root.cpp 46 KB

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  1. /*
  2. * Copyright (c)2019 ZeroTier, Inc.
  3. *
  4. * Use of this software is governed by the Business Source License included
  5. * in the LICENSE.TXT file in the project's root directory.
  6. *
  7. * Change Date: 2023-01-01
  8. *
  9. * On the date above, in accordance with the Business Source License, use
  10. * of this software will be governed by version 2.0 of the Apache License.
  11. */
  12. /****/
  13. /*
  14. * This is a high-throughput minimal root server. It implements only
  15. * those functions of a ZT node that a root must perform and does so
  16. * using highly efficient multithreaded I/O code. It's only been
  17. * thoroughly tested on Linux but should also run on BSDs.
  18. *
  19. * Root configuration file format (JSON):
  20. *
  21. * {
  22. * "name": Name of this root for documentation/UI purposes (string)
  23. * "port": UDP port (int)
  24. * "httpPort": Local HTTP port for basic stats (int)
  25. * "relayMaxHops": Max hops (up to 7)
  26. * "planetFile": Location of planet file for pre-2.x peers (string)
  27. * "statsRoot": If present, path to periodically save stats files (string)
  28. * "s_siblings": [
  29. * {
  30. * "name": Sibling name for UI/documentation purposes (string)
  31. * "id": Full public identity of subling (string)
  32. * "ip": IP address of sibling (string)
  33. * "port": port of subling (for ZeroTier UDP) (int)
  34. * }, ...
  35. * ]
  36. * }
  37. *
  38. * The only required field is port. If statsRoot is present then files
  39. * are periodically written there containing the root's current state.
  40. * It should be a memory filesystem like /dev/shm on Linux as these
  41. * files are large and rewritten frequently and do not need to be
  42. * persisted.
  43. *
  44. * s_siblings are other root servers that should receive packets to peers
  45. * that we can't find. This can occur due to e.g. network topology
  46. * hiccups, IP blockages, etc. s_siblings are used in the order in which
  47. * they appear with the first alive sibling being used.
  48. */
  49. #include "../node/Constants.hpp"
  50. #include <stdio.h>
  51. #include <stdlib.h>
  52. #include <unistd.h>
  53. #include <string.h>
  54. #include <fcntl.h>
  55. #include <signal.h>
  56. #include <errno.h>
  57. #include <sys/stat.h>
  58. #include <sys/types.h>
  59. #include <sys/socket.h>
  60. #include <sys/select.h>
  61. #include <sys/time.h>
  62. #include <sys/un.h>
  63. #include <sys/ioctl.h>
  64. #include <arpa/inet.h>
  65. #include <netinet/in.h>
  66. #include <netinet/ip.h>
  67. #include <netinet/ip6.h>
  68. #include <netinet/tcp.h>
  69. #include <netinet/udp.h>
  70. #include "../ext/json/json.hpp"
  71. #include "../ext/cpp-httplib/httplib.h"
  72. #include "../node/Packet.hpp"
  73. #include "../node/Utils.hpp"
  74. #include "../node/Address.hpp"
  75. #include "../node/Identity.hpp"
  76. #include "../node/InetAddress.hpp"
  77. #include "../node/Mutex.hpp"
  78. #include "../node/SharedPtr.hpp"
  79. #include "../node/MulticastGroup.hpp"
  80. #include "../node/CertificateOfMembership.hpp"
  81. #include "../node/Meter.hpp"
  82. #include "../osdep/OSUtils.hpp"
  83. #include "../osdep/BlockingQueue.hpp"
  84. #include <string>
  85. #include <thread>
  86. #include <map>
  87. #include <set>
  88. #include <vector>
  89. #include <iostream>
  90. #include <unordered_map>
  91. #include <unordered_set>
  92. #include <vector>
  93. #include <atomic>
  94. #include <mutex>
  95. #include <list>
  96. #include <sstream>
  97. #include <iomanip>
  98. #include "geoip-html.h"
  99. using namespace ZeroTier;
  100. using json = nlohmann::json;
  101. #ifdef MSG_DONTWAIT
  102. #define SENDTO_FLAGS MSG_DONTWAIT
  103. #define RECVFROM_FLAGS 0
  104. #else
  105. #define SENDTO_FLAGS 0
  106. #define RECVFROM_FLAGS 0
  107. #endif
  108. //////////////////////////////////////////////////////////////////////////////
  109. //////////////////////////////////////////////////////////////////////////////
  110. /**
  111. * RootPeer is a normal peer known to this root
  112. *
  113. * This struct must remain memcpy-able. Identity, InetAddress, and
  114. * AtomicCounter all satisfy this. Take care when adding fields that
  115. * this remains true.
  116. */
  117. struct RootPeer
  118. {
  119. ZT_ALWAYS_INLINE RootPeer() : v4s(-1),v6s(-1),lastSend(0),lastReceive(0),lastReceiveV4(0),lastReceiveV6(0),lastEcho(0),lastHello(0),vProto(-1),vMajor(-1),vMinor(-1),vRev(-1),identityValidated(false),identityInvalid(false) {}
  120. ZT_ALWAYS_INLINE ~RootPeer() { Utils::burn(key,sizeof(key)); }
  121. Identity id; // Identity
  122. uint8_t key[32]; // Shared secret key
  123. InetAddress ip4,ip6; // IPv4 and IPv6 addresses
  124. int v4s, v6s; // IPv4 and IPv6 sockets
  125. int64_t lastSend; // Time of last send (any packet)
  126. int64_t lastReceive; // Time of last receive (any packet)
  127. int64_t lastReceiveV4; // Time of last IPv4 receive
  128. int64_t lastReceiveV6; // Time of last IPv6 receive
  129. int64_t lastEcho; // Time of last received ECHO
  130. int64_t lastHello; // Time of last received HELLO
  131. int vProto; // Protocol version or -1 if unknown
  132. int vMajor,vMinor,vRev; // Peer version or -1,-1,-1 if unknown
  133. bool identityValidated; // Identity has been fully verified
  134. bool identityInvalid; // Identity validation failed, to be deleted
  135. AtomicCounter __refCount;
  136. };
  137. // Hashers for std::unordered_map
  138. struct IdentityHasher { ZT_ALWAYS_INLINE std::size_t operator()(const Identity &id) const { return (std::size_t)id.hashCode(); } };
  139. struct AddressHasher { ZT_ALWAYS_INLINE std::size_t operator()(const Address &a) const { return (std::size_t)a.toInt(); } };
  140. struct InetAddressHasher { ZT_ALWAYS_INLINE std::size_t operator()(const InetAddress &ip) const { return (std::size_t)ip.hashCode(); } };
  141. struct MulticastGroupHasher { ZT_ALWAYS_INLINE std::size_t operator()(const MulticastGroup &mg) const { return (std::size_t)mg.hashCode(); } };
  142. // An ordered tuple key representing an introduction of one peer to another
  143. struct RendezvousKey
  144. {
  145. RendezvousKey(const Address &aa,const Address &bb)
  146. {
  147. if (aa > bb) {
  148. a = aa;
  149. b = bb;
  150. } else {
  151. a = bb;
  152. b = aa;
  153. }
  154. }
  155. Address a,b;
  156. ZT_ALWAYS_INLINE bool operator==(const RendezvousKey &k) const { return ((a == k.a)&&(b == k.b)); }
  157. ZT_ALWAYS_INLINE bool operator!=(const RendezvousKey &k) const { return ((a != k.a)||(b != k.b)); }
  158. struct Hasher { ZT_ALWAYS_INLINE std::size_t operator()(const RendezvousKey &k) const { return (std::size_t)(k.a.toInt() ^ k.b.toInt()); } };
  159. };
  160. struct RendezvousStats
  161. {
  162. RendezvousStats() : count(0),ts(0) {}
  163. int64_t count;
  164. int64_t ts;
  165. };
  166. // These fields are not locked as they're only initialized on startup or are atomic
  167. static int64_t s_startTime; // Time service was started
  168. static std::vector<int> s_ports; // Ports to bind for UDP traffic
  169. static int s_relayMaxHops = 0; // Max relay hops
  170. static Identity s_self; // My identity (including secret)
  171. static std::atomic_bool s_run; // Remains true until shutdown is ordered
  172. static json s_config; // JSON config file contents
  173. static std::string s_statsRoot; // Root to write stats, peers, etc.
