Node.cpp 30 KB

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  1. /*
  2. * ZeroTier One - Network Virtualization Everywhere
  3. * Copyright (C) 2011-2019 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 <stdio.h>
  27. #include <stdlib.h>
  28. #include <stdarg.h>
  29. #include <string.h>
  30. #include <stdint.h>
  31. #include "Constants.hpp"
  32. #include "SharedPtr.hpp"
  33. #include "Node.hpp"
  34. #include "RuntimeEnvironment.hpp"
  35. #include "NetworkController.hpp"
  36. #include "Switch.hpp"
  37. #include "Multicaster.hpp"
  38. #include "Topology.hpp"
  39. #include "Buffer.hpp"
  40. #include "Packet.hpp"
  41. #include "Address.hpp"
  42. #include "Identity.hpp"
  43. #include "SelfAwareness.hpp"
  44. #include "Network.hpp"
  45. #include "Trace.hpp"
  46. namespace ZeroTier {
  47. /****************************************************************************/
  48. /* Public Node interface (C++, exposed via CAPI bindings) */
  49. /****************************************************************************/
  50. Node::Node(void *uptr,void *tptr,const struct ZT_Node_Callbacks *callbacks,int64_t now) :
  51. _RR(this),
  52. RR(&_RR),
  53. _uPtr(uptr),
  54. _networks(8),
  55. _now(now),
  56. _lastPing(0),
  57. _lastHousekeepingRun(0),
  58. _lastMemoizedTraceSettings(0)
  59. {
  60. memcpy(&_cb,callbacks,sizeof(ZT_Node_Callbacks));
  61. _online = false;
  62. memset(_expectingRepliesToBucketPtr,0,sizeof(_expectingRepliesToBucketPtr));
  63. memset(_expectingRepliesTo,0,sizeof(_expectingRepliesTo));
  64. memset(_lastIdentityVerification,0,sizeof(_lastIdentityVerification));
  65. uint64_t idtmp[2];
  66. idtmp[0] = 0; idtmp[1] = 0;
  67. char tmp[2048];
  68. int n = stateObjectGet(tptr,ZT_STATE_OBJECT_IDENTITY_SECRET,idtmp,tmp,sizeof(tmp) - 1);
  69. if (n > 0) {
  70. tmp[n] = (char)0;
  71. if (RR->identity.fromString(tmp)) {
  72. RR->identity.toString(false,RR->publicIdentityStr);
  73. RR->identity.toString(true,RR->secretIdentityStr);
  74. } else {
  75. n = -1;
  76. }
  77. }
  78. if (n <= 0) {
  79. RR->identity.generate(Identity::C25519);
  80. RR->identity.toString(false,RR->publicIdentityStr);
  81. RR->identity.toString(true,RR->secretIdentityStr);
  82. idtmp[0] = RR->identity.address().toInt(); idtmp[1] = 0;
  83. stateObjectPut(tptr,ZT_STATE_OBJECT_IDENTITY_SECRET,idtmp,RR->secretIdentityStr,(unsigned int)strlen(RR->secretIdentityStr));
  84. stateObjectPut(tptr,ZT_STATE_OBJECT_IDENTITY_PUBLIC,idtmp,RR->publicIdentityStr,(unsigned int)strlen(RR->publicIdentityStr));
  85. } else {
  86. idtmp[0] = RR->identity.address().toInt(); idtmp[1] = 0;
  87. n = stateObjectGet(tptr,ZT_STATE_OBJECT_IDENTITY_PUBLIC,idtmp,tmp,sizeof(tmp) - 1);
  88. if ((n > 0)&&(n < (int)sizeof(RR->publicIdentityStr))&&(n < (int)sizeof(tmp))) {
  89. if (memcmp(tmp,RR->publicIdentityStr,n))
  90. stateObjectPut(tptr,ZT_STATE_OBJECT_IDENTITY_PUBLIC,idtmp,RR->publicIdentityStr,(unsigned int)strlen(RR->publicIdentityStr));
  91. }
  92. }
  93. char *m = (char *)0;
  94. try {
  95. const unsigned long ts = sizeof(Trace) + (((sizeof(Trace) & 0xf) != 0) ? (16 - (sizeof(Trace) & 0xf)) : 0);
  96. const unsigned long sws = sizeof(Switch) + (((sizeof(Switch) & 0xf) != 0) ? (16 - (sizeof(Switch) & 0xf)) : 0);
  97. const unsigned long mcs = sizeof(Multicaster) + (((sizeof(Multicaster) & 0xf) != 0) ? (16 - (sizeof(Multicaster) & 0xf)) : 0);
  98. const unsigned long topologys = sizeof(Topology) + (((sizeof(Topology) & 0xf) != 0) ? (16 - (sizeof(Topology) & 0xf)) : 0);
  99. const unsigned long sas = sizeof(SelfAwareness) + (((sizeof(SelfAwareness) & 0xf) != 0) ? (16 - (sizeof(SelfAwareness) & 0xf)) : 0);
  100. m = reinterpret_cast<char *>(::malloc(16 + ts + sws + mcs + topologys + sas));
  101. if (!m)
  102. throw std::bad_alloc();
  103. RR->rtmem = m;
  104. while (((uintptr_t)m & 0xf) != 0) ++m;
  105. RR->t = new (m) Trace(RR);
  106. m += ts;
  107. RR->sw = new (m) Switch(RR);
  108. m += sws;
  109. RR->mc = new (m) Multicaster(RR);
  110. m += mcs;
  111. RR->topology = new (m) Topology(RR,RR->identity);
  112. m += topologys;
  113. RR->sa = new (m) SelfAwareness(RR);
  114. } catch ( ... ) {
  115. if (RR->sa) RR->sa->~SelfAwareness();
  116. if (RR->topology) RR->topology->~Topology();
