Adjust Value.location for lval_register
[deliverable/binutils-gdb.git] / gdb / dwarf2loc.c
CommitLineData
4c2df51b 1/* DWARF 2 location expression support for GDB.
feb13ab0 2
618f726f 3 Copyright (C) 2003-2016 Free Software Foundation, Inc.
feb13ab0 4
4c2df51b
DJ
5 Contributed by Daniel Jacobowitz, MontaVista Software, Inc.
6
7 This file is part of GDB.
8
9 This program is free software; you can redistribute it and/or modify
10 it under the terms of the GNU General Public License as published by
a9762ec7
JB
11 the Free Software Foundation; either version 3 of the License, or
12 (at your option) any later version.
4c2df51b 13
a9762ec7
JB
14 This program is distributed in the hope that it will be useful,
15 but WITHOUT ANY WARRANTY; without even the implied warranty of
16 MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
17 GNU General Public License for more details.
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DJ
18
19 You should have received a copy of the GNU General Public License
a9762ec7 20 along with this program. If not, see <http://www.gnu.org/licenses/>. */
4c2df51b
DJ
21
22#include "defs.h"
23#include "ui-out.h"
24#include "value.h"
25#include "frame.h"
26#include "gdbcore.h"
27#include "target.h"
28#include "inferior.h"
a55cc764
DJ
29#include "ax.h"
30#include "ax-gdb.h"
e4adbba9 31#include "regcache.h"
c3228f12 32#include "objfiles.h"
edb3359d 33#include "block.h"
8e3b41a9 34#include "gdbcmd.h"
0fde2c53 35#include "complaints.h"
fa8f86ff 36#include "dwarf2.h"
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DJ
37#include "dwarf2expr.h"
38#include "dwarf2loc.h"
e7802207 39#include "dwarf2-frame.h"
bb2ec1b3 40#include "compile/compile.h"
ad06383f 41#include "selftest.h"
325fac50 42#include <algorithm>
58414334 43#include <vector>
4c2df51b 44
b4f54984 45extern int dwarf_always_disassemble;
9eae7c52 46
1632a688
JK
47static struct value *dwarf2_evaluate_loc_desc_full (struct type *type,
48 struct frame_info *frame,
49 const gdb_byte *data,
56eb65bd
SP
50 size_t size,
51 struct dwarf2_per_cu_data *per_cu,
1632a688 52 LONGEST byte_offset);
8cf6f0b1 53
192ca6d8
TT
54static struct call_site_parameter *dwarf_expr_reg_to_entry_parameter
55 (struct frame_info *frame,
56 enum call_site_parameter_kind kind,
57 union call_site_parameter_u kind_u,
58 struct dwarf2_per_cu_data **per_cu_return);
59
f664829e
DE
60/* Until these have formal names, we define these here.
61 ref: http://gcc.gnu.org/wiki/DebugFission
62 Each entry in .debug_loc.dwo begins with a byte that describes the entry,
63 and is then followed by data specific to that entry. */
64
65enum debug_loc_kind
66{
67 /* Indicates the end of the list of entries. */
68 DEBUG_LOC_END_OF_LIST = 0,
69
70 /* This is followed by an unsigned LEB128 number that is an index into
71 .debug_addr and specifies the base address for all following entries. */
72 DEBUG_LOC_BASE_ADDRESS = 1,
73
74 /* This is followed by two unsigned LEB128 numbers that are indices into
75 .debug_addr and specify the beginning and ending addresses, and then
76 a normal location expression as in .debug_loc. */
3771a44c
DE
77 DEBUG_LOC_START_END = 2,
78
79 /* This is followed by an unsigned LEB128 number that is an index into
80 .debug_addr and specifies the beginning address, and a 4 byte unsigned
81 number that specifies the length, and then a normal location expression
82 as in .debug_loc. */
83 DEBUG_LOC_START_LENGTH = 3,
f664829e
DE
84
85 /* An internal value indicating there is insufficient data. */
86 DEBUG_LOC_BUFFER_OVERFLOW = -1,
87
88 /* An internal value indicating an invalid kind of entry was found. */
89 DEBUG_LOC_INVALID_ENTRY = -2
90};
91
b6807d98
TT
92/* Helper function which throws an error if a synthetic pointer is
93 invalid. */
94
95static void
96invalid_synthetic_pointer (void)
97{
98 error (_("access outside bounds of object "
99 "referenced via synthetic pointer"));
100}
101
f664829e
DE
102/* Decode the addresses in a non-dwo .debug_loc entry.
103 A pointer to the next byte to examine is returned in *NEW_PTR.
104 The encoded low,high addresses are return in *LOW,*HIGH.
105 The result indicates the kind of entry found. */
106
107static enum debug_loc_kind
108decode_debug_loc_addresses (const gdb_byte *loc_ptr, const gdb_byte *buf_end,
109 const gdb_byte **new_ptr,
110 CORE_ADDR *low, CORE_ADDR *high,
111 enum bfd_endian byte_order,
112 unsigned int addr_size,
113 int signed_addr_p)
114{
115 CORE_ADDR base_mask = ~(~(CORE_ADDR)1 << (addr_size * 8 - 1));
116
117 if (buf_end - loc_ptr < 2 * addr_size)
118 return DEBUG_LOC_BUFFER_OVERFLOW;
119
120 if (signed_addr_p)
121 *low = extract_signed_integer (loc_ptr, addr_size, byte_order);
122 else
123 *low = extract_unsigned_integer (loc_ptr, addr_size, byte_order);
124 loc_ptr += addr_size;
125
126 if (signed_addr_p)
127 *high = extract_signed_integer (loc_ptr, addr_size, byte_order);
128 else
129 *high = extract_unsigned_integer (loc_ptr, addr_size, byte_order);
130 loc_ptr += addr_size;
131
132 *new_ptr = loc_ptr;
133
134 /* A base-address-selection entry. */
135 if ((*low & base_mask) == base_mask)
136 return DEBUG_LOC_BASE_ADDRESS;
137
138 /* An end-of-list entry. */
139 if (*low == 0 && *high == 0)
140 return DEBUG_LOC_END_OF_LIST;
141
3771a44c 142 return DEBUG_LOC_START_END;
f664829e
DE
143}
144
145/* Decode the addresses in .debug_loc.dwo entry.
146 A pointer to the next byte to examine is returned in *NEW_PTR.
147 The encoded low,high addresses are return in *LOW,*HIGH.
148 The result indicates the kind of entry found. */
149
150static enum debug_loc_kind
151decode_debug_loc_dwo_addresses (struct dwarf2_per_cu_data *per_cu,
152 const gdb_byte *loc_ptr,
153 const gdb_byte *buf_end,
154 const gdb_byte **new_ptr,
3771a44c
DE
155 CORE_ADDR *low, CORE_ADDR *high,
156 enum bfd_endian byte_order)
f664829e 157{
9fccedf7 158 uint64_t low_index, high_index;
f664829e
DE
159
160 if (loc_ptr == buf_end)
161 return DEBUG_LOC_BUFFER_OVERFLOW;
162
163 switch (*loc_ptr++)
164 {
165 case DEBUG_LOC_END_OF_LIST:
166 *new_ptr = loc_ptr;
167 return DEBUG_LOC_END_OF_LIST;
168 case DEBUG_LOC_BASE_ADDRESS:
169 *low = 0;
170 loc_ptr = gdb_read_uleb128 (loc_ptr, buf_end, &high_index);
171 if (loc_ptr == NULL)
172 return DEBUG_LOC_BUFFER_OVERFLOW;
173 *high = dwarf2_read_addr_index (per_cu, high_index);
174 *new_ptr = loc_ptr;
175 return DEBUG_LOC_BASE_ADDRESS;
3771a44c 176 case DEBUG_LOC_START_END:
f664829e
DE
177 loc_ptr = gdb_read_uleb128 (loc_ptr, buf_end, &low_index);
178 if (loc_ptr == NULL)
179 return DEBUG_LOC_BUFFER_OVERFLOW;
180 *low = dwarf2_read_addr_index (per_cu, low_index);
181 loc_ptr = gdb_read_uleb128 (loc_ptr, buf_end, &high_index);
182 if (loc_ptr == NULL)
183 return DEBUG_LOC_BUFFER_OVERFLOW;
184 *high = dwarf2_read_addr_index (per_cu, high_index);
185 *new_ptr = loc_ptr;
3771a44c
DE
186 return DEBUG_LOC_START_END;
187 case DEBUG_LOC_START_LENGTH:
188 loc_ptr = gdb_read_uleb128 (loc_ptr, buf_end, &low_index);
189 if (loc_ptr == NULL)
190 return DEBUG_LOC_BUFFER_OVERFLOW;
191 *low = dwarf2_read_addr_index (per_cu, low_index);
192 if (loc_ptr + 4 > buf_end)
193 return DEBUG_LOC_BUFFER_OVERFLOW;
194 *high = *low;
195 *high += extract_unsigned_integer (loc_ptr, 4, byte_order);
196 *new_ptr = loc_ptr + 4;
197 return DEBUG_LOC_START_LENGTH;
f664829e
DE
198 default:
199 return DEBUG_LOC_INVALID_ENTRY;
200 }
201}
202
8cf6f0b1 203/* A function for dealing with location lists. Given a
0d53c4c4
DJ
204 symbol baton (BATON) and a pc value (PC), find the appropriate
205 location expression, set *LOCEXPR_LENGTH, and return a pointer
206 to the beginning of the expression. Returns NULL on failure.
207
208 For now, only return the first matching location expression; there
209 can be more than one in the list. */
210
8cf6f0b1
TT
211const gdb_byte *
212dwarf2_find_location_expression (struct dwarf2_loclist_baton *baton,
213 size_t *locexpr_length, CORE_ADDR pc)
0d53c4c4 214{
ae0d2f24 215 struct objfile *objfile = dwarf2_per_cu_objfile (baton->per_cu);
f7fd4728 216 struct gdbarch *gdbarch = get_objfile_arch (objfile);
e17a4113 217 enum bfd_endian byte_order = gdbarch_byte_order (gdbarch);
ae0d2f24 218 unsigned int addr_size = dwarf2_per_cu_addr_size (baton->per_cu);
d4a087c7 219 int signed_addr_p = bfd_get_sign_extend_vma (objfile->obfd);
8edfa926 220 /* Adjust base_address for relocatable objects. */
9aa1f1e3 221 CORE_ADDR base_offset = dwarf2_per_cu_text_offset (baton->per_cu);
8edfa926 222 CORE_ADDR base_address = baton->base_address + base_offset;
f664829e 223 const gdb_byte *loc_ptr, *buf_end;
0d53c4c4
DJ
224
225 loc_ptr = baton->data;
226 buf_end = baton->data + baton->size;
227
228 while (1)
229 {
f664829e
DE
230 CORE_ADDR low = 0, high = 0; /* init for gcc -Wall */
231 int length;
232 enum debug_loc_kind kind;
233 const gdb_byte *new_ptr = NULL; /* init for gcc -Wall */
234
235 if (baton->from_dwo)
236 kind = decode_debug_loc_dwo_addresses (baton->per_cu,
237 loc_ptr, buf_end, &new_ptr,
3771a44c 238 &low, &high, byte_order);
d4a087c7 239 else
f664829e
DE
240 kind = decode_debug_loc_addresses (loc_ptr, buf_end, &new_ptr,
241 &low, &high,
242 byte_order, addr_size,
243 signed_addr_p);
244 loc_ptr = new_ptr;
245 switch (kind)
1d6edc3c 246 {
f664829e 247 case DEBUG_LOC_END_OF_LIST:
1d6edc3c
JK
248 *locexpr_length = 0;
249 return NULL;
f664829e
DE
250 case DEBUG_LOC_BASE_ADDRESS:
251 base_address = high + base_offset;
252 continue;
3771a44c
DE
253 case DEBUG_LOC_START_END:
254 case DEBUG_LOC_START_LENGTH:
f664829e
DE
255 break;
256 case DEBUG_LOC_BUFFER_OVERFLOW:
257 case DEBUG_LOC_INVALID_ENTRY:
258 error (_("dwarf2_find_location_expression: "
259 "Corrupted DWARF expression."));
260 default:
261 gdb_assert_not_reached ("bad debug_loc_kind");
1d6edc3c 262 }
b5758fe4 263
bed911e5 264 /* Otherwise, a location expression entry.
8ddd5a6c
DE
265 If the entry is from a DWO, don't add base address: the entry is from
266 .debug_addr which already has the DWARF "base address". We still add
267 base_offset in case we're debugging a PIE executable. */
268 if (baton->from_dwo)
269 {
270 low += base_offset;
271 high += base_offset;
272 }
273 else
bed911e5
DE
274 {
275 low += base_address;
276 high += base_address;
277 }
0d53c4c4 278
e17a4113 279 length = extract_unsigned_integer (loc_ptr, 2, byte_order);
0d53c4c4
DJ
280 loc_ptr += 2;
281
e18b2753
JK
282 if (low == high && pc == low)
283 {
284 /* This is entry PC record present only at entry point
285 of a function. Verify it is really the function entry point. */
286
3977b71f 287 const struct block *pc_block = block_for_pc (pc);
e18b2753
JK
288 struct symbol *pc_func = NULL;
289
290 if (pc_block)
291 pc_func = block_linkage_function (pc_block);
292
293 if (pc_func && pc == BLOCK_START (SYMBOL_BLOCK_VALUE (pc_func)))
294 {
295 *locexpr_length = length;
296 return loc_ptr;
297 }
298 }
299
0d53c4c4
DJ
300 if (pc >= low && pc < high)
301 {
302 *locexpr_length = length;
303 return loc_ptr;
304 }
305
306 loc_ptr += length;
307 }
308}
309
4c2df51b
DJ
310/* This is the baton used when performing dwarf2 expression
311 evaluation. */
312struct dwarf_expr_baton
313{
314 struct frame_info *frame;
17ea53c3 315 struct dwarf2_per_cu_data *per_cu;
08412b07 316 CORE_ADDR obj_address;
4c2df51b
DJ
317};
318
f1e6e072
TT
319/* Implement find_frame_base_location method for LOC_BLOCK functions using
320 DWARF expression for its DW_AT_frame_base. */
321
322static void
323locexpr_find_frame_base_location (struct symbol *framefunc, CORE_ADDR pc,
324 const gdb_byte **start, size_t *length)
325{
9a3c8263
SM
326 struct dwarf2_locexpr_baton *symbaton
327 = (struct dwarf2_locexpr_baton *) SYMBOL_LOCATION_BATON (framefunc);
f1e6e072
TT
328
329 *length = symbaton->size;
330 *start = symbaton->data;
331}
332
7d1c9c9b
JB
333/* Implement the struct symbol_block_ops::get_frame_base method for
334 LOC_BLOCK functions using a DWARF expression as its DW_AT_frame_base. */
63e43d3a
PMR
335
336static CORE_ADDR
7d1c9c9b 337locexpr_get_frame_base (struct symbol *framefunc, struct frame_info *frame)
63e43d3a
PMR
338{
339 struct gdbarch *gdbarch;
340 struct type *type;
341 struct dwarf2_locexpr_baton *dlbaton;
342 const gdb_byte *start;
343 size_t length;
344 struct value *result;
345
346 /* If this method is called, then FRAMEFUNC is supposed to be a DWARF block.
347 Thus, it's supposed to provide the find_frame_base_location method as
348 well. */
349 gdb_assert (SYMBOL_BLOCK_OPS (framefunc)->find_frame_base_location != NULL);
350
351 gdbarch = get_frame_arch (frame);
352 type = builtin_type (gdbarch)->builtin_data_ptr;
9a3c8263 353 dlbaton = (struct dwarf2_locexpr_baton *) SYMBOL_LOCATION_BATON (framefunc);
63e43d3a
PMR
354
355 SYMBOL_BLOCK_OPS (framefunc)->find_frame_base_location
356 (framefunc, get_frame_pc (frame), &start, &length);
357 result = dwarf2_evaluate_loc_desc (type, frame, start, length,
358 dlbaton->per_cu);
359
360 /* The DW_AT_frame_base attribute contains a location description which
361 computes the base address itself. However, the call to
362 dwarf2_evaluate_loc_desc returns a value representing a variable at
363 that address. The frame base address is thus this variable's
364 address. */
365 return value_address (result);
366}
367
f1e6e072
TT
368/* Vector for inferior functions as represented by LOC_BLOCK, if the inferior
369 function uses DWARF expression for its DW_AT_frame_base. */
370
371const struct symbol_block_ops dwarf2_block_frame_base_locexpr_funcs =
372{
63e43d3a 373 locexpr_find_frame_base_location,
7d1c9c9b 374 locexpr_get_frame_base
f1e6e072
TT
375};
376
377/* Implement find_frame_base_location method for LOC_BLOCK functions using
378 DWARF location list for its DW_AT_frame_base. */
379
380static void
381loclist_find_frame_base_location (struct symbol *framefunc, CORE_ADDR pc,
382 const gdb_byte **start, size_t *length)
383{
9a3c8263
SM
384 struct dwarf2_loclist_baton *symbaton
385 = (struct dwarf2_loclist_baton *) SYMBOL_LOCATION_BATON (framefunc);
f1e6e072
TT
386
387 *start = dwarf2_find_location_expression (symbaton, length, pc);
388}
389
7d1c9c9b
JB
390/* Implement the struct symbol_block_ops::get_frame_base method for
391 LOC_BLOCK functions using a DWARF location list as its DW_AT_frame_base. */
392
393static CORE_ADDR
394loclist_get_frame_base (struct symbol *framefunc, struct frame_info *frame)
395{
396 struct gdbarch *gdbarch;
397 struct type *type;
398 struct dwarf2_loclist_baton *dlbaton;
399 const gdb_byte *start;
400 size_t length;
401 struct value *result;
402
403 /* If this method is called, then FRAMEFUNC is supposed to be a DWARF block.
404 Thus, it's supposed to provide the find_frame_base_location method as
405 well. */
406 gdb_assert (SYMBOL_BLOCK_OPS (framefunc)->find_frame_base_location != NULL);
407
408 gdbarch = get_frame_arch (frame);
409 type = builtin_type (gdbarch)->builtin_data_ptr;
9a3c8263 410 dlbaton = (struct dwarf2_loclist_baton *) SYMBOL_LOCATION_BATON (framefunc);
7d1c9c9b
JB
411
412 SYMBOL_BLOCK_OPS (framefunc)->find_frame_base_location
413 (framefunc, get_frame_pc (frame), &start, &length);
414 result = dwarf2_evaluate_loc_desc (type, frame, start, length,
415 dlbaton->per_cu);
416
417 /* The DW_AT_frame_base attribute contains a location description which
418 computes the base address itself. However, the call to
419 dwarf2_evaluate_loc_desc returns a value representing a variable at
420 that address. The frame base address is thus this variable's
421 address. */
422 return value_address (result);
423}
424
f1e6e072
TT
425/* Vector for inferior functions as represented by LOC_BLOCK, if the inferior
426 function uses DWARF location list for its DW_AT_frame_base. */
427
428const struct symbol_block_ops dwarf2_block_frame_base_loclist_funcs =
429{
63e43d3a 430 loclist_find_frame_base_location,
7d1c9c9b 431 loclist_get_frame_base
f1e6e072
TT
432};
433
af945b75
TT
434/* See dwarf2loc.h. */
435
436void
437func_get_frame_base_dwarf_block (struct symbol *framefunc, CORE_ADDR pc,
438 const gdb_byte **start, size_t *length)
0936ad1d 439{
f1e6e072 440 if (SYMBOL_BLOCK_OPS (framefunc) != NULL)
0d53c4c4 441 {
f1e6e072 442 const struct symbol_block_ops *ops_block = SYMBOL_BLOCK_OPS (framefunc);
22c6caba 443
f1e6e072 444 ops_block->find_frame_base_location (framefunc, pc, start, length);
0d53c4c4
DJ
445 }
446 else
f1e6e072 447 *length = 0;
0d53c4c4 448
1d6edc3c 449 if (*length == 0)
8a3fe4f8 450 error (_("Could not find the frame base for \"%s\"."),
0d53c4c4 451 SYMBOL_NATURAL_NAME (framefunc));
4c2df51b
DJ
452}
453
4c2df51b 454static CORE_ADDR
192ca6d8 455get_frame_pc_for_per_cu_dwarf_call (void *baton)
4c2df51b 456{
192ca6d8 457 dwarf_expr_context *ctx = (dwarf_expr_context *) baton;
4c2df51b 458
192ca6d8 459 return ctx->get_frame_pc ();
4c2df51b
DJ
460}
461
5c631832 462static void
b64f50a1 463per_cu_dwarf_call (struct dwarf_expr_context *ctx, cu_offset die_offset,
192ca6d8 464 struct dwarf2_per_cu_data *per_cu)
5c631832
JK
465{
466 struct dwarf2_locexpr_baton block;
467
192ca6d8
TT
468 block = dwarf2_fetch_die_loc_cu_off (die_offset, per_cu,
469 get_frame_pc_for_per_cu_dwarf_call,
470 ctx);
5c631832
JK
471
472 /* DW_OP_call_ref is currently not supported. */
473 gdb_assert (block.per_cu == per_cu);
474
595d2e30 475 ctx->eval (block.data, block.size);
5c631832
JK
476}
477
192ca6d8 478class dwarf_evaluate_loc_desc : public dwarf_expr_context
5c631832 479{
192ca6d8 480 public:
5c631832 481
192ca6d8
TT
482 struct frame_info *frame;
483 struct dwarf2_per_cu_data *per_cu;
484 CORE_ADDR obj_address;
5c631832 485
192ca6d8
TT
486 /* Helper function for dwarf2_evaluate_loc_desc. Computes the CFA for
487 the frame in BATON. */
8a9b8146 488
192ca6d8
TT
489 CORE_ADDR get_frame_cfa () OVERRIDE
490 {
491 return dwarf2_frame_cfa (frame);
492 }
8a9b8146 493
192ca6d8
TT
494 /* Helper function for dwarf2_evaluate_loc_desc. Computes the PC for
495 the frame in BATON. */
496
497 CORE_ADDR get_frame_pc () OVERRIDE
498 {
499 return get_frame_address_in_block (frame);
500 }
501
502 /* Using the objfile specified in BATON, find the address for the
503 current thread's thread-local storage with offset OFFSET. */
504 CORE_ADDR get_tls_address (CORE_ADDR offset) OVERRIDE
505 {
506 struct objfile *objfile = dwarf2_per_cu_objfile (per_cu);
507
508 return target_translate_tls_address (objfile, offset);
509 }
510
511 /* Helper interface of per_cu_dwarf_call for
512 dwarf2_evaluate_loc_desc. */
513
514 void dwarf_call (cu_offset die_offset) OVERRIDE
515 {
516 per_cu_dwarf_call (this, die_offset, per_cu);
517 }
518
7d5697f9 519 struct type *get_base_type (cu_offset die_offset, int size) OVERRIDE
192ca6d8 520 {
7d5697f9
TT
521 struct type *result = dwarf2_get_die_type (die_offset, per_cu);
522 if (result == NULL)
523 error (_("Could not find type for DW_OP_GNU_const_type"));
524 if (size != 0 && TYPE_LENGTH (result) != size)
525 error (_("DW_OP_GNU_const_type has different sizes for type and data"));
526 return result;
192ca6d8
TT
527 }
528
529 /* Callback function for dwarf2_evaluate_loc_desc.
530 Fetch the address indexed by DW_OP_GNU_addr_index. */
531
532 CORE_ADDR get_addr_index (unsigned int index) OVERRIDE
533 {
534 return dwarf2_read_addr_index (per_cu, index);
535 }
536
537 /* Callback function for get_object_address. Return the address of the VLA
538 object. */
539
540 CORE_ADDR get_object_address () OVERRIDE
541 {
542 if (obj_address == 0)
543 error (_("Location address is not set."));
544 return obj_address;
545 }
546
547 /* Execute DWARF block of call_site_parameter which matches KIND and
548 KIND_U. Choose DEREF_SIZE value of that parameter. Search
549 caller of this objects's frame.
