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Copy pathstack_go_engine.go
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Copy pathstack_go_engine.go
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1078 lines (1024 loc) · 29.5 KB
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package tun
import (
"errors"
"hash/maphash"
"math"
"net"
"net/netip"
"os"
"runtime"
"slices"
"sync"
"sync/atomic"
"time"
tcpip "github.com/sagernet/sing-tun/gtcpip"
"github.com/sagernet/sing-tun/gtcpip/checksum"
"github.com/sagernet/sing-tun/gtcpip/header"
"github.com/sagernet/sing/common"
"github.com/sagernet/sing/common/buf"
E "github.com/sagernet/sing/common/exceptions"
N "github.com/sagernet/sing/common/network"
)
const (
goWaitIndefinite = time.Duration(-1)
goShutdownBudget = 250 * time.Millisecond
goEngineLoadWindow = 100 * time.Millisecond
goEngineBusyPercent = 70
)
const (
goMessageStackClose uint8 = iota
goMessageStackReset
goMessageConnDial
goMessageConnEngage
goMessageConnClose
goMessageConnReadShut
goMessageConnRetransmit
goMessageConnWindow
goMessageConnTransmit
goMessageConnBlocked
goMessageConnDropped
goMessageConnPacing
goMessageConnThrottle
goMessageConnSplice
goMessageConnKeepalive
goMessageConnTransmitted
goMessagePacketSplice
goMessagePacketClose
goMessageUDPOpen
goMessageUDPClose
goMessageListenOpen
goMessageListenClose
goMessageInject
)
const goInjectQueueLimit = 512
type goInjectedFrame struct {
next *goInjectedFrame
buffer *buf.Buffer
meta ForwardFrameMeta
}
type goInjectStack struct {
head atomic.Pointer[goInjectedFrame]
}
func (s *goInjectStack) push(frame *goInjectedFrame) {
for {
head := s.head.Load()
frame.next = head
if s.head.CompareAndSwap(head, frame) {
return
}
}
}
func (s *goInjectStack) popAll() *goInjectedFrame {
head := s.head.Swap(nil)
var ordered *goInjectedFrame
for head != nil {
next := head.next
head.next = ordered
ordered = head
head = next
}
return ordered
}
type goMessage struct {
next *goMessage
conn *GoConn
packet *GoPacketConn
socket *GoUDPConn
listener *GoListener
queued atomic.Bool
kind uint8
}
type goControlStack struct {
head atomic.Pointer[goMessage]
}
func (s *goControlStack) push(message *goMessage) {
for {
head := s.head.Load()
message.next = head
if s.head.CompareAndSwap(head, message) {
return
}
}
}
const (
goEngineRunning uint32 = iota
goEngineParked
goEngineExited
)
type goEngine struct {
stack *Go
platformIO goPlatformIO
dispatcher *ForwardDispatcher
dispatchStage *ForwardStage
wheel goWheel
controlStack goControlStack
injectStack goInjectStack
injectCount atomic.Int32
injectMessage goMessage
droppedInjectFrames goDropCounter
engineState atomic.Uint32
exitReapPending atomic.Bool
exitReapAccess sync.Mutex
coarseTime atomic.Int64
epoch time.Time
frames []goFrame
closeMessage goMessage
resetMessage goMessage
delayedAckTickNode goWheelNode
reassemblyTickNode goWheelNode
dispatchTickNode goWheelNode
reassemblyEntries []goReassemblyEntry
udpUserData goUDPUserData
udpNat *UDPNat
transmitFrame [1][]byte
exitSignal chan struct{}
wokeHandlerThisBurst bool
tunPending bool
transmitWritable []*goBlockedWriters
readBuffersHeld bool
idleSince int64
parkedNanos int64
loadWindowStart int64
ackCoalescing bool
inlineTransmitBudget int
socketEvents []goSocketEvent
