Peer.cpp 28 KB

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  1. /*
  2. * ZeroTier One - Network Virtualization Everywhere
  3. * Copyright (C) 2011-2018 ZeroTier, Inc. https://www.zerotier.com/
  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. *
  20. * You can be released from the requirements of the license by purchasing
  21. * a commercial license. Buying such a license is mandatory as soon as you
  22. * develop commercial closed-source software that incorporates or links
  23. * directly against ZeroTier software without disclosing the source code
  24. * of your own application.
  25. */
  26. #include "../version.h"
  27. #include "Constants.hpp"
  28. #include "Peer.hpp"
  29. #include "Node.hpp"
  30. #include "Switch.hpp"
  31. #include "Network.hpp"
  32. #include "SelfAwareness.hpp"
  33. #include "Packet.hpp"
  34. #include "Trace.hpp"
  35. #include "InetAddress.hpp"
  36. #include "RingBuffer.hpp"
  37. #include "Utils.hpp"
  38. namespace ZeroTier {
  39. Peer::Peer(const RuntimeEnvironment *renv,const Identity &myIdentity,const Identity &peerIdentity) :
  40. RR(renv),
  41. _lastReceive(0),
  42. _lastNontrivialReceive(0),
  43. _lastTriedMemorizedPath(0),
  44. _lastDirectPathPushSent(0),
  45. _lastDirectPathPushReceive(0),
  46. _lastCredentialRequestSent(0),
  47. _lastWhoisRequestReceived(0),
  48. _lastEchoRequestReceived(0),
  49. _lastComRequestReceived(0),
  50. _lastComRequestSent(0),
  51. _lastCredentialsReceived(0),
  52. _lastTrustEstablishedPacketReceived(0),
  53. _lastSentFullHello(0),
  54. _lastACKWindowReset(0),
  55. _lastQoSWindowReset(0),
  56. _vProto(0),
  57. _vMajor(0),
  58. _vMinor(0),
  59. _vRevision(0),
  60. _id(peerIdentity),
  61. _directPathPushCutoffCount(0),
  62. _credentialsCutoffCount(0),
  63. _linkIsBalanced(false),
  64. _linkIsRedundant(false),
  65. _remotePeerMultipathEnabled(false),
  66. _lastAggregateStatsReport(0)
  67. {
  68. if (!myIdentity.agree(peerIdentity,_key,ZT_PEER_SECRET_KEY_LENGTH))
  69. throw ZT_EXCEPTION_INVALID_ARGUMENT;
  70. _pathChoiceHist = new RingBuffer<int>(ZT_MULTIPATH_PROPORTION_WIN_SZ);
  71. }
  72. void Peer::received(
  73. void *tPtr,
  74. const SharedPtr<Path> &path,
  75. const unsigned int hops,
  76. const uint64_t packetId,
  77. const unsigned int payloadLength,
  78. const Packet::Verb verb,
  79. const uint64_t inRePacketId,
  80. const Packet::Verb inReVerb,
  81. const bool trustEstablished,
  82. const uint64_t networkId)
  83. {
  84. const int64_t now = RR->node->now();
  85. _lastReceive = now;
  86. switch (verb) {
  87. case Packet::VERB_FRAME:
  88. case Packet::VERB_EXT_FRAME:
  89. case Packet::VERB_NETWORK_CONFIG_REQUEST:
  90. case Packet::VERB_NETWORK_CONFIG:
  91. case Packet::VERB_MULTICAST_FRAME:
  92. _lastNontrivialReceive = now;
  93. break;
  94. default: break;
  95. }
  96. if (trustEstablished) {
  97. _lastTrustEstablishedPacketReceived = now;
  98. path->trustedPacketReceived(now);
  99. }
  100. {
  101. Mutex::Lock _l(_paths_m);
  102. recordIncomingPacket(tPtr, path, packetId, payloadLength, verb, now);
  103. if (canUseMultipath()) {
  104. if (path->needsToSendQoS(now)) {
  105. sendQOS_MEASUREMENT(tPtr, path, path->localSocket(), path->address(), now);
  106. }
  107. for(unsigned int i=0;i<ZT_MAX_PEER_NETWORK_PATHS;++i) {
  108. if (_paths[i].p) {
  109. _paths[i].p->processBackgroundPathMeasurements(now, _id.address().toInt());
  110. }
  111. }
  112. }
  113. }
  114. if (hops == 0) {
  115. // If this is a direct packet (no hops), update existing paths or learn new ones
  116. bool havePath = false;
  117. {
  118. Mutex::Lock _l(_paths_m);
  119. for(unsigned int i=0;i<ZT_MAX_PEER_NETWORK_PATHS;++i) {
  120. if (_paths[i].p) {
  121. if (_paths[i].p == path) {
  122. _paths[i].lr = now;
  123. havePath = true;
  124. break;
  125. }
  126. } else break;
  127. }
  128. }
  129. bool attemptToContact = false;
  130. if ((!havePath)&&(RR->node->shouldUsePathForZeroTierTraffic(tPtr,_id.address(),path->localSocket(),path->address()))) {
  131. Mutex::Lock _l(_paths_m);
  132. // Paths are redundant if they duplicate an alive path to the same IP or
  133. // with the same local socket and address family.
