Switch.cpp 28 KB

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  1. /*
  2. * ZeroTier One - Network Virtualization Everywhere
  3. * Copyright (C) 2011-2015 ZeroTier, Inc.
  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. * ZeroTier may be used and distributed under the terms of the GPLv3, which
  21. * are available at: http://www.gnu.org/licenses/gpl-3.0.html
  22. *
  23. * If you would like to embed ZeroTier into a commercial application or
  24. * redistribute it in a modified binary form, please contact ZeroTier Networks
  25. * LLC. Start here: http://www.zerotier.com/
  26. */
  27. #include <stdio.h>
  28. #include <stdlib.h>
  29. #include <algorithm>
  30. #include <utility>
  31. #include <stdexcept>
  32. #include "../version.h"
  33. #include "../include/ZeroTierOne.h"
  34. #include "Constants.hpp"
  35. #include "RuntimeEnvironment.hpp"
  36. #include "Switch.hpp"
  37. #include "Node.hpp"
  38. #include "InetAddress.hpp"
  39. #include "Topology.hpp"
  40. #include "Peer.hpp"
  41. #include "AntiRecursion.hpp"
  42. #include "SelfAwareness.hpp"
  43. #include "Packet.hpp"
  44. namespace ZeroTier {
  45. #ifdef ZT_TRACE
  46. static const char *etherTypeName(const unsigned int etherType)
  47. {
  48. switch(etherType) {
  49. case ZT_ETHERTYPE_IPV4: return "IPV4";
  50. case ZT_ETHERTYPE_ARP: return "ARP";
  51. case ZT_ETHERTYPE_RARP: return "RARP";
  52. case ZT_ETHERTYPE_ATALK: return "ATALK";
  53. case ZT_ETHERTYPE_AARP: return "AARP";
  54. case ZT_ETHERTYPE_IPX_A: return "IPX_A";
  55. case ZT_ETHERTYPE_IPX_B: return "IPX_B";
  56. case ZT_ETHERTYPE_IPV6: return "IPV6";
  57. }
  58. return "UNKNOWN";
  59. }
  60. #endif // ZT_TRACE
  61. Switch::Switch(const RuntimeEnvironment *renv) :
  62. RR(renv),
  63. _lastBeaconResponse(0)
  64. {
  65. }
  66. Switch::~Switch()
  67. {
  68. }
  69. void Switch::onRemotePacket(const InetAddress &fromAddr,const void *data,unsigned int len)
  70. {
  71. try {
  72. if (len == 13) {
  73. /* LEGACY: before VERB_PUSH_DIRECT_PATHS, peers used broadcast
  74. * announcements on the LAN to solve the 'same network problem.' We
  75. * no longer send these, but we'll listen for them for a while to
  76. * locate peers with versions <1.0.4. */
  77. Address beaconAddr(reinterpret_cast<const char *>(data) + 8,5);
  78. if (beaconAddr == RR->identity.address())
  79. return;
  80. SharedPtr<Peer> peer(RR->topology->getPeer(beaconAddr));
  81. if (peer) { // we'll only respond to beacons from known peers
  82. const uint64_t now = RR->node->now();
  83. if ((now - _lastBeaconResponse) >= 2500) { // limit rate of responses
  84. _lastBeaconResponse = now;
  85. Packet outp(peer->address(),RR->identity.address(),Packet::VERB_NOP);
  86. outp.armor(peer->key(),false);
  87. RR->node->putPacket(fromAddr,outp.data(),outp.size());
  88. }
  89. }
  90. } else if (len > ZT_PROTO_MIN_FRAGMENT_LENGTH) {
  91. if (((const unsigned char *)data)[ZT_PACKET_FRAGMENT_IDX_FRAGMENT_INDICATOR] == ZT_PACKET_FRAGMENT_INDICATOR) {
  92. _handleRemotePacketFragment(fromAddr,data,len);
  93. } else if (len >= ZT_PROTO_MIN_PACKET_LENGTH) {
  94. _handleRemotePacketHead(fromAddr,data,len);
  95. }
  96. }
  97. } catch (std::exception &ex) {
  98. TRACE("dropped packet from %s: unexpected exception: %s",fromAddr.toString().c_str(),ex.what());
  99. } catch ( ... ) {
  100. TRACE("dropped packet from %s: unexpected exception: (unknown)",fromAddr.toString().c_str());
  101. }
  102. }
  103. void Switch::onLocalEthernet(const SharedPtr<Network> &network,const MAC &from,const MAC &to,unsigned int etherType,unsigned int vlanId,const void *data,unsigned int len)
  104. {
  105. SharedPtr<NetworkConfig> nconf(network->config2());
  106. if (!nconf)
  107. return;
  108. // Sanity check -- bridge loop? OS problem?
