tsdecrypt reads and decrypts CSA encrypted incoming mpeg transport stream over UDP/RTP using code words obtained from OSCAM or similar CAM server. tsdecrypt communicates with CAM server using cs378x (camd35 over tcp) protocol or newcamd protocol. https://georgi.unixsol.org/programs/tsdecrypt/
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process.c 12KB

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  1. /*
  2. * Process packets
  3. * Copyright (C) 2011 Unix Solutions Ltd.
  4. *
  5. * This program is free software; you can redistribute it and/or modify
  6. * it under the terms of the GNU General Public License version 2
  7. * as published by the Free Software Foundation.
  8. *
  9. * This program is distributed in the hope that it will be useful,
  10. * but WITHOUT ANY WARRANTY; without even the implied warranty of
  11. * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
  12. * GNU General Public License (COPYING file) for more details.
  13. *
  14. */
  15. #include <unistd.h>
  16. #include <string.h>
  17. #include <sys/uio.h>
  18. #include "data.h"
  19. #include "csa.h"
  20. #include "tables.h"
  21. #include "util.h"
  22. #include "notify.h"
  23. static unsigned long ts_pack;
  24. static int ts_pack_shown;
  25. char *get_pid_desc(struct ts *ts, uint16_t pid) {
  26. int i;
  27. uint16_t nitpid = 0x0010, pmtpid = 0xffff, pcrpid = 0xffff;
  28. if (ts->pat->initialized) {
  29. for (i=0;i<ts->pat->programs_num;i++) {
  30. struct ts_pat_program *prg = ts->pat->programs[i];
  31. if (prg->pid) {
  32. if (prg->program == 0)
  33. nitpid = prg->pid;
  34. }
  35. }
  36. }
  37. if (ts->pmt->initialized) {
  38. pmtpid = ts->pmt->ts_header.pid;
  39. pcrpid = ts->pmt->PCR_pid;
  40. for (i=0;i<ts->pmt->streams_num;i++) {
  41. struct ts_pmt_stream *stream = ts->pmt->streams[i];
  42. if (pid == stream->pid)
  43. return h222_stream_type_desc(stream->stream_type);
  44. }
  45. }
  46. switch (pid) {
  47. case 0x0000: return "PAT"; break;
  48. case 0x0001: return "CAT"; break;
  49. case 0x0011: return "SDT"; break;
  50. case 0x0012: return "EPG"; break;
  51. case 0x0014: return "TDT/TOT"; break;
  52. }
  53. if (pid == nitpid) return "NIT";
  54. else if (pid == pmtpid) return "PMT";
  55. else if (pid == pcrpid) return "PCR";
  56. else if (pid == ts->emm_pid) return "EMM";
  57. else if (pid == ts->ecm_pid) return "ECM";
  58. return "Unknown";
  59. }
  60. void show_ts_pack(struct ts *ts, uint16_t pid, char *wtf, char *extra, uint8_t *ts_packet) {
  61. char pdump[188 * 6];
  62. char cw1_dump[8 * 6];
  63. char cw2_dump[8 * 6];
  64. if (ts->debug_level >= 4) {
  65. if (ts_pack_shown)
  66. return;
  67. if (ts->debug_level >= 5)
  68. ts_hex_dump_buf(pdump, 188 * 6, ts_packet, 188, 0);
  69. int stype = ts_packet_get_scrambled(ts_packet);
  70. ts_hex_dump_buf(cw1_dump, 8 * 6, ts->key.cw , 8, 0);
  71. ts_hex_dump_buf(cw2_dump, 8 * 6, ts->key.cw + 8, 8, 0);