spliceSlots []goSpliceSlot
spliceFree []uint32
spliceDirtyList *GoConn
spliceSegments [][]byte
spliceIovecs []goIOVector
packetSlots goReadSlots
packetReceiveBatch int
packetMessages [goPacketBatchSize]goPacketMessage
packetFrames [goPacketBatchSize]goUDPFrame
packetFrameCount int
packetUploads [goPacketBatchSize]goPacketUpload
packetUploadCount int
packetDirtyList *goSplicePacket
packetIO goPacketBatchIO
packetFlows map[flowKey]*GoPacketConn
packetReadOptions atomic.Pointer[N.ReadWaitOptions]
udpSockets map[netip.AddrPort]*GoUDPConn
tcpListeners map[netip.AddrPort]*GoListener
flows map[flowKey]*GoConn
flowCapacity int
slabPool *goSlabPool
descriptorPool goDescriptorPool
sequenceSeed maphash.Seed
ackList *GoConn
releasing goBlockedWriters
dyingList *GoConn
reclaimPending bool
resetBurst int
controlIdent uint32
controlScratch [goHeaderScratchSize]byte
controlSegments [][]byte
sackScratch [goMaxSackBlocks]goSackBlock
sackRaw [goMaxSackBlocks]goRawSackBlock
rateSample goRateSample
ackSample goAckSample
gsoSlots goReadSlots
gsoSegments [goGSOMaxSegments][]byte
gsoSizes [goGSOMaxSegments]int
gsoFrame goFrame
}
func (e *goEngine) singleFrame(packet []byte) [][]byte {
e.transmitFrame[0] = packet
return e.transmitFrame[:]
}
func newGoEngine(stack *Go, platformIO goPlatformIO, engineCount int) *goEngine {
engine := &goEngine{
stack: stack,
platformIO: platformIO,
dispatcher: stack.dispatcher,
epoch: time.Now(),
frames: make([]goFrame, goReadBatch),
reassemblyEntries: make([]goReassemblyEntry, goReassemblyEntries),
exitSignal: make(chan struct{}),
flows: stack.directory.flows,
flowCapacity: max(goFlowCapacity/engineCount, 1024),
slabPool: newGoSlabPool(stack.memoryPressure, max(goSlabPoolLowWater/engineCount, 8)),
sequenceSeed: maphash.MakeSeed(),
controlSegments: make([][]byte, 0, 8),
socketEvents: make([]goSocketEvent, goSocketEventBatch),
spliceSegments: make([][]byte, 0, 8),
spliceIovecs: make([]goIOVector, 0, 8),
packetFlows: make(map[flowKey]*GoPacketConn, goReadBatch),
packetReceiveBatch: goReceiveBatchMin,
udpSockets: stack.directory.udpSockets,
tcpListeners: stack.directory.listeners,
}
if engineCount > 1 {
engine.flows = make(map[flowKey]*GoConn)
engine.udpSockets = make(map[netip.AddrPort]*GoUDPConn)
engine.tcpListeners = make(map[netip.AddrPort]*GoListener)
}
if stack.dispatcher != nil {
engine.dispatchStage = stack.dispatcher.NewStage(&goWriteback{platformIO: platformIO})
}
engine.closeMessage.kind = goMessageStackClose
engine.resetMessage.kind = goMessageStackReset
engine.injectMessage.kind = goMessageInject
engine.packetReadOptions.Store(new(N.ReadWaitOptions))
engine.delayedAckTickNode.expire = func(now int64) { engine.drainAckList(now, false) }
engine.reassemblyTickNode.expire = engine.expireReassemblyTick
engine.dispatchTickNode.expire = func(int64) { engine.dispatchStage.Flush() }
engine.refreshCoarseTime()
engine.wheel.currentTick = engine.coarseTime.Load() / goWheelTick
return engine
}
func (e *goEngine) run() {
defer close(e.exitSignal)
defer e.exit()
e.loadWindowStart = e.coarseTime.Load()
var readRetry ReadRetry
for {
parkStart := int64(time.Since(e.epoch))
tunReadable, eventCount, err := e.park()
e.parkedNanos += e.coarseTime.Load() - parkStart
e.updateLoad(e.coarseTime.Load())
e.drainControlQueue()
