unit-test-client.c 32 KB

123456789101112131415161718192021222324252627282930313233343536373839404142434445464748495051525354555657585960616263646566676869707172737475767778798081828384858687888990919293949596979899100101102103104105106107108109110111112113114115116117118119120121122123124125126127128129130131132133134135136137138139140141142143144145146147148149150151152153154155156157158159160161162163164165166167168169170171172173174175176177178179180181182183184185186187188189190191192193194195196197198199200201202203204205206207208209210211212213214215216217218219220221222223224225226227228229230231232233234235236237238239240241242243244245246247248249250251252253254255256257258259260261262263264265266267268269270271272273274275276277278279280281282283284285286287288289290291292293294295296297298299300301302303304305306307308309310311312313314315316317318319320321322323324325326327328329330331332333334335336337338339340341342343344345346347348349350351352353354355356357358359360361362363364365366367368369370371372373374375376377378379380381382383384385386387388389390391392393394395396397398399400401402403404405406407408409410411412413414415416417418419420421422423424425426427428429430431432433434435436437438439440441442443444445446447448449450451452453454455456457458459460461462463464465466467468469470471472473474475476477478479480481482483484485486487488489490491492493494495496497498499500501502503504505506507508509510511512513514515516517518519520521522523524525526527528529530531532533534535536537538539540541542543544545546547548549550551552553554555556557558559560561562563564565566567568569570571572573574575576577578579580581582583584585586587588589590591592593594595596597598599600601602603604605606607608609610611612613614615616617618619620621622623624625626627628629630631632633634635636637638639640641642643644645646647648649650651652653654655656657658659660661662663664665666667668669670671672673674675676677678679680681682683684685686687688689690691692693694695696697698699700701702703704705706707708709710711712713714715716717718719720721722723724725726727728729730731732733734735736737738739740741742743744745746747748749750751752753754755756757758759760761762763764765766767768769770771772773774775776777778779780781782783784785786787788789790791792793794795796797798799800801802803804805806807808809810811812813814815816817818819820821822823824825826827828829830831832833834835836837838839840841842843844845846847848849850851852853854855856857858859860861862863864865866867868869
  1. /*
  2. * Copyright © 2008-2014 Stéphane Raimbault <stephane.raimbault@gmail.com>
  3. *
  4. * SPDX-License-Identifier: BSD-3-Clause
  5. */
  6. #include <stdio.h>
  7. #include <unistd.h>
  8. #include <string.h>
  9. #include <stdlib.h>
  10. #include <errno.h>
  11. #include <modbus.h>
  12. #include "unit-test.h"
  13. enum {
  14. TCP,
  15. TCP_PI,
  16. RTU
  17. };
  18. int test_server(modbus_t *ctx, int use_backend);
  19. int send_crafted_request(modbus_t *ctx, int function,
  20. uint8_t *req, int req_size,
  21. uint16_t max_value, uint16_t bytes,
  22. int backend_length, int backend_offset);
  23. int equal_dword(uint16_t *tab_reg, const uint32_t value);
  24. #define BUG_REPORT(_cond, _format, _args ...) \
  25. printf("\nLine %d: assertion error for '%s': " _format "\n", __LINE__, # _cond, ## _args)
  26. #define ASSERT_TRUE(_cond, _format, __args...) { \
  27. if (_cond) { \
  28. printf("OK\n"); \
  29. } else { \
  30. BUG_REPORT(_cond, _format, ## __args); \
  31. goto close; \
  32. } \
  33. };
  34. int equal_dword(uint16_t *tab_reg, const uint32_t value) {
  35. return ((tab_reg[0] == (value >> 16)) && (tab_reg[1] == (value & 0xFFFF)));
  36. }
  37. int main(int argc, char *argv[])
  38. {
  39. const int NB_REPORT_SLAVE_ID = 10;
  40. uint8_t *tab_rp_bits = NULL;
  41. uint16_t *tab_rp_registers = NULL;
  42. uint16_t *tab_rp_registers_bad = NULL;
  43. modbus_t *ctx = NULL;
  44. int i;
  45. uint8_t value;
  46. int nb_points;
  47. int rc;
  48. float real;
  49. uint32_t old_response_to_sec;
  50. uint32_t old_response_to_usec;
  51. uint32_t new_response_to_sec;
  52. uint32_t new_response_to_usec;
  53. uint32_t old_byte_to_sec;
  54. uint32_t old_byte_to_usec;
  55. int use_backend;
  56. int success = FALSE;
  57. if (argc > 1) {
  58. if (strcmp(argv[1], "tcp") == 0) {
  59. use_backend = TCP;
  60. } else if (strcmp(argv[1], "tcppi") == 0) {
  61. use_backend = TCP_PI;
  62. } else if (strcmp(argv[1], "rtu") == 0) {
  63. use_backend = RTU;
  64. } else {
  65. printf("Usage:\n %s [tcp|tcppi|rtu] - Modbus client for unit testing\n\n", argv[0]);
  66. exit(1);
  67. }
  68. } else {
  69. /* By default */
  70. use_backend = TCP;
  71. }
  72. if (use_backend == TCP) {
  73. ctx = modbus_new_tcp("127.0.0.1", 1502);
  74. } else if (use_backend == TCP_PI) {
  75. ctx = modbus_new_tcp_pi("::1", "1502");
  76. } else {
  77. ctx = modbus_new_rtu("/dev/ttyUSB1", 115200, 'N', 8, 1);
  78. }
  79. if (ctx == NULL) {
  80. fprintf(stderr, "Unable to allocate libmodbus context\n");
  81. return -1;
  82. }
  83. modbus_set_debug(ctx, TRUE);
  84. modbus_set_error_recovery(ctx,
  85. MODBUS_ERROR_RECOVERY_LINK |
  86. MODBUS_ERROR_RECOVERY_PROTOCOL);
  87. if (use_backend == RTU) {
  88. modbus_set_slave(ctx, SERVER_ID);
  89. }
  90. modbus_get_response_timeout(ctx, &old_response_to_sec, &old_response_to_usec);
  91. if (modbus_connect(ctx) == -1) {
  92. fprintf(stderr, "Connection failed: %s\n", modbus_strerror(errno));
  93. modbus_free(ctx);
  94. return -1;
  95. }
  96. modbus_get_response_timeout(ctx, &new_response_to_sec, &new_response_to_usec);
  97. printf("** UNIT TESTING **\n");
  98. printf("1/1 No response timeout modification on connect: ");
  99. ASSERT_TRUE(old_response_to_sec == new_response_to_sec &&
  100. old_response_to_usec == new_response_to_usec, "");
  101. /* Allocate and initialize the memory to store the bits */
  102. nb_points = (UT_BITS_NB > UT_INPUT_BITS_NB) ? UT_BITS_NB : UT_INPUT_BITS_NB;
  103. tab_rp_bits = (uint8_t *) malloc(nb_points * sizeof(uint8_t));
  104. memset(tab_rp_bits, 0, nb_points * sizeof(uint8_t));
  105. /* Allocate and initialize the memory to store the registers */
  106. nb_points = (UT_REGISTERS_NB > UT_INPUT_REGISTERS_NB) ?
