Cluster.cpp 25 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. #ifdef ZT_ENABLE_CLUSTER
  28. #include <stdint.h>
  29. #include <stdio.h>
  30. #include <stdlib.h>
  31. #include <string.h>
  32. #include <math.h>
  33. #include <algorithm>
  34. #include <utility>
  35. #include "../version.h"
  36. #include "Cluster.hpp"
  37. #include "RuntimeEnvironment.hpp"
  38. #include "MulticastGroup.hpp"
  39. #include "CertificateOfMembership.hpp"
  40. #include "Salsa20.hpp"
  41. #include "Poly1305.hpp"
  42. #include "Identity.hpp"
  43. #include "Topology.hpp"
  44. #include "Packet.hpp"
  45. #include "Switch.hpp"
  46. #include "Node.hpp"
  47. namespace ZeroTier {
  48. static inline double _dist3d(int x1,int y1,int z1,int x2,int y2,int z2)
  49. throw()
  50. {
  51. double dx = ((double)x2 - (double)x1);
  52. double dy = ((double)y2 - (double)y1);
  53. double dz = ((double)z2 - (double)z1);
  54. return sqrt((dx * dx) + (dy * dy) + (dz * dz));
  55. }
  56. Cluster::Cluster(
  57. const RuntimeEnvironment *renv,
  58. uint16_t id,
  59. const std::vector<InetAddress> &zeroTierPhysicalEndpoints,
  60. int32_t x,
  61. int32_t y,
  62. int32_t z,
  63. void (*sendFunction)(void *,unsigned int,const void *,unsigned int),
  64. void *sendFunctionArg,
  65. int (*addressToLocationFunction)(void *,const struct sockaddr_storage *,int *,int *,int *),
  66. void *addressToLocationFunctionArg) :
  67. RR(renv),
  68. _sendFunction(sendFunction),
  69. _sendFunctionArg(sendFunctionArg),
  70. _addressToLocationFunction(addressToLocationFunction),
  71. _addressToLocationFunctionArg(addressToLocationFunctionArg),
  72. _x(x),
  73. _y(y),
  74. _z(z),
  75. _id(id),
  76. _zeroTierPhysicalEndpoints(zeroTierPhysicalEndpoints),
  77. _members(new _Member[ZT_CLUSTER_MAX_MEMBERS])
  78. {
  79. uint16_t stmp[ZT_SHA512_DIGEST_LEN / sizeof(uint16_t)];
  80. // Generate master secret by hashing the secret from our Identity key pair
  81. RR->identity.sha512PrivateKey(_masterSecret);
  82. // Generate our inbound message key, which is the master secret XORed with our ID and hashed twice
  83. memcpy(stmp,_masterSecret,sizeof(stmp));
  84. stmp[0] ^= Utils::hton(id);
  85. SHA512::hash(stmp,stmp,sizeof(stmp));
  86. SHA512::hash(stmp,stmp,sizeof(stmp));
  87. memcpy(_key,stmp,sizeof(_key));
  88. Utils::burn(stmp,sizeof(stmp));
  89. }
  90. Cluster::~Cluster()
  91. {
  92. Utils::burn(_masterSecret,sizeof(_masterSecret));
  93. Utils::burn(_key,sizeof(_key));
  94. delete [] _members;
  95. }
  96. void Cluster::handleIncomingStateMessage(const void *msg,unsigned int len)
  97. {
  98. Buffer<ZT_CLUSTER_MAX_MESSAGE_LENGTH> dmsg;
  99. {
  100. // FORMAT: <[16] iv><[8] MAC><... data>
  101. if ((len < 24)||(len > ZT_CLUSTER_MAX_MESSAGE_LENGTH))
  102. return;
  103. // 16-byte IV: first 8 bytes XORed with key, last 8 bytes used as Salsa20 64-bit IV
  104. char keytmp[32];
  105. memcpy(keytmp,_key,32);
  106. for(int i=0;i<8;++i)
  107. keytmp[i] ^= reinterpret_cast<const char *>(msg)[i];
  108. Salsa20 s20(keytmp,256,reinterpret_cast<const char *>(msg) + 8);
  109. Utils::burn(keytmp,sizeof(keytmp));
  110. // One-time-use Poly1305 key from first 32 bytes of Salsa20 keystream (as per DJB/NaCl "standard")
  111. char polykey[ZT_POLY1305_KEY_LEN];
  112. memset(polykey,0,sizeof(polykey));
  113. s20.encrypt12(polykey,polykey,sizeof(polykey));
  114. // Compute 16-byte MAC
  115. char mac[ZT_POLY1305_MAC_LEN];
  116. Poly1305::compute(mac,reinterpret_cast<const char *>(msg) + 24,len - 24,polykey);
  117. // Check first 8 bytes of MAC against 64-bit MAC in stream
  118. if (!Utils::secureEq(mac,reinterpret_cast<const char *>(msg) + 16,8))
  119. return;
  120. // Decrypt!