550
551 The caller can be from a different CU - per_cu_dwarf_call
552 implementation can be more simple as it does not support cross-CU
553 DWARF executions. */
554
555 void push_dwarf_reg_entry_value (enum call_site_parameter_kind kind,
556 union call_site_parameter_u kind_u,
557 int deref_size) OVERRIDE
558 {
559 struct frame_info *caller_frame;
560 struct dwarf2_per_cu_data *caller_per_cu;
192ca6d8
TT
561 struct call_site_parameter *parameter;
562 const gdb_byte *data_src;
563 size_t size;
564
565 caller_frame = get_prev_frame (frame);
566
567 parameter = dwarf_expr_reg_to_entry_parameter (frame, kind, kind_u,
568 &caller_per_cu);
569 data_src = deref_size == -1 ? parameter->value : parameter->data_value;
570 size = deref_size == -1 ? parameter->value_size : parameter->data_value_size;
571
572 /* DEREF_SIZE size is not verified here. */
573 if (data_src == NULL)
574 throw_error (NO_ENTRY_VALUE_ERROR,
575 _("Cannot resolve DW_AT_GNU_call_site_data_value"));
576
7d5697f9
TT
577 scoped_restore save_frame = make_scoped_restore (&this->frame,
578 caller_frame);
579 scoped_restore save_per_cu = make_scoped_restore (&this->per_cu,
580 caller_per_cu);
581 scoped_restore save_obj_addr = make_scoped_restore (&this->obj_address,
582 (CORE_ADDR) 0);
192ca6d8
TT
583
584 scoped_restore save_arch = make_scoped_restore (&this->gdbarch);
585 this->gdbarch
7d5697f9 586 = get_objfile_arch (dwarf2_per_cu_objfile (per_cu));
192ca6d8 587 scoped_restore save_addr_size = make_scoped_restore (&this->addr_size);
7d5697f9 588 this->addr_size = dwarf2_per_cu_addr_size (per_cu);
192ca6d8 589 scoped_restore save_offset = make_scoped_restore (&this->offset);
7d5697f9 590 this->offset = dwarf2_per_cu_text_offset (per_cu);
192ca6d8
TT
591
592 this->eval (data_src, size);
593 }
594
595 /* Using the frame specified in BATON, find the location expression
596 describing the frame base. Return a pointer to it in START and
597 its length in LENGTH. */
598 void get_frame_base (const gdb_byte **start, size_t * length) OVERRIDE
599 {
600 /* FIXME: cagney/2003-03-26: This code should be using
601 get_frame_base_address(), and then implement a dwarf2 specific
602 this_base method. */
603 struct symbol *framefunc;
604 const struct block *bl = get_frame_block (frame, NULL);
605
606 if (bl == NULL)
607 error (_("frame address is not available."));
608
609 /* Use block_linkage_function, which returns a real (not inlined)
610 function, instead of get_frame_function, which may return an
611 inlined function. */
612 framefunc = block_linkage_function (bl);
613
614 /* If we found a frame-relative symbol then it was certainly within
615 some function associated with a frame. If we can't find the frame,
616 something has gone wrong. */
617 gdb_assert (framefunc != NULL);
618
619 func_get_frame_base_dwarf_block (framefunc,
620 get_frame_address_in_block (frame),
621 start, length);
622 }
623
624 /* Read memory at ADDR (length LEN) into BUF. */
625
626 void read_mem (gdb_byte *buf, CORE_ADDR addr, size_t len) OVERRIDE
627 {
628 read_memory (addr, buf, len);
629 }
630
631 /* Using the frame specified in BATON, return the value of register
632 REGNUM, treated as a pointer. */
633 CORE_ADDR read_addr_from_reg (int dwarf_regnum) OVERRIDE
634 {
635 struct gdbarch *gdbarch = get_frame_arch (frame);
636 int regnum = dwarf_reg_to_regnum_or_error (gdbarch, dwarf_regnum);
637
638 return address_from_register (regnum, frame);
639 }
640
641 /* Implement "get_reg_value" callback. */
642
643 struct value *get_reg_value (struct type *type, int dwarf_regnum) OVERRIDE
644 {
645 struct gdbarch *gdbarch = get_frame_arch (frame);
646 int regnum = dwarf_reg_to_regnum_or_error (gdbarch, dwarf_regnum);
647
648 return value_from_register (type, regnum, frame);
649 }
650};
8a9b8146 651
8e3b41a9
JK
652/* See dwarf2loc.h. */
653
ccce17b0 654unsigned int entry_values_debug = 0;
8e3b41a9
JK
655
656/* Helper to set entry_values_debug. */
657
658static void
659show_entry_values_debug (struct ui_file *file, int from_tty,
660 struct cmd_list_element *c, const char *value)
661{
662 fprintf_filtered (file,
663 _("Entry values and tail call frames debugging is %s.\n"),
664 value);
665}
666
667/* Find DW_TAG_GNU_call_site's DW_AT_GNU_call_site_target address.
668 CALLER_FRAME (for registers) can be NULL if it is not known. This function
669 always returns valid address or it throws NO_ENTRY_VALUE_ERROR. */
670
671static CORE_ADDR
672call_site_to_target_addr (struct gdbarch *call_site_gdbarch,
673 struct call_site *call_site,
674 struct frame_info *caller_frame)
675{
676 switch (FIELD_LOC_KIND (call_site->target))
677 {
678 case FIELD_LOC_KIND_DWARF_BLOCK:
679 {
680 struct dwarf2_locexpr_baton *dwarf_block;
681 struct value *val;
682 struct type *caller_core_addr_type;
683 struct gdbarch *caller_arch;
684
685 dwarf_block = FIELD_DWARF_BLOCK (call_site->target);
686 if (dwarf_block == NULL)
687 {
7cbd4a93 688 struct bound_minimal_symbol msym;
8e3b41a9
JK
689
690 msym = lookup_minimal_symbol_by_pc (call_site->pc - 1);
691 throw_error (NO_ENTRY_VALUE_ERROR,
692 _("DW_AT_GNU_call_site_target is not specified "
693 "at %s in %s"),
694 paddress (call_site_gdbarch, call_site->pc),
7cbd4a93 695 (msym.minsym == NULL ? "???"
efd66ac6 696 : MSYMBOL_PRINT_NAME (msym.minsym)));
8e3b41a9
JK
697
698 }
699 if (caller_frame == NULL)
700 {
7cbd4a93 701 struct bound_minimal_symbol msym;
8e3b41a9
JK
702
703 msym = lookup_minimal_symbol_by_pc (call_site->pc - 1);
704 throw_error (NO_ENTRY_VALUE_ERROR,
705 _("DW_AT_GNU_call_site_target DWARF block resolving "
706 "requires known frame which is currently not "
707 "available at %s in %s"),
708 paddress (call_site_gdbarch, call_site->pc),
7cbd4a93 709 (msym.minsym == NULL ? "???"
efd66ac6 710 : MSYMBOL_PRINT_NAME (msym.minsym)));
8e3b41a9
JK
711
712 }
713 caller_arch = get_frame_arch (caller_frame);
714 caller_core_addr_type = builtin_type (caller_arch)->builtin_func_ptr;
715 val = dwarf2_evaluate_loc_desc (caller_core_addr_type, caller_frame,
716 dwarf_block->data, dwarf_block->size,
717 dwarf_block->per_cu);
718 /* DW_AT_GNU_call_site_target is a DWARF expression, not a DWARF
719 location. */
720 if (VALUE_LVAL (val) == lval_memory)
721 return value_address (val);
722 else
723 return value_as_address (val);
724 }
725
726 case FIELD_LOC_KIND_PHYSNAME:
727 {
728 const char *physname;
3b7344d5 729 struct bound_minimal_symbol msym;
8e3b41a9
JK
730
731 physname = FIELD_STATIC_PHYSNAME (call_site->target);
9112db09
JK
732
733 /* Handle both the mangled and demangled PHYSNAME. */
734 msym = lookup_minimal_symbol (physname, NULL, NULL);
3b7344d5 735 if (msym.minsym == NULL)
8e3b41a9 736 {
3b7344d5 737 msym = lookup_minimal_symbol_by_pc (call_site->pc - 1);
8e3b41a9
JK
738 throw_error (NO_ENTRY_VALUE_ERROR,
739 _("Cannot find function \"%s\" for a call site target "
740 "at %s in %s"),
741 physname, paddress (call_site_gdbarch, call_site->pc),
3b7344d5
TT
742 (msym.minsym == NULL ? "???"
743 : MSYMBOL_PRINT_NAME (msym.minsym)));
8e3b41a9
JK
744
745 }
77e371c0 746 return BMSYMBOL_VALUE_ADDRESS (msym);
8e3b41a9
JK
747 }
748
749 case FIELD_LOC_KIND_PHYSADDR:
750 return FIELD_STATIC_PHYSADDR (call_site->target);
751
752 default:
753 internal_error (__FILE__, __LINE__, _("invalid call site target kind"));
754 }
755}
756
111c6489
JK
757/* Convert function entry point exact address ADDR to the function which is
758 compliant with TAIL_CALL_LIST_COMPLETE condition. Throw
759 NO_ENTRY_VALUE_ERROR otherwise. */
760
761static struct symbol *
762func_addr_to_tail_call_list (struct gdbarch *gdbarch, CORE_ADDR addr)
763{
764 struct symbol *sym = find_pc_function (addr);
765 struct type *type;
766
767 if (sym == NULL || BLOCK_START (SYMBOL_BLOCK_VALUE (sym)) != addr)
768 throw_error (NO_ENTRY_VALUE_ERROR,
769 _("DW_TAG_GNU_call_site resolving failed to find function "
770 "name for address %s"),
771 paddress (gdbarch, addr));
772
773 type = SYMBOL_TYPE (sym);
774 gdb_assert (TYPE_CODE (type) == TYPE_CODE_FUNC);
775 gdb_assert (TYPE_SPECIFIC_FIELD (type) == TYPE_SPECIFIC_FUNC);
776
777 return sym;
778}
779
2d6c5dc2
JK
780/* Verify function with entry point exact address ADDR can never call itself
781 via its tail calls (incl. transitively). Throw NO_ENTRY_VALUE_ERROR if it
782 can call itself via tail calls.
783
784 If a funtion can tail call itself its entry value based parameters are
785 unreliable. There is no verification whether the value of some/all
786 parameters is unchanged through the self tail call, we expect if there is
787 a self tail call all the parameters can be modified. */
788
789static void
790func_verify_no_selftailcall (struct gdbarch *gdbarch, CORE_ADDR verify_addr)
791{
792 struct obstack addr_obstack;
793 struct cleanup *old_chain;
794 CORE_ADDR addr;
795
796 /* Track here CORE_ADDRs which were already visited. */
797 htab_t addr_hash;
798
799 /* The verification is completely unordered. Track here function addresses
800 which still need to be iterated. */
801 VEC (CORE_ADDR) *todo = NULL;
802
803 obstack_init (&addr_obstack);
804 old_chain = make_cleanup_obstack_free (&addr_obstack);
805 addr_hash = htab_create_alloc_ex (64, core_addr_hash, core_addr_eq, NULL,
806 &addr_obstack, hashtab_obstack_allocate,
807 NULL);
808 make_cleanup_htab_delete (addr_hash);
809
810 make_cleanup (VEC_cleanup (CORE_ADDR), &todo);
811
812 VEC_safe_push (CORE_ADDR, todo, verify_addr);
813 while (!VEC_empty (CORE_ADDR, todo))
814 {
815 struct symbol *func_sym;
816 struct call_site *call_site;
817
818 addr = VEC_pop (CORE_ADDR, todo);
819
820 func_sym = func_addr_to_tail_call_list (gdbarch, addr);
821
822 for (call_site = TYPE_TAIL_CALL_LIST (SYMBOL_TYPE (func_sym));
823 call_site; call_site = call_site->tail_call_next)
824 {
825 CORE_ADDR target_addr;
826 void **slot;
827
828 /* CALLER_FRAME with registers is not available for tail-call jumped
829 frames. */
830 target_addr = call_site_to_target_addr (gdbarch, call_site, NULL);
831
832 if (target_addr == verify_addr)
833 {
7cbd4a93 834 struct bound_minimal_symbol msym;
2d6c5dc2
JK
835
836 msym = lookup_minimal_symbol_by_pc (verify_addr);
837 throw_error (NO_ENTRY_VALUE_ERROR,
838 _("DW_OP_GNU_entry_value resolving has found "
839 "function \"%s\" at %s can call itself via tail "
840 "calls"),
7cbd4a93 841 (msym.minsym == NULL ? "???"
efd66ac6 842 : MSYMBOL_PRINT_NAME (msym.minsym)),
2d6c5dc2
JK
843 paddress (gdbarch, verify_addr));
844 }
845
846 slot = htab_find_slot (addr_hash, &target_addr, INSERT);
847 if (*slot == NULL)
848 {
849 *slot = obstack_copy (&addr_obstack, &target_addr,
850 sizeof (target_addr));
851 VEC_safe_push (CORE_ADDR, todo, target_addr);
852 }
853 }
854 }
855
856 do_cleanups (old_chain);
857}
858
111c6489
JK
859/* Print user readable form of CALL_SITE->PC to gdb_stdlog. Used only for
860 ENTRY_VALUES_DEBUG. */
861
862static void
863tailcall_dump (struct gdbarch *gdbarch, const struct call_site *call_site)
864{
865 CORE_ADDR addr = call_site->pc;
7cbd4a93 866 struct bound_minimal_symbol msym = lookup_minimal_symbol_by_pc (addr - 1);
111c6489
JK
867
868 fprintf_unfiltered (gdb_stdlog, " %s(%s)", paddress (gdbarch, addr),
7cbd4a93 869 (msym.minsym == NULL ? "???"
efd66ac6 870 : MSYMBOL_PRINT_NAME (msym.minsym)));
111c6489
JK
871
872}
873
874/* vec.h needs single word type name, typedef it. */
875typedef struct call_site *call_sitep;
876
877/* Define VEC (call_sitep) functions. */
878DEF_VEC_P (call_sitep);
879
880/* Intersect RESULTP with CHAIN to keep RESULTP unambiguous, keep in RESULTP
881 only top callers and bottom callees which are present in both. GDBARCH is
882 used only for ENTRY_VALUES_DEBUG. RESULTP is NULL after return if there are
883 no remaining possibilities to provide unambiguous non-trivial result.
884 RESULTP should point to NULL on the first (initialization) call. Caller is
885 responsible for xfree of any RESULTP data. */
886
887static void
888chain_candidate (struct gdbarch *gdbarch, struct call_site_chain **resultp,
889 VEC (call_sitep) *chain)
890{
891 struct call_site_chain *result = *resultp;
892 long length = VEC_length (call_sitep, chain);
893 int callers, callees, idx;
894
895 if (result == NULL)
896 {
897 /* Create the initial chain containing all the passed PCs. */
898
224c3ddb
SM
899 result = ((struct call_site_chain *)
900 xmalloc (sizeof (*result)
901 + sizeof (*result->call_site) * (length - 1)));
111c6489
JK
902 result->length = length;
903 result->callers = result->callees = length;
19a1b230
AA
904 if (!VEC_empty (call_sitep, chain))
905 memcpy (result->call_site, VEC_address (call_sitep, chain),
906 sizeof (*result->call_site) * length);
111c6489
JK
907 *resultp = result;
908
909 if (entry_values_debug)
910 {
911 fprintf_unfiltered (gdb_stdlog, "tailcall: initial:");
912 for (idx = 0; idx < length; idx++)
913 tailcall_dump (gdbarch, result->call_site[idx]);
914 fputc_unfiltered ('\n', gdb_stdlog);
915 }
916
917 return;
918 }
919
920 if (entry_values_debug)
921 {
922 fprintf_unfiltered (gdb_stdlog, "tailcall: compare:");
923 for (idx = 0; idx < length; idx++)
924 tailcall_dump (gdbarch, VEC_index (call_sitep, chain, idx));
925 fputc_unfiltered ('\n', gdb_stdlog);
926 }
927
928 /* Intersect callers. */
929
325fac50 930 callers = std::min ((long) result->callers, length);
111c6489
JK
931 for (idx = 0; idx < callers; idx++)
932 if (result->call_site[idx] != VEC_index (call_sitep, chain, idx))
933 {
934 result->callers = idx;
935 break;
936 }
937
938 /* Intersect callees. */
939
325fac50 940 callees = std::min ((long) result->callees, length);
111c6489
JK
941 for (idx = 0; idx < callees; idx++)
942 if (result->call_site[result->length - 1 - idx]
943 != VEC_index (call_sitep, chain, length - 1 - idx))
944 {
945 result->callees = idx;
946 break;
947 }
948
949 if (entry_values_debug)
950 {
951 fprintf_unfiltered (gdb_stdlog, "tailcall: reduced:");
952 for (idx = 0; idx < result->callers; idx++)
953 tailcall_dump (gdbarch, result->call_site[idx]);
954 fputs_unfiltered (" |", gdb_stdlog);
955 for (idx = 0; idx < result->callees; idx++)
956 tailcall_dump (gdbarch, result->call_site[result->length
957 - result->callees + idx]);
958 fputc_unfiltered ('\n', gdb_stdlog);
959 }
960
961 if (result->callers == 0 && result->callees == 0)
962 {
963 /* There are no common callers or callees. It could be also a direct
964 call (which has length 0) with ambiguous possibility of an indirect
965 call - CALLERS == CALLEES == 0 is valid during the first allocation
966 but any subsequence processing of such entry means ambiguity. */
967 xfree (result);
968 *resultp = NULL;
969 return;
970 }
971
972 /* See call_site_find_chain_1 why there is no way to reach the bottom callee
973 PC again. In such case there must be two different code paths to reach
e0619de6
JK
974 it. CALLERS + CALLEES equal to LENGTH in the case of self tail-call. */
975 gdb_assert (result->callers + result->callees <= result->length);
111c6489
JK
976}
977
978/* Create and return call_site_chain for CALLER_PC and CALLEE_PC. All the
979 assumed frames between them use GDBARCH. Use depth first search so we can
980 keep single CHAIN of call_site's back to CALLER_PC. Function recursion
981 would have needless GDB stack overhead. Caller is responsible for xfree of
982 the returned result. Any unreliability results in thrown
983 NO_ENTRY_VALUE_ERROR. */
984
985static struct call_site_chain *
986call_site_find_chain_1 (struct gdbarch *gdbarch, CORE_ADDR caller_pc,
987 CORE_ADDR callee_pc)
988{
c4be5165 989 CORE_ADDR save_callee_pc = callee_pc;
111c6489
JK
990 struct obstack addr_obstack;
991 struct cleanup *back_to_retval, *back_to_workdata;
992 struct call_site_chain *retval = NULL;
993 struct call_site *call_site;
994
995 /* Mark CALL_SITEs so we do not visit the same ones twice. */
996 htab_t addr_hash;
997
998 /* CHAIN contains only the intermediate CALL_SITEs. Neither CALLER_PC's
999 call_site nor any possible call_site at CALLEE_PC's function is there.
1000 Any CALL_SITE in CHAIN will be iterated to its siblings - via
1001 TAIL_CALL_NEXT. This is inappropriate for CALLER_PC's call_site. */
1002 VEC (call_sitep) *chain = NULL;
1003
1004 /* We are not interested in the specific PC inside the callee function. */
1005 callee_pc = get_pc_function_start (callee_pc);
1006 if (callee_pc == 0)
1007 throw_error (NO_ENTRY_VALUE_ERROR, _("Unable to find function for PC %s"),
c4be5165 1008 paddress (gdbarch, save_callee_pc));
111c6489
JK
1009
1010 back_to_retval = make_cleanup (free_current_contents, &retval);
1011
1012 obstack_init (&addr_obstack);
1013 back_to_workdata = make_cleanup_obstack_free (&addr_obstack);
1014 addr_hash = htab_create_alloc_ex (64, core_addr_hash, core_addr_eq, NULL,
1015 &addr_obstack, hashtab_obstack_allocate,
1016 NULL);
1017 make_cleanup_htab_delete (addr_hash);
1018
1019 make_cleanup (VEC_cleanup (call_sitep), &chain);
1020
1021 /* Do not push CALL_SITE to CHAIN. Push there only the first tail call site
1022 at the target's function. All the possible tail call sites in the
1023 target's function will get iterated as already pushed into CHAIN via their
1024 TAIL_CALL_NEXT. */
1025 call_site = call_site_for_pc (gdbarch, caller_pc);
1026
1027 while (call_site)
1028 {
1029 CORE_ADDR target_func_addr;
1030 struct call_site *target_call_site;
1031
1032 /* CALLER_FRAME with registers is not available for tail-call jumped
1033 frames. */
1034 target_func_addr = call_site_to_target_addr (gdbarch, call_site, NULL);
1035
1036 if (target_func_addr == callee_pc)
1037 {
1038 chain_candidate (gdbarch, &retval, chain);
1039 if (retval == NULL)
1040 break;
1041
1042 /* There is no way to reach CALLEE_PC again as we would prevent
1043 entering it twice as being already marked in ADDR_HASH. */
1044 target_call_site = NULL;
1045 }
1046 else
1047 {
1048 struct symbol *target_func;
1049
1050 target_func = func_addr_to_tail_call_list (gdbarch, target_func_addr);
1051 target_call_site = TYPE_TAIL_CALL_LIST (SYMBOL_TYPE (target_func));
1052 }
1053
1054 do
1055 {
1056 /* Attempt to visit TARGET_CALL_SITE. */
1057
1058 if (target_call_site)
1059 {
1060 void **slot;
1061
1062 slot = htab_find_slot (addr_hash, &target_call_site->pc, INSERT);
1063 if (*slot == NULL)
1064 {
1065 /* Successfully entered TARGET_CALL_SITE. */
1066
1067 *slot = &target_call_site->pc;
1068 VEC_safe_push (call_sitep, chain, target_call_site);
1069 break;
1070 }
1071 }
1072
1073 /* Backtrack (without revisiting the originating call_site). Try the
1074 callers's sibling; if there isn't any try the callers's callers's
1075 sibling etc. */
1076
1077 target_call_site = NULL;
1078 while (!VEC_empty (call_sitep, chain))
1079 {
1080 call_site = VEC_pop (call_sitep, chain);
1081
1082 gdb_assert (htab_find_slot (addr_hash, &call_site->pc,
1083 NO_INSERT) != NULL);
1084 htab_remove_elt (addr_hash, &call_site->pc);
1085
1086 target_call_site = call_site->tail_call_next;
1087 if (target_call_site)
1088 break;
1089 }
1090 }
1091 while (target_call_site);
1092
1093 if (VEC_empty (call_sitep, chain))
1094 call_site = NULL;
1095 else
1096 call_site = VEC_last (call_sitep, chain);
1097 }
1098
1099 if (retval == NULL)
1100 {
7cbd4a93 1101 struct bound_minimal_symbol msym_caller, msym_callee;
111c6489
JK
1102
1103 msym_caller = lookup_minimal_symbol_by_pc (caller_pc);
1104 msym_callee = lookup_minimal_symbol_by_pc (callee_pc);
1105 throw_error (NO_ENTRY_VALUE_ERROR,
1106 _("There are no unambiguously determinable intermediate "
1107 "callers or callees between caller function \"%s\" at %s "
1108 "and callee function \"%s\" at %s"),
7cbd4a93 1109 (msym_caller.minsym == NULL
efd66ac6 1110 ? "???" : MSYMBOL_PRINT_NAME (msym_caller.minsym)),
111c6489 1111 paddress (gdbarch, caller_pc),
7cbd4a93 1112 (msym_callee.minsym == NULL
efd66ac6 1113 ? "???" : MSYMBOL_PRINT_NAME (msym_callee.minsym)),
111c6489
JK
1114 paddress (gdbarch, callee_pc));
1115 }
1116
1117 do_cleanups (back_to_workdata);
1118 discard_cleanups (back_to_retval);
1119 return retval;
1120}
1121
1122/* Create and return call_site_chain for CALLER_PC and CALLEE_PC. All the
1123 assumed frames between them use GDBARCH. If valid call_site_chain cannot be
1124 constructed return NULL. Caller is responsible for xfree of the returned
1125 result. */
1126
1127struct call_site_chain *
1128call_site_find_chain (struct gdbarch *gdbarch, CORE_ADDR caller_pc,
1129 CORE_ADDR callee_pc)
1130{
111c6489
JK
1131 struct call_site_chain *retval = NULL;
1132
492d29ea 1133 TRY
111c6489
JK
1134 {
1135 retval = call_site_find_chain_1 (gdbarch, caller_pc, callee_pc);
1136 }
492d29ea 1137 CATCH (e, RETURN_MASK_ERROR)
111c6489
JK
1138 {
1139 if (e.error == NO_ENTRY_VALUE_ERROR)
1140 {
1141 if (entry_values_debug)
1142 exception_print (gdb_stdout, e);
1143
1144 return NULL;
1145 }
1146 else
1147 throw_exception (e);
1148 }
492d29ea
PA
1149 END_CATCH
1150
111c6489
JK
1151 return retval;
1152}
1153
24c5c679
JK
1154/* Return 1 if KIND and KIND_U match PARAMETER. Return 0 otherwise. */
1155
1156static int
1157call_site_parameter_matches (struct call_site_parameter *parameter,
1158 enum call_site_parameter_kind kind,
1159 union call_site_parameter_u kind_u)
1160{
1161 if (kind == parameter->kind)
1162 switch (kind)
1163 {
1164 case CALL_SITE_PARAMETER_DWARF_REG:
1165 return kind_u.dwarf_reg == parameter->u.dwarf_reg;
1166 case CALL_SITE_PARAMETER_FB_OFFSET:
1167 return kind_u.fb_offset == parameter->u.fb_offset;
1788b2d3
JK
1168 case CALL_SITE_PARAMETER_PARAM_OFFSET:
1169 return kind_u.param_offset.cu_off == parameter->u.param_offset.cu_off;
24c5c679
JK
1170 }
1171 return 0;
1172}
1173
1174/* Fetch call_site_parameter from caller matching KIND and KIND_U.
