sparc64-tdep.c revision 1.1.1.9 1 /* Target-dependent code for UltraSPARC.
2
3 Copyright (C) 2003-2024 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 "arch-utils.h"
21 #include "dwarf2/frame.h"
22 #include "event-top.h"
23 #include "extract-store-integer.h"
24 #include "frame.h"
25 #include "frame-base.h"
26 #include "frame-unwind.h"
27 #include "gdbcore.h"
28 #include "gdbtypes.h"
29 #include "inferior.h"
30 #include "symtab.h"
31 #include "objfiles.h"
32 #include "osabi.h"
33 #include "regcache.h"
34 #include "target-descriptions.h"
35 #include "target.h"
36 #include "value.h"
37 #include "sparc64-tdep.h"
38 #include <forward_list>
39
40 /* This file implements the SPARC 64-bit ABI as defined by the
41 section "Low-Level System Information" of the SPARC Compliance
42 Definition (SCD) 2.4.1, which is the 64-bit System V psABI for
43 SPARC. */
44
45 /* Please use the sparc32_-prefix for 32-bit specific code, the
46 sparc64_-prefix for 64-bit specific code and the sparc_-prefix for
47 code can handle both. */
48
49 /* The M7 processor supports an Application Data Integrity (ADI) feature
51 that detects invalid data accesses. When software allocates memory and
52 enables ADI on the allocated memory, it chooses a 4-bit version number,
53 sets the version in the upper 4 bits of the 64-bit pointer to that data,
54 and stores the 4-bit version in every cacheline of the object. Hardware
55 saves the latter in spare bits in the cache and memory hierarchy. On each
56 load and store, the processor compares the upper 4 VA (virtual address) bits
57 to the cacheline's version. If there is a mismatch, the processor generates
58 a version mismatch trap which can be either precise or disrupting.
59 The trap is an error condition which the kernel delivers to the process
60 as a SIGSEGV signal.
61
62 The upper 4 bits of the VA represent a version and are not part of the
63 true address. The processor clears these bits and sign extends bit 59
64 to generate the true address.
65
66 Note that 32-bit applications cannot use ADI. */
67
68
69 #include <algorithm>
70 #include "cli/cli-utils.h"
71 #include "cli/cli-cmds.h"
72 #include "auxv.h"
73
74 #define MAX_PROC_NAME_SIZE sizeof("/proc/99999/lwp/9999/adi/lstatus")
75
76 /* ELF Auxiliary vectors */
77 #ifndef AT_ADI_BLKSZ
78 #define AT_ADI_BLKSZ 34
79 #endif
80 #ifndef AT_ADI_NBITS
81 #define AT_ADI_NBITS 35
82 #endif
83 #ifndef AT_ADI_UEONADI
84 #define AT_ADI_UEONADI 36
85 #endif
86
87 /* ADI command list. */
88 static struct cmd_list_element *sparc64adilist = NULL;
89
90 /* ADI stat settings. */
91 struct adi_stat_t
92 {
93 /* The ADI block size. */
94 unsigned long blksize;
95
96 /* Number of bits used for an ADI version tag which can be
97 used together with the shift value for an ADI version tag
98 to encode or extract the ADI version value in a pointer. */
99 unsigned long nbits;
100
101 /* The maximum ADI version tag value supported. */
102 int max_version;
103
104 /* ADI version tag file. */
105 int tag_fd = 0;
106
107 /* ADI availability check has been done. */
108 bool checked_avail = false;
109
110 /* ADI is available. */
111 bool is_avail = false;
112
113 };
114
115 /* Per-process ADI stat info. */
116
117 struct sparc64_adi_info
118 {
119 sparc64_adi_info (pid_t pid_)
120 : pid (pid_)
121 {}
122
123 /* The process identifier. */
124 pid_t pid;
125
126 /* The ADI stat. */
127 adi_stat_t stat = {};
128
129 };
130
131 static std::forward_list<sparc64_adi_info> adi_proc_list;
132
133
134 /* Get ADI info for process PID, creating one if it doesn't exist. */
135
136 static sparc64_adi_info *
137 get_adi_info_proc (pid_t pid)
138 {
139 auto found = std::find_if (adi_proc_list.begin (), adi_proc_list.end (),
140 [&pid] (const sparc64_adi_info &info)
141 {
142 return info.pid == pid;
143 });
144
145 if (found == adi_proc_list.end ())
146 {
147 adi_proc_list.emplace_front (pid);
148 return &adi_proc_list.front ();
149 }
150 else
151 {
152 return &(*found);
153 }
154 }
155
156 static adi_stat_t
157 get_adi_info (pid_t pid)
158 {
159 sparc64_adi_info *proc;
160
161 proc = get_adi_info_proc (pid);
162 return proc->stat;
163 }
164
165 /* Is called when GDB is no longer debugging process PID. It
166 deletes data structure that keeps track of the ADI stat. */
167
168 void
169 sparc64_forget_process (pid_t pid)
170 {
171 fileio_error target_errno;
172
173 for (auto pit = adi_proc_list.before_begin (),
174 it = std::next (pit);
175 it != adi_proc_list.end ();
176 )
177 {
178 if ((*it).pid == pid)
179 {
180 if ((*it).stat.tag_fd > 0)
181 target_fileio_close ((*it).stat.tag_fd, &target_errno);
182 adi_proc_list.erase_after (pit);
183 break;
184 }
185 else
186 pit = it++;
187 }
188
189 }
190
191 /* Read attributes of a maps entry in /proc/[pid]/adi/maps. */
192
193 static void
194 read_maps_entry (const char *line,
195 ULONGEST *addr, ULONGEST *endaddr)
196 {
197 const char *p = line;
198
199 *addr = strtoulst (p, &p, 16);
200 if (*p == '-')
201 p++;
202
203 *endaddr = strtoulst (p, &p, 16);
204 }
205
206 /* Check if ADI is available. */
207
208 static bool
209 adi_available (void)
210 {
211 pid_t pid = inferior_ptid.pid ();
212 sparc64_adi_info *proc = get_adi_info_proc (pid);
213 CORE_ADDR value;
214
215 if (proc->stat.checked_avail)
216 return proc->stat.is_avail;
217
218 proc->stat.checked_avail = true;
219 if (target_auxv_search (AT_ADI_BLKSZ, &value) <= 0)
220 return false;
221 proc->stat.blksize = value;
222 target_auxv_search (AT_ADI_NBITS, &value);
223 proc->stat.nbits = value;
224 proc->stat.max_version = (1 << proc->stat.nbits) - 2;
225 proc->stat.is_avail = true;
226
227 return proc->stat.is_avail;
228 }
229
230 /* Normalize a versioned address - a VA with ADI bits (63-60) set. */
231
232 static CORE_ADDR
233 adi_normalize_address (CORE_ADDR addr)
234 {
235 adi_stat_t ast = get_adi_info (inferior_ptid.pid ());
236
237 if (ast.nbits)
238 {
239 /* Clear upper bits. */
240 addr &= ((uint64_t) -1) >> ast.nbits;
241
242 /* Sign extend. */
243 CORE_ADDR signbit = (uint64_t) 1 << (64 - ast.nbits - 1);
244 return (addr ^ signbit) - signbit;
245 }
246 return addr;
247 }
248
249 /* Align a normalized address - a VA with bit 59 sign extended into
250 ADI bits. */
251
252 static CORE_ADDR
253 adi_align_address (CORE_ADDR naddr)
254 {
255 adi_stat_t ast = get_adi_info (inferior_ptid.pid ());
256
257 return (naddr - (naddr % ast.blksize)) / ast.blksize;
258 }
259
260 /* Convert a byte count to count at a ratio of 1:adi_blksz. */
261
262 static int
263 adi_convert_byte_count (CORE_ADDR naddr, int nbytes, CORE_ADDR locl)
264 {
265 adi_stat_t ast = get_adi_info (inferior_ptid.pid ());
266
267 return ((naddr + nbytes + ast.blksize - 1) / ast.blksize) - locl;
268 }
269
270 /* The /proc/[pid]/adi/tags file, which allows gdb to get/set ADI
271 version in a target process, maps linearly to the address space
272 of the target process at a ratio of 1:adi_blksz.
