LinuxEthernetTap.cpp 16 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: 2025-01-01
  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. #ifdef __GNUC__
  14. #pragma GCC diagnostic ignored "-Wrestrict"
  15. #endif
  16. #include "../node/Constants.hpp"
  17. #ifdef __LINUX__
  18. #include "../node/Utils.hpp"
  19. #include "../node/Mutex.hpp"
  20. #include "../node/Dictionary.hpp"
  21. #include "OSUtils.hpp"
  22. #include "LinuxEthernetTap.hpp"
  23. #include "LinuxNetLink.hpp"
  24. #include <stdint.h>
  25. #include <stdio.h>
  26. #include <stdlib.h>
  27. #include <string.h>
  28. #include <unistd.h>
  29. #include <signal.h>
  30. #include <fcntl.h>
  31. #include <errno.h>
  32. #include <sys/types.h>
  33. #include <sys/stat.h>
  34. #include <sys/ioctl.h>
  35. #include <sys/wait.h>
  36. #include <sys/select.h>
  37. #include <netinet/in.h>
  38. #include <net/if_arp.h>
  39. #include <arpa/inet.h>
  40. #include <linux/if.h>
  41. #include <linux/if_tun.h>
  42. #include <linux/if_addr.h>
  43. #include <linux/if_ether.h>
  44. #include <ifaddrs.h>
  45. #include <algorithm>
  46. #include <utility>
  47. #include <string>
  48. #ifndef IFNAMSIZ
  49. #define IFNAMSIZ 16
  50. #endif
  51. #define ZT_TAP_BUF_SIZE 16384
  52. // ff:ff:ff:ff:ff:ff with no ADI
  53. static const ZeroTier::MulticastGroup _blindWildcardMulticastGroup(ZeroTier::MAC(0xff),0);
  54. namespace ZeroTier {
  55. static const char _base32_chars[32] = { 'a','b','c','d','e','f','g','h','i','j','k','l','m','n','o','p','q','r','s','t','u','v','w','x','y','z','2','3','4','5','6','7' };
  56. static void _base32_5_to_8(const uint8_t *in,char *out)
  57. {
  58. out[0] = _base32_chars[(in[0]) >> 3];
  59. out[1] = _base32_chars[(in[0] & 0x07) << 2 | (in[1] & 0xc0) >> 6];
  60. out[2] = _base32_chars[(in[1] & 0x3e) >> 1];
  61. out[3] = _base32_chars[(in[1] & 0x01) << 4 | (in[2] & 0xf0) >> 4];
  62. out[4] = _base32_chars[(in[2] & 0x0f) << 1 | (in[3] & 0x80) >> 7];
  63. out[5] = _base32_chars[(in[3] & 0x7c) >> 2];
  64. out[6] = _base32_chars[(in[3] & 0x03) << 3 | (in[4] & 0xe0) >> 5];
  65. out[7] = _base32_chars[(in[4] & 0x1f)];
  66. }
  67. LinuxEthernetTap::LinuxEthernetTap(
  68. const char *homePath,
  69. const MAC &mac,
  70. unsigned int mtu,
  71. unsigned int metric,
  72. uint64_t nwid,
  73. const char *friendlyName,
  74. void (*handler)(void *,void *,uint64_t,const MAC &,const MAC &,unsigned int,unsigned int,const void *,unsigned int),
  75. void *arg) :
  76. _handler(handler),
  77. _arg(arg),
  78. _nwid(nwid),
  79. _mac(mac),
  80. _homePath(homePath),
  81. _mtu(mtu),
  82. _fd(0),
  83. _enabled(true)
  84. {
  85. static std::mutex s_tapCreateLock;
  86. char procpath[128],nwids[32];
  87. struct stat sbuf;
  88. // Create only one tap at a time globally.
  89. std::lock_guard<std::mutex> tapCreateLock(s_tapCreateLock);
  90. // Make sure Linux netlink is initialized.