  107. UT_REGISTERS_NB : UT_INPUT_REGISTERS_NB;
  108. tab_rp_registers = (uint16_t *) malloc(nb_points * sizeof(uint16_t));
  109. memset(tab_rp_registers, 0, nb_points * sizeof(uint16_t));
  110. printf("\nTEST WRITE/READ:\n");
  111. /** COIL BITS **/
  112. /* Single */
  113. rc = modbus_write_bit(ctx, UT_BITS_ADDRESS, ON);
  114. printf("1/2 modbus_write_bit: ");
  115. ASSERT_TRUE(rc == 1, "");
  116. rc = modbus_read_bits(ctx, UT_BITS_ADDRESS, 1, tab_rp_bits);
  117. printf("2/2 modbus_read_bits: ");
  118. ASSERT_TRUE(rc == 1, "FAILED (nb points %d)\n", rc);
  119. ASSERT_TRUE(tab_rp_bits[0] == ON, "FAILED (%0X != %0X)\n",
  120. tab_rp_bits[0], ON);
  121. /* End single */
  122. /* Multiple bits */
  123. {
  124. uint8_t tab_value[UT_BITS_NB];
  125. modbus_set_bits_from_bytes(tab_value, 0, UT_BITS_NB, UT_BITS_TAB);
  126. rc = modbus_write_bits(ctx, UT_BITS_ADDRESS, UT_BITS_NB, tab_value);
  127. printf("1/2 modbus_write_bits: ");
  128. ASSERT_TRUE(rc == UT_BITS_NB, "");
  129. }
  130. rc = modbus_read_bits(ctx, UT_BITS_ADDRESS, UT_BITS_NB, tab_rp_bits);
  131. printf("2/2 modbus_read_bits: ");
  132. ASSERT_TRUE(rc == UT_BITS_NB, "FAILED (nb points %d)\n", rc);
  133. i = 0;
  134. nb_points = UT_BITS_NB;
  135. while (nb_points > 0) {
  136. int nb_bits = (nb_points > 8) ? 8 : nb_points;
  137. value = modbus_get_byte_from_bits(tab_rp_bits, i*8, nb_bits);
  138. ASSERT_TRUE(value == UT_BITS_TAB[i], "FAILED (%0X != %0X)\n",
  139. value, UT_BITS_TAB[i]);
  140. nb_points -= nb_bits;
  141. i++;
  142. }
  143. printf("OK\n");
  144. /* End of multiple bits */
  145. /** DISCRETE INPUTS **/
  146. rc = modbus_read_input_bits(ctx, UT_INPUT_BITS_ADDRESS,
  147. UT_INPUT_BITS_NB, tab_rp_bits);
  148. printf("1/1 modbus_read_input_bits: ");
  149. ASSERT_TRUE(rc == UT_INPUT_BITS_NB, "FAILED (nb points %d)\n", rc);
  150. i = 0;
  151. nb_points = UT_INPUT_BITS_NB;
  152. while (nb_points > 0) {
  153. int nb_bits = (nb_points > 8) ? 8 : nb_points;
  154. value = modbus_get_byte_from_bits(tab_rp_bits, i*8, nb_bits);
  155. ASSERT_TRUE(value == UT_INPUT_BITS_TAB[i], "FAILED (%0X != %0X)\n",
  156. value, UT_INPUT_BITS_TAB[i]);
  157. nb_points -= nb_bits;
  158. i++;
  159. }
  160. printf("OK\n");
  161. /** HOLDING REGISTERS **/
  162. /* Single register */
  163. rc = modbus_write_register(ctx, UT_REGISTERS_ADDRESS, 0x1234);
  164. printf("1/2 modbus_write_register: ");
  165. ASSERT_TRUE(rc == 1, "");
  166. rc = modbus_read_registers(ctx, UT_REGISTERS_ADDRESS,
  167. 1, tab_rp_registers);
  168. printf("2/2 modbus_read_registers: ");
  169. ASSERT_TRUE(rc == 1, "FAILED (nb points %d)\n", rc);
  170. ASSERT_TRUE(tab_rp_registers[0] == 0x1234, "FAILED (%0X != %0X)\n",
  171. tab_rp_registers[0], 0x1234);
  172. /* End of single register */
  173. /* Many registers */
  174. rc = modbus_write_registers(ctx, UT_REGISTERS_ADDRESS,
  175. UT_REGISTERS_NB, UT_REGISTERS_TAB);
  176. printf("1/5 modbus_write_registers: ");
  177. ASSERT_TRUE(rc == UT_REGISTERS_NB, "");
  178. rc = modbus_read_registers(ctx, UT_REGISTERS_ADDRESS,
  179. UT_REGISTERS_NB, tab_rp_registers);
  180. printf("2/5 modbus_read_registers: ");
  181. ASSERT_TRUE(rc == UT_REGISTERS_NB, "FAILED (nb points %d)\n", rc);
  182. for (i=0; i < UT_REGISTERS_NB; i++) {
  183. ASSERT_TRUE(tab_rp_registers[i] == UT_REGISTERS_TAB[i],
  184. "FAILED (%0X != %0X)\n",
  185. tab_rp_registers[i], UT_REGISTERS_TAB[i]);
  186. }
  187. rc = modbus_read_registers(ctx, UT_REGISTERS_ADDRESS,
  188. 0, tab_rp_registers);
  189. printf("3/5 modbus_read_registers (0): ");