  174. static std::atomic_bool s_geoInit; // True if geoIP data is initialized
  175. static std::string s_googleMapsAPIKey; // Google maps API key for GeoIP /map feature
  176. // These are only modified during GeoIP database load (if enabled) and become static after s_geoInit is set to true.
  177. static std::map< std::pair< uint32_t,uint32_t >,std::pair< float,float > > s_geoIp4;
  178. static std::map< std::pair< std::array< uint64_t,2 >,std::array< uint64_t,2 > >,std::pair< float,float > > s_geoIp6;
  179. // Rate meters for statistical purposes (locks are internal to Meter)
  180. static Meter s_inputRate;
  181. static Meter s_outputRate;
  182. static Meter s_forwardRate;
  183. static Meter s_discardedForwardRate;
  184. // These fields are locked using mutexes below as they're modified during runtime
  185. static std::string s_planet;
  186. static std::vector< SharedPtr<RootPeer> > s_peers;
  187. static std::vector< SharedPtr<RootPeer> > s_peersToValidate;
  188. static std::unordered_map< uint64_t,std::unordered_map< MulticastGroup,std::unordered_map< Address,int64_t,AddressHasher >,MulticastGroupHasher > > s_multicastSubscriptions;
  189. static std::unordered_map< Address,SharedPtr<RootPeer>,AddressHasher > s_peersByVirtAddr;
  190. static std::unordered_map< RendezvousKey,RendezvousStats,RendezvousKey::Hasher > s_rendezvousTracking;
  191. static std::mutex s_planet_l;
  192. static std::mutex s_peers_l;
  193. static std::mutex s_peersToValidate_l;
  194. static std::mutex s_multicastSubscriptions_l;
  195. static std::mutex s_peersByVirtAddr_l;
  196. static std::mutex s_rendezvousTracking_l;
  197. //////////////////////////////////////////////////////////////////////////////
  198. //////////////////////////////////////////////////////////////////////////////
  199. // Construct GeoIP key for IPv4 IPs
  200. static ZT_ALWAYS_INLINE uint32_t ip4ToH32(const InetAddress &ip)
  201. {
  202. return Utils::ntoh((uint32_t)(((const struct sockaddr_in *)&ip)->sin_addr.s_addr));
  203. }
  204. // Construct GeoIP key for IPv6 IPs
  205. static ZT_ALWAYS_INLINE std::array< uint64_t,2 > ip6ToH128(const InetAddress &ip)
  206. {
  207. std::array<uint64_t,2> i128;
  208. memcpy(i128.data(),ip.rawIpData(),16);
  209. i128[0] = Utils::ntoh(i128[0]);
  210. i128[1] = Utils::ntoh(i128[1]);
  211. return i128;
  212. }
  213. static void handlePacket(const int sock,const InetAddress *const ip,Packet &pkt)
  214. {
  215. char ipstr[128],ipstr2[128],astr[32],astr2[32],tmpstr[256];
  216. const bool fragment = pkt[ZT_PACKET_FRAGMENT_IDX_FRAGMENT_INDICATOR] == ZT_PACKET_FRAGMENT_INDICATOR;
  217. const Address source(pkt.source());
  218. const Address dest(pkt.destination());
  219. const int64_t now = OSUtils::now();
  220. s_inputRate.log(now,pkt.size());
  221. if ((!fragment)&&(pkt.size() < ZT_PROTO_MIN_PACKET_LENGTH))
  222. return;
  223. if ((!fragment)&&(!pkt.fragmented())&&(dest == s_self.address())) {
  224. SharedPtr<RootPeer> peer;
  225. // If this is an un-encrypted HELLO, either learn a new peer or verify
  226. // that this is a peer we already know.
  227. if ((pkt.cipher() == ZT_PROTO_CIPHER_SUITE__POLY1305_NONE)&&(pkt.verb() == Packet::VERB_HELLO)) {
  228. Identity id;
  229. if (id.deserialize(pkt,ZT_PROTO_VERB_HELLO_IDX_IDENTITY)) {
  230. {
  231. std::lock_guard<std::mutex> p_l(s_peersByVirtAddr_l);
  232. auto p = s_peersByVirtAddr.find(source);
  233. if (p != s_peersByVirtAddr.end()) {
  234. peer = p->second;
  235. }
  236. }
  237. if (peer) {
  238. if (unlikely(peer->id != id)) {
  239. if (!peer->identityValidated) {
  240. peer->identityValidated = peer->id.locallyValidate();
  241. if (peer->identityValidated) {
  242. printf("%s HELLO rejected: identity address collision!" ZT_EOL_S,ip->toString(ipstr));
  243. // TODO: send error
  244. return;
  245. } else {
  246. printf("* invalid identity found and discarded: %s" ZT_EOL_S,id.toString(false, tmpstr));
  247. std::lock_guard<std::mutex> p_l(s_peersByVirtAddr_l);
  248. s_peersByVirtAddr.erase(source);
  249. peer.zero();
  250. }
  251. }
  252. }
  253. }
  254. if (!peer) {
  255. peer.set(new RootPeer);
  256. peer->identityValidated = false;
  257. if (!s_self.agree(id,peer->key)) {
  258. printf("%s HELLO rejected: key agreement failed" ZT_EOL_S,ip->toString(ipstr));
  259. return;
  260. }
  261. if (!pkt.dearmor(peer->key)) {
  262. printf("%s HELLO rejected: packet authentication failed" ZT_EOL_S,ip->toString(ipstr));
  263. return;
  264. }
  265. if (!pkt.uncompress()) {
  266. printf("%s HELLO rejected: decompression failed" ZT_EOL_S,ip->toString(ipstr));
  267. return;
  268. }
  269. peer->id = id;
  270. peer->lastReceive = now;
  271. {
  272. std::lock_guard<std::mutex> pbv_l(s_peersByVirtAddr_l);
  273. s_peersByVirtAddr[id.address()] = peer;
  274. }
  275. {
  276. std::lock_guard<std::mutex> pl(s_peers_l);
  277. s_peers.emplace_back(peer);
  278. }
  279. {
  280. std::lock_guard<std::mutex> pv(s_peersToValidate_l);
  281. s_peersToValidate.emplace_back(peer);
  282. }
  283. }
  284. }
  285. }
  286. if (!peer) {
  287. {
  288. std::lock_guard<std::mutex> pbv_l(s_peersByVirtAddr_l);
  289. auto p = s_peersByVirtAddr.find(source);
  290. if (p != s_peersByVirtAddr.end()) {
  291. peer = p->second;
  292. }
  293. }
  294. if (!pkt.dearmor(peer->key)) {
  295. printf("%s HELLO rejected: packet authentication failed" ZT_EOL_S,ip->toString(ipstr));
  296. return;
  297. }
  298. if (!pkt.uncompress()) {
  299. printf("%s packet rejected: decompression failed" ZT_EOL_S,ip->toString(ipstr));
  300. return;
  301. }
  302. }
  303. if (likely(peer)) {
  304. const int64_t now = OSUtils::now();
  305. if (ip->isV4()) {
  306. peer->ip4 = ip;
  307. peer->v4s = sock;
  308. peer->lastReceiveV4 = now;
  309. if ((now - peer->lastReceiveV6) > ZT_PEER_ACTIVITY_TIMEOUT)
  310. peer->v6s = -1;
  311. } else if (ip->isV6()) {
  312. peer->ip6 = ip;
  313. peer->v6s = sock;
  314. peer->lastReceiveV6 = now;
  315. if ((now - peer->lastReceiveV4) > ZT_PEER_ACTIVITY_TIMEOUT)
  316. peer->v4s = -1;
  317. }
  318. peer->lastReceive = now;
  319. switch(pkt.verb()) {
  320. case Packet::VERB_HELLO:
  321. try {
  322. if ((now - peer->lastHello) > 250) {
  323. peer->lastHello = now;