  117. if (RR->mc) RR->mc->~Multicaster();
  118. if (RR->sw) RR->sw->~Switch();
  119. if (RR->t) RR->t->~Trace();
  120. ::free(m);
  121. throw;
  122. }
  123. postEvent(tptr,ZT_EVENT_UP);
  124. }
  125. Node::~Node()
  126. {
  127. {
  128. Mutex::Lock _l(_networks_m);
  129. _networks.clear(); // destroy all networks before shutdown
  130. }
  131. if (RR->sa) RR->sa->~SelfAwareness();
  132. if (RR->topology) RR->topology->~Topology();
  133. if (RR->mc) RR->mc->~Multicaster();
  134. if (RR->sw) RR->sw->~Switch();
  135. if (RR->t) RR->t->~Trace();
  136. ::free(RR->rtmem);
  137. }
  138. ZT_ResultCode Node::processWirePacket(
  139. void *tptr,
  140. int64_t now,
  141. int64_t localSocket,
  142. const struct sockaddr_storage *remoteAddress,
  143. const void *packetData,
  144. unsigned int packetLength,
  145. volatile int64_t *nextBackgroundTaskDeadline)
  146. {
  147. _now = now;
  148. RR->sw->onRemotePacket(tptr,localSocket,*(reinterpret_cast<const InetAddress *>(remoteAddress)),packetData,packetLength);
  149. return ZT_RESULT_OK;
  150. }
  151. ZT_ResultCode Node::processVirtualNetworkFrame(
  152. void *tptr,
  153. int64_t now,
  154. uint64_t nwid,
  155. uint64_t sourceMac,
  156. uint64_t destMac,
  157. unsigned int etherType,
  158. unsigned int vlanId,
  159. const void *frameData,
  160. unsigned int frameLength,
  161. volatile int64_t *nextBackgroundTaskDeadline)
  162. {
  163. _now = now;
  164. SharedPtr<Network> nw(this->network(nwid));
  165. if (nw) {
  166. RR->sw->onLocalEthernet(tptr,nw,MAC(sourceMac),MAC(destMac),etherType,vlanId,frameData,frameLength);
  167. return ZT_RESULT_OK;
  168. } else return ZT_RESULT_ERROR_NETWORK_NOT_FOUND;
  169. }
  170. struct _processBackgroundTasks_ping_eachRoot
  171. {
  172. Hashtable< void *,bool > roots;
  173. int64_t now;
  174. void *tPtr;
  175. bool online;
  176. inline void operator()(const Root &root,const SharedPtr<Peer> &peer)
  177. {
  178. unsigned int v4SendCount = 0,v6SendCount = 0;
  179. peer->ping(tPtr,now,v4SendCount,v6SendCount);
  180. const InetAddress *contactAddrs[2];
  181. unsigned int contactAddrCount = 0;
  182. if (v4SendCount == 0) {
  183. if (*(contactAddrs[contactAddrCount] = &(root.pickPhysical(AF_INET))))
  184. ++contactAddrCount;
  185. }
  186. if (v6SendCount == 0) {
  187. if (*(contactAddrs[contactAddrCount] = &(root.pickPhysical(AF_INET6))))
  188. ++contactAddrCount;
  189. }
  190. for(unsigned int i=0;i<contactAddrCount;++i)
  191. peer->sendHELLO(tPtr,-1,*contactAddrs[i],now);
  192. if (!online)
  193. online = ((now - peer->lastReceive()) <= ((ZT_PEER_PING_PERIOD * 2) + 5000));
  194. roots.set((void *)peer.ptr(),true);
  195. }
  196. };
  197. struct _processBackgroundTasks_ping_eachPeer
  198. {
  199. int64_t now;
  200. void *tPtr;
  201. Hashtable< void *,bool > *roots;
  202. inline void operator()(const SharedPtr<Peer> &peer)
  203. {
  204. if (!roots->contains((void *)peer.ptr())) {
  205. unsigned int v4SendCount = 0,v6SendCount = 0;
  206. peer->ping(tPtr,now,v4SendCount,v6SendCount);
  207. }
  208. }
  209. };
  210. ZT_ResultCode Node::processBackgroundTasks(void *tptr,int64_t now,volatile int64_t *nextBackgroundTaskDeadline)
  211. {
  212. _now = now;
  213. Mutex::Lock bl(_backgroundTasksLock);
  214. unsigned long timeUntilNextPing = ZT_PEER_PING_PERIOD;
  215. const int64_t timeSinceLastPing = now - _lastPing;
  216. if (timeSinceLastPing >= ZT_PEER_PING_PERIOD) {
  217. _lastPing = now;
  218. try {
  219. _processBackgroundTasks_ping_eachRoot rf;
  220. rf.now = now;
  221. rf.tPtr = tptr;
  222. rf.online = false;
  223. RR->topology->eachRoot(rf);
  224. _processBackgroundTasks_ping_eachPeer pf;
  225. pf.now = now;
  226. pf.tPtr = tptr;
  227. pf.roots = &rf.roots;
  228. RR->topology->eachPeer(pf);
  229. if (rf.online != _online) {
  230. _online = rf.online;
  231. postEvent(tptr,_online ? ZT_EVENT_ONLINE : ZT_EVENT_OFFLINE);
  232. }
  233. } catch ( ... ) {
  234. return ZT_RESULT_FATAL_ERROR_INTERNAL;
  235. }
  236. }
  237. /*
  238. if (timeSinceLastPingCheck >= ZT_PING_CHECK_INVERVAL) {
  239. try {
  240. _lastPingCheck = now;
  241. // (1) Get peers we should remain connected to and (2) get networks that need config.
