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lex.c revision 1.200
      1 /* $NetBSD: lex.c,v 1.200 2024/01/23 19:44:28 rillig Exp $ */
      2 
      3 /*
      4  * Copyright (c) 1996 Christopher G. Demetriou.  All Rights Reserved.
      5  * Copyright (c) 1994, 1995 Jochen Pohl
      6  * All Rights Reserved.
      7  *
      8  * Redistribution and use in source and binary forms, with or without
      9  * modification, are permitted provided that the following conditions
     10  * are met:
     11  * 1. Redistributions of source code must retain the above copyright
     12  *    notice, this list of conditions and the following disclaimer.
     13  * 2. Redistributions in binary form must reproduce the above copyright
     14  *    notice, this list of conditions and the following disclaimer in the
     15  *    documentation and/or other materials provided with the distribution.
     16  * 3. All advertising materials mentioning features or use of this software
     17  *    must display the following acknowledgement:
     18  *	This product includes software developed by Jochen Pohl for
     19  *	The NetBSD Project.
     20  * 4. The name of the author may not be used to endorse or promote products
     21  *    derived from this software without specific prior written permission.
     22  *
     23  * THIS SOFTWARE IS PROVIDED BY THE AUTHOR ``AS IS'' AND ANY EXPRESS OR
     24  * IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES
     25  * OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED.
     26  * IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR ANY DIRECT, INDIRECT,
     27  * INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT
     28  * NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE,
     29  * DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY
     30  * THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT
     31  * (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE OF
     32  * THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
     33  */
     34 
     35 #if HAVE_NBTOOL_CONFIG_H
     36 #include "nbtool_config.h"
     37 #endif
     38 
     39 #include <sys/cdefs.h>
     40 #if defined(__RCSID)
     41 __RCSID("$NetBSD: lex.c,v 1.200 2024/01/23 19:44:28 rillig Exp $");
     42 #endif
     43 
     44 #include <ctype.h>
     45 #include <errno.h>
     46 #include <float.h>
     47 #include <limits.h>
     48 #include <math.h>
     49 #include <stdlib.h>
     50 #include <string.h>
     51 
     52 #include "lint1.h"
     53 #include "cgram.h"
     54 
     55 #define CHAR_MASK	((1U << CHAR_SIZE) - 1)
     56 
     57 
     58 /* Current position (it's also updated when an included file is parsed) */
     59 pos_t curr_pos = { "", 1, 0 };
     60 
     61 /*
     62  * Current position in C source (not updated when an included file is
     63  * parsed).
     64  */
     65 pos_t csrc_pos = { "", 1, 0 };
     66 
     67 bool in_gcc_attribute;
     68 bool in_system_header;
     69 
     70 /*
     71  * Valid values for 'since' are 78, 90, 99, 11, 23.
     72  *
     73  * The C11 keywords are all taken from the reserved namespace.  They are added
     74  * in C99 mode as well, to make the parse error messages more useful.  For
     75  * example, if the keyword '_Generic' were not defined, it would be interpreted
     76  * as an implicit function call, leading to a parse error.
     77  *
     78  * The C23 keywords are not made available in earlier modes, as they may
     79  * conflict with user-defined identifiers.
     80  */
     81 #define kwdef(name, token, detail,	since, gcc, deco) \
     82 	{ /* CONSTCOND */ \
     83 		name, token, detail, \
     84 		(since) == 90, \
     85 		(since) == 99 || (since) == 11, \
     86 		(since) == 23, \
     87 		(gcc) > 0, \
     88 		((deco) & 1) != 0, ((deco) & 2) != 0, ((deco) & 4) != 0, \
     89 	}
     90 #define kwdef_token(name, token,		since, gcc, deco) \
     91 	kwdef(name, token, {false},		since, gcc, deco)
     92 #define kwdef_sclass(name, sclass,		since, gcc, deco) \
     93 	kwdef(name, T_SCLASS, .u.kw_scl = (sclass), since, gcc, deco)
     94 #define kwdef_type(name, tspec,			since) \
     95 	kwdef(name, T_TYPE, .u.kw_tspec = (tspec), since, 0, 1)
     96 #define kwdef_tqual(name, tqual,		since, gcc, deco) \
     97 	kwdef(name, T_QUAL, .u.kw_tqual = {.tqual = true}, since, gcc, deco)
     98 #define kwdef_keyword(name, token) \
     99 	kwdef(name, token, {false},		78, 0, 1)
    100 
    101 /* During initialization, these keywords are written to the symbol table. */
    102 static const struct keyword {
    103 	const	char kw_name[20];
    104 	int	kw_token;	/* token to be returned by yylex() */
    105 	union {
    106 		bool kw_dummy;
    107 		scl_t kw_scl;		/* if kw_token is T_SCLASS */
    108 		tspec_t kw_tspec;	/* if kw_token is T_TYPE or
    109 					 * T_STRUCT_OR_UNION */
    110 		type_qualifiers kw_tqual;	/* if kw_token is T_QUAL */
    111 		function_specifier kw_fs;	/* if kw_token is
    112 						 * T_FUNCTION_SPECIFIER */
    113 	} u;
    114 	bool	kw_added_in_c90:1;
    115 	bool	kw_added_in_c99_or_c11:1;
    116 	bool	kw_added_in_c23:1;
    117 	bool	kw_gcc:1;	/* available in GCC mode */
    118 	bool	kw_plain:1;	/* 'name' */
    119 	bool	kw_leading:1;	/* '__name' */
    120 	bool	kw_both:1;	/* '__name__' */
    121 } keywords[] = {
    122 	// TODO: _Alignas is not available in C99.
    123 	kwdef_keyword(	"_Alignas",	T_ALIGNAS),
    124 	// TODO: _Alignof is not available in C99.
    125 	kwdef_keyword(	"_Alignof",	T_ALIGNOF),
    126 	// TODO: alignof is not available in C99.
    127 	kwdef_token(	"alignof",	T_ALIGNOF,		78,0,6),
    128 	kwdef_token(	"asm",		T_ASM,			78,1,7),
    129 	kwdef_token(	"_Atomic",	T_ATOMIC,		11,0,1),
    130 	kwdef_token(	"attribute",	T_ATTRIBUTE,		78,1,6),
    131 	kwdef_sclass(	"auto",		AUTO,			78,0,1),
    132 	kwdef_type(	"_Bool",	BOOL,			99),
    133 	kwdef_keyword(	"break",	T_BREAK),
    134 	kwdef_token(	"__builtin_offsetof", T_BUILTIN_OFFSETOF, 78,1,1),
    135 	kwdef_keyword(	"case",		T_CASE),
    136 	kwdef_type(	"char",		CHAR,			78),
    137 	kwdef_type(	"_Complex",	COMPLEX,		99),
    138 	kwdef_tqual(	"const",	tq_const,		90,0,7),
    139 	kwdef_keyword(	"continue",	T_CONTINUE),
    140 	kwdef_keyword(	"default",	T_DEFAULT),
    141 	kwdef_keyword(	"do",		T_DO),
    142 	kwdef_type(	"double",	DOUBLE,			78),
    143 	kwdef_keyword(	"else",		T_ELSE),
    144 	// XXX: enum is not available in traditional C.
