enet.h 222 KB

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  1. /*
  2. * ENet reliable UDP networking library
  3. * Copyright (c) 2018 Lee Salzman, Vladyslav Hrytsenko, Dominik Madarász, Stanislav Denisov
  4. *
  5. * Permission is hereby granted, free of charge, to any person obtaining a copy
  6. * of this software and associated documentation files (the "Software"), to deal
  7. * in the Software without restriction, including without limitation the rights
  8. * to use, copy, modify, merge, publish, distribute, sublicense, and/or sell
  9. * copies of the Software, and to permit persons to whom the Software is
  10. * furnished to do so, subject to the following conditions:
  11. *
  12. * The above copyright notice and this permission notice shall be included in all
  13. * copies or substantial portions of the Software.
  14. *
  15. * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS OR
  16. * IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY,
  17. * FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT. IN NO EVENT SHALL THE
  18. * AUTHORS OR COPYRIGHT HOLDERS BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER
  19. * LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM,
  20. * OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE
  21. * SOFTWARE.
  22. */
  23. #ifndef ENET_INCLUDE_H
  24. #define ENET_INCLUDE_H
  25. #include <stdlib.h>
  26. #include <stdbool.h>
  27. #include <stdint.h>
  28. #include <time.h>
  29. #ifdef ENET_LZ4
  30. #include "lz4/lz4.h"
  31. #endif
  32. #define ENET_VERSION_MAJOR 2
  33. #define ENET_VERSION_MINOR 1
  34. #define ENET_VERSION_PATCH 5
  35. #define ENET_VERSION_CREATE(major, minor, patch) (((major) << 16) | ((minor) << 8) | (patch))
  36. #define ENET_VERSION_GET_MAJOR(version) (((version) >> 16) & 0xFF)
  37. #define ENET_VERSION_GET_MINOR(version) (((version) >> 8) & 0xFF)
  38. #define ENET_VERSION_GET_PATCH(version) ((version) & 0xFF)
  39. #define ENET_VERSION ENET_VERSION_CREATE(ENET_VERSION_MAJOR, ENET_VERSION_MINOR, ENET_VERSION_PATCH)
  40. #define ENET_TIME_OVERFLOW 86400000
  41. #define ENET_TIME_LESS(a, b) ((a) - (b) >= ENET_TIME_OVERFLOW)
  42. #define ENET_TIME_GREATER(a, b) ((b) - (a) >= ENET_TIME_OVERFLOW)
  43. #define ENET_TIME_LESS_EQUAL(a, b) (!ENET_TIME_GREATER(a, b))
  44. #define ENET_TIME_GREATER_EQUAL(a, b) (!ENET_TIME_LESS(a, b))
  45. #define ENET_TIME_DIFFERENCE(a, b) ((a) - (b) >= ENET_TIME_OVERFLOW ? (b) - (a) : (a) - (b))
  46. #define ENET_SRTT_INITIAL 1.0
  47. #define ENET_SRTT_PARA_G 0.125
  48. // =======================================================================//
  49. // !
  50. // ! System differences
  51. // !
  52. // =======================================================================//
  53. #ifdef _WIN32
  54. #if defined(_MSC_VER) && defined(ENET_IMPLEMENTATION)
  55. #pragma warning(disable: 4267) /* size_t to int conversion */
  56. #pragma warning(disable: 4244) /* 64bit to 32bit int */
  57. #pragma warning(disable: 4018) /* signed/unsigned mismatch */
  58. #pragma warning(disable: 4146) /* unary minus operator applied to unsigned type */
  59. #endif
  60. #ifndef ENET_NO_PRAGMA_LINK
  61. #pragma comment(lib, "ws2_32.lib")
  62. #pragma comment(lib, "winmm.lib")
  63. #endif
  64. #if _MSC_VER >= 1910
  65. /* It looks like there were changes as of Visual Studio 2017 and there are no 32/64 bit
  66. versions of _InterlockedExchange[operation], only InterlockedExchange[operation]
  67. (without leading underscore), so we have to distinguish between compiler versions */
  68. #define NOT_UNDERSCORED_INTERLOCKED_EXCHANGE
  69. #endif
  70. #ifdef __GNUC__
  71. #if (_WIN32_WINNT < 0x0501)
  72. #undef _WIN32_WINNT
  73. #define _WIN32_WINNT 0x0501
  74. #endif
  75. #endif
  76. #include <winsock2.h>
  77. #include <ws2tcpip.h>
  78. #include <mmsystem.h>
  79. #include <intrin.h>
  80. #if defined(_WIN32) && defined(_MSC_VER)
  81. #if _MSC_VER < 1900
  82. typedef struct timespec {
  83. long tv_sec;
  84. long tv_nsec;
  85. };
  86. #endif
  87. #define CLOCK_MONOTONIC 0
  88. #endif
  89. typedef SOCKET ENetSocket;
  90. #define ENET_SOCKET_NULL INVALID_SOCKET
  91. typedef struct {
  92. size_t dataLength;
  93. void * data;
  94. } ENetBuffer;
  95. #define ENET_CALLBACK __cdecl
  96. #ifdef ENET_DLL
  97. #ifdef ENET_IMPLEMENTATION
  98. #define ENET_API __declspec(dllexport)
  99. #else
  100. #define ENET_API __declspec(dllimport)
  101. #endif
  102. #else
  103. #define ENET_API extern
  104. #endif
  105. typedef fd_set ENetSocketSet;
  106. #define ENET_SOCKETSET_EMPTY(sockset) FD_ZERO(&(sockset))
  107. #define ENET_SOCKETSET_ADD(sockset, socket) FD_SET(socket, &(sockset))
  108. #define ENET_SOCKETSET_REMOVE(sockset, socket) FD_CLR(socket, &(sockset))
  109. #define ENET_SOCKETSET_CHECK(sockset, socket) FD_ISSET(socket, &(sockset))
  110. #else
  111. #include <sys/types.h>
  112. #include <sys/ioctl.h>
  113. #include <sys/time.h>
  114. #include <sys/socket.h>
  115. #include <poll.h>
  116. #include <arpa/inet.h>
  117. #include <netinet/in.h>
  118. #include <netinet/tcp.h>
  119. #include <netdb.h>
  120. #include <unistd.h>
  121. #include <string.h>
  122. #include <errno.h>
  123. #include <fcntl.h>
  124. #ifdef __APPLE__
  125. #include <mach/clock.h>
  126. #include <mach/mach.h>
  127. #include <Availability.h>
  128. #endif
  129. #ifndef MSG_NOSIGNAL
  130. #define MSG_NOSIGNAL 0
  131. #endif
  132. #ifdef MSG_MAXIOVLEN
  133. #define ENET_BUFFER_MAXIMUM MSG_MAXIOVLEN
  134. #endif
  135. typedef int ENetSocket;
  136. #define ENET_SOCKET_NULL -1
  137. typedef struct {
  138. void * data;
  139. size_t dataLength;
  140. } ENetBuffer;
  141. #define ENET_CALLBACK
  142. #define ENET_API extern
  143. typedef fd_set ENetSocketSet;
  144. #define ENET_SOCKETSET_EMPTY(sockset) FD_ZERO(&(sockset))
  145. #define ENET_SOCKETSET_ADD(sockset, socket) FD_SET(socket, &(sockset))
  146. #define ENET_SOCKETSET_REMOVE(sockset, socket) FD_CLR(socket, &(sockset))
  147. #define ENET_SOCKETSET_CHECK(sockset, socket) FD_ISSET(socket, &(sockset))
  148. #endif
  149. #ifndef ENET_BUFFER_MAXIMUM
  150. #define ENET_BUFFER_MAXIMUM (1 + 2 * ENET_PROTOCOL_MAXIMUM_PACKET_COMMANDS)
  151. #endif
  152. #define ENET_MAX(x, y) ((x) > (y) ? (x) : (y))
  153. #define ENET_MIN(x, y) ((x) < (y) ? (x) : (y))
  154. #define ENET_IPV6 1
  155. #define ENET_HOST_ANY in6addr_any
  156. #define ENET_HOST_BROADCAST 0xFFFFFFFFU
  157. #define ENET_PORT_ANY 0
  158. #define ENET_HOST_TO_NET_16(value) (htons(value))
  159. #define ENET_HOST_TO_NET_32(value) (htonl(value))
  160. #define ENET_NET_TO_HOST_16(value) (ntohs(value))
  161. #define ENET_NET_TO_HOST_32(value) (ntohl(value))
  162. #ifdef __cplusplus
  163. extern "C" {
  164. #endif
  165. // =======================================================================//
  166. // !
  167. // ! Basic stuff
  168. // !
  169. // =======================================================================//
  170. typedef uint8_t enet_uint8;
  171. typedef uint16_t enet_uint16;
  172. typedef uint32_t enet_uint32;
  173. typedef uint64_t enet_uint64;
  174. typedef enet_uint32 ENetVersion;
  175. typedef struct _ENetCallbacks {
  176. void *(ENET_CALLBACK *malloc) (size_t size);
  177. void (ENET_CALLBACK *free) (void *memory);
  178. void (ENET_CALLBACK *no_memory) (void);
  179. } ENetCallbacks;
  180. extern void *enet_malloc(size_t);
  181. extern void enet_free(void *);
  182. // =======================================================================//
  183. // !
  184. // ! List
  185. // !
  186. // =======================================================================//
  187. typedef struct _ENetListNode {
  188. struct _ENetListNode *next;
  189. struct _ENetListNode *previous;
  190. } ENetListNode;
  191. typedef ENetListNode *ENetListIterator;
  192. typedef struct _ENetList {
  193. ENetListNode sentinel;
  194. } ENetList;
  195. extern ENetListIterator enet_list_insert(ENetListIterator, void *);
  196. extern ENetListIterator enet_list_move(ENetListIterator, void *, void *);
  197. extern void *enet_list_remove(ENetListIterator);
  198. extern void enet_list_clear(ENetList *);
  199. extern size_t enet_list_size(ENetList *);
  200. #define enet_list_begin(list) ((list)->sentinel.next)
  201. #define enet_list_end(list) (&(list)->sentinel)
  202. #define enet_list_empty(list) (enet_list_begin(list) == enet_list_end(list))
  203. #define enet_list_next(iterator) ((iterator)->next)
  204. #define enet_list_previous(iterator) ((iterator)->previous)
  205. #define enet_list_front(list) ((void *) (list)->sentinel.next)
  206. #define enet_list_back(list) ((void *) (list)->sentinel.previous)
  207. // =======================================================================//
  208. // !
  209. // ! Protocol
  210. // !
  211. // =======================================================================//
  212. enum {
  213. ENET_PROTOCOL_MINIMUM_MTU = 576,
  214. ENET_PROTOCOL_MAXIMUM_MTU = 4096,
  215. ENET_PROTOCOL_MAXIMUM_PACKET_COMMANDS = 32,
  216. ENET_PROTOCOL_MINIMUM_WINDOW_SIZE = 4096,
  217. ENET_PROTOCOL_MAXIMUM_WINDOW_SIZE = 65536,
  218. ENET_PROTOCOL_MINIMUM_CHANNEL_COUNT = 1,
  219. ENET_PROTOCOL_MAXIMUM_CHANNEL_COUNT = 255,
  220. ENET_PROTOCOL_MAXIMUM_PEER_ID = 0xFFF,
  221. ENET_PROTOCOL_MAXIMUM_FRAGMENT_COUNT = 1024 * 1024
  222. };
  223. typedef enum _ENetProtocolCommand {
  224. ENET_PROTOCOL_COMMAND_NONE = 0,
  225. ENET_PROTOCOL_COMMAND_ACKNOWLEDGE = 1,
  226. ENET_PROTOCOL_COMMAND_CONNECT = 2,
  227. ENET_PROTOCOL_COMMAND_VERIFY_CONNECT = 3,
  228. ENET_PROTOCOL_COMMAND_DISCONNECT = 4,
  229. ENET_PROTOCOL_COMMAND_PING = 5,
  230. ENET_PROTOCOL_COMMAND_SEND_RELIABLE = 6,
  231. ENET_PROTOCOL_COMMAND_SEND_UNRELIABLE = 7,
  232. ENET_PROTOCOL_COMMAND_SEND_FRAGMENT = 8,
  233. ENET_PROTOCOL_COMMAND_SEND_UNSEQUENCED = 9,
  234. ENET_PROTOCOL_COMMAND_BANDWIDTH_LIMIT = 10,
  235. ENET_PROTOCOL_COMMAND_THROTTLE_CONFIGURE = 11,
  236. ENET_PROTOCOL_COMMAND_SEND_UNRELIABLE_FRAGMENT = 12,
  237. ENET_PROTOCOL_COMMAND_COUNT = 13,
  238. ENET_PROTOCOL_COMMAND_MASK = 0x0F
  239. } ENetProtocolCommand;
  240. typedef enum _ENetProtocolFlag {
  241. ENET_PROTOCOL_COMMAND_FLAG_ACKNOWLEDGE = (1 << 7),
  242. ENET_PROTOCOL_COMMAND_FLAG_UNSEQUENCED = (1 << 6),
  243. ENET_PROTOCOL_HEADER_FLAG_SENT_TIME = (1 << 14),
  244. ENET_PROTOCOL_HEADER_FLAG_COMPRESSED = (1 << 15),
  245. ENET_PROTOCOL_HEADER_FLAG_MASK = ENET_PROTOCOL_HEADER_FLAG_SENT_TIME | ENET_PROTOCOL_HEADER_FLAG_COMPRESSED,
  246. ENET_PROTOCOL_HEADER_SESSION_MASK = (3 << 12),
  247. ENET_PROTOCOL_HEADER_SESSION_SHIFT = 12
  248. } ENetProtocolFlag;
  249. #ifdef _MSC_VER
  250. #pragma pack(push, 1)
  251. #define ENET_PACKED
  252. #elif defined(__GNUC__) || defined(__clang__)
  253. #define ENET_PACKED __attribute__ ((packed))
  254. #else
  255. #define ENET_PACKED
  256. #endif
  257. typedef struct _ENetProtocolHeader {
  258. enet_uint16 peerID;
  259. enet_uint16 sentTime;
  260. } ENET_PACKED ENetProtocolHeader;
  261. typedef struct _ENetProtocolCommandHeader {
  262. enet_uint8 command;
  263. enet_uint8 channelID;
  264. enet_uint16 reliableSequenceNumber;
  265. } ENET_PACKED ENetProtocolCommandHeader;
  266. typedef struct _ENetProtocolAcknowledge {
  267. ENetProtocolCommandHeader header;
  268. enet_uint16 receivedReliableSequenceNumber;
  269. enet_uint16 receivedSentTime;
  270. } ENET_PACKED ENetProtocolAcknowledge;
  271. typedef struct _ENetProtocolConnect {
  272. ENetProtocolCommandHeader header;
  273. enet_uint16 outgoingPeerID;
  274. enet_uint8 incomingSessionID;
  275. enet_uint8 outgoingSessionID;
  276. enet_uint32 mtu;
  277. enet_uint32 windowSize;
  278. enet_uint32 channelCount;
  279. enet_uint32 incomingBandwidth;
  280. enet_uint32 outgoingBandwidth;
  281. enet_uint32 packetThrottleInterval;
  282. enet_uint32 packetThrottleAcceleration;
  283. enet_uint32 packetThrottleDeceleration;
  284. enet_uint32 connectID;
  285. enet_uint32 data;
  286. } ENET_PACKED ENetProtocolConnect;
  287. typedef struct _ENetProtocolVerifyConnect {
  288. ENetProtocolCommandHeader header;
  289. enet_uint16 outgoingPeerID;
  290. enet_uint8 incomingSessionID;
  291. enet_uint8 outgoingSessionID;
  292. enet_uint32 mtu;
  293. enet_uint32 windowSize;
  294. enet_uint32 channelCount;
  295. enet_uint32 incomingBandwidth;
  296. enet_uint32 outgoingBandwidth;
  297. enet_uint32 packetThrottleInterval;
  298. enet_uint32 packetThrottleAcceleration;
  299. enet_uint32 packetThrottleDeceleration;
  300. enet_uint32 connectID;
  301. } ENET_PACKED ENetProtocolVerifyConnect;
  302. typedef struct _ENetProtocolBandwidthLimit {
  303. ENetProtocolCommandHeader header;
  304. enet_uint32 incomingBandwidth;
  305. enet_uint32 outgoingBandwidth;
  306. } ENET_PACKED ENetProtocolBandwidthLimit;
  307. typedef struct _ENetProtocolThrottleConfigure {
  308. ENetProtocolCommandHeader header;
  309. enet_uint32 packetThrottleInterval;
  310. enet_uint32 packetThrottleAcceleration;
  311. enet_uint32 packetThrottleDeceleration;
  312. } ENET_PACKED ENetProtocolThrottleConfigure;
  313. typedef struct _ENetProtocolDisconnect {
  314. ENetProtocolCommandHeader header;
  315. enet_uint32 data;
  316. } ENET_PACKED ENetProtocolDisconnect;
  317. typedef struct _ENetProtocolPing {
  318. ENetProtocolCommandHeader header;
  319. } ENET_PACKED ENetProtocolPing;
  320. typedef struct _ENetProtocolSendReliable {
  321. ENetProtocolCommandHeader header;
  322. enet_uint16 dataLength;
  323. } ENET_PACKED ENetProtocolSendReliable;
  324. typedef struct _ENetProtocolSendUnreliable {
  325. ENetProtocolCommandHeader header;
  326. enet_uint16 unreliableSequenceNumber;
  327. enet_uint16 dataLength;
  328. } ENET_PACKED ENetProtocolSendUnreliable;
  329. typedef struct _ENetProtocolSendUnsequenced {
  330. ENetProtocolCommandHeader header;
  331. enet_uint16 unsequencedGroup;
  332. enet_uint16 dataLength;
  333. } ENET_PACKED ENetProtocolSendUnsequenced;
  334. typedef struct _ENetProtocolSendFragment {
  335. ENetProtocolCommandHeader header;
  336. enet_uint16 startSequenceNumber;
  337. enet_uint16 dataLength;
  338. enet_uint32 fragmentCount;
  339. enet_uint32 fragmentNumber;
  340. enet_uint32 totalLength;
  341. enet_uint32 fragmentOffset;
  342. } ENET_PACKED ENetProtocolSendFragment;
  343. typedef union _ENetProtocol {
  344. ENetProtocolCommandHeader header;
  345. ENetProtocolAcknowledge acknowledge;
  346. ENetProtocolConnect connect;
  347. ENetProtocolVerifyConnect verifyConnect;
  348. ENetProtocolDisconnect disconnect;
  349. ENetProtocolPing ping;
  350. ENetProtocolSendReliable sendReliable;
  351. ENetProtocolSendUnreliable sendUnreliable;
  352. ENetProtocolSendUnsequenced sendUnsequenced;
  353. ENetProtocolSendFragment sendFragment;
  354. ENetProtocolBandwidthLimit bandwidthLimit;
  355. ENetProtocolThrottleConfigure throttleConfigure;
  356. } ENET_PACKED ENetProtocol;
  357. #ifdef _MSC_VER
  358. #pragma pack(pop)
  359. #endif
  360. // =======================================================================//
  361. // !
  362. // ! General ENet structs/enums
  363. // !
  364. // =======================================================================//
  365. typedef enum _ENetSocketType {
  366. ENET_SOCKET_TYPE_STREAM = 1,
  367. ENET_SOCKET_TYPE_DATAGRAM = 2
  368. } ENetSocketType;
  369. typedef enum _ENetSocketWait {
  370. ENET_SOCKET_WAIT_NONE = 0,
  371. ENET_SOCKET_WAIT_SEND = (1 << 0),
  372. ENET_SOCKET_WAIT_RECEIVE = (1 << 1),
  373. ENET_SOCKET_WAIT_INTERRUPT = (1 << 2)
  374. } ENetSocketWait;
  375. typedef enum _ENetSocketOption {
  376. ENET_SOCKOPT_NONBLOCK = 1,
  377. ENET_SOCKOPT_BROADCAST = 2,
  378. ENET_SOCKOPT_RCVBUF = 3,
  379. ENET_SOCKOPT_SNDBUF = 4,
  380. ENET_SOCKOPT_REUSEADDR = 5,
  381. ENET_SOCKOPT_RCVTIMEO = 6,
  382. ENET_SOCKOPT_SNDTIMEO = 7,
  383. ENET_SOCKOPT_ERROR = 8,
  384. ENET_SOCKOPT_NODELAY = 9,
  385. ENET_SOCKOPT_IPV6_V6ONLY = 10
  386. } ENetSocketOption;
  387. typedef enum _ENetSocketShutdown {
  388. ENET_SOCKET_SHUTDOWN_READ = 0,
  389. ENET_SOCKET_SHUTDOWN_WRITE = 1,
  390. ENET_SOCKET_SHUTDOWN_READ_WRITE = 2
  391. } ENetSocketShutdown;
  392. typedef struct _ENetAddress {
  393. struct in6_addr host;
  394. enet_uint16 port;
  395. enet_uint16 sin6_scope_id;
  396. } ENetAddress;
  397. #define in6_equal(in6_addr_a, in6_addr_b) (memcmp(&in6_addr_a, &in6_addr_b, sizeof(struct in6_addr)) == 0)
  398. typedef enum _ENetPacketFlag {
  399. ENET_PACKET_FLAG_RELIABLE = (1 << 0),
  400. ENET_PACKET_FLAG_UNSEQUENCED = (1 << 1),
  401. ENET_PACKET_FLAG_NO_ALLOCATE = (1 << 2),
  402. ENET_PACKET_FLAG_UNRELIABLE_FRAGMENT = (1 << 3),
  403. ENET_PACKET_FLAG_SENT = (1 << 8)
  404. } ENetPacketFlag;
  405. typedef void (ENET_CALLBACK *ENetPacketFreeCallback) (void *);
  406. typedef struct _ENetPacket {
  407. size_t referenceCount;
  408. enet_uint32 flags;
  409. enet_uint8 * data;
  410. size_t dataLength;
  411. ENetPacketFreeCallback freeCallback;
  412. void * userData;
  413. } ENetPacket;
  414. typedef struct _ENetAcknowledgement {
  415. ENetListNode acknowledgementList;
  416. enet_uint32 sentTime;
  417. ENetProtocol command;
  418. } ENetAcknowledgement;
  419. typedef struct _ENetOutgoingCommand {
  420. ENetListNode outgoingCommandList;
  421. enet_uint16 reliableSequenceNumber;
  422. enet_uint16 unreliableSequenceNumber;
  423. enet_uint32 sentTime;
  424. enet_uint32 roundTripTimeout;
  425. enet_uint32 roundTripTimeoutLimit;
  426. enet_uint32 fragmentOffset;
  427. enet_uint16 fragmentLength;
  428. enet_uint16 sendAttempts;
  429. ENetProtocol command;
  430. ENetPacket * packet;
  431. } ENetOutgoingCommand;
  432. typedef struct _ENetIncomingCommand {
  433. ENetListNode incomingCommandList;
  434. enet_uint16 reliableSequenceNumber;
  435. enet_uint16 unreliableSequenceNumber;
  436. ENetProtocol command;
  437. enet_uint32 fragmentCount;
  438. enet_uint32 fragmentsRemaining;
  439. enet_uint32 *fragments;
  440. ENetPacket * packet;
  441. } ENetIncomingCommand;
  442. typedef enum _ENetPeerState {
  443. ENET_PEER_STATE_DISCONNECTED = 0,
  444. ENET_PEER_STATE_CONNECTING = 1,
  445. ENET_PEER_STATE_ACKNOWLEDGING_CONNECT = 2,
  446. ENET_PEER_STATE_CONNECTION_PENDING = 3,
  447. ENET_PEER_STATE_CONNECTION_SUCCEEDED = 4,
  448. ENET_PEER_STATE_CONNECTED = 5,
  449. ENET_PEER_STATE_DISCONNECT_LATER = 6,
  450. ENET_PEER_STATE_DISCONNECTING = 7,
  451. ENET_PEER_STATE_ACKNOWLEDGING_DISCONNECT = 8,
  452. ENET_PEER_STATE_ZOMBIE = 9
  453. } ENetPeerState;
  454. enum {
  455. ENET_HOST_RECEIVE_BUFFER_SIZE = 256 * 1024,
  456. ENET_HOST_SEND_BUFFER_SIZE = 256 * 1024,
  457. ENET_HOST_BANDWIDTH_THROTTLE_INTERVAL = 1000,
  458. ENET_HOST_DEFAULT_MTU = 1400,
  459. ENET_HOST_DEFAULT_MAXIMUM_PACKET_SIZE = 32 * 1024 * 1024,
  460. ENET_HOST_DEFAULT_MAXIMUM_WAITING_DATA = 32 * 1024 * 1024,
  461. ENET_PEER_DEFAULT_ROUND_TRIP_TIME = 500,
  462. ENET_PEER_DEFAULT_PACKET_THROTTLE = 32,
  463. ENET_PEER_PACKET_THROTTLE_SCALE = 32,
  464. ENET_PEER_PACKET_THROTTLE_COUNTER = 7,
  465. ENET_PEER_PACKET_THROTTLE_ACCELERATION = 2,
  466. ENET_PEER_PACKET_THROTTLE_DECELERATION = 2,
  467. ENET_PEER_PACKET_THROTTLE_INTERVAL = 5000,
  468. ENET_PEER_PACKET_LOSS_SCALE = (1 << 16),
  469. ENET_PEER_PACKET_LOSS_INTERVAL = 10000,
  470. ENET_PEER_WINDOW_SIZE_SCALE = 64 * 1024,
  471. ENET_PEER_TIMEOUT_LIMIT = 32,
  472. ENET_PEER_TIMEOUT_MINIMUM = 5000,
  473. ENET_PEER_TIMEOUT_MAXIMUM = 30000,
  474. ENET_PEER_PING_INTERVAL = 500,
  475. ENET_PEER_UNSEQUENCED_WINDOWS = 64,
  476. ENET_PEER_UNSEQUENCED_WINDOW_SIZE = 1024,
  477. ENET_PEER_FREE_UNSEQUENCED_WINDOWS = 32,
  478. ENET_PEER_RELIABLE_WINDOWS = 16,
  479. ENET_PEER_RELIABLE_WINDOW_SIZE = 0x1000,
  480. ENET_PEER_FREE_RELIABLE_WINDOWS = 8
  481. };
  482. typedef struct _ENetChannel {
  483. enet_uint16 outgoingReliableSequenceNumber;
  484. enet_uint16 outgoingUnreliableSequenceNumber;
  485. enet_uint16 usedReliableWindows;
  486. enet_uint16 reliableWindows[ENET_PEER_RELIABLE_WINDOWS];
  487. enet_uint16 incomingReliableSequenceNumber;
  488. enet_uint16 incomingUnreliableSequenceNumber;
  489. ENetList incomingReliableCommands;
  490. ENetList incomingUnreliableCommands;
  491. } ENetChannel;
  492. typedef struct _ENetPeer {
  493. ENetListNode dispatchList;
  494. struct _ENetHost *host;
  495. enet_uint16 outgoingPeerID;
  496. enet_uint16 incomingPeerID;
  497. enet_uint32 connectID;
  498. enet_uint8 outgoingSessionID;
  499. enet_uint8 incomingSessionID;
  500. ENetAddress address;
  501. void * data;
  502. ENetPeerState state;
  503. ENetChannel * channels;
  504. size_t channelCount;
  505. enet_uint32 incomingBandwidth;
  506. enet_uint32 outgoingBandwidth;
  507. enet_uint32 incomingBandwidthThrottleEpoch;
  508. enet_uint32 outgoingBandwidthThrottleEpoch;
  509. enet_uint32 incomingDataTotal;
  510. enet_uint64 totalDataReceived;
  511. enet_uint32 outgoingDataTotal;
  512. enet_uint64 totalDataSent;
  513. enet_uint32 lastSendTime;
  514. enet_uint32 lastReceiveTime;
  515. enet_uint32 nextTimeout;
  516. enet_uint32 earliestTimeout;
  517. enet_uint32 packetLossEpoch;
  518. enet_uint32 packetsSent;
  519. enet_uint64 totalPacketsSent;
  520. enet_uint32 packetsLost;
  521. enet_uint32 totalPacketsLost;
  522. enet_uint32 packetLoss;
  523. enet_uint32 packetLossVariance;
  524. enet_uint32 packetThrottle;
  525. enet_uint32 packetThrottleLimit;
  526. enet_uint32 packetThrottleCounter;
  527. enet_uint32 packetThrottleEpoch;
  528. enet_uint32 packetThrottleAcceleration;
  529. enet_uint32 packetThrottleDeceleration;
  530. enet_uint32 packetThrottleInterval;
  531. enet_uint32 pingInterval;
  532. enet_uint32 timeoutLimit;
  533. enet_uint32 timeoutMinimum;
  534. enet_uint32 timeoutMaximum;
  535. enet_uint32 smoothedRoundTripTime;
  536. enet_uint32 lastRoundTripTime;
  537. enet_uint32 lowestRoundTripTime;
  538. enet_uint32 lastRoundTripTimeVariance;
  539. enet_uint32 highestRoundTripTimeVariance;
  540. enet_uint32 roundTripTime;
  541. enet_uint32 roundTripTimeVariance;
  542. enet_uint32 mtu;
  543. enet_uint32 windowSize;
  544. enet_uint32 reliableDataInTransit;
  545. enet_uint16 outgoingReliableSequenceNumber;
  546. ENetList acknowledgements;
  547. ENetList sentReliableCommands;
  548. ENetList sentUnreliableCommands;
  549. ENetList outgoingReliableCommands;
  550. ENetList outgoingUnreliableCommands;
  551. ENetList dispatchedCommands;
  552. int needsDispatch;
  553. enet_uint16 incomingUnsequencedGroup;
  554. enet_uint16 outgoingUnsequencedGroup;
  555. enet_uint32 unsequencedWindow[ENET_PEER_UNSEQUENCED_WINDOW_SIZE / 32];
  556. enet_uint32 eventData;
  557. size_t totalWaitingData;
  558. } ENetPeer;
  559. typedef enet_uint32 (ENET_CALLBACK * ENetChecksumCallback) (const ENetBuffer *buffers, size_t bufferCount);
  560. typedef int (ENET_CALLBACK * ENetInterceptCallback) (struct _ENetHost *host, void *event);
  561. typedef struct _ENetHost {
  562. ENetSocket socket;
  563. ENetAddress address;
  564. enet_uint32 incomingBandwidth;
  565. enet_uint32 outgoingBandwidth;
  566. enet_uint32 bandwidthThrottleEpoch;
  567. enet_uint32 mtu;
  568. enet_uint32 randomSeed;
  569. int recalculateBandwidthLimits;
  570. enet_uint8 preventConnections;
  571. ENetPeer * peers;
  572. size_t peerCount;
  573. size_t channelLimit;
  574. enet_uint32 serviceTime;
  575. ENetList dispatchQueue;
  576. int continueSending;
  577. size_t packetSize;
  578. enet_uint16 headerFlags;
  579. enet_uint32 totalSentData;
  580. enet_uint32 totalSentPackets;
  581. enet_uint32 totalReceivedData;
  582. enet_uint32 totalReceivedPackets;
  583. ENetProtocol commands[ENET_PROTOCOL_MAXIMUM_PACKET_COMMANDS];
  584. size_t commandCount;
  585. ENetBuffer buffers[ENET_BUFFER_MAXIMUM];
  586. size_t bufferCount;
  587. enet_uint8 compression;
  588. ENetChecksumCallback checksum;
  589. enet_uint8 packetData[2][ENET_PROTOCOL_MAXIMUM_MTU];
  590. ENetAddress receivedAddress;
  591. enet_uint8 * receivedData;
  592. size_t receivedDataLength;
  593. ENetInterceptCallback interceptCallback;
  594. size_t connectedPeers;
  595. size_t bandwidthLimitedPeers;
  596. size_t duplicatePeers;
  597. size_t maximumPacketSize;
  598. size_t maximumWaitingData;
  599. } ENetHost;
  600. typedef enum _ENetEventType {
  601. ENET_EVENT_TYPE_NONE = 0,
  602. ENET_EVENT_TYPE_CONNECT = 1,
  603. ENET_EVENT_TYPE_DISCONNECT = 2,
  604. ENET_EVENT_TYPE_RECEIVE = 3,
  605. ENET_EVENT_TYPE_DISCONNECT_TIMEOUT = 4
  606. } ENetEventType;
  607. typedef struct _ENetEvent {
  608. ENetEventType type;
  609. ENetPeer * peer;
  610. enet_uint8 channelID;
  611. enet_uint32 data;
  612. ENetPacket * packet;
  613. } ENetEvent;
  614. // =======================================================================//
  615. // !
