* alpha-tdep.c (alpha_register_type): Change from _virtual_type.
[deliverable/binutils-gdb.git] / gdb / ada-lang.c
CommitLineData
14f9c5c9 1/* Ada language support routines for GDB, the GNU debugger. Copyright
de5ad195
DC
2 1992, 1993, 1994, 1997, 1998, 1999, 2000, 2003
3 Free Software Foundation, Inc.
14f9c5c9
AS
4
5This file is part of GDB.
6
7This program is free software; you can redistribute it and/or modify
8it under the terms of the GNU General Public License as published by
9the Free Software Foundation; either version 2 of the License, or
10(at your option) any later version.
11
12This program is distributed in the hope that it will be useful,
13but WITHOUT ANY WARRANTY; without even the implied warranty of
14MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
15GNU General Public License for more details.
16
17You should have received a copy of the GNU General Public License
18along with this program; if not, write to the Free Software
19Foundation, Inc., 675 Mass Ave, Cambridge, MA 02139, USA. */
20
21#include <stdio.h>
0c30c098 22#include "gdb_string.h"
14f9c5c9
AS
23#include <ctype.h>
24#include <stdarg.h>
25#include "demangle.h"
26#include "defs.h"
27#include "symtab.h"
28#include "gdbtypes.h"
29#include "gdbcmd.h"
30#include "expression.h"
31#include "parser-defs.h"
32#include "language.h"
33#include "c-lang.h"
34#include "inferior.h"
35#include "symfile.h"
36#include "objfiles.h"
37#include "breakpoint.h"
38#include "gdbcore.h"
39#include "ada-lang.h"
14f9c5c9 40#include "ui-out.h"
fe898f56 41#include "block.h"
04714b91 42#include "infcall.h"
14f9c5c9 43
d2e4a39e 44struct cleanup *unresolved_names;
14f9c5c9
AS
45
46void extract_string (CORE_ADDR addr, char *buf);
47
d2e4a39e 48static struct type *ada_create_fundamental_type (struct objfile *, int);
14f9c5c9
AS
49
50static void modify_general_field (char *, LONGEST, int, int);
51
d2e4a39e 52static struct type *desc_base_type (struct type *);
14f9c5c9 53
d2e4a39e 54static struct type *desc_bounds_type (struct type *);
14f9c5c9 55
d2e4a39e 56static struct value *desc_bounds (struct value *);
14f9c5c9 57
d2e4a39e 58static int fat_pntr_bounds_bitpos (struct type *);
14f9c5c9 59
d2e4a39e 60static int fat_pntr_bounds_bitsize (struct type *);
14f9c5c9 61
d2e4a39e 62static struct type *desc_data_type (struct type *);
14f9c5c9 63
d2e4a39e 64static struct value *desc_data (struct value *);
14f9c5c9 65
d2e4a39e 66static int fat_pntr_data_bitpos (struct type *);
14f9c5c9 67
d2e4a39e 68static int fat_pntr_data_bitsize (struct type *);
14f9c5c9 69
d2e4a39e 70static struct value *desc_one_bound (struct value *, int, int);
14f9c5c9 71
d2e4a39e 72static int desc_bound_bitpos (struct type *, int, int);
14f9c5c9 73
d2e4a39e 74static int desc_bound_bitsize (struct type *, int, int);
14f9c5c9 75
d2e4a39e 76static struct type *desc_index_type (struct type *, int);
14f9c5c9 77
d2e4a39e 78static int desc_arity (struct type *);
14f9c5c9 79
d2e4a39e 80static int ada_type_match (struct type *, struct type *, int);
14f9c5c9 81
d2e4a39e 82static int ada_args_match (struct symbol *, struct value **, int);
14f9c5c9 83
d2e4a39e 84static struct value *place_on_stack (struct value *, CORE_ADDR *);
14f9c5c9 85
d2e4a39e
AS
86static struct value *convert_actual (struct value *, struct type *,
87 CORE_ADDR *);
14f9c5c9 88
d2e4a39e
AS
89static struct value *make_array_descriptor (struct type *, struct value *,
90 CORE_ADDR *);
14f9c5c9 91
d2e4a39e 92static void ada_add_block_symbols (struct block *, const char *,
176620f1 93 domain_enum, struct objfile *, int);
14f9c5c9 94
d2e4a39e 95static void fill_in_ada_prototype (struct symbol *);
14f9c5c9 96
d2e4a39e 97static int is_nonfunction (struct symbol **, int);
14f9c5c9 98
d2e4a39e 99static void add_defn_to_vec (struct symbol *, struct block *);
14f9c5c9 100
d2e4a39e
AS
101static struct partial_symbol *ada_lookup_partial_symbol (struct partial_symtab
102 *, const char *, int,
176620f1 103 domain_enum, int);
14f9c5c9 104
d2e4a39e 105static struct symtab *symtab_for_sym (struct symbol *);
14f9c5c9 106
d2e4a39e
AS
107static struct value *ada_resolve_subexp (struct expression **, int *, int,
108 struct type *);
14f9c5c9 109
d2e4a39e
AS
110static void replace_operator_with_call (struct expression **, int, int, int,
111 struct symbol *, struct block *);
14f9c5c9 112
d2e4a39e 113static int possible_user_operator_p (enum exp_opcode, struct value **);
14f9c5c9 114
d2e4a39e 115static const char *ada_op_name (enum exp_opcode);
14f9c5c9 116
d2e4a39e 117static int numeric_type_p (struct type *);
14f9c5c9 118
d2e4a39e 119static int integer_type_p (struct type *);
14f9c5c9 120
d2e4a39e 121static int scalar_type_p (struct type *);
14f9c5c9 122
d2e4a39e 123static int discrete_type_p (struct type *);
14f9c5c9 124
d2e4a39e
AS
125static char *extended_canonical_line_spec (struct symtab_and_line,
126 const char *);
14f9c5c9 127
d2e4a39e
AS
128static struct value *evaluate_subexp (struct type *, struct expression *,
129 int *, enum noside);
14f9c5c9 130
d2e4a39e 131static struct value *evaluate_subexp_type (struct expression *, int *);
14f9c5c9 132
d2e4a39e 133static struct type *ada_create_fundamental_type (struct objfile *, int);
14f9c5c9 134
d2e4a39e 135static int is_dynamic_field (struct type *, int);
14f9c5c9 136
d2e4a39e
AS
137static struct type *to_fixed_variant_branch_type (struct type *, char *,
138 CORE_ADDR, struct value *);
14f9c5c9 139
d2e4a39e
AS
140static struct type *to_fixed_range_type (char *, struct value *,
141 struct objfile *);
14f9c5c9 142
d2e4a39e 143static struct type *to_static_fixed_type (struct type *);
14f9c5c9 144
d2e4a39e 145static struct value *unwrap_value (struct value *);
14f9c5c9 146
d2e4a39e 147static struct type *packed_array_type (struct type *, long *);
14f9c5c9 148
d2e4a39e 149static struct type *decode_packed_array_type (struct type *);
14f9c5c9 150
d2e4a39e 151static struct value *decode_packed_array (struct value *);
14f9c5c9 152
d2e4a39e
AS
153static struct value *value_subscript_packed (struct value *, int,
154 struct value **);
14f9c5c9 155
d2e4a39e
AS
156static struct value *coerce_unspec_val_to_type (struct value *, long,
157 struct type *);
14f9c5c9 158
d2e4a39e 159static struct value *get_var_value (char *, char *);
14f9c5c9 160
d2e4a39e 161static int lesseq_defined_than (struct symbol *, struct symbol *);
14f9c5c9 162
d2e4a39e 163static int equiv_types (struct type *, struct type *);
14f9c5c9 164
d2e4a39e 165static int is_name_suffix (const char *);
14f9c5c9 166
d2e4a39e 167static int wild_match (const char *, int, const char *);
14f9c5c9 168
d2e4a39e
AS
169static struct symtabs_and_lines find_sal_from_funcs_and_line (const char *,
170 int,
171 struct symbol
172 **, int);
14f9c5c9 173
d2e4a39e
AS
174static int find_line_in_linetable (struct linetable *, int, struct symbol **,
175 int, int *);
14f9c5c9 176
d2e4a39e 177static int find_next_line_in_linetable (struct linetable *, int, int, int);
14f9c5c9 178
d2e4a39e
AS
179static struct symtabs_and_lines all_sals_for_line (const char *, int,
180 char ***);
14f9c5c9 181
d2e4a39e 182static void read_all_symtabs (const char *);
14f9c5c9 183
d2e4a39e 184static int is_plausible_func_for_line (struct symbol *, int);
14f9c5c9 185
d2e4a39e 186static struct value *ada_coerce_ref (struct value *);
14f9c5c9 187
d2e4a39e 188static struct value *value_pos_atr (struct value *);
14f9c5c9 189
d2e4a39e 190static struct value *value_val_atr (struct type *, struct value *);
14f9c5c9 191
176620f1 192static struct symbol *standard_lookup (const char *, domain_enum);
14f9c5c9
AS
193
194extern void markTimeStart (int index);
195extern void markTimeStop (int index);
14f9c5c9
AS
196\f
197
d2e4a39e 198
14f9c5c9
AS
199/* Maximum-sized dynamic type. */
200static unsigned int varsize_limit;
201
d2e4a39e 202static const char *ada_completer_word_break_characters =
14f9c5c9
AS
203 " \t\n!@#$%^&*()+=|~`}{[]\";:?/,-";
204
205/* The name of the symbol to use to get the name of the main subprogram */
206#define ADA_MAIN_PROGRAM_SYMBOL_NAME "__gnat_ada_main_program_name"
207
208 /* Utilities */
209
210/* extract_string
211 *
212 * read the string located at ADDR from the inferior and store the
213 * result into BUF
214 */
215void
216extract_string (CORE_ADDR addr, char *buf)
217{
d2e4a39e 218 int char_index = 0;
14f9c5c9 219
d2e4a39e
AS
220 /* Loop, reading one byte at a time, until we reach the '\000'
221 end-of-string marker */
222 do
223 {
224 target_read_memory (addr + char_index * sizeof (char),
225 buf + char_index * sizeof (char), sizeof (char));
226 char_index++;
227 }
228 while (buf[char_index - 1] != '\000');
14f9c5c9
AS
229}
230
231/* Assuming *OLD_VECT points to an array of *SIZE objects of size
232 ELEMENT_SIZE, grow it to contain at least MIN_SIZE objects,
233 updating *OLD_VECT and *SIZE as necessary. */
234
235void
d2e4a39e 236grow_vect (void **old_vect, size_t * size, size_t min_size, int element_size)
14f9c5c9 237{
d2e4a39e
AS
238 if (*size < min_size)
239 {
240 *size *= 2;
241 if (*size < min_size)
242 *size = min_size;
243 *old_vect = xrealloc (*old_vect, *size * element_size);
244 }
14f9c5c9
AS
245}
246
247/* True (non-zero) iff TARGET matches FIELD_NAME up to any trailing
248 suffix of FIELD_NAME beginning "___" */
249
250static int
ebf56fd3 251field_name_match (const char *field_name, const char *target)
14f9c5c9
AS
252{
253 int len = strlen (target);
d2e4a39e
AS
254 return
255 STREQN (field_name, target, len)
256 && (field_name[len] == '\0'
14f9c5c9 257 || (STREQN (field_name + len, "___", 3)
d2e4a39e 258 && !STREQ (field_name + strlen (field_name) - 6, "___XVN")));
14f9c5c9
AS
259}
260
261
262/* The length of the prefix of NAME prior to any "___" suffix. */
263
264int
d2e4a39e 265ada_name_prefix_len (const char *name)
14f9c5c9
AS
266{
267 if (name == NULL)
268 return 0;
d2e4a39e 269 else
14f9c5c9 270 {
d2e4a39e 271 const char *p = strstr (name, "___");
14f9c5c9
AS
272 if (p == NULL)
273 return strlen (name);
274 else
275 return p - name;
276 }
277}
278
279/* SUFFIX is a suffix of STR. False if STR is null. */
280static int
d2e4a39e 281is_suffix (const char *str, const char *suffix)
14f9c5c9
AS
282{
283 int len1, len2;
284 if (str == NULL)
285 return 0;
286 len1 = strlen (str);
287 len2 = strlen (suffix);
288 return (len1 >= len2 && STREQ (str + len1 - len2, suffix));
289}
290
291/* Create a value of type TYPE whose contents come from VALADDR, if it
292 * is non-null, and whose memory address (in the inferior) is
293 * ADDRESS. */
d2e4a39e
AS
294struct value *
295value_from_contents_and_address (struct type *type, char *valaddr,
296 CORE_ADDR address)
14f9c5c9 297{
d2e4a39e
AS
298 struct value *v = allocate_value (type);
299 if (valaddr == NULL)
14f9c5c9
AS
300 VALUE_LAZY (v) = 1;
301 else
302 memcpy (VALUE_CONTENTS_RAW (v), valaddr, TYPE_LENGTH (type));
303 VALUE_ADDRESS (v) = address;
304 if (address != 0)
305 VALUE_LVAL (v) = lval_memory;
306 return v;
307}
308
309/* The contents of value VAL, beginning at offset OFFSET, treated as a
310 value of type TYPE. The result is an lval in memory if VAL is. */
311
d2e4a39e
AS
312static struct value *
313coerce_unspec_val_to_type (struct value *val, long offset, struct type *type)
14f9c5c9
AS
314{
315 CHECK_TYPEDEF (type);
316 if (VALUE_LVAL (val) == lval_memory)
317 return value_at_lazy (type,
d2e4a39e
AS
318 VALUE_ADDRESS (val) + VALUE_OFFSET (val) + offset,
319 NULL);
320 else
14f9c5c9 321 {
d2e4a39e 322 struct value *result = allocate_value (type);
14f9c5c9 323 VALUE_LVAL (result) = not_lval;
d2e4a39e 324 if (VALUE_ADDRESS (val) == 0)
14f9c5c9 325 memcpy (VALUE_CONTENTS_RAW (result), VALUE_CONTENTS (val) + offset,
d2e4a39e 326 TYPE_LENGTH (type) > TYPE_LENGTH (VALUE_TYPE (val))
14f9c5c9 327 ? TYPE_LENGTH (VALUE_TYPE (val)) : TYPE_LENGTH (type));
d2e4a39e 328 else
14f9c5c9 329 {
d2e4a39e 330 VALUE_ADDRESS (result) =
14f9c5c9
AS
331 VALUE_ADDRESS (val) + VALUE_OFFSET (val) + offset;
332 VALUE_LAZY (result) = 1;
333 }
334 return result;
335 }
336}
337
d2e4a39e
AS
338static char *
339cond_offset_host (char *valaddr, long offset)
14f9c5c9
AS
340{
341 if (valaddr == NULL)
342 return NULL;
343 else
344 return valaddr + offset;
345}
346
347static CORE_ADDR
ebf56fd3 348cond_offset_target (CORE_ADDR address, long offset)
14f9c5c9
AS
349{
350 if (address == 0)
351 return 0;
d2e4a39e 352 else
14f9c5c9
AS
353 return address + offset;
354}
355
356/* Perform execute_command on the result of concatenating all
357 arguments up to NULL. */
358static void
d2e4a39e 359do_command (const char *arg, ...)
14f9c5c9
AS
360{
361 int len;
d2e4a39e
AS
362 char *cmd;
363 const char *s;
14f9c5c9
AS
364 va_list ap;
365
366 va_start (ap, arg);
367 len = 0;
368 s = arg;
369 cmd = "";
d2e4a39e 370 for (; s != NULL; s = va_arg (ap, const char *))
14f9c5c9 371 {
d2e4a39e 372 char *cmd1;
14f9c5c9 373 len += strlen (s);
d2e4a39e 374 cmd1 = alloca (len + 1);
14f9c5c9
AS
375 strcpy (cmd1, cmd);
376 strcat (cmd1, s);
377 cmd = cmd1;
378 }
379 va_end (ap);
380 execute_command (cmd, 0);
381}
14f9c5c9 382\f
d2e4a39e 383
14f9c5c9
AS
384 /* Language Selection */
385
386/* If the main program is in Ada, return language_ada, otherwise return LANG
387 (the main program is in Ada iif the adainit symbol is found).
388
389 MAIN_PST is not used. */
d2e4a39e 390
14f9c5c9 391enum language
d2e4a39e
AS
392ada_update_initial_language (enum language lang,
393 struct partial_symtab *main_pst)
14f9c5c9 394{
d2e4a39e
AS
395 if (lookup_minimal_symbol ("adainit", (const char *) NULL,
396 (struct objfile *) NULL) != NULL)
14f9c5c9
AS
397 /* return language_ada; */
398 /* FIXME: language_ada should be defined in defs.h */
399 return language_unknown;
400
401 return lang;
402}
14f9c5c9 403\f
d2e4a39e 404
14f9c5c9
AS
405 /* Symbols */
406
407/* Table of Ada operators and their GNAT-mangled names. Last entry is pair
408 of NULLs. */
409
d2e4a39e
AS
410const struct ada_opname_map ada_opname_table[] = {
411 {"Oadd", "\"+\"", BINOP_ADD},
412 {"Osubtract", "\"-\"", BINOP_SUB},
413 {"Omultiply", "\"*\"", BINOP_MUL},
414 {"Odivide", "\"/\"", BINOP_DIV},
415 {"Omod", "\"mod\"", BINOP_MOD},
416 {"Orem", "\"rem\"", BINOP_REM},
417 {"Oexpon", "\"**\"", BINOP_EXP},
418 {"Olt", "\"<\"", BINOP_LESS},
419 {"Ole", "\"<=\"", BINOP_LEQ},
420 {"Ogt", "\">\"", BINOP_GTR},
421 {"Oge", "\">=\"", BINOP_GEQ},
422 {"Oeq", "\"=\"", BINOP_EQUAL},
423 {"One", "\"/=\"", BINOP_NOTEQUAL},
424 {"Oand", "\"and\"", BINOP_BITWISE_AND},
425 {"Oor", "\"or\"", BINOP_BITWISE_IOR},
426 {"Oxor", "\"xor\"", BINOP_BITWISE_XOR},
427 {"Oconcat", "\"&\"", BINOP_CONCAT},
428 {"Oabs", "\"abs\"", UNOP_ABS},
429 {"Onot", "\"not\"", UNOP_LOGICAL_NOT},
430 {"Oadd", "\"+\"", UNOP_PLUS},
431 {"Osubtract", "\"-\"", UNOP_NEG},
432 {NULL, NULL}
14f9c5c9
AS
433};
434
435/* True if STR should be suppressed in info listings. */
436static int
d2e4a39e 437is_suppressed_name (const char *str)
14f9c5c9
AS
438{
439 if (STREQN (str, "_ada_", 5))
440 str += 5;
441 if (str[0] == '_' || str[0] == '\000')
442 return 1;
443 else
444 {
d2e4a39e
AS
445 const char *p;
446 const char *suffix = strstr (str, "___");
14f9c5c9
AS
447 if (suffix != NULL && suffix[3] != 'X')
448 return 1;
449 if (suffix == NULL)
450 suffix = str + strlen (str);
d2e4a39e 451 for (p = suffix - 1; p != str; p -= 1)
14f9c5c9
AS
452 if (isupper (*p))
453 {
454 int i;
455 if (p[0] == 'X' && p[-1] != '_')
456 goto OK;
457 if (*p != 'O')
458 return 1;
459 for (i = 0; ada_opname_table[i].mangled != NULL; i += 1)
d2e4a39e 460 if (STREQN (ada_opname_table[i].mangled, p,
14f9c5c9
AS
461 strlen (ada_opname_table[i].mangled)))
462 goto OK;
463 return 1;
d2e4a39e 464 OK:;
14f9c5c9
AS
465 }
466 return 0;
467 }
468}
469
470/* The "mangled" form of DEMANGLED, according to GNAT conventions.
471 * The result is valid until the next call to ada_mangle. */
472char *
d2e4a39e 473ada_mangle (const char *demangled)
14f9c5c9 474{
d2e4a39e 475 static char *mangling_buffer = NULL;
14f9c5c9 476 static size_t mangling_buffer_size = 0;
d2e4a39e 477 const char *p;
14f9c5c9 478 int k;
d2e4a39e 479
14f9c5c9
AS
480 if (demangled == NULL)
481 return NULL;
482
d2e4a39e
AS
483 GROW_VECT (mangling_buffer, mangling_buffer_size,
484 2 * strlen (demangled) + 10);
14f9c5c9
AS
485
486 k = 0;
487 for (p = demangled; *p != '\0'; p += 1)
488 {
d2e4a39e 489 if (*p == '.')
14f9c5c9 490 {
d2e4a39e 491 mangling_buffer[k] = mangling_buffer[k + 1] = '_';
14f9c5c9
AS
492 k += 2;
493 }
494 else if (*p == '"')
495 {
d2e4a39e 496 const struct ada_opname_map *mapping;
14f9c5c9
AS
497
498 for (mapping = ada_opname_table;
d2e4a39e
AS
499 mapping->mangled != NULL &&
500 !STREQN (mapping->demangled, p, strlen (mapping->demangled));
14f9c5c9
AS
501 p += 1)
502 ;
503 if (mapping->mangled == NULL)
504 error ("invalid Ada operator name: %s", p);
d2e4a39e 505 strcpy (mangling_buffer + k, mapping->mangled);
14f9c5c9
AS
506 k += strlen (mapping->mangled);
507 break;
508 }
d2e4a39e 509 else
14f9c5c9
AS
510 {
511 mangling_buffer[k] = *p;
512 k += 1;
513 }
514 }
515
516 mangling_buffer[k] = '\0';
517 return mangling_buffer;
518}
519
520/* Return NAME folded to lower case, or, if surrounded by single
521 * quotes, unfolded, but with the quotes stripped away. Result good
522 * to next call. */
d2e4a39e
AS
523char *
524ada_fold_name (const char *name)
14f9c5c9 525{
d2e4a39e 526 static char *fold_buffer = NULL;
14f9c5c9
AS
527 static size_t fold_buffer_size = 0;
528
529 int len = strlen (name);
d2e4a39e 530 GROW_VECT (fold_buffer, fold_buffer_size, len + 1);
14f9c5c9
AS
531
532 if (name[0] == '\'')
533 {
d2e4a39e
AS
534 strncpy (fold_buffer, name + 1, len - 2);
535 fold_buffer[len - 2] = '\000';
14f9c5c9
AS
536 }
537 else
538 {
539 int i;
540 for (i = 0; i <= len; i += 1)
541 fold_buffer[i] = tolower (name[i]);
542 }
543
544 return fold_buffer;
545}
546
547/* Demangle:
548 1. Discard final __{DIGIT}+ or ${DIGIT}+
549 2. Convert other instances of embedded "__" to `.'.
550 3. Discard leading _ada_.
551 4. Convert operator names to the appropriate quoted symbols.
552 5. Remove everything after first ___ if it is followed by
553 'X'.
554 6. Replace TK__ with __, and a trailing B or TKB with nothing.
555 7. Put symbols that should be suppressed in <...> brackets.
556 8. Remove trailing X[bn]* suffix (indicating names in package bodies).
557 The resulting string is valid until the next call of ada_demangle.
558 */
559
560char *
d2e4a39e 561ada_demangle (const char *mangled)
14f9c5c9
AS
562{
563 int i, j;
564 int len0;
d2e4a39e
AS
565 const char *p;
566 char *demangled;
14f9c5c9 567 int at_start_name;
d2e4a39e 568 static char *demangling_buffer = NULL;
14f9c5c9 569 static size_t demangling_buffer_size = 0;
d2e4a39e 570
14f9c5c9
AS
571 if (STREQN (mangled, "_ada_", 5))
572 mangled += 5;
573
574 if (mangled[0] == '_' || mangled[0] == '<')
575 goto Suppress;
576
577 p = strstr (mangled, "___");
578 if (p == NULL)
579 len0 = strlen (mangled);
d2e4a39e 580 else
14f9c5c9
AS
581 {
582 if (p[3] == 'X')
583 len0 = p - mangled;
584 else
585 goto Suppress;
586 }
587 if (len0 > 3 && STREQ (mangled + len0 - 3, "TKB"))
588 len0 -= 3;
589 if (len0 > 1 && STREQ (mangled + len0 - 1, "B"))
590 len0 -= 1;
591
592 /* Make demangled big enough for possible expansion by operator name. */
d2e4a39e 593 GROW_VECT (demangling_buffer, demangling_buffer_size, 2 * len0 + 1);
14f9c5c9
AS
594 demangled = demangling_buffer;
595
d2e4a39e
AS
596 if (isdigit (mangled[len0 - 1]))
597 {
598 for (i = len0 - 2; i >= 0 && isdigit (mangled[i]); i -= 1)
599 ;
600 if (i > 1 && mangled[i] == '_' && mangled[i - 1] == '_')
601 len0 = i - 1;
602 else if (mangled[i] == '$')
603 len0 = i;
604 }
14f9c5c9 605
d2e4a39e 606 for (i = 0, j = 0; i < len0 && !isalpha (mangled[i]); i += 1, j += 1)
14f9c5c9
AS
607 demangled[j] = mangled[i];
608
609 at_start_name = 1;
610 while (i < len0)
611 {
612 if (at_start_name && mangled[i] == 'O')
613 {
614 int k;
615 for (k = 0; ada_opname_table[k].mangled != NULL; k += 1)
616 {
d2e4a39e
AS
617 int op_len = strlen (ada_opname_table[k].mangled);
618 if (STREQN
619 (ada_opname_table[k].mangled + 1, mangled + i + 1,
620 op_len - 1) && !isalnum (mangled[i + op_len]))
14f9c5c9
AS
621 {
622 strcpy (demangled + j, ada_opname_table[k].demangled);
623 at_start_name = 0;
624 i += op_len;
625 j += strlen (ada_opname_table[k].demangled);
626 break;
627 }
628 }
629 if (ada_opname_table[k].mangled != NULL)
630 continue;
631 }
632 at_start_name = 0;
633
d2e4a39e 634 if (i < len0 - 4 && STREQN (mangled + i, "TK__", 4))
14f9c5c9 635 i += 2;
d2e4a39e 636 if (mangled[i] == 'X' && i != 0 && isalnum (mangled[i - 1]))
14f9c5c9
AS
637 {
638 do
639 i += 1;
640 while (i < len0 && (mangled[i] == 'b' || mangled[i] == 'n'));
641 if (i < len0)
642 goto Suppress;
643 }
d2e4a39e 644 else if (i < len0 - 2 && mangled[i] == '_' && mangled[i + 1] == '_')
14f9c5c9
AS
645 {
646 demangled[j] = '.';
647 at_start_name = 1;
d2e4a39e
AS
648 i += 2;
649 j += 1;
14f9c5c9
AS
650 }
651 else
652 {
653 demangled[j] = mangled[i];
d2e4a39e
AS
654 i += 1;
655 j += 1;
14f9c5c9
AS
656 }
657 }
658 demangled[j] = '\000';
659
660 for (i = 0; demangled[i] != '\0'; i += 1)
661 if (isupper (demangled[i]) || demangled[i] == ' ')
662 goto Suppress;
663
664 return demangled;
665
666Suppress:
d2e4a39e 667 GROW_VECT (demangling_buffer, demangling_buffer_size, strlen (mangled) + 3);
14f9c5c9
AS
668 demangled = demangling_buffer;
669 if (mangled[0] == '<')
670 strcpy (demangled, mangled);
671 else
672 sprintf (demangled, "<%s>", mangled);
673 return demangled;
674
675}
676
677/* Returns non-zero iff SYM_NAME matches NAME, ignoring any trailing
678 * suffixes that encode debugging information or leading _ada_ on
679 * SYM_NAME (see is_name_suffix commentary for the debugging
680 * information that is ignored). If WILD, then NAME need only match a
681 * suffix of SYM_NAME minus the same suffixes. Also returns 0 if
682 * either argument is NULL. */
683
684int
d2e4a39e 685ada_match_name (const char *sym_name, const char *name, int wild)
14f9c5c9
AS
686{
687 if (sym_name == NULL || name == NULL)
688 return 0;
689 else if (wild)
690 return wild_match (name, strlen (name), sym_name);
d2e4a39e
AS
691 else
692 {
693 int len_name = strlen (name);
694 return (STREQN (sym_name, name, len_name)
695 && is_name_suffix (sym_name + len_name))
696 || (STREQN (sym_name, "_ada_", 5)
697 && STREQN (sym_name + 5, name, len_name)
698 && is_name_suffix (sym_name + len_name + 5));
699 }
14f9c5c9
AS
700}
701
702/* True (non-zero) iff in Ada mode, the symbol SYM should be
703 suppressed in info listings. */
704
705int
ebf56fd3 706ada_suppress_symbol_printing (struct symbol *sym)
14f9c5c9 707{
176620f1 708 if (SYMBOL_DOMAIN (sym) == STRUCT_DOMAIN)
14f9c5c9 709 return 1;
d2e4a39e 710 else
22abf04a 711 return is_suppressed_name (DEPRECATED_SYMBOL_NAME (sym));
14f9c5c9 712}
14f9c5c9 713\f
d2e4a39e 714
14f9c5c9
AS
715 /* Arrays */
716
717/* Names of MAX_ADA_DIMENS bounds in P_BOUNDS fields of
718 array descriptors. */
719
d2e4a39e
AS
720static char *bound_name[] = {
721 "LB0", "UB0", "LB1", "UB1", "LB2", "UB2", "LB3", "UB3",
14f9c5c9
AS
722 "LB4", "UB4", "LB5", "UB5", "LB6", "UB6", "LB7", "UB7"
723};
724
725/* Maximum number of array dimensions we are prepared to handle. */
726
727#define MAX_ADA_DIMENS (sizeof(bound_name) / (2*sizeof(char*)))
728
729/* Like modify_field, but allows bitpos > wordlength. */
730
731static void
ebf56fd3 732modify_general_field (char *addr, LONGEST fieldval, int bitpos, int bitsize)
14f9c5c9 733{
d2e4a39e
AS
734 modify_field (addr + sizeof (LONGEST) * bitpos / (8 * sizeof (LONGEST)),
735 fieldval, bitpos % (8 * sizeof (LONGEST)), bitsize);
14f9c5c9
AS
736}
737
738
739/* The desc_* routines return primitive portions of array descriptors
740 (fat pointers). */
741
742/* The descriptor or array type, if any, indicated by TYPE; removes
743 level of indirection, if needed. */
d2e4a39e
AS
744static struct type *
745desc_base_type (struct type *type)
14f9c5c9
AS
746{
747 if (type == NULL)
748 return NULL;
749 CHECK_TYPEDEF (type);
750 if (type != NULL && TYPE_CODE (type) == TYPE_CODE_PTR)
751 return check_typedef (TYPE_TARGET_TYPE (type));
752 else
753 return type;
754}
755
756/* True iff TYPE indicates a "thin" array pointer type. */
757static int
d2e4a39e 758is_thin_pntr (struct type *type)
14f9c5c9 759{
d2e4a39e 760 return
14f9c5c9
AS
761 is_suffix (ada_type_name (desc_base_type (type)), "___XUT")
762 || is_suffix (ada_type_name (desc_base_type (type)), "___XUT___XVE");
763}
764
765/* The descriptor type for thin pointer type TYPE. */
d2e4a39e
AS
766static struct type *
767thin_descriptor_type (struct type *type)
14f9c5c9 768{
d2e4a39e 769 struct type *base_type = desc_base_type (type);
14f9c5c9
AS
770 if (base_type == NULL)
771 return NULL;
772 if (is_suffix (ada_type_name (base_type), "___XVE"))
773 return base_type;
d2e4a39e 774 else
14f9c5c9 775 {
d2e4a39e 776 struct type *alt_type = ada_find_parallel_type (base_type, "___XVE");
14f9c5c9
AS
777 if (alt_type == NULL)
778 return base_type;
779 else
780 return alt_type;
781 }
782}
783
784/* A pointer to the array data for thin-pointer value VAL. */
d2e4a39e
AS
785static struct value *
786thin_data_pntr (struct value *val)
14f9c5c9 787{
d2e4a39e 788 struct type *type = VALUE_TYPE (val);
14f9c5c9 789 if (TYPE_CODE (type) == TYPE_CODE_PTR)
d2e4a39e 790 return value_cast (desc_data_type (thin_descriptor_type (type)),
14f9c5c9 791 value_copy (val));
d2e4a39e 792 else
14f9c5c9
AS
793 return value_from_longest (desc_data_type (thin_descriptor_type (type)),
794 VALUE_ADDRESS (val) + VALUE_OFFSET (val));
795}
796
797/* True iff TYPE indicates a "thick" array pointer type. */
798static int
d2e4a39e 799is_thick_pntr (struct type *type)
14f9c5c9
AS
800{
801 type = desc_base_type (type);
802 return (type != NULL && TYPE_CODE (type) == TYPE_CODE_STRUCT
803 && lookup_struct_elt_type (type, "P_BOUNDS", 1) != NULL);
804}
805
806/* If TYPE is the type of an array descriptor (fat or thin pointer) or a
807 pointer to one, the type of its bounds data; otherwise, NULL. */
d2e4a39e
AS
808static struct type *
809desc_bounds_type (struct type *type)
14f9c5c9 810{
d2e4a39e 811 struct type *r;
14f9c5c9
AS
812
813 type = desc_base_type (type);
814
815 if (type == NULL)
816 return NULL;
817 else if (is_thin_pntr (type))
818 {
819 type = thin_descriptor_type (type);
820 if (type == NULL)
821 return NULL;
822 r = lookup_struct_elt_type (type, "BOUNDS", 1);
823 if (r != NULL)
824 return check_typedef (r);
825 }
826 else if (TYPE_CODE (type) == TYPE_CODE_STRUCT)
827 {
828 r = lookup_struct_elt_type (type, "P_BOUNDS", 1);
829 if (r != NULL)
830 return check_typedef (TYPE_TARGET_TYPE (check_typedef (r)));
831 }
832 return NULL;
833}
834
835/* If ARR is an array descriptor (fat or thin pointer), or pointer to
836 one, a pointer to its bounds data. Otherwise NULL. */
d2e4a39e
AS
837static struct value *
838desc_bounds (struct value *arr)
14f9c5c9 839{
d2e4a39e
AS
840 struct type *type = check_typedef (VALUE_TYPE (arr));
841 if (is_thin_pntr (type))
14f9c5c9 842 {
d2e4a39e
AS
843 struct type *bounds_type =
844 desc_bounds_type (thin_descriptor_type (type));
14f9c5c9
AS
845 LONGEST addr;
846
847 if (desc_bounds_type == NULL)
848 error ("Bad GNAT array descriptor");
849
850 /* NOTE: The following calculation is not really kosher, but
d2e4a39e
AS
851 since desc_type is an XVE-encoded type (and shouldn't be),
852 the correct calculation is a real pain. FIXME (and fix GCC). */
14f9c5c9
AS
853 if (TYPE_CODE (type) == TYPE_CODE_PTR)
854 addr = value_as_long (arr);
d2e4a39e 855 else
14f9c5c9
AS
856 addr = VALUE_ADDRESS (arr) + VALUE_OFFSET (arr);
857
d2e4a39e
AS
858 return
859 value_from_longest (lookup_pointer_type (bounds_type),
860 addr - TYPE_LENGTH (bounds_type));
14f9c5c9
AS
861 }
862
863 else if (is_thick_pntr (type))
d2e4a39e 864 return value_struct_elt (&arr, NULL, "P_BOUNDS", NULL,
14f9c5c9
AS
865 "Bad GNAT array descriptor");
866 else
867 return NULL;
868}
869
870/* If TYPE is the type of an array-descriptor (fat pointer), the bit
871 position of the field containing the address of the bounds data. */
872static int
d2e4a39e 873fat_pntr_bounds_bitpos (struct type *type)
14f9c5c9
AS
874{
875 return TYPE_FIELD_BITPOS (desc_base_type (type), 1);
876}
877
878/* If TYPE is the type of an array-descriptor (fat pointer), the bit
879 size of the field containing the address of the bounds data. */
880static int
d2e4a39e 881fat_pntr_bounds_bitsize (struct type *type)
14f9c5c9
AS
882{
883 type = desc_base_type (type);
884
d2e4a39e 885 if (TYPE_FIELD_BITSIZE (type, 1) > 0)
14f9c5c9
AS
886 return TYPE_FIELD_BITSIZE (type, 1);
887 else
888 return 8 * TYPE_LENGTH (check_typedef (TYPE_FIELD_TYPE (type, 1)));
889}
890
891/* If TYPE is the type of an array descriptor (fat or thin pointer) or a
892 pointer to one, the type of its array data (a
893 pointer-to-array-with-no-bounds type); otherwise, NULL. Use
894 ada_type_of_array to get an array type with bounds data. */
d2e4a39e
AS
895static struct type *
896desc_data_type (struct type *type)
14f9c5c9
AS
897{
898 type = desc_base_type (type);
899
900 /* NOTE: The following is bogus; see comment in desc_bounds. */
901 if (is_thin_pntr (type))
d2e4a39e
AS
902 return lookup_pointer_type
903 (desc_base_type (TYPE_FIELD_TYPE (thin_descriptor_type (type), 1)));
14f9c5c9
AS
904 else if (is_thick_pntr (type))
905 return lookup_struct_elt_type (type, "P_ARRAY", 1);
906 else
907 return NULL;
908}
909
910/* If ARR is an array descriptor (fat or thin pointer), a pointer to
911 its array data. */
d2e4a39e
AS
912static struct value *
913desc_data (struct value *arr)
14f9c5c9 914{
d2e4a39e 915 struct type *type = VALUE_TYPE (arr);
14f9c5c9
AS
916 if (is_thin_pntr (type))
917 return thin_data_pntr (arr);
918 else if (is_thick_pntr (type))
d2e4a39e 919 return value_struct_elt (&arr, NULL, "P_ARRAY", NULL,
14f9c5c9
AS
920 "Bad GNAT array descriptor");
921 else
922 return NULL;
923}
924
925
926/* If TYPE is the type of an array-descriptor (fat pointer), the bit
927 position of the field containing the address of the data. */
928static int
d2e4a39e 929fat_pntr_data_bitpos (struct type *type)
14f9c5c9
AS
930{
931 return TYPE_FIELD_BITPOS (desc_base_type (type), 0);
932}
933
934/* If TYPE is the type of an array-descriptor (fat pointer), the bit
935 size of the field containing the address of the data. */
936static int
d2e4a39e 937fat_pntr_data_bitsize (struct type *type)
14f9c5c9
AS
938{
939 type = desc_base_type (type);
940
941 if (TYPE_FIELD_BITSIZE (type, 0) > 0)
942 return TYPE_FIELD_BITSIZE (type, 0);
d2e4a39e 943 else
14f9c5c9
AS
944 return TARGET_CHAR_BIT * TYPE_LENGTH (TYPE_FIELD_TYPE (type, 0));
945}
946
947/* If BOUNDS is an array-bounds structure (or pointer to one), return
948 the Ith lower bound stored in it, if WHICH is 0, and the Ith upper
949 bound, if WHICH is 1. The first bound is I=1. */
d2e4a39e
AS
950static struct value *
951desc_one_bound (struct value *bounds, int i, int which)
14f9c5c9 952{
d2e4a39e 953 return value_struct_elt (&bounds, NULL, bound_name[2 * i + which - 2], NULL,
14f9c5c9
AS
954 "Bad GNAT array descriptor bounds");
955}
956
957/* If BOUNDS is an array-bounds structure type, return the bit position
958 of the Ith lower bound stored in it, if WHICH is 0, and the Ith upper
959 bound, if WHICH is 1. The first bound is I=1. */
960static int
d2e4a39e 961desc_bound_bitpos (struct type *type, int i, int which)
14f9c5c9 962{
d2e4a39e 963 return TYPE_FIELD_BITPOS (desc_base_type (type), 2 * i + which - 2);
14f9c5c9
AS
964}
965
966/* If BOUNDS is an array-bounds structure type, return the bit field size
967 of the Ith lower bound stored in it, if WHICH is 0, and the Ith upper
968 bound, if WHICH is 1. The first bound is I=1. */
969static int
d2e4a39e 970desc_bound_bitsize (struct type *type, int i, int which)
14f9c5c9
AS
971{
972 type = desc_base_type (type);
973
d2e4a39e
AS
974 if (TYPE_FIELD_BITSIZE (type, 2 * i + which - 2) > 0)
975 return TYPE_FIELD_BITSIZE (type, 2 * i + which - 2);
976 else
977 return 8 * TYPE_LENGTH (TYPE_FIELD_TYPE (type, 2 * i + which - 2));
14f9c5c9
AS
978}
979
980/* If TYPE is the type of an array-bounds structure, the type of its
d2e4a39e
AS
981 Ith bound (numbering from 1). Otherwise, NULL. */
982static struct type *
983desc_index_type (struct type *type, int i)
14f9c5c9
AS
984{
985 type = desc_base_type (type);
986
987 if (TYPE_CODE (type) == TYPE_CODE_STRUCT)
d2e4a39e
AS
988 return lookup_struct_elt_type (type, bound_name[2 * i - 2], 1);
989 else
14f9c5c9
AS
990 return NULL;
991}
992
993/* The number of index positions in the array-bounds type TYPE. 0
994 if TYPE is NULL. */
995static int
d2e4a39e 996desc_arity (struct type *type)
14f9c5c9
AS
997{
998 type = desc_base_type (type);
999
1000 if (type != NULL)
1001 return TYPE_NFIELDS (type) / 2;
1002 return 0;
1003}
1004
1005
1006/* Non-zero iff type is a simple array type (or pointer to one). */
1007int
d2e4a39e 1008ada_is_simple_array (struct type *type)
14f9c5c9
AS
1009{
1010 if (type == NULL)
1011 return 0;
1012 CHECK_TYPEDEF (type);
1013 return (TYPE_CODE (type) == TYPE_CODE_ARRAY
1014 || (TYPE_CODE (type) == TYPE_CODE_PTR
1015 && TYPE_CODE (TYPE_TARGET_TYPE (type)) == TYPE_CODE_ARRAY));
1016}
1017
1018/* Non-zero iff type belongs to a GNAT array descriptor. */
1019int
d2e4a39e 1020ada_is_array_descriptor (struct type *type)
14f9c5c9 1021{
d2e4a39e 1022 struct type *data_type = desc_data_type (type);
14f9c5c9
AS
1023
1024 if (type == NULL)
1025 return 0;
1026 CHECK_TYPEDEF (type);
d2e4a39e 1027 return
14f9c5c9
AS
1028 data_type != NULL
1029 && ((TYPE_CODE (data_type) == TYPE_CODE_PTR
1030 && TYPE_TARGET_TYPE (data_type) != NULL
1031 && TYPE_CODE (TYPE_TARGET_TYPE (data_type)) == TYPE_CODE_ARRAY)
d2e4a39e 1032 ||
14f9c5c9
AS
1033 TYPE_CODE (data_type) == TYPE_CODE_ARRAY)
1034 && desc_arity (desc_bounds_type (type)) > 0;
1035}
1036
1037/* Non-zero iff type is a partially mal-formed GNAT array
1038 descriptor. (FIXME: This is to compensate for some problems with
1039 debugging output from GNAT. Re-examine periodically to see if it
1040 is still needed. */
1041int
ebf56fd3 1042ada_is_bogus_array_descriptor (struct type *type)
14f9c5c9 1043{
d2e4a39e 1044 return
14f9c5c9
AS
1045 type != NULL
1046 && TYPE_CODE (type) == TYPE_CODE_STRUCT
1047 && (lookup_struct_elt_type (type, "P_BOUNDS", 1) != NULL
1048 || lookup_struct_elt_type (type, "P_ARRAY", 1) != NULL)
d2e4a39e 1049 && !ada_is_array_descriptor (type);
14f9c5c9
AS
1050}
1051
1052
1053/* If ARR has a record type in the form of a standard GNAT array descriptor,
1054 (fat pointer) returns the type of the array data described---specifically,
1055 a pointer-to-array type. If BOUNDS is non-zero, the bounds data are filled
1056 in from the descriptor; otherwise, they are left unspecified. If
1057 the ARR denotes a null array descriptor and BOUNDS is non-zero,
1058 returns NULL. The result is simply the type of ARR if ARR is not
1059 a descriptor. */
d2e4a39e
AS
1060struct type *
1061ada_type_of_array (struct value *arr, int bounds)
14f9c5c9
AS
1062{
1063 if (ada_is_packed_array_type (VALUE_TYPE (arr)))
1064 return decode_packed_array_type (VALUE_TYPE (arr));
1065
d2e4a39e 1066 if (!ada_is_array_descriptor (VALUE_TYPE (arr)))
14f9c5c9 1067 return VALUE_TYPE (arr);
d2e4a39e
AS
1068
1069 if (!bounds)
1070 return
1071 check_typedef (TYPE_TARGET_TYPE (desc_data_type (VALUE_TYPE (arr))));
14f9c5c9
AS
1072 else
1073 {
d2e4a39e 1074 struct type *elt_type;
14f9c5c9 1075 int arity;
d2e4a39e 1076 struct value *descriptor;
14f9c5c9
AS
1077 struct objfile *objf = TYPE_OBJFILE (VALUE_TYPE (arr));
1078
1079 elt_type = ada_array_element_type (VALUE_TYPE (arr), -1);
1080 arity = ada_array_arity (VALUE_TYPE (arr));
1081
d2e4a39e 1082 if (elt_type == NULL || arity == 0)
14f9c5c9
AS
1083 return check_typedef (VALUE_TYPE (arr));
1084
1085 descriptor = desc_bounds (arr);
d2e4a39e 1086 if (value_as_long (descriptor) == 0)
14f9c5c9 1087 return NULL;
d2e4a39e
AS
1088 while (arity > 0)
1089 {
1090 struct type *range_type = alloc_type (objf);
1091 struct type *array_type = alloc_type (objf);
1092 struct value *low = desc_one_bound (descriptor, arity, 0);
1093 struct value *high = desc_one_bound (descriptor, arity, 1);
1094 arity -= 1;
1095
1096 create_range_type (range_type, VALUE_TYPE (low),
1097 (int) value_as_long (low),
1098 (int) value_as_long (high));
1099 elt_type = create_array_type (array_type, elt_type, range_type);
1100 }
14f9c5c9
AS
1101
1102 return lookup_pointer_type (elt_type);
1103 }
1104}
1105
1106/* If ARR does not represent an array, returns ARR unchanged.
