I32 nestroot; /* root parens we are in - used by accept */
I32 extralen;
I32 seen_zerolen;
- I32 seen_evals;
regnode **open_parens; /* pointers to open parens */
regnode **close_parens; /* pointers to close parens */
regnode *opend; /* END node in program */
#define RExC_nestroot (pRExC_state->nestroot)
#define RExC_extralen (pRExC_state->extralen)
#define RExC_seen_zerolen (pRExC_state->seen_zerolen)
-#define RExC_seen_evals (pRExC_state->seen_evals)
#define RExC_utf8 (pRExC_state->utf8)
#define RExC_uni_semantics (pRExC_state->uni_semantics)
#define RExC_orig_utf8 (pRExC_state->orig_utf8)
#define WORST 0 /* Worst case. */
#define HASWIDTH 0x01 /* Known to match non-null strings. */
-/* Simple enough to be STAR/PLUS operand, in an EXACT node must be a single
+/* Simple enough to be STAR/PLUS operand; in an EXACT node must be a single
* character, and if utf8, must be invariant. Note that this is not the same
* thing as REGNODE_SIMPLE */
#define SIMPLE 0x02
#define FOLD cBOOL(RExC_flags & RXf_PMf_FOLD)
-#define OOB_UNICODE 12345678
#define OOB_NAMEDCLASS -1
+/* There is no code point that is out-of-bounds, so this is problematic. But
+ * its only current use is to initialize a variable that is always set before
+ * looked at. */
+#define OOB_UNICODE 0xDEADBEEF
+
#define CHR_SVLEN(sv) (UTF ? sv_len_utf8(sv) : SvCUR(sv))
#define CHR_DIST(a,b) (UTF ? utf8_distance(a,b) : a - b)
* problematic sequences. This delta is used by the caller to adjust the
* min length of the match, and the delta between min and max, so that the
* optimizer doesn't reject these possibilities based on size constraints.
- * 2) These sequences are not currently correctly handled by the trie code
- * either, so it changes the joined node type to ops that are not handled
- * by trie's, those new ops being EXACTFU_SS and EXACTFU_TRICKYFOLD.
+ * 2) These sequences require special handling by the trie code, so it
+ * changes the joined node type to ops for the trie's benefit, those new
+ * ops being EXACTFU_SS and EXACTFU_TRICKYFOLD.
* 3) This is sufficient for the two Greek sequences (described below), but
* the one involving the Sharp s (\xDF) needs more. The node type
* EXACTFU_SS is used for an EXACTFU node that contains at least one "ss"
* the end pointer. */
if ( !first ) {
first = cur;
- trietype = noper_trietype;
if ( noper_trietype == NOTHING ) {
#if !defined(DEBUGGING) && !defined(NOJUMPTRIE)
regnode * const noper_next = regnext( noper );
U8 noper_next_trietype = noper_next_type ? TRIE_TYPE( noper_next_type ) :0;
#endif
- if ( noper_next_trietype )
+ if ( noper_next_trietype ) {
trietype = noper_next_trietype;
+ } else if (noper_next_type) {
+ /* a NOTHING regop is 1 regop wide. We need at least two
+ * for a trie so we can't merge this in */
+ first = NULL;
+ }
+ } else {
+ trietype = noper_trietype;
}
} else {
if ( trietype == NOTHING )
data->flags |= (OP(scan) == MEOL
? SF_BEFORE_MEOL
: SF_BEFORE_SEOL);
+ SCAN_COMMIT(pRExC_state, data, minlenp);
+
}
else if ( PL_regkind[OP(scan)] == BRANCHJ
/* Lookbehind, or need to calculate parens/evals/stclass: */
* the original pattern needs upgrading to utf8.
*/
-bool
+static bool
S_compile_runtime_code(pTHX_ RExC_state_t * const pRExC_state,
char *pat, STRLEN plen)
{
int n = 0;
STRLEN s;
char *p, *newpat;
- int newlen = plen + 5; /* allow for "qr''x" extra chars */
+ int newlen = plen + 6; /* allow for "qr''x\0" extra chars */
SV *sv, *qr_ref;
dSP;
REGEXP *
Perl_re_op_compile(pTHX_ SV ** const patternp, int pat_count,
OP *expr, const regexp_engine* eng, REGEXP *VOL old_re,
- int *is_bare_re, U32 orig_rx_flags, U32 pm_flags)
+ bool *is_bare_re, U32 orig_rx_flags, U32 pm_flags)
{
dVAR;
REGEXP *rx;
pRExC_state->num_code_blocks = 0;
if (is_bare_re)
- *is_bare_re = 0;
+ *is_bare_re = FALSE;
if (expr && (expr->op_type == OP_LIST ||
(expr->op_type == OP_NULL && expr->op_targ == OP_LIST))) {
OP *o = NULL;
int n = 0;
bool utf8 = 0;
+ STRLEN orig_patlen = 0;
if (pRExC_state->num_code_blocks) {
o = cLISTOPx(expr)->op_first;
o = o->op_sibling;;
}
+ if ((SvAMAGIC(pat) || SvAMAGIC(msv)) &&
+ (sv = amagic_call(pat, msv, concat_amg, AMGf_assign)))
+ {
+ sv_setsv(pat, sv);
+ /* overloading involved: all bets are off over literal
+ * code. Pretend we haven't seen it */
+ pRExC_state->num_code_blocks -= n;
+ n = 0;
+ rx = NULL;
+
+ }
+ else {
+ while (SvAMAGIC(msv)
+ && (sv = AMG_CALLunary(msv, string_amg))
+ && sv != msv)
+ {
+ msv = sv;
+ SvGETMAGIC(msv);
+ }
+ if (SvROK(msv) && SvTYPE(SvRV(msv)) == SVt_REGEXP)
+ msv = SvRV(msv);
+ orig_patlen = SvCUR(pat);
+ sv_catsv_nomg(pat, msv);
+ rx = msv;
+ if (code)
+ pRExC_state->code_blocks[n-1].end = SvCUR(pat)-1;
+ }
+
/* extract any code blocks within any embedded qr//'s */
- rx = msv;
- if (SvROK(rx))
- rx = SvRV(rx);
- if (SvTYPE(rx) == SVt_REGEXP
+ if (rx && SvTYPE(rx) == SVt_REGEXP
&& RX_ENGINE((REGEXP*)rx)->op_comp)
{
pRExC_state->num_code_blocks += ri->num_code_blocks;
for (i=0; i < ri->num_code_blocks; i++) {
struct reg_code_block *src, *dst;
- STRLEN offset = SvCUR(pat)
+ STRLEN offset = orig_patlen
+ ((struct regexp *)SvANY(rx))->pre_prefix;
assert(n < pRExC_state->num_code_blocks);
src = &ri->code_blocks[i];
}
}
}
-
- if ((SvAMAGIC(pat) || SvAMAGIC(msv)) &&
- (sv = amagic_call(pat, msv, concat_amg, AMGf_assign)))
- {
- sv_setsv(pat, sv);
- /* overloading involved: all bets are off over literal
- * code. Pretend we haven't seen it */
- pRExC_state->num_code_blocks -= n;
- n = 0;
-
- }
- else {
- if (SvROK(msv) && SvTYPE(SvRV(msv)) == SVt_REGEXP) {
- msv = SvRV(msv);
- PL_reginterp_cnt +=
- RX_SEEN_EVALS((REGEXP *)MUTABLE_PTR(msv));
- }
- sv_catsv_nomg(pat, msv);
- if (code)
- pRExC_state->code_blocks[n-1].end = SvCUR(pat)-1;
- }
}
SvSETMAGIC(pat);
}
- else
+ else {
+ SV *sv;
pat = *patternp;
+ while (SvAMAGIC(pat)
+ && (sv = AMG_CALLunary(pat, string_amg))
+ && sv != pat)
+ {
+ pat = sv;
+ SvGETMAGIC(pat);
+ }
+ }
/* handle bare regex: foo =~ $re */
{
re = SvRV(re);
if (SvTYPE(re) == SVt_REGEXP) {
if (is_bare_re)
- *is_bare_re = 1;
+ *is_bare_re = TRUE;
SvREFCNT_inc(re);
Safefree(pRExC_state->code_blocks);
return (REGEXP*)re;
RExC_seen = 0;
RExC_in_lookbehind = 0;
RExC_seen_zerolen = *exp == '^' ? -1 : 0;
- RExC_seen_evals = 0;
RExC_extralen = 0;
RExC_override_recoding = 0;
RExC_emit_bound = ri->program + RExC_size + 1;
pRExC_state->code_index = 0;
- /* Store the count of eval-groups for security checks: */
- RExC_rx->seen_evals = RExC_seen_evals;
REGC((U8)REG_MAGIC, (char*) RExC_emit++);
if (reg(pRExC_state, 0, &flags,1) == NULL) {
ReREFCNT_dec(rx);
r->intflags |= PREGf_VERBARG_SEEN;
if (RExC_seen & REG_SEEN_CUTGROUP)
r->intflags |= PREGf_CUTGROUP_SEEN;
+ if (pm_flags & PMf_USE_RE_EVAL)
+ r->intflags |= PREGf_USE_RE_EVAL;
if (RExC_paren_names)
RXp_PAREN_NAMES(r) = MUTABLE_HV(SvREFCNT_inc(RExC_paren_names));
else
do {
RExC_parse++;
} while (isALNUM(*RExC_parse));
+ } else {
+ RExC_parse++; /* so the <- from the vFAIL is after the offending character */
+ vFAIL("Group name must start with a non-digit word character");
}
-
if ( flags ) {
SV* sv_name
= newSVpvn_flags(name_start, (int)(RExC_parse - name_start),
Perl_croak(aTHX_ "panic: bad flag %lx in reg_scan_name",
(unsigned long) flags);
}
- /* NOT REACHED */
+ assert(0); /* NOT REACHED */
}
return NULL;
}
return;
}
-
void
Perl__invlist_union_maybe_complement_2nd(pTHX_ SV* const a, SV* const b, bool complement_b, SV** output)
{
return TRUE;
}
+PERL_STATIC_INLINE UV
+S_invlist_highest(pTHX_ SV* const invlist)
+{
+ /* Returns the highest code point that matches an inversion list. This API
+ * has an ambiguity, as it returns 0 under either the highest is actually
+ * 0, or if the list is empty. If this distinction matters to you, check
+ * for emptiness before calling this function */
+
+ UV len = invlist_len(invlist);
+ UV *array;
+
+ PERL_ARGS_ASSERT_INVLIST_HIGHEST;
+
+ if (len == 0) {
+ return 0;
+ }
+
+ array = invlist_array(invlist);
+
+ /* The last element in the array in the inversion list always starts a
+ * range that goes to infinity. That range may be for code points that are
+ * matched in the inversion list, or it may be for ones that aren't
+ * matched. In the latter case, the highest code point in the set is one
+ * less than the beginning of this range; otherwise it is the final element
+ * of this range: infinity */
+ return (ELEMENT_RANGE_MATCHES_INVLIST(len - 1))
+ ? UV_MAX
+ : array[len - 1] - 1;
+}
+
#ifndef PERL_IN_XSUB_RE
SV *
Perl__invlist_contents(pTHX_ SV* const invlist)
num = sv_dat ? *((I32 *)SvPVX(sv_dat)) : 0;
}
goto gen_recurse_regop;
- /* NOT REACHED */
+ assert(0); /* NOT REACHED */
case '+':
if (!(RExC_parse[0] >= '1' && RExC_parse[0] <= '9')) {
RExC_parse++;
nextchar(pRExC_state);
return ret;
} /* named and numeric backreferences */
- /* NOT REACHED */
+ assert(0); /* NOT REACHED */
case '?': /* (??...) */
is_logical = 1;
/* this is a pre-compiled code block (?{...}) */
cb = &pRExC_state->code_blocks[pRExC_state->code_index];
RExC_parse = RExC_start + cb->end;
- if (SIZE_ONLY)
- RExC_seen_evals++;
- else {
+ if (!SIZE_ONLY) {
OP *o = cb->block;
if (cb->src_regex) {
n = add_data(pRExC_state, 2, "rl");
nextchar(pRExC_state);
if (is_logical) {
+ regnode *eval;
ret = reg_node(pRExC_state, LOGICAL);
- if (!SIZE_ONLY)
+ eval = reganode(pRExC_state, EVAL, n);
+ if (!SIZE_ONLY) {
ret->flags = 2;
- REGTAIL(pRExC_state, ret, reganode(pRExC_state, EVAL, n));
+ /* for later propagation into (??{}) return value */
+ eval->flags = (U8) (RExC_flags & RXf_PMf_COMPILETIME);
+ }
+ REGTAIL(pRExC_state, ret, eval);
/* deal with the length of this later - MJD */
return ret;
}
}
else
FAIL("Junk on end of regexp"); /* "Can't happen". */
- /* NOTREACHED */
+ assert(0); /* NOTREACHED */
}
if (RExC_in_lookbehind) {
return uv;
}
+PERL_STATIC_INLINE void
+S_alloc_maybe_populate_EXACT(pTHX_ RExC_state_t *pRExC_state, regnode *node, STRLEN len, UV code_point)
+{
+ /* This knows the details about sizing an EXACTish node, and potentially
+ * populating it with a single character. If <len> is non-zero, it assumes
+ * that the node has already been populated, and just does the sizing,
+ * ignoring <code_point>. Otherwise it looks at <code_point> and
+ * calculates what <len> should be. In pass 1, it sizes the node
+ * appropriately. In pass 2, it additionally will populate the node's
+ * STRING with <code_point>, if <len> is 0.