  324. peer->vProto = (int)pkt[ZT_PROTO_VERB_HELLO_IDX_PROTOCOL_VERSION];
  325. peer->vMajor = (int)pkt[ZT_PROTO_VERB_HELLO_IDX_MAJOR_VERSION];
  326. peer->vMinor = (int)pkt[ZT_PROTO_VERB_HELLO_IDX_MINOR_VERSION];
  327. peer->vRev = (int)pkt.template at<uint16_t>(ZT_PROTO_VERB_HELLO_IDX_REVISION);
  328. const uint64_t origId = pkt.packetId();
  329. const uint64_t ts = pkt.template at<uint64_t>(ZT_PROTO_VERB_HELLO_IDX_TIMESTAMP);
  330. pkt.reset(source,s_self.address(),Packet::VERB_OK);
  331. pkt.append((uint8_t)Packet::VERB_HELLO);
  332. pkt.append(origId);
  333. pkt.append(ts);
  334. pkt.append((uint8_t)ZT_PROTO_VERSION);
  335. pkt.append((uint8_t)0);
  336. pkt.append((uint8_t)0);
  337. pkt.append((uint16_t)0);
  338. ip->serialize(pkt);
  339. if (peer->vProto < 20) { // send planet file for pre-2.x peers
  340. std::lock_guard<std::mutex> pl(s_planet_l);
  341. if (s_planet.length() > 0) {
  342. pkt.append((uint16_t)s_planet.size());
  343. pkt.append((const uint8_t *)s_planet.data(),s_planet.size());
  344. }
  345. }
  346. pkt.armor(peer->key,true);
  347. sendto(sock,pkt.data(),pkt.size(),SENDTO_FLAGS,(const struct sockaddr *)ip,(socklen_t)((ip->ss_family == AF_INET) ? sizeof(struct sockaddr_in) : sizeof(struct sockaddr_in6)));
  348. s_outputRate.log(now,pkt.size());
  349. peer->lastSend = now;
  350. }
  351. } catch ( ... ) {
  352. printf("* unexpected exception handling HELLO from %s" ZT_EOL_S,ip->toString(ipstr));
  353. }
  354. break;
  355. case Packet::VERB_ECHO:
  356. try {
  357. if ((now - peer->lastEcho) > 500) {
  358. peer->lastEcho = now;
  359. Packet outp(source,s_self.address(),Packet::VERB_OK);
  360. outp.append((uint8_t)Packet::VERB_ECHO);
  361. outp.append(pkt.packetId());
  362. outp.append(((const uint8_t *)pkt.data()) + ZT_PACKET_IDX_PAYLOAD,pkt.size() - ZT_PACKET_IDX_PAYLOAD);
  363. outp.compress();
  364. outp.armor(peer->key,true);
  365. sendto(sock,outp.data(),outp.size(),SENDTO_FLAGS,(const struct sockaddr *)ip,(socklen_t)((ip->ss_family == AF_INET) ? sizeof(struct sockaddr_in) : sizeof(struct sockaddr_in6)));
  366. s_outputRate.log(now,outp.size());
  367. peer->lastSend = now;
  368. }
  369. } catch ( ... ) {
  370. printf("* unexpected exception handling ECHO from %s" ZT_EOL_S,ip->toString(ipstr));
  371. }
  372. case Packet::VERB_WHOIS:
  373. try {
  374. std::vector< SharedPtr<RootPeer> > results;
  375. results.reserve(4);
  376. {
  377. std::lock_guard<std::mutex> l(s_peersByVirtAddr_l);
  378. for(unsigned int ptr=ZT_PACKET_IDX_PAYLOAD;(ptr+ZT_ADDRESS_LENGTH)<=pkt.size();ptr+=ZT_ADDRESS_LENGTH) {
  379. auto p = s_peersByVirtAddr.find(Address(pkt.field(ptr,ZT_ADDRESS_LENGTH),ZT_ADDRESS_LENGTH));
  380. if (p != s_peersByVirtAddr.end()) {
  381. results.push_back(p->second);
  382. }
  383. }
  384. }
  385. if (!results.empty()) {
  386. const uint64_t origId = pkt.packetId();
  387. pkt.reset(source,s_self.address(),Packet::VERB_OK);
  388. pkt.append((uint8_t)Packet::VERB_WHOIS);
  389. pkt.append(origId);
  390. for(auto p=results.begin();p!=results.end();++p)
  391. (*p)->id.serialize(pkt,false);
  392. pkt.armor(peer->key,true);
  393. sendto(sock,pkt.data(),pkt.size(),SENDTO_FLAGS,(const struct sockaddr *)ip,(socklen_t)((ip->ss_family == AF_INET) ? sizeof(struct sockaddr_in) : sizeof(struct sockaddr_in6)));
  394. s_outputRate.log(now,pkt.size());
  395. peer->lastSend = now;
  396. }
  397. } catch ( ... ) {
  398. printf("* unexpected exception handling ECHO from %s" ZT_EOL_S,ip->toString(ipstr));
  399. }
  400. case Packet::VERB_MULTICAST_LIKE:
  401. try {
  402. std::lock_guard<std::mutex> l(s_multicastSubscriptions_l);
  403. for(unsigned int ptr=ZT_PACKET_IDX_PAYLOAD;(ptr+18)<=pkt.size();ptr+=18) {
  404. const uint64_t nwid = pkt.template at<uint64_t>(ptr);
  405. const MulticastGroup mg(MAC(pkt.field(ptr + 8,6),6),pkt.template at<uint32_t>(ptr + 14));
  406. s_multicastSubscriptions[nwid][mg][source] = now;
  407. }
  408. } catch ( ... ) {
  409. printf("* unexpected exception handling MULTICAST_LIKE from %s" ZT_EOL_S,ip->toString(ipstr));
  410. }
  411. break;
  412. case Packet::VERB_MULTICAST_GATHER:
  413. try {
  414. const uint64_t nwid = pkt.template at<uint64_t>(ZT_PROTO_VERB_MULTICAST_GATHER_IDX_NETWORK_ID);
  415. //const unsigned int flags = pkt[ZT_PROTO_VERB_MULTICAST_GATHER_IDX_FLAGS];
  416. const MulticastGroup mg(MAC(pkt.field(ZT_PROTO_VERB_MULTICAST_GATHER_IDX_MAC,6),6),pkt.template at<uint32_t>(ZT_PROTO_VERB_MULTICAST_GATHER_IDX_ADI));
  417. unsigned int gatherLimit = pkt.template at<uint32_t>(ZT_PROTO_VERB_MULTICAST_GATHER_IDX_GATHER_LIMIT);
  418. if (gatherLimit > 255)
  419. gatherLimit = 255;
  420. const uint64_t origId = pkt.packetId();
  421. pkt.reset(source,s_self.address(),Packet::VERB_OK);
  422. pkt.append((uint8_t)Packet::VERB_MULTICAST_GATHER);
  423. pkt.append(origId);
  424. pkt.append(nwid);
  425. mg.mac().appendTo(pkt);
  426. pkt.append((uint32_t)mg.adi());
  427. {
  428. std::lock_guard<std::mutex> l(s_multicastSubscriptions_l);
  429. auto forNet = s_multicastSubscriptions.find(nwid);
  430. if (forNet != s_multicastSubscriptions.end()) {
  431. auto forGroup = forNet->second.find(mg);
  432. if (forGroup != forNet->second.end()) {
  433. pkt.append((uint32_t)forGroup->second.size());
  434. const unsigned int countAt = pkt.size();
  435. pkt.addSize(2);
  436. unsigned int l = 0;
  437. for(auto g=forGroup->second.begin();((l<gatherLimit)&&(g!=forGroup->second.end()));++g) {
  438. if (g->first != source) {
  439. ++l;
  440. g->first.appendTo(pkt);
  441. }
  442. }
  443. if (l > 0) {
  444. pkt.setAt<uint16_t>(countAt,(uint16_t)l);
  445. pkt.armor(peer->key,true);
  446. sendto(sock,pkt.data(),pkt.size(),SENDTO_FLAGS,(const struct sockaddr *)ip,(socklen_t)(ip->isV4() ? sizeof(struct sockaddr_in) : sizeof(struct sockaddr_in6)));
  447. s_outputRate.log(now,pkt.size());
  448. peer->lastSend = now;
  449. }
  450. }
  451. }
  452. }
  453. } catch ( ... ) {
  454. printf("* unexpected exception handling MULTICAST_GATHER from %s" ZT_EOL_S,ip->toString(ipstr));
  455. }
  456. break;
  457. default:
  458. break;
  459. }
  460. return;
  461. }
  462. }
  463. // If we made it here, we are forwarding this packet to someone else and also possibly
  464. // sending a RENDEZVOUS message.
