xs.h 27 KB

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  1. /* copyright (c) 2022 - 2023 grunfink et al. / MIT license */
  2. #ifndef _XS_H
  3. #define _XS_H
  4. #include <stdio.h>
  5. #include <string.h>
  6. #include <stdlib.h>
  7. #include <ctype.h>
  8. #include <unistd.h>
  9. #include <stdarg.h>
  10. #include <signal.h>
  11. #include <errno.h>
  12. typedef enum {
  13. XSTYPE_STRING = 0x02, /* C string (\0 delimited) (NOT STORED) */
  14. XSTYPE_NUMBER = 0x17, /* double in spirit, stored as a C string (\0 delimited) */
  15. XSTYPE_NULL = 0x18, /* Special NULL value */
  16. XSTYPE_TRUE = 0x06, /* Boolean */
  17. XSTYPE_FALSE = 0x15, /* Boolean */
  18. XSTYPE_LIST = 0x1d, /* Sequence of LITEMs up to EOM (with 24bit size) */
  19. XSTYPE_LITEM = 0x1f, /* Element of a list (any type) */
  20. XSTYPE_DICT = 0x1c, /* Sequence of DITEMs up to EOM (with 24bit size) */
  21. XSTYPE_DITEM = 0x1e, /* Element of a dict (STRING key + any type) */
  22. XSTYPE_EOM = 0x19, /* End of Multiple (LIST or DICT) */
  23. XSTYPE_DATA = 0x10 /* A block of anonymous data */
  24. } xstype;
  25. /* dynamic strings */
  26. typedef char d_char;
  27. /* types */
  28. typedef char xs_val;
  29. typedef char xs_str;
  30. typedef char xs_list;
  31. typedef char xs_dict;
  32. typedef char xs_number;
  33. typedef char xs_data;
  34. /* auto-destroyable strings */
  35. #define xs __attribute__ ((__cleanup__ (_xs_destroy))) xs_val
  36. /* not really all, just very much */
  37. #define XS_ALL 0xfffffff
  38. void *xs_free(void *ptr);
  39. void *_xs_realloc(void *ptr, size_t size, const char *file, int line, const char *func);
  40. #define xs_realloc(ptr, size) _xs_realloc(ptr, size, __FILE__, __LINE__, __FUNCTION__)
  41. int _xs_blk_size(int sz);
  42. void _xs_destroy(char **var);
  43. #define xs_debug() raise(SIGTRAP)
  44. xstype xs_type(const xs_val *data);
  45. int xs_size(const xs_val *data);
  46. int xs_is_null(const xs_val *data);
  47. xs_val *xs_dup(const xs_val *data);
  48. xs_val *xs_expand(xs_val *data, int offset, int size);
  49. xs_val *xs_collapse(xs_val *data, int offset, int size);
  50. xs_val *xs_insert_m(xs_val *data, int offset, const char *mem, int size);
  51. #define xs_insert(data, offset, data2) xs_insert_m(data, offset, data2, xs_size(data2))
  52. #define xs_append_m(data, mem, size) xs_insert_m(data, xs_size(data) - 1, mem, size)
  53. xs_str *xs_str_new(const char *str);
  54. xs_str *xs_str_wrap_i(const char *prefix, xs_str *str, const char *suffix);
  55. #define xs_str_prepend_i(str, prefix) xs_str_wrap_i(prefix, str, NULL)
  56. #define xs_str_cat(str, suffix) xs_str_wrap_i(NULL, str, suffix)
  57. xs_str *xs_replace_in(xs_str *str, const char *sfrom, const char *sto, int times);
  58. #define xs_replace_i(str, sfrom, sto) xs_replace_in(str, sfrom, sto, XS_ALL)
  59. #define xs_replace(str, sfrom, sto) xs_replace_in(xs_dup(str), sfrom, sto, XS_ALL)
  60. #define xs_replace_n(str, sfrom, sto, times) xs_replace_in(xs_dup(str), sfrom, sto, times)
  61. xs_str *xs_fmt(const char *fmt, ...);
  62. int xs_str_in(const char *haystack, const char *needle);
  63. int xs_starts_and_ends(const char *prefix, const char *str, const char *suffix);
  64. #define xs_startswith(str, prefix) xs_starts_and_ends(prefix, str, NULL)
  65. #define xs_endswith(str, suffix) xs_starts_and_ends(NULL, str, suffix)
  66. xs_str *xs_crop_i(xs_str *str, int start, int end);
