NetconEthernetTap.cpp 35 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_NETCON
  28. #include <algorithm>
  29. #include <utility>
  30. #include <dlfcn.h>
  31. #include "NetconEthernetTap.hpp"
  32. #include "../node/Utils.hpp"
  33. #include "../osdep/OSUtils.hpp"
  34. #include "../osdep/Phy.hpp"
  35. #include "lwip/tcp_impl.h"
  36. #include "netif/etharp.h"
  37. #include "lwip/ip.h"
  38. #include "lwip/ip_addr.h"
  39. #include "lwip/ip_frag.h"
  40. #include "lwip/tcp.h"
  41. #include "LWIPStack.hpp"
  42. #include "NetconService.hpp"
  43. #include "Intercept.h"
  44. #include "NetconUtilities.hpp"
  45. #define APPLICATION_POLL_FREQ 1
  46. namespace ZeroTier {
  47. NetconEthernetTap::NetconEthernetTap(
  48. const char *homePath,
  49. const MAC &mac,
  50. unsigned int mtu,
  51. unsigned int metric,
  52. uint64_t nwid,
  53. const char *friendlyName,
  54. void (*handler)(void *,uint64_t,const MAC &,const MAC &,unsigned int,unsigned int,const void *,unsigned int),
  55. void *arg) :
  56. _phy(this,false,true),
  57. _unixListenSocket((PhySocket *)0),
  58. _handler(handler),
  59. _arg(arg),
  60. _nwid(nwid),
  61. _mac(mac),
  62. _homePath(homePath),
  63. _mtu(mtu),
  64. _enabled(true),
  65. _run(true)
  66. {
  67. char sockPath[4096];
  68. Utils::snprintf(sockPath,sizeof(sockPath),"/tmp/.ztnc_%.16llx",(unsigned long long)nwid);
  69. _dev = sockPath;
  70. lwipstack = new LWIPStack("ext/bin/lwip/liblwip.so"); // ext/bin/liblwip.so.debug for debug symbols
  71. if(!lwipstack) // TODO double check this check
  72. throw std::runtime_error("unable to load lwip lib.");
  73. lwipstack->lwip_init();
  74. _unixListenSocket = _phy.unixListen(sockPath,(void *)this);
  75. if (!_unixListenSocket)
  76. throw std::runtime_error(std::string("unable to bind to ")+sockPath);
  77. _thread = Thread::start(this);
  78. }
  79. NetconEthernetTap::~NetconEthernetTap()
  80. {
  81. _run = false;
  82. _phy.whack();
  83. _phy.whack();
  84. Thread::join(_thread);
  85. _phy.close(_unixListenSocket,false);
  86. delete lwipstack;
  87. }
  88. void NetconEthernetTap::setEnabled(bool en)
  89. {
  90. _enabled = en;
  91. }
  92. bool NetconEthernetTap::enabled() const
  93. {
  94. return _enabled;
  95. }
  96. bool NetconEthernetTap::addIp(const InetAddress &ip)
  97. {
  98. Mutex::Lock _l(_ips_m);
  99. if (std::find(_ips.begin(),_ips.end(),ip) == _ips.end()) {
  100. _ips.push_back(ip);
  101. std::sort(_ips.begin(),_ips.end());
  102. if (ip.isV4()) {
  103. // Set IP
  104. static ip_addr_t ipaddr, netmask, gw;
  105. IP4_ADDR(&gw,192,168,0,1);
  106. ipaddr.addr = *((u32_t *)ip.rawIpData());
  107. netmask.addr = *((u32_t *)ip.netmask().rawIpData());
  108. // Set up the lwip-netif for LWIP's sake
  109. lwipstack->netif_add(&interface,&ipaddr, &netmask, &gw, NULL, tapif_init, lwipstack->_ethernet_input);
  110. interface.state = this;
  111. interface.output = lwipstack->_etharp_output;
  112. _mac.copyTo(interface.hwaddr, 6);
  113. interface.mtu = _mtu;
  114. interface.name[0] = 't';
  115. interface.name[1] = 'p';
  116. interface.linkoutput = low_level_output;
  117. interface.hwaddr_len = 6;
  118. interface.flags = NETIF_FLAG_BROADCAST | NETIF_FLAG_ETHARP | NETIF_FLAG_IGMP;
  119. lwipstack->netif_set_default(&interface);
  120. lwipstack->netif_set_up(&interface);
  121. }
  122. }
  123. return true;
  124. }
  125. bool NetconEthernetTap::removeIp(const InetAddress &ip)
  126. {
  127. Mutex::Lock _l(_ips_m);
  128. std::vector<InetAddress>::iterator i(std::find(_ips.begin(),_ips.end(),ip));
  129. if (i == _ips.end())
  130. return false;
  131. _ips.erase(i);
  132. if (ip.isV4()) {
  133. // TODO: dealloc from LWIP
  134. }
  135. return true;
  136. }
  137. std::vector<InetAddress> NetconEthernetTap::ips() const
  138. {
  139. Mutex::Lock _l(_ips_m);
  140. return _ips;
  141. }
  142. void NetconEthernetTap::put(const MAC &from,const MAC &to,unsigned int etherType,const void *data,unsigned int len)
  143. {
  144. struct pbuf *p,*q;
  145. if (!_enabled)
  146. return;
  147. struct eth_hdr ethhdr;
  148. from.copyTo(ethhdr.src.addr, 6);
  149. to.copyTo(ethhdr.dest.addr, 6);
  150. ethhdr.type = Utils::hton((uint16_t)etherType);
  151. // We allocate a pbuf chain of pbufs from the pool.
