Remove regcache_raw_write
[deliverable/binutils-gdb.git] / gdb / regcache.c
1 /* Cache and manage the values of registers for GDB, the GNU debugger.
2
3 Copyright (C) 1986-2018 Free Software Foundation, Inc.
4
5 This file is part of GDB.
6
7 This program is free software; you can redistribute it and/or modify
8 it under the terms of the GNU General Public License as published by
9 the Free Software Foundation; either version 3 of the License, or
10 (at your option) any later version.
11
12 This program is distributed in the hope that it will be useful,
13 but WITHOUT ANY WARRANTY; without even the implied warranty of
14 MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
15 GNU General Public License for more details.
16
17 You should have received a copy of the GNU General Public License
18 along with this program. If not, see <http://www.gnu.org/licenses/>. */
19
20 #include "defs.h"
21 #include "inferior.h"
22 #include "target.h"
23 #include "gdbarch.h"
24 #include "gdbcmd.h"
25 #include "regcache.h"
26 #include "reggroups.h"
27 #include "observable.h"
28 #include "regset.h"
29 #include <forward_list>
30
31 /*
32 * DATA STRUCTURE
33 *
34 * Here is the actual register cache.
35 */
36
37 /* Per-architecture object describing the layout of a register cache.
38 Computed once when the architecture is created. */
39
40 struct gdbarch_data *regcache_descr_handle;
41
42 struct regcache_descr
43 {
44 /* The architecture this descriptor belongs to. */
45 struct gdbarch *gdbarch;
46
47 /* The raw register cache. Each raw (or hard) register is supplied
48 by the target interface. The raw cache should not contain
49 redundant information - if the PC is constructed from two
50 registers then those registers and not the PC lives in the raw
51 cache. */
52 long sizeof_raw_registers;
53
54 /* The cooked register space. Each cooked register in the range
55 [0..NR_RAW_REGISTERS) is direct-mapped onto the corresponding raw
56 register. The remaining [NR_RAW_REGISTERS
57 .. NR_COOKED_REGISTERS) (a.k.a. pseudo registers) are mapped onto
58 both raw registers and memory by the architecture methods
59 gdbarch_pseudo_register_read and gdbarch_pseudo_register_write. */
60 int nr_cooked_registers;
61 long sizeof_cooked_registers;
62
63 /* Offset and size (in 8 bit bytes), of each register in the
64 register cache. All registers (including those in the range
65 [NR_RAW_REGISTERS .. NR_COOKED_REGISTERS) are given an
66 offset. */
67 long *register_offset;
68 long *sizeof_register;
69
70 /* Cached table containing the type of each register. */
71 struct type **register_type;
72 };
73
74 static void *
75 init_regcache_descr (struct gdbarch *gdbarch)
76 {
77 int i;
78 struct regcache_descr *descr;
79 gdb_assert (gdbarch != NULL);
80
81 /* Create an initial, zero filled, table. */
82 descr = GDBARCH_OBSTACK_ZALLOC (gdbarch, struct regcache_descr);
83 descr->gdbarch = gdbarch;
84
85 /* Total size of the register space. The raw registers are mapped
86 directly onto the raw register cache while the pseudo's are
87 either mapped onto raw-registers or memory. */
88 descr->nr_cooked_registers = gdbarch_num_regs (gdbarch)
89 + gdbarch_num_pseudo_regs (gdbarch);
90
91 /* Fill in a table of register types. */
92 descr->register_type
93 = GDBARCH_OBSTACK_CALLOC (gdbarch, descr->nr_cooked_registers,
94 struct type *);
95 for (i = 0; i < descr->nr_cooked_registers; i++)
96 descr->register_type[i] = gdbarch_register_type (gdbarch, i);
97
98 /* Construct a strictly RAW register cache. Don't allow pseudo's
99 into the register cache. */
100
101 /* Lay out the register cache.
102
103 NOTE: cagney/2002-05-22: Only register_type() is used when
104 constructing the register cache. It is assumed that the
105 register's raw size, virtual size and type length are all the
106 same. */
107
108 {
109 long offset = 0;
110
111 descr->sizeof_register
112 = GDBARCH_OBSTACK_CALLOC (gdbarch, descr->nr_cooked_registers, long);
113 descr->register_offset
114 = GDBARCH_OBSTACK_CALLOC (gdbarch, descr->nr_cooked_registers, long);
115 for (i = 0; i < gdbarch_num_regs (gdbarch); i++)
116 {
117 descr->sizeof_register[i] = TYPE_LENGTH (descr->register_type[i]);
118 descr->register_offset[i] = offset;
119 offset += descr->sizeof_register[i];
120 }
121 /* Set the real size of the raw register cache buffer. */
122 descr->sizeof_raw_registers = offset;
123
124 for (; i < descr->nr_cooked_registers; i++)
125 {
126 descr->sizeof_register[i] = TYPE_LENGTH (descr->register_type[i]);
127 descr->register_offset[i] = offset;
128 offset += descr->sizeof_register[i];
129 }
130 /* Set the real size of the readonly register cache buffer. */
131 descr->sizeof_cooked_registers = offset;
132 }
133
134 return descr;
135 }
136
137 static struct regcache_descr *
138 regcache_descr (struct gdbarch *gdbarch)
139 {
140 return (struct regcache_descr *) gdbarch_data (gdbarch,
141 regcache_descr_handle);
142 }
143
144 /* Utility functions returning useful register attributes stored in
145 the regcache descr. */
146
147 struct type *
148 register_type (struct gdbarch *gdbarch, int regnum)
149 {
150 struct regcache_descr *descr = regcache_descr (gdbarch);
151
152 gdb_assert (regnum >= 0 && regnum < descr->nr_cooked_registers);
153 return descr->register_type[regnum];
154 }
155
156 /* Utility functions returning useful register attributes stored in
157 the regcache descr. */
158
159 int
160 register_size (struct gdbarch *gdbarch, int regnum)
161 {
162 struct regcache_descr *descr = regcache_descr (gdbarch);
163 int size;
164
165 gdb_assert (regnum >= 0
166 && regnum < (gdbarch_num_regs (gdbarch)
167 + gdbarch_num_pseudo_regs (gdbarch)));
168 size = descr->sizeof_register[regnum];
169 return size;
170 }
171
172 /* See common/common-regcache.h. */
173
174 int
175 regcache_register_size (const struct regcache *regcache, int n)
176 {
177 return register_size (regcache->arch (), n);
178 }
179
180 reg_buffer::reg_buffer (gdbarch *gdbarch, bool has_pseudo)
181 : m_has_pseudo (has_pseudo)
182 {
183 gdb_assert (gdbarch != NULL);
184 m_descr = regcache_descr (gdbarch);
185
186 if (has_pseudo)
187 {
188 m_registers = XCNEWVEC (gdb_byte, m_descr->sizeof_cooked_registers);
189 m_register_status = XCNEWVEC (signed char,
190 m_descr->nr_cooked_registers);
191 }
192 else
193 {
194 m_registers = XCNEWVEC (gdb_byte, m_descr->sizeof_raw_registers);
195 m_register_status = XCNEWVEC (signed char, gdbarch_num_regs (gdbarch));
196 }
197 }
198
199 regcache::regcache (gdbarch *gdbarch, const address_space *aspace_)
200 /* The register buffers. A read/write register cache can only hold
201 [0 .. gdbarch_num_regs). */
202 : detached_regcache (gdbarch, false), m_aspace (aspace_)
203 {
204 m_ptid = minus_one_ptid;
205 }
206
207 static enum register_status
208 do_cooked_read (void *src, int regnum, gdb_byte *buf)
209 {
210 struct regcache *regcache = (struct regcache *) src;
211
212 return regcache_cooked_read (regcache, regnum, buf);
213 }
214
215 readonly_detached_regcache::readonly_detached_regcache (const regcache &src)
216 : readonly_detached_regcache (src.arch (), do_cooked_read, (void *) &src)
217 {
218 }
219
220 gdbarch *
221 reg_buffer::arch () const
222 {
223 return m_descr->gdbarch;
224 }
225
226 /* Cleanup class for invalidating a register. */
227
228 class regcache_invalidator
229 {
230 public:
231
232 regcache_invalidator (struct regcache *regcache, int regnum)
233 : m_regcache (regcache),
234 m_regnum (regnum)
