b45740d7e13d9bf9a5e679a6e587b5ea1c329238
[binutils-gdb.git] / gdb / regcache.c
1 /* Cache and manage the values of registers for GDB, the GNU debugger.
2
3 Copyright 1986, 1987, 1989, 1991, 1994, 1995, 1996, 1998, 2000,
4 2001, 2002, 2004 Free Software Foundation, Inc.
5
6 This file is part of GDB.
7
8 This program is free software; you can redistribute it and/or modify
9 it under the terms of the GNU General Public License as published by
10 the Free Software Foundation; either version 2 of the License, or
11 (at your option) any later version.
12
13 This program is distributed in the hope that it will be useful,
14 but WITHOUT ANY WARRANTY; without even the implied warranty of
15 MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
16 GNU General Public License for more details.
17
18 You should have received a copy of the GNU General Public License
19 along with this program; if not, write to the Free Software
20 Foundation, Inc., 59 Temple Place - Suite 330,
21 Boston, MA 02111-1307, USA. */
22
23 #include "defs.h"
24 #include "inferior.h"
25 #include "target.h"
26 #include "gdbarch.h"
27 #include "gdbcmd.h"
28 #include "regcache.h"
29 #include "reggroups.h"
30 #include "gdb_assert.h"
31 #include "gdb_string.h"
32 #include "gdbcmd.h" /* For maintenanceprintlist. */
33 #include "observer.h"
34
35 /*
36 * DATA STRUCTURE
37 *
38 * Here is the actual register cache.
39 */
40
41 /* Per-architecture object describing the layout of a register cache.
42 Computed once when the architecture is created */
43
44 struct gdbarch_data *regcache_descr_handle;
45
46 struct regcache_descr
47 {
48 /* The architecture this descriptor belongs to. */
49 struct gdbarch *gdbarch;
50
51 /* The raw register cache. Each raw (or hard) register is supplied
52 by the target interface. The raw cache should not contain
53 redundant information - if the PC is constructed from two
54 registers then those regigisters and not the PC lives in the raw
55 cache. */
56 int nr_raw_registers;
57 long sizeof_raw_registers;
58 long sizeof_raw_register_valid_p;
59
60 /* The cooked register space. Each cooked register in the range
61 [0..NR_RAW_REGISTERS) is direct-mapped onto the corresponding raw
62 register. The remaining [NR_RAW_REGISTERS
63 .. NR_COOKED_REGISTERS) (a.k.a. pseudo registers) are mapped onto
64 both raw registers and memory by the architecture methods
65 gdbarch_pseudo_register_read and gdbarch_pseudo_register_write. */
66 int nr_cooked_registers;
67 long sizeof_cooked_registers;
68 long sizeof_cooked_register_valid_p;
69
70 /* Offset and size (in 8 bit bytes), of reach register in the
71 register cache. All registers (including those in the range
72 [NR_RAW_REGISTERS .. NR_COOKED_REGISTERS) are given an offset.
73 Assigning all registers an offset makes it possible to keep
74 legacy code, such as that found in read_register_bytes() and
75 write_register_bytes() working. */
76 long *register_offset;
77 long *sizeof_register;
78
79 /* Cached table containing the type of each register. */
80 struct type **register_type;
81 };
82
83 static void *
84 init_regcache_descr (struct gdbarch *gdbarch)
85 {
86 int i;
87 struct regcache_descr *descr;
88 gdb_assert (gdbarch != NULL);
89
90 /* Create an initial, zero filled, table. */
91 descr = GDBARCH_OBSTACK_ZALLOC (gdbarch, struct regcache_descr);
92 descr->gdbarch = gdbarch;
93
94 /* Total size of the register space. The raw registers are mapped
95 directly onto the raw register cache while the pseudo's are
96 either mapped onto raw-registers or memory. */
97 descr->nr_cooked_registers = NUM_REGS + NUM_PSEUDO_REGS;
98 descr->sizeof_cooked_register_valid_p = NUM_REGS + NUM_PSEUDO_REGS;
99
100 /* Fill in a table of register types. */
101 descr->register_type
102 = GDBARCH_OBSTACK_CALLOC (gdbarch, descr->nr_cooked_registers, struct type *);
103 for (i = 0; i < descr->nr_cooked_registers; i++)
104 descr->register_type[i] = gdbarch_register_type (gdbarch, i);
105
106 /* Construct a strictly RAW register cache. Don't allow pseudo's
107 into the register cache. */
108 descr->nr_raw_registers = NUM_REGS;
109
110 /* FIXME: cagney/2002-08-13: Overallocate the register_valid_p
111 array. This pretects GDB from erant code that accesses elements
112 of the global register_valid_p[] array in the range [NUM_REGS
113 .. NUM_REGS + NUM_PSEUDO_REGS). */
114 descr->sizeof_raw_register_valid_p = descr->sizeof_cooked_register_valid_p;
115
116 /* Lay out the register cache.
117
118 NOTE: cagney/2002-05-22: Only register_type() is used when
119 constructing the register cache. It is assumed that the
120 register's raw size, virtual size and type length are all the
121 same. */
122
123 {
124 long offset = 0;
125 descr->sizeof_register
126 = GDBARCH_OBSTACK_CALLOC (gdbarch, descr->nr_cooked_registers, long);
127 descr->register_offset
128 = GDBARCH_OBSTACK_CALLOC (gdbarch, descr->nr_cooked_registers, long);
129 for (i = 0; i < descr->nr_cooked_registers; i++)
130 {
131 descr->sizeof_register[i] = TYPE_LENGTH (descr->register_type[i]);
132 descr->register_offset[i] = offset;
133 offset += descr->sizeof_register[i];
134 gdb_assert (MAX_REGISTER_SIZE >= descr->sizeof_register[i]);
135 }
136 /* Set the real size of the register cache buffer. */
137 descr->sizeof_cooked_registers = offset;
138 }
139
140 /* FIXME: cagney/2002-05-22: Should only need to allocate space for
141 the raw registers. Unfortunately some code still accesses the
142 register array directly using the global registers[]. Until that
143 code has been purged, play safe and over allocating the register
144 buffer. Ulgh! */
145 descr->sizeof_raw_registers = descr->sizeof_cooked_registers;
146
147 return descr;
148 }
149
150 static struct regcache_descr *
151 regcache_descr (struct gdbarch *gdbarch)
152 {
153 return gdbarch_data (gdbarch, regcache_descr_handle);
154 }
155
156 /* Utility functions returning useful register attributes stored in
157 the regcache descr. */
158
159 struct type *
160 register_type (struct gdbarch *gdbarch, int regnum)
161 {
162 struct regcache_descr *descr = regcache_descr (gdbarch);
163 gdb_assert (regnum >= 0 && regnum < descr->nr_cooked_registers);
164 return descr->register_type[regnum];
165 }
166
167 /* Utility functions returning useful register attributes stored in
168 the regcache descr. */
169
170 int
171 register_size (struct gdbarch *gdbarch, int regnum)
172 {
173 struct regcache_descr *descr = regcache_descr (gdbarch);
174 int size;
175 gdb_assert (regnum >= 0 && regnum < (NUM_REGS + NUM_PSEUDO_REGS));
176 size = descr->sizeof_register[regnum];
177 return size;
178 }
179
180 /* The register cache for storing raw register values. */
181
182 struct regcache
183 {
184 struct regcache_descr *descr;
185 /* The register buffers. A read-only register cache can hold the
186 full [0 .. NUM_REGS + NUM_PSEUDO_REGS) while a read/write
187 register cache can only hold [0 .. NUM_REGS). */
188 char *registers;
189 char *register_valid_p;
190 /* Is this a read-only cache? A read-only cache is used for saving
191 the target's register state (e.g, across an inferior function