  152. p = lwipstack->pbuf_alloc(PBUF_RAW, len+sizeof(struct eth_hdr), PBUF_POOL);
  153. if (p != NULL) {
  154. const char *dataptr = reinterpret_cast<const char *>(data);
  155. // First pbuf gets ethernet header at start
  156. q = p;
  157. if (q->len < sizeof(ethhdr)) {
  158. fprintf(stderr,"_put(): Dropped packet: first pbuf smaller than ethernet header\n");
  159. return;
  160. }
  161. memcpy(q->payload,&ethhdr,sizeof(ethhdr));
  162. memcpy(q->payload + sizeof(ethhdr),dataptr,q->len - sizeof(ethhdr));
  163. dataptr += q->len - sizeof(ethhdr);
  164. // Remaining pbufs (if any) get rest of data
  165. while ((q = q->next)) {
  166. memcpy(q->payload,dataptr,q->len);
  167. dataptr += q->len;
  168. }
  169. } else {
  170. fprintf(stderr, "_put(): Dropped packet: no pbufs available\n");
  171. return;
  172. }
  173. {
  174. Mutex::Lock _l2(lwipstack->_lock);
  175. if(interface.input(p, &interface) != ERR_OK) {
  176. fprintf(stderr, "_put(): Error while RXing packet (netif->input)\n");
  177. }
  178. }
  179. }
  180. std::string NetconEthernetTap::deviceName() const
  181. {
  182. return _dev;
  183. }
  184. void NetconEthernetTap::setFriendlyName(const char *friendlyName)
  185. {
  186. }
  187. void NetconEthernetTap::scanMulticastGroups(std::vector<MulticastGroup> &added,std::vector<MulticastGroup> &removed)
  188. {
  189. std::vector<MulticastGroup> newGroups;
  190. Mutex::Lock _l(_multicastGroups_m);
  191. // TODO: get multicast subscriptions from LWIP
  192. std::vector<InetAddress> allIps(ips());
  193. for(std::vector<InetAddress>::iterator ip(allIps.begin());ip!=allIps.end();++ip)
  194. newGroups.push_back(MulticastGroup::deriveMulticastGroupForAddressResolution(*ip));
  195. std::sort(newGroups.begin(),newGroups.end());
  196. std::unique(newGroups.begin(),newGroups.end());
  197. for(std::vector<MulticastGroup>::iterator m(newGroups.begin());m!=newGroups.end();++m) {
  198. if (!std::binary_search(_multicastGroups.begin(),_multicastGroups.end(),*m))
  199. added.push_back(*m);
  200. }
  201. for(std::vector<MulticastGroup>::iterator m(_multicastGroups.begin());m!=_multicastGroups.end();++m) {
  202. if (!std::binary_search(newGroups.begin(),newGroups.end(),*m))
  203. removed.push_back(*m);
  204. }
  205. _multicastGroups.swap(newGroups);
  206. }
  207. TcpConnection *NetconEthernetTap::getConnectionByPCB(struct tcp_pcb *pcb)
  208. {
  209. for(size_t i=0; i<tcp_connections.size(); i++) {
  210. if(tcp_connections[i]->pcb == pcb)
  211. return tcp_connections[i];
  212. }
  213. return NULL;
  214. }
  215. TcpConnection *NetconEthernetTap::getConnectionByTheirFD(PhySocket *sock, int fd)
  216. {
  217. for(size_t i=0; i<tcp_connections.size(); i++) {
  218. if(tcp_connections[i]->perceived_fd == fd && tcp_connections[i]->rpcSock == sock)
  219. return tcp_connections[i];
  220. }
  221. return NULL;
  222. }
  223. /*
  224. * Closes a TcpConnection and associated LWIP PCB strcuture.
  225. */
  226. void NetconEthernetTap::closeConnection(TcpConnection *conn)
  227. {
  228. //fprintf(stderr, "closeConnection(): closing: conn->type = %d, fd=%d\n", conn->type, _phy.getDescriptor(conn->sock));
  229. lwipstack->_tcp_arg(conn->pcb, NULL);
  230. lwipstack->_tcp_sent(conn->pcb, NULL);
  231. lwipstack->_tcp_recv(conn->pcb, NULL);
  232. lwipstack->_tcp_err(conn->pcb, NULL);
  233. lwipstack->_tcp_poll(conn->pcb, NULL, 0);
  234. lwipstack->_tcp_close(conn->pcb);
  235. close(_phy.getDescriptor(conn->dataSock));
  236. close(conn->their_fd);
  237. _phy.close(conn->dataSock);
  238. for(int i=0; i<tcp_connections.size(); i++) {
  239. if(tcp_connections[i] == conn) {
  240. tcp_connections.erase(tcp_connections.begin() + i);
  241. }
  242. }
  243. delete conn;
  244. }
  245. void NetconEthernetTap::closeClient(PhySocket *sock)
  246. {
  247. for(int i=0; i<rpc_sockets.size(); i++) {
  248. if(rpc_sockets[i] == sock)
  249. rpc_sockets.erase(rpc_sockets.begin() + i);
  250. }