  616. // ! Public API
  617. // !
  618. // =======================================================================//
  619. ENET_API int enet_initialize(void);
  620. ENET_API int enet_initialize_with_callbacks(ENetVersion, const ENetCallbacks *);
  621. ENET_API void enet_deinitialize(void);
  622. ENET_API ENetVersion enet_linked_version(void);
  623. ENET_API enet_uint32 enet_time_get(void);
  624. ENET_API ENetSocket enet_socket_create(ENetSocketType);
  625. ENET_API int enet_socket_bind(ENetSocket, const ENetAddress *);
  626. ENET_API int enet_socket_get_address(ENetSocket, ENetAddress *);
  627. ENET_API int enet_socket_listen(ENetSocket, int);
  628. ENET_API ENetSocket enet_socket_accept(ENetSocket, ENetAddress *);
  629. ENET_API int enet_socket_connect(ENetSocket, const ENetAddress *);
  630. ENET_API int enet_socket_send(ENetSocket, const ENetAddress *, const ENetBuffer *, size_t);
  631. ENET_API int enet_socket_receive(ENetSocket, ENetAddress *, ENetBuffer *, size_t);
  632. ENET_API int enet_socket_wait(ENetSocket, enet_uint32 *, enet_uint64);
  633. ENET_API int enet_socket_set_option(ENetSocket, ENetSocketOption, int);
  634. ENET_API int enet_socket_get_option(ENetSocket, ENetSocketOption, int *);
  635. ENET_API int enet_socket_shutdown(ENetSocket, ENetSocketShutdown);
  636. ENET_API void enet_socket_destroy(ENetSocket);
  637. ENET_API int enet_socket_set_select(ENetSocket, ENetSocketSet *, ENetSocketSet *, enet_uint32);
  638. ENET_API int enet_address_set_host_ip(ENetAddress *, const char *);
  639. ENET_API int enet_address_set_host(ENetAddress *, const char *);
  640. ENET_API int enet_address_get_host_ip(const ENetAddress *, char *, size_t);
  641. ENET_API int enet_address_get_host(const ENetAddress *, char *, size_t);
  642. ENET_API ENetPacket * enet_packet_create(const void *, size_t, enet_uint32);
  643. ENET_API ENetPacket * enet_packet_create_offset(const void *, size_t, size_t, enet_uint32);
  644. ENET_API void enet_packet_destroy(ENetPacket *);
  645. ENET_API enet_uint32 enet_crc32(const ENetBuffer *, size_t);
  646. ENET_API ENetHost * enet_host_create(const ENetAddress *, size_t, size_t, enet_uint32, enet_uint32);
  647. ENET_API void enet_host_destroy(ENetHost *);
  648. ENET_API void enet_host_enable_compression(ENetHost *);
  649. ENET_API void enet_host_prevent_connections(ENetHost *, enet_uint8);
  650. ENET_API ENetPeer * enet_host_connect(ENetHost *, const ENetAddress *, size_t, enet_uint32);
  651. ENET_API int enet_host_check_events(ENetHost *, ENetEvent *);
  652. ENET_API int enet_host_service(ENetHost *, ENetEvent *, enet_uint32);
  653. ENET_API void enet_host_flush(ENetHost *);
  654. ENET_API void enet_host_broadcast(ENetHost *, enet_uint8, ENetPacket *);
  655. ENET_API void enet_host_broadcast_selective(ENetHost *, enet_uint8, ENetPacket *, ENetPeer **, size_t);
  656. ENET_API void enet_host_channel_limit(ENetHost *, size_t);
  657. ENET_API void enet_host_bandwidth_limit(ENetHost *, enet_uint32, enet_uint32);
  658. extern void enet_host_bandwidth_throttle(ENetHost *);
  659. extern enet_uint64 enet_host_random_seed(void);
  660. ENET_API int enet_peer_send(ENetPeer *, enet_uint8, ENetPacket *);
  661. ENET_API ENetPacket * enet_peer_receive(ENetPeer *, enet_uint8 * channelID);
  662. ENET_API void enet_peer_ping(ENetPeer *);
  663. ENET_API void enet_peer_ping_interval(ENetPeer *, enet_uint32);
  664. ENET_API void enet_peer_timeout(ENetPeer *, enet_uint32, enet_uint32, enet_uint32);
  665. ENET_API void enet_peer_reset(ENetPeer *);
  666. ENET_API void enet_peer_disconnect(ENetPeer *, enet_uint32);
  667. ENET_API void enet_peer_disconnect_now(ENetPeer *, enet_uint32);
  668. ENET_API void enet_peer_disconnect_later(ENetPeer *, enet_uint32);
  669. ENET_API void enet_peer_throttle_configure(ENetPeer *, enet_uint32, enet_uint32, enet_uint32);
  670. extern int enet_peer_throttle(ENetPeer *, enet_uint32);
  671. extern void enet_peer_reset_queues(ENetPeer *);
  672. extern void enet_peer_setup_outgoing_command(ENetPeer *, ENetOutgoingCommand *);
  673. extern ENetOutgoingCommand * enet_peer_queue_outgoing_command(ENetPeer *, const ENetProtocol *, ENetPacket *, enet_uint32, enet_uint16);
  674. extern ENetIncomingCommand * enet_peer_queue_incoming_command(ENetPeer *, const ENetProtocol *, const void *, size_t, enet_uint32, enet_uint32);
  675. extern ENetAcknowledgement * enet_peer_queue_acknowledgement(ENetPeer *, const ENetProtocol *, enet_uint16);
  676. extern void enet_peer_dispatch_incoming_unreliable_commands(ENetPeer *, ENetChannel *);
  677. extern void enet_peer_dispatch_incoming_reliable_commands(ENetPeer *, ENetChannel *);
  678. extern void enet_peer_on_connect(ENetPeer *);
  679. extern void enet_peer_on_disconnect(ENetPeer *);
  680. extern size_t enet_protocol_command_size(enet_uint8);
  681. /* Extended API for easier binding in other programming languages */
  682. ENET_API void * enet_packet_get_data(ENetPacket *);
  683. ENET_API int enet_packet_get_length(ENetPacket *);
  684. ENET_API void enet_packet_set_free_callback(ENetPacket *, const void *);
  685. ENET_API int enet_packet_check_references(ENetPacket *);
  686. ENET_API void enet_packet_dispose(ENetPacket *);
  687. ENET_API enet_uint32 enet_host_get_peers_count(ENetHost *);
  688. ENET_API enet_uint32 enet_host_get_packets_sent(ENetHost *);
  689. ENET_API enet_uint32 enet_host_get_packets_received(ENetHost *);
  690. ENET_API enet_uint32 enet_host_get_bytes_sent(ENetHost *);
  691. ENET_API enet_uint32 enet_host_get_bytes_received(ENetHost *);
  692. ENET_API enet_uint32 enet_peer_get_id(ENetPeer *);
  693. ENET_API int enet_peer_get_ip(ENetPeer *, char * ip, size_t ipLength);
  694. ENET_API enet_uint16 enet_peer_get_port(ENetPeer *);
  695. ENET_API enet_uint32 enet_peer_get_mtu(ENetPeer *);
  696. ENET_API ENetPeerState enet_peer_get_state(ENetPeer *);
  697. ENET_API enet_uint32 enet_peer_get_rtt(ENetPeer *);
  698. ENET_API enet_uint32 enet_peer_get_lastsendtime(ENetPeer *);
  699. ENET_API enet_uint32 enet_peer_get_lastreceivetime(ENetPeer *);
  700. ENET_API enet_uint64 enet_peer_get_packets_sent(ENetPeer *);
  701. ENET_API enet_uint32 enet_peer_get_packets_lost(ENetPeer *);
  702. ENET_API enet_uint64 enet_peer_get_bytes_sent(ENetPeer *);
  703. ENET_API enet_uint64 enet_peer_get_bytes_received(ENetPeer *);
  704. ENET_API void * enet_peer_get_data(ENetPeer *);
  705. ENET_API void enet_peer_set_data(ENetPeer *, const void *);
  706. #ifdef __cplusplus
  707. }
  708. #endif
  709. #if defined(ENET_IMPLEMENTATION) && !defined(ENET_IMPLEMENTATION_DONE)
  710. #define ENET_IMPLEMENTATION_DONE 1
  711. #ifdef __cplusplus
  712. extern "C" {
  713. #endif
  714. // =======================================================================//
  715. // !
  716. // ! Atomics
  717. // !
  718. // =======================================================================//
  719. #ifdef _MSC_VER
  720. #define ENET_AT_CASSERT_PRED(predicate) sizeof(char[2 * !!(predicate)-1])
  721. #define ENET_IS_SUPPORTED_ATOMIC(size) ENET_AT_CASSERT_PRED(size == 1 || size == 2 || size == 4 || size == 8)
  722. #define ENET_ATOMIC_SIZEOF(variable) (ENET_IS_SUPPORTED_ATOMIC(sizeof(*(variable))), sizeof(*(variable)))
  723. __inline int64_t enet_at_atomic_read(char *ptr, size_t size) {
  724. switch (size) {
  725. case 1:
  726. return _InterlockedExchangeAdd8((volatile char *)ptr, 0);
  727. case 2:
  728. return _InterlockedExchangeAdd16((volatile SHORT *)ptr, 0);
  729. case 4:
  730. #ifdef NOT_UNDERSCORED_INTERLOCKED_EXCHANGE
  731. return InterlockedExchangeAdd((volatile LONG *)ptr, 0);
  732. #else
  733. return _InterlockedExchangeAdd((volatile LONG *)ptr, 0);
  734. #endif
  735. case 8:
  736. #ifdef NOT_UNDERSCORED_INTERLOCKED_EXCHANGE
  737. return InterlockedExchangeAdd64((volatile LONGLONG *)ptr, 0);
  738. #else
  739. return _InterlockedExchangeAdd64((volatile LONGLONG *)ptr, 0);
  740. #endif
  741. default:
  742. return 0x0;
  743. }
  744. }
  745. __inline int64_t enet_at_atomic_write(char *ptr, int64_t value, size_t size) {
  746. switch (size) {
  747. case 1:
  748. return _InterlockedExchange8((volatile char *)ptr, (char)value);
  749. case 2:
  750. return _InterlockedExchange16((volatile SHORT *)ptr, (SHORT)value);
  751. case 4:
  752. #ifdef NOT_UNDERSCORED_INTERLOCKED_EXCHANGE
  753. return InterlockedExchange((volatile LONG *)ptr, (LONG)value);
  754. #else
  755. return _InterlockedExchange((volatile LONG *)ptr, (LONG)value);
  756. #endif
  757. case 8:
  758. #ifdef NOT_UNDERSCORED_INTERLOCKED_EXCHANGE
  759. return InterlockedExchange64((volatile LONGLONG *)ptr, (LONGLONG)value);
  760. #else
  761. return _InterlockedExchange64((volatile LONGLONG *)ptr, (LONGLONG)value);
  762. #endif
  763. default:
  764. return 0x0;
  765. }
  766. }
  767. __inline int64_t enet_at_atomic_cas(char *ptr, int64_t new_val, int64_t old_val, size_t size) {
  768. switch (size) {
  769. case 1:
  770. return _InterlockedCompareExchange8((volatile char *)ptr, (char)new_val, (char)old_val);
  771. case 2:
  772. return _InterlockedCompareExchange16((volatile SHORT *)ptr, (SHORT)new_val,
  773. (SHORT)old_val);
  774. case 4:
  775. #ifdef NOT_UNDERSCORED_INTERLOCKED_EXCHANGE
  776. return InterlockedCompareExchange((volatile LONG *)ptr, (LONG)new_val, (LONG)old_val);
  777. #else
  778. return _InterlockedCompareExchange((volatile LONG *)ptr, (LONG)new_val, (LONG)old_val);
  779. #endif
  780. case 8:
  781. #ifdef NOT_UNDERSCORED_INTERLOCKED_EXCHANGE
  782. return InterlockedCompareExchange64((volatile LONGLONG *)ptr, (LONGLONG)new_val, (LONGLONG)old_val);
  783. #else
  784. return _InterlockedCompareExchange64((volatile LONGLONG *)ptr, (LONGLONG)new_val, (LONGLONG)old_val);
  785. #endif
  786. default:
  787. return 0x0;
  788. }
  789. }
  790. __inline int64_t enet_at_atomic_inc(char *ptr, int64_t delta, size_t data_size) {
  791. switch (data_size) {
  792. case 1:
  793. return _InterlockedExchangeAdd8((volatile char *)ptr, (char)delta);
  794. case 2:
  795. return _InterlockedExchangeAdd16((volatile SHORT *)ptr, (SHORT)delta);
  796. case 4:
  797. #ifdef NOT_UNDERSCORED_INTERLOCKED_EXCHANGE
  798. return InterlockedExchangeAdd((volatile LONG *)ptr, (LONG)delta);
  799. #else
  800. return _InterlockedExchangeAdd((volatile LONG *)ptr, (LONG)delta);
  801. #endif
  802. case 8:
  803. #ifdef NOT_UNDERSCORED_INTERLOCKED_EXCHANGE
  804. return InterlockedExchangeAdd64((volatile LONGLONG *)ptr, (LONGLONG)delta);
  805. #else
  806. return _InterlockedExchangeAdd64((volatile LONGLONG *)ptr, (LONGLONG)delta);
  807. #endif
  808. default:
  809. return 0x0;
  810. }
  811. }
  812. #define ENET_ATOMIC_READ(variable) enet_at_atomic_read((char *) (variable), ENET_ATOMIC_SIZEOF(variable))
  813. #define ENET_ATOMIC_WRITE(variable, new_val) \
  814. enet_at_atomic_write((char *) (variable), (int64_t) (new_val), ENET_ATOMIC_SIZEOF(variable))
  815. #define ENET_ATOMIC_CAS(variable, old_value, new_val) \
  816. enet_at_atomic_cas((char *) (variable), (int64_t) (new_val), (int64_t) (old_value), \
  817. ENET_ATOMIC_SIZEOF(variable))
  818. #define ENET_ATOMIC_INC(variable) enet_at_atomic_inc((char *) (variable), 1, ENET_ATOMIC_SIZEOF(variable))
  819. #define ENET_ATOMIC_DEC(variable) enet_at_atomic_inc((char *) (variable), -1, ENET_ATOMIC_SIZEOF(variable))
  820. #define ENET_ATOMIC_INC_BY(variable, delta) \
  821. enet_at_atomic_inc((char *) (variable), (delta), ENET_ATOMIC_SIZEOF(variable))
  822. #define ENET_ATOMIC_DEC_BY(variable, delta) \
  823. enet_at_atomic_inc((char *) (variable), -(delta), ENET_ATOMIC_SIZEOF(variable))
  824. #elif defined(__GNUC__) || defined(__clang__)
  825. #if defined(__clang__) || (__GNUC__ > 4 || (__GNUC__ == 4 && __GNUC_MINOR__ >= 7))
  826. #define AT_HAVE_ATOMICS
  827. #endif
  828. /* We want to use __atomic built-ins if possible because the __sync primitives are
  829. deprecated, because the __atomic build-ins allow us to use ENET_ATOMIC_WRITE on
  830. uninitialized memory without running into undefined behavior, and because the
  831. __atomic versions generate more efficient code since we don't need to rely on
  832. CAS when we don't actually want it.
  833. Note that we use acquire-release memory order (like mutexes do). We could use
  834. sequentially consistent memory order but that has lower performance and is
  835. almost always unneeded. */
  836. #ifdef AT_HAVE_ATOMICS
  837. #define ENET_ATOMIC_READ(ptr) __atomic_load_n((ptr), __ATOMIC_ACQUIRE)
  838. #define ENET_ATOMIC_WRITE(ptr, value) __atomic_store_n((ptr), (value), __ATOMIC_RELEASE)
  839. #ifndef typeof
  840. #define typeof __typeof__
  841. #endif
  842. /* clang_analyzer doesn't know that CAS writes to memory so it complains about
  843. potentially lost data. Replace the code with the equivalent non-sync code. */
  844. #ifdef __clang_analyzer__
  845. #define ENET_ATOMIC_CAS(ptr, old_value, new_value) \
  846. ({ \
  847. typeof(*(ptr)) ENET_ATOMIC_CAS_old_actual_ = (*(ptr)); \
  848. if (ATOMIC_CAS_old_actual_ == (old_value)) { \
  849. *(ptr) = new_value; \
  850. } \
  851. ENET_ATOMIC_CAS_old_actual_; \
  852. })
  853. #else
  854. /* Could use __auto_type instead of typeof but that shouldn't work in C++.
  855. The ({ }) syntax is a GCC extension called statement expression. It lets
  856. us return a value out of the macro.
  857. TODO We should return bool here instead of the old value to avoid the ABA
  858. problem. */
  859. #define ENET_ATOMIC_CAS(ptr, old_value, new_value) \
  860. ({ \
  861. typeof(*(ptr)) ENET_ATOMIC_CAS_expected_ = (old_value); \
  862. __atomic_compare_exchange_n((ptr), &ENET_ATOMIC_CAS_expected_, (new_value), false, \
  863. __ATOMIC_ACQ_REL, __ATOMIC_ACQUIRE); \
  864. ENET_ATOMIC_CAS_expected_; \
  865. })
  866. #endif
  867. #define ENET_ATOMIC_INC(ptr) __atomic_fetch_add((ptr), 1, __ATOMIC_ACQ_REL)
  868. #define ENET_ATOMIC_DEC(ptr) __atomic_fetch_sub((ptr), 1, __ATOMIC_ACQ_REL)
  869. #define ENET_ATOMIC_INC_BY(ptr, delta) __atomic_fetch_add((ptr), (delta), __ATOMIC_ACQ_REL)
  870. #define ENET_ATOMIC_DEC_BY(ptr, delta) __atomic_fetch_sub((ptr), (delta), __ATOMIC_ACQ_REL)
  871. #else
  872. #define ENET_ATOMIC_READ(variable) __sync_fetch_and_add(variable, 0)
  873. #define ENET_ATOMIC_WRITE(variable, new_val) \
  874. (void) __sync_val_compare_and_swap((variable), *(variable), (new_val))
  875. #define ENET_ATOMIC_CAS(variable, old_value, new_val) \
  876. __sync_val_compare_and_swap((variable), (old_value), (new_val))
  877. #define ENET_ATOMIC_INC(variable) __sync_fetch_and_add((variable), 1)
  878. #define ENET_ATOMIC_DEC(variable) __sync_fetch_and_sub((variable), 1)
  879. #define ENET_ATOMIC_INC_BY(variable, delta) __sync_fetch_and_add((variable), (delta), 1)
  880. #define ENET_ATOMIC_DEC_BY(variable, delta) __sync_fetch_and_sub((variable), (delta), 1)
  881. #endif
  882. #undef AT_HAVE_ATOMICS
  883. #endif
  884. // =======================================================================//
  885. // !
  886. // ! Globals
  887. // !
  888. // =======================================================================//
  889. ENetVersion enet_linked_version(void) {
  890. return ENET_VERSION;
  891. }
  892. // =======================================================================//
  893. // !
  894. // ! Callbacks
  895. // !
  896. // =======================================================================//
  897. static ENetCallbacks callbacks = { malloc, free, abort };
  898. int enet_initialize_with_callbacks(ENetVersion version, const ENetCallbacks *inits) {
  899. if (version < ENET_VERSION_CREATE(1, 3, 0)) {
  900. return -1;
  901. }
  902. if (inits->malloc != NULL || inits->free != NULL) {
  903. if (inits->malloc == NULL || inits->free == NULL) {
  904. return -1;
  905. }
  906. callbacks.malloc = inits->malloc;
  907. callbacks.free = inits->free;
  908. }
  909. if (inits->no_memory != NULL) {
  910. callbacks.no_memory = inits->no_memory;
  911. }
  912. return enet_initialize();
  913. }
  914. void *enet_malloc(size_t size) {
  915. void *memory = callbacks.malloc(size);
  916. if (memory == NULL) {
  917. callbacks.no_memory();
  918. }
  919. return memory;
  920. }
  921. void enet_free(void *memory) {
  922. callbacks.free(memory);
  923. }
  924. // =======================================================================//
  925. // !
  926. // ! List
  927. // !
  928. // =======================================================================//
  929. void enet_list_clear(ENetList *list) {
  930. list->sentinel.next = &list->sentinel;
  931. list->sentinel.previous = &list->sentinel;
  932. }
  933. ENetListIterator enet_list_insert(ENetListIterator position, void *data) {
  934. ENetListIterator result = (ENetListIterator)data;
  935. result->previous = position->previous;
  936. result->next = position;
  937. result->previous->next = result;
  938. position->previous = result;
  939. return result;
  940. }
  941. void *enet_list_remove(ENetListIterator position) {
  942. position->previous->next = position->next;
  943. position->next->previous = position->previous;
  944. return position;
  945. }
  946. ENetListIterator enet_list_move(ENetListIterator position, void *dataFirst, void *dataLast) {
  947. ENetListIterator first = (ENetListIterator)dataFirst;
  948. ENetListIterator last = (ENetListIterator)dataLast;
  949. first->previous->next = last->next;
  950. last->next->previous = first->previous;
  951. first->previous = position->previous;
  952. last->next = position;
  953. first->previous->next = first;
  954. position->previous = last;
  955. return first;
  956. }
  957. size_t enet_list_size(ENetList *list) {
  958. size_t size = 0;
  959. ENetListIterator position;
  960. for (position = enet_list_begin(list); position != enet_list_end(list); position = enet_list_next(position)) {
  961. ++size;
  962. }
  963. return size;
  964. }
  965. // =======================================================================//
  966. // !
  967. // ! Packet
  968. // !
  969. // =======================================================================//
  970. ENetPacket *enet_packet_create(const void *data, size_t dataLength, enet_uint32 flags) {
  971. ENetPacket *packet;
  972. if (flags & ENET_PACKET_FLAG_NO_ALLOCATE) {
  973. packet = (ENetPacket *)enet_malloc(sizeof(ENetPacket));
  974. if (packet == NULL) {
  975. return NULL;
  976. }
  977. packet->data = (enet_uint8 *)data;
  978. } else {
  979. packet = (ENetPacket *)enet_malloc(sizeof(ENetPacket) + dataLength);
  980. if (packet == NULL) {
  981. return NULL;
  982. }
  983. packet->data = (enet_uint8 *)packet + sizeof(ENetPacket);
  984. if (data != NULL) {
  985. memcpy(packet->data, data, dataLength);
  986. }
  987. }
  988. packet->referenceCount = 0;
  989. packet->flags = flags;
  990. packet->dataLength = dataLength;
  991. packet->freeCallback = NULL;
  992. packet->userData = NULL;
  993. return packet;
  994. }
  995. ENetPacket *enet_packet_create_offset(const void *data, size_t dataLength, size_t dataOffset, enet_uint32 flags) {
  996. ENetPacket *packet;
  997. if (flags & ENET_PACKET_FLAG_NO_ALLOCATE) {
  998. packet = (ENetPacket *)enet_malloc(sizeof(ENetPacket));
  999. if (packet == NULL) {
  1000. return NULL;
  1001. }
  1002. packet->data = (enet_uint8 *)data;
  1003. } else {
  1004. packet = (ENetPacket *)enet_malloc(sizeof(ENetPacket) + dataLength + dataOffset);
  1005. if (packet == NULL) {
  1006. return NULL;
  1007. }
  1008. packet->data = (enet_uint8 *)packet + sizeof(ENetPacket);
  1009. if (data != NULL) {
  1010. memcpy(packet->data + dataOffset, data, dataLength);
  1011. }
  1012. }
  1013. packet->referenceCount = 0;
  1014. packet->flags = flags;
  1015. packet->dataLength = dataLength + dataOffset;
  1016. packet->freeCallback = NULL;
  1017. packet->userData = NULL;
  1018. return packet;
  1019. }
  1020. void enet_packet_destroy(ENetPacket *packet) {
  1021. if (packet == NULL) {
  1022. return;
  1023. }
  1024. if (packet->freeCallback != NULL) {
  1025. (*packet->freeCallback) ((void *)packet);
  1026. }
  1027. enet_free(packet);
  1028. }
  1029. static int initializedCRC32 = 0;
  1030. static enet_uint32 crcTable[256];
  1031. static enet_uint32 reflect_crc(int val, int bits) {
  1032. int result = 0, bit;
  1033. for (bit = 0; bit < bits; bit++) {
  1034. if (val & 1) {
  1035. result |= 1 << (bits - 1 - bit);
  1036. }
  1037. val >>= 1;
  1038. }
  1039. return result;
  1040. }
  1041. static void initialize_crc32(void) {
  1042. int byte;
  1043. for (byte = 0; byte < 256; ++byte) {
  1044. enet_uint32 crc = reflect_crc(byte, 8) << 24;
  1045. int offset;
  1046. for (offset = 0; offset < 8; ++offset) {
  1047. if (crc & 0x80000000) {
  1048. crc = (crc << 1) ^ 0x04c11db7;
  1049. } else {
  1050. crc <<= 1;
  1051. }
  1052. }
  1053. crcTable[byte] = reflect_crc(crc, 32);
  1054. }
  1055. initializedCRC32 = 1;
  1056. }
  1057. enet_uint32 enet_crc32(const ENetBuffer *buffers, size_t bufferCount) {
  1058. enet_uint32 crc = 0xFFFFFFFF;
  1059. if (!initializedCRC32) {
  1060. initialize_crc32();
  1061. }
  1062. while (bufferCount-- > 0) {
  1063. const enet_uint8 *data = (const enet_uint8 *)buffers->data;
  1064. const enet_uint8 *dataEnd = &data[buffers->dataLength];
  1065. while (data < dataEnd) {
  1066. crc = (crc >> 8) ^ crcTable[(crc & 0xFF) ^ *data++];
  1067. }
  1068. ++buffers;
  1069. }
  1070. return ENET_HOST_TO_NET_32(~crc);
  1071. }
  1072. // =======================================================================//
  1073. // !
  1074. // ! Protocol
  1075. // !