  134. bool redundant = false;
  135. for(unsigned int i=0;i<ZT_MAX_PEER_NETWORK_PATHS;++i) {
  136. if (_paths[i].p) {
  137. if ( (_paths[i].p->alive(now)) && ( ((_paths[i].p->localSocket() == path->localSocket())&&(_paths[i].p->address().ss_family == path->address().ss_family)) || (_paths[i].p->address().ipsEqual2(path->address())) ) ) {
  138. redundant = true;
  139. break;
  140. }
  141. } else break;
  142. }
  143. if (!redundant) {
  144. unsigned int replacePath = ZT_MAX_PEER_NETWORK_PATHS;
  145. int replacePathQuality = 0;
  146. for(unsigned int i=0;i<ZT_MAX_PEER_NETWORK_PATHS;++i) {
  147. if (_paths[i].p) {
  148. const int q = _paths[i].p->quality(now);
  149. if (q > replacePathQuality) {
  150. replacePathQuality = q;
  151. replacePath = i;
  152. }
  153. } else {
  154. replacePath = i;
  155. break;
  156. }
  157. }
  158. // If we find a pre-existing path with the same address, just replace it.
  159. // If we don't find anything we can replace, just use the replacePath that we previously decided on.
  160. if (canUseMultipath()) {
  161. for(unsigned int i=0;i<ZT_MAX_PEER_NETWORK_PATHS;++i) {
  162. if (_paths[i].p) {
  163. if ( _paths[i].p->address().ss_family == path->address().ss_family && _paths[i].p->address().ipsEqual2(path->address())) {
  164. replacePath = i;
  165. break;
  166. }
  167. }
  168. }
  169. }
  170. if (replacePath != ZT_MAX_PEER_NETWORK_PATHS) {
  171. if (verb == Packet::VERB_OK) {
  172. RR->t->peerLearnedNewPath(tPtr,networkId,*this,path,packetId);
  173. _paths[replacePath].lr = now;
  174. _paths[replacePath].p = path;
  175. _paths[replacePath].priority = 1;
  176. } else {
  177. attemptToContact = true;
  178. }
  179. }
  180. }
  181. }
  182. if (attemptToContact) {
  183. attemptToContactAt(tPtr,path->localSocket(),path->address(),now,true);
  184. path->sent(now);
  185. RR->t->peerConfirmingUnknownPath(tPtr,networkId,*this,path,packetId,verb);
  186. }
  187. }
  188. // If we have a trust relationship periodically push a message enumerating
  189. // all known external addresses for ourselves. We now do this even if we
  190. // have a current path since we'll want to use new ones too.
  191. if (this->trustEstablished(now)) {
  192. if ((now - _lastDirectPathPushSent) >= ZT_DIRECT_PATH_PUSH_INTERVAL) {
  193. _lastDirectPathPushSent = now;
  194. std::vector<InetAddress> pathsToPush;
  195. std::vector<InetAddress> dps(RR->node->directPaths());
  196. for(std::vector<InetAddress>::const_iterator i(dps.begin());i!=dps.end();++i)
  197. pathsToPush.push_back(*i);
  198. // Do symmetric NAT prediction if we are communicating indirectly.
  199. if (hops > 0) {
  200. std::vector<InetAddress> sym(RR->sa->getSymmetricNatPredictions());
  201. for(unsigned long i=0,added=0;i<sym.size();++i) {
  202. InetAddress tmp(sym[(unsigned long)RR->node->prng() % sym.size()]);
  203. if (std::find(pathsToPush.begin(),pathsToPush.end(),tmp) == pathsToPush.end()) {
  204. pathsToPush.push_back(tmp);
  205. if (++added >= ZT_PUSH_DIRECT_PATHS_MAX_PER_SCOPE_AND_FAMILY)
  206. break;
  207. }
  208. }
  209. }
  210. if (pathsToPush.size() > 0) {
  211. std::vector<InetAddress>::const_iterator p(pathsToPush.begin());
  212. while (p != pathsToPush.end()) {
  213. Packet outp(_id.address(),RR->identity.address(),Packet::VERB_PUSH_DIRECT_PATHS);
  214. outp.addSize(2); // leave room for count
  215. unsigned int count = 0;
  216. while ((p != pathsToPush.end())&&((outp.size() + 24) < 1200)) {
  217. uint8_t addressType = 4;
  218. switch(p->ss_family) {
  219. case AF_INET:
  220. break;
  221. case AF_INET6:
  222. addressType = 6;
  223. break;
  224. default: // we currently only push IP addresses
  225. ++p;
  226. continue;
  227. }
  228. outp.append((uint8_t)0); // no flags
  229. outp.append((uint16_t)0); // no extensions
  230. outp.append(addressType);
  231. outp.append((uint8_t)((addressType == 4) ? 6 : 18));
  232. outp.append(p->rawIpData(),((addressType == 4) ? 4 : 16));
  233. outp.append((uint16_t)p->port());
  234. ++count;
  235. ++p;
  236. }
  237. if (count) {
  238. outp.setAt(ZT_PACKET_IDX_PAYLOAD,(uint16_t)count);
  239. outp.armor(_key,true);
  240. path->send(RR,tPtr,outp.data(),outp.size(),now);
  241. }
  242. }
  243. }
  244. }
  245. }
  246. }