  251. close(_phy.getDescriptor(sock));
  252. _phy.close(sock);
  253. }
  254. void NetconEthernetTap::closeAll()
  255. {
  256. while(rpc_sockets.size())
  257. closeClient(rpc_sockets.front());
  258. while(tcp_connections.size())
  259. closeConnection(tcp_connections.front());
  260. }
  261. #define ZT_LWIP_TCP_TIMER_INTERVAL 10
  262. void NetconEthernetTap::threadMain()
  263. throw()
  264. {
  265. fprintf(stderr, "_threadMain()\n");
  266. uint64_t prev_tcp_time = 0;
  267. uint64_t prev_etharp_time = 0;
  268. fprintf(stderr, "- MEM_SIZE = %dM\n", MEM_SIZE / (1024*1024));
  269. fprintf(stderr, "- TCP_SND_BUF = %dK\n", TCP_SND_BUF / 1024);
  270. fprintf(stderr, "- MEMP_NUM_PBUF = %d\n", MEMP_NUM_PBUF);
  271. fprintf(stderr, "- MEMP_NUM_TCP_PCB = %d\n", MEMP_NUM_TCP_PCB);
  272. fprintf(stderr, "- MEMP_NUM_TCP_PCB_LISTEN = %d\n", MEMP_NUM_TCP_PCB_LISTEN);
  273. fprintf(stderr, "- MEMP_NUM_TCP_SEG = %d\n", MEMP_NUM_TCP_SEG);
  274. fprintf(stderr, "- PBUF_POOL_SIZE = %d\n", PBUF_POOL_SIZE);
  275. fprintf(stderr, "- TCP_SND_QUEUELEN = %d\n", TCP_SND_QUEUELEN);
  276. fprintf(stderr, "- IP_REASSEMBLY = %d\n", IP_REASSEMBLY);
  277. fprintf(stderr, "- TCP_WND = %d\n", TCP_WND);
  278. fprintf(stderr, "- TCP_MSS = %d\n", TCP_MSS);
  279. fprintf(stderr, "- ARP_TMR_INTERVAL = %d\n", ARP_TMR_INTERVAL);
  280. fprintf(stderr, "- TCP_TMR_INTERVAL = %d\n", TCP_TMR_INTERVAL);
  281. fprintf(stderr, "- IP_TMR_INTERVAL = %d\n", IP_TMR_INTERVAL);
  282. // Main timer loop
  283. while (_run) {
  284. uint64_t now = OSUtils::now();
  285. uint64_t since_tcp = now - prev_tcp_time;
  286. uint64_t since_etharp = now - prev_etharp_time;
  287. uint64_t tcp_remaining = ZT_LWIP_TCP_TIMER_INTERVAL;
  288. uint64_t etharp_remaining = ARP_TMR_INTERVAL;
  289. if (since_tcp >= ZT_LWIP_TCP_TIMER_INTERVAL) {
  290. prev_tcp_time = now;
  291. lwipstack->tcp_tmr();
  292. } else {
  293. tcp_remaining = ZT_LWIP_TCP_TIMER_INTERVAL - since_tcp;
  294. }
  295. if (since_etharp >= ARP_TMR_INTERVAL) {
  296. prev_etharp_time = now;
  297. lwipstack->etharp_tmr();
  298. } else {
  299. etharp_remaining = ARP_TMR_INTERVAL - since_etharp;
  300. }
  301. _phy.poll((unsigned long)std::min(tcp_remaining,etharp_remaining));
  302. }
  303. closeAll();
  304. // TODO: cleanup -- destroy LWIP state, kill any clients, unload .so, etc.
  305. }
  306. void NetconEthernetTap::phyOnUnixClose(PhySocket *sock,void **uptr)
  307. {
  308. //fprintf(stderr, "phyOnUnixClose() CLOSING: %d\n", _phy.getDescriptor(sock));
  309. //closeClient(sock);
  310. // FIXME:
  311. }
  312. /*
  313. * Handles data on a client's data buffer. Data is sent to LWIP to be enqueued.
  314. */
  315. void NetconEthernetTap::phyOnFileDescriptorActivity(PhySocket *sock,void **uptr,bool readable,bool writable)
  316. {
  317. if(readable) {
  318. TcpConnection *conn = (TcpConnection*)*uptr;
  319. Mutex::Lock _l(lwipstack->_lock);
  320. handle_write(conn);
  321. }
  322. else {
  323. fprintf(stderr, "phyOnFileDescriptorActivity(): PhySocket not readable\n");
  324. }
  325. }
  326. // Unused -- no UDP or TCP from this thread/Phy<>
  327. void NetconEthernetTap::phyOnDatagram(PhySocket *sock,void **uptr,const struct sockaddr *from,void *data,unsigned long len) {}
  328. void NetconEthernetTap::phyOnTcpConnect(PhySocket *sock,void **uptr,bool success) {}
  329. void NetconEthernetTap::phyOnTcpAccept(PhySocket *sockL,PhySocket *sockN,void **uptrL,void **uptrN,const struct sockaddr *from) {}
  330. void NetconEthernetTap::phyOnTcpClose(PhySocket *sock,void **uptr) {}
  331. void NetconEthernetTap::phyOnTcpData(PhySocket *sock,void **uptr,void *data,unsigned long len) {}
  332. void NetconEthernetTap::phyOnTcpWritable(PhySocket *sock,void **uptr) {}
  333. /*
  334. * Creates a new NetconClient for the accepted RPC connection (unix domain socket)
  335. *
  336. * Subsequent socket connections from this client will be associated with this
  337. * NetconClient object.
