check_types_builtin.c 55 KB

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  1. /* This Source Code Form is subject to the terms of the Mozilla Public
  2. * License, v. 2.0. If a copy of the MPL was not distributed with this
  3. * file, You can obtain one at http://mozilla.org/MPL/2.0/. */
  4. #include <open62541/types.h>
  5. #include <open62541/types_generated.h>
  6. #include <open62541/types_generated_encoding_binary.h>
  7. #include <open62541/types_generated_handling.h>
  8. #include <open62541/util.h>
  9. #include "ua_types_encoding_binary.h"
  10. #include <check.h>
  11. #include <float.h>
  12. #include <math.h>
  13. /* copied here from encoding_binary.c */
  14. enum UA_VARIANT_ENCODINGMASKTYPE_enum {
  15. UA_VARIANT_ENCODINGMASKTYPE_TYPEID_MASK = 0x3F, // bits 0:5
  16. UA_VARIANT_ENCODINGMASKTYPE_DIMENSIONS = (0x01 << 6), // bit 6
  17. UA_VARIANT_ENCODINGMASKTYPE_ARRAY = (0x01 << 7) // bit 7
  18. };
  19. START_TEST(UA_Byte_decodeShallCopyAndAdvancePosition) {
  20. // given
  21. UA_Byte dst;
  22. UA_Byte data[] = { 0x08 };
  23. UA_ByteString src = { 1, data };
  24. size_t pos = 0;
  25. // when
  26. UA_StatusCode retval = UA_Byte_decodeBinary(&src, &pos, &dst);
  27. // then
  28. ck_assert_int_eq(retval, UA_STATUSCODE_GOOD);
  29. ck_assert_uint_eq(pos, 1);
  30. ck_assert_uint_eq(pos, UA_calcSizeBinary(&dst, &UA_TYPES[UA_TYPES_BYTE]));
  31. ck_assert_uint_eq(dst, 0x08);
  32. }
  33. END_TEST
  34. START_TEST(UA_Byte_decodeShallModifyOnlyCurrentPosition) {
  35. // given
  36. UA_Byte dst[] = { 0xFF, 0xFF, 0xFF };
  37. UA_Byte data[] = { 0x08 };
  38. UA_ByteString src = { 1, data };
  39. size_t pos = 0;
  40. // when
  41. UA_StatusCode retval = UA_Byte_decodeBinary(&src, &pos, &dst[1]);
  42. // then
  43. ck_assert_int_eq(retval, UA_STATUSCODE_GOOD);
  44. ck_assert_int_eq(pos, 1);
  45. ck_assert_uint_eq(dst[0], 0xFF);
  46. ck_assert_uint_eq(dst[1], 0x08);
  47. ck_assert_uint_eq(dst[2], 0xFF);
  48. }
  49. END_TEST
  50. START_TEST(UA_Int16_decodeShallAssumeLittleEndian) {
  51. // given
  52. size_t pos = 0;
  53. UA_Byte data[] = {
  54. 0x01, 0x00, // 1
  55. 0x00, 0x01 // 256
  56. };
  57. UA_ByteString src = { 4, data };
  58. // when
  59. UA_Int16 val_01_00, val_00_01;
  60. UA_StatusCode retval = UA_Int16_decodeBinary(&src, &pos, &val_01_00);
  61. retval |= UA_Int16_decodeBinary(&src, &pos, &val_00_01);
  62. // then
  63. ck_assert_int_eq(retval, UA_STATUSCODE_GOOD);
  64. ck_assert_int_eq(val_01_00, 1);
  65. ck_assert_int_eq(val_00_01, 256);
  66. ck_assert_int_eq(pos, 4);
  67. }
  68. END_TEST
  69. START_TEST(UA_Int16_decodeShallRespectSign) {
  70. // given
  71. size_t pos = 0;
  72. UA_Byte data[] = {
  73. 0xFF, 0xFF, // -1
  74. 0x00, 0x80 // -32768
  75. };
  76. UA_ByteString src = { 4, data };
  77. // when
  78. UA_Int16 val_ff_ff, val_00_80;
  79. UA_StatusCode retval = UA_Int16_decodeBinary(&src, &pos, &val_ff_ff);
  80. retval |= UA_Int16_decodeBinary(&src, &pos, &val_00_80);
  81. // then
  82. ck_assert_int_eq(retval, UA_STATUSCODE_GOOD);
  83. ck_assert_int_eq(val_ff_ff, -1);
  84. ck_assert_int_eq(val_00_80, -32768);
  85. }
  86. END_TEST
  87. START_TEST(UA_UInt16_decodeShallNotRespectSign) {
  88. // given
  89. size_t pos = 0;
  90. UA_Byte data[] = {
  91. 0xFF, 0xFF, // (2^16)-1
  92. 0x00, 0x80 // (2^15)
  93. };
  94. UA_ByteString src = { 4, data };
  95. // when
  96. UA_UInt16 val_ff_ff, val_00_80;
  97. UA_StatusCode retval = UA_UInt16_decodeBinary(&src, &pos, &val_ff_ff);
  98. retval |= UA_UInt16_decodeBinary(&src, &pos, &val_00_80);
  99. // then
  100. ck_assert_int_eq(retval, UA_STATUSCODE_GOOD);
  101. ck_assert_int_eq(pos, 4);
  102. ck_assert_uint_eq(val_ff_ff, (0x01 << 16)-1);
  103. ck_assert_uint_eq(val_00_80, (0x01 << 15));
  104. }
  105. END_TEST
  106. START_TEST(UA_Int32_decodeShallAssumeLittleEndian) {
  107. // given
  108. size_t pos = 0;
  109. UA_Byte data[] = {
  110. 0x01, 0x00, 0x00, 0x00, // 1
  111. 0x00, 0x01, 0x00, 0x00 // 256
  112. };
  113. UA_ByteString src = { 8, data };
  114. // when
  115. UA_Int32 val_01_00, val_00_01;
  116. UA_StatusCode retval = UA_Int32_decodeBinary(&src, &pos, &val_01_00);
  117. retval |= UA_Int32_decodeBinary(&src, &pos, &val_00_01);
  118. // then
  119. ck_assert_int_eq(retval, UA_STATUSCODE_GOOD);
  120. ck_assert_int_eq(val_01_00, 1);
  121. ck_assert_int_eq(val_00_01, 256);
  122. ck_assert_int_eq(pos, 8);
  123. }
  124. END_TEST
  125. START_TEST(UA_Int32_decodeShallRespectSign) {
  126. // given
  127. size_t pos = 0;
  128. UA_Byte data[] = {
  129. 0xFF, 0xFF, 0xFF, 0xFF, // -1
  130. 0x00, 0x80, 0xFF, 0xFF // -32768
  131. };
  132. UA_ByteString src = { 8, data };
  133. // when
  134. UA_Int32 val_ff_ff, val_00_80;
  135. UA_StatusCode retval = UA_Int32_decodeBinary(&src, &pos, &val_ff_ff);
  136. retval |= UA_Int32_decodeBinary(&src, &pos, &val_00_80);
  137. // then
  138. ck_assert_int_eq(retval, UA_STATUSCODE_GOOD);
  139. ck_assert_int_eq(val_ff_ff, -1);
  140. ck_assert_int_eq(val_00_80, -32768);
  141. }
  142. END_TEST
  143. START_TEST(UA_UInt32_decodeShallNotRespectSign) {
  144. // given
  145. size_t pos = 0;
  146. UA_Byte data[] = {
  147. 0xFF, 0xFF, 0xFF, 0xFF, // (2^32)-1
  148. 0x00, 0x00, 0x00, 0x80 // (2^31)
  149. };
  150. UA_ByteString src = { 8, data };
  151. // when
  152. UA_UInt32 val_ff_ff, val_00_80;
  153. UA_StatusCode retval = UA_UInt32_decodeBinary(&src, &pos, &val_ff_ff);
  154. retval |= UA_UInt32_decodeBinary(&src, &pos, &val_00_80);
  155. // then
  156. ck_assert_int_eq(retval, UA_STATUSCODE_GOOD);
  157. ck_assert_int_eq(pos, 8);
  158. ck_assert_uint_eq(val_ff_ff, (UA_UInt32)( (0x01LL << 32 ) - 1 ));
  159. ck_assert_uint_eq(val_00_80, (UA_UInt32)(0x01) << 31);
  160. }
  161. END_TEST
  162. START_TEST(UA_UInt64_decodeShallNotRespectSign) {
  163. // given
  164. UA_ByteString rawMessage;
  165. UA_UInt64 expectedVal = 0xFF;
  166. expectedVal = expectedVal << 56;
  167. UA_Byte mem[8] = { 00, 00, 00, 00, 0x00, 0x00, 0x00, 0xFF };
  168. rawMessage.data = mem;
  169. rawMessage.length = 8;
  170. size_t pos = 0;
  171. UA_UInt64 val;
  172. // when
  173. UA_UInt64_decodeBinary(&rawMessage, &pos, &val);
  174. // then
  175. ck_assert_uint_eq(val, expectedVal);
  176. }
  177. END_TEST
  178. START_TEST(UA_Int64_decodeShallRespectSign) {
  179. // given
  180. UA_ByteString rawMessage;
  181. UA_UInt64 expectedVal = (UA_UInt64)0xFF << 56;
  182. UA_Byte mem[8] = { 00, 00, 00, 00, 0x00, 0x00, 0x00, 0xFF };
  183. rawMessage.data = mem;
  184. rawMessage.length = 8;
  185. size_t pos = 0;
  186. UA_Int64 val;
  187. // when
  188. UA_Int64_decodeBinary(&rawMessage, &pos, &val);
  189. //then
  190. ck_assert_uint_eq(val, expectedVal);
  191. }
  192. END_TEST
  193. START_TEST(UA_Float_decodeShallWorkOnExample) {
  194. // given
  195. size_t pos = 0;
  196. UA_Byte data[] = { 0x00, 0x00, 0xD0, 0xC0 }; // -6.5
  197. UA_ByteString src = { 4, data };
  198. UA_Float dst;
  199. // when
  200. UA_StatusCode retval = UA_Float_decodeBinary(&src, &pos, &dst);
  201. // then
  202. ck_assert_int_eq(retval, UA_STATUSCODE_GOOD);
  203. ck_assert_int_eq(pos, 4);
  204. ck_assert(-6.5000001 < dst);
  205. ck_assert(dst < -6.49999999999);
  206. }
  207. END_TEST
  208. START_TEST(UA_Double_decodeShallGiveOne) {
  209. // given
  210. size_t pos = 0;
  211. UA_Byte data[] = { 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0xF0, 0x3F }; // 1
  212. UA_ByteString src = { 8, data }; // 1
  213. UA_Double dst;
  214. // when
