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197e01b6 1/* Ada language support routines for GDB, the GNU debugger. Copyright (C)
10a2c479 2
f7f9143b
JB
3 1992, 1993, 1994, 1997, 1998, 1999, 2000, 2003, 2004, 2005, 2007
4 Free Software Foundation, Inc.
14f9c5c9
AS
5
6This file is part of GDB.
7
8This program is free software; you can redistribute it and/or modify
9it under the terms of the GNU General Public License as published by
10the Free Software Foundation; either version 2 of the License, or
11(at your option) any later version.
12
13This program is distributed in the hope that it will be useful,
14but WITHOUT ANY WARRANTY; without even the implied warranty of
15MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
16GNU General Public License for more details.
17
18You should have received a copy of the GNU General Public License
19along with this program; if not, write to the Free Software
197e01b6
EZ
20Foundation, Inc., 51 Franklin Street, Fifth Floor,
21Boston, MA 02110-1301, USA. */
14f9c5c9 22
96d887e8 23
4c4b4cd2 24#include "defs.h"
14f9c5c9 25#include <stdio.h>
0c30c098 26#include "gdb_string.h"
14f9c5c9
AS
27#include <ctype.h>
28#include <stdarg.h>
29#include "demangle.h"
4c4b4cd2
PH
30#include "gdb_regex.h"
31#include "frame.h"
14f9c5c9
AS
32#include "symtab.h"
33#include "gdbtypes.h"
34#include "gdbcmd.h"
35#include "expression.h"
36#include "parser-defs.h"
37#include "language.h"
38#include "c-lang.h"
39#include "inferior.h"
40#include "symfile.h"
41#include "objfiles.h"
42#include "breakpoint.h"
43#include "gdbcore.h"
4c4b4cd2
PH
44#include "hashtab.h"
45#include "gdb_obstack.h"
14f9c5c9 46#include "ada-lang.h"
4c4b4cd2
PH
47#include "completer.h"
48#include "gdb_stat.h"
49#ifdef UI_OUT
14f9c5c9 50#include "ui-out.h"
4c4b4cd2 51#endif
fe898f56 52#include "block.h"
04714b91 53#include "infcall.h"
de4f826b 54#include "dictionary.h"
60250e8b 55#include "exceptions.h"
f7f9143b
JB
56#include "annotate.h"
57#include "valprint.h"
9bbc9174 58#include "source.h"
14f9c5c9 59
4c4b4cd2
PH
60#ifndef ADA_RETAIN_DOTS
61#define ADA_RETAIN_DOTS 0
62#endif
63
64/* Define whether or not the C operator '/' truncates towards zero for
65 differently signed operands (truncation direction is undefined in C).
66 Copied from valarith.c. */
67
68#ifndef TRUNCATION_TOWARDS_ZERO
69#define TRUNCATION_TOWARDS_ZERO ((-5 / 2) == -2)
70#endif
71
4c4b4cd2 72
4c4b4cd2 73static void extract_string (CORE_ADDR addr, char *buf);
14f9c5c9 74
d2e4a39e 75static struct type *ada_create_fundamental_type (struct objfile *, int);
14f9c5c9
AS
76
77static void modify_general_field (char *, LONGEST, int, int);
78
d2e4a39e 79static struct type *desc_base_type (struct type *);
14f9c5c9 80
d2e4a39e 81static struct type *desc_bounds_type (struct type *);
14f9c5c9 82
d2e4a39e 83static struct value *desc_bounds (struct value *);
14f9c5c9 84
d2e4a39e 85static int fat_pntr_bounds_bitpos (struct type *);
14f9c5c9 86
d2e4a39e 87static int fat_pntr_bounds_bitsize (struct type *);
14f9c5c9 88
d2e4a39e 89static struct type *desc_data_type (struct type *);
14f9c5c9 90
d2e4a39e 91static struct value *desc_data (struct value *);
14f9c5c9 92
d2e4a39e 93static int fat_pntr_data_bitpos (struct type *);
14f9c5c9 94
d2e4a39e 95static int fat_pntr_data_bitsize (struct type *);
14f9c5c9 96
d2e4a39e 97static struct value *desc_one_bound (struct value *, int, int);
14f9c5c9 98
d2e4a39e 99static int desc_bound_bitpos (struct type *, int, int);
14f9c5c9 100
d2e4a39e 101static int desc_bound_bitsize (struct type *, int, int);
14f9c5c9 102
d2e4a39e 103static struct type *desc_index_type (struct type *, int);
14f9c5c9 104
d2e4a39e 105static int desc_arity (struct type *);
14f9c5c9 106
d2e4a39e 107static int ada_type_match (struct type *, struct type *, int);
14f9c5c9 108
d2e4a39e 109static int ada_args_match (struct symbol *, struct value **, int);
14f9c5c9 110
4c4b4cd2 111static struct value *ensure_lval (struct value *, CORE_ADDR *);
14f9c5c9 112
d2e4a39e 113static struct value *convert_actual (struct value *, struct type *,
4c4b4cd2 114 CORE_ADDR *);
14f9c5c9 115
d2e4a39e 116static struct value *make_array_descriptor (struct type *, struct value *,
4c4b4cd2 117 CORE_ADDR *);
14f9c5c9 118
4c4b4cd2 119static void ada_add_block_symbols (struct obstack *,
76a01679 120 struct block *, const char *,
4c4b4cd2 121 domain_enum, struct objfile *,
76a01679 122 struct symtab *, int);
14f9c5c9 123
4c4b4cd2 124static int is_nonfunction (struct ada_symbol_info *, int);
14f9c5c9 125
76a01679
JB
126static void add_defn_to_vec (struct obstack *, struct symbol *,
127 struct block *, struct symtab *);
14f9c5c9 128
4c4b4cd2
PH
129static int num_defns_collected (struct obstack *);
130
131static struct ada_symbol_info *defns_collected (struct obstack *, int);
14f9c5c9 132
d2e4a39e 133static struct partial_symbol *ada_lookup_partial_symbol (struct partial_symtab
76a01679
JB
134 *, const char *, int,
135 domain_enum, int);
14f9c5c9 136
d2e4a39e 137static struct symtab *symtab_for_sym (struct symbol *);
14f9c5c9 138
4c4b4cd2 139static struct value *resolve_subexp (struct expression **, int *, int,
76a01679 140 struct type *);
14f9c5c9 141
d2e4a39e 142static void replace_operator_with_call (struct expression **, int, int, int,
4c4b4cd2 143 struct symbol *, struct block *);
14f9c5c9 144
d2e4a39e 145static int possible_user_operator_p (enum exp_opcode, struct value **);
14f9c5c9 146
4c4b4cd2
PH
147static char *ada_op_name (enum exp_opcode);
148
149static const char *ada_decoded_op_name (enum exp_opcode);
14f9c5c9 150
d2e4a39e 151static int numeric_type_p (struct type *);
14f9c5c9 152
d2e4a39e 153static int integer_type_p (struct type *);
14f9c5c9 154
d2e4a39e 155static int scalar_type_p (struct type *);
14f9c5c9 156
d2e4a39e 157static int discrete_type_p (struct type *);
14f9c5c9 158
4c4b4cd2 159static struct type *ada_lookup_struct_elt_type (struct type *, char *,
76a01679 160 int, int, int *);
4c4b4cd2 161
d2e4a39e 162static struct value *evaluate_subexp (struct type *, struct expression *,
4c4b4cd2 163 int *, enum noside);
14f9c5c9 164
d2e4a39e 165static struct value *evaluate_subexp_type (struct expression *, int *);
14f9c5c9 166
d2e4a39e 167static int is_dynamic_field (struct type *, int);
14f9c5c9 168
10a2c479 169static struct type *to_fixed_variant_branch_type (struct type *,
fc1a4b47 170 const gdb_byte *,
4c4b4cd2
PH
171 CORE_ADDR, struct value *);
172
173static struct type *to_fixed_array_type (struct type *, struct value *, int);
14f9c5c9 174
d2e4a39e 175static struct type *to_fixed_range_type (char *, struct value *,
4c4b4cd2 176 struct objfile *);
14f9c5c9 177
d2e4a39e 178static struct type *to_static_fixed_type (struct type *);
14f9c5c9 179
d2e4a39e 180static struct value *unwrap_value (struct value *);
14f9c5c9 181
d2e4a39e 182static struct type *packed_array_type (struct type *, long *);
14f9c5c9 183
d2e4a39e 184static struct type *decode_packed_array_type (struct type *);
14f9c5c9 185
d2e4a39e 186static struct value *decode_packed_array (struct value *);
14f9c5c9 187
d2e4a39e 188static struct value *value_subscript_packed (struct value *, int,
4c4b4cd2 189 struct value **);
14f9c5c9 190
52ce6436
PH
191static void move_bits (gdb_byte *, int, const gdb_byte *, int, int);
192
4c4b4cd2
PH
193static struct value *coerce_unspec_val_to_type (struct value *,
194 struct type *);
14f9c5c9 195
d2e4a39e 196static struct value *get_var_value (char *, char *);
14f9c5c9 197
d2e4a39e 198static int lesseq_defined_than (struct symbol *, struct symbol *);
14f9c5c9 199
d2e4a39e 200static int equiv_types (struct type *, struct type *);
14f9c5c9 201
d2e4a39e 202static int is_name_suffix (const char *);
14f9c5c9 203
d2e4a39e 204static int wild_match (const char *, int, const char *);
14f9c5c9 205
d2e4a39e 206static struct value *ada_coerce_ref (struct value *);
14f9c5c9 207
4c4b4cd2
PH
208static LONGEST pos_atr (struct value *);
209
d2e4a39e 210static struct value *value_pos_atr (struct value *);
14f9c5c9 211
d2e4a39e 212static struct value *value_val_atr (struct type *, struct value *);
14f9c5c9 213
4c4b4cd2
PH
214static struct symbol *standard_lookup (const char *, const struct block *,
215 domain_enum);
14f9c5c9 216
4c4b4cd2
PH
217static struct value *ada_search_struct_field (char *, struct value *, int,
218 struct type *);
219
220static struct value *ada_value_primitive_field (struct value *, int, int,
221 struct type *);
222
76a01679 223static int find_struct_field (char *, struct type *, int,
52ce6436 224 struct type **, int *, int *, int *, int *);
4c4b4cd2
PH
225
226static struct value *ada_to_fixed_value_create (struct type *, CORE_ADDR,
227 struct value *);
228
229static struct value *ada_to_fixed_value (struct value *);
14f9c5c9 230
4c4b4cd2
PH
231static int ada_resolve_function (struct ada_symbol_info *, int,
232 struct value **, int, const char *,
233 struct type *);
234
235static struct value *ada_coerce_to_simple_array (struct value *);
236
237static int ada_is_direct_array_type (struct type *);
238
72d5681a
PH
239static void ada_language_arch_info (struct gdbarch *,
240 struct language_arch_info *);
714e53ab
PH
241
242static void check_size (const struct type *);
52ce6436
PH
243
244static struct value *ada_index_struct_field (int, struct value *, int,
245 struct type *);
246
247static struct value *assign_aggregate (struct value *, struct value *,
248 struct expression *, int *, enum noside);
249
250static void aggregate_assign_from_choices (struct value *, struct value *,
251 struct expression *,
252 int *, LONGEST *, int *,
253 int, LONGEST, LONGEST);
254
255static void aggregate_assign_positional (struct value *, struct value *,
256 struct expression *,
257 int *, LONGEST *, int *, int,
258 LONGEST, LONGEST);
259
260
261static void aggregate_assign_others (struct value *, struct value *,
262 struct expression *,
263 int *, LONGEST *, int, LONGEST, LONGEST);
264
265
266static void add_component_interval (LONGEST, LONGEST, LONGEST *, int *, int);
267
268
269static struct value *ada_evaluate_subexp (struct type *, struct expression *,
270 int *, enum noside);
271
272static void ada_forward_operator_length (struct expression *, int, int *,
273 int *);
4c4b4cd2
PH
274\f
275
76a01679 276
4c4b4cd2 277/* Maximum-sized dynamic type. */
14f9c5c9
AS
278static unsigned int varsize_limit;
279
4c4b4cd2
PH
280/* FIXME: brobecker/2003-09-17: No longer a const because it is
281 returned by a function that does not return a const char *. */
282static char *ada_completer_word_break_characters =
283#ifdef VMS
284 " \t\n!@#%^&*()+=|~`}{[]\";:?/,-";
285#else
14f9c5c9 286 " \t\n!@#$%^&*()+=|~`}{[]\";:?/,-";
4c4b4cd2 287#endif
14f9c5c9 288
4c4b4cd2 289/* The name of the symbol to use to get the name of the main subprogram. */
76a01679 290static const char ADA_MAIN_PROGRAM_SYMBOL_NAME[]
4c4b4cd2 291 = "__gnat_ada_main_program_name";
14f9c5c9 292
4c4b4cd2
PH
293/* The name of the runtime function called when an exception is raised. */
294static const char raise_sym_name[] = "__gnat_raise_nodefer_with_msg";
14f9c5c9 295
4c4b4cd2
PH
296/* The name of the runtime function called when an unhandled exception
297 is raised. */
298static const char raise_unhandled_sym_name[] = "__gnat_unhandled_exception";
299
300/* The name of the runtime function called when an assert failure is
301 raised. */
302static const char raise_assert_sym_name[] =
303 "system__assertions__raise_assert_failure";
304
4c4b4cd2
PH
305/* A string that reflects the longest exception expression rewrite,
306 aside from the exception name. */
307static const char longest_exception_template[] =
308 "'__gnat_raise_nodefer_with_msg' if long_integer(e) = long_integer(&)";
309
310/* Limit on the number of warnings to raise per expression evaluation. */
311static int warning_limit = 2;
312
313/* Number of warning messages issued; reset to 0 by cleanups after
314 expression evaluation. */
315static int warnings_issued = 0;
316
317static const char *known_runtime_file_name_patterns[] = {
318 ADA_KNOWN_RUNTIME_FILE_NAME_PATTERNS NULL
319};
320
321static const char *known_auxiliary_function_name_patterns[] = {
322 ADA_KNOWN_AUXILIARY_FUNCTION_NAME_PATTERNS NULL
323};
324
325/* Space for allocating results of ada_lookup_symbol_list. */
326static struct obstack symbol_list_obstack;
327
328 /* Utilities */
329
96d887e8 330
4c4b4cd2
PH
331static char *
332ada_get_gdb_completer_word_break_characters (void)
333{
334 return ada_completer_word_break_characters;
335}
336
e79af960
JB
337/* Print an array element index using the Ada syntax. */
338
339static void
340ada_print_array_index (struct value *index_value, struct ui_file *stream,
341 int format, enum val_prettyprint pretty)
342{
343 LA_VALUE_PRINT (index_value, stream, format, pretty);
344 fprintf_filtered (stream, " => ");
345}
346
4c4b4cd2
PH
347/* Read the string located at ADDR from the inferior and store the
348 result into BUF. */
349
350static void
14f9c5c9
AS
351extract_string (CORE_ADDR addr, char *buf)
352{
d2e4a39e 353 int char_index = 0;
14f9c5c9 354
4c4b4cd2
PH
355 /* Loop, reading one byte at a time, until we reach the '\000'
356 end-of-string marker. */
d2e4a39e
AS
357 do
358 {
359 target_read_memory (addr + char_index * sizeof (char),
4c4b4cd2 360 buf + char_index * sizeof (char), sizeof (char));
d2e4a39e
AS
361 char_index++;
362 }
363 while (buf[char_index - 1] != '\000');
14f9c5c9
AS
364}
365
f27cf670 366/* Assuming VECT points to an array of *SIZE objects of size
14f9c5c9 367 ELEMENT_SIZE, grow it to contain at least MIN_SIZE objects,
f27cf670 368 updating *SIZE as necessary and returning the (new) array. */
14f9c5c9 369
f27cf670
AS
370void *
371grow_vect (void *vect, size_t *size, size_t min_size, int element_size)
14f9c5c9 372{
d2e4a39e
AS
373 if (*size < min_size)
374 {
375 *size *= 2;
376 if (*size < min_size)
4c4b4cd2 377 *size = min_size;
f27cf670 378 vect = xrealloc (vect, *size * element_size);
d2e4a39e 379 }
f27cf670 380 return vect;
14f9c5c9
AS
381}
382
383/* True (non-zero) iff TARGET matches FIELD_NAME up to any trailing
4c4b4cd2 384 suffix of FIELD_NAME beginning "___". */
14f9c5c9
AS
385
386static int
ebf56fd3 387field_name_match (const char *field_name, const char *target)
14f9c5c9
AS
388{
389 int len = strlen (target);
d2e4a39e 390 return
4c4b4cd2
PH
391 (strncmp (field_name, target, len) == 0
392 && (field_name[len] == '\0'
393 || (strncmp (field_name + len, "___", 3) == 0
76a01679
JB
394 && strcmp (field_name + strlen (field_name) - 6,
395 "___XVN") != 0)));
14f9c5c9
AS
396}
397
398
4c4b4cd2
PH
399/* Assuming TYPE is a TYPE_CODE_STRUCT, find the field whose name matches
400 FIELD_NAME, and return its index. This function also handles fields
401 whose name have ___ suffixes because the compiler sometimes alters
402 their name by adding such a suffix to represent fields with certain
403 constraints. If the field could not be found, return a negative
404 number if MAYBE_MISSING is set. Otherwise raise an error. */
405
406int
407ada_get_field_index (const struct type *type, const char *field_name,
408 int maybe_missing)
409{
410 int fieldno;
411 for (fieldno = 0; fieldno < TYPE_NFIELDS (type); fieldno++)
412 if (field_name_match (TYPE_FIELD_NAME (type, fieldno), field_name))
413 return fieldno;
414
415 if (!maybe_missing)
323e0a4a 416 error (_("Unable to find field %s in struct %s. Aborting"),
4c4b4cd2
PH
417 field_name, TYPE_NAME (type));
418
419 return -1;
420}
421
422/* The length of the prefix of NAME prior to any "___" suffix. */
14f9c5c9
AS
423
424int
d2e4a39e 425ada_name_prefix_len (const char *name)
14f9c5c9
AS
426{
427 if (name == NULL)
428 return 0;
d2e4a39e 429 else
14f9c5c9 430 {
d2e4a39e 431 const char *p = strstr (name, "___");
14f9c5c9 432 if (p == NULL)
4c4b4cd2 433 return strlen (name);
14f9c5c9 434 else
4c4b4cd2 435 return p - name;
14f9c5c9
AS
436 }
437}
438
4c4b4cd2
PH
439/* Return non-zero if SUFFIX is a suffix of STR.
440 Return zero if STR is null. */
441
14f9c5c9 442static int
d2e4a39e 443is_suffix (const char *str, const char *suffix)
14f9c5c9
AS
444{
445 int len1, len2;
446 if (str == NULL)
447 return 0;
448 len1 = strlen (str);
449 len2 = strlen (suffix);
4c4b4cd2 450 return (len1 >= len2 && strcmp (str + len1 - len2, suffix) == 0);
14f9c5c9
AS
451}
452
453/* Create a value of type TYPE whose contents come from VALADDR, if it
4c4b4cd2
PH
454 is non-null, and whose memory address (in the inferior) is
455 ADDRESS. */
456
d2e4a39e 457struct value *
10a2c479 458value_from_contents_and_address (struct type *type,
fc1a4b47 459 const gdb_byte *valaddr,
4c4b4cd2 460 CORE_ADDR address)
14f9c5c9 461{
d2e4a39e
AS
462 struct value *v = allocate_value (type);
463 if (valaddr == NULL)
dfa52d88 464 set_value_lazy (v, 1);
14f9c5c9 465 else
990a07ab 466 memcpy (value_contents_raw (v), valaddr, TYPE_LENGTH (type));
14f9c5c9
AS
467 VALUE_ADDRESS (v) = address;
468 if (address != 0)
469 VALUE_LVAL (v) = lval_memory;
470 return v;
471}
472
4c4b4cd2
PH
473/* The contents of value VAL, treated as a value of type TYPE. The
474 result is an lval in memory if VAL is. */
14f9c5c9 475
d2e4a39e 476static struct value *
4c4b4cd2 477coerce_unspec_val_to_type (struct value *val, struct type *type)
14f9c5c9 478{
61ee279c 479 type = ada_check_typedef (type);
df407dfe 480 if (value_type (val) == type)
4c4b4cd2 481 return val;
d2e4a39e 482 else
14f9c5c9 483 {
4c4b4cd2
PH
484 struct value *result;
485
486 /* Make sure that the object size is not unreasonable before
487 trying to allocate some memory for it. */
714e53ab 488 check_size (type);
4c4b4cd2
PH
489
490 result = allocate_value (type);
491 VALUE_LVAL (result) = VALUE_LVAL (val);
9bbda503
AC
492 set_value_bitsize (result, value_bitsize (val));
493 set_value_bitpos (result, value_bitpos (val));
df407dfe 494 VALUE_ADDRESS (result) = VALUE_ADDRESS (val) + value_offset (val);
d69fe07e 495 if (value_lazy (val)
df407dfe 496 || TYPE_LENGTH (type) > TYPE_LENGTH (value_type (val)))
dfa52d88 497 set_value_lazy (result, 1);
d2e4a39e 498 else
0fd88904 499 memcpy (value_contents_raw (result), value_contents (val),
4c4b4cd2 500 TYPE_LENGTH (type));
14f9c5c9
AS
501 return result;
502 }
503}
504
fc1a4b47
AC
505static const gdb_byte *
506cond_offset_host (const gdb_byte *valaddr, long offset)
14f9c5c9
AS
507{
508 if (valaddr == NULL)
509 return NULL;
510 else
511 return valaddr + offset;
512}
513
514static CORE_ADDR
ebf56fd3 515cond_offset_target (CORE_ADDR address, long offset)
14f9c5c9
AS
516{
517 if (address == 0)
518 return 0;
d2e4a39e 519 else
14f9c5c9
AS
520 return address + offset;
521}
522
4c4b4cd2
PH
523/* Issue a warning (as for the definition of warning in utils.c, but
524 with exactly one argument rather than ...), unless the limit on the
525 number of warnings has passed during the evaluation of the current
526 expression. */
a2249542 527
77109804
AC
528/* FIXME: cagney/2004-10-10: This function is mimicking the behavior
529 provided by "complaint". */
530static void lim_warning (const char *format, ...) ATTR_FORMAT (printf, 1, 2);
531
14f9c5c9 532static void
a2249542 533lim_warning (const char *format, ...)
14f9c5c9 534{
a2249542
MK
535 va_list args;
536 va_start (args, format);
537
4c4b4cd2
PH
538 warnings_issued += 1;
539 if (warnings_issued <= warning_limit)
a2249542
MK
540 vwarning (format, args);
541
542 va_end (args);
4c4b4cd2
PH
543}
544
714e53ab
PH
545/* Issue an error if the size of an object of type T is unreasonable,
546 i.e. if it would be a bad idea to allocate a value of this type in
547 GDB. */
548
549static void
550check_size (const struct type *type)
551{
552 if (TYPE_LENGTH (type) > varsize_limit)
323e0a4a 553 error (_("object size is larger than varsize-limit"));
714e53ab
PH
554}
555
556
c3e5cd34
PH
557/* Note: would have used MAX_OF_TYPE and MIN_OF_TYPE macros from
558 gdbtypes.h, but some of the necessary definitions in that file
559 seem to have gone missing. */
560
561/* Maximum value of a SIZE-byte signed integer type. */
4c4b4cd2 562static LONGEST
c3e5cd34 563max_of_size (int size)
4c4b4cd2 564{
76a01679
JB
565 LONGEST top_bit = (LONGEST) 1 << (size * 8 - 2);
566 return top_bit | (top_bit - 1);
4c4b4cd2
PH
567}
568
c3e5cd34 569/* Minimum value of a SIZE-byte signed integer type. */
4c4b4cd2 570static LONGEST
c3e5cd34 571min_of_size (int size)
4c4b4cd2 572{
c3e5cd34 573 return -max_of_size (size) - 1;
4c4b4cd2
PH
574}
575
c3e5cd34 576/* Maximum value of a SIZE-byte unsigned integer type. */
4c4b4cd2 577static ULONGEST
c3e5cd34 578umax_of_size (int size)
4c4b4cd2 579{
76a01679
JB
580 ULONGEST top_bit = (ULONGEST) 1 << (size * 8 - 1);
581 return top_bit | (top_bit - 1);
4c4b4cd2
PH
582}
583
c3e5cd34
PH
584/* Maximum value of integral type T, as a signed quantity. */
585static LONGEST
586max_of_type (struct type *t)
4c4b4cd2 587{
c3e5cd34
PH
588 if (TYPE_UNSIGNED (t))
589 return (LONGEST) umax_of_size (TYPE_LENGTH (t));
590 else
591 return max_of_size (TYPE_LENGTH (t));
592}
593
594/* Minimum value of integral type T, as a signed quantity. */
595static LONGEST
596min_of_type (struct type *t)
597{
598 if (TYPE_UNSIGNED (t))
599 return 0;
600 else
601 return min_of_size (TYPE_LENGTH (t));
4c4b4cd2
PH
602}
603
604/* The largest value in the domain of TYPE, a discrete type, as an integer. */
605static struct value *
606discrete_type_high_bound (struct type *type)
607{
76a01679 608 switch (TYPE_CODE (type))
4c4b4cd2
PH
609 {
610 case TYPE_CODE_RANGE:
611 return value_from_longest (TYPE_TARGET_TYPE (type),
76a01679 612 TYPE_HIGH_BOUND (type));
4c4b4cd2 613 case TYPE_CODE_ENUM:
76a01679
JB
614 return
615 value_from_longest (type,
616 TYPE_FIELD_BITPOS (type,
617 TYPE_NFIELDS (type) - 1));
618 case TYPE_CODE_INT:
c3e5cd34 619 return value_from_longest (type, max_of_type (type));
4c4b4cd2 620 default:
323e0a4a 621 error (_("Unexpected type in discrete_type_high_bound."));
4c4b4cd2
PH
622 }
623}
624
625/* The largest value in the domain of TYPE, a discrete type, as an integer. */
626static struct value *
627discrete_type_low_bound (struct type *type)
628{
76a01679 629 switch (TYPE_CODE (type))
4c4b4cd2
PH
630 {
631 case TYPE_CODE_RANGE:
632 return value_from_longest (TYPE_TARGET_TYPE (type),
76a01679 633 TYPE_LOW_BOUND (type));
4c4b4cd2 634 case TYPE_CODE_ENUM:
76a01679
JB
635 return value_from_longest (type, TYPE_FIELD_BITPOS (type, 0));
636 case TYPE_CODE_INT:
c3e5cd34 637 return value_from_longest (type, min_of_type (type));
4c4b4cd2 638 default:
323e0a4a 639 error (_("Unexpected type in discrete_type_low_bound."));
4c4b4cd2
PH
640 }
641}
642
643/* The identity on non-range types. For range types, the underlying
76a01679 644 non-range scalar type. */
4c4b4cd2
PH
645
646static struct type *
647base_type (struct type *type)
648{
649 while (type != NULL && TYPE_CODE (type) == TYPE_CODE_RANGE)
650 {
76a01679
JB
651 if (type == TYPE_TARGET_TYPE (type) || TYPE_TARGET_TYPE (type) == NULL)
652 return type;
4c4b4cd2
PH
653 type = TYPE_TARGET_TYPE (type);
654 }
655 return type;
14f9c5c9 656}
4c4b4cd2 657\f
76a01679 658
4c4b4cd2 659 /* Language Selection */
14f9c5c9
AS
660
661/* If the main program is in Ada, return language_ada, otherwise return LANG
662 (the main program is in Ada iif the adainit symbol is found).
663
4c4b4cd2 664 MAIN_PST is not used. */
d2e4a39e 665
14f9c5c9 666enum language
d2e4a39e 667ada_update_initial_language (enum language lang,
4c4b4cd2 668 struct partial_symtab *main_pst)
14f9c5c9 669{
d2e4a39e 670 if (lookup_minimal_symbol ("adainit", (const char *) NULL,
4c4b4cd2
PH
671 (struct objfile *) NULL) != NULL)
672 return language_ada;
14f9c5c9
AS
673
674 return lang;
675}
96d887e8
PH
676
677/* If the main procedure is written in Ada, then return its name.
678 The result is good until the next call. Return NULL if the main
679 procedure doesn't appear to be in Ada. */
680
681char *
682ada_main_name (void)
683{
684 struct minimal_symbol *msym;
685 CORE_ADDR main_program_name_addr;
686 static char main_program_name[1024];
6c038f32 687
96d887e8
PH
688 /* For Ada, the name of the main procedure is stored in a specific
689 string constant, generated by the binder. Look for that symbol,
690 extract its address, and then read that string. If we didn't find
691 that string, then most probably the main procedure is not written
692 in Ada. */
693 msym = lookup_minimal_symbol (ADA_MAIN_PROGRAM_SYMBOL_NAME, NULL, NULL);
694
695 if (msym != NULL)
696 {
697 main_program_name_addr = SYMBOL_VALUE_ADDRESS (msym);
698 if (main_program_name_addr == 0)
323e0a4a 699 error (_("Invalid address for Ada main program name."));
96d887e8
PH
700
701 extract_string (main_program_name_addr, main_program_name);
702 return main_program_name;
703 }
704
705 /* The main procedure doesn't seem to be in Ada. */
706 return NULL;
707}
14f9c5c9 708\f
4c4b4cd2 709 /* Symbols */
d2e4a39e 710
4c4b4cd2
PH
711/* Table of Ada operators and their GNAT-encoded names. Last entry is pair
712 of NULLs. */
14f9c5c9 713
d2e4a39e
AS
714const struct ada_opname_map ada_opname_table[] = {
715 {"Oadd", "\"+\"", BINOP_ADD},
716 {"Osubtract", "\"-\"", BINOP_SUB},
717 {"Omultiply", "\"*\"", BINOP_MUL},
718 {"Odivide", "\"/\"", BINOP_DIV},
719 {"Omod", "\"mod\"", BINOP_MOD},
720 {"Orem", "\"rem\"", BINOP_REM},
721 {"Oexpon", "\"**\"", BINOP_EXP},
722 {"Olt", "\"<\"", BINOP_LESS},
723 {"Ole", "\"<=\"", BINOP_LEQ},
724 {"Ogt", "\">\"", BINOP_GTR},
725 {"Oge", "\">=\"", BINOP_GEQ},
726 {"Oeq", "\"=\"", BINOP_EQUAL},
727 {"One", "\"/=\"", BINOP_NOTEQUAL},
728 {"Oand", "\"and\"", BINOP_BITWISE_AND},
729 {"Oor", "\"or\"", BINOP_BITWISE_IOR},
730 {"Oxor", "\"xor\"", BINOP_BITWISE_XOR},
731 {"Oconcat", "\"&\"", BINOP_CONCAT},
732 {"Oabs", "\"abs\"", UNOP_ABS},
733 {"Onot", "\"not\"", UNOP_LOGICAL_NOT},
734 {"Oadd", "\"+\"", UNOP_PLUS},
735 {"Osubtract", "\"-\"", UNOP_NEG},
736 {NULL, NULL}
14f9c5c9
AS
737};
738
4c4b4cd2
PH
739/* Return non-zero if STR should be suppressed in info listings. */
740
14f9c5c9 741static int
d2e4a39e 742is_suppressed_name (const char *str)
14f9c5c9 743{
4c4b4cd2 744 if (strncmp (str, "_ada_", 5) == 0)
14f9c5c9
AS
745 str += 5;
746 if (str[0] == '_' || str[0] == '\000')
747 return 1;
748 else
749 {
d2e4a39e
AS
750 const char *p;
751 const char *suffix = strstr (str, "___");
14f9c5c9 752 if (suffix != NULL && suffix[3] != 'X')
4c4b4cd2 753 return 1;
14f9c5c9 754 if (suffix == NULL)
4c4b4cd2 755 suffix = str + strlen (str);
d2e4a39e 756 for (p = suffix - 1; p != str; p -= 1)
4c4b4cd2
PH
757 if (isupper (*p))
758 {
759 int i;
760 if (p[0] == 'X' && p[-1] != '_')
761 goto OK;
762 if (*p != 'O')
763 return 1;
764 for (i = 0; ada_opname_table[i].encoded != NULL; i += 1)
765 if (strncmp (ada_opname_table[i].encoded, p,
766 strlen (ada_opname_table[i].encoded)) == 0)
767 goto OK;
768 return 1;
769 OK:;
770 }
14f9c5c9
AS
771 return 0;
772 }
773}
774
4c4b4cd2
PH
775/* The "encoded" form of DECODED, according to GNAT conventions.
776 The result is valid until the next call to ada_encode. */
777
14f9c5c9 778char *
4c4b4cd2 779ada_encode (const char *decoded)
14f9c5c9 780{
4c4b4cd2
PH
781 static char *encoding_buffer = NULL;
782 static size_t encoding_buffer_size = 0;
d2e4a39e 783 const char *p;
14f9c5c9 784 int k;
d2e4a39e 785
4c4b4cd2 786 if (decoded == NULL)
14f9c5c9
AS
787 return NULL;
788
4c4b4cd2
PH
789 GROW_VECT (encoding_buffer, encoding_buffer_size,
790 2 * strlen (decoded) + 10);
14f9c5c9
AS
791
792 k = 0;
4c4b4cd2 793 for (p = decoded; *p != '\0'; p += 1)
14f9c5c9 794 {
4c4b4cd2
PH
795 if (!ADA_RETAIN_DOTS && *p == '.')
796 {
797 encoding_buffer[k] = encoding_buffer[k + 1] = '_';
798 k += 2;
799 }
14f9c5c9 800 else if (*p == '"')
4c4b4cd2
PH
801 {
802 const struct ada_opname_map *mapping;
803
804 for (mapping = ada_opname_table;
1265e4aa
JB
805 mapping->encoded != NULL
806 && strncmp (mapping->decoded, p,
807 strlen (mapping->decoded)) != 0; mapping += 1)
4c4b4cd2
PH
808 ;
809 if (mapping->encoded == NULL)
323e0a4a 810 error (_("invalid Ada operator name: %s"), p);
4c4b4cd2
PH
811 strcpy (encoding_buffer + k, mapping->encoded);
812 k += strlen (mapping->encoded);
813 break;
814 }
d2e4a39e 815 else
4c4b4cd2
PH
816 {
817 encoding_buffer[k] = *p;
818 k += 1;
819 }
14f9c5c9
AS
820 }
821
4c4b4cd2
PH
822 encoding_buffer[k] = '\0';
823 return encoding_buffer;
14f9c5c9
AS
824}
825
826/* Return NAME folded to lower case, or, if surrounded by single
4c4b4cd2
PH
827 quotes, unfolded, but with the quotes stripped away. Result good
828 to next call. */
829
d2e4a39e
AS
830char *
831ada_fold_name (const char *name)
14f9c5c9 832{
d2e4a39e 833 static char *fold_buffer = NULL;
14f9c5c9
AS
834 static size_t fold_buffer_size = 0;
835
836 int len = strlen (name);
d2e4a39e 837 GROW_VECT (fold_buffer, fold_buffer_size, len + 1);
14f9c5c9
AS
838
839 if (name[0] == '\'')
840 {
d2e4a39e
AS
841 strncpy (fold_buffer, name + 1, len - 2);
842 fold_buffer[len - 2] = '\000';
14f9c5c9
AS
843 }
844 else
845 {
846 int i;
847 for (i = 0; i <= len; i += 1)
4c4b4cd2 848 fold_buffer[i] = tolower (name[i]);
14f9c5c9
AS
849 }
850
851 return fold_buffer;
852}
853
529cad9c
PH
854/* Return nonzero if C is either a digit or a lowercase alphabet character. */
855
856static int
857is_lower_alphanum (const char c)
858{
859 return (isdigit (c) || (isalpha (c) && islower (c)));
860}
861
862/* Decode:
863 . Discard trailing .{DIGIT}+, ${DIGIT}+ or ___{DIGIT}+
4c4b4cd2
PH
864 These are suffixes introduced by GNAT5 to nested subprogram
865 names, and do not serve any purpose for the debugger.
529cad9c
PH
866 . Discard final __{DIGIT}+ or $({DIGIT}+(__{DIGIT}+)*)
867 . Discard final N if it follows a lowercase alphanumeric character
868 (protected object subprogram suffix)
869 . Convert other instances of embedded "__" to `.'.
870 . Discard leading _ada_.
871 . Convert operator names to the appropriate quoted symbols.
872 . Remove everything after first ___ if it is followed by
14f9c5c9 873 'X'.
529cad9c
PH
874 . Replace TK__ with __, and a trailing B or TKB with nothing.
875 . Replace _[EB]{DIGIT}+[sb] with nothing (protected object entries)
876 . Put symbols that should be suppressed in <...> brackets.
877 . Remove trailing X[bn]* suffix (indicating names in package bodies).
14f9c5c9 878
4c4b4cd2
PH
879 The resulting string is valid until the next call of ada_decode.
880 If the string is unchanged by demangling, the original string pointer
881 is returned. */
882
883const char *
884ada_decode (const char *encoded)
14f9c5c9
AS
885{
886 int i, j;
887 int len0;
d2e4a39e 888 const char *p;
4c4b4cd2 889 char *decoded;
14f9c5c9 890 int at_start_name;
4c4b4cd2
PH
891 static char *decoding_buffer = NULL;
892 static size_t decoding_buffer_size = 0;
d2e4a39e 893
4c4b4cd2
PH
894 if (strncmp (encoded, "_ada_", 5) == 0)
895 encoded += 5;
14f9c5c9 896
4c4b4cd2 897 if (encoded[0] == '_' || encoded[0] == '<')
14f9c5c9
AS
898 goto Suppress;
899
529cad9c 900 /* Remove trailing .{DIGIT}+ or ___{DIGIT}+ or __{DIGIT}+. */
4c4b4cd2
PH
901 len0 = strlen (encoded);
902 if (len0 > 1 && isdigit (encoded[len0 - 1]))
903 {
904 i = len0 - 2;
905 while (i > 0 && isdigit (encoded[i]))
906 i--;
907 if (i >= 0 && encoded[i] == '.')
908 len0 = i;
529cad9c
PH
909 else if (i >= 0 && encoded[i] == '$')
910 len0 = i;
4c4b4cd2
PH
911 else if (i >= 2 && strncmp (encoded + i - 2, "___", 3) == 0)
912 len0 = i - 2;
529cad9c
PH
913 else if (i >= 1 && strncmp (encoded + i - 1, "__", 2) == 0)
914 len0 = i - 1;
4c4b4cd2
PH
915 }
916
529cad9c
PH
917 /* Remove trailing N. */
918
919 /* Protected entry subprograms are broken into two
920 separate subprograms: The first one is unprotected, and has
921 a 'N' suffix; the second is the protected version, and has
922 the 'P' suffix. The second calls the first one after handling
923 the protection. Since the P subprograms are internally generated,
924 we leave these names undecoded, giving the user a clue that this
925 entity is internal. */
926
927 if (len0 > 1
928 && encoded[len0 - 1] == 'N'
929 && (isdigit (encoded[len0 - 2]) || islower (encoded[len0 - 2])))
930 len0--;
931
4c4b4cd2
PH
932 /* Remove the ___X.* suffix if present. Do not forget to verify that
933 the suffix is located before the current "end" of ENCODED. We want
934 to avoid re-matching parts of ENCODED that have previously been
935 marked as discarded (by decrementing LEN0). */
936 p = strstr (encoded, "___");
937 if (p != NULL && p - encoded < len0 - 3)
14f9c5c9
AS
938 {
939 if (p[3] == 'X')
4c4b4cd2 940 len0 = p - encoded;
14f9c5c9 941 else
4c4b4cd2 942 goto Suppress;
14f9c5c9 943 }
4c4b4cd2
PH
944
945 if (len0 > 3 && strncmp (encoded + len0 - 3, "TKB", 3) == 0)
14f9c5c9 946 len0 -= 3;
76a01679 947
4c4b4cd2 948 if (len0 > 1 && strncmp (encoded + len0 - 1, "B", 1) == 0)
14f9c5c9
AS
949 len0 -= 1;
950
4c4b4cd2
PH
951 /* Make decoded big enough for possible expansion by operator name. */
952 GROW_VECT (decoding_buffer, decoding_buffer_size, 2 * len0 + 1);
953 decoded = decoding_buffer;
14f9c5c9 954
4c4b4cd2 955 if (len0 > 1 && isdigit (encoded[len0 - 1]))
d2e4a39e 956 {
4c4b4cd2
PH
957 i = len0 - 2;
958 while ((i >= 0 && isdigit (encoded[i]))
959 || (i >= 1 && encoded[i] == '_' && isdigit (encoded[i - 1])))
960 i -= 1;
961 if (i > 1 && encoded[i] == '_' && encoded[i - 1] == '_')
962 len0 = i - 1;
963 else if (encoded[i] == '$')
964 len0 = i;
d2e4a39e 965 }
14f9c5c9 966
4c4b4cd2
PH
967 for (i = 0, j = 0; i < len0 && !isalpha (encoded[i]); i += 1, j += 1)
968 decoded[j] = encoded[i];
14f9c5c9
AS
969
970 at_start_name = 1;
971 while (i < len0)
972 {
4c4b4cd2
PH
973 if (at_start_name && encoded[i] == 'O')
974 {
975 int k;
976 for (k = 0; ada_opname_table[k].encoded != NULL; k += 1)
977 {
978 int op_len = strlen (ada_opname_table[k].encoded);
06d5cf63
JB
979 if ((strncmp (ada_opname_table[k].encoded + 1, encoded + i + 1,
980 op_len - 1) == 0)
981 && !isalnum (encoded[i + op_len]))
4c4b4cd2
PH
982 {
983 strcpy (decoded + j, ada_opname_table[k].decoded);
984 at_start_name = 0;
985 i += op_len;
986 j += strlen (ada_opname_table[k].decoded);
987 break;
988 }
989 }
990 if (ada_opname_table[k].encoded != NULL)
991 continue;
992 }
14f9c5c9
AS
993 at_start_name = 0;
994
529cad9c
PH
995 /* Replace "TK__" with "__", which will eventually be translated
996 into "." (just below). */
997
4c4b4cd2
PH
998 if (i < len0 - 4 && strncmp (encoded + i, "TK__", 4) == 0)
999 i += 2;
529cad9c
PH
1000
1001 /* Remove _E{DIGITS}+[sb] */
1002
1003 /* Just as for protected object subprograms, there are 2 categories
1004 of subprograms created by the compiler for each entry. The first
1005 one implements the actual entry code, and has a suffix following
1006 the convention above; the second one implements the barrier and
1007 uses the same convention as above, except that the 'E' is replaced
1008 by a 'B'.
1009
1010 Just as above, we do not decode the name of barrier functions
1011 to give the user a clue that the code he is debugging has been
1012 internally generated. */
1013
1014 if (len0 - i > 3 && encoded [i] == '_' && encoded[i+1] == 'E'
1015 && isdigit (encoded[i+2]))
1016 {
1017 int k = i + 3;
1018
1019 while (k < len0 && isdigit (encoded[k]))
1020 k++;
1021
1022 if (k < len0
1023 && (encoded[k] == 'b' || encoded[k] == 's'))
1024 {
1025 k++;
1026 /* Just as an extra precaution, make sure that if this
1027 suffix is followed by anything else, it is a '_'.
1028 Otherwise, we matched this sequence by accident. */
1029 if (k == len0
1030 || (k < len0 && encoded[k] == '_'))
1031 i = k;
1032 }
1033 }
1034
1035 /* Remove trailing "N" in [a-z0-9]+N__. The N is added by
1036 the GNAT front-end in protected object subprograms. */
1037
1038 if (i < len0 + 3
1039 && encoded[i] == 'N' && encoded[i+1] == '_' && encoded[i+2] == '_')
1040 {
1041 /* Backtrack a bit up until we reach either the begining of
1042 the encoded name, or "__". Make sure that we only find
1043 digits or lowercase characters. */
1044 const char *ptr = encoded + i - 1;
1045
1046 while (ptr >= encoded && is_lower_alphanum (ptr[0]))
1047 ptr--;
1048 if (ptr < encoded
1049 || (ptr > encoded && ptr[0] == '_' && ptr[-1] == '_'))
1050 i++;
1051 }
1052
4c4b4cd2
PH
1053 if (encoded[i] == 'X' && i != 0 && isalnum (encoded[i - 1]))
1054 {
1055 do
1056 i += 1;
1057 while (i < len0 && (encoded[i] == 'b' || encoded[i] == 'n'));
1058 if (i < len0)
1059 goto Suppress;
1060 }
1061 else if (!ADA_RETAIN_DOTS
1062 && i < len0 - 2 && encoded[i] == '_' && encoded[i + 1] == '_')
1063 {
1064 decoded[j] = '.';
1065 at_start_name = 1;
1066 i += 2;
1067 j += 1;
1068 }
14f9c5c9 1069 else
4c4b4cd2
PH
1070 {
1071 decoded[j] = encoded[i];
1072 i += 1;
1073 j += 1;
1074 }
14f9c5c9 1075 }
4c4b4cd2 1076 decoded[j] = '\000';
14f9c5c9 1077
4c4b4cd2
PH
1078 for (i = 0; decoded[i] != '\0'; i += 1)
1079 if (isupper (decoded[i]) || decoded[i] == ' ')
14f9c5c9
AS
1080 goto Suppress;
1081
4c4b4cd2
PH
1082 if (strcmp (decoded, encoded) == 0)
1083 return encoded;
1084 else
1085 return decoded;
14f9c5c9
AS
1086
1087Suppress:
4c4b4cd2
PH
1088 GROW_VECT (decoding_buffer, decoding_buffer_size, strlen (encoded) + 3);
1089 decoded = decoding_buffer;
1090 if (encoded[0] == '<')
1091 strcpy (decoded, encoded);
14f9c5c9 1092 else
4c4b4cd2
PH
1093 sprintf (decoded, "<%s>", encoded);
1094 return decoded;
1095
1096}
1097
1098/* Table for keeping permanent unique copies of decoded names. Once
1099 allocated, names in this table are never released. While this is a
1100 storage leak, it should not be significant unless there are massive
1101 changes in the set of decoded names in successive versions of a
1102 symbol table loaded during a single session. */
1103static struct htab *decoded_names_store;
1104
1105/* Returns the decoded name of GSYMBOL, as for ada_decode, caching it
1106 in the language-specific part of GSYMBOL, if it has not been
1107 previously computed. Tries to save the decoded name in the same
1108 obstack as GSYMBOL, if possible, and otherwise on the heap (so that,
1109 in any case, the decoded symbol has a lifetime at least that of
1110 GSYMBOL).
1111 The GSYMBOL parameter is "mutable" in the C++ sense: logically
1112 const, but nevertheless modified to a semantically equivalent form
1113 when a decoded name is cached in it.
76a01679 1114*/
4c4b4cd2 1115
76a01679
JB
1116char *
1117ada_decode_symbol (const struct general_symbol_info *gsymbol)
4c4b4cd2 1118{
76a01679 1119 char **resultp =
4c4b4cd2
PH
1120 (char **) &gsymbol->language_specific.cplus_specific.demangled_name;
1121 if (*resultp == NULL)
1122 {
1123 const char *decoded = ada_decode (gsymbol->name);
1124 if (gsymbol->bfd_section != NULL)
76a01679
JB
1125 {
1126 bfd *obfd = gsymbol->bfd_section->owner;
1127 if (obfd != NULL)
1128 {
1129 struct objfile *objf;
1130 ALL_OBJFILES (objf)
1131 {
1132 if (obfd == objf->obfd)
1133 {
1134 *resultp = obsavestring (decoded, strlen (decoded),
1135 &objf->objfile_obstack);
1136 break;
1137 }
1138 }
1139 }
1140 }
4c4b4cd2 1141 /* Sometimes, we can't find a corresponding objfile, in which
76a01679
JB
1142 case, we put the result on the heap. Since we only decode
1143 when needed, we hope this usually does not cause a
1144 significant memory leak (FIXME). */
4c4b4cd2 1145 if (*resultp == NULL)
76a01679
JB
1146 {
1147 char **slot = (char **) htab_find_slot (decoded_names_store,
1148 decoded, INSERT);
1149 if (*slot == NULL)
1150 *slot = xstrdup (decoded);
1151 *resultp = *slot;
1152 }
4c4b4cd2 1153 }
14f9c5c9 1154
4c4b4cd2
PH
1155 return *resultp;
1156}
76a01679
JB
1157
1158char *
1159ada_la_decode (const char *encoded, int options)
4c4b4cd2
PH
1160{
1161 return xstrdup (ada_decode (encoded));
14f9c5c9
AS
1162}
1163
1164/* Returns non-zero iff SYM_NAME matches NAME, ignoring any trailing
4c4b4cd2
PH
1165 suffixes that encode debugging information or leading _ada_ on
1166 SYM_NAME (see is_name_suffix commentary for the debugging
1167 information that is ignored). If WILD, then NAME need only match a
1168 suffix of SYM_NAME minus the same suffixes. Also returns 0 if
1169 either argument is NULL. */
14f9c5c9
AS
1170
1171int
d2e4a39e 1172ada_match_name (const char *sym_name, const char *name, int wild)
14f9c5c9
AS
1173{
1174 if (sym_name == NULL || name == NULL)
1175 return 0;
1176 else if (wild)
1177 return wild_match (name, strlen (name), sym_name);
d2e4a39e
AS
1178 else
1179 {
1180 int len_name = strlen (name);
4c4b4cd2
PH
1181 return (strncmp (sym_name, name, len_name) == 0
1182 && is_name_suffix (sym_name + len_name))
1183 || (strncmp (sym_name, "_ada_", 5) == 0
1184 && strncmp (sym_name + 5, name, len_name) == 0
1185 && is_name_suffix (sym_name + len_name + 5));
d2e4a39e 1186 }
14f9c5c9
AS
1187}
1188
4c4b4cd2
PH
1189/* True (non-zero) iff, in Ada mode, the symbol SYM should be
1190 suppressed in info listings. */
14f9c5c9
AS
1191
1192int
ebf56fd3 1193ada_suppress_symbol_printing (struct symbol *sym)
14f9c5c9 1194{
176620f1 1195 if (SYMBOL_DOMAIN (sym) == STRUCT_DOMAIN)
14f9c5c9 1196 return 1;
d2e4a39e 1197 else
4c4b4cd2 1198 return is_suppressed_name (SYMBOL_LINKAGE_NAME (sym));
14f9c5c9 1199}
14f9c5c9 1200\f
d2e4a39e 1201
4c4b4cd2 1202 /* Arrays */
14f9c5c9 1203
4c4b4cd2 1204/* Names of MAX_ADA_DIMENS bounds in P_BOUNDS fields of array descriptors. */
14f9c5c9 1205
d2e4a39e
AS
1206static char *bound_name[] = {
1207 "LB0", "UB0", "LB1", "UB1", "LB2", "UB2", "LB3", "UB3",
14f9c5c9
AS
1208 "LB4", "UB4", "LB5", "UB5", "LB6", "UB6", "LB7", "UB7"
1209};
1210
1211/* Maximum number of array dimensions we are prepared to handle. */
1212
4c4b4cd2 1213#define MAX_ADA_DIMENS (sizeof(bound_name) / (2*sizeof(char *)))
14f9c5c9 1214
4c4b4cd2 1215/* Like modify_field, but allows bitpos > wordlength. */
14f9c5c9
AS
1216
1217static void
ebf56fd3 1218modify_general_field (char *addr, LONGEST fieldval, int bitpos, int bitsize)
14f9c5c9 1219{
4c4b4cd2 1220 modify_field (addr + bitpos / 8, fieldval, bitpos % 8, bitsize);
14f9c5c9
AS
1221}
1222
1223
4c4b4cd2
PH
1224/* The desc_* routines return primitive portions of array descriptors
1225 (fat pointers). */
14f9c5c9
AS
1226
1227/* The descriptor or array type, if any, indicated by TYPE; removes
4c4b4cd2
PH
1228 level of indirection, if needed. */
1229
d2e4a39e
AS
1230static struct type *
1231desc_base_type (struct type *type)
14f9c5c9
AS
1232{
1233 if (type == NULL)
1234 return NULL;
61ee279c 1235 type = ada_check_typedef (type);
1265e4aa
JB
1236 if (type != NULL
1237 && (TYPE_CODE (type) == TYPE_CODE_PTR
1238 || TYPE_CODE (type) == TYPE_CODE_REF))
61ee279c 1239 return ada_check_typedef (TYPE_TARGET_TYPE (type));
14f9c5c9
AS
1240 else
1241 return type;
1242}
1243
4c4b4cd2
PH
1244/* True iff TYPE indicates a "thin" array pointer type. */
1245
14f9c5c9 1246static int
d2e4a39e 1247is_thin_pntr (struct type *type)
14f9c5c9 1248{
d2e4a39e 1249 return
14f9c5c9
AS
1250 is_suffix (ada_type_name (desc_base_type (type)), "___XUT")
1251 || is_suffix (ada_type_name (desc_base_type (type)), "___XUT___XVE");
1252}
1253
4c4b4cd2
PH
1254/* The descriptor type for thin pointer type TYPE. */
1255
d2e4a39e
AS
1256static struct type *
1257thin_descriptor_type (struct type *type)
14f9c5c9 1258{
d2e4a39e 1259 struct type *base_type = desc_base_type (type);
14f9c5c9
AS
1260 if (base_type == NULL)
1261 return NULL;
1262 if (is_suffix (ada_type_name (base_type), "___XVE"))
1263 return base_type;
d2e4a39e 1264 else
14f9c5c9 1265 {
d2e4a39e 1266 struct type *alt_type = ada_find_parallel_type (base_type, "___XVE");
14f9c5c9 1267 if (alt_type == NULL)
4c4b4cd2 1268 return base_type;
14f9c5c9 1269 else
4c4b4cd2 1270 return alt_type;
14f9c5c9
AS
1271 }
1272}
1273
4c4b4cd2
PH
1274/* A pointer to the array data for thin-pointer value VAL. */
1275
d2e4a39e
AS
1276static struct value *
1277thin_data_pntr (struct value *val)
14f9c5c9 1278{
df407dfe 1279 struct type *type = value_type (val);
14f9c5c9 1280 if (TYPE_CODE (type) == TYPE_CODE_PTR)
d2e4a39e 1281 return value_cast (desc_data_type (thin_descriptor_type (type)),
4c4b4cd2 1282 value_copy (val));
d2e4a39e 1283 else
14f9c5c9 1284 return value_from_longest (desc_data_type (thin_descriptor_type (type)),
df407dfe 1285 VALUE_ADDRESS (val) + value_offset (val));
14f9c5c9
AS
1286}
1287
4c4b4cd2
PH
1288/* True iff TYPE indicates a "thick" array pointer type. */
1289
14f9c5c9 1290static int
d2e4a39e 1291is_thick_pntr (struct type *type)
14f9c5c9
AS
1292{
1293 type = desc_base_type (type);
1294 return (type != NULL && TYPE_CODE (type) == TYPE_CODE_STRUCT
4c4b4cd2 1295 && lookup_struct_elt_type (type, "P_BOUNDS", 1) != NULL);
14f9c5c9
AS
1296}
1297
4c4b4cd2
PH
1298/* If TYPE is the type of an array descriptor (fat or thin pointer) or a
1299 pointer to one, the type of its bounds data; otherwise, NULL. */
76a01679 1300
d2e4a39e
AS
1301static struct type *
1302desc_bounds_type (struct type *type)
14f9c5c9 1303{
d2e4a39e 1304 struct type *r;
14f9c5c9
AS
1305
1306 type = desc_base_type (type);
1307
1308 if (type == NULL)
1309 return NULL;
1310 else if (is_thin_pntr (type))
1311 {
1312 type = thin_descriptor_type (type);
1313 if (type == NULL)
4c4b4cd2 1314 return NULL;
14f9c5c9
AS
1315 r = lookup_struct_elt_type (type, "BOUNDS", 1);
1316 if (r != NULL)
61ee279c 1317 return ada_check_typedef (r);
14f9c5c9
AS
1318 }
1319 else if (TYPE_CODE (type) == TYPE_CODE_STRUCT)
1320 {
1321 r = lookup_struct_elt_type (type, "P_BOUNDS", 1);
1322 if (r != NULL)
61ee279c 1323 return ada_check_typedef (TYPE_TARGET_TYPE (ada_check_typedef (r)));
14f9c5c9
AS
1324 }
1325 return NULL;
1326}
1327
1328/* If ARR is an array descriptor (fat or thin pointer), or pointer to
4c4b4cd2
PH
1329 one, a pointer to its bounds data. Otherwise NULL. */
1330
d2e4a39e
AS
1331static struct value *
1332desc_bounds (struct value *arr)
14f9c5c9 1333{
df407dfe 1334 struct type *type = ada_check_typedef (value_type (arr));
d2e4a39e 1335 if (is_thin_pntr (type))
14f9c5c9 1336 {
d2e4a39e 1337 struct type *bounds_type =
4c4b4cd2 1338 desc_bounds_type (thin_descriptor_type (type));
14f9c5c9
AS
1339 LONGEST addr;
1340
1341 if (desc_bounds_type == NULL)
323e0a4a 1342 error (_("Bad GNAT array descriptor"));
14f9c5c9
AS
1343
1344 /* NOTE: The following calculation is not really kosher, but
d2e4a39e 1345 since desc_type is an XVE-encoded type (and shouldn't be),
4c4b4cd2 1346 the correct calculation is a real pain. FIXME (and fix GCC). */
14f9c5c9 1347 if (TYPE_CODE (type) == TYPE_CODE_PTR)
4c4b4cd2 1348 addr = value_as_long (arr);
d2e4a39e 1349 else
df407dfe 1350 addr = VALUE_ADDRESS (arr) + value_offset (arr);
14f9c5c9 1351
d2e4a39e 1352 return
4c4b4cd2
PH
1353 value_from_longest (lookup_pointer_type (bounds_type),
1354 addr - TYPE_LENGTH (bounds_type));
14f9c5c9
AS
1355 }
1356
1357 else if (is_thick_pntr (type))
d2e4a39e 1358 return value_struct_elt (&arr, NULL, "P_BOUNDS", NULL,
323e0a4a 1359 _("Bad GNAT array descriptor"));
14f9c5c9
AS
1360 else
1361 return NULL;
1362}
1363
4c4b4cd2
PH
1364/* If TYPE is the type of an array-descriptor (fat pointer), the bit
1365 position of the field containing the address of the bounds data. */
1366
14f9c5c9 1367static int
d2e4a39e 1368fat_pntr_bounds_bitpos (struct type *type)
14f9c5c9
AS
1369{
1370 return TYPE_FIELD_BITPOS (desc_base_type (type), 1);
1371}
1372
1373/* If TYPE is the type of an array-descriptor (fat pointer), the bit
4c4b4cd2
PH
1374 size of the field containing the address of the bounds data. */
1375
14f9c5c9 1376static int
d2e4a39e 1377fat_pntr_bounds_bitsize (struct type *type)
14f9c5c9
AS
1378{
1379 type = desc_base_type (type);
1380
d2e4a39e 1381 if (TYPE_FIELD_BITSIZE (type, 1) > 0)
14f9c5c9
AS
1382 return TYPE_FIELD_BITSIZE (type, 1);
1383 else
61ee279c 1384 return 8 * TYPE_LENGTH (ada_check_typedef (TYPE_FIELD_TYPE (type, 1)));
14f9c5c9
AS
1385}
1386
4c4b4cd2 1387/* If TYPE is the type of an array descriptor (fat or thin pointer) or a
14f9c5c9 1388 pointer to one, the type of its array data (a
4c4b4cd2
PH
1389 pointer-to-array-with-no-bounds type); otherwise, NULL. Use
1390 ada_type_of_array to get an array type with bounds data. */
1391
d2e4a39e
AS
1392static struct type *
1393desc_data_type (struct type *type)
14f9c5c9
AS
1394{
1395 type = desc_base_type (type);
1396
4c4b4cd2 1397 /* NOTE: The following is bogus; see comment in desc_bounds. */
14f9c5c9 1398 if (is_thin_pntr (type))
d2e4a39e
AS
1399 return lookup_pointer_type
1400 (desc_base_type (TYPE_FIELD_TYPE (thin_descriptor_type (type), 1)));
14f9c5c9
AS
1401 else if (is_thick_pntr (type))
1402 return lookup_struct_elt_type (type, "P_ARRAY", 1);
1403 else
1404 return NULL;
1405}
1406
1407/* If ARR is an array descriptor (fat or thin pointer), a pointer to
1408 its array data. */
4c4b4cd2 1409
d2e4a39e
AS
1410static struct value *
1411desc_data (struct value *arr)
14f9c5c9 1412{
df407dfe 1413 struct type *type = value_type (arr);
14f9c5c9
AS
1414 if (is_thin_pntr (type))
1415 return thin_data_pntr (arr);
1416 else if (is_thick_pntr (type))
d2e4a39e 1417 return value_struct_elt (&arr, NULL, "P_ARRAY", NULL,
323e0a4a 1418 _("Bad GNAT array descriptor"));
14f9c5c9
AS
1419 else
1420 return NULL;
1421}
1422
1423
1424/* If TYPE is the type of an array-descriptor (fat pointer), the bit
4c4b4cd2
PH
1425 position of the field containing the address of the data. */
1426
14f9c5c9 1427static int
d2e4a39e 1428fat_pntr_data_bitpos (struct type *type)
14f9c5c9
AS
1429{
1430 return TYPE_FIELD_BITPOS (desc_base_type (type), 0);
1431}
1432
1433/* If TYPE is the type of an array-descriptor (fat pointer), the bit
4c4b4cd2
PH
1434 size of the field containing the address of the data. */
1435
14f9c5c9 1436static int
d2e4a39e 1437fat_pntr_data_bitsize (struct type *type)
14f9c5c9
AS
1438{
1439 type = desc_base_type (type);
1440
1441 if (TYPE_FIELD_BITSIZE (type, 0) > 0)
1442 return TYPE_FIELD_BITSIZE (type, 0);
d2e4a39e 1443 else
14f9c5c9
AS
1444 return TARGET_CHAR_BIT * TYPE_LENGTH (TYPE_FIELD_TYPE (type, 0));
1445}
1446
4c4b4cd2 1447/* If BOUNDS is an array-bounds structure (or pointer to one), return
14f9c5c9 1448 the Ith lower bound stored in it, if WHICH is 0, and the Ith upper
4c4b4cd2
PH
1449 bound, if WHICH is 1. The first bound is I=1. */
1450
d2e4a39e
AS
1451static struct value *
1452desc_one_bound (struct value *bounds, int i, int which)
14f9c5c9 1453{
d2e4a39e 1454 return value_struct_elt (&bounds, NULL, bound_name[2 * i + which - 2], NULL,
323e0a4a 1455 _("Bad GNAT array descriptor bounds"));
14f9c5c9
AS
1456}
1457
1458/* If BOUNDS is an array-bounds structure type, return the bit position
1459 of the Ith lower bound stored in it, if WHICH is 0, and the Ith upper
4c4b4cd2
PH
1460 bound, if WHICH is 1. The first bound is I=1. */
1461
14f9c5c9 1462static int
d2e4a39e 1463desc_bound_bitpos (struct type *type, int i, int which)
14f9c5c9 1464{
d2e4a39e 1465 return TYPE_FIELD_BITPOS (desc_base_type (type), 2 * i + which - 2);
14f9c5c9
AS
1466}
1467
1468/* If BOUNDS is an array-bounds structure type, return the bit field size
1469 of the Ith lower bound stored in it, if WHICH is 0, and the Ith upper
4c4b4cd2
PH
1470 bound, if WHICH is 1. The first bound is I=1. */
1471
76a01679 1472static int
d2e4a39e 1473desc_bound_bitsize (struct type *type, int i, int which)
14f9c5c9
AS
1474{
1475 type = desc_base_type (type);
1476
d2e4a39e
AS
1477 if (TYPE_FIELD_BITSIZE (type, 2 * i + which - 2) > 0)
1478 return TYPE_FIELD_BITSIZE (type, 2 * i + which - 2);
1479 else
1480 return 8 * TYPE_LENGTH (TYPE_FIELD_TYPE (type, 2 * i + which - 2));
14f9c5c9
AS
1481}
1482
1483/* If TYPE is the type of an array-bounds structure, the type of its
4c4b4cd2
PH
1484 Ith bound (numbering from 1). Otherwise, NULL. */
1485
d2e4a39e
AS
1486static struct type *
1487desc_index_type (struct type *type, int i)
14f9c5c9
AS
1488{
1489 type = desc_base_type (type);
1490
1491 if (TYPE_CODE (type) == TYPE_CODE_STRUCT)
d2e4a39e
AS
1492 return lookup_struct_elt_type (type, bound_name[2 * i - 2], 1);
1493 else
14f9c5c9
AS
1494 return NULL;
1495}
1496
4c4b4cd2
PH
1497/* The number of index positions in the array-bounds type TYPE.
