preproc_init: Just clean include path
[nasm.git] / asm / eval.c
blob7c5190461147980a6d46f7e0a1045ef95e440adf
1 /* ----------------------------------------------------------------------- *
3 * Copyright 1996-2018 The NASM Authors - All Rights Reserved
4 * See the file AUTHORS included with the NASM distribution for
5 * the specific copyright holders.
7 * Redistribution and use in source and binary forms, with or without
8 * modification, are permitted provided that the following
9 * conditions are met:
11 * * Redistributions of source code must retain the above copyright
12 * notice, this list of conditions and the following disclaimer.
13 * * Redistributions in binary form must reproduce the above
14 * copyright notice, this list of conditions and the following
15 * disclaimer in the documentation and/or other materials provided
16 * with the distribution.
18 * THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND
19 * CONTRIBUTORS "AS IS" AND ANY EXPRESS OR IMPLIED WARRANTIES,
20 * INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES OF
21 * MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE
22 * DISCLAIMED. IN NO EVENT SHALL THE COPYRIGHT OWNER OR
23 * CONTRIBUTORS BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL,
24 * SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT
25 * NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES;
26 * LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
27 * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
28 * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR
29 * OTHERWISE) ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE,
30 * EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
32 * ----------------------------------------------------------------------- */
35 * eval.c expression evaluator for the Netwide Assembler
38 #include "compiler.h"
40 #include <stdio.h>
41 #include <stdlib.h>
42 #include <stddef.h>
43 #include <string.h>
44 #include <ctype.h>
46 #include "nasm.h"
47 #include "nasmlib.h"
48 #include "ilog2.h"
49 #include "error.h"
50 #include "eval.h"
51 #include "labels.h"
52 #include "float.h"
53 #include "assemble.h"
55 #define TEMPEXPRS_DELTA 128
56 #define TEMPEXPR_DELTA 8
58 static scanner scan; /* Address of scanner routine */
60 static expr **tempexprs = NULL;
61 static int ntempexprs;
62 static int tempexprs_size = 0;
64 static expr *tempexpr;
65 static int ntempexpr;
66 static int tempexpr_size;
68 static struct tokenval *tokval; /* The current token */
69 static int i; /* The t_type of tokval */
71 static void *scpriv;
72 static int *opflags;
74 static struct eval_hints *hint;
75 static int64_t deadman;
79 * Unimportant cleanup is done to avoid confusing people who are trying
80 * to debug real memory leaks
82 void eval_cleanup(void)
84 while (ntempexprs)
85 nasm_free(tempexprs[--ntempexprs]);
86 nasm_free(tempexprs);
90 * Construct a temporary expression.
92 static void begintemp(void)
94 tempexpr = NULL;
95 tempexpr_size = ntempexpr = 0;
98 static void addtotemp(int32_t type, int64_t value)
100 while (ntempexpr >= tempexpr_size) {
101 tempexpr_size += TEMPEXPR_DELTA;
102 tempexpr = nasm_realloc(tempexpr,
103 tempexpr_size * sizeof(*tempexpr));
105 tempexpr[ntempexpr].type = type;
106 tempexpr[ntempexpr++].value = value;
109 static expr *finishtemp(void)
111 addtotemp(0L, 0L); /* terminate */
112 while (ntempexprs >= tempexprs_size) {
113 tempexprs_size += TEMPEXPRS_DELTA;
114 tempexprs = nasm_realloc(tempexprs,
115 tempexprs_size * sizeof(*tempexprs));
117 return tempexprs[ntempexprs++] = tempexpr;
121 * Add two vector datatypes. We have some bizarre behaviour on far-
122 * absolute segment types: we preserve them during addition _only_
123 * if one of the segments is a truly pure scalar.