  215. UA_StatusCode retval = UA_Double_decodeBinary(&src, &pos, &dst);
  216. // then
  217. ck_assert_int_eq(retval, UA_STATUSCODE_GOOD);
  218. ck_assert_int_eq(pos, 8);
  219. ck_assert(0.9999999 < dst);
  220. ck_assert(dst < 1.00000000001);
  221. }
  222. END_TEST
  223. START_TEST(UA_Double_decodeShallGiveZero) {
  224. // given
  225. size_t pos = 0;
  226. UA_Byte data[] = { 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00 };
  227. UA_ByteString src = { 8, data }; // 1
  228. UA_Double dst;
  229. // when
  230. UA_StatusCode retval = UA_Double_decodeBinary(&src, &pos, &dst);
  231. // then
  232. ck_assert_int_eq(retval, UA_STATUSCODE_GOOD);
  233. ck_assert_int_eq(pos, 8);
  234. ck_assert(-0.00000001 < dst);
  235. ck_assert(dst < 0.000000001);
  236. }
  237. END_TEST
  238. START_TEST(UA_Double_decodeShallGiveMinusTwo) {
  239. // given
  240. size_t pos = 0;
  241. UA_Byte data[] = { 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0xC0 }; // -2
  242. UA_ByteString src = { 8, data };
  243. UA_Double dst;
  244. // when
  245. UA_StatusCode retval = UA_Double_decodeBinary(&src, &pos, &dst);
  246. // then
  247. ck_assert_int_eq(retval, UA_STATUSCODE_GOOD);
  248. ck_assert_int_eq(pos, 8);
  249. ck_assert(-1.9999999 > dst);
  250. ck_assert(dst > -2.00000000001);
  251. }
  252. END_TEST
  253. START_TEST(UA_Double_decodeShallGive2147483648) {
  254. // given
  255. size_t pos = 0;
  256. UA_Byte data[] = { 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0xE0, 0x41 }; //2147483648
  257. UA_ByteString src = { 8, data }; // 1
  258. UA_Double dst;
  259. // when
  260. UA_StatusCode retval = UA_Double_decodeBinary(&src, &pos, &dst);
  261. // then
  262. ck_assert_int_eq(retval, UA_STATUSCODE_GOOD);
  263. ck_assert_int_eq(pos, 8);
  264. ck_assert(2147483647.9999999 <= dst);
  265. ck_assert(dst <= 2147483648.00000001);
  266. }
  267. END_TEST
  268. START_TEST(UA_String_decodeShallAllocateMemoryAndCopyString) {
  269. // given
  270. size_t pos = 0;
  271. UA_Byte data[] =
  272. { 0x08, 0x00, 0x00, 0x00, 'A', 'C', 'P', 'L', 'T', ' ', 'U', 'A', 0xFF, 0xFF, 0xFF, 0xFF, 0xFF };
  273. UA_ByteString src = { 16, data };
  274. UA_String dst;
  275. // when
  276. UA_StatusCode retval = UA_String_decodeBinary(&src, &pos, &dst);
  277. // then
  278. ck_assert_int_eq(retval, UA_STATUSCODE_GOOD);
  279. ck_assert_int_eq(dst.length, 8);
  280. ck_assert_int_eq(dst.data[3], 'L');
  281. ck_assert_uint_eq(pos, UA_calcSizeBinary(&dst, &UA_TYPES[UA_TYPES_STRING]));
  282. // finally
  283. UA_String_deleteMembers(&dst);
  284. }
  285. END_TEST
  286. START_TEST(UA_String_decodeWithNegativeSizeShallNotAllocateMemoryAndNullPtr) {
  287. // given
  288. size_t pos = 0;
  289. UA_Byte data[] =
  290. { 0xFF, 0xFF, 0xFF, 0xFF, 'A', 'C', 'P', 'L', 'T', ' ', 'U', 'A', 0xFF, 0xFF, 0xFF, 0xFF, 0xFF };
  291. UA_ByteString src = { 16, data };
  292. UA_String dst;
  293. // when
  294. UA_StatusCode retval = UA_String_decodeBinary(&src, &pos, &dst);
  295. // then
  296. ck_assert_int_eq(retval, UA_STATUSCODE_GOOD);
  297. ck_assert_int_eq(dst.length, 0);
  298. ck_assert_ptr_eq(dst.data, NULL);
  299. }
  300. END_TEST
  301. START_TEST(UA_String_decodeWithZeroSizeShallNotAllocateMemoryAndNullPtr) {
  302. // given
  303. size_t pos = 0;
  304. UA_Byte data[] =
  305. { 0x00, 0x00, 0x00, 0x00, 'A', 'C', 'P', 'L', 'T', ' ', 'U', 'A', 0xFF, 0xFF, 0xFF, 0xFF, 0xFF };
  306. UA_ByteString src = { 17, data };
  307. UA_String dst;
  308. // when
  309. UA_StatusCode retval = UA_String_decodeBinary(&src, &pos, &dst);
  310. // then
  311. ck_assert_int_eq(retval, UA_STATUSCODE_GOOD);
  312. ck_assert_int_eq(dst.length, 0);
  313. ck_assert_ptr_eq(dst.data, UA_EMPTY_ARRAY_SENTINEL);
  314. }
  315. END_TEST
  316. START_TEST(UA_NodeId_decodeTwoByteShallReadTwoBytesAndSetNamespaceToZero) {
  317. // given
  318. size_t pos = 0;
  319. UA_Byte data[] = { 0 /* UA_NODEIDTYPE_TWOBYTE */, 0x10 };
  320. UA_ByteString src = { 2, data };
  321. UA_NodeId dst;
  322. // when
  323. UA_StatusCode retval = UA_NodeId_decodeBinary(&src, &pos, &dst);
  324. // then
  325. ck_assert_int_eq(retval, UA_STATUSCODE_GOOD);
  326. ck_assert_int_eq(pos, 2);
  327. ck_assert_uint_eq(pos, UA_calcSizeBinary(&dst, &UA_TYPES[UA_TYPES_NODEID]));
  328. ck_assert_int_eq(dst.identifierType, UA_NODEIDTYPE_NUMERIC);
  329. ck_assert_int_eq(dst.identifier.numeric, 16);
  330. ck_assert_int_eq(dst.namespaceIndex, 0);
  331. }
  332. END_TEST
  333. START_TEST(UA_NodeId_decodeFourByteShallReadFourBytesAndRespectNamespace) {
  334. // given
  335. size_t pos = 0;
  336. UA_Byte data[] = { 1 /* UA_NODEIDTYPE_FOURBYTE */, 0x01, 0x00, 0x01 };
  337. UA_ByteString src = { 4, data };
  338. UA_NodeId dst;
  339. // when
  340. UA_StatusCode retval = UA_NodeId_decodeBinary(&src, &pos, &dst);
  341. // then
  342. ck_assert_int_eq(retval, UA_STATUSCODE_GOOD);
  343. ck_assert_int_eq(pos, 4);
  344. ck_assert_uint_eq(pos, UA_calcSizeBinary(&dst, &UA_TYPES[UA_TYPES_NODEID]));
  345. ck_assert_int_eq(dst.identifierType, UA_NODEIDTYPE_NUMERIC);
  346. ck_assert_int_eq(dst.identifier.numeric, 256);
  347. ck_assert_int_eq(dst.namespaceIndex, 1);
  348. }
  349. END_TEST
  350. START_TEST(UA_NodeId_decodeStringShallAllocateMemory) {
  351. // given
  352. size_t pos = 0;
  353. UA_Byte data[] = { UA_NODEIDTYPE_STRING, 0x01, 0x00, 0x03, 0x00, 0x00, 0x00, 'P', 'L', 'T' };
  354. UA_ByteString src = { 10, data };
  355. UA_NodeId dst;
  356. // when
  357. UA_StatusCode retval = UA_NodeId_decodeBinary(&src, &pos, &dst);
  358. // then
  359. ck_assert_int_eq(retval, UA_STATUSCODE_GOOD);
  360. ck_assert_int_eq(pos, 10);
  361. ck_assert_uint_eq(pos, UA_calcSizeBinary(&dst, &UA_TYPES[UA_TYPES_NODEID]));
  362. ck_assert_int_eq(dst.identifierType, UA_NODEIDTYPE_STRING);
  363. ck_assert_int_eq(dst.namespaceIndex, 1);
  364. ck_assert_int_eq(dst.identifier.string.length, 3);
  365. ck_assert_int_eq(dst.identifier.string.data[1], 'L');
  366. // finally
  367. UA_NodeId_deleteMembers(&dst);
  368. }
  369. END_TEST
  370. START_TEST(UA_Variant_decodeWithOutArrayFlagSetShallSetVTAndAllocateMemoryForArray) {
  371. // given
  372. size_t pos = 0;
  373. UA_Byte data[] = { (UA_Byte)UA_TYPES[UA_TYPES_INT32].typeId.identifier.numeric, 0xFF, 0x00, 0x00, 0x00 };
  374. UA_ByteString src = { 5, data };
  375. UA_Variant dst;
  376. // when
  377. UA_StatusCode retval = UA_Variant_decodeBinary(&src, &pos, &dst);
  378. // then
  379. ck_assert_int_eq(retval, UA_STATUSCODE_GOOD);
  380. ck_assert_uint_eq(pos, 5);
  381. ck_assert_uint_eq(pos, UA_calcSizeBinary(&dst, &UA_TYPES[UA_TYPES_VARIANT]));
  382. //ck_assert_ptr_eq((const void *)dst.type, (const void *)&UA_TYPES[UA_TYPES_INT32]); //does not compile in gcc 4.6
  383. ck_assert_int_eq((uintptr_t)dst.type, (uintptr_t)&UA_TYPES[UA_TYPES_INT32]);
  384. ck_assert_int_eq(dst.arrayLength, 0);
  385. ck_assert_int_ne((uintptr_t)dst.data, 0);
  386. UA_assert(dst.data != NULL); /* repeat the previous argument so that clang-analyzer is happy */
  387. ck_assert_int_eq(*(UA_Int32 *)dst.data, 255);
  388. // finally
  389. UA_Variant_deleteMembers(&dst);
  390. }
  391. END_TEST
  392. START_TEST(UA_Variant_decodeWithArrayFlagSetShallSetVTAndAllocateMemoryForArray) {
  393. // given
  394. size_t pos = 0;
  395. UA_Byte data[] = { (UA_Byte)(UA_TYPES[UA_TYPES_INT32].typeId.identifier.numeric |
  396. UA_VARIANT_ENCODINGMASKTYPE_ARRAY),
  397. 0x02, 0x00, 0x00, 0x00, 0xFF, 0x00, 0x00, 0x00, 0xFF, 0xFF,
  398. 0xFF, 0xFF };
  399. UA_ByteString src = { 13, data };
  400. UA_Variant dst;
  401. // when