  109. if (to == network->mac())
  110. return;
  111. /* Check anti-recursion module to ensure that this is not ZeroTier talking over its own links.
  112. * Note: even when we introduce a more purposeful binding of the main UDP port, this can
  113. * still happen because Windows likes to send broadcasts over interfaces that have little
  114. * to do with their intended target audience. :P */
  115. if (!RR->antiRec->checkEthernetFrame(data,len)) {
  116. TRACE("%.16llx: rejected recursively addressed ZeroTier packet by tail match (type %s, length: %u)",network->id(),etherTypeName(etherType),len);
  117. return;
  118. }
  119. // Check to make sure this protocol is allowed on this network
  120. if (!nconf->permitsEtherType(etherType)) {
  121. TRACE("%.16llx: ignored tap: %s -> %s: ethertype %s not allowed on network %.16llx",network->id(),from.toString().c_str(),to.toString().c_str(),etherTypeName(etherType),(unsigned long long)network->id());
  122. return;
  123. }
  124. // Check if this packet is from someone other than the tap -- i.e. bridged in
  125. bool fromBridged = false;
  126. if (from != network->mac()) {
  127. if (!network->permitsBridging(RR->identity.address())) {
  128. TRACE("%.16llx: %s -> %s %s not forwarded, bridging disabled or this peer not a bridge",network->id(),from.toString().c_str(),to.toString().c_str(),etherTypeName(etherType));
  129. return;
  130. }
  131. fromBridged = true;
  132. }
  133. if (to.isMulticast()) {
  134. // Destination is a multicast address (including broadcast)
  135. MulticastGroup mg(to,0);
  136. if (to.isBroadcast()) {
  137. if (
  138. (etherType == ZT_ETHERTYPE_ARP)&&
  139. (len >= 28)&&
  140. (
  141. (((const unsigned char *)data)[2] == 0x08)&&
  142. (((const unsigned char *)data)[3] == 0x00)&&
  143. (((const unsigned char *)data)[4] == 6)&&
  144. (((const unsigned char *)data)[5] == 4)&&
  145. (((const unsigned char *)data)[7] == 0x01)
  146. )
  147. ) {
  148. // Cram IPv4 IP into ADI field to make IPv4 ARP broadcast channel specific and scalable
  149. // Also: enableBroadcast() does not apply to ARP since it's required for IPv4
  150. mg = MulticastGroup::deriveMulticastGroupForAddressResolution(InetAddress(((const unsigned char *)data) + 24,4,0));
  151. } else if (!nconf->enableBroadcast()) {
  152. // Don't transmit broadcasts if this network doesn't want them
  153. TRACE("%.16llx: dropped broadcast since ff:ff:ff:ff:ff:ff is not enabled",network->id());
  154. return;
  155. }
  156. }
  157. /* Learn multicast groups for bridged-in hosts.
  158. * Note that some OSes, most notably Linux, do this for you by learning
  159. * multicast addresses on bridge interfaces and subscribing each slave.
  160. * But in that case this does no harm, as the sets are just merged. */
  161. if (fromBridged)
  162. network->learnBridgedMulticastGroup(mg,RR->node->now());
  163. //TRACE("%.16llx: MULTICAST %s -> %s %s %u",network->id(),from.toString().c_str(),mg.toString().c_str(),etherTypeName(etherType),len);
  164. RR->mc->send(
  165. ((!nconf->isPublic())&&(nconf->com())) ? &(nconf->com()) : (const CertificateOfMembership *)0,
  166. nconf->multicastLimit(),
  167. RR->node->now(),
  168. network->id(),
  169. nconf->activeBridges(),
  170. mg,
  171. (fromBridged) ? from : MAC(),
  172. etherType,
  173. data,
  174. len);
  175. return;
  176. }
  177. if (to[0] == MAC::firstOctetForNetwork(network->id())) {
  178. // Destination is another ZeroTier peer on the same network
  179. Address toZT(to.toAddress(network->id())); // since in-network MACs are derived from addresses and network IDs, we can reverse this
  180. const bool includeCom = network->peerNeedsOurMembershipCertificate(toZT,RR->node->now());
  181. if ((fromBridged)||(includeCom)) {
  182. Packet outp(toZT,RR->identity.address(),Packet::VERB_EXT_FRAME);
  183. outp.append(network->id());
  184. if (includeCom) {
  185. outp.append((unsigned char)0x01); // 0x01 -- COM included
  186. nconf->com().serialize(outp);