235 {
236 }
237
238 ~regcache_invalidator ()
239 {
240 if (m_regcache != nullptr)
241 regcache_invalidate (m_regcache, m_regnum);
242 }
243
244 DISABLE_COPY_AND_ASSIGN (regcache_invalidator);
245
246 void release ()
247 {
248 m_regcache = nullptr;
249 }
250
251 private:
252
253 struct regcache *m_regcache;
254 int m_regnum;
255 };
256
257 /* Return a pointer to register REGNUM's buffer cache. */
258
259 gdb_byte *
260 reg_buffer::register_buffer (int regnum) const
261 {
262 return m_registers + m_descr->register_offset[regnum];
263 }
264
265 void
266 reg_buffer::save (regcache_cooked_read_ftype *cooked_read,
267 void *src)
268 {
269 struct gdbarch *gdbarch = m_descr->gdbarch;
270 int regnum;
271
272 /* It should have pseudo registers. */
273 gdb_assert (m_has_pseudo);
274 /* Clear the dest. */
275 memset (m_registers, 0, m_descr->sizeof_cooked_registers);
276 memset (m_register_status, 0, m_descr->nr_cooked_registers);
277 /* Copy over any registers (identified by their membership in the
278 save_reggroup) and mark them as valid. The full [0 .. gdbarch_num_regs +
279 gdbarch_num_pseudo_regs) range is checked since some architectures need
280 to save/restore `cooked' registers that live in memory. */
281 for (regnum = 0; regnum < m_descr->nr_cooked_registers; regnum++)
282 {
283 if (gdbarch_register_reggroup_p (gdbarch, regnum, save_reggroup))
284 {
285 gdb_byte *dst_buf = register_buffer (regnum);
286 enum register_status status = cooked_read (src, regnum, dst_buf);
287
288 gdb_assert (status != REG_UNKNOWN);
289
290 if (status != REG_VALID)
291 memset (dst_buf, 0, register_size (gdbarch, regnum));
292
293 m_register_status[regnum] = status;
294 }
295 }
296 }
297
298 void
299 regcache::restore (readonly_detached_regcache *src)
300 {
301 struct gdbarch *gdbarch = m_descr->gdbarch;
302 int regnum;
303
304 gdb_assert (src != NULL);
305 gdb_assert (src->m_has_pseudo);
306
307 gdb_assert (gdbarch == src->arch ());
308
309 /* Copy over any registers, being careful to only restore those that
310 were both saved and need to be restored. The full [0 .. gdbarch_num_regs
311 + gdbarch_num_pseudo_regs) range is checked since some architectures need
312 to save/restore `cooked' registers that live in memory. */
313 for (regnum = 0; regnum < m_descr->nr_cooked_registers; regnum++)
314 {
315 if (gdbarch_register_reggroup_p (gdbarch, regnum, restore_reggroup))
316 {
317 if (src->m_register_status[regnum] == REG_VALID)
318 cooked_write (regnum, src->register_buffer (regnum));
319 }
320 }
321 }
322
323 enum register_status
324 reg_buffer::get_register_status (int regnum) const
325 {
326 assert_regnum (regnum);
327
328 return (enum register_status) m_register_status[regnum];
329 }
330
331 void
332 regcache_invalidate (struct regcache *regcache, int regnum)
333 {
334 gdb_assert (regcache != NULL);
335 regcache->invalidate (regnum);
336 }
337
338 void
339 detached_regcache::invalidate (int regnum)
340 {
341 assert_regnum (regnum);
342 m_register_status[regnum] = REG_UNKNOWN;
343 }
344
345 void
346 reg_buffer::assert_regnum (int regnum) const
347 {
348 gdb_assert (regnum >= 0);
349 if (m_has_pseudo)
350 gdb_assert (regnum < m_descr->nr_cooked_registers);
351 else
352 gdb_assert (regnum < gdbarch_num_regs (arch ()));
353 }
354
355 /* Global structure containing the current regcache. */
356
357 /* NOTE: this is a write-through cache. There is no "dirty" bit for
358 recording if the register values have been changed (eg. by the
359 user). Therefore all registers must be written back to the
360 target when appropriate. */
361 std::forward_list<regcache *> regcache::current_regcache;
362
363 struct regcache *
364 get_thread_arch_aspace_regcache (ptid_t ptid, struct gdbarch *gdbarch,
365 struct address_space *aspace)
366 {
367 for (const auto &regcache : regcache::current_regcache)
368 if (ptid_equal (regcache->ptid (), ptid) && regcache->arch () == gdbarch)
369 return regcache;
370
371 regcache *new_regcache = new regcache (gdbarch, aspace);
372
373 regcache::current_regcache.push_front (new_regcache);
374 new_regcache->set_ptid (ptid);
375
376 return new_regcache;
377 }
378
379 struct regcache *
380 get_thread_arch_regcache (ptid_t ptid, struct gdbarch *gdbarch)
381 {
382 address_space *aspace = target_thread_address_space (ptid);
383
384 return get_thread_arch_aspace_regcache (ptid, gdbarch, aspace);
385 }
386
387 static ptid_t current_thread_ptid;
388 static struct gdbarch *current_thread_arch;
389
390 struct regcache *
391 get_thread_regcache (ptid_t ptid)
392 {
393 if (!current_thread_arch || !ptid_equal (current_thread_ptid, ptid))
394 {
395 current_thread_ptid = ptid;
396 current_thread_arch = target_thread_architecture (ptid);
397 }
398
399 return get_thread_arch_regcache (ptid, current_thread_arch);
400 }
401
402 struct regcache *
403 get_current_regcache (void)
404 {
405 return get_thread_regcache (inferior_ptid);
406 }
407
408 /* See common/common-regcache.h. */
409
410 struct regcache *
411 get_thread_regcache_for_ptid (ptid_t ptid)
412 {
413 return get_thread_regcache (ptid);
414 }
415
416 /* Observer for the target_changed event. */
417
418 static void
419 regcache_observer_target_changed (struct target_ops *target)
420 {
421 registers_changed ();
422 }
423
424 /* Update global variables old ptids to hold NEW_PTID if they were
425 holding OLD_PTID. */
426 void
427 regcache::regcache_thread_ptid_changed (ptid_t old_ptid, ptid_t new_ptid)
428 {
429 for (auto &regcache : regcache::current_regcache)
430 {
431 if (ptid_equal (regcache->ptid (), old_ptid))
432 regcache->set_ptid (new_ptid);
433 }
434 }
435
436 /* Low level examining and depositing of registers.
437
438 The caller is responsible for making sure that the inferior is
439 stopped before calling the fetching routines, or it will get
440 garbage. (a change from GDB version 3, in which the caller got the
441 value from the last stop). */
442
443 /* REGISTERS_CHANGED ()
444
445 Indicate that registers may have changed, so invalidate the cache. */
446
447 void
448 registers_changed_ptid (ptid_t ptid)
449 {
450 for (auto oit = regcache::current_regcache.before_begin (),
451 it = std::next (oit);
452 it != regcache::current_regcache.end ();
453 )
454 {
455 if (ptid_match ((*it)->ptid (), ptid))
456 {
457 delete *it;
458 it = regcache::current_regcache.erase_after (oit);
459 }
460 else
461 oit = it++;
462 }
463
464 if (ptid_match (current_thread_ptid, ptid))
465 {
466 current_thread_ptid = null_ptid;
467 current_thread_arch = NULL;
468 }
469
470 if (ptid_match (inferior_ptid, ptid))
471 {
472 /* We just deleted the regcache of the current thread. Need to
473 forget about any frames we have cached, too. */
474 reinit_frame_cache ();
475 }
476 }
477
478 void
479 registers_changed (void)
480 {
481 registers_changed_ptid (minus_one_ptid);
482
483 /* Force cleanup of any alloca areas if using C alloca instead of
484 a builtin alloca. This particular call is used to clean up
485 areas allocated by low level target code which may build up
486 during lengthy interactions between gdb and the target before
487 gdb gives control to the user (ie watchpoints). */
488 alloca (0);
489 }
490
491 void
492 regcache::raw_update (int regnum)
493 {
494 assert_regnum (regnum);
495
496 /* Make certain that the register cache is up-to-date with respect
497 to the current thread. This switching shouldn't be necessary
498 only there is still only one target side register cache. Sigh!
