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tree.c revision 1.578
      1 /*	$NetBSD: tree.c,v 1.578 2023/08/26 10:43:53 rillig Exp $	*/
      2 
      3 /*
      4  * Copyright (c) 1994, 1995 Jochen Pohl
      5  * All Rights Reserved.
      6  *
      7  * Redistribution and use in source and binary forms, with or without
      8  * modification, are permitted provided that the following conditions
      9  * are met:
     10  * 1. Redistributions of source code must retain the above copyright
     11  *    notice, this list of conditions and the following disclaimer.
     12  * 2. Redistributions in binary form must reproduce the above copyright
     13  *    notice, this list of conditions and the following disclaimer in the
     14  *    documentation and/or other materials provided with the distribution.
     15  * 3. All advertising materials mentioning features or use of this software
     16  *    must display the following acknowledgement:
     17  *	This product includes software developed by Jochen Pohl for
     18  *	The NetBSD Project.
     19  * 4. The name of the author may not be used to endorse or promote products
     20  *    derived from this software without specific prior written permission.
     21  *
     22  * THIS SOFTWARE IS PROVIDED BY THE AUTHOR ``AS IS'' AND ANY EXPRESS OR
     23  * IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES
     24  * OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED.
     25  * IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR ANY DIRECT, INDIRECT,
     26  * INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT
     27  * NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE,
     28  * DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY
     29  * THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT
     30  * (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE OF
     31  * THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
     32  */
     33 
     34 #if HAVE_NBTOOL_CONFIG_H
     35 #include "nbtool_config.h"
     36 #endif
     37 
     38 #include <sys/cdefs.h>
     39 #if defined(__RCSID)
     40 __RCSID("$NetBSD: tree.c,v 1.578 2023/08/26 10:43:53 rillig Exp $");
     41 #endif
     42 
     43 #include <float.h>
     44 #include <limits.h>
     45 #include <math.h>
     46 #include <signal.h>
     47 #include <stdlib.h>
     48 #include <string.h>
     49 
     50 #include "lint1.h"
     51 
     52 
     53 typedef struct integer_constraints {
     54 	int64_t		smin;	/* signed minimum */
     55 	int64_t		smax;	/* signed maximum */
     56 	uint64_t	umin;	/* unsigned minimum */
     57 	uint64_t	umax;	/* unsigned maximum */
     58 	uint64_t	bset;	/* bits that are definitely set */
     59 	uint64_t	bclr;	/* bits that are definitely clear */
     60 } integer_constraints;
     61 
     62 
     63 static uint64_t
     64 u64_fill_right(uint64_t x)
     65 {
     66 	x |= x >> 1;
     67 	x |= x >> 2;
     68 	x |= x >> 4;
     69 	x |= x >> 8;
     70 	x |= x >> 16;
     71 	x |= x >> 32;
     72 	return x;
     73 }
     74 
     75 static bool
     76 str_ends_with(const char *haystack, const char *needle)
     77 {
     78 	size_t hlen = strlen(haystack);
     79 	size_t nlen = strlen(needle);
     80 
     81 	return nlen <= hlen &&
     82 	       memcmp(haystack + hlen - nlen, needle, nlen) == 0;
     83 }
     84 
     85 static unsigned
     86 width_in_bits(const type_t *tp)
     87 {
     88 
     89 	lint_assert(is_integer(tp->t_tspec));
     90 	return tp->t_bitfield
     91 	    ? tp->t_bit_field_width
     92 	    : size_in_bits(tp->t_tspec);
     93 }
     94 
     95 static int
     96 portable_rank_cmp(tspec_t t1, tspec_t t2) {
     97 	const ttab_t *p1 = type_properties(t1), *p2 = type_properties(t2);
     98 	lint_assert(p1->tt_rank_kind == p2->tt_rank_kind);
     99 	lint_assert(p1->tt_rank_value > 0);
    100 	lint_assert(p2->tt_rank_value > 0);
    101 	return (int)p1->tt_rank_value - (int)p2->tt_rank_value;
    102 }
    103 
    104 static bool
    105 ic_maybe_signed(const type_t *tp, const integer_constraints *ic)
    106 {
    107 	return !is_uinteger(tp->t_tspec) && ic->bclr >> 63 == 0;
    108 }
    109 
    110 static integer_constraints
    111 ic_any(const type_t *tp)
    112 {
    113 	integer_constraints c;
    114 
    115 	uint64_t vbits = value_bits(width_in_bits(tp));
    116 	if (is_uinteger(tp->t_tspec)) {
    117 		c.smin = INT64_MIN;
    118 		c.smax = INT64_MAX;
    119 		c.umin = 0;
    120 		c.umax = vbits;
    121 		c.bset = 0;
    122 		c.bclr = ~c.umax;
    123 	} else {
    124 		c.smin = (int64_t)-1 - (int64_t)(vbits >> 1);
    125 		c.smax = (int64_t)(vbits >> 1);
    126 		c.umin = 0;
    127 		c.umax = UINT64_MAX;
    128 		c.bset = 0;
    129 		c.bclr = 0;
    130 	}
    131 	return c;
    132 }
    133 
    134 static integer_constraints
    135 ic_con(const type_t *tp, const val_t *v)
    136 {
    137 	integer_constraints c;
    138 
    139 	lint_assert(is_integer(tp->t_tspec));
    140 	int64_t si = v->u.integer;
    141 	uint64_t ui = (uint64_t)si;
    142 	c.smin = si;
    143 	c.smax = si;
    144 	c.umin = ui;
    145 	c.umax = ui;
    146 	c.bset = ui;
    147 	c.bclr = ~ui;
    148 	return c;
    149 }
    150 
    151 static integer_constraints
    152 ic_cvt(const type_t *ntp, const type_t *otp, integer_constraints a)
    153 {
    154 	unsigned nw = width_in_bits(ntp);
    155 	unsigned ow = width_in_bits(otp);
    156 	bool nu = is_uinteger(ntp->t_tspec);
    157 	bool ou = is_uinteger(otp->t_tspec);
    158 
    159 	if (nw >= ow && nu == ou)
    160 		return a;
    161 	if (nw > ow && ou)
    162 		return a;
    163 	return ic_any(ntp);
    164 }
    165 
    166 static integer_constraints
    167 ic_bitand(integer_constraints a, integer_constraints b)
    168 {
    169 	integer_constraints c;
    170 
    171 	c.smin = INT64_MIN;
    172 	c.smax = INT64_MAX;
    173 	c.umin = 0;
    174 	c.umax = UINT64_MAX;
    175 	c.bset = a.bset & b.bset;
    176 	c.bclr = a.bclr | b.bclr;
    177 	return c;
    178 }
    179 
    180 static integer_constraints
    181 ic_bitor(integer_constraints a, integer_constraints b)
    182 {
    183 	integer_constraints c;
    184 
    185 	c.smin = INT64_MIN;
    186 	c.smax = INT64_MAX;
    187 	c.umin = 0;
    188 	c.umax = UINT64_MAX;
    189 	c.bset = a.bset | b.bset;
    190 	c.bclr = a.bclr & b.bclr;
    191 	return c;
    192 }
    193 
    194 static integer_constraints
    195 ic_mod(const type_t *tp, integer_constraints a, integer_constraints b)
    196 {
    197 	integer_constraints c;
    198 
    199 	if (ic_maybe_signed(tp, &a) || ic_maybe_signed(tp, &b))
    200 		return ic_any(tp);
    201 
    202 	c.smin = INT64_MIN;
    203 	c.smax = INT64_MAX;
    204 	c.umin = 0;
    205 	c.umax = b.umax - 1;
    206 	c.bset = 0;
    207 	c.bclr = ~u64_fill_right(c.umax);
    208 	return c;
    209 }
    210 
    211 static integer_constraints
    212 ic_shl(const type_t *tp, integer_constraints a, integer_constraints b)
    213 {
    214 	integer_constraints c;
    215 	unsigned int amount;
    216 
    217 	if (ic_maybe_signed(tp, &a))
    218 		return ic_any(tp);
    219 
    220 	if (b.smin == b.smax && b.smin >= 0 && b.smin < 64)
    221 		amount = (unsigned int)b.smin;
    222 	else if (b.umin == b.umax && b.umin < 64)
    223 		amount = (unsigned int)b.umin;
    224 	else
    225 		return ic_any(tp);
    226 
    227 	c.smin = INT64_MIN;
    228 	c.smax = INT64_MAX;
    229 	c.umin = 0;
    230 	c.umax = UINT64_MAX;
    231 	c.bset = a.bset << amount;
    232 	c.bclr = a.bclr << amount | (((uint64_t)1 << amount) - 1);
    233 	return c;
    234 }
    235 
    236 static integer_constraints
    237 ic_shr(const type_t *tp, integer_constraints a, integer_constraints b)
    238 {
    239 	integer_constraints c;
    240 	unsigned int amount;
    241 
    242 	if (ic_maybe_signed(tp, &a))
    243 		return ic_any(tp);
    244 
    245 	if (b.smin == b.smax && b.smin >= 0 && b.smin < 64)
    246 		amount = (unsigned int)b.smin;
    247 	else if (b.umin == b.umax && b.umin < 64)
    248 		amount = (unsigned int)b.umin;
    249 	else
    250 		return ic_any(tp);
    251 
    252 	c.smin = INT64_MIN;
    253 	c.smax = INT64_MAX;
    254 	c.umin = 0;
    255 	c.umax = UINT64_MAX;
    256 	c.bset = a.bset >> amount;
    257 	c.bclr = a.bclr >> amount | ~(~(uint64_t)0 >> amount);
    258 	return c;
    259 }
    260 
    261 static integer_constraints
    262 ic_cond(integer_constraints a, integer_constraints b)
    263 {
    264 	integer_constraints c;
    265 
    266 	c.smin = a.smin < b.smin ? a.smin : b.smin;
    267 	c.smax = a.smax > b.smax ? a.smax : b.smax;
    268 	c.umin = a.umin < b.umin ? a.umin : b.umin;
    269 	c.umax = a.umax > b.umax ? a.umax : b.umax;
    270 	c.bset = a.bset | b.bset;
    271 	c.bclr = a.bclr & b.bclr;
    272 	return c;
    273 }
    274 
    275 static integer_constraints
    276 ic_expr(const tnode_t *tn)
    277 {
    278 	integer_constraints lc, rc;
    279 
    280 	lint_assert(is_integer(tn->tn_type->t_tspec));
    281 
    282 	switch (tn->tn_op) {
    283 	case CON:
    284 		return ic_con(tn->tn_type, &tn->tn_val);
    285 	case CVT:
    286 		if (!is_integer(tn->tn_left->tn_type->t_tspec))
    287 			return ic_any(tn->tn_type);
    288 		lc = ic_expr(tn->tn_left);
    289 		return ic_cvt(tn->tn_type, tn->tn_left->tn_type, lc);
    290 	case MOD:
    291 		lc = ic_expr(before_conversion(tn->tn_left));
    292 		rc = ic_expr(before_conversion(tn->tn_right));
    293 		return ic_mod(tn->tn_type, lc, rc);
    294 	case SHL:
    295 		lc = ic_expr(tn->tn_left);
    296 		rc = ic_expr(tn->tn_right);
    297 		return ic_shl(tn->tn_type, lc, rc);
    298 	case SHR:
    299 		lc = ic_expr(tn->tn_left);
    300 		rc = ic_expr(tn->tn_right);
    301 		return ic_shr(tn->tn_type, lc, rc);
    302 	case BITAND:
    303 		lc = ic_expr(tn->tn_left);
    304 		rc = ic_expr(tn->tn_right);
    305 		return ic_bitand(lc, rc);
    306 	case BITOR:
    307 		lc = ic_expr(tn->tn_left);
    308 		rc = ic_expr(tn->tn_right);
    309 		return ic_bitor(lc, rc);
    310 	case QUEST:
    311 		lc = ic_expr(tn->tn_right->tn_left);
    312 		rc = ic_expr(tn->tn_right->tn_right);
    313 		return ic_cond(lc, rc);
    314 	default:
    315 		return ic_any(tn->tn_type);
    316 	}
    317 }
    318 
    319 /* Build 'pointer to tp', 'array of tp' or 'function returning tp'. */
    320 type_t *
    321 block_derive_type(type_t *tp, tspec_t t)
    322 {
    323 	type_t *tp2;
    324 
    325 	tp2 = block_zero_alloc(sizeof(*tp2), "type");
    326 	tp2->t_tspec = t;
    327 	tp2->t_subt = tp;
    328 	return tp2;
    329 }
    330 
    331 /*
    332  * Derive 'pointer to tp' or 'function returning tp'.
    333  * The memory is freed at the end of the current expression.
    334  */
    335 type_t *
    336 expr_derive_type(type_t *tp, tspec_t t)
    337 {
    338 	type_t *tp2;
    339 
    340 	tp2 = expr_zero_alloc(sizeof(*tp2), "type");
    341 	tp2->t_tspec = t;
    342 	tp2->t_subt = tp;
    343 	return tp2;
    344 }
    345 
    346 /* Create an expression from a unary or binary operator and its operands. */
    347 static tnode_t *
    348 build_op(op_t op, bool sys, type_t *type, tnode_t *ln, tnode_t *rn)
    349 {
    350 
    351 	tnode_t *ntn = expr_alloc_tnode();
    352 	ntn->tn_op = op;
    353 	ntn->tn_type = type;
    354 	ntn->tn_sys = sys;
    355 	ntn->tn_left = ln;
    356 	ntn->tn_right = rn;
    357 
    358 	if (op == INDIR || op == FSEL) {
    359 		lint_assert(ln->tn_type->t_tspec == PTR);
    360 		tspec_t t = ln->tn_type->t_subt->t_tspec;
    361 		ntn->tn_lvalue = t != FUNC && t != VOID;
    362 	}
    363 
    364 	return ntn;
    365 }
    366 
    367 tnode_t *
    368 build_constant(type_t *tp, val_t *v)
    369 {
    370 
    371 	tnode_t *n = expr_alloc_tnode();
    372 	n->tn_op = CON;
    373 	n->tn_type = tp;
    374 	n->tn_val = *v;
    375 	n->tn_val.v_tspec = tp->t_tspec;
    376 	free(v);
    377 	return n;
    378 }
    379 
    380 static tnode_t *
    381 build_integer_constant(tspec_t t, int64_t si)
    382 {
    383 
    384 	tnode_t *n = expr_alloc_tnode();
    385 	n->tn_op = CON;
    386 	n->tn_type = gettyp(t);
    387 	n->tn_val.v_tspec = t;
    388 	n->tn_val.v_unsigned_since_c90 = false;
    389 	n->tn_val.v_char_constant = false;
    390 	n->tn_val.u.integer = si;
    391 	return n;
    392 }
    393 
    394 static void
    395 fallback_symbol(sym_t *sym)
    396 {
    397 
    398 	if (Tflag && fallback_symbol_strict_bool(sym))
    399 		return;
    400 
    401 	if (block_level > 0 && (strcmp(sym->s_name, "__FUNCTION__") == 0 ||
    402 			   strcmp(sym->s_name, "__PRETTY_FUNCTION__") == 0)) {
    403 		/* __FUNCTION__/__PRETTY_FUNCTION__ is a GCC extension */
    404 		gnuism(316);
    405 		// XXX: Should probably be ARRAY instead of PTR.
    406 		sym->s_type = block_derive_type(gettyp(CHAR), PTR);
    407 		sym->s_type->t_const = true;
    408 		return;
    409 	}
    410 
    411 	if (block_level > 0 && strcmp(sym->s_name, "__func__") == 0) {
    412 		if (!allow_c99)
    413 			/* __func__ is a C99 feature */
    414 			warning(317);
    415 		/* C11 6.4.2.2 */
    416 		sym->s_type = block_derive_type(gettyp(CHAR), ARRAY);
    417 		sym->s_type->t_const = true;
    418 		sym->s_type->t_dim = (int)strlen(funcsym->s_name) + 1;
    419 		return;
    420 	}
    421 
    422 	/* '%s' undefined */
    423 	error(99, sym->s_name);
    424 }
    425 
    426 /*
    427  * Functions that are predeclared by GCC or other compilers can be called
    428  * with arbitrary arguments.  Since lint usually runs after a successful
    429  * compilation, it's the compiler's job to catch any errors.
    430  */
    431 bool
    432 is_compiler_builtin(const char *name)
    433 {
    434 	/* https://gcc.gnu.org/onlinedocs/gcc/C-Extensions.html */
    435 	if (allow_gcc) {
    436 		if (strncmp(name, "__atomic_", 9) == 0 ||
    437 		    strncmp(name, "__builtin_", 10) == 0 ||
    438 		    strcmp(name, "alloca") == 0 ||
    439 		    /* obsolete but still in use, as of 2021 */
    440 		    strncmp(name, "__sync_", 7) == 0)
    441 			return true;
    442 	}
    443 
    444 	/* https://software.intel.com/sites/landingpage/IntrinsicsGuide/ */
    445 	if (strncmp(name, "_mm_", 4) == 0)
    446 		return true;
    447 
    448 	return false;
    449 }
    450 
    451 /* https://gcc.gnu.org/onlinedocs/gcc/Integer-Overflow-Builtins.html */
    452 static bool
    453 is_gcc_bool_builtin(const char *name)
    454 {
    455 	return strncmp(name, "__builtin_", 10) == 0 &&
    456 	       (str_ends_with(name, "_overflow") ||
    457 		str_ends_with(name, "_overflow_p"));
    458 }
    459 
    460 static void
    461 build_name_call(sym_t *sym)
    462 {
    463 
    464 	if (is_compiler_builtin(sym->s_name)) {
    465 		/*
    466 		 * Do not warn about these, just assume that
    467 		 * they are regular functions compatible with
    468 		 * non-prototype calling conventions.
    469 		 */
    470 		if (allow_gcc && is_gcc_bool_builtin(sym->s_name))
    471 			sym->s_type = gettyp(BOOL);
    472 	} else if (allow_c99) {
    473 		/* function '%s' implicitly declared to return int */
    474 		error(215, sym->s_name);
    475 	} else if (!allow_trad) {
    476 		/* function '%s' implicitly declared to return int */
    477 		warning(215, sym->s_name);
    478 	}
    479 
    480 	/* XXX if !allow_c90, the symbol should be exported to level 0 */
    481 	sym->s_type = block_derive_type(sym->s_type, FUNC);
    482 }
    483 
    484 /* Create a node for a name (symbol table entry). */
    485 tnode_t *
    486 build_name(sym_t *sym, bool is_funcname)
    487 {
    488 
    489 	if (sym->s_scl == NOSCL && !in_gcc_attribute) {
    490 		sym->s_scl = EXTERN;
    491 		sym->s_def = DECL;
    492 		if (is_funcname)
    493 			build_name_call(sym);
    494 		else
    495 			fallback_symbol(sym);
    496 	}
    497 
    498 	lint_assert(sym->s_kind == FVFT || sym->s_kind == FMEMBER);
    499 
    500 	tnode_t *n = expr_alloc_tnode();
    501 	n->tn_type = sym->s_type;
    502 	if (sym->s_scl == BOOL_CONST) {
    503 		n->tn_op = CON;
    504 		n->tn_val.v_tspec = BOOL;
    505 		n->tn_val.v_unsigned_since_c90 = false;
    506 		n->tn_val.v_char_constant = false;
    507 		n->tn_val.u.integer = sym->u.s_bool_constant ? 1 : 0;
    508 	} else if (sym->s_scl == ENUM_CONST) {
    509 		n->tn_op = CON;
    510 		n->tn_val.v_tspec = INT;	/* ENUM is in n->tn_type */
    511 		n->tn_val.v_unsigned_since_c90 = false;
    512 		n->tn_val.v_char_constant = false;
    513 		n->tn_val.u.integer = sym->u.s_enum_constant;
    514 	} else {
    515 		n->tn_op = NAME;
    516 		n->tn_sym = sym;
    517 		if (sym->s_kind == FVFT && sym->s_type->t_tspec != FUNC)
    518 			n->tn_lvalue = true;
    519 	}
    520 
    521 	return n;
    522 }
    523 
    524 tnode_t *
    525 build_string(strg_t *strg)
    526 {
    527 	size_t len = strg->st_len;
    528 
    529 	type_t *tp = expr_zero_alloc(sizeof(*tp), "type");
    530 	tp->t_tspec = ARRAY;
    531 	tp->t_subt = gettyp(strg->st_char ? CHAR : WCHAR_TSPEC);
    532 	tp->t_dim = (int)(len + 1);
    533 
    534 	tnode_t *n = expr_alloc_tnode();
    535 	n->tn_op = STRING;
    536 	n->tn_type = tp;
    537 	n->tn_lvalue = true;
    538 
    539 	n->tn_string = expr_zero_alloc(sizeof(*n->tn_string), "type.string");
    540 	n->tn_string->st_char = strg->st_char;
    541 	n->tn_string->st_len = len;
    542 
    543 	size_t chsize = strg->st_char ? sizeof(char) : sizeof(wchar_t);
    544 	size_t size = (len + 1) * chsize;
    545 	n->tn_string->st_mem = expr_zero_alloc(size, "type.string.data");
    546 	(void)memcpy(n->tn_string->st_mem, strg->st_mem, size);
    547 	free(strg->st_mem);
    548 	free(strg);
    549 
    550 	return n;
    551 }
    552 
    553 tnode_t *
    554 build_generic_selection(const tnode_t *expr,
    555 			struct generic_association *sel)
    556 {
    557 	tnode_t *default_result = NULL;
    558 
    559 	for (; sel != NULL; sel = sel->ga_prev) {
    560 		if (expr != NULL &&
    561 		    types_compatible(sel->ga_arg, expr->tn_type,
    562 			false, false, NULL))
    563 			return sel->ga_result;
    564 		else if (sel->ga_arg == NULL)
    565 			default_result = sel->ga_result;
    566 	}
    567 	return default_result;
    568 }
    569 
    570 static bool
    571 is_out_of_char_range(const tnode_t *tn)
    572 {
    573 	return tn->tn_op == CON &&
    574 	       !tn->tn_val.v_char_constant &&
    575 	       !(0 <= tn->tn_val.u.integer &&
    576 		 tn->tn_val.u.integer < 1 << (CHAR_SIZE - 1));
    577 }
    578 
    579 static void
    580 check_integer_comparison(op_t op, tnode_t *ln, tnode_t *rn)
    581 {
    582 
    583 	tspec_t lt = ln->tn_type->t_tspec;
    584 	tspec_t rt = rn->tn_type->t_tspec;
    585 
    586 	if (ln->tn_op != CON && rn->tn_op != CON)
    587 		return;
    588 
    589 	if (!is_integer(lt) || !is_integer(rt))
    590 		return;
    591 
    592 	if (any_query_enabled && !in_system_header) {
    593 		if (lt == CHAR && rn->tn_op == CON &&
    594 		    !rn->tn_val.v_char_constant) {
    595 			/* comparison '%s' of 'char' with plain integer %d */
    596 			query_message(14,
    597 			    op_name(op), (int)rn->tn_val.u.integer);
    598 		}
    599 		if (rt == CHAR && ln->tn_op == CON &&
    600 		    !ln->tn_val.v_char_constant) {
    601 			/* comparison '%s' of 'char' with plain integer %d */
    602 			query_message(14,
    603 			    op_name(op), (int)ln->tn_val.u.integer);
    604 		}
    605 	}
    606 
    607 	if (hflag || pflag) {
    608 		if (lt == CHAR && is_out_of_char_range(rn)) {
    609 			char buf[128];
    610 			(void)snprintf(buf, sizeof(buf), "%s %d",
    611 			    op_name(op), (int)rn->tn_val.u.integer);
    612 			/* nonportable character comparison '%s' */
    613 			warning(230, buf);
    614 			return;
    615 		}
    616 		if (rt == CHAR && is_out_of_char_range(ln)) {
    617 			char buf[128];
    618 			(void)snprintf(buf, sizeof(buf), "%d %s ?",
    619 			    (int)ln->tn_val.u.integer, op_name(op));
    620 			/* nonportable character comparison '%s' */
    621 			warning(230, buf);
    622 			return;
    623 		}
    624 	}
    625 
    626 	if (is_uinteger(lt) && !is_uinteger(rt) &&
    627 	    rn->tn_op == CON && rn->tn_val.u.integer <= 0) {
    628 		if (rn->tn_val.u.integer < 0) {
    629 			/* operator '%s' compares '%s' with '%s' */
    630 			warning(162, op_name(op),
    631 			    type_name(ln->tn_type), "negative constant");
    632 		} else if (op == LT || op == GE) {
    633 			/* operator '%s' compares '%s' with '%s' */
    634 			warning(162, op_name(op), type_name(ln->tn_type), "0");
    635 		}
    636 		return;
    637 	}
    638 	if (is_uinteger(rt) && !is_uinteger(lt) &&
    639 	    ln->tn_op == CON && ln->tn_val.u.integer <= 0) {
    640 		if (ln->tn_val.u.integer < 0) {
    641 			/* operator '%s' compares '%s' with '%s' */
    642 			warning(162, op_name(op),
    643 			    "negative constant", type_name(rn->tn_type));
    644 		} else if (op == GT || op == LE) {
    645 			/* operator '%s' compares '%s' with '%s' */
    646 			warning(162, op_name(op), "0", type_name(rn->tn_type));
    647 		}
    648 		return;
    649 	}
    650 }
    651 
    652 static const tspec_t arith_rank[] = {
    653 	LDOUBLE, DOUBLE, FLOAT,
    654 #ifdef INT128_SIZE
    655 	UINT128, INT128,
    656 #endif
    657 	ULLONG, LLONG,
    658 	ULONG, LONG,
    659 	UINT, INT,
    660 };
    661 
    662 /* Keep unsigned in traditional C */
    663 static tspec_t
    664 usual_arithmetic_conversion_trad(tspec_t lt, tspec_t rt)
    665 {
    666 
    667 	size_t i;
    668 	for (i = 0; arith_rank[i] != INT; i++)
    669 		if (lt == arith_rank[i] || rt == arith_rank[i])
    670 			break;
    671 
    672 	tspec_t t = arith_rank[i];
    673 	if (is_uinteger(lt) || is_uinteger(rt))
    674 		if (is_integer(t) && !is_uinteger(t))
    675 			return unsigned_type(t);
    676 	return t;
    677 }
    678 
    679 static tspec_t
    680 usual_arithmetic_conversion_c90(tspec_t lt, tspec_t rt)
    681 {
    682 
    683 	if (lt == rt)
    684 		return lt;
    685 
    686 	if (lt == LCOMPLEX || rt == LCOMPLEX)
    687 		return LCOMPLEX;
    688 	if (lt == DCOMPLEX || rt == DCOMPLEX)
    689 		return DCOMPLEX;
    690 	if (lt == FCOMPLEX || rt == FCOMPLEX)
    691 		return FCOMPLEX;
    692 	if (lt == LDOUBLE || rt == LDOUBLE)
    693 		return LDOUBLE;
    694 	if (lt == DOUBLE || rt == DOUBLE)
    695 		return DOUBLE;
    696 	if (lt == FLOAT || rt == FLOAT)
    697 		return FLOAT;
    698 
    699 	/*
    700 	 * If type A has more bits than type B, it should be able to hold all
    701 	 * possible values of type B.