  338. */
  339. void NetconEthernetTap::phyOnUnixAccept(PhySocket *sockL,PhySocket *sockN,void **uptrL,void **uptrN)
  340. {
  341. //fprintf(stderr, "phyOnUnixAccept() NEW CLIENT RPC: %d\n", _phy.getDescriptor(sockN));
  342. rpc_sockets.push_back(sockN);
  343. }
  344. /*
  345. * Processes incoming data on a client-specific RPC connection
  346. */
  347. void NetconEthernetTap::phyOnUnixData(PhySocket *sock,void **uptr,void *data,unsigned long len)
  348. {
  349. unsigned char *buf = (unsigned char*)data;
  350. switch(buf[0])
  351. {
  352. case RPC_SOCKET:
  353. fprintf(stderr, "RPC_SOCKET\n");
  354. struct socket_st socket_rpc;
  355. memcpy(&socket_rpc, &buf[1], sizeof(struct socket_st));
  356. handle_socket(sock, uptr, &socket_rpc);
  357. break;
  358. case RPC_LISTEN:
  359. fprintf(stderr, "RPC_LISTEN\n");
  360. struct listen_st listen_rpc;
  361. memcpy(&listen_rpc, &buf[1], sizeof(struct listen_st));
  362. handle_listen(sock, uptr, &listen_rpc);
  363. break;
  364. case RPC_BIND:
  365. fprintf(stderr, "RPC_BIND\n");
  366. struct bind_st bind_rpc;
  367. memcpy(&bind_rpc, &buf[1], sizeof(struct bind_st));
  368. handle_bind(sock, uptr, &bind_rpc);
  369. break;
  370. case RPC_KILL_INTERCEPT:
  371. fprintf(stderr, "RPC_KILL_INTERCEPT\n");
  372. //scloseClient(sock);
  373. break;
  374. case RPC_CONNECT:
  375. fprintf(stderr, "RPC_CONNECT\n");
  376. struct connect_st connect_rpc;
  377. memcpy(&connect_rpc, &buf[1], sizeof(struct connect_st));
  378. handle_connect(sock, uptr, &connect_rpc);
  379. break;
  380. case RPC_FD_MAP_COMPLETION:
  381. fprintf(stderr, "RPC_FD_MAP_COMPLETION\n");
  382. handle_retval(sock, uptr, buf);
  383. break;
  384. default:
  385. break;
  386. }
  387. }
  388. /*
  389. * Send a return value to the client for an RPC
  390. */
  391. int NetconEthernetTap::send_return_value(TcpConnection *conn, int retval, int _errno = 0)
  392. {
  393. if(conn) {
  394. int n = send_return_value(_phy.getDescriptor(conn->rpcSock), retval, _errno);
  395. if(n > 0)
  396. conn->pending = false;
  397. else {
  398. fprintf(stderr, "Unable to send return value to the intercept. Closing connection\n");
  399. closeConnection(conn);
  400. }
  401. return n;
  402. }
  403. return -1;
  404. }
  405. int NetconEthernetTap::send_return_value(int fd, int retval, int _errno = 0)
  406. {
  407. int sz = sizeof(char) + sizeof(retval) + sizeof(errno);
  408. char retmsg[sz];
  409. memset(&retmsg, '\0', sizeof(retmsg));
  410. retmsg[0]=RPC_RETVAL;
  411. memcpy(&retmsg[1], &retval, sizeof(retval));
  412. memcpy(&retmsg[1]+sizeof(retval), &_errno, sizeof(_errno));
  413. return write(fd, &retmsg, sz);
  414. }
  415. /*------------------------------------------------------------------------------
  416. --------------------------------- LWIP callbacks -------------------------------
  417. ------------------------------------------------------------------------------*/
  418. // NOTE: these are called from within LWIP, meaning that lwipstack->_lock is ALREADY
  419. // locked in this case!
  420. /*
  421. * Callback from LWIP for when a connection has been accepted and the PCB has been
  422. * put into an ACCEPT state.
  423. *
  424. * A socketpair is created, one end is kept and wrapped into a PhySocket object
  425. * for use in the main ZT I/O loop, and one end is sent to the client. The client
  426. * is then required to tell the service what new file descriptor it has allocated
  427. * for this connection. After the mapping is complete, the accepted socket can be
  428. * used.
  429. *
  430. * @param associated service state object
  431. * @param newly allocated PCB
  432. * @param error code
  433. * @return ERR_OK if everything is ok, -1 otherwise
  434. [ ] EAGAIN or EWOULDBLOCK - The socket is marked nonblocking and no connections are present
  435. to be accepted. POSIX.1-2001 allows either error to be returned for
  436. this case, and does not require these constants to have the same value,
  437. so a portable application should check for both possibilities.
  438. [ ] EBADF - The descriptor is invalid.
  439. [i] ECONNABORTED - A connection has been aborted.
  440. [i] EFAULT - The addr argument is not in a writable part of the user address space.
  441. [ ] EINTR - The system call was interrupted by a signal that was caught before a valid connection arrived; see signal(7).
  442. [ ] EINVAL - Socket is not listening for connections, or addrlen is invalid (e.g., is negative).
  443. [ ] EINVAL - (accept4()) invalid value in flags.
  444. [ ] EMFILE - The per-process limit of open file descriptors has been reached.
  445. [ ] ENFILE - The system limit on the total number of open files has been reached.
  446. [ ] ENOBUFS, ENOMEM - Not enough free memory. This often means that the memory allocation is limited by the socket buffer limits, not by the system memory.
  447. [i] ENOTSOCK - The descriptor references a file, not a socket.
  448. [i] EOPNOTSUPP - The referenced socket is not of type SOCK_STREAM.
  449. [ ] EPROTO - Protocol error.
  450. *
  451. */
  452. err_t NetconEthernetTap::nc_accept(void *arg, struct tcp_pcb *newpcb, err_t err)
  453. {
  454. fprintf(stderr, "nc_accept()\n");
  455. Larg *l = (Larg*)arg;
  456. TcpConnection *conn = l->conn;
  457. NetconEthernetTap *tap = l->tap;
  458. int larg_fd = tap->_phy.getDescriptor(conn->dataSock);
  459. if(conn) {
  460. ZT_PHY_SOCKFD_TYPE fds[2];
  461. socketpair(PF_LOCAL, SOCK_STREAM, 0, fds);
  462. TcpConnection *new_tcp_conn = new TcpConnection();
  463. new_tcp_conn->dataSock = tap->_phy.wrapSocket(fds[0], new_tcp_conn);
  464. new_tcp_conn->rpcSock = conn->rpcSock;
  465. new_tcp_conn->pcb = newpcb;
  466. new_tcp_conn->their_fd = fds[1];
  467. tap->tcp_connections.push_back(new_tcp_conn);
  468. int send_fd = tap->_phy.getDescriptor(conn->rpcSock);
  469. int n = write(larg_fd, "z", 1); // accept() in library waits for this byte
  470. if(n > 0) {
  471. if(sock_fd_write(send_fd, fds[1]) > 0) {
  472. new_tcp_conn->pending = true;
  473. }
  474. else {
  475. fprintf(stderr, "nc_accept(%d): unable to send fd to client\n", larg_fd);
  476. }
  477. }
  478. else {
  479. fprintf(stderr, "nc_accept(%d): error writing signal byte (send_fd = %d, perceived_fd = %d)\n", larg_fd, send_fd, fds[1]);
  480. return -1;
  481. }
  482. tap->lwipstack->_tcp_arg(newpcb, new Larg(tap, new_tcp_conn));
  483. tap->lwipstack->_tcp_recv(newpcb, nc_recved);
  484. tap->lwipstack->_tcp_err(newpcb, nc_err);
  485. tap->lwipstack->_tcp_sent(newpcb, nc_sent);
  486. tap->lwipstack->_tcp_poll(newpcb, nc_poll, 0.5);
  487. tcp_accepted(conn->pcb); // Let lwIP know that it can queue additional incoming connections
  488. return ERR_OK;
  489. }
  490. else {
  491. fprintf(stderr, "nc_accept(%d): can't locate Connection object for PCB.\n", larg_fd);
  492. }
  493. return -1;
  494. }
  495. /*
  496. * Callback from LWIP for when data is available to be read from the network.
