expr.c revision 1.1.1.5 1 1.1 skrll /* expr.c -operands, expressions-
2 1.1.1.5 christos Copyright (C) 1987-2016 Free Software Foundation, Inc.
3 1.1 skrll
4 1.1 skrll This file is part of GAS, the GNU Assembler.
5 1.1 skrll
6 1.1 skrll GAS is free software; you can redistribute it and/or modify
7 1.1 skrll it under the terms of the GNU General Public License as published by
8 1.1 skrll the Free Software Foundation; either version 3, or (at your option)
9 1.1 skrll any later version.
10 1.1 skrll
11 1.1 skrll GAS is distributed in the hope that it will be useful,
12 1.1 skrll but WITHOUT ANY WARRANTY; without even the implied warranty of
13 1.1 skrll MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
14 1.1 skrll GNU General Public License for more details.
15 1.1 skrll
16 1.1 skrll You should have received a copy of the GNU General Public License
17 1.1 skrll along with GAS; see the file COPYING. If not, write to the Free
18 1.1 skrll Software Foundation, 51 Franklin Street - Fifth Floor, Boston, MA
19 1.1 skrll 02110-1301, USA. */
20 1.1 skrll
21 1.1 skrll /* This is really a branch office of as-read.c. I split it out to clearly
22 1.1 skrll distinguish the world of expressions from the world of statements.
23 1.1 skrll (It also gives smaller files to re-compile.)
24 1.1 skrll Here, "operand"s are of expressions, not instructions. */
25 1.1 skrll
26 1.1 skrll #define min(a, b) ((a) < (b) ? (a) : (b))
27 1.1 skrll
28 1.1 skrll #include "as.h"
29 1.1 skrll #include "safe-ctype.h"
30 1.1 skrll
31 1.1.1.2 christos #ifdef HAVE_LIMITS_H
32 1.1.1.2 christos #include <limits.h>
33 1.1.1.2 christos #endif
34 1.1.1.2 christos #ifndef CHAR_BIT
35 1.1.1.2 christos #define CHAR_BIT 8
36 1.1.1.2 christos #endif
37 1.1.1.2 christos
38 1.1 skrll static void floating_constant (expressionS * expressionP);
39 1.1 skrll static valueT generic_bignum_to_int32 (void);
40 1.1 skrll #ifdef BFD64
41 1.1 skrll static valueT generic_bignum_to_int64 (void);
42 1.1 skrll #endif
43 1.1 skrll static void integer_constant (int radix, expressionS * expressionP);
44 1.1 skrll static void mri_char_constant (expressionS *);
45 1.1 skrll static void clean_up_expression (expressionS * expressionP);
46 1.1 skrll static segT operand (expressionS *, enum expr_mode);
47 1.1.1.2 christos static operatorT operatorf (int *);
48 1.1 skrll
49 1.1 skrll /* We keep a mapping of expression symbols to file positions, so that
50 1.1 skrll we can provide better error messages. */
51 1.1 skrll
52 1.1 skrll struct expr_symbol_line {
53 1.1 skrll struct expr_symbol_line *next;
54 1.1 skrll symbolS *sym;
55 1.1.1.5 christos const char *file;
56 1.1 skrll unsigned int line;
57 1.1 skrll };
58 1.1 skrll
59 1.1 skrll static struct expr_symbol_line *expr_symbol_lines;
60 1.1 skrll
61 1.1 skrll /* Build a dummy symbol to hold a complex expression. This is how we
63 1.1 skrll build expressions up out of other expressions. The symbol is put
64 1.1 skrll into the fake section expr_section. */
65 1.1 skrll
66 1.1 skrll symbolS *
67 1.1 skrll make_expr_symbol (expressionS *expressionP)
68 1.1 skrll {
69 1.1 skrll expressionS zero;
70 1.1 skrll symbolS *symbolP;
71 1.1 skrll struct expr_symbol_line *n;
72 1.1 skrll
73 1.1 skrll if (expressionP->X_op == O_symbol
74 1.1 skrll && expressionP->X_add_number == 0)
75 1.1 skrll return expressionP->X_add_symbol;
76 1.1 skrll
77 1.1 skrll if (expressionP->X_op == O_big)
78 1.1 skrll {
79 1.1 skrll /* This won't work, because the actual value is stored in
80 1.1 skrll generic_floating_point_number or generic_bignum, and we are
81 1.1 skrll going to lose it if we haven't already. */
82 1.1 skrll if (expressionP->X_add_number > 0)
83 1.1 skrll as_bad (_("bignum invalid"));
84 1.1 skrll else
85 1.1 skrll as_bad (_("floating point number invalid"));
86 1.1 skrll zero.X_op = O_constant;
87 1.1 skrll zero.X_add_number = 0;
88 1.1.1.4 christos zero.X_unsigned = 0;
89 1.1 skrll zero.X_extrabit = 0;
90 1.1 skrll clean_up_expression (&zero);
91 1.1 skrll expressionP = &zero;
92 1.1 skrll }
93 1.1 skrll
94 1.1 skrll /* Putting constant symbols in absolute_section rather than
95 1.1 skrll expr_section is convenient for the old a.out code, for which
96 1.1 skrll S_GET_SEGMENT does not always retrieve the value put in by
97 1.1 skrll S_SET_SEGMENT. */
98 1.1 skrll symbolP = symbol_create (FAKE_LABEL_NAME,
99 1.1 skrll (expressionP->X_op == O_constant
100 1.1 skrll ? absolute_section
101 1.1 skrll : expressionP->X_op == O_register
102 1.1 skrll ? reg_section
103 1.1 skrll : expr_section),
104 1.1 skrll 0, &zero_address_frag);
105 1.1 skrll symbol_set_value_expression (symbolP, expressionP);
106 1.1 skrll
107 1.1 skrll if (expressionP->X_op == O_constant)
108 1.1 skrll resolve_symbol_value (symbolP);
109 1.1.1.5 christos
110 1.1 skrll n = XNEW (struct expr_symbol_line);
111 1.1.1.5 christos n->sym = symbolP;
112 1.1 skrll n->file = as_where (&n->line);
113 1.1 skrll n->next = expr_symbol_lines;
114 1.1 skrll expr_symbol_lines = n;
115 1.1 skrll
116 1.1 skrll return symbolP;
117 1.1 skrll }
118 1.1 skrll
119 1.1 skrll /* Return the file and line number for an expr symbol. Return
120 1.1 skrll non-zero if something was found, 0 if no information is known for
121 1.1 skrll the symbol. */
122 1.1 skrll
123 1.1.1.5 christos int
124 1.1 skrll expr_symbol_where (symbolS *sym, const char **pfile, unsigned int *pline)
125 1.1.1.4 christos {
126 1.1 skrll struct expr_symbol_line *l;
127 1.1 skrll
128 1.1 skrll for (l = expr_symbol_lines; l != NULL; l = l->next)
129 1.1 skrll {
130 1.1 skrll if (l->sym == sym)
131 1.1 skrll {
132 1.1 skrll *pfile = l->file;
133 1.1 skrll *pline = l->line;
134 1.1 skrll return 1;
135 1.1 skrll }
136 1.1 skrll }
137 1.1 skrll
138 1.1 skrll return 0;
139 1.1 skrll }
140 1.1 skrll
141 1.1 skrll /* Utilities for building expressions.
143 1.1 skrll Since complex expressions are recorded as symbols for use in other
144 1.1 skrll expressions these return a symbolS * and not an expressionS *.
145 1.1 skrll These explicitly do not take an "add_number" argument. */
146 1.1 skrll /* ??? For completeness' sake one might want expr_build_symbol.
147 1.1 skrll It would just return its argument. */
148 1.1 skrll
149 1.1 skrll /* Build an expression for an unsigned constant.
150 1.1 skrll The corresponding one for signed constants is missing because
151 1.1 skrll there's currently no need for it. One could add an unsigned_p flag
152 1.1 skrll but that seems more clumsy. */
153 1.1 skrll
154 1.1 skrll symbolS *
155 1.1 skrll expr_build_uconstant (offsetT value)
156 1.1 skrll {
157 1.1 skrll expressionS e;
158 1.1 skrll
159 1.1 skrll e.X_op = O_constant;
160 1.1.1.4 christos e.X_add_number = value;
161 1.1 skrll e.X_unsigned = 1;
162 1.1 skrll e.X_extrabit = 0;
163 1.1 skrll return make_expr_symbol (&e);
164 1.1 skrll }
165 1.1 skrll
166 1.1 skrll /* Build an expression for the current location ('.'). */
167 1.1 skrll
168 1.1 skrll symbolS *
169 1.1 skrll expr_build_dot (void)
170 1.1 skrll {
171 1.1 skrll expressionS e;
172 1.1.1.2 christos
173 1.1 skrll current_location (&e);
174 1.1 skrll return symbol_clone_if_forward_ref (make_expr_symbol (&e));
175 1.1 skrll }
176 1.1 skrll
177 1.1 skrll /* Build any floating-point literal here.
179 1.1 skrll Also build any bignum literal here. */
180 1.1 skrll
181 1.1 skrll /* Seems atof_machine can backscan through generic_bignum and hit whatever
182 1.1 skrll happens to be loaded before it in memory. And its way too complicated
183 1.1 skrll for me to fix right. Thus a hack. JF: Just make generic_bignum bigger,
184 1.1 skrll and never write into the early words, thus they'll always be zero.
185 1.1 skrll I hate Dean's floating-point code. Bleh. */
186 1.1 skrll LITTLENUM_TYPE generic_bignum[SIZE_OF_LARGE_NUMBER + 6];
187 1.1 skrll
188 1.1 skrll FLONUM_TYPE generic_floating_point_number = {
189 1.1 skrll &generic_bignum[6], /* low. (JF: Was 0) */
190 1.1 skrll &generic_bignum[SIZE_OF_LARGE_NUMBER + 6 - 1], /* high. JF: (added +6) */
191 1.1 skrll 0, /* leader. */
192 1.1 skrll 0, /* exponent. */
193 1.1 skrll 0 /* sign. */
194 1.1 skrll };
195 1.1 skrll
196 1.1 skrll
197 1.1 skrll static void
199 1.1 skrll floating_constant (expressionS *expressionP)
200 1.1 skrll {
201 1.1 skrll /* input_line_pointer -> floating-point constant. */
202 1.1 skrll int error_code;
203 1.1 skrll
204 1.1 skrll error_code = atof_generic (&input_line_pointer, ".", EXP_CHARS,
205 1.1 skrll &generic_floating_point_number);
206 1.1 skrll
207 1.1 skrll if (error_code)
208 1.1 skrll {
209 1.1 skrll if (error_code == ERROR_EXPONENT_OVERFLOW)
210 1.1 skrll {
211 1.1 skrll as_bad (_("bad floating-point constant: exponent overflow"));
212 1.1 skrll }
213 1.1 skrll else
214 1.1 skrll {
215 1.1 skrll as_bad (_("bad floating-point constant: unknown error code=%d"),
216 1.1 skrll error_code);
217 1.1 skrll }
218 1.1 skrll }
219 1.1 skrll expressionP->X_op = O_big;
220 1.1 skrll /* input_line_pointer -> just after constant, which may point to
221 1.1 skrll whitespace. */
222 1.1 skrll expressionP->X_add_number = -1;
223 1.1 skrll }
224 1.1 skrll
225 1.1 skrll static valueT
226 1.1 skrll generic_bignum_to_int32 (void)
227 1.1 skrll {
228 1.1 skrll valueT number =
229 1.1 skrll ((generic_bignum[1] & LITTLENUM_MASK) << LITTLENUM_NUMBER_OF_BITS)
230 1.1 skrll | (generic_bignum[0] & LITTLENUM_MASK);
231 1.1 skrll number &= 0xffffffff;
232 1.1 skrll return number;
233 1.1 skrll }
234 1.1 skrll
235 1.1 skrll #ifdef BFD64
236 1.1 skrll static valueT
237 1.1 skrll generic_bignum_to_int64 (void)
238 1.1 skrll {
239 1.1 skrll valueT number =
240 1.1 skrll ((((((((valueT) generic_bignum[3] & LITTLENUM_MASK)
241 1.1 skrll << LITTLENUM_NUMBER_OF_BITS)
242 1.1 skrll | ((valueT) generic_bignum[2] & LITTLENUM_MASK))
243 1.1 skrll << LITTLENUM_NUMBER_OF_BITS)
244 1.1 skrll | ((valueT) generic_bignum[1] & LITTLENUM_MASK))
245 1.1 skrll << LITTLENUM_NUMBER_OF_BITS)
246 1.1 skrll | ((valueT) generic_bignum[0] & LITTLENUM_MASK));
247 1.1 skrll return number;
248 1.1 skrll }
249 1.1 skrll #endif
250 1.1 skrll
251 1.1 skrll static void
252 1.1 skrll integer_constant (int radix, expressionS *expressionP)
253 1.1 skrll {
254 1.1 skrll char *start; /* Start of number. */
255 1.1 skrll char *suffix = NULL;
256 1.1 skrll char c;
257 1.1 skrll valueT number; /* Offset or (absolute) value. */
258 1.1 skrll short int digit; /* Value of next digit in current radix. */
259 1.1 skrll short int maxdig = 0; /* Highest permitted digit value. */
260 1.1 skrll int too_many_digits = 0; /* If we see >= this number of. */
261 1.1 skrll char *name; /* Points to name of symbol. */
262 1.1 skrll symbolS *symbolP; /* Points to symbol. */
263 1.1 skrll
264 1.1 skrll int small; /* True if fits in 32 bits. */
265 1.1 skrll
266 1.1 skrll /* May be bignum, or may fit in 32 bits. */
267 1.1 skrll /* Most numbers fit into 32 bits, and we want this case to be fast.
268 1.1 skrll so we pretend it will fit into 32 bits. If, after making up a 32
269 1.1 skrll bit number, we realise that we have scanned more digits than
270 1.1 skrll comfortably fit into 32 bits, we re-scan the digits coding them
271 1.1 skrll into a bignum. For decimal and octal numbers we are
272 1.1 skrll conservative: Some numbers may be assumed bignums when in fact
273 1.1 skrll they do fit into 32 bits. Numbers of any radix can have excess
274 1.1 skrll leading zeros: We strive to recognise this and cast them back
275 1.1 skrll into 32 bits. We must check that the bignum really is more than
276 1.1 skrll 32 bits, and change it back to a 32-bit number if it fits. The
277 1.1 skrll number we are looking for is expected to be positive, but if it
278 1.1 skrll fits into 32 bits as an unsigned number, we let it be a 32-bit
279 1.1 skrll number. The cavalier approach is for speed in ordinary cases. */
280 1.1 skrll /* This has been extended for 64 bits. We blindly assume that if
281 1.1 skrll you're compiling in 64-bit mode, the target is a 64-bit machine.