  247. void Peer::recordOutgoingPacket(const SharedPtr<Path> &path, const uint64_t packetId,
  248. uint16_t payloadLength, const Packet::Verb verb, int64_t now)
  249. {
  250. if (localMultipathSupport()) {
  251. path->recordOutgoingPacket(now, packetId, payloadLength, verb);
  252. }
  253. }
  254. void Peer::recordIncomingPacket(void *tPtr, const SharedPtr<Path> &path, const uint64_t packetId,
  255. uint16_t payloadLength, const Packet::Verb verb, int64_t now)
  256. {
  257. if (localMultipathSupport()) {
  258. if (path->needsToSendAck(now)) {
  259. sendACK(tPtr, path, path->localSocket(), path->address(), now);
  260. }
  261. path->recordIncomingPacket(now, packetId, payloadLength, verb);
  262. }
  263. }
  264. float Peer::computeAggregateLinkRelativeQuality(int64_t now)
  265. {
  266. float maxStability = 0;
  267. float totalRelativeQuality = 0;
  268. float maxThroughput = 1;
  269. float maxScope = 0;
  270. float relStability[ZT_MAX_PEER_NETWORK_PATHS];
  271. float relThroughput[ZT_MAX_PEER_NETWORK_PATHS];
  272. memset(&relStability, 0, sizeof(relStability));
  273. memset(&relThroughput, 0, sizeof(relThroughput));
  274. // Survey all paths
  275. for(unsigned int i=0;i<ZT_MAX_PEER_NETWORK_PATHS;++i) {
  276. if (_paths[i].p) {
  277. relStability[i] = _paths[i].p->lastComputedStability();
  278. relThroughput[i] = _paths[i].p->maxLifetimeThroughput();
  279. maxStability = relStability[i] > maxStability ? relStability[i] : maxStability;
  280. maxThroughput = relThroughput[i] > maxThroughput ? relThroughput[i] : maxThroughput;
  281. maxScope = _paths[i].p->ipScope() > maxScope ? _paths[i].p->ipScope() : maxScope;
  282. }
  283. }
  284. // Convert to relative values
  285. for(unsigned int i=0;i<ZT_MAX_PEER_NETWORK_PATHS;++i) {
  286. if (_paths[i].p) {
  287. relStability[i] /= maxStability ? maxStability : 1;
  288. relThroughput[i] /= maxThroughput ? maxThroughput : 1;
  289. float normalized_ma = Utils::normalize(_paths[i].p->ackAge(now), 0, ZT_PATH_MAX_AGE, 0, 10);
  290. float age_contrib = exp((-1)*normalized_ma);
  291. float relScope = ((float)(_paths[i].p->ipScope()+1) / (maxScope + 1));
  292. float relQuality =
  293. (relStability[i] * ZT_PATH_CONTRIB_STABILITY)
  294. + (fmax(1, relThroughput[i]) * ZT_PATH_CONTRIB_THROUGHPUT)
  295. + relScope * ZT_PATH_CONTRIB_SCOPE;
  296. relQuality *= age_contrib;
  297. totalRelativeQuality += relQuality;
  298. _paths[i].p->updateRelativeQuality(relQuality);
  299. }
  300. }
  301. return (float)1.0 / totalRelativeQuality; // Used later to convert relative quantities into flow allocations
  302. }
  303. float Peer::computeAggregateLinkPacketDelayVariance()
  304. {
  305. float pdv = 0.0;
  306. for(unsigned int i=0;i<ZT_MAX_PEER_NETWORK_PATHS;++i) {
  307. if (_paths[i].p) {
  308. pdv += _paths[i].p->relativeQuality() * _paths[i].p->packetDelayVariance();
  309. }
  310. }
  311. return pdv;
  312. }
  313. float Peer::computeAggregateLinkMeanLatency()
  314. {
  315. float ml = 0.0;
  316. for(unsigned int i=0;i<ZT_MAX_PEER_NETWORK_PATHS;++i) {
  317. if (_paths[i].p) {
  318. ml += _paths[i].p->relativeQuality() * _paths[i].p->meanLatency();
  319. }
  320. }
  321. return ml;
  322. }
  323. int Peer::aggregateLinkPhysicalPathCount()
  324. {
  325. std::map<std::string, bool> ifnamemap;
  326. int pathCount = 0;
  327. int64_t now = RR->node->now();
  328. for(unsigned int i=0;i<ZT_MAX_PEER_NETWORK_PATHS;++i) {
  329. if (_paths[i].p && _paths[i].p->alive(now)) {
  330. if (!ifnamemap[_paths[i].p->getName()]) {
  331. ifnamemap[_paths[i].p->getName()] = true;
  332. pathCount++;
  333. }
  334. }
  335. }
  336. return pathCount;
  337. }
  338. int Peer::aggregateLinkLogicalPathCount()
  339. {
  340. int pathCount = 0;
  341. int64_t now = RR->node->now();
  342. for(unsigned int i=0;i<ZT_MAX_PEER_NETWORK_PATHS;++i) {
  343. if (_paths[i].p && _paths[i].p->alive(now)) {
  344. pathCount++;
  345. }
  346. }
  347. return pathCount;
  348. }
  349. SharedPtr<Path> Peer::getAppropriatePath(int64_t now, bool includeExpired)
  350. {
  351. Mutex::Lock _l(_paths_m);
  352. unsigned int bestPath = ZT_MAX_PEER_NETWORK_PATHS;
  353. /**
  354. * Send traffic across the highest quality path only. This algorithm will still
  355. * use the old path quality metric from protocol version 9.
