root.cpp 14 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 "../node/Constants.hpp"
  27. #include <stdio.h>
  28. #include <stdlib.h>
  29. #include <unistd.h>
  30. #include <string.h>
  31. #include <fcntl.h>
  32. #include <signal.h>
  33. #include <sys/stat.h>
  34. #include <sys/types.h>
  35. #include <sys/socket.h>
  36. #include <sys/select.h>
  37. #include <sys/time.h>
  38. #include <sys/un.h>
  39. #include <sys/ioctl.h>
  40. #include <arpa/inet.h>
  41. #include <netinet/in.h>
  42. #include <netinet/ip.h>
  43. #include <netinet/ip6.h>
  44. #include <netinet/tcp.h>
  45. #include "../node/Packet.hpp"
  46. #include "../node/Utils.hpp"
  47. #include "../node/Address.hpp"
  48. #include "../node/Identity.hpp"
  49. #include "../node/InetAddress.hpp"
  50. #include "../node/Mutex.hpp"
  51. #include "../node/SharedPtr.hpp"
  52. #include "../node/MulticastGroup.hpp"
  53. #include "../osdep/OSUtils.hpp"
  54. #include <string>
  55. #include <thread>
  56. #include <map>
  57. #include <set>
  58. #include <vector>
  59. #include <iostream>
  60. #include <unordered_map>
  61. #include <vector>
  62. #include <atomic>
  63. #include <mutex>
  64. using namespace ZeroTier;
  65. struct IdentityHasher { ZT_ALWAYS_INLINE std::size_t operator()(const Identity &id) const { return (std::size_t)id.hashCode(); } };
  66. struct AddressHasher { ZT_ALWAYS_INLINE std::size_t operator()(const Address &a) const { return (std::size_t)a.toInt(); } };
  67. struct InetAddressHasher { ZT_ALWAYS_INLINE std::size_t operator()(const InetAddress &ip) const { return (std::size_t)ip.hashCode(); } };
  68. struct MulticastGroupHasher { ZT_ALWAYS_INLINE std::size_t operator()(const MulticastGroup &mg) const { return (std::size_t)mg.hashCode(); } };
  69. struct PeerInfo
  70. {
  71. Identity id;
  72. uint8_t key[32];
  73. InetAddress ip4,ip6;
  74. int64_t lastReceive;
  75. std::unordered_map< uint64_t,std::unordered_map< MulticastGroup,int64_t,MulticastGroupHasher > > multicastGroups;
  76. Mutex multicastGroups_l;
  77. AtomicCounter __refCount;
  78. ZT_ALWAYS_INLINE ~PeerInfo() { Utils::burn(key,sizeof(key)); }
  79. };
  80. static Identity self;
  81. static std::atomic_bool run;
  82. static std::vector< SharedPtr<PeerInfo> > newPeers;
  83. static std::unordered_map< Identity,SharedPtr<PeerInfo>,IdentityHasher > peersByIdentity;
  84. static std::unordered_map< Address,std::set< SharedPtr<PeerInfo> >,AddressHasher > peersByVirtAddr;
  85. static std::unordered_map< InetAddress,std::set< SharedPtr<PeerInfo> >,InetAddressHasher > peersByPhysAddr;
  86. static std::mutex newPeers_l;
  87. static std::mutex peersByIdentity_l;
  88. static std::mutex peersByVirtAddr_l;
  89. static std::mutex peersByPhysAddr_l;
  90. static void handlePacket(const int sock,const InetAddress *const ip,Packet &pkt)
  91. {
  92. char ipstr[128],ipstr2[128],astr[32],tmpstr[256];
  93. const bool fragment = pkt[ZT_PACKET_FRAGMENT_IDX_FRAGMENT_INDICATOR] == ZT_PACKET_FRAGMENT_INDICATOR;
  94. // See if this is destined for us and isn't a fragment / fragmented. (No packets
  95. // understood by the root are fragments/fragmented.)