  190. ASSERT_TRUE(rc == -1, "FAILED (nb_points %d)\n", rc);
  191. nb_points = (UT_REGISTERS_NB >
  192. UT_INPUT_REGISTERS_NB) ?
  193. UT_REGISTERS_NB : UT_INPUT_REGISTERS_NB;
  194. memset(tab_rp_registers, 0, nb_points * sizeof(uint16_t));
  195. /* Write registers to zero from tab_rp_registers and store read registers
  196. into tab_rp_registers. So the read registers must set to 0, except the
  197. first one because there is an offset of 1 register on write. */
  198. rc = modbus_write_and_read_registers(ctx,
  199. UT_REGISTERS_ADDRESS + 1,
  200. UT_REGISTERS_NB - 1,
  201. tab_rp_registers,
  202. UT_REGISTERS_ADDRESS,
  203. UT_REGISTERS_NB,
  204. tab_rp_registers);
  205. printf("4/5 modbus_write_and_read_registers: ");
  206. ASSERT_TRUE(rc == UT_REGISTERS_NB, "FAILED (nb points %d != %d)\n",
  207. rc, UT_REGISTERS_NB);
  208. ASSERT_TRUE(tab_rp_registers[0] == UT_REGISTERS_TAB[0],
  209. "FAILED (%0X != %0X)\n",
  210. tab_rp_registers[0], UT_REGISTERS_TAB[0]);
  211. for (i=1; i < UT_REGISTERS_NB; i++) {
  212. ASSERT_TRUE(tab_rp_registers[i] == 0, "FAILED (%0X != %0X)\n",
  213. tab_rp_registers[i], 0);
  214. }
  215. /* End of many registers */
  216. /** INPUT REGISTERS **/
  217. rc = modbus_read_input_registers(ctx, UT_INPUT_REGISTERS_ADDRESS,
  218. UT_INPUT_REGISTERS_NB,
  219. tab_rp_registers);
  220. printf("1/1 modbus_read_input_registers: ");
  221. ASSERT_TRUE(rc == UT_INPUT_REGISTERS_NB, "FAILED (nb points %d)\n", rc);
  222. for (i=0; i < UT_INPUT_REGISTERS_NB; i++) {
  223. ASSERT_TRUE(tab_rp_registers[i] == UT_INPUT_REGISTERS_TAB[i],
  224. "FAILED (%0X != %0X)\n",
  225. tab_rp_registers[i], UT_INPUT_REGISTERS_TAB[i]);
  226. }
  227. /* MASKS */
  228. printf("1/1 Write mask: ");
  229. rc = modbus_write_register(ctx, UT_REGISTERS_ADDRESS, 0x12);
  230. rc = modbus_mask_write_register(ctx, UT_REGISTERS_ADDRESS, 0xF2, 0x25);
  231. ASSERT_TRUE(rc != -1, "FAILED (%x == -1)\n", rc);
  232. rc = modbus_read_registers(ctx, UT_REGISTERS_ADDRESS, 1, tab_rp_registers);
  233. ASSERT_TRUE(tab_rp_registers[0] == 0x17,
  234. "FAILED (%0X != %0X)\n",
  235. tab_rp_registers[0], 0x17);
  236. printf("\nTEST FLOATS\n");
  237. /** FLOAT **/
  238. printf("1/4 Set/get float ABCD: ");
  239. modbus_set_float_abcd(UT_REAL, tab_rp_registers);
  240. ASSERT_TRUE(equal_dword(tab_rp_registers, UT_IREAL_ABCD), "FAILED Set float ABCD");
  241. real = modbus_get_float_abcd(tab_rp_registers);
  242. ASSERT_TRUE(real == UT_REAL, "FAILED (%f != %f)\n", real, UT_REAL);
  243. printf("2/4 Set/get float DCBA: ");
  244. modbus_set_float_dcba(UT_REAL, tab_rp_registers);
  245. ASSERT_TRUE(equal_dword(tab_rp_registers, UT_IREAL_DCBA), "FAILED Set float DCBA");
  246. real = modbus_get_float_dcba(tab_rp_registers);
  247. ASSERT_TRUE(real == UT_REAL, "FAILED (%f != %f)\n", real, UT_REAL);
  248. printf("3/4 Set/get float BADC: ");
  249. modbus_set_float_badc(UT_REAL, tab_rp_registers);
  250. ASSERT_TRUE(equal_dword(tab_rp_registers, UT_IREAL_BADC), "FAILED Set float BADC");
  251. real = modbus_get_float_badc(tab_rp_registers);
  252. ASSERT_TRUE(real == UT_REAL, "FAILED (%f != %f)\n", real, UT_REAL);
  253. printf("4/4 Set/get float CDAB: ");
  254. modbus_set_float_cdab(UT_REAL, tab_rp_registers);
  255. ASSERT_TRUE(equal_dword(tab_rp_registers, UT_IREAL_CDAB), "FAILED Set float CDAB");
  256. real = modbus_get_float_cdab(tab_rp_registers);
  257. ASSERT_TRUE(real == UT_REAL, "FAILED (%f != %f)\n", real, UT_REAL);
  258. printf("\nAt this point, error messages doesn't mean the test has failed\n");
  259. /** ILLEGAL DATA ADDRESS **/
  260. printf("\nTEST ILLEGAL DATA ADDRESS:\n");
  261. /* The mapping begins at the defined addresses and ends at address +
  262. * nb_points so these addresses are not valid. */
