util.c 66 KB

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  1. /*
  2. * Copyright 2011-2013 Con Kolivas
  3. * Copyright 2011-2013 Luke Dashjr
  4. * Copyright 2010 Jeff Garzik
  5. * Copyright 2012 Giel van Schijndel
  6. * Copyright 2012 Gavin Andresen
  7. *
  8. * This program is free software; you can redistribute it and/or modify it
  9. * under the terms of the GNU General Public License as published by the Free
  10. * Software Foundation; either version 3 of the License, or (at your option)
  11. * any later version. See COPYING for more details.
  12. */
  13. #include "config.h"
  14. #include <stdio.h>
  15. #include <stdlib.h>
  16. #include <ctype.h>
  17. #include <stdarg.h>
  18. #include <string.h>
  19. #include <pthread.h>
  20. #include <jansson.h>
  21. #include <curl/curl.h>
  22. #include <time.h>
  23. #include <errno.h>
  24. #include <unistd.h>
  25. #include <sys/types.h>
  26. #ifdef HAVE_SYS_PRCTL_H
  27. # include <sys/prctl.h>
  28. #endif
  29. #if defined(__FreeBSD__) || defined(__OpenBSD__)
  30. # include <pthread_np.h>
  31. #endif
  32. #ifndef WIN32
  33. #include <fcntl.h>
  34. # ifdef __linux
  35. # include <sys/prctl.h>
  36. # endif
  37. # include <sys/socket.h>
  38. # include <netinet/in.h>
  39. # include <netinet/tcp.h>
  40. # include <netdb.h>
  41. #else
  42. # include <windows.h>
  43. # include <winsock2.h>
  44. # include <mstcpip.h>
  45. # include <ws2tcpip.h>
  46. # include <mmsystem.h>
  47. #endif
  48. #include <utlist.h>
  49. #include "miner.h"
  50. #include "compat.h"
  51. #include "util.h"
  52. #define DEFAULT_SOCKWAIT 60
  53. bool successful_connect = false;
  54. struct timeval nettime;
  55. struct data_buffer {
  56. void *buf;
  57. size_t len;
  58. curl_socket_t *idlemarker;
  59. };
  60. struct upload_buffer {
  61. const void *buf;
  62. size_t len;
  63. };
  64. struct header_info {
  65. char *lp_path;
  66. int rolltime;
  67. char *reason;
  68. char *stratum_url;
  69. bool hadrolltime;
  70. bool canroll;
  71. bool hadexpire;
  72. };
  73. struct tq_ent {
  74. void *data;
  75. struct tq_ent *prev;
  76. struct tq_ent *next;
  77. };
  78. static void databuf_free(struct data_buffer *db)
  79. {
  80. if (!db)
  81. return;
  82. free(db->buf);
  83. #ifdef DEBUG_DATABUF
  84. applog(LOG_DEBUG, "databuf_free(%p)", db->buf);
  85. #endif
  86. memset(db, 0, sizeof(*db));
  87. }
  88. // aka data_buffer_write
  89. static size_t all_data_cb(const void *ptr, size_t size, size_t nmemb,
  90. void *user_data)
  91. {
  92. struct data_buffer *db = user_data;
  93. size_t oldlen, newlen;
  94. oldlen = db->len;
  95. if (unlikely(nmemb == 0 || size == 0 || oldlen >= SIZE_MAX - size))
  96. return 0;
  97. if (unlikely(nmemb > (SIZE_MAX - oldlen) / size))
  98. nmemb = (SIZE_MAX - oldlen) / size;
  99. size_t len = size * nmemb;
  100. void *newmem;
  101. static const unsigned char zero = 0;
  102. if (db->idlemarker) {
  103. const unsigned char *cptr = ptr;
  104. for (size_t i = 0; i < len; ++i)
  105. if (!(isCspace(cptr[i]) || cptr[i] == '{')) {
  106. *db->idlemarker = CURL_SOCKET_BAD;
  107. db->idlemarker = NULL;
  108. break;
  109. }
  110. }
  111. newlen = oldlen + len;
  112. newmem = realloc(db->buf, newlen + 1);
  113. #ifdef DEBUG_DATABUF
  114. applog(LOG_DEBUG, "data_buffer_write realloc(%p, %lu) => %p", db->buf, (long unsigned)(newlen + 1), newmem);
  115. #endif
  116. if (!newmem)
  117. return 0;
  118. db->buf = newmem;
  119. db->len = newlen;
  120. memcpy(db->buf + oldlen, ptr, len);
  121. memcpy(db->buf + newlen, &zero, 1); /* null terminate */
  122. return nmemb;
  123. }
  124. static size_t upload_data_cb(void *ptr, size_t size, size_t nmemb,
  125. void *user_data)
  126. {
  127. struct upload_buffer *ub = user_data;
  128. unsigned int len = size * nmemb;
  129. if (len > ub->len)
  130. len = ub->len;
  131. if (len) {
  132. memcpy(ptr, ub->buf, len);
  133. ub->buf += len;
  134. ub->len -= len;
  135. }
  136. return len;
  137. }
  138. static size_t resp_hdr_cb(void *ptr, size_t size, size_t nmemb, void *user_data)
  139. {
  140. struct header_info *hi = user_data;
  141. size_t remlen, slen, ptrlen = size * nmemb;
  142. char *rem, *val = NULL, *key = NULL;
  143. void *tmp;
  144. val = calloc(1, ptrlen);
  145. key = calloc(1, ptrlen);
  146. if (!key || !val)
  147. goto out;
  148. tmp = memchr(ptr, ':', ptrlen);
  149. if (!tmp || (tmp == ptr)) /* skip empty keys / blanks */
  150. goto out;
  151. slen = tmp - ptr;
  152. if ((slen + 1) == ptrlen) /* skip key w/ no value */
  153. goto out;
  154. memcpy(key, ptr, slen); /* store & nul term key */
  155. key[slen] = 0;
  156. rem = ptr + slen + 1; /* trim value's leading whitespace */
  157. remlen = ptrlen - slen - 1;
  158. while ((remlen > 0) && (isCspace(*rem))) {
  159. remlen--;
  160. rem++;
  161. }
  162. memcpy(val, rem, remlen); /* store value, trim trailing ws */
  163. val[remlen] = 0;
  164. while ((*val) && (isCspace(val[strlen(val) - 1])))
  165. val[strlen(val) - 1] = 0;
  166. if (!*val) /* skip blank value */
  167. goto out;
  168. if (opt_protocol)
  169. applog(LOG_DEBUG, "HTTP hdr(%s): %s", key, val);
  170. if (!strcasecmp("X-Roll-Ntime", key)) {
  171. hi->hadrolltime = true;
  172. if (!strncasecmp("N", val, 1))
  173. applog(LOG_DEBUG, "X-Roll-Ntime: N found");
  174. else {
  175. hi->canroll = true;
  176. /* Check to see if expire= is supported and if not, set
  177. * the rolltime to the default scantime */
  178. if (strlen(val) > 7 && !strncasecmp("expire=", val, 7)) {
  179. sscanf(val + 7, "%d", &hi->rolltime);
  180. hi->hadexpire = true;
  181. } else
  182. hi->rolltime = opt_scantime;
  183. applog(LOG_DEBUG, "X-Roll-Ntime expiry set to %d", hi->rolltime);
  184. }
  185. }
  186. if (!strcasecmp("X-Long-Polling", key)) {
  187. hi->lp_path = val; /* steal memory reference */
  188. val = NULL;
  189. }
  190. if (!strcasecmp("X-Reject-Reason", key)) {
  191. hi->reason = val; /* steal memory reference */
  192. val = NULL;
  193. }
  194. if (!strcasecmp("X-Stratum", key)) {
  195. hi->stratum_url = val;
  196. val = NULL;
  197. }
  198. out:
  199. free(key);
  200. free(val);
  201. return ptrlen;
  202. }
  203. static int keep_sockalive(SOCKETTYPE fd)
  204. {
  205. const int tcp_one = 1;
  206. const int tcp_keepidle = 45;
  207. const int tcp_keepintvl = 30;
  208. int ret = 0;
  209. if (unlikely(setsockopt(fd, SOL_SOCKET, SO_KEEPALIVE, (const char *)&tcp_one, sizeof(tcp_one))))
  210. ret = 1;
  211. #ifndef WIN32
  212. int flags = fcntl(fd, F_GETFL, 0);
  213. fcntl(fd, F_SETFL, O_NONBLOCK | flags);
  214. #else
  215. u_long flags = 1;
  216. ioctlsocket(fd, FIONBIO, &flags);
  217. #endif
  218. if (!opt_delaynet)
  219. #ifndef __linux
  220. if (unlikely(setsockopt(fd, IPPROTO_TCP, TCP_NODELAY, (const void *)&tcp_one, sizeof(tcp_one))))
  221. #else /* __linux */
  222. if (unlikely(setsockopt(fd, SOL_TCP, TCP_NODELAY, (const void *)&tcp_one, sizeof(tcp_one))))
  223. #endif /* __linux */
  224. ret = 1;
  225. #ifdef __linux
  226. if (unlikely(setsockopt(fd, SOL_TCP, TCP_KEEPCNT, &tcp_one, sizeof(tcp_one))))
  227. ret = 1;
  228. if (unlikely(setsockopt(fd, SOL_TCP, TCP_KEEPIDLE, &tcp_keepidle, sizeof(tcp_keepidle))))
  229. ret = 1;
  230. if (unlikely(setsockopt(fd, SOL_TCP, TCP_KEEPINTVL, &tcp_keepintvl, sizeof(tcp_keepintvl))))
  231. ret = 1;
  232. #endif /* __linux */
  233. #ifdef __APPLE_CC__
  234. if (unlikely(setsockopt(fd, IPPROTO_TCP, TCP_KEEPALIVE, &tcp_keepintvl, sizeof(tcp_keepintvl))))
  235. ret = 1;
  236. #endif /* __APPLE_CC__ */
  237. #ifdef WIN32
  238. const int zero = 0;
  239. struct tcp_keepalive vals;
  240. vals.onoff = 1;
  241. vals.keepalivetime = tcp_keepidle * 1000;
  242. vals.keepaliveinterval = tcp_keepintvl * 1000;
  243. DWORD outputBytes;
  244. if (unlikely(WSAIoctl(fd, SIO_KEEPALIVE_VALS, &vals, sizeof(vals), NULL, 0, &outputBytes, NULL, NULL)))
  245. ret = 1;
  246. /* Windows happily submits indefinitely to the send buffer blissfully
  247. * unaware nothing is getting there without gracefully failing unless
  248. * we disable the send buffer */
  249. if (unlikely(setsockopt(fd, SOL_SOCKET, SO_SNDBUF, (const char *)&zero, sizeof(zero))))
  250. ret = 1;
  251. #endif /* WIN32 */
  252. return ret;
  253. }
  254. int json_rpc_call_sockopt_cb(void __maybe_unused *userdata, curl_socket_t fd,
  255. curlsocktype __maybe_unused purpose)
  256. {
  257. return keep_sockalive(fd);
  258. }
  259. static void last_nettime(struct timeval *last)
  260. {
  261. rd_lock(&netacc_lock);
  262. last->tv_sec = nettime.tv_sec;
  263. last->tv_usec = nettime.tv_usec;
  264. rd_unlock(&netacc_lock);
  265. }
  266. static void set_nettime(void)