1175 FRAME is for callee.
8e3b41a9
JK
1176
1177 Function always returns non-NULL, it throws NO_ENTRY_VALUE_ERROR
1178 otherwise. */
1179
1180static struct call_site_parameter *
24c5c679
JK
1181dwarf_expr_reg_to_entry_parameter (struct frame_info *frame,
1182 enum call_site_parameter_kind kind,
1183 union call_site_parameter_u kind_u,
8e3b41a9
JK
1184 struct dwarf2_per_cu_data **per_cu_return)
1185{
9e3a7d65
JK
1186 CORE_ADDR func_addr, caller_pc;
1187 struct gdbarch *gdbarch;
1188 struct frame_info *caller_frame;
8e3b41a9
JK
1189 struct call_site *call_site;
1190 int iparams;
509f0fd9
JK
1191 /* Initialize it just to avoid a GCC false warning. */
1192 struct call_site_parameter *parameter = NULL;
8e3b41a9
JK
1193 CORE_ADDR target_addr;
1194
9e3a7d65
JK
1195 while (get_frame_type (frame) == INLINE_FRAME)
1196 {
1197 frame = get_prev_frame (frame);
1198 gdb_assert (frame != NULL);
1199 }
1200
1201 func_addr = get_frame_func (frame);
1202 gdbarch = get_frame_arch (frame);
1203 caller_frame = get_prev_frame (frame);
8e3b41a9
JK
1204 if (gdbarch != frame_unwind_arch (frame))
1205 {
7cbd4a93
TT
1206 struct bound_minimal_symbol msym
1207 = lookup_minimal_symbol_by_pc (func_addr);
8e3b41a9
JK
1208 struct gdbarch *caller_gdbarch = frame_unwind_arch (frame);
1209
1210 throw_error (NO_ENTRY_VALUE_ERROR,
1211 _("DW_OP_GNU_entry_value resolving callee gdbarch %s "
1212 "(of %s (%s)) does not match caller gdbarch %s"),
1213 gdbarch_bfd_arch_info (gdbarch)->printable_name,
1214 paddress (gdbarch, func_addr),
7cbd4a93 1215 (msym.minsym == NULL ? "???"
efd66ac6 1216 : MSYMBOL_PRINT_NAME (msym.minsym)),
8e3b41a9
JK
1217 gdbarch_bfd_arch_info (caller_gdbarch)->printable_name);
1218 }
1219
1220 if (caller_frame == NULL)
1221 {
7cbd4a93
TT
1222 struct bound_minimal_symbol msym
1223 = lookup_minimal_symbol_by_pc (func_addr);
8e3b41a9
JK
1224
1225 throw_error (NO_ENTRY_VALUE_ERROR, _("DW_OP_GNU_entry_value resolving "
1226 "requires caller of %s (%s)"),
1227 paddress (gdbarch, func_addr),
7cbd4a93 1228 (msym.minsym == NULL ? "???"
efd66ac6 1229 : MSYMBOL_PRINT_NAME (msym.minsym)));
8e3b41a9
JK
1230 }
1231 caller_pc = get_frame_pc (caller_frame);
1232 call_site = call_site_for_pc (gdbarch, caller_pc);
1233
1234 target_addr = call_site_to_target_addr (gdbarch, call_site, caller_frame);
1235 if (target_addr != func_addr)
1236 {
1237 struct minimal_symbol *target_msym, *func_msym;
1238
7cbd4a93
TT
1239 target_msym = lookup_minimal_symbol_by_pc (target_addr).minsym;
1240 func_msym = lookup_minimal_symbol_by_pc (func_addr).minsym;
8e3b41a9
JK
1241 throw_error (NO_ENTRY_VALUE_ERROR,
1242 _("DW_OP_GNU_entry_value resolving expects callee %s at %s "
1243 "but the called frame is for %s at %s"),
1244 (target_msym == NULL ? "???"
efd66ac6 1245 : MSYMBOL_PRINT_NAME (target_msym)),
8e3b41a9 1246 paddress (gdbarch, target_addr),
efd66ac6 1247 func_msym == NULL ? "???" : MSYMBOL_PRINT_NAME (func_msym),
8e3b41a9
JK
1248 paddress (gdbarch, func_addr));
1249 }
1250
2d6c5dc2
JK
1251 /* No entry value based parameters would be reliable if this function can
1252 call itself via tail calls. */
1253 func_verify_no_selftailcall (gdbarch, func_addr);
1254
8e3b41a9
JK
1255 for (iparams = 0; iparams < call_site->parameter_count; iparams++)
1256 {
1257 parameter = &call_site->parameter[iparams];
24c5c679 1258 if (call_site_parameter_matches (parameter, kind, kind_u))
8e3b41a9
JK
1259 break;
1260 }
1261 if (iparams == call_site->parameter_count)
1262 {
7cbd4a93
TT
1263 struct minimal_symbol *msym
1264 = lookup_minimal_symbol_by_pc (caller_pc).minsym;
8e3b41a9
JK
1265
1266 /* DW_TAG_GNU_call_site_parameter will be missing just if GCC could not
1267 determine its value. */
1268 throw_error (NO_ENTRY_VALUE_ERROR, _("Cannot find matching parameter "
1269 "at DW_TAG_GNU_call_site %s at %s"),
1270 paddress (gdbarch, caller_pc),
efd66ac6 1271 msym == NULL ? "???" : MSYMBOL_PRINT_NAME (msym));
8e3b41a9
JK
1272 }
1273
1274 *per_cu_return = call_site->per_cu;
1275 return parameter;
1276}
1277
a471c594
JK
1278/* Return value for PARAMETER matching DEREF_SIZE. If DEREF_SIZE is -1, return
1279 the normal DW_AT_GNU_call_site_value block. Otherwise return the
1280 DW_AT_GNU_call_site_data_value (dereferenced) block.
e18b2753
JK
1281
1282 TYPE and CALLER_FRAME specify how to evaluate the DWARF block into returned
1283 struct value.
1284
1285 Function always returns non-NULL, non-optimized out value. It throws
1286 NO_ENTRY_VALUE_ERROR if it cannot resolve the value for any reason. */
1287
1288static struct value *
1289dwarf_entry_parameter_to_value (struct call_site_parameter *parameter,
a471c594 1290 CORE_ADDR deref_size, struct type *type,
e18b2753
JK
1291 struct frame_info *caller_frame,
1292 struct dwarf2_per_cu_data *per_cu)
1293{
a471c594 1294 const gdb_byte *data_src;
e18b2753 1295 gdb_byte *data;
a471c594
JK
1296 size_t size;
1297
1298 data_src = deref_size == -1 ? parameter->value : parameter->data_value;
1299 size = deref_size == -1 ? parameter->value_size : parameter->data_value_size;
1300
1301 /* DEREF_SIZE size is not verified here. */
1302 if (data_src == NULL)
1303 throw_error (NO_ENTRY_VALUE_ERROR,
1304 _("Cannot resolve DW_AT_GNU_call_site_data_value"));
e18b2753
JK
1305
1306 /* DW_AT_GNU_call_site_value is a DWARF expression, not a DWARF
1307 location. Postprocessing of DWARF_VALUE_MEMORY would lose the type from
1308 DWARF block. */
224c3ddb 1309 data = (gdb_byte *) alloca (size + 1);
a471c594
JK
1310 memcpy (data, data_src, size);
1311 data[size] = DW_OP_stack_value;
e18b2753 1312
a471c594 1313 return dwarf2_evaluate_loc_desc (type, caller_frame, data, size + 1, per_cu);
e18b2753
JK
1314}
1315
a471c594
JK
1316/* VALUE must be of type lval_computed with entry_data_value_funcs. Perform
1317 the indirect method on it, that is use its stored target value, the sole
1318 purpose of entry_data_value_funcs.. */
1319
1320static struct value *
1321entry_data_value_coerce_ref (const struct value *value)
1322{
1323 struct type *checked_type = check_typedef (value_type (value));
1324 struct value *target_val;
1325
1326 if (TYPE_CODE (checked_type) != TYPE_CODE_REF)
1327 return NULL;
1328
9a3c8263 1329 target_val = (struct value *) value_computed_closure (value);
a471c594
JK
1330 value_incref (target_val);
1331 return target_val;
1332}
1333
1334/* Implement copy_closure. */
1335
1336static void *
1337entry_data_value_copy_closure (const struct value *v)
1338{
9a3c8263 1339 struct value *target_val = (struct value *) value_computed_closure (v);
a471c594
JK
1340
1341 value_incref (target_val);
1342 return target_val;
1343}
1344
1345/* Implement free_closure. */
1346
1347static void
1348entry_data_value_free_closure (struct value *v)
1349{
9a3c8263 1350 struct value *target_val = (struct value *) value_computed_closure (v);
a471c594
JK
1351
1352 value_free (target_val);
1353}
1354
1355/* Vector for methods for an entry value reference where the referenced value
1356 is stored in the caller. On the first dereference use
1357 DW_AT_GNU_call_site_data_value in the caller. */
1358
1359static const struct lval_funcs entry_data_value_funcs =
1360{
1361 NULL, /* read */
1362 NULL, /* write */
a471c594
JK
1363 NULL, /* indirect */
1364 entry_data_value_coerce_ref,
1365 NULL, /* check_synthetic_pointer */
1366 entry_data_value_copy_closure,
1367 entry_data_value_free_closure
1368};
1369
24c5c679
JK
1370/* Read parameter of TYPE at (callee) FRAME's function entry. KIND and KIND_U
1371 are used to match DW_AT_location at the caller's
1372 DW_TAG_GNU_call_site_parameter.
e18b2753
JK
1373
1374 Function always returns non-NULL value. It throws NO_ENTRY_VALUE_ERROR if it
1375 cannot resolve the parameter for any reason. */
1376
1377static struct value *
1378value_of_dwarf_reg_entry (struct type *type, struct frame_info *frame,
24c5c679
JK
1379 enum call_site_parameter_kind kind,
1380 union call_site_parameter_u kind_u)
e18b2753 1381{
a471c594
JK
1382 struct type *checked_type = check_typedef (type);
1383 struct type *target_type = TYPE_TARGET_TYPE (checked_type);
e18b2753 1384 struct frame_info *caller_frame = get_prev_frame (frame);
a471c594 1385 struct value *outer_val, *target_val, *val;
e18b2753
JK
1386 struct call_site_parameter *parameter;
1387 struct dwarf2_per_cu_data *caller_per_cu;
1388
24c5c679 1389 parameter = dwarf_expr_reg_to_entry_parameter (frame, kind, kind_u,
e18b2753
JK
1390 &caller_per_cu);
1391
a471c594
JK
1392 outer_val = dwarf_entry_parameter_to_value (parameter, -1 /* deref_size */,
1393 type, caller_frame,
1394 caller_per_cu);
1395
1396 /* Check if DW_AT_GNU_call_site_data_value cannot be used. If it should be
1397 used and it is not available do not fall back to OUTER_VAL - dereferencing
1398 TYPE_CODE_REF with non-entry data value would give current value - not the
1399 entry value. */
1400
1401 if (TYPE_CODE (checked_type) != TYPE_CODE_REF
1402 || TYPE_TARGET_TYPE (checked_type) == NULL)
1403 return outer_val;
1404
1405 target_val = dwarf_entry_parameter_to_value (parameter,
1406 TYPE_LENGTH (target_type),
1407 target_type, caller_frame,
1408 caller_per_cu);
1409
a471c594
JK
1410 release_value (target_val);
1411 val = allocate_computed_value (type, &entry_data_value_funcs,
1412 target_val /* closure */);
1413
1414 /* Copy the referencing pointer to the new computed value. */
1415 memcpy (value_contents_raw (val), value_contents_raw (outer_val),
1416 TYPE_LENGTH (checked_type));
1417 set_value_lazy (val, 0);
1418
1419 return val;
e18b2753
JK
1420}
1421
1422/* Read parameter of TYPE at (callee) FRAME's function entry. DATA and
1423 SIZE are DWARF block used to match DW_AT_location at the caller's
1424 DW_TAG_GNU_call_site_parameter.
1425
1426 Function always returns non-NULL value. It throws NO_ENTRY_VALUE_ERROR if it
1427 cannot resolve the parameter for any reason. */
1428
1429static struct value *
1430value_of_dwarf_block_entry (struct type *type, struct frame_info *frame,
1431 const gdb_byte *block, size_t block_len)
1432{
24c5c679 1433 union call_site_parameter_u kind_u;
e18b2753 1434
24c5c679
JK
1435 kind_u.dwarf_reg = dwarf_block_to_dwarf_reg (block, block + block_len);
1436 if (kind_u.dwarf_reg != -1)
1437 return value_of_dwarf_reg_entry (type, frame, CALL_SITE_PARAMETER_DWARF_REG,
1438 kind_u);
e18b2753 1439
24c5c679
JK
1440 if (dwarf_block_to_fb_offset (block, block + block_len, &kind_u.fb_offset))
1441 return value_of_dwarf_reg_entry (type, frame, CALL_SITE_PARAMETER_FB_OFFSET,
1442 kind_u);
e18b2753
JK
1443
1444 /* This can normally happen - throw NO_ENTRY_VALUE_ERROR to get the message
1445 suppressed during normal operation. The expression can be arbitrary if
1446 there is no caller-callee entry value binding expected. */
1447 throw_error (NO_ENTRY_VALUE_ERROR,
1448 _("DWARF-2 expression error: DW_OP_GNU_entry_value is supported "
1449 "only for single DW_OP_reg* or for DW_OP_fbreg(*)"));
1450}
1451
052b9502
NF
1452struct piece_closure
1453{
88bfdde4
TT
1454 /* Reference count. */
1455 int refc;
1456
8cf6f0b1
TT
1457 /* The CU from which this closure's expression came. */
1458 struct dwarf2_per_cu_data *per_cu;
1459
052b9502
NF
1460 /* The number of pieces used to describe this variable. */
1461 int n_pieces;
1462
6063c216
UW
1463 /* The target address size, used only for DWARF_VALUE_STACK. */
1464 int addr_size;
cec03d70 1465
052b9502
NF
1466 /* The pieces themselves. */
1467 struct dwarf_expr_piece *pieces;
ee40d8d4
YQ
1468
1469 /* Frame ID of frame to which a register value is relative, used
1470 only by DWARF_VALUE_REGISTER. */
1471 struct frame_id frame_id;
052b9502
NF
1472};
1473
1474/* Allocate a closure for a value formed from separately-described
1475 PIECES. */
1476
1477static struct piece_closure *
8cf6f0b1
TT
1478allocate_piece_closure (struct dwarf2_per_cu_data *per_cu,
1479 int n_pieces, struct dwarf_expr_piece *pieces,
ee40d8d4 1480 int addr_size, struct frame_info *frame)
052b9502 1481{
41bf6aca 1482 struct piece_closure *c = XCNEW (struct piece_closure);
8a9b8146 1483 int i;
052b9502 1484
88bfdde4 1485 c->refc = 1;
8cf6f0b1 1486 c->per_cu = per_cu;
052b9502 1487 c->n_pieces = n_pieces;
6063c216 1488 c->addr_size = addr_size;
fc270c35 1489 c->pieces = XCNEWVEC (struct dwarf_expr_piece, n_pieces);
ee40d8d4
YQ
1490 if (frame == NULL)
1491 c->frame_id = null_frame_id;
1492 else
1493 c->frame_id = get_frame_id (frame);
052b9502
NF
1494
1495 memcpy (c->pieces, pieces, n_pieces * sizeof (struct dwarf_expr_piece));
8a9b8146
TT
1496 for (i = 0; i < n_pieces; ++i)
1497 if (c->pieces[i].location == DWARF_VALUE_STACK)
1498 value_incref (c->pieces[i].v.value);
052b9502
NF
1499
1500 return c;
1501}
1502
22347e55
AA
1503/* Copy NBITS bits from SOURCE to DEST starting at the given bit
1504 offsets. Use the bit order as specified by BITS_BIG_ENDIAN.
1505 Source and destination buffers must not overlap. */
d3b1e874
TT
1506
1507static void
22347e55
AA
1508copy_bitwise (gdb_byte *dest, ULONGEST dest_offset,
1509 const gdb_byte *source, ULONGEST source_offset,
1510 ULONGEST nbits, int bits_big_endian)
d3b1e874 1511{
22347e55 1512 unsigned int buf, avail;
d3b1e874 1513
22347e55
AA
1514 if (nbits == 0)
1515 return;
d3b1e874 1516
d3b1e874
TT
1517 if (bits_big_endian)
1518 {
22347e55
AA
1519 /* Start from the end, then work backwards. */
1520 dest_offset += nbits - 1;
1521 dest += dest_offset / 8;
1522 dest_offset = 7 - dest_offset % 8;
1523 source_offset += nbits - 1;
1524 source += source_offset / 8;
1525 source_offset = 7 - source_offset % 8;
d3b1e874
TT
1526 }
1527 else
1528 {
22347e55
AA
1529 dest += dest_offset / 8;
1530 dest_offset %= 8;
1531 source += source_offset / 8;
1532 source_offset %= 8;
d3b1e874
TT
1533 }
1534
22347e55
AA
1535 /* Fill BUF with DEST_OFFSET bits from the destination and 8 -
1536 SOURCE_OFFSET bits from the source. */
1537 buf = *(bits_big_endian ? source-- : source++) >> source_offset;
1538 buf <<= dest_offset;
1539 buf |= *dest & ((1 << dest_offset) - 1);
d3b1e874 1540
22347e55
AA
1541 /* NBITS: bits yet to be written; AVAIL: BUF's fill level. */
1542 nbits += dest_offset;
1543 avail = dest_offset + 8 - source_offset;
d3b1e874 1544
22347e55
AA
1545 /* Flush 8 bits from BUF, if appropriate. */
1546 if (nbits >= 8 && avail >= 8)
d3b1e874 1547 {
22347e55
AA
1548 *(bits_big_endian ? dest-- : dest++) = buf;
1549 buf >>= 8;
1550 avail -= 8;
1551 nbits -= 8;
d3b1e874
TT
1552 }
1553
22347e55
AA
1554 /* Copy the middle part. */
1555 if (nbits >= 8)
d3b1e874 1556 {
22347e55
AA
1557 size_t len = nbits / 8;
1558
793c128d
AA
1559 /* Use a faster method for byte-aligned copies. */
1560 if (avail == 0)
22347e55 1561 {
793c128d
AA
1562 if (bits_big_endian)
1563 {
1564 dest -= len;
1565 source -= len;
1566 memcpy (dest + 1, source + 1, len);
1567 }
1568 else
1569 {
1570 memcpy (dest, source, len);
1571 dest += len;
1572 source += len;
1573 }
1574 }
1575 else
1576 {
1577 while (len--)
1578 {
1579 buf |= *(bits_big_endian ? source-- : source++) << avail;
1580 *(bits_big_endian ? dest-- : dest++) = buf;
1581 buf >>= 8;
1582 }
22347e55
AA
1583 }
1584 nbits %= 8;
d3b1e874
TT
1585 }
1586
22347e55
AA
1587 /* Write the last byte. */
1588 if (nbits)
d3b1e874 1589 {
22347e55
AA
1590 if (avail < nbits)
1591 buf |= *source << avail;
1592
1593 buf &= (1 << nbits) - 1;
1594 *dest = (*dest & (~0 << nbits)) | buf;
d3b1e874
TT
1595 }
1596}
1597
ad06383f
AA
1598#if GDB_SELF_TEST
1599
1600namespace selftests {
1601
1602/* Helper function for the unit test of copy_bitwise. Convert NBITS bits
1603 out of BITS, starting at OFFS, to the respective '0'/'1'-string. MSB0
1604 specifies whether to assume big endian bit numbering. Store the
1605 resulting (not null-terminated) string at STR. */
1606
1607static void
1608bits_to_str (char *str, const gdb_byte *bits, ULONGEST offs,
1609 ULONGEST nbits, int msb0)
1610{
1611 unsigned int j;
1612 size_t i;
1613
1614 for (i = offs / 8, j = offs % 8; nbits; i++, j = 0)
1615 {
1616 unsigned int ch = bits[i];
1617 for (; j < 8 && nbits; j++, nbits--)
1618 *str++ = (ch & (msb0 ? (1 << (7 - j)) : (1 << j))) ? '1' : '0';
1619 }
1620}
1621
1622/* Check one invocation of copy_bitwise with the given parameters. */
1623
1624static void
1625check_copy_bitwise (const gdb_byte *dest, unsigned int dest_offset,
1626 const gdb_byte *source, unsigned int source_offset,
1627 unsigned int nbits, int msb0)
1628{
1629 size_t len = align_up (dest_offset + nbits, 8);
1630 char *expected = (char *) alloca (len + 1);
1631 char *actual = (char *) alloca (len + 1);
1632 gdb_byte *buf = (gdb_byte *) alloca (len / 8);
1633
1634 /* Compose a '0'/'1'-string that represents the expected result of
1635 copy_bitwise below:
1636 Bits from [0, DEST_OFFSET) are filled from DEST.
1637 Bits from [DEST_OFFSET, DEST_OFFSET + NBITS) are filled from SOURCE.
1638 Bits from [DEST_OFFSET + NBITS, LEN) are filled from DEST.
1639
1640 E.g., with:
1641 dest_offset: 4
1642 nbits: 2
1643 len: 8
1644 dest: 00000000
1645 source: 11111111
1646
1647 We should end up with:
1648 buf: 00001100
1649 DDDDSSDD (D=dest, S=source)
1650 */
1651 bits_to_str (expected, dest, 0, len, msb0);
1652 bits_to_str (expected + dest_offset, source, source_offset, nbits, msb0);
1653
1654 /* Fill BUF with data from DEST, apply copy_bitwise, and convert the
1655 result to a '0'/'1'-string. */
1656 memcpy (buf, dest, len / 8);
1657 copy_bitwise (buf, dest_offset, source, source_offset, nbits, msb0);
1658 bits_to_str (actual, buf, 0, len, msb0);
1659
1660 /* Compare the resulting strings. */
1661 expected[len] = actual[len] = '\0';
1662 if (strcmp (expected, actual) != 0)
1663 error (_("copy_bitwise %s != %s (%u+%u -> %u)"),
1664 expected, actual, source_offset, nbits, dest_offset);
1665}
1666
1667/* Unit test for copy_bitwise. */
1668
1669static void
1670copy_bitwise_tests (void)
1671{
1672 /* Data to be used as both source and destination buffers. The two
1673 arrays below represent the lsb0- and msb0- encoded versions of the
1674 following bit string, respectively:
1675 00000000 00011111 11111111 01001000 10100101 11110010
1676 This pattern is chosen such that it contains:
1677 - constant 0- and 1- chunks of more than a full byte;
1678 - 0/1- and 1/0 transitions on all bit positions within a byte;
1679 - several sufficiently asymmetric bytes.