1498 Return 0 if TYPE is NULL. */
1499
14f9c5c9 1500static int
d2e4a39e 1501desc_arity (struct type *type)
14f9c5c9
AS
1502{
1503 type = desc_base_type (type);
1504
1505 if (type != NULL)
1506 return TYPE_NFIELDS (type) / 2;
1507 return 0;
1508}
1509
4c4b4cd2
PH
1510/* Non-zero iff TYPE is a simple array type (not a pointer to one) or
1511 an array descriptor type (representing an unconstrained array
1512 type). */
1513
76a01679
JB
1514static int
1515ada_is_direct_array_type (struct type *type)
4c4b4cd2
PH
1516{
1517 if (type == NULL)
1518 return 0;
61ee279c 1519 type = ada_check_typedef (type);
4c4b4cd2 1520 return (TYPE_CODE (type) == TYPE_CODE_ARRAY
76a01679 1521 || ada_is_array_descriptor_type (type));
4c4b4cd2
PH
1522}
1523
52ce6436
PH
1524/* Non-zero iff TYPE represents any kind of array in Ada, or a pointer
1525 * to one. */
1526
1527int
1528ada_is_array_type (struct type *type)
1529{
1530 while (type != NULL
1531 && (TYPE_CODE (type) == TYPE_CODE_PTR
1532 || TYPE_CODE (type) == TYPE_CODE_REF))
1533 type = TYPE_TARGET_TYPE (type);
1534 return ada_is_direct_array_type (type);
1535}
1536
4c4b4cd2 1537/* Non-zero iff TYPE is a simple array type or pointer to one. */
14f9c5c9 1538
14f9c5c9 1539int
4c4b4cd2 1540ada_is_simple_array_type (struct type *type)
14f9c5c9
AS
1541{
1542 if (type == NULL)
1543 return 0;
61ee279c 1544 type = ada_check_typedef (type);
14f9c5c9 1545 return (TYPE_CODE (type) == TYPE_CODE_ARRAY
4c4b4cd2
PH
1546 || (TYPE_CODE (type) == TYPE_CODE_PTR
1547 && TYPE_CODE (TYPE_TARGET_TYPE (type)) == TYPE_CODE_ARRAY));
14f9c5c9
AS
1548}
1549
4c4b4cd2
PH
1550/* Non-zero iff TYPE belongs to a GNAT array descriptor. */
1551
14f9c5c9 1552int
4c4b4cd2 1553ada_is_array_descriptor_type (struct type *type)
14f9c5c9 1554{
d2e4a39e 1555 struct type *data_type = desc_data_type (type);
14f9c5c9
AS
1556
1557 if (type == NULL)
1558 return 0;
61ee279c 1559 type = ada_check_typedef (type);
d2e4a39e 1560 return
14f9c5c9
AS
1561 data_type != NULL
1562 && ((TYPE_CODE (data_type) == TYPE_CODE_PTR
4c4b4cd2
PH
1563 && TYPE_TARGET_TYPE (data_type) != NULL
1564 && TYPE_CODE (TYPE_TARGET_TYPE (data_type)) == TYPE_CODE_ARRAY)
1265e4aa 1565 || TYPE_CODE (data_type) == TYPE_CODE_ARRAY)
14f9c5c9
AS
1566 && desc_arity (desc_bounds_type (type)) > 0;
1567}
1568
1569/* Non-zero iff type is a partially mal-formed GNAT array
4c4b4cd2 1570 descriptor. FIXME: This is to compensate for some problems with
14f9c5c9 1571 debugging output from GNAT. Re-examine periodically to see if it
4c4b4cd2
PH
1572 is still needed. */
1573
14f9c5c9 1574int
ebf56fd3 1575ada_is_bogus_array_descriptor (struct type *type)
14f9c5c9 1576{
d2e4a39e 1577 return
14f9c5c9
AS
1578 type != NULL
1579 && TYPE_CODE (type) == TYPE_CODE_STRUCT
1580 && (lookup_struct_elt_type (type, "P_BOUNDS", 1) != NULL
4c4b4cd2
PH
1581 || lookup_struct_elt_type (type, "P_ARRAY", 1) != NULL)
1582 && !ada_is_array_descriptor_type (type);
14f9c5c9
AS
1583}
1584
1585
4c4b4cd2 1586/* If ARR has a record type in the form of a standard GNAT array descriptor,
14f9c5c9 1587 (fat pointer) returns the type of the array data described---specifically,
4c4b4cd2 1588 a pointer-to-array type. If BOUNDS is non-zero, the bounds data are filled
14f9c5c9 1589 in from the descriptor; otherwise, they are left unspecified. If
4c4b4cd2
PH
1590 the ARR denotes a null array descriptor and BOUNDS is non-zero,
1591 returns NULL. The result is simply the type of ARR if ARR is not
14f9c5c9 1592 a descriptor. */
d2e4a39e
AS
1593struct type *
1594ada_type_of_array (struct value *arr, int bounds)
14f9c5c9 1595{
df407dfe
AC
1596 if (ada_is_packed_array_type (value_type (arr)))
1597 return decode_packed_array_type (value_type (arr));
14f9c5c9 1598
df407dfe
AC
1599 if (!ada_is_array_descriptor_type (value_type (arr)))
1600 return value_type (arr);
d2e4a39e
AS
1601
1602 if (!bounds)
1603 return
df407dfe 1604 ada_check_typedef (TYPE_TARGET_TYPE (desc_data_type (value_type (arr))));
14f9c5c9
AS
1605 else
1606 {
d2e4a39e 1607 struct type *elt_type;
14f9c5c9 1608 int arity;
d2e4a39e 1609 struct value *descriptor;
df407dfe 1610 struct objfile *objf = TYPE_OBJFILE (value_type (arr));
14f9c5c9 1611
df407dfe
AC
1612 elt_type = ada_array_element_type (value_type (arr), -1);
1613 arity = ada_array_arity (value_type (arr));
14f9c5c9 1614
d2e4a39e 1615 if (elt_type == NULL || arity == 0)
df407dfe 1616 return ada_check_typedef (value_type (arr));
14f9c5c9
AS
1617
1618 descriptor = desc_bounds (arr);
d2e4a39e 1619 if (value_as_long (descriptor) == 0)
4c4b4cd2 1620 return NULL;
d2e4a39e 1621 while (arity > 0)
4c4b4cd2
PH
1622 {
1623 struct type *range_type = alloc_type (objf);
1624 struct type *array_type = alloc_type (objf);
1625 struct value *low = desc_one_bound (descriptor, arity, 0);
1626 struct value *high = desc_one_bound (descriptor, arity, 1);
1627 arity -= 1;
1628
df407dfe 1629 create_range_type (range_type, value_type (low),
529cad9c
PH
1630 longest_to_int (value_as_long (low)),
1631 longest_to_int (value_as_long (high)));
4c4b4cd2
PH
1632 elt_type = create_array_type (array_type, elt_type, range_type);
1633 }
14f9c5c9
AS
1634
1635 return lookup_pointer_type (elt_type);
1636 }
1637}
1638
1639/* If ARR does not represent an array, returns ARR unchanged.
4c4b4cd2
PH
1640 Otherwise, returns either a standard GDB array with bounds set
1641 appropriately or, if ARR is a non-null fat pointer, a pointer to a standard
1642 GDB array. Returns NULL if ARR is a null fat pointer. */
1643
d2e4a39e
AS
1644struct value *
1645ada_coerce_to_simple_array_ptr (struct value *arr)
14f9c5c9 1646{
df407dfe 1647 if (ada_is_array_descriptor_type (value_type (arr)))
14f9c5c9 1648 {
d2e4a39e 1649 struct type *arrType = ada_type_of_array (arr, 1);
14f9c5c9 1650 if (arrType == NULL)
4c4b4cd2 1651 return NULL;
14f9c5c9
AS
1652 return value_cast (arrType, value_copy (desc_data (arr)));
1653 }
df407dfe 1654 else if (ada_is_packed_array_type (value_type (arr)))
14f9c5c9
AS
1655 return decode_packed_array (arr);
1656 else
1657 return arr;
1658}
1659
1660/* If ARR does not represent an array, returns ARR unchanged.
1661 Otherwise, returns a standard GDB array describing ARR (which may
4c4b4cd2
PH
1662 be ARR itself if it already is in the proper form). */
1663
1664static struct value *
d2e4a39e 1665ada_coerce_to_simple_array (struct value *arr)
14f9c5c9 1666{
df407dfe 1667 if (ada_is_array_descriptor_type (value_type (arr)))
14f9c5c9 1668 {
d2e4a39e 1669 struct value *arrVal = ada_coerce_to_simple_array_ptr (arr);
14f9c5c9 1670 if (arrVal == NULL)
323e0a4a 1671 error (_("Bounds unavailable for null array pointer."));
529cad9c 1672 check_size (TYPE_TARGET_TYPE (value_type (arrVal)));
14f9c5c9
AS
1673 return value_ind (arrVal);
1674 }
df407dfe 1675 else if (ada_is_packed_array_type (value_type (arr)))
14f9c5c9 1676 return decode_packed_array (arr);
d2e4a39e 1677 else
14f9c5c9
AS
1678 return arr;
1679}
1680
1681/* If TYPE represents a GNAT array type, return it translated to an
1682 ordinary GDB array type (possibly with BITSIZE fields indicating
4c4b4cd2
PH
1683 packing). For other types, is the identity. */
1684
d2e4a39e
AS
1685struct type *
1686ada_coerce_to_simple_array_type (struct type *type)
14f9c5c9 1687{
d2e4a39e
AS
1688 struct value *mark = value_mark ();
1689 struct value *dummy = value_from_longest (builtin_type_long, 0);
1690 struct type *result;
04624583 1691 deprecated_set_value_type (dummy, type);
14f9c5c9 1692 result = ada_type_of_array (dummy, 0);
4c4b4cd2 1693 value_free_to_mark (mark);
14f9c5c9
AS
1694 return result;
1695}
1696
4c4b4cd2
PH
1697/* Non-zero iff TYPE represents a standard GNAT packed-array type. */
1698
14f9c5c9 1699int
d2e4a39e 1700ada_is_packed_array_type (struct type *type)
14f9c5c9
AS
1701{
1702 if (type == NULL)
1703 return 0;
4c4b4cd2 1704 type = desc_base_type (type);
61ee279c 1705 type = ada_check_typedef (type);
d2e4a39e 1706 return
14f9c5c9
AS
1707 ada_type_name (type) != NULL
1708 && strstr (ada_type_name (type), "___XP") != NULL;
1709}
1710
1711/* Given that TYPE is a standard GDB array type with all bounds filled
1712 in, and that the element size of its ultimate scalar constituents
1713 (that is, either its elements, or, if it is an array of arrays, its
1714 elements' elements, etc.) is *ELT_BITS, return an identical type,
1715 but with the bit sizes of its elements (and those of any
1716 constituent arrays) recorded in the BITSIZE components of its
4c4b4cd2
PH
1717 TYPE_FIELD_BITSIZE values, and with *ELT_BITS set to its total size
1718 in bits. */
1719
d2e4a39e
AS
1720static struct type *
1721packed_array_type (struct type *type, long *elt_bits)
14f9c5c9 1722{
d2e4a39e
AS
1723 struct type *new_elt_type;
1724 struct type *new_type;
14f9c5c9
AS
1725 LONGEST low_bound, high_bound;
1726
61ee279c 1727 type = ada_check_typedef (type);
14f9c5c9
AS
1728 if (TYPE_CODE (type) != TYPE_CODE_ARRAY)
1729 return type;
1730
1731 new_type = alloc_type (TYPE_OBJFILE (type));
61ee279c 1732 new_elt_type = packed_array_type (ada_check_typedef (TYPE_TARGET_TYPE (type)),
4c4b4cd2 1733 elt_bits);
14f9c5c9
AS
1734 create_array_type (new_type, new_elt_type, TYPE_FIELD_TYPE (type, 0));
1735 TYPE_FIELD_BITSIZE (new_type, 0) = *elt_bits;
1736 TYPE_NAME (new_type) = ada_type_name (type);
1737
d2e4a39e 1738 if (get_discrete_bounds (TYPE_FIELD_TYPE (type, 0),
4c4b4cd2 1739 &low_bound, &high_bound) < 0)
14f9c5c9
AS
1740 low_bound = high_bound = 0;
1741 if (high_bound < low_bound)
1742 *elt_bits = TYPE_LENGTH (new_type) = 0;
d2e4a39e 1743 else
14f9c5c9
AS
1744 {
1745 *elt_bits *= (high_bound - low_bound + 1);
d2e4a39e 1746 TYPE_LENGTH (new_type) =
4c4b4cd2 1747 (*elt_bits + HOST_CHAR_BIT - 1) / HOST_CHAR_BIT;
14f9c5c9
AS
1748 }
1749
4c4b4cd2 1750 TYPE_FLAGS (new_type) |= TYPE_FLAG_FIXED_INSTANCE;
14f9c5c9
AS
1751 return new_type;
1752}
1753
4c4b4cd2
PH
1754/* The array type encoded by TYPE, where ada_is_packed_array_type (TYPE). */
1755
d2e4a39e
AS
1756static struct type *
1757decode_packed_array_type (struct type *type)
1758{
4c4b4cd2 1759 struct symbol *sym;
d2e4a39e 1760 struct block **blocks;
61ee279c 1761 const char *raw_name = ada_type_name (ada_check_typedef (type));
d2e4a39e
AS
1762 char *name = (char *) alloca (strlen (raw_name) + 1);
1763 char *tail = strstr (raw_name, "___XP");
1764 struct type *shadow_type;
14f9c5c9
AS
1765 long bits;
1766 int i, n;
1767
4c4b4cd2
PH
1768 type = desc_base_type (type);
1769
14f9c5c9
AS
1770 memcpy (name, raw_name, tail - raw_name);
1771 name[tail - raw_name] = '\000';
1772
4c4b4cd2
PH
1773 sym = standard_lookup (name, get_selected_block (0), VAR_DOMAIN);
1774 if (sym == NULL || SYMBOL_TYPE (sym) == NULL)
14f9c5c9 1775 {
323e0a4a 1776 lim_warning (_("could not find bounds information on packed array"));
14f9c5c9
AS
1777 return NULL;
1778 }
4c4b4cd2 1779 shadow_type = SYMBOL_TYPE (sym);
14f9c5c9
AS
1780
1781 if (TYPE_CODE (shadow_type) != TYPE_CODE_ARRAY)
1782 {
323e0a4a 1783 lim_warning (_("could not understand bounds information on packed array"));
14f9c5c9
AS
1784 return NULL;
1785 }
d2e4a39e 1786
14f9c5c9
AS
1787 if (sscanf (tail + sizeof ("___XP") - 1, "%ld", &bits) != 1)
1788 {
4c4b4cd2 1789 lim_warning
323e0a4a 1790 (_("could not understand bit size information on packed array"));
14f9c5c9
AS
1791 return NULL;
1792 }
d2e4a39e 1793
14f9c5c9
AS
1794 return packed_array_type (shadow_type, &bits);
1795}
1796
4c4b4cd2 1797/* Given that ARR is a struct value *indicating a GNAT packed array,
14f9c5c9
AS
1798 returns a simple array that denotes that array. Its type is a
1799 standard GDB array type except that the BITSIZEs of the array
1800 target types are set to the number of bits in each element, and the
4c4b4cd2 1801 type length is set appropriately. */
14f9c5c9 1802
d2e4a39e
AS
1803static struct value *
1804decode_packed_array (struct value *arr)
14f9c5c9 1805{
4c4b4cd2 1806 struct type *type;
14f9c5c9 1807
4c4b4cd2 1808 arr = ada_coerce_ref (arr);
df407dfe 1809 if (TYPE_CODE (value_type (arr)) == TYPE_CODE_PTR)
4c4b4cd2
PH
1810 arr = ada_value_ind (arr);
1811
df407dfe 1812 type = decode_packed_array_type (value_type (arr));
14f9c5c9
AS
1813 if (type == NULL)
1814 {
323e0a4a 1815 error (_("can't unpack array"));
14f9c5c9
AS
1816 return NULL;
1817 }
61ee279c 1818
df407dfe 1819 if (BITS_BIG_ENDIAN && ada_is_modular_type (value_type (arr)))
61ee279c
PH
1820 {
1821 /* This is a (right-justified) modular type representing a packed
1822 array with no wrapper. In order to interpret the value through
1823 the (left-justified) packed array type we just built, we must
1824 first left-justify it. */
1825 int bit_size, bit_pos;
1826 ULONGEST mod;
1827
df407dfe 1828 mod = ada_modulus (value_type (arr)) - 1;
61ee279c
PH
1829 bit_size = 0;
1830 while (mod > 0)
1831 {
1832 bit_size += 1;
1833 mod >>= 1;
1834 }
df407dfe 1835 bit_pos = HOST_CHAR_BIT * TYPE_LENGTH (value_type (arr)) - bit_size;
61ee279c
PH
1836 arr = ada_value_primitive_packed_val (arr, NULL,
1837 bit_pos / HOST_CHAR_BIT,
1838 bit_pos % HOST_CHAR_BIT,
1839 bit_size,
1840 type);
1841 }
1842
4c4b4cd2 1843 return coerce_unspec_val_to_type (arr, type);
14f9c5c9
AS
1844}
1845
1846
1847/* The value of the element of packed array ARR at the ARITY indices
4c4b4cd2 1848 given in IND. ARR must be a simple array. */
14f9c5c9 1849
d2e4a39e
AS
1850static struct value *
1851value_subscript_packed (struct value *arr, int arity, struct value **ind)
14f9c5c9
AS
1852{
1853 int i;
1854 int bits, elt_off, bit_off;
1855 long elt_total_bit_offset;
d2e4a39e
AS
1856 struct type *elt_type;
1857 struct value *v;
14f9c5c9
AS
1858
1859 bits = 0;
1860 elt_total_bit_offset = 0;
df407dfe 1861 elt_type = ada_check_typedef (value_type (arr));
d2e4a39e 1862 for (i = 0; i < arity; i += 1)
14f9c5c9 1863 {
d2e4a39e 1864 if (TYPE_CODE (elt_type) != TYPE_CODE_ARRAY
4c4b4cd2
PH
1865 || TYPE_FIELD_BITSIZE (elt_type, 0) == 0)
1866 error
323e0a4a 1867 (_("attempt to do packed indexing of something other than a packed array"));
14f9c5c9 1868 else
4c4b4cd2
PH
1869 {
1870 struct type *range_type = TYPE_INDEX_TYPE (elt_type);
1871 LONGEST lowerbound, upperbound;
1872 LONGEST idx;
1873
1874 if (get_discrete_bounds (range_type, &lowerbound, &upperbound) < 0)
1875 {
323e0a4a 1876 lim_warning (_("don't know bounds of array"));
4c4b4cd2
PH
1877 lowerbound = upperbound = 0;
1878 }
1879
1880 idx = value_as_long (value_pos_atr (ind[i]));
1881 if (idx < lowerbound || idx > upperbound)
323e0a4a 1882 lim_warning (_("packed array index %ld out of bounds"), (long) idx);
4c4b4cd2
PH
1883 bits = TYPE_FIELD_BITSIZE (elt_type, 0);
1884 elt_total_bit_offset += (idx - lowerbound) * bits;
61ee279c 1885 elt_type = ada_check_typedef (TYPE_TARGET_TYPE (elt_type));
4c4b4cd2 1886 }
14f9c5c9
AS
1887 }
1888 elt_off = elt_total_bit_offset / HOST_CHAR_BIT;
1889 bit_off = elt_total_bit_offset % HOST_CHAR_BIT;
d2e4a39e
AS
1890
1891 v = ada_value_primitive_packed_val (arr, NULL, elt_off, bit_off,
4c4b4cd2 1892 bits, elt_type);
14f9c5c9
AS
1893 return v;
1894}
1895
4c4b4cd2 1896/* Non-zero iff TYPE includes negative integer values. */
14f9c5c9
AS
1897
1898static int
d2e4a39e 1899has_negatives (struct type *type)
14f9c5c9 1900{
d2e4a39e
AS
1901 switch (TYPE_CODE (type))
1902 {
1903 default:
1904 return 0;
1905 case TYPE_CODE_INT:
1906 return !TYPE_UNSIGNED (type);
1907 case TYPE_CODE_RANGE:
1908 return TYPE_LOW_BOUND (type) < 0;
1909 }
14f9c5c9 1910}
d2e4a39e 1911
14f9c5c9
AS
1912
1913/* Create a new value of type TYPE from the contents of OBJ starting
1914 at byte OFFSET, and bit offset BIT_OFFSET within that byte,
1915 proceeding for BIT_SIZE bits. If OBJ is an lval in memory, then
4c4b4cd2
PH
1916 assigning through the result will set the field fetched from.
1917 VALADDR is ignored unless OBJ is NULL, in which case,
1918 VALADDR+OFFSET must address the start of storage containing the
1919 packed value. The value returned in this case is never an lval.
1920 Assumes 0 <= BIT_OFFSET < HOST_CHAR_BIT. */
14f9c5c9 1921
d2e4a39e 1922struct value *
fc1a4b47 1923ada_value_primitive_packed_val (struct value *obj, const gdb_byte *valaddr,
a2bd3dcd 1924 long offset, int bit_offset, int bit_size,
4c4b4cd2 1925 struct type *type)
14f9c5c9 1926{
d2e4a39e 1927 struct value *v;
4c4b4cd2
PH
1928 int src, /* Index into the source area */
1929 targ, /* Index into the target area */
1930 srcBitsLeft, /* Number of source bits left to move */
1931 nsrc, ntarg, /* Number of source and target bytes */
1932 unusedLS, /* Number of bits in next significant
1933 byte of source that are unused */
1934 accumSize; /* Number of meaningful bits in accum */
1935 unsigned char *bytes; /* First byte containing data to unpack */
d2e4a39e 1936 unsigned char *unpacked;
4c4b4cd2 1937 unsigned long accum; /* Staging area for bits being transferred */
14f9c5c9
AS
1938 unsigned char sign;
1939 int len = (bit_size + bit_offset + HOST_CHAR_BIT - 1) / 8;
4c4b4cd2
PH
1940 /* Transmit bytes from least to most significant; delta is the direction
1941 the indices move. */
14f9c5c9
AS
1942 int delta = BITS_BIG_ENDIAN ? -1 : 1;
1943
61ee279c 1944 type = ada_check_typedef (type);
14f9c5c9
AS
1945
1946 if (obj == NULL)
1947 {
1948 v = allocate_value (type);
d2e4a39e 1949 bytes = (unsigned char *) (valaddr + offset);
14f9c5c9 1950 }
d69fe07e 1951 else if (value_lazy (obj))
14f9c5c9
AS
1952 {
1953 v = value_at (type,
df407dfe 1954 VALUE_ADDRESS (obj) + value_offset (obj) + offset);
d2e4a39e 1955 bytes = (unsigned char *) alloca (len);
14f9c5c9
AS
1956 read_memory (VALUE_ADDRESS (v), bytes, len);
1957 }
d2e4a39e 1958 else
14f9c5c9
AS
1959 {
1960 v = allocate_value (type);
0fd88904 1961 bytes = (unsigned char *) value_contents (obj) + offset;
14f9c5c9 1962 }
d2e4a39e
AS
1963
1964 if (obj != NULL)
14f9c5c9
AS
1965 {
1966 VALUE_LVAL (v) = VALUE_LVAL (obj);
1967 if (VALUE_LVAL (obj) == lval_internalvar)
4c4b4cd2 1968 VALUE_LVAL (v) = lval_internalvar_component;
df407dfe 1969 VALUE_ADDRESS (v) = VALUE_ADDRESS (obj) + value_offset (obj) + offset;
9bbda503
AC
1970 set_value_bitpos (v, bit_offset + value_bitpos (obj));
1971 set_value_bitsize (v, bit_size);
df407dfe 1972 if (value_bitpos (v) >= HOST_CHAR_BIT)
4c4b4cd2
PH
1973 {
1974 VALUE_ADDRESS (v) += 1;
9bbda503 1975 set_value_bitpos (v, value_bitpos (v) - HOST_CHAR_BIT);
4c4b4cd2 1976 }
14f9c5c9
AS
1977 }
1978 else
9bbda503 1979 set_value_bitsize (v, bit_size);
0fd88904 1980 unpacked = (unsigned char *) value_contents (v);
14f9c5c9
AS
1981
1982 srcBitsLeft = bit_size;
1983 nsrc = len;
1984 ntarg = TYPE_LENGTH (type);
1985 sign = 0;
1986 if (bit_size == 0)
1987 {
1988 memset (unpacked, 0, TYPE_LENGTH (type));
1989 return v;
1990 }
1991 else if (BITS_BIG_ENDIAN)
1992 {
d2e4a39e 1993 src = len - 1;
1265e4aa
JB
1994 if (has_negatives (type)
1995 && ((bytes[0] << bit_offset) & (1 << (HOST_CHAR_BIT - 1))))
4c4b4cd2 1996 sign = ~0;
d2e4a39e
AS
1997
1998 unusedLS =
4c4b4cd2
PH
1999 (HOST_CHAR_BIT - (bit_size + bit_offset) % HOST_CHAR_BIT)
2000 % HOST_CHAR_BIT;
14f9c5c9
AS
2001
2002 switch (TYPE_CODE (type))
4c4b4cd2
PH
2003 {
2004 case TYPE_CODE_ARRAY:
2005 case TYPE_CODE_UNION:
2006 case TYPE_CODE_STRUCT:
2007 /* Non-scalar values must be aligned at a byte boundary... */
2008 accumSize =
2009 (HOST_CHAR_BIT - bit_size % HOST_CHAR_BIT) % HOST_CHAR_BIT;
2010 /* ... And are placed at the beginning (most-significant) bytes
2011 of the target. */
529cad9c 2012 targ = (bit_size + HOST_CHAR_BIT - 1) / HOST_CHAR_BIT - 1;
4c4b4cd2
PH
2013 break;
2014 default:
2015 accumSize = 0;
2016 targ = TYPE_LENGTH (type) - 1;
2017 break;
2018 }
14f9c5c9 2019 }
d2e4a39e 2020 else
14f9c5c9
AS
2021 {
2022 int sign_bit_offset = (bit_size + bit_offset - 1) % 8;
2023
2024 src = targ = 0;
2025 unusedLS = bit_offset;
2026 accumSize = 0;
2027
d2e4a39e 2028 if (has_negatives (type) && (bytes[len - 1] & (1 << sign_bit_offset)))
4c4b4cd2 2029 sign = ~0;
14f9c5c9 2030 }
d2e4a39e 2031
14f9c5c9
AS
2032 accum = 0;
2033 while (nsrc > 0)
2034 {
2035 /* Mask for removing bits of the next source byte that are not
4c4b4cd2 2036 part of the value. */
d2e4a39e 2037 unsigned int unusedMSMask =
4c4b4cd2
PH
2038 (1 << (srcBitsLeft >= HOST_CHAR_BIT ? HOST_CHAR_BIT : srcBitsLeft)) -
2039 1;
2040 /* Sign-extend bits for this byte. */
14f9c5c9 2041 unsigned int signMask = sign & ~unusedMSMask;
d2e4a39e 2042 accum |=
4c4b4cd2 2043 (((bytes[src] >> unusedLS) & unusedMSMask) | signMask) << accumSize;
14f9c5c9 2044 accumSize += HOST_CHAR_BIT - unusedLS;
d2e4a39e 2045 if (accumSize >= HOST_CHAR_BIT)
4c4b4cd2
PH
2046 {
2047 unpacked[targ] = accum & ~(~0L << HOST_CHAR_BIT);
2048 accumSize -= HOST_CHAR_BIT;
2049 accum >>= HOST_CHAR_BIT;
2050 ntarg -= 1;
2051 targ += delta;
2052 }
14f9c5c9
AS
2053 srcBitsLeft -= HOST_CHAR_BIT - unusedLS;
2054 unusedLS = 0;
2055 nsrc -= 1;
2056 src += delta;
2057 }
2058 while (ntarg > 0)
2059 {
2060 accum |= sign << accumSize;
2061 unpacked[targ] = accum & ~(~0L << HOST_CHAR_BIT);
2062 accumSize -= HOST_CHAR_BIT;
2063 accum >>= HOST_CHAR_BIT;
2064 ntarg -= 1;
2065 targ += delta;
2066 }
2067
2068 return v;
2069}
d2e4a39e 2070
14f9c5c9
AS
2071/* Move N bits from SOURCE, starting at bit offset SRC_OFFSET to
2072 TARGET, starting at bit offset TARG_OFFSET. SOURCE and TARGET must
4c4b4cd2 2073 not overlap. */
14f9c5c9 2074static void
fc1a4b47 2075move_bits (gdb_byte *target, int targ_offset, const gdb_byte *source,
0fd88904 2076 int src_offset, int n)
14f9c5c9
AS
2077{
2078 unsigned int accum, mask;
2079 int accum_bits, chunk_size;
2080
2081 target += targ_offset / HOST_CHAR_BIT;
2082 targ_offset %= HOST_CHAR_BIT;
2083 source += src_offset / HOST_CHAR_BIT;
2084 src_offset %= HOST_CHAR_BIT;
d2e4a39e 2085 if (BITS_BIG_ENDIAN)
14f9c5c9
AS
2086 {
2087 accum = (unsigned char) *source;
2088 source += 1;
2089 accum_bits = HOST_CHAR_BIT - src_offset;
2090
d2e4a39e 2091 while (n > 0)
4c4b4cd2
PH
2092 {
2093 int unused_right;
2094 accum = (accum << HOST_CHAR_BIT) + (unsigned char) *source;
2095 accum_bits += HOST_CHAR_BIT;
2096 source += 1;
2097 chunk_size = HOST_CHAR_BIT - targ_offset;
2098 if (chunk_size > n)
2099 chunk_size = n;
2100 unused_right = HOST_CHAR_BIT - (chunk_size + targ_offset);
2101 mask = ((1 << chunk_size) - 1) << unused_right;
2102 *target =
2103 (*target & ~mask)
2104 | ((accum >> (accum_bits - chunk_size - unused_right)) & mask);
2105 n -= chunk_size;
2106 accum_bits -= chunk_size;
2107 target += 1;
2108 targ_offset = 0;
2109 }
14f9c5c9
AS
2110 }
2111 else
2112 {
2113 accum = (unsigned char) *source >> src_offset;
2114 source += 1;
2115 accum_bits = HOST_CHAR_BIT - src_offset;
2116
d2e4a39e 2117 while (n > 0)
4c4b4cd2
PH
2118 {
2119 accum = accum + ((unsigned char) *source << accum_bits);
2120 accum_bits += HOST_CHAR_BIT;
2121 source += 1;
2122 chunk_size = HOST_CHAR_BIT - targ_offset;
2123 if (chunk_size > n)
2124 chunk_size = n;
2125 mask = ((1 << chunk_size) - 1) << targ_offset;
2126 *target = (*target & ~mask) | ((accum << targ_offset) & mask);
2127 n -= chunk_size;
2128 accum_bits -= chunk_size;
2129 accum >>= chunk_size;
2130 target += 1;
2131 targ_offset = 0;
2132 }
14f9c5c9
AS
2133 }
2134}
2135
14f9c5c9
AS
2136/* Store the contents of FROMVAL into the location of TOVAL.
2137 Return a new value with the location of TOVAL and contents of
2138 FROMVAL. Handles assignment into packed fields that have
4c4b4cd2 2139 floating-point or non-scalar types. */
14f9c5c9 2140
d2e4a39e
AS
2141static struct value *
2142ada_value_assign (struct value *toval, struct value *fromval)
14f9c5c9 2143{
df407dfe
AC
2144 struct type *type = value_type (toval);
2145 int bits = value_bitsize (toval);
14f9c5c9 2146
52ce6436
PH
2147 toval = ada_coerce_ref (toval);
2148 fromval = ada_coerce_ref (fromval);
2149
2150 if (ada_is_direct_array_type (value_type (toval)))
2151 toval = ada_coerce_to_simple_array (toval);
2152 if (ada_is_direct_array_type (value_type (fromval)))
2153 fromval = ada_coerce_to_simple_array (fromval);
2154
88e3b34b 2155 if (!deprecated_value_modifiable (toval))
323e0a4a 2156 error (_("Left operand of assignment is not a modifiable lvalue."));
14f9c5c9 2157
d2e4a39e 2158 if (VALUE_LVAL (toval) == lval_memory
14f9c5c9 2159 && bits > 0
d2e4a39e 2160 && (TYPE_CODE (type) == TYPE_CODE_FLT
4c4b4cd2 2161 || TYPE_CODE (type) == TYPE_CODE_STRUCT))
14f9c5c9 2162 {
df407dfe
AC
2163 int len = (value_bitpos (toval)
2164 + bits + HOST_CHAR_BIT - 1) / HOST_CHAR_BIT;
d2e4a39e
AS
2165 char *buffer = (char *) alloca (len);
2166 struct value *val;
52ce6436 2167 CORE_ADDR to_addr = VALUE_ADDRESS (toval) + value_offset (toval);
14f9c5c9
AS
2168
2169 if (TYPE_CODE (type) == TYPE_CODE_FLT)
4c4b4cd2 2170 fromval = value_cast (type, fromval);
14f9c5c9 2171
52ce6436 2172 read_memory (to_addr, buffer, len);
14f9c5c9 2173 if (BITS_BIG_ENDIAN)
df407dfe 2174 move_bits (buffer, value_bitpos (toval),
0fd88904 2175 value_contents (fromval),
df407dfe 2176 TYPE_LENGTH (value_type (fromval)) * TARGET_CHAR_BIT -
4c4b4cd2 2177 bits, bits);
14f9c5c9 2178 else
0fd88904 2179 move_bits (buffer, value_bitpos (toval), value_contents (fromval),
4c4b4cd2 2180 0, bits);
52ce6436
PH
2181 write_memory (to_addr, buffer, len);
2182 if (deprecated_memory_changed_hook)
2183 deprecated_memory_changed_hook (to_addr, len);
2184
14f9c5c9 2185 val = value_copy (toval);
0fd88904 2186 memcpy (value_contents_raw (val), value_contents (fromval),
4c4b4cd2 2187 TYPE_LENGTH (type));
04624583 2188 deprecated_set_value_type (val, type);
d2e4a39e 2189
14f9c5c9
AS
2190 return val;
2191 }
2192
2193 return value_assign (toval, fromval);
2194}
2195
2196
52ce6436
PH
2197/* Given that COMPONENT is a memory lvalue that is part of the lvalue
2198 * CONTAINER, assign the contents of VAL to COMPONENTS's place in
2199 * CONTAINER. Modifies the VALUE_CONTENTS of CONTAINER only, not
2200 * COMPONENT, and not the inferior's memory. The current contents
2201 * of COMPONENT are ignored. */
2202static void
2203value_assign_to_component (struct value *container, struct value *component,
2204 struct value *val)
2205{
2206 LONGEST offset_in_container =
2207 (LONGEST) (VALUE_ADDRESS (component) + value_offset (component)
2208 - VALUE_ADDRESS (container) - value_offset (container));
2209 int bit_offset_in_container =
2210 value_bitpos (component) - value_bitpos (container);
2211 int bits;
2212
2213 val = value_cast (value_type (component), val);
2214
2215 if (value_bitsize (component) == 0)
2216 bits = TARGET_CHAR_BIT * TYPE_LENGTH (value_type (component));
2217 else
2218 bits = value_bitsize (component);
2219
2220 if (BITS_BIG_ENDIAN)
2221 move_bits (value_contents_writeable (container) + offset_in_container,
2222 value_bitpos (container) + bit_offset_in_container,
2223 value_contents (val),
2224 TYPE_LENGTH (value_type (component)) * TARGET_CHAR_BIT - bits,
2225 bits);
2226 else
2227 move_bits (value_contents_writeable (container) + offset_in_container,
2228 value_bitpos (container) + bit_offset_in_container,
2229 value_contents (val), 0, bits);
2230}
2231
4c4b4cd2
PH
2232/* The value of the element of array ARR at the ARITY indices given in IND.
2233 ARR may be either a simple array, GNAT array descriptor, or pointer
14f9c5c9
AS
2234 thereto. */
2235
d2e4a39e
AS
2236struct value *
2237ada_value_subscript (struct value *arr, int arity, struct value **ind)
14f9c5c9
AS
2238{
2239 int k;
d2e4a39e
AS
2240 struct value *elt;
2241 struct type *elt_type;
14f9c5c9
AS
2242
2243 elt = ada_coerce_to_simple_array (arr);
2244
df407dfe 2245 elt_type = ada_check_typedef (value_type (elt));
d2e4a39e 2246 if (TYPE_CODE (elt_type) == TYPE_CODE_ARRAY
14f9c5c9
AS
2247 && TYPE_FIELD_BITSIZE (elt_type, 0) > 0)
2248 return value_subscript_packed (elt, arity, ind);
2249
2250 for (k = 0; k < arity; k += 1)
2251 {
2252 if (TYPE_CODE (elt_type) != TYPE_CODE_ARRAY)
323e0a4a 2253 error (_("too many subscripts (%d expected)"), k);
14f9c5c9
AS
2254 elt = value_subscript (elt, value_pos_atr (ind[k]));
2255 }
2256 return elt;
2257}
2258
2259/* Assuming ARR is a pointer to a standard GDB array of type TYPE, the
2260 value of the element of *ARR at the ARITY indices given in
4c4b4cd2 2261 IND. Does not read the entire array into memory. */
14f9c5c9 2262
d2e4a39e
AS
2263struct value *
2264ada_value_ptr_subscript (struct value *arr, struct type *type, int arity,
4c4b4cd2 2265 struct value **ind)
14f9c5c9
AS
2266{
2267 int k;
2268
2269 for (k = 0; k < arity; k += 1)
2270 {
2271 LONGEST lwb, upb;
d2e4a39e 2272 struct value *idx;
14f9c5c9
AS
2273
2274 if (TYPE_CODE (type) != TYPE_CODE_ARRAY)
323e0a4a 2275 error (_("too many subscripts (%d expected)"), k);
d2e4a39e 2276 arr = value_cast (lookup_pointer_type (TYPE_TARGET_TYPE (type)),
4c4b4cd2 2277 value_copy (arr));
14f9c5c9 2278 get_discrete_bounds (TYPE_INDEX_TYPE (type), &lwb, &upb);
4c4b4cd2
PH
2279 idx = value_pos_atr (ind[k]);
2280 if (lwb != 0)
2281 idx = value_sub (idx, value_from_longest (builtin_type_int, lwb));
14f9c5c9
AS
2282 arr = value_add (arr, idx);
2283 type = TYPE_TARGET_TYPE (type);
2284 }
2285
2286 return value_ind (arr);
2287}
2288
0b5d8877
PH
2289/* Given that ARRAY_PTR is a pointer or reference to an array of type TYPE (the
2290 actual type of ARRAY_PTR is ignored), returns a reference to
2291 the Ada slice of HIGH-LOW+1 elements starting at index LOW. The lower
2292 bound of this array is LOW, as per Ada rules. */
2293static struct value *
6c038f32 2294ada_value_slice_ptr (struct value *array_ptr, struct type *type,
0b5d8877
PH
2295 int low, int high)
2296{
6c038f32 2297 CORE_ADDR base = value_as_address (array_ptr)
0b5d8877
PH
2298 + ((low - TYPE_LOW_BOUND (TYPE_INDEX_TYPE (type)))
2299 * TYPE_LENGTH (TYPE_TARGET_TYPE (type)));
6c038f32
PH
2300 struct type *index_type =
2301 create_range_type (NULL, TYPE_TARGET_TYPE (TYPE_INDEX_TYPE (type)),
0b5d8877 2302 low, high);
6c038f32 2303 struct type *slice_type =
0b5d8877
PH
2304 create_array_type (NULL, TYPE_TARGET_TYPE (type), index_type);
2305 return value_from_pointer (lookup_reference_type (slice_type), base);
2306}
2307
2308
2309static struct value *
2310ada_value_slice (struct value *array, int low, int high)
2311{
df407dfe 2312 struct type *type = value_type (array);
6c038f32 2313 struct type *index_type =
0b5d8877 2314 create_range_type (NULL, TYPE_INDEX_TYPE (type), low, high);
6c038f32 2315 struct type *slice_type =
0b5d8877 2316 create_array_type (NULL, TYPE_TARGET_TYPE (type), index_type);
6c038f32 2317 return value_cast (slice_type, value_slice (array, low, high - low + 1));
0b5d8877
PH
2318}
2319
14f9c5c9
AS
2320/* If type is a record type in the form of a standard GNAT array
2321 descriptor, returns the number of dimensions for type. If arr is a
2322 simple array, returns the number of "array of"s that prefix its
4c4b4cd2 2323 type designation. Otherwise, returns 0. */
14f9c5c9
AS
2324
2325int
d2e4a39e 2326ada_array_arity (struct type *type)
14f9c5c9
AS
2327{
2328 int arity;
2329
2330 if (type == NULL)
2331 return 0;
2332
2333 type = desc_base_type (type);
2334
2335 arity = 0;
d2e4a39e 2336 if (TYPE_CODE (type) == TYPE_CODE_STRUCT)
14f9c5c9 2337 return desc_arity (desc_bounds_type (type));
d2e4a39e
AS
2338 else
2339 while (TYPE_CODE (type) == TYPE_CODE_ARRAY)
14f9c5c9 2340 {
4c4b4cd2 2341 arity += 1;
61ee279c 2342 type = ada_check_typedef (TYPE_TARGET_TYPE (type));
14f9c5c9 2343 }
d2e4a39e 2344
14f9c5c9
AS
2345 return arity;
2346}
2347
2348/* If TYPE is a record type in the form of a standard GNAT array
2349 descriptor or a simple array type, returns the element type for
2350 TYPE after indexing by NINDICES indices, or by all indices if
4c4b4cd2 2351 NINDICES is -1. Otherwise, returns NULL. */
14f9c5c9 2352
d2e4a39e
AS
2353struct type *
2354ada_array_element_type (struct type *type, int nindices)
14f9c5c9
AS
2355{
2356 type = desc_base_type (type);
2357
d2e4a39e 2358 if (TYPE_CODE (type) == TYPE_CODE_STRUCT)
14f9c5c9
AS
2359 {
2360 int k;
d2e4a39e 2361 struct type *p_array_type;
14f9c5c9
AS
2362
2363 p_array_type = desc_data_type (type);
2364
2365 k = ada_array_arity (type);
2366 if (k == 0)
4c4b4cd2 2367 return NULL;
d2e4a39e 2368
4c4b4cd2 2369 /* Initially p_array_type = elt_type(*)[]...(k times)...[]. */
14f9c5c9 2370 if (nindices >= 0 && k > nindices)
4c4b4cd2 2371 k = nindices;
14f9c5c9 2372 p_array_type = TYPE_TARGET_TYPE (p_array_type);
d2e4a39e 2373 while (k > 0 && p_array_type != NULL)
4c4b4cd2 2374 {
61ee279c 2375 p_array_type = ada_check_typedef (TYPE_TARGET_TYPE (p_array_type));
4c4b4cd2
PH
2376 k -= 1;
2377 }
14f9c5c9
AS
2378 return p_array_type;
2379 }
2380 else if (TYPE_CODE (type) == TYPE_CODE_ARRAY)
2381 {
2382 while (nindices != 0 && TYPE_CODE (type) == TYPE_CODE_ARRAY)
4c4b4cd2
PH
2383 {
2384 type = TYPE_TARGET_TYPE (type);
2385 nindices -= 1;
2386 }
14f9c5c9
AS
2387 return type;
2388 }
2389
2390 return NULL;
2391}
2392
4c4b4cd2
PH
2393/* The type of nth index in arrays of given type (n numbering from 1).
2394 Does not examine memory. */
14f9c5c9 2395
d2e4a39e
AS
2396struct type *
2397ada_index_type (struct type *type, int n)
14f9c5c9 2398{
4c4b4cd2
PH
2399 struct type *result_type;
2400
14f9c5c9
AS
2401 type = desc_base_type (type);
2402
2403 if (n > ada_array_arity (type))
2404 return NULL;
2405
4c4b4cd2 2406 if (ada_is_simple_array_type (type))
14f9c5c9
AS
2407 {
2408 int i;
2409
2410 for (i = 1; i < n; i += 1)
4c4b4cd2
PH
2411 type = TYPE_TARGET_TYPE (type);
2412 result_type = TYPE_TARGET_TYPE (TYPE_FIELD_TYPE (type, 0));
2413 /* FIXME: The stabs type r(0,0);bound;bound in an array type
2414 has a target type of TYPE_CODE_UNDEF. We compensate here, but
76a01679
JB
2415 perhaps stabsread.c would make more sense. */
2416 if (result_type == NULL || TYPE_CODE (result_type) == TYPE_CODE_UNDEF)
2417 result_type = builtin_type_int;
14f9c5c9 2418
4c4b4cd2 2419 return result_type;
14f9c5c9 2420 }
d2e4a39e 2421 else
14f9c5c9
AS
2422 return desc_index_type (desc_bounds_type (type), n);
2423}
2424
2425/* Given that arr is an array type, returns the lower bound of the
2426 Nth index (numbering from 1) if WHICH is 0, and the upper bound if
4c4b4cd2
PH
2427 WHICH is 1. This returns bounds 0 .. -1 if ARR_TYPE is an
2428 array-descriptor type. If TYPEP is non-null, *TYPEP is set to the
2429 bounds type. It works for other arrays with bounds supplied by
2430 run-time quantities other than discriminants. */
14f9c5c9
AS
2431
2432LONGEST
d2e4a39e 2433ada_array_bound_from_type (struct type * arr_type, int n, int which,
4c4b4cd2 2434 struct type ** typep)
14f9c5c9 2435{
d2e4a39e
AS
2436 struct type *type;
2437 struct type *index_type_desc;
14f9c5c9
AS
2438
2439 if (ada_is_packed_array_type (arr_type))
2440 arr_type = decode_packed_array_type (arr_type);
2441
4c4b4cd2 2442 if (arr_type == NULL || !ada_is_simple_array_type (arr_type))
14f9c5c9
AS
2443 {
2444 if (typep != NULL)
4c4b4cd2 2445 *typep = builtin_type_int;
d2e4a39e 2446 return (LONGEST) - which;
14f9c5c9
AS
2447 }
2448
2449 if (TYPE_CODE (arr_type) == TYPE_CODE_PTR)
2450 type = TYPE_TARGET_TYPE (arr_type);
2451 else
2452 type = arr_type;
2453
2454 index_type_desc = ada_find_parallel_type (type, "___XA");
d2e4a39e 2455 if (index_type_desc == NULL)
14f9c5c9 2456 {
d2e4a39e
AS
2457 struct type *range_type;
2458 struct type *index_type;
14f9c5c9 2459
d2e4a39e 2460 while (n > 1)
4c4b4cd2
PH
2461 {
2462 type = TYPE_TARGET_TYPE (type);
2463 n -= 1;
2464 }
14f9c5c9
AS
2465
2466 range_type = TYPE_INDEX_TYPE (type);
2467 index_type = TYPE_TARGET_TYPE (range_type);
2468 if (TYPE_CODE (index_type) == TYPE_CODE_UNDEF)
4c4b4cd2 2469 index_type = builtin_type_long;
14f9c5c9 2470 if (typep != NULL)
4c4b4cd2 2471 *typep = index_type;
d2e4a39e 2472 return
4c4b4cd2
PH
2473 (LONGEST) (which == 0
2474 ? TYPE_LOW_BOUND (range_type)
2475 : TYPE_HIGH_BOUND (range_type));
14f9c5c9 2476 }
d2e4a39e 2477 else
14f9c5c9 2478 {
d2e4a39e 2479 struct type *index_type =
4c4b4cd2
PH
2480 to_fixed_range_type (TYPE_FIELD_NAME (index_type_desc, n - 1),
2481 NULL, TYPE_OBJFILE (arr_type));
14f9c5c9 2482 if (typep != NULL)
4c4b4cd2 2483 *typep = TYPE_TARGET_TYPE (index_type);
d2e4a39e 2484 return
4c4b4cd2
PH
2485 (LONGEST) (which == 0
2486 ? TYPE_LOW_BOUND (index_type)
2487 : TYPE_HIGH_BOUND (index_type));
14f9c5c9
AS
2488 }
2489}
2490
2491/* Given that arr is an array value, returns the lower bound of the
2492 nth index (numbering from 1) if which is 0, and the upper bound if
4c4b4cd2
PH
2493 which is 1. This routine will also work for arrays with bounds
2494 supplied by run-time quantities other than discriminants. */
14f9c5c9 2495
d2e4a39e 2496struct value *
4dc81987 2497ada_array_bound (struct value *arr, int n, int which)
14f9c5c9 2498{
df407dfe 2499 struct type *arr_type = value_type (arr);
14f9c5c9
AS
2500
2501 if (ada_is_packed_array_type (arr_type))
2502 return ada_array_bound (decode_packed_array (arr), n, which);
4c4b4cd2 2503 else if (ada_is_simple_array_type (arr_type))
14f9c5c9 2504 {
d2e4a39e 2505 struct type *type;
14f9c5c9
AS
2506 LONGEST v = ada_array_bound_from_type (arr_type, n, which, &type);
2507 return value_from_longest (type, v);
2508 }
2509 else
2510 return desc_one_bound (desc_bounds (arr), n, which);
2511}
2512
2513/* Given that arr is an array value, returns the length of the
2514 nth index. This routine will also work for arrays with bounds
4c4b4cd2
PH
2515 supplied by run-time quantities other than discriminants.
