server.go 18 KB

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  1. package encoding
  2. import (
  3. "bytes"
  4. "crypto/aes"
  5. "crypto/cipher"
  6. "crypto/md5"
  7. "crypto/sha256"
  8. "encoding/binary"
  9. "hash/fnv"
  10. "io"
  11. "io/ioutil"
  12. "sync"
  13. "time"
  14. "golang.org/x/crypto/chacha20poly1305"
  15. "github.com/v2fly/v2ray-core/v4/common"
  16. "github.com/v2fly/v2ray-core/v4/common/bitmask"
  17. "github.com/v2fly/v2ray-core/v4/common/buf"
  18. "github.com/v2fly/v2ray-core/v4/common/crypto"
  19. "github.com/v2fly/v2ray-core/v4/common/dice"
  20. "github.com/v2fly/v2ray-core/v4/common/net"
  21. "github.com/v2fly/v2ray-core/v4/common/protocol"
  22. "github.com/v2fly/v2ray-core/v4/common/task"
  23. "github.com/v2fly/v2ray-core/v4/proxy/vmess"
  24. vmessaead "github.com/v2fly/v2ray-core/v4/proxy/vmess/aead"
  25. )
  26. type sessionID struct {
  27. user [16]byte
  28. key [16]byte
  29. nonce [16]byte
  30. }
  31. // SessionHistory keeps track of historical session ids, to prevent replay attacks.
  32. type SessionHistory struct {
  33. sync.RWMutex
  34. cache map[sessionID]time.Time
  35. task *task.Periodic
  36. }
  37. // NewSessionHistory creates a new SessionHistory object.
  38. func NewSessionHistory() *SessionHistory {
  39. h := &SessionHistory{
  40. cache: make(map[sessionID]time.Time, 128),
  41. }
  42. h.task = &task.Periodic{
  43. Interval: time.Second * 30,
  44. Execute: h.removeExpiredEntries,
  45. }
  46. return h
  47. }
  48. // Close implements common.Closable.
  49. func (h *SessionHistory) Close() error {
  50. return h.task.Close()
  51. }
  52. func (h *SessionHistory) addIfNotExits(session sessionID) bool {
  53. h.Lock()
  54. if expire, found := h.cache[session]; found && expire.After(time.Now()) {
  55. h.Unlock()
  56. return false
  57. }
  58. h.cache[session] = time.Now().Add(time.Minute * 3)
  59. h.Unlock()
  60. common.Must(h.task.Start())
  61. return true
  62. }
  63. func (h *SessionHistory) removeExpiredEntries() error {
  64. now := time.Now()
  65. h.Lock()
  66. defer h.Unlock()
  67. if len(h.cache) == 0 {
  68. return newError("nothing to do")
  69. }
  70. for session, expire := range h.cache {
  71. if expire.Before(now) {
  72. delete(h.cache, session)
  73. }
  74. }
  75. if len(h.cache) == 0 {
  76. h.cache = make(map[sessionID]time.Time, 128)
  77. }
  78. return nil
  79. }
  80. // ServerSession keeps information for a session in VMess server.
  81. type ServerSession struct {
  82. userValidator *vmess.TimedUserValidator
  83. sessionHistory *SessionHistory
  84. requestBodyKey [16]byte
  85. requestBodyIV [16]byte
  86. responseBodyKey [16]byte
  87. responseBodyIV [16]byte
  88. responseWriter io.Writer
  89. responseHeader byte
  90. isAEADRequest bool
  91. isAEADForced bool
  92. }
  93. // NewServerSession creates a new ServerSession, using the given UserValidator.
  94. // The ServerSession instance doesn't take ownership of the validator.
  95. func NewServerSession(validator *vmess.TimedUserValidator, sessionHistory *SessionHistory) *ServerSession {
  96. return &ServerSession{
  97. userValidator: validator,
  98. sessionHistory: sessionHistory,
  99. }
  100. }
  101. // SetAEADForced sets isAEADForced for a ServerSession.
