ua_types.c 27 KB

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  1. #include <stdio.h> // printf
  2. #include <stdlib.h> // alloc, free, vsnprintf
  3. #include <string.h>
  4. #include <stdarg.h> // va_start, va_end
  5. #include <time.h>
  6. #include <sys/time.h>
  7. #include "ua_util.h"
  8. #include "ua_types.h"
  9. #include "ua_types_encoding_binary.h"
  10. #include "ua_namespace_0.h"
  11. /************/
  12. /* Built-In */
  13. /************/
  14. /* Boolean */
  15. UA_Int32 UA_Boolean_init(UA_Boolean *p) {
  16. if(p == UA_NULL) return UA_ERROR;
  17. *p = UA_FALSE;
  18. return UA_SUCCESS;
  19. }
  20. UA_TYPE_DELETE_DEFAULT(UA_Boolean)
  21. UA_TYPE_DELETEMEMBERS_NOACTION(UA_Boolean)
  22. UA_TYPE_NEW_DEFAULT(UA_Boolean)
  23. UA_TYPE_COPY_DEFAULT(UA_Boolean)
  24. /* SByte */
  25. UA_TYPE_DEFAULT(UA_SByte)
  26. /* Byte */
  27. UA_TYPE_DEFAULT(UA_Byte)
  28. /* Int16 */
  29. UA_TYPE_DEFAULT(UA_Int16)
  30. /* UInt16 */
  31. UA_TYPE_DEFAULT(UA_UInt16)
  32. /* Int32 */
  33. UA_TYPE_DEFAULT(UA_Int32)
  34. /* UInt32 */
  35. UA_TYPE_DEFAULT(UA_UInt32)
  36. /* Int64 */
  37. UA_TYPE_DEFAULT(UA_Int64)
  38. /* UInt64 */
  39. UA_TYPE_DEFAULT(UA_UInt64)
  40. /* Float */
  41. UA_TYPE_DELETE_DEFAULT(UA_Float)
  42. UA_TYPE_DELETEMEMBERS_NOACTION(UA_Float)
  43. UA_Int32 UA_Float_init(UA_Float *p) {
  44. if(p == UA_NULL) return UA_ERROR;
  45. *p = (UA_Float)0.0;
  46. return UA_SUCCESS;
  47. }
  48. UA_TYPE_NEW_DEFAULT(UA_Float)
  49. UA_TYPE_COPY_DEFAULT(UA_Float)
  50. /* Double */
  51. UA_TYPE_DEFAULT(UA_Double)
  52. /* String */
  53. UA_TYPE_NEW_DEFAULT(UA_String)
  54. UA_TYPE_DELETE_DEFAULT(UA_String)
  55. UA_Int32 UA_String_deleteMembers(UA_String *p) {
  56. UA_Int32 retval = UA_SUCCESS;
  57. if(p!= UA_NULL && p->data != UA_NULL) {
  58. retval |= UA_free(p->data);
  59. p->data = UA_NULL;
  60. p->length = -1;
  61. }
  62. return retval;
  63. }
  64. UA_Int32 UA_String_copy(UA_String const *src, UA_String *dst) {
  65. UA_Int32 retval = UA_SUCCESS;
  66. dst->data = UA_NULL;
  67. dst->length = -1;
  68. if(src->length > 0) {
  69. retval |= UA_alloc((void **)&dst->data, src->length);
  70. if(retval == UA_SUCCESS) {
  71. retval |= UA_memcpy((void *)dst->data, src->data, src->length);
  72. dst->length = src->length;
  73. }
  74. }
  75. return retval;
  76. }
  77. UA_Int32 UA_String_copycstring(char const *src, UA_String *dst) {
  78. UA_Int32 retval = UA_SUCCESS;
  79. dst->length = strlen(src);
  80. dst->data = UA_NULL;
  81. if(dst->length > 0) {
  82. retval |= UA_alloc((void **)&dst->data, dst->length);
  83. if(retval == UA_SUCCESS)
  84. retval |= UA_memcpy((void *)dst->data, src, dst->length);
  85. }
  86. return retval;
  87. }
  88. #define UA_STRING_COPYPRINTF_BUFSIZE 1024
  89. UA_Int32 UA_String_copyprintf(char const *fmt, UA_String *dst, ...) {
  90. UA_Int32 retval = UA_SUCCESS;
  91. char src[UA_STRING_COPYPRINTF_BUFSIZE];
  92. UA_Int32 len;
  93. va_list ap;
  94. va_start(ap, dst);
  95. #pragma GCC diagnostic push
  96. #pragma GCC diagnostic ignored "-Wformat-nonliteral"
  97. // vsnprintf should only take a literal and no variable to be secure
  98. len = vsnprintf(src, UA_STRING_COPYPRINTF_BUFSIZE, fmt, ap);
  99. #pragma GCC diagnostic pop
  100. va_end(ap);
  101. if(len < 0) { // FIXME: old glibc 2.0 would return -1 when truncated
  102. dst->length = 0;
  103. dst->data = UA_NULL;
  104. retval = UA_ERR_INVALID_VALUE;
  105. } else {
  106. // since glibc 2.1 vsnprintf returns len that would have resulted if buf were large enough
  107. dst->length = ( len > UA_STRING_COPYPRINTF_BUFSIZE ? UA_STRING_COPYPRINTF_BUFSIZE : len );
  108. retval |= UA_alloc((void **)&dst->data, dst->length);
  109. if(retval == UA_SUCCESS)
  110. retval |= UA_memcpy((void *)dst->data, src, dst->length);
  111. }
  112. return retval;
  113. }