499 On the bright side, at least there is a regcache object. */
500
501 if (get_register_status (regnum) == REG_UNKNOWN)
502 {
503 target_fetch_registers (this, regnum);
504
505 /* A number of targets can't access the whole set of raw
506 registers (because the debug API provides no means to get at
507 them). */
508 if (m_register_status[regnum] == REG_UNKNOWN)
509 m_register_status[regnum] = REG_UNAVAILABLE;
510 }
511 }
512
513 enum register_status
514 readable_regcache::raw_read (int regnum, gdb_byte *buf)
515 {
516 gdb_assert (buf != NULL);
517 raw_update (regnum);
518
519 if (m_register_status[regnum] != REG_VALID)
520 memset (buf, 0, m_descr->sizeof_register[regnum]);
521 else
522 memcpy (buf, register_buffer (regnum),
523 m_descr->sizeof_register[regnum]);
524
525 return (enum register_status) m_register_status[regnum];
526 }
527
528 enum register_status
529 regcache_raw_read_signed (struct regcache *regcache, int regnum, LONGEST *val)
530 {
531 gdb_assert (regcache != NULL);
532 return regcache->raw_read (regnum, val);
533 }
534
535 template<typename T, typename>
536 enum register_status
537 readable_regcache::raw_read (int regnum, T *val)
538 {
539 gdb_byte *buf;
540 enum register_status status;
541
542 assert_regnum (regnum);
543 buf = (gdb_byte *) alloca (m_descr->sizeof_register[regnum]);
544 status = raw_read (regnum, buf);
545 if (status == REG_VALID)
546 *val = extract_integer<T> (buf,
547 m_descr->sizeof_register[regnum],
548 gdbarch_byte_order (m_descr->gdbarch));
549 else
550 *val = 0;
551 return status;
552 }
553
554 enum register_status
555 regcache_raw_read_unsigned (struct regcache *regcache, int regnum,
556 ULONGEST *val)
557 {
558 gdb_assert (regcache != NULL);
559 return regcache->raw_read (regnum, val);
560 }
561
562 void
563 regcache_raw_write_signed (struct regcache *regcache, int regnum, LONGEST val)
564 {
565 gdb_assert (regcache != NULL);
566 regcache->raw_write (regnum, val);
567 }
568
569 template<typename T, typename>
570 void
571 regcache::raw_write (int regnum, T val)
572 {
573 gdb_byte *buf;
574
575 assert_regnum (regnum);
576 buf = (gdb_byte *) alloca (m_descr->sizeof_register[regnum]);
577 store_integer (buf, m_descr->sizeof_register[regnum],
578 gdbarch_byte_order (m_descr->gdbarch), val);
579 raw_write (regnum, buf);
580 }
581
582 void
583 regcache_raw_write_unsigned (struct regcache *regcache, int regnum,
584 ULONGEST val)
585 {
586 gdb_assert (regcache != NULL);
587 regcache->raw_write (regnum, val);
588 }
589
590 LONGEST
591 regcache_raw_get_signed (struct regcache *regcache, int regnum)
592 {
593 LONGEST value;
594 enum register_status status;
595
596 status = regcache_raw_read_signed (regcache, regnum, &value);
597 if (status == REG_UNAVAILABLE)
598 throw_error (NOT_AVAILABLE_ERROR,
599 _("Register %d is not available"), regnum);
600 return value;
601 }
602
603 enum register_status
604 regcache_cooked_read (struct regcache *regcache, int regnum, gdb_byte *buf)
605 {
606 return regcache->cooked_read (regnum, buf);
607 }
608
609 enum register_status
610 readable_regcache::cooked_read (int regnum, gdb_byte *buf)
611 {
612 gdb_assert (regnum >= 0);
613 gdb_assert (regnum < m_descr->nr_cooked_registers);
614 if (regnum < num_raw_registers ())
615 return raw_read (regnum, buf);
616 else if (m_has_pseudo
617 && m_register_status[regnum] != REG_UNKNOWN)
618 {
619 if (m_register_status[regnum] == REG_VALID)
620 memcpy (buf, register_buffer (regnum),
621 m_descr->sizeof_register[regnum]);
622 else
623 memset (buf, 0, m_descr->sizeof_register[regnum]);
624
625 return (enum register_status) m_register_status[regnum];
626 }
627 else if (gdbarch_pseudo_register_read_value_p (m_descr->gdbarch))
628 {
629 struct value *mark, *computed;
630 enum register_status result = REG_VALID;
631
632 mark = value_mark ();
633
634 computed = gdbarch_pseudo_register_read_value (m_descr->gdbarch,
635 this, regnum);
636 if (value_entirely_available (computed))
637 memcpy (buf, value_contents_raw (computed),
638 m_descr->sizeof_register[regnum]);
639 else
640 {
641 memset (buf, 0, m_descr->sizeof_register[regnum]);
642 result = REG_UNAVAILABLE;
643 }
644
645 value_free_to_mark (mark);
646
647 return result;
648 }
649 else
650 return gdbarch_pseudo_register_read (m_descr->gdbarch, this,
651 regnum, buf);
652 }
653
654 struct value *
655 regcache_cooked_read_value (struct regcache *regcache, int regnum)
656 {
657 return regcache->cooked_read_value (regnum);
658 }
659
660 struct value *
661 readable_regcache::cooked_read_value (int regnum)
662 {
663 gdb_assert (regnum >= 0);
664 gdb_assert (regnum < m_descr->nr_cooked_registers);
665
666 if (regnum < num_raw_registers ()
667 || (m_has_pseudo && m_register_status[regnum] != REG_UNKNOWN)
668 || !gdbarch_pseudo_register_read_value_p (m_descr->gdbarch))
669 {
670 struct value *result;
671
672 result = allocate_value (register_type (m_descr->gdbarch, regnum));
673 VALUE_LVAL (result) = lval_register;
674 VALUE_REGNUM (result) = regnum;
675
676 /* It is more efficient in general to do this delegation in this
677 direction than in the other one, even though the value-based
678 API is preferred. */
679 if (cooked_read (regnum,
680 value_contents_raw (result)) == REG_UNAVAILABLE)
681 mark_value_bytes_unavailable (result, 0,
682 TYPE_LENGTH (value_type (result)));
683
684 return result;
685 }
686 else
687 return gdbarch_pseudo_register_read_value (m_descr->gdbarch,
688 this, regnum);
689 }
690
691 enum register_status
692 regcache_cooked_read_signed (struct regcache *regcache, int regnum,
693 LONGEST *val)
694 {
695 gdb_assert (regcache != NULL);
696 return regcache->cooked_read (regnum, val);
697 }
698
699 template<typename T, typename>
700 enum register_status
701 readable_regcache::cooked_read (int regnum, T *val)
702 {
703 enum register_status status;
704 gdb_byte *buf;
705
706 gdb_assert (regnum >= 0 && regnum < m_descr->nr_cooked_registers);
707 buf = (gdb_byte *) alloca (m_descr->sizeof_register[regnum]);
708 status = cooked_read (regnum, buf);
709 if (status == REG_VALID)
710 *val = extract_integer<T> (buf, m_descr->sizeof_register[regnum],
711 gdbarch_byte_order (m_descr->gdbarch));
712 else
713 *val = 0;
714 return status;
715 }
716
717 enum register_status
718 regcache_cooked_read_unsigned (struct regcache *regcache, int regnum,
719 ULONGEST *val)
720 {
721 gdb_assert (regcache != NULL);
722 return regcache->cooked_read (regnum, val);
723 }
724
725 void
726 regcache_cooked_write_signed (struct regcache *regcache, int regnum,
727 LONGEST val)
728 {
729 gdb_assert (regcache != NULL);
730 regcache->cooked_write (regnum, val);
731 }
732
733 template<typename T, typename>
734 void
735 regcache::cooked_write (int regnum, T val)
736 {
737 gdb_byte *buf;
738
739 gdb_assert (regnum >=0 && regnum < m_descr->nr_cooked_registers);
740 buf = (gdb_byte *) alloca (m_descr->sizeof_register[regnum]);
741 store_integer (buf, m_descr->sizeof_register[regnum],
742 gdbarch_byte_order (m_descr->gdbarch), val);
743 cooked_write (regnum, buf);
744 }
745
746 void
747 regcache_cooked_write_unsigned (struct regcache *regcache, int regnum,
748 ULONGEST val)
749 {
750 gdb_assert (regcache != NULL);
751 regcache->cooked_write (regnum, val);
752 }
753
754 void
755 regcache::raw_write (int regnum, const gdb_byte *buf)
756 {
757
758 gdb_assert (buf != NULL);
759 assert_regnum (regnum);
760
761 /* On the sparc, writing %g0 is a no-op, so we don't even want to
762 change the registers array if something writes to this register. */
763 if (gdbarch_cannot_store_register (arch (), regnum))
764 return;
765
766 /* If we have a valid copy of the register, and new value == old
767 value, then don't bother doing the actual store. */
768 if (get_register_status (regnum) == REG_VALID
769 && (memcmp (register_buffer (regnum), buf,
