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654 lines
17 KiB
C
654 lines
17 KiB
C
/*
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tre-match-backtrack.c - TRE backtracking regex matching engine
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This software is released under a BSD-style license.
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See the file LICENSE for details and copyright.
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*/
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/*
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This matcher is for regexps that use back referencing. Regexp matching
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with back referencing is an NP-complete problem on the number of back
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references. The easiest way to match them is to use a backtracking
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routine which basically goes through all possible paths in the TNFA
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and chooses the one which results in the best (leftmost and longest)
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match. This can be spectacularly expensive and may run out of stack
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space, but there really is no better known generic algorithm. Quoting
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Henry Spencer from comp.compilers:
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<URL: http://compilers.iecc.com/comparch/article/93-03-102>
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POSIX.2 REs require longest match, which is really exciting to
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implement since the obsolete ("basic") variant also includes
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\<digit>. I haven't found a better way of tackling this than doing
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a preliminary match using a DFA (or simulation) on a modified RE
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that just replicates subREs for \<digit>, and then doing a
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backtracking match to determine whether the subRE matches were
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right. This can be rather slow, but I console myself with the
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thought that people who use \<digit> deserve very slow execution.
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(Pun unintentional but very appropriate.)
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*/
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#ifdef HAVE_CONFIG_H
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#include <config.h>
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#endif /* HAVE_CONFIG_H */
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#include "tre-alloca.h"
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#include <assert.h>
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#include <stdlib.h>
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#include <string.h>
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#ifdef HAVE_WCHAR_H
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#include <wchar.h>
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#endif /* HAVE_WCHAR_H */
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#ifdef HAVE_WCTYPE_H
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#include <wctype.h>
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#endif /* HAVE_WCTYPE_H */
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#ifndef TRE_WCHAR
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#include <ctype.h>
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#endif /* !TRE_WCHAR */
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#ifdef HAVE_MALLOC_H
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#include <malloc.h>
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#endif /* HAVE_MALLOC_H */
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#include "tre-internal.h"
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#include "tre-mem.h"
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#include "tre-match-utils.h"
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#include "tre.h"
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#include "xmalloc.h"
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typedef struct {
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int pos;
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const char *str_byte;
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#ifdef TRE_WCHAR
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const wchar_t *str_wide;
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#endif /* TRE_WCHAR */
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tre_tnfa_transition_t *state;
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int state_id;
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int next_c;
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int *tags;
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#ifdef TRE_MBSTATE
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mbstate_t mbstate;
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#endif /* TRE_MBSTATE */
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} tre_backtrack_item_t;
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typedef struct tre_backtrack_struct {
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tre_backtrack_item_t item;
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struct tre_backtrack_struct *prev;
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struct tre_backtrack_struct *next;
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} *tre_backtrack_t;
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#ifdef TRE_WCHAR
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#define BT_STACK_WIDE_IN(_str_wide) stack->item.str_wide = (_str_wide)
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#define BT_STACK_WIDE_OUT (str_wide) = stack->item.str_wide
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#else /* !TRE_WCHAR */
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#define BT_STACK_WIDE_IN(_str_wide)
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#define BT_STACK_WIDE_OUT
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#endif /* !TRE_WCHAR */
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#ifdef TRE_MBSTATE
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#define BT_STACK_MBSTATE_IN stack->item.mbstate = (mbstate)
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#define BT_STACK_MBSTATE_OUT (mbstate) = stack->item.mbstate
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#else /* !TRE_MBSTATE */
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#define BT_STACK_MBSTATE_IN
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#define BT_STACK_MBSTATE_OUT
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#endif /* !TRE_MBSTATE */
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#ifdef TRE_USE_ALLOCA
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#define tre_bt_mem_new tre_mem_newa
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#define tre_bt_mem_alloc tre_mem_alloca
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#define tre_bt_mem_destroy(obj) do { } while (/*CONSTCOND*/0)
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#else /* !TRE_USE_ALLOCA */
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#define tre_bt_mem_new tre_mem_new
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#define tre_bt_mem_alloc tre_mem_alloc
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#define tre_bt_mem_destroy tre_mem_destroy
