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  1. // This file is part of Jiffy released under the MIT license.
  2. // See the LICENSE file for more information.
  3. #include <assert.h>
  4. #include <stdio.h>
  5. #include <string.h>
  6. #include "erl_nif.h"
  7. #include "jiffy.h"
  8. #define BIN_INC_SIZE 2048
  9. #define MIN(X, Y) ((X) < (Y) ? (X) : (Y))
  10. #define MAYBE_PRETTY(e) \
  11. do { \
  12. if(e->pretty) { \
  13. if(!enc_shift(e)) \
  14. return 0; \
  15. } \
  16. } while(0)
  17. #if WINDOWS || WIN32
  18. #define inline __inline
  19. #define snprintf _snprintf
  20. #endif
  21. typedef struct {
  22. ErlNifEnv* env;
  23. jiffy_st* atoms;
  24. size_t bytes_per_red;
  25. int uescape;
  26. int pretty;
  27. int use_nil;
  28. int escape_forward_slashes;
  29. int shiftcnt;
  30. int count;
  31. size_t iosize;
  32. ERL_NIF_TERM iolist;
  33. int partial_output;
  34. ErlNifBinary buffer;
  35. int have_buffer;
  36. unsigned char* p;
  37. size_t i;
  38. } Encoder;
  39. // String constants for pretty printing.
  40. // Every string starts with its length.
  41. #define NUM_SHIFTS 8
  42. static char* shifts[NUM_SHIFTS] = {
  43. "\x01\n",
  44. "\x03\n ",
  45. "\x05\n ",
  46. "\x07\n ",
  47. "\x09\n ",
  48. "\x0b\n ",
  49. "\x0d\n ",
  50. "\x0f\n "
  51. };
  52. Encoder*
  53. enc_new(ErlNifEnv* env)
  54. {
  55. jiffy_st* st = (jiffy_st*) enif_priv_data(env);
  56. Encoder* e = enif_alloc_resource(st->res_enc, sizeof(Encoder));
  57. e->atoms = st;
  58. e->bytes_per_red = DEFAULT_BYTES_PER_REDUCTION;
  59. e->uescape = 0;
  60. e->pretty = 0;
  61. e->use_nil = 0;
  62. e->escape_forward_slashes = 0;
  63. e->shiftcnt = 0;
  64. e->count = 0;
  65. e->iosize = 0;
  66. e->iolist = enif_make_list(env, 0);
  67. e->partial_output = 0;
  68. if(!enif_alloc_binary(BIN_INC_SIZE, &e->buffer)) {
  69. enif_release_resource(e);
  70. return NULL;
  71. }
  72. e->have_buffer = 1;
  73. e->p = e->buffer.data;
  74. e->i = 0;
  75. return e;
  76. }
  77. int
  78. enc_init(Encoder* e, ErlNifEnv* env)
  79. {
  80. e->env = env;
  81. return 1;
  82. }
  83. void
  84. enc_destroy(ErlNifEnv* env, void* obj)
  85. {
  86. Encoder* e = (Encoder*) obj;
  87. if(e->have_buffer) {
  88. enif_release_binary(&e->buffer);
  89. }
  90. }
  91. ERL_NIF_TERM
  92. enc_error(Encoder* e, const char* msg)
  93. {
  94. //assert(0 && msg);
  95. return make_error(e->atoms, e->env, msg);
  96. }
  97. ERL_NIF_TERM
  98. enc_obj_error(Encoder* e, const char* msg, ERL_NIF_TERM obj)
  99. {
  100. return make_obj_error(e->atoms, e->env, msg, obj);
  101. }
  102. int
  103. enc_flush(Encoder* e)
  104. {
  105. ERL_NIF_TERM bin;
  106. if(e->i == 0) {
  107. return 1;
  108. }
  109. if(e->i < e->buffer.size) {
  110. if(!enif_realloc_binary(&e->buffer, e->i)) {
  111. return 0;