  402. UA_StatusCode retval = UA_Variant_decodeBinary(&src, &pos, &dst);
  403. // then
  404. ck_assert_int_eq(retval, UA_STATUSCODE_GOOD);
  405. ck_assert_int_eq(pos, 1+4+2*4);
  406. ck_assert_uint_eq(pos, UA_calcSizeBinary(&dst, &UA_TYPES[UA_TYPES_VARIANT]));
  407. //ck_assert_ptr_eq((const (void*))dst.type, (const void*)&UA_TYPES[UA_TYPES_INT32]); //does not compile in gcc 4.6
  408. ck_assert_int_eq((uintptr_t)dst.type,(uintptr_t)&UA_TYPES[UA_TYPES_INT32]);
  409. ck_assert_int_eq(dst.arrayLength, 2);
  410. ck_assert_int_eq(((UA_Int32 *)dst.data)[0], 255);
  411. ck_assert_int_eq(((UA_Int32 *)dst.data)[1], -1);
  412. // finally
  413. UA_Variant_deleteMembers(&dst);
  414. }
  415. END_TEST
  416. START_TEST(UA_Variant_decodeSingleExtensionObjectShallSetVTAndAllocateMemory){
  417. /* // given */
  418. /* size_t pos = 0; */
  419. /* UA_Variant dst; */
  420. /* UA_NodeId tmpNodeId; */
  421. /* UA_NodeId_init(&tmpNodeId); */
  422. /* tmpNodeId.identifier.numeric = 22; */
  423. /* tmpNodeId.namespaceIndex = 2; */
  424. /* tmpNodeId.identifierType = UA_NODEIDTYPE_NUMERIC; */
  425. /* UA_ExtensionObject tmpExtensionObject; */
  426. /* UA_ExtensionObject_init(&tmpExtensionObject); */
  427. /* tmpExtensionObject.encoding = UA_EXTENSIONOBJECT_ENCODED_BYTESTRING; */
  428. /* tmpExtensionObject.content.encoded.body = UA_ByteString_withSize(3); */
  429. /* tmpExtensionObject.content.encoded.body.data[0]= 10; */
  430. /* tmpExtensionObject.content.encoded.body.data[1]= 20; */
  431. /* tmpExtensionObject.content.encoded.body.data[2]= 30; */
  432. /* tmpExtensionObject.content.encoded.typeId = tmpNodeId; */
  433. /* UA_Variant tmpVariant; */
  434. /* UA_Variant_init(&tmpVariant); */
  435. /* tmpVariant.arrayDimensions = NULL; */
  436. /* tmpVariant.arrayDimensionsSize = -1; */
  437. /* tmpVariant.arrayLength = -1; */
  438. /* tmpVariant.storageType = UA_VARIANT_DATA_NODELETE; */
  439. /* tmpVariant.type = &UA_TYPES[UA_TYPES_EXTENSIONOBJECT]; */
  440. /* tmpVariant.data = &tmpExtensionObject; */
  441. /* UA_ByteString srcByteString = UA_ByteString_withSize(200); */
  442. /* pos = 0; */
  443. /* UA_Variant_encodeBinary(&tmpVariant,&srcByteString,pos); */
  444. /* // when */
  445. /* pos = 0; */
  446. /* UA_StatusCode retval = UA_Variant_decodeBinary(&srcByteString, &pos, &dst); */
  447. /* // then */
  448. /* ck_assert_int_eq(retval, UA_STATUSCODE_GOOD); */
  449. /* // TODO!! */
  450. /* /\* ck_assert_int_eq(dst.encoding, UA_EXTENSIONOBJECT_DECODED); *\/ */
  451. /* /\* ck_assert_int_eq((uintptr_t)dst.content.decoded.type, (uintptr_t)&UA_TYPES[UA_TYPES_EXTENSIONOBJECT]); *\/ */
  452. /* /\* ck_assert_int_eq(dst.arrayLength, -1); *\/ */
  453. /* /\* ck_assert_int_eq(((UA_ExtensionObject *)dst.data)->body.data[0], 10); *\/ */
  454. /* /\* ck_assert_int_eq(((UA_ExtensionObject *)dst.data)->body.data[1], 20); *\/ */
  455. /* /\* ck_assert_int_eq(((UA_ExtensionObject *)dst.data)->body.data[2], 30); *\/ */
  456. /* /\* ck_assert_int_eq(((UA_ExtensionObject *)dst.data)->body.length, 3); *\/ */
  457. /* // finally */
  458. /* UA_Variant_deleteMembers(&dst); */
  459. /* UA_ByteString_deleteMembers(&srcByteString); */
  460. /* UA_ExtensionObject_deleteMembers(&tmpExtensionObject); */
  461. }
  462. END_TEST
  463. START_TEST(UA_Variant_decodeWithOutDeleteMembersShallFailInCheckMem) {
  464. // given
  465. size_t pos = 0;
  466. UA_Byte data[] = { (UA_Byte)(UA_TYPES[UA_TYPES_INT32].typeId.identifier.numeric |
  467. UA_VARIANT_ENCODINGMASKTYPE_ARRAY),
  468. 0x02, 0x00, 0x00, 0x00, 0xFF, 0x00, 0x00, 0x00, 0xFF, 0xFF, 0xFF, 0xFF };
  469. UA_ByteString src = { 13, data };
  470. UA_Variant dst;
  471. // when
  472. UA_StatusCode retval = UA_Variant_decodeBinary(&src, &pos, &dst);
  473. // then
  474. ck_assert_int_eq(retval, UA_STATUSCODE_GOOD);
  475. // finally
  476. UA_Variant_deleteMembers(&dst);
  477. }
  478. END_TEST
  479. START_TEST(UA_Variant_decodeWithTooSmallSourceShallReturnWithError) {
  480. // given
  481. size_t pos = 0;
  482. UA_Byte data[] = { (UA_Byte)(UA_TYPES[UA_TYPES_INT32].typeId.identifier.numeric |
  483. UA_VARIANT_ENCODINGMASKTYPE_ARRAY),
  484. 0x02, 0x00, 0x00, 0x00, 0xFF, 0x00, 0x00, 0x00, 0xFF, 0xFF, 0xFF, 0xFF };
  485. UA_ByteString src = { 4, data };
  486. UA_Variant dst;
  487. // when
  488. UA_StatusCode retval = UA_Variant_decodeBinary(&src, &pos, &dst);
  489. // then
  490. ck_assert_int_ne(retval, UA_STATUSCODE_GOOD);
  491. // finally
  492. UA_Variant_deleteMembers(&dst);
  493. }
  494. END_TEST
  495. START_TEST(UA_Byte_encode_test) {
  496. // given
  497. UA_Byte src = 8;
  498. UA_Byte data[] = { 0x00, 0xFF };
  499. UA_ByteString dst = { 2, data };
  500. ck_assert_uint_eq(dst.data[1], 0xFF);
  501. UA_Byte *pos = dst.data;
  502. const UA_Byte *end = &dst.data[dst.length];
  503. UA_StatusCode retval = UA_Byte_encodeBinary(&src, &pos, end);
  504. ck_assert_uint_eq(dst.data[0], 0x08);
  505. ck_assert_uint_eq(dst.data[1], 0xFF);
  506. ck_assert_int_eq((uintptr_t)(pos - dst.data), 1);
  507. ck_assert_int_eq(retval, UA_STATUSCODE_GOOD);
  508. // Test2
  509. // given
  510. src = 0xFF;
  511. dst.data[1] = 0x00;
  512. pos = dst.data;
  513. retval = UA_Byte_encodeBinary(&src, &pos, end);
  514. ck_assert_int_eq(dst.data[0], 0xFF);
  515. ck_assert_int_eq(dst.data[1], 0x00);
  516. ck_assert_int_eq((uintptr_t)(pos - dst.data), 1);
  517. ck_assert_int_eq(retval, UA_STATUSCODE_GOOD);
  518. }
  519. END_TEST
  520. START_TEST(UA_UInt16_encodeNegativeShallEncodeLittleEndian) {
  521. // given
  522. UA_UInt16 src = -1;
  523. UA_Byte data[] = { 0x55, 0x55, 0x55, 0x55 };
  524. UA_ByteString dst = { 4, data };
  525. UA_Byte *pos = dst.data;
  526. const UA_Byte *end = &dst.data[dst.length];
  527. // when test 1
  528. UA_StatusCode retval = UA_UInt16_encodeBinary(&src, &pos, end);
  529. // then test 1
  530. ck_assert_int_eq((uintptr_t)(pos - dst.data), 2);
  531. ck_assert_int_eq(dst.data[0], 0xFF);
  532. ck_assert_int_eq(dst.data[1], 0xFF);
  533. ck_assert_int_eq(retval, UA_STATUSCODE_GOOD);
  534. // when test 2
  535. src = -32768;
  536. retval = UA_UInt16_encodeBinary(&src, &pos, end);
  537. // then test 2
  538. ck_assert_int_eq((uintptr_t)(pos - dst.data), 4);
  539. ck_assert_int_eq(dst.data[2], 0x00);
  540. ck_assert_int_eq(dst.data[3], 0x80);
  541. ck_assert_int_eq(retval, UA_STATUSCODE_GOOD);
  542. }
  543. END_TEST
  544. START_TEST(UA_UInt16_encodeShallEncodeLittleEndian) {
  545. // given
  546. UA_UInt16 src = 0;
  547. UA_Byte data[] = { 0x55, 0x55, 0x55, 0x55 };
  548. UA_ByteString dst = { 4, data };
  549. UA_Byte *pos = dst.data;
  550. const UA_Byte *end = &dst.data[dst.length];
  551. // when test 1
  552. UA_StatusCode retval = UA_UInt16_encodeBinary(&src, &pos, end);
  553. // then test 1
  554. ck_assert_int_eq((uintptr_t)(pos - dst.data), 2);
  555. ck_assert_int_eq(dst.data[0], 0x00);
  556. ck_assert_int_eq(dst.data[1], 0x00);
  557. ck_assert_int_eq(retval, UA_STATUSCODE_GOOD);
  558. // when test 2
  559. src = 32767;
  560. retval = UA_UInt16_encodeBinary(&src, &pos, end);
  561. // then test 2
  562. ck_assert_int_eq((uintptr_t)(pos - dst.data), 4);
  563. ck_assert_int_eq(dst.data[2], 0xFF);
  564. ck_assert_int_eq(dst.data[3], 0x7F);
  565. ck_assert_int_eq(retval, UA_STATUSCODE_GOOD);
  566. }
  567. END_TEST
  568. START_TEST(UA_UInt32_encodeShallEncodeLittleEndian) {
  569. // given
  570. UA_UInt32 src = -1;
  571. UA_Byte data[] = { 0x55, 0x55, 0x55, 0x55, 0x55, 0x55, 0x55, 0x55 };
  572. UA_ByteString dst = { 8, data };
