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/cvs/JSON-XS/XS.xs
Revision: 1.116
Committed: Thu May 23 09:31:32 2013 UTC (10 years, 11 months ago) by root
Branch: MAIN
CVS Tags: rel-2_34
Changes since 1.115: +1 -1 lines
Log Message:
2.34

File Contents

# Content
1 #include "EXTERN.h"
2 #include "perl.h"
3 #include "XSUB.h"
4
5 #include <assert.h>
6 #include <string.h>
7 #include <stdlib.h>
8 #include <stdio.h>
9 #include <limits.h>
10 #include <float.h>
11
12 #if defined(__BORLANDC__) || defined(_MSC_VER)
13 # define snprintf _snprintf // C compilers have this in stdio.h
14 #endif
15
16 // some old perls do not have this, try to make it work, no
17 // guarantees, though. if it breaks, you get to keep the pieces.
18 #ifndef UTF8_MAXBYTES
19 # define UTF8_MAXBYTES 13
20 #endif
21
22 // three extra for rounding, sign, and end of string
23 #define IVUV_MAXCHARS (sizeof (UV) * CHAR_BIT * 28 / 93 + 3)
24
25 #define F_ASCII 0x00000001UL
26 #define F_LATIN1 0x00000002UL
27 #define F_UTF8 0x00000004UL
28 #define F_INDENT 0x00000008UL
29 #define F_CANONICAL 0x00000010UL
30 #define F_SPACE_BEFORE 0x00000020UL
31 #define F_SPACE_AFTER 0x00000040UL
32 #define F_ALLOW_NONREF 0x00000100UL
33 #define F_SHRINK 0x00000200UL
34 #define F_ALLOW_BLESSED 0x00000400UL
35 #define F_CONV_BLESSED 0x00000800UL
36 #define F_RELAXED 0x00001000UL
37 #define F_ALLOW_UNKNOWN 0x00002000UL
38 #define F_HOOK 0x00080000UL // some hooks exist, so slow-path processing
39
40 #define F_PRETTY F_INDENT | F_SPACE_BEFORE | F_SPACE_AFTER
41
42 #define INIT_SIZE 32 // initial scalar size to be allocated
43 #define INDENT_STEP 3 // spaces per indentation level
44
45 #define SHORT_STRING_LEN 16384 // special-case strings of up to this size
46
47 #define DECODE_WANTS_OCTETS(json) ((json)->flags & F_UTF8)
48
49 #define SB do {
50 #define SE } while (0)
51
52 #if __GNUC__ >= 3
53 # define expect(expr,value) __builtin_expect ((expr), (value))
54 # define INLINE static inline
55 #else
56 # define expect(expr,value) (expr)
57 # define INLINE static
58 #endif
59
60 #define expect_false(expr) expect ((expr) != 0, 0)
61 #define expect_true(expr) expect ((expr) != 0, 1)
62
63 #define IN_RANGE_INC(type,val,beg,end) \
64 ((unsigned type)((unsigned type)(val) - (unsigned type)(beg)) \
65 <= (unsigned type)((unsigned type)(end) - (unsigned type)(beg)))
66
67 #define ERR_NESTING_EXCEEDED "json text or perl structure exceeds maximum nesting level (max_depth set too low?)"
68
69 #ifdef USE_ITHREADS
70 # define JSON_SLOW 1
71 # define JSON_STASH (json_stash ? json_stash : gv_stashpv ("JSON::XS", 1))
72 #else
73 # define JSON_SLOW 0
74 # define JSON_STASH json_stash
75 #endif
76
77 // the amount of HEs to allocate on the stack, when sorting keys
78 #define STACK_HES 64
79
80 static HV *json_stash, *json_boolean_stash; // JSON::XS::
81 static SV *json_true, *json_false;
82
83 enum {
84 INCR_M_WS = 0, // initial whitespace skipping, must be 0
85 INCR_M_STR, // inside string
86 INCR_M_BS, // inside backslash
87 INCR_M_C0, // inside comment in initial whitespace sequence
88 INCR_M_C1, // inside comment in other places
89 INCR_M_JSON // outside anything, count nesting
90 };
91
92 #define INCR_DONE(json) ((json)->incr_nest <= 0 && (json)->incr_mode == INCR_M_JSON)
93
94 typedef struct {
95 U32 flags;
96 U32 max_depth;
97 STRLEN max_size;
98
99 SV *cb_object;
100 HV *cb_sk_object;
101
102 // for the incremental parser
103 SV *incr_text; // the source text so far
104 STRLEN incr_pos; // the current offset into the text
105 int incr_nest; // {[]}-nesting level
106 unsigned char incr_mode;
107 } JSON;
108
109 INLINE void
110 json_init (JSON *json)
111 {
112 Zero (json, 1, JSON);
113 json->max_depth = 512;
114 }
115
116 /////////////////////////////////////////////////////////////////////////////
117 // utility functions
118
119 INLINE SV *
120 get_bool (const char *name)
121 {
122 SV *sv = get_sv (name, 1);
123
124 SvREADONLY_on (sv);
125 SvREADONLY_on (SvRV (sv));
126
127 return sv;
128 }
129
130 INLINE void
131 shrink (SV *sv)
132 {
133 sv_utf8_downgrade (sv, 1);
134
135 if (SvLEN (sv) > SvCUR (sv) + 1)
136 {
137 #ifdef SvPV_shrink_to_cur
138 SvPV_shrink_to_cur (sv);
139 #elif defined (SvPV_renew)
140 SvPV_renew (sv, SvCUR (sv) + 1);
141 #endif
142 }
143 }
144
145 // decode an utf-8 character and return it, or (UV)-1 in
146 // case of an error.
147 // we special-case "safe" characters from U+80 .. U+7FF,
148 // but use the very good perl function to parse anything else.
149 // note that we never call this function for a ascii codepoints
150 INLINE UV
151 decode_utf8 (unsigned char *s, STRLEN len, STRLEN *clen)
152 {
153 if (expect_true (len >= 2
154 && IN_RANGE_INC (char, s[0], 0xc2, 0xdf)
155 && IN_RANGE_INC (char, s[1], 0x80, 0xbf)))
156 {
157 *clen = 2;
158 return ((s[0] & 0x1f) << 6) | (s[1] & 0x3f);
159 }
160 else
161 return utf8n_to_uvuni (s, len, clen, UTF8_CHECK_ONLY);
162 }
163
164 // likewise for encoding, also never called for ascii codepoints
165 // this function takes advantage of this fact, although current gccs
166 // seem to optimise the check for >= 0x80 away anyways
167 INLINE unsigned char *
168 encode_utf8 (unsigned char *s, UV ch)
169 {
170 if (expect_false (ch < 0x000080))
171 *s++ = ch;
172 else if (expect_true (ch < 0x000800))
173 *s++ = 0xc0 | ( ch >> 6),
174 *s++ = 0x80 | ( ch & 0x3f);
175 else if ( ch < 0x010000)
176 *s++ = 0xe0 | ( ch >> 12),
177 *s++ = 0x80 | ((ch >> 6) & 0x3f),
178 *s++ = 0x80 | ( ch & 0x3f);
179 else if ( ch < 0x110000)
180 *s++ = 0xf0 | ( ch >> 18),
181 *s++ = 0x80 | ((ch >> 12) & 0x3f),
182 *s++ = 0x80 | ((ch >> 6) & 0x3f),
183 *s++ = 0x80 | ( ch & 0x3f);
184
185 return s;
186 }
187
188 // convert offset pointer to character index, sv must be string
189 static STRLEN
190 ptr_to_index (SV *sv, char *offset)
191 {
192 return SvUTF8 (sv)
193 ? utf8_distance (offset, SvPVX (sv))
194 : offset - SvPVX (sv);
195 }
196
197 /////////////////////////////////////////////////////////////////////////////
198 // fp hell
199
200 // scan a group of digits, and a trailing exponent
201 static void
202 json_atof_scan1 (const char *s, NV *accum, int *expo, int postdp, int maxdepth)
203 {
204 UV uaccum = 0;
205 int eaccum = 0;
206
207 // if we recurse too deep, skip all remaining digits
208 // to avoid a stack overflow attack
209 if (expect_false (--maxdepth <= 0))
210 while (((U8)*s - '0') < 10)
211 ++s;
212
213 for (;;)
214 {
215 U8 dig = (U8)*s - '0';
216
217 if (expect_false (dig >= 10))
218 {
219 if (dig == (U8)((U8)'.' - (U8)'0'))
220 {
221 ++s;
222 json_atof_scan1 (s, accum, expo, 1, maxdepth);
223 }
224 else if ((dig | ' ') == 'e' - '0')
225 {
226 int exp2 = 0;
227 int neg = 0;
228
229 ++s;
230
231 if (*s == '-')
232 {
233 ++s;
234 neg = 1;
235 }
236 else if (*s == '+')
237 ++s;
238
239 while ((dig = (U8)*s - '0') < 10)
240 exp2 = exp2 * 10 + *s++ - '0';
241
242 *expo += neg ? -exp2 : exp2;
243 }
244
245 break;
246 }
247
248 ++s;
249
250 uaccum = uaccum * 10 + dig;
251 ++eaccum;
252
253 // if we have too many digits, then recurse for more
254 // we actually do this for rather few digits
255 if (uaccum >= (UV_MAX - 9) / 10)
256 {
257 if (postdp) *expo -= eaccum;
258 json_atof_scan1 (s, accum, expo, postdp, maxdepth);
259 if (postdp) *expo += eaccum;
260
261 break;
262 }
263 }
264
265 // this relies greatly on the quality of the pow ()
266 // implementation of the platform, but a good
267 // implementation is hard to beat.