    702 	 */
    703 	if (size_in_bits(lt) > size_in_bits(rt))
    704 		return lt;
    705 	if (size_in_bits(lt) < size_in_bits(rt))
    706 		return rt;
    707 
    708 	size_t i;
    709 	for (i = 3; arith_rank[i] != INT; i++)
    710 		if (arith_rank[i] == lt || arith_rank[i] == rt)
    711 			break;
    712 	if ((is_uinteger(lt) || is_uinteger(rt)) &&
    713 	    !is_uinteger(arith_rank[i]))
    714 		i--;
    715 	return arith_rank[i];
    716 }
    717 
    718 static tnode_t *
    719 apply_usual_arithmetic_conversions(op_t op, tnode_t *tn, tspec_t t)
    720 {
    721 	type_t *ntp = expr_dup_type(tn->tn_type);
    722 	ntp->t_tspec = t;
    723 	if (tn->tn_op != CON) {
    724 		/* usual arithmetic conversion for '%s' from '%s' to '%s' */
    725 		query_message(4, op_name(op),
    726 		    type_name(tn->tn_type), type_name(ntp));
    727 	}
    728 	return convert(op, 0, ntp, tn);
    729 }
    730 
    731 /*
    732  * Apply the "usual arithmetic conversions" (C99 6.3.1.8), which gives both
    733  * operands the same type.
    734  */
    735 static void
    736 balance(op_t op, tnode_t **lnp, tnode_t **rnp)
    737 {
    738 
    739 	tspec_t lt = (*lnp)->tn_type->t_tspec;
    740 	tspec_t rt = (*rnp)->tn_type->t_tspec;
    741 	if (!is_arithmetic(lt) || !is_arithmetic(rt))
    742 		return;
    743 
    744 	tspec_t t = allow_c90
    745 	    ? usual_arithmetic_conversion_c90(lt, rt)
    746 	    : usual_arithmetic_conversion_trad(lt, rt);
    747 
    748 	if (t != lt)
    749 		*lnp = apply_usual_arithmetic_conversions(op, *lnp, t);
    750 	if (t != rt)
    751 		*rnp = apply_usual_arithmetic_conversions(op, *rnp, t);
    752 }
    753 
    754 /*
    755  * Create a tree node for the unary & operator
    756  */
    757 static tnode_t *
    758 build_address(bool sys, tnode_t *tn, bool noign)
    759 {
    760 	tspec_t t;
    761 
    762 	if (!noign && ((t = tn->tn_type->t_tspec) == ARRAY || t == FUNC)) {
    763 		if (!allow_c90)
    764 			/* '&' before array or function: ignored */
    765 			warning(127);
    766 		return tn;
    767 	}
    768 
    769 	/* eliminate &* */
    770 	if (tn->tn_op == INDIR &&
    771 	    tn->tn_left->tn_type->t_tspec == PTR &&
    772 	    tn->tn_left->tn_type->t_subt == tn->tn_type) {
    773 		return tn->tn_left;
    774 	}
    775 
    776 	return build_op(ADDR, sys, expr_derive_type(tn->tn_type, PTR),
    777 	    tn, NULL);
    778 }
    779 
    780 /*
    781  * XXX
    782  * Note: There appear to be a number of bugs in detecting overflow in
    783  * this function. An audit and a set of proper regression tests are needed.
    784  *     --Perry Metzger, Nov. 16, 2001
    785  */
    786 /*
    787  * Do only as much as necessary to compute constant expressions.
    788  * Called only if the operator allows folding and all operands are constants.
    789  */
    790 static tnode_t *
    791 fold(tnode_t *tn)
    792 {
    793 
    794 	val_t *v = xcalloc(1, sizeof(*v));
    795 	v->v_tspec = tn->tn_type->t_tspec;
    796 
    797 	tspec_t t = tn->tn_left->tn_type->t_tspec;
    798 	bool utyp = !is_integer(t) || is_uinteger(t);
    799 	int64_t sl = tn->tn_left->tn_val.u.integer, sr = 0;
    800 	uint64_t ul = sl, ur = 0;
    801 	if (is_binary(tn))
    802 		ur = sr = tn->tn_right->tn_val.u.integer;
    803 
    804 	int64_t mask = (int64_t)value_bits(size_in_bits(t));
    805 	bool ovfl = false;
    806 
    807 	int64_t si;
    808 	switch (tn->tn_op) {
    809 	case UPLUS:
    810 		si = sl;
    811 		break;
    812 	case UMINUS:
    813 		si = sl == INT64_MIN ? sl : -sl;
    814 		if (sl != 0 && msb(si, t) == msb(sl, t))
    815 			ovfl = true;
    816 		break;
    817 	case COMPL:
    818 		si = ~sl;
    819 		break;
    820 	case MULT:
    821 		if (utyp) {
    822 			si = (int64_t)(ul * ur);
    823 			if (si != (si & mask))
    824 				ovfl = true;
    825 			else if ((ul != 0) && ((si / ul) != ur))
    826 				ovfl = true;
    827 		} else {
    828 			si = sl * sr;
    829 			if (msb(si, t) != (msb(sl, t) ^ msb(sr, t)))
    830 				ovfl = true;
    831 		}
    832 		break;
    833 	case DIV:
    834 		if (sr == 0) {
    835 			/* division by 0 */
    836 			error(139);
    837 			si = utyp ? -1 : INT64_MAX;
    838 		} else {
    839 			si = utyp ? (int64_t)(ul / ur) : sl / sr;
    840 		}
    841 		break;
    842 	case MOD:
    843 		if (sr == 0) {
    844 			/* modulus by 0 */
    845 			error(140);
    846 			si = 0;
    847 		} else {
    848 			si = utyp ? (int64_t)(ul % ur) : sl % sr;
    849 		}
    850 		break;
    851 	case PLUS:
    852 		si = utyp ? (int64_t)(ul + ur) : sl + sr;
    853 		if (msb(sl, t) && msb(sr, t) && !msb(si, t))
    854 			ovfl = true;
    855 		if (!utyp && !msb(sl, t) && !msb(sr, t) && msb(si, t))
    856 			ovfl = true;
    857 		break;
    858 	case MINUS:
    859 		si = utyp ? (int64_t)(ul - ur) : sl - sr;
    860 		if (!utyp && msb(sl, t) && !msb(sr, t) && !msb(si, t))
    861 			ovfl = true;
    862 		if (!msb(sl, t) && msb(sr, t) && msb(si, t))
    863 			ovfl = true;
    864 		break;
    865 	case SHL:
    866 		/* TODO: warn about out-of-bounds 'sr'. */
    867 		/* TODO: warn about overflow in signed '<<'. */
    868 		si = utyp ? (int64_t)(ul << (sr & 63)) : sl << (sr & 63);
    869 		break;
    870 	case SHR:
    871 		/*
    872 		 * The sign must be explicitly extended because
    873 		 * shifts of signed values are implementation dependent.
    874 		 */
    875 		/* TODO: warn about out-of-bounds 'sr'. */
    876 		si = (int64_t)(ul >> (sr & 63));
    877 		si = convert_integer(si, t, size_in_bits(t) - (int)sr);
    878 		break;
    879 	case LT:
    880 		si = (utyp ? ul < ur : sl < sr) ? 1 : 0;
    881 		break;
    882 	case LE:
    883 		si = (utyp ? ul <= ur : sl <= sr) ? 1 : 0;
    884 		break;
    885 	case GE:
    886 		si = (utyp ? ul >= ur : sl >= sr) ? 1 : 0;
    887 		break;
    888 	case GT:
    889 		si = (utyp ? ul > ur : sl > sr) ? 1 : 0;
    890 		break;
    891 	case EQ:
    892 		si = (utyp ? ul == ur : sl == sr) ? 1 : 0;
    893 		break;
    894 	case NE:
    895 		si = (utyp ? ul != ur : sl != sr) ? 1 : 0;
    896 		break;
    897 	case BITAND:
    898 		si = utyp ? (int64_t)(ul & ur) : sl & sr;
    899 		break;
    900 	case BITXOR:
    901 		si = utyp ? (int64_t)(ul ^ ur) : sl ^ sr;
    902 		break;
    903 	case BITOR:
    904 		si = utyp ? (int64_t)(ul | ur) : sl | sr;
    905 		break;
    906 	default:
    907 		lint_assert(/*CONSTCOND*/false);
    908 	}
    909 
    910 	/* XXX: The overflow check does not work for 64-bit integers. */
    911 	if (ovfl ||
    912 	    ((uint64_t)(si | mask) != ~(uint64_t)0 && (si & ~mask) != 0)) {
    913 		if (hflag)
    914 			/* operator '%s' produces integer overflow */
    915 			warning(141, op_name(tn->tn_op));
    916 	}
    917 
    918 	v->u.integer = convert_integer(si, t, 0);
    919 
    920 	tnode_t *cn = build_constant(tn->tn_type, v);
    921 	if (tn->tn_left->tn_system_dependent)
    922 		cn->tn_system_dependent = true;
    923 	if (is_binary(tn) && tn->tn_right->tn_system_dependent)
    924 		cn->tn_system_dependent = true;
    925 
    926 	return cn;
    927 }
    928 
    929 /*
    930  * Create a new node for one of the operators POINT and ARROW.
    931  */
    932 static tnode_t *
    933 build_struct_access(op_t op, bool sys, tnode_t *ln, tnode_t *rn)
    934 {
    935 
    936 	lint_assert(rn->tn_op == NAME);
    937 	lint_assert(is_member(rn->tn_sym));
    938 
    939 	bool lvalue = op == ARROW || ln->tn_lvalue;
    940 
    941 	if (op == POINT) {
    942 		ln = build_address(sys, ln, true);
    943 	} else if (ln->tn_type->t_tspec != PTR) {
    944 		lint_assert(!allow_c90);
    945 		lint_assert(is_integer(ln->tn_type->t_tspec));
    946 		ln = convert(NOOP, 0, expr_derive_type(gettyp(VOID), PTR), ln);
    947 	}
    948 
    949 	tnode_t *ctn = build_integer_constant(PTRDIFF_TSPEC,
    950 	    rn->tn_sym->u.s_member.sm_offset_in_bits / CHAR_SIZE);
    951 
    952 	type_t *ptr_tp = expr_derive_type(rn->tn_type, PTR);
    953 	tnode_t *ntn = build_op(PLUS, sys, ptr_tp, ln, ctn);
    954 	if (ln->tn_op == CON)
    955 		ntn = fold(ntn);
    956 
    957 	op_t nop = rn->tn_type->t_bitfield ? FSEL : INDIR;
    958 	ntn = build_op(nop, sys, ntn->tn_type->t_subt, ntn, NULL);
    959 	if (!lvalue)
    960 		ntn->tn_lvalue = false;
    961 
    962 	return ntn;
    963 }
    964 
    965 /*
    966  * Get the size in bytes of type tp->t_subt, as a constant expression of type
    967  * ptrdiff_t as seen from the target platform.
    968  */
    969 static tnode_t *
    970 subt_size_in_bytes(type_t *tp)
    971 {
    972 
    973 	lint_assert(tp->t_tspec == PTR);
    974 	tp = tp->t_subt;
    975 
    976 	int elem = 1;
    977 	while (tp->t_tspec == ARRAY) {
    978 		elem *= tp->t_dim;
    979 		tp = tp->t_subt;
    980 	}
    981 
    982 	int elsz_in_bits = 0;
    983 	switch (tp->t_tspec) {
    984 	case FUNC:
    985 		/* pointer to function is not allowed here */
    986 		error(110);
    987 		break;
    988 	case VOID:
    989 		/* cannot do pointer arithmetic on operand of unknown size */
    990 		gnuism(136);
    991 		break;
    992 	case STRUCT:
    993 	case UNION:
    994 		if ((elsz_in_bits = (int)tp->t_sou->sou_size_in_bits) == 0)
    995 			/* cannot do pointer arithmetic on operand of ... */
    996 			error(136);
    997 		break;
    998 	case ENUM:
    999 		if (is_incomplete(tp)) {
   1000 			/* cannot do pointer arithmetic on operand of ... */
   1001 			warning(136);
   1002 		}
   1003 		/* FALLTHROUGH */
   1004 	default:
   1005 		if ((elsz_in_bits = size_in_bits(tp->t_tspec)) == 0) {
   1006 			/* cannot do pointer arithmetic on operand of ... */
   1007 			error(136);
   1008 		} else {
   1009 			lint_assert(elsz_in_bits != -1);
   1010 		}
   1011 		break;
   1012 	}
   1013 
   1014 	if (elem == 0 && elsz_in_bits != 0) {
   1015 		/* cannot do pointer arithmetic on operand of unknown size */
   1016 		error(136);
   1017 	}
   1018 
   1019 	if (elsz_in_bits == 0)
   1020 		elsz_in_bits = CHAR_SIZE;
   1021 
   1022 	return build_integer_constant(PTRDIFF_TSPEC,
   1023 	    (int64_t)(elem * elsz_in_bits / CHAR_SIZE));
   1024 }
   1025 
   1026 /*
   1027  * Create a node for INCAFT, INCBEF, DECAFT and DECBEF.
   1028  */
   1029 static tnode_t *
   1030 build_prepost_incdec(op_t op, bool sys, tnode_t *ln)
   1031 {
   1032 
   1033 	lint_assert(ln != NULL);
   1034 	tnode_t *cn = ln->tn_type->t_tspec == PTR
   1035 	    ? subt_size_in_bytes(ln->tn_type)
   1036 	    : build_integer_constant(INT, 1);
   1037 	return build_op(op, sys, ln->tn_type, ln, cn);
   1038 }
   1039 
   1040 static void
   1041 check_enum_array_index(const tnode_t *ln, const tnode_t *rn)
   1042 {
   1043 
   1044 	if (ln->tn_op != ADDR || ln->tn_left->tn_op != NAME)
   1045 		return;
   1046 
   1047 	const type_t *ltp = ln->tn_left->tn_type;
   1048 	if (ltp->t_tspec != ARRAY || ltp->t_incomplete_array)
   1049 		return;
   1050 
   1051 	if (rn->tn_op != CVT || !rn->tn_type->t_is_enum)
   1052 		return;
   1053 	if (rn->tn_left->tn_op != LOAD)
   1054 		return;
   1055 
   1056 	const type_t *rtp = rn->tn_left->tn_type;
   1057 	const sym_t *ec = rtp->t_enum->en_first_enumerator;
   1058 	const sym_t *max_ec = ec;
   1059 	lint_assert(ec != NULL);
   1060 	for (ec = ec->s_next; ec != NULL; ec = ec->s_next)
   1061 		if (ec->u.s_enum_constant > max_ec->u.s_enum_constant)
   1062 			max_ec = ec;
   1063 
   1064 	int64_t max_enum_value = max_ec->u.s_enum_constant;
   1065 	lint_assert(INT_MIN <= max_enum_value && max_enum_value <= INT_MAX);
   1066 
   1067 	int max_array_index = ltp->t_dim - 1;
   1068 	if (max_enum_value == max_array_index)
   1069 		return;
   1070 
   1071 	/*
   1072 	 * If the name of the largest enum constant contains 'MAX' or 'NUM',
   1073 	 * that constant is typically not part of the allowed enum values but
   1074 	 * a marker for the number of actual enum values.
   1075 	 */
   1076 	if (max_enum_value == max_array_index + 1 &&
   1077 	    (strstr(max_ec->s_name, "MAX") != NULL ||
   1078 	     strstr(max_ec->s_name, "max") != NULL ||
   1079 	     strstr(max_ec->s_name, "NUM") != NULL ||
   1080 	     strstr(max_ec->s_name, "num") != NULL))
   1081 		return;
   1082 
   1083 	/* maximum value %d of '%s' does not match maximum array index %d */
   1084 	warning(348, (int)max_enum_value, type_name(rtp), max_array_index);
   1085 	print_previous_declaration(max_ec);
   1086 }
   1087 
   1088 /*
   1089  * Create a node for operators PLUS and MINUS.
   1090  */
   1091 static tnode_t *
   1092 build_plus_minus(op_t op, bool sys, tnode_t *ln, tnode_t *rn)
   1093 {
   1094 
   1095 	/* If pointer and integer, move the pointer to the left. */
   1096 	if (rn->tn_type->t_tspec == PTR && is_integer(ln->tn_type->t_tspec)) {
   1097 		tnode_t *tmp = ln;
   1098 		ln = rn;
   1099 		rn = tmp;
   1100 		/* pointer addition has integer on the left-hand side */
   1101 		query_message(5);
   1102 	}
   1103 
   1104 	/* pointer +- integer */
   1105 	if (ln->tn_type->t_tspec == PTR && rn->tn_type->t_tspec != PTR) {
   1106 		lint_assert(is_integer(rn->tn_type->t_tspec));
   1107 
   1108 		check_ctype_macro_invocation(ln, rn);
   1109 		check_enum_array_index(ln, rn);
   1110 
   1111 		tnode_t *elsz = subt_size_in_bytes(ln->tn_type);
   1112 		if (rn->tn_type->t_tspec != elsz->tn_type->t_tspec)
   1113 			rn = convert(NOOP, 0, elsz->tn_type, rn);
   1114 
   1115 		tnode_t *prod = build_op(MULT, sys, rn->tn_type, rn, elsz);
   1116 		if (rn->tn_op == CON)
   1117 			prod = fold(prod);
   1118 
   1119 		return build_op(op, sys, ln->tn_type, ln, prod);
   1120 	}
   1121 
   1122 	/* pointer - pointer */
   1123 	if (rn->tn_type->t_tspec == PTR) {
   1124 		lint_assert(ln->tn_type->t_tspec == PTR);
   1125 		lint_assert(op == MINUS);
   1126 
   1127 		type_t *ptrdiff = gettyp(PTRDIFF_TSPEC);
   1128 		tnode_t *raw_diff = build_op(op, sys, ptrdiff, ln, rn);
   1129 		if (ln->tn_op == CON && rn->tn_op == CON)
   1130 			raw_diff = fold(raw_diff);
   1131 
   1132 		tnode_t *elsz = subt_size_in_bytes(ln->tn_type);
   1133 		balance(NOOP, &raw_diff, &elsz);
   1134 
   1135 		return build_op(DIV, sys, ptrdiff, raw_diff, elsz);
   1136 	}
   1137 
   1138 	return build_op(op, sys, ln->tn_type, ln, rn);
   1139 }
   1140 
   1141 /*
   1142  * Create a node for operators SHL and SHR.
   1143  */
   1144 static tnode_t *
   1145 build_bit_shift(op_t op, bool sys, tnode_t *ln, tnode_t *rn)
   1146 {
   1147 
   1148 	if (!allow_c90 && rn->tn_type->t_tspec != INT)
   1149 		// XXX: C1978 7.5 says: "Both [operators] perform the usual
   1150 		// arithmetic conversions on their operands."
   1151 		// TODO: Add a test to exercise this part of the code.
   1152 		rn = convert(NOOP, 0, gettyp(INT), rn);
   1153 	return build_op(op, sys, ln->tn_type, ln, rn);
   1154 }
   1155 
   1156 static bool
   1157 is_null_pointer(const tnode_t *tn)
   1158 {
   1159 	tspec_t t = tn->tn_type->t_tspec;
   1160 
   1161 	// TODO: Investigate how other pointers are stored, in particular,
   1162 	// whether a pointer constant can have a non-zero value.
   1163 	// If not, simplify the code below.
   1164 	return ((t == PTR && tn->tn_type->t_subt->t_tspec == VOID) ||
   1165 		is_integer(t))
   1166 	       && (tn->tn_op == CON && tn->tn_val.u.integer == 0);
   1167 }
   1168 
   1169 /* Return a type based on tp1, with added qualifiers from tp2. */
   1170 static type_t *
   1171 merge_qualifiers(type_t *tp1, const type_t *tp2)
   1172 {
   1173 
   1174 	lint_assert(tp1->t_tspec == PTR);
   1175 	lint_assert(tp2->t_tspec == PTR);
   1176 
   1177 	bool c1 = tp1->t_subt->t_const;
   1178 	bool c2 = tp2->t_subt->t_const;
   1179 	bool v1 = tp1->t_subt->t_volatile;
   1180 	bool v2 = tp2->t_subt->t_volatile;
   1181 
   1182 	if (c1 == (c1 | c2) && v1 == (v1 | v2))
   1183 		return tp1;
   1184 
   1185 	type_t *nstp = expr_dup_type(tp1->t_subt);
   1186 	nstp->t_const |= c2;
   1187 	nstp->t_volatile |= v2;
   1188 
   1189 	type_t *ntp = expr_dup_type(tp1);
   1190 	ntp->t_subt = nstp;
   1191 	return ntp;
   1192 }
   1193 
   1194 /* See C99 6.5.15 "Conditional operator". */
   1195 static tnode_t *
   1196 build_colon(bool sys, tnode_t *ln, tnode_t *rn)
   1197 {
   1198 
   1199 	tspec_t lt = ln->tn_type->t_tspec;
   1200 	tspec_t rt = rn->tn_type->t_tspec;
   1201 
   1202 	type_t *tp;
   1203 	if (is_arithmetic(lt) && is_arithmetic(rt)) {
   1204 		/* The operands were already balanced in build_binary. */
   1205 		tp = ln->tn_type;
   1206 	} else if (lt == BOOL && rt == BOOL) {
   1207 		tp = ln->tn_type;
   1208 	} else if (lt == VOID || rt == VOID) {
   1209 		tp = gettyp(VOID);
   1210 	} else if (is_struct_or_union(lt)) {
   1211 		/* Both types must be identical. */
   1212 		lint_assert(is_struct_or_union(rt));
   1213 		lint_assert(ln->tn_type->t_sou == rn->tn_type->t_sou);
   1214 		if (is_incomplete(ln->tn_type)) {
   1215 			/* unknown operand size, op '%s' */
   1216 			error(138, op_name(COLON));
   1217 			return NULL;
   1218 		}
   1219 		tp = ln->tn_type;
   1220 	} else if (lt == PTR && is_integer(rt)) {
   1221 		if (rt != PTRDIFF_TSPEC)
   1222 			rn = convert(NOOP, 0, gettyp(PTRDIFF_TSPEC), rn);
   1223 		tp = ln->tn_type;
   1224 	} else if (rt == PTR && is_integer(lt)) {
   1225 		if (lt != PTRDIFF_TSPEC)
   1226 			ln = convert(NOOP, 0, gettyp(PTRDIFF_TSPEC), ln);
   1227 		tp = rn->tn_type;
   1228 	} else if (lt == PTR && is_null_pointer(rn)) {
   1229 		tp = merge_qualifiers(ln->tn_type, rn->tn_type);
   1230 	} else if (rt == PTR && is_null_pointer(ln)) {
   1231 		tp = merge_qualifiers(rn->tn_type, ln->tn_type);
   1232 	} else if (lt == PTR && ln->tn_type->t_subt->t_tspec == VOID) {
   1233 		tp = merge_qualifiers(ln->tn_type, rn->tn_type);
   1234 	} else if (rt == PTR && rn->tn_type->t_subt->t_tspec == VOID) {
   1235 		tp = merge_qualifiers(rn->tn_type, ln->tn_type);
   1236 	} else {
   1237 		/*
   1238 		 * XXX For now we simply take the left type. This is
   1239 		 * probably wrong, if one type contains a function prototype
   1240 		 * and the other one, at the same place, only an old-style
   1241 		 * declaration.