  573. UA_Byte *pos = dst.data;
  574. const UA_Byte *end = &dst.data[dst.length];
  575. // when test 1
  576. UA_StatusCode retval = UA_UInt32_encodeBinary(&src, &pos, end);
  577. // then test 1
  578. ck_assert_int_eq((uintptr_t)(pos - dst.data), 4);
  579. ck_assert_int_eq(dst.data[0], 0xFF);
  580. ck_assert_int_eq(dst.data[1], 0xFF);
  581. ck_assert_int_eq(dst.data[2], 0xFF);
  582. ck_assert_int_eq(dst.data[3], 0xFF);
  583. ck_assert_int_eq(retval, UA_STATUSCODE_GOOD);
  584. // when test 2
  585. src = 0x0101FF00;
  586. retval = UA_UInt32_encodeBinary(&src, &pos, end);
  587. // then test 2
  588. ck_assert_int_eq((uintptr_t)(pos - dst.data), 8);
  589. ck_assert_int_eq(dst.data[4], 0x00);
  590. ck_assert_int_eq(dst.data[5], 0xFF);
  591. ck_assert_int_eq(dst.data[6], 0x01);
  592. ck_assert_int_eq(dst.data[7], 0x01);
  593. ck_assert_int_eq(retval, UA_STATUSCODE_GOOD);
  594. }
  595. END_TEST
  596. START_TEST(UA_Int32_encodeShallEncodeLittleEndian) {
  597. // given
  598. UA_Int32 src = 1;
  599. UA_Byte data[] = { 0x55, 0x55, 0x55, 0x55, 0x55, 0x55, 0x55, 0x55 };
  600. UA_ByteString dst = { 8, data };
  601. UA_Byte *pos = dst.data;
  602. const UA_Byte *end = &dst.data[dst.length];
  603. // when test 1
  604. UA_StatusCode retval = UA_Int32_encodeBinary(&src, &pos, end);
  605. // then test 1
  606. ck_assert_int_eq((uintptr_t)(pos - dst.data), 4);
  607. ck_assert_int_eq(dst.data[0], 0x01);
  608. ck_assert_int_eq(dst.data[1], 0x00);
  609. ck_assert_int_eq(dst.data[2], 0x00);
  610. ck_assert_int_eq(dst.data[3], 0x00);
  611. ck_assert_int_eq(retval, UA_STATUSCODE_GOOD);
  612. // when test 2
  613. src = 0x7FFFFFFF;
  614. retval = UA_Int32_encodeBinary(&src, &pos, end);
  615. // then test 2
  616. ck_assert_int_eq((uintptr_t)(pos - dst.data), 8);
  617. ck_assert_int_eq(dst.data[4], 0xFF);
  618. ck_assert_int_eq(dst.data[5], 0xFF);
  619. ck_assert_int_eq(dst.data[6], 0xFF);
  620. ck_assert_int_eq(dst.data[7], 0x7F);
  621. ck_assert_int_eq(retval, UA_STATUSCODE_GOOD);
  622. }
  623. END_TEST
  624. START_TEST(UA_Int32_encodeNegativeShallEncodeLittleEndian) {
  625. // given
  626. UA_Int32 src = -1;
  627. UA_Byte data[] = { 0x55, 0x55, 0x55, 0x55, 0x55, 0x55, 0x55, 0x55 };
  628. UA_ByteString dst = { 8, data };
  629. UA_Byte *pos = dst.data;
  630. const UA_Byte *end = &dst.data[dst.length];
  631. // when test 1
  632. UA_StatusCode retval = UA_Int32_encodeBinary(&src, &pos, end);
  633. // then test 1
  634. ck_assert_int_eq((uintptr_t)(pos - dst.data), 4);
  635. ck_assert_int_eq(dst.data[0], 0xFF);
  636. ck_assert_int_eq(dst.data[1], 0xFF);
  637. ck_assert_int_eq(dst.data[2], 0xFF);
  638. ck_assert_int_eq(dst.data[3], 0xFF);
  639. ck_assert_int_eq(retval, UA_STATUSCODE_GOOD);
  640. }
  641. END_TEST
  642. START_TEST(UA_UInt64_encodeShallWorkOnExample) {
  643. // given
  644. UA_UInt64 src = -1;
  645. UA_Byte data[] = { 0x55, 0x55, 0x55, 0x55, 0x55, 0x55, 0x55, 0x55,
  646. 0x55, 0x55, 0x55, 0x55, 0x55, 0x55, 0x55, 0x55 };
  647. UA_ByteString dst = { 16, data };
  648. UA_Byte *pos = dst.data;
  649. const UA_Byte *end = &dst.data[dst.length];
  650. // when test 1
  651. UA_StatusCode retval = UA_UInt64_encodeBinary(&src, &pos, end);
  652. // then test 1
  653. ck_assert_int_eq((uintptr_t)(pos - dst.data), 8);
  654. ck_assert_int_eq(dst.data[0], 0xFF);
  655. ck_assert_int_eq(dst.data[1], 0xFF);
  656. ck_assert_int_eq(dst.data[2], 0xFF);
  657. ck_assert_int_eq(dst.data[3], 0xFF);
  658. ck_assert_int_eq(dst.data[4], 0xFF);
  659. ck_assert_int_eq(dst.data[5], 0xFF);
  660. ck_assert_int_eq(dst.data[6], 0xFF);
  661. ck_assert_int_eq(dst.data[7], 0xFF);
  662. ck_assert_int_eq(retval, UA_STATUSCODE_GOOD);
  663. // when test 2
  664. src = 0x7F0033AA44EE6611;
  665. retval = UA_UInt64_encodeBinary(&src, &pos, end);
  666. // then test 2
  667. ck_assert_int_eq((uintptr_t)(pos - dst.data), 16);
  668. ck_assert_int_eq(dst.data[8], 0x11);
  669. ck_assert_int_eq(dst.data[9], 0x66);
  670. ck_assert_int_eq(dst.data[10], 0xEE);
  671. ck_assert_int_eq(dst.data[11], 0x44);
  672. ck_assert_int_eq(dst.data[12], 0xAA);
  673. ck_assert_int_eq(dst.data[13], 0x33);
  674. ck_assert_int_eq(dst.data[14], 0x00);
  675. ck_assert_int_eq(dst.data[15], 0x7F);
  676. ck_assert_int_eq(retval, UA_STATUSCODE_GOOD);
  677. }
  678. END_TEST
  679. START_TEST(UA_Int64_encodeShallEncodeLittleEndian) {
  680. // given
  681. UA_Int64 src = 0x7F0033AA44EE6611;
  682. UA_Byte data[] = { 0x55, 0x55, 0x55, 0x55, 0x55, 0x55, 0x55, 0x55,
  683. 0x55, 0x55, 0x55, 0x55, 0x55, 0x55, 0x55, 0x55 };
  684. UA_ByteString dst = { 16, data };
  685. UA_Byte *pos = dst.data;
  686. const UA_Byte *end = &dst.data[dst.length];
  687. // when test 1
  688. UA_StatusCode retval = UA_Int64_encodeBinary(&src, &pos, end);
  689. // then test 1
  690. ck_assert_int_eq((uintptr_t)(pos - dst.data), 8);
  691. ck_assert_int_eq(dst.data[0], 0x11);
  692. ck_assert_int_eq(dst.data[1], 0x66);
  693. ck_assert_int_eq(dst.data[2], 0xEE);
  694. ck_assert_int_eq(dst.data[3], 0x44);
  695. ck_assert_int_eq(dst.data[4], 0xAA);
  696. ck_assert_int_eq(dst.data[5], 0x33);
  697. ck_assert_int_eq(dst.data[6], 0x00);
  698. ck_assert_int_eq(dst.data[7], 0x7F);
  699. ck_assert_int_eq(retval, UA_STATUSCODE_GOOD);
  700. }
  701. END_TEST
  702. START_TEST(UA_Int64_encodeNegativeShallEncodeLittleEndian) {
  703. // given
  704. UA_Int64 src = -1;
  705. UA_Byte data[] = { 0x55, 0x55, 0x55, 0x55, 0x55, 0x55, 0x55, 0x55,
  706. 0x55, 0x55, 0x55, 0x55, 0x55, 0x55, 0x55, 0x55 };
  707. UA_ByteString dst = { 16, data };
  708. UA_Byte *pos = dst.data;
  709. const UA_Byte *end = &dst.data[dst.length];
  710. // when test 1
  711. UA_StatusCode retval = UA_Int64_encodeBinary(&src, &pos, end);
  712. // then test 1
  713. ck_assert_int_eq((uintptr_t)(pos - dst.data), 8);
  714. ck_assert_int_eq(dst.data[0], 0xFF);
  715. ck_assert_int_eq(dst.data[1], 0xFF);
  716. ck_assert_int_eq(dst.data[2], 0xFF);
  717. ck_assert_int_eq(dst.data[3], 0xFF);
  718. ck_assert_int_eq(dst.data[4], 0xFF);
  719. ck_assert_int_eq(dst.data[5], 0xFF);
  720. ck_assert_int_eq(dst.data[6], 0xFF);
  721. ck_assert_int_eq(dst.data[7], 0xFF);
  722. ck_assert_int_eq(retval, UA_STATUSCODE_GOOD);
  723. }
  724. END_TEST
  725. START_TEST(UA_Float_encodeShallWorkOnExample) {
  726. #define UA_FLOAT_TESTS 9
  727. /* use -NAN since the UA standard expected specific values for NAN with the
  728. negative bit set */
  729. UA_Float src[UA_FLOAT_TESTS] = {27.5f, -6.5f, 0.0f, -0.0f, -NAN, FLT_MAX, FLT_MIN, INFINITY, -INFINITY};
  730. UA_Byte result[UA_FLOAT_TESTS][4] = {
  731. {0x00, 0x00, 0xDC, 0x41}, // 27.5
  732. {0x00, 0x00, 0xD0, 0xC0}, // -6.5
  733. {0x00, 0x00, 0x00, 0x00}, // 0.0
  734. {0x00, 0x00, 0x00, 0x80}, // -0.0
  735. {0x00, 0x00, 0xC0, 0xFF}, // -NAN
  736. {0xFF, 0xFF, 0x7F, 0x7F}, // FLT_MAX
  737. {0x00, 0x00, 0x80, 0x00}, // FLT_MIN
  738. {0x00, 0x00, 0x80, 0x7F}, // INF
  739. {0x00, 0x00, 0x80, 0xFF} // -INF
  740. };
  741. #if defined(_MSC_VER) || defined(__TINYC__)
  742. /* On Visual Studio or TinyCC -NAN is encoded differently */
  743. result[4][3] = 127;
  744. #endif
  745. UA_Byte data[] = {0x55, 0x55, 0x55, 0x55};
  746. UA_ByteString dst = {4, data};
  747. const UA_Byte *end = &dst.data[dst.length];
  748. for(size_t i = 0; i < 7; i++) {
  749. UA_Byte *pos = dst.data;
  750. UA_Int32 retval = UA_Float_encodeBinary(&src[i], &pos, end);
  751. ck_assert_int_eq((uintptr_t)(pos - dst.data), 4);
  752. ck_assert_int_eq(dst.data[0], result[i][0]);
