test_tcp.c 21 KB

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  1. #include "test_tcp.h"
  2. #include "lwip/tcp_impl.h"
  3. #include "lwip/stats.h"
  4. #include "tcp_helper.h"
  5. #ifdef _MSC_VER
  6. #pragma warning(disable: 4307) /* we explicitly wrap around TCP seqnos */
  7. #endif
  8. #if !LWIP_STATS || !TCP_STATS || !MEMP_STATS
  9. #error "This tests needs TCP- and MEMP-statistics enabled"
  10. #endif
  11. #if TCP_SND_BUF <= TCP_WND
  12. #error "This tests needs TCP_SND_BUF to be > TCP_WND"
  13. #endif
  14. static u8_t test_tcp_timer;
  15. /* our own version of tcp_tmr so we can reset fast/slow timer state */
  16. static void
  17. test_tcp_tmr(void)
  18. {
  19. tcp_fasttmr();
  20. if (++test_tcp_timer & 1) {
  21. tcp_slowtmr();
  22. }
  23. }
  24. /* Setups/teardown functions */
  25. static void
  26. tcp_setup(void)
  27. {
  28. /* reset iss to default (6510) */
  29. tcp_ticks = 0;
  30. tcp_ticks = 0 - (tcp_next_iss() - 6510);
  31. tcp_next_iss();
  32. tcp_ticks = 0;
  33. test_tcp_timer = 0;
  34. tcp_remove_all();
  35. }
  36. static void
  37. tcp_teardown(void)
  38. {
  39. tcp_remove_all();
  40. netif_list = NULL;
  41. netif_default = NULL;
  42. }
  43. /* Test functions */
  44. /** Call tcp_new() and tcp_abort() and test memp stats */
  45. START_TEST(test_tcp_new_abort)
  46. {
  47. struct tcp_pcb* pcb;
  48. LWIP_UNUSED_ARG(_i);
  49. fail_unless(lwip_stats.memp[MEMP_TCP_PCB].used == 0);
  50. pcb = tcp_new();
  51. fail_unless(pcb != NULL);
  52. if (pcb != NULL) {
  53. fail_unless(lwip_stats.memp[MEMP_TCP_PCB].used == 1);
  54. tcp_abort(pcb);
  55. fail_unless(lwip_stats.memp[MEMP_TCP_PCB].used == 0);
  56. }
  57. }
  58. END_TEST
  59. /** Create an ESTABLISHED pcb and check if receive callback is called */
  60. START_TEST(test_tcp_recv_inseq)
  61. {
  62. struct test_tcp_counters counters;
  63. struct tcp_pcb* pcb;
  64. struct pbuf* p;
  65. char data[] = {1, 2, 3, 4};
  66. ip_addr_t remote_ip, local_ip, netmask;
  67. u16_t data_len;
  68. u16_t remote_port = 0x100, local_port = 0x101;
  69. struct netif netif;
  70. struct test_tcp_txcounters txcounters;
  71. LWIP_UNUSED_ARG(_i);
  72. /* initialize local vars */
  73. memset(&netif, 0, sizeof(netif));
  74. IP4_ADDR(&local_ip, 192, 168, 1, 1);
  75. IP4_ADDR(&remote_ip, 192, 168, 1, 2);
  76. IP4_ADDR(&netmask, 255, 255, 255, 0);
  77. test_tcp_init_netif(&netif, &txcounters, &local_ip, &netmask);
  78. data_len = sizeof(data);
  79. /* initialize counter struct */
  80. memset(&counters, 0, sizeof(counters));
  81. counters.expected_data_len = data_len;
  82. counters.expected_data = data;
  83. /* create and initialize the pcb */
  84. pcb = test_tcp_new_counters_pcb(&counters);
  85. EXPECT_RET(pcb != NULL);
  86. tcp_set_state(pcb, ESTABLISHED, &local_ip, &remote_ip, local_port, remote_port);
  87. /* create a segment */
  88. p = tcp_create_rx_segment(pcb, counters.expected_data, data_len, 0, 0, 0);
  89. EXPECT(p != NULL);
  90. if (p != NULL) {
  91. /* pass the segment to tcp_input */
  92. test_tcp_input(p, &netif);
  93. /* check if counters are as expected */
  94. EXPECT(counters.close_calls == 0);
  95. EXPECT(counters.recv_calls == 1);
  96. EXPECT(counters.recved_bytes == data_len);
  97. EXPECT(counters.err_calls == 0);
  98. }
  99. /* make sure the pcb is freed */
  100. EXPECT(lwip_stats.memp[MEMP_TCP_PCB].used == 1);
  101. tcp_abort(pcb);
  102. EXPECT(lwip_stats.memp[MEMP_TCP_PCB].used == 0);
  103. }
  104. END_TEST
  105. /** Provoke fast retransmission by duplicate ACKs and then recover by ACKing all sent data.