1107 Otherwise, returns either a standard GDB array with bounds set
1108 appropriately or, if ARR is a non-null fat pointer, a pointer to a standard
1109 GDB array. Returns NULL if ARR is a null fat pointer. */
d2e4a39e
AS
1110struct value *
1111ada_coerce_to_simple_array_ptr (struct value *arr)
14f9c5c9
AS
1112{
1113 if (ada_is_array_descriptor (VALUE_TYPE (arr)))
1114 {
d2e4a39e 1115 struct type *arrType = ada_type_of_array (arr, 1);
14f9c5c9
AS
1116 if (arrType == NULL)
1117 return NULL;
1118 return value_cast (arrType, value_copy (desc_data (arr)));
1119 }
1120 else if (ada_is_packed_array_type (VALUE_TYPE (arr)))
1121 return decode_packed_array (arr);
1122 else
1123 return arr;
1124}
1125
1126/* If ARR does not represent an array, returns ARR unchanged.
1127 Otherwise, returns a standard GDB array describing ARR (which may
1128 be ARR itself if it already is in the proper form). */
d2e4a39e
AS
1129struct value *
1130ada_coerce_to_simple_array (struct value *arr)
14f9c5c9
AS
1131{
1132 if (ada_is_array_descriptor (VALUE_TYPE (arr)))
1133 {
d2e4a39e 1134 struct value *arrVal = ada_coerce_to_simple_array_ptr (arr);
14f9c5c9
AS
1135 if (arrVal == NULL)
1136 error ("Bounds unavailable for null array pointer.");
1137 return value_ind (arrVal);
1138 }
1139 else if (ada_is_packed_array_type (VALUE_TYPE (arr)))
1140 return decode_packed_array (arr);
d2e4a39e 1141 else
14f9c5c9
AS
1142 return arr;
1143}
1144
1145/* If TYPE represents a GNAT array type, return it translated to an
1146 ordinary GDB array type (possibly with BITSIZE fields indicating
1147 packing). For other types, is the identity. */
d2e4a39e
AS
1148struct type *
1149ada_coerce_to_simple_array_type (struct type *type)
14f9c5c9 1150{
d2e4a39e
AS
1151 struct value *mark = value_mark ();
1152 struct value *dummy = value_from_longest (builtin_type_long, 0);
1153 struct type *result;
14f9c5c9
AS
1154 VALUE_TYPE (dummy) = type;
1155 result = ada_type_of_array (dummy, 0);
1156 value_free_to_mark (dummy);
1157 return result;
1158}
1159
1160/* Non-zero iff TYPE represents a standard GNAT packed-array type. */
1161int
d2e4a39e 1162ada_is_packed_array_type (struct type *type)
14f9c5c9
AS
1163{
1164 if (type == NULL)
1165 return 0;
1166 CHECK_TYPEDEF (type);
d2e4a39e 1167 return
14f9c5c9
AS
1168 ada_type_name (type) != NULL
1169 && strstr (ada_type_name (type), "___XP") != NULL;
1170}
1171
1172/* Given that TYPE is a standard GDB array type with all bounds filled
1173 in, and that the element size of its ultimate scalar constituents
1174 (that is, either its elements, or, if it is an array of arrays, its
1175 elements' elements, etc.) is *ELT_BITS, return an identical type,
1176 but with the bit sizes of its elements (and those of any
1177 constituent arrays) recorded in the BITSIZE components of its
1178 TYPE_FIELD_BITSIZE values, and with *ELT_BITS set to its total size
1179 in bits. */
d2e4a39e
AS
1180static struct type *
1181packed_array_type (struct type *type, long *elt_bits)
14f9c5c9 1182{
d2e4a39e
AS
1183 struct type *new_elt_type;
1184 struct type *new_type;
14f9c5c9
AS
1185 LONGEST low_bound, high_bound;
1186
1187 CHECK_TYPEDEF (type);
1188 if (TYPE_CODE (type) != TYPE_CODE_ARRAY)
1189 return type;
1190
1191 new_type = alloc_type (TYPE_OBJFILE (type));
1192 new_elt_type = packed_array_type (check_typedef (TYPE_TARGET_TYPE (type)),
1193 elt_bits);
1194 create_array_type (new_type, new_elt_type, TYPE_FIELD_TYPE (type, 0));
1195 TYPE_FIELD_BITSIZE (new_type, 0) = *elt_bits;
1196 TYPE_NAME (new_type) = ada_type_name (type);
1197
d2e4a39e 1198 if (get_discrete_bounds (TYPE_FIELD_TYPE (type, 0),
14f9c5c9
AS
1199 &low_bound, &high_bound) < 0)
1200 low_bound = high_bound = 0;
1201 if (high_bound < low_bound)
1202 *elt_bits = TYPE_LENGTH (new_type) = 0;
d2e4a39e 1203 else
14f9c5c9
AS
1204 {
1205 *elt_bits *= (high_bound - low_bound + 1);
d2e4a39e 1206 TYPE_LENGTH (new_type) =
14f9c5c9
AS
1207 (*elt_bits + HOST_CHAR_BIT - 1) / HOST_CHAR_BIT;
1208 }
1209
1210 /* TYPE_FLAGS (new_type) |= TYPE_FLAG_FIXED_INSTANCE; */
1211 /* FIXME: TYPE_FLAG_FIXED_INSTANCE should be defined in gdbtypes.h */
1212 return new_type;
1213}
1214
1215/* The array type encoded by TYPE, where ada_is_packed_array_type (TYPE).
1216 */
d2e4a39e
AS
1217static struct type *
1218decode_packed_array_type (struct type *type)
1219{
1220 struct symbol **syms;
1221 struct block **blocks;
1222 const char *raw_name = ada_type_name (check_typedef (type));
1223 char *name = (char *) alloca (strlen (raw_name) + 1);
1224 char *tail = strstr (raw_name, "___XP");
1225 struct type *shadow_type;
14f9c5c9
AS
1226 long bits;
1227 int i, n;
1228
1229 memcpy (name, raw_name, tail - raw_name);
1230 name[tail - raw_name] = '\000';
1231
1232 /* NOTE: Use ada_lookup_symbol_list because of bug in some versions
1233 * of gcc (Solaris, e.g.). FIXME when compiler is fixed. */
d2e4a39e 1234 n = ada_lookup_symbol_list (name, get_selected_block (NULL),
176620f1 1235 VAR_DOMAIN, &syms, &blocks);
14f9c5c9
AS
1236 for (i = 0; i < n; i += 1)
1237 if (syms[i] != NULL && SYMBOL_CLASS (syms[i]) == LOC_TYPEDEF
1238 && STREQ (name, ada_type_name (SYMBOL_TYPE (syms[i]))))
1239 break;
1240 if (i >= n)
1241 {
1242 warning ("could not find bounds information on packed array");
1243 return NULL;
1244 }
1245 shadow_type = SYMBOL_TYPE (syms[i]);
1246
1247 if (TYPE_CODE (shadow_type) != TYPE_CODE_ARRAY)
1248 {
1249 warning ("could not understand bounds information on packed array");
1250 return NULL;
1251 }
d2e4a39e 1252
14f9c5c9
AS
1253 if (sscanf (tail + sizeof ("___XP") - 1, "%ld", &bits) != 1)
1254 {
1255 warning ("could not understand bit size information on packed array");
1256 return NULL;
1257 }
d2e4a39e 1258
14f9c5c9
AS
1259 return packed_array_type (shadow_type, &bits);
1260}
1261
1262/* Given that ARR is a struct value* indicating a GNAT packed array,
1263 returns a simple array that denotes that array. Its type is a
1264 standard GDB array type except that the BITSIZEs of the array
1265 target types are set to the number of bits in each element, and the
1266 type length is set appropriately. */
1267
d2e4a39e
AS
1268static struct value *
1269decode_packed_array (struct value *arr)
14f9c5c9 1270{
d2e4a39e 1271 struct type *type = decode_packed_array_type (VALUE_TYPE (arr));
14f9c5c9
AS
1272
1273 if (type == NULL)
1274 {
1275 error ("can't unpack array");
1276 return NULL;
1277 }
1278 else
1279 return coerce_unspec_val_to_type (arr, 0, type);
1280}
1281
1282
1283/* The value of the element of packed array ARR at the ARITY indices
1284 given in IND. ARR must be a simple array. */
1285
d2e4a39e
AS
1286static struct value *
1287value_subscript_packed (struct value *arr, int arity, struct value **ind)
14f9c5c9
AS
1288{
1289 int i;
1290 int bits, elt_off, bit_off;
1291 long elt_total_bit_offset;
d2e4a39e
AS
1292 struct type *elt_type;
1293 struct value *v;
14f9c5c9
AS
1294
1295 bits = 0;
1296 elt_total_bit_offset = 0;
1297 elt_type = check_typedef (VALUE_TYPE (arr));
d2e4a39e 1298 for (i = 0; i < arity; i += 1)
14f9c5c9 1299 {
d2e4a39e 1300 if (TYPE_CODE (elt_type) != TYPE_CODE_ARRAY
14f9c5c9 1301 || TYPE_FIELD_BITSIZE (elt_type, 0) == 0)
d2e4a39e
AS
1302 error
1303 ("attempt to do packed indexing of something other than a packed array");
14f9c5c9
AS
1304 else
1305 {
1306 struct type *range_type = TYPE_INDEX_TYPE (elt_type);
1307 LONGEST lowerbound, upperbound;
1308 LONGEST idx;
1309
d2e4a39e 1310 if (get_discrete_bounds (range_type, &lowerbound, &upperbound) < 0)
14f9c5c9
AS
1311 {
1312 warning ("don't know bounds of array");
1313 lowerbound = upperbound = 0;
1314 }
d2e4a39e 1315
14f9c5c9
AS
1316 idx = value_as_long (value_pos_atr (ind[i]));
1317 if (idx < lowerbound || idx > upperbound)
1318 warning ("packed array index %ld out of bounds", (long) idx);
1319 bits = TYPE_FIELD_BITSIZE (elt_type, 0);
1320 elt_total_bit_offset += (idx - lowerbound) * bits;
1321 elt_type = check_typedef (TYPE_TARGET_TYPE (elt_type));
1322 }
1323 }
1324 elt_off = elt_total_bit_offset / HOST_CHAR_BIT;
1325 bit_off = elt_total_bit_offset % HOST_CHAR_BIT;
d2e4a39e
AS
1326
1327 v = ada_value_primitive_packed_val (arr, NULL, elt_off, bit_off,
14f9c5c9
AS
1328 bits, elt_type);
1329 if (VALUE_LVAL (arr) == lval_internalvar)
1330 VALUE_LVAL (v) = lval_internalvar_component;
1331 else
1332 VALUE_LVAL (v) = VALUE_LVAL (arr);
1333 return v;
1334}
1335
1336/* Non-zero iff TYPE includes negative integer values. */
1337
1338static int
d2e4a39e 1339has_negatives (struct type *type)
14f9c5c9 1340{
d2e4a39e
AS
1341 switch (TYPE_CODE (type))
1342 {
1343 default:
1344 return 0;
1345 case TYPE_CODE_INT:
1346 return !TYPE_UNSIGNED (type);
1347 case TYPE_CODE_RANGE:
1348 return TYPE_LOW_BOUND (type) < 0;
1349 }
14f9c5c9 1350}
d2e4a39e 1351
14f9c5c9
AS
1352
1353/* Create a new value of type TYPE from the contents of OBJ starting
1354 at byte OFFSET, and bit offset BIT_OFFSET within that byte,
1355 proceeding for BIT_SIZE bits. If OBJ is an lval in memory, then
1356 assigning through the result will set the field fetched from. OBJ
1357 may also be NULL, in which case, VALADDR+OFFSET must address the
1358 start of storage containing the packed value. The value returned
1359 in this case is never an lval.
1360 Assumes 0 <= BIT_OFFSET < HOST_CHAR_BIT. */
1361
d2e4a39e
AS
1362struct value *
1363ada_value_primitive_packed_val (struct value *obj, char *valaddr, long offset,
1364 int bit_offset, int bit_size,
1365 struct type *type)
14f9c5c9 1366{
d2e4a39e 1367 struct value *v;
14f9c5c9
AS
1368 int src, /* Index into the source area. */
1369 targ, /* Index into the target area. */
d2e4a39e 1370 i, srcBitsLeft, /* Number of source bits left to move. */
14f9c5c9
AS
1371 nsrc, ntarg, /* Number of source and target bytes. */
1372 unusedLS, /* Number of bits in next significant
1373 * byte of source that are unused. */
1374 accumSize; /* Number of meaningful bits in accum */
d2e4a39e
AS
1375 unsigned char *bytes; /* First byte containing data to unpack. */
1376 unsigned char *unpacked;
14f9c5c9
AS
1377 unsigned long accum; /* Staging area for bits being transferred */
1378 unsigned char sign;
1379 int len = (bit_size + bit_offset + HOST_CHAR_BIT - 1) / 8;
1380 /* Transmit bytes from least to most significant; delta is the
d2e4a39e 1381 * direction the indices move. */
14f9c5c9
AS
1382 int delta = BITS_BIG_ENDIAN ? -1 : 1;
1383
1384 CHECK_TYPEDEF (type);
1385
1386 if (obj == NULL)
1387 {
1388 v = allocate_value (type);
d2e4a39e 1389 bytes = (unsigned char *) (valaddr + offset);
14f9c5c9
AS
1390 }
1391 else if (VALUE_LAZY (obj))
1392 {
1393 v = value_at (type,
1394 VALUE_ADDRESS (obj) + VALUE_OFFSET (obj) + offset, NULL);
d2e4a39e 1395 bytes = (unsigned char *) alloca (len);
14f9c5c9
AS
1396 read_memory (VALUE_ADDRESS (v), bytes, len);
1397 }
d2e4a39e 1398 else
14f9c5c9
AS
1399 {
1400 v = allocate_value (type);
d2e4a39e 1401 bytes = (unsigned char *) VALUE_CONTENTS (obj) + offset;
14f9c5c9 1402 }
d2e4a39e
AS
1403
1404 if (obj != NULL)
14f9c5c9
AS
1405 {
1406 VALUE_LVAL (v) = VALUE_LVAL (obj);
1407 if (VALUE_LVAL (obj) == lval_internalvar)
1408 VALUE_LVAL (v) = lval_internalvar_component;
1409 VALUE_ADDRESS (v) = VALUE_ADDRESS (obj) + VALUE_OFFSET (obj) + offset;
1410 VALUE_BITPOS (v) = bit_offset + VALUE_BITPOS (obj);
1411 VALUE_BITSIZE (v) = bit_size;
1412 if (VALUE_BITPOS (v) >= HOST_CHAR_BIT)
d2e4a39e
AS
1413 {
1414 VALUE_ADDRESS (v) += 1;
1415 VALUE_BITPOS (v) -= HOST_CHAR_BIT;
1416 }
14f9c5c9
AS
1417 }
1418 else
1419 VALUE_BITSIZE (v) = bit_size;
d2e4a39e 1420 unpacked = (unsigned char *) VALUE_CONTENTS (v);
14f9c5c9
AS
1421
1422 srcBitsLeft = bit_size;
1423 nsrc = len;
1424 ntarg = TYPE_LENGTH (type);
1425 sign = 0;
1426 if (bit_size == 0)
1427 {
1428 memset (unpacked, 0, TYPE_LENGTH (type));
1429 return v;
1430 }
1431 else if (BITS_BIG_ENDIAN)
1432 {
d2e4a39e
AS
1433 src = len - 1;
1434 if (has_negatives (type) &&
1435 ((bytes[0] << bit_offset) & (1 << (HOST_CHAR_BIT - 1))))
14f9c5c9 1436 sign = ~0;
d2e4a39e
AS
1437
1438 unusedLS =
14f9c5c9
AS
1439 (HOST_CHAR_BIT - (bit_size + bit_offset) % HOST_CHAR_BIT)
1440 % HOST_CHAR_BIT;
1441
1442 switch (TYPE_CODE (type))
d2e4a39e
AS
1443 {
1444 case TYPE_CODE_ARRAY:
1445 case TYPE_CODE_UNION:
1446 case TYPE_CODE_STRUCT:
1447 /* Non-scalar values must be aligned at a byte boundary. */
1448 accumSize =
1449 (HOST_CHAR_BIT - bit_size % HOST_CHAR_BIT) % HOST_CHAR_BIT;
14f9c5c9
AS
1450 /* And are placed at the beginning (most-significant) bytes
1451 * of the target. */
1452 targ = src;
d2e4a39e
AS
1453 break;
1454 default:
14f9c5c9
AS
1455 accumSize = 0;
1456 targ = TYPE_LENGTH (type) - 1;
d2e4a39e
AS
1457 break;
1458 }
14f9c5c9 1459 }
d2e4a39e 1460 else
14f9c5c9
AS
1461 {
1462 int sign_bit_offset = (bit_size + bit_offset - 1) % 8;
1463
1464 src = targ = 0;
1465 unusedLS = bit_offset;
1466 accumSize = 0;
1467
d2e4a39e 1468 if (has_negatives (type) && (bytes[len - 1] & (1 << sign_bit_offset)))
14f9c5c9
AS
1469 sign = ~0;
1470 }
d2e4a39e 1471
14f9c5c9
AS
1472 accum = 0;
1473 while (nsrc > 0)
1474 {
1475 /* Mask for removing bits of the next source byte that are not
1476 * part of the value. */
d2e4a39e
AS
1477 unsigned int unusedMSMask =
1478 (1 << (srcBitsLeft >= HOST_CHAR_BIT ? HOST_CHAR_BIT : srcBitsLeft)) -
1479 1;
14f9c5c9
AS
1480 /* Sign-extend bits for this byte. */
1481 unsigned int signMask = sign & ~unusedMSMask;
d2e4a39e 1482 accum |=
14f9c5c9
AS
1483 (((bytes[src] >> unusedLS) & unusedMSMask) | signMask) << accumSize;
1484 accumSize += HOST_CHAR_BIT - unusedLS;
d2e4a39e 1485 if (accumSize >= HOST_CHAR_BIT)
14f9c5c9
AS
1486 {
1487 unpacked[targ] = accum & ~(~0L << HOST_CHAR_BIT);
1488 accumSize -= HOST_CHAR_BIT;
1489 accum >>= HOST_CHAR_BIT;
1490 ntarg -= 1;
1491 targ += delta;
1492 }
1493 srcBitsLeft -= HOST_CHAR_BIT - unusedLS;
1494 unusedLS = 0;
1495 nsrc -= 1;
1496 src += delta;
1497 }
1498 while (ntarg > 0)
1499 {
1500 accum |= sign << accumSize;
1501 unpacked[targ] = accum & ~(~0L << HOST_CHAR_BIT);
1502 accumSize -= HOST_CHAR_BIT;
1503 accum >>= HOST_CHAR_BIT;
1504 ntarg -= 1;
1505 targ += delta;
1506 }
1507
1508 return v;
1509}
d2e4a39e 1510
14f9c5c9
AS
1511/* Move N bits from SOURCE, starting at bit offset SRC_OFFSET to
1512 TARGET, starting at bit offset TARG_OFFSET. SOURCE and TARGET must
1513 not overlap. */
1514static void
d2e4a39e 1515move_bits (char *target, int targ_offset, char *source, int src_offset, int n)
14f9c5c9
AS
1516{
1517 unsigned int accum, mask;
1518 int accum_bits, chunk_size;
1519
1520 target += targ_offset / HOST_CHAR_BIT;
1521 targ_offset %= HOST_CHAR_BIT;
1522 source += src_offset / HOST_CHAR_BIT;
1523 src_offset %= HOST_CHAR_BIT;
d2e4a39e 1524 if (BITS_BIG_ENDIAN)
14f9c5c9
AS
1525 {
1526 accum = (unsigned char) *source;
1527 source += 1;
1528 accum_bits = HOST_CHAR_BIT - src_offset;
1529
d2e4a39e 1530 while (n > 0)
14f9c5c9
AS
1531 {
1532 int unused_right;
1533 accum = (accum << HOST_CHAR_BIT) + (unsigned char) *source;
1534 accum_bits += HOST_CHAR_BIT;
1535 source += 1;
1536 chunk_size = HOST_CHAR_BIT - targ_offset;
1537 if (chunk_size > n)
1538 chunk_size = n;
1539 unused_right = HOST_CHAR_BIT - (chunk_size + targ_offset);
1540 mask = ((1 << chunk_size) - 1) << unused_right;
d2e4a39e
AS
1541 *target =
1542 (*target & ~mask)
14f9c5c9
AS
1543 | ((accum >> (accum_bits - chunk_size - unused_right)) & mask);
1544 n -= chunk_size;
1545 accum_bits -= chunk_size;
1546 target += 1;
1547 targ_offset = 0;
1548 }
1549 }
1550 else
1551 {
1552 accum = (unsigned char) *source >> src_offset;
1553 source += 1;
1554 accum_bits = HOST_CHAR_BIT - src_offset;
1555
d2e4a39e 1556 while (n > 0)
14f9c5c9
AS
1557 {
1558 accum = accum + ((unsigned char) *source << accum_bits);
1559 accum_bits += HOST_CHAR_BIT;
1560 source += 1;
1561 chunk_size = HOST_CHAR_BIT - targ_offset;
1562 if (chunk_size > n)
1563 chunk_size = n;
1564 mask = ((1 << chunk_size) - 1) << targ_offset;
d2e4a39e 1565 *target = (*target & ~mask) | ((accum << targ_offset) & mask);
14f9c5c9
AS
1566 n -= chunk_size;
1567 accum_bits -= chunk_size;
1568 accum >>= chunk_size;
1569 target += 1;
1570 targ_offset = 0;
1571 }
1572 }
1573}
1574
1575
1576/* Store the contents of FROMVAL into the location of TOVAL.
1577 Return a new value with the location of TOVAL and contents of
1578 FROMVAL. Handles assignment into packed fields that have
1579 floating-point or non-scalar types. */
1580
d2e4a39e
AS
1581static struct value *
1582ada_value_assign (struct value *toval, struct value *fromval)
14f9c5c9 1583{
d2e4a39e 1584 struct type *type = VALUE_TYPE (toval);
14f9c5c9
AS
1585 int bits = VALUE_BITSIZE (toval);
1586
1587 if (!toval->modifiable)
1588 error ("Left operand of assignment is not a modifiable lvalue.");
1589
1590 COERCE_REF (toval);
1591
d2e4a39e 1592 if (VALUE_LVAL (toval) == lval_memory
14f9c5c9 1593 && bits > 0
d2e4a39e 1594 && (TYPE_CODE (type) == TYPE_CODE_FLT
14f9c5c9
AS
1595 || TYPE_CODE (type) == TYPE_CODE_STRUCT))
1596 {
d2e4a39e
AS
1597 int len =
1598 (VALUE_BITPOS (toval) + bits + HOST_CHAR_BIT - 1) / HOST_CHAR_BIT;
1599 char *buffer = (char *) alloca (len);
1600 struct value *val;
14f9c5c9
AS
1601
1602 if (TYPE_CODE (type) == TYPE_CODE_FLT)
1603 fromval = value_cast (type, fromval);
1604
1605 read_memory (VALUE_ADDRESS (toval) + VALUE_OFFSET (toval), buffer, len);
1606 if (BITS_BIG_ENDIAN)
d2e4a39e
AS
1607 move_bits (buffer, VALUE_BITPOS (toval),
1608 VALUE_CONTENTS (fromval),
1609 TYPE_LENGTH (VALUE_TYPE (fromval)) * TARGET_CHAR_BIT -
1610 bits, bits);
14f9c5c9 1611 else
d2e4a39e 1612 move_bits (buffer, VALUE_BITPOS (toval), VALUE_CONTENTS (fromval),
14f9c5c9 1613 0, bits);
d2e4a39e
AS
1614 write_memory (VALUE_ADDRESS (toval) + VALUE_OFFSET (toval), buffer,
1615 len);
14f9c5c9
AS
1616
1617 val = value_copy (toval);
1618 memcpy (VALUE_CONTENTS_RAW (val), VALUE_CONTENTS (fromval),
1619 TYPE_LENGTH (type));
1620 VALUE_TYPE (val) = type;
d2e4a39e 1621
14f9c5c9
AS
1622 return val;
1623 }
1624
1625 return value_assign (toval, fromval);
1626}
1627
1628
1629/* The value of the element of array ARR at the ARITY indices given in IND.
1630 ARR may be either a simple array, GNAT array descriptor, or pointer
1631 thereto. */
1632
d2e4a39e
AS
1633struct value *
1634ada_value_subscript (struct value *arr, int arity, struct value **ind)
14f9c5c9
AS
1635{
1636 int k;
d2e4a39e
AS
1637 struct value *elt;
1638 struct type *elt_type;
14f9c5c9
AS
1639
1640 elt = ada_coerce_to_simple_array (arr);
1641
1642 elt_type = check_typedef (VALUE_TYPE (elt));
d2e4a39e 1643 if (TYPE_CODE (elt_type) == TYPE_CODE_ARRAY
14f9c5c9
AS
1644 && TYPE_FIELD_BITSIZE (elt_type, 0) > 0)
1645 return value_subscript_packed (elt, arity, ind);
1646
1647 for (k = 0; k < arity; k += 1)
1648 {
1649 if (TYPE_CODE (elt_type) != TYPE_CODE_ARRAY)
d2e4a39e 1650 error ("too many subscripts (%d expected)", k);
14f9c5c9
AS
1651 elt = value_subscript (elt, value_pos_atr (ind[k]));
1652 }
1653 return elt;
1654}
1655
1656/* Assuming ARR is a pointer to a standard GDB array of type TYPE, the
1657 value of the element of *ARR at the ARITY indices given in
1658 IND. Does not read the entire array into memory. */
1659
d2e4a39e
AS
1660struct value *
1661ada_value_ptr_subscript (struct value *arr, struct type *type, int arity,
1662 struct value **ind)
14f9c5c9
AS
1663{
1664 int k;
1665
1666 for (k = 0; k < arity; k += 1)
1667 {
1668 LONGEST lwb, upb;
d2e4a39e 1669 struct value *idx;
14f9c5c9
AS
1670
1671 if (TYPE_CODE (type) != TYPE_CODE_ARRAY)
d2e4a39e
AS
1672 error ("too many subscripts (%d expected)", k);
1673 arr = value_cast (lookup_pointer_type (TYPE_TARGET_TYPE (type)),
14f9c5c9
AS
1674 value_copy (arr));
1675 get_discrete_bounds (TYPE_INDEX_TYPE (type), &lwb, &upb);
d2e4a39e 1676 if (lwb == 0)
14f9c5c9
AS
1677 idx = ind[k];
1678 else
1679 idx = value_sub (ind[k], value_from_longest (builtin_type_int, lwb));
1680 arr = value_add (arr, idx);
1681 type = TYPE_TARGET_TYPE (type);
1682 }
1683
1684 return value_ind (arr);
1685}
1686
1687/* If type is a record type in the form of a standard GNAT array
1688 descriptor, returns the number of dimensions for type. If arr is a
1689 simple array, returns the number of "array of"s that prefix its
1690 type designation. Otherwise, returns 0. */
1691
1692int
d2e4a39e 1693ada_array_arity (struct type *type)
14f9c5c9
AS
1694{
1695 int arity;
1696
1697 if (type == NULL)
1698 return 0;
1699
1700 type = desc_base_type (type);
1701
1702 arity = 0;
d2e4a39e 1703 if (TYPE_CODE (type) == TYPE_CODE_STRUCT)
14f9c5c9 1704 return desc_arity (desc_bounds_type (type));
d2e4a39e
AS
1705 else
1706 while (TYPE_CODE (type) == TYPE_CODE_ARRAY)
14f9c5c9
AS
1707 {
1708 arity += 1;
1709 type = check_typedef (TYPE_TARGET_TYPE (type));
1710 }
d2e4a39e 1711
14f9c5c9
AS
1712 return arity;
1713}
1714
1715/* If TYPE is a record type in the form of a standard GNAT array
1716 descriptor or a simple array type, returns the element type for
1717 TYPE after indexing by NINDICES indices, or by all indices if
1718 NINDICES is -1. Otherwise, returns NULL. */
1719
d2e4a39e
AS
1720struct type *
1721ada_array_element_type (struct type *type, int nindices)
14f9c5c9
AS
1722{
1723 type = desc_base_type (type);
1724
d2e4a39e 1725 if (TYPE_CODE (type) == TYPE_CODE_STRUCT)
14f9c5c9
AS
1726 {
1727 int k;
d2e4a39e 1728 struct type *p_array_type;
14f9c5c9
AS
1729
1730 p_array_type = desc_data_type (type);
1731
1732 k = ada_array_arity (type);
1733 if (k == 0)
1734 return NULL;
d2e4a39e 1735
14f9c5c9
AS
1736 /* Initially p_array_type = elt_type(*)[]...(k times)...[] */
1737 if (nindices >= 0 && k > nindices)
1738 k = nindices;
1739 p_array_type = TYPE_TARGET_TYPE (p_array_type);
d2e4a39e 1740 while (k > 0 && p_array_type != NULL)
14f9c5c9
AS
1741 {
1742 p_array_type = check_typedef (TYPE_TARGET_TYPE (p_array_type));
1743 k -= 1;
1744 }
1745 return p_array_type;
1746 }
1747 else if (TYPE_CODE (type) == TYPE_CODE_ARRAY)
1748 {
1749 while (nindices != 0 && TYPE_CODE (type) == TYPE_CODE_ARRAY)
1750 {
1751 type = TYPE_TARGET_TYPE (type);
1752 nindices -= 1;
1753 }
1754 return type;
1755 }
1756
1757 return NULL;
1758}
1759
1760/* The type of nth index in arrays of given type (n numbering from 1). Does
1761 not examine memory. */
1762
d2e4a39e
AS
1763struct type *
1764ada_index_type (struct type *type, int n)
14f9c5c9
AS
1765{
1766 type = desc_base_type (type);
1767
1768 if (n > ada_array_arity (type))
1769 return NULL;
1770
1771 if (ada_is_simple_array (type))
1772 {
1773 int i;
1774
1775 for (i = 1; i < n; i += 1)
1776 type = TYPE_TARGET_TYPE (type);
1777
1778 return TYPE_TARGET_TYPE (TYPE_FIELD_TYPE (type, 0));
1779 }
d2e4a39e 1780 else
14f9c5c9
AS
1781 return desc_index_type (desc_bounds_type (type), n);
1782}
1783
1784/* Given that arr is an array type, returns the lower bound of the
1785 Nth index (numbering from 1) if WHICH is 0, and the upper bound if
1786 WHICH is 1. This returns bounds 0 .. -1 if ARR_TYPE is an
1787 array-descriptor type. If TYPEP is non-null, *TYPEP is set to the
1788 bounds type. It works for other arrays with bounds supplied by
1789 run-time quantities other than discriminants. */
1790
1791LONGEST
d2e4a39e
AS
1792ada_array_bound_from_type (struct type * arr_type, int n, int which,
1793 struct type ** typep)
14f9c5c9 1794{
d2e4a39e
AS
1795 struct type *type;
1796 struct type *index_type_desc;
14f9c5c9
AS
1797
1798 if (ada_is_packed_array_type (arr_type))
1799 arr_type = decode_packed_array_type (arr_type);
1800
d2e4a39e 1801 if (arr_type == NULL || !ada_is_simple_array (arr_type))
14f9c5c9
AS
1802 {
1803 if (typep != NULL)
1804 *typep = builtin_type_int;
d2e4a39e 1805 return (LONGEST) - which;
14f9c5c9
AS
1806 }
1807
1808 if (TYPE_CODE (arr_type) == TYPE_CODE_PTR)
1809 type = TYPE_TARGET_TYPE (arr_type);
1810 else
1811 type = arr_type;
1812
1813 index_type_desc = ada_find_parallel_type (type, "___XA");
d2e4a39e 1814 if (index_type_desc == NULL)
14f9c5c9 1815 {
d2e4a39e
AS
1816 struct type *range_type;
1817 struct type *index_type;
14f9c5c9 1818
d2e4a39e 1819 while (n > 1)
14f9c5c9
AS
1820 {
1821 type = TYPE_TARGET_TYPE (type);
1822 n -= 1;
1823 }
1824
1825 range_type = TYPE_INDEX_TYPE (type);
1826 index_type = TYPE_TARGET_TYPE (range_type);
1827 if (TYPE_CODE (index_type) == TYPE_CODE_UNDEF)
d2e4a39e 1828 index_type = builtin_type_long;
14f9c5c9
AS
1829 if (typep != NULL)
1830 *typep = index_type;
d2e4a39e
AS
1831 return
1832 (LONGEST) (which == 0
14f9c5c9
AS
1833 ? TYPE_LOW_BOUND (range_type)
1834 : TYPE_HIGH_BOUND (range_type));
1835 }
d2e4a39e 1836 else
14f9c5c9 1837 {
d2e4a39e
AS
1838 struct type *index_type =
1839 to_fixed_range_type (TYPE_FIELD_NAME (index_type_desc, n - 1),
14f9c5c9
AS
1840 NULL, TYPE_OBJFILE (arr_type));
1841 if (typep != NULL)
1842 *typep = TYPE_TARGET_TYPE (index_type);
d2e4a39e
AS
1843 return
1844 (LONGEST) (which == 0
14f9c5c9
AS
1845 ? TYPE_LOW_BOUND (index_type)
1846 : TYPE_HIGH_BOUND (index_type));
1847 }
1848}
1849
1850/* Given that arr is an array value, returns the lower bound of the
1851 nth index (numbering from 1) if which is 0, and the upper bound if
1852 which is 1. This routine will also work for arrays with bounds
1853 supplied by run-time quantities other than discriminants. */
1854
d2e4a39e 1855struct value *
4dc81987 1856ada_array_bound (struct value *arr, int n, int which)
14f9c5c9 1857{
d2e4a39e 1858 struct type *arr_type = VALUE_TYPE (arr);
14f9c5c9
AS
1859
1860 if (ada_is_packed_array_type (arr_type))
1861 return ada_array_bound (decode_packed_array (arr), n, which);
d2e4a39e 1862 else if (ada_is_simple_array (arr_type))
14f9c5c9 1863 {
d2e4a39e 1864 struct type *type;
14f9c5c9
AS
1865 LONGEST v = ada_array_bound_from_type (arr_type, n, which, &type);
1866 return value_from_longest (type, v);
1867 }
1868 else
1869 return desc_one_bound (desc_bounds (arr), n, which);
1870}
1871
1872/* Given that arr is an array value, returns the length of the
1873 nth index. This routine will also work for arrays with bounds
1874 supplied by run-time quantities other than discriminants. Does not
1875 work for arrays indexed by enumeration types with representation
d2e4a39e 1876 clauses at the moment. */
14f9c5c9 1877
d2e4a39e
AS
1878struct value *
1879ada_array_length (struct value *arr, int n)
14f9c5c9 1880{
d2e4a39e
AS
1881 struct type *arr_type = check_typedef (VALUE_TYPE (arr));
1882 struct type *index_type_desc;
14f9c5c9
AS
1883
1884 if (ada_is_packed_array_type (arr_type))
1885 return ada_array_length (decode_packed_array (arr), n);
1886
1887 if (ada_is_simple_array (arr_type))
1888 {
d2e4a39e 1889 struct type *type;
14f9c5c9
AS
1890 LONGEST v =
1891 ada_array_bound_from_type (arr_type, n, 1, &type) -
1892 ada_array_bound_from_type (arr_type, n, 0, NULL) + 1;
1893 return value_from_longest (type, v);
1894 }
1895 else
d2e4a39e 1896 return
14f9c5c9
AS
1897 value_from_longest (builtin_type_ada_int,
1898 value_as_long (desc_one_bound (desc_bounds (arr),
1899 n, 1))
1900 - value_as_long (desc_one_bound (desc_bounds (arr),
d2e4a39e 1901 n, 0)) + 1);
14f9c5c9 1902}
14f9c5c9 1903\f
d2e4a39e 1904
14f9c5c9
AS
1905 /* Name resolution */
1906
1907/* The "demangled" name for the user-definable Ada operator corresponding
1908 to op. */
1909
d2e4a39e 1910static const char *
ebf56fd3 1911ada_op_name (enum exp_opcode op)
14f9c5c9
AS
1912{
1913 int i;
1914
1915 for (i = 0; ada_opname_table[i].mangled != NULL; i += 1)
1916 {
1917 if (ada_opname_table[i].op == op)
1918 return ada_opname_table[i].demangled;
1919 }
1920 error ("Could not find operator name for opcode");
1921}
1922
1923
1924/* Same as evaluate_type (*EXP), but resolves ambiguous symbol
1925 references (OP_UNRESOLVED_VALUES) and converts operators that are
1926 user-defined into appropriate function calls. If CONTEXT_TYPE is
1927 non-null, it provides a preferred result type [at the moment, only
1928 type void has any effect---causing procedures to be preferred over
1929 functions in calls]. A null CONTEXT_TYPE indicates that a non-void
1930 return type is preferred. The variable unresolved_names contains a list
1931 of character strings referenced by expout that should be freed.