1680 */
1681 static const gdb_byte data_lsb0[] = {
1682 0x00, 0xf8, 0xff, 0x12, 0xa5, 0x4f
1683 };
1684 static const gdb_byte data_msb0[] = {
1685 0x00, 0x1f, 0xff, 0x48, 0xa5, 0xf2
1686 };
1687
1688 constexpr size_t data_nbits = 8 * sizeof (data_lsb0);
1689 constexpr unsigned max_nbits = 24;
1690
1691 /* Try all combinations of:
1692 lsb0/msb0 bit order (using the respective data array)
1693 X [0, MAX_NBITS] copy bit width
1694 X feasible source offsets for the given copy bit width
1695 X feasible destination offsets
1696 */
1697 for (int msb0 = 0; msb0 < 2; msb0++)
1698 {
1699 const gdb_byte *data = msb0 ? data_msb0 : data_lsb0;
1700
1701 for (unsigned int nbits = 1; nbits <= max_nbits; nbits++)
1702 {
1703 const unsigned int max_offset = data_nbits - nbits;
1704
1705 for (unsigned source_offset = 0;
1706 source_offset <= max_offset;
1707 source_offset++)
1708 {
1709 for (unsigned dest_offset = 0;
1710 dest_offset <= max_offset;
1711 dest_offset++)
1712 {
1713 check_copy_bitwise (data + dest_offset / 8,
1714 dest_offset % 8,
1715 data + source_offset / 8,
1716 source_offset % 8,
1717 nbits, msb0);
1718 }
1719 }
1720 }
1721
1722 /* Special cases: copy all, copy nothing. */
1723 check_copy_bitwise (data_lsb0, 0, data_msb0, 0, data_nbits, msb0);
1724 check_copy_bitwise (data_msb0, 0, data_lsb0, 0, data_nbits, msb0);
1725 check_copy_bitwise (data, data_nbits - 7, data, 9, 0, msb0);
1726 }
1727}
1728
1729} /* namespace selftests */
1730
1731#endif /* GDB_SELF_TEST */
1732
052b9502
NF
1733static void
1734read_pieced_value (struct value *v)
1735{
1736 int i;
1737 long offset = 0;
d3b1e874 1738 ULONGEST bits_to_skip;
052b9502 1739 gdb_byte *contents;
3e43a32a
MS
1740 struct piece_closure *c
1741 = (struct piece_closure *) value_computed_closure (v);
afd74c5f 1742 size_t type_len;
d3b1e874 1743 size_t buffer_size = 0;
58414334 1744 std::vector<gdb_byte> buffer;
d3b1e874
TT
1745 int bits_big_endian
1746 = gdbarch_bits_big_endian (get_type_arch (value_type (v)));
afd74c5f
TT
1747
1748 if (value_type (v) != value_enclosing_type (v))
1749 internal_error (__FILE__, __LINE__,
1750 _("Should not be able to create a lazy value with "
1751 "an enclosing type"));
052b9502
NF
1752
1753 contents = value_contents_raw (v);
d3b1e874 1754 bits_to_skip = 8 * value_offset (v);
0e03807e
TT
1755 if (value_bitsize (v))
1756 {
1757 bits_to_skip += value_bitpos (v);
1758 type_len = value_bitsize (v);
1759 }
1760 else
1761 type_len = 8 * TYPE_LENGTH (value_type (v));
d3b1e874 1762
afd74c5f 1763 for (i = 0; i < c->n_pieces && offset < type_len; i++)
052b9502
NF
1764 {
1765 struct dwarf_expr_piece *p = &c->pieces[i];
d3b1e874
TT
1766 size_t this_size, this_size_bits;
1767 long dest_offset_bits, source_offset_bits, source_offset;
0d45f56e 1768 const gdb_byte *intermediate_buffer;
d3b1e874
TT
1769
1770 /* Compute size, source, and destination offsets for copying, in
1771 bits. */
1772 this_size_bits = p->size;
1773 if (bits_to_skip > 0 && bits_to_skip >= this_size_bits)
afd74c5f 1774 {
d3b1e874 1775 bits_to_skip -= this_size_bits;
afd74c5f
TT
1776 continue;
1777 }
d3b1e874 1778 if (bits_to_skip > 0)
afd74c5f 1779 {
d3b1e874
TT
1780 dest_offset_bits = 0;
1781 source_offset_bits = bits_to_skip;
1782 this_size_bits -= bits_to_skip;
1783 bits_to_skip = 0;
afd74c5f
TT
1784 }
1785 else
1786 {
d3b1e874
TT
1787 dest_offset_bits = offset;
1788 source_offset_bits = 0;
afd74c5f 1789 }
5bd1ef56
TT
1790 if (this_size_bits > type_len - offset)
1791 this_size_bits = type_len - offset;
9a619af0 1792
d3b1e874
TT
1793 this_size = (this_size_bits + source_offset_bits % 8 + 7) / 8;
1794 source_offset = source_offset_bits / 8;
1795 if (buffer_size < this_size)
1796 {
1797 buffer_size = this_size;
58414334 1798 buffer.reserve (buffer_size);
d3b1e874 1799 }
58414334 1800 intermediate_buffer = buffer.data ();
d3b1e874
TT
1801
1802 /* Copy from the source to DEST_BUFFER. */
cec03d70 1803 switch (p->location)
052b9502 1804 {
cec03d70
TT
1805 case DWARF_VALUE_REGISTER:
1806 {
ee40d8d4 1807 struct frame_info *frame = frame_find_by_id (c->frame_id);
cec03d70 1808 struct gdbarch *arch = get_frame_arch (frame);
0fde2c53
DE
1809 int gdb_regnum = dwarf_reg_to_regnum_or_error (arch, p->v.regno);
1810 int optim, unavail;
6b850546 1811 LONGEST reg_offset = source_offset;
dcbf108f 1812
0fde2c53
DE
1813 if (gdbarch_byte_order (arch) == BFD_ENDIAN_BIG
1814 && this_size < register_size (arch, gdb_regnum))
63b4f126 1815 {
0fde2c53
DE
1816 /* Big-endian, and we want less than full size. */
1817 reg_offset = register_size (arch, gdb_regnum) - this_size;
1818 /* We want the lower-order THIS_SIZE_BITS of the bytes
1819 we extract from the register. */
1820 source_offset_bits += 8 * this_size - this_size_bits;
63b4f126 1821 }
0fde2c53
DE
1822
1823 if (!get_frame_register_bytes (frame, gdb_regnum, reg_offset,
58414334 1824 this_size, buffer.data (),
0fde2c53 1825 &optim, &unavail))
63b4f126 1826 {
0fde2c53 1827 /* Just so garbage doesn't ever shine through. */
58414334 1828 memset (buffer.data (), 0, this_size);
0fde2c53
DE
1829
1830 if (optim)
1831 mark_value_bits_optimized_out (v, offset, this_size_bits);
1832 if (unavail)
1833 mark_value_bits_unavailable (v, offset, this_size_bits);
63b4f126 1834 }
cec03d70
TT
1835 }
1836 break;
1837
1838 case DWARF_VALUE_MEMORY:
e6ca34fc
PA
1839 read_value_memory (v, offset,
1840 p->v.mem.in_stack_memory,
1841 p->v.mem.addr + source_offset,
58414334 1842 buffer.data (), this_size);
cec03d70
TT
1843 break;
1844
1845 case DWARF_VALUE_STACK:
1846 {
afd74c5f 1847 size_t n = this_size;
9a619af0 1848
afd74c5f
TT
1849 if (n > c->addr_size - source_offset)
1850 n = (c->addr_size >= source_offset
1851 ? c->addr_size - source_offset
1852 : 0);
1853 if (n == 0)
1854 {
1855 /* Nothing. */
1856 }
afd74c5f
TT
1857 else
1858 {
8a9b8146 1859 const gdb_byte *val_bytes = value_contents_all (p->v.value);
afd74c5f 1860
8a9b8146 1861 intermediate_buffer = val_bytes + source_offset;
afd74c5f 1862 }
cec03d70
TT
1863 }
1864 break;
1865
1866 case DWARF_VALUE_LITERAL:
1867 {
afd74c5f
TT
1868 size_t n = this_size;
1869
1870 if (n > p->v.literal.length - source_offset)
1871 n = (p->v.literal.length >= source_offset
1872 ? p->v.literal.length - source_offset
1873 : 0);
1874 if (n != 0)
d3b1e874 1875 intermediate_buffer = p->v.literal.data + source_offset;
cec03d70
TT
1876 }
1877 break;
1878
8cf6f0b1
TT
1879 /* These bits show up as zeros -- but do not cause the value
1880 to be considered optimized-out. */
1881 case DWARF_VALUE_IMPLICIT_POINTER:
1882 break;
1883
cb826367 1884 case DWARF_VALUE_OPTIMIZED_OUT:
9a0dc9e3 1885 mark_value_bits_optimized_out (v, offset, this_size_bits);
cb826367
TT
1886 break;
1887
cec03d70
TT
1888 default:
1889 internal_error (__FILE__, __LINE__, _("invalid location type"));
052b9502 1890 }
d3b1e874 1891
8cf6f0b1
TT
1892 if (p->location != DWARF_VALUE_OPTIMIZED_OUT
1893 && p->location != DWARF_VALUE_IMPLICIT_POINTER)
d3b1e874
TT
1894 copy_bitwise (contents, dest_offset_bits,
1895 intermediate_buffer, source_offset_bits % 8,
1896 this_size_bits, bits_big_endian);
1897
1898 offset += this_size_bits;
052b9502
NF
1899 }
1900}
1901
1902static void
1903write_pieced_value (struct value *to, struct value *from)
1904{
1905 int i;
1906 long offset = 0;
d3b1e874 1907 ULONGEST bits_to_skip;
afd74c5f 1908 const gdb_byte *contents;
3e43a32a
MS
1909 struct piece_closure *c
1910 = (struct piece_closure *) value_computed_closure (to);
41b56feb 1911 struct frame_info *frame;
afd74c5f 1912 size_t type_len;
d3b1e874 1913 size_t buffer_size = 0;
58414334 1914 std::vector<gdb_byte> buffer;
d3b1e874
TT
1915 int bits_big_endian
1916 = gdbarch_bits_big_endian (get_type_arch (value_type (to)));
052b9502 1917
41b56feb
KB
1918 /* VALUE_FRAME_ID is used instead of VALUE_NEXT_FRAME_ID here
1919 because FRAME is passed to get_frame_register_bytes() and
1920 put_frame_register_bytes(), both of which do their own "->next"
1921 operations. */
1922 frame = frame_find_by_id (VALUE_FRAME_ID (to));
052b9502
NF
1923 if (frame == NULL)
1924 {
9a0dc9e3 1925 mark_value_bytes_optimized_out (to, 0, TYPE_LENGTH (value_type (to)));
052b9502
NF
1926 return;
1927 }
1928
afd74c5f 1929 contents = value_contents (from);
d3b1e874 1930 bits_to_skip = 8 * value_offset (to);
0e03807e
TT
1931 if (value_bitsize (to))
1932 {
1933 bits_to_skip += value_bitpos (to);
1934 type_len = value_bitsize (to);
1935 }
1936 else
1937 type_len = 8 * TYPE_LENGTH (value_type (to));
1938
afd74c5f 1939 for (i = 0; i < c->n_pieces && offset < type_len; i++)
052b9502
NF
1940 {
1941 struct dwarf_expr_piece *p = &c->pieces[i];
d3b1e874
TT
1942 size_t this_size_bits, this_size;
1943 long dest_offset_bits, source_offset_bits, dest_offset, source_offset;
1944 int need_bitwise;
1945 const gdb_byte *source_buffer;
afd74c5f 1946
d3b1e874
TT
1947 this_size_bits = p->size;
1948 if (bits_to_skip > 0 && bits_to_skip >= this_size_bits)
afd74c5f 1949 {
d3b1e874 1950 bits_to_skip -= this_size_bits;
afd74c5f
TT
1951 continue;
1952 }
d3b1e874
TT
1953 if (this_size_bits > type_len - offset)
1954 this_size_bits = type_len - offset;
1955 if (bits_to_skip > 0)
afd74c5f 1956 {
d3b1e874
TT
1957 dest_offset_bits = bits_to_skip;
1958 source_offset_bits = 0;
1959 this_size_bits -= bits_to_skip;
1960 bits_to_skip = 0;
afd74c5f
TT
1961 }
1962 else
1963 {
d3b1e874
TT
1964 dest_offset_bits = 0;
1965 source_offset_bits = offset;
1966 }
1967
1968 this_size = (this_size_bits + source_offset_bits % 8 + 7) / 8;
1969 source_offset = source_offset_bits / 8;
1970 dest_offset = dest_offset_bits / 8;
1971 if (dest_offset_bits % 8 == 0 && source_offset_bits % 8 == 0)
1972 {
1973 source_buffer = contents + source_offset;
1974 need_bitwise = 0;
1975 }
1976 else
1977 {
1978 if (buffer_size < this_size)
1979 {
1980 buffer_size = this_size;
58414334 1981 buffer.reserve (buffer_size);
d3b1e874 1982 }
58414334 1983 source_buffer = buffer.data ();
d3b1e874 1984 need_bitwise = 1;
afd74c5f 1985 }
9a619af0 1986
cec03d70 1987 switch (p->location)
052b9502 1988 {
cec03d70
TT
1989 case DWARF_VALUE_REGISTER:
1990 {
1991 struct gdbarch *arch = get_frame_arch (frame);
0fde2c53
DE
1992 int gdb_regnum = dwarf_reg_to_regnum_or_error (arch, p->v.regno);
1993 int reg_offset = dest_offset;
dcbf108f 1994
0fde2c53
DE
1995 if (gdbarch_byte_order (arch) == BFD_ENDIAN_BIG
1996 && this_size <= register_size (arch, gdb_regnum))
63b4f126 1997 {
0fde2c53
DE
1998 /* Big-endian, and we want less than full size. */
1999 reg_offset = register_size (arch, gdb_regnum) - this_size;
2000 }
ca45ab26 2001
0fde2c53
DE
2002 if (need_bitwise)
2003 {
2004 int optim, unavail;
ca45ab26 2005
0fde2c53 2006 if (!get_frame_register_bytes (frame, gdb_regnum, reg_offset,
58414334 2007 this_size, buffer.data (),
0fde2c53 2008 &optim, &unavail))
d3b1e874 2009 {
0fde2c53
DE
2010 if (optim)
2011 throw_error (OPTIMIZED_OUT_ERROR,
2012 _("Can't do read-modify-write to "
2013 "update bitfield; containing word "
2014 "has been optimized out"));
2015 if (unavail)
2016 throw_error (NOT_AVAILABLE_ERROR,
2017 _("Can't do read-modify-write to update "
2018 "bitfield; containing word "
2019 "is unavailable"));
d3b1e874 2020 }
58414334 2021 copy_bitwise (buffer.data (), dest_offset_bits,
0fde2c53
DE
2022 contents, source_offset_bits,
2023 this_size_bits,
2024 bits_big_endian);
63b4f126 2025 }
0fde2c53
DE
2026
2027 put_frame_register_bytes (frame, gdb_regnum, reg_offset,
2028 this_size, source_buffer);
cec03d70
TT
2029 }
2030 break;
2031 case DWARF_VALUE_MEMORY:
d3b1e874
TT
2032 if (need_bitwise)
2033 {
2034 /* Only the first and last bytes can possibly have any
2035 bits reused. */
58414334 2036 read_memory (p->v.mem.addr + dest_offset, buffer.data (), 1);
f2c7657e 2037 read_memory (p->v.mem.addr + dest_offset + this_size - 1,
58414334
TT
2038 &buffer[this_size - 1], 1);
2039 copy_bitwise (buffer.data (), dest_offset_bits,
d3b1e874
TT
2040 contents, source_offset_bits,
2041 this_size_bits,
2042 bits_big_endian);
2043 }
2044
f2c7657e 2045 write_memory (p->v.mem.addr + dest_offset,
d3b1e874 2046 source_buffer, this_size);
cec03d70
TT
2047 break;
2048 default:
9a0dc9e3 2049 mark_value_bytes_optimized_out (to, 0, TYPE_LENGTH (value_type (to)));
0e03807e 2050 break;
052b9502 2051 }
d3b1e874 2052 offset += this_size_bits;
052b9502
NF
2053 }
2054}
2055
9a0dc9e3
PA
2056/* An implementation of an lval_funcs method to see whether a value is
2057 a synthetic pointer. */
8cf6f0b1 2058
0e03807e 2059static int
6b850546 2060check_pieced_synthetic_pointer (const struct value *value, LONGEST bit_offset,
9a0dc9e3 2061 int bit_length)
0e03807e
TT
2062{
2063 struct piece_closure *c
2064 = (struct piece_closure *) value_computed_closure (value);
2065 int i;
2066
2067 bit_offset += 8 * value_offset (value);
2068 if (value_bitsize (value))
2069 bit_offset += value_bitpos (value);
2070
2071 for (i = 0; i < c->n_pieces && bit_length > 0; i++)
2072 {
2073 struct dwarf_expr_piece *p = &c->pieces[i];
2074 size_t this_size_bits = p->size;
2075
2076 if (bit_offset > 0)
2077 {
2078 if (bit_offset >= this_size_bits)
2079 {
2080 bit_offset -= this_size_bits;
2081 continue;
2082 }
2083
2084 bit_length -= this_size_bits - bit_offset;
2085 bit_offset = 0;
2086 }
2087 else
2088 bit_length -= this_size_bits;
2089
9a0dc9e3
PA
2090 if (p->location != DWARF_VALUE_IMPLICIT_POINTER)
2091 return 0;
0e03807e
TT
2092 }
2093
9a0dc9e3 2094 return 1;
8cf6f0b1
TT
2095}
2096
2097/* A wrapper function for get_frame_address_in_block. */
2098
2099static CORE_ADDR
2100get_frame_address_in_block_wrapper (void *baton)
2101{
9a3c8263 2102 return get_frame_address_in_block ((struct frame_info *) baton);
8cf6f0b1
TT
2103}
2104
3326303b
MG
2105/* Fetch a DW_AT_const_value through a synthetic pointer. */
2106
2107static struct value *
2108fetch_const_value_from_synthetic_pointer (sect_offset die, LONGEST byte_offset,
2109 struct dwarf2_per_cu_data *per_cu,
2110 struct type *type)
2111{
2112 struct value *result = NULL;
2113 struct obstack temp_obstack;
2114 struct cleanup *cleanup;
2115 const gdb_byte *bytes;
2116 LONGEST len;
2117
2118 obstack_init (&temp_obstack);
2119 cleanup = make_cleanup_obstack_free (&temp_obstack);
2120 bytes = dwarf2_fetch_constant_bytes (die, per_cu, &temp_obstack, &len);
2121
2122 if (bytes != NULL)
2123 {
2124 if (byte_offset >= 0
2125 && byte_offset + TYPE_LENGTH (TYPE_TARGET_TYPE (type)) <= len)
2126 {
2127 bytes += byte_offset;
2128 result = value_from_contents (TYPE_TARGET_TYPE (type), bytes);
2129 }
2130 else
2131 invalid_synthetic_pointer ();
2132 }
2133 else
2134 result = allocate_optimized_out_value (TYPE_TARGET_TYPE (type));
2135
2136 do_cleanups (cleanup);
2137
2138 return result;
2139}
2140
2141/* Fetch the value pointed to by a synthetic pointer. */
2142
2143static struct value *
2144indirect_synthetic_pointer (sect_offset die, LONGEST byte_offset,
2145 struct dwarf2_per_cu_data *per_cu,
2146 struct frame_info *frame, struct type *type)
2147{
2148 /* Fetch the location expression of the DIE we're pointing to. */
2149 struct dwarf2_locexpr_baton baton
2150 = dwarf2_fetch_die_loc_sect_off (die, per_cu,
2151 get_frame_address_in_block_wrapper, frame);
2152
2153 /* If pointed-to DIE has a DW_AT_location, evaluate it and return the
2154 resulting value. Otherwise, it may have a DW_AT_const_value instead,
2155 or it may've been optimized out. */
2156 if (baton.data != NULL)
2157 return dwarf2_evaluate_loc_desc_full (TYPE_TARGET_TYPE (type), frame,
2158 baton.data, baton.size, baton.per_cu,
2159 byte_offset);
2160 else
2161 return fetch_const_value_from_synthetic_pointer (die, byte_offset, per_cu,
2162 type);
2163}
2164
8cf6f0b1
TT
2165/* An implementation of an lval_funcs method to indirect through a
2166 pointer. This handles the synthetic pointer case when needed. */
2167
2168static struct value *
2169indirect_pieced_value (struct value *value)
2170{
2171 struct piece_closure *c
2172 = (struct piece_closure *) value_computed_closure (value);
2173 struct type *type;
2174 struct frame_info *frame;
2175 struct dwarf2_locexpr_baton baton;
6b850546
DT
2176 int i, bit_length;
2177 LONGEST bit_offset;
8cf6f0b1 2178 struct dwarf_expr_piece *piece = NULL;
8cf6f0b1 2179 LONGEST byte_offset;
b597c318 2180 enum bfd_endian byte_order;
8cf6f0b1 2181
0e37a63c 2182 type = check_typedef (value_type (value));
8cf6f0b1
TT
2183 if (TYPE_CODE (type) != TYPE_CODE_PTR)
2184 return NULL;
2185
2186 bit_length = 8 * TYPE_LENGTH (type);
2187 bit_offset = 8 * value_offset (value);
2188 if (value_bitsize (value))
2189 bit_offset += value_bitpos (value);
2190
2191 for (i = 0; i < c->n_pieces && bit_length > 0; i++)
2192 {
2193 struct dwarf_expr_piece *p = &c->pieces[i];
2194 size_t this_size_bits = p->size;
2195
2196 if (bit_offset > 0)
2197 {
2198 if (bit_offset >= this_size_bits)
2199 {
2200 bit_offset -= this_size_bits;
2201 continue;
2202 }
2203
2204 bit_length -= this_size_bits - bit_offset;
2205 bit_offset = 0;
2206 }
2207 else
2208 bit_length -= this_size_bits;
2209
2210 if (p->location != DWARF_VALUE_IMPLICIT_POINTER)
2211 return NULL;
2212
2213 if (bit_length != 0)
2214 error (_("Invalid use of DW_OP_GNU_implicit_pointer"));
2215
2216 piece = p;
2217 break;
2218 }
2219
3326303b 2220 gdb_assert (piece != NULL);
8cf6f0b1 2221 frame = get_selected_frame (_("No frame selected."));
543305c9 2222
5bd1ef56
TT
2223 /* This is an offset requested by GDB, such as value subscripts.