  267. {
  268. wr_lock(&netacc_lock);
  269. cgtime(&nettime);
  270. wr_unlock(&netacc_lock);
  271. }
  272. static int curl_debug_cb(__maybe_unused CURL *handle, curl_infotype type,
  273. char *data, size_t size,
  274. void *userdata)
  275. {
  276. struct pool *pool = (struct pool *)userdata;
  277. switch(type) {
  278. case CURLINFO_HEADER_IN:
  279. case CURLINFO_DATA_IN:
  280. case CURLINFO_SSL_DATA_IN:
  281. pool->cgminer_pool_stats.bytes_received += size;
  282. total_bytes_rcvd += size;
  283. pool->cgminer_pool_stats.net_bytes_received += size;
  284. break;
  285. case CURLINFO_HEADER_OUT:
  286. case CURLINFO_DATA_OUT:
  287. case CURLINFO_SSL_DATA_OUT:
  288. pool->cgminer_pool_stats.bytes_sent += size;
  289. total_bytes_sent += size;
  290. pool->cgminer_pool_stats.net_bytes_sent += size;
  291. break;
  292. case CURLINFO_TEXT:
  293. {
  294. if (!opt_protocol)
  295. break;
  296. // data is not null-terminated, so we need to copy and terminate it for applog
  297. char datacp[size + 1];
  298. memcpy(datacp, data, size);
  299. while (likely(size) && unlikely(isCspace(datacp[size-1])))
  300. --size;
  301. if (unlikely(!size))
  302. break;
  303. datacp[size] = '\0';
  304. applog(LOG_DEBUG, "Pool %u: %s", pool->pool_no, datacp);
  305. break;
  306. }
  307. default:
  308. break;
  309. }
  310. return 0;
  311. }
  312. struct json_rpc_call_state {
  313. struct data_buffer all_data;
  314. struct header_info hi;
  315. void *priv;
  316. char curl_err_str[CURL_ERROR_SIZE];
  317. struct curl_slist *headers;
  318. struct upload_buffer upload_data;
  319. struct pool *pool;
  320. };
  321. void json_rpc_call_async(CURL *curl, const char *url,
  322. const char *userpass, const char *rpc_req,
  323. bool longpoll,
  324. struct pool *pool, bool share,
  325. void *priv)
  326. {
  327. struct json_rpc_call_state *state = malloc(sizeof(struct json_rpc_call_state));
  328. *state = (struct json_rpc_call_state){
  329. .priv = priv,
  330. .pool = pool,
  331. };
  332. long timeout = longpoll ? (60 * 60) : 60;
  333. char len_hdr[64], user_agent_hdr[128];
  334. struct curl_slist *headers = NULL;
  335. if (longpoll)
  336. state->all_data.idlemarker = &pool->lp_socket;
  337. /* it is assumed that 'curl' is freshly [re]initialized at this pt */
  338. curl_easy_setopt(curl, CURLOPT_PRIVATE, state);
  339. curl_easy_setopt(curl, CURLOPT_TIMEOUT, timeout);
  340. /* We use DEBUGFUNCTION to count bytes sent/received, and verbose is needed
  341. * to enable it */
  342. curl_easy_setopt(curl, CURLOPT_DEBUGFUNCTION, curl_debug_cb);
  343. curl_easy_setopt(curl, CURLOPT_DEBUGDATA, (void *)pool);
  344. curl_easy_setopt(curl, CURLOPT_VERBOSE, 1);
  345. curl_easy_setopt(curl, CURLOPT_NOSIGNAL, 1);
  346. curl_easy_setopt(curl, CURLOPT_URL, url);
  347. curl_easy_setopt(curl, CURLOPT_ENCODING, "");
  348. curl_easy_setopt(curl, CURLOPT_FAILONERROR, 1);
  349. /* Shares are staggered already and delays in submission can be costly
  350. * so do not delay them */
  351. if (!opt_delaynet || share)
  352. curl_easy_setopt(curl, CURLOPT_TCP_NODELAY, 1);
  353. curl_easy_setopt(curl, CURLOPT_WRITEFUNCTION, all_data_cb);
  354. curl_easy_setopt(curl, CURLOPT_WRITEDATA, &state->all_data);
  355. curl_easy_setopt(curl, CURLOPT_READFUNCTION, upload_data_cb);
  356. curl_easy_setopt(curl, CURLOPT_READDATA, &state->upload_data);
  357. curl_easy_setopt(curl, CURLOPT_ERRORBUFFER, &state->curl_err_str[0]);
  358. curl_easy_setopt(curl, CURLOPT_FOLLOWLOCATION, 1);
  359. curl_easy_setopt(curl, CURLOPT_HEADERFUNCTION, resp_hdr_cb);
  360. curl_easy_setopt(curl, CURLOPT_HEADERDATA, &state->hi);
  361. curl_easy_setopt(curl, CURLOPT_USE_SSL, CURLUSESSL_TRY);
  362. if (pool->rpc_proxy) {
  363. curl_easy_setopt(curl, CURLOPT_PROXY, pool->rpc_proxy);
  364. } else if (opt_socks_proxy) {
  365. curl_easy_setopt(curl, CURLOPT_PROXY, opt_socks_proxy);
  366. curl_easy_setopt(curl, CURLOPT_PROXYTYPE, CURLPROXY_SOCKS5);
  367. }
  368. if (userpass) {
  369. curl_easy_setopt(curl, CURLOPT_USERPWD, userpass);
  370. curl_easy_setopt(curl, CURLOPT_HTTPAUTH, CURLAUTH_BASIC);
  371. }
  372. if (longpoll)
  373. curl_easy_setopt(curl, CURLOPT_SOCKOPTFUNCTION, json_rpc_call_sockopt_cb);
  374. curl_easy_setopt(curl, CURLOPT_POST, 1);
  375. if (opt_protocol)
  376. applog(LOG_DEBUG, "JSON protocol request:\n%s", rpc_req);
  377. state->upload_data.buf = rpc_req;
  378. state->upload_data.len = strlen(rpc_req);
  379. sprintf(len_hdr, "Content-Length: %lu",
  380. (unsigned long) state->upload_data.len);
  381. sprintf(user_agent_hdr, "User-Agent: %s", PACKAGE"/"VERSION);
  382. headers = curl_slist_append(headers,
  383. "Content-type: application/json");
  384. headers = curl_slist_append(headers,
  385. "X-Mining-Extensions: longpoll midstate rollntime submitold");
  386. if (longpoll)
  387. headers = curl_slist_append(headers,
  388. "X-Minimum-Wait: 0");
  389. if (likely(global_hashrate)) {
  390. char ghashrate[255];
  391. sprintf(ghashrate, "X-Mining-Hashrate: %"PRIu64, (uint64_t)global_hashrate);
  392. headers = curl_slist_append(headers, ghashrate);
  393. }
  394. headers = curl_slist_append(headers, len_hdr);
  395. headers = curl_slist_append(headers, user_agent_hdr);
  396. headers = curl_slist_append(headers, "Expect:"); /* disable Expect hdr*/
  397. curl_easy_setopt(curl, CURLOPT_HTTPHEADER, headers);
  398. state->headers = headers;
  399. if (opt_delaynet) {
  400. /* Don't delay share submission, but still track the nettime */
  401. if (!share) {
  402. long long now_msecs, last_msecs;
  403. struct timeval now, last;
  404. cgtime(&now);
  405. last_nettime(&last);
  406. now_msecs = (long long)now.tv_sec * 1000;
  407. now_msecs += now.tv_usec / 1000;
  408. last_msecs = (long long)last.tv_sec * 1000;
  409. last_msecs += last.tv_usec / 1000;
  410. if (now_msecs > last_msecs && now_msecs - last_msecs < 250) {
  411. struct timespec rgtp;
  412. rgtp.tv_sec = 0;
  413. rgtp.tv_nsec = (250 - (now_msecs - last_msecs)) * 1000000;
  414. nanosleep(&rgtp, NULL);
  415. }
  416. }
  417. set_nettime();
  418. }
  419. }
  420. json_t *json_rpc_call_completed(CURL *curl, int rc, bool probe, int *rolltime, void *out_priv)
  421. {
  422. struct json_rpc_call_state *state;
  423. if (curl_easy_getinfo(curl, CURLINFO_PRIVATE, (void*)&state) != CURLE_OK) {
  424. applog(LOG_ERR, "Failed to get private curl data");
  425. if (out_priv)
  426. *(void**)out_priv = NULL;
  427. goto err_out;
  428. }
  429. if (out_priv)
  430. *(void**)out_priv = state->priv;
  431. json_t *val, *err_val, *res_val;
  432. json_error_t err;
  433. struct pool *pool = state->pool;
  434. bool probing = probe && !pool->probed;
  435. if (rc) {
  436. applog(LOG_INFO, "HTTP request failed: %s", state->curl_err_str);
  437. goto err_out;
  438. }
  439. if (!state->all_data.buf) {
  440. applog(LOG_DEBUG, "Empty data received in json_rpc_call.");
  441. goto err_out;
  442. }
  443. pool->cgminer_pool_stats.times_sent++;
  444. pool->cgminer_pool_stats.times_received++;
  445. if (probing) {
  446. pool->probed = true;
  447. /* If X-Long-Polling was found, activate long polling */
  448. if (state->hi.lp_path) {
  449. if (pool->hdr_path != NULL)
  450. free(pool->hdr_path);
  451. pool->hdr_path = state->hi.lp_path;
  452. } else
  453. pool->hdr_path = NULL;
  454. if (state->hi.stratum_url) {
  455. pool->stratum_url = state->hi.stratum_url;
  456. state->hi.stratum_url = NULL;
  457. }
  458. } else {
  459. if (state->hi.lp_path) {
  460. free(state->hi.lp_path);
  461. state->hi.lp_path = NULL;
  462. }
  463. if (state->hi.stratum_url) {
  464. free(state->hi.stratum_url);
  465. state->hi.stratum_url = NULL;
  466. }
  467. }
  468. if (pool->force_rollntime)
  469. {
  470. state->hi.canroll = true;
  471. state->hi.hadexpire = true;
  472. state->hi.rolltime = pool->force_rollntime;
  473. }
  474. if (rolltime)
  475. *rolltime = state->hi.rolltime;
  476. pool->cgminer_pool_stats.rolltime = state->hi.rolltime;
  477. pool->cgminer_pool_stats.hadrolltime = state->hi.hadrolltime;
  478. pool->cgminer_pool_stats.canroll = state->hi.canroll;
  479. pool->cgminer_pool_stats.hadexpire = state->hi.hadexpire;
  480. val = JSON_LOADS(state->all_data.buf, &err);
  481. if (!val) {
  482. applog(LOG_INFO, "JSON decode failed(%d): %s", err.line, err.text);
  483. if (opt_protocol)
  484. applog(LOG_DEBUG, "JSON protocol response:\n%s", (char*)state->all_data.buf);
  485. goto err_out;
  486. }
  487. if (opt_protocol) {
  488. char *s = json_dumps(val, JSON_INDENT(3));
  489. applog(LOG_DEBUG, "JSON protocol response:\n%s", s);
  490. free(s);
  491. }
  492. /* JSON-RPC valid response returns a non-null 'result',
  493. * and a null 'error'.
