handshake.go 10 KB

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  1. // Copyright 2013 The Go Authors. All rights reserved.
  2. // Use of this source code is governed by a BSD-style
  3. // license that can be found in the LICENSE file.
  4. package ssh
  5. import (
  6. "crypto/rand"
  7. "errors"
  8. "fmt"
  9. "io"
  10. "log"
  11. "net"
  12. "sync"
  13. )
  14. // debugHandshake, if set, prints messages sent and received. Key
  15. // exchange messages are printed as if DH were used, so the debug
  16. // messages are wrong when using ECDH.
  17. const debugHandshake = false
  18. // keyingTransport is a packet based transport that supports key
  19. // changes. It need not be thread-safe. It should pass through
  20. // msgNewKeys in both directions.
  21. type keyingTransport interface {
  22. packetConn
  23. // prepareKeyChange sets up a key change. The key change for a
  24. // direction will be effected if a msgNewKeys message is sent
  25. // or received.
  26. prepareKeyChange(*algorithms, *kexResult) error
  27. }
  28. // handshakeTransport implements rekeying on top of a keyingTransport
  29. // and offers a thread-safe writePacket() interface.
  30. type handshakeTransport struct {
  31. conn keyingTransport
  32. config *Config
  33. serverVersion []byte
  34. clientVersion []byte
  35. // hostKeys is non-empty if we are the server. In that case,
  36. // it contains all host keys that can be used to sign the
  37. // connection.
  38. hostKeys []Signer
  39. // hostKeyAlgorithms is non-empty if we are the client. In that case,
  40. // we accept these key types from the server as host key.
  41. hostKeyAlgorithms []string
  42. // On read error, incoming is closed, and readError is set.
  43. incoming chan []byte
  44. readError error
  45. // data for host key checking
  46. hostKeyCallback func(hostname string, remote net.Addr, key PublicKey) error
  47. dialAddress string
  48. remoteAddr net.Addr
  49. readSinceKex uint64
  50. // Protects the writing side of the connection
  51. mu sync.Mutex
  52. cond *sync.Cond
  53. sentInitPacket []byte
  54. sentInitMsg *kexInitMsg
  55. writtenSinceKex uint64
  56. writeError error
  57. // The session ID or nil if first kex did not complete yet.
  58. sessionID []byte
  59. }
  60. func newHandshakeTransport(conn keyingTransport, config *Config, clientVersion, serverVersion []byte) *handshakeTransport {
  61. t := &handshakeTransport{
  62. conn: conn,
  63. serverVersion: serverVersion,
  64. clientVersion: clientVersion,
  65. incoming: make(chan []byte, 16),
  66. config: config,
  67. }
  68. t.cond = sync.NewCond(&t.mu)
  69. return t
  70. }
  71. func newClientTransport(conn keyingTransport, clientVersion, serverVersion []byte, config *ClientConfig, dialAddr string, addr net.Addr) *handshakeTransport {
  72. t := newHandshakeTransport(conn, &config.Config, clientVersion, serverVersion)
  73. t.dialAddress = dialAddr
  74. t.remoteAddr = addr
  75. t.hostKeyCallback = config.HostKeyCallback
  76. if config.HostKeyAlgorithms != nil {
  77. t.hostKeyAlgorithms = config.HostKeyAlgorithms
  78. } else {
  79. t.hostKeyAlgorithms = supportedHostKeyAlgos
  80. }
  81. go t.readLoop()
  82. return t
  83. }
  84. func newServerTransport(conn keyingTransport, clientVersion, serverVersion []byte, config *ServerConfig) *handshakeTransport {
  85. t := newHandshakeTransport(conn, &config.Config, clientVersion, serverVersion)
  86. t.hostKeys = config.hostKeys
  87. go t.readLoop()
  88. return t
  89. }
  90. func (t *handshakeTransport) getSessionID() []byte {
  91. return t.sessionID
  92. }
  93. func (t *handshakeTransport) id() string {
  94. if len(t.hostKeys) > 0 {
  95. return "server"
  96. }
  97. return "client"
  98. }
  99. func (t *handshakeTransport) readPacket() ([]byte, error) {
  100. p, ok := <-t.incoming
  101. if !ok {
  102. return nil, t.readError
  103. }
  104. return p, nil
  105. }
  106. func (t *handshakeTransport) readLoop() {
  107. for {
  108. p, err := t.readOnePacket()
  109. if err != nil {
  110. t.readError = err
  111. close(t.incoming)
  112. break
  113. }
  114. if p[0] == msgIgnore || p[0] == msgDebug {
  115. continue
  116. }
  117. t.incoming <- p
  118. }
  119. // If we can't read, declare the writing part dead too.