  1076. // =======================================================================//
  1077. static size_t commandSizes[ENET_PROTOCOL_COMMAND_COUNT] = {
  1078. 0,
  1079. sizeof(ENetProtocolAcknowledge),
  1080. sizeof(ENetProtocolConnect),
  1081. sizeof(ENetProtocolVerifyConnect),
  1082. sizeof(ENetProtocolDisconnect),
  1083. sizeof(ENetProtocolPing),
  1084. sizeof(ENetProtocolSendReliable),
  1085. sizeof(ENetProtocolSendUnreliable),
  1086. sizeof(ENetProtocolSendFragment),
  1087. sizeof(ENetProtocolSendUnsequenced),
  1088. sizeof(ENetProtocolBandwidthLimit),
  1089. sizeof(ENetProtocolThrottleConfigure),
  1090. sizeof(ENetProtocolSendFragment)
  1091. };
  1092. size_t enet_protocol_command_size(enet_uint8 commandNumber) {
  1093. return commandSizes[commandNumber & ENET_PROTOCOL_COMMAND_MASK];
  1094. }
  1095. static void enet_protocol_change_state(ENetHost *host, ENetPeer *peer, ENetPeerState state) {
  1096. if (state == ENET_PEER_STATE_CONNECTED || state == ENET_PEER_STATE_DISCONNECT_LATER) {
  1097. enet_peer_on_connect(peer);
  1098. } else {
  1099. enet_peer_on_disconnect(peer);
  1100. }
  1101. peer->state = state;
  1102. }
  1103. static void enet_protocol_dispatch_state(ENetHost *host, ENetPeer *peer, ENetPeerState state) {
  1104. enet_protocol_change_state(host, peer, state);
  1105. if (!peer->needsDispatch) {
  1106. enet_list_insert(enet_list_end(&host->dispatchQueue), &peer->dispatchList);
  1107. peer->needsDispatch = 1;
  1108. }
  1109. }
  1110. static int enet_protocol_dispatch_incoming_commands(ENetHost *host, ENetEvent *event) {
  1111. while (!enet_list_empty(&host->dispatchQueue)) {
  1112. ENetPeer *peer = (ENetPeer *)enet_list_remove(enet_list_begin(&host->dispatchQueue));
  1113. peer->needsDispatch = 0;
  1114. switch (peer->state) {
  1115. case ENET_PEER_STATE_CONNECTION_PENDING:
  1116. case ENET_PEER_STATE_CONNECTION_SUCCEEDED:
  1117. enet_protocol_change_state(host, peer, ENET_PEER_STATE_CONNECTED);
  1118. event->type = ENET_EVENT_TYPE_CONNECT;
  1119. event->peer = peer;
  1120. event->data = peer->eventData;
  1121. return 1;
  1122. case ENET_PEER_STATE_ZOMBIE:
  1123. host->recalculateBandwidthLimits = 1;
  1124. event->type = ENET_EVENT_TYPE_DISCONNECT;
  1125. event->peer = peer;
  1126. event->data = peer->eventData;
  1127. enet_peer_reset(peer);
  1128. return 1;
  1129. case ENET_PEER_STATE_CONNECTED:
  1130. if (enet_list_empty(&peer->dispatchedCommands)) {
  1131. continue;
  1132. }
  1133. event->packet = enet_peer_receive(peer, &event->channelID);
  1134. if (event->packet == NULL) {
  1135. continue;
  1136. }
  1137. event->type = ENET_EVENT_TYPE_RECEIVE;
  1138. event->peer = peer;
  1139. if (!enet_list_empty(&peer->dispatchedCommands)) {
  1140. peer->needsDispatch = 1;
  1141. enet_list_insert(enet_list_end(&host->dispatchQueue), &peer->dispatchList);
  1142. }
  1143. return 1;
  1144. default:
  1145. break;
  1146. }
  1147. }
  1148. return 0;
  1149. }
  1150. static void enet_protocol_notify_connect(ENetHost *host, ENetPeer *peer, ENetEvent *event) {
  1151. host->recalculateBandwidthLimits = 1;
  1152. if (event != NULL) {
  1153. enet_protocol_change_state(host, peer, ENET_PEER_STATE_CONNECTED);
  1154. peer->totalDataSent = 0;
  1155. peer->totalDataReceived = 0;
  1156. peer->totalPacketsSent = 0;
  1157. peer->totalPacketsLost = 0;
  1158. event->type = ENET_EVENT_TYPE_CONNECT;
  1159. event->peer = peer;
  1160. event->data = peer->eventData;
  1161. } else {
  1162. enet_protocol_dispatch_state(host, peer, peer->state == ENET_PEER_STATE_CONNECTING ? ENET_PEER_STATE_CONNECTION_SUCCEEDED : ENET_PEER_STATE_CONNECTION_PENDING);
  1163. }
  1164. }
  1165. static void enet_protocol_notify_disconnect(ENetHost *host, ENetPeer *peer, ENetEvent *event) {
  1166. if (peer->state >= ENET_PEER_STATE_CONNECTION_PENDING) {
  1167. host->recalculateBandwidthLimits = 1;
  1168. }
  1169. if (peer->state != ENET_PEER_STATE_CONNECTING && peer->state < ENET_PEER_STATE_CONNECTION_SUCCEEDED) {
  1170. enet_peer_reset(peer);
  1171. } else if (event != NULL) {
  1172. event->type = ENET_EVENT_TYPE_DISCONNECT;
  1173. event->peer = peer;
  1174. event->data = 0;
  1175. enet_peer_reset(peer);
  1176. } else {
  1177. peer->eventData = 0;
  1178. enet_protocol_dispatch_state(host, peer, ENET_PEER_STATE_ZOMBIE);
  1179. }
  1180. }
  1181. static void enet_protocol_notify_disconnect_timeout(ENetHost * host, ENetPeer * peer, ENetEvent * event) {
  1182. if (peer->state >= ENET_PEER_STATE_CONNECTION_PENDING) {
  1183. host->recalculateBandwidthLimits = 1;
  1184. }
  1185. if (peer->state != ENET_PEER_STATE_CONNECTING && peer->state < ENET_PEER_STATE_CONNECTION_SUCCEEDED) {
  1186. enet_peer_reset (peer);
  1187. } else if (event != NULL) {
  1188. event->type = ENET_EVENT_TYPE_DISCONNECT_TIMEOUT;
  1189. event->peer = peer;
  1190. event->data = 0;
  1191. enet_peer_reset(peer);
  1192. } else {
  1193. peer->eventData = 0;
  1194. enet_protocol_dispatch_state(host, peer, ENET_PEER_STATE_ZOMBIE);
  1195. }
  1196. }
  1197. static void enet_protocol_remove_sent_unreliable_commands(ENetPeer *peer) {
  1198. ENetOutgoingCommand *outgoingCommand;
  1199. while (!enet_list_empty(&peer->sentUnreliableCommands)) {
  1200. outgoingCommand = (ENetOutgoingCommand *)enet_list_front(&peer->sentUnreliableCommands);
  1201. enet_list_remove(&outgoingCommand->outgoingCommandList);
  1202. if (outgoingCommand->packet != NULL) {
  1203. --outgoingCommand->packet->referenceCount;
  1204. if (outgoingCommand->packet->referenceCount == 0) {
  1205. outgoingCommand->packet->flags |= ENET_PACKET_FLAG_SENT;
  1206. enet_packet_destroy(outgoingCommand->packet);
  1207. }
  1208. }
  1209. enet_free(outgoingCommand);
  1210. }
  1211. }
  1212. static ENetProtocolCommand enet_protocol_remove_sent_reliable_command(ENetPeer *peer, enet_uint16 reliableSequenceNumber, enet_uint8 channelID) {
  1213. ENetOutgoingCommand *outgoingCommand = NULL;
  1214. ENetListIterator currentCommand;
  1215. ENetProtocolCommand commandNumber;
  1216. int wasSent = 1;
  1217. for (currentCommand = enet_list_begin(&peer->sentReliableCommands);
  1218. currentCommand != enet_list_end(&peer->sentReliableCommands);
  1219. currentCommand = enet_list_next(currentCommand)
  1220. ) {
  1221. outgoingCommand = (ENetOutgoingCommand *)currentCommand;
  1222. if (outgoingCommand->reliableSequenceNumber == reliableSequenceNumber && outgoingCommand->command.header.channelID == channelID) {
  1223. break;
  1224. }
  1225. }
  1226. if (currentCommand == enet_list_end(&peer->sentReliableCommands)) {
  1227. for (currentCommand = enet_list_begin(&peer->outgoingReliableCommands);
  1228. currentCommand != enet_list_end(&peer->outgoingReliableCommands);
  1229. currentCommand = enet_list_next(currentCommand)
  1230. ) {
  1231. outgoingCommand = (ENetOutgoingCommand *)currentCommand;
  1232. if (outgoingCommand->sendAttempts < 1) {
  1233. return ENET_PROTOCOL_COMMAND_NONE;
  1234. }
  1235. if (outgoingCommand->reliableSequenceNumber == reliableSequenceNumber && outgoingCommand->command.header.channelID == channelID) {
  1236. break;
  1237. }
  1238. }
  1239. if (currentCommand == enet_list_end(&peer->outgoingReliableCommands)) {
  1240. return ENET_PROTOCOL_COMMAND_NONE;
  1241. }
  1242. wasSent = 0;
  1243. }
  1244. if (outgoingCommand == NULL) {
  1245. return ENET_PROTOCOL_COMMAND_NONE;
  1246. }
  1247. if (channelID < peer->channelCount) {
  1248. ENetChannel *channel = &peer->channels[channelID];
  1249. enet_uint16 reliableWindow = reliableSequenceNumber / ENET_PEER_RELIABLE_WINDOW_SIZE;
  1250. if (channel->reliableWindows[reliableWindow] > 0) {
  1251. --channel->reliableWindows[reliableWindow];
  1252. if (!channel->reliableWindows[reliableWindow]) {
  1253. channel->usedReliableWindows &= ~(1 << reliableWindow);
  1254. }
  1255. }
  1256. }
  1257. commandNumber = (ENetProtocolCommand) (outgoingCommand->command.header.command & ENET_PROTOCOL_COMMAND_MASK);
  1258. enet_list_remove(&outgoingCommand->outgoingCommandList);
  1259. if (outgoingCommand->packet != NULL) {
  1260. if (wasSent) {
  1261. peer->reliableDataInTransit -= outgoingCommand->fragmentLength;
  1262. }
  1263. --outgoingCommand->packet->referenceCount;
  1264. if (outgoingCommand->packet->referenceCount == 0) {
  1265. outgoingCommand->packet->flags |= ENET_PACKET_FLAG_SENT;
  1266. enet_packet_destroy(outgoingCommand->packet);
  1267. }
  1268. }
  1269. enet_free(outgoingCommand);
  1270. if (enet_list_empty(&peer->sentReliableCommands)) {
  1271. return commandNumber;
  1272. }
  1273. outgoingCommand = (ENetOutgoingCommand *)enet_list_front(&peer->sentReliableCommands);
  1274. peer->nextTimeout = outgoingCommand->sentTime + outgoingCommand->roundTripTimeout;
  1275. return commandNumber;
  1276. }
  1277. static ENetPeer * enet_protocol_handle_connect(ENetHost *host, ENetProtocolHeader *header, ENetProtocol *command) {
  1278. enet_uint8 incomingSessionID, outgoingSessionID;
  1279. enet_uint32 mtu, windowSize;
  1280. ENetChannel *channel;
  1281. size_t channelCount, duplicatePeers = 0;
  1282. ENetPeer *currentPeer, *peer = NULL;
  1283. ENetProtocol verifyCommand;
  1284. channelCount = ENET_NET_TO_HOST_32(command->connect.channelCount);
  1285. if (channelCount < ENET_PROTOCOL_MINIMUM_CHANNEL_COUNT || channelCount > ENET_PROTOCOL_MAXIMUM_CHANNEL_COUNT) {
  1286. return NULL;
  1287. }
  1288. for (currentPeer = host->peers; currentPeer < &host->peers[host->peerCount]; ++currentPeer) {
  1289. if (currentPeer->state == ENET_PEER_STATE_DISCONNECTED) {
  1290. if (peer == NULL) {
  1291. peer = currentPeer;
  1292. }
  1293. } else if (currentPeer->state != ENET_PEER_STATE_CONNECTING && in6_equal(currentPeer->address.host, host->receivedAddress.host)) {
  1294. if (currentPeer->address.port == host->receivedAddress.port && currentPeer->connectID == command->connect.connectID) {
  1295. return NULL;
  1296. }
  1297. ++duplicatePeers;
  1298. }
  1299. }
  1300. if (peer == NULL || duplicatePeers >= host->duplicatePeers) {
  1301. return NULL;
  1302. }
  1303. if (channelCount > host->channelLimit) {
  1304. channelCount = host->channelLimit;
  1305. }
  1306. peer->channels = (ENetChannel *)enet_malloc(channelCount * sizeof(ENetChannel));
  1307. if (peer->channels == NULL) {
  1308. return NULL;
  1309. }
  1310. peer->channelCount = channelCount;
  1311. peer->state = ENET_PEER_STATE_ACKNOWLEDGING_CONNECT;
  1312. peer->connectID = command->connect.connectID;
  1313. peer->address = host->receivedAddress;
  1314. peer->outgoingPeerID = ENET_NET_TO_HOST_16(command->connect.outgoingPeerID);
  1315. peer->incomingBandwidth = ENET_NET_TO_HOST_32(command->connect.incomingBandwidth);
  1316. peer->outgoingBandwidth = ENET_NET_TO_HOST_32(command->connect.outgoingBandwidth);
  1317. peer->packetThrottleInterval = ENET_NET_TO_HOST_32(command->connect.packetThrottleInterval);
  1318. peer->packetThrottleAcceleration = ENET_NET_TO_HOST_32(command->connect.packetThrottleAcceleration);
  1319. peer->packetThrottleDeceleration = ENET_NET_TO_HOST_32(command->connect.packetThrottleDeceleration);
  1320. peer->eventData = ENET_NET_TO_HOST_32(command->connect.data);
  1321. incomingSessionID = command->connect.incomingSessionID == 0xFF ? peer->outgoingSessionID : command->connect.incomingSessionID;
  1322. incomingSessionID = (incomingSessionID + 1) & (ENET_PROTOCOL_HEADER_SESSION_MASK >> ENET_PROTOCOL_HEADER_SESSION_SHIFT);
  1323. if (incomingSessionID == peer->outgoingSessionID) {
  1324. incomingSessionID = (incomingSessionID + 1)
  1325. & (ENET_PROTOCOL_HEADER_SESSION_MASK >> ENET_PROTOCOL_HEADER_SESSION_SHIFT);
  1326. }
  1327. peer->outgoingSessionID = incomingSessionID;
  1328. outgoingSessionID = command->connect.outgoingSessionID == 0xFF ? peer->incomingSessionID : command->connect.outgoingSessionID;
  1329. outgoingSessionID = (outgoingSessionID + 1) & (ENET_PROTOCOL_HEADER_SESSION_MASK >> ENET_PROTOCOL_HEADER_SESSION_SHIFT);
  1330. if (outgoingSessionID == peer->incomingSessionID) {
  1331. outgoingSessionID = (outgoingSessionID + 1)
  1332. & (ENET_PROTOCOL_HEADER_SESSION_MASK >> ENET_PROTOCOL_HEADER_SESSION_SHIFT);
  1333. }
  1334. peer->incomingSessionID = outgoingSessionID;
  1335. for (channel = peer->channels; channel < &peer->channels[channelCount]; ++channel) {
  1336. channel->outgoingReliableSequenceNumber = 0;
  1337. channel->outgoingUnreliableSequenceNumber = 0;
  1338. channel->incomingReliableSequenceNumber = 0;
  1339. channel->incomingUnreliableSequenceNumber = 0;
  1340. enet_list_clear(&channel->incomingReliableCommands);
  1341. enet_list_clear(&channel->incomingUnreliableCommands);
  1342. channel->usedReliableWindows = 0;
  1343. memset(channel->reliableWindows, 0, sizeof(channel->reliableWindows));
  1344. }
  1345. mtu = ENET_NET_TO_HOST_32(command->connect.mtu);
  1346. if (mtu < ENET_PROTOCOL_MINIMUM_MTU) {
  1347. mtu = ENET_PROTOCOL_MINIMUM_MTU;
  1348. } else if (mtu > ENET_PROTOCOL_MAXIMUM_MTU) {
  1349. mtu = ENET_PROTOCOL_MAXIMUM_MTU;
  1350. }
  1351. peer->mtu = mtu;
  1352. if (host->outgoingBandwidth == 0 && peer->incomingBandwidth == 0) {
  1353. peer->windowSize = ENET_PROTOCOL_MAXIMUM_WINDOW_SIZE;
  1354. } else if (host->outgoingBandwidth == 0 || peer->incomingBandwidth == 0) {
  1355. peer->windowSize = (ENET_MAX(host->outgoingBandwidth, peer->incomingBandwidth) / ENET_PEER_WINDOW_SIZE_SCALE) * ENET_PROTOCOL_MINIMUM_WINDOW_SIZE;
  1356. } else {
  1357. peer->windowSize = (ENET_MIN(host->outgoingBandwidth, peer->incomingBandwidth) / ENET_PEER_WINDOW_SIZE_SCALE) * ENET_PROTOCOL_MINIMUM_WINDOW_SIZE;
  1358. }
  1359. if (peer->windowSize < ENET_PROTOCOL_MINIMUM_WINDOW_SIZE) {
  1360. peer->windowSize = ENET_PROTOCOL_MINIMUM_WINDOW_SIZE;
  1361. } else if (peer->windowSize > ENET_PROTOCOL_MAXIMUM_WINDOW_SIZE) {
  1362. peer->windowSize = ENET_PROTOCOL_MAXIMUM_WINDOW_SIZE;
  1363. }
  1364. if (host->incomingBandwidth == 0) {
  1365. windowSize = ENET_PROTOCOL_MAXIMUM_WINDOW_SIZE;
  1366. } else {
  1367. windowSize = (host->incomingBandwidth / ENET_PEER_WINDOW_SIZE_SCALE) * ENET_PROTOCOL_MINIMUM_WINDOW_SIZE;
  1368. }
  1369. if (windowSize > ENET_NET_TO_HOST_32(command->connect.windowSize)) {
  1370. windowSize = ENET_NET_TO_HOST_32(command->connect.windowSize);
  1371. }
  1372. if (windowSize < ENET_PROTOCOL_MINIMUM_WINDOW_SIZE) {
  1373. windowSize = ENET_PROTOCOL_MINIMUM_WINDOW_SIZE;
  1374. } else if (windowSize > ENET_PROTOCOL_MAXIMUM_WINDOW_SIZE) {
  1375. windowSize = ENET_PROTOCOL_MAXIMUM_WINDOW_SIZE;
  1376. }
  1377. verifyCommand.header.command = ENET_PROTOCOL_COMMAND_VERIFY_CONNECT | ENET_PROTOCOL_COMMAND_FLAG_ACKNOWLEDGE;
  1378. verifyCommand.header.channelID = 0xFF;
  1379. verifyCommand.verifyConnect.outgoingPeerID = ENET_HOST_TO_NET_16(peer->incomingPeerID);
  1380. verifyCommand.verifyConnect.incomingSessionID = incomingSessionID;
  1381. verifyCommand.verifyConnect.outgoingSessionID = outgoingSessionID;
  1382. verifyCommand.verifyConnect.mtu = ENET_HOST_TO_NET_32(peer->mtu);
  1383. verifyCommand.verifyConnect.windowSize = ENET_HOST_TO_NET_32(windowSize);
  1384. verifyCommand.verifyConnect.channelCount = ENET_HOST_TO_NET_32(channelCount);
  1385. verifyCommand.verifyConnect.incomingBandwidth = ENET_HOST_TO_NET_32(host->incomingBandwidth);
  1386. verifyCommand.verifyConnect.outgoingBandwidth = ENET_HOST_TO_NET_32(host->outgoingBandwidth);
  1387. verifyCommand.verifyConnect.packetThrottleInterval = ENET_HOST_TO_NET_32(peer->packetThrottleInterval);
  1388. verifyCommand.verifyConnect.packetThrottleAcceleration = ENET_HOST_TO_NET_32(peer->packetThrottleAcceleration);
  1389. verifyCommand.verifyConnect.packetThrottleDeceleration = ENET_HOST_TO_NET_32(peer->packetThrottleDeceleration);
  1390. verifyCommand.verifyConnect.connectID = peer->connectID;
  1391. enet_peer_queue_outgoing_command(peer, &verifyCommand, NULL, 0, 0);
  1392. return peer;
  1393. }
  1394. static int enet_protocol_handle_send_reliable(ENetHost *host, ENetPeer *peer, const ENetProtocol *command, enet_uint8 **currentData) {
  1395. size_t dataLength;
  1396. if (command->header.channelID >= peer->channelCount || (peer->state != ENET_PEER_STATE_CONNECTED && peer->state != ENET_PEER_STATE_DISCONNECT_LATER)) {
  1397. return -1;
  1398. }
  1399. dataLength = ENET_NET_TO_HOST_16(command->sendReliable.dataLength);
  1400. *currentData += dataLength;
  1401. if (dataLength > host->maximumPacketSize || *currentData < host->receivedData || *currentData > &host->receivedData[host->receivedDataLength]) {
  1402. return -1;
  1403. }
  1404. if (enet_peer_queue_incoming_command(peer, command, (const enet_uint8 *)command + sizeof(ENetProtocolSendReliable), dataLength, ENET_PACKET_FLAG_RELIABLE, 0) == NULL) {
  1405. return -1;
  1406. }
  1407. return 0;
  1408. }
  1409. static int enet_protocol_handle_send_unsequenced(ENetHost *host, ENetPeer *peer, const ENetProtocol *command, enet_uint8 **currentData) {
  1410. enet_uint32 unsequencedGroup, index;
  1411. size_t dataLength;
  1412. if (command->header.channelID >= peer->channelCount || (peer->state != ENET_PEER_STATE_CONNECTED && peer->state != ENET_PEER_STATE_DISCONNECT_LATER)) {
  1413. return -1;
  1414. }
  1415. dataLength = ENET_NET_TO_HOST_16(command->sendUnsequenced.dataLength);
  1416. *currentData += dataLength;
  1417. if (dataLength > host->maximumPacketSize || *currentData < host->receivedData || *currentData > &host->receivedData[host->receivedDataLength]) {
  1418. return -1;
  1419. }
  1420. unsequencedGroup = ENET_NET_TO_HOST_16(command->sendUnsequenced.unsequencedGroup);
  1421. index = unsequencedGroup % ENET_PEER_UNSEQUENCED_WINDOW_SIZE;
  1422. if (unsequencedGroup < peer->incomingUnsequencedGroup) {
  1423. unsequencedGroup += 0x10000;
  1424. }
  1425. if (unsequencedGroup >= (enet_uint32) peer->incomingUnsequencedGroup + ENET_PEER_FREE_UNSEQUENCED_WINDOWS * ENET_PEER_UNSEQUENCED_WINDOW_SIZE) {
  1426. return 0;
  1427. }
  1428. unsequencedGroup &= 0xFFFF;
  1429. if (unsequencedGroup - index != peer->incomingUnsequencedGroup) {
  1430. peer->incomingUnsequencedGroup = unsequencedGroup - index;
  1431. memset(peer->unsequencedWindow, 0, sizeof(peer->unsequencedWindow));
  1432. } else if (peer->unsequencedWindow[index / 32] & (1 << (index % 32))) {
  1433. return 0;
  1434. }
  1435. if (enet_peer_queue_incoming_command(peer, command, (const enet_uint8 *)command + sizeof(ENetProtocolSendUnsequenced), dataLength, ENET_PACKET_FLAG_UNSEQUENCED,0) == NULL) {
  1436. return -1;
  1437. }
  1438. peer->unsequencedWindow[index / 32] |= 1 << (index % 32);
  1439. return 0;
  1440. }
  1441. static int enet_protocol_handle_send_unreliable(ENetHost *host, ENetPeer *peer, const ENetProtocol *command, enet_uint8 **currentData) {
  1442. size_t dataLength;
  1443. if (command->header.channelID >= peer->channelCount || (peer->state != ENET_PEER_STATE_CONNECTED && peer->state != ENET_PEER_STATE_DISCONNECT_LATER)) {
  1444. return -1;
  1445. }
  1446. dataLength = ENET_NET_TO_HOST_16(command->sendUnreliable.dataLength);
  1447. *currentData += dataLength;
  1448. if (dataLength > host->maximumPacketSize || *currentData < host->receivedData || *currentData > &host->receivedData[host->receivedDataLength]) {
  1449. return -1;
  1450. }
  1451. if (enet_peer_queue_incoming_command(peer, command, (const enet_uint8 *)command + sizeof(ENetProtocolSendUnreliable), dataLength, 0, 0) == NULL) {
  1452. return -1;
  1453. }
  1454. return 0;
  1455. }
  1456. static int enet_protocol_handle_send_fragment(ENetHost *host, ENetPeer *peer, const ENetProtocol *command, enet_uint8 **currentData) {
  1457. enet_uint32 fragmentNumber, fragmentCount, fragmentOffset, fragmentLength, startSequenceNumber, totalLength;
  1458. ENetChannel *channel;
  1459. enet_uint16 startWindow, currentWindow;
  1460. ENetListIterator currentCommand;
  1461. ENetIncomingCommand *startCommand = NULL;
  1462. if (command->header.channelID >= peer->channelCount || (peer->state != ENET_PEER_STATE_CONNECTED && peer->state != ENET_PEER_STATE_DISCONNECT_LATER)) {
  1463. return -1;
  1464. }
  1465. fragmentLength = ENET_NET_TO_HOST_16(command->sendFragment.dataLength);
  1466. *currentData += fragmentLength;
  1467. if (fragmentLength > host->maximumPacketSize || *currentData < host->receivedData || *currentData > &host->receivedData[host->receivedDataLength]) {
  1468. return -1;
  1469. }
  1470. channel = &peer->channels[command->header.channelID];
  1471. startSequenceNumber = ENET_NET_TO_HOST_16(command->sendFragment.startSequenceNumber);
  1472. startWindow = startSequenceNumber / ENET_PEER_RELIABLE_WINDOW_SIZE;
  1473. currentWindow = channel->incomingReliableSequenceNumber / ENET_PEER_RELIABLE_WINDOW_SIZE;
  1474. if (startSequenceNumber < channel->incomingReliableSequenceNumber) {
  1475. startWindow += ENET_PEER_RELIABLE_WINDOWS;
  1476. }
  1477. if (startWindow < currentWindow || startWindow >= currentWindow + ENET_PEER_FREE_RELIABLE_WINDOWS - 1) {
  1478. return 0;
  1479. }
  1480. fragmentNumber = ENET_NET_TO_HOST_32(command->sendFragment.fragmentNumber);
  1481. fragmentCount = ENET_NET_TO_HOST_32(command->sendFragment.fragmentCount);
  1482. fragmentOffset = ENET_NET_TO_HOST_32(command->sendFragment.fragmentOffset);
  1483. totalLength = ENET_NET_TO_HOST_32(command->sendFragment.totalLength);
  1484. if (fragmentCount > ENET_PROTOCOL_MAXIMUM_FRAGMENT_COUNT ||
  1485. fragmentNumber >= fragmentCount ||
  1486. totalLength > host->maximumPacketSize ||
  1487. fragmentOffset >= totalLength ||
  1488. fragmentLength > totalLength - fragmentOffset
  1489. ) {
  1490. return -1;
  1491. }
  1492. for (currentCommand = enet_list_previous(enet_list_end(&channel->incomingReliableCommands));
  1493. currentCommand != enet_list_end(&channel->incomingReliableCommands);
  1494. currentCommand = enet_list_previous(currentCommand)
  1495. ) {
  1496. ENetIncomingCommand *incomingCommand = (ENetIncomingCommand *)currentCommand;
  1497. if (startSequenceNumber >= channel->incomingReliableSequenceNumber) {
  1498. if (incomingCommand->reliableSequenceNumber < channel->incomingReliableSequenceNumber) {
  1499. continue;
  1500. }
  1501. } else if (incomingCommand->reliableSequenceNumber >= channel->incomingReliableSequenceNumber) {
  1502. break;
  1503. }
  1504. if (incomingCommand->reliableSequenceNumber <= startSequenceNumber) {
  1505. if (incomingCommand->reliableSequenceNumber < startSequenceNumber) {
  1506. break;
  1507. }
  1508. if ((incomingCommand->command.header.command & ENET_PROTOCOL_COMMAND_MASK) !=
  1509. ENET_PROTOCOL_COMMAND_SEND_FRAGMENT ||
  1510. totalLength != incomingCommand->packet->dataLength ||
  1511. fragmentCount != incomingCommand->fragmentCount
  1512. ) {
  1513. return -1;
  1514. }
  1515. startCommand = incomingCommand;
  1516. break;
  1517. }
  1518. }
  1519. if (startCommand == NULL) {
  1520. ENetProtocol hostCommand = *command;
  1521. hostCommand.header.reliableSequenceNumber = startSequenceNumber;
  1522. startCommand = enet_peer_queue_incoming_command(peer, &hostCommand, NULL, totalLength, ENET_PACKET_FLAG_RELIABLE, fragmentCount);
  1523. if (startCommand == NULL) {
  1524. return -1;
  1525. }
  1526. }
  1527. if ((startCommand->fragments[fragmentNumber / 32] & (1 << (fragmentNumber % 32))) == 0) {
  1528. --startCommand->fragmentsRemaining;
  1529. startCommand->fragments[fragmentNumber / 32] |= (1 << (fragmentNumber % 32));
  1530. if (fragmentOffset + fragmentLength > startCommand->packet->dataLength) {
  1531. fragmentLength = startCommand->packet->dataLength - fragmentOffset;
  1532. }
  1533. memcpy(startCommand->packet->data + fragmentOffset, (enet_uint8 *)command + sizeof(ENetProtocolSendFragment), fragmentLength);
  1534. if (startCommand->fragmentsRemaining <= 0) {
  1535. enet_peer_dispatch_incoming_reliable_commands(peer, channel);
  1536. }
  1537. }
  1538. return 0;
  1539. }
  1540. static int enet_protocol_handle_send_unreliable_fragment(ENetHost *host, ENetPeer *peer, const ENetProtocol *command, enet_uint8 **currentData) {
  1541. enet_uint32 fragmentNumber, fragmentCount, fragmentOffset, fragmentLength, reliableSequenceNumber, startSequenceNumber, totalLength;
  1542. enet_uint16 reliableWindow, currentWindow;
  1543. ENetChannel *channel;
  1544. ENetListIterator currentCommand;
  1545. ENetIncomingCommand *startCommand = NULL;
  1546. if (command->header.channelID >= peer->channelCount || (peer->state != ENET_PEER_STATE_CONNECTED && peer->state != ENET_PEER_STATE_DISCONNECT_LATER)) {
  1547. return -1;
  1548. }
  1549. fragmentLength = ENET_NET_TO_HOST_16(command->sendFragment.dataLength);
  1550. *currentData += fragmentLength;
  1551. if (fragmentLength > host->maximumPacketSize || *currentData < host->receivedData || *currentData > &host->receivedData[host->receivedDataLength]) {
  1552. return -1;
  1553. }
  1554. channel = &peer->channels[command->header.channelID];
  1555. reliableSequenceNumber = command->header.reliableSequenceNumber;
  1556. startSequenceNumber = ENET_NET_TO_HOST_16(command->sendFragment.startSequenceNumber);
  1557. reliableWindow = reliableSequenceNumber / ENET_PEER_RELIABLE_WINDOW_SIZE;
  1558. currentWindow = channel->incomingReliableSequenceNumber / ENET_PEER_RELIABLE_WINDOW_SIZE;
  1559. if (reliableSequenceNumber < channel->incomingReliableSequenceNumber) {
  1560. reliableWindow += ENET_PEER_RELIABLE_WINDOWS;
  1561. }