2224 However, due to how synthetic pointers are implemented, this is
2225 always presented to us as a pointer type. This means we have to
b597c318
YQ
2226 sign-extend it manually as appropriate. Use raw
2227 extract_signed_integer directly rather than value_as_address and
2228 sign extend afterwards on architectures that would need it
2229 (mostly everywhere except MIPS, which has signed addresses) as
2230 the later would go through gdbarch_pointer_to_address and thus
2231 return a CORE_ADDR with high bits set on architectures that
2232 encode address spaces and other things in CORE_ADDR. */
2233 byte_order = gdbarch_byte_order (get_frame_arch (frame));
2234 byte_offset = extract_signed_integer (value_contents (value),
2235 TYPE_LENGTH (type), byte_order);
5bd1ef56 2236 byte_offset += piece->v.ptr.offset;
8cf6f0b1 2237
3326303b
MG
2238 return indirect_synthetic_pointer (piece->v.ptr.die, byte_offset, c->per_cu,
2239 frame, type);
2240}
8cf6f0b1 2241
3326303b
MG
2242/* Implementation of the coerce_ref method of lval_funcs for synthetic C++
2243 references. */
b6807d98 2244
3326303b
MG
2245static struct value *
2246coerce_pieced_ref (const struct value *value)
2247{
2248 struct type *type = check_typedef (value_type (value));
b6807d98 2249
3326303b
MG
2250 if (value_bits_synthetic_pointer (value, value_embedded_offset (value),
2251 TARGET_CHAR_BIT * TYPE_LENGTH (type)))
2252 {
2253 const struct piece_closure *closure
2254 = (struct piece_closure *) value_computed_closure (value);
2255 struct frame_info *frame
2256 = get_selected_frame (_("No frame selected."));
2257
2258 /* gdb represents synthetic pointers as pieced values with a single
2259 piece. */
2260 gdb_assert (closure != NULL);
2261 gdb_assert (closure->n_pieces == 1);
2262
2263 return indirect_synthetic_pointer (closure->pieces->v.ptr.die,
2264 closure->pieces->v.ptr.offset,
2265 closure->per_cu, frame, type);
2266 }
2267 else
2268 {
2269 /* Else: not a synthetic reference; do nothing. */
2270 return NULL;
2271 }
0e03807e
TT
2272}
2273
052b9502 2274static void *
0e03807e 2275copy_pieced_value_closure (const struct value *v)
052b9502 2276{
3e43a32a
MS
2277 struct piece_closure *c
2278 = (struct piece_closure *) value_computed_closure (v);
052b9502 2279
88bfdde4
TT
2280 ++c->refc;
2281 return c;
052b9502
NF
2282}
2283
2284static void
2285free_pieced_value_closure (struct value *v)
2286{
3e43a32a
MS
2287 struct piece_closure *c
2288 = (struct piece_closure *) value_computed_closure (v);
052b9502 2289
88bfdde4
TT
2290 --c->refc;
2291 if (c->refc == 0)
2292 {
8a9b8146
TT
2293 int i;
2294
2295 for (i = 0; i < c->n_pieces; ++i)
2296 if (c->pieces[i].location == DWARF_VALUE_STACK)
2297 value_free (c->pieces[i].v.value);
2298
88bfdde4
TT
2299 xfree (c->pieces);
2300 xfree (c);
2301 }
052b9502
NF
2302}
2303
2304/* Functions for accessing a variable described by DW_OP_piece. */
c8f2448a 2305static const struct lval_funcs pieced_value_funcs = {
052b9502
NF
2306 read_pieced_value,
2307 write_pieced_value,
8cf6f0b1 2308 indirect_pieced_value,
3326303b 2309 coerce_pieced_ref,
8cf6f0b1 2310 check_pieced_synthetic_pointer,
052b9502
NF
2311 copy_pieced_value_closure,
2312 free_pieced_value_closure
2313};
2314
4c2df51b 2315/* Evaluate a location description, starting at DATA and with length
8cf6f0b1
TT
2316 SIZE, to find the current location of variable of TYPE in the
2317 context of FRAME. BYTE_OFFSET is applied after the contents are
2318 computed. */
a2d33775 2319
8cf6f0b1
TT
2320static struct value *
2321dwarf2_evaluate_loc_desc_full (struct type *type, struct frame_info *frame,
56eb65bd 2322 const gdb_byte *data, size_t size,
8cf6f0b1
TT
2323 struct dwarf2_per_cu_data *per_cu,
2324 LONGEST byte_offset)
4c2df51b 2325{
4c2df51b 2326 struct value *retval;
718b9626 2327 struct cleanup *value_chain;
ac56253d 2328 struct objfile *objfile = dwarf2_per_cu_objfile (per_cu);
4c2df51b 2329
8cf6f0b1
TT
2330 if (byte_offset < 0)
2331 invalid_synthetic_pointer ();
2332
0d53c4c4 2333 if (size == 0)
a7035dbb 2334 return allocate_optimized_out_value (type);
0d53c4c4 2335
192ca6d8
TT
2336 dwarf_evaluate_loc_desc ctx;
2337 ctx.frame = frame;
2338 ctx.per_cu = per_cu;
2339 ctx.obj_address = 0;
4c2df51b 2340
72fc29ff 2341 value_chain = make_cleanup_value_free_to_mark (value_mark ());
4a227398 2342
718b9626
TT
2343 ctx.gdbarch = get_objfile_arch (objfile);
2344 ctx.addr_size = dwarf2_per_cu_addr_size (per_cu);
2345 ctx.ref_addr_size = dwarf2_per_cu_ref_addr_size (per_cu);
2346 ctx.offset = dwarf2_per_cu_text_offset (per_cu);
4c2df51b 2347
492d29ea 2348 TRY
79e1a869 2349 {
595d2e30 2350 ctx.eval (data, size);
79e1a869 2351 }
492d29ea 2352 CATCH (ex, RETURN_MASK_ERROR)
79e1a869
PA
2353 {
2354 if (ex.error == NOT_AVAILABLE_ERROR)
2355 {
718b9626 2356 do_cleanups (value_chain);
79e1a869
PA
2357 retval = allocate_value (type);
2358 mark_value_bytes_unavailable (retval, 0, TYPE_LENGTH (type));
2359 return retval;
2360 }
8e3b41a9
JK
2361 else if (ex.error == NO_ENTRY_VALUE_ERROR)
2362 {
2363 if (entry_values_debug)
2364 exception_print (gdb_stdout, ex);
718b9626 2365 do_cleanups (value_chain);
8e3b41a9
JK
2366 return allocate_optimized_out_value (type);
2367 }
79e1a869
PA
2368 else
2369 throw_exception (ex);
2370 }
492d29ea 2371 END_CATCH
79e1a869 2372
718b9626 2373 if (ctx.num_pieces > 0)
87808bd6 2374 {
052b9502 2375 struct piece_closure *c;
8cf6f0b1
TT
2376 ULONGEST bit_size = 0;
2377 int i;
052b9502 2378
718b9626
TT
2379 for (i = 0; i < ctx.num_pieces; ++i)
2380 bit_size += ctx.pieces[i].size;
8cf6f0b1
TT
2381 if (8 * (byte_offset + TYPE_LENGTH (type)) > bit_size)
2382 invalid_synthetic_pointer ();
2383
718b9626 2384 c = allocate_piece_closure (per_cu, ctx.num_pieces, ctx.pieces,
ee40d8d4 2385 ctx.addr_size, frame);
72fc29ff
TT
2386 /* We must clean up the value chain after creating the piece
2387 closure but before allocating the result. */
2388 do_cleanups (value_chain);
a2d33775 2389 retval = allocate_computed_value (type, &pieced_value_funcs, c);
8cf6f0b1 2390 set_value_offset (retval, byte_offset);
87808bd6 2391 }
4c2df51b
DJ
2392 else
2393 {
718b9626 2394 switch (ctx.location)
cec03d70
TT
2395 {
2396 case DWARF_VALUE_REGISTER:
2397 {
2398 struct gdbarch *arch = get_frame_arch (frame);
7c33b57c 2399 int dwarf_regnum
595d2e30 2400 = longest_to_int (value_as_long (ctx.fetch (0)));
0fde2c53 2401 int gdb_regnum = dwarf_reg_to_regnum_or_error (arch, dwarf_regnum);
9a619af0 2402
8cf6f0b1
TT
2403 if (byte_offset != 0)
2404 error (_("cannot use offset on synthetic pointer to register"));
72fc29ff 2405 do_cleanups (value_chain);
0fde2c53
DE
2406 retval = value_from_register (type, gdb_regnum, frame);
2407 if (value_optimized_out (retval))
2408 {
2409 struct value *tmp;
2410
2411 /* This means the register has undefined value / was
2412 not saved. As we're computing the location of some
2413 variable etc. in the program, not a value for
2414 inspecting a register ($pc, $sp, etc.), return a
2415 generic optimized out value instead, so that we show
2416 <optimized out> instead of <not saved>. */
2417 do_cleanups (value_chain);
2418 tmp = allocate_value (type);
2419 value_contents_copy (tmp, 0, retval, 0, TYPE_LENGTH (type));
2420 retval = tmp;
2421 }
cec03d70
TT
2422 }
2423 break;
2424
2425 case DWARF_VALUE_MEMORY:
2426 {
f56331b4 2427 struct type *ptr_type;
595d2e30
TT
2428 CORE_ADDR address = ctx.fetch_address (0);
2429 int in_stack_memory = ctx.fetch_in_stack_memory (0);
cec03d70 2430
f56331b4
KB
2431 /* DW_OP_deref_size (and possibly other operations too) may
2432 create a pointer instead of an address. Ideally, the
2433 pointer to address conversion would be performed as part
2434 of those operations, but the type of the object to
2435 which the address refers is not known at the time of
2436 the operation. Therefore, we do the conversion here
2437 since the type is readily available. */
2438
2439 switch (TYPE_CODE (type))
2440 {
2441 case TYPE_CODE_FUNC:
2442 case TYPE_CODE_METHOD:
718b9626 2443 ptr_type = builtin_type (ctx.gdbarch)->builtin_func_ptr;
f56331b4
KB
2444 break;
2445 default:
718b9626 2446 ptr_type = builtin_type (ctx.gdbarch)->builtin_data_ptr;
f56331b4
KB
2447 break;
2448 }
2449 address = value_as_address (value_from_pointer (ptr_type, address));
2450
72fc29ff 2451 do_cleanups (value_chain);
08039c9e 2452 retval = value_at_lazy (type, address + byte_offset);
44353522
DE
2453 if (in_stack_memory)
2454 set_value_stack (retval, 1);
cec03d70
TT
2455 }
2456 break;
2457
2458 case DWARF_VALUE_STACK:
2459 {
595d2e30 2460 struct value *value = ctx.fetch (0);
8a9b8146
TT
2461 gdb_byte *contents;
2462 const gdb_byte *val_bytes;
2463 size_t n = TYPE_LENGTH (value_type (value));
cec03d70 2464
8cf6f0b1
TT
2465 if (byte_offset + TYPE_LENGTH (type) > n)
2466 invalid_synthetic_pointer ();
2467
8a9b8146
TT
2468 val_bytes = value_contents_all (value);
2469 val_bytes += byte_offset;
8cf6f0b1
TT
2470 n -= byte_offset;
2471
72fc29ff
TT
2472 /* Preserve VALUE because we are going to free values back
2473 to the mark, but we still need the value contents
2474 below. */
2475 value_incref (value);
2476 do_cleanups (value_chain);
2477 make_cleanup_value_free (value);
2478
a2d33775 2479 retval = allocate_value (type);
cec03d70 2480 contents = value_contents_raw (retval);
a2d33775 2481 if (n > TYPE_LENGTH (type))
b6cede78
JK
2482 {
2483 struct gdbarch *objfile_gdbarch = get_objfile_arch (objfile);
2484
2485 if (gdbarch_byte_order (objfile_gdbarch) == BFD_ENDIAN_BIG)
2486 val_bytes += n - TYPE_LENGTH (type);
2487 n = TYPE_LENGTH (type);
2488 }
8a9b8146 2489 memcpy (contents, val_bytes, n);
cec03d70
TT
2490 }
2491 break;
2492
2493 case DWARF_VALUE_LITERAL:
2494 {
2495 bfd_byte *contents;
8c814cdd 2496 const bfd_byte *ldata;
718b9626 2497 size_t n = ctx.len;
cec03d70 2498
8cf6f0b1
TT
2499 if (byte_offset + TYPE_LENGTH (type) > n)
2500 invalid_synthetic_pointer ();
2501
72fc29ff 2502 do_cleanups (value_chain);
a2d33775 2503 retval = allocate_value (type);
cec03d70 2504 contents = value_contents_raw (retval);
8cf6f0b1 2505
718b9626 2506 ldata = ctx.data + byte_offset;
8cf6f0b1
TT
2507 n -= byte_offset;
2508
a2d33775 2509 if (n > TYPE_LENGTH (type))
b6cede78
JK
2510 {
2511 struct gdbarch *objfile_gdbarch = get_objfile_arch (objfile);
2512
2513 if (gdbarch_byte_order (objfile_gdbarch) == BFD_ENDIAN_BIG)
2514 ldata += n - TYPE_LENGTH (type);
2515 n = TYPE_LENGTH (type);
2516 }
8c814cdd 2517 memcpy (contents, ldata, n);
cec03d70
TT
2518 }
2519 break;
2520
dd90784c 2521 case DWARF_VALUE_OPTIMIZED_OUT:
72fc29ff 2522 do_cleanups (value_chain);
a7035dbb 2523 retval = allocate_optimized_out_value (type);
dd90784c
JK
2524 break;
2525
8cf6f0b1
TT
2526 /* DWARF_VALUE_IMPLICIT_POINTER was converted to a pieced
2527 operation by execute_stack_op. */
2528 case DWARF_VALUE_IMPLICIT_POINTER:
cb826367
TT
2529 /* DWARF_VALUE_OPTIMIZED_OUT can't occur in this context --
2530 it can only be encountered when making a piece. */
cec03d70
TT
2531 default:
2532 internal_error (__FILE__, __LINE__, _("invalid location type"));
2533 }
4c2df51b
DJ
2534 }
2535
718b9626 2536 set_value_initialized (retval, ctx.initialized);
42be36b3 2537
718b9626 2538 do_cleanups (value_chain);
4c2df51b
DJ
2539
2540 return retval;
2541}
8cf6f0b1
TT
2542
2543/* The exported interface to dwarf2_evaluate_loc_desc_full; it always
2544 passes 0 as the byte_offset. */
2545
2546struct value *
2547dwarf2_evaluate_loc_desc (struct type *type, struct frame_info *frame,
56eb65bd 2548 const gdb_byte *data, size_t size,
8cf6f0b1
TT
2549 struct dwarf2_per_cu_data *per_cu)
2550{
2551 return dwarf2_evaluate_loc_desc_full (type, frame, data, size, per_cu, 0);
2552}
2553
80180f79 2554/* Evaluates a dwarf expression and stores the result in VAL, expecting
63e43d3a
PMR
2555 that the dwarf expression only produces a single CORE_ADDR. FRAME is the
2556 frame in which the expression is evaluated. ADDR is a context (location of
2557 a variable) and might be needed to evaluate the location expression.
80180f79
SA
2558 Returns 1 on success, 0 otherwise. */
2559
2560static int
2561dwarf2_locexpr_baton_eval (const struct dwarf2_locexpr_baton *dlbaton,
63e43d3a 2562 struct frame_info *frame,
08412b07 2563 CORE_ADDR addr,
1cfdf534 2564 CORE_ADDR *valp)
80180f79 2565{
80180f79
SA
2566 struct objfile *objfile;
2567 struct cleanup *cleanup;
2568
2569 if (dlbaton == NULL || dlbaton->size == 0)
2570 return 0;
2571
192ca6d8 2572 dwarf_evaluate_loc_desc ctx;
80180f79 2573
192ca6d8
TT
2574 ctx.frame = frame;
2575 ctx.per_cu = dlbaton->per_cu;
2576 ctx.obj_address = addr;
80180f79
SA
2577
2578 objfile = dwarf2_per_cu_objfile (dlbaton->per_cu);
2579
718b9626
TT
2580 ctx.gdbarch = get_objfile_arch (objfile);
2581 ctx.addr_size = dwarf2_per_cu_addr_size (dlbaton->per_cu);
2582 ctx.ref_addr_size = dwarf2_per_cu_ref_addr_size (dlbaton->per_cu);
2583 ctx.offset = dwarf2_per_cu_text_offset (dlbaton->per_cu);
80180f79 2584
595d2e30 2585 ctx.eval (dlbaton->data, dlbaton->size);
80180f79 2586
718b9626 2587 switch (ctx.location)
80180f79
SA
2588 {
2589 case DWARF_VALUE_REGISTER:
2590 case DWARF_VALUE_MEMORY:
2591 case DWARF_VALUE_STACK:
595d2e30 2592 *valp = ctx.fetch_address (0);
718b9626 2593 if (ctx.location == DWARF_VALUE_REGISTER)
192ca6d8 2594 *valp = ctx.read_addr_from_reg (*valp);
80180f79
SA
2595 return 1;
2596 case DWARF_VALUE_LITERAL:
718b9626
TT
2597 *valp = extract_signed_integer (ctx.data, ctx.len,
2598 gdbarch_byte_order (ctx.gdbarch));
80180f79
SA
2599 return 1;
2600 /* Unsupported dwarf values. */
2601 case DWARF_VALUE_OPTIMIZED_OUT:
2602 case DWARF_VALUE_IMPLICIT_POINTER:
2603 break;
2604 }
2605
80180f79
SA
2606 return 0;
2607}
2608
2609/* See dwarf2loc.h. */
2610
2611int
08412b07 2612dwarf2_evaluate_property (const struct dynamic_prop *prop,
63e43d3a 2613 struct frame_info *frame,
df25ebbd
JB
2614 struct property_addr_info *addr_stack,
2615 CORE_ADDR *value)
80180f79
SA
2616{
2617 if (prop == NULL)
2618 return 0;
2619
63e43d3a
PMR
2620 if (frame == NULL && has_stack_frames ())
2621 frame = get_selected_frame (NULL);
2622
80180f79
SA
2623 switch (prop->kind)
2624 {
2625 case PROP_LOCEXPR:
2626 {
9a3c8263
SM
2627 const struct dwarf2_property_baton *baton
2628 = (const struct dwarf2_property_baton *) prop->data.baton;
80180f79 2629
63e43d3a
PMR
2630 if (dwarf2_locexpr_baton_eval (&baton->locexpr, frame,
2631 addr_stack ? addr_stack->addr : 0,
df25ebbd 2632 value))
80180f79
SA
2633 {
2634 if (baton->referenced_type)
2635 {
2636 struct value *val = value_at (baton->referenced_type, *value);
2637
2638 *value = value_as_address (val);
2639 }
2640 return 1;
2641 }
2642 }
2643 break;
2644
2645 case PROP_LOCLIST:
2646 {
9a3c8263
SM
2647 struct dwarf2_property_baton *baton
2648 = (struct dwarf2_property_baton *) prop->data.baton;
80180f79
SA
2649 CORE_ADDR pc = get_frame_address_in_block (frame);
2650 const gdb_byte *data;
2651 struct value *val;
2652 size_t size;
2653
2654 data = dwarf2_find_location_expression (&baton->loclist, &size, pc);
2655 if (data != NULL)
2656 {
2657 val = dwarf2_evaluate_loc_desc (baton->referenced_type, frame, data,
2658 size, baton->loclist.per_cu);
2659 if (!value_optimized_out (val))
2660 {
2661 *value = value_as_address (val);
2662 return 1;
2663 }
2664 }
2665 }
2666 break;
2667
2668 case PROP_CONST:
2669 *value = prop->data.const_val;
2670 return 1;
df25ebbd
JB
2671
2672 case PROP_ADDR_OFFSET:
2673 {
9a3c8263
SM
2674 struct dwarf2_property_baton *baton
2675 = (struct dwarf2_property_baton *) prop->data.baton;
df25ebbd
JB
2676 struct property_addr_info *pinfo;
2677 struct value *val;
2678
2679 for (pinfo = addr_stack; pinfo != NULL; pinfo = pinfo->next)
2680 if (pinfo->type == baton->referenced_type)
2681 break;
2682 if (pinfo == NULL)
2c811c0f 2683 error (_("cannot find reference address for offset property"));
c3345124
JB
2684 if (pinfo->valaddr != NULL)
2685 val = value_from_contents
2686 (baton->offset_info.type,
2687 pinfo->valaddr + baton->offset_info.offset);
2688 else
2689 val = value_at (baton->offset_info.type,
2690 pinfo->addr + baton->offset_info.offset);
df25ebbd
JB
2691 *value = value_as_address (val);
2692 return 1;
2693 }
80180f79
SA
2694 }
2695
2696 return 0;
2697}
2698
bb2ec1b3
TT
2699/* See dwarf2loc.h. */
2700
2701void
2702dwarf2_compile_property_to_c (struct ui_file *stream,
2703 const char *result_name,
2704 struct gdbarch *gdbarch,
2705 unsigned char *registers_used,
2706 const struct dynamic_prop *prop,
2707 CORE_ADDR pc,
2708 struct symbol *sym)
2709{
9a3c8263
SM
2710 struct dwarf2_property_baton *baton
2711 = (struct dwarf2_property_baton *) prop->data.baton;
bb2ec1b3
TT
2712 const gdb_byte *data;
2713 size_t size;
2714 struct dwarf2_per_cu_data *per_cu;
2715
2716 if (prop->kind == PROP_LOCEXPR)
2717 {
2718 data = baton->locexpr.data;
2719 size = baton->locexpr.size;
2720 per_cu = baton->locexpr.per_cu;
2721 }
2722 else
2723 {
2724 gdb_assert (prop->kind == PROP_LOCLIST);
2725
2726 data = dwarf2_find_location_expression (&baton->loclist, &size, pc);
2727 per_cu = baton->loclist.per_cu;
2728 }
2729
2730 compile_dwarf_bounds_to_c (stream, result_name, prop, sym, pc,
2731 gdbarch, registers_used,
2732 dwarf2_per_cu_addr_size (per_cu),
2733 data, data + size, per_cu);
2734}
2735
4c2df51b 2736\f
0b31a4bc 2737/* Helper functions and baton for dwarf2_loc_desc_get_symbol_read_needs. */
4c2df51b 2738
192ca6d8 2739class symbol_needs_eval_context : public dwarf_expr_context
4c2df51b 2740{
192ca6d8
TT
2741 public:
2742
0b31a4bc 2743 enum symbol_needs_kind needs;
17ea53c3 2744 struct dwarf2_per_cu_data *per_cu;
4c2df51b 2745
192ca6d8
TT
2746 /* Reads from registers do require a frame. */
2747 CORE_ADDR read_addr_from_reg (int regnum) OVERRIDE
2748 {
2749 needs = SYMBOL_NEEDS_FRAME;
2750 return 1;
2751 }
2752
2753 /* "get_reg_value" callback: Reads from registers do require a
2754 frame. */
2755
2756 struct value *get_reg_value (struct type *type, int regnum) OVERRIDE
2757 {
2758 needs = SYMBOL_NEEDS_FRAME;
2759 return value_zero (type, not_lval);
2760 }
2761
2762 /* Reads from memory do not require a frame. */
2763 void read_mem (gdb_byte *buf, CORE_ADDR addr, size_t len) OVERRIDE
2764 {
2765 memset (buf, 0, len);
2766 }
2767
2768 /* Frame-relative accesses do require a frame. */
2769 void get_frame_base (const gdb_byte **start, size_t *length) OVERRIDE
2770 {
2771 static gdb_byte lit0 = DW_OP_lit0;
2772
2773 *start = &lit0;
2774 *length = 1;
2775
2776 needs = SYMBOL_NEEDS_FRAME;
2777 }
2778
2779 /* CFA accesses require a frame. */
2780 CORE_ADDR get_frame_cfa () OVERRIDE
2781 {
2782 needs = SYMBOL_NEEDS_FRAME;
2783 return 1;
2784 }
2785
7d5697f9
TT
2786 CORE_ADDR get_frame_pc () OVERRIDE
2787 {
2788 needs = SYMBOL_NEEDS_FRAME;
2789 return 1;
2790 }
2791
192ca6d8
TT
2792 /* Thread-local accesses require registers, but not a frame. */
2793 CORE_ADDR get_tls_address (CORE_ADDR offset) OVERRIDE
2794 {
2795 if (needs <= SYMBOL_NEEDS_REGISTERS)
2796 needs = SYMBOL_NEEDS_REGISTERS;
2797 return 1;
2798 }
2799
2800 /* Helper interface of per_cu_dwarf_call for
2801 dwarf2_loc_desc_get_symbol_read_needs. */
2802
2803 void dwarf_call (cu_offset die_offset) OVERRIDE
2804 {
2805 per_cu_dwarf_call (this, die_offset, per_cu);
2806 }
2807
2808 /* DW_OP_GNU_entry_value accesses require a caller, therefore a
2809 frame. */
2810
2811 void push_dwarf_reg_entry_value (enum call_site_parameter_kind kind,
2812 union call_site_parameter_u kind_u,
2813 int deref_size) OVERRIDE
2814 {
2815 needs = SYMBOL_NEEDS_FRAME;
3019eac3 2816
192ca6d8
TT
2817 /* The expression may require some stub values on DWARF stack. */
2818 push_address (0, 0);
2819 }
3019eac3 2820
192ca6d8 2821 /* DW_OP_GNU_addr_index doesn't require a frame. */
08412b07 2822
192ca6d8
TT
2823 CORE_ADDR get_addr_index (unsigned int index) OVERRIDE
2824 {
2825 /* Nothing to do. */
2826 return 1;
2827 }
08412b07 2828
192ca6d8 2829 /* DW_OP_push_object_address has a frame already passed through. */
9e8b7a03 2830
192ca6d8
TT
2831 CORE_ADDR get_object_address () OVERRIDE
2832 {
2833 /* Nothing to do. */
2834 return 1;
2835 }
9e8b7a03
JK
2836};
2837
0b31a4bc
TT
2838/* Compute the correct symbol_needs_kind value for the location
2839 expression at DATA (length SIZE). */
4c2df51b 2840
0b31a4bc
TT
2841static enum symbol_needs_kind
2842dwarf2_loc_desc_get_symbol_read_needs (const gdb_byte *data, size_t size,
2843 struct dwarf2_per_cu_data *per_cu)
4c2df51b 2844{
f630a401 2845 int in_reg;
4a227398 2846 struct cleanup *old_chain;
ac56253d 2847 struct objfile *objfile = dwarf2_per_cu_objfile (per_cu);
4c2df51b 2848
192ca6d8
TT
2849 symbol_needs_eval_context ctx;
2850
2851 ctx.needs = SYMBOL_NEEDS_NONE;
2852 ctx.per_cu = per_cu;
4c2df51b 2853
718b9626 2854 old_chain = make_cleanup_value_free_to_mark (value_mark ());
4a227398 2855
718b9626
TT
2856 ctx.gdbarch = get_objfile_arch (objfile);
2857 ctx.addr_size = dwarf2_per_cu_addr_size (per_cu);
2858 ctx.ref_addr_size = dwarf2_per_cu_ref_addr_size (per_cu);
2859 ctx.offset = dwarf2_per_cu_text_offset (per_cu);
4c2df51b 2860
595d2e30 2861 ctx.eval (data, size);
4c2df51b 2862
718b9626 2863 in_reg = ctx.location == DWARF_VALUE_REGISTER;
f630a401 2864
718b9626 2865 if (ctx.num_pieces > 0)
87808bd6
JB
2866 {
2867 int i;
2868
2869 /* If the location has several pieces, and any of them are in
2870 registers, then we will need a frame to fetch them from. */
718b9626
TT
2871 for (i = 0; i < ctx.num_pieces; i++)
2872 if (ctx.pieces[i].location == DWARF_VALUE_REGISTER)
87808bd6
JB
2873 in_reg = 1;
2874 }
2875
4a227398 2876 do_cleanups (old_chain);
4c2df51b 2877
0b31a4bc 2878 if (in_reg)
192ca6d8
TT
2879 ctx.needs = SYMBOL_NEEDS_FRAME;
2880 return ctx.needs;
4c2df51b
DJ
2881}
2882
3cf03773
TT
2883/* A helper function that throws an unimplemented error mentioning a
2884 given DWARF operator. */
2885
2886static void
2887unimplemented (unsigned int op)
0d53c4c4 2888{
f39c6ffd 2889 const char *name = get_DW_OP_name (op);
b1bfef65
TT
2890
2891 if (name)
2892 error (_("DWARF operator %s cannot be translated to an agent expression"),
2893 name);
2894 else
1ba1b353
TT
2895 error (_("Unknown DWARF operator 0x%02x cannot be translated "
2896 "to an agent expression"),
b1bfef65 2897 op);
3cf03773 2898}
08922a10 2899
0fde2c53
DE
2900/* See dwarf2loc.h.
2901
2902 This is basically a wrapper on gdbarch_dwarf2_reg_to_regnum so that we
2903 can issue a complaint, which is better than having every target's
2904 implementation of dwarf2_reg_to_regnum do it. */
08922a10 2905
d064d1be 2906int
0fde2c53 2907dwarf_reg_to_regnum (struct gdbarch *arch, int dwarf_reg)
3cf03773
TT
2908{
2909 int reg = gdbarch_dwarf2_reg_to_regnum (arch, dwarf_reg);
0fde2c53 2910
3cf03773 2911 if (reg == -1)
0fde2c53
DE
2912 {
2913 complaint (&symfile_complaints,
2914 _("bad DWARF register number %d"), dwarf_reg);
2915 }
2916 return reg;
2917}
2918
2919/* Subroutine of dwarf_reg_to_regnum_or_error to simplify it.
2920 Throw an error because DWARF_REG is bad. */
2921
2922static void
2923throw_bad_regnum_error (ULONGEST dwarf_reg)
2924{
2925 /* Still want to print -1 as "-1".
2926 We *could* have int and ULONGEST versions of dwarf2_reg_to_regnum_or_error
2927 but that's overkill for now. */
2928 if ((int) dwarf_reg == dwarf_reg)
2929 error (_("Unable to access DWARF register number %d"), (int) dwarf_reg);
2930 error (_("Unable to access DWARF register number %s"),
2931 pulongest (dwarf_reg));
2932}
2933
2934/* See dwarf2loc.h. */
2935
2936int
2937dwarf_reg_to_regnum_or_error (struct gdbarch *arch, ULONGEST dwarf_reg)
2938{
2939 int reg;
2940
2941 if (dwarf_reg > INT_MAX)
2942 throw_bad_regnum_error (dwarf_reg);
2943 /* Yes, we will end up issuing a complaint and an error if DWARF_REG is
2944 bad, but that's ok. */
2945 reg = dwarf_reg_to_regnum (arch, (int) dwarf_reg);
2946 if (reg == -1)
2947 throw_bad_regnum_error (dwarf_reg);
3cf03773
TT
2948 return reg;
2949}
08922a10 2950
3cf03773
TT
2951/* A helper function that emits an access to memory. ARCH is the
2952 target architecture. EXPR is the expression which we are building.