    145 	kwdef_keyword(	"enum",		T_ENUM),
    146 	kwdef_token(	"__extension__",T_EXTENSION,		78,1,1),
    147 	kwdef_sclass(	"extern",	EXTERN,			78,0,1),
    148 	kwdef_type(	"float",	FLOAT,			78),
    149 	kwdef_keyword(	"for",		T_FOR),
    150 	kwdef_token(	"_Generic",	T_GENERIC,		11,0,1),
    151 	kwdef_keyword(	"goto",		T_GOTO),
    152 	kwdef_keyword(	"if",		T_IF),
    153 	kwdef_token(	"__imag__",	T_IMAG,			78,1,1),
    154 	kwdef("inline",	T_FUNCTION_SPECIFIER, .u.kw_fs = FS_INLINE, 99,0,7),
    155 	kwdef_type(	"int",		INT,			78),
    156 #ifdef INT128_SIZE
    157 	kwdef_type(	"__int128_t",	INT128,			99),
    158 #endif
    159 	kwdef_type(	"long",		LONG,			78),
    160 	kwdef("_Noreturn", T_FUNCTION_SPECIFIER, .u.kw_fs = FS_NORETURN, 11,0,1),
    161 	// XXX: __packed is GCC-specific.
    162 	kwdef_token(	"__packed",	T_PACKED,		78,0,1),
    163 	kwdef_token(	"__real__",	T_REAL,			78,1,1),
    164 	kwdef_sclass(	"register",	REG,			78,0,1),
    165 	kwdef_tqual(	"restrict",	tq_restrict,		99,0,7),
    166 	kwdef_keyword(	"return",	T_RETURN),
    167 	kwdef_type(	"short",	SHORT,			78),
    168 	kwdef(		"signed", T_TYPE, .u.kw_tspec = SIGNED,	90,0,3),
    169 	kwdef_keyword(	"sizeof",	T_SIZEOF),
    170 	kwdef_sclass(	"static",	STATIC,			78,0,1),
    171 	// XXX: _Static_assert was added in C11.
    172 	kwdef_keyword(	"_Static_assert",	T_STATIC_ASSERT),
    173 	kwdef("struct",	T_STRUCT_OR_UNION, .u.kw_tspec = STRUCT, 78,0,1),
    174 	kwdef_keyword(	"switch",	T_SWITCH),
    175 	kwdef_token(	"__symbolrename",	T_SYMBOLRENAME,	78,0,1),
    176 	kwdef_sclass(	"__thread",	THREAD_LOCAL,		78,1,1),
    177 	kwdef_sclass(	"_Thread_local", THREAD_LOCAL,		11,0,1),
    178 	kwdef_sclass(	"thread_local", THREAD_LOCAL,		23,0,1),
    179 	kwdef_sclass(	"typedef",	TYPEDEF,		78,0,1),
    180 	kwdef_token(	"typeof",	T_TYPEOF,		78,1,7),
    181 #ifdef INT128_SIZE
    182 	kwdef_type(	"__uint128_t",	UINT128,		99),
    183 #endif
    184 	kwdef("union",	T_STRUCT_OR_UNION, .u.kw_tspec = UNION,	78,0,1),
    185 	kwdef_type(	"unsigned",	UNSIGN,			78),
    186 	// XXX: void is not available in traditional C.
    187 	kwdef_type(	"void",		VOID,			78),
    188 	kwdef_tqual(	"volatile",	tq_volatile,		90,0,7),
    189 	kwdef_keyword(	"while",	T_WHILE),
    190 #undef kwdef
    191 #undef kwdef_token
    192 #undef kwdef_sclass
    193 #undef kwdef_type
    194 #undef kwdef_tqual
    195 #undef kwdef_keyword
    196 };
    197 
    198 /*
    199  * The symbol table containing all keywords, identifiers and labels. The hash
    200  * entries are linked via sym_t.s_symtab_next.
    201  */
    202 static sym_t *symtab[503];
    203 
    204 /*
    205  * The kind of the next expected symbol, to distinguish the namespaces of
    206  * members, labels, type tags and other identifiers.
    207  */
    208 symbol_kind sym_kind;
    209 
    210 
    211 static unsigned int
    212 hash(const char *s)
    213 {
    214 	unsigned int v;
    215 	const char *p;
    216 
    217 	v = 0;
    218 	for (p = s; *p != '\0'; p++) {
    219 		v = (v << 4) + (unsigned char)*p;
    220 		v ^= v >> 28;
    221 	}
    222 	return v % (sizeof(symtab) / sizeof(symtab[0]));
    223 }
    224 
    225 static void
    226 symtab_add(sym_t *sym)
    227 {
    228 	unsigned int h;
    229 
    230 	h = hash(sym->s_name);
    231 	if ((sym->s_symtab_next = symtab[h]) != NULL)
    232 		symtab[h]->s_symtab_ref = &sym->s_symtab_next;
    233 	sym->s_symtab_ref = &symtab[h];
    234 	symtab[h] = sym;
    235 }
    236 
    237 static sym_t *
    238 symtab_search(const char *name)
    239 {
    240 
    241 	unsigned int h = hash(name);
    242 	for (sym_t *sym = symtab[h]; sym != NULL; sym = sym->s_symtab_next) {
    243 		if (strcmp(sym->s_name, name) != 0)
    244 			continue;
    245 		if (sym->s_keyword != NULL ||
    246 		    sym->s_kind == sym_kind ||
    247 		    in_gcc_attribute)
    248 			return sym;
    249 	}
    250 
    251 	return NULL;
    252 }
    253 
    254 static void
    255 symtab_remove(sym_t *sym)
    256 {
    257 
    258 	if ((*sym->s_symtab_ref = sym->s_symtab_next) != NULL)
    259 		sym->s_symtab_next->s_symtab_ref = sym->s_symtab_ref;
    260 	sym->s_symtab_next = NULL;
    261 }
    262 
    263 static void
    264 symtab_remove_locals(void)
    265 {
    266 
    267 	for (size_t i = 0; i < sizeof(symtab) / sizeof(symtab[0]); i++) {
    268 		for (sym_t *sym = symtab[i]; sym != NULL; ) {
    269 			sym_t *next = sym->s_symtab_next;
    270 			if (sym->s_block_level >= 1)
    271 				symtab_remove(sym);
    272 			sym = next;
    273 		}
    274 	}
    275 }
    276 
    277 #ifdef DEBUG
    278 static int
    279 sym_by_name(const void *va, const void *vb)
    280 {
    281 	const sym_t *a = *(const sym_t *const *)va;
    282 	const sym_t *b = *(const sym_t *const *)vb;
    283 
    284 	return strcmp(a->s_name, b->s_name);
    285 }
    286 
    287 struct syms {
    288 	const sym_t **items;
    289 	size_t len;
    290 	size_t cap;
    291 };
    292 
    293 static void
    294 syms_add(struct syms *syms, const sym_t *sym)
    295 {
    296 	if (syms->len >= syms->cap) {
    297 		syms->cap *= 2;
    298 		syms->items = xrealloc(syms->items,
    299 		    syms->cap * sizeof(syms->items[0]));
    300 	}
    301 	syms->items[syms->len++] = sym;
    302 }
    303 
    304 void
    305 debug_symtab(void)
    306 {
    307 	struct syms syms = { xcalloc(64, sizeof(syms.items[0])), 0, 64 };
    308 
    309 	debug_enter();
    310 	for (int level = -1;; level++) {
    311 		bool more = false;
    312 		size_t n = sizeof(symtab) / sizeof(symtab[0]);
    313 
    314 		syms.len = 0;
    315 		for (size_t i = 0; i < n; i++) {
    316 			for (sym_t *sym = symtab[i]; sym != NULL;) {
    317 				if (sym->s_block_level == level &&
    318 				    sym->s_keyword == NULL)
    319 					syms_add(&syms, sym);
    320 				if (sym->s_block_level > level)
    321 					more = true;
    322 				sym = sym->s_symtab_next;
    323 			}
    324 		}
    325 
    326 		if (syms.len > 0) {
    327 			debug_step("symbol table level %d", level);
    328 			debug_indent_inc();
    329 			qsort(syms.items, syms.len, sizeof(syms.items[0]),
    330 			    sym_by_name);
    331 			for (size_t i = 0; i < syms.len; i++)
    332 				debug_sym("", syms.items[i], "\n");
    333 			debug_indent_dec();
    334 
    335 			lint_assert(level != -1);
    336 		}
    337 
