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capi_connectivity.cpp 11 KB

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  1. /**
  2. * Copyright (c) 2020 Paul-Louis Ageneau
  3. *
  4. * This Source Code Form is subject to the terms of the Mozilla Public
  5. * License, v. 2.0. If a copy of the MPL was not distributed with this
  6. * file, You can obtain one at https://mozilla.org/MPL/2.0/.
  7. */
  8. #include "test.hpp"
  9. #include <rtc/rtc.h>
  10. #include <cstdio>
  11. #include <cstdlib>
  12. #include <cstring>
  13. #ifdef _WIN32
  14. #include <windows.h>
  15. static void sleep(unsigned int secs) { Sleep(secs * 1000); }
  16. #else
  17. #include <unistd.h> // for sleep
  18. #endif
  19. #define BUFFER_SIZE 4096
  20. typedef struct {
  21. rtcState state;
  22. rtcIceState iceState;
  23. rtcGatheringState gatheringState;
  24. rtcSignalingState signalingState;
  25. int pc;
  26. int dc;
  27. bool connected;
  28. } Peer;
  29. static Peer *peer1 = NULL;
  30. static Peer *peer2 = NULL;
  31. static void RTC_API descriptionCallback(int pc, const char *sdp, const char *type, void *ptr) {
  32. Peer *peer = (Peer *)ptr;
  33. printf("Description %d:\n%s\n", peer == peer1 ? 1 : 2, sdp);
  34. Peer *other = peer == peer1 ? peer2 : peer1;
  35. rtcSetRemoteDescription(other->pc, sdp, type);
  36. }
  37. static void RTC_API candidateCallback(int pc, const char *cand, const char *mid, void *ptr) {
  38. Peer *peer = (Peer *)ptr;
  39. printf("Candidate %d: %s\n", peer == peer1 ? 1 : 2, cand);
  40. Peer *other = peer == peer1 ? peer2 : peer1;
  41. rtcAddRemoteCandidate(other->pc, cand, mid);
  42. }
  43. static void RTC_API stateChangeCallback(int pc, rtcState state, void *ptr) {
  44. Peer *peer = (Peer *)ptr;
  45. peer->state = state;
  46. printf("State %d: %d\n", peer == peer1 ? 1 : 2, (int)state);
  47. }
  48. static void RTC_API iceStateChangeCallback(int pc, rtcIceState state, void *ptr) {
  49. Peer *peer = (Peer *)ptr;
  50. peer->iceState = state;
  51. printf("ICE state %d: %d\n", peer == peer1 ? 1 : 2, (int)state);
  52. }
  53. static void RTC_API gatheringStateCallback(int pc, rtcGatheringState state, void *ptr) {
  54. Peer *peer = (Peer *)ptr;
  55. peer->gatheringState = state;
  56. printf("Gathering state %d: %d\n", peer == peer1 ? 1 : 2, (int)state);
  57. }
  58. static void RTC_API signalingStateCallback(int pc, rtcSignalingState state, void *ptr) {
  59. Peer *peer = (Peer *)ptr;
  60. peer->signalingState = state;
  61. printf("Signaling state %d: %d\n", peer == peer1 ? 1 : 2, (int)state);
  62. }
  63. static void RTC_API openCallback(int id, void *ptr) {
  64. Peer *peer = (Peer *)ptr;
  65. peer->connected = true;
  66. printf("DataChannel %d: Open\n", peer == peer1 ? 1 : 2);
  67. if (!rtcIsOpen(id)) {
  68. fprintf(stderr, "rtcIsOpen failed\n");
  69. return;
  70. }
  71. if (rtcIsClosed(id)) {
  72. fprintf(stderr, "rtcIsClosed failed\n");
  73. return;
  74. }
  75. const char *message = peer == peer1 ? "Hello from 1" : "Hello from 2";
  76. rtcSendMessage(peer->dc, message, -1); // negative size indicates a null-terminated string
  77. }
  78. static void RTC_API closedCallback(int id, void *ptr) {
  79. Peer *peer = (Peer *)ptr;
  80. peer->connected = false;