192 call or just before forcing a function return). A read-only
193 cache can only be updated via the methods regcache_dup() and
194 regcache_cpy(). The actual contents are determined by the
195 reggroup_save and reggroup_restore methods. */
196 int readonly_p;
197 };
198
199 struct regcache *
200 regcache_xmalloc (struct gdbarch *gdbarch)
201 {
202 struct regcache_descr *descr;
203 struct regcache *regcache;
204 gdb_assert (gdbarch != NULL);
205 descr = regcache_descr (gdbarch);
206 regcache = XMALLOC (struct regcache);
207 regcache->descr = descr;
208 regcache->registers
209 = XCALLOC (descr->sizeof_raw_registers, char);
210 regcache->register_valid_p
211 = XCALLOC (descr->sizeof_raw_register_valid_p, char);
212 regcache->readonly_p = 1;
213 return regcache;
214 }
215
216 void
217 regcache_xfree (struct regcache *regcache)
218 {
219 if (regcache == NULL)
220 return;
221 xfree (regcache->registers);
222 xfree (regcache->register_valid_p);
223 xfree (regcache);
224 }
225
226 static void
227 do_regcache_xfree (void *data)
228 {
229 regcache_xfree (data);
230 }
231
232 struct cleanup *
233 make_cleanup_regcache_xfree (struct regcache *regcache)
234 {
235 return make_cleanup (do_regcache_xfree, regcache);
236 }
237
238 /* Return REGCACHE's architecture. */
239
240 struct gdbarch *
241 get_regcache_arch (const struct regcache *regcache)
242 {
243 return regcache->descr->gdbarch;
244 }
245
246 /* Return a pointer to register REGNUM's buffer cache. */
247
248 static char *
249 register_buffer (const struct regcache *regcache, int regnum)
250 {
251 return regcache->registers + regcache->descr->register_offset[regnum];
252 }
253
254 void
255 regcache_save (struct regcache *dst, regcache_cooked_read_ftype *cooked_read,
256 void *src)
257 {
258 struct gdbarch *gdbarch = dst->descr->gdbarch;
259 char buf[MAX_REGISTER_SIZE];
260 int regnum;
261 /* The DST should be `read-only', if it wasn't then the save would
262 end up trying to write the register values back out to the
263 target. */
264 gdb_assert (dst->readonly_p);
265 /* Clear the dest. */
266 memset (dst->registers, 0, dst->descr->sizeof_cooked_registers);
267 memset (dst->register_valid_p, 0, dst->descr->sizeof_cooked_register_valid_p);
268 /* Copy over any registers (identified by their membership in the
269 save_reggroup) and mark them as valid. The full [0 .. NUM_REGS +
270 NUM_PSEUDO_REGS) range is checked since some architectures need
271 to save/restore `cooked' registers that live in memory. */
272 for (regnum = 0; regnum < dst->descr->nr_cooked_registers; regnum++)
273 {
274 if (gdbarch_register_reggroup_p (gdbarch, regnum, save_reggroup))
275 {
276 int valid = cooked_read (src, regnum, buf);
277 if (valid)
278 {
279 memcpy (register_buffer (dst, regnum), buf,
280 register_size (gdbarch, regnum));
281 dst->register_valid_p[regnum] = 1;
282 }
283 }
284 }
285 }
286
287 void
288 regcache_restore (struct regcache *dst,
289 regcache_cooked_read_ftype *cooked_read,
290 void *src)
291 {
292 struct gdbarch *gdbarch = dst->descr->gdbarch;
293 char buf[MAX_REGISTER_SIZE];
294 int regnum;
295 /* The dst had better not be read-only. If it is, the `restore'
296 doesn't make much sense. */
297 gdb_assert (!dst->readonly_p);
298 /* Copy over any registers, being careful to only restore those that
299 were both saved and need to be restored. The full [0 .. NUM_REGS
300 + NUM_PSEUDO_REGS) range is checked since some architectures need
301 to save/restore `cooked' registers that live in memory. */
302 for (regnum = 0; regnum < dst->descr->nr_cooked_registers; regnum++)
303 {
304 if (gdbarch_register_reggroup_p (gdbarch, regnum, restore_reggroup))
305 {
306 int valid = cooked_read (src, regnum, buf);
307 if (valid)
308 regcache_cooked_write (dst, regnum, buf);
309 }
310 }
311 }
312
313 static int
314 do_cooked_read (void *src, int regnum, void *buf)
315 {
316 struct regcache *regcache = src;
317 if (!regcache->register_valid_p[regnum] && regcache->readonly_p)
318 /* Don't even think about fetching a register from a read-only
319 cache when the register isn't yet valid. There isn't a target
320 from which the register value can be fetched. */
321 return 0;
322 regcache_cooked_read (regcache, regnum, buf);
323 return 1;
324 }
325
326
327 void
328 regcache_cpy (struct regcache *dst, struct regcache *src)
329 {
330 int i;
331 char *buf;
332 gdb_assert (src != NULL && dst != NULL);
333 gdb_assert (src->descr->gdbarch == dst->descr->gdbarch);
334 gdb_assert (src != dst);
335 gdb_assert (src->readonly_p || dst->readonly_p);
336 if (!src->readonly_p)
337 regcache_save (dst, do_cooked_read, src);
338 else if (!dst->readonly_p)
339 regcache_restore (dst, do_cooked_read, src);
340 else
341 regcache_cpy_no_passthrough (dst, src);
342 }
343
344 void
345 regcache_cpy_no_passthrough (struct regcache *dst, struct regcache *src)
346 {
347 int i;
348 gdb_assert (src != NULL && dst != NULL);
349 gdb_assert (src->descr->gdbarch == dst->descr->gdbarch);
350 /* NOTE: cagney/2002-05-17: Don't let the caller do a no-passthrough
351 move of data into the current_regcache(). Doing this would be
352 silly - it would mean that valid_p would be completely invalid. */
353 gdb_assert (dst != current_regcache);
354 memcpy (dst->registers, src->registers, dst->descr->sizeof_raw_registers);
355 memcpy (dst->register_valid_p, src->register_valid_p,
356 dst->descr->sizeof_raw_register_valid_p);
357 }
358
359 struct regcache *
360 regcache_dup (struct regcache *src)
361 {
362 struct regcache *newbuf;
363 gdb_assert (current_regcache != NULL);
364 newbuf = regcache_xmalloc (src->descr->gdbarch);
365 regcache_cpy (newbuf, src);
366 return newbuf;
367 }
368
369 struct regcache *
370 regcache_dup_no_passthrough (struct regcache *src)
371 {
372 struct regcache *newbuf;
373 gdb_assert (current_regcache != NULL);
374 newbuf = regcache_xmalloc (src->descr->gdbarch);
375 regcache_cpy_no_passthrough (newbuf, src);
376 return newbuf;
377 }
378
379 int
380 regcache_valid_p (struct regcache *regcache, int regnum)
381 {
382 gdb_assert (regcache != NULL);
383 gdb_assert (regnum >= 0 && regnum < regcache->descr->nr_raw_registers);
384 return regcache->register_valid_p[regnum];
385 }
386
387 char *
388 deprecated_grub_regcache_for_registers (struct regcache *regcache)
389 {
390 return regcache->registers;
391 }
392
393 /* Global structure containing the current regcache. */
394 /* FIXME: cagney/2002-05-11: The two global arrays registers[] and
395 deprecated_register_valid[] currently point into this structure. */
396 struct regcache *current_regcache;
397
398 /* NOTE: this is a write-through cache. There is no "dirty" bit for
399 recording if the register values have been changed (eg. by the
400 user). Therefore all registers must be written back to the
401 target when appropriate. */
402
403 /* REGISTERS contains the cached register values (in target byte order). */
404
405 char *deprecated_registers;
406
407 /* DEPRECATED_REGISTER_VALID is 0 if the register needs to be fetched,
408 1 if it has been fetched, and
409 -1 if the register value was not available.