    338 		if (!more)
    339 			break;
    340 	}
    341 	debug_leave();
    342 
    343 	free(syms.items);
    344 }
    345 #endif
    346 
    347 static void
    348 add_keyword(const struct keyword *kw, bool leading, bool trailing)
    349 {
    350 
    351 	const char *name;
    352 	if (!leading && !trailing) {
    353 		name = kw->kw_name;
    354 	} else {
    355 		char buf[256];
    356 		(void)snprintf(buf, sizeof(buf), "%s%s%s",
    357 		    leading ? "__" : "", kw->kw_name, trailing ? "__" : "");
    358 		name = xstrdup(buf);
    359 	}
    360 
    361 	sym_t *sym = block_zero_alloc(sizeof(*sym), "sym");
    362 	sym->s_name = name;
    363 	sym->s_keyword = kw;
    364 	int tok = kw->kw_token;
    365 	sym->u.s_keyword.sk_token = tok;
    366 	if (tok == T_TYPE || tok == T_STRUCT_OR_UNION)
    367 		sym->u.s_keyword.u.sk_tspec = kw->u.kw_tspec;
    368 	if (tok == T_SCLASS)
    369 		sym->s_scl = kw->u.kw_scl;
    370 	if (tok == T_QUAL)
    371 		sym->u.s_keyword.u.sk_type_qualifier = kw->u.kw_tqual;
    372 	if (tok == T_FUNCTION_SPECIFIER)
    373 		sym->u.s_keyword.u.function_specifier = kw->u.kw_fs;
    374 
    375 	symtab_add(sym);
    376 }
    377 
    378 static bool
    379 is_keyword_known(const struct keyword *kw)
    380 {
    381 
    382 	if (kw->kw_added_in_c23 && !allow_c23)
    383 		return false;
    384 	if ((kw->kw_added_in_c90 || kw->kw_added_in_c99_or_c11) && !allow_c90)
    385 		return false;
    386 
    387 	/*
    388 	 * In the 1990s, GCC defined several keywords that were later
    389 	 * incorporated into C99, therefore in GCC mode, all C99 keywords are
    390 	 * made available.  The C11 keywords are made available as well, but
    391 	 * there are so few that they don't matter practically.
    392 	 */
    393 	if (allow_gcc)
    394 		return true;
    395 	if (kw->kw_gcc)
    396 		return false;
    397 
    398 	if (kw->kw_added_in_c99_or_c11 && !allow_c99)
    399 		return false;
    400 	return true;
    401 }
    402 
    403 /* Write all keywords to the symbol table. */
    404 void
    405 initscan(void)
    406 {
    407 
    408 	size_t n = sizeof(keywords) / sizeof(keywords[0]);
    409 	for (size_t i = 0; i < n; i++) {
    410 		const struct keyword *kw = keywords + i;
    411 		if (!is_keyword_known(kw))
    412 			continue;
    413 		if (kw->kw_plain)
    414 			add_keyword(kw, false, false);
    415 		if (kw->kw_leading)
    416 			add_keyword(kw, true, false);
    417 		if (kw->kw_both)
    418 			add_keyword(kw, true, true);
    419 	}
    420 }
    421 
    422 /*
    423  * When scanning the remainder of a long token (see lex_input), read a byte
    424  * and return it as an unsigned char or as EOF.
    425  *
    426  * Increment the line counts if necessary.
    427  */
    428 static int
    429 read_byte(void)
    430 {
    431 	int c;
    432 
    433 	if ((c = lex_input()) == EOF)
    434 		return c;
    435 	if (c == '\0')
    436 		return EOF;	/* lex returns 0 on EOF. */
    437 	if (c == '\n')
    438 		lex_next_line();
    439 	return c;
    440 }
    441 
    442 static int
    443 lex_keyword(sym_t *sym)
    444 {
    445 	int tok = sym->u.s_keyword.sk_token;
    446 
    447 	if (tok == T_SCLASS)
    448 		yylval.y_scl = sym->s_scl;
    449 	if (tok == T_TYPE || tok == T_STRUCT_OR_UNION)
    450 		yylval.y_tspec = sym->u.s_keyword.u.sk_tspec;
    451 	if (tok == T_QUAL)
    452 		yylval.y_type_qualifiers =
    453 		    sym->u.s_keyword.u.sk_type_qualifier;
    454 	if (tok == T_FUNCTION_SPECIFIER)
    455 		yylval.y_function_specifier =
    456 		    sym->u.s_keyword.u.function_specifier;
    457 	return tok;
    458 }
    459 
    460 /*
    461  * Look up the definition of a name in the symbol table. This symbol must
    462  * either be a keyword or a symbol of the type required by sym_kind (label,
    463  * member, tag, ...).
    464  */
    465 extern int
    466 lex_name(const char *yytext, size_t yyleng)
    467 {
    468 
    469 	sym_t *sym = symtab_search(yytext);
    470 	if (sym != NULL && sym->s_keyword != NULL)
    471 		return lex_keyword(sym);
    472 
    473 	sbuf_t *sb = xmalloc(sizeof(*sb));
    474 	sb->sb_len = yyleng;
    475 	sb->sb_sym = sym;
    476 	yylval.y_name = sb;
    477 
    478 	if (sym != NULL) {
    479 		lint_assert(block_level >= sym->s_block_level);
    480 		sb->sb_name = sym->s_name;
    481 		return sym->s_scl == TYPEDEF ? T_TYPENAME : T_NAME;
    482 	}
    483 
    484 	char *name = block_zero_alloc(yyleng + 1, "string");
    485 	(void)memcpy(name, yytext, yyleng + 1);
    486 	sb->sb_name = name;
    487 	return T_NAME;
    488 }
    489 
    490 int
    491 lex_integer_constant(const char *yytext, size_t yyleng, int base)
    492 {
    493 	/* C11 6.4.4.1p5 */
    494 	static const tspec_t suffix_type[2][3] = {
    495 		{ INT,  LONG,  LLONG, },
    496 		{ UINT, ULONG, ULLONG, }
    497 	};
    498 
    499 	const char *cp = yytext;
    500 	size_t len = yyleng;
    501 
    502 	/* skip 0[xX] or 0[bB] */
    503 	if (base == 16 || base == 2) {
    504 		cp += 2;
    505 		len -= 2;
    506 	}
    507 
    508 	/* read suffixes */
    509 	unsigned l_suffix = 0, u_suffix = 0;
    510 	for (;; len--) {
    511 		char c = cp[len - 1];
    512 		if (c == 'l' || c == 'L')
    513 			l_suffix++;
    514 		else if (c == 'u' || c == 'U')
    515 			u_suffix++;
    516 		else
    517 			break;
    518 	}
    519 	if (l_suffix > 2 || u_suffix > 1) {
    520 		/* malformed integer constant */
    521 		warning(251);
    522 		if (l_suffix > 2)
    523 			l_suffix = 2;
    524 		if (u_suffix > 1)
    525 			u_suffix = 1;
    526 	}
    527 	if (!allow_c90 && u_suffix > 0) {
    528 		/* suffix 'U' is illegal in traditional C */
    529 		warning(97);
    530 	}
    531 	tspec_t typ = suffix_type[u_suffix][l_suffix];
    532 
    533 	bool warned = false;
    534 	errno = 0;
    535 	char *eptr;
    536 	uint64_t ui = (uint64_t)strtoull(cp, &eptr, base);
    537 	lint_assert(eptr == cp + len);
    538 	if (errno != 0) {
    539 		/* integer constant out of range */
    540 		warning(252);
    541 		warned = true;
    542 	}
    543 
    544 	if (any_query_enabled && base == 8 && ui != 0) {
    545 		/* octal number '%.*s' */
    546 		query_message(8, (int)len, cp);
    547 	}
    548 
    549 	/*
    550 	 * If the value is too big for the current type, we must choose another
    551 	 * type.