125 static expr *add_vectors(expr * p, expr * q)
127 int preserve;
129 preserve = is_really_simple(p) || is_really_simple(q);
131 begintemp();
133 while (p->type && q->type &&
134 p->type < EXPR_SEGBASE + SEG_ABS &&
135 q->type < EXPR_SEGBASE + SEG_ABS) {
136 int lasttype;
138 if (p->type > q->type) {
139 addtotemp(q->type, q->value);
140 lasttype = q++->type;
141 } else if (p->type < q->type) {
142 addtotemp(p->type, p->value);
143 lasttype = p++->type;
144 } else { /* *p and *q have same type */
145 int64_t sum = p->value + q->value;
146 if (sum) {
147 addtotemp(p->type, sum);
148 if (hint)
149 hint->type = EAH_SUMMED;
151 lasttype = p->type;
152 p++, q++;
154 if (lasttype == EXPR_UNKNOWN) {
155 return finishtemp();
158 while (p->type && (preserve || p->type < EXPR_SEGBASE + SEG_ABS)) {
159 addtotemp(p->type, p->value);
160 p++;
162 while (q->type && (preserve || q->type < EXPR_SEGBASE + SEG_ABS)) {
163 addtotemp(q->type, q->value);
164 q++;
167 return finishtemp();
171 * Multiply a vector by a scalar. Strip far-absolute segment part
172 * if present.
174 * Explicit treatment of UNKNOWN is not required in this routine,
175 * since it will silently do the Right Thing anyway.
177 * If `affect_hints' is set, we also change the hint type to
178 * NOTBASE if a MAKEBASE hint points at a register being
179 * multiplied. This allows [eax*1+ebx] to hint EBX rather than EAX
180 * as the base register.
182 static expr *scalar_mult(expr * vect, int64_t scalar, int affect_hints)
184 expr *p = vect;
186 while (p->type && p->type < EXPR_SEGBASE + SEG_ABS) {
187 p->value = scalar * (p->value);
188 if (hint && hint->type == EAH_MAKEBASE &&
189 p->type == hint->base && affect_hints)
190 hint->type = EAH_NOTBASE;
191 p++;
193 p->type = 0;
195 return vect;
198 static expr *scalarvect(int64_t scalar)
200 begintemp();
201 addtotemp(EXPR_SIMPLE, scalar);
202 return finishtemp();
205 static expr *unknown_expr(void)
207 begintemp();
208 addtotemp(EXPR_UNKNOWN, 1L);
209 return finishtemp();
213 * The SEG operator: calculate the segment part of a relocatable
214 * value. Return NULL, as usual, if an error occurs. Report the
215 * error too.
217 static expr *segment_part(expr * e)
219 int32_t seg;
221 if (is_unknown(e))
222 return unknown_expr();
224 if (!is_reloc(e)) {
225 nasm_error(ERR_NONFATAL, "cannot apply SEG to a non-relocatable value");
226 return NULL;
229 seg = reloc_seg(e);
230 if (seg == NO_SEG) {
231 nasm_error(ERR_NONFATAL, "cannot apply SEG to a non-relocatable value");
232 return NULL;
233 } else if (seg & SEG_ABS) {
234 return scalarvect(seg & ~SEG_ABS);
235 } else if (seg & 1) {
236 nasm_error(ERR_NONFATAL, "SEG applied to something which"
237 " is already a segment base");
238 return NULL;
239 } else {
240 int32_t base = ofmt->segbase(seg + 1);
242 begintemp();
243 addtotemp((base == NO_SEG ? EXPR_UNKNOWN : EXPR_SEGBASE + base),
244 1L);
245 return finishtemp();
250 * Recursive-descent parser. Called with a single boolean operand,
251 * which is true if the evaluation is critical (i.e. unresolved
252 * symbols are an error condition). Must update the global `i' to
253 * reflect the token after the parsed string. May return NULL.
255 * evaluate() should report its own errors: on return it is assumed
256 * that if NULL has been returned, the error has already been
257 * reported.
261 * Grammar parsed is:
263 * expr : bexpr [ WRT expr6 ]
264 * bexpr : rexp0 or expr0 depending on relative-mode setting
265 * rexp0 : rexp1 [ {||} rexp1...]