if e.stack.closed.Load() {
return
}
e.transmitWritable = e.platformIO.takeTransmitWritable(e.transmitWritable)
for _, waiters := range e.transmitWritable {
e.releaseBlockedWriters(waiters)
}
clear(e.transmitWritable)
e.transmitWritable = e.transmitWritable[:0]
if err != nil {
if !errors.Is(err, os.ErrClosed) {
e.stack.logger.Error(E.Cause(err, "go: engine wait"))
}
return
}
e.resetBurst = 0
e.inlineTransmitBudget = goEngineInlineBurst
e.platformIO.flush()
if tunReadable || e.tunPending {
err = e.processBurst()
if err != nil {
if e.stack.closed.Load() || E.IsClosedOrCanceled(err) {
return
}
if !IsRecoverableReadError(err) {
e.stack.logger.Error(E.Cause(err, "go: engine read"))
return
}
e.stack.logger.Debug(E.Cause(err, "go: engine read"))
readRetry.Wait(err)
} else {
readRetry.Reset()
}
}
e.dispatchSocketEvents(eventCount)
e.flushSpliceDirty()
e.wheel.advance(e.coarseTime.Load())
e.drainAckList(e.coarseTime.Load(), true)
if e.dispatchStage != nil {
e.dispatchStage.Flush()
remaining, pending := e.dispatchStage.sweepDue()
if pending && e.dispatchTickNode.slot == nil {
e.wheel.schedule(&e.dispatchTickNode, e.coarseTime.Load()+int64(remaining))
}
}
e.flushPacketUploads()
e.flushPacketFrames()
e.platformIO.flush()
e.reapDying()
if e.reclaimPending {
e.reclaimPending = false
e.reclaim()
}
if e.wokeHandlerThisBurst {
e.wokeHandlerThisBurst = false
runtime.Gosched()
}
}
}
func (e *goEngine) exit() {
e.shutdown()
e.releaseReadBuffers()
e.packetSlots.release()
e.gsoSlots.release()
e.engineState.Store(goEngineExited)
e.releaseControlQueue()
e.releaseInjected()
e.slabPool.close()
if e.dyingList != nil {
e.exitReapPending.Store(true)
e.reapAfterExit()
}
}
func (e *goEngine) reapAfterExit() {
if !e.exitReapPending.Load() {
return
}
e.exitReapAccess.Lock()
defer e.exitReapAccess.Unlock()
e.refreshCoarseTime()
e.reapDying()
e.exitReapPending.Store(e.dyingList != nil)
}
func (e *goEngine) updateLoad(now int64) {
elapsed := now - e.loadWindowStart
if elapsed < int64(goEngineLoadWindow) {
return
}
busy := elapsed - e.parkedNanos
e.ackCoalescing = busy*100 >= elapsed*goEngineBusyPercent && len(e.flows) >= 2
e.parkedNanos = 0
e.loadWindowStart = now
}
func (e *goEngine) park() (bool, int, error) {
clear(e.packetFlows)
deadline, scheduled := e.wheel.nextDeadline()
e.engineState.Store(goEngineParked)
if e.controlStack.head.Load() != nil {
e.engineState.Store(goEngineRunning)
e.refreshCoarseTime()
return false, 0, nil
}
timeout := goWaitIndefinite
if scheduled {
timeout = max(time.Duration(deadline-e.coarseTime.Load()), 0)
}
if e.tunPending {
timeout = 0
}
tunReadable, eventCount, err := e.platformIO.wait(0, e.socketEvents)
e.transmitWritable = e.platformIO.takeTransmitWritable(e.transmitWritable)
if timeout != 0 && !tunReadable && eventCount == 0 && len(e.transmitWritable) == 0 && err == nil && e.controlStack.head.Load() == nil {
tunReadable, eventCount, err = e.platformIO.wait(e.idleTimeout(timeout), e.socketEvents)
}
if tunReadable || eventCount > 0 {
e.readBuffersHeld = true
e.idleSince = -1
}
e.engineState.Store(goEngineRunning)
e.refreshCoarseTime()
return tunReadable, eventCount, err
}
func (e *goEngine) idleTimeout(timeout time.Duration) time.Duration {
if !e.readBuffersHeld {
return timeout
}
now := e.coarseTime.Load()
if e.idleSince < 0 {