    552 	 */
    553 	bool ansiu = false;
    554 	switch (typ) {
    555 	case INT:
    556 		if (ui <= TARG_INT_MAX) {
    557 			/* ok */
    558 		} else if (ui <= TARG_UINT_MAX && base != 10) {
    559 			typ = UINT;
    560 		} else if (ui <= TARG_LONG_MAX) {
    561 			typ = LONG;
    562 		} else {
    563 			typ = ULONG;
    564 			if (ui > TARG_ULONG_MAX && !warned) {
    565 				/* integer constant out of range */
    566 				warning(252);
    567 			}
    568 		}
    569 		if (typ == UINT || typ == ULONG) {
    570 			if (!allow_c90) {
    571 				typ = LONG;
    572 			} else if (allow_trad) {
    573 				/*
    574 				 * Remember that the constant is unsigned only
    575 				 * in C90.
    576 				 */
    577 				ansiu = true;
    578 			}
    579 		}
    580 		break;
    581 	case UINT:
    582 		if (ui > TARG_UINT_MAX) {
    583 			typ = ULONG;
    584 			if (ui > TARG_ULONG_MAX && !warned) {
    585 				/* integer constant out of range */
    586 				warning(252);
    587 			}
    588 		}
    589 		break;
    590 	case LONG:
    591 		if (ui > TARG_LONG_MAX && allow_c90) {
    592 			typ = ULONG;
    593 			if (allow_trad)
    594 				ansiu = true;
    595 			if (ui > TARG_ULONG_MAX && !warned) {
    596 				/* integer constant out of range */
    597 				warning(252);
    598 			}
    599 		}
    600 		break;
    601 	case ULONG:
    602 		if (ui > TARG_ULONG_MAX && !warned) {
    603 			/* integer constant out of range */
    604 			warning(252);
    605 		}
    606 		break;
    607 	case LLONG:
    608 		if (ui > TARG_LLONG_MAX && allow_c90)
    609 			typ = ULLONG;
    610 		break;
    611 	case ULLONG:
    612 		if (ui > TARG_ULLONG_MAX && !warned) {
    613 			/* integer constant out of range */
    614 			warning(252);
    615 		}
    616 		break;
    617 	default:
    618 		break;
    619 	}
    620 
    621 	ui = (uint64_t)convert_integer((int64_t)ui, typ, 0);
    622 
    623 	yylval.y_val = xcalloc(1, sizeof(*yylval.y_val));
    624 	yylval.y_val->v_tspec = typ;
    625 	yylval.y_val->v_unsigned_since_c90 = ansiu;
    626 	yylval.y_val->u.integer = (int64_t)ui;
    627 
    628 	return T_CON;
    629 }
    630 
    631 /*
    632  * Extend or truncate si to match t.  If t is signed, sign-extend.
    633  *
    634  * len is the number of significant bits. If len is 0, len is set
    635  * to the width of type t.
    636  */
    637 int64_t
    638 convert_integer(int64_t si, tspec_t t, unsigned int len)
    639 {
    640 
    641 	if (len == 0)
    642 		len = size_in_bits(t);
    643 
    644 	uint64_t vbits = value_bits(len);
    645 	uint64_t ui = (uint64_t)si;
    646 	return t == PTR || is_uinteger(t) || ((ui & bit(len - 1)) == 0)
    647 	    ? (int64_t)(ui & vbits)
    648 	    : (int64_t)(ui | ~vbits);
    649 }
    650 
    651 int
    652 lex_floating_constant(const char *yytext, size_t yyleng)
    653 {
    654 	const char *cp = yytext;
    655 	size_t len = yyleng;
    656 
    657 	bool imaginary = cp[len - 1] == 'i';
    658 	if (imaginary)
    659 		len--;
    660 
    661 	char c = cp[len - 1];
    662 	tspec_t typ;
    663 	if (c == 'f' || c == 'F') {
    664 		typ = imaginary ? FCOMPLEX : FLOAT;
    665 		len--;
    666 	} else if (c == 'l' || c == 'L') {
    667 		typ = imaginary ? LCOMPLEX : LDOUBLE;
    668 		len--;
    669 	} else
    670 		typ = imaginary ? DCOMPLEX : DOUBLE;
    671 
    672 	if (!allow_c90 && typ != DOUBLE) {
    673 		/* suffixes 'F' and 'L' are illegal in traditional C */
    674 		warning(98);
    675 	}
    676 
    677 	errno = 0;
    678 	char *eptr;
    679 	long double ld = strtold(cp, &eptr);
    680 	lint_assert(eptr == cp + len);
    681 	if (errno != 0) {
    682 		/* floating-point constant out of range */
    683 		warning(248);
    684 	} else if (typ == FLOAT) {
    685 		ld = (float)ld;
    686 		if (isfinite(ld) == 0) {
    687 			/* floating-point constant out of range */
    688 			warning(248);
    689 			ld = ld > 0 ? FLT_MAX : -FLT_MAX;
    690 		}
    691 	} else if (typ == DOUBLE
    692 	    || /* CONSTCOND */ LDOUBLE_SIZE == DOUBLE_SIZE) {
    693 		ld = (double)ld;
    694 		if (isfinite(ld) == 0) {
    695 			/* floating-point constant out of range */
    696 			warning(248);
    697 			ld = ld > 0 ? DBL_MAX : -DBL_MAX;
    698 		}
    699 	}
    700 
    701 	yylval.y_val = xcalloc(1, sizeof(*yylval.y_val));
    702 	yylval.y_val->v_tspec = typ;
    703 	yylval.y_val->u.floating = ld;
    704 
    705 	return T_CON;
    706 }
    707 
    708 int
    709 lex_operator(int t, op_t o)
    710 {
    711 
    712 	yylval.y_op = o;
    713 	return t;
    714 }
    715 
    716 static int prev_byte = -1;
    717 
    718 static int
    719 read_escaped_oct(int c)
    720 {
    721 	int n = 3;
    722 	int value = 0;
    723 	do {
    724 		value = (value << 3) + (c - '0');
    725 		c = read_byte();
    726 	} while (--n > 0 && '0' <= c && c <= '7');
    727 	prev_byte = c;
    728 	if (value > TARG_UCHAR_MAX) {
    729 		/* character escape does not fit in character */
    730 		warning(76);
    731 		value &= CHAR_MASK;
    732 	}
    733 	return value;
    734 }
    735 
    736 static unsigned int
    737 read_escaped_hex(int c)
    738 {
    739 	if (!allow_c90)
    740 		/* \x undefined in traditional C */
    741 		warning(82);
    742 	unsigned int value = 0;
    743 	int state = 0;		/* 0 = no digits, 1 = OK, 2 = overflow */
    744 	while (c = read_byte(), isxdigit(c)) {
    745 		c = isdigit(c) ? c - '0' : toupper(c) - 'A' + 10;
    746 		value = (value << 4) + c;
    747 		if (state == 2)
    748 			continue;
    749 		if ((value & ~CHAR_MASK) != 0) {
    750 			/* overflow in hex escape */
    751 			warning(75);
    752 			state = 2;
    753 		} else {
    754 			state = 1;
    755 		}
    756 	}
    757 	prev_byte = c;
    758 	if (state == 0) {
    759 		/* no hex digits follow \x */
    760 		error(74);
    761 	}
    762 	if (state == 2)
    763 		value &= CHAR_MASK;
    764 	return value;
    765 }
    766 
    767 static int
    768 read_escaped_backslash(int delim)
    769 {
    770 	int c;
    771 
    772 	switch (c = read_byte()) {
    773 	case '"':
    774 		if (!allow_c90 && delim == '\'')
    775 			/* \" inside character constants undef... */
    776 			warning(262);
    777 		return '"';
    778 	case '\'':
    779 		return '\'';
    780 	case '?':
    781 		if (!allow_c90)