+ *
+ * It knows that under FOLD, UTF characters and the Latin Sharp S must be
+ * folded (the latter only when the rules indicate it can match 'ss') */
+
+ bool len_passed_in = cBOOL(len != 0);
+ U8 character[UTF8_MAXBYTES_CASE+1];
+
+ PERL_ARGS_ASSERT_ALLOC_MAYBE_POPULATE_EXACT;
+
+ if (! len_passed_in) {
+ if (UTF) {
+ if (FOLD) {
+ to_uni_fold(NATIVE_TO_UNI(code_point), character, &len);
+ }
+ else {
+ uvchr_to_utf8( character, code_point);
+ len = UTF8SKIP(character);
+ }
+ }
+ else if (! FOLD
+ || code_point != LATIN_SMALL_LETTER_SHARP_S
+ || MORE_ASCII_RESTRICTED
+ || ! AT_LEAST_UNI_SEMANTICS)
+ {
+ *character = (U8) code_point;
+ len = 1;
+ }
+ else {
+ *character = 's';
+ *(character + 1) = 's';
+ len = 2;
+ }
+ }
+
+ if (SIZE_ONLY) {
+ RExC_size += STR_SZ(len);
+ }
+ else {
+ RExC_emit += STR_SZ(len);
+ STR_LEN(node) = len;
+ if (! len_passed_in) {
+ Copy((char *) character, STRING(node), len, char);
+ }
+ }
+}
/*
- regatom - the lowest level
sequence, we return.
Note: we have to be careful with escapes, as they can be both literal
- and special, and in the case of \10 and friends can either, depending
- on context. Specifically there are two separate switches for handling
+ and special, and in the case of \10 and friends, context determines which.
+
+ A summary of the code structure is:
+
+ switch (first_byte) {
+ cases for each special:
+ handle this special;
+ break;
+ case '\\':
+ switch (2nd byte) {
+ cases for each unambiguous special:
+ handle this special;
+ break;
+ cases for each ambigous special/literal:
+ disambiguate;
+ if (special) handle here
+ else goto defchar;
+ default: // unambiguously literal:
+ goto defchar;
+ }
+ default: // is a literal char
+ // FALL THROUGH
+ defchar:
+ create EXACTish node for literal;
+ while (more input and node isn't full) {
+ switch (input_byte) {
+ cases for each special;
+ make sure parse pointer is set so that the next call to
+ regatom will see this special first
+ goto loopdone; // EXACTish node terminated by prev. char
+ default:
+ append char to EXACTISH node;
+ }
+ get next input byte;
+ }
+ loopdone:
+ }
+ return the generated node;
+
+ Specifically there are two separate switches for handling
escape sequences, with the one for handling literal escapes requiring
a dummy entry for all of the special escapes that are actually handled
by the other.
*flagp |= HASWIDTH;
goto finish_meta_pat;
case 'w':
- switch (get_regex_charset(RExC_flags)) {
- case REGEX_LOCALE_CHARSET:
- op = ALNUML;
- break;
- case REGEX_UNICODE_CHARSET:
- op = ALNUMU;
- break;
- case REGEX_ASCII_RESTRICTED_CHARSET:
- case REGEX_ASCII_MORE_RESTRICTED_CHARSET:
- op = ALNUMA;
- break;
- case REGEX_DEPENDS_CHARSET:
- op = ALNUM;
- break;
- default:
- goto bad_charset;
+ op = ALNUM + get_regex_charset(RExC_flags);
+ if (op > ALNUMA) { /* /aa is same as /a */
+ op = ALNUMA;
}
ret = reg_node(pRExC_state, op);
*flagp |= HASWIDTH|SIMPLE;
goto finish_meta_pat;
case 'W':
- switch (get_regex_charset(RExC_flags)) {
- case REGEX_LOCALE_CHARSET:
- op = NALNUML;
- break;
- case REGEX_UNICODE_CHARSET:
- op = NALNUMU;
- break;
- case REGEX_ASCII_RESTRICTED_CHARSET:
- case REGEX_ASCII_MORE_RESTRICTED_CHARSET:
- op = NALNUMA;
- break;
- case REGEX_DEPENDS_CHARSET:
- op = NALNUM;
- break;
- default:
- goto bad_charset;
+ op = NALNUM + get_regex_charset(RExC_flags);
+ if (op > NALNUMA) { /* /aa is same as /a */
+ op = NALNUMA;
}
ret = reg_node(pRExC_state, op);
*flagp |= HASWIDTH|SIMPLE;
case 'b':
RExC_seen_zerolen++;
RExC_seen |= REG_SEEN_LOOKBEHIND;
- switch (get_regex_charset(RExC_flags)) {
- case REGEX_LOCALE_CHARSET:
- op = BOUNDL;
- break;
- case REGEX_UNICODE_CHARSET:
- op = BOUNDU;
- break;
- case REGEX_ASCII_RESTRICTED_CHARSET:
- case REGEX_ASCII_MORE_RESTRICTED_CHARSET:
- op = BOUNDA;
- break;
- case REGEX_DEPENDS_CHARSET:
- op = BOUND;
- break;
- default:
- goto bad_charset;
+ op = BOUND + get_regex_charset(RExC_flags);
+ if (op > BOUNDA) { /* /aa is same as /a */
+ op = BOUNDA;
}
ret = reg_node(pRExC_state, op);
FLAGS(ret) = get_regex_charset(RExC_flags);
case 'B':
RExC_seen_zerolen++;
RExC_seen |= REG_SEEN_LOOKBEHIND;
- switch (get_regex_charset(RExC_flags)) {
- case REGEX_LOCALE_CHARSET:
- op = NBOUNDL;
- break;
- case REGEX_UNICODE_CHARSET:
- op = NBOUNDU;
- break;
- case REGEX_ASCII_RESTRICTED_CHARSET:
- case REGEX_ASCII_MORE_RESTRICTED_CHARSET:
- op = NBOUNDA;
- break;
- case REGEX_DEPENDS_CHARSET:
- op = NBOUND;
- break;
- default:
- goto bad_charset;
+ op = NBOUND + get_regex_charset(RExC_flags);
+ if (op > NBOUNDA) { /* /aa is same as /a */
+ op = NBOUNDA;
}
ret = reg_node(pRExC_state, op);
FLAGS(ret) = get_regex_charset(RExC_flags);
*flagp |= SIMPLE;
goto finish_meta_pat;
case 's':
- switch (get_regex_charset(RExC_flags)) {
- case REGEX_LOCALE_CHARSET:
- op = SPACEL;
- break;
- case REGEX_UNICODE_CHARSET:
- op = SPACEU;
- break;
- case REGEX_ASCII_RESTRICTED_CHARSET:
- case REGEX_ASCII_MORE_RESTRICTED_CHARSET:
- op = SPACEA;
- break;
- case REGEX_DEPENDS_CHARSET:
- op = SPACE;
- break;
- default:
- goto bad_charset;
+ op = SPACE + get_regex_charset(RExC_flags);
+ if (op > SPACEA) { /* /aa is same as /a */
+ op = SPACEA;
}
ret = reg_node(pRExC_state, op);
*flagp |= HASWIDTH|SIMPLE;
goto finish_meta_pat;
case 'S':
- switch (get_regex_charset(RExC_flags)) {
- case REGEX_LOCALE_CHARSET:
- op = NSPACEL;
- break;
- case REGEX_UNICODE_CHARSET:
- op = NSPACEU;
- break;
- case REGEX_ASCII_RESTRICTED_CHARSET:
- case REGEX_ASCII_MORE_RESTRICTED_CHARSET:
- op = NSPACEA;
- break;
- case REGEX_DEPENDS_CHARSET:
- op = NSPACE;
- break;
- default:
- goto bad_charset;
- }
- ret = reg_node(pRExC_state, op);
- *flagp |= HASWIDTH|SIMPLE;
- goto finish_meta_pat;
- case 'd':
- switch (get_regex_charset(RExC_flags)) {
- case REGEX_LOCALE_CHARSET:
- op = DIGITL;
- break;
- case REGEX_ASCII_RESTRICTED_CHARSET:
- case REGEX_ASCII_MORE_RESTRICTED_CHARSET:
- op = DIGITA;
- break;
- case REGEX_DEPENDS_CHARSET: /* No difference between these */
- case REGEX_UNICODE_CHARSET:
- op = DIGIT;
- break;
- default:
- goto bad_charset;
+ op = NSPACE + get_regex_charset(RExC_flags);
+ if (op > NSPACEA) { /* /aa is same as /a */
+ op = NSPACEA;
}
ret = reg_node(pRExC_state, op);
*flagp |= HASWIDTH|SIMPLE;
goto finish_meta_pat;
case 'D':
- switch (get_regex_charset(RExC_flags)) {
- case REGEX_LOCALE_CHARSET:
- op = NDIGITL;
- break;
- case REGEX_ASCII_RESTRICTED_CHARSET:
- case REGEX_ASCII_MORE_RESTRICTED_CHARSET:
- op = NDIGITA;
- break;
- case REGEX_DEPENDS_CHARSET: /* No difference between these */
- case REGEX_UNICODE_CHARSET:
- op = NDIGIT;
- break;
- default:
- goto bad_charset;
+ op = NDIGIT;
+ goto join_D_and_d;
+ case 'd':
+ op = DIGIT;
+ join_D_and_d:
+ {
+ U8 offset = get_regex_charset(RExC_flags);
+ if (offset == REGEX_UNICODE_CHARSET) {
+ offset = REGEX_DEPENDS_CHARSET;
+ }
+ else if (offset == REGEX_ASCII_MORE_RESTRICTED_CHARSET) {
+ offset = REGEX_ASCII_RESTRICTED_CHARSET;
+ }
+ op += offset;
}
ret = reg_node(pRExC_state, op);
*flagp |= HASWIDTH|SIMPLE;
vFAIL("Reference to nonexistent or unclosed group");
}
if (!isg && num > 9 && num >= RExC_npar)
+ /* Probably a character specified in octal, e.g. \35 */
goto defchar;
else {
char * const parse_start = RExC_parse - 1; /* MJD */
bool is_exactfu_sharp_s;
ender = 0;
- node_type = ((! FOLD) ? EXACT
- : (LOC)
- ? EXACTFL
- : (MORE_ASCII_RESTRICTED)
- ? EXACTFA
- : (AT_LEAST_UNI_SEMANTICS)
- ? EXACTFU
- : EXACTF);
+ if (! FOLD) {
+ node_type = EXACT;
+ }
+ else {
+ node_type = get_regex_charset(RExC_flags);
+ if (node_type >= REGEX_ASCII_RESTRICTED_CHARSET) {
+ node_type--; /* /a is same as /u, and map /aa's offset to
+ what /a's would have been, so there is no
+ hole */
+ }
+ node_type += EXACTF;
