Revert the last change to elf64-x86-64.c.
[deliverable/binutils-gdb.git] / gdb / dwarf2loc.c
CommitLineData
4c2df51b 1/* DWARF 2 location expression support for GDB.
feb13ab0 2
7b6bb8da 3 Copyright (C) 2003, 2005, 2007, 2008, 2009, 2010, 2011
4c38e0a4 4 Free Software Foundation, Inc.
feb13ab0 5
4c2df51b
DJ
6 Contributed by Daniel Jacobowitz, MontaVista Software, Inc.
7
8 This file is part of GDB.
9
10 This program is free software; you can redistribute it and/or modify
11 it under the terms of the GNU General Public License as published by
a9762ec7
JB
12 the Free Software Foundation; either version 3 of the License, or
13 (at your option) any later version.
4c2df51b 14
a9762ec7
JB
15 This program is distributed in the hope that it will be useful,
16 but WITHOUT ANY WARRANTY; without even the implied warranty of
17 MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
18 GNU General Public License for more details.
4c2df51b
DJ
19
20 You should have received a copy of the GNU General Public License
a9762ec7 21 along with this program. If not, see <http://www.gnu.org/licenses/>. */
4c2df51b
DJ
22
23#include "defs.h"
24#include "ui-out.h"
25#include "value.h"
26#include "frame.h"
27#include "gdbcore.h"
28#include "target.h"
29#include "inferior.h"
a55cc764
DJ
30#include "ax.h"
31#include "ax-gdb.h"
e4adbba9 32#include "regcache.h"
c3228f12 33#include "objfiles.h"
93ad78a7 34#include "exceptions.h"
edb3359d 35#include "block.h"
4c2df51b 36
fa8f86ff 37#include "dwarf2.h"
4c2df51b
DJ
38#include "dwarf2expr.h"
39#include "dwarf2loc.h"
e7802207 40#include "dwarf2-frame.h"
4c2df51b
DJ
41
42#include "gdb_string.h"
eff4f95e 43#include "gdb_assert.h"
4c2df51b 44
9eae7c52
TT
45extern int dwarf2_always_disassemble;
46
0936ad1d
SS
47static void
48dwarf_expr_frame_base_1 (struct symbol *framefunc, CORE_ADDR pc,
0d45f56e 49 const gdb_byte **start, size_t *length);
0936ad1d 50
8cf6f0b1
TT
51static struct value *
52dwarf2_evaluate_loc_desc_full (struct type *type, struct frame_info *frame,
53 const gdb_byte *data, unsigned short size,
54 struct dwarf2_per_cu_data *per_cu,
55 LONGEST byte_offset);
56
57/* A function for dealing with location lists. Given a
0d53c4c4
DJ
58 symbol baton (BATON) and a pc value (PC), find the appropriate
59 location expression, set *LOCEXPR_LENGTH, and return a pointer
60 to the beginning of the expression. Returns NULL on failure.
61
62 For now, only return the first matching location expression; there
63 can be more than one in the list. */
64
8cf6f0b1
TT
65const gdb_byte *
66dwarf2_find_location_expression (struct dwarf2_loclist_baton *baton,
67 size_t *locexpr_length, CORE_ADDR pc)
0d53c4c4 68{
0d53c4c4 69 CORE_ADDR low, high;
947bb88f 70 const gdb_byte *loc_ptr, *buf_end;
852483bc 71 int length;
ae0d2f24 72 struct objfile *objfile = dwarf2_per_cu_objfile (baton->per_cu);
f7fd4728 73 struct gdbarch *gdbarch = get_objfile_arch (objfile);
e17a4113 74 enum bfd_endian byte_order = gdbarch_byte_order (gdbarch);
ae0d2f24 75 unsigned int addr_size = dwarf2_per_cu_addr_size (baton->per_cu);
d4a087c7 76 int signed_addr_p = bfd_get_sign_extend_vma (objfile->obfd);
0d53c4c4 77 CORE_ADDR base_mask = ~(~(CORE_ADDR)1 << (addr_size * 8 - 1));
8edfa926 78 /* Adjust base_address for relocatable objects. */
9aa1f1e3 79 CORE_ADDR base_offset = dwarf2_per_cu_text_offset (baton->per_cu);
8edfa926 80 CORE_ADDR base_address = baton->base_address + base_offset;
0d53c4c4
DJ
81
82 loc_ptr = baton->data;
83 buf_end = baton->data + baton->size;
84
85 while (1)
86 {
b5758fe4 87 if (buf_end - loc_ptr < 2 * addr_size)
3e43a32a
MS
88 error (_("dwarf2_find_location_expression: "
89 "Corrupted DWARF expression."));
0d53c4c4 90
d4a087c7
UW
91 if (signed_addr_p)
92 low = extract_signed_integer (loc_ptr, addr_size, byte_order);
93 else
94 low = extract_unsigned_integer (loc_ptr, addr_size, byte_order);
95 loc_ptr += addr_size;
96
97 if (signed_addr_p)
98 high = extract_signed_integer (loc_ptr, addr_size, byte_order);
99 else
100 high = extract_unsigned_integer (loc_ptr, addr_size, byte_order);
b5758fe4 101 loc_ptr += addr_size;
0d53c4c4
DJ
102
103 /* A base-address-selection entry. */
d4a087c7 104 if ((low & base_mask) == base_mask)
0d53c4c4 105 {
d4a087c7 106 base_address = high + base_offset;
0d53c4c4
DJ
107 continue;
108 }
109
b5758fe4
UW
110 /* An end-of-list entry. */
111 if (low == 0 && high == 0)
112 return NULL;
113
0d53c4c4
DJ
114 /* Otherwise, a location expression entry. */
115 low += base_address;
116 high += base_address;
117
e17a4113 118 length = extract_unsigned_integer (loc_ptr, 2, byte_order);
0d53c4c4
DJ
119 loc_ptr += 2;
120
121 if (pc >= low && pc < high)
122 {
123 *locexpr_length = length;
124 return loc_ptr;
125 }
126
127 loc_ptr += length;
128 }
129}
130
4c2df51b
DJ
131/* This is the baton used when performing dwarf2 expression
132 evaluation. */
133struct dwarf_expr_baton
134{
135 struct frame_info *frame;
17ea53c3 136 struct dwarf2_per_cu_data *per_cu;
4c2df51b
DJ
137};
138
139/* Helper functions for dwarf2_evaluate_loc_desc. */
140
4bc9efe1 141/* Using the frame specified in BATON, return the value of register
0b2b0195 142 REGNUM, treated as a pointer. */
4c2df51b 143static CORE_ADDR
61fbb938 144dwarf_expr_read_reg (void *baton, int dwarf_regnum)
4c2df51b 145{
4c2df51b 146 struct dwarf_expr_baton *debaton = (struct dwarf_expr_baton *) baton;
5e2b427d 147 struct gdbarch *gdbarch = get_frame_arch (debaton->frame);
e5192dd8 148 CORE_ADDR result;
0b2b0195 149 int regnum;
e4adbba9 150
5e2b427d
UW
151 regnum = gdbarch_dwarf2_reg_to_regnum (gdbarch, dwarf_regnum);
152 result = address_from_register (builtin_type (gdbarch)->builtin_data_ptr,
0b2b0195 153 regnum, debaton->frame);
4c2df51b
DJ
154 return result;
155}
156
157/* Read memory at ADDR (length LEN) into BUF. */
158
159static void
852483bc 160dwarf_expr_read_mem (void *baton, gdb_byte *buf, CORE_ADDR addr, size_t len)
4c2df51b
DJ
161{
162 read_memory (addr, buf, len);
163}
164
165/* Using the frame specified in BATON, find the location expression
166 describing the frame base. Return a pointer to it in START and
167 its length in LENGTH. */
168static void
0d45f56e 169dwarf_expr_frame_base (void *baton, const gdb_byte **start, size_t * length)
4c2df51b 170{
da62e633
AC
171 /* FIXME: cagney/2003-03-26: This code should be using
172 get_frame_base_address(), and then implement a dwarf2 specific
173 this_base method. */
4c2df51b 174 struct symbol *framefunc;
4c2df51b 175 struct dwarf_expr_baton *debaton = (struct dwarf_expr_baton *) baton;
0d53c4c4 176
edb3359d
DJ
177 /* Use block_linkage_function, which returns a real (not inlined)
178 function, instead of get_frame_function, which may return an
179 inlined function. */
180 framefunc = block_linkage_function (get_frame_block (debaton->frame, NULL));
0d53c4c4 181
eff4f95e
JG
182 /* If we found a frame-relative symbol then it was certainly within
183 some function associated with a frame. If we can't find the frame,
184 something has gone wrong. */
185 gdb_assert (framefunc != NULL);
186
0936ad1d
SS
187 dwarf_expr_frame_base_1 (framefunc,
188 get_frame_address_in_block (debaton->frame),
189 start, length);
190}
191
192static void
193dwarf_expr_frame_base_1 (struct symbol *framefunc, CORE_ADDR pc,
0d45f56e 194 const gdb_byte **start, size_t *length)
0936ad1d 195{
edb3359d
DJ
196 if (SYMBOL_LOCATION_BATON (framefunc) == NULL)
197 *start = NULL;
198 else if (SYMBOL_COMPUTED_OPS (framefunc) == &dwarf2_loclist_funcs)
0d53c4c4
DJ
199 {
200 struct dwarf2_loclist_baton *symbaton;
22c6caba 201
0d53c4c4 202 symbaton = SYMBOL_LOCATION_BATON (framefunc);
8cf6f0b1 203 *start = dwarf2_find_location_expression (symbaton, length, pc);
0d53c4c4
DJ
204 }
205 else
206 {
207 struct dwarf2_locexpr_baton *symbaton;
9a619af0 208
0d53c4c4 209 symbaton = SYMBOL_LOCATION_BATON (framefunc);
ebd3bcc1
JK
210 if (symbaton != NULL)
211 {
212 *length = symbaton->size;
213 *start = symbaton->data;
214 }
215 else
216 *start = NULL;
0d53c4c4
DJ
217 }
218
219 if (*start == NULL)
8a3fe4f8 220 error (_("Could not find the frame base for \"%s\"."),
0d53c4c4 221 SYMBOL_NATURAL_NAME (framefunc));
4c2df51b
DJ
222}
223
e7802207
TT
224/* Helper function for dwarf2_evaluate_loc_desc. Computes the CFA for
225 the frame in BATON. */
226
227static CORE_ADDR
228dwarf_expr_frame_cfa (void *baton)
229{
230 struct dwarf_expr_baton *debaton = (struct dwarf_expr_baton *) baton;
9a619af0 231
e7802207
TT
232 return dwarf2_frame_cfa (debaton->frame);
233}
234
8cf6f0b1
TT
235/* Helper function for dwarf2_evaluate_loc_desc. Computes the PC for
236 the frame in BATON. */
237
238static CORE_ADDR
239dwarf_expr_frame_pc (void *baton)
240{
241 struct dwarf_expr_baton *debaton = (struct dwarf_expr_baton *) baton;
242
243 return get_frame_address_in_block (debaton->frame);
244}
245
4c2df51b
DJ
246/* Using the objfile specified in BATON, find the address for the
247 current thread's thread-local storage with offset OFFSET. */
248static CORE_ADDR
249dwarf_expr_tls_address (void *baton, CORE_ADDR offset)
250{
251 struct dwarf_expr_baton *debaton = (struct dwarf_expr_baton *) baton;
17ea53c3 252 struct objfile *objfile = dwarf2_per_cu_objfile (debaton->per_cu);
4c2df51b 253
17ea53c3 254 return target_translate_tls_address (objfile, offset);
4c2df51b
DJ
255}
256
3e43a32a
MS
257/* Call DWARF subroutine from DW_AT_location of DIE at DIE_OFFSET in
258 current CU (as is PER_CU). State of the CTX is not affected by the
259 call and return. */
5c631832
JK
260
261static void
262per_cu_dwarf_call (struct dwarf_expr_context *ctx, size_t die_offset,
8cf6f0b1
TT
263 struct dwarf2_per_cu_data *per_cu,
264 CORE_ADDR (*get_frame_pc) (void *baton),
265 void *baton)
5c631832
JK
266{
267 struct dwarf2_locexpr_baton block;
268
8cf6f0b1
TT
269 block = dwarf2_fetch_die_location_block (die_offset, per_cu,
270 get_frame_pc, baton);
5c631832
JK
271
272 /* DW_OP_call_ref is currently not supported. */
273 gdb_assert (block.per_cu == per_cu);
274
275 dwarf_expr_eval (ctx, block.data, block.size);
276}
277
278/* Helper interface of per_cu_dwarf_call for dwarf2_evaluate_loc_desc. */
279
280static void
281dwarf_expr_dwarf_call (struct dwarf_expr_context *ctx, size_t die_offset)
282{
283 struct dwarf_expr_baton *debaton = ctx->baton;
284
8cf6f0b1
TT
285 return per_cu_dwarf_call (ctx, die_offset, debaton->per_cu,
286 ctx->get_frame_pc, ctx->baton);
5c631832
JK
287}
288
052b9502
NF
289struct piece_closure
290{
88bfdde4
TT
291 /* Reference count. */
292 int refc;
293
8cf6f0b1
TT
294 /* The CU from which this closure's expression came. */
295 struct dwarf2_per_cu_data *per_cu;
296
052b9502
NF
297 /* The number of pieces used to describe this variable. */
298 int n_pieces;
299
6063c216
UW
300 /* The target address size, used only for DWARF_VALUE_STACK. */
301 int addr_size;
cec03d70 302
052b9502
NF
303 /* The pieces themselves. */
304 struct dwarf_expr_piece *pieces;
305};
306
307/* Allocate a closure for a value formed from separately-described
308 PIECES. */
309
310static struct piece_closure *
8cf6f0b1
TT
311allocate_piece_closure (struct dwarf2_per_cu_data *per_cu,
312 int n_pieces, struct dwarf_expr_piece *pieces,
6063c216 313 int addr_size)
052b9502
NF
314{
315 struct piece_closure *c = XZALLOC (struct piece_closure);
316
88bfdde4 317 c->refc = 1;
8cf6f0b1 318 c->per_cu = per_cu;
052b9502 319 c->n_pieces = n_pieces;
6063c216 320 c->addr_size = addr_size;
052b9502
NF
321 c->pieces = XCALLOC (n_pieces, struct dwarf_expr_piece);
322
323 memcpy (c->pieces, pieces, n_pieces * sizeof (struct dwarf_expr_piece));
324
325 return c;
326}
327
d3b1e874
TT
328/* The lowest-level function to extract bits from a byte buffer.