  67. xs_str *xs_strip_chars_i(xs_str *str, const char *chars);
  68. #define xs_strip_i(str) xs_strip_chars_i(str, " \r\n\t\v\f")
  69. xs_str *xs_tolower_i(xs_str *str);
  70. xs_list *xs_list_new(void);
  71. xs_list *xs_list_append_m(xs_list *list, const char *mem, int dsz);
  72. #define xs_list_append(list, data) xs_list_append_m(list, data, xs_size(data))
  73. int xs_list_iter(xs_list **list, xs_val **value);
  74. int xs_list_len(const xs_list *list);
  75. xs_val *xs_list_get(const xs_list *list, int num);
  76. xs_list *xs_list_del(xs_list *list, int num);
  77. xs_list *xs_list_insert(xs_list *list, int num, const xs_val *data);
  78. xs_list *xs_list_insert_sorted(xs_list *list, const char *str);
  79. xs_list *xs_list_set(xs_list *list, int num, const xs_val *data);
  80. xs_list *xs_list_dequeue(xs_list *list, xs_val **data, int last);
  81. #define xs_list_pop(list, data) xs_list_dequeue(list, data, 1)
  82. #define xs_list_shift(list, data) xs_list_dequeue(list, data, 0)
  83. int xs_list_in(const xs_list *list, const xs_val *val);
  84. xs_str *xs_join(const xs_list *list, const char *sep);
  85. xs_list *xs_split_n(const char *str, const char *sep, int times);
  86. #define xs_split(str, sep) xs_split_n(str, sep, XS_ALL)
  87. xs_list *xs_list_cat(xs_list *l1, const xs_list *l2);
  88. xs_dict *xs_dict_new(void);
  89. xs_dict *xs_dict_append_m(xs_dict *dict, const xs_str *key, const xs_val *mem, int dsz);
  90. #define xs_dict_append(dict, key, data) xs_dict_append_m(dict, key, data, xs_size(data))
  91. xs_dict *xs_dict_prepend_m(xs_dict *dict, const xs_str *key, const xs_val *mem, int dsz);
  92. #define xs_dict_prepend(dict, key, data) xs_dict_prepend_m(dict, key, data, xs_size(data))
  93. int xs_dict_iter(xs_dict **dict, xs_str **key, xs_val **value);
  94. xs_val *xs_dict_get(const xs_dict *dict, const xs_str *key);
  95. xs_dict *xs_dict_del(xs_dict *dict, const xs_str *key);
  96. xs_dict *xs_dict_set(xs_dict *dict, const xs_str *key, const xs_val *data);
  97. xs_val *xs_val_new(xstype t);
  98. xs_number *xs_number_new(double f);
  99. double xs_number_get(const xs_number *v);
  100. const char *xs_number_str(const xs_number *v);
  101. xs_data *xs_data_new(const void *data, int size);
  102. int xs_data_size(const xs_data *value);
  103. void xs_data_get(const xs_data *value, void *data);
  104. void *xs_memmem(const char *haystack, int h_size, const char *needle, int n_size);
  105. xs_str *xs_hex_enc(const xs_val *data, int size);
  106. xs_val *xs_hex_dec(const xs_str *hex, int *size);
  107. int xs_is_hex(const char *str);
  108. unsigned int xs_hash_func(const char *data, int size);
  109. #ifdef XS_ASSERT
  110. #include <assert.h>
  111. #define XS_ASSERT_TYPE(v, t) assert(xs_type(v) == t)
  112. #define XS_ASSERT_TYPE_NULL(v, t) assert(v == NULL || xs_type(v) == t)
  113. #else
  114. #define XS_ASSERT_TYPE(v, t) (void)(0)
  115. #define XS_ASSERT_TYPE_NULL(v, t) (void)(0)
  116. #endif
  117. extern xs_val xs_stock_null[];
  118. extern xs_val xs_stock_true[];
  119. extern xs_val xs_stock_false[];
  120. extern xs_val xs_stock_0[];
  121. extern xs_val xs_stock_1[];
  122. extern xs_val xs_stock_list[];
  123. extern xs_val xs_stock_dict[];
  124. #define xs_return(v) xs_val *__r = v; v = NULL; return __r
  125. #ifdef XS_IMPLEMENTATION
  126. xs_val xs_stock_null[] = { XSTYPE_NULL };
  127. xs_val xs_stock_true[] = { XSTYPE_TRUE };