273
274 A read (or write) at offset K in the file returns (or modifies)
275 the ADI version tag stored in the cacheline containing address
276 K * adi_blksz, encoded as 1 version tag per byte. The allowed
277 version tag values are between 0 and adi_stat.max_version. */
278
279 static int
280 adi_tag_fd (void)
281 {
282 pid_t pid = inferior_ptid.pid ();
283 sparc64_adi_info *proc = get_adi_info_proc (pid);
284
285 if (proc->stat.tag_fd != 0)
286 return proc->stat.tag_fd;
287
288 char cl_name[MAX_PROC_NAME_SIZE];
289 snprintf (cl_name, sizeof(cl_name), "/proc/%ld/adi/tags", (long) pid);
290 fileio_error target_errno;
291 proc->stat.tag_fd = target_fileio_open (NULL, cl_name, O_RDWR|O_EXCL,
292 false, 0, &target_errno);
293 return proc->stat.tag_fd;
294 }
295
296 /* Check if an address set is ADI enabled, using /proc/[pid]/adi/maps
297 which was exported by the kernel and contains the currently ADI
298 mapped memory regions and their access permissions. */
299
300 static bool
301 adi_is_addr_mapped (CORE_ADDR vaddr, size_t cnt)
302 {
303 char filename[MAX_PROC_NAME_SIZE];
304 size_t i = 0;
305
306 pid_t pid = inferior_ptid.pid ();
307 snprintf (filename, sizeof filename, "/proc/%ld/adi/maps", (long) pid);
308 gdb::unique_xmalloc_ptr<char> data
309 = target_fileio_read_stralloc (NULL, filename);
310 if (data)
311 {
312 adi_stat_t adi_stat = get_adi_info (pid);
313 char *saveptr;
314 for (char *line = strtok_r (data.get (), "\n", &saveptr);
315 line;
316 line = strtok_r (NULL, "\n", &saveptr))
317 {
318 ULONGEST addr, endaddr;
319
320 read_maps_entry (line, &addr, &endaddr);
321
322 while (((vaddr + i) * adi_stat.blksize) >= addr
323 && ((vaddr + i) * adi_stat.blksize) < endaddr)
324 {
325 if (++i == cnt)
326 return true;
327 }
328 }
329 }
330 else
331 warning (_("unable to open /proc file '%s'"), filename);
332
333 return false;
334 }
335
336 /* Read ADI version tag value for memory locations starting at "VADDR"
337 for "SIZE" number of bytes. */
338
339 static int
340 adi_read_versions (CORE_ADDR vaddr, size_t size, gdb_byte *tags)
341 {
342 int fd = adi_tag_fd ();
343 if (fd == -1)
344 return -1;
345
346 if (!adi_is_addr_mapped (vaddr, size))
347 {
348 adi_stat_t ast = get_adi_info (inferior_ptid.pid ());
349 error(_("Address at %s is not in ADI maps"),
350 paddress (current_inferior ()->arch (), vaddr * ast.blksize));
351 }
352
353 fileio_error target_errno;
354 return target_fileio_pread (fd, tags, size, vaddr, &target_errno);
355 }
356
357 /* Write ADI version tag for memory locations starting at "VADDR" for
358 "SIZE" number of bytes to "TAGS". */
359
360 static int
361 adi_write_versions (CORE_ADDR vaddr, size_t size, unsigned char *tags)
362 {
363 int fd = adi_tag_fd ();
364 if (fd == -1)
365 return -1;
366
367 if (!adi_is_addr_mapped (vaddr, size))
368 {
369 adi_stat_t ast = get_adi_info (inferior_ptid.pid ());
370 error(_("Address at %s is not in ADI maps"),
371 paddress (current_inferior ()->arch (), vaddr * ast.blksize));
372 }
373
374 fileio_error target_errno;
375 return target_fileio_pwrite (fd, tags, size, vaddr, &target_errno);
376 }
377
378 /* Print ADI version tag value in "TAGS" for memory locations starting
379 at "VADDR" with number of "CNT". */
380
381 static void
382 adi_print_versions (CORE_ADDR vaddr, size_t cnt, gdb_byte *tags)
383 {
384 int v_idx = 0;
385 const int maxelts = 8; /* # of elements per line */
386
387 adi_stat_t adi_stat = get_adi_info (inferior_ptid.pid ());
388
389 while (cnt > 0)
390 {
391 QUIT;
392 gdb_printf ("%s:\t",
393 paddress (current_inferior ()->arch (),
394 vaddr * adi_stat.blksize));
395 for (int i = maxelts; i > 0 && cnt > 0; i--, cnt--)
396 {
397 if (tags[v_idx] == 0xff) /* no version tag */
398 gdb_printf ("-");
399 else
400 gdb_printf ("%1X", tags[v_idx]);
401 if (cnt > 1)
402 gdb_printf (" ");
403 ++v_idx;
404 }
405 gdb_printf ("\n");
406 vaddr += maxelts;
407 }
408 }
409
410 static void
411 do_examine (CORE_ADDR start, int bcnt)
412 {
413 CORE_ADDR vaddr = adi_normalize_address (start);
414
415 CORE_ADDR vstart = adi_align_address (vaddr);
416 int cnt = adi_convert_byte_count (vaddr, bcnt, vstart);
417 gdb::byte_vector buf (cnt);
418 int read_cnt = adi_read_versions (vstart, cnt, buf.data ());
419 if (read_cnt == -1)
420 error (_("No ADI information"));
421 else if (read_cnt < cnt)
422 error(_("No ADI information at %s"),
423 paddress (current_inferior ()->arch (), vaddr));
424
425 adi_print_versions (vstart, cnt, buf.data ());
426 }
427
428 static void
429 do_assign (CORE_ADDR start, size_t bcnt, int version)
430 {
431 CORE_ADDR vaddr = adi_normalize_address (start);
432
433 CORE_ADDR vstart = adi_align_address (vaddr);
434 int cnt = adi_convert_byte_count (vaddr, bcnt, vstart);
435 std::vector<unsigned char> buf (cnt, version);
436 int set_cnt = adi_write_versions (vstart, cnt, buf.data ());
437
438 if (set_cnt == -1)
439 error (_("No ADI information"));
440 else if (set_cnt < cnt)
441 error(_("No ADI information at %s"),
442 paddress (current_inferior ()->arch (), vaddr));
443 }
444
445 /* ADI examine version tag command.
446
447 Command syntax:
448
449 adi (examine|x)[/COUNT] [ADDR] */
450
451 static void
452 adi_examine_command (const char *args, int from_tty)
453 {
454 /* make sure program is active and adi is available */
455 if (!target_has_execution ())
456 error (_("ADI command requires a live process/thread"));
457
458 if (!adi_available ())
459 error (_("No ADI information"));
460
461 int cnt = 1;
462 const char *p = args;
463 if (p && *p == '/')
464 {
465 p++;
466 cnt = get_number (&p);
467 }
468
469 CORE_ADDR next_address = 0;
470 if (p != 0 && *p != 0)
471 next_address = parse_and_eval_address (p);
472 if (!cnt || !next_address)
473 error (_("Usage: adi examine|x[/COUNT] [ADDR]"));
474
475 do_examine (next_address, cnt);
476 }
477
478 /* ADI assign version tag command.
479
480 Command syntax:
481
482 adi (assign|a)[/COUNT] ADDR = VERSION */
483
484 static void
485 adi_assign_command (const char *args, int from_tty)
486 {
487 static const char *adi_usage
488 = N_("Usage: adi assign|a[/COUNT] ADDR = VERSION");
489
490 /* make sure program is active and adi is available */
491 if (!target_has_execution ())
492 error (_("ADI command requires a live process/thread"));
493
494 if (!adi_available ())
495 error (_("No ADI information"));
496
497 const char *exp = args;
498 if (exp == 0)
499 error_no_arg (_(adi_usage));
500
501 char *q = (char *) strchr (exp, '=');
502 if (q)
503 *q++ = 0;
504 else
505 error ("%s", _(adi_usage));
506
507 size_t cnt = 1;
508 const char *p = args;
509 if (exp && *exp == '/')
510 {
511 p = exp + 1;
512 cnt = get_number (&p);
513 }
514
515 CORE_ADDR next_address = 0;
516 if (p != 0 && *p != 0)
517 next_address = parse_and_eval_address (p);
518 else
519 error ("%s", _(adi_usage));
520
521 int version = 0;
522 if (q != NULL) /* parse version tag */
523 {
524 adi_stat_t ast = get_adi_info (inferior_ptid.pid ());
525 version = parse_and_eval_long (q);
526 if (version < 0 || version > ast.max_version)
527 error (_("Invalid ADI version tag %d"), version);
528 }
529
530 do_assign (next_address, cnt, version);
531 }
532
533 void _initialize_sparc64_adi_tdep ();
534 void
535 _initialize_sparc64_adi_tdep ()
536 {
537 add_basic_prefix_cmd ("adi", class_support,
538 _("ADI version related commands."),
539 &sparc64adilist, 0, &cmdlist);
540 cmd_list_element *adi_examine_cmd
541 = add_cmd ("examine", class_support, adi_examine_command,
542 _("Examine ADI versions."), &sparc64adilist);
543 add_alias_cmd ("x", adi_examine_cmd, no_class, 1, &sparc64adilist);
544 add_cmd ("assign", class_support, adi_assign_command,
545 _("Assign ADI versions."), &sparc64adilist);
546
547 }
548
549
551 /* The functions on this page are intended to be used to classify
552 function arguments. */
553
554 /* Check whether TYPE is "Integral or Pointer". */
555
556 static int
557 sparc64_integral_or_pointer_p (const struct type *type)
558 {
559 switch (type->code ())
560 {
561 case TYPE_CODE_INT:
562 case TYPE_CODE_BOOL:
563 case TYPE_CODE_CHAR:
564 case TYPE_CODE_ENUM:
565 case TYPE_CODE_RANGE:
566 {
567 int len = type->length ();
568 gdb_assert (len == 1 || len == 2 || len == 4 || len == 8);
569 }
570 return 1;
571 case TYPE_CODE_PTR:
572 case TYPE_CODE_REF:
573 case TYPE_CODE_RVALUE_REF:
574 {
575 int len = type->length ();
576 gdb_assert (len == 8);
577 }
578 return 1;
579 default:
580 break;
581 }
582
583 return 0;
584 }
585
586 /* Check whether TYPE is "Floating". */
587
588 static int
589 sparc64_floating_p (const struct type *type)
590 {
591 switch (type->code ())
592 {
593 case TYPE_CODE_FLT:
594 {
595 int len = type->length ();
596 gdb_assert (len == 4 || len == 8 || len == 16);
597 }
598 return 1;
599 default:
600 break;
601 }
602
603 return 0;
604 }
605
606 /* Check whether TYPE is "Complex Floating". */
607
608 static int
609 sparc64_complex_floating_p (const struct type *type)
610 {
611 switch (type->code ())
612 {
613 case TYPE_CODE_COMPLEX:
614 {
615 int len = type->length ();
616 gdb_assert (len == 8 || len == 16 || len == 32);
617 }
618 return 1;
619 default:
620 break;
621 }
622
623 return 0;
624 }
625
626 /* Check whether TYPE is "Structure or Union".