268 // (IEEE 754 conformant ones are required to be exact)
269 if (postdp) *expo -= eaccum;
270 *accum += uaccum * Perl_pow (10., *expo);
271 *expo += eaccum;
272 }
273
274 static NV
275 json_atof (const char *s)
276 {
277 NV accum = 0.;
278 int expo = 0;
279 int neg = 0;
280
281 if (*s == '-')
282 {
283 ++s;
284 neg = 1;
285 }
286
287 // a recursion depth of ten gives us >>500 bits
288 json_atof_scan1 (s, &accum, &expo, 0, 10);
289
290 return neg ? -accum : accum;
291 }
292 /////////////////////////////////////////////////////////////////////////////
293 // encoder
294
295 // structure used for encoding JSON
296 typedef struct
297 {
298 char *cur; // SvPVX (sv) + current output position
299 char *end; // SvEND (sv)
300 SV *sv; // result scalar
301 JSON json;
302 U32 indent; // indentation level
303 UV limit; // escape character values >= this value when encoding
304 } enc_t;
305
306 INLINE void
307 need (enc_t *enc, STRLEN len)
308 {
309 if (expect_false (enc->cur + len >= enc->end))
310 {
311 STRLEN cur = enc->cur - (char *)SvPVX (enc->sv);
312 SvGROW (enc->sv, cur + (len < (cur >> 2) ? cur >> 2 : len) + 1);
313 enc->cur = SvPVX (enc->sv) + cur;
314 enc->end = SvPVX (enc->sv) + SvLEN (enc->sv) - 1;
315 }
316 }
317
318 INLINE void
319 encode_ch (enc_t *enc, char ch)
320 {
321 need (enc, 1);
322 *enc->cur++ = ch;
323 }
324
325 static void
326 encode_str (enc_t *enc, char *str, STRLEN len, int is_utf8)
327 {
328 char *end = str + len;
329
330 need (enc, len);
331
332 while (str < end)
333 {
334 unsigned char ch = *(unsigned char *)str;
335
336 if (expect_true (ch >= 0x20 && ch < 0x80)) // most common case
337 {
338 if (expect_false (ch == '"')) // but with slow exceptions
339 {
340 need (enc, len += 1);
341 *enc->cur++ = '\\';
342 *enc->cur++ = '"';
343 }
344 else if (expect_false (ch == '\\'))
345 {
346 need (enc, len += 1);
347 *enc->cur++ = '\\';
348 *enc->cur++ = '\\';
349 }
350 else
351 *enc->cur++ = ch;
352
353 ++str;
354 }
355 else
356 {
357 switch (ch)
358 {
359 case '\010': need (enc, len += 1); *enc->cur++ = '\\'; *enc->cur++ = 'b'; ++str; break;
360 case '\011': need (enc, len += 1); *enc->cur++ = '\\'; *enc->cur++ = 't'; ++str; break;
361 case '\012': need (enc, len += 1); *enc->cur++ = '\\'; *enc->cur++ = 'n'; ++str; break;
362 case '\014': need (enc, len += 1); *enc->cur++ = '\\'; *enc->cur++ = 'f'; ++str; break;
363 case '\015': need (enc, len += 1); *enc->cur++ = '\\'; *enc->cur++ = 'r'; ++str; break;
364
365 default:
366 {
367 STRLEN clen;
368 UV uch;
369
370 if (is_utf8)
371 {
372 uch = decode_utf8 (str, end - str, &clen);
373 if (clen == (STRLEN)-1)
374 croak ("malformed or illegal unicode character in string [%.11s], cannot convert to JSON", str);
375 }
376 else
377 {
378 uch = ch;
379 clen = 1;
380 }
381
382 if (uch < 0x80/*0x20*/ || uch >= enc->limit)
383 {
384 if (uch >= 0x10000UL)
385 {
386 if (uch >= 0x110000UL)
387 croak ("out of range codepoint (0x%lx) encountered, unrepresentable in JSON", (unsigned long)uch);
388
389 need (enc, len += 11);
390 sprintf (enc->cur, "\\u%04x\\u%04x",
391 (int)((uch - 0x10000) / 0x400 + 0xD800),
392 (int)((uch - 0x10000) % 0x400 + 0xDC00));
393 enc->cur += 12;
394 }
395 else
396 {
397 need (enc, len += 5);
398 *enc->cur++ = '\\';
399 *enc->cur++ = 'u';
400 *enc->cur++ = PL_hexdigit [ uch >> 12 ];
401 *enc->cur++ = PL_hexdigit [(uch >> 8) & 15];
402 *enc->cur++ = PL_hexdigit [(uch >> 4) & 15];
403 *enc->cur++ = PL_hexdigit [(uch >> 0) & 15];
404 }
405
406 str += clen;
407 }
408 else if (enc->json.flags & F_LATIN1)
409 {
410 *enc->cur++ = uch;
411 str += clen;
412 }
413 else if (is_utf8)
414 {
415 need (enc, len += clen);
416 do
417 {
418 *enc->cur++ = *str++;
419 }
420 while (--clen);
421 }
422 else
423 {
424 need (enc, len += UTF8_MAXBYTES - 1); // never more than 11 bytes needed
425 enc->cur = encode_utf8 (enc->cur, uch);
426 ++str;
427 }
428 }
429 }
430 }
431
432 --len;
433 }
434 }
435
436 INLINE void
437 encode_indent (enc_t *enc)
438 {
439 if (enc->json.flags & F_INDENT)
440 {
441 int spaces = enc->indent * INDENT_STEP;
442
443 need (enc, spaces);
444 memset (enc->cur, ' ', spaces);
445 enc->cur += spaces;
446 }
447 }
448
449 INLINE void
450 encode_space (enc_t *enc)
451 {
452 need (enc, 1);
453 encode_ch (enc, ' ');
454 }
455
456 INLINE void
457 encode_nl (enc_t *enc)
458 {
459 if (enc->json.flags & F_INDENT)
460 {
461 need (enc, 1);
462 encode_ch (enc, '\n');
463 }
464 }
465
466 INLINE void
467 encode_comma (enc_t *enc)
468 {
469 encode_ch (enc, ',');
470
471 if (enc->json.flags & F_INDENT)
472 encode_nl (enc);
473 else if (enc->json.flags & F_SPACE_AFTER)
474 encode_space (enc);
475 }
476
477 static void encode_sv (enc_t *enc, SV *sv);
478
479 static void
480 encode_av (enc_t *enc, AV *av)
481 {
482 int i, len = av_len (av);
483
484 if (enc->indent >= enc->json.max_depth)
485 croak (ERR_NESTING_EXCEEDED);
486
487 encode_ch (enc, '[');
488
489 if (len >= 0)
490 {
491 encode_nl (enc); ++enc->indent;
492
493 for (i = 0; i <= len; ++i)
494 {
495 SV **svp = av_fetch (av, i, 0);
496
497 encode_indent (enc);
498
499 if (svp)
500 encode_sv (enc, *svp);
501 else
502 encode_str (enc, "null", 4, 0);
503
504 if (i < len)
505 encode_comma (enc);
506 }
507
508 encode_nl (enc); --enc->indent; encode_indent (enc);
509 }
510
511 encode_ch (enc, ']');
512 }
513
514 static void
515 encode_hk (enc_t *enc, HE *he)
516 {
517 encode_ch (enc, '"');
518
519 if (HeKLEN (he) == HEf_SVKEY)
520 {
521 SV *sv = HeSVKEY (he);
522 STRLEN len;
523 char *str;
524
525 SvGETMAGIC (sv);
526 str = SvPV (sv, len);
527
528 encode_str (enc, str, len, SvUTF8 (sv));
529 }
530 else
531 encode_str (enc, HeKEY (he), HeKLEN (he), HeKUTF8 (he));
532
533 encode_ch (enc, '"');
534
535 if (enc->json.flags & F_SPACE_BEFORE) encode_space (enc);
536 encode_ch (enc, ':');
537 if (enc->json.flags & F_SPACE_AFTER ) encode_space (enc);
538 }
539
540 // compare hash entries, used when all keys are bytestrings
541 static int
542 he_cmp_fast (const void *a_, const void *b_)
543 {
544 int cmp;
545
546 HE *a = *(HE **)a_;
547 HE *b = *(HE **)b_;
548
549 STRLEN la = HeKLEN (a);
550 STRLEN lb = HeKLEN (b);
551
552 if (!(cmp = memcmp (HeKEY (b), HeKEY (a), lb < la ? lb : la)))
553 cmp = lb - la;
554
555 return cmp;
556 }
557
558 // compare hash entries, used when some keys are sv's or utf-x
559 static int
560 he_cmp_slow (const void *a, const void *b)
561 {
562 return sv_cmp (HeSVKEY_force (*(HE **)b), HeSVKEY_force (*(HE **)a));
563 }
564
565 static void
566 encode_hv (enc_t *enc, HV *hv)
567 {
568 HE *he;
569
570 if (enc->indent >= enc->json.max_depth)
571 croak (ERR_NESTING_EXCEEDED);
572
573 encode_ch (enc, '{');
574
575 // for canonical output we have to sort by keys first
576 // actually, this is mostly due to the stupid so-called
577 // security workaround added somewhere in 5.8.x
578 // that randomises hash orderings
579 if (enc->json.flags & F_CANONICAL && !SvRMAGICAL (hv))
580 {
581 int count = hv_iterinit (hv);
582
583 if (SvMAGICAL (hv))
584 {
585 // need to count by iterating. could improve by dynamically building the vector below
586 // but I don't care for the speed of this special case.