  72. fprintf(stderr, "@ %s %s %03x %5ld %7ld | %s %s | %s %s\n",
  73. stype == 0 ? "------" :
  74. stype == 2 ? "even 0" :
  75. stype == 3 ? "odd 1" : "??????",
  76. wtf,
  77. pid,
  78. ts_pack, ts_pack * 188,
  79. cw1_dump, cw2_dump, extra ? extra : wtf,
  80. ts->debug_level >= 5 ? pdump : "");
  81. }
  82. }
  83. static void dump_ts_pack(struct ts *ts, uint16_t pid, uint8_t *ts_packet) {
  84. if (pid == 0x010) show_ts_pack(ts, pid, "nit", NULL, ts_packet);
  85. else if (pid == 0x11) show_ts_pack(ts, pid, "sdt", NULL, ts_packet);
  86. else if (pid == 0x12) show_ts_pack(ts, pid, "epg", NULL, ts_packet);
  87. else show_ts_pack(ts, pid, "---", NULL, ts_packet);
  88. }
  89. static void decode_packet(struct ts *ts, uint8_t *ts_packet) {
  90. int scramble_idx = ts_packet_get_scrambled(ts_packet);
  91. if (scramble_idx > 1) {
  92. if (ts->key.is_valid_cw) {
  93. csa_decrypt_single_packet(ts->key.csakey, ts_packet);
  94. } else {
  95. // Can't decrypt the packet just make it NULL packet
  96. if (ts->pid_filter)
  97. ts_packet_set_pid(ts_packet, 0x1fff);
  98. }
  99. }
  100. }
  101. static void decode_buffer(struct ts *ts, uint8_t *data, int data_len) {
  102. int i;
  103. int batch_sz = csa_get_batch_size(); // Tested with 32 for libdvbcsa, 70 for FFdecsa (must be multiplied by 2)
  104. int even_packets = 0;
  105. int odd_packets = 0;
  106. struct csa_batch even_pcks[batch_sz + 1];
  107. struct csa_batch odd_pcks [batch_sz + 1];
  108. uint8_t *ff_even_pcks[batch_sz * 2 + 1];
  109. uint8_t *ff_odd_pcks [batch_sz * 2 + 1];
  110. int scramble_idx_old = 0;
  111. time_t now = time(NULL);
  112. // Prepare batch structure
  113. for (i = 0; i < batch_sz; i++) {
  114. uint8_t *ts_packet = data + (i * 188);
  115. uint16_t pid = ts_packet_get_pid(ts_packet);
  116. bool in_pidmap = pidmap_get(&ts->pidmap, pid);
  117. bool is_scrambled = ts_packet_is_scrambled(ts_packet);
  118. if (in_pidmap) {
  119. if (is_scrambled) {
  120. if (ts->last_scrambled_packet_ts < now) {
  121. ts->stream_is_not_scrambled = 0;
  122. ts->last_scrambled_packet_ts = now;
  123. }
  124. } else {
  125. if (now - 5 >= ts->last_scrambled_packet_ts) {
  126. if (ts->last_not_scrambled_packet_ts < now) {
  127. ts->camd.key->is_valid_cw = 0;
  128. ts->stream_is_not_scrambled = 1;
  129. ts->last_not_scrambled_packet_ts = now;
  130. }
  131. }
  132. }
  133. }
  134. if (in_pidmap && is_scrambled) {
  135. if (ts->key.is_valid_cw) {
  136. int scramble_idx = ts_packet_get_scrambled(ts_packet);
  137. if (!scramble_idx_old)
  138. scramble_idx_old = scramble_idx;
  139. if (use_dvbcsa) {
  140. uint8_t payload_ofs = ts_packet_get_payload_offset(ts_packet);
  141. if (scramble_idx == 2) { // scramble_idx 2 == even key
  142. even_pcks[even_packets].data = ts_packet + payload_ofs;
  143. even_pcks[even_packets].len = 188 - payload_ofs;
  144. even_packets++;
  145. }
  146. if (scramble_idx == 3) { // scramble_idx 3 == odd key