  112. }
  113. }
  114. bin = enif_make_binary(e->env, &e->buffer);
  115. e->have_buffer = 0;
  116. e->iolist = enif_make_list_cell(e->env, bin, e->iolist);
  117. e->iosize += e->i;
  118. return 1;
  119. }
  120. static inline int
  121. enc_ensure(Encoder* e, size_t req)
  122. {
  123. size_t new_size = BIN_INC_SIZE;
  124. if(req < (e->buffer.size - e->i)) {
  125. return 1;
  126. }
  127. if(!enc_flush(e)) {
  128. return 0;
  129. }
  130. for(new_size = BIN_INC_SIZE; new_size < req; new_size <<= 1);
  131. if(!enif_alloc_binary(new_size, &e->buffer)) {
  132. return 0;
  133. }
  134. e->have_buffer = 1;
  135. e->p = e->buffer.data;
  136. e->i = 0;
  137. return 1;
  138. }
  139. #define SMALL_TERMSTACK_SIZE 16
  140. typedef struct {
  141. ERL_NIF_TERM *elements;
  142. size_t size;
  143. size_t top;
  144. ERL_NIF_TERM __default_elements[SMALL_TERMSTACK_SIZE];
  145. } TermStack;
  146. static inline void
  147. termstack_push(TermStack *stack, ERL_NIF_TERM term)
  148. {
  149. if(stack->top == stack->size) {
  150. size_t new_size = stack->size * 2;
  151. if (stack->elements == &stack->__default_elements[0]) {
  152. stack->elements = enif_alloc(new_size * sizeof(ERL_NIF_TERM));
  153. stack->size = new_size;
  154. } else {
  155. stack->elements = enif_realloc(stack->elements,
  156. new_size * sizeof(ERL_NIF_TERM));
  157. stack->size = new_size;
  158. }
  159. }
  160. assert(stack->top < stack->size);
  161. stack->elements[stack->top++] = term;
  162. }
  163. static inline ERL_NIF_TERM
  164. termstack_pop(TermStack *stack)
  165. {
  166. assert(stack->top > 0 && stack->top <= stack->size);
  167. return stack->elements[--stack->top];
  168. }
  169. static inline int
  170. termstack_is_empty(TermStack *stack)
  171. {
  172. return stack->top == 0;
  173. }
  174. ERL_NIF_TERM termstack_save(ErlNifEnv *env, TermStack *stack)
  175. {
  176. return enif_make_tuple_from_array(env, stack->elements, stack->top);
  177. }
  178. int termstack_restore(ErlNifEnv *env, ERL_NIF_TERM from, TermStack *stack)
  179. {
  180. const ERL_NIF_TERM *elements;
  181. int arity;
  182. if(enif_get_tuple(env, from, &arity, &elements)) {
  183. stack->top = arity;
  184. if(arity <= SMALL_TERMSTACK_SIZE) {
  185. stack->elements = &stack->__default_elements[0];
  186. stack->size = SMALL_TERMSTACK_SIZE;
  187. } else {
  188. stack->size = arity * 2;
  189. stack->elements = enif_alloc(stack->size * sizeof(ERL_NIF_TERM));
  190. if(!stack->elements) {
  191. return 0;
  192. }
  193. }
  194. memcpy(stack->elements, elements, arity * sizeof(ERL_NIF_TERM));
  195. return 1;
  196. }
  197. return 0;
  198. }
  199. static void
  200. termstack_destroy(TermStack *stack)
  201. {
  202. if(stack->elements != &stack->__default_elements[0]) {
  203. enif_free(stack->elements);
  204. }
  205. }