e.idleSince = now
}
releaseAt := e.idleSince + int64(goReadBufferIdle)
if now >= releaseAt || e.slabPool.pressureLevel() != MemoryPressureNone {
e.releaseReadBuffers()
return timeout
}
if timeout == goWaitIndefinite || time.Duration(releaseAt-now) < timeout {
return time.Duration(releaseAt - now)
}
return timeout
}
func (e *goEngine) releaseReadBuffers() {
e.readBuffersHeld = false
e.flushPacketUploads()
e.flushPacketFrames()
clear(e.frames)
e.udpUserData.packet = nil
clear(e.transmitFrame[:])
clear(e.spliceSegments[:cap(e.spliceSegments)])
clear(e.spliceIovecs[:cap(e.spliceIovecs)])
clear(e.controlSegments[:cap(e.controlSegments)])
e.packetSlots.sleep()
e.gsoSlots.sleep()
clear(e.gsoSegments[:])
e.gsoFrame = goFrame{}
clear(e.packetMessages[:])
clear(e.packetFrames[:])
clear(e.packetUploads[:])
e.packetIO.reset()
e.platformIO.releaseReadBuffers()
e.slabPool.purge()
}
func (e *goEngine) postMessage(message *goMessage) {
if !message.queued.CompareAndSwap(false, true) {
return
}
e.controlStack.push(message)
switch e.engineState.Load() {
case goEngineParked:
e.platformIO.wake()
case goEngineExited:
e.releaseControlQueue()
}
}
func (e *goEngine) releaseControlQueue() {
message := e.controlStack.head.Swap(nil)
for message != nil {
next := message.next
message.next = nil
message.queued.Store(false)
e.releasePending(message)
message = next
}
}
func (e *goEngine) drainControlQueue() {
message := e.controlStack.head.Swap(nil)
if message != nil {
e.readBuffersHeld = true
e.idleSince = -1
}
for message != nil {
next := message.next
message.next = nil
message.queued.Store(false)
e.handleMessage(message)
message = next
}
}
func (e *goEngine) handleMessage(message *goMessage) {
switch message.kind {
case goMessageStackReset:
e.reclaimPending = true
case goMessageConnDial:
e.handleDial(message.conn)
case goMessageConnEngage:
e.handleEngage(message.conn)
case goMessageConnClose:
e.handleCloseRequest(message.conn)
case goMessageConnReadShut:
e.handleReadShut(message.conn)
case goMessageConnRetransmit:
e.handleRetransmitArm(message.conn)
case goMessageConnWindow:
e.handleWindowUpdate(message.conn)
case goMessageConnTransmit:
e.handleTransmitRequest(message.conn)
case goMessageConnBlocked:
e.handleTransmitBlocked(message.conn)
case goMessageConnDropped:
e.handleDroppedFrames(message.conn)
case goMessageConnPacing:
e.handlePacingRequest(message.conn)
case goMessageConnThrottle:
if !message.conn.dead {
message.conn.wakeTransmitter()
}
case goMessageConnSplice:
e.handleSpliceEngage(message.conn)
case goMessageConnKeepalive:
e.handleKeepaliveUpdate(message.conn)
case goMessageConnTransmitted:
e.handleTransmitted(message.conn)
case goMessagePacketSplice:
e.handlePacketSpliceEngage(message.packet)
case goMessagePacketClose:
e.handlePacketSpliceClose(message.packet)
case goMessageUDPOpen:
e.handleUDPOpen(message.socket)
case goMessageUDPClose:
e.handleUDPClose(message.socket)
case goMessageListenOpen:
e.handleListenOpen(message.listener)
case goMessageListenClose:
e.handleListenClose(message.listener)
case goMessageInject:
e.processInjected()
}
}
func (e *goEngine) inject(packet []byte, meta ForwardFrameMeta) {
if e.injectCount.Add(1) > goInjectQueueLimit {
e.injectCount.Add(-1)
e.droppedInjectFrames.record(e.stack.logger, "frames handed over between queues")