+ }
ret = reg_node(pRExC_state, node_type);
s = STRING(ret);
break;
}
case 'x':
- if (*++p == '{') {
- char* const e = strchr(p, '}');
+ {
+ STRLEN brace_len = len;
+ UV result;
+ const char* error_msg;
- if (!e) {
- RExC_parse = p + 1;
- vFAIL("Missing right brace on \\x{}");
+ bool valid = grok_bslash_x(p,
+ &result,
+ &brace_len,
+ &error_msg,
+ 1);
+ p += brace_len;
+ if (! valid) {
+ RExC_parse = p; /* going to die anyway; point
+ to exact spot of failure */
+ vFAIL(error_msg);
}
else {
- I32 flags = PERL_SCAN_ALLOW_UNDERSCORES
- | PERL_SCAN_DISALLOW_PREFIX;
- STRLEN numlen = e - p - 1;
- ender = grok_hex(p + 1, &numlen, &flags, NULL);
- if (ender > 0xff)
- REQUIRE_UTF8;
- p = e + 1;
+ ender = result;
}
+ if (PL_encoding && ender < 0x100) {
+ goto recode_encoding;
+ }
+ if (ender > 0xff) {
+ REQUIRE_UTF8;
+ }
+ break;
}
- else {
- I32 flags = PERL_SCAN_DISALLOW_PREFIX;
- STRLEN numlen = 2;
- ender = grok_hex(p, &numlen, &flags, NULL);
- p += numlen;
- }
- if (PL_encoding && ender < 0x100)
- goto recode_encoding;
- break;
case 'c':
p++;
ender = grok_bslash_c(*p++, UTF, SIZE_ONLY);
break;
case '0': case '1': case '2': case '3':case '4':
- case '5': case '6': case '7': case '8':case '9':
+ case '5': case '6': case '7':
if (*p == '0' ||
(isDIGIT(p[1]) && atoi(p) >= RExC_npar))
{
FAIL("Trailing \\");
/* FALL THROUGH */
default:
- if (!SIZE_ONLY&& isALPHA(*p)) {
+ if (!SIZE_ONLY&& isALNUMC(*p)) {
ckWARN2reg(p + 1, "Unrecognized escape \\%.1s passed through", p);
}
goto normal_default;
if (len == 1 && UNI_IS_INVARIANT(ender))
*flagp |= SIMPLE;
- if (SIZE_ONLY)
- RExC_size += STR_SZ(len);
- else {
- STR_LEN(ret) = len;
- RExC_emit += STR_SZ(len);
- }
+ alloc_maybe_populate_EXACT(pRExC_state, ret, len, 0);
}
break;
}
return(ret);
-
-/* Jumped to when an unrecognized character set is encountered */
-bad_charset:
- Perl_croak(aTHX_ "panic: Unknown regex character set encoding: %u", get_regex_charset(RExC_flags));
- return(NULL);
}
STATIC char *
switch (skip) {
case 4:
if (memEQ(posixcc, "word", 4)) /* this is not POSIX, this is the Perl \w */
- namedclass = complement ? ANYOF_NALNUM : ANYOF_ALNUM;
+ namedclass = ANYOF_ALNUM;
break;
case 5:
/* Names all of length 5. */
switch (posixcc[4]) {
case 'a':
if (memEQ(posixcc, "alph", 4)) /* alpha */
- namedclass = complement ? ANYOF_NALPHA : ANYOF_ALPHA;
+ namedclass = ANYOF_ALPHA;
break;
case 'e':
if (memEQ(posixcc, "spac", 4)) /* space */
- namedclass = complement ? ANYOF_NPSXSPC : ANYOF_PSXSPC;
+ namedclass = ANYOF_PSXSPC;
break;
case 'h':
if (memEQ(posixcc, "grap", 4)) /* graph */
- namedclass = complement ? ANYOF_NGRAPH : ANYOF_GRAPH;
+ namedclass = ANYOF_GRAPH;
break;
case 'i':
if (memEQ(posixcc, "asci", 4)) /* ascii */
- namedclass = complement ? ANYOF_NASCII : ANYOF_ASCII;
+ namedclass = ANYOF_ASCII;
break;
case 'k':
if (memEQ(posixcc, "blan", 4)) /* blank */
- namedclass = complement ? ANYOF_NBLANK : ANYOF_BLANK;
+ namedclass = ANYOF_BLANK;
break;
case 'l':
if (memEQ(posixcc, "cntr", 4)) /* cntrl */
- namedclass = complement ? ANYOF_NCNTRL : ANYOF_CNTRL;
+ namedclass = ANYOF_CNTRL;
break;
case 'm':
if (memEQ(posixcc, "alnu", 4)) /* alnum */
- namedclass = complement ? ANYOF_NALNUMC : ANYOF_ALNUMC;
+ namedclass = ANYOF_ALNUMC;
break;
case 'r':
if (memEQ(posixcc, "lowe", 4)) /* lower */
- namedclass = complement ? ANYOF_NLOWER : ANYOF_LOWER;
+ namedclass = ANYOF_LOWER;
else if (memEQ(posixcc, "uppe", 4)) /* upper */
- namedclass = complement ? ANYOF_NUPPER : ANYOF_UPPER;
+ namedclass = ANYOF_UPPER;
break;
case 't':
if (memEQ(posixcc, "digi", 4)) /* digit */
- namedclass = complement ? ANYOF_NDIGIT : ANYOF_DIGIT;
+ namedclass = ANYOF_DIGIT;
else if (memEQ(posixcc, "prin", 4)) /* print */
- namedclass = complement ? ANYOF_NPRINT : ANYOF_PRINT;
+ namedclass = ANYOF_PRINT;
else if (memEQ(posixcc, "punc", 4)) /* punct */
- namedclass = complement ? ANYOF_NPUNCT : ANYOF_PUNCT;
+ namedclass = ANYOF_PUNCT;
break;
}
break;
case 6:
if (memEQ(posixcc, "xdigit", 6))
- namedclass = complement ? ANYOF_NXDIGIT : ANYOF_XDIGIT;
+ namedclass = ANYOF_XDIGIT;
break;
}
if (namedclass == OOB_NAMEDCLASS)
Simple_vFAIL3("POSIX class [:%.*s:] unknown",
t - s - 1, s + 1);
+
+ /* The #defines are structured so each complement is +1 to
+ * the normal one */
+ if (complement) {
+ namedclass++;
+ }
assert (posixcc[skip] == ':');
assert (posixcc[skip+1] == ']');
} else if (!SIZE_ONLY) {
* determined at run-time
* run_time_list is a SV* that contains text names of properties that are to
* be computed at run time. This concatenates <Xpropertyname>
- * to it, apppropriately
+ * to it, appropriately
* This is essentially DO_POSIX, but we know only the Latin1 values at compile
* time */
#define DO_POSIX_LATIN1_ONLY_KNOWN(node, class, destlist, sourcelist, \
}
/* Like DO_POSIX_LATIN1_ONLY_KNOWN, but for the complement. A combination of
- * this and DO_N_POSIX */
+ * this and DO_N_POSIX. Sets <matches_above_unicode> only if it can; unchanged
+ * otherwise */
#define DO_N_POSIX_LATIN1_ONLY_KNOWN(node, class, destlist, sourcelist, \
- l1_sourcelist, Xpropertyname, run_time_list) \
+ l1_sourcelist, Xpropertyname, run_time_list, matches_above_unicode) \
if (AT_LEAST_ASCII_RESTRICTED) { \
_invlist_union_complement_2nd(destlist, sourcelist, &destlist); \
} \
else { \
Perl_sv_catpvf(aTHX_ run_time_list, "!utf8::%s\n", Xpropertyname); \
+ matches_above_unicode = TRUE; \
if (LOC) { \
- ANYOF_CLASS_SET(node, namedclass); \
+ ANYOF_CLASS_SET(node, namedclass); \
} \
else { \
SV* scratch_list = NULL; \
} \
}
-STATIC U8
-S_set_regclass_bit_fold(pTHX_ RExC_state_t *pRExC_state, regnode* node, const U8 value, SV** invlist_ptr, AV** alternate_ptr)
-{
-
- /* Handle the setting of folds in the bitmap for non-locale ANYOF nodes.
- * Locale folding is done at run-time, so this function should not be
- * called for nodes that are for locales.
- *
- * This function sets the bit corresponding to the fold of the input
- * 'value', if not already set. The fold of 'f' is 'F', and the fold of
- * 'F' is 'f'.
- *
- * It also knows about the characters that are in the bitmap that have
- * folds that are matchable only outside it, and sets the appropriate lists
- * and flags.
- *
- * It returns the number of bits that actually changed from 0 to 1 */
-
- U8 stored = 0;
- U8 fold;
-
- PERL_ARGS_ASSERT_SET_REGCLASS_BIT_FOLD;
-
- fold = (AT_LEAST_UNI_SEMANTICS) ? PL_fold_latin1[value]
- : PL_fold[value];
-
- /* It assumes the bit for 'value' has already been set */
- if (fold != value && ! ANYOF_BITMAP_TEST(node, fold)) {
- ANYOF_BITMAP_SET(node, fold);
- stored++;
- }
- if (_HAS_NONLATIN1_FOLD_CLOSURE_ONLY_FOR_USE_BY_REGCOMP_DOT_C_AND_REGEXEC_DOT_C(value) && (! isASCII(value) || ! MORE_ASCII_RESTRICTED)) {
- /* Certain Latin1 characters have matches outside the bitmap. To get
- * here, 'value' is one of those characters. None of these matches is
- * valid for ASCII characters under /aa, which have been excluded by
- * the 'if' above. The matches fall into three categories:
- * 1) They are singly folded-to or -from an above 255 character, as
- * LATIN SMALL LETTER Y WITH DIAERESIS and LATIN CAPITAL LETTER Y
- * WITH DIAERESIS;
- * 2) They are part of a multi-char fold with another character in the
- * bitmap, only LATIN SMALL LETTER SHARP S => "ss" fits that bill;
- * 3) They are part of a multi-char fold with a character not in the
- * bitmap, such as various ligatures.
- * We aren't dealing fully with multi-char folds, except we do deal
- * with the pattern containing a character that has a multi-char fold
- * (not so much the inverse).
- * For types 1) and 3), the matches only happen when the target string
- * is utf8; that's not true for 2), and we set a flag for it.