  206. static inline int
  207. enc_literal(Encoder* e, const char* literal, size_t len)
  208. {
  209. if(!enc_ensure(e, len)) {
  210. return 0;
  211. }
  212. memcpy(&(e->p[e->i]), literal, len);
  213. e->i += len;
  214. e->count++;
  215. return 1;
  216. }
  217. static inline int
  218. enc_special_character(Encoder* e, int val) {
  219. switch(val) {
  220. case '\"':
  221. case '\\':
  222. e->p[e->i++] = '\\';
  223. e->p[e->i++] = val;
  224. return 1;
  225. case '\b':
  226. e->p[e->i++] = '\\';
  227. e->p[e->i++] = 'b';
  228. return 1;
  229. case '\f':
  230. e->p[e->i++] = '\\';
  231. e->p[e->i++] = 'f';
  232. return 1;
  233. case '\n':
  234. e->p[e->i++] = '\\';
  235. e->p[e->i++] = 'n';
  236. return 1;
  237. case '\r':
  238. e->p[e->i++] = '\\';
  239. e->p[e->i++] = 'r';
  240. return 1;
  241. case '\t':
  242. e->p[e->i++] = '\\';
  243. e->p[e->i++] = 't';
  244. return 1;
  245. case '/':
  246. if(e->escape_forward_slashes) {
  247. e->p[e->i++] = '\\';
  248. }
  249. e->p[e->i++] = '/';
  250. return 1;
  251. default:
  252. if(val < 0x20) {
  253. e->i += unicode_uescape(val, &(e->p[e->i]));
  254. return 1;
  255. }
  256. return 0;
  257. }
  258. }
  259. static int
  260. enc_atom(Encoder* e, ERL_NIF_TERM val)
  261. {
  262. static const int MAX_ESCAPE_LEN = 12;
  263. unsigned char data[512];
  264. size_t size;
  265. int i;
  266. if(!enif_get_atom(e->env, val, (char*)data, 512, ERL_NIF_LATIN1)) {
  267. return 0;
  268. }
  269. size = strlen((const char*)data);
  270. /* Reserve space for the first quotation mark and most of the output. */
  271. if(!enc_ensure(e, size + MAX_ESCAPE_LEN + 1)) {
  272. return 0;
  273. }
  274. e->p[e->i++] = '\"';
  275. i = 0;
  276. while(i < size) {
  277. int val = data[i];
  278. if(!enc_ensure(e, MAX_ESCAPE_LEN)) {
  279. return 0;
  280. }
  281. if(enc_special_character(e, val)) {
  282. i++;
  283. } else if(val < 0x80) {
  284. e->p[e->i++] = val;
  285. i++;
  286. } else if(val >= 0x80) {
  287. /* The atom encoding is latin1, so we don't need validation
  288. * as all latin1 characters are valid UTF-8 characters. */
  289. if (!e->uescape) {
  290. e->i += unicode_to_utf8(val, &e->p[e->i]);
  291. } else {
  292. e->i += unicode_uescape(val, &e->p[e->i]);
  293. }
  294. i++;
  295. }
  296. }
  297. if(!enc_ensure(e, 1)) {
  298. return 0;
  299. }
  300. e->p[e->i++] = '\"';
  301. e->count++;
  302. return 1;
  303. }
  304. static int
  305. enc_string(Encoder* e, ERL_NIF_TERM val)
  306. {
  307. static const int MAX_ESCAPE_LEN = 12;
  308. ErlNifBinary bin;
  309. unsigned char* data;
  310. size_t size;
  311. int ulen;
  312. int uval;
  313. int i;
  314. if(!enif_inspect_binary(e->env, val, &bin)) {
  315. return 0;
  316. }
  317. data = bin.data;
  318. size = bin.size;