2516 Does not work for arrays indexed by enumeration types with representation
2517 clauses at the moment. */
14f9c5c9 2518
d2e4a39e
AS
2519struct value *
2520ada_array_length (struct value *arr, int n)
14f9c5c9 2521{
df407dfe 2522 struct type *arr_type = ada_check_typedef (value_type (arr));
14f9c5c9
AS
2523
2524 if (ada_is_packed_array_type (arr_type))
2525 return ada_array_length (decode_packed_array (arr), n);
2526
4c4b4cd2 2527 if (ada_is_simple_array_type (arr_type))
14f9c5c9 2528 {
d2e4a39e 2529 struct type *type;
14f9c5c9 2530 LONGEST v =
4c4b4cd2
PH
2531 ada_array_bound_from_type (arr_type, n, 1, &type) -
2532 ada_array_bound_from_type (arr_type, n, 0, NULL) + 1;
14f9c5c9
AS
2533 return value_from_longest (type, v);
2534 }
2535 else
d2e4a39e 2536 return
72d5681a 2537 value_from_longest (builtin_type_int,
4c4b4cd2
PH
2538 value_as_long (desc_one_bound (desc_bounds (arr),
2539 n, 1))
2540 - value_as_long (desc_one_bound (desc_bounds (arr),
2541 n, 0)) + 1);
2542}
2543
2544/* An empty array whose type is that of ARR_TYPE (an array type),
2545 with bounds LOW to LOW-1. */
2546
2547static struct value *
2548empty_array (struct type *arr_type, int low)
2549{
6c038f32 2550 struct type *index_type =
0b5d8877
PH
2551 create_range_type (NULL, TYPE_TARGET_TYPE (TYPE_INDEX_TYPE (arr_type)),
2552 low, low - 1);
2553 struct type *elt_type = ada_array_element_type (arr_type, 1);
2554 return allocate_value (create_array_type (NULL, elt_type, index_type));
14f9c5c9 2555}
14f9c5c9 2556\f
d2e4a39e 2557
4c4b4cd2 2558 /* Name resolution */
14f9c5c9 2559
4c4b4cd2
PH
2560/* The "decoded" name for the user-definable Ada operator corresponding
2561 to OP. */
14f9c5c9 2562
d2e4a39e 2563static const char *
4c4b4cd2 2564ada_decoded_op_name (enum exp_opcode op)
14f9c5c9
AS
2565{
2566 int i;
2567
4c4b4cd2 2568 for (i = 0; ada_opname_table[i].encoded != NULL; i += 1)
14f9c5c9
AS
2569 {
2570 if (ada_opname_table[i].op == op)
4c4b4cd2 2571 return ada_opname_table[i].decoded;
14f9c5c9 2572 }
323e0a4a 2573 error (_("Could not find operator name for opcode"));
14f9c5c9
AS
2574}
2575
2576
4c4b4cd2
PH
2577/* Same as evaluate_type (*EXP), but resolves ambiguous symbol
2578 references (marked by OP_VAR_VALUE nodes in which the symbol has an
2579 undefined namespace) and converts operators that are
2580 user-defined into appropriate function calls. If CONTEXT_TYPE is
14f9c5c9
AS
2581 non-null, it provides a preferred result type [at the moment, only
2582 type void has any effect---causing procedures to be preferred over
2583 functions in calls]. A null CONTEXT_TYPE indicates that a non-void
4c4b4cd2 2584 return type is preferred. May change (expand) *EXP. */
14f9c5c9 2585
4c4b4cd2
PH
2586static void
2587resolve (struct expression **expp, int void_context_p)
14f9c5c9
AS
2588{
2589 int pc;
2590 pc = 0;
4c4b4cd2 2591 resolve_subexp (expp, &pc, 1, void_context_p ? builtin_type_void : NULL);
14f9c5c9
AS
2592}
2593
4c4b4cd2
PH
2594/* Resolve the operator of the subexpression beginning at
2595 position *POS of *EXPP. "Resolving" consists of replacing
2596 the symbols that have undefined namespaces in OP_VAR_VALUE nodes
2597 with their resolutions, replacing built-in operators with
2598 function calls to user-defined operators, where appropriate, and,
2599 when DEPROCEDURE_P is non-zero, converting function-valued variables
2600 into parameterless calls. May expand *EXPP. The CONTEXT_TYPE functions
2601 are as in ada_resolve, above. */
14f9c5c9 2602
d2e4a39e 2603static struct value *
4c4b4cd2 2604resolve_subexp (struct expression **expp, int *pos, int deprocedure_p,
76a01679 2605 struct type *context_type)
14f9c5c9
AS
2606{
2607 int pc = *pos;
2608 int i;
4c4b4cd2 2609 struct expression *exp; /* Convenience: == *expp. */
14f9c5c9 2610 enum exp_opcode op = (*expp)->elts[pc].opcode;
4c4b4cd2
PH
2611 struct value **argvec; /* Vector of operand types (alloca'ed). */
2612 int nargs; /* Number of operands. */
52ce6436 2613 int oplen;
14f9c5c9
AS
2614
2615 argvec = NULL;
2616 nargs = 0;
2617 exp = *expp;
2618
52ce6436
PH
2619 /* Pass one: resolve operands, saving their types and updating *pos,
2620 if needed. */
14f9c5c9
AS
2621 switch (op)
2622 {
4c4b4cd2
PH
2623 case OP_FUNCALL:
2624 if (exp->elts[pc + 3].opcode == OP_VAR_VALUE
76a01679
JB
2625 && SYMBOL_DOMAIN (exp->elts[pc + 5].symbol) == UNDEF_DOMAIN)
2626 *pos += 7;
4c4b4cd2
PH
2627 else
2628 {
2629 *pos += 3;
2630 resolve_subexp (expp, pos, 0, NULL);
2631 }
2632 nargs = longest_to_int (exp->elts[pc + 1].longconst);
14f9c5c9
AS
2633 break;
2634
14f9c5c9 2635 case UNOP_ADDR:
4c4b4cd2
PH
2636 *pos += 1;
2637 resolve_subexp (expp, pos, 0, NULL);
2638 break;
2639
52ce6436
PH
2640 case UNOP_QUAL:
2641 *pos += 3;
2642 resolve_subexp (expp, pos, 1, exp->elts[pc + 1].type);
4c4b4cd2
PH
2643 break;
2644
52ce6436 2645 case OP_ATR_MODULUS:
4c4b4cd2
PH
2646 case OP_ATR_SIZE:
2647 case OP_ATR_TAG:
4c4b4cd2
PH
2648 case OP_ATR_FIRST:
2649 case OP_ATR_LAST:
2650 case OP_ATR_LENGTH:
2651 case OP_ATR_POS:
2652 case OP_ATR_VAL:
4c4b4cd2
PH
2653 case OP_ATR_MIN:
2654 case OP_ATR_MAX:
52ce6436
PH
2655 case TERNOP_IN_RANGE:
2656 case BINOP_IN_BOUNDS:
2657 case UNOP_IN_RANGE:
2658 case OP_AGGREGATE:
2659 case OP_OTHERS:
2660 case OP_CHOICES:
2661 case OP_POSITIONAL:
2662 case OP_DISCRETE_RANGE:
2663 case OP_NAME:
2664 ada_forward_operator_length (exp, pc, &oplen, &nargs);
2665 *pos += oplen;
14f9c5c9
AS
2666 break;
2667
2668 case BINOP_ASSIGN:
2669 {
4c4b4cd2
PH
2670 struct value *arg1;
2671
2672 *pos += 1;
2673 arg1 = resolve_subexp (expp, pos, 0, NULL);
2674 if (arg1 == NULL)
2675 resolve_subexp (expp, pos, 1, NULL);
2676 else
df407dfe 2677 resolve_subexp (expp, pos, 1, value_type (arg1));
4c4b4cd2 2678 break;
14f9c5c9
AS
2679 }
2680
4c4b4cd2 2681 case UNOP_CAST:
4c4b4cd2
PH
2682 *pos += 3;
2683 nargs = 1;
2684 break;
14f9c5c9 2685
4c4b4cd2
PH
2686 case BINOP_ADD:
2687 case BINOP_SUB:
2688 case BINOP_MUL:
2689 case BINOP_DIV:
2690 case BINOP_REM:
2691 case BINOP_MOD:
2692 case BINOP_EXP:
2693 case BINOP_CONCAT:
2694 case BINOP_LOGICAL_AND:
2695 case BINOP_LOGICAL_OR:
2696 case BINOP_BITWISE_AND:
2697 case BINOP_BITWISE_IOR:
2698 case BINOP_BITWISE_XOR:
14f9c5c9 2699
4c4b4cd2
PH
2700 case BINOP_EQUAL:
2701 case BINOP_NOTEQUAL:
2702 case BINOP_LESS:
2703 case BINOP_GTR:
2704 case BINOP_LEQ:
2705 case BINOP_GEQ:
14f9c5c9 2706
4c4b4cd2
PH
2707 case BINOP_REPEAT:
2708 case BINOP_SUBSCRIPT:
2709 case BINOP_COMMA:
14f9c5c9 2710
4c4b4cd2
PH
2711 case UNOP_NEG:
2712 case UNOP_PLUS:
2713 case UNOP_LOGICAL_NOT:
2714 case UNOP_ABS:
2715 case UNOP_IND:
2716 *pos += 1;
2717 nargs = 1;
2718 break;
14f9c5c9 2719
4c4b4cd2
PH
2720 case OP_LONG:
2721 case OP_DOUBLE:
2722 case OP_VAR_VALUE:
2723 *pos += 4;
2724 break;
14f9c5c9 2725
4c4b4cd2
PH
2726 case OP_TYPE:
2727 case OP_BOOL:
2728 case OP_LAST:
2729 case OP_REGISTER:
2730 case OP_INTERNALVAR:
2731 *pos += 3;
2732 break;
14f9c5c9 2733
4c4b4cd2
PH
2734 case UNOP_MEMVAL:
2735 *pos += 3;
2736 nargs = 1;
2737 break;
2738
2739 case STRUCTOP_STRUCT:
2740 *pos += 4 + BYTES_TO_EXP_ELEM (exp->elts[pc + 1].longconst + 1);
2741 nargs = 1;
2742 break;
2743
4c4b4cd2 2744 case TERNOP_SLICE:
4c4b4cd2
PH
2745 *pos += 1;
2746 nargs = 3;
2747 break;
2748
52ce6436 2749 case OP_STRING:
14f9c5c9 2750 break;
4c4b4cd2
PH
2751
2752 default:
323e0a4a 2753 error (_("Unexpected operator during name resolution"));
14f9c5c9
AS
2754 }
2755
76a01679 2756 argvec = (struct value * *) alloca (sizeof (struct value *) * (nargs + 1));
4c4b4cd2
PH
2757 for (i = 0; i < nargs; i += 1)
2758 argvec[i] = resolve_subexp (expp, pos, 1, NULL);
2759 argvec[i] = NULL;
2760 exp = *expp;
2761
2762 /* Pass two: perform any resolution on principal operator. */
14f9c5c9
AS
2763 switch (op)
2764 {
2765 default:
2766 break;
2767
14f9c5c9 2768 case OP_VAR_VALUE:
4c4b4cd2 2769 if (SYMBOL_DOMAIN (exp->elts[pc + 2].symbol) == UNDEF_DOMAIN)
76a01679
JB
2770 {
2771 struct ada_symbol_info *candidates;
2772 int n_candidates;
2773
2774 n_candidates =
2775 ada_lookup_symbol_list (SYMBOL_LINKAGE_NAME
2776 (exp->elts[pc + 2].symbol),
2777 exp->elts[pc + 1].block, VAR_DOMAIN,
2778 &candidates);
2779
2780 if (n_candidates > 1)
2781 {
2782 /* Types tend to get re-introduced locally, so if there
2783 are any local symbols that are not types, first filter
2784 out all types. */
2785 int j;
2786 for (j = 0; j < n_candidates; j += 1)
2787 switch (SYMBOL_CLASS (candidates[j].sym))
2788 {
2789 case LOC_REGISTER:
2790 case LOC_ARG:
2791 case LOC_REF_ARG:
2792 case LOC_REGPARM:
2793 case LOC_REGPARM_ADDR:
2794 case LOC_LOCAL:
2795 case LOC_LOCAL_ARG:
2796 case LOC_BASEREG:
2797 case LOC_BASEREG_ARG:
2798 case LOC_COMPUTED:
2799 case LOC_COMPUTED_ARG:
2800 goto FoundNonType;
2801 default:
2802 break;
2803 }
2804 FoundNonType:
2805 if (j < n_candidates)
2806 {
2807 j = 0;
2808 while (j < n_candidates)
2809 {
2810 if (SYMBOL_CLASS (candidates[j].sym) == LOC_TYPEDEF)
2811 {
2812 candidates[j] = candidates[n_candidates - 1];
2813 n_candidates -= 1;
2814 }
2815 else
2816 j += 1;
2817 }
2818 }
2819 }
2820
2821 if (n_candidates == 0)
323e0a4a 2822 error (_("No definition found for %s"),
76a01679
JB
2823 SYMBOL_PRINT_NAME (exp->elts[pc + 2].symbol));
2824 else if (n_candidates == 1)
2825 i = 0;
2826 else if (deprocedure_p
2827 && !is_nonfunction (candidates, n_candidates))
2828 {
06d5cf63
JB
2829 i = ada_resolve_function
2830 (candidates, n_candidates, NULL, 0,
2831 SYMBOL_LINKAGE_NAME (exp->elts[pc + 2].symbol),
2832 context_type);
76a01679 2833 if (i < 0)
323e0a4a 2834 error (_("Could not find a match for %s"),
76a01679
JB
2835 SYMBOL_PRINT_NAME (exp->elts[pc + 2].symbol));
2836 }
2837 else
2838 {
323e0a4a 2839 printf_filtered (_("Multiple matches for %s\n"),
76a01679
JB
2840 SYMBOL_PRINT_NAME (exp->elts[pc + 2].symbol));
2841 user_select_syms (candidates, n_candidates, 1);
2842 i = 0;
2843 }
2844
2845 exp->elts[pc + 1].block = candidates[i].block;
2846 exp->elts[pc + 2].symbol = candidates[i].sym;
1265e4aa
JB
2847 if (innermost_block == NULL
2848 || contained_in (candidates[i].block, innermost_block))
76a01679
JB
2849 innermost_block = candidates[i].block;
2850 }
2851
2852 if (deprocedure_p
2853 && (TYPE_CODE (SYMBOL_TYPE (exp->elts[pc + 2].symbol))
2854 == TYPE_CODE_FUNC))
2855 {
2856 replace_operator_with_call (expp, pc, 0, 0,
2857 exp->elts[pc + 2].symbol,
2858 exp->elts[pc + 1].block);
2859 exp = *expp;
2860 }
14f9c5c9
AS
2861 break;
2862
2863 case OP_FUNCALL:
2864 {
4c4b4cd2 2865 if (exp->elts[pc + 3].opcode == OP_VAR_VALUE
76a01679 2866 && SYMBOL_DOMAIN (exp->elts[pc + 5].symbol) == UNDEF_DOMAIN)
4c4b4cd2
PH
2867 {
2868 struct ada_symbol_info *candidates;
2869 int n_candidates;
2870
2871 n_candidates =
76a01679
JB
2872 ada_lookup_symbol_list (SYMBOL_LINKAGE_NAME
2873 (exp->elts[pc + 5].symbol),
2874 exp->elts[pc + 4].block, VAR_DOMAIN,
2875 &candidates);
4c4b4cd2
PH
2876 if (n_candidates == 1)
2877 i = 0;
2878 else
2879 {
06d5cf63
JB
2880 i = ada_resolve_function
2881 (candidates, n_candidates,
2882 argvec, nargs,
2883 SYMBOL_LINKAGE_NAME (exp->elts[pc + 5].symbol),
2884 context_type);
4c4b4cd2 2885 if (i < 0)
323e0a4a 2886 error (_("Could not find a match for %s"),
4c4b4cd2
PH
2887 SYMBOL_PRINT_NAME (exp->elts[pc + 5].symbol));
2888 }
2889
2890 exp->elts[pc + 4].block = candidates[i].block;
2891 exp->elts[pc + 5].symbol = candidates[i].sym;
1265e4aa
JB
2892 if (innermost_block == NULL
2893 || contained_in (candidates[i].block, innermost_block))
4c4b4cd2
PH
2894 innermost_block = candidates[i].block;
2895 }
14f9c5c9
AS
2896 }
2897 break;
2898 case BINOP_ADD:
2899 case BINOP_SUB:
2900 case BINOP_MUL:
2901 case BINOP_DIV:
2902 case BINOP_REM:
2903 case BINOP_MOD:
2904 case BINOP_CONCAT:
2905 case BINOP_BITWISE_AND:
2906 case BINOP_BITWISE_IOR:
2907 case BINOP_BITWISE_XOR:
2908 case BINOP_EQUAL:
2909 case BINOP_NOTEQUAL:
2910 case BINOP_LESS:
2911 case BINOP_GTR:
2912 case BINOP_LEQ:
2913 case BINOP_GEQ:
2914 case BINOP_EXP:
2915 case UNOP_NEG:
2916 case UNOP_PLUS:
2917 case UNOP_LOGICAL_NOT:
2918 case UNOP_ABS:
2919 if (possible_user_operator_p (op, argvec))
4c4b4cd2
PH
2920 {
2921 struct ada_symbol_info *candidates;
2922 int n_candidates;
2923
2924 n_candidates =
2925 ada_lookup_symbol_list (ada_encode (ada_decoded_op_name (op)),
2926 (struct block *) NULL, VAR_DOMAIN,
2927 &candidates);
2928 i = ada_resolve_function (candidates, n_candidates, argvec, nargs,
76a01679 2929 ada_decoded_op_name (op), NULL);
4c4b4cd2
PH
2930 if (i < 0)
2931 break;
2932
76a01679
JB
2933 replace_operator_with_call (expp, pc, nargs, 1,
2934 candidates[i].sym, candidates[i].block);
4c4b4cd2
PH
2935 exp = *expp;
2936 }
14f9c5c9 2937 break;
4c4b4cd2
PH
2938
2939 case OP_TYPE:
2940 return NULL;
14f9c5c9
AS
2941 }
2942
2943 *pos = pc;
2944 return evaluate_subexp_type (exp, pos);
2945}
2946
2947/* Return non-zero if formal type FTYPE matches actual type ATYPE. If
4c4b4cd2
PH
2948 MAY_DEREF is non-zero, the formal may be a pointer and the actual
2949 a non-pointer. A type of 'void' (which is never a valid expression type)
2950 by convention matches anything. */
14f9c5c9 2951/* The term "match" here is rather loose. The match is heuristic and
4c4b4cd2 2952 liberal. FIXME: TOO liberal, in fact. */
14f9c5c9
AS
2953
2954static int
4dc81987 2955ada_type_match (struct type *ftype, struct type *atype, int may_deref)
14f9c5c9 2956{
61ee279c
PH
2957 ftype = ada_check_typedef (ftype);
2958 atype = ada_check_typedef (atype);
14f9c5c9
AS
2959
2960 if (TYPE_CODE (ftype) == TYPE_CODE_REF)
2961 ftype = TYPE_TARGET_TYPE (ftype);
2962 if (TYPE_CODE (atype) == TYPE_CODE_REF)
2963 atype = TYPE_TARGET_TYPE (atype);
2964
d2e4a39e 2965 if (TYPE_CODE (ftype) == TYPE_CODE_VOID
14f9c5c9
AS
2966 || TYPE_CODE (atype) == TYPE_CODE_VOID)
2967 return 1;
2968
d2e4a39e 2969 switch (TYPE_CODE (ftype))
14f9c5c9
AS
2970 {
2971 default:
2972 return 1;
2973 case TYPE_CODE_PTR:
2974 if (TYPE_CODE (atype) == TYPE_CODE_PTR)
4c4b4cd2
PH
2975 return ada_type_match (TYPE_TARGET_TYPE (ftype),
2976 TYPE_TARGET_TYPE (atype), 0);
d2e4a39e 2977 else
1265e4aa
JB
2978 return (may_deref
2979 && ada_type_match (TYPE_TARGET_TYPE (ftype), atype, 0));
14f9c5c9
AS
2980 case TYPE_CODE_INT:
2981 case TYPE_CODE_ENUM:
2982 case TYPE_CODE_RANGE:
2983 switch (TYPE_CODE (atype))
4c4b4cd2
PH
2984 {
2985 case TYPE_CODE_INT:
2986 case TYPE_CODE_ENUM:
2987 case TYPE_CODE_RANGE:
2988 return 1;
2989 default:
2990 return 0;
2991 }
14f9c5c9
AS
2992
2993 case TYPE_CODE_ARRAY:
d2e4a39e 2994 return (TYPE_CODE (atype) == TYPE_CODE_ARRAY
4c4b4cd2 2995 || ada_is_array_descriptor_type (atype));
14f9c5c9
AS
2996
2997 case TYPE_CODE_STRUCT:
4c4b4cd2
PH
2998 if (ada_is_array_descriptor_type (ftype))
2999 return (TYPE_CODE (atype) == TYPE_CODE_ARRAY
3000 || ada_is_array_descriptor_type (atype));
14f9c5c9 3001 else
4c4b4cd2
PH
3002 return (TYPE_CODE (atype) == TYPE_CODE_STRUCT
3003 && !ada_is_array_descriptor_type (atype));
14f9c5c9
AS
3004
3005 case TYPE_CODE_UNION:
3006 case TYPE_CODE_FLT:
3007 return (TYPE_CODE (atype) == TYPE_CODE (ftype));
3008 }
3009}
3010
3011/* Return non-zero if the formals of FUNC "sufficiently match" the
3012 vector of actual argument types ACTUALS of size N_ACTUALS. FUNC
3013 may also be an enumeral, in which case it is treated as a 0-
4c4b4cd2 3014 argument function. */
14f9c5c9
AS
3015
3016static int
d2e4a39e 3017ada_args_match (struct symbol *func, struct value **actuals, int n_actuals)
14f9c5c9
AS
3018{
3019 int i;
d2e4a39e 3020 struct type *func_type = SYMBOL_TYPE (func);
14f9c5c9 3021
1265e4aa
JB
3022 if (SYMBOL_CLASS (func) == LOC_CONST
3023 && TYPE_CODE (func_type) == TYPE_CODE_ENUM)
14f9c5c9
AS
3024 return (n_actuals == 0);
3025 else if (func_type == NULL || TYPE_CODE (func_type) != TYPE_CODE_FUNC)
3026 return 0;
3027
3028 if (TYPE_NFIELDS (func_type) != n_actuals)
3029 return 0;
3030
3031 for (i = 0; i < n_actuals; i += 1)
3032 {
4c4b4cd2 3033 if (actuals[i] == NULL)
76a01679
JB
3034 return 0;
3035 else
3036 {
61ee279c 3037 struct type *ftype = ada_check_typedef (TYPE_FIELD_TYPE (func_type, i));
df407dfe 3038 struct type *atype = ada_check_typedef (value_type (actuals[i]));
4c4b4cd2 3039
76a01679
JB
3040 if (!ada_type_match (ftype, atype, 1))
3041 return 0;
3042 }
14f9c5c9
AS
3043 }
3044 return 1;
3045}
3046
3047/* False iff function type FUNC_TYPE definitely does not produce a value
3048 compatible with type CONTEXT_TYPE. Conservatively returns 1 if
3049 FUNC_TYPE is not a valid function type with a non-null return type
3050 or an enumerated type. A null CONTEXT_TYPE indicates any non-void type. */
3051
3052static int
d2e4a39e 3053return_match (struct type *func_type, struct type *context_type)
14f9c5c9 3054{
d2e4a39e 3055 struct type *return_type;
14f9c5c9
AS
3056
3057 if (func_type == NULL)
3058 return 1;
3059
4c4b4cd2
PH
3060 if (TYPE_CODE (func_type) == TYPE_CODE_FUNC)
3061 return_type = base_type (TYPE_TARGET_TYPE (func_type));
3062 else
3063 return_type = base_type (func_type);
14f9c5c9
AS
3064 if (return_type == NULL)
3065 return 1;
3066
4c4b4cd2 3067 context_type = base_type (context_type);
14f9c5c9
AS
3068
3069 if (TYPE_CODE (return_type) == TYPE_CODE_ENUM)
3070 return context_type == NULL || return_type == context_type;
3071 else if (context_type == NULL)
3072 return TYPE_CODE (return_type) != TYPE_CODE_VOID;
3073 else
3074 return TYPE_CODE (return_type) == TYPE_CODE (context_type);
3075}
3076
3077
4c4b4cd2 3078/* Returns the index in SYMS[0..NSYMS-1] that contains the symbol for the
14f9c5c9 3079 function (if any) that matches the types of the NARGS arguments in
4c4b4cd2
PH
3080 ARGS. If CONTEXT_TYPE is non-null and there is at least one match
3081 that returns that type, then eliminate matches that don't. If
3082 CONTEXT_TYPE is void and there is at least one match that does not
3083 return void, eliminate all matches that do.
3084
14f9c5c9
AS
3085 Asks the user if there is more than one match remaining. Returns -1
3086 if there is no such symbol or none is selected. NAME is used
4c4b4cd2
PH
3087 solely for messages. May re-arrange and modify SYMS in
3088 the process; the index returned is for the modified vector. */
14f9c5c9 3089
4c4b4cd2
PH
3090static int
3091ada_resolve_function (struct ada_symbol_info syms[],
3092 int nsyms, struct value **args, int nargs,
3093 const char *name, struct type *context_type)
14f9c5c9
AS
3094{
3095 int k;
4c4b4cd2 3096 int m; /* Number of hits */
d2e4a39e
AS
3097 struct type *fallback;
3098 struct type *return_type;
14f9c5c9
AS
3099
3100 return_type = context_type;
3101 if (context_type == NULL)
3102 fallback = builtin_type_void;
3103 else
3104 fallback = NULL;
3105
d2e4a39e 3106 m = 0;
14f9c5c9
AS
3107 while (1)
3108 {
3109 for (k = 0; k < nsyms; k += 1)
4c4b4cd2 3110 {
61ee279c 3111 struct type *type = ada_check_typedef (SYMBOL_TYPE (syms[k].sym));
4c4b4cd2
PH
3112
3113 if (ada_args_match (syms[k].sym, args, nargs)
3114 && return_match (type, return_type))
3115 {
3116 syms[m] = syms[k];
3117 m += 1;
3118 }
3119 }
14f9c5c9 3120 if (m > 0 || return_type == fallback)
4c4b4cd2 3121 break;
14f9c5c9 3122 else
4c4b4cd2 3123 return_type = fallback;
14f9c5c9
AS
3124 }
3125
3126 if (m == 0)
3127 return -1;
3128 else if (m > 1)
3129 {
323e0a4a 3130 printf_filtered (_("Multiple matches for %s\n"), name);
4c4b4cd2 3131 user_select_syms (syms, m, 1);
14f9c5c9
AS
3132 return 0;
3133 }
3134 return 0;
3135}
3136
4c4b4cd2
PH
3137/* Returns true (non-zero) iff decoded name N0 should appear before N1
3138 in a listing of choices during disambiguation (see sort_choices, below).
3139 The idea is that overloadings of a subprogram name from the
3140 same package should sort in their source order. We settle for ordering
3141 such symbols by their trailing number (__N or $N). */
3142
14f9c5c9 3143static int
4c4b4cd2 3144encoded_ordered_before (char *N0, char *N1)
14f9c5c9
AS
3145{
3146 if (N1 == NULL)
3147 return 0;
3148 else if (N0 == NULL)
3149 return 1;
3150 else
3151 {
3152 int k0, k1;
d2e4a39e 3153 for (k0 = strlen (N0) - 1; k0 > 0 && isdigit (N0[k0]); k0 -= 1)
4c4b4cd2 3154 ;
d2e4a39e 3155 for (k1 = strlen (N1) - 1; k1 > 0 && isdigit (N1[k1]); k1 -= 1)
4c4b4cd2 3156 ;
d2e4a39e 3157 if ((N0[k0] == '_' || N0[k0] == '$') && N0[k0 + 1] != '\000'
4c4b4cd2
PH
3158 && (N1[k1] == '_' || N1[k1] == '$') && N1[k1 + 1] != '\000')
3159 {
3160 int n0, n1;
3161 n0 = k0;
3162 while (N0[n0] == '_' && n0 > 0 && N0[n0 - 1] == '_')
3163 n0 -= 1;
3164 n1 = k1;
3165 while (N1[n1] == '_' && n1 > 0 && N1[n1 - 1] == '_')
3166 n1 -= 1;
3167 if (n0 == n1 && strncmp (N0, N1, n0) == 0)
3168 return (atoi (N0 + k0 + 1) < atoi (N1 + k1 + 1));
3169 }
14f9c5c9
AS
3170 return (strcmp (N0, N1) < 0);
3171 }
3172}
d2e4a39e 3173
4c4b4cd2
PH
3174/* Sort SYMS[0..NSYMS-1] to put the choices in a canonical order by the
3175 encoded names. */
3176
d2e4a39e 3177static void
4c4b4cd2 3178sort_choices (struct ada_symbol_info syms[], int nsyms)
14f9c5c9 3179{
4c4b4cd2 3180 int i;
d2e4a39e 3181 for (i = 1; i < nsyms; i += 1)
14f9c5c9 3182 {
4c4b4cd2 3183 struct ada_symbol_info sym = syms[i];
14f9c5c9
AS
3184 int j;
3185
d2e4a39e 3186 for (j = i - 1; j >= 0; j -= 1)
4c4b4cd2
PH
3187 {
3188 if (encoded_ordered_before (SYMBOL_LINKAGE_NAME (syms[j].sym),
3189 SYMBOL_LINKAGE_NAME (sym.sym)))
3190 break;
3191 syms[j + 1] = syms[j];
3192 }
d2e4a39e 3193 syms[j + 1] = sym;
14f9c5c9
AS
3194 }
3195}
3196
4c4b4cd2
PH
3197/* Given a list of NSYMS symbols in SYMS, select up to MAX_RESULTS>0
3198 by asking the user (if necessary), returning the number selected,
3199 and setting the first elements of SYMS items. Error if no symbols
3200 selected. */
14f9c5c9
AS
3201
3202/* NOTE: Adapted from decode_line_2 in symtab.c, with which it ought
4c4b4cd2 3203 to be re-integrated one of these days. */
14f9c5c9
AS
3204
3205int
4c4b4cd2 3206user_select_syms (struct ada_symbol_info *syms, int nsyms, int max_results)
14f9c5c9
AS
3207{
3208 int i;
d2e4a39e 3209 int *chosen = (int *) alloca (sizeof (int) * nsyms);
14f9c5c9
AS
3210 int n_chosen;
3211 int first_choice = (max_results == 1) ? 1 : 2;
3212
3213 if (max_results < 1)
323e0a4a 3214 error (_("Request to select 0 symbols!"));
14f9c5c9
AS
3215 if (nsyms <= 1)
3216 return nsyms;
3217
323e0a4a 3218 printf_unfiltered (_("[0] cancel\n"));
14f9c5c9 3219 if (max_results > 1)
323e0a4a 3220 printf_unfiltered (_("[1] all\n"));
14f9c5c9 3221
4c4b4cd2 3222 sort_choices (syms, nsyms);
14f9c5c9
AS
3223
3224 for (i = 0; i < nsyms; i += 1)
3225 {
4c4b4cd2
PH
3226 if (syms[i].sym == NULL)
3227 continue;
3228
3229 if (SYMBOL_CLASS (syms[i].sym) == LOC_BLOCK)
3230 {
76a01679
JB
3231 struct symtab_and_line sal =
3232 find_function_start_sal (syms[i].sym, 1);
323e0a4a
AC
3233 if (sal.symtab == NULL)
3234 printf_unfiltered (_("[%d] %s at <no source file available>:%d\n"),
3235 i + first_choice,
3236 SYMBOL_PRINT_NAME (syms[i].sym),
3237 sal.line);
3238 else
3239 printf_unfiltered (_("[%d] %s at %s:%d\n"), i + first_choice,
3240 SYMBOL_PRINT_NAME (syms[i].sym),
3241 sal.symtab->filename, sal.line);
4c4b4cd2
PH
3242 continue;
3243 }
d2e4a39e 3244 else
4c4b4cd2
PH
3245 {
3246 int is_enumeral =
3247 (SYMBOL_CLASS (syms[i].sym) == LOC_CONST
3248 && SYMBOL_TYPE (syms[i].sym) != NULL
3249 && TYPE_CODE (SYMBOL_TYPE (syms[i].sym)) == TYPE_CODE_ENUM);
3250 struct symtab *symtab = symtab_for_sym (syms[i].sym);
3251
3252 if (SYMBOL_LINE (syms[i].sym) != 0 && symtab != NULL)
323e0a4a 3253 printf_unfiltered (_("[%d] %s at %s:%d\n"),
4c4b4cd2
PH
3254 i + first_choice,
3255 SYMBOL_PRINT_NAME (syms[i].sym),
3256 symtab->filename, SYMBOL_LINE (syms[i].sym));
76a01679
JB
3257 else if (is_enumeral
3258 && TYPE_NAME (SYMBOL_TYPE (syms[i].sym)) != NULL)
4c4b4cd2 3259 {
a3f17187 3260 printf_unfiltered (("[%d] "), i + first_choice);
76a01679
JB
3261 ada_print_type (SYMBOL_TYPE (syms[i].sym), NULL,
3262 gdb_stdout, -1, 0);
323e0a4a 3263 printf_unfiltered (_("'(%s) (enumeral)\n"),
4c4b4cd2
PH
3264 SYMBOL_PRINT_NAME (syms[i].sym));
3265 }
3266 else if (symtab != NULL)
3267 printf_unfiltered (is_enumeral
323e0a4a
AC
3268 ? _("[%d] %s in %s (enumeral)\n")
3269 : _("[%d] %s at %s:?\n"),
4c4b4cd2
PH
3270 i + first_choice,
3271 SYMBOL_PRINT_NAME (syms[i].sym),
3272 symtab->filename);
3273 else
3274 printf_unfiltered (is_enumeral
323e0a4a
AC
3275 ? _("[%d] %s (enumeral)\n")
3276 : _("[%d] %s at ?\n"),
4c4b4cd2
PH
3277 i + first_choice,
3278 SYMBOL_PRINT_NAME (syms[i].sym));
3279 }
14f9c5c9 3280 }
d2e4a39e 3281
14f9c5c9 3282 n_chosen = get_selections (chosen, nsyms, max_results, max_results > 1,
4c4b4cd2 3283 "overload-choice");
14f9c5c9
AS
3284
3285 for (i = 0; i < n_chosen; i += 1)
4c4b4cd2 3286 syms[i] = syms[chosen[i]];
14f9c5c9
AS
3287
3288 return n_chosen;
3289}
3290
3291/* Read and validate a set of numeric choices from the user in the
4c4b4cd2 3292 range 0 .. N_CHOICES-1. Place the results in increasing
14f9c5c9
AS
3293 order in CHOICES[0 .. N-1], and return N.
3294
3295 The user types choices as a sequence of numbers on one line
3296 separated by blanks, encoding them as follows:
3297
4c4b4cd2 3298 + A choice of 0 means to cancel the selection, throwing an error.
14f9c5c9
AS
3299 + If IS_ALL_CHOICE, a choice of 1 selects the entire set 0 .. N_CHOICES-1.
3300 + The user chooses k by typing k+IS_ALL_CHOICE+1.
3301
4c4b4cd2 3302 The user is not allowed to choose more than MAX_RESULTS values.
14f9c5c9
AS
3303
3304 ANNOTATION_SUFFIX, if present, is used to annotate the input
4c4b4cd2 3305 prompts (for use with the -f switch). */
14f9c5c9
AS
3306
3307int
d2e4a39e 3308get_selections (int *choices, int n_choices, int max_results,
4c4b4cd2 3309 int is_all_choice, char *annotation_suffix)
14f9c5c9 3310{
d2e4a39e
AS
3311 char *args;
3312 const char *prompt;
14f9c5c9
AS
3313 int n_chosen;
3314 int first_choice = is_all_choice ? 2 : 1;
d2e4a39e 3315
14f9c5c9
AS
3316 prompt = getenv ("PS2");
3317 if (prompt == NULL)
3318 prompt = ">";
3319
a3f17187 3320 printf_unfiltered (("%s "), prompt);
14f9c5c9
AS
3321 gdb_flush (gdb_stdout);
3322
3323 args = command_line_input ((char *) NULL, 0, annotation_suffix);
d2e4a39e 3324
14f9c5c9 3325 if (args == NULL)
323e0a4a 3326 error_no_arg (_("one or more choice numbers"));
14f9c5c9
AS
3327
3328 n_chosen = 0;
76a01679 3329
4c4b4cd2
PH
3330 /* Set choices[0 .. n_chosen-1] to the users' choices in ascending
3331 order, as given in args. Choices are validated. */
14f9c5c9
AS
3332 while (1)
3333 {
d2e4a39e 3334 char *args2;
14f9c5c9
AS
3335 int choice, j;
3336
3337 while (isspace (*args))
4c4b4cd2 3338 args += 1;
14f9c5c9 3339 if (*args == '\0' && n_chosen == 0)
323e0a4a 3340 error_no_arg (_("one or more choice numbers"));
14f9c5c9 3341 else if (*args == '\0')
4c4b4cd2 3342 break;
14f9c5c9
AS
3343
3344 choice = strtol (args, &args2, 10);
d2e4a39e 3345 if (args == args2 || choice < 0
4c4b4cd2 3346 || choice > n_choices + first_choice - 1)
323e0a4a 3347 error (_("Argument must be choice number"));
14f9c5c9
AS
3348 args = args2;
3349
d2e4a39e 3350 if (choice == 0)
323e0a4a 3351 error (_("cancelled"));
14f9c5c9
AS
3352
3353 if (choice < first_choice)
4c4b4cd2
PH
3354 {
3355 n_chosen = n_choices;
3356 for (j = 0; j < n_choices; j += 1)
3357 choices[j] = j;
3358 break;
3359 }
14f9c5c9
AS
3360 choice -= first_choice;
3361
d2e4a39e 3362 for (j = n_chosen - 1; j >= 0 && choice < choices[j]; j -= 1)
4c4b4cd2
PH
3363 {
3364 }
14f9c5c9
AS
3365
3366 if (j < 0 || choice != choices[j])
4c4b4cd2
PH
3367 {
3368 int k;
3369 for (k = n_chosen - 1; k > j; k -= 1)
3370 choices[k + 1] = choices[k];
3371 choices[j + 1] = choice;
3372 n_chosen += 1;
3373 }
14f9c5c9
AS
3374 }
3375
3376 if (n_chosen > max_results)
323e0a4a 3377 error (_("Select no more than %d of the above"), max_results);
d2e4a39e 3378
14f9c5c9
AS
3379 return n_chosen;
3380}
3381
4c4b4cd2
PH
3382/* Replace the operator of length OPLEN at position PC in *EXPP with a call
3383 on the function identified by SYM and BLOCK, and taking NARGS
3384 arguments. Update *EXPP as needed to hold more space. */
14f9c5c9
AS
3385
3386static void
d2e4a39e 3387replace_operator_with_call (struct expression **expp, int pc, int nargs,
4c4b4cd2
PH
3388 int oplen, struct symbol *sym,
3389 struct block *block)
14f9c5c9
AS
3390{
3391 /* A new expression, with 6 more elements (3 for funcall, 4 for function
4c4b4cd2 3392 symbol, -oplen for operator being replaced). */
d2e4a39e 3393 struct expression *newexp = (struct expression *)
14f9c5c9 3394 xmalloc (sizeof (struct expression)
4c4b4cd2 3395 + EXP_ELEM_TO_BYTES ((*expp)->nelts + 7 - oplen));
d2e4a39e 3396 struct expression *exp = *expp;
14f9c5c9
AS
3397
3398 newexp->nelts = exp->nelts + 7 - oplen;
3399 newexp->language_defn = exp->language_defn;
3400 memcpy (newexp->elts, exp->elts, EXP_ELEM_TO_BYTES (pc));
d2e4a39e 3401 memcpy (newexp->elts + pc + 7, exp->elts + pc + oplen,
4c4b4cd2 3402 EXP_ELEM_TO_BYTES (exp->nelts - pc - oplen));
14f9c5c9
AS
3403
3404 newexp->elts[pc].opcode = newexp->elts[pc + 2].opcode = OP_FUNCALL;
3405 newexp->elts[pc + 1].longconst = (LONGEST) nargs;
3406
3407 newexp->elts[pc + 3].opcode = newexp->elts[pc + 6].opcode = OP_VAR_VALUE;
3408 newexp->elts[pc + 4].block = block;
3409 newexp->elts[pc + 5].symbol = sym;
3410
3411 *expp = newexp;
aacb1f0a 3412 xfree (exp);
d2e4a39e 3413}
14f9c5c9
AS
3414
3415/* Type-class predicates */
3416
4c4b4cd2
PH
3417/* True iff TYPE is numeric (i.e., an INT, RANGE (of numeric type),
3418 or FLOAT). */
14f9c5c9
AS
3419
3420static int
d2e4a39e 3421numeric_type_p (struct type *type)
14f9c5c9
AS
3422{
3423 if (type == NULL)
3424 return 0;
d2e4a39e
AS
3425 else
3426 {
3427 switch (TYPE_CODE (type))
4c4b4cd2
PH
3428 {
3429 case TYPE_CODE_INT:
3430 case TYPE_CODE_FLT:
3431 return 1;
3432 case TYPE_CODE_RANGE:
3433 return (type == TYPE_TARGET_TYPE (type)
3434 || numeric_type_p (TYPE_TARGET_TYPE (type)));
3435 default:
3436 return 0;
3437 }
d2e4a39e 3438 }
14f9c5c9
AS
3439}
3440
4c4b4cd2 3441/* True iff TYPE is integral (an INT or RANGE of INTs). */
14f9c5c9
AS
3442
3443static int
d2e4a39e 3444integer_type_p (struct type *type)
14f9c5c9
AS
3445{
3446 if (type == NULL)
3447 return 0;
d2e4a39e
AS
3448 else
3449 {
3450 switch (TYPE_CODE (type))
4c4b4cd2
PH
3451 {
3452 case TYPE_CODE_INT:
3453 return 1;
3454 case TYPE_CODE_RANGE:
3455 return (type == TYPE_TARGET_TYPE (type)
3456 || integer_type_p (TYPE_TARGET_TYPE (type)));
3457 default:
3458 return 0;
3459 }
d2e4a39e 3460 }
14f9c5c9
AS
3461}
3462
4c4b4cd2 3463/* True iff TYPE is scalar (INT, RANGE, FLOAT, ENUM). */
14f9c5c9
AS
3464
3465static int
d2e4a39e 3466scalar_type_p (struct type *type)
14f9c5c9
AS
3467{
3468 if (type == NULL)
3469 return 0;
d2e4a39e
AS
3470 else
3471 {
3472 switch (TYPE_CODE (type))
4c4b4cd2
PH
3473 {
3474 case TYPE_CODE_INT:
3475 case TYPE_CODE_RANGE:
3476 case TYPE_CODE_ENUM:
3477 case TYPE_CODE_FLT:
3478 return 1;
3479 default:
3480 return 0;
3481 }
d2e4a39e 3482 }
14f9c5c9
AS
3483}
3484
4c4b4cd2 3485/* True iff TYPE is discrete (INT, RANGE, ENUM). */
14f9c5c9
AS
3486
3487static int
d2e4a39e 3488discrete_type_p (struct type *type)
14f9c5c9
AS
3489{
3490 if (type == NULL)
3491 return 0;
d2e4a39e
AS
3492 else
3493 {
3494 switch (TYPE_CODE (type))
4c4b4cd2
PH
3495 {
3496 case TYPE_CODE_INT:
3497 case TYPE_CODE_RANGE:
3498 case TYPE_CODE_ENUM:
3499 return 1;
3500 default:
3501 return 0;
3502 }
d2e4a39e 3503 }
14f9c5c9
AS
3504}
3505
4c4b4cd2
PH
3506/* Returns non-zero if OP with operands in the vector ARGS could be
3507 a user-defined function. Errs on the side of pre-defined operators
3508 (i.e., result 0). */
14f9c5c9
AS
3509
3510static int
d2e4a39e 3511possible_user_operator_p (enum exp_opcode op, struct value *args[])
14f9c5c9 3512{
76a01679 3513 struct type *type0 =
df407dfe 3514 (args[0] == NULL) ? NULL : ada_check_typedef (value_type (args[0]));
d2e4a39e 3515 struct type *type1 =
df407dfe 3516 (args[1] == NULL) ? NULL : ada_check_typedef (value_type (args[1]));
d2e4a39e 3517
4c4b4cd2
PH
3518 if (type0 == NULL)
3519 return 0;
3520
14f9c5c9
AS
3521 switch (op)
3522 {
3523 default:
3524 return 0;
3525
3526 case BINOP_ADD:
3527 case BINOP_SUB:
3528 case BINOP_MUL:
3529 case BINOP_DIV:
d2e4a39e 3530 return (!(numeric_type_p (type0) && numeric_type_p (type1)));
14f9c5c9
AS
3531
3532 case BINOP_REM:
3533 case BINOP_MOD:
3534 case BINOP_BITWISE_AND:
3535 case BINOP_BITWISE_IOR:
3536 case BINOP_BITWISE_XOR:
d2e4a39e 3537 return (!(integer_type_p (type0) && integer_type_p (type1)));
14f9c5c9
AS
3538
3539 case BINOP_EQUAL:
3540 case BINOP_NOTEQUAL:
3541 case BINOP_LESS:
3542 case BINOP_GTR:
3543 case BINOP_LEQ:
3544 case BINOP_GEQ:
d2e4a39e 3545 return (!(scalar_type_p (type0) && scalar_type_p (type1)));
14f9c5c9
AS
3546
3547 case BINOP_CONCAT:
1265e4aa
JB
3548 return
3549 ((TYPE_CODE (type0) != TYPE_CODE_ARRAY
3550 && (TYPE_CODE (type0) != TYPE_CODE_PTR
3551 || TYPE_CODE (TYPE_TARGET_TYPE (type0)) != TYPE_CODE_ARRAY))
3552 || (TYPE_CODE (type1) != TYPE_CODE_ARRAY
3553 && (TYPE_CODE (type1) != TYPE_CODE_PTR
c3e5cd34
PH
3554 || (TYPE_CODE (TYPE_TARGET_TYPE (type1))
3555 != TYPE_CODE_ARRAY))));
14f9c5c9
AS
3556
3557 case BINOP_EXP:
d2e4a39e 3558 return (!(numeric_type_p (type0) && integer_type_p (type1)));
14f9c5c9
AS
3559
3560 case UNOP_NEG:
3561 case UNOP_PLUS:
3562 case UNOP_LOGICAL_NOT:
d2e4a39e
AS
3563 case UNOP_ABS:
3564 return (!numeric_type_p (type0));
14f9c5c9
AS
3565
3566 }
3567}
3568\f
4c4b4cd2 3569 /* Renaming */
14f9c5c9 3570
4c4b4cd2
PH
3571/* NOTE: In the following, we assume that a renaming type's name may
3572 have an ___XD suffix. It would be nice if this went away at some
3573 point. */
14f9c5c9
AS
3574
3575/* If TYPE encodes a renaming, returns the renaming suffix, which
4c4b4cd2
PH
3576 is XR for an object renaming, XRP for a procedure renaming, XRE for
3577 an exception renaming, and XRS for a subprogram renaming. Returns
3578 NULL if NAME encodes none of these. */
3579
d2e4a39e
AS
3580const char *
3581ada_renaming_type (struct type *type)
14f9c5c9
AS
3582{
3583 if (type != NULL && TYPE_CODE (type) == TYPE_CODE_ENUM)
3584 {
d2e4a39e
AS
3585 const char *name = type_name_no_tag (type);
3586 const char *suffix = (name == NULL) ? NULL : strstr (name, "___XR");
3587 if (suffix == NULL
4c4b4cd2
PH
3588 || (suffix[5] != '\000' && strchr ("PES_", suffix[5]) == NULL))
3589 return NULL;
14f9c5c9 3590 else
4c4b4cd2 3591 return suffix + 3;
14f9c5c9
AS
3592 }
3593 else
3594 return NULL;
3595}
3596
4c4b4cd2
PH
3597/* Return non-zero iff SYM encodes an object renaming. */
3598
14f9c5c9 3599int
d2e4a39e 3600ada_is_object_renaming (struct symbol *sym)
14f9c5c9 3601{
d2e4a39e
AS
3602 const char *renaming_type = ada_renaming_type (SYMBOL_TYPE (sym));
3603 return renaming_type != NULL
14f9c5c9
AS
3604 && (renaming_type[2] == '\0' || renaming_type[2] == '_');
3605}
3606
3607/* Assuming that SYM encodes a non-object renaming, returns the original
4c4b4cd2
PH
3608 name of the renamed entity. The name is good until the end of
3609 parsing. */
3610
3611char *
d2e4a39e 3612ada_simple_renamed_entity (struct symbol *sym)
14f9c5c9 3613{
d2e4a39e
AS
3614 struct type *type;
3615 const char *raw_name;
14f9c5c9 3616 int len;
d2e4a39e 3617 char *result;
14f9c5c9
AS
3618
3619 type = SYMBOL_TYPE (sym);
3620 if (type == NULL || TYPE_NFIELDS (type) < 1)
323e0a4a 3621 error (_("Improperly encoded renaming."));
14f9c5c9
AS
3622
3623 raw_name = TYPE_FIELD_NAME (type, 0);
3624 len = (raw_name == NULL ? 0 : strlen (raw_name)) - 5;
3625 if (len <= 0)
323e0a4a 3626 error (_("Improperly encoded renaming."));
14f9c5c9
AS
3627
3628 result = xmalloc (len + 1);
14f9c5c9
AS
3629 strncpy (result, raw_name, len);
3630 result[len] = '\000';
3631 return result;
3632}
52ce6436 3633
14f9c5c9 3634\f
d2e4a39e 3635
4c4b4cd2 3636 /* Evaluation: Function Calls */
14f9c5c9 3637
4c4b4cd2
PH
3638/* Return an lvalue containing the value VAL. This is the identity on
3639 lvalues, and otherwise has the side-effect of pushing a copy of VAL
3640 on the stack, using and updating *SP as the stack pointer, and
3641 returning an lvalue whose VALUE_ADDRESS points to the copy. */
14f9c5c9 3642
d2e4a39e 3643static struct value *
4c4b4cd2 3644ensure_lval (struct value *val, CORE_ADDR *sp)
14f9c5c9 3645{
c3e5cd34
PH
3646 if (! VALUE_LVAL (val))
3647 {
df407dfe 3648 int len = TYPE_LENGTH (ada_check_typedef (value_type (val)));
c3e5cd34
PH
3649
3650 /* The following is taken from the structure-return code in
3651 call_function_by_hand. FIXME: Therefore, some refactoring seems
3652 indicated. */
3653 if (INNER_THAN (1, 2))
3654 {
3655 /* Stack grows downward. Align SP and VALUE_ADDRESS (val) after
3656 reserving sufficient space. */
3657 *sp -= len;
3658 if (gdbarch_frame_align_p (current_gdbarch))
3659 *sp = gdbarch_frame_align (current_gdbarch, *sp);
3660 VALUE_ADDRESS (val) = *sp;
3661 }
3662 else
3663 {
3664 /* Stack grows upward. Align the frame, allocate space, and
3665 then again, re-align the frame. */
3666 if (gdbarch_frame_align_p (current_gdbarch))
3667 *sp = gdbarch_frame_align (current_gdbarch, *sp);
3668 VALUE_ADDRESS (val) = *sp;
3669 *sp += len;
3670 if (gdbarch_frame_align_p (current_gdbarch))
3671 *sp = gdbarch_frame_align (current_gdbarch, *sp);
3672 }
14f9c5c9 3673
990a07ab 3674 write_memory (VALUE_ADDRESS (val), value_contents_raw (val), len);
c3e5cd34 3675 }
14f9c5c9
AS
3676
3677 return val;
3678}
3679
3680/* Return the value ACTUAL, converted to be an appropriate value for a
3681 formal of type FORMAL_TYPE. Use *SP as a stack pointer for
3682 allocating any necessary descriptors (fat pointers), or copies of
4c4b4cd2 3683 values not residing in memory, updating it as needed. */
14f9c5c9 3684
d2e4a39e
AS
3685static struct value *
3686convert_actual (struct value *actual, struct type *formal_type0,
4c4b4cd2 3687 CORE_ADDR *sp)
14f9c5c9 3688{
df407dfe 3689 struct type *actual_type = ada_check_typedef (value_type (actual));
61ee279c 3690 struct type *formal_type = ada_check_typedef (formal_type0);
d2e4a39e
AS
3691 struct type *formal_target =
3692 TYPE_CODE (formal_type) == TYPE_CODE_PTR
61ee279c 3693 ? ada_check_typedef (TYPE_TARGET_TYPE (formal_type)) : formal_type;
d2e4a39e
AS
3694 struct type *actual_target =
3695 TYPE_CODE (actual_type) == TYPE_CODE_PTR
61ee279c 3696 ? ada_check_typedef (TYPE_TARGET_TYPE (actual_type)) : actual_type;
14f9c5c9 3697
4c4b4cd2 3698 if (ada_is_array_descriptor_type (formal_target)
14f9c5c9
AS
3699 && TYPE_CODE (actual_target) == TYPE_CODE_ARRAY)
3700 return make_array_descriptor (formal_type, actual, sp);
3701 else if (TYPE_CODE (formal_type) == TYPE_CODE_PTR)
3702 {
3703 if (TYPE_CODE (formal_target) == TYPE_CODE_ARRAY
4c4b4cd2
PH
3704 && ada_is_array_descriptor_type (actual_target))
3705 return desc_data (actual);
14f9c5c9 3706 else if (TYPE_CODE (actual_type) != TYPE_CODE_PTR)
4c4b4cd2
PH
3707 {
3708 if (VALUE_LVAL (actual) != lval_memory)
3709 {
3710 struct value *val;
df407dfe 3711 actual_type = ada_check_typedef (value_type (actual));
4c4b4cd2 3712 val = allocate_value (actual_type);
990a07ab 3713 memcpy ((char *) value_contents_raw (val),
0fd88904 3714 (char *) value_contents (actual),
4c4b4cd2
PH
3715 TYPE_LENGTH (actual_type));
3716 actual = ensure_lval (val, sp);
3717 }
3718 return value_addr (actual);
3719 }
14f9c5c9
AS
3720 }
3721 else if (TYPE_CODE (actual_type) == TYPE_CODE_PTR)
3722 return ada_value_ind (actual);
3723
3724 return actual;
3725}
3726
3727
4c4b4cd2
PH
3728/* Push a descriptor of type TYPE for array value ARR on the stack at
3729 *SP, updating *SP to reflect the new descriptor. Return either
14f9c5c9 3730 an lvalue representing the new descriptor, or (if TYPE is a pointer-
4c4b4cd2
PH
3731 to-descriptor type rather than a descriptor type), a struct value *
3732 representing a pointer to this descriptor. */
14f9c5c9 3733
d2e4a39e
AS
3734static struct value *
3735make_array_descriptor (struct type *type, struct value *arr, CORE_ADDR *sp)
14f9c5c9 3736{
d2e4a39e
AS
3737 struct type *bounds_type = desc_bounds_type (type);
3738 struct type *desc_type = desc_base_type (type);
3739 struct value *descriptor = allocate_value (desc_type);
3740 struct value *bounds = allocate_value (bounds_type);
14f9c5c9 3741 int i;
d2e4a39e 3742
df407dfe 3743 for (i = ada_array_arity (ada_check_typedef (value_type (arr))); i > 0; i -= 1)
14f9c5c9 3744 {
0fd88904 3745 modify_general_field (value_contents_writeable (bounds),
4c4b4cd2
PH
3746 value_as_long (ada_array_bound (arr, i, 0)),
3747 desc_bound_bitpos (bounds_type, i, 0),
3748 desc_bound_bitsize (bounds_type, i, 0));
0fd88904 3749 modify_general_field (value_contents_writeable (bounds),
4c4b4cd2
PH
3750 value_as_long (ada_array_bound (arr, i, 1)),
3751 desc_bound_bitpos (bounds_type, i, 1),
3752 desc_bound_bitsize (bounds_type, i, 1));
14f9c5c9 3753 }
d2e4a39e 3754
4c4b4cd2 3755 bounds = ensure_lval (bounds, sp);
d2e4a39e 3756
0fd88904 3757 modify_general_field (value_contents_writeable (descriptor),
76a01679
JB
3758 VALUE_ADDRESS (ensure_lval (arr, sp)),
3759 fat_pntr_data_bitpos (desc_type),
3760 fat_pntr_data_bitsize (desc_type));
4c4b4cd2 3761
0fd88904 3762 modify_general_field (value_contents_writeable (descriptor),
4c4b4cd2
PH
3763 VALUE_ADDRESS (bounds),
3764 fat_pntr_bounds_bitpos (desc_type),
3765 fat_pntr_bounds_bitsize (desc_type));
14f9c5c9 3766
4c4b4cd2 3767 descriptor = ensure_lval (descriptor, sp);
14f9c5c9
AS
3768
3769 if (TYPE_CODE (type) == TYPE_CODE_PTR)
3770 return value_addr (descriptor);
3771 else
3772 return descriptor;
3773}
3774
3775
4c4b4cd2 3776/* Assuming a dummy frame has been established on the target, perform any
14f9c5c9 3777 conversions needed for calling function FUNC on the NARGS actual
4c4b4cd2 3778 parameters in ARGS, other than standard C conversions. Does
14f9c5c9 3779 nothing if FUNC does not have Ada-style prototype data, or if NARGS
4c4b4cd2 3780 does not match the number of arguments expected. Use *SP as a
14f9c5c9 3781 stack pointer for additional data that must be pushed, updating its
4c4b4cd2 3782 value as needed. */
14f9c5c9
AS
3783
3784void
d2e4a39e 3785ada_convert_actuals (struct value *func, int nargs, struct value *args[],
4c4b4cd2 3786 CORE_ADDR *sp)
14f9c5c9
AS
3787{
3788 int i;
3789
df407dfe
AC
3790 if (TYPE_NFIELDS (value_type (func)) == 0
3791 || nargs != TYPE_NFIELDS (value_type (func)))
14f9c5c9
AS
3792 return;
3793
3794 for (i = 0; i < nargs; i += 1)
d2e4a39e 3795 args[i] =
df407dfe 3796 convert_actual (args[i], TYPE_FIELD_TYPE (value_type (func), i), sp);
14f9c5c9 3797}
14f9c5c9 3798\f
963a6417
PH
3799/* Dummy definitions for an experimental caching module that is not
3800 * used in the public sources. */
96d887e8 3801
96d887e8
PH
3802static int
3803lookup_cached_symbol (const char *name, domain_enum namespace,
76a01679
JB
3804 struct symbol **sym, struct block **block,
3805 struct symtab **symtab)
96d887e8
PH
3806{
3807 return 0;
3808}
3809
3810static void
3811cache_symbol (const char *name, domain_enum namespace, struct symbol *sym,
76a01679 3812 struct block *block, struct symtab *symtab)
96d887e8
PH
3813{
3814}
4c4b4cd2
PH
3815\f
3816 /* Symbol Lookup */
3817
3818/* Return the result of a standard (literal, C-like) lookup of NAME in
3819 given DOMAIN, visible from lexical block BLOCK. */
3820
3821static struct symbol *
3822standard_lookup (const char *name, const struct block *block,
3823 domain_enum domain)
3824{
3825 struct symbol *sym;
3826 struct symtab *symtab;
3827
3828 if (lookup_cached_symbol (name, domain, &sym, NULL, NULL))
3829 return sym;
76a01679
JB
3830 sym =
3831 lookup_symbol_in_language (name, block, domain, language_c, 0, &symtab);
4c4b4cd2
PH
3832 cache_symbol (name, domain, sym, block_found, symtab);
3833 return sym;
3834}
3835
3836
3837/* Non-zero iff there is at least one non-function/non-enumeral symbol
3838 in the symbol fields of SYMS[0..N-1]. We treat enumerals as functions,
3839 since they contend in overloading in the same way. */
3840static int
3841is_nonfunction (struct ada_symbol_info syms[], int n)
3842{
3843 int i;
3844
3845 for (i = 0; i < n; i += 1)
3846 if (TYPE_CODE (SYMBOL_TYPE (syms[i].sym)) != TYPE_CODE_FUNC
3847 && (TYPE_CODE (SYMBOL_TYPE (syms[i].sym)) != TYPE_CODE_ENUM
3848 || SYMBOL_CLASS (syms[i].sym) != LOC_CONST))
14f9c5c9
AS
3849 return 1;
3850
3851 return 0;
3852}
3853
3854/* If true (non-zero), then TYPE0 and TYPE1 represent equivalent
4c4b4cd2 3855 struct types. Otherwise, they may not. */
14f9c5c9
AS
3856
3857static int
d2e4a39e 3858equiv_types (struct type *type0, struct type *type1)
14f9c5c9 3859{
d2e4a39e 3860 if (type0 == type1)
14f9c5c9 3861 return 1;
d2e4a39e 3862 if (type0 == NULL || type1 == NULL
14f9c5c9
AS
3863 || TYPE_CODE (type0) != TYPE_CODE (type1))
3864 return 0;
d2e4a39e 3865 if ((TYPE_CODE (type0) == TYPE_CODE_STRUCT
14f9c5c9
AS
3866 || TYPE_CODE (type0) == TYPE_CODE_ENUM)
3867 && ada_type_name (type0) != NULL && ada_type_name (type1) != NULL
4c4b4cd2 3868 && strcmp (ada_type_name (type0), ada_type_name (type1)) == 0)
14f9c5c9 3869 return 1;
d2e4a39e 3870
14f9c5c9
AS
3871 return 0;
3872}
3873
3874/* True iff SYM0 represents the same entity as SYM1, or one that is
4c4b4cd2 3875 no more defined than that of SYM1. */
14f9c5c9
AS
3876
3877static int
d2e4a39e 3878lesseq_defined_than (struct symbol *sym0, struct symbol *sym1)
14f9c5c9
AS
3879{
3880 if (sym0 == sym1)
3881 return 1;
176620f1 3882 if (SYMBOL_DOMAIN (sym0) != SYMBOL_DOMAIN (sym1)
14f9c5c9
AS
3883 || SYMBOL_CLASS (sym0) != SYMBOL_CLASS (sym1))
3884 return 0;
3885
d2e4a39e 3886 switch (SYMBOL_CLASS (sym0))
14f9c5c9
AS
3887 {
3888 case LOC_UNDEF:
3889 return 1;
3890 case LOC_TYPEDEF:
3891 {
4c4b4cd2
PH
3892 struct type *type0 = SYMBOL_TYPE (sym0);
3893 struct type *type1 = SYMBOL_TYPE (sym1);
3894 char *name0 = SYMBOL_LINKAGE_NAME (sym0);
3895 char *name1 = SYMBOL_LINKAGE_NAME (sym1);
3896 int len0 = strlen (name0);
3897 return
3898 TYPE_CODE (type0) == TYPE_CODE (type1)
3899 && (equiv_types (type0, type1)
3900 || (len0 < strlen (name1) && strncmp (name0, name1, len0) == 0
3901 && strncmp (name1 + len0, "___XV", 5) == 0));
14f9c5c9
AS
3902 }
3903 case LOC_CONST:
3904 return SYMBOL_VALUE (sym0) == SYMBOL_VALUE (sym1)
4c4b4cd2 3905 && equiv_types (SYMBOL_TYPE (sym0), SYMBOL_TYPE (sym1));
d2e4a39e
AS
3906 default:
3907 return 0;
14f9c5c9
AS
3908 }
3909}
3910
4c4b4cd2
PH
3911/* Append (SYM,BLOCK,SYMTAB) to the end of the array of struct ada_symbol_info
3912 records in OBSTACKP. Do nothing if SYM is a duplicate. */
14f9c5c9
AS
3913
3914static void
76a01679
JB
3915add_defn_to_vec (struct obstack *obstackp,
3916 struct symbol *sym,
3917 struct block *block, struct symtab *symtab)
14f9c5c9
AS
3918{
3919 int i;
3920 size_t tmp;
4c4b4cd2 3921 struct ada_symbol_info *prevDefns = defns_collected (obstackp, 0);
14f9c5c9 3922
529cad9c
PH
3923 /* Do not try to complete stub types, as the debugger is probably
3924 already scanning all symbols matching a certain name at the
3925 time when this function is called. Trying to replace the stub
3926 type by its associated full type will cause us to restart a scan
3927 which may lead to an infinite recursion. Instead, the client
3928 collecting the matching symbols will end up collecting several
3929 matches, with at least one of them complete. It can then filter
3930 out the stub ones if needed. */
3931
4c4b4cd2
PH
3932 for (i = num_defns_collected (obstackp) - 1; i >= 0; i -= 1)
3933 {
3934 if (lesseq_defined_than (sym, prevDefns[i].sym))
3935 return;
3936 else if (lesseq_defined_than (prevDefns[i].sym, sym))
3937 {
3938 prevDefns[i].sym = sym;
3939 prevDefns[i].block = block;
76a01679 3940 prevDefns[i].symtab = symtab;
4c4b4cd2 3941 return;
76a01679 3942 }
4c4b4cd2
PH
3943 }
3944
3945 {
3946 struct ada_symbol_info info;
3947
3948 info.sym = sym;
3949 info.block = block;
3950 info.symtab = symtab;
3951 obstack_grow (obstackp, &info, sizeof (struct ada_symbol_info));
3952 }
3953}
3954
3955/* Number of ada_symbol_info structures currently collected in
3956 current vector in *OBSTACKP. */
3957
76a01679
JB
3958static int
3959num_defns_collected (struct obstack *obstackp)
4c4b4cd2
PH
3960{
3961 return obstack_object_size (obstackp) / sizeof (struct ada_symbol_info);
3962}
3963
3964/* Vector of ada_symbol_info structures currently collected in current
3965 vector in *OBSTACKP. If FINISH, close off the vector and return
3966 its final address. */
3967
76a01679 3968static struct ada_symbol_info *
4c4b4cd2
PH
3969defns_collected (struct obstack *obstackp, int finish)
3970{
3971 if (finish)
3972 return obstack_finish (obstackp);
3973 else
3974 return (struct ada_symbol_info *) obstack_base (obstackp);
3975}
3976
96d887e8
PH
3977/* Look, in partial_symtab PST, for symbol NAME in given namespace.