  114. UA_Int32 UA_String_init(UA_String *p) {
  115. if(p == UA_NULL) return UA_ERROR;
  116. p->length = -1;
  117. p->data = UA_NULL;
  118. return UA_SUCCESS;
  119. }
  120. UA_Int32 UA_String_equal(const UA_String *string1, const UA_String *string2) {
  121. UA_Int32 retval;
  122. if(string1->length == 0 && string2->length == 0)
  123. retval = UA_EQUAL;
  124. else if(string1->length == -1 && string2->length == -1)
  125. retval = UA_EQUAL;
  126. else if(string1->length != string2->length)
  127. retval = UA_NOT_EQUAL;
  128. else {
  129. // casts are needed to overcome signed warnings
  130. UA_Int32 is = strncmp((char const *)string1->data, (char const *)string2->data, string1->length);
  131. retval = (is == 0) ? UA_EQUAL : UA_NOT_EQUAL;
  132. }
  133. return retval;
  134. }
  135. void UA_String_printf(char const *label, const UA_String *string) {
  136. printf("%s {Length=%d, Data=%.*s}\n", label, string->length,
  137. string->length, (char *)string->data);
  138. }
  139. void UA_String_printx(char const *label, const UA_String *string) {
  140. if(string == UA_NULL) {
  141. printf("%s {NULL}\n", label); return;
  142. }
  143. printf("%s {Length=%d, Data=", label, string->length);
  144. if(string->length > 0) {
  145. for(UA_Int32 i = 0;i < string->length;i++) {
  146. printf("%c%d", i == 0 ? '{' : ',', (string->data)[i]);
  147. // if (i > 0 && !(i%20)) { printf("\n\t"); }
  148. }
  149. } else
  150. printf("{");
  151. printf("}}\n");
  152. }
  153. void UA_String_printx_hex(char const *label, const UA_String *string) {
  154. printf("%s {Length=%d, Data=", label, string->length);
  155. if(string->length > 0) {
  156. for(UA_Int32 i = 0;i < string->length;i++)
  157. printf("%c%x", i == 0 ? '{' : ',', (string->data)[i]);
  158. } else
  159. printf("{");
  160. printf("}}\n");
  161. }
  162. /* DateTime */
  163. UA_TYPE_AS(UA_DateTime, UA_Int64)
  164. // Number of seconds from 1 Jan. 1601 00:00 to 1 Jan 1970 00:00 UTC
  165. #define FILETIME_UNIXTIME_BIAS_SEC 11644473600LL
  166. // Factors
  167. #define HUNDRED_NANOSEC_PER_USEC 10LL
  168. #define HUNDRED_NANOSEC_PER_SEC (HUNDRED_NANOSEC_PER_USEC * 1000000LL)
  169. // IEC 62541-6 §5.2.2.5 A DateTime value shall be encoded as a 64-bit signed integer
  170. // which represents the number of 100 nanosecond intervals since January 1, 1601 (UTC).
  171. UA_DateTime UA_DateTime_now() {
  172. UA_DateTime dateTime;
  173. struct timeval tv;
  174. gettimeofday(&tv, UA_NULL);
  175. dateTime = (tv.tv_sec + FILETIME_UNIXTIME_BIAS_SEC)
  176. * HUNDRED_NANOSEC_PER_SEC + tv.tv_usec * HUNDRED_NANOSEC_PER_USEC;
  177. return dateTime;
  178. }
  179. UA_DateTimeStruct UA_DateTime_toStruct(UA_DateTime time) {
  180. UA_DateTimeStruct dateTimeStruct;
  181. //calcualting the the milli-, micro- and nanoseconds
  182. UA_DateTime timeTemp;
  183. timeTemp = (time-((time/10)*10))*100; //getting the last digit -> *100 for the 100 nanaseconds resolution
  184. dateTimeStruct.nanoSec = timeTemp; //123 456 7 -> 700 nanosec;
  185. timeTemp = (time-((time/10000)*10000))/10;
  186. dateTimeStruct.microSec = timeTemp; //123 456 7 -> 456 microsec
  187. timeTemp = (time-((time/10000000)*10000000))/10000;
  188. dateTimeStruct.milliSec = timeTemp; //123 456 7 -> 123 millisec
  189. //calculating the unix time with #include <time.h>
  190. time_t timeInSec = time/10000000; //converting the nanoseconds time in unixtime
  191. struct tm ts;
  192. ts = *gmtime(&timeInSec);
  193. //strftime(buf, sizeof(buf), "%a %Y-%m-%d %H:%M:%S %Z", &ts);
  194. //printf("%s\n", buf);
  195. dateTimeStruct.sec = ts.tm_sec;
  196. dateTimeStruct.min = ts.tm_min;
  197. dateTimeStruct.hour = ts.tm_hour;
  198. dateTimeStruct.day = ts.tm_mday;
  199. dateTimeStruct.mounth = ts.tm_mon+1;
  200. dateTimeStruct.year = ts.tm_year + 1900;
  201. return dateTimeStruct;
  202. }
