xref: /lighttpd1.4/src/array.c (revision 14f2d9db)
1 #include "first.h"
2 
3 #include "array.h"
4 #include "buffer.h"
5 #include "ck.h"
6 
7 #include <string.h>
8 #include <stdlib.h>
9 #include <limits.h>
10 
11 
12 __attribute_cold__
13 static data_unset *array_data_string_copy(const data_unset *s) {
14     data_string *src = (data_string *)s;
15     data_string *ds = array_data_string_init();
16     if (!buffer_is_unset(&src->key)) buffer_copy_buffer(&ds->key, &src->key);
17     buffer_copy_buffer(&ds->value, &src->value);
18     return (data_unset *)ds;
19 }
20 
21 __attribute_cold__
22 static void array_data_string_insert_dup(data_unset *dst, data_unset *src) {
23     data_string *ds_dst = (data_string *)dst;
24     data_string *ds_src = (data_string *)src;
25     if (!buffer_is_blank(&ds_dst->value))
26         buffer_append_str2(&ds_dst->value, CONST_STR_LEN(", "),
27                                            BUF_PTR_LEN(&ds_src->value));
28     else
29         buffer_copy_buffer(&ds_dst->value, &ds_src->value);
30 }
31 
32 static void array_data_string_free(data_unset *du) {
33     data_string *ds = (data_string *)du;
34     free(ds->key.ptr);
35     free(ds->value.ptr);
36     free(ds);
37 }
38 
39 __attribute_noinline__
40 data_string *array_data_string_init(void) {
41     static const struct data_methods string_fn = {
42         array_data_string_copy,
43         array_data_string_free,
44         array_data_string_insert_dup,
45     };
46     data_string *ds = ck_calloc(1, sizeof(*ds));
47     ds->type = TYPE_STRING;
48     ds->fn = &string_fn;
49     return ds;
50 }
51 
52 
53 __attribute_cold__
54 static data_unset *array_data_integer_copy(const data_unset *s) {
55     data_integer *src = (data_integer *)s;
56     data_integer *di = array_data_integer_init();
57     if (!buffer_is_unset(&src->key)) buffer_copy_buffer(&di->key, &src->key);
58     di->value = src->value;
59     return (data_unset *)di;
60 }
61 
62 static void array_data_integer_free(data_unset *du) {
63     data_integer *di = (data_integer *)du;
64     free(di->key.ptr);
65     free(di);
66 }
67 
68 __attribute_noinline__
69 data_integer *array_data_integer_init(void) {
70     static const struct data_methods integer_fn = {
71         array_data_integer_copy,
72         array_data_integer_free,
73         NULL
74     };
75     data_integer *di = ck_calloc(1, sizeof(*di));
76     di->type = TYPE_INTEGER;
77     di->fn = &integer_fn;
78     return di;
79 }
80 
81 
82 __attribute_cold__
83 static data_unset *array_data_array_copy(const data_unset *s) {
84     data_array *src = (data_array *)s;
85     data_array *da = array_data_array_init();
86     if (!buffer_is_unset(&src->key)) buffer_copy_buffer(&da->key, &src->key);
87     array_copy_array(&da->value, &src->value);
88     return (data_unset *)da;
89 }
90 
91 static void array_data_array_free(data_unset *du) {
92     data_array *da = (data_array *)du;
93     free(da->key.ptr);
94     array_free_data(&da->value);
95     free(da);
96 }
97 
98 __attribute_noinline__
99 data_array *array_data_array_init(void) {
100     static const struct data_methods array_fn = {
101         array_data_array_copy,
102         array_data_array_free,
103         NULL
104     };
105     data_array *da = ck_calloc(1, sizeof(*da));
106     da->type = TYPE_ARRAY;
107     da->fn = &array_fn;
108     return da;
109 }
110 
111 
112 __attribute_cold__
113 static void array_extend(array * const a, uint32_t n) {
114     /* This data structure should not be used for nearly so many entries */
115     force_assert(a->size <= INT32_MAX-n);
116     a->size  += n;
117     a->data   = ck_realloc_u32((void**)&a->data,  a->size,0,sizeof(*a->data));
118     a->sorted = ck_realloc_u32((void**)&a->sorted,a->size,0,sizeof(*a->sorted));
119     memset(a->data+a->used, 0, (a->size-a->used)*sizeof(*a->data));
120 }
121 
122 array *array_init(uint32_t n) {
123 	array *a = ck_calloc(1, sizeof(*a));