  121. dmsg.setSize(len - 24);
  122. s20.decrypt12(reinterpret_cast<const char *>(msg) + 24,const_cast<void *>(dmsg.data()),dmsg.size());
  123. }
  124. if (dmsg.size() < 4)
  125. return;
  126. const uint16_t fromMemberId = dmsg.at<uint16_t>(0);
  127. unsigned int ptr = 2;
  128. if (fromMemberId == _id) // sanity check: we don't talk to ourselves
  129. return;
  130. const uint16_t toMemberId = dmsg.at<uint16_t>(ptr);
  131. ptr += 2;
  132. if (toMemberId != _id) // sanity check: message not for us?
  133. return;
  134. { // make sure sender is actually considered a member
  135. Mutex::Lock _l3(_memberIds_m);
  136. if (std::find(_memberIds.begin(),_memberIds.end(),fromMemberId) == _memberIds.end())
  137. return;
  138. }
  139. {
  140. _Member &m = _members[fromMemberId];
  141. Mutex::Lock mlck(m.lock);
  142. try {
  143. while (ptr < dmsg.size()) {
  144. const unsigned int mlen = dmsg.at<uint16_t>(ptr); ptr += 2;
  145. const unsigned int nextPtr = ptr + mlen;
  146. if (nextPtr > dmsg.size())
  147. break;
  148. int mtype = -1;
  149. try {
  150. switch((StateMessageType)(mtype = (int)dmsg[ptr++])) {
  151. default:
  152. break;
  153. case STATE_MESSAGE_ALIVE: {
  154. ptr += 7; // skip version stuff, not used yet
  155. m.x = dmsg.at<int32_t>(ptr); ptr += 4;
  156. m.y = dmsg.at<int32_t>(ptr); ptr += 4;
  157. m.z = dmsg.at<int32_t>(ptr); ptr += 4;
  158. ptr += 8; // skip local clock, not used
  159. m.load = dmsg.at<uint64_t>(ptr); ptr += 8;
  160. ptr += 8; // skip flags, unused
  161. #ifdef ZT_TRACE
  162. std::string addrs;
  163. #endif
  164. unsigned int physicalAddressCount = dmsg[ptr++];
  165. m.zeroTierPhysicalEndpoints.clear();
  166. for(unsigned int i=0;i<physicalAddressCount;++i) {
  167. m.zeroTierPhysicalEndpoints.push_back(InetAddress());
  168. ptr += m.zeroTierPhysicalEndpoints.back().deserialize(dmsg,ptr);
  169. if (!(m.zeroTierPhysicalEndpoints.back())) {
  170. m.zeroTierPhysicalEndpoints.pop_back();
  171. }
  172. #ifdef ZT_TRACE
  173. else {
  174. if (addrs.length() > 0)
  175. addrs.push_back(',');
  176. addrs.append(m.zeroTierPhysicalEndpoints.back().toString());
  177. }
  178. #endif
  179. }
  180. #ifdef ZT_TRACE
  181. if ((RR->node->now() - m.lastReceivedAliveAnnouncement) >= ZT_CLUSTER_TIMEOUT) {
  182. TRACE("[%u] I'm alive! peers close to %d,%d,%d can be redirected to: %s",(unsigned int)fromMemberId,m.x,m.y,m.z,addrs.c_str());
  183. }
  184. #endif
  185. m.lastReceivedAliveAnnouncement = RR->node->now();
  186. } break;
  187. case STATE_MESSAGE_HAVE_PEER: {
  188. try {
  189. Identity id;
  190. ptr += id.deserialize(dmsg,ptr);
  191. if (id) {
  192. RR->topology->saveIdentity(id);
  193. { // Add or update peer affinity entry
  194. _PeerAffinity pa(id.address(),fromMemberId,RR->node->now());
  195. Mutex::Lock _l2(_peerAffinities_m);
  196. std::vector<_PeerAffinity>::iterator i(std::lower_bound(_peerAffinities.begin(),_peerAffinities.end(),pa)); // O(log(n))