  96. if ((!fragment)&&(!pkt.fragmented())&&(pkt.destination() == self.address())) {
  97. SharedPtr<PeerInfo> peer;
  98. // If this is an un-encrypted HELLO, either learn a new peer or verify
  99. // that this is a peer we already know.
  100. if ((pkt.cipher() == ZT_PROTO_CIPHER_SUITE__POLY1305_NONE)&&(pkt.verb() == Packet::VERB_HELLO)) {
  101. Identity id;
  102. if (id.deserialize(pkt,ZT_PROTO_VERB_HELLO_IDX_IDENTITY)) {
  103. {
  104. std::lock_guard<std::mutex> pbi_l(peersByIdentity_l);
  105. auto pById = peersByIdentity.find(id);
  106. if (pById != peersByIdentity.end()) {
  107. peer = pById->second;
  108. //printf("%s has %s (known (1))" ZT_EOL_S,ip->toString(ipstr),pkt.source().toString(astr));
  109. }
  110. }
  111. if (peer) {
  112. if (!pkt.dearmor(peer->key)) {
  113. printf("%s HELLO rejected: packet authentication failed" ZT_EOL_S,ip->toString(ipstr));
  114. return;
  115. }
  116. } else {
  117. peer.set(new PeerInfo);
  118. if (self.agree(id,peer->key)) {
  119. if (pkt.dearmor(peer->key)) {
  120. peer->id = id;
  121. {
  122. std::lock_guard<std::mutex> np_l(newPeers_l);
  123. newPeers.push_back(peer);
  124. }
  125. {
  126. std::lock_guard<std::mutex> pbi_l(peersByIdentity_l);
  127. peersByIdentity.emplace(id,peer);
  128. }
  129. {
  130. std::lock_guard<std::mutex> pbv_l(peersByVirtAddr_l);
  131. peersByVirtAddr[id.address()].emplace(peer);
  132. }
  133. } else {
  134. printf("%s HELLO rejected: packet authentication failed" ZT_EOL_S,ip->toString(ipstr));
  135. return;
  136. }
  137. } else {
  138. printf("%s HELLO rejected: key agreement failed" ZT_EOL_S,ip->toString(ipstr));
  139. return;
  140. }
  141. }
  142. }
  143. }
  144. // If it wasn't a HELLO, check to see if any known identities for the sender's
  145. // short ZT address successfully decrypt the packet.
  146. if (!peer) {
  147. std::lock_guard<std::mutex> pbv_l(peersByVirtAddr_l);
  148. auto peers = peersByVirtAddr.find(pkt.source());
  149. if (peers != peersByVirtAddr.end()) {
  150. for(auto p=peers->second.begin();p!=peers->second.end();++p) {
  151. if (pkt.dearmor((*p)->key)) {
  152. peer = (*p);
  153. //printf("%s has %s (known (2))" ZT_EOL_S,ip->toString(ipstr),pkt.source().toString(astr));
  154. break;
  155. }
  156. }
  157. }
  158. }
  159. // If we found the peer, update IP and/or time.
