check_encode.c 11 KB

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  1. /*
  2. ============================================================================
  3. Name : check_encode.c
  4. Author :
  5. Version :
  6. Copyright : Your copyright notice
  7. Description :
  8. ============================================================================
  9. */
  10. #include <stdio.h>
  11. #include <stdlib.h>
  12. #include "opcua.h"
  13. #include "opcua_transportLayer.h"
  14. #include "check.h"
  15. START_TEST(encodeByte_test)
  16. {
  17. UA_ByteString rawMessage;
  18. UA_Int32 position = 0;
  19. //EncodeByte
  20. UA_Byte *mem = malloc(sizeof(UA_Byte));
  21. rawMessage.data = mem;
  22. UA_Byte testByte = 0x08;
  23. rawMessage.length = 1;
  24. position = 0;
  25. UA_Byte_encode(&(testByte), &position, rawMessage.data);
  26. ck_assert_int_eq(rawMessage.data[0], 0x08);
  27. ck_assert_int_eq(rawMessage.length, 1);
  28. ck_assert_int_eq(position, 1);
  29. free(mem);
  30. }
  31. END_TEST
  32. START_TEST(encodeInt16_test)
  33. {
  34. UA_ByteString rawMessage;
  35. UA_Int32 position = 0;
  36. //EncodeUInt16
  37. UA_Byte *mem = malloc(sizeof(UA_UInt16));
  38. rawMessage.data = mem;
  39. UA_UInt16 testUInt16 = 1;
  40. rawMessage.length = 2;
  41. position = 0;
  42. UA_UInt16_encode(&testUInt16, &position, rawMessage.data);
  43. ck_assert_int_eq(position, 2);
  44. UA_Int32 p = 0;
  45. UA_UInt16 val;
  46. UA_UInt16_decode(rawMessage.data, &p, &val);
  47. ck_assert_int_eq(val,testUInt16);
  48. //ck_assert_int_eq(rawMessage.data[0], 0xAB);
  49. free(mem);
  50. }
  51. END_TEST
  52. START_TEST(encodeUInt16_test)
  53. {
  54. UA_ByteString rawMessage;
  55. UA_Int32 position = 0;
  56. //EncodeUInt16
  57. UA_Byte *mem = (UA_Byte*) malloc(sizeof(UA_UInt16));
  58. rawMessage.data = mem;
  59. UA_UInt16 testUInt16 = 1;
  60. rawMessage.length = 2;
  61. position = 0;
  62. UA_UInt16_encode(&testUInt16, &position, rawMessage.data);
  63. ck_assert_int_eq(position, 2);
  64. UA_Int32 p = 0;
  65. UA_UInt16 val;
  66. UA_UInt16_decode(rawMessage.data, &p, &val);
  67. ck_assert_int_eq(val,testUInt16);
  68. //ck_assert_int_eq(rawMessage.data[0], 0xAB);
  69. free(mem);
  70. }
  71. END_TEST
  72. START_TEST(encodeUInt32_test)
  73. {
  74. UA_ByteString rawMessage;
  75. UA_UInt32 value = 0x0101FF00;
  76. //EncodeUInt16
  77. rawMessage.data = (UA_Byte*) malloc(2 * sizeof(UA_UInt32));
  78. rawMessage.length = 8;
  79. UA_Int32 p = 4;
  80. UA_UInt32_encode(&value,&p,rawMessage.data);
  81. ck_assert_uint_eq(rawMessage.data[4],0x00);
  82. ck_assert_uint_eq(rawMessage.data[5],0xFF);
  83. ck_assert_uint_eq(rawMessage.data[6],0x01);
  84. ck_assert_uint_eq(rawMessage.data[7],0x01);
  85. ck_assert_int_eq(p,8);
  86. free(rawMessage.data);
  87. }
  88. END_TEST
  89. START_TEST(encodeInt32ShallEncodeLittleEndian)
  90. {
  91. // given
  92. UA_Int32 value = 0x01020304;
  93. UA_Byte buf[4];
  94. UA_Int32 p = 0;
  95. // when
  96. UA_Int32_encode(&value,&p,buf);
  97. // then
  98. ck_assert_int_eq(p,4);
  99. ck_assert_uint_eq(buf[0],0x04);
  100. ck_assert_uint_eq(buf[1],0x03);
  101. ck_assert_uint_eq(buf[2],0x02);
  102. ck_assert_uint_eq(buf[3],0x01);
  103. }
  104. END_TEST
  105. START_TEST(encodeInt32NegativeShallEncodeLittleEndian)
  106. {
  107. // given
  108. UA_Int32 value = -1;
  109. UA_Byte buf[4];
  110. UA_Int32 p = 0;
  111. // when
  112. UA_Int32_encode(&value,&p,buf);
  113. // then
  114. ck_assert_int_eq(p,4);
  115. ck_assert_uint_eq(buf[0],0xFF);
  116. ck_assert_uint_eq(buf[1],0xFF);
  117. ck_assert_uint_eq(buf[2],0xFF);
  118. ck_assert_uint_eq(buf[3],0xFF);