2953 NBITS is the number of bits we want to read. This emits the
2954 opcodes needed to read the memory and then extract the desired
2955 bits. */
08922a10 2956
3cf03773
TT
2957static void
2958access_memory (struct gdbarch *arch, struct agent_expr *expr, ULONGEST nbits)
08922a10 2959{
3cf03773
TT
2960 ULONGEST nbytes = (nbits + 7) / 8;
2961
9df7235c 2962 gdb_assert (nbytes > 0 && nbytes <= sizeof (LONGEST));
3cf03773 2963
92bc6a20 2964 if (expr->tracing)
3cf03773
TT
2965 ax_trace_quick (expr, nbytes);
2966
2967 if (nbits <= 8)
2968 ax_simple (expr, aop_ref8);
2969 else if (nbits <= 16)
2970 ax_simple (expr, aop_ref16);
2971 else if (nbits <= 32)
2972 ax_simple (expr, aop_ref32);
2973 else
2974 ax_simple (expr, aop_ref64);
2975
2976 /* If we read exactly the number of bytes we wanted, we're done. */
2977 if (8 * nbytes == nbits)
2978 return;
2979
2980 if (gdbarch_bits_big_endian (arch))
0d53c4c4 2981 {
3cf03773
TT
2982 /* On a bits-big-endian machine, we want the high-order
2983 NBITS. */
2984 ax_const_l (expr, 8 * nbytes - nbits);
2985 ax_simple (expr, aop_rsh_unsigned);
0d53c4c4 2986 }
3cf03773 2987 else
0d53c4c4 2988 {
3cf03773
TT
2989 /* On a bits-little-endian box, we want the low-order NBITS. */
2990 ax_zero_ext (expr, nbits);
0d53c4c4 2991 }
3cf03773 2992}
0936ad1d 2993
8cf6f0b1
TT
2994/* A helper function to return the frame's PC. */
2995
2996static CORE_ADDR
2997get_ax_pc (void *baton)
2998{
9a3c8263 2999 struct agent_expr *expr = (struct agent_expr *) baton;
8cf6f0b1
TT
3000
3001 return expr->scope;
3002}
3003
3cf03773
TT
3004/* Compile a DWARF location expression to an agent expression.
3005
3006 EXPR is the agent expression we are building.
3007 LOC is the agent value we modify.
3008 ARCH is the architecture.
3009 ADDR_SIZE is the size of addresses, in bytes.
3010 OP_PTR is the start of the location expression.
3011 OP_END is one past the last byte of the location expression.
3012
3013 This will throw an exception for various kinds of errors -- for
3014 example, if the expression cannot be compiled, or if the expression
3015 is invalid. */
0936ad1d 3016
9f6f94ff
TT
3017void
3018dwarf2_compile_expr_to_ax (struct agent_expr *expr, struct axs_value *loc,
3019 struct gdbarch *arch, unsigned int addr_size,
3020 const gdb_byte *op_ptr, const gdb_byte *op_end,
3021 struct dwarf2_per_cu_data *per_cu)
3cf03773 3022{
58414334
TT
3023 int i;
3024 std::vector<int> dw_labels, patches;
3cf03773
TT
3025 const gdb_byte * const base = op_ptr;
3026 const gdb_byte *previous_piece = op_ptr;
3027 enum bfd_endian byte_order = gdbarch_byte_order (arch);
3028 ULONGEST bits_collected = 0;
3029 unsigned int addr_size_bits = 8 * addr_size;
3030 int bits_big_endian = gdbarch_bits_big_endian (arch);
0936ad1d 3031
58414334 3032 std::vector<int> offsets (op_end - op_ptr, -1);
0936ad1d 3033
3cf03773
TT
3034 /* By default we are making an address. */
3035 loc->kind = axs_lvalue_memory;
0d45f56e 3036
3cf03773
TT
3037 while (op_ptr < op_end)
3038 {
aead7601 3039 enum dwarf_location_atom op = (enum dwarf_location_atom) *op_ptr;
9fccedf7
DE
3040 uint64_t uoffset, reg;
3041 int64_t offset;
3cf03773
TT
3042 int i;
3043
3044 offsets[op_ptr - base] = expr->len;
3045 ++op_ptr;
3046
3047 /* Our basic approach to code generation is to map DWARF
3048 operations directly to AX operations. However, there are
3049 some differences.
3050
3051 First, DWARF works on address-sized units, but AX always uses
3052 LONGEST. For most operations we simply ignore this
3053 difference; instead we generate sign extensions as needed
3054 before division and comparison operations. It would be nice
3055 to omit the sign extensions, but there is no way to determine
3056 the size of the target's LONGEST. (This code uses the size
3057 of the host LONGEST in some cases -- that is a bug but it is
3058 difficult to fix.)
3059
3060 Second, some DWARF operations cannot be translated to AX.
3061 For these we simply fail. See
3062 http://sourceware.org/bugzilla/show_bug.cgi?id=11662. */
3063 switch (op)
0936ad1d 3064 {
3cf03773
TT
3065 case DW_OP_lit0:
3066 case DW_OP_lit1:
3067 case DW_OP_lit2:
3068 case DW_OP_lit3:
3069 case DW_OP_lit4:
3070 case DW_OP_lit5:
3071 case DW_OP_lit6:
3072 case DW_OP_lit7:
3073 case DW_OP_lit8:
3074 case DW_OP_lit9:
3075 case DW_OP_lit10:
3076 case DW_OP_lit11:
3077 case DW_OP_lit12:
3078 case DW_OP_lit13:
3079 case DW_OP_lit14:
3080 case DW_OP_lit15:
3081 case DW_OP_lit16:
3082 case DW_OP_lit17:
3083 case DW_OP_lit18:
3084 case DW_OP_lit19:
3085 case DW_OP_lit20:
3086 case DW_OP_lit21:
3087 case DW_OP_lit22:
3088 case DW_OP_lit23:
3089 case DW_OP_lit24:
3090 case DW_OP_lit25:
3091 case DW_OP_lit26:
3092 case DW_OP_lit27:
3093 case DW_OP_lit28:
3094 case DW_OP_lit29:
3095 case DW_OP_lit30:
3096 case DW_OP_lit31:
3097 ax_const_l (expr, op - DW_OP_lit0);
3098 break;
0d53c4c4 3099
3cf03773 3100 case DW_OP_addr:
ac56253d 3101 uoffset = extract_unsigned_integer (op_ptr, addr_size, byte_order);
3cf03773 3102 op_ptr += addr_size;
ac56253d
TT
3103 /* Some versions of GCC emit DW_OP_addr before
3104 DW_OP_GNU_push_tls_address. In this case the value is an
3105 index, not an address. We don't support things like
3106 branching between the address and the TLS op. */
3107 if (op_ptr >= op_end || *op_ptr != DW_OP_GNU_push_tls_address)
9aa1f1e3 3108 uoffset += dwarf2_per_cu_text_offset (per_cu);
ac56253d 3109 ax_const_l (expr, uoffset);
3cf03773 3110 break;
4c2df51b 3111
3cf03773
TT
3112 case DW_OP_const1u:
3113 ax_const_l (expr, extract_unsigned_integer (op_ptr, 1, byte_order));
3114 op_ptr += 1;
3115 break;
3116 case DW_OP_const1s:
3117 ax_const_l (expr, extract_signed_integer (op_ptr, 1, byte_order));
3118 op_ptr += 1;
3119 break;
3120 case DW_OP_const2u:
3121 ax_const_l (expr, extract_unsigned_integer (op_ptr, 2, byte_order));
3122 op_ptr += 2;
3123 break;
3124 case DW_OP_const2s:
3125 ax_const_l (expr, extract_signed_integer (op_ptr, 2, byte_order));
3126 op_ptr += 2;
3127 break;
3128 case DW_OP_const4u:
3129 ax_const_l (expr, extract_unsigned_integer (op_ptr, 4, byte_order));
3130 op_ptr += 4;
3131 break;
3132 case DW_OP_const4s:
3133 ax_const_l (expr, extract_signed_integer (op_ptr, 4, byte_order));
3134 op_ptr += 4;
3135 break;
3136 case DW_OP_const8u:
3137 ax_const_l (expr, extract_unsigned_integer (op_ptr, 8, byte_order));
3138 op_ptr += 8;
3139 break;
3140 case DW_OP_const8s:
3141 ax_const_l (expr, extract_signed_integer (op_ptr, 8, byte_order));
3142 op_ptr += 8;
3143 break;
3144 case DW_OP_constu:
f664829e 3145 op_ptr = safe_read_uleb128 (op_ptr, op_end, &uoffset);
3cf03773
TT
3146 ax_const_l (expr, uoffset);
3147 break;
3148 case DW_OP_consts:
f664829e 3149 op_ptr = safe_read_sleb128 (op_ptr, op_end, &offset);
3cf03773
TT
3150 ax_const_l (expr, offset);
3151 break;
9c238357 3152
3cf03773
TT
3153 case DW_OP_reg0:
3154 case DW_OP_reg1:
3155 case DW_OP_reg2:
3156 case DW_OP_reg3:
3157 case DW_OP_reg4:
3158 case DW_OP_reg5:
3159 case DW_OP_reg6:
3160 case DW_OP_reg7:
3161 case DW_OP_reg8:
3162 case DW_OP_reg9:
3163 case DW_OP_reg10:
3164 case DW_OP_reg11:
3165 case DW_OP_reg12:
3166 case DW_OP_reg13:
3167 case DW_OP_reg14:
3168 case DW_OP_reg15:
3169 case DW_OP_reg16:
3170 case DW_OP_reg17:
3171 case DW_OP_reg18:
3172 case DW_OP_reg19:
3173 case DW_OP_reg20:
3174 case DW_OP_reg21:
3175 case DW_OP_reg22:
3176 case DW_OP_reg23:
3177 case DW_OP_reg24:
3178 case DW_OP_reg25:
3179 case DW_OP_reg26:
3180 case DW_OP_reg27:
3181 case DW_OP_reg28:
3182 case DW_OP_reg29:
3183 case DW_OP_reg30:
3184 case DW_OP_reg31:
3185 dwarf_expr_require_composition (op_ptr, op_end, "DW_OP_regx");
0fde2c53 3186 loc->u.reg = dwarf_reg_to_regnum_or_error (arch, op - DW_OP_reg0);
3cf03773
TT
3187 loc->kind = axs_lvalue_register;
3188 break;
9c238357 3189
3cf03773 3190 case DW_OP_regx:
f664829e 3191 op_ptr = safe_read_uleb128 (op_ptr, op_end, &reg);
3cf03773 3192 dwarf_expr_require_composition (op_ptr, op_end, "DW_OP_regx");
0fde2c53 3193 loc->u.reg = dwarf_reg_to_regnum_or_error (arch, reg);
3cf03773
TT
3194 loc->kind = axs_lvalue_register;
3195 break;
08922a10 3196
3cf03773
TT
3197 case DW_OP_implicit_value:
3198 {
9fccedf7 3199 uint64_t len;
3cf03773 3200
f664829e 3201 op_ptr = safe_read_uleb128 (op_ptr, op_end, &len);
3cf03773
TT
3202 if (op_ptr + len > op_end)
3203 error (_("DW_OP_implicit_value: too few bytes available."));
3204 if (len > sizeof (ULONGEST))
3205 error (_("Cannot translate DW_OP_implicit_value of %d bytes"),
3206 (int) len);
3207
3208 ax_const_l (expr, extract_unsigned_integer (op_ptr, len,
3209 byte_order));
3210 op_ptr += len;
3211 dwarf_expr_require_composition (op_ptr, op_end,
3212 "DW_OP_implicit_value");
3213
3214 loc->kind = axs_rvalue;
3215 }
3216 break;
08922a10 3217
3cf03773
TT
3218 case DW_OP_stack_value:
3219 dwarf_expr_require_composition (op_ptr, op_end, "DW_OP_stack_value");
3220 loc->kind = axs_rvalue;
3221 break;
08922a10 3222
3cf03773
TT
3223 case DW_OP_breg0:
3224 case DW_OP_breg1:
3225 case DW_OP_breg2:
3226 case DW_OP_breg3:
3227 case DW_OP_breg4:
3228 case DW_OP_breg5:
3229 case DW_OP_breg6:
3230 case DW_OP_breg7:
3231 case DW_OP_breg8:
3232 case DW_OP_breg9:
3233 case DW_OP_breg10:
3234 case DW_OP_breg11:
3235 case DW_OP_breg12:
3236 case DW_OP_breg13:
3237 case DW_OP_breg14:
3238 case DW_OP_breg15:
3239 case DW_OP_breg16:
3240 case DW_OP_breg17:
3241 case DW_OP_breg18:
3242 case DW_OP_breg19:
3243 case DW_OP_breg20:
3244 case DW_OP_breg21:
3245 case DW_OP_breg22:
3246 case DW_OP_breg23:
3247 case DW_OP_breg24:
3248 case DW_OP_breg25:
3249 case DW_OP_breg26:
3250 case DW_OP_breg27:
3251 case DW_OP_breg28:
3252 case DW_OP_breg29:
3253 case DW_OP_breg30:
3254 case DW_OP_breg31:
f664829e 3255 op_ptr = safe_read_sleb128 (op_ptr, op_end, &offset);
0fde2c53 3256 i = dwarf_reg_to_regnum_or_error (arch, op - DW_OP_breg0);
3cf03773
TT
3257 ax_reg (expr, i);
3258 if (offset != 0)
3259 {
3260 ax_const_l (expr, offset);
3261 ax_simple (expr, aop_add);
3262 }
3263 break;
3264 case DW_OP_bregx:
3265 {
f664829e
DE
3266 op_ptr = safe_read_uleb128 (op_ptr, op_end, &reg);
3267 op_ptr = safe_read_sleb128 (op_ptr, op_end, &offset);
0fde2c53 3268 i = dwarf_reg_to_regnum_or_error (arch, reg);
3cf03773
TT
3269 ax_reg (expr, i);
3270 if (offset != 0)
3271 {
3272 ax_const_l (expr, offset);
3273 ax_simple (expr, aop_add);
3274 }
3275 }
3276 break;
3277 case DW_OP_fbreg:
3278 {
3279 const gdb_byte *datastart;
3280 size_t datalen;
3977b71f 3281 const struct block *b;
3cf03773 3282 struct symbol *framefunc;
08922a10 3283
3cf03773
TT
3284 b = block_for_pc (expr->scope);
3285
3286 if (!b)
3287 error (_("No block found for address"));
3288
3289 framefunc = block_linkage_function (b);
3290
3291 if (!framefunc)
3292 error (_("No function found for block"));
3293
af945b75
TT
3294 func_get_frame_base_dwarf_block (framefunc, expr->scope,
3295 &datastart, &datalen);
3cf03773 3296
f664829e 3297 op_ptr = safe_read_sleb128 (op_ptr, op_end, &offset);
9f6f94ff
TT
3298 dwarf2_compile_expr_to_ax (expr, loc, arch, addr_size, datastart,
3299 datastart + datalen, per_cu);
d84cf7eb
TT
3300 if (loc->kind == axs_lvalue_register)
3301 require_rvalue (expr, loc);
3cf03773
TT
3302
3303 if (offset != 0)
3304 {
3305 ax_const_l (expr, offset);
3306 ax_simple (expr, aop_add);
3307 }
3308
3309 loc->kind = axs_lvalue_memory;
3310 }
08922a10 3311 break;
08922a10 3312
3cf03773
TT
3313 case DW_OP_dup:
3314 ax_simple (expr, aop_dup);
3315 break;
08922a10 3316
3cf03773
TT
3317 case DW_OP_drop:
3318 ax_simple (expr, aop_pop);
3319 break;
08922a10 3320
3cf03773
TT
3321 case DW_OP_pick:
3322 offset = *op_ptr++;
c7f96d2b 3323 ax_pick (expr, offset);
3cf03773
TT
3324 break;
3325
3326 case DW_OP_swap:
3327 ax_simple (expr, aop_swap);
3328 break;
08922a10 3329
3cf03773 3330 case DW_OP_over:
c7f96d2b 3331 ax_pick (expr, 1);
3cf03773 3332 break;
08922a10 3333
3cf03773 3334 case DW_OP_rot:
c7f96d2b 3335 ax_simple (expr, aop_rot);
3cf03773 3336 break;
08922a10 3337
3cf03773
TT
3338 case DW_OP_deref:
3339 case DW_OP_deref_size:
3340 {
3341 int size;
08922a10 3342
3cf03773
TT
3343 if (op == DW_OP_deref_size)
3344 size = *op_ptr++;
3345 else
3346 size = addr_size;
3347
9df7235c 3348 if (size != 1 && size != 2 && size != 4 && size != 8)
f3cec7e6
HZ
3349 error (_("Unsupported size %d in %s"),
3350 size, get_DW_OP_name (op));
9df7235c 3351 access_memory (arch, expr, size * TARGET_CHAR_BIT);
3cf03773
TT
3352 }
3353 break;
3354
3355 case DW_OP_abs:
3356 /* Sign extend the operand. */
3357 ax_ext (expr, addr_size_bits);
3358 ax_simple (expr, aop_dup);
3359 ax_const_l (expr, 0);
3360 ax_simple (expr, aop_less_signed);
3361 ax_simple (expr, aop_log_not);
3362 i = ax_goto (expr, aop_if_goto);
3363 /* We have to emit 0 - X. */
3364 ax_const_l (expr, 0);
3365 ax_simple (expr, aop_swap);
3366 ax_simple (expr, aop_sub);
3367 ax_label (expr, i, expr->len);
3368 break;
3369
3370 case DW_OP_neg:
3371 /* No need to sign extend here. */
3372 ax_const_l (expr, 0);
3373 ax_simple (expr, aop_swap);
3374 ax_simple (expr, aop_sub);
3375 break;
3376
3377 case DW_OP_not:
3378 /* Sign extend the operand. */
3379 ax_ext (expr, addr_size_bits);
3380 ax_simple (expr, aop_bit_not);
3381 break;
3382
3383 case DW_OP_plus_uconst:
f664829e 3384 op_ptr = safe_read_uleb128 (op_ptr, op_end, &reg);
3cf03773
TT
3385 /* It would be really weird to emit `DW_OP_plus_uconst 0',
3386 but we micro-optimize anyhow. */
3387 if (reg != 0)
3388 {
3389 ax_const_l (expr, reg);
3390 ax_simple (expr, aop_add);
3391 }
3392 break;
3393
3394 case DW_OP_and:
3395 ax_simple (expr, aop_bit_and);
3396 break;
3397
3398 case DW_OP_div:
3399 /* Sign extend the operands. */
3400 ax_ext (expr, addr_size_bits);
3401 ax_simple (expr, aop_swap);
3402 ax_ext (expr, addr_size_bits);
3403 ax_simple (expr, aop_swap);
3404 ax_simple (expr, aop_div_signed);
08922a10
SS
3405 break;
3406
3cf03773
TT
3407 case DW_OP_minus:
3408 ax_simple (expr, aop_sub);
3409 break;
3410
3411 case DW_OP_mod:
3412 ax_simple (expr, aop_rem_unsigned);
3413 break;
3414
3415 case DW_OP_mul:
3416 ax_simple (expr, aop_mul);
3417 break;
3418
3419 case DW_OP_or:
3420 ax_simple (expr, aop_bit_or);
3421 break;
3422
3423 case DW_OP_plus:
3424 ax_simple (expr, aop_add);
3425 break;
3426
3427 case DW_OP_shl:
3428 ax_simple (expr, aop_lsh);
3429 break;
3430
3431 case DW_OP_shr:
3432 ax_simple (expr, aop_rsh_unsigned);
3433 break;
3434
3435 case DW_OP_shra:
3436 ax_simple (expr, aop_rsh_signed);
3437 break;
3438
3439 case DW_OP_xor:
3440 ax_simple (expr, aop_bit_xor);
3441 break;
3442
3443 case DW_OP_le:
3444 /* Sign extend the operands. */
3445 ax_ext (expr, addr_size_bits);
3446 ax_simple (expr, aop_swap);
3447 ax_ext (expr, addr_size_bits);
3448 /* Note no swap here: A <= B is !(B < A). */
3449 ax_simple (expr, aop_less_signed);
3450 ax_simple (expr, aop_log_not);
3451 break;
3452
3453 case DW_OP_ge:
3454 /* Sign extend the operands. */
3455 ax_ext (expr, addr_size_bits);
3456 ax_simple (expr, aop_swap);
3457 ax_ext (expr, addr_size_bits);
3458 ax_simple (expr, aop_swap);
3459 /* A >= B is !(A < B). */
3460 ax_simple (expr, aop_less_signed);
3461 ax_simple (expr, aop_log_not);
3462 break;
3463
3464 case DW_OP_eq:
3465 /* Sign extend the operands. */
3466 ax_ext (expr, addr_size_bits);
3467 ax_simple (expr, aop_swap);
3468 ax_ext (expr, addr_size_bits);
3469 /* No need for a second swap here. */
3470 ax_simple (expr, aop_equal);
3471 break;
3472
3473 case DW_OP_lt:
3474 /* Sign extend the operands. */
3475 ax_ext (expr, addr_size_bits);
3476 ax_simple (expr, aop_swap);
3477 ax_ext (expr, addr_size_bits);
3478 ax_simple (expr, aop_swap);
3479 ax_simple (expr, aop_less_signed);
3480 break;
3481
3482 case DW_OP_gt:
3483 /* Sign extend the operands. */
3484 ax_ext (expr, addr_size_bits);
3485 ax_simple (expr, aop_swap);
3486 ax_ext (expr, addr_size_bits);
3487 /* Note no swap here: A > B is B < A. */
3488 ax_simple (expr, aop_less_signed);
3489 break;
3490
3491 case DW_OP_ne:
3492 /* Sign extend the operands. */
3493 ax_ext (expr, addr_size_bits);
3494 ax_simple (expr, aop_swap);
3495 ax_ext (expr, addr_size_bits);
3496 /* No need for a swap here. */
3497 ax_simple (expr, aop_equal);
3498 ax_simple (expr, aop_log_not);
3499 break;
3500
3501 case DW_OP_call_frame_cfa:
a8fd5589
TT
3502 {
3503 int regnum;
3504 CORE_ADDR text_offset;
3505 LONGEST off;
3506 const gdb_byte *cfa_start, *cfa_end;
3507
3508 if (dwarf2_fetch_cfa_info (arch, expr->scope, per_cu,
3509 &regnum, &off,
3510 &text_offset, &cfa_start, &cfa_end))
3511 {
3512 /* Register. */
3513 ax_reg (expr, regnum);
3514 if (off != 0)
3515 {
3516 ax_const_l (expr, off);
3517 ax_simple (expr, aop_add);
3518 }
3519 }
3520 else
3521 {
3522 /* Another expression. */
3523 ax_const_l (expr, text_offset);
3524 dwarf2_compile_expr_to_ax (expr, loc, arch, addr_size,
3525 cfa_start, cfa_end, per_cu);
3526 }
3527
3528 loc->kind = axs_lvalue_memory;
3529 }
3cf03773
TT
3530 break;
3531
3532 case DW_OP_GNU_push_tls_address:
4aa4e28b 3533 case DW_OP_form_tls_address:
3cf03773
TT
3534 unimplemented (op);
3535 break;
3536
08412b07
JB
3537 case DW_OP_push_object_address:
3538 unimplemented (op);
3539 break;
3540
3cf03773
TT
3541 case DW_OP_skip:
3542 offset = extract_signed_integer (op_ptr, 2, byte_order);
3543 op_ptr += 2;
3544 i = ax_goto (expr, aop_goto);
58414334
TT
3545 dw_labels.push_back (op_ptr + offset - base);
3546 patches.push_back (i);
3cf03773
TT
3547 break;
3548
3549 case DW_OP_bra:
3550 offset = extract_signed_integer (op_ptr, 2, byte_order);
3551 op_ptr += 2;
3552 /* Zero extend the operand. */
3553 ax_zero_ext (expr, addr_size_bits);
3554 i = ax_goto (expr, aop_if_goto);
58414334
TT
3555 dw_labels.push_back (op_ptr + offset - base);
3556 patches.push_back (i);
3cf03773
TT
3557 break;
3558
3559 case DW_OP_nop:
3560 break;
3561
3562 case DW_OP_piece:
3563 case DW_OP_bit_piece:
08922a10 3564 {
9fccedf7 3565 uint64_t size, offset;
3cf03773
TT
3566
3567 if (op_ptr - 1 == previous_piece)
3568 error (_("Cannot translate empty pieces to agent expressions"));
3569 previous_piece = op_ptr - 1;
3570
f664829e 3571 op_ptr = safe_read_uleb128 (op_ptr, op_end, &size);
3cf03773
TT
3572 if (op == DW_OP_piece)
3573 {
3574 size *= 8;
3575 offset = 0;
3576 }
3577 else
f664829e 3578 op_ptr = safe_read_uleb128 (op_ptr, op_end, &offset);
08922a10 3579
3cf03773
TT
3580 if (bits_collected + size > 8 * sizeof (LONGEST))
3581 error (_("Expression pieces exceed word size"));
3582
3583 /* Access the bits. */
3584 switch (loc->kind)
3585 {
3586 case axs_lvalue_register:
3587 ax_reg (expr, loc->u.reg);
3588 break;
3589
3590 case axs_lvalue_memory:
3591 /* Offset the pointer, if needed. */
3592 if (offset > 8)
3593 {
3594 ax_const_l (expr, offset / 8);
3595 ax_simple (expr, aop_add);
3596 offset %= 8;
3597 }
3598 access_memory (arch, expr, size);
3599 break;
3600 }
3601
3602 /* For a bits-big-endian target, shift up what we already
3603 have. For a bits-little-endian target, shift up the
3604 new data. Note that there is a potential bug here if
3605 the DWARF expression leaves multiple values on the
3606 stack. */
3607 if (bits_collected > 0)
3608 {
3609 if (bits_big_endian)
3610 {
3611 ax_simple (expr, aop_swap);
3612 ax_const_l (expr, size);
3613 ax_simple (expr, aop_lsh);
3614 /* We don't need a second swap here, because
3615 aop_bit_or is symmetric. */
3616 }
3617 else
3618 {
3619 ax_const_l (expr, size);
3620 ax_simple (expr, aop_lsh);
3621 }
3622 ax_simple (expr, aop_bit_or);
3623 }
3624
3625 bits_collected += size;
3626 loc->kind = axs_rvalue;
08922a10
SS
3627 }
3628 break;
08922a10 3629
3cf03773
TT
3630 case DW_OP_GNU_uninit:
3631 unimplemented (op);
3632
3633 case DW_OP_call2:
3634 case DW_OP_call4:
3635 {
3636 struct dwarf2_locexpr_baton block;
3637 int size = (op == DW_OP_call2 ? 2 : 4);
b64f50a1 3638 cu_offset offset;
3cf03773
TT
3639
3640 uoffset = extract_unsigned_integer (op_ptr, size, byte_order);
3641 op_ptr += size;
3642
b64f50a1 3643 offset.cu_off = uoffset;
8b9737bf
TT
3644 block = dwarf2_fetch_die_loc_cu_off (offset, per_cu,
3645 get_ax_pc, expr);
3cf03773
TT
3646
3647 /* DW_OP_call_ref is currently not supported. */
3648 gdb_assert (block.per_cu == per_cu);
3649
9f6f94ff
TT
3650 dwarf2_compile_expr_to_ax (expr, loc, arch, addr_size,
3651 block.data, block.data + block.size,
3652 per_cu);
3cf03773
TT
3653 }
3654 break;
3655
3656 case DW_OP_call_ref:
3657 unimplemented (op);
3658
3659 default:
b1bfef65 3660 unimplemented (op);
08922a10 3661 }
08922a10 3662 }
3cf03773
TT
3663
3664 /* Patch all the branches we emitted. */
58414334 3665 for (i = 0; i < patches.size (); ++i)
3cf03773 3666 {
58414334 3667 int targ = offsets[dw_labels[i]];
3cf03773
TT
3668 if (targ == -1)
3669 internal_error (__FILE__, __LINE__, _("invalid label"));
58414334 3670 ax_label (expr, patches[i], targ);
3cf03773 3671 }
08922a10
SS
3672}
3673
4c2df51b
DJ
3674\f
3675/* Return the value of SYMBOL in FRAME using the DWARF-2 expression
3676 evaluator to calculate the location. */
3677static struct value *
3678locexpr_read_variable (struct symbol *symbol, struct frame_info *frame)
3679{
9a3c8263
SM
3680 struct dwarf2_locexpr_baton *dlbaton
3681 = (struct dwarf2_locexpr_baton *) SYMBOL_LOCATION_BATON (symbol);
4c2df51b 3682 struct value *val;
9a619af0 3683
a2d33775
JK
3684 val = dwarf2_evaluate_loc_desc (SYMBOL_TYPE (symbol), frame, dlbaton->data,
3685 dlbaton->size, dlbaton->per_cu);
4c2df51b
DJ
3686
3687 return val;
3688}
3689
e18b2753
JK
3690/* Return the value of SYMBOL in FRAME at (callee) FRAME's function
3691 entry. SYMBOL should be a function parameter, otherwise NO_ENTRY_VALUE_ERROR
3692 will be thrown. */
3693
3694static struct value *
3695locexpr_read_variable_at_entry (struct symbol *symbol, struct frame_info *frame)
3696{
9a3c8263
SM
3697 struct dwarf2_locexpr_baton *dlbaton
3698 = (struct dwarf2_locexpr_baton *) SYMBOL_LOCATION_BATON (symbol);
e18b2753
JK
3699
3700 return value_of_dwarf_block_entry (SYMBOL_TYPE (symbol), frame, dlbaton->data,
3701 dlbaton->size);
3702}
3703
0b31a4bc
TT
3704/* Implementation of get_symbol_read_needs from
3705 symbol_computed_ops. */
3706
3707static enum symbol_needs_kind
3708locexpr_get_symbol_read_needs (struct symbol *symbol)
4c2df51b 3709{
9a3c8263
SM
3710 struct dwarf2_locexpr_baton *dlbaton
3711 = (struct dwarf2_locexpr_baton *) SYMBOL_LOCATION_BATON (symbol);
9a619af0 3712
0b31a4bc
TT
3713 return dwarf2_loc_desc_get_symbol_read_needs (dlbaton->data, dlbaton->size,
3714 dlbaton->per_cu);
4c2df51b
DJ
3715}
3716
9eae7c52
TT
3717/* Return true if DATA points to the end of a piece. END is one past
3718 the last byte in the expression. */
3719
3720static int
3721piece_end_p (const gdb_byte *data, const gdb_byte *end)
3722{
3723 return data == end || data[0] == DW_OP_piece || data[0] == DW_OP_bit_piece;
3724}
3725
5e44ecb3
TT
3726/* Helper for locexpr_describe_location_piece that finds the name of a
3727 DWARF register. */
3728
3729static const char *
3730locexpr_regname (struct gdbarch *gdbarch, int dwarf_regnum)
3731{
3732 int regnum;
3733
0fde2c53
DE
3734 /* This doesn't use dwarf_reg_to_regnum_or_error on purpose.