  242. Hashtable< Address,std::vector<InetAddress> > alwaysContact;
  243. RR->topology->getAlwaysContact(alwaysContact);
  244. std::vector< std::pair< SharedPtr<Network>,bool > > networkConfigNeeded;
  245. {
  246. Mutex::Lock l(_networks_m);
  247. Hashtable< uint64_t,SharedPtr<Network> >::Iterator i(_networks);
  248. uint64_t *nwid = (uint64_t *)0;
  249. SharedPtr<Network> *network = (SharedPtr<Network> *)0;
  250. while (i.next(nwid,network)) {
  251. (*network)->config().alwaysContactAddresses(alwaysContact);
  252. networkConfigNeeded.push_back( std::pair< SharedPtr<Network>,bool >(*network,(((now - (*network)->lastConfigUpdate()) >= ZT_NETWORK_AUTOCONF_DELAY)||(!(*network)->hasConfig()))) );
  253. }
  254. }
  255. // Ping active peers, upstreams, and others that we should always contact
  256. _PingPeersThatNeedPing pfunc(RR,tptr,alwaysContact,now);
  257. RR->topology->eachPeer<_PingPeersThatNeedPing &>(pfunc);
  258. // Run WHOIS to create Peer for alwaysContact addresses that could not be contacted
  259. {
  260. Hashtable< Address,std::vector<InetAddress> >::Iterator i(alwaysContact);
  261. Address *upstreamAddress = (Address *)0;
  262. std::vector<InetAddress> *upstreamStableEndpoints = (std::vector<InetAddress> *)0;
  263. while (i.next(upstreamAddress,upstreamStableEndpoints))
  264. RR->sw->requestWhois(tptr,now,*upstreamAddress);
  265. }
  266. // Refresh network config or broadcast network updates to members as needed
  267. for(std::vector< std::pair< SharedPtr<Network>,bool > >::const_iterator n(networkConfigNeeded.begin());n!=networkConfigNeeded.end();++n) {
  268. if (n->second)
  269. n->first->requestConfiguration(tptr);
  270. n->first->sendUpdatesToMembers(tptr);
  271. }
  272. // Update online status, post status change as event
  273. const bool oldOnline = _online;
  274. _online = pfunc.online;
  275. if (oldOnline != _online)
  276. postEvent(tptr,_online ? ZT_EVENT_ONLINE : ZT_EVENT_OFFLINE);
  277. } catch ( ... ) {
  278. return ZT_RESULT_FATAL_ERROR_INTERNAL;
  279. }
  280. } else {
  281. timeUntilNextPingCheck -= (unsigned long)timeSinceLastPingCheck;
  282. }
  283. */
  284. if ((now - _lastMemoizedTraceSettings) >= (ZT_HOUSEKEEPING_PERIOD / 4)) {
  285. _lastMemoizedTraceSettings = now;
  286. RR->t->updateMemoizedSettings();
  287. }
  288. if ((now - _lastHousekeepingRun) >= ZT_HOUSEKEEPING_PERIOD) {
  289. _lastHousekeepingRun = now;
  290. try {
  291. // Clean up any old local controller auth memoizations. This is an
  292. // optimization for network controllers to know whether to accept
  293. // or trust nodes without doing an extra cert check.
  294. {
  295. _localControllerAuthorizations_m.lock();
  296. Hashtable< _LocalControllerAuth,int64_t >::Iterator i(_localControllerAuthorizations);
  297. _LocalControllerAuth *k = (_LocalControllerAuth *)0;
  298. int64_t *v = (int64_t *)0;
  299. while (i.next(k,v)) {
  300. if ((*v - now) > (ZT_NETWORK_AUTOCONF_DELAY * 3)) {
  301. _localControllerAuthorizations.erase(*k);
  302. }
  303. }
  304. _localControllerAuthorizations_m.unlock();
  305. }
  306. RR->topology->doPeriodicTasks(now);
  307. RR->sa->clean(now);
  308. RR->mc->clean(now);
  309. } catch ( ... ) {
  310. return ZT_RESULT_FATAL_ERROR_INTERNAL;
  311. }
  312. }
  313. try {
  314. *nextBackgroundTaskDeadline = now + (int64_t)std::max(std::min(timeUntilNextPing,RR->sw->doTimerTasks(tptr,now)),(unsigned long)ZT_CORE_TIMER_TASK_GRANULARITY);
  315. } catch ( ... ) {
  316. return ZT_RESULT_FATAL_ERROR_INTERNAL;
  317. }
  318. return ZT_RESULT_OK;
  319. }
  320. ZT_ResultCode Node::join(uint64_t nwid,void *uptr,void *tptr)
  321. {
  322. Mutex::Lock _l(_networks_m);
  323. SharedPtr<Network> &nw = _networks[nwid];
  324. if (!nw)
  325. nw = SharedPtr<Network>(new Network(RR,tptr,nwid,uptr,(const NetworkConfig *)0));
  326. return ZT_RESULT_OK;
  327. }
  328. ZT_ResultCode Node::leave(uint64_t nwid,void **uptr,void *tptr)
  329. {
  330. ZT_VirtualNetworkConfig ctmp;
  331. void **nUserPtr = (void **)0;
  332. {
  333. Mutex::Lock _l(_networks_m);
  334. SharedPtr<Network> *nw = _networks.get(nwid);