  497. *
  498. * Data is in the form of a linked list of struct pbufs, it is then recombined and
  499. * send to the client over the associated unix socket.
  500. *
  501. * @param associated service state object
  502. * @param allocated PCB
  503. * @param chain of pbufs
  504. * @param error code
  505. * @return ERR_OK if everything is ok, -1 otherwise
  506. *
  507. */
  508. err_t NetconEthernetTap::nc_recved(void *arg, struct tcp_pcb *tpcb, struct pbuf *p, err_t err)
  509. {
  510. fprintf(stderr, "nc_recved()\n");
  511. Larg *l = (Larg*)arg;
  512. int n;
  513. struct pbuf* q = p;
  514. if(!l->conn) {
  515. fprintf(stderr, "nc_recved(): no connection object\n");
  516. return ERR_OK; // ?
  517. }
  518. if(p == NULL) {
  519. if(l->conn) {
  520. fprintf(stderr, "nc_recved(): closing connection\n");
  521. l->tap->closeConnection(l->conn);
  522. }
  523. else {
  524. fprintf(stderr, "nc_recved(): can't locate connection via (arg)\n");
  525. }
  526. return err;
  527. }
  528. q = p;
  529. while(p != NULL) { // Cycle through pbufs and write them to the socket
  530. if(p->len <= 0)
  531. break; // ?
  532. if((n = l->tap->_phy.streamSend(l->conn->dataSock,p->payload, p->len)) > 0) {
  533. if(n < p->len) {
  534. fprintf(stderr, "nc_recved(): unable to write entire pbuf to buffer\n");
  535. }
  536. l->tap->lwipstack->_tcp_recved(tpcb, n); // TODO: would it be more efficient to call this once at the end?
  537. }
  538. else {
  539. fprintf(stderr, "nc_recved(): No data written to intercept buffer\n");
  540. }
  541. p = p->next;
  542. }
  543. l->tap->lwipstack->_pbuf_free(q); // free pbufs
  544. return ERR_OK;
  545. }
  546. /*
  547. * Callback from LWIP when an internal error is associtated with the given (arg)
  548. *
  549. * Since the PCB related to this error might no longer exist, only its perviously
  550. * associated (arg) is provided to us.
  551. *
  552. * @param associated service state object
  553. * @param error code
  554. *
  555. */
  556. void NetconEthernetTap::nc_err(void *arg, err_t err)
  557. {
  558. Larg *l = (Larg*)arg;
  559. fprintf(stderr, "larg = %x, nc_err() = %d\n", l, err);
  560. if(l->conn) {
  561. switch(err)
  562. {
  563. // FIXME: Check if connection is pending first?
  564. case ERR_MEM:
  565. l->tap->send_return_value(l->conn, -1, ENOMEM);
  566. break;
  567. case ERR_BUF:
  568. // FIXME: From user's perspective, this is the same as an ENOMEM error. I think.
  569. l->tap->send_return_value(l->conn, -1, ENOMEM);
  570. break;
  571. case ERR_TIMEOUT:
  572. l->tap->send_return_value(l->conn, -1, ETIMEDOUT);
  573. break;
  574. case ERR_RTE:
  575. l->tap->send_return_value(l->conn, -1, ENETUNREACH);
  576. break;
  577. case ERR_INPROGRESS:
  578. l->tap->send_return_value(l->conn, -1, EINPROGRESS);
  579. break;
  580. case ERR_VAL:
  581. l->tap->send_return_value(l->conn, -1, EINVAL);
  582. break;
  583. case ERR_WOULDBLOCK:
  584. l->tap->send_return_value(l->conn, -1, EWOULDBLOCK);
  585. break;
  586. case ERR_USE:
  587. l->tap->send_return_value(l->conn, -1, EADDRINUSE);
  588. break;
  589. case ERR_ISCONN:
  590. l->tap->send_return_value(l->conn, -1, EISCONN);
  591. break;
  592. // FIXME: Below are errors which don't have a standard errno correlate
  593. case ERR_ABRT:
  594. l->tap->send_return_value(l->conn, -1, -1);
  595. break;
  596. case ERR_RST:
  597. l->tap->send_return_value(l->conn, -1, -1);
  598. break;
  599. case ERR_CLSD:
  600. l->tap->send_return_value(l->conn, -1, -1);
  601. break;
  602. case ERR_CONN:
  603. l->tap->send_return_value(l->conn, -1, -1);
  604. break;
  605. case ERR_ARG:
  606. l->tap->send_return_value(l->conn, -1, -1);
  607. break;
  608. case ERR_IF:
  609. l->tap->send_return_value(l->conn, -1, -1);
  610. break;
  611. default:
  612. break;
  613. }
  614. fprintf(stderr, "nc_err(): closing connection\n");
  615. l->tap->closeConnection(l->conn);
  616. }
  617. else {
  618. fprintf(stderr, "nc_err(): can't locate connection object for PCB\n");
  619. }
  620. }
  621. /*
  622. * Callback from LWIP to do whatever work we might need to do.