329 SOURCE is the buffer. It is updated if we read to the end of a
330 byte.
331 SOURCE_OFFSET_BITS is the offset of the first bit to read. It is
332 updated to reflect the number of bits actually read.
333 NBITS is the number of bits we want to read. It is updated to
334 reflect the number of bits actually read. This function may read
335 fewer bits.
336 BITS_BIG_ENDIAN is taken directly from gdbarch.
337 This function returns the extracted bits. */
338
339static unsigned int
340extract_bits_primitive (const gdb_byte **source,
341 unsigned int *source_offset_bits,
342 int *nbits, int bits_big_endian)
343{
344 unsigned int avail, mask, datum;
345
346 gdb_assert (*source_offset_bits < 8);
347
348 avail = 8 - *source_offset_bits;
349 if (avail > *nbits)
350 avail = *nbits;
351
352 mask = (1 << avail) - 1;
353 datum = **source;
354 if (bits_big_endian)
355 datum >>= 8 - (*source_offset_bits + *nbits);
356 else
357 datum >>= *source_offset_bits;
358 datum &= mask;
359
360 *nbits -= avail;
361 *source_offset_bits += avail;
362 if (*source_offset_bits >= 8)
363 {
364 *source_offset_bits -= 8;
365 ++*source;
366 }
367
368 return datum;
369}
370
371/* Extract some bits from a source buffer and move forward in the
372 buffer.
373
374 SOURCE is the source buffer. It is updated as bytes are read.
375 SOURCE_OFFSET_BITS is the offset into SOURCE. It is updated as
376 bits are read.
377 NBITS is the number of bits to read.
378 BITS_BIG_ENDIAN is taken directly from gdbarch.
379
380 This function returns the bits that were read. */
381
382static unsigned int
383extract_bits (const gdb_byte **source, unsigned int *source_offset_bits,
384 int nbits, int bits_big_endian)
385{
386 unsigned int datum;
387
388 gdb_assert (nbits > 0 && nbits <= 8);
389
390 datum = extract_bits_primitive (source, source_offset_bits, &nbits,
391 bits_big_endian);
392 if (nbits > 0)
393 {
394 unsigned int more;
395
396 more = extract_bits_primitive (source, source_offset_bits, &nbits,
397 bits_big_endian);
398 if (bits_big_endian)
399 datum <<= nbits;
400 else
401 more <<= nbits;
402 datum |= more;
403 }
404
405 return datum;
406}
407
408/* Write some bits into a buffer and move forward in the buffer.
409
410 DATUM is the bits to write. The low-order bits of DATUM are used.
411 DEST is the destination buffer. It is updated as bytes are
412 written.
413 DEST_OFFSET_BITS is the bit offset in DEST at which writing is
414 done.
415 NBITS is the number of valid bits in DATUM.
416 BITS_BIG_ENDIAN is taken directly from gdbarch. */
417
418static void
419insert_bits (unsigned int datum,
420 gdb_byte *dest, unsigned int dest_offset_bits,
421 int nbits, int bits_big_endian)
422{
423 unsigned int mask;
424
425 gdb_assert (dest_offset_bits >= 0 && dest_offset_bits + nbits <= 8);
426
427 mask = (1 << nbits) - 1;
428 if (bits_big_endian)
429 {
430 datum <<= 8 - (dest_offset_bits + nbits);
431 mask <<= 8 - (dest_offset_bits + nbits);
432 }
433 else
434 {
435 datum <<= dest_offset_bits;
436 mask <<= dest_offset_bits;
437 }
438
439 gdb_assert ((datum & ~mask) == 0);
440
441 *dest = (*dest & ~mask) | datum;
442}
443
444/* Copy bits from a source to a destination.
445
446 DEST is where the bits should be written.
447 DEST_OFFSET_BITS is the bit offset into DEST.
448 SOURCE is the source of bits.
449 SOURCE_OFFSET_BITS is the bit offset into SOURCE.
450 BIT_COUNT is the number of bits to copy.
451 BITS_BIG_ENDIAN is taken directly from gdbarch. */
452
453static void
454copy_bitwise (gdb_byte *dest, unsigned int dest_offset_bits,
455 const gdb_byte *source, unsigned int source_offset_bits,
456 unsigned int bit_count,
457 int bits_big_endian)
458{
459 unsigned int dest_avail;
460 int datum;
461
462 /* Reduce everything to byte-size pieces. */
463 dest += dest_offset_bits / 8;
464 dest_offset_bits %= 8;
465 source += source_offset_bits / 8;
466 source_offset_bits %= 8;
467
468 dest_avail = 8 - dest_offset_bits % 8;
469
470 /* See if we can fill the first destination byte. */
471 if (dest_avail < bit_count)
472 {
473 datum = extract_bits (&source, &source_offset_bits, dest_avail,
474 bits_big_endian);
475 insert_bits (datum, dest, dest_offset_bits, dest_avail, bits_big_endian);
476 ++dest;
477 dest_offset_bits = 0;
478 bit_count -= dest_avail;
479 }
480
481 /* Now, either DEST_OFFSET_BITS is byte-aligned, or we have fewer
482 than 8 bits remaining. */
483 gdb_assert (dest_offset_bits % 8 == 0 || bit_count < 8);
484 for (; bit_count >= 8; bit_count -= 8)
485 {
486 datum = extract_bits (&source, &source_offset_bits, 8, bits_big_endian);
487 *dest++ = (gdb_byte) datum;
488 }
489
490 /* Finally, we may have a few leftover bits. */
491 gdb_assert (bit_count <= 8 - dest_offset_bits % 8);
492 if (bit_count > 0)
493 {
494 datum = extract_bits (&source, &source_offset_bits, bit_count,
495 bits_big_endian);
496 insert_bits (datum, dest, dest_offset_bits, bit_count, bits_big_endian);
497 }
498}
499
052b9502
NF
500static void
501read_pieced_value (struct value *v)
502{
503 int i;
504 long offset = 0;
d3b1e874 505 ULONGEST bits_to_skip;
052b9502 506 gdb_byte *contents;
3e43a32a
MS
507 struct piece_closure *c
508 = (struct piece_closure *) value_computed_closure (v);
052b9502 509 struct frame_info *frame = frame_find_by_id (VALUE_FRAME_ID (v));
afd74c5f 510 size_t type_len;
d3b1e874
TT
511 size_t buffer_size = 0;
512 char *buffer = NULL;
513 struct cleanup *cleanup;
514 int bits_big_endian
515 = gdbarch_bits_big_endian (get_type_arch (value_type (v)));
afd74c5f
TT
516
517 if (value_type (v) != value_enclosing_type (v))
518 internal_error (__FILE__, __LINE__,
519 _("Should not be able to create a lazy value with "
520 "an enclosing type"));
052b9502 521
d3b1e874
TT
522 cleanup = make_cleanup (free_current_contents, &buffer);
523
052b9502 524 contents = value_contents_raw (v);
d3b1e874 525 bits_to_skip = 8 * value_offset (v);
0e03807e
TT
526 if (value_bitsize (v))
527 {
528 bits_to_skip += value_bitpos (v);
529 type_len = value_bitsize (v);
530 }
531 else
532 type_len = 8 * TYPE_LENGTH (value_type (v));
d3b1e874 533
afd74c5f 534 for (i = 0; i < c->n_pieces && offset < type_len; i++)
052b9502
NF
535 {
536 struct dwarf_expr_piece *p = &c->pieces[i];
d3b1e874
TT
537 size_t this_size, this_size_bits;
538 long dest_offset_bits, source_offset_bits, source_offset;
0d45f56e 539 const gdb_byte *intermediate_buffer;
d3b1e874
TT
540
541 /* Compute size, source, and destination offsets for copying, in
542 bits. */
543 this_size_bits = p->size;
544 if (bits_to_skip > 0 && bits_to_skip >= this_size_bits)
afd74c5f 545 {
d3b1e874 546 bits_to_skip -= this_size_bits;
afd74c5f
TT
547 continue;
548 }
d3b1e874
TT
549 if (this_size_bits > type_len - offset)
550 this_size_bits = type_len - offset;
551 if (bits_to_skip > 0)
afd74c5f 552 {
d3b1e874
TT
553 dest_offset_bits = 0;
554 source_offset_bits = bits_to_skip;
555 this_size_bits -= bits_to_skip;
556 bits_to_skip = 0;
afd74c5f
TT
557 }
558 else
559 {
d3b1e874
TT
560 dest_offset_bits = offset;
561 source_offset_bits = 0;
afd74c5f 562 }
9a619af0 563
d3b1e874
TT
564 this_size = (this_size_bits + source_offset_bits % 8 + 7) / 8;
565 source_offset = source_offset_bits / 8;
566 if (buffer_size < this_size)
567 {
568 buffer_size = this_size;
569 buffer = xrealloc (buffer, buffer_size);
570 }
571 intermediate_buffer = buffer;
572
573 /* Copy from the source to DEST_BUFFER. */
cec03d70 574 switch (p->location)
052b9502 575 {
cec03d70
TT
576 case DWARF_VALUE_REGISTER:
577 {
578 struct gdbarch *arch = get_frame_arch (frame);
f2c7657e 579 int gdb_regnum = gdbarch_dwarf2_reg_to_regnum (arch, p->v.value);
afd74c5f 580 int reg_offset = source_offset;
dcbf108f
UW
581
582 if (gdbarch_byte_order (arch) == BFD_ENDIAN_BIG
afd74c5f 583 && this_size < register_size (arch, gdb_regnum))
d3b1e874
TT
584 {
585 /* Big-endian, and we want less than full size. */
586 reg_offset = register_size (arch, gdb_regnum) - this_size;
587 /* We want the lower-order THIS_SIZE_BITS of the bytes
588 we extract from the register. */
589 source_offset_bits += 8 * this_size - this_size_bits;
590 }
dcbf108f 591
63b4f126
MGD
592 if (gdb_regnum != -1)
593 {
594 get_frame_register_bytes (frame, gdb_regnum, reg_offset,
d3b1e874 595 this_size, buffer);
63b4f126
MGD
596 }
597 else
598 {
599 error (_("Unable to access DWARF register number %s"),
f2c7657e 600 paddress (arch, p->v.value));
63b4f126 601 }
cec03d70
TT
602 }
603 break;
604
605 case DWARF_VALUE_MEMORY:
e6ca34fc
PA
606 read_value_memory (v, offset,
607 p->v.mem.in_stack_memory,
608 p->v.mem.addr + source_offset,
609 buffer, this_size);
cec03d70
TT
610 break;
611
612 case DWARF_VALUE_STACK:
613 {
6063c216 614 struct gdbarch *gdbarch = get_type_arch (value_type (v));
afd74c5f 615 size_t n = this_size;
9a619af0 616
afd74c5f
TT
617 if (n > c->addr_size - source_offset)
618 n = (c->addr_size >= source_offset
619 ? c->addr_size - source_offset
620 : 0);
621 if (n == 0)
622 {
623 /* Nothing. */
624 }
625 else if (source_offset == 0)
d3b1e874 626 store_unsigned_integer (buffer, n,
afd74c5f 627 gdbarch_byte_order (gdbarch),
f2c7657e 628 p->v.value);
afd74c5f
TT
629 else
630 {
631 gdb_byte bytes[sizeof (ULONGEST)];
632
633 store_unsigned_integer (bytes, n + source_offset,
634 gdbarch_byte_order (gdbarch),
f2c7657e 635 p->v.value);
d3b1e874 636 memcpy (buffer, bytes + source_offset, n);
afd74c5f 637 }
cec03d70
TT
638 }
639 break;
640
641 case DWARF_VALUE_LITERAL:
642 {
afd74c5f
TT
643 size_t n = this_size;
644
645 if (n > p->v.literal.length - source_offset)
646 n = (p->v.literal.length >= source_offset
647 ? p->v.literal.length - source_offset
648 : 0);
649 if (n != 0)
d3b1e874 650 intermediate_buffer = p->v.literal.data + source_offset;
cec03d70
TT
651 }
652 break;
653
8cf6f0b1
TT
654 /* These bits show up as zeros -- but do not cause the value
655 to be considered optimized-out. */
656 case DWARF_VALUE_IMPLICIT_POINTER:
657 break;
658
cb826367 659 case DWARF_VALUE_OPTIMIZED_OUT:
0e03807e 660 set_value_optimized_out (v, 1);
cb826367
TT
661 break;
662
cec03d70
TT
663 default:
664 internal_error (__FILE__, __LINE__, _("invalid location type"));
052b9502 665 }
d3b1e874 666
8cf6f0b1
TT
667 if (p->location != DWARF_VALUE_OPTIMIZED_OUT
668 && p->location != DWARF_VALUE_IMPLICIT_POINTER)
d3b1e874
TT
669 copy_bitwise (contents, dest_offset_bits,
670 intermediate_buffer, source_offset_bits % 8,
671 this_size_bits, bits_big_endian);
672
673 offset += this_size_bits;
052b9502 674 }
d3b1e874
TT
675
676 do_cleanups (cleanup);
052b9502
NF
677}
678
679static void
680write_pieced_value (struct value *to, struct value *from)
681{
682 int i;
683 long offset = 0;
d3b1e874 684 ULONGEST bits_to_skip;
afd74c5f 685 const gdb_byte *contents;
3e43a32a
MS
686 struct piece_closure *c
687 = (struct piece_closure *) value_computed_closure (to);
052b9502 688 struct frame_info *frame = frame_find_by_id (VALUE_FRAME_ID (to));
afd74c5f 689 size_t type_len;
d3b1e874
TT
690 size_t buffer_size = 0;
691 char *buffer = NULL;
692 struct cleanup *cleanup;
693 int bits_big_endian
694 = gdbarch_bits_big_endian (get_type_arch (value_type (to)));
052b9502
NF
695
696 if (frame == NULL)
697 {
698 set_value_optimized_out (to, 1);
699 return;
700 }
701
d3b1e874
