341 lines
7.8 KiB
Go
341 lines
7.8 KiB
Go
package obfs
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import (
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"crypto/rand"
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"encoding/binary"
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"errors"
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"net"
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"sync"
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"sync/atomic"
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"syscall"
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"time"
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)
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// Gecko adds shape obfuscation on top of Salamander: QUIC long-header
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// (handshake) packets are fragmented into randomly-sized, randomly-padded
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// chunks; short-header packets pass through untouched.
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const (
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geckoReassemblyTTL = 8 * time.Second
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geckoMaxReassembly = 4096
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geckoMaxPerSource = 8
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geckoBufferSize = 2048
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geckoDefaultMinPacket = 512
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geckoDefaultMaxPacket = 1200
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)
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type GeckoOptions struct {
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Password []byte
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MinPacketSize int
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MaxPacketSize int
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}
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func WrapPacketConnGecko(conn net.PacketConn, opts GeckoOptions) (net.PacketConn, error) {
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if len(opts.Password) == 0 {
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return nil, errors.New("gecko: password is required")
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}
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minPkt, maxPkt := opts.MinPacketSize, opts.MaxPacketSize
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if minPkt == 0 {
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minPkt = geckoDefaultMinPacket
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}
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if maxPkt == 0 {
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maxPkt = geckoDefaultMaxPacket
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}
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if minPkt <= 0 || minPkt > maxPkt || maxPkt > geckoBufferSize {
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return nil, errors.New("gecko: invalid min/max packet size")
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}
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inner, err := WrapPacketConnSalamander(conn, opts.Password)
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if err != nil {
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return nil, err
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}
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return newGeckoPacketConn(inner, minPkt, maxPkt), nil
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}
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type reassemblyKey struct {
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addr string
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msgID uint8
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}
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type reassemblyEntry struct {
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chunks [][]byte
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received int
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total uint8
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deadline time.Time
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}
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type geckoPacketConn struct {
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inner net.PacketConn
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minPkt, maxPkt int
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msgID atomic.Uint32
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readMu sync.Mutex
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readBuf []byte
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mu sync.Mutex
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reassembly map[reassemblyKey]*reassemblyEntry
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perSource map[string]int
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closeCh chan struct{}
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closeOnce sync.Once
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}
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func newGeckoPacketConn(inner net.PacketConn, minPkt, maxPkt int) *geckoPacketConn {
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g := &geckoPacketConn{
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inner: inner,
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minPkt: minPkt,
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maxPkt: maxPkt,
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readBuf: make([]byte, geckoBufferSize),
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reassembly: make(map[reassemblyKey]*reassemblyEntry),
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perSource: make(map[string]int),
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closeCh: make(chan struct{}),
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}
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go g.gcLoop()
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return g
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}
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// --- Send path ---
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func (g *geckoPacketConn) WriteTo(p []byte, addr net.Addr) (int, error) {
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if len(p) == 0 {
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return 0, nil
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}
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if p[0]&0x80 != 0 {
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// QUIC long header, do fragmentation.
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return g.writeFragmented(p, addr)
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}
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// QUIC short header (data), pass through.
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return g.inner.WriteTo(p, addr)
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}
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func (g *geckoPacketConn) writeFragmented(p []byte, addr net.Addr) (int, error) {
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chunks := randomFragmentChunks()
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chunkSize := len(p) / chunks
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msgID := uint8(g.msgID.Add(1))
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for i := range chunks {
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start := i * chunkSize
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end := len(p)
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if i < chunks-1 {
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end = start + chunkSize
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}
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chunk := p[start:end]
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padLen := g.randomPadLen(len(chunk))
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buf := make([]byte, geckoHeaderSize+int(padLen)+len(chunk))
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n, err := encodeFrame(frameHeader{
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padLen: padLen,
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msgID: msgID,
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chunkIdx: uint8(i),
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totalChunks: uint8(chunks),
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}, chunk, buf)
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if err != nil {
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return 0, err
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}
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if _, err := g.inner.WriteTo(buf[:n], addr); err != nil {
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return 0, err
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}
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}
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return len(p), nil
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}
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// randomPadLen picks padding so the final UDP datagram (Salamander salt +
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// header + padding + chunk) falls within [minPkt, maxPkt]. If the chunk alone
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// already exceeds maxPkt, no padding is added.
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func (g *geckoPacketConn) randomPadLen(chunkLen int) uint16 {
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base := smSaltLen + geckoHeaderSize + chunkLen
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lo := max(g.minPkt, base)
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if lo > g.maxPkt {
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return 0
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}
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return uint16(lo - base + randIntn(g.maxPkt-lo+1))
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}
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func randomFragmentChunks() int {
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return geckoMinFragmentChunks + randIntn(geckoMaxFragmentChunks-geckoMinFragmentChunks+1)
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}
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// randIntn returns a uniform random int in [0, n).
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func randIntn(n int) int {
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if n <= 1 {
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return 0
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}
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var b [4]byte
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_, _ = rand.Read(b[:])
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return int(binary.BigEndian.Uint32(b[:]) % uint32(n))
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}
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// --- Receive path ---
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func (g *geckoPacketConn) ReadFrom(p []byte) (int, net.Addr, error) {
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g.readMu.Lock()
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defer g.readMu.Unlock()
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buf := g.readBuf
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for {
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n, addr, err := g.inner.ReadFrom(buf)
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if err != nil {
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return 0, addr, err
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}
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if n <= 0 {
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continue
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}
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// Top bit set → Gecko fragment frame; clear → short-header packet
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// or garbage, passed through for QUIC to handle.