  147. odd_pcks[odd_packets].data = ts_packet + payload_ofs;
  148. odd_pcks[odd_packets].len = 188 - payload_ofs;
  149. odd_packets++;
  150. }
  151. ts_packet_set_not_scrambled(ts_packet);
  152. }
  153. if (use_ffdecsa) {
  154. if (scramble_idx == 2) { // scramble_idx 2 == even key
  155. ff_even_pcks[even_packets * 2 ] = ts_packet;
  156. ff_even_pcks[even_packets * 2 + 1] = ts_packet + 188;
  157. even_packets++;
  158. }
  159. if (scramble_idx == 3) { // scramble_idx 3 == odd key
  160. ff_odd_pcks[odd_packets * 2 ] = ts_packet;
  161. ff_odd_pcks[odd_packets * 2 + 1] = ts_packet + 188;
  162. odd_packets++;
  163. }
  164. }
  165. if (scramble_idx_old != scramble_idx && !ts->camd.constant_codeword) {
  166. struct timeval tv;
  167. gettimeofday(&tv, NULL);
  168. ts_LOGf("CWC | SID 0x%04x ------------ EcmTime: %5llu ms CW_time: %5llu ms\n",
  169. ts->service_id,
  170. timeval_diff_msec(&ts->ecm_change_time, &tv),
  171. timeval_diff_msec(&ts->key.ts_keyset, &tv));
  172. }
  173. scramble_idx_old = scramble_idx;
  174. } else {
  175. if (ts->pid_filter)
  176. ts_packet_set_pid(ts_packet, 0x1fff);
  177. }
  178. }
  179. }
  180. // Decode packets
  181. if (even_packets) {
  182. if (use_dvbcsa) {
  183. even_pcks[even_packets].data = NULL; // Last one...
  184. csa_decrypt_multiple_even(ts->key.csakey, even_pcks);
  185. }
  186. if (use_ffdecsa) {
  187. ff_even_pcks[even_packets * 2] = NULL;
  188. csa_decrypt_multiple_ff(ts->key.csakey, ff_even_pcks);
  189. }
  190. }
  191. if (odd_packets) {
  192. if (use_dvbcsa) {
  193. odd_pcks[odd_packets].data = NULL; // Last one...
  194. csa_decrypt_multiple_odd(ts->key.csakey, odd_pcks);
  195. }
  196. if (use_ffdecsa) {
  197. ff_odd_pcks[odd_packets * 2] = NULL;
  198. csa_decrypt_multiple_ff(ts->key.csakey, ff_odd_pcks);
  199. }
  200. }
  201. // Fill write buffer
  202. for (i=0; i<data_len; i += 188) {
  203. uint8_t *ts_packet = data + i;
  204. if (!ts->pid_filter) {
  205. cbuf_fill(ts->write_buf, ts_packet, 188);
  206. } else {
  207. uint16_t pid = ts_packet_get_pid(ts_packet);
  208. if (pidmap_get(&ts->pidmap, pid)) // PAT or allowed PIDs
  209. cbuf_fill(ts->write_buf, ts_packet, 188);
  210. }
  211. }
  212. }
  213. void *decode_thread(void *_ts) {
  214. struct ts *ts = _ts;
  215. uint8_t *data;
  216. int data_size;
  217. int req_size = 188 * csa_get_batch_size();
  218. set_thread_name("tsdec-decode");
  219. while (!ts->decode_stop) {
  220. cbuf_peek(ts->decode_buf, req_size, &data_size);
  221. if (data_size < req_size) {
  222. usleep(1000);
  223. continue;
  224. }
  225. data = cbuf_get(ts->decode_buf, req_size, &data_size);
  226. if (data)
  227. decode_buffer(ts, data, data_size);
  228. }
  229. do { // Flush data
  230. data = cbuf_get(ts->decode_buf, req_size, &data_size);
  231. if (data)
  232. decode_buffer(ts, data, data_size);
  233. } while(data);
  234. return NULL;
  235. }