  203. UA_Int32 UA_DateTime_toString(UA_DateTime time, UA_String *timeString) {
  204. char *charBuf = (char *)(*timeString).data;
  205. UA_DateTimeStruct tSt = UA_DateTime_toStruct(time);
  206. sprintf(charBuf, "%2d/%2d/%4d %2d:%2d:%2d.%3d.%3d.%3d", tSt.mounth, tSt.day, tSt.year,
  207. tSt.hour, tSt.min, tSt.sec, tSt.milliSec, tSt.microSec, tSt.nanoSec);
  208. return UA_SUCCESS;
  209. }
  210. /* Guid */
  211. UA_TYPE_DELETE_DEFAULT(UA_Guid)
  212. UA_Int32 UA_Guid_deleteMembers(UA_Guid *p) {
  213. return UA_SUCCESS;
  214. }
  215. UA_Int32 UA_Guid_equal(const UA_Guid *g1, const UA_Guid *g2) {
  216. return memcmp(g1, g2, sizeof(UA_Guid));
  217. }
  218. UA_Int32 UA_Guid_init(UA_Guid *p) {
  219. if(p == UA_NULL) return UA_ERROR;
  220. p->data1 = 0;
  221. p->data2 = 0;
  222. p->data3 = 0;
  223. memset(p->data4, 8, sizeof(UA_Byte));
  224. return UA_SUCCESS;
  225. }
  226. UA_TYPE_NEW_DEFAULT(UA_Guid)
  227. UA_Int32 UA_Guid_copy(UA_Guid const *src, UA_Guid *dst) {
  228. UA_Int32 retval = UA_SUCCESS;
  229. retval |= UA_alloc((void **)&dst, sizeof(UA_Guid));
  230. retval |= UA_memcpy((void *)dst, (void *)src, sizeof(UA_Guid));
  231. return retval;
  232. }
  233. /* ByteString */
  234. UA_TYPE_AS(UA_ByteString, UA_String)
  235. UA_Int32 UA_ByteString_equal(const UA_ByteString *string1, const UA_ByteString *string2) {
  236. return UA_String_equal((const UA_String *)string1, (const UA_String *)string2);
  237. }
  238. void UA_ByteString_printf(char *label, const UA_ByteString *string) {
  239. UA_String_printf(label, (UA_String *)string);
  240. }
  241. void UA_ByteString_printx(char *label, const UA_ByteString *string) {
  242. UA_String_printx(label, (UA_String *)string);
  243. }
  244. void UA_ByteString_printx_hex(char *label, const UA_ByteString *string) {
  245. UA_String_printx_hex(label, (UA_String *)string);
  246. }
  247. UA_Byte UA_Byte_securityPoliceNoneData[] = "http://opcfoundation.org/UA/SecurityPolicy#None";
  248. // sizeof()-1 : discard the implicit null-terminator of the c-char-string
  249. UA_ByteString UA_ByteString_securityPoliceNone =
  250. { sizeof(UA_Byte_securityPoliceNoneData)-1, UA_Byte_securityPoliceNoneData };
  251. UA_Int32 UA_ByteString_newMembers(UA_ByteString *p, UA_Int32 length) {
  252. UA_Int32 retval = UA_SUCCESS;
  253. if((retval |= UA_alloc((void **)&p->data, length)) == UA_SUCCESS)
  254. p->length = length;
  255. else {
  256. p->length = length;
  257. p->data = UA_NULL;
  258. }
  259. return retval;
  260. }
  261. /* XmlElement */
  262. UA_TYPE_AS(UA_XmlElement, UA_ByteString)
  263. /* NodeId */
  264. UA_Boolean UA_NodeId_isBasicType(UA_NodeId const *id) {
  265. return (id->namespace == 0 && id->identifier.numeric <= UA_DIAGNOSTICINFO);
  266. }
  267. UA_TYPE_DELETE_DEFAULT(UA_NodeId)
  268. UA_Int32 UA_NodeId_deleteMembers(UA_NodeId *p) {
  269. UA_Int32 retval = UA_SUCCESS;
  270. if(p == UA_NULL) return retval;
  271. switch(p->encodingByte & UA_NODEIDTYPE_MASK) {
  272. case UA_NODEIDTYPE_TWOBYTE:
  273. case UA_NODEIDTYPE_FOURBYTE:
  274. case UA_NODEIDTYPE_NUMERIC:
  275. // nothing to do
  276. break;
  277. case UA_NODEIDTYPE_STRING: // Table 6, second entry
  278. retval |= UA_String_deleteMembers(&p->identifier.string);
  279. break;
  280. case UA_NODEIDTYPE_GUID: // Table 6, third entry
  281. retval |= UA_Guid_deleteMembers(&p->identifier.guid);
  282. break;
  283. case UA_NODEIDTYPE_BYTESTRING: // Table 6, "OPAQUE"
  284. retval |= UA_ByteString_deleteMembers(&p->identifier.byteString);
  285. break;
  286. }
  287. return retval;
  288. }
  289. void UA_NodeId_printf(char *label, const UA_NodeId *node) {
  290. UA_Int32 l;
  291. printf("%s {encodingByte=%d, namespace=%d,", label, (int)( node->encodingByte), (int)(node->namespace));
  292. switch(node->encodingByte & UA_NODEIDTYPE_MASK) {
  293. case UA_NODEIDTYPE_TWOBYTE:
  294. case UA_NODEIDTYPE_FOURBYTE:
  295. case UA_NODEIDTYPE_NUMERIC:
  296. printf("identifier=%d\n", node->identifier.numeric);
  297. break;
  298. case UA_NODEIDTYPE_STRING:
  299. l = ( node->identifier.string.length < 0 ) ? 0 : node->identifier.string.length;
  300. printf("identifier={length=%d, data=%.*s}",
  301. node->identifier.string.length, l,
  302. (char *)(node->identifier.string.data));
  303. break;
  304. case UA_NODEIDTYPE_BYTESTRING:
  305. l = ( node->identifier.byteString.length < 0 ) ? 0 : node->identifier.byteString.length;
  306. printf("identifier={Length=%d, data=%.*s}",
  307. node->identifier.byteString.length, l,
  308. (char *)(node->identifier.byteString.data));
  309. break;
  310. case UA_NODEIDTYPE_GUID:
  311. printf(
  312. "guid={data1=%d, data2=%d, data3=%d, data4={length=%d, data=%.*s}}",
  313. node->identifier.guid.data1, node->identifier.guid.data2,
  314. node->identifier.guid.data3, 8,
  315. 8,
  316. (char *)(node->identifier.guid.data4));
  317. break;
  318. default:
  319. printf("ups! shit happens");
  320. break;
  321. }
  322. printf("}\n");
  323. }
  324. UA_Int32 UA_NodeId_equal(const UA_NodeId *n1, const UA_NodeId *n2) {
  325. if(n1 == UA_NULL || n2 == UA_NULL || n1->encodingByte != n2->encodingByte || n1->namespace != n2->namespace)
  326. return UA_NOT_EQUAL;
  327. switch(n1->encodingByte & UA_NODEIDTYPE_MASK) {
  328. case UA_NODEIDTYPE_TWOBYTE:
  329. case UA_NODEIDTYPE_FOURBYTE:
  330. case UA_NODEIDTYPE_NUMERIC:
  331. if(n1->identifier.numeric == n2->identifier.numeric)
  332. return UA_EQUAL;
  333. else
  334. return UA_NOT_EQUAL;
  335. case UA_NODEIDTYPE_STRING:
  336. return UA_String_equal(&n1->identifier.string, &n2->identifier.string);
  337. case UA_NODEIDTYPE_GUID:
  338. return UA_Guid_equal(&n1->identifier.guid, &n2->identifier.guid);
  339. case UA_NODEIDTYPE_BYTESTRING:
  340. return UA_ByteString_equal(&n1->identifier.byteString, &n2->identifier.byteString);
  341. }
  342. return UA_NOT_EQUAL;
  343. }
  344. UA_Int32 UA_NodeId_init(UA_NodeId *p) {
  345. if(p == UA_NULL) return UA_ERROR;
  346. p->encodingByte = UA_NODEIDTYPE_TWOBYTE;
  347. p->namespace = 0;
  348. memset(&p->identifier, 0, sizeof(p->identifier));
  349. return UA_SUCCESS;
  350. }
  351. UA_TYPE_NEW_DEFAULT(UA_NodeId)
  352. UA_Int32 UA_NodeId_copy(UA_NodeId const *src, UA_NodeId *dst) {
  353. UA_Int32 retval = UA_SUCCESS;
  354. retval |= UA_Byte_copy(&src->encodingByte, &dst->encodingByte);
  355. switch(src->encodingByte & UA_NODEIDTYPE_MASK) {
  356. case UA_NODEIDTYPE_TWOBYTE:
  357. case UA_NODEIDTYPE_FOURBYTE:
  358. case UA_NODEIDTYPE_NUMERIC:
  359. // nothing to do
  360. retval |= UA_UInt16_copy(&src->namespace, &dst->namespace);
  361. retval |= UA_UInt32_copy(&src->identifier.numeric, &dst->identifier.numeric);
  362. break;
  363. case UA_NODEIDTYPE_STRING: // Table 6, second entry
  364. retval |= UA_String_copy(&src->identifier.string, &dst->identifier.string);
  365. break;
  366. case UA_NODEIDTYPE_GUID: // Table 6, third entry
  367. retval |= UA_Guid_copy(&src->identifier.guid, &dst->identifier.guid);
  368. break;
  369. case UA_NODEIDTYPE_BYTESTRING: // Table 6, "OPAQUE"
  370. retval |= UA_ByteString_copy(&src->identifier.byteString, &dst->identifier.byteString);
  371. break;
  372. }
  373. return retval;
  374. }
  375. UA_Boolean UA_NodeId_isNull(const UA_NodeId *p) {
  376. switch(p->encodingByte & UA_NODEIDTYPE_MASK) {
  377. case UA_NODEIDTYPE_TWOBYTE:
  378. if(p->identifier.numeric != 0) return UA_FALSE;
  379. break;
  380. case UA_NODEIDTYPE_FOURBYTE:
  381. case UA_NODEIDTYPE_NUMERIC:
  382. if(p->namespace != 0 || p->identifier.numeric != 0) return UA_FALSE;
  383. break;
  384. case UA_NODEIDTYPE_STRING:
  385. if(p->namespace != 0 || p->identifier.string.length != 0) return UA_FALSE;
  386. break;