  465. int hops = 0;
  466. bool introduce = false;
  467. if (fragment) {
  468. if ((hops = (int)reinterpret_cast<Packet::Fragment *>(&pkt)->incrementHops()) > s_relayMaxHops) {
  469. //printf("%s refused to forward to %s: max hop count exceeded" ZT_EOL_S,ip->toString(ipstr),dest.toString(astr));
  470. s_discardedForwardRate.log(now,pkt.size());
  471. return;
  472. }
  473. } else {
  474. if ((hops = (int)pkt.incrementHops()) > s_relayMaxHops) {
  475. //printf("%s refused to forward to %s: max hop count exceeded" ZT_EOL_S,ip->toString(ipstr),dest.toString(astr));
  476. s_discardedForwardRate.log(now,pkt.size());
  477. return;
  478. }
  479. if (hops == 1) {
  480. RendezvousKey rk(source,dest);
  481. std::lock_guard<std::mutex> l(s_rendezvousTracking_l);
  482. RendezvousStats &lr = s_rendezvousTracking[rk];
  483. if ((now - lr.ts) >= 30000) {
  484. ++lr.count;
  485. lr.ts = now;
  486. introduce = true;
  487. }
  488. }
  489. }
  490. std::pair< InetAddress,SharedPtr<RootPeer> > forwardTo;
  491. {
  492. std::lock_guard<std::mutex> pbv_l(s_peersByVirtAddr_l);
  493. auto p = s_peersByVirtAddr.find(dest);
  494. if (p != s_peersByVirtAddr.end()) {
  495. if ((p->second->v4s >= 0)&&(p->second->v6s >= 0)) {
  496. if (p->second->lastReceiveV4 > p->second->lastReceiveV6) {
  497. forwardTo = std::pair< InetAddress,SharedPtr<RootPeer> >(p->second->ip4,p->second);
  498. } else {
  499. forwardTo = std::pair< InetAddress,SharedPtr<RootPeer> >(p->second->ip6,p->second);
  500. }
  501. } else if (p->second->v4s >= 0) {
  502. forwardTo = std::pair< InetAddress,SharedPtr<RootPeer> >(p->second->ip4,p->second);
  503. } else if (p->second->v6s >= 0) {
  504. forwardTo = std::pair< InetAddress,SharedPtr<RootPeer> >(p->second->ip6,p->second);
  505. }
  506. }
  507. }
  508. if (unlikely(!forwardTo.second)) {
  509. s_discardedForwardRate.log(now,pkt.size());
  510. return;
  511. }
  512. if (introduce) {
  513. std::lock_guard<std::mutex> l(s_peersByVirtAddr_l);
  514. auto sp = s_peersByVirtAddr.find(source);
  515. if ((sp->second->v6s >= 0)&&(forwardTo.second->v6s >= 0)) {
  516. Packet outp(source,s_self.address(),Packet::VERB_RENDEZVOUS);
  517. outp.append((uint8_t)0);
  518. dest.appendTo(outp);
  519. outp.append((uint16_t)sp->second->ip6.port());
  520. outp.append((uint8_t)16);
  521. outp.append((const uint8_t *)(sp->second->ip6.rawIpData()),16);
  522. outp.armor(forwardTo.second->key,true);
  523. sendto(forwardTo.second->v6s,outp.data(),outp.size(),SENDTO_FLAGS,(const struct sockaddr *)&forwardTo.first,(socklen_t)sizeof(struct sockaddr_in6));
  524. s_outputRate.log(now,outp.size());
  525. forwardTo.second->lastSend = now;
  526. outp.reset(dest,s_self.address(),Packet::VERB_RENDEZVOUS);
  527. outp.append((uint8_t)0);
  528. source.appendTo(outp);
  529. outp.append((uint16_t)forwardTo.first.port());
  530. outp.append((uint8_t)16);
  531. outp.append((const uint8_t *)(forwardTo.first.rawIpData()),16);
  532. outp.armor(sp->second->key,true);
  533. sendto(sp->second->v6s,outp.data(),outp.size(),SENDTO_FLAGS,(const struct sockaddr *)&(sp->second->ip6),(socklen_t)sizeof(struct sockaddr_in6));
  534. s_outputRate.log(now,outp.size());
  535. sp->second->lastSend = now;
  536. }
  537. if ((sp->second->v4s >= 0)&&(forwardTo.second->v4s >= 0)) {
  538. Packet outp(source,s_self.address(),Packet::VERB_RENDEZVOUS);
  539. outp.append((uint8_t)0);
  540. dest.appendTo(outp);
  541. outp.append((uint16_t)sp->second->ip4.port());
  542. outp.append((uint8_t)4);
  543. outp.append((const uint8_t *)sp->second->ip4.rawIpData(),4);
  544. outp.armor(forwardTo.second->key,true);
  545. sendto(forwardTo.second->v4s,outp.data(),outp.size(),SENDTO_FLAGS,(const struct sockaddr *)&forwardTo.first,(socklen_t)sizeof(struct sockaddr_in));
  546. s_outputRate.log(now,outp.size());
  547. forwardTo.second->lastSend = now;
  548. outp.reset(dest,s_self.address(),Packet::VERB_RENDEZVOUS);
  549. outp.append((uint8_t)0);
  550. source.appendTo(outp);
  551. outp.append((uint16_t)forwardTo.first.port());
  552. outp.append((uint8_t)4);
  553. outp.append((const uint8_t *)(forwardTo.first.rawIpData()),4);
  554. outp.armor(sp->second->key,true);
  555. sendto(sp->second->v6s,outp.data(),outp.size(),SENDTO_FLAGS,(const struct sockaddr *)&(sp->second->ip4),(socklen_t)sizeof(struct sockaddr_in));
  556. s_outputRate.log(now,outp.size());
  557. sp->second->lastSend = now;
  558. }
  559. }
  560. if (sendto(forwardTo.first.isV4() ? forwardTo.second->v4s : forwardTo.second->v6s,pkt.data(),pkt.size(),SENDTO_FLAGS,(const struct sockaddr *)&forwardTo.first,(socklen_t)(forwardTo.first.isV4() ? sizeof(struct sockaddr_in) : sizeof(struct sockaddr_in6))) > 0) {
  561. s_outputRate.log(now,pkt.size());
  562. s_forwardRate.log(now,pkt.size());
  563. forwardTo.second->lastSend = now;
  564. }
  565. }
  566. //////////////////////////////////////////////////////////////////////////////
  567. //////////////////////////////////////////////////////////////////////////////
  568. static int bindSocket(struct sockaddr *const bindAddr)
  569. {
  570. const int s = socket(bindAddr->sa_family,SOCK_DGRAM,0);
  571. if (s < 0) {
  572. close(s);
  573. return -1;
  574. }
  575. int f = 16777216;
  576. while (f > 65536) {
  577. if (setsockopt(s,SOL_SOCKET,SO_RCVBUF,(const char *)&f,sizeof(f)) == 0)
  578. break;
  579. f -= 65536;
  580. }
  581. f = 16777216;
  582. while (f > 65536) {
  583. if (setsockopt(s,SOL_SOCKET,SO_SNDBUF,(const char *)&f,sizeof(f)) == 0)
  584. break;
  585. f -= 65536;
  586. }
  587. if (bindAddr->sa_family == AF_INET6) {
  588. f = 1; setsockopt(s,IPPROTO_IPV6,IPV6_V6ONLY,(void *)&f,sizeof(f));
  589. #ifdef IPV6_MTU_DISCOVER
  590. f = 0; setsockopt(s,IPPROTO_IPV6,IPV6_MTU_DISCOVER,&f,sizeof(f));
  591. #endif
  592. #ifdef IPV6_DONTFRAG
  593. f = 0; setsockopt(s,IPPROTO_IPV6,IPV6_DONTFRAG,&f,sizeof(f));
  594. #endif
  595. }
  596. #ifdef IP_DONTFRAG
  597. f = 0; setsockopt(s,IPPROTO_IP,IP_DONTFRAG,&f,sizeof(f));
  598. #endif
  599. #ifdef IP_MTU_DISCOVER
  600. f = IP_PMTUDISC_DONT; setsockopt(s,IPPROTO_IP,IP_MTU_DISCOVER,&f,sizeof(f));
  601. #endif
  602. /*