  753. ck_assert_int_eq(dst.data[1], result[i][1]);
  754. ck_assert_int_eq(dst.data[2], result[i][2]);
  755. ck_assert_int_eq(dst.data[3], result[i][3]);
  756. ck_assert_int_eq(retval, UA_STATUSCODE_GOOD);
  757. }
  758. }
  759. END_TEST
  760. START_TEST(UA_Double_encodeShallWorkOnExample) {
  761. // given
  762. UA_Double src = -6.5;
  763. UA_Byte data[] = { 0x55,0x55,0x55,0x55,0x55,0x55,0x55,0x55,
  764. 0x55,0x55,0x55,0x55,0x55,0x55,0x55,0x55 };
  765. UA_ByteString dst = {16,data};
  766. UA_Byte *pos = dst.data;
  767. const UA_Byte *end = &dst.data[dst.length];
  768. // when test 1
  769. UA_StatusCode retval = UA_Double_encodeBinary(&src, &pos, end);
  770. // then test 1
  771. ck_assert_int_eq((uintptr_t)(pos - dst.data), 8);
  772. ck_assert_int_eq(dst.data[6], 0x1A);
  773. ck_assert_int_eq(dst.data[7], 0xC0);
  774. ck_assert_int_eq(retval, UA_STATUSCODE_GOOD);
  775. }
  776. END_TEST
  777. START_TEST(UA_String_encodeShallWorkOnExample) {
  778. // given
  779. UA_String src;
  780. src.length = 11;
  781. UA_Byte mem[12] = "ACPLT OPCUA";
  782. src.data = mem;
  783. UA_Byte data[] = { 0x55, 0x55, 0x55, 0x55, 0x55, 0x55, 0x55, 0x55,
  784. 0x55, 0x55, 0x55, 0x55, 0x55, 0x55, 0x55, 0x55,
  785. 0x55, 0x55, 0x55, 0x55, 0x55, 0x55, 0x55, 0x55 };
  786. UA_ByteString dst = { 24, data };
  787. UA_Byte *pos = dst.data;
  788. const UA_Byte *end = &dst.data[dst.length];
  789. // when
  790. UA_StatusCode retval = UA_String_encodeBinary(&src, &pos, end);
  791. // then
  792. ck_assert_int_eq((uintptr_t)(pos - dst.data), sizeof(UA_Int32)+11);
  793. ck_assert_uint_eq(sizeof(UA_Int32)+11, UA_calcSizeBinary(&src, &UA_TYPES[UA_TYPES_STRING]));
  794. ck_assert_int_eq(dst.data[0], 11);
  795. ck_assert_int_eq(dst.data[sizeof(UA_Int32)+0], 'A');
  796. ck_assert_int_eq(dst.data[sizeof(UA_Int32)+1], 'C');
  797. ck_assert_int_eq(dst.data[sizeof(UA_Int32)+2], 'P');
  798. ck_assert_int_eq(dst.data[sizeof(UA_Int32)+3], 'L');
  799. ck_assert_int_eq(dst.data[sizeof(UA_Int32)+4], 'T');
  800. ck_assert_int_eq(dst.data[sizeof(UA_Int32)+5], 0x20); //Space
  801. ck_assert_int_eq(retval, UA_STATUSCODE_GOOD);
  802. }
  803. END_TEST
  804. START_TEST(UA_ExpandedNodeId_encodeShallWorkOnExample) {
  805. // given
  806. UA_ExpandedNodeId src = UA_EXPANDEDNODEID_NUMERIC(0, 15);
  807. src.namespaceUri = UA_STRING("testUri");
  808. UA_Byte data[] = { 0x55, 0x55, 0x55, 0x55, 0x55, 0x55, 0x55, 0x55,
  809. 0x55, 0x55, 0x55, 0x55, 0x55, 0x55, 0x55, 0x55,
  810. 0x55, 0x55, 0x55, 0x55, 0x55, 0x55, 0x55, 0x55,
  811. 0x55, 0x55, 0x55, 0x55, 0x55, 0x55, 0x55, 0x55 };
  812. UA_ByteString dst = { 32, data };
  813. UA_Byte *pos = dst.data;
  814. const UA_Byte *end = &dst.data[dst.length];
  815. // when
  816. UA_StatusCode retval = UA_ExpandedNodeId_encodeBinary(&src, &pos, end);
  817. // then
  818. ck_assert_int_eq(retval, UA_STATUSCODE_GOOD);
  819. ck_assert_int_eq((uintptr_t)(pos - dst.data), 13);
  820. ck_assert_uint_eq(13, UA_calcSizeBinary(&src, &UA_TYPES[UA_TYPES_EXPANDEDNODEID]));
  821. ck_assert_int_eq(dst.data[0], 0x80); // namespaceuri flag
  822. }
  823. END_TEST
  824. START_TEST(UA_DataValue_encodeShallWorkOnExampleWithoutVariant) {
  825. // given
  826. UA_DataValue src;
  827. UA_DataValue_init(&src);
  828. src.serverTimestamp = 80;
  829. src.hasServerTimestamp = true;
  830. UA_Byte data[] = { 0x55, 0x55, 0x55, 0x55, 0x55, 0x55, 0x55, 0x55,
  831. 0x55, 0x55, 0x55, 0x55, 0x55, 0x55, 0x55, 0x55,
  832. 0x55, 0x55, 0x55, 0x55, 0x55, 0x55, 0x55, 0x55 };
  833. UA_ByteString dst = { 24, data };
  834. UA_Byte *pos = dst.data;
  835. const UA_Byte *end = &dst.data[dst.length];
  836. // when
  837. UA_StatusCode retval = UA_DataValue_encodeBinary(&src, &pos, end);
  838. // then
  839. ck_assert_int_eq((uintptr_t)(pos - dst.data), 9);
  840. ck_assert_uint_eq(9, UA_calcSizeBinary(&src, &UA_TYPES[UA_TYPES_DATAVALUE]));
  841. ck_assert_int_eq(dst.data[0], 0x08); // encodingMask
  842. ck_assert_int_eq(dst.data[1], 80); // 8 Byte serverTimestamp
  843. ck_assert_int_eq(dst.data[2], 0);
  844. ck_assert_int_eq(dst.data[3], 0);
  845. ck_assert_int_eq(dst.data[4], 0);
  846. ck_assert_int_eq(dst.data[5], 0);
  847. ck_assert_int_eq(dst.data[6], 0);
  848. ck_assert_int_eq(dst.data[7], 0);
  849. ck_assert_int_eq(dst.data[8], 0);
  850. ck_assert_int_eq(retval, UA_STATUSCODE_GOOD);
  851. }
  852. END_TEST
  853. START_TEST(UA_DataValue_encodeShallWorkOnExampleWithVariant) {
  854. // given
  855. UA_DataValue src;
  856. UA_DataValue_init(&src);
  857. src.serverTimestamp = 80;
  858. src.hasValue = true;
  859. src.hasServerTimestamp = true;
  860. src.value.type = &UA_TYPES[UA_TYPES_INT32];
  861. src.value.arrayLength = 0; // one element (encoded as not an array)
  862. UA_Int32 vdata = 45;
  863. src.value.data = (void *)&vdata;
  864. UA_Byte data[] = { 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
  865. 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00,
  866. 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00, 0x00 };
  867. UA_ByteString dst = { 24, data };
  868. UA_Byte *pos = dst.data;
  869. const UA_Byte *end = &dst.data[dst.length];
  870. // when
  871. UA_StatusCode retval = UA_DataValue_encodeBinary(&src, &pos, end);
  872. // then
  873. ck_assert_int_eq((uintptr_t)(pos - dst.data), 1+(1+4)+8); // represents the length
  874. ck_assert_uint_eq(1+(1+4)+8, UA_calcSizeBinary(&src, &UA_TYPES[UA_TYPES_DATAVALUE]));
  875. ck_assert_int_eq(dst.data[0], 0x08 | 0x01); // encodingMask
  876. ck_assert_int_eq(dst.data[1], 0x06); // Variant's Encoding Mask - INT32
  877. ck_assert_int_eq(dst.data[2], 45); // the single value
  878. ck_assert_int_eq(dst.data[3], 0);
  879. ck_assert_int_eq(dst.data[4], 0);
  880. ck_assert_int_eq(dst.data[5], 0);
  881. ck_assert_int_eq(dst.data[6], 80); // the server timestamp
  882. ck_assert_int_eq(dst.data[7], 0);
  883. ck_assert_int_eq(retval, UA_STATUSCODE_GOOD);
  884. }
  885. END_TEST
  886. START_TEST(UA_DateTime_toStructShallWorkOnExample) {
  887. // given
  888. UA_DateTime src = 13974671891234567 + (11644473600 * 10000000); // ua counts since 1601, unix since 1970
  889. //1397467189... is Mon, 14 Apr 2014 09:19:49 GMT
  890. //...1234567 are the milli-, micro- and nanoseconds
  891. UA_DateTimeStruct dst;
  892. // when
  893. dst = UA_DateTime_toStruct(src);
  894. // then
  895. ck_assert_int_eq(dst.nanoSec, 700);
  896. ck_assert_int_eq(dst.microSec, 456);
  897. ck_assert_int_eq(dst.milliSec, 123);
  898. ck_assert_int_eq(dst.sec, 49);
  899. ck_assert_int_eq(dst.min, 19);
  900. ck_assert_int_eq(dst.hour, 9);
  901. ck_assert_int_eq(dst.day, 14);
  902. ck_assert_int_eq(dst.month, 4);
  903. ck_assert_int_eq(dst.year, 2014);
  904. }
  905. END_TEST
  906. START_TEST(UA_QualifiedName_equalShallWorkOnExample) {
  907. // given
  908. UA_QualifiedName qn1 = UA_QUALIFIEDNAME(5, "tEsT123!");
  909. UA_QualifiedName qn2 = UA_QUALIFIEDNAME(3, "tEsT123!");
  910. UA_QualifiedName qn3 = UA_QUALIFIEDNAME(5, "tEsT1");
  911. UA_QualifiedName qn4 = UA_QUALIFIEDNAME(5, "tEsT123!");
  912. ck_assert(UA_QualifiedName_equal(&qn1, &qn2) == UA_FALSE);
  913. ck_assert(UA_QualifiedName_equal(&qn1, &qn3) == UA_FALSE);
  914. ck_assert(UA_QualifiedName_equal(&qn1, &qn4) == UA_TRUE);
  915. }
  916. END_TEST
  917. START_TEST(UA_ExtensionObject_copyShallWorkOnExample) {
  918. // given
  919. /* UA_Byte data[3] = { 1, 2, 3 }; */
  920. /* UA_ExtensionObject value, valueCopied; */
  921. /* UA_ExtensionObject_init(&value); */
  922. /* UA_ExtensionObject_init(&valueCopied); */
  923. //Todo!!