  356. */
  357. if (!canUseMultipath()) {
  358. long bestPathQuality = 2147483647;
  359. for(unsigned int i=0;i<ZT_MAX_PEER_NETWORK_PATHS;++i) {
  360. if (_paths[i].p) {
  361. if ((includeExpired)||((now - _paths[i].lr) < ZT_PEER_PATH_EXPIRATION)) {
  362. const long q = _paths[i].p->quality(now) / _paths[i].priority;
  363. if (q <= bestPathQuality) {
  364. bestPathQuality = q;
  365. bestPath = i;
  366. }
  367. }
  368. } else break;
  369. }
  370. if (bestPath != ZT_MAX_PEER_NETWORK_PATHS) {
  371. return _paths[bestPath].p;
  372. }
  373. return SharedPtr<Path>();
  374. }
  375. for(unsigned int i=0;i<ZT_MAX_PEER_NETWORK_PATHS;++i) {
  376. if (_paths[i].p) {
  377. _paths[i].p->processBackgroundPathMeasurements(now, _id.address().toInt());
  378. }
  379. }
  380. /**
  381. * Randomly distribute traffic across all paths
  382. */
  383. int numAlivePaths = 0;
  384. int numStalePaths = 0;
  385. if (RR->node->getMultipathMode() == ZT_MULTIPATH_RANDOM) {
  386. int alivePaths[ZT_MAX_PEER_NETWORK_PATHS];
  387. int stalePaths[ZT_MAX_PEER_NETWORK_PATHS];
  388. memset(&alivePaths, -1, sizeof(alivePaths));
  389. memset(&stalePaths, -1, sizeof(stalePaths));
  390. for(unsigned int i=0;i<ZT_MAX_PEER_NETWORK_PATHS;++i) {
  391. if (_paths[i].p) {
  392. if (_paths[i].p->alive(now)) {
  393. alivePaths[numAlivePaths] = i;
  394. numAlivePaths++;
  395. }
  396. else {
  397. stalePaths[numStalePaths] = i;
  398. numStalePaths++;
  399. }
  400. }
  401. }
  402. unsigned int r;
  403. Utils::getSecureRandom(&r, 1);
  404. if (numAlivePaths > 0) {
  405. // pick a random out of the set deemed "alive"
  406. int rf = r % numAlivePaths;
  407. return _paths[alivePaths[rf]].p;
  408. }
  409. else if(numStalePaths > 0) {
  410. // resort to trying any non-expired path
  411. int rf = r % numStalePaths;
  412. return _paths[stalePaths[rf]].p;
  413. }
  414. }
  415. /**
  416. * Proportionally allocate traffic according to dynamic path quality measurements
  417. */
  418. if (RR->node->getMultipathMode() == ZT_MULTIPATH_PROPORTIONALLY_BALANCED) {
  419. float alloc[ZT_MAX_PEER_NETWORK_PATHS];
  420. memset(&alloc, 0, sizeof(alloc));
  421. int numAlivePaths = 0;
  422. int numStalePaths = 0;
  423. int alivePaths[ZT_MAX_PEER_NETWORK_PATHS];
  424. int stalePaths[ZT_MAX_PEER_NETWORK_PATHS];
  425. memset(&alivePaths, -1, sizeof(alivePaths));
  426. memset(&stalePaths, -1, sizeof(stalePaths));
  427. // Attempt to find an excuse not to use the rest of this algorithm
  428. // Alive or Stale?