  160. if (peer) {
  161. InetAddress *const peerIp = (ip->ss_family == AF_INET) ? &(peer->ip4) : &(peer->ip6);
  162. if (*peerIp != ip) {
  163. std::lock_guard<std::mutex> pbp_l(peersByPhysAddr_l);
  164. if (*peerIp) {
  165. auto prev = peersByPhysAddr.find(*peerIp);
  166. if (prev != peersByPhysAddr.end()) {
  167. prev->second.erase(peer);
  168. if (prev->second.empty())
  169. peersByPhysAddr.erase(prev);
  170. }
  171. }
  172. *peerIp = ip;
  173. peersByPhysAddr[ip].emplace(peer);
  174. }
  175. const int64_t now = OSUtils::now();
  176. peer->lastReceive = now;
  177. switch(pkt.verb()) {
  178. case Packet::VERB_HELLO: {
  179. if (pkt.source() == 0x89e92ceee5) {
  180. printf("ME!\n");
  181. const uint64_t origId = pkt.packetId();
  182. const uint64_t ts = pkt.template at<uint64_t>(ZT_PROTO_VERB_HELLO_IDX_TIMESTAMP);
  183. pkt.reset(pkt.source(),self.address(),Packet::VERB_OK);
  184. pkt.append((uint8_t)Packet::VERB_HELLO);
  185. pkt.append(origId);
  186. pkt.append(ts);
  187. pkt.append((uint8_t)ZT_PROTO_VERSION);
  188. pkt.append((uint8_t)1);
  189. pkt.append((uint8_t)9);
  190. pkt.append((uint16_t)0);
  191. ip->serialize(pkt);
  192. pkt.armor(peer->key,true);
  193. sendto(sock,pkt.data(),pkt.size(),0,(const struct sockaddr *)ip,(socklen_t)((ip->ss_family == AF_INET) ? sizeof(struct sockaddr_in) : sizeof(struct sockaddr_in6)));
  194. printf("%s <- OK(HELLO)" ZT_EOL_S,ip->toString(ipstr));
  195. }
  196. } break;
  197. case Packet::VERB_MULTICAST_LIKE: {
  198. printf("LIKE\n");
  199. Mutex::Lock l(peer->multicastGroups_l);
  200. for(unsigned int ptr=ZT_PACKET_IDX_PAYLOAD;(ptr+18)<=pkt.size();ptr+=18) {
  201. const uint64_t nwid = pkt.template at<uint64_t>(ptr);
  202. const MulticastGroup mg(MAC(pkt.field(ptr + 8,6),6),pkt.template at<uint32_t>(ptr + 14));
  203. peer->multicastGroups[nwid][mg] = now;
  204. printf("%s subscribes to %s/%.8lx on network %.16llx" ZT_EOL_S,ip->toString(ipstr),mg.mac().toString(tmpstr),(unsigned long)mg.adi(),(unsigned long long)nwid);
  205. }
  206. } break;
  207. case Packet::VERB_MULTICAST_GATHER: {
  208. } break;
  209. default:
  210. break;
  211. }
  212. return;
  213. }
  214. }
  215. std::vector<InetAddress> toAddrs;
  216. {
  217. std::lock_guard<std::mutex> pbv_l(peersByVirtAddr_l);
  218. auto peers = peersByVirtAddr.find(pkt.destination());
  219. if (peers != peersByVirtAddr.end()) {
  220. for(auto p=peers->second.begin();p!=peers->second.end();++p) {
  221. if ((*p)->ip6)
  222. toAddrs.push_back((*p)->ip6);
  223. else if ((*p)->ip4)
  224. toAddrs.push_back((*p)->ip4);
  225. }
  226. }
  227. }
  228. if (toAddrs.empty()) {
  229. printf("%s not forwarding to %s: no destinations found" ZT_EOL_S,ip->toString(ipstr),pkt.destination().toString(astr));
  230. return;
  231. }
  232. if (fragment) {
  233. if (reinterpret_cast<Packet::Fragment *>(&pkt)->incrementHops() >= ZT_PROTO_MAX_HOPS) {