1932 May change (expand) *EXP. */
1933
1934void
d2e4a39e 1935ada_resolve (struct expression **expp, struct type *context_type)
14f9c5c9
AS
1936{
1937 int pc;
1938 pc = 0;
1939 ada_resolve_subexp (expp, &pc, 1, context_type);
1940}
1941
1942/* Resolve the operator of the subexpression beginning at
1943 position *POS of *EXPP. "Resolving" consists of replacing
1944 OP_UNRESOLVED_VALUE with an appropriate OP_VAR_VALUE, replacing
1945 built-in operators with function calls to user-defined operators,
1946 where appropriate, and (when DEPROCEDURE_P is non-zero), converting
1947 function-valued variables into parameterless calls. May expand
1948 EXP. The CONTEXT_TYPE functions as in ada_resolve, above. */
1949
d2e4a39e
AS
1950static struct value *
1951ada_resolve_subexp (struct expression **expp, int *pos, int deprocedure_p,
1952 struct type *context_type)
14f9c5c9
AS
1953{
1954 int pc = *pos;
1955 int i;
d2e4a39e 1956 struct expression *exp; /* Convenience: == *expp */
14f9c5c9 1957 enum exp_opcode op = (*expp)->elts[pc].opcode;
d2e4a39e 1958 struct value **argvec; /* Vector of operand types (alloca'ed). */
14f9c5c9
AS
1959 int nargs; /* Number of operands */
1960
1961 argvec = NULL;
1962 nargs = 0;
1963 exp = *expp;
1964
1965 /* Pass one: resolve operands, saving their types and updating *pos. */
1966 switch (op)
1967 {
1968 case OP_VAR_VALUE:
d2e4a39e 1969 /* case OP_UNRESOLVED_VALUE: */
14f9c5c9
AS
1970 /* FIXME: OP_UNRESOLVED_VALUE should be defined in expression.h */
1971 *pos += 4;
1972 break;
1973
1974 case OP_FUNCALL:
1975 nargs = longest_to_int (exp->elts[pc + 1].longconst) + 1;
1976 /* FIXME: OP_UNRESOLVED_VALUE should be defined in expression.h */
d2e4a39e
AS
1977 /* if (exp->elts[pc+3].opcode == OP_UNRESOLVED_VALUE)
1978 {
1979 *pos += 7;
1980
1981 argvec = (struct value* *) alloca (sizeof (struct value*) * (nargs + 1));
1982 for (i = 0; i < nargs-1; i += 1)
1983 argvec[i] = ada_resolve_subexp (expp, pos, 1, NULL);
1984 argvec[i] = NULL;
1985 }
1986 else
1987 {
1988 *pos += 3;
1989 ada_resolve_subexp (expp, pos, 0, NULL);
1990 for (i = 1; i < nargs; i += 1)
1991 ada_resolve_subexp (expp, pos, 1, NULL);
1992 }
1993 */
14f9c5c9
AS
1994 exp = *expp;
1995 break;
1996
1997 /* FIXME: UNOP_QUAL should be defined in expression.h */
1998 /* case UNOP_QUAL:
d2e4a39e
AS
1999 nargs = 1;
2000 *pos += 3;
2001 ada_resolve_subexp (expp, pos, 1, exp->elts[pc + 1].type);
2002 exp = *expp;
2003 break;
2004 */
2005 /* FIXME: OP_ATTRIBUTE should be defined in expression.h */
14f9c5c9 2006 /* case OP_ATTRIBUTE:
d2e4a39e
AS
2007 nargs = longest_to_int (exp->elts[pc + 1].longconst) + 1;
2008 *pos += 4;
2009 for (i = 0; i < nargs; i += 1)
2010 ada_resolve_subexp (expp, pos, 1, NULL);
2011 exp = *expp;
2012 break;
2013 */
14f9c5c9
AS
2014 case UNOP_ADDR:
2015 nargs = 1;
2016 *pos += 1;
2017 ada_resolve_subexp (expp, pos, 0, NULL);
2018 exp = *expp;
2019 break;
2020
2021 case BINOP_ASSIGN:
2022 {
d2e4a39e 2023 struct value *arg1;
14f9c5c9
AS
2024 nargs = 2;
2025 *pos += 1;
2026 arg1 = ada_resolve_subexp (expp, pos, 0, NULL);
2027 if (arg1 == NULL)
2028 ada_resolve_subexp (expp, pos, 1, NULL);
2029 else
2030 ada_resolve_subexp (expp, pos, 1, VALUE_TYPE (arg1));
2031 break;
2032 }
2033
2034 default:
d2e4a39e 2035 switch (op)
14f9c5c9
AS
2036 {
2037 default:
2038 error ("Unexpected operator during name resolution");
2039 case UNOP_CAST:
d2e4a39e
AS
2040 /* case UNOP_MBR:
2041 nargs = 1;
2042 *pos += 3;
2043 break;
2044 */
14f9c5c9
AS
2045 case BINOP_ADD:
2046 case BINOP_SUB:
2047 case BINOP_MUL:
2048 case BINOP_DIV:
2049 case BINOP_REM:
2050 case BINOP_MOD:
2051 case BINOP_EXP:
2052 case BINOP_CONCAT:
2053 case BINOP_LOGICAL_AND:
2054 case BINOP_LOGICAL_OR:
2055 case BINOP_BITWISE_AND:
2056 case BINOP_BITWISE_IOR:
2057 case BINOP_BITWISE_XOR:
2058
2059 case BINOP_EQUAL:
2060 case BINOP_NOTEQUAL:
2061 case BINOP_LESS:
2062 case BINOP_GTR:
2063 case BINOP_LEQ:
2064 case BINOP_GEQ:
2065
2066 case BINOP_REPEAT:
2067 case BINOP_SUBSCRIPT:
2068 case BINOP_COMMA:
2069 nargs = 2;
2070 *pos += 1;
2071 break;
2072
2073 case UNOP_NEG:
2074 case UNOP_PLUS:
2075 case UNOP_LOGICAL_NOT:
2076 case UNOP_ABS:
2077 case UNOP_IND:
2078 nargs = 1;
2079 *pos += 1;
2080 break;
2081
2082 case OP_LONG:
2083 case OP_DOUBLE:
2084 case OP_VAR_VALUE:
2085 *pos += 4;
2086 break;
2087
2088 case OP_TYPE:
2089 case OP_BOOL:
2090 case OP_LAST:
2091 case OP_REGISTER:
2092 case OP_INTERNALVAR:
2093 *pos += 3;
2094 break;
2095
2096 case UNOP_MEMVAL:
2097 *pos += 3;
2098 nargs = 1;
2099 break;
2100
2101 case STRUCTOP_STRUCT:
2102 case STRUCTOP_PTR:
2103 nargs = 1;
2104 *pos += 4 + BYTES_TO_EXP_ELEM (exp->elts[pc + 1].longconst + 1);
2105 break;
2106
2107 case OP_ARRAY:
d2e4a39e 2108 *pos += 4;
14f9c5c9
AS
2109 nargs = longest_to_int (exp->elts[pc + 2].longconst) + 1;
2110 nargs -= longest_to_int (exp->elts[pc + 1].longconst);
2111 /* A null array contains one dummy element to give the type. */
d2e4a39e
AS
2112 /* if (nargs == 0)
2113 nargs = 1;
2114 break; */
14f9c5c9
AS
2115
2116 case TERNOP_SLICE:
2117 /* FIXME: TERNOP_MBR should be defined in expression.h */
d2e4a39e
AS
2118 /* case TERNOP_MBR:
2119 *pos += 1;
2120 nargs = 3;
2121 break;
2122 */
14f9c5c9 2123 /* FIXME: BINOP_MBR should be defined in expression.h */
d2e4a39e
AS
2124 /* case BINOP_MBR:
2125 *pos += 3;
2126 nargs = 2;
2127 break; */
14f9c5c9
AS
2128 }
2129
d2e4a39e
AS
2130 argvec =
2131 (struct value * *) alloca (sizeof (struct value *) * (nargs + 1));
14f9c5c9
AS
2132 for (i = 0; i < nargs; i += 1)
2133 argvec[i] = ada_resolve_subexp (expp, pos, 1, NULL);
2134 argvec[i] = NULL;
2135 exp = *expp;
2136 break;
2137 }
2138
2139 /* Pass two: perform any resolution on principal operator. */
2140 switch (op)
2141 {
2142 default:
2143 break;
2144
2145 /* FIXME: OP_UNRESOLVED_VALUE should be defined in expression.h */
2146 /* case OP_UNRESOLVED_VALUE:
d2e4a39e
AS
2147 {
2148 struct symbol** candidate_syms;
2149 struct block** candidate_blocks;
2150 int n_candidates;
2151
2152 n_candidates = ada_lookup_symbol_list (exp->elts[pc + 2].name,
2153 exp->elts[pc + 1].block,
176620f1 2154 VAR_DOMAIN,
d2e4a39e
AS
2155 &candidate_syms,
2156 &candidate_blocks);
2157
2158 if (n_candidates > 1)
2159 { */
2160 /* Types tend to get re-introduced locally, so if there
2161 are any local symbols that are not types, first filter
2162 out all types. *//*
2163 int j;
2164 for (j = 0; j < n_candidates; j += 1)
2165 switch (SYMBOL_CLASS (candidate_syms[j]))
2166 {
2167 case LOC_REGISTER:
2168 case LOC_ARG:
2169 case LOC_REF_ARG:
2170 case LOC_REGPARM:
2171 case LOC_REGPARM_ADDR:
2172 case LOC_LOCAL:
2173 case LOC_LOCAL_ARG:
2174 case LOC_BASEREG:
2175 case LOC_BASEREG_ARG:
4c2df51b
DJ
2176 case LOC_COMPUTED:
2177 case LOC_COMPUTED_ARG:
d2e4a39e
AS
2178 goto FoundNonType;
2179 default:
2180 break;
2181 }
2182 FoundNonType:
2183 if (j < n_candidates)
2184 {
2185 j = 0;
2186 while (j < n_candidates)
2187 {
2188 if (SYMBOL_CLASS (candidate_syms[j]) == LOC_TYPEDEF)
2189 {
2190 candidate_syms[j] = candidate_syms[n_candidates-1];
2191 candidate_blocks[j] = candidate_blocks[n_candidates-1];
2192 n_candidates -= 1;
2193 }
2194 else
2195 j += 1;
2196 }
2197 }
2198 }
14f9c5c9 2199
d2e4a39e
AS
2200 if (n_candidates == 0)
2201 error ("No definition found for %s",
2202 ada_demangle (exp->elts[pc + 2].name));
2203 else if (n_candidates == 1)
2204 i = 0;
2205 else if (deprocedure_p
2206 && ! is_nonfunction (candidate_syms, n_candidates))
2207 {
2208 i = ada_resolve_function (candidate_syms, candidate_blocks,
2209 n_candidates, NULL, 0,
2210 exp->elts[pc + 2].name, context_type);
2211 if (i < 0)
2212 error ("Could not find a match for %s",
2213 ada_demangle (exp->elts[pc + 2].name));
2214 }
2215 else
2216 {
2217 printf_filtered ("Multiple matches for %s\n",
2218 ada_demangle (exp->elts[pc+2].name));
2219 user_select_syms (candidate_syms, candidate_blocks,
2220 n_candidates, 1);
2221 i = 0;
2222 }
14f9c5c9 2223
d2e4a39e
AS
2224 exp->elts[pc].opcode = exp->elts[pc + 3].opcode = OP_VAR_VALUE;
2225 exp->elts[pc + 1].block = candidate_blocks[i];
2226 exp->elts[pc + 2].symbol = candidate_syms[i];
2227 if (innermost_block == NULL ||
2228 contained_in (candidate_blocks[i], innermost_block))
2229 innermost_block = candidate_blocks[i];
2230 } */
14f9c5c9
AS
2231 /* FALL THROUGH */
2232
2233 case OP_VAR_VALUE:
d2e4a39e
AS
2234 if (deprocedure_p &&
2235 TYPE_CODE (SYMBOL_TYPE (exp->elts[pc + 2].symbol)) ==
2236 TYPE_CODE_FUNC)
14f9c5c9 2237 {
d2e4a39e
AS
2238 replace_operator_with_call (expp, pc, 0, 0,
2239 exp->elts[pc + 2].symbol,
2240 exp->elts[pc + 1].block);
14f9c5c9
AS
2241 exp = *expp;
2242 }
2243 break;
2244
2245 case OP_FUNCALL:
2246 {
2247 /* FIXME: OP_UNRESOLVED_VALUE should be defined in expression.h */
d2e4a39e
AS
2248 /* if (exp->elts[pc+3].opcode == OP_UNRESOLVED_VALUE)
2249 {
2250 struct symbol** candidate_syms;
2251 struct block** candidate_blocks;
2252 int n_candidates;
2253
2254 n_candidates = ada_lookup_symbol_list (exp->elts[pc + 5].name,
2255 exp->elts[pc + 4].block,
176620f1 2256 VAR_DOMAIN,
d2e4a39e
AS
2257 &candidate_syms,
2258 &candidate_blocks);
2259 if (n_candidates == 1)
2260 i = 0;
2261 else
2262 {
2263 i = ada_resolve_function (candidate_syms, candidate_blocks,
2264 n_candidates, argvec, nargs-1,
2265 exp->elts[pc + 5].name, context_type);
2266 if (i < 0)
2267 error ("Could not find a match for %s",
2268 ada_demangle (exp->elts[pc + 5].name));
2269 }
2270
2271 exp->elts[pc + 3].opcode = exp->elts[pc + 6].opcode = OP_VAR_VALUE;
2272 exp->elts[pc + 4].block = candidate_blocks[i];
2273 exp->elts[pc + 5].symbol = candidate_syms[i];
2274 if (innermost_block == NULL ||
2275 contained_in (candidate_blocks[i], innermost_block))
2276 innermost_block = candidate_blocks[i];
2277 } */
14f9c5c9 2278
14f9c5c9
AS
2279 }
2280 break;
2281 case BINOP_ADD:
2282 case BINOP_SUB:
2283 case BINOP_MUL:
2284 case BINOP_DIV:
2285 case BINOP_REM:
2286 case BINOP_MOD:
2287 case BINOP_CONCAT:
2288 case BINOP_BITWISE_AND:
2289 case BINOP_BITWISE_IOR:
2290 case BINOP_BITWISE_XOR:
2291 case BINOP_EQUAL:
2292 case BINOP_NOTEQUAL:
2293 case BINOP_LESS:
2294 case BINOP_GTR:
2295 case BINOP_LEQ:
2296 case BINOP_GEQ:
2297 case BINOP_EXP:
2298 case UNOP_NEG:
2299 case UNOP_PLUS:
2300 case UNOP_LOGICAL_NOT:
2301 case UNOP_ABS:
2302 if (possible_user_operator_p (op, argvec))
2303 {
d2e4a39e
AS
2304 struct symbol **candidate_syms;
2305 struct block **candidate_blocks;
14f9c5c9
AS
2306 int n_candidates;
2307
d2e4a39e
AS
2308 n_candidates =
2309 ada_lookup_symbol_list (ada_mangle (ada_op_name (op)),
176620f1 2310 (struct block *) NULL, VAR_DOMAIN,
d2e4a39e
AS
2311 &candidate_syms, &candidate_blocks);
2312 i =
2313 ada_resolve_function (candidate_syms, candidate_blocks,
2314 n_candidates, argvec, nargs,
2315 ada_op_name (op), NULL);
14f9c5c9
AS
2316 if (i < 0)
2317 break;
2318
2319 replace_operator_with_call (expp, pc, nargs, 1,
2320 candidate_syms[i], candidate_blocks[i]);
2321 exp = *expp;
2322 }
2323 break;
2324 }
2325
2326 *pos = pc;
2327 return evaluate_subexp_type (exp, pos);
2328}
2329
2330/* Return non-zero if formal type FTYPE matches actual type ATYPE. If
2331 MAY_DEREF is non-zero, the formal may be a pointer and the actual
d2e4a39e 2332 a non-pointer. */
14f9c5c9
AS
2333/* The term "match" here is rather loose. The match is heuristic and
2334 liberal. FIXME: TOO liberal, in fact. */
2335
2336static int
4dc81987 2337ada_type_match (struct type *ftype, struct type *atype, int may_deref)
14f9c5c9
AS
2338{
2339 CHECK_TYPEDEF (ftype);
2340 CHECK_TYPEDEF (atype);
2341
2342 if (TYPE_CODE (ftype) == TYPE_CODE_REF)
2343 ftype = TYPE_TARGET_TYPE (ftype);
2344 if (TYPE_CODE (atype) == TYPE_CODE_REF)
2345 atype = TYPE_TARGET_TYPE (atype);
2346
d2e4a39e 2347 if (TYPE_CODE (ftype) == TYPE_CODE_VOID
14f9c5c9
AS
2348 || TYPE_CODE (atype) == TYPE_CODE_VOID)
2349 return 1;
2350
d2e4a39e 2351 switch (TYPE_CODE (ftype))
14f9c5c9
AS
2352 {
2353 default:
2354 return 1;
2355 case TYPE_CODE_PTR:
2356 if (TYPE_CODE (atype) == TYPE_CODE_PTR)
2357 return ada_type_match (TYPE_TARGET_TYPE (ftype),
2358 TYPE_TARGET_TYPE (atype), 0);
d2e4a39e
AS
2359 else
2360 return (may_deref &&
2361 ada_type_match (TYPE_TARGET_TYPE (ftype), atype, 0));
14f9c5c9
AS
2362 case TYPE_CODE_INT:
2363 case TYPE_CODE_ENUM:
2364 case TYPE_CODE_RANGE:
2365 switch (TYPE_CODE (atype))
2366 {
2367 case TYPE_CODE_INT:
2368 case TYPE_CODE_ENUM:
2369 case TYPE_CODE_RANGE:
2370 return 1;
2371 default:
2372 return 0;
2373 }
2374
2375 case TYPE_CODE_ARRAY:
d2e4a39e 2376 return (TYPE_CODE (atype) == TYPE_CODE_ARRAY
14f9c5c9
AS
2377 || ada_is_array_descriptor (atype));
2378
2379 case TYPE_CODE_STRUCT:
2380 if (ada_is_array_descriptor (ftype))
d2e4a39e 2381 return (TYPE_CODE (atype) == TYPE_CODE_ARRAY
14f9c5c9
AS
2382 || ada_is_array_descriptor (atype));
2383 else
2384 return (TYPE_CODE (atype) == TYPE_CODE_STRUCT
d2e4a39e 2385 && !ada_is_array_descriptor (atype));
14f9c5c9
AS
2386
2387 case TYPE_CODE_UNION:
2388 case TYPE_CODE_FLT:
2389 return (TYPE_CODE (atype) == TYPE_CODE (ftype));
2390 }
2391}
2392
2393/* Return non-zero if the formals of FUNC "sufficiently match" the
2394 vector of actual argument types ACTUALS of size N_ACTUALS. FUNC
2395 may also be an enumeral, in which case it is treated as a 0-
2396 argument function. */
2397
2398static int
d2e4a39e 2399ada_args_match (struct symbol *func, struct value **actuals, int n_actuals)
14f9c5c9
AS
2400{
2401 int i;
d2e4a39e 2402 struct type *func_type = SYMBOL_TYPE (func);
14f9c5c9 2403
d2e4a39e 2404 if (SYMBOL_CLASS (func) == LOC_CONST &&
14f9c5c9
AS
2405 TYPE_CODE (func_type) == TYPE_CODE_ENUM)
2406 return (n_actuals == 0);
2407 else if (func_type == NULL || TYPE_CODE (func_type) != TYPE_CODE_FUNC)
2408 return 0;
2409
2410 if (TYPE_NFIELDS (func_type) != n_actuals)
2411 return 0;
2412
2413 for (i = 0; i < n_actuals; i += 1)
2414 {
d2e4a39e
AS
2415 struct type *ftype = check_typedef (TYPE_FIELD_TYPE (func_type, i));
2416 struct type *atype = check_typedef (VALUE_TYPE (actuals[i]));
14f9c5c9 2417
d2e4a39e
AS
2418 if (!ada_type_match (TYPE_FIELD_TYPE (func_type, i),
2419 VALUE_TYPE (actuals[i]), 1))
14f9c5c9
AS
2420 return 0;
2421 }
2422 return 1;
2423}
2424
2425/* False iff function type FUNC_TYPE definitely does not produce a value
2426 compatible with type CONTEXT_TYPE. Conservatively returns 1 if
2427 FUNC_TYPE is not a valid function type with a non-null return type
2428 or an enumerated type. A null CONTEXT_TYPE indicates any non-void type. */
2429
2430static int
d2e4a39e 2431return_match (struct type *func_type, struct type *context_type)
14f9c5c9 2432{
d2e4a39e 2433 struct type *return_type;
14f9c5c9
AS
2434
2435 if (func_type == NULL)
2436 return 1;
2437
2438 /* FIXME: base_type should be declared in gdbtypes.h, implemented in valarith.c */
2439 /* if (TYPE_CODE (func_type) == TYPE_CODE_FUNC)
d2e4a39e
AS
2440 return_type = base_type (TYPE_TARGET_TYPE (func_type));
2441 else
2442 return_type = base_type (func_type); */
14f9c5c9
AS
2443 if (return_type == NULL)
2444 return 1;
2445
2446 /* FIXME: base_type should be declared in gdbtypes.h, implemented in valarith.c */
d2e4a39e 2447 /* context_type = base_type (context_type); */
14f9c5c9
AS
2448
2449 if (TYPE_CODE (return_type) == TYPE_CODE_ENUM)
2450 return context_type == NULL || return_type == context_type;
2451 else if (context_type == NULL)
2452 return TYPE_CODE (return_type) != TYPE_CODE_VOID;
2453 else
2454 return TYPE_CODE (return_type) == TYPE_CODE (context_type);
2455}
2456
2457
2458/* Return the index in SYMS[0..NSYMS-1] of symbol for the
2459 function (if any) that matches the types of the NARGS arguments in
2460 ARGS. If CONTEXT_TYPE is non-null, and there is at least one match
2461 that returns type CONTEXT_TYPE, then eliminate other matches. If
2462 CONTEXT_TYPE is null, prefer a non-void-returning function.
2463 Asks the user if there is more than one match remaining. Returns -1
2464 if there is no such symbol or none is selected. NAME is used
2465 solely for messages. May re-arrange and modify SYMS in
2466 the process; the index returned is for the modified vector. BLOCKS
2467 is modified in parallel to SYMS. */
2468
2469int
d2e4a39e
AS
2470ada_resolve_function (struct symbol *syms[], struct block *blocks[],
2471 int nsyms, struct value **args, int nargs,
2472 const char *name, struct type *context_type)
14f9c5c9
AS
2473{
2474 int k;
2475 int m; /* Number of hits */
d2e4a39e
AS
2476 struct type *fallback;
2477 struct type *return_type;
14f9c5c9
AS
2478
2479 return_type = context_type;
2480 if (context_type == NULL)
2481 fallback = builtin_type_void;
2482 else
2483 fallback = NULL;
2484
d2e4a39e 2485 m = 0;
14f9c5c9
AS
2486 while (1)
2487 {
2488 for (k = 0; k < nsyms; k += 1)
2489 {
d2e4a39e 2490 struct type *type = check_typedef (SYMBOL_TYPE (syms[k]));
14f9c5c9
AS
2491
2492 if (ada_args_match (syms[k], args, nargs)
2493 && return_match (SYMBOL_TYPE (syms[k]), return_type))
2494 {
2495 syms[m] = syms[k];
2496 if (blocks != NULL)
2497 blocks[m] = blocks[k];
2498 m += 1;
2499 }
2500 }
2501 if (m > 0 || return_type == fallback)
2502 break;
2503 else
2504 return_type = fallback;
2505 }
2506
2507 if (m == 0)
2508 return -1;
2509 else if (m > 1)
2510 {
2511 printf_filtered ("Multiple matches for %s\n", name);
2512 user_select_syms (syms, blocks, m, 1);
2513 return 0;
2514 }
2515 return 0;
2516}
2517
2518/* Returns true (non-zero) iff demangled name N0 should appear before N1 */
2519/* in a listing of choices during disambiguation (see sort_choices, below). */
2520/* The idea is that overloadings of a subprogram name from the */
2521/* same package should sort in their source order. We settle for ordering */
2522/* such symbols by their trailing number (__N or $N). */
2523static int
d2e4a39e 2524mangled_ordered_before (char *N0, char *N1)
14f9c5c9
AS
2525{
2526 if (N1 == NULL)
2527 return 0;
2528 else if (N0 == NULL)
2529 return 1;
2530 else
2531 {
2532 int k0, k1;
d2e4a39e 2533 for (k0 = strlen (N0) - 1; k0 > 0 && isdigit (N0[k0]); k0 -= 1)
14f9c5c9 2534 ;
d2e4a39e 2535 for (k1 = strlen (N1) - 1; k1 > 0 && isdigit (N1[k1]); k1 -= 1)
14f9c5c9 2536 ;
d2e4a39e
AS
2537 if ((N0[k0] == '_' || N0[k0] == '$') && N0[k0 + 1] != '\000'
2538 && (N1[k1] == '_' || N1[k1] == '$') && N1[k1 + 1] != '\000')
14f9c5c9
AS
2539 {
2540 int n0, n1;
2541 n0 = k0;
d2e4a39e 2542 while (N0[n0] == '_' && n0 > 0 && N0[n0 - 1] == '_')
14f9c5c9
AS
2543 n0 -= 1;
2544 n1 = k1;
d2e4a39e 2545 while (N1[n1] == '_' && n1 > 0 && N1[n1 - 1] == '_')
14f9c5c9
AS
2546 n1 -= 1;
2547 if (n0 == n1 && STREQN (N0, N1, n0))
d2e4a39e 2548 return (atoi (N0 + k0 + 1) < atoi (N1 + k1 + 1));
14f9c5c9
AS
2549 }
2550 return (strcmp (N0, N1) < 0);
2551 }
2552}
d2e4a39e 2553
14f9c5c9
AS
2554/* Sort SYMS[0..NSYMS-1] to put the choices in a canonical order by their */
2555/* mangled names, rearranging BLOCKS[0..NSYMS-1] according to the same */
2556/* permutation. */
d2e4a39e
AS
2557static void
2558sort_choices (struct symbol *syms[], struct block *blocks[], int nsyms)
14f9c5c9
AS
2559{
2560 int i, j;
d2e4a39e 2561 for (i = 1; i < nsyms; i += 1)
14f9c5c9 2562 {
d2e4a39e
AS
2563 struct symbol *sym = syms[i];
2564 struct block *block = blocks[i];
14f9c5c9
AS
2565 int j;
2566
d2e4a39e 2567 for (j = i - 1; j >= 0; j -= 1)
14f9c5c9 2568 {
22abf04a
DC
2569 if (mangled_ordered_before (DEPRECATED_SYMBOL_NAME (syms[j]),
2570 DEPRECATED_SYMBOL_NAME (sym)))
14f9c5c9 2571 break;
d2e4a39e
AS
2572 syms[j + 1] = syms[j];
2573 blocks[j + 1] = blocks[j];
14f9c5c9 2574 }
d2e4a39e
AS
2575 syms[j + 1] = sym;
2576 blocks[j + 1] = block;
14f9c5c9
AS
2577 }
2578}
2579
2580/* Given a list of NSYMS symbols in SYMS and corresponding blocks in */
2581/* BLOCKS, select up to MAX_RESULTS>0 by asking the user (if */
2582/* necessary), returning the number selected, and setting the first */
2583/* elements of SYMS and BLOCKS to the selected symbols and */
2584/* corresponding blocks. Error if no symbols selected. BLOCKS may */
2585/* be NULL, in which case it is ignored. */
2586
2587/* NOTE: Adapted from decode_line_2 in symtab.c, with which it ought
2588 to be re-integrated one of these days. */
2589
2590int
d2e4a39e 2591user_select_syms (struct symbol *syms[], struct block *blocks[], int nsyms,
ebf56fd3 2592 int max_results)
14f9c5c9
AS
2593{
2594 int i;
d2e4a39e 2595 int *chosen = (int *) alloca (sizeof (int) * nsyms);
14f9c5c9
AS
2596 int n_chosen;
2597 int first_choice = (max_results == 1) ? 1 : 2;
2598
2599 if (max_results < 1)
2600 error ("Request to select 0 symbols!");
2601 if (nsyms <= 1)
2602 return nsyms;
2603
d2e4a39e 2604 printf_unfiltered ("[0] cancel\n");
14f9c5c9 2605 if (max_results > 1)
d2e4a39e 2606 printf_unfiltered ("[1] all\n");
14f9c5c9
AS
2607
2608 sort_choices (syms, blocks, nsyms);
2609
2610 for (i = 0; i < nsyms; i += 1)
2611 {
2612 if (syms[i] == NULL)
2613 continue;
2614
2615 if (SYMBOL_CLASS (syms[i]) == LOC_BLOCK)
2616 {
2617 struct symtab_and_line sal = find_function_start_sal (syms[i], 1);
2618 printf_unfiltered ("[%d] %s at %s:%d\n",
d2e4a39e 2619 i + first_choice,
de5ad195 2620 SYMBOL_PRINT_NAME (syms[i]),
d2e4a39e
AS
2621 sal.symtab == NULL
2622 ? "<no source file available>"
2623 : sal.symtab->filename, sal.line);
14f9c5c9
AS
2624 continue;
2625 }
d2e4a39e 2626 else
14f9c5c9 2627 {
d2e4a39e 2628 int is_enumeral =
14f9c5c9
AS
2629 (SYMBOL_CLASS (syms[i]) == LOC_CONST
2630 && SYMBOL_TYPE (syms[i]) != NULL
d2e4a39e
AS
2631 && TYPE_CODE (SYMBOL_TYPE (syms[i])) == TYPE_CODE_ENUM);
2632 struct symtab *symtab = symtab_for_sym (syms[i]);
14f9c5c9
AS
2633
2634 if (SYMBOL_LINE (syms[i]) != 0 && symtab != NULL)
2635 printf_unfiltered ("[%d] %s at %s:%d\n",
2636 i + first_choice,
de5ad195 2637 SYMBOL_PRINT_NAME (syms[i]),
14f9c5c9 2638 symtab->filename, SYMBOL_LINE (syms[i]));
d2e4a39e 2639 else if (is_enumeral && TYPE_NAME (SYMBOL_TYPE (syms[i])) != NULL)
14f9c5c9
AS
2640 {
2641 printf_unfiltered ("[%d] ", i + first_choice);
2642 ada_print_type (SYMBOL_TYPE (syms[i]), NULL, gdb_stdout, -1, 0);
2643 printf_unfiltered ("'(%s) (enumeral)\n",
de5ad195 2644 SYMBOL_PRINT_NAME (syms[i]));
14f9c5c9
AS
2645 }
2646 else if (symtab != NULL)
d2e4a39e 2647 printf_unfiltered (is_enumeral
14f9c5c9
AS
2648 ? "[%d] %s in %s (enumeral)\n"
2649 : "[%d] %s at %s:?\n",
2650 i + first_choice,
de5ad195 2651 SYMBOL_PRINT_NAME (syms[i]),
14f9c5c9
AS
2652 symtab->filename);
2653 else
2654 printf_unfiltered (is_enumeral
2655 ? "[%d] %s (enumeral)\n"
2656 : "[%d] %s at ?\n",
d2e4a39e 2657 i + first_choice,
de5ad195 2658 SYMBOL_PRINT_NAME (syms[i]));
14f9c5c9
AS
2659 }
2660 }
d2e4a39e 2661
14f9c5c9
AS
2662 n_chosen = get_selections (chosen, nsyms, max_results, max_results > 1,
2663 "overload-choice");
2664
2665 for (i = 0; i < n_chosen; i += 1)
2666 {
2667 syms[i] = syms[chosen[i]];
d2e4a39e 2668 if (blocks != NULL)
14f9c5c9
AS
2669 blocks[i] = blocks[chosen[i]];
2670 }
2671
2672 return n_chosen;
2673}
2674
2675/* Read and validate a set of numeric choices from the user in the
2676 range 0 .. N_CHOICES-1. Place the results in increasing
2677 order in CHOICES[0 .. N-1], and return N.
2678
2679 The user types choices as a sequence of numbers on one line
2680 separated by blanks, encoding them as follows:
2681
2682 + A choice of 0 means to cancel the selection, throwing an error.
2683 + If IS_ALL_CHOICE, a choice of 1 selects the entire set 0 .. N_CHOICES-1.
2684 + The user chooses k by typing k+IS_ALL_CHOICE+1.
2685
2686 The user is not allowed to choose more than MAX_RESULTS values.
2687
2688 ANNOTATION_SUFFIX, if present, is used to annotate the input
2689 prompts (for use with the -f switch). */
2690
2691int
d2e4a39e
AS
2692get_selections (int *choices, int n_choices, int max_results,
2693 int is_all_choice, char *annotation_suffix)
14f9c5c9
AS
2694{
2695 int i;
d2e4a39e
AS
2696 char *args;
2697 const char *prompt;
14f9c5c9
AS
2698 int n_chosen;
2699 int first_choice = is_all_choice ? 2 : 1;
d2e4a39e 2700
14f9c5c9
AS
2701 prompt = getenv ("PS2");
2702 if (prompt == NULL)
2703 prompt = ">";
2704
2705 printf_unfiltered ("%s ", prompt);
2706 gdb_flush (gdb_stdout);
2707
2708 args = command_line_input ((char *) NULL, 0, annotation_suffix);
d2e4a39e 2709
14f9c5c9
AS
2710 if (args == NULL)
2711 error_no_arg ("one or more choice numbers");
2712
2713 n_chosen = 0;
2714
2715 /* Set choices[0 .. n_chosen-1] to the users' choices in ascending
2716 order, as given in args. Choices are validated. */
2717 while (1)
2718 {
d2e4a39e 2719 char *args2;
14f9c5c9
AS
2720 int choice, j;
2721
2722 while (isspace (*args))
2723 args += 1;
2724 if (*args == '\0' && n_chosen == 0)
2725 error_no_arg ("one or more choice numbers");
2726 else if (*args == '\0')
2727 break;
2728
2729 choice = strtol (args, &args2, 10);
d2e4a39e
AS
2730 if (args == args2 || choice < 0
2731 || choice > n_choices + first_choice - 1)
14f9c5c9
AS
2732 error ("Argument must be choice number");
2733 args = args2;
2734
d2e4a39e 2735 if (choice == 0)
14f9c5c9
AS
2736 error ("cancelled");
2737
2738 if (choice < first_choice)
2739 {
2740 n_chosen = n_choices;
2741 for (j = 0; j < n_choices; j += 1)
2742 choices[j] = j;
2743 break;
2744 }
2745 choice -= first_choice;
2746
d2e4a39e
AS
2747 for (j = n_chosen - 1; j >= 0 && choice < choices[j]; j -= 1)
2748 {
2749 }
14f9c5c9
AS
2750
2751 if (j < 0 || choice != choices[j])
2752 {
2753 int k;
d2e4a39e
AS
2754 for (k = n_chosen - 1; k > j; k -= 1)
2755 choices[k + 1] = choices[k];
2756 choices[j + 1] = choice;
14f9c5c9
AS
2757 n_chosen += 1;
2758 }
2759 }
2760
2761 if (n_chosen > max_results)
2762 error ("Select no more than %d of the above", max_results);
d2e4a39e 2763
14f9c5c9
AS
2764 return n_chosen;
2765}
2766
2767/* Replace the operator of length OPLEN at position PC in *EXPP with a call */
2768/* on the function identified by SYM and BLOCK, and taking NARGS */
2769/* arguments. Update *EXPP as needed to hold more space. */
2770
2771static void
d2e4a39e
AS
2772replace_operator_with_call (struct expression **expp, int pc, int nargs,
2773 int oplen, struct symbol *sym,
2774 struct block *block)
14f9c5c9
AS
2775{
2776 /* A new expression, with 6 more elements (3 for funcall, 4 for function
2777 symbol, -oplen for operator being replaced). */
d2e4a39e 2778 struct expression *newexp = (struct expression *)
14f9c5c9
AS
2779 xmalloc (sizeof (struct expression)
2780 + EXP_ELEM_TO_BYTES ((*expp)->nelts + 7 - oplen));
d2e4a39e 2781 struct expression *exp = *expp;
14f9c5c9
AS
2782
2783 newexp->nelts = exp->nelts + 7 - oplen;
2784 newexp->language_defn = exp->language_defn;
2785 memcpy (newexp->elts, exp->elts, EXP_ELEM_TO_BYTES (pc));
d2e4a39e 2786 memcpy (newexp->elts + pc + 7, exp->elts + pc + oplen,
14f9c5c9
AS
2787 EXP_ELEM_TO_BYTES (exp->nelts - pc - oplen));
2788
2789 newexp->elts[pc].opcode = newexp->elts[pc + 2].opcode = OP_FUNCALL;
2790 newexp->elts[pc + 1].longconst = (LONGEST) nargs;
2791
2792 newexp->elts[pc + 3].opcode = newexp->elts[pc + 6].opcode = OP_VAR_VALUE;
2793 newexp->elts[pc + 4].block = block;
2794 newexp->elts[pc + 5].symbol = sym;
2795
2796 *expp = newexp;
aacb1f0a 2797 xfree (exp);
d2e4a39e 2798}
14f9c5c9
AS
2799
2800/* Type-class predicates */
2801
2802/* True iff TYPE is numeric (i.e., an INT, RANGE (of numeric type), or */
2803/* FLOAT.) */
2804
2805static int
d2e4a39e 2806numeric_type_p (struct type *type)
14f9c5c9
AS
2807{
2808 if (type == NULL)
2809 return 0;
d2e4a39e
AS
2810 else
2811 {
2812 switch (TYPE_CODE (type))
2813 {
2814 case TYPE_CODE_INT:
2815 case TYPE_CODE_FLT:
2816 return 1;
2817 case TYPE_CODE_RANGE:
2818 return (type == TYPE_TARGET_TYPE (type)
2819 || numeric_type_p (TYPE_TARGET_TYPE (type)));
2820 default:
2821 return 0;
2822 }
2823 }
14f9c5c9
AS
2824}
2825
2826/* True iff TYPE is integral (an INT or RANGE of INTs). */
2827
2828static int
d2e4a39e 2829integer_type_p (struct type *type)
14f9c5c9
AS
2830{
2831 if (type == NULL)
2832 return 0;
d2e4a39e
AS
2833 else
2834 {
2835 switch (TYPE_CODE (type))
2836 {
2837 case TYPE_CODE_INT:
2838 return 1;
2839 case TYPE_CODE_RANGE:
2840 return (type == TYPE_TARGET_TYPE (type)
2841 || integer_type_p (TYPE_TARGET_TYPE (type)));
2842 default:
2843 return 0;
2844 }
2845 }
14f9c5c9
AS
2846}
2847
2848/* True iff TYPE is scalar (INT, RANGE, FLOAT, ENUM). */
2849
2850static int
d2e4a39e 2851scalar_type_p (struct type *type)
14f9c5c9
AS
2852{
2853 if (type == NULL)
2854 return 0;
d2e4a39e
AS
2855 else
2856 {
2857 switch (TYPE_CODE (type))
2858 {
2859 case TYPE_CODE_INT:
2860 case TYPE_CODE_RANGE:
2861 case TYPE_CODE_ENUM:
2862 case TYPE_CODE_FLT:
2863 return 1;
2864 default:
2865 return 0;
2866 }
2867 }
14f9c5c9
AS
2868}
2869
2870/* True iff TYPE is discrete (INT, RANGE, ENUM). */
2871
2872static int
d2e4a39e 2873discrete_type_p (struct type *type)
14f9c5c9
AS
2874{
2875 if (type == NULL)
2876 return 0;
d2e4a39e
AS
2877 else
2878 {
2879 switch (TYPE_CODE (type))
2880 {
2881 case TYPE_CODE_INT:
2882 case TYPE_CODE_RANGE:
2883 case TYPE_CODE_ENUM:
2884 return 1;
2885 default:
2886 return 0;
2887 }
2888 }
14f9c5c9
AS
2889}
2890
2891/* Returns non-zero if OP with operatands in the vector ARGS could be
2892 a user-defined function. Errs on the side of pre-defined operators
2893 (i.e., result 0). */
2894
2895static int
d2e4a39e 2896possible_user_operator_p (enum exp_opcode op, struct value *args[])
14f9c5c9 2897{
d2e4a39e
AS
2898 struct type *type0 = check_typedef (VALUE_TYPE (args[0]));
2899 struct type *type1 =
14f9c5c9 2900 (args[1] == NULL) ? NULL : check_typedef (VALUE_TYPE (args[1]));
d2e4a39e 2901
14f9c5c9
AS
2902 switch (op)
2903 {
2904 default:
2905 return 0;
2906
2907 case BINOP_ADD:
2908 case BINOP_SUB:
2909 case BINOP_MUL:
2910 case BINOP_DIV:
d2e4a39e 2911 return (!(numeric_type_p (type0) && numeric_type_p (type1)));
14f9c5c9
AS
2912
2913 case BINOP_REM:
2914 case BINOP_MOD:
2915 case BINOP_BITWISE_AND:
2916 case BINOP_BITWISE_IOR:
2917 case BINOP_BITWISE_XOR:
d2e4a39e 2918 return (!(integer_type_p (type0) && integer_type_p (type1)));
14f9c5c9
AS
2919
2920 case BINOP_EQUAL:
2921 case BINOP_NOTEQUAL:
2922 case BINOP_LESS:
2923 case BINOP_GTR:
2924 case BINOP_LEQ:
2925 case BINOP_GEQ:
d2e4a39e 2926 return (!(scalar_type_p (type0) && scalar_type_p (type1)));
14f9c5c9
AS
2927
2928 case BINOP_CONCAT:
d2e4a39e
AS
2929 return ((TYPE_CODE (type0) != TYPE_CODE_ARRAY &&
2930 (TYPE_CODE (type0) != TYPE_CODE_PTR ||
2931 TYPE_CODE (TYPE_TARGET_TYPE (type0))
2932 != TYPE_CODE_ARRAY))
2933 || (TYPE_CODE (type1) != TYPE_CODE_ARRAY &&
2934 (TYPE_CODE (type1) != TYPE_CODE_PTR ||
2935 TYPE_CODE (TYPE_TARGET_TYPE (type1)) != TYPE_CODE_ARRAY)));
14f9c5c9
AS
2936
2937 case BINOP_EXP:
d2e4a39e 2938 return (!(numeric_type_p (type0) && integer_type_p (type1)));
14f9c5c9
AS
2939
2940 case UNOP_NEG:
2941 case UNOP_PLUS:
2942 case UNOP_LOGICAL_NOT:
d2e4a39e
AS
2943 case UNOP_ABS:
2944 return (!numeric_type_p (type0));
14f9c5c9
AS
2945
2946 }
2947}
2948\f
2949 /* Renaming */
2950
2951/** NOTE: In the following, we assume that a renaming type's name may
2952 * have an ___XD suffix. It would be nice if this went away at some
2953 * point. */
2954
2955/* If TYPE encodes a renaming, returns the renaming suffix, which
2956 * is XR for an object renaming, XRP for a procedure renaming, XRE for
2957 * an exception renaming, and XRS for a subprogram renaming. Returns
2958 * NULL if NAME encodes none of these. */
d2e4a39e
AS
2959const char *
2960ada_renaming_type (struct type *type)
14f9c5c9
AS
2961{
2962 if (type != NULL && TYPE_CODE (type) == TYPE_CODE_ENUM)
2963 {
d2e4a39e
AS
2964 const char *name = type_name_no_tag (type);
2965 const char *suffix = (name == NULL) ? NULL : strstr (name, "___XR");
2966 if (suffix == NULL
2967 || (suffix[5] != '\000' && strchr ("PES_", suffix[5]) == NULL))
14f9c5c9
AS
2968 return NULL;
2969 else
2970 return suffix + 3;
2971 }
2972 else
2973 return NULL;
2974}
2975
2976/* Return non-zero iff SYM encodes an object renaming. */
2977int
d2e4a39e 2978ada_is_object_renaming (struct symbol *sym)
14f9c5c9 2979{
d2e4a39e
AS
2980 const char *renaming_type = ada_renaming_type (SYMBOL_TYPE (sym));
2981 return renaming_type != NULL
14f9c5c9
AS
2982 && (renaming_type[2] == '\0' || renaming_type[2] == '_');
2983}
2984
2985/* Assuming that SYM encodes a non-object renaming, returns the original
2986 * name of the renamed entity. The name is good until the end of
2987 * parsing. */
d2e4a39e
AS
2988const char *
2989ada_simple_renamed_entity (struct symbol *sym)
14f9c5c9 2990{
d2e4a39e
AS
2991 struct type *type;
2992 const char *raw_name;
14f9c5c9 2993 int len;
d2e4a39e 2994 char *result;
14f9c5c9
AS
2995
2996 type = SYMBOL_TYPE (sym);
2997 if (type == NULL || TYPE_NFIELDS (type) < 1)
2998 error ("Improperly encoded renaming.");
2999
3000 raw_name = TYPE_FIELD_NAME (type, 0);
3001 len = (raw_name == NULL ? 0 : strlen (raw_name)) - 5;
3002 if (len <= 0)
3003 error ("Improperly encoded renaming.");
3004
3005 result = xmalloc (len + 1);
d2e4a39e
AS
3006 /* FIXME: add_name_string_cleanup should be defined in parse.c */
3007 /* add_name_string_cleanup (result); */
14f9c5c9
AS
3008 strncpy (result, raw_name, len);
3009 result[len] = '\000';
3010 return result;
3011}
14f9c5c9 3012\f
d2e4a39e 3013
14f9c5c9
AS
3014 /* Evaluation: Function Calls */
3015
3016/* Copy VAL onto the stack, using and updating *SP as the stack
3017 pointer. Return VAL as an lvalue. */
3018
d2e4a39e
AS
3019static struct value *
3020place_on_stack (struct value *val, CORE_ADDR *sp)
14f9c5c9
AS
3021{
3022 CORE_ADDR old_sp = *sp;
3023
3024#ifdef STACK_ALIGN
d2e4a39e
AS
3025 *sp = push_bytes (*sp, VALUE_CONTENTS_RAW (val),
3026 STACK_ALIGN (TYPE_LENGTH
3027 (check_typedef (VALUE_TYPE (val)))));
14f9c5c9 3028#else
d2e4a39e 3029 *sp = push_bytes (*sp, VALUE_CONTENTS_RAW (val),
14f9c5c9
AS
3030 TYPE_LENGTH (check_typedef (VALUE_TYPE (val))));
3031#endif
3032
3033 VALUE_LVAL (val) = lval_memory;
3034 if (INNER_THAN (1, 2))
3035 VALUE_ADDRESS (val) = *sp;
3036 else
3037 VALUE_ADDRESS (val) = old_sp;
3038
3039 return val;
3040}
3041
3042/* Return the value ACTUAL, converted to be an appropriate value for a
3043 formal of type FORMAL_TYPE. Use *SP as a stack pointer for
3044 allocating any necessary descriptors (fat pointers), or copies of
d2e4a39e 3045 values not residing in memory, updating it as needed. */
14f9c5c9 3046
d2e4a39e
AS
3047static struct value *
3048convert_actual (struct value *actual, struct type *formal_type0,
3049 CORE_ADDR *sp)
14f9c5c9 3050{
d2e4a39e
AS
3051 struct type *actual_type = check_typedef (VALUE_TYPE (actual));
3052 struct type *formal_type = check_typedef (formal_type0);
3053 struct type *formal_target =
3054 TYPE_CODE (formal_type) == TYPE_CODE_PTR
3055 ? check_typedef (TYPE_TARGET_TYPE (formal_type)) : formal_type;
3056 struct type *actual_target =
3057 TYPE_CODE (actual_type) == TYPE_CODE_PTR
3058 ? check_typedef (TYPE_TARGET_TYPE (actual_type)) : actual_type;
14f9c5c9
AS
3059
3060 if (ada_is_array_descriptor (formal_target)
3061 && TYPE_CODE (actual_target) == TYPE_CODE_ARRAY)
3062 return make_array_descriptor (formal_type, actual, sp);
3063 else if (TYPE_CODE (formal_type) == TYPE_CODE_PTR)
3064 {
3065 if (TYPE_CODE (formal_target) == TYPE_CODE_ARRAY
d2e4a39e 3066 && ada_is_array_descriptor (actual_target))
14f9c5c9
AS
3067 return desc_data (actual);
3068 else if (TYPE_CODE (actual_type) != TYPE_CODE_PTR)
3069 {
3070 if (VALUE_LVAL (actual) != lval_memory)
3071 {
d2e4a39e 3072 struct value *val;
14f9c5c9
AS
3073 actual_type = check_typedef (VALUE_TYPE (actual));
3074 val = allocate_value (actual_type);
d2e4a39e
AS
3075 memcpy ((char *) VALUE_CONTENTS_RAW (val),
3076 (char *) VALUE_CONTENTS (actual),
14f9c5c9
AS
3077 TYPE_LENGTH (actual_type));
3078 actual = place_on_stack (val, sp);
3079 }
3080 return value_addr (actual);
3081 }
3082 }
3083 else if (TYPE_CODE (actual_type) == TYPE_CODE_PTR)
3084 return ada_value_ind (actual);
3085
3086 return actual;
3087}
3088
3089
3090/* Push a descriptor of type TYPE for array value ARR on the stack at
3091 *SP, updating *SP to reflect the new descriptor. Return either
3092 an lvalue representing the new descriptor, or (if TYPE is a pointer-
3093 to-descriptor type rather than a descriptor type), a struct value*
3094 representing a pointer to this descriptor. */
3095
d2e4a39e
AS
3096static struct value *
3097make_array_descriptor (struct type *type, struct value *arr, CORE_ADDR *sp)
14f9c5c9 3098{
d2e4a39e
AS
3099 struct type *bounds_type = desc_bounds_type (type);
3100 struct type *desc_type = desc_base_type (type);
3101 struct value *descriptor = allocate_value (desc_type);
3102 struct value *bounds = allocate_value (bounds_type);
14f9c5c9
AS
3103 CORE_ADDR bounds_addr;
3104 int i;
d2e4a39e 3105
14f9c5c9
AS
3106 for (i = ada_array_arity (check_typedef (VALUE_TYPE (arr))); i > 0; i -= 1)
3107 {
3108 modify_general_field (VALUE_CONTENTS (bounds),
d2e4a39e 3109 value_as_long (ada_array_bound (arr, i, 0)),
14f9c5c9
AS
3110 desc_bound_bitpos (bounds_type, i, 0),
3111 desc_bound_bitsize (bounds_type, i, 0));
3112 modify_general_field (VALUE_CONTENTS (bounds),
d2e4a39e 3113 value_as_long (ada_array_bound (arr, i, 1)),
14f9c5c9
AS
3114 desc_bound_bitpos (bounds_type, i, 1),
3115 desc_bound_bitsize (bounds_type, i, 1));
3116 }
d2e4a39e 3117
14f9c5c9 3118 bounds = place_on_stack (bounds, sp);
d2e4a39e 3119
14f9c5c9
AS
3120 modify_general_field (VALUE_CONTENTS (descriptor),
3121 arr,
3122 fat_pntr_data_bitpos (desc_type),
3123 fat_pntr_data_bitsize (desc_type));
3124 modify_general_field (VALUE_CONTENTS (descriptor),
3125 VALUE_ADDRESS (bounds),
3126 fat_pntr_bounds_bitpos (desc_type),
3127 fat_pntr_bounds_bitsize (desc_type));
3128
3129 descriptor = place_on_stack (descriptor, sp);
3130
3131 if (TYPE_CODE (type) == TYPE_CODE_PTR)
3132 return value_addr (descriptor);
3133 else
3134 return descriptor;
3135}
3136
3137
3138/* Assuming a dummy frame has been established on the target, perform any
3139 conversions needed for calling function FUNC on the NARGS actual
3140 parameters in ARGS, other than standard C conversions. Does
3141 nothing if FUNC does not have Ada-style prototype data, or if NARGS
3142 does not match the number of arguments expected. Use *SP as a
3143 stack pointer for additional data that must be pushed, updating its
3144 value as needed. */
3145
3146void
d2e4a39e
AS
3147ada_convert_actuals (struct value *func, int nargs, struct value *args[],
3148 CORE_ADDR *sp)
14f9c5c9
AS
3149{
3150 int i;
3151
d2e4a39e 3152 if (TYPE_NFIELDS (VALUE_TYPE (func)) == 0
14f9c5c9
AS
3153 || nargs != TYPE_NFIELDS (VALUE_TYPE (func)))
3154 return;
3155
3156 for (i = 0; i < nargs; i += 1)
d2e4a39e
AS
3157 args[i] =
3158 convert_actual (args[i], TYPE_FIELD_TYPE (VALUE_TYPE (func), i), sp);
14f9c5c9 3159}
14f9c5c9 3160\f
d2e4a39e 3161
14f9c5c9
AS
3162 /* Symbol Lookup */
3163
3164
3165/* The vectors of symbols and blocks ultimately returned from */
3166/* ada_lookup_symbol_list. */
3167
3168/* Current size of defn_symbols and defn_blocks */
d2e4a39e 3169static size_t defn_vector_size = 0;
14f9c5c9
AS
3170
3171/* Current number of symbols found. */
3172static int ndefns = 0;
3173
d2e4a39e
AS
3174static struct symbol **defn_symbols = NULL;
3175static struct block **defn_blocks = NULL;
14f9c5c9
AS
3176
3177/* Return the result of a standard (literal, C-like) lookup of NAME in
176620f1 3178 * given DOMAIN. */
14f9c5c9 3179
d2e4a39e 3180static struct symbol *
176620f1 3181standard_lookup (const char *name, domain_enum domain)
14f9c5c9 3182{
d2e4a39e 3183 struct symbol *sym;
cdef89d0 3184 sym = lookup_symbol (name, (struct block *) NULL, domain, 0, NULL);
14f9c5c9
AS
3185 return sym;
3186}
d2e4a39e 3187
14f9c5c9
AS
3188
3189/* Non-zero iff there is at least one non-function/non-enumeral symbol */
3190/* in SYMS[0..N-1]. We treat enumerals as functions, since they */
d2e4a39e 3191/* contend in overloading in the same way. */
14f9c5c9 3192static int
d2e4a39e 3193is_nonfunction (struct symbol *syms[], int n)
14f9c5c9
AS
3194{
3195 int i;
3196
3197 for (i = 0; i < n; i += 1)
3198 if (TYPE_CODE (SYMBOL_TYPE (syms[i])) != TYPE_CODE_FUNC
3199 && TYPE_CODE (SYMBOL_TYPE (syms[i])) != TYPE_CODE_ENUM)
3200 return 1;
3201
3202 return 0;
3203}
3204
3205/* If true (non-zero), then TYPE0 and TYPE1 represent equivalent
3206 struct types. Otherwise, they may not. */
3207
3208static int
d2e4a39e 3209equiv_types (struct type *type0, struct type *type1)
14f9c5c9 3210{
d2e4a39e 3211 if (type0 == type1)
14f9c5c9 3212 return 1;
d2e4a39e 3213 if (type0 == NULL || type1 == NULL
14f9c5c9
AS
3214 || TYPE_CODE (type0) != TYPE_CODE (type1))
3215 return 0;
d2e4a39e 3216 if ((TYPE_CODE (type0) == TYPE_CODE_STRUCT
14f9c5c9
AS
3217 || TYPE_CODE (type0) == TYPE_CODE_ENUM)
3218 && ada_type_name (type0) != NULL && ada_type_name (type1) != NULL
3219 && STREQ (ada_type_name (type0), ada_type_name (type1)))
3220 return 1;
d2e4a39e 3221
14f9c5c9
AS
3222 return 0;
3223}
3224
3225/* True iff SYM0 represents the same entity as SYM1, or one that is
3226 no more defined than that of SYM1. */
3227
3228static int
d2e4a39e 3229lesseq_defined_than (struct symbol *sym0, struct symbol *sym1)
14f9c5c9
AS
3230{
3231 if (sym0 == sym1)
3232 return 1;
176620f1 3233 if (SYMBOL_DOMAIN (sym0) != SYMBOL_DOMAIN (sym1)
14f9c5c9
AS
3234 || SYMBOL_CLASS (sym0) != SYMBOL_CLASS (sym1))
3235 return 0;
3236
d2e4a39e 3237 switch (SYMBOL_CLASS (sym0))
14f9c5c9
AS
3238 {
3239 case LOC_UNDEF:
3240 return 1;
3241 case LOC_TYPEDEF:
3242 {
d2e4a39e
AS
3243 struct type *type0 = SYMBOL_TYPE (sym0);
3244 struct type *type1 = SYMBOL_TYPE (sym1);
22abf04a
DC
3245 char *name0 = DEPRECATED_SYMBOL_NAME (sym0);
3246 char *name1 = DEPRECATED_SYMBOL_NAME (sym1);
14f9c5c9 3247 int len0 = strlen (name0);
d2e4a39e 3248 return
14f9c5c9
AS
3249 TYPE_CODE (type0) == TYPE_CODE (type1)
3250 && (equiv_types (type0, type1)
3251 || (len0 < strlen (name1) && STREQN (name0, name1, len0)
3252 && STREQN (name1 + len0, "___XV", 5)));
3253 }
3254 case LOC_CONST:
3255 return SYMBOL_VALUE (sym0) == SYMBOL_VALUE (sym1)
3256 && equiv_types (SYMBOL_TYPE (sym0), SYMBOL_TYPE (sym1));
d2e4a39e
AS
3257 default:
3258 return 0;
14f9c5c9
AS
3259 }
3260}
3261
3262/* Append SYM to the end of defn_symbols, and BLOCK to the end of
3263 defn_blocks, updating ndefns, and expanding defn_symbols and
3264 defn_blocks as needed. Do not include SYM if it is a duplicate. */
3265
3266static void
d2e4a39e 3267add_defn_to_vec (struct symbol *sym, struct block *block)
14f9c5c9
AS
3268{
3269 int i;
3270 size_t tmp;
3271
d2e4a39e 3272 if (SYMBOL_TYPE (sym) != NULL)
14f9c5c9
AS
3273 CHECK_TYPEDEF (SYMBOL_TYPE (sym));
3274 for (i = 0; i < ndefns; i += 1)
3275 {
3276 if (lesseq_defined_than (sym, defn_symbols[i]))
3277 return;
3278 else if (lesseq_defined_than (defn_symbols[i], sym))
3279 {
3280 defn_symbols[i] = sym;
3281 defn_blocks[i] = block;
3282 return;
3283 }
3284 }
3285
3286 tmp = defn_vector_size;
d2e4a39e
AS
3287 GROW_VECT (defn_symbols, tmp, ndefns + 2);
3288 GROW_VECT (defn_blocks, defn_vector_size, ndefns + 2);
14f9c5c9
AS
3289
3290 defn_symbols[ndefns] = sym;
3291 defn_blocks[ndefns] = block;
3292 ndefns += 1;
3293}
3294
176620f1 3295/* Look, in partial_symtab PST, for symbol NAME in given domain.
