|
||||
require.NoError(t, fw.AddRule(true, firewall.ProtoAny, 0, 0, []string{"default-group"}, "", "", "", "", "signer-shasum-bad"))
|
||||
assert.Equal(t, fw.Drop(p, true, &h, cp, nil), ErrNoMatchingRule)
|
||||
assert.Equal(t, fw.Drop(p.Key(), &p, true, &h, cp, nil), ErrNoMatchingRule)
|
||||
|
||||
// test caSha doesn't drop on match
|
||||
fw = NewFirewall(l, time.Second, time.Minute, time.Hour, &c)
|
||||
require.NoError(t, fw.AddRule(true, firewall.ProtoAny, 0, 0, []string{"nope"}, "", "", "", "", "signer-shasum-bad"))
|
||||
require.NoError(t, fw.AddRule(true, firewall.ProtoAny, 0, 0, []string{"default-group"}, "", "", "", "", "signer-shasum"))
|
||||
require.NoError(t, fw.Drop(p, true, &h, cp, nil))
|
||||
require.NoError(t, fw.Drop(p.Key(), &p, true, &h, cp, nil))
|
||||
|
||||
// ensure ca name doesn't get in the way of group checks
|
||||
cp.CAs["signer-shasum"] = &cert.CachedCertificate{Certificate: &dummyCert{name: "ca-good"}}
|
||||
fw = NewFirewall(l, time.Second, time.Minute, time.Hour, &c)
|
||||
require.NoError(t, fw.AddRule(true, firewall.ProtoAny, 0, 0, []string{"nope"}, "", "", "", "ca-good", ""))
|
||||
require.NoError(t, fw.AddRule(true, firewall.ProtoAny, 0, 0, []string{"default-group"}, "", "", "", "ca-good-bad", ""))
|
||||
assert.Equal(t, fw.Drop(p, true, &h, cp, nil), ErrNoMatchingRule)
|
||||
assert.Equal(t, fw.Drop(p.Key(), &p, true, &h, cp, nil), ErrNoMatchingRule)
|
||||
|
||||
// test caName doesn't drop on match
|
||||
cp.CAs["signer-shasum"] = &cert.CachedCertificate{Certificate: &dummyCert{name: "ca-good"}}
|
||||
fw = NewFirewall(l, time.Second, time.Minute, time.Hour, &c)
|
||||
require.NoError(t, fw.AddRule(true, firewall.ProtoAny, 0, 0, []string{"nope"}, "", "", "", "ca-good-bad", ""))
|
||||
require.NoError(t, fw.AddRule(true, firewall.ProtoAny, 0, 0, []string{"default-group"}, "", "", "", "ca-good", ""))
|
||||
require.NoError(t, fw.Drop(p, true, &h, cp, nil))
|
||||
require.NoError(t, fw.Drop(p.Key(), &p, true, &h, cp, nil))
|
||||
}
|
||||
|
||||
func TestFirewall_DropV6(t *testing.T) {
|
||||
@@ -289,44 +289,44 @@ func TestFirewall_DropV6(t *testing.T) {
|
||||
cp := cert.NewCAPool()
|
||||
|
||||
// Drop outbound
|
||||
assert.Equal(t, ErrNoMatchingRule, fw.Drop(p, false, &h, cp, nil))
|
||||
assert.Equal(t, ErrNoMatchingRule, fw.Drop(p.Key(), &p, false, &h, cp, nil))
|
||||
// Allow inbound
|
||||
resetConntrack(fw)
|
||||
require.NoError(t, fw.Drop(p, true, &h, cp, nil))
|
||||
require.NoError(t, fw.Drop(p.Key(), &p, true, &h, cp, nil))
|
||||
// Allow outbound because conntrack
|
||||
require.NoError(t, fw.Drop(p, false, &h, cp, nil))
|
||||
require.NoError(t, fw.Drop(p.Key(), &p, 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.Key(), &p, false, &h, cp, nil), ErrInvalidRemoteIP)
|
||||
p.RemoteAddr = oldRemote
|
||||
|
||||
// ensure signer doesn't get in the way of group checks
|
||||
fw = NewFirewall(l, time.Second, time.Minute, time.Hour, &c)
|
||||
require.NoError(t, fw.AddRule(true, firewall.ProtoAny, 0, 0, []string{"nope"}, "", "", "", "", "signer-shasum"))
|
||||
require.NoError(t, fw.AddRule(true, firewall.ProtoAny, 0, 0, []string{"default-group"}, "", "", "", "", "signer-shasum-bad"))
|
||||
assert.Equal(t, fw.Drop(p, true, &h, cp, nil), ErrNoMatchingRule)
|
||||
assert.Equal(t, fw.Drop(p.Key(), &p, true, &h, cp, nil), ErrNoMatchingRule)
|
||||
|
||||
// test caSha doesn't drop on match
|
||||
fw = NewFirewall(l, time.Second, time.Minute, time.Hour, &c)
|
||||
require.NoError(t, fw.AddRule(true, firewall.ProtoAny, 0, 0, []string{"nope"}, "", "", "", "", "signer-shasum-bad"))
|
||||
require.NoError(t, fw.AddRule(true, firewall.ProtoAny, 0, 0, []string{"default-group"}, "", "", "", "", "signer-shasum"))
|
||||
require.NoError(t, fw.Drop(p, true, &h, cp, nil))
|
||||
require.NoError(t, fw.Drop(p.Key(), &p, true, &h, cp, nil))
|
||||
|
||||
// ensure ca name doesn't get in the way of group checks
|
||||
cp.CAs["signer-shasum"] = &cert.CachedCertificate{Certificate: &dummyCert{name: "ca-good"}}
|
||||
fw = NewFirewall(l, time.Second, time.Minute, time.Hour, &c)
|
||||
require.NoError(t, fw.AddRule(true, firewall.ProtoAny, 0, 0, []string{"nope"}, "", "", "", "ca-good", ""))
|
||||
require.NoError(t, fw.AddRule(true, firewall.ProtoAny, 0, 0, []string{"default-group"}, "", "", "", "ca-good-bad", ""))
|
||||
assert.Equal(t, fw.Drop(p, true, &h, cp, nil), ErrNoMatchingRule)
|
||||
assert.Equal(t, fw.Drop(p.Key(), &p, true, &h, cp, nil), ErrNoMatchingRule)
|
||||
|
||||
// test caName doesn't drop on match
|
||||
cp.CAs["signer-shasum"] = &cert.CachedCertificate{Certificate: &dummyCert{name: "ca-good"}}
|
||||
fw = NewFirewall(l, time.Second, time.Minute, time.Hour, &c)
|
||||
require.NoError(t, fw.AddRule(true, firewall.ProtoAny, 0, 0, []string{"nope"}, "", "", "", "ca-good-bad", ""))
|
||||
require.NoError(t, fw.AddRule(true, firewall.ProtoAny, 0, 0, []string{"default-group"}, "", "", "", "ca-good", ""))
|
||||
require.NoError(t, fw.Drop(p, true, &h, cp, nil))
|
||||
require.NoError(t, fw.Drop(p.Key(), &p, true, &h, cp, nil))
|
||||
}
|
||||
|
||||
func BenchmarkFirewallTable_match(b *testing.B) {
|
||||
@@ -533,10 +533,10 @@ func TestFirewall_Drop2(t *testing.T) {
|
||||
cp := cert.NewCAPool()
|
||||
|
||||
// h1/c1 lacks the proper groups
|
||||
require.ErrorIs(t, fw.Drop(p, true, &h1, cp, nil), ErrNoMatchingRule)
|
||||
require.ErrorIs(t, fw.Drop(p.Key(), &p, 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.Key(), &p, true, &h, cp, nil))
|
||||
}
|
||||
|
||||
func TestFirewall_Drop3(t *testing.T) {
|
||||
@@ -613,18 +613,18 @@ func TestFirewall_Drop3(t *testing.T) {
|
||||
cp := cert.NewCAPool()
|
||||
|
||||
// c1 should pass because host match
|
||||
require.NoError(t, fw.Drop(p, true, &h1, cp, nil))
|
||||
require.NoError(t, fw.Drop(p.Key(), &p, 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.Key(), &p, 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.Key(), &p, true, &h3, cp, nil), ErrNoMatchingRule)
|
||||
|
||||
// Test a remote address match
|
||||
fw = NewFirewall(l, time.Second, time.Minute, time.Hour, c.Certificate)
|
||||
require.NoError(t, fw.AddRule(true, firewall.ProtoAny, 1, 1, []string{}, "", "1.2.3.4/24", "", "", ""))
|
||||
require.NoError(t, fw.Drop(p, true, &h1, cp, nil))
|
||||
require.NoError(t, fw.Drop(p.Key(), &p, true, &h1, cp, nil))
|
||||
}
|
||||
|
||||
func TestFirewall_Drop3V6(t *testing.T) {
|
||||
@@ -661,7 +661,7 @@ func TestFirewall_Drop3V6(t *testing.T) {
|
||||
fw := NewFirewall(l, time.Second, time.Minute, time.Hour, c.Certificate)
|
||||
cp := cert.NewCAPool()
|
||||
require.NoError(t, fw.AddRule(true, firewall.ProtoAny, 1, 1, []string{}, "", "fd12::34/120", "", "", ""))
|
||||
require.NoError(t, fw.Drop(p, true, &h, cp, nil))
|
||||
require.NoError(t, fw.Drop(p.Key(), &p, true, &h, cp, nil))
|
||||
}
|
||||
|
||||
func TestFirewall_DropConntrackReload(t *testing.T) {
|
||||
@@ -702,12 +702,12 @@ func TestFirewall_DropConntrackReload(t *testing.T) {
|
||||
cp := cert.NewCAPool()
|
||||
|
||||
// Drop outbound
|
||||
assert.Equal(t, fw.Drop(p, false, &h, cp, nil), ErrNoMatchingRule)
|
||||
assert.Equal(t, fw.Drop(p.Key(), &p, 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.Key(), &p, true, &h, cp, nil))
|
||||
// Allow outbound because conntrack
|
||||
require.NoError(t, fw.Drop(p, false, &h, cp, nil))
|
||||
require.NoError(t, fw.Drop(p.Key(), &p, false, &h, cp, nil))
|
||||
|
||||
oldFw := fw
|
||||
fw = NewFirewall(l, time.Second, time.Minute, time.Hour, c.Certificate)
|
||||
@@ -716,7 +716,7 @@ func TestFirewall_DropConntrackReload(t *testing.T) {
|
||||
fw.rulesVersion = oldFw.rulesVersion + 1
|
||||
|
||||
// Allow outbound because conntrack and new rules allow port 10
|
||||
require.NoError(t, fw.Drop(p, false, &h, cp, nil))
|
||||
require.NoError(t, fw.Drop(p.Key(), &p, false, &h, cp, nil))
|
||||
|
||||
oldFw = fw
|
||||
fw = NewFirewall(l, time.Second, time.Minute, time.Hour, c.Certificate)
|
||||
@@ -725,7 +725,7 @@ func TestFirewall_DropConntrackReload(t *testing.T) {
|
||||
fw.rulesVersion = oldFw.rulesVersion + 1
|
||||
|
||||
// Drop outbound because conntrack doesn't match new ruleset
|
||||
assert.Equal(t, fw.Drop(p, false, &h, cp, nil), ErrNoMatchingRule)
|
||||
assert.Equal(t, fw.Drop(p.Key(), &p, false, &h, cp, nil), ErrNoMatchingRule)
|
||||
}
|
||||
|
||||
func TestFirewall_ICMPPortBehavior(t *testing.T) {
|
||||
@@ -770,12 +770,12 @@ func TestFirewall_ICMPPortBehavior(t *testing.T) {
|
||||
p.LocalPort = 0
|
||||
p.RemotePort = 0
|
||||
// Drop outbound
|
||||
assert.Equal(t, fw.Drop(*p, false, &h, cp, nil), ErrNoMatchingRule)
|
||||
assert.Equal(t, fw.Drop(p.Key(), p, 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.Key(), p, true, &h, cp, nil))
|
||||
//now also allow outbound
|
||||
require.NoError(t, fw.Drop(*p, false, &h, cp, nil))
|
||||
require.NoError(t, fw.Drop(p.Key(), p, false, &h, cp, nil))
|
||||
})
|
||||
|
||||
t.Run("nonzero ports", func(t *testing.T) {
|
||||
@@ -783,12 +783,12 @@ func TestFirewall_ICMPPortBehavior(t *testing.T) {
|
||||
p.LocalPort = 0xabcd
|
||||
p.RemotePort = 0x1234
|
||||
// Drop outbound
|
||||
assert.Equal(t, fw.Drop(*p, false, &h, cp, nil), ErrNoMatchingRule)
|
||||
assert.Equal(t, fw.Drop(p.Key(), p, 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.Key(), p, true, &h, cp, nil))
|
||||
//now also allow outbound
|
||||
require.NoError(t, fw.Drop(*p, false, &h, cp, nil))
|
||||
require.NoError(t, fw.Drop(p.Key(), p, false, &h, cp, nil))
|
||||
})
|
||||
})
|
||||
|
||||
@@ -800,12 +800,12 @@ func TestFirewall_ICMPPortBehavior(t *testing.T) {
|
||||
p.LocalPort = 0
|
||||
p.RemotePort = 0
|
||||
// Drop outbound
|
||||
assert.Equal(t, fw.Drop(*p, false, &h, cp, nil), ErrNoMatchingRule)
|
||||
assert.Equal(t, fw.Drop(p.Key(), p, 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.Key(), p, 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.Key(), p, false, &h, cp, nil), ErrNoMatchingRule)
|
||||
})
|
||||
|
||||
t.Run("nonzero ports, still blocked", func(t *testing.T) {
|
||||
@@ -813,12 +813,12 @@ func TestFirewall_ICMPPortBehavior(t *testing.T) {
|
||||
p.LocalPort = 0xabcd
|
||||
p.RemotePort = 0x1234
|
||||
// Drop outbound
|
||||
assert.Equal(t, fw.Drop(*p, false, &h, cp, nil), ErrNoMatchingRule)
|
||||
assert.Equal(t, fw.Drop(p.Key(), p, 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.Key(), p, 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.Key(), p, false, &h, cp, nil), ErrNoMatchingRule)
|
||||
})
|
||||
|
||||
t.Run("nonzero, matching ports, still blocked", func(t *testing.T) {
|
||||
@@ -826,12 +826,12 @@ func TestFirewall_ICMPPortBehavior(t *testing.T) {
|
||||
p.LocalPort = 80
|
||||
p.RemotePort = 80
|
||||
// Drop outbound
|
||||
assert.Equal(t, fw.Drop(*p, false, &h, cp, nil), ErrNoMatchingRule)
|
||||
assert.Equal(t, fw.Drop(p.Key(), p, 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.Key(), p, 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.Key(), p, false, &h, cp, nil), ErrNoMatchingRule)
|
||||
})
|
||||
})
|
||||
t.Run("Any proto, any port", func(t *testing.T) {
|
||||
@@ -843,12 +843,12 @@ func TestFirewall_ICMPPortBehavior(t *testing.T) {
|
||||
p.LocalPort = 0
|
||||
p.RemotePort = 0
|
||||
// Drop outbound
|
||||
assert.Equal(t, fw.Drop(*p, false, &h, cp, nil), ErrNoMatchingRule)
|
||||
assert.Equal(t, fw.Drop(p.Key(), p, 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.Key(), p, true, &h, cp, nil))
|
||||
//now also allow outbound
|
||||
require.NoError(t, fw.Drop(*p, false, &h, cp, nil))
|
||||
require.NoError(t, fw.Drop(p.Key(), p, false, &h, cp, nil))
|
||||
})
|
||||
|
||||
t.Run("nonzero ports, allowed", func(t *testing.T) {
|
||||
@@ -857,15 +857,15 @@ func TestFirewall_ICMPPortBehavior(t *testing.T) {
|
||||
p.LocalPort = 0xabcd
|
||||
p.RemotePort = 0x1234
|
||||
// Drop outbound
|
||||
assert.Equal(t, fw.Drop(*p, false, &h, cp, nil), ErrNoMatchingRule)
|
||||
assert.Equal(t, fw.Drop(p.Key(), p, 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.Key(), p, true, &h, cp, nil))
|
||||
//now also allow outbound
|
||||
require.NoError(t, fw.Drop(*p, false, &h, cp, nil))
|
||||
require.NoError(t, fw.Drop(p.Key(), p, 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.Key(), p, false, &h, cp, nil), ErrNoMatchingRule)
|
||||
})
|
||||
})
|
||||
|
||||
@@ -913,7 +913,7 @@ 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.Key(), &p, true, &h1, cp, nil), ErrInvalidRemoteIP)
|
||||
}
|
||||
|
||||
func BenchmarkLookup(b *testing.B) {
|
||||
@@ -1327,7 +1327,7 @@ 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.Key(), &c.p, true, c.h, cp, nil)
|
||||
if c.err == nil {
|
||||
require.NoError(t, err, "failed to not drop remote address %s", c.p.RemoteAddr)
|
||||
} else {
|
||||
@@ -1519,6 +1519,6 @@ func (mf *mockFirewall) AddRule(incoming bool, proto uint8, startPort int32, end
|
||||
|
||||
func resetConntrack(fw *Firewall) {
|
||||
fw.Conntrack.Lock()
|
||||
fw.Conntrack.Conns = map[firewall.Packet]*conn{}
|
||||
fw.Conntrack.Conns = map[firewall.PacketKey]*conn{}
|
||||
fw.Conntrack.Unlock()
|
||||
}
|
||||
|
||||
@@ -43,6 +43,7 @@ require (
|
||||
github.com/cespare/xxhash/v2 v2.3.0 // indirect
|
||||
github.com/davecgh/go-spew v1.1.1 // indirect
|
||||
github.com/google/btree v1.1.2 // indirect
|
||||
github.com/guptarohit/asciigraph v0.9.0 // indirect
|
||||
github.com/munnerz/goautoneg v0.0.0-20191010083416-a7dc8b61c822 // indirect
|
||||
github.com/pmezard/go-difflib v1.0.0 // indirect
|
||||
github.com/prometheus/client_model v0.6.2 // indirect
|
||||
|
||||
@@ -60,6 +60,8 @@ github.com/google/go-cmp v0.7.0/go.mod h1:pXiqmnSA92OHEEa9HXL2W4E7lf9JzCmGVUdgjX
|
||||
github.com/google/gofuzz v1.0.0/go.mod h1:dBl0BpW6vV/+mYPU4Po3pmUjxk6FQPldtuIdl/M65Eg=
|
||||
github.com/google/gopacket v1.1.19 h1:ves8RnFZPGiFnTS0uPQStjwru6uO6h+nlr9j6fL7kF8=
|
||||
github.com/google/gopacket v1.1.19/go.mod h1:iJ8V8n6KS+z2U1A8pUwu8bW5SyEMkXJB8Yo/Vo+TKTo=
|
||||
github.com/guptarohit/asciigraph v0.9.0 h1:MvCSRRVkT2XvU1IO6n92o7l7zqx1DiFaoszOUZQztbY=
|
||||
github.com/guptarohit/asciigraph v0.9.0/go.mod h1:dYl5wwK4gNsnFf9Zp+l06rFiDZ5YtXM6x7SRWZ3KGag=
|
||||
github.com/jpillora/backoff v1.0.0/go.mod h1:J/6gKK9jxlEcS3zixgDgUAsiuZ7yrSoa/FX5e0EB2j4=
|
||||
github.com/json-iterator/go v1.1.6/go.mod h1:+SdeFBvtyEkXs7REEP0seUULqWtbJapLOCVDaaPEHmU=
|
||||
github.com/json-iterator/go v1.1.10/go.mod h1:KdQUCv79m/52Kvf8AW2vK1V8akMuk1QjK/uOdHXbAo4=
|
||||
|
||||
@@ -974,6 +974,7 @@ func (hm *HandshakeManager) continueHandshake(via ViaSender, hh *HandshakeHostIn
|
||||
nb := make([]byte, 12, 12)
|
||||
out := make([]byte, mtu)
|
||||
for _, cp := range hh.packetStore {
|
||||
//todo use a sendbatcher
|
||||
cp.callback(cp.messageType, cp.messageSubType, hostinfo, cp.packet, nb, out)
|
||||
}
|
||||
f.cachedPacketMetrics.sent.Inc(int64(len(hh.packetStore)))
|
||||
|
||||
@@ -2,6 +2,7 @@ package nebula
|
||||
|
||||
import (
|
||||
"context"
|
||||
"io"
|
||||
"log/slog"
|
||||
"net/netip"
|
||||
|
||||
@@ -9,12 +10,26 @@ import (
|
||||
"github.com/slackhq/nebula/header"
|
||||
"github.com/slackhq/nebula/iputil"
|
||||
"github.com/slackhq/nebula/noiseutil"
|
||||
"github.com/slackhq/nebula/overlay/batch"
|
||||
"github.com/slackhq/nebula/overlay/tio"
|
||||
"github.com/slackhq/nebula/routing"
|
||||
)
|
||||
|
||||
func (f *Interface) consumeInsidePacket(packet []byte, fwPacket *firewall.Packet, nb, out []byte, q int, localCache firewall.ConntrackCache) {
|
||||
err := newPacket(packet, false, fwPacket)
|
||||
if err != nil {
|
||||
func (f *Interface) consumeInsidePacket(pkt tio.Packet, fwPacket *firewall.Packet, nb []byte, sendBatch batch.TxBatcher, rejectBuf []byte, q int, localCache firewall.ConntrackCache) {
|
||||
// borrowed: pkt.Bytes is owned by the originating tio.Queue and is
|
||||
// only valid until the next Read on that queue. Every consumer below
|
||||
// (parse, self-forward, handshake cache, sendInsideMessage) reads it
|
||||
// synchronously; do not retain pkt outside this call. If a future
|
||||
// caller needs to keep the packet, use pkt.Clone() to detach it from
|
||||
// the borrow.
|
||||
//
|
||||
// pkt.Bytes is either one IP datagram (GSO zero) or a TSO/USO
|
||||
// superpacket. In both cases the L3+L4 headers at the start describe
|
||||
// the same 5-tuple every segment will share, so a single parse +
|
||||
// firewall check covers the whole superpacket.
|
||||
packet := pkt.Bytes
|
||||
var parsed batch.RxParsed
|
||||
if err := batch.ParsePacket(packet, false, &parsed); err != nil {
|
||||
if f.l.Enabled(context.Background(), slog.LevelDebug) {
|
||||
f.l.Debug("Error while validating outbound packet",
|
||||
"packet", packet,
|
||||
@@ -24,6 +39,8 @@ func (f *Interface) consumeInsidePacket(packet []byte, fwPacket *firewall.Packet
|
||||
return
|
||||
}
|
||||
|
||||
parsed.Key.Hydrate(fwPacket)
|
||||
|
||||
// Ignore local broadcast packets
|
||||
if f.dropLocalBroadcast {
|
||||
if f.myBroadcastAddrsTable.Contains(fwPacket.RemoteAddr) {
|
||||
@@ -37,7 +54,14 @@ func (f *Interface) consumeInsidePacket(packet []byte, fwPacket *firewall.Packet
|
||||
// routes packets from the Nebula addr to the Nebula addr through the Nebula
|
||||
// TUN device.
|
||||
if immediatelyForwardToSelf {
|
||||
_, err := f.readers[q].Write(packet)
|
||||
// Write copies into the kernel queue synchronously, so seg's lifetime ends at return.
|
||||
// A self-forwarded superpacket would be re-handed to the
|
||||
// kernel as one giant blob; segment first so the loopback
|
||||
// path sees one IP datagram per Write.
|
||||
err := tio.SegmentSuperpacket(pkt, func(seg []byte) error {
|
||||
_, werr := f.readers[q].Write(seg)
|
||||
return werr
|
||||
})
|
||||
if err != nil {
|
||||
f.l.Error("Failed to forward to tun", "error", err)
|
||||
}
|
||||
@@ -53,11 +77,23 @@ func (f *Interface) consumeInsidePacket(packet []byte, fwPacket *firewall.Packet
|
||||
}
|
||||
|
||||
hostinfo, ready := f.getOrHandshakeConsiderRouting(fwPacket, func(hh *HandshakeHostInfo) {
|
||||
hh.cachePacket(f.l, header.Message, 0, packet, f.sendMessageNow, f.cachedPacketMetrics)
|
||||
// borrowed: SegmentSuperpacket builds each segment in the kernel-supplied pkt
|
||||
// bytes underneath. cachePacket explicitly copies its argument (handshake_manager.go cachePacket),
|
||||
// so retaining segments past the loop is safe.
|
||||
err := tio.SegmentSuperpacket(pkt, func(seg []byte) error {
|
||||
hh.cachePacket(f.l, header.Message, 0, seg, f.sendMessageNow, f.cachedPacketMetrics)
|
||||
return nil
|
||||
})
|
||||
if err != nil && f.l.Enabled(context.Background(), slog.LevelDebug) {
|
||||
f.l.Debug("Failed to segment superpacket for handshake cache",
|
||||
"error", err,
|
||||
"vpnAddr", fwPacket.RemoteAddr,
|
||||
)
|
||||
}
|
||||
})
|
||||
|
||||
if hostinfo == nil {
|
||||
f.rejectInside(packet, out, q)
|
||||
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,
|
||||
@@ -71,12 +107,11 @@ func (f *Interface) consumeInsidePacket(packet []byte, fwPacket *firewall.Packet
|
||||
return
|
||||
}
|
||||
|
||||
dropReason := f.firewall.Drop(*fwPacket, false, hostinfo, f.pki.GetCAPool(), localCache)
|
||||
dropReason := f.firewall.Drop(parsed.Key, fwPacket, false, hostinfo, f.pki.GetCAPool(), localCache)
|
||||
if dropReason == nil {
|
||||
f.sendNoMetrics(header.Message, 0, hostinfo.ConnectionState, hostinfo, netip.AddrPort{}, packet, nb, out, q)
|
||||
|
||||
f.sendInsideMessage(hostinfo, pkt, nb, sendBatch, rejectBuf, q)
|
||||
} else {
|
||||
f.rejectInside(packet, out, q)
|
||||
f.rejectInside(packet, rejectBuf, q)
|
||||
if f.l.Enabled(context.Background(), slog.LevelDebug) {
|
||||
hostinfo.logger(f.l).Debug("dropping outbound packet",
|
||||
"fwPacket", fwPacket,
|
||||
@@ -86,6 +121,149 @@ func (f *Interface) consumeInsidePacket(packet []byte, fwPacket *firewall.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: SegmentSuperpacket builds each segment's plaintext in
|
||||
// segScratch[:segLen] in turn, and we encrypt directly into a fresh
|
||||
// SendBatch slot.
|
||||
func (f *Interface) sendInsideMessage(hostinfo *HostInfo, pkt tio.Packet, nb []byte, sendBatch batch.TxBatcher, rejectBuf []byte, q int) {
|
||||
ci := hostinfo.ConnectionState
|
||||
if ci.eKey == nil {
|
||||
return
|
||||
}
|
||||
|
||||
ecnEnabled := f.ecnEnabled.Load()
|
||||
if hostinfo.lastRebindCount != f.rebindCount {
|
||||
//NOTE: there is an update hole if a tunnel isn't used and exactly 256 rebinds occur before the tunnel is
|
||||
// finally used again. This tunnel would eventually be torn down and recreated if this action didn't help.
|
||||
f.lightHouse.QueryServer(hostinfo.vpnAddrs[0])
|
||||
hostinfo.lastRebindCount = f.rebindCount
|
||||
if f.l.Enabled(context.Background(), slog.LevelDebug) {
|
||||
hostinfo.logger(f.l).Debug("Lighthouse update triggered for punch due to rebind counter",
|
||||
"vpnAddrs", hostinfo.vpnAddrs,
|
||||
)
|
||||
}
|
||||
}
|
||||
|
||||
if !hostinfo.remote.IsValid() { //the relay path
|
||||
//first, find our relay hostinfo:
|
||||
var relayHostInfo *HostInfo
|
||||
var relay *Relay
|
||||
var err error
|
||||
for _, relayIP := range hostinfo.relayState.CopyRelayIps() {
|
||||
relayHostInfo, relay, err = f.hostMap.QueryVpnAddrsRelayFor(hostinfo.vpnAddrs, relayIP)
|
||||
if err != nil {
|
||||
hostinfo.relayState.DeleteRelay(relayIP)
|
||||
hostinfo.logger(f.l).Info("sendNoMetrics failed to find HostInfo",
|
||||
"relay", relayIP,
|
||||
"error", err,
|
||||
)
|
||||
continue
|
||||
}
|
||||
break
|
||||
}
|
||||
if relayHostInfo == nil || relay == nil {
|
||||
//failure already logged
|
||||
return
|
||||
}
|
||||
|
||||
err = tio.SegmentSuperpacket(pkt, func(seg []byte) error {
|
||||
//relay header + header + plaintext + AEAD tag (16 bytes for both AES-GCM and ChaCha20-Poly1305) + relay tag
|
||||
scratch := sendBatch.Reserve(header.Len + header.Len + len(seg) + 16 + 16)
|
||||
|
||||
innerPacket := f.sendInsideEncrypt(hostinfo, ci, seg, scratch[header.Len:], nb)
|
||||
if innerPacket == nil {
|
||||
return nil
|
||||
}
|
||||
|
||||
//now we need to do a relay-encrypt:
|
||||
toSend, err := f.prepareSendVia(relayHostInfo, relay, innerPacket, nb, scratch, true)
|
||||
if err != nil {
|
||||
//already logged
|
||||
return nil
|
||||
}
|
||||
|
||||
var ecn byte
|
||||
if ecnEnabled {
|
||||
ecn = innerECN(seg)
|
||||
}
|
||||
sendBatch.Commit(toSend, relayHostInfo.remote, ecn)
|
||||
return nil
|
||||
})
|
||||
if err != nil {
|
||||
hostinfo.logger(f.l).Error("Failed to segment superpacket for relay send", "error", err)
|
||||
}
|
||||
return
|
||||
}
|
||||
|
||||
err := tio.SegmentSuperpacket(pkt, func(seg []byte) error {
|
||||
// header + plaintext + AEAD tag (16 bytes for both AES-GCM and ChaCha20-Poly1305)
|
||||
scratch := sendBatch.Reserve(header.Len + len(seg) + 16)
|
||||
|
||||
out := f.sendInsideEncrypt(hostinfo, ci, seg, scratch, nb)
|
||||
if out == nil {
|
||||
return nil
|
||||
}
|
||||
|
||||
var ecn byte
|
||||
if ecnEnabled {
|
||||
ecn = innerECN(seg)
|
||||
}
|
||||
sendBatch.Commit(out, hostinfo.remote, ecn)
|
||||
return nil
|
||||
})
|
||||
if err != nil {
|
||||
hostinfo.logger(f.l).Error("Failed to segment superpacket for send",
|
||||
"error", err,
|
||||
)
|
||||
}
|
||||
}
|
||||
|
||||
// innerECN returns the 2-bit IP-level ECN codepoint of an inner IPv4 or IPv6
|
||||
// packet, or 0 if pkt is too short or its IP version is unrecognized. Used at
|
||||
// encap to copy the inner codepoint onto the outer carrier per RFC 6040.
|
||||
func innerECN(pkt []byte) byte {
|
||||
if len(pkt) < 2 {
|
||||
return 0
|
||||
}
|
||||
switch pkt[0] >> 4 {
|
||||
case 4:
|
||||
return pkt[1] & 0x03
|
||||
case 6:
|
||||
return (pkt[1] >> 4) & 0x03
|
||||
}
|
||||
return 0
|
||||
}
|
||||
|
||||
func (f *Interface) rejectInside(packet []byte, out []byte, q int) {
|
||||
if !f.firewall.InSendReject {
|
||||
return
|
||||
@@ -216,15 +394,16 @@ 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)
|
||||
if err != nil {
|
||||
var parsed batch.RxParsed
|
||||
if err := batch.ParsePacket(p, false, &parsed); err != nil {
|
||||
f.l.Warn("error while parsing outgoing packet for firewall check", "error", err)
|
||||
return
|
||||
}
|
||||
fp := &firewall.Packet{}
|
||||
parsed.Key.Hydrate(fp)
|
||||
|
||||
// check if packet is in outbound fw rules
|
||||
dropReason := f.firewall.Drop(*fp, false, hostinfo, f.pki.GetCAPool(), nil)
|
||||
dropReason := f.firewall.Drop(parsed.Key, fp, false, hostinfo, f.pki.GetCAPool(), nil)
|
||||
if dropReason != nil {
|
||||
if f.l.Enabled(context.Background(), slog.LevelDebug) {
|
||||
f.l.Debug("dropping cached packet",
|
||||
@@ -275,21 +454,13 @@ func (f *Interface) sendTo(t header.MessageType, st header.MessageSubType, ci *C
|
||||
f.sendNoMetrics(t, st, ci, hostinfo, remote, p, nb, out, 0)
|
||||
}
|
||||
|
||||
// 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,
|
||||
func (f *Interface) prepareSendVia(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()
|
||||
@@ -311,7 +482,7 @@ func (f *Interface) SendVia(via *HostInfo,
|
||||
"headerLen", len(out),
|
||||
"cipherOverhead", via.ConnectionState.eKey.Overhead(),
|
||||
)
|
||||
return
|
||||
return nil, io.ErrShortBuffer
|
||||
}
|
||||
|
||||
// The header bytes are written to the 'out' slice; Grow the slice to hold the header and associated data payload.
|
||||
@@ -331,13 +502,32 @@ func (f *Interface) SendVia(via *HostInfo,
|
||||
}
|
||||
if err != nil {
|
||||
via.logger(f.l).Info("Failed to EncryptDanger in sendVia", "error", err)
|
||||
return
|
||||
return nil, err
|
||||
}
|
||||
err = f.writers[0].WriteTo(out, via.remote)
|
||||
f.connectionManager.RelayUsed(relay.LocalIndex)
|
||||
return out, nil
|
||||
}
|
||||
|
||||
// SendVia sends a payload through a Relay tunnel. No authentication or encryption is done
|
||||
// to the payload for the ultimate target host, making this a useful method for sending
|
||||
// handshake messages to peers through relay tunnels.
|
||||
// via is the HostInfo through which the message is relayed.
|
||||
// ad is the plaintext data to authenticate, but not encrypt
|
||||
// nb is a buffer used to store the nonce value, re-used for performance reasons.
|
||||
// out is a buffer used to store the result of the Encrypt operation
|
||||
// q indicates which writer to use to send the packet.
|
||||
func (f *Interface) SendVia(via *HostInfo,
|
||||
relay *Relay,
|
||||
ad,
|
||||
nb,
|
||||
out []byte,
|
||||
nocopy bool,
|
||||
) {
|
||||
toSend, err := f.prepareSendVia(via, relay, ad, nb, out, nocopy)
|
||||
err = f.writers[0].WriteTo(toSend, via.remote)
|
||||
if err != nil {
|
||||
via.logger(f.l).Info("Failed to WriteTo in sendVia", "error", err)
|
||||
}
|
||||
f.connectionManager.RelayUsed(relay.LocalIndex)
|
||||
}
|
||||
|
||||
func (f *Interface) sendNoMetrics(t header.MessageType, st header.MessageSubType, ci *ConnectionState, hostinfo *HostInfo, remote netip.AddrPort, p, nb, out []byte, q int) {
|
||||
|
||||
+102
-19
@@ -4,20 +4,23 @@ import (
|
||||
"context"
|
||||
"errors"
|
||||
"fmt"
|
||||
"io"
|
||||
"log/slog"
|
||||
"net/netip"
|
||||
"runtime"
|
||||
"sync"
|
||||
"sync/atomic"
|
||||
"time"
|
||||
|
||||
"github.com/gaissmai/bart"
|
||||
"github.com/rcrowley/go-metrics"
|
||||
"github.com/slackhq/nebula/util"
|
||||
|
||||
"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"
|
||||
)
|
||||
|
||||
@@ -47,7 +50,14 @@ type InterfaceConfig struct {
|
||||
reQueryWait time.Duration
|
||||
|
||||
ConntrackCacheTimeout time.Duration
|
||||
l *slog.Logger
|
||||
|
||||
// CpuAffinity, when non-empty, names the CPUs each TUN reader goroutine
|
||||
// should pin to. Queue i pins to CpuAffinity[i % len(CpuAffinity)] —
|
||||
// shorter lists than `routines` cycle. Empty list keeps the default
|
||||
// pin-to-(i % NumCPU) behavior.
|
||||
CpuAffinity []int
|
||||
|
||||
l *slog.Logger
|
||||
}
|
||||
|
||||
type Interface struct {
|
||||
@@ -71,7 +81,16 @@ type Interface struct {
|
||||
routines int
|
||||
disconnectInvalid atomic.Bool
|
||||
closed atomic.Bool
|
||||
relayManager *relayManager
|
||||
// cpuAffinity, when non-empty, names the CPUs each TUN reader goroutine
|
||||
// should pin to. Queue i pins to cpuAffinity[i % len(cpuAffinity)].
|
||||
// Empty falls back to the default pin-to-(i % NumCPU) behavior.
|
||||
cpuAffinity []int
|
||||
// ecnEnabled gates RFC 6040 underlay ECN propagation. When true,
|
||||
// inside.go copies the inner ECN onto the outer carrier on encap and
|
||||
// decryptToTun folds outer CE into the inner header on decap. Toggle
|
||||
// via tunnels.ecn (default true).
|
||||
ecnEnabled atomic.Bool
|
||||
relayManager *relayManager
|
||||
|
||||
tryPromoteEvery atomic.Uint32
|
||||
reQueryEvery atomic.Uint32
|
||||
@@ -88,8 +107,12 @@ type Interface struct {
|
||||
|
||||
ctx context.Context
|
||||
writers []udp.Conn
|
||||
readers []io.ReadWriteCloser
|
||||
wg sync.WaitGroup
|
||||
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
|
||||
|
||||
// fatalErr holds the first unexpected reader error that caused shutdown.
|
||||
// nil means "no fatal error" (yet)
|
||||
@@ -187,7 +210,8 @@ func NewInterface(ctx context.Context, c *InterfaceConfig) (*Interface, error) {
|
||||
routines: c.routines,
|
||||
version: c.version,
|
||||
writers: make([]udp.Conn, c.routines),
|
||||
readers: make([]io.ReadWriteCloser, c.routines),
|
||||
readers: make([]tio.Queue, c.routines),
|
||||
batchers: make([]batch.RxBatcher, c.routines),
|
||||
myVpnNetworks: cs.myVpnNetworks,
|
||||
myVpnNetworksTable: cs.myVpnNetworksTable,
|
||||
myVpnAddrs: cs.myVpnAddrs,
|
||||
@@ -196,6 +220,7 @@ func NewInterface(ctx context.Context, c *InterfaceConfig) (*Interface, error) {
|
||||
relayManager: c.relayManager,
|
||||
connectionManager: c.connectionManager,
|
||||
conntrackCacheTimeout: c.ConntrackCacheTimeout,
|
||||
cpuAffinity: c.CpuAffinity,
|
||||
|
||||
metricHandshakes: metrics.GetOrRegisterHistogram("handshakes", nil, metrics.NewExpDecaySample(1028, 0.015)),
|
||||
messageMetrics: c.MessageMetrics,
|
||||
@@ -245,15 +270,25 @@ 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 {
|
||||
reader, err = f.inside.NewMultiQueueReader()
|
||||
if err != nil {
|
||||
if err = f.inside.NewMultiQueueReader(); err != nil {
|
||||
return err
|
||||
}
|
||||
}
|
||||
f.readers[i] = reader
|
||||
}
|
||||
f.readers = f.inside.Readers()
|
||||
for i := range f.readers {
|
||||
caps := tio.QueueCapabilities(f.readers[i])
|
||||
if caps.TSO || caps.USO {
|
||||
// Multi-lane: TCP gets coalesced when TSO is on, UDP when USO
|
||||
// is on, everything else (and either lane disabled) falls
|
||||
// through to passthrough so non-IP / non-TCP-UDP traffic still
|
||||
// reaches the TUN.
|
||||
f.batchers[i] = batch.NewMultiCoalescer(f.readers[i], caps.TSO, caps.USO)
|
||||
} else {
|
||||
f.batchers[i] = batch.NewPassthrough(f.readers[i])
|
||||
}
|
||||
}
|
||||
|
||||
f.wg.Add(1) // for us to wait on Close() to return
|
||||
@@ -311,14 +346,23 @@ func (f *Interface) listenOut(i int) {
|
||||
|
||||
ctCache := firewall.NewConntrackCacheTicker(f.ctx, f.l, f.conntrackCacheTimeout)
|
||||
lhh := f.lightHouse.NewRequestHandler()
|
||||
plaintext := make([]byte, udp.MTU)
|
||||
h := &header.H{}
|
||||
fwPacket := &firewall.Packet{}
|
||||
parsedRx := &batch.RxParsed{}
|
||||
nb := make([]byte, 12, 12)
|
||||
|
||||
err := li.ListenOut(func(fromUdpAddr netip.AddrPort, payload []byte) {
|
||||
f.readOutsidePackets(ViaSender{UdpAddr: fromUdpAddr}, plaintext[:0], payload, h, fwPacket, lhh, nb, i, ctCache.Get())
|
||||
})
|
||||
listener := func(fromUdpAddr netip.AddrPort, payload []byte, meta udp.RxMeta) {
|
||||
plaintext := f.batchers[i].Reserve(len(payload))
|
||||
f.readOutsidePackets(ViaSender{UdpAddr: fromUdpAddr}, plaintext[:0], payload, h, fwPacket, parsedRx, lhh, nb, i, ctCache.Get(), meta)
|
||||
}
|
||||
|
||||
flusher := func() {
|
||||
if err := f.batchers[i].Flush(); err != nil {
|
||||
f.l.Error("Failed to flush tun coalescer", "error", err)
|
||||
}
|
||||
}
|
||||
|
||||
err := li.ListenOut(listener, flusher)
|
||||
|
||||
if err != nil && !f.closed.Load() {
|
||||
f.l.Error("Error while reading inbound packet, closing", "error", err)
|
||||
@@ -328,16 +372,35 @@ func (f *Interface) listenOut(i int) {
|
||||
f.l.Debug("underlay reader is done", "reader", i)
|
||||
}
|
||||
|
||||
func (f *Interface) listenIn(reader io.ReadWriteCloser, i int) {
|
||||
packet := make([]byte, mtu)
|
||||
out := make([]byte, mtu)
|
||||
func (f *Interface) listenIn(reader tio.Queue, i int) {
|
||||
// Pin this goroutine to one CPU. LockOSThread alone keeps the goroutine
|
||||
// on a single OS thread but the kernel can still migrate that thread
|
||||
// across CPUs — XPS reads smp_processor_id() at sendmmsg time and picks
|
||||
// the TX ring from the current CPU's xps_cpus map, so an unpinned
|
||||
// thread bouncing between CPUs spreads one nebula flow's packets across
|
||||
// multiple TX rings, which the rings then drain at independent rates
|
||||
// and the wire delivers reordered.
|
||||
//
|
||||
// Pinning keeps every sendmmsg from this goroutine going through the
|
||||
// same TX ring, so the wire sees per-flow order. Cost: less scheduler
|
||||
// flexibility — if i % NumCPU collides between two TUN reader
|
||||
// goroutines they share a CPU.
|
||||
cpu := i % runtime.NumCPU()
|
||||
if n := len(f.cpuAffinity); n > 0 {
|
||||
cpu = f.cpuAffinity[i%n]
|
||||
}
|
||||
if err := util.PinThreadToCPU(cpu); err != nil {
|
||||
f.l.Warn("failed to pin tun reader to CPU", "queue", i, "cpu", cpu, "err", err)
|
||||
}
|
||||
rejectBuf := make([]byte, mtu)
|
||||
sb := batch.NewSendBatch(f.writers[i], batch.SendBatchCap, udp.MTU+32)
|
||||
fwPacket := &firewall.Packet{}
|
||||
nb := make([]byte, 12, 12)
|
||||
|
||||
conntrackCache := firewall.NewConntrackCacheTicker(f.ctx, f.l, f.conntrackCacheTimeout)
|
||||
|
||||
for {
|
||||
n, err := reader.Read(packet)
|
||||
pkts, err := reader.Read()
|
||||
if err != nil {
|
||||
if !f.closed.Load() {
|
||||
f.l.Error("Error while reading outbound packet, closing", "error", err, "reader", i)
|
||||
@@ -346,7 +409,12 @@ func (f *Interface) listenIn(reader io.ReadWriteCloser, i int) {
|
||||
break
|
||||
}
|
||||
|
||||
f.consumeInsidePacket(packet[:n], fwPacket, nb, out, i, conntrackCache.Get())
|
||||
for _, pkt := range pkts {
|
||||
f.consumeInsidePacket(pkt, fwPacket, nb, sb, rejectBuf, i, conntrackCache.Get())
|
||||
}
|
||||
if err := sb.Flush(); err != nil {
|
||||
f.l.Error("Failed to write outgoing batch", "error", err, "writer", i)
|
||||
}
|
||||
}
|
||||
|
||||
f.l.Debug("overlay reader is done", "reader", i)
|
||||
@@ -358,6 +426,7 @@ func (f *Interface) RegisterConfigChangeCallbacks(c *config.C) {
|
||||
c.RegisterReloadCallback(f.reloadAcceptRecvError)
|
||||
c.RegisterReloadCallback(f.reloadDisconnectInvalid)
|
||||
c.RegisterReloadCallback(f.reloadMisc)
|
||||
c.RegisterReloadCallback(f.reloadEcn)
|
||||
|
||||
for _, udpConn := range f.writers {
|
||||
c.RegisterReloadCallback(udpConn.ReloadConfig)
|
||||
@@ -481,6 +550,20 @@ func (f *Interface) reloadMisc(c *config.C) {
|
||||
}
|
||||
}
|
||||
|
||||
// reloadEcn syncs Interface.ecnEnabled with the tunnels.ecn config knob.
|
||||
// Default is enabled (RFC 6040 normal mode); set false on the rare path
|
||||
// where an underlay middlebox rewrites or drops ECN bits unpredictably.
|
||||
func (f *Interface) reloadEcn(c *config.C) {
|
||||
initial := c.InitialLoad()
|
||||
if initial || c.HasChanged("tunnels.ecn") {
|
||||
v := c.GetBool("tunnels.ecn", true)
|
||||
f.ecnEnabled.Store(v)
|
||||
if !initial {
|
||||
f.l.Info("tunnels.ecn changed", "enabled", v)
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
func (f *Interface) emitStats(ctx context.Context, i time.Duration) {
|
||||
ticker := time.NewTicker(i)
|
||||
defer ticker.Stop()
|
||||
|
||||
@@ -5,7 +5,10 @@ import (
|
||||
"fmt"
|
||||
"log/slog"
|
||||
"net"
|
||||
"net/http"
|
||||
_ "net/http/pprof"
|
||||
"net/netip"
|
||||
"runtime"
|
||||
"runtime/debug"
|
||||
"strings"
|
||||
"time"
|
||||
@@ -33,6 +36,9 @@ func Main(c *config.C, configTest bool, buildVersion string, l *slog.Logger, dev
|
||||
buildVersion = moduleVersion()
|
||||
}
|
||||
|
||||
//todo no merge
|
||||
go http.ListenAndServe(":6060", nil)
|
||||
|
||||
// Print the config if in test, the exit comes later
|
||||
if configTest {
|
||||
b, err := yaml.Marshal(c.Settings)
|
||||
@@ -220,6 +226,7 @@ func Main(c *config.C, configTest bool, buildVersion string, l *slog.Logger, dev
|
||||
relayManager: NewRelayManager(ctx, l, hostMap, c),
|
||||
punchy: punchy,
|
||||
ConntrackCacheTimeout: conntrackCacheTimeout,
|
||||
CpuAffinity: parseCpuAffinity(c, l, routines),
|
||||
l: l,
|
||||
}
|
||||
|
||||
@@ -237,6 +244,7 @@ func Main(c *config.C, configTest bool, buildVersion string, l *slog.Logger, dev
|
||||
ifce.reloadDisconnectInvalid(c)
|
||||
ifce.reloadSendRecvError(c)
|
||||
ifce.reloadAcceptRecvError(c)
|
||||
ifce.reloadEcn(c)
|
||||
|
||||
handshakeManager.f = ifce
|
||||
go handshakeManager.Run(ctx)
|
||||
@@ -271,6 +279,53 @@ func Main(c *config.C, configTest bool, buildVersion string, l *slog.Logger, dev
|
||||
}, nil
|
||||
}
|
||||
|
||||
// parseCpuAffinity reads `tun.cpu_affinity` from the config — a list of
|
||||
// integer CPU IDs, one per TUN reader goroutine. Empty / unset returns nil
|
||||
// (listenIn falls back to its default `i % NumCPU` pinning). Length
|
||||
// mismatch with `routines` is a warning, not an error: shorter lists are
|
||||
// modulo-cycled across queues, longer lists' tail is ignored. Invalid
|
||||
// entries (non-integer, out of range) are also a warning and disable the
|
||||
// override entirely so we don't silently pin to the wrong CPU.
|
||||
func parseCpuAffinity(c *config.C, l *slog.Logger, routines int) []int {
|
||||
raw := c.Get("tun.cpu_affinity")
|
||||
if raw == nil {
|
||||
return nil
|
||||
}
|
||||
rv, ok := raw.([]any)
|
||||
if !ok {
|
||||
l.Warn("tun.cpu_affinity must be a list of integers; ignoring", "value", raw)
|
||||
return nil
|
||||
}
|
||||
nCPU := runtime.NumCPU()
|
||||
cpus := make([]int, 0, len(rv))
|
||||
for i, e := range rv {
|
||||
var cpu int
|
||||
switch v := e.(type) {
|
||||
case int:
|
||||
cpu = v
|
||||
case int64:
|
||||
cpu = int(v)
|
||||
case float64:
|
||||
cpu = int(v)
|
||||
default:
|
||||
l.Warn("tun.cpu_affinity entry not an integer; ignoring affinity",
|
||||
"index", i, "value", e)
|
||||
return nil
|
||||
}
|
||||
if cpu < 0 || cpu >= nCPU {
|
||||
l.Warn("tun.cpu_affinity entry out of range; ignoring affinity",
|
||||
"index", i, "cpu", cpu, "num_cpu", nCPU)
|
||||
return nil
|
||||
}
|
||||
cpus = append(cpus, cpu)
|
||||
}
|
||||
if len(cpus) != routines {
|
||||
l.Warn("tun.cpu_affinity length doesn't match routines; queues will modulo-cycle through the list",
|
||||
"affinity_len", len(cpus), "routines", routines)
|
||||
}
|
||||
return cpus
|
||||
}
|
||||
|
||||
func moduleVersion() string {
|
||||
info, ok := debug.ReadBuildInfo()
|
||||
if !ok {
|
||||
|
||||
+81
-202
@@ -2,27 +2,20 @@ package nebula
|
||||
|
||||
import (
|
||||
"context"
|
||||
"encoding/binary"
|
||||
"errors"
|
||||
"log/slog"
|
||||
"net/netip"
|
||||
"time"
|
||||
|
||||
"github.com/google/gopacket/layers"
|
||||
"golang.org/x/net/ipv6"
|
||||
|
||||
"github.com/slackhq/nebula/firewall"
|
||||
"github.com/slackhq/nebula/header"
|
||||
"golang.org/x/net/ipv4"
|
||||
)
|
||||
|
||||
const (
|
||||
minFwPacketLen = 4
|
||||
"github.com/slackhq/nebula/overlay/batch"
|
||||
"github.com/slackhq/nebula/udp"
|
||||
)
|
||||
|
||||
var ErrOutOfWindow = errors.New("out of window packet")
|
||||
|
||||
func (f *Interface) readOutsidePackets(via ViaSender, out []byte, packet []byte, h *header.H, fwPacket *firewall.Packet, lhf *LightHouseHandler, nb []byte, q int, localCache firewall.ConntrackCache) {
|
||||
func (f *Interface) readOutsidePackets(via ViaSender, out []byte, packet []byte, h *header.H, fwPacket *firewall.Packet, parsedRx *batch.RxParsed, lhf *LightHouseHandler, nb []byte, q int, localCache firewall.ConntrackCache, meta udp.RxMeta) {
|
||||
err := h.Parse(packet)
|
||||
if err != nil {
|
||||
// Hole punch packets are 0 or 1 byte big, so lets ignore printing those errors
|
||||
@@ -110,7 +103,7 @@ func (f *Interface) readOutsidePackets(via ViaSender, out []byte, packet []byte,
|
||||
|
||||
// Relay packets are special
|
||||
if isMessageRelay {
|
||||
f.handleOutsideRelayPacket(hostinfo, via, out, packet, h, fwPacket, lhf, nb, q, localCache)
|
||||
f.handleOutsideRelayPacket(hostinfo, via, out, packet, h, fwPacket, parsedRx, lhf, nb, q, localCache, meta)
|
||||
|
||||
return
|
||||
}
|
||||
@@ -135,7 +128,7 @@ func (f *Interface) readOutsidePackets(via ViaSender, out []byte, packet []byte,
|
||||
case header.Message:
|
||||
switch h.Subtype {
|
||||
case header.MessageNone:
|
||||
f.handleOutsideMessagePacket(hostinfo, out, packet, fwPacket, nb, q, localCache)
|
||||
f.handleOutsideMessagePacket(hostinfo, out, packet, fwPacket, parsedRx, nb, q, localCache, meta)
|
||||
default:
|
||||
hostinfo.logger(f.l).Error("IsValidSubType was true, but unexpected message subtype seen", "from", via, "header", h)
|
||||
return
|
||||
@@ -168,7 +161,7 @@ func (f *Interface) readOutsidePackets(via ViaSender, out []byte, packet []byte,
|
||||
}
|
||||
}
|
||||
|
||||
func (f *Interface) handleOutsideRelayPacket(hostinfo *HostInfo, via ViaSender, out []byte, packet []byte, h *header.H, fwPacket *firewall.Packet, lhf *LightHouseHandler, nb []byte, q int, localCache firewall.ConntrackCache) {
|
||||
func (f *Interface) handleOutsideRelayPacket(hostinfo *HostInfo, via ViaSender, out []byte, packet []byte, h *header.H, fwPacket *firewall.Packet, parsedRx *batch.RxParsed, lhf *LightHouseHandler, nb []byte, q int, localCache firewall.ConntrackCache, meta udp.RxMeta) {
|
||||
// The entire body is sent as AD, not encrypted.
|
||||
// The packet consists of a 16-byte parsed Nebula header, Associated Data-protected payload, and a trailing 16-byte AEAD signature value.
|
||||
// The packet is guaranteed to be at least 16 bytes at this point, b/c it got past the h.Parse() call above. If it's
|
||||
@@ -211,7 +204,8 @@ func (f *Interface) handleOutsideRelayPacket(hostinfo *HostInfo, via ViaSender,
|
||||
relay: relay,
|
||||
IsRelayed: true,
|
||||
}
|
||||
f.readOutsidePackets(via, out[:0], signedPayload, h, fwPacket, lhf, nb, q, localCache)
|
||||
f.readOutsidePackets(via, out[:0], signedPayload, h, fwPacket, parsedRx, lhf, nb, q, localCache, meta)
|
||||
return
|
||||
case ForwardingType:
|
||||
// Find the target HostInfo relay object
|
||||
targetHI, targetRelay, err := f.hostMap.QueryVpnAddrsRelayFor(hostinfo.vpnAddrs, relay.PeerAddr)
|
||||
@@ -229,7 +223,7 @@ func (f *Interface) handleOutsideRelayPacket(hostinfo *HostInfo, via ViaSender,
|
||||
switch targetRelay.Type {
|
||||
case ForwardingType:
|
||||
// Forward this packet through the relay tunnel
|
||||
// Find the target HostInfo
|
||||
// Find the target HostInfo //todo it would potentially be nice to batch these
|
||||
f.SendVia(targetHI, targetRelay, signedPayload, nb, out, false)
|
||||
case TerminalType:
|
||||
hostinfo.logger(f.l).Error("Unexpected Relay Type of Terminal")
|
||||
@@ -310,191 +304,16 @@ var (
|
||||
)
|
||||
|
||||
// newPacket validates and parses the interesting bits for the firewall out of the ip and sub protocol headers
|
||||
// newPacket parses data into a fully-hydrated firewall.Packet — kept as a
|
||||
// thin wrapper around newPacketKey + Hydrate so there's one source of
|
||||
// parse logic. Callers that don't need the netip.Addr-rich form (e.g.
|
||||
// conntrack-only paths) should use newPacketKey directly.
|
||||
func newPacket(data []byte, incoming bool, fp *firewall.Packet) error {
|
||||
if len(data) < 1 {
|
||||
return ErrPacketTooShort
|
||||
var parsed batch.RxParsed
|
||||
if err := batch.ParsePacket(data, incoming, &parsed); err != nil {
|
||||
return err
|
||||
}
|
||||
|
||||
version := int((data[0] >> 4) & 0x0f)
|
||||
switch version {
|
||||
case ipv4.Version:
|
||||
return parseV4(data, incoming, fp)
|
||||
case ipv6.Version:
|
||||
return parseV6(data, incoming, fp)
|
||||
}
|
||||
return ErrUnknownIPVersion
|
||||
}
|
||||
|
||||
func parseV6(data []byte, incoming bool, fp *firewall.Packet) error {
|
||||
dataLen := len(data)
|
||||
if dataLen < ipv6.HeaderLen {
|
||||
return ErrIPv6PacketTooShort
|
||||
}
|
||||
|
||||
if incoming {
|
||||
fp.RemoteAddr, _ = netip.AddrFromSlice(data[8:24])
|
||||
fp.LocalAddr, _ = netip.AddrFromSlice(data[24:40])
|
||||
} else {
|
||||
fp.LocalAddr, _ = netip.AddrFromSlice(data[8:24])
|
||||
fp.RemoteAddr, _ = netip.AddrFromSlice(data[24:40])
|
||||
}
|
||||
|
||||
protoAt := 6 // NextHeader is at 6 bytes into the ipv6 header
|
||||
offset := ipv6.HeaderLen // Start at the end of the ipv6 header
|
||||
next := 0
|
||||
for {
|
||||
if protoAt >= dataLen {
|
||||
break
|
||||
}
|
||||
proto := layers.IPProtocol(data[protoAt])
|
||||
|
||||
switch proto {
|
||||
case layers.IPProtocolESP, layers.IPProtocolNoNextHeader:
|
||||
fp.Protocol = uint8(proto)
|
||||
fp.RemotePort = 0
|
||||
fp.LocalPort = 0
|
||||
fp.Fragment = false
|
||||
return nil
|
||||
|
||||
case layers.IPProtocolICMPv6:
|
||||
if dataLen < offset+6 {
|
||||
return ErrIPv6PacketTooShort
|
||||
}
|
||||
fp.Protocol = uint8(proto)
|
||||
fp.LocalPort = 0 //incoming vs outgoing doesn't matter for icmpv6
|
||||
icmptype := data[offset+1]
|
||||
switch icmptype {
|
||||
case layers.ICMPv6TypeEchoRequest, layers.ICMPv6TypeEchoReply:
|
||||
fp.RemotePort = binary.BigEndian.Uint16(data[offset+4 : offset+6]) //identifier
|
||||
default:
|
||||
fp.RemotePort = 0
|
||||
}
|
||||
fp.Fragment = false
|
||||
return nil
|
||||
|
||||
case layers.IPProtocolTCP, layers.IPProtocolUDP:
|
||||
if dataLen < offset+4 {
|
||||
return ErrIPv6PacketTooShort
|
||||
}
|
||||
|
||||
fp.Protocol = uint8(proto)
|
||||
if incoming {
|
||||
fp.RemotePort = binary.BigEndian.Uint16(data[offset : offset+2])
|
||||
fp.LocalPort = binary.BigEndian.Uint16(data[offset+2 : offset+4])
|
||||
} else {
|
||||
fp.LocalPort = binary.BigEndian.Uint16(data[offset : offset+2])
|
||||
fp.RemotePort = binary.BigEndian.Uint16(data[offset+2 : offset+4])
|
||||
}
|
||||
|
||||
fp.Fragment = false
|
||||
return nil
|
||||
|
||||
case layers.IPProtocolIPv6Fragment:
|
||||
// Fragment header is 8 bytes, need at least offset+4 to read the offset field
|
||||
if dataLen < offset+8 {
|
||||
return ErrIPv6PacketTooShort
|
||||
}
|
||||
|
||||
// Check if this is the first fragment
|
||||
fragmentOffset := binary.BigEndian.Uint16(data[offset+2:offset+4]) &^ uint16(0x7) // Remove the reserved and M flag bits
|
||||
if fragmentOffset != 0 {
|
||||
// Non-first fragment, use what we have now and stop processing
|
||||
fp.Protocol = data[offset]
|
||||
fp.Fragment = true
|
||||
fp.RemotePort = 0
|
||||
fp.LocalPort = 0
|
||||
return nil
|
||||
}
|
||||
|
||||
// The next loop should be the transport layer since we are the first fragment
|
||||
next = 8 // Fragment headers are always 8 bytes
|
||||
|
||||
case layers.IPProtocolAH:
|
||||
// Auth headers, used by IPSec, have a different meaning for header length
|
||||
if dataLen <= offset+1 {
|
||||
break
|
||||
}
|
||||
|
||||
next = int(data[offset+1]+2) << 2
|
||||
|
||||
default:
|
||||
// Normal ipv6 header length processing
|
||||
if dataLen <= offset+1 {
|
||||
break
|
||||
}
|
||||
|
||||
next = int(data[offset+1]+1) << 3
|
||||
}
|
||||
|
||||
if next <= 0 {
|
||||
// Safety check, each ipv6 header has to be at least 8 bytes
|
||||
next = 8
|
||||
}
|
||||
|
||||
protoAt = offset
|
||||
offset = offset + next
|
||||
}
|
||||
|
||||
return ErrIPv6CouldNotFindPayload
|
||||
}
|
||||
|
||||
func parseV4(data []byte, incoming bool, fp *firewall.Packet) error {
|
||||
// Do we at least have an ipv4 header worth of data?