266 * rexp1 : rexp2 [ {^^} rexp2...]
267 * rexp2 : rexp3 [ {&&} rexp3...]
268 * rexp3 : expr0 [ {=,==,<>,!=,<,>,<=,>=} expr0 ]
269 * expr0 : expr1 [ {|} expr1...]
270 * expr1 : expr2 [ {^} expr2...]
271 * expr2 : expr3 [ {&} expr3...]
272 * expr3 : expr4 [ {<<,>>} expr4...]
273 * expr4 : expr5 [ {+,-} expr5...]
274 * expr5 : expr6 [ {*,/,%,//,%%} expr6...]
275 * expr6 : { ~,+,-,IFUNC,SEG } expr6
276 * | (bexpr)
277 * | symbol
278 * | $
279 * | number
282 static expr *rexp0(int), *rexp1(int), *rexp2(int), *rexp3(int);
284 static expr *expr0(int), *expr1(int), *expr2(int), *expr3(int);
285 static expr *expr4(int), *expr5(int), *expr6(int);
287 static expr *(*bexpr) (int);
289 static expr *rexp0(int critical)
291 expr *e, *f;
293 e = rexp1(critical);
294 if (!e)
295 return NULL;
297 while (i == TOKEN_DBL_OR) {
298 i = scan(scpriv, tokval);
299 f = rexp1(critical);
300 if (!f)
301 return NULL;
302 if (!(is_simple(e) || is_just_unknown(e)) ||
303 !(is_simple(f) || is_just_unknown(f))) {
304 nasm_error(ERR_NONFATAL, "`|' operator may only be applied to"
305 " scalar values");
308 if (is_just_unknown(e) || is_just_unknown(f))
309 e = unknown_expr();
310 else
311 e = scalarvect((int64_t)(reloc_value(e) || reloc_value(f)));
313 return e;
316 static expr *rexp1(int critical)
318 expr *e, *f;
320 e = rexp2(critical);
321 if (!e)
322 return NULL;
324 while (i == TOKEN_DBL_XOR) {
325 i = scan(scpriv, tokval);
326 f = rexp2(critical);
327 if (!f)
328 return NULL;
329 if (!(is_simple(e) || is_just_unknown(e)) ||
330 !(is_simple(f) || is_just_unknown(f))) {
331 nasm_error(ERR_NONFATAL, "`^' operator may only be applied to"
332 " scalar values");
335 if (is_just_unknown(e) || is_just_unknown(f))
336 e = unknown_expr();
337 else
338 e = scalarvect((int64_t)(!reloc_value(e) ^ !reloc_value(f)));
340 return e;
343 static expr *rexp2(int critical)
345 expr *e, *f;
347 e = rexp3(critical);
348 if (!e)
349 return NULL;
350 while (i == TOKEN_DBL_AND) {
351 i = scan(scpriv, tokval);
352 f = rexp3(critical);
353 if (!f)
354 return NULL;
355 if (!(is_simple(e) || is_just_unknown(e)) ||
356 !(is_simple(f) || is_just_unknown(f))) {
357 nasm_error(ERR_NONFATAL, "`&' operator may only be applied to"
358 " scalar values");
360 if (is_just_unknown(e) || is_just_unknown(f))
361 e = unknown_expr();
362 else
363 e = scalarvect((int64_t)(reloc_value(e) && reloc_value(f)));
365 return e;
368 static expr *rexp3(int critical)
370 expr *e, *f;
371 int64_t v;
373 e = expr0(critical);
374 if (!e)
375 return NULL;
377 while (i == TOKEN_EQ || i == TOKEN_LT || i == TOKEN_GT ||
378 i == TOKEN_NE || i == TOKEN_LE || i == TOKEN_GE) {
379 int j = i;
380 i = scan(scpriv, tokval);
381 f = expr0(critical);
382 if (!f)
383 return NULL;
385 e = add_vectors(e, scalar_mult(f, -1L, false));
387 switch (j) {
388 case TOKEN_EQ:
389 case TOKEN_NE:
390 if (is_unknown(e))
391 v = -1; /* means unknown */