587 // note also that we will run into undefined behaviour when the two iterations
588 // do not result in the same count, something I might care for in some later release.
589
590 count = 0;
591 while (hv_iternext (hv))
592 ++count;
593
594 hv_iterinit (hv);
595 }
596
597 if (count)
598 {
599 int i, fast = 1;
600 HE *hes_stack [STACK_HES];
601 HE **hes = hes_stack;
602
603 // allocate larger arrays on the heap
604 if (count > STACK_HES)
605 {
606 SV *sv = sv_2mortal (NEWSV (0, count * sizeof (*hes)));
607 hes = (HE **)SvPVX (sv);
608 }
609
610 i = 0;
611 while ((he = hv_iternext (hv)))
612 {
613 hes [i++] = he;
614 if (HeKLEN (he) < 0 || HeKUTF8 (he))
615 fast = 0;
616 }
617
618 assert (i == count);
619
620 if (fast)
621 qsort (hes, count, sizeof (HE *), he_cmp_fast);
622 else
623 {
624 // hack to forcefully disable "use bytes"
625 COP cop = *PL_curcop;
626 cop.op_private = 0;
627
628 ENTER;
629 SAVETMPS;
630
631 SAVEVPTR (PL_curcop);
632 PL_curcop = &cop;
633
634 qsort (hes, count, sizeof (HE *), he_cmp_slow);
635
636 FREETMPS;
637 LEAVE;
638 }
639
640 encode_nl (enc); ++enc->indent;
641
642 while (count--)
643 {
644 encode_indent (enc);
645 he = hes [count];
646 encode_hk (enc, he);
647 encode_sv (enc, expect_false (SvMAGICAL (hv)) ? hv_iterval (hv, he) : HeVAL (he));
648
649 if (count)
650 encode_comma (enc);
651 }
652
653 encode_nl (enc); --enc->indent; encode_indent (enc);
654 }
655 }
656 else
657 {
658 if (hv_iterinit (hv) || SvMAGICAL (hv))
659 if ((he = hv_iternext (hv)))
660 {
661 encode_nl (enc); ++enc->indent;
662
663 for (;;)
664 {
665 encode_indent (enc);
666 encode_hk (enc, he);
667 encode_sv (enc, expect_false (SvMAGICAL (hv)) ? hv_iterval (hv, he) : HeVAL (he));
668
669 if (!(he = hv_iternext (hv)))
670 break;
671
672 encode_comma (enc);
673 }
674
675 encode_nl (enc); --enc->indent; encode_indent (enc);
676 }
677 }
678
679 encode_ch (enc, '}');
680 }
681
682 // encode objects, arrays and special \0=false and \1=true values.
683 static void
684 encode_rv (enc_t *enc, SV *sv)
685 {
686 svtype svt;
687
688 SvGETMAGIC (sv);
689 svt = SvTYPE (sv);
690
691 if (expect_false (SvOBJECT (sv)))
692 {
693 HV *stash = !JSON_SLOW || json_boolean_stash
694 ? json_boolean_stash
695 : gv_stashpv ("JSON::XS::Boolean", 1);
696
697 if (SvSTASH (sv) == stash)
698 {
699 if (SvIV (sv))
700 encode_str (enc, "true", 4, 0);
701 else
702 encode_str (enc, "false", 5, 0);
703 }
704 else
705 {
706 #if 0
707 if (0 && sv_derived_from (rv, "JSON::Literal"))
708 {
709 // not yet
710 }
711 #endif
712 if (enc->json.flags & F_CONV_BLESSED)
713 {
714 // we re-bless the reference to get overload and other niceties right
715 GV *to_json = gv_fetchmethod_autoload (SvSTASH (sv), "TO_JSON", 0);
716
717 if (to_json)
718 {
719 dSP;
720
721 ENTER; SAVETMPS; PUSHMARK (SP);
722 XPUSHs (sv_bless (sv_2mortal (newRV_inc (sv)), SvSTASH (sv)));
723
724 // calling with G_SCALAR ensures that we always get a 1 return value
725 PUTBACK;
726 call_sv ((SV *)GvCV (to_json), G_SCALAR);
727 SPAGAIN;
728
729 // catch this surprisingly common error
730 if (SvROK (TOPs) && SvRV (TOPs) == sv)
731 croak ("%s::TO_JSON method returned same object as was passed instead of a new one", HvNAME (SvSTASH (sv)));
732
733 sv = POPs;
734 PUTBACK;
735
736 encode_sv (enc, sv);
737
738 FREETMPS; LEAVE;
739 }
740 else if (enc->json.flags & F_ALLOW_BLESSED)
741 encode_str (enc, "null", 4, 0);
742 else
743 croak ("encountered object '%s', but neither allow_blessed enabled nor TO_JSON method available on it",
744 SvPV_nolen (sv_2mortal (newRV_inc (sv))));
745 }
746 else if (enc->json.flags & F_ALLOW_BLESSED)
747 encode_str (enc, "null", 4, 0);
748 else
749 croak ("encountered object '%s', but neither allow_blessed nor convert_blessed settings are enabled",
750 SvPV_nolen (sv_2mortal (newRV_inc (sv))));
751 }
752 }
753 else if (svt == SVt_PVHV)
754 encode_hv (enc, (HV *)sv);
755 else if (svt == SVt_PVAV)
756 encode_av (enc, (AV *)sv);
757 else if (svt < SVt_PVAV)
758 {
759 STRLEN len = 0;
760 char *pv = svt ? SvPV (sv, len) : 0;
761
762 if (len == 1 && *pv == '1')
763 encode_str (enc, "true", 4, 0);
764 else if (len == 1 && *pv == '0')
765 encode_str (enc, "false", 5, 0);
766 else if (enc->json.flags & F_ALLOW_UNKNOWN)
767 encode_str (enc, "null", 4, 0);
768 else
769 croak ("cannot encode reference to scalar '%s' unless the scalar is 0 or 1",
770 SvPV_nolen (sv_2mortal (newRV_inc (sv))));
771 }
772 else if (enc->json.flags & F_ALLOW_UNKNOWN)
773 encode_str (enc, "null", 4, 0);
774 else
775 croak ("encountered %s, but JSON can only represent references to arrays or hashes",
776 SvPV_nolen (sv_2mortal (newRV_inc (sv))));
777 }
778
779 static void
780 encode_sv (enc_t *enc, SV *sv)
781 {
782 SvGETMAGIC (sv);
783
784 if (SvPOKp (sv))
785 {
786 STRLEN len;
787 char *str = SvPV (sv, len);
788 encode_ch (enc, '"');
789 encode_str (enc, str, len, SvUTF8 (sv));
790 encode_ch (enc, '"');
791 }
792 else if (SvNOKp (sv))
793 {
794 // trust that perl will do the right thing w.r.t. JSON syntax.