  119. }
  120. END_TEST
  121. START_TEST(encodeUInt64_test)
  122. {
  123. UA_ByteString rawMessage;
  124. UA_UInt64 value = 0x0101FF00FF00FF00;
  125. //EncodeUInt16
  126. rawMessage.data = (UA_Byte*) malloc(sizeof(UA_UInt64));
  127. rawMessage.length = 8;
  128. UA_Int32 p = 0;
  129. UA_UInt64_encode(&value, &p,rawMessage.data);
  130. ck_assert_uint_eq((UA_Byte)rawMessage.data[0],0x00);
  131. ck_assert_uint_eq((UA_Byte)rawMessage.data[1],0xFF);
  132. ck_assert_uint_eq((UA_Byte)rawMessage.data[2],0x00);
  133. ck_assert_uint_eq((UA_Byte)rawMessage.data[3],0xFF);
  134. ck_assert_uint_eq((UA_Byte)rawMessage.data[4],0x00);
  135. ck_assert_uint_eq((UA_Byte)rawMessage.data[5],0xFF);
  136. ck_assert_uint_eq((UA_Byte)rawMessage.data[6],0x01);
  137. ck_assert_uint_eq((UA_Byte)rawMessage.data[7],0x01);
  138. free(rawMessage.data);
  139. }
  140. END_TEST
  141. START_TEST(encodeInt64_test)
  142. {
  143. UA_ByteString rawMessage;
  144. UA_UInt64 value = 0x0101FF00FF00FF00;
  145. //EncodeUInt16
  146. rawMessage.data = (UA_Byte*) malloc(sizeof(UA_UInt64));
  147. rawMessage.length = 8;
  148. UA_Int32 p = 0;
  149. UA_UInt64_encode(&value, &p,rawMessage.data);
  150. ck_assert_uint_eq(rawMessage.data[0],0x00);
  151. ck_assert_uint_eq(rawMessage.data[1],0xFF);
  152. ck_assert_uint_eq(rawMessage.data[2],0x00);
  153. ck_assert_uint_eq(rawMessage.data[3],0xFF);
  154. ck_assert_uint_eq(rawMessage.data[4],0x00);
  155. ck_assert_uint_eq(rawMessage.data[5],0xFF);
  156. ck_assert_uint_eq(rawMessage.data[6],0x01);
  157. ck_assert_uint_eq(rawMessage.data[7],0x01);
  158. free(rawMessage.data);
  159. }
  160. END_TEST
  161. START_TEST(encodeFloat_test)
  162. {
  163. UA_Float value = -6.5;
  164. UA_Int32 pos = 0;
  165. UA_Byte* buf = (UA_Byte*)malloc(sizeof(UA_Float));
  166. UA_Float_encode(&value,&pos,buf);
  167. ck_assert_uint_eq(buf[2],0xD0);
  168. ck_assert_uint_eq(buf[3],0xC0);
  169. free(buf);
  170. }
  171. END_TEST
  172. /*START_TEST(encodeDouble_test)
  173. {
  174. UA_Double value = -6.5;
  175. UA_Int32 pos = 0;
  176. UA_Byte* buf = (char*)malloc(sizeof(UA_Double));
  177. UA_Double_encode(&value,&pos,buf);
  178. ck_assert_uint_eq(buf[6],0xD0);
  179. ck_assert_uint_eq(buf[7],0xC0);
  180. free(buf);
  181. }
  182. END_TEST*/
  183. START_TEST(encodeUAString_test)
  184. {
  185. UA_Int32 pos = 0;
  186. UA_String string;
  187. UA_Int32 l = 11;
  188. UA_Byte mem[11] = "ACPLT OPCUA";
  189. UA_Byte *dstBuf = (UA_Byte*) malloc(sizeof(UA_Int32)+l);
  190. string.data = mem;
  191. string.length = 11;
  192. UA_String_encode(&string, &pos, dstBuf);
  193. ck_assert_int_eq(dstBuf[0],11);
  194. ck_assert_int_eq(dstBuf[0+sizeof(UA_Int32)],'A');
  195. free(dstBuf);
  196. }
  197. END_TEST
  198. START_TEST(encodeDataValue_test)
  199. {
  200. UA_DataValue dataValue;
  201. UA_Int32 pos = 0, retval;
  202. UA_Byte* buf = (UA_Byte*) malloc(15);
  203. UA_DateTime dateTime;
  204. dateTime = 80;
  205. dataValue.serverTimestamp = dateTime;
  206. //--without Variant
  207. dataValue.encodingMask = UA_DATAVALUE_SERVERTIMPSTAMP; //Only the sourcePicoseconds
  208. UA_DataValue_encode(&dataValue, &pos, buf);
  209. ck_assert_int_eq(pos, 9);// represents the length
  210. ck_assert_uint_eq(buf[0], 0x08); // encodingMask
  211. ck_assert_uint_eq(buf[1], 80); // 8 Byte serverTimestamp
  212. ck_assert_uint_eq(buf[2], 0);
  213. ck_assert_uint_eq(buf[3], 0);
  214. ck_assert_uint_eq(buf[4], 0);
  215. ck_assert_uint_eq(buf[5], 0);
  216. ck_assert_uint_eq(buf[6], 0);
  217. ck_assert_uint_eq(buf[7], 0);
  218. ck_assert_uint_eq(buf[8], 0);
  219. //TestCase for a DataValue with a Variant!