  102. func (s *ServerSession) SetAEADForced(isAEADForced bool) {
  103. s.isAEADForced = isAEADForced
  104. }
  105. func parseSecurityType(b byte) protocol.SecurityType {
  106. if _, f := protocol.SecurityType_name[int32(b)]; f {
  107. st := protocol.SecurityType(b)
  108. // For backward compatibility.
  109. if st == protocol.SecurityType_UNKNOWN {
  110. st = protocol.SecurityType_LEGACY
  111. }
  112. return st
  113. }
  114. return protocol.SecurityType_UNKNOWN
  115. }
  116. // DecodeRequestHeader decodes and returns (if successful) a RequestHeader from an input stream.
  117. func (s *ServerSession) DecodeRequestHeader(reader io.Reader) (*protocol.RequestHeader, error) {
  118. buffer := buf.New()
  119. behaviorRand := dice.NewDeterministicDice(int64(s.userValidator.GetBehaviorSeed()))
  120. BaseDrainSize := behaviorRand.Roll(3266)
  121. RandDrainMax := behaviorRand.Roll(64) + 1
  122. RandDrainRolled := dice.Roll(RandDrainMax)
  123. DrainSize := BaseDrainSize + 16 + 38 + RandDrainRolled
  124. readSizeRemain := DrainSize
  125. drainConnection := func(e error) error {
  126. // We read a deterministic generated length of data before closing the connection to offset padding read pattern
  127. readSizeRemain -= int(buffer.Len())
  128. if readSizeRemain > 0 {
  129. err := s.DrainConnN(reader, readSizeRemain)
  130. if err != nil {
  131. return newError("failed to drain connection DrainSize = ", BaseDrainSize, " ", RandDrainMax, " ", RandDrainRolled).Base(err).Base(e)
  132. }
  133. return newError("connection drained DrainSize = ", BaseDrainSize, " ", RandDrainMax, " ", RandDrainRolled).Base(e)
  134. }
  135. return e
  136. }
  137. defer func() {
  138. buffer.Release()
  139. }()
  140. if _, err := buffer.ReadFullFrom(reader, protocol.IDBytesLen); err != nil {
  141. return nil, newError("failed to read request header").Base(err)
  142. }
  143. var decryptor io.Reader
  144. var vmessAccount *vmess.MemoryAccount
  145. user, foundAEAD, errorAEAD := s.userValidator.GetAEAD(buffer.Bytes())
  146. var fixedSizeAuthID [16]byte
  147. copy(fixedSizeAuthID[:], buffer.Bytes())
  148. switch {
  149. case foundAEAD:
  150. vmessAccount = user.Account.(*vmess.MemoryAccount)
  151. var fixedSizeCmdKey [16]byte
  152. copy(fixedSizeCmdKey[:], vmessAccount.ID.CmdKey())
  153. aeadData, shouldDrain, bytesRead, errorReason := vmessaead.OpenVMessAEADHeader(fixedSizeCmdKey, fixedSizeAuthID, reader)
  154. if errorReason != nil {
  155. if shouldDrain {
  156. readSizeRemain -= bytesRead
  157. return nil, drainConnection(newError("AEAD read failed").Base(errorReason))
  158. }
  159. return nil, drainConnection(newError("AEAD read failed, drain skipped").Base(errorReason))
  160. }
  161. decryptor = bytes.NewReader(aeadData)
  162. s.isAEADRequest = true
  163. case errorAEAD == vmessaead.ErrNotFound:
  164. userLegacy, timestamp, valid, userValidationError := s.userValidator.Get(buffer.Bytes())
  165. if !valid || userValidationError != nil {
  166. return nil, drainConnection(newError("invalid user").Base(userValidationError))
  167. }
  168. if s.isAEADForced {
  169. return nil, drainConnection(newError("invalid user: VMessAEAD is enforced and a non VMessAEAD connection is received. You can still disable this security feature with environment variable v2ray.vmess.aead.forced = false . You will not be able to enable legacy header workaround in the future."))