  197. if ((i != _peerAffinities.end())&&(i->key == pa.key)) {
  198. i->timestamp = pa.timestamp;
  199. } else {
  200. _peerAffinities.push_back(pa);
  201. std::sort(_peerAffinities.begin(),_peerAffinities.end()); // probably a more efficient way to insert but okay for now
  202. }
  203. }
  204. TRACE("[%u] has %s",(unsigned int)fromMemberId,id.address().toString().c_str());
  205. }
  206. } catch ( ... ) {
  207. // ignore invalid identities
  208. }
  209. } break;
  210. case STATE_MESSAGE_MULTICAST_LIKE: {
  211. const uint64_t nwid = dmsg.at<uint64_t>(ptr); ptr += 8;
  212. const Address address(dmsg.field(ptr,ZT_ADDRESS_LENGTH),ZT_ADDRESS_LENGTH); ptr += ZT_ADDRESS_LENGTH;
  213. const MAC mac(dmsg.field(ptr,6),6); ptr += 6;
  214. const uint32_t adi = dmsg.at<uint32_t>(ptr); ptr += 4;
  215. RR->mc->add(RR->node->now(),nwid,MulticastGroup(mac,adi),address);
  216. TRACE("[%u] %s likes %s/%.8x on %.16llx",(unsigned int)fromMemberId,address.toString().c_str(),mac.toString().c_str(),(unsigned int)adi,nwid);
  217. } break;
  218. case STATE_MESSAGE_COM: {
  219. CertificateOfMembership com;
  220. ptr += com.deserialize(dmsg,ptr);
  221. if (com) {
  222. TRACE("[%u] COM for %s on %.16llu rev %llu",(unsigned int)fromMemberId,com.issuedTo().toString().c_str(),com.networkId(),com.revision());
  223. }
  224. } break;
  225. case STATE_MESSAGE_PROXY_UNITE: {
  226. const Address localPeerAddress(dmsg.field(ptr,ZT_ADDRESS_LENGTH),ZT_ADDRESS_LENGTH); ptr += ZT_ADDRESS_LENGTH;
  227. const Address remotePeerAddress(dmsg.field(ptr,ZT_ADDRESS_LENGTH),ZT_ADDRESS_LENGTH); ptr += ZT_ADDRESS_LENGTH;
  228. const unsigned int numRemotePeerPaths = dmsg[ptr++];
  229. InetAddress remotePeerPaths[256]; // size is 8-bit, so 256 is max
  230. for(unsigned int i=0;i<numRemotePeerPaths;++i)
  231. ptr += remotePeerPaths[i].deserialize(dmsg,ptr);
  232. TRACE("[%u] requested proxy unite between local peer %s and remote peer %s",(unsigned int)fromMemberId,localPeerAddress.toString().c_str(),remotePeerAddress.toString().c_str());
  233. SharedPtr<Peer> localPeer(RR->topology->getPeer(localPeerAddress));
  234. if ((localPeer)&&(numRemotePeerPaths > 0)) {
  235. InetAddress bestLocalV4,bestLocalV6;
  236. localPeer->getBestActiveAddresses(RR->node->now(),bestLocalV4,bestLocalV6);
  237. InetAddress bestRemoteV4,bestRemoteV6;
  238. for(unsigned int i=0;i<numRemotePeerPaths;++i) {
  239. if ((bestRemoteV4)&&(bestRemoteV6))
  240. break;
  241. switch(remotePeerPaths[i].ss_family) {
  242. case AF_INET:
  243. if (!bestRemoteV4)
  244. bestRemoteV4 = remotePeerPaths[i];
  245. break;
  246. case AF_INET6:
  247. if (!bestRemoteV6)
  248. bestRemoteV6 = remotePeerPaths[i];
  249. break;
  250. }
  251. }
  252. Packet rendezvousForLocal(localPeerAddress,RR->identity.address(),Packet::VERB_RENDEZVOUS);
  253. rendezvousForLocal.append((uint8_t)0);
  254. remotePeerAddress.appendTo(rendezvousForLocal);