282 1.1 skrll This should be cleaned up. */
283 1.1 skrll
284 1.1 skrll #ifdef BFD64
285 1.1 skrll #define valuesize 64
286 1.1.1.4 christos #else /* includes non-bfd case, mostly */
287 1.1.1.4 christos #define valuesize 32
288 1.1.1.4 christos #endif
289 1.1.1.4 christos
290 1.1.1.4 christos if (is_end_of_line[(unsigned char) *input_line_pointer])
291 1.1.1.4 christos {
292 1.1 skrll expressionP->X_op = O_absent;
293 1.1 skrll return;
294 1.1 skrll }
295 1.1 skrll
296 1.1 skrll if ((NUMBERS_WITH_SUFFIX || flag_m68k_mri) && radix == 0)
297 1.1 skrll {
298 1.1 skrll int flt = 0;
299 1.1 skrll
300 1.1 skrll /* In MRI mode, the number may have a suffix indicating the
301 1.1 skrll radix. For that matter, it might actually be a floating
302 1.1 skrll point constant. */
303 1.1 skrll for (suffix = input_line_pointer; ISALNUM (*suffix); suffix++)
304 1.1 skrll {
305 1.1 skrll if (*suffix == 'e' || *suffix == 'E')
306 1.1 skrll flt = 1;
307 1.1 skrll }
308 1.1 skrll
309 1.1 skrll if (suffix == input_line_pointer)
310 1.1 skrll {
311 1.1 skrll radix = 10;
312 1.1 skrll suffix = NULL;
313 1.1 skrll }
314 1.1 skrll else
315 1.1 skrll {
316 1.1 skrll c = *--suffix;
317 1.1 skrll c = TOUPPER (c);
318 1.1 skrll /* If we have both NUMBERS_WITH_SUFFIX and LOCAL_LABELS_FB,
319 1.1 skrll we distinguish between 'B' and 'b'. This is the case for
320 1.1 skrll Z80. */
321 1.1 skrll if ((NUMBERS_WITH_SUFFIX && LOCAL_LABELS_FB ? *suffix : c) == 'B')
322 1.1 skrll radix = 2;
323 1.1 skrll else if (c == 'D')
324 1.1 skrll radix = 10;
325 1.1 skrll else if (c == 'O' || c == 'Q')
326 1.1 skrll radix = 8;
327 1.1 skrll else if (c == 'H')
328 1.1 skrll radix = 16;
329 1.1 skrll else if (suffix[1] == '.' || c == 'E' || flt)
330 1.1 skrll {
331 1.1 skrll floating_constant (expressionP);
332 1.1 skrll return;
333 1.1 skrll }
334 1.1 skrll else
335 1.1 skrll {
336 1.1 skrll radix = 10;
337 1.1 skrll suffix = NULL;
338 1.1 skrll }
339 1.1 skrll }
340 1.1 skrll }
341 1.1 skrll
342 1.1 skrll switch (radix)
343 1.1 skrll {
344 1.1 skrll case 2:
345 1.1 skrll maxdig = 2;
346 1.1 skrll too_many_digits = valuesize + 1;
347 1.1 skrll break;
348 1.1 skrll case 8:
349 1.1 skrll maxdig = radix = 8;
350 1.1 skrll too_many_digits = (valuesize + 2) / 3 + 1;
351 1.1 skrll break;
352 1.1 skrll case 16:
353 1.1 skrll maxdig = radix = 16;
354 1.1 skrll too_many_digits = (valuesize + 3) / 4 + 1;
355 1.1 skrll break;
356 1.1 skrll case 10:
357 1.1 skrll maxdig = radix = 10;
358 1.1 skrll too_many_digits = (valuesize + 11) / 4; /* Very rough. */
359 1.1 skrll }
360 1.1 skrll #undef valuesize
361 1.1 skrll start = input_line_pointer;
362 1.1 skrll c = *input_line_pointer++;
363 1.1 skrll for (number = 0;
364 1.1 skrll (digit = hex_value (c)) < maxdig;
365 1.1 skrll c = *input_line_pointer++)
366 1.1 skrll {
367 1.1 skrll number = number * radix + digit;
368 1.1 skrll }
369 1.1 skrll /* c contains character after number. */
370 1.1 skrll /* input_line_pointer->char after c. */
371 1.1 skrll small = (input_line_pointer - start - 1) < too_many_digits;
372 1.1 skrll
373 1.1 skrll if (radix == 16 && c == '_')
374 1.1 skrll {
375 1.1 skrll /* This is literal of the form 0x333_0_12345678_1.
376 1.1 skrll This example is equivalent to 0x00000333000000001234567800000001. */
377 1.1 skrll
378 1.1 skrll int num_little_digits = 0;
379 1.1 skrll int i;
380 1.1 skrll input_line_pointer = start; /* -> 1st digit. */
381 1.1 skrll
382 1.1 skrll know (LITTLENUM_NUMBER_OF_BITS == 16);
383 1.1 skrll
384 1.1 skrll for (c = '_'; c == '_'; num_little_digits += 2)
385 1.1 skrll {
386 1.1 skrll
387 1.1 skrll /* Convert one 64-bit word. */
388 1.1 skrll int ndigit = 0;
389 1.1 skrll number = 0;
390 1.1 skrll for (c = *input_line_pointer++;
391 1.1 skrll (digit = hex_value (c)) < maxdig;
392 1.1 skrll c = *(input_line_pointer++))
393 1.1 skrll {
394 1.1 skrll number = number * radix + digit;
395 1.1 skrll ndigit++;
396 1.1 skrll }
397 1.1 skrll
398 1.1 skrll /* Check for 8 digit per word max. */
399 1.1 skrll if (ndigit > 8)
400 1.1 skrll as_bad (_("a bignum with underscores may not have more than 8 hex digits in any word"));
401 1.1 skrll
402 1.1 skrll /* Add this chunk to the bignum.
403 1.1 skrll Shift things down 2 little digits. */
404 1.1 skrll know (LITTLENUM_NUMBER_OF_BITS == 16);
405 1.1 skrll for (i = min (num_little_digits + 1, SIZE_OF_LARGE_NUMBER - 1);
406 1.1 skrll i >= 2;
407 1.1 skrll i--)
408 1.1 skrll generic_bignum[i] = generic_bignum[i - 2];
409 1.1 skrll
410 1.1 skrll /* Add the new digits as the least significant new ones. */
411 1.1 skrll generic_bignum[0] = number & 0xffffffff;
412 1.1 skrll generic_bignum[1] = number >> 16;
413 1.1 skrll }
414 1.1 skrll
415 1.1 skrll /* Again, c is char after number, input_line_pointer->after c. */
416 1.1.1.2 christos
417 1.1 skrll if (num_little_digits > SIZE_OF_LARGE_NUMBER - 1)
418 1.1 skrll num_little_digits = SIZE_OF_LARGE_NUMBER - 1;
419 1.1 skrll
420 1.1 skrll gas_assert (num_little_digits >= 4);
421 1.1 skrll
422 1.1 skrll if (num_little_digits != 8)
423 1.1 skrll as_bad (_("a bignum with underscores must have exactly 4 words"));
424 1.1 skrll
425 1.1 skrll /* We might have some leading zeros. These can be trimmed to give
426 1.1 skrll us a change to fit this constant into a small number. */
427 1.1 skrll while (generic_bignum[num_little_digits - 1] == 0
428 1.1 skrll && num_little_digits > 1)
429 1.1 skrll num_little_digits--;
430 1.1 skrll
431 1.1 skrll if (num_little_digits <= 2)
432 1.1 skrll {
433 1.1 skrll /* will fit into 32 bits. */
434 1.1 skrll number = generic_bignum_to_int32 ();
435 1.1 skrll small = 1;
436 1.1 skrll }
437 1.1 skrll #ifdef BFD64
438 1.1 skrll else if (num_little_digits <= 4)
439 1.1 skrll {
440 1.1 skrll /* Will fit into 64 bits. */
441 1.1 skrll number = generic_bignum_to_int64 ();
442 1.1 skrll small = 1;
443 1.1 skrll }
444 1.1 skrll #endif
445 1.1 skrll else
446 1.1 skrll {
447 1.1 skrll small = 0;
448 1.1 skrll
449 1.1 skrll /* Number of littlenums in the bignum. */
450 1.1 skrll number = num_little_digits;
451 1.1 skrll }
452 1.1 skrll }
453 1.1 skrll else if (!small)
454 1.1 skrll {
455 1.1 skrll /* We saw a lot of digits. manufacture a bignum the hard way. */
456 1.1 skrll LITTLENUM_TYPE *leader; /* -> high order littlenum of the bignum. */
457 1.1 skrll LITTLENUM_TYPE *pointer; /* -> littlenum we are frobbing now. */
458 1.1 skrll long carry;
459 1.1 skrll
460 1.1 skrll leader = generic_bignum;
461 1.1 skrll generic_bignum[0] = 0;
462 1.1 skrll generic_bignum[1] = 0;
463 1.1 skrll generic_bignum[2] = 0;
464 1.1 skrll generic_bignum[3] = 0;
465 1.1 skrll input_line_pointer = start; /* -> 1st digit. */
466 1.1 skrll c = *input_line_pointer++;
467 1.1 skrll for (; (carry = hex_value (c)) < maxdig; c = *input_line_pointer++)
468 1.1 skrll {
469 1.1 skrll for (pointer = generic_bignum; pointer <= leader; pointer++)
470 1.1 skrll {
471 1.1 skrll long work;
472 1.1 skrll
473 1.1 skrll work = carry + radix * *pointer;
474 1.1 skrll *pointer = work & LITTLENUM_MASK;
475 1.1 skrll carry = work >> LITTLENUM_NUMBER_OF_BITS;
476 1.1 skrll }
477 1.1 skrll if (carry)
478 1.1 skrll {
479 1.1 skrll if (leader < generic_bignum + SIZE_OF_LARGE_NUMBER - 1)
480 1.1 skrll {
481 1.1 skrll /* Room to grow a longer bignum. */
482 1.1 skrll *++leader = carry;
483 1.1 skrll }
484 1.1 skrll }
485 1.1 skrll }
486 1.1 skrll /* Again, c is char after number. */
487 1.1 skrll /* input_line_pointer -> after c. */
488 1.1 skrll know (LITTLENUM_NUMBER_OF_BITS == 16);
489 1.1 skrll if (leader < generic_bignum + 2)
490 1.1 skrll {
491 1.1 skrll /* Will fit into 32 bits. */
492 1.1 skrll number = generic_bignum_to_int32 ();
493 1.1 skrll small = 1;
494 1.1 skrll }
495 1.1 skrll #ifdef BFD64
496 1.1 skrll else if (leader < generic_bignum + 4)
497 1.1 skrll {
498 1.1 skrll /* Will fit into 64 bits. */
499 1.1 skrll number = generic_bignum_to_int64 ();
500 1.1 skrll small = 1;
501 1.1 skrll }
502 1.1 skrll #endif
503 1.1 skrll else
504 1.1 skrll {
505 1.1 skrll /* Number of littlenums in the bignum. */
506 1.1 skrll number = leader - generic_bignum + 1;
507 1.1 skrll }
508 1.1 skrll }
509 1.1 skrll
510 1.1 skrll if ((NUMBERS_WITH_SUFFIX || flag_m68k_mri)
511 1.1.1.5 christos && suffix != NULL
512 1.1.1.5 christos && input_line_pointer - 1 == suffix)
513 1.1.1.5 christos c = *input_line_pointer++;
514 1.1.1.5 christos
515 1.1.1.5 christos #ifndef tc_allow_U_suffix
516 1.1.1.5 christos #define tc_allow_U_suffix 1
517 1.1.1.5 christos #endif
518 1.1 skrll /* PR 19910: Look for, and ignore, a U suffix to the number. */
519 1.1 skrll if (tc_allow_U_suffix && (c == 'U' || c == 'u'))
520 1.1 skrll c = * input_line_pointer++;
521 1.1 skrll
522 1.1 skrll if (small)
523 1.1 skrll {
524 1.1 skrll /* Here with number, in correct radix. c is the next char.
525 1.1 skrll Note that unlike un*x, we allow "011f" "0x9f" to both mean
526 1.1 skrll the same as the (conventional) "9f".
527 1.1 skrll This is simply easier than checking for strict canonical
528 1.1 skrll form. Syntax sux! */
529 1.1 skrll
530 1.1 skrll if (LOCAL_LABELS_FB && c == 'b')
531 1.1 skrll {
532 1.1 skrll /* Backward ref to local label.
533 1.1 skrll Because it is backward, expect it to be defined. */
534 1.1 skrll /* Construct a local label. */
535 1.1 skrll name = fb_label_name ((int) number, 0);
536 1.1 skrll
537 1.1 skrll /* Seen before, or symbol is defined: OK. */
538 1.1 skrll symbolP = symbol_find (name);
539 1.1 skrll if ((symbolP != NULL) && (S_IS_DEFINED (symbolP)))
540 1.1 skrll {
541 1.1 skrll /* Local labels are never absolute. Don't waste time
542 1.1 skrll checking absoluteness. */
543 1.1 skrll know (SEG_NORMAL (S_GET_SEGMENT (symbolP)));
544 1.1 skrll
545 1.1 skrll expressionP->X_op = O_symbol;
546 1.1 skrll expressionP->X_add_symbol = symbolP;
547 1.1 skrll }
548 1.1 skrll else
549 1.1 skrll {
550 1.1 skrll /* Either not seen or not defined. */
551 1.1 skrll /* @@ Should print out the original string instead of
552 1.1 skrll the parsed number. */
553 1.1 skrll as_bad (_("backward ref to unknown label \"%d:\""),
554 1.1 skrll (int) number);
555 1.1 skrll expressionP->X_op = O_constant;
556 1.1 skrll }
557 1.1 skrll
558 1.1 skrll expressionP->X_add_number = 0;
559 1.1 skrll } /* case 'b' */
560 1.1 skrll else if (LOCAL_LABELS_FB && c == 'f')
561 1.1 skrll {
562 1.1 skrll /* Forward reference. Expect symbol to be undefined or
563 1.1 skrll unknown. undefined: seen it before. unknown: never seen
564 1.1 skrll it before.
565 1.1 skrll
566 1.1 skrll Construct a local label name, then an undefined symbol.
567 1.1 skrll Don't create a xseg frag for it: caller may do that.