  106. * At the end, send more data. */
  107. START_TEST(test_tcp_fast_retx_recover)
  108. {
  109. struct netif netif;
  110. struct test_tcp_txcounters txcounters;
  111. struct test_tcp_counters counters;
  112. struct tcp_pcb* pcb;
  113. struct pbuf* p;
  114. char data1[] = { 1, 2, 3, 4};
  115. char data2[] = { 5, 6, 7, 8};
  116. char data3[] = { 9, 10, 11, 12};
  117. char data4[] = {13, 14, 15, 16};
  118. char data5[] = {17, 18, 19, 20};
  119. char data6[] = {21, 22, 23, 24};
  120. ip_addr_t remote_ip, local_ip, netmask;
  121. u16_t remote_port = 0x100, local_port = 0x101;
  122. err_t err;
  123. LWIP_UNUSED_ARG(_i);
  124. /* initialize local vars */
  125. IP4_ADDR(&local_ip, 192, 168, 1, 1);
  126. IP4_ADDR(&remote_ip, 192, 168, 1, 2);
  127. IP4_ADDR(&netmask, 255, 255, 255, 0);
  128. test_tcp_init_netif(&netif, &txcounters, &local_ip, &netmask);
  129. memset(&counters, 0, sizeof(counters));
  130. /* create and initialize the pcb */
  131. pcb = test_tcp_new_counters_pcb(&counters);
  132. EXPECT_RET(pcb != NULL);
  133. tcp_set_state(pcb, ESTABLISHED, &local_ip, &remote_ip, local_port, remote_port);
  134. pcb->mss = TCP_MSS;
  135. /* disable initial congestion window (we don't send a SYN here...) */
  136. pcb->cwnd = pcb->snd_wnd;
  137. /* send data1 */
  138. err = tcp_write(pcb, data1, sizeof(data1), TCP_WRITE_FLAG_COPY);
  139. EXPECT_RET(err == ERR_OK);
  140. err = tcp_output(pcb);
  141. EXPECT_RET(err == ERR_OK);
  142. EXPECT_RET(txcounters.num_tx_calls == 1);
  143. EXPECT_RET(txcounters.num_tx_bytes == sizeof(data1) + sizeof(struct tcp_hdr) + sizeof(struct ip_hdr));
  144. memset(&txcounters, 0, sizeof(txcounters));
  145. /* "recv" ACK for data1 */
  146. p = tcp_create_rx_segment(pcb, NULL, 0, 0, 4, TCP_ACK);
  147. EXPECT_RET(p != NULL);
  148. test_tcp_input(p, &netif);
  149. EXPECT_RET(txcounters.num_tx_calls == 0);
  150. EXPECT_RET(pcb->unacked == NULL);
  151. /* send data2 */
  152. err = tcp_write(pcb, data2, sizeof(data2), TCP_WRITE_FLAG_COPY);
  153. EXPECT_RET(err == ERR_OK);
  154. err = tcp_output(pcb);
  155. EXPECT_RET(err == ERR_OK);
  156. EXPECT_RET(txcounters.num_tx_calls == 1);
  157. EXPECT_RET(txcounters.num_tx_bytes == sizeof(data2) + sizeof(struct tcp_hdr) + sizeof(struct ip_hdr));
  158. memset(&txcounters, 0, sizeof(txcounters));
  159. /* duplicate ACK for data1 (data2 is lost) */
  160. p = tcp_create_rx_segment(pcb, NULL, 0, 0, 0, TCP_ACK);
  161. EXPECT_RET(p != NULL);
  162. test_tcp_input(p, &netif);
  163. EXPECT_RET(txcounters.num_tx_calls == 0);
  164. EXPECT_RET(pcb->dupacks == 1);
  165. /* send data3 */
  166. err = tcp_write(pcb, data3, sizeof(data3), TCP_WRITE_FLAG_COPY);
  167. EXPECT_RET(err == ERR_OK);