795 need (enc, NV_DIG + 32);
796 Gconvert (SvNVX (sv), NV_DIG, 0, enc->cur);
797 enc->cur += strlen (enc->cur);
798 }
799 else if (SvIOKp (sv))
800 {
801 // we assume we can always read an IV as a UV and vice versa
802 // we assume two's complement
803 // we assume no aliasing issues in the union
804 if (SvIsUV (sv) ? SvUVX (sv) <= 59000
805 : SvIVX (sv) <= 59000 && SvIVX (sv) >= -59000)
806 {
807 // optimise the "small number case"
808 // code will likely be branchless and use only a single multiplication
809 // works for numbers up to 59074
810 I32 i = SvIVX (sv);
811 U32 u;
812 char digit, nz = 0;
813
814 need (enc, 6);
815
816 *enc->cur = '-'; enc->cur += i < 0 ? 1 : 0;
817 u = i < 0 ? -i : i;
818
819 // convert to 4.28 fixed-point representation
820 u = u * ((0xfffffff + 10000) / 10000); // 10**5, 5 fractional digits
821
822 // now output digit by digit, each time masking out the integer part
823 // and multiplying by 5 while moving the decimal point one to the right,
824 // resulting in a net multiplication by 10.
825 // we always write the digit to memory but conditionally increment
826 // the pointer, to enable the use of conditional move instructions.
827 digit = u >> 28; *enc->cur = digit + '0'; enc->cur += (nz = nz || digit); u = (u & 0xfffffffUL) * 5;
828 digit = u >> 27; *enc->cur = digit + '0'; enc->cur += (nz = nz || digit); u = (u & 0x7ffffffUL) * 5;
829 digit = u >> 26; *enc->cur = digit + '0'; enc->cur += (nz = nz || digit); u = (u & 0x3ffffffUL) * 5;
830 digit = u >> 25; *enc->cur = digit + '0'; enc->cur += (nz = nz || digit); u = (u & 0x1ffffffUL) * 5;
831 digit = u >> 24; *enc->cur = digit + '0'; enc->cur += 1; // correctly generate '0'
832 }
833 else
834 {
835 // large integer, use the (rather slow) snprintf way.
836 need (enc, IVUV_MAXCHARS);
837 enc->cur +=
838 SvIsUV(sv)
839 ? snprintf (enc->cur, IVUV_MAXCHARS, "%"UVuf, (UV)SvUVX (sv))
840 : snprintf (enc->cur, IVUV_MAXCHARS, "%"IVdf, (IV)SvIVX (sv));
841 }
842 }
843 else if (SvROK (sv))
844 encode_rv (enc, SvRV (sv));
845 else if (!SvOK (sv) || enc->json.flags & F_ALLOW_UNKNOWN)
846 encode_str (enc, "null", 4, 0);
847 else
848 croak ("encountered perl type (%s,0x%x) that JSON cannot handle, you might want to report this",
849 SvPV_nolen (sv), (unsigned int)SvFLAGS (sv));
850 }
851
852 static SV *
853 encode_json (SV *scalar, JSON *json)
854 {
855 enc_t enc;
856
857 if (!(json->flags & F_ALLOW_NONREF) && !SvROK (scalar))
858 croak ("hash- or arrayref expected (not a simple scalar, use allow_nonref to allow this)");
859
860 enc.json = *json;
861 enc.sv = sv_2mortal (NEWSV (0, INIT_SIZE));
862 enc.cur = SvPVX (enc.sv);
863 enc.end = SvEND (enc.sv);
864 enc.indent = 0;
865 enc.limit = enc.json.flags & F_ASCII ? 0x000080UL
866 : enc.json.flags & F_LATIN1 ? 0x000100UL
867 : 0x110000UL;
868
869 SvPOK_only (enc.sv);
870 encode_sv (&enc, scalar);
871 encode_nl (&enc);
872
873 SvCUR_set (enc.sv, enc.cur - SvPVX (enc.sv));
874 *SvEND (enc.sv) = 0; // many xs functions expect a trailing 0 for text strings
875
876 if (!(enc.json.flags & (F_ASCII | F_LATIN1 | F_UTF8)))
877 SvUTF8_on (enc.sv);
878
879 if (enc.json.flags & F_SHRINK)
880 shrink (enc.sv);
881
882 return enc.sv;
883 }
884
885 /////////////////////////////////////////////////////////////////////////////
886 // decoder
887
888 // structure used for decoding JSON
889 typedef struct
890 {
891 char *cur; // current parser pointer
892 char *end; // end of input string
893 const char *err; // parse error, if != 0
894 JSON json;
895 U32 depth; // recursion depth
896 U32 maxdepth; // recursion depth limit
897 } dec_t;
898
899 INLINE void
900 decode_comment (dec_t *dec)
901 {
902 // only '#'-style comments allowed a.t.m.
903
904 while (*dec->cur && *dec->cur != 0x0a && *dec->cur != 0x0d)
905 ++dec->cur;
906 }
907
908 INLINE void
909 decode_ws (dec_t *dec)
910 {
911 for (;;)
912 {
913 char ch = *dec->cur;
914
915 if (ch > 0x20)
916 {
917 if (expect_false (ch == '#'))
918 {
919 if (dec->json.flags & F_RELAXED)
920 decode_comment (dec);
921 else
922 break;
923 }
924 else
925 break;
926 }
927 else if (ch != 0x20 && ch != 0x0a && ch != 0x0d && ch != 0x09)
928 break; // parse error, but let higher level handle it, gives better error messages
929
930 ++dec->cur;
931 }
932 }
933
934 #define ERR(reason) SB dec->err = reason; goto fail; SE
935
936 #define EXPECT_CH(ch) SB \
937 if (*dec->cur != ch) \
938 ERR (# ch " expected"); \
939 ++dec->cur; \
940 SE
941
942 #define DEC_INC_DEPTH if (++dec->depth > dec->json.max_depth) ERR (ERR_NESTING_EXCEEDED)
943 #define DEC_DEC_DEPTH --dec->depth
944
945 static SV *decode_sv (dec_t *dec);
946
947 static signed char decode_hexdigit[256];
948
949 static UV
950 decode_4hex (dec_t *dec)
951 {
952 signed char d1, d2, d3, d4;
953 unsigned char *cur = (unsigned char *)dec->cur;
954
955 d1 = decode_hexdigit [cur [0]]; if (expect_false (d1 < 0)) ERR ("exactly four hexadecimal digits expected");
956 d2 = decode_hexdigit [cur [1]]; if (expect_false (d2 < 0)) ERR ("exactly four hexadecimal digits expected");
957 d3 = decode_hexdigit [cur [2]]; if (expect_false (d3 < 0)) ERR ("exactly four hexadecimal digits expected");
958 d4 = decode_hexdigit [cur [3]]; if (expect_false (d4 < 0)) ERR ("exactly four hexadecimal digits expected");
959
960 dec->cur += 4;
961
962 return ((UV)d1) << 12
963 | ((UV)d2) << 8
964 | ((UV)d3) << 4
965 | ((UV)d4);
966
967 fail:
968 return (UV)-1;
969 }
970
971 static SV *
972 decode_str (dec_t *dec)
973 {
974 SV *sv = 0;
975 int utf8 = 0;
976 char *dec_cur = dec->cur;
977
978 do
979 {
980 char buf [SHORT_STRING_LEN + UTF8_MAXBYTES];
981 char *cur = buf;
982
983 do
984 {
985 unsigned char ch = *(unsigned char *)dec_cur++;
986
987 if (expect_false (ch == '"'))
988 {
989 --dec_cur;
990 break;
991 }
992 else if (expect_false (ch == '\\'))
993 {
994 switch (*dec_cur)
995 {
996 case '\\':
997 case '/':
998 case '"': *cur++ = *dec_cur++; break;
999
1000 case 'b': ++dec_cur; *cur++ = '\010'; break;
1001 case 't': ++dec_cur; *cur++ = '\011'; break;
1002 case 'n': ++dec_cur; *cur++ = '\012'; break;
1003 case 'f': ++dec_cur; *cur++ = '\014'; break;
1004 case 'r': ++dec_cur; *cur++ = '\015'; break;
1005
1006 case 'u':
1007 {
1008 UV lo, hi;
1009 ++dec_cur;
1010
1011 dec->cur = dec_cur;
1012 hi = decode_4hex (dec);
1013 dec_cur = dec->cur;
1014 if (hi == (UV)-1)
1015 goto fail;
1016
1017 // possibly a surrogate pair