  263. rc = modbus_read_bits(ctx, 0, 1, tab_rp_bits);
  264. printf("* modbus_read_bits (0): ");
  265. ASSERT_TRUE(rc == -1 && errno == EMBXILADD, "");
  266. rc = modbus_read_bits(ctx, UT_BITS_ADDRESS, UT_BITS_NB + 1, tab_rp_bits);
  267. printf("* modbus_read_bits (max): ");
  268. ASSERT_TRUE(rc == -1 && errno == EMBXILADD, "");
  269. rc = modbus_read_input_bits(ctx, 0, 1, tab_rp_bits);
  270. printf("* modbus_read_input_bits (0): ");
  271. ASSERT_TRUE(rc == -1 && errno == EMBXILADD, "");
  272. rc = modbus_read_input_bits(ctx, UT_INPUT_BITS_ADDRESS,
  273. UT_INPUT_BITS_NB + 1, tab_rp_bits);
  274. printf("* modbus_read_input_bits (max): ");
  275. ASSERT_TRUE(rc == -1 && errno == EMBXILADD, "");
  276. rc = modbus_read_registers(ctx, 0, 1, tab_rp_registers);
  277. printf("* modbus_read_registers (0): ");
  278. ASSERT_TRUE(rc == -1 && errno == EMBXILADD, "");
  279. rc = modbus_read_registers(ctx, UT_REGISTERS_ADDRESS,
  280. UT_REGISTERS_NB_MAX + 1, tab_rp_registers);
  281. printf("* modbus_read_registers (max): ");
  282. ASSERT_TRUE(rc == -1 && errno == EMBXILADD, "");
  283. rc = modbus_read_input_registers(ctx, 0, 1, tab_rp_registers);
  284. printf("* modbus_read_input_registers (0): ");
  285. ASSERT_TRUE(rc == -1 && errno == EMBXILADD, "");
  286. rc = modbus_read_input_registers(ctx, UT_INPUT_REGISTERS_ADDRESS,
  287. UT_INPUT_REGISTERS_NB + 1,
  288. tab_rp_registers);
  289. printf("* modbus_read_input_registers (max): ");
  290. ASSERT_TRUE(rc == -1 && errno == EMBXILADD, "");
  291. rc = modbus_write_bit(ctx, 0, ON);
  292. printf("* modbus_write_bit (0): ");
  293. ASSERT_TRUE(rc == -1 && errno == EMBXILADD, "");
  294. rc = modbus_write_bit(ctx, UT_BITS_ADDRESS + UT_BITS_NB, ON);
  295. printf("* modbus_write_bit (max): ");
  296. ASSERT_TRUE(rc == -1 && errno == EMBXILADD, "");
  297. rc = modbus_write_bits(ctx, 0, 1, tab_rp_bits);
  298. printf("* modbus_write_coils (0): ");
  299. ASSERT_TRUE(rc == -1 && errno == EMBXILADD, "");
  300. rc = modbus_write_bits(ctx, UT_BITS_ADDRESS + UT_BITS_NB,
  301. UT_BITS_NB, tab_rp_bits);
  302. printf("* modbus_write_coils (max): ");
  303. ASSERT_TRUE(rc == -1 && errno == EMBXILADD, "");
  304. rc = modbus_write_register(ctx, 0, tab_rp_registers[0]);
  305. printf("* modbus_write_register (0): ");
  306. ASSERT_TRUE(rc == -1 && errno == EMBXILADD, "");
  307. rc = modbus_write_register(ctx, UT_REGISTERS_ADDRESS + UT_REGISTERS_NB_MAX,
  308. tab_rp_registers[0]);
  309. printf("* modbus_write_register (max): ");
  310. ASSERT_TRUE(rc == -1 && errno == EMBXILADD, "");
  311. rc = modbus_write_registers(ctx, 0, 1, tab_rp_registers);
  312. printf("* modbus_write_registers (0): ");
  313. ASSERT_TRUE(rc == -1 && errno == EMBXILADD, "");
  314. rc = modbus_write_registers(ctx, UT_REGISTERS_ADDRESS + UT_REGISTERS_NB_MAX,
  315. UT_REGISTERS_NB, tab_rp_registers);
  316. printf("* modbus_write_registers (max): ");
  317. ASSERT_TRUE(rc == -1 && errno == EMBXILADD, "");
  318. rc = modbus_mask_write_register(ctx, 0, 0xF2, 0x25);
  319. printf("* modbus_mask_write_registers (0): ");
  320. ASSERT_TRUE(rc == -1 && errno == EMBXILADD, "");
  321. rc = modbus_mask_write_register(ctx, UT_REGISTERS_ADDRESS + UT_REGISTERS_NB_MAX,
  322. 0xF2, 0x25);
  323. printf("* modbus_mask_write_registers (max): ");
  324. ASSERT_TRUE(rc == -1 && errno == EMBXILADD, "");
  325. rc = modbus_write_and_read_registers(ctx, 0, 1, tab_rp_registers, 0, 1, tab_rp_registers);
  326. printf("* modbus_write_and_read_registers (0): ");
  327. ASSERT_TRUE(rc == -1 && errno == EMBXILADD, "");
  328. rc = modbus_write_and_read_registers(ctx,
  329. UT_REGISTERS_ADDRESS + UT_REGISTERS_NB_MAX,
  330. UT_REGISTERS_NB, tab_rp_registers,
  331. UT_REGISTERS_ADDRESS + UT_REGISTERS_NB_MAX,
  332. UT_REGISTERS_NB, tab_rp_registers);