627
628 In terms of Ada subprogram calls, arrays are treated the same as
629 struct and union types. So this function also returns non-zero
630 for array types. */
631
632 static int
633 sparc64_structure_or_union_p (const struct type *type)
634 {
635 switch (type->code ())
636 {
637 case TYPE_CODE_STRUCT:
638 case TYPE_CODE_UNION:
639 case TYPE_CODE_ARRAY:
640 return 1;
641 default:
642 break;
643 }
644
645 return 0;
646 }
647
648
650 /* Construct types for ISA-specific registers. */
651
652 static struct type *
653 sparc64_pstate_type (struct gdbarch *gdbarch)
654 {
655 sparc_gdbarch_tdep *tdep = gdbarch_tdep<sparc_gdbarch_tdep> (gdbarch);
656
657 if (!tdep->sparc64_pstate_type)
658 {
659 struct type *type;
660
661 type = arch_flags_type (gdbarch, "builtin_type_sparc64_pstate", 64);
662 append_flags_type_flag (type, 0, "AG");
663 append_flags_type_flag (type, 1, "IE");
664 append_flags_type_flag (type, 2, "PRIV");
665 append_flags_type_flag (type, 3, "AM");
666 append_flags_type_flag (type, 4, "PEF");
667 append_flags_type_flag (type, 5, "RED");
668 append_flags_type_flag (type, 8, "TLE");
669 append_flags_type_flag (type, 9, "CLE");
670 append_flags_type_flag (type, 10, "PID0");
671 append_flags_type_flag (type, 11, "PID1");
672
673 tdep->sparc64_pstate_type = type;
674 }
675
676 return tdep->sparc64_pstate_type;
677 }
678
679 static struct type *
680 sparc64_ccr_type (struct gdbarch *gdbarch)
681 {
682 sparc_gdbarch_tdep *tdep = gdbarch_tdep<sparc_gdbarch_tdep> (gdbarch);
683
684 if (tdep->sparc64_ccr_type == NULL)
685 {
686 struct type *type;
687
688 type = arch_flags_type (gdbarch, "builtin_type_sparc64_ccr", 64);
689 append_flags_type_flag (type, 0, "icc.c");
690 append_flags_type_flag (type, 1, "icc.v");
691 append_flags_type_flag (type, 2, "icc.z");
692 append_flags_type_flag (type, 3, "icc.n");
693 append_flags_type_flag (type, 4, "xcc.c");
694 append_flags_type_flag (type, 5, "xcc.v");
695 append_flags_type_flag (type, 6, "xcc.z");
696 append_flags_type_flag (type, 7, "xcc.n");
697
698 tdep->sparc64_ccr_type = type;
699 }
700
701 return tdep->sparc64_ccr_type;
702 }
703
704 static struct type *
705 sparc64_fsr_type (struct gdbarch *gdbarch)
706 {
707 sparc_gdbarch_tdep *tdep = gdbarch_tdep<sparc_gdbarch_tdep> (gdbarch);
708
709 if (!tdep->sparc64_fsr_type)
710 {
711 struct type *type;
712
713 type = arch_flags_type (gdbarch, "builtin_type_sparc64_fsr", 64);
714 append_flags_type_flag (type, 0, "NXC");
715 append_flags_type_flag (type, 1, "DZC");
716 append_flags_type_flag (type, 2, "UFC");
717 append_flags_type_flag (type, 3, "OFC");
718 append_flags_type_flag (type, 4, "NVC");
719 append_flags_type_flag (type, 5, "NXA");
720 append_flags_type_flag (type, 6, "DZA");
721 append_flags_type_flag (type, 7, "UFA");
722 append_flags_type_flag (type, 8, "OFA");
723 append_flags_type_flag (type, 9, "NVA");
724 append_flags_type_flag (type, 22, "NS");
725 append_flags_type_flag (type, 23, "NXM");
726 append_flags_type_flag (type, 24, "DZM");
727 append_flags_type_flag (type, 25, "UFM");
728 append_flags_type_flag (type, 26, "OFM");
729 append_flags_type_flag (type, 27, "NVM");
730
731 tdep->sparc64_fsr_type = type;
732 }
733
734 return tdep->sparc64_fsr_type;
735 }
736
737 static struct type *
738 sparc64_fprs_type (struct gdbarch *gdbarch)
739 {
740 sparc_gdbarch_tdep *tdep = gdbarch_tdep<sparc_gdbarch_tdep> (gdbarch);
741
742 if (!tdep->sparc64_fprs_type)
743 {
744 struct type *type;
745
746 type = arch_flags_type (gdbarch, "builtin_type_sparc64_fprs", 64);
747 append_flags_type_flag (type, 0, "DL");
748 append_flags_type_flag (type, 1, "DU");
749 append_flags_type_flag (type, 2, "FEF");
750
751 tdep->sparc64_fprs_type = type;
752 }
753
754 return tdep->sparc64_fprs_type;
755 }
756
757
758 /* Register information. */
759 #define SPARC64_FPU_REGISTERS \
760 "f0", "f1", "f2", "f3", "f4", "f5", "f6", "f7", \
761 "f8", "f9", "f10", "f11", "f12", "f13", "f14", "f15", \
762 "f16", "f17", "f18", "f19", "f20", "f21", "f22", "f23", \
763 "f24", "f25", "f26", "f27", "f28", "f29", "f30", "f31", \
764 "f32", "f34", "f36", "f38", "f40", "f42", "f44", "f46", \
765 "f48", "f50", "f52", "f54", "f56", "f58", "f60", "f62"
766 #define SPARC64_CP0_REGISTERS \
767 "pc", "npc", \
768 /* FIXME: Give "state" a name until we start using register groups. */ \
769 "state", \
770 "fsr", \
771 "fprs", \
772 "y"
773
774 static const char * const sparc64_fpu_register_names[] = {
775 SPARC64_FPU_REGISTERS
776 };
777 static const char * const sparc64_cp0_register_names[] = {
778 SPARC64_CP0_REGISTERS
779 };
780
781 static const char * const sparc64_register_names[] =
782 {
783 SPARC_CORE_REGISTERS,
784 SPARC64_FPU_REGISTERS,
785 SPARC64_CP0_REGISTERS
786 };
787
788 /* Total number of registers. */
789 #define SPARC64_NUM_REGS ARRAY_SIZE (sparc64_register_names)
790
791 /* We provide the aliases %d0..%d62 and %q0..%q60 for the floating
792 registers as "psuedo" registers. */
793
794 static const char * const sparc64_pseudo_register_names[] =
795 {
796 "cwp", "pstate", "asi", "ccr",
797
798 "d0", "d2", "d4", "d6", "d8", "d10", "d12", "d14",
799 "d16", "d18", "d20", "d22", "d24", "d26", "d28", "d30",
800 "d32", "d34", "d36", "d38", "d40", "d42", "d44", "d46",
801 "d48", "d50", "d52", "d54", "d56", "d58", "d60", "d62",
802
803 "q0", "q4", "q8", "q12", "q16", "q20", "q24", "q28",
804 "q32", "q36", "q40", "q44", "q48", "q52", "q56", "q60",
805 };
806
807 /* Total number of pseudo registers. */
808 #define SPARC64_NUM_PSEUDO_REGS ARRAY_SIZE (sparc64_pseudo_register_names)
809
810 /* Return the name of pseudo register REGNUM. */
811
812 static const char *
813 sparc64_pseudo_register_name (struct gdbarch *gdbarch, int regnum)
814 {
815 regnum -= gdbarch_num_regs (gdbarch);
816
817 gdb_assert (regnum < SPARC64_NUM_PSEUDO_REGS);
818 return sparc64_pseudo_register_names[regnum];
819 }
820
821 /* Return the name of register REGNUM. */
822
823 static const char *
824 sparc64_register_name (struct gdbarch *gdbarch, int regnum)
825 {
826 if (tdesc_has_registers (gdbarch_target_desc (gdbarch)))
827 return tdesc_register_name (gdbarch, regnum);
828
829 if (regnum >= 0 && regnum < gdbarch_num_regs (gdbarch))
830 return sparc64_register_names[regnum];
831
832 return sparc64_pseudo_register_name (gdbarch, regnum);
833 }
834
835 /* Return the GDB type object for the "standard" data type of data in
836 pseudo register REGNUM. */
837
838 static struct type *
839 sparc64_pseudo_register_type (struct gdbarch *gdbarch, int regnum)
840 {
841 regnum -= gdbarch_num_regs (gdbarch);
842
843 if (regnum == SPARC64_CWP_REGNUM)
844 return builtin_type (gdbarch)->builtin_int64;
845 if (regnum == SPARC64_PSTATE_REGNUM)
846 return sparc64_pstate_type (gdbarch);
847 if (regnum == SPARC64_ASI_REGNUM)
848 return builtin_type (gdbarch)->builtin_int64;
849 if (regnum == SPARC64_CCR_REGNUM)
850 return sparc64_ccr_type (gdbarch);
851 if (regnum >= SPARC64_D0_REGNUM && regnum <= SPARC64_D62_REGNUM)
852 return builtin_type (gdbarch)->builtin_double;
853 if (regnum >= SPARC64_Q0_REGNUM && regnum <= SPARC64_Q60_REGNUM)
854 return builtin_type (gdbarch)->builtin_long_double;
855
856 internal_error (_("sparc64_pseudo_register_type: bad register number %d"),
857 regnum);
858 }
859
860 /* Return the GDB type object for the "standard" data type of data in
861 register REGNUM. */
862
863 static struct type *
864 sparc64_register_type (struct gdbarch *gdbarch, int regnum)
865 {
866 if (tdesc_has_registers (gdbarch_target_desc (gdbarch)))
867 return tdesc_register_type (gdbarch, regnum);
868
869 /* Raw registers. */
870 if (regnum == SPARC_SP_REGNUM || regnum == SPARC_FP_REGNUM)
871 return builtin_type (gdbarch)->builtin_data_ptr;
872 if (regnum >= SPARC_G0_REGNUM && regnum <= SPARC_I7_REGNUM)
873 return builtin_type (gdbarch)->builtin_int64;
874 if (regnum >= SPARC_F0_REGNUM && regnum <= SPARC_F31_REGNUM)
875 return builtin_type (gdbarch)->builtin_float;
876 if (regnum >= SPARC64_F32_REGNUM && regnum <= SPARC64_F62_REGNUM)
877 return builtin_type (gdbarch)->builtin_double;
878 if (regnum == SPARC64_PC_REGNUM || regnum == SPARC64_NPC_REGNUM)
879 return builtin_type (gdbarch)->builtin_func_ptr;
880 /* This raw register contains the contents of %cwp, %pstate, %asi