   1242 		 */
   1243 		tp = merge_qualifiers(ln->tn_type, rn->tn_type);
   1244 	}
   1245 
   1246 	return build_op(COLON, sys, tp, ln, rn);
   1247 }
   1248 
   1249 /* TODO: check for varargs */
   1250 static bool
   1251 is_cast_redundant(const tnode_t *tn)
   1252 {
   1253 	const type_t *ntp = tn->tn_type, *otp = tn->tn_left->tn_type;
   1254 	tspec_t nt = ntp->t_tspec, ot = otp->t_tspec;
   1255 
   1256 	if (nt == BOOL || ot == BOOL)
   1257 		return nt == BOOL && ot == BOOL;
   1258 
   1259 	if (is_integer(nt) && is_integer(ot)) {
   1260 		unsigned int nw = width_in_bits(ntp), ow = width_in_bits(otp);
   1261 		if (is_uinteger(nt) == is_uinteger(ot))
   1262 		       return nw >= ow;
   1263 		return is_uinteger(ot) && nw > ow;
   1264 	}
   1265 
   1266 	if (is_complex(nt) || is_complex(ot))
   1267 		return is_complex(nt) && is_complex(ot) &&
   1268 		       size_in_bits(nt) >= size_in_bits(ot);
   1269 
   1270 	if (is_floating(nt) && is_floating(ot))
   1271 		return size_in_bits(nt) >= size_in_bits(ot);
   1272 
   1273 	if (nt == PTR && ot == PTR) {
   1274 		if (!ntp->t_subt->t_const && otp->t_subt->t_const)
   1275 			return false;
   1276 		if (!ntp->t_subt->t_volatile && otp->t_subt->t_volatile)
   1277 			return false;
   1278 
   1279 		if (ntp->t_subt->t_tspec == VOID ||
   1280 		    otp->t_subt->t_tspec == VOID ||
   1281 		    types_compatible(ntp->t_subt, otp->t_subt,
   1282 			false, false, NULL))
   1283 			return true;
   1284 	}
   1285 
   1286 	return false;
   1287 }
   1288 
   1289 static bool
   1290 is_assignment(op_t op)
   1291 {
   1292 
   1293 	return op == ASSIGN ||
   1294 	       op == MULASS ||
   1295 	       op == DIVASS ||
   1296 	       op == MODASS ||
   1297 	       op == ADDASS ||
   1298 	       op == SUBASS ||
   1299 	       op == SHLASS ||
   1300 	       op == SHRASS ||
   1301 	       op == ANDASS ||
   1302 	       op == XORASS ||
   1303 	       op == ORASS ||
   1304 	       op == RETURN ||
   1305 	       op == INIT;
   1306 }
   1307 
   1308 /* Create a node for an assignment operator (both '=' and 'op='). */
   1309 static tnode_t *
   1310 build_assignment(op_t op, bool sys, tnode_t *ln, tnode_t *rn)
   1311 {
   1312 
   1313 	tspec_t lt = ln->tn_type->t_tspec;
   1314 	tspec_t rt = rn->tn_type->t_tspec;
   1315 
   1316 	if (any_query_enabled && is_assignment(rn->tn_op)) {
   1317 		/* chained assignment with '%s' and '%s' */
   1318 		query_message(10, op_name(op), op_name(rn->tn_op));
   1319 	}
   1320 
   1321 	if ((op == ADDASS || op == SUBASS) && lt == PTR) {
   1322 		lint_assert(is_integer(rt));
   1323 		tnode_t *ctn = subt_size_in_bytes(ln->tn_type);
   1324 		if (rn->tn_type->t_tspec != ctn->tn_type->t_tspec)
   1325 			rn = convert(NOOP, 0, ctn->tn_type, rn);
   1326 		rn = build_op(MULT, sys, rn->tn_type, rn, ctn);
   1327 		if (rn->tn_left->tn_op == CON)
   1328 			rn = fold(rn);
   1329 	}
   1330 
   1331 	if ((op == ASSIGN || op == RETURN || op == INIT) &&
   1332 	    (lt == STRUCT || rt == STRUCT)) {
   1333 		lint_assert(lt == rt);
   1334 		lint_assert(ln->tn_type->t_sou == rn->tn_type->t_sou);
   1335 		if (is_incomplete(ln->tn_type)) {
   1336 			if (op == RETURN) {
   1337 				/* cannot return incomplete type */
   1338 				error(212);
   1339 			} else {
   1340 				/* unknown operand size, op '%s' */
   1341 				error(138, op_name(op));
   1342 			}
   1343 			return NULL;
   1344 		}
   1345 	}
   1346 
   1347 	if (op == SHLASS && hflag && allow_trad && allow_c90
   1348 	    && portable_rank_cmp(lt, rt) < 0)
   1349 		/* semantics of '%s' change in C90; ... */
   1350 		warning(118, "<<=");
   1351 
   1352 	if (op != SHLASS && op != SHRASS
   1353 	    && (op == ASSIGN || lt != PTR)
   1354 	    && (lt != rt || (ln->tn_type->t_bitfield && rn->tn_op == CON))) {
   1355 		rn = convert(op, 0, ln->tn_type, rn);
   1356 		rt = lt;
   1357 	}
   1358 
   1359 	if (any_query_enabled && rn->tn_op == CVT && rn->tn_cast &&
   1360 	    types_compatible(ln->tn_type, rn->tn_type, false, false, NULL) &&
   1361 	    is_cast_redundant(rn)) {
   1362 		/* redundant cast from '%s' to '%s' before assignment */
   1363 		query_message(7,
   1364 		    type_name(rn->tn_left->tn_type), type_name(rn->tn_type));
   1365 	}
   1366 
   1367 	return build_op(op, sys, ln->tn_type, ln, rn);
   1368 }
   1369 
   1370 /*
   1371  * Create a node for REAL, IMAG
   1372  */
   1373 static tnode_t *
   1374 build_real_imag(op_t op, bool sys, tnode_t *ln)
   1375 {
   1376 
   1377 	lint_assert(ln != NULL);
   1378 	if (ln->tn_op == NAME) {
   1379 		/*
   1380 		 * This may be too much, but it avoids wrong warnings.
   1381 		 * See d_c99_complex_split.c.
   1382 		 */
   1383 		mark_as_used(ln->tn_sym, false, false);
   1384 		mark_as_set(ln->tn_sym);
   1385 	}
   1386 
   1387 	tspec_t t;
   1388 	switch (ln->tn_type->t_tspec) {
   1389 	case LCOMPLEX:
   1390 		t = LDOUBLE;
   1391 		break;
   1392 	case DCOMPLEX:
   1393 		t = DOUBLE;
   1394 		break;
   1395 	case FCOMPLEX:
   1396 		t = FLOAT;
   1397 		break;
   1398 	default:
   1399 		/* '__%s__' is illegal for type '%s' */
   1400 		error(276, op == REAL ? "real" : "imag",
   1401 		    type_name(ln->tn_type));
   1402 		return NULL;
   1403 	}
   1404 
   1405 	tnode_t *ntn = build_op(op, sys, gettyp(t), ln, NULL);
   1406 	ntn->tn_lvalue = true;
   1407 	return ntn;
   1408 }
   1409 
   1410 static bool
   1411 is_confusing_precedence(op_t op, op_t lop, bool lparen, op_t rop, bool rparen)
   1412 {
   1413 
   1414 	if (op == SHL || op == SHR) {
   1415 		if (!lparen && (lop == PLUS || lop == MINUS))
   1416 			return true;
   1417 		if (!rparen && (rop == PLUS || rop == MINUS))
   1418 			return true;
   1419 		return false;
   1420 	}
   1421 
   1422 	if (op == LOGOR) {
   1423 		if (!lparen && lop == LOGAND)
   1424 			return true;
   1425 		if (!rparen && rop == LOGAND)
   1426 			return true;
   1427 		return false;
   1428 	}
   1429 
   1430 	lint_assert(op == BITAND || op == BITXOR || op == BITOR);
   1431 	if (!lparen && lop != op) {
   1432 		if (lop == PLUS || lop == MINUS)
   1433 			return true;
   1434 		if (lop == BITAND || lop == BITXOR)
   1435 			return true;
   1436 	}
   1437 	if (!rparen && rop != op) {
   1438 		if (rop == PLUS || rop == MINUS)
   1439 			return true;
   1440 		if (rop == BITAND || rop == BITXOR)
   1441 			return true;
   1442 	}
   1443 	return false;
   1444 }
   1445 
   1446 /*
   1447  * Print a warning if the given node has operands which should be
   1448  * parenthesized.
   1449  *
   1450  * XXX Does not work if an operand is a constant expression. Constant
   1451  * expressions are already folded.
   1452  */
   1453 static void
   1454 check_precedence_confusion(tnode_t *tn)
   1455 {
   1456 	tnode_t *ln, *rn;
   1457 
   1458 	if (!hflag)
   1459 		return;
   1460 
   1461 	debug_node(tn);
   1462 
   1463 	lint_assert(is_binary(tn));
   1464 	for (ln = tn->tn_left; ln->tn_op == CVT; ln = ln->tn_left)
   1465 		continue;
   1466 	for (rn = tn->tn_right; rn->tn_op == CVT; rn = rn->tn_left)
   1467 		continue;
   1468 
   1469 	if (is_confusing_precedence(tn->tn_op,
   1470 	    ln->tn_op, ln->tn_parenthesized,
   1471 	    rn->tn_op, rn->tn_parenthesized)) {
   1472 		/* precedence confusion possible: parenthesize! */
   1473 		warning(169);
   1474 	}
   1475 }
   1476 
   1477 /*
   1478  * Fold constant nodes, as much as is needed for comparing the value with 0.
   1479  */
   1480 static tnode_t *
   1481 fold_bool(tnode_t *tn)
   1482 {
   1483 
   1484 	val_t *v = xcalloc(1, sizeof(*v));
   1485 	v->v_tspec = tn->tn_type->t_tspec;
   1486 	lint_assert(v->v_tspec == INT || (Tflag && v->v_tspec == BOOL));
   1487 
   1488 	bool l = constant_is_nonzero(tn->tn_left);
   1489 	bool r = is_binary(tn) && constant_is_nonzero(tn->tn_right);
   1490 
   1491 	switch (tn->tn_op) {
   1492 	case NOT:
   1493 		if (hflag && !suppress_constcond)
   1494 			/* constant operand to '!' */
   1495 			warning(239);
   1496 		v->u.integer = !l ? 1 : 0;
   1497 		break;
   1498 	case LOGAND:
   1499 		v->u.integer = l && r ? 1 : 0;
   1500 		break;
   1501 	case LOGOR:
   1502 		v->u.integer = l || r ? 1 : 0;
   1503 		break;
   1504 	default:
   1505 		lint_assert(/*CONSTCOND*/false);
   1506 	}
   1507 
   1508 	return build_constant(tn->tn_type, v);
   1509 }
   1510 
   1511 static long double
   1512 floating_error_value(tspec_t t, long double lv)
   1513 {
   1514 	if (t == FLOAT)
   1515 		return lv < 0 ? -FLT_MAX : FLT_MAX;
   1516 	if (t == DOUBLE)
   1517 		return lv < 0 ? -DBL_MAX : DBL_MAX;
   1518 	/*
   1519 	 * When NetBSD is cross-built in MKLINT=yes mode on x86_64 for
   1520 	 * sparc64, tools/lint checks this code while building usr.bin/xlint.
   1521 	 * In that situation, lint uses the preprocessor for sparc64, in which
   1522 	 * the type 'long double' is IEEE-754-binary128, affecting the macro
   1523 	 * LDBL_MAX below. The type 'long double', as well as the strtold
   1524 	 * implementation, comes from the host platform x86_64 though, where
   1525 	 * 'long double' consumes 128 bits as well but only uses 80 of them.
   1526 	 * The exponent range of the two 'long double' types is the same, but
   1527 	 * the maximum finite value differs due to the extended precision on
   1528 	 * sparc64.
   1529 	 *
   1530 	 * To properly handle the data types of the target platform, lint
   1531 	 * would have to implement the floating-point types in a
   1532 	 * platform-independent way, which is not worth the effort, given how
   1533 	 * few programs practically use 'long double'.
   1534 	 */
   1535 	/* LINTED 248: floating-point constant out of range */
   1536 	long double max = LDBL_MAX;
   1537 	return lv < 0 ? -max : max;
   1538 }
   1539 
   1540 static bool
   1541 is_floating_overflow(tspec_t t, long double val)
   1542 {
   1543 	if (fpe != 0 || isfinite(val) == 0)
   1544 		return true;
   1545 	if (t == FLOAT && (val > FLT_MAX || val < -FLT_MAX))
   1546 		return true;
   1547 	if (t == DOUBLE && (val > DBL_MAX || val < -DBL_MAX))
   1548 		return true;
   1549 	return false;
   1550 }
   1551 
   1552 /*
   1553  * Fold constant nodes having operands with floating point type.
   1554  */
   1555 static tnode_t *
   1556 fold_float(tnode_t *tn)
   1557 {
   1558 
   1559 	fpe = 0;
   1560 
   1561 	tspec_t t = tn->tn_type->t_tspec;
   1562 
   1563 	val_t *v = xcalloc(1, sizeof(*v));
   1564 	v->v_tspec = t;
   1565 
   1566 	lint_assert(is_floating(t));
   1567 	lint_assert(t == tn->tn_left->tn_type->t_tspec);
   1568 	lint_assert(!is_binary(tn) || t == tn->tn_right->tn_type->t_tspec);
   1569 
   1570 	long double lv = tn->tn_left->tn_val.u.floating;
   1571 	long double rv = is_binary(tn) ? tn->tn_right->tn_val.u.floating : 0.0;
   1572 
   1573 	switch (tn->tn_op) {
   1574 	case UPLUS:
   1575 		v->u.floating = lv;
   1576 		break;
   1577 	case UMINUS:
   1578 		v->u.floating = -lv;
   1579 		break;
   1580 	case MULT:
   1581 		v->u.floating = lv * rv;
   1582 		break;
   1583 	case DIV:
   1584 		if (rv == 0.0) {
   1585 			/* division by 0 */
   1586 			error(139);
   1587 			v->u.floating = floating_error_value(t, lv);
   1588 		} else {
   1589 			v->u.floating = lv / rv;
   1590 		}
   1591 		break;
   1592 	case PLUS:
   1593 		v->u.floating = lv + rv;
   1594 		break;
   1595 	case MINUS:
   1596 		v->u.floating = lv - rv;
   1597 		break;
   1598 	case LT:
   1599 		v->u.integer = lv < rv ? 1 : 0;
   1600 		break;
   1601 	case LE:
   1602 		v->u.integer = lv <= rv ? 1 : 0;
   1603 		break;
   1604 	case GE:
   1605 		v->u.integer = lv >= rv ? 1 : 0;
   1606 		break;
   1607 	case GT:
   1608 		v->u.integer = lv > rv ? 1 : 0;
   1609 		break;
   1610 	case EQ:
   1611 		v->u.integer = lv == rv ? 1 : 0;
   1612 		break;
   1613 	case NE:
   1614 		v->u.integer = lv != rv ? 1 : 0;
   1615 		break;
   1616 	default:
   1617 		lint_assert(/*CONSTCOND*/false);
   1618 	}
   1619 
   1620 	// XXX: Must not access u.floating after setting u.integer.
   1621 	lint_assert(fpe != 0 || isnan(v->u.floating) == 0);
   1622 	if (is_complex(v->v_tspec)) {
   1623 		/*
   1624 		 * Don't warn, as lint doesn't model the imaginary part of
   1625 		 * complex numbers.
   1626 		 */
   1627 		fpe = 0;
   1628 	} else if (is_floating_overflow(t, v->u.floating)) {
   1629 		/* operator '%s' produces floating point overflow */
   1630 		warning(142, op_name(tn->tn_op));
   1631 		v->u.floating = floating_error_value(t, v->u.floating);
   1632 		fpe = 0;
   1633 	}
   1634 
   1635 	return build_constant(tn->tn_type, v);
   1636 }
   1637 
   1638 /*
   1639  * Create a tree node for a binary operator and its two operands. Also called
   1640  * for unary operators; in that case rn is NULL.
   1641  *
   1642  * Function calls, sizeof and casts are handled elsewhere.
   1643  */
   1644 tnode_t *
   1645 build_binary(tnode_t *ln, op_t op, bool sys, tnode_t *rn)
   1646 {
   1647 	const mod_t *mp = &modtab[op];
   1648 
   1649 	/* If there was an error in one of the operands, return. */
   1650 	if (ln == NULL || (mp->m_binary && rn == NULL))
   1651 		return NULL;
   1652 
   1653 	/*
   1654 	 * Apply class conversions to the left operand, but only if its
   1655 	 * value is needed or compared with zero.
   1656 	 */
   1657 	if (mp->m_value_context || mp->m_compares_with_zero)
   1658 		ln = cconv(ln);
   1659 	/*
   1660 	 * The right operand is almost always in a test or value context,
   1661 	 * except if it is a struct or union member.
   1662 	 */
   1663 	if (mp->m_binary && op != ARROW && op != POINT)
   1664 		rn = cconv(rn);
   1665 
   1666 	/*
   1667 	 * Print some warnings for comparisons of unsigned values with
   1668 	 * constants lower than or equal to null. This must be done
   1669 	 * before promote() because otherwise unsigned char and unsigned
   1670 	 * short would be promoted to int. Types are also tested to be
   1671 	 * CHAR, which would also become int.
   1672 	 */
   1673 	if (mp->m_comparison)
   1674 		check_integer_comparison(op, ln, rn);
   1675 
   1676 	if (mp->m_value_context || mp->m_compares_with_zero)
   1677 		ln = promote(op, false, ln);
   1678 	if (mp->m_binary && op != ARROW && op != POINT &&
   1679 	    op != ASSIGN && op != RETURN && op != INIT) {
   1680 		rn = promote(op, false, rn);
   1681 	}
   1682 
   1683 	/*
   1684 	 * If the result of the operation is different for signed or
   1685 	 * unsigned operands and one of the operands is signed only in
   1686 	 * C90, print a warning.
   1687 	 */
   1688 	if (mp->m_warn_if_left_unsigned_in_c90 &&
   1689 	    ln->tn_op == CON && ln->tn_val.v_unsigned_since_c90) {
   1690 		/* C90 treats constant as unsigned, op '%s' */
   1691 		warning(218, op_name(op));
   1692 		ln->tn_val.v_unsigned_since_c90 = false;
   1693 	}
   1694 	if (mp->m_warn_if_right_unsigned_in_c90 &&
   1695 	    rn->tn_op == CON && rn->tn_val.v_unsigned_since_c90) {
   1696 		/* C90 treats constant as unsigned, op '%s' */
   1697 		warning(218, op_name(op));
   1698 		rn->tn_val.v_unsigned_since_c90 = false;
   1699 	}
   1700 
   1701 	/* Make sure both operands are of the same type */
   1702 	if (mp->m_balance_operands || (!allow_c90 && (op == SHL || op == SHR)))
   1703 		balance(op, &ln, &rn);
   1704 
   1705 	/*
   1706 	 * Check types for compatibility with the operation and mutual
   1707 	 * compatibility. Return if there are serious problems.
   1708 	 */
   1709 	if (!typeok(op, 0, ln, rn))
   1710 		return NULL;
   1711 
   1712 	/* And now create the node. */
   1713 	tnode_t *ntn;
   1714 	switch (op) {
   1715 	case POINT:
   1716 	case ARROW:
   1717 		ntn = build_struct_access(op, sys, ln, rn);
   1718 		break;
   1719 	case INCAFT:
   1720 	case DECAFT:
   1721 	case INCBEF:
   1722 	case DECBEF:
   1723 		ntn = build_prepost_incdec(op, sys, ln);
   1724 		break;
   1725 	case ADDR:
   1726 		ntn = build_address(sys, ln, false);
   1727 		break;
   1728 	case INDIR:
   1729 		ntn = build_op(INDIR, sys, ln->tn_type->t_subt, ln, NULL);
   1730 		break;
   1731 	case PLUS:
   1732 	case MINUS:
   1733 		ntn = build_plus_minus(op, sys, ln, rn);
   1734 		break;
   1735 	case SHL:
   1736 	case SHR:
   1737 		ntn = build_bit_shift(op, sys, ln, rn);
   1738 		break;
   1739 	case COLON:
   1740 		ntn = build_colon(sys, ln, rn);
   1741 		break;
   1742 	case ASSIGN:
   1743 	case MULASS:
   1744 	case DIVASS:
   1745 	case MODASS:
   1746 	case ADDASS:
   1747 	case SUBASS:
   1748 	case SHLASS:
   1749 	case SHRASS:
   1750 	case ANDASS:
   1751 	case XORASS:
   1752 	case ORASS:
   1753 	case RETURN:
   1754 	case INIT:
   1755 		ntn = build_assignment(op, sys, ln, rn);
   1756 		break;
   1757 	case COMMA:
   1758 		if (any_query_enabled) {
   1759 			/* comma operator with types '%s' and '%s' */
   1760 			query_message(12,
   1761 			    type_name(ln->tn_type), type_name(rn->tn_type));
   1762 		}
   1763 		/* FALLTHROUGH */
   1764 	case QUEST:
   1765 		ntn = build_op(op, sys, rn->tn_type, ln, rn);
   1766 		break;
   1767 	case REAL:
   1768 	case IMAG:
   1769 		ntn = build_real_imag(op, sys, ln);
   1770 		break;
   1771 	default:
   1772 		lint_assert(mp->m_binary == (rn != NULL));
   1773 		type_t *rettp = mp->m_returns_bool
   1774 		    ? gettyp(Tflag ? BOOL : INT) : ln->tn_type;
   1775 		ntn = build_op(op, sys, rettp, ln, rn);
   1776 		break;
   1777 	}
   1778 
   1779 	/* Return if an error occurred. */
   1780 	if (ntn == NULL)
   1781 		return NULL;
   1782 
   1783 	/* Print a warning if precedence confusion is possible */
   1784 	if (mp->m_possible_precedence_confusion)
   1785 		check_precedence_confusion(ntn);
   1786 
   1787 	/*
   1788 	 * Print a warning if one of the operands is in a context where
   1789 	 * it is compared with zero and if this operand is a constant.
   1790 	 */
   1791 	if (hflag && !suppress_constcond &&
   1792 	    mp->m_compares_with_zero &&
   1793 	    (ln->tn_op == CON ||
   1794 	     ((mp->m_binary && op != QUEST) && rn->tn_op == CON)) &&
   1795 	    /* XXX: rn->tn_system_dependent should be checked as well */
   1796 	    !ln->tn_system_dependent) {
   1797 		/* constant in conditional context */
   1798 		warning(161);
   1799 	}
   1800 
   1801 	/* Fold if the operator requires it */
   1802 	if (mp->m_fold_constant_operands) {
   1803 		if (ln->tn_op == CON && (!mp->m_binary || rn->tn_op == CON)) {
   1804 			if (mp->m_compares_with_zero) {
   1805 				ntn = fold_bool(ntn);
   1806 			} else if (is_floating(ntn->tn_type->t_tspec)) {
   1807 				ntn = fold_float(ntn);
   1808 			} else {
   1809 				ntn = fold(ntn);
   1810 			}
   1811 		} else if (op == QUEST && ln->tn_op == CON) {
   1812 			ntn = ln->tn_val.u.integer != 0
   1813 			    ? rn->tn_left : rn->tn_right;
   1814 		}
   1815 	}
   1816 
   1817 	return ntn;
   1818 }
   1819 
   1820 tnode_t *
   1821 build_unary(op_t op, bool sys, tnode_t *tn)
   1822 {
   1823 	return build_binary(tn, op, sys, NULL);
   1824 }
   1825 
   1826 static bool
   1827 are_members_compatible(const sym_t *a, const sym_t *b)
   1828 {
   1829 	if (a->u.s_member.sm_offset_in_bits != b->u.s_member.sm_offset_in_bits)
   1830 		return false;
   1831 
   1832 	const type_t *atp = a->s_type;
   1833 	const type_t *btp = b->s_type;
   1834 	bool w = false;
   1835 	if (!types_compatible(atp, btp, false, false, &w) && !w)
   1836 		return false;
   1837 	if (a->s_bitfield != b->s_bitfield)
   1838 		return false;
   1839 	if (a->s_bitfield) {
   1840 		if (atp->t_bit_field_width != btp->t_bit_field_width)
   1841 			return false;
   1842 		if (atp->t_bit_field_offset != btp->t_bit_field_offset)
   1843 			return false;
   1844 	}
   1845 	return true;
   1846 }
   1847 
   1848 /*
   1849  * Return whether all struct/union members with the same name have the same
   1850  * type and offset.