  429. for(unsigned int i=0;i<ZT_MAX_PEER_NETWORK_PATHS;++i) {
  430. if (_paths[i].p) {
  431. if (_paths[i].p->alive(now)) {
  432. alivePaths[numAlivePaths] = i;
  433. numAlivePaths++;
  434. } else {
  435. stalePaths[numStalePaths] = i;
  436. numStalePaths++;
  437. }
  438. // Record a default path to use as a short-circuit for the rest of the algorithm (if needed)
  439. bestPath = i;
  440. }
  441. }
  442. // Compare paths to each-other
  443. float qualityScalingFactor = computeAggregateLinkRelativeQuality(now);
  444. if (numAlivePaths == 0 && numStalePaths == 0) {
  445. return SharedPtr<Path>();
  446. } if (numAlivePaths == 1 || numStalePaths == 1) {
  447. return _paths[bestPath].p;
  448. }
  449. // Convert set of relative performances into an allocation set
  450. for(uint16_t i=0;i<ZT_MAX_PEER_NETWORK_PATHS;++i) {
  451. if (_paths[i].p) {
  452. alloc[i] = _paths[i].p->relativeQuality() * qualityScalingFactor;
  453. }
  454. }
  455. // Randomly choose path according to their allocations
  456. unsigned int r;
  457. Utils::getSecureRandom(&r, 1);
  458. float rf = (float)(r %= 100) / 100;
  459. for(int i=0;i<ZT_MAX_PEER_NETWORK_PATHS;++i) {
  460. if (_paths[i].p) {
  461. if (rf < alloc[i]) {
  462. bestPath = i;
  463. _pathChoiceHist->push(bestPath); // Record which path we chose
  464. break;
  465. }
  466. rf -= alloc[i];
  467. }
  468. }
  469. if (bestPath < ZT_MAX_PEER_NETWORK_PATHS) {
  470. return _paths[bestPath].p;
  471. }
  472. }
  473. return SharedPtr<Path>();
  474. }
  475. char *Peer::interfaceListStr()
  476. {
  477. std::map<std::string, int> ifnamemap;
  478. char tmp[32];
  479. const int64_t now = RR->node->now();
  480. char *ptr = _interfaceListStr;
  481. bool imbalanced = false;
  482. memset(_interfaceListStr, 0, sizeof(_interfaceListStr));
  483. int alivePathCount = aggregateLinkLogicalPathCount();
  484. for(unsigned int i=0;i<ZT_MAX_PEER_NETWORK_PATHS;++i) {
  485. if (_paths[i].p && _paths[i].p->alive(now)) {
  486. int ipv = _paths[i].p->address().isV4();
  487. // If this is acting as an aggregate link, check allocations
  488. float targetAllocation = 1.0 / alivePathCount;
  489. float currentAllocation = 1.0;
  490. if (alivePathCount > 1) {
  491. currentAllocation = (float)_pathChoiceHist->countValue(i) / (float)_pathChoiceHist->count();
  492. if (fabs(targetAllocation - currentAllocation) > ZT_PATH_IMBALANCE_THRESHOLD) {
  493. imbalanced = true;
  494. }
  495. }
  496. char *ipvStr = ipv ? (char*)"ipv4" : (char*)"ipv6";
  497. sprintf(tmp, "(%s, %s, %.3f)", _paths[i].p->getName(), ipvStr, currentAllocation);
  498. // Prevent duplicates
  499. if(ifnamemap[_paths[i].p->getName()] != ipv) {
  500. memcpy(ptr, tmp, strlen(tmp));
  501. ptr += strlen(tmp);
  502. *ptr = ' ';
  503. ptr++;
  504. ifnamemap[_paths[i].p->getName()] = ipv;
  505. }
  506. }
  507. }
  508. ptr--; // Overwrite trailing space
  509. if (imbalanced) {
  510. sprintf(tmp, ", is asymmetrical");
  511. memcpy(ptr, tmp, sizeof(tmp));
  512. } else {
  513. *ptr = '\0';
  514. }
  515. return _interfaceListStr;
  516. }
  517. void Peer::introduce(void *const tPtr,const int64_t now,const SharedPtr<Peer> &other) const
  518. {
  519. unsigned int myBestV4ByScope[ZT_INETADDRESS_MAX_SCOPE+1];
  520. unsigned int myBestV6ByScope[ZT_INETADDRESS_MAX_SCOPE+1];
  521. long myBestV4QualityByScope[ZT_INETADDRESS_MAX_SCOPE+1];
  522. long myBestV6QualityByScope[ZT_INETADDRESS_MAX_SCOPE+1];
  523. unsigned int theirBestV4ByScope[ZT_INETADDRESS_MAX_SCOPE+1];
  524. unsigned int theirBestV6ByScope[ZT_INETADDRESS_MAX_SCOPE+1];
  525. long theirBestV4QualityByScope[ZT_INETADDRESS_MAX_SCOPE+1];
  526. long theirBestV6QualityByScope[ZT_INETADDRESS_MAX_SCOPE+1];
  527. for(int i=0;i<=ZT_INETADDRESS_MAX_SCOPE;++i) {
  528. myBestV4ByScope[i] = ZT_MAX_PEER_NETWORK_PATHS;
  529. myBestV6ByScope[i] = ZT_MAX_PEER_NETWORK_PATHS;
  530. myBestV4QualityByScope[i] = 2147483647;
  531. myBestV6QualityByScope[i] = 2147483647;
  532. theirBestV4ByScope[i] = ZT_MAX_PEER_NETWORK_PATHS;
  533. theirBestV6ByScope[i] = ZT_MAX_PEER_NETWORK_PATHS;
  534. theirBestV4QualityByScope[i] = 2147483647;
  535. theirBestV6QualityByScope[i] = 2147483647;
  536. }
  537. Mutex::Lock _l1(_paths_m);
  538. for(unsigned int i=0;i<ZT_MAX_PEER_NETWORK_PATHS;++i) {