  187. } else {
  188. outp.append((unsigned char)0x00);
  189. }
  190. to.appendTo(outp);
  191. from.appendTo(outp);
  192. outp.append((uint16_t)etherType);
  193. outp.append(data,len);
  194. outp.compress();
  195. send(outp,true,network->id());
  196. } else {
  197. Packet outp(toZT,RR->identity.address(),Packet::VERB_FRAME);
  198. outp.append(network->id());
  199. outp.append((uint16_t)etherType);
  200. outp.append(data,len);
  201. outp.compress();
  202. send(outp,true,network->id());
  203. }
  204. //TRACE("%.16llx: UNICAST: %s -> %s etherType==%s(%.4x) vlanId==%u len==%u fromBridged==%d includeCom==%d",network->id(),from.toString().c_str(),to.toString().c_str(),etherTypeName(etherType),etherType,vlanId,len,(int)fromBridged,(int)includeCom);
  205. return;
  206. }
  207. {
  208. // Destination is bridged behind a remote peer
  209. Address bridges[ZT_MAX_BRIDGE_SPAM];
  210. unsigned int numBridges = 0;
  211. /* Create an array of up to ZT_MAX_BRIDGE_SPAM recipients for this bridged frame. */
  212. bridges[0] = network->findBridgeTo(to);
  213. if ((bridges[0])&&(bridges[0] != RR->identity.address())&&(network->permitsBridging(bridges[0]))) {
  214. /* We have a known bridge route for this MAC, send it there. */
  215. ++numBridges;
  216. } else if (!nconf->activeBridges().empty()) {
  217. /* If there is no known route, spam to up to ZT_MAX_BRIDGE_SPAM active
  218. * bridges. If someone responds, we'll learn the route. */
  219. std::vector<Address>::const_iterator ab(nconf->activeBridges().begin());
  220. if (nconf->activeBridges().size() <= ZT_MAX_BRIDGE_SPAM) {
  221. // If there are <= ZT_MAX_BRIDGE_SPAM active bridges, spam them all
  222. while (ab != nconf->activeBridges().end()) {
  223. bridges[numBridges++] = *ab;
  224. ++ab;
  225. }
  226. } else {
  227. // Otherwise pick a random set of them
  228. while (numBridges < ZT_MAX_BRIDGE_SPAM) {
  229. if (ab == nconf->activeBridges().end())
  230. ab = nconf->activeBridges().begin();
  231. if (((unsigned long)RR->node->prng() % (unsigned long)nconf->activeBridges().size()) == 0) {
  232. bridges[numBridges++] = *ab;
  233. ++ab;
  234. } else ++ab;
  235. }
  236. }
  237. }
  238. for(unsigned int b=0;b<numBridges;++b) {
  239. Packet outp(bridges[b],RR->identity.address(),Packet::VERB_EXT_FRAME);
  240. outp.append(network->id());
  241. if (network->peerNeedsOurMembershipCertificate(bridges[b],RR->node->now())) {
  242. outp.append((unsigned char)0x01); // 0x01 -- COM included
  243. nconf->com().serialize(outp);
  244. } else {
  245. outp.append((unsigned char)0);
  246. }
  247. to.appendTo(outp);
  248. from.appendTo(outp);
  249. outp.append((uint16_t)etherType);
  250. outp.append(data,len);
  251. outp.compress();
  252. send(outp,true,network->id());
  253. }
  254. }
  255. }
  256. void Switch::send(const Packet &packet,bool encrypt,uint64_t nwid)
  257. {
  258. if (packet.destination() == RR->identity.address()) {
  259. TRACE("BUG: caught attempt to send() to self, ignored");
  260. return;
  261. }
  262. if (!_trySend(packet,encrypt,nwid)) {
  263. Mutex::Lock _l(_txQueue_m);
  264. _txQueue.insert(std::pair< Address,TXQueueEntry >(packet.destination(),TXQueueEntry(RR->node->now(),packet,encrypt,nwid)));
  265. }
  266. }
  267. bool Switch::unite(const Address &p1,const Address &p2,bool force)
  268. {
  269. if ((p1 == RR->identity.address())||(p2 == RR->identity.address()))
  270. return false;
  271. SharedPtr<Peer> p1p = RR->topology->getPeer(p1);
  272. if (!p1p)
  273. return false;
  274. SharedPtr<Peer> p2p = RR->topology->getPeer(p2);
  275. if (!p2p)
  276. return false;
  277. const uint64_t now = RR->node->now();
  278. std::pair<InetAddress,InetAddress> cg(Peer::findCommonGround(*p1p,*p2p,now));
  279. if (!(cg.first))
  280. return false;
  281. if (cg.first.ipScope() != cg.second.ipScope())
  282. return false;
  283. // Addresses are sorted in key for last unite attempt map for order
  284. // invariant lookup: (p1,p2) == (p2,p1)