  623. *
  624. * @param associated service state object
  625. * @param PCB we're polling on
  626. * @return ERR_OK if everything is ok, -1 otherwise
  627. *
  628. */
  629. err_t NetconEthernetTap::nc_poll(void* arg, struct tcp_pcb *tpcb)
  630. {
  631. uint64_t now = OSUtils::now();
  632. //fprintf(stderr, "nc_poll(): now = %u\n", now);
  633. //fprintf(stderr, "nc_poll\n");
  634. /*
  635. Larg *l = (Larg*)arg;
  636. TcpConnection *conn = l->conn;
  637. NetconEthernetTap *tap = l->tap;
  638. if(conn && conn->idx) // if valid connection and non-zero index (indicating data present)
  639. tap->handle_write(conn);
  640. */
  641. return ERR_OK;
  642. }
  643. /*
  644. * Callback from LWIP to signal that 'len' bytes have successfully been sent.
  645. * As a result, we should put our socket back into a notify-on-readability state
  646. * since there is now room on the PCB buffer to write to.
  647. *
  648. * NOTE: This could be used to track the amount of data sent by a connection.
  649. *
  650. * @param associated service state object
  651. * @param relevant PCB
  652. * @param length of data sent
  653. * @return ERR_OK if everything is ok, -1 otherwise
  654. *
  655. */
  656. err_t NetconEthernetTap::nc_sent(void* arg, struct tcp_pcb *tpcb, u16_t len)
  657. {
  658. Larg *l = (Larg*)arg;
  659. if(len) {
  660. //fprintf(stderr, "ACKING len = %d, setting read-notify = true, (sndbuf = %d)\n", len, l->conn->pcb->snd_buf);
  661. l->tap->_phy.setNotifyReadable(l->conn->dataSock, true);
  662. //uint64_t now = OSUtils::now();
  663. //fprintf(stderr, "nc_sent(): now = %u\n", now);
  664. l->tap->_phy.whack();
  665. //l->tap->handle_write(l->conn);
  666. }
  667. return ERR_OK;
  668. }
  669. /*
  670. * Callback from LWIP which sends a return value to the client to signal that
  671. * a connection was established for this PCB
  672. *
  673. * @param associated service state object
  674. * @param relevant PCB
  675. * @param error code
  676. * @return ERR_OK if everything is ok, -1 otherwise
  677. *
  678. */
  679. err_t NetconEthernetTap::nc_connected(void *arg, struct tcp_pcb *tpcb, err_t err)
  680. {
  681. //fprintf(stderr, "nc_connected\n");
  682. Larg *l = (Larg*)arg;
  683. l->tap->send_return_value(l->conn, err);
  684. return ERR_OK;
  685. }
  686. /*------------------------------------------------------------------------------
  687. ----------------------------- RPC Handler functions ----------------------------
  688. ------------------------------------------------------------------------------*/
  689. /*
  690. * Handles an RPC to bind an LWIP PCB to a given address and port
  691. *
  692. * @param Client that is making the RPC
  693. * @param structure containing the data and parameters for this client's RPC
  694. *
  695. [ ] EACCES - The address is protected, and the user is not the superuser.
  696. [X] EADDRINUSE - The given address is already in use.
  697. [X] EBADF - sockfd is not a valid descriptor.
  698. [X] EINVAL - The socket is already bound to an address.
  699. [ ] ENOTSOCK - sockfd is a descriptor for a file, not a socket.
  700. [ ] The following errors are specific to UNIX domain (AF_UNIX) sockets:
  701. [ ] EACCES - Search permission is denied on a component of the path prefix. (See also path_resolution(7).)
  702. [ ] EADDRNOTAVAIL - A nonexistent interface was requested or the requested address was not local.
  703. [ ] EFAULT - addr points outside the user's accessible address space.
  704. [ ] EINVAL - The addrlen is wrong, or the socket was not in the AF_UNIX family.
  705. [ ] ELOOP - Too many symbolic links were encountered in resolving addr.
  706. [ ] ENAMETOOLONG - s addr is too long.
  707. [ ] ENOENT - The file does not exist.
  708. [X] ENOMEM - Insufficient kernel memory was available.
  709. [ ] ENOTDIR - A component of the path prefix is not a directory.
  710. [ ] EROFS - The socket inode would reside on a read-only file system.
  711. */
  712. void NetconEthernetTap::handle_bind(PhySocket *sock, void **uptr, struct bind_st *bind_rpc)
  713. {
  714. struct sockaddr_in *connaddr;
  715. connaddr = (struct sockaddr_in *) &bind_rpc->addr;
  716. int conn_port = lwipstack->ntohs(connaddr->sin_port);
  717. ip_addr_t conn_addr;
  718. conn_addr.addr = *((u32_t *)_ips[0].rawIpData());
  719. TcpConnection *conn = getConnectionByTheirFD(sock, bind_rpc->sockfd);
  720. if(conn) {
  721. if(conn->pcb->state == CLOSED){
  722. int err = lwipstack->tcp_bind(conn->pcb, &conn_addr, conn_port);
  723. if(err != ERR_OK) {
  724. int ip = connaddr->sin_addr.s_addr;
  725. unsigned char d[4];
  726. d[0] = ip & 0xFF;
  727. d[1] = (ip >> 8) & 0xFF;
  728. d[2] = (ip >> 16) & 0xFF;
  729. d[3] = (ip >> 24) & 0xFF;
  730. fprintf(stderr, "handle_bind(): error binding to %d.%d.%d.%d : %d\n", d[0],d[1],d[2],d[3], conn_port);
  731. if(err == ERR_USE)
  732. send_return_value(conn, -1, EADDRINUSE);
  733. if(err == ERR_MEM)
  734. send_return_value(conn, -1, ENOMEM);
  735. }
  736. else {
  737. send_return_value(conn, ERR_OK, ERR_OK); // Success
  738. }
  739. }
  740. else {
  741. fprintf(stderr, "handle_bind(): PCB not in CLOSED state. Ignoring BIND request.\n");
  742. send_return_value(conn, -1, EINVAL);
  743. }
  744. }
  745. else {
  746. fprintf(stderr, "handle_bind(): can't locate connection for PCB\n");
  747. send_return_value(conn, -1, EBADF); // FIXME: This makes no sense
  748. }
  749. }
  750. /*
  751. * Handles an RPC to put an LWIP PCB into LISTEN mode
  752. *
  753. * @param Client that is making the RPC
  754. * @param structure containing the data and parameters for this client's RPC
  755. *
  756. [ ] EADDRINUSE - Another socket is already listening on the same port.
