controller.go 53 KB

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  1. /*
  2. * Copyright (c) 2015, Psiphon Inc.
  3. * All rights reserved.
  4. *
  5. * This program is free software: you can redistribute it and/or modify
  6. * it under the terms of the GNU General Public License as published by
  7. * the Free Software Foundation, either version 3 of the License, or
  8. * (at your option) any later version.
  9. *
  10. * This program is distributed in the hope that it will be useful,
  11. * but WITHOUT ANY WARRANTY; without even the implied warranty of
  12. * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
  13. * GNU General Public License for more details.
  14. *
  15. * You should have received a copy of the GNU General Public License
  16. * along with this program. If not, see <http://www.gnu.org/licenses/>.
  17. *
  18. */
  19. // Package psiphon implements the core tunnel functionality of a Psiphon client.
  20. // The main function is RunForever, which runs a Controller that obtains lists of
  21. // servers, establishes tunnel connections, and runs local proxies through which
  22. // tunneled traffic may be sent.
  23. package psiphon
  24. import (
  25. "errors"
  26. "fmt"
  27. "math/rand"
  28. "net"
  29. "sync"
  30. "time"
  31. "github.com/Psiphon-Inc/goarista/monotime"
  32. "github.com/Psiphon-Labs/psiphon-tunnel-core/psiphon/common"
  33. "github.com/Psiphon-Labs/psiphon-tunnel-core/psiphon/common/protocol"
  34. "github.com/Psiphon-Labs/psiphon-tunnel-core/psiphon/common/tun"
  35. )
  36. // Controller is a tunnel lifecycle coordinator. It manages lists of servers to
  37. // connect to; establishes and monitors tunnels; and runs local proxies which
  38. // route traffic through the tunnels.
  39. type Controller struct {
  40. config *Config
  41. sessionId string
  42. componentFailureSignal chan struct{}
  43. shutdownBroadcast chan struct{}
  44. runWaitGroup *sync.WaitGroup
  45. establishedTunnels chan *Tunnel
  46. failedTunnels chan *Tunnel
  47. tunnelMutex sync.Mutex
  48. establishedOnce bool
  49. tunnels []*Tunnel
  50. nextTunnel int
  51. startedConnectedReporter bool
  52. isEstablishing bool
  53. concurrentEstablishTunnelsMutex sync.Mutex
  54. concurrentEstablishTunnels int
  55. concurrentMeekEstablishTunnels int
  56. peakConcurrentEstablishTunnels int
  57. peakConcurrentMeekEstablishTunnels int
  58. establishWaitGroup *sync.WaitGroup
  59. stopEstablishingBroadcast chan struct{}
  60. candidateServerEntries chan *candidateServerEntry
  61. establishPendingConns *common.Conns
  62. untunneledPendingConns *common.Conns
  63. untunneledDialConfig *DialConfig
  64. splitTunnelClassifier *SplitTunnelClassifier
  65. signalFetchCommonRemoteServerList chan struct{}
  66. signalFetchObfuscatedServerLists chan struct{}
  67. signalDownloadUpgrade chan string
  68. impairedProtocolClassification map[string]int
  69. signalReportConnected chan struct{}
  70. serverAffinityDoneBroadcast chan struct{}
  71. newClientVerificationPayload chan string
  72. packetTunnelClient *tun.Client
  73. packetTunnelTransport *PacketTunnelTransport
  74. }
  75. type candidateServerEntry struct {
  76. serverEntry *protocol.ServerEntry
  77. isServerAffinityCandidate bool
  78. adjustedEstablishStartTime monotime.Time
  79. }
  80. // NewController initializes a new controller.
  81. func NewController(config *Config) (controller *Controller, err error) {
  82. // Needed by regen, at least
  83. rand.Seed(int64(time.Now().Nanosecond()))
  84. // The session ID for the Psiphon server API is used across all
  85. // tunnels established by the controller.
  86. NoticeSessionId(config.SessionID)
  87. // untunneledPendingConns may be used to interrupt the fetch remote server list
  88. // request and other untunneled connection establishments. BindToDevice may be
  89. // used to exclude these requests and connection from VPN routing.
  90. // TODO: fetch remote server list and untunneled upgrade download should remove
  91. // their completed conns from untunneledPendingConns.
  92. untunneledPendingConns := new(common.Conns)
  93. untunneledDialConfig := &DialConfig{
  94. UpstreamProxyUrl: config.UpstreamProxyUrl,
  95. CustomHeaders: config.CustomHeaders,
  96. PendingConns: untunneledPendingConns,
  97. DeviceBinder: config.DeviceBinder,
  98. DnsServerGetter: config.DnsServerGetter,
  99. IPv6Synthesizer: config.IPv6Synthesizer,
  100. UseIndistinguishableTLS: config.UseIndistinguishableTLS,
  101. TrustedCACertificatesFilename: config.TrustedCACertificatesFilename,
  102. DeviceRegion: config.DeviceRegion,
  103. }
  104. controller = &Controller{
  105. config: config,
  106. sessionId: config.SessionID,
  107. // componentFailureSignal receives a signal from a component (including socks and
  108. // http local proxies) if they unexpectedly fail. Senders should not block.
  109. // Buffer allows at least one stop signal to be sent before there is a receiver.
  110. componentFailureSignal: make(chan struct{}, 1),
  111. shutdownBroadcast: make(chan struct{}),
  112. runWaitGroup: new(sync.WaitGroup),
  113. // establishedTunnels and failedTunnels buffer sizes are large enough to
  114. // receive full pools of tunnels without blocking. Senders should not block.
  115. establishedTunnels: make(chan *Tunnel, config.TunnelPoolSize),
  116. failedTunnels: make(chan *Tunnel, config.TunnelPoolSize),
  117. tunnels: make([]*Tunnel, 0),
  118. establishedOnce: false,
  119. startedConnectedReporter: false,
  120. isEstablishing: false,
  121. establishPendingConns: new(common.Conns),
  122. untunneledPendingConns: untunneledPendingConns,
  123. untunneledDialConfig: untunneledDialConfig,
  124. impairedProtocolClassification: make(map[string]int),
  125. // TODO: Add a buffer of 1 so we don't miss a signal while receiver is
  126. // starting? Trade-off is potential back-to-back fetch remotes. As-is,
  127. // establish will eventually signal another fetch remote.
  128. signalFetchCommonRemoteServerList: make(chan struct{}),
  129. signalFetchObfuscatedServerLists: make(chan struct{}),
  130. signalDownloadUpgrade: make(chan string),
  131. signalReportConnected: make(chan struct{}),
  132. // Buffer allows SetClientVerificationPayloadForActiveTunnels to submit one
  133. // new payload without blocking or dropping it.
  134. newClientVerificationPayload: make(chan string, 1),
  135. }
  136. controller.splitTunnelClassifier = NewSplitTunnelClassifier(config, controller)
  137. if config.PacketTunnelTunFileDescriptor > 0 {
  138. // Run a packet tunnel client. The lifetime of the tun.Client is the
  139. // lifetime of the Controller, so it exists across tunnel establishments
  140. // and reestablishments. The PacketTunnelTransport provides a layer
  141. // that presents a continuosuly existing transport to the tun.Client;
  142. // it's set to use new SSH channels after new SSH tunnel establishes.
  143. packetTunnelTransport := NewPacketTunnelTransport()
  144. packetTunnelClient, err := tun.NewClient(&tun.ClientConfig{
  145. Logger: NoticeCommonLogger(),
  146. TunFileDescriptor: config.PacketTunnelTunFileDescriptor,
  147. Transport: packetTunnelTransport,
  148. })
  149. if err != nil {
  150. return nil, common.ContextError(err)
  151. }
  152. controller.packetTunnelClient = packetTunnelClient
  153. controller.packetTunnelTransport = packetTunnelTransport
  154. }
  155. return controller, nil
  156. }
  157. // Run executes the controller. It launches components and then monitors
  158. // for a shutdown signal; after receiving the signal it shuts down the
  159. // controller.