|
||||
if len(data) < ipv4.HeaderLen {
|
||||
return ErrIPv4PacketTooShort
|
||||
}
|
||||
|
||||
// Adjust our start position based on the advertised ip header length
|
||||
ihl := int(data[0]&0x0f) << 2
|
||||
|
||||
// Well-formed ip header length?
|
||||
if ihl < ipv4.HeaderLen {
|
||||
return ErrIPv4InvalidHeaderLength
|
||||
}
|
||||
|
||||
// Check if this is the second or further fragment of a fragmented packet.
|
||||
flagsfrags := binary.BigEndian.Uint16(data[6:8])
|
||||
fp.Fragment = (flagsfrags & 0x1FFF) != 0
|
||||
|
||||
// Firewall handles protocol checks
|
||||
fp.Protocol = data[9]
|
||||
|
||||
// Accounting for a variable header length, do we have enough data for our src/dst tuples?
|
||||
minLen := ihl
|
||||
if !fp.Fragment {
|
||||
if fp.Protocol == firewall.ProtoICMP {
|
||||
minLen += minFwPacketLen + 2
|
||||
} else {
|
||||
minLen += minFwPacketLen
|
||||
}
|
||||
}
|
||||
|
||||
if len(data) < minLen {
|
||||
return ErrIPv4InvalidHeaderLength
|
||||
}
|
||||
|
||||
if incoming { // Firewall packets are locally oriented
|
||||
fp.RemoteAddr, _ = netip.AddrFromSlice(data[12:16])
|
||||
fp.LocalAddr, _ = netip.AddrFromSlice(data[16:20])
|
||||
} else {
|
||||
fp.LocalAddr, _ = netip.AddrFromSlice(data[12:16])
|
||||
fp.RemoteAddr, _ = netip.AddrFromSlice(data[16:20])
|
||||
}
|
||||
|
||||
if fp.Fragment {
|
||||
fp.RemotePort = 0
|
||||
fp.LocalPort = 0
|
||||
} else if fp.Protocol == firewall.ProtoICMP { //note that orientation doesn't matter on ICMP
|
||||
fp.RemotePort = binary.BigEndian.Uint16(data[ihl+4 : ihl+6]) //identifier
|
||||
fp.LocalPort = 0 //code would be uint16(data[ihl+1])
|
||||
} else if incoming {
|
||||
fp.RemotePort = binary.BigEndian.Uint16(data[ihl : ihl+2]) //src port
|
||||
fp.LocalPort = binary.BigEndian.Uint16(data[ihl+2 : ihl+4]) //dst port
|
||||
} else {
|
||||
fp.LocalPort = binary.BigEndian.Uint16(data[ihl : ihl+2]) //src port
|
||||
fp.RemotePort = binary.BigEndian.Uint16(data[ihl+2 : ihl+4]) //dst port
|
||||
}
|
||||
|
||||
parsed.Key.Hydrate(fp)
|
||||
return nil
|
||||
}
|
||||
|
||||
@@ -512,8 +331,68 @@ func (f *Interface) decrypt(hostinfo *HostInfo, mc uint64, out []byte, 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)
|
||||
// 2-bit IP-level ECN codepoints (lower bits of IPv4 ToS / IPv6 TC).
|
||||
const (
|
||||
ecnNotECT = 0x00
|
||||
ecnECT1 = 0x01
|
||||
ecnECT0 = 0x02
|
||||
ecnCE = 0x03
|
||||
)
|
||||
|
||||
// applyOuterECN folds an outer CE mark from the underlay into the inner
|
||||
// IP header per RFC 6040 normal mode. It mutates pkt[1] in place. Other
|
||||
// codepoints are advisory only and leave the inner unchanged.
|
||||
//
|
||||
// Merge cases (outer × inner → action):
|
||||
//
|
||||
// outer != CE : no-op (inner is authoritative)
|
||||
// outer == CE, inner Not-ECT : log; cannot propagate to a non-ECN host
|
||||
// outer == CE, inner ECT/CE : rewrite inner ECN to CE
|
||||
func applyOuterECN(pkt []byte, outerECN byte, hostinfo *HostInfo, l *slog.Logger) {
|
||||
if outerECN&ecnCE != ecnCE || len(pkt) < 2 {
|
||||
return
|
||||
}
|
||||
switch pkt[0] >> 4 {
|
||||
case 4:
|
||||
switch pkt[1] & 0x03 {
|
||||
case ecnNotECT:
|
||||
if l.Enabled(context.Background(), slog.LevelDebug) {
|
||||
hostinfo.logger(l).Debug("RFC 6040: outer CE on inner Not-ECT, leaving inner unchanged")
|
||||
}
|
||||
case ecnCE:
|
||||
// Already CE.
|
||||
default:
|
||||
pkt[1] = (pkt[1] &^ 0x03) | ecnCE
|
||||
}
|
||||
case 6:
|
||||
switch (pkt[1] >> 4) & 0x03 {
|
||||
case ecnNotECT:
|
||||
if l.Enabled(context.Background(), slog.LevelDebug) {
|
||||
hostinfo.logger(l).Debug("RFC 6040: outer CE on inner Not-ECT, leaving inner unchanged")
|
||||
}
|
||||
case ecnCE:
|
||||
// Already CE.
|
||||
default:
|
||||
pkt[1] = (pkt[1] &^ 0x30) | (ecnCE << 4)
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
func (f *Interface) handleOutsideMessagePacket(hostinfo *HostInfo, out []byte, packet []byte, fwPacket *firewall.Packet, parsedRx *batch.RxParsed, nb []byte, q int, localCache firewall.ConntrackCache, meta udp.RxMeta) {
|
||||
// RFC 6040 normal-mode combine: fold any outer CE mark stamped by the
|
||||
// underlay into the inner header before firewall + TUN write. Other
|
||||
// outer codepoints are advisory only — we keep the inner unchanged.
|
||||
if f.ecnEnabled.Load() {
|
||||
applyOuterECN(out, meta.OuterECN, hostinfo, f.l)
|
||||
}
|
||||
|
||||
// Single IP+L4 walk feeds the firewall conntrack key (parsedRx.Key)
|
||||
// and the batcher hint (parsedRx.tcp/udp). Replaces newPacket — and
|
||||
// pointedly does NOT fill fwPacket.LocalAddr/RemoteAddr, since
|
||||
// firewall.Drop's fast path uses Key alone and only hydrates fwPacket
|
||||
// from Key on the slow path.
|
||||
*fwPacket = firewall.Packet{}
|
||||
err := batch.ParsePacket(out, true, parsedRx)
|
||||
if err != nil {
|
||||
hostinfo.logger(f.l).Warn("Error while validating inbound packet",
|
||||
"error", err,
|
||||
@@ -522,7 +401,7 @@ func (f *Interface) handleOutsideMessagePacket(hostinfo *HostInfo, out []byte, p
|
||||
return
|
||||
}
|
||||
|
||||
dropReason := f.firewall.Drop(*fwPacket, true, hostinfo, f.pki.GetCAPool(), localCache)
|
||||
dropReason := f.firewall.Drop(parsedRx.Key, fwPacket, true, hostinfo, f.pki.GetCAPool(), localCache)
|
||||
if dropReason != nil {
|
||||
// NOTE: We give `packet` as the `out` here since we already decrypted from it and we don't need it anymore
|
||||
// This gives us a buffer to build the reject packet in
|
||||
@@ -536,7 +415,7 @@ func (f *Interface) handleOutsideMessagePacket(hostinfo *HostInfo, out []byte, p
|
||||
return
|
||||
}
|
||||
|
||||
_, err = f.readers[q].Write(out)
|
||||
err = f.batchers[q].CommitInbound(out, parsedRx)
|
||||
if err != nil {
|
||||
f.l.Error("Failed to write to tun", "error", err)
|
||||
}
|
||||
|
||||
+20
-19
@@ -11,6 +11,7 @@ import (
|
||||
"github.com/google/gopacket/layers"
|
||||
|
||||
"github.com/slackhq/nebula/firewall"
|
||||
"github.com/slackhq/nebula/overlay/batch"
|
||||
"github.com/stretchr/testify/assert"
|
||||
"github.com/stretchr/testify/require"
|
||||
"golang.org/x/net/ipv4"
|
||||
@@ -21,13 +22,13 @@ func Test_newPacket(t *testing.T) {
|
||||
|
||||
// length fails
|
||||
err := newPacket([]byte{}, true, p)
|
||||
require.ErrorIs(t, err, ErrPacketTooShort)
|
||||
require.ErrorIs(t, err, batch.ErrPacketTooShort)
|
||||
|
||||
err = newPacket([]byte{0x40}, true, p)
|
||||
require.ErrorIs(t, err, ErrIPv4PacketTooShort)
|
||||
require.ErrorIs(t, err, batch.ErrIPv4PacketTooShort)
|
||||
|
||||
err = newPacket([]byte{0x60}, true, p)
|
||||
require.ErrorIs(t, err, ErrIPv6PacketTooShort)
|
||||
require.ErrorIs(t, err, batch.ErrIPv6PacketTooShort)
|
||||
|
||||
// length fail with ip options
|
||||
h := ipv4.Header{
|
||||
@@ -40,15 +41,15 @@ func Test_newPacket(t *testing.T) {
|
||||
|
||||
b, _ := h.Marshal()
|
||||
err = newPacket(b, true, p)
|
||||
require.ErrorIs(t, err, ErrIPv4InvalidHeaderLength)
|
||||
require.ErrorIs(t, err, batch.ErrIPv4InvalidHeaderLength)
|
||||
|
||||
// not an ipv4 packet
|
||||
err = newPacket([]byte{0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0}, true, p)
|
||||
require.ErrorIs(t, err, ErrUnknownIPVersion)
|
||||
require.ErrorIs(t, err, batch.ErrUnknownIPVersion)
|
||||
|
||||
// invalid ihl
|
||||
err = newPacket([]byte{4<<4 | (8 >> 2 & 0x0f), 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0}, true, p)
|
||||
require.ErrorIs(t, err, ErrIPv4InvalidHeaderLength)
|
||||
require.ErrorIs(t, err, batch.ErrIPv4InvalidHeaderLength)
|
||||
|
||||
// account for variable ip header length - incoming
|
||||
h = ipv4.Header{
|
||||
@@ -115,7 +116,7 @@ func Test_newPacket_v6(t *testing.T) {
|
||||
require.NoError(t, err)
|
||||
|
||||
err = newPacket(buffer.Bytes(), true, p)
|
||||
require.ErrorIs(t, err, ErrIPv6CouldNotFindPayload)
|
||||
require.ErrorIs(t, err, batch.ErrIPv6CouldNotFindPayload)
|
||||
|
||||
// A v6 packet with a hop-by-hop extension
|
||||
// ICMPv6 Payload (Echo Request)
|
||||
@@ -149,12 +150,12 @@ func Test_newPacket_v6(t *testing.T) {
|
||||
// A full IPv6 header and 1 byte in the first extension, but missing
|
||||
// the length byte.
|
||||
err = newPacket(buffer.Bytes()[:41], true, p)
|
||||
require.ErrorIs(t, err, ErrIPv6CouldNotFindPayload)
|
||||
require.ErrorIs(t, err, batch.ErrIPv6CouldNotFindPayload)
|
||||
|
||||
// A full IPv6 header plus 1 full extension, but only 1 byte of the
|
||||
// next layer, missing length byte
|
||||
err = newPacket(buffer.Bytes()[:49], true, p)
|
||||
require.ErrorIs(t, err, ErrIPv6CouldNotFindPayload)
|
||||
require.ErrorIs(t, err, batch.ErrIPv6CouldNotFindPayload)
|
||||
err = nil
|
||||
|
||||
// A good ICMP packet
|
||||
@@ -217,7 +218,7 @@ func Test_newPacket_v6(t *testing.T) {
|
||||
b = buffer.Bytes()
|
||||
b[6] = 255 // 255 is a reserved protocol number
|
||||
err = newPacket(b, true, p)
|
||||
require.ErrorIs(t, err, ErrIPv6CouldNotFindPayload)
|
||||
require.ErrorIs(t, err, batch.ErrIPv6CouldNotFindPayload)
|
||||
|
||||
// A good UDP packet
|
||||
ip = layers.IPv6{
|
||||
@@ -264,7 +265,7 @@ func Test_newPacket_v6(t *testing.T) {
|
||||
|
||||
// Too short UDP packet
|
||||
err = newPacket(b[:len(b)-10], false, p) // pull off the last 10 bytes
|
||||
require.ErrorIs(t, err, ErrIPv6PacketTooShort)
|
||||
require.ErrorIs(t, err, batch.ErrIPv6PacketTooShort)
|
||||
|
||||
// A good TCP packet
|
||||
b[6] = byte(layers.IPProtocolTCP)
|
||||
@@ -291,7 +292,7 @@ func Test_newPacket_v6(t *testing.T) {
|
||||
|
||||
// Too short TCP packet
|
||||
err = newPacket(b[:len(b)-10], false, p) // pull off the last 10 bytes
|
||||
require.ErrorIs(t, err, ErrIPv6PacketTooShort)
|
||||
require.ErrorIs(t, err, batch.ErrIPv6PacketTooShort)
|
||||
|
||||
// A good UDP packet with an AH header
|
||||
ip = layers.IPv6{
|
||||
@@ -336,12 +337,12 @@ func Test_newPacket_v6(t *testing.T) {
|
||||
|
||||
// Ensure buffer bounds checking during processing
|
||||
err = newPacket(b[:41], true, p)
|
||||
require.ErrorIs(t, err, ErrIPv6PacketTooShort)
|
||||
require.ErrorIs(t, err, batch.ErrIPv6PacketTooShort)
|
||||
|
||||
// Invalid AH header
|
||||
b = buffer.Bytes()
|
||||
err = newPacket(b, true, p)
|
||||
require.ErrorIs(t, err, ErrIPv6CouldNotFindPayload)
|
||||
require.ErrorIs(t, err, batch.ErrIPv6CouldNotFindPayload)
|
||||
}
|
||||
|
||||
func Test_newPacket_ipv6Fragment(t *testing.T) {
|
||||
@@ -448,7 +449,7 @@ func Test_newPacket_ipv6Fragment(t *testing.T) {
|
||||
|
||||
// Too short of a fragment packet
|
||||
err = newPacket(secondFrag[:len(secondFrag)-10], false, p)
|
||||
require.ErrorIs(t, err, ErrIPv6PacketTooShort)
|
||||
require.ErrorIs(t, err, batch.ErrIPv6PacketTooShort)
|
||||
}
|
||||
|
||||
func BenchmarkParseV6(b *testing.B) {
|
||||
@@ -529,7 +530,7 @@ 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 = newPacket(normalPacket, true, fp); err != nil {
|
||||
b.Fatal(err)
|
||||
}
|
||||
}
|
||||
@@ -537,7 +538,7 @@ 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 = newPacket(firstFrag, true, fp); err != nil {
|
||||
b.Fatal(err)
|
||||
}
|
||||
}
|
||||
@@ -545,7 +546,7 @@ 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 = newPacket(secondFrag, true, fp); err != nil {
|
||||
b.Fatal(err)
|
||||
}
|
||||
}
|
||||
@@ -590,7 +591,7 @@ 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 = newPacket(evilBytes, false, fp); err != nil {
|
||||
b.Fatal(err)
|
||||
}
|
||||
}
|
||||
|
||||
@@ -0,0 +1,35 @@
|
||||
package batch
|
||||
|
||||
import "net/netip"
|
||||
|
||||
type RxBatcher interface {
|
||||
// Reserve creates a pkt to borrow
|
||||
Reserve(sz int) []byte
|
||||
// Commit borrows pkt. The caller must keep pkt valid until the next Flush.
|
||||
// Walks IP+L4 headers itself; prefer CommitInbound when the caller already
|
||||
// has an RxParsed in hand from ParsePacket.
|
||||
Commit(pkt []byte) error
|
||||
// CommitInbound is Commit with a hint produced by ParsePacket, so the
|
||||
// batcher can skip the IP+L4 re-parse. Borrowed slice contract is the
|
||||
// same as Commit. Implementations that don't coalesce may delegate to
|
||||
// Commit.
|
||||
CommitInbound(pkt []byte, parsed *RxParsed) error
|
||||
// Flush emits every queued packet in arrival order. Returns the
|
||||
// first error observed; keeps draining so one bad packet doesn't hold up
|
||||
// the rest. After Flush returns, borrowed payload slices may be recycled.
|
||||
Flush() error
|
||||
}
|
||||
|
||||
type TxBatcher interface {
|
||||
// Reserve creates a pkt to borrow
|
||||
Reserve(sz int) []byte
|
||||
// Commit borrows pkt and records its destination plus the 2-bit
|
||||
// IP-level ECN codepoint to set on the outer (carrier) header. The
|
||||
// caller must keep pkt valid until the next Flush. Pass 0 (Not-ECT)
|
||||
// to leave the outer ECN field unset.
|
||||
Commit(pkt []byte, dst netip.AddrPort, outerECN byte)
|
||||
// Flush emits every queued packet via the underlying batch writer in
|
||||
// arrival order. Returns an errors.Join of one or more errors. After Flush returns,
|
||||
// borrowed payload slices may be recycled.
|
||||
Flush() error
|
||||
}
|
||||
@@ -0,0 +1,163 @@
|
||||
package batch
|
||||
|
||||
import (
|
||||
"bytes"
|
||||
"encoding/binary"
|
||||
)
|
||||
|
||||
// flowKey identifies a transport flow by {src, dst, sport, dport, family}.
|
||||
// Comparable, so map lookups and linear scans over the slot list stay tight.
|
||||
// Shared by the TCP and UDP coalescers; each coalescer keeps its own
|
||||
// openSlots map, so a TCP and UDP flow on the same 5-tuple-without-proto
|
||||
// never alias.
|
||||
type flowKey struct {
|
||||
src, dst [16]byte
|
||||
sport, dport uint16
|
||||
isV6 bool
|
||||
}
|
||||
|
||||
// initialSlots is the starting capacity of the slot pool. One flow per
|
||||
// packet is the worst case so this matches a typical carrier-side
|
||||
// recvmmsg batch on the encrypted UDP socket.
|
||||
const initialSlots = 64
|
||||
|
||||
// parsedIP is the IP-level result of parseIPPrologue. The caller layers
|
||||
// L4-specific parsing (TCP / UDP) on top.
|
||||
type parsedIP struct {
|
||||
fk flowKey
|
||||
ipHdrLen int
|
||||
// pkt is the original buffer trimmed to the IP-declared total length.
|
||||
// Anything below the IP layer (transport parsers) should slice into
|
||||
// pkt rather than the unbounded original.
|
||||
pkt []byte
|
||||
}
|
||||
|
||||
// parseIPPrologue extracts the IP-level fields the coalescers care about:
|
||||
// IHL/payload length, version, src/dst addresses, and the L4 protocol byte.
|
||||
// Returns ok=false for malformed input, IPv4 with options or fragmentation,
|
||||
// or IPv6 with extension headers (all rejected by both coalescers in
|
||||
// identical ways before this refactor).
|
||||
//
|
||||
// On success, p.pkt is len-trimmed to the IP-declared length so callers
|
||||
// don't have to repeat the trim. wantProto is the IANA protocol number to
|
||||
// require (6 for TCP, 17 for UDP); ok=false for any other value.
|
||||
func parseIPPrologue(pkt []byte, wantProto byte) (parsedIP, bool) {
|
||||
var p parsedIP
|
||||
if len(pkt) < 20 {
|
||||
return p, false
|
||||
}
|
||||
v := pkt[0] >> 4
|
||||
switch v {
|
||||
case 4:
|
||||
ihl := int(pkt[0]&0x0f) * 4
|
||||
if ihl != 20 {
|
||||
return p, false
|
||||
}
|
||||
if pkt[9] != wantProto {
|
||||
return p, false
|
||||
}
|
||||
// Reject actual fragmentation (MF or non-zero frag offset).
|
||||
if binary.BigEndian.Uint16(pkt[6:8])&0x3fff != 0 {
|
||||
return p, false
|
||||
}
|
||||
totalLen := int(binary.BigEndian.Uint16(pkt[2:4]))
|
||||
if totalLen > len(pkt) || totalLen < ihl {
|
||||
return p, false
|
||||
}
|
||||
p.ipHdrLen = 20
|
||||
p.fk.isV6 = false
|
||||
copy(p.fk.src[:4], pkt[12:16])
|
||||
copy(p.fk.dst[:4], pkt[16:20])
|
||||
p.pkt = pkt[:totalLen]
|
||||
case 6:
|
||||
if len(pkt) < 40 {
|
||||
return p, false
|
||||
}
|
||||
if pkt[6] != wantProto {
|
||||
return p, false
|
||||
}
|
||||
payloadLen := int(binary.BigEndian.Uint16(pkt[4:6]))
|
||||
if 40+payloadLen > len(pkt) {
|
||||
return p, false
|
||||
}
|
||||
p.ipHdrLen = 40
|
||||
p.fk.isV6 = true
|
||||
copy(p.fk.src[:], pkt[8:24])
|
||||
copy(p.fk.dst[:], pkt[24:40])
|
||||
p.pkt = pkt[:40+payloadLen]
|
||||
default:
|
||||
return p, false
|
||||
}
|
||||
return p, true
|
||||
}
|
||||
|
||||
// ipHeadersMatch compares the IP portion of two packet header prefixes for
|
||||
// byte-for-byte equality on every field that must be identical across
|
||||
// coalesced segments. Size/IPID/IPCsum and the 2-bit IP-level ECN field are
|
||||
// masked out — the appendPayload step merges CE into the seed.
|
||||
//
|
||||
// The transport (L4) portion of the header is checked separately by the
|
||||
// per-protocol matcher.
|
||||
func ipHeadersMatch(a, b []byte, isV6 bool) bool {
|
||||
if isV6 {
|
||||
// IPv6: byte 0 = version/TC[7:4], byte 1 = TC[3:0]/flow[19:16],
|
||||
// bytes [2:4] = flow[15:0], [6:8] = next_hdr/hop, [8:40] = src+dst.
|
||||
// ECN lives in TC[1:0] = byte 1 mask 0x30. Skip [4:6] payload_len.
|
||||
if a[0] != b[0] {
|
||||
return false
|
||||
}
|
||||
if a[1]&^0x30 != b[1]&^0x30 {
|
||||
return false
|
||||
}
|
||||
if !bytes.Equal(a[2:4], b[2:4]) {
|
||||
return false
|
||||
}
|
||||
if !bytes.Equal(a[6:40], b[6:40]) {
|
||||
return false
|
||||
}
|
||||
return true
|
||||
}
|
||||
// IPv4: byte 0 = version/IHL, byte 1 = DSCP(6)|ECN(2),
|
||||
// [6:10] flags/fragoff/TTL/proto, [12:20] src+dst.
|
||||
// Skip [2:4] total len, [4:6] id, [10:12] csum.
|
||||
if a[0] != b[0] {
|
||||
return false
|
||||
}
|
||||
if a[1]&^0x03 != b[1]&^0x03 {
|
||||
return false
|
||||
}
|
||||
if !bytes.Equal(a[6:10], b[6:10]) {
|
||||
return false
|
||||
}
|
||||
if !bytes.Equal(a[12:20], b[12:20]) {
|
||||
return false
|
||||
}
|
||||
return true
|
||||
}
|
||||
|
||||
// mergeECNIntoSeed ORs the 2-bit IP-level ECN field of pkt's IP header
|
||||
// onto the seed's IP header, so a CE mark on any coalesced segment
|
||||
// propagates to the final superpacket. (CE is 0b11; ORing yields CE if
|
||||
// any segment carried it.) Used by both TCP and UDP coalescers, so the
|
||||
// invariant lives in one place.
|
||||
func mergeECNIntoSeed(seedHdr, pktHdr []byte, isV6 bool) {
|
||||
if isV6 {
|
||||
seedHdr[1] |= pktHdr[1] & 0x30
|
||||
} else {
|
||||
seedHdr[1] |= pktHdr[1] & 0x03
|
||||
}
|
||||
}
|
||||
|
||||
// reserveFromBacking implements the Reserve half of the RxBatcher contract
|
||||
// shared by TCP and UDP coalescers. The backing slice grows on demand;
|
||||
// already-committed slices reference the old array and remain valid until
|
||||
// Flush resets backing.
|
||||
func reserveFromBacking(backing *[]byte, sz int) []byte {
|
||||
if len(*backing)+sz > cap(*backing) {
|
||||
newCap := max(cap(*backing)*2, sz)
|
||||
*backing = make([]byte, 0, newCap)
|
||||
}
|
||||
start := len(*backing)
|
||||
*backing = (*backing)[:start+sz]
|
||||
return (*backing)[start : start+sz : start+sz]
|
||||
}
|
||||
@@ -0,0 +1,443 @@
|
||||
package batch
|
||||
|
||||
import (
|
||||
"encoding/binary"
|
||||
"errors"
|
||||
|
||||
"github.com/slackhq/nebula/firewall"
|
||||
)
|
||||
|
||||
// IANA protocol numbers we recognise during the inbound parse. Kept local
|
||||
// (rather than reaching for the firewall constants for every one of these)
|
||||
// so the byte-comparison hot path doesn't depend on cross-package values.
|
||||
const (
|
||||
ipProtoICMP = 1
|
||||
ipProtoIPv6Fragment = 44
|
||||
ipProtoESP = 50
|
||||
ipProtoAH = 51
|
||||
ipProtoICMPv6 = 58
|
||||
ipProtoNoNextHdr = 59
|
||||
|
||||
icmpv6TypeEchoRequest = 128
|
||||
icmpv6TypeEchoReply = 129
|
||||
)
|
||||
|
||||
// Packet parse errors — the canonical sentinel set for IP+L4 parsing.
|
||||
// Both inbound and outbound callers share this surface, so any code path
|
||||
// that ends up at firewall.PacketKey reports drops with the same errors.
|
||||
var (
|
||||
ErrPacketTooShort = errors.New("packet is too short")
|
||||
ErrUnknownIPVersion = errors.New("packet is an unknown ip version")
|
||||
ErrIPv4InvalidHeaderLength = errors.New("invalid ipv4 header length")
|
||||
ErrIPv4PacketTooShort = errors.New("ipv4 packet is too short")
|
||||
ErrIPv6PacketTooShort = errors.New("ipv6 packet is too short")
|
||||
ErrIPv6CouldNotFindPayload = errors.New("could not find payload in ipv6 packet")
|
||||
)
|
||||
|
||||
// RxKind discriminates how an inbound plaintext packet should be committed
|
||||
// after its firewall.Packet has been built. RxKindPassthrough means the
|
||||
// IP shape is valid (firewall could match on it) but the coalescer's
|
||||
// strict checks reject it — caller should still write it via the
|
||||
// passthrough lane.
|
||||
type RxKind uint8
|
||||
|
||||
const (
|
||||
RxKindPassthrough RxKind = iota
|
||||
RxKindTCP
|
||||
RxKindUDP
|
||||
)
|
||||
|
||||
// RxParsed is the unified result of one IP+L4 walk:
|
||||
// - Key: the firewall's conntrack/cache lookup key. The dense form lets
|
||||
// firewall.Drop hit conntrack without ever filling the rich Packet's
|
||||
// netip.Addr fields. On a conntrack miss, Drop hydrates the caller's
|
||||
// Packet from Key.
|
||||
// - tcp/udp: the coalescer hint so commitParsed doesn't re-walk the
|
||||
// headers. Meaningful only when Kind is RxKindTCP / RxKindUDP.
|
||||
type RxParsed struct {
|
||||
Kind RxKind
|
||||
Key firewall.PacketKey
|
||||
tcp parsedTCP
|
||||
udp parsedUDP
|
||||
}
|
||||
|
||||
// ParsePacket walks an IP packet once and fills parsed.Key. When incoming
|
||||
// is true and the L4 shape is coalesce-eligible, also fills parsed.tcp /
|
||||
// parsed.udp so CommitInbound can dispatch into the coalescer without
|
||||
// re-walking the headers.
|
||||
//
|
||||
// Direction selects the Key orientation:
|
||||
//
|
||||
// incoming=true → wire src → Key.RemoteAddr/Port, wire dst → Key.LocalAddr/Port
|
||||
// incoming=false → wire src → Key.LocalAddr/Port, wire dst → Key.RemoteAddr/Port
|
||||
//
|
||||
// ICMP always lands the identifier in Key.RemotePort, regardless of direction.
|
||||
//
|
||||
// Eligibility rules for the coalescer hint match the coalescer's own
|
||||
// parseTCPBase/parseUDP:
|
||||
// - IPv4 strict: IHL == 20, no fragmentation (MF or offset), proto TCP/UDP.
|
||||
// - IPv6 strict: NextHeader is directly TCP or UDP (no extension headers).
|
||||
//
|
||||
// The hint is only filled for incoming packets, since the outbound path
|
||||
// does not feed an inbound coalescer. Outbound callers see Kind stay at
|
||||
// RxKindPassthrough and parsed.tcp/udp stay zero.
|
||||
func ParsePacket(pkt []byte, incoming bool, parsed *RxParsed) error {
|
||||
parsed.Kind = RxKindPassthrough
|
||||
// Reset Key in full: v4 only writes the low 4 bytes of each address
|
||||
// field, so without this a v6 call followed by a v4 reusing the same
|
||||
// RxParsed would inherit the high 12 bytes — breaking the conntrack
|
||||
// map equality for v4 flows.
|
||||
parsed.Key = firewall.PacketKey{}
|
||||
if len(pkt) < 1 {
|
||||
return ErrPacketTooShort
|
||||
}
|
||||
switch pkt[0] >> 4 {
|
||||
case 4:
|
||||
return parsePacketV4(pkt, incoming, parsed)
|
||||
case 6:
|
||||
return parsePacketV6(pkt, incoming, parsed)
|
||||
}
|
||||
return ErrUnknownIPVersion
|
||||
}
|
||||
|
||||
// parsePacketV4 fills parsed.Key from an IPv4 packet. Direction selects
|
||||
// Local/Remote orientation. When incoming and the shape is strict, also
|
||||
// fills the coalescer hint.
|
||||
func parsePacketV4(pkt []byte, incoming bool, parsed *RxParsed) error {
|
||||
if len(pkt) < 20 {
|
||||
return ErrIPv4PacketTooShort
|
||||
}
|
||||
ihl := int(pkt[0]&0x0f) << 2
|
||||
if ihl < 20 {
|
||||
return ErrIPv4InvalidHeaderLength
|
||||
}
|
||||
flagsfrags := binary.BigEndian.Uint16(pkt[6:8])
|
||||
parsed.Key.Fragment = (flagsfrags & 0x1FFF) != 0
|
||||
parsed.Key.Protocol = pkt[9]
|
||||
parsed.Key.IsV6 = false
|
||||
|
||||
// minFwPacketLen (4) is the L4-header prefix the firewall needs to pull
|
||||
// ports; ICMP needs two extra bytes for the identifier.
|
||||
minLen := ihl
|
||||
if !parsed.Key.Fragment {
|
||||
if parsed.Key.Protocol == firewall.ProtoICMP {
|
||||
minLen += 4 + 2
|
||||
} else {
|
||||
minLen += 4
|
||||
}
|
||||
}
|
||||
if len(pkt) < minLen {
|
||||
return ErrIPv4InvalidHeaderLength
|
||||
}
|
||||
|
||||
if incoming {
|
||||
copy(parsed.Key.RemoteAddr[:4], pkt[12:16])
|
||||
copy(parsed.Key.LocalAddr[:4], pkt[16:20])
|
||||
} else {
|
||||
copy(parsed.Key.LocalAddr[:4], pkt[12:16])
|
||||
copy(parsed.Key.RemoteAddr[:4], pkt[16:20])
|
||||
}
|
||||
|
||||
switch {
|
||||
case parsed.Key.Fragment:
|
||||
parsed.Key.RemotePort = 0
|
||||
parsed.Key.LocalPort = 0
|
||||
case parsed.Key.Protocol == firewall.ProtoICMP:
|
||||
parsed.Key.RemotePort = binary.BigEndian.Uint16(pkt[ihl+4 : ihl+6])
|
||||
parsed.Key.LocalPort = 0
|
||||
case incoming:
|
||||
parsed.Key.RemotePort = binary.BigEndian.Uint16(pkt[ihl : ihl+2])
|
||||
parsed.Key.LocalPort = binary.BigEndian.Uint16(pkt[ihl+2 : ihl+4])
|
||||
default:
|
||||
parsed.Key.LocalPort = binary.BigEndian.Uint16(pkt[ihl : ihl+2])
|
||||
parsed.Key.RemotePort = binary.BigEndian.Uint16(pkt[ihl+2 : ihl+4])
|
||||
}
|
||||
|
||||
// Coalescer hint is inbound-only: no inbound coalescer fires on outgoing.
|
||||
if !incoming {
|
||||
return nil
|
||||
}
|
||||
// Coalescer-eligible? Strict shape: IHL==20, no MF/offset, TCP or UDP.
|
||||
if ihl != 20 || (flagsfrags&0x3FFF) != 0 {
|
||||
return nil
|
||||
}
|
||||
if parsed.Key.Protocol != ipProtoTCP && parsed.Key.Protocol != ipProtoUDP {
|
||||
return nil
|
||||
}
|
||||
totalLen := int(binary.BigEndian.Uint16(pkt[2:4]))
|
||||
if totalLen > len(pkt) || totalLen < 20 {
|
||||
return nil
|
||||
}
|
||||
pktTrim := pkt[:totalLen]
|
||||
|
||||
switch parsed.Key.Protocol {
|
||||
case ipProtoTCP:
|
||||
fillParsedTCPv4(pktTrim, parsed)
|
||||
case ipProtoUDP:
|
||||
fillParsedUDPv4(pktTrim, parsed)
|
||||
}
|
||||
return nil
|
||||
}
|
||||
|
||||
// fillParsedTCPv4 fills parsed.tcp from a strict-shape IPv4+TCP packet
|
||||
// already validated to have IHL==20 and to be totalLen-trimmed.
|
||||
func fillParsedTCPv4(pkt []byte, parsed *RxParsed) {
|
||||
if len(pkt) < 40 { // IPv4(20) + min TCP(20)
|
||||
return
|
||||
}
|
||||
tcpOff := int(pkt[32]>>4) * 4
|
||||
if tcpOff < 20 || tcpOff > 60 {
|
||||
return
|
||||
}
|
||||
if len(pkt) < 20+tcpOff {
|
||||
return
|
||||
}
|
||||
p := &parsed.tcp
|
||||
p.ipHdrLen = 20
|
||||
p.tcpHdrLen = tcpOff
|
||||
p.hdrLen = 20 + tcpOff
|
||||
p.payLen = len(pkt) - p.hdrLen
|
||||
p.seq = binary.BigEndian.Uint32(pkt[24:28])
|
||||
p.flags = pkt[33]
|
||||
p.fk.isV6 = false
|
||||
p.fk.sport = parsed.Key.RemotePort
|
||||
p.fk.dport = parsed.Key.LocalPort
|
||||
copy(p.fk.src[:4], pkt[12:16])
|
||||
copy(p.fk.dst[:4], pkt[16:20])
|
||||
parsed.Kind = RxKindTCP
|
||||
}
|
||||
|
||||
// fillParsedUDPv4 fills parsed.udp from a strict-shape IPv4+UDP packet.
|
||||
func fillParsedUDPv4(pkt []byte, parsed *RxParsed) {
|
||||
if len(pkt) < 28 { // IPv4(20) + UDP(8)
|
||||
return
|
||||
}
|
||||
udpLen := int(binary.BigEndian.Uint16(pkt[24:26]))
|
||||
if udpLen < 8 || udpLen > len(pkt)-20 {
|
||||
return
|
||||
}
|
||||
p := &parsed.udp
|
||||
p.ipHdrLen = 20
|
||||
p.hdrLen = 28
|
||||
p.payLen = udpLen - 8
|
||||
p.fk.isV6 = false
|
||||
p.fk.sport = parsed.Key.RemotePort
|
||||
p.fk.dport = parsed.Key.LocalPort
|
||||
copy(p.fk.src[:4], pkt[12:16])
|
||||
copy(p.fk.dst[:4], pkt[16:20])
|
||||
parsed.Kind = RxKindUDP
|
||||
}
|
||||
|
||||
// parsePacketV6 fills parsed.Key from an IPv6 packet. Direction selects
|
||||
// Local/Remote orientation. The coalescer hint fast path only triggers
|
||||
// when NextHeader is directly TCP or UDP — any extension header chain
|
||||
// falls into the lenient walk below, and the hint stays unfilled.
|
||||
func parsePacketV6(pkt []byte, incoming bool, parsed *RxParsed) error {
|
||||
if len(pkt) < 40 {
|
||||
return ErrIPv6PacketTooShort
|
||||
}
|
||||
parsed.Key.IsV6 = true
|
||||
if incoming {
|
||||
copy(parsed.Key.RemoteAddr[:], pkt[8:24])
|
||||
copy(parsed.Key.LocalAddr[:], pkt[24:40])
|
||||
} else {
|
||||
copy(parsed.Key.LocalAddr[:], pkt[8:24])
|
||||
copy(parsed.Key.RemoteAddr[:], pkt[24:40])
|
||||
}
|
||||
|
||||
if proto := pkt[6]; proto == ipProtoTCP || proto == ipProtoUDP {
|
||||
// Strict v6: ports are at the IP header end. Always fill key; only
|
||||
// fill the coalescer hint if the L4 shape passes.
|
||||
if len(pkt) < 44 {
|
||||
return ErrIPv6PacketTooShort
|
||||
}
|
||||
parsed.Key.Protocol = proto
|
||||
parsed.Key.Fragment = false
|
||||
if incoming {
|
||||
parsed.Key.RemotePort = binary.BigEndian.Uint16(pkt[40:42])
|
||||
parsed.Key.LocalPort = binary.BigEndian.Uint16(pkt[42:44])
|
||||
} else {
|
||||
parsed.Key.LocalPort = binary.BigEndian.Uint16(pkt[40:42])
|
||||
parsed.Key.RemotePort = binary.BigEndian.Uint16(pkt[42:44])
|
||||
}
|
||||
|
||||
// Coalescer hint is inbound-only.
|
||||
if !incoming {
|
||||
return nil
|
||||
}
|
||||
payloadLen := int(binary.BigEndian.Uint16(pkt[4:6]))
|
||||
if 40+payloadLen > len(pkt) {
|
||||
return nil
|
||||
}
|
||||
pktTrim := pkt[:40+payloadLen]
|
||||
|
||||
switch proto {
|
||||
case ipProtoTCP:
|
||||
fillParsedTCPv6(pktTrim, parsed)
|
||||
case ipProtoUDP:
|
||||
fillParsedUDPv6(pktTrim, parsed)
|
||||
}
|
||||
return nil
|
||||
}
|
||||
|
||||
// Slow path: walk extension header chain. Coalescer hint never fires
|
||||
// here, so direction only matters for L4 port orientation.
|
||||
return walkV6Headers(pkt, incoming, parsed)
|
||||
}
|
||||
|
||||
func fillParsedTCPv6(pkt []byte, parsed *RxParsed) {
|
||||
if len(pkt) < 60 { // IPv6(40) + min TCP(20)
|
||||
return
|
||||
}
|
||||
tcpOff := int(pkt[52]>>4) * 4
|
||||
if tcpOff < 20 || tcpOff > 60 {
|
||||
return
|
||||
}
|
||||
if len(pkt) < 40+tcpOff {
|
||||
return
|
||||
}
|
||||
p := &parsed.tcp
|
||||
p.ipHdrLen = 40
|
||||
p.tcpHdrLen = tcpOff
|
||||
p.hdrLen = 40 + tcpOff
|
||||
p.payLen = len(pkt) - p.hdrLen
|
||||
p.seq = binary.BigEndian.Uint32(pkt[44:48])
|
||||
p.flags = pkt[53]
|
||||
p.fk.isV6 = true
|
||||
p.fk.sport = parsed.Key.RemotePort
|
||||
p.fk.dport = parsed.Key.LocalPort
|
||||
copy(p.fk.src[:], pkt[8:24])
|
||||
copy(p.fk.dst[:], pkt[24:40])
|
||||
parsed.Kind = RxKindTCP
|
||||
}
|
||||
|
||||
func fillParsedUDPv6(pkt []byte, parsed *RxParsed) {
|
||||
if len(pkt) < 48 { // IPv6(40) + UDP(8)
|
||||
return
|
||||
}
|
||||
udpLen := int(binary.BigEndian.Uint16(pkt[44:46]))
|
||||
if udpLen < 8 || udpLen > len(pkt)-40 {
|
||||
return
|
||||
}
|
||||
p := &parsed.udp
|
||||
p.ipHdrLen = 40
|
||||
p.hdrLen = 48
|
||||
p.payLen = udpLen - 8
|
||||
p.fk.isV6 = true
|
||||
p.fk.sport = parsed.Key.RemotePort
|
||||
p.fk.dport = parsed.Key.LocalPort
|
||||
copy(p.fk.src[:], pkt[8:24])
|
||||
copy(p.fk.dst[:], pkt[24:40])
|
||||
parsed.Kind = RxKindUDP
|
||||
}
|
||||
|
||||
// walkV6Headers handles every IPv6 case the strict "NextHeader == TCP/UDP"
|
||||
// fast path doesn't: ESP, NoNextHeader, ICMPv6, fragment headers (first vs
|
||||
// later), AH, generic extension headers. Coalescer eligibility is always
|
||||
// RxKindPassthrough on this path (parsed already initialised that way).
|
||||
// Direction matters only for the L4 port orientation when the chain
|
||||
// terminates at TCP/UDP.
|
||||
func walkV6Headers(pkt []byte, incoming bool, parsed *RxParsed) error {
|
||||
dataLen := len(pkt)
|
||||
protoAt := 6
|
||||
offset := 40
|
||||
next := 0
|
||||
for {
|
||||
if protoAt >= dataLen {
|
||||
break
|
||||
}
|
||||
proto := pkt[protoAt]
|
||||
switch proto {
|
||||
case ipProtoESP, ipProtoNoNextHdr:
|
||||
parsed.Key.Protocol = proto
|
||||
parsed.Key.RemotePort = 0
|
||||
parsed.Key.LocalPort = 0
|
||||
parsed.Key.Fragment = false
|
||||
return nil
|
||||
|
||||
case ipProtoICMPv6:
|
||||
if dataLen < offset+6 {
|
||||
return ErrIPv6PacketTooShort
|
||||
}
|
||||
parsed.Key.Protocol = proto
|
||||
parsed.Key.LocalPort = 0
|
||||
switch pkt[offset+1] {
|
||||
case icmpv6TypeEchoRequest, icmpv6TypeEchoReply:
|
||||
parsed.Key.RemotePort = binary.BigEndian.Uint16(pkt[offset+4 : offset+6])
|
||||
default:
|
||||
parsed.Key.RemotePort = 0
|
||||
}
|
||||
parsed.Key.Fragment = false
|
||||
return nil
|
||||
|
||||
case ipProtoTCP, ipProtoUDP:
|
||||
// Reachable when an extension-header chain ends at TCP/UDP. The
|
||||
// strict-eligible fast path above already handled the no-extension
|
||||
// case; here we only fill firewall ports and stay passthrough.
|
||||
if dataLen < offset+4 {
|
||||
return ErrIPv6PacketTooShort
|
||||
}
|
||||
parsed.Key.Protocol = proto
|
||||
if incoming {
|
||||
parsed.Key.RemotePort = binary.BigEndian.Uint16(pkt[offset : offset+2])
|
||||
parsed.Key.LocalPort = binary.BigEndian.Uint16(pkt[offset+2 : offset+4])
|
||||
} else {
|
||||
parsed.Key.LocalPort = binary.BigEndian.Uint16(pkt[offset : offset+2])
|
||||
parsed.Key.RemotePort = binary.BigEndian.Uint16(pkt[offset+2 : offset+4])
|
||||
}
|
||||
parsed.Key.Fragment = false
|
||||
return nil
|
||||
|
||||
case ipProtoIPv6Fragment:
|
||||
if dataLen < offset+8 {
|
||||
return ErrIPv6PacketTooShort
|
||||
}
|
||||
fragmentOffset := binary.BigEndian.Uint16(pkt[offset+2:offset+4]) &^ uint16(0x7)
|
||||
if fragmentOffset != 0 {
|
||||
// Non-first fragment: report the fragment flag and stop.
|
||||
parsed.Key.Protocol = pkt[offset]
|
||||
parsed.Key.Fragment = true
|
||||
parsed.Key.RemotePort = 0
|
||||
parsed.Key.LocalPort = 0
|
||||
return nil
|
||||
}
|
||||
next = 8
|
||||
|
||||
case ipProtoAH:
|
||||
if dataLen <= offset+1 {
|
||||
break
|
||||
}
|
||||
next = int(pkt[offset+1]+2) << 2
|
||||
|
||||
default:
|
||||
if dataLen <= offset+1 {
|
||||
break
|
||||
}
|
||||
next = int(pkt[offset+1]+1) << 3
|
||||
}
|
||||
|
||||
if next <= 0 {
|
||||
next = 8
|
||||
}
|
||||
protoAt = offset
|
||||
offset = offset + next
|
||||
}
|
||||
return ErrIPv6CouldNotFindPayload
|
||||
}
|
||||
|
||||
// CommitInbound dispatches pkt to the appropriate lane using parsed.Kind,
|
||||
// skipping the IP+L4 re-parse that MultiCoalescer.Commit would otherwise
|
||||
// do. Borrowed slice contract is identical to MultiCoalescer.Commit.
|
||||
func (m *MultiCoalescer) CommitInbound(pkt []byte, parsed *RxParsed) error {
|
||||
switch parsed.Kind {
|
||||
case RxKindTCP:
|
||||
if m.tcp != nil {
|
||||
return m.tcp.commitParsed(pkt, parsed.tcp)
|
||||
}
|
||||
case RxKindUDP:
|
||||
if m.udp != nil {
|
||||
return m.udp.commitParsed(pkt, parsed.udp)
|
||||
}
|
||||
}
|
||||
return m.pt.Commit(pkt)
|
||||
}
|
||||
@@ -0,0 +1,394 @@
|
||||
package batch
|
||||
|
||||
import (
|
||||
"encoding/binary"
|
||||
"net/netip"
|
||||
"testing"
|
||||
|
||||
"github.com/slackhq/nebula/firewall"
|
||||
)
|
||||
|
||||
// parseV4InboundBaseline mirrors what outside.go's parseV4(incoming=true)
|
||||
// does, so the "split" bench measures the *current* state: firewall-side
|
||||
// parse, then m.Commit re-parses inside the coalescer. Two walks per
|
||||
// packet. Kept faithful in shape (one read per field, AddrFromSlice for
|
||||
// the addrs) so the CPU profile matches the production parseV4.
|
||||
func parseV4InboundBaseline(pkt []byte, fp *firewall.Packet) bool {
|
||||
if len(pkt) < 20 {
|
||||
return false
|
||||
}
|
||||
ihl := int(pkt[0]&0x0f) << 2
|
||||
if ihl < 20 {
|
||||
return false
|
||||
}
|
||||
flagsfrags := binary.BigEndian.Uint16(pkt[6:8])
|
||||
fp.Fragment = (flagsfrags & 0x1FFF) != 0
|
||||
fp.Protocol = pkt[9]
|
||||
minLen := ihl
|
||||
if !fp.Fragment {
|
||||
if fp.Protocol == firewall.ProtoICMP {
|
||||
minLen += 4 + 2
|
||||
} else {
|
||||
minLen += 4
|
||||
}
|
||||
}
|
||||
if len(pkt) < minLen {
|
||||
return false
|
||||
}
|
||||
fp.RemoteAddr, _ = netip.AddrFromSlice(pkt[12:16])
|
||||
fp.LocalAddr, _ = netip.AddrFromSlice(pkt[16:20])
|
||||
switch {
|
||||
case fp.Fragment:
|
||||
fp.RemotePort = 0
|
||||
fp.LocalPort = 0
|
||||
case fp.Protocol == firewall.ProtoICMP:
|
||||
fp.RemotePort = binary.BigEndian.Uint16(pkt[ihl+4 : ihl+6])
|
||||
fp.LocalPort = 0
|
||||
default:
|
||||
fp.RemotePort = binary.BigEndian.Uint16(pkt[ihl : ihl+2])
|
||||
fp.LocalPort = binary.BigEndian.Uint16(pkt[ihl+2 : ihl+4])
|
||||
}
|
||||
return true
|
||||
}
|
||||
|
||||
// parseV6InboundBaseline is the v6 analogue: replicates parseV6's
|
||||
// extension-header walk so the split bench captures its true cost.
|
||||
func parseV6InboundBaseline(pkt []byte, fp *firewall.Packet) bool {
|
||||
dataLen := len(pkt)
|
||||
if dataLen < 40 {
|
||||
return false
|
||||
}
|
||||
fp.RemoteAddr, _ = netip.AddrFromSlice(pkt[8:24])
|
||||
fp.LocalAddr, _ = netip.AddrFromSlice(pkt[24:40])
|
||||
|
||||
protoAt := 6
|
||||
offset := 40
|
||||
next := 0
|
||||
for {
|
||||
if protoAt >= dataLen {
|
||||
return false
|
||||
}
|
||||
proto := pkt[protoAt]
|
||||
switch proto {
|
||||
case ipProtoESP, ipProtoNoNextHdr:
|
||||
fp.Protocol = proto
|
||||
fp.RemotePort = 0
|
||||
fp.LocalPort = 0
|
||||
fp.Fragment = false
|
||||
return true
|
||||
case ipProtoICMPv6:
|
||||
if dataLen < offset+6 {
|
||||
return false
|
||||
}
|
||||
fp.Protocol = proto
|
||||
fp.LocalPort = 0
|
||||
switch pkt[offset+1] {
|
||||
case icmpv6TypeEchoRequest, icmpv6TypeEchoReply:
|
||||
fp.RemotePort = binary.BigEndian.Uint16(pkt[offset+4 : offset+6])
|
||||
default:
|
||||
fp.RemotePort = 0
|
||||
}
|
||||
fp.Fragment = false
|
||||
return true
|
||||
case ipProtoTCP, ipProtoUDP:
|
||||
if dataLen < offset+4 {
|
||||
return false
|
||||
}
|
||||
fp.Protocol = proto
|
||||
fp.RemotePort = binary.BigEndian.Uint16(pkt[offset : offset+2])
|
||||
fp.LocalPort = binary.BigEndian.Uint16(pkt[offset+2 : offset+4])
|
||||
fp.Fragment = false
|
||||
return true
|
||||
case ipProtoIPv6Fragment:
|
||||
if dataLen < offset+8 {
|
||||
return false
|
||||
}
|
||||
fragmentOffset := binary.BigEndian.Uint16(pkt[offset+2:offset+4]) &^ uint16(0x7)
|
||||
if fragmentOffset != 0 {
|
||||
fp.Protocol = pkt[offset]
|
||||
fp.Fragment = true
|
||||
fp.RemotePort = 0
|
||||
fp.LocalPort = 0
|
||||
return true
|
||||
}
|
||||
next = 8
|
||||
case ipProtoAH:
|
||||
if dataLen <= offset+1 {
|
||||
return false
|
||||
}
|
||||
next = int(pkt[offset+1]+2) << 2
|
||||
default:
|
||||
if dataLen <= offset+1 {
|
||||
return false
|
||||
}
|
||||
next = int(pkt[offset+1]+1) << 3
|
||||
}
|
||||
if next <= 0 {
|
||||
next = 8
|
||||
}
|
||||
protoAt = offset
|
||||
offset = offset + next
|
||||
}
|
||||
}
|
||||
|
||||
// runRxSplit drives the split path: faithful inbound parse for the firewall
|
||||
// side, then m.Commit re-parses to coalesce. v6 controls which baseline
|
||||
// parser we run.
|
||||
func runRxSplit(b *testing.B, pkts [][]byte, batchSize int, v6 bool) {
|
||||
b.Helper()
|
||||
m := NewMultiCoalescer(nopTunWriter{}, true, true)
|
||||
var fp firewall.Packet
|
||||
b.ReportAllocs()
|
||||
b.SetBytes(int64(len(pkts[0])))
|
||||
b.ResetTimer()
|
||||
for i := 0; i < b.N; i++ {
|
||||
pkt := pkts[i%len(pkts)]
|
||||
var ok bool
|
||||
if v6 {
|
||||
ok = parseV6InboundBaseline(pkt, &fp)
|
||||
} else {
|
||||
ok = parseV4InboundBaseline(pkt, &fp)
|
||||
}
|
||||
if !ok {
|
||||
b.Fatal("baseline parse failed")
|
||||
}
|
||||
if err := m.Commit(pkt); err != nil {
|
||||
b.Fatal(err)
|
||||
}
|
||||
if (i+1)%batchSize == 0 {
|
||||
if err := m.Flush(); err != nil {
|
||||
b.Fatal(err)
|
||||
}
|
||||
}
|
||||
}
|
||||
_ = m.Flush()
|
||||
}
|
||||
|
||||
// runRxUnified drives the unified path: ParseInbound walks once, filling
|
||||
// the conntrack key + coalescer hint in parsed; CommitInbound dispatches
|
||||
// without re-parsing.
|
||||
func runRxUnified(b *testing.B, pkts [][]byte, batchSize int) {
|
||||
b.Helper()
|
||||
m := NewMultiCoalescer(nopTunWriter{}, true, true)
|
||||
var parsed RxParsed
|
||||
b.ReportAllocs()
|
||||
b.SetBytes(int64(len(pkts[0])))
|
||||
b.ResetTimer()
|
||||
for i := 0; i < b.N; i++ {
|
||||
pkt := pkts[i%len(pkts)]
|
||||
if err := ParsePacket(pkt, true, &parsed); err != nil {
|
||||
b.Fatal(err)
|
||||
}
|
||||
if err := m.CommitInbound(pkt, &parsed); err != nil {
|
||||
b.Fatal(err)
|
||||
}
|
||||
if (i+1)%batchSize == 0 {
|
||||
if err := m.Flush(); err != nil {
|
||||
b.Fatal(err)
|
||||
}
|
||||
}
|
||||
}
|
||||
_ = m.Flush()
|
||||
}
|
||||
|
||||
// buildUDPv4Bulk returns N UDP packets on a single 5-tuple suitable for the
|
||||
// UDP coalescer's append path.
|
||||
func buildUDPv4Bulk(n, payloadLen int) [][]byte {
|
||||
pkts := make([][]byte, n)
|
||||
pay := make([]byte, payloadLen)
|
||||
for i := range n {
|
||||
pkts[i] = buildUDPv4(1000, 53, pay)
|
||||
}
|
||||
return pkts
|
||||
}
|
||||
|
||||
func buildTCPv6Bulk(n, payloadLen int) [][]byte {
|
||||
pkts := make([][]byte, n)
|
||||
pay := make([]byte, payloadLen)
|
||||
seq := uint32(1000)
|
||||
for i := range n {
|
||||
pkts[i] = buildTCPv6(0, seq, tcpAck, pay)
|
||||
seq += uint32(payloadLen)
|
||||
}
|
||||
return pkts
|
||||
}
|
||||
|
||||
func buildICMPv4Bulk(n int) [][]byte {
|
||||
pkts := make([][]byte, n)
|
||||
for i := range pkts {
|
||||
pkts[i] = buildICMPv4()
|
||||
}
|
||||
return pkts
|
||||
}
|
||||
|
||||
// === TCPv4 ===
|
||||
|
||||
func BenchmarkRxSplitTCPv4(b *testing.B) {
|
||||
pkts := buildTCPv4BulkFlow(tcpCoalesceMaxSegs, 1200)
|
||||
runRxSplit(b, pkts, tcpCoalesceMaxSegs, false)
|
||||
}
|
||||
|
||||
func BenchmarkRxUnifiedTCPv4(b *testing.B) {
|
||||
pkts := buildTCPv4BulkFlow(tcpCoalesceMaxSegs, 1200)
|
||||
runRxUnified(b, pkts, tcpCoalesceMaxSegs)
|
||||
}
|
||||
|
||||
// === TCPv4 interleaved (4 flows) ===
|
||||
|
||||
func BenchmarkRxSplitTCPv4Interleaved4(b *testing.B) {
|
||||
pkts := buildTCPv4Interleaved(4, tcpCoalesceMaxSegs, 1200)
|
||||
runRxSplit(b, pkts, len(pkts), false)
|
||||
}
|
||||
|
||||
func BenchmarkRxUnifiedTCPv4Interleaved4(b *testing.B) {
|
||||
pkts := buildTCPv4Interleaved(4, tcpCoalesceMaxSegs, 1200)
|
||||
runRxUnified(b, pkts, len(pkts))
|
||||
}
|
||||
|
||||
// === UDPv4 ===
|
||||
|
||||
func BenchmarkRxSplitUDPv4(b *testing.B) {
|
||||
pkts := buildUDPv4Bulk(udpCoalesceMaxSegs, 1200)
|
||||
runRxSplit(b, pkts, udpCoalesceMaxSegs, false)
|
||||
}
|
||||
|
||||
func BenchmarkRxUnifiedUDPv4(b *testing.B) {
|
||||
pkts := buildUDPv4Bulk(udpCoalesceMaxSegs, 1200)
|
||||
runRxUnified(b, pkts, udpCoalesceMaxSegs)
|
||||
}
|
||||
|
||||
// === TCPv6 ===
|
||||
|
||||
func BenchmarkRxSplitTCPv6(b *testing.B) {
|
||||
pkts := buildTCPv6Bulk(tcpCoalesceMaxSegs, 1200)
|
||||
runRxSplit(b, pkts, tcpCoalesceMaxSegs, true)
|
||||
}
|
||||
|
||||
func BenchmarkRxUnifiedTCPv6(b *testing.B) {
|
||||
pkts := buildTCPv6Bulk(tcpCoalesceMaxSegs, 1200)
|
||||
runRxUnified(b, pkts, tcpCoalesceMaxSegs)
|
||||
}
|
||||
|
||||
// === ICMPv4 (passthrough) — measures the unified parser on the coalescer-
|
||||
// rejected path, where both lenient and unified must still fill fp. ===
|
||||
|
||||
func BenchmarkRxSplitICMPv4(b *testing.B) {
|
||||
pkts := buildICMPv4Bulk(64)
|
||||
runRxSplit(b, pkts, 64, false)
|
||||
}
|
||||
|
||||
func BenchmarkRxUnifiedICMPv4(b *testing.B) {
|
||||
pkts := buildICMPv4Bulk(64)
|
||||
runRxUnified(b, pkts, 64)
|
||||
}
|
||||
|
||||
// === Firewall fast-path (conntrack-hit) — exercises the savings from the
|
||||
// dense PacketKey: smaller hash key for the per-routine ConntrackCache,
|
||||
// and skipping the AddrFrom4 calls that the old path needed to fill the
|
||||
// netip.Addr-rich firewall.Packet up-front. ===
|
||||
//
|
||||
// The "split" baseline simulates the legacy path: parseV4InboundBaseline
|
||||
// fills a netip.Addr-rich Packet, then we probe a localCache keyed on
|
||||
// Packet. The "unified" path: ParseInbound fills only the dense PacketKey,
|
||||
// and we probe a localCache keyed on PacketKey. Both paths follow with
|
||||
// the coalescer Commit so the bench captures end-to-end RX-side cost.