124 	if (n) array_extend(a, n);
125 	return a;
126 }
127 
128 void array_free_data(array * const a) {
129 	if (a->sorted) free(a->sorted);
130 	data_unset ** const data = a->data;
131 	const uint32_t sz = a->size;
132 	for (uint32_t i = 0; i < sz; ++i) {
133 		if (data[i]) data[i]->fn->free(data[i]);
134 	}
135 	free(data);
136 	a->data = NULL;
137 	a->sorted = NULL;
138 	a->used = 0;
139 	a->size = 0;
140 }
141 
142 void array_copy_array(array * const dst, const array * const src) {
143 	array_free_data(dst);
144 	if (0 == src->size) return;
145 
146 	array_extend(dst, src->size);
147 	for (uint32_t i = 0; i < src->used; ++i) {
148 		array_insert_unique(dst, src->data[i]->fn->copy(src->data[i]));
149 	}
150 }
151 
152 void array_free(array * const a) {
153 	if (!a) return;
154 	array_free_data(a);
155 	free(a);
156 }
157 
158 void array_reset_data_strings(array * const a) {
159 	if (!a) return;
160 
161 	data_string ** const data = (data_string **)a->data;
162 	const uint32_t used = a->used;
163 	a->used = 0;
164 	for (uint32_t i = 0; i < used; ++i) {
165 		data_string * const ds = data[i];
166 		/*force_assert(ds->type == TYPE_STRING);*/
167 		buffer_reset(&ds->key);
168 		buffer_reset(&ds->value);
169 	}
170 }
171 
172 #if 0 /*(unused; see array_extract_element_klen())*/
173 data_unset *array_pop(array * const a) {
174 	data_unset *du;
175 
176 	force_assert(a->used != 0);
177 
178 	a->used --;
179 	du = a->data[a->used];
180 	force_assert(a->sorted[a->used] == du); /* only works on "simple" lists */
181 	a->data[a->used] = NULL;
182 
183 	return du;
184 }
185 #endif
186 
187 __attribute_pure__
188 static int array_caseless_compare(const char * const a, const char * const b, const uint32_t len) {
189     for (uint32_t i = 0; i < len; ++i) {
190         unsigned int ca = ((unsigned char *)a)[i];
191         unsigned int cb = ((unsigned char *)b)[i];
192         if (ca == cb) continue;
193 
194         /* always lowercase for transitive results */
195         if (light_isupper(ca)) ca |= 0x20;
196         if (light_isupper(cb)) cb |= 0x20;
197 
198         if (ca == cb) continue;
199         return (int)(ca - cb);
200     }
201     return 0;
202 }
203 
204 __attribute_pure__
205 static int array_keycmp(const char * const a, const uint32_t alen, const char * const b, const uint32_t blen) {
206     return alen < blen ? -1 : alen > blen ? 1 : array_caseless_compare(a, b, blen);
207 }
208 
209 __attribute_cold__
210 __attribute_pure__
211 static int array_keycmpb(const char * const k, const uint32_t klen, const buffer * const b) {
212     /* key is non-empty (0==b->used), though possibly blank (1==b->used)
213      * if inserted into key-value array */
214     /*force_assert(b && b->used);*/
215     return array_keycmp(k, klen, b->ptr, b->used-1);
216     /*return array_keycmp(k, klen, BUF_PTR_LEN(b));*/
217 }
218 
219 /* returns pos into a->sorted[] which contains copy of data (ptr) in a->data[]
220  * if pos >= 0, or returns -pos-1 if that is the position-1 in a->sorted[]
221  * where the key needs to be inserted (-1 to avoid -0)
222  */
223 __attribute_hot__
224 __attribute_pure__
225 static int32_t array_get_index_ext(const array * const a, const int ext, const char * const k, const uint32_t klen) {
226     /* invariant: [lower-1] < probe < [upper]
227      * invariant: 0 <= lower <= upper <= a->used
228      */
229     uint_fast32_t lower = 0, upper = a->used;
230     while (lower != upper) {
231         const uint_fast32_t probe = (lower + upper) / 2;
232         const int x = ((data_string *)a->sorted[probe])->ext;
233         /* (compare strings only if ext is 0 for both)*/
234         const int e = (ext|x)
235           ? ext
236           : array_keycmpb(k, klen, &a->sorted[probe]->key);
237         if (e < x)             /* e < [probe] */
238             upper = probe;     /* still: lower <= upper */
239         else if (e > x)        /* e > [probe] */