3978 Check the global symbols if GLOBAL, the static symbols if not.
3979 Do wild-card match if WILD. */
4c4b4cd2 3980
96d887e8
PH
3981static struct partial_symbol *
3982ada_lookup_partial_symbol (struct partial_symtab *pst, const char *name,
3983 int global, domain_enum namespace, int wild)
4c4b4cd2 3984{
96d887e8
PH
3985 struct partial_symbol **start;
3986 int name_len = strlen (name);
3987 int length = (global ? pst->n_global_syms : pst->n_static_syms);
3988 int i;
4c4b4cd2 3989
96d887e8 3990 if (length == 0)
4c4b4cd2 3991 {
96d887e8 3992 return (NULL);
4c4b4cd2
PH
3993 }
3994
96d887e8
PH
3995 start = (global ?
3996 pst->objfile->global_psymbols.list + pst->globals_offset :
3997 pst->objfile->static_psymbols.list + pst->statics_offset);
4c4b4cd2 3998
96d887e8 3999 if (wild)
4c4b4cd2 4000 {
96d887e8
PH
4001 for (i = 0; i < length; i += 1)
4002 {
4003 struct partial_symbol *psym = start[i];
4c4b4cd2 4004
1265e4aa
JB
4005 if (SYMBOL_DOMAIN (psym) == namespace
4006 && wild_match (name, name_len, SYMBOL_LINKAGE_NAME (psym)))
96d887e8
PH
4007 return psym;
4008 }
4009 return NULL;
4c4b4cd2 4010 }
96d887e8
PH
4011 else
4012 {
4013 if (global)
4014 {
4015 int U;
4016 i = 0;
4017 U = length - 1;
4018 while (U - i > 4)
4019 {
4020 int M = (U + i) >> 1;
4021 struct partial_symbol *psym = start[M];
4022 if (SYMBOL_LINKAGE_NAME (psym)[0] < name[0])
4023 i = M + 1;
4024 else if (SYMBOL_LINKAGE_NAME (psym)[0] > name[0])
4025 U = M - 1;
4026 else if (strcmp (SYMBOL_LINKAGE_NAME (psym), name) < 0)
4027 i = M + 1;
4028 else
4029 U = M;
4030 }
4031 }
4032 else
4033 i = 0;
4c4b4cd2 4034
96d887e8
PH
4035 while (i < length)
4036 {
4037 struct partial_symbol *psym = start[i];
4c4b4cd2 4038
96d887e8
PH
4039 if (SYMBOL_DOMAIN (psym) == namespace)
4040 {
4041 int cmp = strncmp (name, SYMBOL_LINKAGE_NAME (psym), name_len);
4c4b4cd2 4042
96d887e8
PH
4043 if (cmp < 0)
4044 {
4045 if (global)
4046 break;
4047 }
4048 else if (cmp == 0
4049 && is_name_suffix (SYMBOL_LINKAGE_NAME (psym)
76a01679 4050 + name_len))
96d887e8
PH
4051 return psym;
4052 }
4053 i += 1;
4054 }
4c4b4cd2 4055
96d887e8
PH
4056 if (global)
4057 {
4058 int U;
4059 i = 0;
4060 U = length - 1;
4061 while (U - i > 4)
4062 {
4063 int M = (U + i) >> 1;
4064 struct partial_symbol *psym = start[M];
4065 if (SYMBOL_LINKAGE_NAME (psym)[0] < '_')
4066 i = M + 1;
4067 else if (SYMBOL_LINKAGE_NAME (psym)[0] > '_')
4068 U = M - 1;
4069 else if (strcmp (SYMBOL_LINKAGE_NAME (psym), "_ada_") < 0)
4070 i = M + 1;
4071 else
4072 U = M;
4073 }
4074 }
4075 else
4076 i = 0;
4c4b4cd2 4077
96d887e8
PH
4078 while (i < length)
4079 {
4080 struct partial_symbol *psym = start[i];
4c4b4cd2 4081
96d887e8
PH
4082 if (SYMBOL_DOMAIN (psym) == namespace)
4083 {
4084 int cmp;
4c4b4cd2 4085
96d887e8
PH
4086 cmp = (int) '_' - (int) SYMBOL_LINKAGE_NAME (psym)[0];
4087 if (cmp == 0)
4088 {
4089 cmp = strncmp ("_ada_", SYMBOL_LINKAGE_NAME (psym), 5);
4090 if (cmp == 0)
4091 cmp = strncmp (name, SYMBOL_LINKAGE_NAME (psym) + 5,
76a01679 4092 name_len);
96d887e8 4093 }
4c4b4cd2 4094
96d887e8
PH
4095 if (cmp < 0)
4096 {
4097 if (global)
4098 break;
4099 }
4100 else if (cmp == 0
4101 && is_name_suffix (SYMBOL_LINKAGE_NAME (psym)
76a01679 4102 + name_len + 5))
96d887e8
PH
4103 return psym;
4104 }
4105 i += 1;
4106 }
4107 }
4108 return NULL;
4c4b4cd2
PH
4109}
4110
96d887e8 4111/* Find a symbol table containing symbol SYM or NULL if none. */
4c4b4cd2 4112
96d887e8
PH
4113static struct symtab *
4114symtab_for_sym (struct symbol *sym)
4c4b4cd2 4115{
96d887e8
PH
4116 struct symtab *s;
4117 struct objfile *objfile;
4118 struct block *b;
4119 struct symbol *tmp_sym;
4120 struct dict_iterator iter;
4121 int j;
4c4b4cd2 4122
11309657 4123 ALL_PRIMARY_SYMTABS (objfile, s)
96d887e8
PH
4124 {
4125 switch (SYMBOL_CLASS (sym))
4126 {
4127 case LOC_CONST:
4128 case LOC_STATIC:
4129 case LOC_TYPEDEF:
4130 case LOC_REGISTER:
4131 case LOC_LABEL:
4132 case LOC_BLOCK:
4133 case LOC_CONST_BYTES:
76a01679
JB
4134 b = BLOCKVECTOR_BLOCK (BLOCKVECTOR (s), GLOBAL_BLOCK);
4135 ALL_BLOCK_SYMBOLS (b, iter, tmp_sym) if (sym == tmp_sym)
4136 return s;
4137 b = BLOCKVECTOR_BLOCK (BLOCKVECTOR (s), STATIC_BLOCK);
4138 ALL_BLOCK_SYMBOLS (b, iter, tmp_sym) if (sym == tmp_sym)
4139 return s;
96d887e8
PH
4140 break;
4141 default:
4142 break;
4143 }
4144 switch (SYMBOL_CLASS (sym))
4145 {
4146 case LOC_REGISTER:
4147 case LOC_ARG:
4148 case LOC_REF_ARG:
4149 case LOC_REGPARM:
4150 case LOC_REGPARM_ADDR:
4151 case LOC_LOCAL:
4152 case LOC_TYPEDEF:
4153 case LOC_LOCAL_ARG:
4154 case LOC_BASEREG:
4155 case LOC_BASEREG_ARG:
4156 case LOC_COMPUTED:
4157 case LOC_COMPUTED_ARG:
76a01679
JB
4158 for (j = FIRST_LOCAL_BLOCK;
4159 j < BLOCKVECTOR_NBLOCKS (BLOCKVECTOR (s)); j += 1)
4160 {
4161 b = BLOCKVECTOR_BLOCK (BLOCKVECTOR (s), j);
4162 ALL_BLOCK_SYMBOLS (b, iter, tmp_sym) if (sym == tmp_sym)
4163 return s;
4164 }
4165 break;
96d887e8
PH
4166 default:
4167 break;
4168 }
4169 }
4170 return NULL;
4c4b4cd2
PH
4171}
4172
96d887e8
PH
4173/* Return a minimal symbol matching NAME according to Ada decoding
4174 rules. Returns NULL if there is no such minimal symbol. Names
4175 prefixed with "standard__" are handled specially: "standard__" is
4176 first stripped off, and only static and global symbols are searched. */
4c4b4cd2 4177
96d887e8
PH
4178struct minimal_symbol *
4179ada_lookup_simple_minsym (const char *name)
4c4b4cd2 4180{
4c4b4cd2 4181 struct objfile *objfile;
96d887e8
PH
4182 struct minimal_symbol *msymbol;
4183 int wild_match;
4c4b4cd2 4184
96d887e8 4185 if (strncmp (name, "standard__", sizeof ("standard__") - 1) == 0)
4c4b4cd2 4186 {
96d887e8 4187 name += sizeof ("standard__") - 1;
4c4b4cd2 4188 wild_match = 0;
4c4b4cd2
PH
4189 }
4190 else
96d887e8 4191 wild_match = (strstr (name, "__") == NULL);
4c4b4cd2 4192
96d887e8
PH
4193 ALL_MSYMBOLS (objfile, msymbol)
4194 {
4195 if (ada_match_name (SYMBOL_LINKAGE_NAME (msymbol), name, wild_match)
4196 && MSYMBOL_TYPE (msymbol) != mst_solib_trampoline)
4197 return msymbol;
4198 }
4c4b4cd2 4199
96d887e8
PH
4200 return NULL;
4201}
4c4b4cd2 4202
96d887e8
PH
4203/* For all subprograms that statically enclose the subprogram of the
4204 selected frame, add symbols matching identifier NAME in DOMAIN
4205 and their blocks to the list of data in OBSTACKP, as for
4206 ada_add_block_symbols (q.v.). If WILD, treat as NAME with a
4207 wildcard prefix. */
4c4b4cd2 4208
96d887e8
PH
4209static void
4210add_symbols_from_enclosing_procs (struct obstack *obstackp,
76a01679 4211 const char *name, domain_enum namespace,
96d887e8
PH
4212 int wild_match)
4213{
96d887e8 4214}
14f9c5c9 4215
96d887e8
PH
4216/* True if TYPE is definitely an artificial type supplied to a symbol
4217 for which no debugging information was given in the symbol file. */
14f9c5c9 4218
96d887e8
PH
4219static int
4220is_nondebugging_type (struct type *type)
4221{
4222 char *name = ada_type_name (type);
4223 return (name != NULL && strcmp (name, "<variable, no debug info>") == 0);
4224}
4c4b4cd2 4225
96d887e8
PH
4226/* Remove any non-debugging symbols in SYMS[0 .. NSYMS-1] that definitely
4227 duplicate other symbols in the list (The only case I know of where
4228 this happens is when object files containing stabs-in-ecoff are
4229 linked with files containing ordinary ecoff debugging symbols (or no
4230 debugging symbols)). Modifies SYMS to squeeze out deleted entries.
4231 Returns the number of items in the modified list. */
4c4b4cd2 4232
96d887e8
PH
4233static int
4234remove_extra_symbols (struct ada_symbol_info *syms, int nsyms)
4235{
4236 int i, j;
4c4b4cd2 4237
96d887e8
PH
4238 i = 0;
4239 while (i < nsyms)
4240 {
4241 if (SYMBOL_LINKAGE_NAME (syms[i].sym) != NULL
4242 && SYMBOL_CLASS (syms[i].sym) == LOC_STATIC
4243 && is_nondebugging_type (SYMBOL_TYPE (syms[i].sym)))
4244 {
4245 for (j = 0; j < nsyms; j += 1)
4246 {
4247 if (i != j
4248 && SYMBOL_LINKAGE_NAME (syms[j].sym) != NULL
4249 && strcmp (SYMBOL_LINKAGE_NAME (syms[i].sym),
76a01679 4250 SYMBOL_LINKAGE_NAME (syms[j].sym)) == 0
96d887e8
PH
4251 && SYMBOL_CLASS (syms[i].sym) == SYMBOL_CLASS (syms[j].sym)
4252 && SYMBOL_VALUE_ADDRESS (syms[i].sym)
4253 == SYMBOL_VALUE_ADDRESS (syms[j].sym))
4c4b4cd2 4254 {
96d887e8
PH
4255 int k;
4256 for (k = i + 1; k < nsyms; k += 1)
76a01679 4257 syms[k - 1] = syms[k];
96d887e8
PH
4258 nsyms -= 1;
4259 goto NextSymbol;
4c4b4cd2 4260 }
4c4b4cd2 4261 }
4c4b4cd2 4262 }
96d887e8
PH
4263 i += 1;
4264 NextSymbol:
4265 ;
14f9c5c9 4266 }
96d887e8 4267 return nsyms;
14f9c5c9
AS
4268}
4269
96d887e8
PH
4270/* Given a type that corresponds to a renaming entity, use the type name
4271 to extract the scope (package name or function name, fully qualified,
4272 and following the GNAT encoding convention) where this renaming has been
4273 defined. The string returned needs to be deallocated after use. */
4c4b4cd2 4274
96d887e8
PH
4275static char *
4276xget_renaming_scope (struct type *renaming_type)
14f9c5c9 4277{
96d887e8
PH
4278 /* The renaming types adhere to the following convention:
4279 <scope>__<rename>___<XR extension>.
4280 So, to extract the scope, we search for the "___XR" extension,
4281 and then backtrack until we find the first "__". */
76a01679 4282
96d887e8
PH
4283 const char *name = type_name_no_tag (renaming_type);
4284 char *suffix = strstr (name, "___XR");
4285 char *last;
4286 int scope_len;
4287 char *scope;
14f9c5c9 4288
96d887e8
PH
4289 /* Now, backtrack a bit until we find the first "__". Start looking
4290 at suffix - 3, as the <rename> part is at least one character long. */
14f9c5c9 4291
96d887e8
PH
4292 for (last = suffix - 3; last > name; last--)
4293 if (last[0] == '_' && last[1] == '_')
4294 break;
76a01679 4295
96d887e8 4296 /* Make a copy of scope and return it. */
14f9c5c9 4297
96d887e8
PH
4298 scope_len = last - name;
4299 scope = (char *) xmalloc ((scope_len + 1) * sizeof (char));
14f9c5c9 4300
96d887e8
PH
4301 strncpy (scope, name, scope_len);
4302 scope[scope_len] = '\0';
4c4b4cd2 4303
96d887e8 4304 return scope;
4c4b4cd2
PH
4305}
4306
96d887e8 4307/* Return nonzero if NAME corresponds to a package name. */
4c4b4cd2 4308
96d887e8
PH
4309static int
4310is_package_name (const char *name)
4c4b4cd2 4311{
96d887e8
PH
4312 /* Here, We take advantage of the fact that no symbols are generated
4313 for packages, while symbols are generated for each function.
4314 So the condition for NAME represent a package becomes equivalent
4315 to NAME not existing in our list of symbols. There is only one
4316 small complication with library-level functions (see below). */
4c4b4cd2 4317
96d887e8 4318 char *fun_name;
76a01679 4319
96d887e8
PH
4320 /* If it is a function that has not been defined at library level,
4321 then we should be able to look it up in the symbols. */
4322 if (standard_lookup (name, NULL, VAR_DOMAIN) != NULL)
4323 return 0;
14f9c5c9 4324
96d887e8
PH
4325 /* Library-level function names start with "_ada_". See if function
4326 "_ada_" followed by NAME can be found. */
14f9c5c9 4327
96d887e8 4328 /* Do a quick check that NAME does not contain "__", since library-level
e1d5a0d2 4329 functions names cannot contain "__" in them. */
96d887e8
PH
4330 if (strstr (name, "__") != NULL)
4331 return 0;
4c4b4cd2 4332
b435e160 4333 fun_name = xstrprintf ("_ada_%s", name);
14f9c5c9 4334
96d887e8
PH
4335 return (standard_lookup (fun_name, NULL, VAR_DOMAIN) == NULL);
4336}
14f9c5c9 4337
96d887e8
PH
4338/* Return nonzero if SYM corresponds to a renaming entity that is
4339 visible from FUNCTION_NAME. */
14f9c5c9 4340
96d887e8
PH
4341static int
4342renaming_is_visible (const struct symbol *sym, char *function_name)
4343{
4344 char *scope = xget_renaming_scope (SYMBOL_TYPE (sym));
d2e4a39e 4345
96d887e8 4346 make_cleanup (xfree, scope);
14f9c5c9 4347
96d887e8
PH
4348 /* If the rename has been defined in a package, then it is visible. */
4349 if (is_package_name (scope))
4350 return 1;
14f9c5c9 4351
96d887e8
PH
4352 /* Check that the rename is in the current function scope by checking
4353 that its name starts with SCOPE. */
76a01679 4354
96d887e8
PH
4355 /* If the function name starts with "_ada_", it means that it is
4356 a library-level function. Strip this prefix before doing the
4357 comparison, as the encoding for the renaming does not contain
4358 this prefix. */
4359 if (strncmp (function_name, "_ada_", 5) == 0)
4360 function_name += 5;
f26caa11 4361
96d887e8 4362 return (strncmp (function_name, scope, strlen (scope)) == 0);
f26caa11
PH
4363}
4364
96d887e8
PH
4365/* Iterates over the SYMS list and remove any entry that corresponds to
4366 a renaming entity that is not visible from the function associated
4367 with CURRENT_BLOCK.
4368
4369 Rationale:
4370 GNAT emits a type following a specified encoding for each renaming
4371 entity. Unfortunately, STABS currently does not support the definition
4372 of types that are local to a given lexical block, so all renamings types
4373 are emitted at library level. As a consequence, if an application
4374 contains two renaming entities using the same name, and a user tries to
4375 print the value of one of these entities, the result of the ada symbol
4376 lookup will also contain the wrong renaming type.
f26caa11 4377
96d887e8
PH
4378 This function partially covers for this limitation by attempting to
4379 remove from the SYMS list renaming symbols that should be visible
4380 from CURRENT_BLOCK. However, there does not seem be a 100% reliable
4381 method with the current information available. The implementation
4382 below has a couple of limitations (FIXME: brobecker-2003-05-12):
4383
4384 - When the user tries to print a rename in a function while there
4385 is another rename entity defined in a package: Normally, the
4386 rename in the function has precedence over the rename in the
4387 package, so the latter should be removed from the list. This is
4388 currently not the case.
4389
4390 - This function will incorrectly remove valid renames if
4391 the CURRENT_BLOCK corresponds to a function which symbol name
4392 has been changed by an "Export" pragma. As a consequence,
4393 the user will be unable to print such rename entities. */
4c4b4cd2 4394
14f9c5c9 4395static int
96d887e8 4396remove_out_of_scope_renamings (struct ada_symbol_info *syms,
b260b6c1 4397 int nsyms, const struct block *current_block)
4c4b4cd2
PH
4398{
4399 struct symbol *current_function;
4400 char *current_function_name;
4401 int i;
4402
4403 /* Extract the function name associated to CURRENT_BLOCK.
4404 Abort if unable to do so. */
76a01679 4405
4c4b4cd2
PH
4406 if (current_block == NULL)
4407 return nsyms;
76a01679 4408
4c4b4cd2
PH
4409 current_function = block_function (current_block);
4410 if (current_function == NULL)
4411 return nsyms;
4412
4413 current_function_name = SYMBOL_LINKAGE_NAME (current_function);
4414 if (current_function_name == NULL)
4415 return nsyms;
4416
4417 /* Check each of the symbols, and remove it from the list if it is
4418 a type corresponding to a renaming that is out of the scope of
4419 the current block. */
4420
4421 i = 0;
4422 while (i < nsyms)
4423 {
4424 if (ada_is_object_renaming (syms[i].sym)
4425 && !renaming_is_visible (syms[i].sym, current_function_name))
4426 {
4427 int j;
4428 for (j = i + 1; j < nsyms; j++)
76a01679 4429 syms[j - 1] = syms[j];
4c4b4cd2
PH
4430 nsyms -= 1;
4431 }
4432 else
4433 i += 1;
4434 }
4435
4436 return nsyms;
4437}
4438
4439/* Find symbols in DOMAIN matching NAME0, in BLOCK0 and enclosing
4440 scope and in global scopes, returning the number of matches. Sets
4441 *RESULTS to point to a vector of (SYM,BLOCK,SYMTAB) triples,
4442 indicating the symbols found and the blocks and symbol tables (if
4443 any) in which they were found. This vector are transient---good only to
4444 the next call of ada_lookup_symbol_list. Any non-function/non-enumeral
4445 symbol match within the nest of blocks whose innermost member is BLOCK0,
4446 is the one match returned (no other matches in that or
4447 enclosing blocks is returned). If there are any matches in or
4448 surrounding BLOCK0, then these alone are returned. Otherwise, the
4449 search extends to global and file-scope (static) symbol tables.
4450 Names prefixed with "standard__" are handled specially: "standard__"
4451 is first stripped off, and only static and global symbols are searched. */
14f9c5c9
AS
4452
4453int
4c4b4cd2 4454ada_lookup_symbol_list (const char *name0, const struct block *block0,
76a01679
JB
4455 domain_enum namespace,
4456 struct ada_symbol_info **results)
14f9c5c9
AS
4457{
4458 struct symbol *sym;
4459 struct symtab *s;
4460 struct partial_symtab *ps;
4461 struct blockvector *bv;
4462 struct objfile *objfile;
14f9c5c9 4463 struct block *block;
4c4b4cd2 4464 const char *name;
14f9c5c9 4465 struct minimal_symbol *msymbol;
4c4b4cd2 4466 int wild_match;
14f9c5c9 4467 int cacheIfUnique;
4c4b4cd2
PH
4468 int block_depth;
4469 int ndefns;
14f9c5c9 4470
4c4b4cd2
PH
4471 obstack_free (&symbol_list_obstack, NULL);
4472 obstack_init (&symbol_list_obstack);
14f9c5c9 4473
14f9c5c9
AS
4474 cacheIfUnique = 0;
4475
4476 /* Search specified block and its superiors. */
4477
4c4b4cd2
PH
4478 wild_match = (strstr (name0, "__") == NULL);
4479 name = name0;
76a01679
JB
4480 block = (struct block *) block0; /* FIXME: No cast ought to be
4481 needed, but adding const will
4482 have a cascade effect. */
4c4b4cd2
PH
4483 if (strncmp (name0, "standard__", sizeof ("standard__") - 1) == 0)
4484 {
4485 wild_match = 0;
4486 block = NULL;
4487 name = name0 + sizeof ("standard__") - 1;
4488 }
4489
4490 block_depth = 0;
14f9c5c9
AS
4491 while (block != NULL)
4492 {
4c4b4cd2 4493 block_depth += 1;
76a01679
JB
4494 ada_add_block_symbols (&symbol_list_obstack, block, name,
4495 namespace, NULL, NULL, wild_match);
14f9c5c9 4496
4c4b4cd2
PH
4497 /* If we found a non-function match, assume that's the one. */
4498 if (is_nonfunction (defns_collected (&symbol_list_obstack, 0),
76a01679 4499 num_defns_collected (&symbol_list_obstack)))
4c4b4cd2 4500 goto done;
14f9c5c9
AS
4501
4502 block = BLOCK_SUPERBLOCK (block);
4503 }
4504
4c4b4cd2
PH
4505 /* If no luck so far, try to find NAME as a local symbol in some lexically
4506 enclosing subprogram. */
4507 if (num_defns_collected (&symbol_list_obstack) == 0 && block_depth > 2)
4508 add_symbols_from_enclosing_procs (&symbol_list_obstack,
76a01679 4509 name, namespace, wild_match);
4c4b4cd2
PH
4510
4511 /* If we found ANY matches among non-global symbols, we're done. */
14f9c5c9 4512
4c4b4cd2 4513 if (num_defns_collected (&symbol_list_obstack) > 0)
14f9c5c9 4514 goto done;
d2e4a39e 4515
14f9c5c9 4516 cacheIfUnique = 1;
4c4b4cd2
PH
4517 if (lookup_cached_symbol (name0, namespace, &sym, &block, &s))
4518 {
4519 if (sym != NULL)
4520 add_defn_to_vec (&symbol_list_obstack, sym, block, s);
4521 goto done;
4522 }
14f9c5c9
AS
4523
4524 /* Now add symbols from all global blocks: symbol tables, minimal symbol
4c4b4cd2 4525 tables, and psymtab's. */
14f9c5c9 4526
11309657 4527 ALL_PRIMARY_SYMTABS (objfile, s)
d2e4a39e
AS
4528 {
4529 QUIT;
d2e4a39e
AS
4530 bv = BLOCKVECTOR (s);
4531 block = BLOCKVECTOR_BLOCK (bv, GLOBAL_BLOCK);
76a01679
JB
4532 ada_add_block_symbols (&symbol_list_obstack, block, name, namespace,
4533 objfile, s, wild_match);
d2e4a39e 4534 }
14f9c5c9 4535
4c4b4cd2 4536 if (namespace == VAR_DOMAIN)
14f9c5c9
AS
4537 {
4538 ALL_MSYMBOLS (objfile, msymbol)
d2e4a39e 4539 {
4c4b4cd2
PH
4540 if (ada_match_name (SYMBOL_LINKAGE_NAME (msymbol), name, wild_match))
4541 {
4542 switch (MSYMBOL_TYPE (msymbol))
4543 {
4544 case mst_solib_trampoline:
4545 break;
4546 default:
4547 s = find_pc_symtab (SYMBOL_VALUE_ADDRESS (msymbol));
4548 if (s != NULL)
4549 {
4550 int ndefns0 = num_defns_collected (&symbol_list_obstack);
4551 QUIT;
4552 bv = BLOCKVECTOR (s);
4553 block = BLOCKVECTOR_BLOCK (bv, GLOBAL_BLOCK);
4554 ada_add_block_symbols (&symbol_list_obstack, block,
4555 SYMBOL_LINKAGE_NAME (msymbol),
4556 namespace, objfile, s, wild_match);
76a01679 4557
4c4b4cd2
PH
4558 if (num_defns_collected (&symbol_list_obstack) == ndefns0)
4559 {
4560 block = BLOCKVECTOR_BLOCK (bv, STATIC_BLOCK);
4561 ada_add_block_symbols (&symbol_list_obstack, block,
4562 SYMBOL_LINKAGE_NAME (msymbol),
4563 namespace, objfile, s,
4564 wild_match);
4565 }
4566 }
4567 }
4568 }
d2e4a39e 4569 }
14f9c5c9 4570 }
d2e4a39e 4571
14f9c5c9 4572 ALL_PSYMTABS (objfile, ps)
d2e4a39e
AS
4573 {
4574 QUIT;
4575 if (!ps->readin
4c4b4cd2 4576 && ada_lookup_partial_symbol (ps, name, 1, namespace, wild_match))
d2e4a39e 4577 {
4c4b4cd2
PH
4578 s = PSYMTAB_TO_SYMTAB (ps);
4579 if (!s->primary)
4580 continue;
4581 bv = BLOCKVECTOR (s);
4582 block = BLOCKVECTOR_BLOCK (bv, GLOBAL_BLOCK);
4583 ada_add_block_symbols (&symbol_list_obstack, block, name,
76a01679 4584 namespace, objfile, s, wild_match);
d2e4a39e
AS
4585 }
4586 }
4587
4c4b4cd2 4588 /* Now add symbols from all per-file blocks if we've gotten no hits
14f9c5c9 4589 (Not strictly correct, but perhaps better than an error).
4c4b4cd2 4590 Do the symtabs first, then check the psymtabs. */
d2e4a39e 4591
4c4b4cd2 4592 if (num_defns_collected (&symbol_list_obstack) == 0)
14f9c5c9
AS
4593 {
4594
11309657 4595 ALL_PRIMARY_SYMTABS (objfile, s)
d2e4a39e 4596 {
4c4b4cd2 4597 QUIT;
4c4b4cd2
PH
4598 bv = BLOCKVECTOR (s);
4599 block = BLOCKVECTOR_BLOCK (bv, STATIC_BLOCK);
76a01679
JB
4600 ada_add_block_symbols (&symbol_list_obstack, block, name, namespace,
4601 objfile, s, wild_match);
d2e4a39e
AS
4602 }
4603
14f9c5c9 4604 ALL_PSYMTABS (objfile, ps)
d2e4a39e 4605 {
4c4b4cd2
PH
4606 QUIT;
4607 if (!ps->readin
4608 && ada_lookup_partial_symbol (ps, name, 0, namespace, wild_match))
4609 {
4610 s = PSYMTAB_TO_SYMTAB (ps);
4611 bv = BLOCKVECTOR (s);
4612 if (!s->primary)
4613 continue;
4614 block = BLOCKVECTOR_BLOCK (bv, STATIC_BLOCK);
76a01679
JB
4615 ada_add_block_symbols (&symbol_list_obstack, block, name,
4616 namespace, objfile, s, wild_match);
4c4b4cd2 4617 }
d2e4a39e
AS
4618 }
4619 }
14f9c5c9 4620
4c4b4cd2
PH
4621done:
4622 ndefns = num_defns_collected (&symbol_list_obstack);
4623 *results = defns_collected (&symbol_list_obstack, 1);
4624
4625 ndefns = remove_extra_symbols (*results, ndefns);
4626
d2e4a39e 4627 if (ndefns == 0)
4c4b4cd2 4628 cache_symbol (name0, namespace, NULL, NULL, NULL);
14f9c5c9 4629
4c4b4cd2 4630 if (ndefns == 1 && cacheIfUnique)
76a01679
JB
4631 cache_symbol (name0, namespace, (*results)[0].sym, (*results)[0].block,
4632 (*results)[0].symtab);
14f9c5c9 4633
b260b6c1 4634 ndefns = remove_out_of_scope_renamings (*results, ndefns, block0);
14f9c5c9 4635
14f9c5c9
AS
4636 return ndefns;
4637}
4638
4c4b4cd2
PH
4639/* Return a symbol in DOMAIN matching NAME, in BLOCK0 and enclosing
4640 scope and in global scopes, or NULL if none. NAME is folded and
4641 encoded first. Otherwise, the result is as for ada_lookup_symbol_list,
714e53ab
PH
4642 choosing the first symbol if there are multiple choices.
4643 *IS_A_FIELD_OF_THIS is set to 0 and *SYMTAB is set to the symbol
4644 table in which the symbol was found (in both cases, these
4645 assignments occur only if the pointers are non-null). */
4646
d2e4a39e 4647struct symbol *
4c4b4cd2
PH
4648ada_lookup_symbol (const char *name, const struct block *block0,
4649 domain_enum namespace, int *is_a_field_of_this,
76a01679 4650 struct symtab **symtab)
14f9c5c9 4651{
4c4b4cd2 4652 struct ada_symbol_info *candidates;
14f9c5c9
AS
4653 int n_candidates;
4654
4c4b4cd2
PH
4655 n_candidates = ada_lookup_symbol_list (ada_encode (ada_fold_name (name)),
4656 block0, namespace, &candidates);
14f9c5c9
AS
4657
4658 if (n_candidates == 0)
4659 return NULL;
4c4b4cd2
PH
4660
4661 if (is_a_field_of_this != NULL)
4662 *is_a_field_of_this = 0;
4663
76a01679 4664 if (symtab != NULL)
4c4b4cd2
PH
4665 {
4666 *symtab = candidates[0].symtab;
76a01679
JB
4667 if (*symtab == NULL && candidates[0].block != NULL)
4668 {
4669 struct objfile *objfile;
4670 struct symtab *s;
4671 struct block *b;
4672 struct blockvector *bv;
4673
4674 /* Search the list of symtabs for one which contains the
4675 address of the start of this block. */
11309657 4676 ALL_PRIMARY_SYMTABS (objfile, s)
76a01679
JB
4677 {
4678 bv = BLOCKVECTOR (s);
4679 b = BLOCKVECTOR_BLOCK (bv, GLOBAL_BLOCK);
4680 if (BLOCK_START (b) <= BLOCK_START (candidates[0].block)
4681 && BLOCK_END (b) > BLOCK_START (candidates[0].block))
4682 {
4683 *symtab = s;
4684 return fixup_symbol_section (candidates[0].sym, objfile);
4685 }
76a01679 4686 }
529cad9c
PH
4687 /* FIXME: brobecker/2004-11-12: I think that we should never
4688 reach this point. I don't see a reason why we would not
4689 find a symtab for a given block, so I suggest raising an
4690 internal_error exception here. Otherwise, we end up
4691 returning a symbol but no symtab, which certain parts of
4692 the code that rely (indirectly) on this function do not
4693 expect, eventually causing a SEGV. */
4694 return fixup_symbol_section (candidates[0].sym, NULL);
76a01679
JB
4695 }
4696 }
4c4b4cd2
PH
4697 return candidates[0].sym;
4698}
14f9c5c9 4699
4c4b4cd2
PH
4700static struct symbol *
4701ada_lookup_symbol_nonlocal (const char *name,
76a01679
JB
4702 const char *linkage_name,
4703 const struct block *block,
4704 const domain_enum domain, struct symtab **symtab)
4c4b4cd2
PH
4705{
4706 if (linkage_name == NULL)
4707 linkage_name = name;
76a01679
JB
4708 return ada_lookup_symbol (linkage_name, block_static_block (block), domain,
4709 NULL, symtab);
14f9c5c9
AS
4710}
4711
4712
4c4b4cd2
PH
4713/* True iff STR is a possible encoded suffix of a normal Ada name
4714 that is to be ignored for matching purposes. Suffixes of parallel
4715 names (e.g., XVE) are not included here. Currently, the possible suffixes
4716 are given by either of the regular expression:
4717
529cad9c
PH
4718 (__[0-9]+)?[.$][0-9]+ [nested subprogram suffix, on platforms such
4719 as GNU/Linux]
4c4b4cd2 4720 ___[0-9]+ [nested subprogram suffix, on platforms such as HP/UX]
529cad9c 4721 _E[0-9]+[bs]$ [protected object entry suffixes]
61ee279c 4722 (X[nb]*)?((\$|__)[0-9](_?[0-9]+)|___(JM|LJM|X([FDBUP].*|R[^T]?)))?$
14f9c5c9 4723 */
4c4b4cd2 4724
14f9c5c9 4725static int
d2e4a39e 4726is_name_suffix (const char *str)
14f9c5c9
AS
4727{
4728 int k;
4c4b4cd2
PH
4729 const char *matching;
4730 const int len = strlen (str);
4731
4732 /* (__[0-9]+)?\.[0-9]+ */
4733 matching = str;
4734 if (len > 3 && str[0] == '_' && str[1] == '_' && isdigit (str[2]))
4735 {
4736 matching += 3;
4737 while (isdigit (matching[0]))
4738 matching += 1;
4739 if (matching[0] == '\0')
4740 return 1;
4741 }
4742
529cad9c 4743 if (matching[0] == '.' || matching[0] == '$')
4c4b4cd2
PH
4744 {
4745 matching += 1;
4746 while (isdigit (matching[0]))
4747 matching += 1;
4748 if (matching[0] == '\0')
4749 return 1;
4750 }
4751
4752 /* ___[0-9]+ */
4753 if (len > 3 && str[0] == '_' && str[1] == '_' && str[2] == '_')
4754 {
4755 matching = str + 3;
4756 while (isdigit (matching[0]))
4757 matching += 1;
4758 if (matching[0] == '\0')
4759 return 1;
4760 }
4761
529cad9c
PH
4762#if 0
4763 /* FIXME: brobecker/2005-09-23: Protected Object subprograms end
4764 with a N at the end. Unfortunately, the compiler uses the same
4765 convention for other internal types it creates. So treating
4766 all entity names that end with an "N" as a name suffix causes
4767 some regressions. For instance, consider the case of an enumerated
4768 type. To support the 'Image attribute, it creates an array whose
4769 name ends with N.
4770 Having a single character like this as a suffix carrying some
4771 information is a bit risky. Perhaps we should change the encoding
4772 to be something like "_N" instead. In the meantime, do not do
4773 the following check. */
4774 /* Protected Object Subprograms */
4775 if (len == 1 && str [0] == 'N')
4776 return 1;
4777#endif
4778
4779 /* _E[0-9]+[bs]$ */
4780 if (len > 3 && str[0] == '_' && str [1] == 'E' && isdigit (str[2]))
4781 {
4782 matching = str + 3;
4783 while (isdigit (matching[0]))
4784 matching += 1;
4785 if ((matching[0] == 'b' || matching[0] == 's')
4786 && matching [1] == '\0')
4787 return 1;
4788 }
4789
4c4b4cd2
PH
4790 /* ??? We should not modify STR directly, as we are doing below. This
4791 is fine in this case, but may become problematic later if we find
4792 that this alternative did not work, and want to try matching
4793 another one from the begining of STR. Since we modified it, we
4794 won't be able to find the begining of the string anymore! */
14f9c5c9
AS
4795 if (str[0] == 'X')
4796 {
4797 str += 1;
d2e4a39e 4798 while (str[0] != '_' && str[0] != '\0')
4c4b4cd2
PH
4799 {
4800 if (str[0] != 'n' && str[0] != 'b')
4801 return 0;
4802 str += 1;
4803 }
14f9c5c9
AS
4804 }
4805 if (str[0] == '\000')
4806 return 1;
d2e4a39e 4807 if (str[0] == '_')
14f9c5c9
AS
4808 {
4809 if (str[1] != '_' || str[2] == '\000')
4c4b4cd2 4810 return 0;
d2e4a39e 4811 if (str[2] == '_')
4c4b4cd2 4812 {
61ee279c
PH
4813 if (strcmp (str + 3, "JM") == 0)
4814 return 1;
4815 /* FIXME: brobecker/2004-09-30: GNAT will soon stop using
4816 the LJM suffix in favor of the JM one. But we will
4817 still accept LJM as a valid suffix for a reasonable
4818 amount of time, just to allow ourselves to debug programs
4819 compiled using an older version of GNAT. */
4c4b4cd2
PH
4820 if (strcmp (str + 3, "LJM") == 0)
4821 return 1;
4822 if (str[3] != 'X')
4823 return 0;
1265e4aa
JB
4824 if (str[4] == 'F' || str[4] == 'D' || str[4] == 'B'
4825 || str[4] == 'U' || str[4] == 'P')
4c4b4cd2
PH
4826 return 1;
4827 if (str[4] == 'R' && str[5] != 'T')
4828 return 1;
4829 return 0;
4830 }
4831 if (!isdigit (str[2]))
4832 return 0;
4833 for (k = 3; str[k] != '\0'; k += 1)
4834 if (!isdigit (str[k]) && str[k] != '_')
4835 return 0;
14f9c5c9
AS
4836 return 1;
4837 }
4c4b4cd2 4838 if (str[0] == '$' && isdigit (str[1]))
14f9c5c9 4839 {
4c4b4cd2
PH
4840 for (k = 2; str[k] != '\0'; k += 1)
4841 if (!isdigit (str[k]) && str[k] != '_')
4842 return 0;
14f9c5c9
AS
4843 return 1;
4844 }
4845 return 0;
4846}
d2e4a39e 4847
4c4b4cd2
PH
4848/* Return nonzero if the given string starts with a dot ('.')
4849 followed by zero or more digits.
4850
4851 Note: brobecker/2003-11-10: A forward declaration has not been
4852 added at the begining of this file yet, because this function
4853 is only used to work around a problem found during wild matching
4854 when trying to match minimal symbol names against symbol names
4855 obtained from dwarf-2 data. This function is therefore currently
4856 only used in wild_match() and is likely to be deleted when the
4857 problem in dwarf-2 is fixed. */
4858
4859static int
4860is_dot_digits_suffix (const char *str)
4861{
4862 if (str[0] != '.')
4863 return 0;
4864
4865 str++;
4866 while (isdigit (str[0]))
4867 str++;
4868 return (str[0] == '\0');
4869}
4870
529cad9c
PH
4871/* Return non-zero if NAME0 is a valid match when doing wild matching.
4872 Certain symbols appear at first to match, except that they turn out
4873 not to follow the Ada encoding and hence should not be used as a wild
4874 match of a given pattern. */
4875
4876static int
4877is_valid_name_for_wild_match (const char *name0)
4878{
4879 const char *decoded_name = ada_decode (name0);
4880 int i;
4881
4882 for (i=0; decoded_name[i] != '\0'; i++)
4883 if (isalpha (decoded_name[i]) && !islower (decoded_name[i]))
4884 return 0;
4885
4886 return 1;
4887}
4888
4c4b4cd2
PH
4889/* True if NAME represents a name of the form A1.A2....An, n>=1 and
4890 PATN[0..PATN_LEN-1] = Ak.Ak+1.....An for some k >= 1. Ignores
4891 informational suffixes of NAME (i.e., for which is_name_suffix is
4892 true). */
4893
14f9c5c9 4894static int
4c4b4cd2 4895wild_match (const char *patn0, int patn_len, const char *name0)
14f9c5c9
AS
4896{
4897 int name_len;
4c4b4cd2
PH
4898 char *name;
4899 char *patn;
4900
4901 /* FIXME: brobecker/2003-11-10: For some reason, the symbol name
4902 stored in the symbol table for nested function names is sometimes
4903 different from the name of the associated entity stored in
4904 the dwarf-2 data: This is the case for nested subprograms, where
4905 the minimal symbol name contains a trailing ".[:digit:]+" suffix,
4906 while the symbol name from the dwarf-2 data does not.
4907
4908 Although the DWARF-2 standard documents that entity names stored
4909 in the dwarf-2 data should be identical to the name as seen in
4910 the source code, GNAT takes a different approach as we already use
4911 a special encoding mechanism to convey the information so that
4912 a C debugger can still use the information generated to debug
4913 Ada programs. A corollary is that the symbol names in the dwarf-2
4914 data should match the names found in the symbol table. I therefore
4915 consider this issue as a compiler defect.
76a01679 4916
4c4b4cd2
PH
4917 Until the compiler is properly fixed, we work-around the problem
4918 by ignoring such suffixes during the match. We do so by making
4919 a copy of PATN0 and NAME0, and then by stripping such a suffix
4920 if present. We then perform the match on the resulting strings. */
4921 {
4922 char *dot;
4923 name_len = strlen (name0);
4924
4925 name = (char *) alloca ((name_len + 1) * sizeof (char));
4926 strcpy (name, name0);
4927 dot = strrchr (name, '.');
4928 if (dot != NULL && is_dot_digits_suffix (dot))
4929 *dot = '\0';
4930
4931 patn = (char *) alloca ((patn_len + 1) * sizeof (char));
4932 strncpy (patn, patn0, patn_len);
4933 patn[patn_len] = '\0';
4934 dot = strrchr (patn, '.');
4935 if (dot != NULL && is_dot_digits_suffix (dot))
4936 {
4937 *dot = '\0';
4938 patn_len = dot - patn;
4939 }
4940 }
4941
4942 /* Now perform the wild match. */
14f9c5c9
AS
4943
4944 name_len = strlen (name);
4c4b4cd2
PH
4945 if (name_len >= patn_len + 5 && strncmp (name, "_ada_", 5) == 0
4946 && strncmp (patn, name + 5, patn_len) == 0
d2e4a39e 4947 && is_name_suffix (name + patn_len + 5))
14f9c5c9
AS
4948 return 1;
4949
d2e4a39e 4950 while (name_len >= patn_len)
14f9c5c9 4951 {
4c4b4cd2
PH
4952 if (strncmp (patn, name, patn_len) == 0
4953 && is_name_suffix (name + patn_len))
529cad9c 4954 return (is_valid_name_for_wild_match (name0));
4c4b4cd2
PH
4955 do
4956 {
4957 name += 1;
4958 name_len -= 1;
4959 }
d2e4a39e 4960 while (name_len > 0
4c4b4cd2 4961 && name[0] != '.' && (name[0] != '_' || name[1] != '_'));
14f9c5c9 4962 if (name_len <= 0)
4c4b4cd2 4963 return 0;
14f9c5c9 4964 if (name[0] == '_')
4c4b4cd2
PH
4965 {
4966 if (!islower (name[2]))
4967 return 0;
4968 name += 2;
4969 name_len -= 2;
4970 }
14f9c5c9 4971 else
4c4b4cd2
PH
4972 {
4973 if (!islower (name[1]))
4974 return 0;
4975 name += 1;
4976 name_len -= 1;
4977 }
96d887e8
PH
4978 }
4979
4980 return 0;
4981}
4982
4983
4984/* Add symbols from BLOCK matching identifier NAME in DOMAIN to
4985 vector *defn_symbols, updating the list of symbols in OBSTACKP
4986 (if necessary). If WILD, treat as NAME with a wildcard prefix.
4987 OBJFILE is the section containing BLOCK.
4988 SYMTAB is recorded with each symbol added. */
4989
4990static void
4991ada_add_block_symbols (struct obstack *obstackp,
76a01679 4992 struct block *block, const char *name,
96d887e8
PH
4993 domain_enum domain, struct objfile *objfile,
4994 struct symtab *symtab, int wild)
4995{
4996 struct dict_iterator iter;
4997 int name_len = strlen (name);
4998 /* A matching argument symbol, if any. */
4999 struct symbol *arg_sym;
5000 /* Set true when we find a matching non-argument symbol. */
5001 int found_sym;
5002 struct symbol *sym;
5003
5004 arg_sym = NULL;
5005 found_sym = 0;
5006 if (wild)
5007 {
5008 struct symbol *sym;
5009 ALL_BLOCK_SYMBOLS (block, iter, sym)
76a01679 5010 {
1265e4aa
JB
5011 if (SYMBOL_DOMAIN (sym) == domain
5012 && wild_match (name, name_len, SYMBOL_LINKAGE_NAME (sym)))
76a01679
JB
5013 {
5014 switch (SYMBOL_CLASS (sym))
5015 {
5016 case LOC_ARG:
5017 case LOC_LOCAL_ARG:
5018 case LOC_REF_ARG:
5019 case LOC_REGPARM:
5020 case LOC_REGPARM_ADDR:
5021 case LOC_BASEREG_ARG:
5022 case LOC_COMPUTED_ARG:
5023 arg_sym = sym;
5024 break;
5025 case LOC_UNRESOLVED:
5026 continue;
5027 default:
5028 found_sym = 1;
5029 add_defn_to_vec (obstackp,
5030 fixup_symbol_section (sym, objfile),
5031 block, symtab);
5032 break;
5033 }
5034 }
5035 }
96d887e8
PH
5036 }
5037 else
5038 {
5039 ALL_BLOCK_SYMBOLS (block, iter, sym)
76a01679
JB
5040 {
5041 if (SYMBOL_DOMAIN (sym) == domain)
5042 {
5043 int cmp = strncmp (name, SYMBOL_LINKAGE_NAME (sym), name_len);
5044 if (cmp == 0
5045 && is_name_suffix (SYMBOL_LINKAGE_NAME (sym) + name_len))
5046 {
5047 switch (SYMBOL_CLASS (sym))
5048 {
5049 case LOC_ARG:
5050 case LOC_LOCAL_ARG:
5051 case LOC_REF_ARG:
5052 case LOC_REGPARM:
5053 case LOC_REGPARM_ADDR:
5054 case LOC_BASEREG_ARG:
5055 case LOC_COMPUTED_ARG:
5056 arg_sym = sym;
5057 break;
5058 case LOC_UNRESOLVED:
5059 break;
5060 default:
5061 found_sym = 1;
5062 add_defn_to_vec (obstackp,
5063 fixup_symbol_section (sym, objfile),
5064 block, symtab);
5065 break;
5066 }
5067 }
5068 }
5069 }
96d887e8
PH
5070 }
5071
5072 if (!found_sym && arg_sym != NULL)
5073 {
76a01679
JB
5074 add_defn_to_vec (obstackp,
5075 fixup_symbol_section (arg_sym, objfile),
5076 block, symtab);
96d887e8
PH
5077 }
5078
5079 if (!wild)
5080 {
5081 arg_sym = NULL;
5082 found_sym = 0;
5083
5084 ALL_BLOCK_SYMBOLS (block, iter, sym)
76a01679
JB
5085 {
5086 if (SYMBOL_DOMAIN (sym) == domain)
5087 {
5088 int cmp;
5089
5090 cmp = (int) '_' - (int) SYMBOL_LINKAGE_NAME (sym)[0];
5091 if (cmp == 0)
5092 {
5093 cmp = strncmp ("_ada_", SYMBOL_LINKAGE_NAME (sym), 5);
5094 if (cmp == 0)
5095 cmp = strncmp (name, SYMBOL_LINKAGE_NAME (sym) + 5,
5096 name_len);
5097 }
5098
5099 if (cmp == 0
5100 && is_name_suffix (SYMBOL_LINKAGE_NAME (sym) + name_len + 5))
5101 {
5102 switch (SYMBOL_CLASS (sym))
5103 {
5104 case LOC_ARG:
5105 case LOC_LOCAL_ARG:
5106 case LOC_REF_ARG:
5107 case LOC_REGPARM:
5108 case LOC_REGPARM_ADDR:
5109 case LOC_BASEREG_ARG:
5110 case LOC_COMPUTED_ARG:
5111 arg_sym = sym;
5112 break;
5113 case LOC_UNRESOLVED:
5114 break;
5115 default:
5116 found_sym = 1;
5117 add_defn_to_vec (obstackp,
5118 fixup_symbol_section (sym, objfile),
5119 block, symtab);
5120 break;
5121 }
5122 }
5123 }
76a01679 5124 }
96d887e8
PH
5125
5126 /* NOTE: This really shouldn't be needed for _ada_ symbols.