410
411 "Not available" indicates that the target is not not able to supply
412 the register at this state. The register may become available at a
413 later time (after the next resume). This often occures when GDB is
414 manipulating a target that contains only a snapshot of the entire
415 system being debugged - some of the registers in such a system may
416 not have been saved. */
417
418 signed char *deprecated_register_valid;
419
420 /* The thread/process associated with the current set of registers. */
421
422 static ptid_t registers_ptid;
423
424 /*
425 * FUNCTIONS:
426 */
427
428 /* REGISTER_CACHED()
429
430 Returns 0 if the value is not in the cache (needs fetch).
431 >0 if the value is in the cache.
432 <0 if the value is permanently unavailable (don't ask again). */
433
434 int
435 register_cached (int regnum)
436 {
437 return deprecated_register_valid[regnum];
438 }
439
440 /* Record that REGNUM's value is cached if STATE is >0, uncached but
441 fetchable if STATE is 0, and uncached and unfetchable if STATE is <0. */
442
443 void
444 set_register_cached (int regnum, int state)
445 {
446 gdb_assert (regnum >= 0);
447 gdb_assert (regnum < current_regcache->descr->nr_raw_registers);
448 current_regcache->register_valid_p[regnum] = state;
449 }
450
451 /* Observer for the target_changed event. */
452
453 void
454 regcache_observer_target_changed (struct target_ops *target)
455 {
456 registers_changed ();
457 }
458
459 /* Low level examining and depositing of registers.
460
461 The caller is responsible for making sure that the inferior is
462 stopped before calling the fetching routines, or it will get
463 garbage. (a change from GDB version 3, in which the caller got the
464 value from the last stop). */
465
466 /* REGISTERS_CHANGED ()
467
468 Indicate that registers may have changed, so invalidate the cache. */
469
470 void
471 registers_changed (void)
472 {
473 int i;
474
475 registers_ptid = pid_to_ptid (-1);
476
477 /* Force cleanup of any alloca areas if using C alloca instead of
478 a builtin alloca. This particular call is used to clean up
479 areas allocated by low level target code which may build up
480 during lengthy interactions between gdb and the target before
481 gdb gives control to the user (ie watchpoints). */
482 alloca (0);
483
484 for (i = 0; i < current_regcache->descr->nr_raw_registers; i++)
485 set_register_cached (i, 0);
486
487 if (deprecated_registers_changed_hook)
488 deprecated_registers_changed_hook ();
489 }
490
491 /* DEPRECATED_REGISTERS_FETCHED ()
492
493 Indicate that all registers have been fetched, so mark them all valid. */
494
495 /* FIXME: cagney/2001-12-04: This function is DEPRECATED. The target
496 code was blatting the registers[] array and then calling this.
497 Since targets should only be using regcache_raw_supply() the need for
498 this function/hack is eliminated. */
499
500 void
501 deprecated_registers_fetched (void)
502 {
503 int i;
504
505 for (i = 0; i < NUM_REGS; i++)
506 set_register_cached (i, 1);
507 /* Do not assume that the pseudo-regs have also been fetched.
508 Fetching all real regs NEVER accounts for pseudo-regs. */
509 }
510
511 /* deprecated_read_register_bytes and deprecated_write_register_bytes
512 are generally a *BAD* idea. They are inefficient because they need
513 to check for partial updates, which can only be done by scanning
514 through all of the registers and seeing if the bytes that are being
515 read/written fall inside of an invalid register. [The main reason
516 this is necessary is that register sizes can vary, so a simple
517 index won't suffice.] It is far better to call read_register_gen
518 and write_register_gen if you want to get at the raw register
519 contents, as it only takes a regnum as an argument, and therefore
520 can't do a partial register update.
521
522 Prior to the recent fixes to check for partial updates, both read
523 and deprecated_write_register_bytes always checked to see if any
524 registers were stale, and then called target_fetch_registers (-1)
525 to update the whole set. This caused really slowed things down for
526 remote targets. */
527
528 /* Copy INLEN bytes of consecutive data from registers
529 starting with the INREGBYTE'th byte of register data
530 into memory at MYADDR. */
531
532 void
533 deprecated_read_register_bytes (int in_start, char *in_buf, int in_len)
534 {
535 int in_end = in_start + in_len;
536 int regnum;
537 char reg_buf[MAX_REGISTER_SIZE];
538
539 /* See if we are trying to read bytes from out-of-date registers. If so,
540 update just those registers. */
541
542 for (regnum = 0; regnum < NUM_REGS + NUM_PSEUDO_REGS; regnum++)
543 {
544 int reg_start;
545 int reg_end;
546 int reg_len;
547 int start;
548 int end;
549 int byte;
550
551 reg_start = DEPRECATED_REGISTER_BYTE (regnum);
552 reg_len = register_size (current_gdbarch, regnum);
553 reg_end = reg_start + reg_len;
554
555 if (reg_end <= in_start || in_end <= reg_start)
556 /* The range the user wants to read doesn't overlap with regnum. */
557 continue;
558
559 if (REGISTER_NAME (regnum) != NULL && *REGISTER_NAME (regnum) != '\0')
560 /* Force the cache to fetch the entire register. */
561 deprecated_read_register_gen (regnum, reg_buf);
562 else
563 /* Legacy note: even though this register is ``invalid'' we
564 still need to return something. It would appear that some
565 code relies on apparent gaps in the register array also
566 being returned. */
567 /* FIXME: cagney/2001-08-18: This is just silly. It defeats
568 the entire register read/write flow of control. Must
569 resist temptation to return 0xdeadbeef. */
570 memcpy (reg_buf, &deprecated_registers[reg_start], reg_len);
571
572 /* Legacy note: This function, for some reason, allows a NULL
573 input buffer. If the buffer is NULL, the registers are still
574 fetched, just the final transfer is skipped. */
575 if (in_buf == NULL)
576 continue;
577
578 /* start = max (reg_start, in_start) */
579 if (reg_start > in_start)
580 start = reg_start;
581 else
582 start = in_start;
583
584 /* end = min (reg_end, in_end) */
585 if (reg_end < in_end)
586 end = reg_end;
587 else
588 end = in_end;
589
590 /* Transfer just the bytes common to both IN_BUF and REG_BUF */
591 for (byte = start; byte < end; byte++)
592 {
593 in_buf[byte - in_start] = reg_buf[byte - reg_start];
594 }
595 }
596 }
597
598 void
599 regcache_raw_read (struct regcache *regcache, int regnum, void *buf)
600 {
601 gdb_assert (regcache != NULL && buf != NULL);
602 gdb_assert (regnum >= 0 && regnum < regcache->descr->nr_raw_registers);
603 /* Make certain that the register cache is up-to-date with respect
604 to the current thread. This switching shouldn't be necessary
605 only there is still only one target side register cache. Sigh!