  494. */
  495. res_val = json_object_get(val, "result");
  496. err_val = json_object_get(val, "error");
  497. if (!res_val ||(err_val && !json_is_null(err_val))) {
  498. char *s;
  499. if (err_val)
  500. s = json_dumps(err_val, JSON_INDENT(3));
  501. else
  502. s = strdup("(unknown reason)");
  503. applog(LOG_INFO, "JSON-RPC call failed: %s", s);
  504. free(s);
  505. json_decref(val);
  506. goto err_out;
  507. }
  508. if (state->hi.reason) {
  509. json_object_set_new(val, "reject-reason", json_string(state->hi.reason));
  510. free(state->hi.reason);
  511. state->hi.reason = NULL;
  512. }
  513. successful_connect = true;
  514. databuf_free(&state->all_data);
  515. curl_slist_free_all(state->headers);
  516. curl_easy_reset(curl);
  517. free(state);
  518. return val;
  519. err_out:
  520. databuf_free(&state->all_data);
  521. curl_slist_free_all(state->headers);
  522. curl_easy_reset(curl);
  523. if (!successful_connect)
  524. applog(LOG_DEBUG, "Failed to connect in json_rpc_call");
  525. curl_easy_setopt(curl, CURLOPT_FRESH_CONNECT, 1);
  526. free(state);
  527. return NULL;
  528. }
  529. json_t *json_rpc_call(CURL *curl, const char *url,
  530. const char *userpass, const char *rpc_req,
  531. bool probe, bool longpoll, int *rolltime,
  532. struct pool *pool, bool share)
  533. {
  534. json_rpc_call_async(curl, url, userpass, rpc_req, longpoll, pool, share, NULL);
  535. int rc = curl_easy_perform(curl);
  536. return json_rpc_call_completed(curl, rc, probe, rolltime, NULL);
  537. }
  538. bool our_curl_supports_proxy_uris()
  539. {
  540. curl_version_info_data *data = curl_version_info(CURLVERSION_NOW);
  541. return data->age && data->version_num >= (( 7 <<16)|( 21 <<8)| 7); // 7.21.7
  542. }
  543. // NOTE: This assumes reference URI is a root
  544. char *absolute_uri(char *uri, const char *ref)
  545. {
  546. if (strstr(uri, "://"))
  547. return strdup(uri);
  548. char *copy_start, *abs;
  549. bool need_slash = false;
  550. copy_start = (uri[0] == '/') ? &uri[1] : uri;
  551. if (ref[strlen(ref) - 1] != '/')
  552. need_slash = true;
  553. abs = malloc(strlen(ref) + strlen(copy_start) + 2);
  554. if (!abs) {
  555. applog(LOG_ERR, "Malloc failure in absolute_uri");
  556. return NULL;
  557. }
  558. sprintf(abs, "%s%s%s", ref, need_slash ? "/" : "", copy_start);
  559. return abs;
  560. }
  561. static const char _hexchars[0x10] = "0123456789abcdef";
  562. void bin2hex(char *out, const void *in, size_t len)
  563. {
  564. const unsigned char *p = in;
  565. while (len--)
  566. {
  567. (out++)[0] = _hexchars[p[0] >> 4];
  568. (out++)[0] = _hexchars[p[0] & 0xf];
  569. ++p;
  570. }
  571. out[0] = '\0';
  572. }
  573. static inline
  574. int _hex2bin_char(const char c)
  575. {
  576. if (c >= '0' && c <= '9')
  577. return c - '0';
  578. if (c >= 'a' && c <= 'f')
  579. return (c - 'a') + 10;
  580. if (c >= 'A' && c <= 'F')
  581. return (c - 'A') + 10;
  582. return -1;
  583. }
  584. /* Does the reverse of bin2hex but does not allocate any ram */
  585. bool hex2bin(unsigned char *p, const char *hexstr, size_t len)
  586. {
  587. int n, o;
  588. while (len--)
  589. {
  590. n = _hex2bin_char((hexstr++)[0]);
  591. if (unlikely(n == -1))
  592. {
  593. badchar:
  594. if (!hexstr[-1])
  595. applog(LOG_ERR, "hex2bin: str truncated");
  596. else
  597. applog(LOG_ERR, "hex2bin: invalid character 0x%02x", (int)hexstr[-1]);
  598. return false;
  599. }
  600. o = _hex2bin_char((hexstr++)[0]);
  601. if (unlikely(o == -1))
  602. goto badchar;
  603. (p++)[0] = (n << 4) | o;
  604. }
  605. return likely(!hexstr[0]);
  606. }
  607. void ucs2tochar(char * const out, const uint16_t * const in, const size_t sz)
  608. {
  609. for (int i = 0; i < sz; ++i)
  610. out[i] = in[i];
  611. }
  612. char *ucs2tochar_dup(uint16_t * const in, const size_t sz)
  613. {
  614. char *out = malloc(sz + 1);
  615. ucs2tochar(out, in, sz);
  616. out[sz] = '\0';
  617. return out;
  618. }
  619. void hash_data(unsigned char *out_hash, const unsigned char *data)
  620. {
  621. unsigned char blkheader[80];
  622. // data is past the first SHA256 step (padding and interpreting as big endian on a little endian platform), so we need to flip each 32-bit chunk around to get the original input block header
  623. swap32yes(blkheader, data, 80 / 4);
  624. // double-SHA256 to get the block hash
  625. gen_hash(blkheader, out_hash, 80);
  626. }
  627. // Example output: 0000000000000000000000000000000000000000000000000000ffff00000000 (bdiff 1)
  628. void real_block_target(unsigned char *target, const unsigned char *data)
  629. {
  630. uint8_t targetshift;
  631. if (unlikely(data[72] < 3 || data[72] > 0x20))
  632. {
  633. // Invalid (out of bounds) target
  634. memset(target, 0xff, 32);
  635. return;
  636. }
  637. targetshift = data[72] - 3;
  638. memset(target, 0, targetshift);
  639. target[targetshift++] = data[75];
  640. target[targetshift++] = data[74];
  641. target[targetshift++] = data[73];
  642. memset(&target[targetshift], 0, 0x20 - targetshift);
  643. }
  644. bool hash_target_check(const unsigned char *hash, const unsigned char *target)
  645. {
  646. const uint32_t *h32 = (uint32_t*)&hash[0];
  647. const uint32_t *t32 = (uint32_t*)&target[0];
  648. for (int i = 7; i >= 0; --i) {
  649. uint32_t h32i = le32toh(h32[i]);
  650. uint32_t t32i = le32toh(t32[i]);
  651. if (h32i > t32i)
  652. return false;
  653. if (h32i < t32i)
  654. return true;
  655. }
  656. return true;
  657. }
  658. bool hash_target_check_v(const unsigned char *hash, const unsigned char *target)
  659. {
  660. bool rc;
  661. rc = hash_target_check(hash, target);
  662. if (opt_debug) {
  663. unsigned char hash_swap[32], target_swap[32];
  664. char hash_str[65];
  665. char target_str[65];
  666. for (int i = 0; i < 32; ++i) {
  667. hash_swap[i] = hash[31-i];
  668. target_swap[i] = target[31-i];
  669. }
  670. bin2hex(hash_str, hash_swap, 32);
  671. bin2hex(target_str, target_swap, 32);
  672. applog(LOG_DEBUG, " Proof: %s\nTarget: %s\nTrgVal? %s",
  673. hash_str,
  674. target_str,
  675. rc ? "YES (hash <= target)" :
  676. "no (false positive; hash > target)");
  677. }
  678. return rc;
  679. }
  680. // This operates on a native-endian SHA256 state
  681. // In other words, on little endian platforms, every 4 bytes are in reverse order
  682. bool fulltest(const unsigned char *hash, const unsigned char *target)
  683. {
  684. unsigned char hash2[32];
  685. swap32tobe(hash2, hash, 32 / 4);
  686. return hash_target_check_v(hash2, target);
  687. }
  688. struct thread_q *tq_new(void)
  689. {
  690. struct thread_q *tq;
  691. tq = calloc(1, sizeof(*tq));
  692. if (!tq)
  693. return NULL;
  694. pthread_mutex_init(&tq->mutex, NULL);
  695. pthread_cond_init(&tq->cond, NULL);
  696. return tq;
  697. }
  698. void tq_free(struct thread_q *tq)
  699. {
  700. struct tq_ent *ent, *iter;
  701. if (!tq)
  702. return;
  703. DL_FOREACH_SAFE(tq->q, ent, iter) {
  704. DL_DELETE(tq->q, ent);
  705. free(ent);
  706. }
  707. pthread_cond_destroy(&tq->cond);
  708. pthread_mutex_destroy(&tq->mutex);
  709. memset(tq, 0, sizeof(*tq)); /* poison */
  710. free(tq);
  711. }
  712. static void tq_freezethaw(struct thread_q *tq, bool frozen)
  713. {
  714. mutex_lock(&tq->mutex);
  715. tq->frozen = frozen;
  716. pthread_cond_signal(&tq->cond);
  717. mutex_unlock(&tq->mutex);
  718. }
  719. void tq_freeze(struct thread_q *tq)
  720. {
  721. tq_freezethaw(tq, true);
  722. }
  723. void tq_thaw(struct thread_q *tq)
  724. {
  725. tq_freezethaw(tq, false);
  726. }
  727. bool tq_push(struct thread_q *tq, void *data)
  728. {
  729. struct tq_ent *ent;
  730. bool rc = true;
  731. ent = calloc(1, sizeof(*ent));
  732. if (!ent)
  733. return false;
  734. ent->data = data;
  735. mutex_lock(&tq->mutex);
  736. if (!tq->frozen) {
  737. DL_APPEND(tq->q, ent);
  738. } else {
  739. free(ent);
  740. rc = false;
  741. }
  742. pthread_cond_signal(&tq->cond);
  743. mutex_unlock(&tq->mutex);
  744. return rc;
  745. }
  746. void *tq_pop(struct thread_q *tq, const struct timespec *abstime)
  747. {
  748. struct tq_ent *ent;
  749. void *rval = NULL;
  750. int rc;
  751. mutex_lock(&tq->mutex);
  752. if (tq->q)
  753. goto pop;
  754. if (abstime)
  755. rc = pthread_cond_timedwait(&tq->cond, &tq->mutex, abstime);
  756. else
  757. rc = pthread_cond_wait(&tq->cond, &tq->mutex);
  758. if (rc)
  759. goto out;
  760. if (!tq->q)
  761. goto out;
  762. pop:
  763. ent = tq->q;
  764. rval = ent->data;
  765. DL_DELETE(tq->q, ent);
  766. free(ent);
  767. out:
  768. mutex_unlock(&tq->mutex);
  769. return rval;
  770. }
  771. int thr_info_create(struct thr_info *thr, pthread_attr_t *attr, void *(*start) (void *), void *arg)
  772. {
  773. int rv = pthread_create(&thr->pth, attr, start, arg);
  774. if (likely(!rv))
  775. thr->has_pth = true;
  776. return rv;
  777. }
  778. void thr_info_freeze(struct thr_info *thr)
  779. {
  780. struct tq_ent *ent, *iter;
  781. struct thread_q *tq;
  782. if (!thr)
  783. return;
  784. tq = thr->q;
  785. if (!tq)
  786. return;
  787. mutex_lock(&tq->mutex);
  788. tq->frozen = true;
  789. DL_FOREACH_SAFE(tq->q, ent, iter) {
  790. DL_DELETE(tq->q, ent);
  791. free(ent);
  792. }
  793. mutex_unlock(&tq->mutex);
  794. }
  795. void thr_info_cancel(struct thr_info *thr)
  796. {
  797. if (!thr)
  798. return;
  799. if (thr->has_pth) {
  800. pthread_cancel(thr->pth);
  801. thr->has_pth = false;
  802. }
  803. }
  804. #ifndef HAVE_PTHREAD_CANCEL
  805. // Bionic (Android) is intentionally missing pthread_cancel, so it is implemented using pthread_kill
  806. enum pthread_cancel_workaround_mode {
  807. PCWM_DEFAULT = 0,
  808. PCWM_TERMINATE = 1,
  809. PCWM_ASYNC = 2,
  810. PCWM_DISABLED = 4,
  811. PCWM_CANCELLED = 8,
  812. };
  813. static pthread_key_t key_pcwm;
  814. struct sigaction pcwm_orig_term_handler;
  815. static
  816. void do_pthread_cancel_exit(int flags)
  817. {
  818. if (!(flags & PCWM_ASYNC))
  819. // NOTE: Logging disables cancel while mutex held, so this is safe
  820. applog(LOG_WARNING, "pthread_cancel workaround: Cannot defer cancellation, terminating thread NOW");
  821. pthread_exit(PTHREAD_CANCELED);
  822. }
  823. static
  824. void sighandler_pthread_cancel(int sig)
  825. {
  826. int flags = (int)pthread_getspecific(key_pcwm);
  827. if (flags & PCWM_TERMINATE) // Main thread