392 else if (!is_really_simple(e) || reloc_value(e) != 0)
393 v = (j == TOKEN_NE); /* unequal, so return true if NE */
394 else
395 v = (j == TOKEN_EQ); /* equal, so return true if EQ */
396 break;
397 default:
398 if (is_unknown(e))
399 v = -1; /* means unknown */
400 else if (!is_really_simple(e)) {
401 nasm_error(ERR_NONFATAL,
402 "`%s': operands differ by a non-scalar",
403 (j == TOKEN_LE ? "<=" : j == TOKEN_LT ? "<" : j ==
404 TOKEN_GE ? ">=" : ">"));
405 v = 0; /* must set it to _something_ */
406 } else {
407 int64_t vv = reloc_value(e);
408 if (vv == 0)
409 v = (j == TOKEN_LE || j == TOKEN_GE);
410 else if (vv > 0)
411 v = (j == TOKEN_GE || j == TOKEN_GT);
412 else /* vv < 0 */
413 v = (j == TOKEN_LE || j == TOKEN_LT);
415 break;
418 if (v == -1)
419 e = unknown_expr();
420 else
421 e = scalarvect(v);
423 return e;
426 static expr *expr0(int critical)
428 expr *e, *f;
430 e = expr1(critical);
431 if (!e)
432 return NULL;
434 while (i == '|') {
435 i = scan(scpriv, tokval);
436 f = expr1(critical);
437 if (!f)
438 return NULL;
439 if (!(is_simple(e) || is_just_unknown(e)) ||
440 !(is_simple(f) || is_just_unknown(f))) {
441 nasm_error(ERR_NONFATAL, "`|' operator may only be applied to"
442 " scalar values");
444 if (is_just_unknown(e) || is_just_unknown(f))
445 e = unknown_expr();
446 else
447 e = scalarvect(reloc_value(e) | reloc_value(f));
449 return e;
452 static expr *expr1(int critical)
454 expr *e, *f;
456 e = expr2(critical);
457 if (!e)
458 return NULL;
460 while (i == '^') {
461 i = scan(scpriv, tokval);
462 f = expr2(critical);
463 if (!f)
464 return NULL;
465 if (!(is_simple(e) || is_just_unknown(e)) ||
466 !(is_simple(f) || is_just_unknown(f))) {
467 nasm_error(ERR_NONFATAL, "`^' operator may only be applied to"
468 " scalar values");
470 if (is_just_unknown(e) || is_just_unknown(f))
471 e = unknown_expr();
472 else
473 e = scalarvect(reloc_value(e) ^ reloc_value(f));
475 return e;
478 static expr *expr2(int critical)
480 expr *e, *f;
482 e = expr3(critical);
483 if (!e)
484 return NULL;
486 while (i == '&') {
487 i = scan(scpriv, tokval);
488 f = expr3(critical);
489 if (!f)
490 return NULL;
491 if (!(is_simple(e) || is_just_unknown(e)) ||
492 !(is_simple(f) || is_just_unknown(f))) {
493 nasm_error(ERR_NONFATAL, "`&' operator may only be applied to"
494 " scalar values");
496 if (is_just_unknown(e) || is_just_unknown(f))
497 e = unknown_expr();
498 else
499 e = scalarvect(reloc_value(e) & reloc_value(f));
501 return e;
504 static expr *expr3(int critical)
506 expr *e, *f;
508 e = expr4(critical);
509 if (!e)
510 return NULL;
512 while (i == TOKEN_SHL || i == TOKEN_SHR || i == TOKEN_SAR) {
513 int j = i;
514 i = scan(scpriv, tokval);
515 f = expr4(critical);
516 if (!f)
517 return NULL;
518 if (!(is_simple(e) || is_just_unknown(e)) ||
519 !(is_simple(f) || is_just_unknown(f))) {
520 nasm_error(ERR_NONFATAL, "shift operator may only be applied to"