  387. case UA_NODEIDTYPE_GUID:
  388. if(p->namespace != 0 ||
  389. memcmp(&p->identifier.guid, (char[sizeof(UA_Guid)]) { 0 }, sizeof(UA_Guid)) != 0) return UA_FALSE;
  390. break;
  391. case UA_NODEIDTYPE_BYTESTRING:
  392. if(p->namespace != 0 || p->identifier.byteString.length != 0) return UA_FALSE;
  393. break;
  394. default:
  395. return UA_FALSE;
  396. }
  397. return UA_TRUE;
  398. }
  399. /* ExpandedNodeId */
  400. UA_TYPE_DELETE_DEFAULT(UA_ExpandedNodeId)
  401. UA_Int32 UA_ExpandedNodeId_deleteMembers(UA_ExpandedNodeId *p) {
  402. UA_Int32 retval = UA_SUCCESS;
  403. if(p == UA_NULL) return retval;
  404. retval |= UA_NodeId_deleteMembers(&p->nodeId);
  405. retval |= UA_String_deleteMembers(&p->namespaceUri);
  406. return retval;
  407. }
  408. UA_Int32 UA_ExpandedNodeId_init(UA_ExpandedNodeId *p) {
  409. if(p == UA_NULL) return UA_ERROR;
  410. UA_NodeId_init(&p->nodeId);
  411. UA_String_init(&p->namespaceUri);
  412. p->serverIndex = 0;
  413. return UA_SUCCESS;
  414. }
  415. UA_TYPE_NEW_DEFAULT(UA_ExpandedNodeId)
  416. UA_Int32 UA_ExpandedNodeId_copy(UA_ExpandedNodeId const *src, UA_ExpandedNodeId *dst) {
  417. UA_Int32 retval = UA_SUCCESS;
  418. UA_String_copy(&src->namespaceUri, &dst->namespaceUri);
  419. UA_NodeId_copy(&src->nodeId, &dst->nodeId);
  420. UA_UInt32_copy(&src->serverIndex, &dst->serverIndex);
  421. return retval;
  422. }
  423. UA_Boolean UA_ExpandedNodeId_isNull(const UA_ExpandedNodeId *p) {
  424. return UA_NodeId_isNull(&p->nodeId);
  425. }
  426. /* StatusCode */
  427. UA_TYPE_AS(UA_StatusCode, UA_UInt32)
  428. /* QualifiedName */
  429. UA_TYPE_DELETE_DEFAULT(UA_QualifiedName)
  430. UA_Int32 UA_QualifiedName_deleteMembers(UA_QualifiedName *p) {
  431. UA_Int32 retval = UA_SUCCESS;
  432. if(p == UA_NULL) return retval;
  433. retval |= UA_String_deleteMembers(&p->name);
  434. return retval;
  435. }
  436. UA_Int32 UA_QualifiedName_init(UA_QualifiedName *p) {
  437. if(p == UA_NULL) return UA_ERROR;
  438. UA_String_init(&p->name);
  439. p->namespaceIndex = 0;
  440. return UA_SUCCESS;
  441. }
  442. UA_TYPE_NEW_DEFAULT(UA_QualifiedName)
  443. UA_Int32 UA_QualifiedName_copy(UA_QualifiedName const *src, UA_QualifiedName *dst) {
  444. UA_Int32 retval = UA_SUCCESS;
  445. retval |= UA_alloc((void **)&dst, sizeof(UA_QualifiedName));
  446. retval |= UA_String_copy(&src->name, &dst->name);
  447. retval |= UA_UInt16_copy(&src->namespaceIndex, &dst->namespaceIndex);
  448. return retval;
  449. }
  450. void UA_QualifiedName_printf(char const *label, const UA_QualifiedName *qn) {
  451. printf("%s {NamespaceIndex=%u, Length=%d, Data=%.*s}\n", label, qn->namespaceIndex,
  452. qn->name.length, qn->name.length, (char *)qn->name.data);
  453. }
  454. /* LocalizedText */
  455. UA_TYPE_DELETE_DEFAULT(UA_LocalizedText)
  456. UA_Int32 UA_LocalizedText_deleteMembers(UA_LocalizedText *p) {
  457. if(p == UA_NULL) return UA_SUCCESS;
  458. UA_Int32 retval = UA_SUCCESS;
  459. retval |= UA_String_deleteMembers(&p->locale);
  460. retval |= UA_String_deleteMembers(&p->text);
  461. return retval;
  462. }
  463. UA_Int32 UA_LocalizedText_init(UA_LocalizedText *p) {
  464. if(p == UA_NULL) return UA_ERROR;
  465. p->encodingMask = 0;
  466. UA_String_init(&p->locale);
  467. UA_String_init(&p->text);
  468. return UA_SUCCESS;
  469. }
  470. UA_TYPE_NEW_DEFAULT(UA_LocalizedText)
  471. UA_Int32 UA_LocalizedText_copycstring(char const *src, UA_LocalizedText *dst) {
  472. UA_Int32 retval = UA_SUCCESS;
  473. if(dst == UA_NULL) return UA_ERROR;
  474. dst->encodingMask = UA_LOCALIZEDTEXT_ENCODINGMASKTYPE_LOCALE | UA_LOCALIZEDTEXT_ENCODINGMASKTYPE_TEXT;
  475. retval |= UA_String_copycstring("EN", &dst->locale);
  476. retval |= UA_String_copycstring(src, &dst->text);
  477. return retval;
  478. }
  479. UA_Int32 UA_LocalizedText_copy(UA_LocalizedText const *src, UA_LocalizedText *dst) {