770 m_descr->sizeof_register[regnum]) == 0))
771 return;
772
773 target_prepare_to_store (this);
774 raw_supply (regnum, buf);
775
776 /* Invalidate the register after it is written, in case of a
777 failure. */
778 regcache_invalidator invalidator (this, regnum);
779
780 target_store_registers (this, regnum);
781
782 /* The target did not throw an error so we can discard invalidating
783 the register. */
784 invalidator.release ();
785 }
786
787 void
788 regcache_cooked_write (struct regcache *regcache, int regnum,
789 const gdb_byte *buf)
790 {
791 regcache->cooked_write (regnum, buf);
792 }
793
794 void
795 regcache::cooked_write (int regnum, const gdb_byte *buf)
796 {
797 gdb_assert (regnum >= 0);
798 gdb_assert (regnum < m_descr->nr_cooked_registers);
799 if (regnum < num_raw_registers ())
800 raw_write (regnum, buf);
801 else
802 gdbarch_pseudo_register_write (m_descr->gdbarch, this,
803 regnum, buf);
804 }
805
806 /* Perform a partial register transfer using a read, modify, write
807 operation. */
808
809 enum register_status
810 readable_regcache::read_part (int regnum, int offset, int len, void *in,
811 bool is_raw)
812 {
813 struct gdbarch *gdbarch = arch ();
814 gdb_byte *reg = (gdb_byte *) alloca (register_size (gdbarch, regnum));
815
816 gdb_assert (in != NULL);
817 gdb_assert (offset >= 0 && offset <= m_descr->sizeof_register[regnum]);
818 gdb_assert (len >= 0 && offset + len <= m_descr->sizeof_register[regnum]);
819 /* Something to do? */
820 if (offset + len == 0)
821 return REG_VALID;
822 /* Read (when needed) ... */
823 enum register_status status;
824
825 if (is_raw)
826 status = raw_read (regnum, reg);
827 else
828 status = cooked_read (regnum, reg);
829 if (status != REG_VALID)
830 return status;
831
832 /* ... modify ... */
833 memcpy (in, reg + offset, len);
834
835 return REG_VALID;
836 }
837
838 enum register_status
839 regcache::write_part (int regnum, int offset, int len,
840 const void *out, bool is_raw)
841 {
842 struct gdbarch *gdbarch = arch ();
843 gdb_byte *reg = (gdb_byte *) alloca (register_size (gdbarch, regnum));
844
845 gdb_assert (out != NULL);
846 gdb_assert (offset >= 0 && offset <= m_descr->sizeof_register[regnum]);
847 gdb_assert (len >= 0 && offset + len <= m_descr->sizeof_register[regnum]);
848 /* Something to do? */
849 if (offset + len == 0)
850 return REG_VALID;
851 /* Read (when needed) ... */
852 if (offset > 0
853 || offset + len < m_descr->sizeof_register[regnum])
854 {
855 enum register_status status;
856
857 if (is_raw)
858 status = raw_read (regnum, reg);
859 else
860 status = cooked_read (regnum, reg);
861 if (status != REG_VALID)
862 return status;
863 }
864
865 memcpy (reg + offset, out, len);
866 /* ... write (when needed). */
867 if (is_raw)
868 raw_write (regnum, reg);
869 else
870 cooked_write (regnum, reg);
871
872 return REG_VALID;
873 }
874
875 enum register_status
876 regcache_raw_read_part (struct regcache *regcache, int regnum,
877 int offset, int len, gdb_byte *buf)
878 {
879 return regcache->raw_read_part (regnum, offset, len, buf);
880 }
881
882 enum register_status
883 readable_regcache::raw_read_part (int regnum, int offset, int len, gdb_byte *buf)
884 {
885 assert_regnum (regnum);
886 return read_part (regnum, offset, len, buf, true);
887 }
888
889 void
890 regcache_raw_write_part (struct regcache *regcache, int regnum,
891 int offset, int len, const gdb_byte *buf)
892 {
893 regcache->raw_write_part (regnum, offset, len, buf);
894 }
895
896 void
897 regcache::raw_write_part (int regnum, int offset, int len,
898 const gdb_byte *buf)
899 {
900 assert_regnum (regnum);
901 write_part (regnum, offset, len, buf, true);
902 }
903
904 enum register_status
905 regcache_cooked_read_part (struct regcache *regcache, int regnum,
906 int offset, int len, gdb_byte *buf)
907 {
908 return regcache->cooked_read_part (regnum, offset, len, buf);
909 }
910
911
912 enum register_status
913 readable_regcache::cooked_read_part (int regnum, int offset, int len,
914 gdb_byte *buf)
915 {
916 gdb_assert (regnum >= 0 && regnum < m_descr->nr_cooked_registers);
917 return read_part (regnum, offset, len, buf, false);
918 }
919
920 void
921 regcache_cooked_write_part (struct regcache *regcache, int regnum,
922 int offset, int len, const gdb_byte *buf)
923 {
924 regcache->cooked_write_part (regnum, offset, len, buf);
925 }
926
927 void
928 regcache::cooked_write_part (int regnum, int offset, int len,
929 const gdb_byte *buf)
930 {
931 gdb_assert (regnum >= 0 && regnum < m_descr->nr_cooked_registers);
932 write_part (regnum, offset, len, buf, false);
933 }
934
935 /* Supply register REGNUM, whose contents are stored in BUF, to REGCACHE. */
936
937 void
938 regcache_raw_supply (struct regcache *regcache, int regnum, const void *buf)
939 {
940 gdb_assert (regcache != NULL);
941 regcache->raw_supply (regnum, buf);
942 }
943
944 void
945 detached_regcache::raw_supply (int regnum, const void *buf)
946 {
947 void *regbuf;
948 size_t size;
949
950 assert_regnum (regnum);
951
952 regbuf = register_buffer (regnum);
953 size = m_descr->sizeof_register[regnum];
954
955 if (buf)
956 {
957 memcpy (regbuf, buf, size);
958 m_register_status[regnum] = REG_VALID;
959 }
960 else
961 {
962 /* This memset not strictly necessary, but better than garbage
963 in case the register value manages to escape somewhere (due
964 to a bug, no less). */
965 memset (regbuf, 0, size);
966 m_register_status[regnum] = REG_UNAVAILABLE;
967 }
968 }
969
970 /* Supply register REGNUM to REGCACHE. Value to supply is an integer stored at
971 address ADDR, in target endian, with length ADDR_LEN and sign IS_SIGNED. If
972 the register size is greater than ADDR_LEN, then the integer will be sign or
973 zero extended. If the register size is smaller than the integer, then the
974 most significant bytes of the integer will be truncated. */
975
976 void
977 detached_regcache::raw_supply_integer (int regnum, const gdb_byte *addr,
978 int addr_len, bool is_signed)
979 {
980 enum bfd_endian byte_order = gdbarch_byte_order (m_descr->gdbarch);
981 gdb_byte *regbuf;
982 size_t regsize;
983
984 assert_regnum (regnum);
985
986 regbuf = register_buffer (regnum);
987 regsize = m_descr->sizeof_register[regnum];
988
989 copy_integer_to_size (regbuf, regsize, addr, addr_len, is_signed,
990 byte_order);
991 m_register_status[regnum] = REG_VALID;
992 }
993
994 /* Supply register REGNUM with zeroed value to REGCACHE. This is not the same
995 as calling raw_supply with NULL (which will set the state to
996 unavailable). */
997
998 void
999 detached_regcache::raw_supply_zeroed (int regnum)
1000 {
1001 void *regbuf;
1002 size_t size;
1003
1004 assert_regnum (regnum);
1005
1006 regbuf = register_buffer (regnum);
1007 size = m_descr->sizeof_register[regnum];
1008
1009 memset (regbuf, 0, size);
1010 m_register_status[regnum] = REG_VALID;
1011 }
1012
1013 /* Collect register REGNUM from REGCACHE and store its contents in BUF. */
1014
1015 void
1016 regcache_raw_collect (const struct regcache *regcache, int regnum, void *buf)
1017 {
1018 gdb_assert (regcache != NULL && buf != NULL);
1019 regcache->raw_collect (regnum, buf);
1020 }
1021
1022 void
1023 regcache::raw_collect (int regnum, void *buf) const
1024 {
1025 const void *regbuf;
1026 size_t size;
1027
1028 gdb_assert (buf != NULL);
1029 assert_regnum (regnum);
1030
1031 regbuf = register_buffer (regnum);
1032 size = m_descr->sizeof_register[regnum];
1033 memcpy (buf, regbuf, size);
1034 }
1035
1036 /* Transfer a single or all registers belonging to a certain register
1037 set to or from a buffer. This is the main worker function for
1038 regcache_supply_regset and regcache_collect_regset. */
1039
1040 /* Collect register REGNUM from REGCACHE. Store collected value as an integer
1041 at address ADDR, in target endian, with length ADDR_LEN and sign IS_SIGNED.