881 and %ccr as laid out in a %tstate register. */
882 if (regnum == SPARC64_STATE_REGNUM)
883 return builtin_type (gdbarch)->builtin_int64;
884 if (regnum == SPARC64_FSR_REGNUM)
885 return sparc64_fsr_type (gdbarch);
886 if (regnum == SPARC64_FPRS_REGNUM)
887 return sparc64_fprs_type (gdbarch);
888 /* "Although Y is a 64-bit register, its high-order 32 bits are
889 reserved and always read as 0." */
890 if (regnum == SPARC64_Y_REGNUM)
891 return builtin_type (gdbarch)->builtin_int64;
892
893 /* Pseudo registers. */
894 if (regnum >= gdbarch_num_regs (gdbarch))
895 return sparc64_pseudo_register_type (gdbarch, regnum);
896
897 internal_error (_("invalid regnum"));
898 }
899
900 static enum register_status
901 sparc64_pseudo_register_read (struct gdbarch *gdbarch,
902 readable_regcache *regcache,
903 int regnum, gdb_byte *buf)
904 {
905 enum bfd_endian byte_order = gdbarch_byte_order (gdbarch);
906 enum register_status status;
907
908 regnum -= gdbarch_num_regs (gdbarch);
909
910 if (regnum >= SPARC64_D0_REGNUM && regnum <= SPARC64_D30_REGNUM)
911 {
912 regnum = SPARC_F0_REGNUM + 2 * (regnum - SPARC64_D0_REGNUM);
913 status = regcache->raw_read (regnum, buf);
914 if (status == REG_VALID)
915 status = regcache->raw_read (regnum + 1, buf + 4);
916 return status;
917 }
918 else if (regnum >= SPARC64_D32_REGNUM && regnum <= SPARC64_D62_REGNUM)
919 {
920 regnum = SPARC64_F32_REGNUM + (regnum - SPARC64_D32_REGNUM);
921 return regcache->raw_read (regnum, buf);
922 }
923 else if (regnum >= SPARC64_Q0_REGNUM && regnum <= SPARC64_Q28_REGNUM)
924 {
925 regnum = SPARC_F0_REGNUM + 4 * (regnum - SPARC64_Q0_REGNUM);
926
927 status = regcache->raw_read (regnum, buf);
928 if (status == REG_VALID)
929 status = regcache->raw_read (regnum + 1, buf + 4);
930 if (status == REG_VALID)
931 status = regcache->raw_read (regnum + 2, buf + 8);
932 if (status == REG_VALID)
933 status = regcache->raw_read (regnum + 3, buf + 12);
934
935 return status;
936 }
937 else if (regnum >= SPARC64_Q32_REGNUM && regnum <= SPARC64_Q60_REGNUM)
938 {
939 regnum = SPARC64_F32_REGNUM + 2 * (regnum - SPARC64_Q32_REGNUM);
940
941 status = regcache->raw_read (regnum, buf);
942 if (status == REG_VALID)
943 status = regcache->raw_read (regnum + 1, buf + 8);
944
945 return status;
946 }
947 else if (regnum == SPARC64_CWP_REGNUM
948 || regnum == SPARC64_PSTATE_REGNUM
949 || regnum == SPARC64_ASI_REGNUM
950 || regnum == SPARC64_CCR_REGNUM)
951 {
952 ULONGEST state;
953
954 status = regcache->raw_read (SPARC64_STATE_REGNUM, &state);
955 if (status != REG_VALID)
956 return status;
957
958 switch (regnum)
959 {
960 case SPARC64_CWP_REGNUM:
961 state = (state >> 0) & ((1 << 5) - 1);
962 break;
963 case SPARC64_PSTATE_REGNUM:
964 state = (state >> 8) & ((1 << 12) - 1);
965 break;
966 case SPARC64_ASI_REGNUM:
967 state = (state >> 24) & ((1 << 8) - 1);
968 break;
969 case SPARC64_CCR_REGNUM:
970 state = (state >> 32) & ((1 << 8) - 1);
971 break;
972 }
973 store_unsigned_integer (buf, 8, byte_order, state);
974 }
975
976 return REG_VALID;
977 }
978
979 static void
980 sparc64_pseudo_register_write (struct gdbarch *gdbarch,
981 struct regcache *regcache,
982 int regnum, const gdb_byte *buf)
983 {
984 enum bfd_endian byte_order = gdbarch_byte_order (gdbarch);
985
986 regnum -= gdbarch_num_regs (gdbarch);
987
988 if (regnum >= SPARC64_D0_REGNUM && regnum <= SPARC64_D30_REGNUM)
989 {
990 regnum = SPARC_F0_REGNUM + 2 * (regnum - SPARC64_D0_REGNUM);
991 regcache->raw_write (regnum, buf);
992 regcache->raw_write (regnum + 1, buf + 4);
993 }
994 else if (regnum >= SPARC64_D32_REGNUM && regnum <= SPARC64_D62_REGNUM)
995 {
996 regnum = SPARC64_F32_REGNUM + (regnum - SPARC64_D32_REGNUM);
997 regcache->raw_write (regnum, buf);
998 }
999 else if (regnum >= SPARC64_Q0_REGNUM && regnum <= SPARC64_Q28_REGNUM)
1000 {
1001 regnum = SPARC_F0_REGNUM + 4 * (regnum - SPARC64_Q0_REGNUM);
1002 regcache->raw_write (regnum, buf);
1003 regcache->raw_write (regnum + 1, buf + 4);
1004 regcache->raw_write (regnum + 2, buf + 8);
1005 regcache->raw_write (regnum + 3, buf + 12);
1006 }
1007 else if (regnum >= SPARC64_Q32_REGNUM && regnum <= SPARC64_Q60_REGNUM)
1008 {
1009 regnum = SPARC64_F32_REGNUM + 2 * (regnum - SPARC64_Q32_REGNUM);
1010 regcache->raw_write (regnum, buf);
1011 regcache->raw_write (regnum + 1, buf + 8);
1012 }
1013 else if (regnum == SPARC64_CWP_REGNUM
1014 || regnum == SPARC64_PSTATE_REGNUM
1015 || regnum == SPARC64_ASI_REGNUM
1016 || regnum == SPARC64_CCR_REGNUM)
1017 {
1018 ULONGEST state, bits;
1019
1020 regcache_raw_read_unsigned (regcache, SPARC64_STATE_REGNUM, &state);
1021 bits = extract_unsigned_integer (buf, 8, byte_order);
1022 switch (regnum)
1023 {
1024 case SPARC64_CWP_REGNUM:
1025 state |= ((bits & ((1 << 5) - 1)) << 0);
1026 break;
1027 case SPARC64_PSTATE_REGNUM:
1028 state |= ((bits & ((1 << 12) - 1)) << 8);
1029 break;
1030 case SPARC64_ASI_REGNUM:
1031 state |= ((bits & ((1 << 8) - 1)) << 24);
1032 break;
1033 case SPARC64_CCR_REGNUM:
1034 state |= ((bits & ((1 << 8) - 1)) << 32);
1035 break;
1036 }
1037 regcache_raw_write_unsigned (regcache, SPARC64_STATE_REGNUM, state);
1038 }
1039 }
1040
1041
1043 /* Return PC of first real instruction of the function starting at
1044 START_PC. */
1045
1046 static CORE_ADDR
1047 sparc64_skip_prologue (struct gdbarch *gdbarch, CORE_ADDR start_pc)
1048 {
1049 struct symtab_and_line sal;
1050 CORE_ADDR func_start, func_end;
1051 struct sparc_frame_cache cache;
1052
1053 /* This is the preferred method, find the end of the prologue by
1054 using the debugging information. */
1055 if (find_pc_partial_function (start_pc, NULL, &func_start, &func_end))
1056 {
1057 sal = find_pc_line (func_start, 0);
1058
1059 if (sal.end < func_end
1060 && start_pc <= sal.end)
1061 return sal.end;
1062 }
1063
1064 return sparc_analyze_prologue (gdbarch, start_pc, 0xffffffffffffffffULL,
1065 &cache);
1066 }
1067
1068 /* Normal frames. */
1069
1070 static struct sparc_frame_cache *
1071 sparc64_frame_cache (const frame_info_ptr &this_frame, void **this_cache)
1072 {
1073 return sparc_frame_cache (this_frame, this_cache);
1074 }
1075
1076 static void
1077 sparc64_frame_this_id (const frame_info_ptr &this_frame, void **this_cache,
1078 struct frame_id *this_id)
1079 {
1080 struct sparc_frame_cache *cache =
1081 sparc64_frame_cache (this_frame, this_cache);
1082
1083 /* This marks the outermost frame. */
1084 if (cache->base == 0)
1085 return;
1086
1087 (*this_id) = frame_id_build (cache->base, cache->pc);
1088 }
1089
1090 static struct value *
1091 sparc64_frame_prev_register (const frame_info_ptr &this_frame, void **this_cache,
1092 int regnum)
1093 {
1094 struct gdbarch *gdbarch = get_frame_arch (this_frame);
1095 struct sparc_frame_cache *cache =
1096 sparc64_frame_cache (this_frame, this_cache);
1097
1098 if (regnum == SPARC64_PC_REGNUM || regnum == SPARC64_NPC_REGNUM)
1099 {
1100 CORE_ADDR pc = (regnum == SPARC64_NPC_REGNUM) ? 4 : 0;
1101
1102 regnum =
1103 (cache->copied_regs_mask & 0x80) ? SPARC_I7_REGNUM : SPARC_O7_REGNUM;
1104 pc += get_frame_register_unsigned (this_frame, regnum) + 8;
1105 return frame_unwind_got_constant (this_frame, regnum, pc);
1106 }
1107
1108 /* Handle StackGhost. */
1109 {
1110 ULONGEST wcookie = sparc_fetch_wcookie (gdbarch);
1111
1112 if (wcookie != 0 && !cache->frameless_p && regnum == SPARC_I7_REGNUM)
1113 {
1114 CORE_ADDR addr = cache->base + (regnum - SPARC_L0_REGNUM) * 8;
1115 ULONGEST i7;
1116
1117 /* Read the value in from memory. */
1118 i7 = get_frame_memory_unsigned (this_frame, addr, 8);
1119 return frame_unwind_got_constant (this_frame, regnum, i7 ^ wcookie);
1120 }
1121 }
1122
1123 /* The previous frame's `local' and `in' registers may have been saved
1124 in the register save area. */
1125 if (regnum >= SPARC_L0_REGNUM && regnum <= SPARC_I7_REGNUM
1126 && (cache->saved_regs_mask & (1 << (regnum - SPARC_L0_REGNUM))))
1127 {
1128 CORE_ADDR addr = cache->base + (regnum - SPARC_L0_REGNUM) * 8;
1129
1130 return frame_unwind_got_memory (this_frame, regnum, addr);
1131 }
1132
1133 /* The previous frame's `out' registers may be accessible as the current
1134 frame's `in' registers. */
1135 if (regnum >= SPARC_O0_REGNUM && regnum <= SPARC_O7_REGNUM