  160. // The components include:
  161. // - the periodic remote server list fetcher
  162. // - the connected reporter
  163. // - the tunnel manager
  164. // - a local SOCKS proxy that port forwards through the pool of tunnels
  165. // - a local HTTP proxy that port forwards through the pool of tunnels
  166. func (controller *Controller) Run(shutdownBroadcast <-chan struct{}) {
  167. ReportAvailableRegions()
  168. // Start components
  169. // TODO: IPv6 support
  170. var listenIP string
  171. if controller.config.ListenInterface == "" {
  172. listenIP = "127.0.0.1"
  173. } else if controller.config.ListenInterface == "any" {
  174. listenIP = "0.0.0.0"
  175. } else {
  176. IPv4Address, _, err := common.GetInterfaceIPAddresses(controller.config.ListenInterface)
  177. if err == nil && IPv4Address == nil {
  178. err = fmt.Errorf("no IPv4 address for interface %s", controller.config.ListenInterface)
  179. }
  180. if err != nil {
  181. NoticeError("error getting listener IP: %s", err)
  182. return
  183. }
  184. listenIP = IPv4Address.String()
  185. }
  186. if !controller.config.DisableLocalSocksProxy {
  187. socksProxy, err := NewSocksProxy(controller.config, controller, listenIP)
  188. if err != nil {
  189. NoticeAlert("error initializing local SOCKS proxy: %s", err)
  190. return
  191. }
  192. defer socksProxy.Close()
  193. }
  194. if !controller.config.DisableLocalHTTPProxy {
  195. httpProxy, err := NewHttpProxy(
  196. controller.config, controller.untunneledDialConfig, controller, listenIP)
  197. if err != nil {
  198. NoticeAlert("error initializing local HTTP proxy: %s", err)
  199. return
  200. }
  201. defer httpProxy.Close()
  202. }
  203. if !controller.config.DisableRemoteServerListFetcher {
  204. retryPeriod := time.Duration(
  205. *controller.config.FetchRemoteServerListRetryPeriodSeconds) * time.Second
  206. if controller.config.RemoteServerListURLs != nil {
  207. controller.runWaitGroup.Add(1)
  208. go controller.remoteServerListFetcher(
  209. "common",
  210. FetchCommonRemoteServerList,
  211. controller.signalFetchCommonRemoteServerList,
  212. retryPeriod,
  213. FETCH_REMOTE_SERVER_LIST_STALE_PERIOD)
  214. }
  215. if controller.config.ObfuscatedServerListRootURLs != nil {
  216. controller.runWaitGroup.Add(1)
  217. go controller.remoteServerListFetcher(
  218. "obfuscated",
  219. FetchObfuscatedServerLists,
  220. controller.signalFetchObfuscatedServerLists,
  221. retryPeriod,
  222. FETCH_REMOTE_SERVER_LIST_STALE_PERIOD)
  223. }
  224. }
  225. if controller.config.UpgradeDownloadURLs != nil {
  226. controller.runWaitGroup.Add(1)
  227. go controller.upgradeDownloader()
  228. }
  229. /// Note: the connected reporter isn't started until a tunnel is
  230. // established
  231. controller.runWaitGroup.Add(1)
  232. go controller.runTunnels()
  233. if *controller.config.EstablishTunnelTimeoutSeconds != 0 {
  234. controller.runWaitGroup.Add(1)
  235. go controller.establishTunnelWatcher()
  236. }
  237. if controller.packetTunnelClient != nil {
  238. controller.packetTunnelClient.Start()
  239. }
  240. // Wait while running
  241. select {
  242. case <-shutdownBroadcast:
  243. NoticeInfo("controller shutdown by request")
  244. case <-controller.componentFailureSignal:
  245. NoticeAlert("controller shutdown due to component failure")
  246. }
  247. close(controller.shutdownBroadcast)
  248. if controller.packetTunnelClient != nil {
  249. controller.packetTunnelClient.Stop()
  250. }
  251. // Interrupts and stops establish workers blocking on
  252. // tunnel establishment network operations.
  253. controller.establishPendingConns.CloseAll()
  254. // Interrupts and stops workers blocking on untunneled
  255. // network operations. This includes fetch remote server
  256. // list and untunneled uprade download.
  257. // Note: this doesn't interrupt the final, untunneled status
  258. // requests started in operateTunnel after shutdownBroadcast.
  259. // This is by design -- we want to give these requests a short
  260. // timer period to succeed and deliver stats. These particular
  261. // requests opt out of untunneledPendingConns and use the
  262. // PSIPHON_API_SHUTDOWN_SERVER_TIMEOUT timeout (see
  263. // doUntunneledStatusRequest).
  264. controller.untunneledPendingConns.CloseAll()
  265. // Now with all workers signaled to stop and with all
  266. // blocking network operations interrupted, wait for
  267. // all workers to terminate.
  268. controller.runWaitGroup.Wait()
  269. controller.splitTunnelClassifier.Shutdown()
  270. NoticeInfo("exiting controller")
  271. NoticeExiting()
  272. }
  273. // SignalComponentFailure notifies the controller that an associated component has failed.
  274. // This will terminate the controller.
  275. func (controller *Controller) SignalComponentFailure() {
  276. select {
  277. case controller.componentFailureSignal <- *new(struct{}):
  278. default:
  279. }
  280. }
  281. // SetClientVerificationPayloadForActiveTunnels sets the client verification
  282. // payload that is to be sent in client verification requests to all established
  283. // tunnels.
  284. //
  285. // Client verification is used to verify that the client is a
  286. // valid Psiphon client, which will determine how the server treats
  287. // the client traffic. The proof-of-validity is platform-specific
  288. // and the payload is opaque to this function but assumed to be JSON.
  289. //
  290. // Since, in some cases, verification payload cannot be determined until
  291. // after tunnel-core starts, the payload cannot be simply specified in
  292. // the Config.
  293. //
  294. // SetClientVerificationPayloadForActiveTunnels will not block enqueuing a new verification
  295. // payload. One new payload can be enqueued, after which additional payloads
  296. // will be dropped if a payload is still enqueued.
  297. func (controller *Controller) SetClientVerificationPayloadForActiveTunnels(clientVerificationPayload string) {
  298. select {
  299. case controller.newClientVerificationPayload <- clientVerificationPayload:
  300. default:
  301. }
  302. }
  303. // remoteServerListFetcher fetches an out-of-band list of server entries
  304. // for more tunnel candidates. It fetches when signalled, with retries
  305. // on failure.
  306. func (controller *Controller) remoteServerListFetcher(
  307. name string,
  308. fetcher RemoteServerListFetcher,
  309. signal <-chan struct{},
  310. retryPeriod, stalePeriod time.Duration) {
  311. defer controller.runWaitGroup.Done()
  312. var lastFetchTime monotime.Time
  313. fetcherLoop:
  314. for {
  315. // Wait for a signal before fetching
  316. select {
  317. case <-signal:
  318. case <-controller.shutdownBroadcast:
  319. break fetcherLoop
  320. }
  321. // Skip fetch entirely (i.e., send no request at all, even when ETag would save
  322. // on response size) when a recent fetch was successful
  323. if lastFetchTime != 0 &&
  324. lastFetchTime.Add(stalePeriod).After(monotime.Now()) {
  325. continue
  326. }
  327. retryLoop:
  328. for attempt := 0; ; attempt++ {
  329. // Don't attempt to fetch while there is no network connectivity,
  330. // to avoid alert notice noise.