  480. UA_Int32 retval = UA_SUCCESS;
  481. retval |= UA_alloc((void **)&dst, sizeof(UA_LocalizedText));
  482. retval |= UA_Byte_copy(&src->encodingMask, &dst->encodingMask);
  483. retval |= UA_String_copy(&src->locale, &dst->locale);
  484. retval |= UA_String_copy(&src->text, &dst->text);
  485. return retval;
  486. }
  487. /* ExtensionObject */
  488. UA_TYPE_DELETE_DEFAULT(UA_ExtensionObject)
  489. UA_Int32 UA_ExtensionObject_deleteMembers(UA_ExtensionObject *p) {
  490. UA_Int32 retval = UA_SUCCESS;
  491. if(p == UA_NULL) return retval;
  492. retval |= UA_NodeId_deleteMembers(&p->typeId);
  493. retval |= UA_ByteString_deleteMembers(&p->body);
  494. return retval;
  495. }
  496. UA_Int32 UA_ExtensionObject_init(UA_ExtensionObject *p) {
  497. if(p == UA_NULL) return UA_ERROR;
  498. UA_ByteString_init(&p->body);
  499. p->encoding = 0;
  500. UA_NodeId_init(&p->typeId);
  501. return UA_SUCCESS;
  502. }
  503. UA_TYPE_NEW_DEFAULT(UA_ExtensionObject)
  504. UA_Int32 UA_ExtensionObject_copy(UA_ExtensionObject const *src, UA_ExtensionObject *dst) {
  505. UA_Int32 retval = UA_SUCCESS;
  506. retval |= UA_Byte_copy(&src->encoding, &dst->encoding);
  507. retval |= UA_ByteString_copy(&src->body, &dst->body);
  508. retval |= UA_NodeId_copy(&src->typeId, &dst->typeId);
  509. return retval;
  510. }
  511. /* DataValue */
  512. UA_TYPE_DELETE_DEFAULT(UA_DataValue)
  513. UA_Int32 UA_DataValue_deleteMembers(UA_DataValue *p) {
  514. UA_Int32 retval = UA_SUCCESS;
  515. if(p == UA_NULL) return retval;
  516. UA_Variant_deleteMembers(&p->value);
  517. return retval;
  518. }
  519. UA_Int32 UA_DataValue_init(UA_DataValue *p) {
  520. if(p == UA_NULL) return UA_ERROR;
  521. p->encodingMask = 0;
  522. p->serverPicoseconds = 0;
  523. UA_DateTime_init(&p->serverTimestamp);
  524. p->sourcePicoseconds = 0;
  525. UA_DateTime_init(&p->sourceTimestamp);
  526. UA_StatusCode_init(&p->status);
  527. UA_Variant_init(&p->value);
  528. return UA_SUCCESS;
  529. }
  530. UA_TYPE_NEW_DEFAULT(UA_DataValue)
  531. UA_Int32 UA_DataValue_copy(UA_DataValue const *src, UA_DataValue *dst) {
  532. UA_Int32 retval = UA_SUCCESS;
  533. //TODO can be optimized by direct UA_memcpy call
  534. UA_Byte_copy(&src->encodingMask, &dst->encodingMask);
  535. UA_Int16_copy(&src->serverPicoseconds, &dst->serverPicoseconds);
  536. UA_DateTime_copy(&src->serverTimestamp, &dst->serverTimestamp);
  537. UA_Int16_copy(&src->sourcePicoseconds, &dst->sourcePicoseconds);
  538. UA_DateTime_copy(&src->sourceTimestamp, &dst->sourceTimestamp);
  539. UA_StatusCode_copy(&src->status, &dst->status);
  540. UA_Variant_copy(&src->value, &dst->value);
  541. return retval;
  542. }
  543. /* Variant */
  544. UA_TYPE_DELETE_DEFAULT(UA_Variant)
  545. UA_Int32 UA_Variant_deleteMembers(UA_Variant *p) {
  546. UA_Int32 retval = UA_SUCCESS;
  547. if(p == UA_NULL) return retval;
  548. if(p->data != UA_NULL) {
  549. retval |= UA_Array_delete(p->data, p->arrayLength, UA_ns0ToVTableIndex(&p->vt->typeId));
  550. p->data = UA_NULL;
  551. }
  552. if(p->arrayDimensions != UA_NULL) {
  553. retval |= UA_Array_delete(p->arrayDimensions, p->arrayDimensionsLength, UA_INT32);
  554. p->arrayDimensions = UA_NULL;
  555. }
  556. return retval;
  557. }
  558. UA_Int32 UA_Variant_init(UA_Variant *p) {
  559. if(p == UA_NULL) return UA_ERROR;
  560. p->arrayLength = -1; // no element, p->data == UA_NULL
  561. p->data = UA_NULL;
  562. p->encodingMask = 0;
  563. p->arrayDimensions = UA_NULL;
  564. p->arrayDimensionsLength = -1;
  565. p->vt = &UA_.types[UA_INVALIDTYPE];
  566. return UA_SUCCESS;
  567. }
  568. UA_TYPE_NEW_DEFAULT(UA_Variant)
  569. UA_Int32 UA_Variant_copy(UA_Variant const *src, UA_Variant *dst) {
  570. UA_Int32 retval = UA_SUCCESS;
  571. // Variants are always with types from ns0 or an extensionobject.