  236. static inline void output_write(struct ts *ts, uint8_t *data, unsigned int data_size) {
  237. if (!data)
  238. return;
  239. if (ts->no_output_on_error && !ts->camd.key->is_valid_cw)
  240. return;
  241. if (!ts->rtp_output) {
  242. if (write(ts->output.fd, data, data_size) < 0) {
  243. perror("write(output_fd)");
  244. return;
  245. }
  246. } else {
  247. struct iovec iov[2];
  248. uint8_t rtp_header[12];
  249. uint32_t rtime = get_time() * 9 / 100;
  250. ts->rtp_seqnum++;
  251. rtp_header[ 0] = 0x80;
  252. rtp_header[ 1] = 33; // MPEG TS rtp payload type
  253. rtp_header[ 2] = ts->rtp_seqnum >> 8;
  254. rtp_header[ 3] = ts->rtp_seqnum & 0xff;
  255. rtp_header[ 4] = (rtime >> 24) & 0xff;
  256. rtp_header[ 5] = (rtime >> 16) & 0xff;
  257. rtp_header[ 6] = (rtime >> 8) & 0xff;
  258. rtp_header[ 7] = rtime & 0xff;
  259. rtp_header[ 8] = (ts->rtp_ssrc >> 24) & 0xff;
  260. rtp_header[ 9] = (ts->rtp_ssrc >> 16) & 0xff;
  261. rtp_header[10] = (ts->rtp_ssrc >> 8) & 0xff;
  262. rtp_header[11] = ts->rtp_ssrc & 0xff;
  263. iov[0].iov_base = rtp_header;
  264. iov[0].iov_len = sizeof(rtp_header);
  265. iov[1].iov_base = data;
  266. iov[1].iov_len = data_size;
  267. if (writev(ts->output.fd, iov, 2) < 0) {
  268. perror("writev(output_fd)");
  269. return;
  270. }
  271. }
  272. }
  273. void *write_thread(void *_ts) {
  274. struct ts *ts = _ts;
  275. uint8_t *data;
  276. int data_size;
  277. set_thread_name("tsdec-write");
  278. while (!ts->write_stop) {
  279. data_size = 0;
  280. cbuf_peek(ts->write_buf, FRAME_SIZE, &data_size);
  281. if (data_size < FRAME_SIZE) {
  282. usleep(5000);
  283. continue;
  284. }
  285. data = cbuf_get (ts->write_buf, FRAME_SIZE, &data_size);
  286. output_write(ts, data, data_size);
  287. }
  288. do { // Flush data
  289. data = cbuf_get(ts->write_buf, FRAME_SIZE, &data_size);
  290. output_write(ts, data, data_size);
  291. } while(data);
  292. return NULL;
  293. }
  294. static void detect_discontinuity(struct ts *ts, uint8_t *ts_packet) {
  295. uint16_t pid;
  296. uint8_t cur_cc, last_cc;
  297. if (!ts->ts_discont)
  298. return;
  299. pid = ts_packet_get_pid(ts_packet);
  300. cur_cc = ts_packet_get_cont(ts_packet);
  301. if (!pidmap_get(&ts->pid_seen, pid)) {
  302. if (strcmp(get_pid_desc(ts, pid), "Unknown") == 0)
  303. return;
  304. pidmap_set(&ts->pid_seen, pid);
  305. pidmap_set_val(&ts->cc, pid, cur_cc);
  306. ts_LOGf("NEW | Input PID 0x%04x appeared (%s)\n",
  307. pid, get_pid_desc(ts, pid));
  308. return;
  309. }
  310. last_cc = pidmap_get(&ts->cc, pid);
  311. if (last_cc != cur_cc && ((last_cc + 1) & 0x0f) != cur_cc)
  312. ts_LOGf("--- | TS discontinuity on PID 0x%04x expected %2d got %2d /%d/ (%s)\n",
  313. pid,
  314. ((last_cc + 1) & 0x0f), cur_cc,
  315. (cur_cc - ((last_cc + 1) & 0x0f)) & 0x0f,
  316. get_pid_desc(ts, pid));
  317. pidmap_set_val(&ts->cc, pid, cur_cc);
  318. }