  331. if !WaitForNetworkConnectivity(
  332. controller.config.NetworkConnectivityChecker,
  333. controller.shutdownBroadcast) {
  334. break fetcherLoop
  335. }
  336. // Pick any active tunnel and make the next fetch attempt. If there's
  337. // no active tunnel, the untunneledDialConfig will be used.
  338. tunnel := controller.getNextActiveTunnel()
  339. err := fetcher(
  340. controller.config,
  341. attempt,
  342. tunnel,
  343. controller.untunneledDialConfig)
  344. if err == nil {
  345. lastFetchTime = monotime.Now()
  346. break retryLoop
  347. }
  348. NoticeAlert("failed to fetch %s remote server list: %s", name, err)
  349. timeout := time.After(retryPeriod)
  350. select {
  351. case <-timeout:
  352. case <-controller.shutdownBroadcast:
  353. break fetcherLoop
  354. }
  355. }
  356. }
  357. NoticeInfo("exiting %s remote server list fetcher", name)
  358. }
  359. // establishTunnelWatcher terminates the controller if a tunnel
  360. // has not been established in the configured time period. This
  361. // is regardless of how many tunnels are presently active -- meaning
  362. // that if an active tunnel was established and lost the controller
  363. // is left running (to re-establish).
  364. func (controller *Controller) establishTunnelWatcher() {
  365. defer controller.runWaitGroup.Done()
  366. timeout := time.After(
  367. time.Duration(*controller.config.EstablishTunnelTimeoutSeconds) * time.Second)
  368. select {
  369. case <-timeout:
  370. if !controller.hasEstablishedOnce() {
  371. NoticeAlert("failed to establish tunnel before timeout")
  372. controller.SignalComponentFailure()
  373. }
  374. case <-controller.shutdownBroadcast:
  375. }
  376. NoticeInfo("exiting establish tunnel watcher")
  377. }
  378. // connectedReporter sends periodic "connected" requests to the Psiphon API.
  379. // These requests are for server-side unique user stats calculation. See the
  380. // comment in DoConnectedRequest for a description of the request mechanism.
  381. // To ensure we don't over- or under-count unique users, only one connected
  382. // request is made across all simultaneous multi-tunnels; and the connected
  383. // request is repeated periodically for very long-lived tunnels.
  384. // The signalReportConnected mechanism is used to trigger another connected
  385. // request immediately after a reconnect.
  386. func (controller *Controller) connectedReporter() {
  387. defer controller.runWaitGroup.Done()
  388. loop:
  389. for {
  390. // Pick any active tunnel and make the next connected request. No error
  391. // is logged if there's no active tunnel, as that's not an unexpected condition.
  392. reported := false
  393. tunnel := controller.getNextActiveTunnel()
  394. if tunnel != nil {
  395. err := tunnel.serverContext.DoConnectedRequest()
  396. if err == nil {
  397. reported = true
  398. } else {
  399. NoticeAlert("failed to make connected request: %s", err)
  400. }
  401. }
  402. // Schedule the next connected request and wait.
  403. var duration time.Duration
  404. if reported {
  405. duration = PSIPHON_API_CONNECTED_REQUEST_PERIOD
  406. } else {
  407. duration = PSIPHON_API_CONNECTED_REQUEST_RETRY_PERIOD
  408. }
  409. timeout := time.After(duration)
  410. select {
  411. case <-controller.signalReportConnected:
  412. case <-timeout:
  413. // Make another connected request
  414. case <-controller.shutdownBroadcast:
  415. break loop
  416. }
  417. }
  418. NoticeInfo("exiting connected reporter")
  419. }
  420. func (controller *Controller) startOrSignalConnectedReporter() {
  421. // session is nil when DisableApi is set
  422. if controller.config.DisableApi {
  423. return
  424. }
  425. // Start the connected reporter after the first tunnel is established.
  426. // Concurrency note: only the runTunnels goroutine may access startedConnectedReporter.
  427. if !controller.startedConnectedReporter {
  428. controller.startedConnectedReporter = true
  429. controller.runWaitGroup.Add(1)
  430. go controller.connectedReporter()
  431. } else {
  432. select {
  433. case controller.signalReportConnected <- *new(struct{}):
  434. default:
  435. }
  436. }
  437. }
  438. // upgradeDownloader makes periodic attempts to complete a client upgrade
  439. // download. DownloadUpgrade() is resumable, so each attempt has potential for
  440. // getting closer to completion, even in conditions where the download or
  441. // tunnel is repeatedly interrupted.
  442. // An upgrade download is triggered by either a handshake response indicating
  443. // that a new version is available; or after failing to connect, in which case
  444. // it's useful to check, out-of-band, for an upgrade with new circumvention
  445. // capabilities.
  446. // Once the download operation completes successfully, the downloader exits
  447. // and is not run again: either there is not a newer version, or the upgrade
  448. // has been downloaded and is ready to be applied.
  449. // We're assuming that the upgrade will be applied and the entire system
  450. // restarted before another upgrade is to be downloaded.
  451. //
  452. // TODO: refactor upgrade downloader and remote server list fetcher to use
  453. // common code (including the resumable download routines).
  454. //
  455. func (controller *Controller) upgradeDownloader() {
  456. defer controller.runWaitGroup.Done()
  457. var lastDownloadTime monotime.Time
  458. downloadLoop:
  459. for {
  460. // Wait for a signal before downloading
  461. var handshakeVersion string
  462. select {
  463. case handshakeVersion = <-controller.signalDownloadUpgrade:
  464. case <-controller.shutdownBroadcast:
  465. break downloadLoop
  466. }
  467. // Unless handshake is explicitly advertizing a new version, skip
  468. // checking entirely when a recent download was successful.
  469. if handshakeVersion == "" &&
  470. lastDownloadTime != 0 &&
  471. lastDownloadTime.Add(DOWNLOAD_UPGRADE_STALE_PERIOD).After(monotime.Now()) {
  472. continue
  473. }
  474. retryLoop:
  475. for attempt := 0; ; attempt++ {
  476. // Don't attempt to download while there is no network connectivity,
  477. // to avoid alert notice noise.
  478. if !WaitForNetworkConnectivity(
  479. controller.config.NetworkConnectivityChecker,
  480. controller.shutdownBroadcast) {
  481. break downloadLoop
  482. }
  483. // Pick any active tunnel and make the next download attempt. If there's
  484. // no active tunnel, the untunneledDialConfig will be used.
  485. tunnel := controller.getNextActiveTunnel()
  486. err := DownloadUpgrade(
  487. controller.config,
  488. attempt,
  489. handshakeVersion,
  490. tunnel,
  491. controller.untunneledDialConfig)
  492. if err == nil {
  493. lastDownloadTime = monotime.Now()
  494. break retryLoop
  495. }
  496. NoticeAlert("failed to download upgrade: %s", err)
  497. timeout := time.After(
  498. time.Duration(*controller.config.DownloadUpgradeRetryPeriodSeconds) * time.Second)
  499. select {
  500. case <-timeout:
  501. case <-controller.shutdownBroadcast:
  502. break downloadLoop
  503. }
  504. }
  505. }
  506. NoticeInfo("exiting upgrade downloader")
  507. }
  508. // runTunnels is the controller tunnel management main loop. It starts and stops
  509. // establishing tunnels based on the target tunnel pool size and the current size
  510. // of the pool. Tunnels are established asynchronously using worker goroutines.
  511. //
  512. // When there are no server entries for the target region/protocol, the
  513. // establishCandidateGenerator will yield no candidates and wait before
  514. // trying again. In the meantime, a remote server entry fetch may supply
  515. // valid candidates.