  255. Buffer<2048> rendezvousForRemote;
  256. remotePeerAddress.appendTo(rendezvousForRemote);
  257. rendezvousForRemote.append((uint8_t)Packet::VERB_RENDEZVOUS);
  258. const unsigned int rendezvousForOtherEndPayloadSizePtr = rendezvousForRemote.size();
  259. rendezvousForRemote.addSize(2); // space for actual packet payload length
  260. rendezvousForRemote.append((uint8_t)0); // flags == 0
  261. localPeerAddress.appendTo(rendezvousForRemote);
  262. bool haveMatch = false;
  263. if ((bestLocalV6)&&(bestRemoteV6)) {
  264. haveMatch = true;
  265. rendezvousForLocal.append((uint16_t)bestRemoteV6.port());
  266. rendezvousForLocal.append((uint8_t)16);
  267. rendezvousForLocal.append(bestRemoteV6.rawIpData(),16);
  268. rendezvousForRemote.append((uint16_t)bestLocalV6.port());
  269. rendezvousForRemote.append((uint8_t)16);
  270. rendezvousForRemote.append(bestLocalV6.rawIpData(),16);
  271. rendezvousForRemote.setAt<uint16_t>(rendezvousForOtherEndPayloadSizePtr,(uint16_t)(9 + 16));
  272. } else if ((bestLocalV4)&&(bestRemoteV4)) {
  273. haveMatch = true;
  274. rendezvousForLocal.append((uint16_t)bestRemoteV4.port());
  275. rendezvousForLocal.append((uint8_t)4);
  276. rendezvousForLocal.append(bestRemoteV4.rawIpData(),4);
  277. rendezvousForRemote.append((uint16_t)bestLocalV4.port());
  278. rendezvousForRemote.append((uint8_t)4);
  279. rendezvousForRemote.append(bestLocalV4.rawIpData(),4);
  280. rendezvousForRemote.setAt<uint16_t>(rendezvousForOtherEndPayloadSizePtr,(uint16_t)(9 + 4));
  281. }
  282. if (haveMatch) {
  283. _send(fromMemberId,STATE_MESSAGE_PROXY_SEND,rendezvousForRemote.data(),rendezvousForRemote.size());
  284. RR->sw->send(rendezvousForLocal,true,0);
  285. }
  286. }
  287. } break;
  288. case STATE_MESSAGE_PROXY_SEND: {
  289. const Address rcpt(dmsg.field(ptr,ZT_ADDRESS_LENGTH),ZT_ADDRESS_LENGTH); ptr += ZT_ADDRESS_LENGTH;
  290. const Packet::Verb verb = (Packet::Verb)dmsg[ptr++];
  291. const unsigned int len = dmsg.at<uint16_t>(ptr); ptr += 2;
  292. Packet outp(rcpt,RR->identity.address(),verb);
  293. outp.append(dmsg.field(ptr,len),len); ptr += len;
  294. RR->sw->send(outp,true,0);
  295. TRACE("[%u] proxy send %s to %s length %u",(unsigned int)fromMemberId,Packet::verbString(verb),rcpt.toString().c_str(),len);
  296. } break;
  297. }
  298. } catch ( ... ) {
  299. TRACE("invalid message of size %u type %d (inner decode), discarding",mlen,mtype);
  300. // drop invalids
  301. }
  302. ptr = nextPtr;
  303. }
  304. } catch ( ... ) {
  305. TRACE("invalid message (outer loop), discarding");
  306. // drop invalids
  307. }
  308. }
  309. }
  310. bool Cluster::sendViaCluster(const Address &fromPeerAddress,const Address &toPeerAddress,const void *data,unsigned int len,bool unite)
  311. {
  312. if (len > 16384) // sanity check
  313. return false;
  314. uint64_t mostRecentTimestamp = 0;
  315. unsigned int canHasPeer = 0;
  316. { // Anyone got this peer?