568 1.1 skrll Just return it as never seen before. */
569 1.1 skrll name = fb_label_name ((int) number, 1);
570 1.1 skrll symbolP = symbol_find_or_make (name);
571 1.1 skrll /* We have no need to check symbol properties. */
572 1.1 skrll #ifndef many_segments
573 1.1 skrll /* Since "know" puts its arg into a "string", we
574 1.1 skrll can't have newlines in the argument. */
575 1.1 skrll know (S_GET_SEGMENT (symbolP) == undefined_section || S_GET_SEGMENT (symbolP) == text_section || S_GET_SEGMENT (symbolP) == data_section);
576 1.1 skrll #endif
577 1.1 skrll expressionP->X_op = O_symbol;
578 1.1 skrll expressionP->X_add_symbol = symbolP;
579 1.1 skrll expressionP->X_add_number = 0;
580 1.1 skrll } /* case 'f' */
581 1.1 skrll else if (LOCAL_LABELS_DOLLAR && c == '$')
582 1.1 skrll {
583 1.1 skrll /* If the dollar label is *currently* defined, then this is just
584 1.1 skrll another reference to it. If it is not *currently* defined,
585 1.1 skrll then this is a fresh instantiation of that number, so create
586 1.1 skrll it. */
587 1.1 skrll
588 1.1 skrll if (dollar_label_defined ((long) number))
589 1.1 skrll {
590 1.1 skrll name = dollar_label_name ((long) number, 0);
591 1.1 skrll symbolP = symbol_find (name);
592 1.1 skrll know (symbolP != NULL);
593 1.1 skrll }
594 1.1 skrll else
595 1.1 skrll {
596 1.1 skrll name = dollar_label_name ((long) number, 1);
597 1.1 skrll symbolP = symbol_find_or_make (name);
598 1.1 skrll }
599 1.1 skrll
600 1.1 skrll expressionP->X_op = O_symbol;
601 1.1 skrll expressionP->X_add_symbol = symbolP;
602 1.1 skrll expressionP->X_add_number = 0;
603 1.1 skrll } /* case '$' */
604 1.1 skrll else
605 1.1 skrll {
606 1.1 skrll expressionP->X_op = O_constant;
607 1.1 skrll expressionP->X_add_number = number;
608 1.1 skrll input_line_pointer--; /* Restore following character. */
609 1.1 skrll } /* Really just a number. */
610 1.1 skrll }
611 1.1 skrll else
612 1.1 skrll {
613 1.1 skrll /* Not a small number. */
614 1.1 skrll expressionP->X_op = O_big;
615 1.1 skrll expressionP->X_add_number = number; /* Number of littlenums. */
616 1.1 skrll input_line_pointer--; /* -> char following number. */
617 1.1 skrll }
618 1.1 skrll }
619 1.1 skrll
620 1.1 skrll /* Parse an MRI multi character constant. */
621 1.1 skrll
622 1.1 skrll static void
623 1.1 skrll mri_char_constant (expressionS *expressionP)
624 1.1 skrll {
625 1.1 skrll int i;
626 1.1 skrll
627 1.1 skrll if (*input_line_pointer == '\''
628 1.1 skrll && input_line_pointer[1] != '\'')
629 1.1 skrll {
630 1.1 skrll expressionP->X_op = O_constant;
631 1.1 skrll expressionP->X_add_number = 0;
632 1.1 skrll return;
633 1.1 skrll }
634 1.1 skrll
635 1.1 skrll /* In order to get the correct byte ordering, we must build the
636 1.1 skrll number in reverse. */
637 1.1 skrll for (i = SIZE_OF_LARGE_NUMBER - 1; i >= 0; i--)
638 1.1 skrll {
639 1.1 skrll int j;
640 1.1 skrll
641 1.1 skrll generic_bignum[i] = 0;
642 1.1 skrll for (j = 0; j < CHARS_PER_LITTLENUM; j++)
643 1.1 skrll {
644 1.1 skrll if (*input_line_pointer == '\'')
645 1.1 skrll {
646 1.1 skrll if (input_line_pointer[1] != '\'')
647 1.1 skrll break;
648 1.1 skrll ++input_line_pointer;
649 1.1 skrll }
650 1.1 skrll generic_bignum[i] <<= 8;
651 1.1 skrll generic_bignum[i] += *input_line_pointer;
652 1.1 skrll ++input_line_pointer;
653 1.1 skrll }
654 1.1 skrll
655 1.1 skrll if (i < SIZE_OF_LARGE_NUMBER - 1)
656 1.1 skrll {
657 1.1 skrll /* If there is more than one littlenum, left justify the
658 1.1 skrll last one to make it match the earlier ones. If there is
659 1.1 skrll only one, we can just use the value directly. */
660 1.1 skrll for (; j < CHARS_PER_LITTLENUM; j++)
661 1.1 skrll generic_bignum[i] <<= 8;
662 1.1 skrll }
663 1.1 skrll
664 1.1 skrll if (*input_line_pointer == '\''
665 1.1 skrll && input_line_pointer[1] != '\'')
666 1.1 skrll break;
667 1.1 skrll }
668 1.1 skrll
669 1.1 skrll if (i < 0)
670 1.1 skrll {
671 1.1 skrll as_bad (_("character constant too large"));
672 1.1 skrll i = 0;
673 1.1 skrll }
674 1.1 skrll
675 1.1 skrll if (i > 0)
676 1.1 skrll {
677 1.1 skrll int c;
678 1.1 skrll int j;
679 1.1 skrll
680 1.1 skrll c = SIZE_OF_LARGE_NUMBER - i;
681 1.1 skrll for (j = 0; j < c; j++)
682 1.1 skrll generic_bignum[j] = generic_bignum[i + j];
683 1.1 skrll i = c;
684 1.1 skrll }
685 1.1 skrll
686 1.1 skrll know (LITTLENUM_NUMBER_OF_BITS == 16);
687 1.1 skrll if (i > 2)
688 1.1 skrll {
689 1.1 skrll expressionP->X_op = O_big;
690 1.1 skrll expressionP->X_add_number = i;
691 1.1 skrll }
692 1.1 skrll else
693 1.1 skrll {
694 1.1 skrll expressionP->X_op = O_constant;
695 1.1 skrll if (i < 2)
696 1.1 skrll expressionP->X_add_number = generic_bignum[0] & LITTLENUM_MASK;
697 1.1 skrll else
698 1.1 skrll expressionP->X_add_number =
699 1.1 skrll (((generic_bignum[1] & LITTLENUM_MASK)
700 1.1 skrll << LITTLENUM_NUMBER_OF_BITS)
701 1.1 skrll | (generic_bignum[0] & LITTLENUM_MASK));
702 1.1 skrll }
703 1.1 skrll
704 1.1 skrll /* Skip the final closing quote. */
705 1.1 skrll ++input_line_pointer;
706 1.1 skrll }
707 1.1.1.2 christos
708 1.1 skrll /* Return an expression representing the current location. This
709 1.1 skrll handles the magic symbol `.'. */
710 1.1 skrll
711 1.1 skrll void
712 1.1 skrll current_location (expressionS *expressionp)
713 1.1 skrll {
714 1.1 skrll if (now_seg == absolute_section)
715 1.1 skrll {
716 1.1 skrll expressionp->X_op = O_constant;
717 1.1 skrll expressionp->X_add_number = abs_section_offset;
718 1.1.1.2 christos }
719 1.1 skrll else
720 1.1 skrll {
721 1.1 skrll expressionp->X_op = O_symbol;
722 1.1 skrll expressionp->X_add_symbol = &dot_symbol;
723 1.1 skrll expressionp->X_add_number = 0;
724 1.1 skrll }
725 1.1 skrll }
726 1.1 skrll
727 1.1 skrll /* In: Input_line_pointer points to 1st char of operand, which may
728 1.1 skrll be a space.
729 1.1 skrll
730 1.1 skrll Out: An expressionS.
731 1.1 skrll The operand may have been empty: in this case X_op == O_absent.
732 1.1 skrll Input_line_pointer->(next non-blank) char after operand. */
733 1.1 skrll
734 1.1 skrll static segT
735 1.1 skrll operand (expressionS *expressionP, enum expr_mode mode)
736 1.1 skrll {
737 1.1 skrll char c;
738 1.1 skrll symbolS *symbolP; /* Points to symbol. */
739 1.1 skrll char *name; /* Points to name of symbol. */
740 1.1 skrll segT segment;
741 1.1 skrll
742 1.1 skrll /* All integers are regarded as unsigned unless they are negated.
743 1.1 skrll This is because the only thing which cares whether a number is
744 1.1 skrll unsigned is the code in emit_expr which extends constants into
745 1.1.1.4 christos bignums. It should only sign extend negative numbers, so that
746 1.1 skrll something like ``.quad 0x80000000'' is not sign extended even
747 1.1 skrll though it appears negative if valueT is 32 bits. */
748 1.1 skrll expressionP->X_unsigned = 1;
749 1.1 skrll expressionP->X_extrabit = 0;
750 1.1 skrll
751 1.1 skrll /* Digits, assume it is a bignum. */
752 1.1 skrll
753 1.1 skrll SKIP_WHITESPACE (); /* Leading whitespace is part of operand. */
754 1.1 skrll c = *input_line_pointer++; /* input_line_pointer -> past char in c. */
755 1.1 skrll
756 1.1 skrll if (is_end_of_line[(unsigned char) c])
757 1.1 skrll goto eol;
758 1.1 skrll
759 1.1 skrll switch (c)
760 1.1 skrll {
761 1.1 skrll case '1':
762 1.1 skrll case '2':
763 1.1 skrll case '3':
764 1.1 skrll case '4':
765 1.1 skrll case '5':
766 1.1 skrll case '6':
767 1.1 skrll case '7':
768 1.1 skrll case '8':
769 1.1 skrll case '9':
770 1.1 skrll input_line_pointer--;
771 1.1 skrll
772 1.1 skrll integer_constant ((NUMBERS_WITH_SUFFIX || flag_m68k_mri)
773 1.1 skrll ? 0 : 10,
774 1.1 skrll expressionP);
775 1.1 skrll break;
776 1.1 skrll
777 1.1 skrll #ifdef LITERAL_PREFIXDOLLAR_HEX
778 1.1 skrll case '$':
779 1.1 skrll /* $L is the start of a local label, not a hex constant. */
780 1.1 skrll if (* input_line_pointer == 'L')
781 1.1 skrll goto isname;
782 1.1 skrll integer_constant (16, expressionP);
783 1.1 skrll break;
784 1.1 skrll #endif
785 1.1 skrll
786 1.1 skrll #ifdef LITERAL_PREFIXPERCENT_BIN
787 1.1 skrll case '%':
788 1.1 skrll integer_constant (2, expressionP);
789 1.1 skrll break;
790 1.1 skrll #endif
791 1.1 skrll
792 1.1 skrll case '0':
793 1.1 skrll /* Non-decimal radix. */
794 1.1 skrll
795 1.1 skrll if (NUMBERS_WITH_SUFFIX || flag_m68k_mri)
796 1.1 skrll {
797 1.1 skrll char *s;
798 1.1 skrll
799 1.1 skrll /* Check for a hex or float constant. */
800 1.1 skrll for (s = input_line_pointer; hex_p (*s); s++)
801 1.1 skrll ;
802 1.1 skrll if (*s == 'h' || *s == 'H' || *input_line_pointer == '.')
803 1.1 skrll {
804 1.1 skrll --input_line_pointer;
805 1.1 skrll integer_constant (0, expressionP);
806 1.1 skrll break;
807 1.1 skrll }
808 1.1 skrll }
809 1.1 skrll c = *input_line_pointer;
810 1.1 skrll switch (c)
811 1.1 skrll {
812 1.1 skrll case 'o':
813 1.1 skrll case 'O':
814 1.1 skrll case 'q':
815 1.1 skrll case 'Q':
816 1.1 skrll case '8':
817 1.1 skrll case '9':
818 1.1 skrll if (NUMBERS_WITH_SUFFIX || flag_m68k_mri)
819 1.1 skrll {
820 1.1 skrll integer_constant (0, expressionP);
821 1.1 skrll break;
822 1.1 skrll }
823 1.1 skrll /* Fall through. */
824 1.1 skrll default:
825 1.1 skrll default_case:
826 1.1 skrll if (c && strchr (FLT_CHARS, c))
827 1.1 skrll {
828 1.1 skrll input_line_pointer++;
829 1.1 skrll floating_constant (expressionP);
830 1.1 skrll expressionP->X_add_number = - TOLOWER (c);
831 1.1 skrll }
832 1.1 skrll else
833 1.1 skrll {
834 1.1 skrll /* The string was only zero. */
835 1.1 skrll expressionP->X_op = O_constant;
836 1.1 skrll expressionP->X_add_number = 0;
837 1.1 skrll }
838 1.1 skrll
839 1.1 skrll break;
840 1.1 skrll
841 1.1 skrll case 'x':
842 1.1 skrll case 'X':
843 1.1 skrll if (flag_m68k_mri)
844 1.1 skrll goto default_case;
845 1.1 skrll input_line_pointer++;
846 1.1.1.4 christos integer_constant (16, expressionP);
847 1.1.1.4 christos break;
848 1.1.1.4 christos
849 1.1 skrll case 'b':
850 1.1.1.4 christos if (LOCAL_LABELS_FB && !flag_m68k_mri
851 1.1.1.4 christos && input_line_pointer[1] != '0'
852 1.1.1.4 christos && input_line_pointer[1] != '1')
853 1.1.1.4 christos {
854 1.1 skrll /* Parse this as a back reference to label 0. */
855 1.1.1.4 christos input_line_pointer--;
856 1.1 skrll integer_constant (10, expressionP);
857 1.1 skrll break;
858 1.1.1.4 christos }
859 1.1.1.4 christos /* Otherwise, parse this as a binary number. */
860 1.1.1.4 christos /* Fall through. */
861 1.1.1.4 christos case 'B':
862 1.1.1.4 christos if (input_line_pointer[1] == '0'
863 1.1.1.4 christos || input_line_pointer[1] == '1')
864 1.1.1.4 christos {
865 1.1 skrll input_line_pointer++;
866 1.1.1.4 christos integer_constant (2, expressionP);
867 1.1.1.4 christos break;
868 1.1 skrll }
869 1.1 skrll if (flag_m68k_mri || NUMBERS_WITH_SUFFIX)
870 1.1 skrll input_line_pointer++;
871 1.1 skrll goto default_case;
872 1.1 skrll
873 1.1 skrll case '0':
874 1.1 skrll case '1':
875 1.1 skrll case '2':
876 1.1 skrll case '3':
877 1.1 skrll case '4':
878 1.1 skrll case '5':
879 1.1 skrll case '6':
880 1.1 skrll case '7':
881 1.1 skrll integer_constant ((flag_m68k_mri || NUMBERS_WITH_SUFFIX)
882 1.1 skrll ? 0 : 8,
883 1.1 skrll expressionP);
884 1.1 skrll break;
885 1.1.1.4 christos
886 1.1.1.4 christos case 'f':
887 1.1 skrll if (LOCAL_LABELS_FB)
888 1.1 skrll {
889 1.1 skrll int is_label = 1;
890 1.1.1.4 christos
891 1.1.1.4 christos /* If it says "0f" and it could possibly be a floating point
892 1.1.1.4 christos number, make it one. Otherwise, make it a local label,
893 1.1.1.4 christos and try to deal with parsing the rest later. */
894 1.1 skrll if (!is_end_of_line[(unsigned char) input_line_pointer[1]]
895 1.1.1.4 christos && strchr (FLT_CHARS, 'f') != NULL)
896 1.1.1.4 christos {
897 1.1 skrll char *cp = input_line_pointer + 1;
898 1.1.1.4 christos
899 1.1.1.4 christos atof_generic (&cp, ".", EXP_CHARS,
900 1.1.1.4 christos &generic_floating_point_number);
901 1.1.1.4 christos
902 1.1.1.4 christos /* Was nothing parsed, or does it look like an