  319. /* Reserve space for the first quotation mark and most of the output. */
  320. if(!enc_ensure(e, size + MAX_ESCAPE_LEN + 1)) {
  321. return 0;
  322. }
  323. e->p[e->i++] = '\"';
  324. i = 0;
  325. while(i < size) {
  326. if(!enc_ensure(e, MAX_ESCAPE_LEN)) {
  327. return 0;
  328. }
  329. if(enc_special_character(e, data[i])) {
  330. i++;
  331. } else if(data[i] < 0x80) {
  332. e->p[e->i++] = data[i++];
  333. } else if(data[i] >= 0x80) {
  334. ulen = utf8_validate(&(data[i]), size - i);
  335. if (ulen < 0) {
  336. return 0;
  337. } else if (e->uescape) {
  338. int esc_len;
  339. uval = utf8_to_unicode(&(data[i]), size-i);
  340. if(uval < 0) {
  341. return 0;
  342. }
  343. esc_len = unicode_uescape(uval, &(e->p[e->i]));
  344. if(esc_len < 0) {
  345. return 0;
  346. }
  347. e->i += esc_len;
  348. } else {
  349. memcpy(&e->p[e->i], &data[i], ulen);
  350. e->i += ulen;
  351. }
  352. i += ulen;
  353. }
  354. }
  355. if(!enc_ensure(e, 1)) {
  356. return 0;
  357. }
  358. e->p[e->i++] = '\"';
  359. e->count++;
  360. return 1;
  361. }
  362. static inline int
  363. enc_object_key(ErlNifEnv *env, Encoder* e, ERL_NIF_TERM val)
  364. {
  365. if(enif_is_atom(env, val)) {
  366. return enc_atom(e, val);
  367. }
  368. return enc_string(e, val);
  369. }
  370. // From https://www.slideshare.net/andreialexandrescu1/three-optimization-tips-for-c-15708507
  371. #define P01 10
  372. #define P02 100
  373. #define P03 1000
  374. #define P04 10000
  375. #define P05 100000
  376. #define P06 1000000
  377. #define P07 10000000
  378. #define P08 100000000
  379. #define P09 1000000000
  380. #define P10 10000000000
  381. #define P11 100000000000L
  382. #define P12 1000000000000L
  383. int
  384. digits10(ErlNifUInt64 v)
  385. {
  386. if (v < P01) return 1;
  387. if (v < P02) return 2;
  388. if (v < P03) return 3;
  389. if (v < P12) {
  390. if (v < P08) {
  391. if (v < P06) {
  392. if (v < P04) return 4;
  393. return 5 + (v >= P05);
  394. }
  395. return 7 + (v >= P07);
  396. }
  397. if (v < P10) {
  398. return 9 + (v >= P09);
  399. }
  400. return 11 + (v >= P11);
  401. }
  402. return 12 + digits10(v / P12);
  403. }
  404. unsigned int
  405. u64ToAsciiTable(unsigned char *dst, ErlNifUInt64 value)
  406. {
  407. static const char digits[201] =
  408. "0001020304050607080910111213141516171819"
  409. "2021222324252627282930313233343536373839"
  410. "4041424344454647484950515253545556575859"
  411. "6061626364656667686970717273747576777879"
  412. "8081828384858687888990919293949596979899";
  413. const int length = digits10(value);
  414. int next = length - 1;
  415. while (value >= 100) {
  416. const int i = (value % 100) * 2;
  417. value /= 100;
  418. dst[next] = digits[i + 1];
  419. dst[next - 1] = digits[i];
  420. next -= 2;
  421. }
  422. // Handle last 1-2 digits.