  333. printf("* modbus_write_and_read_registers (max): ");
  334. ASSERT_TRUE(rc == -1 && errno == EMBXILADD, "");
  335. /** TOO MANY DATA **/
  336. printf("\nTEST TOO MANY DATA ERROR:\n");
  337. rc = modbus_read_bits(ctx, UT_BITS_ADDRESS,
  338. MODBUS_MAX_READ_BITS + 1, tab_rp_bits);
  339. printf("* modbus_read_bits: ");
  340. ASSERT_TRUE(rc == -1 && errno == EMBMDATA, "");
  341. rc = modbus_read_input_bits(ctx, UT_INPUT_BITS_ADDRESS,
  342. MODBUS_MAX_READ_BITS + 1, tab_rp_bits);
  343. printf("* modbus_read_input_bits: ");
  344. ASSERT_TRUE(rc == -1 && errno == EMBMDATA, "");
  345. rc = modbus_read_registers(ctx, UT_REGISTERS_ADDRESS,
  346. MODBUS_MAX_READ_REGISTERS + 1,
  347. tab_rp_registers);
  348. printf("* modbus_read_registers: ");
  349. ASSERT_TRUE(rc == -1 && errno == EMBMDATA, "");
  350. rc = modbus_read_input_registers(ctx, UT_INPUT_REGISTERS_ADDRESS,
  351. MODBUS_MAX_READ_REGISTERS + 1,
  352. tab_rp_registers);
  353. printf("* modbus_read_input_registers: ");
  354. ASSERT_TRUE(rc == -1 && errno == EMBMDATA, "");
  355. rc = modbus_write_bits(ctx, UT_BITS_ADDRESS,
  356. MODBUS_MAX_WRITE_BITS + 1, tab_rp_bits);
  357. printf("* modbus_write_bits: ");
  358. ASSERT_TRUE(rc == -1 && errno == EMBMDATA, "");
  359. rc = modbus_write_registers(ctx, UT_REGISTERS_ADDRESS,
  360. MODBUS_MAX_WRITE_REGISTERS + 1,
  361. tab_rp_registers);
  362. printf("* modbus_write_registers: ");
  363. ASSERT_TRUE(rc == -1 && errno == EMBMDATA, "");
  364. /** SLAVE REPLY **/
  365. printf("\nTEST SLAVE REPLY:\n");
  366. modbus_set_slave(ctx, INVALID_SERVER_ID);
  367. rc = modbus_read_registers(ctx, UT_REGISTERS_ADDRESS,
  368. UT_REGISTERS_NB, tab_rp_registers);
  369. if (use_backend == RTU) {
  370. const int RAW_REQ_LENGTH = 6;
  371. uint8_t raw_req[] = { INVALID_SERVER_ID, 0x03, 0x00, 0x01, 0x01, 0x01 };
  372. /* Too many points */
  373. uint8_t raw_invalid_req[] = { INVALID_SERVER_ID, 0x03, 0x00, 0x01, 0xFF, 0xFF };
  374. const int RAW_REP_LENGTH = 7;
  375. uint8_t raw_rep[] = { INVALID_SERVER_ID, 0x03, 0x04, 0, 0, 0, 0 };
  376. uint8_t rsp[MODBUS_RTU_MAX_ADU_LENGTH];
  377. /* No response in RTU mode */
  378. printf("1-A/3 No response from slave %d: ", INVALID_SERVER_ID);
  379. ASSERT_TRUE(rc == -1 && errno == ETIMEDOUT, "");
  380. /* The slave raises a timeout on a confirmation to ignore because if an
  381. * indication for another slave is received, a confirmation must follow */
  382. /* Send a pair of indication/confirmation to the slave with a different
  383. * slave ID to simulate a communication on a RS485 bus. At first, the
  384. * slave will see the indication message then the confirmation, and it must
  385. * ignore both. */
  386. modbus_send_raw_request(ctx, raw_req, RAW_REQ_LENGTH * sizeof(uint8_t));
  387. modbus_send_raw_request(ctx, raw_rep, RAW_REP_LENGTH * sizeof(uint8_t));
  388. rc = modbus_receive_confirmation(ctx, rsp);
  389. printf("1-B/3 No response from slave %d on indication/confirmation messages: ",
  390. INVALID_SERVER_ID);
  391. ASSERT_TRUE(rc == -1 && errno == ETIMEDOUT, "");
  392. /* Send an INVALID request for another slave */
  393. modbus_send_raw_request(ctx, raw_invalid_req, RAW_REQ_LENGTH * sizeof(uint8_t));
  394. rc = modbus_receive_confirmation(ctx, rsp);
  395. printf("1-C/3 No response from slave %d with invalid request: ",
  396. INVALID_SERVER_ID);
  397. ASSERT_TRUE(rc == -1 && errno == ETIMEDOUT, "");
  398. } else {
  399. /* Response in TCP mode */
  400. printf("1/3 Response from slave %d: ", INVALID_SERVER_ID);
  401. ASSERT_TRUE(rc == UT_REGISTERS_NB, "");
  402. }
  403. rc = modbus_set_slave(ctx, MODBUS_BROADCAST_ADDRESS);
  404. ASSERT_TRUE(rc != -1, "Invalid broacast address");
  405. rc = modbus_read_registers(ctx, UT_REGISTERS_ADDRESS,
  406. UT_REGISTERS_NB, tab_rp_registers);