1136 && (cache->copied_regs_mask & (1 << (regnum - SPARC_O0_REGNUM))))
1137 regnum += (SPARC_I0_REGNUM - SPARC_O0_REGNUM);
1138
1139 return frame_unwind_got_register (this_frame, regnum, regnum);
1140 }
1141
1142 static const struct frame_unwind sparc64_frame_unwind =
1143 {
1144 "sparc64 prologue",
1145 NORMAL_FRAME,
1146 default_frame_unwind_stop_reason,
1147 sparc64_frame_this_id,
1148 sparc64_frame_prev_register,
1149 NULL,
1150 default_frame_sniffer
1151 };
1152
1153
1155 static CORE_ADDR
1156 sparc64_frame_base_address (const frame_info_ptr &this_frame, void **this_cache)
1157 {
1158 struct sparc_frame_cache *cache =
1159 sparc64_frame_cache (this_frame, this_cache);
1160
1161 return cache->base;
1162 }
1163
1164 static const struct frame_base sparc64_frame_base =
1165 {
1166 &sparc64_frame_unwind,
1167 sparc64_frame_base_address,
1168 sparc64_frame_base_address,
1169 sparc64_frame_base_address
1170 };
1171
1172 /* Check whether TYPE must be 16-byte aligned. */
1174
1175 static int
1176 sparc64_16_byte_align_p (struct type *type)
1177 {
1178 if (type->code () == TYPE_CODE_ARRAY)
1179 {
1180 struct type *t = check_typedef (type->target_type ());
1181
1182 if (sparc64_floating_p (t))
1183 return 1;
1184 }
1185 if (sparc64_floating_p (type) && type->length () == 16)
1186 return 1;
1187
1188 if (sparc64_structure_or_union_p (type))
1189 {
1190 int i;
1191
1192 for (i = 0; i < type->num_fields (); i++)
1193 {
1194 struct type *subtype = check_typedef (type->field (i).type ());
1195
1196 if (sparc64_16_byte_align_p (subtype))
1197 return 1;
1198 }
1199 }
1200
1201 return 0;
1202 }
1203
1204 /* Store floating fields of element ELEMENT of an "parameter array"
1205 that has type TYPE and is stored at BITPOS in VALBUF in the
1206 appropriate registers of REGCACHE. This function can be called
1207 recursively and therefore handles floating types in addition to
1208 structures. */
1209
1210 static void
1211 sparc64_store_floating_fields (struct regcache *regcache, struct type *type,
1212 const gdb_byte *valbuf, int element, int bitpos)
1213 {
1214 struct gdbarch *gdbarch = regcache->arch ();
1215 int len = type->length ();
1216
1217 gdb_assert (element < 16);
1218
1219 if (type->code () == TYPE_CODE_ARRAY)
1220 {
1221 gdb_byte buf[8];
1222 int regnum = SPARC_F0_REGNUM + element * 2 + bitpos / 32;
1223
1224 valbuf += bitpos / 8;
1225 if (len < 8)
1226 {
1227 memset (buf, 0, 8 - len);
1228 memcpy (buf + 8 - len, valbuf, len);
1229 valbuf = buf;
1230 len = 8;
1231 }
1232 for (int n = 0; n < (len + 3) / 4; n++)
1233 regcache->cooked_write (regnum + n, valbuf + n * 4);
1234 }
1235 else if (sparc64_floating_p (type)
1236 || (sparc64_complex_floating_p (type) && len <= 16))
1237 {
1238 int regnum;
1239
1240 if (len == 16)
1241 {
1242 gdb_assert (bitpos == 0);
1243 gdb_assert ((element % 2) == 0);
1244
1245 regnum = gdbarch_num_regs (gdbarch) + SPARC64_Q0_REGNUM + element / 2;
1246 regcache->cooked_write (regnum, valbuf);
1247 }
1248 else if (len == 8)
1249 {
1250 gdb_assert (bitpos == 0 || bitpos == 64);
1251
1252 regnum = gdbarch_num_regs (gdbarch) + SPARC64_D0_REGNUM
1253 + element + bitpos / 64;
1254 regcache->cooked_write (regnum, valbuf + (bitpos / 8));
1255 }
1256 else
1257 {
1258 gdb_assert (len == 4);
1259 gdb_assert (bitpos % 32 == 0 && bitpos >= 0 && bitpos < 128);
1260
1261 regnum = SPARC_F0_REGNUM + element * 2 + bitpos / 32;
1262 regcache->cooked_write (regnum, valbuf + (bitpos / 8));
1263 }
1264 }
1265 else if (sparc64_structure_or_union_p (type))
1266 {
1267 int i;
1268
1269 for (i = 0; i < type->num_fields (); i++)
1270 {
1271 struct type *subtype = check_typedef (type->field (i).type ());
1272 int subpos = bitpos + type->field (i).loc_bitpos ();
1273
1274 sparc64_store_floating_fields (regcache, subtype, valbuf,
1275 element, subpos);
1276 }
1277
1278 /* GCC has an interesting bug. If TYPE is a structure that has
1279 a single `float' member, GCC doesn't treat it as a structure
1280 at all, but rather as an ordinary `float' argument. This
1281 argument will be stored in %f1, as required by the psABI.
1282 However, as a member of a structure the psABI requires it to
1283 be stored in %f0. This bug is present in GCC 3.3.2, but
1284 probably in older releases to. To appease GCC, if a
1285 structure has only a single `float' member, we store its
1286 value in %f1 too (we already have stored in %f0). */
1287 if (type->num_fields () == 1)
1288 {
1289 struct type *subtype = check_typedef (type->field (0).type ());
1290
1291 if (sparc64_floating_p (subtype) && subtype->length () == 4)
1292 regcache->cooked_write (SPARC_F1_REGNUM, valbuf);
1293 }
1294 }
1295 }
1296
1297 /* Fetch floating fields from a variable of type TYPE from the
1298 appropriate registers for BITPOS in REGCACHE and store it at BITPOS
1299 in VALBUF. This function can be called recursively and therefore
1300 handles floating types in addition to structures. */
1301
1302 static void
1303 sparc64_extract_floating_fields (struct regcache *regcache, struct type *type,
1304 gdb_byte *valbuf, int bitpos)
1305 {
1306 struct gdbarch *gdbarch = regcache->arch ();
1307
1308 if (type->code () == TYPE_CODE_ARRAY)
1309 {
1310 int len = type->length ();
1311 int regnum = SPARC_F0_REGNUM + bitpos / 32;
1312
1313 valbuf += bitpos / 8;
1314 if (len < 4)
1315 {
1316 gdb_byte buf[4];
1317 regcache->cooked_read (regnum, buf);
1318 memcpy (valbuf, buf + 4 - len, len);
1319 }
1320 else
1321 for (int i = 0; i < (len + 3) / 4; i++)
1322 regcache->cooked_read (regnum + i, valbuf + i * 4);
1323 }
1324 else if (sparc64_floating_p (type))
1325 {
1326 int len = type->length ();
1327 int regnum;
1328
1329 if (len == 16)
1330 {
1331 gdb_assert (bitpos == 0 || bitpos == 128);
1332
1333 regnum = gdbarch_num_regs (gdbarch) + SPARC64_Q0_REGNUM
1334 + bitpos / 128;
1335 regcache->cooked_read (regnum, valbuf + (bitpos / 8));
1336 }
1337 else if (len == 8)
1338 {
1339 gdb_assert (bitpos % 64 == 0 && bitpos >= 0 && bitpos < 256);
1340
1341 regnum = gdbarch_num_regs (gdbarch) + SPARC64_D0_REGNUM + bitpos / 64;
1342 regcache->cooked_read (regnum, valbuf + (bitpos / 8));
1343 }
1344 else
1345 {
1346 gdb_assert (len == 4);
1347 gdb_assert (bitpos % 32 == 0 && bitpos >= 0 && bitpos < 256);
1348
1349 regnum = SPARC_F0_REGNUM + bitpos / 32;
1350 regcache->cooked_read (regnum, valbuf + (bitpos / 8));
1351 }
1352 }
1353 else if (sparc64_structure_or_union_p (type))
1354 {
1355 int i;
1356
1357 for (i = 0; i < type->num_fields (); i++)
1358 {
1359 struct type *subtype = check_typedef (type->field (i).type ());
1360 int subpos = bitpos + type->field (i).loc_bitpos ();
1361
1362 sparc64_extract_floating_fields (regcache, subtype, valbuf, subpos);
1363 }
1364 }
1365 }
1366
1367 /* Store the NARGS arguments ARGS and STRUCT_ADDR (if STRUCT_RETURN is
1368 non-zero) in REGCACHE and on the stack (starting from address SP). */
1369
1370 static CORE_ADDR
1371 sparc64_store_arguments (struct regcache *regcache, int nargs,
1372 struct value **args, CORE_ADDR sp,
1373 function_call_return_method return_method,
1374 CORE_ADDR struct_addr)
1375 {
1376 struct gdbarch *gdbarch = regcache->arch ();
1377 /* Number of extended words in the "parameter array". */
1378 int num_elements = 0;
1379 int element = 0;
1380 int i;
1381
1382 /* Take BIAS into account. */
1383 sp += BIAS;
1384
1385 /* First we calculate the number of extended words in the "parameter
1386 array". While doing so we also convert some of the arguments. */
1387
1388 if (return_method == return_method_struct)
1389 num_elements++;
1390
1391 for (i = 0; i < nargs; i++)
1392 {
1393 struct type *type = args[i]->type ();
1394 int len = type->length ();
1395
1396 if (sparc64_structure_or_union_p (type)
1397 || (sparc64_complex_floating_p (type) && len == 32))
1398 {
1399 /* Structure or Union arguments. */
1400 if (len <= 16)
1401 {
1402 if (num_elements % 2 && sparc64_16_byte_align_p (type))
1403 num_elements++;
1404 num_elements += ((len + 7) / 8);
1405 }
1406 else
1407 {
1408 /* The psABI says that "Structures or unions larger than
1409 sixteen bytes are copied by the caller and passed
1410 indirectly; the caller will pass the address of a
1411 correctly aligned structure value. This sixty-four