TT
702 cleanup = make_cleanup (free_current_contents, &buffer);
703
afd74c5f 704 contents = value_contents (from);
d3b1e874 705 bits_to_skip = 8 * value_offset (to);
0e03807e
TT
706 if (value_bitsize (to))
707 {
708 bits_to_skip += value_bitpos (to);
709 type_len = value_bitsize (to);
710 }
711 else
712 type_len = 8 * TYPE_LENGTH (value_type (to));
713
afd74c5f 714 for (i = 0; i < c->n_pieces && offset < type_len; i++)
052b9502
NF
715 {
716 struct dwarf_expr_piece *p = &c->pieces[i];
d3b1e874
TT
717 size_t this_size_bits, this_size;
718 long dest_offset_bits, source_offset_bits, dest_offset, source_offset;
719 int need_bitwise;
720 const gdb_byte *source_buffer;
afd74c5f 721
d3b1e874
TT
722 this_size_bits = p->size;
723 if (bits_to_skip > 0 && bits_to_skip >= this_size_bits)
afd74c5f 724 {
d3b1e874 725 bits_to_skip -= this_size_bits;
afd74c5f
TT
726 continue;
727 }
d3b1e874
TT
728 if (this_size_bits > type_len - offset)
729 this_size_bits = type_len - offset;
730 if (bits_to_skip > 0)
afd74c5f 731 {
d3b1e874
TT
732 dest_offset_bits = bits_to_skip;
733 source_offset_bits = 0;
734 this_size_bits -= bits_to_skip;
735 bits_to_skip = 0;
afd74c5f
TT
736 }
737 else
738 {
d3b1e874
TT
739 dest_offset_bits = 0;
740 source_offset_bits = offset;
741 }
742
743 this_size = (this_size_bits + source_offset_bits % 8 + 7) / 8;
744 source_offset = source_offset_bits / 8;
745 dest_offset = dest_offset_bits / 8;
746 if (dest_offset_bits % 8 == 0 && source_offset_bits % 8 == 0)
747 {
748 source_buffer = contents + source_offset;
749 need_bitwise = 0;
750 }
751 else
752 {
753 if (buffer_size < this_size)
754 {
755 buffer_size = this_size;
756 buffer = xrealloc (buffer, buffer_size);
757 }
758 source_buffer = buffer;
759 need_bitwise = 1;
afd74c5f 760 }
9a619af0 761
cec03d70 762 switch (p->location)
052b9502 763 {
cec03d70
TT
764 case DWARF_VALUE_REGISTER:
765 {
766 struct gdbarch *arch = get_frame_arch (frame);
f2c7657e 767 int gdb_regnum = gdbarch_dwarf2_reg_to_regnum (arch, p->v.value);
afd74c5f 768 int reg_offset = dest_offset;
dcbf108f
UW
769
770 if (gdbarch_byte_order (arch) == BFD_ENDIAN_BIG
afd74c5f 771 && this_size <= register_size (arch, gdb_regnum))
dcbf108f 772 /* Big-endian, and we want less than full size. */
afd74c5f 773 reg_offset = register_size (arch, gdb_regnum) - this_size;
dcbf108f 774
63b4f126
MGD
775 if (gdb_regnum != -1)
776 {
d3b1e874
TT
777 if (need_bitwise)
778 {
779 get_frame_register_bytes (frame, gdb_regnum, reg_offset,
780 this_size, buffer);
781 copy_bitwise (buffer, dest_offset_bits,
782 contents, source_offset_bits,
783 this_size_bits,
784 bits_big_endian);
785 }
786
63b4f126 787 put_frame_register_bytes (frame, gdb_regnum, reg_offset,
d3b1e874 788 this_size, source_buffer);
63b4f126
MGD
789 }
790 else
791 {
792 error (_("Unable to write to DWARF register number %s"),
f2c7657e 793 paddress (arch, p->v.value));
63b4f126 794 }
cec03d70
TT
795 }
796 break;
797 case DWARF_VALUE_MEMORY:
d3b1e874
TT
798 if (need_bitwise)
799 {
800 /* Only the first and last bytes can possibly have any
801 bits reused. */
f2c7657e
UW
802 read_memory (p->v.mem.addr + dest_offset, buffer, 1);
803 read_memory (p->v.mem.addr + dest_offset + this_size - 1,
d3b1e874
TT
804 buffer + this_size - 1, 1);
805 copy_bitwise (buffer, dest_offset_bits,
806 contents, source_offset_bits,
807 this_size_bits,
808 bits_big_endian);
809 }
810
f2c7657e 811 write_memory (p->v.mem.addr + dest_offset,
d3b1e874 812 source_buffer, this_size);
cec03d70
TT
813 break;
814 default:
815 set_value_optimized_out (to, 1);
0e03807e 816 break;
052b9502 817 }
d3b1e874 818 offset += this_size_bits;
052b9502 819 }
d3b1e874 820
d3b1e874 821 do_cleanups (cleanup);
052b9502
NF
822}
823
8cf6f0b1
TT
824/* A helper function that checks bit validity in a pieced value.
825 CHECK_FOR indicates the kind of validity checking.
826 DWARF_VALUE_MEMORY means to check whether any bit is valid.
827 DWARF_VALUE_OPTIMIZED_OUT means to check whether any bit is
828 optimized out.
829 DWARF_VALUE_IMPLICIT_POINTER means to check whether the bits are an
830 implicit pointer. */
831
0e03807e
TT
832static int
833check_pieced_value_bits (const struct value *value, int bit_offset,
8cf6f0b1
TT
834 int bit_length,
835 enum dwarf_value_location check_for)
0e03807e
TT
836{
837 struct piece_closure *c
838 = (struct piece_closure *) value_computed_closure (value);
839 int i;
8cf6f0b1
TT
840 int validity = (check_for == DWARF_VALUE_MEMORY
841 || check_for == DWARF_VALUE_IMPLICIT_POINTER);
0e03807e
TT
842
843 bit_offset += 8 * value_offset (value);
844 if (value_bitsize (value))
845 bit_offset += value_bitpos (value);
846
847 for (i = 0; i < c->n_pieces && bit_length > 0; i++)
848 {
849 struct dwarf_expr_piece *p = &c->pieces[i];
850 size_t this_size_bits = p->size;
851
852 if (bit_offset > 0)
853 {
854 if (bit_offset >= this_size_bits)
855 {
856 bit_offset -= this_size_bits;
857 continue;
858 }
859
860 bit_length -= this_size_bits - bit_offset;
861 bit_offset = 0;
862 }
863 else
864 bit_length -= this_size_bits;
865
8cf6f0b1
TT
866 if (check_for == DWARF_VALUE_IMPLICIT_POINTER)
867 {
868 if (p->location != DWARF_VALUE_IMPLICIT_POINTER)
869 return 0;
870 }
871 else if (p->location == DWARF_VALUE_OPTIMIZED_OUT
872 || p->location == DWARF_VALUE_IMPLICIT_POINTER)
0e03807e
TT
873 {
874 if (validity)
875 return 0;
876 }
877 else
878 {
879 if (!validity)
880 return 1;
881 }
882 }
883
884 return validity;
885}
886
887static int
888check_pieced_value_validity (const struct value *value, int bit_offset,
889 int bit_length)
890{
8cf6f0b1
TT
891 return check_pieced_value_bits (value, bit_offset, bit_length,
892 DWARF_VALUE_MEMORY);
0e03807e
TT
893}
894
895static int
896check_pieced_value_invalid (const struct value *value)
897{
898 return check_pieced_value_bits (value, 0,
8cf6f0b1
TT
899 8 * TYPE_LENGTH (value_type (value)),
900 DWARF_VALUE_OPTIMIZED_OUT);
901}
902
903/* An implementation of an lval_funcs method to see whether a value is
904 a synthetic pointer. */
905
906static int
907check_pieced_synthetic_pointer (const struct value *value, int bit_offset,
908 int bit_length)
909{
910 return check_pieced_value_bits (value, bit_offset, bit_length,
911 DWARF_VALUE_IMPLICIT_POINTER);
912}
913
914/* A wrapper function for get_frame_address_in_block. */
915
916static CORE_ADDR
917get_frame_address_in_block_wrapper (void *baton)
918{
919 return get_frame_address_in_block (baton);
920}
921
922/* An implementation of an lval_funcs method to indirect through a
923 pointer. This handles the synthetic pointer case when needed. */
924
925static struct value *
926indirect_pieced_value (struct value *value)
927{
928 struct piece_closure *c
929 = (struct piece_closure *) value_computed_closure (value);
930 struct type *type;
931 struct frame_info *frame;
932 struct dwarf2_locexpr_baton baton;
933 int i, bit_offset, bit_length;
934 struct dwarf_expr_piece *piece = NULL;
935 struct value *result;
936 LONGEST byte_offset;
937
938 type = value_type (value);
939 if (TYPE_CODE (type) != TYPE_CODE_PTR)
940 return NULL;
941
942 bit_length = 8 * TYPE_LENGTH (type);
943 bit_offset = 8 * value_offset (value);
944 if (value_bitsize (value))
945 bit_offset += value_bitpos (value);
946
947 for (i = 0; i < c->n_pieces && bit_length > 0; i++)
948 {
949 struct dwarf_expr_piece *p = &c->pieces[i];
950 size_t this_size_bits = p->size;
951
952 if (bit_offset > 0)
953 {
954 if (bit_offset >= this_size_bits)
955 {
956 bit_offset -= this_size_bits;
957 continue;
958 }
959
960 bit_length -= this_size_bits - bit_offset;
961 bit_offset = 0;
962 }
963 else
964 bit_length -= this_size_bits;
965
966 if (p->location != DWARF_VALUE_IMPLICIT_POINTER)
967 return NULL;
968
969 if (bit_length != 0)
970 error (_("Invalid use of DW_OP_GNU_implicit_pointer"));
971
972 piece = p;
973 break;
974 }
975
976 frame = get_selected_frame (_("No frame selected."));
977 byte_offset = value_as_address (value);
978
979 baton = dwarf2_fetch_die_location_block (piece->v.ptr.die, c->per_cu,
980 get_frame_address_in_block_wrapper,
981 frame);
982
983 result = dwarf2_evaluate_loc_desc_full (TYPE_TARGET_TYPE (type), frame,
984 baton.data, baton.size, baton.per_cu,
985 byte_offset);
986
987 return result;
0e03807e
TT
988}
989
052b9502 990static void *
0e03807e 991copy_pieced_value_closure (const struct value *v)
052b9502 992{
3e43a32a
MS
993 struct piece_closure *c
994 = (struct piece_closure *) value_computed_closure (v);
052b9502 995
88bfdde4
TT
996 ++c->refc;
997 return c;
052b9502
NF
998}
999
1000static void
1001free_pieced_value_closure (struct value *v)
1002{
3e43a32a
MS
1003 struct piece_closure *c
1004 = (struct piece_closure *) value_computed_closure (v);
052b9502 1005
88bfdde4
TT
1006 --c->refc;
1007 if (c->refc == 0)
1008 {
1009 xfree (c->pieces);
1010 xfree (c);
1011 }
052b9502
NF
1012}
1013
1014/* Functions for accessing a variable described by DW_OP_piece. */
1015static struct lval_funcs pieced_value_funcs = {
1016 read_pieced_value,
1017 write_pieced_value,
0e03807e
TT
1018 check_pieced_value_validity,
1019 check_pieced_value_invalid,
8cf6f0b1
TT
1020 indirect_pieced_value,
1021 check_pieced_synthetic_pointer,
052b9502
NF
1022 copy_pieced_value_closure,
1023 free_pieced_value_closure
1024};
1025
8cf6f0b1
TT
1026/* Helper function which throws an error if a synthetic pointer is
1027 invalid. */
1028
1029static void
1030invalid_synthetic_pointer (void)
1031{
3e43a32a
MS
1032 error (_("access outside bounds of object "
1033 "referenced via synthetic pointer"));
8cf6f0b1
TT
1034}
1035
4c2df51b 1036/* Evaluate a location description, starting at DATA and with length
8cf6f0b1
TT
1037 SIZE, to find the current location of variable of TYPE in the
1038 context of FRAME. BYTE_OFFSET is applied after the contents are
1039 computed. */
a2d33775 1040
8cf6f0b1
TT
1041static struct value *
1042dwarf2_evaluate_loc_desc_full (struct type *type, struct frame_info *frame,
1043 const gdb_byte *data, unsigned short size,
1044 struct dwarf2_per_cu_data *per_cu,
1045 LONGEST byte_offset)
4c2df51b 1046{
4c2df51b
DJ
1047 struct value *retval;
1048 struct dwarf_expr_baton baton;
1049 struct dwarf_expr_context *ctx;
4a227398 1050 struct cleanup *old_chain;
ac56253d 1051 struct objfile *objfile = dwarf2_per_cu_objfile (per_cu);
4c2df51b 1052
8cf6f0b1
TT
1053 if (byte_offset < 0)
1054 invalid_synthetic_pointer ();
1055
0d53c4c4
DJ
1056 if (size == 0)
1057 {
a2d33775 1058 retval = allocate_value (type);
0d53c4c4 1059 VALUE_LVAL (retval) = not_lval;
feb13ab0 1060 set_value_optimized_out (retval, 1);
10fb19b6 1061 return retval;
0d53c4c4
DJ
1062 }
1063
4c2df51b 1064 baton.frame = frame;
17ea53c3 1065 baton.per_cu = per_cu;
4c2df51b
DJ
1066
1067 ctx = new_dwarf_expr_context ();
4a227398
TT
1068 old_chain = make_cleanup_free_dwarf_expr_context (ctx);
1069
ac56253d 1070 ctx->gdbarch = get_objfile_arch (objfile);
ae0d2f24 1071 ctx->addr_size = dwarf2_per_cu_addr_size (per_cu);
9aa1f1e3 1072 ctx->offset = dwarf2_per_cu_text_offset (per_cu);
4c2df51b
DJ
1073 ctx->baton = &baton;
1074 ctx->read_reg = dwarf_expr_read_reg;
1075 ctx->read_mem = dwarf_expr_read_mem;
1076 ctx->get_frame_base = dwarf_expr_frame_base;
e7802207 1077 ctx->get_frame_cfa = dwarf_expr_frame_cfa;