  81. printf("DataChannel %d: Closed\n", peer == peer1 ? 1 : 2);
  82. }
  83. static void RTC_API messageCallback(int id, const char *message, int size, void *ptr) {
  84. Peer *peer = (Peer *)ptr;
  85. if (size < 0) { // negative size indicates a null-terminated string
  86. printf("Message %d: %s\n", peer == peer1 ? 1 : 2, message);
  87. } else {
  88. printf("Message %d: [binary of size %d]\n", peer == peer1 ? 1 : 2, size);
  89. }
  90. }
  91. static void RTC_API dataChannelCallback(int pc, int dc, void *ptr) {
  92. Peer *peer = (Peer *)ptr;
  93. char label[256];
  94. if (rtcGetDataChannelLabel(dc, label, 256) < 0) {
  95. fprintf(stderr, "rtcGetDataChannelLabel failed\n");
  96. return;
  97. }
  98. char protocol[256];
  99. if (rtcGetDataChannelProtocol(dc, protocol, 256) < 0) {
  100. fprintf(stderr, "rtcGetDataChannelProtocol failed\n");
  101. return;
  102. }
  103. rtcReliability reliability;
  104. if (rtcGetDataChannelReliability(dc, &reliability) < 0) {
  105. fprintf(stderr, "rtcGetDataChannelReliability failed\n");
  106. return;
  107. }
  108. printf("DataChannel %d: Received with label \"%s\" and protocol \"%s\"\n",
  109. peer == peer1 ? 1 : 2, label, protocol);
  110. if (strcmp(label, "test") != 0) {
  111. fprintf(stderr, "Wrong DataChannel label\n");
  112. return;
  113. }
  114. if (strcmp(protocol, "protocol") != 0) {
  115. fprintf(stderr, "Wrong DataChannel protocol\n");
  116. return;
  117. }
  118. if (reliability.unordered == false) {
  119. fprintf(stderr, "Wrong DataChannel reliability\n");
  120. return;
  121. }
  122. rtcSetOpenCallback(dc, openCallback);
  123. rtcSetClosedCallback(dc, closedCallback);
  124. rtcSetMessageCallback(dc, messageCallback);
  125. peer->dc = dc;
  126. }
  127. static Peer *createPeer(const rtcConfiguration *config) {
  128. Peer *peer = (Peer *)malloc(sizeof(Peer));
  129. if (!peer)
  130. return nullptr;
  131. memset(peer, 0, sizeof(Peer));
  132. // Create peer connection
  133. peer->pc = rtcCreatePeerConnection(config);
  134. rtcSetUserPointer(peer->pc, peer);
  135. rtcSetDataChannelCallback(peer->pc, dataChannelCallback);
  136. rtcSetLocalDescriptionCallback(peer->pc, descriptionCallback);
  137. rtcSetLocalCandidateCallback(peer->pc, candidateCallback);
  138. rtcSetStateChangeCallback(peer->pc, stateChangeCallback);
  139. rtcSetIceStateChangeCallback(peer->pc, iceStateChangeCallback);
  140. rtcSetGatheringStateChangeCallback(peer->pc, gatheringStateCallback);
  141. rtcSetSignalingStateChangeCallback(peer->pc, signalingStateCallback);
  142. return peer;
  143. }
  144. static void deletePeer(Peer *peer) {
  145. if (peer) {
  146. if (peer->dc)
  147. rtcDeleteDataChannel(peer->dc);
  148. if (peer->pc)
  149. rtcDeletePeerConnection(peer->pc);
  150. free(peer);
  151. }
  152. }
  153. int test_capi_connectivity_main() {
  154. int attempts;
  155. char buffer[BUFFER_SIZE];
  156. char buffer2[BUFFER_SIZE];
  157. const char *test = "foo";
  158. const int testLen = 3;
  159. int size = 0;
  160. rtcInitLogger(RTC_LOG_DEBUG, nullptr);
  161. if (rtcIsOpen(666)) {
  162. fprintf(stderr, "rtcIsOpen for invalid channel id failed\n");
  163. return -1;
  164. }
  165. if (rtcIsClosed(666)) {
  166. fprintf(stderr, "rtcIsOpen for invalid channel id failed\n");