  170. } else {
  171. newError("Critical Warning: potentially invalid user: a non VMessAEAD connection is received. From 2022 Jan 1st, this kind of connection will be rejected by default. You should update or replace your client software now. ").AtWarning().WriteToLog()
  172. }
  173. user = userLegacy
  174. iv := hashTimestamp(md5.New(), timestamp)
  175. vmessAccount = userLegacy.Account.(*vmess.MemoryAccount)
  176. aesStream := crypto.NewAesDecryptionStream(vmessAccount.ID.CmdKey(), iv)
  177. decryptor = crypto.NewCryptionReader(aesStream, reader)
  178. default:
  179. return nil, drainConnection(newError("invalid user").Base(errorAEAD))
  180. }
  181. readSizeRemain -= int(buffer.Len())
  182. buffer.Clear()
  183. if _, err := buffer.ReadFullFrom(decryptor, 38); err != nil {
  184. return nil, newError("failed to read request header").Base(err)
  185. }
  186. request := &protocol.RequestHeader{
  187. User: user,
  188. Version: buffer.Byte(0),
  189. }
  190. copy(s.requestBodyIV[:], buffer.BytesRange(1, 17)) // 16 bytes
  191. copy(s.requestBodyKey[:], buffer.BytesRange(17, 33)) // 16 bytes
  192. var sid sessionID
  193. copy(sid.user[:], vmessAccount.ID.Bytes())
  194. sid.key = s.requestBodyKey
  195. sid.nonce = s.requestBodyIV
  196. if !s.sessionHistory.addIfNotExits(sid) {
  197. if !s.isAEADRequest {
  198. drainErr := s.userValidator.BurnTaintFuse(fixedSizeAuthID[:])
  199. if drainErr != nil {
  200. return nil, drainConnection(newError("duplicated session id, possibly under replay attack, and failed to taint userHash").Base(drainErr))
  201. }
  202. return nil, drainConnection(newError("duplicated session id, possibly under replay attack, userHash tainted"))
  203. }
  204. return nil, newError("duplicated session id, possibly under replay attack, but this is a AEAD request")
  205. }
  206. s.responseHeader = buffer.Byte(33) // 1 byte
  207. request.Option = bitmask.Byte(buffer.Byte(34)) // 1 byte
  208. paddingLen := int(buffer.Byte(35) >> 4)
  209. request.Security = parseSecurityType(buffer.Byte(35) & 0x0F)
  210. // 1 bytes reserved
  211. request.Command = protocol.RequestCommand(buffer.Byte(37))
  212. switch request.Command {
  213. case protocol.RequestCommandMux:
  214. request.Address = net.DomainAddress("v1.mux.cool")
  215. request.Port = 0
  216. case protocol.RequestCommandTCP, protocol.RequestCommandUDP:
  217. if addr, port, err := addrParser.ReadAddressPort(buffer, decryptor); err == nil {
  218. request.Address = addr
  219. request.Port = port
  220. }
  221. }
  222. if paddingLen > 0 {
  223. if _, err := buffer.ReadFullFrom(decryptor, int32(paddingLen)); err != nil {
  224. if !s.isAEADRequest {
  225. burnErr := s.userValidator.BurnTaintFuse(fixedSizeAuthID[:])
  226. if burnErr != nil {
  227. return nil, newError("failed to read padding, failed to taint userHash").Base(burnErr).Base(err)
  228. }
  229. return nil, newError("failed to read padding, userHash tainted").Base(err)
  230. }
  231. return nil, newError("failed to read padding").Base(err)
  232. }
  233. }
  234. if _, err := buffer.ReadFullFrom(decryptor, 4); err != nil {
  235. if !s.isAEADRequest {
  236. burnErr := s.userValidator.BurnTaintFuse(fixedSizeAuthID[:])
  237. if burnErr != nil {
  238. return nil, newError("failed to read checksum, failed to taint userHash").Base(burnErr).Base(err)
  239. }
  240. return nil, newError("failed to read checksum, userHash tainted").Base(err)
  241. }
  242. return nil, newError("failed to read checksum").Base(err)
  243. }
  244. fnv1a := fnv.New32a()
  245. common.Must2(fnv1a.Write(buffer.BytesTo(-4)))
  246. actualHash := fnv1a.Sum32()
  247. expectedHash := binary.BigEndian.Uint32(buffer.BytesFrom(-4))
  248. if actualHash != expectedHash {
  249. if !s.isAEADRequest {
  250. Autherr := newError("invalid auth, legacy userHash tainted")
  251. burnErr := s.userValidator.BurnTaintFuse(fixedSizeAuthID[:])
  252. if burnErr != nil {
  253. Autherr = newError("invalid auth, can't taint legacy userHash").Base(burnErr)
  254. }
  255. // It is possible that we are under attack described in https://github.com/v2ray/v2ray-core/issues/2523
  256. return nil, drainConnection(Autherr)
  257. }
  258. return nil, newError("invalid auth, but this is a AEAD request")
  259. }
  260. if request.Address == nil {
  261. return nil, newError("invalid remote address")
  262. }
  263. if request.Security == protocol.SecurityType_UNKNOWN || request.Security == protocol.SecurityType_AUTO {
  264. return nil, newError("unknown security type: ", request.Security)
  265. }
  266. return request, nil
  267. }
  268. // DecodeRequestBody returns Reader from which caller can fetch decrypted body.
