source: trunk/src/binutils/gas/expr.c@ 1569

Last change on this file since 1569 was 610, checked in by bird, 22 years ago

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1/* expr.c -operands, expressions-
2 Copyright 1987, 1990, 1991, 1992, 1993, 1994, 1995, 1996, 1997, 1998,
3 1999, 2000, 2001, 2002
4 Free Software Foundation, Inc.
5
6 This file is part of GAS, the GNU Assembler.
7
8 GAS is free software; you can redistribute it and/or modify
9 it under the terms of the GNU General Public License as published by
10 the Free Software Foundation; either version 2, or (at your option)
11 any later version.
12
13 GAS is distributed in the hope that it will be useful,
14 but WITHOUT ANY WARRANTY; without even the implied warranty of
15 MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
16 GNU General Public License for more details.
17
18 You should have received a copy of the GNU General Public License
19 along with GAS; see the file COPYING. If not, write to the Free
20 Software Foundation, 59 Temple Place - Suite 330, Boston, MA
21 02111-1307, USA. */
22
23/* This is really a branch office of as-read.c. I split it out to clearly
24 distinguish the world of expressions from the world of statements.
25 (It also gives smaller files to re-compile.)
26 Here, "operand"s are of expressions, not instructions. */
27
28#include <string.h>
29#define min(a, b) ((a) < (b) ? (a) : (b))
30
31#include "as.h"
32#include "safe-ctype.h"
33#include "obstack.h"
34
35static void floating_constant PARAMS ((expressionS * expressionP));
36static valueT generic_bignum_to_int32 PARAMS ((void));
37#ifdef BFD64
38static valueT generic_bignum_to_int64 PARAMS ((void));
39#endif
40static void integer_constant PARAMS ((int radix, expressionS * expressionP));
41static void mri_char_constant PARAMS ((expressionS *));
42static void current_location PARAMS ((expressionS *));
43static void clean_up_expression PARAMS ((expressionS * expressionP));
44static segT operand PARAMS ((expressionS *));
45static operatorT operator PARAMS ((int *));
46
47extern const char EXP_CHARS[], FLT_CHARS[];
48
49/* We keep a mapping of expression symbols to file positions, so that
50 we can provide better error messages. */
51
52struct expr_symbol_line {
53 struct expr_symbol_line *next;
54 symbolS *sym;
55 char *file;
56 unsigned int line;
57};
58
59static struct expr_symbol_line *expr_symbol_lines;
60
61
62/* Build a dummy symbol to hold a complex expression. This is how we
63 build expressions up out of other expressions. The symbol is put
64 into the fake section expr_section. */
65
66symbolS *
67make_expr_symbol (expressionP)
68 expressionS *expressionP;
69{
70 expressionS zero;
71 const char *fake;
72 symbolS *symbolP;
73 struct expr_symbol_line *n;
74
75 if (expressionP->X_op == O_symbol
76 && expressionP->X_add_number == 0)
77 return expressionP->X_add_symbol;
78
79 if (expressionP->X_op == O_big)
80 {
81 /* This won't work, because the actual value is stored in
82 generic_floating_point_number or generic_bignum, and we are
83 going to lose it if we haven't already. */
84 if (expressionP->X_add_number > 0)
85 as_bad (_("bignum invalid"));
86 else
87 as_bad (_("floating point number invalid"));
88 zero.X_op = O_constant;
89 zero.X_add_number = 0;
90 zero.X_unsigned = 0;
91 clean_up_expression (&zero);
92 expressionP = &zero;
93 }
94
95 fake = FAKE_LABEL_NAME;
96
97 /* Putting constant symbols in absolute_section rather than
98 expr_section is convenient for the old a.out code, for which
99 S_GET_SEGMENT does not always retrieve the value put in by
100 S_SET_SEGMENT. */
101 symbolP = symbol_create (fake,
102 (expressionP->X_op == O_constant
103 ? absolute_section
104 : expr_section),
105 0, &zero_address_frag);
106 symbol_set_value_expression (symbolP, expressionP);
107
108 if (expressionP->X_op == O_constant)
109 resolve_symbol_value (symbolP);
110
111 n = (struct expr_symbol_line *) xmalloc (sizeof *n);
112 n->sym = symbolP;
113 as_where (&n->file, &n->line);
114 n->next = expr_symbol_lines;
115 expr_symbol_lines = n;
116
117 return symbolP;
118}
119
120/* Return the file and line number for an expr symbol. Return
121 non-zero if something was found, 0 if no information is known for
122 the symbol. */
123
124int
125expr_symbol_where (sym, pfile, pline)
126 symbolS *sym;
127 char **pfile;
128 unsigned int *pline;
129{
130 register struct expr_symbol_line *l;
131
132 for (l = expr_symbol_lines; l != NULL; l = l->next)
133 {
134 if (l->sym == sym)
135 {
136 *pfile = l->file;
137 *pline = l->line;
138 return 1;
139 }
140 }
141
142 return 0;
143}
144
145
146/* Utilities for building expressions.
147 Since complex expressions are recorded as symbols for use in other
148 expressions these return a symbolS * and not an expressionS *.
149 These explicitly do not take an "add_number" argument. */
150/* ??? For completeness' sake one might want expr_build_symbol.
151 It would just return its argument. */
152
153/* Build an expression for an unsigned constant.
154 The corresponding one for signed constants is missing because
155 there's currently no need for it. One could add an unsigned_p flag
156 but that seems more clumsy. */
157
158symbolS *
159expr_build_uconstant (value)
160 offsetT value;
161{
162 expressionS e;
163
164 e.X_op = O_constant;
165 e.X_add_number = value;
166 e.X_unsigned = 1;
167 return make_expr_symbol (&e);
168}
169
170/* Build an expression for OP s1. */
171
172symbolS *
173expr_build_unary (op, s1)
174 operatorT op;
175 symbolS *s1;
176{
177 expressionS e;
178
179 e.X_op = op;
180 e.X_add_symbol = s1;
181 e.X_add_number = 0;
182 return make_expr_symbol (&e);
183}
184
185/* Build an expression for s1 OP s2. */
186
187symbolS *
188expr_build_binary (op, s1, s2)
189 operatorT op;
190 symbolS *s1;
191 symbolS *s2;
192{
193 expressionS e;
194
195 e.X_op = op;
196 e.X_add_symbol = s1;
197 e.X_op_symbol = s2;
198 e.X_add_number = 0;
199 return make_expr_symbol (&e);
200}
201
202/* Build an expression for the current location ('.'). */
203
204symbolS *
205expr_build_dot ()
206{
207 expressionS e;
208
209 current_location (&e);
210 return make_expr_symbol (&e);
211}
212
213
214/* Build any floating-point literal here.
215 Also build any bignum literal here. */
216
217/* Seems atof_machine can backscan through generic_bignum and hit whatever
218 happens to be loaded before it in memory. And its way too complicated
219 for me to fix right. Thus a hack. JF: Just make generic_bignum bigger,
220 and never write into the early words, thus they'll always be zero.