- *
- * The code below adds to the passed in inversion list the single fold
- * closures for 'value'. The values are hard-coded here so that an
- * innocent-looking character class, like /[ks]/i won't have to go out
- * to disk to find the possible matches. XXX It would be better to
- * generate these via regen, in case a new version of the Unicode
- * standard adds new mappings, though that is not really likely. */
- switch (value) {
- case 'k':
- case 'K':
- /* KELVIN SIGN */
- *invlist_ptr = add_cp_to_invlist(*invlist_ptr, 0x212A);
- break;
- case 's':
- case 'S':
- /* LATIN SMALL LETTER LONG S */
- *invlist_ptr = add_cp_to_invlist(*invlist_ptr, 0x017F);
- break;
- case MICRO_SIGN:
- *invlist_ptr = add_cp_to_invlist(*invlist_ptr,
- GREEK_SMALL_LETTER_MU);
- *invlist_ptr = add_cp_to_invlist(*invlist_ptr,
- GREEK_CAPITAL_LETTER_MU);
- break;
- case LATIN_CAPITAL_LETTER_A_WITH_RING_ABOVE:
- case LATIN_SMALL_LETTER_A_WITH_RING_ABOVE:
- /* ANGSTROM SIGN */
- *invlist_ptr = add_cp_to_invlist(*invlist_ptr, 0x212B);
- if (DEPENDS_SEMANTICS) { /* See DEPENDS comment below */
- *invlist_ptr = add_cp_to_invlist(*invlist_ptr,
- PL_fold_latin1[value]);
- }
- break;
- case LATIN_SMALL_LETTER_Y_WITH_DIAERESIS:
- *invlist_ptr = add_cp_to_invlist(*invlist_ptr,
- LATIN_CAPITAL_LETTER_Y_WITH_DIAERESIS);
- break;
- case LATIN_SMALL_LETTER_SHARP_S:
- *invlist_ptr = add_cp_to_invlist(*invlist_ptr,
- LATIN_CAPITAL_LETTER_SHARP_S);
-
- /* Under /a, /d, and /u, this can match the two chars "ss" */
- if (! MORE_ASCII_RESTRICTED) {
- add_alternate(alternate_ptr, (U8 *) "ss", 2);
-
- /* And under /u or /a, it can match even if the target is
- * not utf8 */
- if (AT_LEAST_UNI_SEMANTICS) {
- ANYOF_FLAGS(node) |= ANYOF_NONBITMAP_NON_UTF8;
- }
- }
- break;
- case 'F': case 'f':
- case 'I': case 'i':
- case 'L': case 'l':
- case 'T': case 't':
- case 'A': case 'a':
- case 'H': case 'h':
- case 'J': case 'j':
- case 'N': case 'n':
- case 'W': case 'w':
- case 'Y': case 'y':
- /* These all are targets of multi-character folds from code
- * points that require UTF8 to express, so they can't match
- * unless the target string is in UTF-8, so no action here is
- * necessary, as regexec.c properly handles the general case
- * for UTF-8 matching */
- break;
- default:
- /* Use deprecated warning to increase the chances of this
- * being output */
- ckWARN2regdep(RExC_parse, "Perl folding rules are not up-to-date for 0x%x; please use the perlbug utility to report;", value);
- break;
- }
- }
- else if (DEPENDS_SEMANTICS
- && ! isASCII(value)
- && PL_fold_latin1[value] != value)
- {
- /* Under DEPENDS rules, non-ASCII Latin1 characters match their
- * folds only when the target string is in UTF-8. We add the fold
- * here to the list of things to match outside the bitmap, which
- * won't be looked at unless it is UTF8 (or else if something else
- * says to look even if not utf8, but those things better not happen
- * under DEPENDS semantics. */
- *invlist_ptr = add_cp_to_invlist(*invlist_ptr, PL_fold_latin1[value]);
- }
-
- return stored;
-}
-
-
-PERL_STATIC_INLINE U8
-S_set_regclass_bit(pTHX_ RExC_state_t *pRExC_state, regnode* node, const U8 value, SV** invlist_ptr, AV** alternate_ptr)
-{
- /* This inline function sets a bit in the bitmap if not already set, and if
- * appropriate, its fold, returning the number of bits that actually
- * changed from 0 to 1 */
-
- U8 stored;
-
- PERL_ARGS_ASSERT_SET_REGCLASS_BIT;
-
- if (ANYOF_BITMAP_TEST(node, value)) { /* Already set */
- return 0;
- }
-
- ANYOF_BITMAP_SET(node, value);
- stored = 1;
-
- if (FOLD && ! LOC) { /* Locale folds aren't known until runtime */
- stored += set_regclass_bit_fold(pRExC_state, node, value, invlist_ptr, alternate_ptr);
- }
-
- return stored;
-}
-
STATIC void
S_add_alternate(pTHX_ AV** alternate_ptr, U8* string, STRLEN len)
{
return;
}
+/* The names of properties whose definitions are not known at compile time are
+ * stored in this SV, after a constant heading. So if the length has been
+ * changed since initialization, then there is a run-time definition. */
+#define HAS_NONLOCALE_RUNTIME_PROPERTY_DEFINITION (SvCUR(listsv) != initial_listsv_len)
+
/*
parse a class specification and produce either an ANYOF node that
matches the pattern or perhaps will be optimized into an EXACTish node
UV value = 0; /* XXX:dmq: needs to be referenceable (unfortunately) */
register regnode *ret;
STRLEN numlen;
- IV namedclass;
+ IV namedclass = OOB_NAMEDCLASS;
char *rangebegin = NULL;
bool need_class = 0;
bool allow_full_fold = TRUE; /* Assume wants multi-char folding */
STRLEN initial_listsv_len = 0; /* Kind of a kludge to see if it is more
than just initialized. */
SV* properties = NULL; /* Code points that match \p{} \P{} */
+ SV* posixes = NULL; /* Code points that match classes like, [:word:],
+ extended beyond the Latin1 range */
UV element_count = 0; /* Number of distinct elements in the class.
Optimizations may be possible if this is tiny */
UV n;
/* Set if a component of this character class is user-defined; just passed
* on to the engine */
- UV has_user_defined_property = 0;
-
- /* code points this node matches that can't be stored in the bitmap */
- SV* nonbitmap = NULL;
-
- /* The items that are to match that aren't stored in the bitmap, but are a
- * result of things that are stored there. This is the fold closure of
- * such a character, either because it has DEPENDS semantics and shouldn't
- * be matched unless the target string is utf8, or is a code point that is
- * too large for the bit map, as for example, the fold of the MICRO SIGN is
- * above 255. This all is solely for performance reasons. By having this
- * code know the outside-the-bitmap folds that the bitmapped characters are
- * involved with, we don't have to go out to disk to find the list of
- * matches, unless the character class includes code points that aren't
- * storable in the bit map. That means that a character class with an 's'
- * in it, for example, doesn't need to go out to disk to find everything
- * that matches. A 2nd list is used so that the 'nonbitmap' list is kept
- * empty unless there is something whose fold we don't know about, and will
- * have to go out to the disk to find. */
- SV* l1_fold_invlist = NULL;
+ bool has_user_defined_property = FALSE;
+
+ /* inversion list of code points this node matches only when the target
+ * string is in UTF-8. (Because is under /d) */
+ SV* depends_list = NULL;
+
+ /* inversion list of code points this node matches. For much of the
+ * function, it includes only those that match regardless of the utf8ness
+ * of the target string */
+ SV* cp_list = NULL;
/* List of multi-character folds that are matched by this node */
AV* unicode_alternate = NULL;
#ifdef EBCDIC
+ /* In a range, counts how many 0-2 of the ends of it came from literals,
+ * not escapes. Thus we can tell if 'A' was input vs \x{C1} */
UV literal_endpoint = 0;
#endif
UV stored = 0; /* how many chars stored in the bitmap */
+ bool invert = FALSE; /* Is this class to be complemented */
+
+ /* Is there any thing like \W or [:^digit:] that matches above the legal
+ * Unicode range? */
+ bool runtime_posix_matches_above_Unicode = FALSE;
regnode * const orig_emit = RExC_emit; /* Save the original RExC_emit in
case we need to change the emitted regop to an EXACT. */
if (UCHARAT(RExC_parse) == '^') { /* Complement of range. */
RExC_naughty++;
RExC_parse++;
- if (!SIZE_ONLY)
- ANYOF_FLAGS(ret) |= ANYOF_INVERT;
+ invert = TRUE;
/* We have decided to not allow multi-char folds in inverted character
* classes, due to the confusion that can happen, especially with
SV** invlistsvp;
SV* invlist;
char* name;
+
if (UCHARAT(RExC_parse) == '^') {
RExC_parse++;
n--;
Perl_sv_catpvf(aTHX_ listsv, "%cutf8::%s\n",
(value == 'p' ? '+' : '!'),
name);
- has_user_defined_property = 1;
+ has_user_defined_property = TRUE;
/* We don't know yet, so have to assume that the
* property could match something in the Latin1 range,
- * hence something that isn't utf8 */
+ * hence something that isn't utf8. Note that this
+ * would cause things in <depends_list> to match
+ * inappropriately, except that any \p{}, including
+ * this one forces Unicode semantics, which means there
+ * is <no depends_list> */
ANYOF_FLAGS(ret) |= ANYOF_NONBITMAP_NON_UTF8;
}
else {
/* Here, did get the swash and its inversion list. If
* the swash is from a user-defined property, then this
* whole character class should be regarded as such */
- SV** user_defined_svp =
- hv_fetchs(MUTABLE_HV(SvRV(swash)),
- "USER_DEFINED", FALSE);
- if (user_defined_svp) {
- has_user_defined_property
- |= SvUV(*user_defined_svp);
- }
+ has_user_defined_property =
+ _is_swash_user_defined(swash);
/* Invert if asking for the complement */
if (value == 'P') {
- _invlist_union_complement_2nd(properties, invlist, &properties);
+ _invlist_union_complement_2nd(properties,
+ invlist,
+ &properties);
/* The swash can't be used as-is, because we've
* inverted things; delay removing it to here after
}
break;
case 'x':
- if (*RExC_parse == '{') {
- I32 flags = PERL_SCAN_ALLOW_UNDERSCORES
- | PERL_SCAN_DISALLOW_PREFIX;
- char * const e = strchr(RExC_parse++, '}');
- if (!e)
- vFAIL("Missing right brace on \\x{}");
-
- numlen = e - RExC_parse;
- value = grok_hex(RExC_parse, &numlen, &flags, NULL);
- RExC_parse = e + 1;
- }
- else {
- I32 flags = PERL_SCAN_DISALLOW_PREFIX;
- numlen = 2;
- value = grok_hex(RExC_parse, &numlen, &flags, NULL);
+ RExC_parse--; /* function expects to be pointed at the 'x' */
+ {
+ const char* error_msg;
+ bool valid = grok_bslash_x(RExC_parse,
+ &value,
+ &numlen,
+ &error_msg,
+ 1);
RExC_parse += numlen;
+ if (! valid) {
+ vFAIL(error_msg);
+ }
}
if (PL_encoding && value < 0x100)
goto recode_encoding;
literal_endpoint++;
#endif
- if (namedclass > OOB_NAMEDCLASS) { /* this is a named class \blah */
-
- /* What matches in a locale is not known until runtime, so need to
- * (one time per class) allocate extra space to pass to regexec.
- * The space will contain a bit for each named class that is to be
- * matched against. This isn't needed for \p{} and pseudo-classes,
- * as they are not affected by locale, and hence are dealt with
- * separately */
- if (LOC && namedclass < ANYOF_MAX && ! need_class) {
+ /* What matches in a locale is not known until runtime. This
+ * includes what the Posix classes (like \w, [:space:]) match.
+ * Room must be reserved (one time per class) to store such
+ * classes, either if Perl is compiled so that locale nodes always
+ * should have this space, or if there is such class info to be
+ * stored. The space will contain a bit for each named class that
+ * is to be matched against. This isn't needed for \p{} and
+ * pseudo-classes, as they are not affected by locale, and hence
+ * are dealt with separately */
+ if (LOC
+ && ! need_class
+ && (ANYOF_LOCALE == ANYOF_CLASS
+ || (namedclass > OOB_NAMEDCLASS && namedclass < ANYOF_MAX)))
+ {
need_class = 1;
if (SIZE_ONLY) {
RExC_size += ANYOF_CLASS_SKIP - ANYOF_SKIP;
ANYOF_FLAGS(ret) |= ANYOF_CLASS;
}
+ if (namedclass > OOB_NAMEDCLASS) { /* this is a named class \blah */
+
/* a bad range like a-\d, a-[:digit:]. The '-' is taken as a
* literal, as is the character that began the false range, i.e.
* the 'a' in the examples */
ckWARN4reg(RExC_parse,
"False [] range \"%*.*s\"",
w, w, rangebegin);
-
- stored +=
- set_regclass_bit(pRExC_state, ret, '-', &l1_fold_invlist, &unicode_alternate);
- if (prevvalue < 256) {
- stored +=
- set_regclass_bit(pRExC_state, ret, (U8) prevvalue, &l1_fold_invlist, &unicode_alternate);
- }
- else {
- nonbitmap = add_cp_to_invlist(nonbitmap, prevvalue);
- }
+ cp_list = add_cp_to_invlist(cp_list, '-');
+ cp_list = add_cp_to_invlist(cp_list, prevvalue);
}
range = 0; /* this was not a true range */
+ element_count += 2; /* So counts for three values */
}
- if (!SIZE_ONLY) {
-
- /* Possible truncation here but in some 64-bit environments
- * the compiler gets heartburn about switch on 64-bit values.
- * A similar issue a little earlier when switching on value.