240             lower = probe + 1; /* still: lower <= upper */
241         else  /*(e == x)*/     /* found */
242             return (int32_t)probe;
243     }
244     /* not found: [lower-1] < key < [upper] = [lower] ==> insert at [lower] */
245     return -(int)lower - 1;
246 }
247 
248 data_unset *array_get_element_klen_ext(const array * const a, const int ext, const char *key, const uint32_t klen) {
249     const int32_t ipos = array_get_index_ext(a, ext, key, klen);
250     return ipos >= 0 ? a->sorted[ipos] : NULL;
251 }
252 
253 /* returns pos into a->sorted[] which contains copy of data (ptr) in a->data[]
254  * if pos >= 0, or returns -pos-1 if that is the position-1 in a->sorted[]
255  * where the key needs to be inserted (-1 to avoid -0)
256  */
257 __attribute_hot__
258 __attribute_pure__
259 static int32_t array_get_index(const array * const a, const char * const k, const uint32_t klen) {
260     /* invariant: [lower-1] < probe < [upper]
261      * invariant: 0 <= lower <= upper <= a->used
262      */
263     uint_fast32_t lower = 0, upper = a->used;
264     while (lower != upper) {
265         uint_fast32_t probe = (lower + upper) / 2;
266         const buffer * const b = &a->sorted[probe]->key;
267         /* key is non-empty (0==b->used), though possibly blank (1==b->used),
268          * if inserted into key-value array */
269         /*force_assert(b && b->used);*/
270         int cmp = array_keycmp(k, klen, b->ptr, b->used-1);
271         /*int cmp = array_keycmp(k, klen, BUF_PTR_LEN(b));*/
272         if (cmp < 0)           /* key < [probe] */
273             upper = probe;     /* still: lower <= upper */
274         else if (cmp > 0)      /* key > [probe] */
275             lower = probe + 1; /* still: lower <= upper */
276         else  /*(cmp == 0)*/   /* found */
277             return (int32_t)probe;
278     }
279     /* not found: [lower-1] < key < [upper] = [lower] ==> insert at [lower] */
280     return -(int)lower - 1;
281 }
282 
283 __attribute_hot__
284 const data_unset *array_get_element_klen(const array * const a, const char *key, const uint32_t klen) {
285     const int32_t ipos = array_get_index(a, key, klen);
286     return ipos >= 0 ? a->sorted[ipos] : NULL;
287 }
288 
289 /* non-const (data_config *) for configparser.y (not array_get_element_klen())*/
290 data_unset *array_get_data_unset(const array * const a, const char *key, const uint32_t klen) {
291     const int32_t ipos = array_get_index(a, key, klen);
292     return ipos >= 0 ? a->sorted[ipos] : NULL;
293 }
294 
295 data_unset *array_extract_element_klen(array * const a, const char *key, const uint32_t klen) {
296     const int32_t ipos = array_get_index(a, key, klen);
297     if (ipos < 0) return NULL;
298 
299     /* remove entry from a->sorted: move everything after pos one step left */
300     data_unset * const entry = a->sorted[ipos];
301     const uint32_t last_ndx = --a->used;
302     if (last_ndx != (uint32_t)ipos) {
303         data_unset ** const d = a->sorted + ipos;
304         memmove(d, d+1, (last_ndx - (uint32_t)ipos) * sizeof(*d));
305     }
306 
307     if (entry != a->data[last_ndx]) {
308         /* walk a->data[] to find data ptr */
309         /* (not checking (ndx <= last_ndx) since entry must be in a->data[]) */
310         uint32_t ndx = 0;
311         while (entry != a->data[ndx]) ++ndx;
312         a->data[ndx] = a->data[last_ndx]; /* swap with last element */
313     }
314     a->data[last_ndx] = NULL;
315     return entry;
316 }
317 
318 static data_unset *array_get_unused_element(array * const a, const data_type_t t) {
319     /* After initial startup and config, most array usage is of homogeneous types
320      * and arrays are cleared once per request, so check only the first unused
321      * element to see if it can be reused */
322   #if 1
323     data_unset * const du = (a->used < a->size) ? a->data[a->used] : NULL;