  516. //
  517. // When a tunnel is established, it's added to the active pool. The tunnel's
  518. // operateTunnel goroutine monitors the tunnel.
  519. //
  520. // When a tunnel fails, it's removed from the pool and the establish process is
  521. // restarted to fill the pool.
  522. func (controller *Controller) runTunnels() {
  523. defer controller.runWaitGroup.Done()
  524. var clientVerificationPayload string
  525. // Start running
  526. controller.startEstablishing()
  527. loop:
  528. for {
  529. select {
  530. case failedTunnel := <-controller.failedTunnels:
  531. NoticeAlert("tunnel failed: %s", failedTunnel.serverEntry.IpAddress)
  532. controller.terminateTunnel(failedTunnel)
  533. // Note: we make this extra check to ensure the shutdown signal takes priority
  534. // and that we do not start establishing. Critically, startEstablishing() calls
  535. // establishPendingConns.Reset() which clears the closed flag in
  536. // establishPendingConns; this causes the pendingConns.Add() within
  537. // interruptibleTCPDial to succeed instead of aborting, and the result
  538. // is that it's possible for establish goroutines to run all the way through
  539. // NewServerContext before being discarded... delaying shutdown.
  540. select {
  541. case <-controller.shutdownBroadcast:
  542. break loop
  543. default:
  544. }
  545. controller.classifyImpairedProtocol(failedTunnel)
  546. // Clear the reference to this tunnel before calling startEstablishing,
  547. // which will invoke a garbage collection.
  548. failedTunnel = nil
  549. // Concurrency note: only this goroutine may call startEstablishing/stopEstablishing
  550. // and access isEstablishing.
  551. if !controller.isEstablishing {
  552. controller.startEstablishing()
  553. }
  554. case establishedTunnel := <-controller.establishedTunnels:
  555. if controller.isImpairedProtocol(establishedTunnel.protocol) {
  556. // Protocol was classified as impaired while this tunnel established.
  557. // This is most likely to occur with TunnelPoolSize > 0. We log the
  558. // event but take no action. Discarding the tunnel would break the
  559. // impaired logic unless we did that (a) only if there are other
  560. // unimpaired protocols; (b) only during the first interation of the
  561. // ESTABLISH_TUNNEL_WORK_TIME loop. By not discarding here, a true
  562. // impaired protocol may require an extra reconnect.
  563. NoticeAlert("established tunnel with impaired protocol: %s", establishedTunnel.protocol)
  564. }
  565. tunnelCount, registered := controller.registerTunnel(establishedTunnel)
  566. if !registered {
  567. // Already fully established, so discard.
  568. controller.discardTunnel(establishedTunnel)
  569. // Clear the reference to this discarded tunnel and immediately run
  570. // a garbage collection to reclaim its memory.
  571. establishedTunnel = nil
  572. aggressiveGarbageCollection()
  573. break
  574. }
  575. NoticeActiveTunnel(establishedTunnel.serverEntry.IpAddress, establishedTunnel.protocol, establishedTunnel.serverEntry.SupportsSSHAPIRequests())
  576. if tunnelCount == 1 {
  577. // The split tunnel classifier is started once the first tunnel is
  578. // established. This first tunnel is passed in to be used to make
  579. // the routes data request.
  580. // A long-running controller may run while the host device is present
  581. // in different regions. In this case, we want the split tunnel logic
  582. // to switch to routes for new regions and not classify traffic based
  583. // on routes installed for older regions.
  584. // We assume that when regions change, the host network will also
  585. // change, and so all tunnels will fail and be re-established. Under
  586. // that assumption, the classifier will be re-Start()-ed here when
  587. // the region has changed.
  588. controller.splitTunnelClassifier.Start(establishedTunnel)
  589. // Signal a connected request on each 1st tunnel establishment. For
  590. // multi-tunnels, the session is connected as long as at least one
  591. // tunnel is established.
  592. controller.startOrSignalConnectedReporter()
  593. // If the handshake indicated that a new client version is available,
  594. // trigger an upgrade download.
  595. // Note: serverContext is nil when DisableApi is set
  596. if establishedTunnel.serverContext != nil &&
  597. establishedTunnel.serverContext.clientUpgradeVersion != "" {
  598. handshakeVersion := establishedTunnel.serverContext.clientUpgradeVersion
  599. select {
  600. case controller.signalDownloadUpgrade <- handshakeVersion:
  601. default:
  602. }
  603. }
  604. }
  605. // Set the new tunnel as the transport for the packet tunnel. The packet tunnel
  606. // client remains up when reestablishing, but no packets are relayed while there
  607. // is no connected tunnel. UseTunnel will establish a new packet tunnel SSH
  608. // channel over the new SSH tunnel and configure the packet tunnel client to use
  609. // the new SSH channel as its transport.
  610. //
  611. // Note: as is, this logic is suboptimal for TunnelPoolSize > 1, as this would
  612. // continuously initialize new packet tunnel sessions for each established
  613. // server. For now, config validation requires TunnelPoolSize == 1 when
  614. // the packet tunnel is used.
  615. if controller.packetTunnelTransport != nil {
  616. controller.packetTunnelTransport.UseTunnel(establishedTunnel)
  617. }
  618. // TODO: design issue -- might not be enough server entries with region/caps to ever fill tunnel slots;
  619. // possible solution is establish target MIN(CountServerEntries(region, protocol), TunnelPoolSize)
  620. if controller.isFullyEstablished() {
  621. controller.stopEstablishing()
  622. }
  623. case clientVerificationPayload = <-controller.newClientVerificationPayload:
  624. controller.setClientVerificationPayloadForActiveTunnels(clientVerificationPayload)
  625. case <-controller.shutdownBroadcast:
  626. break loop
  627. }
  628. }
  629. // Stop running
  630. controller.stopEstablishing()
  631. controller.terminateAllTunnels()
  632. // Drain tunnel channels
  633. close(controller.establishedTunnels)
  634. for tunnel := range controller.establishedTunnels {
  635. controller.discardTunnel(tunnel)
  636. }
  637. close(controller.failedTunnels)
  638. for tunnel := range controller.failedTunnels {
  639. controller.discardTunnel(tunnel)
  640. }
  641. NoticeInfo("exiting run tunnels")
  642. }
  643. // TerminateNextActiveTunnel is a support routine for
  644. // test code that must terminate the active tunnel and
  645. // restart establishing. This function is not guaranteed
  646. // to be safe for use in other cases.
  647. func (controller *Controller) TerminateNextActiveTunnel() {
  648. tunnel := controller.getNextActiveTunnel()
  649. if tunnel != nil {
  650. controller.SignalTunnelFailure(tunnel)
  651. NoticeInfo("terminated tunnel: %s", tunnel.serverEntry.IpAddress)
  652. }
  653. }
  654. // classifyImpairedProtocol tracks "impaired" protocol classifications for failed
  655. // tunnels. A protocol is classified as impaired if a tunnel using that protocol
  656. // fails, repeatedly, shortly after the start of the connection. During tunnel
  657. // establishment, impaired protocols are briefly skipped.
  658. //
  659. // One purpose of this measure is to defend against an attack where the adversary,
  660. // for example, tags an OSSH TCP connection as an "unidentified" protocol; allows
  661. // it to connect; but then kills the underlying TCP connection after a short time.
  662. // Since OSSH has less latency than other protocols that may bypass an "unidentified"
  663. // filter, these other protocols might never be selected for use.