606 On the bright side, at least there is a regcache object. */
607 if (!regcache->readonly_p)
608 {
609 gdb_assert (regcache == current_regcache);
610 if (! ptid_equal (registers_ptid, inferior_ptid))
611 {
612 registers_changed ();
613 registers_ptid = inferior_ptid;
614 }
615 if (!register_cached (regnum))
616 target_fetch_registers (regnum);
617 }
618 /* Copy the value directly into the register cache. */
619 memcpy (buf, register_buffer (regcache, regnum),
620 regcache->descr->sizeof_register[regnum]);
621 }
622
623 void
624 regcache_raw_read_signed (struct regcache *regcache, int regnum, LONGEST *val)
625 {
626 char *buf;
627 gdb_assert (regcache != NULL);
628 gdb_assert (regnum >= 0 && regnum < regcache->descr->nr_raw_registers);
629 buf = alloca (regcache->descr->sizeof_register[regnum]);
630 regcache_raw_read (regcache, regnum, buf);
631 (*val) = extract_signed_integer (buf,
632 regcache->descr->sizeof_register[regnum]);
633 }
634
635 void
636 regcache_raw_read_unsigned (struct regcache *regcache, int regnum,
637 ULONGEST *val)
638 {
639 char *buf;
640 gdb_assert (regcache != NULL);
641 gdb_assert (regnum >= 0 && regnum < regcache->descr->nr_raw_registers);
642 buf = alloca (regcache->descr->sizeof_register[regnum]);
643 regcache_raw_read (regcache, regnum, buf);
644 (*val) = extract_unsigned_integer (buf,
645 regcache->descr->sizeof_register[regnum]);
646 }
647
648 void
649 regcache_raw_write_signed (struct regcache *regcache, int regnum, LONGEST val)
650 {
651 void *buf;
652 gdb_assert (regcache != NULL);
653 gdb_assert (regnum >=0 && regnum < regcache->descr->nr_raw_registers);
654 buf = alloca (regcache->descr->sizeof_register[regnum]);
655 store_signed_integer (buf, regcache->descr->sizeof_register[regnum], val);
656 regcache_raw_write (regcache, regnum, buf);
657 }
658
659 void
660 regcache_raw_write_unsigned (struct regcache *regcache, int regnum,
661 ULONGEST val)
662 {
663 void *buf;
664 gdb_assert (regcache != NULL);
665 gdb_assert (regnum >=0 && regnum < regcache->descr->nr_raw_registers);
666 buf = alloca (regcache->descr->sizeof_register[regnum]);
667 store_unsigned_integer (buf, regcache->descr->sizeof_register[regnum], val);
668 regcache_raw_write (regcache, regnum, buf);
669 }
670
671 void
672 deprecated_read_register_gen (int regnum, char *buf)
673 {
674 gdb_assert (current_regcache != NULL);
675 gdb_assert (current_regcache->descr->gdbarch == current_gdbarch);
676 regcache_cooked_read (current_regcache, regnum, buf);
677 }
678
679 void
680 regcache_cooked_read (struct regcache *regcache, int regnum, void *buf)
681 {
682 gdb_assert (regnum >= 0);
683 gdb_assert (regnum < regcache->descr->nr_cooked_registers);
684 if (regnum < regcache->descr->nr_raw_registers)
685 regcache_raw_read (regcache, regnum, buf);
686 else if (regcache->readonly_p
687 && regnum < regcache->descr->nr_cooked_registers
688 && regcache->register_valid_p[regnum])
689 /* Read-only register cache, perhaps the cooked value was cached? */
690 memcpy (buf, register_buffer (regcache, regnum),
691 regcache->descr->sizeof_register[regnum]);
692 else
693 gdbarch_pseudo_register_read (regcache->descr->gdbarch, regcache,
694 regnum, buf);
695 }
696
697 void
698 regcache_cooked_read_signed (struct regcache *regcache, int regnum,
699 LONGEST *val)
700 {
701 char *buf;
702 gdb_assert (regcache != NULL);
703 gdb_assert (regnum >= 0 && regnum < regcache->descr->nr_cooked_registers);
704 buf = alloca (regcache->descr->sizeof_register[regnum]);
705 regcache_cooked_read (regcache, regnum, buf);
706 (*val) = extract_signed_integer (buf,
707 regcache->descr->sizeof_register[regnum]);
708 }
709
710 void
711 regcache_cooked_read_unsigned (struct regcache *regcache, int regnum,
712 ULONGEST *val)
713 {
714 char *buf;
715 gdb_assert (regcache != NULL);
716 gdb_assert (regnum >= 0 && regnum < regcache->descr->nr_cooked_registers);
717 buf = alloca (regcache->descr->sizeof_register[regnum]);
718 regcache_cooked_read (regcache, regnum, buf);
719 (*val) = extract_unsigned_integer (buf,
720 regcache->descr->sizeof_register[regnum]);
721 }
722
723 void
724 regcache_cooked_write_signed (struct regcache *regcache, int regnum,
725 LONGEST val)
726 {
727 void *buf;
728 gdb_assert (regcache != NULL);
729 gdb_assert (regnum >=0 && regnum < regcache->descr->nr_cooked_registers);
730 buf = alloca (regcache->descr->sizeof_register[regnum]);
731 store_signed_integer (buf, regcache->descr->sizeof_register[regnum], val);
732 regcache_cooked_write (regcache, regnum, buf);
733 }
734
735 void
736 regcache_cooked_write_unsigned (struct regcache *regcache, int regnum,
737 ULONGEST val)
738 {
739 void *buf;
740 gdb_assert (regcache != NULL);
741 gdb_assert (regnum >=0 && regnum < regcache->descr->nr_cooked_registers);
742 buf = alloca (regcache->descr->sizeof_register[regnum]);
743 store_unsigned_integer (buf, regcache->descr->sizeof_register[regnum], val);
744 regcache_cooked_write (regcache, regnum, buf);
745 }
746
747 void
748 regcache_raw_write (struct regcache *regcache, int regnum, const void *buf)
749 {
750 gdb_assert (regcache != NULL && buf != NULL);