903 1.1.1.4 christos expression? */
904 1.1.1.4 christos is_label = (cp == input_line_pointer + 1
905 1.1.1.4 christos || (cp == input_line_pointer + 2
906 1.1.1.4 christos && (cp[-1] == '-' || cp[-1] == '+'))
907 1.1.1.4 christos || *cp == 'f'
908 1.1.1.4 christos || *cp == 'b');
909 1.1.1.4 christos }
910 1.1.1.4 christos if (is_label)
911 1.1.1.4 christos {
912 1.1 skrll input_line_pointer--;
913 1.1.1.4 christos integer_constant (10, expressionP);
914 1.1 skrll break;
915 1.1 skrll }
916 1.1 skrll }
917 1.1 skrll /* Fall through. */
918 1.1 skrll
919 1.1 skrll case 'd':
920 1.1 skrll case 'D':
921 1.1 skrll if (flag_m68k_mri || NUMBERS_WITH_SUFFIX)
922 1.1 skrll {
923 1.1 skrll integer_constant (0, expressionP);
924 1.1 skrll break;
925 1.1 skrll }
926 1.1 skrll /* Fall through. */
927 1.1 skrll case 'F':
928 1.1 skrll case 'r':
929 1.1 skrll case 'e':
930 1.1 skrll case 'E':
931 1.1 skrll case 'g':
932 1.1 skrll case 'G':
933 1.1 skrll input_line_pointer++;
934 1.1 skrll floating_constant (expressionP);
935 1.1 skrll expressionP->X_add_number = - TOLOWER (c);
936 1.1 skrll break;
937 1.1 skrll
938 1.1 skrll case '$':
939 1.1 skrll if (LOCAL_LABELS_DOLLAR)
940 1.1 skrll {
941 1.1 skrll integer_constant (10, expressionP);
942 1.1 skrll break;
943 1.1 skrll }
944 1.1 skrll else
945 1.1 skrll goto default_case;
946 1.1 skrll }
947 1.1 skrll
948 1.1.1.2 christos break;
949 1.1.1.2 christos
950 1.1.1.2 christos #ifndef NEED_INDEX_OPERATOR
951 1.1.1.2 christos case '[':
952 1.1.1.2 christos # ifdef md_need_index_operator
953 1.1 skrll if (md_need_index_operator())
954 1.1.1.2 christos goto de_fault;
955 1.1 skrll # endif
956 1.1.1.2 christos /* FALLTHROUGH */
957 1.1 skrll #endif
958 1.1 skrll case '(':
959 1.1 skrll /* Didn't begin with digit & not a name. */
960 1.1.1.5 christos segment = expr (0, expressionP, mode);
961 1.1.1.5 christos /* expression () will pass trailing whitespace. */
962 1.1.1.5 christos if ((c == '(' && *input_line_pointer != ')')
963 1.1.1.5 christos || (c == '[' && *input_line_pointer != ']'))
964 1.1.1.5 christos {
965 1.1.1.5 christos if (* input_line_pointer)
966 1.1.1.5 christos as_bad (_("found '%c', expected: '%c'"),
967 1.1 skrll * input_line_pointer, c == '(' ? ')' : ']');
968 1.1 skrll else
969 1.1 skrll as_bad (_("missing '%c'"), c == '(' ? ')' : ']');
970 1.1 skrll }
971 1.1 skrll else
972 1.1 skrll input_line_pointer++;
973 1.1 skrll SKIP_WHITESPACE ();
974 1.1 skrll /* Here with input_line_pointer -> char after "(...)". */
975 1.1 skrll return segment;
976 1.1 skrll
977 1.1 skrll #ifdef TC_M68K
978 1.1 skrll case 'E':
979 1.1 skrll if (! flag_m68k_mri || *input_line_pointer != '\'')
980 1.1 skrll goto de_fault;
981 1.1 skrll as_bad (_("EBCDIC constants are not supported"));
982 1.1 skrll /* Fall through. */
983 1.1 skrll case 'A':
984 1.1 skrll if (! flag_m68k_mri || *input_line_pointer != '\'')
985 1.1 skrll goto de_fault;
986 1.1 skrll ++input_line_pointer;
987 1.1 skrll /* Fall through. */
988 1.1 skrll #endif
989 1.1 skrll case '\'':
990 1.1 skrll if (! flag_m68k_mri)
991 1.1 skrll {
992 1.1 skrll /* Warning: to conform to other people's assemblers NO
993 1.1 skrll ESCAPEMENT is permitted for a single quote. The next
994 1.1 skrll character, parity errors and all, is taken as the value
995 1.1 skrll of the operand. VERY KINKY. */
996 1.1 skrll expressionP->X_op = O_constant;
997 1.1 skrll expressionP->X_add_number = *input_line_pointer++;
998 1.1 skrll break;
999 1.1 skrll }
1000 1.1 skrll
1001 1.1 skrll mri_char_constant (expressionP);
1002 1.1 skrll break;
1003 1.1 skrll
1004 1.1 skrll #ifdef TC_M68K
1005 1.1 skrll case '"':
1006 1.1 skrll /* Double quote is the bitwise not operator in MRI mode. */
1007 1.1 skrll if (! flag_m68k_mri)
1008 1.1 skrll goto de_fault;
1009 1.1 skrll /* Fall through. */
1010 1.1 skrll #endif
1011 1.1 skrll case '~':
1012 1.1 skrll /* '~' is permitted to start a label on the Delta. */
1013 1.1 skrll if (is_name_beginner (c))
1014 1.1 skrll goto isname;
1015 1.1.1.2 christos case '!':
1016 1.1.1.2 christos case '-':
1017 1.1.1.2 christos case '+':
1018 1.1 skrll {
1019 1.1 skrll #ifdef md_operator
1020 1.1 skrll unary:
1021 1.1 skrll #endif
1022 1.1 skrll operand (expressionP, mode);
1023 1.1 skrll if (expressionP->X_op == O_constant)
1024 1.1.1.4 christos {
1025 1.1.1.4 christos /* input_line_pointer -> char after operand. */
1026 1.1 skrll if (c == '-')
1027 1.1 skrll {
1028 1.1 skrll expressionP->X_add_number
1029 1.1 skrll = - (addressT) expressionP->X_add_number;
1030 1.1.1.4 christos /* Notice: '-' may overflow: no warning is given.
1031 1.1.1.4 christos This is compatible with other people's
1032 1.1 skrll assemblers. Sigh. */
1033 1.1 skrll expressionP->X_unsigned = 0;
1034 1.1 skrll if (expressionP->X_add_number)
1035 1.1 skrll expressionP->X_extrabit ^= 1;
1036 1.1 skrll }
1037 1.1 skrll else if (c == '~' || c == '"')
1038 1.1 skrll expressionP->X_add_number = ~ expressionP->X_add_number;
1039 1.1 skrll else if (c == '!')
1040 1.1 skrll expressionP->X_add_number = ! expressionP->X_add_number;
1041 1.1 skrll }
1042 1.1 skrll else if (expressionP->X_op == O_big
1043 1.1 skrll && expressionP->X_add_number <= 0
1044 1.1 skrll && c == '-'
1045 1.1 skrll && (generic_floating_point_number.sign == '+'
1046 1.1 skrll || generic_floating_point_number.sign == 'P'))
1047 1.1 skrll {
1048 1.1 skrll /* Negative flonum (eg, -1.000e0). */
1049 1.1 skrll if (generic_floating_point_number.sign == '+')
1050 1.1 skrll generic_floating_point_number.sign = '-';
1051 1.1 skrll else
1052 1.1 skrll generic_floating_point_number.sign = 'N';
1053 1.1 skrll }
1054 1.1 skrll else if (expressionP->X_op == O_big
1055 1.1 skrll && expressionP->X_add_number > 0)
1056 1.1 skrll {
1057 1.1 skrll int i;
1058 1.1 skrll
1059 1.1.1.2 christos if (c == '~' || c == '-')
1060 1.1.1.2 christos {
1061 1.1.1.2 christos for (i = 0; i < expressionP->X_add_number; ++i)
1062 1.1.1.2 christos generic_bignum[i] = ~generic_bignum[i];
1063 1.1.1.2 christos
1064 1.1.1.2 christos /* Extend the bignum to at least the size of .octa. */
1065 1.1.1.2 christos if (expressionP->X_add_number < SIZE_OF_LARGE_NUMBER)
1066 1.1.1.2 christos {
1067 1.1.1.2 christos expressionP->X_add_number = SIZE_OF_LARGE_NUMBER;
1068 1.1 skrll for (; i < expressionP->X_add_number; ++i)
1069 1.1 skrll generic_bignum[i] = ~(LITTLENUM_TYPE) 0;
1070 1.1 skrll }
1071 1.1 skrll
1072 1.1 skrll if (c == '-')
1073 1.1 skrll for (i = 0; i < expressionP->X_add_number; ++i)
1074 1.1 skrll {
1075 1.1 skrll generic_bignum[i] += 1;
1076 1.1 skrll if (generic_bignum[i])
1077 1.1 skrll break;
1078 1.1 skrll }
1079 1.1.1.2 christos }
1080 1.1.1.2 christos else if (c == '!')
1081 1.1.1.2 christos {
1082 1.1.1.2 christos for (i = 0; i < expressionP->X_add_number; ++i)
1083 1.1.1.2 christos if (generic_bignum[i] != 0)
1084 1.1.1.4 christos break;
1085 1.1 skrll expressionP->X_add_number = i >= expressionP->X_add_number;
1086 1.1 skrll expressionP->X_op = O_constant;
1087 1.1 skrll expressionP->X_unsigned = 1;
1088 1.1 skrll expressionP->X_extrabit = 0;
1089 1.1 skrll }
1090 1.1 skrll }
1091 1.1 skrll else if (expressionP->X_op != O_illegal
1092 1.1 skrll && expressionP->X_op != O_absent)
1093 1.1 skrll {
1094 1.1 skrll if (c != '+')
1095 1.1 skrll {
1096 1.1 skrll expressionP->X_add_symbol = make_expr_symbol (expressionP);
1097 1.1 skrll if (c == '-')
1098 1.1 skrll expressionP->X_op = O_uminus;
1099 1.1 skrll else if (c == '~' || c == '"')
1100 1.1 skrll expressionP->X_op = O_bit_not;
1101 1.1 skrll else
1102 1.1 skrll expressionP->X_op = O_logical_not;
1103 1.1 skrll expressionP->X_add_number = 0;
1104 1.1 skrll }
1105 1.1 skrll }
1106 1.1 skrll else
1107 1.1 skrll as_warn (_("Unary operator %c ignored because bad operand follows"),
1108 1.1 skrll c);
1109 1.1 skrll }
1110 1.1 skrll break;
1111 1.1 skrll
1112 1.1 skrll #if defined (DOLLAR_DOT) || defined (TC_M68K)
1113 1.1 skrll case '$':
1114 1.1 skrll /* '$' is the program counter when in MRI mode, or when
1115 1.1 skrll DOLLAR_DOT is defined. */
1116 1.1 skrll #ifndef DOLLAR_DOT
1117 1.1 skrll if (! flag_m68k_mri)
1118 1.1 skrll goto de_fault;
1119 1.1 skrll #endif
1120 1.1 skrll if (DOLLAR_AMBIGU && hex_p (*input_line_pointer))
1121 1.1 skrll {
1122 1.1 skrll /* In MRI mode and on Z80, '$' is also used as the prefix
1123 1.1 skrll for a hexadecimal constant. */
1124 1.1 skrll integer_constant (16, expressionP);
1125 1.1 skrll break;
1126 1.1 skrll }
1127 1.1 skrll
1128 1.1 skrll if (is_part_of_name (*input_line_pointer))
1129 1.1 skrll goto isname;
1130 1.1 skrll
1131 1.1 skrll current_location (expressionP);
1132 1.1 skrll break;
1133 1.1 skrll #endif
1134 1.1 skrll
1135 1.1 skrll case '.':
1136 1.1 skrll if (!is_part_of_name (*input_line_pointer))
1137 1.1 skrll {
1138 1.1 skrll current_location (expressionP);
1139 1.1 skrll break;
1140 1.1 skrll }
1141 1.1 skrll else if ((strncasecmp (input_line_pointer, "startof.", 8) == 0
1142 1.1 skrll && ! is_part_of_name (input_line_pointer[8]))
1143 1.1 skrll || (strncasecmp (input_line_pointer, "sizeof.", 7) == 0
1144 1.1 skrll && ! is_part_of_name (input_line_pointer[7])))
1145 1.1 skrll {
1146 1.1 skrll int start;
1147 1.1 skrll
1148 1.1 skrll start = (input_line_pointer[1] == 't'
1149 1.1 skrll || input_line_pointer[1] == 'T');
1150 1.1 skrll input_line_pointer += start ? 8 : 7;
1151 1.1 skrll SKIP_WHITESPACE ();
1152 1.1 skrll if (*input_line_pointer != '(')
1153 1.1 skrll as_bad (_("syntax error in .startof. or .sizeof."));
1154 1.1 skrll else
1155 1.1 skrll {
1156 1.1.1.4 christos char *buf;
1157 1.1 skrll
1158 1.1.1.5 christos ++input_line_pointer;
1159 1.1.1.5 christos SKIP_WHITESPACE ();
1160 1.1 skrll c = get_symbol_name (& name);
1161 1.1 skrll
1162 1.1 skrll buf = concat (start ? ".startof." : ".sizeof.", name,
1163 1.1 skrll (char *) NULL);
1164 1.1 skrll symbolP = symbol_make (buf);
1165 1.1 skrll free (buf);
1166 1.1 skrll
1167 1.1 skrll expressionP->X_op = O_symbol;
1168 1.1.1.4 christos expressionP->X_add_symbol = symbolP;
1169 1.1 skrll expressionP->X_add_number = 0;
1170 1.1 skrll
1171 1.1 skrll *input_line_pointer = c;
1172 1.1 skrll SKIP_WHITESPACE_AFTER_NAME ();
1173 1.1 skrll if (*input_line_pointer != ')')
1174 1.1 skrll as_bad (_("syntax error in .startof. or .sizeof."));
1175 1.1 skrll else
1176 1.1 skrll ++input_line_pointer;
1177 1.1 skrll }
1178 1.1 skrll break;
1179 1.1 skrll }
1180 1.1 skrll else
1181 1.1 skrll {
1182 1.1 skrll goto isname;
1183 1.1 skrll }
1184 1.1 skrll
1185 1.1 skrll case ',':
1186 1.1 skrll eol:
1187 1.1 skrll /* Can't imagine any other kind of operand. */
1188 1.1 skrll expressionP->X_op = O_absent;
1189 1.1 skrll input_line_pointer--;
1190 1.1 skrll break;
1191 1.1 skrll
1192 1.1 skrll #ifdef TC_M68K
1193 1.1 skrll case '%':
1194 1.1 skrll if (! flag_m68k_mri)
1195 1.1 skrll goto de_fault;
1196 1.1 skrll integer_constant (2, expressionP);
1197 1.1 skrll break;
1198 1.1 skrll
1199 1.1 skrll case '@':
1200 1.1 skrll if (! flag_m68k_mri)
1201 1.1 skrll goto de_fault;
1202 1.1 skrll integer_constant (8, expressionP);
1203 1.1 skrll break;
1204 1.1 skrll
1205 1.1 skrll case ':':
1206 1.1 skrll if (! flag_m68k_mri)
1207 1.1 skrll goto de_fault;
1208 1.1 skrll
1209 1.1 skrll /* In MRI mode, this is a floating point constant represented
1210 1.1 skrll using hexadecimal digits. */
1211 1.1 skrll
1212 1.1 skrll ++input_line_pointer;
1213 1.1 skrll integer_constant (16, expressionP);
1214 1.1 skrll break;
1215 1.1 skrll
1216 1.1 skrll case '*':
1217 1.1 skrll if (! flag_m68k_mri || is_part_of_name (*input_line_pointer))
1218 1.1 skrll goto de_fault;
1219 1.1 skrll
1220 1.1 skrll current_location (expressionP);
1221 1.1.1.2 christos break;
1222 1.1 skrll #endif
1223 1.1 skrll
1224 1.1.1.4 christos default:
1225 1.1 skrll #if defined(md_need_index_operator) || defined(TC_M68K)
1226 1.1 skrll de_fault:
1227 1.1 skrll #endif
1228 1.1 skrll if (is_name_beginner (c) || c == '"') /* Here if did not begin with a digit. */
1229 1.1.1.4 christos {
1230 1.1.1.4 christos /* Identifier begins here.