  91. (void)LinuxNetLink::getInstance();
  92. OSUtils::ztsnprintf(nwids,sizeof(nwids),"%.16llx",nwid);
  93. _fd = ::open("/dev/net/tun",O_RDWR);
  94. if (_fd <= 0) {
  95. _fd = ::open("/dev/tun",O_RDWR);
  96. if (_fd <= 0)
  97. throw std::runtime_error(std::string("could not open TUN/TAP device: ") + strerror(errno));
  98. }
  99. struct ifreq ifr;
  100. memset(&ifr,0,sizeof(ifr));
  101. // Restore device names from legacy devicemap, but for new devices we use a base32-based
  102. // canonical device name.
  103. std::map<std::string,std::string> globalDeviceMap;
  104. FILE *devmapf = fopen((_homePath + ZT_PATH_SEPARATOR_S + "devicemap").c_str(),"r");
  105. if (devmapf) {
  106. char buf[256];
  107. while (fgets(buf,sizeof(buf),devmapf)) {
  108. char *x = (char *)0;
  109. char *y = (char *)0;
  110. char *saveptr = (char *)0;
  111. for(char *f=Utils::stok(buf,"\r\n=",&saveptr);(f);f=Utils::stok((char *)0,"\r\n=",&saveptr)) {
  112. if (!x) x = f;
  113. else if (!y) y = f;
  114. else break;
  115. }
  116. if ((x)&&(y)&&(x[0])&&(y[0]))
  117. globalDeviceMap[x] = y;
  118. }
  119. fclose(devmapf);
  120. }
  121. bool recalledDevice = false;
  122. std::map<std::string,std::string>::const_iterator gdmEntry = globalDeviceMap.find(nwids);
  123. if (gdmEntry != globalDeviceMap.end()) {
  124. Utils::scopy(ifr.ifr_name,sizeof(ifr.ifr_name),gdmEntry->second.c_str());
  125. OSUtils::ztsnprintf(procpath,sizeof(procpath),"/proc/sys/net/ipv4/conf/%s",ifr.ifr_name);
  126. recalledDevice = (stat(procpath,&sbuf) != 0);
  127. }
  128. if (!recalledDevice) {
  129. #ifdef __SYNOLOGY__
  130. int devno = 50;
  131. do {
  132. OSUtils::ztsnprintf(ifr.ifr_name,sizeof(ifr.ifr_name),"eth%d",devno++);
  133. OSUtils::ztsnprintf(procpath,sizeof(procpath),"/proc/sys/net/ipv4/conf/%s",ifr.ifr_name);
  134. } while (stat(procpath,&sbuf) == 0); // try zt#++ until we find one that does not exist
  135. #else
  136. uint64_t trial = 0; // incremented in the very unlikely event of a name collision with another network
  137. do {
  138. const uint64_t nwid40 = (nwid ^ (nwid >> 24)) + trial++;
  139. uint8_t tmp2[5];
  140. char tmp3[11];
  141. tmp2[0] = (uint8_t)((nwid40 >> 32) & 0xff);
  142. tmp2[1] = (uint8_t)((nwid40 >> 24) & 0xff);
  143. tmp2[2] = (uint8_t)((nwid40 >> 16) & 0xff);
  144. tmp2[3] = (uint8_t)((nwid40 >> 8) & 0xff);
  145. tmp2[4] = (uint8_t)(nwid40 & 0xff);
  146. tmp3[0] = 'z';
  147. tmp3[1] = 't';
  148. _base32_5_to_8(tmp2,tmp3 + 2);
  149. tmp3[10] = (char)0;
  150. memcpy(ifr.ifr_name,tmp3,11);
  151. OSUtils::ztsnprintf(procpath,sizeof(procpath),"/proc/sys/net/ipv4/conf/%s",ifr.ifr_name);
  152. } while (stat(procpath,&sbuf) == 0);
  153. #endif
  154. }
  155. ifr.ifr_flags = IFF_TAP | IFF_NO_PI;
  156. if (ioctl(_fd,TUNSETIFF,(void *)&ifr) < 0) {
  157. ::close(_fd);
  158. throw std::runtime_error("unable to configure TUN/TAP device for TAP operation");
  159. }
  160. ::ioctl(_fd,TUNSETPERSIST,0); // valgrind may generate a false alarm here
  161. _dev = ifr.ifr_name;
  162. ::fcntl(_fd,F_SETFD,fcntl(_fd,F_GETFD) | FD_CLOEXEC);