  285. Array<Address,2> uniteKey;
  286. if (p1 >= p2) {
  287. uniteKey[0] = p2;
  288. uniteKey[1] = p1;
  289. } else {
  290. uniteKey[0] = p1;
  291. uniteKey[1] = p2;
  292. }
  293. {
  294. Mutex::Lock _l(_lastUniteAttempt_m);
  295. std::map< Array< Address,2 >,uint64_t >::const_iterator e(_lastUniteAttempt.find(uniteKey));
  296. if ((!force)&&(e != _lastUniteAttempt.end())&&((now - e->second) < ZT_MIN_UNITE_INTERVAL))
  297. return false;
  298. else _lastUniteAttempt[uniteKey] = now;
  299. }
  300. TRACE("unite: %s(%s) <> %s(%s)",p1.toString().c_str(),cg.second.toString().c_str(),p2.toString().c_str(),cg.first.toString().c_str());
  301. /* Tell P1 where to find P2 and vice versa, sending the packets to P1 and
  302. * P2 in randomized order in terms of which gets sent first. This is done
  303. * since in a few cases NAT-t can be sensitive to slight timing differences
  304. * in terms of when the two peers initiate. Normally this is accounted for
  305. * by the nearly-simultaneous RENDEZVOUS kickoff from the relay, but
  306. * given that relay are hosted on cloud providers this can in some
  307. * cases have a few ms of latency between packet departures. By randomizing
  308. * the order we make each attempted NAT-t favor one or the other going
  309. * first, meaning if it doesn't succeed the first time it might the second
  310. * and so forth. */
  311. unsigned int alt = (unsigned int)RR->node->prng() & 1;
  312. unsigned int completed = alt + 2;
  313. while (alt != completed) {
  314. if ((alt & 1) == 0) {
  315. // Tell p1 where to find p2.
  316. Packet outp(p1,RR->identity.address(),Packet::VERB_RENDEZVOUS);
  317. outp.append((unsigned char)0);
  318. p2.appendTo(outp);
  319. outp.append((uint16_t)cg.first.port());
  320. if (cg.first.isV6()) {
  321. outp.append((unsigned char)16);
  322. outp.append(cg.first.rawIpData(),16);
  323. } else {
  324. outp.append((unsigned char)4);
  325. outp.append(cg.first.rawIpData(),4);
  326. }
  327. outp.armor(p1p->key(),true);
  328. p1p->send(RR,outp.data(),outp.size(),now);
  329. } else {
  330. // Tell p2 where to find p1.
  331. Packet outp(p2,RR->identity.address(),Packet::VERB_RENDEZVOUS);
  332. outp.append((unsigned char)0);
  333. p1.appendTo(outp);
  334. outp.append((uint16_t)cg.second.port());
  335. if (cg.second.isV6()) {
  336. outp.append((unsigned char)16);
  337. outp.append(cg.second.rawIpData(),16);
  338. } else {
  339. outp.append((unsigned char)4);
  340. outp.append(cg.second.rawIpData(),4);
  341. }
  342. outp.armor(p2p->key(),true);
  343. p2p->send(RR,outp.data(),outp.size(),now);
  344. }
  345. ++alt; // counts up and also flips LSB
  346. }
  347. return true;
  348. }
  349. void Switch::rendezvous(const SharedPtr<Peer> &peer,const InetAddress &atAddr)
  350. {
  351. TRACE("sending NAT-t message to %s(%s)",peer->address().toString().c_str(),atAddr.toString().c_str());
  352. const uint64_t now = RR->node->now();
  353. if ((atAddr.ss_family == AF_INET)&&(RR->sa->areGlobalIPv4PortsRandomized())) {
  354. peer->attemptToContactAt(RR,atAddr,now);
  355. } else {
  356. TRACE("behind randomizing symmetric NAT -- delaying initial message to %s(%s)",peer->address().toString().c_str(),atAddr.toString().c_str());
  357. }
  358. {
  359. Mutex::Lock _l(_contactQueue_m);
  360. _contactQueue.push_back(ContactQueueEntry(peer,now + (ZT_NAT_T_TACTICAL_ESCALATION_DELAY / 2),atAddr));
  361. }
  362. }
  363. void Switch::requestWhois(const Address &addr)
  364. {
  365. bool inserted = false;
  366. {
  367. Mutex::Lock _l(_outstandingWhoisRequests_m);
  368. std::pair< std::map< Address,WhoisRequest >::iterator,bool > entry(_outstandingWhoisRequests.insert(std::pair<Address,WhoisRequest>(addr,WhoisRequest())));
  369. if ((inserted = entry.second))
  370. entry.first->second.lastSent = RR->node->now();
  371. entry.first->second.retries = 0; // reset retry count if entry already existed
  372. }
  373. if (inserted)
  374. _sendWhoisRequest(addr,(const Address *)0,0);