  539. if (_paths[i].p) {
  540. const long q = _paths[i].p->quality(now) / _paths[i].priority;
  541. const unsigned int s = (unsigned int)_paths[i].p->ipScope();
  542. switch(_paths[i].p->address().ss_family) {
  543. case AF_INET:
  544. if (q <= myBestV4QualityByScope[s]) {
  545. myBestV4QualityByScope[s] = q;
  546. myBestV4ByScope[s] = i;
  547. }
  548. break;
  549. case AF_INET6:
  550. if (q <= myBestV6QualityByScope[s]) {
  551. myBestV6QualityByScope[s] = q;
  552. myBestV6ByScope[s] = i;
  553. }
  554. break;
  555. }
  556. } else break;
  557. }
  558. Mutex::Lock _l2(other->_paths_m);
  559. for(unsigned int i=0;i<ZT_MAX_PEER_NETWORK_PATHS;++i) {
  560. if (other->_paths[i].p) {
  561. const long q = other->_paths[i].p->quality(now) / other->_paths[i].priority;
  562. const unsigned int s = (unsigned int)other->_paths[i].p->ipScope();
  563. switch(other->_paths[i].p->address().ss_family) {
  564. case AF_INET:
  565. if (q <= theirBestV4QualityByScope[s]) {
  566. theirBestV4QualityByScope[s] = q;
  567. theirBestV4ByScope[s] = i;
  568. }
  569. break;
  570. case AF_INET6:
  571. if (q <= theirBestV6QualityByScope[s]) {
  572. theirBestV6QualityByScope[s] = q;
  573. theirBestV6ByScope[s] = i;
  574. }
  575. break;
  576. }
  577. } else break;
  578. }
  579. unsigned int mine = ZT_MAX_PEER_NETWORK_PATHS;
  580. unsigned int theirs = ZT_MAX_PEER_NETWORK_PATHS;
  581. for(int s=ZT_INETADDRESS_MAX_SCOPE;s>=0;--s) {
  582. if ((myBestV6ByScope[s] != ZT_MAX_PEER_NETWORK_PATHS)&&(theirBestV6ByScope[s] != ZT_MAX_PEER_NETWORK_PATHS)) {
  583. mine = myBestV6ByScope[s];
  584. theirs = theirBestV6ByScope[s];
  585. break;
  586. }
  587. if ((myBestV4ByScope[s] != ZT_MAX_PEER_NETWORK_PATHS)&&(theirBestV4ByScope[s] != ZT_MAX_PEER_NETWORK_PATHS)) {
  588. mine = myBestV4ByScope[s];
  589. theirs = theirBestV4ByScope[s];
  590. break;
  591. }
  592. }
  593. if (mine != ZT_MAX_PEER_NETWORK_PATHS) {
  594. unsigned int alt = (unsigned int)RR->node->prng() & 1; // randomize which hint we send first for black magickal NAT-t reasons
  595. const unsigned int completed = alt + 2;
  596. while (alt != completed) {
  597. if ((alt & 1) == 0) {
  598. Packet outp(_id.address(),RR->identity.address(),Packet::VERB_RENDEZVOUS);
  599. outp.append((uint8_t)0);
  600. other->_id.address().appendTo(outp);
  601. outp.append((uint16_t)other->_paths[theirs].p->address().port());
  602. if (other->_paths[theirs].p->address().ss_family == AF_INET6) {
  603. outp.append((uint8_t)16);
  604. outp.append(other->_paths[theirs].p->address().rawIpData(),16);
  605. } else {
  606. outp.append((uint8_t)4);
  607. outp.append(other->_paths[theirs].p->address().rawIpData(),4);
  608. }
  609. outp.armor(_key,true);
  610. _paths[mine].p->send(RR,tPtr,outp.data(),outp.size(),now);
  611. } else {
  612. Packet outp(other->_id.address(),RR->identity.address(),Packet::VERB_RENDEZVOUS);
  613. outp.append((uint8_t)0);
  614. _id.address().appendTo(outp);
  615. outp.append((uint16_t)_paths[mine].p->address().port());
  616. if (_paths[mine].p->address().ss_family == AF_INET6) {
  617. outp.append((uint8_t)16);
  618. outp.append(_paths[mine].p->address().rawIpData(),16);
  619. } else {
  620. outp.append((uint8_t)4);
  621. outp.append(_paths[mine].p->address().rawIpData(),4);
  622. }
  623. outp.armor(other->_key,true);
  624. other->_paths[theirs].p->send(RR,tPtr,outp.data(),outp.size(),now);
  625. }
  626. ++alt;
  627. }
  628. }
  629. }
  630. void Peer::sendACK(void *tPtr,const SharedPtr<Path> &path,const int64_t localSocket,const InetAddress &atAddress,int64_t now)
  631. {
  632. Packet outp(_id.address(),RR->identity.address(),Packet::VERB_ACK);
  633. uint32_t bytesToAck = path->bytesToAck();
  634. outp.append<uint32_t>(bytesToAck);
  635. if (atAddress) {
  636. outp.armor(_key,false);
  637. RR->node->putPacket(tPtr,localSocket,atAddress,outp.data(),outp.size());
  638. } else {
  639. RR->sw->send(tPtr,outp,false);
  640. }
  641. path->sentAck(now);
  642. }
  643. void Peer::sendQOS_MEASUREMENT(void *tPtr,const SharedPtr<Path> &path,const int64_t localSocket,const InetAddress &atAddress,int64_t now)
  644. {
  645. const int64_t _now = RR->node->now();
  646. Packet outp(_id.address(),RR->identity.address(),Packet::VERB_QOS_MEASUREMENT);
