GDB (xrefs)
/tmp/gdb-8.1/gdb/frv-tdep.c
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1 /* Target-dependent code for the Fujitsu FR-V, for GDB, the GNU Debugger.
2 
3  Copyright (C) 2002-2018 Free Software Foundation, Inc.
4 
5  This file is part of GDB.
6 
7  This program is free software; you can redistribute it and/or modify
8  it under the terms of the GNU General Public License as published by
9  the Free Software Foundation; either version 3 of the License, or
10  (at your option) any later version.
11 
12  This program is distributed in the hope that it will be useful,
13  but WITHOUT ANY WARRANTY; without even the implied warranty of
14  MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
15  GNU General Public License for more details.
16 
17  You should have received a copy of the GNU General Public License
18  along with this program. If not, see <http://www.gnu.org/licenses/>. */
19 
20 #include "defs.h"
21 #include "inferior.h"
22 #include "gdbcore.h"
23 #include "arch-utils.h"
24 #include "regcache.h"
25 #include "frame.h"
26 #include "frame-unwind.h"
27 #include "frame-base.h"
28 #include "trad-frame.h"
29 #include "dis-asm.h"
30 #include "sim-regno.h"
31 #include "gdb/sim-frv.h"
32 #include "opcodes/frv-desc.h" /* for the H_SPR_... enums */
33 #include "symtab.h"
34 #include "elf-bfd.h"
35 #include "elf/frv.h"
36 #include "osabi.h"
37 #include "infcall.h"
38 #include "solib.h"
39 #include "frv-tdep.h"
40 #include "objfiles.h"
41 
42 struct frv_unwind_cache /* was struct frame_extra_info */
43  {
44  /* The previous frame's inner-most stack address. Used as this
45  frame ID's stack_addr. */
47 
48  /* The frame's base, optionally used by the high-level debug info. */
50 
51  /* Table indicating the location of each and every register. */
53  };
54 
55 /* A structure describing a particular variant of the FRV.
56  We allocate and initialize one of these structures when we create
57  the gdbarch object for a variant.
58 
59  At the moment, all the FR variants we support differ only in which
60  registers are present; the portable code of GDB knows that
61  registers whose names are the empty string don't exist, so the
62  `register_names' array captures all the per-variant information we
63  need.
64 
65  in the future, if we need to have per-variant maps for raw size,
66  virtual type, etc., we should replace register_names with an array
67  of structures, each of which gives all the necessary info for one
68  register. Don't stick parallel arrays in here --- that's so
69  Fortran. */
70 struct gdbarch_tdep
71 {
72  /* Which ABI is in use? */
74 
75  /* How many general-purpose registers does this variant have? */
76  int num_gprs;
77 
78  /* How many floating-point registers does this variant have? */
79  int num_fprs;
80 
81  /* How many hardware watchpoints can it support? */
83 
84  /* How many hardware breakpoints can it support? */
86 
87  /* Register names. */
88  const char **register_names;
89 };
90 
91 /* Return the FR-V ABI associated with GDBARCH. */
92 enum frv_abi
94 {
95  return gdbarch_tdep (gdbarch)->frv_abi;
96 }
97 
98 /* Fetch the interpreter and executable loadmap addresses (for shared
99  library support) for the FDPIC ABI. Return 0 if successful, -1 if
100  not. (E.g, -1 will be returned if the ABI isn't the FDPIC ABI.) */
101 int
103  CORE_ADDR *exec_addr)
104 {
105  if (frv_abi (gdbarch) != FRV_ABI_FDPIC)
106  return -1;
107  else
108  {
110 
111  if (interp_addr != NULL)
112  {
113  ULONGEST val;
116  *interp_addr = val;
117  }
118  if (exec_addr != NULL)
119  {
120  ULONGEST val;
123  *exec_addr = val;
124  }
125  return 0;
126  }
127 }
128 
129 /* Allocate a new variant structure, and set up default values for all
130  the fields. */
131 static struct gdbarch_tdep *
133 {
134  struct gdbarch_tdep *var;
135  int r;
136 
137  var = XCNEW (struct gdbarch_tdep);
138 
139  var->frv_abi = FRV_ABI_EABI;
140  var->num_gprs = 64;
141  var->num_fprs = 64;
142  var->num_hw_watchpoints = 0;
143  var->num_hw_breakpoints = 0;
144 
145  /* By default, don't supply any general-purpose or floating-point
146  register names. */
147  var->register_names
148  = (const char **) xmalloc ((frv_num_regs + frv_num_pseudo_regs)
149  * sizeof (const char *));
150  for (r = 0; r < frv_num_regs + frv_num_pseudo_regs; r++)
151  var->register_names[r] = "";
152 
153  /* Do, however, supply default names for the known special-purpose
154  registers. */
155 
156  var->register_names[pc_regnum] = "pc";
157  var->register_names[lr_regnum] = "lr";
158  var->register_names[lcr_regnum] = "lcr";
159 
160  var->register_names[psr_regnum] = "psr";
161  var->register_names[ccr_regnum] = "ccr";
162  var->register_names[cccr_regnum] = "cccr";
163  var->register_names[tbr_regnum] = "tbr";
164 
165  /* Debug registers. */
166  var->register_names[brr_regnum] = "brr";
167  var->register_names[dbar0_regnum] = "dbar0";
168  var->register_names[dbar1_regnum] = "dbar1";
169  var->register_names[dbar2_regnum] = "dbar2";
170  var->register_names[dbar3_regnum] = "dbar3";
171 
172  /* iacc0 (Only found on MB93405.) */
173  var->register_names[iacc0h_regnum] = "iacc0h";
174  var->register_names[iacc0l_regnum] = "iacc0l";
175  var->register_names[iacc0_regnum] = "iacc0";
176 
177  /* fsr0 (Found on FR555 and FR501.) */
178  var->register_names[fsr0_regnum] = "fsr0";
179 
180  /* acc0 - acc7. The architecture provides for the possibility of many
181  more (up to 64 total), but we don't want to make that big of a hole
182  in the G packet. If we need more in the future, we'll add them
183  elsewhere. */
184  for (r = acc0_regnum; r <= acc7_regnum; r++)
185  {
186  char *buf;
187  buf = xstrprintf ("acc%d", r - acc0_regnum);
188  var->register_names[r] = buf;
189  }
190 
191  /* accg0 - accg7: These are one byte registers. The remote protocol
192  provides the raw values packed four into a slot. accg0123 and
193  accg4567 correspond to accg0 - accg3 and accg4-accg7 respectively.