   1851  */
   1852 static bool
   1853 all_members_compatible(const sym_t *msym)
   1854 {
   1855 	for (const sym_t *csym = msym;
   1856 	     csym != NULL; csym = csym->s_symtab_next) {
   1857 		if (!is_member(csym))
   1858 			continue;
   1859 		if (strcmp(msym->s_name, csym->s_name) != 0)
   1860 			continue;
   1861 
   1862 		for (const sym_t *sym = csym->s_symtab_next;
   1863 		     sym != NULL; sym = sym->s_symtab_next) {
   1864 			if (is_member(sym)
   1865 			    && strcmp(csym->s_name, sym->s_name) == 0
   1866 			    && !are_members_compatible(csym, sym))
   1867 				return false;
   1868 		}
   1869 	}
   1870 	return true;
   1871 }
   1872 
   1873 sym_t *
   1874 find_member(const struct_or_union *sou, const char *name)
   1875 {
   1876 	for (sym_t *mem = sou->sou_first_member;
   1877 	     mem != NULL; mem = mem->s_next) {
   1878 		lint_assert(is_member(mem));
   1879 		lint_assert(mem->u.s_member.sm_containing_type == sou);
   1880 		if (strcmp(mem->s_name, name) == 0)
   1881 			return mem;
   1882 	}
   1883 
   1884 	for (sym_t *mem = sou->sou_first_member;
   1885 	     mem != NULL; mem = mem->s_next) {
   1886 		if (is_struct_or_union(mem->s_type->t_tspec)
   1887 		    && mem->s_name == unnamed) {
   1888 			sym_t *nested_mem =
   1889 			    find_member(mem->s_type->t_sou, name);
   1890 			if (nested_mem != NULL)
   1891 				return nested_mem;
   1892 		}
   1893 	}
   1894 	return NULL;
   1895 }
   1896 
   1897 /*
   1898  * Remove the member if it was unknown until now, which means
   1899  * that no defined struct or union has a member with the same name.
   1900  */
   1901 static void
   1902 remove_unknown_member(tnode_t *tn, sym_t *msym)
   1903 {
   1904 	/* type '%s' does not have member '%s' */
   1905 	error(101, type_name(tn->tn_type), msym->s_name);
   1906 	rmsym(msym);
   1907 	msym->s_kind = FMEMBER;
   1908 	msym->s_scl = STRUCT_MEMBER;
   1909 
   1910 	struct_or_union *sou = expr_zero_alloc(sizeof(*sou),
   1911 	    "struct_or_union");
   1912 	sou->sou_tag = expr_zero_alloc(sizeof(*sou->sou_tag), "sym");
   1913 	sou->sou_tag->s_name = unnamed;
   1914 
   1915 	msym->u.s_member.sm_containing_type = sou;
   1916 	/*
   1917 	 * The member sm_offset_in_bits is not needed here since this
   1918 	 * symbol can only be used for error reporting.
   1919 	 */
   1920 }
   1921 
   1922 /*
   1923  * Returns a symbol which has the same name as 'msym' and is a member of the
   1924  * struct or union specified by 'tn'.
   1925  */
   1926 static sym_t *
   1927 struct_or_union_member(tnode_t *tn, op_t op, sym_t *msym)
   1928 {
   1929 
   1930 	/* Determine the tag type of which msym is expected to be a member. */
   1931 	const type_t *tp = NULL;
   1932 	if (op == POINT && is_struct_or_union(tn->tn_type->t_tspec))
   1933 		tp = tn->tn_type;
   1934 	if (op == ARROW && tn->tn_type->t_tspec == PTR
   1935 	    && is_struct_or_union(tn->tn_type->t_subt->t_tspec))
   1936 		tp = tn->tn_type->t_subt;
   1937 	struct_or_union *sou = tp != NULL ? tp->t_sou : NULL;
   1938 
   1939 	if (sou != NULL) {
   1940 		sym_t *nested_mem = find_member(sou, msym->s_name);
   1941 		if (nested_mem != NULL)
   1942 			return nested_mem;
   1943 	}
   1944 
   1945 	if (msym->s_scl == NOSCL) {
   1946 		remove_unknown_member(tn, msym);
   1947 		return msym;
   1948 	}
   1949 
   1950 	bool eq = all_members_compatible(msym);
   1951 
   1952 	/*
   1953 	 * Now handle the case in which the left operand refers really
   1954 	 * to a struct/union, but the right operand is not member of it.
   1955 	 */
   1956 	if (sou != NULL) {
   1957 		if (eq && !allow_c90) {
   1958 			/* illegal use of member '%s' */
   1959 			warning(102, msym->s_name);
   1960 		} else {
   1961 			/* illegal use of member '%s' */
   1962 			error(102, msym->s_name);
   1963 		}
   1964 		return msym;
   1965 	}
   1966 
   1967 	/*
   1968 	 * Now the left operand of ARROW does not point to a struct/union
   1969 	 * or the left operand of POINT is no struct/union.
   1970 	 */
   1971 	if (eq) {
   1972 		if (op == POINT) {
   1973 			if (!allow_c90) {
   1974 				/* left operand of '.' must be struct ... */
   1975 				warning(103, type_name(tn->tn_type));
   1976 			} else {
   1977 				/* left operand of '.' must be struct ... */
   1978 				error(103, type_name(tn->tn_type));
   1979 			}
   1980 		} else {
   1981 			if (!allow_c90 && tn->tn_type->t_tspec == PTR) {
   1982 				/* left operand of '->' must be pointer ... */
   1983 				warning(104, type_name(tn->tn_type));
   1984 			} else {
   1985 				/* left operand of '->' must be pointer ... */
   1986 				error(104, type_name(tn->tn_type));
   1987 			}
   1988 		}
   1989 	} else {
   1990 		if (!allow_c90) {
   1991 			/* non-unique member requires struct/union %s */
   1992 			error(105, op == POINT ? "object" : "pointer");
   1993 		} else {
   1994 			/* unacceptable operand of '%s' */
   1995 			error(111, op_name(op));
   1996 		}
   1997 	}
   1998 
   1999 	return msym;
   2000 }
   2001 
   2002 tnode_t *
   2003 build_member_access(tnode_t *ln, op_t op, bool sys, sbuf_t *member)
   2004 {
   2005 	sym_t *msym;
   2006 
   2007 	if (ln == NULL)
   2008 		return NULL;
   2009 
   2010 	if (op == ARROW) {
   2011 		/* must do this before struct_or_union_member is called */
   2012 		ln = cconv(ln);
   2013 	}
   2014 	msym = struct_or_union_member(ln, op, getsym(member));
   2015 	return build_binary(ln, op, sys, build_name(msym, false));
   2016 }
   2017 
   2018 /*
   2019  * Perform class conversions.
   2020  *
   2021  * Arrays of type T are converted into pointers to type T.
   2022  * Functions are converted to pointers to functions.
   2023  * Lvalues are converted to rvalues.
   2024  *
   2025  * C99 6.3 "Conversions"
   2026  * C99 6.3.2 "Other operands"
   2027  * C99 6.3.2.1 "Lvalues, arrays, and function designators"
   2028  */
   2029 tnode_t *
   2030 cconv(tnode_t *tn)
   2031 {
   2032 	/*
   2033 	 * Array-lvalue (array of type T) is converted into rvalue
   2034 	 * (pointer to type T)
   2035 	 */
   2036 	if (tn->tn_type->t_tspec == ARRAY) {
   2037 		if (!tn->tn_lvalue) {
   2038 			/* XXX print correct operator */
   2039 			/* %soperand of '%s' must be lvalue */
   2040 			gnuism(114, "", op_name(ADDR));
   2041 		}
   2042 		tn = build_op(ADDR, tn->tn_sys,
   2043 		    expr_derive_type(tn->tn_type->t_subt, PTR), tn, NULL);
   2044 	}
   2045 
   2046 	/*
   2047 	 * Expression of type function (function with return value of type T)
   2048 	 * in rvalue-expression (pointer to function with return value
   2049 	 * of type T)
   2050 	 */
   2051 	if (tn->tn_type->t_tspec == FUNC)
   2052 		tn = build_address(tn->tn_sys, tn, true);
   2053 
   2054 	/* lvalue to rvalue */
   2055 	if (tn->tn_lvalue) {
   2056 		type_t *tp = expr_dup_type(tn->tn_type);
   2057 		/* C99 6.3.2.1p2 sentence 2 says to remove the qualifiers. */
   2058 		tp->t_const = tp->t_volatile = false;
   2059 		tn = build_op(LOAD, tn->tn_sys, tp, tn, NULL);
   2060 	}
   2061 
   2062 	return tn;
   2063 }
   2064 
   2065 const tnode_t *
   2066 before_conversion(const tnode_t *tn)
   2067 {
   2068 	while (tn->tn_op == CVT && !tn->tn_cast)
   2069 		tn = tn->tn_left;
   2070 	return tn;
   2071 }
   2072 
   2073 /*
   2074  * Most errors required by C90 are reported in struct_or_union_member().
   2075  * Here we only check for totally wrong things.
   2076  */
   2077 static bool
   2078 typeok_point(const tnode_t *ln, const type_t *ltp, tspec_t lt)
   2079 {
   2080 	if (is_struct_or_union(lt))
   2081 		return true;
   2082 
   2083 	if (lt == FUNC || lt == VOID || ltp->t_bitfield)
   2084 		goto wrong;
   2085 
   2086 	/*
   2087 	 * Some C dialects from before C90 tolerated any lvalue on the
   2088 	 * left-hand side of the '.' operator, allowing things like
   2089 	 * char st[100]; st.st_mtime, assuming that the member 'st_mtime'
   2090 	 * only occurred in a single struct; see typeok_arrow.
   2091 	 */
   2092 	if (ln->tn_lvalue)
   2093 		return true;
   2094 
   2095 wrong:
   2096 	/* With allow_c90 we already got an error */
   2097 	if (!allow_c90)
   2098 		/* unacceptable operand of '%s' */
   2099 		error(111, op_name(POINT));
   2100 
   2101 	return false;
   2102 }
   2103 
   2104 static bool
   2105 typeok_arrow(tspec_t lt)
   2106 {
   2107 	/*
   2108 	 * C1978 Appendix A 14.1 says: <quote>In fact, any lvalue is allowed
   2109 	 * before '.', and that lvalue is then assumed to have the form of
   2110 	 * the structure of which the name of the right is a member. [...]
   2111 	 * Such constructions are non-portable.</quote>
   2112 	 */
   2113 	if (lt == PTR || (!allow_c90 && is_integer(lt)))
   2114 		return true;
   2115 
   2116 	/* With allow_c90 we already got an error */
   2117 	if (!allow_c90)
   2118 		/* unacceptable operand of '%s' */
   2119 		error(111, op_name(ARROW));
   2120 	return false;
   2121 }
   2122 
   2123 static bool
   2124 typeok_incdec(op_t op, const tnode_t *tn, const type_t *tp)
   2125 {
   2126 	/* operand has scalar type (checked in typeok) */
   2127 	if (!tn->tn_lvalue) {
   2128 		if (tn->tn_op == CVT && tn->tn_cast &&
   2129 		    tn->tn_left->tn_op == LOAD) {
   2130 			/* a cast does not yield an lvalue */
   2131 			error(163);
   2132 		}
   2133 		/* %soperand of '%s' must be lvalue */
   2134 		error(114, "", op_name(op));
   2135 		return false;
   2136 	}
   2137 	if (tp->t_const && allow_c90) {
   2138 		/* %soperand of '%s' must be modifiable lvalue */
   2139 		warning(115, "", op_name(op));
   2140 	}
   2141 	return true;
   2142 }
   2143 
   2144 static bool
   2145 typeok_address(op_t op, const tnode_t *tn, const type_t *tp, tspec_t t)
   2146 {
   2147 	if (t == ARRAY || t == FUNC) {
   2148 		/* ok, a warning comes later (in build_address()) */
   2149 	} else if (!tn->tn_lvalue) {
   2150 		if (tn->tn_op == CVT && tn->tn_cast &&
   2151 		    tn->tn_left->tn_op == LOAD) {
   2152 			/* a cast does not yield an lvalue */
   2153 			error(163);
   2154 		}
   2155 		/* %soperand of '%s' must be lvalue */
   2156 		error(114, "", op_name(op));
   2157 		return false;
   2158 	} else if (is_scalar(t)) {
   2159 		if (tp->t_bitfield) {
   2160 			/* cannot take address of bit-field */
   2161 			error(112);
   2162 			return false;
   2163 		}
   2164 	} else if (t != STRUCT && t != UNION) {
   2165 		/* unacceptable operand of '%s' */
   2166 		error(111, op_name(op));
   2167 		return false;
   2168 	}
   2169 	if (tn->tn_op == NAME && tn->tn_sym->s_register) {
   2170 		/* cannot take address of register '%s' */
   2171 		error(113, tn->tn_sym->s_name);
   2172 		return false;
   2173 	}
   2174 	return true;
   2175 }
   2176 
   2177 static bool
   2178 typeok_indir(const type_t *tp, tspec_t t)
   2179 {
   2180 
   2181 	if (t != PTR) {
   2182 		/* cannot dereference non-pointer type '%s' */
   2183 		error(96, type_name(tp));
   2184 		return false;
   2185 	}
   2186 	return true;
   2187 }
   2188 
   2189 static void
   2190 warn_incompatible_types(op_t op,
   2191 			const type_t *ltp, tspec_t lt,
   2192 			const type_t *rtp, tspec_t rt)
   2193 {
   2194 	bool binary = modtab[op].m_binary;
   2195 
   2196 	if (lt == VOID || (binary && rt == VOID)) {
   2197 		/* void type illegal in expression */
   2198 		error(109);
   2199 	} else if (op == ASSIGN) {
   2200 		/* cannot assign to '%s' from '%s' */
   2201 		error(171, type_name(ltp), type_name(rtp));
   2202 	} else if (binary) {
   2203 		/* operands of '%s' have incompatible types '%s' and '%s' */
   2204 		error(107, op_name(op), type_name(ltp), type_name(rtp));
   2205 	} else {
   2206 		lint_assert(rt == NO_TSPEC);
   2207 		/* operand of '%s' has invalid type '%s' */
   2208 		error(108, op_name(op), type_name(ltp));
   2209 	}
   2210 }
   2211 
   2212 static bool
   2213 typeok_plus(op_t op,
   2214 	    const type_t *ltp, tspec_t lt,
   2215 	    const type_t *rtp, tspec_t rt)
   2216 {
   2217 	/* operands have scalar types (checked in typeok) */
   2218 	if ((lt == PTR && !is_integer(rt)) || (rt == PTR && !is_integer(lt))) {
   2219 		warn_incompatible_types(op, ltp, lt, rtp, rt);
   2220 		return false;
   2221 	}
   2222 	return true;
   2223 }
   2224 
   2225 static bool
   2226 typeok_minus(op_t op,
   2227 	     const type_t *ltp, tspec_t lt,
   2228 	     const type_t *rtp, tspec_t rt)
   2229 {
   2230 	/* operands have scalar types (checked in typeok) */
   2231 	if ((lt == PTR && rt != PTR && !is_integer(rt)) ||
   2232 	    (lt != PTR && rt == PTR)) {
   2233 		warn_incompatible_types(op, ltp, lt, rtp, rt);
   2234 		return false;
   2235 	}
   2236 	if (lt == PTR && rt == PTR &&
   2237 	    !types_compatible(ltp->t_subt, rtp->t_subt, true, false, NULL)) {
   2238 		/* illegal pointer subtraction */
   2239 		error(116);
   2240 	}
   2241 	return true;
   2242 }
   2243 
   2244 static void
   2245 typeok_shr(op_t op,
   2246 	   const tnode_t *ln, tspec_t lt,
   2247 	   const tnode_t *rn, tspec_t rt)
   2248 {
   2249 	tspec_t olt = before_conversion(ln)->tn_type->t_tspec;
   2250 	tspec_t ort = before_conversion(rn)->tn_type->t_tspec;
   2251 
   2252 	/* operands have integer types (checked in typeok) */
   2253 	if (pflag && !is_uinteger(olt)) {
   2254 		integer_constraints lc = ic_expr(ln);
   2255 		if (!ic_maybe_signed(ln->tn_type, &lc))
   2256 			return;
   2257 
   2258 		/*
   2259 		 * The left operand is signed. This means that
   2260 		 * the operation is (possibly) nonportable.
   2261 		 */
   2262 		if (ln->tn_op != CON) {
   2263 			/* bitwise '%s' on signed value possibly nonportable */
   2264 			warning(117, op_name(op));
   2265 		} else if (ln->tn_val.u.integer < 0) {
   2266 			/* bitwise '%s' on signed value nonportable */
   2267 			warning(120, op_name(op));
   2268 		}
   2269 	} else if (allow_trad && allow_c90 &&
   2270 		   !is_uinteger(olt) && is_uinteger(ort)) {
   2271 		/* The left operand would become unsigned in traditional C. */
   2272 		if (hflag && (ln->tn_op != CON || ln->tn_val.u.integer < 0)) {
   2273 			/* semantics of '%s' change in C90; use ... */
   2274 			warning(118, op_name(op));
   2275 		}
   2276 	} else if (allow_trad && allow_c90 &&
   2277 		   !is_uinteger(olt) && !is_uinteger(ort) &&
   2278 	    portable_rank_cmp(lt, rt) < 0) {
   2279 		/*
   2280 		 * In traditional C, the left operand would be extended
   2281 		 * (possibly sign-extended) and then shifted.
   2282 		 */
   2283 		if (hflag && (ln->tn_op != CON || ln->tn_val.u.integer < 0)) {
   2284 			/* semantics of '%s' change in C90; use ... */
   2285 			warning(118, op_name(op));
   2286 		}
   2287 	}
   2288 }
   2289 
   2290 static void
   2291 typeok_shl(op_t op, tspec_t lt, tspec_t rt)
   2292 {
   2293 	/*
   2294 	 * C90 does not perform balancing for shift operations,
   2295 	 * but traditional C does. If the width of the right operand
   2296 	 * is greater than the width of the left operand, then in
   2297 	 * traditional C the left operand would be extended to the
   2298 	 * width of the right operand. For SHL this may result in
   2299 	 * different results.
   2300 	 */
   2301 	if (portable_rank_cmp(lt, rt) < 0) {
   2302 		/*
   2303 		 * XXX If both operands are constant, make sure
   2304 		 * that there is really a difference between
   2305 		 * C90 and traditional C.
   2306 		 */
   2307 		if (hflag && allow_trad && allow_c90)
   2308 			/* semantics of '%s' change in C90; use ... */
   2309 			warning(118, op_name(op));
   2310 	}
   2311 }
   2312 
   2313 static void
   2314 typeok_shift(const type_t *ltp, tspec_t lt, const tnode_t *rn, tspec_t rt)
   2315 {
   2316 	if (rn->tn_op != CON)
   2317 		return;
   2318 
   2319 	if (!is_uinteger(rt) && rn->tn_val.u.integer < 0) {
   2320 		/* negative shift */
   2321 		warning(121);
   2322 	} else if ((uint64_t)rn->tn_val.u.integer == size_in_bits(lt)) {
   2323 		/* shift amount %u equals bit-size of '%s' */
   2324 		warning(267, (unsigned)rn->tn_val.u.integer, type_name(ltp));
   2325 	} else if ((uint64_t)rn->tn_val.u.integer > size_in_bits(lt)) {
   2326 		/* shift amount %llu is greater than bit-size %llu of '%s' */
   2327 		warning(122, (unsigned long long)rn->tn_val.u.integer,
   2328 		    (unsigned long long)size_in_bits(lt),
   2329 		    tspec_name(lt));
   2330 	}
   2331 }
   2332 
   2333 static bool
   2334 is_typeok_eq(const tnode_t *ln, tspec_t lt, const tnode_t *rn, tspec_t rt)
   2335 {
   2336 	if (lt == PTR && is_null_pointer(rn))
   2337 		return true;
   2338 	if (rt == PTR && is_null_pointer(ln))
   2339 		return true;
   2340 	return false;
   2341 }
   2342 
   2343 /*
   2344  * Called if incompatible pointer types are detected.
   2345  * Print an appropriate warning.
   2346  */
   2347 static void
   2348 warn_incompatible_pointers(op_t op, const type_t *ltp, const type_t *rtp)
   2349 {
   2350 	lint_assert(ltp->t_tspec == PTR);
   2351 	lint_assert(rtp->t_tspec == PTR);
   2352 
   2353 	tspec_t lt = ltp->t_subt->t_tspec;
   2354 	tspec_t rt = rtp->t_subt->t_tspec;
   2355 
   2356 	if (is_struct_or_union(lt) && is_struct_or_union(rt)) {
   2357 		if (op == RETURN) {
   2358 			/* illegal structure pointer combination */
   2359 			warning(244);
   2360 		} else {
   2361 			/* incompatible structure pointers: '%s' '%s' '%s' */
   2362 			warning(245, type_name(ltp),
   2363 			    op_name(op), type_name(rtp));
   2364 		}
   2365 	} else {
   2366 		if (op == RETURN) {
   2367 			/* illegal combination of '%s' and '%s' */
   2368 			warning(184, type_name(ltp), type_name(rtp));
   2369 		} else {
   2370 			/* illegal combination of '%s' and '%s', op '%s' */
   2371 			warning(124,
   2372 			    type_name(ltp), type_name(rtp), op_name(op));
   2373 		}
   2374 	}
   2375 }
   2376 
   2377 static void
   2378 check_pointer_comparison(op_t op, const tnode_t *ln, const tnode_t *rn)
   2379 {
   2380 	type_t *ltp = ln->tn_type, *rtp = rn->tn_type;
   2381 	tspec_t lst = ltp->t_subt->t_tspec, rst = rtp->t_subt->t_tspec;
   2382 
   2383 	if (lst == VOID || rst == VOID) {
   2384 		/* TODO: C99 behaves like C90 here. */
   2385 		if ((!allow_trad && !allow_c99) &&
   2386 		    (lst == FUNC || rst == FUNC)) {
   2387 			/* (void *)0 is already handled in typeok() */
   2388 			const char *lsts, *rsts;
   2389 			*(lst == FUNC ? &lsts : &rsts) = "function pointer";
   2390 			*(lst == VOID ? &lsts : &rsts) = "'void *'";
   2391 			/* C90 or later forbid comparison of %s with %s */
   2392 			warning(274, lsts, rsts);
   2393 		}
   2394 		return;
   2395 	}
   2396 
   2397 	if (!types_compatible(ltp->t_subt, rtp->t_subt, true, false, NULL)) {
   2398 		warn_incompatible_pointers(op, ltp, rtp);
   2399 		return;
   2400 	}
   2401 
   2402 	if (lst == FUNC && rst == FUNC) {
   2403 		/* TODO: C99 behaves like C90 here, see C99 6.5.8p2. */
   2404 		if ((!allow_trad && !allow_c99) && op != EQ && op != NE)
   2405 			/* pointers to functions can only be compared ... */
   2406 			warning(125);
   2407 	}
   2408 }
   2409 
   2410 static bool
   2411 typeok_compare(op_t op,
   2412 	       const tnode_t *ln, const type_t *ltp, tspec_t lt,
   2413 	       const tnode_t *rn, const type_t *rtp, tspec_t rt)
   2414 {
   2415 	if (lt == PTR && rt == PTR) {
   2416 		check_pointer_comparison(op, ln, rn);
   2417 		return true;
   2418 	}
   2419 
   2420 	if (lt != PTR && rt != PTR)
   2421 		return true;
   2422 
   2423 	if (!is_integer(lt) && !is_integer(rt)) {
   2424 		warn_incompatible_types(op, ltp, lt, rtp, rt);
   2425 		return false;
   2426 	}
   2427 
   2428 	const char *lx = lt == PTR ? "pointer" : "integer";
   2429 	const char *rx = rt == PTR ? "pointer" : "integer";
   2430 	/* illegal combination of %s '%s' and %s '%s', op '%s' */
   2431 	warning(123, lx, type_name(ltp), rx, type_name(rtp), op_name(op));
   2432 	return true;
   2433 }
   2434 
   2435 static bool
   2436 typeok_quest(tspec_t lt, const tnode_t *rn)
   2437 {
   2438 	if (!is_scalar(lt)) {
   2439 		/* first operand of '?' must have scalar type */
   2440 		error(170);
   2441 		return false;
   2442 	}
   2443 	lint_assert(before_conversion(rn)->tn_op == COLON);
   2444 	return true;
   2445 }
   2446 
   2447 static void
   2448 typeok_colon_pointer(const type_t *ltp, const type_t *rtp)
   2449 {
   2450 	type_t *lstp = ltp->t_subt;
   2451 	type_t *rstp = rtp->t_subt;
   2452 	tspec_t lst = lstp->t_tspec;
   2453 	tspec_t rst = rstp->t_tspec;
   2454 
   2455 	if ((lst == VOID && rst == FUNC) || (lst == FUNC && rst == VOID)) {
   2456 		/* (void *)0 is handled in typeok_colon */
   2457 		/* TODO: C99 behaves like C90 here. */
   2458 		if (!allow_trad && !allow_c99)
   2459 			/* conversion of %s to %s requires a cast, op %s */
   2460 			warning(305, "function pointer", "'void *'",
   2461 			    op_name(COLON));
   2462 		return;
   2463 	}
   2464 
   2465 	if (pointer_types_are_compatible(lstp, rstp, true))
   2466 		return;
   2467 	if (!types_compatible(lstp, rstp, true, false, NULL))
   2468 		warn_incompatible_pointers(COLON, ltp, rtp);
   2469 }
   2470 
   2471 static bool
   2472 typeok_colon(const tnode_t *ln, const type_t *ltp, tspec_t lt,
   2473 	     const tnode_t *rn, const type_t *rtp, tspec_t rt)
   2474 {
   2475 
   2476 	if (is_arithmetic(lt) && is_arithmetic(rt))
   2477 		return true;
   2478 	if (lt == BOOL && rt == BOOL)
   2479 		return true;
   2480 
   2481 	if (lt == STRUCT && rt == STRUCT && ltp->t_sou == rtp->t_sou)
   2482 		return true;
   2483 	if (lt == UNION && rt == UNION && ltp->t_sou == rtp->t_sou)
   2484 		return true;
   2485 
   2486 	if (lt == PTR && is_null_pointer(rn))
   2487 		return true;
   2488 	if (rt == PTR && is_null_pointer(ln))
   2489 		return true;
   2490 
   2491 	if ((lt == PTR && is_integer(rt)) || (is_integer(lt) && rt == PTR)) {
   2492 		const char *lx = lt == PTR ? "pointer" : "integer";
   2493 		const char *rx = rt == PTR ? "pointer" : "integer";
   2494 		/* illegal combination of %s '%s' and %s '%s', op '%s' */
   2495 		warning(123, lx, type_name(ltp),
   2496 		    rx, type_name(rtp), op_name(COLON));
   2497 		return true;
   2498 	}
   2499 
   2500 	if (lt == VOID || rt == VOID) {
   2501 		if (lt != VOID || rt != VOID)
   2502 			/* incompatible types '%s' and '%s' in conditional */
   2503 			warning(126, type_name(ltp), type_name(rtp));
   2504 		return true;
   2505 	}
   2506 
   2507 	if (lt == PTR && rt == PTR) {
   2508 		typeok_colon_pointer(ltp, rtp);
   2509 		return true;
   2510 	}
   2511 
   2512 	/* incompatible types '%s' and '%s' in conditional */
   2513 	error(126, type_name(ltp), type_name(rtp));
   2514 	return false;
   2515 }
   2516 
   2517 /*
   2518  * Returns true if the given structure or union has a constant member
   2519  * (maybe recursively).