  1562. if (reliableWindow < currentWindow || reliableWindow >= currentWindow + ENET_PEER_FREE_RELIABLE_WINDOWS - 1) {
  1563. return 0;
  1564. }
  1565. if (reliableSequenceNumber == channel->incomingReliableSequenceNumber && startSequenceNumber <= channel->incomingUnreliableSequenceNumber) {
  1566. return 0;
  1567. }
  1568. fragmentNumber = ENET_NET_TO_HOST_32(command->sendFragment.fragmentNumber);
  1569. fragmentCount = ENET_NET_TO_HOST_32(command->sendFragment.fragmentCount);
  1570. fragmentOffset = ENET_NET_TO_HOST_32(command->sendFragment.fragmentOffset);
  1571. totalLength = ENET_NET_TO_HOST_32(command->sendFragment.totalLength);
  1572. if (fragmentCount > ENET_PROTOCOL_MAXIMUM_FRAGMENT_COUNT ||
  1573. fragmentNumber >= fragmentCount ||
  1574. totalLength > host->maximumPacketSize ||
  1575. fragmentOffset >= totalLength ||
  1576. fragmentLength > totalLength - fragmentOffset
  1577. ) {
  1578. return -1;
  1579. }
  1580. for (currentCommand = enet_list_previous(enet_list_end(&channel->incomingUnreliableCommands));
  1581. currentCommand != enet_list_end(&channel->incomingUnreliableCommands);
  1582. currentCommand = enet_list_previous(currentCommand)
  1583. ) {
  1584. ENetIncomingCommand *incomingCommand = (ENetIncomingCommand *)currentCommand;
  1585. if (reliableSequenceNumber >= channel->incomingReliableSequenceNumber) {
  1586. if (incomingCommand->reliableSequenceNumber < channel->incomingReliableSequenceNumber) {
  1587. continue;
  1588. }
  1589. } else if (incomingCommand->reliableSequenceNumber >= channel->incomingReliableSequenceNumber) {
  1590. break;
  1591. }
  1592. if (incomingCommand->reliableSequenceNumber < reliableSequenceNumber) {
  1593. break;
  1594. }
  1595. if (incomingCommand->reliableSequenceNumber > reliableSequenceNumber) {
  1596. continue;
  1597. }
  1598. if (incomingCommand->unreliableSequenceNumber <= startSequenceNumber) {
  1599. if (incomingCommand->unreliableSequenceNumber < startSequenceNumber) {
  1600. break;
  1601. }
  1602. if ((incomingCommand->command.header.command & ENET_PROTOCOL_COMMAND_MASK) !=
  1603. ENET_PROTOCOL_COMMAND_SEND_UNRELIABLE_FRAGMENT ||
  1604. totalLength != incomingCommand->packet->dataLength ||
  1605. fragmentCount != incomingCommand->fragmentCount
  1606. ) {
  1607. return -1;
  1608. }
  1609. startCommand = incomingCommand;
  1610. break;
  1611. }
  1612. }
  1613. if (startCommand == NULL) {
  1614. startCommand = enet_peer_queue_incoming_command(peer, command, NULL, totalLength,
  1615. ENET_PACKET_FLAG_UNRELIABLE_FRAGMENT, fragmentCount);
  1616. if (startCommand == NULL) {
  1617. return -1;
  1618. }
  1619. }
  1620. if ((startCommand->fragments[fragmentNumber / 32] & (1 << (fragmentNumber % 32))) == 0) {
  1621. --startCommand->fragmentsRemaining;
  1622. startCommand->fragments[fragmentNumber / 32] |= (1 << (fragmentNumber % 32));
  1623. if (fragmentOffset + fragmentLength > startCommand->packet->dataLength) {
  1624. fragmentLength = startCommand->packet->dataLength - fragmentOffset;
  1625. }
  1626. memcpy(startCommand->packet->data + fragmentOffset, (enet_uint8 *)command + sizeof(ENetProtocolSendFragment), fragmentLength);
  1627. if (startCommand->fragmentsRemaining <= 0) {
  1628. enet_peer_dispatch_incoming_unreliable_commands(peer, channel);
  1629. }
  1630. }
  1631. return 0;
  1632. }
  1633. static int enet_protocol_handle_ping(ENetHost *host, ENetPeer *peer, const ENetProtocol *command) {
  1634. if (peer->state != ENET_PEER_STATE_CONNECTED && peer->state != ENET_PEER_STATE_DISCONNECT_LATER) {
  1635. return -1;
  1636. }
  1637. return 0;
  1638. }
  1639. static int enet_protocol_handle_bandwidth_limit(ENetHost *host, ENetPeer *peer, const ENetProtocol *command) {
  1640. if (peer->state != ENET_PEER_STATE_CONNECTED && peer->state != ENET_PEER_STATE_DISCONNECT_LATER) {
  1641. return -1;
  1642. }
  1643. if (peer->incomingBandwidth != 0) {
  1644. --host->bandwidthLimitedPeers;
  1645. }
  1646. peer->incomingBandwidth = ENET_NET_TO_HOST_32(command->bandwidthLimit.incomingBandwidth);
  1647. peer->outgoingBandwidth = ENET_NET_TO_HOST_32(command->bandwidthLimit.outgoingBandwidth);
  1648. if (peer->incomingBandwidth != 0) {
  1649. ++host->bandwidthLimitedPeers;
  1650. }
  1651. if (peer->incomingBandwidth == 0 && host->outgoingBandwidth == 0) {
  1652. peer->windowSize = ENET_PROTOCOL_MAXIMUM_WINDOW_SIZE;
  1653. } else if (peer->incomingBandwidth == 0 || host->outgoingBandwidth == 0) {
  1654. peer->windowSize = (ENET_MAX(peer->incomingBandwidth, host->outgoingBandwidth)
  1655. / ENET_PEER_WINDOW_SIZE_SCALE) * ENET_PROTOCOL_MINIMUM_WINDOW_SIZE;
  1656. } else {
  1657. peer->windowSize = (ENET_MIN(peer->incomingBandwidth, host->outgoingBandwidth)
  1658. / ENET_PEER_WINDOW_SIZE_SCALE) * ENET_PROTOCOL_MINIMUM_WINDOW_SIZE;
  1659. }
  1660. if (peer->windowSize < ENET_PROTOCOL_MINIMUM_WINDOW_SIZE) {
  1661. peer->windowSize = ENET_PROTOCOL_MINIMUM_WINDOW_SIZE;
  1662. } else if (peer->windowSize > ENET_PROTOCOL_MAXIMUM_WINDOW_SIZE) {
  1663. peer->windowSize = ENET_PROTOCOL_MAXIMUM_WINDOW_SIZE;
  1664. }
  1665. return 0;
  1666. }
  1667. static int enet_protocol_handle_throttle_configure(ENetHost *host, ENetPeer *peer, const ENetProtocol *command) {
  1668. if (peer->state != ENET_PEER_STATE_CONNECTED && peer->state != ENET_PEER_STATE_DISCONNECT_LATER) {
  1669. return -1;
  1670. }
  1671. peer->packetThrottleInterval = ENET_NET_TO_HOST_32(command->throttleConfigure.packetThrottleInterval);
  1672. peer->packetThrottleAcceleration = ENET_NET_TO_HOST_32(command->throttleConfigure.packetThrottleAcceleration);
  1673. peer->packetThrottleDeceleration = ENET_NET_TO_HOST_32(command->throttleConfigure.packetThrottleDeceleration);
  1674. return 0;
  1675. }
  1676. static int enet_protocol_handle_disconnect(ENetHost *host, ENetPeer *peer, const ENetProtocol *command) {
  1677. if (peer->state == ENET_PEER_STATE_DISCONNECTED || peer->state == ENET_PEER_STATE_ZOMBIE ||
  1678. peer->state == ENET_PEER_STATE_ACKNOWLEDGING_DISCONNECT
  1679. ) {
  1680. return 0;
  1681. }
  1682. enet_peer_reset_queues(peer);
  1683. if (peer->state == ENET_PEER_STATE_CONNECTION_SUCCEEDED || peer->state == ENET_PEER_STATE_DISCONNECTING || peer->state == ENET_PEER_STATE_CONNECTING) {
  1684. enet_protocol_dispatch_state(host, peer, ENET_PEER_STATE_ZOMBIE);
  1685. } else if (peer->state != ENET_PEER_STATE_CONNECTED && peer->state != ENET_PEER_STATE_DISCONNECT_LATER) {
  1686. if (peer->state == ENET_PEER_STATE_CONNECTION_PENDING) { host->recalculateBandwidthLimits = 1; }
  1687. enet_peer_reset(peer);
  1688. } else if (command->header.command & ENET_PROTOCOL_COMMAND_FLAG_ACKNOWLEDGE) {
  1689. enet_protocol_change_state(host, peer, ENET_PEER_STATE_ACKNOWLEDGING_DISCONNECT);
  1690. } else {
  1691. enet_protocol_dispatch_state(host, peer, ENET_PEER_STATE_ZOMBIE);
  1692. }
  1693. if (peer->state != ENET_PEER_STATE_DISCONNECTED) {
  1694. peer->eventData = ENET_NET_TO_HOST_32(command->disconnect.data);
  1695. }
  1696. return 0;
  1697. }
  1698. static int enet_protocol_handle_acknowledge(ENetHost *host, ENetEvent *event, ENetPeer *peer, const ENetProtocol *command) {
  1699. enet_uint32 roundTripTime, receivedSentTime, receivedReliableSequenceNumber;
  1700. ENetProtocolCommand commandNumber;
  1701. if (peer->state == ENET_PEER_STATE_DISCONNECTED || peer->state == ENET_PEER_STATE_ZOMBIE) {
  1702. return 0;
  1703. }
  1704. receivedSentTime = ENET_NET_TO_HOST_16(command->acknowledge.receivedSentTime);
  1705. receivedSentTime |= host->serviceTime & 0xFFFF0000;
  1706. if ((receivedSentTime & 0x8000) > (host->serviceTime & 0x8000)) {
  1707. receivedSentTime -= 0x10000;
  1708. }
  1709. if (ENET_TIME_LESS(host->serviceTime, receivedSentTime)) {
  1710. return 0;
  1711. }
  1712. peer->lastReceiveTime = host->serviceTime;
  1713. peer->earliestTimeout = 0;
  1714. roundTripTime = ENET_TIME_DIFFERENCE(host->serviceTime, receivedSentTime);
  1715. if (peer->smoothedRoundTripTime == 0) {
  1716. peer->smoothedRoundTripTime = (enet_uint32)((1 - ENET_SRTT_PARA_G) * ENET_SRTT_INITIAL + ENET_SRTT_PARA_G * roundTripTime);
  1717. } else {
  1718. peer->smoothedRoundTripTime = (enet_uint32)((1 - ENET_SRTT_PARA_G) * peer->smoothedRoundTripTime + ENET_SRTT_PARA_G * roundTripTime);
  1719. }
  1720. enet_peer_throttle(peer, peer->smoothedRoundTripTime);
  1721. peer->roundTripTimeVariance -= peer->roundTripTimeVariance / 4;
  1722. if (peer->smoothedRoundTripTime >= peer->roundTripTime) {
  1723. peer->roundTripTime += (peer->smoothedRoundTripTime - peer->roundTripTime) / 8;
  1724. peer->roundTripTimeVariance += (peer->smoothedRoundTripTime - peer->roundTripTime) / 4;
  1725. } else {
  1726. peer->roundTripTime -= (peer->roundTripTime - peer->smoothedRoundTripTime) / 8;
  1727. peer->roundTripTimeVariance += (peer->roundTripTime - peer->smoothedRoundTripTime) / 4;
  1728. }
  1729. if (peer->roundTripTime < peer->lowestRoundTripTime) {
  1730. peer->lowestRoundTripTime = peer->roundTripTime;
  1731. }
  1732. if (peer->roundTripTimeVariance > peer->highestRoundTripTimeVariance) {
  1733. peer->highestRoundTripTimeVariance = peer->roundTripTimeVariance;
  1734. }
  1735. if (peer->packetThrottleEpoch == 0 ||
  1736. ENET_TIME_DIFFERENCE(host->serviceTime, peer->packetThrottleEpoch) >= peer->packetThrottleInterval
  1737. ) {
  1738. peer->lastRoundTripTime = peer->lowestRoundTripTime;
  1739. peer->lastRoundTripTimeVariance = peer->highestRoundTripTimeVariance;
  1740. peer->lowestRoundTripTime = peer->roundTripTime;
  1741. peer->highestRoundTripTimeVariance = peer->roundTripTimeVariance;
  1742. peer->packetThrottleEpoch = host->serviceTime;
  1743. }
  1744. receivedReliableSequenceNumber = ENET_NET_TO_HOST_16(command->acknowledge.receivedReliableSequenceNumber);
  1745. commandNumber = enet_protocol_remove_sent_reliable_command(peer, receivedReliableSequenceNumber, command->header.channelID);
  1746. switch (peer->state) {
  1747. case ENET_PEER_STATE_ACKNOWLEDGING_CONNECT:
  1748. if (commandNumber != ENET_PROTOCOL_COMMAND_VERIFY_CONNECT) {
  1749. return -1;
  1750. }
  1751. enet_protocol_notify_connect(host, peer, event);
  1752. break;
  1753. case ENET_PEER_STATE_DISCONNECTING:
  1754. if (commandNumber != ENET_PROTOCOL_COMMAND_DISCONNECT) {
  1755. return -1;
  1756. }
  1757. enet_protocol_notify_disconnect(host, peer, event);
  1758. break;
  1759. case ENET_PEER_STATE_DISCONNECT_LATER:
  1760. if (enet_list_empty(&peer->outgoingReliableCommands) &&
  1761. enet_list_empty(&peer->outgoingUnreliableCommands) &&
  1762. enet_list_empty(&peer->sentReliableCommands))
  1763. {
  1764. enet_peer_disconnect(peer, peer->eventData);
  1765. }
  1766. break;
  1767. default:
  1768. break;
  1769. }
  1770. return 0;
  1771. }
  1772. static int enet_protocol_handle_verify_connect(ENetHost *host, ENetEvent *event, ENetPeer *peer, const ENetProtocol *command) {
  1773. enet_uint32 mtu, windowSize;
  1774. size_t channelCount;
  1775. if (peer->state != ENET_PEER_STATE_CONNECTING) {
  1776. return 0;
  1777. }
  1778. channelCount = ENET_NET_TO_HOST_32(command->verifyConnect.channelCount);
  1779. if (channelCount < ENET_PROTOCOL_MINIMUM_CHANNEL_COUNT || channelCount > ENET_PROTOCOL_MAXIMUM_CHANNEL_COUNT ||
  1780. ENET_NET_TO_HOST_32(command->verifyConnect.packetThrottleInterval) != peer->packetThrottleInterval ||
  1781. ENET_NET_TO_HOST_32(command->verifyConnect.packetThrottleAcceleration) != peer->packetThrottleAcceleration ||
  1782. ENET_NET_TO_HOST_32(command->verifyConnect.packetThrottleDeceleration) != peer->packetThrottleDeceleration ||
  1783. command->verifyConnect.connectID != peer->connectID
  1784. ) {
  1785. peer->eventData = 0;
  1786. enet_protocol_dispatch_state(host, peer, ENET_PEER_STATE_ZOMBIE);
  1787. return -1;
  1788. }
  1789. enet_protocol_remove_sent_reliable_command(peer, 1, 0xFF);
  1790. if (channelCount < peer->channelCount) {
  1791. peer->channelCount = channelCount;
  1792. }
  1793. peer->outgoingPeerID = ENET_NET_TO_HOST_16(command->verifyConnect.outgoingPeerID);
  1794. peer->incomingSessionID = command->verifyConnect.incomingSessionID;
  1795. peer->outgoingSessionID = command->verifyConnect.outgoingSessionID;
  1796. mtu = ENET_NET_TO_HOST_32(command->verifyConnect.mtu);
  1797. if (mtu < ENET_PROTOCOL_MINIMUM_MTU) {
  1798. mtu = ENET_PROTOCOL_MINIMUM_MTU;
  1799. } else if (mtu > ENET_PROTOCOL_MAXIMUM_MTU) {
  1800. mtu = ENET_PROTOCOL_MAXIMUM_MTU;
  1801. }
  1802. if (mtu < peer->mtu) {
  1803. peer->mtu = mtu;
  1804. }
  1805. windowSize = ENET_NET_TO_HOST_32(command->verifyConnect.windowSize);
  1806. if (windowSize < ENET_PROTOCOL_MINIMUM_WINDOW_SIZE) {
  1807. windowSize = ENET_PROTOCOL_MINIMUM_WINDOW_SIZE;
  1808. }
  1809. if (windowSize > ENET_PROTOCOL_MAXIMUM_WINDOW_SIZE) {
  1810. windowSize = ENET_PROTOCOL_MAXIMUM_WINDOW_SIZE;
  1811. }
  1812. if (windowSize < peer->windowSize) {
  1813. peer->windowSize = windowSize;
  1814. }
  1815. peer->incomingBandwidth = ENET_NET_TO_HOST_32(command->verifyConnect.incomingBandwidth);
  1816. peer->outgoingBandwidth = ENET_NET_TO_HOST_32(command->verifyConnect.outgoingBandwidth);
  1817. enet_protocol_notify_connect(host, peer, event);
  1818. return 0;
  1819. }
  1820. static int enet_protocol_handle_incoming_commands(ENetHost *host, ENetEvent *event) {
  1821. ENetProtocolHeader *header;
  1822. ENetProtocol *command;
  1823. ENetPeer *peer;
  1824. enet_uint8 *currentData;
  1825. size_t headerSize;
  1826. enet_uint16 peerID, flags;
  1827. enet_uint8 sessionID;
  1828. if (host->receivedDataLength < (size_t)&((ENetProtocolHeader *)0)->sentTime) {
  1829. return 0;
  1830. }
  1831. header = (ENetProtocolHeader *)host->receivedData;
  1832. peerID = ENET_NET_TO_HOST_16(header->peerID);
  1833. sessionID = (peerID & ENET_PROTOCOL_HEADER_SESSION_MASK) >> ENET_PROTOCOL_HEADER_SESSION_SHIFT;
  1834. flags = peerID & ENET_PROTOCOL_HEADER_FLAG_MASK;
  1835. peerID &= ~(ENET_PROTOCOL_HEADER_FLAG_MASK | ENET_PROTOCOL_HEADER_SESSION_MASK);
  1836. headerSize = (flags & ENET_PROTOCOL_HEADER_FLAG_SENT_TIME ? sizeof(ENetProtocolHeader) : (size_t)&((ENetProtocolHeader *)0)->sentTime);
  1837. if (host->checksum != NULL) {
  1838. headerSize += sizeof(enet_uint32);
  1839. }
  1840. if (peerID == ENET_PROTOCOL_MAXIMUM_PEER_ID) {
  1841. peer = NULL;
  1842. } else if (peerID >= host->peerCount) {
  1843. return 0;
  1844. } else {
  1845. peer = &host->peers[peerID];
  1846. if (peer->state == ENET_PEER_STATE_DISCONNECTED ||
  1847. peer->state == ENET_PEER_STATE_ZOMBIE ||
  1848. ((!in6_equal(host->receivedAddress.host, peer->address.host) ||
  1849. host->receivedAddress.port != peer->address.port) &&
  1850. 1 /* No broadcast in IPv6 - !in6_equal(peer->address.host, ENET_HOST_BROADCAST) */) ||
  1851. (peer->outgoingPeerID < ENET_PROTOCOL_MAXIMUM_PEER_ID &&
  1852. sessionID != peer->incomingSessionID)
  1853. ) {
  1854. return 0;
  1855. }
  1856. }
  1857. #ifdef ENET_LZ4
  1858. if (flags & ENET_PROTOCOL_HEADER_FLAG_COMPRESSED) {
  1859. size_t originalSize = LZ4_decompress_safe((const char *)host->receivedData + headerSize, (char *)host->packetData[1] + headerSize, host->receivedDataLength - headerSize, sizeof(host->packetData[1]) - headerSize);
  1860. if (originalSize <= 0 || originalSize > sizeof(host->packetData[1]) - headerSize) {
  1861. return 0;
  1862. }
  1863. memcpy(host->packetData[1], header, headerSize);
  1864. host->receivedData = host->packetData[1];
  1865. host->receivedDataLength = headerSize + originalSize;
  1866. }
  1867. #endif
  1868. if (host->checksum != NULL) {
  1869. enet_uint32 *checksum = (enet_uint32 *)&host->receivedData[headerSize - sizeof(enet_uint32)];
  1870. enet_uint32 desiredChecksum = *checksum;
  1871. ENetBuffer buffer;
  1872. *checksum = peer != NULL ? peer->connectID : 0;
  1873. buffer.data = host->receivedData;
  1874. buffer.dataLength = host->receivedDataLength;
  1875. if (host->checksum(&buffer, 1) != desiredChecksum) {
  1876. return 0;
  1877. }
  1878. }
  1879. if (peer != NULL) {
  1880. peer->address.host = host->receivedAddress.host;
  1881. peer->address.port = host->receivedAddress.port;
  1882. peer->incomingDataTotal += host->receivedDataLength;
  1883. peer->totalDataReceived += host->receivedDataLength;
  1884. }
  1885. currentData = host->receivedData + headerSize;
  1886. while (currentData < &host->receivedData[host->receivedDataLength]) {
  1887. enet_uint8 commandNumber;
  1888. size_t commandSize;
  1889. command = (ENetProtocol *)currentData;
  1890. if (currentData + sizeof(ENetProtocolCommandHeader) > &host->receivedData[host->receivedDataLength]) {
  1891. break;
  1892. }
  1893. commandNumber = command->header.command & ENET_PROTOCOL_COMMAND_MASK;
  1894. if (commandNumber >= ENET_PROTOCOL_COMMAND_COUNT) {
  1895. break;
  1896. }
  1897. commandSize = commandSizes[commandNumber];
  1898. if (commandSize == 0 || currentData + commandSize > &host->receivedData[host->receivedDataLength]) {
  1899. break;
  1900. }
  1901. currentData += commandSize;
  1902. if (peer == NULL && (commandNumber != ENET_PROTOCOL_COMMAND_CONNECT || currentData < &host->receivedData[host->receivedDataLength])) {
  1903. break;
  1904. }
  1905. command->header.reliableSequenceNumber = ENET_NET_TO_HOST_16(command->header.reliableSequenceNumber);
  1906. switch (commandNumber) {
  1907. case ENET_PROTOCOL_COMMAND_ACKNOWLEDGE:
  1908. if (enet_protocol_handle_acknowledge(host, event, peer, command)) {
  1909. goto commandError;
  1910. }
  1911. break;
  1912. case ENET_PROTOCOL_COMMAND_CONNECT:
  1913. if (peer != NULL) {
  1914. goto commandError;
  1915. }
  1916. if (host->preventConnections == 0) {
  1917. peer = enet_protocol_handle_connect(host, header, command);
  1918. if (peer == NULL) {
  1919. goto commandError;
  1920. }
  1921. }
  1922. break;
  1923. case ENET_PROTOCOL_COMMAND_VERIFY_CONNECT:
  1924. if (enet_protocol_handle_verify_connect(host, event, peer, command)) {
  1925. goto commandError;
  1926. }
  1927. break;
  1928. case ENET_PROTOCOL_COMMAND_DISCONNECT:
  1929. if (enet_protocol_handle_disconnect(host, peer, command)) {
  1930. goto commandError;
  1931. }
  1932. break;
  1933. case ENET_PROTOCOL_COMMAND_PING:
  1934. if (enet_protocol_handle_ping(host, peer, command)) {
  1935. goto commandError;
  1936. }
  1937. break;
  1938. case ENET_PROTOCOL_COMMAND_SEND_RELIABLE:
  1939. if (enet_protocol_handle_send_reliable(host, peer, command, &currentData)) {
  1940. goto commandError;
  1941. }
  1942. break;
  1943. case ENET_PROTOCOL_COMMAND_SEND_UNRELIABLE:
  1944. if (enet_protocol_handle_send_unreliable(host, peer, command, &currentData)) {
  1945. goto commandError;
  1946. }
  1947. break;
  1948. case ENET_PROTOCOL_COMMAND_SEND_UNSEQUENCED:
  1949. if (enet_protocol_handle_send_unsequenced(host, peer, command, &currentData)) {
  1950. goto commandError;
  1951. }
  1952. break;
  1953. case ENET_PROTOCOL_COMMAND_SEND_FRAGMENT:
  1954. if (enet_protocol_handle_send_fragment(host, peer, command, &currentData)) {
  1955. goto commandError;
  1956. }
  1957. break;
  1958. case ENET_PROTOCOL_COMMAND_BANDWIDTH_LIMIT:
  1959. if (enet_protocol_handle_bandwidth_limit(host, peer, command)) {
  1960. goto commandError;
  1961. }
  1962. break;
  1963. case ENET_PROTOCOL_COMMAND_THROTTLE_CONFIGURE:
  1964. if (enet_protocol_handle_throttle_configure(host, peer, command)) {
  1965. goto commandError;
  1966. }
  1967. break;
  1968. case ENET_PROTOCOL_COMMAND_SEND_UNRELIABLE_FRAGMENT:
  1969. if (enet_protocol_handle_send_unreliable_fragment(host, peer, command, &currentData)) {
  1970. goto commandError;
  1971. }
  1972. break;
  1973. default:
  1974. goto commandError;
  1975. }
  1976. if (peer != NULL && (command->header.command & ENET_PROTOCOL_COMMAND_FLAG_ACKNOWLEDGE) != 0) {
  1977. enet_uint16 sentTime;
  1978. if (!(flags & ENET_PROTOCOL_HEADER_FLAG_SENT_TIME)) {
  1979. break;
  1980. }
  1981. sentTime = ENET_NET_TO_HOST_16(header->sentTime);
  1982. switch (peer->state) {
  1983. case ENET_PEER_STATE_DISCONNECTING:
  1984. case ENET_PEER_STATE_ACKNOWLEDGING_CONNECT:
  1985. case ENET_PEER_STATE_DISCONNECTED:
  1986. case ENET_PEER_STATE_ZOMBIE:
  1987. break;
  1988. case ENET_PEER_STATE_ACKNOWLEDGING_DISCONNECT:
  1989. if ((command->header.command & ENET_PROTOCOL_COMMAND_MASK) == ENET_PROTOCOL_COMMAND_DISCONNECT) {
  1990. enet_peer_queue_acknowledgement(peer, command, sentTime);
  1991. }
  1992. break;
  1993. default:
  1994. enet_peer_queue_acknowledgement(peer, command, sentTime);
  1995. break;
  1996. }
  1997. }
  1998. }
  1999. commandError:
  2000. if (event != NULL && event->type != ENET_EVENT_TYPE_NONE) {
  2001. return 1;
  2002. }
  2003. return 0;
  2004. }
  2005. static int enet_protocol_receive_incoming_commands(ENetHost *host, ENetEvent *event) {
  2006. int packets;
  2007. for (packets = 0; packets < 256; ++packets) {
  2008. int receivedLength;
  2009. ENetBuffer buffer;
  2010. buffer.data = host->packetData[0];
  2011. buffer.dataLength = host->mtu;
  2012. receivedLength = enet_socket_receive(host->socket, &host->receivedAddress, &buffer, 1);
  2013. if (receivedLength == -2)
  2014. continue;
  2015. if (receivedLength < 0) {
  2016. return -1;
  2017. }
  2018. if (receivedLength == 0) {
  2019. return 0;
  2020. }
  2021. host->receivedData = host->packetData[0];
  2022. host->receivedDataLength = receivedLength;
  2023. host->totalReceivedData += receivedLength;
  2024. host->totalReceivedPackets++;
  2025. if (host->interceptCallback != NULL) {
  2026. switch (host->interceptCallback(host, (void *)event)) {
  2027. case 1:
  2028. if (event != NULL && event->type != ENET_EVENT_TYPE_NONE) {
  2029. return 1;
  2030. }
  2031. continue;
  2032. case -1:
  2033. return -1;
  2034. default:
  2035. break;
  2036. }
  2037. }
  2038. switch (enet_protocol_handle_incoming_commands(host, event)) {
  2039. case 1:
  2040. return 1;
  2041. case -1:
  2042. return -1;
  2043. default:
  2044. break;
  2045. }
  2046. }
  2047. return -1;
  2048. }
  2049. static void enet_protocol_send_acknowledgements(ENetHost *host, ENetPeer *peer) {
  2050. ENetProtocol *command = &host->commands[host->commandCount];
  2051. ENetBuffer *buffer = &host->buffers[host->bufferCount];
  2052. ENetAcknowledgement *acknowledgement;
  2053. ENetListIterator currentAcknowledgement;
  2054. enet_uint16 reliableSequenceNumber;
  2055. currentAcknowledgement = enet_list_begin(&peer->acknowledgements);
  2056. while (currentAcknowledgement != enet_list_end(&peer->acknowledgements)) {
  2057. if (command >= &host->commands[sizeof(host->commands) / sizeof(ENetProtocol)] ||
  2058. buffer >= &host->buffers[sizeof(host->buffers) / sizeof(ENetBuffer)] ||
  2059. peer->mtu - host->packetSize < sizeof(ENetProtocolAcknowledge)
  2060. ) {
  2061. host->continueSending = 1;
  2062. break;
  2063. }
  2064. acknowledgement = (ENetAcknowledgement *)currentAcknowledgement;
  2065. currentAcknowledgement = enet_list_next(currentAcknowledgement);
  2066. buffer->data = command;
  2067. buffer->dataLength = sizeof(ENetProtocolAcknowledge);
  2068. host->packetSize += buffer->dataLength;
  2069. reliableSequenceNumber = ENET_HOST_TO_NET_16(acknowledgement->command.header.reliableSequenceNumber);
  2070. command->header.command = ENET_PROTOCOL_COMMAND_ACKNOWLEDGE;
  2071. command->header.channelID = acknowledgement->command.header.channelID;
  2072. command->header.reliableSequenceNumber = reliableSequenceNumber;
  2073. command->acknowledge.receivedReliableSequenceNumber = reliableSequenceNumber;
  2074. command->acknowledge.receivedSentTime = ENET_HOST_TO_NET_16(acknowledgement->sentTime);
  2075. if ((acknowledgement->command.header.command & ENET_PROTOCOL_COMMAND_MASK) == ENET_PROTOCOL_COMMAND_DISCONNECT) {
  2076. enet_protocol_dispatch_state(host, peer, ENET_PEER_STATE_ZOMBIE);
  2077. }
  2078. enet_list_remove(&acknowledgement->acknowledgementList);
  2079. enet_free(acknowledgement);
  2080. ++command;
  2081. ++buffer;
  2082. }
  2083. host->commandCount = command - host->commands;
  2084. host->bufferCount = buffer - host->buffers;
  2085. }
  2086. static void enet_protocol_send_unreliable_outgoing_commands(ENetHost *host, ENetPeer *peer) {
  2087. ENetProtocol *command = &host->commands[host->commandCount];
  2088. ENetBuffer *buffer = &host->buffers[host->bufferCount];
  2089. ENetOutgoingCommand *outgoingCommand;
  2090. ENetListIterator currentCommand;
  2091. currentCommand = enet_list_begin(&peer->outgoingUnreliableCommands);
  2092. while (currentCommand != enet_list_end(&peer->outgoingUnreliableCommands)) {
  2093. size_t commandSize;
  2094. outgoingCommand = (ENetOutgoingCommand *)currentCommand;
  2095. commandSize = commandSizes[outgoingCommand->command.header.command & ENET_PROTOCOL_COMMAND_MASK];
  2096. if (command >= &host->commands[sizeof(host->commands) / sizeof(ENetProtocol)] ||
  2097. buffer + 1 >= &host->buffers[sizeof(host->buffers) / sizeof(ENetBuffer)] ||
  2098. peer->mtu - host->packetSize < commandSize ||
  2099. (outgoingCommand->packet != NULL &&
  2100. peer->mtu - host->packetSize < commandSize + outgoingCommand->fragmentLength)
  2101. ) {
  2102. host->continueSending = 1;
  2103. break;
  2104. }
  2105. currentCommand = enet_list_next(currentCommand);
  2106. if (outgoingCommand->packet != NULL && outgoingCommand->fragmentOffset == 0) {
  2107. peer->packetThrottleCounter += ENET_PEER_PACKET_THROTTLE_COUNTER;
  2108. peer->packetThrottleCounter %= ENET_PEER_PACKET_THROTTLE_SCALE;