  128. xs_val xs_stock_false[] = { XSTYPE_FALSE };
  129. xs_val xs_stock_0[] = { XSTYPE_NUMBER, '0', '\0' };
  130. xs_val xs_stock_1[] = { XSTYPE_NUMBER, '1', '\0' };
  131. xs_val xs_stock_list[] = { XSTYPE_LIST, 0, 0, 5, XSTYPE_EOM };
  132. xs_val xs_stock_dict[] = { XSTYPE_DICT, 0, 0, 5, XSTYPE_EOM };
  133. void *_xs_realloc(void *ptr, size_t size, const char *file, int line, const char *func)
  134. {
  135. d_char *ndata = realloc(ptr, size);
  136. if (ndata == NULL) {
  137. fprintf(stderr, "**OUT OF MEMORY**\n");
  138. abort();
  139. }
  140. #ifdef XS_DEBUG
  141. if (ndata != ptr) {
  142. int n;
  143. FILE *f = fopen("xs_memory.out", "a");
  144. if (ptr != NULL)
  145. fprintf(f, "%p r\n", ptr);
  146. fprintf(f, "%p a %ld %s:%d: %s", ndata, size, file, line, func);
  147. if (ptr != NULL) {
  148. fprintf(f, " [");
  149. for (n = 0; n < 32 && ndata[n]; n++) {
  150. if (ndata[n] >= 32 && ndata[n] <= 127)
  151. fprintf(f, "%c", ndata[n]);
  152. else
  153. fprintf(f, "\\%02x", (unsigned char)ndata[n]);
  154. }
  155. fprintf(f, "]");
  156. }
  157. fprintf(f, "\n");
  158. fclose(f);
  159. }
  160. #else
  161. (void)file;
  162. (void)line;
  163. (void)func;
  164. #endif
  165. return ndata;
  166. }
  167. void *xs_free(void *ptr)
  168. {
  169. #ifdef XS_DEBUG
  170. if (ptr != NULL) {
  171. FILE *f = fopen("xs_memory.out", "a");
  172. fprintf(f, "%p b\n", ptr);
  173. fclose(f);
  174. }
  175. #endif
  176. free(ptr);
  177. return NULL;
  178. }
  179. void _xs_destroy(char **var)
  180. {
  181. /*
  182. if (_xs_debug)
  183. printf("_xs_destroy %p\n", var);
  184. */
  185. xs_free(*var);
  186. }
  187. int _xs_blk_size(int sz)
  188. /* calculates the block size */
  189. {
  190. int blk_size = 4096;
  191. if (sz < 256)
  192. blk_size = 32;
  193. else
  194. if (sz < 4096)
  195. blk_size = 256;
  196. return ((((sz) + blk_size) / blk_size) * blk_size);
  197. }
  198. xstype xs_type(const xs_val *data)
  199. /* return the type of data */
  200. {
  201. xstype t;
  202. if (data == NULL)
  203. t = XSTYPE_NULL;
  204. else
  205. switch (data[0]) {
  206. case XSTYPE_NULL:
  207. case XSTYPE_TRUE:
  208. case XSTYPE_FALSE:
  209. case XSTYPE_LIST:
  210. case XSTYPE_LITEM:
  211. case XSTYPE_DICT:
  212. case XSTYPE_DITEM:
  213. case XSTYPE_NUMBER:
  214. case XSTYPE_EOM:
  215. case XSTYPE_DATA:
  216. t = data[0];
  217. break;
  218. default:
  219. t = XSTYPE_STRING;
  220. break;
  221. }
  222. return t;
  223. }
  224. void _xs_put_24b(xs_val *ptr, int i)
  225. /* writes i as a 24 bit value */
  226. {
  227. unsigned char *p = (unsigned char *)ptr;
  228. p[0] = (i >> 16) & 0xff;
  229. p[1] = (i >> 8) & 0xff;
  230. p[2] = i & 0xff;
  231. }
  232. int _xs_get_24b(const xs_val *ptr)
  233. /* reads a 24 bit value */
  234. {
  235. unsigned char *p = (unsigned char *)ptr;
  236. return (p[0] << 16) | (p[1] << 8) | p[2];
  237. }
  238. int xs_size(const xs_val *data)
  239. /* returns the size of data in bytes */
  240. {
  241. int len = 0;
  242. const char *p;
  243. if (data == NULL)
  244. return 0;
  245. switch (xs_type(data)) {
  246. case XSTYPE_STRING:
  247. len = strlen(data) + 1;
  248. break;
  249. case XSTYPE_LIST:
  250. case XSTYPE_DICT:
  251. case XSTYPE_DATA:
  252. len = _xs_get_24b(data + 1);
  253. break;
  254. case XSTYPE_DITEM:
  255. /* calculate the size of the key and the value */