   2520  */
   2521 static bool
   2522 has_constant_member(const type_t *tp)
   2523 {
   2524 	lint_assert(is_struct_or_union(tp->t_tspec));
   2525 
   2526 	for (sym_t *m = tp->t_sou->sou_first_member;
   2527 	     m != NULL; m = m->s_next) {
   2528 		const type_t *mtp = m->s_type;
   2529 		if (mtp->t_const)
   2530 			return true;
   2531 		if (is_struct_or_union(mtp->t_tspec) &&
   2532 		    has_constant_member(mtp))
   2533 			return true;
   2534 	}
   2535 	return false;
   2536 }
   2537 
   2538 static bool
   2539 typeok_assign(op_t op, const tnode_t *ln, const type_t *ltp, tspec_t lt)
   2540 {
   2541 	if (op == RETURN || op == INIT || op == FARG)
   2542 		return true;
   2543 
   2544 	if (!ln->tn_lvalue) {
   2545 		if (ln->tn_op == CVT && ln->tn_cast &&
   2546 		    ln->tn_left->tn_op == LOAD) {
   2547 			/* a cast does not yield an lvalue */
   2548 			error(163);
   2549 		}
   2550 		/* %soperand of '%s' must be lvalue */
   2551 		error(114, "left ", op_name(op));
   2552 		return false;
   2553 	} else if (ltp->t_const
   2554 	    || (is_struct_or_union(lt) && has_constant_member(ltp))) {
   2555 		if (allow_c90)
   2556 			/* %soperand of '%s' must be modifiable lvalue */
   2557 			warning(115, "left ", op_name(op));
   2558 	}
   2559 	return true;
   2560 }
   2561 
   2562 /* Check the types using the information from modtab[]. */
   2563 static bool
   2564 typeok_scalar(op_t op, const mod_t *mp,
   2565 	      const type_t *ltp, tspec_t lt,
   2566 	      const type_t *rtp, tspec_t rt)
   2567 {
   2568 	if (mp->m_takes_bool && lt == BOOL && rt == BOOL)
   2569 		return true;
   2570 	if (mp->m_requires_integer) {
   2571 		if (!is_integer(lt) || (mp->m_binary && !is_integer(rt))) {
   2572 			warn_incompatible_types(op, ltp, lt, rtp, rt);
   2573 			return false;
   2574 		}
   2575 	} else if (mp->m_requires_integer_or_complex) {
   2576 		if ((!is_integer(lt) && !is_complex(lt)) ||
   2577 		    (mp->m_binary && (!is_integer(rt) && !is_complex(rt)))) {
   2578 			warn_incompatible_types(op, ltp, lt, rtp, rt);
   2579 			return false;
   2580 		}
   2581 	} else if (mp->m_requires_scalar) {
   2582 		if (!is_scalar(lt) || (mp->m_binary && !is_scalar(rt))) {
   2583 			warn_incompatible_types(op, ltp, lt, rtp, rt);
   2584 			return false;
   2585 		}
   2586 	} else if (mp->m_requires_arith) {
   2587 		if (!is_arithmetic(lt) ||
   2588 		    (mp->m_binary && !is_arithmetic(rt))) {
   2589 			warn_incompatible_types(op, ltp, lt, rtp, rt);
   2590 			return false;
   2591 		}
   2592 	}
   2593 	return true;
   2594 }
   2595 
   2596 static void
   2597 check_assign_void_pointer(op_t op, int arg,
   2598 			  tspec_t lt, tspec_t lst,
   2599 			  tspec_t rt, tspec_t rst)
   2600 {
   2601 
   2602 	if (!(lt == PTR && rt == PTR && (lst == VOID || rst == VOID)))
   2603 		return;
   2604 	/* two pointers, at least one pointer to void */
   2605 
   2606 	/* TODO: C99 behaves like C90 here. */
   2607 	if (!((!allow_trad && !allow_c99) && (lst == FUNC || rst == FUNC)))
   2608 		return;
   2609 	/* comb. of ptr to func and ptr to void */
   2610 
   2611 	const char *lts, *rts;
   2612 	*(lst == FUNC ? &lts : &rts) = "function pointer";
   2613 	*(lst == VOID ? &lts : &rts) = "'void *'";
   2614 
   2615 	switch (op) {
   2616 	case INIT:
   2617 	case RETURN:
   2618 		/* conversion of %s to %s requires a cast */
   2619 		warning(303, rts, lts);
   2620 		break;
   2621 	case FARG:
   2622 		/* conversion of %s to %s requires a cast, arg #%d */
   2623 		warning(304, rts, lts, arg);
   2624 		break;
   2625 	default:
   2626 		/* conversion of %s to %s requires a cast, op %s */
   2627 		warning(305, rts, lts, op_name(op));
   2628 		break;
   2629 	}
   2630 }
   2631 
   2632 static bool
   2633 is_direct_function_call(const tnode_t *tn, const char **out_name)
   2634 {
   2635 
   2636 	if (!(tn->tn_op == CALL &&
   2637 	      tn->tn_left->tn_op == ADDR &&
   2638 	      tn->tn_left->tn_left->tn_op == NAME))
   2639 		return false;
   2640 
   2641 	*out_name = tn->tn_left->tn_left->tn_sym->s_name;
   2642 	return true;
   2643 }
   2644 
   2645 static bool
   2646 is_unconst_function(const char *name)
   2647 {
   2648 
   2649 	return strcmp(name, "memchr") == 0 ||
   2650 	       strcmp(name, "strchr") == 0 ||
   2651 	       strcmp(name, "strpbrk") == 0 ||
   2652 	       strcmp(name, "strrchr") == 0 ||
   2653 	       strcmp(name, "strstr") == 0;
   2654 }
   2655 
   2656 static bool
   2657 is_const_char_pointer(const tnode_t *tn)
   2658 {
   2659 	/*
   2660 	 * For traditional reasons, C99 6.4.5p5 defines that string literals
   2661 	 * have type 'char[]'.  They are often implicitly converted to
   2662 	 * 'char *', for example when they are passed as function arguments.
   2663 	 *
   2664 	 * C99 6.4.5p6 further defines that modifying a string that is
   2665 	 * constructed from a string literal invokes undefined behavior.
   2666 	 *
   2667 	 * Out of these reasons, string literals are treated as 'effectively
   2668 	 * const' here.
   2669 	 */
   2670 	if (tn->tn_op == CVT &&
   2671 	    tn->tn_left->tn_op == ADDR &&
   2672 	    tn->tn_left->tn_left->tn_op == STRING)
   2673 		return true;
   2674 
   2675 	const type_t *tp = before_conversion(tn)->tn_type;
   2676 	return tp->t_tspec == PTR &&
   2677 	       tp->t_subt->t_tspec == CHAR &&
   2678 	       tp->t_subt->t_const;
   2679 }
   2680 
   2681 static bool
   2682 is_first_arg_const_char_pointer(const tnode_t *tn)
   2683 {
   2684 	const tnode_t *an = tn->tn_right;
   2685 	if (an == NULL)
   2686 		return false;
   2687 
   2688 	while (an->tn_right != NULL)
   2689 		an = an->tn_right;
   2690 	return is_const_char_pointer(an->tn_left);
   2691 }
   2692 
   2693 static bool
   2694 is_const_pointer(const tnode_t *tn)
   2695 {
   2696 	const type_t *tp = before_conversion(tn)->tn_type;
   2697 	return tp->t_tspec == PTR && tp->t_subt->t_const;
   2698 }
   2699 
   2700 static bool
   2701 is_second_arg_const_pointer(const tnode_t *tn)
   2702 {
   2703 	const tnode_t *an = tn->tn_right;
   2704 	if (an == NULL || an->tn_right == NULL)
   2705 		return false;
   2706 
   2707 	while (an->tn_right->tn_right != NULL)
   2708 		an = an->tn_right;
   2709 	return is_const_pointer(an->tn_left);
   2710 }
   2711 
   2712 static void
   2713 check_unconst_function(const type_t *lstp, const tnode_t *rn)
   2714 {
   2715 	const char *function_name;
   2716 
   2717 	if (lstp->t_tspec == CHAR && !lstp->t_const &&
   2718 	    is_direct_function_call(rn, &function_name) &&
   2719 	    is_unconst_function(function_name) &&
   2720 	    is_first_arg_const_char_pointer(rn)) {
   2721 		/* call to '%s' effectively discards 'const' from argument */
   2722 		warning(346, function_name);
   2723 	}
   2724 
   2725 	if (!lstp->t_const &&
   2726 	    is_direct_function_call(rn, &function_name) &&
   2727 	    strcmp(function_name, "bsearch") == 0 &&
   2728 	    is_second_arg_const_pointer(rn)) {
   2729 		/* call to '%s' effectively discards 'const' from argument */
   2730 		warning(346, function_name);
   2731 	}
   2732 }
   2733 
   2734 static bool
   2735 check_assign_void_pointer_compat(op_t op, int arg,
   2736 				 const type_t *const ltp, tspec_t const lt,
   2737 				 const type_t *const lstp, tspec_t const lst,
   2738 				 const tnode_t *const rn,
   2739 				 const type_t *const rtp, tspec_t const rt,
   2740 				 const type_t *const rstp, tspec_t const rst)
   2741 {
   2742 	if (!(lt == PTR && rt == PTR && (lst == VOID || rst == VOID ||
   2743 					 types_compatible(lstp, rstp,
   2744 					     true, false, NULL))))
   2745 		return false;
   2746 
   2747 	/* compatible pointer types (qualifiers ignored) */
   2748 	if (allow_c90 &&
   2749 	    ((!lstp->t_const && rstp->t_const) ||
   2750 	     (!lstp->t_volatile && rstp->t_volatile))) {
   2751 		/* left side has not all qualifiers of right */
   2752 		switch (op) {
   2753 		case INIT:
   2754 		case RETURN:
   2755 			/* incompatible pointer types to '%s' and '%s' */
   2756 			warning(182, type_name(lstp), type_name(rstp));
   2757 			break;
   2758 		case FARG:
   2759 			/* converting '%s' to incompatible '%s' ... */
   2760 			warning(153,
   2761 			    type_name(rtp), type_name(ltp), arg);
   2762 			break;
   2763 		default:
   2764 			/* operands of '%s' have incompatible pointer ... */
   2765 			warning(128, op_name(op),
   2766 			    type_name(lstp), type_name(rstp));
   2767 			break;
   2768 		}
   2769 	}
   2770 
   2771 	if (allow_c90)
   2772 		check_unconst_function(lstp, rn);
   2773 
   2774 	return true;
   2775 }
   2776 
   2777 static bool
   2778 check_assign_pointer_integer(op_t op, int arg,
   2779 			     const type_t *const ltp, tspec_t const lt,
   2780 			     const type_t *const rtp, tspec_t const rt)
   2781 {
   2782 
   2783 	if (!((lt == PTR && is_integer(rt)) || (is_integer(lt) && rt == PTR)))
   2784 		return false;
   2785 
   2786 	const char *lx = lt == PTR ? "pointer" : "integer";
   2787 	const char *rx = rt == PTR ? "pointer" : "integer";
   2788 
   2789 	switch (op) {
   2790 	case INIT:
   2791 	case RETURN:
   2792 		/* illegal combination of %s '%s' and %s '%s' */
   2793 		warning(183, lx, type_name(ltp), rx, type_name(rtp));
   2794 		break;
   2795 	case FARG:
   2796 		/* illegal combination of %s '%s' and %s '%s', arg #%d */
   2797 		warning(154,
   2798 		    lx, type_name(ltp), rx, type_name(rtp), arg);
   2799 		break;
   2800 	default:
   2801 		/* illegal combination of %s '%s' and %s '%s', op '%s' */
   2802 		warning(123,
   2803 		    lx, type_name(ltp), rx, type_name(rtp), op_name(op));
   2804 		break;
   2805 	}
   2806 	return true;
   2807 }
   2808 
   2809 static bool
   2810 check_assign_pointer(op_t op, int arg,
   2811 		     const type_t *ltp, tspec_t lt,
   2812 		     const type_t *rtp, tspec_t rt)
   2813 {
   2814 	if (!(lt == PTR && rt == PTR))
   2815 		return false;
   2816 
   2817 	if (op == FARG)
   2818 		/* converting '%s' to incompatible '%s' for ... */
   2819 		warning(153, type_name(rtp), type_name(ltp), arg);
   2820 	else
   2821 		warn_incompatible_pointers(op, ltp, rtp);
   2822 	return true;
   2823 }
   2824 
   2825 static void
   2826 warn_assign(op_t op, int arg,
   2827 	    const type_t *ltp, tspec_t lt,
   2828 	    const type_t *rtp, tspec_t rt)
   2829 {
   2830 	switch (op) {
   2831 	case INIT:
   2832 		/* cannot initialize '%s' from '%s' */
   2833 		error(185, type_name(ltp), type_name(rtp));
   2834 		break;
   2835 	case RETURN:
   2836 		/* function has return type '%s' but returns '%s' */
   2837 		error(211, type_name(ltp), type_name(rtp));
   2838 		break;
   2839 	case FARG:
   2840 		/* passing '%s' to incompatible '%s', arg #%d */
   2841 		warning(155, type_name(rtp), type_name(ltp), arg);
   2842 		break;
   2843 	default:
   2844 		warn_incompatible_types(op, ltp, lt, rtp, rt);
   2845 		break;
   2846 	}
   2847 }
   2848 
   2849 /*
   2850  * Checks type compatibility for ASSIGN, INIT, FARG and RETURN
   2851  * and prints warnings/errors if necessary.
   2852  * Returns whether the types are (almost) compatible.
   2853  */
   2854 static bool
   2855 check_assign_types_compatible(op_t op, int arg,
   2856 			      const tnode_t *ln, const tnode_t *rn)
   2857 {
   2858 	tspec_t lt, rt, lst = NO_TSPEC, rst = NO_TSPEC;
   2859 	type_t *ltp, *rtp, *lstp = NULL, *rstp = NULL;
   2860 
   2861 	if ((lt = (ltp = ln->tn_type)->t_tspec) == PTR)
   2862 		lst = (lstp = ltp->t_subt)->t_tspec;
   2863 	if ((rt = (rtp = rn->tn_type)->t_tspec) == PTR)
   2864 		rst = (rstp = rtp->t_subt)->t_tspec;
   2865 
   2866 	if (lt == BOOL && is_scalar(rt))	/* C99 6.3.1.2 */
   2867 		return true;
   2868 
   2869 	if (is_arithmetic(lt) && (is_arithmetic(rt) || rt == BOOL))
   2870 		return true;
   2871 
   2872 	if (is_struct_or_union(lt) && is_struct_or_union(rt))
   2873 		/* both are struct or union */
   2874 		return ltp->t_sou == rtp->t_sou;
   2875 
   2876 	/* a null pointer may be assigned to any pointer */
   2877 	if (lt == PTR && is_null_pointer(rn)) {
   2878 		if (is_integer(rn->tn_type->t_tspec))
   2879 			/* implicit conversion from integer 0 to pointer ... */
   2880 			query_message(15, type_name(ltp));
   2881 		return true;
   2882 	}
   2883 
   2884 	check_assign_void_pointer(op, arg, lt, lst, rt, rst);
   2885 
   2886 	if (check_assign_void_pointer_compat(op, arg,
   2887 	    ltp, lt, lstp, lst, rn, rtp, rt, rstp, rst))
   2888 		return true;
   2889 
   2890 	if (check_assign_pointer_integer(op, arg, ltp, lt, rtp, rt))
   2891 		return true;
   2892 
   2893 	if (check_assign_pointer(op, arg, ltp, lt, rtp, rt))
   2894 		return true;
   2895 
   2896 	warn_assign(op, arg, ltp, lt, rtp, rt);
   2897 	return false;
   2898 }
   2899 
   2900 static bool
   2901 has_side_effect(const tnode_t *tn) /* NOLINT(misc-no-recursion) */
   2902 {
   2903 	op_t op = tn->tn_op;
   2904 
   2905 	if (modtab[op].m_has_side_effect)
   2906 		return true;
   2907 
   2908 	if (op == CVT && tn->tn_type->t_tspec == VOID)
   2909 		return has_side_effect(tn->tn_left);
   2910 
   2911 	/* XXX: Why not has_side_effect(tn->tn_left) as well? */
   2912 	if (op == LOGAND || op == LOGOR)
   2913 		return has_side_effect(tn->tn_right);
   2914 
   2915 	/* XXX: Why not has_side_effect(tn->tn_left) as well? */
   2916 	if (op == QUEST)
   2917 		return has_side_effect(tn->tn_right);
   2918 
   2919 	if (op == COLON || op == COMMA) {
   2920 		return has_side_effect(tn->tn_left) ||
   2921 		       has_side_effect(tn->tn_right);
   2922 	}
   2923 
   2924 	return false;
   2925 }
   2926 
   2927 static bool
   2928 is_void_cast(const tnode_t *tn)
   2929 {
   2930 
   2931 	return tn->tn_op == CVT && tn->tn_cast &&
   2932 	       tn->tn_type->t_tspec == VOID;
   2933 }
   2934 
   2935 static bool
   2936 is_local_symbol(const tnode_t *tn)
   2937 {
   2938 
   2939 	return tn->tn_op == LOAD &&
   2940 	       tn->tn_left->tn_op == NAME &&
   2941 	       tn->tn_left->tn_sym->s_scl == AUTO;
   2942 }
   2943 
   2944 static bool
   2945 is_int_constant_zero(const tnode_t *tn)
   2946 {
   2947 
   2948 	return tn->tn_op == CON &&
   2949 	       tn->tn_type->t_tspec == INT &&
   2950 	       tn->tn_val.u.integer == 0;
   2951 }
   2952 
   2953 static void
   2954 check_null_effect(const tnode_t *tn)
   2955 {
   2956 
   2957 	if (hflag &&
   2958 	    !has_side_effect(tn) &&
   2959 	    !(is_void_cast(tn) && is_local_symbol(tn->tn_left)) &&
   2960 	    !(is_void_cast(tn) && is_int_constant_zero(tn->tn_left))) {
   2961 		/* expression has null effect */
   2962 		warning(129);
   2963 	}
   2964 }
   2965 
   2966 /*
   2967  * Check the types for specific operators and type combinations.
   2968  *
   2969  * At this point, the operands already conform to the type requirements of
   2970  * the operator, such as being integer, floating or scalar.
   2971  */
   2972 static bool
   2973 typeok_op(op_t op, int arg,
   2974 	  const tnode_t *ln, const type_t *ltp, tspec_t lt,
   2975 	  const tnode_t *rn, const type_t *rtp, tspec_t rt)
   2976 {
   2977 	switch (op) {
   2978 	case ARROW:
   2979 		return typeok_arrow(lt);
   2980 	case POINT:
   2981 		return typeok_point(ln, ltp, lt);
   2982 	case INCBEF:
   2983 	case DECBEF:
   2984 	case INCAFT:
   2985 	case DECAFT:
   2986 		return typeok_incdec(op, ln, ltp);
   2987 	case INDIR:
   2988 		return typeok_indir(ltp, lt);
   2989 	case ADDR:
   2990 		return typeok_address(op, ln, ltp, lt);
   2991 	case PLUS:
   2992 		return typeok_plus(op, ltp, lt, rtp, rt);
   2993 	case MINUS:
   2994 		return typeok_minus(op, ltp, lt, rtp, rt);
   2995 	case SHL:
   2996 		typeok_shl(op, lt, rt);
   2997 		goto shift;
   2998 	case SHR:
   2999 		typeok_shr(op, ln, lt, rn, rt);
   3000 	shift:
   3001 		typeok_shift(ltp, lt, rn, rt);
   3002 		break;
   3003 	case LT:
   3004 	case LE:
   3005 	case GT:
   3006 	case GE:
   3007 	compare:
   3008 		return typeok_compare(op, ln, ltp, lt, rn, rtp, rt);
   3009 	case EQ:
   3010 	case NE:
   3011 		if (is_typeok_eq(ln, lt, rn, rt))
   3012 			break;
   3013 		goto compare;
   3014 	case QUEST:
   3015 		return typeok_quest(lt, rn);
   3016 	case COLON:
   3017 		return typeok_colon(ln, ltp, lt, rn, rtp, rt);
   3018 	case ASSIGN:
   3019 	case INIT:
   3020 	case FARG:
   3021 	case RETURN:
   3022 		if (!check_assign_types_compatible(op, arg, ln, rn))
   3023 			return false;
   3024 		goto assign;
   3025 	case MULASS:
   3026 	case DIVASS:
   3027 	case MODASS:
   3028 		goto assign;
   3029 	case ADDASS:
   3030 	case SUBASS:
   3031 		if ((lt == PTR && !is_integer(rt)) || rt == PTR) {
   3032 			warn_incompatible_types(op, ltp, lt, rtp, rt);
   3033 			return false;
   3034 		}
   3035 		goto assign;
   3036 	case SHLASS:
   3037 		goto assign;
   3038 	case SHRASS:
   3039 		if (pflag && !is_uinteger(lt) &&
   3040 		    !(!allow_c90 && is_uinteger(rt))) {
   3041 			/* bitwise '%s' on signed value possibly nonportable */
   3042 			warning(117, op_name(op));
   3043 		}
   3044 		goto assign;
   3045 	case ANDASS:
   3046 	case XORASS:
   3047 	case ORASS:
   3048 	assign:
   3049 		return typeok_assign(op, ln, ltp, lt);
   3050 	case COMMA:
   3051 		if (!modtab[ln->tn_op].m_has_side_effect)
   3052 			check_null_effect(ln);
   3053 		break;
   3054 	default:
   3055 		break;
   3056 	}
   3057 	return true;
   3058 }
   3059 
   3060 /* Prints a warning if a strange operator is used on an enum type. */
   3061 static void
   3062 check_bad_enum_operation(op_t op, const tnode_t *ln, const tnode_t *rn)
   3063 {
   3064 
   3065 	if (!eflag)
   3066 		return;
   3067 
   3068 	/* Allow enum in array indices. */
   3069 	if (op == PLUS &&
   3070 	    ((ln->tn_type->t_is_enum && rn->tn_type->t_tspec == PTR) ||
   3071 	     (rn->tn_type->t_is_enum && ln->tn_type->t_tspec == PTR))) {
   3072 		return;
   3073 	}
   3074 
   3075 	/* dubious operation '%s' on enum */
   3076 	warning(241, op_name(op));
   3077 }
   3078 
   3079 /* Prints a warning if an operator is applied to two different enum types. */
   3080 static void
   3081 check_enum_type_mismatch(op_t op, int arg, const tnode_t *ln, const tnode_t *rn)
   3082 {
   3083 	const mod_t *mp = &modtab[op];
   3084 
   3085 	if (ln->tn_type->t_enum != rn->tn_type->t_enum) {
   3086 		switch (op) {
   3087 		case INIT:
   3088 			/* enum type mismatch between '%s' and '%s' in ... */
   3089 			warning(210,
   3090 			    type_name(ln->tn_type), type_name(rn->tn_type));
   3091 			break;
   3092 		case FARG:
   3093 			/* function expects '%s', passing '%s' for arg #%d */
   3094 			warning(156,
   3095 			    type_name(ln->tn_type), type_name(rn->tn_type),
   3096 			    arg);
   3097 			break;
   3098 		case RETURN:
   3099 			/* function has return type '%s' but returns '%s' */
   3100 			warning(211,
   3101 			    type_name(ln->tn_type), type_name(rn->tn_type));
   3102 			break;
   3103 		default:
   3104 			/* enum type mismatch: '%s' '%s' '%s' */
   3105 			warning(130, type_name(ln->tn_type), op_name(op),
   3106 			    type_name(rn->tn_type));
   3107 			break;
   3108 		}
   3109 	} else if (Pflag && eflag && mp->m_comparison && op != EQ && op != NE)
   3110 		/* operator '%s' assumes that '%s' is ordered */
   3111 		warning(243, op_name(op), type_name(ln->tn_type));
   3112 }
   3113 
   3114 /* Prints a warning if the operands mix between enum and integer. */
   3115 static void
   3116 check_enum_int_mismatch(op_t op, int arg, const tnode_t *ln, const tnode_t *rn)
   3117 {
   3118 
   3119 	if (!eflag)
   3120 		return;
   3121 
   3122 	switch (op) {
   3123 	case INIT:
   3124 		/*
   3125 		 * Initialization with 0 is allowed. Otherwise, all implicit
   3126 		 * initializations would need to be warned upon as well.