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#endif /* !TRE_USE_ALLOCA */
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#define BT_STACK_PUSH(_pos, _str_byte, _str_wide, _state, _state_id, _next_c, _tags, _mbstate) \
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do \
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{ \
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size_t i; \
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if (!stack->next) \
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{ \
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tre_backtrack_t s; \
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s = tre_bt_mem_alloc(mem, sizeof(*s)); \
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if (!s) \
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{ \
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tre_bt_mem_destroy(mem); \
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if (tags) \
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xfree(tags); \
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if (pmatch) \
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xfree(pmatch); \
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if (states_seen) \
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xfree(states_seen); \
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return REG_ESPACE; \
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} \
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s->prev = stack; \
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s->next = NULL; \
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s->item.tags = tre_bt_mem_alloc(mem, \
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sizeof(*tags) * tnfa->num_tags); \
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if (!s->item.tags) \
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{ \
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tre_bt_mem_destroy(mem); \
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if (tags) \
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xfree(tags); \
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if (pmatch) \
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xfree(pmatch); \
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if (states_seen) \
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xfree(states_seen); \
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return REG_ESPACE; \
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} \
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stack->next = s; \
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stack = s; \
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} \
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else \
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stack = stack->next; \
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stack->item.pos = (_pos); \
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stack->item.str_byte = (_str_byte); \
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BT_STACK_WIDE_IN(_str_wide); \
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stack->item.state = (_state); \
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stack->item.state_id = (_state_id); \
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stack->item.next_c = (_next_c); \
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for (i = 0; i < tnfa->num_tags; i++) \
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stack->item.tags[i] = (_tags)[i]; \
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BT_STACK_MBSTATE_IN; \
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} \
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while (/*CONSTCOND*/0)
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#define BT_STACK_POP() \
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do \
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{ \
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size_t i; \
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assert(stack->prev); \
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pos = stack->item.pos; \
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if (type == STR_USER) \
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str_source->rewind(pos + pos_add_next, str_source->context); \
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str_byte = stack->item.str_byte; \
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BT_STACK_WIDE_OUT; \
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state = stack->item.state; \
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next_c = stack->item.next_c; \
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for (i = 0; i < tnfa->num_tags; i++) \
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tags[i] = stack->item.tags[i]; \
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BT_STACK_MBSTATE_OUT; \
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stack = stack->prev; \
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} \
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while (/*CONSTCOND*/0)
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#undef MIN
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#define MIN(a, b) ((a) <= (b) ? (a) : (b))
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reg_errcode_t
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tre_tnfa_run_backtrack(const tre_tnfa_t *tnfa, const void *string,
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int len, tre_str_type_t type, int *match_tags,
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int eflags, int *match_end_ofs)
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{
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/* State variables required by GET_NEXT_WCHAR. */
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tre_char_t prev_c = 0, next_c = 0;
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const char *str_byte = string;
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int pos = 0;
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unsigned int pos_add_next = 1;
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#ifdef TRE_WCHAR
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const wchar_t *str_wide = string;
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#ifdef TRE_MBSTATE
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mbstate_t mbstate;
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#endif /* TRE_MBSTATE */
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#endif /* TRE_WCHAR */
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int reg_notbol = eflags & REG_NOTBOL;
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int reg_noteol = eflags & REG_NOTEOL;
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int reg_newline = tnfa->cflags & REG_NEWLINE;
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size_t str_user_end = 0;
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/* These are used to remember the necessary values of the above
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variables to return to the position where the current search
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started from. */
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int next_c_start;
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const char *str_byte_start;
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int pos_start = -1;
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#ifdef TRE_WCHAR
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const wchar_t *str_wide_start;
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#endif /* TRE_WCHAR */
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#ifdef TRE_MBSTATE
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mbstate_t mbstate_start;