324     if (NULL != du && du->type == t) {
325         a->data[a->used] = NULL;/* make empty slot at a->used for next insert */
326         return du;
327     }
328     return NULL;
329   #else
330 	data_unset ** const data = a->data;
331 	for (uint32_t i = a->used, sz = a->size; i < sz; ++i) {
332 		if (data[i] && data[i]->type == t) {
333 			data_unset * const ds = data[i];
334 
335 			/* make empty slot at a->used for next insert */
336 			data[i] = data[a->used];
337 			data[a->used] = NULL;
338 
339 			return ds;
340 		}
341 	}
342 
343 	return NULL;
344   #endif
345 }
346 
347 __attribute_hot__
348 static data_unset * array_insert_data_at_pos(array * const a, data_unset * const entry, const uint_fast32_t pos) {
349     if (a->used < a->size) {
350         data_unset * const prev = a->data[a->used];
351         if (__builtin_expect( (prev != NULL), 0))
352             prev->fn->free(prev); /* free prior data, if any, from slot */
353     }
354     else {
355         array_extend(a, 16);
356     }
357 
358     uint_fast32_t ndx = a->used++;
359     a->data[ndx] = entry;
360 
361     /* move everything one step to the right */
362     ndx -= pos;
363     data_unset ** const d = a->sorted + pos;
364     if (__builtin_expect( (ndx), 1))
365         memmove(d+1, d, ndx * sizeof(*a->sorted));
366     *d = entry;
367     return entry;
368 }
369 
370 static data_integer * array_insert_integer_at_pos(array * const a, const uint_fast32_t pos) {
371   #if 0 /*(not currently used by lighttpd in way that reuse would occur)*/
372     data_integer *di = (data_integer *)array_get_unused_element(a,TYPE_INTEGER);
373     if (NULL == di) di = array_data_integer_init();
374   #else
375     data_integer * const di = array_data_integer_init();
376   #endif
377     return (data_integer *)array_insert_data_at_pos(a, (data_unset *)di, pos);
378 }
379 
380 __attribute_hot__
381 static data_string * array_insert_string_at_pos(array * const a, const uint_fast32_t pos) {
382     data_string *ds = (data_string *)array_get_unused_element(a, TYPE_STRING);
383     if (NULL == ds) ds = array_data_string_init();
384     return (data_string *)array_insert_data_at_pos(a, (data_unset *)ds, pos);
385 }
386 
387 __attribute_hot__
388 buffer * array_get_buf_ptr_ext(array * const a, const int ext, const char * const k, const uint32_t klen) {
389     int32_t ipos = array_get_index_ext(a, ext, k, klen);
390     if (ipos >= 0) return &((data_string *)a->sorted[ipos])->value;
391 
392     data_string * const ds = array_insert_string_at_pos(a, (uint32_t)(-ipos-1));
393     ds->ext = ext;
394     buffer_copy_string_len(&ds->key, k, klen);
395     buffer_clear(&ds->value);
396     return &ds->value;
397 }
398 
399 int * array_get_int_ptr(array * const a, const char * const k, const uint32_t klen) {
400     int32_t ipos = array_get_index(a, k, klen);
401     if (ipos >= 0) return &((data_integer *)a->sorted[ipos])->value;
402 
403     data_integer * const di =array_insert_integer_at_pos(a,(uint32_t)(-ipos-1));
404     buffer_copy_string_len(&di->key, k, klen);
405     di->value = 0;
406     return &di->value;
407 }
408 
409 buffer * array_get_buf_ptr(array * const a, const char * const k, const uint32_t klen) {
410     int32_t ipos = array_get_index(a, k, klen);
411     if (ipos >= 0) return &((data_string *)a->sorted[ipos])->value;
412 
413     data_string * const ds = array_insert_string_at_pos(a, (uint32_t)(-ipos-1));
414     buffer_copy_string_len(&ds->key, k, klen);
415     buffer_clear(&ds->value);
416     return &ds->value;
417 }
418 
419 void array_insert_value(array * const a, const char * const v, const uint32_t vlen) {
420     data_string * const ds = array_insert_string_at_pos(a, a->used);
421     buffer_clear(&ds->key);
422     buffer_copy_string_len(&ds->value, v, vlen);
423 }
424 
425 /* if entry already exists return pointer to existing entry, otherwise insert entry and return NULL */
426 __attribute_cold__