  335. RR->sw->removeNetworkQoSControlBlock(nwid);
  336. if (!nw)
  337. return ZT_RESULT_OK;
  338. if (uptr)
  339. *uptr = (*nw)->userPtr();
  340. (*nw)->externalConfig(&ctmp);
  341. (*nw)->destroy();
  342. nUserPtr = (*nw)->userPtr();
  343. }
  344. if (nUserPtr)
  345. RR->node->configureVirtualNetworkPort(tptr,nwid,nUserPtr,ZT_VIRTUAL_NETWORK_CONFIG_OPERATION_DESTROY,&ctmp);
  346. {
  347. Mutex::Lock _l(_networks_m);
  348. _networks.erase(nwid);
  349. }
  350. uint64_t tmp[2];
  351. tmp[0] = nwid; tmp[1] = 0;
  352. RR->node->stateObjectDelete(tptr,ZT_STATE_OBJECT_NETWORK_CONFIG,tmp);
  353. return ZT_RESULT_OK;
  354. }
  355. ZT_ResultCode Node::multicastSubscribe(void *tptr,uint64_t nwid,uint64_t multicastGroup,unsigned long multicastAdi)
  356. {
  357. SharedPtr<Network> nw(this->network(nwid));
  358. if (nw) {
  359. nw->multicastSubscribe(tptr,MulticastGroup(MAC(multicastGroup),(uint32_t)(multicastAdi & 0xffffffff)));
  360. return ZT_RESULT_OK;
  361. } else return ZT_RESULT_ERROR_NETWORK_NOT_FOUND;
  362. }
  363. ZT_ResultCode Node::multicastUnsubscribe(uint64_t nwid,uint64_t multicastGroup,unsigned long multicastAdi)
  364. {
  365. SharedPtr<Network> nw(this->network(nwid));
  366. if (nw) {
  367. nw->multicastUnsubscribe(MulticastGroup(MAC(multicastGroup),(uint32_t)(multicastAdi & 0xffffffff)));
  368. return ZT_RESULT_OK;
  369. } else return ZT_RESULT_ERROR_NETWORK_NOT_FOUND;
  370. }
  371. uint64_t Node::address() const
  372. {
  373. return RR->identity.address().toInt();
  374. }
  375. void Node::status(ZT_NodeStatus *status) const
  376. {
  377. status->address = RR->identity.address().toInt();
  378. status->publicIdentity = RR->publicIdentityStr;
  379. status->secretIdentity = RR->secretIdentityStr;
  380. status->online = _online ? 1 : 0;
  381. }
  382. struct _sortPeerPtrsByAddress { inline bool operator()(const SharedPtr<Peer> &a,const SharedPtr<Peer> &b) const { return (a->address() < b->address()); } };
  383. ZT_PeerList *Node::peers() const
  384. {
  385. std::vector< SharedPtr<Peer> > peers;
  386. RR->topology->getAllPeers(peers);
  387. std::sort(peers.begin(),peers.end(),_sortPeerPtrsByAddress());
  388. char *buf = (char *)::malloc(sizeof(ZT_PeerList) + (sizeof(ZT_Peer) * peers.size()));
  389. if (!buf)
  390. return (ZT_PeerList *)0;
  391. ZT_PeerList *pl = (ZT_PeerList *)buf;
  392. pl->peers = (ZT_Peer *)(buf + sizeof(ZT_PeerList));
  393. pl->peerCount = 0;
  394. for(std::vector< SharedPtr<Peer> >::iterator pi(peers.begin());pi!=peers.end();++pi) {
  395. ZT_Peer *p = &(pl->peers[pl->peerCount++]);
  396. p->address = (*pi)->address().toInt();
  397. p->hadAggregateLink = 0;
  398. if ((*pi)->remoteVersionKnown()) {
  399. p->versionMajor = (*pi)->remoteVersionMajor();
  400. p->versionMinor = (*pi)->remoteVersionMinor();
  401. p->versionRev = (*pi)->remoteVersionRevision();
  402. } else {
  403. p->versionMajor = -1;
  404. p->versionMinor = -1;
  405. p->versionRev = -1;
  406. }
  407. p->latency = (*pi)->latency(_now);
  408. if (p->latency >= 0xffff)
  409. p->latency = -1;
  410. p->role = RR->topology->isRoot((*pi)->identity()) ? ZT_PEER_ROLE_PLANET : ZT_PEER_ROLE_LEAF;
  411. std::vector< SharedPtr<Path> > paths((*pi)->paths(_now));
  412. SharedPtr<Path> bestp((*pi)->getAppropriatePath(_now,false));
  413. p->hadAggregateLink |= (*pi)->hasAggregateLink();
  414. p->pathCount = 0;
  415. for(std::vector< SharedPtr<Path> >::iterator path(paths.begin());path!=paths.end();++path) {
  416. memcpy(&(p->paths[p->pathCount].address),&((*path)->address()),sizeof(struct sockaddr_storage));
  417. p->paths[p->pathCount].lastSend = (*path)->lastOut();
  418. p->paths[p->pathCount].lastReceive = (*path)->lastIn();
  419. p->paths[p->pathCount].trustedPathId = RR->topology->getOutboundPathTrust((*path)->address());
  420. p->paths[p->pathCount].expired = 0;
  421. p->paths[p->pathCount].preferred = ((*path) == bestp) ? 1 : 0;
  422. p->paths[p->pathCount].latency = (float)(*path)->latency();
  423. p->paths[p->pathCount].packetDelayVariance = (*path)->packetDelayVariance();