8cf6f0b1 1078 ctx->get_frame_pc = dwarf_expr_frame_pc;
4c2df51b 1079 ctx->get_tls_address = dwarf_expr_tls_address;
5c631832 1080 ctx->dwarf_call = dwarf_expr_dwarf_call;
4c2df51b
DJ
1081
1082 dwarf_expr_eval (ctx, data, size);
87808bd6
JB
1083 if (ctx->num_pieces > 0)
1084 {
052b9502
NF
1085 struct piece_closure *c;
1086 struct frame_id frame_id = get_frame_id (frame);
8cf6f0b1
TT
1087 ULONGEST bit_size = 0;
1088 int i;
052b9502 1089
8cf6f0b1
TT
1090 for (i = 0; i < ctx->num_pieces; ++i)
1091 bit_size += ctx->pieces[i].size;
1092 if (8 * (byte_offset + TYPE_LENGTH (type)) > bit_size)
1093 invalid_synthetic_pointer ();
1094
1095 c = allocate_piece_closure (per_cu, ctx->num_pieces, ctx->pieces,
6063c216 1096 ctx->addr_size);
a2d33775 1097 retval = allocate_computed_value (type, &pieced_value_funcs, c);
052b9502 1098 VALUE_FRAME_ID (retval) = frame_id;
8cf6f0b1 1099 set_value_offset (retval, byte_offset);
87808bd6 1100 }
4c2df51b
DJ
1101 else
1102 {
cec03d70
TT
1103 switch (ctx->location)
1104 {
1105 case DWARF_VALUE_REGISTER:
1106 {
1107 struct gdbarch *arch = get_frame_arch (frame);
f2c7657e 1108 ULONGEST dwarf_regnum = dwarf_expr_fetch (ctx, 0);
cec03d70 1109 int gdb_regnum = gdbarch_dwarf2_reg_to_regnum (arch, dwarf_regnum);
9a619af0 1110
8cf6f0b1
TT
1111 if (byte_offset != 0)
1112 error (_("cannot use offset on synthetic pointer to register"));
63b4f126 1113 if (gdb_regnum != -1)
a2d33775 1114 retval = value_from_register (type, gdb_regnum, frame);
63b4f126 1115 else
a2d33775
JK
1116 error (_("Unable to access DWARF register number %s"),
1117 paddress (arch, dwarf_regnum));
cec03d70
TT
1118 }
1119 break;
1120
1121 case DWARF_VALUE_MEMORY:
1122 {
f2c7657e 1123 CORE_ADDR address = dwarf_expr_fetch_address (ctx, 0);
44353522 1124 int in_stack_memory = dwarf_expr_fetch_in_stack_memory (ctx, 0);
cec03d70 1125
41e8491f 1126 retval = allocate_value_lazy (type);
cec03d70 1127 VALUE_LVAL (retval) = lval_memory;
44353522
DE
1128 if (in_stack_memory)
1129 set_value_stack (retval, 1);
8cf6f0b1 1130 set_value_address (retval, address + byte_offset);
cec03d70
TT
1131 }
1132 break;
1133
1134 case DWARF_VALUE_STACK:
1135 {
f2c7657e 1136 ULONGEST value = dwarf_expr_fetch (ctx, 0);
8cf6f0b1 1137 bfd_byte *contents, *tem;
cec03d70
TT
1138 size_t n = ctx->addr_size;
1139
8cf6f0b1
TT
1140 if (byte_offset + TYPE_LENGTH (type) > n)
1141 invalid_synthetic_pointer ();
1142
1143 tem = alloca (n);
1144 store_unsigned_integer (tem, n,
1145 gdbarch_byte_order (ctx->gdbarch),
1146 value);
1147
1148 tem += byte_offset;
1149 n -= byte_offset;
1150
a2d33775 1151 retval = allocate_value (type);
cec03d70 1152 contents = value_contents_raw (retval);
a2d33775
JK
1153 if (n > TYPE_LENGTH (type))
1154 n = TYPE_LENGTH (type);
8cf6f0b1 1155 memcpy (contents, tem, n);
cec03d70
TT
1156 }
1157 break;
1158
1159 case DWARF_VALUE_LITERAL:
1160 {
1161 bfd_byte *contents;
8cf6f0b1 1162 const bfd_byte *data;
cec03d70
TT
1163 size_t n = ctx->len;
1164
8cf6f0b1
TT
1165 if (byte_offset + TYPE_LENGTH (type) > n)
1166 invalid_synthetic_pointer ();
1167
a2d33775 1168 retval = allocate_value (type);
cec03d70 1169 contents = value_contents_raw (retval);
8cf6f0b1
TT
1170
1171 data = ctx->data + byte_offset;
1172 n -= byte_offset;
1173
a2d33775
JK
1174 if (n > TYPE_LENGTH (type))
1175 n = TYPE_LENGTH (type);
8cf6f0b1 1176 memcpy (contents, data, n);
cec03d70
TT
1177 }
1178 break;
1179
8cf6f0b1
TT
1180 /* DWARF_VALUE_IMPLICIT_POINTER was converted to a pieced
1181 operation by execute_stack_op. */
1182 case DWARF_VALUE_IMPLICIT_POINTER:
cb826367
TT
1183 /* DWARF_VALUE_OPTIMIZED_OUT can't occur in this context --
1184 it can only be encountered when making a piece. */
1185 case DWARF_VALUE_OPTIMIZED_OUT:
cec03d70
TT
1186 default:
1187 internal_error (__FILE__, __LINE__, _("invalid location type"));
1188 }
4c2df51b
DJ
1189 }
1190
42be36b3
CT
1191 set_value_initialized (retval, ctx->initialized);
1192
4a227398 1193 do_cleanups (old_chain);
4c2df51b
DJ
1194
1195 return retval;
1196}
8cf6f0b1
TT
1197
1198/* The exported interface to dwarf2_evaluate_loc_desc_full; it always
1199 passes 0 as the byte_offset. */
1200
1201struct value *
1202dwarf2_evaluate_loc_desc (struct type *type, struct frame_info *frame,
1203 const gdb_byte *data, unsigned short size,
1204 struct dwarf2_per_cu_data *per_cu)
1205{
1206 return dwarf2_evaluate_loc_desc_full (type, frame, data, size, per_cu, 0);
1207}
1208
4c2df51b
DJ
1209\f
1210/* Helper functions and baton for dwarf2_loc_desc_needs_frame. */
1211
1212struct needs_frame_baton
1213{
1214 int needs_frame;
17ea53c3 1215 struct dwarf2_per_cu_data *per_cu;
4c2df51b
DJ
1216};
1217
1218/* Reads from registers do require a frame. */
1219static CORE_ADDR
61fbb938 1220needs_frame_read_reg (void *baton, int regnum)
4c2df51b
DJ
1221{
1222 struct needs_frame_baton *nf_baton = baton;
9a619af0 1223
4c2df51b
DJ
1224 nf_baton->needs_frame = 1;
1225 return 1;
1226}
1227
1228/* Reads from memory do not require a frame. */
1229static void
852483bc 1230needs_frame_read_mem (void *baton, gdb_byte *buf, CORE_ADDR addr, size_t len)
4c2df51b
DJ
1231{
1232 memset (buf, 0, len);
1233}
1234
1235/* Frame-relative accesses do require a frame. */
1236static void
0d45f56e 1237needs_frame_frame_base (void *baton, const gdb_byte **start, size_t * length)
4c2df51b 1238{
852483bc 1239 static gdb_byte lit0 = DW_OP_lit0;
4c2df51b
DJ
1240 struct needs_frame_baton *nf_baton = baton;
1241
1242 *start = &lit0;
1243 *length = 1;
1244
1245 nf_baton->needs_frame = 1;
1246}
1247
e7802207
TT
1248/* CFA accesses require a frame. */
1249
1250static CORE_ADDR
1251needs_frame_frame_cfa (void *baton)
1252{
1253 struct needs_frame_baton *nf_baton = baton;
9a619af0 1254
e7802207
TT
1255 nf_baton->needs_frame = 1;
1256 return 1;
1257}
1258
4c2df51b
DJ
1259/* Thread-local accesses do require a frame. */
1260static CORE_ADDR
1261needs_frame_tls_address (void *baton, CORE_ADDR offset)
1262{
1263 struct needs_frame_baton *nf_baton = baton;
9a619af0 1264
4c2df51b
DJ
1265 nf_baton->needs_frame = 1;
1266 return 1;
1267}
1268
5c631832
JK
1269/* Helper interface of per_cu_dwarf_call for dwarf2_loc_desc_needs_frame. */
1270
1271static void
1272needs_frame_dwarf_call (struct dwarf_expr_context *ctx, size_t die_offset)
1273{
1274 struct needs_frame_baton *nf_baton = ctx->baton;
1275
8cf6f0b1
TT
1276 return per_cu_dwarf_call (ctx, die_offset, nf_baton->per_cu,
1277 ctx->get_frame_pc, ctx->baton);
5c631832
JK
1278}
1279
4c2df51b
DJ
1280/* Return non-zero iff the location expression at DATA (length SIZE)
1281 requires a frame to evaluate. */
1282
1283static int
947bb88f 1284dwarf2_loc_desc_needs_frame (const gdb_byte *data, unsigned short size,
ae0d2f24 1285 struct dwarf2_per_cu_data *per_cu)
4c2df51b
DJ
1286{
1287 struct needs_frame_baton baton;
1288 struct dwarf_expr_context *ctx;
f630a401 1289 int in_reg;
4a227398 1290 struct cleanup *old_chain;
ac56253d 1291 struct objfile *objfile = dwarf2_per_cu_objfile (per_cu);
4c2df51b
DJ
1292
1293 baton.needs_frame = 0;
17ea53c3 1294 baton.per_cu = per_cu;
4c2df51b
DJ
1295
1296 ctx = new_dwarf_expr_context ();
4a227398
TT
1297 old_chain = make_cleanup_free_dwarf_expr_context (ctx);
1298
ac56253d 1299 ctx->gdbarch = get_objfile_arch (objfile);
ae0d2f24 1300 ctx->addr_size = dwarf2_per_cu_addr_size (per_cu);
9aa1f1e3 1301 ctx->offset = dwarf2_per_cu_text_offset (per_cu);
4c2df51b
DJ
1302 ctx->baton = &baton;
1303 ctx->read_reg = needs_frame_read_reg;
1304 ctx->read_mem = needs_frame_read_mem;
1305 ctx->get_frame_base = needs_frame_frame_base;
e7802207 1306 ctx->get_frame_cfa = needs_frame_frame_cfa;
8cf6f0b1 1307 ctx->get_frame_pc = needs_frame_frame_cfa;
4c2df51b 1308 ctx->get_tls_address = needs_frame_tls_address;
5c631832 1309 ctx->dwarf_call = needs_frame_dwarf_call;
4c2df51b
DJ
1310
1311 dwarf_expr_eval (ctx, data, size);
1312
cec03d70 1313 in_reg = ctx->location == DWARF_VALUE_REGISTER;
f630a401 1314
87808bd6
JB
1315 if (ctx->num_pieces > 0)
1316 {
1317 int i;
1318
1319 /* If the location has several pieces, and any of them are in
1320 registers, then we will need a frame to fetch them from. */
1321 for (i = 0; i < ctx->num_pieces; i++)
cec03d70 1322 if (ctx->pieces[i].location == DWARF_VALUE_REGISTER)
87808bd6
JB
1323 in_reg = 1;
1324 }
1325
4a227398 1326 do_cleanups (old_chain);
4c2df51b 1327
f630a401 1328 return baton.needs_frame || in_reg;
4c2df51b
DJ
1329}
1330
3cf03773
TT
1331/* A helper function that throws an unimplemented error mentioning a
1332 given DWARF operator. */
1333
1334static void
1335unimplemented (unsigned int op)
0d53c4c4 1336{
b1bfef65
TT
1337 const char *name = dwarf_stack_op_name (op);
1338
1339 if (name)
1340 error (_("DWARF operator %s cannot be translated to an agent expression"),
1341 name);
1342 else
1ba1b353
TT
1343 error (_("Unknown DWARF operator 0x%02x cannot be translated "
1344 "to an agent expression"),
b1bfef65 1345 op);
3cf03773 1346}
08922a10 1347
3cf03773
TT
1348/* A helper function to convert a DWARF register to an arch register.
1349 ARCH is the architecture.
1350 DWARF_REG is the register.
1351 This will throw an exception if the DWARF register cannot be
1352 translated to an architecture register. */
08922a10 1353
3cf03773
TT
1354static int
1355translate_register (struct gdbarch *arch, int dwarf_reg)
1356{
1357 int reg = gdbarch_dwarf2_reg_to_regnum (arch, dwarf_reg);
1358 if (reg == -1)
1359 error (_("Unable to access DWARF register number %d"), dwarf_reg);
1360 return reg;
1361}
08922a10 1362
3cf03773
TT
1363/* A helper function that emits an access to memory. ARCH is the
1364 target architecture. EXPR is the expression which we are building.
1365 NBITS is the number of bits we want to read. This emits the
1366 opcodes needed to read the memory and then extract the desired
1367 bits. */
08922a10 1368
3cf03773
TT
1369static void
1370access_memory (struct gdbarch *arch, struct agent_expr *expr, ULONGEST nbits)
08922a10 1371{
3cf03773
TT
1372 ULONGEST nbytes = (nbits + 7) / 8;
1373
1374 gdb_assert (nbits > 0 && nbits <= sizeof (LONGEST));
1375
1376 if (trace_kludge)
1377 ax_trace_quick (expr, nbytes);
1378
1379 if (nbits <= 8)
1380 ax_simple (expr, aop_ref8);
1381 else if (nbits <= 16)
1382 ax_simple (expr, aop_ref16);
1383 else if (nbits <= 32)
1384 ax_simple (expr, aop_ref32);
1385 else
1386 ax_simple (expr, aop_ref64);
1387
1388 /* If we read exactly the number of bytes we wanted, we're done. */
1389 if (8 * nbytes == nbits)
1390 return;
1391
1392 if (gdbarch_bits_big_endian (arch))
0d53c4c4 1393 {
3cf03773
TT
1394 /* On a bits-big-endian machine, we want the high-order
1395 NBITS. */
1396 ax_const_l (expr, 8 * nbytes - nbits);
1397 ax_simple (expr, aop_rsh_unsigned);
0d53c4c4 1398 }
3cf03773 1399 else
0d53c4c4 1400 {
3cf03773
TT
1401 /* On a bits-little-endian box, we want the low-order NBITS. */
1402 ax_zero_ext (expr, nbits);
0d53c4c4 1403 }
3cf03773 1404}
0936ad1d 1405
8cf6f0b1
TT
1406/* A helper function to return the frame's PC. */
1407
1408static CORE_ADDR
1409get_ax_pc (void *baton)
1410{
1411 struct agent_expr *expr = baton;
1412
1413 return expr->scope;
1414}
1415
3cf03773
TT
1416/* Compile a DWARF location expression to an agent expression.