1042 If ADDR_LEN is greater than the register size, then the integer will be sign
1043 or zero extended. If ADDR_LEN is smaller than the register size, then the
1044 most significant bytes of the integer will be truncated. */
1045
1046 void
1047 regcache::raw_collect_integer (int regnum, gdb_byte *addr, int addr_len,
1048 bool is_signed) const
1049 {
1050 enum bfd_endian byte_order = gdbarch_byte_order (m_descr->gdbarch);
1051 const gdb_byte *regbuf;
1052 size_t regsize;
1053
1054 assert_regnum (regnum);
1055
1056 regbuf = register_buffer (regnum);
1057 regsize = m_descr->sizeof_register[regnum];
1058
1059 copy_integer_to_size (addr, addr_len, regbuf, regsize, is_signed,
1060 byte_order);
1061 }
1062
1063 void
1064 regcache::transfer_regset (const struct regset *regset,
1065 struct regcache *out_regcache,
1066 int regnum, const void *in_buf,
1067 void *out_buf, size_t size) const
1068 {
1069 const struct regcache_map_entry *map;
1070 int offs = 0, count;
1071
1072 for (map = (const struct regcache_map_entry *) regset->regmap;
1073 (count = map->count) != 0;
1074 map++)
1075 {
1076 int regno = map->regno;
1077 int slot_size = map->size;
1078
1079 if (slot_size == 0 && regno != REGCACHE_MAP_SKIP)
1080 slot_size = m_descr->sizeof_register[regno];
1081
1082 if (regno == REGCACHE_MAP_SKIP
1083 || (regnum != -1
1084 && (regnum < regno || regnum >= regno + count)))
1085 offs += count * slot_size;
1086
1087 else if (regnum == -1)
1088 for (; count--; regno++, offs += slot_size)
1089 {
1090 if (offs + slot_size > size)
1091 break;
1092
1093 if (out_buf)
1094 raw_collect (regno, (gdb_byte *) out_buf + offs);
1095 else
1096 out_regcache->raw_supply (regno, in_buf
1097 ? (const gdb_byte *) in_buf + offs
1098 : NULL);
1099 }
1100 else
1101 {
1102 /* Transfer a single register and return. */
1103 offs += (regnum - regno) * slot_size;
1104 if (offs + slot_size > size)
1105 return;
1106
1107 if (out_buf)
1108 raw_collect (regnum, (gdb_byte *) out_buf + offs);
1109 else
1110 out_regcache->raw_supply (regnum, in_buf
1111 ? (const gdb_byte *) in_buf + offs
1112 : NULL);
1113 return;
1114 }
1115 }
1116 }
1117
1118 /* Supply register REGNUM from BUF to REGCACHE, using the register map
1119 in REGSET. If REGNUM is -1, do this for all registers in REGSET.
1120 If BUF is NULL, set the register(s) to "unavailable" status. */
1121
1122 void
1123 regcache_supply_regset (const struct regset *regset,
1124 struct regcache *regcache,
1125 int regnum, const void *buf, size_t size)
1126 {
1127 regcache->supply_regset (regset, regnum, buf, size);
1128 }
1129
1130 void
1131 regcache::supply_regset (const struct regset *regset,
1132 int regnum, const void *buf, size_t size)
1133 {
1134 transfer_regset (regset, this, regnum, buf, NULL, size);
1135 }
1136
1137 /* Collect register REGNUM from REGCACHE to BUF, using the register
1138 map in REGSET. If REGNUM is -1, do this for all registers in
1139 REGSET. */
1140
1141 void
1142 regcache_collect_regset (const struct regset *regset,
1143 const struct regcache *regcache,
1144 int regnum, void *buf, size_t size)
1145 {
1146 regcache->collect_regset (regset, regnum, buf, size);
1147 }
1148
1149 void
1150 regcache::collect_regset (const struct regset *regset,
1151 int regnum, void *buf, size_t size) const
1152 {
1153 transfer_regset (regset, NULL, regnum, NULL, buf, size);
1154 }
1155
1156
1157 /* Special handling for register PC. */
1158
1159 CORE_ADDR
1160 regcache_read_pc (struct regcache *regcache)
1161 {
1162 struct gdbarch *gdbarch = regcache->arch ();
1163
1164 CORE_ADDR pc_val;
1165
1166 if (gdbarch_read_pc_p (gdbarch))
1167 pc_val = gdbarch_read_pc (gdbarch, regcache);
1168 /* Else use per-frame method on get_current_frame. */
1169 else if (gdbarch_pc_regnum (gdbarch) >= 0)
1170 {
1171 ULONGEST raw_val;
1172
1173 if (regcache_cooked_read_unsigned (regcache,
1174 gdbarch_pc_regnum (gdbarch),
1175 &raw_val) == REG_UNAVAILABLE)
1176 throw_error (NOT_AVAILABLE_ERROR, _("PC register is not available"));
1177
1178 pc_val = gdbarch_addr_bits_remove (gdbarch, raw_val);
1179 }
1180 else
1181 internal_error (__FILE__, __LINE__,
1182 _("regcache_read_pc: Unable to find PC"));
1183 return pc_val;
1184 }
1185
1186 void
1187 regcache_write_pc (struct regcache *regcache, CORE_ADDR pc)
1188 {
1189 struct gdbarch *gdbarch = regcache->arch ();
1190
1191 if (gdbarch_write_pc_p (gdbarch))
1192 gdbarch_write_pc (gdbarch, regcache, pc);
1193 else if (gdbarch_pc_regnum (gdbarch) >= 0)
1194 regcache_cooked_write_unsigned (regcache,
1195 gdbarch_pc_regnum (gdbarch), pc);
1196 else
1197 internal_error (__FILE__, __LINE__,
1198 _("regcache_write_pc: Unable to update PC"));
1199
1200 /* Writing the PC (for instance, from "load") invalidates the
1201 current frame. */
1202 reinit_frame_cache ();
1203 }
1204
1205 int
1206 reg_buffer::num_raw_registers () const
1207 {
1208 return gdbarch_num_regs (arch ());
1209 }
1210
1211 void
1212 regcache::debug_print_register (const char *func, int regno)
1213 {
1214 struct gdbarch *gdbarch = arch ();
1215
1216 fprintf_unfiltered (gdb_stdlog, "%s ", func);
1217 if (regno >= 0 && regno < gdbarch_num_regs (gdbarch)
1218 && gdbarch_register_name (gdbarch, regno) != NULL
1219 && gdbarch_register_name (gdbarch, regno)[0] != '\0')
1220 fprintf_unfiltered (gdb_stdlog, "(%s)",
1221 gdbarch_register_name (gdbarch, regno));
1222 else
1223 fprintf_unfiltered (gdb_stdlog, "(%d)", regno);
1224 if (regno >= 0 && regno < gdbarch_num_regs (gdbarch))
1225 {
1226 enum bfd_endian byte_order = gdbarch_byte_order (gdbarch);
1227 int size = register_size (gdbarch, regno);
1228 gdb_byte *buf = register_buffer (regno);
1229
1230 fprintf_unfiltered (gdb_stdlog, " = ");
1231 for (int i = 0; i < size; i++)
1232 {
1233 fprintf_unfiltered (gdb_stdlog, "%02x", buf[i]);
1234 }
1235 if (size <= sizeof (LONGEST))
1236 {
1237 ULONGEST val = extract_unsigned_integer (buf, size, byte_order);
1238
1239 fprintf_unfiltered (gdb_stdlog, " %s %s",
1240 core_addr_to_string_nz (val), plongest (val));
1241 }
1242 }
1243 fprintf_unfiltered (gdb_stdlog, "\n");