5127 They aren't parameters, right? */
5128 if (!found_sym && arg_sym != NULL)
5129 {
5130 add_defn_to_vec (obstackp,
76a01679
JB
5131 fixup_symbol_section (arg_sym, objfile),
5132 block, symtab);
96d887e8
PH
5133 }
5134 }
5135}
5136\f
963a6417 5137 /* Field Access */
96d887e8 5138
963a6417
PH
5139/* True if field number FIELD_NUM in struct or union type TYPE is supposed
5140 to be invisible to users. */
96d887e8 5141
963a6417
PH
5142int
5143ada_is_ignored_field (struct type *type, int field_num)
96d887e8 5144{
963a6417
PH
5145 if (field_num < 0 || field_num > TYPE_NFIELDS (type))
5146 return 1;
5147 else
96d887e8 5148 {
963a6417
PH
5149 const char *name = TYPE_FIELD_NAME (type, field_num);
5150 return (name == NULL
5151 || (name[0] == '_' && strncmp (name, "_parent", 7) != 0));
96d887e8 5152 }
963a6417 5153}
96d887e8 5154
963a6417
PH
5155/* True iff TYPE has a tag field. If REFOK, then TYPE may also be a
5156 pointer or reference type whose ultimate target has a tag field. */
96d887e8 5157
963a6417
PH
5158int
5159ada_is_tagged_type (struct type *type, int refok)
5160{
5161 return (ada_lookup_struct_elt_type (type, "_tag", refok, 1, NULL) != NULL);
5162}
96d887e8 5163
963a6417 5164/* True iff TYPE represents the type of X'Tag */
96d887e8 5165
963a6417
PH
5166int
5167ada_is_tag_type (struct type *type)
5168{
5169 if (type == NULL || TYPE_CODE (type) != TYPE_CODE_PTR)
5170 return 0;
5171 else
96d887e8 5172 {
963a6417
PH
5173 const char *name = ada_type_name (TYPE_TARGET_TYPE (type));
5174 return (name != NULL
5175 && strcmp (name, "ada__tags__dispatch_table") == 0);
96d887e8 5176 }
96d887e8
PH
5177}
5178
963a6417 5179/* The type of the tag on VAL. */
76a01679 5180
963a6417
PH
5181struct type *
5182ada_tag_type (struct value *val)
96d887e8 5183{
df407dfe 5184 return ada_lookup_struct_elt_type (value_type (val), "_tag", 1, 0, NULL);
963a6417 5185}
96d887e8 5186
963a6417 5187/* The value of the tag on VAL. */
96d887e8 5188
963a6417
PH
5189struct value *
5190ada_value_tag (struct value *val)
5191{
03ee6b2e 5192 return ada_value_struct_elt (val, "_tag", 0);
96d887e8
PH
5193}
5194
963a6417
PH
5195/* The value of the tag on the object of type TYPE whose contents are
5196 saved at VALADDR, if it is non-null, or is at memory address
5197 ADDRESS. */
96d887e8 5198
963a6417 5199static struct value *
10a2c479 5200value_tag_from_contents_and_address (struct type *type,
fc1a4b47 5201 const gdb_byte *valaddr,
963a6417 5202 CORE_ADDR address)
96d887e8 5203{
963a6417
PH
5204 int tag_byte_offset, dummy1, dummy2;
5205 struct type *tag_type;
5206 if (find_struct_field ("_tag", type, 0, &tag_type, &tag_byte_offset,
52ce6436 5207 NULL, NULL, NULL))
96d887e8 5208 {
fc1a4b47 5209 const gdb_byte *valaddr1 = ((valaddr == NULL)
10a2c479
AC
5210 ? NULL
5211 : valaddr + tag_byte_offset);
963a6417 5212 CORE_ADDR address1 = (address == 0) ? 0 : address + tag_byte_offset;
96d887e8 5213
963a6417 5214 return value_from_contents_and_address (tag_type, valaddr1, address1);
96d887e8 5215 }
963a6417
PH
5216 return NULL;
5217}
96d887e8 5218
963a6417
PH
5219static struct type *
5220type_from_tag (struct value *tag)
5221{
5222 const char *type_name = ada_tag_name (tag);
5223 if (type_name != NULL)
5224 return ada_find_any_type (ada_encode (type_name));
5225 return NULL;
5226}
96d887e8 5227
963a6417
PH
5228struct tag_args
5229{
5230 struct value *tag;
5231 char *name;
5232};
4c4b4cd2 5233
529cad9c
PH
5234
5235static int ada_tag_name_1 (void *);
5236static int ada_tag_name_2 (struct tag_args *);
5237
4c4b4cd2
PH
5238/* Wrapper function used by ada_tag_name. Given a struct tag_args*
5239 value ARGS, sets ARGS->name to the tag name of ARGS->tag.
5240 The value stored in ARGS->name is valid until the next call to
5241 ada_tag_name_1. */
5242
5243static int
5244ada_tag_name_1 (void *args0)
5245{
5246 struct tag_args *args = (struct tag_args *) args0;
5247 static char name[1024];
76a01679 5248 char *p;
4c4b4cd2
PH
5249 struct value *val;
5250 args->name = NULL;
03ee6b2e 5251 val = ada_value_struct_elt (args->tag, "tsd", 1);
529cad9c
PH
5252 if (val == NULL)
5253 return ada_tag_name_2 (args);
03ee6b2e 5254 val = ada_value_struct_elt (val, "expanded_name", 1);
529cad9c
PH
5255 if (val == NULL)
5256 return 0;
5257 read_memory_string (value_as_address (val), name, sizeof (name) - 1);
5258 for (p = name; *p != '\0'; p += 1)
5259 if (isalpha (*p))
5260 *p = tolower (*p);
5261 args->name = name;
5262 return 0;
5263}
5264
5265/* Utility function for ada_tag_name_1 that tries the second
5266 representation for the dispatch table (in which there is no
5267 explicit 'tsd' field in the referent of the tag pointer, and instead
5268 the tsd pointer is stored just before the dispatch table. */
5269
5270static int
5271ada_tag_name_2 (struct tag_args *args)
5272{
5273 struct type *info_type;
5274 static char name[1024];
5275 char *p;
5276 struct value *val, *valp;
5277
5278 args->name = NULL;
5279 info_type = ada_find_any_type ("ada__tags__type_specific_data");
5280 if (info_type == NULL)
5281 return 0;
5282 info_type = lookup_pointer_type (lookup_pointer_type (info_type));
5283 valp = value_cast (info_type, args->tag);
5284 if (valp == NULL)
5285 return 0;
5286 val = value_ind (value_add (valp, value_from_longest (builtin_type_int, -1)));
4c4b4cd2
PH
5287 if (val == NULL)
5288 return 0;
03ee6b2e 5289 val = ada_value_struct_elt (val, "expanded_name", 1);
4c4b4cd2
PH
5290 if (val == NULL)
5291 return 0;
5292 read_memory_string (value_as_address (val), name, sizeof (name) - 1);
5293 for (p = name; *p != '\0'; p += 1)
5294 if (isalpha (*p))
5295 *p = tolower (*p);
5296 args->name = name;
5297 return 0;
5298}
5299
5300/* The type name of the dynamic type denoted by the 'tag value TAG, as
5301 * a C string. */
5302
5303const char *
5304ada_tag_name (struct value *tag)
5305{
5306 struct tag_args args;
df407dfe 5307 if (!ada_is_tag_type (value_type (tag)))
4c4b4cd2 5308 return NULL;
76a01679 5309 args.tag = tag;
4c4b4cd2
PH
5310 args.name = NULL;
5311 catch_errors (ada_tag_name_1, &args, NULL, RETURN_MASK_ALL);
5312 return args.name;
5313}
5314
5315/* The parent type of TYPE, or NULL if none. */
14f9c5c9 5316
d2e4a39e 5317struct type *
ebf56fd3 5318ada_parent_type (struct type *type)
14f9c5c9
AS
5319{
5320 int i;
5321
61ee279c 5322 type = ada_check_typedef (type);
14f9c5c9
AS
5323
5324 if (type == NULL || TYPE_CODE (type) != TYPE_CODE_STRUCT)
5325 return NULL;
5326
5327 for (i = 0; i < TYPE_NFIELDS (type); i += 1)
5328 if (ada_is_parent_field (type, i))
61ee279c 5329 return ada_check_typedef (TYPE_FIELD_TYPE (type, i));
14f9c5c9
AS
5330
5331 return NULL;
5332}
5333
4c4b4cd2
PH
5334/* True iff field number FIELD_NUM of structure type TYPE contains the
5335 parent-type (inherited) fields of a derived type. Assumes TYPE is
5336 a structure type with at least FIELD_NUM+1 fields. */
14f9c5c9
AS
5337
5338int
ebf56fd3 5339ada_is_parent_field (struct type *type, int field_num)
14f9c5c9 5340{
61ee279c 5341 const char *name = TYPE_FIELD_NAME (ada_check_typedef (type), field_num);
4c4b4cd2
PH
5342 return (name != NULL
5343 && (strncmp (name, "PARENT", 6) == 0
5344 || strncmp (name, "_parent", 7) == 0));
14f9c5c9
AS
5345}
5346
4c4b4cd2 5347/* True iff field number FIELD_NUM of structure type TYPE is a
14f9c5c9 5348 transparent wrapper field (which should be silently traversed when doing
4c4b4cd2 5349 field selection and flattened when printing). Assumes TYPE is a
14f9c5c9 5350 structure type with at least FIELD_NUM+1 fields. Such fields are always
4c4b4cd2 5351 structures. */
14f9c5c9
AS
5352
5353int
ebf56fd3 5354ada_is_wrapper_field (struct type *type, int field_num)
14f9c5c9 5355{
d2e4a39e
AS
5356 const char *name = TYPE_FIELD_NAME (type, field_num);
5357 return (name != NULL
4c4b4cd2
PH
5358 && (strncmp (name, "PARENT", 6) == 0
5359 || strcmp (name, "REP") == 0
5360 || strncmp (name, "_parent", 7) == 0
5361 || name[0] == 'S' || name[0] == 'R' || name[0] == 'O'));
14f9c5c9
AS
5362}
5363
4c4b4cd2
PH
5364/* True iff field number FIELD_NUM of structure or union type TYPE
5365 is a variant wrapper. Assumes TYPE is a structure type with at least
5366 FIELD_NUM+1 fields. */
14f9c5c9
AS
5367
5368int
ebf56fd3 5369ada_is_variant_part (struct type *type, int field_num)
14f9c5c9 5370{
d2e4a39e 5371 struct type *field_type = TYPE_FIELD_TYPE (type, field_num);
14f9c5c9 5372 return (TYPE_CODE (field_type) == TYPE_CODE_UNION
4c4b4cd2 5373 || (is_dynamic_field (type, field_num)
c3e5cd34
PH
5374 && (TYPE_CODE (TYPE_TARGET_TYPE (field_type))
5375 == TYPE_CODE_UNION)));
14f9c5c9
AS
5376}
5377
5378/* Assuming that VAR_TYPE is a variant wrapper (type of the variant part)
4c4b4cd2 5379 whose discriminants are contained in the record type OUTER_TYPE,
14f9c5c9
AS
5380 returns the type of the controlling discriminant for the variant. */
5381
d2e4a39e 5382struct type *
ebf56fd3 5383ada_variant_discrim_type (struct type *var_type, struct type *outer_type)
14f9c5c9 5384{
d2e4a39e 5385 char *name = ada_variant_discrim_name (var_type);
76a01679 5386 struct type *type =
4c4b4cd2 5387 ada_lookup_struct_elt_type (outer_type, name, 1, 1, NULL);
14f9c5c9
AS
5388 if (type == NULL)
5389 return builtin_type_int;
5390 else
5391 return type;
5392}
5393
4c4b4cd2 5394/* Assuming that TYPE is the type of a variant wrapper, and FIELD_NUM is a
14f9c5c9 5395 valid field number within it, returns 1 iff field FIELD_NUM of TYPE
4c4b4cd2 5396 represents a 'when others' clause; otherwise 0. */
14f9c5c9
AS
5397
5398int
ebf56fd3 5399ada_is_others_clause (struct type *type, int field_num)
14f9c5c9 5400{
d2e4a39e 5401 const char *name = TYPE_FIELD_NAME (type, field_num);
14f9c5c9
AS
5402 return (name != NULL && name[0] == 'O');
5403}
5404
5405/* Assuming that TYPE0 is the type of the variant part of a record,
4c4b4cd2
PH
5406 returns the name of the discriminant controlling the variant.
5407 The value is valid until the next call to ada_variant_discrim_name. */
14f9c5c9 5408
d2e4a39e 5409char *
ebf56fd3 5410ada_variant_discrim_name (struct type *type0)
14f9c5c9 5411{
d2e4a39e 5412 static char *result = NULL;
14f9c5c9 5413 static size_t result_len = 0;
d2e4a39e
AS
5414 struct type *type;
5415 const char *name;
5416 const char *discrim_end;
5417 const char *discrim_start;
14f9c5c9
AS
5418
5419 if (TYPE_CODE (type0) == TYPE_CODE_PTR)
5420 type = TYPE_TARGET_TYPE (type0);
5421 else
5422 type = type0;
5423
5424 name = ada_type_name (type);
5425
5426 if (name == NULL || name[0] == '\000')
5427 return "";
5428
5429 for (discrim_end = name + strlen (name) - 6; discrim_end != name;
5430 discrim_end -= 1)
5431 {
4c4b4cd2
PH
5432 if (strncmp (discrim_end, "___XVN", 6) == 0)
5433 break;
14f9c5c9
AS
5434 }
5435 if (discrim_end == name)
5436 return "";
5437
d2e4a39e 5438 for (discrim_start = discrim_end; discrim_start != name + 3;
14f9c5c9
AS
5439 discrim_start -= 1)
5440 {
d2e4a39e 5441 if (discrim_start == name + 1)
4c4b4cd2 5442 return "";
76a01679 5443 if ((discrim_start > name + 3
4c4b4cd2
PH
5444 && strncmp (discrim_start - 3, "___", 3) == 0)
5445 || discrim_start[-1] == '.')
5446 break;
14f9c5c9
AS
5447 }
5448
5449 GROW_VECT (result, result_len, discrim_end - discrim_start + 1);
5450 strncpy (result, discrim_start, discrim_end - discrim_start);
d2e4a39e 5451 result[discrim_end - discrim_start] = '\0';
14f9c5c9
AS
5452 return result;
5453}
5454
4c4b4cd2
PH
5455/* Scan STR for a subtype-encoded number, beginning at position K.
5456 Put the position of the character just past the number scanned in
5457 *NEW_K, if NEW_K!=NULL. Put the scanned number in *R, if R!=NULL.
5458 Return 1 if there was a valid number at the given position, and 0
5459 otherwise. A "subtype-encoded" number consists of the absolute value
5460 in decimal, followed by the letter 'm' to indicate a negative number.
5461 Assumes 0m does not occur. */
14f9c5c9
AS
5462
5463int
d2e4a39e 5464ada_scan_number (const char str[], int k, LONGEST * R, int *new_k)
14f9c5c9
AS
5465{
5466 ULONGEST RU;
5467
d2e4a39e 5468 if (!isdigit (str[k]))
14f9c5c9
AS
5469 return 0;
5470
4c4b4cd2 5471 /* Do it the hard way so as not to make any assumption about
14f9c5c9 5472 the relationship of unsigned long (%lu scan format code) and
4c4b4cd2 5473 LONGEST. */
14f9c5c9
AS
5474 RU = 0;
5475 while (isdigit (str[k]))
5476 {
d2e4a39e 5477 RU = RU * 10 + (str[k] - '0');
14f9c5c9
AS
5478 k += 1;
5479 }
5480
d2e4a39e 5481 if (str[k] == 'm')
14f9c5c9
AS
5482 {
5483 if (R != NULL)
4c4b4cd2 5484 *R = (-(LONGEST) (RU - 1)) - 1;
14f9c5c9
AS
5485 k += 1;
5486 }
5487 else if (R != NULL)
5488 *R = (LONGEST) RU;
5489
4c4b4cd2 5490 /* NOTE on the above: Technically, C does not say what the results of
14f9c5c9
AS
5491 - (LONGEST) RU or (LONGEST) -RU are for RU == largest positive
5492 number representable as a LONGEST (although either would probably work
5493 in most implementations). When RU>0, the locution in the then branch
4c4b4cd2 5494 above is always equivalent to the negative of RU. */
14f9c5c9
AS
5495
5496 if (new_k != NULL)
5497 *new_k = k;
5498 return 1;
5499}
5500
4c4b4cd2
PH
5501/* Assuming that TYPE is a variant part wrapper type (a VARIANTS field),
5502 and FIELD_NUM is a valid field number within it, returns 1 iff VAL is
5503 in the range encoded by field FIELD_NUM of TYPE; otherwise 0. */
14f9c5c9 5504
d2e4a39e 5505int
ebf56fd3 5506ada_in_variant (LONGEST val, struct type *type, int field_num)
14f9c5c9 5507{
d2e4a39e 5508 const char *name = TYPE_FIELD_NAME (type, field_num);
14f9c5c9
AS
5509 int p;
5510
5511 p = 0;
5512 while (1)
5513 {
d2e4a39e 5514 switch (name[p])
4c4b4cd2
PH
5515 {
5516 case '\0':
5517 return 0;
5518 case 'S':
5519 {
5520 LONGEST W;
5521 if (!ada_scan_number (name, p + 1, &W, &p))
5522 return 0;
5523 if (val == W)
5524 return 1;
5525 break;
5526 }
5527 case 'R':
5528 {
5529 LONGEST L, U;
5530 if (!ada_scan_number (name, p + 1, &L, &p)
5531 || name[p] != 'T' || !ada_scan_number (name, p + 1, &U, &p))
5532 return 0;
5533 if (val >= L && val <= U)
5534 return 1;
5535 break;
5536 }
5537 case 'O':
5538 return 1;
5539 default:
5540 return 0;
5541 }
5542 }
5543}
5544
5545/* FIXME: Lots of redundancy below. Try to consolidate. */
5546
5547/* Given a value ARG1 (offset by OFFSET bytes) of a struct or union type
5548 ARG_TYPE, extract and return the value of one of its (non-static)
5549 fields. FIELDNO says which field. Differs from value_primitive_field
5550 only in that it can handle packed values of arbitrary type. */
14f9c5c9 5551
4c4b4cd2 5552static struct value *
d2e4a39e 5553ada_value_primitive_field (struct value *arg1, int offset, int fieldno,
4c4b4cd2 5554 struct type *arg_type)
14f9c5c9 5555{
14f9c5c9
AS
5556 struct type *type;
5557
61ee279c 5558 arg_type = ada_check_typedef (arg_type);
14f9c5c9
AS
5559 type = TYPE_FIELD_TYPE (arg_type, fieldno);
5560
4c4b4cd2 5561 /* Handle packed fields. */
14f9c5c9
AS
5562
5563 if (TYPE_FIELD_BITSIZE (arg_type, fieldno) != 0)
5564 {
5565 int bit_pos = TYPE_FIELD_BITPOS (arg_type, fieldno);
5566 int bit_size = TYPE_FIELD_BITSIZE (arg_type, fieldno);
d2e4a39e 5567
0fd88904 5568 return ada_value_primitive_packed_val (arg1, value_contents (arg1),
4c4b4cd2
PH
5569 offset + bit_pos / 8,
5570 bit_pos % 8, bit_size, type);
14f9c5c9
AS
5571 }
5572 else
5573 return value_primitive_field (arg1, offset, fieldno, arg_type);
5574}
5575
52ce6436
PH
5576/* Find field with name NAME in object of type TYPE. If found,
5577 set the following for each argument that is non-null:
5578 - *FIELD_TYPE_P to the field's type;
5579 - *BYTE_OFFSET_P to OFFSET + the byte offset of the field within
5580 an object of that type;
5581 - *BIT_OFFSET_P to the bit offset modulo byte size of the field;
5582 - *BIT_SIZE_P to its size in bits if the field is packed, and
5583 0 otherwise;
5584 If INDEX_P is non-null, increment *INDEX_P by the number of source-visible
5585 fields up to but not including the desired field, or by the total
5586 number of fields if not found. A NULL value of NAME never
5587 matches; the function just counts visible fields in this case.
5588
5589 Returns 1 if found, 0 otherwise. */
5590
4c4b4cd2 5591static int
76a01679
JB
5592find_struct_field (char *name, struct type *type, int offset,
5593 struct type **field_type_p,
52ce6436
PH
5594 int *byte_offset_p, int *bit_offset_p, int *bit_size_p,
5595 int *index_p)
4c4b4cd2
PH
5596{
5597 int i;
5598
61ee279c 5599 type = ada_check_typedef (type);
76a01679 5600
52ce6436
PH
5601 if (field_type_p != NULL)
5602 *field_type_p = NULL;
5603 if (byte_offset_p != NULL)
d5d6fca5 5604 *byte_offset_p = 0;
52ce6436
PH
5605 if (bit_offset_p != NULL)
5606 *bit_offset_p = 0;
5607 if (bit_size_p != NULL)
5608 *bit_size_p = 0;
5609
5610 for (i = 0; i < TYPE_NFIELDS (type); i += 1)
4c4b4cd2
PH
5611 {
5612 int bit_pos = TYPE_FIELD_BITPOS (type, i);
5613 int fld_offset = offset + bit_pos / 8;
5614 char *t_field_name = TYPE_FIELD_NAME (type, i);
76a01679 5615
4c4b4cd2
PH
5616 if (t_field_name == NULL)
5617 continue;
5618
52ce6436 5619 else if (name != NULL && field_name_match (t_field_name, name))
76a01679
JB
5620 {
5621 int bit_size = TYPE_FIELD_BITSIZE (type, i);
52ce6436
PH
5622 if (field_type_p != NULL)
5623 *field_type_p = TYPE_FIELD_TYPE (type, i);
5624 if (byte_offset_p != NULL)
5625 *byte_offset_p = fld_offset;
5626 if (bit_offset_p != NULL)
5627 *bit_offset_p = bit_pos % 8;
5628 if (bit_size_p != NULL)
5629 *bit_size_p = bit_size;
76a01679
JB
5630 return 1;
5631 }
4c4b4cd2
PH
5632 else if (ada_is_wrapper_field (type, i))
5633 {
52ce6436
PH
5634 if (find_struct_field (name, TYPE_FIELD_TYPE (type, i), fld_offset,
5635 field_type_p, byte_offset_p, bit_offset_p,
5636 bit_size_p, index_p))
76a01679
JB
5637 return 1;
5638 }
4c4b4cd2
PH
5639 else if (ada_is_variant_part (type, i))
5640 {
52ce6436
PH
5641 /* PNH: Wait. Do we ever execute this section, or is ARG always of
5642 fixed type?? */
4c4b4cd2 5643 int j;
52ce6436
PH
5644 struct type *field_type
5645 = ada_check_typedef (TYPE_FIELD_TYPE (type, i));
4c4b4cd2 5646
52ce6436 5647 for (j = 0; j < TYPE_NFIELDS (field_type); j += 1)
4c4b4cd2 5648 {
76a01679
JB
5649 if (find_struct_field (name, TYPE_FIELD_TYPE (field_type, j),
5650 fld_offset
5651 + TYPE_FIELD_BITPOS (field_type, j) / 8,
5652 field_type_p, byte_offset_p,
52ce6436 5653 bit_offset_p, bit_size_p, index_p))
76a01679 5654 return 1;
4c4b4cd2
PH
5655 }
5656 }
52ce6436
PH
5657 else if (index_p != NULL)
5658 *index_p += 1;
4c4b4cd2
PH
5659 }
5660 return 0;
5661}
5662
52ce6436 5663/* Number of user-visible fields in record type TYPE. */
4c4b4cd2 5664
52ce6436
PH
5665static int
5666num_visible_fields (struct type *type)
5667{
5668 int n;
5669 n = 0;
5670 find_struct_field (NULL, type, 0, NULL, NULL, NULL, NULL, &n);
5671 return n;
5672}
14f9c5c9 5673
4c4b4cd2 5674/* Look for a field NAME in ARG. Adjust the address of ARG by OFFSET bytes,
14f9c5c9
AS
5675 and search in it assuming it has (class) type TYPE.
5676 If found, return value, else return NULL.
5677
4c4b4cd2 5678 Searches recursively through wrapper fields (e.g., '_parent'). */
14f9c5c9 5679
4c4b4cd2 5680static struct value *
d2e4a39e 5681ada_search_struct_field (char *name, struct value *arg, int offset,
4c4b4cd2 5682 struct type *type)
14f9c5c9
AS
5683{
5684 int i;
61ee279c 5685 type = ada_check_typedef (type);
14f9c5c9 5686
52ce6436 5687 for (i = 0; i < TYPE_NFIELDS (type); i += 1)
14f9c5c9
AS
5688 {
5689 char *t_field_name = TYPE_FIELD_NAME (type, i);
5690
5691 if (t_field_name == NULL)
4c4b4cd2 5692 continue;
14f9c5c9
AS
5693
5694 else if (field_name_match (t_field_name, name))
4c4b4cd2 5695 return ada_value_primitive_field (arg, offset, i, type);
14f9c5c9
AS
5696
5697 else if (ada_is_wrapper_field (type, i))
4c4b4cd2 5698 {
06d5cf63
JB
5699 struct value *v = /* Do not let indent join lines here. */
5700 ada_search_struct_field (name, arg,
5701 offset + TYPE_FIELD_BITPOS (type, i) / 8,
5702 TYPE_FIELD_TYPE (type, i));
4c4b4cd2
PH
5703 if (v != NULL)
5704 return v;
5705 }
14f9c5c9
AS
5706
5707 else if (ada_is_variant_part (type, i))
4c4b4cd2 5708 {
52ce6436 5709 /* PNH: Do we ever get here? See find_struct_field. */
4c4b4cd2 5710 int j;
61ee279c 5711 struct type *field_type = ada_check_typedef (TYPE_FIELD_TYPE (type, i));
4c4b4cd2
PH
5712 int var_offset = offset + TYPE_FIELD_BITPOS (type, i) / 8;
5713
52ce6436 5714 for (j = 0; j < TYPE_NFIELDS (field_type); j += 1)
4c4b4cd2 5715 {
06d5cf63
JB
5716 struct value *v = ada_search_struct_field /* Force line break. */
5717 (name, arg,
5718 var_offset + TYPE_FIELD_BITPOS (field_type, j) / 8,
5719 TYPE_FIELD_TYPE (field_type, j));
4c4b4cd2
PH
5720 if (v != NULL)
5721 return v;
5722 }
5723 }
14f9c5c9
AS
5724 }
5725 return NULL;
5726}
d2e4a39e 5727
52ce6436
PH
5728static struct value *ada_index_struct_field_1 (int *, struct value *,
5729 int, struct type *);
5730
5731
5732/* Return field #INDEX in ARG, where the index is that returned by
5733 * find_struct_field through its INDEX_P argument. Adjust the address
5734 * of ARG by OFFSET bytes, and search in it assuming it has (class) type TYPE.
5735 * If found, return value, else return NULL. */
5736
5737static struct value *
5738ada_index_struct_field (int index, struct value *arg, int offset,
5739 struct type *type)
5740{
5741 return ada_index_struct_field_1 (&index, arg, offset, type);
5742}
5743
5744
5745/* Auxiliary function for ada_index_struct_field. Like
5746 * ada_index_struct_field, but takes index from *INDEX_P and modifies
5747 * *INDEX_P. */
5748
5749static struct value *
5750ada_index_struct_field_1 (int *index_p, struct value *arg, int offset,
5751 struct type *type)
5752{
5753 int i;
5754 type = ada_check_typedef (type);
5755
5756 for (i = 0; i < TYPE_NFIELDS (type); i += 1)
5757 {
5758 if (TYPE_FIELD_NAME (type, i) == NULL)
5759 continue;
5760 else if (ada_is_wrapper_field (type, i))
5761 {
5762 struct value *v = /* Do not let indent join lines here. */
5763 ada_index_struct_field_1 (index_p, arg,
5764 offset + TYPE_FIELD_BITPOS (type, i) / 8,
5765 TYPE_FIELD_TYPE (type, i));
5766 if (v != NULL)
5767 return v;
5768 }
5769
5770 else if (ada_is_variant_part (type, i))
5771 {
5772 /* PNH: Do we ever get here? See ada_search_struct_field,
5773 find_struct_field. */
5774 error (_("Cannot assign this kind of variant record"));
5775 }
5776 else if (*index_p == 0)
5777 return ada_value_primitive_field (arg, offset, i, type);
5778 else
5779 *index_p -= 1;
5780 }
5781 return NULL;
5782}
5783
4c4b4cd2
PH
5784/* Given ARG, a value of type (pointer or reference to a)*
5785 structure/union, extract the component named NAME from the ultimate
5786 target structure/union and return it as a value with its
5787 appropriate type. If ARG is a pointer or reference and the field
5788 is not packed, returns a reference to the field, otherwise the
5789 value of the field (an lvalue if ARG is an lvalue).
14f9c5c9 5790
4c4b4cd2
PH
5791 The routine searches for NAME among all members of the structure itself
5792 and (recursively) among all members of any wrapper members
14f9c5c9
AS
5793 (e.g., '_parent').
5794
03ee6b2e
PH
5795 If NO_ERR, then simply return NULL in case of error, rather than
5796 calling error. */
14f9c5c9 5797
d2e4a39e 5798struct value *
03ee6b2e 5799ada_value_struct_elt (struct value *arg, char *name, int no_err)
14f9c5c9 5800{
4c4b4cd2 5801 struct type *t, *t1;
d2e4a39e 5802 struct value *v;
14f9c5c9 5803
4c4b4cd2 5804 v = NULL;
df407dfe 5805 t1 = t = ada_check_typedef (value_type (arg));
4c4b4cd2
PH
5806 if (TYPE_CODE (t) == TYPE_CODE_REF)
5807 {
5808 t1 = TYPE_TARGET_TYPE (t);
5809 if (t1 == NULL)
03ee6b2e 5810 goto BadValue;
61ee279c 5811 t1 = ada_check_typedef (t1);
4c4b4cd2 5812 if (TYPE_CODE (t1) == TYPE_CODE_PTR)
76a01679 5813 {
994b9211 5814 arg = coerce_ref (arg);
76a01679
JB
5815 t = t1;
5816 }
4c4b4cd2 5817 }
14f9c5c9 5818
4c4b4cd2
PH
5819 while (TYPE_CODE (t) == TYPE_CODE_PTR)
5820 {
5821 t1 = TYPE_TARGET_TYPE (t);
5822 if (t1 == NULL)
03ee6b2e 5823 goto BadValue;
61ee279c 5824 t1 = ada_check_typedef (t1);
4c4b4cd2 5825 if (TYPE_CODE (t1) == TYPE_CODE_PTR)
76a01679
JB
5826 {
5827 arg = value_ind (arg);
5828 t = t1;
5829 }
4c4b4cd2 5830 else
76a01679 5831 break;
4c4b4cd2 5832 }
14f9c5c9 5833
4c4b4cd2 5834 if (TYPE_CODE (t1) != TYPE_CODE_STRUCT && TYPE_CODE (t1) != TYPE_CODE_UNION)
03ee6b2e 5835 goto BadValue;
14f9c5c9 5836
4c4b4cd2
PH
5837 if (t1 == t)
5838 v = ada_search_struct_field (name, arg, 0, t);
5839 else
5840 {
5841 int bit_offset, bit_size, byte_offset;
5842 struct type *field_type;
5843 CORE_ADDR address;
5844
76a01679
JB
5845 if (TYPE_CODE (t) == TYPE_CODE_PTR)
5846 address = value_as_address (arg);
4c4b4cd2 5847 else
0fd88904 5848 address = unpack_pointer (t, value_contents (arg));
14f9c5c9 5849
4c4b4cd2 5850 t1 = ada_to_fixed_type (ada_get_base_type (t1), NULL, address, NULL);
76a01679
JB
5851 if (find_struct_field (name, t1, 0,
5852 &field_type, &byte_offset, &bit_offset,
52ce6436 5853 &bit_size, NULL))
76a01679
JB
5854 {
5855 if (bit_size != 0)
5856 {
714e53ab
PH
5857 if (TYPE_CODE (t) == TYPE_CODE_REF)
5858 arg = ada_coerce_ref (arg);
5859 else
5860 arg = ada_value_ind (arg);
76a01679
JB
5861 v = ada_value_primitive_packed_val (arg, NULL, byte_offset,
5862 bit_offset, bit_size,
5863 field_type);
5864 }
5865 else
5866 v = value_from_pointer (lookup_reference_type (field_type),
5867 address + byte_offset);
5868 }
5869 }
5870
03ee6b2e
PH
5871 if (v != NULL || no_err)
5872 return v;
5873 else
323e0a4a 5874 error (_("There is no member named %s."), name);
14f9c5c9 5875
03ee6b2e
PH
5876 BadValue:
5877 if (no_err)
5878 return NULL;
5879 else
5880 error (_("Attempt to extract a component of a value that is not a record."));
14f9c5c9
AS
5881}
5882
5883/* Given a type TYPE, look up the type of the component of type named NAME.
4c4b4cd2
PH
5884 If DISPP is non-null, add its byte displacement from the beginning of a
5885 structure (pointed to by a value) of type TYPE to *DISPP (does not
14f9c5c9
AS
5886 work for packed fields).
5887
5888 Matches any field whose name has NAME as a prefix, possibly
4c4b4cd2 5889 followed by "___".
14f9c5c9 5890
4c4b4cd2
PH
5891 TYPE can be either a struct or union. If REFOK, TYPE may also
5892 be a (pointer or reference)+ to a struct or union, and the
5893 ultimate target type will be searched.
14f9c5c9
AS
5894
5895 Looks recursively into variant clauses and parent types.
5896
4c4b4cd2
PH
5897 If NOERR is nonzero, return NULL if NAME is not suitably defined or
5898 TYPE is not a type of the right kind. */
14f9c5c9 5899
4c4b4cd2 5900static struct type *
76a01679
JB
5901ada_lookup_struct_elt_type (struct type *type, char *name, int refok,
5902 int noerr, int *dispp)
14f9c5c9
AS
5903{
5904 int i;
5905
5906 if (name == NULL)
5907 goto BadName;
5908
76a01679 5909 if (refok && type != NULL)
4c4b4cd2
PH
5910 while (1)
5911 {
61ee279c 5912 type = ada_check_typedef (type);
76a01679
JB
5913 if (TYPE_CODE (type) != TYPE_CODE_PTR
5914 && TYPE_CODE (type) != TYPE_CODE_REF)
5915 break;
5916 type = TYPE_TARGET_TYPE (type);
4c4b4cd2 5917 }
14f9c5c9 5918
76a01679 5919 if (type == NULL
1265e4aa
JB
5920 || (TYPE_CODE (type) != TYPE_CODE_STRUCT
5921 && TYPE_CODE (type) != TYPE_CODE_UNION))
14f9c5c9 5922 {
4c4b4cd2 5923 if (noerr)
76a01679 5924 return NULL;
4c4b4cd2 5925 else
76a01679
JB
5926 {
5927 target_terminal_ours ();
5928 gdb_flush (gdb_stdout);
323e0a4a
AC
5929 if (type == NULL)
5930 error (_("Type (null) is not a structure or union type"));
5931 else
5932 {
5933 /* XXX: type_sprint */
5934 fprintf_unfiltered (gdb_stderr, _("Type "));
5935 type_print (type, "", gdb_stderr, -1);
5936 error (_(" is not a structure or union type"));
5937 }
76a01679 5938 }
14f9c5c9
AS
5939 }
5940
5941 type = to_static_fixed_type (type);
5942
5943 for (i = 0; i < TYPE_NFIELDS (type); i += 1)
5944 {
5945 char *t_field_name = TYPE_FIELD_NAME (type, i);
5946 struct type *t;
5947 int disp;
d2e4a39e 5948
14f9c5c9 5949 if (t_field_name == NULL)
4c4b4cd2 5950 continue;
14f9c5c9
AS
5951
5952 else if (field_name_match (t_field_name, name))
4c4b4cd2
PH
5953 {
5954 if (dispp != NULL)
5955 *dispp += TYPE_FIELD_BITPOS (type, i) / 8;
61ee279c 5956 return ada_check_typedef (TYPE_FIELD_TYPE (type, i));
4c4b4cd2 5957 }
14f9c5c9
AS
5958
5959 else if (ada_is_wrapper_field (type, i))
4c4b4cd2
PH
5960 {
5961 disp = 0;
5962 t = ada_lookup_struct_elt_type (TYPE_FIELD_TYPE (type, i), name,
5963 0, 1, &disp);
5964 if (t != NULL)
5965 {
5966 if (dispp != NULL)
5967 *dispp += disp + TYPE_FIELD_BITPOS (type, i) / 8;
5968 return t;
5969 }
5970 }
14f9c5c9
AS
5971
5972 else if (ada_is_variant_part (type, i))
4c4b4cd2
PH
5973 {
5974 int j;
61ee279c 5975 struct type *field_type = ada_check_typedef (TYPE_FIELD_TYPE (type, i));
4c4b4cd2
PH
5976
5977 for (j = TYPE_NFIELDS (field_type) - 1; j >= 0; j -= 1)
5978 {
5979 disp = 0;
5980 t = ada_lookup_struct_elt_type (TYPE_FIELD_TYPE (field_type, j),
5981 name, 0, 1, &disp);
5982 if (t != NULL)
5983 {
5984 if (dispp != NULL)
5985 *dispp += disp + TYPE_FIELD_BITPOS (type, i) / 8;
5986 return t;
5987 }
5988 }
5989 }
14f9c5c9
AS
5990
5991 }
5992
5993BadName:
d2e4a39e 5994 if (!noerr)
14f9c5c9
AS
5995 {
5996 target_terminal_ours ();
5997 gdb_flush (gdb_stdout);
323e0a4a
AC
5998 if (name == NULL)
5999 {
6000 /* XXX: type_sprint */
6001 fprintf_unfiltered (gdb_stderr, _("Type "));
6002 type_print (type, "", gdb_stderr, -1);
6003 error (_(" has no component named <null>"));
6004 }
6005 else
6006 {
6007 /* XXX: type_sprint */
6008 fprintf_unfiltered (gdb_stderr, _("Type "));
6009 type_print (type, "", gdb_stderr, -1);
6010 error (_(" has no component named %s"), name);
6011 }
14f9c5c9
AS
6012 }
6013
6014 return NULL;
6015}
6016
6017/* Assuming that VAR_TYPE is the type of a variant part of a record (a union),
6018 within a value of type OUTER_TYPE that is stored in GDB at
4c4b4cd2
PH
6019 OUTER_VALADDR, determine which variant clause (field number in VAR_TYPE,
6020 numbering from 0) is applicable. Returns -1 if none are. */
14f9c5c9 6021
d2e4a39e 6022int
ebf56fd3 6023ada_which_variant_applies (struct type *var_type, struct type *outer_type,
fc1a4b47 6024 const gdb_byte *outer_valaddr)
14f9c5c9
AS
6025{
6026 int others_clause;
6027 int i;
6028 int disp;
d2e4a39e
AS
6029 struct type *discrim_type;
6030 char *discrim_name = ada_variant_discrim_name (var_type);
14f9c5c9
AS
6031 LONGEST discrim_val;
6032
6033 disp = 0;
d2e4a39e 6034 discrim_type =
4c4b4cd2 6035 ada_lookup_struct_elt_type (outer_type, discrim_name, 1, 1, &disp);
14f9c5c9
AS
6036 if (discrim_type == NULL)
6037 return -1;
6038 discrim_val = unpack_long (discrim_type, outer_valaddr + disp);
6039
6040 others_clause = -1;
6041 for (i = 0; i < TYPE_NFIELDS (var_type); i += 1)
6042 {
6043 if (ada_is_others_clause (var_type, i))
4c4b4cd2 6044 others_clause = i;
14f9c5c9 6045 else if (ada_in_variant (discrim_val, var_type, i))
4c4b4cd2 6046 return i;
14f9c5c9
AS
6047 }
6048
6049 return others_clause;
6050}
d2e4a39e 6051\f
14f9c5c9
AS
6052
6053
4c4b4cd2 6054 /* Dynamic-Sized Records */
14f9c5c9
AS
6055
6056/* Strategy: The type ostensibly attached to a value with dynamic size
6057 (i.e., a size that is not statically recorded in the debugging
6058 data) does not accurately reflect the size or layout of the value.
6059 Our strategy is to convert these values to values with accurate,
4c4b4cd2 6060 conventional types that are constructed on the fly. */
14f9c5c9
AS
6061
6062/* There is a subtle and tricky problem here. In general, we cannot
6063 determine the size of dynamic records without its data. However,
6064 the 'struct value' data structure, which GDB uses to represent
6065 quantities in the inferior process (the target), requires the size
6066 of the type at the time of its allocation in order to reserve space
6067 for GDB's internal copy of the data. That's why the
6068 'to_fixed_xxx_type' routines take (target) addresses as parameters,
4c4b4cd2 6069 rather than struct value*s.
14f9c5c9
AS
6070
6071 However, GDB's internal history variables ($1, $2, etc.) are
6072 struct value*s containing internal copies of the data that are not, in
6073 general, the same as the data at their corresponding addresses in
6074 the target. Fortunately, the types we give to these values are all
6075 conventional, fixed-size types (as per the strategy described
6076 above), so that we don't usually have to perform the
6077 'to_fixed_xxx_type' conversions to look at their values.
6078 Unfortunately, there is one exception: if one of the internal
6079 history variables is an array whose elements are unconstrained
6080 records, then we will need to create distinct fixed types for each
6081 element selected. */
6082
6083/* The upshot of all of this is that many routines take a (type, host
6084 address, target address) triple as arguments to represent a value.
6085 The host address, if non-null, is supposed to contain an internal
6086 copy of the relevant data; otherwise, the program is to consult the
4c4b4cd2 6087 target at the target address. */
14f9c5c9
AS
6088
6089/* Assuming that VAL0 represents a pointer value, the result of
6090 dereferencing it. Differs from value_ind in its treatment of
4c4b4cd2 6091 dynamic-sized types. */
14f9c5c9 6092
d2e4a39e
AS
6093struct value *
6094ada_value_ind (struct value *val0)
14f9c5c9 6095{
d2e4a39e 6096 struct value *val = unwrap_value (value_ind (val0));
4c4b4cd2 6097 return ada_to_fixed_value (val);
14f9c5c9
AS
6098}
6099
6100/* The value resulting from dereferencing any "reference to"
4c4b4cd2
PH
6101 qualifiers on VAL0. */
6102
d2e4a39e
AS
6103static struct value *
6104ada_coerce_ref (struct value *val0)
6105{
df407dfe 6106 if (TYPE_CODE (value_type (val0)) == TYPE_CODE_REF)
d2e4a39e
AS
6107 {
6108 struct value *val = val0;
994b9211 6109 val = coerce_ref (val);
d2e4a39e 6110 val = unwrap_value (val);
4c4b4cd2 6111 return ada_to_fixed_value (val);
d2e4a39e
AS
6112 }
6113 else
14f9c5c9
AS
6114 return val0;
6115}
6116
6117/* Return OFF rounded upward if necessary to a multiple of
4c4b4cd2 6118 ALIGNMENT (a power of 2). */
14f9c5c9
AS
6119
6120static unsigned int
ebf56fd3 6121align_value (unsigned int off, unsigned int alignment)
14f9c5c9
AS
6122{
6123 return (off + alignment - 1) & ~(alignment - 1);
6124}
6125
4c4b4cd2 6126/* Return the bit alignment required for field #F of template type TYPE. */
14f9c5c9
AS
6127
6128static unsigned int
ebf56fd3 6129field_alignment (struct type *type, int f)
14f9c5c9 6130{
d2e4a39e 6131 const char *name = TYPE_FIELD_NAME (type, f);
14f9c5c9
AS
6132 int len = (name == NULL) ? 0 : strlen (name);
6133 int align_offset;
6134
4c4b4cd2
PH
6135 if (!isdigit (name[len - 1]))
6136 return 1;
14f9c5c9 6137
d2e4a39e 6138 if (isdigit (name[len - 2]))
14f9c5c9
AS
6139 align_offset = len - 2;
6140 else
6141 align_offset = len - 1;
6142
4c4b4cd2 6143 if (align_offset < 7 || strncmp ("___XV", name + align_offset - 6, 5) != 0)
14f9c5c9
AS
6144 return TARGET_CHAR_BIT;
6145
4c4b4cd2
PH
6146 return atoi (name + align_offset) * TARGET_CHAR_BIT;
6147}
6148
6149/* Find a symbol named NAME. Ignores ambiguity. */
6150
6151struct symbol *
6152ada_find_any_symbol (const char *name)
6153{
6154 struct symbol *sym;
6155
6156 sym = standard_lookup (name, get_selected_block (NULL), VAR_DOMAIN);
6157 if (sym != NULL && SYMBOL_CLASS (sym) == LOC_TYPEDEF)
6158 return sym;
6159
6160 sym = standard_lookup (name, NULL, STRUCT_DOMAIN);
6161 return sym;
14f9c5c9
AS
6162}
6163
6164/* Find a type named NAME. Ignores ambiguity. */
4c4b4cd2 6165
d2e4a39e 6166struct type *
ebf56fd3 6167ada_find_any_type (const char *name)
14f9c5c9 6168{
4c4b4cd2 6169 struct symbol *sym = ada_find_any_symbol (name);
14f9c5c9 6170
14f9c5c9
AS
6171 if (sym != NULL)
6172 return SYMBOL_TYPE (sym);
6173
6174 return NULL;
6175}
6176
4c4b4cd2
PH
6177/* Given a symbol NAME and its associated BLOCK, search all symbols
6178 for its ___XR counterpart, which is the ``renaming'' symbol
6179 associated to NAME. Return this symbol if found, return
6180 NULL otherwise. */
6181
6182struct symbol *
6183ada_find_renaming_symbol (const char *name, struct block *block)
6184{
6185 const struct symbol *function_sym = block_function (block);
6186 char *rename;
6187
6188 if (function_sym != NULL)
6189 {
6190 /* If the symbol is defined inside a function, NAME is not fully
6191 qualified. This means we need to prepend the function name
6192 as well as adding the ``___XR'' suffix to build the name of
6193 the associated renaming symbol. */
6194 char *function_name = SYMBOL_LINKAGE_NAME (function_sym);
529cad9c
PH
6195 /* Function names sometimes contain suffixes used
6196 for instance to qualify nested subprograms. When building
6197 the XR type name, we need to make sure that this suffix is
6198 not included. So do not include any suffix in the function
6199 name length below. */
6200 const int function_name_len = ada_name_prefix_len (function_name);
76a01679
JB
6201 const int rename_len = function_name_len + 2 /* "__" */
6202 + strlen (name) + 6 /* "___XR\0" */ ;
4c4b4cd2 6203
529cad9c
PH
6204 /* Strip the suffix if necessary. */
6205 function_name[function_name_len] = '\0';
6206
4c4b4cd2
PH
6207 /* Library-level functions are a special case, as GNAT adds
6208 a ``_ada_'' prefix to the function name to avoid namespace
6209 pollution. However, the renaming symbol themselves do not
6210 have this prefix, so we need to skip this prefix if present. */
6211 if (function_name_len > 5 /* "_ada_" */
6212 && strstr (function_name, "_ada_") == function_name)
6213 function_name = function_name + 5;
6214
6215 rename = (char *) alloca (rename_len * sizeof (char));
6216 sprintf (rename, "%s__%s___XR", function_name, name);
6217 }
6218 else
6219 {
6220 const int rename_len = strlen (name) + 6;
6221 rename = (char *) alloca (rename_len * sizeof (char));
6222 sprintf (rename, "%s___XR", name);
6223 }
6224
6225 return ada_find_any_symbol (rename);
6226}
6227
14f9c5c9 6228/* Because of GNAT encoding conventions, several GDB symbols may match a
4c4b4cd2 6229 given type name. If the type denoted by TYPE0 is to be preferred to
14f9c5c9 6230 that of TYPE1 for purposes of type printing, return non-zero;
4c4b4cd2
PH
6231 otherwise return 0. */
6232
14f9c5c9 6233int
d2e4a39e 6234ada_prefer_type (struct type *type0, struct type *type1)
14f9c5c9
AS
6235{
6236 if (type1 == NULL)
6237 return 1;
6238 else if (type0 == NULL)
6239 return 0;
6240 else if (TYPE_CODE (type1) == TYPE_CODE_VOID)
6241 return 1;
6242 else if (TYPE_CODE (type0) == TYPE_CODE_VOID)
6243 return 0;
4c4b4cd2
PH
6244 else if (TYPE_NAME (type1) == NULL && TYPE_NAME (type0) != NULL)
6245 return 1;
14f9c5c9
AS
6246 else if (ada_is_packed_array_type (type0))
6247 return 1;
4c4b4cd2
PH
6248 else if (ada_is_array_descriptor_type (type0)
6249 && !ada_is_array_descriptor_type (type1))
14f9c5c9 6250 return 1;
d2e4a39e 6251 else if (ada_renaming_type (type0) != NULL
4c4b4cd2 6252 && ada_renaming_type (type1) == NULL)
14f9c5c9
AS
6253 return 1;
6254 return 0;
6255}
6256
6257/* The name of TYPE, which is either its TYPE_NAME, or, if that is
4c4b4cd2
PH
6258 null, its TYPE_TAG_NAME. Null if TYPE is null. */
6259
d2e4a39e
AS
6260char *
6261ada_type_name (struct type *type)
14f9c5c9 6262{
d2e4a39e 6263 if (type == NULL)
14f9c5c9
AS
6264 return NULL;
6265 else if (TYPE_NAME (type) != NULL)
6266 return TYPE_NAME (type);
6267 else
6268 return TYPE_TAG_NAME (type);
6269}
6270
6271/* Find a parallel type to TYPE whose name is formed by appending
4c4b4cd2 6272 SUFFIX to the name of TYPE. */
14f9c5c9 6273
d2e4a39e 6274struct type *
ebf56fd3 6275ada_find_parallel_type (struct type *type, const char *suffix)
14f9c5c9 6276{
d2e4a39e 6277 static char *name;
14f9c5c9 6278 static size_t name_len = 0;
14f9c5c9 6279 int len;
d2e4a39e
AS
6280 char *typename = ada_type_name (type);
6281
14f9c5c9
AS
6282 if (typename == NULL)
6283 return NULL;
6284
6285 len = strlen (typename);
6286
d2e4a39e 6287 GROW_VECT (name, name_len, len + strlen (suffix) + 1);
14f9c5c9
AS
6288
6289 strcpy (name, typename);
6290 strcpy (name + len, suffix);
6291
6292 return ada_find_any_type (name);
6293}
6294
6295
6296/* If TYPE is a variable-size record type, return the corresponding template
4c4b4cd2 6297 type describing its fields. Otherwise, return NULL. */
14f9c5c9 6298
d2e4a39e
AS
6299static struct type *
6300dynamic_template_type (struct type *type)
14f9c5c9 6301{
61ee279c 6302 type = ada_check_typedef (type);
14f9c5c9
AS
6303
6304 if (type == NULL || TYPE_CODE (type) != TYPE_CODE_STRUCT
d2e4a39e 6305 || ada_type_name (type) == NULL)
14f9c5c9 6306 return NULL;
d2e4a39e 6307 else
14f9c5c9
AS
6308 {
6309 int len = strlen (ada_type_name (type));
4c4b4cd2
PH
6310 if (len > 6 && strcmp (ada_type_name (type) + len - 6, "___XVE") == 0)
6311 return type;
14f9c5c9 6312 else
4c4b4cd2 6313 return ada_find_parallel_type (type, "___XVE");
14f9c5c9
AS
6314 }
6315}
6316
6317/* Assuming that TEMPL_TYPE is a union or struct type, returns
4c4b4cd2 6318 non-zero iff field FIELD_NUM of TEMPL_TYPE has dynamic size. */
14f9c5c9 6319
d2e4a39e
AS
6320static int
6321is_dynamic_field (struct type *templ_type, int field_num)
14f9c5c9
AS
6322{
6323 const char *name = TYPE_FIELD_NAME (templ_type, field_num);
d2e4a39e 6324 return name != NULL
14f9c5c9
AS
6325 && TYPE_CODE (TYPE_FIELD_TYPE (templ_type, field_num)) == TYPE_CODE_PTR
6326 && strstr (name, "___XVL") != NULL;
6327}
6328
4c4b4cd2
PH
6329/* The index of the variant field of TYPE, or -1 if TYPE does not
6330 represent a variant record type. */
14f9c5c9 6331
d2e4a39e 6332static int
4c4b4cd2 6333variant_field_index (struct type *type)
14f9c5c9
AS
6334{
6335 int f;
6336
4c4b4cd2
PH
6337 if (type == NULL || TYPE_CODE (type) != TYPE_CODE_STRUCT)
6338 return -1;
6339
6340 for (f = 0; f < TYPE_NFIELDS (type); f += 1)
6341 {
6342 if (ada_is_variant_part (type, f))
6343 return f;
6344 }
6345 return -1;
14f9c5c9
AS
6346}
6347
4c4b4cd2
PH
6348/* A record type with no fields. */
6349
d2e4a39e
AS
6350static struct type *
6351empty_record (struct objfile *objfile)
14f9c5c9 6352{
d2e4a39e 6353 struct type *type = alloc_type (objfile);
14f9c5c9
AS
6354 TYPE_CODE (type) = TYPE_CODE_STRUCT;
6355 TYPE_NFIELDS (type) = 0;
6356 TYPE_FIELDS (type) = NULL;
6357 TYPE_NAME (type) = "<empty>";
6358 TYPE_TAG_NAME (type) = NULL;
6359 TYPE_FLAGS (type) = 0;
6360 TYPE_LENGTH (type) = 0;
6361 return type;
6362}
6363
6364/* An ordinary record type (with fixed-length fields) that describes
4c4b4cd2
PH
6365 the value of type TYPE at VALADDR or ADDRESS (see comments at
6366 the beginning of this section) VAL according to GNAT conventions.
6367 DVAL0 should describe the (portion of a) record that contains any
df407dfe 6368 necessary discriminants. It should be NULL if value_type (VAL) is
14f9c5c9
AS
6369 an outer-level type (i.e., as opposed to a branch of a variant.) A
6370 variant field (unless unchecked) is replaced by a particular branch
4c4b4cd2 6371 of the variant.