  424. p->paths[p->pathCount].throughputDisturbCoeff = (*path)->throughputDisturbanceCoefficient();
  425. p->paths[p->pathCount].packetErrorRatio = (*path)->packetErrorRatio();
  426. p->paths[p->pathCount].packetLossRatio = (*path)->packetLossRatio();
  427. p->paths[p->pathCount].stability = (*path)->lastComputedStability();
  428. p->paths[p->pathCount].throughput = (*path)->meanThroughput();
  429. p->paths[p->pathCount].maxThroughput = (*path)->maxLifetimeThroughput();
  430. p->paths[p->pathCount].allocation = (float)(*path)->allocation() / (float)255;
  431. p->paths[p->pathCount].ifname = (*path)->getName();
  432. ++p->pathCount;
  433. }
  434. }
  435. return pl;
  436. }
  437. ZT_VirtualNetworkConfig *Node::networkConfig(uint64_t nwid) const
  438. {
  439. Mutex::Lock _l(_networks_m);
  440. const SharedPtr<Network> *nw = _networks.get(nwid);
  441. if (nw) {
  442. ZT_VirtualNetworkConfig *nc = (ZT_VirtualNetworkConfig *)::malloc(sizeof(ZT_VirtualNetworkConfig));
  443. (*nw)->externalConfig(nc);
  444. return nc;
  445. }
  446. return (ZT_VirtualNetworkConfig *)0;
  447. }
  448. ZT_VirtualNetworkList *Node::networks() const
  449. {
  450. Mutex::Lock _l(_networks_m);
  451. char *buf = (char *)::malloc(sizeof(ZT_VirtualNetworkList) + (sizeof(ZT_VirtualNetworkConfig) * _networks.size()));
  452. if (!buf)
  453. return (ZT_VirtualNetworkList *)0;
  454. ZT_VirtualNetworkList *nl = (ZT_VirtualNetworkList *)buf;
  455. nl->networks = (ZT_VirtualNetworkConfig *)(buf + sizeof(ZT_VirtualNetworkList));
  456. nl->networkCount = 0;
  457. Hashtable< uint64_t,SharedPtr<Network> >::Iterator i(*const_cast< Hashtable< uint64_t,SharedPtr<Network> > *>(&_networks));
  458. uint64_t *k = (uint64_t *)0;
  459. SharedPtr<Network> *v = (SharedPtr<Network> *)0;
  460. while (i.next(k,v))
  461. (*v)->externalConfig(&(nl->networks[nl->networkCount++]));
  462. return nl;
  463. }
  464. void Node::freeQueryResult(void *qr)
  465. {
  466. if (qr)
  467. ::free(qr);
  468. }
  469. int Node::addLocalInterfaceAddress(const struct sockaddr_storage *addr)
  470. {
  471. if (Path::isAddressValidForPath(*(reinterpret_cast<const InetAddress *>(addr)))) {
  472. Mutex::Lock _l(_localInterfaceAddresses_m);
  473. if (std::find(_localInterfaceAddresses.begin(),_localInterfaceAddresses.end(),*(reinterpret_cast<const InetAddress *>(addr))) == _localInterfaceAddresses.end()) {
  474. _localInterfaceAddresses.push_back(*(reinterpret_cast<const InetAddress *>(addr)));
  475. return 1;
  476. }
  477. }
  478. return 0;
  479. }
  480. void Node::clearLocalInterfaceAddresses()
  481. {
  482. Mutex::Lock _l(_localInterfaceAddresses_m);
  483. _localInterfaceAddresses.clear();
  484. }
  485. int Node::sendUserMessage(void *tptr,uint64_t dest,uint64_t typeId,const void *data,unsigned int len)
  486. {
  487. try {
  488. if (RR->identity.address().toInt() != dest) {
  489. Packet outp(Address(dest),RR->identity.address(),Packet::VERB_USER_MESSAGE);
  490. outp.append(typeId);
  491. outp.append(data,len);
  492. outp.compress();
  493. RR->sw->send(tptr,outp,true);
  494. return 1;
  495. }
  496. } catch ( ... ) {}
  497. return 0;
  498. }
  499. void Node::setController(void *networkControllerInstance)
  500. {
  501. RR->localNetworkController = reinterpret_cast<NetworkController *>(networkControllerInstance);
  502. if (networkControllerInstance)
  503. RR->localNetworkController->init(RR->identity,this);
  504. }
  505. /****************************************************************************/
  506. /* Node methods used only within node/ */
  507. /****************************************************************************/
  508. bool Node::shouldUsePathForZeroTierTraffic(void *tPtr,const Address &ztaddr,const int64_t localSocket,const InetAddress &remoteAddress)
  509. {
  510. if (!Path::isAddressValidForPath(remoteAddress))
  511. return false;
  512. {
  513. Mutex::Lock _l(_networks_m);
  514. Hashtable< uint64_t,SharedPtr<Network> >::Iterator i(_networks);
  515. uint64_t *k = (uint64_t *)0;
  516. SharedPtr<Network> *v = (SharedPtr<Network> *)0;
  517. while (i.next(k,v)) {