427 static data_unset **array_find_or_insert(array * const a, data_unset * const entry) {
428     force_assert(NULL != entry);
429 
430     /* push value onto end of array if there is no key */
431     if (buffer_is_unset(&entry->key)) {
432         array_insert_data_at_pos(a, entry, a->used);
433         return NULL;
434     }
435 
436     /* try to find the entry */
437     const int32_t ipos = array_get_index(a, BUF_PTR_LEN(&entry->key));
438     if (ipos >= 0) return &a->sorted[ipos];
439 
440     array_insert_data_at_pos(a, entry, (uint32_t)(-ipos - 1));
441     return NULL;
442 }
443 
444 /* replace or insert data (free existing entry) */
445 void array_replace(array * const a, data_unset * const entry) {
446     if (NULL == array_find_or_insert(a, entry)) return;
447 
448     /* find the entry (array_find_or_insert() returned non-NULL) */
449     const int32_t ipos = array_get_index(a, BUF_PTR_LEN(&entry->key));
450     force_assert(ipos >= 0);
451     data_unset *old = a->sorted[ipos];
452     force_assert(old != entry);
453     a->sorted[ipos] = entry;
454 
455     uint32_t i = 0;
456     while (i < a->used && a->data[i] != old) ++i;
457     force_assert(i != a->used);
458     a->data[i] = entry;
459 
460     old->fn->free(old);
461 }
462 
463 void array_insert_unique(array * const a, data_unset * const entry) {
464 	data_unset **old;
465 
466 	if (NULL != (old = array_find_or_insert(a, entry))) {
467 		if (entry->fn->insert_dup) {
468 			force_assert((*old)->type == entry->type);
469 			entry->fn->insert_dup(*old, entry);
470 		}
471 		entry->fn->free(entry);
472 	}
473 }
474 
475 int array_is_vlist(const array * const a) {
476 	for (uint32_t i = 0; i < a->used; ++i) {
477 		data_unset *du = a->data[i];
478 		if (!buffer_is_unset(&du->key) || du->type != TYPE_STRING) return 0;
479 	}
480 	return 1;
481 }
482 
483 int array_is_kvany(const array * const a) {
484 	for (uint32_t i = 0; i < a->used; ++i) {
485 		data_unset *du = a->data[i];
486 		if (buffer_is_unset(&du->key)) return 0;
487 	}
488 	return 1;
489 }
490 
491 int array_is_kvarray(const array * const a) {
492 	for (uint32_t i = 0; i < a->used; ++i) {
493 		data_unset *du = a->data[i];
494 		if (buffer_is_unset(&du->key) || du->type != TYPE_ARRAY) return 0;
495 	}
496 	return 1;
497 }
498 
499 int array_is_kvstring(const array * const a) {
500 	for (uint32_t i = 0; i < a->used; ++i) {
501 		data_unset *du = a->data[i];
502 		if (buffer_is_unset(&du->key) || du->type != TYPE_STRING) return 0;
503 	}
504 	return 1;
505 }
506 
507 /* array_match_*() routines follow very similar pattern, but operate on slightly
508  * different data: array key/value, prefix/suffix match, case-insensitive or not
509  * While these could be combined into fewer routines with flags to modify the
510  * behavior, the interface distinctions are useful to add clarity to the code,
511  * and the specialized routines run slightly faster */
512 
513 data_unset *
514 array_match_key_prefix_klen (const array * const a, const char * const s, const uint32_t slen)
515 {
516     for (uint32_t i = 0; i < a->used; ++i) {
517         const buffer * const key = &a->data[i]->key;
518         const uint32_t klen = buffer_clen(key);
519         if (klen <= slen && 0 == memcmp(s, key->ptr, klen))
520             return a->data[i];
521     }
522     return NULL;
523 }
524 
525 data_unset *
526 array_match_key_prefix_nc_klen (const array * const a, const char * const s, const uint32_t slen)
527 {
528     for (uint32_t i = 0; i < a->used; ++i) {
529         const buffer * const key = &a->data[i]->key;
530         const uint32_t klen = buffer_clen(key);
531         if (klen <= slen && buffer_eq_icase_ssn(s, key->ptr, klen))
532             return a->data[i];
533     }
534     return NULL;
535 }
536 
537 data_unset *
538 array_match_key_prefix (const array * const a, const buffer * const b)
539 {
540   #ifdef __clang_analyzer__
541     force_assert(b);