1244 }
1245
1246 static void
1247 reg_flush_command (const char *command, int from_tty)
1248 {
1249 /* Force-flush the register cache. */
1250 registers_changed ();
1251 if (from_tty)
1252 printf_filtered (_("Register cache flushed.\n"));
1253 }
1254
1255 void
1256 register_dump::dump (ui_file *file)
1257 {
1258 auto descr = regcache_descr (m_gdbarch);
1259 int regnum;
1260 int footnote_nr = 0;
1261 int footnote_register_offset = 0;
1262 int footnote_register_type_name_null = 0;
1263 long register_offset = 0;
1264
1265 gdb_assert (descr->nr_cooked_registers
1266 == (gdbarch_num_regs (m_gdbarch)
1267 + gdbarch_num_pseudo_regs (m_gdbarch)));
1268
1269 for (regnum = -1; regnum < descr->nr_cooked_registers; regnum++)
1270 {
1271 /* Name. */
1272 if (regnum < 0)
1273 fprintf_unfiltered (file, " %-10s", "Name");
1274 else
1275 {
1276 const char *p = gdbarch_register_name (m_gdbarch, regnum);
1277
1278 if (p == NULL)
1279 p = "";
1280 else if (p[0] == '\0')
1281 p = "''";
1282 fprintf_unfiltered (file, " %-10s", p);
1283 }
1284
1285 /* Number. */
1286 if (regnum < 0)
1287 fprintf_unfiltered (file, " %4s", "Nr");
1288 else
1289 fprintf_unfiltered (file, " %4d", regnum);
1290
1291 /* Relative number. */
1292 if (regnum < 0)
1293 fprintf_unfiltered (file, " %4s", "Rel");
1294 else if (regnum < gdbarch_num_regs (m_gdbarch))
1295 fprintf_unfiltered (file, " %4d", regnum);
1296 else
1297 fprintf_unfiltered (file, " %4d",
1298 (regnum - gdbarch_num_regs (m_gdbarch)));
1299
1300 /* Offset. */
1301 if (regnum < 0)
1302 fprintf_unfiltered (file, " %6s ", "Offset");
1303 else
1304 {
1305 fprintf_unfiltered (file, " %6ld",
1306 descr->register_offset[regnum]);
1307 if (register_offset != descr->register_offset[regnum]
1308 || (regnum > 0
1309 && (descr->register_offset[regnum]
1310 != (descr->register_offset[regnum - 1]
1311 + descr->sizeof_register[regnum - 1])))
1312 )
1313 {
1314 if (!footnote_register_offset)
1315 footnote_register_offset = ++footnote_nr;
1316 fprintf_unfiltered (file, "*%d", footnote_register_offset);
1317 }
1318 else
1319 fprintf_unfiltered (file, " ");
1320 register_offset = (descr->register_offset[regnum]
1321 + descr->sizeof_register[regnum]);
1322 }
1323
1324 /* Size. */
1325 if (regnum < 0)
1326 fprintf_unfiltered (file, " %5s ", "Size");
1327 else
1328 fprintf_unfiltered (file, " %5ld", descr->sizeof_register[regnum]);
1329
1330 /* Type. */
1331 {
1332 const char *t;
1333 std::string name_holder;
1334
1335 if (regnum < 0)
1336 t = "Type";
1337 else
1338 {
1339 static const char blt[] = "builtin_type";
1340
1341 t = TYPE_NAME (register_type (m_gdbarch, regnum));
1342 if (t == NULL)
1343 {
1344 if (!footnote_register_type_name_null)
1345 footnote_register_type_name_null = ++footnote_nr;
1346 name_holder = string_printf ("*%d",
1347 footnote_register_type_name_null);
1348 t = name_holder.c_str ();
1349 }
1350 /* Chop a leading builtin_type. */
1351 if (startswith (t, blt))
1352 t += strlen (blt);
1353 }
1354 fprintf_unfiltered (file, " %-15s", t);
1355 }
1356
1357 /* Leading space always present. */
1358 fprintf_unfiltered (file, " ");
1359
1360 dump_reg (file, regnum);
1361
1362 fprintf_unfiltered (file, "\n");
1363 }
1364
1365 if (footnote_register_offset)
1366 fprintf_unfiltered (file, "*%d: Inconsistent register offsets.\n",
1367 footnote_register_offset);
1368 if (footnote_register_type_name_null)
1369 fprintf_unfiltered (file,
1370 "*%d: Register type's name NULL.\n",
1371 footnote_register_type_name_null);
1372 }
1373
1374 #if GDB_SELF_TEST
1375 #include "selftest.h"
1376 #include "selftest-arch.h"
1377 #include "gdbthread.h"
1378 #include "target-float.h"
1379
1380 namespace selftests {
1381
1382 class regcache_access : public regcache
1383 {
1384 public:
1385
1386 /* Return the number of elements in current_regcache. */
1387
1388 static size_t
1389 current_regcache_size ()
1390 {
1391 return std::distance (regcache::current_regcache.begin (),
1392 regcache::current_regcache.end ());
1393 }
1394 };
1395
1396 static void
1397 current_regcache_test (void)
1398 {
1399 /* It is empty at the start. */
1400 SELF_CHECK (regcache_access::current_regcache_size () == 0);
1401
1402 ptid_t ptid1 (1), ptid2 (2), ptid3 (3);
1403
1404 /* Get regcache from ptid1, a new regcache is added to
1405 current_regcache. */
1406 regcache *regcache = get_thread_arch_aspace_regcache (ptid1,
1407 target_gdbarch (),
1408 NULL);
1409
1410 SELF_CHECK (regcache != NULL);
1411 SELF_CHECK (regcache->ptid () == ptid1);
1412 SELF_CHECK (regcache_access::current_regcache_size () == 1);
1413
1414 /* Get regcache from ptid2, a new regcache is added to
1415 current_regcache. */
1416 regcache = get_thread_arch_aspace_regcache (ptid2,
1417 target_gdbarch (),
1418 NULL);
1419 SELF_CHECK (regcache != NULL);
1420 SELF_CHECK (regcache->ptid () == ptid2);
1421 SELF_CHECK (regcache_access::current_regcache_size () == 2);
1422
1423 /* Get regcache from ptid3, a new regcache is added to
1424 current_regcache. */
1425 regcache = get_thread_arch_aspace_regcache (ptid3,
1426 target_gdbarch (),
1427 NULL);
1428 SELF_CHECK (regcache != NULL);
1429 SELF_CHECK (regcache->ptid () == ptid3);
1430 SELF_CHECK (regcache_access::current_regcache_size () == 3);
1431
1432 /* Get regcache from ptid2 again, nothing is added to
1433 current_regcache. */
1434 regcache = get_thread_arch_aspace_regcache (ptid2,
1435 target_gdbarch (),
1436 NULL);
1437 SELF_CHECK (regcache != NULL);
1438 SELF_CHECK (regcache->ptid () == ptid2);
1439 SELF_CHECK (regcache_access::current_regcache_size () == 3);
1440
1441 /* Mark ptid2 is changed, so regcache of ptid2 should be removed from
1442 current_regcache. */
1443 registers_changed_ptid (ptid2);
1444 SELF_CHECK (regcache_access::current_regcache_size () == 2);
1445 }
1446
1447 class target_ops_no_register : public test_target_ops
1448 {
1449 public:
1450 target_ops_no_register ()
1451 : test_target_ops {}
1452 {}
1453
1454 void reset ()
1455 {
1456 fetch_registers_called = 0;
1457 store_registers_called = 0;