  269. func (s *ServerSession) DecodeRequestBody(request *protocol.RequestHeader, reader io.Reader) buf.Reader {
  270. var sizeParser crypto.ChunkSizeDecoder = crypto.PlainChunkSizeParser{}
  271. if request.Option.Has(protocol.RequestOptionChunkMasking) {
  272. sizeParser = NewShakeSizeParser(s.requestBodyIV[:])
  273. }
  274. var padding crypto.PaddingLengthGenerator
  275. if request.Option.Has(protocol.RequestOptionGlobalPadding) {
  276. padding = sizeParser.(crypto.PaddingLengthGenerator)
  277. }
  278. switch request.Security {
  279. case protocol.SecurityType_NONE:
  280. if request.Option.Has(protocol.RequestOptionChunkStream) {
  281. if request.Command.TransferType() == protocol.TransferTypeStream {
  282. return crypto.NewChunkStreamReader(sizeParser, reader)
  283. }
  284. auth := &crypto.AEADAuthenticator{
  285. AEAD: new(NoOpAuthenticator),
  286. NonceGenerator: crypto.GenerateEmptyBytes(),
  287. AdditionalDataGenerator: crypto.GenerateEmptyBytes(),
  288. }
  289. return crypto.NewAuthenticationReader(auth, sizeParser, reader, protocol.TransferTypePacket, padding)
  290. }
  291. return buf.NewReader(reader)
  292. case protocol.SecurityType_LEGACY:
  293. aesStream := crypto.NewAesDecryptionStream(s.requestBodyKey[:], s.requestBodyIV[:])
  294. cryptionReader := crypto.NewCryptionReader(aesStream, reader)
  295. if request.Option.Has(protocol.RequestOptionChunkStream) {
  296. auth := &crypto.AEADAuthenticator{
  297. AEAD: new(FnvAuthenticator),
  298. NonceGenerator: crypto.GenerateEmptyBytes(),
  299. AdditionalDataGenerator: crypto.GenerateEmptyBytes(),
  300. }
  301. return crypto.NewAuthenticationReader(auth, sizeParser, cryptionReader, request.Command.TransferType(), padding)
  302. }
  303. return buf.NewReader(cryptionReader)
  304. case protocol.SecurityType_AES128_GCM:
  305. aead := crypto.NewAesGcm(s.requestBodyKey[:])
  306. auth := &crypto.AEADAuthenticator{
  307. AEAD: aead,
  308. NonceGenerator: GenerateChunkNonce(s.requestBodyIV[:], uint32(aead.NonceSize())),
  309. AdditionalDataGenerator: crypto.GenerateEmptyBytes(),
  310. }
  311. return crypto.NewAuthenticationReader(auth, sizeParser, reader, request.Command.TransferType(), padding)
  312. case protocol.SecurityType_CHACHA20_POLY1305:
  313. aead, _ := chacha20poly1305.New(GenerateChacha20Poly1305Key(s.requestBodyKey[:]))
  314. auth := &crypto.AEADAuthenticator{
  315. AEAD: aead,
  316. NonceGenerator: GenerateChunkNonce(s.requestBodyIV[:], uint32(aead.NonceSize())),
  317. AdditionalDataGenerator: crypto.GenerateEmptyBytes(),
  318. }
  319. return crypto.NewAuthenticationReader(auth, sizeParser, reader, request.Command.TransferType(), padding)
  320. default:
  321. panic("Unknown security type.")