  168. err = tcp_output(pcb);
  169. EXPECT_RET(err == ERR_OK);
  170. /* nagle enabled, no tx calls */
  171. EXPECT_RET(txcounters.num_tx_calls == 0);
  172. EXPECT_RET(txcounters.num_tx_bytes == 0);
  173. memset(&txcounters, 0, sizeof(txcounters));
  174. /* 2nd duplicate ACK for data1 (data2 and data3 are lost) */
  175. p = tcp_create_rx_segment(pcb, NULL, 0, 0, 0, TCP_ACK);
  176. EXPECT_RET(p != NULL);
  177. test_tcp_input(p, &netif);
  178. EXPECT_RET(txcounters.num_tx_calls == 0);
  179. EXPECT_RET(pcb->dupacks == 2);
  180. /* queue data4, don't send it (unsent-oversize is != 0) */
  181. err = tcp_write(pcb, data4, sizeof(data4), TCP_WRITE_FLAG_COPY);
  182. EXPECT_RET(err == ERR_OK);
  183. /* 3nd duplicate ACK for data1 (data2 and data3 are lost) -> fast retransmission */
  184. p = tcp_create_rx_segment(pcb, NULL, 0, 0, 0, TCP_ACK);
  185. EXPECT_RET(p != NULL);
  186. test_tcp_input(p, &netif);
  187. /*EXPECT_RET(txcounters.num_tx_calls == 1);*/
  188. EXPECT_RET(pcb->dupacks == 3);
  189. memset(&txcounters, 0, sizeof(txcounters));
  190. /* TODO: check expected data?*/
  191. /* send data5, not output yet */
  192. err = tcp_write(pcb, data5, sizeof(data5), TCP_WRITE_FLAG_COPY);
  193. EXPECT_RET(err == ERR_OK);
  194. /*err = tcp_output(pcb);
  195. EXPECT_RET(err == ERR_OK);*/
  196. EXPECT_RET(txcounters.num_tx_calls == 0);
  197. EXPECT_RET(txcounters.num_tx_bytes == 0);
  198. memset(&txcounters, 0, sizeof(txcounters));
  199. {
  200. int i = 0;
  201. do
  202. {
  203. err = tcp_write(pcb, data6, TCP_MSS, TCP_WRITE_FLAG_COPY);
  204. i++;
  205. }while(err == ERR_OK);
  206. EXPECT_RET(err != ERR_OK);
  207. }
  208. err = tcp_output(pcb);
  209. EXPECT_RET(err == ERR_OK);
  210. /*EXPECT_RET(txcounters.num_tx_calls == 0);
  211. EXPECT_RET(txcounters.num_tx_bytes == 0);*/
  212. memset(&txcounters, 0, sizeof(txcounters));
  213. /* send even more data */
  214. err = tcp_write(pcb, data5, sizeof(data5), TCP_WRITE_FLAG_COPY);
  215. EXPECT_RET(err == ERR_OK);
  216. err = tcp_output(pcb);
  217. EXPECT_RET(err == ERR_OK);
  218. /* ...and even more data */
  219. err = tcp_write(pcb, data5, sizeof(data5), TCP_WRITE_FLAG_COPY);
  220. EXPECT_RET(err == ERR_OK);
  221. err = tcp_output(pcb);
  222. EXPECT_RET(err == ERR_OK);
  223. /* ...and even more data */
  224. err = tcp_write(pcb, data5, sizeof(data5), TCP_WRITE_FLAG_COPY);
  225. EXPECT_RET(err == ERR_OK);
  226. err = tcp_output(pcb);
  227. EXPECT_RET(err == ERR_OK);
  228. /* ...and even more data */
  229. err = tcp_write(pcb, data5, sizeof(data5), TCP_WRITE_FLAG_COPY);
  230. EXPECT_RET(err == ERR_OK);
  231. err = tcp_output(pcb);
  232. EXPECT_RET(err == ERR_OK);
  233. /* send ACKs for data2 and data3 */