return
}
options := e.packetReadOptions.Load()
frame := &goInjectedFrame{buffer: options.NewBufferSize(len(packet)), meta: meta}
common.Must1(frame.buffer.Write(packet))
options.PostReturn(frame.buffer)
e.injectStack.push(frame)
e.postMessage(&e.injectMessage)
}
func (e *goEngine) processInjected() {
for frame := e.injectStack.popAll(); frame != nil; {
next := frame.next
e.injectCount.Add(-1)
frame.buffer = e.packetReadOptions.Load().Copy(frame.buffer)
e.processFrame(&goFrame{buffer: frame.buffer, meta: frame.meta})
e.flushPacketUploads()
frame.buffer.Release()
frame = next
}
}
func (e *goEngine) releaseInjected() {
for frame := e.injectStack.popAll(); frame != nil; {
next := frame.next
e.injectCount.Add(-1)
frame.buffer.Release()
frame = next
}
}
func (e *goEngine) handleEngage(conn *GoConn) {
if conn.dead || conn.phase != goPhaseJudged {
return
}
conn.access.Lock()
conn.phase = goPhaseEngaged
conn.access.Unlock()
err := goIgnoreDropped(conn.engine.platformIO.writePacket(conn.handshakeImage[:conn.handshakeLength], ForwardFrameMeta{}))
if err != nil {
e.sendReset(conn)
e.detachConn(conn, E.Cause(err, "go: send SYN-ACK"), goDeathAbortLinger)
return
}
conn.handshakeAttempts = 0
conn.handshakeDeadline = e.coarseTime.Load() + int64(goSynAckRetransmit)
e.rearmTimer(conn)
}
func (e *goEngine) shutdown() {
e.closeAllPacketSplices()
e.closeAllUDPSockets()
e.closeAllListeners()
for index := range e.reassemblyEntries {
e.reassemblyEntries[index].discard()
}
e.releaseReadBuffers()
unreset := e.closeAllFlows()
for conn := e.dyingList; conn != nil; conn = conn.dyingNext {
e.spliceDetach(conn, net.ErrClosed)
conn.access.Lock()
conn.drainable = false
conn.access.Unlock()
}
deadline := e.coarseTime.Load() + int64(goShutdownBudget)
for len(unreset) > 0 {
e.releaseReadBuffers()
remaining := deadline - e.refreshCoarseTime()
if remaining <= 0 {
break
}
waiters, err := e.platformIO.armTransmitWritable(nil)
if err != nil || waiters == nil {
time.Sleep(time.Millisecond)
} else {
e.platformIO.wait(min(time.Duration(remaining), 10*time.Millisecond), nil)
e.transmitWritable = e.platformIO.takeTransmitWritable(e.transmitWritable)
if len(e.transmitWritable) == 0 {
time.Sleep(time.Millisecond)
}
clear(e.transmitWritable)
e.transmitWritable = e.transmitWritable[:0]
}
kept := unreset[:0]
for _, conn := range unreset {
if !e.sendReset(conn) {
kept = append(kept, conn)
}
}
unreset = kept
}
for {
e.reapDying()
if e.dyingList == nil || e.refreshCoarseTime() >= deadline {
return
}
time.Sleep(time.Millisecond)
}
}
func (e *goEngine) processBurst() error {
remaining := goReadBatch
budget := goEngineBurstBytes
e.tunPending = false
for remaining > 0 && budget > 0 {
count, drained, err := e.platformIO.readBurst(e.frames[:remaining], *e.packetReadOptions.Load())
if err != nil {
return err
}
for index := range count {
budget -= e.frames[index].buffer.Len()
e.processFrame(&e.frames[index])
}
e.flushPacketUploads()
if drained || count == 0 {
return nil
}
remaining -= count
}
e.tunPending = true
return nil
}
func (e *goEngine) processFrame(frame *goFrame) {
if frame.meta.gsoType == goUDPGSOType {
e.processUDPSegments(frame)
return
}
parsed, ok := parseForwardPacket(frame.buffer.Bytes())
if !ok {
return
}