194  We don't provide names for accg0123 and accg4567 since the user will
195  likely not want to see these raw values. */
196 
197  for (r = accg0_regnum; r <= accg7_regnum; r++)
198  {
199  char *buf;
200  buf = xstrprintf ("accg%d", r - accg0_regnum);
201  var->register_names[r] = buf;
202  }
203 
204  /* msr0 and msr1. */
205 
206  var->register_names[msr0_regnum] = "msr0";
207  var->register_names[msr1_regnum] = "msr1";
208 
209  /* gner and fner registers. */
210  var->register_names[gner0_regnum] = "gner0";
211  var->register_names[gner1_regnum] = "gner1";
212  var->register_names[fner0_regnum] = "fner0";
213  var->register_names[fner1_regnum] = "fner1";
214 
215  return var;
216 }
217 
218 
219 /* Indicate that the variant VAR has NUM_GPRS general-purpose
220  registers, and fill in the names array appropriately. */
221 static void
223 {
224  int r;
225 
226  var->num_gprs = num_gprs;
227 
228  for (r = 0; r < num_gprs; ++r)
229  {
230  char buf[20];
231 
232  xsnprintf (buf, sizeof (buf), "gr%d", r);
233  var->register_names[first_gpr_regnum + r] = xstrdup (buf);
234  }
235 }
236 
237 
238 /* Indicate that the variant VAR has NUM_FPRS floating-point
239  registers, and fill in the names array appropriately. */
240 static void
242 {
243  int r;
244 
245  var->num_fprs = num_fprs;
246 
247  for (r = 0; r < num_fprs; ++r)
248  {
249  char buf[20];
250 
251  xsnprintf (buf, sizeof (buf), "fr%d", r);
252  var->register_names[first_fpr_regnum + r] = xstrdup (buf);
253  }
254 }
255 
256 static void
258 {
259  var->frv_abi = FRV_ABI_FDPIC;
260  var->register_names[fdpic_loadmap_exec_regnum] = xstrdup ("loadmap_exec");
262  = xstrdup ("loadmap_interp");
263 }
264 
265 static void
267 {
268  var->register_names[scr0_regnum] = xstrdup ("scr0");
269  var->register_names[scr1_regnum] = xstrdup ("scr1");
270  var->register_names[scr2_regnum] = xstrdup ("scr2");
271  var->register_names[scr3_regnum] = xstrdup ("scr3");
272 }
273 
274 static const char *
276 {
277  if (reg < 0)
278  return "?toosmall?";
280  return "?toolarge?";
281 
283 }
284 
285 
286 static struct type *
288 {
291  else if (reg == iacc0_regnum)
293  else
295 }
296 
297 static enum register_status
299  int reg, gdb_byte *buffer)
300 {
301  enum register_status status;
302 
303  if (reg == iacc0_regnum)
304  {
306  if (status == REG_VALID)
307  status = regcache_raw_read (regcache, iacc0l_regnum, (bfd_byte *) buffer + 4);
308  }
309  else if (accg0_regnum <= reg && reg <= accg7_regnum)
310  {
311  /* The accg raw registers have four values in each slot with the
312  lowest register number occupying the first byte. */
313 
314  int raw_regnum = accg0123_regnum + (reg - accg0_regnum) / 4;
315  int byte_num = (reg - accg0_regnum) % 4;
316  gdb_byte buf[4];
317 
318  status = regcache_raw_read (regcache, raw_regnum, buf);
319  if (status == REG_VALID)
320  {
321  memset (buffer, 0, 4);
322  /* FR-V is big endian, so put the requested byte in the
323  first byte of the buffer allocated to hold the
324  pseudo-register. */
325  buffer[0] = buf[byte_num];
326  }
327  }
328  else
329  gdb_assert_not_reached ("invalid pseudo register number");
330 
331  return status;
332 }
333 
334 static void
336  int reg, const gdb_byte *buffer)
337 {
338  if (reg == iacc0_regnum)
339  {
341  regcache_raw_write (regcache, iacc0l_regnum, (bfd_byte *) buffer + 4);
342  }
343  else if (accg0_regnum <= reg && reg <= accg7_regnum)
344  {
345  /* The accg raw registers have four values in each slot with the
346  lowest register number occupying the first byte. */
347 
348  int raw_regnum = accg0123_regnum + (reg - accg0_regnum) / 4;
349  int byte_num = (reg - accg0_regnum) % 4;
350  gdb_byte buf[4];
351 
352  regcache_raw_read (regcache, raw_regnum, buf);
353  buf[byte_num] = ((bfd_byte *) buffer)[0];
354  regcache_raw_write (regcache, raw_regnum, buf);
355  }
356 }
357 
358 static int
360 {
361  static const int spr_map[] =
362  {
363  H_SPR_PSR, /* psr_regnum */
364  H_SPR_CCR, /* ccr_regnum */
365  H_SPR_CCCR, /* cccr_regnum */
366  -1, /* fdpic_loadmap_exec_regnum */
367  -1, /* fdpic_loadmap_interp_regnum */
368  -1, /* 134 */
369  H_SPR_TBR, /* tbr_regnum */
370  H_SPR_BRR, /* brr_regnum */
371  H_SPR_DBAR0, /* dbar0_regnum */
372  H_SPR_DBAR1, /* dbar1_regnum */
373  H_SPR_DBAR2, /* dbar2_regnum */
374  H_SPR_DBAR3, /* dbar3_regnum */
375  H_SPR_SCR0, /* scr0_regnum */
376  H_SPR_SCR1, /* scr1_regnum */
377  H_SPR_SCR2, /* scr2_regnum */
378  H_SPR_SCR3, /* scr3_regnum */
379  H_SPR_LR, /* lr_regnum */
380  H_SPR_LCR, /* lcr_regnum */