  603. #ifdef SO_NO_CHECK
  604. if (bindAddr->sa_family == AF_INET) {
  605. f = 1; setsockopt(s,SOL_SOCKET,SO_NO_CHECK,(void *)&f,sizeof(f));
  606. }
  607. #endif
  608. */
  609. #ifdef SO_REUSEPORT
  610. f = 1; setsockopt(s,SOL_SOCKET,SO_REUSEPORT,(void *)&f,sizeof(f));
  611. #endif
  612. #ifndef __LINUX__ // linux wants just SO_REUSEPORT
  613. f = 1; setsockopt(s,SOL_SOCKET,SO_REUSEADDR,(void *)&f,sizeof(f));
  614. #endif
  615. #ifdef __LINUX__
  616. struct timeval tv;
  617. tv.tv_sec = 1;
  618. tv.tv_usec = 0;
  619. setsockopt(s,SOL_SOCKET,SO_RCVTIMEO,(const void *)&tv,sizeof(tv));
  620. #endif
  621. if (bind(s,bindAddr,(bindAddr->sa_family == AF_INET) ? sizeof(struct sockaddr_in) : sizeof(struct sockaddr_in6))) {
  622. close(s);
  623. //printf("%s\n",strerror(errno));
  624. return -1;
  625. }
  626. return s;
  627. }
  628. static void shutdownSigHandler(int sig)
  629. {
  630. s_run = false;
  631. }
  632. int main(int argc,char **argv)
  633. {
  634. std::vector<std::thread> threads;
  635. std::vector<int> sockets;
  636. int v4Sock = -1,v6Sock = -1;
  637. signal(SIGTERM,shutdownSigHandler);
  638. signal(SIGINT,shutdownSigHandler);
  639. signal(SIGQUIT,shutdownSigHandler);
  640. signal(SIGPIPE,SIG_IGN);
  641. signal(SIGUSR1,SIG_IGN);
  642. signal(SIGUSR2,SIG_IGN);
  643. signal(SIGCHLD,SIG_IGN);
  644. s_startTime = OSUtils::now();
  645. s_geoInit = false;
  646. if (argc < 3) {
  647. printf("Usage: zerotier-root <identity.secret> <config path>" ZT_EOL_S);
  648. return 1;
  649. }
  650. {
  651. std::string myIdStr;
  652. if (!OSUtils::readFile(argv[1],myIdStr)) {
  653. printf("FATAL: cannot read identity.secret at %s" ZT_EOL_S,argv[1]);
  654. return 1;
  655. }
  656. if (!s_self.fromString(myIdStr.c_str())) {
  657. printf("FATAL: cannot read identity.secret at %s (invalid identity)" ZT_EOL_S,argv[1]);
  658. return 1;
  659. }
  660. if (!s_self.hasPrivate()) {
  661. printf("FATAL: cannot read identity.secret at %s (missing secret key)" ZT_EOL_S,argv[1]);
  662. return 1;
  663. }
  664. }
  665. {
  666. std::string configStr;
  667. if (!OSUtils::readFile(argv[2],configStr)) {
  668. printf("FATAL: cannot read config file at %s" ZT_EOL_S,argv[2]);
  669. return 1;
  670. }
  671. try {
  672. s_config = json::parse(configStr);
  673. } catch (std::exception &exc) {
  674. printf("FATAL: config file at %s invalid: %s" ZT_EOL_S,argv[2],exc.what());
  675. return 1;
  676. } catch ( ... ) {
  677. printf("FATAL: config file at %s invalid: unknown exception" ZT_EOL_S,argv[2]);
  678. return 1;
  679. }
  680. if (!s_config.is_object()) {
  681. printf("FATAL: config file at %s invalid: does not contain a JSON object" ZT_EOL_S,argv[2]);
  682. return 1;
  683. }
  684. }
  685. try {
  686. auto jport = s_config["port"];
  687. if (jport.is_array()) {
  688. for(long i=0;i<(long)jport.size();++i) {
  689. int port = jport[i];
  690. if ((port <= 0)||(port > 65535)) {
  691. printf("FATAL: invalid port in config file %d" ZT_EOL_S,port);
  692. return 1;
  693. }
  694. s_ports.push_back(port);
  695. }
  696. } else {
  697. int port = jport;
  698. if ((port <= 0)||(port > 65535)) {
  699. printf("FATAL: invalid port in config file %d" ZT_EOL_S,port);
  700. return 1;
  701. }
  702. s_ports.push_back(port);
  703. }
  704. } catch ( ... ) {}
  705. if (s_ports.empty())
  706. s_ports.push_back(ZT_DEFAULT_PORT);
  707. std::sort(s_ports.begin(),s_ports.end());
  708. int httpPort = ZT_DEFAULT_PORT;
  709. try {
  710. httpPort = s_config["httpPort"];
  711. if ((httpPort <= 0)||(httpPort > 65535)) {
  712. printf("FATAL: invalid HTTP port in config file %d" ZT_EOL_S,httpPort);
  713. return 1;
  714. }
  715. } catch ( ... ) {
  716. httpPort = ZT_DEFAULT_PORT;
  717. }
  718. std::string planetFilePath;
  719. try {
  720. planetFilePath = s_config["planetFile"];
  721. } catch ( ... ) {
  722. planetFilePath = "";
  723. }
  724. try {
  725. s_statsRoot = s_config["statsRoot"];
  726. while ((s_statsRoot.length() > 0)&&(s_statsRoot[s_statsRoot.length()-1] == ZT_PATH_SEPARATOR))
  727. s_statsRoot = s_statsRoot.substr(0,s_statsRoot.length()-1);
  728. if (s_statsRoot.length() > 0)
  729. OSUtils::mkdir(s_statsRoot);
  730. } catch ( ... ) {
  731. s_statsRoot = "";
  732. }
  733. s_relayMaxHops = ZT_RELAY_MAX_HOPS;
  734. try {
  735. s_relayMaxHops = s_config["relayMaxHops"];
  736. if (s_relayMaxHops > ZT_PROTO_MAX_HOPS)
  737. s_relayMaxHops = ZT_PROTO_MAX_HOPS;
  738. else if (s_relayMaxHops < 0)
  739. s_relayMaxHops = 0;
  740. } catch ( ... ) {
  741. s_relayMaxHops = ZT_RELAY_MAX_HOPS;
  742. }
  743. try {
  744. s_googleMapsAPIKey = s_config["googleMapsAPIKey"];
  745. std::string geoIpPath = s_config["geoIp"];
  746. if (geoIpPath.length() > 0) {
  747. FILE *gf = fopen(geoIpPath.c_str(),"rb");
  748. if (gf) {
  749. threads.emplace_back(std::thread([gf]() {
  750. try {
  751. char line[1024];
  752. line[1023] = 0;
  753. while (fgets(line,sizeof(line)-1,gf)) {
  754. InetAddress start,end;
  755. float lat = 0.0F,lon = 0.0F;
  756. int field = 0;
  757. for(char *saveptr=nullptr,*f=Utils::stok(line,",\r\n",&saveptr);(f);f=Utils::stok(nullptr,",\r\n",&saveptr)) {
  758. switch(field++) {
  759. case 0:
  760. start.fromString(f);
  761. break;
  762. case 1:
  763. end.fromString(f);
  764. break;
  765. case 2:
  766. lat = strtof(f,nullptr);
  767. break;
  768. case 3:
  769. lon = strtof(f,nullptr);
  770. break;
  771. }
  772. }
  773. if ((start)&&(end)&&(start.ss_family == end.ss_family)&&(lat >= -90.0F)&&(lat <= 90.0F)&&(lon >= -180.0F)&&(lon <= 180.0F)) {
  774. if (start.ss_family == AF_INET) {
  775. s_geoIp4[std::pair< uint32_t,uint32_t >(ip4ToH32(start),ip4ToH32(end))] = std::pair< float,float >(lat,lon);
  776. } else if (start.ss_family == AF_INET6) {
  777. s_geoIp6[std::pair< std::array< uint64_t,2 >,std::array< uint64_t,2 > >(ip6ToH128(start),ip6ToH128(end))] = std::pair< float,float >(lat,lon);
  778. }
  779. }
  780. }
  781. s_geoInit = true;
  782. } catch ( ... ) {}
  783. fclose(gf);
  784. }));
  785. }
  786. }
  787. } catch ( ... ) {}
  788. unsigned int ncores = std::thread::hardware_concurrency();