  317. Mutex::Lock _l2(_peerAffinities_m);
  318. std::vector<_PeerAffinity>::iterator i(std::lower_bound(_peerAffinities.begin(),_peerAffinities.end(),_PeerAffinity(toPeerAddress,0,0))); // O(log(n))
  319. while ((i != _peerAffinities.end())&&(i->address() == toPeerAddress)) {
  320. const uint16_t mid = i->clusterMemberId();
  321. if ((mid != _id)&&(i->timestamp > mostRecentTimestamp)) {
  322. mostRecentTimestamp = i->timestamp;
  323. canHasPeer = mid;
  324. }
  325. ++i;
  326. }
  327. }
  328. const uint64_t now = RR->node->now();
  329. if ((now - mostRecentTimestamp) < ZT_PEER_ACTIVITY_TIMEOUT) {
  330. Buffer<2048> buf;
  331. if (unite) {
  332. InetAddress v4,v6;
  333. if (fromPeerAddress) {
  334. SharedPtr<Peer> fromPeer(RR->topology->getPeer(fromPeerAddress));
  335. if (fromPeer)
  336. fromPeer->getBestActiveAddresses(now,v4,v6);
  337. }
  338. uint8_t addrCount = 0;
  339. if (v4)
  340. ++addrCount;
  341. if (v6)
  342. ++addrCount;
  343. if (addrCount) {
  344. toPeerAddress.appendTo(buf);
  345. fromPeerAddress.appendTo(buf);
  346. buf.append(addrCount);
  347. if (v4)
  348. v4.serialize(buf);
  349. if (v6)
  350. v6.serialize(buf);
  351. }
  352. }
  353. {
  354. Mutex::Lock _l2(_members[canHasPeer].lock);
  355. if (buf.size() > 0)
  356. _send(canHasPeer,STATE_MESSAGE_PROXY_UNITE,buf.data(),buf.size());
  357. if (_members[canHasPeer].zeroTierPhysicalEndpoints.size() > 0)
  358. RR->node->putPacket(InetAddress(),_members[canHasPeer].zeroTierPhysicalEndpoints.front(),data,len);
  359. }
  360. TRACE("sendViaCluster(): relaying %u bytes from %s to %s by way of %u",len,fromPeerAddress.toString().c_str(),toPeerAddress.toString().c_str(),(unsigned int)canHasPeer);
  361. return true;
  362. } else {
  363. TRACE("sendViaCluster(): unable to relay %u bytes from %s to %s since no cluster members seem to have it!",len,fromPeerAddress.toString().c_str(),toPeerAddress.toString().c_str());
  364. return false;
  365. }
  366. }
  367. void Cluster::replicateHavePeer(const Identity &peerId)
  368. {
  369. { // Use peer affinity table to track our own last announce time for peers
  370. _PeerAffinity pa(peerId.address(),_id,RR->node->now());
  371. Mutex::Lock _l2(_peerAffinities_m);
  372. std::vector<_PeerAffinity>::iterator i(std::lower_bound(_peerAffinities.begin(),_peerAffinities.end(),pa)); // O(log(n))
  373. if ((i != _peerAffinities.end())&&(i->key == pa.key)) {
  374. if ((pa.timestamp - i->timestamp) >= ZT_CLUSTER_HAVE_PEER_ANNOUNCE_PERIOD) {
  375. i->timestamp = pa.timestamp;
  376. // continue to announcement
  377. } else {
  378. // we've already announced this peer recently, so skip
  379. return;
  380. }
  381. } else {
  382. _peerAffinities.push_back(pa);
  383. std::sort(_peerAffinities.begin(),_peerAffinities.end()); // probably a more efficient way to insert but okay for now
  384. // continue to announcement
  385. }
  386. }
  387. // announcement
  388. Buffer<4096> buf;
  389. peerId.serialize(buf,false);
  390. {
  391. Mutex::Lock _l(_memberIds_m);
  392. for(std::vector<uint16_t>::const_iterator mid(_memberIds.begin());mid!=_memberIds.end();++mid) {
  393. Mutex::Lock _l2(_members[*mid].lock);
  394. _send(*mid,STATE_MESSAGE_HAVE_PEER,buf.data(),buf.size());
  395. }
  396. }
  397. }
  398. void Cluster::replicateMulticastLike(uint64_t nwid,const Address &peerAddress,const MulticastGroup &group)
  399. {
  400. Buffer<2048> buf;
  401. buf.append((uint64_t)nwid);
  402. peerAddress.appendTo(buf);
  403. group.mac().appendTo(buf);
  404. buf.append((uint32_t)group.adi());