  423. if (value < 10) {
  424. dst[next] = '0' + (unsigned int) value;
  425. } else {
  426. const int i = (unsigned int) value * 2;
  427. dst[next] = digits[i + 1];
  428. dst[next - 1] = digits[i];
  429. }
  430. return length;
  431. }
  432. unsigned
  433. i64ToAsciiTable(unsigned char *dst, ErlNifSInt64 value)
  434. {
  435. if (value < 0) {
  436. *dst++ = '-';
  437. return 1 + u64ToAsciiTable(dst, -value);
  438. } else {
  439. return u64ToAsciiTable(dst, value);
  440. }
  441. }
  442. static inline int
  443. enc_long(Encoder* e, ErlNifSInt64 val)
  444. {
  445. if(!enc_ensure(e, 32)) {
  446. return 0;
  447. }
  448. e->i += i64ToAsciiTable(&(e->p[e->i]), val);
  449. e->count++;
  450. return 1;
  451. }
  452. static inline int
  453. enc_double(Encoder* e, double val)
  454. {
  455. unsigned char* start;
  456. size_t len;
  457. if(!enc_ensure(e, 32)) {
  458. return 0;
  459. }
  460. start = &(e->p[e->i]);
  461. if(!double_to_shortest(start, e->buffer.size, &len, val)) {
  462. return 0;
  463. }
  464. e->i += len;
  465. e->count++;
  466. return 1;
  467. }
  468. static inline int
  469. enc_char(Encoder* e, char c)
  470. {
  471. if(!enc_ensure(e, 1)) {
  472. return 0;
  473. }
  474. e->p[e->i++] = c;
  475. return 1;
  476. }
  477. static int
  478. enc_shift(Encoder* e) {
  479. int i;
  480. char* shift;
  481. assert(e->shiftcnt >= 0 && "Invalid shift count.");
  482. shift = shifts[MIN(e->shiftcnt, NUM_SHIFTS-1)];
  483. if(!enc_literal(e, shift + 1, *shift))
  484. return 0;
  485. // Finish the rest of this shift it's it bigger than
  486. // our largest predefined constant.
  487. for(i = NUM_SHIFTS - 1; i < e->shiftcnt; i++) {
  488. if(!enc_literal(e, " ", 2))
  489. return 0;
  490. }
  491. return 1;
  492. }
  493. static inline int
  494. enc_start_object(Encoder* e)
  495. {
  496. e->count++;
  497. e->shiftcnt++;
  498. if(!enc_char(e, '{'))
  499. return 0;
  500. MAYBE_PRETTY(e);
  501. return 1;
  502. }
  503. static inline int
  504. enc_end_object(Encoder* e)
  505. {
  506. e->shiftcnt--;
  507. MAYBE_PRETTY(e);
  508. return enc_char(e, '}');
  509. }
  510. static inline int
  511. enc_start_array(Encoder* e)
  512. {
  513. e->count++;
  514. e->shiftcnt++;
  515. if(!enc_char(e, '['))
  516. return 0;
  517. MAYBE_PRETTY(e);
  518. return 1;
  519. }
  520. static inline int
  521. enc_end_array(Encoder* e)
  522. {
  523. e->shiftcnt--;
  524. MAYBE_PRETTY(e);
  525. return enc_char(e, ']');
  526. }
  527. static inline int
  528. enc_colon(Encoder* e)
  529. {
  530. if(e->pretty)
  531. return enc_literal(e, " : ", 3);
  532. return enc_char(e, ':');
  533. }
  534. static inline int
  535. enc_comma(Encoder* e)
  536. {
  537. if(!enc_char(e, ','))
  538. return 0;
  539. MAYBE_PRETTY(e);
  540. return 1;
  541. }
  542. #if MAP_TYPE_PRESENT
  543. int
  544. enc_map_to_ejson(ErlNifEnv* env, ERL_NIF_TERM map, ERL_NIF_TERM* out)
  545. {
  546. ErlNifMapIterator iter;
  547. size_t size;
  548. ERL_NIF_TERM list;
  549. ERL_NIF_TERM tuple;
  550. ERL_NIF_TERM key;
  551. ERL_NIF_TERM val;
  552. if(!enif_get_map_size(env, map, &size)) {