  789. if (ncores == 0) ncores = 1;
  790. s_run = true;
  791. threads.push_back(std::thread([]() {
  792. while (s_run) {
  793. std::vector< SharedPtr<RootPeer> > toValidate;
  794. {
  795. std::lock_guard<std::mutex> l(s_peersToValidate_l);
  796. toValidate.swap(s_peersToValidate);
  797. }
  798. for(auto p=toValidate.begin();p!=toValidate.end();++p) {
  799. if (!(*p)->identityValidated)
  800. (*p)->identityInvalid = !(*p)->id.locallyValidate();
  801. }
  802. }
  803. }));
  804. for(auto port=s_ports.begin();port!=s_ports.end();++port) {
  805. for(unsigned int tn=0;tn<ncores;++tn) {
  806. struct sockaddr_in6 in6;
  807. memset(&in6,0,sizeof(in6));
  808. in6.sin6_family = AF_INET6;
  809. in6.sin6_port = htons((uint16_t)*port);
  810. const int s6 = bindSocket((struct sockaddr *)&in6);
  811. if (s6 < 0) {
  812. std::cout << "ERROR: unable to bind to port " << *port << ZT_EOL_S;
  813. exit(1);
  814. }
  815. struct sockaddr_in in4;
  816. memset(&in4,0,sizeof(in4));
  817. in4.sin_family = AF_INET;
  818. in4.sin_port = htons((uint16_t)*port);
  819. const int s4 = bindSocket((struct sockaddr *)&in4);
  820. if (s4 < 0) {
  821. std::cout << "ERROR: unable to bind to port " << *port << ZT_EOL_S;
  822. exit(1);
  823. }
  824. sockets.push_back(s6);
  825. sockets.push_back(s4);
  826. if (v4Sock < 0) v4Sock = s4;
  827. if (v6Sock < 0) v6Sock = s6;
  828. threads.push_back(std::thread([s6,s4]() {
  829. struct sockaddr_in6 in6;
  830. Packet *pkt = new Packet();
  831. for(;;) {
  832. memset(&in6,0,sizeof(in6));
  833. socklen_t sl = sizeof(in6);
  834. const int pl = (int)recvfrom(s6,pkt->unsafeData(),pkt->capacity(),RECVFROM_FLAGS,(struct sockaddr *)&in6,&sl);
  835. if (pl > 0) {
  836. if ((pl >= ZT_PROTO_MIN_FRAGMENT_LENGTH)&&(pl <= ZT_PROTO_MAX_PACKET_LENGTH)) {
  837. try {
  838. pkt->setSize((unsigned int)pl);
  839. handlePacket(s6,reinterpret_cast<const InetAddress *>(&in6),*pkt);
  840. } catch (std::exception &exc) {
  841. char ipstr[128];
  842. printf("WARNING: unexpected exception handling packet from %s: %s" ZT_EOL_S,reinterpret_cast<const InetAddress *>(&in6)->toString(ipstr),exc.what());
  843. } catch (int exc) {
  844. char ipstr[128];
  845. printf("WARNING: unexpected exception handling packet from %s: ZT exception code %d" ZT_EOL_S,reinterpret_cast<const InetAddress *>(&in6)->toString(ipstr),exc);
  846. } catch ( ... ) {
  847. char ipstr[128];
  848. printf("WARNING: unexpected exception handling packet from %s: unknown exception" ZT_EOL_S,reinterpret_cast<const InetAddress *>(&in6)->toString(ipstr));
  849. }
  850. }
  851. } else if (!s_run) {
  852. break;
  853. }
  854. }
  855. delete pkt;
  856. }));
  857. threads.push_back(std::thread([s6,s4]() {
  858. struct sockaddr_in in4;
  859. Packet *pkt = new Packet();
  860. for(;;) {
  861. memset(&in4,0,sizeof(in4));
  862. socklen_t sl = sizeof(in4);
  863. const int pl = (int)recvfrom(s4,pkt->unsafeData(),pkt->capacity(),RECVFROM_FLAGS,(struct sockaddr *)&in4,&sl);
  864. if (pl > 0) {
  865. if ((pl >= ZT_PROTO_MIN_FRAGMENT_LENGTH)&&(pl <= ZT_PROTO_MAX_PACKET_LENGTH)) {
  866. try {
  867. pkt->setSize((unsigned int)pl);
  868. handlePacket(s4,reinterpret_cast<const InetAddress *>(&in4),*pkt);
  869. } catch (std::exception &exc) {
  870. char ipstr[128];
  871. printf("WARNING: unexpected exception handling packet from %s: %s" ZT_EOL_S,reinterpret_cast<const InetAddress *>(&in4)->toString(ipstr),exc.what());
  872. } catch (int exc) {
  873. char ipstr[128];
  874. printf("WARNING: unexpected exception handling packet from %s: ZT exception code %d" ZT_EOL_S,reinterpret_cast<const InetAddress *>(&in4)->toString(ipstr),exc);
  875. } catch ( ... ) {
  876. char ipstr[128];
  877. printf("WARNING: unexpected exception handling packet from %s: unknown exception" ZT_EOL_S,reinterpret_cast<const InetAddress *>(&in4)->toString(ipstr));
  878. }
  879. }
  880. } else if (!s_run) {
  881. break;
  882. }
  883. }
  884. delete pkt;
  885. }));
  886. }
  887. }
  888. // A minimal read-only local API for monitoring and status queries
  889. httplib::Server apiServ;
  890. threads.push_back(std::thread([&apiServ,httpPort]() {
  891. // Human readable status page
  892. apiServ.Get("/",[](const httplib::Request &req,httplib::Response &res) {
  893. std::ostringstream o;
  894. o << "ZeroTier Root Server " << ZEROTIER_ONE_VERSION_MAJOR << '.' << ZEROTIER_ONE_VERSION_MINOR << '.' << ZEROTIER_ONE_VERSION_REVISION << ZT_EOL_S;
  895. o << "(c)2019 ZeroTier, Inc." ZT_EOL_S "Licensed under the ZeroTier BSL 1.1" ZT_EOL_S ZT_EOL_S;
  896. s_peersByVirtAddr_l.lock();
  897. o << "Peers Online: " << s_peersByVirtAddr.size() << ZT_EOL_S;
  898. s_peersByVirtAddr_l.unlock();
  899. res.set_content(o.str(),"text/plain");
  900. });
  901. apiServ.Get("/metrics",[](const httplib::Request &req, httplib::Response &res) {
  902. std::ostringstream o;
  903. int64_t now = OSUtils::now();
  904. char buf[11];
  905. const char *root_id = s_self.address().toString(buf);
  906. o << "# HELP root_peers_online Number of active peers online" << ZT_EOL_S;
  907. o << "# TYPE root_peers_online gauge" << ZT_EOL_S;
  908. s_peersByVirtAddr_l.lock();
  909. o << "root_peers_online{root_id=\"" << root_id << "\"} " << s_peersByVirtAddr.size() << ZT_EOL_S;
  910. s_peersByVirtAddr_l.unlock();
  911. o << "# HELP root_input_rate Input rate MiB/s" << ZT_EOL_S;
  912. o << "# TYPE root_input_rate gauge" << ZT_EOL_S;
  913. o << "root_input_rate{root_id=\"" << root_id << "\"} " << std::setprecision(5) << (s_inputRate.perSecond(now)/1048576.0) << ZT_EOL_S;
  914. o << "# HELP root_output_rate Output rate MiB/s" << ZT_EOL_S;
  915. o << "# TYPE root_output_rate gauge" << ZT_EOL_S;
  916. o << "root_output_rate{root_id=\"" << root_id << "\"} " << std::setprecision(5) << (s_outputRate.perSecond(now)/1048576.0) << ZT_EOL_S;
  917. o << "# HELP root_forwarded_rate Forwarded packet rate MiB/s" << ZT_EOL_S;
  918. o << "# TYPE root_forwarded_rate gauge" << ZT_EOL_S;
  919. o << "root_forwarded_rate{root_id=\"" << root_id << "\"} " << std::setprecision(5) << (s_forwardRate.perSecond(now)/1048576.0) << ZT_EOL_S;