521 " scalar values");
522 } else if (is_just_unknown(e) || is_just_unknown(f)) {
523 e = unknown_expr();
524 } else {
525 switch (j) {
526 case TOKEN_SHL:
527 e = scalarvect(reloc_value(e) << reloc_value(f));
528 break;
529 case TOKEN_SHR:
530 e = scalarvect(((uint64_t)reloc_value(e)) >>
531 reloc_value(f));
532 break;
533 case TOKEN_SAR:
534 e = scalarvect(((int64_t)reloc_value(e)) >>
535 reloc_value(f));
536 break;
540 return e;
543 static expr *expr4(int critical)
545 expr *e, *f;
547 e = expr5(critical);
548 if (!e)
549 return NULL;
550 while (i == '+' || i == '-') {
551 int j = i;
552 i = scan(scpriv, tokval);
553 f = expr5(critical);
554 if (!f)
555 return NULL;
556 switch (j) {
557 case '+':
558 e = add_vectors(e, f);
559 break;
560 case '-':
561 e = add_vectors(e, scalar_mult(f, -1L, false));
562 break;
565 return e;
568 static expr *expr5(int critical)
570 expr *e, *f;
572 e = expr6(critical);
573 if (!e)
574 return NULL;
575 while (i == '*' || i == '/' || i == '%' ||
576 i == TOKEN_SDIV || i == TOKEN_SMOD) {
577 int j = i;
578 i = scan(scpriv, tokval);
579 f = expr6(critical);
580 if (!f)
581 return NULL;
582 if (j != '*' && (!(is_simple(e) || is_just_unknown(e)) ||
583 !(is_simple(f) || is_just_unknown(f)))) {
584 nasm_error(ERR_NONFATAL, "division operator may only be applied to"
585 " scalar values");
586 return NULL;
588 if (j != '*' && !is_just_unknown(f) && reloc_value(f) == 0) {
589 nasm_error(ERR_NONFATAL, "division by zero");
590 return NULL;
592 switch (j) {
593 case '*':
594 if (is_simple(e))
595 e = scalar_mult(f, reloc_value(e), true);
596 else if (is_simple(f))
597 e = scalar_mult(e, reloc_value(f), true);
598 else if (is_just_unknown(e) && is_just_unknown(f))
599 e = unknown_expr();
600 else {
601 nasm_error(ERR_NONFATAL, "unable to multiply two "
602 "non-scalar objects");
603 return NULL;
605 break;
606 case '/':
607 if (is_just_unknown(e) || is_just_unknown(f))
608 e = unknown_expr();
609 else
610 e = scalarvect(((uint64_t)reloc_value(e)) /
611 ((uint64_t)reloc_value(f)));
612 break;
613 case '%':
614 if (is_just_unknown(e) || is_just_unknown(f))
615 e = unknown_expr();
616 else
617 e = scalarvect(((uint64_t)reloc_value(e)) %
618 ((uint64_t)reloc_value(f)));
619 break;
620 case TOKEN_SDIV:
621 if (is_just_unknown(e) || is_just_unknown(f))
622 e = unknown_expr();
623 else
624 e = scalarvect(((int64_t)reloc_value(e)) /
625 ((int64_t)reloc_value(f)));
626 break;
627 case TOKEN_SMOD:
628 if (is_just_unknown(e) || is_just_unknown(f))
629 e = unknown_expr();
630 else
631 e = scalarvect(((int64_t)reloc_value(e)) %
632 ((int64_t)reloc_value(f)));
633 break;
636 return e;
639 static expr *eval_floatize(enum floatize type)
641 uint8_t result[16], *p; /* Up to 128 bits */
642 static const struct {
643 int bytes, start, len;
644 } formats[] = {
645 { 1, 0, 1 }, /* FLOAT_8 */
646 { 2, 0, 2 }, /* FLOAT_16 */