3735 We'd rather print *something* here than throw an error. */
3736 regnum = dwarf_reg_to_regnum (gdbarch, dwarf_regnum);
3737 /* gdbarch_register_name may just return "", return something more
3738 descriptive for bad register numbers. */
3739 if (regnum == -1)
3740 {
3741 /* The text is output as "$bad_register_number".
3742 That is why we use the underscores. */
3743 return _("bad_register_number");
3744 }
5e44ecb3
TT
3745 return gdbarch_register_name (gdbarch, regnum);
3746}
3747
9eae7c52
TT
3748/* Nicely describe a single piece of a location, returning an updated
3749 position in the bytecode sequence. This function cannot recognize
3750 all locations; if a location is not recognized, it simply returns
f664829e
DE
3751 DATA. If there is an error during reading, e.g. we run off the end
3752 of the buffer, an error is thrown. */
08922a10 3753
0d45f56e 3754static const gdb_byte *
08922a10
SS
3755locexpr_describe_location_piece (struct symbol *symbol, struct ui_file *stream,
3756 CORE_ADDR addr, struct objfile *objfile,
49f6c839 3757 struct dwarf2_per_cu_data *per_cu,
9eae7c52 3758 const gdb_byte *data, const gdb_byte *end,
0d45f56e 3759 unsigned int addr_size)
4c2df51b 3760{
08922a10 3761 struct gdbarch *gdbarch = get_objfile_arch (objfile);
49f6c839 3762 size_t leb128_size;
08922a10
SS
3763
3764 if (data[0] >= DW_OP_reg0 && data[0] <= DW_OP_reg31)
3765 {
08922a10 3766 fprintf_filtered (stream, _("a variable in $%s"),
5e44ecb3 3767 locexpr_regname (gdbarch, data[0] - DW_OP_reg0));
08922a10
SS
3768 data += 1;
3769 }
3770 else if (data[0] == DW_OP_regx)
3771 {
9fccedf7 3772 uint64_t reg;
4c2df51b 3773
f664829e 3774 data = safe_read_uleb128 (data + 1, end, &reg);
08922a10 3775 fprintf_filtered (stream, _("a variable in $%s"),
5e44ecb3 3776 locexpr_regname (gdbarch, reg));
08922a10
SS
3777 }
3778 else if (data[0] == DW_OP_fbreg)
4c2df51b 3779 {
3977b71f 3780 const struct block *b;
08922a10
SS
3781 struct symbol *framefunc;
3782 int frame_reg = 0;
9fccedf7 3783 int64_t frame_offset;
7155d578 3784 const gdb_byte *base_data, *new_data, *save_data = data;
08922a10 3785 size_t base_size;
9fccedf7 3786 int64_t base_offset = 0;
08922a10 3787
f664829e 3788 new_data = safe_read_sleb128 (data + 1, end, &frame_offset);
9eae7c52
TT
3789 if (!piece_end_p (new_data, end))
3790 return data;
3791 data = new_data;
3792
08922a10
SS
3793 b = block_for_pc (addr);
3794
3795 if (!b)
3796 error (_("No block found for address for symbol \"%s\"."),
3797 SYMBOL_PRINT_NAME (symbol));
3798
3799 framefunc = block_linkage_function (b);
3800
3801 if (!framefunc)
3802 error (_("No function found for block for symbol \"%s\"."),
3803 SYMBOL_PRINT_NAME (symbol));
3804
af945b75 3805 func_get_frame_base_dwarf_block (framefunc, addr, &base_data, &base_size);
08922a10
SS
3806
3807 if (base_data[0] >= DW_OP_breg0 && base_data[0] <= DW_OP_breg31)
3808 {
0d45f56e 3809 const gdb_byte *buf_end;
08922a10
SS
3810
3811 frame_reg = base_data[0] - DW_OP_breg0;
f664829e
DE
3812 buf_end = safe_read_sleb128 (base_data + 1, base_data + base_size,
3813 &base_offset);
08922a10 3814 if (buf_end != base_data + base_size)
3e43a32a
MS
3815 error (_("Unexpected opcode after "
3816 "DW_OP_breg%u for symbol \"%s\"."),
08922a10
SS
3817 frame_reg, SYMBOL_PRINT_NAME (symbol));
3818 }
3819 else if (base_data[0] >= DW_OP_reg0 && base_data[0] <= DW_OP_reg31)
3820 {
3821 /* The frame base is just the register, with no offset. */
3822 frame_reg = base_data[0] - DW_OP_reg0;
3823 base_offset = 0;
3824 }
3825 else
3826 {
3827 /* We don't know what to do with the frame base expression,
3828 so we can't trace this variable; give up. */
7155d578 3829 return save_data;
08922a10
SS
3830 }
3831
3e43a32a
MS
3832 fprintf_filtered (stream,
3833 _("a variable at frame base reg $%s offset %s+%s"),
5e44ecb3 3834 locexpr_regname (gdbarch, frame_reg),
08922a10
SS
3835 plongest (base_offset), plongest (frame_offset));
3836 }
9eae7c52
TT
3837 else if (data[0] >= DW_OP_breg0 && data[0] <= DW_OP_breg31
3838 && piece_end_p (data, end))
08922a10 3839 {
9fccedf7 3840 int64_t offset;
08922a10 3841
f664829e 3842 data = safe_read_sleb128 (data + 1, end, &offset);
08922a10 3843
4c2df51b 3844 fprintf_filtered (stream,
08922a10
SS
3845 _("a variable at offset %s from base reg $%s"),
3846 plongest (offset),
5e44ecb3 3847 locexpr_regname (gdbarch, data[0] - DW_OP_breg0));
4c2df51b
DJ
3848 }
3849
c3228f12
EZ
3850 /* The location expression for a TLS variable looks like this (on a
3851 64-bit LE machine):
3852
3853 DW_AT_location : 10 byte block: 3 4 0 0 0 0 0 0 0 e0
3854 (DW_OP_addr: 4; DW_OP_GNU_push_tls_address)
09d8bd00 3855
c3228f12
EZ
3856 0x3 is the encoding for DW_OP_addr, which has an operand as long
3857 as the size of an address on the target machine (here is 8
09d8bd00
TT
3858 bytes). Note that more recent version of GCC emit DW_OP_const4u
3859 or DW_OP_const8u, depending on address size, rather than
0963b4bd
MS
3860 DW_OP_addr. 0xe0 is the encoding for DW_OP_GNU_push_tls_address.
3861 The operand represents the offset at which the variable is within
3862 the thread local storage. */
c3228f12 3863
9eae7c52 3864 else if (data + 1 + addr_size < end
09d8bd00
TT
3865 && (data[0] == DW_OP_addr
3866 || (addr_size == 4 && data[0] == DW_OP_const4u)
3867 || (addr_size == 8 && data[0] == DW_OP_const8u))
4aa4e28b
TT
3868 && (data[1 + addr_size] == DW_OP_GNU_push_tls_address
3869 || data[1 + addr_size] == DW_OP_form_tls_address)
9eae7c52 3870 && piece_end_p (data + 2 + addr_size, end))
08922a10 3871 {
d4a087c7
UW
3872 ULONGEST offset;
3873 offset = extract_unsigned_integer (data + 1, addr_size,
3874 gdbarch_byte_order (gdbarch));
9a619af0 3875
08922a10 3876 fprintf_filtered (stream,
d4a087c7 3877 _("a thread-local variable at offset 0x%s "
08922a10 3878 "in the thread-local storage for `%s'"),
4262abfb 3879 phex_nz (offset, addr_size), objfile_name (objfile));
08922a10
SS
3880
3881 data += 1 + addr_size + 1;
3882 }
49f6c839
DE
3883
3884 /* With -gsplit-dwarf a TLS variable can also look like this:
3885 DW_AT_location : 3 byte block: fc 4 e0
3886 (DW_OP_GNU_const_index: 4;
3887 DW_OP_GNU_push_tls_address) */
3888 else if (data + 3 <= end
3889 && data + 1 + (leb128_size = skip_leb128 (data + 1, end)) < end
3890 && data[0] == DW_OP_GNU_const_index
3891 && leb128_size > 0
4aa4e28b
TT
3892 && (data[1 + leb128_size] == DW_OP_GNU_push_tls_address
3893 || data[1 + leb128_size] == DW_OP_form_tls_address)
49f6c839
DE
3894 && piece_end_p (data + 2 + leb128_size, end))
3895 {
a55c1f32 3896 uint64_t offset;
49f6c839
DE
3897
3898 data = safe_read_uleb128 (data + 1, end, &offset);
3899 offset = dwarf2_read_addr_index (per_cu, offset);
3900 fprintf_filtered (stream,
3901 _("a thread-local variable at offset 0x%s "
3902 "in the thread-local storage for `%s'"),
4262abfb 3903 phex_nz (offset, addr_size), objfile_name (objfile));
49f6c839
DE
3904 ++data;
3905 }
3906
9eae7c52
TT
3907 else if (data[0] >= DW_OP_lit0
3908 && data[0] <= DW_OP_lit31
3909 && data + 1 < end
3910 && data[1] == DW_OP_stack_value)
3911 {
3912 fprintf_filtered (stream, _("the constant %d"), data[0] - DW_OP_lit0);
3913 data += 2;
3914 }
3915
3916 return data;
3917}
3918
3919/* Disassemble an expression, stopping at the end of a piece or at the
3920 end of the expression. Returns a pointer to the next unread byte
3921 in the input expression. If ALL is nonzero, then this function
f664829e
DE
3922 will keep going until it reaches the end of the expression.
3923 If there is an error during reading, e.g. we run off the end
3924 of the buffer, an error is thrown. */
9eae7c52
TT
3925
3926static const gdb_byte *
3927disassemble_dwarf_expression (struct ui_file *stream,
3928 struct gdbarch *arch, unsigned int addr_size,
2bda9cc5 3929 int offset_size, const gdb_byte *start,
9eae7c52 3930 const gdb_byte *data, const gdb_byte *end,
2bda9cc5 3931 int indent, int all,
5e44ecb3 3932 struct dwarf2_per_cu_data *per_cu)
9eae7c52 3933{
9eae7c52
TT
3934 while (data < end
3935 && (all
3936 || (data[0] != DW_OP_piece && data[0] != DW_OP_bit_piece)))
3937 {
aead7601 3938 enum dwarf_location_atom op = (enum dwarf_location_atom) *data++;
9fccedf7
DE
3939 uint64_t ul;
3940 int64_t l;
9eae7c52
TT
3941 const char *name;
3942
f39c6ffd 3943 name = get_DW_OP_name (op);
9eae7c52
TT
3944
3945 if (!name)
3946 error (_("Unrecognized DWARF opcode 0x%02x at %ld"),
06826322 3947 op, (long) (data - 1 - start));
2bda9cc5
JK
3948 fprintf_filtered (stream, " %*ld: %s", indent + 4,
3949 (long) (data - 1 - start), name);
9eae7c52
TT
3950
3951 switch (op)
3952 {
3953 case DW_OP_addr:
d4a087c7
UW
3954 ul = extract_unsigned_integer (data, addr_size,
3955 gdbarch_byte_order (arch));
9eae7c52 3956 data += addr_size;
d4a087c7 3957 fprintf_filtered (stream, " 0x%s", phex_nz (ul, addr_size));
9eae7c52
TT
3958 break;
3959
3960 case DW_OP_const1u:
3961 ul = extract_unsigned_integer (data, 1, gdbarch_byte_order (arch));
3962 data += 1;
3963 fprintf_filtered (stream, " %s", pulongest (ul));
3964 break;
3965 case DW_OP_const1s:
3966 l = extract_signed_integer (data, 1, gdbarch_byte_order (arch));
3967 data += 1;
3968 fprintf_filtered (stream, " %s", plongest (l));
3969 break;
3970 case DW_OP_const2u:
3971 ul = extract_unsigned_integer (data, 2, gdbarch_byte_order (arch));
3972 data += 2;
3973 fprintf_filtered (stream, " %s", pulongest (ul));
3974 break;
3975 case DW_OP_const2s:
3976 l = extract_signed_integer (data, 2, gdbarch_byte_order (arch));
3977 data += 2;
3978 fprintf_filtered (stream, " %s", plongest (l));
3979 break;
3980 case DW_OP_const4u:
3981 ul = extract_unsigned_integer (data, 4, gdbarch_byte_order (arch));
3982 data += 4;
3983 fprintf_filtered (stream, " %s", pulongest (ul));
3984 break;
3985 case DW_OP_const4s:
3986 l = extract_signed_integer (data, 4, gdbarch_byte_order (arch));
3987 data += 4;
3988 fprintf_filtered (stream, " %s", plongest (l));
3989 break;
3990 case DW_OP_const8u:
3991 ul = extract_unsigned_integer (data, 8, gdbarch_byte_order (arch));
3992 data += 8;
3993 fprintf_filtered (stream, " %s", pulongest (ul));
3994 break;
3995 case DW_OP_const8s:
3996 l = extract_signed_integer (data, 8, gdbarch_byte_order (arch));
3997 data += 8;
3998 fprintf_filtered (stream, " %s", plongest (l));
3999 break;
4000 case DW_OP_constu:
f664829e 4001 data = safe_read_uleb128 (data, end, &ul);
9eae7c52
TT
4002 fprintf_filtered (stream, " %s", pulongest (ul));
4003 break;
4004 case DW_OP_consts:
f664829e 4005 data = safe_read_sleb128 (data, end, &l);
9eae7c52
TT
4006 fprintf_filtered (stream, " %s", plongest (l));
4007 break;
4008
4009 case DW_OP_reg0:
4010 case DW_OP_reg1:
4011 case DW_OP_reg2:
4012 case DW_OP_reg3:
4013 case DW_OP_reg4:
4014 case DW_OP_reg5:
4015 case DW_OP_reg6:
4016 case DW_OP_reg7:
4017 case DW_OP_reg8:
4018 case DW_OP_reg9:
4019 case DW_OP_reg10:
4020 case DW_OP_reg11:
4021 case DW_OP_reg12:
4022 case DW_OP_reg13:
4023 case DW_OP_reg14:
4024 case DW_OP_reg15:
4025 case DW_OP_reg16:
4026 case DW_OP_reg17:
4027 case DW_OP_reg18:
4028 case DW_OP_reg19:
4029 case DW_OP_reg20:
4030 case DW_OP_reg21:
4031 case DW_OP_reg22:
4032 case DW_OP_reg23:
4033 case DW_OP_reg24:
4034 case DW_OP_reg25:
4035 case DW_OP_reg26:
4036 case DW_OP_reg27:
4037 case DW_OP_reg28:
4038 case DW_OP_reg29:
4039 case DW_OP_reg30:
4040 case DW_OP_reg31:
4041 fprintf_filtered (stream, " [$%s]",
5e44ecb3 4042 locexpr_regname (arch, op - DW_OP_reg0));
9eae7c52
TT
4043 break;
4044
4045 case DW_OP_regx:
f664829e 4046 data = safe_read_uleb128 (data, end, &ul);
9eae7c52 4047 fprintf_filtered (stream, " %s [$%s]", pulongest (ul),
5e44ecb3 4048 locexpr_regname (arch, (int) ul));
9eae7c52
TT
4049 break;
4050
4051 case DW_OP_implicit_value:
f664829e 4052 data = safe_read_uleb128 (data, end, &ul);
9eae7c52
TT
4053 data += ul;
4054 fprintf_filtered (stream, " %s", pulongest (ul));
4055 break;
4056
4057 case DW_OP_breg0:
4058 case DW_OP_breg1:
4059 case DW_OP_breg2:
4060 case DW_OP_breg3:
4061 case DW_OP_breg4:
4062 case DW_OP_breg5:
4063 case DW_OP_breg6:
4064 case DW_OP_breg7:
4065 case DW_OP_breg8:
4066 case DW_OP_breg9:
4067 case DW_OP_breg10:
4068 case DW_OP_breg11:
4069 case DW_OP_breg12:
4070 case DW_OP_breg13:
4071 case DW_OP_breg14:
4072 case DW_OP_breg15:
4073 case DW_OP_breg16:
4074 case DW_OP_breg17:
4075 case DW_OP_breg18:
4076 case DW_OP_breg19:
4077 case DW_OP_breg20:
4078 case DW_OP_breg21:
4079 case DW_OP_breg22:
4080 case DW_OP_breg23:
4081 case DW_OP_breg24:
4082 case DW_OP_breg25:
4083 case DW_OP_breg26:
4084 case DW_OP_breg27:
4085 case DW_OP_breg28:
4086 case DW_OP_breg29:
4087 case DW_OP_breg30:
4088 case DW_OP_breg31:
f664829e 4089 data = safe_read_sleb128 (data, end, &l);
0502ed8c 4090 fprintf_filtered (stream, " %s [$%s]", plongest (l),
5e44ecb3 4091 locexpr_regname (arch, op - DW_OP_breg0));
9eae7c52
TT
4092 break;
4093
4094 case DW_OP_bregx:
f664829e
DE
4095 data = safe_read_uleb128 (data, end, &ul);
4096 data = safe_read_sleb128 (data, end, &l);
0502ed8c
JK
4097 fprintf_filtered (stream, " register %s [$%s] offset %s",
4098 pulongest (ul),
5e44ecb3 4099 locexpr_regname (arch, (int) ul),
0502ed8c 4100 plongest (l));
9eae7c52
TT
4101 break;
4102
4103 case DW_OP_fbreg:
f664829e 4104 data = safe_read_sleb128 (data, end, &l);
0502ed8c 4105 fprintf_filtered (stream, " %s", plongest (l));
9eae7c52
TT
4106 break;
4107
4108 case DW_OP_xderef_size:
4109 case DW_OP_deref_size:
4110 case DW_OP_pick:
4111 fprintf_filtered (stream, " %d", *data);
4112 ++data;
4113 break;
4114
4115 case DW_OP_plus_uconst:
f664829e 4116 data = safe_read_uleb128 (data, end, &ul);
9eae7c52
TT
4117 fprintf_filtered (stream, " %s", pulongest (ul));
4118 break;
4119
4120 case DW_OP_skip:
4121 l = extract_signed_integer (data, 2, gdbarch_byte_order (arch));
4122 data += 2;
4123 fprintf_filtered (stream, " to %ld",
4124 (long) (data + l - start));
4125 break;
4126
4127 case DW_OP_bra:
4128 l = extract_signed_integer (data, 2, gdbarch_byte_order (arch));
4129 data += 2;
4130 fprintf_filtered (stream, " %ld",
4131 (long) (data + l - start));
4132 break;
4133
4134 case DW_OP_call2:
4135 ul = extract_unsigned_integer (data, 2, gdbarch_byte_order (arch));
4136 data += 2;
4137 fprintf_filtered (stream, " offset %s", phex_nz (ul, 2));
4138 break;
4139
4140 case DW_OP_call4:
4141 ul = extract_unsigned_integer (data, 4, gdbarch_byte_order (arch));
4142 data += 4;
4143 fprintf_filtered (stream, " offset %s", phex_nz (ul, 4));
4144 break;
4145
4146 case DW_OP_call_ref:
4147 ul = extract_unsigned_integer (data, offset_size,
4148 gdbarch_byte_order (arch));
4149 data += offset_size;
4150 fprintf_filtered (stream, " offset %s", phex_nz (ul, offset_size));
4151 break;
4152
4153 case DW_OP_piece:
f664829e 4154 data = safe_read_uleb128 (data, end, &ul);
9eae7c52
TT
4155 fprintf_filtered (stream, " %s (bytes)", pulongest (ul));
4156 break;
4157
4158 case DW_OP_bit_piece:
4159 {
9fccedf7 4160 uint64_t offset;
9eae7c52 4161
f664829e
DE
4162 data = safe_read_uleb128 (data, end, &ul);
4163 data = safe_read_uleb128 (data, end, &offset);
9eae7c52
TT
4164 fprintf_filtered (stream, " size %s offset %s (bits)",
4165 pulongest (ul), pulongest (offset));
4166 }
4167 break;
8cf6f0b1
TT
4168
4169 case DW_OP_GNU_implicit_pointer:
4170 {
4171 ul = extract_unsigned_integer (data, offset_size,
4172 gdbarch_byte_order (arch));
4173 data += offset_size;
4174
f664829e 4175 data = safe_read_sleb128 (data, end, &l);
8cf6f0b1
TT
4176
4177 fprintf_filtered (stream, " DIE %s offset %s",
4178 phex_nz (ul, offset_size),
4179 plongest (l));
4180 }
4181 break;
5e44ecb3
TT
4182
4183 case DW_OP_GNU_deref_type:
4184 {
4185 int addr_size = *data++;
b64f50a1 4186 cu_offset offset;
5e44ecb3
TT
4187 struct type *type;
4188
f664829e 4189 data = safe_read_uleb128 (data, end, &ul);
b64f50a1 4190 offset.cu_off = ul;
5e44ecb3
TT
4191 type = dwarf2_get_die_type (offset, per_cu);
4192 fprintf_filtered (stream, "<");
4193 type_print (type, "", stream, -1);
b64f50a1 4194 fprintf_filtered (stream, " [0x%s]> %d", phex_nz (offset.cu_off, 0),
5e44ecb3
TT
4195 addr_size);
4196 }
4197 break;
4198
4199 case DW_OP_GNU_const_type:
4200 {
b64f50a1 4201 cu_offset type_die;
5e44ecb3
TT
4202 struct type *type;
4203
f664829e 4204 data = safe_read_uleb128 (data, end, &ul);
b64f50a1 4205 type_die.cu_off = ul;
5e44ecb3
TT
4206 type = dwarf2_get_die_type (type_die, per_cu);
4207 fprintf_filtered (stream, "<");
4208 type_print (type, "", stream, -1);
b64f50a1 4209 fprintf_filtered (stream, " [0x%s]>", phex_nz (type_die.cu_off, 0));
5e44ecb3
TT
4210 }
4211 break;
4212
4213 case DW_OP_GNU_regval_type:
4214 {
9fccedf7 4215 uint64_t reg;
b64f50a1 4216 cu_offset type_die;
5e44ecb3
TT
4217 struct type *type;
4218
f664829e
DE
4219 data = safe_read_uleb128 (data, end, &reg);
4220 data = safe_read_uleb128 (data, end, &ul);
b64f50a1 4221 type_die.cu_off = ul;
5e44ecb3
TT
4222
4223 type = dwarf2_get_die_type (type_die, per_cu);
4224 fprintf_filtered (stream, "<");
4225 type_print (type, "", stream, -1);
b64f50a1
JK