  553. return 0;
  554. }
  555. list = enif_make_list(env, 0);
  556. if(size == 0) {
  557. *out = enif_make_tuple1(env, list);
  558. return 1;
  559. }
  560. if(!enif_map_iterator_create(env, map, &iter, ERL_NIF_MAP_ITERATOR_HEAD)) {
  561. return 0;
  562. }
  563. do {
  564. if(!enif_map_iterator_get_pair(env, &iter, &key, &val)) {
  565. enif_map_iterator_destroy(env, &iter);
  566. return 0;
  567. }
  568. tuple = enif_make_tuple2(env, key, val);
  569. list = enif_make_list_cell(env, tuple, list);
  570. } while(enif_map_iterator_next(env, &iter));
  571. enif_map_iterator_destroy(env, &iter);
  572. *out = enif_make_tuple1(env, list);
  573. return 1;
  574. }
  575. #endif
  576. ERL_NIF_TERM
  577. encode_init(ErlNifEnv* env, int argc, const ERL_NIF_TERM argv[])
  578. {
  579. jiffy_st* st = (jiffy_st*) enif_priv_data(env);
  580. Encoder* e;
  581. ERL_NIF_TERM opts;
  582. ERL_NIF_TERM val;
  583. ERL_NIF_TERM tmp_argv[3];
  584. if(argc != 2) {
  585. return enif_make_badarg(env);
  586. }
  587. e = enc_new(env);
  588. if(e == NULL) {
  589. return make_error(st, env, "internal_error");
  590. }
  591. tmp_argv[0] = enif_make_resource(env, e);
  592. tmp_argv[1] = enif_make_tuple1(env, argv[0]);
  593. tmp_argv[2] = enif_make_list(env, 0);
  594. enif_release_resource(e);
  595. opts = argv[1];
  596. if(!enif_is_list(env, opts)) {
  597. return enif_make_badarg(env);
  598. }
  599. while(enif_get_list_cell(env, opts, &val, &opts)) {
  600. if(enif_is_identical(val, e->atoms->atom_uescape)) {
  601. e->uescape = 1;
  602. } else if(enif_is_identical(val, e->atoms->atom_pretty)) {
  603. e->pretty = 1;
  604. } else if(enif_is_identical(val, e->atoms->atom_escape_forward_slashes)) {
  605. e->escape_forward_slashes = 1;
  606. } else if(enif_is_identical(val, e->atoms->atom_use_nil)) {
  607. e->use_nil = 1;
  608. } else if(enif_is_identical(val, e->atoms->atom_force_utf8)) {
  609. // Ignore, handled in Erlang
  610. } else if(get_bytes_per_iter(env, val, &(e->bytes_per_red))) {
  611. continue;
  612. } else if(get_bytes_per_red(env, val, &(e->bytes_per_red))) {
  613. continue;
  614. } else {
  615. return enif_make_badarg(env);
  616. }
  617. }
  618. return encode_iter(env, 3, tmp_argv);
  619. }
  620. ERL_NIF_TERM
  621. encode_iter(ErlNifEnv* env, int argc, const ERL_NIF_TERM argv[])
  622. {
  623. TermStack stack;
  624. Encoder* e;
  625. jiffy_st* st = (jiffy_st*) enif_priv_data(env);
  626. ERL_NIF_TERM ret = 0;
  627. ERL_NIF_TERM curr;
  628. ERL_NIF_TERM item;
  629. const ERL_NIF_TERM* tuple;
  630. int arity;
  631. ErlNifSInt64 lval;
  632. double dval;
  633. size_t start;
  634. size_t bytes_processed = 0;
  635. if(!enif_get_resource(env, argv[0], st->res_enc, (void**) &e)) {
  636. return enif_make_badarg(env);
  637. }
  638. if(!enc_init(e, env)) {
  639. return enif_make_badarg(env);
  640. }
  641. if(!termstack_restore(env, argv[1], &stack)) {
  642. return enif_make_badarg(env);
  643. }
  644. e->iolist = argv[2];
  645. start = e->iosize + e->i;
  646. while(!termstack_is_empty(&stack)) {
  647. size_t bytes_processed = (e->iosize + e->i) - start;