|
||||
|
||||
// runRxSplitWithCache mirrors runRxSplit but runs the legacy-style
|
||||
// firewall fast path (localCache keyed on firewall.Packet) on every
|
||||
// packet so we can compare against the unified path.
|
||||
func runRxSplitWithCache(b *testing.B, pkts [][]byte, batchSize int) {
|
||||
b.Helper()
|
||||
m := NewMultiCoalescer(nopTunWriter{}, true, true)
|
||||
var fp firewall.Packet
|
||||
|
||||
// Pre-warm a per-packet cache keyed on the netip.Addr-rich Packet form.
|
||||
cache := make(map[firewall.Packet]struct{}, len(pkts))
|
||||
for _, pkt := range pkts {
|
||||
var seedFp firewall.Packet
|
||||
if !parseV4InboundBaseline(pkt, &seedFp) {
|
||||
b.Fatal("seed parse failed")
|
||||
}
|
||||
cache[seedFp] = struct{}{}
|
||||
}
|
||||
|
||||
b.ReportAllocs()
|
||||
b.SetBytes(int64(len(pkts[0])))
|
||||
b.ResetTimer()
|
||||
for i := 0; i < b.N; i++ {
|
||||
pkt := pkts[i%len(pkts)]
|
||||
if !parseV4InboundBaseline(pkt, &fp) {
|
||||
b.Fatal("baseline parse failed")
|
||||
}
|
||||
if _, ok := cache[fp]; !ok {
|
||||
b.Fatal("cache miss")
|
||||
}
|
||||
if err := m.Commit(pkt); err != nil {
|
||||
b.Fatal(err)
|
||||
}
|
||||
if (i+1)%batchSize == 0 {
|
||||
if err := m.Flush(); err != nil {
|
||||
b.Fatal(err)
|
||||
}
|
||||
}
|
||||
}
|
||||
_ = m.Flush()
|
||||
}
|
||||
|
||||
// runRxUnifiedWithCache: unified path with a PacketKey-keyed localCache.
|
||||
// Each iteration: ParseInbound → conntrack-cache hit → CommitInbound.
|
||||
func runRxUnifiedWithCache(b *testing.B, pkts [][]byte, batchSize int) {
|
||||
b.Helper()
|
||||
m := NewMultiCoalescer(nopTunWriter{}, true, true)
|
||||
var parsed RxParsed
|
||||
|
||||
cache := make(firewall.ConntrackCache, len(pkts))
|
||||
for _, pkt := range pkts {
|
||||
var seed RxParsed
|
||||
if err := ParsePacket(pkt, true, &seed); err != nil {
|
||||
b.Fatal(err)
|
||||
}
|
||||
cache[seed.Key] = struct{}{}
|
||||
}
|
||||
|
||||
b.ReportAllocs()
|
||||
b.SetBytes(int64(len(pkts[0])))
|
||||
b.ResetTimer()
|
||||
for i := 0; i < b.N; i++ {
|
||||
pkt := pkts[i%len(pkts)]
|
||||
if err := ParsePacket(pkt, true, &parsed); err != nil {
|
||||
b.Fatal(err)
|
||||
}
|
||||
if _, ok := cache[parsed.Key]; !ok {
|
||||
b.Fatal("cache miss")
|
||||
}
|
||||
if err := m.CommitInbound(pkt, &parsed); err != nil {
|
||||
b.Fatal(err)
|
||||
}
|
||||
if (i+1)%batchSize == 0 {
|
||||
if err := m.Flush(); err != nil {
|
||||
b.Fatal(err)
|
||||
}
|
||||
}
|
||||
}
|
||||
_ = m.Flush()
|
||||
}
|
||||
|
||||
func BenchmarkRxSplitTCPv4WithCache(b *testing.B) {
|
||||
pkts := buildTCPv4BulkFlow(tcpCoalesceMaxSegs, 1200)
|
||||
runRxSplitWithCache(b, pkts, tcpCoalesceMaxSegs)
|
||||
}
|
||||
|
||||
func BenchmarkRxUnifiedTCPv4WithCache(b *testing.B) {
|
||||
pkts := buildTCPv4BulkFlow(tcpCoalesceMaxSegs, 1200)
|
||||
runRxUnifiedWithCache(b, pkts, tcpCoalesceMaxSegs)
|
||||
}
|
||||
|
||||
func BenchmarkRxSplitInterleaved4WithCache(b *testing.B) {
|
||||
pkts := buildTCPv4Interleaved(4, tcpCoalesceMaxSegs, 1200)
|
||||
runRxSplitWithCache(b, pkts, len(pkts))
|
||||
}
|
||||
|
||||
func BenchmarkRxUnifiedInterleaved4WithCache(b *testing.B) {
|
||||
pkts := buildTCPv4Interleaved(4, tcpCoalesceMaxSegs, 1200)
|
||||
runRxUnifiedWithCache(b, pkts, len(pkts))
|
||||
}
|
||||
@@ -0,0 +1,174 @@
|
||||
package batch
|
||||
|
||||
import (
|
||||
"net/netip"
|
||||
"testing"
|
||||
|
||||
"github.com/slackhq/nebula/firewall"
|
||||
)
|
||||
|
||||
// TestParseInboundParity asserts that ParseInbound + Key.Hydrate produces
|
||||
// the same firewall.Packet that the lenient baseline parsers (which
|
||||
// mirror outside.go's parseV4/parseV6 with incoming=true) produce for
|
||||
// every shape we care about. Catches drift between the unified
|
||||
// parse-then-hydrate flow and the production newPacket behavior so
|
||||
// swapping one for the other is observably safe.
|
||||
func TestParseInboundParity(t *testing.T) {
|
||||
cases := []struct {
|
||||
name string
|
||||
pkt []byte
|
||||
v6 bool
|
||||
}{
|
||||
{"tcp_v4", buildTCPv4Ports(1234, 443, 1000, tcpAck, []byte("payload")), false},
|
||||
{"tcp_v4_psh", buildTCPv4Ports(1234, 443, 2000, tcpAckPsh, make([]byte, 1200)), false},
|
||||
{"udp_v4", buildUDPv4(40000, 53, []byte("dnsquery")), false},
|
||||
{"icmp_v4", buildICMPv4(), false},
|
||||
{"tcp_v6", buildTCPv6(0, 5000, tcpAck, make([]byte, 800)), true},
|
||||
{"udp_v6", buildUDPv6(40001, 53, []byte("v6dns")), true},
|
||||
}
|
||||
|
||||
for _, tc := range cases {
|
||||
t.Run(tc.name, func(t *testing.T) {
|
||||
var fpUnified, fpBaseline firewall.Packet
|
||||
var parsed RxParsed
|
||||
|
||||
if err := ParsePacket(tc.pkt, true, &parsed); err != nil {
|
||||
t.Fatalf("ParsePacket: %v", err)
|
||||
}
|
||||
parsed.Key.Hydrate(&fpUnified)
|
||||
var ok bool
|
||||
if tc.v6 {
|
||||
ok = parseV6InboundBaseline(tc.pkt, &fpBaseline)
|
||||
} else {
|
||||
ok = parseV4InboundBaseline(tc.pkt, &fpBaseline)
|
||||
}
|
||||
if !ok {
|
||||
t.Fatalf("baseline parse failed")
|
||||
}
|
||||
|
||||
if fpUnified != fpBaseline {
|
||||
t.Errorf("firewall.Packet mismatch:\n unified: %+v\n baseline: %+v", fpUnified, fpBaseline)
|
||||
}
|
||||
})
|
||||
}
|
||||
}
|
||||
|
||||
// TestParseInboundFlowKey checks that the coalescer hint the unified parser
|
||||
// produces matches what parseTCPBase/parseUDP would produce on the same
|
||||
// packet — same flowKey, ipHdrLen, payLen, etc. The hint is only valid
|
||||
// when Kind is RxKindTCP/RxKindUDP.
|
||||
func TestParseInboundFlowKey(t *testing.T) {
|
||||
t.Run("tcp_v4", func(t *testing.T) {
|
||||
pkt := buildTCPv4Ports(1234, 443, 5000, tcpAck, make([]byte, 800))
|
||||
var parsed RxParsed
|
||||
if err := ParsePacket(pkt, true, &parsed); err != nil {
|
||||
t.Fatal(err)
|
||||
}
|
||||
if parsed.Kind != RxKindTCP {
|
||||
t.Fatalf("kind=%v want TCP", parsed.Kind)
|
||||
}
|
||||
ref, ok := parseTCPBase(pkt)
|
||||
if !ok {
|
||||
t.Fatal("parseTCPBase failed")
|
||||
}
|
||||
if parsed.tcp != ref {
|
||||
t.Errorf("parsedTCP mismatch:\n unified: %+v\n ref: %+v", parsed.tcp, ref)
|
||||
}
|
||||
})
|
||||
|
||||
t.Run("udp_v4", func(t *testing.T) {
|
||||
pkt := buildUDPv4(40000, 53, []byte("dnsquery"))
|
||||
var parsed RxParsed
|
||||
if err := ParsePacket(pkt, true, &parsed); err != nil {
|
||||
t.Fatal(err)
|
||||
}
|
||||
if parsed.Kind != RxKindUDP {
|
||||
t.Fatalf("kind=%v want UDP", parsed.Kind)
|
||||
}
|
||||
ref, ok := parseUDP(pkt)
|
||||
if !ok {
|
||||
t.Fatal("parseUDP failed")
|
||||
}
|
||||
if parsed.udp != ref {
|
||||
t.Errorf("parsedUDP mismatch:\n unified: %+v\n ref: %+v", parsed.udp, ref)
|
||||
}
|
||||
})
|
||||
|
||||
t.Run("tcp_v6", func(t *testing.T) {
|
||||
pkt := buildTCPv6(0, 9000, tcpAck, make([]byte, 800))
|
||||
var parsed RxParsed
|
||||
if err := ParsePacket(pkt, true, &parsed); err != nil {
|
||||
t.Fatal(err)
|
||||
}
|
||||
if parsed.Kind != RxKindTCP {
|
||||
t.Fatalf("kind=%v want TCP", parsed.Kind)
|
||||
}
|
||||
ref, ok := parseTCPBase(pkt)
|
||||
if !ok {
|
||||
t.Fatal("parseTCPBase failed")
|
||||
}
|
||||
if parsed.tcp != ref {
|
||||
t.Errorf("parsedTCP mismatch:\n unified: %+v\n ref: %+v", parsed.tcp, ref)
|
||||
}
|
||||
})
|
||||
}
|
||||
|
||||
// TestParseInboundICMPPassthrough confirms ICMP packets populate the
|
||||
// conntrack key (including the ICMP identifier in RemotePort) but stay
|
||||
// RxKindPassthrough so the batcher writes them verbatim. After Hydrate
|
||||
// the firewall.Packet form should match what the legacy parseV4 produced.
|
||||
func TestParseInboundICMPPassthrough(t *testing.T) {
|
||||
pkt := buildICMPv4()
|
||||
// Stamp a non-zero identifier into the ICMP header so we can check
|
||||
// RemotePort gets it.
|
||||
pkt[20] = 8 // type=echo
|
||||
pkt[24] = 0xab
|
||||
pkt[25] = 0xcd
|
||||
|
||||
var parsed RxParsed
|
||||
if err := ParsePacket(pkt, true, &parsed); err != nil {
|
||||
t.Fatal(err)
|
||||
}
|
||||
if parsed.Kind != RxKindPassthrough {
|
||||
t.Errorf("kind=%v want Passthrough", parsed.Kind)
|
||||
}
|
||||
var fp firewall.Packet
|
||||
parsed.Key.Hydrate(&fp)
|
||||
if fp.Protocol != firewall.ProtoICMP {
|
||||
t.Errorf("Protocol=%d want %d", fp.Protocol, firewall.ProtoICMP)
|
||||
}
|
||||
if fp.RemotePort != 0xabcd {
|
||||
t.Errorf("RemotePort=0x%x want 0xabcd", fp.RemotePort)
|
||||
}
|
||||
if fp.LocalPort != 0 {
|
||||
t.Errorf("LocalPort=%d want 0", fp.LocalPort)
|
||||
}
|
||||
wantRemote := netip.MustParseAddr("10.0.0.1")
|
||||
wantLocal := netip.MustParseAddr("10.0.0.2")
|
||||
if fp.RemoteAddr != wantRemote || fp.LocalAddr != wantLocal {
|
||||
t.Errorf("addrs: remote=%v local=%v want %v/%v", fp.RemoteAddr, fp.LocalAddr, wantRemote, wantLocal)
|
||||
}
|
||||
}
|
||||
|
||||
// TestParseInboundV4Fragment confirms a fragmented v4 packet fills the
|
||||
// conntrack key with Fragment=true and falls into Passthrough on the
|
||||
// coalescer side.
|
||||
func TestParseInboundV4Fragment(t *testing.T) {
|
||||
// Build a TCP packet then twiddle the IP flags to make it look like a
|
||||
// non-first fragment (offset != 0).
|
||||
pkt := buildTCPv4Ports(1234, 443, 1000, tcpAck, []byte("payload"))
|
||||
// Set a non-zero fragment offset (bytes 6-7, low 13 bits).
|
||||
pkt[6] = 0x00
|
||||
pkt[7] = 0x10 // offset = 16 (in 8-byte units)
|
||||
|
||||
var parsed RxParsed
|
||||
if err := ParsePacket(pkt, true, &parsed); err != nil {
|
||||
t.Fatal(err)
|
||||
}
|
||||
if !parsed.Key.Fragment {
|
||||
t.Error("Fragment=false, want true")
|
||||
}
|
||||
if parsed.Kind != RxKindPassthrough {
|
||||
t.Errorf("kind=%v want Passthrough", parsed.Kind)
|
||||
}
|
||||
}
|
||||
@@ -0,0 +1,133 @@
|
||||
package batch
|
||||
|
||||
import (
|
||||
"errors"
|
||||
"io"
|
||||
)
|
||||
|
||||
// MultiCoalescer fans plaintext packets out to lane-specific batchers based
|
||||
// on the IP/L4 protocol of the packet, sharing a single Reserve arena
|
||||
// across lanes so the caller's allocation pattern is unchanged.
|
||||
//
|
||||
// Lanes are processed independently: the TCP coalescer only sees TCP, the
|
||||
// UDP coalescer only sees UDP, and the passthrough lane handles everything
|
||||
// else. Per-flow arrival order is preserved because a single 5-tuple only
|
||||
// ever lands in one lane and each lane preserves its own slot order.
|
||||
//
|
||||
// Cross-lane order is NOT preserved across the TCP/UDP/passthrough split.
|
||||
// This is acceptable because the carrier-side recvmmsg path already
|
||||
// stable-sorts by (peer, message counter) before delivering plaintext
|
||||
// here, so replay-window invariants are unaffected, and apps observe
|
||||
// correct per-flow ordering — which is all the IP layer guarantees anyway.
|
||||
// Do not "fix" this by interleaving lane outputs at flush time; that
|
||||
// negates the entire point of coalescing (each lane needs to see runs of
|
||||
// adjacent same-flow packets to coalesce them).
|
||||
type MultiCoalescer struct {
|
||||
tcp *TCPCoalescer
|
||||
udp *UDPCoalescer
|
||||
pt *Passthrough
|
||||
|
||||
// arena shared across all lanes so a single Reserve grows one backing
|
||||
// slice; lane Commit calls borrow into this same arena.
|
||||
backing []byte
|
||||
}
|
||||
|
||||
// NewMultiCoalescer builds a multi-lane batcher. tcpEnabled lets the caller
|
||||
// opt out of TCP coalescing (e.g. when the queue can't do TSO); udpEnabled
|
||||
// likewise gates UDP coalescing (only enable when USO was negotiated).
|
||||
// Either lane disabled redirects its traffic into the passthrough lane.
|
||||
func NewMultiCoalescer(w io.Writer, tcpEnabled, udpEnabled bool) *MultiCoalescer {
|
||||
m := &MultiCoalescer{
|
||||
pt: NewPassthrough(w),
|
||||
backing: make([]byte, 0, initialSlots*65535),
|
||||
}
|
||||
if tcpEnabled {
|
||||
m.tcp = NewTCPCoalescer(w)
|
||||
}
|
||||
if udpEnabled {
|
||||
m.udp = NewUDPCoalescer(w)
|
||||
}
|
||||
return m
|
||||
}
|
||||
|
||||
func (m *MultiCoalescer) Reserve(sz int) []byte {
|
||||
if len(m.backing)+sz > cap(m.backing) {
|
||||
newCap := max(cap(m.backing)*2, sz)
|
||||
m.backing = make([]byte, 0, newCap)
|
||||
}
|
||||
start := len(m.backing)
|
||||
m.backing = m.backing[:start+sz]
|
||||
return m.backing[start : start+sz : start+sz]
|
||||
}
|
||||
|
||||
// Commit dispatches pkt to the appropriate lane based on IP version + L4
|
||||
// proto. Borrowed slice contract is identical to the single-lane batchers,
|
||||
// pkt must remain valid until the next Flush.
|
||||
//
|
||||
// On the success path the IP/TCP-or-UDP parse happens here once and the
|
||||
// parsed struct is handed to the lane via commitParsed so the lane doesn't
|
||||
// re-walk the header.
|
||||
func (m *MultiCoalescer) Commit(pkt []byte) error {
|
||||
if len(pkt) < 20 {
|
||||
return m.pt.Commit(pkt)
|
||||
}
|
||||
v := pkt[0] >> 4
|
||||
var proto byte
|
||||
switch v {
|
||||
case 4:
|
||||
proto = pkt[9]
|
||||
case 6:
|
||||
if len(pkt) < 40 {
|
||||
return m.pt.Commit(pkt)
|
||||
}
|
||||
proto = pkt[6]
|
||||
default:
|
||||
return m.pt.Commit(pkt)
|
||||
}
|
||||
switch proto {
|
||||
case ipProtoTCP:
|
||||
if m.tcp != nil {
|
||||
info, ok := parseTCPBase(pkt)
|
||||
if !ok {
|
||||
// Malformed/unsupported TCP shape (IP options, fragments, ...).
|
||||
// Handle this via passthrough support in the TCP coalescer, to attempt to preserve flow order.
|
||||
m.tcp.addPassthrough(pkt)
|
||||
return nil
|
||||
}
|
||||
return m.tcp.commitParsed(pkt, info)
|
||||
}
|
||||
case ipProtoUDP:
|
||||
if m.udp != nil {
|
||||
info, ok := parseUDP(pkt)
|
||||
if !ok {
|
||||
m.udp.addPassthrough(pkt) //we could also m.pt.Commit() here I guess?
|
||||
return nil
|
||||
}
|
||||
return m.udp.commitParsed(pkt, info)
|
||||
}
|
||||
}
|
||||
return m.pt.Commit(pkt)
|
||||
}
|
||||
|
||||
// Flush drains every lane in a fixed order: TCP, UDP, passthrough. Errors
|
||||
// from a lane do not stop subsequent lanes from flushing, we keep
|
||||
// draining and return the first observed error so a single bad packet
|
||||
// doesn't strand the others.
|
||||
func (m *MultiCoalescer) Flush() error {
|
||||
var errs []error
|
||||
if m.tcp != nil {
|
||||
if err := m.tcp.Flush(); err != nil {
|
||||
errs = append(errs, err)
|
||||
}
|
||||
}
|
||||
if m.udp != nil {
|
||||
if err := m.udp.Flush(); err != nil {
|
||||
errs = append(errs, err)
|
||||
}
|
||||
}
|
||||
if err := m.pt.Flush(); err != nil {
|
||||
errs = append(errs, err)
|
||||
}
|
||||
m.backing = m.backing[:0]
|
||||
return errors.Join(errs...)
|
||||
}
|
||||
@@ -0,0 +1,94 @@
|
||||
package batch
|
||||
|
||||
import (
|
||||
"testing"
|
||||
)
|
||||
|
||||
// TestMultiCoalescerRoutesByProto confirms TCP/UDP/other land in the right
|
||||
// lane: TCP and UDP get coalesced when their lanes are enabled, anything
|
||||
// else (ICMP here) falls through to plain Write.
|
||||
func TestMultiCoalescerRoutesByProto(t *testing.T) {
|
||||
w := &fakeTunWriter{gsoEnabled: true}
|
||||
m := NewMultiCoalescer(w, true, true)
|
||||
|
||||
tcpPay := make([]byte, 1200)
|
||||
udpPay := make([]byte, 1200)
|
||||
icmp := make([]byte, 28)
|
||||
icmp[0] = 0x45
|
||||
icmp[2] = 0
|
||||
icmp[3] = 28
|
||||
icmp[9] = 1
|
||||
|
||||
if err := m.Commit(buildTCPv4(1000, tcpAck, tcpPay)); err != nil {
|
||||
t.Fatal(err)
|
||||
}
|
||||
if err := m.Commit(buildTCPv4(2200, tcpAck, tcpPay)); err != nil {
|
||||
t.Fatal(err)
|
||||
}
|
||||
if err := m.Commit(buildUDPv4(2000, 53, udpPay)); err != nil {
|
||||
t.Fatal(err)
|
||||
}
|
||||
if err := m.Commit(buildUDPv4(2000, 53, udpPay)); err != nil {
|
||||
t.Fatal(err)
|
||||
}
|
||||
if err := m.Commit(icmp); err != nil {
|
||||
t.Fatal(err)
|
||||
}
|
||||
if err := m.Flush(); err != nil {
|
||||
t.Fatal(err)
|
||||
}
|
||||
// 1 TCP super (2 segments) + 1 UDP super (2 segments) = 2 gso writes.
|
||||
if len(w.gsoWrites) != 2 {
|
||||
t.Fatalf("want 2 gso writes (one TCP + one UDP), got %d", len(w.gsoWrites))
|
||||
}
|
||||
if len(w.writes) != 1 {
|
||||
t.Fatalf("want 1 plain write (ICMP), got %d", len(w.writes))
|
||||
}
|
||||
}
|
||||
|
||||
// TestMultiCoalescerDisabledUDPFallsThrough verifies that when the UDP lane
|
||||
// is disabled (e.g. kernel doesn't support USO), UDP packets still reach
|
||||
// the kernel via the passthrough lane rather than being lost.
|
||||
func TestMultiCoalescerDisabledUDPFallsThrough(t *testing.T) {
|
||||
w := &fakeTunWriter{gsoEnabled: true}
|
||||
m := NewMultiCoalescer(w, true, false) // TSO on, USO off
|
||||
|
||||
if err := m.Commit(buildUDPv4(1000, 53, make([]byte, 800))); err != nil {
|
||||
t.Fatal(err)
|
||||
}
|
||||
if err := m.Commit(buildUDPv4(1000, 53, make([]byte, 800))); err != nil {
|
||||
t.Fatal(err)
|
||||
}
|
||||
if err := m.Flush(); err != nil {
|
||||
t.Fatal(err)
|
||||
}
|
||||
if len(w.gsoWrites) != 0 {
|
||||
t.Errorf("UDP must NOT be coalesced when USO disabled, got %d gso writes", len(w.gsoWrites))
|
||||
}
|
||||
if len(w.writes) != 2 {
|
||||
t.Errorf("UDP must pass through as 2 plain writes, got %d", len(w.writes))
|
||||
}
|
||||
}
|
||||
|
||||
// TestMultiCoalescerDisabledTCPFallsThrough mirrors the TSO=off case.
|
||||
func TestMultiCoalescerDisabledTCPFallsThrough(t *testing.T) {
|
||||
w := &fakeTunWriter{gsoEnabled: true}
|
||||
m := NewMultiCoalescer(w, false, true) // TSO off, USO on
|
||||
|
||||
pay := make([]byte, 1200)
|
||||
if err := m.Commit(buildTCPv4(1000, tcpAck, pay)); err != nil {
|
||||
t.Fatal(err)
|
||||
}
|
||||
if err := m.Commit(buildTCPv4(2200, tcpAck, pay)); err != nil {
|
||||
t.Fatal(err)
|
||||
}
|
||||
if err := m.Flush(); err != nil {
|
||||
t.Fatal(err)
|
||||
}
|
||||
if len(w.gsoWrites) != 0 {
|
||||
t.Errorf("TCP must NOT be coalesced when TSO disabled, got %d gso writes", len(w.gsoWrites))
|
||||
}
|
||||
if len(w.writes) != 2 {
|
||||
t.Errorf("TCP must pass through as 2 plain writes, got %d", len(w.writes))
|
||||
}
|
||||
}
|
||||
@@ -0,0 +1,62 @@
|
||||
package batch
|
||||
|
||||
import (
|
||||
"io"
|
||||
|
||||
"github.com/slackhq/nebula/udp"
|
||||
)
|
||||
|
||||
// Passthrough is a RxBatcher that doesn't batch anything, it just accumulates and then sends packets.
|
||||
type Passthrough struct {
|
||||
out io.Writer
|
||||
slots [][]byte
|
||||
backing []byte
|
||||
cursor int
|
||||
}
|
||||
|
||||
func NewPassthrough(w io.Writer) *Passthrough {
|
||||
const baseNumSlots = 128
|
||||
return &Passthrough{
|
||||
out: w,
|
||||
slots: make([][]byte, 0, baseNumSlots),
|
||||
backing: make([]byte, 0, baseNumSlots*udp.MTU),
|
||||
}
|
||||
}
|
||||
|
||||
func (p *Passthrough) Reserve(sz int) []byte {
|
||||
if len(p.backing)+sz > cap(p.backing) {
|
||||
// Grow: allocate a fresh backing. Already-committed slices still
|
||||
// reference the old array and remain valid until Flush drops them.
|
||||
newCap := max(cap(p.backing)*2, sz)
|
||||
p.backing = make([]byte, 0, newCap)
|
||||
}
|
||||
start := len(p.backing)
|
||||
p.backing = p.backing[:start+sz]
|
||||
return p.backing[start : start+sz : start+sz] //return zero length, sz-cap slice
|
||||
}
|
||||
|
||||
func (p *Passthrough) Commit(pkt []byte) error {
|
||||
p.slots = append(p.slots, pkt)
|
||||
return nil
|
||||
}
|
||||
|
||||
// CommitInbound ignores the hint — Passthrough never coalesces, so there's
|
||||
// no IP/L4 re-parse to skip. Present so Passthrough satisfies the RxBatcher
|
||||
// interface alongside MultiCoalescer.
|
||||
func (p *Passthrough) CommitInbound(pkt []byte, _ *RxParsed) error {
|
||||
return p.Commit(pkt)
|
||||
}
|
||||
|
||||
func (p *Passthrough) Flush() error {
|
||||
var firstErr error
|
||||
for _, s := range p.slots {
|
||||
_, err := p.out.Write(s)
|
||||
if err != nil && firstErr == nil {
|
||||
firstErr = err
|
||||
}
|
||||
}
|
||||
clear(p.slots)
|
||||
p.slots = p.slots[:0]
|
||||
p.backing = p.backing[:0]
|
||||
return firstErr
|
||||
}
|
||||
@@ -0,0 +1,731 @@
|
||||
package batch
|
||||
|
||||
import (
|
||||
"bytes"
|
||||
"encoding/binary"
|
||||
"io"
|
||||
"log/slog"
|
||||
"net/netip"
|
||||
"slices"
|
||||
|
||||
"github.com/slackhq/nebula/overlay/tio"
|
||||
)
|
||||
|
||||
// ipProtoTCP is the IANA protocol number for TCP. Hardcoded instead of
|
||||
// reaching for golang.org/x/sys/unix — that package doesn't define the
|
||||
// constant on Windows, which would break cross-compiles even though this
|
||||
// file runs unchanged on every platform.
|
||||
const ipProtoTCP = 6
|
||||
|
||||
// tcpCoalesceBufSize caps total bytes per superpacket. Mirrors the kernel's
|
||||
// sk_gso_max_size of ~64KiB; anything beyond this would be rejected anyway.
|
||||
const tcpCoalesceBufSize = 65535
|
||||
|
||||
// tcpCoalesceMaxSegs caps how many segments we'll coalesce into a single
|
||||
// superpacket. Keeping this well below the kernel's TSO ceiling bounds
|
||||
// latency.
|
||||
const tcpCoalesceMaxSegs = 64
|
||||
|
||||
// tcpCoalesceHdrCap is the scratch space we copy a seed's IP+TCP header
|
||||
// into. IPv6 (40) + TCP with full options (60) = 100 bytes.
|
||||
const tcpCoalesceHdrCap = 100
|
||||
|
||||
// coalesceSlot is one entry in the coalescer's ordered event queue. When
|
||||
// passthrough is true the slot holds a single borrowed packet that must be
|
||||
// emitted verbatim (non-TCP, non-admissible TCP, or oversize seed). When
|
||||
// passthrough is false the slot is an in-progress coalesced superpacket:
|
||||
// hdrBuf is a mutable copy of the seed's IP+TCP header (we patch total
|
||||
// length and pseudo-header partial at flush), and payIovs are *borrowed*
|
||||
// slices from the caller's plaintext buffers — no payload is ever copied.
|
||||
// The caller (listenOut) must keep those buffers alive until Flush.
|
||||
type coalesceSlot struct {
|
||||
passthrough bool
|
||||
rawPkt []byte // borrowed when passthrough
|
||||
|
||||
fk flowKey
|
||||
hdrBuf [tcpCoalesceHdrCap]byte
|
||||
hdrLen int
|
||||
ipHdrLen int
|
||||
isV6 bool
|
||||
gsoSize int
|
||||
numSeg int
|
||||
totalPay int
|
||||
nextSeq uint32
|
||||
// psh closes the chain: set when the last-accepted segment had PSH or
|
||||
// was sub-gsoSize. No further appends after that.
|
||||
psh bool
|
||||
payIovs [][]byte
|
||||
}
|
||||
|
||||
// TCPCoalescer accumulates adjacent in-flow TCP data segments across
|
||||
// multiple concurrent flows and emits each flow's run as a single TSO
|
||||
// superpacket via tio.GSOWriter. All output — coalesced or not — is
|
||||
// deferred until Flush so arrival order is preserved on the wire. Owns
|
||||
// no locks; one coalescer per TUN write queue.
|
||||
type TCPCoalescer struct {
|
||||
plainW io.Writer
|
||||
gsoW tio.GSOWriter // nil when the queue doesn't support TSO
|
||||
|
||||
// slots is the ordered event queue. Flush walks it once and emits each
|
||||
// entry as either a WriteGSO (coalesced) or a plainW.Write (passthrough).
|
||||
slots []*coalesceSlot
|
||||
// openSlots maps a flow key to its most recent non-sealed slot, so new
|
||||
// segments can extend an in-progress superpacket in O(1). Slots are
|
||||
// removed from this map when they close (PSH or short-last-segment),
|
||||
// when a non-admissible packet for that flow arrives, or in Flush.
|
||||
openSlots map[flowKey]*coalesceSlot
|
||||
// lastSlot caches the most recently touched open slot. Steady-state
|
||||
// bulk traffic is dominated by a single flow, so comparing the
|
||||
// incoming key against the cached slot's own fk lets the hot path
|
||||
// skip the map lookup (and the aeshash of a 38-byte key) entirely.
|
||||
// Kept in lockstep with openSlots: nil whenever the slot it pointed
|
||||
// at is removed/sealed.
|
||||
lastSlot *coalesceSlot
|
||||
pool []*coalesceSlot // free list for reuse
|
||||
|
||||
backing []byte
|
||||
}
|
||||
|
||||
func NewTCPCoalescer(w io.Writer) *TCPCoalescer {
|
||||
c := &TCPCoalescer{
|
||||
plainW: w,
|
||||
slots: make([]*coalesceSlot, 0, initialSlots),
|
||||
openSlots: make(map[flowKey]*coalesceSlot, initialSlots),
|
||||
pool: make([]*coalesceSlot, 0, initialSlots),
|
||||
backing: make([]byte, 0, initialSlots*65535),
|
||||
}
|
||||
if gw, ok := tio.SupportsGSO(w, tio.GSOProtoTCP); ok {
|
||||
c.gsoW = gw
|
||||
}
|
||||
return c
|
||||
}
|
||||
|
||||
// parsedTCP holds the fields extracted from a single parse so later steps
|
||||
// (admission, slot lookup, canAppend) don't re-walk the header.
|
||||
type parsedTCP struct {
|
||||
fk flowKey
|
||||
ipHdrLen int
|
||||
tcpHdrLen int
|
||||
hdrLen int
|
||||
payLen int
|
||||
seq uint32
|
||||
flags byte
|
||||
}
|
||||
|
||||
// parseTCPBase extracts the flow key and IP/TCP offsets for any TCP packet,
|
||||
// regardless of whether it's admissible for coalescing. Returns ok=false
|
||||
// for non-TCP or malformed input. Accepts IPv4 (no options, no fragmentation)
|
||||
// and IPv6 (no extension headers).
|
||||
func parseTCPBase(pkt []byte) (parsedTCP, bool) {
|
||||
var p parsedTCP
|
||||
ip, ok := parseIPPrologue(pkt, ipProtoTCP)
|
||||
if !ok {
|
||||
return p, false
|
||||
}
|
||||
pkt = ip.pkt
|
||||
p.fk = ip.fk
|
||||
p.ipHdrLen = ip.ipHdrLen
|
||||
|
||||
if len(pkt) < p.ipHdrLen+20 {
|
||||
return p, false
|
||||
}
|
||||
tcpOff := int(pkt[p.ipHdrLen+12]>>4) * 4
|
||||
if tcpOff < 20 || tcpOff > 60 {
|
||||
return p, false
|
||||
}
|
||||
if len(pkt) < p.ipHdrLen+tcpOff {
|
||||
return p, false
|
||||
}
|
||||
p.tcpHdrLen = tcpOff
|
||||
p.hdrLen = p.ipHdrLen + tcpOff
|
||||
p.payLen = len(pkt) - p.hdrLen
|
||||
p.seq = binary.BigEndian.Uint32(pkt[p.ipHdrLen+4 : p.ipHdrLen+8])
|
||||
p.flags = pkt[p.ipHdrLen+13]
|
||||
p.fk.sport = binary.BigEndian.Uint16(pkt[p.ipHdrLen : p.ipHdrLen+2])
|
||||
p.fk.dport = binary.BigEndian.Uint16(pkt[p.ipHdrLen+2 : p.ipHdrLen+4])
|
||||
return p, true
|
||||
}
|
||||
|
||||
// TCP flag bits (byte 13 of the TCP header). Only the bits actually consulted
|
||||
// by the coalescer are named; FIN/SYN/RST/URG/CWR are rejected via the
|
||||
// negative mask in coalesceable, not by name.
|
||||
const (
|
||||
tcpFlagPsh = 0x08
|
||||
tcpFlagAck = 0x10
|
||||
tcpFlagEce = 0x40
|
||||
)
|
||||
|
||||
// coalesceable reports whether a parsed TCP segment is eligible for
|
||||
// coalescing. Accepts ACK, ACK|PSH, ACK|ECE, ACK|PSH|ECE with a
|
||||
// non-empty payload. CWR is excluded because it marks a one-shot
|
||||
// congestion-window-reduced transition the receiver must observe at a
|
||||
// segment boundary.
|
||||
func (p parsedTCP) coalesceable() bool {
|
||||
if p.flags&tcpFlagAck == 0 {
|
||||
return false
|
||||
}
|
||||
if p.flags&^(tcpFlagAck|tcpFlagPsh|tcpFlagEce) != 0 {
|
||||
return false
|
||||
}
|
||||
return p.payLen > 0
|
||||
}
|
||||
|
||||
func (c *TCPCoalescer) Reserve(sz int) []byte {
|
||||
return reserveFromBacking(&c.backing, sz)
|
||||
}
|
||||
|
||||
// Commit borrows pkt. The caller must keep pkt valid until the next Flush,
|
||||
// whether or not the packet was coalesced — passthrough (non-admissible)
|
||||
// packets are queued and written at Flush time, not synchronously.
|
||||
func (c *TCPCoalescer) Commit(pkt []byte) error {
|
||||
if c.gsoW == nil {
|
||||
c.addPassthrough(pkt)
|
||||
return nil
|
||||
}
|
||||
info, ok := parseTCPBase(pkt)
|
||||
if !ok {
|
||||
c.addPassthrough(pkt)
|
||||
return nil
|
||||
}
|
||||
return c.commitParsed(pkt, info)
|
||||
}
|
||||
|
||||
// commitParsed is the post-parse half of Commit. The caller must have
|
||||
// already verified parseTCPBase succeeded (info is a valid TCP parse).
|
||||
// Used by MultiCoalescer.Commit to avoid re-walking the IP/TCP header
|
||||
// after the dispatcher has already done so.
|
||||
func (c *TCPCoalescer) commitParsed(pkt []byte, info parsedTCP) error {
|
||||
if c.gsoW == nil {
|
||||
c.addPassthrough(pkt)
|
||||
return nil
|
||||
}
|
||||
if !info.coalesceable() {
|
||||
// TCP but not admissible (SYN/FIN/RST/URG/CWR or zero-payload).
|
||||
// Seal this flow's open slot so later in-flow packets don't extend
|
||||
// it and accidentally reorder past this passthrough.
|
||||
if last := c.lastSlot; last != nil && last.fk == info.fk {
|
||||
c.lastSlot = nil
|
||||
}
|
||||
delete(c.openSlots, info.fk)
|
||||
c.addPassthrough(pkt)
|
||||
return nil
|
||||
}
|
||||
|
||||
// Single-flow fast path: with only one open flow the cache hits every
|
||||
// packet, and len(openSlots)==1 lets us skip the 38-byte fk compare
|
||||
// when there are multiple flows in flight (where the hit rate would
|
||||
// be ~0 and the compare is pure overhead).
|
||||
var open *coalesceSlot
|
||||
if last := c.lastSlot; last != nil && len(c.openSlots) == 1 && last.fk == info.fk {
|
||||
open = last
|
||||
} else {
|
||||
open = c.openSlots[info.fk]
|
||||
}
|
||||
if open != nil {
|
||||
if c.canAppend(open, pkt, info) {
|
||||
c.appendPayload(open, pkt, info)
|
||||
if open.psh {
|
||||
delete(c.openSlots, info.fk)
|
||||
c.lastSlot = nil
|
||||
} else {
|
||||
c.lastSlot = open
|
||||
}
|
||||
return nil
|
||||
}
|
||||
// Can't extend — seal it and fall through to seed a fresh slot.
|
||||
delete(c.openSlots, info.fk)
|
||||
if c.lastSlot == open {
|
||||
c.lastSlot = nil
|
||||
}
|
||||
}
|
||||
c.seed(pkt, info)
|
||||
return nil
|
||||
}
|
||||
|
||||
// Flush emits every queued event in (per-flow) seq order. Coalesced slots
|
||||
// go out via WriteGSO; passthrough slots go out via plainW.Write.
|
||||
// reorderForFlush first sorts each flow's slots into TCP-seq order within
|
||||
// passthrough-bounded segments and merges contiguous adjacent slots, so
|
||||
// any wire-side reorder that crossed an rxOrder batch boundary doesn't
|
||||
// get amplified into kernel-visible reorder by the slot machinery.
|
||||
// Returns the first error observed; keeps draining so one bad packet
|
||||
// doesn't hold up the rest. After Flush returns, borrowed payload slices
|
||||
// may be recycled.
|
||||
func (c *TCPCoalescer) Flush() error {
|
||||
c.reorderForFlush()
|
||||
var first error
|
||||
for _, s := range c.slots {
|
||||
var err error
|
||||
if s.passthrough {
|
||||
_, err = c.plainW.Write(s.rawPkt)
|
||||
} else {
|
||||
err = c.flushSlot(s)
|
||||
}
|
||||
if err != nil && first == nil {
|
||||
first = err
|
||||
}
|
||||
c.release(s)
|
||||
}
|
||||
clear(c.slots)
|
||||
c.slots = c.slots[:0]
|
||||
clear(c.openSlots)
|
||||
c.lastSlot = nil
|
||||
|
||||
c.backing = c.backing[:0]
|
||||
return first
|
||||
}
|
||||
|
||||
func (c *TCPCoalescer) addPassthrough(pkt []byte) {
|
||||
s := c.take()
|
||||
s.passthrough = true
|
||||
s.rawPkt = pkt
|
||||
c.slots = append(c.slots, s)
|
||||
}
|
||||
|
||||
func (c *TCPCoalescer) seed(pkt []byte, info parsedTCP) {
|
||||
if info.hdrLen > tcpCoalesceHdrCap || info.hdrLen+info.payLen > tcpCoalesceBufSize {
|
||||
// Pathological shape — can't fit our scratch, emit as-is.
|
||||
c.addPassthrough(pkt)
|
||||
return
|
||||
}
|
||||
s := c.take()
|
||||
s.passthrough = false
|
||||
s.rawPkt = nil
|
||||
copy(s.hdrBuf[:], pkt[:info.hdrLen])
|
||||
s.hdrLen = info.hdrLen
|
||||
s.ipHdrLen = info.ipHdrLen
|
||||
s.isV6 = info.fk.isV6
|
||||
s.fk = info.fk
|
||||
s.gsoSize = info.payLen
|
||||
s.numSeg = 1
|
||||
s.totalPay = info.payLen
|
||||
s.nextSeq = info.seq + uint32(info.payLen)
|
||||
s.psh = info.flags&tcpFlagPsh != 0
|
||||
s.payIovs = append(s.payIovs[:0], pkt[info.hdrLen:info.hdrLen+info.payLen])
|
||||
c.slots = append(c.slots, s)
|
||||
if !s.psh {
|
||||
c.openSlots[info.fk] = s
|
||||
c.lastSlot = s
|
||||
} else if last := c.lastSlot; last != nil && last.fk == info.fk {
|
||||
// PSH-on-seed seals the slot immediately. Any prior cached open
|
||||
// slot for this flow has just been sealed-and-replaced by this
|
||||
// passthrough-shaped seed, so drop the cache too.
|
||||
c.lastSlot = nil
|
||||
}
|
||||
}
|
||||
|
||||
// canAppend reports whether info's packet extends the slot's seed: same
|
||||
// header shape and stable contents, adjacent seq, not oversized, chain not
|
||||
// closed.
|
||||
func (c *TCPCoalescer) canAppend(s *coalesceSlot, pkt []byte, info parsedTCP) bool {
|
||||
if s.psh {
|
||||
return false
|
||||
}
|
||||
if info.hdrLen != s.hdrLen {
|
||||
return false
|
||||
}
|
||||
if info.seq != s.nextSeq {
|
||||
return false
|
||||
}
|
||||
if s.numSeg >= tcpCoalesceMaxSegs {
|
||||
return false
|
||||
}
|
||||
if info.payLen > s.gsoSize {
|
||||
return false
|
||||
}
|
||||
if s.hdrLen+s.totalPay+info.payLen > tcpCoalesceBufSize {
|
||||
return false
|
||||
}
|
||||
// ECE state must be stable across a burst — receivers expect the
|
||||
// flag set on every segment of a CE-echoing window or none.
|
||||
seedFlags := s.hdrBuf[s.ipHdrLen+13]
|
||||
if (seedFlags^info.flags)&tcpFlagEce != 0 {
|
||||
return false
|
||||
}
|
||||
if !headersMatch(s.hdrBuf[:s.hdrLen], pkt[:info.hdrLen], s.isV6, s.ipHdrLen) {
|
||||
return false
|
||||
}
|
||||
return true
|
||||
}
|
||||
|
||||
func (c *TCPCoalescer) appendPayload(s *coalesceSlot, pkt []byte, info parsedTCP) {
|
||||
s.payIovs = append(s.payIovs, pkt[info.hdrLen:info.hdrLen+info.payLen])
|
||||
s.numSeg++
|
||||
s.totalPay += info.payLen
|
||||
s.nextSeq = info.seq + uint32(info.payLen)
|
||||
if info.flags&tcpFlagPsh != 0 {
|
||||
// Propagate PSH into the seed header so kernel TSO sets it on the
|
||||
// last segment. Without this the sender's push signal is dropped.
|
||||
s.hdrBuf[s.ipHdrLen+13] |= tcpFlagPsh
|
||||
}
|
||||
// Merge IP-level CE marks into the seed: headersMatch ignores ECN, so
|
||||
// this is the one place the signal is preserved.
|
||||
mergeECNIntoSeed(s.hdrBuf[:s.ipHdrLen], pkt[:s.ipHdrLen], s.isV6)
|
||||
if info.payLen < s.gsoSize || info.flags&tcpFlagPsh != 0 {
|
||||
s.psh = true
|
||||
}
|
||||
}
|
||||
|
||||
func (c *TCPCoalescer) take() *coalesceSlot {
|
||||
if n := len(c.pool); n > 0 {
|
||||
s := c.pool[n-1]
|
||||
c.pool[n-1] = nil
|
||||
c.pool = c.pool[:n-1]
|
||||
return s
|
||||
}
|
||||
return &coalesceSlot{}
|
||||
}
|
||||
|
||||
func (c *TCPCoalescer) release(s *coalesceSlot) {
|
||||
s.passthrough = false
|
||||
s.rawPkt = nil
|
||||
clear(s.payIovs)
|
||||
s.payIovs = s.payIovs[:0]
|
||||
s.numSeg = 0
|
||||
s.totalPay = 0
|
||||
s.psh = false
|
||||
c.pool = append(c.pool, s)
|
||||
}
|
||||
|
||||
// flushSlot patches the header and calls WriteGSO. Does not remove the
|
||||
// slot from c.slots.
|
||||
func (c *TCPCoalescer) flushSlot(s *coalesceSlot) error {
|
||||
total := s.hdrLen + s.totalPay
|
||||
l4Len := total - s.ipHdrLen
|
||||
hdr := s.hdrBuf[:s.hdrLen]
|
||||
|
||||
if s.isV6 {
|
||||
binary.BigEndian.PutUint16(hdr[4:6], uint16(l4Len))
|
||||
} else {
|
||||
binary.BigEndian.PutUint16(hdr[2:4], uint16(total))
|
||||
hdr[10] = 0
|
||||
hdr[11] = 0
|
||||
binary.BigEndian.PutUint16(hdr[10:12], ipv4HdrChecksum(hdr[:s.ipHdrLen]))
|
||||
}
|
||||
|
||||
var psum uint32
|
||||
if s.isV6 {
|
||||
psum = pseudoSumIPv6(hdr[8:24], hdr[24:40], ipProtoTCP, l4Len)
|
||||
} else {
|
||||
psum = pseudoSumIPv4(hdr[12:16], hdr[16:20], ipProtoTCP, l4Len)
|
||||
}
|
||||
tcsum := s.ipHdrLen + 16
|
||||
binary.BigEndian.PutUint16(hdr[tcsum:tcsum+2], foldOnceNoInvert(psum))
|
||||
|
||||
return c.gsoW.WriteGSO(hdr[:s.ipHdrLen], hdr[s.ipHdrLen:], s.payIovs, tio.GSOProtoTCP)
|
||||
}
|
||||
|
||||
// headersMatch compares two IP+TCP header prefixes for byte-for-byte
|
||||
// equality on every field that must be identical across coalesced
|
||||
// segments. Size/IPID/IPCsum/seq/flags/tcpCsum are masked out, as is the
|
||||
// 2-bit IP-level ECN field — appendPayload merges CE into the seed.
|
||||
func headersMatch(a, b []byte, isV6 bool, ipHdrLen int) bool {
|
||||
if len(a) != len(b) {
|
||||
return false
|
||||
}
|
||||
if !ipHeadersMatch(a, b, isV6) {
|
||||
return false
|
||||
}
|
||||
// TCP: compare [0:4] ports, [8:13] ack+dataoff, [14:16] window,
|
||||
// [18:tcpHdrLen] options (incl. urgent).
|
||||
tcp := ipHdrLen
|
||||
if !bytes.Equal(a[tcp:tcp+4], b[tcp:tcp+4]) {
|
||||
return false
|
||||
}
|
||||
if !bytes.Equal(a[tcp+8:tcp+13], b[tcp+8:tcp+13]) {
|
||||
return false
|
||||
}
|
||||
if !bytes.Equal(a[tcp+14:tcp+16], b[tcp+14:tcp+16]) {
|
||||
return false
|
||||
}
|
||||
if !bytes.Equal(a[tcp+18:], b[tcp+18:]) {
|
||||
return false
|
||||
}
|
||||
return true
|
||||
}
|
||||
|
||||
// reorderForFlush neutralizes wire-side reorder that the rxOrder buffer
|
||||
// couldn't catch (anything crossing a recvmmsg batch boundary). Without
|
||||
// this pass a small wire reorder — counter 250 arriving in batch K when
|
||||
// 200..249 are coming in batch K+1 — would seed an out-of-seq slot first
|
||||
// and emit it ahead of the lower-seq slot, manifesting at the inner TCP
|
||||
// receiver as a much larger reorder than the wire actually had.
|
||||
//
|
||||
// Two phases:
|
||||
// 1. Sort each passthrough-bounded segment of c.slots by (flow, seq).
|
||||
// Cross-flow ordering inside a segment isn't preserved (it never was
|
||||
// and doesn't matter for any single flow's TCP correctness).
|
||||
// 2. Sweep once and merge adjacent same-flow slots whose ranges are now
|
||||
// contiguous AND whose tail is gsoSize-aligned. The tail constraint
|
||||
// matters because the kernel TSO splitter chops at gsoSize from the
|
||||
// start of the merged payload — a short segment in the middle would
|
||||
// desynchronize every later segment.
|
||||
//
|
||||
// Passthrough slots act as barriers: the merge check skips them on either
|
||||
// side, so a SYN/FIN/RST/CWR is never reordered relative to its flow's
|
||||
// data.
|
||||
func (c *TCPCoalescer) reorderForFlush() {
|
||||
if len(c.slots) <= 1 {
|
||||
return
|
||||
}
|
||||
runStart := 0
|
||||
for i := 0; i <= len(c.slots); i++ {
|
||||
if i < len(c.slots) && !c.slots[i].passthrough {
|
||||
continue
|
||||
}
|
||||
c.sortRun(c.slots[runStart:i])
|
||||
runStart = i + 1
|
||||
}
|
||||
out := c.slots[:0]
|
||||
logged := false
|
||||
for _, s := range c.slots {
|
||||
if n := len(out); n > 0 {
|
||||
prev := out[n-1]
|
||||
if !prev.passthrough && !s.passthrough && prev.fk == s.fk {
|
||||
// Same-flow neighbors after sort. If they aren't seq-
|
||||
// contiguous it's a real gap — packets the wire reordered
|
||||
// across batches, or actual loss before nebula. Log it so
|
||||
// the operator can quantify how often it happens; the data
|
||||
// itself still emits in seq order, kernel TCP handles the
|
||||
// gap via its OOO queue.
|
||||
if prev.nextSeq != slotSeedSeq(s) {
|
||||
logged = true
|
||||
gap := int64(slotSeedSeq(s)) - int64(prev.nextSeq)
|
||||
slog.Default().Warn("tcp coalesce: cross-slot seq gap",
|
||||
"src", flowKeyAddr(s.fk, false),
|
||||
"dst", flowKeyAddr(s.fk, true),
|
||||
"sport", s.fk.sport,
|
||||
"dport", s.fk.dport,
|
||||
"prev_seed_seq", slotSeedSeq(prev),
|
||||
"prev_next_seq", prev.nextSeq,
|
||||
"this_seed_seq", slotSeedSeq(s),
|
||||
"gap_bytes", gap,
|
||||
"prev_seg_count", prev.numSeg,
|
||||
"prev_total_pay", prev.totalPay,
|
||||
)
|
||||
}
|
||||
if canMergeSlots(prev, s) {
|
||||
mergeSlots(prev, s)
|
||||
c.release(s)
|
||||
continue
|
||||
}
|
||||
}
|
||||
}
|
||||
out = append(out, s)
|
||||
}
|
||||
if logged {
|
||||
slog.Default().Warn("==== end of batch ====")
|
||||
}
|
||||
c.slots = out
|
||||
}
|
||||
|
||||
// flowKeyAddr returns the src or dst address from fk as a netip.Addr for
|
||||
// logging. Only used on the cold gap-log path so the netip allocation
|
||||
// doesn't matter.
|
||||
func flowKeyAddr(fk flowKey, dst bool) netip.Addr {
|
||||
src := fk.src
|
||||
if dst {
|
||||
src = fk.dst
|
||||
}
|
||||
if fk.isV6 {
|
||||
return netip.AddrFrom16(src)
|
||||
}
|
||||
var v4 [4]byte
|
||||
copy(v4[:], src[:4])
|
||||
return netip.AddrFrom4(v4)
|
||||
}
|
||||
|
||||
// sortRun stable-sorts run by (flowKey, seedSeq) so each flow's slots
|
||||
// cluster together in seq order, ready for the merge sweep. Stable so
|
||||
// equal-key slots keep their original relative position (defensive — a
|
||||
// duplicate seedSeq would already mean something's wrong upstream).
|
||||
func (c *TCPCoalescer) sortRun(run []*coalesceSlot) {
|
||||
if len(run) <= 1 {
|
||||
return
|
||||
}
|
||||
// slices.SortStableFunc with a free, non-capturing comparator avoids the
|
||||
// reflection + closure-escape allocations that sort.SliceStable forces.
|
||||
slices.SortStableFunc(run, compareCoalesceSlots)
|
||||
}
|
||||
|
||||
func compareCoalesceSlots(a, b *coalesceSlot) int {
|
||||
if cmp := flowKeyCompare(a.fk, b.fk); cmp != 0 {
|
||||
return cmp
|
||||
}
|
||||
aSeq, bSeq := slotSeedSeq(a), slotSeedSeq(b)
|
||||
if aSeq == bSeq {
|
||||
return 0
|
||||
}
|
||||
if tcpSeqLess(aSeq, bSeq) {
|
||||
return -1
|
||||
}
|
||||
return 1
|
||||
}
|
||||
|
||||
// slotSeedSeq returns the TCP seq of the slot's seed (first segment).
|
||||
// nextSeq tracks the seq just past the last appended byte; subtracting
|
||||
// totalPay walks back to the seed. uint32 wraparound is the right TCP
|
||||
// arithmetic so no special-casing is needed.
|
||||
func slotSeedSeq(s *coalesceSlot) uint32 {
|
||||
return s.nextSeq - uint32(s.totalPay)
|
||||
}
|
||||
|
||||
// tcpSeqLess reports whether a precedes b in TCP serial-number arithmetic
|
||||
// (RFC 1323 §2.3). The signed int32 cast turns the modular subtraction
|
||||
// into the right comparison even across the 2^32 wrap.
|
||||
func tcpSeqLess(a, b uint32) bool {
|
||||
return int32(a-b) < 0
|
||||
}
|
||||
|
||||
// flowKeyCompare orders flowKeys deterministically. The exact ordering
|
||||
// is irrelevant — only that same-flow slots cluster together so the
|
||||
// post-sort sweep can merge contiguous pairs.
|
||||
func flowKeyCompare(a, b flowKey) int {
|
||||
// Cheap scalar fields first so most non-matching keys short-circuit
|
||||
// without ever calling bytes.Compare. sport is the ephemeral port on
|
||||
// egress flows and discriminates fastest. For matching keys (same
|
||||
// flow), array equality on src/dst inlines to word-sized compares,
|
||||
// so we only pay bytes.Compare when the arrays actually differ.
|
||||
if a.sport != b.sport {
|
||||
if a.sport < b.sport {
|
||||
return -1
|
||||
}
|
||||
return 1
|
||||
}
|
||||
if a.dport != b.dport {
|
||||
if a.dport < b.dport {
|
||||
return -1
|
||||
}
|
||||
return 1
|
||||
}
|
||||
if a.dst != b.dst {
|
||||
return bytes.Compare(a.dst[:], b.dst[:])
|
||||
}
|
||||
if a.src != b.src {
|
||||
return bytes.Compare(a.src[:], b.src[:])
|
||||
}
|
||||
if a.isV6 != b.isV6 {
|
||||
if !a.isV6 {
|
||||
return -1
|
||||
}
|
||||
return 1
|
||||
}
|
||||
return 0
|
||||
}
|
||||
|
||||
// canMergeSlots reports whether s can fold into prev as one merged TSO
|
||||
// superpacket. Same flow, contiguous TCP byte range, equal gsoSize, and
|
||||
// fits within the kernel TSO limits. The tail-of-prev check rejects any
|
||||
// merge whose first slot ended on a sub-gsoSize segment — kernel TSO
|
||||
// would split the merged skb at gsoSize boundaries from the start, so a
|
||||
// short segment in the middle would corrupt every later segment. PSH and
|
||||
// ECE state must agree across both slots: PSH is a semantic delimiter
|
||||
// (preserving the sender's push boundary) and ECE state must be uniform
|
||||
// across a window (the same rule canAppend enforces for in-flow appends).
|
||||
//
|
||||
// Note: a slot sealed by reorder (canAppend returned false on seq
|
||||
// mismatch) keeps psh=false, so this restriction does not block the
|
||||
// reorder-fix merge — only legitimate PSH-set seals.
|
||||
func canMergeSlots(prev, s *coalesceSlot) bool {
|
||||
if prev.psh {
|
||||
return false
|
||||
}
|
||||
if prev.fk != s.fk {
|
||||
return false
|
||||
}
|
||||
if prev.gsoSize != s.gsoSize {
|
||||
return false
|
||||
}
|
||||
if prev.nextSeq != slotSeedSeq(s) {
|
||||
return false
|
||||
}
|
||||
if prev.numSeg+s.numSeg > tcpCoalesceMaxSegs {
|
||||
return false
|
||||
}
|
||||
if prev.hdrLen+prev.totalPay+s.totalPay > tcpCoalesceBufSize {
|
||||
return false
|
||||
}
|
||||
if len(prev.payIovs[len(prev.payIovs)-1]) != prev.gsoSize {
|
||||
return false
|
||||
}
|
||||
prevFlags := prev.hdrBuf[prev.ipHdrLen+13]
|
||||
sFlags := s.hdrBuf[s.ipHdrLen+13]
|
||||
if (prevFlags^sFlags)&tcpFlagEce != 0 {
|
||||
return false
|
||||
}
|
||||
if !headersMatch(prev.hdrBuf[:prev.hdrLen], s.hdrBuf[:s.hdrLen], prev.isV6, prev.ipHdrLen) {
|
||||
return false
|
||||
}
|
||||
return true
|
||||
}
|
||||
|
||||
// mergeSlots folds src into dst in place: payIovs concatenated, counters
|
||||
// and totals updated, PSH and IP-level CE bits OR'd into the seed header
|
||||
// so neither the push signal nor a CE mark is lost. The seed header's
|
||||
// seq, gsoSize, and fk are unchanged. Caller is responsible for releasing
|
||||
// src (it's no longer in c.slots after this call).
|
||||
func mergeSlots(dst, src *coalesceSlot) {
|
||||
dst.payIovs = append(dst.payIovs, src.payIovs...)
|
||||
dst.numSeg += src.numSeg
|
||||
dst.totalPay += src.totalPay
|
||||
dst.nextSeq = src.nextSeq
|
||||
if src.psh {
|
||||
dst.psh = true
|
||||
dst.hdrBuf[dst.ipHdrLen+13] |= tcpFlagPsh
|
||||
}
|
||||
mergeECNIntoSeed(dst.hdrBuf[:dst.ipHdrLen], src.hdrBuf[:src.ipHdrLen], dst.isV6)
|
||||
}
|
||||
|
||||
// ipv4HdrChecksum computes the IPv4 header checksum over hdr (which must
|
||||
// already have its checksum field zeroed) and returns the folded/inverted
|
||||
// 16-bit value to store.
|
||||
func ipv4HdrChecksum(hdr []byte) uint16 {
|
||||
var sum uint32
|
||||
for i := 0; i+1 < len(hdr); i += 2 {
|
||||
sum += uint32(binary.BigEndian.Uint16(hdr[i : i+2]))
|
||||
}
|
||||
if len(hdr)%2 == 1 {
|
||||
sum += uint32(hdr[len(hdr)-1]) << 8
|
||||
}
|
||||
for sum>>16 != 0 {
|
||||
sum = (sum & 0xffff) + (sum >> 16)
|
||||
}
|
||||
return ^uint16(sum)
|
||||
}
|
||||
|
||||
// pseudoSumIPv4 / pseudoSumIPv6 build the L4 pseudo-header partial sum
|
||||
// expected by the virtio NEEDS_CSUM kernel path: the 32-bit accumulator
|
||||
// before folding. proto selects the L4 (TCP or UDP); the UDP coalescer
|
||||
// reuses these helpers.