- * --jhi */
+ if (! SIZE_ONLY) {
switch ((I32)namedclass) {
case ANYOF_ALNUMC: /* C's alnum, in contrast to \w */
- DO_POSIX_LATIN1_ONLY_KNOWN(ret, namedclass, properties,
+ DO_POSIX_LATIN1_ONLY_KNOWN(ret, namedclass, posixes,
PL_PosixAlnum, PL_L1PosixAlnum, "XPosixAlnum", listsv);
break;
case ANYOF_NALNUMC:
- DO_N_POSIX_LATIN1_ONLY_KNOWN(ret, namedclass, properties,
- PL_PosixAlnum, PL_L1PosixAlnum, "XPosixAlnum", listsv);
+ DO_N_POSIX_LATIN1_ONLY_KNOWN(ret, namedclass, posixes,
+ PL_PosixAlnum, PL_L1PosixAlnum, "XPosixAlnum", listsv,
+ runtime_posix_matches_above_Unicode);
break;
case ANYOF_ALPHA:
- DO_POSIX_LATIN1_ONLY_KNOWN(ret, namedclass, properties,
+ DO_POSIX_LATIN1_ONLY_KNOWN(ret, namedclass, posixes,
PL_PosixAlpha, PL_L1PosixAlpha, "XPosixAlpha", listsv);
break;
case ANYOF_NALPHA:
- DO_N_POSIX_LATIN1_ONLY_KNOWN(ret, namedclass, properties,
- PL_PosixAlpha, PL_L1PosixAlpha, "XPosixAlpha", listsv);
+ DO_N_POSIX_LATIN1_ONLY_KNOWN(ret, namedclass, posixes,
+ PL_PosixAlpha, PL_L1PosixAlpha, "XPosixAlpha", listsv,
+ runtime_posix_matches_above_Unicode);
break;
case ANYOF_ASCII:
if (LOC) {
ANYOF_CLASS_SET(ret, namedclass);
}
else {
- _invlist_union(properties, PL_ASCII, &properties);
+ _invlist_union(posixes, PL_ASCII, &posixes);
}
break;
case ANYOF_NASCII:
ANYOF_CLASS_SET(ret, namedclass);
}
else {
- _invlist_union_complement_2nd(properties,
- PL_ASCII, &properties);
+ _invlist_union_complement_2nd(posixes,
+ PL_ASCII, &posixes);
if (DEPENDS_SEMANTICS) {
ANYOF_FLAGS(ret) |= ANYOF_NON_UTF8_LATIN1_ALL;
}
}
break;
case ANYOF_BLANK:
- DO_POSIX(ret, namedclass, properties,
+ DO_POSIX(ret, namedclass, posixes,
PL_PosixBlank, PL_XPosixBlank);
break;
case ANYOF_NBLANK:
- DO_N_POSIX(ret, namedclass, properties,
+ DO_N_POSIX(ret, namedclass, posixes,
PL_PosixBlank, PL_XPosixBlank);
break;
case ANYOF_CNTRL:
- DO_POSIX(ret, namedclass, properties,
+ DO_POSIX(ret, namedclass, posixes,
PL_PosixCntrl, PL_XPosixCntrl);
break;
case ANYOF_NCNTRL:
- DO_N_POSIX(ret, namedclass, properties,
+ DO_N_POSIX(ret, namedclass, posixes,
PL_PosixCntrl, PL_XPosixCntrl);
break;
case ANYOF_DIGIT:
/* There are no digits in the Latin1 range outside of
* ASCII, so call the macro that doesn't have to resolve
* them */
- DO_POSIX_LATIN1_ONLY_KNOWN_L1_RESOLVED(ret, namedclass, properties,
+ DO_POSIX_LATIN1_ONLY_KNOWN_L1_RESOLVED(ret, namedclass, posixes,
PL_PosixDigit, "XPosixDigit", listsv);
break;
case ANYOF_NDIGIT:
- DO_N_POSIX_LATIN1_ONLY_KNOWN(ret, namedclass, properties,
- PL_PosixDigit, PL_PosixDigit, "XPosixDigit", listsv);
+ DO_N_POSIX_LATIN1_ONLY_KNOWN(ret, namedclass, posixes,
+ PL_PosixDigit, PL_PosixDigit, "XPosixDigit", listsv,
+ runtime_posix_matches_above_Unicode);
break;
case ANYOF_GRAPH:
- DO_POSIX_LATIN1_ONLY_KNOWN(ret, namedclass, properties,
+ DO_POSIX_LATIN1_ONLY_KNOWN(ret, namedclass, posixes,
PL_PosixGraph, PL_L1PosixGraph, "XPosixGraph", listsv);
break;
case ANYOF_NGRAPH:
- DO_N_POSIX_LATIN1_ONLY_KNOWN(ret, namedclass, properties,
- PL_PosixGraph, PL_L1PosixGraph, "XPosixGraph", listsv);
+ DO_N_POSIX_LATIN1_ONLY_KNOWN(ret, namedclass, posixes,
+ PL_PosixGraph, PL_L1PosixGraph, "XPosixGraph", listsv,
+ runtime_posix_matches_above_Unicode);
break;
case ANYOF_HORIZWS:
- /* For these, we use the nonbitmap, as /d doesn't make a
+ /* For these, we use the cp_list, as /d doesn't make a
* difference in what these match. There would be problems
* if these characters had folds other than themselves, as
- * nonbitmap is subject to folding. It turns out that \h
+ * cp_list is subject to folding. It turns out that \h
* is just a synonym for XPosixBlank */
- _invlist_union(nonbitmap, PL_XPosixBlank, &nonbitmap);
+ _invlist_union(cp_list, PL_XPosixBlank, &cp_list);
break;
case ANYOF_NHORIZWS:
- _invlist_union_complement_2nd(nonbitmap,
- PL_XPosixBlank, &nonbitmap);
+ _invlist_union_complement_2nd(cp_list,
+ PL_XPosixBlank, &cp_list);
break;
case ANYOF_LOWER:
case ANYOF_NLOWER:
Xname = "XPosixLower";
}
if (namedclass == ANYOF_LOWER) {
- DO_POSIX_LATIN1_ONLY_KNOWN(ret, namedclass, properties,
+ DO_POSIX_LATIN1_ONLY_KNOWN(ret, namedclass, posixes,
ascii_source, l1_source, Xname, listsv);
}
else {
DO_N_POSIX_LATIN1_ONLY_KNOWN(ret, namedclass,
- properties, ascii_source, l1_source, Xname, listsv);
+ posixes, ascii_source, l1_source, Xname, listsv,
+ runtime_posix_matches_above_Unicode);
}
break;
}
case ANYOF_PRINT:
- DO_POSIX_LATIN1_ONLY_KNOWN(ret, namedclass, properties,
+ DO_POSIX_LATIN1_ONLY_KNOWN(ret, namedclass, posixes,
PL_PosixPrint, PL_L1PosixPrint, "XPosixPrint", listsv);
break;
case ANYOF_NPRINT:
- DO_N_POSIX_LATIN1_ONLY_KNOWN(ret, namedclass, properties,
- PL_PosixPrint, PL_L1PosixPrint, "XPosixPrint", listsv);
+ DO_N_POSIX_LATIN1_ONLY_KNOWN(ret, namedclass, posixes,
+ PL_PosixPrint, PL_L1PosixPrint, "XPosixPrint", listsv,
+ runtime_posix_matches_above_Unicode);
break;
case ANYOF_PUNCT:
- DO_POSIX_LATIN1_ONLY_KNOWN(ret, namedclass, properties,
+ DO_POSIX_LATIN1_ONLY_KNOWN(ret, namedclass, posixes,
PL_PosixPunct, PL_L1PosixPunct, "XPosixPunct", listsv);
break;
case ANYOF_NPUNCT:
- DO_N_POSIX_LATIN1_ONLY_KNOWN(ret, namedclass, properties,
- PL_PosixPunct, PL_L1PosixPunct, "XPosixPunct", listsv);
+ DO_N_POSIX_LATIN1_ONLY_KNOWN(ret, namedclass, posixes,
+ PL_PosixPunct, PL_L1PosixPunct, "XPosixPunct", listsv,
+ runtime_posix_matches_above_Unicode);
break;
case ANYOF_PSXSPC:
- DO_POSIX(ret, namedclass, properties,
+ DO_POSIX(ret, namedclass, posixes,
PL_PosixSpace, PL_XPosixSpace);
break;
case ANYOF_NPSXSPC:
- DO_N_POSIX(ret, namedclass, properties,
+ DO_N_POSIX(ret, namedclass, posixes,
PL_PosixSpace, PL_XPosixSpace);
break;
case ANYOF_SPACE:
- DO_POSIX(ret, namedclass, properties,
+ DO_POSIX(ret, namedclass, posixes,
PL_PerlSpace, PL_XPerlSpace);
break;
case ANYOF_NSPACE:
- DO_N_POSIX(ret, namedclass, properties,
+ DO_N_POSIX(ret, namedclass, posixes,
PL_PerlSpace, PL_XPerlSpace);
break;
case ANYOF_UPPER: /* Same as LOWER, above */
Xname = "XPosixUpper";
}
if (namedclass == ANYOF_UPPER) {
- DO_POSIX_LATIN1_ONLY_KNOWN(ret, namedclass, properties,
+ DO_POSIX_LATIN1_ONLY_KNOWN(ret, namedclass, posixes,
ascii_source, l1_source, Xname, listsv);
}
else {
DO_N_POSIX_LATIN1_ONLY_KNOWN(ret, namedclass,
- properties, ascii_source, l1_source, Xname, listsv);
+ posixes, ascii_source, l1_source, Xname, listsv,
+ runtime_posix_matches_above_Unicode);
}
break;
}
case ANYOF_ALNUM: /* Really is 'Word' */
- DO_POSIX_LATIN1_ONLY_KNOWN(ret, namedclass, properties,
+ DO_POSIX_LATIN1_ONLY_KNOWN(ret, namedclass, posixes,
PL_PosixWord, PL_L1PosixWord, "XPosixWord", listsv);
break;
case ANYOF_NALNUM:
- DO_N_POSIX_LATIN1_ONLY_KNOWN(ret, namedclass, properties,
- PL_PosixWord, PL_L1PosixWord, "XPosixWord", listsv);
+ DO_N_POSIX_LATIN1_ONLY_KNOWN(ret, namedclass, posixes,
+ PL_PosixWord, PL_L1PosixWord, "XPosixWord", listsv,
+ runtime_posix_matches_above_Unicode);
break;
case ANYOF_VERTWS:
- /* For these, we use the nonbitmap, as /d doesn't make a
+ /* For these, we use the cp_list, as /d doesn't make a
* difference in what these match. There would be problems
* if these characters had folds other than themselves, as
- * nonbitmap is subject to folding */
- _invlist_union(nonbitmap, PL_VertSpace, &nonbitmap);
+ * cp_list is subject to folding */
+ _invlist_union(cp_list, PL_VertSpace, &cp_list);
break;
case ANYOF_NVERTWS:
- _invlist_union_complement_2nd(nonbitmap,
- PL_VertSpace, &nonbitmap);
+ _invlist_union_complement_2nd(cp_list,
+ PL_VertSpace, &cp_list);
break;
case ANYOF_XDIGIT:
- DO_POSIX(ret, namedclass, properties,
+ DO_POSIX(ret, namedclass, posixes,
PL_PosixXDigit, PL_XPosixXDigit);
break;
case ANYOF_NXDIGIT:
- DO_N_POSIX(ret, namedclass, properties,
+ DO_N_POSIX(ret, namedclass, posixes,
PL_PosixXDigit, PL_XPosixXDigit);
break;
case ANYOF_MAX:
break;
}
- continue;
+ continue; /* Go get next character */
}
} /* end of namedclass \blah */
}
}
else {
- prevvalue = value; /* save the beginning of the range */
+ prevvalue = value; /* save the beginning of the potential range */
if (RExC_parse+1 < RExC_end
&& *RExC_parse == '-'
&& RExC_parse[1] != ']')
"False [] range \"%*.*s\"",
w, w, rangebegin);
}
- if (!SIZE_ONLY)
- stored +=
- set_regclass_bit(pRExC_state, ret, '-', &l1_fold_invlist, &unicode_alternate);
+ if (!SIZE_ONLY)
+ cp_list = add_cp_to_invlist(cp_list, '-');
} else
range = 1; /* yeah, it's a range! */
continue; /* but do it the next time */
}
}
+ /* Here, <prevvalue> is the beginning of the range, if any; or <value>
+ * if not */
+
/* non-Latin1 code point implies unicode semantics. Must be set in
* pass1 so is there for the whole of pass 2 */
if (value > 255) {
RExC_uni_semantics = 1;
}
- /* now is the next time */
+ /* Ready to process either the single value, or the completed range */
if (!SIZE_ONLY) {
- if (prevvalue < 256) {
- const IV ceilvalue = value < 256 ? value : 255;
- IV i;
-#ifdef EBCDIC
- /* In EBCDIC [\x89-\x91] should include
- * the \x8e but [i-j] should not. */
- if (literal_endpoint == 2 &&
- ((isLOWER(prevvalue) && isLOWER(ceilvalue)) ||
- (isUPPER(prevvalue) && isUPPER(ceilvalue))))
- {
- if (isLOWER(prevvalue)) {
- for (i = prevvalue; i <= ceilvalue; i++)
- if (isLOWER(i) && !ANYOF_BITMAP_TEST(ret,i)) {
- stored +=
- set_regclass_bit(pRExC_state, ret, (U8) i, &l1_fold_invlist, &unicode_alternate);
- }
- } else {
- for (i = prevvalue; i <= ceilvalue; i++)
- if (isUPPER(i) && !ANYOF_BITMAP_TEST(ret,i)) {
- stored +=
- set_regclass_bit(pRExC_state, ret, (U8) i, &l1_fold_invlist, &unicode_alternate);
- }
- }
- }
- else
-#endif
- for (i = prevvalue; i <= ceilvalue; i++) {
- stored += set_regclass_bit(pRExC_state, ret, (U8) i, &l1_fold_invlist, &unicode_alternate);
- }
- }
- if (value > 255) {
- const UV prevnatvalue = NATIVE_TO_UNI(prevvalue);
- const UV natvalue = NATIVE_TO_UNI(value);
- nonbitmap = _add_range_to_invlist(nonbitmap, prevnatvalue, natvalue);
- }
-#ifdef EBCDIC
- literal_endpoint = 0;
+#ifndef EBCDIC
+ cp_list = _add_range_to_invlist(cp_list, prevvalue, value);
+#else
+ UV* this_range = _new_invlist(1);
+ _append_range_to_invlist(this_range, prevvalue, value);
+
+ /* In EBCDIC, the ranges 'A-Z' and 'a-z' are each not contiguous.