    782 			/* \? undefined in traditional C */
    783 			warning(263);
    784 		return '?';
    785 	case '\\':
    786 		return '\\';
    787 	case 'a':
    788 		if (!allow_c90)
    789 			/* \a undefined in traditional C */
    790 			warning(81);
    791 		return '\a';
    792 	case 'b':
    793 		return '\b';
    794 	case 'e':
    795 		if (!allow_gcc)
    796 			break;
    797 		/* Not in the C standard yet, compilers recognize it */
    798 		/* LINTED 79 */
    799 		return '\e';
    800 	case 'f':
    801 		return '\f';
    802 	case 'n':
    803 		return '\n';
    804 	case 'r':
    805 		return '\r';
    806 	case 't':
    807 		return '\t';
    808 	case 'v':
    809 		if (!allow_c90)
    810 			/* \v undefined in traditional C */
    811 			warning(264);
    812 		return '\v';
    813 	case '8': case '9':
    814 		/* bad octal digit '%c' */
    815 		warning(77, c);
    816 		/* FALLTHROUGH */
    817 	case '0': case '1': case '2': case '3':
    818 	case '4': case '5': case '6': case '7':
    819 		return read_escaped_oct(c);
    820 	case 'x':
    821 		return (int)read_escaped_hex(c);
    822 	case '\n':
    823 		return -3;
    824 	case EOF:
    825 		return -2;
    826 	default:
    827 		break;
    828 	}
    829 	if (isprint(c))
    830 		/* dubious escape \%c */
    831 		warning(79, c);
    832 	else
    833 		/* dubious escape \%o */
    834 		warning(80, c);
    835 	return c;
    836 }
    837 
    838 /*
    839  * Read a character which is part of a character constant or of a string
    840  * and handle escapes.
    841  *
    842  * 'delim' is '\'' for character constants and '"' for string literals.
    843  *
    844  * Returns -1 if the end of the character constant or string is reached,
    845  * -2 if the EOF is reached, and the character otherwise.
    846  */
    847 static int
    848 get_escaped_char(int delim)
    849 {
    850 
    851 	int c = prev_byte;
    852 	if (c != -1)
    853 		prev_byte = -1;
    854 	else
    855 		c = read_byte();
    856 
    857 	if (c == delim)
    858 		return -1;
    859 	switch (c) {
    860 	case '\n':
    861 		if (!allow_c90) {
    862 			/* newline in string or char constant */
    863 			error(254);
    864 			return -2;
    865 		}
    866 		return c;
    867 	case '\0':
    868 		/* syntax error '%s' */
    869 		error(249, "EOF or null byte in literal");
    870 		return -2;
    871 	case EOF:
    872 		return -2;
    873 	case '\\':
    874 		c = read_escaped_backslash(delim);
    875 		if (c == -3)
    876 			return get_escaped_char(delim);
    877 		break;
    878 	default:
    879 		if (c != ' ' && (isspace(c) || iscntrl(c))) {
    880 			/* invisible character U+%04X in %s */
    881 			query_message(17, (unsigned int)c, delim == '"'
    882 			    ? "string literal" : "character constant");
    883 		}
    884 	}
    885 	return c;
    886 }
    887 
    888 /* Called if lex found a leading "'". */
    889 int
    890 lex_character_constant(void)
    891 {
    892 	size_t n;
    893 	int val, c;
    894 
    895 	n = 0;
    896 	val = 0;
    897 	while ((c = get_escaped_char('\'')) >= 0) {
    898 		val = (int)((unsigned int)val << CHAR_SIZE) + c;
    899 		n++;
    900 	}
    901 	if (c == -2) {
    902 		/* unterminated character constant */
    903 		error(253);
    904 	} else if (n > sizeof(int) || (n > 1 && (pflag || hflag))) {
    905 		/*
    906 		 * XXX: ^^ should rather be sizeof(TARG_INT). Luckily,
    907 		 * sizeof(int) is the same on all supported platforms.
    908 		 */
    909 		/* too many characters in character constant */
    910 		error(71);
    911 	} else if (n > 1) {
    912 		/* multi-character character constant */
    913 		warning(294);
    914 	} else if (n == 0) {
    915 		/* empty character constant */
    916 		error(73);
    917 	}
    918 	if (n == 1)
    919 		val = (int)convert_integer(val, CHAR, CHAR_SIZE);
    920 
    921 	yylval.y_val = xcalloc(1, sizeof(*yylval.y_val));
    922 	yylval.y_val->v_tspec = INT;
    923 	yylval.y_val->v_char_constant = true;
    924 	yylval.y_val->u.integer = val;
    925 
    926 	return T_CON;
    927 }
    928 
    929 /*
    930  * Called if lex found a leading L\'
    931  */
    932 int
    933 lex_wide_character_constant(void)
    934 {
    935 	static char buf[MB_LEN_MAX + 1];
    936 	size_t n, nmax;
    937 	int c;
    938 	wchar_t wc;
    939 
    940 	nmax = MB_CUR_MAX;
    941 
    942 	n = 0;
    943 	while ((c = get_escaped_char('\'')) >= 0) {
    944 		if (n < nmax)
    945 			buf[n] = (char)c;
    946 		n++;
    947 	}
    948 
    949 	wc = 0;
    950 
    951 	if (c == -2) {
    952 		/* unterminated character constant */
    953 		error(253);
    954 	} else if (n == 0) {
    955 		/* empty character constant */
    956 		error(73);
    957 	} else if (n > nmax) {
    958 		n = nmax;
    959 		/* too many characters in character constant */
    960 		error(71);
    961 	} else {
    962 		buf[n] = '\0';
    963 		(void)mbtowc(NULL, NULL, 0);
    964 		if (mbtowc(&wc, buf, nmax) < 0)
    965 			/* invalid multibyte character */
    966 			error(291);
    967 	}
    968 
    969 	yylval.y_val = xcalloc(1, sizeof(*yylval.y_val));
    970 	yylval.y_val->v_tspec = WCHAR_TSPEC;
    971 	yylval.y_val->v_char_constant = true;
    972 	yylval.y_val->u.integer = wc;
    973 
    974 	return T_CON;
    975 }
    976 
    977 /* See https://gcc.gnu.org/onlinedocs/cpp/Preprocessor-Output.html */
    978 static void
    979 parse_line_directive_flags(const char *p,
    980 			   bool *is_begin, bool *is_end, bool *is_system)
    981 {
    982 
    983 	*is_begin = false;
    984 	*is_end = false;
    985 	*is_system = false;
    986 
    987 	while (*p != '\0') {
    988 		while (ch_isspace(*p))
    989 			p++;
    990 
    991 		const char *word = p;
    992 		while (*p != '\0' && !ch_isspace(*p))
    993 			p++;
    994 		size_t len = (size_t)(p - word);
    995 
    996 		if (len == 1 && word[0] == '1')
    997 			*is_begin = true;
    998 		if (len == 1 && word[0] == '2')
    999 			*is_end = true;
   1000 		if (len == 1 && word[0] == '3')
   1001 			*is_system = true;
   1002 		/* Flag '4' is only interesting for C++. */
   1003 	}
   1004 }
   1005 
   1006 /*
   1007  * The first directive of the preprocessed translation unit provides the name
   1008  * of the C source file as specified at the command line.