221 I hate Dean's floating-point code. Bleh. */
222LITTLENUM_TYPE generic_bignum[SIZE_OF_LARGE_NUMBER + 6];
223
224FLONUM_TYPE generic_floating_point_number = {
225 &generic_bignum[6], /* low. (JF: Was 0) */
226 &generic_bignum[SIZE_OF_LARGE_NUMBER + 6 - 1], /* high. JF: (added +6) */
227 0, /* leader. */
228 0, /* exponent. */
229 0 /* sign. */
230};
231
232/* If nonzero, we've been asked to assemble nan, +inf or -inf. */
233int generic_floating_point_magic;
234
235
236static void
237floating_constant (expressionP)
238 expressionS *expressionP;
239{
240 /* input_line_pointer -> floating-point constant. */
241 int error_code;
242
243 error_code = atof_generic (&input_line_pointer, ".", EXP_CHARS,
244 &generic_floating_point_number);
245
246 if (error_code)
247 {
248 if (error_code == ERROR_EXPONENT_OVERFLOW)
249 {
250 as_bad (_("bad floating-point constant: exponent overflow"));
251 }
252 else
253 {
254 as_bad (_("bad floating-point constant: unknown error code=%d"),
255 error_code);
256 }
257 }
258 expressionP->X_op = O_big;
259 /* input_line_pointer -> just after constant, which may point to
260 whitespace. */
261 expressionP->X_add_number = -1;
262}
263
264static valueT
265generic_bignum_to_int32 ()
266{
267 valueT number =
268 ((generic_bignum[1] & LITTLENUM_MASK) << LITTLENUM_NUMBER_OF_BITS)
269 | (generic_bignum[0] & LITTLENUM_MASK);
270 number &= 0xffffffff;
271 return number;
272}
273
274#ifdef BFD64
275static valueT
276generic_bignum_to_int64 ()
277{
278 valueT number =
279 ((((((((valueT) generic_bignum[3] & LITTLENUM_MASK)
280 << LITTLENUM_NUMBER_OF_BITS)
281 | ((valueT) generic_bignum[2] & LITTLENUM_MASK))
282 << LITTLENUM_NUMBER_OF_BITS)
283 | ((valueT) generic_bignum[1] & LITTLENUM_MASK))
284 << LITTLENUM_NUMBER_OF_BITS)
285 | ((valueT) generic_bignum[0] & LITTLENUM_MASK));
286 return number;
287}
288#endif
289
290static void
291integer_constant (radix, expressionP)
292 int radix;
293 expressionS *expressionP;
294{
295 char *start; /* Start of number. */
296 char *suffix = NULL;
297 char c;
298 valueT number; /* Offset or (absolute) value. */
299 short int digit; /* Value of next digit in current radix. */
300 short int maxdig = 0; /* Highest permitted digit value. */
301 int too_many_digits = 0; /* If we see >= this number of. */
302 char *name; /* Points to name of symbol. */
303 symbolS *symbolP; /* Points to symbol. */
304
305 int small; /* True if fits in 32 bits. */
306
307 /* May be bignum, or may fit in 32 bits. */
308 /* Most numbers fit into 32 bits, and we want this case to be fast.
309 so we pretend it will fit into 32 bits. If, after making up a 32
310 bit number, we realise that we have scanned more digits than
311 comfortably fit into 32 bits, we re-scan the digits coding them
312 into a bignum. For decimal and octal numbers we are
313 conservative: Some numbers may be assumed bignums when in fact
314 they do fit into 32 bits. Numbers of any radix can have excess
315 leading zeros: We strive to recognise this and cast them back
316 into 32 bits. We must check that the bignum really is more than
317 32 bits, and change it back to a 32-bit number if it fits. The
318 number we are looking for is expected to be positive, but if it
319 fits into 32 bits as an unsigned number, we let it be a 32-bit
320 number. The cavalier approach is for speed in ordinary cases. */
321 /* This has been extended for 64 bits. We blindly assume that if
322 you're compiling in 64-bit mode, the target is a 64-bit machine.
323 This should be cleaned up. */
324
325#ifdef BFD64
326#define valuesize 64
327#else /* includes non-bfd case, mostly */
328#define valuesize 32
329#endif
330
331 if ((NUMBERS_WITH_SUFFIX || flag_m68k_mri) && radix == 0)
332 {
333 int flt = 0;
334
335 /* In MRI mode, the number may have a suffix indicating the
336 radix. For that matter, it might actually be a floating
337 point constant. */
338 for (suffix = input_line_pointer; ISALNUM (*suffix); suffix++)
339 {
340 if (*suffix == 'e' || *suffix == 'E')
341 flt = 1;
342 }
343
344 if (suffix == input_line_pointer)
345 {
346 radix = 10;
347 suffix = NULL;
348 }
349 else
350 {
351 c = *--suffix;
352 c = TOUPPER (c);
353 if (c == 'B')
354 radix = 2;
355 else if (c == 'D')
356 radix = 10;
357 else if (c == 'O' || c == 'Q')
358 radix = 8;
359 else if (c == 'H')
360 radix = 16;
361 else if (suffix[1] == '.' || c == 'E' || flt)
362 {
363 floating_constant (expressionP);
364 return;
365 }
366 else
367 {
368 radix = 10;
369 suffix = NULL;
370 }
371 }
372 }
373
374 switch (radix)
375 {
376 case 2:
377 maxdig = 2;
378 too_many_digits = valuesize + 1;
379 break;
380 case 8:
381 maxdig = radix = 8;
382 too_many_digits = (valuesize + 2) / 3 + 1;
383 break;
384 case 16:
385 maxdig = radix = 16;
386 too_many_digits = (valuesize + 3) / 4 + 1;
387 break;
388 case 10:
389 maxdig = radix = 10;
390 too_many_digits = (valuesize + 11) / 4; /* Very rough. */
391 }
392#undef valuesize
393 start = input_line_pointer;
394 c = *input_line_pointer++;
395 for (number = 0;
396 (digit = hex_value (c)) < maxdig;
397 c = *input_line_pointer++)
398 {
399 number = number * radix + digit;
400 }
401 /* c contains character after number. */
402 /* input_line_pointer->char after c. */
403 small = (input_line_pointer - start - 1) < too_many_digits;
404
405 if (radix == 16 && c == '_')
406 {
407 /* This is literal of the form 0x333_0_12345678_1.
408 This example is equivalent to 0x00000333000000001234567800000001. */
409
410 int num_little_digits = 0;
411 int i;
412 input_line_pointer = start; /* -> 1st digit. */
413
414 know (LITTLENUM_NUMBER_OF_BITS == 16);
415
416 for (c = '_'; c == '_'; num_little_digits += 2)
417 {
418
419 /* Convert one 64-bit word. */
420 int ndigit = 0;
421 number = 0;
422 for (c = *input_line_pointer++;
423 (digit = hex_value (c)) < maxdig;
424 c = *(input_line_pointer++))
425 {
426 number = number * radix + digit;
427 ndigit++;
428 }
429
430 /* Check for 8 digit per word max. */
431 if (ndigit > 8)
432 as_bad (_("a bignum with underscores may not have more than 8 hex digits in any word"));
433
434 /* Add this chunk to the bignum.