  375. }
  376. void Switch::cancelWhoisRequest(const Address &addr)
  377. {
  378. Mutex::Lock _l(_outstandingWhoisRequests_m);
  379. _outstandingWhoisRequests.erase(addr);
  380. }
  381. void Switch::doAnythingWaitingForPeer(const SharedPtr<Peer> &peer)
  382. {
  383. { // cancel pending WHOIS since we now know this peer
  384. Mutex::Lock _l(_outstandingWhoisRequests_m);
  385. _outstandingWhoisRequests.erase(peer->address());
  386. }
  387. { // finish processing any packets waiting on peer's public key / identity
  388. Mutex::Lock _l(_rxQueue_m);
  389. for(std::list< SharedPtr<IncomingPacket> >::iterator rxi(_rxQueue.begin());rxi!=_rxQueue.end();) {
  390. if ((*rxi)->tryDecode(RR))
  391. _rxQueue.erase(rxi++);
  392. else ++rxi;
  393. }
  394. }
  395. { // finish sending any packets waiting on peer's public key / identity
  396. Mutex::Lock _l(_txQueue_m);
  397. std::pair< std::multimap< Address,TXQueueEntry >::iterator,std::multimap< Address,TXQueueEntry >::iterator > waitingTxQueueItems(_txQueue.equal_range(peer->address()));
  398. for(std::multimap< Address,TXQueueEntry >::iterator txi(waitingTxQueueItems.first);txi!=waitingTxQueueItems.second;) {
  399. if (_trySend(txi->second.packet,txi->second.encrypt,txi->second.nwid))
  400. _txQueue.erase(txi++);
  401. else ++txi;
  402. }
  403. }
  404. }
  405. unsigned long Switch::doTimerTasks(uint64_t now)
  406. {
  407. unsigned long nextDelay = 0xffffffff; // ceiling delay, caller will cap to minimum
  408. {
  409. Mutex::Lock _l(_contactQueue_m);
  410. for(std::list<ContactQueueEntry>::iterator qi(_contactQueue.begin());qi!=_contactQueue.end();) {
  411. if (now >= qi->fireAtTime) {
  412. if (qi->peer->hasActiveDirectPath(now)) {
  413. // We've successfully NAT-t'd, so cancel attempt
  414. _contactQueue.erase(qi++);
  415. continue;
  416. } else {
  417. if (qi->strategyIteration == 0) {
  418. // First strategy: send packet directly to destination
  419. qi->peer->attemptToContactAt(RR,qi->inaddr,now);
  420. } else if (qi->strategyIteration <= 4) {
  421. // Strategies 1-4: try escalating ports for symmetric NATs that remap sequentially
  422. InetAddress tmpaddr(qi->inaddr);
  423. int p = (int)qi->inaddr.port() + qi->strategyIteration;
  424. if (p < 0xffff) {
  425. tmpaddr.setPort((unsigned int)p);
  426. qi->peer->attemptToContactAt(RR,tmpaddr,now);
  427. } else qi->strategyIteration = 5;
  428. } else {
  429. // All strategies tried, expire entry
  430. _contactQueue.erase(qi++);
  431. continue;
  432. }
  433. ++qi->strategyIteration;
  434. qi->fireAtTime = now + ZT_NAT_T_TACTICAL_ESCALATION_DELAY;
  435. nextDelay = std::min(nextDelay,(unsigned long)ZT_NAT_T_TACTICAL_ESCALATION_DELAY);
  436. }
  437. } else {
  438. nextDelay = std::min(nextDelay,(unsigned long)(qi->fireAtTime - now));
  439. }
  440. ++qi; // if qi was erased, loop will have continued before here
  441. }
  442. }
  443. { // Retry outstanding WHOIS requests
  444. Mutex::Lock _l(_outstandingWhoisRequests_m);
  445. for(std::map< Address,WhoisRequest >::iterator i(_outstandingWhoisRequests.begin());i!=_outstandingWhoisRequests.end();) {
  446. unsigned long since = (unsigned long)(now - i->second.lastSent);
  447. if (since >= ZT_WHOIS_RETRY_DELAY) {
  448. if (i->second.retries >= ZT_MAX_WHOIS_RETRIES) {
  449. TRACE("WHOIS %s timed out",i->first.toString().c_str());
  450. _outstandingWhoisRequests.erase(i++);
  451. continue;
  452. } else {
  453. i->second.lastSent = now;
  454. i->second.peersConsulted[i->second.retries] = _sendWhoisRequest(i->first,i->second.peersConsulted,i->second.retries);
  455. ++i->second.retries;
  456. TRACE("WHOIS %s (retry %u)",i->first.toString().c_str(),i->second.retries);
  457. nextDelay = std::min(nextDelay,(unsigned long)ZT_WHOIS_RETRY_DELAY);
  458. }
  459. } else {
  460. nextDelay = std::min(nextDelay,ZT_WHOIS_RETRY_DELAY - since);
  461. }
  462. ++i;
  463. }
  464. }
  465. { // Time out TX queue packets that never got WHOIS lookups or other info.