381  H_SPR_IACC0H, /* iacc0h_regnum */
382  H_SPR_IACC0L, /* iacc0l_regnum */
383  H_SPR_FSR0, /* fsr0_regnum */
384  /* FIXME: Add infrastructure for fetching/setting ACC and ACCG regs. */
385  -1, /* acc0_regnum */
386  -1, /* acc1_regnum */
387  -1, /* acc2_regnum */
388  -1, /* acc3_regnum */
389  -1, /* acc4_regnum */
390  -1, /* acc5_regnum */
391  -1, /* acc6_regnum */
392  -1, /* acc7_regnum */
393  -1, /* acc0123_regnum */
394  -1, /* acc4567_regnum */
395  H_SPR_MSR0, /* msr0_regnum */
396  H_SPR_MSR1, /* msr1_regnum */
397  H_SPR_GNER0, /* gner0_regnum */
398  H_SPR_GNER1, /* gner1_regnum */
399  H_SPR_FNER0, /* fner0_regnum */
400  H_SPR_FNER1, /* fner1_regnum */
401  };
402 
403  gdb_assert (reg >= 0 && reg < gdbarch_num_regs (gdbarch));
404 
406  return reg - first_gpr_regnum + SIM_FRV_GR0_REGNUM;
407  else if (first_fpr_regnum <= reg && reg <= last_fpr_regnum)
408  return reg - first_fpr_regnum + SIM_FRV_FR0_REGNUM;
409  else if (pc_regnum == reg)
410  return SIM_FRV_PC_REGNUM;
411  else if (reg >= first_spr_regnum
412  && reg < first_spr_regnum + sizeof (spr_map) / sizeof (spr_map[0]))
413  {
414  int spr_reg_offset = spr_map[reg - first_spr_regnum];
415 
416  if (spr_reg_offset < 0)
418  else
419  return SIM_FRV_SPR0_REGNUM + spr_reg_offset;
420  }
421 
422  internal_error (__FILE__, __LINE__, _("Bad register number %d"), reg);
423 }
424 
425 constexpr gdb_byte frv_break_insn[] = {0xc0, 0x70, 0x00, 0x01};
426 
427 typedef BP_MANIPULATION (frv_break_insn) frv_breakpoint;
428 
429 /* Define the maximum number of instructions which may be packed into a
430  bundle (VLIW instruction). */
431 static const int max_instrs_per_bundle = 8;
432 
433 /* Define the size (in bytes) of an FR-V instruction. */
434 static const int frv_instr_size = 4;
435 
436 /* Adjust a breakpoint's address to account for the FR-V architecture's
437  constraint that a break instruction must not appear as any but the
438  first instruction in the bundle. */
439 static CORE_ADDR
440 frv_adjust_breakpoint_address (struct gdbarch *gdbarch, CORE_ADDR bpaddr)
441 {
442  int count = max_instrs_per_bundle;
443  CORE_ADDR addr = bpaddr - frv_instr_size;
444  CORE_ADDR func_start = get_pc_function_start (bpaddr);
445 
446  /* Find the end of the previous packing sequence. This will be indicated
447  by either attempting to access some inaccessible memory or by finding
448  an instruction word whose packing bit is set to one. */
449  while (count-- > 0 && addr >= func_start)
450  {
451  gdb_byte instr[frv_instr_size];
452  int status;
453 
454  status = target_read_memory (addr, instr, sizeof instr);
455 
456  if (status != 0)
457  break;
458 
459  /* This is a big endian architecture, so byte zero will have most
460  significant byte. The most significant bit of this byte is the
461  packing bit. */
462  if (instr[0] & 0x80)
463  break;
464 
465  addr -= frv_instr_size;
466  }
467 
468  if (count > 0)
469  bpaddr = addr + frv_instr_size;
470 
471  return bpaddr;
472 }
473 
474 
475 /* Return true if REG is a caller-saves ("scratch") register,
476  false otherwise. */
477 static int
479 {
480  return ((4 <= reg && reg <= 7)
481  || (14 <= reg && reg <= 15)
482  || (32 <= reg && reg <= 47));
483 }
484 
485 
486 /* Return true if REG is a callee-saves register, false otherwise. */
487 static int
489 {
490  return ((16 <= reg && reg <= 31)
491  || (48 <= reg && reg <= 63));
492 }
493 
494 
495 /* Return true if REG is an argument register, false otherwise. */
496 static int
498 {
499  return (8 <= reg && reg <= 13);
500 }
501 
502 /* Scan an FR-V prologue, starting at PC, until frame->PC.
503  If FRAME is non-zero, fill in its saved_regs with appropriate addresses.
504  We assume FRAME's saved_regs array has already been allocated and cleared.
505  Return the first PC value after the prologue.
506 
507  Note that, for unoptimized code, we almost don't need this function
508  at all; all arguments and locals live on the stack, so we just need
509  the FP to find everything. The catch: structures passed by value
510  have their addresses living in registers; they're never spilled to
511  the stack. So if you ever want to be able to get to these
512  arguments in any frame but the top, you'll need to do this serious
513  prologue analysis. */
514 static CORE_ADDR
516  struct frame_info *this_frame,
517  struct frv_unwind_cache *info)
518 {
519  enum bfd_endian byte_order = gdbarch_byte_order (gdbarch);
520 
521  /* When writing out instruction bitpatterns, we use the following
522  letters to label instruction fields:
523  P - The parallel bit. We don't use this.
524  J - The register number of GRj in the instruction description.
525  K - The register number of GRk in the instruction description.
526  I - The register number of GRi.
527  S - a signed imediate offset.
528  U - an unsigned immediate offset.
529 
530  The dots below the numbers indicate where hex digit boundaries
531  fall, to make it easier to check the numbers. */
532 
533  /* Non-zero iff we've seen the instruction that initializes the
534  frame pointer for this function's frame. */
535  int fp_set = 0;
536 
537  /* If fp_set is non_zero, then this is the distance from
538  the stack pointer to frame pointer: fp = sp + fp_offset. */
539  int fp_offset = 0;
540 
541  /* Total size of frame prior to any alloca operations. */
542  int framesize = 0;
543 
544  /* Flag indicating if lr has been saved on the stack. */
545  int lr_saved_on_stack = 0;
546 
547  /* The number of the general-purpose register we saved the return
548  address ("link register") in, or -1 if we haven't moved it yet. */
549  int lr_save_reg = -1;
550 
551  /* Offset (from sp) at which lr has been saved on the stack. */
552 
553  int lr_sp_offset = 0;
554 
555  /* If gr_saved[i] is non-zero, then we've noticed that general
556  register i has been saved at gr_sp_offset[i] from the stack
557  pointer. */
558  char gr_saved[64];
559  int gr_sp_offset[64];
560 
561  /* The address of the most recently scanned prologue instruction. */
562  CORE_ADDR last_prologue_pc;
563 
564  /* The address of the next instruction. */
565  CORE_ADDR next_pc;
566 
567  /* The upper bound to of the pc values to scan. */
568  CORE_ADDR lim_pc;
569 
570  memset (gr_saved, 0, sizeof (gr_saved));
571 
572  last_prologue_pc = pc;
573 
574  /* Try to compute an upper limit (on how far to scan) based on the
575  line number info. */
576  lim_pc = skip_prologue_using_sal (gdbarch, pc);
577  /* If there's no line number info, lim_pc will be 0. In that case,
578  set the limit to be 100 instructions away from pc. Hopefully, this
579  will be far enough away to account for the entire prologue. Don't
580  worry about overshooting the end of the function. The scan loop
581  below contains some checks to avoid scanning unreasonably far. */
582  if (lim_pc == 0)
583  lim_pc = pc + 400;
584 
585  /* If we have a frame, we don't want to scan past the frame's pc. This
586  will catch those cases where the pc is in the prologue. */
587  if (this_frame)
588  {
589  CORE_ADDR frame_pc = get_frame_pc (this_frame);
590  if (frame_pc < lim_pc)
591  lim_pc = frame_pc;
592  }
593 
594  /* Scan the prologue. */
595  while (pc < lim_pc)
596  {
598  LONGEST op;
599 
600  if (target_read_memory (pc, buf, sizeof buf) != 0)
601  break;
602  op = extract_signed_integer (buf, sizeof buf, byte_order);
603 
604  next_pc = pc + 4;
605 
606  /* The tests in this chain of ifs should be in order of
607  decreasing selectivity, so that more particular patterns get
608  to fire before less particular patterns. */
609 
610  /* Some sort of control transfer instruction: stop scanning prologue.
611  Integer Conditional Branch:
612  X XXXX XX 0000110 XX XXXXXXXXXXXXXXXX
613  Floating-point / media Conditional Branch:
614  X XXXX XX 0000111 XX XXXXXXXXXXXXXXXX
615  LCR Conditional Branch to LR
616  X XXXX XX 0001110 XX XX 001 X XXXXXXXXXX
617  Integer conditional Branches to LR
618  X XXXX XX 0001110 XX XX 010 X XXXXXXXXXX
619  X XXXX XX 0001110 XX XX 011 X XXXXXXXXXX
620  Floating-point/Media Branches to LR
621  X XXXX XX 0001110 XX XX 110 X XXXXXXXXXX
622  X XXXX XX 0001110 XX XX 111 X XXXXXXXXXX
623  Jump and Link
624  X XXXXX X 0001100 XXXXXX XXXXXX XXXXXX
625  X XXXXX X 0001101 XXXXXX XXXXXX XXXXXX
626  Call
627  X XXXXXX 0001111 XXXXXXXXXXXXXXXXXX
628  Return from Trap
629  X XXXXX X 0000101 XXXXXX XXXXXX XXXXXX
630  Integer Conditional Trap
631  X XXXX XX 0000100 XXXXXX XXXX 00 XXXXXX
632  X XXXX XX 0011100 XXXXXX XXXXXXXXXXXX
633  Floating-point /media Conditional Trap
634  X XXXX XX 0000100 XXXXXX XXXX 01 XXXXXX
635  X XXXX XX 0011101 XXXXXX XXXXXXXXXXXX
636  Break
637  X XXXX XX 0000100 XXXXXX XXXX 11 XXXXXX
638  Media Trap
639  X XXXX XX 0000100 XXXXXX XXXX 10 XXXXXX */
640  if ((op & 0x01d80000) == 0x00180000 /* Conditional branches and Call */
641  || (op & 0x01f80000) == 0x00300000 /* Jump and Link */
642  || (op & 0x01f80000) == 0x00100000 /* Return from Trap, Trap */
643  || (op & 0x01f80000) == 0x00700000) /* Trap immediate */
644  {
645  /* Stop scanning; not in prologue any longer. */
646  break;
647  }
648 
649  /* Loading something from memory into fp probably means that
650  we're in the epilogue. Stop scanning the prologue.
651  ld @(GRi, GRk), fp
652  X 000010 0000010 XXXXXX 000100 XXXXXX
653  ldi @(GRi, d12), fp
654  X 000010 0110010 XXXXXX XXXXXXXXXXXX */
655  else if ((op & 0x7ffc0fc0) == 0x04080100
656  || (op & 0x7ffc0000) == 0x04c80000)
657  {
658  break;
659  }
660 
661  /* Setting the FP from the SP:
662  ori sp, 0, fp
663  P 000010 0100010 000001 000000000000 = 0x04881000
664  0 111111 1111111 111111 111111111111 = 0x7fffffff
665  . . . . . . . .
666  We treat this as part of the prologue. */
667  else if ((op & 0x7fffffff) == 0x04881000)
668  {
669  fp_set = 1;
670  fp_offset = 0;
671  last_prologue_pc = next_pc;
672  }
673 
674  /* Move the link register to the scratch register grJ, before saving:
675  movsg lr, grJ
676  P 000100 0000011 010000 000111 JJJJJJ = 0x080d01c0
677  0 111111 1111111 111111 111111 000000 = 0x7fffffc0
678  . . . . . . . .