  664. //
  665. // Concurrency note: only the runTunnels() goroutine may call classifyImpairedProtocol
  666. func (controller *Controller) classifyImpairedProtocol(failedTunnel *Tunnel) {
  667. if failedTunnel.establishedTime.Add(IMPAIRED_PROTOCOL_CLASSIFICATION_DURATION).After(monotime.Now()) {
  668. controller.impairedProtocolClassification[failedTunnel.protocol] += 1
  669. } else {
  670. controller.impairedProtocolClassification[failedTunnel.protocol] = 0
  671. }
  672. // Reset classification once all known protocols are classified as impaired, as
  673. // there is now no way to proceed with only unimpaired protocols. The network
  674. // situation (or attack) resulting in classification may not be protocol-specific.
  675. //
  676. // Note: with controller.config.TunnelProtocol set, this will always reset once
  677. // that protocol has reached IMPAIRED_PROTOCOL_CLASSIFICATION_THRESHOLD.
  678. if CountNonImpairedProtocols(
  679. controller.config.EgressRegion,
  680. controller.config.TunnelProtocol,
  681. controller.getImpairedProtocols()) == 0 {
  682. controller.impairedProtocolClassification = make(map[string]int)
  683. }
  684. }
  685. // getImpairedProtocols returns a list of protocols that have sufficient
  686. // classifications to be considered impaired protocols.
  687. //
  688. // Concurrency note: only the runTunnels() goroutine may call getImpairedProtocols
  689. func (controller *Controller) getImpairedProtocols() []string {
  690. NoticeImpairedProtocolClassification(controller.impairedProtocolClassification)
  691. impairedProtocols := make([]string, 0)
  692. for protocol, count := range controller.impairedProtocolClassification {
  693. if count >= IMPAIRED_PROTOCOL_CLASSIFICATION_THRESHOLD {
  694. impairedProtocols = append(impairedProtocols, protocol)
  695. }
  696. }
  697. return impairedProtocols
  698. }
  699. // isImpairedProtocol checks if the specified protocol is classified as impaired.
  700. //
  701. // Concurrency note: only the runTunnels() goroutine may call isImpairedProtocol
  702. func (controller *Controller) isImpairedProtocol(protocol string) bool {
  703. count, ok := controller.impairedProtocolClassification[protocol]
  704. return ok && count >= IMPAIRED_PROTOCOL_CLASSIFICATION_THRESHOLD
  705. }
  706. // SignalSeededNewSLOK implements the TunnelOwner interface. This function
  707. // is called by Tunnel.operateTunnel when the tunnel has received a new,
  708. // previously unknown SLOK from the server. The Controller triggers an OSL
  709. // fetch, as the new SLOK may be sufficient to access new OSLs.
  710. func (controller *Controller) SignalSeededNewSLOK() {
  711. select {
  712. case controller.signalFetchObfuscatedServerLists <- *new(struct{}):
  713. default:
  714. }
  715. }
  716. // SignalTunnelFailure implements the TunnelOwner interface. This function
  717. // is called by Tunnel.operateTunnel when the tunnel has detected that it
  718. // has failed. The Controller will signal runTunnels to create a new
  719. // tunnel and/or remove the tunnel from the list of active tunnels.
  720. func (controller *Controller) SignalTunnelFailure(tunnel *Tunnel) {
  721. // Don't block. Assumes the receiver has a buffer large enough for
  722. // the typical number of operated tunnels. In case there's no room,
  723. // terminate the tunnel (runTunnels won't get a signal in this case,
  724. // but the tunnel will be removed from the list of active tunnels).
  725. select {
  726. case controller.failedTunnels <- tunnel:
  727. default:
  728. controller.terminateTunnel(tunnel)
  729. }
  730. }
  731. // discardTunnel disposes of a successful connection that is no longer required.
  732. func (controller *Controller) discardTunnel(tunnel *Tunnel) {
  733. NoticeInfo("discard tunnel: %s", tunnel.serverEntry.IpAddress)
  734. // TODO: not calling PromoteServerEntry, since that would rank the
  735. // discarded tunnel before fully active tunnels. Can a discarded tunnel
  736. // be promoted (since it connects), but with lower rank than all active
  737. // tunnels?
  738. tunnel.Close(true)
  739. }
  740. // registerTunnel adds the connected tunnel to the pool of active tunnels
  741. // which are candidates for port forwarding. Returns true if the pool has an
  742. // empty slot and false if the pool is full (caller should discard the tunnel).
  743. func (controller *Controller) registerTunnel(tunnel *Tunnel) (int, bool) {
  744. controller.tunnelMutex.Lock()
  745. defer controller.tunnelMutex.Unlock()
  746. if len(controller.tunnels) >= controller.config.TunnelPoolSize {
  747. return len(controller.tunnels), false
  748. }
  749. // Perform a final check just in case we've established
  750. // a duplicate connection.
  751. for _, activeTunnel := range controller.tunnels {
  752. if activeTunnel.serverEntry.IpAddress == tunnel.serverEntry.IpAddress {
  753. NoticeAlert("duplicate tunnel: %s", tunnel.serverEntry.IpAddress)
  754. return len(controller.tunnels), false
  755. }
  756. }
  757. controller.establishedOnce = true
  758. controller.tunnels = append(controller.tunnels, tunnel)
  759. NoticeTunnels(len(controller.tunnels))
  760. // Promote this successful tunnel to first rank so it's one
  761. // of the first candidates next time establish runs.
  762. // Connecting to a TargetServerEntry does not change the
  763. // ranking.
  764. if controller.config.TargetServerEntry == "" {
  765. PromoteServerEntry(tunnel.serverEntry.IpAddress)
  766. }
  767. return len(controller.tunnels), true
  768. }
  769. // hasEstablishedOnce indicates if at least one active tunnel has
  770. // been established up to this point. This is regardeless of how many
  771. // tunnels are presently active.
  772. func (controller *Controller) hasEstablishedOnce() bool {
  773. controller.tunnelMutex.Lock()
  774. defer controller.tunnelMutex.Unlock()
  775. return controller.establishedOnce
  776. }
  777. // isFullyEstablished indicates if the pool of active tunnels is full.
  778. func (controller *Controller) isFullyEstablished() bool {
  779. controller.tunnelMutex.Lock()
  780. defer controller.tunnelMutex.Unlock()
  781. return len(controller.tunnels) >= controller.config.TunnelPoolSize
  782. }
  783. // terminateTunnel removes a tunnel from the pool of active tunnels
  784. // and closes the tunnel. The next-tunnel state used by getNextActiveTunnel
  785. // is adjusted as required.
  786. func (controller *Controller) terminateTunnel(tunnel *Tunnel) {
  787. controller.tunnelMutex.Lock()
  788. defer controller.tunnelMutex.Unlock()
  789. for index, activeTunnel := range controller.tunnels {
  790. if tunnel == activeTunnel {
  791. controller.tunnels = append(
  792. controller.tunnels[:index], controller.tunnels[index+1:]...)
  793. if controller.nextTunnel > index {
  794. controller.nextTunnel--
  795. }
  796. if controller.nextTunnel >= len(controller.tunnels) {
  797. controller.nextTunnel = 0
  798. }
  799. activeTunnel.Close(false)
  800. NoticeTunnels(len(controller.tunnels))
  801. break
  802. }
  803. }
  804. }
  805. // terminateAllTunnels empties the tunnel pool, closing all active tunnels.
  806. // This is used when shutting down the controller.
  807. func (controller *Controller) terminateAllTunnels() {
  808. controller.tunnelMutex.Lock()
  809. defer controller.tunnelMutex.Unlock()
  810. // Closing all tunnels in parallel. In an orderly shutdown, each tunnel
  811. // may take a few seconds to send a final status request. We only want
  812. // to wait as long as the single slowest tunnel.
