Files
OpenGFW/engine/tcp.go
T
Mxmilu666 f6342c4bcf feat(tcp): add Minecraft analyzer for handshake detection
feat(tcp): implement FETAnalyzer with segment buffering
feat(tcp): enhance TCP engine with window scale detection
test(tcp): add tests for Minecraft and FET analyzers
docs: add documentation for Minecraft analyzer and TCP evasion
2026-07-27 01:09:41 +08:00

319 lines
10 KiB
Go

package engine
import (
"net"
"sync"
"github.com/apernet/OpenGFW/analyzer"
"github.com/apernet/OpenGFW/io"
"github.com/apernet/OpenGFW/ruleset"
"github.com/bwmarrin/snowflake"
"github.com/google/gopacket"
"github.com/google/gopacket/layers"
"github.com/google/gopacket/reassembly"
)
// tcpVerdict is a subset of io.Verdict for TCP streams.
// We don't allow modifying or dropping a single packet
// for TCP streams for now, as it doesn't make much sense.
type tcpVerdict io.Verdict
const (
tcpVerdictAccept = tcpVerdict(io.VerdictAccept)
tcpVerdictAcceptStream = tcpVerdict(io.VerdictAcceptStream)
tcpVerdictDropStream = tcpVerdict(io.VerdictDropStream)
)
const (
// tcpMetaPropKey is the namespace under which the engine exposes TCP
// handshake metadata to the ruleset. Analyzers only ever see reassembled
// payload, so header-level signals have to come from here. It must not
// collide with the name of any analyzer.
tcpMetaPropKey = "tcpmeta"
// tcpSynAckWindowMax is the SYN-ACK receive window at or below which we
// record that metadata. Real stacks advertise tens of thousands of bytes;
// a tiny window forces the peer to split its first request across segments,
// which defeats analyzers that classify on the first segment alone. The
// threshold is deliberately loose so that normal connections allocate
// nothing - the ruleset decides what actually counts as suspicious.
tcpSynAckWindowMax = 4096
// tcpFirstSegLenMax is the size at or below which we record the length of
// the client's first data segment. It is the other half of the same signal:
// whatever the peer does to the advertised window, the observable result is
// a first request split across segments. Normal first segments run to
// hundreds of bytes, so nothing is recorded for them.
tcpFirstSegLenMax = 64
)
type tcpContext struct {
*gopacket.PacketMetadata
Verdict tcpVerdict
}
func (ctx *tcpContext) GetCaptureInfo() gopacket.CaptureInfo {
return ctx.CaptureInfo
}
type tcpStreamFactory struct {
WorkerID int
Logger Logger
Node *snowflake.Node
RulesetMutex sync.RWMutex
Ruleset ruleset.Ruleset
}
func (f *tcpStreamFactory) New(ipFlow, tcpFlow gopacket.Flow, tcp *layers.TCP, ac reassembly.AssemblerContext) reassembly.Stream {
id := f.Node.Generate()
ipSrc, ipDst := net.IP(ipFlow.Src().Raw()), net.IP(ipFlow.Dst().Raw())
info := ruleset.StreamInfo{
ID: id.Int64(),
Protocol: ruleset.ProtocolTCP,
SrcIP: ipSrc,
DstIP: ipDst,
SrcPort: uint16(tcp.SrcPort),
DstPort: uint16(tcp.DstPort),
Props: make(analyzer.CombinedPropMap),
}
f.Logger.TCPStreamNew(f.WorkerID, info)
f.RulesetMutex.RLock()
rs := f.Ruleset
f.RulesetMutex.RUnlock()
ans := analyzersToTCPAnalyzers(rs.Analyzers(info))
// Create entries for each analyzer
entries := make([]*tcpStreamEntry, 0, len(ans))
for _, a := range ans {