  163. (void)::pipe(_shutdownSignalPipe);
  164. _tapReaderThread = std::thread([this]{
  165. fd_set readfds,nullfds;
  166. int n,nfds,r;
  167. void *buf = nullptr;
  168. std::vector<void *> buffers;
  169. {
  170. struct ifreq ifr;
  171. memset(&ifr,0,sizeof(ifr));
  172. strcpy(ifr.ifr_name,_dev.c_str());
  173. const int sock = socket(AF_INET,SOCK_DGRAM,0);
  174. if (sock <= 0)
  175. return;
  176. if (ioctl(sock,SIOCGIFFLAGS,(void *)&ifr) < 0) {
  177. ::close(sock);
  178. printf("WARNING: ioctl() failed setting up Linux tap device (bring interface up)\n");
  179. return;
  180. }
  181. ifr.ifr_flags |= IFF_UP;
  182. if (ioctl(sock,SIOCSIFFLAGS,(void *)&ifr) < 0) {
  183. ::close(sock);
  184. printf("WARNING: ioctl() failed setting up Linux tap device (bring interface up)\n");
  185. return;
  186. }
  187. // Some kernel versions seem to require you to yield while the device comes up
  188. // before they will accept MTU and MAC. For others it doesn't matter, but is
  189. // harmless. This was moved to the worker thread though so as not to block the
  190. // main ZeroTier loop.
  191. usleep(500000);
  192. ifr.ifr_ifru.ifru_hwaddr.sa_family = ARPHRD_ETHER;
  193. _mac.copyTo(ifr.ifr_ifru.ifru_hwaddr.sa_data,6);
  194. if (ioctl(sock,SIOCSIFHWADDR,(void *)&ifr) < 0) {
  195. ::close(sock);
  196. printf("WARNING: ioctl() failed setting up Linux tap device (set MAC)\n");
  197. return;
  198. }
  199. ifr.ifr_ifru.ifru_mtu = (int)_mtu;
  200. if (ioctl(sock,SIOCSIFMTU,(void *)&ifr) < 0) {
  201. ::close(sock);
  202. printf("WARNING: ioctl() failed setting up Linux tap device (set MTU)\n");
  203. return;
  204. }
  205. fcntl(_fd,F_SETFL,O_NONBLOCK);
  206. ::close(sock);
  207. }
  208. FD_ZERO(&readfds);
  209. FD_ZERO(&nullfds);
  210. nfds = (int)std::max(_shutdownSignalPipe[0],_fd) + 1;
  211. r = 0;
  212. for(;;) {
  213. FD_SET(_shutdownSignalPipe[0],&readfds);
  214. FD_SET(_fd,&readfds);
  215. select(nfds,&readfds,&nullfds,&nullfds,(struct timeval *)0);
  216. if (FD_ISSET(_shutdownSignalPipe[0],&readfds)) // writes to shutdown pipe terminate thread
  217. break;
  218. if (FD_ISSET(_fd,&readfds)) {
  219. for(;;) { // read until there are no more packets, then return to outer select() loop
  220. if (!buf) {
  221. // To reduce use of the mutex, we keep a local buffer vector and
  222. // swap (which is a pointer swap) with the global one when it's
  223. // empty. This retrieves a batch of buffers to use.
  224. if (buffers.empty()) {
  225. std::lock_guard<std::mutex> l(_buffers_l);
  226. buffers.swap(_buffers);
  227. }
  228. if (buffers.empty()) {
  229. buf = malloc(ZT_TAP_BUF_SIZE);
  230. if (!buf)
  231. break;
  232. } else {
  233. buf = buffers.back();
  234. buffers.pop_back();
  235. }
  236. }
  237. n = (int)::read(_fd,reinterpret_cast<uint8_t *>(buf) + r,ZT_TAP_BUF_SIZE - r);
  238. if (n > 0) {
  239. // Some tap drivers like to send the ethernet frame and the
  240. // payload in two chunks, so handle that by accumulating
  241. // data until we have at least a frame.