  572. UA_NodeId typeId =
  573. { UA_NODEIDTYPE_FOURBYTE, 0, .identifier.numeric = (src->encodingMask & UA_VARIANT_ENCODINGMASKTYPE_TYPEID_MASK) };
  574. UA_Int32 uaIdx = UA_ns0ToVTableIndex(&typeId);
  575. if(UA_VTable_isValidType(uaIdx) != UA_SUCCESS) return UA_ERROR;
  576. dst->vt = &UA_.types[uaIdx];
  577. retval |= UA_Int32_copy(&src->arrayLength, &dst->arrayLength);
  578. retval |= UA_Byte_copy(&src->encodingMask, &dst->encodingMask);
  579. retval |= UA_Int32_copy(&src->arrayDimensionsLength, &dst->arrayDimensionsLength);
  580. if(src->encodingMask & UA_VARIANT_ENCODINGMASKTYPE_ARRAY)
  581. retval |= UA_Array_copy(src->data, src->arrayLength, uaIdx, &dst->data);
  582. else {
  583. UA_alloc(&dst->data, UA_.types[uaIdx].memSize);
  584. UA_.types[uaIdx].copy(src->data, dst->data);
  585. }
  586. if(src->encodingMask & UA_VARIANT_ENCODINGMASKTYPE_DIMENSIONS) {
  587. retval |= UA_Array_copy(src->arrayDimensions, src->arrayDimensionsLength,
  588. UA_INT32, (void **)&dst->arrayDimensions);
  589. }
  590. return retval;
  591. }
  592. // FIXME! ns0type vs typeid
  593. UA_Int32 UA_Variant_borrowSetValue(UA_Variant *v, UA_Int32 ns0type_id, const void *value) {
  594. /* v->encodingMask = type_id & UA_VARIANT_ENCODINGMASKTYPE_TYPEID_MASK; */
  595. /* if(UA_VTable_isValidType(type_id) != UA_SUCCESS) return UA_INVALIDTYPE; */
  596. /* v->vt = &UA_borrowed_.types[type_id]; */
  597. /* v->data = (void *)value; */
  598. return UA_SUCCESS;
  599. }
  600. UA_Int32 UA_Variant_copySetValue(UA_Variant *v, UA_Int32 ns0type_id, const void *value) {
  601. /* v->encodingMask = type_id & UA_VARIANT_ENCODINGMASKTYPE_TYPEID_MASK; */
  602. /* if(UA_VTable_isValidType(type_id) != UA_SUCCESS) return UA_INVALIDTYPE; */
  603. /* v->vt = &UA_.types[type_id]; */
  604. return v->vt->copy(value, v->data);
  605. }
  606. UA_Int32 UA_Variant_borrowSetArray(UA_Variant *v, UA_Int32 type_id, UA_Int32 arrayLength, const void *array) {
  607. /* v->encodingMask = (type_id & UA_VARIANT_ENCODINGMASKTYPE_TYPEID_MASK) | UA_VARIANT_ENCODINGMASKTYPE_ARRAY; */
  608. /* if(UA_VTable_isValidType(type_id) != UA_SUCCESS) return UA_INVALIDTYPE; */
  609. /* v->vt = &UA_borrowed_.types[type_id]; */
  610. /* v->arrayLength = arrayLength; */
  611. /* v->data = (void *)array; */
  612. return UA_SUCCESS;
  613. }
  614. UA_Int32 UA_Variant_copySetArray(UA_Variant *v, UA_Int32 type_id, UA_Int32 arrayLength, UA_UInt32 elementSize,
  615. const void *array) {
  616. /* v->encodingMask = (type_id & UA_VARIANT_ENCODINGMASKTYPE_TYPEID_MASK) | UA_VARIANT_ENCODINGMASKTYPE_ARRAY; */
  617. /* if(UA_VTable_isValidType(type_id) != UA_SUCCESS) return UA_INVALIDTYPE; */
  618. /* v->vt = &UA_.types[type_id]; */
  619. /* v->arrayLength = arrayLength; */
  620. /* void *new_arr; */
  621. /* UA_Int32 retval = UA_SUCCESS; */
  622. /* retval |= UA_alloc(&new_arr, arrayLength * elementSize); */
  623. /* retval |= UA_memcpy(new_arr, array, arrayLength * elementSize); */
  624. /* v->data = new_arr; */
  625. return UA_SUCCESS;
  626. }
  627. /* DiagnosticInfo */
  628. UA_TYPE_DELETE_DEFAULT(UA_DiagnosticInfo)
  629. UA_Int32 UA_DiagnosticInfo_deleteMembers(UA_DiagnosticInfo *p) {
  630. UA_Int32 retval = UA_SUCCESS;
  631. if(p == UA_NULL) return retval;
  632. if((p->encodingMask & UA_DIAGNOSTICINFO_ENCODINGMASK_INNERDIAGNOSTICINFO) && p->innerDiagnosticInfo != UA_NULL) {
  633. retval |= UA_DiagnosticInfo_delete(p->innerDiagnosticInfo);
  634. p->innerDiagnosticInfo = UA_NULL;
  635. }
  636. return retval;
  637. }
  638. UA_Int32 UA_DiagnosticInfo_init(UA_DiagnosticInfo *p) {
  639. if(p == UA_NULL) return UA_ERROR;
  640. UA_String_init(&p->additionalInfo);
  641. p->encodingMask = 0;
  642. p->innerDiagnosticInfo = UA_NULL;
  643. UA_StatusCode_init(&p->innerStatusCode);
  644. p->locale = 0;
  645. p->localizedText = 0;
  646. p->namespaceUri = 0;
  647. p->symbolicId = 0;
  648. return UA_SUCCESS;
  649. }
  650. UA_TYPE_NEW_DEFAULT(UA_DiagnosticInfo)
  651. UA_Int32 UA_DiagnosticInfo_copy(UA_DiagnosticInfo const *src, UA_DiagnosticInfo *dst) {