1018 if (hi >= 0xd800)
1019 if (hi < 0xdc00)
1020 {
1021 if (dec_cur [0] != '\\' || dec_cur [1] != 'u')
1022 ERR ("missing low surrogate character in surrogate pair");
1023
1024 dec_cur += 2;
1025
1026 dec->cur = dec_cur;
1027 lo = decode_4hex (dec);
1028 dec_cur = dec->cur;
1029 if (lo == (UV)-1)
1030 goto fail;
1031
1032 if (lo < 0xdc00 || lo >= 0xe000)
1033 ERR ("surrogate pair expected");
1034
1035 hi = (hi - 0xD800) * 0x400 + (lo - 0xDC00) + 0x10000;
1036 }
1037 else if (hi < 0xe000)
1038 ERR ("missing high surrogate character in surrogate pair");
1039
1040 if (hi >= 0x80)
1041 {
1042 utf8 = 1;
1043
1044 cur = encode_utf8 (cur, hi);
1045 }
1046 else
1047 *cur++ = hi;
1048 }
1049 break;
1050
1051 default:
1052 --dec_cur;
1053 ERR ("illegal backslash escape sequence in string");
1054 }
1055 }
1056 else if (expect_true (ch >= 0x20 && ch < 0x80))
1057 *cur++ = ch;
1058 else if (ch >= 0x80)
1059 {
1060 STRLEN clen;
1061
1062 --dec_cur;
1063
1064 decode_utf8 (dec_cur, dec->end - dec_cur, &clen);
1065 if (clen == (STRLEN)-1)
1066 ERR ("malformed UTF-8 character in JSON string");
1067
1068 do
1069 *cur++ = *dec_cur++;
1070 while (--clen);
1071
1072 utf8 = 1;
1073 }
1074 else
1075 {
1076 --dec_cur;
1077
1078 if (!ch)
1079 ERR ("unexpected end of string while parsing JSON string");
1080 else
1081 ERR ("invalid character encountered while parsing JSON string");
1082 }
1083 }
1084 while (cur < buf + SHORT_STRING_LEN);
1085
1086 {
1087 STRLEN len = cur - buf;
1088
1089 if (sv)
1090 {
1091 STRLEN cur = SvCUR (sv);
1092
1093 if (SvLEN (sv) <= cur + len)
1094 SvGROW (sv, cur + (len < (cur >> 2) ? cur >> 2 : len) + 1);
1095
1096 memcpy (SvPVX (sv) + SvCUR (sv), buf, len);
1097 SvCUR_set (sv, SvCUR (sv) + len);
1098 }
1099 else
1100 sv = newSVpvn (buf, len);
1101 }
1102 }
1103 while (*dec_cur != '"');
1104
1105 ++dec_cur;
1106
1107 if (sv)
1108 {
1109 SvPOK_only (sv);
1110 *SvEND (sv) = 0;
1111
1112 if (utf8)
1113 SvUTF8_on (sv);
1114 }
1115 else
1116 sv = newSVpvn ("", 0);
1117
1118 dec->cur = dec_cur;
1119 return sv;
1120
1121 fail:
1122 dec->cur = dec_cur;
1123 return 0;
1124 }
1125
1126 static SV *
1127 decode_num (dec_t *dec)
1128 {
1129 int is_nv = 0;
1130 char *start = dec->cur;
1131
1132 // [minus]
1133 if (*dec->cur == '-')
1134 ++dec->cur;
1135
1136 if (*dec->cur == '0')
1137 {
1138 ++dec->cur;
1139 if (*dec->cur >= '0' && *dec->cur <= '9')
1140 ERR ("malformed number (leading zero must not be followed by another digit)");
1141 }
1142 else if (*dec->cur < '0' || *dec->cur > '9')
1143 ERR ("malformed number (no digits after initial minus)");
1144 else
1145 do
1146 {
1147 ++dec->cur;
1148 }
1149 while (*dec->cur >= '0' && *dec->cur <= '9');
1150
1151 // [frac]
1152 if (*dec->cur == '.')
1153 {
1154 ++dec->cur;
1155
1156 if (*dec->cur < '0' || *dec->cur > '9')
1157 ERR ("malformed number (no digits after decimal point)");
1158
1159 do
1160 {
1161 ++dec->cur;
1162 }
1163 while (*dec->cur >= '0' && *dec->cur <= '9');
1164
1165 is_nv = 1;
1166 }
1167
1168 // [exp]
1169 if (*dec->cur == 'e' || *dec->cur == 'E')
1170 {
1171 ++dec->cur;
1172
1173 if (*dec->cur == '-' || *dec->cur == '+')
1174 ++dec->cur;
1175
1176 if (*dec->cur < '0' || *dec->cur > '9')
1177 ERR ("malformed number (no digits after exp sign)");
1178
1179 do
1180 {
1181 ++dec->cur;
1182 }
1183 while (*dec->cur >= '0' && *dec->cur <= '9');
1184
1185 is_nv = 1;
1186 }
1187
1188 if (!is_nv)
1189 {
1190 int len = dec->cur - start;
1191
1192 // special case the rather common 1..5-digit-int case
1193 if (*start == '-')
1194 switch (len)
1195 {
1196 case 2: return newSViv (-(IV)( start [1] - '0' * 1));
1197 case 3: return newSViv (-(IV)( start [1] * 10 + start [2] - '0' * 11));
1198 case 4: return newSViv (-(IV)( start [1] * 100 + start [2] * 10 + start [3] - '0' * 111));
1199 case 5: return newSViv (-(IV)( start [1] * 1000 + start [2] * 100 + start [3] * 10 + start [4] - '0' * 1111));
1200 case 6: return newSViv (-(IV)(start [1] * 10000 + start [2] * 1000 + start [3] * 100 + start [4] * 10 + start [5] - '0' * 11111));
1201 }
1202 else
1203 switch (len)
1204 {
1205 case 1: return newSViv ( start [0] - '0' * 1);
1206 case 2: return newSViv ( start [0] * 10 + start [1] - '0' * 11);
1207 case 3: return newSViv ( start [0] * 100 + start [1] * 10 + start [2] - '0' * 111);
1208 case 4: return newSViv ( start [0] * 1000 + start [1] * 100 + start [2] * 10 + start [3] - '0' * 1111);
1209 case 5: return newSViv ( start [0] * 10000 + start [1] * 1000 + start [2] * 100 + start [3] * 10 + start [4] - '0' * 11111);
1210 }
1211
1212 {
1213 UV uv;
1214 int numtype = grok_number (start, len, &uv);
1215 if (numtype & IS_NUMBER_IN_UV)
1216 if (numtype & IS_NUMBER_NEG)
1217 {
1218 if (uv < (UV)IV_MIN)
1219 return newSViv (-(IV)uv);
1220 }
1221 else
1222 return newSVuv (uv);
1223 }
1224
1225 len -= *start == '-' ? 1 : 0;
1226
1227 // does not fit into IV or UV, try NV
1228 if (len <= NV_DIG)
1229 // fits into NV without loss of precision
1230 return newSVnv (json_atof (start));
1231
1232 // everything else fails, convert it to a string
1233 return newSVpvn (start, dec->cur - start);
1234 }
1235
1236 // loss of precision here
1237 return newSVnv (json_atof (start));
1238
1239 fail:
1240 return 0;
1241 }
1242
1243 static SV *
1244 decode_av (dec_t *dec)
1245 {
1246 AV *av = newAV ();
1247
1248 DEC_INC_DEPTH;
1249 decode_ws (dec);
1250
1251 if (*dec->cur == ']')
1252 ++dec->cur;
1253 else
1254 for (;;)
1255 {
1256 SV *value;
1257
1258 value = decode_sv (dec);
1259 if (!value)
1260 goto fail;
1261
1262 av_push (av, value);
1263
1264 decode_ws (dec);
1265
1266 if (*dec->cur == ']')
1267 {
1268 ++dec->cur;
1269 break;
1270 }
1271
1272 if (*dec->cur != ',')
1273 ERR (", or ] expected while parsing array");
1274
1275 ++dec->cur;
1276
1277 decode_ws (dec);
1278
1279 if (*dec->cur == ']' && dec->json.flags & F_RELAXED)
1280 {
1281 ++dec->cur;
1282 break;
1283 }
1284 }
1285
1286 DEC_DEC_DEPTH;
1287 return newRV_noinc ((SV *)av);
1288
1289 fail:
1290 SvREFCNT_dec (av);
1291 DEC_DEC_DEPTH;
1292 return 0;
1293 }
1294
1295 static SV *
1296 decode_hv (dec_t *dec)
1297 {
1298 SV *sv;
1299 HV *hv = newHV ();
1300
1301 DEC_INC_DEPTH;
1302 decode_ws (dec);
1303
1304 if (*dec->cur == '}')
1305 ++dec->cur;
1306 else
1307 for (;;)
1308 {
1309 EXPECT_CH ('"');
1310
1311 // heuristic: assume that
1312 // a) decode_str + hv_store_ent are abysmally slow.