542   #endif
543     return array_match_key_prefix_klen(a, BUF_PTR_LEN(b));
544 }
545 
546 data_unset *
547 array_match_key_prefix_nc (const array * const a, const buffer * const b)
548 {
549     return array_match_key_prefix_nc_klen(a, BUF_PTR_LEN(b));
550 }
551 
552 const buffer *
553 array_match_value_prefix (const array * const a, const buffer * const b)
554 {
555     const uint32_t blen = buffer_clen(b);
556 
557     for (uint32_t i = 0; i < a->used; ++i) {
558         const buffer * const value = &((data_string *)a->data[i])->value;
559         const uint32_t vlen = buffer_clen(value);
560         if (vlen <= blen && 0 == memcmp(b->ptr, value->ptr, vlen))
561             return value;
562     }
563     return NULL;
564 }
565 
566 const buffer *
567 array_match_value_prefix_nc (const array * const a, const buffer * const b)
568 {
569     const uint32_t blen = buffer_clen(b);
570 
571     for (uint32_t i = 0; i < a->used; ++i) {
572         const buffer * const value = &((data_string *)a->data[i])->value;
573         const uint32_t vlen = buffer_clen(value);
574         if (vlen <= blen && buffer_eq_icase_ssn(b->ptr, value->ptr, vlen))
575             return value;
576     }
577     return NULL;
578 }
579 
580 data_unset *
581 array_match_key_suffix (const array * const a, const buffer * const b)
582 {
583     const uint32_t blen = buffer_clen(b);
584     const char * const end = b->ptr + blen;
585 
586     for (uint32_t i = 0; i < a->used; ++i) {
587         const buffer * const key = &a->data[i]->key;
588         const uint32_t klen = buffer_clen(key);
589         if (klen <= blen && 0 == memcmp(end - klen, key->ptr, klen))
590             return a->data[i];
591     }
592     return NULL;
593 }
594 
595 data_unset *
596 array_match_key_suffix_nc (const array * const a, const buffer * const b)
597 {
598     const uint32_t blen = buffer_clen(b);
599     const char * const end = b->ptr + blen;
600 
601     for (uint32_t i = 0; i < a->used; ++i) {
602         const buffer * const key = &a->data[i]->key;
603         const uint32_t klen = buffer_clen(key);
604         if (klen <= blen && buffer_eq_icase_ssn(end - klen, key->ptr, klen))
605             return a->data[i];
606     }
607     return NULL;
608 }
609 
610 const buffer *
611 array_match_value_suffix (const array * const a, const buffer * const b)
612 {
613     const uint32_t blen = buffer_clen(b);
614     const char * const end = b->ptr + blen;
615 
616     for (uint32_t i = 0; i < a->used; ++i) {
617         const buffer * const value = &((data_string *)a->data[i])->value;
618         const uint32_t vlen = buffer_clen(value);
619         if (vlen <= blen && 0 == memcmp(end - vlen, value->ptr, vlen))
620             return value;
621     }
622     return NULL;
623 }
624 
625 const buffer *
626 array_match_value_suffix_nc (const array * const a, const buffer * const b)
627 {
628     const uint32_t blen = buffer_clen(b);
629     const char * const end = b->ptr + blen;
630 
631     for (uint32_t i = 0; i < a->used; ++i) {
632         const buffer * const value = &((data_string *)a->data[i])->value;
633         const uint32_t vlen = buffer_clen(value);
634         if (vlen <= blen && buffer_eq_icase_ssn(end - vlen, value->ptr, vlen))
635             return value;
636     }
637     return NULL;
638 }
639 
640 data_unset *
641 array_match_path_or_ext (const array * const a, const buffer * const b)
642 {
643     const uint32_t blen = buffer_clen(b);
644 
645     for (uint32_t i = 0; i < a->used; ++i) {
646         /* check extension in the form "^/path" or ".ext$" */
647         const buffer * const key = &a->data[i]->key;
648         const uint32_t klen = buffer_clen(key);
649         if (klen <= blen
650             && 0 == memcmp((*(key->ptr) == '/' ? b->ptr : b->ptr + blen - klen),
651                            key->ptr, klen))
652             return a->data[i];
653     }
654     return NULL;
655 }
656