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#endif /* TRE_MBSTATE */
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/* End offset of best match so far, or -1 if no match found yet. */
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int match_eo = -1;
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/* Tag arrays. */
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int *next_tags, *tags = NULL;
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/* Current TNFA state. */
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tre_tnfa_transition_t *state;
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int *states_seen = NULL;
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/* Memory allocator to for allocating the backtracking stack. */
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tre_mem_t mem = tre_bt_mem_new();
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/* The backtracking stack. */
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tre_backtrack_t stack;
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tre_tnfa_transition_t *trans_i;
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regmatch_t *pmatch = NULL;
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int ret;
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#ifdef TRE_MBSTATE
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memset(&mbstate, '\0', sizeof(mbstate));
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#endif /* TRE_MBSTATE */
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if (!mem)
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return REG_ESPACE;
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stack = tre_bt_mem_alloc(mem, sizeof(*stack));
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if (!stack)
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{
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ret = REG_ESPACE;
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goto error_exit;
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}
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stack->prev = NULL;
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stack->next = NULL;
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DPRINT(("tnfa_execute_backtrack, input type %d\n", type));
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DPRINT(("len = %d\n", len));
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#ifdef TRE_USE_ALLOCA
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tags = alloca(sizeof(*tags) * tnfa->num_tags);
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pmatch = alloca(sizeof(*pmatch) * tnfa->num_submatches);
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states_seen = alloca(sizeof(*states_seen) * tnfa->num_states);
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#else /* !TRE_USE_ALLOCA */
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if (tnfa->num_tags)
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{
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tags = xmalloc(sizeof(*tags) * tnfa->num_tags);
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if (!tags)
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{
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ret = REG_ESPACE;
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goto error_exit;
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}
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}
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if (tnfa->num_submatches)
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{
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pmatch = xmalloc(sizeof(*pmatch) * tnfa->num_submatches);
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if (!pmatch)
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{
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ret = REG_ESPACE;
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goto error_exit;
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}
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}
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if (tnfa->num_states)
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{
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states_seen = xmalloc(sizeof(*states_seen) * tnfa->num_states);
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if (!states_seen)
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{
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ret = REG_ESPACE;
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goto error_exit;
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}
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}
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#endif /* !TRE_USE_ALLOCA */
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retry:
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{
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size_t i;
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for (i = 0; i < tnfa->num_tags; i++)
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{
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tags[i] = -1;
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if (match_tags)
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match_tags[i] = -1;
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}
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for (i = 0; i < tnfa->num_states; i++)
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states_seen[i] = 0;
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}
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state = NULL;
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pos = pos_start;
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if (type == STR_USER)
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str_source->rewind(pos + pos_add_next, str_source->context);
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GET_NEXT_WCHAR();
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pos_start = pos;
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next_c_start = next_c;
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str_byte_start = str_byte;
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#ifdef TRE_WCHAR
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str_wide_start = str_wide;
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#endif /* TRE_WCHAR */
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#ifdef TRE_MBSTATE
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mbstate_start = mbstate;
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#endif /* TRE_MBSTATE */
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/* Handle initial states. */
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next_tags = NULL;
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for (trans_i = tnfa->initial; trans_i->state; trans_i++)
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{
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DPRINT(("> init %p, prev_c %lc\n", trans_i->state, (tre_cint_t)prev_c));
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if (trans_i->assertions && CHECK_ASSERTIONS(trans_i->assertions))
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{
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DPRINT(("assert failed\n"));
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continue;
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}
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if (state == NULL)
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{
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/* Start from this state. */
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state = trans_i->state;
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next_tags = trans_i->tags;