  234. printf("%s refused to forward to %s: max hop count exceeded" ZT_EOL_S,ip->toString(ipstr),pkt.destination().toString(astr));
  235. return;
  236. }
  237. } else {
  238. if (pkt.incrementHops() >= ZT_PROTO_MAX_HOPS) {
  239. printf("%s refused to forward to %s: max hop count exceeded" ZT_EOL_S,ip->toString(ipstr),pkt.destination().toString(astr));
  240. return;
  241. }
  242. }
  243. for(auto i=toAddrs.begin();i!=toAddrs.end();++i) {
  244. printf("%s -> %s for %s" ZT_EOL_S,ip->toString(ipstr),i->toString(ipstr2),pkt.destination().toString(astr));
  245. //sendto(sock,pkt.data(),pkt.size(),0,(const struct sockaddr *)&(*i),(socklen_t)((i->ss_family == AF_INET) ? sizeof(struct sockaddr_in) : sizeof(struct sockaddr_in6)));
  246. }
  247. }
  248. static int bindSocket(struct sockaddr *bindAddr)
  249. {
  250. int s = socket(bindAddr->sa_family,SOCK_DGRAM,0);
  251. if (s < 0) {
  252. close(s);
  253. return -1;
  254. }
  255. int f = 131072;
  256. setsockopt(s,SOL_SOCKET,SO_RCVBUF,(const char *)&f,sizeof(f));
  257. f = 131072;
  258. setsockopt(s,SOL_SOCKET,SO_SNDBUF,(const char *)&f,sizeof(f));
  259. if (bindAddr->sa_family == AF_INET6) {
  260. f = 1; setsockopt(s,IPPROTO_IPV6,IPV6_V6ONLY,(void *)&f,sizeof(f));
  261. #ifdef IPV6_MTU_DISCOVER
  262. f = 0; setsockopt(s,IPPROTO_IPV6,IPV6_MTU_DISCOVER,&f,sizeof(f));
  263. #endif
  264. #ifdef IPV6_DONTFRAG
  265. f = 0; setsockopt(s,IPPROTO_IPV6,IPV6_DONTFRAG,&f,sizeof(f));
  266. #endif
  267. }
  268. f = 1; setsockopt(s,SOL_SOCKET,SO_REUSEADDR,(void *)&f,sizeof(f));
  269. f = 1; setsockopt(s,SOL_SOCKET,SO_REUSEPORT,(void *)&f,sizeof(f));
  270. f = 1; setsockopt(s,SOL_SOCKET,SO_BROADCAST,(void *)&f,sizeof(f));
  271. #ifdef IP_DONTFRAG
  272. f = 0; setsockopt(s,IPPROTO_IP,IP_DONTFRAG,&f,sizeof(f));
  273. #endif
  274. #ifdef IP_MTU_DISCOVER
  275. f = IP_PMTUDISC_DONT; setsockopt(s,IPPROTO_IP,IP_MTU_DISCOVER,&f,sizeof(f));
  276. #endif
  277. #ifdef SO_NO_CHECK
  278. if (bindAddr->sa_family == AF_INET) {
  279. f = 1; setsockopt(s,SOL_SOCKET,SO_NO_CHECK,(void *)&f,sizeof(f));
  280. }
  281. #endif
  282. if (bind(s,bindAddr,(bindAddr->sa_family == AF_INET) ? sizeof(struct sockaddr_in) : sizeof(struct sockaddr_in6))) {
  283. close(s);
  284. return -1;
  285. }
  286. return s;
  287. }
  288. void shutdownSigHandler(int sig)
  289. {
  290. run = false;
  291. }
  292. int main(int argc,char **argv)
  293. {
  294. signal(SIGTERM,shutdownSigHandler);
  295. signal(SIGINT,shutdownSigHandler);
  296. signal(SIGQUIT,shutdownSigHandler);
  297. signal(SIGPIPE,SIG_IGN);
  298. signal(SIGUSR1,SIG_IGN);
  299. signal(SIGUSR2,SIG_IGN);
  300. if (argc < 2) {
  301. printf("Usage: zerotier-root <identity.secret> [<port>]" ZT_EOL_S);
  302. return 1;
  303. }
  304. std::string myIdStr;
  305. if (!OSUtils::readFile(argv[1],myIdStr)) {
  306. printf("FATAL: cannot read identity.secret at %s" ZT_EOL_S,argv[1]);