14f9c5c9 6372
4c4b4cd2
PH
6373 If not KEEP_DYNAMIC_FIELDS, then all fields whose position or
6374 length are not statically known are discarded. As a consequence,
6375 VALADDR, ADDRESS and DVAL0 are ignored.
6376
6377 NOTE: Limitations: For now, we assume that dynamic fields and
6378 variants occupy whole numbers of bytes. However, they need not be
6379 byte-aligned. */
6380
6381struct type *
10a2c479 6382ada_template_to_fixed_record_type_1 (struct type *type,
fc1a4b47 6383 const gdb_byte *valaddr,
4c4b4cd2
PH
6384 CORE_ADDR address, struct value *dval0,
6385 int keep_dynamic_fields)
14f9c5c9 6386{
d2e4a39e
AS
6387 struct value *mark = value_mark ();
6388 struct value *dval;
6389 struct type *rtype;
14f9c5c9 6390 int nfields, bit_len;
4c4b4cd2 6391 int variant_field;
14f9c5c9 6392 long off;
4c4b4cd2 6393 int fld_bit_len, bit_incr;
14f9c5c9
AS
6394 int f;
6395
4c4b4cd2
PH
6396 /* Compute the number of fields in this record type that are going
6397 to be processed: unless keep_dynamic_fields, this includes only
6398 fields whose position and length are static will be processed. */
6399 if (keep_dynamic_fields)
6400 nfields = TYPE_NFIELDS (type);
6401 else
6402 {
6403 nfields = 0;
76a01679 6404 while (nfields < TYPE_NFIELDS (type)
4c4b4cd2
PH
6405 && !ada_is_variant_part (type, nfields)
6406 && !is_dynamic_field (type, nfields))
6407 nfields++;
6408 }
6409
14f9c5c9
AS
6410 rtype = alloc_type (TYPE_OBJFILE (type));
6411 TYPE_CODE (rtype) = TYPE_CODE_STRUCT;
6412 INIT_CPLUS_SPECIFIC (rtype);
6413 TYPE_NFIELDS (rtype) = nfields;
d2e4a39e 6414 TYPE_FIELDS (rtype) = (struct field *)
14f9c5c9
AS
6415 TYPE_ALLOC (rtype, nfields * sizeof (struct field));
6416 memset (TYPE_FIELDS (rtype), 0, sizeof (struct field) * nfields);
6417 TYPE_NAME (rtype) = ada_type_name (type);
6418 TYPE_TAG_NAME (rtype) = NULL;
4c4b4cd2 6419 TYPE_FLAGS (rtype) |= TYPE_FLAG_FIXED_INSTANCE;
14f9c5c9 6420
d2e4a39e
AS
6421 off = 0;
6422 bit_len = 0;
4c4b4cd2
PH
6423 variant_field = -1;
6424
14f9c5c9
AS
6425 for (f = 0; f < nfields; f += 1)
6426 {
6c038f32
PH
6427 off = align_value (off, field_alignment (type, f))
6428 + TYPE_FIELD_BITPOS (type, f);
14f9c5c9 6429 TYPE_FIELD_BITPOS (rtype, f) = off;
d2e4a39e 6430 TYPE_FIELD_BITSIZE (rtype, f) = 0;
14f9c5c9 6431
d2e4a39e 6432 if (ada_is_variant_part (type, f))
4c4b4cd2
PH
6433 {
6434 variant_field = f;
6435 fld_bit_len = bit_incr = 0;
6436 }
14f9c5c9 6437 else if (is_dynamic_field (type, f))
4c4b4cd2
PH
6438 {
6439 if (dval0 == NULL)
6440 dval = value_from_contents_and_address (rtype, valaddr, address);
6441 else
6442 dval = dval0;
6443
6444 TYPE_FIELD_TYPE (rtype, f) =
6445 ada_to_fixed_type
6446 (ada_get_base_type
6447 (TYPE_TARGET_TYPE (TYPE_FIELD_TYPE (type, f))),
6448 cond_offset_host (valaddr, off / TARGET_CHAR_BIT),
6449 cond_offset_target (address, off / TARGET_CHAR_BIT), dval);
6450 TYPE_FIELD_NAME (rtype, f) = TYPE_FIELD_NAME (type, f);
6451 bit_incr = fld_bit_len =
6452 TYPE_LENGTH (TYPE_FIELD_TYPE (rtype, f)) * TARGET_CHAR_BIT;
6453 }
14f9c5c9 6454 else
4c4b4cd2
PH
6455 {
6456 TYPE_FIELD_TYPE (rtype, f) = TYPE_FIELD_TYPE (type, f);
6457 TYPE_FIELD_NAME (rtype, f) = TYPE_FIELD_NAME (type, f);
6458 if (TYPE_FIELD_BITSIZE (type, f) > 0)
6459 bit_incr = fld_bit_len =
6460 TYPE_FIELD_BITSIZE (rtype, f) = TYPE_FIELD_BITSIZE (type, f);
6461 else
6462 bit_incr = fld_bit_len =
6463 TYPE_LENGTH (TYPE_FIELD_TYPE (type, f)) * TARGET_CHAR_BIT;
6464 }
14f9c5c9 6465 if (off + fld_bit_len > bit_len)
4c4b4cd2 6466 bit_len = off + fld_bit_len;
14f9c5c9 6467 off += bit_incr;
4c4b4cd2
PH
6468 TYPE_LENGTH (rtype) =
6469 align_value (bit_len, TARGET_CHAR_BIT) / TARGET_CHAR_BIT;
14f9c5c9 6470 }
4c4b4cd2
PH
6471
6472 /* We handle the variant part, if any, at the end because of certain
6473 odd cases in which it is re-ordered so as NOT the last field of
6474 the record. This can happen in the presence of representation
6475 clauses. */
6476 if (variant_field >= 0)
6477 {
6478 struct type *branch_type;
6479
6480 off = TYPE_FIELD_BITPOS (rtype, variant_field);
6481
6482 if (dval0 == NULL)
6483 dval = value_from_contents_and_address (rtype, valaddr, address);
6484 else
6485 dval = dval0;
6486
6487 branch_type =
6488 to_fixed_variant_branch_type
6489 (TYPE_FIELD_TYPE (type, variant_field),
6490 cond_offset_host (valaddr, off / TARGET_CHAR_BIT),
6491 cond_offset_target (address, off / TARGET_CHAR_BIT), dval);
6492 if (branch_type == NULL)
6493 {
6494 for (f = variant_field + 1; f < TYPE_NFIELDS (rtype); f += 1)
6495 TYPE_FIELDS (rtype)[f - 1] = TYPE_FIELDS (rtype)[f];
6496 TYPE_NFIELDS (rtype) -= 1;
6497 }
6498 else
6499 {
6500 TYPE_FIELD_TYPE (rtype, variant_field) = branch_type;
6501 TYPE_FIELD_NAME (rtype, variant_field) = "S";
6502 fld_bit_len =
6503 TYPE_LENGTH (TYPE_FIELD_TYPE (rtype, variant_field)) *
6504 TARGET_CHAR_BIT;
6505 if (off + fld_bit_len > bit_len)
6506 bit_len = off + fld_bit_len;
6507 TYPE_LENGTH (rtype) =
6508 align_value (bit_len, TARGET_CHAR_BIT) / TARGET_CHAR_BIT;
6509 }
6510 }
6511
714e53ab
PH
6512 /* According to exp_dbug.ads, the size of TYPE for variable-size records
6513 should contain the alignment of that record, which should be a strictly
6514 positive value. If null or negative, then something is wrong, most
6515 probably in the debug info. In that case, we don't round up the size
6516 of the resulting type. If this record is not part of another structure,
6517 the current RTYPE length might be good enough for our purposes. */
6518 if (TYPE_LENGTH (type) <= 0)
6519 {
323e0a4a
AC
6520 if (TYPE_NAME (rtype))
6521 warning (_("Invalid type size for `%s' detected: %d."),
6522 TYPE_NAME (rtype), TYPE_LENGTH (type));
6523 else
6524 warning (_("Invalid type size for <unnamed> detected: %d."),
6525 TYPE_LENGTH (type));
714e53ab
PH
6526 }
6527 else
6528 {
6529 TYPE_LENGTH (rtype) = align_value (TYPE_LENGTH (rtype),
6530 TYPE_LENGTH (type));
6531 }
14f9c5c9
AS
6532
6533 value_free_to_mark (mark);
d2e4a39e 6534 if (TYPE_LENGTH (rtype) > varsize_limit)
323e0a4a 6535 error (_("record type with dynamic size is larger than varsize-limit"));
14f9c5c9
AS
6536 return rtype;
6537}
6538
4c4b4cd2
PH
6539/* As for ada_template_to_fixed_record_type_1 with KEEP_DYNAMIC_FIELDS
6540 of 1. */
14f9c5c9 6541
d2e4a39e 6542static struct type *
fc1a4b47 6543template_to_fixed_record_type (struct type *type, const gdb_byte *valaddr,
4c4b4cd2
PH
6544 CORE_ADDR address, struct value *dval0)
6545{
6546 return ada_template_to_fixed_record_type_1 (type, valaddr,
6547 address, dval0, 1);
6548}
6549
6550/* An ordinary record type in which ___XVL-convention fields and
6551 ___XVU- and ___XVN-convention field types in TYPE0 are replaced with
6552 static approximations, containing all possible fields. Uses
6553 no runtime values. Useless for use in values, but that's OK,
6554 since the results are used only for type determinations. Works on both
6555 structs and unions. Representation note: to save space, we memorize
6556 the result of this function in the TYPE_TARGET_TYPE of the
6557 template type. */
6558
6559static struct type *
6560template_to_static_fixed_type (struct type *type0)
14f9c5c9
AS
6561{
6562 struct type *type;
6563 int nfields;
6564 int f;
6565
4c4b4cd2
PH
6566 if (TYPE_TARGET_TYPE (type0) != NULL)
6567 return TYPE_TARGET_TYPE (type0);
6568
6569 nfields = TYPE_NFIELDS (type0);
6570 type = type0;
14f9c5c9
AS
6571
6572 for (f = 0; f < nfields; f += 1)
6573 {
61ee279c 6574 struct type *field_type = ada_check_typedef (TYPE_FIELD_TYPE (type0, f));
4c4b4cd2 6575 struct type *new_type;
14f9c5c9 6576
4c4b4cd2
PH
6577 if (is_dynamic_field (type0, f))
6578 new_type = to_static_fixed_type (TYPE_TARGET_TYPE (field_type));
14f9c5c9 6579 else
4c4b4cd2
PH
6580 new_type = to_static_fixed_type (field_type);
6581 if (type == type0 && new_type != field_type)
6582 {
6583 TYPE_TARGET_TYPE (type0) = type = alloc_type (TYPE_OBJFILE (type0));
6584 TYPE_CODE (type) = TYPE_CODE (type0);
6585 INIT_CPLUS_SPECIFIC (type);
6586 TYPE_NFIELDS (type) = nfields;
6587 TYPE_FIELDS (type) = (struct field *)
6588 TYPE_ALLOC (type, nfields * sizeof (struct field));
6589 memcpy (TYPE_FIELDS (type), TYPE_FIELDS (type0),
6590 sizeof (struct field) * nfields);
6591 TYPE_NAME (type) = ada_type_name (type0);
6592 TYPE_TAG_NAME (type) = NULL;
6593 TYPE_FLAGS (type) |= TYPE_FLAG_FIXED_INSTANCE;
6594 TYPE_LENGTH (type) = 0;
6595 }
6596 TYPE_FIELD_TYPE (type, f) = new_type;
6597 TYPE_FIELD_NAME (type, f) = TYPE_FIELD_NAME (type0, f);
14f9c5c9 6598 }
14f9c5c9
AS
6599 return type;
6600}
6601
4c4b4cd2
PH
6602/* Given an object of type TYPE whose contents are at VALADDR and
6603 whose address in memory is ADDRESS, returns a revision of TYPE --
6604 a non-dynamic-sized record with a variant part -- in which
6605 the variant part is replaced with the appropriate branch. Looks
6606 for discriminant values in DVAL0, which can be NULL if the record
6607 contains the necessary discriminant values. */
6608
d2e4a39e 6609static struct type *
fc1a4b47 6610to_record_with_fixed_variant_part (struct type *type, const gdb_byte *valaddr,
4c4b4cd2 6611 CORE_ADDR address, struct value *dval0)
14f9c5c9 6612{
d2e4a39e 6613 struct value *mark = value_mark ();
4c4b4cd2 6614 struct value *dval;
d2e4a39e 6615 struct type *rtype;
14f9c5c9
AS
6616 struct type *branch_type;
6617 int nfields = TYPE_NFIELDS (type);
4c4b4cd2 6618 int variant_field = variant_field_index (type);
14f9c5c9 6619
4c4b4cd2 6620 if (variant_field == -1)
14f9c5c9
AS
6621 return type;
6622
4c4b4cd2
PH
6623 if (dval0 == NULL)
6624 dval = value_from_contents_and_address (type, valaddr, address);
6625 else
6626 dval = dval0;
6627
14f9c5c9
AS
6628 rtype = alloc_type (TYPE_OBJFILE (type));
6629 TYPE_CODE (rtype) = TYPE_CODE_STRUCT;
4c4b4cd2
PH
6630 INIT_CPLUS_SPECIFIC (rtype);
6631 TYPE_NFIELDS (rtype) = nfields;
d2e4a39e
AS
6632 TYPE_FIELDS (rtype) =
6633 (struct field *) TYPE_ALLOC (rtype, nfields * sizeof (struct field));
6634 memcpy (TYPE_FIELDS (rtype), TYPE_FIELDS (type),
4c4b4cd2 6635 sizeof (struct field) * nfields);
14f9c5c9
AS
6636 TYPE_NAME (rtype) = ada_type_name (type);
6637 TYPE_TAG_NAME (rtype) = NULL;
4c4b4cd2 6638 TYPE_FLAGS (rtype) |= TYPE_FLAG_FIXED_INSTANCE;
14f9c5c9
AS
6639 TYPE_LENGTH (rtype) = TYPE_LENGTH (type);
6640
4c4b4cd2
PH
6641 branch_type = to_fixed_variant_branch_type
6642 (TYPE_FIELD_TYPE (type, variant_field),
d2e4a39e 6643 cond_offset_host (valaddr,
4c4b4cd2
PH
6644 TYPE_FIELD_BITPOS (type, variant_field)
6645 / TARGET_CHAR_BIT),
d2e4a39e 6646 cond_offset_target (address,
4c4b4cd2
PH
6647 TYPE_FIELD_BITPOS (type, variant_field)
6648 / TARGET_CHAR_BIT), dval);
d2e4a39e 6649 if (branch_type == NULL)
14f9c5c9 6650 {
4c4b4cd2
PH
6651 int f;
6652 for (f = variant_field + 1; f < nfields; f += 1)
6653 TYPE_FIELDS (rtype)[f - 1] = TYPE_FIELDS (rtype)[f];
14f9c5c9 6654 TYPE_NFIELDS (rtype) -= 1;
14f9c5c9
AS
6655 }
6656 else
6657 {
4c4b4cd2
PH
6658 TYPE_FIELD_TYPE (rtype, variant_field) = branch_type;
6659 TYPE_FIELD_NAME (rtype, variant_field) = "S";
6660 TYPE_FIELD_BITSIZE (rtype, variant_field) = 0;
14f9c5c9 6661 TYPE_LENGTH (rtype) += TYPE_LENGTH (branch_type);
14f9c5c9 6662 }
4c4b4cd2 6663 TYPE_LENGTH (rtype) -= TYPE_LENGTH (TYPE_FIELD_TYPE (type, variant_field));
d2e4a39e 6664
4c4b4cd2 6665 value_free_to_mark (mark);
14f9c5c9
AS
6666 return rtype;
6667}
6668
6669/* An ordinary record type (with fixed-length fields) that describes
6670 the value at (TYPE0, VALADDR, ADDRESS) [see explanation at
6671 beginning of this section]. Any necessary discriminants' values
4c4b4cd2
PH
6672 should be in DVAL, a record value; it may be NULL if the object
6673 at ADDR itself contains any necessary discriminant values.
6674 Additionally, VALADDR and ADDRESS may also be NULL if no discriminant
6675 values from the record are needed. Except in the case that DVAL,
6676 VALADDR, and ADDRESS are all 0 or NULL, a variant field (unless
6677 unchecked) is replaced by a particular branch of the variant.
6678
6679 NOTE: the case in which DVAL and VALADDR are NULL and ADDRESS is 0
6680 is questionable and may be removed. It can arise during the
6681 processing of an unconstrained-array-of-record type where all the
6682 variant branches have exactly the same size. This is because in
6683 such cases, the compiler does not bother to use the XVS convention
6684 when encoding the record. I am currently dubious of this
6685 shortcut and suspect the compiler should be altered. FIXME. */
14f9c5c9 6686
d2e4a39e 6687static struct type *
fc1a4b47 6688to_fixed_record_type (struct type *type0, const gdb_byte *valaddr,
4c4b4cd2 6689 CORE_ADDR address, struct value *dval)
14f9c5c9 6690{
d2e4a39e 6691 struct type *templ_type;
14f9c5c9 6692
4c4b4cd2
PH
6693 if (TYPE_FLAGS (type0) & TYPE_FLAG_FIXED_INSTANCE)
6694 return type0;
6695
d2e4a39e 6696 templ_type = dynamic_template_type (type0);
14f9c5c9
AS
6697
6698 if (templ_type != NULL)
6699 return template_to_fixed_record_type (templ_type, valaddr, address, dval);
4c4b4cd2
PH
6700 else if (variant_field_index (type0) >= 0)
6701 {
6702 if (dval == NULL && valaddr == NULL && address == 0)
6703 return type0;
6704 return to_record_with_fixed_variant_part (type0, valaddr, address,
6705 dval);
6706 }
14f9c5c9
AS
6707 else
6708 {
4c4b4cd2 6709 TYPE_FLAGS (type0) |= TYPE_FLAG_FIXED_INSTANCE;
14f9c5c9
AS
6710 return type0;
6711 }
6712
6713}
6714
6715/* An ordinary record type (with fixed-length fields) that describes
6716 the value at (VAR_TYPE0, VALADDR, ADDRESS), where VAR_TYPE0 is a
6717 union type. Any necessary discriminants' values should be in DVAL,
6718 a record value. That is, this routine selects the appropriate
6719 branch of the union at ADDR according to the discriminant value
4c4b4cd2 6720 indicated in the union's type name. */
14f9c5c9 6721
d2e4a39e 6722static struct type *
fc1a4b47 6723to_fixed_variant_branch_type (struct type *var_type0, const gdb_byte *valaddr,
4c4b4cd2 6724 CORE_ADDR address, struct value *dval)
14f9c5c9
AS
6725{
6726 int which;
d2e4a39e
AS
6727 struct type *templ_type;
6728 struct type *var_type;
14f9c5c9
AS
6729
6730 if (TYPE_CODE (var_type0) == TYPE_CODE_PTR)
6731 var_type = TYPE_TARGET_TYPE (var_type0);
d2e4a39e 6732 else
14f9c5c9
AS
6733 var_type = var_type0;
6734
6735 templ_type = ada_find_parallel_type (var_type, "___XVU");
6736
6737 if (templ_type != NULL)
6738 var_type = templ_type;
6739
d2e4a39e
AS
6740 which =
6741 ada_which_variant_applies (var_type,
0fd88904 6742 value_type (dval), value_contents (dval));
14f9c5c9
AS
6743
6744 if (which < 0)
6745 return empty_record (TYPE_OBJFILE (var_type));
6746 else if (is_dynamic_field (var_type, which))
4c4b4cd2 6747 return to_fixed_record_type
d2e4a39e
AS
6748 (TYPE_TARGET_TYPE (TYPE_FIELD_TYPE (var_type, which)),
6749 valaddr, address, dval);
4c4b4cd2 6750 else if (variant_field_index (TYPE_FIELD_TYPE (var_type, which)) >= 0)
d2e4a39e
AS
6751 return
6752 to_fixed_record_type
6753 (TYPE_FIELD_TYPE (var_type, which), valaddr, address, dval);
14f9c5c9
AS
6754 else
6755 return TYPE_FIELD_TYPE (var_type, which);
6756}
6757
6758/* Assuming that TYPE0 is an array type describing the type of a value
6759 at ADDR, and that DVAL describes a record containing any
6760 discriminants used in TYPE0, returns a type for the value that
6761 contains no dynamic components (that is, no components whose sizes
6762 are determined by run-time quantities). Unless IGNORE_TOO_BIG is
6763 true, gives an error message if the resulting type's size is over
4c4b4cd2 6764 varsize_limit. */
14f9c5c9 6765
d2e4a39e
AS
6766static struct type *
6767to_fixed_array_type (struct type *type0, struct value *dval,
4c4b4cd2 6768 int ignore_too_big)
14f9c5c9 6769{
d2e4a39e
AS
6770 struct type *index_type_desc;
6771 struct type *result;
14f9c5c9 6772
4c4b4cd2
PH
6773 if (ada_is_packed_array_type (type0) /* revisit? */
6774 || (TYPE_FLAGS (type0) & TYPE_FLAG_FIXED_INSTANCE))
6775 return type0;
14f9c5c9
AS
6776
6777 index_type_desc = ada_find_parallel_type (type0, "___XA");
6778 if (index_type_desc == NULL)
6779 {
61ee279c 6780 struct type *elt_type0 = ada_check_typedef (TYPE_TARGET_TYPE (type0));
14f9c5c9 6781 /* NOTE: elt_type---the fixed version of elt_type0---should never
4c4b4cd2
PH
6782 depend on the contents of the array in properly constructed
6783 debugging data. */
529cad9c
PH
6784 /* Create a fixed version of the array element type.
6785 We're not providing the address of an element here,
e1d5a0d2 6786 and thus the actual object value cannot be inspected to do
529cad9c
PH
6787 the conversion. This should not be a problem, since arrays of
6788 unconstrained objects are not allowed. In particular, all
6789 the elements of an array of a tagged type should all be of
6790 the same type specified in the debugging info. No need to
6791 consult the object tag. */
d2e4a39e 6792 struct type *elt_type = ada_to_fixed_type (elt_type0, 0, 0, dval);
14f9c5c9
AS
6793
6794 if (elt_type0 == elt_type)
4c4b4cd2 6795 result = type0;
14f9c5c9 6796 else
4c4b4cd2
PH
6797 result = create_array_type (alloc_type (TYPE_OBJFILE (type0)),
6798 elt_type, TYPE_INDEX_TYPE (type0));
14f9c5c9
AS
6799 }
6800 else
6801 {
6802 int i;
6803 struct type *elt_type0;
6804
6805 elt_type0 = type0;
6806 for (i = TYPE_NFIELDS (index_type_desc); i > 0; i -= 1)
4c4b4cd2 6807 elt_type0 = TYPE_TARGET_TYPE (elt_type0);
14f9c5c9
AS
6808
6809 /* NOTE: result---the fixed version of elt_type0---should never
4c4b4cd2
PH
6810 depend on the contents of the array in properly constructed
6811 debugging data. */
529cad9c
PH
6812 /* Create a fixed version of the array element type.
6813 We're not providing the address of an element here,
e1d5a0d2 6814 and thus the actual object value cannot be inspected to do
529cad9c
PH
6815 the conversion. This should not be a problem, since arrays of
6816 unconstrained objects are not allowed. In particular, all
6817 the elements of an array of a tagged type should all be of
6818 the same type specified in the debugging info. No need to
6819 consult the object tag. */
61ee279c 6820 result = ada_to_fixed_type (ada_check_typedef (elt_type0), 0, 0, dval);
14f9c5c9 6821 for (i = TYPE_NFIELDS (index_type_desc) - 1; i >= 0; i -= 1)
4c4b4cd2
PH
6822 {
6823 struct type *range_type =
6824 to_fixed_range_type (TYPE_FIELD_NAME (index_type_desc, i),
6825 dval, TYPE_OBJFILE (type0));
6826 result = create_array_type (alloc_type (TYPE_OBJFILE (type0)),
6827 result, range_type);
6828 }
d2e4a39e 6829 if (!ignore_too_big && TYPE_LENGTH (result) > varsize_limit)
323e0a4a 6830 error (_("array type with dynamic size is larger than varsize-limit"));
14f9c5c9
AS
6831 }
6832
4c4b4cd2 6833 TYPE_FLAGS (result) |= TYPE_FLAG_FIXED_INSTANCE;
14f9c5c9 6834 return result;
d2e4a39e 6835}
14f9c5c9
AS
6836
6837
6838/* A standard type (containing no dynamically sized components)
6839 corresponding to TYPE for the value (TYPE, VALADDR, ADDRESS)
6840 DVAL describes a record containing any discriminants used in TYPE0,
4c4b4cd2 6841 and may be NULL if there are none, or if the object of type TYPE at
529cad9c
PH
6842 ADDRESS or in VALADDR contains these discriminants.
6843
6844 In the case of tagged types, this function attempts to locate the object's
6845 tag and use it to compute the actual type. However, when ADDRESS is null,
6846 we cannot use it to determine the location of the tag, and therefore
6847 compute the tagged type's actual type. So we return the tagged type
6848 without consulting the tag. */
6849
d2e4a39e 6850struct type *
fc1a4b47 6851ada_to_fixed_type (struct type *type, const gdb_byte *valaddr,
4c4b4cd2 6852 CORE_ADDR address, struct value *dval)
14f9c5c9 6853{
61ee279c 6854 type = ada_check_typedef (type);
d2e4a39e
AS
6855 switch (TYPE_CODE (type))
6856 {
6857 default:
14f9c5c9 6858 return type;
d2e4a39e 6859 case TYPE_CODE_STRUCT:
4c4b4cd2 6860 {
76a01679 6861 struct type *static_type = to_static_fixed_type (type);
529cad9c
PH
6862
6863 /* If STATIC_TYPE is a tagged type and we know the object's address,
6864 then we can determine its tag, and compute the object's actual
6865 type from there. */
6866
6867 if (address != 0 && ada_is_tagged_type (static_type, 0))
76a01679
JB
6868 {
6869 struct type *real_type =
6870 type_from_tag (value_tag_from_contents_and_address (static_type,
6871 valaddr,
6872 address));
6873 if (real_type != NULL)
6874 type = real_type;
6875 }
6876 return to_fixed_record_type (type, valaddr, address, NULL);
4c4b4cd2 6877 }
d2e4a39e 6878 case TYPE_CODE_ARRAY:
4c4b4cd2 6879 return to_fixed_array_type (type, dval, 1);
d2e4a39e
AS
6880 case TYPE_CODE_UNION:
6881 if (dval == NULL)
4c4b4cd2 6882 return type;
d2e4a39e 6883 else
4c4b4cd2 6884 return to_fixed_variant_branch_type (type, valaddr, address, dval);
d2e4a39e 6885 }
14f9c5c9
AS
6886}
6887
6888/* A standard (static-sized) type corresponding as well as possible to
4c4b4cd2 6889 TYPE0, but based on no runtime data. */
14f9c5c9 6890
d2e4a39e
AS
6891static struct type *
6892to_static_fixed_type (struct type *type0)
14f9c5c9 6893{
d2e4a39e 6894 struct type *type;
14f9c5c9
AS
6895
6896 if (type0 == NULL)
6897 return NULL;
6898
4c4b4cd2
PH
6899 if (TYPE_FLAGS (type0) & TYPE_FLAG_FIXED_INSTANCE)
6900 return type0;
6901
61ee279c 6902 type0 = ada_check_typedef (type0);
d2e4a39e 6903
14f9c5c9
AS
6904 switch (TYPE_CODE (type0))
6905 {
6906 default:
6907 return type0;
6908 case TYPE_CODE_STRUCT:
6909 type = dynamic_template_type (type0);
d2e4a39e 6910 if (type != NULL)
4c4b4cd2
PH
6911 return template_to_static_fixed_type (type);
6912 else
6913 return template_to_static_fixed_type (type0);
14f9c5c9
AS
6914 case TYPE_CODE_UNION:
6915 type = ada_find_parallel_type (type0, "___XVU");
6916 if (type != NULL)
4c4b4cd2
PH
6917 return template_to_static_fixed_type (type);
6918 else
6919 return template_to_static_fixed_type (type0);
14f9c5c9
AS
6920 }
6921}
6922
4c4b4cd2
PH
6923/* A static approximation of TYPE with all type wrappers removed. */
6924
d2e4a39e
AS
6925static struct type *
6926static_unwrap_type (struct type *type)
14f9c5c9
AS
6927{
6928 if (ada_is_aligner_type (type))
6929 {
61ee279c 6930 struct type *type1 = TYPE_FIELD_TYPE (ada_check_typedef (type), 0);
14f9c5c9 6931 if (ada_type_name (type1) == NULL)
4c4b4cd2 6932 TYPE_NAME (type1) = ada_type_name (type);
14f9c5c9
AS
6933
6934 return static_unwrap_type (type1);
6935 }
d2e4a39e 6936 else
14f9c5c9 6937 {
d2e4a39e
AS
6938 struct type *raw_real_type = ada_get_base_type (type);
6939 if (raw_real_type == type)
4c4b4cd2 6940 return type;
14f9c5c9 6941 else
4c4b4cd2 6942 return to_static_fixed_type (raw_real_type);
14f9c5c9
AS
6943 }
6944}
6945
6946/* In some cases, incomplete and private types require
4c4b4cd2 6947 cross-references that are not resolved as records (for example,
14f9c5c9
AS
6948 type Foo;
6949 type FooP is access Foo;
6950 V: FooP;
6951 type Foo is array ...;
4c4b4cd2 6952 ). In these cases, since there is no mechanism for producing
14f9c5c9
AS
6953 cross-references to such types, we instead substitute for FooP a
6954 stub enumeration type that is nowhere resolved, and whose tag is
4c4b4cd2 6955 the name of the actual type. Call these types "non-record stubs". */
14f9c5c9
AS
6956
6957/* A type equivalent to TYPE that is not a non-record stub, if one
4c4b4cd2
PH
6958 exists, otherwise TYPE. */
6959
d2e4a39e 6960struct type *
61ee279c 6961ada_check_typedef (struct type *type)
14f9c5c9
AS
6962{
6963 CHECK_TYPEDEF (type);
6964 if (type == NULL || TYPE_CODE (type) != TYPE_CODE_ENUM
529cad9c 6965 || !TYPE_STUB (type)
14f9c5c9
AS
6966 || TYPE_TAG_NAME (type) == NULL)
6967 return type;
d2e4a39e 6968 else
14f9c5c9 6969 {
d2e4a39e
AS
6970 char *name = TYPE_TAG_NAME (type);
6971 struct type *type1 = ada_find_any_type (name);
14f9c5c9
AS
6972 return (type1 == NULL) ? type : type1;
6973 }
6974}
6975
6976/* A value representing the data at VALADDR/ADDRESS as described by
6977 type TYPE0, but with a standard (static-sized) type that correctly
6978 describes it. If VAL0 is not NULL and TYPE0 already is a standard
6979 type, then return VAL0 [this feature is simply to avoid redundant
4c4b4cd2 6980 creation of struct values]. */
14f9c5c9 6981
4c4b4cd2
PH
6982static struct value *
6983ada_to_fixed_value_create (struct type *type0, CORE_ADDR address,
6984 struct value *val0)
14f9c5c9 6985{
4c4b4cd2 6986 struct type *type = ada_to_fixed_type (type0, 0, address, NULL);
14f9c5c9
AS
6987 if (type == type0 && val0 != NULL)
6988 return val0;
d2e4a39e 6989 else
4c4b4cd2
PH
6990 return value_from_contents_and_address (type, 0, address);
6991}
6992
6993/* A value representing VAL, but with a standard (static-sized) type
6994 that correctly describes it. Does not necessarily create a new
6995 value. */
6996
6997static struct value *
6998ada_to_fixed_value (struct value *val)
6999{
df407dfe
AC
7000 return ada_to_fixed_value_create (value_type (val),
7001 VALUE_ADDRESS (val) + value_offset (val),
4c4b4cd2 7002 val);
14f9c5c9
AS
7003}
7004
4c4b4cd2 7005/* A value representing VAL, but with a standard (static-sized) type
14f9c5c9
AS
7006 chosen to approximate the real type of VAL as well as possible, but
7007 without consulting any runtime values. For Ada dynamic-sized
4c4b4cd2 7008 types, therefore, the type of the result is likely to be inaccurate. */
14f9c5c9 7009
d2e4a39e
AS
7010struct value *
7011ada_to_static_fixed_value (struct value *val)
14f9c5c9 7012{
d2e4a39e 7013 struct type *type =
df407dfe
AC
7014 to_static_fixed_type (static_unwrap_type (value_type (val)));
7015 if (type == value_type (val))
14f9c5c9
AS
7016 return val;
7017 else
4c4b4cd2 7018 return coerce_unspec_val_to_type (val, type);
14f9c5c9 7019}
d2e4a39e 7020\f
14f9c5c9 7021
14f9c5c9
AS
7022/* Attributes */
7023
4c4b4cd2
PH
7024/* Table mapping attribute numbers to names.
7025 NOTE: Keep up to date with enum ada_attribute definition in ada-lang.h. */
14f9c5c9 7026
d2e4a39e 7027static const char *attribute_names[] = {
14f9c5c9
AS
7028 "<?>",
7029
d2e4a39e 7030 "first",
14f9c5c9
AS
7031 "last",
7032 "length",
7033 "image",
14f9c5c9
AS
7034 "max",
7035 "min",
4c4b4cd2
PH
7036 "modulus",
7037 "pos",
7038 "size",
7039 "tag",
14f9c5c9 7040 "val",
14f9c5c9
AS
7041 0
7042};
7043
d2e4a39e 7044const char *
4c4b4cd2 7045ada_attribute_name (enum exp_opcode n)
14f9c5c9 7046{
4c4b4cd2
PH
7047 if (n >= OP_ATR_FIRST && n <= (int) OP_ATR_VAL)
7048 return attribute_names[n - OP_ATR_FIRST + 1];
14f9c5c9
AS
7049 else
7050 return attribute_names[0];
7051}
7052
4c4b4cd2 7053/* Evaluate the 'POS attribute applied to ARG. */
14f9c5c9 7054
4c4b4cd2
PH
7055static LONGEST
7056pos_atr (struct value *arg)
14f9c5c9 7057{
df407dfe 7058 struct type *type = value_type (arg);
14f9c5c9 7059
d2e4a39e 7060 if (!discrete_type_p (type))
323e0a4a 7061 error (_("'POS only defined on discrete types"));
14f9c5c9
AS
7062
7063 if (TYPE_CODE (type) == TYPE_CODE_ENUM)
7064 {
7065 int i;
7066 LONGEST v = value_as_long (arg);
7067
d2e4a39e 7068 for (i = 0; i < TYPE_NFIELDS (type); i += 1)
4c4b4cd2
PH
7069 {
7070 if (v == TYPE_FIELD_BITPOS (type, i))
7071 return i;
7072 }
323e0a4a 7073 error (_("enumeration value is invalid: can't find 'POS"));
14f9c5c9
AS
7074 }
7075 else
4c4b4cd2
PH
7076 return value_as_long (arg);
7077}
7078
7079static struct value *
7080value_pos_atr (struct value *arg)
7081{
72d5681a 7082 return value_from_longest (builtin_type_int, pos_atr (arg));
14f9c5c9
AS
7083}
7084
4c4b4cd2 7085/* Evaluate the TYPE'VAL attribute applied to ARG. */
14f9c5c9 7086
d2e4a39e
AS
7087static struct value *
7088value_val_atr (struct type *type, struct value *arg)
14f9c5c9 7089{
d2e4a39e 7090 if (!discrete_type_p (type))
323e0a4a 7091 error (_("'VAL only defined on discrete types"));
df407dfe 7092 if (!integer_type_p (value_type (arg)))
323e0a4a 7093 error (_("'VAL requires integral argument"));
14f9c5c9
AS
7094
7095 if (TYPE_CODE (type) == TYPE_CODE_ENUM)
7096 {
7097 long pos = value_as_long (arg);
7098 if (pos < 0 || pos >= TYPE_NFIELDS (type))
323e0a4a 7099 error (_("argument to 'VAL out of range"));
d2e4a39e 7100 return value_from_longest (type, TYPE_FIELD_BITPOS (type, pos));
14f9c5c9
AS
7101 }
7102 else
7103 return value_from_longest (type, value_as_long (arg));
7104}
14f9c5c9 7105\f
d2e4a39e 7106
4c4b4cd2 7107 /* Evaluation */
14f9c5c9 7108
4c4b4cd2
PH
7109/* True if TYPE appears to be an Ada character type.
7110 [At the moment, this is true only for Character and Wide_Character;
7111 It is a heuristic test that could stand improvement]. */
14f9c5c9 7112
d2e4a39e
AS
7113int
7114ada_is_character_type (struct type *type)
14f9c5c9 7115{
d2e4a39e
AS
7116 const char *name = ada_type_name (type);
7117 return
14f9c5c9 7118 name != NULL
d2e4a39e 7119 && (TYPE_CODE (type) == TYPE_CODE_CHAR
4c4b4cd2
PH
7120 || TYPE_CODE (type) == TYPE_CODE_INT
7121 || TYPE_CODE (type) == TYPE_CODE_RANGE)
7122 && (strcmp (name, "character") == 0
7123 || strcmp (name, "wide_character") == 0
7124 || strcmp (name, "unsigned char") == 0);
14f9c5c9
AS
7125}
7126
4c4b4cd2 7127/* True if TYPE appears to be an Ada string type. */
14f9c5c9
AS
7128
7129int
ebf56fd3 7130ada_is_string_type (struct type *type)
14f9c5c9 7131{
61ee279c 7132 type = ada_check_typedef (type);
d2e4a39e 7133 if (type != NULL
14f9c5c9 7134 && TYPE_CODE (type) != TYPE_CODE_PTR
76a01679
JB
7135 && (ada_is_simple_array_type (type)
7136 || ada_is_array_descriptor_type (type))
14f9c5c9
AS
7137 && ada_array_arity (type) == 1)
7138 {
7139 struct type *elttype = ada_array_element_type (type, 1);
7140
7141 return ada_is_character_type (elttype);
7142 }
d2e4a39e 7143 else
14f9c5c9
AS
7144 return 0;
7145}
7146
7147
7148/* True if TYPE is a struct type introduced by the compiler to force the
7149 alignment of a value. Such types have a single field with a
4c4b4cd2 7150 distinctive name. */
14f9c5c9
AS
7151
7152int
ebf56fd3 7153ada_is_aligner_type (struct type *type)
14f9c5c9 7154{
61ee279c 7155 type = ada_check_typedef (type);
714e53ab
PH
7156
7157 /* If we can find a parallel XVS type, then the XVS type should
7158 be used instead of this type. And hence, this is not an aligner
7159 type. */
7160 if (ada_find_parallel_type (type, "___XVS") != NULL)
7161 return 0;
7162
14f9c5c9 7163 return (TYPE_CODE (type) == TYPE_CODE_STRUCT
4c4b4cd2
PH
7164 && TYPE_NFIELDS (type) == 1
7165 && strcmp (TYPE_FIELD_NAME (type, 0), "F") == 0);
14f9c5c9
AS
7166}
7167
7168/* If there is an ___XVS-convention type parallel to SUBTYPE, return
4c4b4cd2 7169 the parallel type. */
14f9c5c9 7170
d2e4a39e
AS
7171struct type *
7172ada_get_base_type (struct type *raw_type)
14f9c5c9 7173{
d2e4a39e
AS
7174 struct type *real_type_namer;
7175 struct type *raw_real_type;
14f9c5c9
AS
7176
7177 if (raw_type == NULL || TYPE_CODE (raw_type) != TYPE_CODE_STRUCT)
7178 return raw_type;
7179
7180 real_type_namer = ada_find_parallel_type (raw_type, "___XVS");
d2e4a39e 7181 if (real_type_namer == NULL
14f9c5c9
AS
7182 || TYPE_CODE (real_type_namer) != TYPE_CODE_STRUCT
7183 || TYPE_NFIELDS (real_type_namer) != 1)
7184 return raw_type;
7185
7186 raw_real_type = ada_find_any_type (TYPE_FIELD_NAME (real_type_namer, 0));
d2e4a39e 7187 if (raw_real_type == NULL)
14f9c5c9
AS
7188 return raw_type;
7189 else
7190 return raw_real_type;
d2e4a39e 7191}
14f9c5c9 7192
4c4b4cd2 7193/* The type of value designated by TYPE, with all aligners removed. */
14f9c5c9 7194
d2e4a39e
AS
7195struct type *
7196ada_aligned_type (struct type *type)
14f9c5c9
AS
7197{
7198 if (ada_is_aligner_type (type))
7199 return ada_aligned_type (TYPE_FIELD_TYPE (type, 0));
7200 else
7201 return ada_get_base_type (type);
7202}
7203
7204
7205/* The address of the aligned value in an object at address VALADDR
4c4b4cd2 7206 having type TYPE. Assumes ada_is_aligner_type (TYPE). */
14f9c5c9 7207
fc1a4b47
AC
7208const gdb_byte *
7209ada_aligned_value_addr (struct type *type, const gdb_byte *valaddr)
14f9c5c9 7210{
d2e4a39e 7211 if (ada_is_aligner_type (type))
14f9c5c9 7212 return ada_aligned_value_addr (TYPE_FIELD_TYPE (type, 0),
4c4b4cd2
PH
7213 valaddr +
7214 TYPE_FIELD_BITPOS (type,
7215 0) / TARGET_CHAR_BIT);
14f9c5c9
AS
7216 else
7217 return valaddr;
7218}
7219
4c4b4cd2
PH
7220
7221
14f9c5c9 7222/* The printed representation of an enumeration literal with encoded
4c4b4cd2 7223 name NAME. The value is good to the next call of ada_enum_name. */
d2e4a39e
AS
7224const char *
7225ada_enum_name (const char *name)
14f9c5c9 7226{
4c4b4cd2
PH
7227 static char *result;
7228 static size_t result_len = 0;
d2e4a39e 7229 char *tmp;
14f9c5c9 7230
4c4b4cd2
PH
7231 /* First, unqualify the enumeration name:
7232 1. Search for the last '.' character. If we find one, then skip
76a01679
JB
7233 all the preceeding characters, the unqualified name starts
7234 right after that dot.
4c4b4cd2 7235 2. Otherwise, we may be debugging on a target where the compiler
76a01679
JB
7236 translates dots into "__". Search forward for double underscores,
7237 but stop searching when we hit an overloading suffix, which is
7238 of the form "__" followed by digits. */
4c4b4cd2 7239
c3e5cd34
PH
7240 tmp = strrchr (name, '.');
7241 if (tmp != NULL)
4c4b4cd2
PH
7242 name = tmp + 1;
7243 else
14f9c5c9 7244 {
4c4b4cd2
PH
7245 while ((tmp = strstr (name, "__")) != NULL)
7246 {
7247 if (isdigit (tmp[2]))
7248 break;
7249 else
7250 name = tmp + 2;
7251 }
14f9c5c9
AS
7252 }
7253
7254 if (name[0] == 'Q')
7255 {
14f9c5c9
AS
7256 int v;
7257 if (name[1] == 'U' || name[1] == 'W')
4c4b4cd2
PH
7258 {
7259 if (sscanf (name + 2, "%x", &v) != 1)
7260 return name;
7261 }
14f9c5c9 7262 else
4c4b4cd2 7263 return name;
14f9c5c9 7264
4c4b4cd2 7265 GROW_VECT (result, result_len, 16);
14f9c5c9 7266 if (isascii (v) && isprint (v))
4c4b4cd2 7267 sprintf (result, "'%c'", v);
14f9c5c9 7268 else if (name[1] == 'U')
4c4b4cd2 7269 sprintf (result, "[\"%02x\"]", v);
14f9c5c9 7270 else
4c4b4cd2 7271 sprintf (result, "[\"%04x\"]", v);
14f9c5c9
AS
7272
7273 return result;
7274 }
d2e4a39e 7275 else
4c4b4cd2 7276 {
c3e5cd34
PH
7277 tmp = strstr (name, "__");
7278 if (tmp == NULL)
7279 tmp = strstr (name, "$");
7280 if (tmp != NULL)
4c4b4cd2
PH
7281 {
7282 GROW_VECT (result, result_len, tmp - name + 1);
7283 strncpy (result, name, tmp - name);
7284 result[tmp - name] = '\0';
7285 return result;
7286 }
7287
7288 return name;
7289 }
14f9c5c9
AS
7290}
7291
d2e4a39e 7292static struct value *
ebf56fd3 7293evaluate_subexp (struct type *expect_type, struct expression *exp, int *pos,
4c4b4cd2 7294 enum noside noside)
14f9c5c9 7295{
76a01679 7296 return (*exp->language_defn->la_exp_desc->evaluate_exp)
4c4b4cd2 7297 (expect_type, exp, pos, noside);
14f9c5c9
AS
7298}
7299
7300/* Evaluate the subexpression of EXP starting at *POS as for
7301 evaluate_type, updating *POS to point just past the evaluated
4c4b4cd2 7302 expression. */
14f9c5c9 7303
d2e4a39e
AS
7304static struct value *
7305evaluate_subexp_type (struct expression *exp, int *pos)
14f9c5c9 7306{
4c4b4cd2 7307 return (*exp->language_defn->la_exp_desc->evaluate_exp)
14f9c5c9
AS
7308 (NULL_TYPE, exp, pos, EVAL_AVOID_SIDE_EFFECTS);
7309}
7310
7311/* If VAL is wrapped in an aligner or subtype wrapper, return the
4c4b4cd2 7312 value it wraps. */
14f9c5c9 7313
d2e4a39e
AS
7314static struct value *
7315unwrap_value (struct value *val)
14f9c5c9 7316{
df407dfe 7317 struct type *type = ada_check_typedef (value_type (val));
14f9c5c9
AS
7318 if (ada_is_aligner_type (type))
7319 {
d2e4a39e 7320 struct value *v = value_struct_elt (&val, NULL, "F",
4c4b4cd2 7321 NULL, "internal structure");
df407dfe 7322 struct type *val_type = ada_check_typedef (value_type (v));
14f9c5c9 7323 if (ada_type_name (val_type) == NULL)
4c4b4cd2 7324 TYPE_NAME (val_type) = ada_type_name (type);
14f9c5c9
AS
7325
7326 return unwrap_value (v);
7327 }
d2e4a39e 7328 else
14f9c5c9 7329 {
d2e4a39e 7330 struct type *raw_real_type =
61ee279c 7331 ada_check_typedef (ada_get_base_type (type));
d2e4a39e 7332
14f9c5c9 7333 if (type == raw_real_type)
4c4b4cd2 7334 return val;
14f9c5c9 7335
d2e4a39e 7336 return
4c4b4cd2
PH
7337 coerce_unspec_val_to_type
7338 (val, ada_to_fixed_type (raw_real_type, 0,
df407dfe 7339 VALUE_ADDRESS (val) + value_offset (val),
4c4b4cd2 7340 NULL));
14f9c5c9
AS
7341 }
7342}
d2e4a39e
AS
7343
7344static struct value *
7345cast_to_fixed (struct type *type, struct value *arg)
14f9c5c9
AS
7346{
7347 LONGEST val;
7348
df407dfe 7349 if (type == value_type (arg))
14f9c5c9 7350 return arg;
df407dfe 7351 else if (ada_is_fixed_point_type (value_type (arg)))
d2e4a39e 7352 val = ada_float_to_fixed (type,
df407dfe 7353 ada_fixed_to_float (value_type (arg),
4c4b4cd2 7354 value_as_long (arg)));
d2e4a39e 7355 else
14f9c5c9 7356 {
d2e4a39e 7357 DOUBLEST argd =
4c4b4cd2 7358 value_as_double (value_cast (builtin_type_double, value_copy (arg)));
14f9c5c9
AS
7359 val = ada_float_to_fixed (type, argd);
7360 }
7361
7362 return value_from_longest (type, val);
7363}
7364
d2e4a39e
AS
7365static struct value *
7366cast_from_fixed_to_double (struct value *arg)
14f9c5c9 7367{
df407dfe 7368 DOUBLEST val = ada_fixed_to_float (value_type (arg),
4c4b4cd2 7369 value_as_long (arg));
14f9c5c9
AS
7370 return value_from_double (builtin_type_double, val);
7371}
7372
4c4b4cd2
PH
7373/* Coerce VAL as necessary for assignment to an lval of type TYPE, and
7374 return the converted value. */
7375
d2e4a39e
AS
7376static struct value *
7377coerce_for_assign (struct type *type, struct value *val)
14f9c5c9 7378{
df407dfe 7379 struct type *type2 = value_type (val);
14f9c5c9
AS
7380 if (type == type2)
7381 return val;
7382
61ee279c
PH
7383 type2 = ada_check_typedef (type2);
7384 type = ada_check_typedef (type);
14f9c5c9 7385
d2e4a39e
AS
7386 if (TYPE_CODE (type2) == TYPE_CODE_PTR
7387 && TYPE_CODE (type) == TYPE_CODE_ARRAY)
14f9c5c9
AS
7388 {
7389 val = ada_value_ind (val);
df407dfe 7390 type2 = value_type (val);
14f9c5c9
AS
7391 }
7392
d2e4a39e 7393 if (TYPE_CODE (type2) == TYPE_CODE_ARRAY
14f9c5c9
AS
7394 && TYPE_CODE (type) == TYPE_CODE_ARRAY)
7395 {
7396 if (TYPE_LENGTH (type2) != TYPE_LENGTH (type)
4c4b4cd2
PH
7397 || TYPE_LENGTH (TYPE_TARGET_TYPE (type2))
7398 != TYPE_LENGTH (TYPE_TARGET_TYPE (type2)))
323e0a4a 7399 error (_("Incompatible types in assignment"));
04624583 7400 deprecated_set_value_type (val, type);
14f9c5c9 7401 }
d2e4a39e 7402 return val;
14f9c5c9
AS
7403}
7404
4c4b4cd2
PH
7405static struct value *
7406ada_value_binop (struct value *arg1, struct value *arg2, enum exp_opcode op)
7407{
7408 struct value *val;
7409 struct type *type1, *type2;
7410 LONGEST v, v1, v2;
7411
994b9211
AC
7412 arg1 = coerce_ref (arg1);
7413 arg2 = coerce_ref (arg2);
df407dfe
AC
7414 type1 = base_type (ada_check_typedef (value_type (arg1)));
7415 type2 = base_type (ada_check_typedef (value_type (arg2)));
4c4b4cd2 7416
76a01679
JB
7417 if (TYPE_CODE (type1) != TYPE_CODE_INT
7418 || TYPE_CODE (type2) != TYPE_CODE_INT)
4c4b4cd2
PH
7419 return value_binop (arg1, arg2, op);
7420
76a01679 7421 switch (op)
4c4b4cd2
PH
7422 {
7423 case BINOP_MOD:
7424 case BINOP_DIV:
7425 case BINOP_REM:
7426 break;
7427 default:
7428 return value_binop (arg1, arg2, op);
7429 }
7430
7431 v2 = value_as_long (arg2);
7432 if (v2 == 0)
323e0a4a 7433 error (_("second operand of %s must not be zero."), op_string (op));
4c4b4cd2
PH
7434
7435 if (TYPE_UNSIGNED (type1) || op == BINOP_MOD)
7436 return value_binop (arg1, arg2, op);
7437
7438 v1 = value_as_long (arg1);
7439 switch (op)
7440 {
7441 case BINOP_DIV:
7442 v = v1 / v2;
76a01679
JB
7443 if (!TRUNCATION_TOWARDS_ZERO && v1 * (v1 % v2) < 0)
7444 v += v > 0 ? -1 : 1;
4c4b4cd2
PH
7445 break;
7446 case BINOP_REM:
7447 v = v1 % v2;
76a01679
JB
7448 if (v * v1 < 0)
7449 v -= v2;
4c4b4cd2
PH
7450 break;
7451 default:
7452 /* Should not reach this point. */
7453 v = 0;
7454 }
7455
7456 val = allocate_value (type1);
990a07ab 7457 store_unsigned_integer (value_contents_raw (val),
df407dfe 7458 TYPE_LENGTH (value_type (val)), v);
4c4b4cd2
PH
7459 return val;
7460}
7461
7462static int
7463ada_value_equal (struct value *arg1, struct value *arg2)
7464{
df407dfe
AC
7465 if (ada_is_direct_array_type (value_type (arg1))
7466 || ada_is_direct_array_type (value_type (arg2)))
4c4b4cd2
PH
7467 {
7468 arg1 = ada_coerce_to_simple_array (arg1);
7469 arg2 = ada_coerce_to_simple_array (arg2);
df407dfe
AC
7470 if (TYPE_CODE (value_type (arg1)) != TYPE_CODE_ARRAY
7471 || TYPE_CODE (value_type (arg2)) != TYPE_CODE_ARRAY)
323e0a4a 7472 error (_("Attempt to compare array with non-array"));
4c4b4cd2 7473 /* FIXME: The following works only for types whose
76a01679
JB
7474 representations use all bits (no padding or undefined bits)
7475 and do not have user-defined equality. */
7476 return
df407dfe 7477 TYPE_LENGTH (value_type (arg1)) == TYPE_LENGTH (value_type (arg2))
0fd88904 7478 && memcmp (value_contents (arg1), value_contents (arg2),
df407dfe 7479 TYPE_LENGTH (value_type (arg1))) == 0;
4c4b4cd2
PH
7480 }
7481 return value_equal (arg1, arg2);
7482}
7483
52ce6436
PH
7484/* Total number of component associations in the aggregate starting at
7485 index PC in EXP. Assumes that index PC is the start of an
7486 OP_AGGREGATE. */
7487
7488static int
7489num_component_specs (struct expression *exp, int pc)
7490{
7491 int n, m, i;
7492 m = exp->elts[pc + 1].longconst;
7493 pc += 3;
7494 n = 0;
7495 for (i = 0; i < m; i += 1)
7496 {
7497 switch (exp->elts[pc].opcode)
7498 {
7499 default:
7500 n += 1;
7501 break;
7502 case OP_CHOICES:
7503 n += exp->elts[pc + 1].longconst;
7504 break;
7505 }
7506 ada_evaluate_subexp (NULL, exp, &pc, EVAL_SKIP);
7507 }
7508 return n;
7509}
7510
7511/* Assign the result of evaluating EXP starting at *POS to the INDEXth
7512 component of LHS (a simple array or a record), updating *POS past
7513 the expression, assuming that LHS is contained in CONTAINER. Does
7514 not modify the inferior's memory, nor does it modify LHS (unless
7515 LHS == CONTAINER). */
7516
7517static void
7518assign_component (struct value *container, struct value *lhs, LONGEST index,
7519 struct expression *exp, int *pos)
7520{
7521 struct value *mark = value_mark ();
7522 struct value *elt;
7523 if (TYPE_CODE (value_type (lhs)) == TYPE_CODE_ARRAY)
7524 {
7525 struct value *index_val = value_from_longest (builtin_type_int, index);
7526 elt = unwrap_value (ada_value_subscript (lhs, 1, &index_val));
7527 }
7528 else
7529 {
7530 elt = ada_index_struct_field (index, lhs, 0, value_type (lhs));
7531 elt = ada_to_fixed_value (unwrap_value (elt));
7532 }
7533
7534 if (exp->elts[*pos].opcode == OP_AGGREGATE)
7535 assign_aggregate (container, elt, exp, pos, EVAL_NORMAL);
7536 else
7537 value_assign_to_component (container, elt,
7538 ada_evaluate_subexp (NULL, exp, pos,
7539 EVAL_NORMAL));
7540
7541 value_free_to_mark (mark);
7542}
7543
7544/* Assuming that LHS represents an lvalue having a record or array
7545 type, and EXP->ELTS[*POS] is an OP_AGGREGATE, evaluate an assignment
7546 of that aggregate's value to LHS, advancing *POS past the
7547 aggregate. NOSIDE is as for evaluate_subexp. CONTAINER is an
7548 lvalue containing LHS (possibly LHS itself). Does not modify
7549 the inferior's memory, nor does it modify the contents of
7550 LHS (unless == CONTAINER). Returns the modified CONTAINER. */
7551
7552static struct value *
7553assign_aggregate (struct value *container,
7554 struct value *lhs, struct expression *exp,
7555 int *pos, enum noside noside)
7556{
7557 struct type *lhs_type;
7558 int n = exp->elts[*pos+1].longconst;
7559 LONGEST low_index, high_index;
7560 int num_specs;
7561 LONGEST *indices;
7562 int max_indices, num_indices;
7563 int is_array_aggregate;
7564 int i;
7565 struct value *mark = value_mark ();
7566
7567 *pos += 3;
7568 if (noside != EVAL_NORMAL)
7569 {
7570 int i;
7571 for (i = 0; i < n; i += 1)
7572 ada_evaluate_subexp (NULL, exp, pos, noside);
7573 return container;
7574 }
7575
7576 container = ada_coerce_ref (container);
7577 if (ada_is_direct_array_type (value_type (container)))
7578 container = ada_coerce_to_simple_array (container);
7579 lhs = ada_coerce_ref (lhs);
7580 if (!deprecated_value_modifiable (lhs))
7581 error (_("Left operand of assignment is not a modifiable lvalue."));
7582
7583 lhs_type = value_type (lhs);
7584 if (ada_is_direct_array_type (lhs_type))
7585 {
7586 lhs = ada_coerce_to_simple_array (lhs);
7587 lhs_type = value_type (lhs);
7588 low_index = TYPE_ARRAY_LOWER_BOUND_VALUE (lhs_type);
7589 high_index = TYPE_ARRAY_UPPER_BOUND_VALUE (lhs_type);
7590 is_array_aggregate = 1;
7591 }
7592 else if (TYPE_CODE (lhs_type) == TYPE_CODE_STRUCT)
7593 {
7594 low_index = 0;
7595 high_index = num_visible_fields (lhs_type) - 1;
7596 is_array_aggregate = 0;
7597 }
7598 else
7599 error (_("Left-hand side must be array or record."));
7600
7601 num_specs = num_component_specs (exp, *pos - 3);
7602 max_indices = 4 * num_specs + 4;
7603 indices = alloca (max_indices * sizeof (indices[0]));
7604 indices[0] = indices[1] = low_index - 1;
7605 indices[2] = indices[3] = high_index + 1;
7606 num_indices = 4;
7607
7608 for (i = 0; i < n; i += 1)
7609 {
7610 switch (exp->elts[*pos].opcode)
7611 {
7612 case OP_CHOICES:
7613 aggregate_assign_from_choices (container, lhs, exp, pos, indices,
7614 &num_indices, max_indices,
7615 low_index, high_index);
7616 break;
7617 case OP_POSITIONAL:
7618 aggregate_assign_positional (container, lhs, exp, pos, indices,
7619 &num_indices, max_indices,
7620 low_index, high_index);
7621 break;
7622 case OP_OTHERS:
7623 if (i != n-1)
7624 error (_("Misplaced 'others' clause"));
7625 aggregate_assign_others (container, lhs, exp, pos, indices,
7626 num_indices, low_index, high_index);
7627 break;
7628 default:
7629 error (_("Internal error: bad aggregate clause"));
7630 }
7631 }
7632
7633 return container;
7634}
7635
7636/* Assign into the component of LHS indexed by the OP_POSITIONAL
7637 construct at *POS, updating *POS past the construct, given that
7638 the positions are relative to lower bound LOW, where HIGH is the
7639 upper bound. Record the position in INDICES[0 .. MAX_INDICES-1]
7640 updating *NUM_INDICES as needed. CONTAINER is as for
7641 assign_aggregate. */
7642static void
7643aggregate_assign_positional (struct value *container,
7644 struct value *lhs, struct expression *exp,
7645 int *pos, LONGEST *indices, int *num_indices,
7646 int max_indices, LONGEST low, LONGEST high)
7647{
7648 LONGEST ind = longest_to_int (exp->elts[*pos + 1].longconst) + low;
7649
7650 if (ind - 1 == high)
e1d5a0d2 7651 warning (_("Extra components in aggregate ignored."));
52ce6436
PH
7652 if (ind <= high)
7653 {
7654 add_component_interval (ind, ind, indices, num_indices, max_indices);
7655 *pos += 3;
7656 assign_component (container, lhs, ind, exp, pos);
7657 }
7658 else
7659 ada_evaluate_subexp (NULL, exp, pos, EVAL_SKIP);
7660}
7661
7662/* Assign into the components of LHS indexed by the OP_CHOICES
7663 construct at *POS, updating *POS past the construct, given that
7664 the allowable indices are LOW..HIGH. Record the indices assigned
7665 to in INDICES[0 .. MAX_INDICES-1], updating *NUM_INDICES as
7666 needed. CONTAINER is as for assign_aggregate. */
7667static void
7668aggregate_assign_from_choices (struct value *container,
7669 struct value *lhs, struct expression *exp,
7670 int *pos, LONGEST *indices, int *num_indices,
7671 int max_indices, LONGEST low, LONGEST high)
7672{
7673 int j;
7674 int n_choices = longest_to_int (exp->elts[*pos+1].longconst);
7675 int choice_pos, expr_pc;
7676 int is_array = ada_is_direct_array_type (value_type (lhs));
7677
7678 choice_pos = *pos += 3;
7679
7680 for (j = 0; j < n_choices; j += 1)
7681 ada_evaluate_subexp (NULL, exp, pos, EVAL_SKIP);
7682 expr_pc = *pos;
7683 ada_evaluate_subexp (NULL, exp, pos, EVAL_SKIP);
7684
7685 for (j = 0; j < n_choices; j += 1)
7686 {
7687 LONGEST lower, upper;
7688 enum exp_opcode op = exp->elts[choice_pos].opcode;
7689 if (op == OP_DISCRETE_RANGE)
7690 {
7691 choice_pos += 1;
7692 lower = value_as_long (ada_evaluate_subexp (NULL, exp, pos,
7693 EVAL_NORMAL));
7694 upper = value_as_long (ada_evaluate_subexp (NULL, exp, pos,
7695 EVAL_NORMAL));
7696 }
7697 else if (is_array)
7698 {
7699 lower = value_as_long (ada_evaluate_subexp (NULL, exp, &choice_pos,
7700 EVAL_NORMAL));
7701 upper = lower;
7702 }
7703 else
7704 {
7705 int ind;
7706 char *name;
7707 switch (op)
7708 {
7709 case OP_NAME:
7710 name = &exp->elts[choice_pos + 2].string;
7711 break;
7712 case OP_VAR_VALUE:
7713 name = SYMBOL_NATURAL_NAME (exp->elts[choice_pos + 2].symbol);
7714 break;
7715 default:
7716 error (_("Invalid record component association."));
7717 }
7718 ada_evaluate_subexp (NULL, exp, &choice_pos, EVAL_SKIP);
7719 ind = 0;
7720 if (! find_struct_field (name, value_type (lhs), 0,
7721 NULL, NULL, NULL, NULL, &ind))
7722 error (_("Unknown component name: %s."), name);
7723 lower = upper = ind;
7724 }
7725
7726 if (lower <= upper && (lower < low || upper > high))
7727 error (_("Index in component association out of bounds."));
7728
7729 add_component_interval (lower, upper, indices, num_indices,
7730 max_indices);
7731 while (lower <= upper)
7732 {
7733 int pos1;
7734 pos1 = expr_pc;
7735 assign_component (container, lhs, lower, exp, &pos1);
7736 lower += 1;
7737 }
7738 }
7739}
7740
7741/* Assign the value of the expression in the OP_OTHERS construct in
7742 EXP at *POS into the components of LHS indexed from LOW .. HIGH that
7743 have not been previously assigned. The index intervals already assigned
7744 are in INDICES[0 .. NUM_INDICES-1]. Updates *POS to after the
7745 OP_OTHERS clause. CONTAINER is as for assign_aggregate*/
7746static void
7747aggregate_assign_others (struct value *container,
7748 struct value *lhs, struct expression *exp,
7749 int *pos, LONGEST *indices, int num_indices,
7750 LONGEST low, LONGEST high)
7751{
7752 int i;
7753 int expr_pc = *pos+1;
7754
7755 for (i = 0; i < num_indices - 2; i += 2)
7756 {
7757 LONGEST ind;
7758 for (ind = indices[i + 1] + 1; ind < indices[i + 2]; ind += 1)
7759 {
7760 int pos;
7761 pos = expr_pc;
7762 assign_component (container, lhs, ind, exp, &pos);
7763 }
7764 }
7765 ada_evaluate_subexp (NULL, exp, pos, EVAL_SKIP);
7766}
7767
7768/* Add the interval [LOW .. HIGH] to the sorted set of intervals
7769 [ INDICES[0] .. INDICES[1] ],..., [ INDICES[*SIZE-2] .. INDICES[*SIZE-1] ],
7770 modifying *SIZE as needed. It is an error if *SIZE exceeds
7771 MAX_SIZE. The resulting intervals do not overlap. */
7772static void
7773add_component_interval (LONGEST low, LONGEST high,
7774 LONGEST* indices, int *size, int max_size)
7775{
7776 int i, j;
7777 for (i = 0; i < *size; i += 2) {
7778 if (high >= indices[i] && low <= indices[i + 1])
7779 {
7780 int kh;
7781 for (kh = i + 2; kh < *size; kh += 2)
7782 if (high < indices[kh])
7783 break;
7784 if (low < indices[i])
7785 indices[i] = low;
7786 indices[i + 1] = indices[kh - 1];
7787 if (high > indices[i + 1])
7788 indices[i + 1] = high;
7789 memcpy (indices + i + 2, indices + kh, *size - kh);
7790 *size -= kh - i - 2;
7791 return;
7792 }
7793 else if (high < indices[i])
7794 break;
7795 }
7796
7797 if (*size == max_size)
7798 error (_("Internal error: miscounted aggregate components."));
7799 *size += 2;
7800 for (j = *size-1; j >= i+2; j -= 1)
7801 indices[j] = indices[j - 2];
7802 indices[i] = low;
7803 indices[i + 1] = high;
7804}
7805
7806static struct value *
ebf56fd3 7807ada_evaluate_subexp (struct type *expect_type, struct expression *exp,
4c4b4cd2 7808 int *pos, enum noside noside)
14f9c5c9
AS
7809{
7810 enum exp_opcode op;
14f9c5c9
AS
7811 int tem, tem2, tem3;
7812 int pc;
7813 struct value *arg1 = NULL, *arg2 = NULL, *arg3;
7814 struct type *type;
52ce6436 7815 int nargs, oplen;
d2e4a39e 7816 struct value **argvec;
14f9c5c9 7817
d2e4a39e
AS
7818 pc = *pos;
7819 *pos += 1;
14f9c5c9
AS
7820 op = exp->elts[pc].opcode;
7821
d2e4a39e 7822 switch (op)
14f9c5c9
AS
7823 {
7824 default:
7825 *pos -= 1;
d2e4a39e 7826 return
4c4b4cd2
PH
7827 unwrap_value (evaluate_subexp_standard
7828 (expect_type, exp, pos, noside));
7829
7830 case OP_STRING:
7831 {
76a01679
JB
7832 struct value *result;
7833 *pos -= 1;
7834 result = evaluate_subexp_standard (expect_type, exp, pos, noside);
7835 /* The result type will have code OP_STRING, bashed there from
7836 OP_ARRAY. Bash it back. */
df407dfe
AC
7837 if (TYPE_CODE (value_type (result)) == TYPE_CODE_STRING)
7838 TYPE_CODE (value_type (result)) = TYPE_CODE_ARRAY;
76a01679 7839 return result;
4c4b4cd2 7840 }
14f9c5c9
AS
7841
7842 case UNOP_CAST:
7843 (*pos) += 2;
7844 type = exp->elts[pc + 1].type;
7845 arg1 = evaluate_subexp (type, exp, pos, noside);
7846 if (noside == EVAL_SKIP)
4c4b4cd2 7847 goto nosideret;
df407dfe 7848 if (type != ada_check_typedef (value_type (arg1)))
4c4b4cd2
PH
7849 {
7850 if (ada_is_fixed_point_type (type))
7851 arg1 = cast_to_fixed (type, arg1);
df407dfe 7852 else if (ada_is_fixed_point_type (value_type (arg1)))
4c4b4cd2
PH
7853 arg1 = value_cast (type, cast_from_fixed_to_double (arg1));
7854 else if (VALUE_LVAL (arg1) == lval_memory)
7855 {
7856 /* This is in case of the really obscure (and undocumented,
7857 but apparently expected) case of (Foo) Bar.all, where Bar
7858 is an integer constant and Foo is a dynamic-sized type.