+ * If this range was specified using something like 'i-j', we want
+ * to include only the 'i' and the 'j', and not anything in
+ * between, so exclude non-ASCII, non-alphabetics from it.
+ * However, if the range was specified with something like
+ * [\x89-\x91] or [\x89-j], all code points within it should be
+ * included. literal_endpoint==2 means both ends of the range used
+ * a literal character, not \x{foo} */
+ if (literal_endpoint == 2
+ && (prevvalue >= 'a' && value <= 'z')
+ || (prevvalue >= 'A' && value <= 'Z'))
+ {
+ _invlist_intersection(this_range, PL_ASCII, &this_range, );
+ _invlist_intersection(this_range, PL_Alpha, &this_range, );
+ }
+ _invlist_union(cp_list, this_range, &cp_list);
+ literal_endpoint = 0;
#endif
}
range = 0; /* this range (if it was one) is done now */
- }
+ } /* End of loop through all the text within the brackets */
+
+ /* If the character class contains only a single element, it may be
+ * optimizable into another node type which is smaller and runs faster.
+ * Check if this is the case for this class */
+ if (element_count == 1) {
+ U8 op = END;
+
+ if (namedclass > OOB_NAMEDCLASS) { /* this is a named class, like \w or
+ [:digit:] or \p{foo} */
+
+ /* Certain named classes have equivalents that can appear outside a
+ * character class, e.g. \w, \H. We use these instead of a
+ * character class. */
+ switch ((I32)namedclass) {
+ U8 offset;
+
+ /* The first group is for node types that depend on the charset
+ * modifier to the regex. We first calculate the base node
+ * type, and if it should be inverted */
+
+ case ANYOF_NALNUM:
+ invert = ! invert;
+ /* FALLTHROUGH */
+ case ANYOF_ALNUM:
+ op = ALNUM;
+ goto join_charset_classes;
+
+ case ANYOF_NSPACE:
+ invert = ! invert;
+ /* FALLTHROUGH */
+ case ANYOF_SPACE:
+ op = SPACE;
+ goto join_charset_classes;
+
+ case ANYOF_NDIGIT:
+ invert = ! invert;
+ /* FALLTHROUGH */
+ case ANYOF_DIGIT:
+ op = DIGIT;
+
+ join_charset_classes:
+
+ /* Now that we have the base node type, we take advantage
+ * of the enum ordering of the charset modifiers to get the
+ * exact node type, For example the base SPACE also has
+ * SPACEL, SPACEU, and SPACEA */
+
+ offset = get_regex_charset(RExC_flags);
+
+ /* /aa is the same as /a for these */
+ if (offset == REGEX_ASCII_MORE_RESTRICTED_CHARSET) {
+ offset = REGEX_ASCII_RESTRICTED_CHARSET;
+ }
+ else if (op == DIGIT && offset == REGEX_UNICODE_CHARSET) {
+ offset = REGEX_DEPENDS_CHARSET; /* There is no DIGITU */
+ }
+
+ op += offset;
+
+ /* The number of varieties of each of these is the same,
+ * hence, so is the delta between the normal and
+ * complemented nodes */
+ if (invert) {
+ op += NALNUM - ALNUM;
+ }
+ break;
+
+ /* The second group doesn't depend of the charset modifiers.
+ * We just have normal and complemented */
+ case ANYOF_NHORIZWS:
+ invert = ! invert;
+ /* FALLTHROUGH */
+ case ANYOF_HORIZWS:
+ op = (invert) ? NHORIZWS : HORIZWS;
+ break;
+
+ case ANYOF_NVERTWS:
+ invert = ! invert;
+ /* FALLTHROUGH */
+ case ANYOF_VERTWS:
+ op = (invert) ? NVERTWS : VERTWS;
+ break;
+
+
+ }
+ }
+ else if (! LOC) {
+ if (invert && prevvalue == '\n' && value == '\n') {
+ op = REG_ANY; /* Optimize [^\n] */
+ }
+ else if (prevvalue == '0' && value == '9') {
+ op = (invert) ? NDIGITA : DIGITA;
+ }
+ }
+
+ /* Here, we have changed <op> away from its initial value iff we found
+ * an optimization */
+ if (op != END) {
+
+ /* Throw away this ANYOF regnode, and emit the calculated one,
+ * which should correspond to the beginning, not current, state of
+ * the parse */
+ const char * cur_parse = RExC_parse;
+ RExC_parse = (char *)orig_parse;
+ RExC_emit = (regnode *)orig_emit;
+
+ ret = reg_node(pRExC_state, op);
+ RExC_parse = (char *) cur_parse;
+ SvREFCNT_dec(listsv);
+ return ret;
+ }
+ }
if (SIZE_ONLY)
return ret;
/****** !SIZE_ONLY AFTER HERE *********/
- /* If folding and there are code points above 255, we calculate all
- * characters that could fold to or from the ones already on the list */
- if (FOLD && nonbitmap) {
+ /* If folding, we calculate all characters that could fold to or from the
+ * ones already on the list */
+ if (FOLD && cp_list) {
UV start, end; /* End points of code point ranges */
SV* fold_intersection = NULL;
- /* This is a list of all the characters that participate in folds
- * (except marks, etc in multi-char folds */
- if (! PL_utf8_foldable) {
- SV* swash = swash_init("utf8", "Cased", &PL_sv_undef, 1, 0);
- PL_utf8_foldable = _swash_to_invlist(swash);
- SvREFCNT_dec(swash);
- }
+ /* In the Latin1 range, the characters that can be folded-to or -from
+ * are precisely the alphabetic characters. If the highest code point
+ * is within Latin1, we can use the compiled-in list, and not have to
+ * go out to disk. */
+ if (invlist_highest(cp_list) < 256) {
+ _invlist_intersection(PL_L1PosixAlpha, cp_list, &fold_intersection);
+ }
+ else {
- /* This is a hash that for a particular fold gives all characters
- * that are involved in it */
- if (! PL_utf8_foldclosures) {
+ /* Here, there are non-Latin1 code points, so we will have to go
+ * fetch the list of all the characters that participate in folds
+ */
+ if (! PL_utf8_foldable) {
+ SV* swash = swash_init("utf8", "_Perl_Any_Folds",
+ &PL_sv_undef, 1, 0);
+ PL_utf8_foldable = _swash_to_invlist(swash);
+ SvREFCNT_dec(swash);
+ }
- /* If we were unable to find any folds, then we likely won't be
- * able to find the closures. So just create an empty list.
- * Folding will effectively be restricted to the non-Unicode rules
- * hard-coded into Perl. (This case happens legitimately during
- * compilation of Perl itself before the Unicode tables are
- * generated) */
- if (invlist_len(PL_utf8_foldable) == 0) {
- PL_utf8_foldclosures = newHV();
- } else {
- /* If the folds haven't been read in, call a fold function
- * to force that */
- if (! PL_utf8_tofold) {
- U8 dummy[UTF8_MAXBYTES+1];
- STRLEN dummy_len;
-
- /* This particular string is above \xff in both UTF-8 and
- * UTFEBCDIC */
- to_utf8_fold((U8*) "\xC8\x80", dummy, &dummy_len);
- assert(PL_utf8_tofold); /* Verify that worked */
- }
- PL_utf8_foldclosures = _swash_inversion_hash(PL_utf8_tofold);
- }
- }
+ /* This is a hash that for a particular fold gives all characters
+ * that are involved in it */
+ if (! PL_utf8_foldclosures) {
+
+ /* If we were unable to find any folds, then we likely won't be
+ * able to find the closures. So just create an empty list.
+ * Folding will effectively be restricted to the non-Unicode
+ * rules hard-coded into Perl. (This case happens legitimately
+ * during compilation of Perl itself before the Unicode tables
+ * are generated) */
+ if (invlist_len(PL_utf8_foldable) == 0) {
+ PL_utf8_foldclosures = newHV();
+ }
+ else {
+ /* If the folds haven't been read in, call a fold function
+ * to force that */
+ if (! PL_utf8_tofold) {
+ U8 dummy[UTF8_MAXBYTES+1];
+ STRLEN dummy_len;
+
+ /* This particular string is above \xff in both UTF-8
+ * and UTFEBCDIC */
+ to_utf8_fold((U8*) "\xC8\x80", dummy, &dummy_len);
+ assert(PL_utf8_tofold); /* Verify that worked */
+ }
+ PL_utf8_foldclosures =
+ _swash_inversion_hash(PL_utf8_tofold);
+ }
+ }
- /* Only the characters in this class that participate in folds need be
- * checked. Get the intersection of this class and all the possible
- * characters that are foldable. This can quickly narrow down a large
- * class */
- _invlist_intersection(PL_utf8_foldable, nonbitmap, &fold_intersection);
+ /* Only the characters in this class that participate in folds need
+ * be checked. Get the intersection of this class and all the
+ * possible characters that are foldable. This can quickly narrow
+ * down a large class */
+ _invlist_intersection(PL_utf8_foldable, cp_list,
+ &fold_intersection);
+ }
/* Now look at the foldable characters in this class individually */
invlist_iterinit(fold_intersection);
while (invlist_iternext(fold_intersection, &start, &end)) {
UV j;
+ /* Locale folding for Latin1 characters is deferred until runtime */
+ if (LOC && start < 256) {
+ start = 256;
+ }
+
/* Look at every character in the range */
for (j = start; j <= end; j++) {
- /* Get its fold */
U8 foldbuf[UTF8_MAXBYTES_CASE+1];
STRLEN foldlen;
- const UV f =
- _to_uni_fold_flags(j, foldbuf, &foldlen,
- (allow_full_fold) ? FOLD_FLAGS_FULL : 0);
+ UV f;
+
+ if (j < 256) {
+
+ /* We have the latin1 folding rules hard-coded here so that
+ * an innocent-looking character class, like /[ks]/i won't
+ * have to go out to disk to find the possible matches.