  2109. if (peer->packetThrottleCounter > peer->packetThrottle) {
  2110. enet_uint16 reliableSequenceNumber = outgoingCommand->reliableSequenceNumber;
  2111. enet_uint16 unreliableSequenceNumber = outgoingCommand->unreliableSequenceNumber;
  2112. for (;;) {
  2113. --outgoingCommand->packet->referenceCount;
  2114. if (outgoingCommand->packet->referenceCount == 0) {
  2115. enet_packet_destroy(outgoingCommand->packet);
  2116. }
  2117. enet_list_remove(&outgoingCommand->outgoingCommandList);
  2118. enet_free(outgoingCommand);
  2119. if (currentCommand == enet_list_end(&peer->outgoingUnreliableCommands)) {
  2120. break;
  2121. }
  2122. outgoingCommand = (ENetOutgoingCommand *)currentCommand;
  2123. if (outgoingCommand->reliableSequenceNumber != reliableSequenceNumber || outgoingCommand->unreliableSequenceNumber != unreliableSequenceNumber) {
  2124. break;
  2125. }
  2126. currentCommand = enet_list_next(currentCommand);
  2127. }
  2128. continue;
  2129. }
  2130. }
  2131. buffer->data = command;
  2132. buffer->dataLength = commandSize;
  2133. host->packetSize += buffer->dataLength;
  2134. *command = outgoingCommand->command;
  2135. enet_list_remove(&outgoingCommand->outgoingCommandList);
  2136. if (outgoingCommand->packet != NULL) {
  2137. ++buffer;
  2138. buffer->data = outgoingCommand->packet->data + outgoingCommand->fragmentOffset;
  2139. buffer->dataLength = outgoingCommand->fragmentLength;
  2140. host->packetSize += buffer->dataLength;
  2141. enet_list_insert(enet_list_end(&peer->sentUnreliableCommands), outgoingCommand);
  2142. } else {
  2143. enet_free(outgoingCommand);
  2144. }
  2145. ++command;
  2146. ++buffer;
  2147. }
  2148. host->commandCount = command - host->commands;
  2149. host->bufferCount = buffer - host->buffers;
  2150. if (peer->state == ENET_PEER_STATE_DISCONNECT_LATER &&
  2151. enet_list_empty(&peer->outgoingReliableCommands) &&
  2152. enet_list_empty(&peer->outgoingUnreliableCommands) &&
  2153. enet_list_empty(&peer->sentReliableCommands))
  2154. {
  2155. enet_peer_disconnect(peer, peer->eventData);
  2156. }
  2157. }
  2158. static int enet_protocol_check_timeouts(ENetHost *host, ENetPeer *peer, ENetEvent *event) {
  2159. ENetOutgoingCommand *outgoingCommand;
  2160. ENetListIterator currentCommand, insertPosition;
  2161. currentCommand = enet_list_begin(&peer->sentReliableCommands);
  2162. insertPosition = enet_list_begin(&peer->outgoingReliableCommands);
  2163. while (currentCommand != enet_list_end(&peer->sentReliableCommands)) {
  2164. outgoingCommand = (ENetOutgoingCommand *)currentCommand;
  2165. currentCommand = enet_list_next(currentCommand);
  2166. if (ENET_TIME_DIFFERENCE(host->serviceTime, outgoingCommand->sentTime) < outgoingCommand->roundTripTimeout) {
  2167. continue;
  2168. }
  2169. if (peer->earliestTimeout == 0 || ENET_TIME_LESS(outgoingCommand->sentTime, peer->earliestTimeout)) {
  2170. peer->earliestTimeout = outgoingCommand->sentTime;
  2171. }
  2172. if (peer->earliestTimeout != 0 &&
  2173. (ENET_TIME_DIFFERENCE(host->serviceTime, peer->earliestTimeout) >= peer->timeoutMaximum ||
  2174. (outgoingCommand->roundTripTimeout >= outgoingCommand->roundTripTimeoutLimit &&
  2175. ENET_TIME_DIFFERENCE(host->serviceTime, peer->earliestTimeout) >= peer->timeoutMinimum))
  2176. ) {
  2177. enet_protocol_notify_disconnect_timeout(host, peer, event);
  2178. return 1;
  2179. }
  2180. if (outgoingCommand->packet != NULL) {
  2181. peer->reliableDataInTransit -= outgoingCommand->fragmentLength;
  2182. }
  2183. ++peer->packetsLost;
  2184. ++peer->totalPacketsLost;
  2185. outgoingCommand->roundTripTimeout = peer->roundTripTime + 4 * peer->roundTripTimeVariance;
  2186. outgoingCommand->roundTripTimeoutLimit = peer->timeoutLimit * outgoingCommand->roundTripTimeout;
  2187. enet_list_insert(insertPosition, enet_list_remove(&outgoingCommand->outgoingCommandList));
  2188. if (currentCommand == enet_list_begin(&peer->sentReliableCommands) && !enet_list_empty(&peer->sentReliableCommands)) {
  2189. outgoingCommand = (ENetOutgoingCommand *)currentCommand;
  2190. peer->nextTimeout = outgoingCommand->sentTime + outgoingCommand->roundTripTimeout;
  2191. }
  2192. }
  2193. return 0;
  2194. }
  2195. static int enet_protocol_send_reliable_outgoing_commands(ENetHost *host, ENetPeer *peer) {
  2196. ENetProtocol *command = &host->commands[host->commandCount];
  2197. ENetBuffer *buffer = &host->buffers[host->bufferCount];
  2198. ENetOutgoingCommand *outgoingCommand;
  2199. ENetListIterator currentCommand;
  2200. ENetChannel *channel;
  2201. enet_uint16 reliableWindow;
  2202. size_t commandSize;
  2203. int windowExceeded = 0, windowWrap = 0, canPing = 1;
  2204. currentCommand = enet_list_begin(&peer->outgoingReliableCommands);
  2205. while (currentCommand != enet_list_end(&peer->outgoingReliableCommands)) {
  2206. outgoingCommand = (ENetOutgoingCommand *)currentCommand;
  2207. channel = outgoingCommand->command.header.channelID < peer->channelCount ? &peer->channels[outgoingCommand->command.header.channelID] : NULL;
  2208. reliableWindow = outgoingCommand->reliableSequenceNumber / ENET_PEER_RELIABLE_WINDOW_SIZE;
  2209. if (channel != NULL) {
  2210. if (!windowWrap &&
  2211. outgoingCommand->sendAttempts < 1 &&
  2212. !(outgoingCommand->reliableSequenceNumber % ENET_PEER_RELIABLE_WINDOW_SIZE) &&
  2213. (channel->reliableWindows[(reliableWindow + ENET_PEER_RELIABLE_WINDOWS - 1)
  2214. % ENET_PEER_RELIABLE_WINDOWS] >= ENET_PEER_RELIABLE_WINDOW_SIZE ||
  2215. channel->usedReliableWindows & ((((1 << ENET_PEER_FREE_RELIABLE_WINDOWS) - 1) << reliableWindow)
  2216. | (((1 << ENET_PEER_FREE_RELIABLE_WINDOWS) - 1) >> (ENET_PEER_RELIABLE_WINDOWS - reliableWindow))))
  2217. ) {
  2218. windowWrap = 1;
  2219. }
  2220. if (windowWrap) {
  2221. currentCommand = enet_list_next(currentCommand);
  2222. continue;
  2223. }
  2224. }
  2225. if (outgoingCommand->packet != NULL) {
  2226. if (!windowExceeded) {
  2227. enet_uint32 windowSize = (peer->packetThrottle * peer->windowSize) / ENET_PEER_PACKET_THROTTLE_SCALE;
  2228. if (peer->reliableDataInTransit + outgoingCommand->fragmentLength > ENET_MAX(windowSize, peer->mtu)) {
  2229. windowExceeded = 1;
  2230. }
  2231. }
  2232. if (windowExceeded) {
  2233. currentCommand = enet_list_next(currentCommand);
  2234. continue;
  2235. }
  2236. }
  2237. canPing = 0;
  2238. commandSize = commandSizes[outgoingCommand->command.header.command & ENET_PROTOCOL_COMMAND_MASK];
  2239. if (command >= &host->commands[sizeof(host->commands) / sizeof(ENetProtocol)] ||
  2240. buffer + 1 >= &host->buffers[sizeof(host->buffers) / sizeof(ENetBuffer)] ||
  2241. peer->mtu - host->packetSize < commandSize ||
  2242. (outgoingCommand->packet != NULL &&
  2243. (enet_uint16) (peer->mtu - host->packetSize) < (enet_uint16) (commandSize + outgoingCommand->fragmentLength))
  2244. ) {
  2245. host->continueSending = 1;
  2246. break;
  2247. }
  2248. currentCommand = enet_list_next(currentCommand);
  2249. if (channel != NULL && outgoingCommand->sendAttempts < 1) {
  2250. channel->usedReliableWindows |= 1 << reliableWindow;
  2251. ++channel->reliableWindows[reliableWindow];
  2252. }
  2253. ++outgoingCommand->sendAttempts;
  2254. if (outgoingCommand->roundTripTimeout == 0) {
  2255. outgoingCommand->roundTripTimeout = peer->roundTripTime + 4 * peer->roundTripTimeVariance;
  2256. outgoingCommand->roundTripTimeoutLimit = peer->timeoutLimit * outgoingCommand->roundTripTimeout;
  2257. }
  2258. if (enet_list_empty(&peer->sentReliableCommands)) {
  2259. peer->nextTimeout = host->serviceTime + outgoingCommand->roundTripTimeout;
  2260. }
  2261. enet_list_insert(enet_list_end(&peer->sentReliableCommands), enet_list_remove(&outgoingCommand->outgoingCommandList));
  2262. outgoingCommand->sentTime = host->serviceTime;
  2263. buffer->data = command;
  2264. buffer->dataLength = commandSize;
  2265. host->packetSize += buffer->dataLength;
  2266. host->headerFlags |= ENET_PROTOCOL_HEADER_FLAG_SENT_TIME;
  2267. *command = outgoingCommand->command;
  2268. if (outgoingCommand->packet != NULL) {
  2269. ++buffer;
  2270. buffer->data = outgoingCommand->packet->data + outgoingCommand->fragmentOffset;
  2271. buffer->dataLength = outgoingCommand->fragmentLength;
  2272. host->packetSize += outgoingCommand->fragmentLength;
  2273. peer->reliableDataInTransit += outgoingCommand->fragmentLength;
  2274. }
  2275. ++peer->packetsSent;
  2276. ++peer->totalPacketsSent;
  2277. ++command;
  2278. ++buffer;
  2279. }
  2280. host->commandCount = command - host->commands;
  2281. host->bufferCount = buffer - host->buffers;
  2282. return canPing;
  2283. }
  2284. static int enet_protocol_send_outgoing_commands(ENetHost *host, ENetEvent *event, int checkForTimeouts) {
  2285. enet_uint8 headerData[sizeof(ENetProtocolHeader) + sizeof(enet_uint32)];
  2286. ENetProtocolHeader *header = (ENetProtocolHeader *)headerData;
  2287. ENetPeer *currentPeer;
  2288. int sentLength;
  2289. host->continueSending = 1;
  2290. #ifdef ENET_LZ4
  2291. size_t shouldCompress = 0;
  2292. #endif
  2293. while (host->continueSending)
  2294. for (host->continueSending = 0, currentPeer = host->peers; currentPeer < &host->peers[host->peerCount]; ++currentPeer) {
  2295. if (currentPeer->state == ENET_PEER_STATE_DISCONNECTED || currentPeer->state == ENET_PEER_STATE_ZOMBIE) {
  2296. continue;
  2297. }
  2298. host->headerFlags = 0;
  2299. host->commandCount = 0;
  2300. host->bufferCount = 1;
  2301. host->packetSize = sizeof(ENetProtocolHeader);
  2302. if (!enet_list_empty(&currentPeer->acknowledgements)) {
  2303. enet_protocol_send_acknowledgements(host, currentPeer);
  2304. }
  2305. if (checkForTimeouts != 0 &&
  2306. !enet_list_empty(&currentPeer->sentReliableCommands) &&
  2307. ENET_TIME_GREATER_EQUAL(host->serviceTime, currentPeer->nextTimeout) &&
  2308. enet_protocol_check_timeouts(host, currentPeer, event) == 1
  2309. ) {
  2310. if (event != NULL && event->type != ENET_EVENT_TYPE_NONE) {
  2311. return 1;
  2312. } else {
  2313. continue;
  2314. }
  2315. }
  2316. if ((enet_list_empty(&currentPeer->outgoingReliableCommands) ||
  2317. enet_protocol_send_reliable_outgoing_commands(host, currentPeer)) &&
  2318. enet_list_empty(&currentPeer->sentReliableCommands) &&
  2319. ENET_TIME_DIFFERENCE(host->serviceTime, currentPeer->lastReceiveTime) >= currentPeer->pingInterval &&
  2320. currentPeer->mtu - host->packetSize >= sizeof(ENetProtocolPing)
  2321. ) {
  2322. enet_peer_ping(currentPeer);
  2323. enet_protocol_send_reliable_outgoing_commands(host, currentPeer);
  2324. }
  2325. if (!enet_list_empty(&currentPeer->outgoingUnreliableCommands)) {
  2326. enet_protocol_send_unreliable_outgoing_commands(host, currentPeer);
  2327. }
  2328. if (host->commandCount == 0) {
  2329. continue;
  2330. }
  2331. if (currentPeer->packetLossEpoch == 0) {
  2332. currentPeer->packetLossEpoch = host->serviceTime;
  2333. } else if (ENET_TIME_DIFFERENCE(host->serviceTime, currentPeer->packetLossEpoch) >= ENET_PEER_PACKET_LOSS_INTERVAL && currentPeer->packetsSent > 0) {
  2334. enet_uint32 packetLoss = currentPeer->packetsLost * ENET_PEER_PACKET_LOSS_SCALE / currentPeer->packetsSent;
  2335. #ifdef ENET_DEBUG
  2336. printf(
  2337. "peer %u: %f%%+-%f%% packet loss, %u+-%u ms round trip time, %f%% throttle, %u/%u outgoing, %u/%u incoming\n", currentPeer->incomingPeerID,
  2338. currentPeer->packetLoss / (float)ENET_PEER_PACKET_LOSS_SCALE,
  2339. currentPeer->packetLossVariance / (float)ENET_PEER_PACKET_LOSS_SCALE, currentPeer->roundTripTime, currentPeer->roundTripTimeVariance,
  2340. currentPeer->packetThrottle / (float)ENET_PEER_PACKET_THROTTLE_SCALE,
  2341. enet_list_size(&currentPeer->outgoingReliableCommands),
  2342. enet_list_size(&currentPeer->outgoingUnreliableCommands),
  2343. currentPeer->channels != NULL ? enet_list_size(&currentPeer->channels->incomingReliableCommands) : 0,
  2344. currentPeer->channels != NULL ? enet_list_size(&currentPeer->channels->incomingUnreliableCommands) : 0
  2345. );
  2346. #endif
  2347. currentPeer->packetLossVariance -= currentPeer->packetLossVariance / 4;
  2348. if (packetLoss >= currentPeer->packetLoss) {
  2349. currentPeer->packetLoss += (packetLoss - currentPeer->packetLoss) / 8;
  2350. currentPeer->packetLossVariance += (packetLoss - currentPeer->packetLoss) / 4;
  2351. } else {
  2352. currentPeer->packetLoss -= (currentPeer->packetLoss - packetLoss) / 8;
  2353. currentPeer->packetLossVariance += (currentPeer->packetLoss - packetLoss) / 4;
  2354. }
  2355. currentPeer->packetLossEpoch = host->serviceTime;
  2356. currentPeer->packetsSent = 0;
  2357. currentPeer->packetsLost = 0;
  2358. }
  2359. host->buffers->data = headerData;
  2360. if (host->headerFlags & ENET_PROTOCOL_HEADER_FLAG_SENT_TIME) {
  2361. header->sentTime = ENET_HOST_TO_NET_16(host->serviceTime & 0xFFFF);
  2362. host->buffers->dataLength = sizeof(ENetProtocolHeader);
  2363. } else {
  2364. host->buffers->dataLength = (size_t)&((ENetProtocolHeader *)0)->sentTime;
  2365. }
  2366. #ifdef ENET_LZ4
  2367. if (host->compression == 1 && host->packetSize > 64) {
  2368. size_t originalSize = host->packetSize - sizeof(ENetProtocolHeader), compressedSize = 0;
  2369. const ENetBuffer* buffers = &host->buffers[1];
  2370. char * data = (char *)enet_malloc(originalSize);
  2371. int totalSize = originalSize, dataSize = 0;
  2372. while (totalSize) {
  2373. for (int i = 0; i < host->bufferCount - 1; i++) {
  2374. int copySize = ENET_MIN(totalSize, (int)buffers[i].dataLength);
  2375. memcpy(data + dataSize, buffers[i].data, copySize);
  2376. totalSize -= copySize;
  2377. dataSize += copySize;
  2378. }
  2379. }
  2380. compressedSize = LZ4_compress_default((const char *)data, (char *)host->packetData[1], dataSize, originalSize);
  2381. enet_free(data);
  2382. if (compressedSize > 0 && compressedSize < originalSize) {
  2383. host->headerFlags |= ENET_PROTOCOL_HEADER_FLAG_COMPRESSED;
  2384. shouldCompress = compressedSize;
  2385. #ifdef ENET_DEBUG_COMPRESS
  2386. printf("peer %u: compressed %u->%u (%u%%)\n", currentPeer->incomingPeerID, originalSize, compressedSize, (compressedSize * 100) / originalSize);
  2387. #endif
  2388. }
  2389. }
  2390. #endif
  2391. if (currentPeer->outgoingPeerID < ENET_PROTOCOL_MAXIMUM_PEER_ID) {
  2392. host->headerFlags |= currentPeer->outgoingSessionID << ENET_PROTOCOL_HEADER_SESSION_SHIFT;
  2393. }
  2394. header->peerID = ENET_HOST_TO_NET_16(currentPeer->outgoingPeerID | host->headerFlags);
  2395. if (host->checksum != NULL) {
  2396. enet_uint32 *checksum = (enet_uint32 *)&headerData[host->buffers->dataLength];
  2397. *checksum = currentPeer->outgoingPeerID < ENET_PROTOCOL_MAXIMUM_PEER_ID ? currentPeer->connectID : 0;
  2398. host->buffers->dataLength += sizeof(enet_uint32);
  2399. *checksum = host->checksum(host->buffers, host->bufferCount);
  2400. }
  2401. #ifdef ENET_LZ4
  2402. if (shouldCompress > 0) {
  2403. host->buffers[1].data = host->packetData[1];
  2404. host->buffers[1].dataLength = shouldCompress;
  2405. host->bufferCount = 2;
  2406. }
  2407. #endif
  2408. currentPeer->lastSendTime = host->serviceTime;
  2409. sentLength = enet_socket_send(host->socket, &currentPeer->address, host->buffers, host->bufferCount);
  2410. enet_protocol_remove_sent_unreliable_commands(currentPeer);
  2411. if (sentLength < 0) {
  2412. return -1;
  2413. }
  2414. host->totalSentData += sentLength;
  2415. currentPeer->totalDataSent += sentLength;
  2416. host->totalSentPackets++;
  2417. }
  2418. return 0;
  2419. }
  2420. void enet_host_flush(ENetHost *host) {
  2421. host->serviceTime = enet_time_get();
  2422. enet_protocol_send_outgoing_commands(host, NULL, 0);
  2423. }
  2424. int enet_host_check_events(ENetHost *host, ENetEvent *event) {
  2425. if (event == NULL) {
  2426. return -1;
  2427. }
  2428. event->type = ENET_EVENT_TYPE_NONE;
  2429. event->peer = NULL;
  2430. event->packet = NULL;
  2431. return enet_protocol_dispatch_incoming_commands(host, event);
  2432. }
  2433. int enet_host_service(ENetHost *host, ENetEvent *event, enet_uint32 timeout) {
  2434. enet_uint32 waitCondition;
  2435. if (event != NULL) {
  2436. event->type = ENET_EVENT_TYPE_NONE;
  2437. event->peer = NULL;
  2438. event->packet = NULL;
  2439. switch (enet_protocol_dispatch_incoming_commands(host, event)) {
  2440. case 1:
  2441. return 1;
  2442. case -1:
  2443. #ifdef ENET_DEBUG
  2444. perror("Error dispatching incoming packets");
  2445. #endif
  2446. return -1;
  2447. default:
  2448. break;
  2449. }
  2450. }
  2451. host->serviceTime = enet_time_get();
  2452. timeout += host->serviceTime;
  2453. do {
  2454. if (ENET_TIME_DIFFERENCE(host->serviceTime, host->bandwidthThrottleEpoch) >= ENET_HOST_BANDWIDTH_THROTTLE_INTERVAL) {
  2455. enet_host_bandwidth_throttle(host);
  2456. }
  2457. switch (enet_protocol_send_outgoing_commands(host, event, 1)) {
  2458. case 1:
  2459. return 1;
  2460. case -1:
  2461. #ifdef ENET_DEBUG
  2462. perror("Error sending outgoing packets");
  2463. #endif
  2464. return -1;
  2465. default:
  2466. break;
  2467. }
  2468. switch (enet_protocol_receive_incoming_commands(host, event)) {
  2469. case 1:
  2470. return 1;
  2471. case -1:
  2472. #ifdef ENET_DEBUG
  2473. perror("Error receiving incoming packets");
  2474. #endif
  2475. return -1;
  2476. default:
  2477. break;
  2478. }
  2479. switch (enet_protocol_send_outgoing_commands(host, event, 1)) {
  2480. case 1:
  2481. return 1;
  2482. case -1:
  2483. #ifdef ENET_DEBUG
  2484. perror("Error sending outgoing packets");
  2485. #endif
  2486. return -1;
  2487. default:
  2488. break;
  2489. }
  2490. if (event != NULL) {
  2491. switch (enet_protocol_dispatch_incoming_commands(host, event)) {
  2492. case 1:
  2493. return 1;
  2494. case -1:
  2495. #ifdef ENET_DEBUG
  2496. perror("Error dispatching incoming packets");
  2497. #endif
  2498. return -1;
  2499. default:
  2500. break;
  2501. }
  2502. }
  2503. if (ENET_TIME_GREATER_EQUAL(host->serviceTime, timeout)) {
  2504. return 0;
  2505. }
  2506. do {
  2507. host->serviceTime = enet_time_get();
  2508. if (ENET_TIME_GREATER_EQUAL(host->serviceTime, timeout)) {
  2509. return 0;
  2510. }
  2511. waitCondition = ENET_SOCKET_WAIT_RECEIVE | ENET_SOCKET_WAIT_INTERRUPT;
  2512. if (enet_socket_wait(host->socket, &waitCondition, ENET_TIME_DIFFERENCE(timeout, host->serviceTime)) != 0) {
  2513. return -1;
  2514. }
  2515. } while (waitCondition & ENET_SOCKET_WAIT_INTERRUPT);
  2516. host->serviceTime = enet_time_get();
  2517. } while (waitCondition & ENET_SOCKET_WAIT_RECEIVE);
  2518. return 0;
  2519. }
  2520. // =======================================================================//
  2521. // !
  2522. // ! Peer
  2523. // !
  2524. // =======================================================================//
  2525. void enet_peer_throttle_configure(ENetPeer *peer, enet_uint32 interval, enet_uint32 acceleration, enet_uint32 deceleration) {
  2526. ENetProtocol command;
  2527. peer->packetThrottleInterval = interval;
  2528. peer->packetThrottleAcceleration = acceleration;
  2529. peer->packetThrottleDeceleration = deceleration;
  2530. command.header.command = ENET_PROTOCOL_COMMAND_THROTTLE_CONFIGURE | ENET_PROTOCOL_COMMAND_FLAG_ACKNOWLEDGE;
  2531. command.header.channelID = 0xFF;
  2532. command.throttleConfigure.packetThrottleInterval = ENET_HOST_TO_NET_32(interval);
  2533. command.throttleConfigure.packetThrottleAcceleration = ENET_HOST_TO_NET_32(acceleration);
  2534. command.throttleConfigure.packetThrottleDeceleration = ENET_HOST_TO_NET_32(deceleration);
  2535. enet_peer_queue_outgoing_command(peer, &command, NULL, 0, 0);
  2536. }
  2537. int enet_peer_throttle(ENetPeer *peer, enet_uint32 rtt) {
  2538. if (peer->lastRoundTripTime <= peer->lastRoundTripTimeVariance) {
  2539. peer->packetThrottle = peer->packetThrottleLimit;
  2540. } else if (rtt < peer->lastRoundTripTime) {
  2541. peer->packetThrottle += peer->packetThrottleAcceleration;
  2542. if (peer->packetThrottle > peer->packetThrottleLimit) {
  2543. peer->packetThrottle = peer->packetThrottleLimit;
  2544. }
  2545. return 1;
  2546. } else if (rtt > peer->lastRoundTripTime + 2 * peer->lastRoundTripTimeVariance) {
  2547. if (peer->packetThrottle > peer->packetThrottleDeceleration) {
  2548. peer->packetThrottle -= peer->packetThrottleDeceleration;
  2549. } else {
  2550. peer->packetThrottle = 0;
  2551. }
  2552. return -1;
  2553. }
  2554. return 0;
  2555. }
  2556. int enet_peer_send(ENetPeer *peer, enet_uint8 channelID, ENetPacket *packet) {
  2557. ENetChannel *channel = &peer->channels[channelID];
  2558. ENetProtocol command;
  2559. size_t fragmentLength;
  2560. if (peer->state != ENET_PEER_STATE_CONNECTED || channelID >= peer->channelCount || packet->dataLength > peer->host->maximumPacketSize) {
  2561. return -1;
  2562. }
  2563. fragmentLength = peer->mtu - sizeof(ENetProtocolHeader) - sizeof(ENetProtocolSendFragment);
  2564. if (peer->host->checksum != NULL) {
  2565. fragmentLength -= sizeof(enet_uint32);
  2566. }
  2567. if (packet->dataLength > fragmentLength) {
  2568. enet_uint32 fragmentCount = (packet->dataLength + fragmentLength - 1) / fragmentLength, fragmentNumber, fragmentOffset;
  2569. enet_uint8 commandNumber;
  2570. enet_uint16 startSequenceNumber;
  2571. ENetList fragments;
  2572. ENetOutgoingCommand *fragment;
  2573. if (fragmentCount > ENET_PROTOCOL_MAXIMUM_FRAGMENT_COUNT) {
  2574. return -1;
  2575. }
  2576. if ((packet->flags & (ENET_PACKET_FLAG_RELIABLE | ENET_PACKET_FLAG_UNRELIABLE_FRAGMENT)) == ENET_PACKET_FLAG_UNRELIABLE_FRAGMENT && channel->outgoingUnreliableSequenceNumber < 0xFFFF) {
  2577. commandNumber = ENET_PROTOCOL_COMMAND_SEND_UNRELIABLE_FRAGMENT;
  2578. startSequenceNumber = ENET_HOST_TO_NET_16(channel->outgoingUnreliableSequenceNumber + 1);
  2579. } else {
  2580. commandNumber = ENET_PROTOCOL_COMMAND_SEND_FRAGMENT | ENET_PROTOCOL_COMMAND_FLAG_ACKNOWLEDGE;
  2581. startSequenceNumber = ENET_HOST_TO_NET_16(channel->outgoingReliableSequenceNumber + 1);
  2582. }
  2583. enet_list_clear(&fragments);
  2584. for (fragmentNumber = 0, fragmentOffset = 0; fragmentOffset < packet->dataLength; ++fragmentNumber, fragmentOffset += fragmentLength) {
  2585. if (packet->dataLength - fragmentOffset < fragmentLength) {
  2586. fragmentLength = packet->dataLength - fragmentOffset;
  2587. }
  2588. fragment = (ENetOutgoingCommand *)enet_malloc(sizeof(ENetOutgoingCommand));
  2589. if (fragment == NULL) {
  2590. while (!enet_list_empty(&fragments)) {
  2591. fragment = (ENetOutgoingCommand *)enet_list_remove(enet_list_begin(&fragments));
  2592. enet_free(fragment);
  2593. }
  2594. return -1;
  2595. }
  2596. fragment->fragmentOffset = fragmentOffset;
  2597. fragment->fragmentLength = fragmentLength;
  2598. fragment->packet = packet;
  2599. fragment->command.header.command = commandNumber;
  2600. fragment->command.header.channelID = channelID;
  2601. fragment->command.sendFragment.startSequenceNumber = startSequenceNumber;
  2602. fragment->command.sendFragment.dataLength = ENET_HOST_TO_NET_16(fragmentLength);
  2603. fragment->command.sendFragment.fragmentCount = ENET_HOST_TO_NET_32(fragmentCount);
  2604. fragment->command.sendFragment.fragmentNumber = ENET_HOST_TO_NET_32(fragmentNumber);
  2605. fragment->command.sendFragment.totalLength = ENET_HOST_TO_NET_32(packet->dataLength);
  2606. fragment->command.sendFragment.fragmentOffset = ENET_NET_TO_HOST_32(fragmentOffset);
  2607. enet_list_insert(enet_list_end(&fragments), fragment);
  2608. }
  2609. packet->referenceCount += fragmentNumber;
  2610. while (!enet_list_empty(&fragments)) {
  2611. fragment = (ENetOutgoingCommand *)enet_list_remove(enet_list_begin(&fragments));
  2612. enet_peer_setup_outgoing_command(peer, fragment);
  2613. }
  2614. return 0;
  2615. }
  2616. command.header.channelID = channelID;
  2617. if ((packet->flags & (ENET_PACKET_FLAG_RELIABLE | ENET_PACKET_FLAG_UNSEQUENCED)) == ENET_PACKET_FLAG_UNSEQUENCED) {
  2618. command.header.command = ENET_PROTOCOL_COMMAND_SEND_UNSEQUENCED | ENET_PROTOCOL_COMMAND_FLAG_UNSEQUENCED;
  2619. command.sendUnsequenced.dataLength = ENET_HOST_TO_NET_16(packet->dataLength);
  2620. } else if (packet->flags & ENET_PACKET_FLAG_RELIABLE || channel->outgoingUnreliableSequenceNumber >= 0xFFFF) {
  2621. command.header.command = ENET_PROTOCOL_COMMAND_SEND_RELIABLE | ENET_PROTOCOL_COMMAND_FLAG_ACKNOWLEDGE;
  2622. command.sendReliable.dataLength = ENET_HOST_TO_NET_16(packet->dataLength);
  2623. } else {
  2624. command.header.command = ENET_PROTOCOL_COMMAND_SEND_UNRELIABLE;
  2625. command.sendUnreliable.dataLength = ENET_HOST_TO_NET_16(packet->dataLength);
  2626. }
  2627. if (enet_peer_queue_outgoing_command(peer, &command, packet, 0, packet->dataLength) == NULL) {
  2628. return -1;
  2629. }
  2630. return 0;
  2631. }
  2632. ENetPacket * enet_peer_receive(ENetPeer *peer, enet_uint8 *channelID) {
  2633. ENetIncomingCommand *incomingCommand;
  2634. ENetPacket *packet;
  2635. if (enet_list_empty(&peer->dispatchedCommands)) {
  2636. return NULL;
  2637. }
  2638. incomingCommand = (ENetIncomingCommand *)enet_list_remove(enet_list_begin(&peer->dispatchedCommands));
  2639. if (channelID != NULL) {
  2640. *channelID = incomingCommand->command.header.channelID;
  2641. }
  2642. packet = incomingCommand->packet;