|
||||
func pseudoSumIPv4(src, dst []byte, proto byte, l4Len int) uint32 {
|
||||
var sum uint32
|
||||
sum += uint32(binary.BigEndian.Uint16(src[0:2]))
|
||||
sum += uint32(binary.BigEndian.Uint16(src[2:4]))
|
||||
sum += uint32(binary.BigEndian.Uint16(dst[0:2]))
|
||||
sum += uint32(binary.BigEndian.Uint16(dst[2:4]))
|
||||
sum += uint32(proto)
|
||||
sum += uint32(l4Len)
|
||||
return sum
|
||||
}
|
||||
|
||||
func pseudoSumIPv6(src, dst []byte, proto byte, l4Len int) uint32 {
|
||||
var sum uint32
|
||||
for i := 0; i < 16; i += 2 {
|
||||
sum += uint32(binary.BigEndian.Uint16(src[i : i+2]))
|
||||
sum += uint32(binary.BigEndian.Uint16(dst[i : i+2]))
|
||||
}
|
||||
sum += uint32(l4Len >> 16)
|
||||
sum += uint32(l4Len & 0xffff)
|
||||
sum += uint32(proto)
|
||||
return sum
|
||||
}
|
||||
|
||||
// foldOnceNoInvert folds the 32-bit accumulator to 16 bits and returns it
|
||||
// unchanged (no one's complement). This is what virtio NEEDS_CSUM wants in
|
||||
// the L4 checksum field — the kernel will add the payload sum and invert.
|
||||
func foldOnceNoInvert(sum uint32) uint16 {
|
||||
for sum>>16 != 0 {
|
||||
sum = (sum & 0xffff) + (sum >> 16)
|
||||
}
|
||||
return uint16(sum)
|
||||
}
|
||||
@@ -0,0 +1,239 @@
|
||||
package batch
|
||||
|
||||
import (
|
||||
"encoding/binary"
|
||||
"runtime"
|
||||
"testing"
|
||||
|
||||
"github.com/slackhq/nebula/overlay/tio"
|
||||
)
|
||||
|
||||
// nopTunWriter is a zero-alloc tio.GSOWriter for benchmarks. Discards
|
||||
// everything but satisfies the interface the coalescer detects.
|
||||
type nopTunWriter struct{}
|
||||
|
||||
func (nopTunWriter) Write(p []byte) (int, error) { return len(p), nil }
|
||||
func (nopTunWriter) WriteGSO(hdr []byte, transportHdr []byte, pays [][]byte, _ tio.GSOProto) error {
|
||||
return nil
|
||||
}
|
||||
func (nopTunWriter) Capabilities() tio.Capabilities {
|
||||
return tio.Capabilities{TSO: true, USO: true}
|
||||
}
|
||||
|
||||
// buildTCPv4BulkFlow returns a slice of N adjacent ACK-only TCP segments
|
||||
// on a single 5-tuple, each carrying payloadLen bytes. Seq numbers are
|
||||
// contiguous so every packet is coalesceable onto the previous one.
|
||||
func buildTCPv4BulkFlow(n, payloadLen int) [][]byte {
|
||||
pkts := make([][]byte, n)
|
||||
pay := make([]byte, payloadLen)
|
||||
seq := uint32(1000)
|
||||
for i := range n {
|
||||
pkts[i] = buildTCPv4(seq, tcpAck, pay)
|
||||
seq += uint32(payloadLen)
|
||||
}
|
||||
return pkts
|
||||
}
|
||||
|
||||
// buildTCPv4Interleaved returns nFlows * perFlow packets with per-flow
|
||||
// seq continuity but round-robin across flows — worst case for any
|
||||
// "last-slot" cache.
|
||||
func buildTCPv4Interleaved(nFlows, perFlow, payloadLen int) [][]byte {
|
||||
pay := make([]byte, payloadLen)
|
||||
seqs := make([]uint32, nFlows)
|
||||
for i := range seqs {
|
||||
seqs[i] = uint32(1000 + i*1000000)
|
||||
}
|
||||
pkts := make([][]byte, 0, nFlows*perFlow)
|
||||
for range perFlow {
|
||||
for f := range nFlows {
|
||||
sport := uint16(10000 + f)
|
||||
pkts = append(pkts, buildTCPv4Ports(sport, 2000, seqs[f], tcpAck, pay))
|
||||
seqs[f] += uint32(payloadLen)
|
||||
}
|
||||
}
|
||||
return pkts
|
||||
}
|
||||
|
||||
// buildICMPv4 returns a minimal non-TCP packet that takes the passthrough
|
||||
// branch in Commit.
|
||||
func buildICMPv4() []byte {
|
||||
pkt := make([]byte, 28)
|
||||
pkt[0] = 0x45
|
||||
binary.BigEndian.PutUint16(pkt[2:4], 28)
|
||||
pkt[9] = 1 // ICMP
|
||||
copy(pkt[12:16], []byte{10, 0, 0, 1})
|
||||
copy(pkt[16:20], []byte{10, 0, 0, 2})
|
||||
return pkt
|
||||
}
|
||||
|
||||
// runCommitBench drives Commit over pkts batchSize at a time, flushing
|
||||
// between batches, and reports per-packet cost.
|
||||
func runCommitBench(b *testing.B, pkts [][]byte, batchSize int) {
|
||||
b.Helper()
|
||||
c := NewTCPCoalescer(nopTunWriter{})
|
||||
b.ReportAllocs()
|
||||
b.SetBytes(int64(len(pkts[0])))
|
||||
b.ResetTimer()
|
||||
for i := 0; i < b.N; i++ {
|
||||
pkt := pkts[i%len(pkts)]
|
||||
if err := c.Commit(pkt); err != nil {
|
||||
b.Fatal(err)
|
||||
}
|
||||
if (i+1)%batchSize == 0 {
|
||||
if err := c.Flush(); err != nil {
|
||||
b.Fatal(err)
|
||||
}
|
||||
}
|
||||
}
|
||||
// Drain any trailing partial batch so slot state doesn't leak across runs.
|
||||
_ = c.Flush()
|
||||
}
|
||||
|
||||
// BenchmarkCommitSingleFlow is the bulk-TCP steady state: one flow,
|
||||
// contiguous seq, 1200-byte payloads. Every packet past the seed should
|
||||
// append onto the open slot. This is the case we most care about.
|
||||
func BenchmarkCommitSingleFlow(b *testing.B) {
|
||||
pkts := buildTCPv4BulkFlow(tcpCoalesceMaxSegs, 1200)
|
||||
runCommitBench(b, pkts, tcpCoalesceMaxSegs)
|
||||
}
|
||||
|
||||
// BenchmarkCommitInterleaved4 has 4 concurrent bulk flows round-robined.
|
||||
// A single-entry fast-path cache will miss on every packet; an N-way
|
||||
// cache or map lookup carries the weight.
|
||||
func BenchmarkCommitInterleaved4(b *testing.B) {
|
||||
pkts := buildTCPv4Interleaved(4, tcpCoalesceMaxSegs, 1200)
|
||||
runCommitBench(b, pkts, len(pkts))
|
||||
}
|
||||
|
||||
// BenchmarkCommitInterleaved16 stresses the map at higher flow counts.
|
||||
func BenchmarkCommitInterleaved16(b *testing.B) {
|
||||
pkts := buildTCPv4Interleaved(16, tcpCoalesceMaxSegs, 1200)
|
||||
runCommitBench(b, pkts, len(pkts))
|
||||
}
|
||||
|
||||
// BenchmarkCommitPassthrough exercises the non-TCP branch: parseTCPBase
|
||||
// bails early and addPassthrough is the only work.
|
||||
func BenchmarkCommitPassthrough(b *testing.B) {
|
||||
pkt := buildICMPv4()
|
||||
pkts := make([][]byte, 64)
|
||||
for i := range pkts {
|
||||
pkts[i] = pkt
|
||||
}
|
||||
runCommitBench(b, pkts, 64)
|
||||
}
|
||||
|
||||
// BenchmarkCommitNonCoalesceableTCP sends SYN|ACK packets on one flow.
|
||||
// Each packet takes the "TCP but not admissible" branch which does a
|
||||
// map delete + passthrough. Measures the seal-without-slot cost.
|
||||
func BenchmarkCommitNonCoalesceableTCP(b *testing.B) {
|
||||
pay := make([]byte, 0)
|
||||
pkts := make([][]byte, 64)
|
||||
for i := range pkts {
|
||||
pkts[i] = buildTCPv4(uint32(1000+i), tcpSyn|tcpAck, pay)
|
||||
}
|
||||
runCommitBench(b, pkts, 64)
|
||||
}
|
||||
|
||||
// runMultiCommitBench drives MultiCoalescer.Commit. The dispatcher does
|
||||
// the IP/L4 parse once and passes the parsed struct to the lane, so this
|
||||
// is the bench that shows the savings of skipping the lane's re-parse.
|
||||
func runMultiCommitBench(b *testing.B, pkts [][]byte, batchSize int) {
|
||||
b.Helper()
|
||||
m := NewMultiCoalescer(nopTunWriter{}, true, true)
|
||||
b.ReportAllocs()
|
||||
b.SetBytes(int64(len(pkts[0])))
|
||||
b.ResetTimer()
|
||||
for i := 0; i < b.N; i++ {
|
||||
pkt := pkts[i%len(pkts)]
|
||||
if err := m.Commit(pkt); err != nil {
|
||||
b.Fatal(err)
|
||||
}
|
||||
if (i+1)%batchSize == 0 {
|
||||
if err := m.Flush(); err != nil {
|
||||
b.Fatal(err)
|
||||
}
|
||||
}
|
||||
}
|
||||
_ = m.Flush()
|
||||
}
|
||||
|
||||
// BenchmarkMultiCommitSingleFlow is the multi-lane analogue of
|
||||
// BenchmarkCommitSingleFlow — same workload but routed through the
|
||||
// dispatcher. The delta vs the single-lane bench measures dispatcher
|
||||
// overhead.
|
||||
func BenchmarkMultiCommitSingleFlow(b *testing.B) {
|
||||
pkts := buildTCPv4BulkFlow(tcpCoalesceMaxSegs, 1200)
|
||||
runMultiCommitBench(b, pkts, tcpCoalesceMaxSegs)
|
||||
}
|
||||
|
||||
// BenchmarkMultiCommitInterleaved4 mirrors BenchmarkCommitInterleaved4
|
||||
// through the dispatcher.
|
||||
func BenchmarkMultiCommitInterleaved4(b *testing.B) {
|
||||
pkts := buildTCPv4Interleaved(4, tcpCoalesceMaxSegs, 1200)
|
||||
runMultiCommitBench(b, pkts, len(pkts))
|
||||
}
|
||||
|
||||
// flowKeyPair is one comparison input for the flowKeyCompare bench.
|
||||
type flowKeyPair struct{ a, b flowKey }
|
||||
|
||||
// makeFlowKey builds an IPv4 flowKey from compact inputs.
|
||||
func makeFlowKey(srcLow, dstLow uint32, sport, dport uint16) flowKey {
|
||||
var fk flowKey
|
||||
binary.BigEndian.PutUint32(fk.src[12:16], srcLow)
|
||||
binary.BigEndian.PutUint32(fk.dst[12:16], dstLow)
|
||||
fk.sport = sport
|
||||
fk.dport = dport
|
||||
return fk
|
||||
}
|
||||
|
||||
// flowKeyCases are the workload mixes flowKeyCompare sees in practice.
|
||||
// - sameFlow: equal keys; tests the equal-path cost (sort runs hit this
|
||||
// repeatedly when many segments share a flow).
|
||||
// - sportDiffers: same src/dst/dport, different sport — the typical
|
||||
// "sibling flows from one host to one server" pattern.
|
||||
// - dstDiffers: same src/sport/dport, different dst — outbound to many
|
||||
// servers from a fixed local port.
|
||||
// - allDiffer: every field differs; worst case for short-circuiting.
|
||||
func flowKeyCases() map[string][]flowKeyPair {
|
||||
const n = 64
|
||||
cases := map[string][]flowKeyPair{
|
||||
"sameFlow": make([]flowKeyPair, n),
|
||||
"sportDiffers": make([]flowKeyPair, n),
|
||||
"dstDiffers": make([]flowKeyPair, n),
|
||||
"allDiffer": make([]flowKeyPair, n),
|
||||
}
|
||||
for i := range n {
|
||||
base := makeFlowKey(0x0a000001, 0x0a000002, 40000, 443)
|
||||
cases["sameFlow"][i] = flowKeyPair{a: base, b: base}
|
||||
cases["sportDiffers"][i] = flowKeyPair{
|
||||
a: base,
|
||||
b: makeFlowKey(0x0a000001, 0x0a000002, uint16(40001+i), 443),
|
||||
}
|
||||
cases["dstDiffers"][i] = flowKeyPair{
|
||||
a: base,
|
||||
b: makeFlowKey(0x0a000001, uint32(0x0a000002+i+1), 40000, 443),
|
||||
}
|
||||
cases["allDiffer"][i] = flowKeyPair{
|
||||
a: makeFlowKey(uint32(0x0a000001+i), uint32(0x0a000002+i), uint16(40000+i), uint16(80+i)),
|
||||
b: makeFlowKey(uint32(0x0b000001+i), uint32(0x0b000002+i), uint16(50000+i), uint16(443+i)),
|
||||
}
|
||||
}
|
||||
return cases
|
||||
}
|
||||
|
||||
// BenchmarkFlowKeyCompare measures flowKeyCompare across the workloads
|
||||
// the sort step actually sees. Use this to compare reorderings.
|
||||
func BenchmarkFlowKeyCompare(b *testing.B) {
|
||||
for name, pairs := range flowKeyCases() {
|
||||
b.Run(name, func(b *testing.B) {
|
||||
b.ReportAllocs()
|
||||
b.ResetTimer()
|
||||
var sink int
|
||||
for i := 0; i < b.N; i++ {
|
||||
p := pairs[i&(len(pairs)-1)]
|
||||
sink += flowKeyCompare(p.a, p.b)
|
||||
}
|
||||
runtime.KeepAlive(sink)
|
||||
})
|
||||
}
|
||||
}
|
||||
File diff suppressed because it is too large
Load Diff
@@ -0,0 +1,64 @@
|
||||
package batch
|
||||
|
||||
import "net/netip"
|
||||
|
||||
const SendBatchCap = 128
|
||||
|
||||
// batchWriter is the minimal subset of udp.Conn needed by SendBatch to flush.
|
||||
type batchWriter interface {
|
||||
WriteBatch(bufs [][]byte, addrs []netip.AddrPort, outerECNs []byte) error
|
||||
}
|
||||
|
||||
// SendBatch accumulates encrypted UDP packets and flushes them via WriteBatch.
|
||||
// One SendBatch is owned by each listenIn goroutine; no locking is needed.
|
||||
// The backing arena grows on demand: when there isn't room for the next slot
|
||||
// we allocate a fresh backing array. Already-committed slices keep referencing
|
||||
// the old array and remain valid until Flush drops them.
|
||||
type SendBatch struct {
|
||||
out batchWriter
|
||||
bufs [][]byte
|
||||
dsts []netip.AddrPort
|
||||
ecns []byte
|
||||
backing []byte
|
||||
}
|
||||
|
||||
func NewSendBatch(out batchWriter, batchCap, slotCap int) *SendBatch {
|
||||
return &SendBatch{
|
||||
out: out,
|
||||
bufs: make([][]byte, 0, batchCap),
|
||||
dsts: make([]netip.AddrPort, 0, batchCap),
|
||||
ecns: make([]byte, 0, batchCap),
|
||||
backing: make([]byte, 0, batchCap*slotCap),
|
||||
}
|
||||
}
|
||||
|
||||
func (b *SendBatch) Reserve(sz int) []byte {
|
||||
if len(b.backing)+sz > cap(b.backing) {
|
||||
// Grow: allocate a fresh backing. Already-committed slices still
|
||||
// reference the old array and remain valid until Flush drops them.
|
||||
newCap := max(cap(b.backing)*2, sz)
|
||||
b.backing = make([]byte, 0, newCap)
|
||||
}
|
||||
start := len(b.backing)
|
||||
b.backing = b.backing[:start+sz]
|
||||
return b.backing[start : start+sz : start+sz]
|
||||
}
|
||||
|
||||
func (b *SendBatch) Commit(pkt []byte, dst netip.AddrPort, outerECN byte) {
|
||||
b.bufs = append(b.bufs, pkt)
|
||||
b.dsts = append(b.dsts, dst)
|
||||
b.ecns = append(b.ecns, outerECN)
|
||||
}
|
||||
|
||||
func (b *SendBatch) Flush() error {
|
||||
var err error
|
||||
if len(b.bufs) > 0 {
|
||||
err = b.out.WriteBatch(b.bufs, b.dsts, b.ecns)
|
||||
}
|
||||
clear(b.bufs)
|
||||
b.bufs = b.bufs[:0]
|
||||
b.dsts = b.dsts[:0]
|
||||
b.ecns = b.ecns[:0]
|
||||
b.backing = b.backing[:0]
|
||||
return err
|
||||
}
|
||||
@@ -0,0 +1,124 @@
|
||||
package batch
|
||||
|
||||
import (
|
||||
"net/netip"
|
||||
"testing"
|
||||
)
|
||||
|
||||
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, 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, 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, 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])
|
||||
}
|
||||
}
|
||||
@@ -0,0 +1,336 @@
|
||||
package batch
|
||||
|
||||
import (
|
||||
"encoding/binary"
|
||||
"io"
|
||||
|
||||
"github.com/slackhq/nebula/overlay/tio"
|
||||
)
|
||||
|
||||
// ipProtoUDP is the IANA protocol number for UDP.
|
||||
const ipProtoUDP = 17
|
||||
|
||||
// udpCoalesceBufSize caps total bytes per UDP superpacket. Mirrors the
|
||||
// kernel's gso_max_size; payloads beyond this are emitted as-is.
|
||||
const udpCoalesceBufSize = 65535
|
||||
|
||||
// udpCoalesceMaxSegs caps how many segments we'll coalesce. Kernel UDP-GSO
|
||||
// accepts up to 64 segments per skb (UDP_MAX_SEGMENTS); stay under that.
|
||||
const udpCoalesceMaxSegs = 64
|
||||
|
||||
// udpCoalesceHdrCap is the scratch space we copy a seed's IP+UDP header
|
||||
// into. IPv6 (40) + UDP (8) = 48; round up for safety.
|
||||
const udpCoalesceHdrCap = 64
|
||||
|
||||
// udpSlot is one entry in the UDPCoalescer's ordered event queue. Same
|
||||
// passthrough-vs-coalesced shape as the TCP coalescer's slot, but no
|
||||
// seq/PSH/CWR bookkeeping — UDP segments only need 5-tuple + length
|
||||
// matching to coalesce.
|
||||
type udpSlot struct {
|
||||
passthrough bool
|
||||
rawPkt []byte // borrowed when passthrough
|
||||
|
||||
fk flowKey
|
||||
hdrBuf [udpCoalesceHdrCap]byte
|
||||
hdrLen int
|
||||
ipHdrLen int
|
||||
isV6 bool
|
||||
gsoSize int // per-segment UDP payload length
|
||||
numSeg int
|
||||
totalPay int
|
||||
// sealed closes the chain: set when a sub-gsoSize segment is appended
|
||||
// (kernel UDP-GSO requires every segment but the last to be exactly
|
||||
// gsoSize) or when limits are hit. No further appends after.
|
||||
sealed bool
|
||||
payIovs [][]byte
|
||||
}
|
||||
|
||||
// UDPCoalescer accumulates adjacent in-flow UDP datagrams across multiple
|
||||
// concurrent flows and emits each flow's run as a single GSO_UDP_L4
|
||||
// superpacket via tio.GSOWriter. Falls back to per-packet writes when the
|
||||
// underlying writer doesn't support USO.
|
||||
//
|
||||
// All output — coalesced or not — is deferred until Flush so per-flow
|
||||
// arrival order is preserved on the wire. Cross-flow order is NOT preserved
|
||||
// across the TCP/UDP/passthrough split when this coalescer runs alongside
|
||||
// others — see multi_coalesce.go. Per-flow order is preserved because a
|
||||
// single 5-tuple only ever lands in one lane and each lane preserves its
|
||||
// own slot order.
|
||||
//
|
||||
// Owns no locks; one coalescer per TUN write queue.
|
||||
type UDPCoalescer struct {
|
||||
plainW io.Writer
|
||||
gsoW tio.GSOWriter // nil when the queue can't accept GSO_UDP_L4
|
||||
|
||||
slots []*udpSlot
|
||||
openSlots map[flowKey]*udpSlot
|
||||
pool []*udpSlot
|
||||
|
||||
backing []byte
|
||||
}
|
||||
|
||||
// NewUDPCoalescer wraps w. The caller is responsible for only constructing
|
||||
// this when the underlying Queue's Capabilities advertise USO; otherwise
|
||||
// the kernel may reject GSO_UDP_L4 writes. If w does not implement
|
||||
// tio.GSOWriter at all (single-packet Queue), the coalescer degrades to
|
||||
// plain Writes — same defensive shape as the TCP coalescer.
|
||||
func NewUDPCoalescer(w io.Writer) *UDPCoalescer {
|
||||
c := &UDPCoalescer{
|
||||
plainW: w,
|
||||
slots: make([]*udpSlot, 0, initialSlots),
|
||||
openSlots: make(map[flowKey]*udpSlot, initialSlots),
|
||||
pool: make([]*udpSlot, 0, initialSlots),
|
||||
backing: make([]byte, 0, initialSlots*udpCoalesceBufSize),
|
||||
}
|
||||
if gw, ok := tio.SupportsGSO(w, tio.GSOProtoUDP); ok {
|
||||
c.gsoW = gw
|
||||
}
|
||||
return c
|
||||
}
|
||||
|
||||
// parsedUDP holds the fields extracted from a single parse so later steps
|
||||
// (admission, slot lookup, canAppend) don't re-walk the header.
|
||||
type parsedUDP struct {
|
||||
fk flowKey
|
||||
ipHdrLen int
|
||||
hdrLen int // ipHdrLen + 8
|
||||
payLen int
|
||||
}
|
||||
|
||||
// parseUDP extracts the flow key and IP/UDP offsets for a UDP packet.
|
||||
// Returns ok=false for non-UDP, malformed, or unsupported header shapes
|
||||
// (IPv4 with options/fragmentation, IPv6 with extension headers).
|
||||
func parseUDP(pkt []byte) (parsedUDP, bool) {
|
||||
var p parsedUDP
|
||||
ip, ok := parseIPPrologue(pkt, ipProtoUDP)
|
||||
if !ok {
|
||||
return p, false
|
||||
}
|
||||
pkt = ip.pkt
|
||||
p.fk = ip.fk
|
||||
p.ipHdrLen = ip.ipHdrLen
|
||||
|
||||
if len(pkt) < p.ipHdrLen+8 {
|
||||
return p, false
|
||||
}
|
||||
p.hdrLen = p.ipHdrLen + 8
|
||||
// UDP `length` field: must equal IP-derived length-of-UDP-header-plus-payload.
|
||||
udpLen := int(binary.BigEndian.Uint16(pkt[p.ipHdrLen+4 : p.ipHdrLen+6]))
|
||||
if udpLen < 8 || udpLen > len(pkt)-p.ipHdrLen {
|
||||
return p, false
|
||||
}
|
||||
p.payLen = udpLen - 8
|
||||
p.fk.sport = binary.BigEndian.Uint16(pkt[p.ipHdrLen : p.ipHdrLen+2])
|
||||
p.fk.dport = binary.BigEndian.Uint16(pkt[p.ipHdrLen+2 : p.ipHdrLen+4])
|
||||
return p, true
|
||||
}
|
||||
|
||||
func (c *UDPCoalescer) Reserve(sz int) []byte {
|
||||
return reserveFromBacking(&c.backing, sz)
|
||||
}
|
||||
|
||||
// Commit borrows pkt. The caller must keep pkt valid until the next Flush.
|
||||
func (c *UDPCoalescer) Commit(pkt []byte) error {
|
||||
if c.gsoW == nil {
|
||||
c.addPassthrough(pkt)
|
||||
return nil
|
||||
}
|
||||
info, ok := parseUDP(pkt)
|
||||
if !ok {
|
||||
c.addPassthrough(pkt)
|
||||
return nil
|
||||
}
|
||||
return c.commitParsed(pkt, info)
|
||||
}
|
||||
|
||||
// commitParsed is the post-parse half of Commit. The caller must have
|
||||
// already verified parseUDP succeeded. Used by MultiCoalescer.Commit to
|
||||
// avoid re-walking the IP/UDP header.
|
||||
func (c *UDPCoalescer) commitParsed(pkt []byte, info parsedUDP) error {
|
||||
if c.gsoW == nil {
|
||||
c.addPassthrough(pkt)
|
||||
return nil
|
||||
}
|
||||
if open := c.openSlots[info.fk]; open != nil {
|
||||
if c.canAppend(open, pkt, info) {
|
||||
c.appendPayload(open, pkt, info)
|
||||
if open.sealed {
|
||||
delete(c.openSlots, info.fk)
|
||||
}
|
||||
return nil
|
||||
}
|
||||
// Can't extend — seal it and fall through to seed a fresh slot.
|
||||
delete(c.openSlots, info.fk)
|
||||
}
|
||||
c.seed(pkt, info)
|
||||
return nil
|
||||
}
|
||||
|
||||
func (c *UDPCoalescer) Flush() error {
|
||||
var first error
|
||||
for _, s := range c.slots {
|
||||
var err error
|
||||
if s.passthrough {
|
||||
_, err = c.plainW.Write(s.rawPkt)
|
||||
} else {
|
||||
err = c.flushSlot(s)
|
||||
}
|
||||
if err != nil && first == nil {
|
||||
first = err
|
||||
}
|
||||
c.release(s)
|
||||
}
|
||||
clear(c.slots)
|
||||
c.slots = c.slots[:0]
|
||||
clear(c.openSlots)
|
||||
c.backing = c.backing[:0]
|
||||
return first
|
||||
}
|
||||
|
||||
func (c *UDPCoalescer) addPassthrough(pkt []byte) {
|
||||
s := c.take()
|
||||
s.passthrough = true
|
||||
s.rawPkt = pkt
|
||||
c.slots = append(c.slots, s)
|
||||
}
|
||||
|
||||
func (c *UDPCoalescer) seed(pkt []byte, info parsedUDP) {
|
||||
if info.hdrLen > udpCoalesceHdrCap || info.hdrLen+info.payLen > udpCoalesceBufSize {
|
||||
c.addPassthrough(pkt)
|
||||
return
|
||||
}
|
||||
s := c.take()
|
||||
s.passthrough = false
|
||||
s.rawPkt = nil
|
||||
copy(s.hdrBuf[:], pkt[:info.hdrLen])
|
||||
s.hdrLen = info.hdrLen
|
||||
s.ipHdrLen = info.ipHdrLen
|
||||
s.isV6 = info.fk.isV6
|
||||
s.fk = info.fk
|
||||
s.gsoSize = info.payLen
|
||||
s.numSeg = 1
|
||||
s.totalPay = info.payLen
|
||||
s.sealed = false
|
||||
s.payIovs = append(s.payIovs[:0], pkt[info.hdrLen:info.hdrLen+info.payLen])
|
||||
c.slots = append(c.slots, s)
|
||||
c.openSlots[info.fk] = s
|
||||
}
|
||||
|
||||
// canAppend reports whether info's packet extends the slot's seed.
|
||||
// Kernel UDP-GSO requires every segment except possibly the last to be
|
||||
// exactly gsoSize, and the last may be shorter (≤ gsoSize).
|
||||
func (c *UDPCoalescer) canAppend(s *udpSlot, pkt []byte, info parsedUDP) bool {
|
||||
if s.sealed {
|
||||
return false
|
||||
}
|
||||
if info.hdrLen != s.hdrLen {
|
||||
return false
|
||||
}
|
||||
if s.numSeg >= udpCoalesceMaxSegs {
|
||||
return false
|
||||
}
|
||||
if info.payLen > s.gsoSize {
|
||||
return false
|
||||
}
|
||||
if s.hdrLen+s.totalPay+info.payLen > udpCoalesceBufSize {
|
||||
return false
|
||||
}
|
||||
if !udpHeadersMatch(s.hdrBuf[:s.hdrLen], pkt[:info.hdrLen], s.isV6, s.ipHdrLen) {
|
||||
return false
|
||||
}
|
||||
return true
|
||||
}
|
||||
|
||||
func (c *UDPCoalescer) appendPayload(s *udpSlot, pkt []byte, info parsedUDP) {
|
||||
s.payIovs = append(s.payIovs, pkt[info.hdrLen:info.hdrLen+info.payLen])
|
||||
s.numSeg++
|
||||
s.totalPay += info.payLen
|
||||
// Merge IP-level CE marks into the seed (same trick TCP coalescer uses).
|
||||
mergeECNIntoSeed(s.hdrBuf[:s.ipHdrLen], pkt[:s.ipHdrLen], s.isV6)
|
||||
if info.payLen < s.gsoSize {
|
||||
// Last-segment-can-be-shorter: this seals the chain.
|
||||
s.sealed = true
|
||||
}
|
||||
}
|
||||
|
||||
func (c *UDPCoalescer) take() *udpSlot {
|
||||
if n := len(c.pool); n > 0 {
|
||||
s := c.pool[n-1]
|
||||
c.pool[n-1] = nil
|
||||
c.pool = c.pool[:n-1]
|
||||
return s
|
||||
}
|
||||
return &udpSlot{}
|
||||
}
|
||||
|
||||
func (c *UDPCoalescer) release(s *udpSlot) {
|
||||
s.passthrough = false
|
||||
s.rawPkt = nil
|
||||
clear(s.payIovs)
|
||||
s.payIovs = s.payIovs[:0]
|
||||
s.numSeg = 0
|
||||
s.totalPay = 0
|
||||
s.sealed = false
|
||||
c.pool = append(c.pool, s)
|
||||
}
|
||||
|
||||
// flushSlot patches the IP header total length / IPv6 payload length and
|
||||
// the UDP length to the *total* across all coalesced segments, then seeds
|
||||
// the UDP checksum field with the pseudo-header partial (single-fold, not
|
||||
// inverted) per virtio NEEDS_CSUM. The kernel's ip_rcv_core (v4) and
|
||||
// ip6_rcv_core (v6) trim the skb to those length fields, so per-segment
|
||||
// values would silently drop everything but the first segment. The kernel
|
||||
// then walks each segment in __udp_gso_segment, recomputing per-segment
|
||||
// uh->len / iph->tot_len / IPv6 plen and adjusting the checksum via
|
||||
// `check = csum16_add(csum16_sub(uh->check, uh->len), newlen)` — meaning
|
||||
// our seed's uh->check must be consistent with the seed's uh->len, which
|
||||
// is what passing the total to both pseudoSum and the UDP length field
|
||||
// guarantees.
|
||||
func (c *UDPCoalescer) flushSlot(s *udpSlot) error {
|
||||
hdr := s.hdrBuf[:s.hdrLen]
|
||||
total := s.hdrLen + s.totalPay // full IP+UDP+all_payloads bytes
|
||||
l4Len := total - s.ipHdrLen // total UDP (8 + sum of payloads)
|
||||
|
||||
if s.isV6 {
|
||||
binary.BigEndian.PutUint16(hdr[4:6], uint16(l4Len))
|
||||
} else {
|
||||
binary.BigEndian.PutUint16(hdr[2:4], uint16(total))
|
||||
hdr[10] = 0
|
||||
hdr[11] = 0
|
||||
binary.BigEndian.PutUint16(hdr[10:12], ipv4HdrChecksum(hdr[:s.ipHdrLen]))
|
||||
}
|
||||
|
||||
// UDP length field (offset 4 inside the UDP header) = total UDP size.
|
||||
binary.BigEndian.PutUint16(hdr[s.ipHdrLen+4:s.ipHdrLen+6], uint16(l4Len))
|
||||
|
||||
var psum uint32
|
||||
if s.isV6 {
|
||||
psum = pseudoSumIPv6(hdr[8:24], hdr[24:40], ipProtoUDP, l4Len)
|
||||
} else {
|
||||
psum = pseudoSumIPv4(hdr[12:16], hdr[16:20], ipProtoUDP, l4Len)
|
||||
}
|
||||
udpCsumOff := s.ipHdrLen + 6
|
||||
binary.BigEndian.PutUint16(hdr[udpCsumOff:udpCsumOff+2], foldOnceNoInvert(psum))
|
||||
|
||||
return c.gsoW.WriteGSO(hdr[:s.ipHdrLen], hdr[s.ipHdrLen:], s.payIovs, tio.GSOProtoUDP)
|
||||
}
|
||||
|
||||
// udpHeadersMatch compares two IP+UDP header prefixes for byte-equality on
|
||||
// every field that must be identical across coalesced segments. Length
|
||||
// fields and the ECN bits in IP TOS/TC are masked out — appendPayload
|
||||
// merges CE into the seed; flushSlot rewrites lengths.
|
||||
func udpHeadersMatch(a, b []byte, isV6 bool, ipHdrLen int) bool {
|
||||
if len(a) != len(b) {
|
||||
return false
|
||||
}
|
||||
if !ipHeadersMatch(a, b, isV6) {
|
||||
return false
|
||||
}
|
||||
// UDP: compare sport+dport ([0:4]). Skip length [4:6] and checksum [6:8] —
|
||||
// length varies (we rewrite at flush) and the checksum will be redone.
|
||||
udp := ipHdrLen
|
||||
if a[udp] != b[udp] || a[udp+1] != b[udp+1] || a[udp+2] != b[udp+2] || a[udp+3] != b[udp+3] {
|
||||
return false
|
||||
}
|
||||
return true
|
||||
}
|
||||
@@ -0,0 +1,383 @@
|
||||
package batch
|
||||
|
||||
import (
|
||||
"encoding/binary"
|
||||
"testing"
|
||||
)
|
||||
|
||||
// buildUDPv4 builds a minimal IPv4+UDP packet with the given payload and ports.
|
||||
func buildUDPv4(sport, dport uint16, payload []byte) []byte {
|
||||
const ipHdrLen = 20
|
||||
const udpHdrLen = 8
|
||||
total := ipHdrLen + udpHdrLen + len(payload)
|
||||
pkt := make([]byte, total)
|
||||
|
||||
pkt[0] = 0x45
|
||||
pkt[1] = 0x00
|
||||
binary.BigEndian.PutUint16(pkt[2:4], uint16(total))
|
||||
binary.BigEndian.PutUint16(pkt[4:6], 0)
|
||||
binary.BigEndian.PutUint16(pkt[6:8], 0x4000)
|
||||
pkt[8] = 64
|
||||
pkt[9] = ipProtoUDP
|
||||
copy(pkt[12:16], []byte{10, 0, 0, 1})
|
||||
copy(pkt[16:20], []byte{10, 0, 0, 2})
|
||||
|
||||
binary.BigEndian.PutUint16(pkt[20:22], sport)
|
||||
binary.BigEndian.PutUint16(pkt[22:24], dport)
|
||||
binary.BigEndian.PutUint16(pkt[24:26], uint16(udpHdrLen+len(payload)))
|
||||
binary.BigEndian.PutUint16(pkt[26:28], 0)
|
||||
|
||||
copy(pkt[28:], payload)
|
||||
return pkt
|
||||
}
|
||||
|
||||
// buildUDPv6 builds a minimal IPv6+UDP packet.
|
||||
func buildUDPv6(sport, dport uint16, payload []byte) []byte {
|
||||
const ipHdrLen = 40
|
||||
const udpHdrLen = 8
|
||||
total := ipHdrLen + udpHdrLen + len(payload)
|
||||
pkt := make([]byte, total)
|
||||
|
||||
pkt[0] = 0x60
|
||||
binary.BigEndian.PutUint16(pkt[4:6], uint16(udpHdrLen+len(payload)))
|
||||
pkt[6] = ipProtoUDP
|
||||
pkt[7] = 64
|
||||
pkt[8] = 0xfe
|
||||
pkt[9] = 0x80
|
||||
pkt[23] = 1
|
||||
pkt[24] = 0xfe
|
||||
pkt[25] = 0x80
|
||||
pkt[39] = 2
|
||||
|
||||
binary.BigEndian.PutUint16(pkt[40:42], sport)
|
||||
binary.BigEndian.PutUint16(pkt[42:44], dport)
|
||||
binary.BigEndian.PutUint16(pkt[44:46], uint16(udpHdrLen+len(payload)))
|
||||
binary.BigEndian.PutUint16(pkt[46:48], 0)
|
||||
|
||||
copy(pkt[48:], payload)
|
||||
return pkt
|
||||
}
|
||||
|
||||
func TestUDPCoalescerPassthroughWhenGSOUnavailable(t *testing.T) {
|
||||
w := &fakeTunWriter{gsoEnabled: false}
|
||||
c := NewUDPCoalescer(w)
|
||||
pkt := buildUDPv4(1000, 53, make([]byte, 100))
|
||||
if err := c.Commit(pkt); err != nil {
|
||||
t.Fatal(err)
|
||||
}
|
||||
if len(w.writes) != 0 || len(w.gsoWrites) != 0 {
|
||||
t.Fatalf("no Add-time writes: writes=%d gso=%d", len(w.writes), len(w.gsoWrites))
|
||||
}
|
||||
if err := c.Flush(); err != nil {
|
||||
t.Fatal(err)
|
||||
}
|
||||
if len(w.writes) != 1 || len(w.gsoWrites) != 0 {
|
||||
t.Fatalf("want single plain write, got writes=%d gso=%d", len(w.writes), len(w.gsoWrites))
|
||||
}
|
||||
}
|
||||
|
||||
func TestUDPCoalescerNonUDPPassthrough(t *testing.T) {
|
||||
w := &fakeTunWriter{gsoEnabled: true}
|
||||
c := NewUDPCoalescer(w)
|
||||
// ICMP packet
|
||||
pkt := make([]byte, 28)
|
||||
pkt[0] = 0x45
|
||||
binary.BigEndian.PutUint16(pkt[2:4], 28)
|
||||
pkt[9] = 1
|
||||
copy(pkt[12:16], []byte{10, 0, 0, 1})
|
||||
copy(pkt[16:20], []byte{10, 0, 0, 2})
|
||||
if err := c.Commit(pkt); err != nil {
|
||||
t.Fatal(err)
|
||||
}
|
||||
if err := c.Flush(); err != nil {
|
||||
t.Fatal(err)
|
||||
}
|
||||
if len(w.writes) != 1 || len(w.gsoWrites) != 0 {
|
||||
t.Fatalf("ICMP must pass through unchanged: writes=%d gso=%d", len(w.writes), len(w.gsoWrites))
|
||||
}
|
||||
}
|
||||
|
||||
func TestUDPCoalescerSeedThenFlushAlone(t *testing.T) {
|
||||
w := &fakeTunWriter{gsoEnabled: true}
|
||||
c := NewUDPCoalescer(w)
|
||||
pkt := buildUDPv4(1000, 53, make([]byte, 800))
|
||||
if err := c.Commit(pkt); err != nil {
|
||||
t.Fatal(err)
|
||||
}
|
||||
if err := c.Flush(); err != nil {
|
||||
t.Fatal(err)
|
||||
}
|
||||
// Single-segment flush goes through WriteGSO; the writer infers GSO_NONE
|
||||
// from len(pays)==1 and the kernel fills in the UDP csum (NEEDS_CSUM).
|
||||
if len(w.gsoWrites) != 1 || len(w.writes) != 0 {
|
||||
t.Fatalf("single-seg flush: writes=%d gso=%d", len(w.writes), len(w.gsoWrites))
|
||||
}
|
||||
}
|
||||
|
||||
func TestUDPCoalescerCoalescesEqualSized(t *testing.T) {
|
||||
w := &fakeTunWriter{gsoEnabled: true}
|
||||
c := NewUDPCoalescer(w)
|
||||
pay := make([]byte, 1200)
|
||||
for i := 0; i < 3; i++ {
|
||||
if err := c.Commit(buildUDPv4(1000, 53, pay)); err != nil {
|
||||
t.Fatal(err)
|
||||
}
|
||||
}
|
||||
if err := c.Flush(); err != nil {
|
||||
t.Fatal(err)
|
||||
}
|
||||
if len(w.gsoWrites) != 1 {
|
||||
t.Fatalf("want 1 gso write, got %d (plain=%d)", len(w.gsoWrites), len(w.writes))
|
||||
}
|
||||
g := w.gsoWrites[0]
|
||||
if g.gsoSize != 1200 {
|
||||
t.Errorf("gsoSize=%d want 1200", g.gsoSize)
|
||||
}
|
||||
if len(g.pays) != 3 {
|
||||
t.Errorf("pay count=%d want 3", len(g.pays))
|
||||
}
|
||||
if g.csumStart != 20 {
|
||||
t.Errorf("csumStart=%d want 20", g.csumStart)
|
||||
}
|
||||
// IP totalLen and UDP length must be the TOTAL across all segments —
|
||||
// the kernel's ip_rcv_core trims skbs to iph->tot_len, so a per-segment
|
||||
// value would silently drop everything but the first segment. Total =
|
||||
// IP(20) + UDP(8) + 3*1200 = 3628.
|
||||
gotTotalLen := binary.BigEndian.Uint16(g.hdr[2:4])
|
||||
if gotTotalLen != 3628 {
|
||||
t.Errorf("ipv4 total_len=%d want 3628 (must be total across segments)", gotTotalLen)
|
||||
}
|
||||
gotUDPLen := binary.BigEndian.Uint16(g.hdr[20+4 : 20+6])
|
||||
if gotUDPLen != 8+3*1200 {
|
||||
t.Errorf("udp len=%d want %d", gotUDPLen, 8+3*1200)
|
||||
}
|
||||
}
|
||||
|
||||
// Last segment may be shorter, sealing the chain.
|
||||
func TestUDPCoalescerShortLastSegmentSeals(t *testing.T) {
|
||||
w := &fakeTunWriter{gsoEnabled: true}
|
||||
c := NewUDPCoalescer(w)
|
||||
full := make([]byte, 1200)
|
||||
tail := make([]byte, 600)
|
||||
if err := c.Commit(buildUDPv4(1000, 53, full)); err != nil {
|
||||
t.Fatal(err)
|
||||
}
|
||||
if err := c.Commit(buildUDPv4(1000, 53, full)); err != nil {
|
||||
t.Fatal(err)
|
||||
}
|
||||
if err := c.Commit(buildUDPv4(1000, 53, tail)); err != nil {
|
||||
t.Fatal(err)
|
||||
}
|
||||
// A 4th packet, even same-sized, must NOT join — chain is sealed.
|
||||
if err := c.Commit(buildUDPv4(1000, 53, full)); err != nil {
|
||||
t.Fatal(err)
|
||||
}
|
||||
if err := c.Flush(); err != nil {
|
||||
t.Fatal(err)
|
||||
}
|
||||
if len(w.gsoWrites) != 2 {
|
||||
t.Fatalf("want 2 gso writes (sealed + new seed), got %d", len(w.gsoWrites))
|
||||
}
|
||||
if len(w.gsoWrites[0].pays) != 3 {
|
||||
t.Errorf("first super: want 3 pays, got %d", len(w.gsoWrites[0].pays))
|
||||
}
|
||||
if len(w.gsoWrites[1].pays) != 1 {
|
||||
t.Errorf("second super: want 1 pay (re-seed), got %d", len(w.gsoWrites[1].pays))
|
||||
}
|
||||
}
|
||||
|
||||
// A larger-than-gsoSize packet cannot extend the slot — it reseeds.
|
||||
func TestUDPCoalescerLargerThanSeedReseeds(t *testing.T) {
|
||||
w := &fakeTunWriter{gsoEnabled: true}
|
||||
c := NewUDPCoalescer(w)
|
||||
if err := c.Commit(buildUDPv4(1000, 53, make([]byte, 800))); err != nil {
|
||||
t.Fatal(err)
|
||||
}
|
||||
if err := c.Commit(buildUDPv4(1000, 53, make([]byte, 1200))); err != nil {
|
||||
t.Fatal(err)
|
||||
}
|
||||
if err := c.Flush(); err != nil {
|
||||
t.Fatal(err)
|
||||
}
|
||||
if len(w.gsoWrites) != 2 {
|
||||
t.Fatalf("want 2 separate seeds, got %d", len(w.gsoWrites))
|
||||
}
|
||||
}
|
||||
|
||||
// Different 5-tuples must not coalesce.
|
||||
func TestUDPCoalescerDifferentFlowsKeepSeparate(t *testing.T) {
|
||||
w := &fakeTunWriter{gsoEnabled: true}
|
||||
c := NewUDPCoalescer(w)
|
||||
pay := make([]byte, 800)
|
||||
if err := c.Commit(buildUDPv4(1000, 53, pay)); err != nil {
|
||||
t.Fatal(err)
|
||||
}
|
||||
if err := c.Commit(buildUDPv4(2000, 53, pay)); err != nil {
|
||||
t.Fatal(err)
|
||||
}
|
||||
if err := c.Commit(buildUDPv4(1000, 53, pay)); err != nil {
|
||||
t.Fatal(err)
|
||||
}
|
||||
if err := c.Commit(buildUDPv4(2000, 53, pay)); err != nil {
|
||||
t.Fatal(err)
|
||||
}
|
||||
if err := c.Flush(); err != nil {
|
||||
t.Fatal(err)
|
||||
}
|
||||
// Two flows × 2 datagrams each = 2 superpackets of 2 segments.
|
||||
if len(w.gsoWrites) != 2 {
|
||||
t.Fatalf("want 2 gso writes (one per flow), got %d", len(w.gsoWrites))
|
||||
}
|
||||
for i, g := range w.gsoWrites {
|
||||
if len(g.pays) != 2 {
|
||||
t.Errorf("super %d: want 2 pays, got %d", i, len(g.pays))
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
// Caps at udpCoalesceMaxSegs.
|
||||
func TestUDPCoalescerCapsAtMaxSegs(t *testing.T) {
|
||||
w := &fakeTunWriter{gsoEnabled: true}
|
||||
c := NewUDPCoalescer(w)
|
||||
pay := make([]byte, 100)
|
||||
for i := 0; i < udpCoalesceMaxSegs+5; i++ {
|
||||
if err := c.Commit(buildUDPv4(1000, 53, pay)); err != nil {
|
||||
t.Fatal(err)
|
||||
}
|
||||
}
|
||||
if err := c.Flush(); err != nil {
|
||||
t.Fatal(err)
|
||||
}
|
||||
// First superpacket holds udpCoalesceMaxSegs segments; the spillover
|
||||
// reseeds a new one.
|
||||
if len(w.gsoWrites) != 2 {
|
||||
t.Fatalf("want 2 gso writes (cap then reseed), got %d", len(w.gsoWrites))
|
||||
}
|
||||
if len(w.gsoWrites[0].pays) != udpCoalesceMaxSegs {
|
||||
t.Errorf("first super: pays=%d want %d", len(w.gsoWrites[0].pays), udpCoalesceMaxSegs)
|
||||
}
|
||||
if len(w.gsoWrites[1].pays) != 5 {
|
||||
t.Errorf("second super: pays=%d want 5", len(w.gsoWrites[1].pays))
|
||||
}
|
||||
}
|
||||
|
||||
// CE marks on appended segments must be merged into the seed's IP TOS.
|
||||
func TestUDPCoalescerMergesCEMark(t *testing.T) {
|
||||
w := &fakeTunWriter{gsoEnabled: true}
|
||||
c := NewUDPCoalescer(w)
|
||||
pay := make([]byte, 800)
|
||||
pkt0 := buildUDPv4(1000, 53, pay) // ECN=00
|
||||
pkt1 := buildUDPv4(1000, 53, pay)
|
||||
pkt1[1] = 0x03 // CE
|
||||
pkt2 := buildUDPv4(1000, 53, pay)
|
||||
if err := c.Commit(pkt0); err != nil {
|
||||
t.Fatal(err)
|
||||
}
|
||||
if err := c.Commit(pkt1); err != nil {
|
||||
t.Fatal(err)
|
||||
}
|
||||
if err := c.Commit(pkt2); err != nil {
|
||||
t.Fatal(err)
|
||||
}
|
||||
if err := c.Flush(); err != nil {
|
||||
t.Fatal(err)
|
||||
}
|
||||
if len(w.gsoWrites) != 1 {
|
||||
t.Fatalf("want 1 merged gso write, got %d (plain=%d)", len(w.gsoWrites), len(w.writes))
|
||||
}
|
||||
if w.gsoWrites[0].hdr[1]&0x03 != 0x03 {
|
||||
t.Errorf("CE not merged into seed (tos=%#x)", w.gsoWrites[0].hdr[1])
|
||||
}
|
||||
}
|
||||
|
||||
// IPv6 path: same flow, equal-sized → coalesced.
|
||||
func TestUDPCoalescerIPv6Coalesces(t *testing.T) {
|
||||
w := &fakeTunWriter{gsoEnabled: true}
|
||||
c := NewUDPCoalescer(w)
|
||||
pay := make([]byte, 1200)
|
||||
for i := 0; i < 3; i++ {
|
||||
if err := c.Commit(buildUDPv6(1000, 53, pay)); err != nil {
|
||||
t.Fatal(err)
|
||||
}
|
||||
}
|
||||
if err := c.Flush(); err != nil {
|
||||
t.Fatal(err)
|
||||
}
|
||||
if len(w.gsoWrites) != 1 {
|
||||
t.Fatalf("want 1 gso write, got %d", len(w.gsoWrites))
|
||||
}
|
||||
g := w.gsoWrites[0]
|
||||
if !g.isV6 {
|
||||
t.Errorf("expected v6 write")
|
||||
}
|
||||
if g.csumStart != 40 {
|
||||
t.Errorf("csumStart=%d want 40", g.csumStart)
|
||||
}
|
||||
// IPv6 payload_len and UDP length must be TOTAL — kernel's
|
||||
// ip6_rcv_core trims to payload_len + ipv6 hdr size. Total UDP = 8 +
|
||||
// 3*1200 = 3608.
|
||||
gotPlen := binary.BigEndian.Uint16(g.hdr[4:6])
|
||||
if gotPlen != 8+3*1200 {
|
||||
t.Errorf("ipv6 payload_len=%d want %d (must be total)", gotPlen, 8+3*1200)
|
||||
}
|
||||
gotUDPLen := binary.BigEndian.Uint16(g.hdr[40+4 : 40+6])
|
||||
if gotUDPLen != 8+3*1200 {
|
||||
t.Errorf("udp len=%d want %d", gotUDPLen, 8+3*1200)
|
||||
}
|
||||
}
|
||||
|
||||
// DSCP differences must reseed (headers don't match outside ECN).
|
||||
func TestUDPCoalescerDSCPMismatchReseeds(t *testing.T) {
|
||||
w := &fakeTunWriter{gsoEnabled: true}
|
||||
c := NewUDPCoalescer(w)
|
||||
pay := make([]byte, 800)
|
||||
pkt0 := buildUDPv4(1000, 53, pay)
|
||||
pkt1 := buildUDPv4(1000, 53, pay)
|
||||
pkt1[1] = 0xb8 // EF DSCP, ECN=0
|
||||
if err := c.Commit(pkt0); err != nil {
|
||||
t.Fatal(err)
|
||||
}
|
||||
if err := c.Commit(pkt1); err != nil {
|
||||
t.Fatal(err)
|
||||
}
|
||||
if err := c.Flush(); err != nil {
|
||||
t.Fatal(err)
|
||||
}
|
||||
if len(w.gsoWrites) != 2 {
|
||||
t.Fatalf("want 2 separate seeds (different DSCP), got %d", len(w.gsoWrites))
|
||||
}
|
||||
}
|
||||
|
||||
// Fragmented IPv4 must not be coalesced.
|
||||
func TestUDPCoalescerFragmentedIPv4PassesThrough(t *testing.T) {
|
||||
w := &fakeTunWriter{gsoEnabled: true}
|
||||
c := NewUDPCoalescer(w)
|
||||
pkt := buildUDPv4(1000, 53, make([]byte, 200))
|
||||
binary.BigEndian.PutUint16(pkt[6:8], 0x2000) // MF=1
|
||||
if err := c.Commit(pkt); err != nil {
|
||||
t.Fatal(err)
|
||||
}
|
||||
if err := c.Flush(); err != nil {
|
||||
t.Fatal(err)
|
||||
}
|
||||
if len(w.writes) != 1 || len(w.gsoWrites) != 0 {
|
||||
t.Fatalf("frag must pass through plain, got writes=%d gso=%d", len(w.writes), len(w.gsoWrites))
|
||||
}
|
||||
}
|
||||
|
||||
// IPv4 with options is not admissible (we require IHL=5).
|
||||
func TestUDPCoalescerIPv4WithOptionsPassesThrough(t *testing.T) {
|
||||
w := &fakeTunWriter{gsoEnabled: true}
|
||||
c := NewUDPCoalescer(w)
|
||||
pkt := buildUDPv4(1000, 53, make([]byte, 200))
|
||||
pkt[0] = 0x46 // IHL = 6 (24-byte IPv4 header — has options)
|
||||
if err := c.Commit(pkt); err != nil {
|
||||
t.Fatal(err)
|
||||
}
|
||||
if err := c.Flush(); err != nil {
|
||||
t.Fatal(err)
|
||||
}
|
||||
if len(w.writes) != 1 || len(w.gsoWrites) != 0 {
|
||||
t.Fatalf("ipv4-with-options must pass through plain, got writes=%d gso=%d", len(w.writes), len(w.gsoWrites))
|
||||
}
|
||||
}
|
||||
@@ -0,0 +1,23 @@
|
||||
package checksum
|
||||
|
||||
import (
|
||||
"golang.org/x/sys/cpu"
|
||||
gvisorchecksum "gvisor.dev/gvisor/pkg/tcpip/checksum"
|
||||
)
|
||||
|
||||
//go:noescape
|
||||
func checksumAVX2(buf []byte, initial uint16) uint16
|
||||
|
||||
var hasAVX2 = cpu.X86.HasAVX2
|
||||
|
||||
// Checksum computes the RFC 1071 ones-complement sum of buf, seeded with
|
||||
// initial. It is a drop-in replacement for gvisor's checksum.Checksum that
|
||||
// dispatches to a hand-written AVX2 routine on amd64 CPUs that support it,
|
||||
// falling back to gvisor's pure-Go implementation otherwise. The result
|
||||
// matches gvisor's bit-for-bit for any buffer length and initial seed.
|
||||
func Checksum(buf []byte, initial uint16) uint16 {
|
||||
if hasAVX2 {
|
||||
return checksumAVX2(buf, initial)
|
||||
}
|
||||
return gvisorchecksum.Checksum(buf, initial)
|
||||
}
|
||||
@@ -0,0 +1,157 @@
|
||||
#include "textflag.h"
|
||||
|
||||
// func checksumAVX2(buf []byte, initial uint16) uint16
|
||||
//
|
||||
// Computes the RFC 1071 ones-complement sum of buf, seeded with initial.
|
||||
//
|
||||
// Algorithm: sum the buffer treating it as a stream of uint32s in machine
|
||||
// (little-endian) byte order, accumulating into 64-bit lanes (top 32 bits
|
||||
// hold cross-add carries — at 1 byte / lane / iter we have 32 bits of
|
||||
// headroom which is far more than the 16 KB/64 KB max practical inputs).
|
||||
// At the end we fold to 16 bits and byte-swap once to recover the on-wire
|
||||
// (big-endian) result. RFC 1071 §1.2.B byte-order independence makes this
|
||||
// equivalent to summing as 16-bit big-endian words.
|
||||
//
|
||||
// The ymm accumulators (Y4..Y7) hold 4 uint64 lanes each = 16 parallel
|
||||
// partial sums. The main loop loads 64 bytes per iter as four 16-byte
|
||||
// chunks, zero-extending each chunk's four uint32s into a ymm via
|
||||
// VPMOVZXDQ-from-memory, then VPADDQ into a separate accumulator per
|
||||
// chunk to break the dep chain. After the vector loop the lane sums are
|
||||
// horizontally reduced and merged with a scalar accumulator that handles
|
||||
// the trailing 0..63 bytes plus the (byte-swapped) initial seed.
|
||||
TEXT ·checksumAVX2(SB), NOSPLIT, $0-34
|
||||
MOVQ buf_base+0(FP), SI
|
||||
MOVQ buf_len+8(FP), CX
|
||||
MOVWQZX initial+24(FP), AX
|
||||
|
||||
// Pre-byteswap initial into the LE-summing space so it merges directly
|
||||
// with the rest of the accumulator. The final fold's bswap16 will undo
|
||||
// this and convert the whole result back to BE.
|
||||
XCHGB AH, AL
|
||||
|
||||
CMPQ CX, $32
|
||||
JLT scalar_tail
|
||||
|
||||
VPXOR Y4, Y4, Y4
|
||||
VPXOR Y5, Y5, Y5
|
||||
VPXOR Y6, Y6, Y6
|
||||
VPXOR Y7, Y7, Y7
|
||||
|
||||
CMPQ CX, $64
|
||||
JLT loop32
|
||||
|
||||
loop64:
|
||||
VPMOVZXDQ (SI), Y0
|
||||
VPMOVZXDQ 16(SI), Y1
|
||||
VPMOVZXDQ 32(SI), Y2
|
||||
VPMOVZXDQ 48(SI), Y3
|
||||
VPADDQ Y0, Y4, Y4
|
||||
VPADDQ Y1, Y5, Y5
|
||||
VPADDQ Y2, Y6, Y6
|
||||
VPADDQ Y3, Y7, Y7
|
||||
ADDQ $64, SI
|
||||
SUBQ $64, CX
|
||||
CMPQ CX, $64
|
||||
JGE loop64
|
||||
|
||||
loop32:
|
||||
CMPQ CX, $32
|
||||
JLT reduce_vec
|
||||
VPMOVZXDQ (SI), Y0
|
||||
VPMOVZXDQ 16(SI), Y1
|
||||
VPADDQ Y0, Y4, Y4
|
||||
VPADDQ Y1, Y5, Y5
|
||||
ADDQ $32, SI
|
||||
SUBQ $32, CX
|
||||
JMP loop32
|
||||
|
||||
reduce_vec:
|
||||
// Combine the four ymm accumulators into Y4.
|
||||
VPADDQ Y5, Y4, Y4
|
||||
VPADDQ Y7, Y6, Y6
|
||||
VPADDQ Y6, Y4, Y4
|
||||
|
||||
// Horizontally reduce Y4's four uint64 lanes to a single scalar.
|
||||
VEXTRACTI128 $1, Y4, X5
|
||||
VPADDQ X5, X4, X4
|
||||
VPSHUFD $0x4e, X4, X5
|
||||
VPADDQ X5, X4, X4
|
||||
VMOVQ X4, R8
|
||||
VZEROUPPER
|
||||
|
||||
ADDQ R8, AX
|
||||
ADCQ $0, AX
|
||||
|
||||
scalar_tail:
|
||||
// Handle remaining 0..63 bytes (or the entire buffer if it was < 32).
|
||||
CMPQ CX, $8
|
||||
JLT tail4
|
||||
|
||||
loop8:
|
||||
ADDQ (SI), AX
|
||||
ADCQ $0, AX
|
||||
ADDQ $8, SI
|
||||
SUBQ $8, CX
|
||||
CMPQ CX, $8
|
||||
JGE loop8
|
||||
|
||||
tail4:
|
||||
CMPQ CX, $4
|
||||
JLT tail2
|
||||
MOVL (SI), R8
|
||||
ADDQ R8, AX
|
||||
ADCQ $0, AX
|
||||
ADDQ $4, SI
|
||||
SUBQ $4, CX
|
||||
|
||||
tail2:
|
||||
CMPQ CX, $2
|
||||
JLT tail1
|
||||
MOVWQZX (SI), R8
|
||||
ADDQ R8, AX
|
||||
ADCQ $0, AX
|
||||
ADDQ $2, SI
|
||||
SUBQ $2, CX
|
||||
|
||||
tail1:
|
||||
TESTQ CX, CX
|
||||
JZ fold
|
||||
MOVBQZX (SI), R8
|
||||
ADDQ R8, AX
|
||||
ADCQ $0, AX
|
||||
|
||||
fold:
|
||||
// Fold the 64-bit accumulator to 16 bits via four rounds, mirroring
|
||||
// gvisor's reduce(). Each pair (split, add) halves the live width;
|
||||
// the truncation steps absorb the single bit that may be left over
|
||||
// after each add so the next round's bound holds.