  407. printf("2/3 No reply after a broadcast query: ");
  408. ASSERT_TRUE(rc == -1 && errno == ETIMEDOUT, "");
  409. /* Restore slave */
  410. if (use_backend == RTU) {
  411. modbus_set_slave(ctx, SERVER_ID);
  412. } else {
  413. modbus_set_slave(ctx, MODBUS_TCP_SLAVE);
  414. }
  415. printf("3/3 Response with an invalid TID or slave: ");
  416. rc = modbus_read_registers(ctx, UT_REGISTERS_ADDRESS_INVALID_TID_OR_SLAVE,
  417. 1, tab_rp_registers);
  418. ASSERT_TRUE(rc == -1, "");
  419. printf("1/2 Report slave ID truncated: \n");
  420. /* Set a marker to ensure limit is respected */
  421. tab_rp_bits[NB_REPORT_SLAVE_ID - 1] = 42;
  422. rc = modbus_report_slave_id(ctx, NB_REPORT_SLAVE_ID - 1, tab_rp_bits);
  423. /* Return the size required (response size) but respects the defined limit */
  424. ASSERT_TRUE(rc == NB_REPORT_SLAVE_ID &&
  425. tab_rp_bits[NB_REPORT_SLAVE_ID - 1] == 42,
  426. "Return is rc %d (%d) and marker is %d (42)",
  427. rc, NB_REPORT_SLAVE_ID, tab_rp_bits[NB_REPORT_SLAVE_ID - 1]);
  428. printf("2/2 Report slave ID: \n");
  429. /* tab_rp_bits is used to store bytes */
  430. rc = modbus_report_slave_id(ctx, NB_REPORT_SLAVE_ID, tab_rp_bits);
  431. ASSERT_TRUE(rc == NB_REPORT_SLAVE_ID, "");
  432. /* Slave ID is an arbitraty number for libmodbus */
  433. ASSERT_TRUE(rc > 0, "");
  434. /* Run status indicator is ON */
  435. ASSERT_TRUE(rc > 1 && tab_rp_bits[1] == 0xFF, "");
  436. /* Print additional data as string */
  437. if (rc > 2) {
  438. printf("Additional data: ");
  439. for (i=2; i < rc; i++) {
  440. printf("%c", tab_rp_bits[i]);
  441. }
  442. printf("\n");
  443. }
  444. /* Save original timeout */
  445. modbus_get_response_timeout(ctx, &old_response_to_sec, &old_response_to_usec);
  446. modbus_get_byte_timeout(ctx, &old_byte_to_sec, &old_byte_to_usec);
  447. rc = modbus_set_response_timeout(ctx, 0, 0);
  448. printf("1/6 Invalid response timeout (zero): ");
  449. ASSERT_TRUE(rc == -1 && errno == EINVAL, "");
  450. rc = modbus_set_response_timeout(ctx, 0, 1000000);
  451. printf("2/6 Invalid response timeout (too large us): ");
  452. ASSERT_TRUE(rc == -1 && errno == EINVAL, "");
  453. rc = modbus_set_byte_timeout(ctx, 0, 1000000);
  454. printf("3/6 Invalid byte timeout (too large us): ");
  455. ASSERT_TRUE(rc == -1 && errno == EINVAL, "");
  456. modbus_set_response_timeout(ctx, 0, 1);
  457. rc = modbus_read_registers(ctx, UT_REGISTERS_ADDRESS,
  458. UT_REGISTERS_NB, tab_rp_registers);
  459. printf("4/6 1us response timeout: ");
  460. if (rc == -1 && errno == ETIMEDOUT) {
  461. printf("OK\n");
  462. } else {
  463. printf("FAILED (can fail on some platforms)\n");
  464. }
  465. /* A wait and flush operation is done by the error recovery code of
  466. * libmodbus but after a sleep of current response timeout
  467. * so 0 can be too short!
  468. */
  469. usleep(old_response_to_sec * 1000000 + old_response_to_usec);
  470. modbus_flush(ctx);
  471. /* Trigger a special behaviour on server to wait for 0.5 second before
  472. * replying whereas allowed timeout is 0.2 second */
  473. modbus_set_response_timeout(ctx, 0, 200000);
  474. rc = modbus_read_registers(ctx, UT_REGISTERS_ADDRESS_SLEEP_500_MS,
  475. 1, tab_rp_registers);
  476. printf("5/6 Too short response timeout (0.2s < 0.5s): ");
  477. ASSERT_TRUE(rc == -1 && errno == ETIMEDOUT, "");
  478. /* Wait for reply (0.2 + 0.4 > 0.5 s) and flush before continue */
  479. usleep(400000);
  480. modbus_flush(ctx);
  481. modbus_set_response_timeout(ctx, 0, 600000);
  482. rc = modbus_read_registers(ctx, UT_REGISTERS_ADDRESS_SLEEP_500_MS,
  483. 1, tab_rp_registers);
  484. printf("6/6 Adequate response timeout (0.6s > 0.5s): ");
  485. ASSERT_TRUE(rc == 1, "");
  486. /* Disable the byte timeout.