1231 1.1 skrll This is kludged for speed, so code is repeated. */
1232 1.1.1.2 christos isname:
1233 1.1.1.2 christos -- input_line_pointer;
1234 1.1.1.2 christos c = get_symbol_name (&name);
1235 1.1.1.2 christos
1236 1.1.1.2 christos #ifdef md_operator
1237 1.1.1.2 christos {
1238 1.1.1.2 christos operatorT op = md_operator (name, 1, &c);
1239 1.1.1.4 christos
1240 1.1.1.2 christos switch (op)
1241 1.1.1.2 christos {
1242 1.1.1.2 christos case O_uminus:
1243 1.1.1.4 christos restore_line_pointer (c);
1244 1.1.1.2 christos c = '-';
1245 1.1.1.2 christos goto unary;
1246 1.1.1.2 christos case O_bit_not:
1247 1.1.1.4 christos restore_line_pointer (c);
1248 1.1.1.2 christos c = '~';
1249 1.1.1.2 christos goto unary;
1250 1.1.1.2 christos case O_logical_not:
1251 1.1.1.2 christos restore_line_pointer (c);
1252 1.1.1.2 christos c = '!';
1253 1.1.1.2 christos goto unary;
1254 1.1.1.2 christos case O_illegal:
1255 1.1.1.2 christos as_bad (_("invalid use of operator \"%s\""), name);
1256 1.1.1.4 christos break;
1257 1.1.1.2 christos default:
1258 1.1.1.2 christos break;
1259 1.1.1.4 christos }
1260 1.1.1.2 christos
1261 1.1.1.2 christos if (op != O_absent && op != O_illegal)
1262 1.1.1.2 christos {
1263 1.1.1.2 christos restore_line_pointer (c);
1264 1.1.1.2 christos expr (9, expressionP, mode);
1265 1.1.1.2 christos expressionP->X_add_symbol = make_expr_symbol (expressionP);
1266 1.1.1.2 christos expressionP->X_op_symbol = NULL;
1267 1.1.1.2 christos expressionP->X_add_number = 0;
1268 1.1.1.2 christos expressionP->X_op = op;
1269 1.1.1.2 christos break;
1270 1.1 skrll }
1271 1.1 skrll }
1272 1.1 skrll #endif
1273 1.1 skrll
1274 1.1 skrll #ifdef md_parse_name
1275 1.1 skrll /* This is a hook for the backend to parse certain names
1276 1.1 skrll specially in certain contexts. If a name always has a
1277 1.1.1.4 christos specific value, it can often be handled by simply
1278 1.1 skrll entering it in the symbol table. */
1279 1.1 skrll if (md_parse_name (name, expressionP, mode, &c))
1280 1.1 skrll {
1281 1.1 skrll restore_line_pointer (c);
1282 1.1 skrll break;
1283 1.1 skrll }
1284 1.1 skrll #endif
1285 1.1 skrll
1286 1.1 skrll #ifdef TC_I960
1287 1.1 skrll /* The MRI i960 assembler permits
1288 1.1 skrll lda sizeof code,g13
1289 1.1 skrll FIXME: This should use md_parse_name. */
1290 1.1 skrll if (flag_mri
1291 1.1 skrll && (strcasecmp (name, "sizeof") == 0
1292 1.1 skrll || strcasecmp (name, "startof") == 0))
1293 1.1 skrll {
1294 1.1 skrll int start;
1295 1.1 skrll char *buf;
1296 1.1 skrll
1297 1.1.1.4 christos start = (name[1] == 't'
1298 1.1 skrll || name[1] == 'T');
1299 1.1.1.4 christos
1300 1.1 skrll *input_line_pointer = c;
1301 1.1.1.5 christos SKIP_WHITESPACE_AFTER_NAME ();
1302 1.1.1.5 christos
1303 1.1 skrll c = get_symbol_name (& name);
1304 1.1 skrll
1305 1.1 skrll buf = concat (start ? ".startof." : ".sizeof.", name,
1306 1.1 skrll (char *) NULL);
1307 1.1 skrll symbolP = symbol_make (buf);
1308 1.1 skrll free (buf);
1309 1.1 skrll
1310 1.1 skrll expressionP->X_op = O_symbol;
1311 1.1.1.4 christos expressionP->X_add_symbol = symbolP;
1312 1.1 skrll expressionP->X_add_number = 0;
1313 1.1 skrll
1314 1.1 skrll *input_line_pointer = c;
1315 1.1 skrll SKIP_WHITESPACE_AFTER_NAME ();
1316 1.1 skrll break;
1317 1.1 skrll }
1318 1.1 skrll #endif
1319 1.1 skrll
1320 1.1 skrll symbolP = symbol_find_or_make (name);
1321 1.1.1.2 christos
1322 1.1.1.2 christos /* If we have an absolute symbol or a reg, then we know its
1323 1.1.1.2 christos value now. */
1324 1.1 skrll segment = S_GET_SEGMENT (symbolP);
1325 1.1 skrll if (mode != expr_defer
1326 1.1 skrll && segment == absolute_section
1327 1.1 skrll && !S_FORCE_RELOC (symbolP, 0))
1328 1.1 skrll {
1329 1.1 skrll expressionP->X_op = O_constant;
1330 1.1 skrll expressionP->X_add_number = S_GET_VALUE (symbolP);
1331 1.1 skrll }
1332 1.1 skrll else if (mode != expr_defer && segment == reg_section)
1333 1.1 skrll {
1334 1.1 skrll expressionP->X_op = O_register;
1335 1.1 skrll expressionP->X_add_number = S_GET_VALUE (symbolP);
1336 1.1 skrll }
1337 1.1 skrll else
1338 1.1 skrll {
1339 1.1.1.4 christos expressionP->X_op = O_symbol;
1340 1.1.1.4 christos expressionP->X_add_symbol = symbolP;
1341 1.1 skrll expressionP->X_add_number = 0;
1342 1.1 skrll }
1343 1.1 skrll
1344 1.1 skrll restore_line_pointer (c);
1345 1.1 skrll }
1346 1.1 skrll else
1347 1.1 skrll {
1348 1.1 skrll /* Let the target try to parse it. Success is indicated by changing
1349 1.1 skrll the X_op field to something other than O_absent and pointing
1350 1.1 skrll input_line_pointer past the expression. If it can't parse the
1351 1.1 skrll expression, X_op and input_line_pointer should be unchanged. */
1352 1.1 skrll expressionP->X_op = O_absent;
1353 1.1 skrll --input_line_pointer;
1354 1.1 skrll md_operand (expressionP);
1355 1.1 skrll if (expressionP->X_op == O_absent)
1356 1.1 skrll {
1357 1.1 skrll ++input_line_pointer;
1358 1.1 skrll as_bad (_("bad expression"));
1359 1.1 skrll expressionP->X_op = O_constant;
1360 1.1 skrll expressionP->X_add_number = 0;
1361 1.1 skrll }
1362 1.1 skrll }
1363 1.1 skrll break;
1364 1.1 skrll }
1365 1.1 skrll
1366 1.1 skrll /* It is more 'efficient' to clean up the expressionS when they are
1367 1.1 skrll created. Doing it here saves lines of code. */
1368 1.1 skrll clean_up_expression (expressionP);
1369 1.1 skrll SKIP_WHITESPACE (); /* -> 1st char after operand. */
1370 1.1 skrll know (*input_line_pointer != ' ');
1371 1.1 skrll
1372 1.1.1.2 christos /* The PA port needs this information. */
1373 1.1.1.2 christos if (expressionP->X_add_symbol)
1374 1.1.1.2 christos symbol_mark_used (expressionP->X_add_symbol);
1375 1.1.1.2 christos
1376 1.1.1.2 christos if (mode != expr_defer)
1377 1.1.1.2 christos {
1378 1.1.1.2 christos expressionP->X_add_symbol
1379 1.1 skrll = symbol_clone_if_forward_ref (expressionP->X_add_symbol);
1380 1.1 skrll expressionP->X_op_symbol
1381 1.1 skrll = symbol_clone_if_forward_ref (expressionP->X_op_symbol);
1382 1.1 skrll }
1383 1.1 skrll
1384 1.1 skrll switch (expressionP->X_op)
1385 1.1 skrll {
1386 1.1 skrll default:
1387 1.1 skrll return absolute_section;
1388 1.1 skrll case O_symbol:
1389 1.1 skrll return S_GET_SEGMENT (expressionP->X_add_symbol);
1390 1.1 skrll case O_register:
1391 1.1 skrll return reg_section;
1392 1.1 skrll }
1393 1.1 skrll }
1394 1.1 skrll
1395 1.1 skrll /* Internal. Simplify a struct expression for use by expr (). */
1397 1.1 skrll
1398 1.1 skrll /* In: address of an expressionS.
1399 1.1 skrll The X_op field of the expressionS may only take certain values.
1400 1.1 skrll Elsewise we waste time special-case testing. Sigh. Ditto SEG_ABSENT.
1401 1.1 skrll
1402 1.1 skrll Out: expressionS may have been modified:
1403 1.1 skrll Unused fields zeroed to help expr (). */
1404 1.1 skrll
1405 1.1 skrll static void
1406 1.1 skrll clean_up_expression (expressionS *expressionP)
1407 1.1 skrll {
1408 1.1 skrll switch (expressionP->X_op)
1409 1.1 skrll {
1410 1.1 skrll case O_illegal:
1411 1.1 skrll case O_absent:
1412 1.1 skrll expressionP->X_add_number = 0;
1413 1.1 skrll /* Fall through. */
1414 1.1 skrll case O_big:
1415 1.1 skrll case O_constant:
1416 1.1 skrll case O_register:
1417 1.1 skrll expressionP->X_add_symbol = NULL;
1418 1.1 skrll /* Fall through. */
1419 1.1 skrll case O_symbol:
1420 1.1 skrll case O_uminus:
1421 1.1 skrll case O_bit_not:
1422 1.1 skrll expressionP->X_op_symbol = NULL;
1423 1.1 skrll break;
1424 1.1 skrll default:
1425 1.1 skrll break;
1426 1.1 skrll }
1427 1.1 skrll }
1428 1.1 skrll
1429 1.1 skrll /* Expression parser. */
1431 1.1 skrll
1432 1.1 skrll /* We allow an empty expression, and just assume (absolute,0) silently.
1433 1.1 skrll Unary operators and parenthetical expressions are treated as operands.
1434 1.1 skrll As usual, Q==quantity==operand, O==operator, X==expression mnemonics.
1435 1.1 skrll
1436 1.1 skrll We used to do an aho/ullman shift-reduce parser, but the logic got so
1437 1.1 skrll warped that I flushed it and wrote a recursive-descent parser instead.
1438 1.1 skrll Now things are stable, would anybody like to write a fast parser?
1439 1.1 skrll Most expressions are either register (which does not even reach here)
1440 1.1 skrll or 1 symbol. Then "symbol+constant" and "symbol-symbol" are common.
1441 1.1 skrll So I guess it doesn't really matter how inefficient more complex expressions
1442 1.1 skrll are parsed.
1443 1.1 skrll
1444 1.1 skrll After expr(RANK,resultP) input_line_pointer->operator of rank <= RANK.
1445 1.1 skrll Also, we have consumed any leading or trailing spaces (operand does that)
1446 1.1 skrll and done all intervening operators.
1447 1.1 skrll
1448 1.1 skrll This returns the segment of the result, which will be
1449 1.1 skrll absolute_section or the segment of a symbol. */
1450 1.1 skrll
1451 1.1 skrll #undef __
1452 1.1 skrll #define __ O_illegal
1453 1.1 skrll #ifndef O_SINGLE_EQ
1454 1.1 skrll #define O_SINGLE_EQ O_illegal
1455 1.1 skrll #endif
1456 1.1 skrll
1457 1.1 skrll /* Maps ASCII -> operators. */
1458 1.1 skrll static const operatorT op_encoding[256] = {
1459 1.1 skrll __, __, __, __, __, __, __, __, __, __, __, __, __, __, __, __,
1460 1.1 skrll __, __, __, __, __, __, __, __, __, __, __, __, __, __, __, __,
1461 1.1 skrll
1462 1.1 skrll __, O_bit_or_not, __, __, __, O_modulus, O_bit_and, __,
1463 1.1 skrll __, __, O_multiply, O_add, __, O_subtract, __, O_divide,
1464 1.1 skrll __, __, __, __, __, __, __, __,
1465 1.1 skrll __, __, __, __, O_lt, O_SINGLE_EQ, O_gt, __,
1466 1.1 skrll __, __, __, __, __, __, __, __,
1467 1.1 skrll __, __, __, __, __, __, __, __,
1468 1.1 skrll __, __, __, __, __, __, __, __,
1469 1.1 skrll __, __, __,
1470 1.1 skrll #ifdef NEED_INDEX_OPERATOR
1471 1.1 skrll O_index,
1472 1.1 skrll #else
1473 1.1 skrll __,
1474 1.1 skrll #endif
1475 1.1 skrll __, __, O_bit_exclusive_or, __,
1476 1.1 skrll __, __, __, __, __, __, __, __,
1477 1.1 skrll __, __, __, __, __, __, __, __,
1478 1.1 skrll __, __, __, __, __, __, __, __,
1479 1.1 skrll __, __, __, __, O_bit_inclusive_or, __, __, __,
1480 1.1 skrll
1481 1.1 skrll __, __, __, __, __, __, __, __, __, __, __, __, __, __, __, __,
1482 1.1 skrll __, __, __, __, __, __, __, __, __, __, __, __, __, __, __, __,
1483 1.1 skrll __, __, __, __, __, __, __, __, __, __, __, __, __, __, __, __,
1484 1.1 skrll __, __, __, __, __, __, __, __, __, __, __, __, __, __, __, __,
1485 1.1 skrll __, __, __, __, __, __, __, __, __, __, __, __, __, __, __, __,
1486 1.1 skrll __, __, __, __, __, __, __, __, __, __, __, __, __, __, __, __,
1487 1.1 skrll __, __, __, __, __, __, __, __, __, __, __, __, __, __, __, __,
1488 1.1 skrll __, __, __, __, __, __, __, __, __, __, __, __, __, __, __, __
1489 1.1 skrll };
1490 1.1 skrll
1491 1.1 skrll /* Rank Examples
1492 1.1 skrll 0 operand, (expression)
1493 1.1 skrll 1 ||
1494 1.1 skrll 2 &&
1495 1.1 skrll 3 == <> < <= >= >
1496 1.1.1.2 christos 4 + -
1497 1.1 skrll 5 used for * / % in MRI mode
1498 1.1 skrll 6 & ^ ! |
1499 1.1 skrll 7 * / % << >>
1500 1.1 skrll 8 unary - unary ~
1501 1.1 skrll */
1502 1.1 skrll static operator_rankT op_rank[O_max] = {
1503 1.1 skrll 0, /* O_illegal */
1504 1.1 skrll 0, /* O_absent */
1505 1.1 skrll 0, /* O_constant */
1506 1.1 skrll 0, /* O_symbol */
1507 1.1 skrll 0, /* O_symbol_rva */
1508 1.1 skrll 0, /* O_register */
1509 1.1 skrll 0, /* O_big */
1510 1.1 skrll 9, /* O_uminus */
1511 1.1 skrll 9, /* O_bit_not */
1512 1.1 skrll 9, /* O_logical_not */
1513 1.1 skrll 8, /* O_multiply */
1514 1.1 skrll 8, /* O_divide */
1515 1.1 skrll 8, /* O_modulus */
1516 1.1 skrll 8, /* O_left_shift */
1517 1.1 skrll 8, /* O_right_shift */
1518 1.1 skrll 7, /* O_bit_inclusive_or */
1519 1.1 skrll 7, /* O_bit_or_not */
1520 1.1 skrll 7, /* O_bit_exclusive_or */
1521 1.1 skrll 7, /* O_bit_and */
1522 1.1 skrll 5, /* O_add */
1523 1.1 skrll 5, /* O_subtract */
1524 1.1 skrll 4, /* O_eq */
1525 1.1 skrll 4, /* O_ne */
1526 1.1 skrll 4, /* O_lt */
1527 1.1 skrll 4, /* O_le */
1528 1.1 skrll 4, /* O_ge */
1529 1.1 skrll 4, /* O_gt */
1530 1.1 skrll 3, /* O_logical_and */
1531 1.1 skrll 2, /* O_logical_or */
1532 1.1 skrll 1, /* O_index */
1533 1.1 skrll };
1534 1.1 skrll
1535 1.1 skrll /* Unfortunately, in MRI mode for the m68k, multiplication and
1536 1.1 skrll division have lower precedence than the bit wise operators. This
1537 1.1 skrll function sets the operator precedences correctly for the current
1538 1.1 skrll mode. Also, MRI uses a different bit_not operator, and this fixes
1539 1.1 skrll that as well. */
1540 1.1 skrll
1541 1.1 skrll #define STANDARD_MUL_PRECEDENCE 8
1542 1.1 skrll #define MRI_MUL_PRECEDENCE 6
1543 1.1 skrll
1544 1.1 skrll void
1545 1.1 skrll expr_set_precedence (void)
1546 1.1 skrll {
1547 1.1 skrll if (flag_m68k_mri)
1548 1.1 skrll {
1549 1.1 skrll op_rank[O_multiply] = MRI_MUL_PRECEDENCE;
1550 1.1 skrll op_rank[O_divide] = MRI_MUL_PRECEDENCE;
1551 1.1 skrll op_rank[O_modulus] = MRI_MUL_PRECEDENCE;
1552 1.1 skrll }
1553 1.1 skrll else
1554 1.1 skrll {
1555 1.1.1.2 christos op_rank[O_multiply] = STANDARD_MUL_PRECEDENCE;
1556 1.1.1.2 christos op_rank[O_divide] = STANDARD_MUL_PRECEDENCE;
1557 1.1.1.2 christos op_rank[O_modulus] = STANDARD_MUL_PRECEDENCE;
1558 1.1.1.2 christos }
1559 1.1.1.2 christos }
1560 1.1.1.2 christos
1561 1.1.1.2 christos void
1562 1.1 skrll expr_set_rank (operatorT op, operator_rankT rank)
1563 1.1 skrll {
1564 1.1 skrll gas_assert (op >= O_md1 && op < ARRAY_SIZE (op_rank));
1565 1.1 skrll op_rank[op] = rank;
1566 1.1 skrll }
1567 1.1 skrll
1568 1.1 skrll /* Initialize the expression parser. */
1569 1.1 skrll
1570 1.1 skrll void
1571 1.1 skrll expr_begin (void)
1572 1.1 skrll {
1573 1.1.1.2 christos expr_set_precedence ();
1574 1.1 skrll
1575 1.1 skrll /* Verify that X_op field is wide enough. */
1576 1.1 skrll {
1577 1.1 skrll expressionS e;
1578 1.1 skrll e.X_op = O_max;
1579 1.1 skrll gas_assert (e.X_op == O_max);
1580 1.1 skrll }
1581 1.1 skrll }
1582 1.1.1.2 christos
1583 1.1 skrll /* Return the encoding for the operator at INPUT_LINE_POINTER, and
1585 1.1 skrll sets NUM_CHARS to the number of characters in the operator.