  466. Mutex::Lock _l(_txQueue_m);
  467. for(std::multimap< Address,TXQueueEntry >::iterator i(_txQueue.begin());i!=_txQueue.end();) {
  468. if (_trySend(i->second.packet,i->second.encrypt,i->second.nwid))
  469. _txQueue.erase(i++);
  470. else if ((now - i->second.creationTime) > ZT_TRANSMIT_QUEUE_TIMEOUT) {
  471. TRACE("TX %s -> %s timed out",i->second.packet.source().toString().c_str(),i->second.packet.destination().toString().c_str());
  472. _txQueue.erase(i++);
  473. } else ++i;
  474. }
  475. }
  476. { // Time out RX queue packets that never got WHOIS lookups or other info.
  477. Mutex::Lock _l(_rxQueue_m);
  478. for(std::list< SharedPtr<IncomingPacket> >::iterator i(_rxQueue.begin());i!=_rxQueue.end();) {
  479. if ((now - (*i)->receiveTime()) > ZT_RECEIVE_QUEUE_TIMEOUT) {
  480. TRACE("RX %s -> %s timed out",(*i)->source().toString().c_str(),(*i)->destination().toString().c_str());
  481. _rxQueue.erase(i++);
  482. } else ++i;
  483. }
  484. }
  485. { // Time out packets that didn't get all their fragments.
  486. Mutex::Lock _l(_defragQueue_m);
  487. for(std::map< uint64_t,DefragQueueEntry >::iterator i(_defragQueue.begin());i!=_defragQueue.end();) {
  488. if ((now - i->second.creationTime) > ZT_FRAGMENTED_PACKET_RECEIVE_TIMEOUT) {
  489. TRACE("incomplete fragmented packet %.16llx timed out, fragments discarded",i->first);
  490. _defragQueue.erase(i++);
  491. } else ++i;
  492. }
  493. }
  494. return nextDelay;
  495. }
  496. void Switch::_handleRemotePacketFragment(const InetAddress &fromAddr,const void *data,unsigned int len)
  497. {
  498. Packet::Fragment fragment(data,len);
  499. Address destination(fragment.destination());
  500. if (destination != RR->identity.address()) {
  501. // Fragment is not for us, so try to relay it
  502. if (fragment.hops() < ZT_RELAY_MAX_HOPS) {
  503. fragment.incrementHops();
  504. // Note: we don't bother initiating NAT-t for fragments, since heads will set that off.
  505. // It wouldn't hurt anything, just redundant and unnecessary.
  506. SharedPtr<Peer> relayTo = RR->topology->getPeer(destination);
  507. if ((!relayTo)||(!relayTo->send(RR,fragment.data(),fragment.size(),RR->node->now()))) {
  508. // Don't know peer or no direct path -- so relay via root server
  509. relayTo = RR->topology->getBestRoot();
  510. if (relayTo)
  511. relayTo->send(RR,fragment.data(),fragment.size(),RR->node->now());
  512. }
  513. } else {
  514. TRACE("dropped relay [fragment](%s) -> %s, max hops exceeded",fromAddr.toString().c_str(),destination.toString().c_str());
  515. }
  516. } else {
  517. // Fragment looks like ours
  518. uint64_t pid = fragment.packetId();
  519. unsigned int fno = fragment.fragmentNumber();
  520. unsigned int tf = fragment.totalFragments();
  521. if ((tf <= ZT_MAX_PACKET_FRAGMENTS)&&(fno < ZT_MAX_PACKET_FRAGMENTS)&&(fno > 0)&&(tf > 1)) {
  522. // Fragment appears basically sane. Its fragment number must be
  523. // 1 or more, since a Packet with fragmented bit set is fragment 0.
  524. // Total fragments must be more than 1, otherwise why are we
  525. // seeing a Packet::Fragment?