if e.stack.validateChecksum && parsed.ipVersion == 4 && !header.IPv4(parsed.network).IsChecksumValid() {
return
}
if e.dropNonUnicast(&parsed) {
return
}
if parsed.fragment {
if parsed.ipVersion == 4 {
e.reassembleIPv4(frame.buffer.Bytes(), &parsed)
} else {
e.reassembleIPv6(frame.buffer.Bytes(), &parsed)
}
return
}
e.processParsed(frame.buffer, frame.meta, &parsed)
}
func (e *goEngine) processParsed(buffer *buf.Buffer, meta ForwardFrameMeta, parsed *forwardPacket) {
if parsed.protocol == uint8(header.UDPProtocolNumber) {
if len(parsed.transport) < header.UDPMinimumSize {
return
}
length := int(header.UDP(parsed.transport).Length())
if length < header.UDPMinimumSize || length > len(parsed.transport) {
return
}
parsed.transport = parsed.transport[:length]
}
if e.stack.validateChecksum && !goValidateTransportChecksum(parsed) {
return
}
packet := buffer.Bytes()
if e.handleLoopbackHairpin(packet, meta, parsed) {
return
}
if parsed.protocol == uint8(header.UDPProtocolNumber) && parsed.hasFlow {
if socket := e.udpSockets[parsed.destination]; socket != nil {
e.inputUDPSocket(socket, parsed)
return
}
if len(e.stack.engines) > 1 {
if owner := e.stack.directory.lookupUDPSocket(parsed.destination); owner != nil && owner.engine != e {
owner.engine.inject(packet, meta)
return
}
}
writer := e.packetFlows[parsed.flowKey()]
if writer != nil && writer.splice != nil {
conn := writer.conn.Load()
if conn != nil && !conn.isClosed() && conn.service.state.Load() == udpNatStateStarted {
e.packetSpliceInput(writer, buffer, parsed)
return
}
}
}
establishedTCP := parsed.protocol == uint8(header.TCPProtocolNumber) && parsed.hasFlow && !parsed.isPureTCPSyn()
if establishedTCP {
conn := e.flows[parsed.flowKey()]
if conn != nil {
e.inputTCP(conn, parsed)
return
}
} else if parsed.hasFlow && parsed.isPureTCPSyn() && e.lookupListener(parsed.destination) != nil {
e.demuxL4(buffer, meta, parsed)
return
}
if e.dispatchStage != nil && e.dispatchStage.DispatchParsed(packet, meta, parsed) {
return
}
if establishedTCP && len(e.stack.engines) > 1 {
owner := e.stack.directory.lookup(parsed.flowKey())
if owner != nil && owner.engine != e {
owner.engine.inject(packet, meta)
return
}
}
e.demuxL4(buffer, meta, parsed)
}
func goValidateTransportChecksum(parsed *forwardPacket) bool {
transport := parsed.transport
switch parsed.protocol {
case uint8(header.TCPProtocolNumber):
if len(transport) < header.TCPMinimumSize {
return false
}
case uint8(header.UDPProtocolNumber):
if len(transport) < header.UDPMinimumSize {
return false
}
udpHeader := header.UDP(transport)
length := int(udpHeader.Length())
if length < header.UDPMinimumSize || length > len(transport) {
return false
}
if udpHeader.Checksum() == 0 {
return parsed.ipVersion == 4
}
transport = transport[:length]
case uint8(header.ICMPv4ProtocolNumber):
return len(transport) >= header.ICMPv4MinimumSize && checksum.Checksum(transport, 0) == 0xffff
case uint8(header.ICMPv6ProtocolNumber):
if len(transport) < header.ICMPv6MinimumSize {
return false
}
default:
return true
}
sourceAddress, destinationAddress := parsed.addressSlices()
partial := header.PseudoHeaderChecksum(tcpip.TransportProtocolNumber(parsed.protocol), sourceAddress, destinationAddress, uint16(len(transport)))
return checksum.Checksum(transport, partial) == 0xffff
}