679  We treat this as part of the prologue. */
680  else if ((op & 0x7fffffc0) == 0x080d01c0)
681  {
682  int gr_j = op & 0x3f;
683 
684  /* If we're moving it to a scratch register, that's fine. */
685  if (is_caller_saves_reg (gr_j))
686  {
687  lr_save_reg = gr_j;
688  last_prologue_pc = next_pc;
689  }
690  }
691 
692  /* To save multiple callee-saves registers on the stack, at
693  offset zero:
694 
695  std grK,@(sp,gr0)
696  P KKKKKK 0000011 000001 000011 000000 = 0x000c10c0
697  0 000000 1111111 111111 111111 111111 = 0x01ffffff
698 
699  stq grK,@(sp,gr0)
700  P KKKKKK 0000011 000001 000100 000000 = 0x000c1100
701  0 000000 1111111 111111 111111 111111 = 0x01ffffff
702  . . . . . . . .
703  We treat this as part of the prologue, and record the register's
704  saved address in the frame structure. */
705  else if ((op & 0x01ffffff) == 0x000c10c0
706  || (op & 0x01ffffff) == 0x000c1100)
707  {
708  int gr_k = ((op >> 25) & 0x3f);
709  int ope = ((op >> 6) & 0x3f);
710  int count;
711  int i;
712 
713  /* Is it an std or an stq? */
714  if (ope == 0x03)
715  count = 2;
716  else
717  count = 4;
718 
719  /* Is it really a callee-saves register? */
720  if (is_callee_saves_reg (gr_k))
721  {
722  for (i = 0; i < count; i++)
723  {
724  gr_saved[gr_k + i] = 1;
725  gr_sp_offset[gr_k + i] = 4 * i;
726  }
727  last_prologue_pc = next_pc;
728  }
729  }
730 
731  /* Adjusting the stack pointer. (The stack pointer is GR1.)
732  addi sp, S, sp
733  P 000001 0010000 000001 SSSSSSSSSSSS = 0x02401000
734  0 111111 1111111 111111 000000000000 = 0x7ffff000
735  . . . . . . . .
736  We treat this as part of the prologue. */
737  else if ((op & 0x7ffff000) == 0x02401000)
738  {
739  if (framesize == 0)
740  {
741  /* Sign-extend the twelve-bit field.
742  (Isn't there a better way to do this?) */
743  int s = (((op & 0xfff) - 0x800) & 0xfff) - 0x800;
744 
745  framesize -= s;
746  last_prologue_pc = pc;
747  }
748  else
749  {
750  /* If the prologue is being adjusted again, we've
751  likely gone too far; i.e. we're probably in the
752  epilogue. */
753  break;
754  }
755  }
756 
757  /* Setting the FP to a constant distance from the SP:
758  addi sp, S, fp
759  P 000010 0010000 000001 SSSSSSSSSSSS = 0x04401000
760  0 111111 1111111 111111 000000000000 = 0x7ffff000
761  . . . . . . . .
762  We treat this as part of the prologue. */
763  else if ((op & 0x7ffff000) == 0x04401000)
764  {
765  /* Sign-extend the twelve-bit field.
766  (Isn't there a better way to do this?) */
767  int s = (((op & 0xfff) - 0x800) & 0xfff) - 0x800;
768  fp_set = 1;
769  fp_offset = s;
770  last_prologue_pc = pc;
771  }
772 
773  /* To spill an argument register to a scratch register:
774  ori GRi, 0, GRk
775  P KKKKKK 0100010 IIIIII 000000000000 = 0x00880000
776  0 000000 1111111 000000 111111111111 = 0x01fc0fff
777  . . . . . . . .
778  For the time being, we treat this as a prologue instruction,
779  assuming that GRi is an argument register. This one's kind
780  of suspicious, because it seems like it could be part of a
781  legitimate body instruction. But we only come here when the
782  source info wasn't helpful, so we have to do the best we can.
783  Hopefully once GCC and GDB agree on how to emit line number
784  info for prologues, then this code will never come into play. */
785  else if ((op & 0x01fc0fff) == 0x00880000)
786  {
787  int gr_i = ((op >> 12) & 0x3f);
788 
789  /* Make sure that the source is an arg register; if it is, we'll
790  treat it as a prologue instruction. */
791  if (is_argument_reg (gr_i))
792  last_prologue_pc = next_pc;
793  }
794 
795  /* To spill 16-bit values to the stack:
796  sthi GRk, @(fp, s)
797  P KKKKKK 1010001 000010 SSSSSSSSSSSS = 0x01442000
798  0 000000 1111111 111111 000000000000 = 0x01fff000
799  . . . . . . . .
800  And for 8-bit values, we use STB instructions.
801  stbi GRk, @(fp, s)
802  P KKKKKK 1010000 000010 SSSSSSSSSSSS = 0x01402000
803  0 000000 1111111 111111 000000000000 = 0x01fff000
804  . . . . . . . .
805  We check that GRk is really an argument register, and treat
806  all such as part of the prologue. */
807  else if ( (op & 0x01fff000) == 0x01442000
808  || (op & 0x01fff000) == 0x01402000)
809  {
810  int gr_k = ((op >> 25) & 0x3f);
811 
812  /* Make sure that GRk is really an argument register; treat
813  it as a prologue instruction if so. */
814  if (is_argument_reg (gr_k))
815  last_prologue_pc = next_pc;
816  }
817 
818  /* To save multiple callee-saves register on the stack, at a
819  non-zero offset:
820 
821  stdi GRk, @(sp, s)
822  P KKKKKK 1010011 000001 SSSSSSSSSSSS = 0x014c1000
823  0 000000 1111111 111111 000000000000 = 0x01fff000
824  . . . . . . . .
825  stqi GRk, @(sp, s)
826  P KKKKKK 1010100 000001 SSSSSSSSSSSS = 0x01501000
827  0 000000 1111111 111111 000000000000 = 0x01fff000
828  . . . . . . . .
