Add gdbarch_in_function_epilogue_p hook for sparc64.
[deliverable/binutils-gdb.git] / gdb / sparc-tdep.c
1 /* Target-dependent code for SPARC.
2
3 Copyright (C) 2003-2014 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 "arch-utils.h"
22 #include "dis-asm.h"
23 #include "dwarf2-frame.h"
24 #include "floatformat.h"
25 #include "frame.h"
26 #include "frame-base.h"
27 #include "frame-unwind.h"
28 #include "gdbcore.h"
29 #include "gdbtypes.h"
30 #include "inferior.h"
31 #include "symtab.h"
32 #include "objfiles.h"
33 #include "osabi.h"
34 #include "regcache.h"
35 #include "target.h"
36 #include "value.h"
37
38 #include "gdb_assert.h"
39 #include <string.h>
40
41 #include "sparc-tdep.h"
42 #include "sparc-ravenscar-thread.h"
43
44 struct regset;
45
46 /* This file implements the SPARC 32-bit ABI as defined by the section
47 "Low-Level System Information" of the SPARC Compliance Definition
48 (SCD) 2.4.1, which is the 32-bit System V psABI for SPARC. The SCD
49 lists changes with respect to the original 32-bit psABI as defined
50 in the "System V ABI, SPARC Processor Supplement".
51
52 Note that if we talk about SunOS, we mean SunOS 4.x, which was
53 BSD-based, which is sometimes (retroactively?) referred to as
54 Solaris 1.x. If we talk about Solaris we mean Solaris 2.x and
55 above (Solaris 7, 8 and 9 are nothing but Solaris 2.7, 2.8 and 2.9
56 suffering from severe version number inflation). Solaris 2.x is
57 also known as SunOS 5.x, since that's what uname(1) says. Solaris
58 2.x is SVR4-based. */
59
60 /* Please use the sparc32_-prefix for 32-bit specific code, the
61 sparc64_-prefix for 64-bit specific code and the sparc_-prefix for
62 code that can handle both. The 64-bit specific code lives in
63 sparc64-tdep.c; don't add any here. */
64
65 /* The SPARC Floating-Point Quad-Precision format is similar to
66 big-endian IA-64 Quad-Precision format. */
67 #define floatformats_sparc_quad floatformats_ia64_quad
68
69 /* The stack pointer is offset from the stack frame by a BIAS of 2047
70 (0x7ff) for 64-bit code. BIAS is likely to be defined on SPARC
71 hosts, so undefine it first. */
72 #undef BIAS
73 #define BIAS 2047
74
75 /* Macros to extract fields from SPARC instructions. */
76 #define X_OP(i) (((i) >> 30) & 0x3)
77 #define X_RD(i) (((i) >> 25) & 0x1f)
78 #define X_A(i) (((i) >> 29) & 1)
79 #define X_COND(i) (((i) >> 25) & 0xf)
80 #define X_OP2(i) (((i) >> 22) & 0x7)
81 #define X_IMM22(i) ((i) & 0x3fffff)
82 #define X_OP3(i) (((i) >> 19) & 0x3f)
83 #define X_RS1(i) (((i) >> 14) & 0x1f)
84 #define X_RS2(i) ((i) & 0x1f)
85 #define X_I(i) (((i) >> 13) & 1)
86 /* Sign extension macros. */
87 #define X_DISP22(i) ((X_IMM22 (i) ^ 0x200000) - 0x200000)
88 #define X_DISP19(i) ((((i) & 0x7ffff) ^ 0x40000) - 0x40000)
89 #define X_DISP10(i) ((((((i) >> 11) && 0x300) | (((i) >> 5) & 0xff)) ^ 0x200) - 0x200)
90 #define X_SIMM13(i) ((((i) & 0x1fff) ^ 0x1000) - 0x1000)
91 /* Macros to identify some instructions. */
92 /* RETURN (RETT in V8) */
93 #define X_RETTURN(i) ((X_OP (i) == 0x2) && (X_OP3 (i) == 0x39))
94
95 /* Fetch the instruction at PC. Instructions are always big-endian
96 even if the processor operates in little-endian mode. */
97
98 unsigned long
99 sparc_fetch_instruction (CORE_ADDR pc)
100 {
101 gdb_byte buf[4];
102 unsigned long insn;
103 int i;
104
105 /* If we can't read the instruction at PC, return zero. */
106 if (target_read_memory (pc, buf, sizeof (buf)))
107 return 0;
108
109 insn = 0;
110 for (i = 0; i < sizeof (buf); i++)
111 insn = (insn << 8) | buf[i];
112 return insn;
113 }
114 \f
115
116 /* Return non-zero if the instruction corresponding to PC is an "unimp"
117 instruction. */
118
119 static int
120 sparc_is_unimp_insn (CORE_ADDR pc)
121 {
122 const unsigned long insn = sparc_fetch_instruction (pc);
123
124 return ((insn & 0xc1c00000) == 0);
125 }
126
127 /* Return non-zero if the instruction corresponding to PC is an
128 "annulled" branch, i.e. the annul bit is set. */
129
130 int
131 sparc_is_annulled_branch_insn (CORE_ADDR pc)
132 {
133 /* The branch instructions featuring an annul bit can be identified
134 by the following bit patterns:
135
136 OP=0
137 OP2=1: Branch on Integer Condition Codes with Prediction (BPcc).
138 OP2=2: Branch on Integer Condition Codes (Bcc).
139 OP2=5: Branch on FP Condition Codes with Prediction (FBfcc).
140 OP2=6: Branch on FP Condition Codes (FBcc).
141 OP2=3 && Bit28=0:
142 Branch on Integer Register with Prediction (BPr).
143
144 This leaves out ILLTRAP (OP2=0), SETHI/NOP (OP2=4) and the V8
145 coprocessor branch instructions (Op2=7). */
146
147 const unsigned long insn = sparc_fetch_instruction (pc);
148 const unsigned op2 = X_OP2 (insn);
149
150 if ((X_OP (insn) == 0)
151 && ((op2 == 1) || (op2 == 2) || (op2 == 5) || (op2 == 6)
152 || ((op2 == 3) && ((insn & 0x10000000) == 0))))
153 return X_A (insn);
154 else
155 return 0;
156 }
157
158 /* OpenBSD/sparc includes StackGhost, which according to the author's
159 website http://stackghost.cerias.purdue.edu "... transparently and
160 automatically protects applications' stack frames; more
161 specifically, it guards the return pointers. The protection
162 mechanisms require no application source or binary modification and
163 imposes only a negligible performance penalty."
164
165 The same website provides the following description of how
166 StackGhost works:
167
168 "StackGhost interfaces with the kernel trap handler that would
169 normally write out registers to the stack and the handler that
170 would read them back in. By XORing a cookie into the
171 return-address saved in the user stack when it is actually written
172 to the stack, and then XOR it out when the return-address is pulled
173 from the stack, StackGhost can cause attacker corrupted return
174 pointers to behave in a manner the attacker cannot predict.
175 StackGhost can also use several unused bits in the return pointer
176 to detect a smashed return pointer and abort the process."
177
178 For GDB this means that whenever we're reading %i7 from a stack
179 frame's window save area, we'll have to XOR the cookie.
180
181 More information on StackGuard can be found on in:
182
183 Mike Frantzen and Mike Shuey. "StackGhost: Hardware Facilitated
184 Stack Protection." 2001. Published in USENIX Security Symposium
185 '01. */
186
187 /* Fetch StackGhost Per-Process XOR cookie. */
188
189 ULONGEST
190 sparc_fetch_wcookie (struct gdbarch *gdbarch)
191 {
192 enum bfd_endian byte_order = gdbarch_byte_order (gdbarch);
193 struct target_ops *ops = &current_target;
194 gdb_byte buf[8];
195 int len;
196
197 len = target_read (ops, TARGET_OBJECT_WCOOKIE, NULL, buf, 0, 8);
198 if (len == -1)
199 return 0;
200
201 /* We should have either an 32-bit or an 64-bit cookie. */
202 gdb_assert (len == 4 || len == 8);
203
204 return extract_unsigned_integer (buf, len, byte_order);
205 }
206 \f
207
208 /* The functions on this page are intended to be used to classify
209 function arguments. */
210
211 /* Check whether TYPE is "Integral or Pointer". */
212
213 static int
214 sparc_integral_or_pointer_p (const struct type *type)
215 {
216 int len = TYPE_LENGTH (type);
217
218 switch (TYPE_CODE (type))
219 {
220 case TYPE_CODE_INT:
221 case TYPE_CODE_BOOL:
222 case TYPE_CODE_CHAR:
223 case TYPE_CODE_ENUM:
224 case TYPE_CODE_RANGE:
225 /* We have byte, half-word, word and extended-word/doubleword
226 integral types. The doubleword is an extension to the
227 original 32-bit ABI by the SCD 2.4.x. */
228 return (len == 1 || len == 2 || len == 4 || len == 8);
229 case TYPE_CODE_PTR:
230 case TYPE_CODE_REF:
231 /* Allow either 32-bit or 64-bit pointers. */
232 return (len == 4 || len == 8);
233 default:
234 break;
235 }
236
237 return 0;
238 }
239
240 /* Check whether TYPE is "Floating". */
241
242 static int
243 sparc_floating_p (const struct type *type)
244 {
245 switch (TYPE_CODE (type))
246 {
247 case TYPE_CODE_FLT:
248 {
249 int len = TYPE_LENGTH (type);
250 return (len == 4 || len == 8 || len == 16);
251 }
252 default:
253 break;
254 }
255
256 return 0;
257 }
258
259 /* Check whether TYPE is "Complex Floating". */
260
261 static int
262 sparc_complex_floating_p (const struct type *type)
263 {
264 switch (TYPE_CODE (type))
265 {
266 case TYPE_CODE_COMPLEX:
267 {
268 int len = TYPE_LENGTH (type);
269 return (len == 8 || len == 16 || len == 32);
270 }
271 default:
272 break;
273 }
274
275 return 0;
276 }
277
278 /* Check whether TYPE is "Structure or Union".