|
||||
|
||||
// 64 → 33 bits.
|
||||
MOVQ AX, R8
|
||||
SHRQ $32, R8
|
||||
MOVL AX, AX
|
||||
ADDQ R8, AX
|
||||
|
||||
// 33 → 32 bits. AX += (AX>>32); truncate to 32. AX is now ≤ 0xFFFF_FFFF.
|
||||
MOVQ AX, R8
|
||||
SHRQ $32, R8
|
||||
ADDQ R8, AX
|
||||
MOVL AX, AX
|
||||
|
||||
// 32 → 17 bits.
|
||||
MOVQ AX, R8
|
||||
SHRQ $16, R8
|
||||
MOVWQZX AX, AX
|
||||
ADDQ R8, AX
|
||||
|
||||
// 17 → 16 bits. AX += (AX>>16); the trailing MOVW truncates bit 16.
|
||||
MOVQ AX, R8
|
||||
SHRQ $16, R8
|
||||
ADDQ R8, AX
|
||||
|
||||
// AX low 16 bits hold the 16-bit sum in machine (LE) byte order; flip
|
||||
// to big-endian to match the gvisor API contract.
|
||||
XCHGB AH, AL
|
||||
|
||||
MOVW AX, ret+32(FP)
|
||||
RET
|
||||
@@ -0,0 +1,12 @@
|
||||
package checksum
|
||||
|
||||
//go:noescape
|
||||
func checksumNEON(buf []byte, initial uint16) uint16
|
||||
|
||||
// Checksum computes the RFC 1071 ones-complement sum of buf, seeded with
|
||||
// initial. It is a drop-in replacement for gvisor's checksum.Checksum
|
||||
// that dispatches to a hand-written NEON routine. NEON is mandatory in
|
||||
// armv8 so no feature check is needed.
|
||||
func Checksum(buf []byte, initial uint16) uint16 {
|
||||
return checksumNEON(buf, initial)
|
||||
}
|
||||
@@ -0,0 +1,143 @@
|
||||
#include "textflag.h"
|
||||
|
||||
// func checksumNEON(buf []byte, initial uint16) uint16
|
||||
//
|
||||
// Mirrors the algorithm in checksum_amd64.s: sum the buffer treating it as
|
||||
// a stream of uint32s in machine (little-endian) byte order, accumulating
|
||||
// into 64-bit lanes that have ample carry headroom; fold and byte-swap once
|
||||
// at the very end to recover the on-wire (big-endian) result.
|
||||
//
|
||||
// Each loop iteration loads 64 bytes via VLD1.P into V0..V3 (4 Q regs).
|
||||
// VUADDW takes the low two uint32 lanes of a Q reg, zero-extends them to
|
||||
// uint64, and adds them into a 2×uint64 accumulator; VUADDW2 does the same
|
||||
// for the high two lanes. Four ymm-equivalent accumulators (V8..V11) get
|
||||
// updated twice per iter to break the dep chain. Tail bytes go through a
|
||||
// scalar ADCS chain seeded with the byte-swapped initial.
|
||||
TEXT ·checksumNEON(SB), NOSPLIT, $0-34
|
||||
MOVD buf_base+0(FP), R0
|
||||
MOVD buf_len+8(FP), R1
|
||||
MOVHU initial+24(FP), R2
|
||||
|
||||
// Pre-byteswap initial into the LE-summing space so it merges directly
|
||||
// with the rest of the accumulator.
|
||||
REV16W R2, R2
|
||||
|
||||
MOVD ZR, R3 // scalar accumulator
|
||||
|
||||
CMP $32, R1
|
||||
BLT scalar_tail
|
||||
|
||||
VEOR V8.B16, V8.B16, V8.B16
|
||||
VEOR V9.B16, V9.B16, V9.B16
|
||||
VEOR V10.B16, V10.B16, V10.B16
|
||||
VEOR V11.B16, V11.B16, V11.B16
|
||||
|
||||
CMP $64, R1
|
||||
BLT loop16_init
|
||||
|
||||
loop64:
|
||||
VLD1.P 64(R0), [V0.B16, V1.B16, V2.B16, V3.B16]
|
||||
VUADDW V0.S2, V8.D2, V8.D2
|
||||
VUADDW2 V0.S4, V9.D2, V9.D2
|
||||
VUADDW V1.S2, V10.D2, V10.D2
|
||||
VUADDW2 V1.S4, V11.D2, V11.D2
|
||||
VUADDW V2.S2, V8.D2, V8.D2
|
||||
VUADDW2 V2.S4, V9.D2, V9.D2
|
||||
VUADDW V3.S2, V10.D2, V10.D2
|
||||
VUADDW2 V3.S4, V11.D2, V11.D2
|
||||
SUB $64, R1, R1
|
||||
CMP $64, R1
|
||||
BGE loop64
|
||||
|
||||
loop16_init:
|
||||
CMP $16, R1
|
||||
BLT reduce_vec
|
||||
|
||||
loop16:
|
||||
VLD1.P 16(R0), [V0.B16]
|
||||
VUADDW V0.S2, V8.D2, V8.D2
|
||||
VUADDW2 V0.S4, V9.D2, V9.D2
|
||||
SUB $16, R1, R1
|
||||
CMP $16, R1
|
||||
BGE loop16
|
||||
|
||||
reduce_vec:
|
||||
// Combine the four accumulators into V8.
|
||||
VADD V9.D2, V8.D2, V8.D2
|
||||
VADD V11.D2, V10.D2, V10.D2
|
||||
VADD V10.D2, V8.D2, V8.D2
|
||||
|
||||
// Horizontal-add the two lanes of V8.D2 into a single uint64.
|
||||
VADDP V8.D2, V8.D2, V8.D2
|
||||
VMOV V8.D[0], R8
|
||||
|
||||
ADDS R8, R3, R3
|
||||
ADC ZR, R3, R3
|
||||
|
||||
scalar_tail:
|
||||
CMP $8, R1
|
||||
BLT tail4
|
||||
|
||||
loop8:
|
||||
MOVD.P 8(R0), R8
|
||||
ADDS R8, R3, R3
|
||||
ADC ZR, R3, R3
|
||||
SUB $8, R1, R1
|
||||
CMP $8, R1
|
||||
BGE loop8
|
||||
|
||||
tail4:
|
||||
CMP $4, R1
|
||||
BLT tail2
|
||||
MOVWU.P 4(R0), R8
|
||||
ADDS R8, R3, R3
|
||||
ADC ZR, R3, R3
|
||||
SUB $4, R1, R1
|
||||
|
||||
tail2:
|
||||
CMP $2, R1
|
||||
BLT tail1
|
||||
MOVHU.P 2(R0), R8
|
||||
ADDS R8, R3, R3
|
||||
ADC ZR, R3, R3
|
||||
SUB $2, R1, R1
|
||||
|
||||
tail1:
|
||||
CBZ R1, fold
|
||||
MOVBU (R0), R8
|
||||
ADDS R8, R3, R3
|
||||
ADC ZR, R3, R3
|
||||
|
||||
fold:
|
||||
// Merge the byte-swapped initial into our LE-form accumulator.
|
||||
ADDS R2, R3, R3
|
||||
ADC ZR, R3, R3
|
||||
|
||||
// 64 → 33 bits.
|
||||
LSR $32, R3, R8
|
||||
AND $0xffffffff, R3, R3
|
||||
ADD R8, R3, R3
|
||||
|
||||
// 33 → 32 (truncate after adding bit 32 back).
|
||||
LSR $32, R3, R8
|
||||
ADD R8, R3, R3
|
||||
AND $0xffffffff, R3, R3
|
||||
|
||||
// 32 → 17.
|
||||
LSR $16, R3, R8
|
||||
AND $0xffff, R3, R3
|
||||
ADD R8, R3, R3
|
||||
|
||||
// 17 → 16 (truncation absorbs bit 16 below).
|
||||
LSR $16, R3, R8
|
||||
ADD R8, R3, R3
|
||||
|
||||
// AX low 16 bits hold the 16-bit sum in machine (LE) byte order; flip
|
||||
// to big-endian to match the gvisor API contract. REV16W swaps bytes
|
||||
// within each 16-bit halfword of the low 32 bits, so it acts as a
|
||||
// 16-bit byte-swap on the live low 16.
|
||||
REV16W R3, R3
|
||||
AND $0xffff, R3, R3
|
||||
|
||||
MOVH R3, ret+32(FP)
|
||||
RET
|
||||
@@ -0,0 +1,10 @@
|
||||
//go:build !amd64 && !arm64
|
||||
|
||||
package checksum
|
||||
|
||||
import gvisorchecksum "gvisor.dev/gvisor/pkg/tcpip/checksum"
|
||||
|
||||
// Checksum delegates to gvisor on architectures without a hand-written body.
|
||||
func Checksum(buf []byte, initial uint16) uint16 {
|
||||
return gvisorchecksum.Checksum(buf, initial)
|
||||
}
|
||||
@@ -0,0 +1,190 @@
|
||||
package checksum
|
||||
|
||||
import (
|
||||
"fmt"
|
||||
"math/rand/v2"
|
||||
"testing"
|
||||
|
||||
gvisorchecksum "gvisor.dev/gvisor/pkg/tcpip/checksum"
|
||||
)
|
||||
|
||||
// TestChecksumMatchesGvisor walks lengths from 0 to 4096, with several initial
|
||||
// seeds and a handful of starting alignments, asserting that our local
|
||||
// Checksum matches gvisor's reference bit-for-bit.
|
||||
func TestChecksumMatchesGvisor(t *testing.T) {
|
||||
rng := rand.New(rand.NewPCG(1, 2))
|
||||
const padFront = 16
|
||||
|
||||
// Random pool large enough for the longest case + alignment slop.
|
||||
pool := make([]byte, 4096+padFront)
|
||||
for i := range pool {
|
||||
pool[i] = byte(rng.Uint32())
|
||||
}
|
||||
|
||||
seeds := []uint16{0, 0x0001, 0xabcd, 0xffff, 0x1234, 0xfedc}
|
||||
offsets := []int{0, 1, 2, 3, 4, 5, 7, 8, 15, 16}
|
||||
|
||||
for length := 0; length <= 4096; length++ {
|
||||
for _, seed := range seeds {
|
||||
for _, off := range offsets {
|
||||
if off+length > len(pool) {
|
||||
continue
|
||||
}
|
||||
buf := pool[off : off+length]
|
||||
want := gvisorchecksum.Checksum(buf, seed)
|
||||
got := Checksum(buf, seed)
|
||||
if got != want {
|
||||
t.Fatalf("len=%d off=%d seed=%#x: got %#04x want %#04x",
|
||||
length, off, seed, got, want)
|
||||
}
|
||||
}
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
// TestChecksumPatternedBuffers exercises specific byte patterns that have
|
||||
// historically tripped up checksum implementations: all-zero, all-0xff,
|
||||
// alternating, and ascending sequences.
|
||||
func TestChecksumPatternedBuffers(t *testing.T) {
|
||||
for length := 0; length <= 256; length++ {
|
||||
patterns := map[string][]byte{
|
||||
"zeros": make([]byte, length),
|
||||
"ones": bytes(length, 0xff),
|
||||
"alternating": pattern(length, []byte{0xa5, 0x5a}),
|
||||
"ascending": ascending(length),
|
||||
}
|
||||
for name, buf := range patterns {
|
||||
for _, seed := range []uint16{0, 0xffff, 0x8000} {
|
||||
want := gvisorchecksum.Checksum(buf, seed)
|
||||
got := Checksum(buf, seed)
|
||||
if got != want {
|
||||
t.Fatalf("%s len=%d seed=%#x: got %#04x want %#04x",
|
||||
name, length, seed, got, want)
|
||||
}
|
||||
}
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
func bytes(n int, v byte) []byte {
|
||||
b := make([]byte, n)
|
||||
for i := range b {
|
||||
b[i] = v
|
||||
}
|
||||
return b
|
||||
}
|
||||
|
||||
func pattern(n int, p []byte) []byte {
|
||||
b := make([]byte, n)
|
||||
for i := range b {
|
||||
b[i] = p[i%len(p)]
|
||||
}
|
||||
return b
|
||||
}
|
||||
|
||||
func ascending(n int) []byte {
|
||||
b := make([]byte, n)
|
||||
for i := range b {
|
||||
b[i] = byte(i)
|
||||
}
|
||||
return b
|
||||
}
|
||||
|
||||
// TestChecksumTailPaths targets every combination of (SIMD body iterations,
|
||||
// trailing tail bytes) the asm handlers walk through. The tail handlers
|
||||
// peel off 8 → 4 → 2 → 1 byte chunks in turn; this test exercises each by
|
||||
// constructing lengths of the form 64*k + tail for tail ∈ [0, 63] and a
|
||||
// representative spread of k values, including k=0 (no main loop, all tail)
|
||||
// and k=1 (one main loop iter, then tail). It's explicit coverage for
|
||||
// payload sizes that are odd, not divisible by 4, by 8, or by 32.
|
||||
func TestChecksumTailPaths(t *testing.T) {
|
||||
rng := rand.New(rand.NewPCG(42, 17))
|
||||
const padFront = 16
|
||||
const maxK = 8
|
||||
|
||||
pool := make([]byte, 64*maxK+padFront+64)
|
||||
for i := range pool {
|
||||
pool[i] = byte(rng.Uint32())
|
||||
}
|
||||
|
||||
seeds := []uint16{0, 0xffff, 0xabcd}
|
||||
offsets := []int{0, 1, 3, 7, 15} // mix of aligned and odd starts
|
||||
|
||||
for k := 0; k <= maxK; k++ {
|
||||
for tail := 0; tail < 64; tail++ {
|
||||
length := 64*k + tail
|
||||
for _, seed := range seeds {
|
||||
for _, off := range offsets {
|
||||
if off+length > len(pool) {
|
||||
continue
|
||||
}
|
||||
buf := pool[off : off+length]
|
||||
want := gvisorchecksum.Checksum(buf, seed)
|
||||
got := Checksum(buf, seed)
|
||||
if got != want {
|
||||
t.Fatalf("k=%d tail=%d (len=%d) off=%d seed=%#x: got %#04x want %#04x",
|
||||
k, tail, length, off, seed, got, want)
|
||||
}
|
||||
}
|
||||
}
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
// BenchmarkChecksumTailSizes covers payload sizes that aren't clean multiples
|
||||
// of the SIMD body's 32-byte (amd64) or 16-byte (arm64) chunks, so the tail
|
||||
// handler is meaningfully on the hot path. Sizes are picked to either exercise
|
||||
// every tail branch (tiny lengths) or sit slightly off realistic packet
|
||||
// boundaries (e.g. 1499 = MTU − 1).
|
||||
func BenchmarkChecksumTailSizes(b *testing.B) {
|
||||
sizes := []int{
|
||||
1, 3, 7, 15, 31, // sub-SIMD; entire work is scalar tail
|
||||
33, 35, 47, 63, // one loop32 + assorted tails
|
||||
65, 95, 127, // one loop64 + assorted tails
|
||||
1447, 1471, 1499, 1501, // around MTU
|
||||
8191, 8193, // around USO
|
||||
65531, 65533, // near the kernel max
|
||||
}
|
||||
for _, size := range sizes {
|
||||
buf := make([]byte, size)
|
||||
for i := range buf {
|
||||
buf[i] = byte(i)
|
||||
}
|
||||
b.Run(fmt.Sprintf("size=%d/local", size), func(b *testing.B) {
|
||||
b.SetBytes(int64(size))
|
||||
for i := 0; i < b.N; i++ {
|
||||
_ = Checksum(buf, 0)
|
||||
}
|
||||
})
|
||||
b.Run(fmt.Sprintf("size=%d/gvisor", size), func(b *testing.B) {
|
||||
b.SetBytes(int64(size))
|
||||
for i := 0; i < b.N; i++ {
|
||||
_ = gvisorchecksum.Checksum(buf, 0)
|
||||
}
|
||||
})
|
||||
}
|
||||
}
|
||||
|
||||
// BenchmarkChecksum compares the local Checksum to gvisor's at sizes that
|
||||
// match real traffic: a TCP/IP header (60), a typical MSS (1448), a typical
|
||||
// USO size (8192), and the kernel's max GSO superpacket (65535).
|
||||
func BenchmarkChecksum(b *testing.B) {
|
||||
for _, size := range []int{60, 1448, 8192, 65535} {
|
||||
buf := make([]byte, size)
|
||||
for i := range buf {
|
||||
buf[i] = byte(i)
|
||||
}
|
||||
b.Run(fmt.Sprintf("size=%d/local", size), func(b *testing.B) {
|
||||
b.SetBytes(int64(size))
|
||||
for i := 0; i < b.N; i++ {
|
||||
_ = Checksum(buf, 0)
|
||||
}
|
||||
})
|
||||
b.Run(fmt.Sprintf("size=%d/gvisor", size), func(b *testing.B) {
|
||||
b.SetBytes(int64(size))
|
||||
for i := 0; i < b.N; i++ {
|
||||
_ = gvisorchecksum.Checksum(buf, 0)
|
||||
}
|
||||
})
|
||||
}
|
||||
}
|
||||
+8
-2
@@ -4,15 +4,21 @@ 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.ReadWriteCloser
|
||||
io.Closer
|
||||
Activate() error
|
||||
Networks() []netip.Prefix
|
||||
Name() string
|
||||
RoutesFor(netip.Addr) routing.Gateways
|
||||
SupportsMultiqueue() bool
|
||||
NewMultiQueueReader() (io.ReadWriteCloser, error)
|
||||
NewMultiQueueReader() error
|
||||
Readers() []tio.Queue
|
||||
}
|
||||
|
||||
@@ -4,9 +4,9 @@ package overlaytest
|
||||
|
||||
import (
|
||||
"errors"
|
||||
"io"
|
||||
"net/netip"
|
||||
|
||||
"github.com/slackhq/nebula/overlay/tio"
|
||||
"github.com/slackhq/nebula/routing"
|
||||
)
|
||||
|
||||
@@ -31,8 +31,8 @@ func (NoopTun) Name() string {
|
||||
return "noop"
|
||||
}
|
||||
|
||||
func (NoopTun) Read([]byte) (int, error) {
|
||||
return 0, nil
|
||||
func (NoopTun) Read() ([]tio.Packet, error) {
|
||||
return nil, nil
|
||||
}
|
||||
|
||||
func (NoopTun) Write([]byte) (int, error) {
|
||||
@@ -43,8 +43,12 @@ func (NoopTun) SupportsMultiqueue() bool {
|
||||
return false
|
||||
}
|
||||
|
||||
func (NoopTun) NewMultiQueueReader() (io.ReadWriteCloser, error) {
|
||||
return nil, errors.New("unsupported")
|
||||
func (NoopTun) NewMultiQueueReader() error {
|
||||
return errors.New("unsupported")
|
||||
}
|
||||
|
||||
func (NoopTun) Readers() []tio.Queue {
|
||||
return []tio.Queue{NoopTun{}}
|
||||
}
|
||||
|
||||
func (NoopTun) Close() error {
|
||||
|
||||
@@ -0,0 +1,79 @@
|
||||
package tio
|
||||
|
||||
import (
|
||||
"encoding/binary"
|
||||
"errors"
|
||||
"fmt"
|
||||
|
||||
"golang.org/x/sys/unix"
|
||||
)
|
||||
|
||||
type offloadQueueSet struct {
|
||||
pq []*Offload
|
||||
// pqi is exactly the same as pq, but stored as the interface type
|
||||
pqi []Queue
|
||||
shutdownFd int
|
||||
// usoEnabled is true when newTun successfully negotiated TUN_F_USO4|6
|
||||
// with the kernel. Queues created by Add inherit this and surface it
|
||||
// via Offload.USOSupported so coalescers can gate USO emission.
|
||||
usoEnabled bool
|
||||
}
|
||||
|
||||
// NewOffloadQueueSet creates a QueueSet that uses virtio_net_hdr to do
|
||||
// TSO segmentation in userspace. usoEnabled tells downstream queues whether
|
||||
// the kernel agreed to deliver/accept GSO_UDP_L4 superpackets — coalescers
|
||||
// should fall back to per-packet writes when this is false.
|
||||
func NewOffloadQueueSet(usoEnabled bool) (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 := &offloadQueueSet{
|
||||
pq: []*Offload{},
|
||||
pqi: []Queue{},
|
||||
shutdownFd: shutdownFd,
|
||||
usoEnabled: usoEnabled,
|
||||
}
|
||||
|
||||
return out, nil
|
||||
}
|
||||
|
||||
func (c *offloadQueueSet) Queues() []Queue {
|
||||
return c.pqi
|
||||
}
|
||||
|
||||
func (c *offloadQueueSet) Add(fd int) error {
|
||||
x, err := newOffload(fd, c.shutdownFd, c.usoEnabled)
|
||||
if err != nil {
|
||||
return err
|
||||
}
|
||||
c.pq = append(c.pq, x)
|
||||
c.pqi = append(c.pqi, x)
|
||||
|
||||
return nil
|
||||
}
|
||||
|
||||
func (c *offloadQueueSet) wakeForShutdown() error {
|
||||
var buf [8]byte
|
||||
binary.NativeEndian.PutUint64(buf[:], 1)
|
||||
_, err := unix.Write(c.shutdownFd, buf[:])
|
||||
return err
|
||||
}
|
||||
|
||||
func (c *offloadQueueSet) Close() error {
|
||||
errs := []error{}
|
||||
|
||||
// Signal all readers blocked in poll to wake up and exit
|
||||
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)
|
||||
}
|
||||
}
|
||||
|
||||
return errors.Join(errs...)
|
||||
}
|
||||
@@ -0,0 +1,69 @@
|
||||
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(int(c.shutdownFd), buf[:])
|
||||
return err
|
||||
}
|
||||
|
||||
func (c *pollQueueSet) Close() error {
|
||||
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)
|
||||
}
|
||||
}
|
||||
|
||||
return errors.Join(errs...)
|
||||
}
|
||||
@@ -0,0 +1,65 @@
|
||||
//go:build linux && !android && !e2e_testing
|
||||
|
||||
package tio
|
||||
|
||||
import "testing"
|
||||
|
||||
// fakeBatch stands in for batch.TxBatcher inside the bench — same shape
|
||||
// of pointer-capturing closure that sendInsideMessage builds.
|
||||
type fakeBatch struct{ buf [65536]byte }
|
||||
|
||||
func (b *fakeBatch) Reserve(sz int) []byte { return b.buf[:sz] }
|
||||
func (b *fakeBatch) Commit([]byte) {}
|
||||
|
||||
type fakeHostInfo struct {
|
||||
remoteIndexId uint32
|
||||
counter uint64
|
||||
}
|
||||
type fakeIface struct {
|
||||
rebindCount uint8
|
||||
hi *fakeHostInfo
|
||||
}
|
||||
|
||||
// BenchmarkSegmentSuperpacketAllocsTSO measures allocation per
|
||||
// SegmentSuperpacket call when a closure captures pointer-bearing
|
||||
// receivers — the realistic shape of sendInsideMessage's closure.
|
||||
func BenchmarkSegmentSuperpacketAllocsTSO(b *testing.B) {
|
||||
const mss = 1400
|
||||
const numSeg = 32
|
||||
pkt := buildTSOv6(mss*numSeg, mss)
|
||||
gso := GSOInfo{
|
||||
Size: mss,
|
||||
HdrLen: 60, // 40 (IPv6) + 20 (TCP)
|
||||
CsumStart: 40,
|
||||
Proto: GSOProtoTCP,
|
||||
}
|
||||
p := Packet{Bytes: pkt, GSO: gso}
|
||||
|
||||
hi := &fakeHostInfo{remoteIndexId: 0xdeadbeef}
|
||||
f := &fakeIface{rebindCount: 7, hi: hi}
|
||||
fb := &fakeBatch{}
|
||||
|
||||
// SegmentSuperpacket consumes pkt destructively; refresh from a master
|
||||
// copy each iter (matches the production pattern where every TUN read
|
||||
// hands the segmenter a fresh kernel-supplied buffer).
|
||||
master := append([]byte(nil), pkt...)
|
||||
work := make([]byte, len(pkt))
|
||||
p.Bytes = work
|
||||
|
||||
b.ReportAllocs()
|
||||
b.ResetTimer()
|
||||
for i := 0; i < b.N; i++ {
|
||||
copy(work, master)
|
||||
err := SegmentSuperpacket(p, func(seg []byte) error {
|
||||
out := fb.Reserve(16 + len(seg) + 16)
|
||||
out[0] = byte(f.rebindCount)
|
||||
out[1] = byte(hi.counter)
|
||||
hi.counter++
|
||||
fb.Commit(out)
|
||||
return nil
|
||||
})
|
||||
if err != nil {
|
||||
b.Fatalf("SegmentSuperpacket: %v", err)
|
||||
}
|
||||
}
|
||||
}
|
||||
@@ -0,0 +1,22 @@
|
||||
//go:build !linux || android || e2e_testing
|
||||
|
||||
package tio
|
||||
|
||||
import "fmt"
|
||||
|
||||
func protoFromGSOType(_ uint8) (GSOProto, error) {
|
||||
return 0, fmt.Errorf("GSO unsupported")
|
||||
}
|
||||
|
||||
// SegmentSuperpacket invokes fn once per segment of pkt. On non-Linux
|
||||
// builds (and Android/e2e_testing) this package does not provide a Queue
|
||||
// implementation, so any caller that does construct a Packet here can only
|
||||
// be operating on non-superpacket bytes and the stub forwards them
|
||||
// directly. A non-zero GSO field is a programming error from the caller
|
||||
// and returns an explicit error rather than silently misbehaving.
|
||||
func SegmentSuperpacket(pkt Packet, fn func(seg []byte) error) error {
|
||||
if pkt.GSO.IsSuperpacket() {
|
||||
return fmt.Errorf("tio: GSO superpacket on platform without segmentation support")
|
||||
}
|
||||
return fn(pkt.Bytes)
|
||||
}
|
||||
@@ -0,0 +1,170 @@
|
||||
package tio
|
||||
|
||||
import (
|
||||
"io"
|
||||
)
|
||||
|
||||
// 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 — a Queue without TSO can't usefully accept a
|
||||
// TCPCoalescer, and a Queue without USO can't accept a UDPCoalescer.
|
||||
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 returns one or more packets. The returned Packet.Bytes slices
|
||||
// are borrowed from the Queue's internal buffer and are only valid
|
||||
// until the next Read or Close on this Queue - callers must encrypt
|
||||
// or copy each slice before the next call. A Packet may carry a
|
||||
// GSO/USO superpacket (see GSOInfo); when GSO.IsSuperpacket() is
|
||||
// true the caller must segment Bytes before treating it as a single
|
||||
// IP datagram. Not safe for concurrent Reads.
|
||||
Read() ([]Packet, error)
|
||||
|
||||
// Write emits a single packet on the plaintext (outside→inside)
|
||||
// delivery path. Not safe for concurrent Writes.
|
||||
Write(p []byte) (int, error)
|
||||
}
|
||||
|
||||
// Packet is the unit Queue.Read returns. Bytes points into the queue's
|
||||
// internal buffer and is only valid until the next Read or Close on the
|
||||
// queue that produced it. GSO is the zero value for an already-segmented
|
||||
// IP datagram; when non-zero it describes a kernel-supplied TSO/USO
|
||||
// superpacket the caller must segment before consuming.
|
||||
type Packet struct {
|
||||
Bytes []byte
|
||||
GSO GSOInfo
|
||||
}
|
||||
|
||||
// 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
|
||||
}
|
||||
|
||||
// IsSuperpacket reports whether g describes a multi-segment GSO/USO
|
||||
// superpacket that needs segmentation before its bytes can be encrypted
|
||||
// and sent on the wire.
|
||||
func (g GSOInfo) IsSuperpacket() bool { return g.Size > 0 }
|
||||
|
||||
// Clone returns a Packet whose Bytes is a freshly allocated copy of p.Bytes,
|
||||
// safe to retain past the next Read or Close on the originating Queue.
|
||||
// GSO metadata is copied verbatim. Use this only when a caller genuinely
|
||||
// needs to outlive the borrowed-slice contract — the hot path reads should
|
||||
// continue to consume the borrow synchronously to avoid the allocation.
|
||||
func (p Packet) Clone() Packet {
|
||||
if p.Bytes == nil {
|
||||
return p
|
||||
}
|
||||
cp := make([]byte, len(p.Bytes))
|
||||
copy(cp, p.Bytes)
|
||||
return Packet{Bytes: cp, GSO: p.GSO}
|
||||
}
|
||||
|
||||
// CapsProvider is an optional interface implemented by Queues that
|
||||
// successfully negotiated kernel offload features at open time. Callers
|
||||
// pick a write-path coalescer based on the result. Queues that don't
|
||||
// implement it are treated as having no offload capability — callers must
|
||||
// fall back to plain per-packet writes.
|
||||
type CapsProvider interface {
|
||||
Capabilities() Capabilities
|
||||
}
|
||||
|
||||
// QueueCapabilities returns q's negotiated offload capabilities, or the
|
||||
// zero value when q does not advertise any.
|
||||
func QueueCapabilities(q Queue) Capabilities {
|
||||
if cp, ok := q.(CapsProvider); ok {
|
||||
return cp.Capabilities()
|
||||
}
|
||||
return Capabilities{}
|
||||
}
|
||||
|
||||
// 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 (
|
||||
GSOProtoTCP GSOProto = iota
|
||||
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 any, want GSOProto) (GSOWriter, bool) {
|
||||
gw, ok := w.(GSOWriter)
|
||||
if !ok {
|
||||
return nil, false
|
||||
}
|
||||
cp, ok := w.(CapsProvider)
|
||||
if !ok {
|
||||
return gw, true
|
||||
}
|
||||
caps := cp.Capabilities()
|
||||
switch want {
|
||||
case GSOProtoTCP:
|
||||
return gw, caps.TSO
|
||||
case GSOProtoUDP:
|
||||
return gw, caps.USO
|
||||
}
|
||||
return gw, false
|
||||
}
|
||||
@@ -0,0 +1,461 @@
|
||||
package tio
|
||||
|
||||
import (
|
||||
"fmt"
|
||||
"io"
|
||||
"log/slog"
|
||||
"os"
|
||||
"sync"
|
||||
"sync/atomic"
|
||||
"syscall"
|
||||
"unsafe"
|
||||
|
||||
"golang.org/x/sys/unix"
|
||||
|
||||
"github.com/slackhq/nebula/overlay/tio/virtio"
|
||||
)
|
||||
|
||||
// tunRxBufSize is the per-Read worst-case footprint inside rxBuf: one
|
||||
// kernel-supplied packet body, which is at most ~64 KiB (tunReadBufSize).
|
||||
// Segmentation happens at encrypt time on a per-routine MTU-sized scratch
|
||||
// (see SegmentSuperpacket), so rxBuf only holds raw kernel-supplied bytes.
|
||||
// We round up to give comfortable margin for the drain headroom check
|
||||
// below.
|
||||
const tunRxBufSize = 64 * 1024
|
||||
|
||||
// tunRxBufCap is the total size we allocate for the per-reader rx
|
||||
// buffer. With reads landing directly in rxBuf, each drain iteration
|
||||
// consumes up to tunRxBufSize of headroom for the kernel-supplied bytes.
|
||||
// Sized to two such iterations so the initial blocking read plus one
|
||||
// drain read both fit without partial-drop.
|
||||
const tunRxBufCap = tunRxBufSize * 2
|
||||
|
||||
// tunDrainCap caps how many packets a single Read will accumulate via
|
||||
// the post-wake drain loop. Sized to soak up a burst of small ACKs while
|
||||
// bounding how much work a single caller holds before handing off.
|
||||
const tunDrainCap = 64
|
||||
|
||||
// gsoMaxIovs caps the iovec budget WriteGSO assembles per call: 3 fixed
|
||||
// entries (virtio_net_hdr, IP hdr, transport hdr) plus up to gsoMaxIovs-3
|
||||
// payload fragments. Sized comfortably above the typical kernel GSO
|
||||
// segment cap (Linux UDP_GRO is 64) so realistic coalesced bursts never
|
||||
// touch the limit. iovecs are tiny (16 bytes), so the entire scratch is
|
||||
// 4 KiB — fine to keep resident on every queue. WriteGSO returns an error
|
||||
// rather than reallocating when a caller exceeds this budget.
|
||||
const gsoMaxIovs = 256
|
||||
|
||||
// validVnetHdr is the 10-byte virtio_net_hdr we prepend to every non-GSO TUN
|
||||
// write. Only flag set is VIRTIO_NET_HDR_F_DATA_VALID, which marks the skb
|
||||
// CHECKSUM_UNNECESSARY so the receiving network stack skips L4 checksum
|
||||
// verification. All packets that reach the plain Write paths already carry
|
||||
// a valid L4 checksum (either supplied by a remote peer whose ciphertext we
|
||||
// AEAD-authenticated, produced by segmentTCPYield/segmentUDPYield during
|
||||
// superpacket segmentation, or built locally by CreateRejectPacket), so
|
||||
// trusting them is safe.
|
||||
var validVnetHdr = [virtio.Size]byte{unix.VIRTIO_NET_HDR_F_DATA_VALID}
|
||||
|
||||
// Offload wraps a TUN file descriptor with poll-based reads. The FD provided will be changed to non-blocking.
|
||||
// A shared eventfd allows Close to wake all readers blocked in poll.
|
||||
type Offload struct {
|
||||
fd int
|
||||
shutdownFd int
|
||||
readPoll [2]unix.PollFd
|
||||
writePoll [2]unix.PollFd
|
||||
// writeLock serializes blockOnWrite's read+clear of writePoll[*].Revents.
|
||||
// Any goroutine that calls Write may end up parked in poll(2); without
|
||||
// the lock concurrent waiters could race the Revents reset and lose
|
||||
// events.
|
||||
writeLock sync.Mutex
|
||||
closed atomic.Bool
|
||||
rxBuf []byte // backing store for kernel-handed packets read this drain
|
||||
rxOff int // cursor into rxBuf for the current Read drain
|
||||
pending []Packet // packets returned from the most recent Read
|
||||
|
||||
// readVnetScratch holds the 10-byte virtio_net_hdr split off the front of
|
||||
// every TUN read via readv(2). Decoupling the header from the packet body
|
||||
// lets us read the body directly into rxBuf at the current rxOff with
|
||||
// no userspace copy on the GSO_NONE fast path.
|
||||
readVnetScratch [virtio.Size]byte
|
||||
// readIovs is the readv(2) iovec scratch wired once at construction —
|
||||
// iovec[0] points at readVnetScratch; iovec[1].Base/Len is updated per
|
||||
// read to address the current rxBuf slot.
|
||||
readIovs [2]unix.Iovec
|
||||
|
||||
// usoEnabled records whether the kernel agreed to TUN_F_USO* on this FD,
|
||||
// so writers can decide whether emitting GSO_UDP_L4 superpackets is safe.
|
||||
usoEnabled bool
|
||||
|
||||
// gsoHdrBuf is a per-queue 10-byte scratch for the virtio_net_hdr emitted
|
||||
// by WriteGSO. Kept separate from the read-only package-level validVnetHdr
|
||||
// so non-GSO Writes can ship that constant directly while WriteGSO
|
||||
// rewrites this scratch on every call.
|
||||
gsoHdrBuf [virtio.Size]byte
|
||||
// gsoIovs is the writev iovec scratch for WriteGSO. Pre-sized to
|
||||
// gsoMaxIovs at construction; never grown. WriteGSO returns an error
|
||||
// (and drops the call) if a caller hands it more fragments than fit.
|
||||
gsoIovs []unix.Iovec
|
||||
}
|
||||
|
||||
func newOffload(fd int, shutdownFd int, usoEnabled bool) (*Offload, error) {
|
||||
if err := unix.SetNonblock(fd, true); err != nil {
|
||||
return nil, fmt.Errorf("failed to set tun fd non-blocking: %w", err)
|
||||
}
|
||||
|
||||
out := &Offload{
|
||||
fd: fd,
|
||||
shutdownFd: shutdownFd,
|
||||
usoEnabled: usoEnabled,
|
||||
closed: atomic.Bool{},
|
||||
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{},
|
||||
|
||||
rxBuf: make([]byte, tunRxBufCap),
|
||||
gsoIovs: make([]unix.Iovec, 2, gsoMaxIovs),
|
||||
}
|
||||
|
||||
out.gsoIovs[0].Base = &out.gsoHdrBuf[0]
|
||||
out.gsoIovs[0].SetLen(virtio.Size)
|
||||
|
||||
// readIovs[0] is wired once to the virtio_net_hdr scratch; per-read we
|
||||
// only repoint readIovs[1] at the next rxBuf slot (see readPacket).
|
||||
out.readIovs[0].Base = &out.readVnetScratch[0]
|
||||
out.readIovs[0].SetLen(virtio.Size)
|
||||
|
||||
return out, nil
|
||||
}
|
||||
|
||||
func (r *Offload) blockOnRead() error {
|
||||
const problemFlags = unix.POLLHUP | unix.POLLNVAL | unix.POLLERR
|
||||
var err error
|
||||
for {
|
||||
_, err = unix.Poll(r.readPoll[:], -1)
|
||||
if err != unix.EINTR {
|
||||
break
|
||||
}
|
||||
}
|
||||
//always reset these!
|
||||
tunEvents := r.readPoll[0].Revents
|
||||
shutdownEvents := r.readPoll[1].Revents
|
||||
r.readPoll[0].Revents = 0
|
||||
r.readPoll[1].Revents = 0
|
||||
//do the err check before trusting the potentially bogus bits we just got
|
||||
if err != nil {
|
||||
return err
|
||||
}
|
||||
if shutdownEvents&(unix.POLLIN|problemFlags) != 0 {
|
||||
return os.ErrClosed
|
||||
} else if tunEvents&problemFlags != 0 {
|
||||
return os.ErrClosed
|
||||
}
|
||||
return nil
|
||||
}
|
||||
|
||||
func (r *Offload) blockOnWrite() error {
|
||||
const problemFlags = unix.POLLHUP | unix.POLLNVAL | unix.POLLERR
|
||||
var err error
|
||||
for {
|
||||
_, err = unix.Poll(r.writePoll[:], -1)
|
||||
if err != unix.EINTR {
|
||||
break
|
||||
}
|
||||
}
|
||||
//always reset these!
|
||||
r.writeLock.Lock()
|
||||
tunEvents := r.writePoll[0].Revents
|
||||
shutdownEvents := r.writePoll[1].Revents
|
||||
r.writePoll[0].Revents = 0
|
||||
r.writePoll[1].Revents = 0
|
||||
r.writeLock.Unlock()
|
||||
//do the err check before trusting the potentially bogus bits we just got
|
||||
if err != nil {
|
||||
return err
|
||||
}
|
||||
if shutdownEvents&(unix.POLLIN|problemFlags) != 0 {
|
||||
return os.ErrClosed
|
||||
} else if tunEvents&problemFlags != 0 {
|
||||
return os.ErrClosed
|
||||
}
|
||||
return nil
|
||||
}
|
||||
|
||||
// readPacket issues a single readv(2) splitting the virtio_net_hdr off
|
||||
// into readVnetScratch and reading the packet body directly into rxBuf at
|
||||
// the current rxOff. Returns the body length (zero virtio header bytes,
|
||||
// just the IP packet/superpacket). block controls whether EAGAIN is
|
||||
// retried via poll: the initial read of a drain blocks; subsequent drain
|
||||
// reads do not.
|
||||
//
|
||||
// The body iovec capacity is always tunReadBufSize; callers (the Read
|
||||
// drain loop) gate entry on tunRxBufCap-rxOff >= tunRxBufSize, sized to
|
||||
// hold one worst-case kernel-supplied packet body. Without that gate the
|
||||
// body iovec could be smaller than the next inbound packet and the
|
||||
// kernel would truncate.
|
||||
func (r *Offload) readPacket(block bool) (int, error) {
|
||||
for {
|
||||
r.readIovs[1].Base = &r.rxBuf[r.rxOff]
|
||||
r.readIovs[1].SetLen(tunReadBufSize)
|
||||
n, _, errno := syscall.Syscall(unix.SYS_READV, uintptr(r.fd), uintptr(unsafe.Pointer(&r.readIovs[0])), uintptr(len(r.readIovs)))
|
||||
if errno == 0 {
|
||||
if int(n) < virtio.Size {
|
||||
return 0, io.ErrShortWrite
|
||||
}
|
||||
return int(n) - virtio.Size, nil
|
||||
}
|
||||
if errno == unix.EAGAIN {
|
||||
if !block {
|
||||
return 0, errno
|
||||
}
|
||||
if err := r.blockOnRead(); err != nil {
|
||||
return 0, err
|
||||
}
|
||||
continue
|
||||
}
|
||||
if errno == unix.EINTR {
|
||||
continue
|
||||
}
|
||||
if errno == unix.EBADF {
|
||||
return 0, os.ErrClosed
|
||||
}
|
||||
return 0, errno
|
||||
}
|
||||
}
|
||||
|
||||
// Read returns one or more packets from the tun. Each Packet either
|
||||
// carries a single ready-to-use IP datagram (GSO zero) or a TSO/USO
|
||||
// superpacket plus the GSOInfo a caller needs to segment it (see
|
||||
// SegmentSuperpacket). The first read blocks via poll; once the fd is
|
||||
// known readable we drain additional packets non-blocking until the
|
||||
// kernel queue is empty (EAGAIN), we've collected tunDrainCap packets,
|
||||
// or we're out of rxBuf headroom. This amortizes the poll wake over
|
||||
// bursts of small packets (e.g. TCP ACKs). Packet.Bytes slices point
|
||||
// into the Offload's internal buffer and are only valid until the next
|
||||
// Read or Close on this Queue.
|
||||
func (r *Offload) Read() ([]Packet, error) {
|
||||
r.pending = r.pending[:0]
|
||||
r.rxOff = 0
|
||||
|
||||
// Initial (blocking) read. Retry on decode errors so a single bad
|
||||
// packet does not stall the reader.
|
||||
for {
|
||||
n, err := r.readPacket(true)
|
||||
if err != nil {
|
||||
return nil, err
|
||||
}
|
||||
if err := r.decodeRead(n); err != nil {
|
||||
// Drop and read again — a bad packet should not kill the reader.
|
||||
continue
|
||||
}
|
||||
break
|
||||
}
|
||||
|
||||
// Drain: non-blocking reads until the kernel queue is empty, the drain
|
||||
// cap is reached, or rxBuf no longer has room for another worst-case
|
||||
// kernel-supplied packet (tunRxBufSize).
|
||||
for len(r.pending) < tunDrainCap && tunRxBufCap-r.rxOff >= tunRxBufSize {
|
||||
n, err := r.readPacket(false)
|
||||
if err != nil {
|
||||
// EAGAIN / EINTR / anything else: stop draining. We already
|
||||
// have a valid batch from the first read.
|
||||
break
|
||||
}
|
||||
if n <= 0 {
|
||||
break
|
||||
}
|
||||
if err := r.decodeRead(n); err != nil {
|
||||
// Drop this packet and stop the drain; we'd rather hand off
|
||||
// what we have than keep spinning here.
|
||||
break
|
||||
}
|
||||
}
|
||||
|
||||
return r.pending, nil
|
||||
}
|
||||
|
||||
// decodeRead processes the packet sitting in rxBuf at rxOff (length
|
||||
// pktLen). The bytes stay in rxBuf — for GSO_NONE we slice them as a
|
||||
// regular IP datagram (running finishChecksum if NEEDS_CSUM is set);
|
||||
// for TSO/USO superpackets we attach the corrected GSO metadata so the
|
||||
// caller can segment lazily at encrypt time. rxOff advances past the
|
||||
// kernel-supplied body and nothing else, since segmentation no longer
|
||||
// writes back into rxBuf.
|
||||
func (r *Offload) decodeRead(pktLen int) error {
|
||||
if pktLen <= 0 {
|
||||
return fmt.Errorf("short tun read: %d", pktLen)
|
||||
}
|
||||
var hdr virtio.Hdr
|
||||
hdr.Decode(r.readVnetScratch[:])
|
||||
|
||||
body := r.rxBuf[r.rxOff : r.rxOff+pktLen]
|
||||
|
||||
if hdr.GSOType == unix.VIRTIO_NET_HDR_GSO_NONE {
|
||||
if hdr.Flags&unix.VIRTIO_NET_HDR_F_NEEDS_CSUM != 0 {
|
||||
if err := virtio.FinishChecksum(body, hdr); err != nil {
|
||||
return err
|
||||
}
|
||||
}
|
||||
r.pending = append(r.pending, Packet{Bytes: body})
|
||||
r.rxOff += pktLen
|
||||
return nil
|
||||
}
|
||||
|
||||
// GSO superpacket: validate, fix the kernel-supplied HdrLen on the
|
||||
// FORWARD path (CorrectHdrLen), pick the L4 protocol, and attach
|
||||
// the metadata. The bytes stay in rxBuf untouched, segmentation
|
||||
// happens in SegmentSuperpacket at encrypt time.
|
||||
if err := virtio.CheckValid(body, hdr); err != nil {
|
||||
return err
|
||||
}
|
||||
if err := virtio.CorrectHdrLen(body, &hdr); err != nil {
|
||||
return err
|
||||
}
|
||||
proto, err := protoFromGSOType(hdr.GSOType)
|
||||
if err != nil {
|
||||
return err
|
||||
}
|
||||
r.pending = append(r.pending, Packet{
|
||||
Bytes: body,
|
||||
GSO: GSOInfo{
|
||||
Size: hdr.GSOSize,
|
||||
HdrLen: hdr.HdrLen,
|
||||
CsumStart: hdr.CsumStart,
|
||||
Proto: proto,
|
||||
},
|
||||
})
|
||||
r.rxOff += pktLen
|
||||
return nil
|
||||
}
|
||||
|
||||
func (r *Offload) Write(buf []byte) (int, error) {
|
||||
iovs := [2]unix.Iovec{
|
||||
{Base: &validVnetHdr[0]},
|
||||
{Base: &buf[0]},
|
||||
}
|
||||
iovs[0].SetLen(virtio.Size)
|
||||
iovs[1].SetLen(len(buf))
|
||||
return r.writeWithScratch(buf, &iovs)
|
||||
}
|
||||
|
||||
func (r *Offload) writeWithScratch(buf []byte, iovs *[2]unix.Iovec) (int, error) {
|
||||
if len(buf) == 0 {
|
||||
return 0, nil
|
||||
}
|
||||
iovs[1].Base = &buf[0]
|
||||
iovs[1].SetLen(len(buf))
|
||||
return r.rawWrite(unsafe.Slice(&iovs[0], len(iovs)))
|
||||
}
|
||||
|
||||
func (r *Offload) rawWrite(iovs []unix.Iovec) (int, error) {
|
||||
for {
|
||||
n, _, errno := syscall.Syscall(unix.SYS_WRITEV, uintptr(r.fd), uintptr(unsafe.Pointer(&iovs[0])), uintptr(len(iovs)))
|
||||
if errno == 0 {
|
||||
if int(n) < virtio.Size {
|
||||
return 0, io.ErrShortWrite
|
||||
}
|
||||
return int(n) - virtio.Size, nil
|
||||
}
|
||||
if errno == unix.EAGAIN {
|
||||
if err := r.blockOnWrite(); err != nil {
|
||||
return 0, err
|
||||
}
|
||||
continue
|
||||
}
|
||||
if errno == unix.EINTR {
|
||||
continue
|
||||
}
|
||||
if errno == unix.EBADF {
|
||||
return 0, os.ErrClosed
|
||||
}
|
||||
return 0, errno
|
||||
}
|
||||
}
|
||||
|
||||
// Capabilities reports the offload features negotiated for this Queue. TSO
|
||||
// is always true for Offload (we only construct it on IFF_VNET_HDR FDs);
|
||||
// USO is true only when the kernel agreed to TUN_F_USO4|6 at open time
|
||||
// (Linux ≥ 6.2).
|
||||
func (r *Offload) Capabilities() Capabilities {
|
||||
return Capabilities{TSO: true, USO: r.usoEnabled}
|
||||
}
|
||||
|
||||
func (r *Offload) WriteGSO(hdr []byte, transportHdr []byte, pays [][]byte, proto GSOProto) error {
|
||||
if len(hdr) == 0 || len(pays) == 0 || len(transportHdr) == 0 {
|
||||
return nil
|
||||
}
|
||||
// L4 checksum offset inside transportHdr: TCP=16 (the `check` field after
|
||||
// seq/ack/dataoff/flags/window), UDP=6 (after sport/dport/length).
|
||||
var csumOff uint16
|
||||
switch proto {
|
||||
case GSOProtoUDP:
|
||||
csumOff = 6
|
||||
default:
|
||||
csumOff = 16
|
||||
}
|
||||
vhdr := virtio.Hdr{
|
||||
Flags: unix.VIRTIO_NET_HDR_F_NEEDS_CSUM,
|
||||
HdrLen: uint16(len(hdr) + len(transportHdr)),
|
||||
GSOSize: uint16(len(pays[0])),
|
||||
CsumStart: uint16(len(hdr)),
|
||||
CsumOffset: csumOff,
|
||||
}
|
||||
if len(pays) > 1 {
|
||||
ipVer := hdr[0] >> 4
|
||||
switch {
|
||||
case proto == GSOProtoUDP && (ipVer == 4 || ipVer == 6):
|
||||
vhdr.GSOType = unix.VIRTIO_NET_HDR_GSO_UDP_L4
|
||||
case ipVer == 6:
|
||||
vhdr.GSOType = unix.VIRTIO_NET_HDR_GSO_TCPV6
|
||||
case ipVer == 4:
|
||||
vhdr.GSOType = unix.VIRTIO_NET_HDR_GSO_TCPV4
|
||||
default:
|
||||
vhdr.GSOType = unix.VIRTIO_NET_HDR_GSO_NONE
|
||||
vhdr.GSOSize = 0
|
||||
}
|
||||
} else {
|
||||
vhdr.GSOType = unix.VIRTIO_NET_HDR_GSO_NONE
|
||||
vhdr.GSOSize = 0
|
||||
}
|
||||
vhdr.Encode(r.gsoHdrBuf[:])
|
||||
|
||||
// Build the iovec array: [virtio_hdr, hdr, transportHdr, pays...]. r.gsoIovs[0] is
|
||||
// wired to gsoHdrBuf at construction and never changes.
|
||||
need := 3 + len(pays)
|
||||
if need > cap(r.gsoIovs) {
|
||||
slog.Default().Warn("tio: WriteGSO iovec budget exceeded; dropping superpacket",
|
||||
"need", need, "cap", cap(r.gsoIovs), "segments", len(pays))
|
||||
return fmt.Errorf("tio: WriteGSO needs %d iovecs but cap is %d", need, cap(r.gsoIovs))
|
||||
}
|
||||
r.gsoIovs = r.gsoIovs[:need]
|
||||
r.gsoIovs[1].Base = &hdr[0]
|
||||
r.gsoIovs[1].SetLen(len(hdr))
|
||||
r.gsoIovs[2].Base = &transportHdr[0]
|
||||
r.gsoIovs[2].SetLen(len(transportHdr))
|
||||
for i, p := range pays {
|
||||
r.gsoIovs[3+i].Base = &p[0]
|
||||
r.gsoIovs[3+i].SetLen(len(p))
|
||||
}
|
||||
|
||||
_, err := r.rawWrite(r.gsoIovs)
|
||||
return err
|
||||
}
|
||||
|
||||
func (r *Offload) Close() error {
|
||||
if r.closed.Swap(true) {
|
||||
return nil
|
||||
}
|
||||
|
||||
//shutdownFd is owned by the container, so we should not close it
|
||||
var err error
|
||||
if r.fd >= 0 {
|
||||
err = unix.Close(r.fd)
|
||||
r.fd = -1
|
||||
}
|
||||
|
||||
return err
|
||||
}
|
||||
@@ -0,0 +1,164 @@
|
||||
package tio
|
||||
|
||||
import (
|
||||
"fmt"
|
||||
"os"
|
||||
"sync/atomic"
|
||||
|
||||
"golang.org/x/sys/unix"
|
||||
)
|
||||
|
||||
// Maximum size we accept for a single read from a TUN with IFF_VNET_HDR. A
|
||||
// TSO superpacket can be up to 64KiB of payload plus a single L2/L3/L4 header
|
||||
// prefix plus the virtio header.
|
||||
const tunReadBufSize = 65535
|
||||
|
||||
type Poll struct {
|
||||
fd int
|
||||
|
||||
readPoll [2]unix.PollFd
|
||||
writePoll [2]unix.PollFd
|
||||
closed atomic.Bool
|
||||
|
||||
readBuf []byte
|
||||
batchRet [1]Packet
|
||||
}
|
||||
|
||||
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,
|
||||
readBuf: make([]byte, tunReadBufSize),
|
||||
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},
|
||||
},
|
||||
}
|
||||
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
|
||||
}
|
||||
}
|
||||
tunEvents := t.writePoll[0].Revents
|
||||
shutdownEvents := t.writePoll[1].Revents
|
||||
t.writePoll[0].Revents = 0
|
||||
t.writePoll[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) Read() ([]Packet, error) {
|
||||
n, err := t.readOne(t.readBuf)
|
||||
if err != nil {
|
||||
return nil, err
|
||||
}
|
||||
t.batchRet[0] = Packet{Bytes: t.readBuf[:n]}
|
||||
return t.batchRet[:], 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
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
// Write is only valid for single threaded use
|
||||
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
|
||||
}
|
||||
@@ -0,0 +1,82 @@
|
||||
//go:build linux && !android && !e2e_testing
|
||||
// +build linux,!android,!e2e_testing
|
||||
|
||||
package tio
|
||||
|
||||
import (
|
||||
"errors"
|
||||
"os"
|
||||
"sync"
|
||||
"testing"
|
||||
"time"
|
||||
|
||||
"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) {
|
||||
pipe1 := newReadPipe(t)
|
||||
pipe2 := newReadPipe(t)
|
||||
parent, err := NewPollQueueSet()
|
||||
require.NoError(t, err)
|
||||
require.NoError(t, parent.Add(pipe1))
|
||||
require.NoError(t, parent.Add(pipe2))
|
||||
t.Cleanup(func() {
|
||||
_ = unix.Close(pipe1)
|
||||
_ = unix.Close(pipe2)
|
||||
})
|
||||
|
||||
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()
|
||||
_, errs[i] = r.Read()
|
||||
}(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) {
|
||||
tf, err := newPoll(newReadPipe(t), 1)
|
||||
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)
|
||||
}
|
||||
}
|
||||
@@ -0,0 +1,51 @@
|
||||
//go:build linux && !android && !e2e_testing
|
||||
// +build linux,!android,!e2e_testing
|
||||
|
||||
package tio
|
||||
|
||||
import (
|
||||
"fmt"
|
||||
|
||||
"golang.org/x/sys/unix"
|
||||
|
||||
"github.com/slackhq/nebula/overlay/tio/virtio"
|
||||
)
|
||||
|
||||
// protoFromGSOType maps a virtio_net_hdr GSOType to the GSOProto value the
|
||||
// segment-time helpers use. Returns an error for GSO_NONE or any unknown
|
||||
// value — the caller should only invoke this on a confirmed superpacket.
|
||||
func protoFromGSOType(t uint8) (GSOProto, error) {
|
||||
switch t {
|
||||
case unix.VIRTIO_NET_HDR_GSO_TCPV4, unix.VIRTIO_NET_HDR_GSO_TCPV6:
|
||||
return GSOProtoTCP, nil
|
||||
case unix.VIRTIO_NET_HDR_GSO_UDP_L4:
|
||||
return GSOProtoUDP, nil
|
||||
default:
|
||||
return 0, fmt.Errorf("unsupported virtio gso type: %d", t)
|
||||
}
|
||||
}
|
||||
|
||||
// SegmentSuperpacket invokes fn once per segment of pkt. For non-GSO pkts
|
||||
// fn is called once with pkt.Bytes (no segmentation, no copy). For GSO/USO
|
||||
// superpackets fn is called once per segment with a slice of pkt.Bytes
|
||||
// holding that segment's plaintext (a freshly-patched L3+L4 header sliced
|
||||
// in front of the original payload chunk). The slide is destructive: pkt is
|
||||
// consumed by this call and its bytes are in an undefined state when
|
||||
// SegmentSuperpacket returns. Callers must not retain pkt or any earlier
|
||||
// seg slice past fn's return for that segment. The scratch parameter is
|
||||
// unused on the destructive path and kept only for cross-platform
|
||||
// signature compatibility. Aborts and returns the first error from fn or
|
||||
// from per-segment construction.
|
||||
func SegmentSuperpacket(pkt Packet, fn func(seg []byte) error) error {
|
||||
if !pkt.GSO.IsSuperpacket() {
|
||||
return fn(pkt.Bytes)
|
||||
}
|
||||
switch pkt.GSO.Proto {
|
||||
case GSOProtoTCP:
|
||||
return virtio.SegmentTCP(pkt.Bytes, pkt.GSO.HdrLen, pkt.GSO.CsumStart, pkt.GSO.Size, fn)
|
||||
case GSOProtoUDP:
|
||||
return virtio.SegmentUDP(pkt.Bytes, pkt.GSO.HdrLen, pkt.GSO.CsumStart, pkt.GSO.Size, fn)
|
||||
default:
|
||||
return fmt.Errorf("unsupported gso proto: %d", pkt.GSO.Proto)
|
||||
}
|
||||
}
|
||||
@@ -0,0 +1,794 @@
|
||||
//go:build linux && !android && !e2e_testing
|
||||
// +build linux,!android,!e2e_testing
|
||||
|
||||
package tio
|
||||
|
||||
import (
|
||||
"encoding/binary"
|
||||
"os"
|
||||
"testing"
|
||||
|
||||
"golang.org/x/sys/unix"
|
||||
"gvisor.dev/gvisor/pkg/tcpip/checksum"
|
||||
|
||||
"github.com/slackhq/nebula/overlay/tio/virtio"
|
||||
)
|
||||
|
||||
// testSegScratchSize is a generous segmentation scratch sized to fit any
|
||||
// of the synthetic TSO/USO superpackets these tests generate (one
|
||||
// worst-case 64 KiB superpacket plus replicated per-segment headers).
|
||||
const testSegScratchSize = 192 * 1024
|
||||
|
||||
// verifyChecksum confirms that the one's-complement sum across `b`, seeded
|
||||
// with a folded pseudo-header sum, equals all-ones (valid).
|
||||
func verifyChecksum(b []byte, pseudo uint16) bool {
|
||||
return checksum.Checksum(b, pseudo) == 0xffff
|
||||
}
|
||||
|
||||
// segmentForTest is the test-only counterpart to the production
|
||||
// SegmentSuperpacket path. It handles GSO_NONE (with optional
|
||||
// finishChecksum) inline and dispatches GSO superpackets through
|
||||
// SegmentSuperpacket, draining each yielded segment into a
|
||||
// freshly-copied [][]byte slot so callers can iterate after the call
|
||||
// returns. Tests pre-set hdr.HdrLen correctly, so correctHdrLen is not
|
||||
// invoked here.
|
||||
func segmentForTest(pkt []byte, hdr virtio.Hdr, out *[][]byte, scratch []byte) error {
|
||||
if hdr.GSOType == unix.VIRTIO_NET_HDR_GSO_NONE {
|
||||
cp := append([]byte(nil), pkt...)
|
||||
if hdr.Flags&unix.VIRTIO_NET_HDR_F_NEEDS_CSUM != 0 {
|
||||
if err := virtio.FinishChecksum(cp, hdr); err != nil {
|
||||
return err
|
||||
}
|
||||
}
|
||||
*out = append(*out, cp)
|
||||
return nil
|
||||
}
|
||||
proto, err := protoFromGSOType(hdr.GSOType)
|
||||
if err != nil {
|
||||
return err
|
||||
}
|
||||
gso := GSOInfo{
|
||||
Size: hdr.GSOSize,
|
||||
HdrLen: hdr.HdrLen,
|
||||
CsumStart: hdr.CsumStart,
|
||||
Proto: proto,
|
||||
}
|
||||
return SegmentSuperpacket(Packet{Bytes: pkt, GSO: gso}, func(seg []byte) error {
|
||||
*out = append(*out, append([]byte(nil), seg...))
|
||||
return nil
|
||||
})
|
||||
}
|
||||
|
||||
// pseudoHeaderIPv4 returns the folded pseudo-header sum used to verify a
|
||||
// TCP/UDP segment's checksum in tests. src/dst are 4 bytes each.