  518. if ((*v)->hasConfig()) {
  519. for(unsigned int k=0;k<(*v)->config().staticIpCount;++k) {
  520. if ((*v)->config().staticIps[k].containsAddress(remoteAddress))
  521. return false;
  522. }
  523. }
  524. }
  525. }
  526. return ( (_cb.pathCheckFunction) ? (_cb.pathCheckFunction(reinterpret_cast<ZT_Node *>(this),_uPtr,tPtr,ztaddr.toInt(),localSocket,reinterpret_cast<const struct sockaddr_storage *>(&remoteAddress)) != 0) : true);
  527. }
  528. ZT_ResultCode Node::setPhysicalPathConfiguration(const struct sockaddr_storage *pathNetwork, const ZT_PhysicalPathConfiguration *pathConfig)
  529. {
  530. RR->topology->setPhysicalPathConfiguration(pathNetwork,pathConfig);
  531. return ZT_RESULT_OK;
  532. }
  533. void Node::ncSendConfig(uint64_t nwid,uint64_t requestPacketId,const Address &destination,const NetworkConfig &nc,bool sendLegacyFormatConfig)
  534. {
  535. _localControllerAuthorizations_m.lock();
  536. _localControllerAuthorizations[_LocalControllerAuth(nwid,destination)] = now();
  537. _localControllerAuthorizations_m.unlock();
  538. if (destination == RR->identity.address()) {
  539. SharedPtr<Network> n(network(nwid));
  540. if (!n) return;
  541. n->setConfiguration((void *)0,nc,true);
  542. } else {
  543. Dictionary<ZT_NETWORKCONFIG_DICT_CAPACITY> *dconf = new Dictionary<ZT_NETWORKCONFIG_DICT_CAPACITY>();
  544. try {
  545. if (nc.toDictionary(*dconf,sendLegacyFormatConfig)) {
  546. uint64_t configUpdateId = Utils::random();
  547. if (!configUpdateId) ++configUpdateId;
  548. const unsigned int totalSize = dconf->sizeBytes();
  549. unsigned int chunkIndex = 0;
  550. while (chunkIndex < totalSize) {
  551. const unsigned int chunkLen = std::min(totalSize - chunkIndex,(unsigned int)(ZT_PROTO_MAX_PACKET_LENGTH - (ZT_PACKET_IDX_PAYLOAD + 256)));
  552. Packet outp(destination,RR->identity.address(),(requestPacketId) ? Packet::VERB_OK : Packet::VERB_NETWORK_CONFIG);
  553. if (requestPacketId) {
  554. outp.append((unsigned char)Packet::VERB_NETWORK_CONFIG_REQUEST);
  555. outp.append(requestPacketId);
  556. }
  557. const unsigned int sigStart = outp.size();
  558. outp.append(nwid);
  559. outp.append((uint16_t)chunkLen);
  560. outp.append((const void *)(dconf->data() + chunkIndex),chunkLen);
  561. outp.append((uint8_t)0); // no flags
  562. outp.append((uint64_t)configUpdateId);
  563. outp.append((uint32_t)totalSize);
  564. outp.append((uint32_t)chunkIndex);
  565. uint8_t sig[256];
  566. const unsigned int siglen = RR->identity.sign(reinterpret_cast<const uint8_t *>(outp.data()) + sigStart,outp.size() - sigStart,sig,sizeof(sig));
  567. outp.append((uint8_t)1);
  568. outp.append((uint16_t)siglen);
  569. outp.append(sig,siglen);
  570. outp.compress();
  571. RR->sw->send((void *)0,outp,true);
  572. chunkIndex += chunkLen;
  573. }
  574. }
  575. delete dconf;
  576. } catch ( ... ) {
  577. delete dconf;
  578. throw;
  579. }
  580. }
  581. }
  582. void Node::ncSendRevocation(const Address &destination,const Revocation &rev)
  583. {
  584. if (destination == RR->identity.address()) {
  585. SharedPtr<Network> n(network(rev.networkId()));
  586. if (!n) return;
  587. n->addCredential((void *)0,RR->identity.address(),rev);
  588. } else {
  589. Packet outp(destination,RR->identity.address(),Packet::VERB_NETWORK_CREDENTIALS);
  590. outp.append((uint8_t)0x00);
  591. outp.append((uint16_t)0);
  592. outp.append((uint16_t)0);
  593. outp.append((uint16_t)1);
  594. rev.serialize(outp);
  595. outp.append((uint16_t)0);
  596. RR->sw->send((void *)0,outp,true);
  597. }
  598. }
  599. void Node::ncSendError(uint64_t nwid,uint64_t requestPacketId,const Address &destination,NetworkController::ErrorCode errorCode)
  600. {
  601. if (destination == RR->identity.address()) {
  602. SharedPtr<Network> n(network(nwid));
  603. if (!n) return;
  604. switch(errorCode) {
  605. case NetworkController::NC_ERROR_OBJECT_NOT_FOUND:
  606. case NetworkController::NC_ERROR_INTERNAL_SERVER_ERROR:
  607. n->setNotFound();
  608. break;
  609. case NetworkController::NC_ERROR_ACCESS_DENIED:
  610. n->setAccessDenied();
  611. break;