func (e *goEngine) demuxL4(buffer *buf.Buffer, meta ForwardFrameMeta, parsed *forwardPacket) {
switch parsed.protocol {
case uint8(header.TCPProtocolNumber):
e.demuxTCP(buffer.Bytes(), parsed)
case uint8(header.UDPProtocolNumber):
e.demuxUDP(buffer, meta, parsed)
case uint8(header.ICMPv4ProtocolNumber), uint8(header.ICMPv6ProtocolNumber):
if parsed.isICMPError() {
e.inputICMPError(parsed)
return
}
e.answerEcho(buffer.Bytes(), parsed)
}
}
func (e *goEngine) dropNonUnicast(parsed *forwardPacket) bool {
destination := parsed.destination.Addr()
if parsed.ipVersion == 4 && destination == e.stack.broadcastAddr {
return true
}
return !destination.IsGlobalUnicast()
}
func (e *goEngine) handleLoopbackHairpin(packet []byte, meta ForwardFrameMeta, parsed *forwardPacket) bool {
if parsed.protocol != uint8(header.TCPProtocolNumber) || len(parsed.transport) < header.TCPMinimumSize {
return false
}
destination := parsed.destination.Addr()
var loopbackAddresses []netip.Addr
if parsed.ipVersion == 4 {
loopbackAddresses = e.stack.inet4LoopbackAddress
} else {
loopbackAddresses = e.stack.inet6LoopbackAddress
}
if !slices.Contains(loopbackAddresses, destination) {
return false
}
tcpHdr := header.TCP(parsed.transport)
if parsed.ipVersion == 4 {
rewriteIPv4TCP(header.IPv4(parsed.network), tcpHdr, false,
destination, 0, false,
parsed.source.Addr(), 0, false)
} else {
rewriteIPv6TCP(header.IPv6(parsed.network), tcpHdr, false,
destination, 0, false,
parsed.source.Addr(), 0, false)
}
err := e.platformIO.writeFrame(e.singleFrame(packet), meta)
if err != nil {
e.stack.logger.Trace(E.Cause(err, "go: hairpin write"))
}
return true
}
func (e *goEngine) refreshCoarseTime() int64 {
now := int64(time.Since(e.epoch))
e.coarseTime.Store(now)
return now
}
const (
goReassemblyTimeout = 3 * time.Second
goReassemblyHeadroom = 64
goReassemblyCapacity = goReassemblyHeadroom + 65535
goReassemblyMaxRanges = 8
)
type goReassemblyRange struct {
start int
end int
}
type goReassemblyEntry struct {
active bool
headerSeen bool
ipVersion uint8
protocol uint8
source netip.Addr
destination netip.Addr
ident uint32
deadline int64
headerLength int
totalLength int
buffer *buf.Buffer
headroom int
ranges [goReassemblyMaxRanges]goReassemblyRange
rangeCount int
}
func (r *goReassemblyEntry) discard() {
r.active = false
r.buffer.Release()
r.buffer = nil
}
func (e *goEngine) reassembleIPv4(packet []byte, parsed *forwardPacket) {
ipHdr := header.IPv4(parsed.network)
headerLength := int(ipHdr.HeaderLength())
if headerLength < header.IPv4MinimumSize || headerLength > len(packet) || headerLength > goReassemblyHeadroom {
return
}
entry := e.reassemblyEntry(4, uint8(ipHdr.TransportProtocol()), parsed.source.Addr(), parsed.destination.Addr(), uint32(ipHdr.ID()))
offset := int(ipHdr.FragmentOffset())
if offset == 0 {
copy(entry.buffer.Range(entry.headroom-headerLength, entry.headroom), packet[:headerLength])
entry.headerLength = headerLength
entry.headerSeen = true
}
e.reassemblyAdd(entry, offset, ipHdr.Payload(), ipHdr.More())
}
func (e *goEngine) reassembleIPv6(packet []byte, parsed *forwardPacket) {
ipHdr := header.IPv6(parsed.network)
if ipHdr.NextHeader() != header.IPv6FragmentHeader {
return
}
fragHdr := header.IPv6Fragment(ipHdr.Payload())
if !fragHdr.IsValid() {
return
}