   3127 		 */
   3128 		if (!rn->tn_type->t_is_enum && rn->tn_op == CON &&
   3129 		    is_integer(rn->tn_type->t_tspec) &&
   3130 		    rn->tn_val.u.integer == 0) {
   3131 			return;
   3132 		}
   3133 		/* initialization of '%s' with '%s' */
   3134 		warning(277, type_name(ln->tn_type), type_name(rn->tn_type));
   3135 		break;
   3136 	case FARG:
   3137 		/* combination of '%s' and '%s', arg #%d */
   3138 		warning(278,
   3139 		    type_name(ln->tn_type), type_name(rn->tn_type), arg);
   3140 		break;
   3141 	case RETURN:
   3142 		/* combination of '%s' and '%s' in return */
   3143 		warning(279, type_name(ln->tn_type), type_name(rn->tn_type));
   3144 		break;
   3145 	default:
   3146 		/* combination of '%s' and '%s', op '%s' */
   3147 		warning(242, type_name(ln->tn_type), type_name(rn->tn_type),
   3148 		    op_name(op));
   3149 		break;
   3150 	}
   3151 }
   3152 
   3153 static void
   3154 typeok_enum(op_t op, const mod_t *mp, int arg,
   3155 	    const tnode_t *ln, const type_t *ltp,
   3156 	    const tnode_t *rn, const type_t *rtp)
   3157 {
   3158 	if (mp->m_bad_on_enum &&
   3159 	    (ltp->t_is_enum || (mp->m_binary && rtp->t_is_enum))) {
   3160 		check_bad_enum_operation(op, ln, rn);
   3161 	} else if (mp->m_valid_on_enum &&
   3162 		   (ltp->t_is_enum && rtp != NULL && rtp->t_is_enum)) {
   3163 		check_enum_type_mismatch(op, arg, ln, rn);
   3164 	} else if (mp->m_valid_on_enum &&
   3165 		   (ltp->t_is_enum || (rtp != NULL && rtp->t_is_enum))) {
   3166 		check_enum_int_mismatch(op, arg, ln, rn);
   3167 	}
   3168 }
   3169 
   3170 /* Perform most type checks. Return whether the types are ok. */
   3171 bool
   3172 typeok(op_t op, int arg, const tnode_t *ln, const tnode_t *rn)
   3173 {
   3174 
   3175 	const mod_t *mp = &modtab[op];
   3176 
   3177 	type_t *ltp = ln->tn_type;
   3178 	tspec_t lt = ltp->t_tspec;
   3179 
   3180 	type_t *rtp = mp->m_binary ? rn->tn_type : NULL;
   3181 	tspec_t rt = mp->m_binary ? rtp->t_tspec : NO_TSPEC;
   3182 
   3183 	if (Tflag && !typeok_scalar_strict_bool(op, mp, arg, ln, rn))
   3184 		return false;
   3185 	if (!typeok_scalar(op, mp, ltp, lt, rtp, rt))
   3186 		return false;
   3187 
   3188 	if (!typeok_op(op, arg, ln, ltp, lt, rn, rtp, rt))
   3189 		return false;
   3190 
   3191 	typeok_enum(op, mp, arg, ln, ltp, rn, rtp);
   3192 	return true;
   3193 }
   3194 
   3195 /* In traditional C, keep unsigned and promote FLOAT to DOUBLE. */
   3196 static tspec_t
   3197 promote_trad(tspec_t t)
   3198 {
   3199 
   3200 	if (t == UCHAR || t == USHORT)
   3201 		return UINT;
   3202 	if (t == CHAR || t == SCHAR || t == SHORT)
   3203 		return INT;
   3204 	if (t == FLOAT)
   3205 		return DOUBLE;
   3206 	if (t == ENUM)
   3207 		return INT;
   3208 	return t;
   3209 }
   3210 
   3211 /*
   3212  * C99 6.3.1.1p2 requires for types with lower rank than int that "If an int
   3213  * can represent all the values of the original type, the value is converted
   3214  * to an int; otherwise it is converted to an unsigned int", and that "All
   3215  * other types are unchanged by the integer promotions".
   3216  */
   3217 static tspec_t
   3218 promote_c90(const tnode_t *tn, tspec_t t, bool farg)
   3219 {
   3220 	if (tn->tn_type->t_bitfield) {
   3221 		unsigned int width = tn->tn_type->t_bit_field_width;
   3222 		unsigned int int_width = size_in_bits(INT);
   3223 		// XXX: What about _Bool bit-fields, since C99?
   3224 		if (width < int_width)
   3225 			return INT;
   3226 		if (width == int_width)
   3227 			return is_uinteger(t) ? UINT : INT;
   3228 		return t;
   3229 	}
   3230 
   3231 	if (t == CHAR || t == SCHAR)
   3232 		return INT;
   3233 	if (t == UCHAR)
   3234 		return size_in_bits(CHAR) < size_in_bits(INT) ? INT : UINT;
   3235 	if (t == SHORT)
   3236 		return INT;
   3237 	if (t == USHORT)
   3238 		return size_in_bits(SHORT) < size_in_bits(INT) ? INT : UINT;
   3239 	if (t == ENUM)
   3240 		return INT;
   3241 	if (farg && t == FLOAT)
   3242 		return DOUBLE;
   3243 	return t;
   3244 }
   3245 
   3246 /*
   3247  * Performs the "integer promotions" (C99 6.3.1.1p2), which convert small
   3248  * integer types to either int or unsigned int.
   3249  *
   3250  * If allow_c90 is unset or the operand is a function argument with no type
   3251  * information (no prototype or variable # of args), converts float to double.
   3252  */
   3253 tnode_t *
   3254 promote(op_t op, bool farg, tnode_t *tn)
   3255 {
   3256 
   3257 	tspec_t ot = tn->tn_type->t_tspec;
   3258 	if (!is_arithmetic(ot))
   3259 		return tn;
   3260 
   3261 	tspec_t nt = allow_c90 ? promote_c90(tn, ot, farg) : promote_trad(ot);
   3262 	if (nt == ot)
   3263 		return tn;
   3264 
   3265 	type_t *ntp = expr_dup_type(tn->tn_type);
   3266 	ntp->t_tspec = nt;
   3267 	/*
   3268 	 * Keep t_is_enum even though t_tspec gets converted from
   3269 	 * ENUM to INT, so we are later able to check compatibility
   3270 	 * of enum types.
   3271 	 */
   3272 	return convert(op, 0, ntp, tn);
   3273 }
   3274 
   3275 static void
   3276 convert_integer_from_floating(op_t op, const type_t *tp, const tnode_t *tn)
   3277 {
   3278 
   3279 	if (op == CVT)
   3280 		/* cast from floating point '%s' to integer '%s' */
   3281 		query_message(2, type_name(tn->tn_type), type_name(tp));
   3282 	else
   3283 		/* implicit conversion from floating point '%s' to ... */
   3284 		query_message(1, type_name(tn->tn_type), type_name(tp));
   3285 }
   3286 
   3287 static bool
   3288 should_warn_about_prototype_conversion(tspec_t nt,
   3289 				       tspec_t ot, const tnode_t *ptn)
   3290 {
   3291 
   3292 	if (nt == ot)
   3293 		return false;
   3294 
   3295 	if (nt == ENUM && ot == INT)
   3296 		return false;
   3297 
   3298 	if (is_floating(nt) != is_floating(ot) ||
   3299 	    portable_rank_cmp(nt, ot) != 0) {
   3300 		/* representation and/or width change */
   3301 		if (!is_integer(ot))
   3302 			return true;
   3303 		/*
   3304 		 * XXX: Investigate whether this rule makes sense; see
   3305 		 * tests/usr.bin/xlint/lint1/platform_long.c.
   3306 		 */
   3307 		return portable_rank_cmp(ot, INT) > 0;
   3308 	}
   3309 
   3310 	if (!hflag)
   3311 		return false;
   3312 
   3313 	/*
   3314 	 * If the types differ only in sign and the argument has the same
   3315 	 * representation in both types, print no warning.
   3316 	 */
   3317 	if (ptn->tn_op == CON && is_integer(nt) &&
   3318 	    signed_type(nt) == signed_type(ot) &&
   3319 	    !msb(ptn->tn_val.u.integer, ot))
   3320 		return false;
   3321 
   3322 	return true;
   3323 }
   3324 
   3325 /*
   3326  * Warn if a prototype causes a type conversion that is different from what
   3327  * would happen to the same argument in the absence of a prototype.  This
   3328  * check is intended for code that needs to stay compatible with pre-C90 C.
   3329  *
   3330  * Errors/warnings about illegal type combinations are already printed
   3331  * in check_assign_types_compatible().
   3332  */
   3333 static void
   3334 check_prototype_conversion(int arg, tspec_t nt, tspec_t ot, type_t *tp,
   3335 			   tnode_t *tn)
   3336 {
   3337 
   3338 	if (!is_arithmetic(nt) || !is_arithmetic(ot))
   3339 		return;
   3340 
   3341 	/*
   3342 	 * If the type of the formal parameter is char/short, a warning
   3343 	 * would be useless, because functions declared the old style
   3344 	 * can't expect char/short arguments.
   3345 	 */
   3346 	if (nt == CHAR || nt == SCHAR || nt == UCHAR ||
   3347 	    nt == SHORT || nt == USHORT)
   3348 		return;
   3349 
   3350 	/* apply the default promotion */
   3351 	tnode_t *ptn = promote(NOOP, true, tn);
   3352 	ot = ptn->tn_type->t_tspec;
   3353 
   3354 	if (should_warn_about_prototype_conversion(nt, ot, ptn)) {
   3355 		/* argument %d is converted from '%s' to '%s' ... */
   3356 		warning(259, arg, type_name(tn->tn_type), type_name(tp));
   3357 	}
   3358 }
   3359 
   3360 /*
   3361  * When converting a large integer type to a small integer type, in some
   3362  * cases the value of the actual expression is further restricted than the
   3363  * type bounds, such as in (expr & 0xFF) or (expr % 100) or (expr >> 24).
   3364  */
   3365 static bool
   3366 can_represent(const type_t *tp, const tnode_t *tn)
   3367 {
   3368 
   3369 	debug_step("%s: type '%s'", __func__, type_name(tp));
   3370 	debug_node(tn);
   3371 
   3372 	uint64_t nmask = value_bits(width_in_bits(tp));
   3373 	if (!is_uinteger(tp->t_tspec))
   3374 		nmask >>= 1;
   3375 
   3376 	integer_constraints c = ic_expr(tn);
   3377 	if ((~c.bclr & ~nmask) == 0)
   3378 		return true;
   3379 
   3380 	integer_constraints tpc = ic_any(tp);
   3381 	if (is_uinteger(tp->t_tspec)
   3382 	    ? tpc.umin <= c.umin && tpc.umax >= c.umax
   3383 	    : tpc.smin <= c.smin && tpc.smax >= c.smax)
   3384 		return true;
   3385 
   3386 	return false;
   3387 }
   3388 
   3389 static bool
   3390 should_warn_about_integer_conversion(const type_t *ntp, tspec_t nt,
   3391 				     const tnode_t *otn, tspec_t ot)
   3392 {
   3393 
   3394 	// XXX: The portable_rank_cmp aims at portable mode, independent of the
   3395 	// current platform, while can_represent acts on the actual type sizes
   3396 	// from the current platform.  This mix is inconsistent, but anything
   3397 	// else would make the exact conditions too complicated to grasp.
   3398 	if (aflag > 0 && portable_rank_cmp(nt, ot) < 0) {
   3399 		if (ot == LONG || ot == ULONG
   3400 		    || ot == LLONG || ot == ULLONG
   3401 #ifdef INT128_SIZE
   3402 		    || ot == INT128 || ot == UINT128
   3403 #endif
   3404 		    || aflag > 1)
   3405 			return !can_represent(ntp, otn);
   3406 	}
   3407 	return false;
   3408 }
   3409 
   3410 static void
   3411 convert_integer_from_integer(op_t op, int arg, tspec_t nt, tspec_t ot,
   3412 			     type_t *tp, tnode_t *tn)
   3413 {
   3414 
   3415 	if (tn->tn_op == CON)
   3416 		return;
   3417 
   3418 	if (op == CVT)
   3419 		return;
   3420 
   3421 	if (Pflag && pflag && aflag > 0 &&
   3422 	    portable_rank_cmp(nt, ot) > 0 &&
   3423 	    is_uinteger(nt) != is_uinteger(ot)) {
   3424 		if (op == FARG) {
   3425 			/* conversion to '%s' may sign-extend ... */
   3426 			warning(297, type_name(tp), arg);
   3427 		} else {
   3428 			/* conversion to '%s' may sign-extend ... */
   3429 			warning(131, type_name(tp));
   3430 		}
   3431 	}
   3432 
   3433 	if (Pflag && portable_rank_cmp(nt, ot) > 0 &&
   3434 	    (tn->tn_op == PLUS || tn->tn_op == MINUS || tn->tn_op == MULT ||
   3435 	     tn->tn_op == SHL)) {
   3436 		/* suggest cast from '%s' to '%s' on op '%s' to ... */
   3437 		warning(324, type_name(gettyp(ot)), type_name(tp),
   3438 		    op_name(tn->tn_op));
   3439 	}
   3440 
   3441 	if (should_warn_about_integer_conversion(tp, nt, tn, ot)) {
   3442 		if (op == FARG) {
   3443 			/* conversion from '%s' to '%s' may lose ... */
   3444 			warning(298,
   3445 			    type_name(tn->tn_type), type_name(tp), arg);
   3446 		} else {
   3447 			/* conversion from '%s' to '%s' may lose accuracy */
   3448 			warning(132,
   3449 			    type_name(tn->tn_type), type_name(tp));
   3450 		}
   3451 	}
   3452 
   3453 	if (any_query_enabled && is_uinteger(nt) != is_uinteger(ot))
   3454 		/* implicit conversion changes sign from '%s' to '%s' */
   3455 		query_message(3, type_name(tn->tn_type), type_name(tp));
   3456 }
   3457 
   3458 static void
   3459 convert_integer_from_pointer(op_t op, tspec_t nt, type_t *tp, tnode_t *tn)
   3460 {
   3461 
   3462 	if (tn->tn_op == CON)
   3463 		return;
   3464 	if (op != CVT)
   3465 		return;		/* We already got an error. */
   3466 	if (portable_rank_cmp(nt, PTR) >= 0)
   3467 		return;
   3468 
   3469 	if (pflag && size_in_bits(nt) >= size_in_bits(PTR)) {
   3470 		/* conversion of pointer to '%s' may lose bits */
   3471 		warning(134, type_name(tp));
   3472 	} else {
   3473 		/* conversion of pointer to '%s' loses bits */
   3474 		warning(133, type_name(tp));
   3475 	}
   3476 }
   3477 
   3478 static bool
   3479 struct_starts_with(const type_t *struct_tp, const type_t *member_tp)
   3480 {
   3481 
   3482 	return struct_tp->t_sou->sou_first_member != NULL &&
   3483 	       types_compatible(struct_tp->t_sou->sou_first_member->s_type,
   3484 		   member_tp, true, false, NULL);
   3485 }
   3486 
   3487 static bool
   3488 is_byte_array(const type_t *tp)
   3489 {
   3490 
   3491 	return tp->t_tspec == ARRAY &&
   3492 	       (tp->t_subt->t_tspec == CHAR || tp->t_subt->t_tspec == UCHAR);
   3493 }
   3494 
   3495 static bool
   3496 union_contains(const type_t *utp, const type_t *mtp)
   3497 {
   3498 	for (const sym_t *mem = utp->t_sou->sou_first_member;
   3499 	     mem != NULL; mem = mem->s_next) {
   3500 		if (types_compatible(mem->s_type, mtp, true, false, NULL))
   3501 			return true;
   3502 	}
   3503 	return false;
   3504 }
   3505 
   3506 static bool
   3507 should_warn_about_pointer_cast(const type_t *nstp, tspec_t nst,
   3508 			       const type_t *ostp, tspec_t ost)
   3509 {
   3510 
   3511 	while (nst == ARRAY)
   3512 		nstp = nstp->t_subt, nst = nstp->t_tspec;
   3513 	while (ost == ARRAY)
   3514 		ostp = ostp->t_subt, ost = ostp->t_tspec;
   3515 
   3516 	if (nst == STRUCT && ost == STRUCT &&
   3517 	    (struct_starts_with(nstp, ostp) ||
   3518 	     struct_starts_with(ostp, nstp)))
   3519 		return false;
   3520 
   3521 	if (is_incomplete(nstp) || is_incomplete(ostp))
   3522 		return false;
   3523 
   3524 	if (nst == CHAR || nst == UCHAR)
   3525 		return false;	/* for the sake of traditional C code */
   3526 	if (ost == CHAR || ost == UCHAR)
   3527 		return false;	/* for the sake of traditional C code */
   3528 
   3529 	/* Allow cast between pointers to sockaddr variants. */
   3530 	if (nst == STRUCT && ost == STRUCT) {
   3531 		const sym_t *nmem = nstp->t_sou->sou_first_member;
   3532 		const sym_t *omem = ostp->t_sou->sou_first_member;
   3533 		while (nmem != NULL && omem != NULL &&
   3534 		       types_compatible(nmem->s_type, omem->s_type,
   3535 			   true, false, NULL))
   3536 			nmem = nmem->s_next, omem = omem->s_next;
   3537 		if (nmem != NULL && is_byte_array(nmem->s_type))
   3538 			return false;
   3539 		if (omem != NULL && is_byte_array(omem->s_type))
   3540 			return false;
   3541 		if (nmem == NULL && omem == NULL)
   3542 			return false;
   3543 	}
   3544 
   3545 	if (nst == UNION || ost == UNION) {
   3546 		const type_t *union_tp = nst == UNION ? nstp : ostp;
   3547 		const type_t *other_tp = nst == UNION ? ostp : nstp;
   3548 		if (union_contains(union_tp, other_tp))
   3549 			return false;
   3550 	}
   3551 
   3552 	if (is_struct_or_union(nst) && is_struct_or_union(ost))
   3553 		return nstp->t_sou != ostp->t_sou;
   3554 
   3555 	enum rank_kind rk1 = type_properties(nst)->tt_rank_kind;
   3556 	enum rank_kind rk2 = type_properties(ost)->tt_rank_kind;
   3557 	if (rk1 != rk2 || rk1 == RK_NONE)
   3558 		return true;
   3559 
   3560 	return portable_rank_cmp(nst, ost) != 0;
   3561 }
   3562 
   3563 static void
   3564 convert_pointer_from_pointer(type_t *ntp, tnode_t *tn)
   3565 {
   3566 	const type_t *nstp = ntp->t_subt;
   3567 	const type_t *otp = tn->tn_type;
   3568 	const type_t *ostp = otp->t_subt;
   3569 	tspec_t nst = nstp->t_tspec;
   3570 	tspec_t ost = ostp->t_tspec;
   3571 
   3572 	if (nst == VOID || ost == VOID) {
   3573 		/* TODO: C99 behaves like C90 here. */
   3574 		if ((!allow_trad && !allow_c99) && (nst == FUNC || ost == FUNC)) {
   3575 			const char *nts, *ots;
   3576 			/* null pointers are already handled in convert() */
   3577 			*(nst == FUNC ? &nts : &ots) = "function pointer";
   3578 			*(nst == VOID ? &nts : &ots) = "'void *'";
   3579 			/* conversion of %s to %s requires a cast */
   3580 			warning(303, ots, nts);
   3581 		}
   3582 		return;
   3583 	}
   3584 	if (nst == FUNC && ost == FUNC)
   3585 		return;
   3586 	if (nst == FUNC || ost == FUNC) {
   3587 		/* converting '%s' to '%s' is questionable */
   3588 		warning(229, type_name(otp), type_name(ntp));
   3589 		return;
   3590 	}
   3591 
   3592 	if (hflag && alignment_in_bits(nstp) > alignment_in_bits(ostp) &&
   3593 	    ost != CHAR && ost != UCHAR &&
   3594 	    !is_incomplete(ostp) &&
   3595 	    !(nst == UNION && union_contains(nstp, ostp))) {
   3596 		/* converting '%s' to '%s' increases alignment ... */
   3597 		warning(135, type_name(otp), type_name(ntp),
   3598 		    alignment_in_bits(ostp) / CHAR_SIZE,
   3599 		    alignment_in_bits(nstp) / CHAR_SIZE);
   3600 	}
   3601 
   3602 	if (cflag && should_warn_about_pointer_cast(nstp, nst, ostp, ost)) {
   3603 		/* pointer cast from '%s' to '%s' may be troublesome */
   3604 		warning(247, type_name(otp), type_name(ntp));
   3605 	}
   3606 }
   3607 
   3608 /*
   3609  * Insert a conversion operator, which converts the type of the node
   3610  * to another given type.
   3611  *
   3612  * Possible values for 'op':
   3613  *	CVT	a cast-expression
   3614  *	binary	integer promotion for one of the operands, or a usual
   3615  *		arithmetic conversion
   3616  *	binary	plain or compound assignments to bit-fields
   3617  *	FARG	'arg' is the number of the parameter (used for warnings)
   3618  *	NOOP	several other implicit conversions
   3619  *	...