  648. if(should_yield(env, bytes_processed, e->bytes_per_red)) {
  649. ERL_NIF_TERM tmp_argv[3];
  650. assert(enif_is_list(env, e->iolist));
  651. tmp_argv[0] = argv[0];
  652. tmp_argv[1] = termstack_save(env, &stack);
  653. tmp_argv[2] = e->iolist;
  654. termstack_destroy(&stack);
  655. bump_used_reds(env, bytes_processed, e->bytes_per_red);
  656. return enif_schedule_nif(env,
  657. "nif_encode_iter",
  658. 0,
  659. encode_iter,
  660. 3,
  661. tmp_argv);
  662. }
  663. curr = termstack_pop(&stack);
  664. if(enif_is_atom(env, curr)) {
  665. if(enif_is_identical(curr, e->atoms->ref_object)) {
  666. curr = termstack_pop(&stack);
  667. if(!enif_get_list_cell(env, curr, &item, &curr)) {
  668. if(!enc_end_object(e)) {
  669. ret = enc_error(e, "internal_error");
  670. goto done;
  671. }
  672. continue;
  673. }
  674. if(!enif_get_tuple(env, item, &arity, &tuple)) {
  675. ret = enc_obj_error(e, "invalid_object_member", item);
  676. goto done;
  677. }
  678. if(arity != 2) {
  679. ret = enc_obj_error(e, "invalid_object_member_arity", item);
  680. goto done;
  681. }
  682. if(!enc_comma(e)) {
  683. ret = enc_error(e, "internal_error");
  684. goto done;
  685. }
  686. if(!enc_object_key(env, e, tuple[0])) {
  687. ret = enc_obj_error(e, "invalid_object_member_key", tuple[0]);
  688. goto done;
  689. }
  690. if(!enc_colon(e)) {
  691. ret = enc_error(e, "internal_error");
  692. goto done;
  693. }
  694. termstack_push(&stack, curr);
  695. termstack_push(&stack, e->atoms->ref_object);
  696. termstack_push(&stack, tuple[1]);
  697. } else if(enif_is_identical(curr, e->atoms->ref_array)) {
  698. curr = termstack_pop(&stack);
  699. if(!enif_get_list_cell(env, curr, &item, &curr)) {
  700. if(!enc_end_array(e)) {
  701. ret = enc_error(e, "internal_error");
  702. goto done;
  703. }
  704. continue;
  705. }
  706. if(!enc_comma(e)) {
  707. ret = enc_error(e, "internal_error");
  708. goto done;
  709. }
  710. termstack_push(&stack, curr);
  711. termstack_push(&stack, e->atoms->ref_array);
  712. termstack_push(&stack, item);
  713. } else if(enif_is_identical(curr, e->atoms->atom_null)) {
  714. if(!enc_literal(e, "null", 4)) {
  715. ret = enc_error(e, "null");
  716. goto done;
  717. }
  718. } else if(e->use_nil && enif_is_identical(curr, e->atoms->atom_nil)) {
  719. if(!enc_literal(e, "null", 4)) {
  720. ret = enc_error(e, "null");
  721. goto done;
  722. }
  723. } else if(enif_is_identical(curr, e->atoms->atom_true)) {
  724. if(!enc_literal(e, "true", 4)) {
  725. ret = enc_error(e, "true");
  726. goto done;
  727. }
  728. } else if(enif_is_identical(curr, e->atoms->atom_false)) {
  729. if(!enc_literal(e, "false", 5)) {
  730. ret = enc_error(e, "false");
  731. goto done;
  732. }
  733. } else if(!enc_atom(e, curr)) {
  734. ret = enc_obj_error(e, "invalid_string", curr);
  735. goto done;
  736. }
  737. } else if(enif_is_binary(env, curr)) {
  738. if(!enc_string(e, curr)) {
  739. ret = enc_obj_error(e, "invalid_string", curr);
  740. goto done;
  741. }
  742. } else if(enif_get_int64(env, curr, &lval)) {
  743. if(!enc_long(e, lval)) {