+ * XXX It would be better to generate these via regen, in
+ * case a new version of the Unicode standard adds new
+ * mappings, though that is not really likely, and may be
+ * caught by the default: case of the switch below. */
+
+ if (PL_fold_latin1[j] != j) {
+
+ /* ASCII is always matched; non-ASCII is matched only
+ * under Unicode rules */
+ if (isASCII(j) || AT_LEAST_UNI_SEMANTICS) {
+ cp_list =
+ add_cp_to_invlist(cp_list, PL_fold_latin1[j]);
+ }
+ else {
+ depends_list =
+ add_cp_to_invlist(depends_list, PL_fold_latin1[j]);
+ }
+ }
+
+ if (HAS_NONLATIN1_FOLD_CLOSURE(j)
+ && (! isASCII(j) || ! MORE_ASCII_RESTRICTED))
+ {
+ /* Certain Latin1 characters have matches outside
+ * Latin1, or are multi-character. To get here, 'j' is
+ * one of those characters. None of these matches is
+ * valid for ASCII characters under /aa, which is why
+ * the 'if' just above excludes those. The matches
+ * fall into three categories:
+ * 1) They are singly folded-to or -from an above 255
+ * character, e.g., LATIN SMALL LETTER Y WITH
+ * DIAERESIS and LATIN CAPITAL LETTER Y WITH
+ * DIAERESIS;
+ * 2) They are part of a multi-char fold with another
+ * latin1 character; only LATIN SMALL LETTER
+ * SHARP S => "ss" fits this;
+ * 3) They are part of a multi-char fold with a
+ * character outside of Latin1, such as various
+ * ligatures.
+ * We aren't dealing fully with multi-char folds, except
+ * we do deal with the pattern containing a character
+ * that has a multi-char fold (not so much the inverse).
+ * For types 1) and 3), the matches only happen when the
+ * target string is utf8; that's not true for 2), and we
+ * set a flag for it.
+ *
+ * The code below adds the single fold closures for 'j'
+ * to the inversion list. */
+ switch (j) {
+ case 'k':
+ case 'K':
+ cp_list =
+ add_cp_to_invlist(cp_list, KELVIN_SIGN);
+ break;
+ case 's':
+ case 'S':
+ cp_list = add_cp_to_invlist(cp_list,
+ LATIN_SMALL_LETTER_LONG_S);
+ break;
+ case MICRO_SIGN:
+ cp_list = add_cp_to_invlist(cp_list,
+ GREEK_SMALL_LETTER_MU);
+ cp_list = add_cp_to_invlist(cp_list,
+ GREEK_CAPITAL_LETTER_MU);
+ break;
+ case LATIN_CAPITAL_LETTER_A_WITH_RING_ABOVE:
+ case LATIN_SMALL_LETTER_A_WITH_RING_ABOVE:
+ cp_list =
+ add_cp_to_invlist(cp_list, ANGSTROM_SIGN);
+ break;
+ case LATIN_SMALL_LETTER_Y_WITH_DIAERESIS:
+ cp_list = add_cp_to_invlist(cp_list,
+ LATIN_CAPITAL_LETTER_Y_WITH_DIAERESIS);
+ break;
+ case LATIN_SMALL_LETTER_SHARP_S:
+ cp_list = add_cp_to_invlist(cp_list,
+ LATIN_CAPITAL_LETTER_SHARP_S);
+
+ /* Under /a, /d, and /u, this can match the two
+ * chars "ss" */
+ if (! MORE_ASCII_RESTRICTED) {
+ add_alternate(&unicode_alternate,
+ (U8 *) "ss", 2);
+
+ /* And under /u or /a, it can match even if
+ * the target is not utf8 */
+ if (AT_LEAST_UNI_SEMANTICS) {
+ ANYOF_FLAGS(ret) |=
+ ANYOF_NONBITMAP_NON_UTF8;
+ }
+ }
+ break;
+ case 'F': case 'f':
+ case 'I': case 'i':
+ case 'L': case 'l':
+ case 'T': case 't':
+ case 'A': case 'a':
+ case 'H': case 'h':
+ case 'J': case 'j':
+ case 'N': case 'n':
+ case 'W': case 'w':
+ case 'Y': case 'y':
+ /* These all are targets of multi-character
+ * folds from code points that require UTF8 to
+ * express, so they can't match unless the
+ * target string is in UTF-8, so no action here
+ * is necessary, as regexec.c properly handles
+ * the general case for UTF-8 matching */
+ break;
+ default:
+ /* Use deprecated warning to increase the
+ * chances of this being output */
+ ckWARN2regdep(RExC_parse, "Perl folding rules are not up-to-date for 0x%"UVXf"; please use the perlbug utility to report;", j);
+ break;
+ }
+ }
+ continue;
+ }
+
+ /* Here is an above Latin1 character. We don't have the rules
+ * hard-coded for it. First, get its fold */
+ f = _to_uni_fold_flags(j, foldbuf, &foldlen,
+ ((allow_full_fold) ? FOLD_FLAGS_FULL : 0)
+ | ((LOC)
+ ? FOLD_FLAGS_LOCALE
+ : (MORE_ASCII_RESTRICTED)
+ ? FOLD_FLAGS_NOMIX_ASCII
+ : 0));
if (foldlen > (STRLEN)UNISKIP(f)) {
/* If any of the folded characters of this are in the
* Latin1 range, tell the regex engine that this can
- * match a non-utf8 target string. The only multi-byte
- * fold whose source is in the Latin1 range (U+00DF)
- * applies only when the target string is utf8, or
- * under unicode rules */
- if (j > 255 || AT_LEAST_UNI_SEMANTICS) {
- while (loc < e) {
-
- /* Can't mix ascii with non- under /aa */
- if (MORE_ASCII_RESTRICTED
- && (isASCII(*loc) != isASCII(j)))
- {
- goto end_multi_fold;
- }
- if (UTF8_IS_INVARIANT(*loc)
- || UTF8_IS_DOWNGRADEABLE_START(*loc))
- {
- /* Can't mix above and below 256 under LOC
- */
- if (LOC) {
- goto end_multi_fold;
- }
- ANYOF_FLAGS(ret)
- |= ANYOF_NONBITMAP_NON_UTF8;
- break;
- }
- loc += UTF8SKIP(loc);
- }
- }
+ * match a non-utf8 target string. */
+ while (loc < e) {
+ if (UTF8_IS_INVARIANT(*loc)
+ || UTF8_IS_DOWNGRADEABLE_START(*loc))
+ {
+ ANYOF_FLAGS(ret)
+ |= ANYOF_NONBITMAP_NON_UTF8;
+ break;
+ }
+ loc += UTF8SKIP(loc);
+ }
add_alternate(&unicode_alternate, foldbuf, foldlen);
- end_multi_fold: ;
- }
-
- /* This is special-cased, as it is the only letter which
- * has both a multi-fold and single-fold in Latin1. All
- * the other chars that have single and multi-folds are
- * always in utf8, and the utf8 folding algorithm catches
- * them */
- if (! LOC && j == LATIN_CAPITAL_LETTER_SHARP_S) {
- stored += set_regclass_bit(pRExC_state,
- ret,
- LATIN_SMALL_LETTER_SHARP_S,
- &l1_fold_invlist, &unicode_alternate);
}
}
- else {
- /* Single character fold. Add everything in its fold
- * closure to the list that this node should match */
+ else {
+ /* Single character fold of above Latin1. Add everything
+ * in its fold closure to the list that this node should
+ * match */
SV** listp;
/* The fold closures data structure is a hash with the keys
* /l doesn't allow them between above and below
* 256 */
if ((MORE_ASCII_RESTRICTED
- && (isASCII(c) != isASCII(j)))
- || (LOC && ((c < 256) != (j < 256))))
+ && (isASCII(c) != isASCII(j)))
+ || (LOC && ((c < 256) != (j < 256))))
{
continue;
}
- if (c < 256 && AT_LEAST_UNI_SEMANTICS) {
- stored += set_regclass_bit(pRExC_state,
- ret,
- (U8) c,
- &l1_fold_invlist, &unicode_alternate);
- }
- /* It may be that the code point is already in
- * this range or already in the bitmap, in
- * which case we need do nothing */
- else if ((c < start || c > end)
- && (c > 255
- || ! ANYOF_BITMAP_TEST(ret, c)))
- {
- nonbitmap = add_cp_to_invlist(nonbitmap, c);
+ /* Folds involving non-ascii Latin1 characters
+ * under /d are added to a separate list */
+ if (isASCII(c) || c > 255 || AT_LEAST_UNI_SEMANTICS)
+ {
+ cp_list = add_cp_to_invlist(cp_list, c);
+ }
+ else {
+ depends_list = add_cp_to_invlist(depends_list, c);
}
}
}
}
- }
+ }
}
SvREFCNT_dec(fold_intersection);
}
- /* Combine the two lists into one. */
- if (l1_fold_invlist) {
- if (nonbitmap) {
- _invlist_union(nonbitmap, l1_fold_invlist, &nonbitmap);
- SvREFCNT_dec(l1_fold_invlist);
- }
- else {
- nonbitmap = l1_fold_invlist;
- }
+ /* And combine the result (if any) with any inversion list from posix
+ * classes. The lists are kept separate up to now because we don't want to
+ * fold the classes (folding of those is automatically handled by the swash
+ * fetching code) */
+ if (posixes) {
+ if (AT_LEAST_UNI_SEMANTICS) {
+ if (cp_list) {
+ _invlist_union(cp_list, posixes, &cp_list);
+ SvREFCNT_dec(posixes);
+ }
+ else {
+ cp_list = posixes;
+ }
+ }
+ else {
+
+ /* Under /d, we put into a separate list the Latin1 things that
+ * match only when the target string is utf8 */
+ SV* nonascii_but_latin1_properties = NULL;
+ _invlist_intersection(posixes, PL_Latin1,
+ &nonascii_but_latin1_properties);
+ _invlist_subtract(nonascii_but_latin1_properties, PL_ASCII,
+ &nonascii_but_latin1_properties);
+ _invlist_subtract(posixes, nonascii_but_latin1_properties,
+ &posixes);
+ if (cp_list) {
+ _invlist_union(cp_list, posixes, &cp_list);
+ SvREFCNT_dec(posixes);
+ }
+ else {
+ cp_list = posixes;
+ }
+
+ if (depends_list) {
+ _invlist_union(depends_list, nonascii_but_latin1_properties,
+ &depends_list);
+ SvREFCNT_dec(nonascii_but_latin1_properties);
+ }
+ else {
+ depends_list = nonascii_but_latin1_properties;
+ }
+ }
}
/* And combine the result (if any) with any inversion list from properties.
- * The lists are kept separate up to now because we don't want to fold the
- * properties */
+ * The lists are kept separate up to now so that we can distinguish the two
+ * in regards to matching above-Unicode. A run-time warning is generated
+ * if a Unicode property is matched against a non-Unicode code point. But,
+ * we allow user-defined properties to match anything, without any warning,
+ * and we also suppress the warning if there is a portion of the character
+ * class that isn't a Unicode property, and which matches above Unicode, \W
+ * or [\x{110000}] for example.
+ * (Note that in this case, unlike the Posix one above, there is no
+ * <depends_list>, because having a Unicode property forces Unicode
+ * semantics */
if (properties) {
- if (nonbitmap) {
- _invlist_union(nonbitmap, properties, &nonbitmap);
- SvREFCNT_dec(properties);
- }
- else {
- nonbitmap = properties;
- }
+ bool warn_super = ! has_user_defined_property;
+ if (cp_list) {
+
+ /* If it matters to the final outcome, see if a non-property
+ * component of the class matches above Unicode. If so, the
+ * warning gets suppressed. This is true even if just a single
+ * such code point is specified, as though not strictly correct if
+ * another such code point is matched against, the fact that they
+ * are using above-Unicode code points indicates they should know
+ * the issues involved */
+ if (warn_super) {
+ bool non_prop_matches_above_Unicode =
+ runtime_posix_matches_above_Unicode
+ | (invlist_highest(cp_list) > PERL_UNICODE_MAX);
+ if (invert) {
+ non_prop_matches_above_Unicode =
+ ! non_prop_matches_above_Unicode;
+ }
+ warn_super = ! non_prop_matches_above_Unicode;
+ }
+
+ _invlist_union(properties, cp_list, &cp_list);
+ SvREFCNT_dec(properties);
+ }
+ else {
+ cp_list = properties;
+ }
+
+ if (warn_super) {
+ ANYOF_FLAGS(ret) |= ANYOF_WARN_SUPER;
+ }
}
- /* Here, <nonbitmap> contains all the code points we can determine at
- * compile time that we haven't put into the bitmap. Go through it, and
- * for things that belong in the bitmap, put them there, and delete from
- * <nonbitmap> */
- if (nonbitmap) {
+ /* Here, we have calculated what code points should be in the character
+ * class.