  234. p = tcp_create_rx_segment(pcb, NULL, 0, 0, 12, TCP_ACK);
  235. EXPECT_RET(p != NULL);
  236. test_tcp_input(p, &netif);
  237. /*EXPECT_RET(txcounters.num_tx_calls == 0);*/
  238. /* ...and even more data */
  239. err = tcp_write(pcb, data5, sizeof(data5), TCP_WRITE_FLAG_COPY);
  240. EXPECT_RET(err == ERR_OK);
  241. err = tcp_output(pcb);
  242. EXPECT_RET(err == ERR_OK);
  243. /* ...and even more data */
  244. err = tcp_write(pcb, data5, sizeof(data5), TCP_WRITE_FLAG_COPY);
  245. EXPECT_RET(err == ERR_OK);
  246. err = tcp_output(pcb);
  247. EXPECT_RET(err == ERR_OK);
  248. #if 0
  249. /* create expected segment */
  250. p1 = tcp_create_rx_segment(pcb, counters.expected_data, data_len, 0, 0, 0);
  251. EXPECT_RET(p != NULL);
  252. if (p != NULL) {
  253. /* pass the segment to tcp_input */
  254. test_tcp_input(p, &netif);
  255. /* check if counters are as expected */
  256. EXPECT_RET(counters.close_calls == 0);
  257. EXPECT_RET(counters.recv_calls == 1);
  258. EXPECT_RET(counters.recved_bytes == data_len);
  259. EXPECT_RET(counters.err_calls == 0);
  260. }
  261. #endif
  262. /* make sure the pcb is freed */
  263. EXPECT_RET(lwip_stats.memp[MEMP_TCP_PCB].used == 1);
  264. tcp_abort(pcb);
  265. EXPECT_RET(lwip_stats.memp[MEMP_TCP_PCB].used == 0);
  266. }
  267. END_TEST
  268. static u8_t tx_data[TCP_WND*2];
  269. static void
  270. check_seqnos(struct tcp_seg *segs, int num_expected, u32_t *seqnos_expected)
  271. {
  272. struct tcp_seg *s = segs;
  273. int i;
  274. for (i = 0; i < num_expected; i++, s = s->next) {
  275. EXPECT_RET(s != NULL);
  276. EXPECT(s->tcphdr->seqno == htonl(seqnos_expected[i]));
  277. }
  278. EXPECT(s == NULL);
  279. }
  280. /** Send data with sequence numbers that wrap around the u32_t range.
  281. * Then, provoke fast retransmission by duplicate ACKs and check that all
  282. * segment lists are still properly sorted. */
  283. START_TEST(test_tcp_fast_rexmit_wraparound)
  284. {
  285. struct netif netif;
  286. struct test_tcp_txcounters txcounters;
  287. struct test_tcp_counters counters;
  288. struct tcp_pcb* pcb;
  289. struct pbuf* p;
  290. ip_addr_t remote_ip, local_ip, netmask;
  291. u16_t remote_port = 0x100, local_port = 0x101;
  292. err_t err;
  293. #define SEQNO1 (0xFFFFFF00 - TCP_MSS)
  294. #define ISS 6510
  295. u16_t i, sent_total = 0;
  296. u32_t seqnos[] = {
  297. SEQNO1,
  298. SEQNO1 + (1 * TCP_MSS),
  299. SEQNO1 + (2 * TCP_MSS),
  300. SEQNO1 + (3 * TCP_MSS),
  301. SEQNO1 + (4 * TCP_MSS),
  302. SEQNO1 + (5 * TCP_MSS)};
  303. LWIP_UNUSED_ARG(_i);
  304. for (i = 0; i < sizeof(tx_data); i++) {
  305. tx_data[i] = (u8_t)i;
  306. }
  307. /* initialize local vars */