  612. default: break;
  613. }
  614. } else if (requestPacketId) {
  615. Packet outp(destination,RR->identity.address(),Packet::VERB_ERROR);
  616. outp.append((unsigned char)Packet::VERB_NETWORK_CONFIG_REQUEST);
  617. outp.append(requestPacketId);
  618. switch(errorCode) {
  619. //case NetworkController::NC_ERROR_OBJECT_NOT_FOUND:
  620. //case NetworkController::NC_ERROR_INTERNAL_SERVER_ERROR:
  621. default:
  622. outp.append((unsigned char)Packet::ERROR_OBJ_NOT_FOUND);
  623. break;
  624. case NetworkController::NC_ERROR_ACCESS_DENIED:
  625. outp.append((unsigned char)Packet::ERROR_NETWORK_ACCESS_DENIED_);
  626. break;
  627. }
  628. outp.append(nwid);
  629. RR->sw->send((void *)0,outp,true);
  630. } // else we can't send an ERROR() in response to nothing, so discard
  631. }
  632. } // namespace ZeroTier
  633. /****************************************************************************/
  634. /* CAPI bindings */
  635. /****************************************************************************/
  636. extern "C" {
  637. enum ZT_ResultCode ZT_Node_new(ZT_Node **node,void *uptr,void *tptr,const struct ZT_Node_Callbacks *callbacks,int64_t now)
  638. {
  639. *node = (ZT_Node *)0;
  640. try {
  641. *node = reinterpret_cast<ZT_Node *>(new ZeroTier::Node(uptr,tptr,callbacks,now));
  642. return ZT_RESULT_OK;
  643. } catch (std::bad_alloc &exc) {
  644. return ZT_RESULT_FATAL_ERROR_OUT_OF_MEMORY;
  645. } catch (std::runtime_error &exc) {
  646. return ZT_RESULT_FATAL_ERROR_DATA_STORE_FAILED;
  647. } catch ( ... ) {
  648. return ZT_RESULT_FATAL_ERROR_INTERNAL;
  649. }
  650. }
  651. void ZT_Node_delete(ZT_Node *node)
  652. {
  653. try {
  654. delete (reinterpret_cast<ZeroTier::Node *>(node));
  655. } catch ( ... ) {}
  656. }
  657. enum ZT_ResultCode ZT_Node_processWirePacket(
  658. ZT_Node *node,
  659. void *tptr,
  660. int64_t now,
  661. int64_t localSocket,
  662. const struct sockaddr_storage *remoteAddress,
  663. const void *packetData,
  664. unsigned int packetLength,
  665. volatile int64_t *nextBackgroundTaskDeadline)
  666. {
  667. try {
  668. return reinterpret_cast<ZeroTier::Node *>(node)->processWirePacket(tptr,now,localSocket,remoteAddress,packetData,packetLength,nextBackgroundTaskDeadline);
  669. } catch (std::bad_alloc &exc) {
  670. return ZT_RESULT_FATAL_ERROR_OUT_OF_MEMORY;
  671. } catch ( ... ) {
  672. return ZT_RESULT_OK; // "OK" since invalid packets are simply dropped, but the system is still up
  673. }
  674. }
  675. enum ZT_ResultCode ZT_Node_processVirtualNetworkFrame(
  676. ZT_Node *node,
  677. void *tptr,
  678. int64_t now,
  679. uint64_t nwid,
  680. uint64_t sourceMac,
  681. uint64_t destMac,
  682. unsigned int etherType,
  683. unsigned int vlanId,
  684. const void *frameData,
  685. unsigned int frameLength,
  686. volatile int64_t *nextBackgroundTaskDeadline)
  687. {
  688. try {
  689. return reinterpret_cast<ZeroTier::Node *>(node)->processVirtualNetworkFrame(tptr,now,nwid,sourceMac,destMac,etherType,vlanId,frameData,frameLength,nextBackgroundTaskDeadline);
  690. } catch (std::bad_alloc &exc) {
  691. return ZT_RESULT_FATAL_ERROR_OUT_OF_MEMORY;
  692. } catch ( ... ) {
  693. return ZT_RESULT_FATAL_ERROR_INTERNAL;
  694. }
  695. }
  696. enum ZT_ResultCode ZT_Node_processBackgroundTasks(ZT_Node *node,void *tptr,int64_t now,volatile int64_t *nextBackgroundTaskDeadline)
  697. {
  698. try {
  699. return reinterpret_cast<ZeroTier::Node *>(node)->processBackgroundTasks(tptr,now,nextBackgroundTaskDeadline);
  700. } catch (std::bad_alloc &exc) {
  701. return ZT_RESULT_FATAL_ERROR_OUT_OF_MEMORY;
  702. } catch ( ... ) {
  703. return ZT_RESULT_FATAL_ERROR_INTERNAL;
  704. }
  705. }
  706. enum ZT_ResultCode ZT_Node_join(ZT_Node *node,uint64_t nwid,void *uptr,void *tptr)
  707. {
  708. try {
  709. return reinterpret_cast<ZeroTier::Node *>(node)->join(nwid,uptr,tptr);
  710. } catch (std::bad_alloc &exc) {
  711. return ZT_RESULT_FATAL_ERROR_OUT_OF_MEMORY;
  712. } catch ( ... ) {
  713. return ZT_RESULT_FATAL_ERROR_INTERNAL;
  714. }
  715. }