14f9c5c9
AS
3296 Check the global symbols if GLOBAL, the static symbols if not. Do
3297 wild-card match if WILD. */
3298
3299static struct partial_symbol *
d2e4a39e 3300ada_lookup_partial_symbol (struct partial_symtab *pst, const char *name,
176620f1 3301 int global, domain_enum domain, int wild)
14f9c5c9
AS
3302{
3303 struct partial_symbol **start;
3304 int name_len = strlen (name);
3305 int length = (global ? pst->n_global_syms : pst->n_static_syms);
3306 int i;
3307
3308 if (length == 0)
3309 {
3310 return (NULL);
3311 }
d2e4a39e 3312
14f9c5c9
AS
3313 start = (global ?
3314 pst->objfile->global_psymbols.list + pst->globals_offset :
d2e4a39e 3315 pst->objfile->static_psymbols.list + pst->statics_offset);
14f9c5c9
AS
3316
3317 if (wild)
3318 {
3319 for (i = 0; i < length; i += 1)
3320 {
d2e4a39e 3321 struct partial_symbol *psym = start[i];
14f9c5c9 3322
176620f1 3323 if (SYMBOL_DOMAIN (psym) == domain &&
22abf04a 3324 wild_match (name, name_len, DEPRECATED_SYMBOL_NAME (psym)))
14f9c5c9
AS
3325 return psym;
3326 }
3327 return NULL;
3328 }
d2e4a39e 3329 else
14f9c5c9
AS
3330 {
3331 if (global)
3332 {
3333 int U;
d2e4a39e
AS
3334 i = 0;
3335 U = length - 1;
3336 while (U - i > 4)
14f9c5c9 3337 {
d2e4a39e
AS
3338 int M = (U + i) >> 1;
3339 struct partial_symbol *psym = start[M];
22abf04a 3340 if (DEPRECATED_SYMBOL_NAME (psym)[0] < name[0])
d2e4a39e 3341 i = M + 1;
22abf04a 3342 else if (DEPRECATED_SYMBOL_NAME (psym)[0] > name[0])
d2e4a39e 3343 U = M - 1;
22abf04a 3344 else if (strcmp (DEPRECATED_SYMBOL_NAME (psym), name) < 0)
d2e4a39e 3345 i = M + 1;
14f9c5c9
AS
3346 else
3347 U = M;
3348 }
3349 }
3350 else
3351 i = 0;
3352
3353 while (i < length)
3354 {
3355 struct partial_symbol *psym = start[i];
3356
176620f1 3357 if (SYMBOL_DOMAIN (psym) == domain)
14f9c5c9 3358 {
22abf04a 3359 int cmp = strncmp (name, DEPRECATED_SYMBOL_NAME (psym), name_len);
d2e4a39e
AS
3360
3361 if (cmp < 0)
14f9c5c9
AS
3362 {
3363 if (global)
3364 break;
3365 }
d2e4a39e 3366 else if (cmp == 0
22abf04a 3367 && is_name_suffix (DEPRECATED_SYMBOL_NAME (psym) + name_len))
14f9c5c9
AS
3368 return psym;
3369 }
3370 i += 1;
3371 }
3372
3373 if (global)
3374 {
3375 int U;
d2e4a39e
AS
3376 i = 0;
3377 U = length - 1;
3378 while (U - i > 4)
14f9c5c9 3379 {
d2e4a39e 3380 int M = (U + i) >> 1;
14f9c5c9 3381 struct partial_symbol *psym = start[M];
22abf04a 3382 if (DEPRECATED_SYMBOL_NAME (psym)[0] < '_')
d2e4a39e 3383 i = M + 1;
22abf04a 3384 else if (DEPRECATED_SYMBOL_NAME (psym)[0] > '_')
d2e4a39e 3385 U = M - 1;
22abf04a 3386 else if (strcmp (DEPRECATED_SYMBOL_NAME (psym), "_ada_") < 0)
d2e4a39e 3387 i = M + 1;
14f9c5c9
AS
3388 else
3389 U = M;
3390 }
3391 }
3392 else
3393 i = 0;
3394
3395 while (i < length)
3396 {
d2e4a39e 3397 struct partial_symbol *psym = start[i];
14f9c5c9 3398
176620f1 3399 if (SYMBOL_DOMAIN (psym) == domain)
14f9c5c9
AS
3400 {
3401 int cmp;
3402
22abf04a 3403 cmp = (int) '_' - (int) DEPRECATED_SYMBOL_NAME (psym)[0];
d2e4a39e 3404 if (cmp == 0)
14f9c5c9 3405 {
22abf04a 3406 cmp = strncmp ("_ada_", DEPRECATED_SYMBOL_NAME (psym), 5);
14f9c5c9 3407 if (cmp == 0)
22abf04a 3408 cmp = strncmp (name, DEPRECATED_SYMBOL_NAME (psym) + 5, name_len);
14f9c5c9 3409 }
d2e4a39e
AS
3410
3411 if (cmp < 0)
14f9c5c9
AS
3412 {
3413 if (global)
3414 break;
3415 }
d2e4a39e 3416 else if (cmp == 0
22abf04a 3417 && is_name_suffix (DEPRECATED_SYMBOL_NAME (psym) + name_len + 5))
14f9c5c9
AS
3418 return psym;
3419 }
3420 i += 1;
3421 }
d2e4a39e 3422
14f9c5c9
AS
3423 }
3424 return NULL;
3425}
3426
3427
3428/* Find a symbol table containing symbol SYM or NULL if none. */
d2e4a39e
AS
3429static struct symtab *
3430symtab_for_sym (struct symbol *sym)
14f9c5c9 3431{
d2e4a39e 3432 struct symtab *s;
14f9c5c9
AS
3433 struct objfile *objfile;
3434 struct block *b;
261397f8 3435 struct symbol *tmp_sym;
14f9c5c9
AS
3436 int i, j;
3437
3438 ALL_SYMTABS (objfile, s)
d2e4a39e
AS
3439 {
3440 switch (SYMBOL_CLASS (sym))
3441 {
3442 case LOC_CONST:
3443 case LOC_STATIC:
3444 case LOC_TYPEDEF:
3445 case LOC_REGISTER:
3446 case LOC_LABEL:
3447 case LOC_BLOCK:
3448 case LOC_CONST_BYTES:
3449 b = BLOCKVECTOR_BLOCK (BLOCKVECTOR (s), GLOBAL_BLOCK);
3450 ALL_BLOCK_SYMBOLS (b, i, tmp_sym) if (sym == tmp_sym)
3451 return s;
3452 b = BLOCKVECTOR_BLOCK (BLOCKVECTOR (s), STATIC_BLOCK);
3453 ALL_BLOCK_SYMBOLS (b, i, tmp_sym) if (sym == tmp_sym)
3454 return s;
3455 break;
3456 default:
3457 break;
3458 }
3459 switch (SYMBOL_CLASS (sym))
3460 {
3461 case LOC_REGISTER:
3462 case LOC_ARG:
3463 case LOC_REF_ARG:
3464 case LOC_REGPARM:
3465 case LOC_REGPARM_ADDR:
3466 case LOC_LOCAL:
3467 case LOC_TYPEDEF:
3468 case LOC_LOCAL_ARG:
3469 case LOC_BASEREG:
3470 case LOC_BASEREG_ARG:
4c2df51b
DJ
3471 case LOC_COMPUTED:
3472 case LOC_COMPUTED_ARG:
d2e4a39e
AS
3473 for (j = FIRST_LOCAL_BLOCK;
3474 j < BLOCKVECTOR_NBLOCKS (BLOCKVECTOR (s)); j += 1)
3475 {
3476 b = BLOCKVECTOR_BLOCK (BLOCKVECTOR (s), j);
3477 ALL_BLOCK_SYMBOLS (b, i, tmp_sym) if (sym == tmp_sym)
14f9c5c9 3478 return s;
d2e4a39e
AS
3479 }
3480 break;
3481 default:
3482 break;
3483 }
3484 }
14f9c5c9
AS
3485 return NULL;
3486}
3487
3488/* Return a minimal symbol matching NAME according to Ada demangling
3489 rules. Returns NULL if there is no such minimal symbol. */
3490
d2e4a39e
AS
3491struct minimal_symbol *
3492ada_lookup_minimal_symbol (const char *name)
14f9c5c9 3493{
d2e4a39e
AS
3494 struct objfile *objfile;
3495 struct minimal_symbol *msymbol;
14f9c5c9
AS
3496 int wild_match = (strstr (name, "__") == NULL);
3497
3498 ALL_MSYMBOLS (objfile, msymbol)
d2e4a39e 3499 {
22abf04a 3500 if (ada_match_name (DEPRECATED_SYMBOL_NAME (msymbol), name, wild_match)
d2e4a39e
AS
3501 && MSYMBOL_TYPE (msymbol) != mst_solib_trampoline)
3502 return msymbol;
3503 }
14f9c5c9
AS
3504
3505 return NULL;
3506}
3507
3508/* For all subprograms that statically enclose the subprogram of the
176620f1 3509 * selected frame, add symbols matching identifier NAME in DOMAIN
14f9c5c9
AS
3510 * and their blocks to vectors *defn_symbols and *defn_blocks, as for
3511 * ada_add_block_symbols (q.v.). If WILD, treat as NAME with a
3512 * wildcard prefix. At the moment, this function uses a heuristic to
3513 * find the frames of enclosing subprograms: it treats the
3514 * pointer-sized value at location 0 from the local-variable base of a
3515 * frame as a static link, and then searches up the call stack for a
3516 * frame with that same local-variable base. */
3517static void
176620f1 3518add_symbols_from_enclosing_procs (const char *name, domain_enum domain,
d2e4a39e 3519 int wild_match)
14f9c5c9
AS
3520{
3521#ifdef i386
3522 static struct symbol static_link_sym;
3523 static struct symbol *static_link;
3524
d2e4a39e
AS
3525 struct cleanup *old_chain = make_cleanup (null_cleanup, NULL);
3526 struct frame_info *frame;
3527 struct frame_info *target_frame;
14f9c5c9
AS
3528
3529 if (static_link == NULL)
3530 {
3531 /* Initialize the local variable symbol that stands for the
3532 * static link (when it exists). */
3533 static_link = &static_link_sym;
22abf04a 3534 DEPRECATED_SYMBOL_NAME (static_link) = "";
14f9c5c9
AS
3535 SYMBOL_LANGUAGE (static_link) = language_unknown;
3536 SYMBOL_CLASS (static_link) = LOC_LOCAL;
176620f1 3537 SYMBOL_DOMAIN (static_link) = VAR_DOMAIN;
14f9c5c9 3538 SYMBOL_TYPE (static_link) = lookup_pointer_type (builtin_type_void);
d2e4a39e
AS
3539 SYMBOL_VALUE (static_link) =
3540 -(long) TYPE_LENGTH (SYMBOL_TYPE (static_link));
14f9c5c9
AS
3541 }
3542
6e7f8b9c 3543 frame = deprecated_selected_frame;
14f9c5c9
AS
3544 while (frame != NULL && ndefns == 0)
3545 {
d2e4a39e
AS
3546 struct block *block;
3547 struct value *target_link_val = read_var_value (static_link, frame);
14f9c5c9
AS
3548 CORE_ADDR target_link;
3549
3550 if (target_link_val == NULL)
3551 break;
3552 QUIT;
3553
3554 target_link = target_link_val;
d2e4a39e
AS
3555 do
3556 {
14f9c5c9
AS
3557 QUIT;
3558 frame = get_prev_frame (frame);
d2e4a39e
AS
3559 }
3560 while (frame != NULL && FRAME_LOCALS_ADDRESS (frame) != target_link);
14f9c5c9
AS
3561
3562 if (frame == NULL)
3563 break;
3564
3565 block = get_frame_block (frame, 0);
3566 while (block != NULL && block_function (block) != NULL && ndefns == 0)
3567 {
176620f1 3568 ada_add_block_symbols (block, name, domain, NULL, wild_match);
d2e4a39e 3569
14f9c5c9
AS
3570 block = BLOCK_SUPERBLOCK (block);
3571 }
3572 }
3573
3574 do_cleanups (old_chain);
3575#endif
3576}
3577
3578/* True if TYPE is definitely an artificial type supplied to a symbol
3579 * for which no debugging information was given in the symbol file. */
3580static int
d2e4a39e 3581is_nondebugging_type (struct type *type)
14f9c5c9 3582{
d2e4a39e 3583 char *name = ada_type_name (type);
14f9c5c9
AS
3584 return (name != NULL && STREQ (name, "<variable, no debug info>"));
3585}
3586
3587/* Remove any non-debugging symbols in SYMS[0 .. NSYMS-1] that definitely
3588 * duplicate other symbols in the list. (The only case I know of where
3589 * this happens is when object files containing stabs-in-ecoff are
3590 * linked with files containing ordinary ecoff debugging symbols (or no
3591 * debugging symbols)). Modifies SYMS to squeeze out deleted symbols,
3592 * and applies the same modification to BLOCKS to maintain the
3593 * correspondence between SYMS[i] and BLOCKS[i]. Returns the number
3594 * of symbols in the modified list. */
3595static int
d2e4a39e 3596remove_extra_symbols (struct symbol **syms, struct block **blocks, int nsyms)
14f9c5c9
AS
3597{
3598 int i, j;
3599
3600 i = 0;
3601 while (i < nsyms)
3602 {
22abf04a 3603 if (DEPRECATED_SYMBOL_NAME (syms[i]) != NULL
d2e4a39e 3604 && SYMBOL_CLASS (syms[i]) == LOC_STATIC
14f9c5c9
AS
3605 && is_nondebugging_type (SYMBOL_TYPE (syms[i])))
3606 {
3607 for (j = 0; j < nsyms; j += 1)
3608 {
d2e4a39e 3609 if (i != j
22abf04a
DC
3610 && DEPRECATED_SYMBOL_NAME (syms[j]) != NULL
3611 && STREQ (DEPRECATED_SYMBOL_NAME (syms[i]), DEPRECATED_SYMBOL_NAME (syms[j]))
14f9c5c9 3612 && SYMBOL_CLASS (syms[i]) == SYMBOL_CLASS (syms[j])
d2e4a39e 3613 && SYMBOL_VALUE_ADDRESS (syms[i])
14f9c5c9
AS
3614 == SYMBOL_VALUE_ADDRESS (syms[j]))
3615 {
3616 int k;
d2e4a39e 3617 for (k = i + 1; k < nsyms; k += 1)
14f9c5c9 3618 {
d2e4a39e
AS
3619 syms[k - 1] = syms[k];
3620 blocks[k - 1] = blocks[k];
14f9c5c9
AS
3621 }
3622 nsyms -= 1;
3623 goto NextSymbol;
3624 }
3625 }
3626 }
3627 i += 1;
3628 NextSymbol:
3629 ;
3630 }
3631 return nsyms;
3632}
3633
176620f1 3634/* Find symbols in DOMAIN matching NAME, in BLOCK0 and enclosing
14f9c5c9
AS
3635 scope and in global scopes, returning the number of matches. Sets
3636 *SYMS to point to a vector of matching symbols, with *BLOCKS
3637 pointing to the vector of corresponding blocks in which those
3638 symbols reside. These two vectors are transient---good only to the
3639 next call of ada_lookup_symbol_list. Any non-function/non-enumeral symbol
3640 match within the nest of blocks whose innermost member is BLOCK0,
3641 is the outermost match returned (no other matches in that or
3642 enclosing blocks is returned). If there are any matches in or
3643 surrounding BLOCK0, then these alone are returned. */
3644
3645int
ebf56fd3 3646ada_lookup_symbol_list (const char *name, struct block *block0,
176620f1 3647 domain_enum domain, struct symbol ***syms,
d2e4a39e 3648 struct block ***blocks)
14f9c5c9
AS
3649{
3650 struct symbol *sym;
3651 struct symtab *s;
3652 struct partial_symtab *ps;
3653 struct blockvector *bv;
3654 struct objfile *objfile;
3655 struct block *b;
3656 struct block *block;
3657 struct minimal_symbol *msymbol;
3658 int wild_match = (strstr (name, "__") == NULL);
3659 int cacheIfUnique;
3660
3661#ifdef TIMING
3662 markTimeStart (0);
3663#endif
3664
3665 ndefns = 0;
3666 cacheIfUnique = 0;
3667
3668 /* Search specified block and its superiors. */
3669
3670 block = block0;
3671 while (block != NULL)
3672 {
176620f1 3673 ada_add_block_symbols (block, name, domain, NULL, wild_match);
14f9c5c9
AS
3674
3675 /* If we found a non-function match, assume that's the one. */
3676 if (is_nonfunction (defn_symbols, ndefns))
3677 goto done;
3678
3679 block = BLOCK_SUPERBLOCK (block);
3680 }
3681
3682 /* If we found ANY matches in the specified BLOCK, we're done. */
3683
3684 if (ndefns > 0)
3685 goto done;
d2e4a39e 3686
14f9c5c9
AS
3687 cacheIfUnique = 1;
3688
3689 /* Now add symbols from all global blocks: symbol tables, minimal symbol
3690 tables, and psymtab's */
3691
3692 ALL_SYMTABS (objfile, s)
d2e4a39e
AS
3693 {
3694 QUIT;
3695 if (!s->primary)
3696 continue;
3697 bv = BLOCKVECTOR (s);
3698 block = BLOCKVECTOR_BLOCK (bv, GLOBAL_BLOCK);
176620f1 3699 ada_add_block_symbols (block, name, domain, objfile, wild_match);
d2e4a39e 3700 }
14f9c5c9 3701
176620f1 3702 if (domain == VAR_DOMAIN)
14f9c5c9
AS
3703 {
3704 ALL_MSYMBOLS (objfile, msymbol)
d2e4a39e 3705 {
22abf04a 3706 if (ada_match_name (DEPRECATED_SYMBOL_NAME (msymbol), name, wild_match))
d2e4a39e
AS
3707 {
3708 switch (MSYMBOL_TYPE (msymbol))
3709 {
3710 case mst_solib_trampoline:
3711 break;
3712 default:
3713 s = find_pc_symtab (SYMBOL_VALUE_ADDRESS (msymbol));
3714 if (s != NULL)
3715 {
3716 int old_ndefns = ndefns;
3717 QUIT;
3718 bv = BLOCKVECTOR (s);
3719 block = BLOCKVECTOR_BLOCK (bv, GLOBAL_BLOCK);
3720 ada_add_block_symbols (block,
22abf04a 3721 DEPRECATED_SYMBOL_NAME (msymbol),
176620f1 3722 domain, objfile, wild_match);
d2e4a39e
AS
3723 if (ndefns == old_ndefns)
3724 {
3725 block = BLOCKVECTOR_BLOCK (bv, STATIC_BLOCK);
3726 ada_add_block_symbols (block,
22abf04a 3727 DEPRECATED_SYMBOL_NAME (msymbol),
176620f1 3728 domain, objfile,
d2e4a39e
AS
3729 wild_match);
3730 }
3731 }
3732 }
3733 }
3734 }
14f9c5c9 3735 }
d2e4a39e 3736
14f9c5c9 3737 ALL_PSYMTABS (objfile, ps)
d2e4a39e
AS
3738 {
3739 QUIT;
3740 if (!ps->readin
176620f1 3741 && ada_lookup_partial_symbol (ps, name, 1, domain, wild_match))
d2e4a39e
AS
3742 {
3743 s = PSYMTAB_TO_SYMTAB (ps);
3744 if (!s->primary)
3745 continue;
3746 bv = BLOCKVECTOR (s);
3747 block = BLOCKVECTOR_BLOCK (bv, GLOBAL_BLOCK);
176620f1 3748 ada_add_block_symbols (block, name, domain, objfile, wild_match);
d2e4a39e
AS
3749 }
3750 }
3751
14f9c5c9
AS
3752 /* Now add symbols from all per-file blocks if we've gotten no hits.
3753 (Not strictly correct, but perhaps better than an error).
3754 Do the symtabs first, then check the psymtabs */
d2e4a39e 3755
14f9c5c9
AS
3756 if (ndefns == 0)
3757 {
3758
3759 ALL_SYMTABS (objfile, s)
d2e4a39e
AS
3760 {
3761 QUIT;
3762 if (!s->primary)
3763 continue;
3764 bv = BLOCKVECTOR (s);
3765 block = BLOCKVECTOR_BLOCK (bv, STATIC_BLOCK);
176620f1 3766 ada_add_block_symbols (block, name, domain, objfile, wild_match);
d2e4a39e
AS
3767 }
3768
14f9c5c9 3769 ALL_PSYMTABS (objfile, ps)
d2e4a39e
AS
3770 {
3771 QUIT;
3772 if (!ps->readin
176620f1 3773 && ada_lookup_partial_symbol (ps, name, 0, domain, wild_match))
d2e4a39e
AS
3774 {
3775 s = PSYMTAB_TO_SYMTAB (ps);
3776 bv = BLOCKVECTOR (s);
3777 if (!s->primary)
3778 continue;
3779 block = BLOCKVECTOR_BLOCK (bv, STATIC_BLOCK);
176620f1 3780 ada_add_block_symbols (block, name, domain,
d2e4a39e
AS
3781 objfile, wild_match);
3782 }
3783 }
3784 }
14f9c5c9
AS
3785
3786 /* Finally, we try to find NAME as a local symbol in some lexically
3787 enclosing block. We do this last, expecting this case to be
3788 rare. */
d2e4a39e 3789 if (ndefns == 0)
14f9c5c9 3790 {
176620f1 3791 add_symbols_from_enclosing_procs (name, domain, wild_match);
14f9c5c9
AS
3792 if (ndefns > 0)
3793 goto done;
3794 }
3795
d2e4a39e 3796done:
14f9c5c9
AS
3797 ndefns = remove_extra_symbols (defn_symbols, defn_blocks, ndefns);
3798
3799
3800 *syms = defn_symbols;
3801 *blocks = defn_blocks;
3802#ifdef TIMING
3803 markTimeStop (0);
3804#endif
3805 return ndefns;
3806}
3807
176620f1 3808/* Return a symbol in DOMAIN matching NAME, in BLOCK0 and enclosing
14f9c5c9
AS
3809 * scope and in global scopes, or NULL if none. NAME is folded to
3810 * lower case first, unless it is surrounded in single quotes.
3811 * Otherwise, the result is as for ada_lookup_symbol_list, but is
3812 * disambiguated by user query if needed. */
3813
d2e4a39e
AS
3814struct symbol *
3815ada_lookup_symbol (const char *name, struct block *block0,
176620f1 3816 domain_enum domain)
14f9c5c9 3817{
d2e4a39e
AS
3818 struct symbol **candidate_syms;
3819 struct block **candidate_blocks;
14f9c5c9
AS
3820 int n_candidates;
3821
3822 n_candidates = ada_lookup_symbol_list (name,
176620f1 3823 block0, domain,
14f9c5c9
AS
3824 &candidate_syms, &candidate_blocks);
3825
3826 if (n_candidates == 0)
3827 return NULL;
3828 else if (n_candidates != 1)
3829 user_select_syms (candidate_syms, candidate_blocks, n_candidates, 1);
3830
3831 return candidate_syms[0];
3832}
3833
3834
3835/* True iff STR is a possible encoded suffix of a normal Ada name
3836 * that is to be ignored for matching purposes. Suffixes of parallel
3837 * names (e.g., XVE) are not included here. Currently, the possible suffixes
3838 * are given by the regular expression:
3839 * (X[nb]*)?(__[0-9]+|\$[0-9]+|___(LJM|X([FDBUP].*|R[^T]?)))?$
3840 *
3841 */
3842static int
d2e4a39e 3843is_name_suffix (const char *str)
14f9c5c9
AS
3844{
3845 int k;
3846 if (str[0] == 'X')
3847 {
3848 str += 1;
d2e4a39e 3849 while (str[0] != '_' && str[0] != '\0')
14f9c5c9
AS
3850 {
3851 if (str[0] != 'n' && str[0] != 'b')
3852 return 0;
3853 str += 1;
d2e4a39e 3854 }
14f9c5c9
AS
3855 }
3856 if (str[0] == '\000')
3857 return 1;
d2e4a39e 3858 if (str[0] == '_')
14f9c5c9
AS
3859 {
3860 if (str[1] != '_' || str[2] == '\000')
3861 return 0;
d2e4a39e 3862 if (str[2] == '_')
14f9c5c9 3863 {
d2e4a39e 3864 if (STREQ (str + 3, "LJM"))
14f9c5c9
AS
3865 return 1;
3866 if (str[3] != 'X')
3867 return 0;
3868 if (str[4] == 'F' || str[4] == 'D' || str[4] == 'B' ||
3869 str[4] == 'U' || str[4] == 'P')
3870 return 1;
3871 if (str[4] == 'R' && str[5] != 'T')
3872 return 1;
3873 return 0;
3874 }
3875 for (k = 2; str[k] != '\0'; k += 1)
3876 if (!isdigit (str[k]))
3877 return 0;
3878 return 1;
3879 }
3880 if (str[0] == '$' && str[1] != '\000')
3881 {
3882 for (k = 1; str[k] != '\0'; k += 1)
3883 if (!isdigit (str[k]))
3884 return 0;
3885 return 1;
3886 }
3887 return 0;
3888}
d2e4a39e 3889
14f9c5c9
AS
3890/* True if NAME represents a name of the form A1.A2....An, n>=1 and
3891 * PATN[0..PATN_LEN-1] = Ak.Ak+1.....An for some k >= 1. Ignores
3892 * informational suffixes of NAME (i.e., for which is_name_suffix is
d2e4a39e 3893 * true). */
14f9c5c9 3894static int
d2e4a39e 3895wild_match (const char *patn, int patn_len, const char *name)
14f9c5c9
AS
3896{
3897 int name_len;
3898 int s, e;
3899
3900 name_len = strlen (name);
d2e4a39e
AS
3901 if (name_len >= patn_len + 5 && STREQN (name, "_ada_", 5)
3902 && STREQN (patn, name + 5, patn_len)
3903 && is_name_suffix (name + patn_len + 5))
14f9c5c9
AS
3904 return 1;
3905
d2e4a39e 3906 while (name_len >= patn_len)
14f9c5c9 3907 {
d2e4a39e 3908 if (STREQN (patn, name, patn_len) && is_name_suffix (name + patn_len))
14f9c5c9 3909 return 1;
d2e4a39e
AS
3910 do
3911 {
3912 name += 1;
3913 name_len -= 1;
3914 }
3915 while (name_len > 0
3916 && name[0] != '.' && (name[0] != '_' || name[1] != '_'));
14f9c5c9
AS
3917 if (name_len <= 0)
3918 return 0;
3919 if (name[0] == '_')
3920 {
d2e4a39e 3921 if (!islower (name[2]))
14f9c5c9 3922 return 0;
d2e4a39e
AS
3923 name += 2;
3924 name_len -= 2;
14f9c5c9
AS
3925 }
3926 else
3927 {
d2e4a39e 3928 if (!islower (name[1]))
14f9c5c9 3929 return 0;
d2e4a39e
AS
3930 name += 1;
3931 name_len -= 1;
14f9c5c9
AS
3932 }
3933 }
3934
3935 return 0;
3936}
3937
3938
176620f1 3939/* Add symbols from BLOCK matching identifier NAME in DOMAIN to
14f9c5c9
AS
3940 vector *defn_symbols, updating *defn_symbols (if necessary), *SZ (the size of
3941 the vector *defn_symbols), and *ndefns (the number of symbols
3942 currently stored in *defn_symbols). If WILD, treat as NAME with a
3943 wildcard prefix. OBJFILE is the section containing BLOCK. */
3944
d2e4a39e
AS
3945static void
3946ada_add_block_symbols (struct block *block, const char *name,
176620f1 3947 domain_enum domain, struct objfile *objfile,
ebf56fd3 3948 int wild)
14f9c5c9
AS
3949{
3950 int i;
3951 int name_len = strlen (name);
3952 /* A matching argument symbol, if any. */
3953 struct symbol *arg_sym;
3954 /* Set true when we find a matching non-argument symbol */
3955 int found_sym;
3956 int is_sorted = BLOCK_SHOULD_SORT (block);
261397f8 3957 struct symbol *sym;
14f9c5c9 3958
d2e4a39e
AS
3959 arg_sym = NULL;
3960 found_sym = 0;
14f9c5c9
AS
3961 if (wild)
3962 {
261397f8
DJ
3963 struct symbol *sym;
3964 ALL_BLOCK_SYMBOLS (block, i, sym)
d2e4a39e 3965 {
176620f1 3966 if (SYMBOL_DOMAIN (sym) == domain &&
22abf04a 3967 wild_match (name, name_len, DEPRECATED_SYMBOL_NAME (sym)))
d2e4a39e
AS
3968 {
3969 switch (SYMBOL_CLASS (sym))
3970 {
3971 case LOC_ARG:
3972 case LOC_LOCAL_ARG:
3973 case LOC_REF_ARG:
3974 case LOC_REGPARM:
3975 case LOC_REGPARM_ADDR:
3976 case LOC_BASEREG_ARG:
4c2df51b 3977 case LOC_COMPUTED_ARG:
d2e4a39e
AS
3978 arg_sym = sym;
3979 break;
3980 case LOC_UNRESOLVED:
3981 continue;
3982 default:
3983 found_sym = 1;
3984 fill_in_ada_prototype (sym);
3985 add_defn_to_vec (fixup_symbol_section (sym, objfile), block);
3986 break;
3987 }
3988 }
3989 }
14f9c5c9 3990 }
d2e4a39e 3991 else
14f9c5c9
AS
3992 {
3993 if (is_sorted)
3994 {
3995 int U;
d2e4a39e
AS
3996 i = 0;
3997 U = BLOCK_NSYMS (block) - 1;
3998 while (U - i > 4)
14f9c5c9 3999 {
d2e4a39e 4000 int M = (U + i) >> 1;
14f9c5c9 4001 struct symbol *sym = BLOCK_SYM (block, M);
22abf04a 4002 if (DEPRECATED_SYMBOL_NAME (sym)[0] < name[0])
d2e4a39e 4003 i = M + 1;
22abf04a 4004 else if (DEPRECATED_SYMBOL_NAME (sym)[0] > name[0])
d2e4a39e 4005 U = M - 1;
22abf04a 4006 else if (strcmp (DEPRECATED_SYMBOL_NAME (sym), name) < 0)
d2e4a39e 4007 i = M + 1;
14f9c5c9
AS
4008 else
4009 U = M;
4010 }
4011 }
4012 else
4013 i = 0;
4014
261397f8
DJ
4015 for (; i < BLOCK_BUCKETS (block); i += 1)
4016 for (sym = BLOCK_BUCKET (block, i); sym != NULL; sym = sym->hash_next)
4017 {
176620f1 4018 if (SYMBOL_DOMAIN (sym) == domain)
261397f8 4019 {
22abf04a 4020 int cmp = strncmp (name, DEPRECATED_SYMBOL_NAME (sym), name_len);
14f9c5c9 4021
d2e4a39e 4022 if (cmp < 0)
261397f8
DJ
4023 {
4024 if (is_sorted)
4025 {
4026 i = BLOCK_BUCKETS (block);
4027 break;
4028 }
4029 }
d2e4a39e 4030 else if (cmp == 0
22abf04a 4031 && is_name_suffix (DEPRECATED_SYMBOL_NAME (sym) + name_len))
261397f8
DJ
4032 {
4033 switch (SYMBOL_CLASS (sym))
4034 {
4035 case LOC_ARG:
4036 case LOC_LOCAL_ARG:
4037 case LOC_REF_ARG:
4038 case LOC_REGPARM:
4039 case LOC_REGPARM_ADDR:
4040 case LOC_BASEREG_ARG:
4c2df51b 4041 case LOC_COMPUTED_ARG:
261397f8
DJ
4042 arg_sym = sym;
4043 break;
4044 case LOC_UNRESOLVED:
4045 break;
4046 default:
4047 found_sym = 1;
4048 fill_in_ada_prototype (sym);
4049 add_defn_to_vec (fixup_symbol_section (sym, objfile),
4050 block);
4051 break;
4052 }
4053 }
4054 }
4055 }
14f9c5c9
AS
4056 }
4057
d2e4a39e 4058 if (!found_sym && arg_sym != NULL)
14f9c5c9
AS
4059 {
4060 fill_in_ada_prototype (arg_sym);
4061 add_defn_to_vec (fixup_symbol_section (arg_sym, objfile), block);
4062 }
4063
d2e4a39e 4064 if (!wild)
14f9c5c9 4065 {
d2e4a39e
AS
4066 arg_sym = NULL;
4067 found_sym = 0;
14f9c5c9
AS
4068 if (is_sorted)
4069 {
4070 int U;
d2e4a39e
AS
4071 i = 0;
4072 U = BLOCK_NSYMS (block) - 1;
4073 while (U - i > 4)
14f9c5c9 4074 {
d2e4a39e 4075 int M = (U + i) >> 1;
14f9c5c9 4076 struct symbol *sym = BLOCK_SYM (block, M);
22abf04a 4077 if (DEPRECATED_SYMBOL_NAME (sym)[0] < '_')
d2e4a39e 4078 i = M + 1;
22abf04a 4079 else if (DEPRECATED_SYMBOL_NAME (sym)[0] > '_')
d2e4a39e 4080 U = M - 1;
22abf04a 4081 else if (strcmp (DEPRECATED_SYMBOL_NAME (sym), "_ada_") < 0)
d2e4a39e 4082 i = M + 1;
14f9c5c9
AS
4083 else
4084 U = M;
4085 }
4086 }
4087 else
4088 i = 0;
4089
261397f8
DJ
4090 for (; i < BLOCK_BUCKETS (block); i += 1)
4091 for (sym = BLOCK_BUCKET (block, i); sym != NULL; sym = sym->hash_next)
4092 {
4093 struct symbol *sym = BLOCK_SYM (block, i);
14f9c5c9 4094
176620f1 4095 if (SYMBOL_DOMAIN (sym) == domain)
261397f8
DJ
4096 {
4097 int cmp;
14f9c5c9 4098
22abf04a 4099 cmp = (int) '_' - (int) DEPRECATED_SYMBOL_NAME (sym)[0];
d2e4a39e 4100 if (cmp == 0)
261397f8 4101 {
22abf04a 4102 cmp = strncmp ("_ada_", DEPRECATED_SYMBOL_NAME (sym), 5);
261397f8 4103 if (cmp == 0)
22abf04a 4104 cmp = strncmp (name, DEPRECATED_SYMBOL_NAME (sym) + 5, name_len);
261397f8
DJ
4105 }
4106
d2e4a39e 4107 if (cmp < 0)
261397f8
DJ
4108 {
4109 if (is_sorted)
4110 {
4111 i = BLOCK_BUCKETS (block);
4112 break;
4113 }
4114 }
d2e4a39e 4115 else if (cmp == 0
22abf04a 4116 && is_name_suffix (DEPRECATED_SYMBOL_NAME (sym) + name_len + 5))
261397f8
DJ
4117 {
4118 switch (SYMBOL_CLASS (sym))
4119 {
4120 case LOC_ARG:
4121 case LOC_LOCAL_ARG:
4122 case LOC_REF_ARG:
4123 case LOC_REGPARM:
4124 case LOC_REGPARM_ADDR:
4125 case LOC_BASEREG_ARG:
4c2df51b 4126 case LOC_COMPUTED_ARG:
261397f8
DJ
4127 arg_sym = sym;
4128 break;
4129 case LOC_UNRESOLVED:
4130 break;
4131 default:
4132 found_sym = 1;
4133 fill_in_ada_prototype (sym);
4134 add_defn_to_vec (fixup_symbol_section (sym, objfile),
4135 block);
4136 break;
4137 }
4138 }
4139 }
4140 }
d2e4a39e 4141
14f9c5c9 4142 /* NOTE: This really shouldn't be needed for _ada_ symbols.
d2e4a39e
AS
4143 They aren't parameters, right? */
4144 if (!found_sym && arg_sym != NULL)
14f9c5c9
AS
4145 {
4146 fill_in_ada_prototype (arg_sym);
4147 add_defn_to_vec (fixup_symbol_section (arg_sym, objfile), block);
4148 }
4149 }
4150}
14f9c5c9 4151\f
d2e4a39e 4152
14f9c5c9
AS
4153 /* Function Types */
4154
4155/* Assuming that SYM is the symbol for a function, fill in its type
170911c7 4156 with prototype information, if it is not already there. */
14f9c5c9
AS
4157
4158static void
d2e4a39e 4159fill_in_ada_prototype (struct symbol *func)
14f9c5c9 4160{
d2e4a39e 4161 struct block *b;
14f9c5c9
AS
4162 int nargs, nsyms;
4163 int i;
d2e4a39e
AS
4164 struct type *ftype;
4165 struct type *rtype;
14f9c5c9 4166 size_t max_fields;
261397f8 4167 struct symbol *sym;
14f9c5c9
AS
4168
4169 if (func == NULL
4170 || TYPE_CODE (SYMBOL_TYPE (func)) != TYPE_CODE_FUNC
4171 || TYPE_FIELDS (SYMBOL_TYPE (func)) != NULL)
4172 return;
4173
4174 /* We make each function type unique, so that each may have its own */
4175 /* parameter types. This particular way of doing so wastes space: */
4176 /* it would be nicer to build the argument types while the original */
4177 /* function type is being built (FIXME). */
4178 rtype = check_typedef (TYPE_TARGET_TYPE (SYMBOL_TYPE (func)));
4179 ftype = alloc_type (TYPE_OBJFILE (SYMBOL_TYPE (func)));
4180 make_function_type (rtype, &ftype);
4181 SYMBOL_TYPE (func) = ftype;
4182
4183 b = SYMBOL_BLOCK_VALUE (func);
14f9c5c9
AS
4184
4185 nargs = 0;
d2e4a39e
AS
4186 max_fields = 8;
4187 TYPE_FIELDS (ftype) =
4188 (struct field *) xmalloc (sizeof (struct field) * max_fields);
261397f8 4189 ALL_BLOCK_SYMBOLS (b, i, sym)
d2e4a39e
AS
4190 {
4191 GROW_VECT (TYPE_FIELDS (ftype), max_fields, nargs + 1);
14f9c5c9 4192
d2e4a39e
AS
4193 switch (SYMBOL_CLASS (sym))
4194 {
4195 case LOC_REF_ARG:
4196 case LOC_REGPARM_ADDR:
4197 TYPE_FIELD_BITPOS (ftype, nargs) = nargs;
4198 TYPE_FIELD_BITSIZE (ftype, nargs) = 0;
01ad7f36 4199 TYPE_FIELD_STATIC_KIND (ftype, nargs) = 0;
d2e4a39e
AS
4200 TYPE_FIELD_TYPE (ftype, nargs) =
4201 lookup_pointer_type (check_typedef (SYMBOL_TYPE (sym)));
22abf04a 4202 TYPE_FIELD_NAME (ftype, nargs) = DEPRECATED_SYMBOL_NAME (sym);
d2e4a39e 4203 nargs += 1;
14f9c5c9 4204
d2e4a39e
AS
4205 break;
4206
4207 case LOC_ARG:
4208 case LOC_REGPARM:
4209 case LOC_LOCAL_ARG:
4210 case LOC_BASEREG_ARG:
4c2df51b 4211 case LOC_COMPUTED_ARG:
d2e4a39e
AS
4212 TYPE_FIELD_BITPOS (ftype, nargs) = nargs;
4213 TYPE_FIELD_BITSIZE (ftype, nargs) = 0;
01ad7f36 4214 TYPE_FIELD_STATIC_KIND (ftype, nargs) = 0;
d2e4a39e 4215 TYPE_FIELD_TYPE (ftype, nargs) = check_typedef (SYMBOL_TYPE (sym));
22abf04a 4216 TYPE_FIELD_NAME (ftype, nargs) = DEPRECATED_SYMBOL_NAME (sym);
d2e4a39e
AS
4217 nargs += 1;
4218
4219 break;
4220
4221 default:
4222 break;
4223 }
4224 }
14f9c5c9
AS
4225
4226 /* Re-allocate fields vector; if there are no fields, make the */
4227 /* fields pointer non-null anyway, to mark that this function type */
4228 /* has been filled in. */
4229
4230 TYPE_NFIELDS (ftype) = nargs;
4231 if (nargs == 0)
4232 {
d2e4a39e 4233 static struct field dummy_field = { 0, 0, 0, 0 };
aacb1f0a 4234 xfree (TYPE_FIELDS (ftype));
14f9c5c9
AS
4235 TYPE_FIELDS (ftype) = &dummy_field;
4236 }
4237 else
4238 {
d2e4a39e
AS
4239 struct field *fields =
4240 (struct field *) TYPE_ALLOC (ftype, nargs * sizeof (struct field));
4241 memcpy ((char *) fields,
4242 (char *) TYPE_FIELDS (ftype), nargs * sizeof (struct field));
aacb1f0a 4243 xfree (TYPE_FIELDS (ftype));
14f9c5c9
AS
4244 TYPE_FIELDS (ftype) = fields;
4245 }
4246}
14f9c5c9 4247\f
d2e4a39e 4248
14f9c5c9
AS
4249 /* Breakpoint-related */
4250
d2e4a39e
AS
4251char no_symtab_msg[] =
4252 "No symbol table is loaded. Use the \"file\" command.";
14f9c5c9
AS
4253
4254/* Assuming that LINE is pointing at the beginning of an argument to
4255 'break', return a pointer to the delimiter for the initial segment
4256 of that name. This is the first ':', ' ', or end of LINE.