  256. p = data + 1;
  257. p += xs_size(p);
  258. p += xs_size(p);
  259. len = p - data;
  260. break;
  261. case XSTYPE_LITEM:
  262. /* it's the size of the item + 1 */
  263. p = data + 1;
  264. p += xs_size(p);
  265. len = p - data;
  266. break;
  267. case XSTYPE_NUMBER:
  268. len = 1 + xs_size(data + 1);
  269. break;
  270. default:
  271. len = 1;
  272. }
  273. return len;
  274. }
  275. int xs_is_null(const xs_val *data)
  276. /* checks for null */
  277. {
  278. return (xs_type(data) == XSTYPE_NULL);
  279. }
  280. xs_val *xs_dup(const xs_val *data)
  281. /* creates a duplicate of data */
  282. {
  283. int sz = xs_size(data);
  284. xs_val *s = xs_realloc(NULL, _xs_blk_size(sz));
  285. memcpy(s, data, sz);
  286. return s;
  287. }
  288. xs_val *xs_expand(xs_val *data, int offset, int size)
  289. /* opens a hole in data */
  290. {
  291. int sz = xs_size(data);
  292. /* open room */
  293. if (sz == 0 || _xs_blk_size(sz) != _xs_blk_size(sz + size))
  294. data = xs_realloc(data, _xs_blk_size(sz + size));
  295. /* move up the rest of the data */
  296. if (data != NULL)
  297. memmove(data + offset + size, data + offset, sz - offset);
  298. if (xs_type(data) == XSTYPE_LIST ||
  299. xs_type(data) == XSTYPE_DICT ||
  300. xs_type(data) == XSTYPE_DATA)
  301. _xs_put_24b(data + 1, sz + size);
  302. return data;
  303. }
  304. xs_val *xs_collapse(xs_val *data, int offset, int size)
  305. /* shrinks data */
  306. {
  307. int sz = xs_size(data);
  308. int n;
  309. /* don't try to delete beyond the limit */
  310. if (offset + size > sz)
  311. size = sz - offset;
  312. /* shrink total size */
  313. sz -= size;
  314. for (n = offset; n < sz; n++)
  315. data[n] = data[n + size];
  316. if (xs_type(data) == XSTYPE_LIST ||
  317. xs_type(data) == XSTYPE_DICT ||
  318. xs_type(data) == XSTYPE_DATA)
  319. _xs_put_24b(data + 1, sz);
  320. return xs_realloc(data, _xs_blk_size(sz));
  321. }
  322. xs_val *xs_insert_m(xs_val *data, int offset, const char *mem, int size)
  323. /* inserts a memory block */
  324. {
  325. data = xs_expand(data, offset, size);
  326. memcpy(data + offset, mem, size);
  327. return data;
  328. }
  329. /** strings **/
  330. xs_str *xs_str_new(const char *str)
  331. /* creates a new string */
  332. {
  333. return xs_insert(NULL, 0, str ? str : "");
  334. }
  335. xs_str *xs_str_wrap_i(const char *prefix, xs_str *str, const char *suffix)
  336. /* wraps str with prefix and suffix */
  337. {
  338. XS_ASSERT_TYPE(str, XSTYPE_STRING);
  339. if (prefix)
  340. str = xs_insert_m(str, 0, prefix, strlen(prefix));
  341. if (suffix)
  342. str = xs_insert_m(str, strlen(str), suffix, strlen(suffix));
  343. return str;
  344. }
  345. xs_str *xs_replace_in(xs_str *str, const char *sfrom, const char *sto, int times)
  346. /* replaces inline all sfrom with sto */
  347. {
  348. XS_ASSERT_TYPE(str, XSTYPE_STRING);
  349. int sfsz = strlen(sfrom);
  350. int stsz = strlen(sto);
  351. char *ss;
  352. int offset = 0;
  353. while (times > 0 && (ss = strstr(str + offset, sfrom)) != NULL) {
  354. int n_offset = ss - str;
  355. if (sfsz != stsz) {
  356. str = xs_collapse(str, n_offset, sfsz);
  357. str = xs_expand(str, n_offset, stsz);
  358. }
  359. memcpy(str + n_offset, sto, stsz);
  360. offset = n_offset + stsz;
  361. times--;
  362. }
  363. return str;
  364. }
  365. xs_str *xs_fmt(const char *fmt, ...)