435 Shift things down 2 little digits. */
436 know (LITTLENUM_NUMBER_OF_BITS == 16);
437 for (i = min (num_little_digits + 1, SIZE_OF_LARGE_NUMBER - 1);
438 i >= 2;
439 i--)
440 generic_bignum[i] = generic_bignum[i - 2];
441
442 /* Add the new digits as the least significant new ones. */
443 generic_bignum[0] = number & 0xffffffff;
444 generic_bignum[1] = number >> 16;
445 }
446
447 /* Again, c is char after number, input_line_pointer->after c. */
448
449 if (num_little_digits > SIZE_OF_LARGE_NUMBER - 1)
450 num_little_digits = SIZE_OF_LARGE_NUMBER - 1;
451
452 assert (num_little_digits >= 4);
453
454 if (num_little_digits != 8)
455 as_bad (_("a bignum with underscores must have exactly 4 words"));
456
457 /* We might have some leading zeros. These can be trimmed to give
458 us a change to fit this constant into a small number. */
459 while (generic_bignum[num_little_digits - 1] == 0
460 && num_little_digits > 1)
461 num_little_digits--;
462
463 if (num_little_digits <= 2)
464 {
465 /* will fit into 32 bits. */
466 number = generic_bignum_to_int32 ();
467 small = 1;
468 }
469#ifdef BFD64
470 else if (num_little_digits <= 4)
471 {
472 /* Will fit into 64 bits. */
473 number = generic_bignum_to_int64 ();
474 small = 1;
475 }
476#endif
477 else
478 {
479 small = 0;
480
481 /* Number of littlenums in the bignum. */
482 number = num_little_digits;
483 }
484 }
485 else if (!small)
486 {
487 /* We saw a lot of digits. manufacture a bignum the hard way. */
488 LITTLENUM_TYPE *leader; /* -> high order littlenum of the bignum. */
489 LITTLENUM_TYPE *pointer; /* -> littlenum we are frobbing now. */
490 long carry;
491
492 leader = generic_bignum;
493 generic_bignum[0] = 0;
494 generic_bignum[1] = 0;
495 generic_bignum[2] = 0;
496 generic_bignum[3] = 0;
497 input_line_pointer = start; /* -> 1st digit. */
498 c = *input_line_pointer++;
499 for (; (carry = hex_value (c)) < maxdig; c = *input_line_pointer++)
500 {
501 for (pointer = generic_bignum; pointer <= leader; pointer++)
502 {
503 long work;
504
505 work = carry + radix * *pointer;
506 *pointer = work & LITTLENUM_MASK;
507 carry = work >> LITTLENUM_NUMBER_OF_BITS;
508 }
509 if (carry)
510 {
511 if (leader < generic_bignum + SIZE_OF_LARGE_NUMBER - 1)
512 {
513 /* Room to grow a longer bignum. */
514 *++leader = carry;
515 }
516 }
517 }
518 /* Again, c is char after number. */
519 /* input_line_pointer -> after c. */
520 know (LITTLENUM_NUMBER_OF_BITS == 16);
521 if (leader < generic_bignum + 2)
522 {
523 /* Will fit into 32 bits. */
524 number = generic_bignum_to_int32 ();
525 small = 1;
526 }
527#ifdef BFD64
528 else if (leader < generic_bignum + 4)
529 {
530 /* Will fit into 64 bits. */
531 number = generic_bignum_to_int64 ();
532 small = 1;
533 }
534#endif
535 else
536 {
537 /* Number of littlenums in the bignum. */
538 number = leader - generic_bignum + 1;
539 }
540 }
541
542 if ((NUMBERS_WITH_SUFFIX || flag_m68k_mri)
543 && suffix != NULL
544 && input_line_pointer - 1 == suffix)
545 c = *input_line_pointer++;
546
547 if (small)
548 {
549 /* Here with number, in correct radix. c is the next char.
550 Note that unlike un*x, we allow "011f" "0x9f" to both mean
551 the same as the (conventional) "9f".
552 This is simply easier than checking for strict canonical
553 form. Syntax sux! */
554
555 if (LOCAL_LABELS_FB && c == 'b')
556 {
557 /* Backward ref to local label.
558 Because it is backward, expect it to be defined. */
559 /* Construct a local label. */
560 name = fb_label_name ((int) number, 0);
561
562 /* Seen before, or symbol is defined: OK. */
563 symbolP = symbol_find (name);
564 if ((symbolP != NULL) && (S_IS_DEFINED (symbolP)))
565 {
566 /* Local labels are never absolute. Don't waste time
567 checking absoluteness. */
568 know (SEG_NORMAL (S_GET_SEGMENT (symbolP)));
569
570 expressionP->X_op = O_symbol;
571 expressionP->X_add_symbol = symbolP;
572 }
573 else
574 {
575 /* Either not seen or not defined. */
576 /* @@ Should print out the original string instead of
577 the parsed number. */
578 as_bad (_("backward ref to unknown label \"%d:\""),
579 (int) number);
580 expressionP->X_op = O_constant;
581 }
582
583 expressionP->X_add_number = 0;
584 } /* case 'b' */
585 else if (LOCAL_LABELS_FB && c == 'f')
586 {
587 /* Forward reference. Expect symbol to be undefined or
588 unknown. undefined: seen it before. unknown: never seen
589 it before.
590
591 Construct a local label name, then an undefined symbol.
592 Don't create a xseg frag for it: caller may do that.
593 Just return it as never seen before. */
594 name = fb_label_name ((int) number, 1);
595 symbolP = symbol_find_or_make (name);
596 /* We have no need to check symbol properties. */
597#ifndef many_segments
598 /* Since "know" puts its arg into a "string", we
599 can't have newlines in the argument. */
600 know (S_GET_SEGMENT (symbolP) == undefined_section || S_GET_SEGMENT (symbolP) == text_section || S_GET_SEGMENT (symbolP) == data_section);
601#endif
602 expressionP->X_op = O_symbol;
603 expressionP->X_add_symbol = symbolP;
604 expressionP->X_add_number = 0;
605 } /* case 'f' */
606 else if (LOCAL_LABELS_DOLLAR && c == '$')
607 {
608 /* If the dollar label is *currently* defined, then this is just
609 another reference to it. If it is not *currently* defined,
610 then this is a fresh instantiation of that number, so create
611 it. */
612
613 if (dollar_label_defined ((long) number))
614 {
615 name = dollar_label_name ((long) number, 0);
616 symbolP = symbol_find (name);
617 know (symbolP != NULL);
618 }
619 else
620 {
621 name = dollar_label_name ((long) number, 1);
622 symbolP = symbol_find_or_make (name);
623 }
624
625 expressionP->X_op = O_symbol;
626 expressionP->X_add_symbol = symbolP;
627 expressionP->X_add_number = 0;
628 } /* case '$' */
629 else
630 {
631 expressionP->X_op = O_constant;
632#ifdef TARGET_WORD_SIZE
633 /* Sign extend NUMBER. */
634 number |= (-(number >> (TARGET_WORD_SIZE - 1))) << (TARGET_WORD_SIZE - 1);
635#endif
636 expressionP->X_add_number = number;
637 input_line_pointer--; /* Restore following character. */
638 } /* Really just a number. */
639 }
640 else
641 {
642 /* Not a small number. */
643 expressionP->X_op = O_big;
644 expressionP->X_add_number = number; /* Number of littlenums. */
645 input_line_pointer--; /* -> char following number. */
646 }
647}
648
649/* Parse an MRI multi character constant. */
650
651static void
652mri_char_constant (expressionP)
653 expressionS *expressionP;
654{
655 int i;
656
657 if (*input_line_pointer == '\''
658 && input_line_pointer[1] != '\'')
659 {
660 expressionP->X_op = O_constant;
661 expressionP->X_add_number = 0;
662 return;
663 }
664
665 /* In order to get the correct byte ordering, we must build the
666 number in reverse. */
667 for (i = SIZE_OF_LARGE_NUMBER - 1; i >= 0; i--)
668 {
669 int j;
670
671 generic_bignum[i] = 0;
672 for (j = 0; j < CHARS_PER_LITTLENUM; j++)
673 {
674 if (*input_line_pointer == '\'')
675 {
676 if (input_line_pointer[1] != '\'')
677 break;
678 ++input_line_pointer;
679 }
680 generic_bignum[i] <<= 8;
681 generic_bignum[i] += *input_line_pointer;
682 ++input_line_pointer;
683 }
684
685 if (i < SIZE_OF_LARGE_NUMBER - 1)
686 {
687 /* If there is more than one littlenum, left justify the
688 last one to make it match the earlier ones. If there is
689 only one, we can just use the value directly. */
690 for (; j < CHARS_PER_LITTLENUM; j++)
691 generic_bignum[i] <<= 8;
692 }
693
694 if (*input_line_pointer == '\''
695 && input_line_pointer[1] != '\'')
696 break;
697 }
698
699 if (i < 0)
700 {
701 as_bad (_("character constant too large"));
702 i = 0;
703 }
704
705 if (i > 0)
706 {
707 int c;
708 int j;
709
710 c = SIZE_OF_LARGE_NUMBER - i;
711 for (j = 0; j < c; j++)
712 generic_bignum[j] = generic_bignum[i + j];
713 i = c;
714 }
715
716 know (LITTLENUM_NUMBER_OF_BITS == 16);
717 if (i > 2)
718 {
719 expressionP->X_op = O_big;
720 expressionP->X_add_number = i;
721 }
722 else
723 {
724 expressionP->X_op = O_constant;
725 if (i < 2)
726 expressionP->X_add_number = generic_bignum[0] & LITTLENUM_MASK;
727 else
728 expressionP->X_add_number =
729 (((generic_bignum[1] & LITTLENUM_MASK)
730 << LITTLENUM_NUMBER_OF_BITS)
731 | (generic_bignum[0] & LITTLENUM_MASK));
732 }
733
734 /* Skip the final closing quote. */
735 ++input_line_pointer;
736}
737
738/* Return an expression representing the current location. This
739 handles the magic symbol `.'. */
740
741static void
742current_location (expressionp)
743 expressionS *expressionp;
744{
745 if (now_seg == absolute_section)
746 {
747 expressionp->X_op = O_constant;
748 expressionp->X_add_number = abs_section_offset;
749 }
750 else
751 {
752 symbolS *symbolp;
753
754 symbolp = symbol_new (FAKE_LABEL_NAME, now_seg,
755 (valueT) frag_now_fix (),
756 frag_now);
757 expressionp->X_op = O_symbol;
758 expressionp->X_add_symbol = symbolp;
759 expressionp->X_add_number = 0;
760 }
761}
762
763/* In: Input_line_pointer points to 1st char of operand, which may
764 be a space.