829  We treat this as part of the prologue, and record the register's
830  saved address in the frame structure. */
831  else if ((op & 0x01fff000) == 0x014c1000
832  || (op & 0x01fff000) == 0x01501000)
833  {
834  int gr_k = ((op >> 25) & 0x3f);
835  int count;
836  int i;
837 
838  /* Is it a stdi or a stqi? */
839  if ((op & 0x01fff000) == 0x014c1000)
840  count = 2;
841  else
842  count = 4;
843 
844  /* Is it really a callee-saves register? */
845  if (is_callee_saves_reg (gr_k))
846  {
847  /* Sign-extend the twelve-bit field.
848  (Isn't there a better way to do this?) */
849  int s = (((op & 0xfff) - 0x800) & 0xfff) - 0x800;
850 
851  for (i = 0; i < count; i++)
852  {
853  gr_saved[gr_k + i] = 1;
854  gr_sp_offset[gr_k + i] = s + (4 * i);
855  }
856  last_prologue_pc = next_pc;
857  }
858  }
859 
860  /* Storing any kind of integer register at any constant offset
861  from any other register.
862 
863  st GRk, @(GRi, gr0)
864  P KKKKKK 0000011 IIIIII 000010 000000 = 0x000c0080
865  0 000000 1111111 000000 111111 111111 = 0x01fc0fff
866  . . . . . . . .
867  sti GRk, @(GRi, d12)
868  P KKKKKK 1010010 IIIIII SSSSSSSSSSSS = 0x01480000
869  0 000000 1111111 000000 000000000000 = 0x01fc0000
870  . . . . . . . .
871  These could be almost anything, but a lot of prologue
872  instructions fall into this pattern, so let's decode the
873  instruction once, and then work at a higher level. */
874  else if (((op & 0x01fc0fff) == 0x000c0080)
875  || ((op & 0x01fc0000) == 0x01480000))
876  {
877  int gr_k = ((op >> 25) & 0x3f);
878  int gr_i = ((op >> 12) & 0x3f);
879  int offset;
880 
881  /* Are we storing with gr0 as an offset, or using an
882  immediate value? */
883  if ((op & 0x01fc0fff) == 0x000c0080)
884  offset = 0;
885  else
886  offset = (((op & 0xfff) - 0x800) & 0xfff) - 0x800;
887 
888  /* If the address isn't relative to the SP or FP, it's not a
889  prologue instruction. */
890  if (gr_i != sp_regnum && gr_i != fp_regnum)
891  {
892  /* Do nothing; not a prologue instruction. */
893  }
894 
895  /* Saving the old FP in the new frame (relative to the SP). */
896  else if (gr_k == fp_regnum && gr_i == sp_regnum)
897  {
898  gr_saved[fp_regnum] = 1;
899  gr_sp_offset[fp_regnum] = offset;
900  last_prologue_pc = next_pc;
901  }
902 
903  /* Saving callee-saves register(s) on the stack, relative to
904  the SP. */
905  else if (gr_i == sp_regnum
906  && is_callee_saves_reg (gr_k))
907  {
908  gr_saved[gr_k] = 1;
909  if (gr_i == sp_regnum)
910  gr_sp_offset[gr_k] = offset;
911  else
912  gr_sp_offset[gr_k] = offset + fp_offset;
913  last_prologue_pc = next_pc;
914  }
915 
916  /* Saving the scratch register holding the return address. */
917  else if (lr_save_reg != -1
918  && gr_k == lr_save_reg)
919  {
920  lr_saved_on_stack = 1;
921  if (gr_i == sp_regnum)
922  lr_sp_offset = offset;
923  else
924  lr_sp_offset = offset + fp_offset;
925  last_prologue_pc = next_pc;
926  }
927 
928  /* Spilling int-sized arguments to the stack. */
929  else if (is_argument_reg (gr_k))
930  last_prologue_pc = next_pc;
931  }
932  pc = next_pc;
933  }
934 
935  if (this_frame && info)
936  {
937  int i;
938  ULONGEST this_base;
939 
940  /* If we know the relationship between the stack and frame
941  pointers, record the addresses of the registers we noticed.
942  Note that we have to do this as a separate step at the end,
943  because instructions may save relative to the SP, but we need
944  their addresses relative to the FP. */
945  if (fp_set)
946  this_base = get_frame_register_unsigned (this_frame, fp_regnum);
947  else
948  this_base = get_frame_register_unsigned (this_frame, sp_regnum);
949 
950  for (i = 0; i < 64; i++)
951  if (gr_saved[i])
952  info->saved_regs[i].addr = this_base - fp_offset + gr_sp_offset[i];
953 
954  info->prev_sp = this_base - fp_offset + framesize;
955  info->base = this_base;
956 
957  /* If LR was saved on the stack, record its location. */
958  if (lr_saved_on_stack)
959  info->saved_regs[lr_regnum].addr
960  = this_base - fp_offset + lr_sp_offset;
961 
962  /* The call instruction moves the caller's PC in the callee's LR.
963  Since this is an unwind, do the reverse. Copy the location of LR
964  into PC (the address / regnum) so that a request for PC will be
965  converted into a request for the LR. */
966  info->saved_regs[pc_regnum] = info->saved_regs[lr_regnum];
967 
968  /* Save the previous frame's computed SP value. */
970  }
971 
972  return last_prologue_pc;
973 }
974 
975 
976 static CORE_ADDR
978 {
979  CORE_ADDR func_addr, func_end, new_pc;
980 
981  new_pc = pc;
982 
983  /* If the line table has entry for a line *within* the function
984  (i.e., not in the prologue, and not past the end), then that's
985  our location. */
986  if (find_pc_partial_function (pc, NULL, &func_addr, &func_end))
987  {
988  struct symtab_and_line sal;
989 
990  sal = find_pc_line (func_addr, 0);
991 
992  if (sal.line != 0 && sal.end < func_end)
993  {
994  new_pc = sal.end;
995  }
996  }
997 
998  /* The FR-V prologue is at least five instructions long (twenty bytes).