  813. closeWaitGroup := new(sync.WaitGroup)
  814. closeWaitGroup.Add(len(controller.tunnels))
  815. for _, activeTunnel := range controller.tunnels {
  816. tunnel := activeTunnel
  817. go func() {
  818. defer closeWaitGroup.Done()
  819. tunnel.Close(false)
  820. }()
  821. }
  822. closeWaitGroup.Wait()
  823. controller.tunnels = make([]*Tunnel, 0)
  824. controller.nextTunnel = 0
  825. NoticeTunnels(len(controller.tunnels))
  826. }
  827. // getNextActiveTunnel returns the next tunnel from the pool of active
  828. // tunnels. Currently, tunnel selection order is simple round-robin.
  829. func (controller *Controller) getNextActiveTunnel() (tunnel *Tunnel) {
  830. controller.tunnelMutex.Lock()
  831. defer controller.tunnelMutex.Unlock()
  832. for i := len(controller.tunnels); i > 0; i-- {
  833. tunnel = controller.tunnels[controller.nextTunnel]
  834. controller.nextTunnel =
  835. (controller.nextTunnel + 1) % len(controller.tunnels)
  836. return tunnel
  837. }
  838. return nil
  839. }
  840. // isActiveTunnelServerEntry is used to check if there's already
  841. // an existing tunnel to a candidate server.
  842. func (controller *Controller) isActiveTunnelServerEntry(
  843. serverEntry *protocol.ServerEntry) bool {
  844. controller.tunnelMutex.Lock()
  845. defer controller.tunnelMutex.Unlock()
  846. for _, activeTunnel := range controller.tunnels {
  847. if activeTunnel.serverEntry.IpAddress == serverEntry.IpAddress {
  848. return true
  849. }
  850. }
  851. return false
  852. }
  853. // setClientVerificationPayloadForActiveTunnels triggers the client verification
  854. // request for all active tunnels.
  855. func (controller *Controller) setClientVerificationPayloadForActiveTunnels(
  856. clientVerificationPayload string) {
  857. controller.tunnelMutex.Lock()
  858. defer controller.tunnelMutex.Unlock()
  859. for _, activeTunnel := range controller.tunnels {
  860. activeTunnel.SetClientVerificationPayload(clientVerificationPayload)
  861. }
  862. }
  863. // Dial selects an active tunnel and establishes a port forward
  864. // connection through the selected tunnel. Failure to connect is considered
  865. // a port forward failure, for the purpose of monitoring tunnel health.
  866. func (controller *Controller) Dial(
  867. remoteAddr string, alwaysTunnel bool, downstreamConn net.Conn) (conn net.Conn, err error) {
  868. tunnel := controller.getNextActiveTunnel()
  869. if tunnel == nil {
  870. return nil, common.ContextError(errors.New("no active tunnels"))
  871. }
  872. // Perform split tunnel classification when feature is enabled, and if the remote
  873. // address is classified as untunneled, dial directly.
  874. if !alwaysTunnel && controller.config.SplitTunnelDnsServer != "" {
  875. host, _, err := net.SplitHostPort(remoteAddr)
  876. if err != nil {
  877. return nil, common.ContextError(err)
  878. }
  879. // Note: a possible optimization, when split tunnel is active and IsUntunneled performs
  880. // a DNS resolution in order to make its classification, is to reuse that IP address in
  881. // the following Dials so they do not need to make their own resolutions. However, the
  882. // way this is currently implemented ensures that, e.g., DNS geo load balancing occurs
  883. // relative to the outbound network.
  884. if controller.splitTunnelClassifier.IsUntunneled(host) {
  885. // TODO: track downstreamConn and close it when the DialTCP conn closes, as with tunnel.Dial conns?
  886. return DialTCP(remoteAddr, controller.untunneledDialConfig)
  887. }
  888. }
  889. tunneledConn, err := tunnel.Dial(remoteAddr, alwaysTunnel, downstreamConn)
  890. if err != nil {
  891. return nil, common.ContextError(err)
  892. }
  893. return tunneledConn, nil
  894. }
  895. // startEstablishing creates a pool of worker goroutines which will
  896. // attempt to establish tunnels to candidate servers. The candidates
  897. // are generated by another goroutine.
  898. func (controller *Controller) startEstablishing() {
  899. if controller.isEstablishing {
  900. return
  901. }
  902. NoticeInfo("start establishing")
  903. controller.concurrentEstablishTunnelsMutex.Lock()
  904. controller.concurrentEstablishTunnels = 0
  905. controller.concurrentMeekEstablishTunnels = 0
  906. controller.peakConcurrentEstablishTunnels = 0
  907. controller.peakConcurrentMeekEstablishTunnels = 0
  908. controller.concurrentEstablishTunnelsMutex.Unlock()
  909. aggressiveGarbageCollection()
  910. emitMemoryMetrics()
  911. controller.isEstablishing = true
  912. controller.establishWaitGroup = new(sync.WaitGroup)
  913. controller.stopEstablishingBroadcast = make(chan struct{})
  914. controller.candidateServerEntries = make(chan *candidateServerEntry)
  915. controller.establishPendingConns.Reset()
  916. // The server affinity mechanism attempts to favor the previously
  917. // used server when reconnecting. This is beneficial for user
  918. // applications which expect consistency in user IP address (for
  919. // example, a web site which prompts for additional user
  920. // authentication when the IP address changes).
  921. //
  922. // Only the very first server, as determined by
  923. // datastore.PromoteServerEntry(), is the server affinity candidate.
  924. // Concurrent connections attempts to many servers are launched
  925. // without delay, in case the affinity server connection fails.
  926. // While the affinity server connection is outstanding, when any
  927. // other connection is established, there is a short grace period
  928. // delay before delivering the established tunnel; this allows some
  929. // time for the affinity server connection to succeed first.
  930. // When the affinity server connection fails, any other established
  931. // tunnel is registered without delay.
  932. //
  933. // Note: the establishTunnelWorker that receives the affinity
  934. // candidate is solely resonsible for closing
  935. // controller.serverAffinityDoneBroadcast.
  936. //
  937. // Note: if config.EgressRegion or config.TunnelProtocol has changed
  938. // since the top server was promoted, the first server may not actually
  939. // be the last connected server.
  940. // TODO: should not favor the first server in this case
  941. controller.serverAffinityDoneBroadcast = make(chan struct{})
  942. for i := 0; i < controller.config.ConnectionWorkerPoolSize; i++ {
  943. controller.establishWaitGroup.Add(1)
  944. go controller.establishTunnelWorker()
  945. }
  946. controller.establishWaitGroup.Add(1)
  947. go controller.establishCandidateGenerator(
  948. controller.getImpairedProtocols())
  949. }
  950. // stopEstablishing signals the establish goroutines to stop and waits
  951. // for the group to halt. pendingConns is used to interrupt any worker
  952. // blocked on a socket connect.
  953. func (controller *Controller) stopEstablishing() {
  954. if !controller.isEstablishing {
  955. return
  956. }
  957. NoticeInfo("stop establishing")
  958. close(controller.stopEstablishingBroadcast)
  959. // Note: interruptibleTCPClose doesn't really interrupt socket connects
  960. // and may leave goroutines running for a time after the Wait call.
  961. controller.establishPendingConns.CloseAll()
  962. // Note: establishCandidateGenerator closes controller.candidateServerEntries
  963. // (as it may be sending to that channel).