7859 If we don't do this, ARG1 will simply be relabeled with
7860 TYPE. */
7861 if (noside == EVAL_AVOID_SIDE_EFFECTS)
7862 return value_zero (to_static_fixed_type (type), not_lval);
7863 arg1 =
7864 ada_to_fixed_value_create
df407dfe 7865 (type, VALUE_ADDRESS (arg1) + value_offset (arg1), 0);
4c4b4cd2
PH
7866 }
7867 else
7868 arg1 = value_cast (type, arg1);
7869 }
14f9c5c9
AS
7870 return arg1;
7871
4c4b4cd2
PH
7872 case UNOP_QUAL:
7873 (*pos) += 2;
7874 type = exp->elts[pc + 1].type;
7875 return ada_evaluate_subexp (type, exp, pos, noside);
7876
14f9c5c9
AS
7877 case BINOP_ASSIGN:
7878 arg1 = evaluate_subexp (NULL_TYPE, exp, pos, noside);
52ce6436
PH
7879 if (exp->elts[*pos].opcode == OP_AGGREGATE)
7880 {
7881 arg1 = assign_aggregate (arg1, arg1, exp, pos, noside);
7882 if (noside == EVAL_SKIP || noside == EVAL_AVOID_SIDE_EFFECTS)
7883 return arg1;
7884 return ada_value_assign (arg1, arg1);
7885 }
df407dfe 7886 arg2 = evaluate_subexp (value_type (arg1), exp, pos, noside);
14f9c5c9 7887 if (noside == EVAL_SKIP || noside == EVAL_AVOID_SIDE_EFFECTS)
4c4b4cd2 7888 return arg1;
df407dfe
AC
7889 if (ada_is_fixed_point_type (value_type (arg1)))
7890 arg2 = cast_to_fixed (value_type (arg1), arg2);
7891 else if (ada_is_fixed_point_type (value_type (arg2)))
76a01679 7892 error
323e0a4a 7893 (_("Fixed-point values must be assigned to fixed-point variables"));
d2e4a39e 7894 else
df407dfe 7895 arg2 = coerce_for_assign (value_type (arg1), arg2);
4c4b4cd2 7896 return ada_value_assign (arg1, arg2);
14f9c5c9
AS
7897
7898 case BINOP_ADD:
7899 arg1 = evaluate_subexp_with_coercion (exp, pos, noside);
7900 arg2 = evaluate_subexp_with_coercion (exp, pos, noside);
7901 if (noside == EVAL_SKIP)
4c4b4cd2 7902 goto nosideret;
df407dfe
AC
7903 if ((ada_is_fixed_point_type (value_type (arg1))
7904 || ada_is_fixed_point_type (value_type (arg2)))
7905 && value_type (arg1) != value_type (arg2))
323e0a4a 7906 error (_("Operands of fixed-point addition must have the same type"));
df407dfe 7907 return value_cast (value_type (arg1), value_add (arg1, arg2));
14f9c5c9
AS
7908
7909 case BINOP_SUB:
7910 arg1 = evaluate_subexp_with_coercion (exp, pos, noside);
7911 arg2 = evaluate_subexp_with_coercion (exp, pos, noside);
7912 if (noside == EVAL_SKIP)
4c4b4cd2 7913 goto nosideret;
df407dfe
AC
7914 if ((ada_is_fixed_point_type (value_type (arg1))
7915 || ada_is_fixed_point_type (value_type (arg2)))
7916 && value_type (arg1) != value_type (arg2))
323e0a4a 7917 error (_("Operands of fixed-point subtraction must have the same type"));
df407dfe 7918 return value_cast (value_type (arg1), value_sub (arg1, arg2));
14f9c5c9
AS
7919
7920 case BINOP_MUL:
7921 case BINOP_DIV:
7922 arg1 = evaluate_subexp (NULL_TYPE, exp, pos, noside);
7923 arg2 = evaluate_subexp (NULL_TYPE, exp, pos, noside);
7924 if (noside == EVAL_SKIP)
4c4b4cd2
PH
7925 goto nosideret;
7926 else if (noside == EVAL_AVOID_SIDE_EFFECTS
76a01679 7927 && (op == BINOP_DIV || op == BINOP_REM || op == BINOP_MOD))
df407dfe 7928 return value_zero (value_type (arg1), not_lval);
14f9c5c9 7929 else
4c4b4cd2 7930 {
df407dfe 7931 if (ada_is_fixed_point_type (value_type (arg1)))
4c4b4cd2 7932 arg1 = cast_from_fixed_to_double (arg1);
df407dfe 7933 if (ada_is_fixed_point_type (value_type (arg2)))
4c4b4cd2
PH
7934 arg2 = cast_from_fixed_to_double (arg2);
7935 return ada_value_binop (arg1, arg2, op);
7936 }
7937
7938 case BINOP_REM:
7939 case BINOP_MOD:
7940 arg1 = evaluate_subexp (NULL_TYPE, exp, pos, noside);
7941 arg2 = evaluate_subexp (NULL_TYPE, exp, pos, noside);
7942 if (noside == EVAL_SKIP)
76a01679 7943 goto nosideret;
4c4b4cd2 7944 else if (noside == EVAL_AVOID_SIDE_EFFECTS
76a01679 7945 && (op == BINOP_DIV || op == BINOP_REM || op == BINOP_MOD))
df407dfe 7946 return value_zero (value_type (arg1), not_lval);
14f9c5c9 7947 else
76a01679 7948 return ada_value_binop (arg1, arg2, op);
14f9c5c9 7949
4c4b4cd2
PH
7950 case BINOP_EQUAL:
7951 case BINOP_NOTEQUAL:
14f9c5c9 7952 arg1 = evaluate_subexp (NULL_TYPE, exp, pos, noside);
df407dfe 7953 arg2 = evaluate_subexp (value_type (arg1), exp, pos, noside);
14f9c5c9 7954 if (noside == EVAL_SKIP)
76a01679 7955 goto nosideret;
4c4b4cd2 7956 if (noside == EVAL_AVOID_SIDE_EFFECTS)
76a01679 7957 tem = 0;
4c4b4cd2 7958 else
76a01679 7959 tem = ada_value_equal (arg1, arg2);
4c4b4cd2 7960 if (op == BINOP_NOTEQUAL)
76a01679 7961 tem = !tem;
4c4b4cd2
PH
7962 return value_from_longest (LA_BOOL_TYPE, (LONGEST) tem);
7963
7964 case UNOP_NEG:
7965 arg1 = evaluate_subexp (NULL_TYPE, exp, pos, noside);
7966 if (noside == EVAL_SKIP)
7967 goto nosideret;
df407dfe
AC
7968 else if (ada_is_fixed_point_type (value_type (arg1)))
7969 return value_cast (value_type (arg1), value_neg (arg1));
14f9c5c9 7970 else
4c4b4cd2
PH
7971 return value_neg (arg1);
7972
14f9c5c9
AS
7973 case OP_VAR_VALUE:
7974 *pos -= 1;
7975 if (noside == EVAL_SKIP)
4c4b4cd2
PH
7976 {
7977 *pos += 4;
7978 goto nosideret;
7979 }
7980 else if (SYMBOL_DOMAIN (exp->elts[pc + 2].symbol) == UNDEF_DOMAIN)
76a01679
JB
7981 /* Only encountered when an unresolved symbol occurs in a
7982 context other than a function call, in which case, it is
52ce6436 7983 invalid. */
323e0a4a 7984 error (_("Unexpected unresolved symbol, %s, during evaluation"),
4c4b4cd2 7985 SYMBOL_PRINT_NAME (exp->elts[pc + 2].symbol));
14f9c5c9 7986 else if (noside == EVAL_AVOID_SIDE_EFFECTS)
4c4b4cd2
PH
7987 {
7988 *pos += 4;
7989 return value_zero
7990 (to_static_fixed_type
7991 (static_unwrap_type (SYMBOL_TYPE (exp->elts[pc + 2].symbol))),
7992 not_lval);
7993 }
d2e4a39e 7994 else
4c4b4cd2
PH
7995 {
7996 arg1 =
7997 unwrap_value (evaluate_subexp_standard
7998 (expect_type, exp, pos, noside));
7999 return ada_to_fixed_value (arg1);
8000 }
8001
8002 case OP_FUNCALL:
8003 (*pos) += 2;
8004
8005 /* Allocate arg vector, including space for the function to be
8006 called in argvec[0] and a terminating NULL. */
8007 nargs = longest_to_int (exp->elts[pc + 1].longconst);
8008 argvec =
8009 (struct value **) alloca (sizeof (struct value *) * (nargs + 2));
8010
8011 if (exp->elts[*pos].opcode == OP_VAR_VALUE
76a01679 8012 && SYMBOL_DOMAIN (exp->elts[pc + 5].symbol) == UNDEF_DOMAIN)
323e0a4a 8013 error (_("Unexpected unresolved symbol, %s, during evaluation"),
4c4b4cd2
PH
8014 SYMBOL_PRINT_NAME (exp->elts[pc + 5].symbol));
8015 else
8016 {
8017 for (tem = 0; tem <= nargs; tem += 1)
8018 argvec[tem] = evaluate_subexp (NULL_TYPE, exp, pos, noside);
8019 argvec[tem] = 0;
8020
8021 if (noside == EVAL_SKIP)
8022 goto nosideret;
8023 }
8024
df407dfe 8025 if (ada_is_packed_array_type (desc_base_type (value_type (argvec[0]))))
4c4b4cd2 8026 argvec[0] = ada_coerce_to_simple_array (argvec[0]);
df407dfe
AC
8027 else if (TYPE_CODE (value_type (argvec[0])) == TYPE_CODE_REF
8028 || (TYPE_CODE (value_type (argvec[0])) == TYPE_CODE_ARRAY
76a01679 8029 && VALUE_LVAL (argvec[0]) == lval_memory))
4c4b4cd2
PH
8030 argvec[0] = value_addr (argvec[0]);
8031
df407dfe 8032 type = ada_check_typedef (value_type (argvec[0]));
4c4b4cd2
PH
8033 if (TYPE_CODE (type) == TYPE_CODE_PTR)
8034 {
61ee279c 8035 switch (TYPE_CODE (ada_check_typedef (TYPE_TARGET_TYPE (type))))
4c4b4cd2
PH
8036 {
8037 case TYPE_CODE_FUNC:
61ee279c 8038 type = ada_check_typedef (TYPE_TARGET_TYPE (type));
4c4b4cd2
PH
8039 break;
8040 case TYPE_CODE_ARRAY:
8041 break;
8042 case TYPE_CODE_STRUCT:
8043 if (noside != EVAL_AVOID_SIDE_EFFECTS)
8044 argvec[0] = ada_value_ind (argvec[0]);
61ee279c 8045 type = ada_check_typedef (TYPE_TARGET_TYPE (type));
4c4b4cd2
PH
8046 break;
8047 default:
323e0a4a 8048 error (_("cannot subscript or call something of type `%s'"),
df407dfe 8049 ada_type_name (value_type (argvec[0])));
4c4b4cd2
PH
8050 break;
8051 }
8052 }
8053
8054 switch (TYPE_CODE (type))
8055 {
8056 case TYPE_CODE_FUNC:
8057 if (noside == EVAL_AVOID_SIDE_EFFECTS)
8058 return allocate_value (TYPE_TARGET_TYPE (type));
8059 return call_function_by_hand (argvec[0], nargs, argvec + 1);
8060 case TYPE_CODE_STRUCT:
8061 {
8062 int arity;
8063
4c4b4cd2
PH
8064 arity = ada_array_arity (type);
8065 type = ada_array_element_type (type, nargs);
8066 if (type == NULL)
323e0a4a 8067 error (_("cannot subscript or call a record"));
4c4b4cd2 8068 if (arity != nargs)
323e0a4a 8069 error (_("wrong number of subscripts; expecting %d"), arity);
4c4b4cd2
PH
8070 if (noside == EVAL_AVOID_SIDE_EFFECTS)
8071 return allocate_value (ada_aligned_type (type));
8072 return
8073 unwrap_value (ada_value_subscript
8074 (argvec[0], nargs, argvec + 1));
8075 }
8076 case TYPE_CODE_ARRAY:
8077 if (noside == EVAL_AVOID_SIDE_EFFECTS)
8078 {
8079 type = ada_array_element_type (type, nargs);
8080 if (type == NULL)
323e0a4a 8081 error (_("element type of array unknown"));
4c4b4cd2
PH
8082 else
8083 return allocate_value (ada_aligned_type (type));
8084 }
8085 return
8086 unwrap_value (ada_value_subscript
8087 (ada_coerce_to_simple_array (argvec[0]),
8088 nargs, argvec + 1));
8089 case TYPE_CODE_PTR: /* Pointer to array */
8090 type = to_fixed_array_type (TYPE_TARGET_TYPE (type), NULL, 1);
8091 if (noside == EVAL_AVOID_SIDE_EFFECTS)
8092 {
8093 type = ada_array_element_type (type, nargs);
8094 if (type == NULL)
323e0a4a 8095 error (_("element type of array unknown"));
4c4b4cd2
PH
8096 else
8097 return allocate_value (ada_aligned_type (type));
8098 }
8099 return
8100 unwrap_value (ada_value_ptr_subscript (argvec[0], type,
8101 nargs, argvec + 1));
8102
8103 default:
e1d5a0d2
PH
8104 error (_("Attempt to index or call something other than an "
8105 "array or function"));
4c4b4cd2
PH
8106 }
8107
8108 case TERNOP_SLICE:
8109 {
8110 struct value *array = evaluate_subexp (NULL_TYPE, exp, pos, noside);
8111 struct value *low_bound_val =
8112 evaluate_subexp (NULL_TYPE, exp, pos, noside);
714e53ab
PH
8113 struct value *high_bound_val =
8114 evaluate_subexp (NULL_TYPE, exp, pos, noside);
8115 LONGEST low_bound;
8116 LONGEST high_bound;
994b9211
AC
8117 low_bound_val = coerce_ref (low_bound_val);
8118 high_bound_val = coerce_ref (high_bound_val);
714e53ab
PH
8119 low_bound = pos_atr (low_bound_val);
8120 high_bound = pos_atr (high_bound_val);
963a6417 8121
4c4b4cd2
PH
8122 if (noside == EVAL_SKIP)
8123 goto nosideret;
8124
4c4b4cd2
PH
8125 /* If this is a reference to an aligner type, then remove all
8126 the aligners. */
df407dfe
AC
8127 if (TYPE_CODE (value_type (array)) == TYPE_CODE_REF
8128 && ada_is_aligner_type (TYPE_TARGET_TYPE (value_type (array))))
8129 TYPE_TARGET_TYPE (value_type (array)) =
8130 ada_aligned_type (TYPE_TARGET_TYPE (value_type (array)));
4c4b4cd2 8131
df407dfe 8132 if (ada_is_packed_array_type (value_type (array)))
323e0a4a 8133 error (_("cannot slice a packed array"));
4c4b4cd2
PH
8134
8135 /* If this is a reference to an array or an array lvalue,
8136 convert to a pointer. */
df407dfe
AC
8137 if (TYPE_CODE (value_type (array)) == TYPE_CODE_REF
8138 || (TYPE_CODE (value_type (array)) == TYPE_CODE_ARRAY
4c4b4cd2
PH
8139 && VALUE_LVAL (array) == lval_memory))
8140 array = value_addr (array);
8141
1265e4aa 8142 if (noside == EVAL_AVOID_SIDE_EFFECTS
61ee279c 8143 && ada_is_array_descriptor_type (ada_check_typedef
df407dfe 8144 (value_type (array))))
0b5d8877 8145 return empty_array (ada_type_of_array (array, 0), low_bound);
4c4b4cd2
PH
8146
8147 array = ada_coerce_to_simple_array_ptr (array);
8148
714e53ab
PH
8149 /* If we have more than one level of pointer indirection,
8150 dereference the value until we get only one level. */
df407dfe
AC
8151 while (TYPE_CODE (value_type (array)) == TYPE_CODE_PTR
8152 && (TYPE_CODE (TYPE_TARGET_TYPE (value_type (array)))
714e53ab
PH
8153 == TYPE_CODE_PTR))
8154 array = value_ind (array);
8155
8156 /* Make sure we really do have an array type before going further,
8157 to avoid a SEGV when trying to get the index type or the target
8158 type later down the road if the debug info generated by
8159 the compiler is incorrect or incomplete. */
df407dfe 8160 if (!ada_is_simple_array_type (value_type (array)))
323e0a4a 8161 error (_("cannot take slice of non-array"));
714e53ab 8162
df407dfe 8163 if (TYPE_CODE (value_type (array)) == TYPE_CODE_PTR)
4c4b4cd2 8164 {
0b5d8877 8165 if (high_bound < low_bound || noside == EVAL_AVOID_SIDE_EFFECTS)
df407dfe 8166 return empty_array (TYPE_TARGET_TYPE (value_type (array)),
4c4b4cd2
PH
8167 low_bound);
8168 else
8169 {
8170 struct type *arr_type0 =
df407dfe 8171 to_fixed_array_type (TYPE_TARGET_TYPE (value_type (array)),
4c4b4cd2 8172 NULL, 1);
0b5d8877 8173 return ada_value_slice_ptr (array, arr_type0,
529cad9c
PH
8174 longest_to_int (low_bound),
8175 longest_to_int (high_bound));
4c4b4cd2
PH
8176 }
8177 }
8178 else if (noside == EVAL_AVOID_SIDE_EFFECTS)
8179 return array;
8180 else if (high_bound < low_bound)
df407dfe 8181 return empty_array (value_type (array), low_bound);
4c4b4cd2 8182 else
529cad9c
PH
8183 return ada_value_slice (array, longest_to_int (low_bound),
8184 longest_to_int (high_bound));
4c4b4cd2 8185 }
14f9c5c9 8186
4c4b4cd2
PH
8187 case UNOP_IN_RANGE:
8188 (*pos) += 2;
8189 arg1 = evaluate_subexp (NULL_TYPE, exp, pos, noside);
8190 type = exp->elts[pc + 1].type;
14f9c5c9 8191
14f9c5c9 8192 if (noside == EVAL_SKIP)
4c4b4cd2 8193 goto nosideret;
14f9c5c9 8194
4c4b4cd2
PH
8195 switch (TYPE_CODE (type))
8196 {
8197 default:
e1d5a0d2
PH
8198 lim_warning (_("Membership test incompletely implemented; "
8199 "always returns true"));
4c4b4cd2
PH
8200 return value_from_longest (builtin_type_int, (LONGEST) 1);
8201
8202 case TYPE_CODE_RANGE:
76a01679 8203 arg2 = value_from_longest (builtin_type_int, TYPE_LOW_BOUND (type));
4c4b4cd2
PH
8204 arg3 = value_from_longest (builtin_type_int,
8205 TYPE_HIGH_BOUND (type));
8206 return
8207 value_from_longest (builtin_type_int,
8208 (value_less (arg1, arg3)
8209 || value_equal (arg1, arg3))
8210 && (value_less (arg2, arg1)
8211 || value_equal (arg2, arg1)));
8212 }
8213
8214 case BINOP_IN_BOUNDS:
14f9c5c9 8215 (*pos) += 2;
4c4b4cd2
PH
8216 arg1 = evaluate_subexp (NULL_TYPE, exp, pos, noside);
8217 arg2 = evaluate_subexp (NULL_TYPE, exp, pos, noside);
14f9c5c9 8218
4c4b4cd2
PH
8219 if (noside == EVAL_SKIP)
8220 goto nosideret;
14f9c5c9 8221
4c4b4cd2
PH
8222 if (noside == EVAL_AVOID_SIDE_EFFECTS)
8223 return value_zero (builtin_type_int, not_lval);
14f9c5c9 8224
4c4b4cd2 8225 tem = longest_to_int (exp->elts[pc + 1].longconst);
14f9c5c9 8226
df407dfe 8227 if (tem < 1 || tem > ada_array_arity (value_type (arg2)))
323e0a4a 8228 error (_("invalid dimension number to 'range"));
14f9c5c9 8229
4c4b4cd2
PH
8230 arg3 = ada_array_bound (arg2, tem, 1);
8231 arg2 = ada_array_bound (arg2, tem, 0);
d2e4a39e 8232
4c4b4cd2
PH
8233 return
8234 value_from_longest (builtin_type_int,
8235 (value_less (arg1, arg3)
8236 || value_equal (arg1, arg3))
8237 && (value_less (arg2, arg1)
8238 || value_equal (arg2, arg1)));
8239
8240 case TERNOP_IN_RANGE:
8241 arg1 = evaluate_subexp (NULL_TYPE, exp, pos, noside);
8242 arg2 = evaluate_subexp (NULL_TYPE, exp, pos, noside);
8243 arg3 = evaluate_subexp (NULL_TYPE, exp, pos, noside);
8244
8245 if (noside == EVAL_SKIP)
8246 goto nosideret;
8247
8248 return
8249 value_from_longest (builtin_type_int,
8250 (value_less (arg1, arg3)
8251 || value_equal (arg1, arg3))
8252 && (value_less (arg2, arg1)
8253 || value_equal (arg2, arg1)));
8254
8255 case OP_ATR_FIRST:
8256 case OP_ATR_LAST:
8257 case OP_ATR_LENGTH:
8258 {
76a01679
JB
8259 struct type *type_arg;
8260 if (exp->elts[*pos].opcode == OP_TYPE)
8261 {
8262 evaluate_subexp (NULL_TYPE, exp, pos, EVAL_SKIP);
8263 arg1 = NULL;
8264 type_arg = exp->elts[pc + 2].type;
8265 }
8266 else
8267 {
8268 arg1 = evaluate_subexp (NULL_TYPE, exp, pos, noside);
8269 type_arg = NULL;
8270 }
8271
8272 if (exp->elts[*pos].opcode != OP_LONG)
323e0a4a 8273 error (_("Invalid operand to '%s"), ada_attribute_name (op));
76a01679
JB
8274 tem = longest_to_int (exp->elts[*pos + 2].longconst);
8275 *pos += 4;
8276
8277 if (noside == EVAL_SKIP)
8278 goto nosideret;
8279
8280 if (type_arg == NULL)
8281 {
8282 arg1 = ada_coerce_ref (arg1);
8283
df407dfe 8284 if (ada_is_packed_array_type (value_type (arg1)))
76a01679
JB
8285 arg1 = ada_coerce_to_simple_array (arg1);
8286
df407dfe 8287 if (tem < 1 || tem > ada_array_arity (value_type (arg1)))
323e0a4a 8288 error (_("invalid dimension number to '%s"),
76a01679
JB
8289 ada_attribute_name (op));
8290
8291 if (noside == EVAL_AVOID_SIDE_EFFECTS)
8292 {
df407dfe 8293 type = ada_index_type (value_type (arg1), tem);
76a01679
JB
8294 if (type == NULL)
8295 error
323e0a4a 8296 (_("attempt to take bound of something that is not an array"));
76a01679
JB
8297 return allocate_value (type);
8298 }
8299
8300 switch (op)
8301 {
8302 default: /* Should never happen. */
323e0a4a 8303 error (_("unexpected attribute encountered"));
76a01679
JB
8304 case OP_ATR_FIRST:
8305 return ada_array_bound (arg1, tem, 0);
8306 case OP_ATR_LAST:
8307 return ada_array_bound (arg1, tem, 1);
8308 case OP_ATR_LENGTH:
8309 return ada_array_length (arg1, tem);
8310 }
8311 }
8312 else if (discrete_type_p (type_arg))
8313 {
8314 struct type *range_type;
8315 char *name = ada_type_name (type_arg);
8316 range_type = NULL;
8317 if (name != NULL && TYPE_CODE (type_arg) != TYPE_CODE_ENUM)
8318 range_type =
8319 to_fixed_range_type (name, NULL, TYPE_OBJFILE (type_arg));
8320 if (range_type == NULL)
8321 range_type = type_arg;
8322 switch (op)
8323 {
8324 default:
323e0a4a 8325 error (_("unexpected attribute encountered"));
76a01679
JB
8326 case OP_ATR_FIRST:
8327 return discrete_type_low_bound (range_type);
8328 case OP_ATR_LAST:
8329 return discrete_type_high_bound (range_type);
8330 case OP_ATR_LENGTH:
323e0a4a 8331 error (_("the 'length attribute applies only to array types"));
76a01679
JB
8332 }
8333 }
8334 else if (TYPE_CODE (type_arg) == TYPE_CODE_FLT)
323e0a4a 8335 error (_("unimplemented type attribute"));
76a01679
JB
8336 else
8337 {
8338 LONGEST low, high;
8339
8340 if (ada_is_packed_array_type (type_arg))
8341 type_arg = decode_packed_array_type (type_arg);
8342
8343 if (tem < 1 || tem > ada_array_arity (type_arg))
323e0a4a 8344 error (_("invalid dimension number to '%s"),
76a01679
JB
8345 ada_attribute_name (op));
8346
8347 type = ada_index_type (type_arg, tem);
8348 if (type == NULL)
8349 error
323e0a4a 8350 (_("attempt to take bound of something that is not an array"));
76a01679
JB
8351 if (noside == EVAL_AVOID_SIDE_EFFECTS)
8352 return allocate_value (type);
8353
8354 switch (op)
8355 {
8356 default:
323e0a4a 8357 error (_("unexpected attribute encountered"));
76a01679
JB
8358 case OP_ATR_FIRST:
8359 low = ada_array_bound_from_type (type_arg, tem, 0, &type);
8360 return value_from_longest (type, low);
8361 case OP_ATR_LAST:
8362 high = ada_array_bound_from_type (type_arg, tem, 1, &type);
8363 return value_from_longest (type, high);
8364 case OP_ATR_LENGTH:
8365 low = ada_array_bound_from_type (type_arg, tem, 0, &type);
8366 high = ada_array_bound_from_type (type_arg, tem, 1, NULL);
8367 return value_from_longest (type, high - low + 1);
8368 }
8369 }
14f9c5c9
AS
8370 }
8371
4c4b4cd2
PH
8372 case OP_ATR_TAG:
8373 arg1 = evaluate_subexp (NULL_TYPE, exp, pos, noside);
8374 if (noside == EVAL_SKIP)
76a01679 8375 goto nosideret;
4c4b4cd2
PH
8376
8377 if (noside == EVAL_AVOID_SIDE_EFFECTS)
76a01679 8378 return value_zero (ada_tag_type (arg1), not_lval);
4c4b4cd2
PH
8379
8380 return ada_value_tag (arg1);
8381
8382 case OP_ATR_MIN:
8383 case OP_ATR_MAX:
8384 evaluate_subexp (NULL_TYPE, exp, pos, EVAL_SKIP);
14f9c5c9
AS
8385 arg1 = evaluate_subexp (NULL_TYPE, exp, pos, noside);
8386 arg2 = evaluate_subexp (NULL_TYPE, exp, pos, noside);
8387 if (noside == EVAL_SKIP)
76a01679 8388 goto nosideret;
d2e4a39e 8389 else if (noside == EVAL_AVOID_SIDE_EFFECTS)
df407dfe 8390 return value_zero (value_type (arg1), not_lval);
14f9c5c9 8391 else
76a01679
JB
8392 return value_binop (arg1, arg2,
8393 op == OP_ATR_MIN ? BINOP_MIN : BINOP_MAX);
14f9c5c9 8394
4c4b4cd2
PH
8395 case OP_ATR_MODULUS:
8396 {
76a01679
JB
8397 struct type *type_arg = exp->elts[pc + 2].type;
8398 evaluate_subexp (NULL_TYPE, exp, pos, EVAL_SKIP);
4c4b4cd2 8399
76a01679
JB
8400 if (noside == EVAL_SKIP)
8401 goto nosideret;
4c4b4cd2 8402
76a01679 8403 if (!ada_is_modular_type (type_arg))
323e0a4a 8404 error (_("'modulus must be applied to modular type"));
4c4b4cd2 8405
76a01679
JB
8406 return value_from_longest (TYPE_TARGET_TYPE (type_arg),
8407 ada_modulus (type_arg));
4c4b4cd2
PH
8408 }
8409
8410
8411 case OP_ATR_POS:
8412 evaluate_subexp (NULL_TYPE, exp, pos, EVAL_SKIP);
14f9c5c9
AS
8413 arg1 = evaluate_subexp (NULL_TYPE, exp, pos, noside);
8414 if (noside == EVAL_SKIP)
76a01679 8415 goto nosideret;
4c4b4cd2 8416 else if (noside == EVAL_AVOID_SIDE_EFFECTS)
72d5681a 8417 return value_zero (builtin_type_int, not_lval);
14f9c5c9 8418 else
76a01679 8419 return value_pos_atr (arg1);
14f9c5c9 8420
4c4b4cd2
PH
8421 case OP_ATR_SIZE:
8422 arg1 = evaluate_subexp (NULL_TYPE, exp, pos, noside);
8423 if (noside == EVAL_SKIP)
76a01679 8424 goto nosideret;
4c4b4cd2 8425 else if (noside == EVAL_AVOID_SIDE_EFFECTS)
72d5681a 8426 return value_zero (builtin_type_int, not_lval);
4c4b4cd2 8427 else
72d5681a 8428 return value_from_longest (builtin_type_int,
76a01679 8429 TARGET_CHAR_BIT
df407dfe 8430 * TYPE_LENGTH (value_type (arg1)));
4c4b4cd2
PH
8431
8432 case OP_ATR_VAL:
8433 evaluate_subexp (NULL_TYPE, exp, pos, EVAL_SKIP);
14f9c5c9 8434 arg1 = evaluate_subexp (NULL_TYPE, exp, pos, noside);
4c4b4cd2 8435 type = exp->elts[pc + 2].type;
14f9c5c9 8436 if (noside == EVAL_SKIP)
76a01679 8437 goto nosideret;
4c4b4cd2 8438 else if (noside == EVAL_AVOID_SIDE_EFFECTS)
76a01679 8439 return value_zero (type, not_lval);
4c4b4cd2 8440 else
76a01679 8441 return value_val_atr (type, arg1);
4c4b4cd2
PH
8442
8443 case BINOP_EXP:
8444 arg1 = evaluate_subexp (NULL_TYPE, exp, pos, noside);
8445 arg2 = evaluate_subexp (NULL_TYPE, exp, pos, noside);
8446 if (noside == EVAL_SKIP)
8447 goto nosideret;
8448 else if (noside == EVAL_AVOID_SIDE_EFFECTS)
df407dfe 8449 return value_zero (value_type (arg1), not_lval);
4c4b4cd2
PH
8450 else
8451 return value_binop (arg1, arg2, op);
8452
8453 case UNOP_PLUS:
8454 arg1 = evaluate_subexp (NULL_TYPE, exp, pos, noside);
8455 if (noside == EVAL_SKIP)
8456 goto nosideret;
8457 else
8458 return arg1;
8459
8460 case UNOP_ABS:
8461 arg1 = evaluate_subexp (NULL_TYPE, exp, pos, noside);
8462 if (noside == EVAL_SKIP)
8463 goto nosideret;
df407dfe 8464 if (value_less (arg1, value_zero (value_type (arg1), not_lval)))
4c4b4cd2 8465 return value_neg (arg1);
14f9c5c9 8466 else
4c4b4cd2 8467 return arg1;
14f9c5c9
AS
8468
8469 case UNOP_IND:
8470 if (expect_type && TYPE_CODE (expect_type) == TYPE_CODE_PTR)
61ee279c 8471 expect_type = TYPE_TARGET_TYPE (ada_check_typedef (expect_type));
14f9c5c9
AS
8472 arg1 = evaluate_subexp (expect_type, exp, pos, noside);
8473 if (noside == EVAL_SKIP)
4c4b4cd2 8474 goto nosideret;
df407dfe 8475 type = ada_check_typedef (value_type (arg1));
14f9c5c9 8476 if (noside == EVAL_AVOID_SIDE_EFFECTS)
4c4b4cd2
PH
8477 {
8478 if (ada_is_array_descriptor_type (type))
8479 /* GDB allows dereferencing GNAT array descriptors. */
8480 {
8481 struct type *arrType = ada_type_of_array (arg1, 0);
8482 if (arrType == NULL)
323e0a4a 8483 error (_("Attempt to dereference null array pointer."));
00a4c844 8484 return value_at_lazy (arrType, 0);
4c4b4cd2
PH
8485 }
8486 else if (TYPE_CODE (type) == TYPE_CODE_PTR
8487 || TYPE_CODE (type) == TYPE_CODE_REF
8488 /* In C you can dereference an array to get the 1st elt. */
8489 || TYPE_CODE (type) == TYPE_CODE_ARRAY)
714e53ab
PH
8490 {
8491 type = to_static_fixed_type
8492 (ada_aligned_type
8493 (ada_check_typedef (TYPE_TARGET_TYPE (type))));
8494 check_size (type);
8495 return value_zero (type, lval_memory);
8496 }
4c4b4cd2
PH
8497 else if (TYPE_CODE (type) == TYPE_CODE_INT)
8498 /* GDB allows dereferencing an int. */
8499 return value_zero (builtin_type_int, lval_memory);
8500 else
323e0a4a 8501 error (_("Attempt to take contents of a non-pointer value."));
4c4b4cd2 8502 }
76a01679 8503 arg1 = ada_coerce_ref (arg1); /* FIXME: What is this for?? */
df407dfe 8504 type = ada_check_typedef (value_type (arg1));
d2e4a39e 8505
4c4b4cd2
PH
8506 if (ada_is_array_descriptor_type (type))
8507 /* GDB allows dereferencing GNAT array descriptors. */
8508 return ada_coerce_to_simple_array (arg1);
14f9c5c9 8509 else
4c4b4cd2 8510 return ada_value_ind (arg1);
14f9c5c9
AS
8511
8512 case STRUCTOP_STRUCT:
8513 tem = longest_to_int (exp->elts[pc + 1].longconst);
8514 (*pos) += 3 + BYTES_TO_EXP_ELEM (tem + 1);
8515 arg1 = evaluate_subexp (NULL_TYPE, exp, pos, noside);
8516 if (noside == EVAL_SKIP)
4c4b4cd2 8517 goto nosideret;
14f9c5c9 8518 if (noside == EVAL_AVOID_SIDE_EFFECTS)
76a01679 8519 {
df407dfe 8520 struct type *type1 = value_type (arg1);
76a01679
JB
8521 if (ada_is_tagged_type (type1, 1))
8522 {
8523 type = ada_lookup_struct_elt_type (type1,
8524 &exp->elts[pc + 2].string,
8525 1, 1, NULL);
8526 if (type == NULL)
8527 /* In this case, we assume that the field COULD exist
8528 in some extension of the type. Return an object of
8529 "type" void, which will match any formal
8530 (see ada_type_match). */
8531 return value_zero (builtin_type_void, lval_memory);
8532 }
8533 else
8534 type =
8535 ada_lookup_struct_elt_type (type1, &exp->elts[pc + 2].string, 1,
8536 0, NULL);
8537
8538 return value_zero (ada_aligned_type (type), lval_memory);
8539 }
14f9c5c9 8540 else
76a01679
JB
8541 return
8542 ada_to_fixed_value (unwrap_value
8543 (ada_value_struct_elt
03ee6b2e 8544 (arg1, &exp->elts[pc + 2].string, 0)));
14f9c5c9 8545 case OP_TYPE:
4c4b4cd2
PH
8546 /* The value is not supposed to be used. This is here to make it
8547 easier to accommodate expressions that contain types. */
14f9c5c9
AS
8548 (*pos) += 2;
8549 if (noside == EVAL_SKIP)
4c4b4cd2 8550 goto nosideret;
14f9c5c9 8551 else if (noside == EVAL_AVOID_SIDE_EFFECTS)
a6cfbe68 8552 return allocate_value (exp->elts[pc + 1].type);
14f9c5c9 8553 else
323e0a4a 8554 error (_("Attempt to use a type name as an expression"));
52ce6436
PH
8555
8556 case OP_AGGREGATE:
8557 case OP_CHOICES:
8558 case OP_OTHERS:
8559 case OP_DISCRETE_RANGE:
8560 case OP_POSITIONAL:
8561 case OP_NAME:
8562 if (noside == EVAL_NORMAL)
8563 switch (op)
8564 {
8565 case OP_NAME:
8566 error (_("Undefined name, ambiguous name, or renaming used in "
e1d5a0d2 8567 "component association: %s."), &exp->elts[pc+2].string);
52ce6436
PH
8568 case OP_AGGREGATE:
8569 error (_("Aggregates only allowed on the right of an assignment"));
8570 default:
e1d5a0d2 8571 internal_error (__FILE__, __LINE__, _("aggregate apparently mangled"));
52ce6436
PH
8572 }
8573
8574 ada_forward_operator_length (exp, pc, &oplen, &nargs);
8575 *pos += oplen - 1;
8576 for (tem = 0; tem < nargs; tem += 1)
8577 ada_evaluate_subexp (NULL, exp, pos, noside);
8578 goto nosideret;
14f9c5c9
AS
8579 }
8580
8581nosideret:
8582 return value_from_longest (builtin_type_long, (LONGEST) 1);
8583}
14f9c5c9 8584\f
d2e4a39e 8585
4c4b4cd2 8586 /* Fixed point */
14f9c5c9
AS
8587
8588/* If TYPE encodes an Ada fixed-point type, return the suffix of the
8589 type name that encodes the 'small and 'delta information.
4c4b4cd2 8590 Otherwise, return NULL. */
14f9c5c9 8591
d2e4a39e 8592static const char *
ebf56fd3 8593fixed_type_info (struct type *type)
14f9c5c9 8594{
d2e4a39e 8595 const char *name = ada_type_name (type);
14f9c5c9
AS
8596 enum type_code code = (type == NULL) ? TYPE_CODE_UNDEF : TYPE_CODE (type);
8597
d2e4a39e
AS
8598 if ((code == TYPE_CODE_INT || code == TYPE_CODE_RANGE) && name != NULL)
8599 {
14f9c5c9
AS
8600 const char *tail = strstr (name, "___XF_");
8601 if (tail == NULL)
4c4b4cd2 8602 return NULL;
d2e4a39e 8603 else
4c4b4cd2 8604 return tail + 5;
14f9c5c9
AS
8605 }
8606 else if (code == TYPE_CODE_RANGE && TYPE_TARGET_TYPE (type) != type)
8607 return fixed_type_info (TYPE_TARGET_TYPE (type));
8608 else
8609 return NULL;
8610}
8611
4c4b4cd2 8612/* Returns non-zero iff TYPE represents an Ada fixed-point type. */
14f9c5c9
AS
8613
8614int
ebf56fd3 8615ada_is_fixed_point_type (struct type *type)
14f9c5c9
AS
8616{
8617 return fixed_type_info (type) != NULL;
8618}
8619
4c4b4cd2
PH
8620/* Return non-zero iff TYPE represents a System.Address type. */
8621
8622int
8623ada_is_system_address_type (struct type *type)
8624{
8625 return (TYPE_NAME (type)
8626 && strcmp (TYPE_NAME (type), "system__address") == 0);
8627}
8628
14f9c5c9
AS
8629/* Assuming that TYPE is the representation of an Ada fixed-point
8630 type, return its delta, or -1 if the type is malformed and the
4c4b4cd2 8631 delta cannot be determined. */
14f9c5c9
AS
8632
8633DOUBLEST
ebf56fd3 8634ada_delta (struct type *type)
14f9c5c9
AS
8635{
8636 const char *encoding = fixed_type_info (type);
8637 long num, den;
8638
8639 if (sscanf (encoding, "_%ld_%ld", &num, &den) < 2)
8640 return -1.0;
d2e4a39e 8641 else
14f9c5c9
AS
8642 return (DOUBLEST) num / (DOUBLEST) den;
8643}
8644
8645/* Assuming that ada_is_fixed_point_type (TYPE), return the scaling
4c4b4cd2 8646 factor ('SMALL value) associated with the type. */
14f9c5c9
AS
8647
8648static DOUBLEST
ebf56fd3 8649scaling_factor (struct type *type)
14f9c5c9
AS
8650{
8651 const char *encoding = fixed_type_info (type);
8652 unsigned long num0, den0, num1, den1;
8653 int n;
d2e4a39e 8654
14f9c5c9
AS
8655 n = sscanf (encoding, "_%lu_%lu_%lu_%lu", &num0, &den0, &num1, &den1);
8656
8657 if (n < 2)
8658 return 1.0;
8659 else if (n == 4)
8660 return (DOUBLEST) num1 / (DOUBLEST) den1;
d2e4a39e 8661 else
14f9c5c9
AS
8662 return (DOUBLEST) num0 / (DOUBLEST) den0;
8663}
8664
8665
8666/* Assuming that X is the representation of a value of fixed-point
4c4b4cd2 8667 type TYPE, return its floating-point equivalent. */
14f9c5c9
AS
8668
8669DOUBLEST
ebf56fd3 8670ada_fixed_to_float (struct type *type, LONGEST x)
14f9c5c9 8671{
d2e4a39e 8672 return (DOUBLEST) x *scaling_factor (type);
14f9c5c9
AS
8673}
8674
4c4b4cd2
PH
8675/* The representation of a fixed-point value of type TYPE
8676 corresponding to the value X. */
14f9c5c9
AS
8677
8678LONGEST
ebf56fd3 8679ada_float_to_fixed (struct type *type, DOUBLEST x)
14f9c5c9
AS
8680{
8681 return (LONGEST) (x / scaling_factor (type) + 0.5);
8682}
8683
8684
4c4b4cd2 8685 /* VAX floating formats */
14f9c5c9
AS
8686
8687/* Non-zero iff TYPE represents one of the special VAX floating-point
4c4b4cd2
PH
8688 types. */
8689
14f9c5c9 8690int
d2e4a39e 8691ada_is_vax_floating_type (struct type *type)
14f9c5c9 8692{
d2e4a39e 8693 int name_len =
14f9c5c9 8694 (ada_type_name (type) == NULL) ? 0 : strlen (ada_type_name (type));
d2e4a39e 8695 return
14f9c5c9 8696 name_len > 6
d2e4a39e 8697 && (TYPE_CODE (type) == TYPE_CODE_INT
4c4b4cd2
PH
8698 || TYPE_CODE (type) == TYPE_CODE_RANGE)
8699 && strncmp (ada_type_name (type) + name_len - 6, "___XF", 5) == 0;
14f9c5c9
AS
8700}
8701
8702/* The type of special VAX floating-point type this is, assuming
4c4b4cd2
PH
8703 ada_is_vax_floating_point. */
8704
14f9c5c9 8705int
d2e4a39e 8706ada_vax_float_type_suffix (struct type *type)
14f9c5c9 8707{
d2e4a39e 8708 return ada_type_name (type)[strlen (ada_type_name (type)) - 1];
14f9c5c9
AS
8709}
8710
4c4b4cd2 8711/* A value representing the special debugging function that outputs
14f9c5c9 8712 VAX floating-point values of the type represented by TYPE. Assumes
4c4b4cd2
PH
8713 ada_is_vax_floating_type (TYPE). */
8714
d2e4a39e
AS
8715struct value *
8716ada_vax_float_print_function (struct type *type)
8717{
8718 switch (ada_vax_float_type_suffix (type))
8719 {
8720 case 'F':
8721 return get_var_value ("DEBUG_STRING_F", 0);
8722 case 'D':
8723 return get_var_value ("DEBUG_STRING_D", 0);
8724 case 'G':
8725 return get_var_value ("DEBUG_STRING_G", 0);
8726 default:
323e0a4a 8727 error (_("invalid VAX floating-point type"));
d2e4a39e 8728 }
14f9c5c9 8729}
14f9c5c9 8730\f
d2e4a39e 8731
4c4b4cd2 8732 /* Range types */
14f9c5c9
AS
8733
8734/* Scan STR beginning at position K for a discriminant name, and
8735 return the value of that discriminant field of DVAL in *PX. If
8736 PNEW_K is not null, put the position of the character beyond the
8737 name scanned in *PNEW_K. Return 1 if successful; return 0 and do
4c4b4cd2 8738 not alter *PX and *PNEW_K if unsuccessful. */
14f9c5c9
AS
8739
8740static int
07d8f827 8741scan_discrim_bound (char *str, int k, struct value *dval, LONGEST * px,
76a01679 8742 int *pnew_k)
14f9c5c9
AS
8743{
8744 static char *bound_buffer = NULL;
8745 static size_t bound_buffer_len = 0;
8746 char *bound;
8747 char *pend;
d2e4a39e 8748 struct value *bound_val;
14f9c5c9
AS
8749
8750 if (dval == NULL || str == NULL || str[k] == '\0')
8751 return 0;
8752
d2e4a39e 8753 pend = strstr (str + k, "__");
14f9c5c9
AS
8754 if (pend == NULL)
8755 {
d2e4a39e 8756 bound = str + k;
14f9c5c9
AS
8757 k += strlen (bound);
8758 }
d2e4a39e 8759 else
14f9c5c9 8760 {
d2e4a39e 8761 GROW_VECT (bound_buffer, bound_buffer_len, pend - (str + k) + 1);
14f9c5c9 8762 bound = bound_buffer;
d2e4a39e
AS
8763 strncpy (bound_buffer, str + k, pend - (str + k));
8764 bound[pend - (str + k)] = '\0';
8765 k = pend - str;
14f9c5c9 8766 }
d2e4a39e 8767
df407dfe 8768 bound_val = ada_search_struct_field (bound, dval, 0, value_type (dval));
14f9c5c9
AS
8769 if (bound_val == NULL)
8770 return 0;
8771
8772 *px = value_as_long (bound_val);
8773 if (pnew_k != NULL)
8774 *pnew_k = k;
8775 return 1;
8776}
8777
8778/* Value of variable named NAME in the current environment. If
8779 no such variable found, then if ERR_MSG is null, returns 0, and
4c4b4cd2
PH
8780 otherwise causes an error with message ERR_MSG. */
8781
d2e4a39e
AS
8782static struct value *
8783get_var_value (char *name, char *err_msg)
14f9c5c9 8784{
4c4b4cd2 8785 struct ada_symbol_info *syms;
14f9c5c9
AS
8786 int nsyms;
8787
4c4b4cd2
PH
8788 nsyms = ada_lookup_symbol_list (name, get_selected_block (0), VAR_DOMAIN,
8789 &syms);
14f9c5c9
AS
8790
8791 if (nsyms != 1)
8792 {
8793 if (err_msg == NULL)
4c4b4cd2 8794 return 0;
14f9c5c9 8795 else
8a3fe4f8 8796 error (("%s"), err_msg);
14f9c5c9
AS
8797 }
8798
4c4b4cd2 8799 return value_of_variable (syms[0].sym, syms[0].block);
14f9c5c9 8800}
d2e4a39e 8801
14f9c5c9 8802/* Value of integer variable named NAME in the current environment. If
4c4b4cd2
PH
8803 no such variable found, returns 0, and sets *FLAG to 0. If
8804 successful, sets *FLAG to 1. */
8805
14f9c5c9 8806LONGEST
4c4b4cd2 8807get_int_var_value (char *name, int *flag)
14f9c5c9 8808{
4c4b4cd2 8809 struct value *var_val = get_var_value (name, 0);
d2e4a39e 8810
14f9c5c9
AS
8811 if (var_val == 0)
8812 {
8813 if (flag != NULL)
4c4b4cd2 8814 *flag = 0;
14f9c5c9
AS
8815 return 0;
8816 }
8817 else
8818 {
8819 if (flag != NULL)
4c4b4cd2 8820 *flag = 1;
14f9c5c9
AS
8821 return value_as_long (var_val);
8822 }
8823}
d2e4a39e 8824
14f9c5c9
AS
8825
8826/* Return a range type whose base type is that of the range type named
8827 NAME in the current environment, and whose bounds are calculated
4c4b4cd2 8828 from NAME according to the GNAT range encoding conventions.
14f9c5c9
AS
8829 Extract discriminant values, if needed, from DVAL. If a new type
8830 must be created, allocate in OBJFILE's space. The bounds
8831 information, in general, is encoded in NAME, the base type given in
4c4b4cd2 8832 the named range type. */
14f9c5c9 8833
d2e4a39e 8834static struct type *
ebf56fd3 8835to_fixed_range_type (char *name, struct value *dval, struct objfile *objfile)
14f9c5c9
AS
8836{
8837 struct type *raw_type = ada_find_any_type (name);
8838 struct type *base_type;
d2e4a39e 8839 char *subtype_info;
14f9c5c9
AS
8840
8841 if (raw_type == NULL)
8842 base_type = builtin_type_int;
8843 else if (TYPE_CODE (raw_type) == TYPE_CODE_RANGE)
8844 base_type = TYPE_TARGET_TYPE (raw_type);
8845 else
8846 base_type = raw_type;
8847
8848 subtype_info = strstr (name, "___XD");
8849 if (subtype_info == NULL)
8850 return raw_type;
8851 else
8852 {
8853 static char *name_buf = NULL;
8854 static size_t name_len = 0;
8855 int prefix_len = subtype_info - name;
8856 LONGEST L, U;
8857 struct type *type;
8858 char *bounds_str;
8859 int n;
8860
8861 GROW_VECT (name_buf, name_len, prefix_len + 5);
8862 strncpy (name_buf, name, prefix_len);
8863 name_buf[prefix_len] = '\0';
8864
8865 subtype_info += 5;
8866 bounds_str = strchr (subtype_info, '_');
8867 n = 1;
8868
d2e4a39e 8869 if (*subtype_info == 'L')
4c4b4cd2
PH
8870 {
8871 if (!ada_scan_number (bounds_str, n, &L, &n)
8872 && !scan_discrim_bound (bounds_str, n, dval, &L, &n))
8873 return raw_type;
8874 if (bounds_str[n] == '_')
8875 n += 2;
8876 else if (bounds_str[n] == '.') /* FIXME? SGI Workshop kludge. */
8877 n += 1;
8878 subtype_info += 1;
8879 }
d2e4a39e 8880 else
4c4b4cd2
PH
8881 {
8882 int ok;
8883 strcpy (name_buf + prefix_len, "___L");
8884 L = get_int_var_value (name_buf, &ok);
8885 if (!ok)
8886 {
323e0a4a 8887 lim_warning (_("Unknown lower bound, using 1."));
4c4b4cd2
PH
8888 L = 1;
8889 }
8890 }
14f9c5c9 8891
d2e4a39e 8892 if (*subtype_info == 'U')
4c4b4cd2
PH
8893 {
8894 if (!ada_scan_number (bounds_str, n, &U, &n)
8895 && !scan_discrim_bound (bounds_str, n, dval, &U, &n))
8896 return raw_type;
8897 }
d2e4a39e 8898 else
4c4b4cd2
PH
8899 {
8900 int ok;
8901 strcpy (name_buf + prefix_len, "___U");
8902 U = get_int_var_value (name_buf, &ok);
8903 if (!ok)
8904 {
323e0a4a 8905 lim_warning (_("Unknown upper bound, using %ld."), (long) L);
4c4b4cd2
PH
8906 U = L;
8907 }
8908 }
14f9c5c9 8909
d2e4a39e 8910 if (objfile == NULL)
4c4b4cd2 8911 objfile = TYPE_OBJFILE (base_type);
14f9c5c9 8912 type = create_range_type (alloc_type (objfile), base_type, L, U);
d2e4a39e 8913 TYPE_NAME (type) = name;
14f9c5c9
AS
8914 return type;
8915 }
8916}
8917
4c4b4cd2
PH
8918/* True iff NAME is the name of a range type. */
8919
14f9c5c9 8920int
d2e4a39e 8921ada_is_range_type_name (const char *name)
14f9c5c9
AS
8922{
8923 return (name != NULL && strstr (name, "___XD"));
d2e4a39e 8924}
14f9c5c9 8925\f
d2e4a39e 8926
4c4b4cd2
PH
8927 /* Modular types */
8928
8929/* True iff TYPE is an Ada modular type. */
14f9c5c9 8930
14f9c5c9 8931int
d2e4a39e 8932ada_is_modular_type (struct type *type)
14f9c5c9 8933{
4c4b4cd2 8934 struct type *subranged_type = base_type (type);
14f9c5c9
AS
8935
8936 return (subranged_type != NULL && TYPE_CODE (type) == TYPE_CODE_RANGE
4c4b4cd2
PH
8937 && TYPE_CODE (subranged_type) != TYPE_CODE_ENUM
8938 && TYPE_UNSIGNED (subranged_type));
14f9c5c9
AS
8939}
8940
4c4b4cd2
PH
8941/* Assuming ada_is_modular_type (TYPE), the modulus of TYPE. */
8942
61ee279c 8943ULONGEST
d2e4a39e 8944ada_modulus (struct type * type)
14f9c5c9 8945{
61ee279c 8946 return (ULONGEST) TYPE_HIGH_BOUND (type) + 1;
14f9c5c9 8947}
d2e4a39e 8948\f
f7f9143b
JB
8949
8950/* Ada exception catchpoint support:
8951 ---------------------------------
8952
8953 We support 3 kinds of exception catchpoints:
8954 . catchpoints on Ada exceptions
8955 . catchpoints on unhandled Ada exceptions
8956 . catchpoints on failed assertions
8957
8958 Exceptions raised during failed assertions, or unhandled exceptions
8959 could perfectly be caught with the general catchpoint on Ada exceptions.