279
280 In terms of Ada subprogram calls, arrays are treated the same as
281 struct and union types. So this function also returns non-zero
282 for array types. */
283
284 static int
285 sparc_structure_or_union_p (const struct type *type)
286 {
287 switch (TYPE_CODE (type))
288 {
289 case TYPE_CODE_STRUCT:
290 case TYPE_CODE_UNION:
291 case TYPE_CODE_ARRAY:
292 return 1;
293 default:
294 break;
295 }
296
297 return 0;
298 }
299
300 /* Register information. */
301
302 static const char *sparc32_register_names[] =
303 {
304 "g0", "g1", "g2", "g3", "g4", "g5", "g6", "g7",
305 "o0", "o1", "o2", "o3", "o4", "o5", "sp", "o7",
306 "l0", "l1", "l2", "l3", "l4", "l5", "l6", "l7",
307 "i0", "i1", "i2", "i3", "i4", "i5", "fp", "i7",
308
309 "f0", "f1", "f2", "f3", "f4", "f5", "f6", "f7",
310 "f8", "f9", "f10", "f11", "f12", "f13", "f14", "f15",
311 "f16", "f17", "f18", "f19", "f20", "f21", "f22", "f23",
312 "f24", "f25", "f26", "f27", "f28", "f29", "f30", "f31",
313
314 "y", "psr", "wim", "tbr", "pc", "npc", "fsr", "csr"
315 };
316
317 /* Total number of registers. */
318 #define SPARC32_NUM_REGS ARRAY_SIZE (sparc32_register_names)
319
320 /* We provide the aliases %d0..%d30 for the floating registers as
321 "psuedo" registers. */
322
323 static const char *sparc32_pseudo_register_names[] =
324 {
325 "d0", "d2", "d4", "d6", "d8", "d10", "d12", "d14",
326 "d16", "d18", "d20", "d22", "d24", "d26", "d28", "d30"
327 };
328
329 /* Total number of pseudo registers. */
330 #define SPARC32_NUM_PSEUDO_REGS ARRAY_SIZE (sparc32_pseudo_register_names)
331
332 /* Return the name of register REGNUM. */
333
334 static const char *
335 sparc32_register_name (struct gdbarch *gdbarch, int regnum)
336 {
337 if (regnum >= 0 && regnum < SPARC32_NUM_REGS)
338 return sparc32_register_names[regnum];
339
340 if (regnum < SPARC32_NUM_REGS + SPARC32_NUM_PSEUDO_REGS)
341 return sparc32_pseudo_register_names[regnum - SPARC32_NUM_REGS];
342
343 return NULL;
344 }
345 \f
346 /* Construct types for ISA-specific registers. */
347
348 static struct type *
349 sparc_psr_type (struct gdbarch *gdbarch)
350 {
351 struct gdbarch_tdep *tdep = gdbarch_tdep (gdbarch);
352
353 if (!tdep->sparc_psr_type)
354 {
355 struct type *type;
356
357 type = arch_flags_type (gdbarch, "builtin_type_sparc_psr", 4);
358 append_flags_type_flag (type, 5, "ET");
359 append_flags_type_flag (type, 6, "PS");
360 append_flags_type_flag (type, 7, "S");
361 append_flags_type_flag (type, 12, "EF");
362 append_flags_type_flag (type, 13, "EC");
363
364 tdep->sparc_psr_type = type;
365 }
366
367 return tdep->sparc_psr_type;
368 }
369
370 static struct type *
371 sparc_fsr_type (struct gdbarch *gdbarch)
372 {
373 struct gdbarch_tdep *tdep = gdbarch_tdep (gdbarch);
374
375 if (!tdep->sparc_fsr_type)
376 {
377 struct type *type;
378
379 type = arch_flags_type (gdbarch, "builtin_type_sparc_fsr", 4);
380 append_flags_type_flag (type, 0, "NXA");
381 append_flags_type_flag (type, 1, "DZA");
382 append_flags_type_flag (type, 2, "UFA");
383 append_flags_type_flag (type, 3, "OFA");
384 append_flags_type_flag (type, 4, "NVA");
385 append_flags_type_flag (type, 5, "NXC");
386 append_flags_type_flag (type, 6, "DZC");
387 append_flags_type_flag (type, 7, "UFC");
388 append_flags_type_flag (type, 8, "OFC");
389 append_flags_type_flag (type, 9, "NVC");
390 append_flags_type_flag (type, 22, "NS");
391 append_flags_type_flag (type, 23, "NXM");
392 append_flags_type_flag (type, 24, "DZM");
393 append_flags_type_flag (type, 25, "UFM");
394 append_flags_type_flag (type, 26, "OFM");
395 append_flags_type_flag (type, 27, "NVM");
396
397 tdep->sparc_fsr_type = type;
398 }
399
400 return tdep->sparc_fsr_type;
401 }
402
403 /* Return the GDB type object for the "standard" data type of data in
404 register REGNUM. */
405
406 static struct type *
407 sparc32_register_type (struct gdbarch *gdbarch, int regnum)
408 {
409 if (regnum >= SPARC_F0_REGNUM && regnum <= SPARC_F31_REGNUM)
410 return builtin_type (gdbarch)->builtin_float;
411
412 if (regnum >= SPARC32_D0_REGNUM && regnum <= SPARC32_D30_REGNUM)
413 return builtin_type (gdbarch)->builtin_double;
414
415 if (regnum == SPARC_SP_REGNUM || regnum == SPARC_FP_REGNUM)
416 return builtin_type (gdbarch)->builtin_data_ptr;
417
418 if (regnum == SPARC32_PC_REGNUM || regnum == SPARC32_NPC_REGNUM)
419 return builtin_type (gdbarch)->builtin_func_ptr;
420
421 if (regnum == SPARC32_PSR_REGNUM)
422 return sparc_psr_type (gdbarch);
423
424 if (regnum == SPARC32_FSR_REGNUM)
425 return sparc_fsr_type (gdbarch);
426
427 return builtin_type (gdbarch)->builtin_int32;
428 }
429
430 static enum register_status
431 sparc32_pseudo_register_read (struct gdbarch *gdbarch,
432 struct regcache *regcache,
433 int regnum, gdb_byte *buf)
434 {
435 enum register_status status;
436
437 gdb_assert (regnum >= SPARC32_D0_REGNUM && regnum <= SPARC32_D30_REGNUM);
438
439 regnum = SPARC_F0_REGNUM + 2 * (regnum - SPARC32_D0_REGNUM);
440 status = regcache_raw_read (regcache, regnum, buf);
441 if (status == REG_VALID)
442 status = regcache_raw_read (regcache, regnum + 1, buf + 4);
443 return status;
444 }
445
446 static void
447 sparc32_pseudo_register_write (struct gdbarch *gdbarch,
448 struct regcache *regcache,
449 int regnum, const gdb_byte *buf)
450 {
451 gdb_assert (regnum >= SPARC32_D0_REGNUM && regnum <= SPARC32_D30_REGNUM);
452
453 regnum = SPARC_F0_REGNUM + 2 * (regnum - SPARC32_D0_REGNUM);
454 regcache_raw_write (regcache, regnum, buf);
455 regcache_raw_write (regcache, regnum + 1, buf + 4);
456 }
457 \f
458 /* Implement "in_function_epilogue_p". */
459
460 int
461 sparc_in_function_epilogue_p (struct gdbarch *gdbarch, CORE_ADDR pc)
462 {
463 /* This function must return true if we are one instruction after an
464 instruction that destroyed the stack frame of the current
465 function. The SPARC instructions used to restore the callers
466 stack frame are RESTORE and RETURN/RETT.
467
468 Of these RETURN/RETT is a branch instruction and thus we return
469 true if we are in its delay slot.
470
471 RESTORE is almost always found in the delay slot of a branch
472 instruction that transfers control to the caller, such as JMPL.