1412 bit address will occupy one word in the parameter
1413 array, and may be promoted to an %o register like any
1414 other pointer value." Allocate memory for these
1415 values on the stack. */
1416 sp -= len;
1417
1418 /* Use 16-byte alignment for these values. That's
1419 always correct, and wasting a few bytes shouldn't be
1420 a problem. */
1421 sp &= ~0xf;
1422
1423 write_memory (sp, args[i]->contents ().data (), len);
1424 args[i] = value_from_pointer (lookup_pointer_type (type), sp);
1425 num_elements++;
1426 }
1427 }
1428 else if (sparc64_floating_p (type) || sparc64_complex_floating_p (type))
1429 {
1430 /* Floating arguments. */
1431 if (len == 16)
1432 {
1433 /* The psABI says that "Each quad-precision parameter
1434 value will be assigned to two extended words in the
1435 parameter array. */
1436 num_elements += 2;
1437
1438 /* The psABI says that "Long doubles must be
1439 quad-aligned, and thus a hole might be introduced
1440 into the parameter array to force alignment." Skip
1441 an element if necessary. */
1442 if ((num_elements % 2) && sparc64_16_byte_align_p (type))
1443 num_elements++;
1444 }
1445 else
1446 num_elements++;
1447 }
1448 else
1449 {
1450 /* Integral and pointer arguments. */
1451 gdb_assert (sparc64_integral_or_pointer_p (type));
1452
1453 /* The psABI says that "Each argument value of integral type
1454 smaller than an extended word will be widened by the
1455 caller to an extended word according to the signed-ness
1456 of the argument type." */
1457 if (len < 8)
1458 args[i] = value_cast (builtin_type (gdbarch)->builtin_int64,
1459 args[i]);
1460 num_elements++;
1461 }
1462 }
1463
1464 /* Allocate the "parameter array". */
1465 sp -= num_elements * 8;
1466
1467 /* The psABI says that "Every stack frame must be 16-byte aligned." */
1468 sp &= ~0xf;
1469
1470 /* Now we store the arguments in to the "parameter array". Some
1471 Integer or Pointer arguments and Structure or Union arguments
1472 will be passed in %o registers. Some Floating arguments and
1473 floating members of structures are passed in floating-point
1474 registers. However, for functions with variable arguments,
1475 floating arguments are stored in an %0 register, and for
1476 functions without a prototype floating arguments are stored in
1477 both a floating-point and an %o registers, or a floating-point
1478 register and memory. To simplify the logic here we always pass
1479 arguments in memory, an %o register, and a floating-point
1480 register if appropriate. This should be no problem since the
1481 contents of any unused memory or registers in the "parameter
1482 array" are undefined. */
1483
1484 if (return_method == return_method_struct)
1485 {
1486 regcache_cooked_write_unsigned (regcache, SPARC_O0_REGNUM, struct_addr);
1487 element++;
1488 }
1489
1490 for (i = 0; i < nargs; i++)
1491 {
1492 const gdb_byte *valbuf = args[i]->contents ().data ();
1493 struct type *type = args[i]->type ();
1494 int len = type->length ();
1495 int regnum = -1;
1496 gdb_byte buf[16];
1497
1498 if (sparc64_structure_or_union_p (type)
1499 || (sparc64_complex_floating_p (type) && len == 32))
1500 {
1501 /* Structure, Union or long double Complex arguments. */
1502 gdb_assert (len <= 16);
1503 memset (buf, 0, sizeof (buf));
1504 memcpy (buf, valbuf, len);
1505 valbuf = buf;
1506
1507 if (element % 2 && sparc64_16_byte_align_p (type))
1508 element++;
1509
1510 if (element < 6)
1511 {
1512 regnum = SPARC_O0_REGNUM + element;
1513 if (len > 8 && element < 5)
1514 regcache->cooked_write (regnum + 1, valbuf + 8);
1515 }
1516
1517 if (element < 16)
1518 sparc64_store_floating_fields (regcache, type, valbuf, element, 0);
1519 }
1520 else if (sparc64_complex_floating_p (type))
1521 {
1522 /* Float Complex or double Complex arguments. */
1523 if (element < 16)
1524 {
1525 regnum = gdbarch_num_regs (gdbarch) + SPARC64_D0_REGNUM + element;
1526
1527 if (len == 16)
1528 {
1529 if (regnum < gdbarch_num_regs (gdbarch) + SPARC64_D30_REGNUM)
1530 regcache->cooked_write (regnum + 1, valbuf + 8);
1531 if (regnum < gdbarch_num_regs (gdbarch) + SPARC64_D10_REGNUM)
1532 regcache->cooked_write (SPARC_O0_REGNUM + element + 1,
1533 valbuf + 8);
1534 }
1535 }
1536 }
1537 else if (sparc64_floating_p (type))
1538 {
1539 /* Floating arguments. */
1540 if (len == 16)
1541 {
1542 if (element % 2)
1543 element++;
1544 if (element < 16)
1545 regnum = gdbarch_num_regs (gdbarch) + SPARC64_Q0_REGNUM
1546 + element / 2;
1547 }
1548 else if (len == 8)
1549 {
1550 if (element < 16)
1551 regnum = gdbarch_num_regs (gdbarch) + SPARC64_D0_REGNUM
1552 + element;
1553 }
1554 else if (len == 4)
1555 {
1556 /* The psABI says "Each single-precision parameter value
1557 will be assigned to one extended word in the
1558 parameter array, and right-justified within that
1559 word; the left half (even float register) is
1560 undefined." Even though the psABI says that "the
1561 left half is undefined", set it to zero here. */
1562 memset (buf, 0, 4);
1563 memcpy (buf + 4, valbuf, 4);
1564 valbuf = buf;
1565 len = 8;
1566 if (element < 16)
1567 regnum = gdbarch_num_regs (gdbarch) + SPARC64_D0_REGNUM
1568 + element;
1569 }
1570 }
1571 else
1572 {
1573 /* Integral and pointer arguments. */
1574 gdb_assert (len == 8);
1575 if (element < 6)
1576 regnum = SPARC_O0_REGNUM + element;
1577 }
1578
1579 if (regnum != -1)
1580 {
1581 regcache->cooked_write (regnum, valbuf);
1582
1583 /* If we're storing the value in a floating-point register,
1584 also store it in the corresponding %0 register(s). */
1585 if (regnum >= gdbarch_num_regs (gdbarch))
1586 {
1587 regnum -= gdbarch_num_regs (gdbarch);
1588
1589 if (regnum >= SPARC64_D0_REGNUM && regnum <= SPARC64_D10_REGNUM)
1590 {
1591 gdb_assert (element < 6);
1592 regnum = SPARC_O0_REGNUM + element;
1593 regcache->cooked_write (regnum, valbuf);
1594 }
1595 else if (regnum >= SPARC64_Q0_REGNUM && regnum <= SPARC64_Q8_REGNUM)
1596 {
1597 gdb_assert (element < 5);
1598 regnum = SPARC_O0_REGNUM + element;
1599 regcache->cooked_write (regnum, valbuf);
1600 regcache->cooked_write (regnum + 1, valbuf + 8);
1601 }
1602 }
1603 }
1604
1605 /* Always store the argument in memory. */
1606 write_memory (sp + element * 8, valbuf, len);
1607 element += ((len + 7) / 8);
1608 }
1609
1610 gdb_assert (element == num_elements);
1611
1612 /* Take BIAS into account. */
1613 sp -= BIAS;
1614 return sp;
1615 }
1616
1617 static CORE_ADDR
1618 sparc64_frame_align (struct gdbarch *gdbarch, CORE_ADDR address)
1619 {
1620 /* The ABI requires 16-byte alignment. */
1621 return address & ~0xf;
1622 }
1623
1624 static CORE_ADDR
1625 sparc64_push_dummy_call (struct gdbarch *gdbarch, struct value *function,
1626 struct regcache *regcache, CORE_ADDR bp_addr,
1627 int nargs, struct value **args, CORE_ADDR sp,
1628 function_call_return_method return_method,
1629 CORE_ADDR struct_addr)
1630 {
1631 /* Set return address. */
1632 regcache_cooked_write_unsigned (regcache, SPARC_O7_REGNUM, bp_addr - 8);
1633
1634 /* Set up function arguments. */
1635 sp = sparc64_store_arguments (regcache, nargs, args, sp, return_method,
1636 struct_addr);
1637
1638 /* Allocate the register save area. */
1639 sp -= 16 * 8;
1640
1641 /* Stack should be 16-byte aligned at this point. */
1642 gdb_assert ((sp + BIAS) % 16 == 0);
1643
1644 /* Finally, update the stack pointer. */
1645 regcache_cooked_write_unsigned (regcache, SPARC_SP_REGNUM, sp);
1646
1647 return sp + BIAS;
1648 }
1649
1650
1652 /* Extract from an array REGBUF containing the (raw) register state, a
1653 function return value of TYPE, and copy that into VALBUF. */
1654
1655 static void
1656 sparc64_extract_return_value (struct type *type, struct regcache *regcache,
1657 gdb_byte *valbuf)
1658 {
1659 int len = type->length ();
1660 gdb_byte buf[32];
1661 int i;
1662
1663 if (sparc64_structure_or_union_p (type))
1664 {
1665 /* Structure or Union return values. */
1666 gdb_assert (len <= 32);
1667
1668 for (i = 0; i < ((len + 7) / 8); i++)
1669 regcache->cooked_read (SPARC_O0_REGNUM + i, buf + i * 8);
1670 if (type->code () != TYPE_CODE_UNION)
1671 sparc64_extract_floating_fields (regcache, type, buf, 0);
1672 memcpy (valbuf, buf, len);
1673 }
1674 else if (sparc64_floating_p (type) || sparc64_complex_floating_p (type))