  319. void process_packets(struct ts *ts, uint8_t *data, ssize_t data_len) {
  320. ssize_t i;
  321. int64_t now = get_time();
  322. for (i=0; i<data_len; i += 188) {
  323. uint8_t *ts_packet = data + i;
  324. uint16_t pid = ts_packet_get_pid(ts_packet);
  325. if (ts->pid_report)
  326. ts->pid_stats[pid]++;
  327. ts_pack_shown = 0;
  328. process_pat(ts, pid, ts_packet);
  329. process_cat(ts, pid, ts_packet);
  330. process_pmt(ts, pid, ts_packet);
  331. process_sdt(ts, pid, ts_packet);
  332. process_emm(ts, pid, ts_packet);
  333. process_ecm(ts, pid, ts_packet);
  334. detect_discontinuity(ts, ts_packet);
  335. if (!ts_pack_shown)
  336. dump_ts_pack(ts, pid, ts_packet);
  337. if (!ts->output_stream)
  338. continue;
  339. // Return rewritten PAT
  340. if (pid == 0x00 && ts->pid_filter && ts->genpat->initialized) {
  341. if (!ts_packet_is_pusi(ts_packet))
  342. continue;
  343. ts_packet_set_cont(ts->genpat->section_header->packet_data, ts->genpat_cc);
  344. ts->genpat->ts_header.continuity = ts->genpat_cc;
  345. ts_packet = ts->genpat->section_header->packet_data;
  346. ts->genpat_cc = (ts->genpat_cc + 1) & 0x0f;
  347. }
  348. if (ts->threaded) {
  349. // Add to decode buffer. The decoder thread will handle it
  350. if (ts->input_buffer_time == 0) {
  351. // No input buffer, move packets to decoding buffer
  352. if (cbuf_fill(ts->decode_buf, ts_packet, 188) != 0) {
  353. ts_LOGf("Decode buffer is full, waiting...\n");
  354. cbuf_dump(ts->decode_buf);
  355. usleep(10000);
  356. }
  357. } else {
  358. // Handle input buffer
  359. struct packet_buf *p = malloc(sizeof(struct packet_buf));
  360. p->time = now + (ts->input_buffer_time * 1000); //buffer time is in ms, p->time is in us
  361. memcpy(p->data, ts_packet, 188);
  362. list_add(ts->input_buffer, p);
  363. // Move packets to decrypt buffer
  364. LNODE *lc, *lctmp;
  365. list_for_each(ts->input_buffer, lc, lctmp) {
  366. p = lc->data;
  367. if (p->time <= now) {
  368. if (cbuf_fill(ts->decode_buf, p->data, 188) != 0) {
  369. ts_LOGf("Decode buffer is full, waiting...\n");
  370. cbuf_dump(ts->decode_buf);
  371. usleep(10000);
  372. }
  373. list_del(ts->input_buffer, &lc);
  374. free(p);
  375. } else {
  376. break;
  377. }
  378. }
  379. }
  380. } else {
  381. int allowed_pid = pidmap_get(&ts->pidmap, pid);
  382. if (allowed_pid) // PAT or allowed PIDs
  383. decode_packet(ts, ts_packet);
  384. if (ts->pid_filter) {
  385. if (allowed_pid) // PAT or allowed PIDs
  386. output_write(ts, ts_packet, 188);
  387. } else {
  388. output_write(ts, ts_packet, 188);
  389. }
  390. }
  391. ts_pack++;
  392. }
  393. }
  394. void show_pid_report(struct ts *ts) {
  395. int i;
  396. if (!ts->pid_report)
  397. return;
  398. for (i = 0; i < MAX_PIDS; i++) {
  399. if (ts->pid_stats[i]) {
  400. ts_LOGf("PID | %8u packets with PID 0x%04x (%4u) %s\n",
  401. ts->pid_stats[i], i, i, get_pid_desc(ts, i));
  402. }
  403. }
  404. }