1458 xfer_partial_called = 0;
1459 }
1460
1461 void fetch_registers (regcache *regs, int regno) override;
1462 void store_registers (regcache *regs, int regno) override;
1463
1464 enum target_xfer_status xfer_partial (enum target_object object,
1465 const char *annex, gdb_byte *readbuf,
1466 const gdb_byte *writebuf,
1467 ULONGEST offset, ULONGEST len,
1468 ULONGEST *xfered_len) override;
1469
1470 unsigned int fetch_registers_called = 0;
1471 unsigned int store_registers_called = 0;
1472 unsigned int xfer_partial_called = 0;
1473 };
1474
1475 void
1476 target_ops_no_register::fetch_registers (regcache *regs, int regno)
1477 {
1478 /* Mark register available. */
1479 regs->raw_supply_zeroed (regno);
1480 this->fetch_registers_called++;
1481 }
1482
1483 void
1484 target_ops_no_register::store_registers (regcache *regs, int regno)
1485 {
1486 this->store_registers_called++;
1487 }
1488
1489 enum target_xfer_status
1490 target_ops_no_register::xfer_partial (enum target_object object,
1491 const char *annex, gdb_byte *readbuf,
1492 const gdb_byte *writebuf,
1493 ULONGEST offset, ULONGEST len,
1494 ULONGEST *xfered_len)
1495 {
1496 this->xfer_partial_called++;
1497
1498 *xfered_len = len;
1499 return TARGET_XFER_OK;
1500 }
1501
1502 class readwrite_regcache : public regcache
1503 {
1504 public:
1505 readwrite_regcache (struct gdbarch *gdbarch)
1506 : regcache (gdbarch, nullptr)
1507 {}
1508 };
1509
1510 /* Test regcache::cooked_read gets registers from raw registers and
1511 memory instead of target to_{fetch,store}_registers. */
1512
1513 static void
1514 cooked_read_test (struct gdbarch *gdbarch)
1515 {
1516 /* Error out if debugging something, because we're going to push the
1517 test target, which would pop any existing target. */
1518 if (target_stack->to_stratum >= process_stratum)
1519 error (_("target already pushed"));
1520
1521 /* Create a mock environment. An inferior with a thread, with a
1522 process_stratum target pushed. */
1523
1524 target_ops_no_register mock_target;
1525 ptid_t mock_ptid (1, 1);
1526 inferior mock_inferior (mock_ptid.pid ());
1527 address_space mock_aspace {};
1528 mock_inferior.gdbarch = gdbarch;
1529 mock_inferior.aspace = &mock_aspace;
1530 thread_info mock_thread (&mock_inferior, mock_ptid);
1531
1532 scoped_restore restore_thread_list
1533 = make_scoped_restore (&thread_list, &mock_thread);
1534
1535 /* Add the mock inferior to the inferior list so that look ups by
1536 target+ptid can find it. */
1537 scoped_restore restore_inferior_list
1538 = make_scoped_restore (&inferior_list);
1539 inferior_list = &mock_inferior;
1540
1541 /* Switch to the mock inferior. */
1542 scoped_restore_current_inferior restore_current_inferior;
1543 set_current_inferior (&mock_inferior);
1544
1545 /* Push the process_stratum target so we can mock accessing
1546 registers. */
1547 push_target (&mock_target);
1548
1549 /* Pop it again on exit (return/exception). */
1550 struct on_exit
1551 {
1552 ~on_exit ()
1553 {
1554 pop_all_targets_at_and_above (process_stratum);
1555 }
1556 } pop_targets;
1557
1558 /* Switch to the mock thread. */
1559 scoped_restore restore_inferior_ptid
1560 = make_scoped_restore (&inferior_ptid, mock_ptid);
1561
1562 /* Test that read one raw register from regcache_no_target will go
1563 to the target layer. */
1564 int regnum;
1565
1566 /* Find a raw register which size isn't zero. */
1567 for (regnum = 0; regnum < gdbarch_num_regs (gdbarch); regnum++)
1568 {
1569 if (register_size (gdbarch, regnum) != 0)
1570 break;
1571 }
1572
1573 readwrite_regcache readwrite (gdbarch);
1574 gdb::def_vector<gdb_byte> buf (register_size (gdbarch, regnum));
1575
1576 readwrite.raw_read (regnum, buf.data ());
1577
1578 /* raw_read calls target_fetch_registers. */
1579 SELF_CHECK (mock_target.fetch_registers_called > 0);
1580 mock_target.reset ();
1581
1582 /* Mark all raw registers valid, so the following raw registers
1583 accesses won't go to target. */
1584 for (auto i = 0; i < gdbarch_num_regs (gdbarch); i++)
1585 readwrite.raw_update (i);
1586
1587 mock_target.reset ();
1588 /* Then, read all raw and pseudo registers, and don't expect calling
1589 to_{fetch,store}_registers. */
1590 for (int regnum = 0;
1591 regnum < gdbarch_num_regs (gdbarch) + gdbarch_num_pseudo_regs (gdbarch);
1592 regnum++)
1593 {
1594 if (register_size (gdbarch, regnum) == 0)
1595 continue;
1596
1597 gdb::def_vector<gdb_byte> buf (register_size (gdbarch, regnum));
1598
1599 SELF_CHECK (REG_VALID == readwrite.cooked_read (regnum, buf.data ()));
1600
1601 SELF_CHECK (mock_target.fetch_registers_called == 0);
1602 SELF_CHECK (mock_target.store_registers_called == 0);
1603
1604 /* Some SPU pseudo registers are got via TARGET_OBJECT_SPU. */
1605 if (gdbarch_bfd_arch_info (gdbarch)->arch != bfd_arch_spu)
1606 SELF_CHECK (mock_target.xfer_partial_called == 0);
1607
1608 mock_target.reset ();
1609 }
1610
1611 readonly_detached_regcache readonly (readwrite);
1612
1613 /* GDB may go to target layer to fetch all registers and memory for
1614 readonly regcache. */
1615 mock_target.reset ();
1616
1617 for (int regnum = 0;
1618 regnum < gdbarch_num_regs (gdbarch) + gdbarch_num_pseudo_regs (gdbarch);
1619 regnum++)
1620 {
1621 if (register_size (gdbarch, regnum) == 0)
1622 continue;
1623
1624 gdb::def_vector<gdb_byte> buf (register_size (gdbarch, regnum));
1625 enum register_status status = readonly.cooked_read (regnum,
1626 buf.data ());
1627
1628 if (regnum < gdbarch_num_regs (gdbarch))
1629 {
1630 auto bfd_arch = gdbarch_bfd_arch_info (gdbarch)->arch;
1631
1632 if (bfd_arch == bfd_arch_frv || bfd_arch == bfd_arch_h8300
1633 || bfd_arch == bfd_arch_m32c || bfd_arch == bfd_arch_sh
1634 || bfd_arch == bfd_arch_alpha || bfd_arch == bfd_arch_v850
1635 || bfd_arch == bfd_arch_msp430 || bfd_arch == bfd_arch_mep
1636 || bfd_arch == bfd_arch_mips || bfd_arch == bfd_arch_v850_rh850
1637 || bfd_arch == bfd_arch_tic6x || bfd_arch == bfd_arch_mn10300
1638 || bfd_arch == bfd_arch_rl78 || bfd_arch == bfd_arch_score
1639 || bfd_arch == bfd_arch_riscv)
1640 {