  828. {
  829. // Restore original handler and call it
  830. if (sigaction(sig, &pcwm_orig_term_handler, NULL))
  831. quit(1, "pthread_cancel workaround: Failed to restore original handler");
  832. raise(SIGTERM);
  833. quit(1, "pthread_cancel workaround: Original handler returned");
  834. }
  835. if (flags & PCWM_CANCELLED) // Already pending cancel
  836. return;
  837. if (flags & PCWM_DISABLED)
  838. {
  839. flags |= PCWM_CANCELLED;
  840. if (pthread_setspecific(key_pcwm, (void*)flags))
  841. quit(1, "pthread_cancel workaround: pthread_setspecific failed (setting PCWM_CANCELLED)");
  842. return;
  843. }
  844. do_pthread_cancel_exit(flags);
  845. }
  846. void pthread_testcancel(void)
  847. {
  848. int flags = (int)pthread_getspecific(key_pcwm);
  849. if (flags & PCWM_CANCELLED && !(flags & PCWM_DISABLED))
  850. do_pthread_cancel_exit(flags);
  851. }
  852. int pthread_setcancelstate(int state, int *oldstate)
  853. {
  854. int flags = (int)pthread_getspecific(key_pcwm);
  855. if (oldstate)
  856. *oldstate = (flags & PCWM_DISABLED) ? PTHREAD_CANCEL_DISABLE : PTHREAD_CANCEL_ENABLE;
  857. if (state == PTHREAD_CANCEL_DISABLE)
  858. flags |= PCWM_DISABLED;
  859. else
  860. {
  861. if (flags & PCWM_CANCELLED)
  862. do_pthread_cancel_exit(flags);
  863. flags &= ~PCWM_DISABLED;
  864. }
  865. if (pthread_setspecific(key_pcwm, (void*)flags))
  866. return -1;
  867. return 0;
  868. }
  869. int pthread_setcanceltype(int type, int *oldtype)
  870. {
  871. int flags = (int)pthread_getspecific(key_pcwm);
  872. if (oldtype)
  873. *oldtype = (flags & PCWM_ASYNC) ? PTHREAD_CANCEL_ASYNCHRONOUS : PTHREAD_CANCEL_DEFERRED;
  874. if (type == PTHREAD_CANCEL_ASYNCHRONOUS)
  875. flags |= PCWM_ASYNC;
  876. else
  877. flags &= ~PCWM_ASYNC;
  878. if (pthread_setspecific(key_pcwm, (void*)flags))
  879. return -1;
  880. return 0;
  881. }
  882. void setup_pthread_cancel_workaround()
  883. {
  884. if (pthread_key_create(&key_pcwm, NULL))
  885. quit(1, "pthread_cancel workaround: pthread_key_create failed");
  886. if (pthread_setspecific(key_pcwm, (void*)PCWM_TERMINATE))
  887. quit(1, "pthread_cancel workaround: pthread_setspecific failed");
  888. struct sigaction new_sigact = {
  889. .sa_handler = sighandler_pthread_cancel,
  890. };
  891. if (sigaction(SIGTERM, &new_sigact, &pcwm_orig_term_handler))
  892. quit(1, "pthread_cancel workaround: Failed to install SIGTERM handler");
  893. }
  894. #endif
  895. static void _now_gettimeofday(struct timeval *);
  896. static void _cgsleep_us_r_nanosleep(cgtimer_t *, int64_t);
  897. #ifdef HAVE_POOR_GETTIMEOFDAY
  898. static struct timeval tv_timeofday_offset;
  899. static struct timeval _tv_timeofday_lastchecked;
  900. static pthread_mutex_t _tv_timeofday_mutex = PTHREAD_MUTEX_INITIALIZER;
  901. static
  902. void bfg_calibrate_timeofday(struct timeval *expected, char *buf)
  903. {
  904. struct timeval actual, delta;
  905. timeradd(expected, &tv_timeofday_offset, expected);
  906. _now_gettimeofday(&actual);
  907. if (expected->tv_sec >= actual.tv_sec - 1 && expected->tv_sec <= actual.tv_sec + 1)
  908. // Within reason - no change necessary
  909. return;
  910. timersub(&actual, expected, &delta);
  911. timeradd(&tv_timeofday_offset, &delta, &tv_timeofday_offset);
  912. sprintf(buf, "Recalibrating timeofday offset (delta %ld.%06lds)", (long)delta.tv_sec, (long)delta.tv_usec);
  913. *expected = actual;
  914. }
  915. void bfg_gettimeofday(struct timeval *out)
  916. {
  917. char buf[64] = "";
  918. timer_set_now(out);
  919. mutex_lock(&_tv_timeofday_mutex);
  920. if (_tv_timeofday_lastchecked.tv_sec < out->tv_sec - 21)
  921. bfg_calibrate_timeofday(out, buf);
  922. else
  923. timeradd(out, &tv_timeofday_offset, out);
  924. mutex_unlock(&_tv_timeofday_mutex);
  925. if (unlikely(buf[0]))
  926. applog(LOG_WARNING, "%s", buf);
  927. }
  928. #endif
  929. #ifdef WIN32
  930. static LARGE_INTEGER _perffreq;
  931. static
  932. void _now_queryperformancecounter(struct timeval *tv)
  933. {
  934. LARGE_INTEGER now;
  935. if (unlikely(!QueryPerformanceCounter(&now)))
  936. quit(1, "QueryPerformanceCounter failed");
  937. *tv = (struct timeval){
  938. .tv_sec = now.QuadPart / _perffreq.QuadPart,
  939. .tv_usec = (now.QuadPart % _perffreq.QuadPart) * 1000000 / _perffreq.QuadPart,
  940. };
  941. }
  942. #endif
  943. static void bfg_init_time();
  944. static
  945. void _now_is_not_set(__maybe_unused struct timeval *tv)
  946. {
  947. bfg_init_time();
  948. timer_set_now(tv);
  949. }
  950. void (*timer_set_now)(struct timeval *tv) = _now_is_not_set;
  951. void (*cgsleep_us_r)(cgtimer_t *, int64_t) = _cgsleep_us_r_nanosleep;
  952. #ifdef HAVE_CLOCK_GETTIME_MONOTONIC
  953. static clockid_t bfg_timer_clk;
  954. static
  955. void _now_clock_gettime(struct timeval *tv)
  956. {
  957. struct timespec ts;
  958. if (unlikely(clock_gettime(bfg_timer_clk, &ts)))
  959. quit(1, "clock_gettime failed");
  960. *tv = (struct timeval){
  961. .tv_sec = ts.tv_sec,
  962. .tv_usec = ts.tv_nsec / 1000,
  963. };
  964. }
  965. #ifdef HAVE_CLOCK_NANOSLEEP
  966. static
  967. void _cgsleep_us_r_monotonic(cgtimer_t *tv_start, int64_t us)
  968. {
  969. struct timeval tv_end[1];
  970. struct timespec ts_end[1];
  971. int ret;
  972. timer_set_delay(tv_end, tv_start, us);
  973. timeval_to_spec(ts_end, tv_end);
  974. do {
  975. ret = clock_nanosleep(CLOCK_MONOTONIC, TIMER_ABSTIME, ts_end, NULL);
  976. } while (ret == EINTR);
  977. }
  978. #endif
  979. static
  980. bool _bfg_try_clock_gettime(clockid_t clk)
  981. {
  982. struct timespec ts;
  983. if (clock_gettime(clk, &ts))
  984. return false;
  985. bfg_timer_clk = clk;
  986. timer_set_now = _now_clock_gettime;
  987. return true;
  988. }
  989. #endif
  990. static
  991. void bfg_init_time()
  992. {
  993. if (timer_set_now != _now_is_not_set)
  994. return;
  995. #ifdef HAVE_CLOCK_GETTIME_MONOTONIC
  996. #ifdef HAVE_CLOCK_GETTIME_MONOTONIC_RAW
  997. if (_bfg_try_clock_gettime(CLOCK_MONOTONIC_RAW))
  998. applog(LOG_DEBUG, "Timers: Using clock_gettime(CLOCK_MONOTONIC_RAW)");
  999. else
  1000. #endif
  1001. if (_bfg_try_clock_gettime(CLOCK_MONOTONIC))
  1002. {
  1003. applog(LOG_DEBUG, "Timers: Using clock_gettime(CLOCK_MONOTONIC)");
  1004. #ifdef HAVE_CLOCK_NANOSLEEP
  1005. cgsleep_us_r = _cgsleep_us_r_monotonic;
  1006. #endif
  1007. }
  1008. else
  1009. #endif
  1010. #ifdef WIN32
  1011. if (QueryPerformanceFrequency(&_perffreq) && _perffreq.QuadPart)
  1012. {
  1013. timer_set_now = _now_queryperformancecounter;
  1014. applog(LOG_DEBUG, "Timers: Using QueryPerformanceCounter");
  1015. }
  1016. else
  1017. #endif
  1018. {
  1019. timer_set_now = _now_gettimeofday;
  1020. applog(LOG_DEBUG, "Timers: Using gettimeofday");
  1021. }
  1022. #ifdef HAVE_POOR_GETTIMEOFDAY
  1023. char buf[64] = "";
  1024. struct timeval tv;
  1025. timer_set_now(&tv);
  1026. bfg_calibrate_timeofday(&tv, buf);
  1027. applog(LOG_DEBUG, "%s", buf);
  1028. #endif
  1029. }
  1030. void subtime(struct timeval *a, struct timeval *b)
  1031. {
  1032. timersub(a, b, b);
  1033. }
  1034. void addtime(struct timeval *a, struct timeval *b)
  1035. {
  1036. timeradd(a, b, b);
  1037. }
  1038. bool time_more(struct timeval *a, struct timeval *b)
  1039. {
  1040. return timercmp(a, b, >);
  1041. }
  1042. bool time_less(struct timeval *a, struct timeval *b)
  1043. {
  1044. return timercmp(a, b, <);
  1045. }
  1046. void copy_time(struct timeval *dest, const struct timeval *src)
  1047. {
  1048. memcpy(dest, src, sizeof(struct timeval));
  1049. }
  1050. void timespec_to_val(struct timeval *val, const struct timespec *spec)
  1051. {
  1052. val->tv_sec = spec->tv_sec;
  1053. val->tv_usec = spec->tv_nsec / 1000;
  1054. }
  1055. void timeval_to_spec(struct timespec *spec, const struct timeval *val)
  1056. {
  1057. spec->tv_sec = val->tv_sec;
  1058. spec->tv_nsec = val->tv_usec * 1000;
  1059. }
  1060. void us_to_timeval(struct timeval *val, int64_t us)
  1061. {
  1062. lldiv_t tvdiv = lldiv(us, 1000000);
  1063. val->tv_sec = tvdiv.quot;
  1064. val->tv_usec = tvdiv.rem;
  1065. }
  1066. void us_to_timespec(struct timespec *spec, int64_t us)
  1067. {
  1068. lldiv_t tvdiv = lldiv(us, 1000000);
  1069. spec->tv_sec = tvdiv.quot;
  1070. spec->tv_nsec = tvdiv.rem * 1000;
  1071. }
  1072. void ms_to_timespec(struct timespec *spec, int64_t ms)
  1073. {
  1074. lldiv_t tvdiv = lldiv(ms, 1000);
  1075. spec->tv_sec = tvdiv.quot;
  1076. spec->tv_nsec = tvdiv.rem * 1000000;
  1077. }
  1078. void timeraddspec(struct timespec *a, const struct timespec *b)
  1079. {
  1080. a->tv_sec += b->tv_sec;
  1081. a->tv_nsec += b->tv_nsec;
  1082. if (a->tv_nsec >= 1000000000) {
  1083. a->tv_nsec -= 1000000000;
  1084. a->tv_sec++;
  1085. }
  1086. }
  1087. #ifndef WIN32
  1088. static
  1089. void _now_gettimeofday(struct timeval *tv)
  1090. {
  1091. gettimeofday(tv, NULL);
  1092. }
  1093. #else
  1094. /* Windows start time is since 1601 lol so convert it to unix epoch 1970. */
  1095. #define EPOCHFILETIME (116444736000000000LL)
  1096. /* Return the system time as an lldiv_t in decimicroseconds. */
  1097. static void decius_time(lldiv_t *lidiv)
  1098. {
  1099. FILETIME ft;
  1100. LARGE_INTEGER li;
  1101. GetSystemTimeAsFileTime(&ft);
  1102. li.LowPart = ft.dwLowDateTime;
  1103. li.HighPart = ft.dwHighDateTime;
  1104. li.QuadPart -= EPOCHFILETIME;
  1105. /* SystemTime is in decimicroseconds so divide by an unusual number */
  1106. *lidiv = lldiv(li.QuadPart, 10000000);
  1107. }
  1108. void _now_gettimeofday(struct timeval *tv)
  1109. {
  1110. lldiv_t lidiv;
  1111. decius_time(&lidiv);
  1112. tv->tv_sec = lidiv.quot;
  1113. tv->tv_usec = lidiv.rem / 10;
  1114. }
  1115. #endif
  1116. void cgsleep_ms_r(cgtimer_t *tv_start, int ms)
  1117. {
  1118. cgsleep_us_r(tv_start, ((int64_t)ms) * 1000);
  1119. }
  1120. static
  1121. void _cgsleep_us_r_nanosleep(cgtimer_t *tv_start, int64_t us)
  1122. {
  1123. struct timeval tv_timer[1], tv[1];
  1124. struct timespec ts[1];
  1125. timer_set_delay(tv_timer, tv_start, us);
  1126. while (true)
  1127. {
  1128. timer_set_now(tv);
  1129. if (!timercmp(tv_timer, tv, >))
  1130. return;
  1131. timersub(tv_timer, tv, tv);
  1132. timeval_to_spec(ts, tv);
  1133. nanosleep(ts, NULL);
  1134. }
  1135. }
  1136. void cgsleep_ms(int ms)
  1137. {
  1138. cgtimer_t ts_start;