1417
1418 EXPR is the agent expression we are building.
1419 LOC is the agent value we modify.
1420 ARCH is the architecture.
1421 ADDR_SIZE is the size of addresses, in bytes.
1422 OP_PTR is the start of the location expression.
1423 OP_END is one past the last byte of the location expression.
1424
1425 This will throw an exception for various kinds of errors -- for
1426 example, if the expression cannot be compiled, or if the expression
1427 is invalid. */
0936ad1d 1428
3cf03773
TT
1429static void
1430compile_dwarf_to_ax (struct agent_expr *expr, struct axs_value *loc,
1431 struct gdbarch *arch, unsigned int addr_size,
1432 const gdb_byte *op_ptr, const gdb_byte *op_end,
1433 struct dwarf2_per_cu_data *per_cu)
1434{
1435 struct cleanup *cleanups;
1436 int i, *offsets;
1437 VEC(int) *dw_labels = NULL, *patches = NULL;
1438 const gdb_byte * const base = op_ptr;
1439 const gdb_byte *previous_piece = op_ptr;
1440 enum bfd_endian byte_order = gdbarch_byte_order (arch);
1441 ULONGEST bits_collected = 0;
1442 unsigned int addr_size_bits = 8 * addr_size;
1443 int bits_big_endian = gdbarch_bits_big_endian (arch);
0936ad1d 1444
3cf03773
TT
1445 offsets = xmalloc ((op_end - op_ptr) * sizeof (int));
1446 cleanups = make_cleanup (xfree, offsets);
0936ad1d 1447
3cf03773
TT
1448 for (i = 0; i < op_end - op_ptr; ++i)
1449 offsets[i] = -1;
0936ad1d 1450
3cf03773
TT
1451 make_cleanup (VEC_cleanup (int), &dw_labels);
1452 make_cleanup (VEC_cleanup (int), &patches);
0936ad1d 1453
3cf03773
TT
1454 /* By default we are making an address. */
1455 loc->kind = axs_lvalue_memory;
0d45f56e 1456
3cf03773
TT
1457 while (op_ptr < op_end)
1458 {
1459 enum dwarf_location_atom op = *op_ptr;
3cf03773
TT
1460 ULONGEST uoffset, reg;
1461 LONGEST offset;
1462 int i;
1463
1464 offsets[op_ptr - base] = expr->len;
1465 ++op_ptr;
1466
1467 /* Our basic approach to code generation is to map DWARF
1468 operations directly to AX operations. However, there are
1469 some differences.
1470
1471 First, DWARF works on address-sized units, but AX always uses
1472 LONGEST. For most operations we simply ignore this
1473 difference; instead we generate sign extensions as needed
1474 before division and comparison operations. It would be nice
1475 to omit the sign extensions, but there is no way to determine
1476 the size of the target's LONGEST. (This code uses the size
1477 of the host LONGEST in some cases -- that is a bug but it is
1478 difficult to fix.)
1479
1480 Second, some DWARF operations cannot be translated to AX.
1481 For these we simply fail. See
1482 http://sourceware.org/bugzilla/show_bug.cgi?id=11662. */
1483 switch (op)
0936ad1d 1484 {
3cf03773
TT
1485 case DW_OP_lit0:
1486 case DW_OP_lit1:
1487 case DW_OP_lit2:
1488 case DW_OP_lit3:
1489 case DW_OP_lit4:
1490 case DW_OP_lit5:
1491 case DW_OP_lit6:
1492 case DW_OP_lit7:
1493 case DW_OP_lit8:
1494 case DW_OP_lit9:
1495 case DW_OP_lit10:
1496 case DW_OP_lit11:
1497 case DW_OP_lit12:
1498 case DW_OP_lit13:
1499 case DW_OP_lit14:
1500 case DW_OP_lit15:
1501 case DW_OP_lit16:
1502 case DW_OP_lit17:
1503 case DW_OP_lit18:
1504 case DW_OP_lit19:
1505 case DW_OP_lit20:
1506 case DW_OP_lit21:
1507 case DW_OP_lit22:
1508 case DW_OP_lit23:
1509 case DW_OP_lit24:
1510 case DW_OP_lit25:
1511 case DW_OP_lit26:
1512 case DW_OP_lit27:
1513 case DW_OP_lit28:
1514 case DW_OP_lit29:
1515 case DW_OP_lit30:
1516 case DW_OP_lit31:
1517 ax_const_l (expr, op - DW_OP_lit0);
1518 break;
0d53c4c4 1519
3cf03773 1520 case DW_OP_addr:
ac56253d 1521 uoffset = extract_unsigned_integer (op_ptr, addr_size, byte_order);
3cf03773 1522 op_ptr += addr_size;
ac56253d
TT
1523 /* Some versions of GCC emit DW_OP_addr before
1524 DW_OP_GNU_push_tls_address. In this case the value is an
1525 index, not an address. We don't support things like
1526 branching between the address and the TLS op. */
1527 if (op_ptr >= op_end || *op_ptr != DW_OP_GNU_push_tls_address)
9aa1f1e3 1528 uoffset += dwarf2_per_cu_text_offset (per_cu);
ac56253d 1529 ax_const_l (expr, uoffset);
3cf03773 1530 break;
4c2df51b 1531
3cf03773
TT
1532 case DW_OP_const1u:
1533 ax_const_l (expr, extract_unsigned_integer (op_ptr, 1, byte_order));
1534 op_ptr += 1;
1535 break;
1536 case DW_OP_const1s:
1537 ax_const_l (expr, extract_signed_integer (op_ptr, 1, byte_order));
1538 op_ptr += 1;
1539 break;
1540 case DW_OP_const2u:
1541 ax_const_l (expr, extract_unsigned_integer (op_ptr, 2, byte_order));
1542 op_ptr += 2;
1543 break;
1544 case DW_OP_const2s:
1545 ax_const_l (expr, extract_signed_integer (op_ptr, 2, byte_order));
1546 op_ptr += 2;
1547 break;
1548 case DW_OP_const4u:
1549 ax_const_l (expr, extract_unsigned_integer (op_ptr, 4, byte_order));
1550 op_ptr += 4;
1551 break;
1552 case DW_OP_const4s:
1553 ax_const_l (expr, extract_signed_integer (op_ptr, 4, byte_order));
1554 op_ptr += 4;
1555 break;
1556 case DW_OP_const8u:
1557 ax_const_l (expr, extract_unsigned_integer (op_ptr, 8, byte_order));
1558 op_ptr += 8;
1559 break;
1560 case DW_OP_const8s:
1561 ax_const_l (expr, extract_signed_integer (op_ptr, 8, byte_order));
1562 op_ptr += 8;
1563 break;
1564 case DW_OP_constu:
1565 op_ptr = read_uleb128 (op_ptr, op_end, &uoffset);
1566 ax_const_l (expr, uoffset);
1567 break;
1568 case DW_OP_consts:
1569 op_ptr = read_sleb128 (op_ptr, op_end, &offset);
1570 ax_const_l (expr, offset);
1571 break;
9c238357 1572
3cf03773
TT
1573 case DW_OP_reg0:
1574 case DW_OP_reg1:
1575 case DW_OP_reg2:
1576 case DW_OP_reg3:
1577 case DW_OP_reg4:
1578 case DW_OP_reg5:
1579 case DW_OP_reg6:
1580 case DW_OP_reg7:
1581 case DW_OP_reg8:
1582 case DW_OP_reg9:
1583 case DW_OP_reg10:
1584 case DW_OP_reg11:
1585 case DW_OP_reg12:
1586 case DW_OP_reg13:
1587 case DW_OP_reg14:
1588 case DW_OP_reg15:
1589 case DW_OP_reg16:
1590 case DW_OP_reg17:
1591 case DW_OP_reg18:
1592 case DW_OP_reg19:
1593 case DW_OP_reg20:
1594 case DW_OP_reg21:
1595 case DW_OP_reg22:
1596 case DW_OP_reg23:
1597 case DW_OP_reg24:
1598 case DW_OP_reg25:
1599 case DW_OP_reg26:
1600 case DW_OP_reg27:
1601 case DW_OP_reg28:
1602 case DW_OP_reg29:
1603 case DW_OP_reg30:
1604 case DW_OP_reg31:
1605 dwarf_expr_require_composition (op_ptr, op_end, "DW_OP_regx");
1606 loc->u.reg = translate_register (arch, op - DW_OP_reg0);
1607 loc->kind = axs_lvalue_register;
1608 break;
9c238357 1609
3cf03773
TT
1610 case DW_OP_regx:
1611 op_ptr = read_uleb128 (op_ptr, op_end, &reg);
1612 dwarf_expr_require_composition (op_ptr, op_end, "DW_OP_regx");
1613 loc->u.reg = translate_register (arch, reg);
1614 loc->kind = axs_lvalue_register;
1615 break;
08922a10 1616
3cf03773
TT
1617 case DW_OP_implicit_value:
1618 {
1619 ULONGEST len;
1620
1621 op_ptr = read_uleb128 (op_ptr, op_end, &len);
1622 if (op_ptr + len > op_end)
1623 error (_("DW_OP_implicit_value: too few bytes available."));
1624 if (len > sizeof (ULONGEST))
1625 error (_("Cannot translate DW_OP_implicit_value of %d bytes"),
1626 (int) len);
1627
1628 ax_const_l (expr, extract_unsigned_integer (op_ptr, len,
1629 byte_order));
1630 op_ptr += len;
1631 dwarf_expr_require_composition (op_ptr, op_end,
1632 "DW_OP_implicit_value");
1633
1634 loc->kind = axs_rvalue;
1635 }
1636 break;
08922a10 1637
3cf03773
TT
1638 case DW_OP_stack_value:
1639 dwarf_expr_require_composition (op_ptr, op_end, "DW_OP_stack_value");
1640 loc->kind = axs_rvalue;
1641 break;
08922a10 1642
3cf03773
TT
1643 case DW_OP_breg0:
1644 case DW_OP_breg1:
1645 case DW_OP_breg2:
1646 case DW_OP_breg3:
1647 case DW_OP_breg4:
1648 case DW_OP_breg5:
1649 case DW_OP_breg6:
1650 case DW_OP_breg7:
1651 case DW_OP_breg8:
1652 case DW_OP_breg9:
1653 case DW_OP_breg10:
1654 case DW_OP_breg11:
1655 case DW_OP_breg12:
1656 case DW_OP_breg13:
1657 case DW_OP_breg14:
1658 case DW_OP_breg15:
1659 case DW_OP_breg16:
1660 case DW_OP_breg17:
1661 case DW_OP_breg18:
1662 case DW_OP_breg19:
1663 case DW_OP_breg20:
1664 case DW_OP_breg21:
1665 case DW_OP_breg22:
1666 case DW_OP_breg23:
1667 case DW_OP_breg24:
1668 case DW_OP_breg25:
1669 case DW_OP_breg26:
1670 case DW_OP_breg27:
1671 case DW_OP_breg28:
1672 case DW_OP_breg29:
1673 case DW_OP_breg30:
1674 case DW_OP_breg31:
1675 op_ptr = read_sleb128 (op_ptr, op_end, &offset);
1676 i = translate_register (arch, op - DW_OP_breg0);
1677 ax_reg (expr, i);
1678 if (offset != 0)
1679 {
1680 ax_const_l (expr, offset);
1681 ax_simple (expr, aop_add);
1682 }
1683 break;
1684 case DW_OP_bregx:
1685 {
1686 op_ptr = read_uleb128 (op_ptr, op_end, &reg);
1687 op_ptr = read_sleb128 (op_ptr, op_end, &offset);
1688 i = translate_register (arch, reg);
1689 ax_reg (expr, i);
1690 if (offset != 0)
1691 {
1692 ax_const_l (expr, offset);
1693 ax_simple (expr, aop_add);
1694 }
1695 }
1696 break;
1697 case DW_OP_fbreg:
1698 {
1699 const gdb_byte *datastart;
1700 size_t datalen;
1701 unsigned int before_stack_len;
1702 struct block *b;
1703 struct symbol *framefunc;
1704 LONGEST base_offset = 0;
08922a10 1705
3cf03773
TT
1706 b = block_for_pc (expr->scope);
1707
1708 if (!b)
1709 error (_("No block found for address"));
1710
1711 framefunc = block_linkage_function (b);
1712
1713 if (!framefunc)
1714 error (_("No function found for block"));
1715
1716 dwarf_expr_frame_base_1 (framefunc, expr->scope,
1717 &datastart, &datalen);
1718
1719 op_ptr = read_sleb128 (op_ptr, op_end, &offset);
1720 compile_dwarf_to_ax (expr, loc, arch, addr_size, datastart,
1721 datastart + datalen, per_cu);
1722
1723 if (offset != 0)
1724 {
1725 ax_const_l (expr, offset);
1726 ax_simple (expr, aop_add);
1727 }
1728
1729 loc->kind = axs_lvalue_memory;
1730 }
08922a10 1731 break;
08922a10 1732
3cf03773
TT
1733 case DW_OP_dup:
1734 ax_simple (expr, aop_dup);
1735 break;
08922a10 1736
3cf03773
TT
1737 case DW_OP_drop:
1738 ax_simple (expr, aop_pop);
1739 break;
08922a10 1740
3cf03773
TT
1741 case DW_OP_pick:
1742 offset = *op_ptr++;
1743 unimplemented (op);
1744 break;
1745
1746 case DW_OP_swap:
1747 ax_simple (expr, aop_swap);
1748 break;
08922a10 1749
3cf03773
TT
1750 case DW_OP_over:
1751 /* We can't directly support DW_OP_over, but GCC emits it as
1752 part of a sequence to implement signed modulus. As a
1753 hack, we recognize this sequence. Note that if GCC ever
1754 generates a branch to the middle of this sequence, then
1755 we will die somehow. */
1756 if (op_end - op_ptr >= 4
1757 && op_ptr[0] == DW_OP_over
1758 && op_ptr[1] == DW_OP_div
1759 && op_ptr[2] == DW_OP_mul
1760 && op_ptr[3] == DW_OP_minus)
1761 {
1762 /* Sign extend the operands. */
1763 ax_ext (expr, addr_size_bits);
1764 ax_simple (expr, aop_swap);
1765 ax_ext (expr, addr_size_bits);
1766 ax_simple (expr, aop_swap);
1767 ax_simple (expr, aop_rem_signed);
1768 op_ptr += 4;
1769 }
1770 else
1771 unimplemented (op);
1772 break;
08922a10 1773
3cf03773
TT
1774 case DW_OP_rot:
1775 unimplemented (op);
1776 break;
08922a10 1777
3cf03773
TT
1778 case DW_OP_deref:
1779 case DW_OP_deref_size:
1780 {
1781 int size;
08922a10 1782
3cf03773
TT
1783 if (op == DW_OP_deref_size)
1784 size = *op_ptr++;
1785 else
1786 size = addr_size;
1787
1788 switch (size)
1789 {
1790 case 8:
1791 ax_simple (expr, aop_ref8);
1792 break;
1793 case 16:
1794 ax_simple (expr, aop_ref16);
1795 break;
1796 case 32:
1797 ax_simple (expr, aop_ref32);
1798 break;
1799 case 64:
1800 ax_simple (expr, aop_ref64);
1801 break;
1802 default:
b1bfef65
TT
1803 /* Note that dwarf_stack_op_name will never return
1804 NULL here. */
3cf03773 1805 error (_("Unsupported size %d in %s"),
b1bfef65 1806 size, dwarf_stack_op_name (op));
3cf03773
TT
1807 }
1808 }
1809 break;
1810
1811 case DW_OP_abs:
1812 /* Sign extend the operand. */
1813 ax_ext (expr, addr_size_bits);
1814 ax_simple (expr, aop_dup);
1815 ax_const_l (expr, 0);
1816 ax_simple (expr, aop_less_signed);
1817 ax_simple (expr, aop_log_not);
1818 i = ax_goto (expr, aop_if_goto);
1819 /* We have to emit 0 - X. */
1820 ax_const_l (expr, 0);
1821 ax_simple (expr, aop_swap);
1822 ax_simple (expr, aop_sub);
1823 ax_label (expr, i, expr->len);
1824 break;
1825
1826 case DW_OP_neg:
1827 /* No need to sign extend here. */
1828 ax_const_l (expr, 0);
1829 ax_simple (expr, aop_swap);