647 { 4, 0, 4 }, /* FLOAT_32 */
648 { 8, 0, 8 }, /* FLOAT_64 */
649 { 10, 0, 8 }, /* FLOAT_80M */
650 { 10, 8, 2 }, /* FLOAT_80E */
651 { 16, 0, 8 }, /* FLOAT_128L */
652 { 16, 8, 8 }, /* FLOAT_128H */
654 int sign = 1;
655 int64_t val;
656 int j;
658 i = scan(scpriv, tokval);
659 if (i != '(') {
660 nasm_error(ERR_NONFATAL, "expecting `('");
661 return NULL;
663 i = scan(scpriv, tokval);
664 if (i == '-' || i == '+') {
665 sign = (i == '-') ? -1 : 1;
666 i = scan(scpriv, tokval);
668 if (i != TOKEN_FLOAT) {
669 nasm_error(ERR_NONFATAL, "expecting floating-point number");
670 return NULL;
672 if (!float_const(tokval->t_charptr, sign, result, formats[type].bytes))
673 return NULL;
674 i = scan(scpriv, tokval);
675 if (i != ')') {
676 nasm_error(ERR_NONFATAL, "expecting `)'");
677 return NULL;
680 p = result+formats[type].start+formats[type].len;
681 val = 0;
682 for (j = formats[type].len; j; j--) {
683 p--;
684 val = (val << 8) + *p;
687 begintemp();
688 addtotemp(EXPR_SIMPLE, val);
690 i = scan(scpriv, tokval);
691 return finishtemp();
694 static expr *eval_strfunc(enum strfunc type)
696 char *string;
697 size_t string_len;
698 int64_t val;
699 bool parens, rn_warn;
701 parens = false;
702 i = scan(scpriv, tokval);
703 if (i == '(') {
704 parens = true;
705 i = scan(scpriv, tokval);
707 if (i != TOKEN_STR) {
708 nasm_error(ERR_NONFATAL, "expecting string");
709 return NULL;
711 string_len = string_transform(tokval->t_charptr, tokval->t_inttwo,
712 &string, type);
713 if (string_len == (size_t)-1) {
714 nasm_error(ERR_NONFATAL, "invalid string for transform");
715 return NULL;
718 val = readstrnum(string, string_len, &rn_warn);
719 if (parens) {
720 i = scan(scpriv, tokval);
721 if (i != ')') {
722 nasm_error(ERR_NONFATAL, "expecting `)'");
723 return NULL;
727 if (rn_warn)
728 nasm_error(ERR_WARNING|ERR_PASS1, "character constant too long");
730 begintemp();
731 addtotemp(EXPR_SIMPLE, val);
733 i = scan(scpriv, tokval);
734 return finishtemp();
737 static int64_t eval_ifunc(int64_t val, enum ifunc func)
739 int errtype;
740 uint64_t uval = (uint64_t)val;
741 int64_t rv;
743 switch (func) {
744 case IFUNC_ILOG2E:
745 case IFUNC_ILOG2W:
746 errtype = (func == IFUNC_ILOG2E) ? ERR_NONFATAL : ERR_WARNING;
748 if (!is_power2(uval))
749 nasm_error(errtype, "ilog2 argument is not a power of two");
750 /* fall through */
751 case IFUNC_ILOG2F:
752 rv = ilog2_64(uval);
753 break;
755 case IFUNC_ILOG2C:
756 rv = (uval < 2) ? 0 : ilog2_64(uval-1) + 1;
757 break;
759 default:
760 nasm_panic("invalid IFUNC token %d", func);
761 rv = 0;
762 break;
765 return rv;
768 static expr *expr6(int critical)
770 int32_t type;
771 expr *e;
772 int32_t label_seg;
773 int64_t label_ofs;
774 int64_t tmpval;
775 bool rn_warn;
776 const char *scope;
778 if (++deadman > nasm_limit[LIMIT_EVAL]) {
779 nasm_error(ERR_NONFATAL, "expression too long");
780 return NULL;