|
||||
func pseudoHeaderIPv4(src, dst []byte, proto byte, l4Len int) uint16 {
|
||||
s := uint32(checksum.Checksum(src, 0)) + uint32(checksum.Checksum(dst, 0))
|
||||
s += uint32(proto) + uint32(l4Len)
|
||||
s = (s & 0xffff) + (s >> 16)
|
||||
s = (s & 0xffff) + (s >> 16)
|
||||
return uint16(s)
|
||||
}
|
||||
|
||||
// pseudoHeaderIPv6 returns the folded pseudo-header sum used to verify a
|
||||
// TCP/UDP segment's checksum in tests. src/dst are 16 bytes each.
|
||||
func pseudoHeaderIPv6(src, dst []byte, proto byte, l4Len int) uint16 {
|
||||
s := uint32(checksum.Checksum(src, 0)) + uint32(checksum.Checksum(dst, 0))
|
||||
s += uint32(l4Len>>16) + uint32(l4Len&0xffff) + uint32(proto)
|
||||
s = (s & 0xffff) + (s >> 16)
|
||||
s = (s & 0xffff) + (s >> 16)
|
||||
return uint16(s)
|
||||
}
|
||||
|
||||
// buildTSOv4 builds a synthetic IPv4/TCP TSO superpacket with a payload of
|
||||
// `payLen` bytes split at `mss`.
|
||||
func buildTSOv4(t *testing.T, payLen, mss int) ([]byte, virtio.Hdr) {
|
||||
t.Helper()
|
||||
const ipLen = 20
|
||||
const tcpLen = 20
|
||||
pkt := make([]byte, ipLen+tcpLen+payLen)
|
||||
|
||||
// IPv4 header
|
||||
pkt[0] = 0x45 // version 4, IHL 5
|
||||
// total length is meaningless for TSO but set it anyway
|
||||
binary.BigEndian.PutUint16(pkt[2:4], uint16(ipLen+tcpLen+payLen))
|
||||
binary.BigEndian.PutUint16(pkt[4:6], 0x4242) // original ID
|
||||
pkt[8] = 64 // TTL
|
||||
pkt[9] = unix.IPPROTO_TCP
|
||||
copy(pkt[12:16], []byte{10, 0, 0, 1}) // src
|
||||
copy(pkt[16:20], []byte{10, 0, 0, 2}) // dst
|
||||
|
||||
// TCP header
|
||||
binary.BigEndian.PutUint16(pkt[20:22], 12345) // sport
|
||||
binary.BigEndian.PutUint16(pkt[22:24], 80) // dport
|
||||
binary.BigEndian.PutUint32(pkt[24:28], 10000) // seq
|
||||
binary.BigEndian.PutUint32(pkt[28:32], 20000) // ack
|
||||
pkt[32] = 0x50 // data offset 5 words
|
||||
pkt[33] = 0x18 // ACK | PSH
|
||||
binary.BigEndian.PutUint16(pkt[34:36], 65535) // window
|
||||
|
||||
// payload
|
||||
for i := 0; i < payLen; i++ {
|
||||
pkt[ipLen+tcpLen+i] = byte(i & 0xff)
|
||||
}
|
||||
|
||||
return pkt, virtio.Hdr{
|
||||
Flags: unix.VIRTIO_NET_HDR_F_NEEDS_CSUM,
|
||||
GSOType: unix.VIRTIO_NET_HDR_GSO_TCPV4,
|
||||
HdrLen: uint16(ipLen + tcpLen),
|
||||
GSOSize: uint16(mss),
|
||||
CsumStart: uint16(ipLen),
|
||||
CsumOffset: 16,
|
||||
}
|
||||
}
|
||||
|
||||
func TestSegmentTCPv4(t *testing.T) {
|
||||
const mss = 100
|
||||
const numSeg = 3
|
||||
pkt, hdr := buildTSOv4(t, mss*numSeg, mss)
|
||||
|
||||
scratch := make([]byte, testSegScratchSize)
|
||||
var out [][]byte
|
||||
if err := segmentForTest(pkt, hdr, &out, scratch); err != nil {
|
||||
t.Fatalf("segmentForTest: %v", err)
|
||||
}
|
||||
if len(out) != numSeg {
|
||||
t.Fatalf("expected %d segments, got %d", numSeg, len(out))
|
||||
}
|
||||
|
||||
for i, seg := range out {
|
||||
if len(seg) != 40+mss {
|
||||
t.Errorf("seg %d: unexpected len %d", i, len(seg))
|
||||
}
|
||||
totalLen := binary.BigEndian.Uint16(seg[2:4])
|
||||
if totalLen != uint16(40+mss) {
|
||||
t.Errorf("seg %d: total_len=%d want %d", i, totalLen, 40+mss)
|
||||
}
|
||||
id := binary.BigEndian.Uint16(seg[4:6])
|
||||
if id != 0x4242+uint16(i) {
|
||||
t.Errorf("seg %d: ip id=%#x want %#x", i, id, 0x4242+uint16(i))
|
||||
}
|
||||
seq := binary.BigEndian.Uint32(seg[24:28])
|
||||
wantSeq := uint32(10000 + i*mss)
|
||||
if seq != wantSeq {
|
||||
t.Errorf("seg %d: seq=%d want %d", i, seq, wantSeq)
|
||||
}
|
||||
flags := seg[33]
|
||||
wantFlags := byte(0x10) // ACK only, PSH cleared
|
||||
if i == numSeg-1 {
|
||||
wantFlags = 0x18 // ACK | PSH preserved on last
|
||||
}
|
||||
if flags != wantFlags {
|
||||
t.Errorf("seg %d: flags=%#x want %#x", i, flags, wantFlags)
|
||||
}
|
||||
// IPv4 header checksum must verify against itself.
|
||||
if !verifyChecksum(seg[:20], 0) {
|
||||
t.Errorf("seg %d: bad IPv4 header checksum", i)
|
||||
}
|
||||
// TCP checksum must verify against the pseudo-header.
|
||||
psum := pseudoHeaderIPv4(seg[12:16], seg[16:20], unix.IPPROTO_TCP, 20+mss)
|
||||
if !verifyChecksum(seg[20:], psum) {
|
||||
t.Errorf("seg %d: bad TCP checksum", i)
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
func TestSegmentTCPv4OddTail(t *testing.T) {
|
||||
// Payload of 250 bytes with MSS 100 → segments of 100, 100, 50.
|
||||
pkt, hdr := buildTSOv4(t, 250, 100)
|
||||
scratch := make([]byte, testSegScratchSize)
|
||||
var out [][]byte
|
||||
if err := segmentForTest(pkt, hdr, &out, scratch); err != nil {
|
||||
t.Fatalf("segmentForTest: %v", err)
|
||||
}
|
||||
if len(out) != 3 {
|
||||
t.Fatalf("want 3 segments, got %d", len(out))
|
||||
}
|
||||
wantPayLens := []int{100, 100, 50}
|
||||
for i, seg := range out {
|
||||
if len(seg)-40 != wantPayLens[i] {
|
||||
t.Errorf("seg %d: pay len %d want %d", i, len(seg)-40, wantPayLens[i])
|
||||
}
|
||||
if !verifyChecksum(seg[:20], 0) {
|
||||
t.Errorf("seg %d: bad IPv4 header checksum", i)
|
||||
}
|
||||
psum := pseudoHeaderIPv4(seg[12:16], seg[16:20], unix.IPPROTO_TCP, 20+wantPayLens[i])
|
||||
if !verifyChecksum(seg[20:], psum) {
|
||||
t.Errorf("seg %d: bad TCP checksum", i)
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
func TestSegmentTCPv6(t *testing.T) {
|
||||
const ipLen = 40
|
||||
const tcpLen = 20
|
||||
const mss = 120
|
||||
const numSeg = 2
|
||||
payLen := mss * numSeg
|
||||
pkt := make([]byte, ipLen+tcpLen+payLen)
|
||||
|
||||
// IPv6 header
|
||||
pkt[0] = 0x60 // version 6
|
||||
binary.BigEndian.PutUint16(pkt[4:6], uint16(tcpLen+payLen))
|
||||
pkt[6] = unix.IPPROTO_TCP
|
||||
pkt[7] = 64
|
||||
// src/dst fe80::1 / fe80::2
|
||||
pkt[8] = 0xfe
|
||||
pkt[9] = 0x80
|
||||
pkt[23] = 1
|
||||
pkt[24] = 0xfe
|
||||
pkt[25] = 0x80
|
||||
pkt[39] = 2
|
||||
|
||||
// TCP header
|
||||
binary.BigEndian.PutUint16(pkt[40:42], 12345)
|
||||
binary.BigEndian.PutUint16(pkt[42:44], 80)
|
||||
binary.BigEndian.PutUint32(pkt[44:48], 7)
|
||||
binary.BigEndian.PutUint32(pkt[48:52], 99)
|
||||
pkt[52] = 0x50
|
||||
pkt[53] = 0x19 // FIN | ACK | PSH — exercise FIN clearing too
|
||||
binary.BigEndian.PutUint16(pkt[54:56], 65535)
|
||||
|
||||
for i := 0; i < payLen; i++ {
|
||||
pkt[ipLen+tcpLen+i] = byte(i)
|
||||
}
|
||||
|
||||
hdr := virtio.Hdr{
|
||||
Flags: unix.VIRTIO_NET_HDR_F_NEEDS_CSUM,
|
||||
GSOType: unix.VIRTIO_NET_HDR_GSO_TCPV6,
|
||||
HdrLen: uint16(ipLen + tcpLen),
|
||||
GSOSize: uint16(mss),
|
||||
CsumStart: uint16(ipLen),
|
||||
CsumOffset: 16,
|
||||
}
|
||||
|
||||
scratch := make([]byte, testSegScratchSize)
|
||||
var out [][]byte
|
||||
if err := segmentForTest(pkt, hdr, &out, scratch); err != nil {
|
||||
t.Fatalf("segmentForTest: %v", err)
|
||||
}
|
||||
if len(out) != numSeg {
|
||||
t.Fatalf("want %d segments, got %d", numSeg, len(out))
|
||||
}
|
||||
|
||||
for i, seg := range out {
|
||||
if len(seg) != ipLen+tcpLen+mss {
|
||||
t.Errorf("seg %d: len %d want %d", i, len(seg), ipLen+tcpLen+mss)
|
||||
}
|
||||
pl := binary.BigEndian.Uint16(seg[4:6])
|
||||
if pl != uint16(tcpLen+mss) {
|
||||
t.Errorf("seg %d: payload_length=%d want %d", i, pl, tcpLen+mss)
|
||||
}
|
||||
seq := binary.BigEndian.Uint32(seg[44:48])
|
||||
if seq != uint32(7+i*mss) {
|
||||
t.Errorf("seg %d: seq=%d want %d", i, seq, 7+i*mss)
|
||||
}
|
||||
flags := seg[53]
|
||||
// Original flags = 0x19 (FIN|ACK|PSH). FIN(0x01)+PSH(0x08) should be
|
||||
// cleared on all but the last; ACK(0x10) always preserved.
|
||||
wantFlags := byte(0x10)
|
||||
if i == numSeg-1 {
|
||||
wantFlags = 0x19
|
||||
}
|
||||
if flags != wantFlags {
|
||||
t.Errorf("seg %d: flags=%#x want %#x", i, flags, wantFlags)
|
||||
}
|
||||
psum := pseudoHeaderIPv6(seg[8:24], seg[24:40], unix.IPPROTO_TCP, tcpLen+mss)
|
||||
if !verifyChecksum(seg[ipLen:], psum) {
|
||||
t.Errorf("seg %d: bad TCP checksum", i)
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
func TestSegmentGSONonePassesThrough(t *testing.T) {
|
||||
pkt, hdr := buildTSOv4(t, 100, 100)
|
||||
hdr.GSOType = unix.VIRTIO_NET_HDR_GSO_NONE
|
||||
hdr.Flags = 0 // no NEEDS_CSUM, leave packet untouched
|
||||
|
||||
scratch := make([]byte, testSegScratchSize)
|
||||
var out [][]byte
|
||||
if err := segmentForTest(pkt, hdr, &out, scratch); err != nil {
|
||||
t.Fatalf("segmentForTest: %v", err)
|
||||
}
|
||||
if len(out) != 1 {
|
||||
t.Fatalf("want 1 segment, got %d", len(out))
|
||||
}
|
||||
if len(out[0]) != len(pkt) {
|
||||
t.Fatalf("unexpected length: %d vs %d", len(out[0]), len(pkt))
|
||||
}
|
||||
}
|
||||
|
||||
// TestSegmentRejectsLegacyUDPGSO ensures the legacy GSO_UDP (UFO) marker is
|
||||
// still rejected; only modern GSO_UDP_L4 (USO) is supported.
|
||||
func TestSegmentRejectsLegacyUDPGSO(t *testing.T) {
|
||||
hdr := virtio.Hdr{GSOType: unix.VIRTIO_NET_HDR_GSO_UDP}
|
||||
var out [][]byte
|
||||
if err := segmentForTest(nil, hdr, &out, nil); err == nil {
|
||||
t.Fatalf("expected rejection for legacy UDP GSO")
|
||||
}
|
||||
}
|
||||
|
||||
// buildUSOv4 builds a synthetic IPv4/UDP USO superpacket with payload of
|
||||
// payLen bytes, segmented at gsoSize.
|
||||
func buildUSOv4(t *testing.T, payLen, gsoSize int) ([]byte, virtio.Hdr) {
|
||||
t.Helper()
|
||||
const ipLen = 20
|
||||
const udpLen = 8
|
||||
pkt := make([]byte, ipLen+udpLen+payLen)
|
||||
|
||||
// IPv4 header
|
||||
pkt[0] = 0x45 // version 4, IHL 5
|
||||
binary.BigEndian.PutUint16(pkt[2:4], uint16(ipLen+udpLen+payLen))
|
||||
binary.BigEndian.PutUint16(pkt[4:6], 0x4242)
|
||||
pkt[8] = 64
|
||||
pkt[9] = unix.IPPROTO_UDP
|
||||
copy(pkt[12:16], []byte{10, 0, 0, 1})
|
||||
copy(pkt[16:20], []byte{10, 0, 0, 2})
|
||||
|
||||
// UDP header (length + checksum filled in per segment by segmentUDPYield)
|
||||
binary.BigEndian.PutUint16(pkt[20:22], 12345) // sport
|
||||
binary.BigEndian.PutUint16(pkt[22:24], 53) // dport
|
||||
|
||||
for i := 0; i < payLen; i++ {
|
||||
pkt[ipLen+udpLen+i] = byte(i & 0xff)
|
||||
}
|
||||
|
||||
return pkt, virtio.Hdr{
|
||||
Flags: unix.VIRTIO_NET_HDR_F_NEEDS_CSUM,
|
||||
GSOType: unix.VIRTIO_NET_HDR_GSO_UDP_L4,
|
||||
HdrLen: uint16(ipLen + udpLen),
|
||||
GSOSize: uint16(gsoSize),
|
||||
CsumStart: uint16(ipLen),
|
||||
CsumOffset: 6,
|
||||
}
|
||||
}
|
||||
|
||||
func TestSegmentUDPv4(t *testing.T) {
|
||||
const gso = 100
|
||||
const numSeg = 3
|
||||
pkt, hdr := buildUSOv4(t, gso*numSeg, gso)
|
||||
|
||||
scratch := make([]byte, testSegScratchSize)
|
||||
var out [][]byte
|
||||
if err := segmentForTest(pkt, hdr, &out, scratch); err != nil {
|
||||
t.Fatalf("segmentForTest: %v", err)
|
||||
}
|
||||
if len(out) != numSeg {
|
||||
t.Fatalf("expected %d segments, got %d", numSeg, len(out))
|
||||
}
|
||||
|
||||
for i, seg := range out {
|
||||
if len(seg) != 28+gso {
|
||||
t.Errorf("seg %d: len %d want %d", i, len(seg), 28+gso)
|
||||
}
|
||||
totalLen := binary.BigEndian.Uint16(seg[2:4])
|
||||
if totalLen != uint16(28+gso) {
|
||||
t.Errorf("seg %d: total_len=%d want %d", i, totalLen, 28+gso)
|
||||
}
|
||||
// kernel UDP-GSO does NOT bump the IPv4 ID across segments; every
|
||||
// segment carries the same ID as the seed.
|
||||
id := binary.BigEndian.Uint16(seg[4:6])
|
||||
if id != 0x4242 {
|
||||
t.Errorf("seg %d: ip id=%#x want %#x", i, id, 0x4242)
|
||||
}
|
||||
udpLen := binary.BigEndian.Uint16(seg[24:26])
|
||||
if udpLen != uint16(8+gso) {
|
||||
t.Errorf("seg %d: udp len=%d want %d", i, udpLen, 8+gso)
|
||||
}
|
||||
if !verifyChecksum(seg[:20], 0) {
|
||||
t.Errorf("seg %d: bad IPv4 header checksum", i)
|
||||
}
|
||||
psum := pseudoHeaderIPv4(seg[12:16], seg[16:20], unix.IPPROTO_UDP, 8+gso)
|
||||
if !verifyChecksum(seg[20:], psum) {
|
||||
t.Errorf("seg %d: bad UDP checksum", i)
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
func TestSegmentUDPv4OddTail(t *testing.T) {
|
||||
// 250 bytes payload, gsoSize=100 → segments of 100, 100, 50.
|
||||
pkt, hdr := buildUSOv4(t, 250, 100)
|
||||
scratch := make([]byte, testSegScratchSize)
|
||||
var out [][]byte
|
||||
if err := segmentForTest(pkt, hdr, &out, scratch); err != nil {
|
||||
t.Fatalf("segmentForTest: %v", err)
|
||||
}
|
||||
if len(out) != 3 {
|
||||
t.Fatalf("want 3 segments, got %d", len(out))
|
||||
}
|
||||
wantPay := []int{100, 100, 50}
|
||||
for i, seg := range out {
|
||||
if len(seg)-28 != wantPay[i] {
|
||||
t.Errorf("seg %d: pay len %d want %d", i, len(seg)-28, wantPay[i])
|
||||
}
|
||||
udpLen := binary.BigEndian.Uint16(seg[24:26])
|
||||
if udpLen != uint16(8+wantPay[i]) {
|
||||
t.Errorf("seg %d: udp len=%d want %d", i, udpLen, 8+wantPay[i])
|
||||
}
|
||||
if !verifyChecksum(seg[:20], 0) {
|
||||
t.Errorf("seg %d: bad IPv4 header checksum", i)
|
||||
}
|
||||
psum := pseudoHeaderIPv4(seg[12:16], seg[16:20], unix.IPPROTO_UDP, 8+wantPay[i])
|
||||
if !verifyChecksum(seg[20:], psum) {
|
||||
t.Errorf("seg %d: bad UDP checksum", i)
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
func TestSegmentUDPv6(t *testing.T) {
|
||||
const ipLen = 40
|
||||
const udpLen = 8
|
||||
const gso = 120
|
||||
const numSeg = 2
|
||||
payLen := gso * numSeg
|
||||
pkt := make([]byte, ipLen+udpLen+payLen)
|
||||
|
||||
// IPv6 header
|
||||
pkt[0] = 0x60
|
||||
binary.BigEndian.PutUint16(pkt[4:6], uint16(udpLen+payLen))
|
||||
pkt[6] = unix.IPPROTO_UDP
|
||||
pkt[7] = 64
|
||||
pkt[8] = 0xfe
|
||||
pkt[9] = 0x80
|
||||
pkt[23] = 1
|
||||
pkt[24] = 0xfe
|
||||
pkt[25] = 0x80
|
||||
pkt[39] = 2
|
||||
|
||||
binary.BigEndian.PutUint16(pkt[40:42], 12345)
|
||||
binary.BigEndian.PutUint16(pkt[42:44], 53)
|
||||
|
||||
for i := 0; i < payLen; i++ {
|
||||
pkt[ipLen+udpLen+i] = byte(i)
|
||||
}
|
||||
|
||||
hdr := virtio.Hdr{
|
||||
Flags: unix.VIRTIO_NET_HDR_F_NEEDS_CSUM,
|
||||
GSOType: unix.VIRTIO_NET_HDR_GSO_UDP_L4,
|
||||
HdrLen: uint16(ipLen + udpLen),
|
||||
GSOSize: uint16(gso),
|
||||
CsumStart: uint16(ipLen),
|
||||
CsumOffset: 6,
|
||||
}
|
||||
|
||||
scratch := make([]byte, testSegScratchSize)
|
||||
var out [][]byte
|
||||
if err := segmentForTest(pkt, hdr, &out, scratch); err != nil {
|
||||
t.Fatalf("segmentForTest: %v", err)
|
||||
}
|
||||
if len(out) != numSeg {
|
||||
t.Fatalf("want %d segments, got %d", numSeg, len(out))
|
||||
}
|
||||
|
||||
for i, seg := range out {
|
||||
if len(seg) != ipLen+udpLen+gso {
|
||||
t.Errorf("seg %d: len %d want %d", i, len(seg), ipLen+udpLen+gso)
|
||||
}
|
||||
pl := binary.BigEndian.Uint16(seg[4:6])
|
||||
if pl != uint16(udpLen+gso) {
|
||||
t.Errorf("seg %d: payload_length=%d want %d", i, pl, udpLen+gso)
|
||||
}
|
||||
ul := binary.BigEndian.Uint16(seg[ipLen+4 : ipLen+6])
|
||||
if ul != uint16(udpLen+gso) {
|
||||
t.Errorf("seg %d: udp len=%d want %d", i, ul, udpLen+gso)
|
||||
}
|
||||
psum := pseudoHeaderIPv6(seg[8:24], seg[24:40], unix.IPPROTO_UDP, udpLen+gso)
|
||||
if !verifyChecksum(seg[ipLen:], psum) {
|
||||
t.Errorf("seg %d: bad UDP checksum", i)
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
// TestSegmentUDPCEPropagates confirms IP-level CE marks on the seed appear on
|
||||
// every segment. UDP has no transport-level CWR/ECE: the IP TOS/TC byte is
|
||||
// copied verbatim into every segment by the segment-prefix copy.
|
||||
func TestSegmentUDPCEPropagates(t *testing.T) {
|
||||
pkt, hdr := buildUSOv4(t, 200, 100)
|
||||
pkt[1] = 0x03 // CE codepoint in IP-ECN
|
||||
|
||||
scratch := make([]byte, testSegScratchSize)
|
||||
var out [][]byte
|
||||
if err := segmentForTest(pkt, hdr, &out, scratch); err != nil {
|
||||
t.Fatalf("segmentForTest: %v", err)
|
||||
}
|
||||
if len(out) != 2 {
|
||||
t.Fatalf("want 2 segments, got %d", len(out))
|
||||
}
|
||||
for i, seg := range out {
|
||||
if seg[1]&0x03 != 0x03 {
|
||||
t.Errorf("seg %d: CE missing (tos=%#x)", i, seg[1])
|
||||
}
|
||||
if !verifyChecksum(seg[:20], 0) {
|
||||
t.Errorf("seg %d: bad IPv4 header checksum", i)
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
// TestSegmentTCPCwrFirstSegmentOnly confirms RFC 3168 §6.1.2: when a TSO
|
||||
// burst's seed has CWR set, only the first emitted segment carries CWR.
|
||||
// ECE is preserved on every segment (different signal, persistent state).
|
||||
func TestSegmentTCPCwrFirstSegmentOnly(t *testing.T) {
|
||||
const mss = 100
|
||||
const numSeg = 3
|
||||
pkt, hdr := buildTSOv4(t, mss*numSeg, mss)
|
||||
// Seed flags: CWR | ECE | ACK | PSH.
|
||||
pkt[33] = 0x80 | 0x40 | 0x10 | 0x08
|
||||
|
||||
scratch := make([]byte, testSegScratchSize)
|
||||
var out [][]byte
|
||||
if err := segmentForTest(pkt, hdr, &out, scratch); err != nil {
|
||||
t.Fatalf("segmentForTest: %v", err)
|
||||
}
|
||||
if len(out) != numSeg {
|
||||
t.Fatalf("expected %d segments, got %d", numSeg, len(out))
|
||||
}
|
||||
for i, seg := range out {
|
||||
flags := seg[33]
|
||||
hasCwr := flags&0x80 != 0
|
||||
hasEce := flags&0x40 != 0
|
||||
hasPsh := flags&0x08 != 0
|
||||
wantCwr := i == 0
|
||||
wantPsh := i == numSeg-1
|
||||
if hasCwr != wantCwr {
|
||||
t.Errorf("seg %d: CWR=%v want %v (flags=%#x)", i, hasCwr, wantCwr, flags)
|
||||
}
|
||||
if !hasEce {
|
||||
t.Errorf("seg %d: ECE missing (flags=%#x)", i, flags)
|
||||
}
|
||||
if hasPsh != wantPsh {
|
||||
t.Errorf("seg %d: PSH=%v want %v (flags=%#x)", i, hasPsh, wantPsh, flags)
|
||||
}
|
||||
// IP and TCP checksums must still verify after the flag rewrite.
|
||||
if !verifyChecksum(seg[:20], 0) {
|
||||
t.Errorf("seg %d: bad IPv4 header checksum", i)
|
||||
}
|
||||
psum := pseudoHeaderIPv4(seg[12:16], seg[16:20], unix.IPPROTO_TCP, 20+mss)
|
||||
if !verifyChecksum(seg[20:], psum) {
|
||||
t.Errorf("seg %d: bad TCP checksum", i)
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
func BenchmarkSegmentTCPv4(b *testing.B) {
|
||||
sizes := []struct {
|
||||
name string
|
||||
payLen int
|
||||
mss int
|
||||
}{
|
||||
{"64KiB_MSS1460", 65000, 1460},
|
||||
{"16KiB_MSS1460", 16384, 1460},
|
||||
{"4KiB_MSS1460", 4096, 1460},
|
||||
}
|
||||
for _, sz := range sizes {
|
||||
b.Run(sz.name, func(b *testing.B) {
|
||||
const ipLen = 20
|
||||
const tcpLen = 20
|
||||
pkt := make([]byte, ipLen+tcpLen+sz.payLen)
|
||||
pkt[0] = 0x45
|
||||
binary.BigEndian.PutUint16(pkt[2:4], uint16(ipLen+tcpLen+sz.payLen))
|
||||
binary.BigEndian.PutUint16(pkt[4:6], 0x4242)
|
||||
pkt[8] = 64
|
||||
pkt[9] = unix.IPPROTO_TCP
|
||||
copy(pkt[12:16], []byte{10, 0, 0, 1})
|
||||
copy(pkt[16:20], []byte{10, 0, 0, 2})
|
||||
binary.BigEndian.PutUint16(pkt[20:22], 12345)
|
||||
binary.BigEndian.PutUint16(pkt[22:24], 80)
|
||||
binary.BigEndian.PutUint32(pkt[24:28], 10000)
|
||||
binary.BigEndian.PutUint32(pkt[28:32], 20000)
|
||||
pkt[32] = 0x50
|
||||
pkt[33] = 0x18
|
||||
binary.BigEndian.PutUint16(pkt[34:36], 65535)
|
||||
for i := 0; i < sz.payLen; i++ {
|
||||
pkt[ipLen+tcpLen+i] = byte(i)
|
||||
}
|
||||
hdr := virtio.Hdr{
|
||||
Flags: unix.VIRTIO_NET_HDR_F_NEEDS_CSUM,
|
||||
GSOType: unix.VIRTIO_NET_HDR_GSO_TCPV4,
|
||||
HdrLen: uint16(ipLen + tcpLen),
|
||||
GSOSize: uint16(sz.mss),
|
||||
CsumStart: uint16(ipLen),
|
||||
CsumOffset: 16,
|
||||
}
|
||||
|
||||
scratch := make([]byte, testSegScratchSize)
|
||||
out := make([][]byte, 0, 64)
|
||||
|
||||
// SegmentSuperpacket consumes its input destructively; restore
|
||||
// pkt from a master copy each iteration. The restore mirrors the
|
||||
// kernel→userspace copy that hands a fresh GSO blob to the
|
||||
// segmenter in production, so it's representative cost rather
|
||||
// than bench overhead.
|
||||
master := append([]byte(nil), pkt...)
|
||||
work := make([]byte, len(pkt))
|
||||
|
||||
b.SetBytes(int64(len(pkt)))
|
||||
b.ResetTimer()
|
||||
for i := 0; i < b.N; i++ {
|
||||
copy(work, master)
|
||||
out = out[:0]
|
||||
if err := segmentForTest(work, hdr, &out, scratch); err != nil {
|
||||
b.Fatal(err)
|
||||
}
|
||||
}
|
||||
})
|
||||
}
|
||||
}
|
||||
|
||||
// TestTunFileWriteVnetHdrNoAlloc verifies the IFF_VNET_HDR fast-path write is
|
||||
// allocation-free. We write to /dev/null so every call succeeds synchronously.
|
||||
func TestTunFileWriteVnetHdrNoAlloc(t *testing.T) {
|
||||
fd, err := unix.Open("/dev/null", os.O_WRONLY, 0)
|
||||
if err != nil {
|
||||
t.Fatalf("open /dev/null: %v", err)
|
||||
}
|
||||
t.Cleanup(func() { _ = unix.Close(fd) })
|
||||
|
||||
tf := &Offload{fd: fd}
|
||||
|
||||
payload := make([]byte, 1400)
|
||||
// Warm up (first call may trigger one-time internal allocations elsewhere).
|
||||
if _, err := tf.Write(payload); err != nil {
|
||||
t.Fatalf("Write: %v", err)
|
||||
}
|
||||
|
||||
allocs := testing.AllocsPerRun(1000, func() {
|
||||
if _, err := tf.Write(payload); err != nil {
|
||||
t.Fatalf("Write: %v", err)
|
||||
}
|
||||
})
|
||||
if allocs != 0 {
|
||||
t.Fatalf("Write allocated %.1f times per call, want 0", allocs)
|
||||
}
|
||||
}
|
||||
|
||||
// buildTSOv6 builds a synthetic IPv6/TCP TSO superpacket with payLen bytes
|
||||
// of payload, segmented at gso. Returns the packet bytes only; the
|
||||
// virtio_net_hdr is the caller's responsibility.
|
||||
func buildTSOv6(payLen, gso int) []byte {
|
||||
const ipLen = 40
|
||||
const tcpLen = 20
|
||||
pkt := make([]byte, ipLen+tcpLen+payLen)
|
||||
|
||||
pkt[0] = 0x60 // version 6
|
||||
binary.BigEndian.PutUint16(pkt[4:6], uint16(tcpLen+payLen))
|
||||
pkt[6] = unix.IPPROTO_TCP
|
||||
pkt[7] = 64
|
||||
pkt[8] = 0xfe
|
||||
pkt[9] = 0x80
|
||||
pkt[23] = 1
|
||||
pkt[24] = 0xfe
|
||||
pkt[25] = 0x80
|
||||
pkt[39] = 2
|
||||
|
||||
binary.BigEndian.PutUint16(pkt[40:42], 12345)
|
||||
binary.BigEndian.PutUint16(pkt[42:44], 80)
|
||||
binary.BigEndian.PutUint32(pkt[44:48], 7)
|
||||
binary.BigEndian.PutUint32(pkt[48:52], 99)
|
||||
pkt[52] = 0x50
|
||||
pkt[53] = 0x10 // ACK only
|
||||
binary.BigEndian.PutUint16(pkt[54:56], 65535)
|
||||
|
||||
for i := 0; i < payLen; i++ {
|
||||
pkt[ipLen+tcpLen+i] = byte(i)
|
||||
}
|
||||
return pkt
|
||||
}
|
||||
|
||||
// TestDecodeReadFitsMaxTSOAtDrainThreshold proves the rxBuf sizing is
|
||||
// correct: when rxOff is at the maximum value the drain headroom check
|
||||
// allows, decodeRead must still be able to absorb a worst-case 64KiB
|
||||
// TSO superpacket without dropping the burst. With segmentation deferred
|
||||
// to encrypt time, decodeRead writes only the kernel-supplied bytes into
|
||||
// rxBuf, so the size requirement is just "fit one worst-case input."
|
||||
//
|
||||
// Regression history: in a prior layout the rx buffer doubled as the
|
||||
// segmentation output, a near-threshold drain read returned "scratch too
|
||||
// small", the whole 45-segment TSO burst was dropped, and the remote's TCP
|
||||
// fast-retransmit collapsed cwnd. Keeping this test in the new layout
|
||||
// guards against re-introducing a drain headroom shortfall.
|
||||
func TestDecodeReadFitsMaxTSOAtDrainThreshold(t *testing.T) {
|
||||
const ipv6HdrLen = 40
|
||||
const tcpHdrLen = 20
|
||||
const headerLen = ipv6HdrLen + tcpHdrLen
|
||||
// Maximum TUN read body. The tunReadBufSize cap on readv's body iovec
|
||||
// is what bounds the kernel's superpacket length.
|
||||
pktLen := tunReadBufSize
|
||||
payLen := pktLen - headerLen
|
||||
const targetSegs = 64
|
||||
gsoSize := (payLen + targetSegs - 1) / targetSegs
|
||||
|
||||
pkt := buildTSOv6(payLen, gsoSize)
|
||||
if len(pkt) != pktLen {
|
||||
t.Fatalf("buildTSOv6 produced %d bytes, want %d", len(pkt), pktLen)
|
||||
}
|
||||
|
||||
o := &Offload{
|
||||
rxBuf: make([]byte, tunRxBufCap),
|
||||
}
|
||||
// rxOff at the maximum value the drain headroom check permits before
|
||||
// it would refuse another read. Any drain-time read up to this
|
||||
// threshold MUST still process correctly.
|
||||
o.rxOff = tunRxBufCap - tunRxBufSize
|
||||
|
||||
// Stage the body in rxBuf as if readv(2) just placed it there.
|
||||
copy(o.rxBuf[o.rxOff:], pkt)
|
||||
|
||||
// Encode the matching virtio_net_hdr.
|
||||
hdr := virtio.Hdr{
|
||||
Flags: unix.VIRTIO_NET_HDR_F_NEEDS_CSUM,
|
||||
GSOType: unix.VIRTIO_NET_HDR_GSO_TCPV6,
|
||||
HdrLen: uint16(headerLen),
|
||||
GSOSize: uint16(gsoSize),
|
||||
CsumStart: uint16(ipv6HdrLen),
|
||||
CsumOffset: 16,
|
||||
}
|
||||
hdr.Encode(o.readVnetScratch[:])
|
||||
|
||||
startRxOff := o.rxOff
|
||||
if err := o.decodeRead(pktLen); err != nil {
|
||||
t.Fatalf("decodeRead at drain threshold returned %v — rxBuf sizing regression: "+
|
||||
"tunRxBufSize=%d must hold one worst-case input (%d)",
|
||||
err, tunRxBufSize, pktLen)
|
||||
}
|
||||
|
||||
if len(o.pending) != 1 {
|
||||
t.Fatalf("got %d packets, want 1 superpacket entry", len(o.pending))
|
||||
}
|
||||
got := o.pending[0]
|
||||
if !got.GSO.IsSuperpacket() {
|
||||
t.Fatalf("expected superpacket GSO metadata, got %+v", got.GSO)
|
||||
}
|
||||
if got.GSO.Proto != GSOProtoTCP {
|
||||
t.Errorf("GSO.Proto=%d want TCP", got.GSO.Proto)
|
||||
}
|
||||
if got.GSO.Size != uint16(gsoSize) {
|
||||
t.Errorf("GSO.Size=%d want %d", got.GSO.Size, gsoSize)
|
||||
}
|
||||
if got.GSO.HdrLen != uint16(headerLen) {
|
||||
t.Errorf("GSO.HdrLen=%d want %d", got.GSO.HdrLen, headerLen)
|
||||
}
|
||||
if got.GSO.CsumStart != uint16(ipv6HdrLen) {
|
||||
t.Errorf("GSO.CsumStart=%d want %d", got.GSO.CsumStart, ipv6HdrLen)
|
||||
}
|
||||
if len(got.Bytes) != pktLen {
|
||||
t.Errorf("len(Bytes)=%d want %d", len(got.Bytes), pktLen)
|
||||
}
|
||||
|
||||
// rxOff advances exactly by the kernel-supplied body length — no
|
||||
// segmentation output to account for any more.
|
||||
if o.rxOff != startRxOff+pktLen {
|
||||
t.Errorf("rxOff=%d want %d", o.rxOff, startRxOff+pktLen)
|
||||
}
|
||||
if o.rxOff > tunRxBufCap {
|
||||
t.Fatalf("rxOff=%d overran rxBuf (cap=%d)", o.rxOff, tunRxBufCap)
|
||||
}
|
||||
|
||||
// Validate that segmenting the returned superpacket reproduces the
|
||||
// expected per-segment IPv6 payload length and TCP checksum.
|
||||
wantSegs := (payLen + gsoSize - 1) / gsoSize
|
||||
gotSegs := 0
|
||||
if err := SegmentSuperpacket(got, func(seg []byte) error {
|
||||
defer func() { gotSegs++ }()
|
||||
if len(seg) < headerLen+1 {
|
||||
t.Errorf("seg %d too short: %d", gotSegs, len(seg))
|
||||
return nil
|
||||
}
|
||||
if seg[0]>>4 != 6 {
|
||||
t.Errorf("seg %d: bad IP version %#x", gotSegs, seg[0])
|
||||
}
|
||||
segPay := len(seg) - headerLen
|
||||
gotPL := binary.BigEndian.Uint16(seg[4:6])
|
||||
if gotPL != uint16(tcpHdrLen+segPay) {
|
||||
t.Errorf("seg %d: payload_len=%d want %d", gotSegs, gotPL, tcpHdrLen+segPay)
|
||||
}
|
||||
psum := pseudoHeaderIPv6(seg[8:24], seg[24:40], unix.IPPROTO_TCP, tcpHdrLen+segPay)
|
||||
if !verifyChecksum(seg[ipv6HdrLen:], psum) {
|
||||
t.Errorf("seg %d: bad TCP checksum", gotSegs)
|
||||
}
|
||||
return nil
|
||||
}); err != nil {
|
||||
t.Fatalf("SegmentSuperpacket: %v", err)
|
||||
}
|
||||
if gotSegs != wantSegs {
|
||||
t.Fatalf("got %d segments, want %d", gotSegs, wantSegs)
|
||||
}
|
||||
}
|
||||
@@ -0,0 +1,43 @@
|
||||
//go:build linux && !android
|
||||
// +build linux,!android
|
||||
|
||||
package virtio
|
||||
|
||||
import "encoding/binary"
|
||||
|
||||
// Size is the on-wire length of struct virtio_net_hdr the kernel
|
||||
// prepends/expects on a TUN opened with IFF_VNET_HDR (TUNSETVNETHDRSZ
|
||||
// not set).
|
||||
const Size = 10
|
||||
|
||||
// Hdr is the Go view of the legacy virtio_net_hdr.
|
||||
type Hdr struct {
|
||||
Flags uint8
|
||||
GSOType uint8
|
||||
HdrLen uint16
|
||||
GSOSize uint16
|
||||
CsumStart uint16
|
||||
CsumOffset uint16
|
||||
}
|
||||
|
||||
// Decode reads a virtio_net_hdr in host byte order (TUN default; we never
|
||||
// call TUNSETVNETLE so the kernel matches our endianness).
|
||||
func (h *Hdr) Decode(b []byte) {
|
||||
h.Flags = b[0]
|
||||
h.GSOType = b[1]
|
||||
h.HdrLen = binary.NativeEndian.Uint16(b[2:4])
|
||||
h.GSOSize = binary.NativeEndian.Uint16(b[4:6])
|
||||
h.CsumStart = binary.NativeEndian.Uint16(b[6:8])
|
||||
h.CsumOffset = binary.NativeEndian.Uint16(b[8:10])
|
||||
}
|
||||
|
||||
// Encode is the inverse of Decode: writes the virtio_net_hdr fields into b
|
||||
// (must be at least Size bytes). Used to emit a TSO superpacket on egress.
|
||||
func (h *Hdr) Encode(b []byte) {
|
||||
b[0] = h.Flags
|
||||
b[1] = h.GSOType
|
||||
binary.NativeEndian.PutUint16(b[2:4], h.HdrLen)
|
||||
binary.NativeEndian.PutUint16(b[4:6], h.GSOSize)
|
||||
binary.NativeEndian.PutUint16(b[6:8], h.CsumStart)
|
||||
binary.NativeEndian.PutUint16(b[8:10], h.CsumOffset)
|
||||
}
|
||||
@@ -0,0 +1,402 @@
|
||||
//go:build linux && !android
|
||||
// +build linux,!android
|
||||
|
||||
// Package virtio implements the pure validation, header-correction, and
|
||||
// per-segment slicing logic for kernel-supplied TSO/USO superpackets on
|
||||
// IFF_VNET_HDR TUN devices. It is FD-free and depends only on the byte
|
||||
// layout of the virtio_net_hdr and the IP/TCP/UDP headers it describes,
|
||||
// so it can be unit-tested in isolation from the tio Queue runtime.
|
||||
package virtio
|
||||
|
||||
import (
|
||||
"encoding/binary"
|
||||
"errors"
|
||||
"fmt"
|
||||
|
||||
"golang.org/x/sys/unix"
|
||||
|
||||
"github.com/slackhq/nebula/overlay/checksum"
|
||||
)
|
||||
|
||||
// Protocol header size bounds used to validate / cap kernel-supplied offsets.
|
||||
const (
|
||||
ipv4HeaderMinLen = 20 // IHL=5, no options
|
||||
ipv4HeaderMaxLen = 60 // IHL=15, max options
|
||||
ipv6FixedLen = 40 // IPv6 base header; extensions would extend this
|
||||
tcpHeaderMinLen = 20 // data-offset=5, no options
|
||||
tcpHeaderMaxLen = 60 // data-offset=15, max options
|
||||
)
|
||||
|
||||
// Byte offsets inside an IPv4 header.
|
||||
const (
|
||||
ipv4TotalLenOff = 2
|
||||
ipv4IDOff = 4
|
||||
ipv4ChecksumOff = 10
|
||||
ipv4SrcOff = 12
|
||||
ipv4AddrsEnd = 20 // end of dst address (ipv4SrcOff + 2*4)
|
||||
)
|
||||
|
||||
// Byte offsets inside an IPv6 header.
|
||||
const (
|
||||
ipv6PayloadLenOff = 4
|
||||
ipv6SrcOff = 8
|
||||
ipv6AddrsEnd = 40 // end of dst address (ipv6SrcOff + 2*16)
|
||||
)
|
||||
|
||||
// Byte offsets inside a TCP header (relative to its start, i.e. csumStart).
|
||||
const (
|
||||
tcpSeqOff = 4
|
||||
tcpDataOffOff = 12 // upper nibble is header len in 32-bit words
|
||||
tcpFlagsOff = 13
|
||||
tcpChecksumOff = 16
|
||||
)
|
||||
|
||||
// UDP header is fixed at 8 bytes: {sport, dport, length, checksum}.
|
||||
const (
|
||||
udpHeaderLen = 8
|
||||
udpLengthOff = 4
|
||||
udpChecksumOff = 6
|
||||
)
|
||||
|
||||
// tcpFinPshMask is cleared on every segment except the last of a TSO burst.
|
||||
const tcpFinPshMask = 0x09 // FIN(0x01) | PSH(0x08)
|
||||
|
||||
// tcpCwrFlag is cleared on every segment except the first. Per RFC 3168
|
||||
// §6.1.2 the CWR bit signals a one-shot transition (the sender just halved
|
||||
// its window) and must appear on the first segment of a TSO burst only.
|
||||
const tcpCwrFlag = 0x80
|
||||
|
||||
// CheckValid rejects packets whose virtio_net_hdr/IP combination would
|
||||
// cause a downstream miscompute. The TUN should never emit RSC_INFO and
|
||||
// the GSO type must agree with the IP version nibble.
|
||||
func CheckValid(pkt []byte, hdr Hdr) error {
|
||||
// When RSC_INFO is set the csum_start/csum_offset fields are repurposed to
|
||||
// carry coalescing info rather than checksum offsets. A TUN writing via
|
||||
// IFF_VNET_HDR should never emit this, but if it did we would silently
|
||||
// miscompute the segment checksums — refuse the packet instead.
|
||||
if hdr.Flags&unix.VIRTIO_NET_HDR_F_RSC_INFO != 0 {
|
||||
return fmt.Errorf("virtio RSC_INFO flag not supported on TUN reads")
|
||||
}
|
||||
if len(pkt) < ipv4HeaderMinLen {
|
||||
return fmt.Errorf("packet too short")
|
||||
}
|
||||
ipVersion := pkt[0] >> 4
|
||||
switch hdr.GSOType {
|
||||
case unix.VIRTIO_NET_HDR_GSO_TCPV4:
|
||||
if ipVersion != 4 {
|
||||
return fmt.Errorf("invalid IP version %d for GSO type %d", ipVersion, hdr.GSOType)
|
||||
}
|
||||
case unix.VIRTIO_NET_HDR_GSO_TCPV6:
|
||||
if ipVersion != 6 {
|
||||
return fmt.Errorf("invalid IP version %d for GSO type %d", ipVersion, hdr.GSOType)
|
||||
}
|
||||
case unix.VIRTIO_NET_HDR_GSO_UDP_L4:
|
||||
// USO carries either v4 or v6; the leading nibble disambiguates.
|
||||
if !(ipVersion == 4 || ipVersion == 6) {
|
||||
return fmt.Errorf("invalid IP version %d for GSO type %d", ipVersion, hdr.GSOType)
|
||||
}
|
||||
default:
|
||||
if !(ipVersion == 6 || ipVersion == 4) {
|
||||
return fmt.Errorf("invalid IP version %d for GSO type %d", ipVersion, hdr.GSOType)
|
||||
}
|
||||
}
|
||||
|
||||
return nil
|
||||
}
|
||||
|
||||
// CorrectHdrLen rewrites hdr.HdrLen based on the actual transport header
|
||||
// length read out of pkt. The kernel's hdr.HdrLen on the FORWARD path can
|
||||
// be the length of the entire first packet, so we don't trust it.
|
||||
func CorrectHdrLen(pkt []byte, hdr *Hdr) error {
|
||||
// Thank you wireguard-go for documenting these edge-cases
|
||||
// Don't trust hdr.hdrLen from the kernel as it can be equal to the length
|
||||
// of the entire first packet when the kernel is handling it as part of a
|
||||
// FORWARD path. Instead, parse the transport header length and add it onto
|
||||
// csumStart, which is synonymous for IP header length.
|
||||
|
||||
if hdr.GSOType == unix.VIRTIO_NET_HDR_GSO_UDP_L4 {
|
||||
hdr.HdrLen = hdr.CsumStart + 8
|
||||
} else {
|
||||
if len(pkt) <= int(hdr.CsumStart+tcpDataOffOff) {
|
||||
return errors.New("packet is too short")
|
||||
}
|
||||
|
||||
tcpHLen := uint16(pkt[hdr.CsumStart+tcpDataOffOff] >> 4 * 4)
|
||||
if tcpHLen < 20 || tcpHLen > 60 {
|
||||
// A TCP header must be between 20 and 60 bytes in length.
|
||||
return fmt.Errorf("tcp header len is invalid: %d", tcpHLen)
|
||||
}
|
||||
hdr.HdrLen = hdr.CsumStart + tcpHLen
|
||||
}
|
||||
|
||||
if len(pkt) < int(hdr.HdrLen) {
|
||||
return fmt.Errorf("length of packet (%d) < virtioNetHdr.HdrLen (%d)", len(pkt), hdr.HdrLen)
|
||||
}
|
||||
|
||||
if hdr.HdrLen < hdr.CsumStart {
|
||||
return fmt.Errorf("virtioNetHdr.HdrLen (%d) < virtioNetHdr.CsumStart (%d)", hdr.HdrLen, hdr.CsumStart)
|
||||
}
|
||||
cSumAt := int(hdr.CsumStart + hdr.CsumStart)
|
||||
if cSumAt+1 >= len(pkt) {
|
||||
return fmt.Errorf("end of checksum offset (%d) exceeds packet length (%d)", cSumAt+1, len(pkt))
|
||||
}
|
||||
return nil
|
||||
}
|
||||
|
||||
// SegmentTCP walks a TSO superpacket pkt, yielding each segment as a
|
||||
// slice into pkt itself. Per-segment plaintext is laid out by sliding a
|
||||
// freshly-patched copy of the L3+L4 header into pkt at offset i*gsoSize,
|
||||
// where it sits immediately before that segment's payload chunk in the
|
||||
// original buffer. The slide is destructive: iter i's header write overwrites
|
||||
// the last hdrLen bytes of seg_{i-1}'s payload, which is dead by the time
|
||||
// the next iteration begins. pkt is consumed by this call and must not be
|
||||
// inspected by the caller after the final yield.
|
||||
func SegmentTCP(pkt []byte, hdrLenU, csumStartU, gsoSizeU uint16, yield func(seg []byte) error) error {
|
||||
if gsoSizeU == 0 {
|
||||
return fmt.Errorf("gso_size is zero")
|
||||
}
|
||||
if csumStartU == 0 {
|
||||
return fmt.Errorf("csum_start is zero")
|
||||
}
|
||||
|
||||
headerLen := int(hdrLenU)
|
||||
csumStart := int(csumStartU)
|
||||
isV4 := pkt[0]>>4 == 4
|
||||
|
||||
tcpHdrLen := int(pkt[csumStart+tcpDataOffOff]>>4) * 4
|
||||
payLen := len(pkt) - headerLen
|
||||
gsoSize := int(gsoSizeU)
|
||||
numSeg := (payLen + gsoSize - 1) / gsoSize
|
||||
if numSeg == 0 {
|
||||
numSeg = 1
|
||||
}
|
||||
|
||||
origSeq := binary.BigEndian.Uint32(pkt[csumStart+tcpSeqOff : csumStart+tcpSeqOff+4])
|
||||
origFlags := pkt[csumStart+tcpFlagsOff]
|
||||
|
||||
var tmp [tcpHeaderMaxLen]byte
|
||||
copy(tmp[:tcpHdrLen], pkt[csumStart:headerLen])
|
||||
tmp[tcpSeqOff], tmp[tcpSeqOff+1], tmp[tcpSeqOff+2], tmp[tcpSeqOff+3] = 0, 0, 0, 0
|
||||
tmp[tcpFlagsOff] = 0
|
||||
tmp[tcpChecksumOff], tmp[tcpChecksumOff+1] = 0, 0
|
||||
baseTcpHdrSum := uint32(checksum.Checksum(tmp[:tcpHdrLen], 0))
|
||||
|
||||
var baseProtoSum uint32
|
||||
if isV4 {
|
||||
baseProtoSum = uint32(checksum.Checksum(pkt[ipv4SrcOff:ipv4AddrsEnd], 0))
|
||||
} else {
|
||||
baseProtoSum = uint32(checksum.Checksum(pkt[ipv6SrcOff:ipv6AddrsEnd], 0))
|
||||
}
|
||||
baseProtoSum += uint32(unix.IPPROTO_TCP)
|
||||
|
||||
var origIPID uint16
|
||||
var baseIPHdrSum uint32
|
||||
if isV4 {
|
||||
origIPID = binary.BigEndian.Uint16(pkt[ipv4IDOff : ipv4IDOff+2])
|
||||
ihl := int(pkt[0]&0x0f) * 4
|
||||
if ihl < ipv4HeaderMinLen || ihl > csumStart {
|
||||
return fmt.Errorf("bad IPv4 IHL: %d", ihl)
|
||||
}
|
||||
var ipTmp [ipv4HeaderMaxLen]byte
|
||||
copy(ipTmp[:ihl], pkt[:ihl])
|
||||
ipTmp[ipv4TotalLenOff], ipTmp[ipv4TotalLenOff+1] = 0, 0
|
||||
ipTmp[ipv4IDOff], ipTmp[ipv4IDOff+1] = 0, 0
|
||||
ipTmp[ipv4ChecksumOff], ipTmp[ipv4ChecksumOff+1] = 0, 0
|
||||
baseIPHdrSum = uint32(checksum.Checksum(ipTmp[:ihl], 0))
|
||||
}
|
||||
|
||||
for i := 0; i < numSeg; i++ {
|
||||
segStart := i * gsoSize
|
||||
segEnd := segStart + gsoSize
|
||||
if segEnd > payLen {
|
||||
segEnd = payLen
|
||||
}
|
||||
segPayLen := segEnd - segStart
|
||||
segLen := headerLen + segPayLen
|
||||
headerOff := i * gsoSize
|
||||
|
||||
// Slide the header into place immediately before this segment's
|
||||
// payload. Iter 0's header is already at pkt[:headerLen]; for
|
||||
// i ≥ 1 we copy from there. The constant-byte fields of pkt[:headerLen]
|
||||
// survive iter 0's in-place patches (only seq/flags/cksum/totalLen/id
|
||||
// are touched), and iter 0's stale variable-field values are
|
||||
// overwritten by the per-segment patches below.
|
||||
if i > 0 {
|
||||
copy(pkt[headerOff:headerOff+headerLen], pkt[:headerLen])
|
||||
}
|
||||
seg := pkt[headerOff : headerOff+segLen]
|
||||
|
||||
segSeq := origSeq + uint32(segStart)
|
||||
segFlags := origFlags
|
||||
if i != 0 {
|
||||
segFlags &^= tcpCwrFlag
|
||||
}
|
||||
if i != numSeg-1 {
|
||||
segFlags &^= tcpFinPshMask
|
||||
}
|
||||
totalLen := segLen
|
||||
|
||||
if isV4 {
|
||||
segID := origIPID + uint16(i)
|
||||
binary.BigEndian.PutUint16(seg[ipv4TotalLenOff:ipv4TotalLenOff+2], uint16(totalLen))
|
||||
binary.BigEndian.PutUint16(seg[ipv4IDOff:ipv4IDOff+2], segID)
|
||||
ipSum := baseIPHdrSum + uint32(totalLen) + uint32(segID)
|
||||
binary.BigEndian.PutUint16(seg[ipv4ChecksumOff:ipv4ChecksumOff+2], foldComplement(ipSum))
|
||||
} else {
|
||||
binary.BigEndian.PutUint16(seg[ipv6PayloadLenOff:ipv6PayloadLenOff+2], uint16(headerLen-ipv6FixedLen+segPayLen))
|
||||
}
|
||||
|
||||
binary.BigEndian.PutUint32(seg[csumStart+tcpSeqOff:csumStart+tcpSeqOff+4], segSeq)
|
||||
seg[csumStart+tcpFlagsOff] = segFlags
|
||||
|
||||
tcpLen := tcpHdrLen + segPayLen
|
||||
// Payload bytes still live at their original offset in pkt. The
|
||||
// header slide above only writes into pkt[i*G : i*G+H], which is
|
||||
// the tail of seg_{i-1}'s payload (already consumed) and never
|
||||
// overlaps seg_i's own payload at pkt[H+i*G : H+(i+1)*G].
|
||||
paySum := uint32(checksum.Checksum(pkt[headerLen+segStart:headerLen+segEnd], 0))
|
||||
wide := uint64(baseTcpHdrSum) + uint64(paySum) + uint64(baseProtoSum)
|
||||
wide += uint64(segSeq) + uint64(segFlags) + uint64(tcpLen)
|
||||
wide = (wide & 0xffffffff) + (wide >> 32)
|
||||
wide = (wide & 0xffffffff) + (wide >> 32)
|
||||
binary.BigEndian.PutUint16(seg[csumStart+tcpChecksumOff:csumStart+tcpChecksumOff+2], foldComplement(uint32(wide)))
|
||||
|
||||
if err := yield(seg); err != nil {
|
||||
return err
|
||||
}
|
||||
}
|
||||
|
||||
return nil
|
||||
}
|
||||
|
||||
// SegmentUDP walks a USO superpacket, sliding a per-segment-patched
|
||||
// L3+L4 header into pkt at offset i*gsoSize and yielding pkt[i*G:i*G+segLen]
|
||||
// to the caller. Per-segment patches are total_len + IPv4 csum (or IPv6
|
||||
// payload_len) plus the UDP length and checksum. pkt is consumed
|
||||
// destructively; see SegmentTCP for the layout reasoning.
|
||||
//
|
||||
// UDP-GSO leaves the IPv4 ID identical across segments (the kernel does not
|
||||
// bump it), which is why the IP-level per-segment work is limited to
|
||||
// total_len + IPv4 header checksum (v4) or payload_len (v6).
|
||||
func SegmentUDP(pkt []byte, hdrLenU, csumStartU, gsoSizeU uint16, yield func(seg []byte) error) error {
|
||||
if gsoSizeU == 0 {
|
||||
return fmt.Errorf("gso_size is zero")
|
||||
}
|
||||
if csumStartU == 0 {
|
||||
return fmt.Errorf("csum_start is zero")
|
||||
}
|
||||
|
||||
isV4 := pkt[0]>>4 == 4
|
||||
headerLen := int(hdrLenU)
|
||||
csumStart := int(csumStartU)
|
||||
if headerLen-csumStart != udpHeaderLen {
|
||||
return fmt.Errorf("udp header len mismatch: %d", headerLen-csumStart)
|
||||
}
|
||||
|
||||
payLen := len(pkt) - headerLen
|
||||
gsoSize := int(gsoSizeU)
|
||||
numSeg := (payLen + gsoSize - 1) / gsoSize
|
||||
if numSeg == 0 {
|
||||
numSeg = 1
|
||||
}
|
||||
|
||||
var udpTmp [udpHeaderLen]byte
|
||||
copy(udpTmp[:], pkt[csumStart:headerLen])
|
||||
udpTmp[udpLengthOff], udpTmp[udpLengthOff+1] = 0, 0
|
||||
udpTmp[udpChecksumOff], udpTmp[udpChecksumOff+1] = 0, 0
|
||||
baseUDPHdrSum := uint32(checksum.Checksum(udpTmp[:], 0))
|
||||
|
||||
var baseProtoSum uint32
|
||||
if isV4 {
|
||||
baseProtoSum = uint32(checksum.Checksum(pkt[ipv4SrcOff:ipv4AddrsEnd], 0))
|
||||
} else {
|
||||
baseProtoSum = uint32(checksum.Checksum(pkt[ipv6SrcOff:ipv6AddrsEnd], 0))
|
||||
}
|
||||
baseProtoSum += uint32(unix.IPPROTO_UDP)
|
||||
|
||||
var baseIPHdrSum uint32
|
||||
if isV4 {
|
||||
ihl := int(pkt[0]&0x0f) * 4
|
||||
if ihl < ipv4HeaderMinLen || ihl > csumStart {
|
||||
return fmt.Errorf("bad IPv4 IHL: %d", ihl)
|
||||
}
|
||||
var ipTmp [ipv4HeaderMaxLen]byte
|
||||
copy(ipTmp[:ihl], pkt[:ihl])
|
||||
ipTmp[ipv4TotalLenOff], ipTmp[ipv4TotalLenOff+1] = 0, 0
|
||||
ipTmp[ipv4ChecksumOff], ipTmp[ipv4ChecksumOff+1] = 0, 0
|
||||
baseIPHdrSum = uint32(checksum.Checksum(ipTmp[:ihl], 0))
|
||||
}
|
||||
|
||||
for i := 0; i < numSeg; i++ {
|
||||
segStart := i * gsoSize
|
||||
segEnd := segStart + gsoSize
|
||||
if segEnd > payLen {
|
||||
segEnd = payLen
|
||||
}
|
||||
segPayLen := segEnd - segStart
|
||||
segLen := headerLen + segPayLen
|
||||
headerOff := i * gsoSize
|
||||
|
||||
if i > 0 {
|
||||
copy(pkt[headerOff:headerOff+headerLen], pkt[:headerLen])
|
||||
}
|
||||
seg := pkt[headerOff : headerOff+segLen]
|
||||
|
||||
totalLen := segLen
|
||||
udpLen := udpHeaderLen + segPayLen
|
||||
|
||||
if isV4 {
|
||||
binary.BigEndian.PutUint16(seg[ipv4TotalLenOff:ipv4TotalLenOff+2], uint16(totalLen))
|
||||
ipSum := baseIPHdrSum + uint32(totalLen)
|
||||
binary.BigEndian.PutUint16(seg[ipv4ChecksumOff:ipv4ChecksumOff+2], foldComplement(ipSum))
|
||||
} else {
|
||||
binary.BigEndian.PutUint16(seg[ipv6PayloadLenOff:ipv6PayloadLenOff+2], uint16(headerLen-ipv6FixedLen+segPayLen))
|
||||
}
|
||||
|
||||
binary.BigEndian.PutUint16(seg[csumStart+udpLengthOff:csumStart+udpLengthOff+2], uint16(udpLen))
|
||||
|
||||
paySum := uint32(checksum.Checksum(pkt[headerLen+segStart:headerLen+segEnd], 0))
|
||||
wide := uint64(baseUDPHdrSum) + uint64(paySum) + uint64(baseProtoSum)
|
||||
wide += uint64(udpLen) + uint64(udpLen)
|
||||
wide = (wide & 0xffffffff) + (wide >> 32)
|
||||
wide = (wide & 0xffffffff) + (wide >> 32)
|
||||
csum := foldComplement(uint32(wide))
|
||||
if csum == 0 {
|
||||
csum = 0xffff
|
||||
}
|
||||
binary.BigEndian.PutUint16(seg[csumStart+udpChecksumOff:csumStart+udpChecksumOff+2], csum)
|
||||
|
||||
if err := yield(seg); err != nil {
|
||||
return err
|
||||
}
|
||||
}
|
||||
|
||||
return nil
|
||||
}
|
||||
|
||||
// FinishChecksum computes the L4 checksum for a non-GSO packet that the kernel
|
||||
// handed us with NEEDS_CSUM set. csum_start / csum_offset point at the 16-bit
|
||||
// checksum field; we zero it, fold a full sum (the field was pre-loaded with
|
||||
// the pseudo-header partial sum by the kernel), and store the result.