  487. The full response must be available in the 600ms interval */
  488. modbus_set_byte_timeout(ctx, 0, 0);
  489. rc = modbus_read_registers(ctx, UT_REGISTERS_ADDRESS_SLEEP_500_MS,
  490. 1, tab_rp_registers);
  491. printf("7/7 Disable byte timeout: ");
  492. ASSERT_TRUE(rc == 1, "");
  493. /* Restore original response timeout */
  494. modbus_set_response_timeout(ctx, old_response_to_sec,
  495. old_response_to_usec);
  496. if (use_backend == TCP) {
  497. /* The test server is only able to test byte timeouts with the TCP
  498. * backend */
  499. /* Timeout of 3ms between bytes */
  500. modbus_set_byte_timeout(ctx, 0, 3000);
  501. rc = modbus_read_registers(ctx, UT_REGISTERS_ADDRESS_BYTE_SLEEP_5_MS,
  502. 1, tab_rp_registers);
  503. printf("1/2 Too small byte timeout (3ms < 5ms): ");
  504. ASSERT_TRUE(rc == -1 && errno == ETIMEDOUT, "");
  505. /* Wait remaing bytes before flushing */
  506. usleep(11 * 5000);
  507. modbus_flush(ctx);
  508. /* Timeout of 7ms between bytes */
  509. modbus_set_byte_timeout(ctx, 0, 7000);
  510. rc = modbus_read_registers(ctx, UT_REGISTERS_ADDRESS_BYTE_SLEEP_5_MS,
  511. 1, tab_rp_registers);
  512. printf("2/2 Adapted byte timeout (7ms > 5ms): ");
  513. ASSERT_TRUE(rc == 1, "");
  514. }
  515. /* Restore original byte timeout */
  516. modbus_set_byte_timeout(ctx, old_byte_to_sec, old_byte_to_usec);
  517. /** BAD RESPONSE **/
  518. printf("\nTEST BAD RESPONSE ERROR:\n");
  519. /* Allocate only the required space */
  520. tab_rp_registers_bad = (uint16_t *) malloc(
  521. UT_REGISTERS_NB_SPECIAL * sizeof(uint16_t));
  522. rc = modbus_read_registers(ctx, UT_REGISTERS_ADDRESS,
  523. UT_REGISTERS_NB_SPECIAL, tab_rp_registers_bad);
  524. printf("* modbus_read_registers: ");
  525. ASSERT_TRUE(rc == -1 && errno == EMBBADDATA, "");
  526. free(tab_rp_registers_bad);
  527. /** MANUAL EXCEPTION **/
  528. printf("\nTEST MANUAL EXCEPTION:\n");
  529. rc = modbus_read_registers(ctx, UT_REGISTERS_ADDRESS_SPECIAL,
  530. UT_REGISTERS_NB, tab_rp_registers);
  531. printf("* modbus_read_registers at special address: ");
  532. ASSERT_TRUE(rc == -1 && errno == EMBXSBUSY, "");
  533. /** Run a few tests to challenge the server code **/
  534. if (test_server(ctx, use_backend) == -1) {
  535. goto close;
  536. }
  537. modbus_close(ctx);
  538. modbus_free(ctx);
  539. ctx = NULL;
  540. /* Test init functions */
  541. printf("\nTEST INVALID INITIALIZATION:\n");
  542. ctx = modbus_new_rtu(NULL, 1, 'A', 0, 0);
  543. ASSERT_TRUE(ctx == NULL && errno == EINVAL, "");
  544. ctx = modbus_new_rtu("/dev/dummy", 0, 'A', 0, 0);
  545. ASSERT_TRUE(ctx == NULL && errno == EINVAL, "");
  546. ctx = modbus_new_tcp_pi(NULL, NULL);
  547. ASSERT_TRUE(ctx == NULL && errno == EINVAL, "");
  548. printf("\nALL TESTS PASS WITH SUCCESS.\n");
  549. success = TRUE;
  550. close:
  551. /* Free the memory */
  552. free(tab_rp_bits);
  553. free(tab_rp_registers);
  554. /* Close the connection */
  555. modbus_close(ctx);
  556. modbus_free(ctx);
  557. return (success) ? 0 : -1;
  558. }
  559. /* Send crafted requests to test server resilience
  560. and ensure proper exceptions are returned. */
  561. int test_server(modbus_t *ctx, int use_backend)
  562. {
  563. int rc;
  564. int i;
  565. /* Read requests */
  566. const int READ_RAW_REQ_LEN = 6;
  567. uint8_t read_raw_req[] = {
  568. /* slave */
  569. (use_backend == RTU) ? SERVER_ID : 0xFF,
  570. /* function, address, 5 values */
  571. MODBUS_FC_READ_HOLDING_REGISTERS,
  572. UT_REGISTERS_ADDRESS >> 8, UT_REGISTERS_ADDRESS & 0xFF,
  573. 0x0, 0x05
  574. };
  575. /* Write and read registers request */
  576. const int RW_RAW_REQ_LEN = 13;
  577. uint8_t rw_raw_req[] = {
  578. /* slave */
  579. (use_backend == RTU) ? SERVER_ID : 0xFF,
  580. /* function, addr to read, nb to read */
  581. MODBUS_FC_WRITE_AND_READ_REGISTERS,
  582. /* Read */
  583. UT_REGISTERS_ADDRESS >> 8, UT_REGISTERS_ADDRESS & 0xFF,
  584. (MODBUS_MAX_WR_READ_REGISTERS + 1) >> 8,
  585. (MODBUS_MAX_WR_READ_REGISTERS + 1) & 0xFF,
  586. /* Write */
  587. 0, 0,
  588. 0, 1,
  589. /* Write byte count */
  590. 1 * 2,
  591. /* One data to write... */
  592. 0x12, 0x34
  593. };
  594. const int WRITE_RAW_REQ_LEN = 13;
  595. uint8_t write_raw_req[] = {
  596. /* slave */
  597. (use_backend == RTU) ? SERVER_ID : 0xFF,
  598. /* function will be set in the loop */
  599. MODBUS_FC_WRITE_MULTIPLE_REGISTERS,
  600. /* Address */
  601. UT_REGISTERS_ADDRESS >> 8, UT_REGISTERS_ADDRESS & 0xFF,
  602. /* 3 values, 6 bytes */
  603. 0x00, 0x03, 0x06,