1675 {
1676 /* Floating return values. */
1677 for (i = 0; i < len / 4; i++)
1678 regcache->cooked_read (SPARC_F0_REGNUM + i, buf + i * 4);
1679 memcpy (valbuf, buf, len);
1680 }
1681 else if (type->code () == TYPE_CODE_ARRAY)
1682 {
1683 /* Small arrays are returned the same way as small structures. */
1684 gdb_assert (len <= 32);
1685
1686 for (i = 0; i < ((len + 7) / 8); i++)
1687 regcache->cooked_read (SPARC_O0_REGNUM + i, buf + i * 8);
1688 memcpy (valbuf, buf, len);
1689 }
1690 else
1691 {
1692 /* Integral and pointer return values. */
1693 gdb_assert (sparc64_integral_or_pointer_p (type));
1694
1695 /* Just stripping off any unused bytes should preserve the
1696 signed-ness just fine. */
1697 regcache->cooked_read (SPARC_O0_REGNUM, buf);
1698 memcpy (valbuf, buf + 8 - len, len);
1699 }
1700 }
1701
1702 /* Write into the appropriate registers a function return value stored
1703 in VALBUF of type TYPE. */
1704
1705 static void
1706 sparc64_store_return_value (struct type *type, struct regcache *regcache,
1707 const gdb_byte *valbuf)
1708 {
1709 int len = type->length ();
1710 gdb_byte buf[16];
1711 int i;
1712
1713 if (sparc64_structure_or_union_p (type))
1714 {
1715 /* Structure or Union return values. */
1716 gdb_assert (len <= 32);
1717
1718 /* Simplify matters by storing the complete value (including
1719 floating members) into %o0 and %o1. Floating members are
1720 also store in the appropriate floating-point registers. */
1721 memset (buf, 0, sizeof (buf));
1722 memcpy (buf, valbuf, len);
1723 for (i = 0; i < ((len + 7) / 8); i++)
1724 regcache->cooked_write (SPARC_O0_REGNUM + i, buf + i * 8);
1725 if (type->code () != TYPE_CODE_UNION)
1726 sparc64_store_floating_fields (regcache, type, buf, 0, 0);
1727 }
1728 else if (sparc64_floating_p (type) || sparc64_complex_floating_p (type))
1729 {
1730 /* Floating return values. */
1731 memcpy (buf, valbuf, len);
1732 for (i = 0; i < len / 4; i++)
1733 regcache->cooked_write (SPARC_F0_REGNUM + i, buf + i * 4);
1734 }
1735 else if (type->code () == TYPE_CODE_ARRAY)
1736 {
1737 /* Small arrays are returned the same way as small structures. */
1738 gdb_assert (len <= 32);
1739
1740 memset (buf, 0, sizeof (buf));
1741 memcpy (buf, valbuf, len);
1742 for (i = 0; i < ((len + 7) / 8); i++)
1743 regcache->cooked_write (SPARC_O0_REGNUM + i, buf + i * 8);
1744 }
1745 else
1746 {
1747 /* Integral and pointer return values. */
1748 gdb_assert (sparc64_integral_or_pointer_p (type));
1749
1750 /* ??? Do we need to do any sign-extension here? */
1751 memset (buf, 0, 8);
1752 memcpy (buf + 8 - len, valbuf, len);
1753 regcache->cooked_write (SPARC_O0_REGNUM, buf);
1754 }
1755 }
1756
1757 static enum return_value_convention
1758 sparc64_return_value (struct gdbarch *gdbarch, struct value *function,
1759 struct type *type, struct regcache *regcache,
1760 gdb_byte *readbuf, const gdb_byte *writebuf)
1761 {
1762 if (type->length () > 32)
1763 return RETURN_VALUE_STRUCT_CONVENTION;
1764
1765 if (readbuf)
1766 sparc64_extract_return_value (type, regcache, readbuf);
1767 if (writebuf)
1768 sparc64_store_return_value (type, regcache, writebuf);
1769
1770 return RETURN_VALUE_REGISTER_CONVENTION;
1771 }
1772
1773
1775 static void
1776 sparc64_dwarf2_frame_init_reg (struct gdbarch *gdbarch, int regnum,
1777 struct dwarf2_frame_state_reg *reg,
1778 const frame_info_ptr &this_frame)
1779 {
1780 switch (regnum)
1781 {
1782 case SPARC_G0_REGNUM:
1783 /* Since %g0 is always zero, there is no point in saving it, and
1784 people will be inclined omit it from the CFI. Make sure we
1785 don't warn about that. */
1786 reg->how = DWARF2_FRAME_REG_SAME_VALUE;
1787 break;
1788 case SPARC_SP_REGNUM:
1789 reg->how = DWARF2_FRAME_REG_CFA;
1790 break;
1791 case SPARC64_PC_REGNUM:
1792 reg->how = DWARF2_FRAME_REG_RA_OFFSET;
1793 reg->loc.offset = 8;
1794 break;
1795 case SPARC64_NPC_REGNUM:
1796 reg->how = DWARF2_FRAME_REG_RA_OFFSET;
1797 reg->loc.offset = 12;
1798 break;
1799 }
1800 }
1801
1802 /* sparc64_addr_bits_remove - remove useless address bits */
1803
1804 static CORE_ADDR
1805 sparc64_addr_bits_remove (struct gdbarch *gdbarch, CORE_ADDR addr)
1806 {
1807 return adi_normalize_address (addr);
1808 }
1809
1810 void
1811 sparc64_init_abi (struct gdbarch_info info, struct gdbarch *gdbarch)
1812 {
1813 sparc_gdbarch_tdep *tdep = gdbarch_tdep<sparc_gdbarch_tdep> (gdbarch);
1814
1815 tdep->pc_regnum = SPARC64_PC_REGNUM;
1816 tdep->npc_regnum = SPARC64_NPC_REGNUM;
1817 tdep->fpu_register_names = sparc64_fpu_register_names;
1818 tdep->fpu_registers_num = ARRAY_SIZE (sparc64_fpu_register_names);
1819 tdep->cp0_register_names = sparc64_cp0_register_names;
1820 tdep->cp0_registers_num = ARRAY_SIZE (sparc64_cp0_register_names);
1821
1822 /* This is what all the fuss is about. */
1823 set_gdbarch_long_bit (gdbarch, 64);
1824 set_gdbarch_long_long_bit (gdbarch, 64);
1825 set_gdbarch_ptr_bit (gdbarch, 64);
1826
1827 set_gdbarch_wchar_bit (gdbarch, 16);
1828 set_gdbarch_wchar_signed (gdbarch, 0);
1829
1830 set_gdbarch_num_regs (gdbarch, SPARC64_NUM_REGS);
1831 set_gdbarch_register_name (gdbarch, sparc64_register_name);
1832 set_gdbarch_register_type (gdbarch, sparc64_register_type);
1833 set_gdbarch_num_pseudo_regs (gdbarch, SPARC64_NUM_PSEUDO_REGS);
1834 set_tdesc_pseudo_register_name (gdbarch, sparc64_pseudo_register_name);
1835 set_tdesc_pseudo_register_type (gdbarch, sparc64_pseudo_register_type);
1836 set_gdbarch_pseudo_register_read (gdbarch, sparc64_pseudo_register_read);
1837 set_gdbarch_deprecated_pseudo_register_write (gdbarch,
1838 sparc64_pseudo_register_write);
1839
1840 /* Register numbers of various important registers. */
1841 set_gdbarch_pc_regnum (gdbarch, SPARC64_PC_REGNUM); /* %pc */
1842
1843 /* Call dummy code. */
1844 set_gdbarch_frame_align (gdbarch, sparc64_frame_align);
1845 set_gdbarch_call_dummy_location (gdbarch, AT_ENTRY_POINT);
1846 set_gdbarch_push_dummy_code (gdbarch, NULL);
1847 set_gdbarch_push_dummy_call (gdbarch, sparc64_push_dummy_call);
1848
1849 set_gdbarch_return_value (gdbarch, sparc64_return_value);
1850 set_gdbarch_return_value_as_value (gdbarch, default_gdbarch_return_value);
1851 set_gdbarch_stabs_argument_has_addr
1852 (gdbarch, default_stabs_argument_has_addr);
1853
1854 set_gdbarch_skip_prologue (gdbarch, sparc64_skip_prologue);
1855 set_gdbarch_stack_frame_destroyed_p (gdbarch, sparc_stack_frame_destroyed_p);
1856
1857 /* Hook in the DWARF CFI frame unwinder. */
1858 dwarf2_frame_set_init_reg (gdbarch, sparc64_dwarf2_frame_init_reg);
1859 /* FIXME: kettenis/20050423: Don't enable the unwinder until the
1860 StackGhost issues have been resolved. */
1861
1862 frame_unwind_append_unwinder (gdbarch, &sparc64_frame_unwind);
1863 frame_base_set_default (gdbarch, &sparc64_frame_base);
1864
1865 set_gdbarch_addr_bits_remove (gdbarch, sparc64_addr_bits_remove);
1866 }
1867
1868
1870 /* Helper functions for dealing with register sets. */
1871
1872 #define TSTATE_CWP 0x000000000000001fULL
1873 #define TSTATE_ICC 0x0000000f00000000ULL
1874 #define TSTATE_XCC 0x000000f000000000ULL
1875
1876 #define PSR_S 0x00000080
1877 #ifndef PSR_ICC
1878 #define PSR_ICC 0x00f00000
1879 #endif
1880 #define PSR_VERS 0x0f000000
1881 #ifndef PSR_IMPL
1882 #define PSR_IMPL 0xf0000000
1883 #endif
1884 #define PSR_V8PLUS 0xff000000
1885 #define PSR_XCC 0x000f0000
1886
1887 void
1888 sparc64_supply_gregset (const struct sparc_gregmap *gregmap,
1889 struct regcache *regcache,
1890 int regnum, const void *gregs)
1891 {
1892 struct gdbarch *gdbarch = regcache->arch ();
1893 enum bfd_endian byte_order = gdbarch_byte_order (gdbarch);
1894 int sparc32 = (gdbarch_ptr_bit (gdbarch) == 32);
1895 const gdb_byte *regs = (const gdb_byte *) gregs;
1896 gdb_byte zero[8] = { 0 };
1897 int i;
1898
1899 if (sparc32)
1900 {
1901 if (regnum == SPARC32_PSR_REGNUM || regnum == -1)
1902 {
1903 int offset = gregmap->r_tstate_offset;
1904 ULONGEST tstate, psr;
1905 gdb_byte buf[4];
1906
1907 tstate = extract_unsigned_integer (regs + offset, 8, byte_order);
1908 psr = ((tstate & TSTATE_CWP) | PSR_S | ((tstate & TSTATE_ICC) >> 12)
1909 | ((tstate & TSTATE_XCC) >> 20) | PSR_V8PLUS);
1910 store_unsigned_integer (buf, 4, byte_order, psr);