1830 ax_simple (expr, aop_sub);
1831 break;
1832
1833 case DW_OP_not:
1834 /* Sign extend the operand. */
1835 ax_ext (expr, addr_size_bits);
1836 ax_simple (expr, aop_bit_not);
1837 break;
1838
1839 case DW_OP_plus_uconst:
1840 op_ptr = read_uleb128 (op_ptr, op_end, &reg);
1841 /* It would be really weird to emit `DW_OP_plus_uconst 0',
1842 but we micro-optimize anyhow. */
1843 if (reg != 0)
1844 {
1845 ax_const_l (expr, reg);
1846 ax_simple (expr, aop_add);
1847 }
1848 break;
1849
1850 case DW_OP_and:
1851 ax_simple (expr, aop_bit_and);
1852 break;
1853
1854 case DW_OP_div:
1855 /* Sign extend the operands. */
1856 ax_ext (expr, addr_size_bits);
1857 ax_simple (expr, aop_swap);
1858 ax_ext (expr, addr_size_bits);
1859 ax_simple (expr, aop_swap);
1860 ax_simple (expr, aop_div_signed);
08922a10
SS
1861 break;
1862
3cf03773
TT
1863 case DW_OP_minus:
1864 ax_simple (expr, aop_sub);
1865 break;
1866
1867 case DW_OP_mod:
1868 ax_simple (expr, aop_rem_unsigned);
1869 break;
1870
1871 case DW_OP_mul:
1872 ax_simple (expr, aop_mul);
1873 break;
1874
1875 case DW_OP_or:
1876 ax_simple (expr, aop_bit_or);
1877 break;
1878
1879 case DW_OP_plus:
1880 ax_simple (expr, aop_add);
1881 break;
1882
1883 case DW_OP_shl:
1884 ax_simple (expr, aop_lsh);
1885 break;
1886
1887 case DW_OP_shr:
1888 ax_simple (expr, aop_rsh_unsigned);
1889 break;
1890
1891 case DW_OP_shra:
1892 ax_simple (expr, aop_rsh_signed);
1893 break;
1894
1895 case DW_OP_xor:
1896 ax_simple (expr, aop_bit_xor);
1897 break;
1898
1899 case DW_OP_le:
1900 /* Sign extend the operands. */
1901 ax_ext (expr, addr_size_bits);
1902 ax_simple (expr, aop_swap);
1903 ax_ext (expr, addr_size_bits);
1904 /* Note no swap here: A <= B is !(B < A). */
1905 ax_simple (expr, aop_less_signed);
1906 ax_simple (expr, aop_log_not);
1907 break;
1908
1909 case DW_OP_ge:
1910 /* Sign extend the operands. */
1911 ax_ext (expr, addr_size_bits);
1912 ax_simple (expr, aop_swap);
1913 ax_ext (expr, addr_size_bits);
1914 ax_simple (expr, aop_swap);
1915 /* A >= B is !(A < B). */
1916 ax_simple (expr, aop_less_signed);
1917 ax_simple (expr, aop_log_not);
1918 break;
1919
1920 case DW_OP_eq:
1921 /* Sign extend the operands. */
1922 ax_ext (expr, addr_size_bits);
1923 ax_simple (expr, aop_swap);
1924 ax_ext (expr, addr_size_bits);
1925 /* No need for a second swap here. */
1926 ax_simple (expr, aop_equal);
1927 break;
1928
1929 case DW_OP_lt:
1930 /* Sign extend the operands. */
1931 ax_ext (expr, addr_size_bits);
1932 ax_simple (expr, aop_swap);
1933 ax_ext (expr, addr_size_bits);
1934 ax_simple (expr, aop_swap);
1935 ax_simple (expr, aop_less_signed);
1936 break;
1937
1938 case DW_OP_gt:
1939 /* Sign extend the operands. */
1940 ax_ext (expr, addr_size_bits);
1941 ax_simple (expr, aop_swap);
1942 ax_ext (expr, addr_size_bits);
1943 /* Note no swap here: A > B is B < A. */
1944 ax_simple (expr, aop_less_signed);
1945 break;
1946
1947 case DW_OP_ne:
1948 /* Sign extend the operands. */
1949 ax_ext (expr, addr_size_bits);
1950 ax_simple (expr, aop_swap);
1951 ax_ext (expr, addr_size_bits);
1952 /* No need for a swap here. */
1953 ax_simple (expr, aop_equal);
1954 ax_simple (expr, aop_log_not);
1955 break;
1956
1957 case DW_OP_call_frame_cfa:
1958 unimplemented (op);
1959 break;
1960
1961 case DW_OP_GNU_push_tls_address:
1962 unimplemented (op);
1963 break;
1964
1965 case DW_OP_skip:
1966 offset = extract_signed_integer (op_ptr, 2, byte_order);
1967 op_ptr += 2;
1968 i = ax_goto (expr, aop_goto);
1969 VEC_safe_push (int, dw_labels, op_ptr + offset - base);
1970 VEC_safe_push (int, patches, i);
1971 break;
1972
1973 case DW_OP_bra:
1974 offset = extract_signed_integer (op_ptr, 2, byte_order);
1975 op_ptr += 2;
1976 /* Zero extend the operand. */
1977 ax_zero_ext (expr, addr_size_bits);
1978 i = ax_goto (expr, aop_if_goto);
1979 VEC_safe_push (int, dw_labels, op_ptr + offset - base);
1980 VEC_safe_push (int, patches, i);
1981 break;
1982
1983 case DW_OP_nop:
1984 break;
1985
1986 case DW_OP_piece:
1987 case DW_OP_bit_piece:
08922a10 1988 {
3cf03773
TT
1989 ULONGEST size, offset;
1990
1991 if (op_ptr - 1 == previous_piece)
1992 error (_("Cannot translate empty pieces to agent expressions"));
1993 previous_piece = op_ptr - 1;
1994
1995 op_ptr = read_uleb128 (op_ptr, op_end, &size);
1996 if (op == DW_OP_piece)
1997 {
1998 size *= 8;
1999 offset = 0;
2000 }
2001 else
2002 op_ptr = read_uleb128 (op_ptr, op_end, &offset);
08922a10 2003
3cf03773
TT
2004 if (bits_collected + size > 8 * sizeof (LONGEST))
2005 error (_("Expression pieces exceed word size"));
2006
2007 /* Access the bits. */
2008 switch (loc->kind)
2009 {
2010 case axs_lvalue_register:
2011 ax_reg (expr, loc->u.reg);
2012 break;
2013
2014 case axs_lvalue_memory:
2015 /* Offset the pointer, if needed. */
2016 if (offset > 8)
2017 {
2018 ax_const_l (expr, offset / 8);
2019 ax_simple (expr, aop_add);
2020 offset %= 8;
2021 }
2022 access_memory (arch, expr, size);
2023 break;
2024 }
2025
2026 /* For a bits-big-endian target, shift up what we already
2027 have. For a bits-little-endian target, shift up the
2028 new data. Note that there is a potential bug here if
2029 the DWARF expression leaves multiple values on the
2030 stack. */
2031 if (bits_collected > 0)
2032 {
2033 if (bits_big_endian)
2034 {
2035 ax_simple (expr, aop_swap);
2036 ax_const_l (expr, size);
2037 ax_simple (expr, aop_lsh);
2038 /* We don't need a second swap here, because
2039 aop_bit_or is symmetric. */
2040 }
2041 else
2042 {
2043 ax_const_l (expr, size);
2044 ax_simple (expr, aop_lsh);
2045 }
2046 ax_simple (expr, aop_bit_or);
2047 }
2048
2049 bits_collected += size;
2050 loc->kind = axs_rvalue;
08922a10
SS
2051 }
2052 break;
08922a10 2053
3cf03773
TT
2054 case DW_OP_GNU_uninit:
2055 unimplemented (op);
2056
2057 case DW_OP_call2:
2058 case DW_OP_call4:
2059 {
2060 struct dwarf2_locexpr_baton block;
2061 int size = (op == DW_OP_call2 ? 2 : 4);
2062
2063 uoffset = extract_unsigned_integer (op_ptr, size, byte_order);
2064 op_ptr += size;
2065
8cf6f0b1
TT
2066 block = dwarf2_fetch_die_location_block (uoffset, per_cu,
2067 get_ax_pc, expr);
3cf03773
TT
2068
2069 /* DW_OP_call_ref is currently not supported. */
2070 gdb_assert (block.per_cu == per_cu);
2071
2072 compile_dwarf_to_ax (expr, loc, arch, addr_size,
2073 block.data, block.data + block.size,
2074 per_cu);
2075 }
2076 break;
2077
2078 case DW_OP_call_ref:
2079 unimplemented (op);
2080
2081 default:
b1bfef65 2082 unimplemented (op);
08922a10 2083 }
08922a10 2084 }
3cf03773
TT
2085
2086 /* Patch all the branches we emitted. */
2087 for (i = 0; i < VEC_length (int, patches); ++i)
2088 {
2089 int targ = offsets[VEC_index (int, dw_labels, i)];
2090 if (targ == -1)
2091 internal_error (__FILE__, __LINE__, _("invalid label"));
2092 ax_label (expr, VEC_index (int, patches, i), targ);
2093 }
2094
2095 do_cleanups (cleanups);
08922a10
SS
2096}
2097
4c2df51b
DJ
2098\f
2099/* Return the value of SYMBOL in FRAME using the DWARF-2 expression
2100 evaluator to calculate the location. */
2101static struct value *
2102locexpr_read_variable (struct symbol *symbol, struct frame_info *frame)
2103{
2104 struct dwarf2_locexpr_baton *dlbaton = SYMBOL_LOCATION_BATON (symbol);
2105 struct value *val;
9a619af0 2106
a2d33775
JK
2107 val = dwarf2_evaluate_loc_desc (SYMBOL_TYPE (symbol), frame, dlbaton->data,
2108 dlbaton->size, dlbaton->per_cu);
4c2df51b
DJ
2109
2110 return val;
2111}
2112
2113/* Return non-zero iff we need a frame to evaluate SYMBOL. */
2114static int
2115locexpr_read_needs_frame (struct symbol *symbol)
2116{
2117 struct dwarf2_locexpr_baton *dlbaton = SYMBOL_LOCATION_BATON (symbol);
9a619af0 2118
ae0d2f24
UW
2119 return dwarf2_loc_desc_needs_frame (dlbaton->data, dlbaton->size,
2120 dlbaton->per_cu);
4c2df51b
DJ
2121}
2122
9eae7c52
TT
2123/* Return true if DATA points to the end of a piece. END is one past
2124 the last byte in the expression. */
2125
2126static int
2127piece_end_p (const gdb_byte *data, const gdb_byte *end)
2128{
2129 return data == end || data[0] == DW_OP_piece || data[0] == DW_OP_bit_piece;
2130}
2131
2132/* Nicely describe a single piece of a location, returning an updated
2133 position in the bytecode sequence. This function cannot recognize
2134 all locations; if a location is not recognized, it simply returns
2135 DATA. */
08922a10 2136
0d45f56e 2137static const gdb_byte *
08922a10
SS
2138locexpr_describe_location_piece (struct symbol *symbol, struct ui_file *stream,
2139 CORE_ADDR addr, struct objfile *objfile,
9eae7c52 2140 const gdb_byte *data, const gdb_byte *end,
0d45f56e 2141 unsigned int addr_size)
4c2df51b 2142{
08922a10
SS
2143 struct gdbarch *gdbarch = get_objfile_arch (objfile);
2144 int regno;
2145
2146 if (data[0] >= DW_OP_reg0 && data[0] <= DW_OP_reg31)
2147 {
2148 regno = gdbarch_dwarf2_reg_to_regnum (gdbarch, data[0] - DW_OP_reg0);
2149 fprintf_filtered (stream, _("a variable in $%s"),
2150 gdbarch_register_name (gdbarch, regno));
2151 data += 1;
2152 }
2153 else if (data[0] == DW_OP_regx)
2154 {
2155 ULONGEST reg;
4c2df51b 2156
9eae7c52 2157 data = read_uleb128 (data + 1, end, &reg);
08922a10
SS
2158 regno = gdbarch_dwarf2_reg_to_regnum (gdbarch, reg);
2159 fprintf_filtered (stream, _("a variable in $%s"),
2160 gdbarch_register_name (gdbarch, regno));
2161 }
2162 else if (data[0] == DW_OP_fbreg)
4c2df51b 2163 {
08922a10
SS
2164 struct block *b;
2165 struct symbol *framefunc;
2166 int frame_reg = 0;
2167 LONGEST frame_offset;
7155d578 2168 const gdb_byte *base_data, *new_data, *save_data = data;
08922a10
SS
2169 size_t base_size;
2170 LONGEST base_offset = 0;
2171
9eae7c52
TT
2172 new_data = read_sleb128 (data + 1, end, &frame_offset);
2173 if (!piece_end_p (new_data, end))
2174 return data;
2175 data = new_data;
2176
08922a10
SS
2177 b = block_for_pc (addr);
2178
2179 if (!b)
2180 error (_("No block found for address for symbol \"%s\"."),
2181 SYMBOL_PRINT_NAME (symbol));
2182
2183 framefunc = block_linkage_function (b);
2184
2185 if (!framefunc)
2186 error (_("No function found for block for symbol \"%s\"."),
2187 SYMBOL_PRINT_NAME (symbol));
2188
2189 dwarf_expr_frame_base_1 (framefunc, addr, &base_data, &base_size);
2190
2191 if (base_data[0] >= DW_OP_breg0 && base_data[0] <= DW_OP_breg31)
2192 {
0d45f56e 2193 const gdb_byte *buf_end;
08922a10
SS
2194
2195 frame_reg = base_data[0] - DW_OP_breg0;
2196 buf_end = read_sleb128 (base_data + 1,
2197 base_data + base_size, &base_offset);
2198 if (buf_end != base_data + base_size)
3e43a32a
MS
2199 error (_("Unexpected opcode after "
2200 "DW_OP_breg%u for symbol \"%s\"."),
08922a10
SS
2201 frame_reg, SYMBOL_PRINT_NAME (symbol));
2202 }
2203 else if (base_data[0] >= DW_OP_reg0 && base_data[0] <= DW_OP_reg31)
2204 {
2205 /* The frame base is just the register, with no offset. */
2206 frame_reg = base_data[0] - DW_OP_reg0;
2207 base_offset = 0;
2208 }
2209 else
2210 {
2211 /* We don't know what to do with the frame base expression,
2212 so we can't trace this variable; give up. */
7155d578 2213 return save_data;
08922a10
SS
2214 }
2215
2216 regno = gdbarch_dwarf2_reg_to_regnum (gdbarch, frame_reg);
2217
3e43a32a
MS
2218 fprintf_filtered (stream,
2219 _("a variable at frame base reg $%s offset %s+%s"),
08922a10
SS
2220 gdbarch_register_name (gdbarch, regno),
2221 plongest (base_offset), plongest (frame_offset));
2222 }
9eae7c52
TT
2223 else if (data[0] >= DW_OP_breg0 && data[0] <= DW_OP_breg31
2224 && piece_end_p (data, end))
08922a10
SS
2225 {
2226 LONGEST offset;
2227
2228 regno = gdbarch_dwarf2_reg_to_regnum (gdbarch, data[0] - DW_OP_breg0);
2229
9eae7c52 2230 data = read_sleb128 (data + 1, end, &offset);
08922a10 2231
4c2df51b 2232 fprintf_filtered (stream,
08922a10
SS
2233 _("a variable at offset %s from base reg $%s"),
2234 plongest (offset),
5e2b427d 2235 gdbarch_register_name (gdbarch, regno));
4c2df51b
DJ
2236 }
2237
c3228f12
EZ
2238 /* The location expression for a TLS variable looks like this (on a
2239 64-bit LE machine):
2240
2241 DW_AT_location : 10 byte block: 3 4 0 0 0 0 0 0 0 e0
2242 (DW_OP_addr: 4; DW_OP_GNU_push_tls_address)