999  If we didn't find a real source location past that, then
1000  do a full analysis of the prologue. */
1001  if (new_pc < pc + 20)
1002  new_pc = frv_analyze_prologue (gdbarch, pc, 0, 0);
1003 
1004  return new_pc;
1005 }
1006 
1007 
1008 /* Examine the instruction pointed to by PC. If it corresponds to
1009  a call to __main, return the address of the next instruction.
1010  Otherwise, return PC. */
1011 
1012 static CORE_ADDR
1014 {
1015  enum bfd_endian byte_order = gdbarch_byte_order (gdbarch);
1016  gdb_byte buf[4];
1017  unsigned long op;
1018  CORE_ADDR orig_pc = pc;
1019 
1020  if (target_read_memory (pc, buf, 4))
1021  return pc;
1022  op = extract_unsigned_integer (buf, 4, byte_order);
1023 
1024  /* In PIC code, GR15 may be loaded from some offset off of FP prior
1025  to the call instruction.
1026 
1027  Skip over this instruction if present. It won't be present in
1028  non-PIC code, and even in PIC code, it might not be present.
1029  (This is due to the fact that GR15, the FDPIC register, already
1030  contains the correct value.)
1031 
1032  The general form of the LDI is given first, followed by the
1033  specific instruction with the GRi and GRk filled in as FP and
1034  GR15.
1035 
1036  ldi @(GRi, d12), GRk
1037  P KKKKKK 0110010 IIIIII SSSSSSSSSSSS = 0x00c80000
1038  0 000000 1111111 000000 000000000000 = 0x01fc0000
1039  . . . . . . . .
1040  ldi @(FP, d12), GR15
1041  P KKKKKK 0110010 IIIIII SSSSSSSSSSSS = 0x1ec82000
1042  0 001111 1111111 000010 000000000000 = 0x7ffff000
1043  . . . . . . . . */
1044 
1045  if ((op & 0x7ffff000) == 0x1ec82000)
1046  {
1047  pc += 4;
1048  if (target_read_memory (pc, buf, 4))
1049  return orig_pc;
1050  op = extract_unsigned_integer (buf, 4, byte_order);
1051  }
1052 
1053  /* The format of an FRV CALL instruction is as follows:
1054 
1055  call label24
1056  P HHHHHH 0001111 LLLLLLLLLLLLLLLLLL = 0x003c0000
1057  0 000000 1111111 000000000000000000 = 0x01fc0000
1058  . . . . . . . .
1059 
1060  where label24 is constructed by concatenating the H bits with the
1061  L bits. The call target is PC + (4 * sign_ext(label24)). */
1062 
1063  if ((op & 0x01fc0000) == 0x003c0000)
1064  {
1065  LONGEST displ;
1066  CORE_ADDR call_dest;
1067  struct bound_minimal_symbol s;
1068 
1069  displ = ((op & 0xfe000000) >> 7) | (op & 0x0003ffff);
1070  if ((displ & 0x00800000) != 0)
1071  displ |= ~((LONGEST) 0x00ffffff);
1072 
1073  call_dest = pc + 4 * displ;
1074  s = lookup_minimal_symbol_by_pc (call_dest);
1075 
1076  if (s.minsym != NULL
1077  && MSYMBOL_LINKAGE_NAME (s.minsym) != NULL
1078  && strcmp (MSYMBOL_LINKAGE_NAME (s.minsym), "__main") == 0)
1079  {
1080  pc += 4;
1081  return pc;
1082  }
1083  }
1084  return orig_pc;
1085 }
1086 
1087 
1088 static struct frv_unwind_cache *
1090  void **this_prologue_cache)
1091 {
1092  struct gdbarch *gdbarch = get_frame_arch (this_frame);
1093  struct frv_unwind_cache *info;
1094 
1095  if ((*this_prologue_cache))
1096  return (struct frv_unwind_cache *) (*this_prologue_cache);
1097 
1098  info = FRAME_OBSTACK_ZALLOC (struct frv_unwind_cache);
1099  (*this_prologue_cache) = info;
1100  info->saved_regs = trad_frame_alloc_saved_regs (this_frame);
1101 
1102  /* Prologue analysis does the rest... */
1104  get_frame_func (this_frame), this_frame, info);
1105 
1106  return info;
1107 }
1108 
1109 static void
1111  gdb_byte *valbuf)
1112 {
1113  struct gdbarch *gdbarch = regcache->arch ();
1114  enum bfd_endian byte_order = gdbarch_byte_order (gdbarch);
1115  int len = TYPE_LENGTH (type);
1116 
1117  if (len <= 4)
1118  {
1119  ULONGEST gpr8_val;
1120  regcache_cooked_read_unsigned (regcache, 8, &gpr8_val);
1121  store_unsigned_integer (valbuf, len, byte_order, gpr8_val);
1122  }
1123  else if (len == 8)
1124  {
1125  ULONGEST regval;
1126 
1128  store_unsigned_integer (valbuf, 4, byte_order, regval);
1130  store_unsigned_integer ((bfd_byte *) valbuf + 4, 4, byte_order, regval);
1131  }
1132  else
1133  internal_error (__FILE__, __LINE__,
1134  _("Illegal return value length: %d"), len);
1135 }
1136 
1137 static CORE_ADDR
1139 {
1140  /* Require dword alignment. */
1141  return align_down (sp, 8);
1142 }
1143 
1144 static CORE_ADDR
1146 {
1147  enum bfd_endian byte_order = gdbarch_byte_order (gdbarch);
1148  CORE_ADDR descr;
1149  gdb_byte valbuf[4];
1150  CORE_ADDR start_addr;
1151 
1152  /* If we can't find the function in the symbol table, then we assume
1153  that the function address is already in descriptor form. */
1154  if (!find_pc_partial_function (entry_point, NULL, &start_addr, NULL)
1155  || entry_point != start_addr)
1156  return entry_point;
1157 
1158  descr = frv_fdpic_find_canonical_descriptor (entry_point);
1159 
1160  if (descr != 0)