  964. controller.establishWaitGroup.Wait()
  965. controller.isEstablishing = false
  966. controller.establishWaitGroup = nil
  967. controller.stopEstablishingBroadcast = nil
  968. controller.candidateServerEntries = nil
  969. controller.serverAffinityDoneBroadcast = nil
  970. controller.concurrentEstablishTunnelsMutex.Lock()
  971. peakConcurrent := controller.peakConcurrentEstablishTunnels
  972. peakConcurrentMeek := controller.peakConcurrentMeekEstablishTunnels
  973. controller.concurrentEstablishTunnels = 0
  974. controller.concurrentMeekEstablishTunnels = 0
  975. controller.peakConcurrentEstablishTunnels = 0
  976. controller.peakConcurrentMeekEstablishTunnels = 0
  977. controller.concurrentEstablishTunnelsMutex.Unlock()
  978. NoticeInfo("peak concurrent establish tunnels: %d", peakConcurrent)
  979. NoticeInfo("peak concurrent meek establish tunnels: %d", peakConcurrentMeek)
  980. emitMemoryMetrics()
  981. standardGarbageCollection()
  982. }
  983. // establishCandidateGenerator populates the candidate queue with server entries
  984. // from the data store. Server entries are iterated in rank order, so that promoted
  985. // servers with higher rank are priority candidates.
  986. func (controller *Controller) establishCandidateGenerator(impairedProtocols []string) {
  987. defer controller.establishWaitGroup.Done()
  988. defer close(controller.candidateServerEntries)
  989. // establishStartTime is used to calculate and report the
  990. // client's tunnel establishment duration.
  991. //
  992. // networkWaitDuration is the elapsed time spent waiting
  993. // for network connectivity. This duration will be excluded
  994. // from reported tunnel establishment duration.
  995. establishStartTime := monotime.Now()
  996. var networkWaitDuration time.Duration
  997. iterator, err := NewServerEntryIterator(controller.config)
  998. if err != nil {
  999. NoticeAlert("failed to iterate over candidates: %s", err)
  1000. controller.SignalComponentFailure()
  1001. return
  1002. }
  1003. defer iterator.Close()
  1004. isServerAffinityCandidate := true
  1005. // TODO: reconcile server affinity scheme with multi-tunnel mode
  1006. if controller.config.TunnelPoolSize > 1 {
  1007. isServerAffinityCandidate = false
  1008. close(controller.serverAffinityDoneBroadcast)
  1009. }
  1010. loop:
  1011. // Repeat until stopped
  1012. for i := 0; ; i++ {
  1013. networkWaitStartTime := monotime.Now()
  1014. if !WaitForNetworkConnectivity(
  1015. controller.config.NetworkConnectivityChecker,
  1016. controller.stopEstablishingBroadcast,
  1017. controller.shutdownBroadcast) {
  1018. break loop
  1019. }
  1020. networkWaitDuration += monotime.Since(networkWaitStartTime)
  1021. // Send each iterator server entry to the establish workers
  1022. startTime := monotime.Now()
  1023. for {
  1024. serverEntry, err := iterator.Next()
  1025. if err != nil {
  1026. NoticeAlert("failed to get next candidate: %s", err)
  1027. controller.SignalComponentFailure()
  1028. break loop
  1029. }
  1030. if serverEntry == nil {
  1031. // Completed this iteration
  1032. break
  1033. }
  1034. if controller.config.TargetApiProtocol == protocol.PSIPHON_SSH_API_PROTOCOL &&
  1035. !serverEntry.SupportsSSHAPIRequests() {
  1036. continue
  1037. }
  1038. // Disable impaired protocols. This is only done for the
  1039. // first iteration of the ESTABLISH_TUNNEL_WORK_TIME
  1040. // loop since (a) one iteration should be sufficient to
  1041. // evade the attack; (b) there's a good chance of false
  1042. // positives (such as short tunnel durations due to network
  1043. // hopping on a mobile device).
  1044. // The edited serverEntry is temporary copy which is not
  1045. // stored or reused.
  1046. if i == 0 {
  1047. serverEntry.DisableImpairedProtocols(impairedProtocols)
  1048. if len(serverEntry.GetSupportedProtocols(false)) == 0 {
  1049. // Skip this server entry, as it has no supported
  1050. // protocols after disabling the impaired ones
  1051. // TODO: modify ServerEntryIterator to skip these?
  1052. continue
  1053. }
  1054. }
  1055. // adjustedEstablishStartTime is establishStartTime shifted
  1056. // to exclude time spent waiting for network connectivity.
  1057. candidate := &candidateServerEntry{
  1058. serverEntry: serverEntry,
  1059. isServerAffinityCandidate: isServerAffinityCandidate,
  1060. adjustedEstablishStartTime: establishStartTime.Add(networkWaitDuration),
  1061. }
  1062. wasServerAffinityCandidate := isServerAffinityCandidate
  1063. // Note: there must be only one server affinity candidate, as it
  1064. // closes the serverAffinityDoneBroadcast channel.
  1065. isServerAffinityCandidate = false
  1066. // TODO: here we could generate multiple candidates from the
  1067. // server entry when there are many MeekFrontingAddresses.
  1068. select {
  1069. case controller.candidateServerEntries <- candidate:
  1070. case <-controller.stopEstablishingBroadcast:
  1071. break loop
  1072. case <-controller.shutdownBroadcast:
  1073. break loop
  1074. }
  1075. if startTime.Add(ESTABLISH_TUNNEL_WORK_TIME).Before(monotime.Now()) {
  1076. // Start over, after a brief pause, with a new shuffle of the server
  1077. // entries, and potentially some newly fetched server entries.
  1078. break
  1079. }
  1080. if wasServerAffinityCandidate {
  1081. // Don't start the next candidate until either the server affinity
  1082. // candidate has completed (success or failure) or is still working
  1083. // and the grace period has elapsed.
  1084. timer := time.NewTimer(ESTABLISH_TUNNEL_SERVER_AFFINITY_GRACE_PERIOD)
  1085. select {
  1086. case <-timer.C:
  1087. case <-controller.serverAffinityDoneBroadcast:
  1088. case <-controller.stopEstablishingBroadcast:
  1089. break loop
  1090. case <-controller.shutdownBroadcast:
  1091. break loop
  1092. }
  1093. } else if controller.config.StaggerConnectionWorkersMilliseconds != 0 {
  1094. // Stagger concurrent connection workers.
  1095. timer := time.NewTimer(time.Millisecond * time.Duration(
  1096. controller.config.StaggerConnectionWorkersMilliseconds))
  1097. select {
  1098. case <-timer.C:
  1099. case <-controller.stopEstablishingBroadcast:
  1100. break loop
  1101. case <-controller.shutdownBroadcast:
  1102. break loop
  1103. }
  1104. }
  1105. }
  1106. // Free up resources now, but don't reset until after the pause.
  1107. iterator.Close()
  1108. // Trigger a common remote server list fetch, since we may have failed
  1109. // to connect with all known servers. Don't block sending signal, since
  1110. // this signal may have already been sent.
  1111. // Don't wait for fetch remote to succeed, since it may fail and
  1112. // enter a retry loop and we're better off trying more known servers.
  1113. // TODO: synchronize the fetch response, so it can be incorporated
  1114. // into the server entry iterator as soon as available.
  1115. select {
  1116. case controller.signalFetchCommonRemoteServerList <- *new(struct{}):
  1117. default:
  1118. }
  1119. // Trigger an OSL fetch in parallel. Both fetches are run in parallel
  1120. // so that if one out of the common RLS and OSL set is large, it doesn't
  1121. // doesn't entirely block fetching the other.
  1122. select {
  1123. case controller.signalFetchObfuscatedServerLists <- *new(struct{}):
  1124. default:
  1125. }
  1126. // Trigger an out-of-band upgrade availability check and download.
  1127. // Since we may have failed to connect, we may benefit from upgrading
  1128. // to a new client version with new circumvention capabilities.
  1129. select {
  1130. case controller.signalDownloadUpgrade <- "":
  1131. default:
  1132. }
  1133. // After a complete iteration of candidate servers, pause before iterating again.