entries = append(entries, &tcpStreamEntry{
Name: a.Name(),
Stream: a.NewTCP(analyzer.TCPInfo{
SrcIP: ipSrc,
DstIP: ipDst,
SrcPort: uint16(tcp.SrcPort),
DstPort: uint16(tcp.DstPort),
}, &analyzerLogger{
StreamID: id.Int64(),
Name: a.Name(),
Logger: f.Logger,
}),
HasLimit: a.Limit() > 0,
Quota: a.Limit(),
})
}
return &tcpStream{
info: info,
virgin: true,
logger: f.Logger,
ruleset: rs,
activeEntries: entries,
synAckWindow: -1,
synAckWscale: -1,
}
}
func (f *tcpStreamFactory) UpdateRuleset(r ruleset.Ruleset) error {
f.RulesetMutex.Lock()
defer f.RulesetMutex.Unlock()
f.Ruleset = r
return nil
}
type tcpStream struct {
info ruleset.StreamInfo
virgin bool // true if no packets have been processed
logger Logger
ruleset ruleset.Ruleset
activeEntries []*tcpStreamEntry
doneEntries []*tcpStreamEntry
lastVerdict tcpVerdict
firstSegSeen bool // true once the client's first data segment was measured
synAckWindow int // window of the observed SYN-ACK, -1 if none seen yet
synAckWscale int // its window scale factor, -1 if the option was absent
}
type tcpStreamEntry struct {
Name string
Stream analyzer.TCPStream
HasLimit bool
Quota int
}
func (s *tcpStream) Accept(tcp *layers.TCP, ci gopacket.CaptureInfo, dir reassembly.TCPFlowDirection, nextSeq reassembly.Sequence, start *bool, ac reassembly.AssemblerContext) bool {
if tcp.SYN && tcp.ACK && s.synAckWindow < 0 {
s.synAckWindow, s.synAckWscale = int(tcp.Window), tcpWindowScale(tcp)
if s.synAckWindow <= tcpSynAckWindowMax {
s.tcpMeta()
}
}
if len(s.activeEntries) > 0 || s.virgin {
// Make sure every stream matches against the ruleset at least once,
// even if there are no activeEntries, as the ruleset may have built-in
// properties that need to be matched.
return true
} else {
ctx := ac.(*tcpContext)
ctx.Verdict = s.lastVerdict
return false
}
}
// tcpWindowScale returns the window scale factor a segment negotiates, or -1
// if it carries no such option.
func tcpWindowScale(tcp *layers.TCP) int {
for _, opt := range tcp.Options {
if opt.OptionType == layers.TCPOptionKindWindowScale && len(opt.OptionData) == 1 {
return int(opt.OptionData[0])
}
}
return -1
}
// tcpMeta returns the engine's TCP metadata for this stream, creating it on
// first use. Whatever prompted the call, the handshake fields are filled in
// too, so that a rule reading one field never trips over a missing sibling.
// Only streams worth reporting on get here, so normal traffic allocates nothing.
//
// Per RFC 7323 the window scale option does not apply to the window field of
// the SYN-ACK itself, so synack_window is a literal byte count. A stack whose
// receive buffer really is a few bytes would not also negotiate a large scale
// factor, which makes a small synack_window paired with a non-zero
// synack_wscale a strong sign that the field was rewritten in flight.
func (s *tcpStream) tcpMeta() analyzer.PropMap {
m := s.info.Props[tcpMetaPropKey]
if m == nil {
m = analyzer.PropMap{}
if s.synAckWindow >= 0 {
m["synack_window"] = s.synAckWindow
if s.synAckWscale >= 0 {
m["synack_wscale"] = s.synAckWscale
}
}
s.info.Props[tcpMetaPropKey] = m
}
return m
}
// recordFirstSegLen notes an unusually short first data segment from the client.