  1139. cgsleep_prepare_r(&ts_start);
  1140. cgsleep_ms_r(&ts_start, ms);
  1141. }
  1142. void cgsleep_us(int64_t us)
  1143. {
  1144. cgtimer_t ts_start;
  1145. cgsleep_prepare_r(&ts_start);
  1146. cgsleep_us_r(&ts_start, us);
  1147. }
  1148. /* Returns the microseconds difference between end and start times as a double */
  1149. double us_tdiff(struct timeval *end, struct timeval *start)
  1150. {
  1151. return end->tv_sec * 1000000 + end->tv_usec - start->tv_sec * 1000000 - start->tv_usec;
  1152. }
  1153. /* Returns the seconds difference between end and start times as a double */
  1154. double tdiff(struct timeval *end, struct timeval *start)
  1155. {
  1156. return end->tv_sec - start->tv_sec + (end->tv_usec - start->tv_usec) / 1000000.0;
  1157. }
  1158. bool extract_sockaddr(char *url, char **sockaddr_url, char **sockaddr_port)
  1159. {
  1160. char *url_begin, *url_end, *ipv6_begin, *ipv6_end, *port_start = NULL;
  1161. char url_address[256], port[6];
  1162. int url_len, port_len = 0;
  1163. url_begin = strstr(url, "//");
  1164. if (!url_begin)
  1165. url_begin = url;
  1166. else
  1167. url_begin += 2;
  1168. /* Look for numeric ipv6 entries */
  1169. ipv6_begin = strstr(url_begin, "[");
  1170. ipv6_end = strstr(url_begin, "]");
  1171. if (ipv6_begin && ipv6_end && ipv6_end > ipv6_begin)
  1172. url_end = strstr(ipv6_end, ":");
  1173. else
  1174. url_end = strstr(url_begin, ":");
  1175. if (url_end) {
  1176. url_len = url_end - url_begin;
  1177. port_len = strlen(url_begin) - url_len - 1;
  1178. if (port_len < 1)
  1179. return false;
  1180. port_start = url_end + 1;
  1181. } else
  1182. url_len = strlen(url_begin);
  1183. if (url_len < 1)
  1184. return false;
  1185. sprintf(url_address, "%.*s", url_len, url_begin);
  1186. if (port_len) {
  1187. char *slash;
  1188. snprintf(port, 6, "%.*s", port_len, port_start);
  1189. slash = strchr(port, '/');
  1190. if (slash)
  1191. *slash = '\0';
  1192. } else
  1193. strcpy(port, "80");
  1194. free(*sockaddr_port);
  1195. *sockaddr_port = strdup(port);
  1196. free(*sockaddr_url);
  1197. *sockaddr_url = strdup(url_address);
  1198. return true;
  1199. }
  1200. enum send_ret {
  1201. SEND_OK,
  1202. SEND_SELECTFAIL,
  1203. SEND_SENDFAIL,
  1204. SEND_INACTIVE
  1205. };
  1206. /* Send a single command across a socket, appending \n to it. This should all
  1207. * be done under stratum lock except when first establishing the socket */
  1208. static enum send_ret __stratum_send(struct pool *pool, char *s, ssize_t len)
  1209. {
  1210. SOCKETTYPE sock = pool->sock;
  1211. ssize_t ssent = 0;
  1212. strcat(s, "\n");
  1213. len++;
  1214. while (len > 0 ) {
  1215. struct timeval timeout = {1, 0};
  1216. ssize_t sent;
  1217. fd_set wd;
  1218. FD_ZERO(&wd);
  1219. FD_SET(sock, &wd);
  1220. if (select(sock + 1, NULL, &wd, NULL, &timeout) < 1)
  1221. return SEND_SELECTFAIL;
  1222. #ifdef __APPLE__
  1223. sent = send(pool->sock, s + ssent, len, SO_NOSIGPIPE);
  1224. #elif WIN32
  1225. sent = send(pool->sock, s + ssent, len, 0);
  1226. #else
  1227. sent = send(pool->sock, s + ssent, len, MSG_NOSIGNAL);
  1228. #endif
  1229. if (sent < 0) {
  1230. if (!sock_blocks())
  1231. return SEND_SENDFAIL;
  1232. sent = 0;
  1233. }
  1234. ssent += sent;
  1235. len -= sent;
  1236. }
  1237. pool->cgminer_pool_stats.times_sent++;
  1238. pool->cgminer_pool_stats.bytes_sent += ssent;
  1239. total_bytes_sent += ssent;
  1240. pool->cgminer_pool_stats.net_bytes_sent += ssent;
  1241. return SEND_OK;
  1242. }
  1243. bool _stratum_send(struct pool *pool, char *s, ssize_t len, bool force)
  1244. {
  1245. enum send_ret ret = SEND_INACTIVE;
  1246. if (opt_protocol)
  1247. applog(LOG_DEBUG, "Pool %u: SEND: %s", pool->pool_no, s);
  1248. mutex_lock(&pool->stratum_lock);
  1249. if (pool->stratum_active || force)
  1250. ret = __stratum_send(pool, s, len);
  1251. mutex_unlock(&pool->stratum_lock);
  1252. /* This is to avoid doing applog under stratum_lock */
  1253. switch (ret) {
  1254. default:
  1255. case SEND_OK:
  1256. break;
  1257. case SEND_SELECTFAIL:
  1258. applog(LOG_DEBUG, "Write select failed on pool %d sock", pool->pool_no);
  1259. suspend_stratum(pool);
  1260. break;
  1261. case SEND_SENDFAIL:
  1262. applog(LOG_DEBUG, "Failed to send in stratum_send");
  1263. suspend_stratum(pool);
  1264. break;
  1265. case SEND_INACTIVE:
  1266. applog(LOG_DEBUG, "Stratum send failed due to no pool stratum_active");
  1267. break;
  1268. }
  1269. return (ret == SEND_OK);
  1270. }
  1271. static bool socket_full(struct pool *pool, int wait)
  1272. {
  1273. SOCKETTYPE sock = pool->sock;
  1274. struct timeval timeout;
  1275. fd_set rd;
  1276. if (sock == INVSOCK)
  1277. return true;
  1278. if (unlikely(wait < 0))
  1279. wait = 0;
  1280. FD_ZERO(&rd);
  1281. FD_SET(sock, &rd);
  1282. timeout.tv_usec = 0;
  1283. timeout.tv_sec = wait;
  1284. if (select(sock + 1, &rd, NULL, NULL, &timeout) > 0)
  1285. return true;
  1286. return false;
  1287. }
  1288. /* Check to see if Santa's been good to you */
  1289. bool sock_full(struct pool *pool)
  1290. {
  1291. if (strlen(pool->sockbuf))
  1292. return true;
  1293. return (socket_full(pool, 0));
  1294. }
  1295. static void clear_sockbuf(struct pool *pool)
  1296. {
  1297. strcpy(pool->sockbuf, "");
  1298. }
  1299. static void clear_sock(struct pool *pool)
  1300. {
  1301. ssize_t n;
  1302. mutex_lock(&pool->stratum_lock);
  1303. do {
  1304. if (pool->sock)
  1305. n = recv(pool->sock, pool->sockbuf, RECVSIZE, 0);
  1306. else
  1307. n = 0;
  1308. } while (n > 0);
  1309. mutex_unlock(&pool->stratum_lock);
  1310. clear_sockbuf(pool);
  1311. }
  1312. /* Make sure the pool sockbuf is large enough to cope with any coinbase size
  1313. * by reallocing it to a large enough size rounded up to a multiple of RBUFSIZE
  1314. * and zeroing the new memory */
  1315. static void recalloc_sock(struct pool *pool, size_t len)
  1316. {
  1317. size_t old, new;
  1318. old = strlen(pool->sockbuf);
  1319. new = old + len + 1;
  1320. if (new < pool->sockbuf_size)
  1321. return;
  1322. new = new + (RBUFSIZE - (new % RBUFSIZE));
  1323. // Avoid potentially recursive locking
  1324. // applog(LOG_DEBUG, "Recallocing pool sockbuf to %lu", (unsigned long)new);
  1325. pool->sockbuf = realloc(pool->sockbuf, new);
  1326. if (!pool->sockbuf)
  1327. quithere(1, "Failed to realloc pool sockbuf");
  1328. memset(pool->sockbuf + old, 0, new - old);
  1329. pool->sockbuf_size = new;
  1330. }
  1331. /* Peeks at a socket to find the first end of line and then reads just that
  1332. * from the socket and returns that as a malloced char */
  1333. char *recv_line(struct pool *pool)
  1334. {
  1335. char *tok, *sret = NULL;
  1336. ssize_t len, buflen;
  1337. int waited = 0;
  1338. if (!strstr(pool->sockbuf, "\n")) {
  1339. struct timeval rstart, now;
  1340. cgtime(&rstart);
  1341. if (!socket_full(pool, DEFAULT_SOCKWAIT)) {
  1342. applog(LOG_DEBUG, "Timed out waiting for data on socket_full");
  1343. goto out;
  1344. }
  1345. do {
  1346. char s[RBUFSIZE];
  1347. size_t slen;
  1348. ssize_t n;
  1349. memset(s, 0, RBUFSIZE);
  1350. n = recv(pool->sock, s, RECVSIZE, 0);
  1351. if (!n) {
  1352. applog(LOG_DEBUG, "Socket closed waiting in recv_line");
  1353. suspend_stratum(pool);
  1354. break;
  1355. }
  1356. cgtime(&now);
  1357. waited = tdiff(&now, &rstart);
  1358. if (n < 0) {
  1359. //Save errno from being overweitten bei socket_ commands
  1360. int socket_recv_errno;
  1361. socket_recv_errno = SOCKERR;
  1362. if (!sock_blocks() || !socket_full(pool, DEFAULT_SOCKWAIT - waited)) {
  1363. applog(LOG_DEBUG, "Failed to recv sock in recv_line: %s", bfg_strerror(socket_recv_errno, BST_SOCKET));
  1364. suspend_stratum(pool);
  1365. break;
  1366. }
  1367. } else {
  1368. slen = strlen(s);
  1369. recalloc_sock(pool, slen);
  1370. strcat(pool->sockbuf, s);
  1371. }
  1372. } while (waited < DEFAULT_SOCKWAIT && !strstr(pool->sockbuf, "\n"));
  1373. }
  1374. buflen = strlen(pool->sockbuf);
  1375. tok = strtok(pool->sockbuf, "\n");
  1376. if (!tok) {
  1377. applog(LOG_DEBUG, "Failed to parse a \\n terminated string in recv_line");
  1378. goto out;
  1379. }
  1380. sret = strdup(tok);
  1381. len = strlen(sret);
  1382. /* Copy what's left in the buffer after the \n, including the
  1383. * terminating \0 */
  1384. if (buflen > len + 1)
  1385. memmove(pool->sockbuf, pool->sockbuf + len + 1, buflen - len + 1);
  1386. else
  1387. strcpy(pool->sockbuf, "");
  1388. pool->cgminer_pool_stats.times_received++;
  1389. pool->cgminer_pool_stats.bytes_received += len;
  1390. total_bytes_rcvd += len;
  1391. pool->cgminer_pool_stats.net_bytes_received += len;
  1392. out:
  1393. if (!sret)
  1394. clear_sock(pool);
  1395. else if (opt_protocol)
  1396. applog(LOG_DEBUG, "Pool %u: RECV: %s", pool->pool_no, sret);
  1397. return sret;
  1398. }
  1399. /* Dumps any JSON value as a string. Just like jansson 2.1's JSON_ENCODE_ANY
  1400. * flag, but this is compatible with 2.0. */
  1401. char *json_dumps_ANY(json_t *json, size_t flags)
  1402. {
  1403. switch (json_typeof(json))
  1404. {
  1405. case JSON_ARRAY:
  1406. case JSON_OBJECT:
  1407. return json_dumps(json, flags);
  1408. default:
  1409. break;
  1410. }
  1411. char *rv;
  1412. #ifdef JSON_ENCODE_ANY
  1413. rv = json_dumps(json, JSON_ENCODE_ANY | flags);
  1414. if (rv)
  1415. return rv;
  1416. #endif
  1417. json_t *tmp = json_array();
  1418. char *s;
  1419. int i;
  1420. size_t len;
  1421. if (!tmp)
  1422. quithere(1, "Failed to allocate json array");
  1423. if (json_array_append(tmp, json))
  1424. quithere(1, "Failed to append temporary array");
  1425. s = json_dumps(tmp, flags);
  1426. if (!s)
  1427. return NULL;
  1428. for (i = 0; s[i] != '['; ++i)
  1429. if (unlikely(!(s[i] && isCspace(s[i]))))
  1430. quithere(1, "Failed to find opening bracket in array dump");
  1431. len = strlen(&s[++i]) - 1;
  1432. if (unlikely(s[i+len] != ']'))
  1433. quithere(1, "Failed to find closing bracket in array dump");
  1434. rv = malloc(len + 1);
  1435. memcpy(rv, &s[i], len);
  1436. rv[len] = '\0';
  1437. free(s);
  1438. json_decref(tmp);
  1439. return rv;
  1440. }
  1441. /* Extracts a string value from a json array with error checking. To be used
  1442. * when the value of the string returned is only examined and not to be stored.