1911 regcache->raw_supply (SPARC32_PSR_REGNUM, buf);
1912 }
1913
1914 if (regnum == SPARC32_PC_REGNUM || regnum == -1)
1915 regcache->raw_supply (SPARC32_PC_REGNUM,
1916 regs + gregmap->r_pc_offset + 4);
1917
1918 if (regnum == SPARC32_NPC_REGNUM || regnum == -1)
1919 regcache->raw_supply (SPARC32_NPC_REGNUM,
1920 regs + gregmap->r_npc_offset + 4);
1921
1922 if (regnum == SPARC32_Y_REGNUM || regnum == -1)
1923 {
1924 int offset = gregmap->r_y_offset + 8 - gregmap->r_y_size;
1925 regcache->raw_supply (SPARC32_Y_REGNUM, regs + offset);
1926 }
1927 }
1928 else
1929 {
1930 if (regnum == SPARC64_STATE_REGNUM || regnum == -1)
1931 regcache->raw_supply (SPARC64_STATE_REGNUM,
1932 regs + gregmap->r_tstate_offset);
1933
1934 if (regnum == SPARC64_PC_REGNUM || regnum == -1)
1935 regcache->raw_supply (SPARC64_PC_REGNUM,
1936 regs + gregmap->r_pc_offset);
1937
1938 if (regnum == SPARC64_NPC_REGNUM || regnum == -1)
1939 regcache->raw_supply (SPARC64_NPC_REGNUM,
1940 regs + gregmap->r_npc_offset);
1941
1942 if (regnum == SPARC64_Y_REGNUM || regnum == -1)
1943 {
1944 gdb_byte buf[8];
1945
1946 memset (buf, 0, 8);
1947 memcpy (buf + 8 - gregmap->r_y_size,
1948 regs + gregmap->r_y_offset, gregmap->r_y_size);
1949 regcache->raw_supply (SPARC64_Y_REGNUM, buf);
1950 }
1951
1952 if ((regnum == SPARC64_FPRS_REGNUM || regnum == -1)
1953 && gregmap->r_fprs_offset != -1)
1954 regcache->raw_supply (SPARC64_FPRS_REGNUM,
1955 regs + gregmap->r_fprs_offset);
1956 }
1957
1958 if (regnum == SPARC_G0_REGNUM || regnum == -1)
1959 regcache->raw_supply (SPARC_G0_REGNUM, &zero);
1960
1961 if ((regnum >= SPARC_G1_REGNUM && regnum <= SPARC_O7_REGNUM) || regnum == -1)
1962 {
1963 int offset = gregmap->r_g1_offset;
1964
1965 if (sparc32)
1966 offset += 4;
1967
1968 for (i = SPARC_G1_REGNUM; i <= SPARC_O7_REGNUM; i++)
1969 {
1970 if (regnum == i || regnum == -1)
1971 regcache->raw_supply (i, regs + offset);
1972 offset += 8;
1973 }
1974 }
1975
1976 if ((regnum >= SPARC_L0_REGNUM && regnum <= SPARC_I7_REGNUM) || regnum == -1)
1977 {
1978 /* Not all of the register set variants include Locals and
1979 Inputs. For those that don't, we read them off the stack. */
1980 if (gregmap->r_l0_offset == -1)
1981 {
1982 ULONGEST sp;
1983
1984 regcache_cooked_read_unsigned (regcache, SPARC_SP_REGNUM, &sp);
1985 sparc_supply_rwindow (regcache, sp, regnum);
1986 }
1987 else
1988 {
1989 int offset = gregmap->r_l0_offset;
1990
1991 if (sparc32)
1992 offset += 4;
1993
1994 for (i = SPARC_L0_REGNUM; i <= SPARC_I7_REGNUM; i++)
1995 {
1996 if (regnum == i || regnum == -1)
1997 regcache->raw_supply (i, regs + offset);
1998 offset += 8;
1999 }
2000 }
2001 }
2002 }
2003
2004 void
2005 sparc64_collect_gregset (const struct sparc_gregmap *gregmap,
2006 const struct regcache *regcache,
2007 int regnum, void *gregs)
2008 {
2009 struct gdbarch *gdbarch = regcache->arch ();
2010 enum bfd_endian byte_order = gdbarch_byte_order (gdbarch);
2011 int sparc32 = (gdbarch_ptr_bit (gdbarch) == 32);
2012 gdb_byte *regs = (gdb_byte *) gregs;
2013 int i;
2014
2015 if (sparc32)
2016 {
2017 if (regnum == SPARC32_PSR_REGNUM || regnum == -1)
2018 {
2019 int offset = gregmap->r_tstate_offset;
2020 ULONGEST tstate, psr;
2021 gdb_byte buf[8];
2022
2023 tstate = extract_unsigned_integer (regs + offset, 8, byte_order);
2024 regcache->raw_collect (SPARC32_PSR_REGNUM, buf);
2025 psr = extract_unsigned_integer (buf, 4, byte_order);
2026 tstate |= (psr & PSR_ICC) << 12;
2027 if ((psr & (PSR_VERS | PSR_IMPL)) == PSR_V8PLUS)
2028 tstate |= (psr & PSR_XCC) << 20;
2029 store_unsigned_integer (buf, 8, byte_order, tstate);
2030 memcpy (regs + offset, buf, 8);
2031 }
2032
2033 if (regnum == SPARC32_PC_REGNUM || regnum == -1)
2034 regcache->raw_collect (SPARC32_PC_REGNUM,
2035 regs + gregmap->r_pc_offset + 4);
2036
2037 if (regnum == SPARC32_NPC_REGNUM || regnum == -1)
2038 regcache->raw_collect (SPARC32_NPC_REGNUM,
2039 regs + gregmap->r_npc_offset + 4);
2040
2041 if (regnum == SPARC32_Y_REGNUM || regnum == -1)
2042 {
2043 int offset = gregmap->r_y_offset + 8 - gregmap->r_y_size;
2044 regcache->raw_collect (SPARC32_Y_REGNUM, regs + offset);
2045 }
2046 }
2047 else
2048 {
2049 if (regnum == SPARC64_STATE_REGNUM || regnum == -1)
2050 regcache->raw_collect (SPARC64_STATE_REGNUM,
2051 regs + gregmap->r_tstate_offset);
2052
2053 if (regnum == SPARC64_PC_REGNUM || regnum == -1)
2054 regcache->raw_collect (SPARC64_PC_REGNUM,
2055 regs + gregmap->r_pc_offset);
2056
2057 if (regnum == SPARC64_NPC_REGNUM || regnum == -1)
2058 regcache->raw_collect (SPARC64_NPC_REGNUM,
2059 regs + gregmap->r_npc_offset);
2060
2061 if (regnum == SPARC64_Y_REGNUM || regnum == -1)
2062 {
2063 gdb_byte buf[8];
2064
2065 regcache->raw_collect (SPARC64_Y_REGNUM, buf);
2066 memcpy (regs + gregmap->r_y_offset,
2067 buf + 8 - gregmap->r_y_size, gregmap->r_y_size);
2068 }
2069
2070 if ((regnum == SPARC64_FPRS_REGNUM || regnum == -1)
2071 && gregmap->r_fprs_offset != -1)
2072 regcache->raw_collect (SPARC64_FPRS_REGNUM,
2073 regs + gregmap->r_fprs_offset);
2074
2075 }
2076
2077 if ((regnum >= SPARC_G1_REGNUM && regnum <= SPARC_O7_REGNUM) || regnum == -1)
2078 {
2079 int offset = gregmap->r_g1_offset;
2080
2081 if (sparc32)
2082 offset += 4;
2083
2084 /* %g0 is always zero. */
2085 for (i = SPARC_G1_REGNUM; i <= SPARC_O7_REGNUM; i++)
2086 {
2087 if (regnum == i || regnum == -1)
2088 regcache->raw_collect (i, regs + offset);
2089 offset += 8;
2090 }
2091 }
2092
2093 if ((regnum >= SPARC_L0_REGNUM && regnum <= SPARC_I7_REGNUM) || regnum == -1)
2094 {
2095 /* Not all of the register set variants include Locals and
2096 Inputs. For those that don't, we read them off the stack. */
2097 if (gregmap->r_l0_offset != -1)
2098 {
2099 int offset = gregmap->r_l0_offset;
2100
2101 if (sparc32)
2102 offset += 4;
2103
2104 for (i = SPARC_L0_REGNUM; i <= SPARC_I7_REGNUM; i++)
2105 {
2106 if (regnum == i || regnum == -1)
2107 regcache->raw_collect (i, regs + offset);
2108 offset += 8;
2109 }
2110 }
2111 }
2112 }
2113
2114 void
2115 sparc64_supply_fpregset (const struct sparc_fpregmap *fpregmap,
2116 struct regcache *regcache,
2117 int regnum, const void *fpregs)
2118 {
2119 int sparc32 = (gdbarch_ptr_bit (regcache->arch ()) == 32);
2120 const gdb_byte *regs = (const gdb_byte *) fpregs;
2121 int i;
2122
2123 for (i = 0; i < 32; i++)
2124 {
2125 if (regnum == (SPARC_F0_REGNUM + i) || regnum == -1)
2126 regcache->raw_supply (SPARC_F0_REGNUM + i,
2127 regs + fpregmap->r_f0_offset + (i * 4));
2128 }
2129
2130 if (sparc32)
2131 {
2132 if (regnum == SPARC32_FSR_REGNUM || regnum == -1)
2133 regcache->raw_supply (SPARC32_FSR_REGNUM,
2134 regs + fpregmap->r_fsr_offset);
2135 }
2136 else
2137 {
2138 for (i = 0; i < 16; i++)
2139 {
2140 if (regnum == (SPARC64_F32_REGNUM + i) || regnum == -1)
2141 regcache->raw_supply
2142 (SPARC64_F32_REGNUM + i,
2143 regs + fpregmap->r_f0_offset + (32 * 4) + (i * 8));
2144 }
2145
2146 if (regnum == SPARC64_FSR_REGNUM || regnum == -1)
2147 regcache->raw_supply (SPARC64_FSR_REGNUM,
2148 regs + fpregmap->r_fsr_offset);
2149 }
2150 }
2151
2152 void
2153 sparc64_collect_fpregset (const struct sparc_fpregmap *fpregmap,
2154 const struct regcache *regcache,
2155 int regnum, void *fpregs)
2156 {
2157 int sparc32 = (gdbarch_ptr_bit (regcache->arch ()) == 32);
2158 gdb_byte *regs = (gdb_byte *) fpregs;
2159 int i;
2160
2161 for (i = 0; i < 32; i++)
2162 {
2163 if (regnum == (SPARC_F0_REGNUM + i) || regnum == -1)
2164 regcache->raw_collect (SPARC_F0_REGNUM + i,
2165 regs + fpregmap->r_f0_offset + (i * 4));
2166 }
2167
2168 if (sparc32)
2169 {
2170 if (regnum == SPARC32_FSR_REGNUM || regnum == -1)
2171 regcache->raw_collect (SPARC32_FSR_REGNUM,
2172 regs + fpregmap->r_fsr_offset);
2173 }
2174 else
2175 {
2176 for (i = 0; i < 16; i++)
2177 {
2178 if (regnum == (SPARC64_F32_REGNUM + i) || regnum == -1)
2179 regcache->raw_collect (SPARC64_F32_REGNUM + i,
2180 (regs + fpregmap->r_f0_offset
2181 + (32 * 4) + (i * 8)));
2182 }
2183
2184 if (regnum == SPARC64_FSR_REGNUM || regnum == -1)
2185 regcache->raw_collect (SPARC64_FSR_REGNUM,
2186 regs + fpregmap->r_fsr_offset);
2187 }
2188 }
2189
2190 const struct sparc_fpregmap sparc64_bsd_fpregmap =
2191 {
2192 0 * 8, /* %f0 */
2193 32 * 8, /* %fsr */
2194 };
2195