  924. /* value.typeId = UA_TYPES[UA_TYPES_BYTE].typeId; */
  925. /* value.encoding = UA_EXTENSIONOBJECT_ENCODINGMASK_NOBODYISENCODED; */
  926. /* value.encoding = UA_EXTENSIONOBJECT_ENCODINGMASK_BODYISBYTESTRING; */
  927. /* value.body.data = data; */
  928. /* value.body.length = 3; */
  929. /* //when */
  930. /* UA_ExtensionObject_copy(&value, &valueCopied); */
  931. /* for(UA_Int32 i = 0;i < 3;i++) */
  932. /* ck_assert_int_eq(valueCopied.body.data[i], value.body.data[i]); */
  933. /* ck_assert_int_eq(valueCopied.encoding, value.encoding); */
  934. /* ck_assert_int_eq(valueCopied.typeId.identifierType, value.typeId.identifierType); */
  935. /* ck_assert_int_eq(valueCopied.typeId.identifier.numeric, value.typeId.identifier.numeric); */
  936. /* //finally */
  937. /* value.body.data = NULL; // we cannot free the static string */
  938. /* UA_ExtensionObject_deleteMembers(&value); */
  939. /* UA_ExtensionObject_deleteMembers(&valueCopied); */
  940. }
  941. END_TEST
  942. START_TEST(UA_Array_copyByteArrayShallWorkOnExample) {
  943. //given
  944. UA_String testString;
  945. UA_Byte *dstArray;
  946. UA_Int32 size = 5;
  947. UA_Int32 i = 0;
  948. testString.data = (UA_Byte*)UA_malloc(size);
  949. testString.data[0] = 'O';
  950. testString.data[1] = 'P';
  951. testString.data[2] = 'C';
  952. testString.data[3] = 'U';
  953. testString.data[4] = 'A';
  954. testString.length = 5;
  955. //when
  956. UA_StatusCode retval;
  957. retval = UA_Array_copy((const void *)testString.data, 5, (void **)&dstArray, &UA_TYPES[UA_TYPES_BYTE]);
  958. ck_assert_int_eq(retval, UA_STATUSCODE_GOOD);
  959. //then
  960. for(i = 0;i < size;i++)
  961. ck_assert_int_eq(testString.data[i], dstArray[i]);
  962. //finally
  963. UA_String_deleteMembers(&testString);
  964. UA_free((void *)dstArray);
  965. }
  966. END_TEST
  967. START_TEST(UA_Array_copyUA_StringShallWorkOnExample) {
  968. // given
  969. UA_Int32 i, j;
  970. UA_String *srcArray = (UA_String*)UA_Array_new(3, &UA_TYPES[UA_TYPES_STRING]);
  971. UA_String *dstArray;
  972. srcArray[0] = UA_STRING_ALLOC("open");
  973. srcArray[1] = UA_STRING_ALLOC("62541");
  974. srcArray[2] = UA_STRING_ALLOC("opc ua");
  975. //when
  976. UA_StatusCode retval;
  977. retval = UA_Array_copy((const void *)srcArray, 3, (void **)&dstArray, &UA_TYPES[UA_TYPES_STRING]);
  978. ck_assert_int_eq(retval, UA_STATUSCODE_GOOD);
  979. //then
  980. for(i = 0;i < 3;i++) {
  981. for(j = 0;j < 3;j++)
  982. ck_assert_int_eq(srcArray[i].data[j], dstArray[i].data[j]);
  983. ck_assert_int_eq(srcArray[i].length, dstArray[i].length);
  984. }
  985. //finally
  986. UA_Array_delete(srcArray, 3, &UA_TYPES[UA_TYPES_STRING]);
  987. UA_Array_delete(dstArray, 3, &UA_TYPES[UA_TYPES_STRING]);
  988. }
  989. END_TEST
  990. START_TEST(UA_DiagnosticInfo_copyShallWorkOnExample) {
  991. //given
  992. UA_DiagnosticInfo value, innerValue, copiedValue;
  993. UA_String testString = (UA_String){5, (UA_Byte*)"OPCUA"};
  994. UA_DiagnosticInfo_init(&value);
  995. UA_DiagnosticInfo_init(&innerValue);
  996. value.hasInnerDiagnosticInfo = true;
  997. value.innerDiagnosticInfo = &innerValue;
  998. value.hasAdditionalInfo = true;
  999. value.additionalInfo = testString;
  1000. //when
  1001. UA_DiagnosticInfo_copy(&value, &copiedValue);
  1002. //then
  1003. for(size_t i = 0;i < testString.length;i++)
  1004. ck_assert_int_eq(copiedValue.additionalInfo.data[i], value.additionalInfo.data[i]);
  1005. ck_assert_int_eq(copiedValue.additionalInfo.length, value.additionalInfo.length);
  1006. ck_assert_int_eq(copiedValue.hasInnerDiagnosticInfo, value.hasInnerDiagnosticInfo);
  1007. ck_assert_int_eq(copiedValue.innerDiagnosticInfo->locale, value.innerDiagnosticInfo->locale);
  1008. ck_assert_int_eq(copiedValue.innerStatusCode, value.innerStatusCode);
  1009. ck_assert_int_eq(copiedValue.locale, value.locale);
  1010. ck_assert_int_eq(copiedValue.localizedText, value.localizedText);
  1011. ck_assert_int_eq(copiedValue.namespaceUri, value.namespaceUri);
  1012. ck_assert_int_eq(copiedValue.symbolicId, value.symbolicId);
  1013. //finally
  1014. value.additionalInfo.data = NULL; // do not delete the static string
  1015. value.innerDiagnosticInfo = NULL; // do not delete the static innerdiagnosticinfo
  1016. UA_DiagnosticInfo_deleteMembers(&value);
  1017. UA_DiagnosticInfo_deleteMembers(&copiedValue);
  1018. }
  1019. END_TEST
  1020. START_TEST(UA_ApplicationDescription_copyShallWorkOnExample) {
  1021. //given
  1022. UA_StatusCode retval = UA_STATUSCODE_GOOD;
  1023. UA_String appString = (UA_String){3, (UA_Byte*)"APP"};
  1024. UA_String discString = (UA_String){4, (UA_Byte*)"DISC"};
  1025. UA_String gateWayString = (UA_String){7, (UA_Byte*)"GATEWAY"};
  1026. UA_String srcArray[3];
  1027. srcArray[0] = (UA_String){ 6, (UA_Byte*)"__open" };
  1028. srcArray[1] = (UA_String){ 6, (UA_Byte*)"_62541" };
  1029. srcArray[2] = (UA_String){ 6, (UA_Byte*)"opc ua" };
  1030. UA_ApplicationDescription value, copiedValue;
  1031. UA_ApplicationDescription_init(&value);
  1032. value.applicationUri = appString;
  1033. value.discoveryProfileUri = discString;
  1034. value.gatewayServerUri = gateWayString;
  1035. value.discoveryUrlsSize = 3;
  1036. value.discoveryUrls = srcArray;
  1037. //when
  1038. retval = UA_ApplicationDescription_copy(&value, &copiedValue);
  1039. //then
  1040. ck_assert_int_eq(retval, UA_STATUSCODE_GOOD);
  1041. for(size_t i = 0; i < appString.length; i++)
  1042. ck_assert_int_eq(copiedValue.applicationUri.data[i], value.applicationUri.data[i]);
  1043. ck_assert_int_eq(copiedValue.applicationUri.length, value.applicationUri.length);
  1044. for(size_t i = 0; i < discString.length; i++)
  1045. ck_assert_int_eq(copiedValue.discoveryProfileUri.data[i], value.discoveryProfileUri.data[i]);
  1046. ck_assert_int_eq(copiedValue.discoveryProfileUri.length, value.discoveryProfileUri.length);
  1047. for(size_t i = 0; i < gateWayString.length; i++)
  1048. ck_assert_int_eq(copiedValue.gatewayServerUri.data[i], value.gatewayServerUri.data[i]);
  1049. ck_assert_int_eq(copiedValue.gatewayServerUri.length, value.gatewayServerUri.length);
  1050. //String Array Test
  1051. for(UA_Int32 i = 0;i < 3;i++) {
  1052. for(UA_Int32 j = 0;j < 6;j++)
  1053. ck_assert_int_eq(value.discoveryUrls[i].data[j], copiedValue.discoveryUrls[i].data[j]);
  1054. ck_assert_int_eq(value.discoveryUrls[i].length, copiedValue.discoveryUrls[i].length);
  1055. }
  1056. ck_assert_int_eq(copiedValue.discoveryUrls[0].data[2], 'o');
  1057. ck_assert_int_eq(copiedValue.discoveryUrls[0].data[3], 'p');
  1058. ck_assert_int_eq(copiedValue.discoveryUrlsSize, value.discoveryUrlsSize);
  1059. //finally
  1060. // UA_ApplicationDescription_deleteMembers(&value); // do not free the members as they are statically allocated
  1061. UA_ApplicationDescription_deleteMembers(&copiedValue);
  1062. }
  1063. END_TEST
  1064. START_TEST(UA_QualifiedName_copyShallWorkOnInputExample) {
  1065. // given
  1066. UA_QualifiedName src = UA_QUALIFIEDNAME(5, "tEsT123!");
  1067. UA_QualifiedName dst;
  1068. // when
  1069. UA_StatusCode ret = UA_QualifiedName_copy(&src, &dst);
  1070. // then
  1071. ck_assert_int_eq(ret, UA_STATUSCODE_GOOD);
  1072. ck_assert_int_eq('E', dst.name.data[1]);
  1073. ck_assert_int_eq('!', dst.name.data[7]);
  1074. ck_assert_int_eq(8, dst.name.length);
  1075. ck_assert_int_eq(5, dst.namespaceIndex);
  1076. // finally
  1077. UA_QualifiedName_deleteMembers(&dst);