783 switch (i) {
784 case '-':
785 i = scan(scpriv, tokval);
786 e = expr6(critical);
787 if (!e)
788 return NULL;
789 return scalar_mult(e, -1L, false);
791 case '+':
792 i = scan(scpriv, tokval);
793 return expr6(critical);
795 case '~':
796 i = scan(scpriv, tokval);
797 e = expr6(critical);
798 if (!e)
799 return NULL;
800 if (is_just_unknown(e))
801 return unknown_expr();
802 else if (!is_simple(e)) {
803 nasm_error(ERR_NONFATAL, "`~' operator may only be applied to"
804 " scalar values");
805 return NULL;
807 return scalarvect(~reloc_value(e));
809 case '!':
810 i = scan(scpriv, tokval);
811 e = expr6(critical);
812 if (!e)
813 return NULL;
814 if (is_just_unknown(e))
815 return unknown_expr();
816 else if (!is_simple(e)) {
817 nasm_error(ERR_NONFATAL, "`!' operator may only be applied to"
818 " scalar values");
819 return NULL;
821 return scalarvect(!reloc_value(e));
823 case TOKEN_IFUNC:
825 enum ifunc func = tokval->t_integer;
826 i = scan(scpriv, tokval);
827 e = expr6(critical);
828 if (!e)
829 return NULL;
830 if (is_just_unknown(e))
831 return unknown_expr();
832 else if (!is_simple(e)) {
833 nasm_error(ERR_NONFATAL, "function may only be applied to"
834 " scalar values");
835 return NULL;
837 return scalarvect(eval_ifunc(reloc_value(e), func));
840 case TOKEN_SEG:
841 i = scan(scpriv, tokval);
842 e = expr6(critical);
843 if (!e)
844 return NULL;
845 e = segment_part(e);
846 if (!e)
847 return NULL;
848 if (is_unknown(e) && critical) {
849 nasm_error(ERR_NONFATAL, "unable to determine segment base");
850 return NULL;
852 return e;
854 case TOKEN_FLOATIZE:
855 return eval_floatize(tokval->t_integer);
857 case TOKEN_STRFUNC:
858 return eval_strfunc(tokval->t_integer);
860 case '(':
861 i = scan(scpriv, tokval);
862 e = bexpr(critical);
863 if (!e)
864 return NULL;
865 if (i != ')') {
866 nasm_error(ERR_NONFATAL, "expecting `)'");
867 return NULL;
869 i = scan(scpriv, tokval);
870 return e;
872 case TOKEN_NUM:
873 case TOKEN_STR:
874 case TOKEN_REG:
875 case TOKEN_ID:
876 case TOKEN_INSN: /* Opcodes that occur here are really labels */
877 case TOKEN_HERE:
878 case TOKEN_BASE:
879 case TOKEN_DECORATOR:
880 begintemp();
881 switch (i) {
882 case TOKEN_NUM:
883 addtotemp(EXPR_SIMPLE, tokval->t_integer);
884 break;
885 case TOKEN_STR:
886 tmpval = readstrnum(tokval->t_charptr, tokval->t_inttwo, &rn_warn);
887 if (rn_warn)
888 nasm_error(ERR_WARNING|ERR_PASS1, "character constant too long");
889 addtotemp(EXPR_SIMPLE, tmpval);
890 break;
891 case TOKEN_REG:
892 addtotemp(tokval->t_integer, 1L);
893 if (hint && hint->type == EAH_NOHINT)
894 hint->base = tokval->t_integer, hint->type = EAH_MAKEBASE;
895 break;
896 case TOKEN_ID:
897 case TOKEN_INSN:
898 case TOKEN_HERE:
899 case TOKEN_BASE:
901 * If !location.known, this indicates that no
902 * symbol, Here or Base references are valid because we
903 * are in preprocess-only mode.