  526. Mutex::Lock _l(_defragQueue_m);
  527. std::map< uint64_t,DefragQueueEntry >::iterator dqe(_defragQueue.find(pid));
  528. if (dqe == _defragQueue.end()) {
  529. // We received a Packet::Fragment without its head, so queue it and wait
  530. DefragQueueEntry &dq = _defragQueue[pid];
  531. dq.creationTime = RR->node->now();
  532. dq.frags[fno - 1] = fragment;
  533. dq.totalFragments = tf; // total fragment count is known
  534. dq.haveFragments = 1 << fno; // we have only this fragment
  535. //TRACE("fragment (%u/%u) of %.16llx from %s",fno + 1,tf,pid,fromAddr.toString().c_str());
  536. } else if (!(dqe->second.haveFragments & (1 << fno))) {
  537. // We have other fragments and maybe the head, so add this one and check
  538. dqe->second.frags[fno - 1] = fragment;
  539. dqe->second.totalFragments = tf;
  540. //TRACE("fragment (%u/%u) of %.16llx from %s",fno + 1,tf,pid,fromAddr.toString().c_str());
  541. if (Utils::countBits(dqe->second.haveFragments |= (1 << fno)) == tf) {
  542. // We have all fragments -- assemble and process full Packet
  543. //TRACE("packet %.16llx is complete, assembling and processing...",pid);
  544. SharedPtr<IncomingPacket> packet(dqe->second.frag0);
  545. for(unsigned int f=1;f<tf;++f)
  546. packet->append(dqe->second.frags[f - 1].payload(),dqe->second.frags[f - 1].payloadLength());
  547. _defragQueue.erase(dqe);
  548. if (!packet->tryDecode(RR)) {
  549. Mutex::Lock _l(_rxQueue_m);
  550. _rxQueue.push_back(packet);
  551. }
  552. }
  553. } // else this is a duplicate fragment, ignore
  554. }
  555. }
  556. }
  557. void Switch::_handleRemotePacketHead(const InetAddress &fromAddr,const void *data,unsigned int len)
  558. {
  559. SharedPtr<IncomingPacket> packet(new IncomingPacket(data,len,fromAddr,RR->node->now()));
  560. Address source(packet->source());
  561. Address destination(packet->destination());
  562. //TRACE("<< %.16llx %s -> %s (size: %u)",(unsigned long long)packet->packetId(),source.toString().c_str(),destination.toString().c_str(),packet->size());
  563. if (destination != RR->identity.address()) {
  564. // Packet is not for us, so try to relay it
  565. if (packet->hops() < ZT_RELAY_MAX_HOPS) {
  566. packet->incrementHops();
  567. SharedPtr<Peer> relayTo = RR->topology->getPeer(destination);
  568. if ((relayTo)&&((relayTo->send(RR,packet->data(),packet->size(),RR->node->now())))) {
  569. unite(source,destination,false);
  570. } else {
  571. // Don't know peer or no direct path -- so relay via root server
  572. relayTo = RR->topology->getBestRoot(&source,1,true);
  573. if (relayTo)
  574. relayTo->send(RR,packet->data(),packet->size(),RR->node->now());
  575. }
  576. } else {
  577. TRACE("dropped relay %s(%s) -> %s, max hops exceeded",packet->source().toString().c_str(),fromAddr.toString().c_str(),destination.toString().c_str());
  578. }
  579. } else if (packet->fragmented()) {
  580. // Packet is the head of a fragmented packet series
  581. uint64_t pid = packet->packetId();
  582. Mutex::Lock _l(_defragQueue_m);
  583. std::map< uint64_t,DefragQueueEntry >::iterator dqe(_defragQueue.find(pid));
  584. if (dqe == _defragQueue.end()) {
  585. // If we have no other fragments yet, create an entry and save the head
  586. DefragQueueEntry &dq = _defragQueue[pid];
  587. dq.creationTime = RR->node->now();
  588. dq.frag0 = packet;
  589. dq.totalFragments = 0; // 0 == unknown, waiting for Packet::Fragment
  590. dq.haveFragments = 1; // head is first bit (left to right)
  591. //TRACE("fragment (0/?) of %.16llx from %s",pid,fromAddr.toString().c_str());
  592. } else if (!(dqe->second.haveFragments & 1)) {
  593. // If we have other fragments but no head, see if we are complete with the head
  594. if ((dqe->second.totalFragments)&&(Utils::countBits(dqe->second.haveFragments |= 1) == dqe->second.totalFragments)) {
  595. // We have all fragments -- assemble and process full Packet
  596. //TRACE("packet %.16llx is complete, assembling and processing...",pid);
  597. // packet already contains head, so append fragments
  598. for(unsigned int f=1;f<dqe->second.totalFragments;++f)