751 gdb_assert (regnum >= 0 && regnum < regcache->descr->nr_raw_registers);
752 gdb_assert (!regcache->readonly_p);
753
754 /* On the sparc, writing %g0 is a no-op, so we don't even want to
755 change the registers array if something writes to this register. */
756 if (CANNOT_STORE_REGISTER (regnum))
757 return;
758
759 /* Make certain that the correct cache is selected. */
760 gdb_assert (regcache == current_regcache);
761 if (! ptid_equal (registers_ptid, inferior_ptid))
762 {
763 registers_changed ();
764 registers_ptid = inferior_ptid;
765 }
766
767 /* If we have a valid copy of the register, and new value == old
768 value, then don't bother doing the actual store. */
769 if (regcache_valid_p (regcache, regnum)
770 && (memcmp (register_buffer (regcache, regnum), buf,
771 regcache->descr->sizeof_register[regnum]) == 0))
772 return;
773
774 target_prepare_to_store ();
775 memcpy (register_buffer (regcache, regnum), buf,
776 regcache->descr->sizeof_register[regnum]);
777 regcache->register_valid_p[regnum] = 1;
778 target_store_registers (regnum);
779 }
780
781 void
782 deprecated_write_register_gen (int regnum, char *buf)
783 {
784 gdb_assert (current_regcache != NULL);
785 gdb_assert (current_regcache->descr->gdbarch == current_gdbarch);
786 regcache_cooked_write (current_regcache, regnum, buf);
787 }
788
789 void
790 regcache_cooked_write (struct regcache *regcache, int regnum, const void *buf)
791 {
792 gdb_assert (regnum >= 0);
793 gdb_assert (regnum < regcache->descr->nr_cooked_registers);
794 if (regnum < regcache->descr->nr_raw_registers)
795 regcache_raw_write (regcache, regnum, buf);
796 else
797 gdbarch_pseudo_register_write (regcache->descr->gdbarch, regcache,
798 regnum, buf);
799 }
800
801 /* Copy INLEN bytes of consecutive data from memory at MYADDR
802 into registers starting with the MYREGSTART'th byte of register data. */
803
804 void
805 deprecated_write_register_bytes (int myregstart, char *myaddr, int inlen)
806 {
807 int myregend = myregstart + inlen;
808 int regnum;
809
810 target_prepare_to_store ();
811
812 /* Scan through the registers updating any that are covered by the
813 range myregstart<=>myregend using write_register_gen, which does
814 nice things like handling threads, and avoiding updates when the
815 new and old contents are the same. */
816
817 for (regnum = 0; regnum < NUM_REGS + NUM_PSEUDO_REGS; regnum++)
818 {
819 int regstart, regend;
820
821 regstart = DEPRECATED_REGISTER_BYTE (regnum);
822 regend = regstart + register_size (current_gdbarch, regnum);
823
824 /* Is this register completely outside the range the user is writing? */
825 if (myregend <= regstart || regend <= myregstart)
826 /* do nothing */ ;
827
828 /* Is this register completely within the range the user is writing? */
829 else if (myregstart <= regstart && regend <= myregend)
830 deprecated_write_register_gen (regnum, myaddr + (regstart - myregstart));
831
832 /* The register partially overlaps the range being written. */
833 else
834 {
835 char regbuf[MAX_REGISTER_SIZE];
836 /* What's the overlap between this register's bytes and
837 those the caller wants to write? */
838 int overlapstart = max (regstart, myregstart);
839 int overlapend = min (regend, myregend);
840
841 /* We may be doing a partial update of an invalid register.
842 Update it from the target before scribbling on it. */
843 deprecated_read_register_gen (regnum, regbuf);
844
845 memcpy (&deprecated_registers[overlapstart],
846 myaddr + (overlapstart - myregstart),
847 overlapend - overlapstart);
848
849 target_store_registers (regnum);
850 }
851 }
852 }
853
854 /* Perform a partial register transfer using a read, modify, write
855 operation. */
856
857 typedef void (regcache_read_ftype) (struct regcache *regcache, int regnum,
858 void *buf);
859 typedef void (regcache_write_ftype) (struct regcache *regcache, int regnum,
860 const void *buf);
861
862 static void
863 regcache_xfer_part (struct regcache *regcache, int regnum,
864 int offset, int len, void *in, const void *out,
865 regcache_read_ftype *read, regcache_write_ftype *write)
866 {
867 struct regcache_descr *descr = regcache->descr;
868 bfd_byte reg[MAX_REGISTER_SIZE];
869 gdb_assert (offset >= 0 && offset <= descr->sizeof_register[regnum]);
870 gdb_assert (len >= 0 && offset + len <= descr->sizeof_register[regnum]);
871 /* Something to do? */
872 if (offset + len == 0)
873 return;
874 /* Read (when needed) ... */
875 if (in != NULL
876 || offset > 0
877 || offset + len < descr->sizeof_register[regnum])
878 {
879 gdb_assert (read != NULL);
880 read (regcache, regnum, reg);
881 }
882 /* ... modify ... */
883 if (in != NULL)
884 memcpy (in, reg + offset, len);
885 if (out != NULL)
886 memcpy (reg + offset, out, len);
887 /* ... write (when needed). */
888 if (out != NULL)
889 {
890 gdb_assert (write != NULL);
891 write (regcache, regnum, reg);
892 }
893 }
894
895 void
896 regcache_raw_read_part (struct regcache *regcache, int regnum,
897 int offset, int len, void *buf)
898 {
899 struct regcache_descr *descr = regcache->descr;
900 gdb_assert (regnum >= 0 && regnum < descr->nr_raw_registers);