  308. IP4_ADDR(&local_ip, 192, 168, 1, 1);
  309. IP4_ADDR(&remote_ip, 192, 168, 1, 2);
  310. IP4_ADDR(&netmask, 255, 255, 255, 0);
  311. test_tcp_init_netif(&netif, &txcounters, &local_ip, &netmask);
  312. memset(&counters, 0, sizeof(counters));
  313. /* create and initialize the pcb */
  314. tcp_ticks = SEQNO1 - ISS;
  315. pcb = test_tcp_new_counters_pcb(&counters);
  316. EXPECT_RET(pcb != NULL);
  317. EXPECT(pcb->lastack == SEQNO1);
  318. tcp_set_state(pcb, ESTABLISHED, &local_ip, &remote_ip, local_port, remote_port);
  319. pcb->mss = TCP_MSS;
  320. /* disable initial congestion window (we don't send a SYN here...) */
  321. pcb->cwnd = 2*TCP_MSS;
  322. /* send 6 mss-sized segments */
  323. for (i = 0; i < 6; i++) {
  324. err = tcp_write(pcb, &tx_data[sent_total], TCP_MSS, TCP_WRITE_FLAG_COPY);
  325. EXPECT_RET(err == ERR_OK);
  326. sent_total += TCP_MSS;
  327. }
  328. check_seqnos(pcb->unsent, 6, seqnos);
  329. EXPECT(pcb->unacked == NULL);
  330. err = tcp_output(pcb);
  331. EXPECT(txcounters.num_tx_calls == 2);
  332. EXPECT(txcounters.num_tx_bytes == 2 * (TCP_MSS + 40U));
  333. memset(&txcounters, 0, sizeof(txcounters));
  334. check_seqnos(pcb->unacked, 2, seqnos);
  335. check_seqnos(pcb->unsent, 4, &seqnos[2]);
  336. /* ACK the first segment */
  337. p = tcp_create_rx_segment(pcb, NULL, 0, 0, TCP_MSS, TCP_ACK);
  338. test_tcp_input(p, &netif);
  339. /* ensure this didn't trigger a retransmission */
  340. EXPECT(txcounters.num_tx_calls == 1);
  341. EXPECT(txcounters.num_tx_bytes == TCP_MSS + 40U);
  342. memset(&txcounters, 0, sizeof(txcounters));
  343. check_seqnos(pcb->unacked, 2, &seqnos[1]);
  344. check_seqnos(pcb->unsent, 3, &seqnos[3]);
  345. /* 3 dupacks */
  346. EXPECT(pcb->dupacks == 0);
  347. p = tcp_create_rx_segment(pcb, NULL, 0, 0, 0, TCP_ACK);
  348. test_tcp_input(p, &netif);
  349. EXPECT(txcounters.num_tx_calls == 0);
  350. EXPECT(pcb->dupacks == 1);
  351. p = tcp_create_rx_segment(pcb, NULL, 0, 0, 0, TCP_ACK);
  352. test_tcp_input(p, &netif);
  353. EXPECT(txcounters.num_tx_calls == 0);
  354. EXPECT(pcb->dupacks == 2);
  355. /* 3rd dupack -> fast rexmit */
  356. p = tcp_create_rx_segment(pcb, NULL, 0, 0, 0, TCP_ACK);
  357. test_tcp_input(p, &netif);
  358. EXPECT(pcb->dupacks == 3);
  359. EXPECT(txcounters.num_tx_calls == 4);
  360. memset(&txcounters, 0, sizeof(txcounters));
  361. EXPECT(pcb->unsent == NULL);
  362. check_seqnos(pcb->unacked, 5, &seqnos[1]);
  363. /* make sure the pcb is freed */
  364. EXPECT_RET(lwip_stats.memp[MEMP_TCP_PCB].used == 1);
  365. tcp_abort(pcb);
  366. EXPECT_RET(lwip_stats.memp[MEMP_TCP_PCB].used == 0);
  367. }
  368. END_TEST
  369. /** Send data with sequence numbers that wrap around the u32_t range.