765
766 Out: An expressionS.
767 The operand may have been empty: in this case X_op == O_absent.
768 Input_line_pointer->(next non-blank) char after operand. */
769
770static segT
771operand (expressionP)
772 expressionS *expressionP;
773{
774 char c;
775 symbolS *symbolP; /* Points to symbol. */
776 char *name; /* Points to name of symbol. */
777 segT segment;
778
779 /* All integers are regarded as unsigned unless they are negated.
780 This is because the only thing which cares whether a number is
781 unsigned is the code in emit_expr which extends constants into
782 bignums. It should only sign extend negative numbers, so that
783 something like ``.quad 0x80000000'' is not sign extended even
784 though it appears negative if valueT is 32 bits. */
785 expressionP->X_unsigned = 1;
786
787 /* Digits, assume it is a bignum. */
788
789 SKIP_WHITESPACE (); /* Leading whitespace is part of operand. */
790 c = *input_line_pointer++; /* input_line_pointer -> past char in c. */
791
792 if (is_end_of_line[(unsigned char) c])
793 goto eol;
794
795 switch (c)
796 {
797 case '1':
798 case '2':
799 case '3':
800 case '4':
801 case '5':
802 case '6':
803 case '7':
804 case '8':
805 case '9':
806 input_line_pointer--;
807
808 integer_constant ((NUMBERS_WITH_SUFFIX || flag_m68k_mri)
809 ? 0 : 10,
810 expressionP);
811 break;
812
813#ifdef LITERAL_PREFIXDOLLAR_HEX
814 case '$':
815 /* $L is the start of a local label, not a hex constant. */
816 if (* input_line_pointer == 'L')
817 goto isname;
818 integer_constant (16, expressionP);
819 break;
820#endif
821
822#ifdef LITERAL_PREFIXPERCENT_BIN
823 case '%':
824 integer_constant (2, expressionP);
825 break;
826#endif
827
828 case '0':
829 /* Non-decimal radix. */
830
831 if (NUMBERS_WITH_SUFFIX || flag_m68k_mri)
832 {
833 char *s;
834
835 /* Check for a hex or float constant. */
836 for (s = input_line_pointer; hex_p (*s); s++)
837 ;
838 if (*s == 'h' || *s == 'H' || *input_line_pointer == '.')
839 {
840 --input_line_pointer;
841 integer_constant (0, expressionP);
842 break;
843 }
844 }
845 c = *input_line_pointer;
846 switch (c)
847 {
848 case 'o':
849 case 'O':
850 case 'q':
851 case 'Q':
852 case '8':
853 case '9':
854 if (NUMBERS_WITH_SUFFIX || flag_m68k_mri)
855 {
856 integer_constant (0, expressionP);
857 break;
858 }
859 /* Fall through. */
860 default:
861 default_case:
862 if (c && strchr (FLT_CHARS, c))
863 {
864 input_line_pointer++;
865 floating_constant (expressionP);
866 expressionP->X_add_number = - TOLOWER (c);
867 }
868 else
869 {
870 /* The string was only zero. */
871 expressionP->X_op = O_constant;
872 expressionP->X_add_number = 0;
873 }
874
875 break;
876
877 case 'x':
878 case 'X':
879 if (flag_m68k_mri)
880 goto default_case;
881 input_line_pointer++;
882 integer_constant (16, expressionP);
883 break;
884
885 case 'b':
886 if (LOCAL_LABELS_FB && ! (flag_m68k_mri || NUMBERS_WITH_SUFFIX))
887 {
888 /* This code used to check for '+' and '-' here, and, in
889 some conditions, fall through to call
890 integer_constant. However, that didn't make sense,
891 as integer_constant only accepts digits. */
892 /* Some of our code elsewhere does permit digits greater
893 than the expected base; for consistency, do the same
894 here. */
895 if (input_line_pointer[1] < '0'
896 || input_line_pointer[1] > '9')
897 {
898 /* Parse this as a back reference to label 0. */
899 input_line_pointer--;
900 integer_constant (10, expressionP);
901 break;
902 }
903 /* Otherwise, parse this as a binary number. */
904 }
905 /* Fall through. */
906 case 'B':
907 input_line_pointer++;
908 if (flag_m68k_mri || NUMBERS_WITH_SUFFIX)
909 goto default_case;
910 integer_constant (2, expressionP);
911 break;
912
913 case '0':
914 case '1':
915 case '2':
916 case '3':
917 case '4':
918 case '5':
919 case '6':
920 case '7':
921 integer_constant ((flag_m68k_mri || NUMBERS_WITH_SUFFIX)
922 ? 0 : 8,
923 expressionP);
924 break;
925
926 case 'f':
927 if (LOCAL_LABELS_FB)
928 {
929 /* If it says "0f" and it could possibly be a floating point
930 number, make it one. Otherwise, make it a local label,
931 and try to deal with parsing the rest later. */
932 if (!input_line_pointer[1]
933 || (is_end_of_line[0xff & input_line_pointer[1]])
934 || strchr (FLT_CHARS, 'f') == NULL)
935 goto is_0f_label;
936 {
937 char *cp = input_line_pointer + 1;
938 int r = atof_generic (&cp, ".", EXP_CHARS,
939 &generic_floating_point_number);
940 switch (r)
941 {
942 case 0:
943 case ERROR_EXPONENT_OVERFLOW:
944 if (*cp == 'f' || *cp == 'b')
945 /* Looks like a difference expression. */
946 goto is_0f_label;
947 else if (cp == input_line_pointer + 1)
948 /* No characters has been accepted -- looks like
949 end of operand. */
950 goto is_0f_label;
951 else
952 goto is_0f_float;
953 default:
954 as_fatal (_("expr.c(operand): bad atof_generic return val %d"),
955 r);
956 }
957 }
958
959 /* Okay, now we've sorted it out. We resume at one of these
960 two labels, depending on what we've decided we're probably
961 looking at. */
962 is_0f_label:
963 input_line_pointer--;
964 integer_constant (10, expressionP);
965 break;
966
967 is_0f_float:
968 /* Fall through. */
969 ;
970 }
971
972 case 'd':
973 case 'D':
974 if (flag_m68k_mri || NUMBERS_WITH_SUFFIX)
975 {
976 integer_constant (0, expressionP);
977 break;
978 }
979 /* Fall through. */
980 case 'F':
981 case 'r':
982 case 'e':
983 case 'E':
984 case 'g':
985 case 'G':
986 input_line_pointer++;
987 floating_constant (expressionP);
988 expressionP->X_add_number = - TOLOWER (c);
989 break;
990
991 case '$':
992 if (LOCAL_LABELS_DOLLAR)
993 {
994 integer_constant (10, expressionP);
995 break;
996 }
997 else
998 goto default_case;
999 }
1000
1001 break;
1002
1003 case '(':
1004#ifndef NEED_INDEX_OPERATOR
1005 case '[':
1006#endif
1007 /* Didn't begin with digit & not a name. */
1008 segment = expression (expressionP);
1009 /* expression () will pass trailing whitespace. */
1010 if ((c == '(' && *input_line_pointer != ')')