4257*/
d2e4a39e
AS
4258char *
4259ada_start_decode_line_1 (char *line)
14f9c5c9
AS
4260{
4261 /* [NOTE: strpbrk would be more elegant, but I am reluctant to be
4262 the first to use such a library function in GDB code.] */
d2e4a39e 4263 char *p;
14f9c5c9
AS
4264 for (p = line; *p != '\000' && *p != ' ' && *p != ':'; p += 1)
4265 ;
4266 return p;
4267}
4268
4269/* *SPEC points to a function and line number spec (as in a break
4270 command), following any initial file name specification.
4271
4272 Return all symbol table/line specfications (sals) consistent with the
4273 information in *SPEC and FILE_TABLE in the
4274 following sense:
4275 + FILE_TABLE is null, or the sal refers to a line in the file
4276 named by FILE_TABLE.
4277 + If *SPEC points to an argument with a trailing ':LINENUM',
4278 then the sal refers to that line (or one following it as closely as
4279 possible).
4280 + If *SPEC does not start with '*', the sal is in a function with
4281 that name.
4282
4283 Returns with 0 elements if no matching non-minimal symbols found.
4284
4285 If *SPEC begins with a function name of the form <NAME>, then NAME
4286 is taken as a literal name; otherwise the function name is subject
4287 to the usual mangling.
4288
4289 *SPEC is updated to point after the function/line number specification.
4290
4291 FUNFIRSTLINE is non-zero if we desire the first line of real code
4292 in each function (this is ignored in the presence of a LINENUM spec.).
4293
4294 If CANONICAL is non-NULL, and if any of the sals require a
4295 'canonical line spec', then *CANONICAL is set to point to an array
4296 of strings, corresponding to and equal in length to the returned
4297 list of sals, such that (*CANONICAL)[i] is non-null and contains a
4298 canonical line spec for the ith returned sal, if needed. If no
4299 canonical line specs are required and CANONICAL is non-null,
4300 *CANONICAL is set to NULL.
4301
4302 A 'canonical line spec' is simply a name (in the format of the
4303 breakpoint command) that uniquely identifies a breakpoint position,
4304 with no further contextual information or user selection. It is
4305 needed whenever the file name, function name, and line number
4306 information supplied is insufficient for this unique
4307 identification. Currently overloaded functions, the name '*',
4308 or static functions without a filename yield a canonical line spec.
4309 The array and the line spec strings are allocated on the heap; it
4310 is the caller's responsibility to free them. */
4311
4312struct symtabs_and_lines
d2e4a39e
AS
4313ada_finish_decode_line_1 (char **spec, struct symtab *file_table,
4314 int funfirstline, char ***canonical)
14f9c5c9 4315{
d2e4a39e
AS
4316 struct symbol **symbols;
4317 struct block **blocks;
4318 struct block *block;
14f9c5c9
AS
4319 int n_matches, i, line_num;
4320 struct symtabs_and_lines selected;
d2e4a39e
AS
4321 struct cleanup *old_chain = make_cleanup (null_cleanup, NULL);
4322 char *name;
14f9c5c9
AS
4323
4324 int len;
d2e4a39e
AS
4325 char *lower_name;
4326 char *unquoted_name;
14f9c5c9
AS
4327
4328 if (file_table == NULL)
4329 block = get_selected_block (NULL);
4330 else
4331 block = BLOCKVECTOR_BLOCK (BLOCKVECTOR (file_table), STATIC_BLOCK);
4332
4333 if (canonical != NULL)
d2e4a39e 4334 *canonical = (char **) NULL;
14f9c5c9
AS
4335
4336 name = *spec;
d2e4a39e 4337 if (**spec == '*')
14f9c5c9
AS
4338 *spec += 1;
4339 else
4340 {
d2e4a39e
AS
4341 while (**spec != '\000' &&
4342 !strchr (ada_completer_word_break_characters, **spec))
14f9c5c9
AS
4343 *spec += 1;
4344 }
4345 len = *spec - name;
4346
4347 line_num = -1;
4348 if (file_table != NULL && (*spec)[0] == ':' && isdigit ((*spec)[1]))
4349 {
4350 line_num = strtol (*spec + 1, spec, 10);
d2e4a39e 4351 while (**spec == ' ' || **spec == '\t')
14f9c5c9
AS
4352 *spec += 1;
4353 }
4354
d2e4a39e 4355 if (name[0] == '*')
14f9c5c9
AS
4356 {
4357 if (line_num == -1)
4358 error ("Wild-card function with no line number or file name.");
4359
4360 return all_sals_for_line (file_table->filename, line_num, canonical);
4361 }
4362
4363 if (name[0] == '\'')
4364 {
4365 name += 1;
4366 len -= 2;
4367 }
4368
4369 if (name[0] == '<')
4370 {
d2e4a39e
AS
4371 unquoted_name = (char *) alloca (len - 1);
4372 memcpy (unquoted_name, name + 1, len - 2);
4373 unquoted_name[len - 2] = '\000';
14f9c5c9
AS
4374 lower_name = NULL;
4375 }
4376 else
4377 {
d2e4a39e 4378 unquoted_name = (char *) alloca (len + 1);
14f9c5c9
AS
4379 memcpy (unquoted_name, name, len);
4380 unquoted_name[len] = '\000';
d2e4a39e 4381 lower_name = (char *) alloca (len + 1);
14f9c5c9
AS
4382 for (i = 0; i < len; i += 1)
4383 lower_name[i] = tolower (name[i]);
4384 lower_name[len] = '\000';
4385 }
4386
4387 n_matches = 0;
d2e4a39e
AS
4388 if (lower_name != NULL)
4389 n_matches = ada_lookup_symbol_list (ada_mangle (lower_name), block,
176620f1 4390 VAR_DOMAIN, &symbols, &blocks);
14f9c5c9 4391 if (n_matches == 0)
d2e4a39e 4392 n_matches = ada_lookup_symbol_list (unquoted_name, block,
176620f1 4393 VAR_DOMAIN, &symbols, &blocks);
14f9c5c9
AS
4394 if (n_matches == 0 && line_num >= 0)
4395 error ("No line number information found for %s.", unquoted_name);
4396 else if (n_matches == 0)
4397 {
4398#ifdef HPPA_COMPILER_BUG
4399 /* FIXME: See comment in symtab.c::decode_line_1 */
4400#undef volatile
4401 volatile struct symtab_and_line val;
d2e4a39e 4402#define volatile /*nothing */
14f9c5c9
AS
4403#else
4404 struct symtab_and_line val;
4405#endif
d2e4a39e 4406 struct minimal_symbol *msymbol;
14f9c5c9 4407
fe39c653 4408 init_sal (&val);
14f9c5c9
AS
4409
4410 msymbol = NULL;
d2e4a39e 4411 if (lower_name != NULL)
14f9c5c9
AS
4412 msymbol = ada_lookup_minimal_symbol (ada_mangle (lower_name));
4413 if (msymbol == NULL)
4414 msymbol = ada_lookup_minimal_symbol (unquoted_name);
4415 if (msymbol != NULL)
4416 {
d2e4a39e 4417 val.pc = SYMBOL_VALUE_ADDRESS (msymbol);
14f9c5c9
AS
4418 val.section = SYMBOL_BFD_SECTION (msymbol);
4419 if (funfirstline)
4420 {
4421 val.pc += FUNCTION_START_OFFSET;
4422 SKIP_PROLOGUE (val.pc);
4423 }
4424 selected.sals = (struct symtab_and_line *)
4425 xmalloc (sizeof (struct symtab_and_line));
4426 selected.sals[0] = val;
4427 selected.nelts = 1;
4428 return selected;
d2e4a39e
AS
4429 }
4430
14f9c5c9
AS
4431 if (!have_full_symbols () &&
4432 !have_partial_symbols () && !have_minimal_symbols ())
4433 error (no_symtab_msg);
4434
4435 error ("Function \"%s\" not defined.", unquoted_name);
d2e4a39e 4436 return selected; /* for lint */
14f9c5c9
AS
4437 }
4438
4439 if (line_num >= 0)
4440 {
d2e4a39e
AS
4441 return
4442 find_sal_from_funcs_and_line (file_table->filename, line_num,
14f9c5c9
AS
4443 symbols, n_matches);
4444 }
4445 else
4446 {
d2e4a39e
AS
4447 selected.nelts =
4448 user_select_syms (symbols, blocks, n_matches, n_matches);
14f9c5c9
AS
4449 }
4450
d2e4a39e 4451 selected.sals = (struct symtab_and_line *)
14f9c5c9
AS
4452 xmalloc (sizeof (struct symtab_and_line) * selected.nelts);
4453 memset (selected.sals, 0, selected.nelts * sizeof (selected.sals[i]));
aacb1f0a 4454 make_cleanup (xfree, selected.sals);
14f9c5c9
AS
4455
4456 i = 0;
4457 while (i < selected.nelts)
4458 {
d2e4a39e 4459 if (SYMBOL_CLASS (symbols[i]) == LOC_BLOCK)
14f9c5c9 4460 selected.sals[i] = find_function_start_sal (symbols[i], funfirstline);
d2e4a39e 4461 else if (SYMBOL_LINE (symbols[i]) != 0)
14f9c5c9
AS
4462 {
4463 selected.sals[i].symtab = symtab_for_sym (symbols[i]);
4464 selected.sals[i].line = SYMBOL_LINE (symbols[i]);
4465 }
4466 else if (line_num >= 0)
4467 {
4468 /* Ignore this choice */
d2e4a39e
AS
4469 symbols[i] = symbols[selected.nelts - 1];
4470 blocks[i] = blocks[selected.nelts - 1];
14f9c5c9
AS
4471 selected.nelts -= 1;
4472 continue;
4473 }
d2e4a39e 4474 else
14f9c5c9
AS
4475 error ("Line number not known for symbol \"%s\"", unquoted_name);
4476 i += 1;
4477 }
4478
4479 if (canonical != NULL && (line_num >= 0 || n_matches > 1))
4480 {
d2e4a39e 4481 *canonical = (char **) xmalloc (sizeof (char *) * selected.nelts);
14f9c5c9 4482 for (i = 0; i < selected.nelts; i += 1)
d2e4a39e
AS
4483 (*canonical)[i] =
4484 extended_canonical_line_spec (selected.sals[i],
de5ad195 4485 SYMBOL_PRINT_NAME (symbols[i]));
14f9c5c9 4486 }
d2e4a39e 4487
14f9c5c9
AS
4488 discard_cleanups (old_chain);
4489 return selected;
d2e4a39e
AS
4490}
4491
14f9c5c9
AS
4492/* The (single) sal corresponding to line LINE_NUM in a symbol table
4493 with file name FILENAME that occurs in one of the functions listed
d2e4a39e 4494 in SYMBOLS[0 .. NSYMS-1]. */
14f9c5c9 4495static struct symtabs_and_lines
d2e4a39e
AS
4496find_sal_from_funcs_and_line (const char *filename, int line_num,
4497 struct symbol **symbols, int nsyms)
14f9c5c9
AS
4498{
4499 struct symtabs_and_lines sals;
4500 int best_index, best;
d2e4a39e
AS
4501 struct linetable *best_linetable;
4502 struct objfile *objfile;
4503 struct symtab *s;
4504 struct symtab *best_symtab;
14f9c5c9
AS
4505
4506 read_all_symtabs (filename);
4507
d2e4a39e
AS
4508 best_index = 0;
4509 best_linetable = NULL;
4510 best_symtab = NULL;
14f9c5c9
AS
4511 best = 0;
4512 ALL_SYMTABS (objfile, s)
d2e4a39e
AS
4513 {
4514 struct linetable *l;
4515 int ind, exact;
14f9c5c9 4516
d2e4a39e 4517 QUIT;
14f9c5c9 4518
d2e4a39e
AS
4519 if (!STREQ (filename, s->filename))
4520 continue;
4521 l = LINETABLE (s);
4522 ind = find_line_in_linetable (l, line_num, symbols, nsyms, &exact);
4523 if (ind >= 0)
4524 {
4525 if (exact)
4526 {
4527 best_index = ind;
4528 best_linetable = l;
4529 best_symtab = s;
4530 goto done;
4531 }
4532 if (best == 0 || l->item[ind].line < best)
4533 {
4534 best = l->item[ind].line;
4535 best_index = ind;
4536 best_linetable = l;
4537 best_symtab = s;
4538 }
4539 }
4540 }
14f9c5c9
AS
4541
4542 if (best == 0)
4543 error ("Line number not found in designated function.");
4544
d2e4a39e
AS
4545done:
4546
14f9c5c9 4547 sals.nelts = 1;
d2e4a39e 4548 sals.sals = (struct symtab_and_line *) xmalloc (sizeof (sals.sals[0]));
14f9c5c9 4549
fe39c653 4550 init_sal (&sals.sals[0]);
d2e4a39e 4551
14f9c5c9
AS
4552 sals.sals[0].line = best_linetable->item[best_index].line;
4553 sals.sals[0].pc = best_linetable->item[best_index].pc;
4554 sals.sals[0].symtab = best_symtab;
4555
4556 return sals;
4557}
4558
4559/* Return the index in LINETABLE of the best match for LINE_NUM whose
4560 pc falls within one of the functions denoted by SYMBOLS[0..NSYMS-1].
4561 Set *EXACTP to the 1 if the match is exact, and 0 otherwise. */
4562static int
d2e4a39e
AS
4563find_line_in_linetable (struct linetable *linetable, int line_num,
4564 struct symbol **symbols, int nsyms, int *exactp)
14f9c5c9
AS
4565{
4566 int i, len, best_index, best;
4567
4568 if (line_num <= 0 || linetable == NULL)
4569 return -1;
4570
4571 len = linetable->nitems;
4572 for (i = 0, best_index = -1, best = 0; i < len; i += 1)
4573 {
4574 int k;
d2e4a39e 4575 struct linetable_entry *item = &(linetable->item[i]);
14f9c5c9
AS
4576
4577 for (k = 0; k < nsyms; k += 1)
4578 {
4579 if (symbols[k] != NULL && SYMBOL_CLASS (symbols[k]) == LOC_BLOCK
4580 && item->pc >= BLOCK_START (SYMBOL_BLOCK_VALUE (symbols[k]))
4581 && item->pc < BLOCK_END (SYMBOL_BLOCK_VALUE (symbols[k])))
4582 goto candidate;
4583 }
4584 continue;
4585
4586 candidate:
4587
4588 if (item->line == line_num)
4589 {
4590 *exactp = 1;
4591 return i;
4592 }
4593
4594 if (item->line > line_num && (best == 0 || item->line < best))
4595 {
4596 best = item->line;
4597 best_index = i;
4598 }
4599 }
4600
4601 *exactp = 0;
4602 return best_index;
4603}
4604
4605/* Find the smallest k >= LINE_NUM such that k is a line number in
4606 LINETABLE, and k falls strictly within a named function that begins at
4607 or before LINE_NUM. Return -1 if there is no such k. */
4608static int
d2e4a39e 4609nearest_line_number_in_linetable (struct linetable *linetable, int line_num)
14f9c5c9
AS
4610{
4611 int i, len, best;
4612
4613 if (line_num <= 0 || linetable == NULL || linetable->nitems == 0)
4614 return -1;
4615 len = linetable->nitems;
4616
d2e4a39e
AS
4617 i = 0;
4618 best = INT_MAX;
14f9c5c9
AS
4619 while (i < len)
4620 {
4621 int k;
d2e4a39e 4622 struct linetable_entry *item = &(linetable->item[i]);
14f9c5c9
AS
4623
4624 if (item->line >= line_num && item->line < best)
4625 {
d2e4a39e 4626 char *func_name;
14f9c5c9
AS
4627 CORE_ADDR start, end;
4628
4629 func_name = NULL;
4630 find_pc_partial_function (item->pc, &func_name, &start, &end);
4631
4632 if (func_name != NULL && item->pc < end)
4633 {
4634 if (item->line == line_num)
4635 return line_num;
d2e4a39e 4636 else
14f9c5c9 4637 {
d2e4a39e 4638 struct symbol *sym =
176620f1 4639 standard_lookup (func_name, VAR_DOMAIN);
14f9c5c9
AS
4640 if (is_plausible_func_for_line (sym, line_num))
4641 best = item->line;
4642 else
4643 {
4644 do
4645 i += 1;
4646 while (i < len && linetable->item[i].pc < end);
4647 continue;
4648 }
4649 }
4650 }
4651 }
4652
4653 i += 1;
4654 }
4655
4656 return (best == INT_MAX) ? -1 : best;
4657}
4658
4659
4660/* Return the next higher index, k, into LINETABLE such that k > IND,
4661 entry k in LINETABLE has a line number equal to LINE_NUM, k
4662 corresponds to a PC that is in a function different from that
4663 corresponding to IND, and falls strictly within a named function
4664 that begins at a line at or preceding STARTING_LINE.
4665 Return -1 if there is no such k.
4666 IND == -1 corresponds to no function. */
4667
4668static int
d2e4a39e 4669find_next_line_in_linetable (struct linetable *linetable, int line_num,
ebf56fd3 4670 int starting_line, int ind)
14f9c5c9
AS
4671{
4672 int i, len;
4673
4674 if (line_num <= 0 || linetable == NULL || ind >= linetable->nitems)
4675 return -1;
4676 len = linetable->nitems;
4677
d2e4a39e 4678 if (ind >= 0)
14f9c5c9
AS
4679 {
4680 CORE_ADDR start, end;
4681
4682 if (find_pc_partial_function (linetable->item[ind].pc,
d2e4a39e 4683 (char **) NULL, &start, &end))
14f9c5c9
AS
4684 {
4685 while (ind < len && linetable->item[ind].pc < end)
4686 ind += 1;
4687 }
4688 else
4689 ind += 1;
4690 }
4691 else
4692 ind = 0;
4693
4694 i = ind;
4695 while (i < len)
4696 {
4697 int k;
d2e4a39e 4698 struct linetable_entry *item = &(linetable->item[i]);
14f9c5c9
AS
4699
4700 if (item->line >= line_num)
4701 {
d2e4a39e 4702 char *func_name;
14f9c5c9
AS
4703 CORE_ADDR start, end;
4704
4705 func_name = NULL;
4706 find_pc_partial_function (item->pc, &func_name, &start, &end);
4707
4708 if (func_name != NULL && item->pc < end)
4709 {
4710 if (item->line == line_num)
4711 {
d2e4a39e 4712 struct symbol *sym =
176620f1 4713 standard_lookup (func_name, VAR_DOMAIN);
14f9c5c9
AS
4714 if (is_plausible_func_for_line (sym, starting_line))
4715 return i;
4716 else
4717 {
d2e4a39e 4718 while ((i + 1) < len && linetable->item[i + 1].pc < end)
14f9c5c9
AS
4719 i += 1;
4720 }
4721 }
4722 }
4723 }
4724 i += 1;
4725 }
4726
4727 return -1;
4728}
4729
4730/* True iff function symbol SYM starts somewhere at or before line #
4731 LINE_NUM. */
4732static int
d2e4a39e 4733is_plausible_func_for_line (struct symbol *sym, int line_num)
14f9c5c9
AS
4734{
4735 struct symtab_and_line start_sal;
4736
4737 if (sym == NULL)
4738 return 0;
4739
4740 start_sal = find_function_start_sal (sym, 0);
4741
4742 return (start_sal.line != 0 && line_num >= start_sal.line);
4743}
4744
4745static void
d2e4a39e 4746debug_print_lines (struct linetable *lt)
14f9c5c9
AS
4747{
4748 int i;
4749
d2e4a39e 4750 if (lt == NULL)
14f9c5c9
AS
4751 return;
4752
4753 fprintf (stderr, "\t");
4754 for (i = 0; i < lt->nitems; i += 1)
4755 fprintf (stderr, "(%d->%p) ", lt->item[i].line, (void *) lt->item[i].pc);
4756 fprintf (stderr, "\n");
4757}
4758
4759static void
d2e4a39e 4760debug_print_block (struct block *b)
14f9c5c9
AS
4761{
4762 int i;
261397f8
DJ
4763 struct symbol *i;
4764
d2e4a39e
AS
4765 fprintf (stderr, "Block: %p; [0x%lx, 0x%lx]",
4766 b, BLOCK_START (b), BLOCK_END (b));
4767 if (BLOCK_FUNCTION (b) != NULL)
22abf04a 4768 fprintf (stderr, " Function: %s", DEPRECATED_SYMBOL_NAME (BLOCK_FUNCTION (b)));
14f9c5c9 4769 fprintf (stderr, "\n");
d2e4a39e 4770 fprintf (stderr, "\t Superblock: %p\n", BLOCK_SUPERBLOCK (b));
14f9c5c9 4771 fprintf (stderr, "\t Symbols:");
261397f8 4772 ALL_BLOCK_SYMBOLS (b, i, sym)
d2e4a39e
AS
4773 {
4774 if (i > 0 && i % 4 == 0)
4775 fprintf (stderr, "\n\t\t ");
22abf04a 4776 fprintf (stderr, " %s", DEPRECATED_SYMBOL_NAME (sym));
d2e4a39e 4777 }
14f9c5c9
AS
4778 fprintf (stderr, "\n");
4779}
4780
4781static void
d2e4a39e 4782debug_print_blocks (struct blockvector *bv)
14f9c5c9
AS
4783{
4784 int i;
4785
4786 if (bv == NULL)
4787 return;
d2e4a39e
AS
4788 for (i = 0; i < BLOCKVECTOR_NBLOCKS (bv); i += 1)
4789 {
4790 fprintf (stderr, "%6d. ", i);
4791 debug_print_block (BLOCKVECTOR_BLOCK (bv, i));
4792 }
14f9c5c9
AS
4793}
4794
4795static void
d2e4a39e 4796debug_print_symtab (struct symtab *s)
14f9c5c9
AS
4797{
4798 fprintf (stderr, "Symtab %p\n File: %s; Dir: %s\n", s,
4799 s->filename, s->dirname);
4800 fprintf (stderr, " Blockvector: %p, Primary: %d\n",
d2e4a39e
AS
4801 BLOCKVECTOR (s), s->primary);
4802 debug_print_blocks (BLOCKVECTOR (s));
14f9c5c9 4803 fprintf (stderr, " Line table: %p\n", LINETABLE (s));
d2e4a39e 4804 debug_print_lines (LINETABLE (s));
14f9c5c9
AS
4805}
4806
4807/* Read in all symbol tables corresponding to partial symbol tables
4808 with file name FILENAME. */
4809static void
d2e4a39e 4810read_all_symtabs (const char *filename)
14f9c5c9 4811{
d2e4a39e
AS
4812 struct partial_symtab *ps;
4813 struct objfile *objfile;
14f9c5c9
AS
4814
4815 ALL_PSYMTABS (objfile, ps)
d2e4a39e
AS
4816 {
4817 QUIT;
14f9c5c9 4818
d2e4a39e
AS
4819 if (STREQ (filename, ps->filename))
4820 PSYMTAB_TO_SYMTAB (ps);
4821 }
14f9c5c9
AS
4822}
4823
4824/* All sals corresponding to line LINE_NUM in a symbol table from file
4825 FILENAME, as filtered by the user. If CANONICAL is not null, set
4826 it to a corresponding array of canonical line specs. */
4827static struct symtabs_and_lines
d2e4a39e 4828all_sals_for_line (const char *filename, int line_num, char ***canonical)
14f9c5c9
AS
4829{
4830 struct symtabs_and_lines result;
d2e4a39e
AS
4831 struct objfile *objfile;
4832 struct symtab *s;
4833 struct cleanup *old_chain = make_cleanup (null_cleanup, NULL);
14f9c5c9
AS
4834 size_t len;
4835
4836 read_all_symtabs (filename);
4837
d2e4a39e
AS
4838 result.sals =
4839 (struct symtab_and_line *) xmalloc (4 * sizeof (result.sals[0]));
14f9c5c9
AS
4840 result.nelts = 0;
4841 len = 4;
4842 make_cleanup (free_current_contents, &result.sals);
4843
d2e4a39e
AS
4844 ALL_SYMTABS (objfile, s)
4845 {
4846 int ind, target_line_num;
14f9c5c9 4847
d2e4a39e 4848 QUIT;
14f9c5c9 4849
d2e4a39e
AS
4850 if (!STREQ (s->filename, filename))
4851 continue;
14f9c5c9 4852
d2e4a39e
AS
4853 target_line_num =
4854 nearest_line_number_in_linetable (LINETABLE (s), line_num);
4855 if (target_line_num == -1)
4856 continue;
14f9c5c9 4857
d2e4a39e
AS
4858 ind = -1;
4859 while (1)
4860 {
4861 ind =
4862 find_next_line_in_linetable (LINETABLE (s),
4863 target_line_num, line_num, ind);
14f9c5c9 4864
d2e4a39e
AS
4865 if (ind < 0)
4866 break;
4867
4868 GROW_VECT (result.sals, len, result.nelts + 1);
fe39c653 4869 init_sal (&result.sals[result.nelts]);
d2e4a39e
AS
4870 result.sals[result.nelts].line = LINETABLE (s)->item[ind].line;
4871 result.sals[result.nelts].pc = LINETABLE (s)->item[ind].pc;
4872 result.sals[result.nelts].symtab = s;
4873 result.nelts += 1;
4874 }
4875 }
14f9c5c9
AS
4876
4877 if (canonical != NULL || result.nelts > 1)
4878 {
4879 int k;
d2e4a39e 4880 char **func_names = (char **) alloca (result.nelts * sizeof (char *));
14f9c5c9
AS
4881 int first_choice = (result.nelts > 1) ? 2 : 1;
4882 int n;
d2e4a39e
AS
4883 int *choices = (int *) alloca (result.nelts * sizeof (int));
4884
4885 for (k = 0; k < result.nelts; k += 1)
14f9c5c9 4886 {
d2e4a39e
AS
4887 find_pc_partial_function (result.sals[k].pc, &func_names[k],
4888 (CORE_ADDR *) NULL, (CORE_ADDR *) NULL);
14f9c5c9
AS
4889 if (func_names[k] == NULL)
4890 error ("Could not find function for one or more breakpoints.");
4891 }
d2e4a39e
AS
4892
4893 if (result.nelts > 1)
14f9c5c9 4894 {
d2e4a39e
AS
4895 printf_unfiltered ("[0] cancel\n");
4896 if (result.nelts > 1)
4897 printf_unfiltered ("[1] all\n");
14f9c5c9 4898 for (k = 0; k < result.nelts; k += 1)
d2e4a39e 4899 printf_unfiltered ("[%d] %s\n", k + first_choice,
14f9c5c9 4900 ada_demangle (func_names[k]));
d2e4a39e 4901
14f9c5c9
AS
4902 n = get_selections (choices, result.nelts, result.nelts,
4903 result.nelts > 1, "instance-choice");
d2e4a39e
AS
4904
4905 for (k = 0; k < n; k += 1)
14f9c5c9
AS
4906 {
4907 result.sals[k] = result.sals[choices[k]];
4908 func_names[k] = func_names[choices[k]];
4909 }
4910 result.nelts = n;
4911 }
4912
d2e4a39e 4913 if (canonical != NULL)
14f9c5c9 4914 {
d2e4a39e 4915 *canonical = (char **) xmalloc (result.nelts * sizeof (char **));
aacb1f0a 4916 make_cleanup (xfree, *canonical);
d2e4a39e 4917 for (k = 0; k < result.nelts; k += 1)
14f9c5c9 4918 {
d2e4a39e 4919 (*canonical)[k] =
14f9c5c9
AS
4920 extended_canonical_line_spec (result.sals[k], func_names[k]);
4921 if ((*canonical)[k] == NULL)
4922 error ("Could not locate one or more breakpoints.");
aacb1f0a 4923 make_cleanup (xfree, (*canonical)[k]);
14f9c5c9
AS
4924 }
4925 }
4926 }
4927
4928 discard_cleanups (old_chain);
4929 return result;
4930}
4931
4932
4933/* A canonical line specification of the form FILE:NAME:LINENUM for
4934 symbol table and line data SAL. NULL if insufficient
4935 information. The caller is responsible for releasing any space
4936 allocated. */
4937
d2e4a39e
AS
4938static char *
4939extended_canonical_line_spec (struct symtab_and_line sal, const char *name)
14f9c5c9 4940{
d2e4a39e 4941 char *r;
14f9c5c9 4942
d2e4a39e 4943 if (sal.symtab == NULL || sal.symtab->filename == NULL || sal.line <= 0)
14f9c5c9
AS
4944 return NULL;
4945
d2e4a39e
AS
4946 r = (char *) xmalloc (strlen (name) + strlen (sal.symtab->filename)
4947 + sizeof (sal.line) * 3 + 3);
14f9c5c9
AS
4948 sprintf (r, "%s:'%s':%d", sal.symtab->filename, name, sal.line);
4949 return r;
4950}
4951
4952#if 0
4953int begin_bnum = -1;
4954#endif
4955int begin_annotate_level = 0;
4956
d2e4a39e
AS
4957static void
4958begin_cleanup (void *dummy)
14f9c5c9
AS
4959{
4960 begin_annotate_level = 0;
4961}
4962
4963static void
ebf56fd3 4964begin_command (char *args, int from_tty)
14f9c5c9
AS
4965{
4966 struct minimal_symbol *msym;
4967 CORE_ADDR main_program_name_addr;
4968 char main_program_name[1024];
d2e4a39e 4969 struct cleanup *old_chain = make_cleanup (begin_cleanup, NULL);
14f9c5c9
AS
4970 begin_annotate_level = 2;
4971
4972 /* Check that there is a program to debug */
4973 if (!have_full_symbols () && !have_partial_symbols ())
4974 error ("No symbol table is loaded. Use the \"file\" command.");
d2e4a39e 4975
14f9c5c9
AS
4976 /* Check that we are debugging an Ada program */
4977 /* if (ada_update_initial_language (language_unknown, NULL) != language_ada)
d2e4a39e
AS
4978 error ("Cannot find the Ada initialization procedure. Is this an Ada main program?");
4979 */
14f9c5c9
AS
4980 /* FIXME: language_ada should be defined in defs.h */
4981
4982 /* Get the address of the name of the main procedure */
4983 msym = lookup_minimal_symbol (ADA_MAIN_PROGRAM_SYMBOL_NAME, NULL, NULL);
4984
4985 if (msym != NULL)
d2e4a39e
AS
4986 {
4987 main_program_name_addr = SYMBOL_VALUE_ADDRESS (msym);
4988 if (main_program_name_addr == 0)
4989 error ("Invalid address for Ada main program name.");
14f9c5c9 4990
d2e4a39e
AS
4991 /* Read the name of the main procedure */
4992 extract_string (main_program_name_addr, main_program_name);
14f9c5c9 4993
d2e4a39e
AS
4994 /* Put a temporary breakpoint in the Ada main program and run */
4995 do_command ("tbreak ", main_program_name, 0);
4996 do_command ("run ", args, 0);
4997 }
14f9c5c9 4998 else
d2e4a39e
AS
4999 {
5000 /* If we could not find the symbol containing the name of the
5001 main program, that means that the compiler that was used to build
5002 was not recent enough. In that case, we fallback to the previous
5003 mechanism, which is a little bit less reliable, but has proved to work
5004 in most cases. The only cases where it will fail is when the user
5005 has set some breakpoints which will be hit before the end of the
5006 begin command processing (eg in the initialization code).
5007
5008 The begining of the main Ada subprogram is located by breaking
5009 on the adainit procedure. Since we know that the binder generates
5010 the call to this procedure exactly 2 calls before the call to the
5011 Ada main subprogram, it is then easy to put a breakpoint on this
5012 Ada main subprogram once we hit adainit.
5013 */
5014 do_command ("tbreak adainit", 0);
5015 do_command ("run ", args, 0);
5016 do_command ("up", 0);
5017 do_command ("tbreak +2", 0);
5018 do_command ("continue", 0);
5019 do_command ("step", 0);
5020 }
14f9c5c9
AS
5021
5022 do_cleanups (old_chain);
5023}
5024
5025int
ebf56fd3 5026is_ada_runtime_file (char *filename)
14f9c5c9
AS
5027{
5028 return (STREQN (filename, "s-", 2) ||
5029 STREQN (filename, "a-", 2) ||
d2e4a39e 5030 STREQN (filename, "g-", 2) || STREQN (filename, "i-", 2));
14f9c5c9
AS
5031}
5032
5033/* find the first frame that contains debugging information and that is not
5034 part of the Ada run-time, starting from fi and moving upward. */
5035
5036int
ebf56fd3 5037find_printable_frame (struct frame_info *fi, int level)
14f9c5c9
AS
5038{
5039 struct symtab_and_line sal;
d2e4a39e 5040
14f9c5c9
AS
5041 for (; fi != NULL; level += 1, fi = get_prev_frame (fi))
5042 {
1058bca7 5043 find_frame_sal (fi, &sal);
14f9c5c9
AS
5044 if (sal.symtab && !is_ada_runtime_file (sal.symtab->filename))
5045 {
5046#if defined(__alpha__) && defined(__osf__) && !defined(VXWORKS_TARGET)
d2e4a39e
AS
5047 /* libpthread.so contains some debugging information that prevents us
5048 from finding the right frame */
14f9c5c9
AS
5049
5050 if (sal.symtab->objfile &&
5051 STREQ (sal.symtab->objfile->name, "/usr/shlib/libpthread.so"))
d2e4a39e 5052 continue;
14f9c5c9 5053#endif
6e7f8b9c 5054 deprecated_selected_frame = fi;
14f9c5c9
AS
5055 break;
5056 }
5057 }
5058
5059 return level;
5060}
5061
5062void
ebf56fd3 5063ada_report_exception_break (struct breakpoint *b)
14f9c5c9 5064{
14f9c5c9
AS
5065 /* FIXME: break_on_exception should be defined in breakpoint.h */
5066 /* if (b->break_on_exception == 1)
d2e4a39e
AS
5067 {
5068 /* Assume that cond has 16 elements, the 15th
5069 being the exception *//*
5070 if (b->cond && b->cond->nelts == 16)
5071 {
5072 ui_out_text (uiout, "on ");
5073 ui_out_field_string (uiout, "exception",
5074 SYMBOL_NAME (b->cond->elts[14].symbol));
5075 }
5076 else
5077 ui_out_text (uiout, "on all exceptions");
5078 }
5079 else if (b->break_on_exception == 2)
5080 ui_out_text (uiout, "on unhandled exception");
5081 else if (b->break_on_exception == 3)
5082 ui_out_text (uiout, "on assert failure");
5083 #else
5084 if (b->break_on_exception == 1)
5085 { */
5086 /* Assume that cond has 16 elements, the 15th
5087 being the exception *//*
5088 if (b->cond && b->cond->nelts == 16)
5089 {
5090 fputs_filtered ("on ", gdb_stdout);
5091 fputs_filtered (SYMBOL_NAME
5092 (b->cond->elts[14].symbol), gdb_stdout);
5093 }
5094 else
5095 fputs_filtered ("on all exceptions", gdb_stdout);
5096 }
5097 else if (b->break_on_exception == 2)
5098 fputs_filtered ("on unhandled exception", gdb_stdout);
5099 else if (b->break_on_exception == 3)
5100 fputs_filtered ("on assert failure", gdb_stdout);
5101 */
14f9c5c9
AS
5102}
5103
5104int
d2e4a39e 5105ada_is_exception_sym (struct symbol *sym)
14f9c5c9
AS
5106{
5107 char *type_name = type_name_no_tag (SYMBOL_TYPE (sym));
d2e4a39e 5108
14f9c5c9
AS
5109 return (SYMBOL_CLASS (sym) != LOC_TYPEDEF
5110 && SYMBOL_CLASS (sym) != LOC_BLOCK
5111 && SYMBOL_CLASS (sym) != LOC_CONST
d2e4a39e 5112 && type_name != NULL && STREQ (type_name, "exception"));
14f9c5c9
AS
5113}
5114
5115int
d2e4a39e 5116ada_maybe_exception_partial_symbol (struct partial_symbol *sym)
14f9c5c9
AS
5117{
5118 return (SYMBOL_CLASS (sym) != LOC_TYPEDEF
5119 && SYMBOL_CLASS (sym) != LOC_BLOCK
5120 && SYMBOL_CLASS (sym) != LOC_CONST);
5121}
5122
5123/* If ARG points to an Ada exception or assert breakpoint, rewrite
5124 into equivalent form. Return resulting argument string. Set
5125 *BREAK_ON_EXCEPTIONP to 1 for ordinary break on exception, 2 for
5126 break on unhandled, 3 for assert, 0 otherwise. */
d2e4a39e
AS
5127char *
5128ada_breakpoint_rewrite (char *arg, int *break_on_exceptionp)
14f9c5c9
AS
5129{
5130 if (arg == NULL)
5131 return arg;
5132 *break_on_exceptionp = 0;
d2e4a39e 5133 /* FIXME: language_ada should be defined in defs.h */
14f9c5c9 5134 /* if (current_language->la_language == language_ada
d2e4a39e
AS
5135 && STREQN (arg, "exception", 9) &&
5136 (arg[9] == ' ' || arg[9] == '\t' || arg[9] == '\0'))
5137 {
5138 char *tok, *end_tok;
5139 int toklen;
5140
5141 *break_on_exceptionp = 1;
5142
5143 tok = arg+9;
5144 while (*tok == ' ' || *tok == '\t')
5145 tok += 1;
5146
5147 end_tok = tok;
5148
5149 while (*end_tok != ' ' && *end_tok != '\t' && *end_tok != '\000')
5150 end_tok += 1;
5151
5152 toklen = end_tok - tok;
5153
5154 arg = (char*) xmalloc (sizeof ("__gnat_raise_nodefer_with_msg if "
5155 "long_integer(e) = long_integer(&)")
5156 + toklen + 1);
5157 make_cleanup (xfree, arg);
5158 if (toklen == 0)
5159 strcpy (arg, "__gnat_raise_nodefer_with_msg");
5160 else if (STREQN (tok, "unhandled", toklen))
5161 {
5162 *break_on_exceptionp = 2;
5163 strcpy (arg, "__gnat_unhandled_exception");
5164 }
5165 else
5166 {
5167 sprintf (arg, "__gnat_raise_nodefer_with_msg if "
5168 "long_integer(e) = long_integer(&%.*s)",
5169 toklen, tok);
5170 }
5171 }
5172 else if (current_language->la_language == language_ada
5173 && STREQN (arg, "assert", 6) &&
5174 (arg[6] == ' ' || arg[6] == '\t' || arg[6] == '\0'))
5175 {
5176 char *tok = arg + 6;
5177
5178 *break_on_exceptionp = 3;
5179
5180 arg = (char*)
5181 xmalloc (sizeof ("system__assertions__raise_assert_failure")
5182 + strlen (tok) + 1);
5183 make_cleanup (xfree, arg);
5184 sprintf (arg, "system__assertions__raise_assert_failure%s", tok);
5185 }
5186 */
14f9c5c9
AS
5187 return arg;
5188}
14f9c5c9 5189\f
d2e4a39e 5190
14f9c5c9
AS
5191 /* Field Access */
5192
5193/* True if field number FIELD_NUM in struct or union type TYPE is supposed
5194 to be invisible to users. */
5195
5196int
ebf56fd3 5197ada_is_ignored_field (struct type *type, int field_num)
14f9c5c9
AS
5198{
5199 if (field_num < 0 || field_num > TYPE_NFIELDS (type))
5200 return 1;
d2e4a39e 5201 else
14f9c5c9 5202 {
d2e4a39e 5203 const char *name = TYPE_FIELD_NAME (type, field_num);
14f9c5c9 5204 return (name == NULL
d2e4a39e 5205 || (name[0] == '_' && !STREQN (name, "_parent", 7)));
14f9c5c9
AS
5206 }
5207}
5208
5209/* True iff structure type TYPE has a tag field. */
5210
5211int
ebf56fd3 5212ada_is_tagged_type (struct type *type)
14f9c5c9
AS
5213{
5214 if (type == NULL || TYPE_CODE (type) != TYPE_CODE_STRUCT)
5215 return 0;
5216
5217 return (ada_lookup_struct_elt_type (type, "_tag", 1, NULL) != NULL);
5218}
5219
5220/* The type of the tag on VAL. */
5221
d2e4a39e
AS
5222struct type *
5223ada_tag_type (struct value *val)
14f9c5c9
AS
5224{
5225 return ada_lookup_struct_elt_type (VALUE_TYPE (val), "_tag", 0, NULL);
5226}
5227
5228/* The value of the tag on VAL. */
5229
d2e4a39e
AS
5230struct value *
5231ada_value_tag (struct value *val)
14f9c5c9
AS
5232{
5233 return ada_value_struct_elt (val, "_tag", "record");
5234}
5235
5236/* The parent type of TYPE, or NULL if none. */
5237
d2e4a39e 5238struct type *
ebf56fd3 5239ada_parent_type (struct type *type)
14f9c5c9
AS
5240{
5241 int i;
5242
5243 CHECK_TYPEDEF (type);
5244
5245 if (type == NULL || TYPE_CODE (type) != TYPE_CODE_STRUCT)
5246 return NULL;
5247
5248 for (i = 0; i < TYPE_NFIELDS (type); i += 1)
5249 if (ada_is_parent_field (type, i))
5250 return check_typedef (TYPE_FIELD_TYPE (type, i));
5251
5252 return NULL;
5253}
5254
5255/* True iff field number FIELD_NUM of structure type TYPE contains the
5256 parent-type (inherited) fields of a derived type. Assumes TYPE is
5257 a structure type with at least FIELD_NUM+1 fields. */
5258
5259int
ebf56fd3 5260ada_is_parent_field (struct type *type, int field_num)
14f9c5c9 5261{
d2e4a39e
AS
5262 const char *name = TYPE_FIELD_NAME (check_typedef (type), field_num);
5263 return (name != NULL &&
14f9c5c9
AS
5264 (STREQN (name, "PARENT", 6) || STREQN (name, "_parent", 7)));
5265}
5266
5267/* True iff field number FIELD_NUM of structure type TYPE is a
5268 transparent wrapper field (which should be silently traversed when doing
5269 field selection and flattened when printing). Assumes TYPE is a
5270 structure type with at least FIELD_NUM+1 fields. Such fields are always
5271 structures. */
5272
5273int
ebf56fd3 5274ada_is_wrapper_field (struct type *type, int field_num)
14f9c5c9 5275{
d2e4a39e
AS
5276 const char *name = TYPE_FIELD_NAME (type, field_num);
5277 return (name != NULL
5278 && (STREQN (name, "PARENT", 6) || STREQ (name, "REP")
14f9c5c9
AS
5279 || STREQN (name, "_parent", 7)
5280 || name[0] == 'S' || name[0] == 'R' || name[0] == 'O'));
5281}
5282
5283/* True iff field number FIELD_NUM of structure or union type TYPE
5284 is a variant wrapper. Assumes TYPE is a structure type with at least
d2e4a39e 5285 FIELD_NUM+1 fields. */
14f9c5c9
AS
5286
5287int
ebf56fd3 5288ada_is_variant_part (struct type *type, int field_num)
14f9c5c9 5289{
d2e4a39e 5290 struct type *field_type = TYPE_FIELD_TYPE (type, field_num);
14f9c5c9
AS
5291 return (TYPE_CODE (field_type) == TYPE_CODE_UNION
5292 || (is_dynamic_field (type, field_num)
d2e4a39e
AS
5293 && TYPE_CODE (TYPE_TARGET_TYPE (field_type)) ==
5294 TYPE_CODE_UNION));
14f9c5c9
AS
5295}
5296
5297/* Assuming that VAR_TYPE is a variant wrapper (type of the variant part)
5298 whose discriminants are contained in the record type OUTER_TYPE,
5299 returns the type of the controlling discriminant for the variant. */
5300
d2e4a39e 5301struct type *
ebf56fd3 5302ada_variant_discrim_type (struct type *var_type, struct type *outer_type)
14f9c5c9 5303{
d2e4a39e
AS
5304 char *name = ada_variant_discrim_name (var_type);
5305 struct type *type = ada_lookup_struct_elt_type (outer_type, name, 1, NULL);
14f9c5c9
AS
5306 if (type == NULL)
5307 return builtin_type_int;
5308 else
5309 return type;
5310}
5311
5312/* Assuming that TYPE is the type of a variant wrapper, and FIELD_NUM is a
5313 valid field number within it, returns 1 iff field FIELD_NUM of TYPE
5314 represents a 'when others' clause; otherwise 0. */
5315
5316int
ebf56fd3 5317ada_is_others_clause (struct type *type, int field_num)
14f9c5c9 5318{
d2e4a39e 5319 const char *name = TYPE_FIELD_NAME (type, field_num);
14f9c5c9
AS
5320 return (name != NULL && name[0] == 'O');
5321}
5322
5323/* Assuming that TYPE0 is the type of the variant part of a record,
5324 returns the name of the discriminant controlling the variant. The
5325 value is valid until the next call to ada_variant_discrim_name. */
5326
d2e4a39e 5327char *
ebf56fd3 5328ada_variant_discrim_name (struct type *type0)
14f9c5c9 5329{
d2e4a39e 5330 static char *result = NULL;
14f9c5c9 5331 static size_t result_len = 0;
d2e4a39e
AS
5332 struct type *type;
5333 const char *name;
5334 const char *discrim_end;
5335 const char *discrim_start;
14f9c5c9
AS
5336
5337 if (TYPE_CODE (type0) == TYPE_CODE_PTR)
5338 type = TYPE_TARGET_TYPE (type0);
5339 else
5340 type = type0;
5341
5342 name = ada_type_name (type);
5343
5344 if (name == NULL || name[0] == '\000')
5345 return "";
5346
5347 for (discrim_end = name + strlen (name) - 6; discrim_end != name;
5348 discrim_end -= 1)
5349 {
5350 if (STREQN (discrim_end, "___XVN", 6))
5351 break;
5352 }
5353 if (discrim_end == name)
5354 return "";
5355
d2e4a39e 5356 for (discrim_start = discrim_end; discrim_start != name + 3;
14f9c5c9
AS
5357 discrim_start -= 1)
5358 {
d2e4a39e 5359 if (discrim_start == name + 1)
14f9c5c9 5360 return "";
d2e4a39e 5361 if ((discrim_start > name + 3 && STREQN (discrim_start - 3, "___", 3))
14f9c5c9
AS
5362 || discrim_start[-1] == '.')