  604. /* Dummy data to write */
  605. 0x02, 0x2B, 0x00, 0x01, 0x00, 0x64
  606. };
  607. int req_length;
  608. uint8_t rsp[MODBUS_TCP_MAX_ADU_LENGTH];
  609. int tab_read_function[] = {
  610. MODBUS_FC_READ_COILS,
  611. MODBUS_FC_READ_DISCRETE_INPUTS,
  612. MODBUS_FC_READ_HOLDING_REGISTERS,
  613. MODBUS_FC_READ_INPUT_REGISTERS
  614. };
  615. int tab_read_nb_max[] = {
  616. MODBUS_MAX_READ_BITS + 1,
  617. MODBUS_MAX_READ_BITS + 1,
  618. MODBUS_MAX_READ_REGISTERS + 1,
  619. MODBUS_MAX_READ_REGISTERS + 1
  620. };
  621. int backend_length;
  622. int backend_offset;
  623. if (use_backend == RTU) {
  624. backend_length = 3;
  625. backend_offset = 1;
  626. } else {
  627. backend_length = 7;
  628. backend_offset = 7;
  629. }
  630. printf("\nTEST RAW REQUESTS:\n");
  631. req_length = modbus_send_raw_request(ctx, read_raw_req, READ_RAW_REQ_LEN);
  632. printf("* modbus_send_raw_request: ");
  633. ASSERT_TRUE(req_length == (backend_length + 5), "FAILED (%d)\n", req_length);
  634. printf("* modbus_receive_confirmation: ");
  635. rc = modbus_receive_confirmation(ctx, rsp);
  636. ASSERT_TRUE(rc == (backend_length + 12), "FAILED (%d)\n", rc);
  637. /* Try to read more values than a response could hold for all data
  638. types. */
  639. for (i=0; i<4; i++) {
  640. rc = send_crafted_request(ctx, tab_read_function[i],
  641. read_raw_req, READ_RAW_REQ_LEN,
  642. tab_read_nb_max[i], 0,
  643. backend_length, backend_offset);
  644. if (rc == -1)
  645. goto close;
  646. }
  647. /* Modbus write and read multiple registers */
  648. rc = send_crafted_request(ctx, MODBUS_FC_WRITE_AND_READ_REGISTERS,
  649. rw_raw_req, RW_RAW_REQ_LEN,
  650. MODBUS_MAX_WR_READ_REGISTERS + 1, 0,
  651. backend_length, backend_offset);
  652. if (rc == -1)
  653. goto close;
  654. /* Modbus write multiple registers with large number of values but a set a
  655. small number of bytes in requests (not nb * 2 as usual). */
  656. rc = send_crafted_request(ctx, MODBUS_FC_WRITE_MULTIPLE_REGISTERS,
  657. write_raw_req, WRITE_RAW_REQ_LEN,
  658. MODBUS_MAX_WRITE_REGISTERS + 1, 6,
  659. backend_length, backend_offset);
  660. if (rc == -1)
  661. goto close;
  662. rc = send_crafted_request(ctx, MODBUS_FC_WRITE_MULTIPLE_COILS,
  663. write_raw_req, WRITE_RAW_REQ_LEN,
  664. MODBUS_MAX_WRITE_BITS + 1, 6,
  665. backend_length, backend_offset);
  666. if (rc == -1)
  667. goto close;
  668. return 0;
  669. close:
  670. return -1;
  671. }
  672. int send_crafted_request(modbus_t *ctx, int function,
  673. uint8_t *req, int req_len,
  674. uint16_t max_value, uint16_t bytes,
  675. int backend_length, int backend_offset)
  676. {
  677. const int EXCEPTION_RC = 2;
  678. uint8_t rsp[MODBUS_TCP_MAX_ADU_LENGTH];
  679. int j;
  680. uint32_t old_response_to_sec;
  681. uint32_t old_response_to_usec;
  682. /* This requests can generate flushes server side so we need a higher
  683. * response timeout than the server. The server uses the defined response
  684. * timeout to sleep before flushing.
  685. * The old timeouts are restored at the end.
  686. */
  687. modbus_get_response_timeout(ctx, &old_response_to_sec, &old_response_to_usec);
  688. modbus_set_response_timeout(ctx, 0, 600000);
  689. for (j=0; j<2; j++) {
  690. int rc;
  691. req[1] = function;
  692. if (j == 0) {
  693. /* Try to read or write zero values on first iteration */
  694. req[4] = 0x00;
  695. req[5] = 0x00;
  696. if (bytes) {
  697. /* Write query */
  698. req[6] = 0x00;
  699. }
  700. } else {
  701. /* Try to read or write max values + 1 on second iteration */
  702. req[4] = (max_value >> 8) & 0xFF;
  703. req[5] = max_value & 0xFF;
  704. if (bytes) {
  705. /* Write query (nb values * 2 to convert in bytes for registers) */
  706. req[6] = bytes;
  707. }
  708. }
  709. modbus_send_raw_request(ctx, req, req_len * sizeof(uint8_t));
  710. if (j == 0) {
  711. printf("* try function 0x%X: %s 0 values: ", function, bytes ? "write": "read");
  712. } else {
  713. printf("* try function 0x%X: %s %d values: ", function, bytes ? "write": "read",
  714. max_value);
  715. }
  716. rc = modbus_receive_confirmation(ctx, rsp);
  717. ASSERT_TRUE(rc == (backend_length + EXCEPTION_RC) &&
  718. rsp[backend_offset] == (0x80 + function) &&
  719. rsp[backend_offset + 1] == MODBUS_EXCEPTION_ILLEGAL_DATA_VALUE, "");
  720. }
  721. modbus_set_response_timeout(ctx, old_response_to_sec, old_response_to_usec);
  722. return 0;
  723. close:
  724. modbus_set_response_timeout(ctx, old_response_to_sec, old_response_to_usec);
  725. return -1;
  726. }