1011 || (c == '[' && *input_line_pointer != ']'))
1012 {
1013#ifdef RELAX_PAREN_GROUPING
1014 if (c != '(')
1015#endif
1016 as_bad (_("missing '%c'"), c == '(' ? ')' : ']');
1017 }
1018 else
1019 input_line_pointer++;
1020 SKIP_WHITESPACE ();
1021 /* Here with input_line_pointer -> char after "(...)". */
1022 return segment;
1023
1024#ifdef TC_M68K
1025 case 'E':
1026 if (! flag_m68k_mri || *input_line_pointer != '\'')
1027 goto de_fault;
1028 as_bad (_("EBCDIC constants are not supported"));
1029 /* Fall through. */
1030 case 'A':
1031 if (! flag_m68k_mri || *input_line_pointer != '\'')
1032 goto de_fault;
1033 ++input_line_pointer;
1034 /* Fall through. */
1035#endif
1036 case '\'':
1037 if (! flag_m68k_mri)
1038 {
1039 /* Warning: to conform to other people's assemblers NO
1040 ESCAPEMENT is permitted for a single quote. The next
1041 character, parity errors and all, is taken as the value
1042 of the operand. VERY KINKY. */
1043 expressionP->X_op = O_constant;
1044 expressionP->X_add_number = *input_line_pointer++;
1045 break;
1046 }
1047
1048 mri_char_constant (expressionP);
1049 break;
1050
1051 case '+':
1052 (void) operand (expressionP);
1053 break;
1054
1055#ifdef TC_M68K
1056 case '"':
1057 /* Double quote is the bitwise not operator in MRI mode. */
1058 if (! flag_m68k_mri)
1059 goto de_fault;
1060 /* Fall through. */
1061#endif
1062 case '~':
1063 /* '~' is permitted to start a label on the Delta. */
1064 if (is_name_beginner (c))
1065 goto isname;
1066 case '!':
1067 case '-':
1068 {
1069 operand (expressionP);
1070 if (expressionP->X_op == O_constant)
1071 {
1072 /* input_line_pointer -> char after operand. */
1073 if (c == '-')
1074 {
1075 expressionP->X_add_number = - expressionP->X_add_number;
1076 /* Notice: '-' may overflow: no warning is given.
1077 This is compatible with other people's
1078 assemblers. Sigh. */
1079 expressionP->X_unsigned = 0;
1080 }
1081 else if (c == '~' || c == '"')
1082 expressionP->X_add_number = ~ expressionP->X_add_number;
1083 else
1084 expressionP->X_add_number = ! expressionP->X_add_number;
1085 }
1086 else if (expressionP->X_op == O_big
1087 && expressionP->X_add_number <= 0
1088 && c == '-'
1089 && (generic_floating_point_number.sign == '+'
1090 || generic_floating_point_number.sign == 'P'))
1091 {
1092 /* Negative flonum (eg, -1.000e0). */
1093 if (generic_floating_point_number.sign == '+')
1094 generic_floating_point_number.sign = '-';
1095 else
1096 generic_floating_point_number.sign = 'N';
1097 }
1098 else if (expressionP->X_op != O_illegal
1099 && expressionP->X_op != O_absent)
1100 {
1101 expressionP->X_add_symbol = make_expr_symbol (expressionP);
1102 if (c == '-')
1103 expressionP->X_op = O_uminus;
1104 else if (c == '~' || c == '"')
1105 expressionP->X_op = O_bit_not;
1106 else
1107 expressionP->X_op = O_logical_not;
1108 expressionP->X_add_number = 0;
1109 }
1110 else
1111 as_warn (_("Unary operator %c ignored because bad operand follows"),
1112 c);
1113 }
1114 break;
1115
1116#if defined (DOLLAR_DOT) || defined (TC_M68K)
1117 case '$':
1118 /* '$' is the program counter when in MRI mode, or when
1119 DOLLAR_DOT is defined. */
1120#ifndef DOLLAR_DOT
1121 if (! flag_m68k_mri)
1122 goto de_fault;
1123#endif
1124 if (flag_m68k_mri && hex_p (*input_line_pointer))
1125 {
1126 /* In MRI mode, '$' is also used as the prefix for a
1127 hexadecimal constant. */
1128 integer_constant (16, expressionP);
1129 break;
1130 }
1131
1132 if (is_part_of_name (*input_line_pointer))
1133 goto isname;
1134
1135 current_location (expressionP);
1136 break;
1137#endif
1138
1139 case '.':
1140 if (!is_part_of_name (*input_line_pointer))
1141 {
1142 current_location (expressionP);
1143 break;
1144 }
1145 else if ((strncasecmp (input_line_pointer, "startof.", 8) == 0
1146 && ! is_part_of_name (input_line_pointer[8]))
1147 || (strncasecmp (input_line_pointer, "sizeof.", 7) == 0
1148 && ! is_part_of_name (input_line_pointer[7])))
1149 {
1150 int start;
1151
1152 start = (input_line_pointer[1] == 't'
1153 || input_line_pointer[1] == 'T');
1154 input_line_pointer += start ? 8 : 7;
1155 SKIP_WHITESPACE ();
1156 if (*input_line_pointer != '(')
1157 as_bad (_("syntax error in .startof. or .sizeof."));
1158 else
1159 {
1160 char *buf;
1161
1162 ++input_line_pointer;
1163 SKIP_WHITESPACE ();
1164 name = input_line_pointer;
1165 c = get_symbol_end ();
1166
1167 buf = (char *) xmalloc (strlen (name) + 10);
1168 if (start)
1169 sprintf (buf, ".startof.%s", name);
1170 else
1171 sprintf (buf, ".sizeof.%s", name);
1172 symbolP = symbol_make (buf);
1173 free (buf);
1174
1175 expressionP->X_op = O_symbol;
1176 expressionP->X_add_symbol = symbolP;
1177 expressionP->X_add_number = 0;
1178
1179 *input_line_pointer = c;
1180 SKIP_WHITESPACE ();
1181 if (*input_line_pointer != ')')
1182 as_bad (_("syntax error in .startof. or .sizeof."));
1183 else
1184 ++input_line_pointer;
1185 }
1186 break;
1187 }
1188 else
1189 {
1190 goto isname;
1191 }
1192
1193 case ',':
1194 eol:
1195 /* Can't imagine any other kind of operand. */
1196 expressionP->X_op = O_absent;
1197 input_line_pointer--;
1198 break;
1199
1200#ifdef TC_M68K
1201 case '%':
1202 if (! flag_m68k_mri)
1203 goto de_fault;
1204 integer_constant (2, expressionP);
1205 break;
1206
1207 case '@':
1208 if (! flag_m68k_mri)
1209 goto de_fault;
1210 integer_constant (8, expressionP);
1211 break;
1212
1213 case ':':
1214 if (! flag_m68k_mri)
1215 goto de_fault;
1216
1217 /* In MRI mode, this is a floating point constant represented
1218 using hexadecimal digits. */
1219
1220 ++input_line_pointer;
1221 integer_constant (16, expressionP);
1222 break;
1223
1224 case '*':
1225 if (! flag_m68k_mri || is_part_of_name (*input_line_pointer))
1226 goto de_fault;
1227
1228 current_location (expressionP);
1229 break;
1230#endif
1231
1232 default:
1233#ifdef TC_M68K
1234 de_fault:
1235#endif
1236 if (is_name_beginner (c)) /* Here if did not begin with a digit. */
1237 {
1238 /* Identifier begins here.