901 regcache_xfer_part (regcache, regnum, offset, len, buf, NULL,
902 regcache_raw_read, regcache_raw_write);
903 }
904
905 void
906 regcache_raw_write_part (struct regcache *regcache, int regnum,
907 int offset, int len, const void *buf)
908 {
909 struct regcache_descr *descr = regcache->descr;
910 gdb_assert (regnum >= 0 && regnum < descr->nr_raw_registers);
911 regcache_xfer_part (regcache, regnum, offset, len, NULL, buf,
912 regcache_raw_read, regcache_raw_write);
913 }
914
915 void
916 regcache_cooked_read_part (struct regcache *regcache, int regnum,
917 int offset, int len, void *buf)
918 {
919 struct regcache_descr *descr = regcache->descr;
920 gdb_assert (regnum >= 0 && regnum < descr->nr_cooked_registers);
921 regcache_xfer_part (regcache, regnum, offset, len, buf, NULL,
922 regcache_cooked_read, regcache_cooked_write);
923 }
924
925 void
926 regcache_cooked_write_part (struct regcache *regcache, int regnum,
927 int offset, int len, const void *buf)
928 {
929 struct regcache_descr *descr = regcache->descr;
930 gdb_assert (regnum >= 0 && regnum < descr->nr_cooked_registers);
931 regcache_xfer_part (regcache, regnum, offset, len, NULL, buf,
932 regcache_cooked_read, regcache_cooked_write);
933 }
934
935 /* Hack to keep code that view the register buffer as raw bytes
936 working. */
937
938 int
939 register_offset_hack (struct gdbarch *gdbarch, int regnum)
940 {
941 struct regcache_descr *descr = regcache_descr (gdbarch);
942 gdb_assert (regnum >= 0 && regnum < descr->nr_cooked_registers);
943 return descr->register_offset[regnum];
944 }
945
946 /* Hack to keep code using register_bytes working. */
947
948 int
949 deprecated_register_bytes (void)
950 {
951 return current_regcache->descr->sizeof_raw_registers;
952 }
953
954 /* Return the contents of register REGNUM as an unsigned integer. */
955
956 ULONGEST
957 read_register (int regnum)
958 {
959 char *buf = alloca (register_size (current_gdbarch, regnum));
960 deprecated_read_register_gen (regnum, buf);
961 return (extract_unsigned_integer (buf, register_size (current_gdbarch, regnum)));
962 }
963
964 ULONGEST
965 read_register_pid (int regnum, ptid_t ptid)
966 {
967 ptid_t save_ptid;
968 int save_pid;
969 CORE_ADDR retval;
970
971 if (ptid_equal (ptid, inferior_ptid))
972 return read_register (regnum);
973
974 save_ptid = inferior_ptid;
975
976 inferior_ptid = ptid;
977
978 retval = read_register (regnum);
979
980 inferior_ptid = save_ptid;
981
982 return retval;
983 }
984
985 /* Store VALUE into the raw contents of register number REGNUM. */
986
987 void
988 write_register (int regnum, LONGEST val)
989 {
990 void *buf;
991 int size;
992 size = register_size (current_gdbarch, regnum);
993 buf = alloca (size);
994 store_signed_integer (buf, size, (LONGEST) val);
995 deprecated_write_register_gen (regnum, buf);
996 }
997
998 void
999 write_register_pid (int regnum, CORE_ADDR val, ptid_t ptid)
1000 {
1001 ptid_t save_ptid;
1002
1003 if (ptid_equal (ptid, inferior_ptid))
1004 {
1005 write_register (regnum, val);
1006 return;
1007 }
1008
1009 save_ptid = inferior_ptid;
1010
1011 inferior_ptid = ptid;
1012
1013 write_register (regnum, val);
1014
1015 inferior_ptid = save_ptid;
1016 }
1017
1018 /* Supply register REGNUM, whose contents are stored in BUF, to REGCACHE. */
1019
1020 void
1021 regcache_raw_supply (struct regcache *regcache, int regnum, const void *buf)
1022 {
1023 void *regbuf;
1024 size_t size;
1025
1026 gdb_assert (regcache != NULL);
1027 gdb_assert (regnum >= 0 && regnum < regcache->descr->nr_raw_registers);
1028 gdb_assert (!regcache->readonly_p);
1029
1030 /* FIXME: kettenis/20030828: It shouldn't be necessary to handle
1031 CURRENT_REGCACHE specially here. */
1032 if (regcache == current_regcache
1033 && !ptid_equal (registers_ptid, inferior_ptid))
1034 {
1035 registers_changed ();
1036 registers_ptid = inferior_ptid;
1037 }
1038
1039 regbuf = register_buffer (regcache, regnum);
1040 size = regcache->descr->sizeof_register[regnum];
1041
1042 if (buf)
1043 memcpy (regbuf, buf, size);
1044 else
1045 memset (regbuf, 0, size);
1046
1047 /* Mark the register as cached. */
1048 regcache->register_valid_p[regnum] = 1;
1049 }
1050
1051 /* Collect register REGNUM from REGCACHE and store its contents in BUF. */
1052
1053 void
1054 regcache_raw_collect (const struct regcache *regcache, int regnum, void *buf)
1055 {
1056 const void *regbuf;
1057 size_t size;
1058
1059 gdb_assert (regcache != NULL && buf != NULL);
1060 gdb_assert (regnum >= 0 && regnum < regcache->descr->nr_raw_registers);
1061
1062 regbuf = register_buffer (regcache, regnum);
1063 size = regcache->descr->sizeof_register[regnum];
1064 memcpy (buf, regbuf, size);
1065 }
1066
1067
1068 /* read_pc, write_pc, read_sp, deprecated_read_fp, etc. Special
1069 handling for registers PC, SP, and FP. */
1070
1071 /* NOTE: cagney/2001-02-18: The functions read_pc_pid(), read_pc(),
1072 read_sp(), and deprecated_read_fp(), will eventually be replaced by
1073 per-frame methods. Instead of relying on the global INFERIOR_PTID,
1074 they will use the contextual information provided by the FRAME.