1586 1.1 skrll Does not advance INPUT_LINE_POINTER. */
1587 1.1 skrll
1588 1.1 skrll static inline operatorT
1589 1.1 skrll operatorf (int *num_chars)
1590 1.1 skrll {
1591 1.1 skrll int c;
1592 1.1 skrll operatorT ret;
1593 1.1.1.2 christos
1594 1.1.1.2 christos c = *input_line_pointer & 0xff;
1595 1.1.1.2 christos *num_chars = 1;
1596 1.1.1.4 christos
1597 1.1.1.4 christos if (is_end_of_line[c])
1598 1.1.1.2 christos return O_illegal;
1599 1.1.1.2 christos
1600 1.1.1.2 christos #ifdef md_operator
1601 1.1.1.2 christos if (is_name_beginner (c))
1602 1.1.1.2 christos {
1603 1.1.1.2 christos char *name;
1604 1.1.1.2 christos char ec = get_symbol_name (& name);
1605 1.1.1.2 christos
1606 1.1.1.2 christos ret = md_operator (name, 2, &ec);
1607 1.1.1.2 christos switch (ret)
1608 1.1.1.2 christos {
1609 1.1.1.2 christos case O_absent:
1610 1.1.1.2 christos *input_line_pointer = ec;
1611 1.1.1.2 christos input_line_pointer = name;
1612 1.1.1.2 christos break;
1613 1.1.1.2 christos case O_uminus:
1614 1.1.1.2 christos case O_bit_not:
1615 1.1.1.2 christos case O_logical_not:
1616 1.1.1.2 christos as_bad (_("invalid use of operator \"%s\""), name);
1617 1.1.1.2 christos ret = O_illegal;
1618 1.1.1.2 christos /* FALLTHROUGH */
1619 1.1.1.2 christos default:
1620 1.1.1.2 christos *input_line_pointer = ec;
1621 1.1 skrll *num_chars = input_line_pointer - name;
1622 1.1 skrll input_line_pointer = name;
1623 1.1 skrll return ret;
1624 1.1.1.2 christos }
1625 1.1.1.2 christos }
1626 1.1.1.2 christos #endif
1627 1.1.1.2 christos
1628 1.1.1.2 christos switch (c)
1629 1.1.1.2 christos {
1630 1.1.1.2 christos default:
1631 1.1.1.2 christos ret = op_encoding[c];
1632 1.1.1.2 christos #ifdef md_operator
1633 1.1.1.2 christos if (ret == O_illegal)
1634 1.1.1.2 christos {
1635 1.1.1.2 christos char *start = input_line_pointer;
1636 1.1.1.2 christos
1637 1.1 skrll ret = md_operator (NULL, 2, NULL);
1638 1.1 skrll if (ret != O_illegal)
1639 1.1 skrll *num_chars = input_line_pointer - start;
1640 1.1 skrll input_line_pointer = start;
1641 1.1 skrll }
1642 1.1 skrll #endif
1643 1.1 skrll return ret;
1644 1.1 skrll
1645 1.1 skrll case '+':
1646 1.1 skrll case '-':
1647 1.1 skrll return op_encoding[c];
1648 1.1 skrll
1649 1.1 skrll case '<':
1650 1.1 skrll switch (input_line_pointer[1])
1651 1.1 skrll {
1652 1.1 skrll default:
1653 1.1 skrll return op_encoding[c];
1654 1.1 skrll case '<':
1655 1.1 skrll ret = O_left_shift;
1656 1.1 skrll break;
1657 1.1 skrll case '>':
1658 1.1 skrll ret = O_ne;
1659 1.1 skrll break;
1660 1.1 skrll case '=':
1661 1.1 skrll ret = O_le;
1662 1.1 skrll break;
1663 1.1 skrll }
1664 1.1 skrll *num_chars = 2;
1665 1.1 skrll return ret;
1666 1.1 skrll
1667 1.1 skrll case '=':
1668 1.1 skrll if (input_line_pointer[1] != '=')
1669 1.1 skrll return op_encoding[c];
1670 1.1 skrll
1671 1.1 skrll *num_chars = 2;
1672 1.1 skrll return O_eq;
1673 1.1 skrll
1674 1.1 skrll case '>':
1675 1.1 skrll switch (input_line_pointer[1])
1676 1.1 skrll {
1677 1.1 skrll default:
1678 1.1 skrll return op_encoding[c];
1679 1.1 skrll case '>':
1680 1.1 skrll ret = O_right_shift;
1681 1.1 skrll break;
1682 1.1 skrll case '=':
1683 1.1 skrll ret = O_ge;
1684 1.1 skrll break;
1685 1.1 skrll }
1686 1.1 skrll *num_chars = 2;
1687 1.1 skrll return ret;
1688 1.1 skrll
1689 1.1 skrll case '!':
1690 1.1 skrll switch (input_line_pointer[1])
1691 1.1 skrll {
1692 1.1 skrll case '!':
1693 1.1 skrll /* We accept !! as equivalent to ^ for MRI compatibility. */
1694 1.1 skrll *num_chars = 2;
1695 1.1 skrll return O_bit_exclusive_or;
1696 1.1 skrll case '=':
1697 1.1 skrll /* We accept != as equivalent to <>. */
1698 1.1 skrll *num_chars = 2;
1699 1.1 skrll return O_ne;
1700 1.1 skrll default:
1701 1.1 skrll if (flag_m68k_mri)
1702 1.1 skrll return O_bit_inclusive_or;
1703 1.1 skrll return op_encoding[c];
1704 1.1 skrll }
1705 1.1 skrll
1706 1.1 skrll case '|':
1707 1.1 skrll if (input_line_pointer[1] != '|')
1708 1.1 skrll return op_encoding[c];
1709 1.1 skrll
1710 1.1 skrll *num_chars = 2;
1711 1.1 skrll return O_logical_or;
1712 1.1 skrll
1713 1.1 skrll case '&':
1714 1.1 skrll if (input_line_pointer[1] != '&')
1715 1.1 skrll return op_encoding[c];
1716 1.1 skrll
1717 1.1.1.4 christos *num_chars = 2;
1718 1.1.1.4 christos return O_logical_and;
1719 1.1.1.4 christos }
1720 1.1.1.4 christos
1721 1.1.1.4 christos /* NOTREACHED */
1722 1.1.1.4 christos }
1723 1.1.1.4 christos
1724 1.1.1.4 christos /* Implement "word-size + 1 bit" addition for
1725 1.1.1.4 christos {resultP->X_extrabit:resultP->X_add_number} + {rhs_highbit:amount}. This
1726 1.1.1.4 christos is used so that the full range of unsigned word values and the full range of
1727 1.1.1.4 christos signed word values can be represented in an O_constant expression, which is
1728 1.1.1.4 christos useful e.g. for .sleb128 directives. */
1729 1.1.1.4 christos
1730 1.1.1.4 christos void
1731 1.1.1.4 christos add_to_result (expressionS *resultP, offsetT amount, int rhs_highbit)
1732 1.1.1.4 christos {
1733 1.1.1.4 christos valueT ures = resultP->X_add_number;
1734 1.1.1.4 christos valueT uamount = amount;
1735 1.1.1.4 christos
1736 1.1.1.4 christos resultP->X_add_number += amount;
1737 1.1.1.4 christos
1738 1.1.1.4 christos resultP->X_extrabit ^= rhs_highbit;
1739 1.1.1.4 christos
1740 1.1.1.4 christos if (ures + uamount < ures)
1741 1.1.1.4 christos resultP->X_extrabit ^= 1;
1742 1.1.1.4 christos }
1743 1.1.1.4 christos
1744 1.1.1.4 christos /* Similarly, for subtraction. */
1745 1.1.1.4 christos
1746 1.1.1.4 christos void
1747 1.1.1.4 christos subtract_from_result (expressionS *resultP, offsetT amount, int rhs_highbit)
1748 1.1.1.4 christos {
1749 1.1.1.4 christos valueT ures = resultP->X_add_number;
1750 1.1.1.4 christos valueT uamount = amount;
1751 1.1.1.4 christos
1752 1.1.1.4 christos resultP->X_add_number -= amount;
1753 1.1 skrll
1754 1.1 skrll resultP->X_extrabit ^= rhs_highbit;
1755 1.1 skrll
1756 1.1 skrll if (ures < uamount)
1757 1.1 skrll resultP->X_extrabit ^= 1;
1758 1.1 skrll }
1759 1.1 skrll
1760 1.1 skrll /* Parse an expression. */
1761 1.1 skrll
1762 1.1 skrll segT
1763 1.1 skrll expr (int rankarg, /* Larger # is higher rank. */
1764 1.1 skrll expressionS *resultP, /* Deliver result here. */
1765 1.1 skrll enum expr_mode mode /* Controls behavior. */)
1766 1.1 skrll {
1767 1.1 skrll operator_rankT rank = (operator_rankT) rankarg;
1768 1.1 skrll segT retval;
1769 1.1 skrll expressionS right;
1770 1.1 skrll operatorT op_left;
1771 1.1.1.4 christos operatorT op_right;
1772 1.1.1.4 christos int op_chars;
1773 1.1.1.4 christos
1774 1.1.1.4 christos know (rankarg >= 0);
1775 1.1 skrll
1776 1.1 skrll /* Save the value of dot for the fixup code. */
1777 1.1 skrll if (rank == 0)
1778 1.1 skrll {
1779 1.1 skrll dot_value = frag_now_fix ();
1780 1.1 skrll dot_frag = frag_now;
1781 1.1.1.2 christos }
1782 1.1 skrll
1783 1.1 skrll retval = operand (resultP, mode);
1784 1.1 skrll
1785 1.1.1.3 christos /* operand () gobbles spaces. */
1786 1.1 skrll know (*input_line_pointer != ' ');
1787 1.1 skrll
1788 1.1 skrll op_left = operatorf (&op_chars);
1789 1.1.1.2 christos while (op_left != O_illegal && op_rank[(int) op_left] > rank)
1790 1.1 skrll {
1791 1.1 skrll segT rightseg;
1792 1.1 skrll offsetT frag_off;
1793 1.1 skrll
1794 1.1 skrll input_line_pointer += op_chars; /* -> after operator. */
1795 1.1 skrll
1796 1.1 skrll right.X_md = 0;
1797 1.1 skrll rightseg = expr (op_rank[(int) op_left], &right, mode);
1798 1.1 skrll if (right.X_op == O_absent)
1799 1.1 skrll {
1800 1.1 skrll as_warn (_("missing operand; zero assumed"));
1801 1.1 skrll right.X_op = O_constant;
1802 1.1 skrll right.X_add_number = 0;
1803 1.1 skrll right.X_add_symbol = NULL;
1804 1.1 skrll right.X_op_symbol = NULL;
1805 1.1 skrll }
1806 1.1 skrll
1807 1.1 skrll know (*input_line_pointer != ' ');
1808 1.1 skrll
1809 1.1 skrll if (op_left == O_index)
1810 1.1 skrll {
1811 1.1 skrll if (*input_line_pointer != ']')
1812 1.1 skrll as_bad ("missing right bracket");
1813 1.1.1.2 christos else
1814 1.1 skrll {
1815 1.1.1.2 christos ++input_line_pointer;
1816 1.1 skrll SKIP_WHITESPACE ();
1817 1.1.1.2 christos }
1818 1.1.1.2 christos }
1819 1.1.1.2 christos
1820 1.1.1.2 christos op_right = operatorf (&op_chars);
1821 1.1.1.2 christos
1822 1.1.1.2 christos know (op_right == O_illegal || op_left == O_index
1823 1.1 skrll || op_rank[(int) op_right] <= op_rank[(int) op_left]);
1824 1.1 skrll know ((int) op_left >= (int) O_multiply);
1825 1.1 skrll #ifndef md_operator
1826 1.1 skrll know ((int) op_left <= (int) O_index);
1827 1.1 skrll #else
1828 1.1 skrll know ((int) op_left < (int) O_max);
1829 1.1 skrll #endif
1830 1.1 skrll
1831 1.1 skrll /* input_line_pointer->after right-hand quantity. */
1832 1.1 skrll /* left-hand quantity in resultP. */
1833 1.1 skrll /* right-hand quantity in right. */
1834 1.1 skrll /* operator in op_left. */
1835 1.1 skrll
1836 1.1 skrll if (resultP->X_op == O_big)
1837 1.1 skrll {
1838 1.1 skrll if (resultP->X_add_number > 0)
1839 1.1 skrll as_warn (_("left operand is a bignum; integer 0 assumed"));
1840 1.1 skrll else
1841 1.1 skrll as_warn (_("left operand is a float; integer 0 assumed"));
1842 1.1 skrll resultP->X_op = O_constant;
1843 1.1 skrll resultP->X_add_number = 0;
1844 1.1 skrll resultP->X_add_symbol = NULL;
1845 1.1 skrll resultP->X_op_symbol = NULL;
1846 1.1 skrll }
1847 1.1 skrll if (right.X_op == O_big)
1848 1.1 skrll {
1849 1.1 skrll if (right.X_add_number > 0)
1850 1.1 skrll as_warn (_("right operand is a bignum; integer 0 assumed"));
1851 1.1 skrll else
1852 1.1 skrll as_warn (_("right operand is a float; integer 0 assumed"));
1853 1.1 skrll right.X_op = O_constant;
1854 1.1 skrll right.X_add_number = 0;
1855 1.1 skrll right.X_add_symbol = NULL;
1856 1.1 skrll right.X_op_symbol = NULL;
1857 1.1 skrll }
1858 1.1 skrll
1859 1.1 skrll /* Optimize common cases. */
1860 1.1 skrll #ifdef md_optimize_expr
1861 1.1 skrll if (md_optimize_expr (resultP, op_left, &right))
1862 1.1 skrll {
1863 1.1 skrll /* Skip. */
1864 1.1 skrll ;
1865 1.1 skrll }
1866 1.1 skrll else
1867 1.1 skrll #endif
1868 1.1.1.4 christos #ifndef md_register_arithmetic
1869 1.1 skrll # define md_register_arithmetic 1
1870 1.1 skrll #endif
1871 1.1 skrll if (op_left == O_add && right.X_op == O_constant
1872 1.1 skrll && (md_register_arithmetic || resultP->X_op != O_register))
1873 1.1 skrll {
1874 1.1 skrll /* X + constant. */
1875 1.1 skrll add_to_result (resultP, right.X_add_number, right.X_extrabit);
1876 1.1 skrll }
1877 1.1 skrll /* This case comes up in PIC code. */
1878 1.1.1.2 christos else if (op_left == O_subtract
1879 1.1.1.2 christos && right.X_op == O_symbol
1880 1.1.1.2 christos && resultP->X_op == O_symbol
1881 1.1 skrll && retval == rightseg
1882 1.1 skrll #ifdef md_allow_local_subtract
1883 1.1 skrll && md_allow_local_subtract (resultP, & right, rightseg)
1884 1.1 skrll #endif
1885 1.1 skrll && ((SEG_NORMAL (rightseg)
1886 1.1.1.4 christos && !S_FORCE_RELOC (resultP->X_add_symbol, 0)
1887 1.1.1.4 christos && !S_FORCE_RELOC (right.X_add_symbol, 0))
1888 1.1.1.4 christos || right.X_add_symbol == resultP->X_add_symbol)
1889 1.1.1.4 christos && frag_offset_fixed_p (symbol_get_frag (resultP->X_add_symbol),