  405. TRACE("replicating %s MULTICAST_LIKE %.16llx/%s/%u to all members",peerAddress.toString().c_str(),nwid,group.mac().toString().c_str(),(unsigned int)group.adi());
  406. {
  407. Mutex::Lock _l(_memberIds_m);
  408. for(std::vector<uint16_t>::const_iterator mid(_memberIds.begin());mid!=_memberIds.end();++mid) {
  409. Mutex::Lock _l2(_members[*mid].lock);
  410. _send(*mid,STATE_MESSAGE_MULTICAST_LIKE,buf.data(),buf.size());
  411. }
  412. }
  413. }
  414. void Cluster::replicateCertificateOfNetworkMembership(const CertificateOfMembership &com)
  415. {
  416. Buffer<2048> buf;
  417. com.serialize(buf);
  418. TRACE("replicating %s COM for %.16llx to all members",com.issuedTo().toString().c_str(),com.networkId());
  419. {
  420. Mutex::Lock _l(_memberIds_m);
  421. for(std::vector<uint16_t>::const_iterator mid(_memberIds.begin());mid!=_memberIds.end();++mid) {
  422. Mutex::Lock _l2(_members[*mid].lock);
  423. _send(*mid,STATE_MESSAGE_COM,buf.data(),buf.size());
  424. }
  425. }
  426. }
  427. void Cluster::doPeriodicTasks()
  428. {
  429. const uint64_t now = RR->node->now();
  430. {
  431. Mutex::Lock _l(_memberIds_m);
  432. for(std::vector<uint16_t>::const_iterator mid(_memberIds.begin());mid!=_memberIds.end();++mid) {
  433. Mutex::Lock _l2(_members[*mid].lock);
  434. if ((now - _members[*mid].lastAnnouncedAliveTo) >= ((ZT_CLUSTER_TIMEOUT / 2) - 1000)) {
  435. Buffer<2048> alive;
  436. alive.append((uint16_t)ZEROTIER_ONE_VERSION_MAJOR);
  437. alive.append((uint16_t)ZEROTIER_ONE_VERSION_MINOR);
  438. alive.append((uint16_t)ZEROTIER_ONE_VERSION_REVISION);
  439. alive.append((uint8_t)ZT_PROTO_VERSION);
  440. if (_addressToLocationFunction) {
  441. alive.append((int32_t)_x);
  442. alive.append((int32_t)_y);
  443. alive.append((int32_t)_z);
  444. } else {
  445. alive.append((int32_t)0);
  446. alive.append((int32_t)0);
  447. alive.append((int32_t)0);
  448. }
  449. alive.append((uint64_t)now);
  450. alive.append((uint64_t)0); // TODO: compute and send load average
  451. alive.append((uint64_t)0); // unused/reserved flags
  452. alive.append((uint8_t)_zeroTierPhysicalEndpoints.size());
  453. for(std::vector<InetAddress>::const_iterator pe(_zeroTierPhysicalEndpoints.begin());pe!=_zeroTierPhysicalEndpoints.end();++pe)
  454. pe->serialize(alive);
  455. _send(*mid,STATE_MESSAGE_ALIVE,alive.data(),alive.size());
  456. _members[*mid].lastAnnouncedAliveTo = now;
  457. }
  458. _flush(*mid); // does nothing if nothing to flush
  459. }
  460. }
  461. }
  462. void Cluster::addMember(uint16_t memberId)
  463. {
  464. if ((memberId >= ZT_CLUSTER_MAX_MEMBERS)||(memberId == _id))
  465. return;
  466. Mutex::Lock _l2(_members[memberId].lock);
  467. {
  468. Mutex::Lock _l(_memberIds_m);
  469. if (std::find(_memberIds.begin(),_memberIds.end(),memberId) != _memberIds.end())
  470. return;
  471. _memberIds.push_back(memberId);
  472. std::sort(_memberIds.begin(),_memberIds.end());
  473. }
  474. _members[memberId].clear();
  475. // Generate this member's message key from the master and its ID
  476. uint16_t stmp[ZT_SHA512_DIGEST_LEN / sizeof(uint16_t)];
  477. memcpy(stmp,_masterSecret,sizeof(stmp));
  478. stmp[0] ^= Utils::hton(memberId);
  479. SHA512::hash(stmp,stmp,sizeof(stmp));
  480. SHA512::hash(stmp,stmp,sizeof(stmp));
  481. memcpy(_members[memberId].key,stmp,sizeof(_members[memberId].key));
  482. Utils::burn(stmp,sizeof(stmp));
  483. // Prepare q
  484. _members[memberId].q.clear();
  485. char iv[16];
  486. Utils::getSecureRandom(iv,16);
  487. _members[memberId].q.append(iv,16);
  488. _members[memberId].q.addSize(8); // room for MAC