  366. /* formats a string with printf()-like marks */
  367. {
  368. int n;
  369. xs_str *s = NULL;
  370. va_list ap;
  371. va_start(ap, fmt);
  372. n = vsnprintf(s, 0, fmt, ap);
  373. va_end(ap);
  374. if (n > 0) {
  375. s = xs_realloc(NULL, _xs_blk_size(n + 1));
  376. va_start(ap, fmt);
  377. vsnprintf(s, n + 1, fmt, ap);
  378. va_end(ap);
  379. }
  380. return s;
  381. }
  382. int xs_str_in(const char *haystack, const char *needle)
  383. /* finds needle in haystack and returns the offset or -1 */
  384. {
  385. char *s;
  386. int r = -1;
  387. if ((s = strstr(haystack, needle)) != NULL)
  388. r = s - haystack;
  389. return r;
  390. }
  391. int xs_starts_and_ends(const char *prefix, const char *str, const char *suffix)
  392. /* returns true if str starts with prefix and ends with suffix */
  393. {
  394. int sz = strlen(str);
  395. int psz = prefix ? strlen(prefix) : 0;
  396. int ssz = suffix ? strlen(suffix) : 0;
  397. if (sz < psz || sz < ssz)
  398. return 0;
  399. if (prefix && memcmp(str, prefix, psz) != 0)
  400. return 0;
  401. if (suffix && memcmp(str + sz - ssz, suffix, ssz) != 0)
  402. return 0;
  403. return 1;
  404. }
  405. xs_str *xs_crop_i(xs_str *str, int start, int end)
  406. /* crops the d_char to be only from start to end */
  407. {
  408. XS_ASSERT_TYPE(str, XSTYPE_STRING);
  409. int sz = strlen(str);
  410. if (end <= 0)
  411. end = sz + end;
  412. /* crop from the top */
  413. str[end] = '\0';
  414. /* crop from the bottom */
  415. str = xs_collapse(str, 0, start);
  416. return str;
  417. }
  418. xs_str *xs_strip_chars_i(xs_str *str, const char *chars)
  419. /* strips the string of chars from the start and the end */
  420. {
  421. XS_ASSERT_TYPE(str, XSTYPE_STRING);
  422. int n;
  423. /* strip first from the end */
  424. for (n = strlen(str); n > 0 && strchr(chars, str[n - 1]); n--);
  425. str[n] = '\0';
  426. if (str[0]) {
  427. /* now strip from the beginning */
  428. for (n = 0; str[n] && strchr(chars, str[n]); n++);
  429. if (n)
  430. str = xs_collapse(str, 0, n);
  431. }
  432. return str;
  433. }
  434. xs_str *xs_tolower_i(xs_str *str)
  435. /* convert to lowercase */
  436. {
  437. XS_ASSERT_TYPE(str, XSTYPE_STRING);
  438. int n;
  439. for (n = 0; str[n]; n++)
  440. str[n] = tolower(str[n]);
  441. return str;
  442. }
  443. /** lists **/
  444. xs_list *xs_list_new(void)
  445. /* creates a new list */
  446. {
  447. return memcpy(
  448. xs_realloc(NULL, _xs_blk_size(sizeof(xs_stock_list))),
  449. xs_stock_list, sizeof(xs_stock_list)
  450. );
  451. }
  452. xs_list *_xs_list_write_litem(xs_list *list, int offset, const char *mem, int dsz)
  453. /* writes a list item */
  454. {
  455. XS_ASSERT_TYPE(list, XSTYPE_LIST);
  456. list = xs_expand(list, offset, dsz + 1);
  457. list[offset] = XSTYPE_LITEM;
  458. memcpy(list + offset + 1, mem, dsz);
  459. return list;
  460. }
  461. xs_list *xs_list_append_m(xs_list *list, const char *mem, int dsz)
  462. /* adds a memory block to the list */
  463. {
  464. XS_ASSERT_TYPE(list, XSTYPE_LIST);
  465. return _xs_list_write_litem(list, xs_size(list) - 1, mem, dsz);
  466. }
  467. int xs_list_iter(xs_list **list, xs_val **value)
  468. /* iterates a list value */
  469. {
  470. int goon = 1;
  471. xs_val *p = *list;
  472. /* skip the start of the list */
  473. if (xs_type(p) == XSTYPE_LIST)
  474. p += 4;
  475. /* an element? */
  476. if (xs_type(p) == XSTYPE_LITEM) {
  477. p++;
  478. *value = p;
  479. p += xs_size(*value);
  480. }
  481. else {
  482. /* end of list */
  483. goon = 0;
  484. }
  485. /* store back the pointer */
  486. *list = p;
  487. return goon;
  488. }
  489. int xs_list_len(const xs_list *list)
  490. /* returns the number of elements in the list */
  491. {
  492. XS_ASSERT_TYPE_NULL(list, XSTYPE_LIST);
  493. int c = 0;
  494. xs_list *p = (xs_list *)list;
  495. xs_val *v;
  496. while (xs_list_iter(&p, &v))
  497. c++;
  498. return c;
  499. }
  500. xs_val *xs_list_get(const xs_list *list, int num)
  501. /* returns the element #num */
  502. {
  503. XS_ASSERT_TYPE(list, XSTYPE_LIST);
  504. if (num < 0)
  505. num = xs_list_len(list) + num;
  506. int c = 0;