   1009  */
   1010 static void
   1011 set_csrc_pos(void)
   1012 {
   1013 	static bool done;
   1014 
   1015 	if (done)
   1016 		return;
   1017 	done = true;
   1018 	csrc_pos.p_file = curr_pos.p_file;
   1019 	outsrc(transform_filename(curr_pos.p_file, strlen(curr_pos.p_file)));
   1020 }
   1021 
   1022 /*
   1023  * Called for preprocessor directives. Currently implemented are:
   1024  *	# pragma [argument...]
   1025  *	# lineno
   1026  *	# lineno "filename" [GCC-flag...]
   1027  */
   1028 void
   1029 lex_directive(const char *yytext)
   1030 {
   1031 	const char *p = yytext + 1;	/* skip '#' */
   1032 
   1033 	while (*p == ' ' || *p == '\t')
   1034 		p++;
   1035 
   1036 	if (!ch_isdigit(*p)) {
   1037 		if (strncmp(p, "pragma", 6) == 0 && ch_isspace(p[6]))
   1038 			return;
   1039 		goto error;
   1040 	}
   1041 
   1042 	char *end;
   1043 	long ln = strtol(--p, &end, 10);
   1044 	if (end == p)
   1045 		goto error;
   1046 	p = end;
   1047 
   1048 	if (*p != ' ' && *p != '\t' && *p != '\0')
   1049 		goto error;
   1050 	while (*p == ' ' || *p == '\t')
   1051 		p++;
   1052 
   1053 	if (*p != '\0') {
   1054 		if (*p != '"')
   1055 			goto error;
   1056 		const char *fn = ++p;
   1057 		while (*p != '"' && *p != '\0')
   1058 			p++;
   1059 		if (*p != '"')
   1060 			goto error;
   1061 		size_t fn_len = p++ - fn;
   1062 		if (fn_len > PATH_MAX)
   1063 			goto error;
   1064 		if (fn_len == 0) {
   1065 			fn = "{standard input}";
   1066 			fn_len = strlen(fn);
   1067 		}
   1068 		curr_pos.p_file = record_filename(fn, fn_len);
   1069 		set_csrc_pos();
   1070 
   1071 		bool is_begin, is_end, is_system;
   1072 		parse_line_directive_flags(p, &is_begin, &is_end, &is_system);
   1073 		update_location(curr_pos.p_file, (int)ln, is_begin, is_end);
   1074 		in_system_header = is_system;
   1075 	}
   1076 	curr_pos.p_line = (int)ln - 1;
   1077 	curr_pos.p_uniq = 0;
   1078 	if (curr_pos.p_file == csrc_pos.p_file) {
   1079 		csrc_pos.p_line = (int)ln - 1;
   1080 		csrc_pos.p_uniq = 0;
   1081 	}
   1082 	return;
   1083 
   1084 error:
   1085 	/* undefined or invalid '#' directive */
   1086 	warning(255);
   1087 }
   1088 
   1089 /* Handle lint comments such as ARGSUSED. */
   1090 void
   1091 lex_comment(void)
   1092 {
   1093 	int c;
   1094 	static const struct {
   1095 		const	char name[18];
   1096 		bool	arg;
   1097 		lint_comment comment;
   1098 	} keywtab[] = {
   1099 		{ "ARGSUSED",		true,	LC_ARGSUSED	},
   1100 		{ "BITFIELDTYPE",	false,	LC_BITFIELDTYPE	},
   1101 		{ "CONSTCOND",		false,	LC_CONSTCOND	},
   1102 		{ "CONSTANTCOND",	false,	LC_CONSTCOND	},
   1103 		{ "CONSTANTCONDITION",	false,	LC_CONSTCOND	},
   1104 		{ "FALLTHRU",		false,	LC_FALLTHROUGH	},
   1105 		{ "FALLTHROUGH",	false,	LC_FALLTHROUGH	},
   1106 		{ "FALL THROUGH",	false,	LC_FALLTHROUGH	},
   1107 		{ "fallthrough",	false,	LC_FALLTHROUGH	},
   1108 		{ "LINTLIBRARY",	false,	LC_LINTLIBRARY	},
   1109 		{ "LINTED",		true,	LC_LINTED	},
   1110 		{ "LONGLONG",		false,	LC_LONGLONG	},
   1111 		{ "NOSTRICT",		true,	LC_LINTED	},
   1112 		{ "NOTREACHED",		false,	LC_NOTREACHED	},
   1113 		{ "PRINTFLIKE",		true,	LC_PRINTFLIKE	},
   1114 		{ "PROTOLIB",		true,	LC_PROTOLIB	},
   1115 		{ "SCANFLIKE",		true,	LC_SCANFLIKE	},
   1116 		{ "VARARGS",		true,	LC_VARARGS	},
   1117 	};
   1118 	char keywd[32];
   1119 	char arg[32];
   1120 	size_t l, i;
   1121 	int a;
   1122 
   1123 	bool seen_end_of_comment = false;
   1124 
   1125 	while (c = read_byte(), isspace(c))
   1126 		continue;
   1127 
   1128 	/* Read the potential keyword to keywd */
   1129 	l = 0;
   1130 	while (c != EOF && l < sizeof(keywd) - 1 &&
   1131 	    (isalpha(c) || isspace(c))) {
   1132 		if (islower(c) && l > 0 && ch_isupper(keywd[0]))
   1133 			break;
   1134 		keywd[l++] = (char)c;
   1135 		c = read_byte();
   1136 	}
   1137 	while (l > 0 && ch_isspace(keywd[l - 1]))
   1138 		l--;
   1139 	keywd[l] = '\0';
   1140 
   1141 	/* look for the keyword */
   1142 	for (i = 0; i < sizeof(keywtab) / sizeof(keywtab[0]); i++)
   1143 		if (strcmp(keywtab[i].name, keywd) == 0)
   1144 			goto found_keyword;
   1145 	goto skip_rest;
   1146 
   1147 found_keyword:
   1148 	while (isspace(c))
   1149 		c = read_byte();
   1150 
   1151 	/* read the argument, if the keyword accepts one and there is one */
   1152 	l = 0;
   1153 	if (keywtab[i].arg) {
   1154 		while (isdigit(c) && l < sizeof(arg) - 1) {
   1155 			arg[l++] = (char)c;
   1156 			c = read_byte();
   1157 		}
   1158 	}
   1159 	arg[l] = '\0';
   1160 	a = l != 0 ? atoi(arg) : -1;
   1161 
   1162 	while (isspace(c))
   1163 		c = read_byte();
   1164 
   1165 	seen_end_of_comment = c == '*' && (c = read_byte()) == '/';
   1166 	if (!seen_end_of_comment && keywtab[i].comment != LC_LINTED)
   1167 		/* extra characters in lint comment */
   1168 		warning(257);
   1169 
   1170 	handle_lint_comment(keywtab[i].comment, a);
   1171 
   1172 skip_rest:
   1173 	while (!seen_end_of_comment) {
   1174 		int lc = c;
   1175 		if ((c = read_byte()) == EOF) {
   1176 			/* unterminated comment */
   1177 			error(256);
   1178 			break;
   1179 		}
   1180 		if (lc == '*' && c == '/')
   1181 			seen_end_of_comment = true;
   1182 	}
   1183 }
   1184 
   1185 void
   1186 lex_slash_slash_comment(void)
   1187 {
   1188 	int c;
   1189 
   1190 	if (!allow_c99 && !allow_gcc)
   1191 		/* %s does not support '//' comments */
   1192 		gnuism(312, allow_c90 ? "C90" : "traditional C");
   1193 
   1194 	while ((c = read_byte()) != EOF && c != '\n')
   1195 		continue;
   1196 }
   1197 
   1198 /*
   1199  * Clear flags for lint comments LINTED, LONGLONG and CONSTCOND.