  370. * Then, provoke RTO retransmission and check that all
  371. * segment lists are still properly sorted. */
  372. START_TEST(test_tcp_rto_rexmit_wraparound)
  373. {
  374. struct netif netif;
  375. struct test_tcp_txcounters txcounters;
  376. struct test_tcp_counters counters;
  377. struct tcp_pcb* pcb;
  378. ip_addr_t remote_ip, local_ip, netmask;
  379. u16_t remote_port = 0x100, local_port = 0x101;
  380. err_t err;
  381. #define SEQNO1 (0xFFFFFF00 - TCP_MSS)
  382. #define ISS 6510
  383. u16_t i, sent_total = 0;
  384. u32_t seqnos[] = {
  385. SEQNO1,
  386. SEQNO1 + (1 * TCP_MSS),
  387. SEQNO1 + (2 * TCP_MSS),
  388. SEQNO1 + (3 * TCP_MSS),
  389. SEQNO1 + (4 * TCP_MSS),
  390. SEQNO1 + (5 * TCP_MSS)};
  391. LWIP_UNUSED_ARG(_i);
  392. for (i = 0; i < sizeof(tx_data); i++) {
  393. tx_data[i] = (u8_t)i;
  394. }
  395. /* initialize local vars */
  396. IP4_ADDR(&local_ip, 192, 168, 1, 1);
  397. IP4_ADDR(&remote_ip, 192, 168, 1, 2);
  398. IP4_ADDR(&netmask, 255, 255, 255, 0);
  399. test_tcp_init_netif(&netif, &txcounters, &local_ip, &netmask);
  400. memset(&counters, 0, sizeof(counters));
  401. /* create and initialize the pcb */
  402. tcp_ticks = 0;
  403. tcp_ticks = 0 - tcp_next_iss();
  404. tcp_ticks = SEQNO1 - tcp_next_iss();
  405. pcb = test_tcp_new_counters_pcb(&counters);
  406. EXPECT_RET(pcb != NULL);
  407. EXPECT(pcb->lastack == SEQNO1);
  408. tcp_set_state(pcb, ESTABLISHED, &local_ip, &remote_ip, local_port, remote_port);
  409. pcb->mss = TCP_MSS;
  410. /* disable initial congestion window (we don't send a SYN here...) */
  411. pcb->cwnd = 2*TCP_MSS;
  412. /* send 6 mss-sized segments */
  413. for (i = 0; i < 6; i++) {
  414. err = tcp_write(pcb, &tx_data[sent_total], TCP_MSS, TCP_WRITE_FLAG_COPY);
  415. EXPECT_RET(err == ERR_OK);
  416. sent_total += TCP_MSS;
  417. }
  418. check_seqnos(pcb->unsent, 6, seqnos);
  419. EXPECT(pcb->unacked == NULL);
  420. err = tcp_output(pcb);
  421. EXPECT(txcounters.num_tx_calls == 2);
  422. EXPECT(txcounters.num_tx_bytes == 2 * (TCP_MSS + 40U));
  423. memset(&txcounters, 0, sizeof(txcounters));
  424. check_seqnos(pcb->unacked, 2, seqnos);
  425. check_seqnos(pcb->unsent, 4, &seqnos[2]);
  426. /* call the tcp timer some times */
  427. for (i = 0; i < 10; i++) {
  428. test_tcp_tmr();
  429. EXPECT(txcounters.num_tx_calls == 0);
  430. }
  431. /* 11th call to tcp_tmr: RTO rexmit fires */
  432. test_tcp_tmr();
  433. EXPECT(txcounters.num_tx_calls == 1);
  434. check_seqnos(pcb->unacked, 1, seqnos);
  435. check_seqnos(pcb->unsent, 5, &seqnos[1]);
  436. /* fake greater cwnd */
  437. pcb->cwnd = pcb->snd_wnd;
  438. /* send more data */
  439. err = tcp_output(pcb);
  440. EXPECT(err == ERR_OK);
  441. /* check queues are sorted */
  442. EXPECT(pcb->unsent == NULL);
  443. check_seqnos(pcb->unacked, 6, seqnos);
  444. /* make sure the pcb is freed */
  445. EXPECT_RET(lwip_stats.memp[MEMP_TCP_PCB].used == 1);
  446. tcp_abort(pcb);
  447. EXPECT_RET(lwip_stats.memp[MEMP_TCP_PCB].used == 0);
  448. }
  449. END_TEST
  450. /** Provoke fast retransmission by duplicate ACKs and then recover by ACKing all sent data.