09d8bd00 2243
c3228f12
EZ
2244 0x3 is the encoding for DW_OP_addr, which has an operand as long
2245 as the size of an address on the target machine (here is 8
09d8bd00
TT
2246 bytes). Note that more recent version of GCC emit DW_OP_const4u
2247 or DW_OP_const8u, depending on address size, rather than
0963b4bd
MS
2248 DW_OP_addr. 0xe0 is the encoding for DW_OP_GNU_push_tls_address.
2249 The operand represents the offset at which the variable is within
2250 the thread local storage. */
c3228f12 2251
9eae7c52 2252 else if (data + 1 + addr_size < end
09d8bd00
TT
2253 && (data[0] == DW_OP_addr
2254 || (addr_size == 4 && data[0] == DW_OP_const4u)
2255 || (addr_size == 8 && data[0] == DW_OP_const8u))
9eae7c52
TT
2256 && data[1 + addr_size] == DW_OP_GNU_push_tls_address
2257 && piece_end_p (data + 2 + addr_size, end))
08922a10 2258 {
d4a087c7
UW
2259 ULONGEST offset;
2260 offset = extract_unsigned_integer (data + 1, addr_size,
2261 gdbarch_byte_order (gdbarch));
9a619af0 2262
08922a10 2263 fprintf_filtered (stream,
d4a087c7 2264 _("a thread-local variable at offset 0x%s "
08922a10 2265 "in the thread-local storage for `%s'"),
d4a087c7 2266 phex_nz (offset, addr_size), objfile->name);
08922a10
SS
2267
2268 data += 1 + addr_size + 1;
2269 }
9eae7c52
TT
2270 else if (data[0] >= DW_OP_lit0
2271 && data[0] <= DW_OP_lit31
2272 && data + 1 < end
2273 && data[1] == DW_OP_stack_value)
2274 {
2275 fprintf_filtered (stream, _("the constant %d"), data[0] - DW_OP_lit0);
2276 data += 2;
2277 }
2278
2279 return data;
2280}
2281
2282/* Disassemble an expression, stopping at the end of a piece or at the
2283 end of the expression. Returns a pointer to the next unread byte
2284 in the input expression. If ALL is nonzero, then this function
2285 will keep going until it reaches the end of the expression. */
2286
2287static const gdb_byte *
2288disassemble_dwarf_expression (struct ui_file *stream,
2289 struct gdbarch *arch, unsigned int addr_size,
2290 int offset_size,
2291 const gdb_byte *data, const gdb_byte *end,
2292 int all)
2293{
2294 const gdb_byte *start = data;
2295
2296 fprintf_filtered (stream, _("a complex DWARF expression:\n"));
2297
2298 while (data < end
2299 && (all
2300 || (data[0] != DW_OP_piece && data[0] != DW_OP_bit_piece)))
2301 {
2302 enum dwarf_location_atom op = *data++;
9eae7c52
TT
2303 ULONGEST ul;
2304 LONGEST l;
2305 const char *name;
2306
b1bfef65 2307 name = dwarf_stack_op_name (op);
9eae7c52
TT
2308
2309 if (!name)
2310 error (_("Unrecognized DWARF opcode 0x%02x at %ld"),
2311 op, (long) (data - start));
2312 fprintf_filtered (stream, " % 4ld: %s", (long) (data - start), name);
2313
2314 switch (op)
2315 {
2316 case DW_OP_addr:
d4a087c7
UW
2317 ul = extract_unsigned_integer (data, addr_size,
2318 gdbarch_byte_order (arch));
9eae7c52 2319 data += addr_size;
d4a087c7 2320 fprintf_filtered (stream, " 0x%s", phex_nz (ul, addr_size));
9eae7c52
TT
2321 break;
2322
2323 case DW_OP_const1u:
2324 ul = extract_unsigned_integer (data, 1, gdbarch_byte_order (arch));
2325 data += 1;
2326 fprintf_filtered (stream, " %s", pulongest (ul));
2327 break;
2328 case DW_OP_const1s:
2329 l = extract_signed_integer (data, 1, gdbarch_byte_order (arch));
2330 data += 1;
2331 fprintf_filtered (stream, " %s", plongest (l));
2332 break;
2333 case DW_OP_const2u:
2334 ul = extract_unsigned_integer (data, 2, gdbarch_byte_order (arch));
2335 data += 2;
2336 fprintf_filtered (stream, " %s", pulongest (ul));
2337 break;
2338 case DW_OP_const2s:
2339 l = extract_signed_integer (data, 2, gdbarch_byte_order (arch));
2340 data += 2;
2341 fprintf_filtered (stream, " %s", plongest (l));
2342 break;
2343 case DW_OP_const4u:
2344 ul = extract_unsigned_integer (data, 4, gdbarch_byte_order (arch));
2345 data += 4;
2346 fprintf_filtered (stream, " %s", pulongest (ul));
2347 break;
2348 case DW_OP_const4s:
2349 l = extract_signed_integer (data, 4, gdbarch_byte_order (arch));
2350 data += 4;
2351 fprintf_filtered (stream, " %s", plongest (l));
2352 break;
2353 case DW_OP_const8u:
2354 ul = extract_unsigned_integer (data, 8, gdbarch_byte_order (arch));
2355 data += 8;
2356 fprintf_filtered (stream, " %s", pulongest (ul));
2357 break;
2358 case DW_OP_const8s:
2359 l = extract_signed_integer (data, 8, gdbarch_byte_order (arch));
2360 data += 8;
2361 fprintf_filtered (stream, " %s", plongest (l));
2362 break;
2363 case DW_OP_constu:
2364 data = read_uleb128 (data, end, &ul);
2365 fprintf_filtered (stream, " %s", pulongest (ul));
2366 break;
2367 case DW_OP_consts:
44b5680a 2368 data = read_sleb128 (data, end, &l);
9eae7c52
TT
2369 fprintf_filtered (stream, " %s", plongest (l));
2370 break;
2371
2372 case DW_OP_reg0:
2373 case DW_OP_reg1:
2374 case DW_OP_reg2:
2375 case DW_OP_reg3:
2376 case DW_OP_reg4:
2377 case DW_OP_reg5:
2378 case DW_OP_reg6:
2379 case DW_OP_reg7:
2380 case DW_OP_reg8:
2381 case DW_OP_reg9:
2382 case DW_OP_reg10:
2383 case DW_OP_reg11:
2384 case DW_OP_reg12:
2385 case DW_OP_reg13:
2386 case DW_OP_reg14:
2387 case DW_OP_reg15:
2388 case DW_OP_reg16:
2389 case DW_OP_reg17:
2390 case DW_OP_reg18:
2391 case DW_OP_reg19:
2392 case DW_OP_reg20:
2393 case DW_OP_reg21:
2394 case DW_OP_reg22:
2395 case DW_OP_reg23:
2396 case DW_OP_reg24:
2397 case DW_OP_reg25:
2398 case DW_OP_reg26:
2399 case DW_OP_reg27:
2400 case DW_OP_reg28:
2401 case DW_OP_reg29:
2402 case DW_OP_reg30:
2403 case DW_OP_reg31:
2404 fprintf_filtered (stream, " [$%s]",
2405 gdbarch_register_name (arch, op - DW_OP_reg0));
2406 break;
2407
2408 case DW_OP_regx:
2409 data = read_uleb128 (data, end, &ul);
2410 fprintf_filtered (stream, " %s [$%s]", pulongest (ul),
2411 gdbarch_register_name (arch, (int) ul));
2412 break;
2413
2414 case DW_OP_implicit_value:
2415 data = read_uleb128 (data, end, &ul);
2416 data += ul;
2417 fprintf_filtered (stream, " %s", pulongest (ul));
2418 break;
2419
2420 case DW_OP_breg0:
2421 case DW_OP_breg1:
2422 case DW_OP_breg2:
2423 case DW_OP_breg3:
2424 case DW_OP_breg4:
2425 case DW_OP_breg5:
2426 case DW_OP_breg6:
2427 case DW_OP_breg7:
2428 case DW_OP_breg8:
2429 case DW_OP_breg9:
2430 case DW_OP_breg10:
2431 case DW_OP_breg11:
2432 case DW_OP_breg12:
2433 case DW_OP_breg13:
2434 case DW_OP_breg14:
2435 case DW_OP_breg15:
2436 case DW_OP_breg16:
2437 case DW_OP_breg17:
2438 case DW_OP_breg18:
2439 case DW_OP_breg19:
2440 case DW_OP_breg20:
2441 case DW_OP_breg21:
2442 case DW_OP_breg22:
2443 case DW_OP_breg23:
2444 case DW_OP_breg24:
2445 case DW_OP_breg25:
2446 case DW_OP_breg26:
2447 case DW_OP_breg27:
2448 case DW_OP_breg28:
2449 case DW_OP_breg29:
2450 case DW_OP_breg30:
2451 case DW_OP_breg31:
2452 data = read_sleb128 (data, end, &ul);
2453 fprintf_filtered (stream, " %s [$%s]", pulongest (ul),
2454 gdbarch_register_name (arch, op - DW_OP_breg0));
2455 break;
2456
2457 case DW_OP_bregx:
2458 {
2459 ULONGEST offset;
2460
2461 data = read_uleb128 (data, end, &ul);
2462 data = read_sleb128 (data, end, &offset);
2463 fprintf_filtered (stream, " register %s [$%s] offset %s",
2464 pulongest (ul),
2465 gdbarch_register_name (arch, (int) ul),
2466 pulongest (offset));
2467 }
2468 break;
2469
2470 case DW_OP_fbreg:
2471 data = read_sleb128 (data, end, &ul);
2472 fprintf_filtered (stream, " %s", pulongest (ul));
2473 break;
2474
2475 case DW_OP_xderef_size:
2476 case DW_OP_deref_size:
2477 case DW_OP_pick:
2478 fprintf_filtered (stream, " %d", *data);
2479 ++data;
2480 break;
2481
2482 case DW_OP_plus_uconst:
2483 data = read_uleb128 (data, end, &ul);
2484 fprintf_filtered (stream, " %s", pulongest (ul));
2485 break;
2486
2487 case DW_OP_skip:
2488 l = extract_signed_integer (data, 2, gdbarch_byte_order (arch));
2489 data += 2;
2490 fprintf_filtered (stream, " to %ld",
2491 (long) (data + l - start));
2492 break;
2493
2494 case DW_OP_bra:
2495 l = extract_signed_integer (data, 2, gdbarch_byte_order (arch));
2496 data += 2;
2497 fprintf_filtered (stream, " %ld",
2498 (long) (data + l - start));
2499 break;
2500
2501 case DW_OP_call2:
2502 ul = extract_unsigned_integer (data, 2, gdbarch_byte_order (arch));
2503 data += 2;
2504 fprintf_filtered (stream, " offset %s", phex_nz (ul, 2));
2505 break;
2506
2507 case DW_OP_call4:
2508 ul = extract_unsigned_integer (data, 4, gdbarch_byte_order (arch));
2509 data += 4;
2510 fprintf_filtered (stream, " offset %s", phex_nz (ul, 4));
2511 break;
2512
2513 case DW_OP_call_ref:
2514 ul = extract_unsigned_integer (data, offset_size,
2515 gdbarch_byte_order (arch));
2516 data += offset_size;
2517 fprintf_filtered (stream, " offset %s", phex_nz (ul, offset_size));
2518 break;
2519
2520 case DW_OP_piece:
2521 data = read_uleb128 (data, end, &ul);
2522 fprintf_filtered (stream, " %s (bytes)", pulongest (ul));
2523 break;
2524
2525 case DW_OP_bit_piece:
2526 {
2527 ULONGEST offset;
2528
2529 data = read_uleb128 (data, end, &ul);
2530 data = read_uleb128 (data, end, &offset);
2531 fprintf_filtered (stream, " size %s offset %s (bits)",
2532 pulongest (ul), pulongest (offset));
2533 }
2534 break;
8cf6f0b1
TT
2535
2536 case DW_OP_GNU_implicit_pointer:
2537 {
2538 ul = extract_unsigned_integer (data, offset_size,
2539 gdbarch_byte_order (arch));
2540 data += offset_size;
2541
2542 data = read_sleb128 (data, end, &l);
2543
2544 fprintf_filtered (stream, " DIE %s offset %s",
2545 phex_nz (ul, offset_size),
2546 plongest (l));
2547 }
2548 break;
9eae7c52
TT
2549 }
2550
2551 fprintf_filtered (stream, "\n");
2552 }
c3228f12 2553
08922a10 2554 return data;
4c2df51b
DJ
2555}
2556
08922a10
SS
2557/* Describe a single location, which may in turn consist of multiple
2558 pieces. */
a55cc764 2559
08922a10
SS
2560static void
2561locexpr_describe_location_1 (struct symbol *symbol, CORE_ADDR addr,
0d45f56e
TT
2562 struct ui_file *stream,
2563 const gdb_byte *data, int size,
9eae7c52
TT
2564 struct objfile *objfile, unsigned int addr_size,
2565 int offset_size)
08922a10 2566{
0d45f56e 2567 const gdb_byte *end = data + size;