  507. xs_list *p = (xs_list *)list;
  508. xs_val *v;
  509. while (xs_list_iter(&p, &v)) {
  510. if (c == num)
  511. return v;
  512. c++;
  513. }
  514. return NULL;
  515. }
  516. xs_list *xs_list_del(xs_list *list, int num)
  517. /* deletes element #num */
  518. {
  519. XS_ASSERT_TYPE(list, XSTYPE_LIST);
  520. xs_val *v;
  521. if ((v = xs_list_get(list, num)) != NULL)
  522. list = xs_collapse(list, v - 1 - list, xs_size(v - 1));
  523. return list;
  524. }
  525. xs_list *xs_list_insert(xs_list *list, int num, const xs_val *data)
  526. /* inserts an element at #num position */
  527. {
  528. XS_ASSERT_TYPE(list, XSTYPE_LIST);
  529. xs_val *v;
  530. int offset;
  531. if ((v = xs_list_get(list, num)) != NULL)
  532. offset = v - list;
  533. else
  534. offset = xs_size(list);
  535. return _xs_list_write_litem(list, offset - 1, data, xs_size(data));
  536. }
  537. xs_list *xs_list_insert_sorted(xs_list *list, const xs_str *str)
  538. /* inserts a string in the list in its ordered position */
  539. {
  540. XS_ASSERT_TYPE(list, XSTYPE_LIST);
  541. XS_ASSERT_TYPE(str, XSTYPE_STRING);
  542. char *p, *v;
  543. int offset = xs_size(list);
  544. p = list;
  545. while (xs_list_iter(&p, &v)) {
  546. /* if this element is greater or equal, insert here */
  547. if (strcmp(v, str) >= 0) {
  548. offset = v - list;
  549. break;
  550. }
  551. }
  552. return _xs_list_write_litem(list, offset - 1, str, xs_size(str));
  553. }
  554. xs_list *xs_list_set(xs_list *list, int num, const xs_val *data)
  555. /* sets the element at #num position */
  556. {
  557. XS_ASSERT_TYPE(list, XSTYPE_LIST);
  558. list = xs_list_del(list, num);
  559. list = xs_list_insert(list, num, data);
  560. return list;
  561. }
  562. xs_list *xs_list_dequeue(xs_list *list, xs_val **data, int last)
  563. /* gets a copy of the first or last element of a list, shrinking it */
  564. {
  565. XS_ASSERT_TYPE(list, XSTYPE_LIST);
  566. xs_list *p = list;
  567. xs_val *v = NULL;
  568. if (!last) {
  569. /* get the first */
  570. xs_list_iter(&p, &v);
  571. }
  572. else {
  573. /* iterate to the end */
  574. while (xs_list_iter(&p, &v));
  575. }
  576. if (v != NULL) {
  577. *data = xs_dup(v);
  578. /* collapse from the address of the element */
  579. list = xs_collapse(list, v - 1 - list, xs_size(v - 1));
  580. }
  581. return list;
  582. }
  583. int xs_list_in(const xs_list *list, const xs_val *val)
  584. /* returns the position of val in list or -1 */
  585. {
  586. XS_ASSERT_TYPE_NULL(list, XSTYPE_LIST);
  587. int n = 0;
  588. xs_list *p = (xs_list *)list;
  589. xs_val *v;
  590. int sz = xs_size(val);
  591. while (xs_list_iter(&p, &v)) {
  592. if (sz == xs_size(v) && memcmp(val, v, sz) == 0)
  593. return n;
  594. n++;
  595. }
  596. return -1;
  597. }
  598. xs_str *xs_join(const xs_list *list, const char *sep)
  599. /* joins a list into a string */
  600. {
  601. XS_ASSERT_TYPE(list, XSTYPE_LIST);
  602. xs_str *s = NULL;
  603. xs_list *p = (xs_list *)list;
  604. xs_val *v;
  605. int c = 0;
  606. int offset = 0;
  607. int ssz = strlen(sep);
  608. while (xs_list_iter(&p, &v)) {
  609. /* refuse to join non-string values */
  610. if (xs_type(v) == XSTYPE_STRING) {
  611. int sz;
  612. /* add the separator */
  613. if (c != 0) {
  614. s = xs_realloc(s, offset + ssz);
  615. memcpy(s + offset, sep, ssz);
  616. offset += ssz;
  617. }
  618. /* add the element */
  619. sz = strlen(v);
  620. s = xs_realloc(s, offset + sz);
  621. memcpy(s + offset, v, sz);
  622. offset += sz;
  623. c++;
  624. }
  625. }
  626. /* null-terminate */
  627. s = xs_realloc(s, _xs_blk_size(offset + 1));
  628. s[offset] = '\0';
  629. return s;
  630. }
  631. xs_list *xs_split_n(const char *str, const char *sep, int times)
  632. /* splits a string into a list upto n times */
  633. {
  634. int sz = strlen(sep);
  635. char *ss;
  636. xs_list *list;
  637. list = xs_list_new();
  638. while (times > 0 && (ss = strstr(str, sep)) != NULL) {
  639. /* add the first part (without the asciiz) */
  640. list = xs_list_append_m(list, str, ss - str);
  641. /* add the asciiz */
  642. list = xs_insert_m(list, xs_size(list) - 1, "", 1);