  220. dataValue.encodingMask = UA_DATAVALUE_VARIANT | UA_DATAVALUE_SERVERTIMPSTAMP; //Variant & SourvePicoseconds
  221. dataValue.value.vt = &UA_[UA_INT32];
  222. dataValue.value.arrayLength = 0;
  223. dataValue.value.encodingMask = UA_INT32_NS0;
  224. UA_Int32 data = 45;
  225. UA_Int32* pdata = &data;
  226. dataValue.value.data = (void**) &pdata;
  227. pos = 0;
  228. retval = UA_DataValue_encode(&dataValue, &pos, buf);
  229. ck_assert_int_eq(retval, UA_SUCCESS);
  230. ck_assert_int_eq(pos, 1+(1+4)+8);// represents the length
  231. ck_assert_uint_eq(buf[0], 0x08 | 0x01); // encodingMask
  232. ck_assert_uint_eq(buf[1], 0x06); // Variant's Encoding Mask - INT32
  233. ck_assert_uint_eq(buf[2], 45); // the single value
  234. ck_assert_uint_eq(buf[3], 0);
  235. ck_assert_uint_eq(buf[4], 0);
  236. ck_assert_uint_eq(buf[5], 0);
  237. ck_assert_uint_eq(buf[6], 80); // the server timestamp
  238. ck_assert_uint_eq(buf[7], 0);
  239. free(buf);
  240. }
  241. END_TEST
  242. Suite *testSuite_encodeByte(void)
  243. {
  244. Suite *s = suite_create("encodeByte_test");
  245. TCase *tc_core = tcase_create("Core");
  246. tcase_add_test(tc_core, encodeByte_test);
  247. suite_add_tcase(s,tc_core);
  248. return s;
  249. }
  250. Suite*testSuite_encodeInt16(void)
  251. {
  252. Suite *s = suite_create("encodeInt16_test");
  253. TCase *tc_core = tcase_create("Core");
  254. tcase_add_test(tc_core, encodeInt16_test);
  255. suite_add_tcase(s,tc_core);
  256. return s;
  257. }
  258. Suite*testSuite_encodeUInt16(void)
  259. {
  260. Suite *s = suite_create("encodeUInt16_test");
  261. TCase *tc_core = tcase_create("Core");
  262. tcase_add_test(tc_core, encodeUInt16_test);
  263. suite_add_tcase(s,tc_core);
  264. return s;
  265. }
  266. Suite*testSuite_encodeUInt32(void)
  267. {
  268. Suite *s = suite_create("encodeUInt32_test");
  269. TCase *tc_core = tcase_create("Core");
  270. tcase_add_test(tc_core, encodeUInt32_test);
  271. suite_add_tcase(s,tc_core);
  272. return s;
  273. }
  274. Suite*testSuite_encodeInt32(void)
  275. {
  276. Suite *s = suite_create("encodeInt32_test");
  277. TCase *tc_core = tcase_create("Core");
  278. tcase_add_test(tc_core, encodeInt32ShallEncodeLittleEndian);
  279. tcase_add_test(tc_core, encodeInt32NegativeShallEncodeLittleEndian);
  280. suite_add_tcase(s,tc_core);
  281. return s;
  282. }
  283. Suite*testSuite_encodeUInt64(void)
  284. {
  285. Suite *s = suite_create("encodeUInt64_test");
  286. TCase *tc_core = tcase_create("Core");
  287. tcase_add_test(tc_core, encodeUInt64_test);
  288. suite_add_tcase(s,tc_core);
  289. return s;
  290. }
  291. Suite*testSuite_encodeInt64(void)
  292. {
  293. Suite *s = suite_create("encodeInt64_test");
  294. TCase *tc_core = tcase_create("Core");
  295. tcase_add_test(tc_core, encodeInt64_test);
  296. suite_add_tcase(s,tc_core);
  297. return s;
  298. }
  299. Suite *testSuite_encodeFloat(void)
  300. {
  301. Suite *s = suite_create("encodeFloat_test");
  302. TCase *tc_core = tcase_create("Core");
  303. tcase_add_test(tc_core, encodeFloat_test);
  304. suite_add_tcase(s,tc_core);
  305. return s;
  306. }