9eae7c52 2568 int first_piece = 1, bad = 0;
08922a10 2569
08922a10
SS
2570 while (data < end)
2571 {
9eae7c52
TT
2572 const gdb_byte *here = data;
2573 int disassemble = 1;
2574
2575 if (first_piece)
2576 first_piece = 0;
2577 else
2578 fprintf_filtered (stream, _(", and "));
08922a10 2579
9eae7c52
TT
2580 if (!dwarf2_always_disassemble)
2581 {
3e43a32a
MS
2582 data = locexpr_describe_location_piece (symbol, stream,
2583 addr, objfile,
9eae7c52
TT
2584 data, end, addr_size);
2585 /* If we printed anything, or if we have an empty piece,
2586 then don't disassemble. */
2587 if (data != here
2588 || data[0] == DW_OP_piece
2589 || data[0] == DW_OP_bit_piece)
2590 disassemble = 0;
08922a10 2591 }
9eae7c52 2592 if (disassemble)
3e43a32a
MS
2593 data = disassemble_dwarf_expression (stream,
2594 get_objfile_arch (objfile),
9eae7c52
TT
2595 addr_size, offset_size, data, end,
2596 dwarf2_always_disassemble);
2597
2598 if (data < end)
08922a10 2599 {
9eae7c52 2600 int empty = data == here;
08922a10 2601
9eae7c52
TT
2602 if (disassemble)
2603 fprintf_filtered (stream, " ");
2604 if (data[0] == DW_OP_piece)
2605 {
2606 ULONGEST bytes;
08922a10 2607
9eae7c52 2608 data = read_uleb128 (data + 1, end, &bytes);
08922a10 2609
9eae7c52
TT
2610 if (empty)
2611 fprintf_filtered (stream, _("an empty %s-byte piece"),
2612 pulongest (bytes));
2613 else
2614 fprintf_filtered (stream, _(" [%s-byte piece]"),
2615 pulongest (bytes));
2616 }
2617 else if (data[0] == DW_OP_bit_piece)
2618 {
2619 ULONGEST bits, offset;
2620
2621 data = read_uleb128 (data + 1, end, &bits);
2622 data = read_uleb128 (data, end, &offset);
2623
2624 if (empty)
2625 fprintf_filtered (stream,
2626 _("an empty %s-bit piece"),
2627 pulongest (bits));
2628 else
2629 fprintf_filtered (stream,
2630 _(" [%s-bit piece, offset %s bits]"),
2631 pulongest (bits), pulongest (offset));
2632 }
2633 else
2634 {
2635 bad = 1;
2636 break;
2637 }
08922a10
SS
2638 }
2639 }
2640
2641 if (bad || data > end)
2642 error (_("Corrupted DWARF2 expression for \"%s\"."),
2643 SYMBOL_PRINT_NAME (symbol));
2644}
2645
2646/* Print a natural-language description of SYMBOL to STREAM. This
2647 version is for a symbol with a single location. */
a55cc764 2648
08922a10
SS
2649static void
2650locexpr_describe_location (struct symbol *symbol, CORE_ADDR addr,
2651 struct ui_file *stream)
2652{
2653 struct dwarf2_locexpr_baton *dlbaton = SYMBOL_LOCATION_BATON (symbol);
2654 struct objfile *objfile = dwarf2_per_cu_objfile (dlbaton->per_cu);
2655 unsigned int addr_size = dwarf2_per_cu_addr_size (dlbaton->per_cu);
9eae7c52 2656 int offset_size = dwarf2_per_cu_offset_size (dlbaton->per_cu);
08922a10 2657
3e43a32a
MS
2658 locexpr_describe_location_1 (symbol, addr, stream,
2659 dlbaton->data, dlbaton->size,
9eae7c52 2660 objfile, addr_size, offset_size);
08922a10
SS
2661}
2662
2663/* Describe the location of SYMBOL as an agent value in VALUE, generating
2664 any necessary bytecode in AX. */
a55cc764 2665
0d53c4c4 2666static void
505e835d
UW
2667locexpr_tracepoint_var_ref (struct symbol *symbol, struct gdbarch *gdbarch,
2668 struct agent_expr *ax, struct axs_value *value)
a55cc764
DJ
2669{
2670 struct dwarf2_locexpr_baton *dlbaton = SYMBOL_LOCATION_BATON (symbol);
3cf03773 2671 unsigned int addr_size = dwarf2_per_cu_addr_size (dlbaton->per_cu);
a55cc764 2672
cabe9ab6
PA
2673 if (dlbaton->data == NULL || dlbaton->size == 0)
2674 value->optimized_out = 1;
2675 else
2676 compile_dwarf_to_ax (ax, value, gdbarch, addr_size,
2677 dlbaton->data, dlbaton->data + dlbaton->size,
2678 dlbaton->per_cu);
a55cc764
DJ
2679}
2680
4c2df51b
DJ
2681/* The set of location functions used with the DWARF-2 expression
2682 evaluator. */
768a979c 2683const struct symbol_computed_ops dwarf2_locexpr_funcs = {
4c2df51b
DJ
2684 locexpr_read_variable,
2685 locexpr_read_needs_frame,
2686 locexpr_describe_location,
a55cc764 2687 locexpr_tracepoint_var_ref
4c2df51b 2688};
0d53c4c4
DJ
2689
2690
2691/* Wrapper functions for location lists. These generally find
2692 the appropriate location expression and call something above. */
2693
2694/* Return the value of SYMBOL in FRAME using the DWARF-2 expression
2695 evaluator to calculate the location. */
2696static struct value *
2697loclist_read_variable (struct symbol *symbol, struct frame_info *frame)
2698{
2699 struct dwarf2_loclist_baton *dlbaton = SYMBOL_LOCATION_BATON (symbol);
2700 struct value *val;
947bb88f 2701 const gdb_byte *data;
b6b08ebf 2702 size_t size;
8cf6f0b1 2703 CORE_ADDR pc = frame ? get_frame_address_in_block (frame) : 0;
0d53c4c4 2704
8cf6f0b1 2705 data = dwarf2_find_location_expression (dlbaton, &size, pc);
0d53c4c4 2706 if (data == NULL)
806048c6
DJ
2707 {
2708 val = allocate_value (SYMBOL_TYPE (symbol));
2709 VALUE_LVAL (val) = not_lval;
2710 set_value_optimized_out (val, 1);
2711 }
2712 else
a2d33775 2713 val = dwarf2_evaluate_loc_desc (SYMBOL_TYPE (symbol), frame, data, size,
ae0d2f24 2714 dlbaton->per_cu);
0d53c4c4
DJ
2715
2716 return val;
2717}
2718
2719/* Return non-zero iff we need a frame to evaluate SYMBOL. */
2720static int
2721loclist_read_needs_frame (struct symbol *symbol)
2722{
2723 /* If there's a location list, then assume we need to have a frame
2724 to choose the appropriate location expression. With tracking of
2725 global variables this is not necessarily true, but such tracking
2726 is disabled in GCC at the moment until we figure out how to
2727 represent it. */
2728
2729 return 1;
2730}
2731
08922a10
SS
2732/* Print a natural-language description of SYMBOL to STREAM. This
2733 version applies when there is a list of different locations, each
2734 with a specified address range. */
2735
2736static void
2737loclist_describe_location (struct symbol *symbol, CORE_ADDR addr,
2738 struct ui_file *stream)
0d53c4c4 2739{
08922a10
SS
2740 struct dwarf2_loclist_baton *dlbaton = SYMBOL_LOCATION_BATON (symbol);
2741 CORE_ADDR low, high;
947bb88f 2742 const gdb_byte *loc_ptr, *buf_end;
08922a10
SS
2743 int length, first = 1;
2744 struct objfile *objfile = dwarf2_per_cu_objfile (dlbaton->per_cu);
2745 struct gdbarch *gdbarch = get_objfile_arch (objfile);
2746 enum bfd_endian byte_order = gdbarch_byte_order (gdbarch);
2747 unsigned int addr_size = dwarf2_per_cu_addr_size (dlbaton->per_cu);
9eae7c52 2748 int offset_size = dwarf2_per_cu_offset_size (dlbaton->per_cu);
d4a087c7 2749 int signed_addr_p = bfd_get_sign_extend_vma (objfile->obfd);
08922a10
SS
2750 CORE_ADDR base_mask = ~(~(CORE_ADDR)1 << (addr_size * 8 - 1));
2751 /* Adjust base_address for relocatable objects. */
9aa1f1e3 2752 CORE_ADDR base_offset = dwarf2_per_cu_text_offset (dlbaton->per_cu);
08922a10
SS
2753 CORE_ADDR base_address = dlbaton->base_address + base_offset;
2754
2755 loc_ptr = dlbaton->data;
2756 buf_end = dlbaton->data + dlbaton->size;
2757
9eae7c52 2758 fprintf_filtered (stream, _("multi-location:\n"));
08922a10
SS
2759
2760 /* Iterate through locations until we run out. */
2761 while (1)
2762 {
2763 if (buf_end - loc_ptr < 2 * addr_size)
2764 error (_("Corrupted DWARF expression for symbol \"%s\"."),
2765 SYMBOL_PRINT_NAME (symbol));
2766
d4a087c7
UW
2767 if (signed_addr_p)
2768 low = extract_signed_integer (loc_ptr, addr_size, byte_order);
2769 else
2770 low = extract_unsigned_integer (loc_ptr, addr_size, byte_order);
2771 loc_ptr += addr_size;
2772
2773 if (signed_addr_p)
2774 high = extract_signed_integer (loc_ptr, addr_size, byte_order);
2775 else
2776 high = extract_unsigned_integer (loc_ptr, addr_size, byte_order);
08922a10
SS
2777 loc_ptr += addr_size;
2778
2779 /* A base-address-selection entry. */
d4a087c7 2780 if ((low & base_mask) == base_mask)
08922a10 2781 {
d4a087c7 2782 base_address = high + base_offset;
9eae7c52 2783 fprintf_filtered (stream, _(" Base address %s"),
08922a10 2784 paddress (gdbarch, base_address));
08922a10
SS
2785 continue;
2786 }
2787
08922a10
SS
2788 /* An end-of-list entry. */
2789 if (low == 0 && high == 0)
9eae7c52 2790 break;
08922a10
SS
2791
2792 /* Otherwise, a location expression entry. */
2793 low += base_address;
2794 high += base_address;
2795
2796 length = extract_unsigned_integer (loc_ptr, 2, byte_order);
2797 loc_ptr += 2;
2798
08922a10
SS
2799 /* (It would improve readability to print only the minimum
2800 necessary digits of the second number of the range.) */
9eae7c52 2801 fprintf_filtered (stream, _(" Range %s-%s: "),
08922a10
SS
2802 paddress (gdbarch, low), paddress (gdbarch, high));
2803
2804 /* Now describe this particular location. */
2805 locexpr_describe_location_1 (symbol, low, stream, loc_ptr, length,
9eae7c52
TT
2806 objfile, addr_size, offset_size);
2807
2808 fprintf_filtered (stream, "\n");
08922a10
SS
2809
2810 loc_ptr += length;
2811 }
0d53c4c4
DJ
2812}
2813
2814/* Describe the location of SYMBOL as an agent value in VALUE, generating
2815 any necessary bytecode in AX. */
2816static void
505e835d
UW
2817loclist_tracepoint_var_ref (struct symbol *symbol, struct gdbarch *gdbarch,
2818 struct agent_expr *ax, struct axs_value *value)
0d53c4c4
DJ
2819{
2820 struct dwarf2_loclist_baton *dlbaton = SYMBOL_LOCATION_BATON (symbol);
947bb88f 2821 const gdb_byte *data;
b6b08ebf 2822 size_t size;
3cf03773 2823 unsigned int addr_size = dwarf2_per_cu_addr_size (dlbaton->per_cu);
0d53c4c4 2824
8cf6f0b1 2825 data = dwarf2_find_location_expression (dlbaton, &size, ax->scope);
cabe9ab6
PA
2826 if (data == NULL || size == 0)
2827 value->optimized_out = 1;
2828 else
2829 compile_dwarf_to_ax (ax, value, gdbarch, addr_size, data, data + size,
2830 dlbaton->per_cu);
0d53c4c4
DJ
2831}
2832
2833/* The set of location functions used with the DWARF-2 expression
2834 evaluator and location lists. */
768a979c 2835const struct symbol_computed_ops dwarf2_loclist_funcs = {
0d53c4c4
DJ
2836 loclist_read_variable,
2837 loclist_read_needs_frame,
2838 loclist_describe_location,
2839 loclist_tracepoint_var_ref
2840};
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