  920. o << "# HELP root_discarded_rate Discarded forwards MiB/s" << ZT_EOL_S;
  921. o << "# TYPE root_discarded_rate gauge" << ZT_EOL_S;
  922. o << "root_discarded_rate{root_id=\"" << root_id << "\"} " << std::setprecision(5) << (s_discardedForwardRate.perSecond(now)/1048576.0) << ZT_EOL_S;
  923. res.set_content(o.str(), "text/plain");
  924. });
  925. // Peer list for compatibility with software that monitors regular nodes
  926. apiServ.Get("/peer",[](const httplib::Request &req,httplib::Response &res) {
  927. char tmp[256];
  928. std::ostringstream o;
  929. o << '[';
  930. try {
  931. bool first = true;
  932. std::lock_guard<std::mutex> l(s_peers_l);
  933. for(auto p=s_peers.begin();p!=s_peers.end();++p) {
  934. if (likely(!(*p)->identityInvalid)) {
  935. if (first)
  936. first = false;
  937. else o << ',';
  938. o <<
  939. "{\"address\":\"" << (*p)->id.address().toString(tmp) << "\""
  940. ",\"latency\":-1"
  941. ",\"paths\":[";
  942. if ((*p)->v4s >= 0) {
  943. o <<
  944. "{\"active\":true"
  945. ",\"address\":\"" << (*p)->ip4.toIpString(tmp) << "\\/" << (*p)->ip4.port() << "\""
  946. ",\"expired\":false"
  947. ",\"lastReceive\":" << (*p)->lastReceive <<
  948. ",\"lastSend\":" << (*p)->lastSend <<
  949. ",\"preferred\":true"
  950. ",\"trustedPathId\":0}";
  951. }
  952. if ((*p)->v6s >= 0) {
  953. if ((*p)->v4s >= 0)
  954. o << ',';
  955. o <<
  956. "{\"active\":true"
  957. ",\"address\":\"" << (*p)->ip6.toIpString(tmp) << "\\/" << (*p)->ip6.port() << "\""
  958. ",\"expired\":false"
  959. ",\"lastReceive\":" << (*p)->lastReceive <<
  960. ",\"lastSend\":" << (*p)->lastSend <<
  961. ",\"preferred\":" << (((*p)->ip4) ? "false" : "true") <<
  962. ",\"trustedPathId\":0}";
  963. }
  964. o << "]"
  965. ",\"role\":\"LEAF\""
  966. ",\"version\":\"" << (*p)->vMajor << '.' << (*p)->vMinor << '.' << (*p)->vRev << "\""
  967. ",\"versionMajor\":" << (*p)->vMajor <<
  968. ",\"versionMinor\":" << (*p)->vMinor <<
  969. ",\"versionRev\":" << (*p)->vRev << "}";
  970. }
  971. }
  972. } catch ( ... ) {}
  973. o << ']';
  974. res.set_content(o.str(),"application/json");
  975. });
  976. // GeoIP map if enabled
  977. apiServ.Get("/map",[](const httplib::Request &req,httplib::Response &res) {
  978. char tmp[4096];
  979. if (!s_geoInit) {
  980. res.set_content("Not enabled or GeoIP CSV file not finished reading.","text/plain");
  981. return;
  982. }
  983. std::ostringstream o;
  984. o << ZT_GEOIP_HTML_HEAD;
  985. try {
  986. bool firstCoord = true;
  987. std::pair< uint32_t,uint32_t > k4(0,0xffffffff);
  988. std::pair< std::array< uint64_t,2 >,std::array< uint64_t,2 > > k6;
  989. k6.second[0] = 0xffffffffffffffffULL; k6.second[1] = 0xffffffffffffffffULL;
  990. std::unordered_map< InetAddress,std::set<Address>,InetAddressHasher > ips;
  991. {
  992. std::lock_guard<std::mutex> l(s_peers_l);
  993. for(auto p=s_peers.begin();p!=s_peers.end();++p) {
  994. if (likely(!(*p)->identityInvalid)) {
  995. if ((*p)->v4s >= 0)
  996. ips[(*p)->ip4].insert((*p)->id.address());
  997. if ((*p)->v6s >= 0)
  998. ips[(*p)->ip6].insert((*p)->id.address());
  999. }
  1000. }
  1001. }
  1002. for(auto p=ips.begin();p!=ips.end();++p) {
  1003. if (p->first.isV4()) {
  1004. k4.first = ip4ToH32(p->first);
  1005. auto geo = std::map< std::pair< uint32_t,uint32_t >,std::pair< float,float > >::reverse_iterator(s_geoIp4.upper_bound(k4));
  1006. uint32_t bestRangeSize = 0xffffffff;
  1007. std::pair< float,float > bestRangeLatLon;
  1008. while (geo != s_geoIp4.rend()) {
  1009. if ((geo->first.first <= k4.first)&&(geo->first.second >= k4.first)) {
  1010. uint32_t range = geo->first.second - geo->first.first;
  1011. if (range <= bestRangeSize) {
  1012. bestRangeSize = range;
  1013. bestRangeLatLon = geo->second;
  1014. }
  1015. } else if ((geo->first.first < k4.first)&&(geo->first.second < k4.first)) {
  1016. break;
  1017. }
  1018. ++geo;
  1019. }
  1020. if (bestRangeSize != 0xffffffff) {
  1021. if (!firstCoord)
  1022. o << ',';
  1023. firstCoord = false;
  1024. o << "{lat:" << bestRangeLatLon.first << ",lng:" << bestRangeLatLon.second << ",_l:\"";
  1025. bool firstAddr = true;
  1026. for(auto a=p->second.begin();a!=p->second.end();++a) {
  1027. if (!firstAddr)
  1028. o << ',';
  1029. o << a->toString(tmp);
  1030. firstAddr = false;
  1031. }
  1032. o << "\"}";
  1033. }
  1034. } else if (p->first.isV6()) {
  1035. k6.first = ip6ToH128(p->first);
  1036. auto geo = std::map< std::pair< std::array< uint64_t,2 >,std::array< uint64_t,2 > >,std::pair< float,float > >::reverse_iterator(s_geoIp6.upper_bound(k6));
  1037. while (geo != s_geoIp6.rend()) {
  1038. if ((geo->first.first <= k6.first)&&(geo->first.second >= k6.first)) {
  1039. if (!firstCoord)
  1040. o << ',';
  1041. firstCoord = false;
  1042. o << "{lat:" << geo->second.first << ",lng:" << geo->second.second << ",_l:\"";
  1043. bool firstAddr = true;
  1044. for(auto a=p->second.begin();a!=p->second.end();++a) {
  1045. if (!firstAddr)
  1046. o << ',';
  1047. o << a->toString(tmp);
  1048. firstAddr = false;
  1049. }
  1050. o << "\"}";
  1051. break;
  1052. } else if ((geo->first.first < k6.first)&&(geo->first.second < k6.first)) {
  1053. break;
  1054. }
  1055. ++geo;
  1056. }
  1057. }
  1058. }
  1059. } catch ( ... ) {
  1060. res.set_content("Internal error: unexpected exception resolving GeoIP locations","text/plain");
  1061. return;
  1062. }
  1063. OSUtils::ztsnprintf(tmp,sizeof(tmp),ZT_GEOIP_HTML_TAIL,s_googleMapsAPIKey.c_str());
  1064. o << tmp;
  1065. res.set_content(o.str(),"text/html");
  1066. });
  1067. apiServ.listen("127.0.0.1",httpPort,0);
  1068. }));
  1069. // In the main thread periodically clean stuff up
  1070. int64_t lastCleaned = 0;
  1071. int64_t lastWroteStats = 0;
  1072. while (s_run) {
  1073. sleep(1);
  1074. const int64_t now = OSUtils::now();
  1075. if ((now - lastCleaned) > 300000) {
  1076. lastCleaned = now;
  1077. // Old multicast subscription cleanup
  1078. {
  1079. std::lock_guard<std::mutex> l(s_multicastSubscriptions_l);
  1080. for(auto a=s_multicastSubscriptions.begin();a!=s_multicastSubscriptions.end();) {