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}
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else
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{
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/* Backtrack to this state. */
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DPRINT(("saving state %d for backtracking\n", trans_i->state_id));
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BT_STACK_PUSH(pos, str_byte, str_wide, trans_i->state,
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trans_i->state_id, next_c, tags, mbstate);
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{
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int *tmp = trans_i->tags;
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if (tmp)
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while (*tmp >= 0)
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stack->item.tags[*tmp++] = pos;
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}
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}
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}
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if (next_tags)
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for (; *next_tags >= 0; next_tags++)
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tags[*next_tags] = pos;
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DPRINT(("entering match loop, pos %d, str_byte %p\n", pos, str_byte));
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DPRINT(("pos:chr/code | state and tags\n"));
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DPRINT(("-------------+------------------------------------------------\n"));
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if (state == NULL)
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goto backtrack;
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while (/*CONSTCOND*/1)
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{
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tre_tnfa_transition_t *next_state;
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int empty_br_match;
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DPRINT(("start loop\n"));
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if (state == tnfa->final)
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{
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DPRINT((" match found, %d %d\n", match_eo, pos));
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if (match_eo < pos
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|| (match_eo == pos
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&& match_tags
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&& tre_tag_order(tnfa->num_tags, tnfa->tag_directions,
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tags, match_tags)))
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{
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size_t i;
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/* This match wins the previous match. */
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DPRINT((" win previous\n"));
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match_eo = pos;
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if (match_tags)
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for (i = 0; i < tnfa->num_tags; i++)
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match_tags[i] = tags[i];
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}
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/* Our TNFAs never have transitions leaving from the final state,
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so we jump right to backtracking. */
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goto backtrack;
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}
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#ifdef TRE_DEBUG
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DPRINT(("%3d:%2lc/%05d | %p ", pos, (tre_cint_t)next_c, (int)next_c,
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state));
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{
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int i;
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for (i = 0; i < tnfa->num_tags; i++)
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DPRINT(("%d%s", tags[i], i < tnfa->num_tags - 1 ? ", " : ""));
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DPRINT(("\n"));
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}
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#endif /* TRE_DEBUG */
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/* Go to the next character in the input string. */
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empty_br_match = 0;
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trans_i = state;
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if (trans_i->state && trans_i->assertions & ASSERT_BACKREF)
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{
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/* This is a back reference state. All transitions leaving from
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this state have the same back reference "assertion". Instead
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of reading the next character, we match the back reference. */
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regoff_t so, eo, bt = trans_i->u.backref;
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regoff_t bt_len;
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regoff_t result;
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DPRINT((" should match back reference %d\n", bt));
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/* Get the substring we need to match against. Remember to
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turn off REG_NOSUB temporarily. */
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tre_fill_pmatch(bt + 1, pmatch, tnfa->cflags & /*LINTED*/!REG_NOSUB,
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tnfa, tags, pos);
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/* LINTED */so = pmatch[bt].rm_so;
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/* LINTED */eo = pmatch[bt].rm_eo;
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bt_len = eo - so;
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#ifdef TRE_DEBUG
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{
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int slen;
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if (len < 0)
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slen = bt_len;
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else
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slen = MIN(bt_len, len - pos);
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if (type == STR_BYTE)
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{
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DPRINT((" substring (len %d) is [%d, %d[: '%.*s'\n",
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bt_len, so, eo, bt_len, (char*)string + so));
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DPRINT((" current string is '%.*s'\n", slen, str_byte - 1));
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}
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#ifdef TRE_WCHAR
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else if (type == STR_WIDE)
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{
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DPRINT((" substring (len %d) is [%d, %d[: '%.*" STRF "'\n",
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bt_len, so, eo, bt_len, (wchar_t*)string + so));
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DPRINT((" current string is '%.*" STRF "'\n",
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slen, str_wide - 1));