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if buf[0]&0x80 == 0 {
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return copy(p, buf[:n]), addr, nil
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}
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h, payload, decErr := decodeFrame(buf[:n])
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if decErr != nil {
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// Malformed frame; drop silently.
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continue
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}
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out, ready := g.acceptChunk(addr, h, payload)
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if !ready {
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continue
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}
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return copy(p, out), addr, nil
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}
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}
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func (g *geckoPacketConn) acceptChunk(addr net.Addr, h frameHeader, payload []byte) ([]byte, bool) {
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key := reassemblyKey{addr: addr.String(), msgID: h.msgID}
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g.mu.Lock()
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defer g.mu.Unlock()
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e, exists := g.reassembly[key]
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if !exists {
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// Per-source cap.
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if g.perSource[key.addr] >= geckoMaxPerSource {
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return nil, false
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}
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// Global cap with eviction.
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if len(g.reassembly) >= geckoMaxReassembly {
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g.evictOldestLocked()
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}
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e = &reassemblyEntry{
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chunks: make([][]byte, h.totalChunks),
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total: h.totalChunks,
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deadline: time.Now().Add(geckoReassemblyTTL),
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}
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g.reassembly[key] = e
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g.perSource[key.addr]++
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} else if e.total != h.totalChunks {
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// Inconsistent chunk count; drop.
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return nil, false
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}
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if int(h.chunkIdx) >= len(e.chunks) || e.chunks[h.chunkIdx] != nil {
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// Bad index or duplicate; drop.
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return nil, false
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}
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cp := make([]byte, len(payload))
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copy(cp, payload)
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e.chunks[h.chunkIdx] = cp
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e.received++
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if e.received < int(e.total) {
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return nil, false
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}
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total := 0
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for _, c := range e.chunks {
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total += len(c)
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}
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out := make([]byte, total)
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off := 0
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for _, c := range e.chunks {
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off += copy(out[off:], c)
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}
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g.dropEntryLocked(key)
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return out, true
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}
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// --- Maintenance ---
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func (g *geckoPacketConn) gcLoop() {
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t := time.NewTicker(geckoReassemblyTTL / 2)
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defer t.Stop()
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for {
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select {
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case <-g.closeCh:
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return
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case now := <-t.C:
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g.gcExpired(now)
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}
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}
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}
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func (g *geckoPacketConn) gcExpired(now time.Time) {
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g.mu.Lock()
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defer g.mu.Unlock()
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for k, e := range g.reassembly {
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if now.After(e.deadline) {
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g.dropEntryLocked(k)
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}
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}
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}
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// dropEntryLocked must be called with mu held.
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func (g *geckoPacketConn) dropEntryLocked(k reassemblyKey) {
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if _, ok := g.reassembly[k]; !ok {
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return
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}
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delete(g.reassembly, k)
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g.perSource[k.addr]--
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if g.perSource[k.addr] <= 0 {
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delete(g.perSource, k.addr)
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}
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}
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// evictOldestLocked must be called with mu held. O(n) over the map; n is
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// bounded by geckoMaxReassembly.
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func (g *geckoPacketConn) evictOldestLocked() {
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var oldestKey reassemblyKey
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var oldestDeadline time.Time
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first := true
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for k, e := range g.reassembly {
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if first || e.deadline.Before(oldestDeadline) {
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oldestKey = k
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oldestDeadline = e.deadline
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first = false
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}
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}
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if !first {
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g.dropEntryLocked(oldestKey)
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}
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}
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// --- net.PacketConn boilerplate ---
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func (g *geckoPacketConn) Close() error {
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g.closeOnce.Do(func() { close(g.closeCh) })
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return g.inner.Close()
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}
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func (g *geckoPacketConn) LocalAddr() net.Addr { return g.inner.LocalAddr() }
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func (g *geckoPacketConn) SetDeadline(t time.Time) error { return g.inner.SetDeadline(t) }
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func (g *geckoPacketConn) SetReadDeadline(t time.Time) error { return g.inner.SetReadDeadline(t) }
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func (g *geckoPacketConn) SetWriteDeadline(t time.Time) error {
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return g.inner.SetWriteDeadline(t)
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}
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// --- UDP-flavor passthrough ---
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func (g *geckoPacketConn) SyscallConn() (syscall.RawConn, error) {
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if u, ok := g.inner.(udpLikePacketConn); ok {
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return u.SyscallConn()
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}
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return nil, errors.ErrUnsupported
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}
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func (g *geckoPacketConn) SetReadBuffer(bytes int) error {
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if u, ok := g.inner.(udpLikePacketConn); ok {
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return u.SetReadBuffer(bytes)
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}
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return errors.ErrUnsupported
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}
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func (g *geckoPacketConn) SetWriteBuffer(bytes int) error {
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if u, ok := g.inner.(udpLikePacketConn); ok {
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return u.SetWriteBuffer(bytes)
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}
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return errors.ErrUnsupported
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}
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