1890 1.1.1.4 christos symbol_get_frag (right.X_add_symbol),
1891 1.1 skrll &frag_off))
1892 1.1 skrll {
1893 1.1 skrll offsetT symval_diff = S_GET_VALUE (resultP->X_add_symbol)
1894 1.1 skrll - S_GET_VALUE (right.X_add_symbol);
1895 1.1 skrll subtract_from_result (resultP, right.X_add_number, right.X_extrabit);
1896 1.1 skrll subtract_from_result (resultP, frag_off / OCTETS_PER_BYTE, 0);
1897 1.1 skrll add_to_result (resultP, symval_diff, symval_diff < 0);
1898 1.1.1.4 christos resultP->X_op = O_constant;
1899 1.1 skrll resultP->X_add_symbol = 0;
1900 1.1 skrll }
1901 1.1 skrll else if (op_left == O_subtract && right.X_op == O_constant
1902 1.1 skrll && (md_register_arithmetic || resultP->X_op != O_register))
1903 1.1 skrll {
1904 1.1 skrll /* X - constant. */
1905 1.1 skrll subtract_from_result (resultP, right.X_add_number, right.X_extrabit);
1906 1.1 skrll }
1907 1.1.1.4 christos else if (op_left == O_add && resultP->X_op == O_constant
1908 1.1 skrll && (md_register_arithmetic || right.X_op != O_register))
1909 1.1 skrll {
1910 1.1 skrll /* Constant + X. */
1911 1.1 skrll resultP->X_op = right.X_op;
1912 1.1 skrll resultP->X_add_symbol = right.X_add_symbol;
1913 1.1 skrll resultP->X_op_symbol = right.X_op_symbol;
1914 1.1 skrll add_to_result (resultP, right.X_add_number, right.X_extrabit);
1915 1.1 skrll retval = rightseg;
1916 1.1 skrll }
1917 1.1 skrll else if (resultP->X_op == O_constant && right.X_op == O_constant)
1918 1.1 skrll {
1919 1.1.1.2 christos /* Constant OP constant. */
1920 1.1.1.2 christos offsetT v = right.X_add_number;
1921 1.1.1.2 christos if (v == 0 && (op_left == O_divide || op_left == O_modulus))
1922 1.1.1.2 christos {
1923 1.1.1.2 christos as_warn (_("division by zero"));
1924 1.1.1.2 christos v = 1;
1925 1.1.1.2 christos }
1926 1.1.1.2 christos if ((valueT) v >= sizeof(valueT) * CHAR_BIT
1927 1.1 skrll && (op_left == O_left_shift || op_left == O_right_shift))
1928 1.1 skrll {
1929 1.1.1.2 christos as_warn_value_out_of_range (_("shift count"), v, 0,
1930 1.1 skrll sizeof(valueT) * CHAR_BIT - 1,
1931 1.1 skrll NULL, 0);
1932 1.1 skrll resultP->X_add_number = v = 0;
1933 1.1 skrll }
1934 1.1 skrll switch (op_left)
1935 1.1 skrll {
1936 1.1 skrll default: goto general;
1937 1.1 skrll case O_multiply: resultP->X_add_number *= v; break;
1938 1.1 skrll case O_divide: resultP->X_add_number /= v; break;
1939 1.1 skrll case O_modulus: resultP->X_add_number %= v; break;
1940 1.1 skrll case O_left_shift: resultP->X_add_number <<= v; break;
1941 1.1 skrll case O_right_shift:
1942 1.1 skrll /* We always use unsigned shifts, to avoid relying on
1943 1.1 skrll characteristics of the compiler used to compile gas. */
1944 1.1 skrll resultP->X_add_number =
1945 1.1 skrll (offsetT) ((valueT) resultP->X_add_number >> (valueT) v);
1946 1.1 skrll break;
1947 1.1.1.4 christos case O_bit_inclusive_or: resultP->X_add_number |= v; break;
1948 1.1.1.4 christos case O_bit_or_not: resultP->X_add_number |= ~v; break;
1949 1.1.1.4 christos case O_bit_exclusive_or: resultP->X_add_number ^= v; break;
1950 1.1 skrll case O_bit_and: resultP->X_add_number &= v; break;
1951 1.1 skrll /* Constant + constant (O_add) is handled by the
1952 1.1 skrll previous if statement for constant + X, so is omitted
1953 1.1 skrll here. */
1954 1.1 skrll case O_subtract:
1955 1.1 skrll subtract_from_result (resultP, v, 0);
1956 1.1 skrll break;
1957 1.1 skrll case O_eq:
1958 1.1 skrll resultP->X_add_number =
1959 1.1 skrll resultP->X_add_number == v ? ~ (offsetT) 0 : 0;
1960 1.1 skrll break;
1961 1.1 skrll case O_ne:
1962 1.1 skrll resultP->X_add_number =
1963 1.1 skrll resultP->X_add_number != v ? ~ (offsetT) 0 : 0;
1964 1.1 skrll break;
1965 1.1 skrll case O_lt:
1966 1.1 skrll resultP->X_add_number =
1967 1.1 skrll resultP->X_add_number < v ? ~ (offsetT) 0 : 0;
1968 1.1 skrll break;
1969 1.1 skrll case O_le:
1970 1.1 skrll resultP->X_add_number =
1971 1.1 skrll resultP->X_add_number <= v ? ~ (offsetT) 0 : 0;
1972 1.1 skrll break;
1973 1.1 skrll case O_ge:
1974 1.1 skrll resultP->X_add_number =
1975 1.1 skrll resultP->X_add_number >= v ? ~ (offsetT) 0 : 0;
1976 1.1 skrll break;
1977 1.1 skrll case O_gt:
1978 1.1 skrll resultP->X_add_number =
1979 1.1 skrll resultP->X_add_number > v ? ~ (offsetT) 0 : 0;
1980 1.1 skrll break;
1981 1.1 skrll case O_logical_and:
1982 1.1 skrll resultP->X_add_number = resultP->X_add_number && v;
1983 1.1 skrll break;
1984 1.1 skrll case O_logical_or:
1985 1.1 skrll resultP->X_add_number = resultP->X_add_number || v;
1986 1.1 skrll break;
1987 1.1 skrll }
1988 1.1 skrll }
1989 1.1 skrll else if (resultP->X_op == O_symbol
1990 1.1 skrll && right.X_op == O_symbol
1991 1.1 skrll && (op_left == O_add
1992 1.1 skrll || op_left == O_subtract
1993 1.1.1.4 christos || (resultP->X_add_number == 0
1994 1.1 skrll && right.X_add_number == 0)))
1995 1.1 skrll {
1996 1.1.1.4 christos /* Symbol OP symbol. */
1997 1.1.1.4 christos resultP->X_op = op_left;
1998 1.1.1.2 christos resultP->X_op_symbol = right.X_add_symbol;
1999 1.1.1.2 christos if (op_left == O_add)
2000 1.1.1.2 christos add_to_result (resultP, right.X_add_number, right.X_extrabit);
2001 1.1.1.2 christos else if (op_left == O_subtract)
2002 1.1 skrll {
2003 1.1 skrll subtract_from_result (resultP, right.X_add_number,
2004 1.1 skrll right.X_extrabit);
2005 1.1 skrll if (retval == rightseg
2006 1.1 skrll && SEG_NORMAL (retval)
2007 1.1 skrll && !S_FORCE_RELOC (resultP->X_add_symbol, 0)
2008 1.1 skrll && !S_FORCE_RELOC (right.X_add_symbol, 0))
2009 1.1 skrll {
2010 1.1.1.2 christos retval = absolute_section;
2011 1.1 skrll rightseg = absolute_section;
2012 1.1 skrll }
2013 1.1 skrll }
2014 1.1 skrll }
2015 1.1 skrll else
2016 1.1 skrll {
2017 1.1.1.4 christos general:
2018 1.1 skrll /* The general case. */
2019 1.1 skrll resultP->X_add_symbol = make_expr_symbol (resultP);
2020 1.1 skrll resultP->X_op_symbol = make_expr_symbol (&right);
2021 1.1 skrll resultP->X_op = op_left;
2022 1.1.1.2 christos resultP->X_add_number = 0;
2023 1.1.1.2 christos resultP->X_unsigned = 1;
2024 1.1.1.2 christos resultP->X_extrabit = 0;
2025 1.1.1.2 christos }
2026 1.1.1.2 christos
2027 1.1.1.2 christos if (retval != rightseg)
2028 1.1.1.2 christos {
2029 1.1.1.2 christos if (retval == undefined_section)
2030 1.1.1.2 christos ;
2031 1.1.1.2 christos else if (rightseg == undefined_section)
2032 1.1.1.2 christos retval = rightseg;
2033 1.1.1.2 christos else if (retval == expr_section)
2034 1.1.1.2 christos ;
2035 1.1.1.2 christos else if (rightseg == expr_section)
2036 1.1.1.2 christos retval = rightseg;
2037 1.1.1.2 christos else if (retval == reg_section)
2038 1.1 skrll ;
2039 1.1.1.2 christos else if (rightseg == reg_section)
2040 1.1.1.2 christos retval = rightseg;
2041 1.1 skrll else if (rightseg == absolute_section)
2042 1.1.1.2 christos ;
2043 1.1 skrll else if (retval == absolute_section)
2044 1.1 skrll retval = rightseg;
2045 1.1 skrll #ifdef DIFF_EXPR_OK
2046 1.1 skrll else if (op_left == O_subtract)
2047 1.1 skrll ;
2048 1.1 skrll #endif
2049 1.1 skrll else
2050 1.1 skrll as_bad (_("operation combines symbols in different segments"));
2051 1.1 skrll }
2052 1.1 skrll
2053 1.1 skrll op_left = op_right;
2054 1.1 skrll } /* While next operator is >= this rank. */
2055 1.1 skrll
2056 1.1 skrll /* The PA port needs this information. */
2057 1.1 skrll if (resultP->X_add_symbol)
2058 1.1 skrll symbol_mark_used (resultP->X_add_symbol);
2059 1.1 skrll
2060 1.1 skrll if (rank == 0 && mode == expr_evaluate)
2061 1.1 skrll resolve_expression (resultP);
2062 1.1 skrll
2063 1.1 skrll return resultP->X_op == O_constant ? absolute_section : retval;
2064 1.1 skrll }
2065 1.1 skrll
2066 1.1 skrll /* Resolve an expression without changing any symbols/sub-expressions
2067 1.1 skrll used. */
2068 1.1.1.2 christos
2069 1.1 skrll int
2070 1.1 skrll resolve_expression (expressionS *expressionP)
2071 1.1 skrll {
2072 1.1 skrll /* Help out with CSE. */
2073 1.1 skrll valueT final_val = expressionP->X_add_number;
2074 1.1.1.3 christos symbolS *add_symbol = expressionP->X_add_symbol;
2075 1.1 skrll symbolS *orig_add_symbol = add_symbol;
2076 1.1 skrll symbolS *op_symbol = expressionP->X_op_symbol;
2077 1.1 skrll operatorT op = expressionP->X_op;
2078 1.1 skrll valueT left, right;
2079 1.1 skrll segT seg_left, seg_right;
2080 1.1 skrll fragS *frag_left, *frag_right;
2081 1.1 skrll offsetT frag_off;
2082 1.1 skrll
2083 1.1 skrll switch (op)
2084 1.1 skrll {
2085 1.1 skrll default:
2086 1.1 skrll return 0;
2087 1.1 skrll
2088 1.1 skrll case O_constant:
2089 1.1 skrll case O_register:
2090 1.1 skrll left = 0;
2091 1.1 skrll break;
2092 1.1 skrll
2093 1.1 skrll case O_symbol:
2094 1.1 skrll case O_symbol_rva:
2095 1.1 skrll if (!snapshot_symbol (&add_symbol, &left, &seg_left, &frag_left))
2096 1.1 skrll return 0;
2097 1.1 skrll
2098 1.1 skrll break;
2099 1.1 skrll
2100 1.1 skrll case O_uminus:
2101 1.1 skrll case O_bit_not:
2102 1.1 skrll case O_logical_not:
2103 1.1 skrll if (!snapshot_symbol (&add_symbol, &left, &seg_left, &frag_left))
2104 1.1 skrll return 0;
2105 1.1 skrll
2106 1.1 skrll if (seg_left != absolute_section)
2107 1.1 skrll return 0;
2108 1.1 skrll
2109 1.1 skrll if (op == O_logical_not)
2110 1.1 skrll left = !left;
2111 1.1 skrll else if (op == O_uminus)
2112 1.1 skrll left = -left;
2113 1.1 skrll else
2114 1.1 skrll left = ~left;
2115 1.1 skrll op = O_constant;
2116 1.1 skrll break;
2117 1.1 skrll
2118 1.1 skrll case O_multiply:
2119 1.1 skrll case O_divide:
2120 1.1 skrll case O_modulus:
2121 1.1 skrll case O_left_shift:
2122 1.1 skrll case O_right_shift:
2123 1.1 skrll case O_bit_inclusive_or:
2124 1.1 skrll case O_bit_or_not:
2125 1.1 skrll case O_bit_exclusive_or:
2126 1.1 skrll case O_bit_and:
2127 1.1 skrll case O_add:
2128 1.1 skrll case O_subtract:
2129 1.1 skrll case O_eq:
2130 1.1 skrll case O_ne:
2131 1.1 skrll case O_lt:
2132 1.1 skrll case O_le:
2133 1.1 skrll case O_ge:
2134 1.1 skrll case O_gt:
2135 1.1 skrll case O_logical_and:
2136 1.1 skrll case O_logical_or:
2137 1.1 skrll if (!snapshot_symbol (&add_symbol, &left, &seg_left, &frag_left)
2138 1.1 skrll || !snapshot_symbol (&op_symbol, &right, &seg_right, &frag_right))
2139 1.1 skrll return 0;
2140 1.1 skrll
2141 1.1 skrll /* Simplify addition or subtraction of a constant by folding the
2142 1.1 skrll constant into X_add_number. */
2143 1.1 skrll if (op == O_add)
2144 1.1 skrll {
2145 1.1 skrll if (seg_right == absolute_section)
2146 1.1 skrll {
2147 1.1 skrll final_val += right;
2148 1.1 skrll op = O_symbol;
2149 1.1 skrll break;
2150 1.1.1.2 christos }
2151 1.1 skrll else if (seg_left == absolute_section)
2152 1.1 skrll {
2153 1.1 skrll final_val += left;
2154 1.1 skrll left = right;
2155 1.1 skrll seg_left = seg_right;
2156 1.1 skrll add_symbol = op_symbol;
2157 1.1 skrll orig_add_symbol = expressionP->X_op_symbol;
2158 1.1 skrll op = O_symbol;
2159 1.1 skrll break;
2160 1.1 skrll }
2161 1.1 skrll }
2162 1.1 skrll else if (op == O_subtract)
2163 1.1 skrll {
2164 1.1 skrll if (seg_right == absolute_section)
2165 1.1 skrll {
2166 1.1 skrll final_val -= right;
2167 1.1 skrll op = O_symbol;
2168 1.1 skrll break;
2169 1.1 skrll }
2170 1.1 skrll }
2171 1.1 skrll
2172 1.1 skrll /* Equality and non-equality tests are permitted on anything.