entry := e.reassemblyEntry(6, fragHdr.NextHeader(), parsed.source.Addr(), parsed.destination.Addr(), fragHdr.ID())
if !entry.headerSeen {
copy(entry.buffer.Range(entry.headroom-header.IPv6MinimumSize, entry.headroom), packet[:header.IPv6MinimumSize])
entry.headerLength = header.IPv6MinimumSize
entry.headerSeen = true
}
e.reassemblyAdd(entry, int(fragHdr.FragmentOffset())*8, fragHdr.Payload(), fragHdr.More())
}
func (e *goEngine) reassemblyEntry(ipVersion uint8, protocol uint8, source netip.Addr, destination netip.Addr, ident uint32) *goReassemblyEntry {
now := e.coarseTime.Load()
var free *goReassemblyEntry
var oldest *goReassemblyEntry
for index := range e.reassemblyEntries {
entry := &e.reassemblyEntries[index]
if entry.active && entry.deadline <= now {
entry.discard()
}
if !entry.active {
if free == nil {
free = entry
}
continue
}
if entry.ipVersion == ipVersion && entry.protocol == protocol && entry.ident == ident &&
entry.source == source && entry.destination == destination {
return entry
}
if oldest == nil || entry.deadline < oldest.deadline {
oldest = entry
}
}
entry := free
if entry == nil {
entry = oldest
}
options := e.packetReadOptions.Load()
bufferSize := options.FrontHeadroom + goReassemblyCapacity + options.RearHeadroom
if entry.buffer == nil || entry.buffer.RawCap() < bufferSize {
entry.buffer.Release()
entry.buffer = buf.NewSize(bufferSize)
} else {
entry.buffer.Reset()
}
entry.headroom = options.FrontHeadroom + goReassemblyHeadroom
entry.active = true
entry.headerSeen = false
entry.ipVersion = ipVersion
entry.protocol = protocol
entry.source = source
entry.destination = destination
entry.ident = ident
entry.deadline = now + int64(goReassemblyTimeout)
entry.headerLength = 0
entry.totalLength = -1
entry.rangeCount = 0
if e.reassemblyTickNode.slot == nil {
e.wheel.schedule(&e.reassemblyTickNode, entry.deadline)
}
return entry
}
func (e *goEngine) reassemblyAdd(entry *goReassemblyEntry, offset int, fragment []byte, more bool) {
if len(fragment) == 0 {
return
}
end := offset + len(fragment)
if end > 65535 {
entry.discard()
return
}
if !more {
if entry.totalLength >= 0 && entry.totalLength != end {
entry.discard()
return
}
entry.totalLength = end
}
if entry.totalLength >= 0 && end > entry.totalLength {
entry.discard()
return
}
copy(entry.buffer.Range(entry.headroom+offset, entry.headroom+end), fragment)
if !reassemblyMergeRanges(entry, offset, end) {
entry.discard()
return
}
if entry.headerSeen && entry.totalLength >= 0 && entry.rangeCount == 1 &&
entry.ranges[0].start == 0 && entry.ranges[0].end == entry.totalLength {
e.completeReassembly(entry)
}
}
func reassemblyMergeRanges(entry *goReassemblyEntry, start int, end int) bool {
count := entry.rangeCount
index := 0
for index < count && entry.ranges[index].end < start {
index++
}
if index == count || entry.ranges[index].start > end {
if count == goReassemblyMaxRanges {
return false
}
copy(entry.ranges[index+1:count+1], entry.ranges[index:count])
entry.ranges[index] = goReassemblyRange{start: start, end: end}
entry.rangeCount = count + 1
return true
}
mergedStart := min(start, entry.ranges[index].start)
mergedEnd := end
mergeEnd := index
for mergeEnd < count && entry.ranges[mergeEnd].start <= end {
mergedEnd = max(mergedEnd, entry.ranges[mergeEnd].end)
mergeEnd++