1239 This is kludged for speed, so code is repeated. */
1240 isname:
1241 name = --input_line_pointer;
1242 c = get_symbol_end ();
1243
1244#ifdef md_parse_name
1245 /* This is a hook for the backend to parse certain names
1246 specially in certain contexts. If a name always has a
1247 specific value, it can often be handled by simply
1248 entering it in the symbol table. */
1249 if (md_parse_name (name, expressionP, &c))
1250 {
1251 *input_line_pointer = c;
1252 break;
1253 }
1254#endif
1255
1256#ifdef TC_I960
1257 /* The MRI i960 assembler permits
1258 lda sizeof code,g13
1259 FIXME: This should use md_parse_name. */
1260 if (flag_mri
1261 && (strcasecmp (name, "sizeof") == 0
1262 || strcasecmp (name, "startof") == 0))
1263 {
1264 int start;
1265 char *buf;
1266
1267 start = (name[1] == 't'
1268 || name[1] == 'T');
1269
1270 *input_line_pointer = c;
1271 SKIP_WHITESPACE ();
1272
1273 name = input_line_pointer;
1274 c = get_symbol_end ();
1275
1276 buf = (char *) xmalloc (strlen (name) + 10);
1277 if (start)
1278 sprintf (buf, ".startof.%s", name);
1279 else
1280 sprintf (buf, ".sizeof.%s", name);
1281 symbolP = symbol_make (buf);
1282 free (buf);
1283
1284 expressionP->X_op = O_symbol;
1285 expressionP->X_add_symbol = symbolP;
1286 expressionP->X_add_number = 0;
1287
1288 *input_line_pointer = c;
1289 SKIP_WHITESPACE ();
1290
1291 break;
1292 }
1293#endif
1294
1295 symbolP = symbol_find_or_make (name);
1296
1297 /* If we have an absolute symbol or a reg, then we know its
1298 value now. */
1299 segment = S_GET_SEGMENT (symbolP);
1300 if (segment == absolute_section)
1301 {
1302 expressionP->X_op = O_constant;
1303 expressionP->X_add_number = S_GET_VALUE (symbolP);
1304 }
1305 else if (segment == reg_section)
1306 {
1307 expressionP->X_op = O_register;
1308 expressionP->X_add_number = S_GET_VALUE (symbolP);
1309 }
1310 else
1311 {
1312 expressionP->X_op = O_symbol;
1313 expressionP->X_add_symbol = symbolP;
1314 expressionP->X_add_number = 0;
1315 }
1316 *input_line_pointer = c;
1317 }
1318 else
1319 {
1320 /* Let the target try to parse it. Success is indicated by changing
1321 the X_op field to something other than O_absent and pointing
1322 input_line_pointer past the expression. If it can't parse the
1323 expression, X_op and input_line_pointer should be unchanged. */
1324 expressionP->X_op = O_absent;
1325 --input_line_pointer;
1326 md_operand (expressionP);
1327 if (expressionP->X_op == O_absent)
1328 {
1329 ++input_line_pointer;
1330 as_bad (_("bad expression"));
1331 expressionP->X_op = O_constant;
1332 expressionP->X_add_number = 0;
1333 }
1334 }
1335 break;
1336 }
1337
1338 /* It is more 'efficient' to clean up the expressionS when they are
1339 created. Doing it here saves lines of code. */
1340 clean_up_expression (expressionP);
1341 SKIP_WHITESPACE (); /* -> 1st char after operand. */
1342 know (*input_line_pointer != ' ');
1343
1344 /* The PA port needs this information. */
1345 if (expressionP->X_add_symbol)
1346 symbol_mark_used (expressionP->X_add_symbol);
1347
1348 switch (expressionP->X_op)
1349 {
1350 default:
1351 return absolute_section;
1352 case O_symbol:
1353 return S_GET_SEGMENT (expressionP->X_add_symbol);
1354 case O_register:
1355 return reg_section;
1356 }
1357}
1358
1359
1360/* Internal. Simplify a struct expression for use by expr (). */
1361
1362/* In: address of an expressionS.
1363 The X_op field of the expressionS may only take certain values.
1364 Elsewise we waste time special-case testing. Sigh. Ditto SEG_ABSENT.
1365
1366 Out: expressionS may have been modified:
1367 Unused fields zeroed to help expr (). */
1368
1369static void
1370clean_up_expression (expressionP)
1371 expressionS *expressionP;
1372{
1373 switch (expressionP->X_op)
1374 {
1375 case O_illegal:
1376 case O_absent:
1377 expressionP->X_add_number = 0;
1378 /* Fall through. */
1379 case O_big:
1380 case O_constant:
1381 case O_register:
1382 expressionP->X_add_symbol = NULL;
1383 /* Fall through. */
1384 case O_symbol:
1385 case O_uminus:
1386 case O_bit_not:
1387 expressionP->X_op_symbol = NULL;
1388 break;
1389 default:
1390 break;
1391 }
1392}
1393
1394
1395/* Expression parser. */
1396
1397/* We allow an empty expression, and just assume (absolute,0) silently.
1398 Unary operators and parenthetical expressions are treated as operands.
1399 As usual, Q==quantity==operand, O==operator, X==expression mnemonics.
1400
1401 We used to do an aho/ullman shift-reduce parser, but the logic got so
1402 warped that I flushed it and wrote a recursive-descent parser instead.
1403 Now things are stable, would anybody like to write a fast parser?
1404 Most expressions are either register (which does not even reach here)
1405 or 1 symbol. Then "symbol+constant" and "symbol-symbol" are common.
1406 So I guess it doesn't really matter how inefficient more complex expressions
1407 are parsed.
1408
1409 After expr(RANK,resultP) input_line_pointer->operator of rank <= RANK.
1410 Also, we have consumed any leading or trailing spaces (operand does that)
1411 and done all intervening operators.