1641 /* Raw registers. If raw registers are not in save_reggroup,
1642 their status are unknown. */
1643 if (gdbarch_register_reggroup_p (gdbarch, regnum, save_reggroup))
1644 SELF_CHECK (status == REG_VALID);
1645 else
1646 SELF_CHECK (status == REG_UNKNOWN);
1647 }
1648 else
1649 SELF_CHECK (status == REG_VALID);
1650 }
1651 else
1652 {
1653 if (gdbarch_register_reggroup_p (gdbarch, regnum, save_reggroup))
1654 SELF_CHECK (status == REG_VALID);
1655 else
1656 {
1657 /* If pseudo registers are not in save_reggroup, some of
1658 them can be computed from saved raw registers, but some
1659 of them are unknown. */
1660 auto bfd_arch = gdbarch_bfd_arch_info (gdbarch)->arch;
1661
1662 if (bfd_arch == bfd_arch_frv
1663 || bfd_arch == bfd_arch_m32c
1664 || bfd_arch == bfd_arch_mep
1665 || bfd_arch == bfd_arch_sh)
1666 SELF_CHECK (status == REG_VALID || status == REG_UNKNOWN);
1667 else if (bfd_arch == bfd_arch_mips
1668 || bfd_arch == bfd_arch_h8300)
1669 SELF_CHECK (status == REG_UNKNOWN);
1670 else
1671 SELF_CHECK (status == REG_VALID);
1672 }
1673 }
1674
1675 SELF_CHECK (mock_target.fetch_registers_called == 0);
1676 SELF_CHECK (mock_target.store_registers_called == 0);
1677 SELF_CHECK (mock_target.xfer_partial_called == 0);
1678
1679 mock_target.reset ();
1680 }
1681 }
1682
1683 /* Test regcache::cooked_write by writing some expected contents to
1684 registers, and checking that contents read from registers and the
1685 expected contents are the same. */
1686
1687 static void
1688 cooked_write_test (struct gdbarch *gdbarch)
1689 {
1690 /* Error out if debugging something, because we're going to push the
1691 test target, which would pop any existing target. */
1692 if (target_stack->to_stratum >= process_stratum)
1693 error (_("target already pushed"));
1694
1695 /* Create a mock environment. A process_stratum target pushed. */
1696
1697 target_ops_no_register mock_target;
1698
1699 /* Push the process_stratum target so we can mock accessing
1700 registers. */
1701 push_target (&mock_target);
1702
1703 /* Pop it again on exit (return/exception). */
1704 struct on_exit
1705 {
1706 ~on_exit ()
1707 {
1708 pop_all_targets_at_and_above (process_stratum);
1709 }
1710 } pop_targets;
1711
1712 readwrite_regcache readwrite (gdbarch);
1713
1714 const int num_regs = (gdbarch_num_regs (gdbarch)
1715 + gdbarch_num_pseudo_regs (gdbarch));
1716
1717 for (auto regnum = 0; regnum < num_regs; regnum++)
1718 {
1719 if (register_size (gdbarch, regnum) == 0
1720 || gdbarch_cannot_store_register (gdbarch, regnum))
1721 continue;
1722
1723 auto bfd_arch = gdbarch_bfd_arch_info (gdbarch)->arch;
1724
1725 if ((bfd_arch == bfd_arch_sparc
1726 /* SPARC64_CWP_REGNUM, SPARC64_PSTATE_REGNUM,
1727 SPARC64_ASI_REGNUM and SPARC64_CCR_REGNUM are hard to test. */
1728 && gdbarch_ptr_bit (gdbarch) == 64
1729 && (regnum >= gdbarch_num_regs (gdbarch)
1730 && regnum <= gdbarch_num_regs (gdbarch) + 4))
1731 || (bfd_arch == bfd_arch_spu
1732 /* SPU pseudo registers except SPU_SP_REGNUM are got by
1733 TARGET_OBJECT_SPU. */
1734 && regnum >= gdbarch_num_regs (gdbarch) && regnum != 130))
1735 continue;
1736
1737 std::vector<gdb_byte> expected (register_size (gdbarch, regnum), 0);
1738 std::vector<gdb_byte> buf (register_size (gdbarch, regnum), 0);
1739 const auto type = register_type (gdbarch, regnum);
1740
1741 if (TYPE_CODE (type) == TYPE_CODE_FLT
1742 || TYPE_CODE (type) == TYPE_CODE_DECFLOAT)
1743 {
1744 /* Generate valid float format. */
1745 target_float_from_string (expected.data (), type, "1.25");
1746 }
1747 else if (TYPE_CODE (type) == TYPE_CODE_INT
1748 || TYPE_CODE (type) == TYPE_CODE_ARRAY
1749 || TYPE_CODE (type) == TYPE_CODE_PTR
1750 || TYPE_CODE (type) == TYPE_CODE_UNION
1751 || TYPE_CODE (type) == TYPE_CODE_STRUCT)
1752 {
1753 if (bfd_arch == bfd_arch_ia64
1754 || (regnum >= gdbarch_num_regs (gdbarch)
1755 && (bfd_arch == bfd_arch_xtensa
1756 || bfd_arch == bfd_arch_bfin
1757 || bfd_arch == bfd_arch_m32c
1758 /* m68hc11 pseudo registers are in memory. */
1759 || bfd_arch == bfd_arch_m68hc11
1760 || bfd_arch == bfd_arch_m68hc12
1761 || bfd_arch == bfd_arch_s390))
1762 || (bfd_arch == bfd_arch_frv
1763 /* FRV pseudo registers except iacc0. */
1764 && regnum > gdbarch_num_regs (gdbarch)))
1765 {
1766 /* Skip setting the expected values for some architecture
1767 registers. */
1768 }
1769 else if (bfd_arch == bfd_arch_rl78 && regnum == 40)
1770 {
1771 /* RL78_PC_REGNUM */
1772 for (auto j = 0; j < register_size (gdbarch, regnum) - 1; j++)
1773 expected[j] = j;
1774 }
1775 else
1776 {
1777 for (auto j = 0; j < register_size (gdbarch, regnum); j++)
1778 expected[j] = j;
1779 }
1780 }
1781 else if (TYPE_CODE (type) == TYPE_CODE_FLAGS)
1782 {
1783 /* No idea how to test flags. */
1784 continue;
1785 }
1786 else
1787 {
1788 /* If we don't know how to create the expected value for the
1789 this type, make it fail. */
1790 SELF_CHECK (0);
1791 }
1792
1793 readwrite.cooked_write (regnum, expected.data ());
1794
1795 SELF_CHECK (readwrite.cooked_read (regnum, buf.data ()) == REG_VALID);
1796 SELF_CHECK (expected == buf);
1797 }
1798 }
1799
1800 } // namespace selftests
1801 #endif /* GDB_SELF_TEST */
1802
1803 void
1804 _initialize_regcache (void)
1805 {
1806 regcache_descr_handle
1807 = gdbarch_data_register_post_init (init_regcache_descr);
1808
1809 gdb::observers::target_changed.attach (regcache_observer_target_changed);
1810 gdb::observers::thread_ptid_changed.attach
1811 (regcache::regcache_thread_ptid_changed);
1812
1813 add_com ("flushregs", class_maintenance, reg_flush_command,
1814 _("Force gdb to flush its register cache (maintainer command)"));
1815
1816 #if GDB_SELF_TEST
1817 selftests::register_test ("current_regcache", selftests::current_regcache_test);
1818
1819 selftests::register_test_foreach_arch ("regcache::cooked_read_test",
1820 selftests::cooked_read_test);
1821 selftests::register_test_foreach_arch ("regcache::cooked_write_test",
1822 selftests::cooked_write_test);
1823 #endif
1824 }
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