  647. char qosData[ZT_PATH_MAX_QOS_PACKET_SZ];
  648. int16_t len = path->generateQoSPacket(_now,qosData);
  649. outp.append(qosData,len);
  650. if (atAddress) {
  651. outp.armor(_key,false);
  652. RR->node->putPacket(tPtr,localSocket,atAddress,outp.data(),outp.size());
  653. } else {
  654. RR->sw->send(tPtr,outp,false);
  655. }
  656. path->sentQoS(now);
  657. }
  658. void Peer::sendHELLO(void *tPtr,const int64_t localSocket,const InetAddress &atAddress,int64_t now)
  659. {
  660. Packet outp(_id.address(),RR->identity.address(),Packet::VERB_HELLO);
  661. outp.append((unsigned char)ZT_PROTO_VERSION);
  662. outp.append((unsigned char)ZEROTIER_ONE_VERSION_MAJOR);
  663. outp.append((unsigned char)ZEROTIER_ONE_VERSION_MINOR);
  664. outp.append((uint16_t)ZEROTIER_ONE_VERSION_REVISION);
  665. outp.append(now);
  666. RR->identity.serialize(outp,false);
  667. atAddress.serialize(outp);
  668. outp.append((uint64_t)RR->topology->planetWorldId());
  669. outp.append((uint64_t)RR->topology->planetWorldTimestamp());
  670. const unsigned int startCryptedPortionAt = outp.size();
  671. std::vector<World> moons(RR->topology->moons());
  672. std::vector<uint64_t> moonsWanted(RR->topology->moonsWanted());
  673. outp.append((uint16_t)(moons.size() + moonsWanted.size()));
  674. for(std::vector<World>::const_iterator m(moons.begin());m!=moons.end();++m) {
  675. outp.append((uint8_t)m->type());
  676. outp.append((uint64_t)m->id());
  677. outp.append((uint64_t)m->timestamp());
  678. }
  679. for(std::vector<uint64_t>::const_iterator m(moonsWanted.begin());m!=moonsWanted.end();++m) {
  680. outp.append((uint8_t)World::TYPE_MOON);
  681. outp.append(*m);
  682. outp.append((uint64_t)0);
  683. }
  684. outp.cryptField(_key,startCryptedPortionAt,outp.size() - startCryptedPortionAt);
  685. RR->node->expectReplyTo(outp.packetId());
  686. if (atAddress) {
  687. outp.armor(_key,false); // false == don't encrypt full payload, but add MAC
  688. RR->node->putPacket(tPtr,localSocket,atAddress,outp.data(),outp.size());
  689. } else {
  690. RR->sw->send(tPtr,outp,false); // false == don't encrypt full payload, but add MAC
  691. }
  692. }
  693. void Peer::attemptToContactAt(void *tPtr,const int64_t localSocket,const InetAddress &atAddress,int64_t now,bool sendFullHello)
  694. {
  695. if ( (!sendFullHello) && (_vProto >= 5) && (!((_vMajor == 1)&&(_vMinor == 1)&&(_vRevision == 0))) ) {
  696. Packet outp(_id.address(),RR->identity.address(),Packet::VERB_ECHO);
  697. RR->node->expectReplyTo(outp.packetId());
  698. outp.armor(_key,true);
  699. RR->node->putPacket(tPtr,localSocket,atAddress,outp.data(),outp.size());
  700. } else {
  701. sendHELLO(tPtr,localSocket,atAddress,now);
  702. }
  703. }
  704. void Peer::tryMemorizedPath(void *tPtr,int64_t now)
  705. {
  706. if ((now - _lastTriedMemorizedPath) >= ZT_TRY_MEMORIZED_PATH_INTERVAL) {
  707. _lastTriedMemorizedPath = now;
  708. InetAddress mp;
  709. if (RR->node->externalPathLookup(tPtr,_id.address(),-1,mp))
  710. attemptToContactAt(tPtr,-1,mp,now,true);
  711. }
  712. }
  713. unsigned int Peer::doPingAndKeepalive(void *tPtr,int64_t now)
  714. {
  715. unsigned int sent = 0;
  716. Mutex::Lock _l(_paths_m);
  717. const bool sendFullHello = ((now - _lastSentFullHello) >= ZT_PEER_PING_PERIOD);
  718. _lastSentFullHello = now;
  719. // Emit traces regarding aggregate link status
  720. if (canUseMultipath()) {
  721. int alivePathCount = aggregateLinkPhysicalPathCount();
  722. if ((now - _lastAggregateStatsReport) > ZT_PATH_AGGREGATE_STATS_REPORT_INTERVAL) {
  723. _lastAggregateStatsReport = now;
  724. if (alivePathCount) {
  725. RR->t->peerLinkAggregateStatistics(NULL,*this);
  726. }
  727. } if (alivePathCount < 2 && _linkIsRedundant) {
  728. _linkIsRedundant = !_linkIsRedundant;
  729. RR->t->peerLinkNoLongerRedundant(NULL,*this);
  730. } if (alivePathCount > 1 && !_linkIsRedundant) {
  731. _linkIsRedundant = !_linkIsRedundant;
  732. RR->t->peerLinkNowRedundant(NULL,*this);
  733. }
  734. }
  735. // Right now we only keep pinging links that have the maximum priority. The
  736. // priority is used to track cluster redirections, meaning that when a cluster
  737. // redirects us its redirect target links override all other links and we
  738. // let those old links expire.