  2643. --packet->referenceCount;
  2644. if (incomingCommand->fragments != NULL) {
  2645. enet_free(incomingCommand->fragments);
  2646. }
  2647. enet_free(incomingCommand);
  2648. peer->totalWaitingData -= packet->dataLength;
  2649. return packet;
  2650. }
  2651. static void enet_peer_reset_outgoing_commands(ENetList *queue) {
  2652. ENetOutgoingCommand *outgoingCommand;
  2653. while (!enet_list_empty(queue)) {
  2654. outgoingCommand = (ENetOutgoingCommand *)enet_list_remove(enet_list_begin(queue));
  2655. if (outgoingCommand->packet != NULL) {
  2656. --outgoingCommand->packet->referenceCount;
  2657. if (outgoingCommand->packet->referenceCount == 0) {
  2658. enet_packet_destroy(outgoingCommand->packet);
  2659. }
  2660. }
  2661. enet_free(outgoingCommand);
  2662. }
  2663. }
  2664. static void enet_peer_remove_incoming_commands(ENetList *queue, ENetListIterator startCommand, ENetListIterator endCommand) {
  2665. ENetListIterator currentCommand;
  2666. for (currentCommand = startCommand; currentCommand != endCommand;) {
  2667. ENetIncomingCommand *incomingCommand = (ENetIncomingCommand *)currentCommand;
  2668. currentCommand = enet_list_next(currentCommand);
  2669. enet_list_remove(&incomingCommand->incomingCommandList);
  2670. if (incomingCommand->packet != NULL) {
  2671. --incomingCommand->packet->referenceCount;
  2672. if (incomingCommand->packet->referenceCount == 0) {
  2673. enet_packet_destroy(incomingCommand->packet);
  2674. }
  2675. }
  2676. if (incomingCommand->fragments != NULL) {
  2677. enet_free(incomingCommand->fragments);
  2678. }
  2679. enet_free(incomingCommand);
  2680. }
  2681. }
  2682. static void enet_peer_reset_incoming_commands(ENetList *queue) {
  2683. enet_peer_remove_incoming_commands(queue, enet_list_begin(queue), enet_list_end(queue));
  2684. }
  2685. void enet_peer_reset_queues(ENetPeer *peer) {
  2686. ENetChannel *channel;
  2687. if (peer->needsDispatch) {
  2688. enet_list_remove(&peer->dispatchList);
  2689. peer->needsDispatch = 0;
  2690. }
  2691. while (!enet_list_empty(&peer->acknowledgements)) {
  2692. enet_free(enet_list_remove(enet_list_begin(&peer->acknowledgements)));
  2693. }
  2694. enet_peer_reset_outgoing_commands(&peer->sentReliableCommands);
  2695. enet_peer_reset_outgoing_commands(&peer->sentUnreliableCommands);
  2696. enet_peer_reset_outgoing_commands(&peer->outgoingReliableCommands);
  2697. enet_peer_reset_outgoing_commands(&peer->outgoingUnreliableCommands);
  2698. enet_peer_reset_incoming_commands(&peer->dispatchedCommands);
  2699. if (peer->channels != NULL && peer->channelCount > 0) {
  2700. for (channel = peer->channels; channel < &peer->channels[peer->channelCount]; ++channel) {
  2701. enet_peer_reset_incoming_commands(&channel->incomingReliableCommands);
  2702. enet_peer_reset_incoming_commands(&channel->incomingUnreliableCommands);
  2703. }
  2704. enet_free(peer->channels);
  2705. }
  2706. peer->channels = NULL;
  2707. peer->channelCount = 0;
  2708. }
  2709. void enet_peer_on_connect(ENetPeer *peer) {
  2710. if (peer->state != ENET_PEER_STATE_CONNECTED && peer->state != ENET_PEER_STATE_DISCONNECT_LATER) {
  2711. if (peer->incomingBandwidth != 0) {
  2712. ++peer->host->bandwidthLimitedPeers;
  2713. }
  2714. ++peer->host->connectedPeers;
  2715. }
  2716. }
  2717. void enet_peer_on_disconnect(ENetPeer *peer) {
  2718. if (peer->state == ENET_PEER_STATE_CONNECTED || peer->state == ENET_PEER_STATE_DISCONNECT_LATER) {
  2719. if (peer->incomingBandwidth != 0) {
  2720. --peer->host->bandwidthLimitedPeers;
  2721. }
  2722. --peer->host->connectedPeers;
  2723. }
  2724. }
  2725. void enet_peer_reset(ENetPeer *peer) {
  2726. enet_peer_on_disconnect(peer);
  2727. peer->outgoingPeerID = ENET_PROTOCOL_MAXIMUM_PEER_ID;
  2728. peer->state = ENET_PEER_STATE_DISCONNECTED;
  2729. peer->incomingBandwidth = 0;
  2730. peer->outgoingBandwidth = 0;
  2731. peer->incomingBandwidthThrottleEpoch = 0;
  2732. peer->outgoingBandwidthThrottleEpoch = 0;
  2733. peer->incomingDataTotal = 0;
  2734. peer->totalDataReceived = 0;
  2735. peer->outgoingDataTotal = 0;
  2736. peer->totalDataSent = 0;
  2737. peer->lastSendTime = 0;
  2738. peer->lastReceiveTime = 0;
  2739. peer->nextTimeout = 0;
  2740. peer->earliestTimeout = 0;
  2741. peer->packetLossEpoch = 0;
  2742. peer->packetsSent = 0;
  2743. peer->totalPacketsSent = 0;
  2744. peer->packetsLost = 0;
  2745. peer->totalPacketsLost = 0;
  2746. peer->packetLoss = 0;
  2747. peer->packetLossVariance = 0;
  2748. peer->packetThrottle = ENET_PEER_DEFAULT_PACKET_THROTTLE;
  2749. peer->packetThrottleLimit = ENET_PEER_PACKET_THROTTLE_SCALE;
  2750. peer->packetThrottleCounter = 0;
  2751. peer->packetThrottleEpoch = 0;
  2752. peer->packetThrottleAcceleration = ENET_PEER_PACKET_THROTTLE_ACCELERATION;
  2753. peer->packetThrottleDeceleration = ENET_PEER_PACKET_THROTTLE_DECELERATION;
  2754. peer->packetThrottleInterval = ENET_PEER_PACKET_THROTTLE_INTERVAL;
  2755. peer->pingInterval = ENET_PEER_PING_INTERVAL;
  2756. peer->timeoutLimit = ENET_PEER_TIMEOUT_LIMIT;
  2757. peer->timeoutMinimum = ENET_PEER_TIMEOUT_MINIMUM;
  2758. peer->timeoutMaximum = ENET_PEER_TIMEOUT_MAXIMUM;
  2759. peer->smoothedRoundTripTime = 0;
  2760. peer->lastRoundTripTime = ENET_PEER_DEFAULT_ROUND_TRIP_TIME;
  2761. peer->lowestRoundTripTime = ENET_PEER_DEFAULT_ROUND_TRIP_TIME;
  2762. peer->lastRoundTripTimeVariance = 0;
  2763. peer->highestRoundTripTimeVariance = 0;
  2764. peer->roundTripTime = ENET_PEER_DEFAULT_ROUND_TRIP_TIME;
  2765. peer->roundTripTimeVariance = 0;
  2766. peer->mtu = peer->host->mtu;
  2767. peer->reliableDataInTransit = 0;
  2768. peer->outgoingReliableSequenceNumber = 0;
  2769. peer->windowSize = ENET_PROTOCOL_MAXIMUM_WINDOW_SIZE;
  2770. peer->incomingUnsequencedGroup = 0;
  2771. peer->outgoingUnsequencedGroup = 0;
  2772. peer->eventData = 0;
  2773. peer->totalWaitingData = 0;
  2774. memset(peer->unsequencedWindow, 0, sizeof(peer->unsequencedWindow));
  2775. enet_peer_reset_queues(peer);
  2776. }
  2777. void enet_peer_ping(ENetPeer *peer) {
  2778. ENetProtocol command;
  2779. if (peer->state != ENET_PEER_STATE_CONNECTED) {
  2780. return;
  2781. }
  2782. command.header.command = ENET_PROTOCOL_COMMAND_PING | ENET_PROTOCOL_COMMAND_FLAG_ACKNOWLEDGE;
  2783. command.header.channelID = 0xFF;
  2784. enet_peer_queue_outgoing_command(peer, &command, NULL, 0, 0);
  2785. }
  2786. void enet_peer_ping_interval(ENetPeer *peer, enet_uint32 pingInterval) {
  2787. peer->pingInterval = pingInterval ? pingInterval : ENET_PEER_PING_INTERVAL;
  2788. }
  2789. void enet_peer_timeout(ENetPeer *peer, enet_uint32 timeoutLimit, enet_uint32 timeoutMinimum, enet_uint32 timeoutMaximum) {
  2790. peer->timeoutLimit = timeoutLimit ? timeoutLimit : ENET_PEER_TIMEOUT_LIMIT;
  2791. peer->timeoutMinimum = timeoutMinimum ? timeoutMinimum : ENET_PEER_TIMEOUT_MINIMUM;
  2792. peer->timeoutMaximum = timeoutMaximum ? timeoutMaximum : ENET_PEER_TIMEOUT_MAXIMUM;
  2793. }
  2794. void enet_peer_disconnect_now(ENetPeer *peer, enet_uint32 data) {
  2795. ENetProtocol command;
  2796. if (peer->state == ENET_PEER_STATE_DISCONNECTED) {
  2797. return;
  2798. }
  2799. if (peer->state != ENET_PEER_STATE_ZOMBIE && peer->state != ENET_PEER_STATE_DISCONNECTING) {
  2800. enet_peer_reset_queues(peer);
  2801. command.header.command = ENET_PROTOCOL_COMMAND_DISCONNECT | ENET_PROTOCOL_COMMAND_FLAG_UNSEQUENCED;
  2802. command.header.channelID = 0xFF;
  2803. command.disconnect.data = ENET_HOST_TO_NET_32(data);
  2804. enet_peer_queue_outgoing_command(peer, &command, NULL, 0, 0);
  2805. enet_host_flush(peer->host);
  2806. }
  2807. enet_peer_reset(peer);
  2808. }
  2809. void enet_peer_disconnect(ENetPeer *peer, enet_uint32 data) {
  2810. ENetProtocol command;
  2811. if (peer->state == ENET_PEER_STATE_DISCONNECTING ||
  2812. peer->state == ENET_PEER_STATE_DISCONNECTED ||
  2813. peer->state == ENET_PEER_STATE_ACKNOWLEDGING_DISCONNECT ||
  2814. peer->state == ENET_PEER_STATE_ZOMBIE
  2815. ) {
  2816. return;
  2817. }
  2818. enet_peer_reset_queues(peer);
  2819. command.header.command = ENET_PROTOCOL_COMMAND_DISCONNECT;
  2820. command.header.channelID = 0xFF;
  2821. command.disconnect.data = ENET_HOST_TO_NET_32(data);
  2822. if (peer->state == ENET_PEER_STATE_CONNECTED || peer->state == ENET_PEER_STATE_DISCONNECT_LATER) {
  2823. command.header.command |= ENET_PROTOCOL_COMMAND_FLAG_ACKNOWLEDGE;
  2824. } else {
  2825. command.header.command |= ENET_PROTOCOL_COMMAND_FLAG_UNSEQUENCED;
  2826. }
  2827. enet_peer_queue_outgoing_command(peer, &command, NULL, 0, 0);
  2828. if (peer->state == ENET_PEER_STATE_CONNECTED || peer->state == ENET_PEER_STATE_DISCONNECT_LATER) {
  2829. enet_peer_on_disconnect(peer);
  2830. peer->state = ENET_PEER_STATE_DISCONNECTING;
  2831. } else {
  2832. enet_host_flush(peer->host);
  2833. enet_peer_reset(peer);
  2834. }
  2835. }
  2836. void enet_peer_disconnect_later(ENetPeer *peer, enet_uint32 data) {
  2837. if ((peer->state == ENET_PEER_STATE_CONNECTED || peer->state == ENET_PEER_STATE_DISCONNECT_LATER) &&
  2838. !(enet_list_empty(&peer->outgoingReliableCommands) &&
  2839. enet_list_empty(&peer->outgoingUnreliableCommands) &&
  2840. enet_list_empty(&peer->sentReliableCommands))
  2841. ) {
  2842. peer->state = ENET_PEER_STATE_DISCONNECT_LATER;
  2843. peer->eventData = data;
  2844. } else {
  2845. enet_peer_disconnect(peer, data);
  2846. }
  2847. }
  2848. ENetAcknowledgement *enet_peer_queue_acknowledgement(ENetPeer *peer, const ENetProtocol *command, enet_uint16 sentTime) {
  2849. ENetAcknowledgement *acknowledgement;
  2850. if (command->header.channelID < peer->channelCount) {
  2851. ENetChannel *channel = &peer->channels[command->header.channelID];
  2852. enet_uint16 reliableWindow = command->header.reliableSequenceNumber / ENET_PEER_RELIABLE_WINDOW_SIZE;
  2853. enet_uint16 currentWindow = channel->incomingReliableSequenceNumber / ENET_PEER_RELIABLE_WINDOW_SIZE;
  2854. if (command->header.reliableSequenceNumber < channel->incomingReliableSequenceNumber) {
  2855. reliableWindow += ENET_PEER_RELIABLE_WINDOWS;
  2856. }
  2857. if (reliableWindow >= currentWindow + ENET_PEER_FREE_RELIABLE_WINDOWS - 1 && reliableWindow <= currentWindow + ENET_PEER_FREE_RELIABLE_WINDOWS) {
  2858. return NULL;
  2859. }
  2860. }
  2861. acknowledgement = (ENetAcknowledgement *)enet_malloc(sizeof(ENetAcknowledgement));
  2862. if (acknowledgement == NULL) {
  2863. return NULL;
  2864. }
  2865. peer->outgoingDataTotal += sizeof(ENetProtocolAcknowledge);
  2866. acknowledgement->sentTime = sentTime;
  2867. acknowledgement->command = *command;
  2868. enet_list_insert(enet_list_end(&peer->acknowledgements), acknowledgement);
  2869. return acknowledgement;
  2870. }
  2871. void enet_peer_setup_outgoing_command(ENetPeer *peer, ENetOutgoingCommand *outgoingCommand) {
  2872. ENetChannel *channel = &peer->channels[outgoingCommand->command.header.channelID];
  2873. peer->outgoingDataTotal += enet_protocol_command_size(outgoingCommand->command.header.command) + outgoingCommand->fragmentLength;
  2874. if (outgoingCommand->command.header.channelID == 0xFF) {
  2875. ++peer->outgoingReliableSequenceNumber;
  2876. outgoingCommand->reliableSequenceNumber = peer->outgoingReliableSequenceNumber;
  2877. outgoingCommand->unreliableSequenceNumber = 0;
  2878. } else if (outgoingCommand->command.header.command & ENET_PROTOCOL_COMMAND_FLAG_ACKNOWLEDGE) {
  2879. ++channel->outgoingReliableSequenceNumber;
  2880. channel->outgoingUnreliableSequenceNumber = 0;
  2881. outgoingCommand->reliableSequenceNumber = channel->outgoingReliableSequenceNumber;
  2882. outgoingCommand->unreliableSequenceNumber = 0;
  2883. } else if (outgoingCommand->command.header.command & ENET_PROTOCOL_COMMAND_FLAG_UNSEQUENCED) {
  2884. ++peer->outgoingUnsequencedGroup;
  2885. outgoingCommand->reliableSequenceNumber = 0;
  2886. outgoingCommand->unreliableSequenceNumber = 0;
  2887. } else {
  2888. if (outgoingCommand->fragmentOffset == 0) {
  2889. ++channel->outgoingUnreliableSequenceNumber;
  2890. }
  2891. outgoingCommand->reliableSequenceNumber = channel->outgoingReliableSequenceNumber;
  2892. outgoingCommand->unreliableSequenceNumber = channel->outgoingUnreliableSequenceNumber;
  2893. }
  2894. outgoingCommand->sendAttempts = 0;
  2895. outgoingCommand->sentTime = 0;
  2896. outgoingCommand->roundTripTimeout = 0;
  2897. outgoingCommand->roundTripTimeoutLimit = 0;
  2898. outgoingCommand->command.header.reliableSequenceNumber = ENET_HOST_TO_NET_16(outgoingCommand->reliableSequenceNumber);
  2899. switch (outgoingCommand->command.header.command & ENET_PROTOCOL_COMMAND_MASK) {
  2900. case ENET_PROTOCOL_COMMAND_SEND_UNRELIABLE:
  2901. outgoingCommand->command.sendUnreliable.unreliableSequenceNumber = ENET_HOST_TO_NET_16(outgoingCommand->unreliableSequenceNumber);
  2902. break;
  2903. case ENET_PROTOCOL_COMMAND_SEND_UNSEQUENCED:
  2904. outgoingCommand->command.sendUnsequenced.unsequencedGroup = ENET_HOST_TO_NET_16(peer->outgoingUnsequencedGroup);
  2905. break;
  2906. default:
  2907. break;
  2908. }
  2909. if (outgoingCommand->command.header.command & ENET_PROTOCOL_COMMAND_FLAG_ACKNOWLEDGE) {
  2910. enet_list_insert(enet_list_end(&peer->outgoingReliableCommands), outgoingCommand);
  2911. } else {
  2912. enet_list_insert(enet_list_end(&peer->outgoingUnreliableCommands), outgoingCommand);
  2913. }
  2914. }
  2915. ENetOutgoingCommand * enet_peer_queue_outgoing_command(ENetPeer *peer, const ENetProtocol *command, ENetPacket *packet, enet_uint32 offset, enet_uint16 length) {
  2916. ENetOutgoingCommand *outgoingCommand = (ENetOutgoingCommand *)enet_malloc(sizeof(ENetOutgoingCommand));
  2917. if (outgoingCommand == NULL) {
  2918. return NULL;
  2919. }
  2920. outgoingCommand->command = *command;
  2921. outgoingCommand->fragmentOffset = offset;
  2922. outgoingCommand->fragmentLength = length;
  2923. outgoingCommand->packet = packet;
  2924. if (packet != NULL) {
  2925. ++packet->referenceCount;
  2926. }
  2927. enet_peer_setup_outgoing_command(peer, outgoingCommand);
  2928. return outgoingCommand;
  2929. }
  2930. void enet_peer_dispatch_incoming_unreliable_commands(ENetPeer *peer, ENetChannel *channel) {
  2931. ENetListIterator droppedCommand, startCommand, currentCommand;
  2932. for (droppedCommand = startCommand = currentCommand = enet_list_begin(&channel->incomingUnreliableCommands);
  2933. currentCommand != enet_list_end(&channel->incomingUnreliableCommands);
  2934. currentCommand = enet_list_next(currentCommand)
  2935. ) {
  2936. ENetIncomingCommand *incomingCommand = (ENetIncomingCommand *)currentCommand;
  2937. if ((incomingCommand->command.header.command & ENET_PROTOCOL_COMMAND_MASK) == ENET_PROTOCOL_COMMAND_SEND_UNSEQUENCED) {
  2938. continue;
  2939. }
  2940. if (incomingCommand->reliableSequenceNumber == channel->incomingReliableSequenceNumber) {
  2941. if (incomingCommand->fragmentsRemaining <= 0) {
  2942. channel->incomingUnreliableSequenceNumber = incomingCommand->unreliableSequenceNumber;
  2943. continue;
  2944. }
  2945. if (startCommand != currentCommand) {
  2946. enet_list_move(enet_list_end(&peer->dispatchedCommands), startCommand, enet_list_previous(currentCommand));
  2947. if (!peer->needsDispatch) {
  2948. enet_list_insert(enet_list_end(&peer->host->dispatchQueue), &peer->dispatchList);
  2949. peer->needsDispatch = 1;
  2950. }
  2951. droppedCommand = currentCommand;
  2952. } else if (droppedCommand != currentCommand) {
  2953. droppedCommand = enet_list_previous(currentCommand);
  2954. }
  2955. } else {
  2956. enet_uint16 reliableWindow = incomingCommand->reliableSequenceNumber / ENET_PEER_RELIABLE_WINDOW_SIZE;
  2957. enet_uint16 currentWindow = channel->incomingReliableSequenceNumber / ENET_PEER_RELIABLE_WINDOW_SIZE;
  2958. if (incomingCommand->reliableSequenceNumber < channel->incomingReliableSequenceNumber) {
  2959. reliableWindow += ENET_PEER_RELIABLE_WINDOWS;
  2960. }
  2961. if (reliableWindow >= currentWindow && reliableWindow < currentWindow + ENET_PEER_FREE_RELIABLE_WINDOWS - 1) {
  2962. break;
  2963. }
  2964. droppedCommand = enet_list_next(currentCommand);
  2965. if (startCommand != currentCommand) {
  2966. enet_list_move(enet_list_end(&peer->dispatchedCommands), startCommand, enet_list_previous(currentCommand));
  2967. if (!peer->needsDispatch) {
  2968. enet_list_insert(enet_list_end(&peer->host->dispatchQueue), &peer->dispatchList);
  2969. peer->needsDispatch = 1;
  2970. }
  2971. }
  2972. }
  2973. startCommand = enet_list_next(currentCommand);
  2974. }
  2975. if (startCommand != currentCommand) {
  2976. enet_list_move(enet_list_end(&peer->dispatchedCommands), startCommand, enet_list_previous(currentCommand));
  2977. if (!peer->needsDispatch) {
  2978. enet_list_insert(enet_list_end(&peer->host->dispatchQueue), &peer->dispatchList);
  2979. peer->needsDispatch = 1;
  2980. }
  2981. droppedCommand = currentCommand;
  2982. }
  2983. enet_peer_remove_incoming_commands(&channel->incomingUnreliableCommands,enet_list_begin(&channel->incomingUnreliableCommands), droppedCommand);
  2984. }
  2985. void enet_peer_dispatch_incoming_reliable_commands(ENetPeer *peer, ENetChannel *channel) {
  2986. ENetListIterator currentCommand;
  2987. for (currentCommand = enet_list_begin(&channel->incomingReliableCommands);
  2988. currentCommand != enet_list_end(&channel->incomingReliableCommands);
  2989. currentCommand = enet_list_next(currentCommand)
  2990. ) {
  2991. ENetIncomingCommand *incomingCommand = (ENetIncomingCommand *)currentCommand;
  2992. if (incomingCommand->fragmentsRemaining > 0 || incomingCommand->reliableSequenceNumber != (enet_uint16) (channel->incomingReliableSequenceNumber + 1)) {
  2993. break;
  2994. }
  2995. channel->incomingReliableSequenceNumber = incomingCommand->reliableSequenceNumber;
  2996. if (incomingCommand->fragmentCount > 0) {
  2997. channel->incomingReliableSequenceNumber += incomingCommand->fragmentCount - 1;
  2998. }
  2999. }
  3000. if (currentCommand == enet_list_begin(&channel->incomingReliableCommands)) {
  3001. return;
  3002. }
  3003. channel->incomingUnreliableSequenceNumber = 0;
  3004. enet_list_move(enet_list_end(&peer->dispatchedCommands), enet_list_begin(&channel->incomingReliableCommands), enet_list_previous(currentCommand));
  3005. if (!peer->needsDispatch) {
  3006. enet_list_insert(enet_list_end(&peer->host->dispatchQueue), &peer->dispatchList);
  3007. peer->needsDispatch = 1;
  3008. }
  3009. if (!enet_list_empty(&channel->incomingUnreliableCommands)) {
  3010. enet_peer_dispatch_incoming_unreliable_commands(peer, channel);
  3011. }
  3012. }
  3013. ENetIncomingCommand * enet_peer_queue_incoming_command(ENetPeer *peer, const ENetProtocol *command, const void *data, size_t dataLength, enet_uint32 flags, enet_uint32 fragmentCount) {
  3014. static ENetIncomingCommand dummyCommand;
  3015. ENetChannel *channel = &peer->channels[command->header.channelID];
  3016. enet_uint32 unreliableSequenceNumber = 0, reliableSequenceNumber = 0;
  3017. enet_uint16 reliableWindow, currentWindow;
  3018. ENetIncomingCommand *incomingCommand;
  3019. ENetListIterator currentCommand;
  3020. ENetPacket *packet = NULL;
  3021. if (peer->state == ENET_PEER_STATE_DISCONNECT_LATER) {
  3022. goto discardCommand;
  3023. }
  3024. if ((command->header.command & ENET_PROTOCOL_COMMAND_MASK) != ENET_PROTOCOL_COMMAND_SEND_UNSEQUENCED) {
  3025. reliableSequenceNumber = command->header.reliableSequenceNumber;
  3026. reliableWindow = reliableSequenceNumber / ENET_PEER_RELIABLE_WINDOW_SIZE;
  3027. currentWindow = channel->incomingReliableSequenceNumber / ENET_PEER_RELIABLE_WINDOW_SIZE;
  3028. if (reliableSequenceNumber < channel->incomingReliableSequenceNumber) {
  3029. reliableWindow += ENET_PEER_RELIABLE_WINDOWS;
  3030. }
  3031. if (reliableWindow < currentWindow || reliableWindow >= currentWindow + ENET_PEER_FREE_RELIABLE_WINDOWS - 1) {
  3032. goto discardCommand;
  3033. }
  3034. }
  3035. switch (command->header.command & ENET_PROTOCOL_COMMAND_MASK) {
  3036. case ENET_PROTOCOL_COMMAND_SEND_FRAGMENT:
  3037. case ENET_PROTOCOL_COMMAND_SEND_RELIABLE:
  3038. if (reliableSequenceNumber == channel->incomingReliableSequenceNumber) {
  3039. goto discardCommand;
  3040. }
  3041. for (currentCommand = enet_list_previous(enet_list_end(&channel->incomingReliableCommands));
  3042. currentCommand != enet_list_end(&channel->incomingReliableCommands);
  3043. currentCommand = enet_list_previous(currentCommand)
  3044. ) {
  3045. incomingCommand = (ENetIncomingCommand *)currentCommand;
  3046. if (reliableSequenceNumber >= channel->incomingReliableSequenceNumber) {
  3047. if (incomingCommand->reliableSequenceNumber < channel->incomingReliableSequenceNumber) {
  3048. continue;
  3049. }
  3050. } else if (incomingCommand->reliableSequenceNumber >= channel->incomingReliableSequenceNumber) {
  3051. break;
  3052. }
  3053. if (incomingCommand->reliableSequenceNumber <= reliableSequenceNumber) {
  3054. if (incomingCommand->reliableSequenceNumber < reliableSequenceNumber) {
  3055. break;
  3056. }
  3057. goto discardCommand;
  3058. }
  3059. }
  3060. break;
  3061. case ENET_PROTOCOL_COMMAND_SEND_UNRELIABLE:
  3062. case ENET_PROTOCOL_COMMAND_SEND_UNRELIABLE_FRAGMENT:
  3063. unreliableSequenceNumber = ENET_NET_TO_HOST_16(command->sendUnreliable.unreliableSequenceNumber);
  3064. if (reliableSequenceNumber == channel->incomingReliableSequenceNumber && unreliableSequenceNumber <= channel->incomingUnreliableSequenceNumber) {
  3065. goto discardCommand;
  3066. }
  3067. for (currentCommand = enet_list_previous(enet_list_end(&channel->incomingUnreliableCommands));
  3068. currentCommand != enet_list_end(&channel->incomingUnreliableCommands);
  3069. currentCommand = enet_list_previous(currentCommand)
  3070. ) {
  3071. incomingCommand = (ENetIncomingCommand *)currentCommand;
  3072. if ((command->header.command & ENET_PROTOCOL_COMMAND_MASK) == ENET_PROTOCOL_COMMAND_SEND_UNSEQUENCED) {
  3073. continue;
  3074. }
  3075. if (reliableSequenceNumber >= channel->incomingReliableSequenceNumber) {
  3076. if (incomingCommand->reliableSequenceNumber < channel->incomingReliableSequenceNumber) {
  3077. continue;
  3078. }
  3079. } else if (incomingCommand->reliableSequenceNumber >= channel->incomingReliableSequenceNumber) {
  3080. break;
  3081. }
  3082. if (incomingCommand->reliableSequenceNumber < reliableSequenceNumber) {
  3083. break;
  3084. }
  3085. if (incomingCommand->reliableSequenceNumber > reliableSequenceNumber) {
  3086. continue;
  3087. }
  3088. if (incomingCommand->unreliableSequenceNumber <= unreliableSequenceNumber) {
  3089. if (incomingCommand->unreliableSequenceNumber < unreliableSequenceNumber) {
  3090. break;
  3091. }
  3092. goto discardCommand;
  3093. }
  3094. }
  3095. break;
  3096. case ENET_PROTOCOL_COMMAND_SEND_UNSEQUENCED:
  3097. currentCommand = enet_list_end(&channel->incomingUnreliableCommands);
  3098. break;
  3099. default:
  3100. goto discardCommand;
  3101. }
  3102. if (peer->totalWaitingData >= peer->host->maximumWaitingData) {
  3103. goto notifyError;
  3104. }
  3105. packet = enet_packet_create(data, dataLength, flags);
  3106. if (packet == NULL) {
  3107. goto notifyError;
  3108. }
  3109. incomingCommand = (ENetIncomingCommand *)enet_malloc(sizeof(ENetIncomingCommand));
  3110. if (incomingCommand == NULL) {
  3111. goto notifyError;
  3112. }
  3113. incomingCommand->reliableSequenceNumber = command->header.reliableSequenceNumber;
  3114. incomingCommand->unreliableSequenceNumber = unreliableSequenceNumber & 0xFFFF;
  3115. incomingCommand->command = *command;
  3116. incomingCommand->fragmentCount = fragmentCount;
  3117. incomingCommand->fragmentsRemaining = fragmentCount;
  3118. incomingCommand->packet = packet;
  3119. incomingCommand->fragments = NULL;
  3120. if (fragmentCount > 0) {
  3121. if (fragmentCount <= ENET_PROTOCOL_MAXIMUM_FRAGMENT_COUNT) {
  3122. incomingCommand->fragments = (enet_uint32 *)enet_malloc((fragmentCount + 31) / 32 * sizeof(enet_uint32));
  3123. }
  3124. if (incomingCommand->fragments == NULL) {
  3125. enet_free(incomingCommand);
  3126. goto notifyError;
  3127. }
  3128. memset(incomingCommand->fragments, 0, (fragmentCount + 31) / 32 * sizeof(enet_uint32));
  3129. }
  3130. if (packet != NULL) {
  3131. ++packet->referenceCount;
  3132. peer->totalWaitingData += packet->dataLength;
  3133. }
  3134. enet_list_insert(enet_list_next(currentCommand), incomingCommand);
  3135. switch (command->header.command & ENET_PROTOCOL_COMMAND_MASK) {
  3136. case ENET_PROTOCOL_COMMAND_SEND_FRAGMENT:
  3137. case ENET_PROTOCOL_COMMAND_SEND_RELIABLE:
  3138. enet_peer_dispatch_incoming_reliable_commands(peer, channel);
  3139. break;
  3140. default:
  3141. enet_peer_dispatch_incoming_unreliable_commands(peer, channel);
  3142. break;
  3143. }
  3144. return incomingCommand;
  3145. discardCommand:
  3146. if (fragmentCount > 0) {
  3147. goto notifyError;
  3148. }
  3149. if (packet != NULL && packet->referenceCount == 0) {
  3150. enet_packet_destroy(packet);
  3151. }
  3152. return &dummyCommand;
  3153. notifyError:
  3154. if (packet != NULL && packet->referenceCount == 0) {
  3155. enet_packet_destroy(packet);
  3156. }
  3157. return NULL;
  3158. }
  3159. // =======================================================================//
  3160. // !
  3161. // ! Host
  3162. // !