5363 break;
5364 }
5365
5366 GROW_VECT (result, result_len, discrim_end - discrim_start + 1);
5367 strncpy (result, discrim_start, discrim_end - discrim_start);
d2e4a39e 5368 result[discrim_end - discrim_start] = '\0';
14f9c5c9
AS
5369 return result;
5370}
5371
5372/* Scan STR for a subtype-encoded number, beginning at position K. Put the
5373 position of the character just past the number scanned in *NEW_K,
5374 if NEW_K!=NULL. Put the scanned number in *R, if R!=NULL. Return 1
5375 if there was a valid number at the given position, and 0 otherwise. A
5376 "subtype-encoded" number consists of the absolute value in decimal,
5377 followed by the letter 'm' to indicate a negative number. Assumes 0m
5378 does not occur. */
5379
5380int
d2e4a39e 5381ada_scan_number (const char str[], int k, LONGEST * R, int *new_k)
14f9c5c9
AS
5382{
5383 ULONGEST RU;
5384
d2e4a39e 5385 if (!isdigit (str[k]))
14f9c5c9
AS
5386 return 0;
5387
5388 /* Do it the hard way so as not to make any assumption about
5389 the relationship of unsigned long (%lu scan format code) and
5390 LONGEST. */
5391 RU = 0;
5392 while (isdigit (str[k]))
5393 {
d2e4a39e 5394 RU = RU * 10 + (str[k] - '0');
14f9c5c9
AS
5395 k += 1;
5396 }
5397
d2e4a39e 5398 if (str[k] == 'm')
14f9c5c9
AS
5399 {
5400 if (R != NULL)
d2e4a39e 5401 *R = (-(LONGEST) (RU - 1)) - 1;
14f9c5c9
AS
5402 k += 1;
5403 }
5404 else if (R != NULL)
5405 *R = (LONGEST) RU;
5406
5407 /* NOTE on the above: Technically, C does not say what the results of
5408 - (LONGEST) RU or (LONGEST) -RU are for RU == largest positive
5409 number representable as a LONGEST (although either would probably work
5410 in most implementations). When RU>0, the locution in the then branch
5411 above is always equivalent to the negative of RU. */
5412
5413 if (new_k != NULL)
5414 *new_k = k;
5415 return 1;
5416}
5417
5418/* Assuming that TYPE is a variant part wrapper type (a VARIANTS field),
5419 and FIELD_NUM is a valid field number within it, returns 1 iff VAL is
5420 in the range encoded by field FIELD_NUM of TYPE; otherwise 0. */
5421
d2e4a39e 5422int
ebf56fd3 5423ada_in_variant (LONGEST val, struct type *type, int field_num)
14f9c5c9 5424{
d2e4a39e 5425 const char *name = TYPE_FIELD_NAME (type, field_num);
14f9c5c9
AS
5426 int p;
5427
5428 p = 0;
5429 while (1)
5430 {
d2e4a39e 5431 switch (name[p])
14f9c5c9
AS
5432 {
5433 case '\0':
5434 return 0;
5435 case 'S':
5436 {
5437 LONGEST W;
d2e4a39e 5438 if (!ada_scan_number (name, p + 1, &W, &p))
14f9c5c9
AS
5439 return 0;
5440 if (val == W)
5441 return 1;
5442 break;
5443 }
5444 case 'R':
5445 {
5446 LONGEST L, U;
d2e4a39e
AS
5447 if (!ada_scan_number (name, p + 1, &L, &p)
5448 || name[p] != 'T' || !ada_scan_number (name, p + 1, &U, &p))
14f9c5c9
AS
5449 return 0;
5450 if (val >= L && val <= U)
5451 return 1;
5452 break;
5453 }
5454 case 'O':
5455 return 1;
5456 default:
5457 return 0;
5458 }
5459 }
5460}
5461
5462/* Given a value ARG1 (offset by OFFSET bytes)
5463 of a struct or union type ARG_TYPE,
5464 extract and return the value of one of its (non-static) fields.
5465 FIELDNO says which field. Differs from value_primitive_field only
5466 in that it can handle packed values of arbitrary type. */
5467
d2e4a39e
AS
5468struct value *
5469ada_value_primitive_field (struct value *arg1, int offset, int fieldno,
ebf56fd3 5470 struct type *arg_type)
14f9c5c9 5471{
d2e4a39e 5472 struct value *v;
14f9c5c9
AS
5473 struct type *type;
5474
5475 CHECK_TYPEDEF (arg_type);
5476 type = TYPE_FIELD_TYPE (arg_type, fieldno);
5477
5478 /* Handle packed fields */
5479
5480 if (TYPE_FIELD_BITSIZE (arg_type, fieldno) != 0)
5481 {
5482 int bit_pos = TYPE_FIELD_BITPOS (arg_type, fieldno);
5483 int bit_size = TYPE_FIELD_BITSIZE (arg_type, fieldno);
d2e4a39e 5484
14f9c5c9 5485 return ada_value_primitive_packed_val (arg1, VALUE_CONTENTS (arg1),
d2e4a39e
AS
5486 offset + bit_pos / 8,
5487 bit_pos % 8, bit_size, type);
14f9c5c9
AS
5488 }
5489 else
5490 return value_primitive_field (arg1, offset, fieldno, arg_type);
5491}
5492
5493
5494/* Look for a field NAME in ARG. Adjust the address of ARG by OFFSET bytes,
5495 and search in it assuming it has (class) type TYPE.
5496 If found, return value, else return NULL.
5497
5498 Searches recursively through wrapper fields (e.g., '_parent'). */
5499
d2e4a39e
AS
5500struct value *
5501ada_search_struct_field (char *name, struct value *arg, int offset,
ebf56fd3 5502 struct type *type)
14f9c5c9
AS
5503{
5504 int i;
5505 CHECK_TYPEDEF (type);
5506
d2e4a39e 5507 for (i = TYPE_NFIELDS (type) - 1; i >= 0; i -= 1)
14f9c5c9
AS
5508 {
5509 char *t_field_name = TYPE_FIELD_NAME (type, i);
5510
5511 if (t_field_name == NULL)
5512 continue;
5513
5514 else if (field_name_match (t_field_name, name))
d2e4a39e 5515 return ada_value_primitive_field (arg, offset, i, type);
14f9c5c9
AS
5516
5517 else if (ada_is_wrapper_field (type, i))
5518 {
d2e4a39e
AS
5519 struct value *v = ada_search_struct_field (name, arg,
5520 offset +
5521 TYPE_FIELD_BITPOS (type,
5522 i) /
5523 8,
5524 TYPE_FIELD_TYPE (type,
5525 i));
14f9c5c9
AS
5526 if (v != NULL)
5527 return v;
5528 }
5529
5530 else if (ada_is_variant_part (type, i))
5531 {
5532 int j;
5533 struct type *field_type = check_typedef (TYPE_FIELD_TYPE (type, i));
5534 int var_offset = offset + TYPE_FIELD_BITPOS (type, i) / 8;
5535
5536 for (j = TYPE_NFIELDS (field_type) - 1; j >= 0; j -= 1)
5537 {
d2e4a39e
AS
5538 struct value *v = ada_search_struct_field (name, arg,
5539 var_offset
5540 +
5541 TYPE_FIELD_BITPOS
5542 (field_type, j) / 8,
5543 TYPE_FIELD_TYPE
5544 (field_type, j));
14f9c5c9
AS
5545 if (v != NULL)
5546 return v;
5547 }
5548 }
5549 }
5550 return NULL;
5551}
d2e4a39e 5552
14f9c5c9
AS
5553/* Given ARG, a value of type (pointer to a)* structure/union,
5554 extract the component named NAME from the ultimate target structure/union
5555 and return it as a value with its appropriate type.
5556
5557 The routine searches for NAME among all members of the structure itself
5558 and (recursively) among all members of any wrapper members
5559 (e.g., '_parent').
5560
5561 ERR is a name (for use in error messages) that identifies the class
5562 of entity that ARG is supposed to be. */
5563
d2e4a39e 5564struct value *
ebf56fd3 5565ada_value_struct_elt (struct value *arg, char *name, char *err)
14f9c5c9
AS
5566{
5567 struct type *t;
d2e4a39e 5568 struct value *v;
14f9c5c9
AS
5569
5570 arg = ada_coerce_ref (arg);
5571 t = check_typedef (VALUE_TYPE (arg));
5572
5573 /* Follow pointers until we get to a non-pointer. */
5574
5575 while (TYPE_CODE (t) == TYPE_CODE_PTR || TYPE_CODE (t) == TYPE_CODE_REF)
5576 {
5577 arg = ada_value_ind (arg);
5578 t = check_typedef (VALUE_TYPE (arg));
5579 }
5580
d2e4a39e
AS
5581 if (TYPE_CODE (t) != TYPE_CODE_STRUCT && TYPE_CODE (t) != TYPE_CODE_UNION)
5582 error ("Attempt to extract a component of a value that is not a %s.",
5583 err);
14f9c5c9
AS
5584
5585 v = ada_search_struct_field (name, arg, 0, t);
5586 if (v == NULL)
5587 error ("There is no member named %s.", name);
5588
5589 return v;
5590}
5591
5592/* Given a type TYPE, look up the type of the component of type named NAME.
5593 If DISPP is non-null, add its byte displacement from the beginning of a
5594 structure (pointed to by a value) of type TYPE to *DISPP (does not
5595 work for packed fields).
5596
5597 Matches any field whose name has NAME as a prefix, possibly
5598 followed by "___".
5599
5600 TYPE can be either a struct or union, or a pointer or reference to
5601 a struct or union. If it is a pointer or reference, its target
5602 type is automatically used.
5603
5604 Looks recursively into variant clauses and parent types.
5605
5606 If NOERR is nonzero, return NULL if NAME is not suitably defined. */
5607
5608struct type *
d2e4a39e
AS
5609ada_lookup_struct_elt_type (struct type *type, char *name, int noerr,
5610 int *dispp)
14f9c5c9
AS
5611{
5612 int i;
5613
5614 if (name == NULL)
5615 goto BadName;
5616
5617 while (1)
5618 {
5619 CHECK_TYPEDEF (type);
5620 if (TYPE_CODE (type) != TYPE_CODE_PTR
5621 && TYPE_CODE (type) != TYPE_CODE_REF)
5622 break;
5623 type = TYPE_TARGET_TYPE (type);
5624 }
5625
5626 if (TYPE_CODE (type) != TYPE_CODE_STRUCT &&
5627 TYPE_CODE (type) != TYPE_CODE_UNION)
5628 {
5629 target_terminal_ours ();
5630 gdb_flush (gdb_stdout);
5631 fprintf_unfiltered (gdb_stderr, "Type ");
5632 type_print (type, "", gdb_stderr, -1);
5633 error (" is not a structure or union type");
5634 }
5635
5636 type = to_static_fixed_type (type);
5637
5638 for (i = 0; i < TYPE_NFIELDS (type); i += 1)
5639 {
5640 char *t_field_name = TYPE_FIELD_NAME (type, i);
5641 struct type *t;
5642 int disp;
d2e4a39e 5643
14f9c5c9
AS
5644 if (t_field_name == NULL)
5645 continue;
5646
5647 else if (field_name_match (t_field_name, name))
5648 {
d2e4a39e 5649 if (dispp != NULL)
14f9c5c9
AS
5650 *dispp += TYPE_FIELD_BITPOS (type, i) / 8;
5651 return check_typedef (TYPE_FIELD_TYPE (type, i));
5652 }
5653
5654 else if (ada_is_wrapper_field (type, i))
5655 {
5656 disp = 0;
d2e4a39e 5657 t = ada_lookup_struct_elt_type (TYPE_FIELD_TYPE (type, i), name,
14f9c5c9
AS
5658 1, &disp);
5659 if (t != NULL)
5660 {
5661 if (dispp != NULL)
5662 *dispp += disp + TYPE_FIELD_BITPOS (type, i) / 8;
5663 return t;
5664 }
5665 }
5666
5667 else if (ada_is_variant_part (type, i))
5668 {
5669 int j;
5670 struct type *field_type = check_typedef (TYPE_FIELD_TYPE (type, i));
5671
5672 for (j = TYPE_NFIELDS (field_type) - 1; j >= 0; j -= 1)
5673 {
5674 disp = 0;
5675 t = ada_lookup_struct_elt_type (TYPE_FIELD_TYPE (field_type, j),
5676 name, 1, &disp);
5677 if (t != NULL)
5678 {
d2e4a39e 5679 if (dispp != NULL)
14f9c5c9
AS
5680 *dispp += disp + TYPE_FIELD_BITPOS (type, i) / 8;
5681 return t;
5682 }
5683 }
5684 }
5685
5686 }
5687
5688BadName:
d2e4a39e 5689 if (!noerr)
14f9c5c9
AS
5690 {
5691 target_terminal_ours ();
5692 gdb_flush (gdb_stdout);
5693 fprintf_unfiltered (gdb_stderr, "Type ");
5694 type_print (type, "", gdb_stderr, -1);
5695 fprintf_unfiltered (gdb_stderr, " has no component named ");
5696 error ("%s", name == NULL ? "<null>" : name);
5697 }
5698
5699 return NULL;
5700}
5701
5702/* Assuming that VAR_TYPE is the type of a variant part of a record (a union),
5703 within a value of type OUTER_TYPE that is stored in GDB at
5704 OUTER_VALADDR, determine which variant clause (field number in VAR_TYPE,
5705 numbering from 0) is applicable. Returns -1 if none are. */
5706
d2e4a39e 5707int
ebf56fd3 5708ada_which_variant_applies (struct type *var_type, struct type *outer_type,
d2e4a39e 5709 char *outer_valaddr)
14f9c5c9
AS
5710{
5711 int others_clause;
5712 int i;
5713 int disp;
d2e4a39e
AS
5714 struct type *discrim_type;
5715 char *discrim_name = ada_variant_discrim_name (var_type);
14f9c5c9
AS
5716 LONGEST discrim_val;
5717
5718 disp = 0;
d2e4a39e 5719 discrim_type =
14f9c5c9
AS
5720 ada_lookup_struct_elt_type (outer_type, discrim_name, 1, &disp);
5721 if (discrim_type == NULL)
5722 return -1;
5723 discrim_val = unpack_long (discrim_type, outer_valaddr + disp);
5724
5725 others_clause = -1;
5726 for (i = 0; i < TYPE_NFIELDS (var_type); i += 1)
5727 {
5728 if (ada_is_others_clause (var_type, i))
5729 others_clause = i;
5730 else if (ada_in_variant (discrim_val, var_type, i))
5731 return i;
5732 }
5733
5734 return others_clause;
5735}
d2e4a39e 5736\f
14f9c5c9
AS
5737
5738
14f9c5c9
AS
5739 /* Dynamic-Sized Records */
5740
5741/* Strategy: The type ostensibly attached to a value with dynamic size
5742 (i.e., a size that is not statically recorded in the debugging
5743 data) does not accurately reflect the size or layout of the value.
5744 Our strategy is to convert these values to values with accurate,
5745 conventional types that are constructed on the fly. */
5746
5747/* There is a subtle and tricky problem here. In general, we cannot
5748 determine the size of dynamic records without its data. However,
5749 the 'struct value' data structure, which GDB uses to represent
5750 quantities in the inferior process (the target), requires the size
5751 of the type at the time of its allocation in order to reserve space
5752 for GDB's internal copy of the data. That's why the
5753 'to_fixed_xxx_type' routines take (target) addresses as parameters,
5754 rather than struct value*s.
5755
5756 However, GDB's internal history variables ($1, $2, etc.) are
5757 struct value*s containing internal copies of the data that are not, in
5758 general, the same as the data at their corresponding addresses in
5759 the target. Fortunately, the types we give to these values are all
5760 conventional, fixed-size types (as per the strategy described
5761 above), so that we don't usually have to perform the
5762 'to_fixed_xxx_type' conversions to look at their values.
5763 Unfortunately, there is one exception: if one of the internal
5764 history variables is an array whose elements are unconstrained
5765 records, then we will need to create distinct fixed types for each
5766 element selected. */
5767
5768/* The upshot of all of this is that many routines take a (type, host
5769 address, target address) triple as arguments to represent a value.
5770 The host address, if non-null, is supposed to contain an internal
5771 copy of the relevant data; otherwise, the program is to consult the
5772 target at the target address. */
5773
5774/* Assuming that VAL0 represents a pointer value, the result of
5775 dereferencing it. Differs from value_ind in its treatment of
5776 dynamic-sized types. */
5777
d2e4a39e
AS
5778struct value *
5779ada_value_ind (struct value *val0)
14f9c5c9 5780{
d2e4a39e 5781 struct value *val = unwrap_value (value_ind (val0));
14f9c5c9 5782 return ada_to_fixed_value (VALUE_TYPE (val), 0,
d2e4a39e 5783 VALUE_ADDRESS (val) + VALUE_OFFSET (val), val);
14f9c5c9
AS
5784}
5785
5786/* The value resulting from dereferencing any "reference to"
5787 * qualifiers on VAL0. */
d2e4a39e
AS
5788static struct value *
5789ada_coerce_ref (struct value *val0)
5790{
5791 if (TYPE_CODE (VALUE_TYPE (val0)) == TYPE_CODE_REF)
5792 {
5793 struct value *val = val0;
5794 COERCE_REF (val);
5795 val = unwrap_value (val);
5796 return ada_to_fixed_value (VALUE_TYPE (val), 0,
5797 VALUE_ADDRESS (val) + VALUE_OFFSET (val),
5798 val);
5799 }
5800 else
14f9c5c9
AS
5801 return val0;
5802}
5803
5804/* Return OFF rounded upward if necessary to a multiple of
5805 ALIGNMENT (a power of 2). */
5806
5807static unsigned int
ebf56fd3 5808align_value (unsigned int off, unsigned int alignment)
14f9c5c9
AS
5809{
5810 return (off + alignment - 1) & ~(alignment - 1);
5811}
5812
5813/* Return the additional bit offset required by field F of template
5814 type TYPE. */
5815
5816static unsigned int
ebf56fd3 5817field_offset (struct type *type, int f)
14f9c5c9
AS
5818{
5819 int n = TYPE_FIELD_BITPOS (type, f);
5820 /* Kludge (temporary?) to fix problem with dwarf output. */
5821 if (n < 0)
5822 return (unsigned int) n & 0xffff;
5823 else
5824 return n;
5825}
5826
5827
5828/* Return the bit alignment required for field #F of template type TYPE. */
5829
5830static unsigned int
ebf56fd3 5831field_alignment (struct type *type, int f)
14f9c5c9 5832{
d2e4a39e 5833 const char *name = TYPE_FIELD_NAME (type, f);
14f9c5c9
AS
5834 int len = (name == NULL) ? 0 : strlen (name);
5835 int align_offset;
5836
d2e4a39e 5837 if (len < 8 || !isdigit (name[len - 1]))
14f9c5c9
AS
5838 return TARGET_CHAR_BIT;
5839
d2e4a39e 5840 if (isdigit (name[len - 2]))
14f9c5c9
AS
5841 align_offset = len - 2;
5842 else
5843 align_offset = len - 1;
5844
d2e4a39e 5845 if (align_offset < 7 || !STREQN ("___XV", name + align_offset - 6, 5))
14f9c5c9
AS
5846 return TARGET_CHAR_BIT;
5847
d2e4a39e 5848 return atoi (name + align_offset) * TARGET_CHAR_BIT;
14f9c5c9
AS
5849}
5850
5851/* Find a type named NAME. Ignores ambiguity. */
d2e4a39e 5852struct type *
ebf56fd3 5853ada_find_any_type (const char *name)
14f9c5c9 5854{
d2e4a39e 5855 struct symbol *sym;
14f9c5c9 5856
176620f1 5857 sym = standard_lookup (name, VAR_DOMAIN);
14f9c5c9
AS
5858 if (sym != NULL && SYMBOL_CLASS (sym) == LOC_TYPEDEF)
5859 return SYMBOL_TYPE (sym);
5860
176620f1 5861 sym = standard_lookup (name, STRUCT_DOMAIN);
14f9c5c9
AS
5862 if (sym != NULL)
5863 return SYMBOL_TYPE (sym);
5864
5865 return NULL;
5866}
5867
5868/* Because of GNAT encoding conventions, several GDB symbols may match a
5869 given type name. If the type denoted by TYPE0 is to be preferred to
5870 that of TYPE1 for purposes of type printing, return non-zero;
5871 otherwise return 0. */
5872int
d2e4a39e 5873ada_prefer_type (struct type *type0, struct type *type1)
14f9c5c9
AS
5874{
5875 if (type1 == NULL)
5876 return 1;
5877 else if (type0 == NULL)
5878 return 0;
5879 else if (TYPE_CODE (type1) == TYPE_CODE_VOID)
5880 return 1;
5881 else if (TYPE_CODE (type0) == TYPE_CODE_VOID)
5882 return 0;
5883 else if (ada_is_packed_array_type (type0))
5884 return 1;
d2e4a39e
AS
5885 else if (ada_is_array_descriptor (type0)
5886 && !ada_is_array_descriptor (type1))
14f9c5c9 5887 return 1;
d2e4a39e 5888 else if (ada_renaming_type (type0) != NULL
14f9c5c9
AS
5889 && ada_renaming_type (type1) == NULL)
5890 return 1;
5891 return 0;
5892}
5893
5894/* The name of TYPE, which is either its TYPE_NAME, or, if that is
5895 null, its TYPE_TAG_NAME. Null if TYPE is null. */
d2e4a39e
AS
5896char *
5897ada_type_name (struct type *type)
14f9c5c9 5898{
d2e4a39e 5899 if (type == NULL)
14f9c5c9
AS
5900 return NULL;
5901 else if (TYPE_NAME (type) != NULL)
5902 return TYPE_NAME (type);
5903 else
5904 return TYPE_TAG_NAME (type);
5905}
5906
5907/* Find a parallel type to TYPE whose name is formed by appending
5908 SUFFIX to the name of TYPE. */
5909
d2e4a39e 5910struct type *
ebf56fd3 5911ada_find_parallel_type (struct type *type, const char *suffix)
14f9c5c9 5912{
d2e4a39e 5913 static char *name;
14f9c5c9 5914 static size_t name_len = 0;
d2e4a39e
AS
5915 struct symbol **syms;
5916 struct block **blocks;
14f9c5c9
AS
5917 int nsyms;
5918 int len;
d2e4a39e
AS
5919 char *typename = ada_type_name (type);
5920
14f9c5c9
AS
5921 if (typename == NULL)
5922 return NULL;
5923
5924 len = strlen (typename);
5925
d2e4a39e 5926 GROW_VECT (name, name_len, len + strlen (suffix) + 1);
14f9c5c9
AS
5927
5928 strcpy (name, typename);
5929 strcpy (name + len, suffix);
5930
5931 return ada_find_any_type (name);
5932}
5933
5934
5935/* If TYPE is a variable-size record type, return the corresponding template
5936 type describing its fields. Otherwise, return NULL. */
5937
d2e4a39e
AS
5938static struct type *
5939dynamic_template_type (struct type *type)
14f9c5c9
AS
5940{
5941 CHECK_TYPEDEF (type);
5942
5943 if (type == NULL || TYPE_CODE (type) != TYPE_CODE_STRUCT
d2e4a39e 5944 || ada_type_name (type) == NULL)
14f9c5c9 5945 return NULL;
d2e4a39e 5946 else
14f9c5c9
AS
5947 {
5948 int len = strlen (ada_type_name (type));
5949 if (len > 6 && STREQ (ada_type_name (type) + len - 6, "___XVE"))
5950 return type;
5951 else
5952 return ada_find_parallel_type (type, "___XVE");
5953 }
5954}
5955
5956/* Assuming that TEMPL_TYPE is a union or struct type, returns
5957 non-zero iff field FIELD_NUM of TEMPL_TYPE has dynamic size. */
5958
d2e4a39e
AS
5959static int
5960is_dynamic_field (struct type *templ_type, int field_num)
14f9c5c9
AS
5961{
5962 const char *name = TYPE_FIELD_NAME (templ_type, field_num);
d2e4a39e 5963 return name != NULL
14f9c5c9
AS
5964 && TYPE_CODE (TYPE_FIELD_TYPE (templ_type, field_num)) == TYPE_CODE_PTR
5965 && strstr (name, "___XVL") != NULL;
5966}
5967
5968/* Assuming that TYPE is a struct type, returns non-zero iff TYPE
5969 contains a variant part. */
5970
d2e4a39e
AS
5971static int
5972contains_variant_part (struct type *type)
14f9c5c9
AS
5973{
5974 int f;
5975
5976 if (type == NULL || TYPE_CODE (type) != TYPE_CODE_STRUCT
5977 || TYPE_NFIELDS (type) <= 0)
5978 return 0;
5979 return ada_is_variant_part (type, TYPE_NFIELDS (type) - 1);
5980}
5981
5982/* A record type with no fields, . */
d2e4a39e
AS
5983static struct type *
5984empty_record (struct objfile *objfile)
14f9c5c9 5985{
d2e4a39e 5986 struct type *type = alloc_type (objfile);
14f9c5c9
AS
5987 TYPE_CODE (type) = TYPE_CODE_STRUCT;
5988 TYPE_NFIELDS (type) = 0;
5989 TYPE_FIELDS (type) = NULL;
5990 TYPE_NAME (type) = "<empty>";
5991 TYPE_TAG_NAME (type) = NULL;
5992 TYPE_FLAGS (type) = 0;
5993 TYPE_LENGTH (type) = 0;
5994 return type;
5995}
5996
5997/* An ordinary record type (with fixed-length fields) that describes
5998 the value of type TYPE at VALADDR or ADDRESS (see comments at
5999 the beginning of this section) VAL according to GNAT conventions.
6000 DVAL0 should describe the (portion of a) record that contains any
6001 necessary discriminants. It should be NULL if VALUE_TYPE (VAL) is
6002 an outer-level type (i.e., as opposed to a branch of a variant.) A
6003 variant field (unless unchecked) is replaced by a particular branch
6004 of the variant. */
6005/* NOTE: Limitations: For now, we assume that dynamic fields and
6006 * variants occupy whole numbers of bytes. However, they need not be
6007 * byte-aligned. */
6008
d2e4a39e
AS
6009static struct type *
6010template_to_fixed_record_type (struct type *type, char *valaddr,
6011 CORE_ADDR address, struct value *dval0)
14f9c5c9 6012{
d2e4a39e
AS
6013 struct value *mark = value_mark ();
6014 struct value *dval;
6015 struct type *rtype;
14f9c5c9
AS
6016 int nfields, bit_len;
6017 long off;
6018 int f;
6019
6020 nfields = TYPE_NFIELDS (type);
6021 rtype = alloc_type (TYPE_OBJFILE (type));
6022 TYPE_CODE (rtype) = TYPE_CODE_STRUCT;
6023 INIT_CPLUS_SPECIFIC (rtype);
6024 TYPE_NFIELDS (rtype) = nfields;
d2e4a39e 6025 TYPE_FIELDS (rtype) = (struct field *)
14f9c5c9
AS
6026 TYPE_ALLOC (rtype, nfields * sizeof (struct field));
6027 memset (TYPE_FIELDS (rtype), 0, sizeof (struct field) * nfields);
6028 TYPE_NAME (rtype) = ada_type_name (type);
6029 TYPE_TAG_NAME (rtype) = NULL;
6030 /* FIXME: TYPE_FLAG_FIXED_INSTANCE should be defined in
d2e4a39e
AS
6031 gdbtypes.h */
6032 /* TYPE_FLAGS (rtype) |= TYPE_FLAG_FIXED_INSTANCE; */
14f9c5c9 6033
d2e4a39e
AS
6034 off = 0;
6035 bit_len = 0;
14f9c5c9
AS
6036 for (f = 0; f < nfields; f += 1)
6037 {
6038 int fld_bit_len, bit_incr;
d2e4a39e
AS
6039 off =
6040 align_value (off,
6041 field_alignment (type, f)) + TYPE_FIELD_BITPOS (type, f);
14f9c5c9
AS
6042 /* NOTE: used to use field_offset above, but that causes
6043 * problems with really negative bit positions. So, let's
6044 * rediscover why we needed field_offset and fix it properly. */
6045 TYPE_FIELD_BITPOS (rtype, f) = off;
d2e4a39e 6046 TYPE_FIELD_BITSIZE (rtype, f) = 0;
01ad7f36 6047 TYPE_FIELD_STATIC_KIND (rtype, f) = 0;
14f9c5c9 6048
d2e4a39e 6049 if (ada_is_variant_part (type, f))
14f9c5c9
AS
6050 {
6051 struct type *branch_type;
6052
6053 if (dval0 == NULL)
d2e4a39e 6054 dval = value_from_contents_and_address (rtype, valaddr, address);
14f9c5c9
AS
6055 else
6056 dval = dval0;
6057
d2e4a39e
AS
6058 branch_type =
6059 to_fixed_variant_branch_type
6060 (TYPE_FIELD_TYPE (type, f),
6061 cond_offset_host (valaddr, off / TARGET_CHAR_BIT),
6062 cond_offset_target (address, off / TARGET_CHAR_BIT), dval);
6063 if (branch_type == NULL)
14f9c5c9
AS
6064 TYPE_NFIELDS (rtype) -= 1;
6065 else
6066 {
6067 TYPE_FIELD_TYPE (rtype, f) = branch_type;
6068 TYPE_FIELD_NAME (rtype, f) = "S";
6069 }
6070 bit_incr = 0;
6071 fld_bit_len =
6072 TYPE_LENGTH (TYPE_FIELD_TYPE (rtype, f)) * TARGET_CHAR_BIT;
6073 }
6074 else if (is_dynamic_field (type, f))
6075 {
6076 if (dval0 == NULL)
d2e4a39e 6077 dval = value_from_contents_and_address (rtype, valaddr, address);
14f9c5c9
AS
6078 else
6079 dval = dval0;
6080
d2e4a39e
AS
6081 TYPE_FIELD_TYPE (rtype, f) =
6082 ada_to_fixed_type
6083 (ada_get_base_type
6084 (TYPE_TARGET_TYPE (TYPE_FIELD_TYPE (type, f))),
6085 cond_offset_host (valaddr, off / TARGET_CHAR_BIT),
6086 cond_offset_target (address, off / TARGET_CHAR_BIT), dval);
14f9c5c9
AS
6087 TYPE_FIELD_NAME (rtype, f) = TYPE_FIELD_NAME (type, f);
6088 bit_incr = fld_bit_len =
6089 TYPE_LENGTH (TYPE_FIELD_TYPE (rtype, f)) * TARGET_CHAR_BIT;
6090 }
6091 else
6092 {
6093 TYPE_FIELD_TYPE (rtype, f) = TYPE_FIELD_TYPE (type, f);
6094 TYPE_FIELD_NAME (rtype, f) = TYPE_FIELD_NAME (type, f);
6095 if (TYPE_FIELD_BITSIZE (type, f) > 0)
d2e4a39e 6096 bit_incr = fld_bit_len =
14f9c5c9
AS
6097 TYPE_FIELD_BITSIZE (rtype, f) = TYPE_FIELD_BITSIZE (type, f);
6098 else
6099 bit_incr = fld_bit_len =
6100 TYPE_LENGTH (TYPE_FIELD_TYPE (type, f)) * TARGET_CHAR_BIT;
6101 }
6102 if (off + fld_bit_len > bit_len)
6103 bit_len = off + fld_bit_len;
6104 off += bit_incr;
6105 TYPE_LENGTH (rtype) = bit_len / TARGET_CHAR_BIT;
6106 }
6107 TYPE_LENGTH (rtype) = align_value (TYPE_LENGTH (rtype), TYPE_LENGTH (type));
6108
6109 value_free_to_mark (mark);
d2e4a39e 6110 if (TYPE_LENGTH (rtype) > varsize_limit)
14f9c5c9
AS
6111 error ("record type with dynamic size is larger than varsize-limit");
6112 return rtype;
6113}
6114
6115/* As for template_to_fixed_record_type, but uses no run-time values.
6116 As a result, this type can only be approximate, but that's OK,
6117 since it is used only for type determinations. Works on both
6118 structs and unions.
6119 Representation note: to save space, we memoize the result of this
6120 function in the TYPE_TARGET_TYPE of the template type. */
6121
d2e4a39e
AS
6122static struct type *
6123template_to_static_fixed_type (struct type *templ_type)
14f9c5c9
AS
6124{
6125 struct type *type;
6126 int nfields;
6127 int f;
6128
6129 if (TYPE_TARGET_TYPE (templ_type) != NULL)
6130 return TYPE_TARGET_TYPE (templ_type);
6131
6132 nfields = TYPE_NFIELDS (templ_type);
d2e4a39e
AS
6133 TYPE_TARGET_TYPE (templ_type) = type =
6134 alloc_type (TYPE_OBJFILE (templ_type));
14f9c5c9
AS
6135 TYPE_CODE (type) = TYPE_CODE (templ_type);
6136 INIT_CPLUS_SPECIFIC (type);
6137 TYPE_NFIELDS (type) = nfields;
d2e4a39e 6138 TYPE_FIELDS (type) = (struct field *)
14f9c5c9
AS
6139 TYPE_ALLOC (type, nfields * sizeof (struct field));
6140 memset (TYPE_FIELDS (type), 0, sizeof (struct field) * nfields);
6141 TYPE_NAME (type) = ada_type_name (templ_type);
6142 TYPE_TAG_NAME (type) = NULL;
d2e4a39e 6143 /* FIXME: TYPE_FLAG_FIXED_INSTANCE should be defined in gdbtypes.h */
14f9c5c9
AS
6144 /* TYPE_FLAGS (type) |= TYPE_FLAG_FIXED_INSTANCE; */
6145 TYPE_LENGTH (type) = 0;
6146
6147 for (f = 0; f < nfields; f += 1)
6148 {
6149 TYPE_FIELD_BITPOS (type, f) = 0;
d2e4a39e 6150 TYPE_FIELD_BITSIZE (type, f) = 0;
01ad7f36 6151 TYPE_FIELD_STATIC_KIND (type, f) = 0;
14f9c5c9
AS
6152
6153 if (is_dynamic_field (templ_type, f))
6154 {
d2e4a39e
AS
6155 TYPE_FIELD_TYPE (type, f) =
6156 to_static_fixed_type (TYPE_TARGET_TYPE
14f9c5c9
AS
6157 (TYPE_FIELD_TYPE (templ_type, f)));
6158 TYPE_FIELD_NAME (type, f) = TYPE_FIELD_NAME (templ_type, f);
6159 }
6160 else
6161 {
d2e4a39e 6162 TYPE_FIELD_TYPE (type, f) =
14f9c5c9
AS
6163 check_typedef (TYPE_FIELD_TYPE (templ_type, f));
6164 TYPE_FIELD_NAME (type, f) = TYPE_FIELD_NAME (templ_type, f);
6165 }
6166 }
6167
6168 return type;
6169}
6170
6171/* A revision of TYPE0 -- a non-dynamic-sized record with a variant
6172 part -- in which the variant part is replaced with the appropriate
6173 branch. */
d2e4a39e
AS
6174static struct type *
6175to_record_with_fixed_variant_part (struct type *type, char *valaddr,
6176 CORE_ADDR address, struct value *dval)
14f9c5c9 6177{
d2e4a39e
AS
6178 struct value *mark = value_mark ();
6179 struct type *rtype;
14f9c5c9
AS
6180 struct type *branch_type;
6181 int nfields = TYPE_NFIELDS (type);
6182
6183 if (dval == NULL)
6184 return type;
6185
6186 rtype = alloc_type (TYPE_OBJFILE (type));
6187 TYPE_CODE (rtype) = TYPE_CODE_STRUCT;
6188 INIT_CPLUS_SPECIFIC (type);
6189 TYPE_NFIELDS (rtype) = TYPE_NFIELDS (type);
d2e4a39e
AS
6190 TYPE_FIELDS (rtype) =
6191 (struct field *) TYPE_ALLOC (rtype, nfields * sizeof (struct field));
6192 memcpy (TYPE_FIELDS (rtype), TYPE_FIELDS (type),
14f9c5c9
AS
6193 sizeof (struct field) * nfields);
6194 TYPE_NAME (rtype) = ada_type_name (type);
6195 TYPE_TAG_NAME (rtype) = NULL;
d2e4a39e 6196 /* FIXME: TYPE_FLAG_FIXED_INSTANCE should be defined in gdbtypes.h */
14f9c5c9
AS
6197 /* TYPE_FLAGS (rtype) |= TYPE_FLAG_FIXED_INSTANCE; */
6198 TYPE_LENGTH (rtype) = TYPE_LENGTH (type);
6199
d2e4a39e
AS
6200 branch_type =
6201 to_fixed_variant_branch_type
6202 (TYPE_FIELD_TYPE (type, nfields - 1),
6203 cond_offset_host (valaddr,
6204 TYPE_FIELD_BITPOS (type,
6205 nfields - 1) / TARGET_CHAR_BIT),
6206 cond_offset_target (address,
6207 TYPE_FIELD_BITPOS (type,
6208 nfields - 1) / TARGET_CHAR_BIT),
6209 dval);
6210 if (branch_type == NULL)
14f9c5c9
AS
6211 {
6212 TYPE_NFIELDS (rtype) -= 1;
d2e4a39e
AS
6213 TYPE_LENGTH (rtype) -=
6214 TYPE_LENGTH (TYPE_FIELD_TYPE (type, nfields - 1));
14f9c5c9
AS
6215 }
6216 else
6217 {
d2e4a39e
AS
6218 TYPE_FIELD_TYPE (rtype, nfields - 1) = branch_type;
6219 TYPE_FIELD_NAME (rtype, nfields - 1) = "S";
6220 TYPE_FIELD_BITSIZE (rtype, nfields - 1) = 0;
01ad7f36 6221 TYPE_FIELD_STATIC_KIND (rtype, nfields - 1) = 0;
14f9c5c9 6222 TYPE_LENGTH (rtype) += TYPE_LENGTH (branch_type);
d2e4a39e 6223 -TYPE_LENGTH (TYPE_FIELD_TYPE (type, nfields - 1));
14f9c5c9 6224 }
d2e4a39e 6225
14f9c5c9
AS
6226 return rtype;
6227}
6228
6229/* An ordinary record type (with fixed-length fields) that describes
6230 the value at (TYPE0, VALADDR, ADDRESS) [see explanation at
6231 beginning of this section]. Any necessary discriminants' values
6232 should be in DVAL, a record value; it should be NULL if the object
6233 at ADDR itself contains any necessary discriminant values. A
6234 variant field (unless unchecked) is replaced by a particular branch
d2e4a39e 6235 of the variant. */
14f9c5c9 6236
d2e4a39e
AS
6237static struct type *
6238to_fixed_record_type (struct type *type0, char *valaddr, CORE_ADDR address,
6239 struct value *dval)
14f9c5c9 6240{
d2e4a39e 6241 struct type *templ_type;
14f9c5c9
AS
6242
6243 /* FIXME: TYPE_FLAG_FIXED_INSTANCE should be defined in gdbtypes.h */
6244 /* if (TYPE_FLAGS (type0) & TYPE_FLAG_FIXED_INSTANCE)
d2e4a39e
AS
6245 return type0;
6246 */
6247 templ_type = dynamic_template_type (type0);
14f9c5c9
AS
6248
6249 if (templ_type != NULL)
6250 return template_to_fixed_record_type (templ_type, valaddr, address, dval);
6251 else if (contains_variant_part (type0))
6252 return to_record_with_fixed_variant_part (type0, valaddr, address, dval);
6253 else
6254 {
d2e4a39e 6255 /* FIXME: TYPE_FLAG_FIXED_INSTANCE should be defined in gdbtypes.h */
14f9c5c9
AS
6256 /* TYPE_FLAGS (type0) |= TYPE_FLAG_FIXED_INSTANCE; */
6257 return type0;
6258 }
6259
6260}
6261
6262/* An ordinary record type (with fixed-length fields) that describes
6263 the value at (VAR_TYPE0, VALADDR, ADDRESS), where VAR_TYPE0 is a
6264 union type. Any necessary discriminants' values should be in DVAL,
6265 a record value. That is, this routine selects the appropriate
6266 branch of the union at ADDR according to the discriminant value
6267 indicated in the union's type name. */
6268
d2e4a39e
AS
6269static struct type *
6270to_fixed_variant_branch_type (struct type *var_type0, char *valaddr,
6271 CORE_ADDR address, struct value *dval)
14f9c5c9
AS
6272{
6273 int which;
d2e4a39e
AS
6274 struct type *templ_type;
6275 struct type *var_type;
14f9c5c9
AS
6276
6277 if (TYPE_CODE (var_type0) == TYPE_CODE_PTR)
6278 var_type = TYPE_TARGET_TYPE (var_type0);
d2e4a39e 6279 else
14f9c5c9
AS
6280 var_type = var_type0;
6281
6282 templ_type = ada_find_parallel_type (var_type, "___XVU");
6283
6284 if (templ_type != NULL)
6285 var_type = templ_type;
6286
d2e4a39e
AS
6287 which =
6288 ada_which_variant_applies (var_type,
14f9c5c9
AS
6289 VALUE_TYPE (dval), VALUE_CONTENTS (dval));
6290
6291 if (which < 0)
6292 return empty_record (TYPE_OBJFILE (var_type));
6293 else if (is_dynamic_field (var_type, which))
d2e4a39e
AS
6294 return
6295 to_fixed_record_type
6296 (TYPE_TARGET_TYPE (TYPE_FIELD_TYPE (var_type, which)),
6297 valaddr, address, dval);
14f9c5c9 6298 else if (contains_variant_part (TYPE_FIELD_TYPE (var_type, which)))
d2e4a39e
AS
6299 return
6300 to_fixed_record_type
6301 (TYPE_FIELD_TYPE (var_type, which), valaddr, address, dval);
14f9c5c9
AS
6302 else
6303 return TYPE_FIELD_TYPE (var_type, which);
6304}
6305
6306/* Assuming that TYPE0 is an array type describing the type of a value
6307 at ADDR, and that DVAL describes a record containing any
6308 discriminants used in TYPE0, returns a type for the value that
6309 contains no dynamic components (that is, no components whose sizes
6310 are determined by run-time quantities). Unless IGNORE_TOO_BIG is
6311 true, gives an error message if the resulting type's size is over
6312 varsize_limit.
