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FILE / ScuroNeko/mtg
mtglib/internal/tls/fake/server_side.go
Исходный файл и его история в репозитории.
The hardcoded noise range (2500-4700 bytes) in the FakeTLS ServerHello does not match the real certificate chain sizes of many popular fronting domains (e.g., dl.google.com ≈ 6480 bytes, microsoft.com ≈ 13004 bytes). This makes the proxy detectable by DPI systems that compare the ApplicationData size with the real cert chain size for the SNI domain. On startup, probe the fronting domain's actual TLS handshake size and use the measured value ± jitter instead of the static range. Falls back to the legacy 2500-4700 range if the probe fails. Also adds optional caching of probe results between restarts (noise-cache-path, noise-cache-ttl) and a configurable probe count (noise-probe-count) under [defense.doppelganger]. Closes #408
163 lines
4.4 KiB
Go
163 lines
4.4 KiB
Go
package fake
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import (
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"bytes"
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"crypto/hmac"
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"crypto/rand"
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"crypto/sha256"
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"encoding/binary"
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"io"
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rnd "math/rand/v2"
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"github.com/9seconds/mtg/v2/mtglib/internal/tls"
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"golang.org/x/crypto/curve25519"
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)
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// NoiseParams controls the size of the fake ApplicationData record
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// in ServerHello. If Mean is 0, the legacy random range (2500-4700)
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// is used.
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type NoiseParams struct {
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Mean int
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Jitter int
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}
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const (
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TypeHandshakeServer = 0x02
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ChangeCipherValue = 0x01
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EllipticCurveLen = 32
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)
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var serverHelloSuffix = []byte{
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0x00, // no compression
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0x00, 0x2e, // 46 bytes of data
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0x00, 0x2b, // Extension - Supported Versions
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0x00, 0x02, // 2 bytes are following
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0x03, 0x04, // TLS 1.3
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0x00, 0x33, // Extension - Key Share
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0x00, 0x24, // 36 bytes
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0x00, 0x1d, // x25519 curve
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0x00, 0x20, // 32 bytes of key
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}
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func SendServerHello(w io.Writer, secret []byte, clientHello *ClientHello, noise NoiseParams) error {
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buf := &bytes.Buffer{}
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buf.Grow(tls.MaxRecordSize)
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generateServerHello(buf, clientHello)
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generateChangeCipherValue(buf)
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generateNoise(buf, noise)
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packet := buf.Bytes()
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digest := hmac.New(sha256.New, secret)
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digest.Write(clientHello.Random[:])
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digest.Write(packet)
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copy(packet[RandomOffset:], digest.Sum(nil))
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_, err := w.Write(packet)
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return err
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}
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func generateServerHello(buf *bytes.Buffer, hello *ClientHello) {
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payload := acquireBuffer()
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defer releaseBuffer(payload)
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generateServerHelloPayload(payload, hello)
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// 16 - type is 0x16 (handshake record)
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// 03 03 - legacy protocol version of "3,3" (TLS 1.2)
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// 00 7a - 0x7A (122) bytes of handshake message follows
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// 16 - type is 0x16 (handshake record)
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buf.WriteByte(tls.TypeHandshake)
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// 03 03 - legacy protocol version of "3,3" (TLS 1.2)
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buf.Write(tls.TLSVersion[:])
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// 00 7a - 0x7A (122) bytes of handshake message follows
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binary.Write(buf, binary.BigEndian, uint16(payload.Len())) //nolint: errcheck
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payload.WriteTo(buf) //nolint: errcheck
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}
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func generateServerHelloPayload(buf *bytes.Buffer, hello *ClientHello) {
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data := [4]byte{}
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payload := acquireBuffer()
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defer releaseBuffer(payload)
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generateServerHelloHandshakePayload(payload, hello)
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// 02 - handshake message type 0x02 (server hello)
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// 00 00 76 - 0x76 (118) bytes of server hello data follows
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buf.WriteByte(TypeHandshakeServer)
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// 00 00 76 - 0x76 (118) bytes of server hello data follows
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binary.BigEndian.PutUint32(data[:], uint32(payload.Len()))
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buf.Write(data[1:])
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payload.WriteTo(buf) //nolint: errcheck
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}
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func generateServerHelloHandshakePayload(buf *bytes.Buffer, hello *ClientHello) {
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// The unusual version number ("3,3" representing TLS 1.2) is due to
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// TLS 1.0 being a minor revision of the SSL 3.0 protocol. Therefore
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// TLS 1.0 is represented by "3,1", TLS 1.1 is "3,2", and so on.
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buf.Write(tls.TLSVersion[:])
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buf.Write(emptyRandom[:])
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// 20 - 0x20 (32) bytes of session ID follow
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// e0 e1 ... fe ff - session ID copied from Client Hello
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buf.WriteByte(byte(len(hello.SessionID)))
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buf.Write(hello.SessionID)
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binary.Write(buf, binary.BigEndian, hello.CipherSuite) //nolint: errcheck
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buf.Write(serverHelloSuffix)
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scalar := [EllipticCurveLen]byte{}
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if _, err := rand.Read(scalar[:]); err != nil {
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panic(err)
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}
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curve, _ := curve25519.X25519(scalar[:], curve25519.Basepoint)
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buf.Write(curve)
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}
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func generateChangeCipherValue(buf *bytes.Buffer) {
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buf.WriteByte(tls.TypeChangeCipherSpec)
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buf.Write(tls.TLSVersion[:])
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binary.Write(buf, binary.BigEndian, uint16(1)) //nolint: errcheck
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buf.WriteByte(ChangeCipherValue)
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}
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// generateNoise writes a single ApplicationData record mimicking the combined
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// size of a real TLS 1.3 encrypted server handshake (EncryptedExtensions +
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// Certificate chain + CertificateVerify + Finished).
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//
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// NOTE: Must be exactly ONE ApplicationData record — the Telegram client reads
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// ServerHello + CCS + 1 ApplicationData and computes HMAC over all three.
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// Multiple records would cause HMAC mismatch and connection failure.
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func generateNoise(buf *bytes.Buffer, noise NoiseParams) {
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var size int
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if noise.Mean > 0 && noise.Jitter > 0 {
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// Calibrated: use measured cert chain size ± jitter.
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size = noise.Mean - noise.Jitter + rnd.IntN(2*noise.Jitter)
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if size < 1000 {
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size = 1000
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}
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} else {
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// Legacy fallback: random in 2500-4700 range.
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size = 2500 + rnd.IntN(2200)
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}
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data := make([]byte, size)
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if _, err := rand.Read(data); err != nil {
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panic(err)
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}
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tls.WriteRecord(buf, data) //nolint: errcheck
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}
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