  451. * At the end, send more data. */
  452. static void test_tcp_tx_full_window_lost(u8_t zero_window_probe_from_unsent)
  453. {
  454. struct netif netif;
  455. struct test_tcp_txcounters txcounters;
  456. struct test_tcp_counters counters;
  457. struct tcp_pcb* pcb;
  458. struct pbuf *p;
  459. ip_addr_t remote_ip, local_ip, netmask;
  460. u16_t remote_port = 0x100, local_port = 0x101;
  461. err_t err;
  462. u16_t sent_total, i;
  463. u8_t expected = 0xFE;
  464. for (i = 0; i < sizeof(tx_data); i++) {
  465. u8_t d = (u8_t)i;
  466. if (d == 0xFE) {
  467. d = 0xF0;
  468. }
  469. tx_data[i] = d;
  470. }
  471. if (zero_window_probe_from_unsent) {
  472. tx_data[TCP_WND] = expected;
  473. } else {
  474. tx_data[0] = expected;
  475. }
  476. /* initialize local vars */
  477. IP4_ADDR(&local_ip, 192, 168, 1, 1);
  478. IP4_ADDR(&remote_ip, 192, 168, 1, 2);
  479. IP4_ADDR(&netmask, 255, 255, 255, 0);
  480. test_tcp_init_netif(&netif, &txcounters, &local_ip, &netmask);
  481. memset(&counters, 0, sizeof(counters));
  482. memset(&txcounters, 0, sizeof(txcounters));
  483. /* create and initialize the pcb */
  484. pcb = test_tcp_new_counters_pcb(&counters);
  485. EXPECT_RET(pcb != NULL);
  486. tcp_set_state(pcb, ESTABLISHED, &local_ip, &remote_ip, local_port, remote_port);
  487. pcb->mss = TCP_MSS;
  488. /* disable initial congestion window (we don't send a SYN here...) */
  489. pcb->cwnd = pcb->snd_wnd;
  490. /* send a full window (minus 1 packets) of TCP data in MSS-sized chunks */
  491. sent_total = 0;
  492. if ((TCP_WND - TCP_MSS) % TCP_MSS != 0) {
  493. u16_t initial_data_len = (TCP_WND - TCP_MSS) % TCP_MSS;
  494. err = tcp_write(pcb, &tx_data[sent_total], initial_data_len, TCP_WRITE_FLAG_COPY);
  495. EXPECT_RET(err == ERR_OK);
  496. err = tcp_output(pcb);
  497. EXPECT_RET(err == ERR_OK);
  498. EXPECT(txcounters.num_tx_calls == 1);
  499. EXPECT(txcounters.num_tx_bytes == initial_data_len + 40U);
  500. memset(&txcounters, 0, sizeof(txcounters));
  501. sent_total += initial_data_len;
  502. }
  503. for (; sent_total < (TCP_WND - TCP_MSS); sent_total += TCP_MSS) {
  504. err = tcp_write(pcb, &tx_data[sent_total], TCP_MSS, TCP_WRITE_FLAG_COPY);
  505. EXPECT_RET(err == ERR_OK);
  506. err = tcp_output(pcb);
  507. EXPECT_RET(err == ERR_OK);
  508. EXPECT(txcounters.num_tx_calls == 1);
  509. EXPECT(txcounters.num_tx_bytes == TCP_MSS + 40U);
  510. memset(&txcounters, 0, sizeof(txcounters));
  511. }
  512. EXPECT(sent_total == (TCP_WND - TCP_MSS));
  513. /* now ACK the packet before the first */
  514. p = tcp_create_rx_segment(pcb, NULL, 0, 0, 0, TCP_ACK);
  515. test_tcp_input(p, &netif);
  516. /* ensure this didn't trigger a retransmission */
  517. EXPECT(txcounters.num_tx_calls == 0);
  518. EXPECT(txcounters.num_tx_bytes == 0);
  519. EXPECT(pcb->persist_backoff == 0);
  520. /* send the last packet, now a complete window has been sent */
  521. err = tcp_write(pcb, &tx_data[sent_total], TCP_MSS, TCP_WRITE_FLAG_COPY);
  522. sent_total += TCP_MSS;
  523. EXPECT_RET(err == ERR_OK);
  524. err = tcp_output(pcb);
  525. EXPECT_RET(err == ERR_OK);
  526. EXPECT(txcounters.num_tx_calls == 1);