   3620  */
   3621 tnode_t *
   3622 convert(op_t op, int arg, type_t *tp, tnode_t *tn)
   3623 {
   3624 	tspec_t nt = tp->t_tspec;
   3625 	tspec_t ot = tn->tn_type->t_tspec;
   3626 
   3627 	if (allow_trad && allow_c90 && op == FARG)
   3628 		check_prototype_conversion(arg, nt, ot, tp, tn);
   3629 
   3630 	if (nt == BOOL) {
   3631 		/* No further checks. */
   3632 
   3633 	} else if (is_integer(nt)) {
   3634 		if (ot == BOOL) {
   3635 			/* No further checks. */
   3636 		} else if (is_integer(ot))
   3637 			convert_integer_from_integer(op, arg, nt, ot, tp, tn);
   3638 		else if (is_floating(ot))
   3639 			convert_integer_from_floating(op, tp, tn);
   3640 		else if (ot == PTR)
   3641 			convert_integer_from_pointer(op, nt, tp, tn);
   3642 
   3643 	} else if (is_floating(nt)) {
   3644 		/* No further checks. */
   3645 
   3646 	} else if (nt == PTR) {
   3647 		if (is_null_pointer(tn)) {
   3648 			/* a null pointer may be assigned to any pointer. */
   3649 		} else if (ot == PTR && op == CVT)
   3650 			convert_pointer_from_pointer(tp, tn);
   3651 	}
   3652 
   3653 	tnode_t *ntn = expr_alloc_tnode();
   3654 	ntn->tn_op = CVT;
   3655 	ntn->tn_type = tp;
   3656 	ntn->tn_cast = op == CVT;
   3657 	ntn->tn_sys |= tn->tn_sys;
   3658 	ntn->tn_right = NULL;
   3659 	if (tn->tn_op != CON || nt == VOID) {
   3660 		ntn->tn_left = tn;
   3661 	} else {
   3662 		ntn->tn_op = CON;
   3663 		convert_constant(op, arg, ntn->tn_type, &ntn->tn_val,
   3664 		    &tn->tn_val);
   3665 	}
   3666 
   3667 	return ntn;
   3668 }
   3669 
   3670 static void
   3671 convert_constant_floating(op_t op, int arg, tspec_t ot, const type_t *tp,
   3672 			  tspec_t nt, val_t *v, val_t *nv)
   3673 {
   3674 	long double max = 0.0, min = 0.0;
   3675 
   3676 	switch (nt) {
   3677 	case CHAR:
   3678 		max = TARG_CHAR_MAX;	min = TARG_CHAR_MIN;	break;
   3679 	case UCHAR:
   3680 		max = TARG_UCHAR_MAX;	min = 0;		break;
   3681 	case SCHAR:
   3682 		max = TARG_SCHAR_MAX;	min = TARG_SCHAR_MIN;	break;
   3683 	case SHORT:
   3684 		max = TARG_SHRT_MAX;	min = TARG_SHRT_MIN;	break;
   3685 	case USHORT:
   3686 		max = TARG_USHRT_MAX;	min = 0;		break;
   3687 	case ENUM:
   3688 	case INT:
   3689 		max = TARG_INT_MAX;	min = TARG_INT_MIN;	break;
   3690 	case UINT:
   3691 		max = TARG_UINT_MAX;	min = 0;		break;
   3692 	case LONG:
   3693 		max = TARG_LONG_MAX;	min = TARG_LONG_MIN;	break;
   3694 	case ULONG:
   3695 		max = TARG_ULONG_MAX;	min = 0;		break;
   3696 	case LLONG:
   3697 		max = LLONG_MAX;	min = LLONG_MIN;	break;
   3698 	case ULLONG:
   3699 		max = ULLONG_MAX;	min = 0;		break;
   3700 	case FLOAT:
   3701 	case FCOMPLEX:
   3702 		max = FLT_MAX;		min = -FLT_MAX;		break;
   3703 	case DOUBLE:
   3704 	case DCOMPLEX:
   3705 		max = DBL_MAX;		min = -DBL_MAX;		break;
   3706 	case PTR:
   3707 		/* Already got an error because of float --> ptr */
   3708 	case LDOUBLE:
   3709 	case LCOMPLEX:
   3710 		/* LINTED 248 */
   3711 		max = LDBL_MAX;		min = -max;		break;
   3712 	default:
   3713 		lint_assert(/*CONSTCOND*/false);
   3714 	}
   3715 	if (v->u.floating > max || v->u.floating < min) {
   3716 		lint_assert(nt != LDOUBLE);
   3717 		if (op == FARG) {
   3718 			/* conversion of '%s' to '%s' is out of range, ... */
   3719 			warning(295,
   3720 			    type_name(gettyp(ot)), type_name(tp), arg);
   3721 		} else {
   3722 			/* conversion of '%s' to '%s' is out of range */
   3723 			warning(119, type_name(gettyp(ot)), type_name(tp));
   3724 		}
   3725 		v->u.floating = v->u.floating > 0 ? max : min;
   3726 	}
   3727 
   3728 	if (nt == FLOAT || nt == FCOMPLEX)
   3729 		nv->u.floating = (float)v->u.floating;
   3730 	else if (nt == DOUBLE || nt == DCOMPLEX)
   3731 		nv->u.floating = (double)v->u.floating;
   3732 	else if (nt == LDOUBLE || nt == LCOMPLEX)
   3733 		nv->u.floating = v->u.floating;
   3734 	else
   3735 		nv->u.integer = (int64_t)v->u.floating;
   3736 }
   3737 
   3738 static bool
   3739 convert_constant_to_floating(tspec_t nt, val_t *nv,
   3740 			     tspec_t ot, const val_t *v)
   3741 {
   3742 	if (nt == FLOAT) {
   3743 		nv->u.floating = (ot == PTR || is_uinteger(ot)) ?
   3744 		    (float)(uint64_t)v->u.integer : (float)v->u.integer;
   3745 	} else if (nt == DOUBLE) {
   3746 		nv->u.floating = (ot == PTR || is_uinteger(ot)) ?
   3747 		    (double)(uint64_t)v->u.integer : (double)v->u.integer;
   3748 	} else if (nt == LDOUBLE) {
   3749 		nv->u.floating = (ot == PTR || is_uinteger(ot))
   3750 		    ? (long double)(uint64_t)v->u.integer
   3751 		    : (long double)v->u.integer;
   3752 	} else
   3753 		return false;
   3754 	return true;
   3755 }
   3756 
   3757 /*
   3758  * Print a warning if bits which were set are lost due to the conversion.
   3759  * This can happen with operator ORASS only.
   3760  */
   3761 static void
   3762 convert_constant_check_range_bitor(size_t nsz, size_t osz, const val_t *v,
   3763 				   uint64_t xmask, op_t op)
   3764 {
   3765 	if (nsz < osz && (v->u.integer & xmask) != 0) {
   3766 		/* constant truncated by conversion, op '%s' */
   3767 		warning(306, op_name(op));
   3768 	}
   3769 }
   3770 
   3771 /*
   3772  * Print a warning if additional bits are not all 1
   3773  * and the most significant bit of the old value is 1,
   3774  * or if at least one (but not all) removed bit was 0.
   3775  */
   3776 static void
   3777 convert_constant_check_range_bitand(size_t nsz, size_t osz,
   3778 				    uint64_t xmask, const val_t *nv,
   3779 				    tspec_t ot, const val_t *v,
   3780 				    const type_t *tp, op_t op)
   3781 {
   3782 	if (nsz > osz &&
   3783 	    (nv->u.integer & bit((unsigned int)(osz - 1))) != 0 &&
   3784 	    (nv->u.integer & xmask) != xmask) {
   3785 		/* extra bits set to 0 in conversion of '%s' to '%s', ... */
   3786 		warning(309, type_name(gettyp(ot)),
   3787 		    type_name(tp), op_name(op));
   3788 	} else if (nsz < osz &&
   3789 		   (v->u.integer & xmask) != xmask &&
   3790 		   (v->u.integer & xmask) != 0) {
   3791 		/* constant truncated by conversion, op '%s' */
   3792 		warning(306, op_name(op));
   3793 	}
   3794 }
   3795 
   3796 static void
   3797 convert_constant_check_range_signed(op_t op, int arg)
   3798 {
   3799 	if (op == ASSIGN) {
   3800 		/* assignment of negative constant to unsigned type */
   3801 		warning(164);
   3802 	} else if (op == INIT) {
   3803 		/* initialization of unsigned with negative constant */
   3804 		warning(221);
   3805 	} else if (op == FARG) {
   3806 		/* conversion of negative constant to unsigned type, ... */
   3807 		warning(296, arg);
   3808 	} else if (modtab[op].m_comparison) {
   3809 		/* handled by check_integer_comparison() */
   3810 	} else {
   3811 		/* conversion of negative constant to unsigned type */
   3812 		warning(222);
   3813 	}
   3814 }
   3815 
   3816 /*
   3817  * Loss of significant bit(s). All truncated bits of unsigned types or all
   3818  * truncated bits plus the msb of the target for signed types are considered
   3819  * to be significant bits. Loss of significant bits means that at least one
   3820  * of the bits was set in an unsigned type or that at least one but not all
   3821  * of the bits was set in a signed type. Loss of significant bits means that
   3822  * it is not possible, also not with necessary casts, to convert back to the
   3823  * original type. An example for a necessary cast is:
   3824  *	char c;	int	i; c = 128;
   3825  *	i = c;			** yields -128 **
   3826  *	i = (unsigned char)c;	** yields 128 **
   3827  */
   3828 static void
   3829 warn_constant_check_range_truncated(op_t op, int arg, const type_t *tp,
   3830 				    tspec_t ot)
   3831 {
   3832 	if (op == ASSIGN && tp->t_bitfield)
   3833 		/* precision lost in bit-field assignment */
   3834 		warning(166);
   3835 	else if (op == ASSIGN)
   3836 		/* constant truncated by assignment */
   3837 		warning(165);
   3838 	else if (op == INIT && tp->t_bitfield)
   3839 		/* bit-field initializer does not fit */
   3840 		warning(180);
   3841 	else if (op == INIT)
   3842 		/* initializer does not fit */
   3843 		warning(178);
   3844 	else if (op == CASE)
   3845 		/* case label affected by conversion */
   3846 		warning(196);
   3847 	else if (op == FARG)
   3848 		/* conversion of '%s' to '%s' is out of range, arg #%d */
   3849 		warning(295, type_name(gettyp(ot)), type_name(tp), arg);
   3850 	else
   3851 		/* conversion of '%s' to '%s' is out of range */
   3852 		warning(119, type_name(gettyp(ot)), type_name(tp));
   3853 }
   3854 
   3855 static void
   3856 warn_constant_check_range_loss(op_t op, int arg, const type_t *tp,
   3857 				  tspec_t ot)
   3858 {
   3859 	if (op == ASSIGN && tp->t_bitfield)
   3860 		/* precision lost in bit-field assignment */
   3861 		warning(166);
   3862 	else if (op == INIT && tp->t_bitfield)
   3863 		/* bit-field initializer out of range */
   3864 		warning(11);
   3865 	else if (op == CASE)
   3866 		/* case label affected by conversion */
   3867 		warning(196);
   3868 	else if (op == FARG)
   3869 		/* conversion of '%s' to '%s' is out of range, arg #%d */
   3870 		warning(295, type_name(gettyp(ot)), type_name(tp), arg);
   3871 	else
   3872 		/* conversion of '%s' to '%s' is out of range */
   3873 		warning(119, type_name(gettyp(ot)), type_name(tp));
   3874 }
   3875 
   3876 static void
   3877 convert_constant_check_range(tspec_t ot, const type_t *tp, tspec_t nt,
   3878 			     op_t op, int arg, const val_t *v, val_t *nv)
   3879 {
   3880 	unsigned int obitsz, nbitsz;
   3881 	uint64_t xmask, xmsk1;
   3882 
   3883 	obitsz = size_in_bits(ot);
   3884 	nbitsz = tp->t_bitfield ? tp->t_bit_field_width : size_in_bits(nt);
   3885 	xmask = value_bits(nbitsz) ^ value_bits(obitsz);
   3886 	xmsk1 = value_bits(nbitsz) ^ value_bits(obitsz - 1);
   3887 	/*
   3888 	 * For bitwise operations we are not interested in the arithmetic
   3889 	 * value, but in the bits itself.
   3890 	 */
   3891 	if (op == ORASS || op == BITOR || op == BITXOR) {
   3892 		convert_constant_check_range_bitor(
   3893 		    nbitsz, obitsz, v, xmask, op);
   3894 	} else if (op == ANDASS || op == BITAND) {
   3895 		convert_constant_check_range_bitand(
   3896 		    nbitsz, obitsz, xmask, nv, ot, v, tp, op);
   3897 	} else if ((nt != PTR && is_uinteger(nt)) &&
   3898 		   (ot != PTR && !is_uinteger(ot)) &&
   3899 		   v->u.integer < 0)
   3900 		convert_constant_check_range_signed(op, arg);
   3901 	else if (nv->u.integer != v->u.integer && nbitsz <= obitsz &&
   3902 		 (v->u.integer & xmask) != 0 &&
   3903 		 (is_uinteger(ot) || (v->u.integer & xmsk1) != xmsk1))
   3904 		warn_constant_check_range_truncated(op, arg, tp, ot);
   3905 	else if (nv->u.integer != v->u.integer)
   3906 		warn_constant_check_range_loss(op, arg, tp, ot);
   3907 }
   3908 
   3909 /*-
   3910  * Converts a typed constant to a constant of another type.
   3911  *
   3912  * op		operator which requires conversion
   3913  * arg		if op is FARG, # of parameter
   3914  * tp		type to which to convert the constant
   3915  * nv		new constant
   3916  * v		old constant
   3917  */
   3918 void
   3919 convert_constant(op_t op, int arg, const type_t *tp, val_t *nv, val_t *v)
   3920 {
   3921 	/*
   3922 	 * TODO: make 'v' const; the name of this function does not suggest
   3923 	 *  that it modifies 'v'.
   3924 	 */
   3925 	tspec_t ot = v->v_tspec;
   3926 	tspec_t nt = nv->v_tspec = tp->t_tspec;
   3927 	bool range_check = false;
   3928 
   3929 	if (nt == BOOL) {	/* C99 6.3.1.2 */
   3930 		nv->v_unsigned_since_c90 = false;
   3931 		nv->u.integer = is_nonzero_val(v) ? 1 : 0;
   3932 		return;
   3933 	}
   3934 
   3935 	if (ot == FLOAT || ot == DOUBLE || ot == LDOUBLE)
   3936 		convert_constant_floating(op, arg, ot, tp, nt, v, nv);
   3937 	else if (!convert_constant_to_floating(nt, nv, ot, v)) {
   3938 		range_check = true;	/* Check for lost precision. */
   3939 		nv->u.integer = v->u.integer;
   3940 	}
   3941 
   3942 	if (allow_trad && allow_c90 && v->v_unsigned_since_c90 &&
   3943 	    (is_floating(nt) || (
   3944 		(is_integer(nt) && !is_uinteger(nt) &&
   3945 		    portable_rank_cmp(nt, ot) > 0)))) {
   3946 		/* C90 treats constant as unsigned */
   3947 		warning(157);
   3948 		v->v_unsigned_since_c90 = false;
   3949 	}
   3950 
   3951 	if (is_integer(nt)) {
   3952 		nv->u.integer = convert_integer(nv->u.integer, nt,
   3953 		    tp->t_bitfield ? tp->t_bit_field_width : size_in_bits(nt));
   3954 	}
   3955 
   3956 	if (range_check && op != CVT)
   3957 		convert_constant_check_range(ot, tp, nt, op, arg, v, nv);
   3958 }
   3959 
   3960 /*
   3961  * Create a constant node for sizeof.
   3962  */
   3963 tnode_t *
   3964 build_sizeof(const type_t *tp)
   3965 {
   3966 	unsigned int size_in_bytes = type_size_in_bits(tp) / CHAR_SIZE;
   3967 	tnode_t *tn = build_integer_constant(SIZEOF_TSPEC, size_in_bytes);
   3968 	tn->tn_system_dependent = true;
   3969 	debug_step("build_sizeof '%s' = %u", type_name(tp), size_in_bytes);
   3970 	return tn;
   3971 }
   3972 
   3973 /*
   3974  * Create a constant node for offsetof.
   3975  */
   3976 tnode_t *
   3977 build_offsetof(const type_t *tp, const sym_t *sym)
   3978 {
   3979 	unsigned int offset_in_bits = 0;
   3980 
   3981 	if (!is_struct_or_union(tp->t_tspec)) {
   3982 		/* unacceptable operand of '%s' */
   3983 		error(111, "offsetof");
   3984 		goto proceed;
   3985 	}
   3986 	sym_t *mem = find_member(tp->t_sou, sym->s_name);
   3987 	if (mem == NULL) {
   3988 		/* type '%s' does not have member '%s' */
   3989 		error(101, sym->s_name, type_name(tp));
   3990 		goto proceed;
   3991 	}
   3992 	offset_in_bits = mem->u.s_member.sm_offset_in_bits;
   3993 
   3994 proceed:;
   3995 	unsigned int offset_in_bytes = offset_in_bits / CHAR_SIZE;
   3996 	tnode_t *tn = build_integer_constant(SIZEOF_TSPEC, offset_in_bytes);
   3997 	tn->tn_system_dependent = true;
   3998 	return tn;
   3999 }
   4000 
   4001 unsigned int
   4002 type_size_in_bits(const type_t *tp)
   4003 {
   4004 
   4005 	unsigned int elem = 1;
   4006 	bool flex = false;
   4007 	lint_assert(tp != NULL);
   4008 	while (tp->t_tspec == ARRAY) {
   4009 		flex = true;	/* allow c99 flex arrays [] [0] */
   4010 		elem *= tp->t_dim;
   4011 		tp = tp->t_subt;
   4012 	}
   4013 	if (elem == 0 && !flex) {
   4014 		/* cannot take size/alignment of incomplete type */
   4015 		error(143);
   4016 		elem = 1;
   4017 	}
   4018 
   4019 	unsigned int elsz;
   4020 	switch (tp->t_tspec) {
   4021 	case VOID:
   4022 		/* cannot take size/alignment of void */
   4023 		error(146);
   4024 		elsz = 1;
   4025 		break;
   4026 	case FUNC:
   4027 		/* cannot take size/alignment of function type '%s' */
   4028 		error(144, type_name(tp));
   4029 		elsz = 1;
   4030 		break;
   4031 	case STRUCT:
   4032 	case UNION:
   4033 		if (is_incomplete(tp)) {
   4034 			/* cannot take size/alignment of incomplete type */
   4035 			error(143);
   4036 			elsz = 1;
   4037 		} else {
   4038 			elsz = tp->t_sou->sou_size_in_bits;
   4039 		}
   4040 		break;
   4041 	case ENUM:
   4042 		if (is_incomplete(tp)) {
   4043 			/* cannot take size/alignment of incomplete type */
   4044 			warning(143);
   4045 		}
   4046 		/* FALLTHROUGH */
   4047 	default:
   4048 		if (tp->t_bitfield) {
   4049 			/* cannot take size/alignment of bit-field */
   4050 			error(145);
   4051 		}
   4052 		elsz = size_in_bits(tp->t_tspec);
   4053 		lint_assert(elsz > 0);
   4054 		break;
   4055 	}
   4056 
   4057 	return elem * elsz;
   4058 }
   4059 
   4060 /* C11 6.5.3.4, GCC */
   4061 tnode_t *
   4062 build_alignof(const type_t *tp)
   4063 {
   4064 	if (tp->t_tspec == FUNC) {
   4065 		/* cannot take size/alignment of function type '%s' */
   4066 		error(144, type_name(tp));
   4067 		return NULL;
   4068 	}
   4069 	if (tp->t_tspec == VOID) {
   4070 		/* cannot take size/alignment of void */
   4071 		error(146);
   4072 		return NULL;
   4073 	}
   4074 	if (is_incomplete(tp)) {
   4075 		/* cannot take size/alignment of incomplete type */
   4076 		error(143);
   4077 		return NULL;
   4078 	}
   4079 	if (tp->t_bitfield) {
   4080 		/* cannot take size/alignment of bit-field */
   4081 		error(145);
   4082 		return NULL;
   4083 	}
   4084 	return build_integer_constant(SIZEOF_TSPEC,
   4085 	    (int64_t)alignment_in_bits(tp) / CHAR_SIZE);
   4086 }
   4087 
   4088 static tnode_t *
   4089 cast_to_union(tnode_t *otn, type_t *ntp)
   4090 {
   4091 
   4092 	if (!allow_gcc) {
   4093 		/* union cast is a GCC extension */
   4094 		error(328);
   4095 		return NULL;
   4096 	}
   4097 
   4098 	for (const sym_t *m = ntp->t_sou->sou_first_member;
   4099 	    m != NULL; m = m->s_next) {
   4100 		if (types_compatible(m->s_type, otn->tn_type,
   4101 		    false, false, NULL)) {
   4102 			tnode_t *ntn = expr_alloc_tnode();
   4103 			ntn->tn_op = CVT;
   4104 			ntn->tn_type = ntp;
   4105 			ntn->tn_cast = true;
   4106 			ntn->tn_left = otn;
   4107 			ntn->tn_right = NULL;
   4108 			return ntn;
   4109 		}
   4110 	}
   4111 
   4112 	/* type '%s' is not a member of '%s' */
   4113 	error(329, type_name(otn->tn_type), type_name(ntp));
   4114 	return NULL;
   4115 }
   4116 
   4117 /*
   4118  * Type casts.
   4119  */
   4120 tnode_t *
   4121 cast(tnode_t *tn, type_t *tp)
   4122 {
   4123 
   4124 	if (tn == NULL)
   4125 		return NULL;
   4126 
   4127 	tn = cconv(tn);
   4128 
   4129 	lint_assert(tp != NULL);
   4130 	tspec_t nt = tp->t_tspec;
   4131 	tspec_t ot = tn->tn_type->t_tspec;
   4132 
   4133 	if (nt == VOID) {
   4134 		/*
   4135 		 * C90 6.3.4, C99 6.5.4p2 and C11 6.5.4p2 allow any type to
   4136 		 * be cast to void.  The only other allowed casts are from a
   4137 		 * scalar type to a scalar type.
   4138 		 */
   4139 	} else if (nt == UNION)
   4140 		return cast_to_union(tn, tp);
   4141 	else if (nt == STRUCT || nt == ARRAY || nt == FUNC) {
   4142 		/* Casting to a struct is an undocumented GCC extension. */
   4143 		if (!(allow_gcc && nt == STRUCT))
   4144 			goto invalid_cast;
   4145 	} else if (is_struct_or_union(ot))
   4146 		goto invalid_cast;
   4147 	else if (ot == VOID) {
   4148 		/* improper cast of void expression */
   4149 		error(148);
   4150 		return NULL;
   4151 	} else if (is_integer(nt) && is_scalar(ot)) {
   4152 		/* ok */
   4153 	} else if (is_floating(nt) && is_arithmetic(ot)) {
   4154 		/* ok */
   4155 	} else if (nt == PTR && is_integer(ot)) {
   4156 		/* ok */
   4157 	} else if (nt == PTR && ot == PTR) {
   4158 		if (!tp->t_subt->t_const && tn->tn_type->t_subt->t_const) {
   4159 			if (hflag)
   4160 				/* cast discards 'const' from type '%s' */
   4161 				warning(275, type_name(tn->tn_type));
   4162 		}
   4163 	} else
   4164 		goto invalid_cast;
   4165 
   4166 	if (any_query_enabled && types_compatible(tp, tn->tn_type,
   4167 	    false, false, NULL)) {
   4168 		/* no-op cast from '%s' to '%s' */
   4169 		query_message(6, type_name(tn->tn_type), type_name(tp));
   4170 	}
   4171 
   4172 	tn = convert(CVT, 0, tp, tn);
   4173 	tn->tn_cast = true;
   4174 
   4175 	return tn;
   4176 
   4177 invalid_cast:
   4178 	/* invalid cast from '%s' to '%s' */
   4179 	error(147, type_name(tn->tn_type), type_name(tp));
   4180 	return NULL;
   4181 }
   4182 
   4183 /*
   4184  * Create the node for a function argument.
   4185  * All necessary conversions and type checks are done in
   4186  * build_function_call because build_function_argument has no
   4187  * information about the expected parameter types.
   4188  */
   4189 tnode_t *
   4190 build_function_argument(tnode_t *args, tnode_t *arg)
   4191 {
   4192 	/*
   4193 	 * If there was a serious error in the expression for the argument,
   4194 	 * create a dummy argument so the positions of the remaining arguments
   4195 	 * will not change.
   4196 	 */
   4197 	if (arg == NULL)
   4198 		arg = build_integer_constant(INT, 0);
   4199 
   4200 	return build_op(PUSH, arg->tn_sys, arg->tn_type, arg, args);
   4201 }
   4202 
   4203 /*
   4204  * Compare the type of an argument with the corresponding type of a
   4205  * prototype parameter. If it is a valid combination, but both types
   4206  * are not the same, insert a conversion to convert the argument into
   4207  * the type of the parameter.
   4208  */
   4209 static tnode_t *
   4210 check_prototype_argument(
   4211 	int	n,		/* pos of arg */
   4212 	type_t	*tp,		/* expected type (from prototype) */
   4213 	tnode_t	*tn)		/* argument */
   4214 {
   4215 	tnode_t *ln = xcalloc(1, sizeof(*ln));
   4216 	ln->tn_type = expr_unqualified_type(tp);
   4217 	ln->tn_lvalue = true;
   4218 	if (typeok(FARG, n, ln, tn)) {
   4219 		bool dowarn;
   4220 		if (!types_compatible(tp, tn->tn_type,
   4221 		    true, false, (dowarn = false, &dowarn)) || dowarn)
   4222 			tn = convert(FARG, n, tp, tn);
   4223 	}
   4224 	free(ln);
   4225 	return tn;
   4226 }
   4227 
   4228 /*
   4229  * Check types of all function arguments and insert conversions,
   4230  * if necessary.