+ *
+ * Now we can see about various optimizations. Fold calculation (which we
+ * did above) needs to take place before inversion. Otherwise /[^k]/i
+ * would invert to include K, which under /i would match k, which it
+ * shouldn't. */
+
+ /* Optimize inverted simple patterns (e.g. [^a-z]). Note that we haven't
+ * set the FOLD flag yet, so this does optimize those. It doesn't
+ * optimize locale. Doing so perhaps could be done as long as there is
+ * nothing like \w in it; some thought also would have to be given to the
+ * interaction with above 0x100 chars */
+ if (invert
+ && ! LOC
+ && ! depends_list
+ && ! unicode_alternate
+ && ! HAS_NONLOCALE_RUNTIME_PROPERTY_DEFINITION)
+ {
+ _invlist_invert(cp_list);
+
+ /* Any swash can't be used as-is, because we've inverted things */
+ if (swash) {
+ SvREFCNT_dec(swash);
+ swash = NULL;
+ }
+
+ /* Clear the invert flag since have just done it here */
+ invert = FALSE;
+ }
- /* Above-ASCII code points in /d have to stay in <nonbitmap>, as they
- * possibly only should match when the target string is UTF-8 */
- UV max_cp_to_set = (DEPENDS_SEMANTICS) ? 127 : 255;
+ /* Here, <cp_list> contains all the code points we can determine at
+ * compile time that match under all conditions. Go through it, and
+ * for things that belong in the bitmap, put them there, and delete from
+ * <cp_list> */
+ if (cp_list) {
/* This gets set if we actually need to modify things */
bool change_invlist = FALSE;
UV start, end;
- /* Start looking through <nonbitmap> */
- invlist_iterinit(nonbitmap);
- while (invlist_iternext(nonbitmap, &start, &end)) {
+ /* Start looking through <cp_list> */
+ invlist_iterinit(cp_list);
+ while (invlist_iternext(cp_list, &start, &end)) {
UV high;
int i;
/* Quit if are above what we should change */
- if (start > max_cp_to_set) {
+ if (start > 255) {
break;
}
change_invlist = TRUE;
/* Set all the bits in the range, up to the max that we are doing */
- high = (end < max_cp_to_set) ? end : max_cp_to_set;
+ high = (end < 255) ? end : 255;
for (i = start; i <= (int) high; i++) {
if (! ANYOF_BITMAP_TEST(ret, i)) {
ANYOF_BITMAP_SET(ret, i);
}
/* Done with loop; remove any code points that are in the bitmap from
- * <nonbitmap> */
+ * <cp_list> */
if (change_invlist) {
- _invlist_subtract(nonbitmap,
- (DEPENDS_SEMANTICS)
- ? PL_ASCII
- : PL_Latin1,
- &nonbitmap);
+ _invlist_subtract(cp_list, PL_Latin1, &cp_list);
}
/* If have completely emptied it, remove it completely */
- if (invlist_len(nonbitmap) == 0) {
- SvREFCNT_dec(nonbitmap);
- nonbitmap = NULL;
+ if (invlist_len(cp_list) == 0) {
+ SvREFCNT_dec(cp_list);
+ cp_list = NULL;
}
}
- /* Here, we have calculated what code points should be in the character
- * class. <nonbitmap> does not overlap the bitmap except possibly in the
- * case of DEPENDS rules.
- *
- * Now we can see about various optimizations. Fold calculation (which we
- * did above) needs to take place before inversion. Otherwise /[^k]/i
- * would invert to include K, which under /i would match k, which it
- * shouldn't. */
+ if (invert) {
+ ANYOF_FLAGS(ret) |= ANYOF_INVERT;
+ }
- /* Optimize inverted simple patterns (e.g. [^a-z]). Note that we haven't
- * set the FOLD flag yet, so this does optimize those. It doesn't
- * optimize locale. Doing so perhaps could be done as long as there is
- * nothing like \w in it; some thought also would have to be given to the
- * interaction with above 0x100 chars */
- if ((ANYOF_FLAGS(ret) & ANYOF_INVERT)
- && ! LOC
- && ! unicode_alternate
- /* In case of /d, there are some things that should match only when in
- * not in the bitmap, i.e., they require UTF8 to match. These are
- * listed in nonbitmap, but if ANYOF_NONBITMAP_NON_UTF8 is set in this
- * case, they don't require UTF8, so can invert here */
- && (! nonbitmap
- || ! DEPENDS_SEMANTICS
- || (ANYOF_FLAGS(ret) & ANYOF_NONBITMAP_NON_UTF8))
- && SvCUR(listsv) == initial_listsv_len)
- {
- int i;
- if (! nonbitmap) {
- for (i = 0; i < 256; ++i) {
- if (ANYOF_BITMAP_TEST(ret, i)) {
- ANYOF_BITMAP_CLEAR(ret, i);
- }
- else {
- ANYOF_BITMAP_SET(ret, i);
- prevvalue = value;
- value = i;
- }
- }
- /* The inversion means that everything above 255 is matched */
- ANYOF_FLAGS(ret) |= ANYOF_UNICODE_ALL;
+ /* Combine the two lists into one. */
+ if (depends_list) {
+ if (cp_list) {
+ _invlist_union(cp_list, depends_list, &cp_list);
+ SvREFCNT_dec(depends_list);
}
else {
- /* Here, also has things outside the bitmap that may overlap with
- * the bitmap. We have to sync them up, so that they get inverted
- * in both places. Earlier, we removed all overlaps except in the
- * case of /d rules, so no syncing is needed except for this case
- */
- SV *remove_list = NULL;
-
- if (DEPENDS_SEMANTICS) {
- UV start, end;
-
- /* Set the bits that correspond to the ones that aren't in the
- * bitmap. Otherwise, when we invert, we'll miss these.
- * Earlier, we removed from the nonbitmap all code points
- * < 128, so there is no extra work here */
- invlist_iterinit(nonbitmap);
- while (invlist_iternext(nonbitmap, &start, &end)) {
- if (start > 255) { /* The bit map goes to 255 */
- break;
- }
- if (end > 255) {
- end = 255;
- }
- for (i = start; i <= (int) end; ++i) {
- ANYOF_BITMAP_SET(ret, i);
- prevvalue = value;
- value = i;
- }
- }
- }
-
- /* Now invert both the bitmap and the nonbitmap. Anything in the
- * bitmap has to also be removed from the non-bitmap, but again,
- * there should not be overlap unless is /d rules. */
- _invlist_invert(nonbitmap);
-
- /* Any swash can't be used as-is, because we've inverted things */
- if (swash) {
- SvREFCNT_dec(swash);
- swash = NULL;
- }
-
- for (i = 0; i < 256; ++i) {
- if (ANYOF_BITMAP_TEST(ret, i)) {
- ANYOF_BITMAP_CLEAR(ret, i);
- if (DEPENDS_SEMANTICS) {
- if (! remove_list) {
- remove_list = _new_invlist(2);
- }
- remove_list = add_cp_to_invlist(remove_list, i);
- }
- }
- else {
- ANYOF_BITMAP_SET(ret, i);
- prevvalue = value;
- value = i;
- }
- }
-
- /* And do the removal */
- if (DEPENDS_SEMANTICS) {
- if (remove_list) {
- _invlist_subtract(nonbitmap, remove_list, &nonbitmap);
- SvREFCNT_dec(remove_list);
- }
- }
- else {
- /* There is no overlap for non-/d, so just delete anything
- * below 256 */
- _invlist_intersection(nonbitmap, PL_AboveLatin1, &nonbitmap);
- }
+ cp_list = depends_list;
}
-
- stored = 256 - stored;
-
- /* Clear the invert flag since have just done it here */
- ANYOF_FLAGS(ret) &= ~ANYOF_INVERT;
}
/* Folding in the bitmap is taken care of above, but not for locale (for
* run-time fold flag for these */
if (FOLD && (LOC
|| (DEPENDS_SEMANTICS
- && nonbitmap
+ && cp_list
&& ! (ANYOF_FLAGS(ret) & ANYOF_NONBITMAP_NON_UTF8))
|| unicode_alternate))
{
* characters which only have the two folds; so things like 'fF' and 'Ii'
* wouldn't work because they are part of the fold of 'LATIN SMALL LIGATURE
* FI'. */
- if (! nonbitmap
+ if (! cp_list
&& ! unicode_alternate
- && SvCUR(listsv) == initial_listsv_len
+ && ! HAS_NONLOCALE_RUNTIME_PROPERTY_DEFINITION
&& ! (ANYOF_FLAGS(ret) & (ANYOF_INVERT|ANYOF_UNICODE_ALL))
&& (((stored == 1 && ((! (ANYOF_FLAGS(ret) & ANYOF_LOCALE))
|| (! ANYOF_CLASS_TEST_ANY_SET(ret)))))
SvREFCNT_dec(swash);
swash = NULL;
}
- if (! nonbitmap
- && SvCUR(listsv) == initial_listsv_len
+ if (! cp_list
+ && ! HAS_NONLOCALE_RUNTIME_PROPERTY_DEFINITION
&& ! unicode_alternate)
{
ARG_SET(ret, ANYOF_NONBITMAP_EMPTY);
* swash is stored there now.
* av[2] stores the multicharacter foldings, used later in
* regexec.c:S_reginclass().
- * av[3] stores the nonbitmap inversion list for use in addition or
- * instead of av[0]; not used if av[1] isn't NULL
+ * av[3] stores the cp_list inversion list for use in addition or
+ * instead of av[0]; used only if av[1] is NULL
* av[4] is set if any component of the class is from a user-defined
- * property; not used if av[1] isn't NULL */
+ * property; used only if av[1] is NULL */
AV * const av = newAV();
SV *rv;
- av_store(av, 0, (SvCUR(listsv) == initial_listsv_len)
- ? &PL_sv_undef
- : listsv);
+ av_store(av, 0, (HAS_NONLOCALE_RUNTIME_PROPERTY_DEFINITION)
+ ? listsv
+ : &PL_sv_undef);
if (swash) {
av_store(av, 1, swash);
- SvREFCNT_dec(nonbitmap);
+ SvREFCNT_dec(cp_list);
}
else {
av_store(av, 1, NULL);
- if (nonbitmap) {
- av_store(av, 3, nonbitmap);
+ if (cp_list) {
+ av_store(av, 3, cp_list);
av_store(av, 4, newSVuv(has_user_defined_property));
}
}
}
return ret;
}
+#undef HAS_NONLOCALE_RUNTIME_PROPERTY_DEFINITION
/* reg_skipcomment()
{
struct regexp *ret;
struct regexp *const r = (struct regexp *)SvANY(rx);
- register const I32 npar = r->nparens+1;
PERL_ARGS_ASSERT_REG_TEMP_COPY;
SvLEN_set(ret_x, 0);
SvSTASH_set(ret_x, NULL);
SvMAGIC_set(ret_x, NULL);
- Newx(ret->offs, npar, regexp_paren_pair);
- Copy(r->offs, ret->offs, npar, regexp_paren_pair);
+ if (r->offs) {
+ const I32 npar = r->nparens+1;
+ Newx(ret->offs, npar, regexp_paren_pair);
+ Copy(r->offs, ret->offs, npar, regexp_paren_pair);
+ }
if (r->substrs) {
Newx(ret->substrs, 1, struct reg_substr_data);
StructCopy(r->substrs, ret->substrs, struct reg_substr_data);
Copy(&PL_reg_state, state, 1, struct re_save_state);
- PL_reg_start_tmp = 0;
- PL_reg_start_tmpl = 0;
PL_reg_oldsaved = NULL;
PL_reg_oldsavedlen = 0;
PL_reg_maxiter = 0;