  307. /*Suite *testSuite_encodeDouble(void)
  308. {
  309. Suite *s = suite_create("encodeDouble_test");
  310. TCase *tc_core = tcase_create("Core");
  311. tcase_add_test(tc_core, encodeDouble_test);
  312. suite_add_tcase(s,tc_core);
  313. return s;
  314. }*/
  315. Suite * testSuite_encodeUAString(void)
  316. {
  317. Suite *s = suite_create("encodeUAString_test");
  318. TCase *tc_core = tcase_create("Core");
  319. tcase_add_test(tc_core, encodeUAString_test);
  320. suite_add_tcase(s,tc_core);
  321. return s;
  322. }
  323. Suite* testSuite_encodeDataValue()
  324. {
  325. Suite *s = suite_create("encodeDataValue");
  326. TCase *tc_core = tcase_create("Core");
  327. tcase_add_test(tc_core, encodeDataValue_test);
  328. suite_add_tcase(s,tc_core);
  329. return s;
  330. }
  331. int main (void)
  332. {
  333. int number_failed = 0;
  334. Suite *s = testSuite_encodeByte();
  335. SRunner *sr = srunner_create(s);
  336. srunner_run_all(sr,CK_NORMAL);
  337. number_failed += srunner_ntests_failed(sr);
  338. srunner_free(sr);
  339. s = testSuite_encodeInt16();
  340. sr = srunner_create(s);
  341. srunner_run_all(sr,CK_NORMAL);
  342. number_failed += srunner_ntests_failed(sr);
  343. srunner_free(sr);
  344. s = testSuite_encodeUInt16();
  345. sr = srunner_create(s);
  346. srunner_run_all(sr,CK_NORMAL);
  347. number_failed += srunner_ntests_failed(sr);
  348. srunner_free(sr);
  349. s = testSuite_encodeUInt32();
  350. sr = srunner_create(s);
  351. srunner_run_all(sr,CK_NORMAL);
  352. number_failed += srunner_ntests_failed(sr);
  353. srunner_free(sr);
  354. s = testSuite_encodeInt32();
  355. sr = srunner_create(s);
  356. srunner_run_all(sr,CK_NORMAL);
  357. number_failed += srunner_ntests_failed(sr);
  358. srunner_free(sr);
  359. s = testSuite_encodeUInt64();
  360. sr = srunner_create(s);
  361. srunner_run_all(sr,CK_NORMAL);
  362. number_failed += srunner_ntests_failed(sr);
  363. srunner_free(sr);
  364. s = testSuite_encodeInt64();
  365. sr = srunner_create(s);
  366. srunner_run_all(sr,CK_NORMAL);
  367. number_failed += srunner_ntests_failed(sr);
  368. srunner_free(sr);
  369. s = testSuite_encodeFloat();
  370. sr = srunner_create(s);
  371. srunner_run_all(sr,CK_NORMAL);
  372. number_failed += srunner_ntests_failed(sr);
  373. srunner_free(sr);
  374. /* s = testSuite_encodeDouble();
  375. sr = srunner_create(s);
  376. srunner_run_all(sr,CK_NORMAL);
  377. number_failed += srunner_ntests_failed(sr);
  378. srunner_free(sr);*/
  379. s = testSuite_encodeUAString();
  380. sr = srunner_create(s);
  381. srunner_run_all(sr,CK_NORMAL);
  382. number_failed += srunner_ntests_failed(sr);
  383. srunner_free(sr);
  384. s = testSuite_encodeDataValue();
  385. sr = srunner_create(s);
  386. srunner_run_all(sr,CK_NORMAL);
  387. number_failed += srunner_ntests_failed(sr);
  388. srunner_free(sr);
  389. /* <TESTSUITE_TEMPLATE>
  390. s = <TESTSUITENAME>;
  391. sr = srunner_create(s);
  392. srunner_run_all(sr,CK_NORMAL);
  393. number_failed += srunner_ntests_failed(sr);
  394. srunner_free(sr);
  395. */
  396. return (number_failed == 0) ? EXIT_SUCCESS : EXIT_FAILURE;
  397. }