  757. [X] EBADF - The argument sockfd is not a valid descriptor.
  758. [ ] ENOTSOCK - The argument sockfd is not a socket.
  759. [ ] EOPNOTSUPP - The socket is not of a type that supports the listen() operation.
  760. */
  761. void NetconEthernetTap::handle_listen(PhySocket *sock, void **uptr, struct listen_st *listen_rpc)
  762. {
  763. TcpConnection *conn = getConnectionByTheirFD(sock, listen_rpc->sockfd);
  764. if(conn) {
  765. if(conn->pcb->state == LISTEN) {
  766. fprintf(stderr, "handle_listen(): PCB is already in listening state.\n");
  767. return;
  768. }
  769. struct tcp_pcb* listening_pcb = lwipstack->tcp_listen(conn->pcb);
  770. if(listening_pcb != NULL) {
  771. conn->pcb = listening_pcb;
  772. lwipstack->tcp_accept(listening_pcb, nc_accept);
  773. lwipstack->tcp_arg(listening_pcb, new Larg(this, conn));
  774. /* we need to wait for the client to send us the fd allocated on their end
  775. for this listening socket */
  776. conn->pending = true;
  777. send_return_value(conn, ERR_OK, ERR_OK);
  778. }
  779. else {
  780. fprintf(stderr, "handle_listen(): unable to allocate memory for new listening PCB\n");
  781. send_return_value(conn, -1, ENOMEM); // FIXME: This does not have an equivalent errno value
  782. }
  783. }
  784. else {
  785. fprintf(stderr, "handle_listen(): can't locate connection for PCB\n");
  786. send_return_value(conn, -1, EBADF);
  787. }
  788. }
  789. /**
  790. * Handles a return value (client's perceived fd) and completes a mapping
  791. * so that we know what connection an RPC call should be associated with.
  792. *
  793. * @param Client that is making the RPC
  794. * @param structure containing the data and parameters for this client's RPC
  795. *
  796. */
  797. void NetconEthernetTap::handle_retval(PhySocket *sock, void **uptr, unsigned char* buf)
  798. {
  799. TcpConnection *conn = (TcpConnection*)*uptr;
  800. if(conn->pending) {
  801. memcpy(&(conn->perceived_fd), &buf[1], sizeof(int));
  802. //fprintf(stderr, "handle_retval(): Mapping [our=%d -> their=%d]\n",
  803. //_phy.getDescriptor(conn->dataSock), conn->perceived_fd);
  804. conn->pending = false;
  805. }
  806. }
  807. /*
  808. * Handles an RPC to create a socket (LWIP PCB and associated socketpair)
  809. *
  810. * A socketpair is created, one end is kept and wrapped into a PhySocket object
  811. * for use in the main ZT I/O loop, and one end is sent to the client. The client
  812. * is then required to tell the service what new file descriptor it has allocated
  813. * for this connection. After the mapping is complete, the socket can be used.
  814. *
  815. * @param Client that is making the RPC
  816. * @param structure containing the data and parameters for this client's RPC
  817. *
  818. TODO: set errno appropriately
  819. [ ] EACCES - Permission to create a socket of the specified type and/or protocol is denied.
  820. [?] EAFNOSUPPORT - The implementation does not support the specified address family.
  821. [?] EINVAL - Unknown protocol, or protocol family not available.
  822. [?] EINVAL - Invalid flags in type.
  823. [ ] EMFILE - Process file table overflow.
  824. [ ] ENFILE - The system limit on the total number of open files has been reached.
  825. [X] ENOBUFS or ENOMEM - Insufficient memory is available. The socket cannot be created until sufficient resources are freed.
  826. [ ] EPROTONOSUPPORT - The protocol type or the specified protocol is not supported within this domain.
  827. */
  828. void NetconEthernetTap::handle_socket(PhySocket *sock, void **uptr, struct socket_st* socket_rpc)
  829. {
  830. struct tcp_pcb *newpcb = lwipstack->tcp_new();
  831. if(newpcb != NULL) {
  832. ZT_PHY_SOCKFD_TYPE fds[2];
  833. socketpair(PF_LOCAL, SOCK_STREAM, 0, fds);
  834. TcpConnection *new_conn = new TcpConnection();
  835. new_conn->dataSock = _phy.wrapSocket(fds[0], new_conn);
  836. *uptr = new_conn;
  837. new_conn->rpcSock = sock;
  838. new_conn->pcb = newpcb;
  839. new_conn->their_fd = fds[1];
  840. tcp_connections.push_back(new_conn);
  841. sock_fd_write(_phy.getDescriptor(sock), fds[1]);
  842. // Once the client tells us what its fd is for the other end, we can then complete the mapping
  843. new_conn->pending = true;
  844. }
  845. else {
  846. int rpc_fd = _phy.getDescriptor(sock);
  847. sock_fd_write(rpc_fd, -1); // Send a bad fd, to signal error
  848. fprintf(stderr, "handle_socket(): Memory not available for new PCB\n");
  849. if(send_return_value(rpc_fd, -1, ENOMEM) < 0) {
  850. fprintf(stderr, "handle_socket(): Unable to send return value\n");
  851. }
  852. }
  853. }
  854. /*
  855. * Handles an RPC to connect to a given address and port
  856. *
  857. * @param Client that is making the RPC
  858. * @param structure containing the data and parameters for this client's RPC
  859. --- Error handling in this method will only catch problems which are immeidately
  860. apprent. Some errors will need to be caught in the nc_connected(0 callback
  861. [i] EACCES - For UNIX domain sockets, which are identified by pathname: Write permission is denied ...