|
||||
func FinishChecksum(seg []byte, hdr Hdr) error {
|
||||
cs := int(hdr.CsumStart)
|
||||
co := int(hdr.CsumOffset)
|
||||
if cs+co+2 > len(seg) {
|
||||
return fmt.Errorf("csum offsets out of range: start=%d offset=%d len=%d", cs, co, len(seg))
|
||||
}
|
||||
// The kernel stores a partial pseudo-header sum at [cs+co:]; sum over the
|
||||
// L4 region starting at cs, folding the prior partial in as the seed.
|
||||
partial := binary.BigEndian.Uint16(seg[cs+co : cs+co+2])
|
||||
seg[cs+co] = 0
|
||||
seg[cs+co+1] = 0
|
||||
binary.BigEndian.PutUint16(seg[cs+co:cs+co+2], ^checksum.Checksum(seg[cs:], partial))
|
||||
return nil
|
||||
}
|
||||
|
||||
// foldComplement folds a 32-bit one's-complement partial sum to 16 bits and
|
||||
// complements it, yielding the on-wire Internet checksum value.
|
||||
func foldComplement(sum uint32) uint16 {
|
||||
sum = (sum & 0xffff) + (sum >> 16)
|
||||
sum = (sum & 0xffff) + (sum >> 16)
|
||||
return ^uint16(sum)
|
||||
}
|
||||
+34
-8
@@ -13,17 +13,38 @@ import (
|
||||
|
||||
"github.com/gaissmai/bart"
|
||||
"github.com/slackhq/nebula/config"
|
||||
"github.com/slackhq/nebula/overlay/tio"
|
||||
"github.com/slackhq/nebula/routing"
|
||||
"github.com/slackhq/nebula/util"
|
||||
)
|
||||
|
||||
type tun struct {
|
||||
io.ReadWriteCloser
|
||||
rwc io.ReadWriteCloser
|
||||
fd int
|
||||
vpnNetworks []netip.Prefix
|
||||
Routes atomic.Pointer[[]Route]
|
||||
routeTree atomic.Pointer[bart.Table[routing.Gateways]]
|
||||
l *slog.Logger
|
||||
|
||||
readBuf []byte
|
||||
batchRet [1]tio.Packet
|
||||
}
|
||||
|
||||
func (t *tun) Read() ([]tio.Packet, error) {
|
||||
n, err := t.rwc.Read(t.readBuf)
|
||||
if err != nil {
|
||||
return nil, err
|
||||
}
|
||||
t.batchRet[0] = tio.Packet{Bytes: t.readBuf[:n]}
|
||||
return t.batchRet[:], nil
|
||||
}
|
||||
|
||||
func (t *tun) Write(p []byte) (int, error) {
|
||||
return t.rwc.Write(p)
|
||||
}
|
||||
|
||||
func (t *tun) Close() error {
|
||||
return t.rwc.Close()
|
||||
}
|
||||
|
||||
func newTunFromFd(c *config.C, l *slog.Logger, deviceFd int, vpnNetworks []netip.Prefix) (*tun, error) {
|
||||
@@ -32,10 +53,11 @@ func newTunFromFd(c *config.C, l *slog.Logger, deviceFd int, vpnNetworks []netip
|
||||
file := os.NewFile(uintptr(deviceFd), "/dev/net/tun")
|
||||
|
||||
t := &tun{
|
||||
ReadWriteCloser: file,
|
||||
fd: deviceFd,
|
||||
vpnNetworks: vpnNetworks,
|
||||
l: l,
|
||||
rwc: file,
|
||||
fd: deviceFd,
|
||||
vpnNetworks: vpnNetworks,
|
||||
l: l,
|
||||
readBuf: make([]byte, defaultBatchBufSize),
|
||||
}
|
||||
|
||||
err := t.reload(c, true)
|
||||
@@ -62,7 +84,7 @@ func (t *tun) RoutesFor(ip netip.Addr) routing.Gateways {
|
||||
return r
|
||||
}
|
||||
|
||||
func (t tun) Activate() error {
|
||||
func (t *tun) Activate() error {
|
||||
return nil
|
||||
}
|
||||
|
||||
@@ -99,6 +121,10 @@ func (t *tun) SupportsMultiqueue() bool {
|
||||
return false
|
||||
}
|
||||
|
||||
func (t *tun) NewMultiQueueReader() (io.ReadWriteCloser, error) {
|
||||
return nil, fmt.Errorf("TODO: multiqueue not implemented for android")
|
||||
func (t *tun) NewMultiQueueReader() error {
|
||||
return fmt.Errorf("TODO: multiqueue not implemented for android")
|
||||
}
|
||||
|
||||
func (t *tun) Readers() []tio.Queue {
|
||||
return []tio.Queue{t}
|
||||
}
|
||||
|
||||
+31
-13
@@ -16,6 +16,7 @@ import (
|
||||
|
||||
"github.com/gaissmai/bart"
|
||||
"github.com/slackhq/nebula/config"
|
||||
"github.com/slackhq/nebula/overlay/tio"
|
||||
"github.com/slackhq/nebula/routing"
|
||||
"github.com/slackhq/nebula/util"
|
||||
netroute "golang.org/x/net/route"
|
||||
@@ -23,7 +24,7 @@ import (
|
||||
)
|
||||
|
||||
type tun struct {
|
||||
io.ReadWriteCloser
|
||||
rwc io.ReadWriteCloser
|
||||
Device string
|
||||
vpnNetworks []netip.Prefix
|
||||
DefaultMTU int
|
||||
@@ -34,6 +35,9 @@ type tun struct {
|
||||
|
||||
// cache out buffer since we need to prepend 4 bytes for tun metadata
|
||||
out []byte
|
||||
|
||||
readBuf []byte
|
||||
batchRet [1]tio.Packet
|
||||
}
|
||||
|
||||
type ifReq struct {
|
||||
@@ -124,11 +128,12 @@ func newTun(c *config.C, l *slog.Logger, vpnNetworks []netip.Prefix, _ bool) (*t
|
||||
}
|
||||
|
||||
t := &tun{
|
||||
ReadWriteCloser: os.NewFile(uintptr(fd), ""),
|
||||
Device: name,
|
||||
vpnNetworks: vpnNetworks,
|
||||
DefaultMTU: c.GetInt("tun.mtu", DefaultMTU),
|
||||
l: l,
|
||||
rwc: os.NewFile(uintptr(fd), ""),
|
||||
Device: name,
|
||||
vpnNetworks: vpnNetworks,
|
||||
DefaultMTU: c.GetInt("tun.mtu", DefaultMTU),
|
||||
l: l,
|
||||
readBuf: make([]byte, defaultBatchBufSize),
|
||||
}
|
||||
|
||||
err = t.reload(c, true)
|
||||
@@ -158,8 +163,8 @@ func newTunFromFd(_ *config.C, _ *slog.Logger, _ int, _ []netip.Prefix) (*tun, e
|
||||
}
|
||||
|
||||
func (t *tun) Close() error {
|
||||
if t.ReadWriteCloser != nil {
|
||||
return t.ReadWriteCloser.Close()
|
||||
if t.rwc != nil {
|
||||
return t.rwc.Close()
|
||||
}
|
||||
return nil
|
||||
}
|
||||
@@ -502,15 +507,24 @@ func delRoute(prefix netip.Prefix, gateway netroute.Addr) error {
|
||||
return nil
|
||||
}
|
||||
|
||||
func (t *tun) Read(to []byte) (int, error) {
|
||||
func (t *tun) readOne(to []byte) (int, error) {
|
||||
buf := make([]byte, len(to)+4)
|
||||
|
||||
n, err := t.ReadWriteCloser.Read(buf)
|
||||
n, err := t.rwc.Read(buf)
|
||||
|
||||
copy(to, buf[4:])
|
||||
return n - 4, err
|
||||
}
|
||||
|
||||
func (t *tun) Read() ([]tio.Packet, error) {
|
||||
n, err := t.readOne(t.readBuf)
|
||||
if err != nil {
|
||||
return nil, err
|
||||
}
|
||||
t.batchRet[0] = tio.Packet{Bytes: t.readBuf[:n]}
|
||||
return t.batchRet[:], nil
|
||||
}
|
||||
|
||||
// Write is only valid for single threaded use
|
||||
func (t *tun) Write(from []byte) (int, error) {
|
||||
buf := t.out
|
||||
@@ -536,7 +550,7 @@ func (t *tun) Write(from []byte) (int, error) {
|
||||
|
||||
copy(buf[4:], from)
|
||||
|
||||
n, err := t.ReadWriteCloser.Write(buf)
|
||||
n, err := t.rwc.Write(buf)
|
||||
return n - 4, err
|
||||
}
|
||||
|
||||
@@ -552,6 +566,10 @@ func (t *tun) SupportsMultiqueue() bool {
|
||||
return false
|
||||
}
|
||||
|
||||
func (t *tun) NewMultiQueueReader() (io.ReadWriteCloser, error) {
|
||||
return nil, fmt.Errorf("TODO: multiqueue not implemented for darwin")
|
||||
func (t *tun) NewMultiQueueReader() error {
|
||||
return fmt.Errorf("TODO: multiqueue not implemented for darwin")
|
||||
}
|
||||
|
||||
func (t *tun) Readers() []tio.Queue {
|
||||
return []tio.Queue{t}
|
||||
}
|
||||
|
||||
+52
-23
@@ -10,6 +10,7 @@ import (
|
||||
|
||||
"github.com/rcrowley/go-metrics"
|
||||
"github.com/slackhq/nebula/iputil"
|
||||
"github.com/slackhq/nebula/overlay/tio"
|
||||
"github.com/slackhq/nebula/routing"
|
||||
)
|
||||
|
||||
@@ -18,9 +19,45 @@ type disabledTun struct {
|
||||
vpnNetworks []netip.Prefix
|
||||
|
||||
// Track these metrics since we don't have the tun device to do it for us
|
||||
tx metrics.Counter
|
||||
rx metrics.Counter
|
||||
l *slog.Logger
|
||||
tx metrics.Counter
|
||||
rx metrics.Counter
|
||||
l *slog.Logger
|
||||
numReaders int
|
||||
}
|
||||
|
||||
// disabledQueue is one tio.Queue view onto a shared disabledTun. Each queue
|
||||
// owns a private batchRet so concurrent Read calls from different reader
|
||||
// goroutines do not race on the returned slice.
|
||||
type disabledQueue struct {
|
||||
parent *disabledTun
|
||||
batchRet [1]tio.Packet
|
||||
}
|
||||
|
||||
func (q *disabledQueue) Read() ([]tio.Packet, error) {
|
||||
r, ok := <-q.parent.read
|
||||
if !ok {
|
||||
return nil, io.EOF
|
||||
}
|
||||
|
||||
q.parent.tx.Inc(1)
|
||||
if q.parent.l.Enabled(context.Background(), slog.LevelDebug) {
|
||||
q.parent.l.Debug("Write payload", "raw", prettyPacket(r))
|
||||
}
|
||||
|
||||
q.batchRet[0] = tio.Packet{Bytes: r}
|
||||
return q.batchRet[:], nil
|
||||
}
|
||||
|
||||
// Write on a queue forwards to the underlying disabledTun. All queues share
|
||||
// one ICMP-handling/log path so this is a thin pass-through.
|
||||
func (q *disabledQueue) Write(b []byte) (int, error) {
|
||||
return q.parent.Write(b)
|
||||
}
|
||||
|
||||
// Close on a queue is a no-op. The shared channel and metrics are owned by
|
||||
// the disabledTun; Close on the device tears them down once for everybody.
|
||||
func (q *disabledQueue) Close() error {
|
||||
return nil
|
||||
}
|
||||
|
||||
func newDisabledTun(vpnNetworks []netip.Prefix, queueLen int, metricsEnabled bool, l *slog.Logger) *disabledTun {
|
||||
@@ -28,6 +65,7 @@ func newDisabledTun(vpnNetworks []netip.Prefix, queueLen int, metricsEnabled boo
|
||||
vpnNetworks: vpnNetworks,
|
||||
read: make(chan []byte, queueLen),
|
||||
l: l,
|
||||
numReaders: 1,
|
||||
}
|
||||
|
||||
if metricsEnabled {
|
||||
@@ -57,24 +95,6 @@ func (*disabledTun) Name() string {
|
||||
return "disabled"
|
||||
}
|
||||
|
||||
func (t *disabledTun) Read(b []byte) (int, error) {
|
||||
r, ok := <-t.read
|
||||
if !ok {
|
||||
return 0, io.EOF
|
||||
}
|
||||
|
||||
if len(r) > len(b) {
|
||||
return 0, fmt.Errorf("packet larger than mtu: %d > %d bytes", len(r), len(b))
|
||||
}
|
||||
|
||||
t.tx.Inc(1)
|
||||
if t.l.Enabled(context.Background(), slog.LevelDebug) {
|
||||
t.l.Debug("Write payload", "raw", prettyPacket(r))
|
||||
}
|
||||
|
||||
return copy(b, r), nil
|
||||
}
|
||||
|
||||
func (t *disabledTun) handleICMPEchoRequest(b []byte) bool {
|
||||
out := make([]byte, len(b))
|
||||
out = iputil.CreateICMPEchoResponse(b, out)
|
||||
@@ -110,8 +130,17 @@ func (t *disabledTun) SupportsMultiqueue() bool {
|
||||
return true
|
||||
}
|
||||
|
||||
func (t *disabledTun) NewMultiQueueReader() (io.ReadWriteCloser, error) {
|
||||
return t, nil
|
||||
func (t *disabledTun) NewMultiQueueReader() error {
|
||||
t.numReaders++
|
||||
return nil
|
||||
}
|
||||
|
||||
func (t *disabledTun) Readers() []tio.Queue {
|
||||
out := make([]tio.Queue, t.numReaders)
|
||||
for i := range t.numReaders {
|
||||
out[i] = &disabledQueue{parent: t}
|
||||
}
|
||||
return out
|
||||
}
|
||||
|
||||
func (t *disabledTun) Close() error {
|
||||
|
||||
@@ -1,120 +0,0 @@
|
||||
//go:build linux && !android && !e2e_testing
|
||||
// +build linux,!android,!e2e_testing
|
||||
|
||||
package overlay
|
||||
|
||||
import (
|
||||
"errors"
|
||||
"os"
|
||||
"sync"
|
||||
"testing"
|
||||
"time"
|
||||
|
||||
"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 to newTunFd / newFriend).
|
||||
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 TestTunFile_WakeForShutdown_UnblocksRead(t *testing.T) {
|
||||
tf, err := newTunFd(newReadPipe(t))
|
||||
if err != nil {
|
||||
t.Fatalf("newTunFd: %v", err)
|
||||
}
|
||||
t.Cleanup(func() { _ = tf.Close() })
|
||||
|
||||
done := make(chan error, 1)
|
||||
go func() {
|
||||
_, err := tf.Read(make([]byte, 64))
|
||||
done <- err
|
||||
}()
|
||||
|
||||
// Verify Read is actually blocked in poll.
|
||||
select {
|
||||
case err := <-done:
|
||||
t.Fatalf("Read returned before shutdown signal: %v", err)
|
||||
case <-time.After(50 * time.Millisecond):
|
||||
}
|
||||
|
||||
if err := tf.wakeForShutdown(); err != nil {
|
||||
t.Fatalf("wakeForShutdown: %v", err)
|
||||
}
|
||||
|
||||
select {
|
||||
case err := <-done:
|
||||
if !errors.Is(err, os.ErrClosed) {
|
||||
t.Fatalf("expected os.ErrClosed, got %v", err)
|
||||
}
|
||||
case <-time.After(2 * time.Second):
|
||||
t.Fatal("Read did not wake on shutdown")
|
||||
}
|
||||
}
|
||||
|
||||
func TestTunFile_WakeForShutdown_WakesFriends(t *testing.T) {
|
||||
parent, err := newTunFd(newReadPipe(t))
|
||||
if err != nil {
|
||||
t.Fatalf("newTunFd: %v", err)
|
||||
}
|
||||
friend, err := parent.newFriend(newReadPipe(t))
|
||||
if err != nil {
|
||||
_ = parent.Close()
|
||||
t.Fatalf("newFriend: %v", err)
|
||||
}
|
||||
t.Cleanup(func() {
|
||||
_ = friend.Close()
|
||||
_ = parent.Close()
|
||||
})
|
||||
|
||||
readers := []*tunFile{parent, friend}
|
||||
errs := make([]error, len(readers))
|
||||
var wg sync.WaitGroup
|
||||
for i, r := range readers {
|
||||
wg.Add(1)
|
||||
go func(i int, r *tunFile) {
|
||||
defer wg.Done()
|
||||
_, errs[i] = r.Read(make([]byte, 64))
|
||||
}(i, r)
|
||||
}
|
||||
|
||||
time.Sleep(50 * time.Millisecond)
|
||||
|
||||
if err := parent.wakeForShutdown(); err != nil {
|
||||
t.Fatalf("wakeForShutdown: %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 TestTunFile_Close_Idempotent(t *testing.T) {
|
||||
tf, err := newTunFd(newReadPipe(t))
|
||||
if err != nil {
|
||||
t.Fatalf("newTunFd: %v", 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)
|
||||
}
|
||||
}
|
||||
+21
-5
@@ -7,7 +7,6 @@ import (
|
||||
"bytes"
|
||||
"errors"
|
||||
"fmt"
|
||||
"io"
|
||||
"io/fs"
|
||||
"log/slog"
|
||||
"net/netip"
|
||||
@@ -20,7 +19,7 @@ import (
|
||||
"github.com/gaissmai/bart"
|
||||
|
||||
"github.com/slackhq/nebula/config"
|
||||
|
||||
"github.com/slackhq/nebula/overlay/tio"
|
||||
"github.com/slackhq/nebula/routing"
|
||||
"github.com/slackhq/nebula/util"
|
||||
netroute "golang.org/x/net/route"
|
||||
@@ -103,6 +102,9 @@ type tun struct {
|
||||
readPoll [2]unix.PollFd
|
||||
writePoll [2]unix.PollFd
|
||||
closed atomic.Bool
|
||||
|
||||
readBuf []byte
|
||||
batchRet [1]tio.Packet
|
||||
}
|
||||
|
||||
// blockOnRead waits until the tun fd is readable or shutdown has been signaled.
|
||||
@@ -157,7 +159,16 @@ func (t *tun) blockOnWrite() error {
|
||||
return nil
|
||||
}
|
||||
|
||||
func (t *tun) Read(to []byte) (int, error) {
|
||||
func (t *tun) Read() ([]tio.Packet, error) {
|
||||
n, err := t.readOne(t.readBuf)
|
||||
if err != nil {
|
||||
return nil, err
|
||||
}
|
||||
t.batchRet[0] = tio.Packet{Bytes: t.readBuf[:n]}
|
||||
return t.batchRet[:], nil
|
||||
}
|
||||
|
||||
func (t *tun) readOne(to []byte) (int, error) {
|
||||
// first 4 bytes is protocol family, in network byte order
|
||||
var head [4]byte
|
||||
iovecs := [2]syscall.Iovec{
|
||||
@@ -375,6 +386,7 @@ func newTun(c *config.C, l *slog.Logger, vpnNetworks []netip.Prefix, _ bool) (*t
|
||||
MTU: c.GetInt("tun.mtu", DefaultMTU),
|
||||
l: l,
|
||||
fd: fd,
|
||||
readBuf: make([]byte, defaultBatchBufSize),
|
||||
shutdownR: shutdownR,
|
||||
shutdownW: shutdownW,
|
||||
readPoll: [2]unix.PollFd{
|
||||
@@ -565,8 +577,8 @@ func (t *tun) SupportsMultiqueue() bool {
|
||||
return false
|
||||
}
|
||||
|
||||
func (t *tun) NewMultiQueueReader() (io.ReadWriteCloser, error) {
|
||||
return nil, fmt.Errorf("TODO: multiqueue not implemented for freebsd")
|
||||
func (t *tun) NewMultiQueueReader() error {
|
||||
return fmt.Errorf("TODO: multiqueue not implemented for freebsd")
|
||||
}
|
||||
|
||||
func (t *tun) addRoutes(logErrors bool) error {
|
||||
@@ -593,6 +605,10 @@ func (t *tun) addRoutes(logErrors bool) error {
|
||||
return nil
|
||||
}
|
||||
|
||||
func (t *tun) Readers() []tio.Queue {
|
||||
return []tio.Queue{t}
|
||||
}
|
||||
|
||||
func (t *tun) removeRoutes(routes []Route) error {
|
||||
for _, r := range routes {
|
||||
if !r.Install {
|
||||
|
||||
+32
-6
@@ -16,16 +16,37 @@ import (
|
||||
|
||||
"github.com/gaissmai/bart"
|
||||
"github.com/slackhq/nebula/config"
|
||||
"github.com/slackhq/nebula/overlay/tio"
|
||||
"github.com/slackhq/nebula/routing"
|
||||
"github.com/slackhq/nebula/util"
|
||||
)
|
||||
|
||||
type tun struct {
|
||||
io.ReadWriteCloser
|
||||
rwc io.ReadWriteCloser
|
||||
vpnNetworks []netip.Prefix
|
||||
Routes atomic.Pointer[[]Route]
|
||||
routeTree atomic.Pointer[bart.Table[routing.Gateways]]
|
||||
l *slog.Logger
|
||||
|
||||
readBuf []byte
|
||||
batchRet [1]tio.Packet
|
||||
}
|
||||
|
||||
func (t *tun) Read() ([]tio.Packet, error) {
|
||||
n, err := t.rwc.Read(t.readBuf)
|
||||
if err != nil {
|
||||
return nil, err
|
||||
}
|
||||
t.batchRet[0] = tio.Packet{Bytes: t.readBuf[:n]}
|
||||
return t.batchRet[:], nil
|
||||
}
|
||||
|
||||
func (t *tun) Write(p []byte) (int, error) {
|
||||
return t.rwc.Write(p)
|
||||
}
|
||||
|
||||
func (t *tun) Close() error {
|
||||
return t.rwc.Close()
|
||||
}
|
||||
|
||||
func newTun(_ *config.C, _ *slog.Logger, _ []netip.Prefix, _ bool) (*tun, error) {
|
||||
@@ -35,9 +56,10 @@ func newTun(_ *config.C, _ *slog.Logger, _ []netip.Prefix, _ bool) (*tun, error)
|
||||
func newTunFromFd(c *config.C, l *slog.Logger, deviceFd int, vpnNetworks []netip.Prefix) (*tun, error) {
|
||||
file := os.NewFile(uintptr(deviceFd), "/dev/tun")
|
||||
t := &tun{
|
||||
vpnNetworks: vpnNetworks,
|
||||
ReadWriteCloser: &tunReadCloser{f: file},
|
||||
l: l,
|
||||
vpnNetworks: vpnNetworks,
|
||||
rwc: &tunReadCloser{f: file},
|
||||
l: l,
|
||||
readBuf: make([]byte, defaultBatchBufSize),
|
||||
}
|
||||
|
||||
err := t.reload(c, true)
|
||||
@@ -155,6 +177,10 @@ func (t *tun) SupportsMultiqueue() bool {
|
||||
return false
|
||||
}
|
||||
|
||||
func (t *tun) NewMultiQueueReader() (io.ReadWriteCloser, error) {
|
||||
return nil, fmt.Errorf("TODO: multiqueue not implemented for ios")
|
||||
func (t *tun) NewMultiQueueReader() error {
|
||||
return fmt.Errorf("TODO: multiqueue not implemented for ios")
|
||||
}
|
||||
|
||||
func (t *tun) Readers() []tio.Queue {
|
||||
return []tio.Queue{t}
|
||||
}
|
||||
|
||||
+157
-238
@@ -4,9 +4,7 @@
|
||||
package overlay
|
||||
|
||||
import (
|
||||
"encoding/binary"
|
||||
"fmt"
|
||||
"io"
|
||||
"log/slog"
|
||||
"net"
|
||||
"net/netip"
|
||||
@@ -19,180 +17,15 @@ import (
|
||||
|
||||
"github.com/gaissmai/bart"
|
||||
"github.com/slackhq/nebula/config"
|
||||
"github.com/slackhq/nebula/overlay/tio"
|
||||
"github.com/slackhq/nebula/routing"
|
||||
"github.com/slackhq/nebula/util"
|
||||
"github.com/vishvananda/netlink"
|
||||
"golang.org/x/sys/unix"
|
||||
)
|
||||
|
||||
// tunFile wraps a TUN file descriptor with poll-based reads. The FD provided will be changed to non-blocking.
|
||||
// A shared eventfd allows Close to wake all readers blocked in poll.
|
||||
type tunFile struct {
|
||||
fd int
|
||||
shutdownFd int
|
||||
lastOne bool
|
||||
readPoll [2]unix.PollFd
|
||||
writePoll [2]unix.PollFd
|
||||
closed bool
|
||||
}
|
||||
|
||||
// newFriend makes a tunFile for a MultiQueueReader that copies the shutdown eventfd from the parent tun
|
||||
func (r *tunFile) newFriend(fd int) (*tunFile, error) {
|
||||
if err := unix.SetNonblock(fd, true); err != nil {
|
||||
return nil, fmt.Errorf("failed to set tun fd non-blocking: %w", err)
|
||||
}
|
||||
return &tunFile{
|
||||
fd: fd,
|
||||
shutdownFd: r.shutdownFd,
|
||||
readPoll: [2]unix.PollFd{
|
||||
{Fd: int32(fd), Events: unix.POLLIN},
|
||||
{Fd: int32(r.shutdownFd), Events: unix.POLLIN},
|
||||
},
|
||||
writePoll: [2]unix.PollFd{
|
||||
{Fd: int32(fd), Events: unix.POLLOUT},
|
||||
{Fd: int32(r.shutdownFd), Events: unix.POLLIN},
|
||||
},
|
||||
}, nil
|
||||
}
|
||||
|
||||
func newTunFd(fd int) (*tunFile, error) {
|
||||
if err := unix.SetNonblock(fd, true); err != nil {
|
||||
return nil, fmt.Errorf("failed to set tun fd non-blocking: %w", err)
|
||||
}
|
||||
|
||||
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 := &tunFile{
|
||||
fd: fd,
|
||||
shutdownFd: shutdownFd,
|
||||
lastOne: true,
|
||||
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},
|
||||
},
|
||||
}
|
||||
|
||||
return out, nil
|
||||
}
|
||||
|
||||
func (r *tunFile) blockOnRead() error {
|
||||
const problemFlags = unix.POLLHUP | unix.POLLNVAL | unix.POLLERR
|
||||
var err error
|
||||
for {
|
||||
_, err = unix.Poll(r.readPoll[:], -1)
|
||||
if err != unix.EINTR {
|
||||
break
|
||||
}
|
||||
}
|
||||
//always reset these!
|
||||
tunEvents := r.readPoll[0].Revents
|
||||
shutdownEvents := r.readPoll[1].Revents
|
||||
r.readPoll[0].Revents = 0
|
||||
r.readPoll[1].Revents = 0
|
||||
//do the err check before trusting the potentially bogus bits we just got
|
||||
if err != nil {
|
||||
return err
|
||||
}
|
||||
if shutdownEvents&(unix.POLLIN|problemFlags) != 0 {
|
||||
return os.ErrClosed
|
||||
} else if tunEvents&problemFlags != 0 {
|
||||
return os.ErrClosed
|
||||
}
|
||||
return nil
|
||||
}
|
||||
|
||||
func (r *tunFile) blockOnWrite() error {
|
||||
const problemFlags = unix.POLLHUP | unix.POLLNVAL | unix.POLLERR
|
||||
var err error
|
||||
for {
|
||||
_, err = unix.Poll(r.writePoll[:], -1)
|
||||
if err != unix.EINTR {
|
||||
break
|
||||
}
|
||||
}
|
||||
//always reset these!
|
||||
tunEvents := r.writePoll[0].Revents
|
||||
shutdownEvents := r.writePoll[1].Revents
|
||||
r.writePoll[0].Revents = 0
|
||||
r.writePoll[1].Revents = 0
|
||||
//do the err check before trusting the potentially bogus bits we just got
|
||||
if err != nil {
|
||||
return err
|
||||
}
|
||||
if shutdownEvents&(unix.POLLIN|problemFlags) != 0 {
|
||||
return os.ErrClosed
|
||||
} else if tunEvents&problemFlags != 0 {
|
||||
return os.ErrClosed
|
||||
}
|
||||
return nil
|
||||
}
|
||||
|
||||
func (r *tunFile) Read(buf []byte) (int, error) {
|
||||
for {
|
||||
if n, err := unix.Read(r.fd, buf); err == nil {
|
||||
return n, nil
|
||||
} else if err == unix.EAGAIN {
|
||||
if err = r.blockOnRead(); err != nil {
|
||||
return 0, err
|
||||
}
|
||||
continue
|
||||
} else if err == unix.EINTR {
|
||||
continue
|
||||
} else if err == unix.EBADF {
|
||||
return 0, os.ErrClosed
|
||||
} else {
|
||||
return 0, err
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
func (r *tunFile) Write(buf []byte) (int, error) {
|
||||
for {
|
||||
if n, err := unix.Write(r.fd, buf); err == nil {
|
||||
return n, nil
|
||||
} else if err == unix.EAGAIN {
|
||||
if err = r.blockOnWrite(); err != nil {
|
||||
return 0, err
|
||||
}
|
||||
continue
|
||||
} else if err == unix.EINTR {
|
||||
continue
|
||||
} else if err == unix.EBADF {
|
||||
return 0, os.ErrClosed
|
||||
} else {
|
||||
return 0, err
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
func (r *tunFile) wakeForShutdown() error {
|
||||
var buf [8]byte
|
||||
binary.NativeEndian.PutUint64(buf[:], 1)
|
||||
_, err := unix.Write(int(r.readPoll[1].Fd), buf[:])
|
||||
return err
|
||||
}
|
||||
|
||||
func (r *tunFile) Close() error {
|
||||
if r.closed { // avoid closing more than once. Technically a fd could get re-used, which would be a problem
|
||||
return nil
|
||||
}
|
||||
r.closed = true
|
||||
if r.lastOne {
|
||||
_ = unix.Close(r.shutdownFd)
|
||||
}
|
||||
return unix.Close(r.fd)
|
||||
}
|
||||
|
||||
type tun struct {
|
||||
*tunFile
|
||||
readers []*tunFile
|
||||
readers tio.QueueSet
|
||||
closeLock sync.Mutex
|
||||
Device string
|
||||
vpnNetworks []netip.Prefix
|
||||
@@ -201,6 +34,14 @@ type tun struct {
|
||||
TXQueueLen int
|
||||
deviceIndex int
|
||||
ioctlFd uintptr
|
||||
vnetHdr bool
|
||||
// routeFeatureECN, when true, sets RTAX_FEATURE_ECN on every route we
|
||||
// install for the tun. The kernel then actively negotiates ECN for
|
||||
// connections destined to those prefixes (equivalent to `ip route
|
||||
// change ... features ecn`) regardless of net.ipv4.tcp_ecn, so flows
|
||||
// across the nebula mesh use ECN even when the host default is the
|
||||
// passive setting (=2). Disable via tunnels.ecn=false.
|
||||
routeFeatureECN bool
|
||||
|
||||
Routes atomic.Pointer[[]Route]
|
||||
routeTree atomic.Pointer[bart.Table[routing.Gateways]]
|
||||
@@ -239,7 +80,9 @@ type ifreqQLEN struct {
|
||||
}
|
||||
|
||||
func newTunFromFd(c *config.C, l *slog.Logger, deviceFd int, vpnNetworks []netip.Prefix) (*tun, error) {
|
||||
t, err := newTunGeneric(c, l, deviceFd, vpnNetworks)
|
||||
// We don't know what flags the caller opened this fd with and can't turn
|
||||
// on IFF_VNET_HDR after TUNSETIFF, so skip offload on inherited fds.
|
||||
t, err := newTunGeneric(c, l, deviceFd, false, false, vpnNetworks)
|
||||
if err != nil {
|
||||
return nil, err
|
||||
}
|
||||
@@ -249,46 +92,105 @@ func newTunFromFd(c *config.C, l *slog.Logger, deviceFd int, vpnNetworks []netip
|
||||
return t, nil
|
||||
}
|
||||
|
||||
func newTun(c *config.C, l *slog.Logger, vpnNetworks []netip.Prefix, multiqueue bool) (*tun, error) {
|
||||
// openTunDev opens /dev/net/tun, creating the device node first if it's
|
||||
// missing (docker containers occasionally omit it).
|
||||
func openTunDev() (int, error) {
|
||||
fd, err := unix.Open("/dev/net/tun", os.O_RDWR, 0)
|
||||
if err != nil {
|
||||
// If /dev/net/tun doesn't exist, try to create it (will happen in docker)
|
||||
if os.IsNotExist(err) {
|
||||
err = os.MkdirAll("/dev/net", 0755)
|
||||
if err != nil {
|
||||
return nil, fmt.Errorf("/dev/net/tun doesn't exist, failed to mkdir -p /dev/net: %w", err)
|
||||
}
|
||||
err = unix.Mknod("/dev/net/tun", unix.S_IFCHR|0600, int(unix.Mkdev(10, 200)))
|
||||
if err != nil {
|
||||
return nil, fmt.Errorf("failed to create /dev/net/tun: %w", err)
|
||||
}
|
||||
|
||||
fd, err = unix.Open("/dev/net/tun", os.O_RDWR, 0)
|
||||
if err != nil {
|
||||
return nil, fmt.Errorf("created /dev/net/tun, but still failed: %w", err)
|
||||
}
|
||||
} else {
|
||||
return nil, err
|
||||
}
|
||||
if err == nil {
|
||||
return fd, nil
|
||||
}
|
||||
if !os.IsNotExist(err) {
|
||||
return -1, err
|
||||
}
|
||||
if err = os.MkdirAll("/dev/net", 0755); err != nil {
|
||||
return -1, fmt.Errorf("/dev/net/tun doesn't exist, failed to mkdir -p /dev/net: %w", err)
|
||||
}
|
||||
if err = unix.Mknod("/dev/net/tun", unix.S_IFCHR|0600, int(unix.Mkdev(10, 200))); err != nil {
|
||||
return -1, fmt.Errorf("failed to create /dev/net/tun: %w", err)
|
||||
}
|
||||
fd, err = unix.Open("/dev/net/tun", os.O_RDWR, 0)
|
||||
if err != nil {
|
||||
return -1, fmt.Errorf("created /dev/net/tun, but still failed: %w", err)
|
||||
}
|
||||
return fd, nil
|
||||
}
|
||||
|
||||
// tunSetIff runs TUNSETIFF with the given flags and returns the kernel-chosen
|
||||
// device name on success.
|
||||
func tunSetIff(fd int, name string, flags uint16) (string, error) {
|
||||
var req ifReq
|
||||
req.Flags = uint16(unix.IFF_TUN | unix.IFF_NO_PI)
|
||||
req.Flags = flags
|
||||
copy(req.Name[:], name)
|
||||
if err := ioctl(uintptr(fd), uintptr(unix.TUNSETIFF), uintptr(unsafe.Pointer(&req))); err != nil {
|
||||
return "", err
|
||||
}
|
||||
return strings.Trim(string(req.Name[:]), "\x00"), nil
|
||||
}
|
||||
|
||||
// tsoOffloadFlags are the TUN_F_* bits we ask the kernel to enable when a
|
||||
// TSO-capable TUN is available. CSUM is required as a prerequisite for TSO.
|
||||
// TSO_ECN tells the kernel we propagate ECN correctly through coalesce and
|
||||
// segmentation, so it can deliver superpackets whose seed has CWR/ECE set
|
||||
// or whose IP-level codepoint is CE.
|
||||
const tsoOffloadFlags = unix.TUN_F_CSUM | unix.TUN_F_TSO4 | unix.TUN_F_TSO6 | unix.TUN_F_TSO_ECN
|
||||
|
||||
// usoOffloadFlags adds UDP Segmentation Offload to tsoOffloadFlags. Requires
|
||||
// Linux ≥ 6.2; older kernels reject it and we fall back to TCP-only TSO via
|
||||
// tsoOffloadFlags.
|
||||
const usoOffloadFlags = tsoOffloadFlags | unix.TUN_F_USO4 | unix.TUN_F_USO6
|
||||
|
||||
func newTun(c *config.C, l *slog.Logger, vpnNetworks []netip.Prefix, multiqueue bool) (*tun, error) {
|
||||
baseFlags := uint16(unix.IFF_TUN | unix.IFF_NO_PI)
|
||||
if multiqueue {
|
||||
req.Flags |= unix.IFF_MULTI_QUEUE
|
||||
baseFlags |= unix.IFF_MULTI_QUEUE
|
||||
}
|
||||
nameStr := c.GetString("tun.dev", "")
|
||||
copy(req.Name[:], nameStr)
|
||||
if err = ioctl(uintptr(fd), uintptr(unix.TUNSETIFF), uintptr(unsafe.Pointer(&req))); err != nil {
|
||||
|
||||
// First try to enable IFF_VNET_HDR via TUNSETIFF and negotiate TUN_F_*
|
||||
// offloads via TUNSETOFFLOAD so we can receive TSO/USO superpackets.
|
||||
// We try TSO+USO first, fall back to TSO-only on kernels without USO
|
||||
// (Linux < 6.2), and finally give up on virtio headers entirely and
|
||||
// reopen as a plain TUN if neither offload mask is accepted.
|
||||
fd, err := openTunDev()
|
||||
if err != nil {
|
||||
return nil, err
|
||||
}
|
||||
vnetHdr := true
|
||||
usoEnabled := false
|
||||
name, err := tunSetIff(fd, nameStr, baseFlags|unix.IFF_VNET_HDR)
|
||||
if err != nil {
|
||||
_ = unix.Close(fd)
|
||||
return nil, &NameError{
|
||||
Name: nameStr,
|
||||
Underlying: err,
|
||||
vnetHdr = false
|
||||
} else {
|
||||
// Try TSO+USO first. On kernels without USO support (Linux < 6.2)
|
||||
// the ioctl returns EINVAL; fall back to the TCP-only mask before
|
||||
// giving up on VNET_HDR entirely.
|
||||
if err = ioctl(uintptr(fd), unix.TUNSETOFFLOAD, uintptr(usoOffloadFlags)); err == nil {
|
||||
usoEnabled = true
|
||||
} else if err = ioctl(uintptr(fd), unix.TUNSETOFFLOAD, uintptr(tsoOffloadFlags)); err != nil {
|
||||
l.Warn("Failed to enable TUN offload (TSO); proceeding without virtio headers", "error", err)
|
||||
_ = unix.Close(fd)
|
||||
vnetHdr = false
|
||||
}
|
||||
}
|
||||
name := strings.Trim(string(req.Name[:]), "\x00")
|
||||
|
||||
t, err := newTunGeneric(c, l, fd, vpnNetworks)
|
||||
if !vnetHdr {
|
||||
fd, err = openTunDev()
|
||||
if err != nil {
|
||||
return nil, err
|
||||
}
|
||||
name, err = tunSetIff(fd, nameStr, baseFlags)
|
||||
if err != nil {
|
||||
_ = unix.Close(fd)
|
||||
return nil, &NameError{Name: nameStr, Underlying: err}
|
||||
}
|
||||
}
|
||||
|
||||
if vnetHdr {
|
||||
l.Info("TUN offload enabled", "tso", true, "uso", usoEnabled)
|
||||
}
|
||||
|
||||
t, err := newTunGeneric(c, l, fd, vnetHdr, usoEnabled, vpnNetworks)
|
||||
if err != nil {
|
||||
return nil, err
|
||||
}
|
||||
@@ -299,20 +201,34 @@ func newTun(c *config.C, l *slog.Logger, vpnNetworks []netip.Prefix, multiqueue
|
||||
}
|
||||
|
||||
// newTunGeneric does all the stuff common to different tun initialization paths. It will close your files on error.
|
||||
func newTunGeneric(c *config.C, l *slog.Logger, fd int, vpnNetworks []netip.Prefix) (*tun, error) {
|
||||
tfd, err := newTunFd(fd)
|
||||
func newTunGeneric(c *config.C, l *slog.Logger, fd int, vnetHdr, usoEnabled bool, vpnNetworks []netip.Prefix) (*tun, error) {
|
||||
var qs tio.QueueSet
|
||||
var err error
|
||||
if vnetHdr {
|
||||
qs, err = tio.NewOffloadQueueSet(usoEnabled)
|
||||
} else {
|
||||
qs, err = tio.NewPollQueueSet()
|
||||
}
|
||||
|
||||
if err != nil {
|
||||
_ = unix.Close(fd)
|
||||
return nil, err
|
||||
}
|
||||
err = qs.Add(fd)
|
||||
if err != nil {
|
||||
_ = unix.Close(fd)
|
||||
return nil, err
|
||||
}
|
||||
|
||||
t := &tun{
|
||||
tunFile: tfd,
|
||||
readers: []*tunFile{tfd},
|
||||
readers: qs,
|
||||
closeLock: sync.Mutex{},
|
||||
vnetHdr: vnetHdr,
|
||||
vpnNetworks: vpnNetworks,
|
||||
TXQueueLen: c.GetInt("tun.tx_queue", 500),
|
||||
useSystemRoutes: c.GetBool("tun.use_system_route_table", false),
|
||||
useSystemRoutesBufferSize: c.GetInt("tun.use_system_route_table_buffer_size", 0),
|
||||
routeFeatureECN: c.GetBool("tunnels.ecn", true),
|
||||
routesFromSystem: map[netip.Prefix]routing.Gateways{},
|
||||
l: l,
|
||||
}
|
||||
@@ -410,32 +326,38 @@ func (t *tun) SupportsMultiqueue() bool {
|
||||
return true
|
||||
}
|
||||
|
||||
func (t *tun) NewMultiQueueReader() (io.ReadWriteCloser, error) {
|
||||
func (t *tun) NewMultiQueueReader() error {
|
||||
t.closeLock.Lock()
|
||||
defer t.closeLock.Unlock()
|
||||
|
||||
fd, err := unix.Open("/dev/net/tun", os.O_RDWR, 0)
|
||||
if err != nil {
|
||||
return nil, err
|
||||
return err
|
||||
}
|
||||
|
||||
var req ifReq
|
||||
req.Flags = uint16(unix.IFF_TUN | unix.IFF_NO_PI | unix.IFF_MULTI_QUEUE)
|
||||
copy(req.Name[:], t.Device)
|
||||
if err = ioctl(uintptr(fd), uintptr(unix.TUNSETIFF), uintptr(unsafe.Pointer(&req))); err != nil {
|
||||
flags := uint16(unix.IFF_TUN | unix.IFF_NO_PI | unix.IFF_MULTI_QUEUE)
|
||||
if t.vnetHdr {
|
||||
flags |= unix.IFF_VNET_HDR
|
||||
}
|
||||
if _, err = tunSetIff(fd, t.Device, flags); err != nil {
|
||||
_ = unix.Close(fd)
|
||||
return nil, err
|
||||
return err
|
||||
}
|
||||
|
||||
out, err := t.tunFile.newFriend(fd)
|
||||
if t.vnetHdr {
|
||||
if err = ioctl(uintptr(fd), unix.TUNSETOFFLOAD, uintptr(tsoOffloadFlags)); err != nil {
|
||||
_ = unix.Close(fd)
|
||||
return fmt.Errorf("failed to enable offload on multiqueue tun fd: %w", err)
|
||||
}
|
||||
}
|
||||
|
||||
err = t.readers.Add(fd)
|
||||
if err != nil {
|
||||
_ = unix.Close(fd)
|
||||
return nil, err
|
||||
return err
|
||||
}
|
||||
|
||||
t.readers = append(t.readers, out)
|
||||
|
||||
return out, nil
|
||||
return nil
|
||||
}
|
||||
|
||||
func (t *tun) RoutesFor(ip netip.Addr) routing.Gateways {
|
||||
@@ -603,6 +525,18 @@ func (t *tun) setDefaultRoute(cidr netip.Prefix) error {
|
||||
Table: unix.RT_TABLE_MAIN,
|
||||
Type: unix.RTN_UNICAST,
|
||||
}
|
||||
// Match the metric the kernel uses for its auto-installed connected
|
||||
// route, so RouteReplace overwrites it in place instead of adding a
|
||||
// second route at a worse metric. IPv6 connected routes are installed
|
||||
// at metric 256 (IP6_RT_PRIO_KERN); IPv4 uses 0. Without this, the
|
||||
// kernel route wins lookups and our MTU / AdvMSS / Features never
|
||||
// apply on v6.
|
||||
if cidr.Addr().Is6() {
|
||||
nr.Priority = 256
|
||||
}
|
||||
if t.routeFeatureECN {
|
||||
nr.Features |= unix.RTAX_FEATURE_ECN
|
||||
}
|
||||
err := netlink.RouteReplace(&nr)
|
||||
if err != nil {
|
||||
t.l.Warn("Failed to set default route MTU, retrying", "error", err, "cidr", cidr)
|
||||
@@ -652,6 +586,9 @@ func (t *tun) addRoutes(logErrors bool) error {
|
||||
if r.Metric > 0 {
|
||||
nr.Priority = r.Metric
|
||||
}
|
||||
if t.routeFeatureECN {
|
||||
nr.Features |= unix.RTAX_FEATURE_ECN
|
||||
}
|
||||
|
||||
err := netlink.RouteReplace(&nr)
|
||||
if err != nil {
|
||||
@@ -869,6 +806,10 @@ func (t *tun) updateRoutes(r netlink.RouteUpdate) {
|
||||
t.routeTree.Store(newTree)
|
||||
}
|
||||
|
||||
func (t *tun) Readers() []tio.Queue {
|
||||
return t.readers.Queues()
|
||||
}
|
||||
|
||||
func (t *tun) Close() error {
|
||||
t.closeLock.Lock()
|
||||
defer t.closeLock.Unlock()
|
||||
@@ -878,32 +819,10 @@ func (t *tun) Close() error {
|
||||
t.routeChan = nil
|
||||
}
|
||||
|
||||
// Signal all readers blocked in poll to wake up and exit
|
||||
_ = t.tunFile.wakeForShutdown()
|
||||
|
||||
if t.ioctlFd > 0 {
|
||||
_ = unix.Close(int(t.ioctlFd))
|
||||
t.ioctlFd = 0
|
||||
}
|
||||
|
||||
for i := range t.readers {
|
||||
if i == 0 {
|
||||
continue //we want to close the zeroth reader last
|
||||
}
|
||||
err := t.readers[i].Close()
|
||||
if err != nil {
|
||||
t.l.Error("error closing tun reader", "reader", i, "error", err)
|
||||
} else {
|
||||
t.l.Info("closed tun reader", "reader", i)
|
||||
}
|
||||
}
|
||||
|
||||
//this is t.readers[0] too
|
||||
err := t.tunFile.Close()
|
||||
if err != nil {
|
||||
t.l.Error("error closing tun reader", "reader", 0, "error", err)
|
||||
} else {
|
||||
t.l.Info("closed tun reader", "reader", 0)
|
||||
}
|
||||
return err
|
||||
return t.readers.Close()
|
||||
}
|
||||
|
||||
@@ -3,7 +3,9 @@
|
||||
|
||||
package overlay
|
||||
|
||||
import "testing"
|
||||
import (
|
||||
"testing"
|
||||
)
|
||||
|
||||
var runAdvMSSTests = []struct {
|
||||
name string
|
||||
|
||||
+21
-4
@@ -6,7 +6,6 @@ package overlay
|
||||
import (
|
||||
"errors"
|
||||
"fmt"
|
||||
"io"
|
||||
"log/slog"
|
||||
"net/netip"
|
||||
"os"
|
||||
@@ -17,6 +16,7 @@ import (
|
||||
|
||||
"github.com/gaissmai/bart"
|
||||
"github.com/slackhq/nebula/config"
|
||||
"github.com/slackhq/nebula/overlay/tio"
|
||||
"github.com/slackhq/nebula/routing"
|
||||
"github.com/slackhq/nebula/util"
|
||||
netroute "golang.org/x/net/route"
|
||||
@@ -66,6 +66,22 @@ type tun struct {
|
||||
l *slog.Logger
|
||||
f *os.File
|
||||
fd int
|
||||
|
||||
readBuf []byte
|
||||
batchRet [1]tio.Packet
|
||||
}
|
||||
|
||||
func (t *tun) Read() ([]tio.Packet, error) {
|
||||
n, err := t.readOne(t.readBuf)
|
||||
if err != nil {
|
||||
return nil, err
|
||||
}
|
||||
t.batchRet[0] = tio.Packet{Bytes: t.readBuf[:n]}
|
||||
return t.batchRet[:], nil
|
||||
}
|
||||
|
||||
func (t *tun) Readers() []tio.Queue {
|
||||
return []tio.Queue{t}
|
||||
}
|
||||
|
||||
var deviceNameRE = regexp.MustCompile(`^tun[0-9]+$`)
|
||||
@@ -102,6 +118,7 @@ func newTun(c *config.C, l *slog.Logger, vpnNetworks []netip.Prefix, _ bool) (*t
|
||||
vpnNetworks: vpnNetworks,
|
||||
MTU: c.GetInt("tun.mtu", DefaultMTU),
|
||||
l: l,
|
||||
readBuf: make([]byte, defaultBatchBufSize),
|
||||
}
|
||||
|
||||
err = t.reload(c, true)
|
||||
@@ -141,7 +158,7 @@ func (t *tun) Close() error {
|
||||
return nil
|
||||
}
|
||||
|
||||
func (t *tun) Read(to []byte) (int, error) {
|
||||
func (t *tun) readOne(to []byte) (int, error) {
|
||||
rc, err := t.f.SyscallConn()
|
||||
if err != nil {
|
||||
return 0, fmt.Errorf("failed to get syscall conn for tun: %w", err)
|
||||
@@ -394,8 +411,8 @@ func (t *tun) SupportsMultiqueue() bool {
|
||||
return false
|
||||
}
|
||||
|
||||
func (t *tun) NewMultiQueueReader() (io.ReadWriteCloser, error) {
|
||||
return nil, fmt.Errorf("TODO: multiqueue not implemented for netbsd")
|
||||
func (t *tun) NewMultiQueueReader() error {
|
||||
return fmt.Errorf("TODO: multiqueue not implemented for netbsd")
|
||||
}
|
||||
|
||||
func (t *tun) addRoutes(logErrors bool) error {
|
||||
|
||||
+21
-4
@@ -6,7 +6,6 @@ package overlay
|
||||
import (
|
||||
"errors"
|
||||
"fmt"
|
||||
"io"
|
||||
"log/slog"
|
||||
"net/netip"
|
||||
"os"
|
||||
@@ -17,6 +16,7 @@ import (
|
||||
|
||||
"github.com/gaissmai/bart"
|
||||
"github.com/slackhq/nebula/config"
|
||||
"github.com/slackhq/nebula/overlay/tio"
|
||||
"github.com/slackhq/nebula/routing"
|
||||
"github.com/slackhq/nebula/util"
|
||||
netroute "golang.org/x/net/route"
|
||||
@@ -59,6 +59,18 @@ type tun struct {
|
||||
fd int
|
||||
// cache out buffer since we need to prepend 4 bytes for tun metadata
|
||||
out []byte
|
||||
|
||||
readBuf []byte
|
||||
batchRet [1]tio.Packet
|
||||
}
|
||||
|
||||
func (t *tun) Read() ([]tio.Packet, error) {
|
||||
n, err := t.readOne(t.readBuf)
|
||||
if err != nil {
|
||||
return nil, err
|
||||
}
|
||||
t.batchRet[0] = tio.Packet{Bytes: t.readBuf[:n]}
|
||||
return t.batchRet[:], nil
|
||||
}
|
||||
|
||||
var deviceNameRE = regexp.MustCompile(`^tun[0-9]+$`)
|
||||
@@ -95,6 +107,7 @@ func newTun(c *config.C, l *slog.Logger, vpnNetworks []netip.Prefix, _ bool) (*t
|
||||
vpnNetworks: vpnNetworks,
|
||||
MTU: c.GetInt("tun.mtu", DefaultMTU),
|
||||
l: l,
|
||||
readBuf: make([]byte, defaultBatchBufSize),
|
||||
}
|
||||
|
||||
err = t.reload(c, true)
|
||||
@@ -124,7 +137,7 @@ func (t *tun) Close() error {
|
||||
return nil
|
||||
}
|
||||
|
||||
func (t *tun) Read(to []byte) (int, error) {
|
||||
func (t *tun) readOne(to []byte) (int, error) {
|
||||
buf := make([]byte, len(to)+4)
|
||||
|
||||
n, err := t.f.Read(buf)
|
||||
@@ -314,8 +327,8 @@ func (t *tun) SupportsMultiqueue() bool {
|
||||
return false
|
||||
}
|
||||
|
||||
func (t *tun) NewMultiQueueReader() (io.ReadWriteCloser, error) {
|
||||
return nil, fmt.Errorf("TODO: multiqueue not implemented for openbsd")
|
||||
func (t *tun) NewMultiQueueReader() error {
|
||||
return fmt.Errorf("TODO: multiqueue not implemented for openbsd")
|
||||
}
|
||||
|
||||
func (t *tun) addRoutes(logErrors bool) error {
|
||||
@@ -366,6 +379,10 @@ func (t *tun) deviceBytes() (o [16]byte) {
|
||||
return
|
||||
}
|
||||
|
||||
func (t *tun) Readers() []tio.Queue {
|
||||
return []tio.Queue{t}
|
||||
}
|
||||
|
||||
func addRoute(prefix netip.Prefix, gateways []netip.Prefix) error {
|
||||
sock, err := unix.Socket(unix.AF_ROUTE, unix.SOCK_RAW, unix.AF_UNSPEC)
|
||||
if err != nil {
|
||||
|
||||
+23
-3
@@ -14,6 +14,7 @@ import (
|
||||
|
||||
"github.com/gaissmai/bart"
|
||||
"github.com/slackhq/nebula/config"
|
||||
"github.com/slackhq/nebula/overlay/tio"
|
||||
"github.com/slackhq/nebula/routing"
|
||||
"github.com/slackhq/nebula/udp"
|
||||
)
|
||||
@@ -28,6 +29,8 @@ type TestTun struct {
|
||||
closed atomic.Bool
|
||||
rxPackets chan []byte // Packets to receive into nebula
|
||||
TxPackets chan []byte // Packets transmitted outside by nebula
|
||||
|
||||
batchRet [1]tio.Packet
|
||||
}
|
||||
|
||||
func newTun(c *config.C, l *slog.Logger, vpnNetworks []netip.Prefix, _ bool) (*TestTun, error) {
|
||||
@@ -48,6 +51,9 @@ func newTun(c *config.C, l *slog.Logger, vpnNetworks []netip.Prefix, _ bool) (*T
|
||||
l: l,
|
||||
rxPackets: make(chan []byte, 10),
|
||||
TxPackets: make(chan []byte, 10),
|
||||
batchRet: [1]tio.Packet{
|
||||
tio.Packet{Bytes: make([]byte, udp.MTU)},
|
||||
},
|
||||
}, nil
|
||||
}
|
||||
|
||||
@@ -162,7 +168,17 @@ func (t *TestTun) Close() error {
|
||||
return nil
|
||||
}
|
||||
|
||||
func (t *TestTun) Read(b []byte) (int, error) {
|
||||
func (t *TestTun) Read() ([]tio.Packet, error) {
|
||||
t.batchRet[0].Bytes = t.batchRet[0].Bytes[:udp.MTU]
|
||||
n, err := t.read(t.batchRet[0].Bytes)
|
||||
if err != nil {
|
||||
return nil, err
|
||||
}
|
||||
t.batchRet[0].Bytes = t.batchRet[0].Bytes[:n]
|
||||
return t.batchRet[:], nil
|
||||
}
|
||||
|
||||
func (t *TestTun) read(b []byte) (int, error) {
|
||||
p, ok := <-t.rxPackets
|
||||
if !ok {
|
||||
return 0, os.ErrClosed
|
||||
@@ -177,10 +193,14 @@ func (t *TestTun) Read(b []byte) (int, error) {
|
||||
return n, nil
|
||||
}
|
||||
|
||||
func (t *TestTun) Readers() []tio.Queue {
|
||||
return []tio.Queue{t}
|
||||
}
|
||||
|
||||
func (t *TestTun) SupportsMultiqueue() bool {
|
||||
return false
|
||||
}
|
||||
|
||||
func (t *TestTun) NewMultiQueueReader() (io.ReadWriteCloser, error) {
|
||||
return nil, fmt.Errorf("TODO: multiqueue not implemented")
|
||||
func (t *TestTun) NewMultiQueueReader() error {
|
||||
return fmt.Errorf("TODO: multiqueue not implemented")
|
||||
}
|
||||
|
||||
+20
-7
@@ -6,7 +6,6 @@ package overlay
|
||||
import (
|
||||
"crypto"
|
||||
"fmt"
|
||||
"io"
|
||||
"log/slog"
|
||||
"net/netip"
|
||||
"os"
|
||||
@@ -18,6 +17,7 @@ import (
|
||||
|
||||
"github.com/gaissmai/bart"
|
||||
"github.com/slackhq/nebula/config"
|
||||
"github.com/slackhq/nebula/overlay/tio"
|
||||
"github.com/slackhq/nebula/routing"
|
||||
"github.com/slackhq/nebula/util"
|
||||
"github.com/slackhq/nebula/wintun"
|
||||
@@ -45,6 +45,18 @@ type winTun struct {
|
||||
l *slog.Logger
|
||||
|
||||
tun *wintun.NativeTun
|
||||
|
||||
readBuf []byte
|
||||
batchRet [1]tio.Packet
|
||||
}
|
||||
|
||||
func (t *winTun) Read() ([]tio.Packet, error) {
|
||||
n, err := t.tun.Read(t.readBuf, 0)
|
||||
if err != nil {
|
||||
return nil, err
|
||||
}
|
||||
t.batchRet[0] = tio.Packet{Bytes: t.readBuf[:n]}
|
||||
return t.batchRet[:], nil
|
||||
}
|
||||
|
||||
func newTunFromFd(_ *config.C, _ *slog.Logger, _ int, _ []netip.Prefix) (Device, error) {
|
||||
@@ -69,6 +81,7 @@ func newTun(c *config.C, l *slog.Logger, vpnNetworks []netip.Prefix, _ bool) (*w
|
||||
}
|
||||
|
||||
t := &winTun{
|
||||
readBuf: make([]byte, defaultBatchBufSize),
|
||||
Device: deviceName,
|
||||
vpnNetworks: vpnNetworks,
|
||||
MTU: c.GetInt("tun.mtu", DefaultMTU),
|
||||
@@ -255,10 +268,6 @@ func (t *winTun) Name() string {
|
||||
return t.Device
|
||||
}
|
||||
|
||||
func (t *winTun) Read(b []byte) (int, error) {
|
||||
return t.tun.Read(b, 0)
|
||||
}
|
||||
|
||||
func (t *winTun) Write(b []byte) (int, error) {
|
||||
return t.tun.Write(b, 0)
|
||||
}
|
||||
@@ -267,8 +276,12 @@ func (t *winTun) SupportsMultiqueue() bool {
|
||||
return false
|
||||
}
|
||||
|
||||
func (t *winTun) NewMultiQueueReader() (io.ReadWriteCloser, error) {
|
||||
return nil, fmt.Errorf("TODO: multiqueue not implemented for windows")
|
||||
func (t *winTun) NewMultiQueueReader() error {
|
||||
return fmt.Errorf("TODO: multiqueue not implemented for windows")
|
||||
}
|
||||
|
||||
func (t *winTun) Readers() []tio.Queue {
|
||||
return []tio.Queue{t}
|
||||
}
|
||||
|
||||
func (t *winTun) Close() error {
|
||||
|
||||
+30
-5
@@ -6,6 +6,7 @@ import (
|
||||
"net/netip"
|
||||
|
||||
"github.com/slackhq/nebula/config"
|
||||
"github.com/slackhq/nebula/overlay/tio"
|
||||
"github.com/slackhq/nebula/routing"
|
||||
)
|
||||
|
||||
@@ -23,17 +24,34 @@ func NewUserDevice(vpnNetworks []netip.Prefix) (Device, error) {
|
||||
outboundWriter: ow,
|
||||
inboundReader: ir,
|
||||
inboundWriter: iw,
|
||||
numReaders: 1,
|
||||
}, nil
|
||||
}
|
||||
|
||||
type UserDevice struct {
|
||||
vpnNetworks []netip.Prefix
|
||||
numReaders int
|
||||
|
||||
outboundReader *io.PipeReader
|
||||
outboundWriter *io.PipeWriter
|
||||
|
||||
inboundReader *io.PipeReader
|
||||
inboundWriter *io.PipeWriter
|
||||
|
||||
readBuf []byte
|
||||
batchRet [1]tio.Packet
|
||||
}
|
||||
|
||||
func (d *UserDevice) Read() ([]tio.Packet, error) {
|
||||
if d.readBuf == nil {
|
||||
d.readBuf = make([]byte, defaultBatchBufSize)
|
||||
}
|
||||
n, err := d.outboundReader.Read(d.readBuf)
|
||||
if err != nil {
|
||||
return nil, err
|
||||
}
|
||||
d.batchRet[0] = tio.Packet{Bytes: d.readBuf[:n]}
|
||||
return d.batchRet[:], nil
|
||||
}
|
||||
|
||||
func (d *UserDevice) Activate() error {
|
||||
@@ -50,20 +68,27 @@ func (d *UserDevice) SupportsMultiqueue() bool {
|
||||
return true
|
||||
}
|
||||
|
||||
func (d *UserDevice) NewMultiQueueReader() (io.ReadWriteCloser, error) {
|
||||
return d, nil
|
||||
func (d *UserDevice) NewMultiQueueReader() error {
|
||||
d.numReaders++
|
||||
return nil
|
||||
}
|
||||
|
||||
func (d *UserDevice) Readers() []tio.Queue {
|
||||
out := make([]tio.Queue, d.numReaders)
|
||||
for i := range d.numReaders {
|
||||
out[i] = d
|
||||
}
|
||||
return out
|
||||
}
|
||||
|
||||
func (d *UserDevice) Pipe() (*io.PipeReader, *io.PipeWriter) {
|
||||
return d.inboundReader, d.outboundWriter
|
||||
}
|
||||
|
||||
func (d *UserDevice) Read(p []byte) (n int, err error) {
|
||||
return d.outboundReader.Read(p)
|
||||
}
|
||||
func (d *UserDevice) Write(p []byte) (n int, err error) {
|
||||
return d.inboundWriter.Write(p)
|
||||
}
|
||||
|
||||
func (d *UserDevice) Close() error {
|
||||
d.inboundWriter.Close()
|
||||
d.outboundWriter.Close()
|
||||
|
||||
+38
-2
@@ -8,16 +8,49 @@ import (
|
||||
|
||||
const MTU = 9001
|
||||
|
||||
// MaxWriteBatch is the largest batch any Conn.WriteBatch implementation is
|
||||
// required to accept. Callers SHOULD NOT pass more than this per call; Linux
|
||||
// backends preallocate sendmmsg scratch sized to this value, so exceeding it
|
||||
// only costs additional sendmmsg chunks within a single WriteBatch call.