  3163. // =======================================================================//
  3164. ENetHost * enet_host_create(const ENetAddress *address, size_t peerCount, size_t channelLimit, enet_uint32 incomingBandwidth, enet_uint32 outgoingBandwidth) {
  3165. ENetHost *host;
  3166. ENetPeer *currentPeer;
  3167. if (peerCount > ENET_PROTOCOL_MAXIMUM_PEER_ID) {
  3168. return NULL;
  3169. }
  3170. host = (ENetHost *)enet_malloc(sizeof(ENetHost));
  3171. if (host == NULL) {
  3172. return NULL;
  3173. }
  3174. memset(host, 0, sizeof(ENetHost));
  3175. host->peers = (ENetPeer *)enet_malloc(peerCount * sizeof(ENetPeer));
  3176. if (host->peers == NULL) {
  3177. enet_free(host);
  3178. return NULL;
  3179. }
  3180. memset(host->peers, 0, peerCount * sizeof(ENetPeer));
  3181. host->socket = enet_socket_create(ENET_SOCKET_TYPE_DATAGRAM);
  3182. if (host->socket != ENET_SOCKET_NULL) {
  3183. enet_socket_set_option(host->socket, ENET_SOCKOPT_IPV6_V6ONLY, 0);
  3184. }
  3185. if (host->socket == ENET_SOCKET_NULL || (address != NULL && enet_socket_bind(host->socket, address) < 0)) {
  3186. if (host->socket != ENET_SOCKET_NULL) {
  3187. enet_socket_destroy(host->socket);
  3188. }
  3189. enet_free(host->peers);
  3190. enet_free(host);
  3191. return NULL;
  3192. }
  3193. enet_socket_set_option(host->socket, ENET_SOCKOPT_NONBLOCK, 1);
  3194. enet_socket_set_option(host->socket, ENET_SOCKOPT_BROADCAST, 1);
  3195. enet_socket_set_option(host->socket, ENET_SOCKOPT_RCVBUF, ENET_HOST_RECEIVE_BUFFER_SIZE);
  3196. enet_socket_set_option(host->socket, ENET_SOCKOPT_SNDBUF, ENET_HOST_SEND_BUFFER_SIZE);
  3197. enet_socket_set_option(host->socket, ENET_SOCKOPT_IPV6_V6ONLY, 0);
  3198. if (address != NULL && enet_socket_get_address(host->socket, &host->address) < 0) {
  3199. host->address = *address;
  3200. }
  3201. if (!channelLimit || channelLimit > ENET_PROTOCOL_MAXIMUM_CHANNEL_COUNT) {
  3202. channelLimit = ENET_PROTOCOL_MAXIMUM_CHANNEL_COUNT;
  3203. } else if (channelLimit < ENET_PROTOCOL_MINIMUM_CHANNEL_COUNT) {
  3204. channelLimit = ENET_PROTOCOL_MINIMUM_CHANNEL_COUNT;
  3205. }
  3206. host->randomSeed = (enet_uint32) (size_t) host;
  3207. host->randomSeed += enet_host_random_seed();
  3208. host->randomSeed = (host->randomSeed << 16) | (host->randomSeed >> 16);
  3209. host->channelLimit = channelLimit;
  3210. host->incomingBandwidth = incomingBandwidth;
  3211. host->outgoingBandwidth = outgoingBandwidth;
  3212. host->bandwidthThrottleEpoch = 0;
  3213. host->recalculateBandwidthLimits = 0;
  3214. host->preventConnections = 0;
  3215. host->mtu = ENET_HOST_DEFAULT_MTU;
  3216. host->peerCount = peerCount;
  3217. host->commandCount = 0;
  3218. host->bufferCount = 0;
  3219. host->compression = 0;
  3220. host->checksum = NULL;
  3221. host->receivedAddress.host = ENET_HOST_ANY;
  3222. host->receivedAddress.port = 0;
  3223. host->receivedData = NULL;
  3224. host->receivedDataLength = 0;
  3225. host->totalSentData = 0;
  3226. host->totalSentPackets = 0;
  3227. host->totalReceivedData = 0;
  3228. host->totalReceivedPackets = 0;
  3229. host->connectedPeers = 0;
  3230. host->bandwidthLimitedPeers = 0;
  3231. host->duplicatePeers = ENET_PROTOCOL_MAXIMUM_PEER_ID;
  3232. host->maximumPacketSize = ENET_HOST_DEFAULT_MAXIMUM_PACKET_SIZE;
  3233. host->maximumWaitingData = ENET_HOST_DEFAULT_MAXIMUM_WAITING_DATA;
  3234. host->interceptCallback = NULL;
  3235. enet_list_clear(&host->dispatchQueue);
  3236. for (currentPeer = host->peers; currentPeer < &host->peers[host->peerCount]; ++currentPeer) {
  3237. currentPeer->host = host;
  3238. currentPeer->incomingPeerID = currentPeer - host->peers;
  3239. currentPeer->outgoingSessionID = currentPeer->incomingSessionID = 0xFF;
  3240. currentPeer->data = NULL;
  3241. enet_list_clear(&currentPeer->acknowledgements);
  3242. enet_list_clear(&currentPeer->sentReliableCommands);
  3243. enet_list_clear(&currentPeer->sentUnreliableCommands);
  3244. enet_list_clear(&currentPeer->outgoingReliableCommands);
  3245. enet_list_clear(&currentPeer->outgoingUnreliableCommands);
  3246. enet_list_clear(&currentPeer->dispatchedCommands);
  3247. enet_peer_reset(currentPeer);
  3248. }
  3249. return host;
  3250. }
  3251. void enet_host_destroy(ENetHost *host) {
  3252. ENetPeer *currentPeer;
  3253. if (host == NULL) {
  3254. return;
  3255. }
  3256. enet_socket_destroy(host->socket);
  3257. for (currentPeer = host->peers; currentPeer < &host->peers[host->peerCount]; ++currentPeer) {
  3258. enet_peer_reset(currentPeer);
  3259. }
  3260. enet_free(host->peers);
  3261. enet_free(host);
  3262. }
  3263. void enet_host_enable_compression(ENetHost *host) {
  3264. if (host == NULL) {
  3265. return;
  3266. }
  3267. host->compression = 1;
  3268. }
  3269. void enet_host_prevent_connections(ENetHost *host, enet_uint8 state) {
  3270. if (host == NULL) {
  3271. return;
  3272. }
  3273. host->preventConnections = state;
  3274. }
  3275. ENetPeer * enet_host_connect(ENetHost *host, const ENetAddress *address, size_t channelCount, enet_uint32 data) {
  3276. ENetPeer *currentPeer;
  3277. ENetChannel *channel;
  3278. ENetProtocol command;
  3279. if (channelCount < ENET_PROTOCOL_MINIMUM_CHANNEL_COUNT) {
  3280. channelCount = ENET_PROTOCOL_MINIMUM_CHANNEL_COUNT;
  3281. } else if (channelCount > ENET_PROTOCOL_MAXIMUM_CHANNEL_COUNT) {
  3282. channelCount = ENET_PROTOCOL_MAXIMUM_CHANNEL_COUNT;
  3283. }
  3284. for (currentPeer = host->peers; currentPeer < &host->peers[host->peerCount]; ++currentPeer) {
  3285. if (currentPeer->state == ENET_PEER_STATE_DISCONNECTED) {
  3286. break;
  3287. }
  3288. }
  3289. if (currentPeer >= &host->peers[host->peerCount]) {
  3290. return NULL;
  3291. }
  3292. currentPeer->channels = (ENetChannel *)enet_malloc(channelCount * sizeof(ENetChannel));
  3293. if (currentPeer->channels == NULL) {
  3294. return NULL;
  3295. }
  3296. currentPeer->channelCount = channelCount;
  3297. currentPeer->state = ENET_PEER_STATE_CONNECTING;
  3298. currentPeer->address = *address;
  3299. currentPeer->connectID = ++host->randomSeed;
  3300. if (host->outgoingBandwidth == 0) {
  3301. currentPeer->windowSize = ENET_PROTOCOL_MAXIMUM_WINDOW_SIZE;
  3302. } else {
  3303. currentPeer->windowSize = (host->outgoingBandwidth / ENET_PEER_WINDOW_SIZE_SCALE) * ENET_PROTOCOL_MINIMUM_WINDOW_SIZE;
  3304. }
  3305. if (currentPeer->windowSize < ENET_PROTOCOL_MINIMUM_WINDOW_SIZE) {
  3306. currentPeer->windowSize = ENET_PROTOCOL_MINIMUM_WINDOW_SIZE;
  3307. } else if (currentPeer->windowSize > ENET_PROTOCOL_MAXIMUM_WINDOW_SIZE) {
  3308. currentPeer->windowSize = ENET_PROTOCOL_MAXIMUM_WINDOW_SIZE;
  3309. }
  3310. for (channel = currentPeer->channels; channel < &currentPeer->channels[channelCount]; ++channel) {
  3311. channel->outgoingReliableSequenceNumber = 0;
  3312. channel->outgoingUnreliableSequenceNumber = 0;
  3313. channel->incomingReliableSequenceNumber = 0;
  3314. channel->incomingUnreliableSequenceNumber = 0;
  3315. enet_list_clear(&channel->incomingReliableCommands);
  3316. enet_list_clear(&channel->incomingUnreliableCommands);
  3317. channel->usedReliableWindows = 0;
  3318. memset(channel->reliableWindows, 0, sizeof(channel->reliableWindows));
  3319. }
  3320. command.header.command = ENET_PROTOCOL_COMMAND_CONNECT | ENET_PROTOCOL_COMMAND_FLAG_ACKNOWLEDGE;
  3321. command.header.channelID = 0xFF;
  3322. command.connect.outgoingPeerID = ENET_HOST_TO_NET_16(currentPeer->incomingPeerID);
  3323. command.connect.incomingSessionID = currentPeer->incomingSessionID;
  3324. command.connect.outgoingSessionID = currentPeer->outgoingSessionID;
  3325. command.connect.mtu = ENET_HOST_TO_NET_32(currentPeer->mtu);
  3326. command.connect.windowSize = ENET_HOST_TO_NET_32(currentPeer->windowSize);
  3327. command.connect.channelCount = ENET_HOST_TO_NET_32(channelCount);
  3328. command.connect.incomingBandwidth = ENET_HOST_TO_NET_32(host->incomingBandwidth);
  3329. command.connect.outgoingBandwidth = ENET_HOST_TO_NET_32(host->outgoingBandwidth);
  3330. command.connect.packetThrottleInterval = ENET_HOST_TO_NET_32(currentPeer->packetThrottleInterval);
  3331. command.connect.packetThrottleAcceleration = ENET_HOST_TO_NET_32(currentPeer->packetThrottleAcceleration);
  3332. command.connect.packetThrottleDeceleration = ENET_HOST_TO_NET_32(currentPeer->packetThrottleDeceleration);
  3333. command.connect.connectID = currentPeer->connectID;
  3334. command.connect.data = ENET_HOST_TO_NET_32(data);
  3335. enet_peer_queue_outgoing_command(currentPeer, &command, NULL, 0, 0);
  3336. return currentPeer;
  3337. }
  3338. void enet_host_broadcast(ENetHost *host, enet_uint8 channelID, ENetPacket *packet) {
  3339. ENetPeer *currentPeer;
  3340. for (currentPeer = host->peers; currentPeer < &host->peers[host->peerCount]; ++currentPeer) {
  3341. if (currentPeer->state != ENET_PEER_STATE_CONNECTED) {
  3342. continue;
  3343. }
  3344. enet_peer_send(currentPeer, channelID, packet);
  3345. }
  3346. if (packet->referenceCount == 0) {
  3347. enet_packet_destroy(packet);
  3348. }
  3349. }
  3350. void enet_host_broadcast_selective(ENetHost *host, enet_uint8 channelID, ENetPacket *packet, ENetPeer **peers, size_t length) {
  3351. ENetPeer *currentPeer;
  3352. if (host == NULL) {
  3353. return;
  3354. }
  3355. for (int i = 0; i < length; i++) {
  3356. currentPeer = peers[i];
  3357. if (currentPeer == NULL || currentPeer->state != ENET_PEER_STATE_CONNECTED) {
  3358. continue;
  3359. }
  3360. enet_peer_send(currentPeer, channelID, packet);
  3361. }
  3362. if (packet->referenceCount == 0) {
  3363. enet_packet_destroy(packet);
  3364. }
  3365. }
  3366. void enet_host_channel_limit(ENetHost *host, size_t channelLimit) {
  3367. if (!channelLimit || channelLimit > ENET_PROTOCOL_MAXIMUM_CHANNEL_COUNT) {
  3368. channelLimit = ENET_PROTOCOL_MAXIMUM_CHANNEL_COUNT;
  3369. } else if (channelLimit < ENET_PROTOCOL_MINIMUM_CHANNEL_COUNT) {
  3370. channelLimit = ENET_PROTOCOL_MINIMUM_CHANNEL_COUNT;
  3371. }
  3372. host->channelLimit = channelLimit;
  3373. }
  3374. void enet_host_bandwidth_limit(ENetHost *host, enet_uint32 incomingBandwidth, enet_uint32 outgoingBandwidth) {
  3375. host->incomingBandwidth = incomingBandwidth;
  3376. host->outgoingBandwidth = outgoingBandwidth;
  3377. host->recalculateBandwidthLimits = 1;
  3378. }
  3379. void enet_host_bandwidth_throttle(ENetHost *host) {
  3380. enet_uint32 timeCurrent = enet_time_get();
  3381. enet_uint32 elapsedTime = timeCurrent - host->bandwidthThrottleEpoch;
  3382. enet_uint32 peersRemaining = (enet_uint32) host->connectedPeers;
  3383. enet_uint32 dataTotal = ~0;
  3384. enet_uint32 bandwidth = ~0;
  3385. enet_uint32 throttle = 0;
  3386. enet_uint32 bandwidthLimit = 0;
  3387. int needsAdjustment = host->bandwidthLimitedPeers > 0 ? 1 : 0;
  3388. ENetPeer *peer;
  3389. ENetProtocol command;
  3390. if (elapsedTime < ENET_HOST_BANDWIDTH_THROTTLE_INTERVAL) {
  3391. return;
  3392. }
  3393. if (host->outgoingBandwidth == 0 && host->incomingBandwidth == 0) {
  3394. return;
  3395. }
  3396. host->bandwidthThrottleEpoch = timeCurrent;
  3397. if (peersRemaining == 0) {
  3398. return;
  3399. }
  3400. if (host->outgoingBandwidth != 0) {
  3401. dataTotal = 0;
  3402. bandwidth = (host->outgoingBandwidth * elapsedTime) / 1000;
  3403. for (peer = host->peers; peer < &host->peers[host->peerCount]; ++peer) {
  3404. if (peer->state != ENET_PEER_STATE_CONNECTED && peer->state != ENET_PEER_STATE_DISCONNECT_LATER) {
  3405. continue;
  3406. }
  3407. dataTotal += peer->outgoingDataTotal;
  3408. }
  3409. }
  3410. while (peersRemaining > 0 && needsAdjustment != 0) {
  3411. needsAdjustment = 0;
  3412. if (dataTotal <= bandwidth) {
  3413. throttle = ENET_PEER_PACKET_THROTTLE_SCALE;
  3414. } else {
  3415. throttle = (bandwidth * ENET_PEER_PACKET_THROTTLE_SCALE) / dataTotal;
  3416. }
  3417. for (peer = host->peers; peer < &host->peers[host->peerCount]; ++peer) {
  3418. enet_uint32 peerBandwidth;
  3419. if ((peer->state != ENET_PEER_STATE_CONNECTED && peer->state != ENET_PEER_STATE_DISCONNECT_LATER) ||
  3420. peer->incomingBandwidth == 0 ||
  3421. peer->outgoingBandwidthThrottleEpoch == timeCurrent
  3422. ) {
  3423. continue;
  3424. }
  3425. peerBandwidth = (peer->incomingBandwidth * elapsedTime) / 1000;
  3426. if ((throttle * peer->outgoingDataTotal) / ENET_PEER_PACKET_THROTTLE_SCALE <= peerBandwidth) {
  3427. continue;
  3428. }
  3429. peer->packetThrottleLimit = (peerBandwidth * ENET_PEER_PACKET_THROTTLE_SCALE) / peer->outgoingDataTotal;
  3430. if (peer->packetThrottleLimit == 0) {
  3431. peer->packetThrottleLimit = 1;
  3432. }
  3433. if (peer->packetThrottle > peer->packetThrottleLimit) {
  3434. peer->packetThrottle = peer->packetThrottleLimit;
  3435. }
  3436. peer->outgoingBandwidthThrottleEpoch = timeCurrent;
  3437. peer->incomingDataTotal = 0;
  3438. peer->outgoingDataTotal = 0;
  3439. needsAdjustment = 1;
  3440. --peersRemaining;
  3441. bandwidth -= peerBandwidth;
  3442. dataTotal -= peerBandwidth;
  3443. }
  3444. }
  3445. if (peersRemaining > 0) {
  3446. if (dataTotal <= bandwidth) {
  3447. throttle = ENET_PEER_PACKET_THROTTLE_SCALE;
  3448. } else {
  3449. throttle = (bandwidth * ENET_PEER_PACKET_THROTTLE_SCALE) / dataTotal;
  3450. }
  3451. for (peer = host->peers;
  3452. peer < &host->peers[host->peerCount];
  3453. ++peer)
  3454. {
  3455. if ((peer->state != ENET_PEER_STATE_CONNECTED && peer->state != ENET_PEER_STATE_DISCONNECT_LATER) || peer->outgoingBandwidthThrottleEpoch == timeCurrent) {
  3456. continue;
  3457. }
  3458. peer->packetThrottleLimit = throttle;
  3459. if (peer->packetThrottle > peer->packetThrottleLimit) {
  3460. peer->packetThrottle = peer->packetThrottleLimit;
  3461. }
  3462. peer->incomingDataTotal = 0;
  3463. peer->outgoingDataTotal = 0;
  3464. }
  3465. }
  3466. if (host->recalculateBandwidthLimits) {
  3467. host->recalculateBandwidthLimits = 0;
  3468. peersRemaining = (enet_uint32) host->connectedPeers;
  3469. bandwidth = host->incomingBandwidth;
  3470. needsAdjustment = 1;
  3471. if (bandwidth == 0) {
  3472. bandwidthLimit = 0;
  3473. } else {
  3474. while (peersRemaining > 0 && needsAdjustment != 0) {
  3475. needsAdjustment = 0;
  3476. bandwidthLimit = bandwidth / peersRemaining;
  3477. for (peer = host->peers; peer < &host->peers[host->peerCount]; ++peer) {
  3478. if ((peer->state != ENET_PEER_STATE_CONNECTED && peer->state != ENET_PEER_STATE_DISCONNECT_LATER) ||
  3479. peer->incomingBandwidthThrottleEpoch == timeCurrent
  3480. ) {
  3481. continue;
  3482. }
  3483. if (peer->outgoingBandwidth > 0 && peer->outgoingBandwidth >= bandwidthLimit) {
  3484. continue;
  3485. }
  3486. peer->incomingBandwidthThrottleEpoch = timeCurrent;
  3487. needsAdjustment = 1;
  3488. --peersRemaining;
  3489. bandwidth -= peer->outgoingBandwidth;
  3490. }
  3491. }
  3492. }
  3493. for (peer = host->peers; peer < &host->peers[host->peerCount]; ++peer) {
  3494. if (peer->state != ENET_PEER_STATE_CONNECTED && peer->state != ENET_PEER_STATE_DISCONNECT_LATER) {
  3495. continue;
  3496. }
  3497. command.header.command = ENET_PROTOCOL_COMMAND_BANDWIDTH_LIMIT | ENET_PROTOCOL_COMMAND_FLAG_ACKNOWLEDGE;
  3498. command.header.channelID = 0xFF;
  3499. command.bandwidthLimit.outgoingBandwidth = ENET_HOST_TO_NET_32(host->outgoingBandwidth);
  3500. if (peer->incomingBandwidthThrottleEpoch == timeCurrent) {
  3501. command.bandwidthLimit.incomingBandwidth = ENET_HOST_TO_NET_32(peer->outgoingBandwidth);
  3502. } else {
  3503. command.bandwidthLimit.incomingBandwidth = ENET_HOST_TO_NET_32(bandwidthLimit);
  3504. }
  3505. enet_peer_queue_outgoing_command(peer, &command, NULL, 0, 0);
  3506. }
  3507. }
  3508. }
  3509. // =======================================================================//
  3510. // !
  3511. // ! Time
  3512. // !
  3513. // =======================================================================//
  3514. #ifdef _WIN32
  3515. static LARGE_INTEGER getFILETIMEoffset() {
  3516. SYSTEMTIME s;
  3517. FILETIME f;
  3518. LARGE_INTEGER t;
  3519. s.wYear = 1970;
  3520. s.wMonth = 1;
  3521. s.wDay = 1;
  3522. s.wHour = 0;
  3523. s.wMinute = 0;
  3524. s.wSecond = 0;
  3525. s.wMilliseconds = 0;
  3526. SystemTimeToFileTime(&s, &f);
  3527. t.QuadPart = f.dwHighDateTime;
  3528. t.QuadPart <<= 32;
  3529. t.QuadPart |= f.dwLowDateTime;
  3530. return (t);
  3531. }
  3532. int clock_gettime(int X, struct timespec *tv) {
  3533. LARGE_INTEGER t;
  3534. FILETIME f;
  3535. double microseconds;
  3536. static LARGE_INTEGER offset;
  3537. static double frequencyToMicroseconds;
  3538. static int initialized = 0;
  3539. static BOOL usePerformanceCounter = 0;
  3540. if (!initialized) {
  3541. LARGE_INTEGER performanceFrequency;
  3542. initialized = 1;
  3543. usePerformanceCounter = QueryPerformanceFrequency(&performanceFrequency);
  3544. if (usePerformanceCounter) {
  3545. QueryPerformanceCounter(&offset);
  3546. frequencyToMicroseconds = (double)performanceFrequency.QuadPart / 1000000.;
  3547. } else {
  3548. offset = getFILETIMEoffset();
  3549. frequencyToMicroseconds = 10.;
  3550. }
  3551. }
  3552. if (usePerformanceCounter) {
  3553. QueryPerformanceCounter(&t);
  3554. } else {
  3555. GetSystemTimeAsFileTime(&f);
  3556. t.QuadPart = f.dwHighDateTime;
  3557. t.QuadPart <<= 32;
  3558. t.QuadPart |= f.dwLowDateTime;
  3559. }
  3560. t.QuadPart -= offset.QuadPart;
  3561. microseconds = (double)t.QuadPart / frequencyToMicroseconds;
  3562. t.QuadPart = (LONGLONG)microseconds;
  3563. tv->tv_sec = (long) (t.QuadPart / 1000000);
  3564. tv->tv_nsec = t.QuadPart % 1000000 * 1000;
  3565. return (0);
  3566. }
  3567. #elif __APPLE__ && __MAC_OS_X_VERSION_MIN_REQUIRED < 101200
  3568. #define CLOCK_MONOTONIC 0
  3569. int clock_gettime(int X, struct timespec *ts) {
  3570. clock_serv_t cclock;
  3571. mach_timespec_t mts;
  3572. host_get_clock_service(mach_host_self(), SYSTEM_CLOCK, &cclock);
  3573. clock_get_time(cclock, &mts);
  3574. mach_port_deallocate(mach_task_self(), cclock);
  3575. ts->tv_sec = mts.tv_sec;
  3576. ts->tv_nsec = mts.tv_nsec;
  3577. return 0;
  3578. }
  3579. #endif
  3580. enet_uint32 enet_time_get() {
  3581. static uint64_t start_time_ns = 0;
  3582. struct timespec ts;
  3583. #ifdef CLOCK_MONOTONIC_RAW
  3584. clock_gettime(CLOCK_MONOTONIC_RAW, &ts);
  3585. #else
  3586. clock_gettime(CLOCK_MONOTONIC, &ts);
  3587. #endif
  3588. static const uint64_t ns_in_s = 1000 * 1000 * 1000;
  3589. static const uint64_t ns_in_ms = 1000 * 1000;
  3590. uint64_t current_time_ns = ts.tv_nsec + (uint64_t)ts.tv_sec * ns_in_s;
  3591. uint64_t offset_ns = ENET_ATOMIC_READ(&start_time_ns);
  3592. if (offset_ns == 0) {
  3593. uint64_t want_value = current_time_ns - 1 * ns_in_ms;
  3594. uint64_t old_value = ENET_ATOMIC_CAS(&start_time_ns, 0, want_value);
  3595. offset_ns = old_value == 0 ? want_value : old_value;
  3596. }
  3597. uint64_t result_in_ns = current_time_ns - offset_ns;
  3598. return (enet_uint32) (result_in_ns / ns_in_ms);
  3599. }
  3600. // =======================================================================//
  3601. // !
  3602. // ! Extended functionality
  3603. // !
  3604. // =======================================================================//
  3605. void * enet_packet_get_data(ENetPacket *packet) {
  3606. return (void *)packet->data;
  3607. }
  3608. int enet_packet_get_length(ENetPacket *packet) {
  3609. return packet->dataLength;
  3610. }
  3611. void enet_packet_set_free_callback(ENetPacket *packet, const void *callback) {
  3612. packet->freeCallback = (ENetPacketFreeCallback)callback;
  3613. }
  3614. int enet_packet_check_references(ENetPacket *packet) {
  3615. return (int)packet->referenceCount;
  3616. }
  3617. void enet_packet_dispose(ENetPacket *packet) {
  3618. if (packet->referenceCount == 0) {
  3619. enet_packet_destroy(packet);
  3620. }
  3621. }
  3622. enet_uint32 enet_host_get_peers_count(ENetHost *host) {
  3623. return host->connectedPeers;
  3624. }
  3625. enet_uint32 enet_host_get_packets_sent(ENetHost *host) {
  3626. return host->totalSentPackets;
  3627. }
  3628. enet_uint32 enet_host_get_packets_received(ENetHost *host) {
  3629. return host->totalReceivedPackets;
  3630. }
  3631. enet_uint32 enet_host_get_bytes_sent(ENetHost *host) {
  3632. return host->totalSentData;
  3633. }
  3634. enet_uint32 enet_host_get_bytes_received(ENetHost *host) {
  3635. return host->totalReceivedData;
  3636. }
  3637. enet_uint32 enet_peer_get_id(ENetPeer *peer) {
  3638. return peer->connectID;
  3639. }
  3640. int enet_peer_get_ip(ENetPeer *peer, char *ip, size_t ipLength) {
  3641. return enet_address_get_host_ip(&peer->address, ip, ipLength);
  3642. }
  3643. enet_uint16 enet_peer_get_port(ENetPeer *peer) {
  3644. return peer->address.port;
  3645. }
  3646. enet_uint32 enet_peer_get_mtu(ENetPeer *peer) {
  3647. return peer->mtu;
  3648. }
  3649. ENetPeerState enet_peer_get_state(ENetPeer *peer) {
  3650. return peer->state;
  3651. }
  3652. enet_uint32 enet_peer_get_rtt(ENetPeer *peer) {
  3653. return peer->smoothedRoundTripTime;
  3654. }
  3655. enet_uint32 enet_peer_get_lastsendtime(ENetPeer *peer) {
  3656. return peer->lastSendTime;
  3657. }
  3658. enet_uint32 enet_peer_get_lastreceivetime(ENetPeer *peer) {
  3659. return peer->lastReceiveTime;
  3660. }
  3661. enet_uint64 enet_peer_get_packets_sent(ENetPeer *peer) {
  3662. return peer->totalPacketsSent;
  3663. }
  3664. enet_uint32 enet_peer_get_packets_lost(ENetPeer *peer) {
  3665. return peer->totalPacketsLost;
  3666. }
  3667. enet_uint64 enet_peer_get_bytes_sent(ENetPeer *peer) {
  3668. return peer->totalDataSent;
  3669. }
  3670. enet_uint64 enet_peer_get_bytes_received(ENetPeer *peer) {
  3671. return peer->totalDataReceived;
  3672. }
  3673. void * enet_peer_get_data(ENetPeer *peer) {
  3674. return (void *)peer->data;
  3675. }
  3676. void enet_peer_set_data(ENetPeer *peer, const void *data) {
  3677. peer->data = (enet_uint32 *)data;
  3678. }
  3679. // =======================================================================//
  3680. // !
  3681. // ! Platform Specific (Unix)
  3682. // !