  599. packet->append(dqe->second.frags[f - 1].payload(),dqe->second.frags[f - 1].payloadLength());
  600. _defragQueue.erase(dqe);
  601. if (!packet->tryDecode(RR)) {
  602. Mutex::Lock _l(_rxQueue_m);
  603. _rxQueue.push_back(packet);
  604. }
  605. } else {
  606. // Still waiting on more fragments, so queue the head
  607. dqe->second.frag0 = packet;
  608. }
  609. } // else this is a duplicate head, ignore
  610. } else {
  611. // Packet is unfragmented, so just process it
  612. if (!packet->tryDecode(RR)) {
  613. Mutex::Lock _l(_rxQueue_m);
  614. _rxQueue.push_back(packet);
  615. }
  616. }
  617. }
  618. Address Switch::_sendWhoisRequest(const Address &addr,const Address *peersAlreadyConsulted,unsigned int numPeersAlreadyConsulted)
  619. {
  620. SharedPtr<Peer> root(RR->topology->getBestRoot(peersAlreadyConsulted,numPeersAlreadyConsulted,false));
  621. if (root) {
  622. Packet outp(root->address(),RR->identity.address(),Packet::VERB_WHOIS);
  623. addr.appendTo(outp);
  624. outp.armor(root->key(),true);
  625. if (root->send(RR,outp.data(),outp.size(),RR->node->now()))
  626. return root->address();
  627. }
  628. return Address();
  629. }
  630. bool Switch::_trySend(const Packet &packet,bool encrypt,uint64_t nwid)
  631. {
  632. SharedPtr<Peer> peer(RR->topology->getPeer(packet.destination()));
  633. if (peer) {
  634. const uint64_t now = RR->node->now();
  635. SharedPtr<Network> network;
  636. SharedPtr<NetworkConfig> nconf;
  637. if (nwid) {
  638. network = RR->node->network(nwid);
  639. if (!network)
  640. return false; // we probably just left this network, let its packets die
  641. nconf = network->config2();
  642. if (!nconf)
  643. return false; // sanity check: unconfigured network? why are we trying to talk to it?
  644. }
  645. RemotePath *viaPath = peer->getBestPath(now);
  646. SharedPtr<Peer> relay;
  647. if (!viaPath) {
  648. // See if this network has a preferred relay (if packet has an associated network)
  649. if (nconf) {
  650. unsigned int latency = ~((unsigned int)0);
  651. for(std::vector< std::pair<Address,InetAddress> >::const_iterator r(nconf->relays().begin());r!=nconf->relays().end();++r) {
  652. if (r->first != peer->address()) {
  653. SharedPtr<Peer> rp(RR->topology->getPeer(r->first));
  654. if ((rp)&&(rp->hasActiveDirectPath(now))&&(rp->latency() <= latency))
  655. rp.swap(relay);
  656. }
  657. }
  658. }
  659. // Otherwise relay off a root server
  660. if (!relay)
  661. relay = RR->topology->getBestRoot();
  662. if (!(relay)||(!(viaPath = relay->getBestPath(now))))
  663. return false; // no paths, no root servers?
  664. }
  665. if ((network)&&(relay)&&(network->isAllowed(peer->address()))) {
  666. // Push hints for direct connectivity to this peer if we are relaying
  667. peer->pushDirectPaths(RR,viaPath,now,false);
  668. }
  669. Packet tmp(packet);
  670. unsigned int chunkSize = std::min(tmp.size(),(unsigned int)ZT_UDP_DEFAULT_PAYLOAD_MTU);
  671. tmp.setFragmented(chunkSize < tmp.size());
  672. tmp.armor(peer->key(),encrypt);
  673. if (viaPath->send(RR,tmp.data(),chunkSize,now)) {
  674. if (chunkSize < tmp.size()) {
  675. // Too big for one packet, fragment the rest
  676. unsigned int fragStart = chunkSize;
  677. unsigned int remaining = tmp.size() - chunkSize;
  678. unsigned int fragsRemaining = (remaining / (ZT_UDP_DEFAULT_PAYLOAD_MTU - ZT_PROTO_MIN_FRAGMENT_LENGTH));
  679. if ((fragsRemaining * (ZT_UDP_DEFAULT_PAYLOAD_MTU - ZT_PROTO_MIN_FRAGMENT_LENGTH)) < remaining)
  680. ++fragsRemaining;
  681. unsigned int totalFragments = fragsRemaining + 1;
  682. for(unsigned int fno=1;fno<totalFragments;++fno) {
  683. chunkSize = std::min(remaining,(unsigned int)(ZT_UDP_DEFAULT_PAYLOAD_MTU - ZT_PROTO_MIN_FRAGMENT_LENGTH));
  684. Packet::Fragment frag(tmp,fragStart,chunkSize,fno,totalFragments);
  685. viaPath->send(RR,frag.data(),frag.size(),now);
  686. fragStart += chunkSize;
  687. remaining -= chunkSize;
  688. }
  689. }
  690. return true;
  691. }
  692. } else {
  693. requestWhois(packet.destination());
  694. }
  695. return false;
  696. }
  697. } // namespace ZeroTier