   1200  * clear_warn_flags is called after function definitions and global and
   1201  * local declarations and definitions. It is also called between
   1202  * the controlling expression and the body of control statements
   1203  * (if, switch, for, while).
   1204  */
   1205 void
   1206 clear_warn_flags(void)
   1207 {
   1208 
   1209 	lwarn = LWARN_ALL;
   1210 	suppress_longlong = false;
   1211 	suppress_constcond = false;
   1212 }
   1213 
   1214 int
   1215 lex_string(void)
   1216 {
   1217 	unsigned char *s;
   1218 	int c;
   1219 	size_t len, max;
   1220 
   1221 	s = xmalloc(max = 64);
   1222 
   1223 	len = 0;
   1224 	while ((c = get_escaped_char('"')) >= 0) {
   1225 		/* +1 to reserve space for a trailing NUL character */
   1226 		if (len + 1 == max)
   1227 			s = xrealloc(s, max *= 2);
   1228 		s[len++] = (char)c;
   1229 	}
   1230 	s[len] = '\0';
   1231 	if (c == -2)
   1232 		/* unterminated string constant */
   1233 		error(258);
   1234 
   1235 	strg_t *strg = xcalloc(1, sizeof(*strg));
   1236 	strg->st_char = true;
   1237 	strg->st_len = len;
   1238 	strg->st_mem = s;
   1239 
   1240 	yylval.y_string = strg;
   1241 	return T_STRING;
   1242 }
   1243 
   1244 int
   1245 lex_wide_string(void)
   1246 {
   1247 	int c, n;
   1248 
   1249 	size_t len = 0, max = 64;
   1250 	char *s = xmalloc(max);
   1251 	while ((c = get_escaped_char('"')) >= 0) {
   1252 		/* +1 to save space for a trailing NUL character */
   1253 		if (len + 1 >= max)
   1254 			s = xrealloc(s, max *= 2);
   1255 		s[len++] = (char)c;
   1256 	}
   1257 	s[len] = '\0';
   1258 	if (c == -2)
   1259 		/* unterminated string constant */
   1260 		error(258);
   1261 
   1262 	/* get length of wide-character string */
   1263 	(void)mblen(NULL, 0);
   1264 	size_t wlen = 0;
   1265 	for (size_t i = 0; i < len; i += n, wlen++) {
   1266 		if ((n = mblen(&s[i], MB_CUR_MAX)) == -1) {
   1267 			/* invalid multibyte character */
   1268 			error(291);
   1269 			break;
   1270 		}
   1271 		if (n == 0)
   1272 			n = 1;
   1273 	}
   1274 
   1275 	wchar_t *ws = xmalloc((wlen + 1) * sizeof(*ws));
   1276 	size_t wi = 0;
   1277 	/* convert from multibyte to wide char */
   1278 	(void)mbtowc(NULL, NULL, 0);
   1279 	for (size_t i = 0; i < len; i += n, wi++) {
   1280 		if ((n = mbtowc(&ws[wi], &s[i], MB_CUR_MAX)) == -1)
   1281 			break;
   1282 		if (n == 0)
   1283 			n = 1;
   1284 	}
   1285 	ws[wi] = 0;
   1286 	free(s);
   1287 
   1288 	strg_t *strg = xcalloc(1, sizeof(*strg));
   1289 	strg->st_char = false;
   1290 	strg->st_len = wlen;
   1291 	strg->st_mem = ws;
   1292 
   1293 	yylval.y_string = strg;
   1294 	return T_STRING;
   1295 }
   1296 
   1297 void
   1298 lex_next_line(void)
   1299 {
   1300 	curr_pos.p_line++;
   1301 	curr_pos.p_uniq = 0;
   1302 	debug_skip_indent();
   1303 	debug_printf("parsing %s:%d\n", curr_pos.p_file, curr_pos.p_line);
   1304 	if (curr_pos.p_file == csrc_pos.p_file) {
   1305 		csrc_pos.p_line++;
   1306 		csrc_pos.p_uniq = 0;
   1307 	}
   1308 }
   1309 
   1310 void
   1311 lex_unknown_character(int c)
   1312 {
   1313 
   1314 	/* unknown character \%o */
   1315 	error(250, c);
   1316 }
   1317 
   1318 /*
   1319  * The scanner does not create new symbol table entries for symbols it cannot
   1320  * find in the symbol table. This is to avoid putting undeclared symbols into
   1321  * the symbol table if a syntax error occurs.
   1322  *
   1323  * getsym is called as soon as it is probably ok to put the symbol in the
   1324  * symbol table. It is still possible that symbols are put in the symbol
   1325  * table that are not completely declared due to syntax errors. To avoid too
   1326  * many problems in this case, symbols get type 'int' in getsym.
   1327  *
   1328  * XXX calls to getsym should be delayed until declare_1_* is called.
   1329  */
   1330 sym_t *
   1331 getsym(sbuf_t *sb)
   1332 {
   1333 
   1334 	sym_t *sym = sb->sb_sym;
   1335 
   1336 	/*
   1337 	 * During member declaration it is possible that name() looked for
   1338 	 * symbols of type SK_VCFT, although it should have looked for symbols
   1339 	 * of type SK_TAG. Same can happen for labels. Both cases are
   1340 	 * compensated here.