  242. r += n;
  243. if (r > 14) {
  244. if (r > ((int)_mtu + 14)) // sanity check for weird TAP behavior on some platforms
  245. r = _mtu + 14;
  246. if (_enabled) {
  247. _tapq.post(std::pair<void *,int>(buf,r));
  248. buf = nullptr;
  249. }
  250. r = 0;
  251. }
  252. } else {
  253. r = 0;
  254. break;
  255. }
  256. }
  257. }
  258. }
  259. });
  260. _tapProcessorThread = std::thread([this] {
  261. MAC to,from;
  262. std::pair<void *,int> qi;
  263. while (_tapq.get(qi)) {
  264. uint8_t *const b = reinterpret_cast<uint8_t *>(qi.first);
  265. if (b) {
  266. to.setTo(b, 6);
  267. from.setTo(b + 6, 6);
  268. unsigned int etherType = Utils::ntoh(((const uint16_t *)b)[6]);
  269. _handler(_arg, nullptr, _nwid, from, to, etherType, 0, (const void *)(b + 14),(unsigned int)(qi.second - 14));
  270. {
  271. std::lock_guard<std::mutex> l(_buffers_l);
  272. if (_buffers.size() < 128)
  273. _buffers.push_back(qi.first);
  274. else free(qi.first);
  275. }
  276. } else break;
  277. }
  278. });
  279. }
  280. LinuxEthernetTap::~LinuxEthernetTap()
  281. {
  282. (void)::write(_shutdownSignalPipe[1],"\0",1); // causes reader thread to exit
  283. _tapq.post(std::pair<void *,int>(nullptr,0)); // causes processor thread to exit
  284. ::close(_fd);
  285. ::close(_shutdownSignalPipe[0]);
  286. ::close(_shutdownSignalPipe[1]);
  287. _tapReaderThread.join();
  288. _tapProcessorThread.join();
  289. for(std::vector<void *>::iterator i(_buffers.begin());i!=_buffers.end();++i)
  290. free(*i);
  291. std::vector< std::pair<void *,int> > dv(_tapq.drain());
  292. for(std::vector< std::pair<void *,int> >::iterator i(dv.begin());i!=dv.end();++i) {
  293. if (i->first)
  294. free(i->first);
  295. }
  296. }
  297. void LinuxEthernetTap::setEnabled(bool en)
  298. {
  299. _enabled = en;
  300. }
  301. bool LinuxEthernetTap::enabled() const
  302. {
  303. return _enabled;
  304. }
  305. static bool ___removeIp(const std::string &_dev,const InetAddress &ip)
  306. {
  307. LinuxNetLink::getInstance().removeAddress(ip, _dev.c_str());
  308. return true;
  309. }
  310. bool LinuxEthernetTap::addIps(std::vector<InetAddress> ips)
  311. {
  312. #ifdef __SYNOLOGY__
  313. std::string filepath = "/etc/sysconfig/network-scripts/ifcfg-"+_dev;
  314. std::string cfg_contents = "DEVICE="+_dev+"\nBOOTPROTO=static";
  315. int ip4=0,ip6=0,ip4_tot=0,ip6_tot=0;
  316. for(int i=0; i<(int)ips.size(); i++) {
  317. if (ips[i].isV4())
  318. ip4_tot++;
  319. else
  320. ip6_tot++;
  321. }
  322. // Assemble and write contents of ifcfg-dev file
  323. for(int i=0; i<(int)ips.size(); i++) {
  324. if (ips[i].isV4()) {
  325. char iptmp[64],iptmp2[64];
  326. std::string numstr4 = ip4_tot > 1 ? std::to_string(ip4) : "";
  327. cfg_contents += "\nIPADDR"+numstr4+"="+ips[i].toIpString(iptmp)
  328. + "\nNETMASK"+numstr4+"="+ips[i].netmask().toIpString(iptmp2)+"\n";