  120. t.mu.Lock()
  121. defer t.mu.Unlock()
  122. if t.writeError == nil {
  123. t.writeError = t.readError
  124. }
  125. t.cond.Broadcast()
  126. }
  127. func (t *handshakeTransport) readOnePacket() ([]byte, error) {
  128. if t.readSinceKex > t.config.RekeyThreshold {
  129. if err := t.requestKeyChange(); err != nil {
  130. return nil, err
  131. }
  132. }
  133. p, err := t.conn.readPacket()
  134. if err != nil {
  135. return nil, err
  136. }
  137. t.readSinceKex += uint64(len(p))
  138. if debugHandshake {
  139. msg, err := decode(p)
  140. log.Printf("%s got %T %v (%v)", t.id(), msg, msg, err)
  141. }
  142. if p[0] != msgKexInit {
  143. return p, nil
  144. }
  145. t.mu.Lock()
  146. err = t.enterKeyExchangeLocked(p)
  147. if err != nil {
  148. // drop connection
  149. t.conn.Close()
  150. t.writeError = err
  151. }
  152. if debugHandshake {
  153. log.Printf("%s exited key exchange, err %v", t.id(), err)
  154. }
  155. // Unblock writers.
  156. t.sentInitMsg = nil
  157. t.sentInitPacket = nil
  158. t.cond.Broadcast()
  159. t.writtenSinceKex = 0
  160. t.mu.Unlock()
  161. if err != nil {
  162. return nil, err
  163. }
  164. t.readSinceKex = 0
  165. return []byte{msgNewKeys}, nil
  166. }
  167. // keyChangeCategory describes whether a key exchange is the first on a
  168. // connection, or a subsequent one.
  169. type keyChangeCategory bool
  170. const (
  171. firstKeyExchange keyChangeCategory = true
  172. subsequentKeyExchange keyChangeCategory = false
  173. )
  174. // sendKexInit sends a key change message, and returns the message
  175. // that was sent. After initiating the key change, all writes will be
  176. // blocked until the change is done, and a failed key change will
  177. // close the underlying transport. This function is safe for
  178. // concurrent use by multiple goroutines.
  179. func (t *handshakeTransport) sendKexInit(isFirst keyChangeCategory) (*kexInitMsg, []byte, error) {
  180. t.mu.Lock()
  181. defer t.mu.Unlock()
  182. return t.sendKexInitLocked(isFirst)
  183. }
  184. func (t *handshakeTransport) requestInitialKeyChange() error {
  185. _, _, err := t.sendKexInit(firstKeyExchange)
  186. return err
  187. }
  188. func (t *handshakeTransport) requestKeyChange() error {
  189. _, _, err := t.sendKexInit(subsequentKeyExchange)
  190. return err
  191. }
  192. // sendKexInitLocked sends a key change message. t.mu must be locked
  193. // while this happens.
  194. func (t *handshakeTransport) sendKexInitLocked(isFirst keyChangeCategory) (*kexInitMsg, []byte, error) {
  195. // kexInits may be sent either in response to the other side,
  196. // or because our side wants to initiate a key change, so we
  197. // may have already sent a kexInit. In that case, don't send a
  198. // second kexInit.
  199. if t.sentInitMsg != nil {
  200. return t.sentInitMsg, t.sentInitPacket, nil
  201. }
  202. // If this is the initial key change, but we already have a sessionID,
  203. // then do nothing because the key exchange has already completed
  204. // asynchronously.
  205. if isFirst && t.sessionID != nil {
  206. return nil, nil, nil
  207. }
  208. msg := &kexInitMsg{
  209. KexAlgos: t.config.KeyExchanges,
  210. CiphersClientServer: t.config.Ciphers,
  211. CiphersServerClient: t.config.Ciphers,
  212. MACsClientServer: t.config.MACs,
  213. MACsServerClient: t.config.MACs,
  214. CompressionClientServer: supportedCompressions,
  215. CompressionServerClient: supportedCompressions,
  216. }
  217. io.ReadFull(rand.Reader, msg.Cookie[:])
  218. if len(t.hostKeys) > 0 {
  219. for _, k := range t.hostKeys {
  220. msg.ServerHostKeyAlgos = append(
  221. msg.ServerHostKeyAlgos, k.PublicKey().Type())
  222. }
  223. } else {
  224. msg.ServerHostKeyAlgos = t.hostKeyAlgorithms
  225. }
  226. packet := Marshal(msg)
  227. // writePacket destroys the contents, so save a copy.