  3683. // =======================================================================//
  3684. #ifndef _WIN32
  3685. int enet_initialize(void) {
  3686. return 0;
  3687. }
  3688. void enet_deinitialize(void) { }
  3689. enet_uint64 enet_host_random_seed(void) {
  3690. return (enet_uint64)time(NULL);
  3691. }
  3692. int enet_address_set_host_ip(ENetAddress *address, const char *name) {
  3693. if (!inet_pton(AF_INET6, name, &address->host)) {
  3694. return -1;
  3695. }
  3696. return 0;
  3697. }
  3698. int enet_address_set_host(ENetAddress *address, const char *name) {
  3699. struct addrinfo hints, *resultList = NULL, *result = NULL;
  3700. memset(&hints, 0, sizeof(hints));
  3701. hints.ai_family = AF_UNSPEC;
  3702. if (getaddrinfo(name, NULL, &hints, &resultList) != 0) {
  3703. return -1;
  3704. }
  3705. for (result = resultList; result != NULL; result = result->ai_next) {
  3706. if (result->ai_addr != NULL && result->ai_addrlen >= sizeof(struct sockaddr_in)) {
  3707. if (result->ai_family == AF_INET) {
  3708. struct sockaddr_in * sin = (struct sockaddr_in *)result->ai_addr;
  3709. ((uint32_t *)&address->host.s6_addr)[0] = 0;
  3710. ((uint32_t *)&address->host.s6_addr)[1] = 0;
  3711. ((uint32_t *)&address->host.s6_addr)[2] = htonl(0xffff);
  3712. ((uint32_t *)&address->host.s6_addr)[3] = sin->sin_addr.s_addr;
  3713. freeaddrinfo(resultList);
  3714. return 0;
  3715. } else if (result->ai_family == AF_INET6) {
  3716. struct sockaddr_in6 * sin = (struct sockaddr_in6 *)result->ai_addr;
  3717. address->host = sin->sin6_addr;
  3718. address->sin6_scope_id = sin->sin6_scope_id;
  3719. freeaddrinfo(resultList);
  3720. return 0;
  3721. }
  3722. }
  3723. }
  3724. if (resultList != NULL) {
  3725. freeaddrinfo(resultList);
  3726. }
  3727. return enet_address_set_host_ip(address, name);
  3728. }
  3729. int enet_address_get_host_ip(const ENetAddress *address, char *name, size_t nameLength) {
  3730. if (inet_ntop(AF_INET6, &address->host, name, nameLength) == NULL) {
  3731. return -1;
  3732. }
  3733. return 0;
  3734. }
  3735. int enet_address_get_host(const ENetAddress *address, char *name, size_t nameLength) {
  3736. struct sockaddr_in6 sin;
  3737. int err;
  3738. memset(&sin, 0, sizeof(struct sockaddr_in6));
  3739. sin.sin6_family = AF_INET6;
  3740. sin.sin6_port = ENET_HOST_TO_NET_16(address->port);
  3741. sin.sin6_addr = address->host;
  3742. sin.sin6_scope_id = address->sin6_scope_id;
  3743. err = getnameinfo((struct sockaddr *)&sin, sizeof(sin), name, nameLength, NULL, 0, NI_NAMEREQD);
  3744. if (!err) {
  3745. if (name != NULL && nameLength > 0 && !memchr(name, '\0', nameLength)) {
  3746. return -1;
  3747. }
  3748. return 0;
  3749. }
  3750. if (err != EAI_NONAME) {
  3751. return -1;
  3752. }
  3753. return enet_address_get_host_ip(address, name, nameLength);
  3754. }
  3755. int enet_socket_bind(ENetSocket socket, const ENetAddress *address) {
  3756. struct sockaddr_in6 sin;
  3757. memset(&sin, 0, sizeof(struct sockaddr_in6));
  3758. sin.sin6_family = AF_INET6;
  3759. if (address != NULL) {
  3760. sin.sin6_port = ENET_HOST_TO_NET_16(address->port);
  3761. sin.sin6_addr = address->host;
  3762. sin.sin6_scope_id = address->sin6_scope_id;
  3763. } else {
  3764. sin.sin6_port = 0;
  3765. sin.sin6_addr = ENET_HOST_ANY;
  3766. sin.sin6_scope_id = 0;
  3767. }
  3768. return bind(socket, (struct sockaddr *)&sin, sizeof(struct sockaddr_in6));
  3769. }
  3770. int enet_socket_get_address(ENetSocket socket, ENetAddress *address) {
  3771. struct sockaddr_in6 sin;
  3772. socklen_t sinLength = sizeof(struct sockaddr_in6);
  3773. if (getsockname(socket, (struct sockaddr *)&sin, &sinLength) == -1) {
  3774. return -1;
  3775. }
  3776. address->host = sin.sin6_addr;
  3777. address->port = ENET_NET_TO_HOST_16(sin.sin6_port);
  3778. address->sin6_scope_id = sin.sin6_scope_id;
  3779. return 0;
  3780. }
  3781. int enet_socket_listen(ENetSocket socket, int backlog) {
  3782. return listen(socket, backlog < 0 ? SOMAXCONN : backlog);
  3783. }
  3784. ENetSocket enet_socket_create(ENetSocketType type) {
  3785. return socket(PF_INET6, type == ENET_SOCKET_TYPE_DATAGRAM ? SOCK_DGRAM : SOCK_STREAM, 0);
  3786. }
  3787. int enet_socket_set_option(ENetSocket socket, ENetSocketOption option, int value) {
  3788. int result = -1;
  3789. switch (option) {
  3790. case ENET_SOCKOPT_NONBLOCK:
  3791. result = fcntl(socket, F_SETFL, (value ? O_NONBLOCK : 0) | (fcntl(socket, F_GETFL) & ~O_NONBLOCK));
  3792. break;
  3793. case ENET_SOCKOPT_BROADCAST:
  3794. result = setsockopt(socket, SOL_SOCKET, SO_BROADCAST, (char *)&value, sizeof(int));
  3795. break;
  3796. case ENET_SOCKOPT_REUSEADDR:
  3797. result = setsockopt(socket, SOL_SOCKET, SO_REUSEADDR, (char *)&value, sizeof(int));
  3798. break;
  3799. case ENET_SOCKOPT_RCVBUF:
  3800. result = setsockopt(socket, SOL_SOCKET, SO_RCVBUF, (char *)&value, sizeof(int));
  3801. break;
  3802. case ENET_SOCKOPT_SNDBUF:
  3803. result = setsockopt(socket, SOL_SOCKET, SO_SNDBUF, (char *)&value, sizeof(int));
  3804. break;
  3805. case ENET_SOCKOPT_RCVTIMEO: {
  3806. struct timeval timeVal;
  3807. timeVal.tv_sec = value / 1000;
  3808. timeVal.tv_usec = (value % 1000) * 1000;
  3809. result = setsockopt(socket, SOL_SOCKET, SO_RCVTIMEO, (char *)&timeVal, sizeof(struct timeval));
  3810. break;
  3811. }
  3812. case ENET_SOCKOPT_SNDTIMEO: {
  3813. struct timeval timeVal;
  3814. timeVal.tv_sec = value / 1000;
  3815. timeVal.tv_usec = (value % 1000) * 1000;
  3816. result = setsockopt(socket, SOL_SOCKET, SO_SNDTIMEO, (char *)&timeVal, sizeof(struct timeval));
  3817. break;
  3818. }
  3819. case ENET_SOCKOPT_NODELAY:
  3820. result = setsockopt(socket, IPPROTO_TCP, TCP_NODELAY, (char *)&value, sizeof(int));
  3821. break;
  3822. case ENET_SOCKOPT_IPV6_V6ONLY:
  3823. result = setsockopt(socket, IPPROTO_IPV6, IPV6_V6ONLY, (char *)&value, sizeof(int));
  3824. break;
  3825. default:
  3826. break;
  3827. }
  3828. return result == -1 ? -1 : 0;
  3829. }
  3830. int enet_socket_get_option(ENetSocket socket, ENetSocketOption option, int *value) {
  3831. int result = -1;
  3832. socklen_t len;
  3833. switch (option) {
  3834. case ENET_SOCKOPT_ERROR:
  3835. len = sizeof(int);
  3836. result = getsockopt(socket, SOL_SOCKET, SO_ERROR, value, &len);
  3837. break;
  3838. default:
  3839. break;
  3840. }
  3841. return result == -1 ? -1 : 0;
  3842. }
  3843. int enet_socket_connect(ENetSocket socket, const ENetAddress *address) {
  3844. struct sockaddr_in6 sin;
  3845. int result;
  3846. memset(&sin, 0, sizeof(struct sockaddr_in6));
  3847. sin.sin6_family = AF_INET6;
  3848. sin.sin6_port = ENET_HOST_TO_NET_16(address->port);
  3849. sin.sin6_addr = address->host;
  3850. sin.sin6_scope_id = address->sin6_scope_id;
  3851. result = connect(socket, (struct sockaddr *)&sin, sizeof(struct sockaddr_in6));
  3852. if (result == -1 && errno == EINPROGRESS) {
  3853. return 0;
  3854. }
  3855. return result;
  3856. }
  3857. ENetSocket enet_socket_accept(ENetSocket socket, ENetAddress *address) {
  3858. int result;
  3859. struct sockaddr_in6 sin;
  3860. socklen_t sinLength = sizeof(struct sockaddr_in6);
  3861. result = accept(socket,address != NULL ? (struct sockaddr *)&sin : NULL, address != NULL ? &sinLength : NULL);
  3862. if (result == -1) {
  3863. return ENET_SOCKET_NULL;
  3864. }
  3865. if (address != NULL) {
  3866. address->host = sin.sin6_addr;
  3867. address->port = ENET_NET_TO_HOST_16(sin.sin6_port);
  3868. address->sin6_scope_id = sin.sin6_scope_id;
  3869. }
  3870. return result;
  3871. }
  3872. int enet_socket_shutdown(ENetSocket socket, ENetSocketShutdown how) {
  3873. return shutdown(socket, (int)how);
  3874. }
  3875. void enet_socket_destroy(ENetSocket socket) {
  3876. if (socket != -1) {
  3877. close(socket);
  3878. }
  3879. }
  3880. int enet_socket_send(ENetSocket socket, const ENetAddress *address, const ENetBuffer *buffers, size_t bufferCount) {
  3881. struct msghdr msgHdr;
  3882. struct sockaddr_in6 sin;
  3883. int sentLength;
  3884. memset(&msgHdr, 0, sizeof(struct msghdr));
  3885. if (address != NULL) {
  3886. memset(&sin, 0, sizeof(struct sockaddr_in6));
  3887. sin.sin6_family = AF_INET6;
  3888. sin.sin6_port = ENET_HOST_TO_NET_16(address->port);
  3889. sin.sin6_addr = address->host;
  3890. sin.sin6_scope_id = address->sin6_scope_id;
  3891. msgHdr.msg_name = &sin;
  3892. msgHdr.msg_namelen = sizeof(struct sockaddr_in6);
  3893. }
  3894. msgHdr.msg_iov = (struct iovec *)buffers;
  3895. msgHdr.msg_iovlen = bufferCount;
  3896. sentLength = sendmsg(socket, &msgHdr, MSG_NOSIGNAL);
  3897. if (sentLength == -1) {
  3898. if (errno == EWOULDBLOCK) {
  3899. return 0;
  3900. }
  3901. return -1;
  3902. }
  3903. return sentLength;
  3904. }
  3905. int enet_socket_receive(ENetSocket socket, ENetAddress *address, ENetBuffer *buffers, size_t bufferCount) {
  3906. struct msghdr msgHdr;
  3907. struct sockaddr_in6 sin;
  3908. int recvLength;
  3909. memset(&msgHdr, 0, sizeof(struct msghdr));
  3910. if (address != NULL) {
  3911. msgHdr.msg_name = &sin;
  3912. msgHdr.msg_namelen = sizeof(struct sockaddr_in6);
  3913. }
  3914. msgHdr.msg_iov = (struct iovec *)buffers;
  3915. msgHdr.msg_iovlen = bufferCount;
  3916. recvLength = recvmsg(socket, &msgHdr, MSG_NOSIGNAL);
  3917. if (recvLength == -1) {
  3918. if (errno == EWOULDBLOCK) {
  3919. return 0;
  3920. }
  3921. return -1;
  3922. }
  3923. if (msgHdr.msg_flags & MSG_TRUNC) {
  3924. return -1;
  3925. }
  3926. if (address != NULL) {
  3927. address->host = sin.sin6_addr;
  3928. address->port = ENET_NET_TO_HOST_16(sin.sin6_port);
  3929. address->sin6_scope_id = sin.sin6_scope_id;
  3930. }
  3931. return recvLength;
  3932. }
  3933. int enet_socket_set_select(ENetSocket maxSocket, ENetSocketSet *readSet, ENetSocketSet *writeSet, enet_uint32 timeout) {
  3934. struct timeval timeVal;
  3935. timeVal.tv_sec = timeout / 1000;
  3936. timeVal.tv_usec = (timeout % 1000) * 1000;
  3937. return select(maxSocket + 1, readSet, writeSet, NULL, &timeVal);
  3938. }
  3939. int enet_socket_wait(ENetSocket socket, enet_uint32 *condition, enet_uint64 timeout) {
  3940. struct pollfd pollSocket;
  3941. int pollCount;
  3942. pollSocket.fd = socket;
  3943. pollSocket.events = 0;
  3944. if (*condition & ENET_SOCKET_WAIT_SEND) {
  3945. pollSocket.events |= POLLOUT;
  3946. }
  3947. if (*condition & ENET_SOCKET_WAIT_RECEIVE) {
  3948. pollSocket.events |= POLLIN;
  3949. }
  3950. pollCount = poll(&pollSocket, 1, timeout);
  3951. if (pollCount < 0) {
  3952. if (errno == EINTR && *condition & ENET_SOCKET_WAIT_INTERRUPT) {
  3953. *condition = ENET_SOCKET_WAIT_INTERRUPT;
  3954. return 0;
  3955. }
  3956. return -1;
  3957. }
  3958. *condition = ENET_SOCKET_WAIT_NONE;
  3959. if (pollCount == 0) {
  3960. return 0;
  3961. }
  3962. if (pollSocket.revents & POLLOUT) {
  3963. *condition |= ENET_SOCKET_WAIT_SEND;
  3964. }
  3965. if (pollSocket.revents & POLLIN) {
  3966. *condition |= ENET_SOCKET_WAIT_RECEIVE;
  3967. }
  3968. return 0;
  3969. }
  3970. #endif
  3971. // =======================================================================//
  3972. // !
  3973. // ! Platform Specific (Win)
  3974. // !
  3975. // =======================================================================//
  3976. #ifdef _WIN32
  3977. #ifdef __MINGW32__
  3978. const char *inet_ntop(int af, const void *src, char *dst, socklen_t cnt) {
  3979. if (af == AF_INET) {
  3980. struct sockaddr_in in;
  3981. memset(&in, 0, sizeof(in));
  3982. in.sin_family = AF_INET;
  3983. memcpy(&in.sin_addr, src, sizeof(struct in_addr));
  3984. getnameinfo((struct sockaddr *)&in, sizeof(struct sockaddr_in), dst, cnt, NULL, 0, NI_NUMERICHOST);
  3985. return dst;
  3986. } else if (af == AF_INET6) {
  3987. struct sockaddr_in6 in;
  3988. memset(&in, 0, sizeof(in));
  3989. in.sin6_family = AF_INET6;
  3990. memcpy(&in.sin6_addr, src, sizeof(struct in_addr6));
  3991. getnameinfo((struct sockaddr *)&in, sizeof(struct sockaddr_in6), dst, cnt, NULL, 0, NI_NUMERICHOST);
  3992. return dst;
  3993. }
  3994. return NULL;
  3995. }
  3996. #define NS_INADDRSZ 4
  3997. #define NS_IN6ADDRSZ 16
  3998. #define NS_INT16SZ 2
  3999. int inet_pton4(const char *src, char *dst) {
  4000. uint8_t tmp[NS_INADDRSZ], *tp;
  4001. int saw_digit = 0;
  4002. int octets = 0;
  4003. *(tp = tmp) = 0;
  4004. int ch;
  4005. while ((ch = *src++) != '\0') {
  4006. if (ch >= '0' && ch <= '9') {
  4007. uint32_t n = *tp * 10 + (ch - '0');
  4008. if (saw_digit && *tp == 0)
  4009. return 0;
  4010. if (n > 255)
  4011. return 0;
  4012. *tp = n;
  4013. if (!saw_digit) {
  4014. if (++octets > 4) {
  4015. return 0;
  4016. }
  4017. saw_digit = 1;
  4018. }
  4019. } else if (ch == '.' && saw_digit) {
  4020. if (octets == 4) {
  4021. return 0;
  4022. }
  4023. *++tp = 0;
  4024. saw_digit = 0;
  4025. } else
  4026. return 0;
  4027. }
  4028. if (octets < 4) {
  4029. return 0;
  4030. }
  4031. memcpy(dst, tmp, NS_INADDRSZ);
  4032. return 1;
  4033. }
  4034. int inet_pton6(const char *src, char *dst) {
  4035. static const char xdigits[] = "0123456789abcdef";
  4036. uint8_t tmp[NS_IN6ADDRSZ];
  4037. uint8_t *tp = (uint8_t*)memset(tmp, '\0', NS_IN6ADDRSZ);
  4038. uint8_t *endp = tp + NS_IN6ADDRSZ;
  4039. uint8_t *colonp = NULL;
  4040. /* Leading :: requires some special handling. */
  4041. if (*src == ':') {
  4042. if (*++src != ':') {
  4043. return 0;
  4044. }
  4045. }
  4046. const char *curtok = src;
  4047. int saw_xdigit = 0;
  4048. uint32_t val = 0;
  4049. int ch;
  4050. while ((ch = tolower(*src++)) != '\0') {
  4051. const char *pch = strchr(xdigits, ch);
  4052. if (pch != NULL) {
  4053. val <<= 4;
  4054. val |= (pch - xdigits);
  4055. if (val > 0xffff) {
  4056. return 0;
  4057. }
  4058. saw_xdigit = 1;
  4059. continue;
  4060. }
  4061. if (ch == ':') {
  4062. curtok = src;
  4063. if (!saw_xdigit) {
  4064. if (colonp) {
  4065. return 0;
  4066. }
  4067. colonp = tp;
  4068. continue;
  4069. } else if (*src == '\0') {
  4070. return 0;
  4071. }
  4072. if (tp + NS_INT16SZ > endp) {
  4073. return 0;
  4074. }
  4075. *tp++ = (uint8_t) (val >> 8) & 0xff;
  4076. *tp++ = (uint8_t) val & 0xff;
  4077. saw_xdigit = 0;
  4078. val = 0;
  4079. continue;
  4080. }
  4081. if (ch == '.' && ((tp + NS_INADDRSZ) <= endp) && inet_pton4(curtok, (char *)tp) > 0) {
  4082. tp += NS_INADDRSZ;
  4083. saw_xdigit = 0;
  4084. break; /* '\0' was seen by inet_pton4(). */
  4085. }
  4086. return 0;
  4087. }
  4088. if (saw_xdigit) {
  4089. if (tp + NS_INT16SZ > endp) {
  4090. return 0;
  4091. }
  4092. *tp++ = (uint8_t) (val >> 8) & 0xff;
  4093. *tp++ = (uint8_t) val & 0xff;
  4094. }
  4095. if (colonp != NULL) {
  4096. /*
  4097. * Since some memmove()'s erroneously fail to handle
  4098. * overlapping regions, we'll do the shift by hand.
  4099. */
  4100. const int n = tp - colonp;
  4101. if (tp == endp) {
  4102. return 0;
  4103. }
  4104. for (int i = 1; i <= n; i++) {
  4105. endp[-i] = colonp[n - i];
  4106. colonp[n - i] = 0;
  4107. }
  4108. tp = endp;
  4109. }
  4110. if (tp != endp) {
  4111. return 0;
  4112. }
  4113. memcpy(dst, tmp, NS_IN6ADDRSZ);
  4114. return 1;
  4115. }
  4116. int inet_pton(int af, const char *src, struct in6_addr *dst) {
  4117. switch (af) {
  4118. case AF_INET:
  4119. return inet_pton4(src, (char *)dst);
  4120. case AF_INET6:
  4121. return inet_pton6(src, (char *)dst);
  4122. default:
  4123. return -1;
  4124. }
  4125. }
  4126. #endif
  4127. int enet_initialize(void) {
  4128. WORD versionRequested = MAKEWORD(1, 1);
  4129. WSADATA wsaData;
  4130. if (WSAStartup(versionRequested, &wsaData)) {
  4131. return -1;
  4132. }
  4133. if (LOBYTE(wsaData.wVersion) != 1 || HIBYTE(wsaData.wVersion) != 1) {
  4134. WSACleanup();
  4135. return -1;
  4136. }
  4137. timeBeginPeriod(1);
  4138. return 0;
  4139. }
  4140. void enet_deinitialize(void) {
  4141. timeEndPeriod(1);
  4142. WSACleanup();
  4143. }
  4144. enet_uint64 enet_host_random_seed(void) {
  4145. return (enet_uint64)timeGetTime();
  4146. }
  4147. int enet_address_set_host_ip(ENetAddress *address, const char *name) {
  4148. enet_uint8 vals[4] = { 0, 0, 0, 0 };
  4149. int i;
  4150. for (i = 0; i < 4; ++i) {
  4151. const char *next = name + 1;
  4152. if (*name != '0') {
  4153. long val = strtol(name, (char **)&next, 10);
  4154. if (val < 0 || val > 255 || next == name || next - name > 3) {
  4155. return -1;
  4156. }
  4157. vals[i] = (enet_uint8) val;
  4158. }
  4159. if (*next != (i < 3 ? '.' : '\0')) {
  4160. return -1;
  4161. }
  4162. name = next + 1;
  4163. }
  4164. memcpy(&address->host, vals, sizeof(enet_uint32));
  4165. return 0;
  4166. }
  4167. int enet_address_set_host(ENetAddress *address, const char *name) {
  4168. struct hostent *hostEntry = NULL;
  4169. hostEntry = gethostbyname(name);
  4170. if (hostEntry == NULL || hostEntry->h_addrtype != AF_INET) {
  4171. if (!inet_pton(AF_INET6, name, &address->host)) {
  4172. return -1;
  4173. }
  4174. return 0;
  4175. }
  4176. ((enet_uint32 *)&address->host.s6_addr)[0] = 0;
  4177. ((enet_uint32 *)&address->host.s6_addr)[1] = 0;
  4178. ((enet_uint32 *)&address->host.s6_addr)[2] = htonl(0xffff);
  4179. ((enet_uint32 *)&address->host.s6_addr)[3] = *(enet_uint32 *)hostEntry->h_addr_list[0];
  4180. return 0;
  4181. }
  4182. int enet_address_get_host_ip(const ENetAddress *address, char *name, size_t nameLength) {
  4183. if (inet_ntop(AF_INET6, (PVOID)&address->host, name, nameLength) == NULL) {
  4184. return -1;
  4185. }
  4186. return 0;
  4187. }
  4188. int enet_address_get_host(const ENetAddress *address, char *name, size_t nameLength) {
  4189. struct in6_addr in;
  4190. struct hostent *hostEntry = NULL;
  4191. in = address->host;
  4192. hostEntry = gethostbyaddr((char *)&in, sizeof(struct in6_addr), AF_INET6);
  4193. if (hostEntry == NULL) {
  4194. return enet_address_get_host_ip(address, name, nameLength);
  4195. } else {
  4196. size_t hostLen = strlen(hostEntry->h_name);
  4197. if (hostLen >= nameLength) {
  4198. return -1;
  4199. }
  4200. memcpy(name, hostEntry->h_name, hostLen + 1);
  4201. }
  4202. return 0;
  4203. }
  4204. int enet_socket_bind(ENetSocket socket, const ENetAddress *address) {
  4205. struct sockaddr_in6 sin;
  4206. memset(&sin, 0, sizeof(struct sockaddr_in6));
  4207. sin.sin6_family = AF_INET6;
  4208. if (address != NULL) {
  4209. sin.sin6_port = ENET_HOST_TO_NET_16(address->port);
  4210. sin.sin6_addr = address->host;
  4211. sin.sin6_scope_id = address->sin6_scope_id;
  4212. } else {
  4213. sin.sin6_port = 0;
  4214. sin.sin6_addr = in6addr_any;
  4215. sin.sin6_scope_id = 0;
  4216. }
  4217. return bind(socket, (struct sockaddr *)&sin, sizeof(struct sockaddr_in6)) == SOCKET_ERROR ? -1 : 0;
  4218. }
  4219. int enet_socket_get_address(ENetSocket socket, ENetAddress *address) {
  4220. struct sockaddr_in6 sin;
  4221. int sinLength = sizeof(struct sockaddr_in6);
  4222. if (getsockname(socket, (struct sockaddr *)&sin, &sinLength) == -1) {
  4223. return -1;
  4224. }
  4225. address->host = sin.sin6_addr;
  4226. address->port = ENET_NET_TO_HOST_16(sin.sin6_port);
  4227. address->sin6_scope_id = sin.sin6_scope_id;
  4228. return 0;
  4229. }
  4230. int enet_socket_listen(ENetSocket socket, int backlog) {
  4231. return listen(socket, backlog < 0 ? SOMAXCONN : backlog) == SOCKET_ERROR ? -1 : 0;
  4232. }
  4233. ENetSocket enet_socket_create(ENetSocketType type) {
  4234. return socket(PF_INET6, type == ENET_SOCKET_TYPE_DATAGRAM ? SOCK_DGRAM : SOCK_STREAM, 0);
  4235. }
  4236. int enet_socket_set_option(ENetSocket socket, ENetSocketOption option, int value) {
  4237. int result = SOCKET_ERROR;
  4238. switch (option) {
  4239. case ENET_SOCKOPT_NONBLOCK: {
  4240. u_long nonBlocking = (u_long) value;
  4241. result = ioctlsocket(socket, FIONBIO, &nonBlocking);
  4242. break;
  4243. }
  4244. case ENET_SOCKOPT_BROADCAST:
  4245. result = setsockopt(socket, SOL_SOCKET, SO_BROADCAST, (char *)&value, sizeof(int));
  4246. break;
  4247. case ENET_SOCKOPT_REUSEADDR:
  4248. result = setsockopt(socket, SOL_SOCKET, SO_REUSEADDR, (char *)&value, sizeof(int));
  4249. break;
  4250. case ENET_SOCKOPT_RCVBUF:
  4251. result = setsockopt(socket, SOL_SOCKET, SO_RCVBUF, (char *)&value, sizeof(int));
  4252. break;
  4253. case ENET_SOCKOPT_SNDBUF:
  4254. result = setsockopt(socket, SOL_SOCKET, SO_SNDBUF, (char *)&value, sizeof(int));
  4255. break;
  4256. case ENET_SOCKOPT_RCVTIMEO:
  4257. result = setsockopt(socket, SOL_SOCKET, SO_RCVTIMEO, (char *)&value, sizeof(int));
  4258. break;
  4259. case ENET_SOCKOPT_SNDTIMEO:
  4260. result = setsockopt(socket, SOL_SOCKET, SO_SNDTIMEO, (char *)&value, sizeof(int));
  4261. break;
  4262. case ENET_SOCKOPT_NODELAY:
  4263. result = setsockopt(socket, IPPROTO_TCP, TCP_NODELAY, (char *)&value, sizeof(int));
  4264. break;
  4265. case ENET_SOCKOPT_IPV6_V6ONLY:
  4266. result = setsockopt(socket, IPPROTO_IPV6, IPV6_V6ONLY, (char *)&value, sizeof(int));
  4267. break;
  4268. default:
  4269. break;
  4270. }
  4271. return result == SOCKET_ERROR ? -1 : 0;
  4272. }
  4273. int enet_socket_get_option(ENetSocket socket, ENetSocketOption option, int *value) {
  4274. int result = SOCKET_ERROR, len;
  4275. switch (option) {
  4276. case ENET_SOCKOPT_ERROR:
  4277. len = sizeof(int);
  4278. result = getsockopt(socket, SOL_SOCKET, SO_ERROR, (char *)value, &len);
  4279. break;
  4280. default:
  4281. break;
  4282. }
  4283. return result == SOCKET_ERROR ? -1 : 0;
  4284. }
  4285. int enet_socket_connect(ENetSocket socket, const ENetAddress *address) {
  4286. struct sockaddr_in6 sin;
  4287. int result;
  4288. memset(&sin, 0, sizeof(struct sockaddr_in6));
  4289. sin.sin6_family = AF_INET6;
  4290. sin.sin6_port = ENET_HOST_TO_NET_16(address->port);
  4291. sin.sin6_addr = address->host;
  4292. sin.sin6_scope_id = address->sin6_scope_id;
  4293. result = connect(socket, (struct sockaddr *)&sin, sizeof(struct sockaddr_in6));
  4294. if (result == SOCKET_ERROR && WSAGetLastError() != WSAEWOULDBLOCK) {
  4295. return -1;
  4296. }
  4297. return 0;
  4298. }
  4299. ENetSocket enet_socket_accept(ENetSocket socket, ENetAddress *address) {
  4300. SOCKET result;
  4301. struct sockaddr_in6 sin;
  4302. int sinLength = sizeof(struct sockaddr_in6);
  4303. result = accept(socket, address != NULL ? (struct sockaddr *)&sin : NULL, address != NULL ? &sinLength : NULL);
  4304. if (result == INVALID_SOCKET) {
  4305. return ENET_SOCKET_NULL;
  4306. }
  4307. if (address != NULL) {
  4308. address->host = sin.sin6_addr;
  4309. address->port = ENET_NET_TO_HOST_16(sin.sin6_port);
  4310. address->sin6_scope_id = sin.sin6_scope_id;
  4311. }
  4312. return result;
  4313. }
  4314. int enet_socket_shutdown(ENetSocket socket, ENetSocketShutdown how) {
  4315. return shutdown(socket, (int)how) == SOCKET_ERROR ? -1 : 0;
  4316. }
  4317. void enet_socket_destroy(ENetSocket socket) {
  4318. if (socket != INVALID_SOCKET) {
  4319. closesocket(socket);
  4320. }
  4321. }
  4322. int enet_socket_send(ENetSocket socket, const ENetAddress *address, const ENetBuffer *buffers, size_t bufferCount) {
  4323. struct sockaddr_in6 sin;
  4324. DWORD sentLength;
  4325. if (address != NULL) {
  4326. memset(&sin, 0, sizeof(struct sockaddr_in6));
  4327. sin.sin6_family = AF_INET6;
  4328. sin.sin6_port = ENET_HOST_TO_NET_16(address->port);
  4329. sin.sin6_addr = address->host;
  4330. sin.sin6_scope_id = address->sin6_scope_id;
  4331. }
  4332. if (WSASendTo(socket,
  4333. (LPWSABUF) buffers,
  4334. (DWORD) bufferCount,
  4335. &sentLength,
  4336. 0,
  4337. address != NULL ? (struct sockaddr *)&sin : NULL,
  4338. address != NULL ? sizeof(struct sockaddr_in6) : 0,
  4339. NULL,
  4340. NULL) == SOCKET_ERROR
  4341. ) {
  4342. return (WSAGetLastError() == WSAEWOULDBLOCK) ? 0 : 1;
  4343. }
  4344. return (int)sentLength;
  4345. }
  4346. int enet_socket_receive(ENetSocket socket, ENetAddress *address, ENetBuffer *buffers, size_t bufferCount) {
  4347. INT sinLength = sizeof(struct sockaddr_in6);
  4348. DWORD flags = 0, recvLength;
  4349. struct sockaddr_in6 sin;
  4350. if (WSARecvFrom(socket,
  4351. (LPWSABUF) buffers,
  4352. (DWORD) bufferCount,
  4353. &recvLength,
  4354. &flags,
  4355. address != NULL ? (struct sockaddr *)&sin : NULL,
  4356. address != NULL ? &sinLength : NULL,
  4357. NULL,
  4358. NULL) == SOCKET_ERROR
  4359. ) {
  4360. switch (WSAGetLastError()) {
  4361. case WSAEWOULDBLOCK:
  4362. case WSAECONNRESET:
  4363. return 0;
  4364. }
  4365. return -1;
  4366. }
  4367. if (flags & MSG_PARTIAL) {
  4368. return -1;
  4369. }
  4370. if (address != NULL) {
  4371. address->host = sin.sin6_addr;
  4372. address->port = ENET_NET_TO_HOST_16(sin.sin6_port);
  4373. address->sin6_scope_id = sin.sin6_scope_id;
  4374. }
  4375. return (int)recvLength;
  4376. }
  4377. int enet_socket_set_select(ENetSocket maxSocket, ENetSocketSet *readSet, ENetSocketSet *writeSet, enet_uint32 timeout) {
  4378. struct timeval timeVal;
  4379. timeVal.tv_sec = timeout / 1000;
  4380. timeVal.tv_usec = (timeout % 1000) * 1000;
  4381. return select(maxSocket + 1, readSet, writeSet, NULL, &timeVal);
  4382. }
  4383. int enet_socket_wait(ENetSocket socket, enet_uint32 *condition, enet_uint64 timeout) {
  4384. fd_set readSet, writeSet;
  4385. struct timeval timeVal;
  4386. int selectCount;
  4387. timeVal.tv_sec = timeout / 1000;
  4388. timeVal.tv_usec = (timeout % 1000) * 1000;
  4389. FD_ZERO(&readSet);
  4390. FD_ZERO(&writeSet);
  4391. if (*condition & ENET_SOCKET_WAIT_SEND) {
  4392. FD_SET(socket, &writeSet);
  4393. }
  4394. if (*condition & ENET_SOCKET_WAIT_RECEIVE) {
  4395. FD_SET(socket, &readSet);
  4396. }
  4397. selectCount = select(socket + 1, &readSet, &writeSet, NULL, &timeVal);
  4398. if (selectCount < 0) {
  4399. return -1;
  4400. }
  4401. *condition = ENET_SOCKET_WAIT_NONE;
  4402. if (selectCount == 0) {
  4403. return 0;
  4404. }
  4405. if (FD_ISSET(socket, &writeSet)) {
  4406. *condition |= ENET_SOCKET_WAIT_SEND;
  4407. }
  4408. if (FD_ISSET(socket, &readSet)) {
  4409. *condition |= ENET_SOCKET_WAIT_RECEIVE;
  4410. }
  4411. return 0;
  4412. }
  4413. #endif
  4414. #ifdef __cplusplus
  4415. }
  4416. #endif
  4417. #endif
  4418. #endif