  1078. }
  1079. END_TEST
  1080. START_TEST(UA_Guid_copyShallWorkOnInputExample) {
  1081. //given
  1082. const UA_Guid src = {3, 45, 1222, {8, 7, 6, 5, 4, 3, 2, 1}};
  1083. UA_Guid dst;
  1084. //when
  1085. UA_StatusCode ret = UA_Guid_copy(&src, &dst);
  1086. //then
  1087. ck_assert_int_eq(ret, UA_STATUSCODE_GOOD);
  1088. ck_assert_int_eq(src.data1, dst.data1);
  1089. ck_assert_int_eq(src.data3, dst.data3);
  1090. ck_assert_int_eq(src.data4[4], dst.data4[4]);
  1091. //finally
  1092. }
  1093. END_TEST
  1094. START_TEST(UA_LocalizedText_copycstringShallWorkOnInputExample) {
  1095. // given
  1096. char src[8] = {'t', 'e', 'X', 't', '1', '2', '3', (char)0};
  1097. const UA_LocalizedText dst = UA_LOCALIZEDTEXT("", src);
  1098. // then
  1099. ck_assert_int_eq('1', dst.text.data[4]);
  1100. ck_assert_int_eq(0, dst.locale.length);
  1101. ck_assert_int_eq(7, dst.text.length);
  1102. }
  1103. END_TEST
  1104. START_TEST(UA_DataValue_copyShallWorkOnInputExample) {
  1105. // given
  1106. UA_Variant srcVariant;
  1107. UA_Variant_init(&srcVariant);
  1108. UA_DataValue src;
  1109. UA_DataValue_init(&src);
  1110. src.hasSourceTimestamp = true;
  1111. src.sourceTimestamp = 4;
  1112. src.hasSourcePicoseconds = true;
  1113. src.sourcePicoseconds = 77;
  1114. src.hasServerPicoseconds = true;
  1115. src.serverPicoseconds = 8;
  1116. UA_DataValue dst;
  1117. // when
  1118. UA_StatusCode ret = UA_DataValue_copy(&src, &dst);
  1119. // then
  1120. ck_assert_int_eq(ret, UA_STATUSCODE_GOOD);
  1121. ck_assert_int_eq(4, dst.sourceTimestamp);
  1122. ck_assert_int_eq(77, dst.sourcePicoseconds);
  1123. ck_assert_int_eq(8, dst.serverPicoseconds);
  1124. }
  1125. END_TEST
  1126. START_TEST(UA_Variant_copyShallWorkOnSingleValueExample) {
  1127. //given
  1128. UA_String testString = (UA_String){5, (UA_Byte*)"OPCUA"};
  1129. UA_Variant value, copiedValue;
  1130. UA_Variant_init(&value);
  1131. UA_Variant_init(&copiedValue);
  1132. value.data = UA_malloc(sizeof(UA_String));
  1133. *((UA_String*)value.data) = testString;
  1134. value.type = &UA_TYPES[UA_TYPES_STRING];
  1135. value.arrayLength = 1;
  1136. //when
  1137. UA_Variant_copy(&value, &copiedValue);
  1138. //then
  1139. UA_String copiedString = *(UA_String*)(copiedValue.data);
  1140. for(UA_Int32 i = 0;i < 5;i++)
  1141. ck_assert_int_eq(copiedString.data[i], testString.data[i]);
  1142. ck_assert_int_eq(copiedString.length, testString.length);
  1143. ck_assert_int_eq(value.arrayDimensionsSize, copiedValue.arrayDimensionsSize);
  1144. ck_assert_int_eq(value.arrayLength, copiedValue.arrayLength);
  1145. //finally
  1146. ((UA_String*)value.data)->data = NULL; // the string is statically allocated. do not free it.
  1147. UA_Variant_deleteMembers(&value);
  1148. UA_Variant_deleteMembers(&copiedValue);
  1149. }
  1150. END_TEST
  1151. START_TEST(UA_Variant_copyShallWorkOnByteStringIndexRange) {
  1152. UA_ByteString text = UA_BYTESTRING("My xml");
  1153. UA_Variant src;
  1154. UA_Variant_setScalar(&src, &text, &UA_TYPES[UA_TYPES_BYTESTRING]);
  1155. UA_NumericRangeDimension d1 = {0, 8388607};
  1156. UA_NumericRange nr;
  1157. nr.dimensionsSize = 1;
  1158. nr.dimensions = &d1;
  1159. UA_Variant dst;
  1160. UA_StatusCode retval = UA_Variant_copyRange(&src, &dst, nr);
  1161. ck_assert_int_eq(retval, UA_STATUSCODE_GOOD);
  1162. UA_Variant_deleteMembers(&dst);
  1163. }
  1164. END_TEST
  1165. START_TEST(UA_Variant_copyShallWorkOn1DArrayExample) {
  1166. // given
  1167. UA_String *srcArray = (UA_String*)UA_Array_new(3, &UA_TYPES[UA_TYPES_STRING]);
  1168. srcArray[0] = UA_STRING_ALLOC("__open");
  1169. srcArray[1] = UA_STRING_ALLOC("_62541");
  1170. srcArray[2] = UA_STRING_ALLOC("opc ua");
  1171. UA_UInt32 *dimensions;
  1172. dimensions = (UA_UInt32*)UA_malloc(sizeof(UA_UInt32));
  1173. dimensions[0] = 3;
  1174. UA_Variant value, copiedValue;
  1175. UA_Variant_init(&value);
  1176. UA_Variant_init(&copiedValue);
  1177. value.arrayLength = 3;
  1178. value.data = (void *)srcArray;
  1179. value.arrayDimensionsSize = 1;
  1180. value.arrayDimensions = dimensions;
  1181. value.type = &UA_TYPES[UA_TYPES_STRING];
  1182. //when
  1183. UA_Variant_copy(&value, &copiedValue);
  1184. //then
  1185. UA_Int32 i1 = value.arrayDimensions[0];
  1186. UA_Int32 i2 = copiedValue.arrayDimensions[0];
  1187. ck_assert_int_eq(i1, i2);
  1188. for(UA_Int32 i = 0;i < 3;i++) {
  1189. for(UA_Int32 j = 0;j < 6;j++) {
  1190. ck_assert_int_eq(((UA_String *)value.data)[i].data[j],
  1191. ((UA_String *)copiedValue.data)[i].data[j]);
  1192. }
  1193. ck_assert_int_eq(((UA_String *)value.data)[i].length,
  1194. ((UA_String *)copiedValue.data)[i].length);
  1195. }
  1196. ck_assert_int_eq(((UA_String *)copiedValue.data)[0].data[2], 'o');
  1197. ck_assert_int_eq(((UA_String *)copiedValue.data)[0].data[3], 'p');
  1198. ck_assert_int_eq(value.arrayDimensionsSize, copiedValue.arrayDimensionsSize);
  1199. ck_assert_int_eq(value.arrayLength, copiedValue.arrayLength);
  1200. //finally
  1201. UA_Variant_deleteMembers(&value);
  1202. UA_Variant_deleteMembers(&copiedValue);
  1203. }
  1204. END_TEST
  1205. START_TEST(UA_Variant_copyShallWorkOn2DArrayExample) {
  1206. // given
  1207. UA_Int32 *srcArray = (UA_Int32*)UA_Array_new(6, &UA_TYPES[UA_TYPES_INT32]);
  1208. srcArray[0] = 0;
  1209. srcArray[1] = 1;
  1210. srcArray[2] = 2;
  1211. srcArray[3] = 3;
  1212. srcArray[4] = 4;
  1213. srcArray[5] = 5;
  1214. UA_UInt32 *dimensions = (UA_UInt32*)UA_Array_new(2, &UA_TYPES[UA_TYPES_INT32]);
  1215. UA_UInt32 dim1 = 3;
  1216. UA_UInt32 dim2 = 2;
  1217. dimensions[0] = dim1;
  1218. dimensions[1] = dim2;
  1219. UA_Variant value, copiedValue;
  1220. UA_Variant_init(&value);
  1221. UA_Variant_init(&copiedValue);
  1222. value.arrayLength = 6;
  1223. value.data = srcArray;
  1224. value.arrayDimensionsSize = 2;
  1225. value.arrayDimensions = dimensions;
  1226. value.type = &UA_TYPES[UA_TYPES_INT32];
  1227. //when
  1228. UA_Variant_copy(&value, &copiedValue);
  1229. //then
  1230. //1st dimension
  1231. UA_Int32 i1 = value.arrayDimensions[0];
  1232. UA_Int32 i2 = copiedValue.arrayDimensions[0];
  1233. ck_assert_int_eq(i1, i2);
  1234. ck_assert_int_eq(i1, dim1);
  1235. //2nd dimension
  1236. i1 = value.arrayDimensions[1];
  1237. i2 = copiedValue.arrayDimensions[1];
  1238. ck_assert_int_eq(i1, i2);
  1239. ck_assert_int_eq(i1, dim2);
  1240. for(UA_Int32 i = 0;i < 6;i++) {
  1241. i1 = ((UA_Int32 *)value.data)[i];
  1242. i2 = ((UA_Int32 *)copiedValue.data)[i];
  1243. ck_assert_int_eq(i1, i2);
  1244. ck_assert_int_eq(i2, i);
  1245. }
  1246. ck_assert_int_eq(value.arrayDimensionsSize, copiedValue.arrayDimensionsSize);
  1247. ck_assert_int_eq(value.arrayLength, copiedValue.arrayLength);
  1248. //finally
  1249. UA_Variant_deleteMembers(&value);
  1250. UA_Variant_deleteMembers(&copiedValue);
  1251. }
  1252. END_TEST
  1253. START_TEST(UA_ExtensionObject_encodeDecodeShallWorkOnExtensionObject) {
  1254. /* UA_Int32 val = 42; */
  1255. /* UA_VariableAttributes varAttr; */
  1256. /* UA_VariableAttributes_init(&varAttr); */
  1257. /* varAttr.dataType = UA_TYPES[UA_TYPES_INT32].typeId; */
  1258. /* UA_Variant_init(&varAttr.value); */
  1259. /* varAttr.value.type = &UA_TYPES[UA_TYPES_INT32]; */
  1260. /* varAttr.value.data = &val; */
  1261. /* varAttr.value.arrayLength = -1; */
  1262. /* varAttr.userWriteMask = 41; */
  1263. /* varAttr.specifiedAttributes |= UA_NODEATTRIBUTESMASK_DATATYPE; */