// Only the first segment counts, whatever its size, so that a short segment
// later in the stream is never mistaken for the opening one. It reports whether
// anything was written, so the caller knows to re-run the ruleset.
func (s *tcpStream) recordFirstSegLen(n int) bool {
if s.firstSegSeen {
return false
}
s.firstSegSeen = true
if n > tcpFirstSegLenMax {
return false
}
s.tcpMeta()["first_seg_len"] = n
return true
}
func (s *tcpStream) ReassembledSG(sg reassembly.ScatterGather, ac reassembly.AssemblerContext) {
dir, start, end, skip := sg.Info()
rev := dir == reassembly.TCPDirServerToClient
avail, _ := sg.Lengths()
data := sg.Fetch(avail)
updated := false
if !rev && len(data) > 0 {
// Force a ruleset match if this is worth reporting, since the analyzers
// may not produce an update of their own on this segment.
updated = s.recordFirstSegLen(len(data))
}
for i := len(s.activeEntries) - 1; i >= 0; i-- {
// Important: reverse order so we can remove entries
entry := s.activeEntries[i]
update, closeUpdate, done := s.feedEntry(entry, rev, start, end, skip, data)
up1 := processPropUpdate(s.info.Props, entry.Name, update)
up2 := processPropUpdate(s.info.Props, entry.Name, closeUpdate)
updated = updated || up1 || up2
if done {
s.activeEntries = append(s.activeEntries[:i], s.activeEntries[i+1:]...)
s.doneEntries = append(s.doneEntries, entry)
}
}
ctx := ac.(*tcpContext)
if updated || s.virgin {
s.virgin = false
s.logger.TCPStreamPropUpdate(s.info, false)
// Match properties against ruleset
result := s.ruleset.Match(s.info)
action := result.Action
if action != ruleset.ActionMaybe && action != ruleset.ActionModify {
verdict := actionToTCPVerdict(action)
s.lastVerdict = verdict
ctx.Verdict = verdict
s.logger.TCPStreamAction(s.info, action, false)
// Verdict issued, no need to process any more packets
s.closeActiveEntries()
}
}
if len(s.activeEntries) == 0 && ctx.Verdict == tcpVerdictAccept {
// All entries are done but no verdict issued, accept stream
s.lastVerdict = tcpVerdictAcceptStream
ctx.Verdict = tcpVerdictAcceptStream
s.logger.TCPStreamAction(s.info, ruleset.ActionAllow, true)
}
}
func (s *tcpStream) ReassemblyComplete(ac reassembly.AssemblerContext) bool {
s.closeActiveEntries()
return true
}
func (s *tcpStream) closeActiveEntries() {
// Signal close to all active entries & move them to doneEntries
updated := false
for _, entry := range s.activeEntries {
update := entry.Stream.Close(false)
up := processPropUpdate(s.info.Props, entry.Name, update)
updated = updated || up
}
if updated {
s.logger.TCPStreamPropUpdate(s.info, true)
}
s.doneEntries = append(s.doneEntries, s.activeEntries...)
s.activeEntries = nil
}
func (s *tcpStream) feedEntry(entry *tcpStreamEntry, rev, start, end bool, skip int, data []byte) (update *analyzer.PropUpdate, closeUpdate *analyzer.PropUpdate, done bool) {
if !entry.HasLimit {
update, done = entry.Stream.Feed(rev, start, end, skip, data)
} else {
qData := data
if len(qData) > entry.Quota {
qData = qData[:entry.Quota]
}
update, done = entry.Stream.Feed(rev, start, end, skip, qData)
entry.Quota -= len(qData)
if entry.Quota <= 0 {
// Quota exhausted, signal close & move to doneEntries
closeUpdate = entry.Stream.Close(true)
done = true
}
}
return
}
func analyzersToTCPAnalyzers(ans []analyzer.Analyzer) []analyzer.TCPAnalyzer {
tcpAns := make([]analyzer.TCPAnalyzer, 0, len(ans))
for _, a := range ans {
if tcpM, ok := a.(analyzer.TCPAnalyzer); ok {
tcpAns = append(tcpAns, tcpM)
}
}
return tcpAns
}
func actionToTCPVerdict(a ruleset.Action) tcpVerdict {
switch a {
case ruleset.ActionMaybe, ruleset.ActionAllow, ruleset.ActionModify:
return tcpVerdictAcceptStream
case ruleset.ActionBlock, ruleset.ActionDrop:
return tcpVerdictDropStream
default:
// Should never happen
return tcpVerdictAcceptStream
}
}