1313 // b) most hash keys are short, simple ascii text.
1314 // => try to "fast-match" such strings to avoid
1315 // the overhead of decode_str + hv_store_ent.
1316 {
1317 SV *value;
1318 char *p = dec->cur;
1319 char *e = p + 24; // only try up to 24 bytes
1320
1321 for (;;)
1322 {
1323 // the >= 0x80 is false on most architectures
1324 if (p == e || *p < 0x20 || *p >= 0x80 || *p == '\\')
1325 {
1326 // slow path, back up and use decode_str
1327 SV *key = decode_str (dec);
1328 if (!key)
1329 goto fail;
1330
1331 decode_ws (dec); EXPECT_CH (':');
1332
1333 decode_ws (dec);
1334 value = decode_sv (dec);
1335 if (!value)
1336 {
1337 SvREFCNT_dec (key);
1338 goto fail;
1339 }
1340
1341 hv_store_ent (hv, key, value, 0);
1342 SvREFCNT_dec (key);
1343
1344 break;
1345 }
1346 else if (*p == '"')
1347 {
1348 // fast path, got a simple key
1349 char *key = dec->cur;
1350 int len = p - key;
1351 dec->cur = p + 1;
1352
1353 decode_ws (dec); EXPECT_CH (':');
1354
1355 decode_ws (dec);
1356 value = decode_sv (dec);
1357 if (!value)
1358 goto fail;
1359
1360 hv_store (hv, key, len, value, 0);
1361
1362 break;
1363 }
1364
1365 ++p;
1366 }
1367 }
1368
1369 decode_ws (dec);
1370
1371 if (*dec->cur == '}')
1372 {
1373 ++dec->cur;
1374 break;
1375 }
1376
1377 if (*dec->cur != ',')
1378 ERR (", or } expected while parsing object/hash");
1379
1380 ++dec->cur;
1381
1382 decode_ws (dec);
1383
1384 if (*dec->cur == '}' && dec->json.flags & F_RELAXED)
1385 {
1386 ++dec->cur;
1387 break;
1388 }
1389 }
1390
1391 DEC_DEC_DEPTH;
1392 sv = newRV_noinc ((SV *)hv);
1393
1394 // check filter callbacks
1395 if (dec->json.flags & F_HOOK)
1396 {
1397 if (dec->json.cb_sk_object && HvKEYS (hv) == 1)
1398 {
1399 HE *cb, *he;
1400
1401 hv_iterinit (hv);
1402 he = hv_iternext (hv);
1403 hv_iterinit (hv);
1404
1405 // the next line creates a mortal sv each time its called.
1406 // might want to optimise this for common cases.
1407 cb = hv_fetch_ent (dec->json.cb_sk_object, hv_iterkeysv (he), 0, 0);
1408
1409 if (cb)
1410 {
1411 dSP;
1412 int count;
1413
1414 ENTER; SAVETMPS; PUSHMARK (SP);
1415 XPUSHs (HeVAL (he));
1416 sv_2mortal (sv);
1417
1418 PUTBACK; count = call_sv (HeVAL (cb), G_ARRAY); SPAGAIN;
1419
1420 if (count == 1)
1421 {
1422 sv = newSVsv (POPs);
1423 FREETMPS; LEAVE;
1424 return sv;
1425 }
1426
1427 SvREFCNT_inc (sv);
1428 FREETMPS; LEAVE;
1429 }
1430 }
1431
1432 if (dec->json.cb_object)
1433 {
1434 dSP;
1435 int count;
1436
1437 ENTER; SAVETMPS; PUSHMARK (SP);
1438 XPUSHs (sv_2mortal (sv));
1439
1440 PUTBACK; count = call_sv (dec->json.cb_object, G_ARRAY); SPAGAIN;
1441
1442 if (count == 1)
1443 {
1444 sv = newSVsv (POPs);
1445 FREETMPS; LEAVE;
1446 return sv;
1447 }
1448
1449 SvREFCNT_inc (sv);
1450 FREETMPS; LEAVE;
1451 }
1452 }
1453
1454 return sv;
1455
1456 fail:
1457 SvREFCNT_dec (hv);
1458 DEC_DEC_DEPTH;
1459 return 0;
1460 }
1461
1462 static SV *
1463 decode_sv (dec_t *dec)
1464 {
1465 // the beauty of JSON: you need exactly one character lookahead
1466 // to parse everything.
1467 switch (*dec->cur)
1468 {
1469 case '"': ++dec->cur; return decode_str (dec);
1470 case '[': ++dec->cur; return decode_av (dec);
1471 case '{': ++dec->cur; return decode_hv (dec);
1472
1473 case '-':
1474 case '0': case '1': case '2': case '3': case '4':
1475 case '5': case '6': case '7': case '8': case '9':
1476 return decode_num (dec);
1477
1478 case 't':
1479 if (dec->end - dec->cur >= 4 && !memcmp (dec->cur, "true", 4))
1480 {
1481 dec->cur += 4;
1482 #if JSON_SLOW
1483 json_true = get_bool ("JSON::XS::true");
1484 #endif
1485 return newSVsv (json_true);
1486 }
1487 else
1488 ERR ("'true' expected");
1489
1490 break;
1491
1492 case 'f':
1493 if (dec->end - dec->cur >= 5 && !memcmp (dec->cur, "false", 5))
1494 {
1495 dec->cur += 5;
1496 #if JSON_SLOW
1497 json_false = get_bool ("JSON::XS::false");
1498 #endif
1499 return newSVsv (json_false);
1500 }
1501 else
1502 ERR ("'false' expected");
1503
1504 break;
1505
1506 case 'n':
1507 if (dec->end - dec->cur >= 4 && !memcmp (dec->cur, "null", 4))
1508 {
1509 dec->cur += 4;
1510 return newSVsv (&PL_sv_undef);
1511 }
1512 else
1513 ERR ("'null' expected");
1514
1515 break;
1516
1517 default:
1518 ERR ("malformed JSON string, neither array, object, number, string or atom");
1519 break;
1520 }
1521
1522 fail:
1523 return 0;
1524 }
1525
1526 static SV *
1527 decode_json (SV *string, JSON *json, char **offset_return)
1528 {
1529 dec_t dec;
1530 SV *sv;
1531
1532 /* work around bugs in 5.10 where manipulating magic values
1533 * makes perl ignore the magic in subsequent accesses.
1534 * also make a copy of non-PV values, to get them into a clean
1535 * state (SvPV should do that, but it's buggy, see below).
1536 */
1537 /*SvGETMAGIC (string);*/
1538 if (SvMAGICAL (string) || !SvPOK (string))
1539 string = sv_2mortal (newSVsv (string));
1540
1541 SvUPGRADE (string, SVt_PV);
1542
1543 /* work around a bug in perl 5.10, which causes SvCUR to fail an
1544 * assertion with -DDEBUGGING, although SvCUR is documented to
1545 * return the xpv_cur field which certainly exists after upgrading.
1546 * according to nicholas clark, calling SvPOK fixes this.
1547 * But it doesn't fix it, so try another workaround, call SvPV_nolen
1548 * and hope for the best.
1549 * Damnit, SvPV_nolen still trips over yet another assertion. This
1550 * assertion business is seriously broken, try yet another workaround
1551 * for the broken -DDEBUGGING.