  643. /* skip past the separator */
  644. str = ss + sz;
  645. times--;
  646. }
  647. /* add the rest of the string */
  648. list = xs_list_append(list, str);
  649. return list;
  650. }
  651. xs_list *xs_list_cat(xs_list *l1, const xs_list *l2)
  652. /* concatenates list l2 to l1 */
  653. {
  654. XS_ASSERT_TYPE(l1, XSTYPE_LIST);
  655. XS_ASSERT_TYPE(l2, XSTYPE_LIST);
  656. /* inserts at the end of l1 the content of l2 (skipping header and footer) */
  657. return xs_insert_m(l1, xs_size(l1) - 1, l2 + 4, xs_size(l2) - 5);
  658. }
  659. /** dicts **/
  660. xs_dict *xs_dict_new(void)
  661. /* creates a new dict */
  662. {
  663. return memcpy(
  664. xs_realloc(NULL, _xs_blk_size(sizeof(xs_stock_dict))),
  665. xs_stock_dict, sizeof(xs_stock_dict)
  666. );
  667. }
  668. xs_dict *xs_dict_insert_m(xs_dict *dict, int offset, const xs_str *key,
  669. const xs_val *data, int dsz)
  670. /* inserts a memory block into the dict */
  671. {
  672. XS_ASSERT_TYPE(dict, XSTYPE_DICT);
  673. XS_ASSERT_TYPE(key, XSTYPE_STRING);
  674. int ksz = xs_size(key);
  675. dict = xs_expand(dict, offset, 1 + ksz + dsz);
  676. dict[offset] = XSTYPE_DITEM;
  677. memcpy(&dict[offset + 1], key, ksz);
  678. memcpy(&dict[offset + 1 + ksz], data, dsz);
  679. return dict;
  680. }
  681. xs_dict *xs_dict_append_m(xs_dict *dict, const xs_str *key, const xs_val *mem, int dsz)
  682. /* appends a memory block to the dict */
  683. {
  684. return xs_dict_insert_m(dict, xs_size(dict) - 1, key, mem, dsz);
  685. }
  686. xs_dict *xs_dict_prepend_m(xs_dict *dict, const xs_str *key, const xs_val *mem, int dsz)
  687. /* prepends a memory block to the dict */
  688. {
  689. return xs_dict_insert_m(dict, 4, key, mem, dsz);
  690. }
  691. int xs_dict_iter(xs_dict **dict, xs_str **key, xs_val **value)
  692. /* iterates a dict value */
  693. {
  694. int goon = 1;
  695. xs_val *p = *dict;
  696. /* skip the start of the list */
  697. if (xs_type(p) == XSTYPE_DICT)
  698. p += 4;
  699. /* an element? */
  700. if (xs_type(p) == XSTYPE_DITEM) {
  701. p++;
  702. *key = p;
  703. p += xs_size(*key);
  704. *value = p;
  705. p += xs_size(*value);
  706. }
  707. else {
  708. /* end of list */
  709. goon = 0;
  710. }
  711. /* store back the pointer */
  712. *dict = p;
  713. return goon;
  714. }
  715. xs_val *xs_dict_get(const xs_dict *dict, const xs_str *key)
  716. /* returns the value directed by key */
  717. {
  718. XS_ASSERT_TYPE(dict, XSTYPE_DICT);
  719. XS_ASSERT_TYPE(key, XSTYPE_STRING);
  720. xs_dict *p = (xs_dict *)dict;
  721. xs_str *k;
  722. xs_val *v;
  723. while (xs_dict_iter(&p, &k, &v)) {
  724. if (strcmp(k, key) == 0)
  725. return v;
  726. }
  727. return NULL;
  728. }
  729. xs_dict *xs_dict_del(xs_dict *dict, const xs_str *key)
  730. /* deletes a key */
  731. {
  732. XS_ASSERT_TYPE(dict, XSTYPE_DICT);
  733. XS_ASSERT_TYPE(key, XSTYPE_STRING);
  734. xs_str *k;
  735. xs_val *v;
  736. xs_dict *p = dict;
  737. while (xs_dict_iter(&p, &k, &v)) {
  738. if (strcmp(k, key) == 0) {
  739. /* the address of the item is just behind the key */
  740. char *i = k - 1;
  741. dict = xs_collapse(dict, i - dict, xs_size(i));
  742. break;
  743. }
  744. }
  745. return dict;
  746. }
  747. xs_dict *xs_dict_set(xs_dict *dict, const xs_str *key, const xs_val *data)
  748. /* sets (replaces) a key */
  749. {
  750. XS_ASSERT_TYPE(dict, XSTYPE_DICT);
  751. XS_ASSERT_TYPE(key, XSTYPE_STRING);
  752. /* delete the possibly existing key */
  753. dict = xs_dict_del(dict, key);
  754. /* add the data */
  755. dict = xs_dict_append(dict, key, data);
  756. return dict;
  757. }
  758. /** other values **/
  759. xs_val *xs_val_new(xstype t)
  760. /* adds a new special value */
  761. {
  762. xs_val *v = xs_realloc(NULL, _xs_blk_size(1));
  763. v[0] = t;
  764. return v;
  765. }
  766. /** numbers */
  767. xs_number *xs_number_new(double f)
  768. /* adds a new number value */
  769. {
  770. xs_number *v;
  771. char tmp[64];
  772. snprintf(tmp, sizeof(tmp), "%.15lf", f);
  773. /* strip useless zeros */
  774. if (strchr(tmp, '.') != NULL) {
  775. char *ptr;
  776. for (ptr = tmp + strlen(tmp) - 1; *ptr == '0'; ptr--);
  777. if (*ptr != '.')