473 Thus the next instruction is in the caller frame and we don't
474 need to do anything about it. */
475
476 unsigned int insn = sparc_fetch_instruction (pc - 4);
477
478 return X_RETTURN (insn);
479 }
480 \f
481
482 static CORE_ADDR
483 sparc32_frame_align (struct gdbarch *gdbarch, CORE_ADDR address)
484 {
485 /* The ABI requires double-word alignment. */
486 return address & ~0x7;
487 }
488
489 static CORE_ADDR
490 sparc32_push_dummy_code (struct gdbarch *gdbarch, CORE_ADDR sp,
491 CORE_ADDR funcaddr,
492 struct value **args, int nargs,
493 struct type *value_type,
494 CORE_ADDR *real_pc, CORE_ADDR *bp_addr,
495 struct regcache *regcache)
496 {
497 enum bfd_endian byte_order = gdbarch_byte_order (gdbarch);
498
499 *bp_addr = sp - 4;
500 *real_pc = funcaddr;
501
502 if (using_struct_return (gdbarch, NULL, value_type))
503 {
504 gdb_byte buf[4];
505
506 /* This is an UNIMP instruction. */
507 store_unsigned_integer (buf, 4, byte_order,
508 TYPE_LENGTH (value_type) & 0x1fff);
509 write_memory (sp - 8, buf, 4);
510 return sp - 8;
511 }
512
513 return sp - 4;
514 }
515
516 static CORE_ADDR
517 sparc32_store_arguments (struct regcache *regcache, int nargs,
518 struct value **args, CORE_ADDR sp,
519 int struct_return, CORE_ADDR struct_addr)
520 {
521 struct gdbarch *gdbarch = get_regcache_arch (regcache);
522 enum bfd_endian byte_order = gdbarch_byte_order (gdbarch);
523 /* Number of words in the "parameter array". */
524 int num_elements = 0;
525 int element = 0;
526 int i;
527
528 for (i = 0; i < nargs; i++)
529 {
530 struct type *type = value_type (args[i]);
531 int len = TYPE_LENGTH (type);
532
533 if (sparc_structure_or_union_p (type)
534 || (sparc_floating_p (type) && len == 16)
535 || sparc_complex_floating_p (type))
536 {
537 /* Structure, Union and Quad-Precision Arguments. */
538 sp -= len;
539
540 /* Use doubleword alignment for these values. That's always
541 correct, and wasting a few bytes shouldn't be a problem. */
542 sp &= ~0x7;
543
544 write_memory (sp, value_contents (args[i]), len);
545 args[i] = value_from_pointer (lookup_pointer_type (type), sp);
546 num_elements++;
547 }
548 else if (sparc_floating_p (type))
549 {
550 /* Floating arguments. */
551 gdb_assert (len == 4 || len == 8);
552 num_elements += (len / 4);
553 }
554 else
555 {
556 /* Integral and pointer arguments. */
557 gdb_assert (sparc_integral_or_pointer_p (type));
558
559 if (len < 4)
560 args[i] = value_cast (builtin_type (gdbarch)->builtin_int32,
561 args[i]);
562 num_elements += ((len + 3) / 4);
563 }
564 }
565
566 /* Always allocate at least six words. */
567 sp -= max (6, num_elements) * 4;
568
569 /* The psABI says that "Software convention requires space for the
570 struct/union return value pointer, even if the word is unused." */
571 sp -= 4;
572
573 /* The psABI says that "Although software convention and the
574 operating system require every stack frame to be doubleword
575 aligned." */
576 sp &= ~0x7;
577
578 for (i = 0; i < nargs; i++)
579 {
580 const bfd_byte *valbuf = value_contents (args[i]);
581 struct type *type = value_type (args[i]);
582 int len = TYPE_LENGTH (type);
583
584 gdb_assert (len == 4 || len == 8);
585
586 if (element < 6)
587 {
588 int regnum = SPARC_O0_REGNUM + element;
589
590 regcache_cooked_write (regcache, regnum, valbuf);
591 if (len > 4 && element < 5)
592 regcache_cooked_write (regcache, regnum + 1, valbuf + 4);
593 }
594
595 /* Always store the argument in memory. */
596 write_memory (sp + 4 + element * 4, valbuf, len);
597 element += len / 4;
598 }
599
600 gdb_assert (element == num_elements);
601
602 if (struct_return)
603 {
604 gdb_byte buf[4];
605
606 store_unsigned_integer (buf, 4, byte_order, struct_addr);
607 write_memory (sp, buf, 4);
608 }
609
610 return sp;
611 }
612
613 static CORE_ADDR
614 sparc32_push_dummy_call (struct gdbarch *gdbarch, struct value *function,
615 struct regcache *regcache, CORE_ADDR bp_addr,
616 int nargs, struct value **args, CORE_ADDR sp,
617 int struct_return, CORE_ADDR struct_addr)
618 {
619 CORE_ADDR call_pc = (struct_return ? (bp_addr - 12) : (bp_addr - 8));
620
621 /* Set return address. */
622 regcache_cooked_write_unsigned (regcache, SPARC_O7_REGNUM, call_pc);
623
624 /* Set up function arguments. */
625 sp = sparc32_store_arguments (regcache, nargs, args, sp,
626 struct_return, struct_addr);
627
628 /* Allocate the 16-word window save area. */
629 sp -= 16 * 4;
630
631 /* Stack should be doubleword aligned at this point. */
632 gdb_assert (sp % 8 == 0);
633
634 /* Finally, update the stack pointer. */
635 regcache_cooked_write_unsigned (regcache, SPARC_SP_REGNUM, sp);
636
637 return sp;
638 }
639 \f
640
641 /* Use the program counter to determine the contents and size of a
642 breakpoint instruction. Return a pointer to a string of bytes that
643 encode a breakpoint instruction, store the length of the string in
644 *LEN and optionally adjust *PC to point to the correct memory
645 location for inserting the breakpoint. */
646
647 static const gdb_byte *
648 sparc_breakpoint_from_pc (struct gdbarch *gdbarch, CORE_ADDR *pc, int *len)
649 {
650 static const gdb_byte break_insn[] = { 0x91, 0xd0, 0x20, 0x01 };
651
652 *len = sizeof (break_insn);
653 return break_insn;
654 }
655 \f
656
657 /* Allocate and initialize a frame cache. */
658
659 static struct sparc_frame_cache *
660 sparc_alloc_frame_cache (void)
661 {
662 struct sparc_frame_cache *cache;
663
664 cache = FRAME_OBSTACK_ZALLOC (struct sparc_frame_cache);
665
666 /* Base address. */
667 cache->base = 0;
668 cache->pc = 0;
669
670 /* Frameless until proven otherwise. */
671 cache->frameless_p = 1;
672 cache->frame_offset = 0;
673 cache->saved_regs_mask = 0;
674 cache->copied_regs_mask = 0;
675 cache->struct_return_p = 0;
676
677 return cache;
678 }
679
680 /* GCC generates several well-known sequences of instructions at the begining
681 of each function prologue when compiling with -fstack-check. If one of
682 such sequences starts at START_PC, then return the address of the
683 instruction immediately past this sequence. Otherwise, return START_PC. */
684
685 static CORE_ADDR
686 sparc_skip_stack_check (const CORE_ADDR start_pc)
687 {
688 CORE_ADDR pc = start_pc;
689 unsigned long insn;
690 int offset_stack_checking_sequence = 0;
691 int probing_loop = 0;
692
693 /* With GCC, all stack checking sequences begin with the same two
694 instructions, plus an optional one in the case of a probing loop:
695
696 sethi <some immediate>, %g1
697 sub %sp, %g1, %g1
698
699 or:
700
701 sethi <some immediate>, %g1
702 sethi <some immediate>, %g4
703 sub %sp, %g1, %g1
704
705 or:
706
707 sethi <some immediate>, %g1
708 sub %sp, %g1, %g1
709 sethi <some immediate>, %g4
710
711 If the optional instruction is found (setting g4), assume that a
712 probing loop will follow. */
713
714 /* sethi <some immediate>, %g1 */
715 insn = sparc_fetch_instruction (pc);
716 pc = pc + 4;
717 if (!(X_OP (insn) == 0 && X_OP2 (insn) == 0x4 && X_RD (insn) == 1))
718 return start_pc;
719
720 /* optional: sethi <some immediate>, %g4 */
721 insn = sparc_fetch_instruction (pc);
722 pc = pc + 4;
723 if (X_OP (insn) == 0 && X_OP2 (insn) == 0x4 && X_RD (insn) == 4)
724 {
725 probing_loop = 1;
726 insn = sparc_fetch_instruction (pc);
727 pc = pc + 4;
728 }
729
730 /* sub %sp, %g1, %g1 */
731 if (!(X_OP (insn) == 2 && X_OP3 (insn) == 0x4 && !X_I(insn)
732 && X_RD (insn) == 1 && X_RS1 (insn) == 14 && X_RS2 (insn) == 1))
733 return start_pc;
734
735 insn = sparc_fetch_instruction (pc);
736 pc = pc + 4;
737
738 /* optional: sethi <some immediate>, %g4 */
739 if (X_OP (insn) == 0 && X_OP2 (insn) == 0x4 && X_RD (insn) == 4)
740 {
741 probing_loop = 1;
742 insn = sparc_fetch_instruction (pc);
743 pc = pc + 4;
744 }
745
746 /* First possible sequence:
747 [first two instructions above]
748 clr [%g1 - some immediate] */
749
750 /* clr [%g1 - some immediate] */
751 if (X_OP (insn) == 3 && X_OP3(insn) == 0x4 && X_I(insn)
752 && X_RS1 (insn) == 1 && X_RD (insn) == 0)
753 {
754 /* Valid stack-check sequence, return the new PC. */
755 return pc;
756 }
757
758 /* Second possible sequence: A small number of probes.
759 [first two instructions above]
760 clr [%g1]
761 add %g1, -<some immediate>, %g1
762 clr [%g1]
763 [repeat the two instructions above any (small) number of times]
764 clr [%g1 - some immediate] */
765
766 /* clr [%g1] */
767 else if (X_OP (insn) == 3 && X_OP3(insn) == 0x4 && !X_I(insn)
768 && X_RS1 (insn) == 1 && X_RD (insn) == 0)
769 {
770 while (1)
771 {
772 /* add %g1, -<some immediate>, %g1 */
773 insn = sparc_fetch_instruction (pc);
774 pc = pc + 4;
775 if (!(X_OP (insn) == 2 && X_OP3(insn) == 0 && X_I(insn)
776 && X_RS1 (insn) == 1 && X_RD (insn) == 1))
777 break;
778
779 /* clr [%g1] */
780 insn = sparc_fetch_instruction (pc);
781 pc = pc + 4;
782 if (!(X_OP (insn) == 3 && X_OP3(insn) == 0x4 && !X_I(insn)
783 && X_RD (insn) == 0 && X_RS1 (insn) == 1))
784 return start_pc;
785 }
786
787 /* clr [%g1 - some immediate] */
788 if (!(X_OP (insn) == 3 && X_OP3(insn) == 0x4 && X_I(insn)
789 && X_RS1 (insn) == 1 && X_RD (insn) == 0))
790 return start_pc;
791
792 /* We found a valid stack-check sequence, return the new PC. */
793 return pc;
794 }
795
796 /* Third sequence: A probing loop.