   4231  */
   4232 static tnode_t *
   4233 check_function_arguments(type_t *ftp, tnode_t *args)
   4234 {
   4235 	/* get # of parameters in the prototype */
   4236 	int npar = 0;
   4237 	for (const sym_t *p = ftp->t_params; p != NULL; p = p->s_next)
   4238 		npar++;
   4239 
   4240 	/* get # of arguments in the function call */
   4241 	int narg = 0;
   4242 	for (const tnode_t *arg = args; arg != NULL; arg = arg->tn_right)
   4243 		narg++;
   4244 
   4245 	const sym_t *param = ftp->t_params;
   4246 	if (ftp->t_proto && npar != narg && !(ftp->t_vararg && npar < narg)) {
   4247 		/* argument mismatch: %d %s passed, %d expected */
   4248 		error(150, narg, narg != 1 ? "arguments" : "argument", npar);
   4249 		param = NULL;
   4250 	}
   4251 
   4252 	for (int n = 1; n <= narg; n++) {
   4253 
   4254 		// The rightmost argument starts the argument list.
   4255 		tnode_t *arg = args;
   4256 		for (int i = narg; i > n; i--, arg = arg->tn_right)
   4257 			continue;
   4258 
   4259 		/* some things which are always not allowed */
   4260 		tspec_t at = arg->tn_left->tn_type->t_tspec;
   4261 		if (at == VOID) {
   4262 			/* void expressions may not be arguments, arg #%d */
   4263 			error(151, n);
   4264 			return NULL;
   4265 		}
   4266 		if (is_struct_or_union(at) &&
   4267 			   is_incomplete(arg->tn_left->tn_type)) {
   4268 			/* argument cannot have unknown size, arg #%d */
   4269 			error(152, n);
   4270 			return NULL;
   4271 		}
   4272 		if (is_integer(at) &&
   4273 			   arg->tn_left->tn_type->t_is_enum &&
   4274 			   is_incomplete(arg->tn_left->tn_type)) {
   4275 			/* argument cannot have unknown size, arg #%d */
   4276 			warning(152, n);
   4277 		}
   4278 
   4279 		/* class conversions (arg in value context) */
   4280 		arg->tn_left = cconv(arg->tn_left);
   4281 
   4282 		if (param != NULL) {
   4283 			arg->tn_left = check_prototype_argument(
   4284 			    n, param->s_type, arg->tn_left);
   4285 		} else
   4286 			arg->tn_left = promote(NOOP, true, arg->tn_left);
   4287 		arg->tn_type = arg->tn_left->tn_type;
   4288 
   4289 		if (param != NULL)
   4290 			param = param->s_next;
   4291 	}
   4292 
   4293 	return args;
   4294 }
   4295 
   4296 /*
   4297  * Create the node for a function call. Also check types of
   4298  * function arguments and insert conversions, if necessary.
   4299  */
   4300 tnode_t *
   4301 build_function_call(tnode_t *func, bool sys, tnode_t *args)
   4302 {
   4303 
   4304 	if (func == NULL)
   4305 		return NULL;
   4306 
   4307 	op_t fcop = func->tn_op == NAME && func->tn_type->t_tspec == FUNC
   4308 	    ? CALL : ICALL;
   4309 
   4310 	check_ctype_function_call(func, args);
   4311 
   4312 	/* Turn the function name into a pointer to the function. */
   4313 	func = cconv(func);
   4314 
   4315 	if (func->tn_type->t_tspec != PTR ||
   4316 	    func->tn_type->t_subt->t_tspec != FUNC) {
   4317 		/* cannot call '%s', must be a function */
   4318 		error(149, type_name(func->tn_type));
   4319 		return NULL;
   4320 	}
   4321 
   4322 	args = check_function_arguments(func->tn_type->t_subt, args);
   4323 
   4324 	return build_op(fcop, sys, func->tn_type->t_subt->t_subt, func, args);
   4325 }
   4326 
   4327 /*
   4328  * Return the value of an integral constant expression.
   4329  * If the expression is not constant or its type is not an integer
   4330  * type, an error message is printed.
   4331  */
   4332 val_t *
   4333 integer_constant(tnode_t *tn, bool required)
   4334 {
   4335 
   4336 	if (tn != NULL)
   4337 		tn = cconv(tn);
   4338 	if (tn != NULL)
   4339 		tn = promote(NOOP, false, tn);
   4340 
   4341 	val_t *v = xcalloc(1, sizeof(*v));
   4342 
   4343 	if (tn == NULL) {
   4344 		lint_assert(seen_error);
   4345 		debug_step("constant node is null; returning 1 instead");
   4346 		v->v_tspec = INT;
   4347 		v->u.integer = 1;
   4348 		return v;
   4349 	}
   4350 
   4351 	v->v_tspec = tn->tn_type->t_tspec;
   4352 
   4353 	if (tn->tn_op == CON) {
   4354 		lint_assert(tn->tn_type->t_tspec == tn->tn_val.v_tspec);
   4355 		if (is_integer(tn->tn_val.v_tspec)) {
   4356 			v->v_unsigned_since_c90 =
   4357 			    tn->tn_val.v_unsigned_since_c90;
   4358 			v->u.integer = tn->tn_val.u.integer;
   4359 			return v;
   4360 		}
   4361 		v->u.integer = (int64_t)tn->tn_val.u.floating;
   4362 	} else {
   4363 		v->u.integer = 1;
   4364 	}
   4365 
   4366 	if (required)
   4367 		/* integral constant expression expected */
   4368 		error(55);
   4369 	else
   4370 		/* variable array dimension is a C99/GCC extension */
   4371 		c99ism(318);
   4372 
   4373 	if (!is_integer(v->v_tspec))
   4374 		v->v_tspec = INT;
   4375 
   4376 	return v;
   4377 }
   4378 
   4379 static bool
   4380 is_constcond_false(const tnode_t *tn, tspec_t t)
   4381 {
   4382 	return (t == BOOL || t == INT) &&
   4383 	       tn->tn_op == CON && tn->tn_val.u.integer == 0;
   4384 }
   4385 
   4386 /*
   4387  * Perform some tests on expressions which can't be done in build_binary()
   4388  * and functions called by build_binary(). These tests must be done here
   4389  * because we need some information about the context in which the operations
   4390  * are performed.
   4391  * After all tests are performed and dofreeblk is true, expr() frees the
   4392  * memory which is used for the expression.
   4393  */
   4394 void
   4395 expr(tnode_t *tn, bool vctx, bool cond, bool dofreeblk, bool is_do_while)
   4396 {
   4397 
   4398 	if (tn == NULL) {	/* in case of errors */
   4399 		expr_free_all();
   4400 		return;
   4401 	}
   4402 
   4403 	/* expr() is also called in global initializations */
   4404 	if (dcs->d_kind != DLK_EXTERN && !is_do_while)
   4405 		check_statement_reachable();
   4406 
   4407 	check_expr_misc(tn, vctx, cond, !cond, false, false, false);
   4408 	if (tn->tn_op == ASSIGN && !tn->tn_parenthesized) {
   4409 		if (hflag && cond)
   4410 			/* assignment in conditional context */
   4411 			warning(159);
   4412 	} else if (tn->tn_op == CON) {
   4413 		if (hflag && cond && !suppress_constcond &&
   4414 		    !tn->tn_system_dependent &&
   4415 		    !(is_do_while &&
   4416 		      is_constcond_false(tn, tn->tn_type->t_tspec)))
   4417 			/* constant in conditional context */
   4418 			warning(161);
   4419 	}
   4420 	if (!modtab[tn->tn_op].m_has_side_effect) {
   4421 		/*
   4422 		 * for left operands of COMMA this warning is already
   4423 		 * printed
   4424 		 */
   4425 		if (tn->tn_op != COMMA && !vctx && !cond)
   4426 			check_null_effect(tn);
   4427 	}
   4428 	debug_node(tn);
   4429 
   4430 	/* free the tree memory */
   4431 	if (dofreeblk)
   4432 		expr_free_all();
   4433 }
   4434 
   4435 /*
   4436  * Checks the range of array indices, if possible.
   4437  * amper is set if only the address of the element is used. This
   4438  * means that the index is allowed to refer to the first element
   4439  * after the array.
   4440  */
   4441 static void
   4442 check_array_index(tnode_t *tn, bool amper)
   4443 {
   4444 	const tnode_t *ln = tn->tn_left;
   4445 	const tnode_t *rn = tn->tn_right;
   4446 
   4447 	/* We can only check constant indices. */
   4448 	if (rn->tn_op != CON)
   4449 		return;
   4450 
   4451 	/* Return if the left node does not stem from an array. */
   4452 	if (ln->tn_op != ADDR)
   4453 		return;
   4454 	if (ln->tn_left->tn_op != STRING && ln->tn_left->tn_op != NAME)
   4455 		return;
   4456 	if (ln->tn_left->tn_type->t_tspec != ARRAY)
   4457 		return;
   4458 
   4459 	/*
   4460 	 * For incomplete array types, we can print a warning only if
   4461 	 * the index is negative.
   4462 	 */
   4463 	if (is_incomplete(ln->tn_left->tn_type) && rn->tn_val.u.integer >= 0)
   4464 		return;
   4465 
   4466 	/* Get the size of one array element */
   4467 	int elsz = length_in_bits(ln->tn_type->t_subt, NULL);
   4468 	if (elsz == 0)
   4469 		return;
   4470 	elsz /= CHAR_SIZE;
   4471 
   4472 	/* Change the unit of the index from bytes to element size. */
   4473 	int64_t con = is_uinteger(rn->tn_type->t_tspec)
   4474 	    ? (int64_t)((uint64_t)rn->tn_val.u.integer / elsz)
   4475 	    : rn->tn_val.u.integer / elsz;
   4476 
   4477 	int dim = ln->tn_left->tn_type->t_dim + (amper ? 1 : 0);
   4478 
   4479 	if (!is_uinteger(rn->tn_type->t_tspec) && con < 0) {
   4480 		/* array subscript cannot be negative: %ld */
   4481 		warning(167, (long)con);
   4482 	} else if (dim > 0 && (uint64_t)con >= (uint64_t)dim) {
   4483 		/* array subscript cannot be > %d: %ld */
   4484 		warning(168, dim - 1, (long)con);
   4485 	}
   4486 }
   4487 
   4488 static void
   4489 check_expr_addr(const tnode_t *ln, bool szof, bool fcall)
   4490 {
   4491 	/* XXX: Taking warn_about_unreachable into account here feels wrong. */
   4492 	if (ln->tn_op == NAME && (reached || !warn_about_unreachable)) {
   4493 		if (!szof)
   4494 			mark_as_set(ln->tn_sym);
   4495 		mark_as_used(ln->tn_sym, fcall, szof);
   4496 	}
   4497 	if (ln->tn_op == INDIR && ln->tn_left->tn_op == PLUS)
   4498 		/* check the range of array indices */
   4499 		check_array_index(ln->tn_left, true);
   4500 }
   4501 
   4502 static void
   4503 check_expr_load(const tnode_t *ln)
   4504 {
   4505 	if (ln->tn_op == INDIR && ln->tn_left->tn_op == PLUS)
   4506 		/* check the range of array indices */
   4507 		check_array_index(ln->tn_left, false);
   4508 }
   4509 
   4510 /*
   4511  * If there is an asm statement in one of the compound statements around,
   4512  * there may be other side effects, so don't warn.
   4513  */
   4514 static bool
   4515 is_asm_around(void)
   4516 {
   4517 	for (decl_level *dl = dcs; dl != NULL; dl = dl->d_enclosing)
   4518 		if (dl->d_asm)
   4519 			return true;
   4520 	return false;
   4521 }
   4522 
   4523 static void
   4524 check_expr_side_effect(const tnode_t *ln, bool szof)
   4525 {
   4526 
   4527 	/* XXX: Taking warn_about_unreachable into account here feels wrong. */
   4528 	if (ln->tn_op == NAME && (reached || !warn_about_unreachable)) {
   4529 		scl_t sc = ln->tn_sym->s_scl;
   4530 		if (sc != EXTERN && sc != STATIC &&
   4531 		    !ln->tn_sym->s_set && !szof && !is_asm_around()) {
   4532 			/* '%s' may be used before set */
   4533 			warning(158, ln->tn_sym->s_name);
   4534 			mark_as_set(ln->tn_sym);
   4535 		}
   4536 		mark_as_used(ln->tn_sym, false, false);
   4537 	}
   4538 }
   4539 
   4540 static void
   4541 check_expr_assign(const tnode_t *ln, bool szof)
   4542 {
   4543 	/* XXX: Taking warn_about_unreachable into account here feels wrong. */
   4544 	if (ln->tn_op == NAME && !szof && (reached || !warn_about_unreachable)) {
   4545 		mark_as_set(ln->tn_sym);
   4546 		if (ln->tn_sym->s_scl == EXTERN)
   4547 			outusg(ln->tn_sym);
   4548 	}
   4549 	if (ln->tn_op == INDIR && ln->tn_left->tn_op == PLUS)
   4550 		/* check the range of array indices */
   4551 		check_array_index(ln->tn_left, false);
   4552 }
   4553 
   4554 static void
   4555 check_expr_call(const tnode_t *tn, const tnode_t *ln,
   4556 		bool szof, bool vctx, bool cond, bool retval_discarded)
   4557 {
   4558 	lint_assert(ln->tn_op == ADDR);
   4559 	lint_assert(ln->tn_left->tn_op == NAME);
   4560 	if (!szof && !is_compiler_builtin(ln->tn_left->tn_sym->s_name))
   4561 		outcall(tn, vctx || cond, retval_discarded);
   4562 }
   4563 
   4564 static bool
   4565 check_expr_op(const tnode_t *tn, op_t op, const tnode_t *ln,
   4566 	      bool szof, bool fcall, bool vctx, bool cond,
   4567 	      bool retval_discarded, bool eqwarn)
   4568 {
   4569 	switch (op) {
   4570 	case ADDR:
   4571 		check_expr_addr(ln, szof, fcall);
   4572 		break;
   4573 	case LOAD:
   4574 		check_expr_load(ln);
   4575 		/* FALLTHROUGH */
   4576 	case PUSH:
   4577 	case INCBEF:
   4578 	case DECBEF:
   4579 	case INCAFT:
   4580 	case DECAFT:
   4581 	case ADDASS:
   4582 	case SUBASS:
   4583 	case MULASS:
   4584 	case DIVASS:
   4585 	case MODASS:
   4586 	case ANDASS:
   4587 	case ORASS:
   4588 	case XORASS:
   4589 	case SHLASS:
   4590 	case SHRASS:
   4591 	case REAL:
   4592 	case IMAG:
   4593 		check_expr_side_effect(ln, szof);
   4594 		break;
   4595 	case ASSIGN:
   4596 		check_expr_assign(ln, szof);
   4597 		break;
   4598 	case CALL:
   4599 		check_expr_call(tn, ln, szof, vctx, cond, retval_discarded);
   4600 		break;
   4601 	case EQ:
   4602 		if (hflag && eqwarn)
   4603 			/* operator '==' found where '=' was expected */
   4604 			warning(160);
   4605 		break;
   4606 	case CON:
   4607 	case NAME:
   4608 	case STRING:
   4609 		return false;
   4610 	default:
   4611 		break;
   4612 	}
   4613 	return true;
   4614 }
   4615 
   4616 /*
   4617  *	vctx			???
   4618  *	cond			whether the expression is a condition that
   4619  *				will be compared with 0
   4620  *	eqwarn			whether the operator '==' might be a
   4621  *				misspelled '='
   4622  *	fcall			whether the expression is a function call
   4623  *	retval_discarded	whether the return value of a function call
   4624  *				is discarded; such calls will be analyzed by
   4625  *				lint2 in messages 4, 8 and 9
   4626  *	szof			whether the expression is part of a sizeof
   4627  *				expression, which means that its value is
   4628  *				discarded since only the type is relevant
   4629  */
   4630 void
   4631 check_expr_misc(const tnode_t *tn, bool vctx, bool cond,
   4632 		bool eqwarn, bool fcall, bool retval_discarded, bool szof)
   4633 {
   4634 
   4635 	if (tn == NULL)
   4636 		return;
   4637 
   4638 	tnode_t *ln = tn->tn_left;
   4639 	tnode_t *rn = tn->tn_right;
   4640 	op_t op = tn->tn_op;
   4641 	const mod_t *mp = &modtab[op];
   4642 
   4643 	if (!check_expr_op(tn, op, ln,
   4644 	    szof, fcall, vctx, cond, retval_discarded, eqwarn))
   4645 		return;
   4646 
   4647 	bool cvctx = mp->m_value_context;
   4648 	bool ccond = mp->m_compares_with_zero;
   4649 	bool eq = mp->m_warn_if_operand_eq &&
   4650 	     !ln->tn_parenthesized &&
   4651 	     rn != NULL && !rn->tn_parenthesized;
   4652 
   4653 	/*
   4654 	 * values of operands of ':' are not used if the type of at least
   4655 	 * one of the operands (for gcc compatibility) is void
   4656 	 * XXX test/value context of QUEST should probably be used as
   4657 	 * context for both operands of COLON
   4658 	 */
   4659 	if (op == COLON && tn->tn_type->t_tspec == VOID)
   4660 		cvctx = ccond = false;
   4661 	bool discard = op == CVT && tn->tn_type->t_tspec == VOID;
   4662 	check_expr_misc(ln, cvctx, ccond, eq, op == CALL, discard, szof);
   4663 
   4664 	switch (op) {
   4665 	case PUSH:
   4666 		if (rn != NULL)
   4667 			check_expr_misc(rn, false, false, eq, false, false,
   4668 			    szof);
   4669 		break;
   4670 	case LOGAND:
   4671 	case LOGOR:
   4672 		check_expr_misc(rn, false, true, eq, false, false, szof);
   4673 		break;
   4674 	case COLON:
   4675 		check_expr_misc(rn, cvctx, ccond, eq, false, false, szof);
   4676 		break;
   4677 	case COMMA:
   4678 		check_expr_misc(rn, vctx, cond, false, false, false, szof);
   4679 		break;
   4680 	default:
   4681 		if (mp->m_binary)
   4682 			check_expr_misc(rn, true, false, eq, false, false,
   4683 			    szof);
   4684 		break;
   4685 	}
   4686 }
   4687 
   4688 /*
   4689  * Return whether the expression can be used for static initialization.
   4690  *
   4691  * Constant initialization expressions must be constant or an address
   4692  * of a static object with an optional offset. In the first case,
   4693  * the result is returned in *offsp. In the second case, the static
   4694  * object is returned in *symp and the offset in *offsp.
   4695  *
   4696  * The expression can consist of PLUS, MINUS, ADDR, NAME, STRING and
   4697  * CON. Type conversions are allowed if they do not change binary
   4698  * representation (including width).
   4699  *
   4700  * C99 6.6 "Constant expressions"
   4701  * C99 6.7.8p4 restricts initializers for static storage duration
   4702  */
   4703 bool
   4704 constant_addr(const tnode_t *tn, const sym_t **symp, ptrdiff_t *offsp)
   4705 {
   4706 	const sym_t *sym;
   4707 	ptrdiff_t offs1, offs2;
   4708 	tspec_t t, ot;
   4709 
   4710 	switch (tn->tn_op) {
   4711 	case MINUS:
   4712 		if (tn->tn_right->tn_op == CVT)
   4713 			return constant_addr(tn->tn_right, symp, offsp);
   4714 		else if (tn->tn_right->tn_op != CON)
   4715 			return false;
   4716 		/* FALLTHROUGH */
   4717 	case PLUS:
   4718 		offs1 = offs2 = 0;
   4719 		if (tn->tn_left->tn_op == CON) {
   4720 			offs1 = (ptrdiff_t)tn->tn_left->tn_val.u.integer;
   4721 			if (!constant_addr(tn->tn_right, &sym, &offs2))
   4722 				return false;
   4723 		} else if (tn->tn_right->tn_op == CON) {
   4724 			offs2 = (ptrdiff_t)tn->tn_right->tn_val.u.integer;
   4725 			if (tn->tn_op == MINUS)
   4726 				offs2 = -offs2;
   4727 			if (!constant_addr(tn->tn_left, &sym, &offs1))
   4728 				return false;
   4729 		} else {
   4730 			return false;
   4731 		}
   4732 		*symp = sym;
   4733 		*offsp = offs1 + offs2;
   4734 		return true;
   4735 	case ADDR:
   4736 		if (tn->tn_left->tn_op == NAME) {
   4737 			*symp = tn->tn_left->tn_sym;
   4738 			*offsp = 0;
   4739 			return true;
   4740 		} else {
   4741 			/*
   4742 			 * If this were the front end of a compiler, we
   4743 			 * would return a label instead of 0, at least if
   4744 			 * 'tn->tn_left->tn_op == STRING'.
   4745 			 */
   4746 			*symp = NULL;
   4747 			*offsp = 0;
   4748 			return true;
   4749 		}
   4750 	case CVT:
   4751 		t = tn->tn_type->t_tspec;
   4752 		ot = tn->tn_left->tn_type->t_tspec;
   4753 		if ((!is_integer(t) && t != PTR) ||
   4754 		    (!is_integer(ot) && ot != PTR)) {
   4755 			return false;
   4756 		}
   4757 #if 0
   4758 		/*
   4759 		 * consider:
   4760 		 *	struct foo {
   4761 		 *		unsigned char a;
   4762 		 *	} f = {
   4763 		 *		(unsigned char)(unsigned long)
   4764 		 *		    (&(((struct foo *)0)->a))
   4765 		 *	};
   4766 		 * since psize(unsigned long) != psize(unsigned char),
   4767 		 * this fails.
   4768 		 */
   4769 		else if (psize(t) != psize(ot))
   4770 			return -1;
   4771 #endif
   4772 		return constant_addr(tn->tn_left, symp, offsp);
   4773 	default:
   4774 		return false;
   4775 	}
   4776 }
   4777 
   4778 /* Append s2 to s1, then free s2. */
   4779 strg_t *
   4780 cat_strings(strg_t *s1, strg_t *s2)
   4781 {
   4782 
   4783 	if (s1->st_char != s2->st_char) {
   4784 		/* cannot concatenate wide and regular string literals */
   4785 		error(292);
   4786 		return s1;
   4787 	}
   4788 
   4789 	size_t len1 = s1->st_len;
   4790 	size_t len2 = s2->st_len;
   4791 	size_t chsize = s1->st_char ? sizeof(char) : sizeof(wchar_t);
   4792 	size_t size1 = len1 * chsize;
   4793 	size_t size2 = (len2 + 1) * chsize;
   4794 	s1->st_mem = xrealloc(s1->st_mem, size1 + size2);
   4795 	memcpy((char *)s1->st_mem + size1, s2->st_mem, size2);
   4796 	free(s2->st_mem);
   4797 
   4798 	s1->st_len = len1 + len2;
   4799 	free(s2);
   4800 
   4801 	return s1;
   4802 }
   4803 
   4804 
   4805 typedef struct stmt_expr {
   4806 	memory_pool se_mem;
   4807 	sym_t *se_sym;
   4808 	struct stmt_expr *se_enclosing;
   4809 } stmt_expr;
   4810 
   4811 static stmt_expr *stmt_exprs;
   4812 
   4813 void
   4814 begin_statement_expr(void)
   4815 {
   4816 	debug_enter();
   4817 
   4818 	stmt_expr *se = xmalloc(sizeof(*se));
   4819 	se->se_mem = expr_save_memory();
   4820 	se->se_sym = NULL;
   4821 	se->se_enclosing = stmt_exprs;
   4822 	stmt_exprs = se;
   4823 }
   4824 
   4825 void
   4826 do_statement_expr(tnode_t *tn)
   4827 {
   4828 	block_level--;
   4829 	mem_block_level--;
   4830 	stmt_exprs->se_sym = tn != NULL
   4831 	    ? mktempsym(block_dup_type(tn->tn_type))
   4832 	    : NULL;		/* after a syntax error */
   4833 	mem_block_level++;
   4834 	block_level++;
   4835 	/* '({ ... })' is a GCC extension */
   4836 	gnuism(320);
   4837 }
   4838 
   4839 tnode_t *
   4840 end_statement_expr(void)
   4841 {
   4842 	tnode_t *tn;
   4843 
   4844 	stmt_expr *se = stmt_exprs;
   4845 	if (se->se_sym == NULL) {
   4846 		tn = NULL;	/* after a syntax error */
   4847 		goto end;
   4848 	}
   4849 
   4850 	tn = build_name(se->se_sym, false);
   4851 	(void)expr_save_memory();	/* leak */
   4852 	expr_restore_memory(se->se_mem);
   4853 	stmt_exprs = se->se_enclosing;
   4854 	free(se);
   4855 
   4856 end:
   4857 	debug_leave();
   4858 	return tn;
   4859 }
   4860 
   4861 bool
   4862 in_statement_expr(void)
   4863 {
   4864 	return stmt_exprs != NULL;
   4865 }
   4866