  527. EXPECT(txcounters.num_tx_bytes == TCP_MSS + 40U);
  528. memset(&txcounters, 0, sizeof(txcounters));
  529. EXPECT(pcb->persist_backoff == 0);
  530. if (zero_window_probe_from_unsent) {
  531. /* ACK all data but close the TX window */
  532. p = tcp_create_rx_segment_wnd(pcb, NULL, 0, 0, TCP_WND, TCP_ACK, 0);
  533. test_tcp_input(p, &netif);
  534. /* ensure this didn't trigger any transmission */
  535. EXPECT(txcounters.num_tx_calls == 0);
  536. EXPECT(txcounters.num_tx_bytes == 0);
  537. EXPECT(pcb->persist_backoff == 1);
  538. }
  539. /* send one byte more (out of window) -> persist timer starts */
  540. err = tcp_write(pcb, &tx_data[sent_total], 1, TCP_WRITE_FLAG_COPY);
  541. EXPECT_RET(err == ERR_OK);
  542. err = tcp_output(pcb);
  543. EXPECT_RET(err == ERR_OK);
  544. EXPECT(txcounters.num_tx_calls == 0);
  545. EXPECT(txcounters.num_tx_bytes == 0);
  546. memset(&txcounters, 0, sizeof(txcounters));
  547. if (!zero_window_probe_from_unsent) {
  548. /* no persist timer unless a zero window announcement has been received */
  549. EXPECT(pcb->persist_backoff == 0);
  550. } else {
  551. EXPECT(pcb->persist_backoff == 1);
  552. /* call tcp_timer some more times to let persist timer count up */
  553. for (i = 0; i < 4; i++) {
  554. test_tcp_tmr();
  555. EXPECT(txcounters.num_tx_calls == 0);
  556. EXPECT(txcounters.num_tx_bytes == 0);
  557. }
  558. /* this should trigger the zero-window-probe */
  559. txcounters.copy_tx_packets = 1;
  560. test_tcp_tmr();
  561. txcounters.copy_tx_packets = 0;
  562. EXPECT(txcounters.num_tx_calls == 1);
  563. EXPECT(txcounters.num_tx_bytes == 1 + 40U);
  564. EXPECT(txcounters.tx_packets != NULL);
  565. if (txcounters.tx_packets != NULL) {
  566. u8_t sent;
  567. u16_t ret;
  568. ret = pbuf_copy_partial(txcounters.tx_packets, &sent, 1, 40U);
  569. EXPECT(ret == 1);
  570. EXPECT(sent == expected);
  571. }
  572. if (txcounters.tx_packets != NULL) {
  573. pbuf_free(txcounters.tx_packets);
  574. txcounters.tx_packets = NULL;
  575. }
  576. }
  577. /* make sure the pcb is freed */
  578. EXPECT_RET(lwip_stats.memp[MEMP_TCP_PCB].used == 1);
  579. tcp_abort(pcb);
  580. EXPECT_RET(lwip_stats.memp[MEMP_TCP_PCB].used == 0);
  581. }
  582. START_TEST(test_tcp_tx_full_window_lost_from_unsent)
  583. {
  584. LWIP_UNUSED_ARG(_i);
  585. test_tcp_tx_full_window_lost(1);
  586. }
  587. END_TEST
  588. START_TEST(test_tcp_tx_full_window_lost_from_unacked)
  589. {
  590. LWIP_UNUSED_ARG(_i);
  591. test_tcp_tx_full_window_lost(0);
  592. }
  593. END_TEST
  594. /** Create the suite including all tests for this module */
  595. Suite *
  596. tcp_suite(void)
  597. {
  598. testfunc tests[] = {
  599. TESTFUNC(test_tcp_new_abort),
  600. TESTFUNC(test_tcp_recv_inseq),
  601. TESTFUNC(test_tcp_fast_retx_recover),
  602. TESTFUNC(test_tcp_fast_rexmit_wraparound),
  603. TESTFUNC(test_tcp_rto_rexmit_wraparound),
  604. TESTFUNC(test_tcp_tx_full_window_lost_from_unacked),
  605. TESTFUNC(test_tcp_tx_full_window_lost_from_unsent)
  606. };
  607. return create_suite("TCP", tests, sizeof(tests)/sizeof(testfunc), tcp_setup, tcp_teardown);
  608. }