797 [first three instructions above]
798 sub %g1, %g4, %g4
799 cmp %g1, %g4
800 be <disp>
801 add %g1, -<some immediate>, %g1
802 ba <disp>
803 clr [%g1]
804
805 And an optional last probe for the remainder:
806
807 clr [%g4 - some immediate] */
808
809 if (probing_loop)
810 {
811 /* sub %g1, %g4, %g4 */
812 if (!(X_OP (insn) == 2 && X_OP3 (insn) == 0x4 && !X_I(insn)
813 && X_RD (insn) == 4 && X_RS1 (insn) == 1 && X_RS2 (insn) == 4))
814 return start_pc;
815
816 /* cmp %g1, %g4 */
817 insn = sparc_fetch_instruction (pc);
818 pc = pc + 4;
819 if (!(X_OP (insn) == 2 && X_OP3 (insn) == 0x14 && !X_I(insn)
820 && X_RD (insn) == 0 && X_RS1 (insn) == 1 && X_RS2 (insn) == 4))
821 return start_pc;
822
823 /* be <disp> */
824 insn = sparc_fetch_instruction (pc);
825 pc = pc + 4;
826 if (!(X_OP (insn) == 0 && X_COND (insn) == 0x1))
827 return start_pc;
828
829 /* add %g1, -<some immediate>, %g1 */
830 insn = sparc_fetch_instruction (pc);
831 pc = pc + 4;
832 if (!(X_OP (insn) == 2 && X_OP3(insn) == 0 && X_I(insn)
833 && X_RS1 (insn) == 1 && X_RD (insn) == 1))
834 return start_pc;
835
836 /* ba <disp> */
837 insn = sparc_fetch_instruction (pc);
838 pc = pc + 4;
839 if (!(X_OP (insn) == 0 && X_COND (insn) == 0x8))
840 return start_pc;
841
842 /* clr [%g1] (st %g0, [%g1] or st %g0, [%g1+0]) */
843 insn = sparc_fetch_instruction (pc);
844 pc = pc + 4;
845 if (!(X_OP (insn) == 3 && X_OP3(insn) == 0x4
846 && X_RD (insn) == 0 && X_RS1 (insn) == 1
847 && (!X_I(insn) || X_SIMM13 (insn) == 0)))
848 return start_pc;
849
850 /* We found a valid stack-check sequence, return the new PC. */
851
852 /* optional: clr [%g4 - some immediate] */
853 insn = sparc_fetch_instruction (pc);
854 pc = pc + 4;
855 if (!(X_OP (insn) == 3 && X_OP3(insn) == 0x4 && X_I(insn)
856 && X_RS1 (insn) == 4 && X_RD (insn) == 0))
857 return pc - 4;
858 else
859 return pc;
860 }
861
862 /* No stack check code in our prologue, return the start_pc. */
863 return start_pc;
864 }
865
866 /* Record the effect of a SAVE instruction on CACHE. */
867
868 void
869 sparc_record_save_insn (struct sparc_frame_cache *cache)
870 {
871 /* The frame is set up. */
872 cache->frameless_p = 0;
873
874 /* The frame pointer contains the CFA. */
875 cache->frame_offset = 0;
876
877 /* The `local' and `in' registers are all saved. */
878 cache->saved_regs_mask = 0xffff;
879
880 /* The `out' registers are all renamed. */
881 cache->copied_regs_mask = 0xff;
882 }
883
884 /* Do a full analysis of the prologue at PC and update CACHE accordingly.
885 Bail out early if CURRENT_PC is reached. Return the address where
886 the analysis stopped.
887
888 We handle both the traditional register window model and the single
889 register window (aka flat) model. */
890
891 CORE_ADDR
892 sparc_analyze_prologue (struct gdbarch *gdbarch, CORE_ADDR pc,
893 CORE_ADDR current_pc, struct sparc_frame_cache *cache)
894 {
895 struct gdbarch_tdep *tdep = gdbarch_tdep (gdbarch);
896 unsigned long insn;
897 int offset = 0;
898 int dest = -1;
899
900 pc = sparc_skip_stack_check (pc);
901
902 if (current_pc <= pc)
903 return current_pc;
904
905 /* We have to handle to "Procedure Linkage Table" (PLT) special. On
906 SPARC the linker usually defines a symbol (typically
907 _PROCEDURE_LINKAGE_TABLE_) at the start of the .plt section.
908 This symbol makes us end up here with PC pointing at the start of
909 the PLT and CURRENT_PC probably pointing at a PLT entry. If we
910 would do our normal prologue analysis, we would probably conclude
911 that we've got a frame when in reality we don't, since the
912 dynamic linker patches up the first PLT with some code that
913 starts with a SAVE instruction. Patch up PC such that it points
914 at the start of our PLT entry. */
915 if (tdep->plt_entry_size > 0 && in_plt_section (current_pc))
916 pc = current_pc - ((current_pc - pc) % tdep->plt_entry_size);
917
918 insn = sparc_fetch_instruction (pc);
919
920 /* Recognize store insns and record their sources. */
921 while (X_OP (insn) == 3
922 && (X_OP3 (insn) == 0x4 /* stw */
923 || X_OP3 (insn) == 0x7 /* std */
924 || X_OP3 (insn) == 0xe) /* stx */
925 && X_RS1 (insn) == SPARC_SP_REGNUM)
926 {
927 int regnum = X_RD (insn);
928
929 /* Recognize stores into the corresponding stack slots. */
930 if (regnum >= SPARC_L0_REGNUM && regnum <= SPARC_I7_REGNUM
931 && ((X_I (insn)
932 && X_SIMM13 (insn) == (X_OP3 (insn) == 0xe
933 ? (regnum - SPARC_L0_REGNUM) * 8 + BIAS
934 : (regnum - SPARC_L0_REGNUM) * 4))
935 || (!X_I (insn) && regnum == SPARC_L0_REGNUM)))
936 {
937 cache->saved_regs_mask |= (1 << (regnum - SPARC_L0_REGNUM));
938 if (X_OP3 (insn) == 0x7)
939 cache->saved_regs_mask |= (1 << (regnum + 1 - SPARC_L0_REGNUM));
940 }
941
942 offset += 4;
943
944 insn = sparc_fetch_instruction (pc + offset);
945 }
946
947 /* Recognize a SETHI insn and record its destination. */
948 if (X_OP (insn) == 0 && X_OP2 (insn) == 0x04)
949 {
950 dest = X_RD (insn);
951 offset += 4;
952
953 insn = sparc_fetch_instruction (pc + offset);
954 }
955
956 /* Allow for an arithmetic operation on DEST or %g1. */
957 if (X_OP (insn) == 2 && X_I (insn)
958 && (X_RD (insn) == 1 || X_RD (insn) == dest))
959 {
960 offset += 4;
961
962 insn = sparc_fetch_instruction (pc + offset);
963 }
964
965 /* Check for the SAVE instruction that sets up the frame. */
966 if (X_OP (insn) == 2 && X_OP3 (insn) == 0x3c)
967 {
968 sparc_record_save_insn (cache);
969 offset += 4;
970 return pc + offset;
971 }
972
973 /* Check for an arithmetic operation on %sp. */
974 if (X_OP (insn) == 2
975 && (X_OP3 (insn) == 0 || X_OP3 (insn) == 0x4)
976 && X_RS1 (insn) == SPARC_SP_REGNUM
977 && X_RD (insn) == SPARC_SP_REGNUM)
978 {
979 if (X_I (insn))
980 {
981 cache->frame_offset = X_SIMM13 (insn);
982 if (X_OP3 (insn) == 0)
983 cache->frame_offset = -cache->frame_offset;
984 }
985 offset += 4;
986
987 insn = sparc_fetch_instruction (pc + offset);
988
989 /* Check for an arithmetic operation that sets up the frame. */
990 if (X_OP (insn) == 2
991 && (X_OP3 (insn) == 0 || X_OP3 (insn) == 0x4)
992 && X_RS1 (insn) == SPARC_SP_REGNUM
993 && X_RD (insn) == SPARC_FP_REGNUM)
994 {
995 cache->frameless_p = 0;
996 cache->frame_offset = 0;
997 /* We could check that the amount subtracted to %sp above is the
998 same as the one added here, but this seems superfluous. */
999 cache->copied_regs_mask |= 0x40;
1000 offset += 4;
1001
1002 insn = sparc_fetch_instruction (pc + offset);
1003 }
1004
1005 /* Check for a move (or) operation that copies the return register. */
1006 if (X_OP (insn) == 2
1007 && X_OP3 (insn) == 0x2
1008 && !X_I (insn)
1009 && X_RS1 (insn) == SPARC_G0_REGNUM
1010 && X_RS2 (insn) == SPARC_O7_REGNUM
1011 && X_RD (insn) == SPARC_I7_REGNUM)
1012 {
1013 cache->copied_regs_mask |= 0x80;
1014 offset += 4;
1015 }
1016
1017 return pc + offset;
1018 }
1019
1020 return pc;
1021 }
1022
1023 static CORE_ADDR
1024 sparc_unwind_pc (struct gdbarch *gdbarch, struct frame_info *this_frame)
1025 {
1026 struct gdbarch_tdep *tdep = gdbarch_tdep (gdbarch);
1027 return frame_unwind_register_unsigned (this_frame, tdep->pc_regnum);
1028 }
1029
1030 /* Return PC of first real instruction of the function starting at
1031 START_PC. */
1032
1033 static CORE_ADDR
1034 sparc32_skip_prologue (struct gdbarch *gdbarch, CORE_ADDR start_pc)
1035 {
1036 struct symtab_and_line sal;
1037 CORE_ADDR func_start, func_end;
1038 struct sparc_frame_cache cache;
1039
1040 /* This is the preferred method, find the end of the prologue by
1041 using the debugging information. */
1042 if (find_pc_partial_function (start_pc, NULL, &func_start, &func_end))
1043 {
1044 sal = find_pc_line (func_start, 0);
1045
1046 if (sal.end < func_end
1047 && start_pc <= sal.end)
1048 return sal.end;
1049 }
1050
1051 start_pc = sparc_analyze_prologue (gdbarch, start_pc, 0xffffffffUL, &cache);
1052
1053 /* The psABI says that "Although the first 6 words of arguments