  329. ip4++;
  330. } else {
  331. char iptmp[64],iptmp2[64];
  332. std::string numstr6 = ip6_tot > 1 ? std::to_string(ip6) : "";
  333. cfg_contents += "\nIPV6ADDR"+numstr6+"="+ips[i].toIpString(iptmp)
  334. + "\nNETMASK"+numstr6+"="+ips[i].netmask().toIpString(iptmp2)+"\n";
  335. ip6++;
  336. }
  337. }
  338. OSUtils::writeFile(filepath.c_str(), cfg_contents.c_str(), cfg_contents.length());
  339. // Finally, add IPs
  340. for(int i=0; i<(int)ips.size(); i++){
  341. LinuxNetLink::getInstance().addAddress(ips[i], _dev.c_str());
  342. }
  343. return true;
  344. #endif // __SYNOLOGY__
  345. return false;
  346. }
  347. bool LinuxEthernetTap::addIp(const InetAddress &ip)
  348. {
  349. if (!ip)
  350. return false;
  351. std::vector<InetAddress> allIps(ips());
  352. if (std::binary_search(allIps.begin(),allIps.end(),ip))
  353. return true;
  354. // Remove and reconfigure if address is the same but netmask is different
  355. for(std::vector<InetAddress>::iterator i(allIps.begin());i!=allIps.end();++i) {
  356. if (i->ipsEqual(ip))
  357. ___removeIp(_dev,*i);
  358. }
  359. LinuxNetLink::getInstance().addAddress(ip, _dev.c_str());
  360. return true;
  361. }
  362. bool LinuxEthernetTap::removeIp(const InetAddress &ip)
  363. {
  364. if (!ip)
  365. return true;
  366. std::vector<InetAddress> allIps(ips());
  367. if (std::find(allIps.begin(),allIps.end(),ip) != allIps.end()) {
  368. if (___removeIp(_dev,ip))
  369. return true;
  370. }
  371. return false;
  372. }
  373. std::vector<InetAddress> LinuxEthernetTap::ips() const
  374. {
  375. struct ifaddrs *ifa = (struct ifaddrs *)0;
  376. if (getifaddrs(&ifa))
  377. return std::vector<InetAddress>();
  378. std::vector<InetAddress> r;
  379. struct ifaddrs *p = ifa;
  380. while (p) {
  381. if ((!strcmp(p->ifa_name,_dev.c_str()))&&(p->ifa_addr)&&(p->ifa_netmask)&&(p->ifa_addr->sa_family == p->ifa_netmask->sa_family)) {
  382. switch(p->ifa_addr->sa_family) {
  383. case AF_INET: {
  384. struct sockaddr_in *sin = (struct sockaddr_in *)p->ifa_addr;
  385. struct sockaddr_in *nm = (struct sockaddr_in *)p->ifa_netmask;
  386. r.push_back(InetAddress(&(sin->sin_addr.s_addr),4,Utils::countBits((uint32_t)nm->sin_addr.s_addr)));
  387. } break;
  388. case AF_INET6: {
  389. struct sockaddr_in6 *sin = (struct sockaddr_in6 *)p->ifa_addr;
  390. struct sockaddr_in6 *nm = (struct sockaddr_in6 *)p->ifa_netmask;
  391. uint32_t b[4];
  392. memcpy(b,nm->sin6_addr.s6_addr,sizeof(b));
  393. r.push_back(InetAddress(sin->sin6_addr.s6_addr,16,Utils::countBits(b[0]) + Utils::countBits(b[1]) + Utils::countBits(b[2]) + Utils::countBits(b[3])));
  394. } break;
  395. }
  396. }
  397. p = p->ifa_next;
  398. }
  399. if (ifa)
  400. freeifaddrs(ifa);
  401. std::sort(r.begin(),r.end());
  402. r.erase(std::unique(r.begin(),r.end()),r.end());
  403. return r;
  404. }