8960 However, we can easily differentiate these two special cases, and having
8961 the option to distinguish these two cases from the rest can be useful
8962 to zero-in on certain situations.
8963
8964 Exception catchpoints are a specialized form of breakpoint,
8965 since they rely on inserting breakpoints inside known routines
8966 of the GNAT runtime. The implementation therefore uses a standard
8967 breakpoint structure of the BP_BREAKPOINT type, but with its own set
8968 of breakpoint_ops.
8969
8970 At this time, we do not support the use of conditions on Ada exception
8971 catchpoints. The COND and COND_STRING fields are therefore set
8972 to NULL (most of the time, see below).
8973
8974 Conditions where EXP_STRING, COND, and COND_STRING are used:
8975
8976 When a user specifies the name of a specific exception in the case
8977 of catchpoints on Ada exceptions, we store the name of that exception
8978 in the EXP_STRING. We then translate this request into an actual
8979 condition stored in COND_STRING, and then parse it into an expression
8980 stored in COND. */
8981
8982/* The different types of catchpoints that we introduced for catching
8983 Ada exceptions. */
8984
8985enum exception_catchpoint_kind
8986{
8987 ex_catch_exception,
8988 ex_catch_exception_unhandled,
8989 ex_catch_assert
8990};
8991
8992/* Return the name of the function at PC, NULL if could not find it.
8993 This function only checks the debugging information, not the symbol
8994 table. */
8995
8996static char *
8997function_name_from_pc (CORE_ADDR pc)
8998{
8999 char *func_name;
9000
9001 if (!find_pc_partial_function (pc, &func_name, NULL, NULL))
9002 return NULL;
9003
9004 return func_name;
9005}
9006
9007/* True iff FRAME is very likely to be that of a function that is
9008 part of the runtime system. This is all very heuristic, but is
9009 intended to be used as advice as to what frames are uninteresting
9010 to most users. */
9011
9012static int
9013is_known_support_routine (struct frame_info *frame)
9014{
4ed6b5be 9015 struct symtab_and_line sal;
f7f9143b
JB
9016 char *func_name;
9017 int i;
f7f9143b 9018
4ed6b5be
JB
9019 /* If this code does not have any debugging information (no symtab),
9020 This cannot be any user code. */
f7f9143b 9021
4ed6b5be 9022 find_frame_sal (frame, &sal);
f7f9143b
JB
9023 if (sal.symtab == NULL)
9024 return 1;
9025
4ed6b5be
JB
9026 /* If there is a symtab, but the associated source file cannot be
9027 located, then assume this is not user code: Selecting a frame
9028 for which we cannot display the code would not be very helpful
9029 for the user. This should also take care of case such as VxWorks
9030 where the kernel has some debugging info provided for a few units. */
f7f9143b 9031
9bbc9174 9032 if (symtab_to_fullname (sal.symtab) == NULL)
f7f9143b
JB
9033 return 1;
9034
4ed6b5be
JB
9035 /* Check the unit filename againt the Ada runtime file naming.
9036 We also check the name of the objfile against the name of some
9037 known system libraries that sometimes come with debugging info
9038 too. */
9039
f7f9143b
JB
9040 for (i = 0; known_runtime_file_name_patterns[i] != NULL; i += 1)
9041 {
9042 re_comp (known_runtime_file_name_patterns[i]);
9043 if (re_exec (sal.symtab->filename))
9044 return 1;
4ed6b5be
JB
9045 if (sal.symtab->objfile != NULL
9046 && re_exec (sal.symtab->objfile->name))
9047 return 1;
f7f9143b
JB
9048 }
9049
4ed6b5be 9050 /* Check whether the function is a GNAT-generated entity. */
f7f9143b 9051
4ed6b5be 9052 func_name = function_name_from_pc (get_frame_address_in_block (frame));
f7f9143b
JB
9053 if (func_name == NULL)
9054 return 1;
9055
9056 for (i = 0; known_auxiliary_function_name_patterns[i] != NULL; i += 1)
9057 {
9058 re_comp (known_auxiliary_function_name_patterns[i]);
9059 if (re_exec (func_name))
9060 return 1;
9061 }
9062
9063 return 0;
9064}
9065
9066/* Find the first frame that contains debugging information and that is not
9067 part of the Ada run-time, starting from FI and moving upward. */
9068
9069static void
9070ada_find_printable_frame (struct frame_info *fi)
9071{
9072 for (; fi != NULL; fi = get_prev_frame (fi))
9073 {
9074 if (!is_known_support_routine (fi))
9075 {
9076 select_frame (fi);
9077 break;
9078 }
9079 }
9080
9081}
9082
9083/* Assuming that the inferior just triggered an unhandled exception
9084 catchpoint, return the address in inferior memory where the name
9085 of the exception is stored.
9086
9087 Return zero if the address could not be computed. */
9088
9089static CORE_ADDR
9090ada_unhandled_exception_name_addr (void)
9091{
9092 int frame_level;
9093 struct frame_info *fi;
9094
9095 /* To determine the name of this exception, we need to select
9096 the frame corresponding to RAISE_SYM_NAME. This frame is
9097 at least 3 levels up, so we simply skip the first 3 frames
9098 without checking the name of their associated function. */
9099 fi = get_current_frame ();
9100 for (frame_level = 0; frame_level < 3; frame_level += 1)
9101 if (fi != NULL)
9102 fi = get_prev_frame (fi);
9103
9104 while (fi != NULL)
9105 {
9106 const char *func_name =
9107 function_name_from_pc (get_frame_address_in_block (fi));
9108 if (func_name != NULL
9109 && strcmp (func_name, raise_sym_name) == 0)
9110 break; /* We found the frame we were looking for... */
9111 fi = get_prev_frame (fi);
9112 }
9113
9114 if (fi == NULL)
9115 return 0;
9116
9117 select_frame (fi);
9118 return parse_and_eval_address ("id.full_name");
9119}
9120
9121/* Assuming the inferior just triggered an Ada exception catchpoint
9122 (of any type), return the address in inferior memory where the name
9123 of the exception is stored, if applicable.
9124
9125 Return zero if the address could not be computed, or if not relevant. */
9126
9127static CORE_ADDR
9128ada_exception_name_addr_1 (enum exception_catchpoint_kind ex,
9129 struct breakpoint *b)
9130{
9131 switch (ex)
9132 {
9133 case ex_catch_exception:
9134 return (parse_and_eval_address ("e.full_name"));
9135 break;
9136
9137 case ex_catch_exception_unhandled:
9138 return ada_unhandled_exception_name_addr ();
9139 break;
9140
9141 case ex_catch_assert:
9142 return 0; /* Exception name is not relevant in this case. */
9143 break;
9144
9145 default:
9146 internal_error (__FILE__, __LINE__, _("unexpected catchpoint type"));
9147 break;
9148 }
9149
9150 return 0; /* Should never be reached. */
9151}
9152
9153/* Same as ada_exception_name_addr_1, except that it intercepts and contains
9154 any error that ada_exception_name_addr_1 might cause to be thrown.
9155 When an error is intercepted, a warning with the error message is printed,
9156 and zero is returned. */
9157
9158static CORE_ADDR
9159ada_exception_name_addr (enum exception_catchpoint_kind ex,
9160 struct breakpoint *b)
9161{
9162 struct gdb_exception e;
9163 CORE_ADDR result = 0;
9164
9165 TRY_CATCH (e, RETURN_MASK_ERROR)
9166 {
9167 result = ada_exception_name_addr_1 (ex, b);
9168 }
9169
9170 if (e.reason < 0)
9171 {
9172 warning (_("failed to get exception name: %s"), e.message);
9173 return 0;
9174 }
9175
9176 return result;
9177}
9178
9179/* Implement the PRINT_IT method in the breakpoint_ops structure
9180 for all exception catchpoint kinds. */
9181
9182static enum print_stop_action
9183print_it_exception (enum exception_catchpoint_kind ex, struct breakpoint *b)
9184{
9185 const CORE_ADDR addr = ada_exception_name_addr (ex, b);
9186 char exception_name[256];
9187
9188 if (addr != 0)
9189 {
9190 read_memory (addr, exception_name, sizeof (exception_name) - 1);
9191 exception_name [sizeof (exception_name) - 1] = '\0';
9192 }
9193
9194 ada_find_printable_frame (get_current_frame ());
9195
9196 annotate_catchpoint (b->number);
9197 switch (ex)
9198 {
9199 case ex_catch_exception:
9200 if (addr != 0)
9201 printf_filtered (_("\nCatchpoint %d, %s at "),
9202 b->number, exception_name);
9203 else
9204 printf_filtered (_("\nCatchpoint %d, exception at "), b->number);
9205 break;
9206 case ex_catch_exception_unhandled:
9207 if (addr != 0)
9208 printf_filtered (_("\nCatchpoint %d, unhandled %s at "),
9209 b->number, exception_name);
9210 else
9211 printf_filtered (_("\nCatchpoint %d, unhandled exception at "),
9212 b->number);
9213 break;
9214 case ex_catch_assert:
9215 printf_filtered (_("\nCatchpoint %d, failed assertion at "),
9216 b->number);
9217 break;
9218 }
9219
9220 return PRINT_SRC_AND_LOC;
9221}
9222
9223/* Implement the PRINT_ONE method in the breakpoint_ops structure
9224 for all exception catchpoint kinds. */
9225
9226static void
9227print_one_exception (enum exception_catchpoint_kind ex,
9228 struct breakpoint *b, CORE_ADDR *last_addr)
9229{
9230 if (addressprint)
9231 {
9232 annotate_field (4);
9233 ui_out_field_core_addr (uiout, "addr", b->loc->address);
9234 }
9235
9236 annotate_field (5);
9237 *last_addr = b->loc->address;
9238 switch (ex)
9239 {
9240 case ex_catch_exception:
9241 if (b->exp_string != NULL)
9242 {
9243 char *msg = xstrprintf (_("`%s' Ada exception"), b->exp_string);
9244
9245 ui_out_field_string (uiout, "what", msg);
9246 xfree (msg);
9247 }
9248 else
9249 ui_out_field_string (uiout, "what", "all Ada exceptions");
9250
9251 break;
9252
9253 case ex_catch_exception_unhandled:
9254 ui_out_field_string (uiout, "what", "unhandled Ada exceptions");
9255 break;
9256
9257 case ex_catch_assert:
9258 ui_out_field_string (uiout, "what", "failed Ada assertions");
9259 break;
9260
9261 default:
9262 internal_error (__FILE__, __LINE__, _("unexpected catchpoint type"));
9263 break;
9264 }
9265}
9266
9267/* Implement the PRINT_MENTION method in the breakpoint_ops structure
9268 for all exception catchpoint kinds. */
9269
9270static void
9271print_mention_exception (enum exception_catchpoint_kind ex,
9272 struct breakpoint *b)
9273{
9274 switch (ex)
9275 {
9276 case ex_catch_exception:
9277 if (b->exp_string != NULL)
9278 printf_filtered (_("Catchpoint %d: `%s' Ada exception"),
9279 b->number, b->exp_string);
9280 else
9281 printf_filtered (_("Catchpoint %d: all Ada exceptions"), b->number);
9282
9283 break;
9284
9285 case ex_catch_exception_unhandled:
9286 printf_filtered (_("Catchpoint %d: unhandled Ada exceptions"),
9287 b->number);
9288 break;
9289
9290 case ex_catch_assert:
9291 printf_filtered (_("Catchpoint %d: failed Ada assertions"), b->number);
9292 break;
9293
9294 default:
9295 internal_error (__FILE__, __LINE__, _("unexpected catchpoint type"));
9296 break;
9297 }
9298}
9299
9300/* Virtual table for "catch exception" breakpoints. */
9301
9302static enum print_stop_action
9303print_it_catch_exception (struct breakpoint *b)
9304{
9305 return print_it_exception (ex_catch_exception, b);
9306}
9307
9308static void
9309print_one_catch_exception (struct breakpoint *b, CORE_ADDR *last_addr)
9310{
9311 print_one_exception (ex_catch_exception, b, last_addr);
9312}
9313
9314static void
9315print_mention_catch_exception (struct breakpoint *b)
9316{
9317 print_mention_exception (ex_catch_exception, b);
9318}
9319
9320static struct breakpoint_ops catch_exception_breakpoint_ops =
9321{
9322 print_it_catch_exception,
9323 print_one_catch_exception,
9324 print_mention_catch_exception
9325};
9326
9327/* Virtual table for "catch exception unhandled" breakpoints. */
9328
9329static enum print_stop_action
9330print_it_catch_exception_unhandled (struct breakpoint *b)
9331{
9332 return print_it_exception (ex_catch_exception_unhandled, b);
9333}
9334
9335static void
9336print_one_catch_exception_unhandled (struct breakpoint *b, CORE_ADDR *last_addr)
9337{
9338 print_one_exception (ex_catch_exception_unhandled, b, last_addr);
9339}
9340
9341static void
9342print_mention_catch_exception_unhandled (struct breakpoint *b)
9343{
9344 print_mention_exception (ex_catch_exception_unhandled, b);
9345}
9346
9347static struct breakpoint_ops catch_exception_unhandled_breakpoint_ops = {
9348 print_it_catch_exception_unhandled,
9349 print_one_catch_exception_unhandled,
9350 print_mention_catch_exception_unhandled
9351};
9352
9353/* Virtual table for "catch assert" breakpoints. */
9354
9355static enum print_stop_action
9356print_it_catch_assert (struct breakpoint *b)
9357{
9358 return print_it_exception (ex_catch_assert, b);
9359}
9360
9361static void
9362print_one_catch_assert (struct breakpoint *b, CORE_ADDR *last_addr)
9363{
9364 print_one_exception (ex_catch_assert, b, last_addr);
9365}
9366
9367static void
9368print_mention_catch_assert (struct breakpoint *b)
9369{
9370 print_mention_exception (ex_catch_assert, b);
9371}
9372
9373static struct breakpoint_ops catch_assert_breakpoint_ops = {
9374 print_it_catch_assert,
9375 print_one_catch_assert,
9376 print_mention_catch_assert
9377};
9378
9379/* Return non-zero if B is an Ada exception catchpoint. */
9380
9381int
9382ada_exception_catchpoint_p (struct breakpoint *b)
9383{
9384 return (b->ops == &catch_exception_breakpoint_ops
9385 || b->ops == &catch_exception_unhandled_breakpoint_ops
9386 || b->ops == &catch_assert_breakpoint_ops);
9387}
9388
9389/* Cause the appropriate error if no appropriate runtime symbol is
9390 found to set a breakpoint, using ERR_DESC to describe the
9391 breakpoint. */
9392
9393static void
9394error_breakpoint_runtime_sym_not_found (const char *err_desc)
9395{
9396 /* If we are not debugging an Ada program, we cannot put exception
9397 catchpoints! */
9398
9399 if (ada_update_initial_language (language_unknown, NULL) != language_ada)
9400 error (_("Unable to break on %s. Is this an Ada main program?"),
9401 err_desc);
9402
9403 /* If the symbol does not exist, then check that the program is
9404 already started, to make sure that shared libraries have been
9405 loaded. If it is not started, this may mean that the symbol is
9406 in a shared library. */
9407
9408 if (ptid_get_pid (inferior_ptid) == 0)
9409 error (_("Unable to break on %s. Try to start the program first."),
9410 err_desc);
9411
9412 /* At this point, we know that we are debugging an Ada program and
9413 that the inferior has been started, but we still are not able to
9414 find the run-time symbols. That can mean that we are in
9415 configurable run time mode, or that a-except as been optimized
9416 out by the linker... In any case, at this point it is not worth
9417 supporting this feature. */
9418
9419 error (_("Cannot break on %s in this configuration."), err_desc);
9420}
9421
9422/* Return a newly allocated copy of the first space-separated token
9423 in ARGSP, and then adjust ARGSP to point immediately after that
9424 token.
9425
9426 Return NULL if ARGPS does not contain any more tokens. */
9427
9428static char *
9429ada_get_next_arg (char **argsp)
9430{
9431 char *args = *argsp;
9432 char *end;
9433 char *result;
9434
9435 /* Skip any leading white space. */
9436
9437 while (isspace (*args))
9438 args++;
9439
9440 if (args[0] == '\0')
9441 return NULL; /* No more arguments. */
9442
9443 /* Find the end of the current argument. */
9444
9445 end = args;
9446 while (*end != '\0' && !isspace (*end))
9447 end++;
9448
9449 /* Adjust ARGSP to point to the start of the next argument. */
9450
9451 *argsp = end;
9452
9453 /* Make a copy of the current argument and return it. */
9454
9455 result = xmalloc (end - args + 1);
9456 strncpy (result, args, end - args);
9457 result[end - args] = '\0';
9458
9459 return result;
9460}
9461
9462/* Split the arguments specified in a "catch exception" command.
9463 Set EX to the appropriate catchpoint type.
9464 Set EXP_STRING to the name of the specific exception if
9465 specified by the user. */
9466
9467static void
9468catch_ada_exception_command_split (char *args,
9469 enum exception_catchpoint_kind *ex,
9470 char **exp_string)
9471{
9472 struct cleanup *old_chain = make_cleanup (null_cleanup, NULL);
9473 char *exception_name;
9474
9475 exception_name = ada_get_next_arg (&args);
9476 make_cleanup (xfree, exception_name);
9477
9478 /* Check that we do not have any more arguments. Anything else
9479 is unexpected. */
9480
9481 while (isspace (*args))
9482 args++;
9483
9484 if (args[0] != '\0')
9485 error (_("Junk at end of expression"));
9486
9487 discard_cleanups (old_chain);
9488
9489 if (exception_name == NULL)
9490 {
9491 /* Catch all exceptions. */
9492 *ex = ex_catch_exception;
9493 *exp_string = NULL;
9494 }
9495 else if (strcmp (exception_name, "unhandled") == 0)
9496 {
9497 /* Catch unhandled exceptions. */
9498 *ex = ex_catch_exception_unhandled;
9499 *exp_string = NULL;
9500 }
9501 else
9502 {
9503 /* Catch a specific exception. */
9504 *ex = ex_catch_exception;
9505 *exp_string = exception_name;
9506 }
9507}
9508
9509/* Return the name of the symbol on which we should break in order to
9510 implement a catchpoint of the EX kind. */
9511
9512static const char *
9513ada_exception_sym_name (enum exception_catchpoint_kind ex)
9514{
9515 switch (ex)
9516 {
9517 case ex_catch_exception:
9518 return (raise_sym_name);
9519 break;
9520 case ex_catch_exception_unhandled:
9521 return (raise_unhandled_sym_name);
9522 break;
9523 case ex_catch_assert:
9524 return (raise_assert_sym_name);
9525 break;
9526 default:
9527 internal_error (__FILE__, __LINE__,
9528 _("unexpected catchpoint kind (%d)"), ex);
9529 }
9530}
9531
9532/* Return the breakpoint ops "virtual table" used for catchpoints
9533 of the EX kind. */
9534
9535static struct breakpoint_ops *
4b9eee8c 9536ada_exception_breakpoint_ops (enum exception_catchpoint_kind ex)
f7f9143b
JB
9537{
9538 switch (ex)
9539 {
9540 case ex_catch_exception:
9541 return (&catch_exception_breakpoint_ops);
9542 break;
9543 case ex_catch_exception_unhandled:
9544 return (&catch_exception_unhandled_breakpoint_ops);
9545 break;
9546 case ex_catch_assert:
9547 return (&catch_assert_breakpoint_ops);
9548 break;
9549 default:
9550 internal_error (__FILE__, __LINE__,
9551 _("unexpected catchpoint kind (%d)"), ex);
9552 }
9553}
9554
9555/* Return the condition that will be used to match the current exception
9556 being raised with the exception that the user wants to catch. This
9557 assumes that this condition is used when the inferior just triggered
9558 an exception catchpoint.
9559
9560 The string returned is a newly allocated string that needs to be
9561 deallocated later. */
9562
9563static char *
9564ada_exception_catchpoint_cond_string (const char *exp_string)
9565{
9566 return xstrprintf ("long_integer (e) = long_integer (&%s)", exp_string);
9567}
9568
9569/* Return the expression corresponding to COND_STRING evaluated at SAL. */
9570
9571static struct expression *
9572ada_parse_catchpoint_condition (char *cond_string,
9573 struct symtab_and_line sal)
9574{
9575 return (parse_exp_1 (&cond_string, block_for_pc (sal.pc), 0));
9576}
9577
9578/* Return the symtab_and_line that should be used to insert an exception
9579 catchpoint of the TYPE kind.
9580
9581 EX_STRING should contain the name of a specific exception
9582 that the catchpoint should catch, or NULL otherwise.
9583
9584 The idea behind all the remaining parameters is that their names match
9585 the name of certain fields in the breakpoint structure that are used to
9586 handle exception catchpoints. This function returns the value to which
9587 these fields should be set, depending on the type of catchpoint we need
9588 to create.
9589
9590 If COND and COND_STRING are both non-NULL, any value they might
9591 hold will be free'ed, and then replaced by newly allocated ones.
9592 These parameters are left untouched otherwise. */
9593
9594static struct symtab_and_line
9595ada_exception_sal (enum exception_catchpoint_kind ex, char *exp_string,
9596 char **addr_string, char **cond_string,
9597 struct expression **cond, struct breakpoint_ops **ops)
9598{
9599 const char *sym_name;
9600 struct symbol *sym;
9601 struct symtab_and_line sal;
9602
9603 /* First lookup the function on which we will break in order to catch
9604 the Ada exceptions requested by the user. */
9605
9606 sym_name = ada_exception_sym_name (ex);
9607 sym = standard_lookup (sym_name, NULL, VAR_DOMAIN);
9608
9609 /* The symbol we're looking up is provided by a unit in the GNAT runtime
9610 that should be compiled with debugging information. As a result, we
9611 expect to find that symbol in the symtabs. If we don't find it, then
9612 the target most likely does not support Ada exceptions, or we cannot
9613 insert exception breakpoints yet, because the GNAT runtime hasn't been
9614 loaded yet. */
9615
9616 /* brobecker/2006-12-26: It is conceivable that the runtime was compiled
9617 in such a way that no debugging information is produced for the symbol
9618 we are looking for. In this case, we could search the minimal symbols
9619 as a fall-back mechanism. This would still be operating in degraded
9620 mode, however, as we would still be missing the debugging information
9621 that is needed in order to extract the name of the exception being
9622 raised (this name is printed in the catchpoint message, and is also
9623 used when trying to catch a specific exception). We do not handle
9624 this case for now. */
9625
9626 if (sym == NULL)
9627 error_breakpoint_runtime_sym_not_found (sym_name);
9628
9629 /* Make sure that the symbol we found corresponds to a function. */
9630 if (SYMBOL_CLASS (sym) != LOC_BLOCK)
9631 error (_("Symbol \"%s\" is not a function (class = %d)"),
9632 sym_name, SYMBOL_CLASS (sym));
9633
9634 sal = find_function_start_sal (sym, 1);
9635
9636 /* Set ADDR_STRING. */
9637
9638 *addr_string = xstrdup (sym_name);
9639
9640 /* Set the COND and COND_STRING (if not NULL). */
9641
9642 if (cond_string != NULL && cond != NULL)
9643 {
9644 if (*cond_string != NULL)
9645 {
9646 xfree (*cond_string);
9647 *cond_string = NULL;
9648 }
9649 if (*cond != NULL)
9650 {
9651 xfree (*cond);
9652 *cond = NULL;
9653 }
9654 if (exp_string != NULL)
9655 {
9656 *cond_string = ada_exception_catchpoint_cond_string (exp_string);
9657 *cond = ada_parse_catchpoint_condition (*cond_string, sal);
9658 }
9659 }
9660
9661 /* Set OPS. */
4b9eee8c 9662 *ops = ada_exception_breakpoint_ops (ex);
f7f9143b
JB
9663
9664 return sal;
9665}
9666
9667/* Parse the arguments (ARGS) of the "catch exception" command.
9668
9669 Set TYPE to the appropriate exception catchpoint type.
9670 If the user asked the catchpoint to catch only a specific
9671 exception, then save the exception name in ADDR_STRING.
9672
9673 See ada_exception_sal for a description of all the remaining
9674 function arguments of this function. */
9675
9676struct symtab_and_line
9677ada_decode_exception_location (char *args, char **addr_string,
9678 char **exp_string, char **cond_string,
9679 struct expression **cond,
9680 struct breakpoint_ops **ops)
9681{
9682 enum exception_catchpoint_kind ex;
9683
9684 catch_ada_exception_command_split (args, &ex, exp_string);
9685 return ada_exception_sal (ex, *exp_string, addr_string, cond_string,
9686 cond, ops);
9687}
9688
9689struct symtab_and_line
9690ada_decode_assert_location (char *args, char **addr_string,
9691 struct breakpoint_ops **ops)
9692{
9693 /* Check that no argument where provided at the end of the command. */
9694
9695 if (args != NULL)
9696 {
9697 while (isspace (*args))
9698 args++;
9699 if (*args != '\0')
9700 error (_("Junk at end of arguments."));
9701 }
9702
9703 return ada_exception_sal (ex_catch_assert, NULL, addr_string, NULL, NULL,
9704 ops);
9705}
9706
4c4b4cd2
PH
9707 /* Operators */
9708/* Information about operators given special treatment in functions
9709 below. */
9710/* Format: OP_DEFN (<operator>, <operator length>, <# args>, <binop>). */
9711
9712#define ADA_OPERATORS \
9713 OP_DEFN (OP_VAR_VALUE, 4, 0, 0) \
9714 OP_DEFN (BINOP_IN_BOUNDS, 3, 2, 0) \
9715 OP_DEFN (TERNOP_IN_RANGE, 1, 3, 0) \
9716 OP_DEFN (OP_ATR_FIRST, 1, 2, 0) \
9717 OP_DEFN (OP_ATR_LAST, 1, 2, 0) \
9718 OP_DEFN (OP_ATR_LENGTH, 1, 2, 0) \
9719 OP_DEFN (OP_ATR_IMAGE, 1, 2, 0) \
9720 OP_DEFN (OP_ATR_MAX, 1, 3, 0) \
9721 OP_DEFN (OP_ATR_MIN, 1, 3, 0) \
9722 OP_DEFN (OP_ATR_MODULUS, 1, 1, 0) \
9723 OP_DEFN (OP_ATR_POS, 1, 2, 0) \
9724 OP_DEFN (OP_ATR_SIZE, 1, 1, 0) \
9725 OP_DEFN (OP_ATR_TAG, 1, 1, 0) \
9726 OP_DEFN (OP_ATR_VAL, 1, 2, 0) \
9727 OP_DEFN (UNOP_QUAL, 3, 1, 0) \
52ce6436
PH
9728 OP_DEFN (UNOP_IN_RANGE, 3, 1, 0) \
9729 OP_DEFN (OP_OTHERS, 1, 1, 0) \
9730 OP_DEFN (OP_POSITIONAL, 3, 1, 0) \
9731 OP_DEFN (OP_DISCRETE_RANGE, 1, 2, 0)
4c4b4cd2
PH
9732
9733static void
9734ada_operator_length (struct expression *exp, int pc, int *oplenp, int *argsp)
9735{
9736 switch (exp->elts[pc - 1].opcode)
9737 {
76a01679 9738 default:
4c4b4cd2
PH
9739 operator_length_standard (exp, pc, oplenp, argsp);
9740 break;
9741
9742#define OP_DEFN(op, len, args, binop) \
9743 case op: *oplenp = len; *argsp = args; break;
9744 ADA_OPERATORS;
9745#undef OP_DEFN
52ce6436
PH
9746
9747 case OP_AGGREGATE:
9748 *oplenp = 3;
9749 *argsp = longest_to_int (exp->elts[pc - 2].longconst);
9750 break;
9751
9752 case OP_CHOICES:
9753 *oplenp = 3;
9754 *argsp = longest_to_int (exp->elts[pc - 2].longconst) + 1;
9755 break;
4c4b4cd2
PH
9756 }
9757}
9758
9759static char *
9760ada_op_name (enum exp_opcode opcode)
9761{
9762 switch (opcode)
9763 {
76a01679 9764 default:
4c4b4cd2 9765 return op_name_standard (opcode);
52ce6436 9766
4c4b4cd2
PH
9767#define OP_DEFN(op, len, args, binop) case op: return #op;
9768 ADA_OPERATORS;
9769#undef OP_DEFN
52ce6436
PH
9770
9771 case OP_AGGREGATE:
9772 return "OP_AGGREGATE";
9773 case OP_CHOICES:
9774 return "OP_CHOICES";
9775 case OP_NAME:
9776 return "OP_NAME";
4c4b4cd2
PH
9777 }
9778}
9779
9780/* As for operator_length, but assumes PC is pointing at the first
9781 element of the operator, and gives meaningful results only for the
52ce6436 9782 Ada-specific operators, returning 0 for *OPLENP and *ARGSP otherwise. */
4c4b4cd2
PH
9783
9784static void
76a01679
JB
9785ada_forward_operator_length (struct expression *exp, int pc,
9786 int *oplenp, int *argsp)
4c4b4cd2 9787{
76a01679 9788 switch (exp->elts[pc].opcode)
4c4b4cd2
PH
9789 {
9790 default:
9791 *oplenp = *argsp = 0;
9792 break;
52ce6436 9793
4c4b4cd2
PH
9794#define OP_DEFN(op, len, args, binop) \
9795 case op: *oplenp = len; *argsp = args; break;
9796 ADA_OPERATORS;
9797#undef OP_DEFN
52ce6436
PH
9798
9799 case OP_AGGREGATE:
9800 *oplenp = 3;
9801 *argsp = longest_to_int (exp->elts[pc + 1].longconst);
9802 break;
9803
9804 case OP_CHOICES:
9805 *oplenp = 3;
9806 *argsp = longest_to_int (exp->elts[pc + 1].longconst) + 1;
9807 break;
9808
9809 case OP_STRING:
9810 case OP_NAME:
9811 {
9812 int len = longest_to_int (exp->elts[pc + 1].longconst);
9813 *oplenp = 4 + BYTES_TO_EXP_ELEM (len + 1);
9814 *argsp = 0;
9815 break;
9816 }
4c4b4cd2
PH
9817 }
9818}
9819
9820static int
9821ada_dump_subexp_body (struct expression *exp, struct ui_file *stream, int elt)
9822{
9823 enum exp_opcode op = exp->elts[elt].opcode;
9824 int oplen, nargs;
9825 int pc = elt;
9826 int i;
76a01679 9827
4c4b4cd2
PH
9828 ada_forward_operator_length (exp, elt, &oplen, &nargs);
9829
76a01679 9830 switch (op)
4c4b4cd2 9831 {
76a01679 9832 /* Ada attributes ('Foo). */
4c4b4cd2
PH
9833 case OP_ATR_FIRST:
9834 case OP_ATR_LAST:
9835 case OP_ATR_LENGTH:
9836 case OP_ATR_IMAGE:
9837 case OP_ATR_MAX:
9838 case OP_ATR_MIN:
9839 case OP_ATR_MODULUS:
9840 case OP_ATR_POS:
9841 case OP_ATR_SIZE:
9842 case OP_ATR_TAG:
9843 case OP_ATR_VAL:
9844 break;
9845
9846 case UNOP_IN_RANGE:
9847 case UNOP_QUAL:
323e0a4a
AC
9848 /* XXX: gdb_sprint_host_address, type_sprint */
9849 fprintf_filtered (stream, _("Type @"));
4c4b4cd2
PH
9850 gdb_print_host_address (exp->elts[pc + 1].type, stream);
9851 fprintf_filtered (stream, " (");
9852 type_print (exp->elts[pc + 1].type, NULL, stream, 0);
9853 fprintf_filtered (stream, ")");
9854 break;
9855 case BINOP_IN_BOUNDS:
52ce6436
PH
9856 fprintf_filtered (stream, " (%d)",
9857 longest_to_int (exp->elts[pc + 2].longconst));
4c4b4cd2
PH
9858 break;
9859 case TERNOP_IN_RANGE:
9860 break;
9861
52ce6436
PH
9862 case OP_AGGREGATE:
9863 case OP_OTHERS:
9864 case OP_DISCRETE_RANGE:
9865 case OP_POSITIONAL:
9866 case OP_CHOICES:
9867 break;
9868
9869 case OP_NAME:
9870 case OP_STRING:
9871 {
9872 char *name = &exp->elts[elt + 2].string;
9873 int len = longest_to_int (exp->elts[elt + 1].longconst);
9874 fprintf_filtered (stream, "Text: `%.*s'", len, name);
9875 break;
9876 }
9877
4c4b4cd2
PH
9878 default:
9879 return dump_subexp_body_standard (exp, stream, elt);
9880 }
9881
9882 elt += oplen;
9883 for (i = 0; i < nargs; i += 1)
9884 elt = dump_subexp (exp, stream, elt);
9885
9886 return elt;
9887}
9888
9889/* The Ada extension of print_subexp (q.v.). */
9890
76a01679
JB
9891static void
9892ada_print_subexp (struct expression *exp, int *pos,
9893 struct ui_file *stream, enum precedence prec)
4c4b4cd2 9894{
52ce6436 9895 int oplen, nargs, i;
4c4b4cd2
PH
9896 int pc = *pos;
9897 enum exp_opcode op = exp->elts[pc].opcode;
9898
9899 ada_forward_operator_length (exp, pc, &oplen, &nargs);
9900
52ce6436 9901 *pos += oplen;
4c4b4cd2
PH
9902 switch (op)
9903 {
9904 default:
52ce6436 9905 *pos -= oplen;
4c4b4cd2
PH
9906 print_subexp_standard (exp, pos, stream, prec);
9907 return;
9908
9909 case OP_VAR_VALUE:
4c4b4cd2
PH
9910 fputs_filtered (SYMBOL_NATURAL_NAME (exp->elts[pc + 2].symbol), stream);
9911 return;
9912
9913 case BINOP_IN_BOUNDS:
323e0a4a 9914 /* XXX: sprint_subexp */
4c4b4cd2 9915 print_subexp (exp, pos, stream, PREC_SUFFIX);
0b48a291 9916 fputs_filtered (" in ", stream);
4c4b4cd2 9917 print_subexp (exp, pos, stream, PREC_SUFFIX);
0b48a291 9918 fputs_filtered ("'range", stream);
4c4b4cd2 9919 if (exp->elts[pc + 1].longconst > 1)
76a01679
JB
9920 fprintf_filtered (stream, "(%ld)",
9921 (long) exp->elts[pc + 1].longconst);
4c4b4cd2
PH
9922 return;
9923
9924 case TERNOP_IN_RANGE:
4c4b4cd2 9925 if (prec >= PREC_EQUAL)
76a01679 9926 fputs_filtered ("(", stream);
323e0a4a 9927 /* XXX: sprint_subexp */
4c4b4cd2 9928 print_subexp (exp, pos, stream, PREC_SUFFIX);
0b48a291 9929 fputs_filtered (" in ", stream);
4c4b4cd2
PH
9930 print_subexp (exp, pos, stream, PREC_EQUAL);
9931 fputs_filtered (" .. ", stream);
9932 print_subexp (exp, pos, stream, PREC_EQUAL);
9933 if (prec >= PREC_EQUAL)
76a01679
JB
9934 fputs_filtered (")", stream);
9935 return;
4c4b4cd2
PH
9936
9937 case OP_ATR_FIRST:
9938 case OP_ATR_LAST:
9939 case OP_ATR_LENGTH:
9940 case OP_ATR_IMAGE:
9941 case OP_ATR_MAX:
9942 case OP_ATR_MIN:
9943 case OP_ATR_MODULUS:
9944 case OP_ATR_POS:
9945 case OP_ATR_SIZE:
9946 case OP_ATR_TAG:
9947 case OP_ATR_VAL:
4c4b4cd2 9948 if (exp->elts[*pos].opcode == OP_TYPE)
76a01679
JB
9949 {
9950 if (TYPE_CODE (exp->elts[*pos + 1].type) != TYPE_CODE_VOID)
9951 LA_PRINT_TYPE (exp->elts[*pos + 1].type, "", stream, 0, 0);
9952 *pos += 3;
9953 }
4c4b4cd2 9954 else
76a01679 9955 print_subexp (exp, pos, stream, PREC_SUFFIX);
4c4b4cd2
PH
9956 fprintf_filtered (stream, "'%s", ada_attribute_name (op));
9957 if (nargs > 1)
76a01679
JB
9958 {
9959 int tem;
9960 for (tem = 1; tem < nargs; tem += 1)
9961 {
9962 fputs_filtered ((tem == 1) ? " (" : ", ", stream);
9963 print_subexp (exp, pos, stream, PREC_ABOVE_COMMA);
9964 }
9965 fputs_filtered (")", stream);
9966 }
4c4b4cd2 9967 return;
14f9c5c9 9968
4c4b4cd2 9969 case UNOP_QUAL:
4c4b4cd2
PH
9970 type_print (exp->elts[pc + 1].type, "", stream, 0);
9971 fputs_filtered ("'(", stream);
9972 print_subexp (exp, pos, stream, PREC_PREFIX);
9973 fputs_filtered (")", stream);
9974 return;
14f9c5c9 9975
4c4b4cd2 9976 case UNOP_IN_RANGE:
323e0a4a 9977 /* XXX: sprint_subexp */
4c4b4cd2 9978 print_subexp (exp, pos, stream, PREC_SUFFIX);
0b48a291 9979 fputs_filtered (" in ", stream);
4c4b4cd2
PH
9980 LA_PRINT_TYPE (exp->elts[pc + 1].type, "", stream, 1, 0);
9981 return;
52ce6436
PH
9982
9983 case OP_DISCRETE_RANGE:
9984 print_subexp (exp, pos, stream, PREC_SUFFIX);
9985 fputs_filtered ("..", stream);
9986 print_subexp (exp, pos, stream, PREC_SUFFIX);
9987 return;
9988
9989 case OP_OTHERS:
9990 fputs_filtered ("others => ", stream);
9991 print_subexp (exp, pos, stream, PREC_SUFFIX);
9992 return;
9993
9994 case OP_CHOICES:
9995 for (i = 0; i < nargs-1; i += 1)
9996 {
9997 if (i > 0)
9998 fputs_filtered ("|", stream);
9999 print_subexp (exp, pos, stream, PREC_SUFFIX);
10000 }
10001 fputs_filtered (" => ", stream);
10002 print_subexp (exp, pos, stream, PREC_SUFFIX);
10003 return;
10004
10005 case OP_POSITIONAL:
10006 print_subexp (exp, pos, stream, PREC_SUFFIX);
10007 return;
10008
10009 case OP_AGGREGATE:
10010 fputs_filtered ("(", stream);
10011 for (i = 0; i < nargs; i += 1)
10012 {
10013 if (i > 0)
10014 fputs_filtered (", ", stream);
10015 print_subexp (exp, pos, stream, PREC_SUFFIX);
10016 }
10017 fputs_filtered (")", stream);
10018 return;
4c4b4cd2
PH
10019 }
10020}
14f9c5c9
AS
10021
10022/* Table mapping opcodes into strings for printing operators
10023 and precedences of the operators. */
10024
d2e4a39e
AS
10025static const struct op_print ada_op_print_tab[] = {
10026 {":=", BINOP_ASSIGN, PREC_ASSIGN, 1},
10027 {"or else", BINOP_LOGICAL_OR, PREC_LOGICAL_OR, 0},
10028 {"and then", BINOP_LOGICAL_AND, PREC_LOGICAL_AND, 0},
10029 {"or", BINOP_BITWISE_IOR, PREC_BITWISE_IOR, 0},
10030 {"xor", BINOP_BITWISE_XOR, PREC_BITWISE_XOR, 0},
10031 {"and", BINOP_BITWISE_AND, PREC_BITWISE_AND, 0},
10032 {"=", BINOP_EQUAL, PREC_EQUAL, 0},
10033 {"/=", BINOP_NOTEQUAL, PREC_EQUAL, 0},
10034 {"<=", BINOP_LEQ, PREC_ORDER, 0},
10035 {">=", BINOP_GEQ, PREC_ORDER, 0},
10036 {">", BINOP_GTR, PREC_ORDER, 0},
10037 {"<", BINOP_LESS, PREC_ORDER, 0},
10038 {">>", BINOP_RSH, PREC_SHIFT, 0},
10039 {"<<", BINOP_LSH, PREC_SHIFT, 0},
10040 {"+", BINOP_ADD, PREC_ADD, 0},
10041 {"-", BINOP_SUB, PREC_ADD, 0},
10042 {"&", BINOP_CONCAT, PREC_ADD, 0},
10043 {"*", BINOP_MUL, PREC_MUL, 0},
10044 {"/", BINOP_DIV, PREC_MUL, 0},
10045 {"rem", BINOP_REM, PREC_MUL, 0},
10046 {"mod", BINOP_MOD, PREC_MUL, 0},
10047 {"**", BINOP_EXP, PREC_REPEAT, 0},
10048 {"@", BINOP_REPEAT, PREC_REPEAT, 0},
10049 {"-", UNOP_NEG, PREC_PREFIX, 0},
10050 {"+", UNOP_PLUS, PREC_PREFIX, 0},
10051 {"not ", UNOP_LOGICAL_NOT, PREC_PREFIX, 0},
10052 {"not ", UNOP_COMPLEMENT, PREC_PREFIX, 0},
10053 {"abs ", UNOP_ABS, PREC_PREFIX, 0},
4c4b4cd2
PH
10054 {".all", UNOP_IND, PREC_SUFFIX, 1},
10055 {"'access", UNOP_ADDR, PREC_SUFFIX, 1},
10056 {"'size", OP_ATR_SIZE, PREC_SUFFIX, 1},
d2e4a39e 10057 {NULL, 0, 0, 0}
14f9c5c9
AS
10058};
10059\f
6c038f32 10060 /* Fundamental Ada Types */
14f9c5c9
AS
10061
10062/* Create a fundamental Ada type using default reasonable for the current
10063 target machine.
10064
10065 Some object/debugging file formats (DWARF version 1, COFF, etc) do not
10066 define fundamental types such as "int" or "double". Others (stabs or
10067 DWARF version 2, etc) do define fundamental types. For the formats which
10068 don't provide fundamental types, gdb can create such types using this
10069 function.
10070
10071 FIXME: Some compilers distinguish explicitly signed integral types
10072 (signed short, signed int, signed long) from "regular" integral types
10073 (short, int, long) in the debugging information. There is some dis-
10074 agreement as to how useful this feature is. In particular, gcc does
10075 not support this. Also, only some debugging formats allow the
10076 distinction to be passed on to a debugger. For now, we always just
10077 use "short", "int", or "long" as the type name, for both the implicit
10078 and explicitly signed types. This also makes life easier for the
10079 gdb test suite since we don't have to account for the differences
10080 in output depending upon what the compiler and debugging format
10081 support. We will probably have to re-examine the issue when gdb
10082 starts taking it's fundamental type information directly from the
10083 debugging information supplied by the compiler. fnf@cygnus.com */
10084
10085static struct type *
ebf56fd3 10086ada_create_fundamental_type (struct objfile *objfile, int typeid)
14f9c5c9
AS
10087{
10088 struct type *type = NULL;
10089
10090 switch (typeid)
10091 {
d2e4a39e
AS
10092 default:
10093 /* FIXME: For now, if we are asked to produce a type not in this
10094 language, create the equivalent of a C integer type with the
10095 name "<?type?>". When all the dust settles from the type
4c4b4cd2 10096 reconstruction work, this should probably become an error. */
d2e4a39e 10097 type = init_type (TYPE_CODE_INT,
4c4b4cd2
PH
10098 TARGET_INT_BIT / TARGET_CHAR_BIT,
10099 0, "<?type?>", objfile);
323e0a4a 10100 warning (_("internal error: no Ada fundamental type %d"), typeid);
d2e4a39e
AS
10101 break;
10102 case FT_VOID:
10103 type = init_type (TYPE_CODE_VOID,
4c4b4cd2
PH
10104 TARGET_CHAR_BIT / TARGET_CHAR_BIT,
10105 0, "void", objfile);
d2e4a39e
AS
10106 break;
10107 case FT_CHAR:
10108 type = init_type (TYPE_CODE_INT,
4c4b4cd2
PH
10109 TARGET_CHAR_BIT / TARGET_CHAR_BIT,
10110 0, "character", objfile);
d2e4a39e
AS
10111 break;
10112 case FT_SIGNED_CHAR:
10113 type = init_type (TYPE_CODE_INT,
4c4b4cd2
PH
10114 TARGET_CHAR_BIT / TARGET_CHAR_BIT,
10115 0, "signed char", objfile);
d2e4a39e
AS
10116 break;
10117 case FT_UNSIGNED_CHAR:
10118 type = init_type (TYPE_CODE_INT,
4c4b4cd2
PH
10119 TARGET_CHAR_BIT / TARGET_CHAR_BIT,
10120 TYPE_FLAG_UNSIGNED, "unsigned char", objfile);
d2e4a39e
AS
10121 break;
10122 case FT_SHORT:
10123 type = init_type (TYPE_CODE_INT,
4c4b4cd2
PH
10124 TARGET_SHORT_BIT / TARGET_CHAR_BIT,
10125 0, "short_integer", objfile);
d2e4a39e
AS
10126 break;
10127 case FT_SIGNED_SHORT:
10128 type = init_type (TYPE_CODE_INT,
4c4b4cd2
PH
10129 TARGET_SHORT_BIT / TARGET_CHAR_BIT,
10130 0, "short_integer", objfile);
d2e4a39e
AS
10131 break;
10132 case FT_UNSIGNED_SHORT:
10133 type = init_type (TYPE_CODE_INT,
4c4b4cd2
PH
10134 TARGET_SHORT_BIT / TARGET_CHAR_BIT,
10135 TYPE_FLAG_UNSIGNED, "unsigned short", objfile);
d2e4a39e
AS
10136 break;
10137 case FT_INTEGER:
10138 type = init_type (TYPE_CODE_INT,
4c4b4cd2
PH
10139 TARGET_INT_BIT / TARGET_CHAR_BIT,
10140 0, "integer", objfile);
d2e4a39e
AS
10141 break;
10142 case FT_SIGNED_INTEGER:
72d5681a
PH
10143 type = init_type (TYPE_CODE_INT, TARGET_INT_BIT /
10144 TARGET_CHAR_BIT,
10145 0, "integer", objfile); /* FIXME -fnf */
d2e4a39e
AS
10146 break;
10147 case FT_UNSIGNED_INTEGER:
10148 type = init_type (TYPE_CODE_INT,
4c4b4cd2
PH
10149 TARGET_INT_BIT / TARGET_CHAR_BIT,
10150 TYPE_FLAG_UNSIGNED, "unsigned int", objfile);
d2e4a39e
AS
10151 break;
10152 case FT_LONG:
10153 type = init_type (TYPE_CODE_INT,
4c4b4cd2
PH
10154 TARGET_LONG_BIT / TARGET_CHAR_BIT,
10155 0, "long_integer", objfile);
d2e4a39e
AS
10156 break;
10157 case FT_SIGNED_LONG:
10158 type = init_type (TYPE_CODE_INT,
4c4b4cd2
PH
10159 TARGET_LONG_BIT / TARGET_CHAR_BIT,
10160 0, "long_integer", objfile);
d2e4a39e
AS
10161 break;
10162 case FT_UNSIGNED_LONG:
10163 type = init_type (TYPE_CODE_INT,
4c4b4cd2
PH
10164 TARGET_LONG_BIT / TARGET_CHAR_BIT,
10165 TYPE_FLAG_UNSIGNED, "unsigned long", objfile);
d2e4a39e
AS
10166 break;
10167 case FT_LONG_LONG:
10168 type = init_type (TYPE_CODE_INT,
4c4b4cd2
PH
10169 TARGET_LONG_LONG_BIT / TARGET_CHAR_BIT,
10170 0, "long_long_integer", objfile);
d2e4a39e
AS
10171 break;
10172 case FT_SIGNED_LONG_LONG:
10173 type = init_type (TYPE_CODE_INT,
4c4b4cd2
PH
10174 TARGET_LONG_LONG_BIT / TARGET_CHAR_BIT,
10175 0, "long_long_integer", objfile);
d2e4a39e
AS
10176 break;
10177 case FT_UNSIGNED_LONG_LONG:
10178 type = init_type (TYPE_CODE_INT,
4c4b4cd2
PH
10179 TARGET_LONG_LONG_BIT / TARGET_CHAR_BIT,
10180 TYPE_FLAG_UNSIGNED, "unsigned long long", objfile);
d2e4a39e
AS
10181 break;
10182 case FT_FLOAT:
10183 type = init_type (TYPE_CODE_FLT,
4c4b4cd2
PH
10184 TARGET_FLOAT_BIT / TARGET_CHAR_BIT,
10185 0, "float", objfile);
d2e4a39e
AS
10186 break;
10187 case FT_DBL_PREC_FLOAT:
10188 type = init_type (TYPE_CODE_FLT,
4c4b4cd2
PH
10189 TARGET_DOUBLE_BIT / TARGET_CHAR_BIT,
10190 0, "long_float", objfile);
d2e4a39e
AS
10191 break;
10192 case FT_EXT_PREC_FLOAT:
10193 type = init_type (TYPE_CODE_FLT,
4c4b4cd2
PH
10194 TARGET_LONG_DOUBLE_BIT / TARGET_CHAR_BIT,
10195 0, "long_long_float", objfile);
d2e4a39e
AS
10196 break;
10197 }
14f9c5c9
AS
10198 return (type);
10199}
10200
72d5681a
PH
10201enum ada_primitive_types {
10202 ada_primitive_type_int,
10203 ada_primitive_type_long,
10204 ada_primitive_type_short,
10205 ada_primitive_type_char,
10206 ada_primitive_type_float,
10207 ada_primitive_type_double,
10208 ada_primitive_type_void,
10209 ada_primitive_type_long_long,
10210 ada_primitive_type_long_double,
10211 ada_primitive_type_natural,
10212 ada_primitive_type_positive,
10213 ada_primitive_type_system_address,
10214 nr_ada_primitive_types
10215};
6c038f32
PH
10216
10217static void
72d5681a
PH
10218ada_language_arch_info (struct gdbarch *current_gdbarch,
10219 struct language_arch_info *lai)
10220{
10221 const struct builtin_type *builtin = builtin_type (current_gdbarch);
10222 lai->primitive_type_vector
10223 = GDBARCH_OBSTACK_CALLOC (current_gdbarch, nr_ada_primitive_types + 1,
10224 struct type *);
10225 lai->primitive_type_vector [ada_primitive_type_int] =
6c038f32
PH
10226 init_type (TYPE_CODE_INT, TARGET_INT_BIT / TARGET_CHAR_BIT,
10227 0, "integer", (struct objfile *) NULL);
72d5681a 10228 lai->primitive_type_vector [ada_primitive_type_long] =
6c038f32
PH
10229 init_type (TYPE_CODE_INT, TARGET_LONG_BIT / TARGET_CHAR_BIT,
10230 0, "long_integer", (struct objfile *) NULL);
72d5681a 10231 lai->primitive_type_vector [ada_primitive_type_short] =
6c038f32
PH
10232 init_type (TYPE_CODE_INT, TARGET_SHORT_BIT / TARGET_CHAR_BIT,
10233 0, "short_integer", (struct objfile *) NULL);
61ee279c
PH
10234 lai->string_char_type =
10235 lai->primitive_type_vector [ada_primitive_type_char] =
6c038f32
PH
10236 init_type (TYPE_CODE_INT, TARGET_CHAR_BIT / TARGET_CHAR_BIT,
10237 0, "character", (struct objfile *) NULL);
72d5681a 10238 lai->primitive_type_vector [ada_primitive_type_float] =
6c038f32
PH
10239 init_type (TYPE_CODE_FLT, TARGET_FLOAT_BIT / TARGET_CHAR_BIT,
10240 0, "float", (struct objfile *) NULL);
72d5681a 10241 lai->primitive_type_vector [ada_primitive_type_double] =
6c038f32
PH
10242 init_type (TYPE_CODE_FLT, TARGET_DOUBLE_BIT / TARGET_CHAR_BIT,
10243 0, "long_float", (struct objfile *) NULL);
72d5681a 10244 lai->primitive_type_vector [ada_primitive_type_long_long] =
6c038f32
PH
10245 init_type (TYPE_CODE_INT, TARGET_LONG_LONG_BIT / TARGET_CHAR_BIT,
10246 0, "long_long_integer", (struct objfile *) NULL);
72d5681a 10247 lai->primitive_type_vector [ada_primitive_type_long_double] =
6c038f32
PH
10248 init_type (TYPE_CODE_FLT, TARGET_LONG_DOUBLE_BIT / TARGET_CHAR_BIT,
10249 0, "long_long_float", (struct objfile *) NULL);
72d5681a 10250 lai->primitive_type_vector [ada_primitive_type_natural] =
6c038f32
PH
10251 init_type (TYPE_CODE_INT, TARGET_INT_BIT / TARGET_CHAR_BIT,
10252 0, "natural", (struct objfile *) NULL);
72d5681a 10253 lai->primitive_type_vector [ada_primitive_type_positive] =
6c038f32
PH
10254 init_type (TYPE_CODE_INT, TARGET_INT_BIT / TARGET_CHAR_BIT,
10255 0, "positive", (struct objfile *) NULL);
72d5681a 10256 lai->primitive_type_vector [ada_primitive_type_void] = builtin->builtin_void;
6c038f32 10257
72d5681a 10258 lai->primitive_type_vector [ada_primitive_type_system_address] =
6c038f32
PH
10259 lookup_pointer_type (init_type (TYPE_CODE_VOID, 1, 0, "void",
10260 (struct objfile *) NULL));
72d5681a
PH
10261 TYPE_NAME (lai->primitive_type_vector [ada_primitive_type_system_address])
10262 = "system__address";
6c038f32 10263}
6c038f32
PH
10264\f
10265 /* Language vector */
10266
10267/* Not really used, but needed in the ada_language_defn. */
10268
10269static void
10270emit_char (int c, struct ui_file *stream, int quoter)
10271{
10272 ada_emit_char (c, stream, quoter, 1);
10273}
10274
10275static int
10276parse (void)
10277{
10278 warnings_issued = 0;
10279 return ada_parse ();
10280}
10281
10282static const struct exp_descriptor ada_exp_descriptor = {
10283 ada_print_subexp,
10284 ada_operator_length,
10285 ada_op_name,
10286 ada_dump_subexp_body,
10287 ada_evaluate_subexp
10288};
10289
10290const struct language_defn ada_language_defn = {
10291 "ada", /* Language name */
10292 language_ada,
72d5681a 10293 NULL,
6c038f32
PH
10294 range_check_off,
10295 type_check_off,
10296 case_sensitive_on, /* Yes, Ada is case-insensitive, but
10297 that's not quite what this means. */
6c038f32
PH
10298 array_row_major,
10299 &ada_exp_descriptor,
10300 parse,
10301 ada_error,
10302 resolve,
10303 ada_printchar, /* Print a character constant */
10304 ada_printstr, /* Function to print string constant */
10305 emit_char, /* Function to print single char (not used) */
10306 ada_create_fundamental_type, /* Create fundamental type in this language */
10307 ada_print_type, /* Print a type using appropriate syntax */
10308 ada_val_print, /* Print a value using appropriate syntax */
10309 ada_value_print, /* Print a top-level value */
10310 NULL, /* Language specific skip_trampoline */
10311 NULL, /* value_of_this */
10312 ada_lookup_symbol_nonlocal, /* Looking up non-local symbols. */
10313 basic_lookup_transparent_type, /* lookup_transparent_type */
10314 ada_la_decode, /* Language specific symbol demangler */
10315 NULL, /* Language specific class_name_from_physname */
10316 ada_op_print_tab, /* expression operators for printing */
10317 0, /* c-style arrays */
10318 1, /* String lower bound */
72d5681a 10319 NULL,
6c038f32 10320 ada_get_gdb_completer_word_break_characters,
72d5681a 10321 ada_language_arch_info,
e79af960 10322 ada_print_array_index,
6c038f32
PH
10323 LANG_MAGIC
10324};
10325
d2e4a39e 10326void
6c038f32 10327_initialize_ada_language (void)
14f9c5c9 10328{
6c038f32
PH
10329 add_language (&ada_language_defn);
10330
10331 varsize_limit = 65536;
6c038f32
PH
10332
10333 obstack_init (&symbol_list_obstack);
10334
10335 decoded_names_store = htab_create_alloc
10336 (256, htab_hash_string, (int (*)(const void *, const void *)) streq,
10337 NULL, xcalloc, xfree);
14f9c5c9 10338}