  322. }
  323. }
  324. // EncodeResponseHeader writes encoded response header into the given writer.
  325. func (s *ServerSession) EncodeResponseHeader(header *protocol.ResponseHeader, writer io.Writer) {
  326. var encryptionWriter io.Writer
  327. if !s.isAEADRequest {
  328. s.responseBodyKey = md5.Sum(s.requestBodyKey[:])
  329. s.responseBodyIV = md5.Sum(s.requestBodyIV[:])
  330. } else {
  331. BodyKey := sha256.Sum256(s.requestBodyKey[:])
  332. copy(s.responseBodyKey[:], BodyKey[:16])
  333. BodyIV := sha256.Sum256(s.requestBodyIV[:])
  334. copy(s.responseBodyIV[:], BodyIV[:16])
  335. }
  336. aesStream := crypto.NewAesEncryptionStream(s.responseBodyKey[:], s.responseBodyIV[:])
  337. encryptionWriter = crypto.NewCryptionWriter(aesStream, writer)
  338. s.responseWriter = encryptionWriter
  339. aeadEncryptedHeaderBuffer := bytes.NewBuffer(nil)
  340. if s.isAEADRequest {
  341. encryptionWriter = aeadEncryptedHeaderBuffer
  342. }
  343. common.Must2(encryptionWriter.Write([]byte{s.responseHeader, byte(header.Option)}))
  344. err := MarshalCommand(header.Command, encryptionWriter)
  345. if err != nil {
  346. common.Must2(encryptionWriter.Write([]byte{0x00, 0x00}))
  347. }
  348. if s.isAEADRequest {
  349. aeadResponseHeaderLengthEncryptionKey := vmessaead.KDF16(s.responseBodyKey[:], vmessaead.KDFSaltConstAEADRespHeaderLenKey)
  350. aeadResponseHeaderLengthEncryptionIV := vmessaead.KDF(s.responseBodyIV[:], vmessaead.KDFSaltConstAEADRespHeaderLenIV)[:12]
  351. aeadResponseHeaderLengthEncryptionKeyAESBlock := common.Must2(aes.NewCipher(aeadResponseHeaderLengthEncryptionKey)).(cipher.Block)
  352. aeadResponseHeaderLengthEncryptionAEAD := common.Must2(cipher.NewGCM(aeadResponseHeaderLengthEncryptionKeyAESBlock)).(cipher.AEAD)
  353. aeadResponseHeaderLengthEncryptionBuffer := bytes.NewBuffer(nil)
  354. decryptedResponseHeaderLengthBinaryDeserializeBuffer := uint16(aeadEncryptedHeaderBuffer.Len())
  355. common.Must(binary.Write(aeadResponseHeaderLengthEncryptionBuffer, binary.BigEndian, decryptedResponseHeaderLengthBinaryDeserializeBuffer))
  356. AEADEncryptedLength := aeadResponseHeaderLengthEncryptionAEAD.Seal(nil, aeadResponseHeaderLengthEncryptionIV, aeadResponseHeaderLengthEncryptionBuffer.Bytes(), nil)
  357. common.Must2(io.Copy(writer, bytes.NewReader(AEADEncryptedLength)))
  358. aeadResponseHeaderPayloadEncryptionKey := vmessaead.KDF16(s.responseBodyKey[:], vmessaead.KDFSaltConstAEADRespHeaderPayloadKey)
  359. aeadResponseHeaderPayloadEncryptionIV := vmessaead.KDF(s.responseBodyIV[:], vmessaead.KDFSaltConstAEADRespHeaderPayloadIV)[:12]
  360. aeadResponseHeaderPayloadEncryptionKeyAESBlock := common.Must2(aes.NewCipher(aeadResponseHeaderPayloadEncryptionKey)).(cipher.Block)
  361. aeadResponseHeaderPayloadEncryptionAEAD := common.Must2(cipher.NewGCM(aeadResponseHeaderPayloadEncryptionKeyAESBlock)).(cipher.AEAD)
  362. aeadEncryptedHeaderPayload := aeadResponseHeaderPayloadEncryptionAEAD.Seal(nil, aeadResponseHeaderPayloadEncryptionIV, aeadEncryptedHeaderBuffer.Bytes(), nil)
  363. common.Must2(io.Copy(writer, bytes.NewReader(aeadEncryptedHeaderPayload)))
  364. }
  365. }
  366. // EncodeResponseBody returns a Writer that auto-encrypt content written by caller.