6313*/
6314
d2e4a39e
AS
6315static struct type *
6316to_fixed_array_type (struct type *type0, struct value *dval,
ebf56fd3 6317 int ignore_too_big)
14f9c5c9 6318{
d2e4a39e
AS
6319 struct type *index_type_desc;
6320 struct type *result;
14f9c5c9
AS
6321
6322 /* FIXME: TYPE_FLAG_FIXED_INSTANCE should be defined in gdbtypes.h */
d2e4a39e
AS
6323/* if (ada_is_packed_array_type (type0) /* revisit? *//*
6324 || (TYPE_FLAGS (type0) & TYPE_FLAG_FIXED_INSTANCE))
6325 return type0; */
14f9c5c9
AS
6326
6327 index_type_desc = ada_find_parallel_type (type0, "___XA");
6328 if (index_type_desc == NULL)
6329 {
6330 struct type *elt_type0 = check_typedef (TYPE_TARGET_TYPE (type0));
6331 /* NOTE: elt_type---the fixed version of elt_type0---should never
6332 * depend on the contents of the array in properly constructed
d2e4a39e
AS
6333 * debugging data. */
6334 struct type *elt_type = ada_to_fixed_type (elt_type0, 0, 0, dval);
14f9c5c9
AS
6335
6336 if (elt_type0 == elt_type)
6337 result = type0;
6338 else
d2e4a39e 6339 result = create_array_type (alloc_type (TYPE_OBJFILE (type0)),
14f9c5c9
AS
6340 elt_type, TYPE_INDEX_TYPE (type0));
6341 }
6342 else
6343 {
6344 int i;
6345 struct type *elt_type0;
6346
6347 elt_type0 = type0;
6348 for (i = TYPE_NFIELDS (index_type_desc); i > 0; i -= 1)
6349 elt_type0 = TYPE_TARGET_TYPE (elt_type0);
6350
6351 /* NOTE: result---the fixed version of elt_type0---should never
6352 * depend on the contents of the array in properly constructed
d2e4a39e
AS
6353 * debugging data. */
6354 result = ada_to_fixed_type (check_typedef (elt_type0), 0, 0, dval);
14f9c5c9
AS
6355 for (i = TYPE_NFIELDS (index_type_desc) - 1; i >= 0; i -= 1)
6356 {
d2e4a39e 6357 struct type *range_type =
14f9c5c9
AS
6358 to_fixed_range_type (TYPE_FIELD_NAME (index_type_desc, i),
6359 dval, TYPE_OBJFILE (type0));
6360 result = create_array_type (alloc_type (TYPE_OBJFILE (type0)),
6361 result, range_type);
6362 }
d2e4a39e 6363 if (!ignore_too_big && TYPE_LENGTH (result) > varsize_limit)
14f9c5c9
AS
6364 error ("array type with dynamic size is larger than varsize-limit");
6365 }
6366
6367/* FIXME: TYPE_FLAG_FIXED_INSTANCE should be defined in gdbtypes.h */
6368/* TYPE_FLAGS (result) |= TYPE_FLAG_FIXED_INSTANCE; */
6369 return result;
d2e4a39e 6370}
14f9c5c9
AS
6371
6372
6373/* A standard type (containing no dynamically sized components)
6374 corresponding to TYPE for the value (TYPE, VALADDR, ADDRESS)
6375 DVAL describes a record containing any discriminants used in TYPE0,
6376 and may be NULL if there are none. */
6377
d2e4a39e
AS
6378struct type *
6379ada_to_fixed_type (struct type *type, char *valaddr, CORE_ADDR address,
6380 struct value *dval)
14f9c5c9
AS
6381{
6382 CHECK_TYPEDEF (type);
d2e4a39e
AS
6383 switch (TYPE_CODE (type))
6384 {
6385 default:
14f9c5c9 6386 return type;
d2e4a39e
AS
6387 case TYPE_CODE_STRUCT:
6388 return to_fixed_record_type (type, valaddr, address, NULL);
6389 case TYPE_CODE_ARRAY:
6390 return to_fixed_array_type (type, dval, 0);
6391 case TYPE_CODE_UNION:
6392 if (dval == NULL)
6393 return type;
6394 else
6395 return to_fixed_variant_branch_type (type, valaddr, address, dval);
6396 }
14f9c5c9
AS
6397}
6398
6399/* A standard (static-sized) type corresponding as well as possible to
6400 TYPE0, but based on no runtime data. */
6401
d2e4a39e
AS
6402static struct type *
6403to_static_fixed_type (struct type *type0)
14f9c5c9 6404{
d2e4a39e 6405 struct type *type;
14f9c5c9
AS
6406
6407 if (type0 == NULL)
6408 return NULL;
6409
6410 /* FIXME: TYPE_FLAG_FIXED_INSTANCE should be defined in gdbtypes.h */
6411 /* if (TYPE_FLAGS (type0) & TYPE_FLAG_FIXED_INSTANCE)
d2e4a39e
AS
6412 return type0;
6413 */
14f9c5c9 6414 CHECK_TYPEDEF (type0);
d2e4a39e 6415
14f9c5c9
AS
6416 switch (TYPE_CODE (type0))
6417 {
6418 default:
6419 return type0;
6420 case TYPE_CODE_STRUCT:
6421 type = dynamic_template_type (type0);
d2e4a39e 6422 if (type != NULL)
14f9c5c9
AS
6423 return template_to_static_fixed_type (type);
6424 return type0;
6425 case TYPE_CODE_UNION:
6426 type = ada_find_parallel_type (type0, "___XVU");
6427 if (type != NULL)
6428 return template_to_static_fixed_type (type);
6429 return type0;
6430 }
6431}
6432
6433/* A static approximation of TYPE with all type wrappers removed. */
d2e4a39e
AS
6434static struct type *
6435static_unwrap_type (struct type *type)
14f9c5c9
AS
6436{
6437 if (ada_is_aligner_type (type))
6438 {
d2e4a39e 6439 struct type *type1 = TYPE_FIELD_TYPE (check_typedef (type), 0);
14f9c5c9
AS
6440 if (ada_type_name (type1) == NULL)
6441 TYPE_NAME (type1) = ada_type_name (type);
6442
6443 return static_unwrap_type (type1);
6444 }
d2e4a39e 6445 else
14f9c5c9 6446 {
d2e4a39e
AS
6447 struct type *raw_real_type = ada_get_base_type (type);
6448 if (raw_real_type == type)
14f9c5c9
AS
6449 return type;
6450 else
6451 return to_static_fixed_type (raw_real_type);
6452 }
6453}
6454
6455/* In some cases, incomplete and private types require
6456 cross-references that are not resolved as records (for example,
6457 type Foo;
6458 type FooP is access Foo;
6459 V: FooP;
6460 type Foo is array ...;
6461 ). In these cases, since there is no mechanism for producing
6462 cross-references to such types, we instead substitute for FooP a
6463 stub enumeration type that is nowhere resolved, and whose tag is
6464 the name of the actual type. Call these types "non-record stubs". */
6465
6466/* A type equivalent to TYPE that is not a non-record stub, if one
6467 exists, otherwise TYPE. */
d2e4a39e
AS
6468struct type *
6469ada_completed_type (struct type *type)
14f9c5c9
AS
6470{
6471 CHECK_TYPEDEF (type);
6472 if (type == NULL || TYPE_CODE (type) != TYPE_CODE_ENUM
6473 || (TYPE_FLAGS (type) & TYPE_FLAG_STUB) == 0
6474 || TYPE_TAG_NAME (type) == NULL)
6475 return type;
d2e4a39e 6476 else
14f9c5c9 6477 {
d2e4a39e
AS
6478 char *name = TYPE_TAG_NAME (type);
6479 struct type *type1 = ada_find_any_type (name);
14f9c5c9
AS
6480 return (type1 == NULL) ? type : type1;
6481 }
6482}
6483
6484/* A value representing the data at VALADDR/ADDRESS as described by
6485 type TYPE0, but with a standard (static-sized) type that correctly
6486 describes it. If VAL0 is not NULL and TYPE0 already is a standard
6487 type, then return VAL0 [this feature is simply to avoid redundant
d2e4a39e 6488 creation of struct values]. */
14f9c5c9 6489
d2e4a39e
AS
6490struct value *
6491ada_to_fixed_value (struct type *type0, char *valaddr, CORE_ADDR address,
6492 struct value *val0)
14f9c5c9 6493{
d2e4a39e 6494 struct type *type = ada_to_fixed_type (type0, valaddr, address, NULL);
14f9c5c9
AS
6495 if (type == type0 && val0 != NULL)
6496 return val0;
d2e4a39e
AS
6497 else
6498 return value_from_contents_and_address (type, valaddr, address);
14f9c5c9
AS
6499}
6500
6501/* A value representing VAL, but with a standard (static-sized) type
6502 chosen to approximate the real type of VAL as well as possible, but
6503 without consulting any runtime values. For Ada dynamic-sized
6504 types, therefore, the type of the result is likely to be inaccurate. */
6505
d2e4a39e
AS
6506struct value *
6507ada_to_static_fixed_value (struct value *val)
14f9c5c9 6508{
d2e4a39e 6509 struct type *type =
14f9c5c9
AS
6510 to_static_fixed_type (static_unwrap_type (VALUE_TYPE (val)));
6511 if (type == VALUE_TYPE (val))
6512 return val;
6513 else
6514 return coerce_unspec_val_to_type (val, 0, type);
6515}
d2e4a39e 6516\f
14f9c5c9
AS
6517
6518
14f9c5c9
AS
6519
6520
6521/* Attributes */
6522
6523/* Table mapping attribute numbers to names */
6524/* NOTE: Keep up to date with enum ada_attribute definition in ada-lang.h */
6525
d2e4a39e 6526static const char *attribute_names[] = {
14f9c5c9
AS
6527 "<?>",
6528
d2e4a39e 6529 "first",
14f9c5c9
AS
6530 "last",
6531 "length",
6532 "image",
6533 "img",
6534 "max",
6535 "min",
d2e4a39e 6536 "pos" "tag",
14f9c5c9
AS
6537 "val",
6538
6539 0
6540};
6541
d2e4a39e 6542const char *
ebf56fd3 6543ada_attribute_name (int n)
14f9c5c9
AS
6544{
6545 if (n > 0 && n < (int) ATR_END)
6546 return attribute_names[n];
6547 else
6548 return attribute_names[0];
6549}
6550
6551/* Evaluate the 'POS attribute applied to ARG. */
6552
d2e4a39e
AS
6553static struct value *
6554value_pos_atr (struct value *arg)
14f9c5c9
AS
6555{
6556 struct type *type = VALUE_TYPE (arg);
6557
d2e4a39e 6558 if (!discrete_type_p (type))
14f9c5c9
AS
6559 error ("'POS only defined on discrete types");
6560
6561 if (TYPE_CODE (type) == TYPE_CODE_ENUM)
6562 {
6563 int i;
6564 LONGEST v = value_as_long (arg);
6565
d2e4a39e 6566 for (i = 0; i < TYPE_NFIELDS (type); i += 1)
14f9c5c9
AS
6567 {
6568 if (v == TYPE_FIELD_BITPOS (type, i))
6569 return value_from_longest (builtin_type_ada_int, i);
6570 }
6571 error ("enumeration value is invalid: can't find 'POS");
6572 }
6573 else
6574 return value_from_longest (builtin_type_ada_int, value_as_long (arg));
6575}
6576
6577/* Evaluate the TYPE'VAL attribute applied to ARG. */
6578
d2e4a39e
AS
6579static struct value *
6580value_val_atr (struct type *type, struct value *arg)
14f9c5c9 6581{
d2e4a39e 6582 if (!discrete_type_p (type))
14f9c5c9 6583 error ("'VAL only defined on discrete types");
d2e4a39e 6584 if (!integer_type_p (VALUE_TYPE (arg)))
14f9c5c9
AS
6585 error ("'VAL requires integral argument");
6586
6587 if (TYPE_CODE (type) == TYPE_CODE_ENUM)
6588 {
6589 long pos = value_as_long (arg);
6590 if (pos < 0 || pos >= TYPE_NFIELDS (type))
6591 error ("argument to 'VAL out of range");
d2e4a39e 6592 return value_from_longest (type, TYPE_FIELD_BITPOS (type, pos));
14f9c5c9
AS
6593 }
6594 else
6595 return value_from_longest (type, value_as_long (arg));
6596}
14f9c5c9 6597\f
d2e4a39e 6598
14f9c5c9
AS
6599 /* Evaluation */
6600
6601/* True if TYPE appears to be an Ada character type.
6602 * [At the moment, this is true only for Character and Wide_Character;
6603 * It is a heuristic test that could stand improvement]. */
6604
d2e4a39e
AS
6605int
6606ada_is_character_type (struct type *type)
14f9c5c9 6607{
d2e4a39e
AS
6608 const char *name = ada_type_name (type);
6609 return
14f9c5c9 6610 name != NULL
d2e4a39e 6611 && (TYPE_CODE (type) == TYPE_CODE_CHAR
14f9c5c9
AS
6612 || TYPE_CODE (type) == TYPE_CODE_INT
6613 || TYPE_CODE (type) == TYPE_CODE_RANGE)
6614 && (STREQ (name, "character") || STREQ (name, "wide_character")
6615 || STREQ (name, "unsigned char"));
6616}
6617
6618/* True if TYPE appears to be an Ada string type. */
6619
6620int
ebf56fd3 6621ada_is_string_type (struct type *type)
14f9c5c9
AS
6622{
6623 CHECK_TYPEDEF (type);
d2e4a39e 6624 if (type != NULL
14f9c5c9
AS
6625 && TYPE_CODE (type) != TYPE_CODE_PTR
6626 && (ada_is_simple_array (type) || ada_is_array_descriptor (type))
6627 && ada_array_arity (type) == 1)
6628 {
6629 struct type *elttype = ada_array_element_type (type, 1);
6630
6631 return ada_is_character_type (elttype);
6632 }
d2e4a39e 6633 else
14f9c5c9
AS
6634 return 0;
6635}
6636
6637
6638/* True if TYPE is a struct type introduced by the compiler to force the
6639 alignment of a value. Such types have a single field with a
6640 distinctive name. */
6641
6642int
ebf56fd3 6643ada_is_aligner_type (struct type *type)
14f9c5c9
AS
6644{
6645 CHECK_TYPEDEF (type);
6646 return (TYPE_CODE (type) == TYPE_CODE_STRUCT
6647 && TYPE_NFIELDS (type) == 1
6648 && STREQ (TYPE_FIELD_NAME (type, 0), "F"));
6649}
6650
6651/* If there is an ___XVS-convention type parallel to SUBTYPE, return
6652 the parallel type. */
6653
d2e4a39e
AS
6654struct type *
6655ada_get_base_type (struct type *raw_type)
14f9c5c9 6656{
d2e4a39e
AS
6657 struct type *real_type_namer;
6658 struct type *raw_real_type;
6659 struct type *real_type;
14f9c5c9
AS
6660
6661 if (raw_type == NULL || TYPE_CODE (raw_type) != TYPE_CODE_STRUCT)
6662 return raw_type;
6663
6664 real_type_namer = ada_find_parallel_type (raw_type, "___XVS");
d2e4a39e 6665 if (real_type_namer == NULL
14f9c5c9
AS
6666 || TYPE_CODE (real_type_namer) != TYPE_CODE_STRUCT
6667 || TYPE_NFIELDS (real_type_namer) != 1)
6668 return raw_type;
6669
6670 raw_real_type = ada_find_any_type (TYPE_FIELD_NAME (real_type_namer, 0));
d2e4a39e 6671 if (raw_real_type == NULL)
14f9c5c9
AS
6672 return raw_type;
6673 else
6674 return raw_real_type;
d2e4a39e 6675}
14f9c5c9
AS
6676
6677/* The type of value designated by TYPE, with all aligners removed. */
6678
d2e4a39e
AS
6679struct type *
6680ada_aligned_type (struct type *type)
14f9c5c9
AS
6681{
6682 if (ada_is_aligner_type (type))
6683 return ada_aligned_type (TYPE_FIELD_TYPE (type, 0));
6684 else
6685 return ada_get_base_type (type);
6686}
6687
6688
6689/* The address of the aligned value in an object at address VALADDR
6690 having type TYPE. Assumes ada_is_aligner_type (TYPE). */
6691
d2e4a39e 6692char *
ebf56fd3 6693ada_aligned_value_addr (struct type *type, char *valaddr)
14f9c5c9 6694{
d2e4a39e 6695 if (ada_is_aligner_type (type))
14f9c5c9 6696 return ada_aligned_value_addr (TYPE_FIELD_TYPE (type, 0),
d2e4a39e
AS
6697 valaddr +
6698 TYPE_FIELD_BITPOS (type,
6699 0) / TARGET_CHAR_BIT);
14f9c5c9
AS
6700 else
6701 return valaddr;
6702}
6703
6704/* The printed representation of an enumeration literal with encoded
6705 name NAME. The value is good to the next call of ada_enum_name. */
d2e4a39e
AS
6706const char *
6707ada_enum_name (const char *name)
14f9c5c9 6708{
d2e4a39e 6709 char *tmp;
14f9c5c9 6710
d2e4a39e 6711 while (1)
14f9c5c9
AS
6712 {
6713 if ((tmp = strstr (name, "__")) != NULL)
d2e4a39e 6714 name = tmp + 2;
14f9c5c9 6715 else if ((tmp = strchr (name, '.')) != NULL)
d2e4a39e 6716 name = tmp + 1;
14f9c5c9
AS
6717 else
6718 break;
6719 }
6720
6721 if (name[0] == 'Q')
6722 {
6723 static char result[16];
6724 int v;
6725 if (name[1] == 'U' || name[1] == 'W')
6726 {
d2e4a39e 6727 if (sscanf (name + 2, "%x", &v) != 1)
14f9c5c9
AS
6728 return name;
6729 }
6730 else
6731 return name;
6732
6733 if (isascii (v) && isprint (v))
6734 sprintf (result, "'%c'", v);
6735 else if (name[1] == 'U')
6736 sprintf (result, "[\"%02x\"]", v);
6737 else
6738 sprintf (result, "[\"%04x\"]", v);
6739
6740 return result;
6741 }
d2e4a39e 6742 else
14f9c5c9
AS
6743 return name;
6744}
6745
d2e4a39e 6746static struct value *
ebf56fd3
AS
6747evaluate_subexp (struct type *expect_type, struct expression *exp, int *pos,
6748 enum noside noside)
14f9c5c9
AS
6749{
6750 return (*exp->language_defn->evaluate_exp) (expect_type, exp, pos, noside);
6751}
6752
6753/* Evaluate the subexpression of EXP starting at *POS as for
6754 evaluate_type, updating *POS to point just past the evaluated
6755 expression. */
6756
d2e4a39e
AS
6757static struct value *
6758evaluate_subexp_type (struct expression *exp, int *pos)
14f9c5c9 6759{
d2e4a39e 6760 return (*exp->language_defn->evaluate_exp)
14f9c5c9
AS
6761 (NULL_TYPE, exp, pos, EVAL_AVOID_SIDE_EFFECTS);
6762}
6763
6764/* If VAL is wrapped in an aligner or subtype wrapper, return the
d2e4a39e 6765 value it wraps. */
14f9c5c9 6766
d2e4a39e
AS
6767static struct value *
6768unwrap_value (struct value *val)
14f9c5c9 6769{
d2e4a39e 6770 struct type *type = check_typedef (VALUE_TYPE (val));
14f9c5c9
AS
6771 if (ada_is_aligner_type (type))
6772 {
d2e4a39e
AS
6773 struct value *v = value_struct_elt (&val, NULL, "F",
6774 NULL, "internal structure");
6775 struct type *val_type = check_typedef (VALUE_TYPE (v));
14f9c5c9
AS
6776 if (ada_type_name (val_type) == NULL)
6777 TYPE_NAME (val_type) = ada_type_name (type);
6778
6779 return unwrap_value (v);
6780 }
d2e4a39e 6781 else
14f9c5c9 6782 {
d2e4a39e 6783 struct type *raw_real_type =
14f9c5c9 6784 ada_completed_type (ada_get_base_type (type));
d2e4a39e 6785
14f9c5c9
AS
6786 if (type == raw_real_type)
6787 return val;
6788
d2e4a39e
AS
6789 return
6790 coerce_unspec_val_to_type
14f9c5c9
AS
6791 (val, 0, ada_to_fixed_type (raw_real_type, 0,
6792 VALUE_ADDRESS (val) + VALUE_OFFSET (val),
6793 NULL));
6794 }
6795}
d2e4a39e
AS
6796
6797static struct value *
6798cast_to_fixed (struct type *type, struct value *arg)
14f9c5c9
AS
6799{
6800 LONGEST val;
6801
6802 if (type == VALUE_TYPE (arg))
6803 return arg;
6804 else if (ada_is_fixed_point_type (VALUE_TYPE (arg)))
d2e4a39e 6805 val = ada_float_to_fixed (type,
14f9c5c9
AS
6806 ada_fixed_to_float (VALUE_TYPE (arg),
6807 value_as_long (arg)));
d2e4a39e 6808 else
14f9c5c9 6809 {
d2e4a39e 6810 DOUBLEST argd =
14f9c5c9
AS
6811 value_as_double (value_cast (builtin_type_double, value_copy (arg)));
6812 val = ada_float_to_fixed (type, argd);
6813 }
6814
6815 return value_from_longest (type, val);
6816}
6817
d2e4a39e
AS
6818static struct value *
6819cast_from_fixed_to_double (struct value *arg)
14f9c5c9
AS
6820{
6821 DOUBLEST val = ada_fixed_to_float (VALUE_TYPE (arg),
6822 value_as_long (arg));
6823 return value_from_double (builtin_type_double, val);
6824}
6825
6826/* Coerce VAL as necessary for assignment to an lval of type TYPE, and
6827 * return the converted value. */
d2e4a39e
AS
6828static struct value *
6829coerce_for_assign (struct type *type, struct value *val)
14f9c5c9 6830{
d2e4a39e 6831 struct type *type2 = VALUE_TYPE (val);
14f9c5c9
AS
6832 if (type == type2)
6833 return val;
6834
6835 CHECK_TYPEDEF (type2);
6836 CHECK_TYPEDEF (type);
6837
d2e4a39e
AS
6838 if (TYPE_CODE (type2) == TYPE_CODE_PTR
6839 && TYPE_CODE (type) == TYPE_CODE_ARRAY)
14f9c5c9
AS
6840 {
6841 val = ada_value_ind (val);
6842 type2 = VALUE_TYPE (val);
6843 }
6844
d2e4a39e 6845 if (TYPE_CODE (type2) == TYPE_CODE_ARRAY
14f9c5c9
AS
6846 && TYPE_CODE (type) == TYPE_CODE_ARRAY)
6847 {
6848 if (TYPE_LENGTH (type2) != TYPE_LENGTH (type)
6849 || TYPE_LENGTH (TYPE_TARGET_TYPE (type2))
d2e4a39e 6850 != TYPE_LENGTH (TYPE_TARGET_TYPE (type2)))
14f9c5c9
AS
6851 error ("Incompatible types in assignment");
6852 VALUE_TYPE (val) = type;
6853 }
d2e4a39e 6854 return val;
14f9c5c9
AS
6855}
6856
d2e4a39e 6857struct value *
ebf56fd3
AS
6858ada_evaluate_subexp (struct type *expect_type, struct expression *exp,
6859 int *pos, enum noside noside)
14f9c5c9
AS
6860{
6861 enum exp_opcode op;
6862 enum ada_attribute atr;
6863 int tem, tem2, tem3;
6864 int pc;
6865 struct value *arg1 = NULL, *arg2 = NULL, *arg3;
6866 struct type *type;
6867 int nargs;
d2e4a39e 6868 struct value **argvec;
14f9c5c9 6869
d2e4a39e
AS
6870 pc = *pos;
6871 *pos += 1;
14f9c5c9
AS
6872 op = exp->elts[pc].opcode;
6873
d2e4a39e 6874 switch (op)
14f9c5c9
AS
6875 {
6876 default:
6877 *pos -= 1;
d2e4a39e
AS
6878 return
6879 unwrap_value (evaluate_subexp_standard
6880 (expect_type, exp, pos, noside));
14f9c5c9
AS
6881
6882 case UNOP_CAST:
6883 (*pos) += 2;
6884 type = exp->elts[pc + 1].type;
6885 arg1 = evaluate_subexp (type, exp, pos, noside);
6886 if (noside == EVAL_SKIP)
6887 goto nosideret;
6888 if (type != check_typedef (VALUE_TYPE (arg1)))
6889 {
6890 if (ada_is_fixed_point_type (type))
6891 arg1 = cast_to_fixed (type, arg1);
6892 else if (ada_is_fixed_point_type (VALUE_TYPE (arg1)))
6893 arg1 = value_cast (type, cast_from_fixed_to_double (arg1));
d2e4a39e 6894 else if (VALUE_LVAL (arg1) == lval_memory)
14f9c5c9
AS
6895 {
6896 /* This is in case of the really obscure (and undocumented,
d2e4a39e
AS
6897 but apparently expected) case of (Foo) Bar.all, where Bar
6898 is an integer constant and Foo is a dynamic-sized type.
6899 If we don't do this, ARG1 will simply be relabeled with
6900 TYPE. */
6901 if (noside == EVAL_AVOID_SIDE_EFFECTS)
14f9c5c9 6902 return value_zero (to_static_fixed_type (type), not_lval);
d2e4a39e
AS
6903 arg1 =
6904 ada_to_fixed_value
6905 (type, 0, VALUE_ADDRESS (arg1) + VALUE_OFFSET (arg1), 0);
14f9c5c9 6906 }
d2e4a39e
AS
6907 else
6908 arg1 = value_cast (type, arg1);
14f9c5c9
AS
6909 }
6910 return arg1;
6911
6912 /* FIXME: UNOP_QUAL should be defined in expression.h */
6913 /* case UNOP_QUAL:
d2e4a39e
AS
6914 (*pos) += 2;
6915 type = exp->elts[pc + 1].type;
6916 return ada_evaluate_subexp (type, exp, pos, noside);
6917 */
14f9c5c9
AS
6918 case BINOP_ASSIGN:
6919 arg1 = evaluate_subexp (NULL_TYPE, exp, pos, noside);
6920 arg2 = evaluate_subexp (VALUE_TYPE (arg1), exp, pos, noside);
6921 if (noside == EVAL_SKIP || noside == EVAL_AVOID_SIDE_EFFECTS)
6922 return arg1;
6923 if (binop_user_defined_p (op, arg1, arg2))
6924 return value_x_binop (arg1, arg2, op, OP_NULL, EVAL_NORMAL);
d2e4a39e 6925 else
14f9c5c9
AS
6926 {
6927 if (ada_is_fixed_point_type (VALUE_TYPE (arg1)))
6928 arg2 = cast_to_fixed (VALUE_TYPE (arg1), arg2);
6929 else if (ada_is_fixed_point_type (VALUE_TYPE (arg2)))
d2e4a39e
AS
6930 error
6931 ("Fixed-point values must be assigned to fixed-point variables");
6932 else
14f9c5c9
AS
6933 arg2 = coerce_for_assign (VALUE_TYPE (arg1), arg2);
6934 return ada_value_assign (arg1, arg2);
6935 }
6936
6937 case BINOP_ADD:
6938 arg1 = evaluate_subexp_with_coercion (exp, pos, noside);
6939 arg2 = evaluate_subexp_with_coercion (exp, pos, noside);
6940 if (noside == EVAL_SKIP)
6941 goto nosideret;
6942 if (binop_user_defined_p (op, arg1, arg2))
6943 return value_x_binop (arg1, arg2, op, OP_NULL, EVAL_NORMAL);
6944 else
6945 {
6946 if ((ada_is_fixed_point_type (VALUE_TYPE (arg1))
6947 || ada_is_fixed_point_type (VALUE_TYPE (arg2)))
6948 && VALUE_TYPE (arg1) != VALUE_TYPE (arg2))
d2e4a39e
AS
6949 error
6950 ("Operands of fixed-point addition must have the same type");
14f9c5c9
AS
6951 return value_cast (VALUE_TYPE (arg1), value_add (arg1, arg2));
6952 }
6953
6954 case BINOP_SUB:
6955 arg1 = evaluate_subexp_with_coercion (exp, pos, noside);
6956 arg2 = evaluate_subexp_with_coercion (exp, pos, noside);
6957 if (noside == EVAL_SKIP)
6958 goto nosideret;
6959 if (binop_user_defined_p (op, arg1, arg2))
6960 return value_x_binop (arg1, arg2, op, OP_NULL, EVAL_NORMAL);
6961 else
6962 {
6963 if ((ada_is_fixed_point_type (VALUE_TYPE (arg1))
6964 || ada_is_fixed_point_type (VALUE_TYPE (arg2)))
6965 && VALUE_TYPE (arg1) != VALUE_TYPE (arg2))
d2e4a39e
AS
6966 error
6967 ("Operands of fixed-point subtraction must have the same type");
14f9c5c9
AS
6968 return value_cast (VALUE_TYPE (arg1), value_sub (arg1, arg2));
6969 }
6970
6971 case BINOP_MUL:
6972 case BINOP_DIV:
6973 arg1 = evaluate_subexp (NULL_TYPE, exp, pos, noside);
6974 arg2 = evaluate_subexp (NULL_TYPE, exp, pos, noside);
6975 if (noside == EVAL_SKIP)
6976 goto nosideret;
6977 if (binop_user_defined_p (op, arg1, arg2))
6978 return value_x_binop (arg1, arg2, op, OP_NULL, EVAL_NORMAL);
6979 else
6980 if (noside == EVAL_AVOID_SIDE_EFFECTS
6981 && (op == BINOP_DIV || op == BINOP_REM || op == BINOP_MOD))
d2e4a39e 6982 return value_zero (VALUE_TYPE (arg1), not_lval);
14f9c5c9
AS
6983 else
6984 {
6985 if (ada_is_fixed_point_type (VALUE_TYPE (arg1)))
6986 arg1 = cast_from_fixed_to_double (arg1);
6987 if (ada_is_fixed_point_type (VALUE_TYPE (arg2)))
6988 arg2 = cast_from_fixed_to_double (arg2);
6989 return value_binop (arg1, arg2, op);
6990 }
6991
6992 case UNOP_NEG:
6993 arg1 = evaluate_subexp (NULL_TYPE, exp, pos, noside);
6994 if (noside == EVAL_SKIP)
6995 goto nosideret;
6996 if (unop_user_defined_p (op, arg1))
6997 return value_x_unop (arg1, op, EVAL_NORMAL);
6998 else if (ada_is_fixed_point_type (VALUE_TYPE (arg1)))
6999 return value_cast (VALUE_TYPE (arg1), value_neg (arg1));
7000 else
7001 return value_neg (arg1);
7002
7003 /* FIXME: OP_UNRESOLVED_VALUE should be defined in expression.h */
7004 /* case OP_UNRESOLVED_VALUE:
d2e4a39e 7005 /* Only encountered when an unresolved symbol occurs in a
14f9c5c9 7006 context other than a function call, in which case, it is
d2e4a39e
AS
7007 illegal. *//*
7008 (*pos) += 3;
7009 if (noside == EVAL_SKIP)
7010 goto nosideret;
7011 else
7012 error ("Unexpected unresolved symbol, %s, during evaluation",
7013 ada_demangle (exp->elts[pc + 2].name));
7014 */
14f9c5c9
AS
7015 case OP_VAR_VALUE:
7016 *pos -= 1;
7017 if (noside == EVAL_SKIP)
7018 {
7019 *pos += 4;
7020 goto nosideret;
d2e4a39e 7021 }
14f9c5c9
AS
7022 else if (noside == EVAL_AVOID_SIDE_EFFECTS)
7023 {
7024 *pos += 4;
d2e4a39e
AS
7025 return value_zero
7026 (to_static_fixed_type
7027 (static_unwrap_type (SYMBOL_TYPE (exp->elts[pc + 2].symbol))),
14f9c5c9
AS
7028 not_lval);
7029 }
d2e4a39e 7030 else
14f9c5c9 7031 {
d2e4a39e
AS
7032 arg1 =
7033 unwrap_value (evaluate_subexp_standard
7034 (expect_type, exp, pos, noside));
14f9c5c9 7035 return ada_to_fixed_value (VALUE_TYPE (arg1), 0,
d2e4a39e
AS
7036 VALUE_ADDRESS (arg1) +
7037 VALUE_OFFSET (arg1), arg1);
14f9c5c9
AS
7038 }
7039
7040 case OP_ARRAY:
7041 (*pos) += 3;
7042 tem2 = longest_to_int (exp->elts[pc + 1].longconst);
7043 tem3 = longest_to_int (exp->elts[pc + 2].longconst);
7044 nargs = tem3 - tem2 + 1;
7045 type = expect_type ? check_typedef (expect_type) : NULL_TYPE;
7046
d2e4a39e
AS
7047 argvec =
7048 (struct value * *) alloca (sizeof (struct value *) * (nargs + 1));
14f9c5c9
AS
7049 for (tem = 0; tem == 0 || tem < nargs; tem += 1)
7050 /* At least one element gets inserted for the type */
7051 {
7052 /* Ensure that array expressions are coerced into pointer objects. */
7053 argvec[tem] = evaluate_subexp_with_coercion (exp, pos, noside);
7054 }
7055 if (noside == EVAL_SKIP)
7056 goto nosideret;
7057 return value_array (tem2, tem3, argvec);
7058
7059 case OP_FUNCALL:
7060 (*pos) += 2;
7061
7062 /* Allocate arg vector, including space for the function to be
d2e4a39e 7063 called in argvec[0] and a terminating NULL */
14f9c5c9 7064 nargs = longest_to_int (exp->elts[pc + 1].longconst);
d2e4a39e
AS
7065 argvec =
7066 (struct value * *) alloca (sizeof (struct value *) * (nargs + 2));
14f9c5c9
AS
7067
7068 /* FIXME: OP_UNRESOLVED_VALUE should be defined in expression.h */
7069 /* FIXME: name should be defined in expresion.h */
7070 /* if (exp->elts[*pos].opcode == OP_UNRESOLVED_VALUE)
d2e4a39e
AS
7071 error ("Unexpected unresolved symbol, %s, during evaluation",
7072 ada_demangle (exp->elts[pc + 5].name));
7073 */
7074 if (0)
14f9c5c9
AS
7075 {
7076 error ("unexpected code path, FIXME");
7077 }
7078 else
7079 {
7080 for (tem = 0; tem <= nargs; tem += 1)
7081 argvec[tem] = evaluate_subexp (NULL_TYPE, exp, pos, noside);
7082 argvec[tem] = 0;
7083
7084 if (noside == EVAL_SKIP)
7085 goto nosideret;
7086 }
7087
7088 if (TYPE_CODE (VALUE_TYPE (argvec[0])) == TYPE_CODE_REF)
7089 argvec[0] = value_addr (argvec[0]);
7090
7091 if (ada_is_packed_array_type (VALUE_TYPE (argvec[0])))
7092 argvec[0] = ada_coerce_to_simple_array (argvec[0]);
7093
7094 type = check_typedef (VALUE_TYPE (argvec[0]));
7095 if (TYPE_CODE (type) == TYPE_CODE_PTR)
d2e4a39e 7096 {
14f9c5c9
AS
7097 switch (TYPE_CODE (check_typedef (TYPE_TARGET_TYPE (type))))
7098 {
7099 case TYPE_CODE_FUNC:
7100 type = check_typedef (TYPE_TARGET_TYPE (type));
7101 break;
7102 case TYPE_CODE_ARRAY:
7103 break;
7104 case TYPE_CODE_STRUCT:
7105 if (noside != EVAL_AVOID_SIDE_EFFECTS)
7106 argvec[0] = ada_value_ind (argvec[0]);
7107 type = check_typedef (TYPE_TARGET_TYPE (type));
7108 break;
7109 default:
7110 error ("cannot subscript or call something of type `%s'",
7111 ada_type_name (VALUE_TYPE (argvec[0])));
7112 break;
d2e4a39e 7113 }
14f9c5c9 7114 }
d2e4a39e 7115
14f9c5c9
AS
7116 switch (TYPE_CODE (type))
7117 {
7118 case TYPE_CODE_FUNC:
7119 if (noside == EVAL_AVOID_SIDE_EFFECTS)
7120 return allocate_value (TYPE_TARGET_TYPE (type));
7121 return call_function_by_hand (argvec[0], nargs, argvec + 1);
d2e4a39e 7122 case TYPE_CODE_STRUCT:
14f9c5c9
AS
7123 {
7124 int arity = ada_array_arity (type);
7125 type = ada_array_element_type (type, nargs);
d2e4a39e 7126 if (type == NULL)
14f9c5c9 7127 error ("cannot subscript or call a record");
d2e4a39e 7128 if (arity != nargs)
14f9c5c9 7129 error ("wrong number of subscripts; expecting %d", arity);
d2e4a39e 7130 if (noside == EVAL_AVOID_SIDE_EFFECTS)
14f9c5c9 7131 return allocate_value (ada_aligned_type (type));
d2e4a39e
AS
7132 return
7133 unwrap_value (ada_value_subscript
7134 (argvec[0], nargs, argvec + 1));
14f9c5c9
AS
7135 }
7136 case TYPE_CODE_ARRAY:
7137 if (noside == EVAL_AVOID_SIDE_EFFECTS)
d2e4a39e 7138 {
14f9c5c9
AS
7139 type = ada_array_element_type (type, nargs);
7140 if (type == NULL)
7141 error ("element type of array unknown");
7142 else
7143 return allocate_value (ada_aligned_type (type));
7144 }
d2e4a39e 7145 return
14f9c5c9
AS
7146 unwrap_value (ada_value_subscript
7147 (ada_coerce_to_simple_array (argvec[0]),
d2e4a39e
AS
7148 nargs, argvec + 1));
7149 case TYPE_CODE_PTR: /* Pointer to array */
14f9c5c9
AS
7150 type = to_fixed_array_type (TYPE_TARGET_TYPE (type), NULL, 1);
7151 if (noside == EVAL_AVOID_SIDE_EFFECTS)
d2e4a39e 7152 {
14f9c5c9
AS
7153 type = ada_array_element_type (type, nargs);
7154 if (type == NULL)
7155 error ("element type of array unknown");
7156 else
7157 return allocate_value (ada_aligned_type (type));
7158 }
d2e4a39e
AS
7159 return
7160 unwrap_value (ada_value_ptr_subscript (argvec[0], type,
7161 nargs, argvec + 1));
14f9c5c9
AS
7162
7163 default:
7164 error ("Internal error in evaluate_subexp");
7165 }
7166
7167 case TERNOP_SLICE:
7168 {
d2e4a39e 7169 struct value *array = evaluate_subexp (NULL_TYPE, exp, pos, noside);
14f9c5c9
AS
7170 int lowbound
7171 = value_as_long (evaluate_subexp (NULL_TYPE, exp, pos, noside));
7172 int upper
7173 = value_as_long (evaluate_subexp (NULL_TYPE, exp, pos, noside));
7174 if (noside == EVAL_SKIP)
7175 goto nosideret;
d2e4a39e
AS
7176
7177 /* If this is a reference to an array, then dereference it */
7178 if (TYPE_CODE (VALUE_TYPE (array)) == TYPE_CODE_REF
7179 && TYPE_TARGET_TYPE (VALUE_TYPE (array)) != NULL
7180 && TYPE_CODE (TYPE_TARGET_TYPE (VALUE_TYPE (array))) ==
7181 TYPE_CODE_ARRAY
7182 && !ada_is_array_descriptor (check_typedef (VALUE_TYPE (array))))
7183 {
7184 array = ada_coerce_ref (array);
7185 }
14f9c5c9
AS
7186
7187 if (noside == EVAL_AVOID_SIDE_EFFECTS &&
7188 ada_is_array_descriptor (check_typedef (VALUE_TYPE (array))))
7189 {
7190 /* Try to dereference the array, in case it is an access to array */
d2e4a39e 7191 struct type *arrType = ada_type_of_array (array, 0);
14f9c5c9 7192 if (arrType != NULL)
d2e4a39e 7193 array = value_at_lazy (arrType, 0, NULL);
14f9c5c9
AS
7194 }
7195 if (ada_is_array_descriptor (VALUE_TYPE (array)))
7196 array = ada_coerce_to_simple_array (array);
7197
d2e4a39e
AS
7198 /* If at this point we have a pointer to an array, it means that
7199 it is a pointer to a simple (non-ada) array. We just then
7200 dereference it */
7201 if (TYPE_CODE (VALUE_TYPE (array)) == TYPE_CODE_PTR
7202 && TYPE_TARGET_TYPE (VALUE_TYPE (array)) != NULL
7203 && TYPE_CODE (TYPE_TARGET_TYPE (VALUE_TYPE (array))) ==
7204 TYPE_CODE_ARRAY)
7205 {
7206 array = ada_value_ind (array);
7207 }
7208
14f9c5c9
AS
7209 if (noside == EVAL_AVOID_SIDE_EFFECTS)
7210 /* The following will get the bounds wrong, but only in contexts
7211 where the value is not being requested (FIXME?). */
7212 return array;
7213 else
7214 return value_slice (array, lowbound, upper - lowbound + 1);
7215 }
7216
7217 /* FIXME: UNOP_MBR should be defined in expression.h */
7218 /* case UNOP_MBR:
d2e4a39e
AS
7219 (*pos) += 2;
7220 arg1 = evaluate_subexp (NULL_TYPE, exp, pos, noside);
7221 type = exp->elts[pc + 1].type;
7222
7223 if (noside == EVAL_SKIP)
7224 goto nosideret;
7225
7226 switch (TYPE_CODE (type))
7227 {
7228 default:
7229 warning ("Membership test incompletely implemented; always returns true");
7230 return value_from_longest (builtin_type_int, (LONGEST) 1);
7231
7232 case TYPE_CODE_RANGE:
7233 arg2 = value_from_longest (builtin_type_int,
7234 (LONGEST) TYPE_LOW_BOUND (type));
7235 arg3 = value_from_longest (builtin_type_int,
7236 (LONGEST) TYPE_HIGH_BOUND (type));
7237 return
7238 value_from_longest (builtin_type_int,
7239 (value_less (arg1,arg3)
7240 || value_equal (arg1,arg3))
7241 && (value_less (arg2,arg1)
7242 || value_equal (arg2,arg1)));
7243 }
7244 */
7245 /* FIXME: BINOP_MBR should be defined in expression.h */
14f9c5c9 7246 /* case BINOP_MBR:
d2e4a39e
AS
7247 (*pos) += 2;
7248 arg1 = evaluate_subexp (NULL_TYPE, exp, pos, noside);
7249 arg2 = evaluate_subexp (NULL_TYPE, exp, pos, noside);
14f9c5c9 7250
d2e4a39e
AS
7251 if (noside == EVAL_SKIP)
7252 goto nosideret;
14f9c5c9 7253
d2e4a39e
AS
7254 if (noside == EVAL_AVOID_SIDE_EFFECTS)
7255 return value_zero (builtin_type_int, not_lval);
14f9c5c9 7256
d2e4a39e 7257 tem = longest_to_int (exp->elts[pc + 1].longconst);
14f9c5c9 7258
d2e4a39e
AS
7259 if (tem < 1 || tem > ada_array_arity (VALUE_TYPE (arg2)))
7260 error ("invalid dimension number to '%s", "range");
14f9c5c9 7261
d2e4a39e
AS
7262 arg3 = ada_array_bound (arg2, tem, 1);
7263 arg2 = ada_array_bound (arg2, tem, 0);
14f9c5c9 7264
d2e4a39e
AS
7265 return
7266 value_from_longest (builtin_type_int,
7267 (value_less (arg1,arg3)
7268 || value_equal (arg1,arg3))
7269 && (value_less (arg2,arg1)
7270 || value_equal (arg2,arg1)));
7271 */
14f9c5c9
AS
7272 /* FIXME: TERNOP_MBR should be defined in expression.h */
7273 /* case TERNOP_MBR:
d2e4a39e
AS
7274 arg1 = evaluate_subexp (NULL_TYPE, exp, pos, noside);
7275 arg2 = evaluate_subexp (NULL_TYPE, exp, pos, noside);
7276 arg3 = evaluate_subexp (NULL_TYPE, exp, pos, noside);
7277
7278 if (noside == EVAL_SKIP)
7279 goto nosideret;
7280
7281 return
7282 value_from_longest (builtin_type_int,
7283 (value_less (arg1,arg3)
7284 || value_equal (arg1,arg3))
7285 && (value_less (arg2,arg1)
7286 || value_equal (arg2,arg1)));
7287 */
14f9c5c9
AS
7288 /* FIXME: OP_ATTRIBUTE should be defined in expression.h */
7289 /* case OP_ATTRIBUTE:
d2e4a39e
AS
7290 *pos += 3;
7291 atr = (enum ada_attribute) longest_to_int (exp->elts[pc + 2].longconst);
7292 switch (atr)
7293 {
7294 default:
7295 error ("unexpected attribute encountered");
7296
7297 case ATR_FIRST:
7298 case ATR_LAST:
7299 case ATR_LENGTH:
7300 {
7301 struct type* type_arg;
7302 if (exp->elts[*pos].opcode == OP_TYPE)
7303 {
7304 evaluate_subexp (NULL_TYPE, exp, pos, EVAL_SKIP);
7305 arg1 = NULL;
7306 type_arg = exp->elts[pc + 5].type;
7307 }
7308 else
7309 {
7310 arg1 = evaluate_subexp (NULL_TYPE, exp, pos, noside);
7311 type_arg = NULL;
7312 }
7313
7314 if (exp->elts[*pos].opcode != OP_LONG)
7315 error ("illegal operand to '%s", ada_attribute_name (atr));
7316 tem = longest_to_int (exp->elts[*pos+2].longconst);
7317 *pos += 4;
7318
7319 if (noside == EVAL_SKIP)
7320 goto nosideret;
7321
7322 if (type_arg == NULL)
7323 {
7324 arg1 = ada_coerce_ref (arg1);
7325
7326 if (ada_is_packed_array_type (VALUE_TYPE (arg1)))
7327 arg1 = ada_coerce_to_simple_array (arg1);
7328
7329 if (tem < 1 || tem > ada_array_arity (VALUE_TYPE (arg1)))
7330 error ("invalid dimension number to '%s",
7331 ada_attribute_name (atr));
7332
7333 if (noside == EVAL_AVOID_SIDE_EFFECTS)
7334 {
7335 type = ada_index_type (VALUE_TYPE (arg1), tem);
7336 if (type == NULL)
7337 error ("attempt to take bound of something that is not an array");
7338 return allocate_value (type);
7339 }
7340
7341 switch (atr)
7342 {
7343 default:
7344 error ("unexpected attribute encountered");
7345 case ATR_FIRST:
7346 return ada_array_bound (arg1, tem, 0);
7347 case ATR_LAST:
7348 return ada_array_bound (arg1, tem, 1);
7349 case ATR_LENGTH:
7350 return ada_array_length (arg1, tem);
7351 }
7352 }
7353 else if (TYPE_CODE (type_arg) == TYPE_CODE_RANGE
7354 || TYPE_CODE (type_arg) == TYPE_CODE_INT)
7355 {
7356 struct type* range_type;
7357 char* name = ada_type_name (type_arg);
7358 if (name == NULL)
7359 {
7360 if (TYPE_CODE (type_arg) == TYPE_CODE_RANGE)
7361 range_type = type_arg;
7362 else
7363 error ("unimplemented type attribute");
7364 }
7365 else
7366 range_type =
7367 to_fixed_range_type (name, NULL, TYPE_OBJFILE (type_arg));
7368 switch (atr)
7369 {
7370 default:
7371 error ("unexpected attribute encountered");
7372 case ATR_FIRST:
7373 return value_from_longest (TYPE_TARGET_TYPE (range_type),
7374 TYPE_LOW_BOUND (range_type));
7375 case ATR_LAST:
7376 return value_from_longest (TYPE_TARGET_TYPE (range_type),
7377 TYPE_HIGH_BOUND (range_type));
7378 }
7379 }
7380 else if (TYPE_CODE (type_arg) == TYPE_CODE_ENUM)
7381 {
7382 switch (atr)
7383 {
7384 default:
7385 error ("unexpected attribute encountered");
7386 case ATR_FIRST:
7387 return value_from_longest
7388 (type_arg, TYPE_FIELD_BITPOS (type_arg, 0));
7389 case ATR_LAST:
7390 return value_from_longest
7391 (type_arg,
7392 TYPE_FIELD_BITPOS (type_arg,
7393 TYPE_NFIELDS (type_arg) - 1));
7394 }
7395 }
7396 else if (TYPE_CODE (type_arg) == TYPE_CODE_FLT)
7397 error ("unimplemented type attribute");
7398 else
7399 {
7400 LONGEST low, high;
7401
7402 if (ada_is_packed_array_type (type_arg))
7403 type_arg = decode_packed_array_type (type_arg);
7404
7405 if (tem < 1 || tem > ada_array_arity (type_arg))
7406 error ("invalid dimension number to '%s",
7407 ada_attribute_name (atr));
7408
7409 if (noside == EVAL_AVOID_SIDE_EFFECTS)
7410 {
7411 type = ada_index_type (type_arg, tem);
7412 if (type == NULL)
7413 error ("attempt to take bound of something that is not an array");
7414 return allocate_value (type);
7415 }
7416
7417 switch (atr)
7418 {
7419 default:
7420 error ("unexpected attribute encountered");
7421 case ATR_FIRST:
7422 low = ada_array_bound_from_type (type_arg, tem, 0, &type);
7423 return value_from_longest (type, low);
7424 case ATR_LAST:
7425 high = ada_array_bound_from_type (type_arg, tem, 1, &type);
7426 return value_from_longest (type, high);
7427 case ATR_LENGTH:
7428 low = ada_array_bound_from_type (type_arg, tem, 0, &type);
7429 high = ada_array_bound_from_type (type_arg, tem, 1, NULL);
7430 return value_from_longest (type, high-low+1);
7431 }
7432 }
7433 }
7434
7435 case ATR_TAG:
7436 arg1 = evaluate_subexp (NULL_TYPE, exp, pos, noside);
7437 if (noside == EVAL_SKIP)
7438 goto nosideret;
7439
7440 if (noside == EVAL_AVOID_SIDE_EFFECTS)
7441 return
7442 value_zero (ada_tag_type (arg1), not_lval);
7443
7444 return ada_value_tag (arg1);
7445
7446 case ATR_MIN:
7447 case ATR_MAX:
7448 evaluate_subexp (NULL_TYPE, exp, pos, EVAL_SKIP);
7449 arg1 = evaluate_subexp (NULL_TYPE, exp, pos, noside);
7450 arg2 = evaluate_subexp (NULL_TYPE, exp, pos, noside);
7451 if (noside == EVAL_SKIP)
7452 goto nosideret;
7453 else if (noside == EVAL_AVOID_SIDE_EFFECTS)
7454 return value_zero (VALUE_TYPE (arg1), not_lval);
7455 else
7456 return value_binop (arg1, arg2,
7457 atr == ATR_MIN ? BINOP_MIN : BINOP_MAX);
7458
7459 case ATR_MODULUS:
7460 {
7461 struct type* type_arg = exp->elts[pc + 5].type;
7462 evaluate_subexp (NULL_TYPE, exp, pos, EVAL_SKIP);
7463 *pos += 4;
7464
7465 if (noside == EVAL_SKIP)
7466 goto nosideret;
7467
7468 if (! ada_is_modular_type (type_arg))
7469 error ("'modulus must be applied to modular type");
7470
7471 return value_from_longest (TYPE_TARGET_TYPE (type_arg),
7472 ada_modulus (type_arg));
7473 }
7474
7475
7476 case ATR_POS:
7477 evaluate_subexp (NULL_TYPE, exp, pos, EVAL_SKIP);
7478 arg1 = evaluate_subexp (NULL_TYPE, exp, pos, noside);
7479 if (noside == EVAL_SKIP)
7480 goto nosideret;
7481 else if (noside == EVAL_AVOID_SIDE_EFFECTS)
7482 return value_zero (builtin_type_ada_int, not_lval);
7483 else
7484 return value_pos_atr (arg1);
7485
7486 case ATR_SIZE:
7487 arg1 = evaluate_subexp (NULL_TYPE, exp, pos, noside);
7488 if (noside == EVAL_SKIP)
7489 goto nosideret;
7490 else if (noside == EVAL_AVOID_SIDE_EFFECTS)
7491 return value_zero (builtin_type_ada_int, not_lval);
7492 else
7493 return value_from_longest (builtin_type_ada_int,
7494 TARGET_CHAR_BIT
7495 * TYPE_LENGTH (VALUE_TYPE (arg1)));
7496
7497 case ATR_VAL:
7498 evaluate_subexp (NULL_TYPE, exp, pos, EVAL_SKIP);
7499 arg1 = evaluate_subexp (NULL_TYPE, exp, pos, noside);
7500 type = exp->elts[pc + 5].type;
7501 if (noside == EVAL_SKIP)
7502 goto nosideret;
7503 else if (noside == EVAL_AVOID_SIDE_EFFECTS)
7504 return value_zero (type, not_lval);
7505 else
7506 return value_val_atr (type, arg1);
7507 } */
14f9c5c9
AS
7508 case BINOP_EXP:
7509 arg1 = evaluate_subexp (NULL_TYPE, exp, pos, noside);
7510 arg2 = evaluate_subexp (NULL_TYPE, exp, pos, noside);
7511 if (noside == EVAL_SKIP)
7512 goto nosideret;
7513 if (binop_user_defined_p (op, arg1, arg2))
7514 return unwrap_value (value_x_binop (arg1, arg2, op, OP_NULL,
d2e4a39e
AS
7515 EVAL_NORMAL));
7516 else if (noside == EVAL_AVOID_SIDE_EFFECTS)
7517 return value_zero (VALUE_TYPE (arg1), not_lval);
14f9c5c9
AS
7518 else
7519 return value_binop (arg1, arg2, op);
7520
7521 case UNOP_PLUS:
7522 arg1 = evaluate_subexp (NULL_TYPE, exp, pos, noside);
7523 if (noside == EVAL_SKIP)
7524 goto nosideret;
7525 if (unop_user_defined_p (op, arg1))
7526 return unwrap_value (value_x_unop (arg1, op, EVAL_NORMAL));
7527 else
7528 return arg1;
7529
7530 case UNOP_ABS:
7531 arg1 = evaluate_subexp (NULL_TYPE, exp, pos, noside);
7532 if (noside == EVAL_SKIP)
7533 goto nosideret;
7534 if (value_less (arg1, value_zero (VALUE_TYPE (arg1), not_lval)))
7535 return value_neg (arg1);
7536 else
7537 return arg1;
7538
7539 case UNOP_IND:
7540 if (expect_type && TYPE_CODE (expect_type) == TYPE_CODE_PTR)
d2e4a39e 7541 expect_type = TYPE_TARGET_TYPE (check_typedef (expect_type));
14f9c5c9
AS
7542 arg1 = evaluate_subexp (expect_type, exp, pos, noside);
7543 if (noside == EVAL_SKIP)
7544 goto nosideret;
7545 type = check_typedef (VALUE_TYPE (arg1));
7546 if (noside == EVAL_AVOID_SIDE_EFFECTS)
7547 {
7548 if (ada_is_array_descriptor (type))
7549 /* GDB allows dereferencing GNAT array descriptors. */
7550 {
d2e4a39e 7551 struct type *arrType = ada_type_of_array (arg1, 0);
14f9c5c9
AS
7552 if (arrType == NULL)
7553 error ("Attempt to dereference null array pointer.");
7554 return value_at_lazy (arrType, 0, NULL);
7555 }
7556 else if (TYPE_CODE (type) == TYPE_CODE_PTR
d2e4a39e
AS
7557 || TYPE_CODE (type) == TYPE_CODE_REF
7558 /* In C you can dereference an array to get the 1st elt. */
7559 || TYPE_CODE (type) == TYPE_CODE_ARRAY)
7560 return
7561 value_zero
7562 (to_static_fixed_type
7563 (ada_aligned_type (check_typedef (TYPE_TARGET_TYPE (type)))),
7564 lval_memory);
14f9c5c9
AS
7565 else if (TYPE_CODE (type) == TYPE_CODE_INT)
7566 /* GDB allows dereferencing an int. */
7567 return value_zero (builtin_type_int, lval_memory);
7568 else
7569 error ("Attempt to take contents of a non-pointer value.");
7570 }
7571 arg1 = ada_coerce_ref (arg1);
7572 type = check_typedef (VALUE_TYPE (arg1));
d2e4a39e 7573
14f9c5c9
AS
7574 if (ada_is_array_descriptor (type))
7575 /* GDB allows dereferencing GNAT array descriptors. */
7576 return ada_coerce_to_simple_array (arg1);
7577 else
7578 return ada_value_ind (arg1);
7579
7580 case STRUCTOP_STRUCT:
7581 tem = longest_to_int (exp->elts[pc + 1].longconst);
7582 (*pos) += 3 + BYTES_TO_EXP_ELEM (tem + 1);
7583 arg1 = evaluate_subexp (NULL_TYPE, exp, pos, noside);
7584 if (noside == EVAL_SKIP)
7585 goto nosideret;
7586 if (noside == EVAL_AVOID_SIDE_EFFECTS)
d2e4a39e 7587 return value_zero (ada_aligned_type
14f9c5c9 7588 (ada_lookup_struct_elt_type (VALUE_TYPE (arg1),
d2e4a39e
AS
7589 &exp->elts[pc +
7590 2].string,
14f9c5c9
AS
7591 0, NULL)),
7592 lval_memory);
7593 else
7594 return unwrap_value (ada_value_struct_elt (arg1,
7595 &exp->elts[pc + 2].string,
7596 "record"));
7597 case OP_TYPE:
7598 /* The value is not supposed to be used. This is here to make it
7599 easier to accommodate expressions that contain types. */
7600 (*pos) += 2;
7601 if (noside == EVAL_SKIP)
7602 goto nosideret;
7603 else if (noside == EVAL_AVOID_SIDE_EFFECTS)
7604 return allocate_value (builtin_type_void);
d2e4a39e 7605 else
14f9c5c9 7606 error ("Attempt to use a type name as an expression");
d2e4a39e 7607
14f9c5c9
AS
7608 case STRUCTOP_PTR:
7609 tem = longest_to_int (exp->elts[pc + 1].longconst);
7610 (*pos) += 3 + BYTES_TO_EXP_ELEM (tem + 1);
7611 arg1 = evaluate_subexp (NULL_TYPE, exp, pos, noside);
7612 if (noside == EVAL_SKIP)
7613 goto nosideret;
7614 if (noside == EVAL_AVOID_SIDE_EFFECTS)
d2e4a39e 7615 return value_zero (ada_aligned_type
14f9c5c9 7616 (ada_lookup_struct_elt_type (VALUE_TYPE (arg1),
d2e4a39e
AS
7617 &exp->elts[pc +
7618 2].string,
14f9c5c9
AS
7619 0, NULL)),
7620 lval_memory);
7621 else
7622 return unwrap_value (ada_value_struct_elt (arg1,
7623 &exp->elts[pc + 2].string,
7624 "record access"));
7625 }
7626
7627nosideret:
7628 return value_from_longest (builtin_type_long, (LONGEST) 1);
7629}
14f9c5c9 7630\f
d2e4a39e 7631
14f9c5c9
AS
7632 /* Fixed point */
7633
7634/* If TYPE encodes an Ada fixed-point type, return the suffix of the
7635 type name that encodes the 'small and 'delta information.