1552 */
1553 {
1554 #ifdef DEBUGGING
1555 STRLEN offset = SvOK (string) ? sv_len (string) : 0;
1556 #else
1557 STRLEN offset = SvCUR (string);
1558 #endif
1559
1560 if (offset > json->max_size && json->max_size)
1561 croak ("attempted decode of JSON text of %lu bytes size, but max_size is set to %lu",
1562 (unsigned long)SvCUR (string), (unsigned long)json->max_size);
1563 }
1564
1565 if (DECODE_WANTS_OCTETS (json))
1566 sv_utf8_downgrade (string, 0);
1567 else
1568 sv_utf8_upgrade (string);
1569
1570 SvGROW (string, SvCUR (string) + 1); // should basically be a NOP
1571
1572 dec.json = *json;
1573 dec.cur = SvPVX (string);
1574 dec.end = SvEND (string);
1575 dec.err = 0;
1576 dec.depth = 0;
1577
1578 if (dec.json.cb_object || dec.json.cb_sk_object)
1579 dec.json.flags |= F_HOOK;
1580
1581 *dec.end = 0; // this should basically be a nop, too, but make sure it's there
1582
1583 decode_ws (&dec);
1584 sv = decode_sv (&dec);
1585
1586 if (offset_return)
1587 *offset_return = dec.cur;
1588
1589 if (!(offset_return || !sv))
1590 {
1591 // check for trailing garbage
1592 decode_ws (&dec);
1593
1594 if (*dec.cur)
1595 {
1596 dec.err = "garbage after JSON object";
1597 SvREFCNT_dec (sv);
1598 sv = 0;
1599 }
1600 }
1601
1602 if (!sv)
1603 {
1604 SV *uni = sv_newmortal ();
1605
1606 // horrible hack to silence warning inside pv_uni_display
1607 COP cop = *PL_curcop;
1608 cop.cop_warnings = pWARN_NONE;
1609 ENTER;
1610 SAVEVPTR (PL_curcop);
1611 PL_curcop = &cop;
1612 pv_uni_display (uni, dec.cur, dec.end - dec.cur, 20, UNI_DISPLAY_QQ);
1613 LEAVE;
1614
1615 croak ("%s, at character offset %d (before \"%s\")",
1616 dec.err,
1617 (int)ptr_to_index (string, dec.cur),
1618 dec.cur != dec.end ? SvPV_nolen (uni) : "(end of string)");
1619 }
1620
1621 sv = sv_2mortal (sv);
1622
1623 if (!(dec.json.flags & F_ALLOW_NONREF) && !SvROK (sv))
1624 croak ("JSON text must be an object or array (but found number, string, true, false or null, use allow_nonref to allow this)");
1625
1626 return sv;
1627 }
1628
1629 /////////////////////////////////////////////////////////////////////////////
1630 // incremental parser
1631
1632 static void
1633 incr_parse (JSON *self)
1634 {
1635 const char *p = SvPVX (self->incr_text) + self->incr_pos;
1636
1637 // the state machine here is a bit convoluted and could be simplified a lot
1638 // but this would make it slower, so...
1639
1640 for (;;)
1641 {
1642 //printf ("loop pod %d *p<%c><%s>, mode %d nest %d\n", p - SvPVX (self->incr_text), *p, p, self->incr_mode, self->incr_nest);//D
1643 switch (self->incr_mode)
1644 {
1645 // only used for initial whitespace skipping
1646 case INCR_M_WS:
1647 for (;;)
1648 {
1649 if (*p > 0x20)
1650 {
1651 if (*p == '#')
1652 {
1653 self->incr_mode = INCR_M_C0;
1654 goto incr_m_c;
1655 }
1656 else
1657 {
1658 self->incr_mode = INCR_M_JSON;
1659 goto incr_m_json;
1660 }
1661 }
1662 else if (!*p)
1663 goto interrupt;
1664
1665 ++p;
1666 }
1667
1668 // skip a single char inside a string (for \\-processing)
1669 case INCR_M_BS:
1670 if (!*p)
1671 goto interrupt;
1672
1673 ++p;
1674 self->incr_mode = INCR_M_STR;
1675 goto incr_m_str;
1676
1677 // inside #-style comments
1678 case INCR_M_C0:
1679 case INCR_M_C1:
1680 incr_m_c:
1681 for (;;)
1682 {
1683 if (*p == '\n')
1684 {
1685 self->incr_mode = self->incr_mode == INCR_M_C0 ? INCR_M_WS : INCR_M_JSON;
1686 break;
1687 }
1688 else if (!*p)
1689 goto interrupt;
1690
1691 ++p;
1692 }
1693
1694 break;
1695
1696 // inside a string
1697 case INCR_M_STR:
1698 incr_m_str:
1699 for (;;)
1700 {
1701 if (*p == '"')
1702 {
1703 ++p;
1704 self->incr_mode = INCR_M_JSON;
1705
1706 if (!self->incr_nest)
1707 goto interrupt;
1708
1709 goto incr_m_json;
1710 }
1711 else if (*p == '\\')
1712 {
1713 ++p; // "virtually" consumes character after \
1714
1715 if (!*p) // if at end of string we have to switch modes
1716 {
1717 self->incr_mode = INCR_M_BS;
1718 goto interrupt;
1719 }
1720 }
1721 else if (!*p)
1722 goto interrupt;
1723
1724 ++p;
1725 }
1726
1727 // after initial ws, outside string
1728 case INCR_M_JSON:
1729 incr_m_json:
1730 for (;;)
1731 {
1732 switch (*p++)
1733 {
1734 case 0:
1735 --p;
1736 goto interrupt;
1737
1738 case 0x09:
1739 case 0x0a:
1740 case 0x0d:
1741 case 0x20:
1742 if (!self->incr_nest)
1743 {
1744 --p; // do not eat the whitespace, let the next round do it
1745 goto interrupt;
1746 }
1747 break;
1748
1749 case '"':
1750 self->incr_mode = INCR_M_STR;
1751 goto incr_m_str;
1752
1753 case '[':
1754 case '{':
1755 if (++self->incr_nest > self->max_depth)
1756 croak (ERR_NESTING_EXCEEDED);
1757 break;
1758
1759 case ']':
1760 case '}':
1761 if (--self->incr_nest <= 0)
1762 goto interrupt;
1763 break;
1764
1765 case '#':
1766 self->incr_mode = INCR_M_C1;
1767 goto incr_m_c;
1768 }
1769 }
1770 }
1771
1772 modechange:
1773 ;
1774 }
1775
1776 interrupt:
1777 self->incr_pos = p - SvPVX (self->incr_text);
1778 //printf ("interrupt<%.*s>\n", self->incr_pos, SvPVX(self->incr_text));//D
1779 //printf ("return pos %d mode %d nest %d\n", self->incr_pos, self->incr_mode, self->incr_nest);//D
1780 }
1781
1782 /////////////////////////////////////////////////////////////////////////////
1783 // XS interface functions
1784
1785 MODULE = JSON::XS PACKAGE = JSON::XS
1786
1787 BOOT:
1788 {
1789 int i;
1790
1791 for (i = 0; i < 256; ++i)
1792 decode_hexdigit [i] =
1793 i >= '0' && i <= '9' ? i - '0'
1794 : i >= 'a' && i <= 'f' ? i - 'a' + 10
1795 : i >= 'A' && i <= 'F' ? i - 'A' + 10
1796 : -1;
1797
1798 json_stash = gv_stashpv ("JSON::XS" , 1);
1799 json_boolean_stash = gv_stashpv ("JSON::XS::Boolean", 1);
1800
1801 json_true = get_bool ("JSON::XS::true");
1802 json_false = get_bool ("JSON::XS::false");
1803
1804 CvNODEBUG_on (get_cv ("JSON::XS::incr_text", 0)); /* the debugger completely breaks lvalue subs */
1805 }
1806
1807 PROTOTYPES: DISABLE
1808
1809 void CLONE (...)