4226 fprintf_filtered (stream, " [0x%s]> [$%s]",
4227 phex_nz (type_die.cu_off, 0),
5e44ecb3
TT
4228 locexpr_regname (arch, reg));
4229 }
4230 break;
4231
4232 case DW_OP_GNU_convert:
4233 case DW_OP_GNU_reinterpret:
4234 {
b64f50a1 4235 cu_offset type_die;
5e44ecb3 4236
f664829e 4237 data = safe_read_uleb128 (data, end, &ul);
b64f50a1 4238 type_die.cu_off = ul;
5e44ecb3 4239
b64f50a1 4240 if (type_die.cu_off == 0)
5e44ecb3
TT
4241 fprintf_filtered (stream, "<0>");
4242 else
4243 {
4244 struct type *type;
4245
4246 type = dwarf2_get_die_type (type_die, per_cu);
4247 fprintf_filtered (stream, "<");
4248 type_print (type, "", stream, -1);
b64f50a1 4249 fprintf_filtered (stream, " [0x%s]>", phex_nz (type_die.cu_off, 0));
5e44ecb3
TT
4250 }
4251 }
4252 break;
2bda9cc5
JK
4253
4254 case DW_OP_GNU_entry_value:
f664829e 4255 data = safe_read_uleb128 (data, end, &ul);
2bda9cc5
JK
4256 fputc_filtered ('\n', stream);
4257 disassemble_dwarf_expression (stream, arch, addr_size, offset_size,
4258 start, data, data + ul, indent + 2,
4259 all, per_cu);
4260 data += ul;
4261 continue;
49f6c839 4262
a24f71ab
JK
4263 case DW_OP_GNU_parameter_ref:
4264 ul = extract_unsigned_integer (data, 4, gdbarch_byte_order (arch));
4265 data += 4;
4266 fprintf_filtered (stream, " offset %s", phex_nz (ul, 4));
4267 break;
4268
49f6c839
DE
4269 case DW_OP_GNU_addr_index:
4270 data = safe_read_uleb128 (data, end, &ul);
4271 ul = dwarf2_read_addr_index (per_cu, ul);
4272 fprintf_filtered (stream, " 0x%s", phex_nz (ul, addr_size));
4273 break;
4274 case DW_OP_GNU_const_index:
4275 data = safe_read_uleb128 (data, end, &ul);
4276 ul = dwarf2_read_addr_index (per_cu, ul);
4277 fprintf_filtered (stream, " %s", pulongest (ul));
4278 break;
9eae7c52
TT
4279 }
4280
4281 fprintf_filtered (stream, "\n");
4282 }
c3228f12 4283
08922a10 4284 return data;
4c2df51b
DJ
4285}
4286
08922a10
SS
4287/* Describe a single location, which may in turn consist of multiple
4288 pieces. */
a55cc764 4289
08922a10
SS
4290static void
4291locexpr_describe_location_1 (struct symbol *symbol, CORE_ADDR addr,
0d45f56e 4292 struct ui_file *stream,
56eb65bd 4293 const gdb_byte *data, size_t size,
9eae7c52 4294 struct objfile *objfile, unsigned int addr_size,
5e44ecb3 4295 int offset_size, struct dwarf2_per_cu_data *per_cu)
08922a10 4296{
0d45f56e 4297 const gdb_byte *end = data + size;
9eae7c52 4298 int first_piece = 1, bad = 0;
08922a10 4299
08922a10
SS
4300 while (data < end)
4301 {
9eae7c52
TT
4302 const gdb_byte *here = data;
4303 int disassemble = 1;
4304
4305 if (first_piece)
4306 first_piece = 0;
4307 else
4308 fprintf_filtered (stream, _(", and "));
08922a10 4309
b4f54984 4310 if (!dwarf_always_disassemble)
9eae7c52 4311 {
3e43a32a 4312 data = locexpr_describe_location_piece (symbol, stream,
49f6c839 4313 addr, objfile, per_cu,
9eae7c52
TT
4314 data, end, addr_size);
4315 /* If we printed anything, or if we have an empty piece,
4316 then don't disassemble. */
4317 if (data != here
4318 || data[0] == DW_OP_piece
4319 || data[0] == DW_OP_bit_piece)
4320 disassemble = 0;
08922a10 4321 }
9eae7c52 4322 if (disassemble)
2bda9cc5
JK
4323 {
4324 fprintf_filtered (stream, _("a complex DWARF expression:\n"));
4325 data = disassemble_dwarf_expression (stream,
4326 get_objfile_arch (objfile),
4327 addr_size, offset_size, data,
4328 data, end, 0,
b4f54984 4329 dwarf_always_disassemble,
2bda9cc5
JK
4330 per_cu);
4331 }
9eae7c52
TT
4332
4333 if (data < end)
08922a10 4334 {
9eae7c52 4335 int empty = data == here;
08922a10 4336
9eae7c52
TT
4337 if (disassemble)
4338 fprintf_filtered (stream, " ");
4339 if (data[0] == DW_OP_piece)
4340 {
9fccedf7 4341 uint64_t bytes;
08922a10 4342
f664829e 4343 data = safe_read_uleb128 (data + 1, end, &bytes);
08922a10 4344
9eae7c52
TT
4345 if (empty)
4346 fprintf_filtered (stream, _("an empty %s-byte piece"),
4347 pulongest (bytes));
4348 else
4349 fprintf_filtered (stream, _(" [%s-byte piece]"),
4350 pulongest (bytes));
4351 }
4352 else if (data[0] == DW_OP_bit_piece)
4353 {
9fccedf7 4354 uint64_t bits, offset;
9eae7c52 4355
f664829e
DE
4356 data = safe_read_uleb128 (data + 1, end, &bits);
4357 data = safe_read_uleb128 (data, end, &offset);
9eae7c52
TT
4358
4359 if (empty)
4360 fprintf_filtered (stream,
4361 _("an empty %s-bit piece"),
4362 pulongest (bits));
4363 else
4364 fprintf_filtered (stream,
4365 _(" [%s-bit piece, offset %s bits]"),
4366 pulongest (bits), pulongest (offset));
4367 }
4368 else
4369 {
4370 bad = 1;
4371 break;
4372 }
08922a10
SS
4373 }
4374 }
4375
4376 if (bad || data > end)
4377 error (_("Corrupted DWARF2 expression for \"%s\"."),
4378 SYMBOL_PRINT_NAME (symbol));
4379}
4380
4381/* Print a natural-language description of SYMBOL to STREAM. This
4382 version is for a symbol with a single location. */
a55cc764 4383
08922a10
SS
4384static void
4385locexpr_describe_location (struct symbol *symbol, CORE_ADDR addr,
4386 struct ui_file *stream)
4387{
9a3c8263
SM
4388 struct dwarf2_locexpr_baton *dlbaton
4389 = (struct dwarf2_locexpr_baton *) SYMBOL_LOCATION_BATON (symbol);
08922a10
SS
4390 struct objfile *objfile = dwarf2_per_cu_objfile (dlbaton->per_cu);
4391 unsigned int addr_size = dwarf2_per_cu_addr_size (dlbaton->per_cu);
9eae7c52 4392 int offset_size = dwarf2_per_cu_offset_size (dlbaton->per_cu);
08922a10 4393
3e43a32a
MS
4394 locexpr_describe_location_1 (symbol, addr, stream,
4395 dlbaton->data, dlbaton->size,
5e44ecb3
TT
4396 objfile, addr_size, offset_size,
4397 dlbaton->per_cu);
08922a10
SS
4398}
4399
4400/* Describe the location of SYMBOL as an agent value in VALUE, generating
4401 any necessary bytecode in AX. */
a55cc764 4402
0d53c4c4 4403static void
505e835d
UW
4404locexpr_tracepoint_var_ref (struct symbol *symbol, struct gdbarch *gdbarch,
4405 struct agent_expr *ax, struct axs_value *value)
a55cc764 4406{
9a3c8263
SM
4407 struct dwarf2_locexpr_baton *dlbaton
4408 = (struct dwarf2_locexpr_baton *) SYMBOL_LOCATION_BATON (symbol);
3cf03773 4409 unsigned int addr_size = dwarf2_per_cu_addr_size (dlbaton->per_cu);
a55cc764 4410
1d6edc3c 4411 if (dlbaton->size == 0)
cabe9ab6
PA
4412 value->optimized_out = 1;
4413 else
9f6f94ff
TT
4414 dwarf2_compile_expr_to_ax (ax, value, gdbarch, addr_size,
4415 dlbaton->data, dlbaton->data + dlbaton->size,
4416 dlbaton->per_cu);
a55cc764
DJ
4417}
4418
bb2ec1b3
TT
4419/* symbol_computed_ops 'generate_c_location' method. */
4420
4421static void
4422locexpr_generate_c_location (struct symbol *sym, struct ui_file *stream,
4423 struct gdbarch *gdbarch,
4424 unsigned char *registers_used,
4425 CORE_ADDR pc, const char *result_name)
4426{
9a3c8263
SM
4427 struct dwarf2_locexpr_baton *dlbaton
4428 = (struct dwarf2_locexpr_baton *) SYMBOL_LOCATION_BATON (sym);
bb2ec1b3
TT
4429 unsigned int addr_size = dwarf2_per_cu_addr_size (dlbaton->per_cu);
4430
4431 if (dlbaton->size == 0)
4432 error (_("symbol \"%s\" is optimized out"), SYMBOL_NATURAL_NAME (sym));
4433
4434 compile_dwarf_expr_to_c (stream, result_name,
4435 sym, pc, gdbarch, registers_used, addr_size,
4436 dlbaton->data, dlbaton->data + dlbaton->size,
4437 dlbaton->per_cu);
4438}
4439
4c2df51b
DJ
4440/* The set of location functions used with the DWARF-2 expression
4441 evaluator. */
768a979c 4442const struct symbol_computed_ops dwarf2_locexpr_funcs = {
4c2df51b 4443 locexpr_read_variable,
e18b2753 4444 locexpr_read_variable_at_entry,
0b31a4bc 4445 locexpr_get_symbol_read_needs,
4c2df51b 4446 locexpr_describe_location,
f1e6e072 4447 0, /* location_has_loclist */
bb2ec1b3
TT
4448 locexpr_tracepoint_var_ref,
4449 locexpr_generate_c_location
4c2df51b 4450};
0d53c4c4
DJ
4451
4452
4453/* Wrapper functions for location lists. These generally find
4454 the appropriate location expression and call something above. */
4455
4456/* Return the value of SYMBOL in FRAME using the DWARF-2 expression
4457 evaluator to calculate the location. */
4458static struct value *
4459loclist_read_variable (struct symbol *symbol, struct frame_info *frame)
4460{
9a3c8263
SM
4461 struct dwarf2_loclist_baton *dlbaton
4462 = (struct dwarf2_loclist_baton *) SYMBOL_LOCATION_BATON (symbol);
0d53c4c4 4463 struct value *val;
947bb88f 4464 const gdb_byte *data;
b6b08ebf 4465 size_t size;
8cf6f0b1 4466 CORE_ADDR pc = frame ? get_frame_address_in_block (frame) : 0;
0d53c4c4 4467
8cf6f0b1 4468 data = dwarf2_find_location_expression (dlbaton, &size, pc);
1d6edc3c
JK
4469 val = dwarf2_evaluate_loc_desc (SYMBOL_TYPE (symbol), frame, data, size,
4470 dlbaton->per_cu);
0d53c4c4
DJ
4471
4472 return val;
4473}
4474
e18b2753
JK
4475/* Read variable SYMBOL like loclist_read_variable at (callee) FRAME's function
4476 entry. SYMBOL should be a function parameter, otherwise NO_ENTRY_VALUE_ERROR
4477 will be thrown.
4478
4479 Function always returns non-NULL value, it may be marked optimized out if
4480 inferior frame information is not available. It throws NO_ENTRY_VALUE_ERROR
4481 if it cannot resolve the parameter for any reason. */
4482
4483static struct value *
4484loclist_read_variable_at_entry (struct symbol *symbol, struct frame_info *frame)
4485{
9a3c8263
SM
4486 struct dwarf2_loclist_baton *dlbaton
4487 = (struct dwarf2_loclist_baton *) SYMBOL_LOCATION_BATON (symbol);
e18b2753
JK
4488 const gdb_byte *data;
4489 size_t size;
4490 CORE_ADDR pc;
4491
4492 if (frame == NULL || !get_frame_func_if_available (frame, &pc))
4493 return allocate_optimized_out_value (SYMBOL_TYPE (symbol));
4494
4495 data = dwarf2_find_location_expression (dlbaton, &size, pc);
4496 if (data == NULL)
4497 return allocate_optimized_out_value (SYMBOL_TYPE (symbol));
4498
4499 return value_of_dwarf_block_entry (SYMBOL_TYPE (symbol), frame, data, size);
4500}
4501
0b31a4bc
TT
4502/* Implementation of get_symbol_read_needs from
4503 symbol_computed_ops. */
4504
4505static enum symbol_needs_kind
4506loclist_symbol_needs (struct symbol *symbol)
0d53c4c4
DJ
4507{
4508 /* If there's a location list, then assume we need to have a frame
4509 to choose the appropriate location expression. With tracking of
4510 global variables this is not necessarily true, but such tracking
4511 is disabled in GCC at the moment until we figure out how to
4512 represent it. */
4513
0b31a4bc 4514 return SYMBOL_NEEDS_FRAME;
0d53c4c4
DJ
4515}
4516
08922a10
SS
4517/* Print a natural-language description of SYMBOL to STREAM. This
4518 version applies when there is a list of different locations, each
4519 with a specified address range. */
4520
4521static void
4522loclist_describe_location (struct symbol *symbol, CORE_ADDR addr,
4523 struct ui_file *stream)
0d53c4c4 4524{
9a3c8263
SM
4525 struct dwarf2_loclist_baton *dlbaton
4526 = (struct dwarf2_loclist_baton *) SYMBOL_LOCATION_BATON (symbol);
947bb88f 4527 const gdb_byte *loc_ptr, *buf_end;
08922a10
SS
4528 struct objfile *objfile = dwarf2_per_cu_objfile (dlbaton->per_cu);
4529 struct gdbarch *gdbarch = get_objfile_arch (objfile);
4530 enum bfd_endian byte_order = gdbarch_byte_order (gdbarch);
4531 unsigned int addr_size = dwarf2_per_cu_addr_size (dlbaton->per_cu);
9eae7c52 4532 int offset_size = dwarf2_per_cu_offset_size (dlbaton->per_cu);
d4a087c7 4533 int signed_addr_p = bfd_get_sign_extend_vma (objfile->obfd);
08922a10 4534 /* Adjust base_address for relocatable objects. */
9aa1f1e3 4535 CORE_ADDR base_offset = dwarf2_per_cu_text_offset (dlbaton->per_cu);
08922a10 4536 CORE_ADDR base_address = dlbaton->base_address + base_offset;
f664829e 4537 int done = 0;
08922a10
SS
4538
4539 loc_ptr = dlbaton->data;
4540 buf_end = dlbaton->data + dlbaton->size;
4541
9eae7c52 4542 fprintf_filtered (stream, _("multi-location:\n"));
08922a10
SS
4543
4544 /* Iterate through locations until we run out. */
f664829e 4545 while (!done)
08922a10 4546 {
f664829e
DE
4547 CORE_ADDR low = 0, high = 0; /* init for gcc -Wall */
4548 int length;
4549 enum debug_loc_kind kind;
4550 const gdb_byte *new_ptr = NULL; /* init for gcc -Wall */
4551
4552 if (dlbaton->from_dwo)
4553 kind = decode_debug_loc_dwo_addresses (dlbaton->per_cu,
4554 loc_ptr, buf_end, &new_ptr,
3771a44c 4555 &low, &high, byte_order);
d4a087c7 4556 else
f664829e
DE
4557 kind = decode_debug_loc_addresses (loc_ptr, buf_end, &new_ptr,
4558 &low, &high,
4559 byte_order, addr_size,
4560 signed_addr_p);
4561 loc_ptr = new_ptr;
4562 switch (kind)
08922a10 4563 {
f664829e
DE
4564 case DEBUG_LOC_END_OF_LIST:
4565 done = 1;
4566 continue;
4567 case DEBUG_LOC_BASE_ADDRESS:
d4a087c7 4568 base_address = high + base_offset;
9eae7c52 4569 fprintf_filtered (stream, _(" Base address %s"),
08922a10 4570 paddress (gdbarch, base_address));
08922a10 4571 continue;
3771a44c
DE
4572 case DEBUG_LOC_START_END:
4573 case DEBUG_LOC_START_LENGTH:
f664829e
DE
4574 break;
4575 case DEBUG_LOC_BUFFER_OVERFLOW:
4576 case DEBUG_LOC_INVALID_ENTRY:
4577 error (_("Corrupted DWARF expression for symbol \"%s\"."),
4578 SYMBOL_PRINT_NAME (symbol));
4579 default:
4580 gdb_assert_not_reached ("bad debug_loc_kind");
08922a10
SS
4581 }
4582
08922a10
SS
4583 /* Otherwise, a location expression entry. */
4584 low += base_address;
4585 high += base_address;
4586
3e29f34a
MR
4587 low = gdbarch_adjust_dwarf2_addr (gdbarch, low);
4588 high = gdbarch_adjust_dwarf2_addr (gdbarch, high);
4589
08922a10
SS
4590 length = extract_unsigned_integer (loc_ptr, 2, byte_order);
4591 loc_ptr += 2;
4592
08922a10
SS
4593 /* (It would improve readability to print only the minimum
4594 necessary digits of the second number of the range.) */
9eae7c52 4595 fprintf_filtered (stream, _(" Range %s-%s: "),
08922a10
SS
4596 paddress (gdbarch, low), paddress (gdbarch, high));
4597
4598 /* Now describe this particular location. */
4599 locexpr_describe_location_1 (symbol, low, stream, loc_ptr, length,
5e44ecb3
TT
4600 objfile, addr_size, offset_size,
4601 dlbaton->per_cu);
9eae7c52
TT
4602
4603 fprintf_filtered (stream, "\n");
08922a10
SS
4604
4605 loc_ptr += length;
4606 }
0d53c4c4
DJ
4607}
4608
4609/* Describe the location of SYMBOL as an agent value in VALUE, generating
4610 any necessary bytecode in AX. */
4611static void
505e835d
UW
4612loclist_tracepoint_var_ref (struct symbol *symbol, struct gdbarch *gdbarch,
4613 struct agent_expr *ax, struct axs_value *value)
0d53c4c4 4614{
9a3c8263
SM
4615 struct dwarf2_loclist_baton *dlbaton
4616 = (struct dwarf2_loclist_baton *) SYMBOL_LOCATION_BATON (symbol);
947bb88f 4617 const gdb_byte *data;
b6b08ebf 4618 size_t size;
3cf03773 4619 unsigned int addr_size = dwarf2_per_cu_addr_size (dlbaton->per_cu);
0d53c4c4 4620
8cf6f0b1 4621 data = dwarf2_find_location_expression (dlbaton, &size, ax->scope);
1d6edc3c 4622 if (size == 0)
cabe9ab6
PA
4623 value->optimized_out = 1;
4624 else
9f6f94ff
TT
4625 dwarf2_compile_expr_to_ax (ax, value, gdbarch, addr_size, data, data + size,
4626 dlbaton->per_cu);
0d53c4c4
DJ
4627}
4628
bb2ec1b3
TT
4629/* symbol_computed_ops 'generate_c_location' method. */
4630
4631static void
4632loclist_generate_c_location (struct symbol *sym, struct ui_file *stream,
4633 struct gdbarch *gdbarch,
4634 unsigned char *registers_used,
4635 CORE_ADDR pc, const char *result_name)
4636{
9a3c8263
SM
4637 struct dwarf2_loclist_baton *dlbaton
4638 = (struct dwarf2_loclist_baton *) SYMBOL_LOCATION_BATON (sym);
bb2ec1b3
TT
4639 unsigned int addr_size = dwarf2_per_cu_addr_size (dlbaton->per_cu);
4640 const gdb_byte *data;
4641 size_t size;
4642
4643 data = dwarf2_find_location_expression (dlbaton, &size, pc);
4644 if (size == 0)
4645 error (_("symbol \"%s\" is optimized out"), SYMBOL_NATURAL_NAME (sym));
4646
4647 compile_dwarf_expr_to_c (stream, result_name,
4648 sym, pc, gdbarch, registers_used, addr_size,
4649 data, data + size,
4650 dlbaton->per_cu);
4651}
4652
0d53c4c4
DJ
4653/* The set of location functions used with the DWARF-2 expression
4654 evaluator and location lists. */
768a979c 4655const struct symbol_computed_ops dwarf2_loclist_funcs = {
0d53c4c4 4656 loclist_read_variable,
e18b2753 4657 loclist_read_variable_at_entry,
0b31a4bc 4658 loclist_symbol_needs,
0d53c4c4 4659 loclist_describe_location,
f1e6e072 4660 1, /* location_has_loclist */
bb2ec1b3
TT
4661 loclist_tracepoint_var_ref,
4662 loclist_generate_c_location
0d53c4c4 4663};
8e3b41a9 4664
70221824
PA
4665/* Provide a prototype to silence -Wmissing-prototypes. */
4666extern initialize_file_ftype _initialize_dwarf2loc;
4667
8e3b41a9
JK
4668void
4669_initialize_dwarf2loc (void)
4670{
ccce17b0
YQ
4671 add_setshow_zuinteger_cmd ("entry-values", class_maintenance,
4672 &entry_values_debug,
4673 _("Set entry values and tail call frames "
4674 "debugging."),
4675 _("Show entry values and tail call frames "
4676 "debugging."),
4677 _("When non-zero, the process of determining "
4678 "parameter values from function entry point "
4679 "and tail call frames will be printed."),
4680 NULL,
4681 show_entry_values_debug,
4682 &setdebuglist, &showdebuglist);
ad06383f
AA
4683
4684#if GDB_SELF_TEST
4685 register_self_test (selftests::copy_bitwise_tests);
4686#endif
8e3b41a9 4687}
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