  228. packetCopy := make([]byte, len(packet))
  229. copy(packetCopy, packet)
  230. if err := t.conn.writePacket(packetCopy); err != nil {
  231. return nil, nil, err
  232. }
  233. t.sentInitMsg = msg
  234. t.sentInitPacket = packet
  235. return msg, packet, nil
  236. }
  237. func (t *handshakeTransport) writePacket(p []byte) error {
  238. t.mu.Lock()
  239. defer t.mu.Unlock()
  240. if t.writtenSinceKex > t.config.RekeyThreshold {
  241. t.sendKexInitLocked(subsequentKeyExchange)
  242. }
  243. for t.sentInitMsg != nil && t.writeError == nil {
  244. t.cond.Wait()
  245. }
  246. if t.writeError != nil {
  247. return t.writeError
  248. }
  249. t.writtenSinceKex += uint64(len(p))
  250. switch p[0] {
  251. case msgKexInit:
  252. return errors.New("ssh: only handshakeTransport can send kexInit")
  253. case msgNewKeys:
  254. return errors.New("ssh: only handshakeTransport can send newKeys")
  255. default:
  256. return t.conn.writePacket(p)
  257. }
  258. }
  259. func (t *handshakeTransport) Close() error {
  260. return t.conn.Close()
  261. }
  262. // enterKeyExchange runs the key exchange. t.mu must be held while running this.
  263. func (t *handshakeTransport) enterKeyExchangeLocked(otherInitPacket []byte) error {
  264. if debugHandshake {
  265. log.Printf("%s entered key exchange", t.id())
  266. }
  267. myInit, myInitPacket, err := t.sendKexInitLocked(subsequentKeyExchange)
  268. if err != nil {
  269. return err
  270. }
  271. otherInit := &kexInitMsg{}
  272. if err := Unmarshal(otherInitPacket, otherInit); err != nil {
  273. return err
  274. }
  275. magics := handshakeMagics{
  276. clientVersion: t.clientVersion,
  277. serverVersion: t.serverVersion,
  278. clientKexInit: otherInitPacket,
  279. serverKexInit: myInitPacket,
  280. }
  281. clientInit := otherInit
  282. serverInit := myInit
  283. if len(t.hostKeys) == 0 {
  284. clientInit = myInit
  285. serverInit = otherInit
  286. magics.clientKexInit = myInitPacket
  287. magics.serverKexInit = otherInitPacket
  288. }
  289. algs, err := findAgreedAlgorithms(clientInit, serverInit)
  290. if err != nil {
  291. return err
  292. }
  293. // We don't send FirstKexFollows, but we handle receiving it.
  294. if otherInit.FirstKexFollows && algs.kex != otherInit.KexAlgos[0] {
  295. // other side sent a kex message for the wrong algorithm,
  296. // which we have to ignore.
  297. if _, err := t.conn.readPacket(); err != nil {
  298. return err
  299. }
  300. }
  301. kex, ok := kexAlgoMap[algs.kex]
  302. if !ok {
  303. return fmt.Errorf("ssh: unexpected key exchange algorithm %v", algs.kex)
  304. }
  305. var result *kexResult
  306. if len(t.hostKeys) > 0 {
  307. result, err = t.server(kex, algs, &magics)
  308. } else {
  309. result, err = t.client(kex, algs, &magics)
  310. }
  311. if err != nil {
  312. return err
  313. }
  314. if t.sessionID == nil {
  315. t.sessionID = result.H
  316. result.SessionID = result.H
  317. }
  318. t.conn.prepareKeyChange(algs, result)
  319. if err = t.conn.writePacket([]byte{msgNewKeys}); err != nil {
  320. return err
  321. }
  322. if packet, err := t.conn.readPacket(); err != nil {
  323. return err
  324. } else if packet[0] != msgNewKeys {
  325. return unexpectedMessageError(msgNewKeys, packet[0])
  326. }
  327. return nil
  328. }
  329. func (t *handshakeTransport) server(kex kexAlgorithm, algs *algorithms, magics *handshakeMagics) (*kexResult, error) {
  330. var hostKey Signer
  331. for _, k := range t.hostKeys {
  332. if algs.hostKey == k.PublicKey().Type() {
  333. hostKey = k
  334. }
  335. }
  336. r, err := kex.Server(t.conn, t.config.Rand, magics, hostKey)
  337. return r, err
  338. }
  339. func (t *handshakeTransport) client(kex kexAlgorithm, algs *algorithms, magics *handshakeMagics) (*kexResult, error) {
  340. result, err := kex.Client(t.conn, t.config.Rand, magics)
  341. if err != nil {
  342. return nil, err
  343. }
  344. hostKey, err := ParsePublicKey(result.HostKey)
  345. if err != nil {
  346. return nil, err
  347. }
  348. if err := verifyHostKeySignature(hostKey, result); err != nil {
  349. return nil, err
  350. }
  351. if t.hostKeyCallback != nil {
  352. err = t.hostKeyCallback(t.dialAddress, t.remoteAddr, hostKey)
  353. if err != nil {
  354. return nil, err
  355. }
  356. }
  357. return result, nil
  358. }