1054 reside in registers, the standard stack frame reserves space for
1055 them.". It also suggests that a function may use that space to
1056 "write incoming arguments 0 to 5" into that space, and that's
1057 indeed what GCC seems to be doing. In that case GCC will
1058 generate debug information that points to the stack slots instead
1059 of the registers, so we should consider the instructions that
1060 write out these incoming arguments onto the stack. */
1061
1062 while (1)
1063 {
1064 unsigned long insn = sparc_fetch_instruction (start_pc);
1065
1066 /* Recognize instructions that store incoming arguments into the
1067 corresponding stack slots. */
1068 if (X_OP (insn) == 3 && (X_OP3 (insn) & 0x3c) == 0x04
1069 && X_I (insn) && X_RS1 (insn) == SPARC_FP_REGNUM)
1070 {
1071 int regnum = X_RD (insn);
1072
1073 /* Case of arguments still in %o[0..5]. */
1074 if (regnum >= SPARC_O0_REGNUM && regnum <= SPARC_O5_REGNUM
1075 && !(cache.copied_regs_mask & (1 << (regnum - SPARC_O0_REGNUM)))
1076 && X_SIMM13 (insn) == 68 + (regnum - SPARC_O0_REGNUM) * 4)
1077 {
1078 start_pc += 4;
1079 continue;
1080 }
1081
1082 /* Case of arguments copied into %i[0..5]. */
1083 if (regnum >= SPARC_I0_REGNUM && regnum <= SPARC_I5_REGNUM
1084 && (cache.copied_regs_mask & (1 << (regnum - SPARC_I0_REGNUM)))
1085 && X_SIMM13 (insn) == 68 + (regnum - SPARC_I0_REGNUM) * 4)
1086 {
1087 start_pc += 4;
1088 continue;
1089 }
1090 }
1091
1092 break;
1093 }
1094
1095 return start_pc;
1096 }
1097
1098 /* Normal frames. */
1099
1100 struct sparc_frame_cache *
1101 sparc_frame_cache (struct frame_info *this_frame, void **this_cache)
1102 {
1103 struct sparc_frame_cache *cache;
1104
1105 if (*this_cache)
1106 return *this_cache;
1107
1108 cache = sparc_alloc_frame_cache ();
1109 *this_cache = cache;
1110
1111 cache->pc = get_frame_func (this_frame);
1112 if (cache->pc != 0)
1113 sparc_analyze_prologue (get_frame_arch (this_frame), cache->pc,
1114 get_frame_pc (this_frame), cache);
1115
1116 if (cache->frameless_p)
1117 {
1118 /* This function is frameless, so %fp (%i6) holds the frame
1119 pointer for our calling frame. Use %sp (%o6) as this frame's
1120 base address. */
1121 cache->base =
1122 get_frame_register_unsigned (this_frame, SPARC_SP_REGNUM);
1123 }
1124 else
1125 {
1126 /* For normal frames, %fp (%i6) holds the frame pointer, the
1127 base address for the current stack frame. */
1128 cache->base =
1129 get_frame_register_unsigned (this_frame, SPARC_FP_REGNUM);
1130 }
1131
1132 cache->base += cache->frame_offset;
1133
1134 if (cache->base & 1)
1135 cache->base += BIAS;
1136
1137 return cache;
1138 }
1139
1140 static int
1141 sparc32_struct_return_from_sym (struct symbol *sym)
1142 {
1143 struct type *type = check_typedef (SYMBOL_TYPE (sym));
1144 enum type_code code = TYPE_CODE (type);
1145
1146 if (code == TYPE_CODE_FUNC || code == TYPE_CODE_METHOD)
1147 {
1148 type = check_typedef (TYPE_TARGET_TYPE (type));
1149 if (sparc_structure_or_union_p (type)
1150 || (sparc_floating_p (type) && TYPE_LENGTH (type) == 16))
1151 return 1;
1152 }
1153
1154 return 0;
1155 }
1156
1157 struct sparc_frame_cache *
1158 sparc32_frame_cache (struct frame_info *this_frame, void **this_cache)
1159 {
1160 struct sparc_frame_cache *cache;
1161 struct symbol *sym;
1162
1163 if (*this_cache)
1164 return *this_cache;
1165
1166 cache = sparc_frame_cache (this_frame, this_cache);
1167
1168 sym = find_pc_function (cache->pc);
1169 if (sym)
1170 {
1171 cache->struct_return_p = sparc32_struct_return_from_sym (sym);
1172 }
1173 else
1174 {
1175 /* There is no debugging information for this function to
1176 help us determine whether this function returns a struct
1177 or not. So we rely on another heuristic which is to check
1178 the instruction at the return address and see if this is
1179 an "unimp" instruction. If it is, then it is a struct-return
1180 function. */
1181 CORE_ADDR pc;
1182 int regnum =
1183 (cache->copied_regs_mask & 0x80) ? SPARC_I7_REGNUM : SPARC_O7_REGNUM;
1184
1185 pc = get_frame_register_unsigned (this_frame, regnum) + 8;
1186 if (sparc_is_unimp_insn (pc))
1187 cache->struct_return_p = 1;
1188 }
1189
1190 return cache;
1191 }
1192
1193 static void
1194 sparc32_frame_this_id (struct frame_info *this_frame, void **this_cache,
1195 struct frame_id *this_id)
1196 {
1197 struct sparc_frame_cache *cache =
1198 sparc32_frame_cache (this_frame, this_cache);
1199
1200 /* This marks the outermost frame. */
1201 if (cache->base == 0)
1202 return;
1203
1204 (*this_id) = frame_id_build (cache->base, cache->pc);
1205 }
1206
1207 static struct value *
1208 sparc32_frame_prev_register (struct frame_info *this_frame,
1209 void **this_cache, int regnum)
1210 {
1211 struct gdbarch *gdbarch = get_frame_arch (this_frame);
1212 struct sparc_frame_cache *cache =
1213 sparc32_frame_cache (this_frame, this_cache);
1214
1215 if (regnum == SPARC32_PC_REGNUM || regnum == SPARC32_NPC_REGNUM)
1216 {
1217 CORE_ADDR pc = (regnum == SPARC32_NPC_REGNUM) ? 4 : 0;
1218
1219 /* If this functions has a Structure, Union or Quad-Precision
1220 return value, we have to skip the UNIMP instruction that encodes
1221 the size of the structure. */
1222 if (cache->struct_return_p)
1223 pc += 4;
1224
1225 regnum =
1226 (cache->copied_regs_mask & 0x80) ? SPARC_I7_REGNUM : SPARC_O7_REGNUM;
1227 pc += get_frame_register_unsigned (this_frame, regnum) + 8;
1228 return frame_unwind_got_constant (this_frame, regnum, pc);
1229 }
1230
1231 /* Handle StackGhost. */
1232 {
1233 ULONGEST wcookie = sparc_fetch_wcookie (gdbarch);
1234
1235 if (wcookie != 0 && !cache->frameless_p && regnum == SPARC_I7_REGNUM)
1236 {
1237 CORE_ADDR addr = cache->base + (regnum - SPARC_L0_REGNUM) * 4;
1238 ULONGEST i7;
1239
1240 /* Read the value in from memory. */
1241 i7 = get_frame_memory_unsigned (this_frame, addr, 4);
1242 return frame_unwind_got_constant (this_frame, regnum, i7 ^ wcookie);
1243 }
1244 }
1245
1246 /* The previous frame's `local' and `in' registers may have been saved
1247 in the register save area. */
1248 if (regnum >= SPARC_L0_REGNUM && regnum <= SPARC_I7_REGNUM
1249 && (cache->saved_regs_mask & (1 << (regnum - SPARC_L0_REGNUM))))
1250 {
1251 CORE_ADDR addr = cache->base + (regnum - SPARC_L0_REGNUM) * 4;
1252
1253 return frame_unwind_got_memory (this_frame, regnum, addr);
1254 }
1255
1256 /* The previous frame's `out' registers may be accessible as the current
1257 frame's `in' registers. */
1258 if (regnum >= SPARC_O0_REGNUM && regnum <= SPARC_O7_REGNUM
1259 && (cache->copied_regs_mask & (1 << (regnum - SPARC_O0_REGNUM))))
1260 regnum += (SPARC_I0_REGNUM - SPARC_O0_REGNUM);
1261
1262 return frame_unwind_got_register (this_frame, regnum, regnum);
1263 }
1264
1265 static const struct frame_unwind sparc32_frame_unwind =
1266 {
1267 NORMAL_FRAME,
1268 default_frame_unwind_stop_reason,
1269 sparc32_frame_this_id,
1270 sparc32_frame_prev_register,
1271 NULL,
1272 default_frame_sniffer
1273 };
1274 \f
1275
1276 static CORE_ADDR
1277 sparc32_frame_base_address (struct frame_info *this_frame, void **this_cache)
1278 {
1279 struct sparc_frame_cache *cache =
1280 sparc32_frame_cache (this_frame, this_cache);
1281
1282 return cache->base;
1283 }
1284
1285 static const struct frame_base sparc32_frame_base =
1286 {
1287 &sparc32_frame_unwind,
1288 sparc32_frame_base_address,
1289 sparc32_frame_base_address,
1290 sparc32_frame_base_address
1291 };
1292
1293 static struct frame_id
1294 sparc_dummy_id (struct gdbarch *gdbarch, struct frame_info *this_frame)
1295 {
1296 CORE_ADDR sp;
1297
1298 sp = get_frame_register_unsigned (this_frame, SPARC_SP_REGNUM);
1299 if (sp & 1)
1300 sp += BIAS;
1301 return frame_id_build (sp, get_frame_pc (this_frame));
1302 }
1303 \f
1304
1305 /* Extract a function return value of TYPE from REGCACHE, and copy
1306 that into VALBUF. */
1307
1308 static void
1309 sparc32_extract_return_value (struct type *type, struct regcache *regcache,
1310 gdb_byte *valbuf)