  307. return 1;
  308. }
  309. if (!self.fromString(myIdStr.c_str())) {
  310. printf("FATAL: cannot read identity.secret at %s (invalid identity)" ZT_EOL_S,argv[1]);
  311. return 1;
  312. }
  313. if (!self.hasPrivate()) {
  314. printf("FATAL: cannot read identity.secret at %s (missing secret key)" ZT_EOL_S,argv[1]);
  315. return 1;
  316. }
  317. unsigned int ncores = std::thread::hardware_concurrency();
  318. if (ncores == 0) ncores = 1;
  319. run = true;
  320. std::vector<int> sockets;
  321. std::vector<std::thread> threads;
  322. for(unsigned int tn=0;tn<ncores;++tn) {
  323. struct sockaddr_in6 in6;
  324. memset(&in6,0,sizeof(in6));
  325. in6.sin6_family = AF_INET6;
  326. in6.sin6_port = htons(ZT_DEFAULT_PORT);
  327. const int s6 = bindSocket((struct sockaddr *)&in6);
  328. if (s6 < 0) {
  329. std::cout << "ERROR: unable to bind to port " << ZT_DEFAULT_PORT << ZT_EOL_S;
  330. exit(1);
  331. }
  332. struct sockaddr_in in4;
  333. memset(&in4,0,sizeof(in4));
  334. in4.sin_family = AF_INET;
  335. in4.sin_port = htons(ZT_DEFAULT_PORT);
  336. const int s4 = bindSocket((struct sockaddr *)&in4);
  337. if (s4 < 0) {
  338. std::cout << "ERROR: unable to bind to port " << ZT_DEFAULT_PORT << ZT_EOL_S;
  339. exit(1);
  340. }
  341. sockets.push_back(s6);
  342. sockets.push_back(s4);
  343. threads.push_back(std::thread([s6]() {
  344. struct sockaddr_in6 in6;
  345. Packet pkt;
  346. memset(&in6,0,sizeof(in6));
  347. for(;;) {
  348. socklen_t sl = sizeof(in6);
  349. const int pl = (int)recvfrom(s6,pkt.unsafeData(),pkt.capacity(),0,(struct sockaddr *)&in6,&sl);
  350. if (pl > 0) {
  351. try {
  352. pkt.setSize((unsigned int)pl);
  353. handlePacket(s6,reinterpret_cast<const InetAddress *>(&in6),pkt);
  354. } catch ( ... ) {
  355. printf("* unexpected exception" ZT_EOL_S);
  356. }
  357. } else {
  358. break;
  359. }
  360. }
  361. }));
  362. threads.push_back(std::thread([s4]() {
  363. struct sockaddr_in in4;
  364. Packet pkt;
  365. memset(&in4,0,sizeof(in4));
  366. for(;;) {
  367. socklen_t sl = sizeof(in4);
  368. const int pl = (int)recvfrom(s4,pkt.unsafeData(),pkt.capacity(),0,(struct sockaddr *)&in4,&sl);
  369. if (pl > 0) {
  370. try {
  371. pkt.setSize((unsigned int)pl);
  372. handlePacket(s4,reinterpret_cast<const InetAddress *>(&in4),pkt);
  373. } catch ( ... ) {
  374. printf("* unexpected exception" ZT_EOL_S);
  375. }
  376. } else {
  377. break;
  378. }
  379. }
  380. }));
  381. }
  382. while (run) {
  383. peersByIdentity_l.lock();
  384. printf("* have %lu peers" ZT_EOL_S,(unsigned long)peersByIdentity.size());
  385. peersByIdentity_l.unlock();
  386. sleep(1);
  387. }
  388. for(auto s=sockets.begin();s!=sockets.end();++s) {
  389. shutdown(*s,SHUT_RDWR);
  390. close(*s);
  391. }
  392. for(auto t=threads.begin();t!=threads.end();++t)
  393. t->join();
  394. return 0;
  395. }