  1134. // This helps avoid some busy wait loop conditions, and also allows some time for
  1135. // network conditions to change. Also allows for fetch remote to complete,
  1136. // in typical conditions (it isn't strictly necessary to wait for this, there will
  1137. // be more rounds if required).
  1138. timeout := time.After(
  1139. time.Duration(*controller.config.EstablishTunnelPausePeriodSeconds) * time.Second)
  1140. select {
  1141. case <-timeout:
  1142. // Retry iterating
  1143. case <-controller.stopEstablishingBroadcast:
  1144. break loop
  1145. case <-controller.shutdownBroadcast:
  1146. break loop
  1147. }
  1148. iterator.Reset()
  1149. }
  1150. NoticeInfo("stopped candidate generator")
  1151. }
  1152. // establishTunnelWorker pulls candidates from the candidate queue, establishes
  1153. // a connection to the tunnel server, and delivers the established tunnel to a channel.
  1154. func (controller *Controller) establishTunnelWorker() {
  1155. defer controller.establishWaitGroup.Done()
  1156. loop:
  1157. for candidateServerEntry := range controller.candidateServerEntries {
  1158. // Note: don't receive from candidateServerEntries and stopEstablishingBroadcast
  1159. // in the same select, since we want to prioritize receiving the stop signal
  1160. if controller.isStopEstablishingBroadcast() {
  1161. break loop
  1162. }
  1163. // There may already be a tunnel to this candidate. If so, skip it.
  1164. if controller.isActiveTunnelServerEntry(candidateServerEntry.serverEntry) {
  1165. continue
  1166. }
  1167. // EstablishTunnel will allocate significant memory, so first attempt to
  1168. // reclaim as much as possible.
  1169. aggressiveGarbageCollection()
  1170. // Select the tunnel protocol. Unless config.TunnelProtocol is set, the
  1171. // selection will be made at random from protocols supported by the
  1172. // server entry.
  1173. //
  1174. // When limiting concurrent meek connection workers, and at the limit,
  1175. // do not select meek since otherwise the candidate must be skipped.
  1176. //
  1177. // If at the limit and unabled to select a non-meek protocol, skip the
  1178. // candidate entirely and move on to the next. Since candidates are shuffled
  1179. // it's probable that the next candidate is not meek. In this case, a
  1180. // StaggerConnectionWorkersMilliseconds delay may still be incurred.
  1181. excludeMeek := false
  1182. controller.concurrentEstablishTunnelsMutex.Lock()
  1183. if controller.config.LimitMeekConnectionWorkers > 0 &&
  1184. controller.concurrentMeekEstablishTunnels >=
  1185. controller.config.LimitMeekConnectionWorkers {
  1186. excludeMeek = true
  1187. }
  1188. controller.concurrentEstablishTunnelsMutex.Unlock()
  1189. selectedProtocol, err := selectProtocol(
  1190. controller.config, candidateServerEntry.serverEntry, excludeMeek)
  1191. if err == errProtocolNotSupported {
  1192. // selectProtocol returns errProtocolNotSupported when excludeMeek
  1193. // is set and the server entry only supports meek protocols.
  1194. // Skip this candidate.
  1195. continue
  1196. }
  1197. var tunnel *Tunnel
  1198. if err == nil {
  1199. isMeek := protocol.TunnelProtocolUsesMeek(selectedProtocol) ||
  1200. protocol.TunnelProtocolUsesMeek(selectedProtocol)
  1201. controller.concurrentEstablishTunnelsMutex.Lock()
  1202. if isMeek {
  1203. // Recheck the limit now that we know we're selecting meek and
  1204. // adjusting concurrentMeekEstablishTunnels.
  1205. if controller.config.LimitMeekConnectionWorkers > 0 &&
  1206. controller.concurrentMeekEstablishTunnels >=
  1207. controller.config.LimitMeekConnectionWorkers {
  1208. // Skip this candidate.
  1209. controller.concurrentEstablishTunnelsMutex.Unlock()
  1210. continue
  1211. }
  1212. controller.concurrentMeekEstablishTunnels += 1
  1213. if controller.concurrentMeekEstablishTunnels > controller.peakConcurrentMeekEstablishTunnels {
  1214. controller.peakConcurrentMeekEstablishTunnels = controller.concurrentMeekEstablishTunnels
  1215. }
  1216. }
  1217. controller.concurrentEstablishTunnels += 1
  1218. if controller.concurrentEstablishTunnels > controller.peakConcurrentEstablishTunnels {
  1219. controller.peakConcurrentEstablishTunnels = controller.concurrentEstablishTunnels
  1220. }
  1221. controller.concurrentEstablishTunnelsMutex.Unlock()
  1222. tunnel, err = EstablishTunnel(
  1223. controller.config,
  1224. controller.untunneledDialConfig,
  1225. controller.sessionId,
  1226. controller.establishPendingConns,
  1227. candidateServerEntry.serverEntry,
  1228. selectedProtocol,
  1229. candidateServerEntry.adjustedEstablishStartTime,
  1230. controller) // TunnelOwner
  1231. controller.concurrentEstablishTunnelsMutex.Lock()
  1232. if isMeek {
  1233. controller.concurrentMeekEstablishTunnels -= 1
  1234. }
  1235. controller.concurrentEstablishTunnels -= 1
  1236. controller.concurrentEstablishTunnelsMutex.Unlock()
  1237. }
  1238. // Periodically emit memory metrics during the establishment cycle.
  1239. if !controller.isStopEstablishingBroadcast() {
  1240. emitMemoryMetrics()
  1241. }
  1242. // Immediately reclaim memory allocated by the establishment. In the case
  1243. // of failure, first clear the reference to the tunnel. In the case of
  1244. // success, the garbage collection may still be effective as the initial
  1245. // phases of some protocols involve significant memory allocation that
  1246. // could now be reclaimed.
  1247. if err != nil {
  1248. tunnel = nil
  1249. }
  1250. aggressiveGarbageCollection()
  1251. if err != nil {
  1252. // Unblock other candidates immediately when
  1253. // server affinity candidate fails.
  1254. if candidateServerEntry.isServerAffinityCandidate {
  1255. close(controller.serverAffinityDoneBroadcast)
  1256. }
  1257. // Before emitting error, check if establish interrupted, in which
  1258. // case the error is noise.
  1259. if controller.isStopEstablishingBroadcast() {
  1260. break loop
  1261. }
  1262. NoticeInfo("failed to connect to %s: %s", candidateServerEntry.serverEntry.IpAddress, err)
  1263. continue
  1264. }
  1265. // Deliver established tunnel.
  1266. // Don't block. Assumes the receiver has a buffer large enough for
  1267. // the number of desired tunnels. If there's no room, the tunnel must
  1268. // not be required so it's discarded.
  1269. select {
  1270. case controller.establishedTunnels <- tunnel:
  1271. default:
  1272. controller.discardTunnel(tunnel)
  1273. // Clear the reference to this discarded tunnel and immediately run
  1274. // a garbage collection to reclaim its memory.
  1275. tunnel = nil
  1276. aggressiveGarbageCollection()
  1277. }
  1278. // Unblock other candidates only after delivering when
  1279. // server affinity candidate succeeds.
  1280. if candidateServerEntry.isServerAffinityCandidate {
  1281. close(controller.serverAffinityDoneBroadcast)
  1282. }
  1283. }
  1284. NoticeInfo("stopped establish worker")
  1285. }
  1286. func (controller *Controller) isStopEstablishingBroadcast() bool {
  1287. select {
  1288. case <-controller.stopEstablishingBroadcast:
  1289. return true
  1290. default:
  1291. }
  1292. return false
  1293. }