1412
1413 This returns the segment of the result, which will be
1414 absolute_section or the segment of a symbol. */
1415
1416#undef __
1417#define __ O_illegal
1418
1419/* Maps ASCII -> operators. */
1420static const operatorT op_encoding[256] = {
1421 __, __, __, __, __, __, __, __, __, __, __, __, __, __, __, __,
1422 __, __, __, __, __, __, __, __, __, __, __, __, __, __, __, __,
1423
1424 __, O_bit_or_not, __, __, __, O_modulus, O_bit_and, __,
1425 __, __, O_multiply, O_add, __, O_subtract, __, O_divide,
1426 __, __, __, __, __, __, __, __,
1427 __, __, __, __, O_lt, __, O_gt, __,
1428 __, __, __, __, __, __, __, __,
1429 __, __, __, __, __, __, __, __,
1430 __, __, __, __, __, __, __, __,
1431 __, __, __,
1432#ifdef NEED_INDEX_OPERATOR
1433 O_index,
1434#else
1435 __,
1436#endif
1437 __, __, O_bit_exclusive_or, __,
1438 __, __, __, __, __, __, __, __,
1439 __, __, __, __, __, __, __, __,
1440 __, __, __, __, __, __, __, __,
1441 __, __, __, __, O_bit_inclusive_or, __, __, __,
1442
1443 __, __, __, __, __, __, __, __, __, __, __, __, __, __, __, __,
1444 __, __, __, __, __, __, __, __, __, __, __, __, __, __, __, __,
1445 __, __, __, __, __, __, __, __, __, __, __, __, __, __, __, __,
1446 __, __, __, __, __, __, __, __, __, __, __, __, __, __, __, __,
1447 __, __, __, __, __, __, __, __, __, __, __, __, __, __, __, __,
1448 __, __, __, __, __, __, __, __, __, __, __, __, __, __, __, __,
1449 __, __, __, __, __, __, __, __, __, __, __, __, __, __, __, __,
1450 __, __, __, __, __, __, __, __, __, __, __, __, __, __, __, __
1451};
1452
1453/* Rank Examples
1454 0 operand, (expression)
1455 1 ||
1456 2 &&
1457 3 == <> < <= >= >
1458 4 + -
1459 5 used for * / % in MRI mode
1460 6 & ^ ! |
1461 7 * / % << >>
1462 8 unary - unary ~
1463*/
1464static operator_rankT op_rank[] = {
1465 0, /* O_illegal */
1466 0, /* O_absent */
1467 0, /* O_constant */
1468 0, /* O_symbol */
1469 0, /* O_symbol_rva */
1470 0, /* O_register */
1471 0, /* O_big */
1472 9, /* O_uminus */
1473 9, /* O_bit_not */
1474 9, /* O_logical_not */
1475 8, /* O_multiply */
1476 8, /* O_divide */
1477 8, /* O_modulus */
1478 8, /* O_left_shift */
1479 8, /* O_right_shift */
1480 7, /* O_bit_inclusive_or */
1481 7, /* O_bit_or_not */
1482 7, /* O_bit_exclusive_or */
1483 7, /* O_bit_and */
1484 5, /* O_add */
1485 5, /* O_subtract */
1486 4, /* O_eq */
1487 4, /* O_ne */
1488 4, /* O_lt */
1489 4, /* O_le */
1490 4, /* O_ge */
1491 4, /* O_gt */
1492 3, /* O_logical_and */
1493 2, /* O_logical_or */
1494 1, /* O_index */
1495 0, /* O_md1 */
1496 0, /* O_md2 */
1497 0, /* O_md3 */
1498 0, /* O_md4 */
1499 0, /* O_md5 */
1500 0, /* O_md6 */
1501 0, /* O_md7 */
1502 0, /* O_md8 */
1503 0, /* O_md9 */
1504 0, /* O_md10 */
1505 0, /* O_md11 */
1506 0, /* O_md12 */
1507 0, /* O_md13 */
1508 0, /* O_md14 */
1509 0, /* O_md15 */
1510 0, /* O_md16 */
1511};
1512
1513/* Unfortunately, in MRI mode for the m68k, multiplication and
1514 division have lower precedence than the bit wise operators. This
1515 function sets the operator precedences correctly for the current
1516 mode. Also, MRI uses a different bit_not operator, and this fixes
1517 that as well. */
1518
1519#define STANDARD_MUL_PRECEDENCE 8
1520#define MRI_MUL_PRECEDENCE 6
1521
1522void
1523expr_set_precedence ()
1524{
1525 if (flag_m68k_mri)
1526 {
1527 op_rank[O_multiply] = MRI_MUL_PRECEDENCE;
1528 op_rank[O_divide] = MRI_MUL_PRECEDENCE;
1529 op_rank[O_modulus] = MRI_MUL_PRECEDENCE;
1530 }
1531 else
1532 {
1533 op_rank[O_multiply] = STANDARD_MUL_PRECEDENCE;
1534 op_rank[O_divide] = STANDARD_MUL_PRECEDENCE;
1535 op_rank[O_modulus] = STANDARD_MUL_PRECEDENCE;
1536 }
1537}
1538
1539/* Initialize the expression parser. */
1540
1541void
1542expr_begin ()
1543{
1544 expr_set_precedence ();
1545
1546 /* Verify that X_op field is wide enough. */
1547 {
1548 expressionS e;
1549 e.X_op = O_max;
1550 assert (e.X_op == O_max);
1551 }
1552}
1553
1554
1555/* Return the encoding for the operator at INPUT_LINE_POINTER, and
1556 sets NUM_CHARS to the number of characters in the operator.
1557 Does not advance INPUT_LINE_POINTER. */
1558
1559static inline operatorT
1560operator (num_chars)
1561 int *num_chars;
1562{
1563 int c;
1564 operatorT ret;
1565
1566 c = *input_line_pointer & 0xff;
1567 *num_chars = 1;
1568
1569 if (is_end_of_line[c])
1570 return O_illegal;
1571
1572 switch (c)
1573 {
1574 default:
1575 return op_encoding[c];
1576
1577 case '<':
1578 switch (input_line_pointer[1])
1579 {
1580 default:
1581 return op_encoding[c];
1582 case '<':
1583 ret = O_left_shift;
1584 break;
1585 case '>':
1586 ret = O_ne;
1587 break;
1588 case '=':
1589 ret = O_le;
1590 break;
1591 }
1592 *num_chars = 2;
1593 return ret;
1594
1595 case '=':
1596 if (input_line_pointer[1] != '=')
1597 return op_encoding[c];
1598
1599 *num_chars = 2;
1600 return O_eq;
1601
1602 case '>':
1603 switch (input_line_pointer[1])
1604 {
1605 default:
1606 return op_encoding[c];
1607 case '>':
1608 ret = O_right_shift;
1609 break;
1610 case '=':
1611 ret = O_ge;
1612 break;
1613 }
1614 *num_chars = 2;
1615 return ret;
1616
1617 case '!':
1618 /* We accept !! as equivalent to ^ for MRI compatibility. */
1619 if (input_line_pointer[1] != '!')
1620 {
1621 if (flag_m68k_mri)
1622 return O_bit_inclusive_or;
1623 return op_encoding[c];
1624 }
1625 *num_chars = 2;
1626 return O_bit_exclusive_or;
1627
1628 case '|':
1629 if (input_line_pointer[1] != '|')
1630 return op_encoding[c];
1631
1632 *num_chars = 2;
1633 return O_logical_or;
1634
1635 case '&':
1636 if (input_line_pointer[1] != '&')
1637 return op_encoding[c];
1638
1639 *num_chars = 2;
1640 return O_logical_and;
1641 }
1642
1643 /* NOTREACHED */
1644}
1645
1646/* Parse an expression. */
1647
1648segT
1649expr (rankarg, resultP)
1650 int rankarg; /* Larger # is higher rank. */
1651 expressionS *resultP; /* Deliver result here. */
1652{
1653 operator_rankT rank = (operator_rankT) rankarg;
1654 segT retval;
1655 expressionS right;
1656 operatorT op_left;
1657 operatorT op_right;
1658 int op_chars;
1659
1660 know (rank >= 0);
1661
1662 /* Save the value of dot for the fixup code. */
1663 if (rank == 0)
1664 dot_value = frag_now_fix ();
1665
1666 retval = operand (resultP);
1667
1668 /* operand () gobbles spaces. */
1669 know (*input_line_pointer != ' ');
1670
1671 op_left = operator (&op_chars);
1672 while (op_left != O_illegal && op_rank[(int) op_left] > rank)
1673 {
1674 segT rightseg;
1675
1676 input_line_pointer += op_chars; /* -> after operator. */
1677
1678 rightseg = expr (op_rank[(int) op_left], &right);
1679 if (right.X_op == O_absent)
1680 {
1681 as_warn (_("missing operand; zero assumed"));
1682 right.X_op = O_constant;
1683 right.X_add_number = 0;
1684 right.X_add_symbol = NULL;
1685 right.X_op_symbol = NULL;
1686 }
1687
1688 know (*input_line_pointer != ' ');
1689
1690 if (op_left == O_index)
1691 {
1692 if (*input_line_pointer != ']')
1693 as_bad ("missing right bracket");
1694 else
1695 {
1696 ++input_line_pointer;
1697 SKIP_WHITESPACE ();
1698 }
1699 }
1700
1701 op_right = operator (&op_chars);
1702
1703 know (op_right == O_illegal