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}
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#endif /* TRE_WCHAR */
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}
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#endif
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if (len < 0)
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{
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if (type == STR_USER)
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result = str_source->compare((unsigned)so, (unsigned)pos,
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(unsigned)bt_len,
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str_source->context);
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#ifdef TRE_WCHAR
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else if (type == STR_WIDE)
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result = wcsncmp((const wchar_t*)string + so, str_wide - 1,
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(size_t)bt_len);
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#endif /* TRE_WCHAR */
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else
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/* LINTED */result = strncmp((const char*)string + so, str_byte - 1,
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(size_t)bt_len);
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}
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else if (len - pos < bt_len)
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result = 1;
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#ifdef TRE_WCHAR
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else if (type == STR_WIDE)
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result = wmemcmp((const wchar_t*)string + so, str_wide - 1,
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(size_t)bt_len);
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#endif /* TRE_WCHAR */
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else
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/* LINTED */result = memcmp((const char*)string + so, str_byte - 1,
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(size_t)bt_len);
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if (result == 0)
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{
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/* Back reference matched. Check for infinite loop. */
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if (bt_len == 0)
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empty_br_match = 1;
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if (empty_br_match && states_seen[trans_i->state_id])
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{
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DPRINT((" avoid loop\n"));
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goto backtrack;
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}
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states_seen[trans_i->state_id] = empty_br_match;
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/* Advance in input string and resync `prev_c', `next_c'
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and pos. */
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DPRINT((" back reference matched\n"));
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/* LINTED */str_byte += bt_len - 1;
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#ifdef TRE_WCHAR
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/* LINTED */str_wide += bt_len - 1;
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#endif /* TRE_WCHAR */
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/* LINTED */pos += bt_len - 1;
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GET_NEXT_WCHAR();
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DPRINT((" pos now %d\n", pos));
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}
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else
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{
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DPRINT((" back reference did not match\n"));
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goto backtrack;
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}
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}
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else
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|
{
|
|
/* Check for end of string. */
|
|
if (len < 0)
|
|
{
|
|
if (type == STR_USER)
|
|
{
|
|
if (str_user_end)
|
|
goto backtrack;
|
|
}
|
|
else if (next_c == L'\0')
|
|
goto backtrack;
|
|
}
|
|
else
|
|
{
|
|
if (pos >= len)
|
|
goto backtrack;
|
|
}
|
|
|
|
/* Read the next character. */
|
|
GET_NEXT_WCHAR();
|
|
}
|
|
|
|
next_state = NULL;
|
|
for (trans_i = state; trans_i->state; trans_i++)
|
|
{
|
|
DPRINT((" transition %d-%d (%c-%c) %d to %d\n",
|
|
trans_i->code_min, trans_i->code_max,
|
|
trans_i->code_min, trans_i->code_max,
|
|
trans_i->assertions, trans_i->state_id));
|
|
if (trans_i->code_min <= (tre_cint_t)prev_c
|
|
&& trans_i->code_max >= (tre_cint_t)prev_c)
|
|
{
|
|
if (trans_i->assertions
|
|
&& (CHECK_ASSERTIONS(trans_i->assertions)
|
|
|| CHECK_CHAR_CLASSES(trans_i, tnfa, eflags)))
|
|
{
|
|
DPRINT((" assertion failed\n"));
|
|
continue;
|
|
}
|
|
|
|
if (next_state == NULL)
|
|
{
|
|
/* First matching transition. */
|
|
DPRINT((" Next state is %d\n", trans_i->state_id));
|
|
next_state = trans_i->state;
|
|
next_tags = trans_i->tags;
|
|
}
|
|
else
|
|
{
|
|
/* Second matching transition. We may need to backtrack here
|
|
to take this transition instead of the first one, so we
|
|
push this transition in the backtracking stack so we can
|
|
jump back here if needed. */
|
|
DPRINT((" saving state %d for backtracking\n",
|
|
trans_i->state_id));
|
|
BT_STACK_PUSH(pos, str_byte, str_wide, trans_i->state,
|
|
trans_i->state_id, next_c, tags, mbstate);
|
|
{
|
|
int *tmp;
|
|
for (tmp = trans_i->tags; tmp && *tmp >= 0; tmp++)
|
|
stack->item.tags[*tmp] = pos;
|
|
}
|
|
#if 0 /* XXX - it's important not to look at all transitions here to keep
|
|
the stack small! */
|
|
break;
|
|
#endif
|
|
}
|
|
}
|
|
}
|
|
|
|
if (next_state != NULL)
|
|
{
|
|
/* Matching transitions were found. Take the first one. */
|
|
state = next_state;
|
|
|
|
/* Update the tag values. */
|
|
if (next_tags)
|
|
while (*next_tags >= 0)
|
|
tags[*next_tags++] = pos;
|
|
}
|
|
else
|
|
{
|
|
backtrack:
|
|
/* A matching transition was not found. Try to backtrack. */
|
|
if (stack->prev)
|
|
{
|
|
DPRINT((" backtracking\n"));
|
|
#if ASSERT_BACKREF
|
|
if (stack->item.state->assertions)
|
|
{
|
|
DPRINT((" states_seen[%d] = 0\n",
|
|
stack->item.state_id));
|
|
states_seen[stack->item.state_id] = 0;
|
|
}
|
|
#endif
|
|
|
|
BT_STACK_POP();
|
|
}
|
|
else if (match_eo < 0)
|
|
{
|
|
/* Try starting from a later position in the input string. */
|
|
/* Check for end of string. */
|
|
if (len < 0)
|
|
{
|
|
if (next_c == L'\0')
|
|
{
|
|
DPRINT(("end of string.\n"));
|
|
break;
|
|
}
|
|
}
|
|
else
|
|
{
|
|
if (pos >= len)
|
|
{
|
|
DPRINT(("end of string.\n"));
|
|
break;
|
|
}
|
|
}
|
|
DPRINT(("restarting from next start position\n"));
|
|
next_c = next_c_start;
|
|
#ifdef TRE_MBSTATE
|
|
mbstate = mbstate_start;
|
|
#endif /* TRE_MBSTATE */
|
|
str_byte = str_byte_start;
|
|
#ifdef TRE_WCHAR
|
|
str_wide = str_wide_start;
|
|
#endif /* TRE_WCHAR */
|
|
goto retry;
|
|
}
|
|
else
|
|
{
|
|
DPRINT(("finished\n"));
|
|
break;
|
|
}
|
|
}
|
|
}
|
|
|
|
ret = match_eo >= 0 ? REG_OK : REG_NOMATCH;
|
|
*match_end_ofs = match_eo;
|
|
|
|
error_exit:
|
|
tre_bt_mem_destroy(mem);
|
|
#ifndef TRE_USE_ALLOCA
|
|
if (tags)
|
|
xfree(tags);
|
|
if (pmatch)
|
|
xfree(pmatch);
|
|
if (states_seen)
|
|
xfree(states_seen);
|
|
#endif /* !TRE_USE_ALLOCA */
|
|
|
|
return ret;
|
|
}
|