1311 {
1312 int len = TYPE_LENGTH (type);
1313 gdb_byte buf[32];
1314
1315 gdb_assert (!sparc_structure_or_union_p (type));
1316 gdb_assert (!(sparc_floating_p (type) && len == 16));
1317
1318 if (sparc_floating_p (type) || sparc_complex_floating_p (type))
1319 {
1320 /* Floating return values. */
1321 regcache_cooked_read (regcache, SPARC_F0_REGNUM, buf);
1322 if (len > 4)
1323 regcache_cooked_read (regcache, SPARC_F1_REGNUM, buf + 4);
1324 if (len > 8)
1325 {
1326 regcache_cooked_read (regcache, SPARC_F2_REGNUM, buf + 8);
1327 regcache_cooked_read (regcache, SPARC_F3_REGNUM, buf + 12);
1328 }
1329 if (len > 16)
1330 {
1331 regcache_cooked_read (regcache, SPARC_F4_REGNUM, buf + 16);
1332 regcache_cooked_read (regcache, SPARC_F5_REGNUM, buf + 20);
1333 regcache_cooked_read (regcache, SPARC_F6_REGNUM, buf + 24);
1334 regcache_cooked_read (regcache, SPARC_F7_REGNUM, buf + 28);
1335 }
1336 memcpy (valbuf, buf, len);
1337 }
1338 else
1339 {
1340 /* Integral and pointer return values. */
1341 gdb_assert (sparc_integral_or_pointer_p (type));
1342
1343 regcache_cooked_read (regcache, SPARC_O0_REGNUM, buf);
1344 if (len > 4)
1345 {
1346 regcache_cooked_read (regcache, SPARC_O1_REGNUM, buf + 4);
1347 gdb_assert (len == 8);
1348 memcpy (valbuf, buf, 8);
1349 }
1350 else
1351 {
1352 /* Just stripping off any unused bytes should preserve the
1353 signed-ness just fine. */
1354 memcpy (valbuf, buf + 4 - len, len);
1355 }
1356 }
1357 }
1358
1359 /* Store the function return value of type TYPE from VALBUF into
1360 REGCACHE. */
1361
1362 static void
1363 sparc32_store_return_value (struct type *type, struct regcache *regcache,
1364 const gdb_byte *valbuf)
1365 {
1366 int len = TYPE_LENGTH (type);
1367 gdb_byte buf[8];
1368
1369 gdb_assert (!sparc_structure_or_union_p (type));
1370 gdb_assert (!(sparc_floating_p (type) && len == 16));
1371 gdb_assert (len <= 8);
1372
1373 if (sparc_floating_p (type) || sparc_complex_floating_p (type))
1374 {
1375 /* Floating return values. */
1376 memcpy (buf, valbuf, len);
1377 regcache_cooked_write (regcache, SPARC_F0_REGNUM, buf);
1378 if (len > 4)
1379 regcache_cooked_write (regcache, SPARC_F1_REGNUM, buf + 4);
1380 if (len > 8)
1381 {
1382 regcache_cooked_write (regcache, SPARC_F2_REGNUM, buf + 8);
1383 regcache_cooked_write (regcache, SPARC_F3_REGNUM, buf + 12);
1384 }
1385 if (len > 16)
1386 {
1387 regcache_cooked_write (regcache, SPARC_F4_REGNUM, buf + 16);
1388 regcache_cooked_write (regcache, SPARC_F5_REGNUM, buf + 20);
1389 regcache_cooked_write (regcache, SPARC_F6_REGNUM, buf + 24);
1390 regcache_cooked_write (regcache, SPARC_F7_REGNUM, buf + 28);
1391 }
1392 }
1393 else
1394 {
1395 /* Integral and pointer return values. */
1396 gdb_assert (sparc_integral_or_pointer_p (type));
1397
1398 if (len > 4)
1399 {
1400 gdb_assert (len == 8);
1401 memcpy (buf, valbuf, 8);
1402 regcache_cooked_write (regcache, SPARC_O1_REGNUM, buf + 4);
1403 }
1404 else
1405 {
1406 /* ??? Do we need to do any sign-extension here? */
1407 memcpy (buf + 4 - len, valbuf, len);
1408 }
1409 regcache_cooked_write (regcache, SPARC_O0_REGNUM, buf);
1410 }
1411 }
1412
1413 static enum return_value_convention
1414 sparc32_return_value (struct gdbarch *gdbarch, struct value *function,
1415 struct type *type, struct regcache *regcache,
1416 gdb_byte *readbuf, const gdb_byte *writebuf)
1417 {
1418 enum bfd_endian byte_order = gdbarch_byte_order (gdbarch);
1419
1420 /* The psABI says that "...every stack frame reserves the word at
1421 %fp+64. If a function returns a structure, union, or
1422 quad-precision value, this word should hold the address of the
1423 object into which the return value should be copied." This
1424 guarantees that we can always find the return value, not just
1425 before the function returns. */
1426
1427 if (sparc_structure_or_union_p (type)
1428 || (sparc_floating_p (type) && TYPE_LENGTH (type) == 16))
1429 {
1430 ULONGEST sp;
1431 CORE_ADDR addr;
1432
1433 if (readbuf)
1434 {
1435 regcache_cooked_read_unsigned (regcache, SPARC_SP_REGNUM, &sp);
1436 addr = read_memory_unsigned_integer (sp + 64, 4, byte_order);
1437 read_memory (addr, readbuf, TYPE_LENGTH (type));
1438 }
1439 if (writebuf)
1440 {
1441 regcache_cooked_read_unsigned (regcache, SPARC_SP_REGNUM, &sp);
1442 addr = read_memory_unsigned_integer (sp + 64, 4, byte_order);
1443 write_memory (addr, writebuf, TYPE_LENGTH (type));
1444 }
1445
1446 return RETURN_VALUE_ABI_PRESERVES_ADDRESS;
1447 }
1448
1449 if (readbuf)
1450 sparc32_extract_return_value (type, regcache, readbuf);
1451 if (writebuf)
1452 sparc32_store_return_value (type, regcache, writebuf);
1453
1454 return RETURN_VALUE_REGISTER_CONVENTION;
1455 }
1456
1457 static int
1458 sparc32_stabs_argument_has_addr (struct gdbarch *gdbarch, struct type *type)
1459 {
1460 return (sparc_structure_or_union_p (type)
1461 || (sparc_floating_p (type) && TYPE_LENGTH (type) == 16)
1462 || sparc_complex_floating_p (type));
1463 }
1464
1465 static int
1466 sparc32_dwarf2_struct_return_p (struct frame_info *this_frame)
1467 {
1468 CORE_ADDR pc = get_frame_address_in_block (this_frame);
1469 struct symbol *sym = find_pc_function (pc);
1470
1471 if (sym)
1472 return sparc32_struct_return_from_sym (sym);
1473 return 0;
1474 }
1475
1476 static void
1477 sparc32_dwarf2_frame_init_reg (struct gdbarch *gdbarch, int regnum,
1478 struct dwarf2_frame_state_reg *reg,
1479 struct frame_info *this_frame)
1480 {
1481 int off;
1482
1483 switch (regnum)
1484 {
1485 case SPARC_G0_REGNUM:
1486 /* Since %g0 is always zero, there is no point in saving it, and
1487 people will be inclined omit it from the CFI. Make sure we
1488 don't warn about that. */
1489 reg->how = DWARF2_FRAME_REG_SAME_VALUE;
1490 break;
1491 case SPARC_SP_REGNUM:
1492 reg->how = DWARF2_FRAME_REG_CFA;
1493 break;
1494 case SPARC32_PC_REGNUM:
1495 case SPARC32_NPC_REGNUM:
1496 reg->how = DWARF2_FRAME_REG_RA_OFFSET;
1497 off = 8;
1498 if (sparc32_dwarf2_struct_return_p (this_frame))
1499 off += 4;
1500 if (regnum == SPARC32_NPC_REGNUM)
1501 off += 4;
1502 reg->loc.offset = off;
1503 break;
1504 }
1505 }
1506
1507 \f
1508 /* The SPARC Architecture doesn't have hardware single-step support,
1509 and most operating systems don't implement it either, so we provide
1510 software single-step mechanism. */
1511
1512 static CORE_ADDR
1513 sparc_analyze_control_transfer (struct frame_info *frame,
1514 CORE_ADDR pc, CORE_ADDR *npc)
1515 {
1516 unsigned long insn = sparc_fetch_instruction (pc);
1517 int conditional_p = X_COND (insn) & 0x7;
1518 int branch_p = 0, fused_p = 0;
1519 long offset = 0; /* Must be signed for sign-extend. */
1520
1521 if (X_OP (insn) == 0 && X_OP2 (insn) == 3)
1522 {
1523 if ((insn & 0x10000000) == 0)
1524 {
1525 /* Branch on Integer Register with Prediction (BPr). */
1526 branch_p = 1;
1527 conditional_p = 1;
1528 }
1529 else
1530 {
1531 /* Compare and Branch */
1532 branch_p = 1;
1533 fused_p = 1;
1534 offset = 4 * X_DISP10 (insn);
1535 }
1536 }
1537 else if (X_OP (insn) == 0 && X_OP2 (insn) == 6)
1538 {
1539 /* Branch on Floating-Point Condition Codes (FBfcc). */
1540 branch_p = 1;
1541 offset = 4 * X_DISP22 (insn);
1542 }
1543 else if (X_OP (insn) == 0 && X_OP2 (insn) == 5)
1544 {
1545 /* Branch on Floating-Point Condition Codes with Prediction
1546 (FBPfcc). */
1547 branch_p = 1;
1548 offset = 4 * X_DISP19 (insn);
1549 }
1550 else if (X_OP (insn) == 0 && X_OP2 (insn) == 2)
1551 {
1552 /* Branch on Integer Condition Codes (Bicc). */
1553 branch_p = 1;
1554 offset = 4 * X_DISP22 (insn);
1555 }
1556 else if (X_OP (insn) == 0 && X_OP2 (insn) == 1)
1557 {
1558 /* Branch on Integer Condition Codes with Prediction (BPcc). */
1559 branch_p = 1;
1560 offset = 4 * X_DISP19 (insn);
1561 }
1562 else if (X_OP (insn) == 2 && X_OP3 (insn) == 0x3a)
1563 {
1564 /* Trap instruction (TRAP). */
1565 return gdbarch_tdep (get_frame_arch (frame))->step_trap (frame, insn);
1566 }
1567