  167. return -1;
  168. }
  169. // STUN server example (not necessary to connect locally)
  170. const char *iceServers[1] = {"stun:stun.l.google.com:19302"};
  171. // Create peer 1
  172. rtcConfiguration config1;
  173. memset(&config1, 0, sizeof(config1));
  174. config1.iceServers = iceServers;
  175. config1.iceServersCount = 1;
  176. // Custom MTU example
  177. config1.mtu = 1500;
  178. peer1 = createPeer(&config1);
  179. if (!peer1)
  180. goto error;
  181. // Create peer 2
  182. rtcConfiguration config2;
  183. memset(&config2, 0, sizeof(config2));
  184. // STUN server example (not necessary to connect locally)
  185. // Please do not use outside of libdatachannel tests
  186. config2.iceServers = iceServers;
  187. config2.iceServersCount = 1;
  188. // Custom MTU example
  189. config2.mtu = 1500;
  190. // Port range example
  191. config2.portRangeBegin = 5000;
  192. config2.portRangeEnd = 6000;
  193. peer2 = createPeer(&config2);
  194. if (!peer2)
  195. goto error;
  196. // Peer 1: Create data channel
  197. rtcDataChannelInit init;
  198. memset(&init, 0, sizeof(init));
  199. init.protocol = "protocol";
  200. init.reliability.unordered = true;
  201. peer1->dc = rtcCreateDataChannelEx(peer1->pc, "test", &init);
  202. rtcSetOpenCallback(peer1->dc, openCallback);
  203. rtcSetClosedCallback(peer1->dc, closedCallback);
  204. rtcSetMessageCallback(peer1->dc, messageCallback);
  205. attempts = 10;
  206. while ((!peer2->connected || !peer1->connected) && attempts--)
  207. sleep(1);
  208. if (peer1->state != RTC_CONNECTED || peer2->state != RTC_CONNECTED) {
  209. fprintf(stderr, "PeerConnection is not connected\n");
  210. goto error;
  211. }
  212. if ((peer1->iceState != RTC_ICE_CONNECTED && peer1->iceState != RTC_ICE_COMPLETED) ||
  213. (peer2->iceState != RTC_ICE_CONNECTED && peer2->iceState != RTC_ICE_COMPLETED)) {
  214. fprintf(stderr, "PeerConnection is not connected\n");
  215. goto error;
  216. }
  217. if (!peer1->connected || !peer2->connected) {
  218. fprintf(stderr, "DataChannel is not connected\n");
  219. goto error;
  220. }
  221. if (rtcGetLocalDescriptionType(peer1->pc, buffer, BUFFER_SIZE) < 0) {
  222. fprintf(stderr, "rtcGetLocalDescriptionType failed\n");
  223. goto error;
  224. }
  225. printf("Local description type 1: %s\n", buffer);
  226. if (rtcGetLocalDescription(peer1->pc, buffer, BUFFER_SIZE) < 0) {
  227. fprintf(stderr, "rtcGetLocalDescription failed\n");
  228. goto error;
  229. }
  230. printf("Local description 1: %s\n", buffer);
  231. if (rtcGetRemoteDescriptionType(peer1->pc, buffer, BUFFER_SIZE) < 0) {
  232. fprintf(stderr, "rtcGetRemoteDescriptionType failed\n");
  233. goto error;
  234. }
  235. printf("Remote description type 1: %s\n", buffer);
  236. if (rtcGetRemoteDescription(peer1->pc, buffer, BUFFER_SIZE) < 0) {
  237. fprintf(stderr, "rtcGetRemoteDescription failed\n");
  238. goto error;
  239. }
  240. printf("Remote description 1: %s\n", buffer);
  241. if (rtcGetLocalDescriptionType(peer2->pc, buffer, BUFFER_SIZE) < 0) {
  242. fprintf(stderr, "rtcGetLocalDescriptionType failed\n");
  243. goto error;
  244. }
  245. printf("Local description type 2: %s\n", buffer);
  246. if (rtcGetLocalDescription(peer2->pc, buffer, BUFFER_SIZE) < 0) {