  1264. /* varAttr.specifiedAttributes |= UA_NODEATTRIBUTESMASK_VALUE; */
  1265. /* varAttr.specifiedAttributes |= UA_NODEATTRIBUTESMASK_USERWRITEMASK; */
  1266. /* /\* wrap it into a extension object attributes *\/ */
  1267. /* UA_ExtensionObject extensionObject; */
  1268. /* UA_ExtensionObject_init(&extensionObject); */
  1269. /* extensionObject.typeId = UA_TYPES[UA_TYPES_VARIABLEATTRIBUTES].typeId; */
  1270. /* UA_Byte extensionData[50]; */
  1271. /* extensionObject.body = (UA_ByteString){.data = extensionData, .length=50}; */
  1272. /* size_t posEncode = 0; */
  1273. /* UA_VariableAttributes_encodeBinary(&varAttr, &extensionObject.body, posEncode); */
  1274. /* extensionObject.body.length = posEncode; */
  1275. /* extensionObject.encoding = UA_EXTENSIONOBJECT_ENCODINGMASK_BODYISBYTESTRING; */
  1276. /* UA_Byte data[50]; */
  1277. /* UA_ByteString dst = {.data = data, .length=50}; */
  1278. /* posEncode = 0; */
  1279. /* UA_ExtensionObject_encodeBinary(&extensionObject, &dst, posEncode); */
  1280. /* UA_ExtensionObject extensionObjectDecoded; */
  1281. /* size_t posDecode = 0; */
  1282. /* UA_ExtensionObject_decodeBinary(&dst, &posDecode, &extensionObjectDecoded); */
  1283. /* ck_assert_int_eq(posEncode, posDecode); */
  1284. /* ck_assert_int_eq(extensionObjectDecoded.body.length, extensionObject.body.length); */
  1285. /* UA_VariableAttributes varAttrDecoded; */
  1286. /* UA_VariableAttributes_init(&varAttrDecoded); */
  1287. /* posDecode = 0; */
  1288. /* UA_VariableAttributes_decodeBinary(&extensionObjectDecoded.body, &posDecode, &varAttrDecoded); */
  1289. /* ck_assert_uint_eq(41, varAttrDecoded.userWriteMask); */
  1290. /* ck_assert_int_eq(-1, varAttrDecoded.value.arrayLength); */
  1291. /* // finally */
  1292. /* UA_ExtensionObject_deleteMembers(&extensionObjectDecoded); */
  1293. /* UA_Variant_deleteMembers(&varAttrDecoded.value); */
  1294. }
  1295. END_TEST
  1296. static Suite *testSuite_builtin(void) {
  1297. Suite *s = suite_create("Built-in Data Types 62541-6 Table 1");
  1298. TCase *tc_decode = tcase_create("decode");
  1299. tcase_add_test(tc_decode, UA_Byte_decodeShallCopyAndAdvancePosition);
  1300. tcase_add_test(tc_decode, UA_Byte_decodeShallModifyOnlyCurrentPosition);
  1301. tcase_add_test(tc_decode, UA_Int16_decodeShallAssumeLittleEndian);
  1302. tcase_add_test(tc_decode, UA_Int16_decodeShallRespectSign);
  1303. tcase_add_test(tc_decode, UA_UInt16_decodeShallNotRespectSign);
  1304. tcase_add_test(tc_decode, UA_Int32_decodeShallAssumeLittleEndian);
  1305. tcase_add_test(tc_decode, UA_Int32_decodeShallRespectSign);
  1306. tcase_add_test(tc_decode, UA_UInt32_decodeShallNotRespectSign);
  1307. tcase_add_test(tc_decode, UA_UInt64_decodeShallNotRespectSign);
  1308. tcase_add_test(tc_decode, UA_Int64_decodeShallRespectSign);
  1309. tcase_add_test(tc_decode, UA_Float_decodeShallWorkOnExample);
  1310. tcase_add_test(tc_decode, UA_Double_decodeShallGiveOne);
  1311. tcase_add_test(tc_decode, UA_Double_decodeShallGiveZero);
  1312. tcase_add_test(tc_decode, UA_Double_decodeShallGiveMinusTwo);
  1313. tcase_add_test(tc_decode, UA_Double_decodeShallGive2147483648);
  1314. tcase_add_test(tc_decode, UA_Byte_encode_test);
  1315. tcase_add_test(tc_decode, UA_String_decodeShallAllocateMemoryAndCopyString);
  1316. tcase_add_test(tc_decode, UA_String_decodeWithNegativeSizeShallNotAllocateMemoryAndNullPtr);
  1317. tcase_add_test(tc_decode, UA_String_decodeWithZeroSizeShallNotAllocateMemoryAndNullPtr);
  1318. tcase_add_test(tc_decode, UA_NodeId_decodeTwoByteShallReadTwoBytesAndSetNamespaceToZero);
  1319. tcase_add_test(tc_decode, UA_NodeId_decodeFourByteShallReadFourBytesAndRespectNamespace);
  1320. tcase_add_test(tc_decode, UA_NodeId_decodeStringShallAllocateMemory);
  1321. tcase_add_test(tc_decode, UA_Variant_decodeSingleExtensionObjectShallSetVTAndAllocateMemory);
  1322. tcase_add_test(tc_decode, UA_Variant_decodeWithOutArrayFlagSetShallSetVTAndAllocateMemoryForArray);
  1323. tcase_add_test(tc_decode, UA_Variant_decodeWithArrayFlagSetShallSetVTAndAllocateMemoryForArray);
  1324. tcase_add_test(tc_decode, UA_Variant_decodeWithOutDeleteMembersShallFailInCheckMem);
  1325. tcase_add_test(tc_decode, UA_Variant_decodeWithTooSmallSourceShallReturnWithError);
  1326. suite_add_tcase(s, tc_decode);
  1327. TCase *tc_encode = tcase_create("encode");
  1328. tcase_add_test(tc_encode, UA_Byte_encode_test);
  1329. tcase_add_test(tc_encode, UA_UInt16_encodeNegativeShallEncodeLittleEndian);
  1330. tcase_add_test(tc_encode, UA_UInt16_encodeShallEncodeLittleEndian);
  1331. tcase_add_test(tc_encode, UA_UInt32_encodeShallEncodeLittleEndian);
  1332. tcase_add_test(tc_encode, UA_Int32_encodeShallEncodeLittleEndian);
  1333. tcase_add_test(tc_encode, UA_Int32_encodeNegativeShallEncodeLittleEndian);
  1334. tcase_add_test(tc_encode, UA_UInt64_encodeShallWorkOnExample);
  1335. tcase_add_test(tc_encode, UA_Int64_encodeNegativeShallEncodeLittleEndian);
  1336. tcase_add_test(tc_encode, UA_Int64_encodeShallEncodeLittleEndian);
  1337. tcase_add_test(tc_encode, UA_Float_encodeShallWorkOnExample);
  1338. tcase_add_test(tc_encode, UA_Double_encodeShallWorkOnExample);
  1339. tcase_add_test(tc_encode, UA_String_encodeShallWorkOnExample);
  1340. tcase_add_test(tc_encode, UA_ExpandedNodeId_encodeShallWorkOnExample);
  1341. tcase_add_test(tc_encode, UA_DataValue_encodeShallWorkOnExampleWithoutVariant);
  1342. tcase_add_test(tc_encode, UA_DataValue_encodeShallWorkOnExampleWithVariant);
  1343. tcase_add_test(tc_encode, UA_ExtensionObject_encodeDecodeShallWorkOnExtensionObject);
  1344. suite_add_tcase(s, tc_encode);
  1345. TCase *tc_convert = tcase_create("convert");
  1346. tcase_add_test(tc_convert, UA_DateTime_toStructShallWorkOnExample);
  1347. suite_add_tcase(s, tc_convert);
  1348. TCase *tc_equal = tcase_create("equal");
  1349. tcase_add_test(tc_equal, UA_QualifiedName_equalShallWorkOnExample);
  1350. suite_add_tcase(s, tc_equal);
  1351. TCase *tc_copy = tcase_create("copy");
  1352. tcase_add_test(tc_copy, UA_Array_copyByteArrayShallWorkOnExample);
  1353. tcase_add_test(tc_copy, UA_Array_copyUA_StringShallWorkOnExample);
  1354. tcase_add_test(tc_copy, UA_ExtensionObject_copyShallWorkOnExample);
  1355. tcase_add_test(tc_copy, UA_Variant_copyShallWorkOnSingleValueExample);
  1356. tcase_add_test(tc_copy, UA_Variant_copyShallWorkOn1DArrayExample);
  1357. tcase_add_test(tc_copy, UA_Variant_copyShallWorkOn2DArrayExample);
  1358. tcase_add_test(tc_copy, UA_Variant_copyShallWorkOnByteStringIndexRange);
  1359. tcase_add_test(tc_copy, UA_DiagnosticInfo_copyShallWorkOnExample);
  1360. tcase_add_test(tc_copy, UA_ApplicationDescription_copyShallWorkOnExample);
  1361. tcase_add_test(tc_copy, UA_QualifiedName_copyShallWorkOnInputExample);
  1362. tcase_add_test(tc_copy, UA_Guid_copyShallWorkOnInputExample);
  1363. tcase_add_test(tc_copy, UA_LocalizedText_copycstringShallWorkOnInputExample);
  1364. tcase_add_test(tc_copy, UA_DataValue_copyShallWorkOnInputExample);
  1365. suite_add_tcase(s, tc_copy);
  1366. return s;
  1367. }
  1368. int main(void) {
  1369. int number_failed = 0;
  1370. Suite *s;
  1371. SRunner *sr;
  1372. s = testSuite_builtin();
  1373. sr = srunner_create(s);
  1374. srunner_set_fork_status(sr, CK_NOFORK);
  1375. srunner_run_all(sr, CK_NORMAL);
  1376. number_failed += srunner_ntests_failed(sr);
  1377. srunner_free(sr);
  1378. return (number_failed == 0) ? EXIT_SUCCESS : EXIT_FAILURE;
  1379. }