  489. _members[memberId].q.append((uint16_t)_id);
  490. _members[memberId].q.append((uint16_t)memberId);
  491. }
  492. void Cluster::removeMember(uint16_t memberId)
  493. {
  494. Mutex::Lock _l(_memberIds_m);
  495. std::vector<uint16_t> newMemberIds;
  496. for(std::vector<uint16_t>::const_iterator mid(_memberIds.begin());mid!=_memberIds.end();++mid) {
  497. if (*mid != memberId)
  498. newMemberIds.push_back(*mid);
  499. }
  500. _memberIds = newMemberIds;
  501. }
  502. bool Cluster::findBetterEndpoint(InetAddress &redirectTo,const Address &peerAddress,const InetAddress &peerPhysicalAddress,bool offload)
  503. {
  504. if (_addressToLocationFunction) {
  505. // Pick based on location if it can be determined
  506. int px = 0,py = 0,pz = 0;
  507. if (_addressToLocationFunction(_addressToLocationFunctionArg,reinterpret_cast<const struct sockaddr_storage *>(&peerPhysicalAddress),&px,&py,&pz) == 0) {
  508. TRACE("no geolocation data for %s (geo-lookup is lazy/async so it may work next time)",peerPhysicalAddress.toIpString().c_str());
  509. return false;
  510. }
  511. // Find member closest to this peer
  512. const uint64_t now = RR->node->now();
  513. std::vector<InetAddress> best; // initial "best" is for peer to stay put
  514. const double currentDistance = _dist3d(_x,_y,_z,px,py,pz);
  515. double bestDistance = (offload ? 2147483648.0 : currentDistance);
  516. unsigned int bestMember = _id;
  517. {
  518. Mutex::Lock _l(_memberIds_m);
  519. for(std::vector<uint16_t>::const_iterator mid(_memberIds.begin());mid!=_memberIds.end();++mid) {
  520. _Member &m = _members[*mid];
  521. Mutex::Lock _ml(m.lock);
  522. // Consider member if it's alive and has sent us a location and one or more physical endpoints to send peers to
  523. if ( ((now - m.lastReceivedAliveAnnouncement) < ZT_CLUSTER_TIMEOUT) && ((m.x != 0)||(m.y != 0)||(m.z != 0)) && (m.zeroTierPhysicalEndpoints.size() > 0) ) {
  524. double mdist = _dist3d(m.x,m.y,m.z,px,py,pz);
  525. if (mdist < bestDistance) {
  526. bestDistance = mdist;
  527. bestMember = *mid;
  528. best = m.zeroTierPhysicalEndpoints;
  529. }
  530. }
  531. }
  532. }
  533. for(std::vector<InetAddress>::const_iterator a(best.begin());a!=best.end();++a) {
  534. if (a->ss_family == peerPhysicalAddress.ss_family) {
  535. TRACE("%s at [%d,%d,%d] is %f from us but %f from %u, can redirect to %s",peerAddress.toString().c_str(),px,py,pz,currentDistance,bestDistance,bestMember,a->toString().c_str());
  536. redirectTo = *a;
  537. return true;
  538. }
  539. }
  540. TRACE("%s at [%d,%d,%d] is %f from us, no better endpoints found",peerAddress.toString().c_str(),px,py,pz,currentDistance);
  541. return false;
  542. } else {
  543. // TODO: pick based on load if no location info?
  544. return false;
  545. }
  546. }
  547. void Cluster::status(ZT_ClusterStatus &status) const
  548. {
  549. const uint64_t now = RR->node->now();
  550. memset(&status,0,sizeof(ZT_ClusterStatus));
  551. ZT_ClusterMemberStatus *ms[ZT_CLUSTER_MAX_MEMBERS];
  552. memset(ms,0,sizeof(ms));
  553. status.myId = _id;
  554. ms[_id] = &(status.members[status.clusterSize++]);
  555. ms[_id]->id = _id;
  556. ms[_id]->alive = 1;
  557. ms[_id]->x = _x;
  558. ms[_id]->y = _y;
  559. ms[_id]->z = _z;
  560. ms[_id]->peers = RR->topology->countAlive();
  561. for(std::vector<InetAddress>::const_iterator ep(_zeroTierPhysicalEndpoints.begin());ep!=_zeroTierPhysicalEndpoints.end();++ep) {
  562. if (ms[_id]->numZeroTierPhysicalEndpoints >= ZT_CLUSTER_MAX_ZT_PHYSICAL_ADDRESSES) // sanity check
  563. break;