1075 These functions do not belong in the register cache. */
1076
1077 /* NOTE: cagney/2003-06-07: The functions generic_target_write_pc(),
1078 write_pc_pid(), write_pc(), and deprecated_read_fp(), all need to
1079 be replaced by something that does not rely on global state. But
1080 what? */
1081
1082 CORE_ADDR
1083 read_pc_pid (ptid_t ptid)
1084 {
1085 ptid_t saved_inferior_ptid;
1086 CORE_ADDR pc_val;
1087
1088 /* In case ptid != inferior_ptid. */
1089 saved_inferior_ptid = inferior_ptid;
1090 inferior_ptid = ptid;
1091
1092 if (TARGET_READ_PC_P ())
1093 pc_val = TARGET_READ_PC (ptid);
1094 /* Else use per-frame method on get_current_frame. */
1095 else if (PC_REGNUM >= 0)
1096 {
1097 CORE_ADDR raw_val = read_register_pid (PC_REGNUM, ptid);
1098 pc_val = ADDR_BITS_REMOVE (raw_val);
1099 }
1100 else
1101 internal_error (__FILE__, __LINE__, "read_pc_pid: Unable to find PC");
1102
1103 inferior_ptid = saved_inferior_ptid;
1104 return pc_val;
1105 }
1106
1107 CORE_ADDR
1108 read_pc (void)
1109 {
1110 return read_pc_pid (inferior_ptid);
1111 }
1112
1113 void
1114 generic_target_write_pc (CORE_ADDR pc, ptid_t ptid)
1115 {
1116 if (PC_REGNUM >= 0)
1117 write_register_pid (PC_REGNUM, pc, ptid);
1118 else
1119 internal_error (__FILE__, __LINE__,
1120 "generic_target_write_pc");
1121 }
1122
1123 void
1124 write_pc_pid (CORE_ADDR pc, ptid_t ptid)
1125 {
1126 ptid_t saved_inferior_ptid;
1127
1128 /* In case ptid != inferior_ptid. */
1129 saved_inferior_ptid = inferior_ptid;
1130 inferior_ptid = ptid;
1131
1132 TARGET_WRITE_PC (pc, ptid);
1133
1134 inferior_ptid = saved_inferior_ptid;
1135 }
1136
1137 void
1138 write_pc (CORE_ADDR pc)
1139 {
1140 write_pc_pid (pc, inferior_ptid);
1141 }
1142
1143 /* Cope with strage ways of getting to the stack and frame pointers */
1144
1145 CORE_ADDR
1146 read_sp (void)
1147 {
1148 if (TARGET_READ_SP_P ())
1149 return TARGET_READ_SP ();
1150 else if (gdbarch_unwind_sp_p (current_gdbarch))
1151 return get_frame_sp (get_current_frame ());
1152 else if (SP_REGNUM >= 0)
1153 /* Try SP_REGNUM last: this makes all sorts of [wrong] assumptions
1154 about the architecture so put it at the end. */
1155 return read_register (SP_REGNUM);
1156 internal_error (__FILE__, __LINE__, "read_sp: Unable to find SP");
1157 }
1158
1159 void
1160 deprecated_write_sp (CORE_ADDR val)
1161 {
1162 gdb_assert (SP_REGNUM >= 0);
1163 write_register (SP_REGNUM, val);
1164 }
1165
1166 CORE_ADDR
1167 deprecated_read_fp (void)
1168 {
1169 if (DEPRECATED_FP_REGNUM >= 0)
1170 return read_register (DEPRECATED_FP_REGNUM);
1171 else
1172 internal_error (__FILE__, __LINE__, "deprecated_read_fp");
1173 }
1174
1175 static void
1176 reg_flush_command (char *command, int from_tty)
1177 {
1178 /* Force-flush the register cache. */
1179 registers_changed ();
1180 if (from_tty)
1181 printf_filtered ("Register cache flushed.\n");
1182 }
1183
1184 static void
1185 build_regcache (void)
1186 {
1187 current_regcache = regcache_xmalloc (current_gdbarch);
1188 current_regcache->readonly_p = 0;
1189 deprecated_registers = deprecated_grub_regcache_for_registers (current_regcache);
1190 deprecated_register_valid = current_regcache->register_valid_p;
1191 }
1192
1193 static void
1194 dump_endian_bytes (struct ui_file *file, enum bfd_endian endian,
1195 const unsigned char *buf, long len)
1196 {
1197 int i;
1198 switch (endian)
1199 {
1200 case BFD_ENDIAN_BIG:
1201 for (i = 0; i < len; i++)
1202 fprintf_unfiltered (file, "%02x", buf[i]);
1203 break;
1204 case BFD_ENDIAN_LITTLE:
1205 for (i = len - 1; i >= 0; i--)
1206 fprintf_unfiltered (file, "%02x", buf[i]);
1207 break;
1208 default:
1209 internal_error (__FILE__, __LINE__, "Bad switch");
1210 }
1211 }
1212
1213 enum regcache_dump_what
1214 {
1215 regcache_dump_none, regcache_dump_raw, regcache_dump_cooked, regcache_dump_groups
1216 };
1217
1218 static void
1219 regcache_dump (struct regcache *regcache, struct ui_file *file,
1220 enum regcache_dump_what what_to_dump)
1221 {
1222 struct cleanup *cleanups = make_cleanup (null_cleanup, NULL);
1223 struct gdbarch *gdbarch = regcache->descr->gdbarch;
1224 int regnum;
1225 int footnote_nr = 0;
1226 int footnote_register_size = 0;
1227 int footnote_register_offset = 0;
1228 int footnote_register_type_name_null = 0;
1229 long register_offset = 0;
1230 unsigned char buf[MAX_REGISTER_SIZE];
1231
1232 #if 0
1233 fprintf_unfiltered (file, "nr_raw_registers %d\n",
1234 regcache->descr->nr_raw_registers);
1235 fprintf_unfiltered (file, "nr_cooked_registers %d\n",
1236 regcache->descr->nr_cooked_registers);
1237 fprintf_unfiltered (file, "sizeof_raw_registers %ld\n",
1238 regcache->descr->sizeof_raw_registers);
1239 fprintf_unfiltered (file, "sizeof_raw_register_valid_p %ld\n",
1240 regcache->descr->sizeof_raw_register_valid_p);
1241 fprintf_unfiltered (file, "NUM_REGS %d\n", NUM_REGS);
1242 fprintf_unfiltered (file, "NUM_PSEUDO_REGS %d\n", NUM_PSEUDO_REGS);
1243 #endif
1244
1245 gdb_assert (regcache->descr->nr_cooked_registers
1246 == (NUM_REGS + NUM_PSEUDO_REGS));
1247
1248 for (regnum = -1; regnum < regcache->descr->nr_cooked_registers; regnum++)
1249 {
1250 /* Name. */
1251 if (regnum < 0)
1252 fprintf_unfiltered (file, " %-10s", "Name");
1253 else
1254 {
1255 const char *p = REGISTER_NAME (regnum);
1256 if (p == NULL)
1257 p = "";
1258 else if (p[0] == '\0')
1259 p = "''";
1260 fprintf_unfiltered (file, " %-10s", p);
1261 }
1262
1263 /* Number. */
1264 if (regnum < 0)
1265 fprintf_unfiltered (file, " %4s", "Nr");
1266 else
1267 fprintf_unfiltered (file, " %4d", regnum);
1268
1269 /* Relative number. */
1270 if (regnum < 0)
1271 fprintf_unfiltered (file, " %4s", "Rel");
1272 else if (regnum < NUM_REGS)
1273 fprintf_unfiltered (file, " %4d", regnum);
1274 else
1275 fprintf_unfiltered (file, " %4d", (regnum - NUM_REGS));
1276
1277 /* Offset. */
1278 if (regnum < 0)
1279 fprintf_unfiltered (file, " %6s ", "Offset");
1280 else
1281 {
1282 fprintf_unfiltered (file, " %6ld",
1283 regcache->descr->register_offset[regnum]);
1284 if (register_offset != regcache->descr->register_offset[regnum]
1285 || register_offset != DEPRECATED_REGISTER_BYTE (regnum)
1286 || (regnum > 0
1287 && (regcache->descr->register_offset[regnum]