   1341 	 */
   1342 	if (sym_kind == SK_MEMBER || sym_kind == SK_LABEL) {
   1343 		if (sym == NULL || sym->s_kind == SK_VCFT)
   1344 			sym = symtab_search(sb->sb_name);
   1345 	}
   1346 
   1347 	if (sym != NULL) {
   1348 		lint_assert(sym->s_kind == sym_kind);
   1349 		set_sym_kind(SK_VCFT);
   1350 		free(sb);
   1351 		return sym;
   1352 	}
   1353 
   1354 	/* create a new symbol table entry */
   1355 
   1356 	/* labels must always be allocated at level 1 (outermost block) */
   1357 	decl_level *dl;
   1358 	if (sym_kind == SK_LABEL) {
   1359 		sym = level_zero_alloc(1, sizeof(*sym), "sym");
   1360 		char *s = level_zero_alloc(1, sb->sb_len + 1, "string");
   1361 		(void)memcpy(s, sb->sb_name, sb->sb_len + 1);
   1362 		sym->s_name = s;
   1363 		sym->s_block_level = 1;
   1364 		dl = dcs;
   1365 		while (dl->d_enclosing != NULL &&
   1366 		    dl->d_enclosing->d_enclosing != NULL)
   1367 			dl = dl->d_enclosing;
   1368 		lint_assert(dl->d_kind == DLK_AUTO);
   1369 	} else {
   1370 		sym = block_zero_alloc(sizeof(*sym), "sym");
   1371 		sym->s_name = sb->sb_name;
   1372 		sym->s_block_level = block_level;
   1373 		dl = dcs;
   1374 	}
   1375 
   1376 	sym->s_def_pos = unique_curr_pos();
   1377 	if ((sym->s_kind = sym_kind) != SK_LABEL)
   1378 		sym->s_type = gettyp(INT);
   1379 
   1380 	set_sym_kind(SK_VCFT);
   1381 
   1382 	if (!in_gcc_attribute) {
   1383 		debug_printf("%s: symtab_add ", __func__);
   1384 		debug_sym("", sym, "\n");
   1385 		symtab_add(sym);
   1386 
   1387 		*dl->d_last_dlsym = sym;
   1388 		dl->d_last_dlsym = &sym->s_level_next;
   1389 	}
   1390 
   1391 	free(sb);
   1392 	return sym;
   1393 }
   1394 
   1395 /*
   1396  * Construct a temporary symbol. The symbol name starts with a digit to avoid
   1397  * name clashes with other identifiers.
   1398  */
   1399 sym_t *
   1400 mktempsym(type_t *tp)
   1401 {
   1402 	static unsigned n = 0;
   1403 	char *s = level_zero_alloc((size_t)block_level, 64, "string");
   1404 	sym_t *sym = block_zero_alloc(sizeof(*sym), "sym");
   1405 	scl_t scl;
   1406 
   1407 	(void)snprintf(s, 64, "%.8u_tmp", n++);
   1408 
   1409 	scl = dcs->d_scl;
   1410 	if (scl == NO_SCL)
   1411 		scl = block_level > 0 ? AUTO : EXTERN;
   1412 
   1413 	sym->s_name = s;
   1414 	sym->s_type = tp;
   1415 	sym->s_block_level = block_level;
   1416 	sym->s_scl = scl;
   1417 	sym->s_kind = SK_VCFT;
   1418 	sym->s_used = true;
   1419 	sym->s_set = true;
   1420 
   1421 	symtab_add(sym);
   1422 
   1423 	*dcs->d_last_dlsym = sym;
   1424 	dcs->d_last_dlsym = &sym->s_level_next;
   1425 
   1426 	return sym;
   1427 }
   1428 
   1429 /* Remove a symbol forever from the symbol table. */
   1430 void
   1431 rmsym(sym_t *sym)
   1432 {
   1433 
   1434 	debug_step("rmsym '%s' %s '%s'",
   1435 	    sym->s_name, symbol_kind_name(sym->s_kind),
   1436 	    type_name(sym->s_type));
   1437 	symtab_remove(sym);
   1438 
   1439 	/* avoid that the symbol will later be put back to the symbol table */
   1440 	sym->s_block_level = -1;
   1441 }
   1442 
   1443 /*
   1444  * Remove all symbols from the symbol table that have the same level as the
   1445  * given symbol.
   1446  */
   1447 void
   1448 symtab_remove_level(sym_t *syms)
   1449 {
   1450 
   1451 	if (syms != NULL)
   1452 		debug_step("%s %d", __func__, syms->s_block_level);
   1453 
   1454 	/* Note the use of s_level_next instead of s_symtab_next. */
   1455 	for (sym_t *sym = syms; sym != NULL; sym = sym->s_level_next) {
   1456 		if (sym->s_block_level != -1) {
   1457 			debug_step("%s '%s' %s '%s' %d", __func__,
   1458 			    sym->s_name, symbol_kind_name(sym->s_kind),
   1459 			    type_name(sym->s_type), sym->s_block_level);
   1460 			symtab_remove(sym);
   1461 			sym->s_symtab_ref = NULL;
   1462 		}
   1463 	}
   1464 }
   1465 
   1466 /* Put a symbol into the symbol table. */
   1467 void
   1468 inssym(int level, sym_t *sym)
   1469 {
   1470 
   1471 	debug_step("%s '%s' %s '%s' %d", __func__,
   1472 	    sym->s_name, symbol_kind_name(sym->s_kind),
   1473 	    type_name(sym->s_type), level);
   1474 	sym->s_block_level = level;
   1475 	symtab_add(sym);
   1476 
   1477 	/*
   1478 	 * Placing the inner symbols to the beginning of the list ensures that
   1479 	 * these symbols are preferred over symbols from the outer blocks that
   1480 	 * happen to have the same name.
   1481 	 */
   1482 	const sym_t *next = sym->s_symtab_next;
   1483 	if (next != NULL)
   1484 		lint_assert(sym->s_block_level >= next->s_block_level);
   1485 }
   1486 
   1487 /* Called at level 0 after syntax errors. */
   1488 void
   1489 clean_up_after_error(void)
   1490 {
   1491 
   1492 	symtab_remove_locals();
   1493 
   1494 	while (mem_block_level > 0)
   1495 		level_free_all(mem_block_level--);
   1496 }
   1497 
   1498 /* Create a new symbol with the same name as an existing symbol. */
   1499 sym_t *
   1500 pushdown(const sym_t *sym)
   1501 {
   1502 	sym_t *nsym;
   1503 
   1504 	debug_step("pushdown '%s' %s '%s'",
   1505 	    sym->s_name, symbol_kind_name(sym->s_kind),
   1506 	    type_name(sym->s_type));
   1507 	nsym = block_zero_alloc(sizeof(*nsym), "sym");
   1508 	lint_assert(sym->s_block_level <= block_level);
   1509 	nsym->s_name = sym->s_name;
   1510 	nsym->s_def_pos = unique_curr_pos();
   1511 	nsym->s_kind = sym->s_kind;
   1512 	nsym->s_block_level = block_level;
   1513 
   1514 	symtab_add(nsym);
   1515 
   1516 	*dcs->d_last_dlsym = nsym;
   1517 	dcs->d_last_dlsym = &nsym->s_level_next;
   1518 
   1519 	return nsym;
   1520 }
   1521 
   1522 /*
   1523  * Free any dynamically allocated memory referenced by
   1524  * the value stack or yylval.
   1525  * The type of information in yylval is described by tok.
   1526  */
   1527 void
   1528 freeyyv(void *sp, int tok)
   1529 {
   1530 	if (tok == T_NAME || tok == T_TYPENAME) {
   1531 		sbuf_t *sb = *(sbuf_t **)sp;
   1532 		free(sb);
   1533 	} else if (tok == T_CON) {
   1534 		val_t *val = *(val_t **)sp;
   1535 		free(val);
   1536 	} else if (tok == T_STRING) {
   1537 		strg_t *strg = *(strg_t **)sp;
   1538 		free(strg->st_mem);
   1539 		free(strg);
   1540 	}
   1541 }
   1542