905 if (!location.known) {
906 nasm_error(ERR_NONFATAL,
907 "%s not supported in preprocess-only mode",
908 (i == TOKEN_HERE ? "`$'" :
909 i == TOKEN_BASE ? "`$$'" :
910 "symbol references"));
911 addtotemp(EXPR_UNKNOWN, 1L);
912 break;
915 type = EXPR_SIMPLE; /* might get overridden by UNKNOWN */
916 if (i == TOKEN_BASE) {
917 label_seg = in_absolute ? absolute.segment : location.segment;
918 label_ofs = 0;
919 } else if (i == TOKEN_HERE) {
920 label_seg = in_absolute ? absolute.segment : location.segment;
921 label_ofs = in_absolute ? absolute.offset : location.offset;
922 } else {
923 if (!lookup_label(tokval->t_charptr, &label_seg, &label_ofs)) {
924 scope = local_scope(tokval->t_charptr);
925 if (critical == 2) {
926 nasm_error(ERR_NONFATAL, "symbol `%s%s' undefined",
927 scope,tokval->t_charptr);
928 return NULL;
929 } else if (critical == 1) {
930 nasm_error(ERR_NONFATAL,
931 "symbol `%s%s' not defined before use",
932 scope,tokval->t_charptr);
933 return NULL;
934 } else {
935 if (opflags)
936 *opflags |= OPFLAG_FORWARD;
937 type = EXPR_UNKNOWN;
938 label_seg = NO_SEG;
939 label_ofs = 1;
942 if (opflags && is_extern(tokval->t_charptr))
943 *opflags |= OPFLAG_EXTERN;
945 addtotemp(type, label_ofs);
946 if (label_seg != NO_SEG)
947 addtotemp(EXPR_SEGBASE + label_seg, 1L);
948 break;
949 case TOKEN_DECORATOR:
950 addtotemp(EXPR_RDSAE, tokval->t_integer);
951 break;
953 i = scan(scpriv, tokval);
954 return finishtemp();
956 default:
957 nasm_error(ERR_NONFATAL, "expression syntax error");
958 return NULL;
962 expr *evaluate(scanner sc, void *scprivate, struct tokenval *tv,
963 int *fwref, int critical, struct eval_hints *hints)
965 expr *e;
966 expr *f = NULL;
968 deadman = 0;
970 hint = hints;
971 if (hint)
972 hint->type = EAH_NOHINT;
974 if (critical & CRITICAL) {
975 critical &= ~CRITICAL;
976 bexpr = rexp0;
977 } else
978 bexpr = expr0;
980 scan = sc;
981 scpriv = scprivate;
982 tokval = tv;
983 opflags = fwref;
985 if (tokval->t_type == TOKEN_INVALID)
986 i = scan(scpriv, tokval);
987 else
988 i = tokval->t_type;
990 while (ntempexprs) /* initialize temporary storage */
991 nasm_free(tempexprs[--ntempexprs]);
993 e = bexpr(critical);
994 if (!e)
995 return NULL;
997 if (i == TOKEN_WRT) {
998 i = scan(scpriv, tokval); /* eat the WRT */
999 f = expr6(critical);
1000 if (!f)
1001 return NULL;
1003 e = scalar_mult(e, 1L, false); /* strip far-absolute segment part */
1004 if (f) {
1005 expr *g;
1006 if (is_just_unknown(f))
1007 g = unknown_expr();
1008 else {
1009 int64_t value;
1010 begintemp();
1011 if (!is_reloc(f)) {
1012 nasm_error(ERR_NONFATAL, "invalid right-hand operand to WRT");
1013 return NULL;
1015 value = reloc_seg(f);
1016 if (value == NO_SEG)
1017 value = reloc_value(f) | SEG_ABS;
1018 else if (!(value & SEG_ABS) && !(value % 2) && critical) {
1019 nasm_error(ERR_NONFATAL, "invalid right-hand operand to WRT");
1020 return NULL;
1022 addtotemp(EXPR_WRT, value);
1023 g = finishtemp();
1025 e = add_vectors(e, g);
1027 return e;