  862. [ ] EACCES, EPERM - The user tried to connect to a broadcast address without having the socket broadcast flag enabled ...
  863. [i] EADDRINUSE - Local address is already in use.
  864. [?] EAFNOSUPPORT - The passed address didn't have the correct address family in its sa_family field.
  865. [ ] EAGAIN - No more free local ports or insufficient entries in the routing cache.
  866. [ ] EALREADY - The socket is nonblocking and a previous connection attempt has not yet been completed.
  867. [ ] EBADF - The file descriptor is not a valid index in the descriptor table.
  868. [ ] ECONNREFUSED - No-one listening on the remote address.
  869. [i] EFAULT - The socket structure address is outside the user's address space.
  870. [ ] EINPROGRESS - The socket is nonblocking and the connection cannot be completed immediately.
  871. [ ] EINTR - The system call was interrupted by a signal that was caught.
  872. [X] EISCONN - The socket is already connected.
  873. [?] ENETUNREACH - Network is unreachable.
  874. [ ] ENOTSOCK - The file descriptor is not associated with a socket.
  875. [ ] ETIMEDOUT - Timeout while attempting connection.
  876. *
  877. */
  878. void NetconEthernetTap::handle_connect(PhySocket *sock, void **uptr, struct connect_st* connect_rpc)
  879. {
  880. TcpConnection *conn = (TcpConnection*)*uptr;
  881. struct sockaddr_in *connaddr;
  882. connaddr = (struct sockaddr_in *) &connect_rpc->__addr;
  883. int conn_port = lwipstack->ntohs(connaddr->sin_port);
  884. ip_addr_t conn_addr = convert_ip((struct sockaddr_in *)&connect_rpc->__addr);
  885. if(conn != NULL) {
  886. lwipstack->tcp_sent(conn->pcb, nc_sent); // FIXME: Move?
  887. lwipstack->tcp_recv(conn->pcb, nc_recved);
  888. lwipstack->tcp_err(conn->pcb, nc_err);
  889. lwipstack->tcp_poll(conn->pcb, nc_poll, APPLICATION_POLL_FREQ);
  890. lwipstack->tcp_arg(conn->pcb, new Larg(this, conn));
  891. int err = 0;
  892. if((err = lwipstack->tcp_connect(conn->pcb,&conn_addr,conn_port, nc_connected)) < 0)
  893. {
  894. if(err == ERR_USE) {
  895. send_return_value(conn, -1, EISCONN); // Already in use
  896. return;
  897. }
  898. if(err == ERR_VAL) {
  899. send_return_value(conn, -1, EAFNOSUPPORT); // FIXME: Invalid arguments?
  900. return;
  901. }
  902. if(err == ERR_RTE) {
  903. send_return_value(conn, -1, ENETUNREACH); // FIXME: Host unreachable
  904. return;
  905. }
  906. if(err == ERR_BUF)
  907. {
  908. // FIXME
  909. }
  910. if(err == ERR_MEM)
  911. {
  912. // FIXME: return value originates from tcp_enqueue_flags()
  913. }
  914. // We should only return a value if failure happens immediately
  915. // Otherwise, we still need to wait for a callback from lwIP.
  916. // - This is because an ERR_OK from tcp_connect() only verifies
  917. // that the SYN packet was enqueued onto the stack properly,
  918. // that's it!
  919. // - Most instances of a retval for a connect() should happen
  920. // in the nc_connect() and nc_err() callbacks!
  921. fprintf(stderr, "handle_connect(): unable to connect\n");
  922. send_return_value(conn, -1, err); // FIXME: Only catch unhandled errors
  923. }
  924. // Everything seems to be ok, but we don't have enough info to retval
  925. conn->pending=true;
  926. }
  927. else {
  928. fprintf(stderr, "could not locate PCB based on their fd\n");
  929. }
  930. }
  931. void NetconEthernetTap::handle_write(TcpConnection *conn)
  932. {
  933. float max = (float)TCP_SND_BUF;
  934. int r;
  935. if(!conn) {
  936. fprintf(stderr, "handle_write(): could not locate connection for this fd\n");
  937. return;
  938. }
  939. if(conn->idx < max) {
  940. int sndbuf = conn->pcb->snd_buf; // How much we are currently allowed to write to the connection
  941. /* PCB send buffer is full,turn off readability notifications for the
  942. corresponding PhySocket until nc_sent() is called and confirms that there is
  943. now space on the buffer */
  944. if(sndbuf == 0) {
  945. _phy.setNotifyReadable(conn->dataSock, false);
  946. lwipstack->_tcp_output(conn->pcb);
  947. return;
  948. }
  949. int read_fd = _phy.getDescriptor(conn->dataSock);
  950. if((r = read(read_fd, (&conn->buf)+conn->idx, sndbuf)) > 0) {
  951. conn->idx += r;
  952. /* Writes data pulled from the client's socket buffer to LWIP. This merely sends the
  953. * data to LWIP to be enqueued and eventually sent to the network. */
  954. if(r > 0) {
  955. int sz;
  956. // NOTE: this assumes that lwipstack->_lock is locked, either
  957. // because we are in a callback or have locked it manually.
  958. int err = lwipstack->_tcp_write(conn->pcb, &conn->buf, r, TCP_WRITE_FLAG_COPY);
  959. if(err != ERR_OK) {
  960. fprintf(stderr, "handle_write(): error while writing to PCB\n");
  961. return;
  962. }
  963. else {
  964. sz = (conn->idx)-r;
  965. if(sz) {
  966. memmove(&conn->buf, (conn->buf+r), sz);
  967. }
  968. conn->idx -= r;
  969. return;
  970. }
  971. }
  972. else {
  973. fprintf(stderr, "handle_write(): LWIP stack full\n");
  974. return;
  975. }
  976. }
  977. }
  978. }
  979. } // namespace ZeroTier
  980. #endif // ZT_ENABLE_NETCON