  716. enum ZT_ResultCode ZT_Node_leave(ZT_Node *node,uint64_t nwid,void **uptr,void *tptr)
  717. {
  718. try {
  719. return reinterpret_cast<ZeroTier::Node *>(node)->leave(nwid,uptr,tptr);
  720. } catch (std::bad_alloc &exc) {
  721. return ZT_RESULT_FATAL_ERROR_OUT_OF_MEMORY;
  722. } catch ( ... ) {
  723. return ZT_RESULT_FATAL_ERROR_INTERNAL;
  724. }
  725. }
  726. enum ZT_ResultCode ZT_Node_multicastSubscribe(ZT_Node *node,void *tptr,uint64_t nwid,uint64_t multicastGroup,unsigned long multicastAdi)
  727. {
  728. try {
  729. return reinterpret_cast<ZeroTier::Node *>(node)->multicastSubscribe(tptr,nwid,multicastGroup,multicastAdi);
  730. } catch (std::bad_alloc &exc) {
  731. return ZT_RESULT_FATAL_ERROR_OUT_OF_MEMORY;
  732. } catch ( ... ) {
  733. return ZT_RESULT_FATAL_ERROR_INTERNAL;
  734. }
  735. }
  736. enum ZT_ResultCode ZT_Node_multicastUnsubscribe(ZT_Node *node,uint64_t nwid,uint64_t multicastGroup,unsigned long multicastAdi)
  737. {
  738. try {
  739. return reinterpret_cast<ZeroTier::Node *>(node)->multicastUnsubscribe(nwid,multicastGroup,multicastAdi);
  740. } catch (std::bad_alloc &exc) {
  741. return ZT_RESULT_FATAL_ERROR_OUT_OF_MEMORY;
  742. } catch ( ... ) {
  743. return ZT_RESULT_FATAL_ERROR_INTERNAL;
  744. }
  745. }
  746. uint64_t ZT_Node_address(ZT_Node *node)
  747. {
  748. return reinterpret_cast<ZeroTier::Node *>(node)->address();
  749. }
  750. void ZT_Node_status(ZT_Node *node,ZT_NodeStatus *status)
  751. {
  752. try {
  753. reinterpret_cast<ZeroTier::Node *>(node)->status(status);
  754. } catch ( ... ) {}
  755. }
  756. ZT_PeerList *ZT_Node_peers(ZT_Node *node)
  757. {
  758. try {
  759. return reinterpret_cast<ZeroTier::Node *>(node)->peers();
  760. } catch ( ... ) {
  761. return (ZT_PeerList *)0;
  762. }
  763. }
  764. ZT_VirtualNetworkConfig *ZT_Node_networkConfig(ZT_Node *node,uint64_t nwid)
  765. {
  766. try {
  767. return reinterpret_cast<ZeroTier::Node *>(node)->networkConfig(nwid);
  768. } catch ( ... ) {
  769. return (ZT_VirtualNetworkConfig *)0;
  770. }
  771. }
  772. ZT_VirtualNetworkList *ZT_Node_networks(ZT_Node *node)
  773. {
  774. try {
  775. return reinterpret_cast<ZeroTier::Node *>(node)->networks();
  776. } catch ( ... ) {
  777. return (ZT_VirtualNetworkList *)0;
  778. }
  779. }
  780. void ZT_Node_freeQueryResult(ZT_Node *node,void *qr)
  781. {
  782. try {
  783. reinterpret_cast<ZeroTier::Node *>(node)->freeQueryResult(qr);
  784. } catch ( ... ) {}
  785. }
  786. int ZT_Node_addLocalInterfaceAddress(ZT_Node *node,const struct sockaddr_storage *addr)
  787. {
  788. try {
  789. return reinterpret_cast<ZeroTier::Node *>(node)->addLocalInterfaceAddress(addr);
  790. } catch ( ... ) {
  791. return 0;
  792. }
  793. }
  794. void ZT_Node_clearLocalInterfaceAddresses(ZT_Node *node)
  795. {
  796. try {
  797. reinterpret_cast<ZeroTier::Node *>(node)->clearLocalInterfaceAddresses();
  798. } catch ( ... ) {}
  799. }
  800. int ZT_Node_sendUserMessage(ZT_Node *node,void *tptr,uint64_t dest,uint64_t typeId,const void *data,unsigned int len)
  801. {
  802. try {
  803. return reinterpret_cast<ZeroTier::Node *>(node)->sendUserMessage(tptr,dest,typeId,data,len);
  804. } catch ( ... ) {
  805. return 0;
  806. }
  807. }
  808. void ZT_Node_setController(ZT_Node *node,void *networkControllerInstance)
  809. {
  810. try {
  811. reinterpret_cast<ZeroTier::Node *>(node)->setController(networkControllerInstance);
  812. } catch ( ... ) {}
  813. }
  814. enum ZT_ResultCode ZT_Node_setPhysicalPathConfiguration(ZT_Node *node,const struct sockaddr_storage *pathNetwork,const ZT_PhysicalPathConfiguration *pathConfig)
  815. {
  816. try {
  817. return reinterpret_cast<ZeroTier::Node *>(node)->setPhysicalPathConfiguration(pathNetwork,pathConfig);
  818. } catch ( ... ) {
  819. return ZT_RESULT_FATAL_ERROR_INTERNAL;
  820. }
  821. }
  822. void ZT_version(int *major,int *minor,int *revision)
  823. {
  824. if (major) *major = ZEROTIER_ONE_VERSION_MAJOR;
  825. if (minor) *minor = ZEROTIER_ONE_VERSION_MINOR;
  826. if (revision) *revision = ZEROTIER_ONE_VERSION_REVISION;
  827. }
  828. } // extern "C"