  739. long maxPriority = 0;
  740. for(unsigned int i=0;i<ZT_MAX_PEER_NETWORK_PATHS;++i) {
  741. if (_paths[i].p)
  742. maxPriority = std::max(_paths[i].priority,maxPriority);
  743. else break;
  744. }
  745. unsigned int j = 0;
  746. for(unsigned int i=0;i<ZT_MAX_PEER_NETWORK_PATHS;++i) {
  747. if (_paths[i].p) {
  748. // Clean expired and reduced priority paths
  749. if ( ((now - _paths[i].lr) < ZT_PEER_PATH_EXPIRATION) && (_paths[i].priority == maxPriority) ) {
  750. if ((sendFullHello)||(_paths[i].p->needsHeartbeat(now))) {
  751. attemptToContactAt(tPtr,_paths[i].p->localSocket(),_paths[i].p->address(),now,sendFullHello);
  752. _paths[i].p->sent(now);
  753. sent |= (_paths[i].p->address().ss_family == AF_INET) ? 0x1 : 0x2;
  754. }
  755. if (i != j)
  756. _paths[j] = _paths[i];
  757. ++j;
  758. }
  759. } else break;
  760. }
  761. if (canUseMultipath()) {
  762. while(j < ZT_MAX_PEER_NETWORK_PATHS) {
  763. _paths[j].lr = 0;
  764. _paths[j].p.zero();
  765. _paths[j].priority = 1;
  766. ++j;
  767. }
  768. }
  769. return sent;
  770. }
  771. void Peer::clusterRedirect(void *tPtr,const SharedPtr<Path> &originatingPath,const InetAddress &remoteAddress,const int64_t now)
  772. {
  773. SharedPtr<Path> np(RR->topology->getPath(originatingPath->localSocket(),remoteAddress));
  774. RR->t->peerRedirected(tPtr,0,*this,np);
  775. attemptToContactAt(tPtr,originatingPath->localSocket(),remoteAddress,now,true);
  776. {
  777. Mutex::Lock _l(_paths_m);
  778. // New priority is higher than the priority of the originating path (if known)
  779. long newPriority = 1;
  780. for(unsigned int i=0;i<ZT_MAX_PEER_NETWORK_PATHS;++i) {
  781. if (_paths[i].p) {
  782. if (_paths[i].p == originatingPath) {
  783. newPriority = _paths[i].priority;
  784. break;
  785. }
  786. } else break;
  787. }
  788. newPriority += 2;
  789. // Erase any paths with lower priority than this one or that are duplicate
  790. // IPs and add this path.
  791. unsigned int j = 0;
  792. for(unsigned int i=0;i<ZT_MAX_PEER_NETWORK_PATHS;++i) {
  793. if (_paths[i].p) {
  794. if ((_paths[i].priority >= newPriority)&&(!_paths[i].p->address().ipsEqual2(remoteAddress))) {
  795. if (i != j)
  796. _paths[j] = _paths[i];
  797. ++j;
  798. }
  799. }
  800. }
  801. if (j < ZT_MAX_PEER_NETWORK_PATHS) {
  802. _paths[j].lr = now;
  803. _paths[j].p = np;
  804. _paths[j].priority = newPriority;
  805. ++j;
  806. while (j < ZT_MAX_PEER_NETWORK_PATHS) {
  807. _paths[j].lr = 0;
  808. _paths[j].p.zero();
  809. _paths[j].priority = 1;
  810. ++j;
  811. }
  812. }
  813. }
  814. }
  815. void Peer::resetWithinScope(void *tPtr,InetAddress::IpScope scope,int inetAddressFamily,int64_t now)
  816. {
  817. Mutex::Lock _l(_paths_m);
  818. for(unsigned int i=0;i<ZT_MAX_PEER_NETWORK_PATHS;++i) {
  819. if (_paths[i].p) {
  820. if ((_paths[i].p->address().ss_family == inetAddressFamily)&&(_paths[i].p->ipScope() == scope)) {
  821. attemptToContactAt(tPtr,_paths[i].p->localSocket(),_paths[i].p->address(),now,false);
  822. _paths[i].p->sent(now);
  823. _paths[i].lr = 0; // path will not be used unless it speaks again
  824. }
  825. } else break;
  826. }
  827. }
  828. } // namespace ZeroTier