  1443. * See json_array_string below */
  1444. const char *__json_array_string(json_t *val, unsigned int entry)
  1445. {
  1446. json_t *arr_entry;
  1447. if (json_is_null(val))
  1448. return NULL;
  1449. if (!json_is_array(val))
  1450. return NULL;
  1451. if (entry > json_array_size(val))
  1452. return NULL;
  1453. arr_entry = json_array_get(val, entry);
  1454. if (!json_is_string(arr_entry))
  1455. return NULL;
  1456. return json_string_value(arr_entry);
  1457. }
  1458. /* Creates a freshly malloced dup of __json_array_string */
  1459. static char *json_array_string(json_t *val, unsigned int entry)
  1460. {
  1461. const char *buf = __json_array_string(val, entry);
  1462. if (buf)
  1463. return strdup(buf);
  1464. return NULL;
  1465. }
  1466. void stratum_probe_transparency(struct pool *pool)
  1467. {
  1468. // Request transaction data to discourage pools from doing anything shady
  1469. char s[1024];
  1470. int sLen;
  1471. sLen = sprintf(s, "{\"params\": [\"%s\"], \"id\": \"txlist%s\", \"method\": \"mining.get_transactions\"}",
  1472. pool->swork.job_id,
  1473. pool->swork.job_id);
  1474. stratum_send(pool, s, sLen);
  1475. if ((!pool->swork.opaque) && !timer_isset(&pool->swork.tv_transparency))
  1476. cgtime(&pool->swork.tv_transparency);
  1477. pool->swork.transparency_probed = true;
  1478. }
  1479. static bool parse_notify(struct pool *pool, json_t *val)
  1480. {
  1481. const char *prev_hash, *coinbase1, *coinbase2, *bbversion, *nbit, *ntime;
  1482. char *job_id;
  1483. bool clean, ret = false;
  1484. int merkles, i;
  1485. size_t cb1_len, cb2_len;
  1486. json_t *arr;
  1487. arr = json_array_get(val, 4);
  1488. if (!arr || !json_is_array(arr))
  1489. goto out;
  1490. merkles = json_array_size(arr);
  1491. for (i = 0; i < merkles; i++)
  1492. if (!json_is_string(json_array_get(arr, i)))
  1493. goto out;
  1494. prev_hash = __json_array_string(val, 1);
  1495. coinbase1 = __json_array_string(val, 2);
  1496. coinbase2 = __json_array_string(val, 3);
  1497. bbversion = __json_array_string(val, 5);
  1498. nbit = __json_array_string(val, 6);
  1499. ntime = __json_array_string(val, 7);
  1500. clean = json_is_true(json_array_get(val, 8));
  1501. if (!prev_hash || !coinbase1 || !coinbase2 || !bbversion || !nbit || !ntime)
  1502. goto out;
  1503. job_id = json_array_string(val, 0);
  1504. if (!job_id)
  1505. goto out;
  1506. cg_wlock(&pool->data_lock);
  1507. cgtime(&pool->swork.tv_received);
  1508. free(pool->swork.job_id);
  1509. pool->swork.job_id = job_id;
  1510. pool->submit_old = !clean;
  1511. pool->swork.clean = true;
  1512. hex2bin(&pool->swork.header1[0], bbversion, 4);
  1513. hex2bin(&pool->swork.header1[4], prev_hash, 32);
  1514. hex2bin((void*)&pool->swork.ntime, ntime, 4);
  1515. pool->swork.ntime = be32toh(pool->swork.ntime);
  1516. hex2bin(&pool->swork.diffbits[0], nbit, 4);
  1517. cb1_len = strlen(coinbase1) / 2;
  1518. pool->swork.nonce2_offset = cb1_len + pool->n1_len;
  1519. cb2_len = strlen(coinbase2) / 2;
  1520. bytes_resize(&pool->swork.coinbase, pool->swork.nonce2_offset + pool->n2size + cb2_len);
  1521. uint8_t *coinbase = bytes_buf(&pool->swork.coinbase);
  1522. hex2bin(coinbase, coinbase1, cb1_len);
  1523. hex2bin(&coinbase[cb1_len], pool->nonce1, pool->n1_len);
  1524. // NOTE: gap for nonce2, filled at work generation time
  1525. hex2bin(&coinbase[pool->swork.nonce2_offset + pool->n2size], coinbase2, cb2_len);
  1526. bytes_resize(&pool->swork.merkle_bin, 32 * merkles);
  1527. for (i = 0; i < merkles; i++)
  1528. hex2bin(&bytes_buf(&pool->swork.merkle_bin)[i * 32], json_string_value(json_array_get(arr, i)), 32);
  1529. pool->swork.merkles = merkles;
  1530. pool->nonce2 = 0;
  1531. cg_wunlock(&pool->data_lock);
  1532. applog(LOG_DEBUG, "Received stratum notify from pool %u with job_id=%s",
  1533. pool->pool_no, job_id);
  1534. if (opt_debug && opt_protocol)
  1535. {
  1536. applog(LOG_DEBUG, "job_id: %s", job_id);
  1537. applog(LOG_DEBUG, "prev_hash: %s", prev_hash);
  1538. applog(LOG_DEBUG, "coinbase1: %s", coinbase1);
  1539. applog(LOG_DEBUG, "coinbase2: %s", coinbase2);
  1540. for (i = 0; i < merkles; i++)
  1541. applog(LOG_DEBUG, "merkle%d: %s", i, json_string_value(json_array_get(arr, i)));
  1542. applog(LOG_DEBUG, "bbversion: %s", bbversion);
  1543. applog(LOG_DEBUG, "nbit: %s", nbit);
  1544. applog(LOG_DEBUG, "ntime: %s", ntime);
  1545. applog(LOG_DEBUG, "clean: %s", clean ? "yes" : "no");
  1546. }
  1547. /* A notify message is the closest stratum gets to a getwork */
  1548. pool->getwork_requested++;
  1549. total_getworks++;
  1550. if ((merkles && (!pool->swork.transparency_probed || rand() <= RAND_MAX / (opt_skip_checks + 1))) || timer_isset(&pool->swork.tv_transparency))
  1551. if (pool->probed)
  1552. stratum_probe_transparency(pool);
  1553. ret = true;
  1554. out:
  1555. return ret;
  1556. }
  1557. static bool parse_diff(struct pool *pool, json_t *val)
  1558. {
  1559. double diff;
  1560. diff = json_number_value(json_array_get(val, 0));
  1561. if (diff == 0)
  1562. return false;
  1563. cg_wlock(&pool->data_lock);
  1564. pool->swork.diff = diff;
  1565. cg_wunlock(&pool->data_lock);
  1566. applog(LOG_DEBUG, "Pool %d stratum bdifficulty set to %f", pool->pool_no, diff);
  1567. return true;
  1568. }
  1569. static bool parse_reconnect(struct pool *pool, json_t *val)
  1570. {
  1571. const char *url, *port;
  1572. char address[256];
  1573. url = __json_array_string(val, 0);
  1574. if (!url)
  1575. url = pool->sockaddr_url;
  1576. port = __json_array_string(val, 1);
  1577. if (!port)
  1578. port = pool->stratum_port;
  1579. snprintf(address, sizeof(address), "%s:%s", url, port);
  1580. if (!extract_sockaddr(address, &pool->sockaddr_url, &pool->stratum_port))
  1581. return false;
  1582. pool->stratum_url = pool->sockaddr_url;
  1583. applog(LOG_NOTICE, "Reconnect requested from pool %d to %s", pool->pool_no, address);
  1584. if (!restart_stratum(pool))
  1585. return false;
  1586. return true;
  1587. }
  1588. static bool send_version(struct pool *pool, json_t *val)
  1589. {
  1590. char s[RBUFSIZE], *idstr;
  1591. json_t *id = json_object_get(val, "id");
  1592. if (!(id && !json_is_null(id)))
  1593. return false;
  1594. idstr = json_dumps_ANY(id, 0);
  1595. sprintf(s, "{\"id\": %s, \"result\": \""PACKAGE"/"VERSION"\", \"error\": null}", idstr);
  1596. free(idstr);
  1597. if (!stratum_send(pool, s, strlen(s)))
  1598. return false;
  1599. return true;
  1600. }
  1601. static bool stratum_show_message(struct pool *pool, json_t *val, json_t *params)
  1602. {
  1603. char *msg;
  1604. char s[RBUFSIZE], *idstr;
  1605. json_t *id = json_object_get(val, "id");
  1606. msg = json_array_string(params, 0);
  1607. if (likely(msg))
  1608. {
  1609. free(pool->admin_msg);
  1610. pool->admin_msg = msg;
  1611. applog(LOG_NOTICE, "Message from pool %u: %s", pool->pool_no, msg);
  1612. }
  1613. if (!(id && !json_is_null(id)))
  1614. return true;
  1615. idstr = json_dumps_ANY(id, 0);
  1616. if (likely(msg))
  1617. sprintf(s, "{\"id\": %s, \"result\": true, \"error\": null}", idstr);
  1618. else
  1619. sprintf(s, "{\"id\": %s, \"result\": null, \"error\": [-1, \"Failed to parse message\", null]}", idstr);
  1620. free(idstr);
  1621. if (!stratum_send(pool, s, strlen(s)))
  1622. return false;
  1623. return true;
  1624. }
  1625. bool parse_method(struct pool *pool, char *s)
  1626. {
  1627. json_t *val = NULL, *method, *err_val, *params;
  1628. json_error_t err;
  1629. bool ret = false;
  1630. const char *buf;
  1631. if (!s)
  1632. goto out;
  1633. val = JSON_LOADS(s, &err);
  1634. if (!val) {
  1635. applog(LOG_INFO, "JSON decode failed(%d): %s", err.line, err.text);
  1636. goto out;
  1637. }
  1638. method = json_object_get(val, "method");
  1639. if (!method)
  1640. goto out;
  1641. err_val = json_object_get(val, "error");
  1642. params = json_object_get(val, "params");
  1643. if (err_val && !json_is_null(err_val)) {
  1644. char *ss;
  1645. if (err_val)
  1646. ss = json_dumps(err_val, JSON_INDENT(3));
  1647. else
  1648. ss = strdup("(unknown reason)");
  1649. applog(LOG_INFO, "JSON-RPC method decode failed: %s", ss);
  1650. free(ss);
  1651. goto out;
  1652. }
  1653. buf = json_string_value(method);
  1654. if (!buf)
  1655. goto out;
  1656. if (!strncasecmp(buf, "mining.notify", 13)) {
  1657. if (parse_notify(pool, params))
  1658. pool->stratum_notify = ret = true;
  1659. else
  1660. pool->stratum_notify = ret = false;
  1661. goto out;
  1662. }
  1663. if (!strncasecmp(buf, "mining.set_difficulty", 21) && parse_diff(pool, params)) {
  1664. ret = true;
  1665. goto out;
  1666. }
  1667. if (!strncasecmp(buf, "client.reconnect", 16) && parse_reconnect(pool, params)) {
  1668. ret = true;
  1669. goto out;
  1670. }
  1671. if (!strncasecmp(buf, "client.get_version", 18) && send_version(pool, val)) {
  1672. ret = true;
  1673. goto out;
  1674. }
  1675. if (!strncasecmp(buf, "client.show_message", 19) && stratum_show_message(pool, val, params)) {
  1676. ret = true;
  1677. goto out;
  1678. }
  1679. out:
  1680. if (val)
  1681. json_decref(val);
  1682. return ret;
  1683. }
  1684. extern bool parse_stratum_response(struct pool *, char *s);
  1685. bool auth_stratum(struct pool *pool)
  1686. {
  1687. json_t *val = NULL, *res_val, *err_val;
  1688. char s[RBUFSIZE], *sret = NULL;
  1689. json_error_t err;
  1690. bool ret = false;
  1691. sprintf(s, "{\"id\": \"auth\", \"method\": \"mining.authorize\", \"params\": [\"%s\", \"%s\"]}",
  1692. pool->rpc_user, pool->rpc_pass);
  1693. if (!stratum_send(pool, s, strlen(s)))
  1694. goto out;
  1695. /* Parse all data in the queue and anything left should be auth */
  1696. while (42) {
  1697. sret = recv_line(pool);
  1698. if (!sret)
  1699. goto out;
  1700. if (parse_method(pool, sret))
  1701. free(sret);
  1702. else
  1703. break;
  1704. }
  1705. val = JSON_LOADS(sret, &err);
  1706. free(sret);
  1707. res_val = json_object_get(val, "result");
  1708. err_val = json_object_get(val, "error");
  1709. if (!res_val || json_is_false(res_val) || (err_val && !json_is_null(err_val))) {
  1710. char *ss;
  1711. if (err_val)
  1712. ss = json_dumps(err_val, JSON_INDENT(3));
  1713. else
  1714. ss = strdup("(unknown reason)");
  1715. applog(LOG_WARNING, "pool %d JSON stratum auth failed: %s", pool->pool_no, ss);
  1716. free(ss);
  1717. goto out;
  1718. }
  1719. ret = true;
  1720. applog(LOG_INFO, "Stratum authorisation success for pool %d", pool->pool_no);
  1721. pool->probed = true;
  1722. successful_connect = true;
  1723. out:
  1724. if (val)
  1725. json_decref(val);
  1726. if (pool->stratum_notify)
  1727. stratum_probe_transparency(pool);
  1728. return ret;
  1729. }
  1730. curl_socket_t grab_socket_opensocket_cb(void *clientp, __maybe_unused curlsocktype purpose, struct curl_sockaddr *addr)
  1731. {
  1732. struct pool *pool = clientp;
  1733. curl_socket_t sck = socket(addr->family, addr->socktype, addr->protocol);
  1734. pool->sock = sck;
  1735. return sck;
  1736. }
  1737. static bool setup_stratum_curl(struct pool *pool)
  1738. {
  1739. char curl_err_str[CURL_ERROR_SIZE];
  1740. CURL *curl = NULL;
  1741. char s[RBUFSIZE];
  1742. bool ret = false;
  1743. applog(LOG_DEBUG, "initiate_stratum with sockbuf=%p", pool->sockbuf);
  1744. mutex_lock(&pool->stratum_lock);
  1745. timer_unset(&pool->swork.tv_transparency);
  1746. pool->stratum_active = false;
  1747. pool->stratum_notify = false;
  1748. pool->swork.transparency_probed = false;
  1749. if (pool->stratum_curl)
  1750. curl_easy_cleanup(pool->stratum_curl);
  1751. pool->stratum_curl = curl_easy_init();
  1752. if (unlikely(!pool->stratum_curl))
  1753. quithere(1, "Failed to curl_easy_init");
  1754. if (pool->sockbuf)
  1755. pool->sockbuf[0] = '\0';
  1756. curl = pool->stratum_curl;
  1757. if (!pool->sockbuf) {
  1758. pool->sockbuf = calloc(RBUFSIZE, 1);
  1759. if (!pool->sockbuf)
  1760. quithere(1, "Failed to calloc pool sockbuf");