  652. UA_Int32 retval = UA_SUCCESS;
  653. retval |= UA_String_copy(&src->additionalInfo, &dst->additionalInfo);
  654. retval |= UA_Byte_copy(&src->encodingMask, &dst->encodingMask);
  655. retval |= UA_StatusCode_copy(&src->innerStatusCode, &dst->innerStatusCode);
  656. if(src->innerDiagnosticInfo) {
  657. retval |= UA_alloc((void **)&dst->innerDiagnosticInfo, sizeof(UA_DiagnosticInfo));
  658. if(retval == UA_SUCCESS)
  659. retval |= UA_DiagnosticInfo_copy(src->innerDiagnosticInfo, dst->innerDiagnosticInfo);
  660. } else
  661. dst->innerDiagnosticInfo = UA_NULL;
  662. retval |= UA_Int32_copy(&src->locale, &dst->locale);
  663. retval |= UA_Int32_copy(&src->localizedText, &dst->localizedText);
  664. retval |= UA_Int32_copy(&src->namespaceUri, &dst->namespaceUri);
  665. retval |= UA_Int32_copy(&src->symbolicId, &dst->symbolicId);
  666. return retval;
  667. }
  668. /* InvalidType */
  669. UA_Int32 UA_InvalidType_free(UA_InvalidType *p) {
  670. return UA_ERR_INVALID_VALUE;
  671. }
  672. UA_Int32 UA_InvalidType_delete(UA_InvalidType *p) {
  673. return UA_ERR_INVALID_VALUE;
  674. }
  675. UA_Int32 UA_InvalidType_deleteMembers(UA_InvalidType *p) {
  676. return UA_ERR_INVALID_VALUE;
  677. }
  678. UA_Int32 UA_InvalidType_init(UA_InvalidType *p) {
  679. return UA_ERR_INVALID_VALUE;
  680. }
  681. UA_Int32 UA_InvalidType_copy(UA_InvalidType const *src, UA_InvalidType *dst) {
  682. return UA_ERR_INVALID_VALUE;
  683. }
  684. UA_Int32 UA_InvalidType_new(UA_InvalidType **p) {
  685. return UA_ERR_INVALID_VALUE;
  686. }
  687. /*********/
  688. /* Array */
  689. /*********/
  690. UA_Int32 UA_Array_delete(void *p, UA_Int32 noElements, UA_Int32 type) {
  691. UA_Int32 retval = UA_SUCCESS;
  692. if(p == UA_NULL) return UA_SUCCESS;
  693. char *cp = (char *)p; // so compilers allow pointer arithmetic
  694. for(UA_Int32 i = 0;i < noElements;i++) {
  695. retval |= UA_.types[type].deleteMembers(cp);
  696. cp += UA_.types[type].memSize;
  697. }
  698. UA_free(p);
  699. return retval;
  700. }
  701. UA_Int32 UA_Array_new(void **p, UA_Int32 noElements, UA_Int32 type) {
  702. if(noElements <= 0) {
  703. *p = UA_NULL;
  704. return UA_SUCCESS;
  705. }
  706. // FIXME!
  707. // Arrays cannot be larger than 2**20
  708. // This was randomly chosen so that the development VM does not blow up.
  709. if(noElements > 1048576) {
  710. *p = UA_NULL;
  711. return UA_ERROR;
  712. }
  713. UA_Int32 retval = UA_VTable_isValidType(type);
  714. if(retval != UA_SUCCESS) return retval;
  715. retval = UA_alloc(p, UA_.types[type].memSize * noElements);
  716. if(retval != UA_SUCCESS) {
  717. *p = UA_NULL;
  718. return retval;
  719. }
  720. retval = UA_Array_init(*p, noElements, type);
  721. if(retval != UA_SUCCESS) {
  722. UA_free(*p);
  723. *p = UA_NULL;
  724. }
  725. return retval;
  726. }
  727. UA_Int32 UA_Array_init(void *p, UA_Int32 noElements, UA_Int32 type) {
  728. UA_Int32 retval = UA_SUCCESS;
  729. char *cp = (char *)p; // so compilers allow pointer arithmetic
  730. for(UA_Int32 i = 0;i < noElements && retval == UA_SUCCESS;i++) {
  731. retval |= UA_.types[type].init(cp);
  732. cp += UA_.types[type].memSize;
  733. }
  734. return retval;
  735. }
  736. UA_Int32 UA_Array_copy(const void *src, UA_Int32 noElements, UA_Int32 type, void **dst) {
  737. if(UA_VTable_isValidType(type) != UA_SUCCESS)
  738. return UA_ERROR;
  739. UA_Int32 retval = UA_Array_new(dst, noElements, type);
  740. if(retval != UA_SUCCESS){
  741. *dst = UA_NULL;
  742. return retval;
  743. }
  744. char *csrc = (char *)src; // so compilers allow pointer arithmetic
  745. char *cdst = (char *)*dst;
  746. UA_Int32 i = 0;
  747. for(;i < noElements && retval == UA_SUCCESS;i++) {
  748. retval |= UA_.types[type].copy(csrc, cdst);
  749. csrc += UA_.types[type].memSize;
  750. cdst += UA_.types[type].memSize;
  751. }
  752. if(retval != UA_SUCCESS) {
  753. i--; // undo last increase
  754. UA_Array_delete(*dst, i, type);
  755. *dst = UA_NULL;
  756. }
  757. return retval;
  758. }