  778. ptr++;
  779. *ptr = '\0';
  780. }
  781. /* alloc for the marker and the full string */
  782. v = xs_realloc(NULL, _xs_blk_size(1 + xs_size(tmp)));
  783. v[0] = XSTYPE_NUMBER;
  784. memcpy(&v[1], tmp, xs_size(tmp));
  785. return v;
  786. }
  787. double xs_number_get(const xs_number *v)
  788. /* gets the number as a double */
  789. {
  790. double f = 0.0;
  791. if (v != NULL && v[0] == XSTYPE_NUMBER)
  792. f = atof(&v[1]);
  793. return f;
  794. }
  795. const char *xs_number_str(const xs_number *v)
  796. /* gets the number as a string */
  797. {
  798. const char *p = NULL;
  799. if (v != NULL && v[0] == XSTYPE_NUMBER)
  800. p = &v[1];
  801. return p;
  802. }
  803. /** raw data blocks **/
  804. xs_data *xs_data_new(const void *data, int size)
  805. /* returns a new raw data value */
  806. {
  807. xs_data *v;
  808. /* add the overhead (data type + 24bit size) */
  809. int total_size = size + 4;
  810. v = xs_realloc(NULL, _xs_blk_size(total_size));
  811. v[0] = XSTYPE_DATA;
  812. _xs_put_24b(v + 1, total_size);
  813. memcpy(&v[4], data, size);
  814. return v;
  815. }
  816. int xs_data_size(const xs_data *value)
  817. /* returns the size of the data stored inside value */
  818. {
  819. return _xs_get_24b(value + 1) - 4;
  820. }
  821. void xs_data_get(const xs_data *value, void *data)
  822. /* copies the raw data stored inside value into data */
  823. {
  824. int size = _xs_get_24b(value + 1) - 4;
  825. memcpy(data, &value[4], size);
  826. }
  827. void *xs_memmem(const char *haystack, int h_size, const char *needle, int n_size)
  828. /* clone of memmem */
  829. {
  830. char *p, *r = NULL;
  831. int offset = 0;
  832. while (!r && h_size - offset > n_size &&
  833. (p = memchr(haystack + offset, *needle, h_size - offset))) {
  834. if (memcmp(p, needle, n_size) == 0)
  835. r = p;
  836. else
  837. offset = p - haystack + 1;
  838. }
  839. return r;
  840. }
  841. /** hex **/
  842. xs_str *xs_hex_enc(const xs_val *data, int size)
  843. /* returns an hexdump of data */
  844. {
  845. xs_str *s;
  846. char *p;
  847. int n;
  848. p = s = xs_realloc(NULL, _xs_blk_size(size * 2 + 1));
  849. for (n = 0; n < size; n++) {
  850. snprintf(p, 3, "%02x", (unsigned char)data[n]);
  851. p += 2;
  852. }
  853. *p = '\0';
  854. return s;
  855. }
  856. xs_val *xs_hex_dec(const xs_str *hex, int *size)
  857. /* decodes an hexdump into data */
  858. {
  859. int sz = strlen(hex);
  860. xs_val *s = NULL;
  861. char *p;
  862. int n;
  863. if (sz % 2)
  864. return NULL;
  865. p = s = xs_realloc(NULL, _xs_blk_size(sz / 2 + 1));
  866. for (n = 0; n < sz; n += 2) {
  867. int i;
  868. if (sscanf(&hex[n], "%02x", &i) == 0) {
  869. /* decoding error */
  870. return xs_free(s);
  871. }
  872. else
  873. *p = i;
  874. p++;
  875. }
  876. *p = '\0';
  877. *size = sz / 2;
  878. return s;
  879. }
  880. int xs_is_hex(const char *str)
  881. /* returns 1 if str is an hex string */
  882. {
  883. while (*str) {
  884. if (strchr("0123456789abcdefABCDEF", *str++) == NULL)
  885. return 0;
  886. }
  887. return 1;
  888. }
  889. unsigned int xs_hash_func(const char *data, int size)
  890. /* a general purpose hashing function */
  891. {
  892. unsigned int hash = 0x666;
  893. int n;
  894. for (n = 0; n < size; n++) {
  895. hash ^= data[n];
  896. hash *= 111111111;
  897. }
  898. return hash ^ hash >> 16;
  899. }
  900. #endif /* XS_IMPLEMENTATION */
  901. #endif /* _XS_H */