  1761. pool->sockbuf_size = RBUFSIZE;
  1762. }
  1763. /* Create a http url for use with curl */
  1764. sprintf(s, "http://%s:%s", pool->sockaddr_url, pool->stratum_port);
  1765. curl_easy_setopt(curl, CURLOPT_FRESH_CONNECT, 1);
  1766. curl_easy_setopt(curl, CURLOPT_CONNECTTIMEOUT, 30);
  1767. curl_easy_setopt(curl, CURLOPT_ERRORBUFFER, curl_err_str);
  1768. curl_easy_setopt(curl, CURLOPT_NOSIGNAL, 1);
  1769. curl_easy_setopt(curl, CURLOPT_URL, s);
  1770. if (!opt_delaynet)
  1771. curl_easy_setopt(curl, CURLOPT_TCP_NODELAY, 1);
  1772. /* We use DEBUGFUNCTION to count bytes sent/received, and verbose is needed
  1773. * to enable it */
  1774. curl_easy_setopt(curl, CURLOPT_DEBUGFUNCTION, curl_debug_cb);
  1775. curl_easy_setopt(curl, CURLOPT_DEBUGDATA, (void *)pool);
  1776. curl_easy_setopt(curl, CURLOPT_VERBOSE, 1);
  1777. // CURLINFO_LASTSOCKET is broken on Win64 (which has a wider SOCKET type than curl_easy_getinfo returns), so we use this hack for now
  1778. curl_easy_setopt(curl, CURLOPT_OPENSOCKETFUNCTION, grab_socket_opensocket_cb);
  1779. curl_easy_setopt(curl, CURLOPT_OPENSOCKETDATA, pool);
  1780. curl_easy_setopt(curl, CURLOPT_USE_SSL, CURLUSESSL_TRY);
  1781. if (pool->rpc_proxy) {
  1782. curl_easy_setopt(curl, CURLOPT_PROXY, pool->rpc_proxy);
  1783. } else if (opt_socks_proxy) {
  1784. curl_easy_setopt(curl, CURLOPT_PROXY, opt_socks_proxy);
  1785. curl_easy_setopt(curl, CURLOPT_PROXYTYPE, CURLPROXY_SOCKS5);
  1786. }
  1787. curl_easy_setopt(curl, CURLOPT_CONNECT_ONLY, 1);
  1788. pool->sock = INVSOCK;
  1789. if (curl_easy_perform(curl)) {
  1790. applog(LOG_INFO, "Stratum connect failed to pool %d: %s", pool->pool_no, curl_err_str);
  1791. errout:
  1792. curl_easy_cleanup(curl);
  1793. pool->stratum_curl = NULL;
  1794. goto out;
  1795. }
  1796. if (pool->sock == INVSOCK)
  1797. {
  1798. applog(LOG_ERR, "Stratum connect succeeded, but technical problem extracting socket (pool %u)", pool->pool_no);
  1799. goto errout;
  1800. }
  1801. keep_sockalive(pool->sock);
  1802. pool->cgminer_pool_stats.times_sent++;
  1803. pool->cgminer_pool_stats.times_received++;
  1804. ret = true;
  1805. out:
  1806. mutex_unlock(&pool->stratum_lock);
  1807. return ret;
  1808. }
  1809. static char *get_sessionid(json_t *val)
  1810. {
  1811. char *ret = NULL;
  1812. json_t *arr_val;
  1813. int arrsize, i;
  1814. arr_val = json_array_get(val, 0);
  1815. if (!arr_val || !json_is_array(arr_val))
  1816. goto out;
  1817. arrsize = json_array_size(arr_val);
  1818. for (i = 0; i < arrsize; i++) {
  1819. json_t *arr = json_array_get(arr_val, i);
  1820. const char *notify;
  1821. if (!arr | !json_is_array(arr))
  1822. break;
  1823. notify = __json_array_string(arr, 0);
  1824. if (!notify)
  1825. continue;
  1826. if (!strncasecmp(notify, "mining.notify", 13)) {
  1827. ret = json_array_string(arr, 1);
  1828. break;
  1829. }
  1830. }
  1831. out:
  1832. return ret;
  1833. }
  1834. void suspend_stratum(struct pool *pool)
  1835. {
  1836. clear_sockbuf(pool);
  1837. applog(LOG_INFO, "Closing socket for stratum pool %d", pool->pool_no);
  1838. mutex_lock(&pool->stratum_lock);
  1839. pool->stratum_active = pool->stratum_notify = false;
  1840. if (pool->stratum_curl) {
  1841. curl_easy_cleanup(pool->stratum_curl);
  1842. }
  1843. pool->stratum_curl = NULL;
  1844. pool->sock = INVSOCK;
  1845. mutex_unlock(&pool->stratum_lock);
  1846. }
  1847. bool initiate_stratum(struct pool *pool)
  1848. {
  1849. bool ret = false, recvd = false, noresume = false, sockd = false;
  1850. bool trysuggest = request_target_str;
  1851. char s[RBUFSIZE], *sret = NULL, *nonce1, *sessionid;
  1852. json_t *val = NULL, *res_val, *err_val;
  1853. json_error_t err;
  1854. int n2size;
  1855. resend:
  1856. if (!setup_stratum_curl(pool)) {
  1857. sockd = false;
  1858. goto out;
  1859. }
  1860. sockd = true;
  1861. clear_sock(pool);
  1862. if (trysuggest)
  1863. {
  1864. int sz = sprintf(s, "{\"id\": null, \"method\": \"mining.suggest_target\", \"params\": [\"%s\"]}", request_target_str);
  1865. if (!_stratum_send(pool, s, sz, true))
  1866. {
  1867. applog(LOG_DEBUG, "Pool %u: Failed to send suggest_target in initiate_stratum", pool->pool_no);
  1868. goto out;
  1869. }
  1870. recvd = true;
  1871. }
  1872. if (noresume) {
  1873. sprintf(s, "{\"id\": %d, \"method\": \"mining.subscribe\", \"params\": []}", swork_id++);
  1874. } else {
  1875. if (pool->sessionid)
  1876. sprintf(s, "{\"id\": %d, \"method\": \"mining.subscribe\", \"params\": [\""PACKAGE"/"VERSION"\", \"%s\"]}", swork_id++, pool->sessionid);
  1877. else
  1878. sprintf(s, "{\"id\": %d, \"method\": \"mining.subscribe\", \"params\": [\""PACKAGE"/"VERSION"\"]}", swork_id++);
  1879. }
  1880. if (!_stratum_send(pool, s, strlen(s), true)) {
  1881. applog(LOG_DEBUG, "Failed to send s in initiate_stratum");
  1882. goto out;
  1883. }
  1884. recvd = true;
  1885. if (!socket_full(pool, DEFAULT_SOCKWAIT)) {
  1886. applog(LOG_DEBUG, "Timed out waiting for response in initiate_stratum");
  1887. goto out;
  1888. }
  1889. sret = recv_line(pool);
  1890. if (!sret)
  1891. goto out;
  1892. val = JSON_LOADS(sret, &err);
  1893. free(sret);
  1894. if (!val) {
  1895. applog(LOG_INFO, "JSON decode failed(%d): %s", err.line, err.text);
  1896. goto out;
  1897. }
  1898. res_val = json_object_get(val, "result");
  1899. err_val = json_object_get(val, "error");
  1900. if (!res_val || json_is_null(res_val) ||
  1901. (err_val && !json_is_null(err_val))) {
  1902. char *ss;
  1903. if (err_val)
  1904. ss = json_dumps(err_val, JSON_INDENT(3));
  1905. else
  1906. ss = strdup("(unknown reason)");
  1907. applog(LOG_INFO, "JSON-RPC decode failed: %s", ss);
  1908. free(ss);
  1909. goto out;
  1910. }
  1911. sessionid = get_sessionid(res_val);
  1912. if (!sessionid)
  1913. applog(LOG_DEBUG, "Failed to get sessionid in initiate_stratum");
  1914. nonce1 = json_array_string(res_val, 1);
  1915. if (!nonce1) {
  1916. applog(LOG_INFO, "Failed to get nonce1 in initiate_stratum");
  1917. free(sessionid);
  1918. goto out;
  1919. }
  1920. n2size = json_integer_value(json_array_get(res_val, 2));
  1921. if (!n2size) {
  1922. applog(LOG_INFO, "Failed to get n2size in initiate_stratum");
  1923. free(sessionid);
  1924. free(nonce1);
  1925. goto out;
  1926. }
  1927. cg_wlock(&pool->data_lock);
  1928. free(pool->sessionid);
  1929. pool->sessionid = sessionid;
  1930. free(pool->nonce1);
  1931. pool->nonce1 = nonce1;
  1932. pool->n1_len = strlen(nonce1) / 2;
  1933. pool->n2size = n2size;
  1934. pool->nonce2sz = (n2size > sizeof(pool->nonce2)) ? sizeof(pool->nonce2) : n2size;
  1935. #ifdef WORDS_BIGENDIAN
  1936. pool->nonce2off = (n2size < sizeof(pool->nonce2)) ? (sizeof(pool->nonce2) - n2size) : 0;
  1937. #endif
  1938. cg_wunlock(&pool->data_lock);
  1939. if (sessionid)
  1940. applog(LOG_DEBUG, "Pool %d stratum session id: %s", pool->pool_no, pool->sessionid);
  1941. ret = true;
  1942. out:
  1943. if (val)
  1944. {
  1945. json_decref(val);
  1946. val = NULL;
  1947. }
  1948. if (ret) {
  1949. if (!pool->stratum_url)
  1950. pool->stratum_url = pool->sockaddr_url;
  1951. pool->stratum_active = true;
  1952. pool->swork.diff = 1;
  1953. if (opt_protocol) {
  1954. applog(LOG_DEBUG, "Pool %d confirmed mining.subscribe with extranonce1 %s extran2size %d",
  1955. pool->pool_no, pool->nonce1, pool->n2size);
  1956. }
  1957. } else {
  1958. if (recvd)
  1959. {
  1960. if (trysuggest)
  1961. {
  1962. applog(LOG_DEBUG, "Pool %u: Failed to connect stratum with mining.suggest_target, retrying without", pool->pool_no);
  1963. trysuggest = false;
  1964. goto resend;
  1965. }
  1966. if (!noresume)
  1967. {
  1968. applog(LOG_DEBUG, "Failed to resume stratum, trying afresh");
  1969. noresume = true;
  1970. goto resend;
  1971. }
  1972. }
  1973. applog(LOG_DEBUG, "Initiate stratum failed");
  1974. if (sockd)
  1975. suspend_stratum(pool);
  1976. }
  1977. return ret;
  1978. }
  1979. bool restart_stratum(struct pool *pool)
  1980. {
  1981. if (pool->stratum_active)
  1982. suspend_stratum(pool);
  1983. if (!initiate_stratum(pool))
  1984. return false;
  1985. if (!auth_stratum(pool))
  1986. return false;
  1987. return true;
  1988. }
  1989. void dev_error_update(struct cgpu_info *dev, enum dev_reason reason)
  1990. {
  1991. dev->device_last_not_well = time(NULL);
  1992. cgtime(&dev->tv_device_last_not_well);
  1993. dev->device_not_well_reason = reason;
  1994. }
  1995. void dev_error(struct cgpu_info *dev, enum dev_reason reason)
  1996. {
  1997. dev_error_update(dev, reason);
  1998. switch (reason) {
  1999. case REASON_THREAD_FAIL_INIT:
  2000. dev->thread_fail_init_count++;
  2001. break;
  2002. case REASON_THREAD_ZERO_HASH:
  2003. dev->thread_zero_hash_count++;
  2004. break;
  2005. case REASON_THREAD_FAIL_QUEUE:
  2006. dev->thread_fail_queue_count++;
  2007. break;
  2008. case REASON_DEV_SICK_IDLE_60:
  2009. dev->dev_sick_idle_60_count++;
  2010. break;
  2011. case REASON_DEV_DEAD_IDLE_600:
  2012. dev->dev_dead_idle_600_count++;
  2013. break;
  2014. case REASON_DEV_NOSTART:
  2015. dev->dev_nostart_count++;
  2016. break;
  2017. case REASON_DEV_OVER_HEAT:
  2018. dev->dev_over_heat_count++;
  2019. break;
  2020. case REASON_DEV_THERMAL_CUTOFF:
  2021. dev->dev_thermal_cutoff_count++;
  2022. break;
  2023. case REASON_DEV_COMMS_ERROR:
  2024. dev->dev_comms_error_count++;
  2025. break;
  2026. case REASON_DEV_THROTTLE:
  2027. dev->dev_throttle_count++;
  2028. break;
  2029. }
  2030. }
  2031. /* Realloc an existing string to fit an extra string s, appending s to it. */
  2032. void *realloc_strcat(char *ptr, char *s)
  2033. {
  2034. size_t old = strlen(ptr), len = strlen(s);
  2035. char *ret;
  2036. if (!len)
  2037. return ptr;
  2038. len += old + 1;
  2039. align_len(&len);
  2040. ret = malloc(len);
  2041. if (unlikely(!ret))
  2042. quithere(1, "Failed to malloc");
  2043. sprintf(ret, "%s%s", ptr, s);
  2044. free(ptr);
  2045. return ret;
  2046. }
  2047. static
  2048. bool sanechars[] = {
  2049. false, false, false, false, false, false, false, false,
  2050. false, false, false, false, false, false, false, false,
  2051. false, false, false, false, false, false, false, false,
  2052. false, false, false, false, false, false, false, false,
  2053. false, false, false, false, false, false, false, false,
  2054. false, false, false, false, false, false, false, false,
  2055. true , true , true , true , true , true , true , true ,
  2056. true , true , false, false, false, false, false, false,
  2057. false, true , true , true , true , true , true , true ,
  2058. true , true , true , true , true , true , true , true ,
  2059. true , true , true , true , true , true , true , true ,
  2060. true , true , true , false, false, false, false, false,
  2061. false, true , true , true , true , true , true , true ,
  2062. true , true , true , true , true , true , true , true ,
  2063. true , true , true , true , true , true , true , true ,
  2064. true , true , true , false, false, false, false, false,
  2065. };
  2066. char *sanestr(char *o, char *s)
  2067. {
  2068. char *rv = o;
  2069. bool br = false;
  2070. for ( ; s[0]; ++s)
  2071. {
  2072. if (sanechars[s[0] & 0x7f])
  2073. {
  2074. if (br)
  2075. {
  2076. br = false;
  2077. if (s[0] >= '0' && s[0] <= '9')
  2078. (o++)[0] = '_';
  2079. }
  2080. (o++)[0] = s[0];
  2081. }
  2082. else
  2083. if (o != s && o[-1] >= '0' && o[-1] <= '9')
  2084. br = true;
  2085. }
  2086. o[0] = '\0';
  2087. return rv;
  2088. }
  2089. void RenameThread(const char* name)
  2090. {
  2091. #if defined(PR_SET_NAME)
  2092. // Only the first 15 characters are used (16 - NUL terminator)
  2093. prctl(PR_SET_NAME, name, 0, 0, 0);
  2094. #elif defined(__APPLE__)
  2095. pthread_setname_np(name);
  2096. #elif (defined(__FreeBSD__) || defined(__OpenBSD__))
  2097. pthread_set_name_np(pthread_self(), name);
  2098. #else
  2099. // Prevent warnings for unused parameters...