7636 Otherwise, return NULL. */
7637
d2e4a39e 7638static const char *
ebf56fd3 7639fixed_type_info (struct type *type)
14f9c5c9 7640{
d2e4a39e 7641 const char *name = ada_type_name (type);
14f9c5c9
AS
7642 enum type_code code = (type == NULL) ? TYPE_CODE_UNDEF : TYPE_CODE (type);
7643
d2e4a39e
AS
7644 if ((code == TYPE_CODE_INT || code == TYPE_CODE_RANGE) && name != NULL)
7645 {
14f9c5c9
AS
7646 const char *tail = strstr (name, "___XF_");
7647 if (tail == NULL)
7648 return NULL;
d2e4a39e 7649 else
14f9c5c9
AS
7650 return tail + 5;
7651 }
7652 else if (code == TYPE_CODE_RANGE && TYPE_TARGET_TYPE (type) != type)
7653 return fixed_type_info (TYPE_TARGET_TYPE (type));
7654 else
7655 return NULL;
7656}
7657
7658/* Returns non-zero iff TYPE represents an Ada fixed-point type. */
7659
7660int
ebf56fd3 7661ada_is_fixed_point_type (struct type *type)
14f9c5c9
AS
7662{
7663 return fixed_type_info (type) != NULL;
7664}
7665
7666/* Assuming that TYPE is the representation of an Ada fixed-point
7667 type, return its delta, or -1 if the type is malformed and the
7668 delta cannot be determined. */
7669
7670DOUBLEST
ebf56fd3 7671ada_delta (struct type *type)
14f9c5c9
AS
7672{
7673 const char *encoding = fixed_type_info (type);
7674 long num, den;
7675
7676 if (sscanf (encoding, "_%ld_%ld", &num, &den) < 2)
7677 return -1.0;
d2e4a39e 7678 else
14f9c5c9
AS
7679 return (DOUBLEST) num / (DOUBLEST) den;
7680}
7681
7682/* Assuming that ada_is_fixed_point_type (TYPE), return the scaling
7683 factor ('SMALL value) associated with the type. */
7684
7685static DOUBLEST
ebf56fd3 7686scaling_factor (struct type *type)
14f9c5c9
AS
7687{
7688 const char *encoding = fixed_type_info (type);
7689 unsigned long num0, den0, num1, den1;
7690 int n;
d2e4a39e 7691
14f9c5c9
AS
7692 n = sscanf (encoding, "_%lu_%lu_%lu_%lu", &num0, &den0, &num1, &den1);
7693
7694 if (n < 2)
7695 return 1.0;
7696 else if (n == 4)
7697 return (DOUBLEST) num1 / (DOUBLEST) den1;
d2e4a39e 7698 else
14f9c5c9
AS
7699 return (DOUBLEST) num0 / (DOUBLEST) den0;
7700}
7701
7702
7703/* Assuming that X is the representation of a value of fixed-point
7704 type TYPE, return its floating-point equivalent. */
7705
7706DOUBLEST
ebf56fd3 7707ada_fixed_to_float (struct type *type, LONGEST x)
14f9c5c9 7708{
d2e4a39e 7709 return (DOUBLEST) x *scaling_factor (type);
14f9c5c9
AS
7710}
7711
7712/* The representation of a fixed-point value of type TYPE
7713 corresponding to the value X. */
7714
7715LONGEST
ebf56fd3 7716ada_float_to_fixed (struct type *type, DOUBLEST x)
14f9c5c9
AS
7717{
7718 return (LONGEST) (x / scaling_factor (type) + 0.5);
7719}
7720
7721
7722 /* VAX floating formats */
7723
7724/* Non-zero iff TYPE represents one of the special VAX floating-point
7725 types. */
7726int
d2e4a39e 7727ada_is_vax_floating_type (struct type *type)
14f9c5c9 7728{
d2e4a39e 7729 int name_len =
14f9c5c9 7730 (ada_type_name (type) == NULL) ? 0 : strlen (ada_type_name (type));
d2e4a39e 7731 return
14f9c5c9 7732 name_len > 6
d2e4a39e 7733 && (TYPE_CODE (type) == TYPE_CODE_INT
14f9c5c9
AS
7734 || TYPE_CODE (type) == TYPE_CODE_RANGE)
7735 && STREQN (ada_type_name (type) + name_len - 6, "___XF", 5);
7736}
7737
7738/* The type of special VAX floating-point type this is, assuming
7739 ada_is_vax_floating_point */
7740int
d2e4a39e 7741ada_vax_float_type_suffix (struct type *type)
14f9c5c9 7742{
d2e4a39e 7743 return ada_type_name (type)[strlen (ada_type_name (type)) - 1];
14f9c5c9
AS
7744}
7745
7746/* A value representing the special debugging function that outputs
7747 VAX floating-point values of the type represented by TYPE. Assumes
7748 ada_is_vax_floating_type (TYPE). */
d2e4a39e
AS
7749struct value *
7750ada_vax_float_print_function (struct type *type)
7751{
7752 switch (ada_vax_float_type_suffix (type))
7753 {
7754 case 'F':
7755 return get_var_value ("DEBUG_STRING_F", 0);
7756 case 'D':
7757 return get_var_value ("DEBUG_STRING_D", 0);
7758 case 'G':
7759 return get_var_value ("DEBUG_STRING_G", 0);
7760 default:
7761 error ("invalid VAX floating-point type");
7762 }
14f9c5c9 7763}
14f9c5c9 7764\f
d2e4a39e 7765
14f9c5c9
AS
7766 /* Range types */
7767
7768/* Scan STR beginning at position K for a discriminant name, and
7769 return the value of that discriminant field of DVAL in *PX. If
7770 PNEW_K is not null, put the position of the character beyond the
7771 name scanned in *PNEW_K. Return 1 if successful; return 0 and do
7772 not alter *PX and *PNEW_K if unsuccessful. */
7773
7774static int
d2e4a39e
AS
7775scan_discrim_bound (char *, int k, struct value *dval, LONGEST * px,
7776 int *pnew_k)
14f9c5c9
AS
7777{
7778 static char *bound_buffer = NULL;
7779 static size_t bound_buffer_len = 0;
7780 char *bound;
7781 char *pend;
d2e4a39e 7782 struct value *bound_val;
14f9c5c9
AS
7783
7784 if (dval == NULL || str == NULL || str[k] == '\0')
7785 return 0;
7786
d2e4a39e 7787 pend = strstr (str + k, "__");
14f9c5c9
AS
7788 if (pend == NULL)
7789 {
d2e4a39e 7790 bound = str + k;
14f9c5c9
AS
7791 k += strlen (bound);
7792 }
d2e4a39e 7793 else
14f9c5c9 7794 {
d2e4a39e 7795 GROW_VECT (bound_buffer, bound_buffer_len, pend - (str + k) + 1);
14f9c5c9 7796 bound = bound_buffer;
d2e4a39e
AS
7797 strncpy (bound_buffer, str + k, pend - (str + k));
7798 bound[pend - (str + k)] = '\0';
7799 k = pend - str;
14f9c5c9 7800 }
d2e4a39e
AS
7801
7802 bound_val = ada_search_struct_field (bound, dval, 0, VALUE_TYPE (dval));
14f9c5c9
AS
7803 if (bound_val == NULL)
7804 return 0;
7805
7806 *px = value_as_long (bound_val);
7807 if (pnew_k != NULL)
7808 *pnew_k = k;
7809 return 1;
7810}
7811
7812/* Value of variable named NAME in the current environment. If
7813 no such variable found, then if ERR_MSG is null, returns 0, and
7814 otherwise causes an error with message ERR_MSG. */
d2e4a39e
AS
7815static struct value *
7816get_var_value (char *name, char *err_msg)
14f9c5c9 7817{
d2e4a39e
AS
7818 struct symbol **syms;
7819 struct block **blocks;
14f9c5c9
AS
7820 int nsyms;
7821
d2e4a39e 7822 nsyms =
176620f1 7823 ada_lookup_symbol_list (name, get_selected_block (NULL), VAR_DOMAIN,
d2e4a39e 7824 &syms, &blocks);
14f9c5c9
AS
7825
7826 if (nsyms != 1)
7827 {
7828 if (err_msg == NULL)
7829 return 0;
7830 else
7831 error ("%s", err_msg);
7832 }
7833
7834 return value_of_variable (syms[0], blocks[0]);
7835}
d2e4a39e 7836
14f9c5c9
AS
7837/* Value of integer variable named NAME in the current environment. If
7838 no such variable found, then if ERR_MSG is null, returns 0, and sets
7839 *FLAG to 0. If successful, sets *FLAG to 1. */
7840LONGEST
d2e4a39e 7841get_int_var_value (char *name, char *err_msg, int *flag)
14f9c5c9 7842{
d2e4a39e
AS
7843 struct value *var_val = get_var_value (name, err_msg);
7844
14f9c5c9
AS
7845 if (var_val == 0)
7846 {
7847 if (flag != NULL)
7848 *flag = 0;
7849 return 0;
7850 }
7851 else
7852 {
7853 if (flag != NULL)
7854 *flag = 1;
7855 return value_as_long (var_val);
7856 }
7857}
d2e4a39e 7858
14f9c5c9
AS
7859
7860/* Return a range type whose base type is that of the range type named
7861 NAME in the current environment, and whose bounds are calculated
7862 from NAME according to the GNAT range encoding conventions.
7863 Extract discriminant values, if needed, from DVAL. If a new type
7864 must be created, allocate in OBJFILE's space. The bounds
7865 information, in general, is encoded in NAME, the base type given in
7866 the named range type. */
7867
d2e4a39e 7868static struct type *
ebf56fd3 7869to_fixed_range_type (char *name, struct value *dval, struct objfile *objfile)
14f9c5c9
AS
7870{
7871 struct type *raw_type = ada_find_any_type (name);
7872 struct type *base_type;
7873 LONGEST low, high;
d2e4a39e 7874 char *subtype_info;
14f9c5c9
AS
7875
7876 if (raw_type == NULL)
7877 base_type = builtin_type_int;
7878 else if (TYPE_CODE (raw_type) == TYPE_CODE_RANGE)
7879 base_type = TYPE_TARGET_TYPE (raw_type);
7880 else
7881 base_type = raw_type;
7882
7883 subtype_info = strstr (name, "___XD");
7884 if (subtype_info == NULL)
7885 return raw_type;
7886 else
7887 {
7888 static char *name_buf = NULL;
7889 static size_t name_len = 0;
7890 int prefix_len = subtype_info - name;
7891 LONGEST L, U;
7892 struct type *type;
7893 char *bounds_str;
7894 int n;
7895
7896 GROW_VECT (name_buf, name_len, prefix_len + 5);
7897 strncpy (name_buf, name, prefix_len);
7898 name_buf[prefix_len] = '\0';
7899
7900 subtype_info += 5;
7901 bounds_str = strchr (subtype_info, '_');
7902 n = 1;
7903
d2e4a39e 7904 if (*subtype_info == 'L')
14f9c5c9 7905 {
d2e4a39e
AS
7906 if (!ada_scan_number (bounds_str, n, &L, &n)
7907 && !scan_discrim_bound (bounds_str, n, dval, &L, &n))
14f9c5c9
AS
7908 return raw_type;
7909 if (bounds_str[n] == '_')
7910 n += 2;
d2e4a39e 7911 else if (bounds_str[n] == '.') /* FIXME? SGI Workshop kludge. */
14f9c5c9
AS
7912 n += 1;
7913 subtype_info += 1;
7914 }
d2e4a39e 7915 else
14f9c5c9 7916 {
d2e4a39e 7917 strcpy (name_buf + prefix_len, "___L");
14f9c5c9
AS
7918 L = get_int_var_value (name_buf, "Index bound unknown.", NULL);
7919 }
7920
d2e4a39e 7921 if (*subtype_info == 'U')
14f9c5c9 7922 {
d2e4a39e 7923 if (!ada_scan_number (bounds_str, n, &U, &n)
14f9c5c9
AS
7924 && !scan_discrim_bound (bounds_str, n, dval, &U, &n))
7925 return raw_type;
7926 }
d2e4a39e 7927 else
14f9c5c9 7928 {
d2e4a39e 7929 strcpy (name_buf + prefix_len, "___U");
14f9c5c9
AS
7930 U = get_int_var_value (name_buf, "Index bound unknown.", NULL);
7931 }
7932
d2e4a39e 7933 if (objfile == NULL)
14f9c5c9
AS
7934 objfile = TYPE_OBJFILE (base_type);
7935 type = create_range_type (alloc_type (objfile), base_type, L, U);
d2e4a39e 7936 TYPE_NAME (type) = name;
14f9c5c9
AS
7937 return type;
7938 }
7939}
7940
7941/* True iff NAME is the name of a range type. */
7942int
d2e4a39e 7943ada_is_range_type_name (const char *name)
14f9c5c9
AS
7944{
7945 return (name != NULL && strstr (name, "___XD"));
d2e4a39e 7946}
14f9c5c9 7947\f
d2e4a39e 7948
14f9c5c9
AS
7949 /* Modular types */
7950
7951/* True iff TYPE is an Ada modular type. */
7952int
d2e4a39e 7953ada_is_modular_type (struct type *type)
14f9c5c9
AS
7954{
7955 /* FIXME: base_type should be declared in gdbtypes.h, implemented in
d2e4a39e
AS
7956 valarith.c */
7957 struct type *subranged_type; /* = base_type (type); */
14f9c5c9
AS
7958
7959 return (subranged_type != NULL && TYPE_CODE (type) == TYPE_CODE_RANGE
7960 && TYPE_CODE (subranged_type) != TYPE_CODE_ENUM
7961 && TYPE_UNSIGNED (subranged_type));
7962}
7963
7964/* Assuming ada_is_modular_type (TYPE), the modulus of TYPE. */
7965LONGEST
d2e4a39e 7966ada_modulus (struct type * type)
14f9c5c9 7967{
d2e4a39e 7968 return TYPE_HIGH_BOUND (type) + 1;
14f9c5c9 7969}
d2e4a39e 7970\f
14f9c5c9
AS
7971
7972
14f9c5c9
AS
7973 /* Operators */
7974
7975/* Table mapping opcodes into strings for printing operators
7976 and precedences of the operators. */
7977
d2e4a39e
AS
7978static const struct op_print ada_op_print_tab[] = {
7979 {":=", BINOP_ASSIGN, PREC_ASSIGN, 1},
7980 {"or else", BINOP_LOGICAL_OR, PREC_LOGICAL_OR, 0},
7981 {"and then", BINOP_LOGICAL_AND, PREC_LOGICAL_AND, 0},
7982 {"or", BINOP_BITWISE_IOR, PREC_BITWISE_IOR, 0},
7983 {"xor", BINOP_BITWISE_XOR, PREC_BITWISE_XOR, 0},
7984 {"and", BINOP_BITWISE_AND, PREC_BITWISE_AND, 0},
7985 {"=", BINOP_EQUAL, PREC_EQUAL, 0},
7986 {"/=", BINOP_NOTEQUAL, PREC_EQUAL, 0},
7987 {"<=", BINOP_LEQ, PREC_ORDER, 0},
7988 {">=", BINOP_GEQ, PREC_ORDER, 0},
7989 {">", BINOP_GTR, PREC_ORDER, 0},
7990 {"<", BINOP_LESS, PREC_ORDER, 0},
7991 {">>", BINOP_RSH, PREC_SHIFT, 0},
7992 {"<<", BINOP_LSH, PREC_SHIFT, 0},
7993 {"+", BINOP_ADD, PREC_ADD, 0},
7994 {"-", BINOP_SUB, PREC_ADD, 0},
7995 {"&", BINOP_CONCAT, PREC_ADD, 0},
7996 {"*", BINOP_MUL, PREC_MUL, 0},
7997 {"/", BINOP_DIV, PREC_MUL, 0},
7998 {"rem", BINOP_REM, PREC_MUL, 0},
7999 {"mod", BINOP_MOD, PREC_MUL, 0},
8000 {"**", BINOP_EXP, PREC_REPEAT, 0},
8001 {"@", BINOP_REPEAT, PREC_REPEAT, 0},
8002 {"-", UNOP_NEG, PREC_PREFIX, 0},
8003 {"+", UNOP_PLUS, PREC_PREFIX, 0},
8004 {"not ", UNOP_LOGICAL_NOT, PREC_PREFIX, 0},
8005 {"not ", UNOP_COMPLEMENT, PREC_PREFIX, 0},
8006 {"abs ", UNOP_ABS, PREC_PREFIX, 0},
8007 {".all", UNOP_IND, PREC_SUFFIX, 1}, /* FIXME: postfix .ALL */
8008 {"'access", UNOP_ADDR, PREC_SUFFIX, 1}, /* FIXME: postfix 'ACCESS */
8009 {NULL, 0, 0, 0}
14f9c5c9
AS
8010};
8011\f
8012 /* Assorted Types and Interfaces */
8013
d2e4a39e
AS
8014struct type *builtin_type_ada_int;
8015struct type *builtin_type_ada_short;
8016struct type *builtin_type_ada_long;
8017struct type *builtin_type_ada_long_long;
8018struct type *builtin_type_ada_char;
8019struct type *builtin_type_ada_float;
8020struct type *builtin_type_ada_double;
8021struct type *builtin_type_ada_long_double;
8022struct type *builtin_type_ada_natural;
8023struct type *builtin_type_ada_positive;
8024struct type *builtin_type_ada_system_address;
8025
8026struct type **const (ada_builtin_types[]) =
8027{
8028
14f9c5c9 8029 &builtin_type_ada_int,
d2e4a39e
AS
8030 &builtin_type_ada_long,
8031 &builtin_type_ada_short,
8032 &builtin_type_ada_char,
8033 &builtin_type_ada_float,
8034 &builtin_type_ada_double,
8035 &builtin_type_ada_long_long,
8036 &builtin_type_ada_long_double,
8037 &builtin_type_ada_natural, &builtin_type_ada_positive,
8038 /* The following types are carried over from C for convenience. */
8039&builtin_type_int,
8040 &builtin_type_long,
8041 &builtin_type_short,
8042 &builtin_type_char,
8043 &builtin_type_float,
8044 &builtin_type_double,
8045 &builtin_type_long_long,
8046 &builtin_type_void,
8047 &builtin_type_signed_char,
8048 &builtin_type_unsigned_char,
8049 &builtin_type_unsigned_short,
8050 &builtin_type_unsigned_int,
8051 &builtin_type_unsigned_long,
8052 &builtin_type_unsigned_long_long,
8053 &builtin_type_long_double,
8054 &builtin_type_complex, &builtin_type_double_complex, 0};
14f9c5c9
AS
8055
8056/* Not really used, but needed in the ada_language_defn. */
d2e4a39e
AS
8057static void
8058emit_char (int c, struct ui_file *stream, int quoter)
14f9c5c9
AS
8059{
8060 ada_emit_char (c, stream, quoter, 1);
8061}
8062
8063const struct language_defn ada_language_defn = {
8064 "ada", /* Language name */
8065 /* language_ada, */
8066 language_unknown,
8067 /* FIXME: language_ada should be defined in defs.h */
8068 ada_builtin_types,
8069 range_check_off,
8070 type_check_off,
8071 case_sensitive_on, /* Yes, Ada is case-insensitive, but
8072 * that's not quite what this means. */
8073 ada_parse,
8074 ada_error,
8075 ada_evaluate_subexp,
8076 ada_printchar, /* Print a character constant */
8077 ada_printstr, /* Function to print string constant */
8078 emit_char, /* Function to print single char (not used) */
8079 ada_create_fundamental_type, /* Create fundamental type in this language */
8080 ada_print_type, /* Print a type using appropriate syntax */
8081 ada_val_print, /* Print a value using appropriate syntax */
8082 ada_value_print, /* Print a top-level value */
f636b87d 8083 NULL, /* Language specific skip_trampoline */
5f9a71c3
DC
8084 value_of_this, /* value_of_this */
8085 basic_lookup_symbol_nonlocal, /* lookup_symbol_nonlocal */
9a3d7dfd 8086 NULL, /* Language specific symbol demangler */
d2e4a39e 8087 {"", "", "", ""}, /* Binary format info */
14f9c5c9 8088#if 0
d2e4a39e
AS
8089 {"8#%lo#", "8#", "o", "#"}, /* Octal format info */
8090 {"%ld", "", "d", ""}, /* Decimal format info */
8091 {"16#%lx#", "16#", "x", "#"}, /* Hex format info */
14f9c5c9
AS
8092#else
8093 /* Copied from c-lang.c. */
d2e4a39e
AS
8094 {"0%lo", "0", "o", ""}, /* Octal format info */
8095 {"%ld", "", "d", ""}, /* Decimal format info */
8096 {"0x%lx", "0x", "x", ""}, /* Hex format info */
14f9c5c9
AS
8097#endif
8098 ada_op_print_tab, /* expression operators for printing */
8099 1, /* c-style arrays (FIXME?) */
8100 0, /* String lower bound (FIXME?) */
8101 &builtin_type_ada_char,
8102 LANG_MAGIC
8103};
8104
8105void
4dc81987 8106_initialize_ada_language (void)
14f9c5c9
AS
8107{
8108 builtin_type_ada_int =
8109 init_type (TYPE_CODE_INT, TARGET_INT_BIT / TARGET_CHAR_BIT,
d2e4a39e 8110 0, "integer", (struct objfile *) NULL);
14f9c5c9
AS
8111 builtin_type_ada_long =
8112 init_type (TYPE_CODE_INT, TARGET_LONG_BIT / TARGET_CHAR_BIT,
d2e4a39e 8113 0, "long_integer", (struct objfile *) NULL);
14f9c5c9
AS
8114 builtin_type_ada_short =
8115 init_type (TYPE_CODE_INT, TARGET_SHORT_BIT / TARGET_CHAR_BIT,
d2e4a39e 8116 0, "short_integer", (struct objfile *) NULL);
14f9c5c9
AS
8117 builtin_type_ada_char =
8118 init_type (TYPE_CODE_INT, TARGET_CHAR_BIT / TARGET_CHAR_BIT,
d2e4a39e 8119 0, "character", (struct objfile *) NULL);
14f9c5c9
AS
8120 builtin_type_ada_float =
8121 init_type (TYPE_CODE_FLT, TARGET_FLOAT_BIT / TARGET_CHAR_BIT,
d2e4a39e 8122 0, "float", (struct objfile *) NULL);
14f9c5c9
AS
8123 builtin_type_ada_double =
8124 init_type (TYPE_CODE_FLT, TARGET_DOUBLE_BIT / TARGET_CHAR_BIT,
d2e4a39e 8125 0, "long_float", (struct objfile *) NULL);
14f9c5c9
AS
8126 builtin_type_ada_long_long =
8127 init_type (TYPE_CODE_INT, TARGET_LONG_LONG_BIT / TARGET_CHAR_BIT,
d2e4a39e 8128 0, "long_long_integer", (struct objfile *) NULL);
14f9c5c9
AS
8129 builtin_type_ada_long_double =
8130 init_type (TYPE_CODE_FLT, TARGET_LONG_DOUBLE_BIT / TARGET_CHAR_BIT,
d2e4a39e 8131 0, "long_long_float", (struct objfile *) NULL);
14f9c5c9
AS
8132 builtin_type_ada_natural =
8133 init_type (TYPE_CODE_INT, TARGET_INT_BIT / TARGET_CHAR_BIT,
d2e4a39e 8134 0, "natural", (struct objfile *) NULL);
14f9c5c9
AS
8135 builtin_type_ada_positive =
8136 init_type (TYPE_CODE_INT, TARGET_INT_BIT / TARGET_CHAR_BIT,
d2e4a39e 8137 0, "positive", (struct objfile *) NULL);
14f9c5c9
AS
8138
8139
d2e4a39e
AS
8140 builtin_type_ada_system_address =
8141 lookup_pointer_type (init_type (TYPE_CODE_VOID, 1, 0, "void",
14f9c5c9
AS
8142 (struct objfile *) NULL));
8143 TYPE_NAME (builtin_type_ada_system_address) = "system__address";
8144
8145 add_language (&ada_language_defn);
8146
d2e4a39e 8147 add_show_from_set
14f9c5c9 8148 (add_set_cmd ("varsize-limit", class_support, var_uinteger,
d2e4a39e 8149 (char *) &varsize_limit,
14f9c5c9 8150 "Set maximum bytes in dynamic-sized object.",
d2e4a39e 8151 &setlist), &showlist);
14f9c5c9
AS
8152 varsize_limit = 65536;
8153
8154 add_com ("begin", class_breakpoint, begin_command,
8155 "Start the debugged program, stopping at the beginning of the\n\
8156main program. You may specify command-line arguments to give it, as for\n\
8157the \"run\" command (q.v.).");
8158}
8159
8160
8161/* Create a fundamental Ada type using default reasonable for the current
8162 target machine.
8163
8164 Some object/debugging file formats (DWARF version 1, COFF, etc) do not
8165 define fundamental types such as "int" or "double". Others (stabs or
8166 DWARF version 2, etc) do define fundamental types. For the formats which
8167 don't provide fundamental types, gdb can create such types using this
8168 function.
8169
8170 FIXME: Some compilers distinguish explicitly signed integral types
8171 (signed short, signed int, signed long) from "regular" integral types
8172 (short, int, long) in the debugging information. There is some dis-
8173 agreement as to how useful this feature is. In particular, gcc does
8174 not support this. Also, only some debugging formats allow the
8175 distinction to be passed on to a debugger. For now, we always just
8176 use "short", "int", or "long" as the type name, for both the implicit
8177 and explicitly signed types. This also makes life easier for the
8178 gdb test suite since we don't have to account for the differences
8179 in output depending upon what the compiler and debugging format
8180 support. We will probably have to re-examine the issue when gdb
8181 starts taking it's fundamental type information directly from the
8182 debugging information supplied by the compiler. fnf@cygnus.com */
8183
8184static struct type *
ebf56fd3 8185ada_create_fundamental_type (struct objfile *objfile, int typeid)
14f9c5c9
AS
8186{
8187 struct type *type = NULL;
8188
8189 switch (typeid)
8190 {
d2e4a39e
AS
8191 default:
8192 /* FIXME: For now, if we are asked to produce a type not in this
8193 language, create the equivalent of a C integer type with the
8194 name "<?type?>". When all the dust settles from the type
8195 reconstruction work, this should probably become an error. */
8196 type = init_type (TYPE_CODE_INT,
8197 TARGET_INT_BIT / TARGET_CHAR_BIT,
8198 0, "<?type?>", objfile);
8199 warning ("internal error: no Ada fundamental type %d", typeid);
8200 break;
8201 case FT_VOID:
8202 type = init_type (TYPE_CODE_VOID,
8203 TARGET_CHAR_BIT / TARGET_CHAR_BIT,
8204 0, "void", objfile);
8205 break;
8206 case FT_CHAR:
8207 type = init_type (TYPE_CODE_INT,
8208 TARGET_CHAR_BIT / TARGET_CHAR_BIT,
8209 0, "character", objfile);
8210 break;
8211 case FT_SIGNED_CHAR:
8212 type = init_type (TYPE_CODE_INT,
8213 TARGET_CHAR_BIT / TARGET_CHAR_BIT,
8214 0, "signed char", objfile);
8215 break;
8216 case FT_UNSIGNED_CHAR:
8217 type = init_type (TYPE_CODE_INT,
8218 TARGET_CHAR_BIT / TARGET_CHAR_BIT,
8219 TYPE_FLAG_UNSIGNED, "unsigned char", objfile);
8220 break;
8221 case FT_SHORT:
8222 type = init_type (TYPE_CODE_INT,
8223 TARGET_SHORT_BIT / TARGET_CHAR_BIT,
8224 0, "short_integer", objfile);
8225 break;
8226 case FT_SIGNED_SHORT:
8227 type = init_type (TYPE_CODE_INT,
8228 TARGET_SHORT_BIT / TARGET_CHAR_BIT,
8229 0, "short_integer", objfile);
8230 break;
8231 case FT_UNSIGNED_SHORT:
8232 type = init_type (TYPE_CODE_INT,
8233 TARGET_SHORT_BIT / TARGET_CHAR_BIT,
8234 TYPE_FLAG_UNSIGNED, "unsigned short", objfile);
8235 break;
8236 case FT_INTEGER:
8237 type = init_type (TYPE_CODE_INT,
8238 TARGET_INT_BIT / TARGET_CHAR_BIT,
8239 0, "integer", objfile);
8240 break;
8241 case FT_SIGNED_INTEGER:
8242 type = init_type (TYPE_CODE_INT, TARGET_INT_BIT / TARGET_CHAR_BIT, 0, "integer", objfile); /* FIXME -fnf */
8243 break;
8244 case FT_UNSIGNED_INTEGER:
8245 type = init_type (TYPE_CODE_INT,
8246 TARGET_INT_BIT / TARGET_CHAR_BIT,
8247 TYPE_FLAG_UNSIGNED, "unsigned int", objfile);
8248 break;
8249 case FT_LONG:
8250 type = init_type (TYPE_CODE_INT,
8251 TARGET_LONG_BIT / TARGET_CHAR_BIT,
8252 0, "long_integer", objfile);
8253 break;
8254 case FT_SIGNED_LONG:
8255 type = init_type (TYPE_CODE_INT,
8256 TARGET_LONG_BIT / TARGET_CHAR_BIT,
8257 0, "long_integer", objfile);
8258 break;
8259 case FT_UNSIGNED_LONG:
8260 type = init_type (TYPE_CODE_INT,
8261 TARGET_LONG_BIT / TARGET_CHAR_BIT,
8262 TYPE_FLAG_UNSIGNED, "unsigned long", objfile);
8263 break;
8264 case FT_LONG_LONG:
8265 type = init_type (TYPE_CODE_INT,
8266 TARGET_LONG_LONG_BIT / TARGET_CHAR_BIT,
8267 0, "long_long_integer", objfile);
8268 break;
8269 case FT_SIGNED_LONG_LONG:
8270 type = init_type (TYPE_CODE_INT,
8271 TARGET_LONG_LONG_BIT / TARGET_CHAR_BIT,
8272 0, "long_long_integer", objfile);
8273 break;
8274 case FT_UNSIGNED_LONG_LONG:
8275 type = init_type (TYPE_CODE_INT,
8276 TARGET_LONG_LONG_BIT / TARGET_CHAR_BIT,
8277 TYPE_FLAG_UNSIGNED, "unsigned long long", objfile);
8278 break;
8279 case FT_FLOAT:
8280 type = init_type (TYPE_CODE_FLT,
8281 TARGET_FLOAT_BIT / TARGET_CHAR_BIT,
8282 0, "float", objfile);
8283 break;
8284 case FT_DBL_PREC_FLOAT:
8285 type = init_type (TYPE_CODE_FLT,
8286 TARGET_DOUBLE_BIT / TARGET_CHAR_BIT,
8287 0, "long_float", objfile);
8288 break;
8289 case FT_EXT_PREC_FLOAT:
8290 type = init_type (TYPE_CODE_FLT,
8291 TARGET_LONG_DOUBLE_BIT / TARGET_CHAR_BIT,
8292 0, "long_long_float", objfile);
8293 break;
8294 }
14f9c5c9
AS
8295 return (type);
8296}
8297
d2e4a39e
AS
8298void
8299ada_dump_symtab (struct symtab *s)
14f9c5c9
AS
8300{
8301 int i;
8302 fprintf (stderr, "New symtab: [\n");
d2e4a39e
AS
8303 fprintf (stderr, " Name: %s/%s;\n",
8304 s->dirname ? s->dirname : "?", s->filename ? s->filename : "?");
14f9c5c9
AS
8305 fprintf (stderr, " Format: %s;\n", s->debugformat);
8306 if (s->linetable != NULL)
8307 {
8308 fprintf (stderr, " Line table (section %d):\n", s->block_line_section);
8309 for (i = 0; i < s->linetable->nitems; i += 1)
8310 {
d2e4a39e 8311 struct linetable_entry *e = s->linetable->item + i;
14f9c5c9
AS
8312 fprintf (stderr, " %4ld: %8lx\n", (long) e->line, (long) e->pc);
8313 }
8314 }
8315 fprintf (stderr, "]\n");
8316}
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