1704 || op_rank[(int) op_right] <= op_rank[(int) op_left]);
1705 know ((int) op_left >= (int) O_multiply
1706 && (int) op_left <= (int) O_logical_or);
1707
1708 /* input_line_pointer->after right-hand quantity. */
1709 /* left-hand quantity in resultP. */
1710 /* right-hand quantity in right. */
1711 /* operator in op_left. */
1712
1713 if (resultP->X_op == O_big)
1714 {
1715 if (resultP->X_add_number > 0)
1716 as_warn (_("left operand is a bignum; integer 0 assumed"));
1717 else
1718 as_warn (_("left operand is a float; integer 0 assumed"));
1719 resultP->X_op = O_constant;
1720 resultP->X_add_number = 0;
1721 resultP->X_add_symbol = NULL;
1722 resultP->X_op_symbol = NULL;
1723 }
1724 if (right.X_op == O_big)
1725 {
1726 if (right.X_add_number > 0)
1727 as_warn (_("right operand is a bignum; integer 0 assumed"));
1728 else
1729 as_warn (_("right operand is a float; integer 0 assumed"));
1730 right.X_op = O_constant;
1731 right.X_add_number = 0;
1732 right.X_add_symbol = NULL;
1733 right.X_op_symbol = NULL;
1734 }
1735
1736 /* Optimize common cases. */
1737#ifdef md_optimize_expr
1738 if (md_optimize_expr (resultP, op_left, &right))
1739 {
1740 /* Skip. */
1741 ;
1742 }
1743 else
1744#endif
1745 if (op_left == O_add && right.X_op == O_constant)
1746 {
1747 /* X + constant. */
1748 resultP->X_add_number += right.X_add_number;
1749 }
1750 /* This case comes up in PIC code. */
1751 else if (op_left == O_subtract
1752 && right.X_op == O_symbol
1753 && resultP->X_op == O_symbol
1754 && (symbol_get_frag (right.X_add_symbol)
1755 == symbol_get_frag (resultP->X_add_symbol))
1756 && (SEG_NORMAL (rightseg)
1757 || right.X_add_symbol == resultP->X_add_symbol))
1758 {
1759 resultP->X_add_number -= right.X_add_number;
1760 resultP->X_add_number += (S_GET_VALUE (resultP->X_add_symbol)
1761 - S_GET_VALUE (right.X_add_symbol));
1762 resultP->X_op = O_constant;
1763 resultP->X_add_symbol = 0;
1764 }
1765 else if (op_left == O_subtract && right.X_op == O_constant)
1766 {
1767 /* X - constant. */
1768 resultP->X_add_number -= right.X_add_number;
1769 }
1770 else if (op_left == O_add && resultP->X_op == O_constant)
1771 {
1772 /* Constant + X. */
1773 resultP->X_op = right.X_op;
1774 resultP->X_add_symbol = right.X_add_symbol;
1775 resultP->X_op_symbol = right.X_op_symbol;
1776 resultP->X_add_number += right.X_add_number;
1777 retval = rightseg;
1778 }
1779 else if (resultP->X_op == O_constant && right.X_op == O_constant)
1780 {
1781 /* Constant OP constant. */
1782 offsetT v = right.X_add_number;
1783 if (v == 0 && (op_left == O_divide || op_left == O_modulus))
1784 {
1785 as_warn (_("division by zero"));
1786 v = 1;
1787 }
1788 switch (op_left)
1789 {
1790 default: abort ();
1791 case O_multiply: resultP->X_add_number *= v; break;
1792 case O_divide: resultP->X_add_number /= v; break;
1793 case O_modulus: resultP->X_add_number %= v; break;
1794 case O_left_shift: resultP->X_add_number <<= v; break;
1795 case O_right_shift:
1796 /* We always use unsigned shifts, to avoid relying on
1797 characteristics of the compiler used to compile gas. */
1798 resultP->X_add_number =
1799 (offsetT) ((valueT) resultP->X_add_number >> (valueT) v);
1800 break;
1801 case O_bit_inclusive_or: resultP->X_add_number |= v; break;
1802 case O_bit_or_not: resultP->X_add_number |= ~v; break;
1803 case O_bit_exclusive_or: resultP->X_add_number ^= v; break;
1804 case O_bit_and: resultP->X_add_number &= v; break;
1805 case O_add: resultP->X_add_number += v; break;
1806 case O_subtract: resultP->X_add_number -= v; break;
1807 case O_eq:
1808 resultP->X_add_number =
1809 resultP->X_add_number == v ? ~ (offsetT) 0 : 0;
1810 break;
1811 case O_ne:
1812 resultP->X_add_number =
1813 resultP->X_add_number != v ? ~ (offsetT) 0 : 0;
1814 break;
1815 case O_lt:
1816 resultP->X_add_number =
1817 resultP->X_add_number < v ? ~ (offsetT) 0 : 0;
1818 break;
1819 case O_le:
1820 resultP->X_add_number =
1821 resultP->X_add_number <= v ? ~ (offsetT) 0 : 0;
1822 break;
1823 case O_ge:
1824 resultP->X_add_number =
1825 resultP->X_add_number >= v ? ~ (offsetT) 0 : 0;
1826 break;
1827 case O_gt:
1828 resultP->X_add_number =
1829 resultP->X_add_number > v ? ~ (offsetT) 0 : 0;
1830 break;
1831 case O_logical_and:
1832 resultP->X_add_number = resultP->X_add_number && v;
1833 break;
1834 case O_logical_or:
1835 resultP->X_add_number = resultP->X_add_number || v;
1836 break;
1837 }
1838 }
1839 else if (resultP->X_op == O_symbol
1840 && right.X_op == O_symbol
1841 && (op_left == O_add
1842 || op_left == O_subtract
1843 || (resultP->X_add_number == 0
1844 && right.X_add_number == 0)))
1845 {
1846 /* Symbol OP symbol. */
1847 resultP->X_op = op_left;
1848 resultP->X_op_symbol = right.X_add_symbol;
1849 if (op_left == O_add)
1850 resultP->X_add_number += right.X_add_number;
1851 else if (op_left == O_subtract)
1852 {
1853 resultP->X_add_number -= right.X_add_number;
1854 if (retval == rightseg && SEG_NORMAL (retval))
1855 {
1856 retval = absolute_section;
1857 rightseg = absolute_section;
1858 }
1859 }
1860 }
1861 else
1862 {
1863 /* The general case. */
1864 resultP->X_add_symbol = make_expr_symbol (resultP);
1865 resultP->X_op_symbol = make_expr_symbol (&right);
1866 resultP->X_op = op_left;
1867 resultP->X_add_number = 0;
1868 resultP->X_unsigned = 1;
1869 }
1870
1871 if (retval != rightseg)
1872 {
1873 if (! SEG_NORMAL (retval))
1874 {
1875 if (retval != undefined_section || SEG_NORMAL (rightseg))
1876 retval = rightseg;
1877 }
1878 else if (SEG_NORMAL (rightseg)
1879#ifdef DIFF_EXPR_OK
1880 && op_left != O_subtract
1881#endif
1882 )
1883 as_bad (_("operation combines symbols in different segments"));
1884 }
1885
1886 op_left = op_right;
1887 } /* While next operator is >= this rank. */
1888
1889 /* The PA port needs this information. */
1890 if (resultP->X_add_symbol)
1891 symbol_mark_used (resultP->X_add_symbol);
1892
1893 return resultP->X_op == O_constant ? absolute_section : retval;
1894}
1895
1896
1897/* This lives here because it belongs equally in expr.c & read.c.
1898 expr.c is just a branch office read.c anyway, and putting it
1899 here lessens the crowd at read.c.
1900
1901 Assume input_line_pointer is at start of symbol name.
1902 Advance input_line_pointer past symbol name.
1903 Turn that character into a '\0', returning its former value.
1904 This allows a string compare (RMS wants symbol names to be strings)
1905 of the symbol name.
1906 There will always be a char following symbol name, because all good
1907 lines end in end-of-line. */
1908
1909char
1910get_symbol_end ()
1911{
1912 char c;
1913
1914 /* We accept \001 in a name in case this is being called with a
1915 constructed string. */
1916 if (is_name_beginner (c = *input_line_pointer++) || c == '\001')
1917 {
1918 while (is_part_of_name (c = *input_line_pointer++)
1919 || c == '\001')
1920 ;
1921 if (is_name_ender (c))
1922 c = *input_line_pointer++;
1923 }
1924 *--input_line_pointer = 0;
1925 return (c);
1926}
1927
1928unsigned int
1929get_single_number ()
1930{
1931 expressionS exp;
1932 operand (&exp);
1933 return exp.X_add_number;
1934}
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