1568 /* FIXME: Handle DONE and RETRY instructions. */
1569
1570 if (branch_p)
1571 {
1572 if (fused_p)
1573 {
1574 /* Fused compare-and-branch instructions are non-delayed,
1575 and do not have an annuling capability. So we need to
1576 always set a breakpoint on both the NPC and the branch
1577 target address. */
1578 gdb_assert (offset != 0);
1579 return pc + offset;
1580 }
1581 else if (conditional_p)
1582 {
1583 /* For conditional branches, return nPC + 4 iff the annul
1584 bit is 1. */
1585 return (X_A (insn) ? *npc + 4 : 0);
1586 }
1587 else
1588 {
1589 /* For unconditional branches, return the target if its
1590 specified condition is "always" and return nPC + 4 if the
1591 condition is "never". If the annul bit is 1, set *NPC to
1592 zero. */
1593 if (X_COND (insn) == 0x0)
1594 pc = *npc, offset = 4;
1595 if (X_A (insn))
1596 *npc = 0;
1597
1598 return pc + offset;
1599 }
1600 }
1601
1602 return 0;
1603 }
1604
1605 static CORE_ADDR
1606 sparc_step_trap (struct frame_info *frame, unsigned long insn)
1607 {
1608 return 0;
1609 }
1610
1611 int
1612 sparc_software_single_step (struct frame_info *frame)
1613 {
1614 struct gdbarch *arch = get_frame_arch (frame);
1615 struct gdbarch_tdep *tdep = gdbarch_tdep (arch);
1616 struct address_space *aspace = get_frame_address_space (frame);
1617 CORE_ADDR npc, nnpc;
1618
1619 CORE_ADDR pc, orig_npc;
1620
1621 pc = get_frame_register_unsigned (frame, tdep->pc_regnum);
1622 orig_npc = npc = get_frame_register_unsigned (frame, tdep->npc_regnum);
1623
1624 /* Analyze the instruction at PC. */
1625 nnpc = sparc_analyze_control_transfer (frame, pc, &npc);
1626 if (npc != 0)
1627 insert_single_step_breakpoint (arch, aspace, npc);
1628
1629 if (nnpc != 0)
1630 insert_single_step_breakpoint (arch, aspace, nnpc);
1631
1632 /* Assert that we have set at least one breakpoint, and that
1633 they're not set at the same spot - unless we're going
1634 from here straight to NULL, i.e. a call or jump to 0. */
1635 gdb_assert (npc != 0 || nnpc != 0 || orig_npc == 0);
1636 gdb_assert (nnpc != npc || orig_npc == 0);
1637
1638 return 1;
1639 }
1640
1641 static void
1642 sparc_write_pc (struct regcache *regcache, CORE_ADDR pc)
1643 {
1644 struct gdbarch_tdep *tdep = gdbarch_tdep (get_regcache_arch (regcache));
1645
1646 regcache_cooked_write_unsigned (regcache, tdep->pc_regnum, pc);
1647 regcache_cooked_write_unsigned (regcache, tdep->npc_regnum, pc + 4);
1648 }
1649 \f
1650
1651 /* Return the appropriate register set for the core section identified
1652 by SECT_NAME and SECT_SIZE. */
1653
1654 static const struct regset *
1655 sparc_regset_from_core_section (struct gdbarch *gdbarch,
1656 const char *sect_name, size_t sect_size)
1657 {
1658 struct gdbarch_tdep *tdep = gdbarch_tdep (gdbarch);
1659
1660 if (strcmp (sect_name, ".reg") == 0 && sect_size >= tdep->sizeof_gregset)
1661 return tdep->gregset;
1662
1663 if (strcmp (sect_name, ".reg2") == 0 && sect_size >= tdep->sizeof_fpregset)
1664 return tdep->fpregset;
1665
1666 return NULL;
1667 }
1668 \f
1669
1670 static struct gdbarch *
1671 sparc32_gdbarch_init (struct gdbarch_info info, struct gdbarch_list *arches)
1672 {
1673 struct gdbarch_tdep *tdep;
1674 struct gdbarch *gdbarch;
1675
1676 /* If there is already a candidate, use it. */
1677 arches = gdbarch_list_lookup_by_info (arches, &info);
1678 if (arches != NULL)
1679 return arches->gdbarch;
1680
1681 /* Allocate space for the new architecture. */
1682 tdep = XCNEW (struct gdbarch_tdep);
1683 gdbarch = gdbarch_alloc (&info, tdep);
1684
1685 tdep->pc_regnum = SPARC32_PC_REGNUM;
1686 tdep->npc_regnum = SPARC32_NPC_REGNUM;
1687 tdep->step_trap = sparc_step_trap;
1688
1689 set_gdbarch_long_double_bit (gdbarch, 128);
1690 set_gdbarch_long_double_format (gdbarch, floatformats_sparc_quad);
1691
1692 set_gdbarch_num_regs (gdbarch, SPARC32_NUM_REGS);
1693 set_gdbarch_register_name (gdbarch, sparc32_register_name);
1694 set_gdbarch_register_type (gdbarch, sparc32_register_type);
1695 set_gdbarch_num_pseudo_regs (gdbarch, SPARC32_NUM_PSEUDO_REGS);
1696 set_gdbarch_pseudo_register_read (gdbarch, sparc32_pseudo_register_read);
1697 set_gdbarch_pseudo_register_write (gdbarch, sparc32_pseudo_register_write);
1698
1699 /* Register numbers of various important registers. */
1700 set_gdbarch_sp_regnum (gdbarch, SPARC_SP_REGNUM); /* %sp */
1701 set_gdbarch_pc_regnum (gdbarch, SPARC32_PC_REGNUM); /* %pc */
1702 set_gdbarch_fp0_regnum (gdbarch, SPARC_F0_REGNUM); /* %f0 */
1703
1704 /* Call dummy code. */
1705 set_gdbarch_frame_align (gdbarch, sparc32_frame_align);
1706 set_gdbarch_call_dummy_location (gdbarch, ON_STACK);
1707 set_gdbarch_push_dummy_code (gdbarch, sparc32_push_dummy_code);
1708 set_gdbarch_push_dummy_call (gdbarch, sparc32_push_dummy_call);
1709
1710 set_gdbarch_return_value (gdbarch, sparc32_return_value);
1711 set_gdbarch_stabs_argument_has_addr
1712 (gdbarch, sparc32_stabs_argument_has_addr);
1713
1714 set_gdbarch_skip_prologue (gdbarch, sparc32_skip_prologue);
1715
1716 /* Stack grows downward. */
1717 set_gdbarch_inner_than (gdbarch, core_addr_lessthan);
1718
1719 set_gdbarch_breakpoint_from_pc (gdbarch, sparc_breakpoint_from_pc);
1720
1721 set_gdbarch_frame_args_skip (gdbarch, 8);
1722
1723 set_gdbarch_print_insn (gdbarch, print_insn_sparc);
1724
1725 set_gdbarch_software_single_step (gdbarch, sparc_software_single_step);
1726 set_gdbarch_write_pc (gdbarch, sparc_write_pc);
1727
1728 set_gdbarch_dummy_id (gdbarch, sparc_dummy_id);
1729
1730 set_gdbarch_unwind_pc (gdbarch, sparc_unwind_pc);
1731
1732 frame_base_set_default (gdbarch, &sparc32_frame_base);
1733
1734 /* Hook in the DWARF CFI frame unwinder. */
1735 dwarf2_frame_set_init_reg (gdbarch, sparc32_dwarf2_frame_init_reg);
1736 /* FIXME: kettenis/20050423: Don't enable the unwinder until the
1737 StackGhost issues have been resolved. */
1738
1739 /* Hook in ABI-specific overrides, if they have been registered. */
1740 gdbarch_init_osabi (info, gdbarch);
1741
1742 frame_unwind_append_unwinder (gdbarch, &sparc32_frame_unwind);
1743
1744 /* If we have register sets, enable the generic core file support. */
1745 if (tdep->gregset)
1746 set_gdbarch_regset_from_core_section (gdbarch,
1747 sparc_regset_from_core_section);
1748
1749 register_sparc_ravenscar_ops (gdbarch);
1750
1751 return gdbarch;
1752 }
1753 \f
1754 /* Helper functions for dealing with register windows. */
1755
1756 void
1757 sparc_supply_rwindow (struct regcache *regcache, CORE_ADDR sp, int regnum)
1758 {
1759 struct gdbarch *gdbarch = get_regcache_arch (regcache);
1760 enum bfd_endian byte_order = gdbarch_byte_order (gdbarch);
1761 int offset = 0;
1762 gdb_byte buf[8];
1763 int i;
1764
1765 if (sp & 1)
1766 {
1767 /* Registers are 64-bit. */
1768 sp += BIAS;
1769
1770 for (i = SPARC_L0_REGNUM; i <= SPARC_I7_REGNUM; i++)
1771 {
1772 if (regnum == i || regnum == -1)
1773 {
1774 target_read_memory (sp + ((i - SPARC_L0_REGNUM) * 8), buf, 8);
1775
1776 /* Handle StackGhost. */
1777 if (i == SPARC_I7_REGNUM)
1778 {
1779 ULONGEST wcookie = sparc_fetch_wcookie (gdbarch);
1780 ULONGEST i7;
1781
1782 i7 = extract_unsigned_integer (buf + offset, 8, byte_order);
1783 store_unsigned_integer (buf + offset, 8, byte_order,
1784 i7 ^ wcookie);
1785 }
1786
1787 regcache_raw_supply (regcache, i, buf);
1788 }
1789 }
1790 }
1791 else
1792 {
1793 /* Registers are 32-bit. Toss any sign-extension of the stack
1794 pointer. */
1795 sp &= 0xffffffffUL;
1796
1797 /* Clear out the top half of the temporary buffer, and put the
1798 register value in the bottom half if we're in 64-bit mode. */
1799 if (gdbarch_ptr_bit (get_regcache_arch (regcache)) == 64)
1800 {
1801 memset (buf, 0, 4);
1802 offset = 4;
1803 }
1804
1805 for (i = SPARC_L0_REGNUM; i <= SPARC_I7_REGNUM; i++)
1806 {
1807 if (regnum == i || regnum == -1)
1808 {
1809 target_read_memory (sp + ((i - SPARC_L0_REGNUM) * 4),
1810 buf + offset, 4);
1811
1812 /* Handle StackGhost. */