  405. void LinuxEthernetTap::put(const MAC &from,const MAC &to,unsigned int etherType,const void *data,unsigned int len)
  406. {
  407. char putBuf[ZT_MAX_MTU + 64];
  408. if ((_fd > 0)&&(len <= _mtu)&&(_enabled)) {
  409. to.copyTo(putBuf,6);
  410. from.copyTo(putBuf + 6,6);
  411. *((uint16_t *)(putBuf + 12)) = htons((uint16_t)etherType);
  412. memcpy(putBuf + 14,data,len);
  413. len += 14;
  414. (void)::write(_fd,putBuf,len);
  415. }
  416. }
  417. std::string LinuxEthernetTap::deviceName() const
  418. {
  419. return _dev;
  420. }
  421. void LinuxEthernetTap::setFriendlyName(const char *friendlyName)
  422. {
  423. }
  424. void LinuxEthernetTap::scanMulticastGroups(std::vector<MulticastGroup> &added,std::vector<MulticastGroup> &removed)
  425. {
  426. char *ptr,*ptr2;
  427. unsigned char mac[6];
  428. std::vector<MulticastGroup> newGroups;
  429. int fd = ::open("/proc/net/dev_mcast",O_RDONLY);
  430. if (fd > 0) {
  431. char buf[131072];
  432. int n = (int)::read(fd,buf,sizeof(buf));
  433. if ((n > 0)&&(n < (int)sizeof(buf))) {
  434. buf[n] = (char)0;
  435. for(char *l=strtok_r(buf,"\r\n",&ptr);(l);l=strtok_r((char *)0,"\r\n",&ptr)) {
  436. int fno = 0;
  437. char *devname = (char *)0;
  438. char *mcastmac = (char *)0;
  439. for(char *f=strtok_r(l," \t",&ptr2);(f);f=strtok_r((char *)0," \t",&ptr2)) {
  440. if (fno == 1)
  441. devname = f;
  442. else if (fno == 4)
  443. mcastmac = f;
  444. ++fno;
  445. }
  446. if ((devname)&&(!strcmp(devname,_dev.c_str()))&&(mcastmac)&&(Utils::unhex(mcastmac,mac,6) == 6))
  447. newGroups.push_back(MulticastGroup(MAC(mac,6),0));
  448. }
  449. }
  450. ::close(fd);
  451. }
  452. std::vector<InetAddress> allIps(ips());
  453. for(std::vector<InetAddress>::iterator ip(allIps.begin());ip!=allIps.end();++ip)
  454. newGroups.push_back(MulticastGroup::deriveMulticastGroupForAddressResolution(*ip));
  455. std::sort(newGroups.begin(),newGroups.end());
  456. newGroups.erase(std::unique(newGroups.begin(),newGroups.end()),newGroups.end());
  457. for(std::vector<MulticastGroup>::iterator m(newGroups.begin());m!=newGroups.end();++m) {
  458. if (!std::binary_search(_multicastGroups.begin(),_multicastGroups.end(),*m))
  459. added.push_back(*m);
  460. }
  461. for(std::vector<MulticastGroup>::iterator m(_multicastGroups.begin());m!=_multicastGroups.end();++m) {
  462. if (!std::binary_search(newGroups.begin(),newGroups.end(),*m))
  463. removed.push_back(*m);
  464. }
  465. _multicastGroups.swap(newGroups);
  466. }
  467. void LinuxEthernetTap::setMtu(unsigned int mtu)
  468. {
  469. if (_mtu != mtu) {
  470. _mtu = mtu;
  471. int sock = socket(AF_INET,SOCK_DGRAM,0);
  472. if (sock > 0) {
  473. struct ifreq ifr;
  474. memset(&ifr,0,sizeof(ifr));
  475. ifr.ifr_ifru.ifru_mtu = (int)mtu;
  476. ioctl(sock,SIOCSIFMTU,(void *)&ifr);
  477. close(sock);
  478. }
  479. }
  480. }
  481. } // namespace ZeroTier
  482. #endif // __LINUX__