1288 != (regcache->descr->register_offset[regnum - 1]
1289 + regcache->descr->sizeof_register[regnum - 1])))
1290 )
1291 {
1292 if (!footnote_register_offset)
1293 footnote_register_offset = ++footnote_nr;
1294 fprintf_unfiltered (file, "*%d", footnote_register_offset);
1295 }
1296 else
1297 fprintf_unfiltered (file, " ");
1298 register_offset = (regcache->descr->register_offset[regnum]
1299 + regcache->descr->sizeof_register[regnum]);
1300 }
1301
1302 /* Size. */
1303 if (regnum < 0)
1304 fprintf_unfiltered (file, " %5s ", "Size");
1305 else
1306 fprintf_unfiltered (file, " %5ld",
1307 regcache->descr->sizeof_register[regnum]);
1308
1309 /* Type. */
1310 {
1311 const char *t;
1312 if (regnum < 0)
1313 t = "Type";
1314 else
1315 {
1316 static const char blt[] = "builtin_type";
1317 t = TYPE_NAME (register_type (regcache->descr->gdbarch, regnum));
1318 if (t == NULL)
1319 {
1320 char *n;
1321 if (!footnote_register_type_name_null)
1322 footnote_register_type_name_null = ++footnote_nr;
1323 n = xstrprintf ("*%d", footnote_register_type_name_null);
1324 make_cleanup (xfree, n);
1325 t = n;
1326 }
1327 /* Chop a leading builtin_type. */
1328 if (strncmp (t, blt, strlen (blt)) == 0)
1329 t += strlen (blt);
1330 }
1331 fprintf_unfiltered (file, " %-15s", t);
1332 }
1333
1334 /* Leading space always present. */
1335 fprintf_unfiltered (file, " ");
1336
1337 /* Value, raw. */
1338 if (what_to_dump == regcache_dump_raw)
1339 {
1340 if (regnum < 0)
1341 fprintf_unfiltered (file, "Raw value");
1342 else if (regnum >= regcache->descr->nr_raw_registers)
1343 fprintf_unfiltered (file, "<cooked>");
1344 else if (!regcache_valid_p (regcache, regnum))
1345 fprintf_unfiltered (file, "<invalid>");
1346 else
1347 {
1348 regcache_raw_read (regcache, regnum, buf);
1349 fprintf_unfiltered (file, "0x");
1350 dump_endian_bytes (file, TARGET_BYTE_ORDER, buf,
1351 regcache->descr->sizeof_register[regnum]);
1352 }
1353 }
1354
1355 /* Value, cooked. */
1356 if (what_to_dump == regcache_dump_cooked)
1357 {
1358 if (regnum < 0)
1359 fprintf_unfiltered (file, "Cooked value");
1360 else
1361 {
1362 regcache_cooked_read (regcache, regnum, buf);
1363 fprintf_unfiltered (file, "0x");
1364 dump_endian_bytes (file, TARGET_BYTE_ORDER, buf,
1365 regcache->descr->sizeof_register[regnum]);
1366 }
1367 }
1368
1369 /* Group members. */
1370 if (what_to_dump == regcache_dump_groups)
1371 {
1372 if (regnum < 0)
1373 fprintf_unfiltered (file, "Groups");
1374 else
1375 {
1376 const char *sep = "";
1377 struct reggroup *group;
1378 for (group = reggroup_next (gdbarch, NULL);
1379 group != NULL;
1380 group = reggroup_next (gdbarch, group))
1381 {
1382 if (gdbarch_register_reggroup_p (gdbarch, regnum, group))
1383 {
1384 fprintf_unfiltered (file, "%s%s", sep, reggroup_name (group));
1385 sep = ",";
1386 }
1387 }
1388 }
1389 }
1390
1391 fprintf_unfiltered (file, "\n");
1392 }
1393
1394 if (footnote_register_size)
1395 fprintf_unfiltered (file, "*%d: Inconsistent register sizes.\n",
1396 footnote_register_size);
1397 if (footnote_register_offset)
1398 fprintf_unfiltered (file, "*%d: Inconsistent register offsets.\n",
1399 footnote_register_offset);
1400 if (footnote_register_type_name_null)
1401 fprintf_unfiltered (file,
1402 "*%d: Register type's name NULL.\n",
1403 footnote_register_type_name_null);
1404 do_cleanups (cleanups);
1405 }
1406
1407 static void
1408 regcache_print (char *args, enum regcache_dump_what what_to_dump)
1409 {
1410 if (args == NULL)
1411 regcache_dump (current_regcache, gdb_stdout, what_to_dump);
1412 else
1413 {
1414 struct ui_file *file = gdb_fopen (args, "w");
1415 if (file == NULL)
1416 perror_with_name ("maintenance print architecture");
1417 regcache_dump (current_regcache, file, what_to_dump);
1418 ui_file_delete (file);
1419 }
1420 }
1421
1422 static void
1423 maintenance_print_registers (char *args, int from_tty)
1424 {
1425 regcache_print (args, regcache_dump_none);
1426 }
1427
1428 static void
1429 maintenance_print_raw_registers (char *args, int from_tty)
1430 {
1431 regcache_print (args, regcache_dump_raw);
1432 }
1433
1434 static void
1435 maintenance_print_cooked_registers (char *args, int from_tty)
1436 {
1437 regcache_print (args, regcache_dump_cooked);
1438 }
1439
1440 static void
1441 maintenance_print_register_groups (char *args, int from_tty)
1442 {
1443 regcache_print (args, regcache_dump_groups);
1444 }
1445
1446 extern initialize_file_ftype _initialize_regcache; /* -Wmissing-prototype */
1447
1448 void
1449 _initialize_regcache (void)
1450 {
1451 regcache_descr_handle = gdbarch_data_register_post_init (init_regcache_descr);
1452 DEPRECATED_REGISTER_GDBARCH_SWAP (current_regcache);
1453 DEPRECATED_REGISTER_GDBARCH_SWAP (deprecated_registers);
1454 DEPRECATED_REGISTER_GDBARCH_SWAP (deprecated_register_valid);
1455 deprecated_register_gdbarch_swap (NULL, 0, build_regcache);
1456
1457 observer_attach_target_changed (regcache_observer_target_changed);
1458
1459 add_com ("flushregs", class_maintenance, reg_flush_command,
1460 "Force gdb to flush its register cache (maintainer command)");
1461
1462 /* Initialize the thread/process associated with the current set of
1463 registers. For now, -1 is special, and means `no current process'. */
1464 registers_ptid = pid_to_ptid (-1);
1465
1466 add_cmd ("registers", class_maintenance,
1467 maintenance_print_registers,
1468 "Print the internal register configuration.\
1469 Takes an optional file parameter.",
1470 &maintenanceprintlist);
1471 add_cmd ("raw-registers", class_maintenance,
1472 maintenance_print_raw_registers,
1473 "Print the internal register configuration including raw values.\
1474 Takes an optional file parameter.",
1475 &maintenanceprintlist);
1476 add_cmd ("cooked-registers", class_maintenance,
1477 maintenance_print_cooked_registers,
1478 "Print the internal register configuration including cooked values.\
1479 Takes an optional file parameter.",
1480 &maintenanceprintlist);
1481 add_cmd ("register-groups", class_maintenance,
1482 maintenance_print_register_groups,
1483 "Print the internal register configuration including each register's group.\
1484 Takes an optional file parameter.",
1485 &maintenanceprintlist);
1486
1487 }