  2100. (void)name;
  2101. #endif
  2102. }
  2103. static pthread_key_t key_bfgtls;
  2104. struct bfgtls_data {
  2105. char *bfg_strerror_result;
  2106. size_t bfg_strerror_resultsz;
  2107. #ifdef WIN32
  2108. LPSTR bfg_strerror_socketresult;
  2109. #endif
  2110. };
  2111. static
  2112. struct bfgtls_data *get_bfgtls()
  2113. {
  2114. struct bfgtls_data *bfgtls = pthread_getspecific(key_bfgtls);
  2115. if (bfgtls)
  2116. return bfgtls;
  2117. void *p;
  2118. bfgtls = malloc(sizeof(*bfgtls));
  2119. if (!bfgtls)
  2120. quithere(1, "malloc bfgtls failed");
  2121. p = malloc(64);
  2122. if (!p)
  2123. quithere(1, "malloc bfg_strerror_result failed");
  2124. *bfgtls = (struct bfgtls_data){
  2125. .bfg_strerror_resultsz = 64,
  2126. .bfg_strerror_result = p,
  2127. };
  2128. if (pthread_setspecific(key_bfgtls, bfgtls))
  2129. quithere(1, "pthread_setspecific failed");
  2130. return bfgtls;
  2131. }
  2132. void bfg_init_threadlocal()
  2133. {
  2134. if (pthread_key_create(&key_bfgtls, NULL))
  2135. quithere(1, "pthread_key_create failed");
  2136. }
  2137. static
  2138. bool bfg_grow_buffer(char ** const bufp, size_t * const bufszp, size_t minimum)
  2139. {
  2140. if (minimum <= *bufszp)
  2141. return false;
  2142. while (minimum > *bufszp)
  2143. *bufszp = 2;
  2144. *bufp = realloc(*bufp, *bufszp);
  2145. if (unlikely(!*bufp))
  2146. quithere(1, "realloc failed");
  2147. return true;
  2148. }
  2149. static
  2150. const char *bfg_strcpy_growing_buffer(char ** const bufp, size_t * const bufszp, const char *src)
  2151. {
  2152. if (!src)
  2153. return NULL;
  2154. const size_t srcsz = strlen(src) + 1;
  2155. bfg_grow_buffer(bufp, bufszp, srcsz);
  2156. memcpy(*bufp, src, srcsz);
  2157. return *bufp;
  2158. }
  2159. // Guaranteed to always return some string (or quit)
  2160. const char *bfg_strerror(int e, enum bfg_strerror_type type)
  2161. {
  2162. static __maybe_unused pthread_mutex_t mutex = PTHREAD_MUTEX_INITIALIZER;
  2163. struct bfgtls_data *bfgtls = get_bfgtls();
  2164. size_t * const bufszp = &bfgtls->bfg_strerror_resultsz;
  2165. char ** const bufp = &bfgtls->bfg_strerror_result;
  2166. const char *have = NULL;
  2167. switch (type) {
  2168. case BST_LIBUSB:
  2169. // NOTE: Nested preprocessor checks since the latter isn't defined at all without the former
  2170. #ifdef HAVE_LIBUSB
  2171. # if HAVE_DECL_LIBUSB_ERROR_NAME
  2172. // libusb makes no guarantees for thread-safety or persistence
  2173. mutex_lock(&mutex);
  2174. have = bfg_strcpy_growing_buffer(bufp, bufszp, libusb_error_name(e));
  2175. mutex_unlock(&mutex);
  2176. # endif
  2177. #endif
  2178. break;
  2179. case BST_SOCKET:
  2180. case BST_SYSTEM:
  2181. {
  2182. #ifdef WIN32
  2183. // Windows has a different namespace for system and socket errors
  2184. LPSTR *msg = &bfgtls->bfg_strerror_socketresult;
  2185. if (*msg)
  2186. LocalFree(*msg);
  2187. if (FormatMessage(FORMAT_MESSAGE_ALLOCATE_BUFFER | FORMAT_MESSAGE_FROM_SYSTEM, 0, e, 0, (LPSTR)msg, 0, 0))
  2188. return *msg;
  2189. *msg = NULL;
  2190. break;
  2191. #endif
  2192. }
  2193. // Fallthru on non-WIN32
  2194. case BST_ERRNO:
  2195. {
  2196. #ifdef __STRERROR_S_WORKS
  2197. // FIXME: Not sure how to get this on MingW64
  2198. retry:
  2199. if (likely(!strerror_s(*bufp, *bufszp, e)))
  2200. {
  2201. if (bfg_grow_buffer(bufp, bufszp, strlen(*bufp) + 2))
  2202. goto retry;
  2203. return *bufp;
  2204. }
  2205. // TODO: XSI strerror_r
  2206. // TODO: GNU strerror_r
  2207. #else
  2208. mutex_lock(&mutex);
  2209. have = bfg_strcpy_growing_buffer(bufp, bufszp, strerror(e));
  2210. mutex_unlock(&mutex);
  2211. #endif
  2212. }
  2213. }
  2214. if (have)
  2215. return *bufp;
  2216. // Failback: Stringify the number
  2217. static const char fmt[] = "%s error #%d", *typestr;
  2218. switch (type) {
  2219. case BST_ERRNO:
  2220. typestr = "System";
  2221. break;
  2222. case BST_SOCKET:
  2223. typestr = "Socket";
  2224. break;
  2225. case BST_LIBUSB:
  2226. typestr = "libusb";
  2227. break;
  2228. default:
  2229. typestr = "Unexpected";
  2230. }
  2231. int sz = snprintf((char*)bfgtls, 0, fmt, typestr, e) + 1;
  2232. bfg_grow_buffer(bufp, bufszp, sz);
  2233. sprintf(*bufp, fmt, typestr, e);
  2234. return *bufp;
  2235. }
  2236. void notifier_init(notifier_t pipefd)
  2237. {
  2238. #ifdef WIN32
  2239. #define WindowsErrorStr(e) bfg_strerror(e, BST_SOCKET)
  2240. SOCKET listener, connecter, acceptor;
  2241. listener = socket(AF_INET, SOCK_STREAM, 0);
  2242. if (listener == INVALID_SOCKET)
  2243. quit(1, "Failed to create listener socket"IN_FMT_FFL": %s",
  2244. __FILE__, __func__, __LINE__, WindowsErrorStr(WSAGetLastError()));
  2245. connecter = socket(AF_INET, SOCK_STREAM, 0);
  2246. if (connecter == INVALID_SOCKET)
  2247. quit(1, "Failed to create connect socket"IN_FMT_FFL": %s",
  2248. __FILE__, __func__, __LINE__, WindowsErrorStr(WSAGetLastError()));
  2249. struct sockaddr_in inaddr = {
  2250. .sin_family = AF_INET,
  2251. .sin_addr = {
  2252. .s_addr = htonl(INADDR_LOOPBACK),
  2253. },
  2254. .sin_port = 0,
  2255. };
  2256. {
  2257. static const int reuse = 1;
  2258. setsockopt(listener, SOL_SOCKET, SO_REUSEADDR, (const char*)&reuse, sizeof(reuse));
  2259. }
  2260. if (bind(listener, (struct sockaddr*)&inaddr, sizeof(inaddr)) == SOCKET_ERROR)
  2261. quit(1, "Failed to bind listener socket"IN_FMT_FFL": %s",
  2262. __FILE__, __func__, __LINE__, WindowsErrorStr(WSAGetLastError()));
  2263. socklen_t inaddr_sz = sizeof(inaddr);
  2264. if (getsockname(listener, (struct sockaddr*)&inaddr, &inaddr_sz) == SOCKET_ERROR)
  2265. quit(1, "Failed to getsockname"IN_FMT_FFL": %s",
  2266. __FILE__, __func__, __LINE__, WindowsErrorStr(WSAGetLastError()));
  2267. if (listen(listener, 1) == SOCKET_ERROR)
  2268. quit(1, "Failed to listen"IN_FMT_FFL": %s",
  2269. __FILE__, __func__, __LINE__, WindowsErrorStr(WSAGetLastError()));
  2270. inaddr.sin_family = AF_INET;
  2271. inaddr.sin_addr.s_addr = htonl(INADDR_LOOPBACK);
  2272. if (connect(connecter, (struct sockaddr*)&inaddr, inaddr_sz) == SOCKET_ERROR)
  2273. quit(1, "Failed to connect"IN_FMT_FFL": %s",
  2274. __FILE__, __func__, __LINE__, WindowsErrorStr(WSAGetLastError()));
  2275. acceptor = accept(listener, NULL, NULL);
  2276. if (acceptor == INVALID_SOCKET)
  2277. quit(1, "Failed to accept"IN_FMT_FFL": %s",
  2278. __FILE__, __func__, __LINE__, WindowsErrorStr(WSAGetLastError()));
  2279. closesocket(listener);
  2280. pipefd[0] = connecter;
  2281. pipefd[1] = acceptor;
  2282. #else
  2283. if (pipe(pipefd))
  2284. quithere(1, "Failed to create pipe");
  2285. #endif
  2286. }
  2287. void notifier_wake(notifier_t fd)
  2288. {
  2289. if (fd[1] == INVSOCK)
  2290. return;
  2291. if (1 !=
  2292. #ifdef WIN32
  2293. send(fd[1], "\0", 1, 0)
  2294. #else
  2295. write(fd[1], "\0", 1)
  2296. #endif
  2297. )
  2298. applog(LOG_WARNING, "Error trying to wake notifier");
  2299. }
  2300. void notifier_read(notifier_t fd)
  2301. {
  2302. char buf[0x10];
  2303. #ifdef WIN32
  2304. IGNORE_RETURN_VALUE(recv(fd[0], buf, sizeof(buf), 0));
  2305. #else
  2306. IGNORE_RETURN_VALUE(read(fd[0], buf, sizeof(buf)));
  2307. #endif
  2308. }
  2309. void notifier_init_invalid(notifier_t fd)
  2310. {
  2311. fd[0] = fd[1] = INVSOCK;
  2312. }
  2313. void notifier_destroy(notifier_t fd)
  2314. {
  2315. #ifdef WIN32
  2316. closesocket(fd[0]);
  2317. closesocket(fd[1]);
  2318. #else
  2319. close(fd[0]);
  2320. close(fd[1]);
  2321. #endif
  2322. fd[0] = fd[1] = INVSOCK;
  2323. }
  2324. void _bytes_alloc_failure(size_t sz)
  2325. {
  2326. quit(1, "bytes_resize failed to allocate %lu bytes", (unsigned long)sz);
  2327. }
  2328. void *cmd_thread(void *cmdp)
  2329. {
  2330. const char *cmd = cmdp;
  2331. applog(LOG_DEBUG, "Executing command: %s", cmd);
  2332. int rc = system(cmd);
  2333. if (rc)
  2334. applog(LOG_WARNING, "Command returned %d exit code: %s", rc, cmd);
  2335. return NULL;
  2336. }
  2337. void run_cmd(const char *cmd)
  2338. {
  2339. if (!cmd)
  2340. return;
  2341. pthread_t pth;
  2342. pthread_create(&pth, NULL, cmd_thread, (void*)cmd);
  2343. }