|
||||
const MaxWriteBatch = 128
|
||||
|
||||
// RxMeta carries per-packet metadata extracted from the RX path (ancillary
|
||||
// data, kernel offload state, etc.) and passed to EncReader callbacks.
|
||||
// Backends that do not produce a particular signal leave its zero value.
|
||||
//
|
||||
// OuterECN is the 2-bit IP-level ECN codepoint stamped on the carrier
|
||||
// datagram (extracted from IP_TOS / IPV6_TCLASS cmsg on Linux). Zero
|
||||
// means Not-ECT, which is also the value backends without ECN RX support
|
||||
// supply on every packet.
|
||||
type RxMeta struct {
|
||||
OuterECN byte
|
||||
}
|
||||
|
||||
type EncReader func(
|
||||
addr netip.AddrPort,
|
||||
payload []byte,
|
||||
meta RxMeta,
|
||||
)
|
||||
|
||||
type Conn interface {
|
||||
Rebind() error
|
||||
LocalAddr() (netip.AddrPort, error)
|
||||
ListenOut(r EncReader) error
|
||||
// ListenOut invokes r for each received packet. On batch-capable
|
||||
// backends (recvmmsg), flush is called after each batch is fully
|
||||
// delivered — callers use it to flush per-batch accumulators such as
|
||||
// TUN write coalescers. Single-packet backends call flush after each
|
||||
// packet. flush must not be nil.
|
||||
ListenOut(r EncReader, flush func()) error
|
||||
WriteTo(b []byte, addr netip.AddrPort) error
|
||||
// WriteBatch sends a contiguous batch of packets, each with its own
|
||||
// destination. bufs and addrs must have the same length. outerECNs may
|
||||
// be nil (treated as all-zero / Not-ECT); when non-nil it must have the
|
||||
// same length as bufs, and outerECNs[i] is the 2-bit IP-level ECN
|
||||
// codepoint to set on packet i's outer header. Linux uses sendmmsg(2)
|
||||
// for a single syscall and attaches the value as IP_TOS / IPV6_TCLASS
|
||||
// cmsg; other backends ignore it. Returns on the first error; callers
|
||||
// may observe a partial send if some packets went out before the error.
|
||||
WriteBatch(bufs [][]byte, addrs []netip.AddrPort, outerECNs []byte) error
|
||||
ReloadConfig(c *config.C)
|
||||
SupportsMultipleReaders() bool
|
||||
Close() error
|
||||
@@ -31,7 +64,7 @@ func (NoopConn) Rebind() error {
|
||||
func (NoopConn) LocalAddr() (netip.AddrPort, error) {
|
||||
return netip.AddrPort{}, nil
|
||||
}
|
||||
func (NoopConn) ListenOut(_ EncReader) error {
|
||||
func (NoopConn) ListenOut(_ EncReader, _ func()) error {
|
||||
return nil
|
||||
}
|
||||
func (NoopConn) SupportsMultipleReaders() bool {
|
||||
@@ -40,6 +73,9 @@ func (NoopConn) SupportsMultipleReaders() bool {
|
||||
func (NoopConn) WriteTo(_ []byte, _ netip.AddrPort) error {
|
||||
return nil
|
||||
}
|
||||
func (NoopConn) WriteBatch(_ [][]byte, _ []netip.AddrPort, _ []byte) error {
|
||||
return nil
|
||||
}
|
||||
func (NoopConn) ReloadConfig(_ *config.C) {
|
||||
return
|
||||
}
|
||||
|
||||
@@ -0,0 +1,62 @@
|
||||
//go:build !android && !e2e_testing
|
||||
// +build !android,!e2e_testing
|
||||
|
||||
package udp
|
||||
|
||||
import (
|
||||
"net"
|
||||
"syscall"
|
||||
"unsafe"
|
||||
|
||||
"golang.org/x/sys/unix"
|
||||
)
|
||||
|
||||
// rawSendmmsg performs sendmmsg(2) over a syscall.RawConn without
|
||||
// allocating a closure per call. The struct holds preallocated in/out
|
||||
// scratch (chunk/sent/errno) and a method-value bound at construction so
|
||||
// rawConn.Write receives a stable function pointer instead of a fresh
|
||||
// closure on every send.
|
||||
type rawSendmmsg struct {
|
||||
msgs []rawMessage
|
||||
chunk int
|
||||
sent int
|
||||
errno syscall.Errno
|
||||
callback func(fd uintptr) bool
|
||||
}
|
||||
|
||||
// bind wires r.callback to r.run. Must be called once after r.msgs is set;
|
||||
// subsequent send calls invoke r.callback without rebinding.
|
||||
func (r *rawSendmmsg) bind() { r.callback = r.run }
|
||||
|
||||
// run is the preallocated callback rawConn.Write invokes. It reads its
|
||||
// input (r.chunk) and writes its outputs (r.sent, r.errno) through the
|
||||
// rawSendmmsg fields so the method value does not capture per-call locals
|
||||
// and therefore does not heap-allocate.
|
||||
func (r *rawSendmmsg) run(fd uintptr) bool {
|
||||
r1, _, errno := unix.Syscall6(unix.SYS_SENDMMSG, fd,
|
||||
uintptr(unsafe.Pointer(&r.msgs[0])), uintptr(r.chunk),
|
||||
0, 0, 0,
|
||||
)
|
||||
if errno == syscall.EAGAIN || errno == syscall.EWOULDBLOCK {
|
||||
return false
|
||||
}
|
||||
r.sent = int(r1)
|
||||
r.errno = errno
|
||||
return true
|
||||
}
|
||||
|
||||
// send issues sendmmsg over rc against the first n entries of r.msgs.
|
||||
// Returns the number of entries the kernel processed and any error;
|
||||
// matches the original sendmmsg helper's contract.
|
||||
func (r *rawSendmmsg) send(rc syscall.RawConn, n int) (int, error) {
|
||||
r.chunk = n
|
||||
r.sent = 0
|
||||
r.errno = 0
|
||||
if err := rc.Write(r.callback); err != nil {
|
||||
return r.sent, err
|
||||
}
|
||||
if r.errno != 0 {
|
||||
return r.sent, &net.OpError{Op: "sendmmsg", Err: r.errno}
|
||||
}
|
||||
return r.sent, nil
|
||||
}
|
||||
+12
-2
@@ -140,6 +140,15 @@ func (u *StdConn) WriteTo(b []byte, ap netip.AddrPort) error {
|
||||
}
|
||||
}
|
||||
|
||||
func (u *StdConn) WriteBatch(bufs [][]byte, addrs []netip.AddrPort, _ []byte) error {
|
||||
for i, b := range bufs {
|
||||
if err := u.WriteTo(b, addrs[i]); err != nil {
|
||||
return err
|
||||
}
|
||||
}
|
||||
return nil
|
||||
}
|
||||
|
||||
func (u *StdConn) LocalAddr() (netip.AddrPort, error) {
|
||||
a := u.UDPConn.LocalAddr()
|
||||
|
||||
@@ -165,7 +174,7 @@ func NewUDPStatsEmitter(udpConns []Conn) func() {
|
||||
return func() {}
|
||||
}
|
||||
|
||||
func (u *StdConn) ListenOut(r EncReader) error {
|
||||
func (u *StdConn) ListenOut(r EncReader, flush func()) error {
|
||||
buffer := make([]byte, MTU)
|
||||
|
||||
for {
|
||||
@@ -179,7 +188,8 @@ func (u *StdConn) ListenOut(r EncReader) error {
|
||||
u.l.Error("unexpected udp socket receive error", "error", err)
|
||||
}
|
||||
|
||||
r(netip.AddrPortFrom(rua.Addr().Unmap(), rua.Port()), buffer[:n])
|
||||
r(netip.AddrPortFrom(rua.Addr().Unmap(), rua.Port()), buffer[:n], RxMeta{})
|
||||
flush()
|
||||
}
|
||||
}
|
||||
|
||||
|
||||
@@ -0,0 +1,61 @@
|
||||
//go:build linux && !android && !e2e_testing
|
||||
|
||||
package udp
|
||||
|
||||
import (
|
||||
"net/netip"
|
||||
"testing"
|
||||
)
|
||||
|
||||
// TestPlanRunBreaksOnECNChange confirms that two same-destination, same-size
|
||||
// packets with different outer ECN end up in separate sendmmsg entries (the
|
||||
// kernel stamps one outer codepoint per entry, so a run that straddled the
|
||||
// boundary would silently lose information).
|
||||
func TestPlanRunBreaksOnECNChange(t *testing.T) {
|
||||
u := &StdConn{gsoSupported: true}
|
||||
dst := netip.MustParseAddrPort("10.0.0.1:4242")
|
||||
|
||||
bufs := [][]byte{
|
||||
make([]byte, 1200),
|
||||
make([]byte, 1200),
|
||||
make([]byte, 1200),
|
||||
}
|
||||
addrs := []netip.AddrPort{dst, dst, dst}
|
||||
|
||||
t.Run("uniform_ecn_runs_together", func(t *testing.T) {
|
||||
ecns := []byte{0x02, 0x02, 0x02}
|
||||
runLen, segSize := u.planRun(bufs, addrs, ecns, 0, 64)
|
||||
if runLen != 3 {
|
||||
t.Errorf("runLen=%d want 3 (uniform ECT(0))", runLen)
|
||||
}
|
||||
if segSize != 1200 {
|
||||
t.Errorf("segSize=%d want 1200", segSize)
|
||||
}
|
||||
})
|
||||
|
||||
t.Run("ecn_change_truncates_run", func(t *testing.T) {
|
||||
// 0,0,3: first two run together, CE seeds a fresh entry.
|
||||
ecns := []byte{0x00, 0x00, 0x03}
|
||||
runLen, _ := u.planRun(bufs, addrs, ecns, 0, 64)
|
||||
if runLen != 2 {
|
||||
t.Errorf("runLen=%d want 2 (ECN changes at index 2)", runLen)
|
||||
}
|
||||
})
|
||||
|
||||
t.Run("nil_ecns_runs_full", func(t *testing.T) {
|
||||
runLen, _ := u.planRun(bufs, addrs, nil, 0, 64)
|
||||
if runLen != 3 {
|
||||
t.Errorf("runLen=%d want 3 (nil ecns means no break)", runLen)
|
||||
}
|
||||
})
|
||||
|
||||
t.Run("first_ecn_is_singleton", func(t *testing.T) {
|
||||
// Second packet has different ECN from the first → run halts at 1
|
||||
// (the first packet alone forms the run).
|
||||
ecns := []byte{0x00, 0x03, 0x03}
|
||||
runLen, _ := u.planRun(bufs, addrs, ecns, 0, 64)
|
||||
if runLen != 1 {
|
||||
t.Errorf("runLen=%d want 1 (different ECN immediately)", runLen)
|
||||
}
|
||||
})
|
||||
}
|
||||
+12
-2
@@ -44,6 +44,15 @@ func (u *GenericConn) WriteTo(b []byte, addr netip.AddrPort) error {
|
||||
return err
|
||||
}
|
||||
|
||||
func (u *GenericConn) WriteBatch(bufs [][]byte, addrs []netip.AddrPort, _ []byte) error {
|
||||
for i, b := range bufs {
|
||||
if _, err := u.UDPConn.WriteToUDPAddrPort(b, addrs[i]); err != nil {
|
||||
return err
|
||||
}
|
||||
}
|
||||
return nil
|
||||
}
|
||||
|
||||
func (u *GenericConn) LocalAddr() (netip.AddrPort, error) {
|
||||
a := u.UDPConn.LocalAddr()
|
||||
|
||||
@@ -73,7 +82,7 @@ type rawMessage struct {
|
||||
Len uint32
|
||||
}
|
||||
|
||||
func (u *GenericConn) ListenOut(r EncReader) error {
|
||||
func (u *GenericConn) ListenOut(r EncReader, flush func()) error {
|
||||
buffer := make([]byte, MTU)
|
||||
|
||||
var lastRecvErr time.Time
|
||||
@@ -93,7 +102,8 @@ func (u *GenericConn) ListenOut(r EncReader) error {
|
||||
continue
|
||||
}
|
||||
|
||||
r(netip.AddrPortFrom(rua.Addr().Unmap(), rua.Port()), buffer[:n])
|
||||
r(netip.AddrPortFrom(rua.Addr().Unmap(), rua.Port()), buffer[:n], RxMeta{})
|
||||
flush()
|
||||
}
|
||||
}
|
||||
|
||||
|
||||
+592
-13
@@ -24,6 +24,51 @@ type StdConn struct {
|
||||
isV4 bool
|
||||
l *slog.Logger
|
||||
batch int
|
||||
|
||||
// sendmmsg scratch. Each queue has its own StdConn, so no locking is
|
||||
// needed. Sized to MaxWriteBatch at construction; WriteBatch chunks
|
||||
// larger inputs.
|
||||
writeMsgs []rawMessage
|
||||
writeIovs []iovec
|
||||
writeNames [][]byte
|
||||
|
||||
// Per-entry cmsg scratch. writeCmsg is one contiguous slab of
|
||||
// MaxWriteBatch * writeCmsgSpace bytes; each entry holds two cmsg
|
||||
// headers (UDP_SEGMENT then IP_TOS / IPV6_TCLASS) pre-filled once in
|
||||
// prepareWriteMessages. WriteBatch only rewrites the per-call data
|
||||
// payloads and toggles Hdr.Control / Hdr.Controllen to point at
|
||||
// whichever subset of the two cmsgs applies.
|
||||
writeCmsg []byte
|
||||
writeCmsgSpace int
|
||||
writeCmsgSegSpace int
|
||||
writeCmsgEcnSpace int
|
||||
|
||||
// writeEntryEnd[e] is the bufs index *after* the last packet packed
|
||||
// into mmsghdr entry e. Used to rewind `i` on partial sendmmsg success.
|
||||
writeEntryEnd []int
|
||||
|
||||
// rawSend wraps the sendmmsg(2) callback in a closure-free helper so
|
||||
// the hot path doesn't heap-allocate a fresh closure per call.
|
||||
rawSend rawSendmmsg
|
||||
|
||||
// UDP GSO (sendmsg with UDP_SEGMENT cmsg) support. gsoSupported is
|
||||
// probed once at socket creation. When true, WriteBatch packs same-
|
||||
// destination consecutive packets into a single sendmmsg entry with a
|
||||
// UDP_SEGMENT cmsg; otherwise each packet is its own entry.
|
||||
gsoSupported bool
|
||||
|
||||
// UDP GRO (recvmsg with UDP_GRO cmsg) support. groSupported is probed
|
||||
// once at socket creation. When true, listenOutBatch allocates larger
|
||||
// RX buffers and a per-entry cmsg slot so the kernel can coalesce
|
||||
// consecutive same-flow datagrams into a single recvmmsg entry; the
|
||||
// delivered cmsg carries the gso_size used to split them back apart.
|
||||
groSupported bool
|
||||
|
||||
// ecnRecvSupported is true when IP_RECVTOS / IPV6_RECVTCLASS was
|
||||
// successfully enabled — the kernel will deliver the outer IP-ECN of
|
||||
// each arriving datagram as a per-slot cmsg, and listenOutBatch passes
|
||||
// the parsed value to the EncReader callback for RFC 6040 combine.
|
||||
ecnRecvSupported bool
|
||||
}
|
||||
|
||||
func setReusePort(network, address string, c syscall.RawConn) error {
|
||||
@@ -70,9 +115,196 @@ func NewListener(l *slog.Logger, ip netip.Addr, port int, multi bool, batch int)
|
||||
}
|
||||
out.isV4 = af == unix.AF_INET
|
||||
|
||||
out.prepareWriteMessages(MaxWriteBatch)
|
||||
out.rawSend.msgs = out.writeMsgs
|
||||
out.rawSend.bind()
|
||||
|
||||
out.prepareGSO()
|
||||
// GRO delivers coalesced superpackets that need a cmsg to split back
|
||||
// into segments. The single-packet RX path uses ReadFromUDPAddrPort
|
||||
// and cannot see that cmsg, so only enable GRO for the batch path.
|
||||
if batch > 1 {
|
||||
out.prepareGRO()
|
||||
}
|
||||
// Best-effort: ask the kernel to deliver outer IP-ECN as ancillary data
|
||||
// on every recvmmsg slot so the decap side can apply RFC 6040 combine.
|
||||
// On older kernels these may not exist; failing here just means we get
|
||||
// 0 (Not-ECT) on every slot, which is the same as ecn_mode=disable.
|
||||
out.prepareECNRecv()
|
||||
|
||||
return out, nil
|
||||
}
|
||||
|
||||
// prepareWriteMessages allocates one mmsghdr/iovec/sockaddr/cmsg scratch
|
||||
// slot per sendmmsg entry. The iovec slab is sized to n so all entries'
|
||||
// iovecs share one allocation; per-entry fan-out is further capped at
|
||||
// maxGSOSegments. Hdr.Iov / Hdr.Iovlen / Hdr.Control / Hdr.Controllen are
|
||||
// wired per call since each entry can span a variable number of iovecs
|
||||
// and may or may not carry a cmsg.
|
||||
//
|
||||
// Per-mmsghdr cmsg layout. Each entry's slot of length writeCmsgSpace holds
|
||||
// up to two cmsg headers placed at fixed offsets:
|
||||
//
|
||||
// [0 .. writeCmsgSegSpace) UDP_SEGMENT (gso_size, uint16)
|
||||
// [writeCmsgSegSpace .. writeCmsgSpace) IP_TOS or IPV6_TCLASS (int32)
|
||||
//
|
||||
// Both headers are pre-filled once here; per-call we only rewrite the data
|
||||
// payload and toggle Hdr.Control / Hdr.Controllen to point at whichever
|
||||
// subset applies (none / segment-only / ecn-only / both).
|
||||
func (u *StdConn) prepareWriteMessages(n int) {
|
||||
u.writeMsgs = make([]rawMessage, n)
|
||||
u.writeIovs = make([]iovec, n)
|
||||
u.writeNames = make([][]byte, n)
|
||||
u.writeEntryEnd = make([]int, n)
|
||||
|
||||
u.writeCmsgSegSpace = unix.CmsgSpace(2)
|
||||
u.writeCmsgEcnSpace = unix.CmsgSpace(4)
|
||||
u.writeCmsgSpace = u.writeCmsgSegSpace + u.writeCmsgEcnSpace
|
||||
u.writeCmsg = make([]byte, n*u.writeCmsgSpace)
|
||||
|
||||
ecnLevel := int32(unix.IPPROTO_IP)
|
||||
ecnType := int32(unix.IP_TOS)
|
||||
if !u.isV4 {
|
||||
ecnLevel = unix.IPPROTO_IPV6
|
||||
ecnType = unix.IPV6_TCLASS
|
||||
}
|
||||
|
||||
for k := 0; k < n; k++ {
|
||||
base := k * u.writeCmsgSpace
|
||||
seg := (*unix.Cmsghdr)(unsafe.Pointer(&u.writeCmsg[base]))
|
||||
seg.Level = unix.SOL_UDP
|
||||
seg.Type = unix.UDP_SEGMENT
|
||||
setCmsgLen(seg, unix.CmsgLen(2))
|
||||
|
||||
ecn := (*unix.Cmsghdr)(unsafe.Pointer(&u.writeCmsg[base+u.writeCmsgSegSpace]))
|
||||
ecn.Level = ecnLevel
|
||||
ecn.Type = ecnType
|
||||
setCmsgLen(ecn, unix.CmsgLen(4))
|
||||
}
|
||||
|
||||
for i := range u.writeMsgs {
|
||||
u.writeNames[i] = make([]byte, unix.SizeofSockaddrInet6)
|
||||
u.writeMsgs[i].Hdr.Name = &u.writeNames[i][0]
|
||||
}
|
||||
}
|
||||
|
||||
// maxGSOSegments caps the per-sendmsg GSO fan-out. Linux kernels have
|
||||
// historically capped UDP_MAX_SEGMENTS at 64; newer kernels raise it to 128.
|
||||
// We stay one below 64 because the kernel's check is
|
||||
//
|
||||
// if (cork->length > cork->gso_size * UDP_MAX_SEGMENTS) return -EINVAL;
|
||||
//
|
||||
// and cork->length includes the 8-byte UDP header (udp_sendmsg passes
|
||||
// ulen = len + sizeof(udphdr) to ip_append_data). Packing exactly 64
|
||||
// same-size segments puts cork->length at gso_size*64 + 8, which is one
|
||||
// UDP-header over the bound and the kernel rejects the whole sendmmsg
|
||||
// with EINVAL. 63 leaves room for the header for any segSize >= 8.
|
||||
const maxGSOSegments = 63
|
||||
|
||||
// maxGSOBytes bounds the total payload per sendmsg() when UDP_SEGMENT is
|
||||
// set. The kernel stitches all iovecs into a single skb whose length the
|
||||
// UDP length field can represent, and also enforces sk_gso_max_size (which
|
||||
// on most devices is 65536). We use 65000 to leave headroom under the
|
||||
// 65535 UDP-length cap, avoiding EMSGSIZE on large TSO superpackets.
|
||||
const maxGSOBytes = 65000
|
||||
|
||||
// prepareGSO probes UDP_SEGMENT support and sets u.gsoSupported on success.
|
||||
// Best-effort; failure leaves it false.
|
||||
func (u *StdConn) prepareGSO() {
|
||||
var probeErr error
|
||||
if err := u.rawConn.Control(func(fd uintptr) {
|
||||
probeErr = unix.SetsockoptInt(int(fd), unix.IPPROTO_UDP, unix.UDP_SEGMENT, 0)
|
||||
}); err != nil {
|
||||
u.l.Info("udp: GSO disabled", "reason", "rawconn control failed", "error", err)
|
||||
recordCapability("udp.gso.enabled", false)
|
||||
return
|
||||
}
|
||||
if probeErr != nil {
|
||||
u.l.Info("udp: GSO disabled", "reason", "kernel rejected probe", "error", probeErr)
|
||||
recordCapability("udp.gso.enabled", false)
|
||||
return
|
||||
}
|
||||
u.gsoSupported = true
|
||||
u.l.Info("udp: GSO enabled")
|
||||
recordCapability("udp.gso.enabled", true)
|
||||
}
|
||||
|
||||
// udpGROBufferSize sizes the per-entry recvmmsg buffer when UDP_GRO is on.
|
||||
// The kernel stitches a run of same-flow datagrams into a single skb whose
|
||||
// length is bounded by sk_gso_max_size (typically 65535); anything larger
|
||||
// would be MSG_TRUNCed. We use the maximum representable UDP length so a
|
||||
// full superpacket always lands intact.
|
||||
const udpGROBufferSize = 65535
|
||||
|
||||
// udpGROCmsgPayload is the size of the UDP_GRO cmsg data delivered by the
|
||||
// kernel: a single int (gso_size in bytes). See udp_cmsg_recv() in
|
||||
// net/ipv4/udp.c.
|
||||
const udpGROCmsgPayload = 4
|
||||
|
||||
// prepareGRO turns on UDP_GRO so the kernel coalesces consecutive same-flow
|
||||
// datagrams into one recvmmsg entry, with a cmsg carrying the gso_size used
|
||||
// to split them back apart on the application side.
|
||||
func (u *StdConn) prepareGRO() {
|
||||
var probeErr error
|
||||
if err := u.rawConn.Control(func(fd uintptr) {
|
||||
probeErr = unix.SetsockoptInt(int(fd), unix.IPPROTO_UDP, unix.UDP_GRO, 1)
|
||||
}); err != nil {
|
||||
u.l.Info("udp: GRO disabled", "reason", "rawconn control failed", "error", err)
|
||||
recordCapability("udp.gro.enabled", false)
|
||||
return
|
||||
}
|
||||
if probeErr != nil {
|
||||
u.l.Info("udp: GRO disabled", "reason", "kernel rejected probe", "error", probeErr)
|
||||
recordCapability("udp.gro.enabled", false)
|
||||
return
|
||||
}
|
||||
u.groSupported = true
|
||||
u.l.Info("udp: GRO enabled")
|
||||
recordCapability("udp.gro.enabled", true)
|
||||
}
|
||||
|
||||
// prepareECNRecv turns on IP_RECVTOS / IPV6_RECVTCLASS so the outer IP-ECN
|
||||
// field of each arriving datagram is delivered as ancillary data alongside
|
||||
// the payload. listenOutBatch reads it via parseRecvCmsg and passes the
|
||||
// codepoint through the EncReader for RFC 6040 combine on the decap side.
|
||||
// Best-effort: we keep going on failure.
|
||||
func (u *StdConn) prepareECNRecv() {
|
||||
var probeErr error
|
||||
if err := u.rawConn.Control(func(fd uintptr) {
|
||||
if u.isV4 {
|
||||
probeErr = unix.SetsockoptInt(int(fd), unix.IPPROTO_IP, unix.IP_RECVTOS, 1)
|
||||
} else {
|
||||
probeErr = unix.SetsockoptInt(int(fd), unix.IPPROTO_IPV6, unix.IPV6_RECVTCLASS, 1)
|
||||
}
|
||||
}); err != nil {
|
||||
u.l.Info("udp: outer-ECN RX disabled", "reason", "rawconn control failed", "error", err)
|
||||
recordCapability("udp.ecn_rx.enabled", false)
|
||||
return
|
||||
}
|
||||
if probeErr != nil {
|
||||
u.l.Info("udp: outer-ECN RX disabled", "reason", "kernel rejected probe", "error", probeErr)
|
||||
recordCapability("udp.ecn_rx.enabled", false)
|
||||
return
|
||||
}
|
||||
u.ecnRecvSupported = true
|
||||
u.l.Info("udp: outer-ECN RX enabled")
|
||||
recordCapability("udp.ecn_rx.enabled", true)
|
||||
}
|
||||
|
||||
// recordCapability registers (or updates) a boolean gauge for one of the
|
||||
// kernel-feature probes. Gauges go to 1 when the feature is enabled, 0 when
|
||||
// it is not — dashboards can show degraded state on partially-supported
|
||||
// kernels at a glance. Calling repeatedly with the same name updates the
|
||||
// existing gauge rather than registering a duplicate.
|
||||
func recordCapability(name string, enabled bool) {
|
||||
g := metrics.GetOrRegisterGauge(name, nil)
|
||||
if enabled {
|
||||
g.Update(1)
|
||||
} else {
|
||||
g.Update(0)
|
||||
}
|
||||
}
|
||||
|
||||
func (u *StdConn) SupportsMultipleReaders() bool {
|
||||
return true
|
||||
}
|
||||
@@ -171,7 +403,7 @@ func recvmmsg(fd uintptr, msgs []rawMessage) (int, bool, error) {
|
||||
return int(n), true, nil
|
||||
}
|
||||
|
||||
func (u *StdConn) listenOutSingle(r EncReader) error {
|
||||
func (u *StdConn) listenOutSingle(r EncReader, flush func()) error {
|
||||
var err error
|
||||
var n int
|
||||
var from netip.AddrPort
|
||||
@@ -183,16 +415,42 @@ func (u *StdConn) listenOutSingle(r EncReader) error {
|
||||
return err
|
||||
}
|
||||
from = netip.AddrPortFrom(from.Addr().Unmap(), from.Port())
|
||||
r(from, buffer[:n])
|
||||
// listenOutSingle uses ReadFromUDPAddrPort which discards cmsgs,
|
||||
// so the outer ECN field is not visible on this path. Zero RxMeta
|
||||
// (Not-ECT) means RFC 6040 combine is a no-op.
|
||||
r(from, buffer[:n], RxMeta{})
|
||||
flush()
|
||||
}
|
||||
}
|
||||
|
||||
func (u *StdConn) listenOutBatch(r EncReader) error {
|
||||
func getFrom(names [][]byte, i int, isV4 bool) netip.AddrPort {
|
||||
var ip netip.Addr
|
||||
// Its ok to skip the ok check here, the slicing is the only error that can occur and it will panic
|
||||
if isV4 {
|
||||
ip, _ = netip.AddrFromSlice(names[i][4:8])
|
||||
} else {
|
||||
ip, _ = netip.AddrFromSlice(names[i][8:24])
|
||||
}
|
||||
return netip.AddrPortFrom(ip.Unmap(), binary.BigEndian.Uint16(names[i][2:4]))
|
||||
}
|
||||
|
||||
func (u *StdConn) listenOutBatch(r EncReader, flush func()) error {
|
||||
var n int
|
||||
var operr error
|
||||
|
||||
msgs, buffers, names := u.PrepareRawMessages(u.batch)
|
||||
bufSize := MTU
|
||||
cmsgSpace := 0
|
||||
if u.groSupported {
|
||||
bufSize = udpGROBufferSize
|
||||
cmsgSpace = unix.CmsgSpace(udpGROCmsgPayload)
|
||||
}
|
||||
if u.ecnRecvSupported {
|
||||
// IP_TOS arrives as 1 byte; IPV6_TCLASS arrives as a 4-byte int.
|
||||
// Reserve enough for the wider of the two so the same buffer fits
|
||||
// either family alongside any UDP_GRO cmsg.
|
||||
cmsgSpace += unix.CmsgSpace(4)
|
||||
}
|
||||
msgs, buffers, names, _ := u.PrepareRawMessages(u.batch, bufSize, cmsgSpace)
|
||||
|
||||
//reader needs to capture variables from this function, since it's used as a lambda with rawConn.Read
|
||||
//defining it outside the loop so it gets re-used
|
||||
@@ -202,6 +460,11 @@ func (u *StdConn) listenOutBatch(r EncReader) error {
|
||||
}
|
||||
|
||||
for {
|
||||
if cmsgSpace > 0 {
|
||||
for i := range msgs {
|
||||
setMsgControllen(&msgs[i].Hdr, cmsgSpace)
|
||||
}
|
||||
}
|
||||
err := u.rawConn.Read(reader)
|
||||
if err != nil {
|
||||
return err
|
||||
@@ -211,22 +474,89 @@ func (u *StdConn) listenOutBatch(r EncReader) error {
|
||||
}
|
||||
|
||||
for i := 0; i < n; i++ {
|
||||
// Its ok to skip the ok check here, the slicing is the only error that can occur and it will panic
|
||||
if u.isV4 {
|
||||
ip, _ = netip.AddrFromSlice(names[i][4:8])
|
||||
} else {
|
||||
ip, _ = netip.AddrFromSlice(names[i][8:24])
|
||||
from := getFrom(names, i, u.isV4)
|
||||
payload := buffers[i][:msgs[i].Len]
|
||||
|
||||
segSize := 0
|
||||
outerECN := byte(0)
|
||||
if cmsgSpace > 0 {
|
||||
segSize, outerECN = parseRecvCmsg(&msgs[i].Hdr, u.groSupported, u.ecnRecvSupported, u.isV4)
|
||||
}
|
||||
|
||||
if segSize <= 0 || segSize >= len(payload) {
|
||||
r(from, payload, RxMeta{OuterECN: outerECN})
|
||||
} else {
|
||||
for off := 0; off < len(payload); off += segSize {
|
||||
end := off + segSize
|
||||
if end > len(payload) {
|
||||
end = len(payload)
|
||||
}
|
||||
seg := payload[off:end]
|
||||
r(from, seg, RxMeta{OuterECN: outerECN})
|
||||
}
|
||||
}
|
||||
r(netip.AddrPortFrom(ip.Unmap(), binary.BigEndian.Uint16(names[i][2:4])), buffers[i][:msgs[i].Len])
|
||||
}
|
||||
|
||||
flush()
|
||||
}
|
||||
}
|
||||
|
||||
func (u *StdConn) ListenOut(r EncReader) error {
|
||||
// headerCounter returns the big-endian uint64 message counter at bytes
|
||||
// [8:16] of a nebula packet, or 0 if the buffer is too short.
|
||||
func headerCounter(buf []byte) uint64 {
|
||||
if len(buf) < 16 {
|
||||
return 0
|
||||
}
|
||||
return binary.BigEndian.Uint64(buf[8:16])
|
||||
}
|
||||
|
||||
// parseRecvCmsg walks the per-slot ancillary buffer once and extracts up to
|
||||
// two values of interest in a single pass: the UDP_GRO gso_size (when
|
||||
// wantGRO is true) and the outer IP-level ECN codepoint stamped on the
|
||||
// carrier (when wantECN is true). Returns zeros for whichever field is not
|
||||
// requested or not present. isV4 selects between IP_TOS (1-byte) and
|
||||
// IPV6_TCLASS (4-byte int) cmsg payloads.
|
||||
func parseRecvCmsg(hdr *msghdr, wantGRO, wantECN bool, isV4 bool) (gso int, ecn byte) {
|
||||
controllen := int(hdr.Controllen)
|
||||
if controllen < unix.SizeofCmsghdr || hdr.Control == nil {
|
||||
return 0, 0
|
||||
}
|
||||
ctrl := unsafe.Slice(hdr.Control, controllen)
|
||||
off := 0
|
||||
for off+unix.SizeofCmsghdr <= len(ctrl) {
|
||||
ch := (*unix.Cmsghdr)(unsafe.Pointer(&ctrl[off]))
|
||||
clen := int(ch.Len)
|
||||
if clen < unix.SizeofCmsghdr || off+clen > len(ctrl) {
|
||||
return gso, ecn
|
||||
}
|
||||
dataOff := off + unix.CmsgLen(0)
|
||||
switch {
|
||||
case wantGRO && ch.Level == unix.SOL_UDP && ch.Type == unix.UDP_GRO:
|
||||
if dataOff+udpGROCmsgPayload <= len(ctrl) {
|
||||
gso = int(int32(binary.NativeEndian.Uint32(ctrl[dataOff : dataOff+udpGROCmsgPayload])))
|
||||
}
|
||||
case wantECN && isV4 && ch.Level == unix.IPPROTO_IP && ch.Type == unix.IP_TOS:
|
||||
// IP_TOS arrives as a single byte; only the low 2 bits are ECN.
|
||||
if dataOff+1 <= len(ctrl) {
|
||||
ecn = ctrl[dataOff] & 0x03
|
||||
}
|
||||
case wantECN && !isV4 && ch.Level == unix.IPPROTO_IPV6 && ch.Type == unix.IPV6_TCLASS:
|
||||
// IPV6_TCLASS arrives as a 4-byte int; ECN is the low 2 bits.
|
||||
if dataOff+4 <= len(ctrl) {
|
||||
ecn = byte(binary.NativeEndian.Uint32(ctrl[dataOff:dataOff+4])) & 0x03
|
||||
}
|
||||
}
|
||||
// Advance by the aligned cmsg space.
|
||||
off += unix.CmsgSpace(clen - unix.CmsgLen(0))
|
||||
}
|
||||
return gso, ecn
|
||||
}
|
||||
|
||||
func (u *StdConn) ListenOut(r EncReader, flush func()) error {
|
||||
if u.batch == 1 {
|
||||
return u.listenOutSingle(r)
|
||||
return u.listenOutSingle(r, flush)
|
||||
} else {
|
||||
return u.listenOutBatch(r)
|
||||
return u.listenOutBatch(r, flush)
|
||||
}
|
||||
}
|
||||
|
||||
@@ -235,6 +565,255 @@ func (u *StdConn) WriteTo(b []byte, ip netip.AddrPort) error {
|
||||
return err
|
||||
}
|
||||
|
||||
// WriteBatch sends bufs via sendmmsg(2) using the preallocated scratch on
|
||||
// StdConn. Consecutive packets to the same destination with matching segment
|
||||
// sizes (all but possibly the last) are coalesced into a single mmsghdr entry
|
||||
// carrying a UDP_SEGMENT cmsg, so one syscall can mix runs of GSO superpackets
|
||||
// with plain one-off datagrams. Without GSO support every packet is its own
|
||||
// entry, matching the prior behaviour.
|
||||
//
|
||||
// Chunks larger than the scratch are processed across multiple syscalls. If
|
||||
// sendmmsg returns an error AND zero entries went out we fall back to
|
||||
// per-packet WriteTo for that chunk so the caller still gets best-effort
|
||||
// delivery; on a partial-success error we just replay the remainder.
|
||||
func (u *StdConn) WriteBatch(bufs [][]byte, addrs []netip.AddrPort, ecns []byte) error {
|
||||
if len(bufs) != len(addrs) {
|
||||
return fmt.Errorf("WriteBatch: len(bufs)=%d != len(addrs)=%d", len(bufs), len(addrs))
|
||||
}
|
||||
if ecns != nil && len(ecns) != len(bufs) {
|
||||
return fmt.Errorf("WriteBatch: len(ecns)=%d != len(bufs)=%d", len(ecns), len(bufs))
|
||||
}
|
||||
|
||||
// Callers deliver same-destination packets contiguously and in counter
|
||||
// order, so we run the GSO planner directly without a pre-sort. A
|
||||
// sorting pass measurably hurt throughput in microbenchmarks while
|
||||
// providing no observed reordering benefit.
|
||||
|
||||
i := 0
|
||||
for i < len(bufs) {
|
||||
baseI := i
|
||||
entry := 0
|
||||
iovIdx := 0
|
||||
for entry < len(u.writeMsgs) && i < len(bufs) {
|
||||
iovBudget := len(u.writeIovs) - iovIdx
|
||||
if iovBudget < 1 {
|
||||
break
|
||||
}
|
||||
runLen, segSize := u.planRun(bufs, addrs, ecns, i, iovBudget)
|
||||
if runLen == 0 {
|
||||
break
|
||||
}
|
||||
|
||||
for k := 0; k < runLen; k++ {
|
||||
b := bufs[i+k]
|
||||
if len(b) == 0 {
|
||||
u.writeIovs[iovIdx+k].Base = nil
|
||||
setIovLen(&u.writeIovs[iovIdx+k], 0)
|
||||
} else {
|
||||
u.writeIovs[iovIdx+k].Base = &b[0]
|
||||
setIovLen(&u.writeIovs[iovIdx+k], len(b))
|
||||
}
|
||||
}
|
||||
|
||||
nlen, err := writeSockaddr(u.writeNames[entry], addrs[i], u.isV4)
|
||||
if err != nil {
|
||||
return err
|
||||
}
|
||||
|
||||
hdr := &u.writeMsgs[entry].Hdr
|
||||
hdr.Iov = &u.writeIovs[iovIdx]
|
||||
setMsgIovlen(hdr, runLen)
|
||||
hdr.Namelen = uint32(nlen)
|
||||
|
||||
var ecn byte
|
||||
if ecns != nil {
|
||||
ecn = ecns[i]
|
||||
}
|
||||
u.writeEntryCmsg(entry, runLen, segSize, ecn)
|
||||
|
||||
i += runLen
|
||||
iovIdx += runLen
|
||||
u.writeEntryEnd[entry] = i
|
||||
entry++
|
||||
}
|
||||
|
||||
if entry == 0 {
|
||||
return fmt.Errorf("sendmmsg: no progress")
|
||||
}
|
||||
|
||||
sent, serr := u.sendmmsg(entry)
|
||||
if serr != nil && sent <= 0 {
|
||||
// Nothing went out for this chunk; fall back to WriteTo for each
|
||||
// packet that was queued this iteration. We only enter this path
|
||||
// when sendmmsg returned an error AND zero entries succeeded —
|
||||
// otherwise the partial-success advance below replays only the
|
||||
// remainder, avoiding duplicates of already-sent packets.
|
||||
//
|
||||
// sent=-1 from sendmmsg means message 0 itself failed (partial
|
||||
// success returns the count instead), so log entry 0's parameters
|
||||
// — that's the entry the kernel rejected.
|
||||
hdr0 := &u.writeMsgs[0].Hdr
|
||||
runLen0 := u.writeEntryEnd[0] - baseI
|
||||
seg0 := len(bufs[baseI])
|
||||
ecn0 := byte(0)
|
||||
if ecns != nil {
|
||||
ecn0 = ecns[baseI]
|
||||
}
|
||||
u.l.Warn("sendmmsg had problem",
|
||||
"sent", sent, "err", serr,
|
||||
"entries", entry,
|
||||
"entry0_runLen", runLen0,
|
||||
"entry0_segSize", seg0,
|
||||
"entry0_iovlen", hdr0.Iovlen,
|
||||
"entry0_controllen", hdr0.Controllen,
|
||||
"entry0_namelen", hdr0.Namelen,
|
||||
"entry0_ecn", ecn0,
|
||||
"entry0_dst", addrs[baseI],
|
||||
"isV4", u.isV4,
|
||||
"gso", u.gsoSupported,
|
||||
"gro", u.groSupported,
|
||||
)
|
||||
for k := baseI; k < i; k++ {
|
||||
if werr := u.WriteTo(bufs[k], addrs[k]); werr != nil {
|
||||
return werr
|
||||
}
|
||||
}
|
||||
continue
|
||||
}
|
||||
if sent == 0 {
|
||||
return fmt.Errorf("sendmmsg made no progress")
|
||||
}
|
||||
// Rewind i to the end of the last successfully sent entry. For a
|
||||
// full-success send this leaves i unchanged; for a partial send it
|
||||
// replays the remainder on the next outer-loop iteration.
|
||||
i = u.writeEntryEnd[sent-1]
|
||||
}
|
||||
return nil
|
||||
}
|
||||
|
||||
// planRun groups consecutive packets starting at `start` that can be sent as
|
||||
// a single UDP GSO superpacket (one sendmmsg entry with UDP_SEGMENT cmsg).
|
||||
// A run of length 1 means the entry carries no UDP_SEGMENT cmsg and the
|
||||
// kernel treats it as a plain datagram. Returns the run length and the
|
||||
// per-segment size (which equals len(bufs[start])). Without GSO support
|
||||
// every call returns runLen=1. Outer ECN (when ecns != nil) is also a run
|
||||
// boundary — the kernel stamps one outer codepoint per sendmsg entry, so
|
||||
// mixing values inside a run would lose information.
|
||||
func (u *StdConn) planRun(bufs [][]byte, addrs []netip.AddrPort, ecns []byte, start, iovBudget int) (int, int) {
|
||||
if start >= len(bufs) || iovBudget < 1 {
|
||||
return 0, 0
|
||||
}
|
||||
segSize := len(bufs[start])
|
||||
if !u.gsoSupported || segSize == 0 || segSize > maxGSOBytes {
|
||||
return 1, segSize
|
||||
}
|
||||
dst := addrs[start]
|
||||
var ecn byte
|
||||
if ecns != nil {
|
||||
ecn = ecns[start]
|
||||
}
|
||||
maxLen := maxGSOSegments
|
||||
if iovBudget < maxLen {
|
||||
maxLen = iovBudget
|
||||
}
|
||||
runLen := 1
|
||||
total := segSize
|
||||
for runLen < maxLen && start+runLen < len(bufs) {
|
||||
nextLen := len(bufs[start+runLen])
|
||||
if nextLen == 0 || nextLen > segSize {
|
||||
break
|
||||
}
|
||||
if addrs[start+runLen] != dst {
|
||||
break
|
||||
}
|
||||
if ecns != nil && ecns[start+runLen] != ecn {
|
||||
break
|
||||
}
|
||||
if total+nextLen > maxGSOBytes {
|
||||
break
|
||||
}
|
||||
total += nextLen
|
||||
runLen++
|
||||
if nextLen < segSize {
|
||||
// A short packet must be the last in the run.
|
||||
break
|
||||
}
|
||||
}
|
||||
return runLen, segSize
|
||||
}
|
||||
|
||||
// writeEntryCmsg sets up the per-mmsghdr Hdr.Control / Hdr.Controllen for one
|
||||
// entry. It writes the UDP_SEGMENT payload when runLen >= 2 and the
|
||||
// IP_TOS/IPV6_TCLASS payload when ecn != 0, then points hdr.Control at the
|
||||
// smallest contiguous span that covers whichever cmsg(s) actually apply.
|
||||
func (u *StdConn) writeEntryCmsg(entry, runLen, segSize int, ecn byte) {
|
||||
hdr := &u.writeMsgs[entry].Hdr
|
||||
useSeg := runLen >= 2
|
||||
useEcn := ecn != 0
|
||||
base := entry * u.writeCmsgSpace
|
||||
|
||||
if useSeg {
|
||||
dataOff := base + unix.CmsgLen(0)
|
||||
binary.NativeEndian.PutUint16(u.writeCmsg[dataOff:dataOff+2], uint16(segSize))
|
||||
}
|
||||
if useEcn {
|
||||
dataOff := base + u.writeCmsgSegSpace + unix.CmsgLen(0)
|
||||
binary.NativeEndian.PutUint32(u.writeCmsg[dataOff:dataOff+4], uint32(ecn))
|
||||
}
|
||||
|
||||
switch {
|
||||
case useSeg && useEcn:
|
||||
hdr.Control = &u.writeCmsg[base]
|
||||
setMsgControllen(hdr, u.writeCmsgSpace)
|
||||
case useSeg:
|
||||
hdr.Control = &u.writeCmsg[base]
|
||||
setMsgControllen(hdr, u.writeCmsgSegSpace)
|
||||
case useEcn:
|
||||
hdr.Control = &u.writeCmsg[base+u.writeCmsgSegSpace]
|
||||
setMsgControllen(hdr, u.writeCmsgEcnSpace)
|
||||
default:
|
||||
hdr.Control = nil
|
||||
setMsgControllen(hdr, 0)
|
||||
}
|
||||
}
|
||||
|
||||
// sendmmsg issues sendmmsg(2) over u.rawConn against the first n entries
|
||||
// of u.writeMsgs. Routes through u.rawSend so the per-call kernel callback
|
||||
// stays alloc-free.
|
||||
func (u *StdConn) sendmmsg(n int) (int, error) {
|
||||
return u.rawSend.send(u.rawConn, n)
|
||||
}
|
||||
|
||||
// writeSockaddr encodes addr into buf (which must be at least
|
||||
// SizeofSockaddrInet6 bytes). Returns the number of bytes used. If isV4 is
|
||||
// true and addr is not a v4 (or v4-in-v6) address, returns an error.
|
||||
func writeSockaddr(buf []byte, addr netip.AddrPort, isV4 bool) (int, error) {
|
||||
ap := addr.Addr().Unmap()
|
||||
if isV4 {
|
||||
if !ap.Is4() {
|
||||
return 0, ErrInvalidIPv6RemoteForSocket
|
||||
}
|
||||
// struct sockaddr_in: { sa_family_t(2), in_port_t(2, BE), in_addr(4), zero(8) }
|
||||
// sa_family is host endian.
|
||||
binary.NativeEndian.PutUint16(buf[0:2], unix.AF_INET)
|
||||
binary.BigEndian.PutUint16(buf[2:4], addr.Port())
|
||||
ip4 := ap.As4()
|
||||
copy(buf[4:8], ip4[:])
|
||||
for j := 8; j < 16; j++ {
|
||||
buf[j] = 0
|
||||
}
|
||||
return unix.SizeofSockaddrInet4, nil
|
||||
}
|
||||
// struct sockaddr_in6: { sa_family_t(2), in_port_t(2, BE), flowinfo(4), in6_addr(16), scope_id(4) }
|
||||
binary.NativeEndian.PutUint16(buf[0:2], unix.AF_INET6)
|
||||
binary.BigEndian.PutUint16(buf[2:4], addr.Port())
|
||||
binary.NativeEndian.PutUint32(buf[4:8], 0)
|
||||
ip6 := addr.Addr().As16()
|
||||
copy(buf[8:24], ip6[:])
|
||||
binary.NativeEndian.PutUint32(buf[24:28], 0)
|
||||
return unix.SizeofSockaddrInet6, nil
|
||||
}
|
||||
|
||||
func (u *StdConn) ReloadConfig(c *config.C) {
|
||||
b := c.GetInt("listen.read_buffer", 0)
|
||||
if b > 0 {
|
||||
|
||||
+29
-3
@@ -30,13 +30,18 @@ type rawMessage struct {
|
||||
Len uint32
|
||||
}
|
||||
|
||||
func (u *StdConn) PrepareRawMessages(n int) ([]rawMessage, [][]byte, [][]byte) {
|
||||
func (u *StdConn) PrepareRawMessages(n, bufSize, cmsgSpace int) ([]rawMessage, [][]byte, [][]byte, []byte) {
|
||||
msgs := make([]rawMessage, n)
|
||||
buffers := make([][]byte, n)
|
||||
names := make([][]byte, n)
|
||||
|
||||
var cmsgs []byte
|
||||
if cmsgSpace > 0 {
|
||||
cmsgs = make([]byte, n*cmsgSpace)
|
||||
}
|
||||
|
||||
for i := range msgs {
|
||||
buffers[i] = make([]byte, MTU)
|
||||
buffers[i] = make([]byte, bufSize)
|
||||
names[i] = make([]byte, unix.SizeofSockaddrInet6)
|
||||
|
||||
vs := []iovec{
|
||||
@@ -48,7 +53,28 @@ func (u *StdConn) PrepareRawMessages(n int) ([]rawMessage, [][]byte, [][]byte) {
|
||||
|
||||
msgs[i].Hdr.Name = &names[i][0]
|
||||
msgs[i].Hdr.Namelen = uint32(len(names[i]))
|
||||
|
||||
if cmsgSpace > 0 {
|
||||
msgs[i].Hdr.Control = &cmsgs[i*cmsgSpace]
|
||||
msgs[i].Hdr.Controllen = uint32(cmsgSpace)
|
||||
}
|
||||
}
|
||||
|
||||
return msgs, buffers, names
|
||||
return msgs, buffers, names, cmsgs
|
||||
}
|
||||
|
||||
func setIovLen(v *iovec, n int) {
|
||||
v.Len = uint32(n)
|
||||
}
|
||||
|
||||
func setMsgIovlen(m *msghdr, n int) {
|
||||
m.Iovlen = uint32(n)
|
||||
}
|
||||
|
||||
func setMsgControllen(m *msghdr, n int) {
|
||||
m.Controllen = uint32(n)
|
||||
}
|
||||
|
||||
func setCmsgLen(h *unix.Cmsghdr, n int) {
|
||||
h.Len = uint32(n)
|
||||
}
|
||||
|
||||
+29
-3
@@ -33,13 +33,18 @@ type rawMessage struct {
|
||||
Pad0 [4]byte
|
||||
}
|
||||
|
||||
func (u *StdConn) PrepareRawMessages(n int) ([]rawMessage, [][]byte, [][]byte) {
|
||||
func (u *StdConn) PrepareRawMessages(n, bufSize, cmsgSpace int) ([]rawMessage, [][]byte, [][]byte, []byte) {
|
||||
msgs := make([]rawMessage, n)
|
||||
buffers := make([][]byte, n)
|
||||
names := make([][]byte, n)
|
||||
|
||||
var cmsgs []byte
|
||||
if cmsgSpace > 0 {
|
||||
cmsgs = make([]byte, n*cmsgSpace)
|
||||
}
|
||||
|
||||
for i := range msgs {
|
||||
buffers[i] = make([]byte, MTU)
|
||||
buffers[i] = make([]byte, bufSize)
|
||||
names[i] = make([]byte, unix.SizeofSockaddrInet6)
|
||||
|
||||
vs := []iovec{
|
||||
@@ -51,7 +56,28 @@ func (u *StdConn) PrepareRawMessages(n int) ([]rawMessage, [][]byte, [][]byte) {
|
||||
|
||||
msgs[i].Hdr.Name = &names[i][0]
|
||||
msgs[i].Hdr.Namelen = uint32(len(names[i]))
|
||||
|
||||
if cmsgSpace > 0 {
|
||||
msgs[i].Hdr.Control = &cmsgs[i*cmsgSpace]
|
||||
msgs[i].Hdr.Controllen = uint64(cmsgSpace)
|
||||
}
|
||||
}
|
||||
|
||||
return msgs, buffers, names
|
||||
return msgs, buffers, names, cmsgs
|
||||
}
|
||||
|
||||
func setIovLen(v *iovec, n int) {
|
||||
v.Len = uint64(n)
|
||||
}
|
||||
|
||||
func setMsgIovlen(m *msghdr, n int) {
|
||||
m.Iovlen = uint64(n)
|
||||
}
|
||||
|
||||
func setMsgControllen(m *msghdr, n int) {
|
||||
m.Controllen = uint64(n)
|
||||
}
|
||||
|
||||
func setCmsgLen(h *unix.Cmsghdr, n int) {
|
||||
h.Len = uint64(n)
|
||||
}
|
||||
|
||||
+12
-2
@@ -140,7 +140,7 @@ func (u *RIOConn) bind(l *slog.Logger, sa windows.Sockaddr) error {
|
||||
return nil
|
||||
}
|
||||
|
||||
func (u *RIOConn) ListenOut(r EncReader) error {
|
||||
func (u *RIOConn) ListenOut(r EncReader, flush func()) error {
|
||||
buffer := make([]byte, MTU)
|
||||
|
||||
var lastRecvErr time.Time
|
||||
@@ -161,7 +161,8 @@ func (u *RIOConn) ListenOut(r EncReader) error {
|
||||
continue
|
||||
}
|
||||
|
||||
r(netip.AddrPortFrom(netip.AddrFrom16(rua.Addr).Unmap(), (rua.Port>>8)|((rua.Port&0xff)<<8)), buffer[:n])
|
||||
r(netip.AddrPortFrom(netip.AddrFrom16(rua.Addr).Unmap(), (rua.Port>>8)|((rua.Port&0xff)<<8)), buffer[:n], RxMeta{})
|
||||
flush()
|
||||
}
|
||||
}
|
||||
|
||||
@@ -316,6 +317,15 @@ func (u *RIOConn) WriteTo(buf []byte, ip netip.AddrPort) error {
|
||||
return winrio.SendEx(u.rq, dataBuffer, 1, nil, addressBuffer, nil, nil, 0, 0)
|
||||
}
|
||||
|
||||
func (u *RIOConn) WriteBatch(bufs [][]byte, addrs []netip.AddrPort, _ []byte) error {
|
||||
for i, b := range bufs {
|
||||
if err := u.WriteTo(b, addrs[i]); err != nil {
|
||||
return err
|
||||
}
|
||||
}
|
||||
return nil
|
||||
}
|
||||
|
||||
func (u *RIOConn) LocalAddr() (netip.AddrPort, error) {
|
||||
sa, err := windows.Getsockname(u.sock)
|
||||
if err != nil {
|
||||
|
||||
+11
-2
@@ -157,15 +157,24 @@ func (u *TesterConn) WriteTo(b []byte, addr netip.AddrPort) error {
|
||||
return nil
|
||||
}
|
||||
}
|
||||
func (u *TesterConn) WriteBatch(bufs [][]byte, addrs []netip.AddrPort, _ []byte) error {
|
||||
for i, b := range bufs {
|
||||
if err := u.WriteTo(b, addrs[i]); err != nil {
|
||||
return err
|
||||
}
|
||||
}
|
||||
return nil
|
||||
}
|
||||
|
||||
func (u *TesterConn) ListenOut(r EncReader) error {
|
||||
func (u *TesterConn) ListenOut(r EncReader, flush func()) error {
|
||||
for {
|
||||
select {
|
||||
case <-u.done:
|
||||
return os.ErrClosed
|
||||
case p := <-u.RxPackets:
|
||||
r(p.From, p.Data)
|
||||
r(p.From, p.Data, RxMeta{})
|
||||
p.Release()
|
||||
flush()
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
@@ -0,0 +1,23 @@
|
||||
//go:build linux && !android && !e2e_testing
|
||||
|
||||
package util
|
||||
|
||||
import (
|
||||
"runtime"
|
||||
|
||||
"golang.org/x/sys/unix"
|
||||
)
|
||||
|
||||
// PinThreadToCPU restricts the calling OS thread to the given CPU via
|
||||
// sched_setaffinity(2). Combined with runtime.LockOSThread on the
|
||||
// goroutine, this prevents the kernel from migrating us across CPUs and
|
||||
// in turn keeps every sendmmsg from this goroutine going through the
|
||||
// same XPS-selected TX ring, eliminating the wire-side reorder that
|
||||
// otherwise fragments one nebula flow across multiple rings.
|
||||
func PinThreadToCPU(cpu int) error {
|
||||
runtime.LockOSThread()
|
||||
var set unix.CPUSet
|
||||
set.Zero()
|
||||
set.Set(cpu)
|
||||
return unix.SchedSetaffinity(0, &set)
|
||||
}
|
||||
@@ -0,0 +1,11 @@
|
||||
//go:build !linux || android || e2e_testing
|
||||
|
||||
package util
|
||||
|
||||
// PinThreadToCPU is a no-op outside Linux: only Linux exposes a stable
|
||||
// per-thread CPU affinity API and only Linux has XPS-driven TX ring
|
||||
// selection in the first place. On every other platform there's nothing
|
||||
// to fix here.
|
||||
func PinThreadToCPU(_ int) error {
|
||||
return nil
|
||||
}
|
||||
Reference in New Issue
Block a user