  744. ret = enc_error(e, "internal_error");
  745. goto done;
  746. }
  747. } else if(enif_get_double(env, curr, &dval)) {
  748. if(!enc_double(e, dval)) {
  749. ret = enc_error(e, "internal_error");
  750. goto done;
  751. }
  752. } else if(enif_get_tuple(env, curr, &arity, &tuple)) {
  753. if(arity != 1) {
  754. ret = enc_obj_error(e, "invalid_ejson", curr);
  755. goto done;
  756. }
  757. if(!enif_is_list(env, tuple[0])) {
  758. ret = enc_obj_error(e, "invalid_object", curr);
  759. goto done;
  760. }
  761. if(!enc_start_object(e)) {
  762. ret = enc_error(e, "internal_error");
  763. goto done;
  764. }
  765. if(!enif_get_list_cell(env, tuple[0], &item, &curr)) {
  766. if(!enc_end_object(e)) {
  767. ret = enc_error(e, "internal_error");
  768. goto done;
  769. }
  770. continue;
  771. }
  772. if(!enif_get_tuple(env, item, &arity, &tuple)) {
  773. ret = enc_obj_error(e, "invalid_object_member", item);
  774. goto done;
  775. }
  776. if(arity != 2) {
  777. ret = enc_obj_error(e, "invalid_object_member_arity", item);
  778. goto done;
  779. }
  780. if(!enc_object_key(env, e, tuple[0])) {
  781. ret = enc_obj_error(e, "invalid_object_member_key", tuple[0]);
  782. goto done;
  783. }
  784. if(!enc_colon(e)) {
  785. ret = enc_error(e, "internal_error");
  786. goto done;
  787. }
  788. termstack_push(&stack, curr);
  789. termstack_push(&stack, e->atoms->ref_object);
  790. termstack_push(&stack, tuple[1]);
  791. #if MAP_TYPE_PRESENT
  792. } else if(enif_is_map(env, curr)) {
  793. if(!enc_map_to_ejson(env, curr, &curr)) {
  794. ret = enc_error(e, "internal_error");
  795. goto done;
  796. }
  797. termstack_push(&stack, curr);
  798. #endif
  799. } else if(enif_is_list(env, curr)) {
  800. if(!enc_start_array(e)) {
  801. ret = enc_error(e, "internal_error");
  802. goto done;
  803. }
  804. if(!enif_get_list_cell(env, curr, &item, &curr)) {
  805. if(!enc_end_array(e)) {
  806. ret = enc_error(e, "internal_error");
  807. goto done;
  808. }
  809. continue;
  810. }
  811. termstack_push(&stack, curr);
  812. termstack_push(&stack, e->atoms->ref_array);
  813. termstack_push(&stack, item);
  814. } else if(enif_is_number(env, curr)) {
  815. /* This is a bignum and we need to handle it up in Erlang code as
  816. * the NIF API doesn't support them yet.
  817. *
  818. * Flush our current output and mark ourselves as needing a fixup
  819. * after we return. */
  820. if(!enc_flush(e)) {
  821. ret = enc_error(e, "internal_error");
  822. goto done;
  823. }
  824. e->iolist = enif_make_list_cell(e->env, curr, e->iolist);
  825. e->partial_output = 1;
  826. } else {
  827. ret = enc_obj_error(e, "invalid_ejson", curr);
  828. goto done;
  829. }
  830. }
  831. if(!enc_flush(e)) {
  832. ret = enc_error(e, "internal_error");
  833. goto done;
  834. }
  835. assert(enif_is_list(env, e->iolist));
  836. if(e->partial_output) {
  837. ret = enif_make_tuple2(env, e->atoms->atom_partial, e->iolist);
  838. } else {
  839. ret = e->iolist;
  840. }
  841. done:
  842. bump_used_reds(env, bytes_processed, e->bytes_per_red);
  843. termstack_destroy(&stack);
  844. return ret;
  845. }