  564. memcpy(&(ms[_id]->zeroTierPhysicalEndpoints[ms[_id]->numZeroTierPhysicalEndpoints++]),&(*ep),sizeof(struct sockaddr_storage));
  565. }
  566. {
  567. Mutex::Lock _l1(_memberIds_m);
  568. for(std::vector<uint16_t>::const_iterator mid(_memberIds.begin());mid!=_memberIds.end();++mid) {
  569. if (status.clusterSize >= ZT_CLUSTER_MAX_MEMBERS) // sanity check
  570. break;
  571. ZT_ClusterMemberStatus *s = ms[*mid] = &(status.members[status.clusterSize++]);
  572. _Member &m = _members[*mid];
  573. Mutex::Lock ml(m.lock);
  574. s->id = *mid;
  575. s->msSinceLastHeartbeat = (unsigned int)std::min((uint64_t)(~((unsigned int)0)),(now - m.lastReceivedAliveAnnouncement));
  576. s->alive = (s->msSinceLastHeartbeat < ZT_CLUSTER_TIMEOUT) ? 1 : 0;
  577. s->x = m.x;
  578. s->y = m.y;
  579. s->z = m.z;
  580. s->load = m.load;
  581. for(std::vector<InetAddress>::const_iterator ep(m.zeroTierPhysicalEndpoints.begin());ep!=m.zeroTierPhysicalEndpoints.end();++ep) {
  582. if (s->numZeroTierPhysicalEndpoints >= ZT_CLUSTER_MAX_ZT_PHYSICAL_ADDRESSES) // sanity check
  583. break;
  584. memcpy(&(s->zeroTierPhysicalEndpoints[s->numZeroTierPhysicalEndpoints++]),&(*ep),sizeof(struct sockaddr_storage));
  585. }
  586. }
  587. }
  588. {
  589. Mutex::Lock _l2(_peerAffinities_m);
  590. for(std::vector<_PeerAffinity>::const_iterator pi(_peerAffinities.begin());pi!=_peerAffinities.end();++pi) {
  591. unsigned int mid = pi->clusterMemberId();
  592. if ((ms[mid])&&(mid != _id)&&((now - pi->timestamp) < ZT_PEER_ACTIVITY_TIMEOUT))
  593. ++ms[mid]->peers;
  594. }
  595. }
  596. }
  597. void Cluster::_send(uint16_t memberId,StateMessageType type,const void *msg,unsigned int len)
  598. {
  599. if ((len + 3) > (ZT_CLUSTER_MAX_MESSAGE_LENGTH - (24 + 2 + 2))) // sanity check
  600. return;
  601. _Member &m = _members[memberId];
  602. // assumes m.lock is locked!
  603. if ((m.q.size() + len + 3) > ZT_CLUSTER_MAX_MESSAGE_LENGTH)
  604. _flush(memberId);
  605. m.q.append((uint16_t)(len + 1));
  606. m.q.append((uint8_t)type);
  607. m.q.append(msg,len);
  608. }
  609. void Cluster::_flush(uint16_t memberId)
  610. {
  611. _Member &m = _members[memberId];
  612. // assumes m.lock is locked!
  613. if (m.q.size() > (24 + 2 + 2)) { // 16-byte IV + 8-byte MAC + 2 byte from-member-ID + 2 byte to-member-ID
  614. // Create key from member's key and IV
  615. char keytmp[32];
  616. memcpy(keytmp,m.key,32);
  617. for(int i=0;i<8;++i)
  618. keytmp[i] ^= m.q[i];
  619. Salsa20 s20(keytmp,256,m.q.field(8,8));
  620. Utils::burn(keytmp,sizeof(keytmp));
  621. // One-time-use Poly1305 key from first 32 bytes of Salsa20 keystream (as per DJB/NaCl "standard")
  622. char polykey[ZT_POLY1305_KEY_LEN];
  623. memset(polykey,0,sizeof(polykey));
  624. s20.encrypt12(polykey,polykey,sizeof(polykey));
  625. // Encrypt m.q in place
  626. s20.encrypt12(reinterpret_cast<const char *>(m.q.data()) + 24,const_cast<char *>(reinterpret_cast<const char *>(m.q.data())) + 24,m.q.size() - 24);
  627. // Add MAC for authentication (encrypt-then-MAC)
  628. char mac[ZT_POLY1305_MAC_LEN];
  629. Poly1305::compute(mac,reinterpret_cast<const char *>(m.q.data()) + 24,m.q.size() - 24,polykey);
  630. memcpy(m.q.field(16,8),mac,8);
  631. // Send!
  632. _sendFunction(_sendFunctionArg,memberId,m.q.data(),m.q.size());
  633. // Prepare for more
  634. m.q.clear();
  635. char iv[16];
  636. Utils::getSecureRandom(iv,16);
  637. m.q.append(iv,16);
  638. m.q.addSize(8); // room for MAC
  639. m.q.append((uint16_t)_id); // from member ID
  640. m.q.append((uint16_t)memberId); // to member ID
  641. }
  642. }
  643. } // namespace ZeroTier
  644. #endif // ZT_ENABLE_CLUSTER