2173 1.1 skrll Subtraction, and other comparison operators are permitted if
2174 1.1 skrll both operands are in the same section.
2175 1.1 skrll Shifts by constant zero are permitted on anything.
2176 1.1 skrll Multiplies, bit-ors, and bit-ands with constant zero are
2177 1.1 skrll permitted on anything.
2178 1.1 skrll Multiplies and divides by constant one are permitted on
2179 1.1 skrll anything.
2180 1.1 skrll Binary operations with both operands being the same register
2181 1.1 skrll or undefined symbol are permitted if the result doesn't depend
2182 1.1 skrll on the input value.
2183 1.1 skrll Otherwise, both operands must be absolute. We already handled
2184 1.1 skrll the case of addition or subtraction of a constant above. */
2185 1.1 skrll frag_off = 0;
2186 1.1 skrll if (!(seg_left == absolute_section
2187 1.1 skrll && seg_right == absolute_section)
2188 1.1 skrll && !(op == O_eq || op == O_ne)
2189 1.1 skrll && !((op == O_subtract
2190 1.1 skrll || op == O_lt || op == O_le || op == O_ge || op == O_gt)
2191 1.1 skrll && seg_left == seg_right
2192 1.1 skrll && (finalize_syms
2193 1.1 skrll || frag_offset_fixed_p (frag_left, frag_right, &frag_off))
2194 1.1 skrll && (seg_left != reg_section || left == right)
2195 1.1.1.2 christos && (seg_left != undefined_section || add_symbol == op_symbol)))
2196 1.1 skrll {
2197 1.1 skrll if ((seg_left == absolute_section && left == 0)
2198 1.1 skrll || (seg_right == absolute_section && right == 0))
2199 1.1 skrll {
2200 1.1.1.2 christos if (op == O_bit_exclusive_or || op == O_bit_inclusive_or)
2201 1.1 skrll {
2202 1.1 skrll if (!(seg_right == absolute_section && right == 0))
2203 1.1 skrll {
2204 1.1 skrll seg_left = seg_right;
2205 1.1 skrll left = right;
2206 1.1 skrll add_symbol = op_symbol;
2207 1.1.1.2 christos orig_add_symbol = expressionP->X_op_symbol;
2208 1.1 skrll }
2209 1.1 skrll op = O_symbol;
2210 1.1 skrll break;
2211 1.1 skrll }
2212 1.1 skrll else if (op == O_left_shift || op == O_right_shift)
2213 1.1 skrll {
2214 1.1 skrll if (!(seg_left == absolute_section && left == 0))
2215 1.1 skrll {
2216 1.1 skrll op = O_symbol;
2217 1.1 skrll break;
2218 1.1 skrll }
2219 1.1 skrll }
2220 1.1 skrll else if (op != O_multiply
2221 1.1 skrll && op != O_bit_or_not && op != O_bit_and)
2222 1.1 skrll return 0;
2223 1.1.1.2 christos }
2224 1.1 skrll else if (op == O_multiply
2225 1.1 skrll && seg_left == absolute_section && left == 1)
2226 1.1 skrll {
2227 1.1 skrll seg_left = seg_right;
2228 1.1 skrll left = right;
2229 1.1 skrll add_symbol = op_symbol;
2230 1.1 skrll orig_add_symbol = expressionP->X_op_symbol;
2231 1.1 skrll op = O_symbol;
2232 1.1 skrll break;
2233 1.1.1.2 christos }
2234 1.1.1.2 christos else if ((op == O_multiply || op == O_divide)
2235 1.1.1.2 christos && seg_right == absolute_section && right == 1)
2236 1.1.1.2 christos {
2237 1.1.1.2 christos op = O_symbol;
2238 1.1 skrll break;
2239 1.1 skrll }
2240 1.1 skrll else if (!(left == right
2241 1.1 skrll && ((seg_left == reg_section && seg_right == reg_section)
2242 1.1 skrll || (seg_left == undefined_section
2243 1.1 skrll && seg_right == undefined_section
2244 1.1 skrll && add_symbol == op_symbol))))
2245 1.1 skrll return 0;
2246 1.1 skrll else if (op == O_bit_and || op == O_bit_inclusive_or)
2247 1.1 skrll {
2248 1.1 skrll op = O_symbol;
2249 1.1 skrll break;
2250 1.1 skrll }
2251 1.1 skrll else if (op != O_bit_exclusive_or && op != O_bit_or_not)
2252 1.1 skrll return 0;
2253 1.1 skrll }
2254 1.1 skrll
2255 1.1 skrll right += frag_off / OCTETS_PER_BYTE;
2256 1.1 skrll switch (op)
2257 1.1 skrll {
2258 1.1 skrll case O_add: left += right; break;
2259 1.1 skrll case O_subtract: left -= right; break;
2260 1.1 skrll case O_multiply: left *= right; break;
2261 1.1 skrll case O_divide:
2262 1.1 skrll if (right == 0)
2263 1.1 skrll return 0;
2264 1.1 skrll left = (offsetT) left / (offsetT) right;
2265 1.1 skrll break;
2266 1.1 skrll case O_modulus:
2267 1.1 skrll if (right == 0)
2268 1.1 skrll return 0;
2269 1.1 skrll left = (offsetT) left % (offsetT) right;
2270 1.1 skrll break;
2271 1.1 skrll case O_left_shift: left <<= right; break;
2272 1.1 skrll case O_right_shift: left >>= right; break;
2273 1.1 skrll case O_bit_inclusive_or: left |= right; break;
2274 1.1 skrll case O_bit_or_not: left |= ~right; break;
2275 1.1 skrll case O_bit_exclusive_or: left ^= right; break;
2276 1.1 skrll case O_bit_and: left &= right; break;
2277 1.1 skrll case O_eq:
2278 1.1 skrll case O_ne:
2279 1.1 skrll left = (left == right
2280 1.1 skrll && seg_left == seg_right
2281 1.1 skrll && (finalize_syms || frag_left == frag_right)
2282 1.1 skrll && (seg_left != undefined_section
2283 1.1 skrll || add_symbol == op_symbol)
2284 1.1 skrll ? ~ (valueT) 0 : 0);
2285 1.1 skrll if (op == O_ne)
2286 1.1 skrll left = ~left;
2287 1.1 skrll break;
2288 1.1 skrll case O_lt:
2289 1.1 skrll left = (offsetT) left < (offsetT) right ? ~ (valueT) 0 : 0;
2290 1.1 skrll break;
2291 1.1 skrll case O_le:
2292 1.1 skrll left = (offsetT) left <= (offsetT) right ? ~ (valueT) 0 : 0;
2293 1.1 skrll break;
2294 1.1 skrll case O_ge:
2295 1.1 skrll left = (offsetT) left >= (offsetT) right ? ~ (valueT) 0 : 0;
2296 1.1 skrll break;
2297 1.1 skrll case O_gt:
2298 1.1 skrll left = (offsetT) left > (offsetT) right ? ~ (valueT) 0 : 0;
2299 1.1 skrll break;
2300 1.1 skrll case O_logical_and: left = left && right; break;
2301 1.1 skrll case O_logical_or: left = left || right; break;
2302 1.1 skrll default: abort ();
2303 1.1 skrll }
2304 1.1 skrll
2305 1.1 skrll op = O_constant;
2306 1.1 skrll break;
2307 1.1 skrll }
2308 1.1.1.2 christos
2309 1.1 skrll if (op == O_symbol)
2310 1.1 skrll {
2311 1.1 skrll if (seg_left == absolute_section)
2312 1.1 skrll op = O_constant;
2313 1.1 skrll else if (seg_left == reg_section && final_val == 0)
2314 1.1 skrll op = O_register;
2315 1.1 skrll else if (!symbol_same_p (add_symbol, orig_add_symbol))
2316 1.1 skrll final_val += left;
2317 1.1 skrll expressionP->X_add_symbol = add_symbol;
2318 1.1 skrll }
2319 1.1 skrll expressionP->X_op = op;
2320 1.1 skrll
2321 1.1 skrll if (op == O_constant || op == O_register)
2322 1.1 skrll final_val += left;
2323 1.1 skrll expressionP->X_add_number = final_val;
2324 1.1 skrll
2325 1.1.1.4 christos return 1;
2326 1.1.1.4 christos }
2327 1.1 skrll
2328 1.1.1.4 christos /* This lives here because it belongs equally in expr.c & read.c.
2330 1.1 skrll expr.c is just a branch office read.c anyway, and putting it
2331 1.1.1.4 christos here lessens the crowd at read.c.
2332 1.1 skrll
2333 1.1 skrll Assume input_line_pointer is at start of symbol name, or the
2334 1.1 skrll start of a double quote enclosed symbol name.
2335 1.1 skrll Advance input_line_pointer past symbol name.
2336 1.1.1.4 christos Turn that character into a '\0', returning its former value,
2337 1.1 skrll which may be the closing double quote.
2338 1.1 skrll This allows a string compare (RMS wants symbol names to be strings)
2339 1.1 skrll of the symbol name.
2340 1.1.1.4 christos There will always be a char following symbol name, because all good
2341 1.1 skrll lines end in end-of-line. */
2342 1.1 skrll
2343 1.1 skrll char
2344 1.1 skrll get_symbol_name (char ** ilp_return)
2345 1.1 skrll {
2346 1.1 skrll char c;
2347 1.1 skrll
2348 1.1 skrll * ilp_return = input_line_pointer;
2349 1.1 skrll /* We accept \001 in a name in case this is being called with a
2350 1.1 skrll constructed string. */
2351 1.1.1.4 christos if (is_name_beginner (c = *input_line_pointer++) || c == '\001')
2352 1.1.1.4 christos {
2353 1.1.1.4 christos while (is_part_of_name (c = *input_line_pointer++)
2354 1.1.1.4 christos || c == '\001')
2355 1.1.1.4 christos ;
2356 1.1.1.4 christos if (is_name_ender (c))
2357 1.1.1.4 christos c = *input_line_pointer++;
2358 1.1.1.4 christos }
2359 1.1.1.4 christos else if (c == '"')
2360 1.1.1.4 christos {
2361 1.1.1.4 christos bfd_boolean backslash_seen;
2362 1.1.1.4 christos
2363 1.1.1.4 christos * ilp_return = input_line_pointer;
2364 1.1.1.4 christos do
2365 1.1.1.4 christos {
2366 1.1 skrll backslash_seen = c == '\\';
2367 1.1.1.4 christos c = * input_line_pointer ++;
2368 1.1.1.4 christos }
2369 1.1.1.4 christos while (c != 0 && (c != '"' || backslash_seen));
2370 1.1.1.4 christos
2371 1.1.1.4 christos if (c == 0)
2372 1.1.1.4 christos as_warn (_("missing closing '\"'"));
2373 1.1.1.4 christos }
2374 1.1.1.4 christos *--input_line_pointer = 0;
2375 1.1.1.4 christos return c;
2376 1.1.1.4 christos }
2377 1.1.1.4 christos
2378 1.1.1.4 christos /* Replace the NUL character pointed to by input_line_pointer
2379 1.1.1.4 christos with C. If C is \" then advance past it. Return the character
2380 1.1.1.4 christos now pointed to by input_line_pointer. */
2381 1.1 skrll
2382 1.1 skrll char
2383 1.1 skrll restore_line_pointer (char c)
2384 1.1 skrll {
2385 1.1 skrll * input_line_pointer = c;
2386 1.1 skrll if (c == '"')
2387 1.1 skrll c = * ++ input_line_pointer;
2388 1.1 skrll return c;
2389 1.1 skrll }
2390
2391 unsigned int
2392 get_single_number (void)
2393 {
2394 expressionS exp;
2395 operand (&exp, expr_normal);
2396 return exp.X_add_number;
2397 }
2398