  1081. for(auto b=a->second.begin();b!=a->second.end();) {
  1082. for(auto c=b->second.begin();c!=b->second.end();) {
  1083. if ((now - c->second) > ZT_MULTICAST_LIKE_EXPIRE)
  1084. b->second.erase(c++);
  1085. else ++c;
  1086. }
  1087. if (b->second.empty())
  1088. a->second.erase(b++);
  1089. else ++b;
  1090. }
  1091. if (a->second.empty())
  1092. s_multicastSubscriptions.erase(a++);
  1093. else ++a;
  1094. }
  1095. }
  1096. // Remove expired or otherwise invalid peers
  1097. try {
  1098. std::vector< SharedPtr<RootPeer> > toRemove;
  1099. toRemove.reserve(1024);
  1100. {
  1101. std::lock_guard<std::mutex> pbi_l(s_peers_l);
  1102. std::vector< SharedPtr<RootPeer> > newPeers;
  1103. newPeers.reserve(s_peers.size());
  1104. for(auto p=s_peers.begin();p!=s_peers.end();++p) {
  1105. if (((now - (*p)->lastReceive) > ZT_PEER_ACTIVITY_TIMEOUT)||((*p)->identityInvalid)) {
  1106. toRemove.emplace_back();
  1107. p->swap(toRemove.back());
  1108. } else {
  1109. newPeers.emplace_back();
  1110. p->swap(newPeers.back());
  1111. }
  1112. }
  1113. newPeers.swap(s_peers);
  1114. }
  1115. for(auto p=toRemove.begin();p!=toRemove.end();++p) {
  1116. {
  1117. std::lock_guard<std::mutex> pbv_l(s_peersByVirtAddr_l);
  1118. auto pbv = s_peersByVirtAddr.find((*p)->id.address());
  1119. if ((pbv != s_peersByVirtAddr.end())&&(pbv->second == *p)) {
  1120. s_peersByVirtAddr.erase(pbv);
  1121. }
  1122. }
  1123. }
  1124. } catch ( ... ) {}
  1125. // Remove old rendezvous entries
  1126. {
  1127. std::lock_guard<std::mutex> l(s_rendezvousTracking_l);
  1128. for(auto lr=s_rendezvousTracking.begin();lr!=s_rendezvousTracking.end();) {
  1129. if ((now - lr->second.ts) > ZT_PEER_ACTIVITY_TIMEOUT)
  1130. s_rendezvousTracking.erase(lr++);
  1131. else ++lr;
  1132. }
  1133. }
  1134. }
  1135. // Write stats if configured to do so, and periodically refresh planet file (if any)
  1136. if (((now - lastWroteStats) > 15000)&&(s_statsRoot.length() > 0)) {
  1137. lastWroteStats = now;
  1138. try {
  1139. if (planetFilePath.length() > 0) {
  1140. std::string planetData;
  1141. if ((OSUtils::readFile(planetFilePath.c_str(),planetData))&&(planetData.length() > 0)) {
  1142. std::lock_guard<std::mutex> pl(s_planet_l);
  1143. s_planet = planetData;
  1144. }
  1145. }
  1146. } catch ( ... ) {
  1147. std::lock_guard<std::mutex> pl(s_planet_l);
  1148. s_planet.clear();
  1149. }
  1150. std::string peersFilePath(s_statsRoot);
  1151. peersFilePath.append("/.peers.tmp");
  1152. FILE *pf = fopen(peersFilePath.c_str(),"wb");
  1153. if (pf) {
  1154. std::vector< SharedPtr<RootPeer> > sp;
  1155. {
  1156. std::lock_guard<std::mutex> pbi_l(s_peers_l);
  1157. sp.reserve(s_peers.size());
  1158. for(auto p=s_peers.begin();p!=s_peers.end();++p) {
  1159. sp.emplace_back(*p);
  1160. }
  1161. }
  1162. std::sort(sp.begin(),sp.end(),[](const SharedPtr<RootPeer> &a,const SharedPtr<RootPeer> &b) { return (a->id < b->id); });
  1163. fprintf(pf,"Address %21s %45s %10s %6s %10s" ZT_EOL_S,"IPv4","IPv6","Age(sec)","Vers","Fwd(KiB/s)");
  1164. {
  1165. char ip4[128],ip6[128],ver[128];
  1166. for(auto p=sp.begin();p!=sp.end();++p) {
  1167. if ((*p)->v4s >= 0) {
  1168. (*p)->ip4.toString(ip4);
  1169. } else {
  1170. ip4[0] = '-';
  1171. ip4[1] = 0;
  1172. }
  1173. if ((*p)->v6s >= 0) {
  1174. (*p)->ip6.toString(ip6);
  1175. } else {
  1176. ip6[0] = '-';
  1177. ip6[1] = 0;
  1178. }
  1179. OSUtils::ztsnprintf(ver,sizeof(ver),"%d.%d.%d",(*p)->vMajor,(*p)->vMinor,(*p)->vRev);
  1180. fprintf(pf,"%.10llx %21s %45s %10.4f %6s" ZT_EOL_S,
  1181. (unsigned long long)(*p)->id.address().toInt(),
  1182. ip4,
  1183. ip6,
  1184. fabs((double)(now - (*p)->lastReceive) / 1000.0),
  1185. ver);
  1186. }
  1187. }
  1188. fclose(pf);
  1189. std::string peersFilePath2(s_statsRoot);
  1190. peersFilePath2.append("/peers");
  1191. OSUtils::rm(peersFilePath2);
  1192. OSUtils::rename(peersFilePath.c_str(),peersFilePath2.c_str());
  1193. }
  1194. std::string statsFilePath(s_statsRoot);
  1195. statsFilePath.append("/.stats.tmp");
  1196. FILE *sf = fopen(statsFilePath.c_str(),"wb");
  1197. if (sf) {
  1198. fprintf(sf,"Uptime (seconds) : %ld" ZT_EOL_S,(long)((now - s_startTime) / 1000));
  1199. s_peersByVirtAddr_l.lock();
  1200. fprintf(sf,"Peers : %llu" ZT_EOL_S,(unsigned long long)s_peersByVirtAddr.size());
  1201. s_peersByVirtAddr_l.unlock();
  1202. s_rendezvousTracking_l.lock();
  1203. uint64_t unsuccessfulp2p = 0;
  1204. for(auto lr=s_rendezvousTracking.begin();lr!=s_rendezvousTracking.end();++lr) {
  1205. if (lr->second.count > 6) // 6 == two attempts per edge, one for each direction
  1206. ++unsuccessfulp2p;
  1207. }
  1208. fprintf(sf,"Recent P2P Graph Edges : %llu" ZT_EOL_S,(unsigned long long)s_rendezvousTracking.size());
  1209. if (s_rendezvousTracking.empty()) {
  1210. fprintf(sf,"Recent P2P Success Rate : 100.0000%%" ZT_EOL_S);
  1211. } else {
  1212. fprintf(sf,"Recent P2P Success Rate : %.4f%%" ZT_EOL_S,(1.0 - ((double)unsuccessfulp2p / (double)s_rendezvousTracking.size())) * 100.0);
  1213. }
  1214. s_rendezvousTracking_l.unlock();
  1215. fprintf(sf,"Input (MiB/s) : %.4f" ZT_EOL_S,s_inputRate.perSecond(now) / 1048576.0);
  1216. fprintf(sf,"Output (MiB/s) : %.4f" ZT_EOL_S,s_outputRate.perSecond(now) / 1048576.0);
  1217. fprintf(sf,"Forwarded (MiB/s) : %.4f" ZT_EOL_S,s_forwardRate.perSecond(now) / 1048576.0);
  1218. fprintf(sf,"Discarded Forward (MiB/s) : %.4f" ZT_EOL_S,s_discardedForwardRate.perSecond(now) / 1048576.0);
  1219. fclose(sf);
  1220. std::string statsFilePath2(s_statsRoot);
  1221. statsFilePath2.append("/stats");
  1222. OSUtils::rm(statsFilePath2);
  1223. OSUtils::rename(statsFilePath.c_str(),statsFilePath2.c_str());
  1224. }
  1225. }
  1226. }
  1227. // If we received a kill signal, close everything and wait
  1228. // for threads to die before exiting.
  1229. s_run = false; // sanity check
  1230. apiServ.stop();
  1231. for(auto s=sockets.begin();s!=sockets.end();++s) {
  1232. shutdown(*s,SHUT_RDWR);
  1233. close(*s);
  1234. }
  1235. for(auto t=threads.begin();t!=threads.end();++t)
  1236. t->join();
  1237. return 0;
  1238. }