  367. func (s *ServerSession) EncodeResponseBody(request *protocol.RequestHeader, writer io.Writer) buf.Writer {
  368. var sizeParser crypto.ChunkSizeEncoder = crypto.PlainChunkSizeParser{}
  369. if request.Option.Has(protocol.RequestOptionChunkMasking) {
  370. sizeParser = NewShakeSizeParser(s.responseBodyIV[:])
  371. }
  372. var padding crypto.PaddingLengthGenerator
  373. if request.Option.Has(protocol.RequestOptionGlobalPadding) {
  374. padding = sizeParser.(crypto.PaddingLengthGenerator)
  375. }
  376. switch request.Security {
  377. case protocol.SecurityType_NONE:
  378. if request.Option.Has(protocol.RequestOptionChunkStream) {
  379. if request.Command.TransferType() == protocol.TransferTypeStream {
  380. return crypto.NewChunkStreamWriter(sizeParser, writer)
  381. }
  382. auth := &crypto.AEADAuthenticator{
  383. AEAD: new(NoOpAuthenticator),
  384. NonceGenerator: crypto.GenerateEmptyBytes(),
  385. AdditionalDataGenerator: crypto.GenerateEmptyBytes(),
  386. }
  387. return crypto.NewAuthenticationWriter(auth, sizeParser, writer, protocol.TransferTypePacket, padding)
  388. }
  389. return buf.NewWriter(writer)
  390. case protocol.SecurityType_LEGACY:
  391. if request.Option.Has(protocol.RequestOptionChunkStream) {
  392. auth := &crypto.AEADAuthenticator{
  393. AEAD: new(FnvAuthenticator),
  394. NonceGenerator: crypto.GenerateEmptyBytes(),
  395. AdditionalDataGenerator: crypto.GenerateEmptyBytes(),
  396. }
  397. return crypto.NewAuthenticationWriter(auth, sizeParser, s.responseWriter, request.Command.TransferType(), padding)
  398. }
  399. return &buf.SequentialWriter{Writer: s.responseWriter}
  400. case protocol.SecurityType_AES128_GCM:
  401. aead := crypto.NewAesGcm(s.responseBodyKey[:])
  402. auth := &crypto.AEADAuthenticator{
  403. AEAD: aead,
  404. NonceGenerator: GenerateChunkNonce(s.responseBodyIV[:], uint32(aead.NonceSize())),
  405. AdditionalDataGenerator: crypto.GenerateEmptyBytes(),
  406. }
  407. return crypto.NewAuthenticationWriter(auth, sizeParser, writer, request.Command.TransferType(), padding)
  408. case protocol.SecurityType_CHACHA20_POLY1305:
  409. aead, _ := chacha20poly1305.New(GenerateChacha20Poly1305Key(s.responseBodyKey[:]))
  410. auth := &crypto.AEADAuthenticator{
  411. AEAD: aead,
  412. NonceGenerator: GenerateChunkNonce(s.responseBodyIV[:], uint32(aead.NonceSize())),
  413. AdditionalDataGenerator: crypto.GenerateEmptyBytes(),
  414. }
  415. return crypto.NewAuthenticationWriter(auth, sizeParser, writer, request.Command.TransferType(), padding)
  416. default:
  417. panic("Unknown security type.")
  418. }
  419. }
  420. func (s *ServerSession) DrainConnN(reader io.Reader, n int) error {
  421. _, err := io.CopyN(ioutil.Discard, reader, int64(n))
  422. return err
  423. }