1813 if (i == SPARC_I7_REGNUM)
1814 {
1815 ULONGEST wcookie = sparc_fetch_wcookie (gdbarch);
1816 ULONGEST i7;
1817
1818 i7 = extract_unsigned_integer (buf + offset, 4, byte_order);
1819 store_unsigned_integer (buf + offset, 4, byte_order,
1820 i7 ^ wcookie);
1821 }
1822
1823 regcache_raw_supply (regcache, i, buf);
1824 }
1825 }
1826 }
1827 }
1828
1829 void
1830 sparc_collect_rwindow (const struct regcache *regcache,
1831 CORE_ADDR sp, int regnum)
1832 {
1833 struct gdbarch *gdbarch = get_regcache_arch (regcache);
1834 enum bfd_endian byte_order = gdbarch_byte_order (gdbarch);
1835 int offset = 0;
1836 gdb_byte buf[8];
1837 int i;
1838
1839 if (sp & 1)
1840 {
1841 /* Registers are 64-bit. */
1842 sp += BIAS;
1843
1844 for (i = SPARC_L0_REGNUM; i <= SPARC_I7_REGNUM; i++)
1845 {
1846 if (regnum == -1 || regnum == SPARC_SP_REGNUM || regnum == i)
1847 {
1848 regcache_raw_collect (regcache, i, buf);
1849
1850 /* Handle StackGhost. */
1851 if (i == SPARC_I7_REGNUM)
1852 {
1853 ULONGEST wcookie = sparc_fetch_wcookie (gdbarch);
1854 ULONGEST i7;
1855
1856 i7 = extract_unsigned_integer (buf + offset, 8, byte_order);
1857 store_unsigned_integer (buf, 8, byte_order, i7 ^ wcookie);
1858 }
1859
1860 target_write_memory (sp + ((i - SPARC_L0_REGNUM) * 8), buf, 8);
1861 }
1862 }
1863 }
1864 else
1865 {
1866 /* Registers are 32-bit. Toss any sign-extension of the stack
1867 pointer. */
1868 sp &= 0xffffffffUL;
1869
1870 /* Only use the bottom half if we're in 64-bit mode. */
1871 if (gdbarch_ptr_bit (get_regcache_arch (regcache)) == 64)
1872 offset = 4;
1873
1874 for (i = SPARC_L0_REGNUM; i <= SPARC_I7_REGNUM; i++)
1875 {
1876 if (regnum == -1 || regnum == SPARC_SP_REGNUM || regnum == i)
1877 {
1878 regcache_raw_collect (regcache, i, buf);
1879
1880 /* Handle StackGhost. */
1881 if (i == SPARC_I7_REGNUM)
1882 {
1883 ULONGEST wcookie = sparc_fetch_wcookie (gdbarch);
1884 ULONGEST i7;
1885
1886 i7 = extract_unsigned_integer (buf + offset, 4, byte_order);
1887 store_unsigned_integer (buf + offset, 4, byte_order,
1888 i7 ^ wcookie);
1889 }
1890
1891 target_write_memory (sp + ((i - SPARC_L0_REGNUM) * 4),
1892 buf + offset, 4);
1893 }
1894 }
1895 }
1896 }
1897
1898 /* Helper functions for dealing with register sets. */
1899
1900 void
1901 sparc32_supply_gregset (const struct sparc_gregset *gregset,
1902 struct regcache *regcache,
1903 int regnum, const void *gregs)
1904 {
1905 const gdb_byte *regs = gregs;
1906 gdb_byte zero[4] = { 0 };
1907 int i;
1908
1909 if (regnum == SPARC32_PSR_REGNUM || regnum == -1)
1910 regcache_raw_supply (regcache, SPARC32_PSR_REGNUM,
1911 regs + gregset->r_psr_offset);
1912
1913 if (regnum == SPARC32_PC_REGNUM || regnum == -1)
1914 regcache_raw_supply (regcache, SPARC32_PC_REGNUM,
1915 regs + gregset->r_pc_offset);
1916
1917 if (regnum == SPARC32_NPC_REGNUM || regnum == -1)
1918 regcache_raw_supply (regcache, SPARC32_NPC_REGNUM,
1919 regs + gregset->r_npc_offset);
1920
1921 if (regnum == SPARC32_Y_REGNUM || regnum == -1)
1922 regcache_raw_supply (regcache, SPARC32_Y_REGNUM,
1923 regs + gregset->r_y_offset);
1924
1925 if (regnum == SPARC_G0_REGNUM || regnum == -1)
1926 regcache_raw_supply (regcache, SPARC_G0_REGNUM, &zero);
1927
1928 if ((regnum >= SPARC_G1_REGNUM && regnum <= SPARC_O7_REGNUM) || regnum == -1)
1929 {
1930 int offset = gregset->r_g1_offset;
1931
1932 for (i = SPARC_G1_REGNUM; i <= SPARC_O7_REGNUM; i++)
1933 {
1934 if (regnum == i || regnum == -1)
1935 regcache_raw_supply (regcache, i, regs + offset);
1936 offset += 4;
1937 }
1938 }
1939
1940 if ((regnum >= SPARC_L0_REGNUM && regnum <= SPARC_I7_REGNUM) || regnum == -1)
1941 {
1942 /* Not all of the register set variants include Locals and
1943 Inputs. For those that don't, we read them off the stack. */
1944 if (gregset->r_l0_offset == -1)
1945 {
1946 ULONGEST sp;
1947
1948 regcache_cooked_read_unsigned (regcache, SPARC_SP_REGNUM, &sp);
1949 sparc_supply_rwindow (regcache, sp, regnum);
1950 }
1951 else
1952 {
1953 int offset = gregset->r_l0_offset;
1954
1955 for (i = SPARC_L0_REGNUM; i <= SPARC_I7_REGNUM; i++)
1956 {
1957 if (regnum == i || regnum == -1)
1958 regcache_raw_supply (regcache, i, regs + offset);
1959 offset += 4;
1960 }
1961 }
1962 }
1963 }
1964
1965 void
1966 sparc32_collect_gregset (const struct sparc_gregset *gregset,
1967 const struct regcache *regcache,
1968 int regnum, void *gregs)
1969 {
1970 gdb_byte *regs = gregs;
1971 int i;
1972
1973 if (regnum == SPARC32_PSR_REGNUM || regnum == -1)
1974 regcache_raw_collect (regcache, SPARC32_PSR_REGNUM,
1975 regs + gregset->r_psr_offset);
1976
1977 if (regnum == SPARC32_PC_REGNUM || regnum == -1)
1978 regcache_raw_collect (regcache, SPARC32_PC_REGNUM,
1979 regs + gregset->r_pc_offset);
1980
1981 if (regnum == SPARC32_NPC_REGNUM || regnum == -1)
1982 regcache_raw_collect (regcache, SPARC32_NPC_REGNUM,
1983 regs + gregset->r_npc_offset);
1984
1985 if (regnum == SPARC32_Y_REGNUM || regnum == -1)
1986 regcache_raw_collect (regcache, SPARC32_Y_REGNUM,
1987 regs + gregset->r_y_offset);
1988
1989 if ((regnum >= SPARC_G1_REGNUM && regnum <= SPARC_O7_REGNUM) || regnum == -1)
1990 {
1991 int offset = gregset->r_g1_offset;
1992
1993 /* %g0 is always zero. */
1994 for (i = SPARC_G1_REGNUM; i <= SPARC_O7_REGNUM; i++)
1995 {
1996 if (regnum == i || regnum == -1)
1997 regcache_raw_collect (regcache, i, regs + offset);
1998 offset += 4;
1999 }
2000 }
2001
2002 if ((regnum >= SPARC_L0_REGNUM && regnum <= SPARC_I7_REGNUM) || regnum == -1)
2003 {
2004 /* Not all of the register set variants include Locals and
2005 Inputs. For those that don't, we read them off the stack. */
2006 if (gregset->r_l0_offset != -1)
2007 {
2008 int offset = gregset->r_l0_offset;
2009
2010 for (i = SPARC_L0_REGNUM; i <= SPARC_I7_REGNUM; i++)
2011 {
2012 if (regnum == i || regnum == -1)
2013 regcache_raw_collect (regcache, i, regs + offset);
2014 offset += 4;
2015 }
2016 }
2017 }
2018 }
2019
2020 void
2021 sparc32_supply_fpregset (const struct sparc_fpregset *fpregset,
2022 struct regcache *regcache,
2023 int regnum, const void *fpregs)
2024 {
2025 const gdb_byte *regs = fpregs;
2026 int i;
2027
2028 for (i = 0; i < 32; i++)
2029 {
2030 if (regnum == (SPARC_F0_REGNUM + i) || regnum == -1)
2031 regcache_raw_supply (regcache, SPARC_F0_REGNUM + i,
2032 regs + fpregset->r_f0_offset + (i * 4));
2033 }
2034
2035 if (regnum == SPARC32_FSR_REGNUM || regnum == -1)
2036 regcache_raw_supply (regcache, SPARC32_FSR_REGNUM,
2037 regs + fpregset->r_fsr_offset);
2038 }
2039
2040 void
2041 sparc32_collect_fpregset (const struct sparc_fpregset *fpregset,
2042 const struct regcache *regcache,
2043 int regnum, void *fpregs)
2044 {
2045 gdb_byte *regs = fpregs;
2046 int i;
2047
2048 for (i = 0; i < 32; i++)
2049 {
2050 if (regnum == (SPARC_F0_REGNUM + i) || regnum == -1)
2051 regcache_raw_collect (regcache, SPARC_F0_REGNUM + i,
2052 regs + fpregset->r_f0_offset + (i * 4));
2053 }
2054
2055 if (regnum == SPARC32_FSR_REGNUM || regnum == -1)
2056 regcache_raw_collect (regcache, SPARC32_FSR_REGNUM,
2057 regs + fpregset->r_fsr_offset);
2058 }
2059 \f
2060
2061 /* SunOS 4. */
2062
2063 /* From <machine/reg.h>. */
2064 const struct sparc_gregset sparc32_sunos4_gregset =
2065 {
2066 0 * 4, /* %psr */
2067 1 * 4, /* %pc */
2068 2 * 4, /* %npc */
2069 3 * 4, /* %y */
2070 -1, /* %wim */
2071 -1, /* %tbr */
2072 4 * 4, /* %g1 */
2073 -1 /* %l0 */
2074 };
2075
2076 const struct sparc_fpregset sparc32_sunos4_fpregset =
2077 {
2078 0 * 4, /* %f0 */
2079 33 * 4, /* %fsr */
2080 };
2081
2082 const struct sparc_fpregset sparc32_bsd_fpregset =
2083 {
2084 0 * 4, /* %f0 */
2085 32 * 4, /* %fsr */
2086 };
2087 \f
2088
2089 /* Provide a prototype to silence -Wmissing-prototypes. */
2090 void _initialize_sparc_tdep (void);
2091
2092 void
2093 _initialize_sparc_tdep (void)
2094 {
2095 register_gdbarch_init (bfd_arch_sparc, sparc32_gdbarch_init);
2096 }
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