1810 CODE:
1811 json_stash = 0;
1812 json_boolean_stash = 0;
1813
1814 void new (char *klass)
1815 PPCODE:
1816 {
1817 SV *pv = NEWSV (0, sizeof (JSON));
1818 SvPOK_only (pv);
1819 json_init ((JSON *)SvPVX (pv));
1820 XPUSHs (sv_2mortal (sv_bless (
1821 newRV_noinc (pv),
1822 strEQ (klass, "JSON::XS") ? JSON_STASH : gv_stashpv (klass, 1)
1823 )));
1824 }
1825
1826 void ascii (JSON *self, int enable = 1)
1827 ALIAS:
1828 ascii = F_ASCII
1829 latin1 = F_LATIN1
1830 utf8 = F_UTF8
1831 indent = F_INDENT
1832 canonical = F_CANONICAL
1833 space_before = F_SPACE_BEFORE
1834 space_after = F_SPACE_AFTER
1835 pretty = F_PRETTY
1836 allow_nonref = F_ALLOW_NONREF
1837 shrink = F_SHRINK
1838 allow_blessed = F_ALLOW_BLESSED
1839 convert_blessed = F_CONV_BLESSED
1840 relaxed = F_RELAXED
1841 allow_unknown = F_ALLOW_UNKNOWN
1842 PPCODE:
1843 {
1844 if (enable)
1845 self->flags |= ix;
1846 else
1847 self->flags &= ~ix;
1848
1849 XPUSHs (ST (0));
1850 }
1851
1852 void get_ascii (JSON *self)
1853 ALIAS:
1854 get_ascii = F_ASCII
1855 get_latin1 = F_LATIN1
1856 get_utf8 = F_UTF8
1857 get_indent = F_INDENT
1858 get_canonical = F_CANONICAL
1859 get_space_before = F_SPACE_BEFORE
1860 get_space_after = F_SPACE_AFTER
1861 get_allow_nonref = F_ALLOW_NONREF
1862 get_shrink = F_SHRINK
1863 get_allow_blessed = F_ALLOW_BLESSED
1864 get_convert_blessed = F_CONV_BLESSED
1865 get_relaxed = F_RELAXED
1866 get_allow_unknown = F_ALLOW_UNKNOWN
1867 PPCODE:
1868 XPUSHs (boolSV (self->flags & ix));
1869
1870 void max_depth (JSON *self, U32 max_depth = 0x80000000UL)
1871 PPCODE:
1872 self->max_depth = max_depth;
1873 XPUSHs (ST (0));
1874
1875 U32 get_max_depth (JSON *self)
1876 CODE:
1877 RETVAL = self->max_depth;
1878 OUTPUT:
1879 RETVAL
1880
1881 void max_size (JSON *self, U32 max_size = 0)
1882 PPCODE:
1883 self->max_size = max_size;
1884 XPUSHs (ST (0));
1885
1886 int get_max_size (JSON *self)
1887 CODE:
1888 RETVAL = self->max_size;
1889 OUTPUT:
1890 RETVAL
1891
1892 void filter_json_object (JSON *self, SV *cb = &PL_sv_undef)
1893 PPCODE:
1894 {
1895 SvREFCNT_dec (self->cb_object);
1896 self->cb_object = SvOK (cb) ? newSVsv (cb) : 0;
1897
1898 XPUSHs (ST (0));
1899 }
1900
1901 void filter_json_single_key_object (JSON *self, SV *key, SV *cb = &PL_sv_undef)
1902 PPCODE:
1903 {
1904 if (!self->cb_sk_object)
1905 self->cb_sk_object = newHV ();
1906
1907 if (SvOK (cb))
1908 hv_store_ent (self->cb_sk_object, key, newSVsv (cb), 0);
1909 else
1910 {
1911 hv_delete_ent (self->cb_sk_object, key, G_DISCARD, 0);
1912
1913 if (!HvKEYS (self->cb_sk_object))
1914 {
1915 SvREFCNT_dec (self->cb_sk_object);
1916 self->cb_sk_object = 0;
1917 }
1918 }
1919
1920 XPUSHs (ST (0));
1921 }
1922
1923 void encode (JSON *self, SV *scalar)
1924 PPCODE:
1925 PUTBACK; scalar = encode_json (scalar, self); SPAGAIN;
1926 XPUSHs (scalar);
1927
1928 void decode (JSON *self, SV *jsonstr)
1929 PPCODE:
1930 PUTBACK; jsonstr = decode_json (jsonstr, self, 0); SPAGAIN;
1931 XPUSHs (jsonstr);
1932
1933 void decode_prefix (JSON *self, SV *jsonstr)
1934 PPCODE:
1935 {
1936 SV *sv;
1937 char *offset;
1938 PUTBACK; sv = decode_json (jsonstr, self, &offset); SPAGAIN;
1939 EXTEND (SP, 2);
1940 PUSHs (sv);
1941 PUSHs (sv_2mortal (newSVuv (ptr_to_index (jsonstr, offset))));
1942 }
1943
1944 void incr_parse (JSON *self, SV *jsonstr = 0)
1945 PPCODE:
1946 {
1947 if (!self->incr_text)
1948 self->incr_text = newSVpvn ("", 0);
1949
1950 /* if utf8-ness doesn't match the decoder, need to upgrade/downgrade */
1951 if (!DECODE_WANTS_OCTETS (self) == !SvUTF8 (self->incr_text))
1952 if (DECODE_WANTS_OCTETS (self))
1953 {
1954 if (self->incr_pos)
1955 self->incr_pos = utf8_length ((U8 *)SvPVX (self->incr_text),
1956 (U8 *)SvPVX (self->incr_text) + self->incr_pos);
1957
1958 sv_utf8_downgrade (self->incr_text, 0);
1959 }
1960 else
1961 {
1962 sv_utf8_upgrade (self->incr_text);
1963
1964 if (self->incr_pos)
1965 self->incr_pos = utf8_hop ((U8 *)SvPVX (self->incr_text), self->incr_pos)
1966 - (U8 *)SvPVX (self->incr_text);
1967 }
1968
1969 // append data, if any
1970 if (jsonstr)
1971 {
1972 /* make sure both strings have same encoding */
1973 if (SvUTF8 (jsonstr) != SvUTF8 (self->incr_text))
1974 if (SvUTF8 (jsonstr))
1975 sv_utf8_downgrade (jsonstr, 0);
1976 else
1977 sv_utf8_upgrade (jsonstr);
1978
1979 /* and then just blindly append */
1980 {
1981 STRLEN len;
1982 const char *str = SvPV (jsonstr, len);
1983 STRLEN cur = SvCUR (self->incr_text);
1984
1985 if (SvLEN (self->incr_text) <= cur + len)
1986 SvGROW (self->incr_text, cur + (len < (cur >> 2) ? cur >> 2 : len) + 1);
1987
1988 Move (str, SvEND (self->incr_text), len, char);
1989 SvCUR_set (self->incr_text, SvCUR (self->incr_text) + len);
1990 *SvEND (self->incr_text) = 0; // this should basically be a nop, too, but make sure it's there
1991 }
1992 }
1993
1994 if (GIMME_V != G_VOID)
1995 do
1996 {
1997 SV *sv;
1998 char *offset;
1999
2000 if (!INCR_DONE (self))
2001 {
2002 incr_parse (self);
2003
2004 if (self->incr_pos > self->max_size && self->max_size)
2005 croak ("attempted decode of JSON text of %lu bytes size, but max_size is set to %lu",
2006 (unsigned long)self->incr_pos, (unsigned long)self->max_size);
2007
2008 if (!INCR_DONE (self))
2009 {
2010 // as an optimisation, do not accumulate white space in the incr buffer
2011 if (self->incr_mode == INCR_M_WS && self->incr_pos)
2012 {
2013 self->incr_pos = 0;
2014 SvCUR_set (self->incr_text, 0);
2015 }
2016
2017 break;
2018 }
2019 }
2020
2021 PUTBACK; sv = decode_json (self->incr_text, self, &offset); SPAGAIN;
2022 XPUSHs (sv);
2023
2024 self->incr_pos -= offset - SvPVX (self->incr_text);
2025 self->incr_nest = 0;
2026 self->incr_mode = 0;
2027
2028 sv_chop (self->incr_text, offset);
2029 }
2030 while (GIMME_V == G_ARRAY);
2031 }
2032
2033 SV *incr_text (JSON *self)
2034 ATTRS: lvalue
2035 CODE:
2036 {
2037 if (self->incr_pos)
2038 croak ("incr_text can not be called when the incremental parser already started parsing");
2039
2040 RETVAL = self->incr_text ? SvREFCNT_inc (self->incr_text) : &PL_sv_undef;
2041 }
2042 OUTPUT:
2043 RETVAL
2044
2045 void incr_skip (JSON *self)
2046 CODE:
2047 {
2048 if (self->incr_pos)
2049 {
2050 sv_chop (self->incr_text, SvPV_nolen (self->incr_text) + self->incr_pos);
2051 self->incr_pos = 0;
2052 self->incr_nest = 0;
2053 self->incr_mode = 0;
2054 }
2055 }
2056
2057 void incr_reset (JSON *self)
2058 CODE:
2059 {
2060 SvREFCNT_dec (self->incr_text);
2061 self->incr_text = 0;
2062 self->incr_pos = 0;
2063 self->incr_nest = 0;
2064 self->incr_mode = 0;
2065 }
2066
2067 void DESTROY (JSON *self)
2068 CODE:
2069 SvREFCNT_dec (self->cb_sk_object);
2070 SvREFCNT_dec (self->cb_object);
2071 SvREFCNT_dec (self->incr_text);
2072
2073 PROTOTYPES: ENABLE
2074
2075 void encode_json (SV *scalar)
2076 ALIAS:
2077 to_json_ = 0
2078 encode_json = F_UTF8
2079 PPCODE:
2080 {
2081 JSON json;
2082 json_init (&json);
2083 json.flags |= ix;
2084 PUTBACK; scalar = encode_json (scalar, &json); SPAGAIN;
2085 XPUSHs (scalar);
2086 }
2087
2088 void decode_json (SV *jsonstr)
2089 ALIAS:
2090 from_json_ = 0
2091 decode_json = F_UTF8
2092 PPCODE:
2093 {
2094 JSON json;
2095 json_init (&json);
2096 json.flags |= ix;
2097 PUTBACK; jsonstr = decode_json (jsonstr, &json, 0); SPAGAIN;
2098 XPUSHs (jsonstr);
2099 }
2100