  247. fprintf(stderr, "rtcGetLocalDescription failed\n");
  248. goto error;
  249. }
  250. printf("Local description 2: %s\n", buffer);
  251. if (rtcGetRemoteDescriptionType(peer2->pc, buffer, BUFFER_SIZE) < 0) {
  252. fprintf(stderr, "rtcGetRemoteDescriptionType failed\n");
  253. goto error;
  254. }
  255. printf("Remote description type 2: %s\n", buffer);
  256. if (rtcGetRemoteDescription(peer2->pc, buffer, BUFFER_SIZE) < 0) {
  257. fprintf(stderr, "rtcGetRemoteDescription failed\n");
  258. goto error;
  259. }
  260. printf("Remote description 2: %s\n", buffer);
  261. if (rtcGetLocalAddress(peer1->pc, buffer, BUFFER_SIZE) < 0) {
  262. fprintf(stderr, "rtcGetLocalAddress failed\n");
  263. goto error;
  264. }
  265. printf("Local address 1: %s\n", buffer);
  266. if (rtcGetRemoteAddress(peer1->pc, buffer, BUFFER_SIZE) < 0) {
  267. fprintf(stderr, "rtcGetRemoteAddress failed\n");
  268. goto error;
  269. }
  270. printf("Remote address 1: %s\n", buffer);
  271. if (rtcGetLocalAddress(peer2->pc, buffer, BUFFER_SIZE) < 0) {
  272. fprintf(stderr, "rtcGetLocalAddress failed\n");
  273. goto error;
  274. }
  275. printf("Local address 2: %s\n", buffer);
  276. if (rtcGetRemoteAddress(peer2->pc, buffer, BUFFER_SIZE) < 0) {
  277. fprintf(stderr, "rtcGetRemoteAddress failed\n");
  278. goto error;
  279. }
  280. printf("Remote address 2: %s\n", buffer);
  281. if (rtcGetSelectedCandidatePair(peer1->pc, buffer, BUFFER_SIZE, buffer2, BUFFER_SIZE) < 0) {
  282. fprintf(stderr, "rtcGetSelectedCandidatePair failed\n");
  283. goto error;
  284. }
  285. printf("Local candidate 1: %s\n", buffer);
  286. printf("Remote candidate 1: %s\n", buffer2);
  287. if (rtcGetSelectedCandidatePair(peer2->pc, buffer, BUFFER_SIZE, buffer2, BUFFER_SIZE) < 0) {
  288. fprintf(stderr, "rtcGetSelectedCandidatePair failed\n");
  289. goto error;
  290. }
  291. printf("Local candidate 2: %s\n", buffer);
  292. printf("Remote candidate 2: %s\n", buffer2);
  293. if (rtcGetMaxDataChannelStream(peer1->pc) <= 0 || rtcGetMaxDataChannelStream(peer2->pc) <= 0) {
  294. fprintf(stderr, "rtcGetMaxDataChannelStream failed\n");
  295. goto error;
  296. }
  297. rtcSetMessageCallback(peer2->dc, NULL);
  298. if (rtcSendMessage(peer1->dc, test, testLen) < 0) {
  299. fprintf(stderr, "rtcSendMessage failed\n");
  300. goto error;
  301. }
  302. sleep(1);
  303. size = 0;
  304. if (rtcReceiveMessage(peer2->dc, NULL, &size) < 0 || size != testLen) {
  305. fprintf(stderr, "rtcReceiveMessage failed to peek message size\n");
  306. goto error;
  307. }
  308. if (rtcReceiveMessage(peer2->dc, buffer, &size) < 0 || size != testLen) {
  309. fprintf(stderr, "rtcReceiveMessage failed to get the message\n");
  310. goto error;
  311. }
  312. rtcClose(peer1->dc); // optional
  313. rtcClosePeerConnection(peer1->pc); // optional
  314. deletePeer(peer1);
  315. sleep(1);
  316. deletePeer(peer2);
  317. sleep(1);
  318. printf("Success\n");
  319. return 0;
  320. error:
  321. deletePeer(peer1);
  322. deletePeer(peer2);
  323. return -1;
  324. }
  325. #include <stdexcept>
  326. TestResult test_capi_connectivity() {
  327. if (test_capi_connectivity_main())
  328. return TestResult(false, "Connection failed");
  329. return TestResult(true);
  330. }