1161  return descr;
1162 
1163  /* Construct a non-canonical descriptor from space allocated on
1164  the stack. */
1165 
1167  store_unsigned_integer (valbuf, 4, byte_order, entry_point);
1168  write_memory (descr, valbuf, 4);
1169  store_unsigned_integer (valbuf, 4, byte_order,
1170  frv_fdpic_find_global_pointer (entry_point));
1171  write_memory (descr + 4, valbuf, 4);
1172  return descr;
1173 }
1174 
1175 static CORE_ADDR
1177  struct target_ops *targ)
1178 {
1179  enum bfd_endian byte_order = gdbarch_byte_order (gdbarch);
1180  CORE_ADDR entry_point;
1181  CORE_ADDR got_address;
1182 
1183  entry_point = get_target_memory_unsigned (targ, addr, 4, byte_order);
1184  got_address = get_target_memory_unsigned (targ, addr + 4, 4, byte_order);
1185 
1186  if (got_address == frv_fdpic_find_global_pointer (entry_point))
1187  return entry_point;
1188  else
1189  return addr;
1190 }
1191 
1192 static CORE_ADDR
1193 frv_push_dummy_call (struct gdbarch *gdbarch, struct value *function,
1194  struct regcache *regcache, CORE_ADDR bp_addr,
1195  int nargs, struct value **args, CORE_ADDR sp,
1196  int struct_return, CORE_ADDR struct_addr)
1197 {
1198  enum bfd_endian byte_order = gdbarch_byte_order (gdbarch);
1199  int argreg;
1200  int argnum;
1201  const gdb_byte *val;
1202  gdb_byte valbuf[4];
1203  struct value *arg;
1204  struct type *arg_type;
1205  int len;
1206  enum type_code typecode;
1207  CORE_ADDR regval;
1208  int stack_space;
1209  int stack_offset;
1210  enum frv_abi abi = frv_abi (gdbarch);
1211  CORE_ADDR func_addr = find_function_addr (function, NULL);
1212 
1213 #if 0
1214  printf("Push %d args at sp = %x, struct_return=%d (%x)\n",
1215  nargs, (int) sp, struct_return, struct_addr);
1216 #endif
1217 
1218  stack_space = 0;
1219  for (argnum = 0; argnum < nargs; ++argnum)
1220  stack_space += align_up (TYPE_LENGTH (value_type (args[argnum])), 4);
1221 
1222  stack_space -= (6 * 4);
1223  if (stack_space > 0)
1224  sp -= stack_space;
1225 
1226  /* Make sure stack is dword aligned. */
1227  sp = align_down (sp, 8);
1228 
1229  stack_offset = 0;
1230 
1231  argreg = 8;
1232 
1233  if (struct_return)
1235  struct_addr);
1236 
1237  for (argnum = 0; argnum < nargs; ++argnum)
1238  {
1239  arg = args[argnum];
1240  arg_type = check_typedef (value_type (arg));
1241  len = TYPE_LENGTH (arg_type);
1242  typecode = TYPE_CODE (arg_type);
1243 
1244  if (typecode == TYPE_CODE_STRUCT || typecode == TYPE_CODE_UNION)
1245  {
1246  store_unsigned_integer (valbuf, 4, byte_order,
1247  value_address (arg));
1248  typecode = TYPE_CODE_PTR;
1249  len = 4;
1250  val = valbuf;
1251  }
1252  else if (abi == FRV_ABI_FDPIC
1253  && len == 4
1254  && typecode == TYPE_CODE_PTR
1255  && TYPE_CODE (TYPE_TARGET_TYPE (arg_type)) == TYPE_CODE_FUNC)
1256  {
1257  /* The FDPIC ABI requires function descriptors to be passed instead
1258  of entry points. */
1260  (value_contents (arg), 4, byte_order);
1261  addr = find_func_descr (gdbarch, addr);
1262  store_unsigned_integer (valbuf, 4, byte_order, addr);
1263  typecode = TYPE_CODE_PTR;
1264  len = 4;
1265  val = valbuf;
1266  }
1267  else
1268  {
1269  val = value_contents (arg);
1270  }
1271 
1272  while (len > 0)
1273  {
1274  int partial_len = (len < 4 ? len : 4);
1275 
1276  if (argreg < 14)
1277  {
1278  regval = extract_unsigned_integer (val, partial_len, byte_order);
1279 #if 0
1280  printf(" Argnum %d data %x -> reg %d\n",
1281  argnum, (int) regval, argreg);
1282 #endif
1283  regcache_cooked_write_unsigned (regcache, argreg, regval);
1284  ++argreg;
1285  }
1286  else
1287  {
1288 #if 0
1289  printf(" Argnum %d data %x -> offset %d (%x)\n",
1290  argnum, *((int *)val), stack_offset,
1291  (int) (sp + stack_offset));
1292 #endif
1293  write_memory (sp + stack_offset, val, partial_len);
1294  stack_offset += align_up (partial_len, 4);
1295  }
1296  len -= partial_len;
1297  val += partial_len;
1298  }
1299  }
1300 
1301  /* Set the return address. For the frv, the return breakpoint is
1302  always at BP_ADDR. */
1304 
1305  if (abi == FRV_ABI_FDPIC)
1306  {
1307  /* Set the GOT register for the FDPIC ABI. */
1309  (regcache, first_gpr_regnum + 15,
1310  frv_fdpic_find_global_pointer (func_addr));
1311  }
1312 
1313  /* Finally, update the SP register. */
1315 
1316  return sp;
1317 }
1318 
1319 static void
1321  const gdb_byte *valbuf)
1322 {
1323  int len = TYPE_LENGTH (type);
1324 
1325  if (len <= 4)
1326  {
1327  bfd_byte val[4];
1328  memset (val, 0, sizeof (val));
1329  memcpy (val + (4 - len), valbuf, len);
1330  regcache_cooked_write (regcache, 8, val);
1331  }
1332  else if (len == 8)
1333  {
1334  regcache_cooked_write (regcache, 8, valbuf);
1335  regcache_cooked_write (regcache, 9, (bfd_byte *) valbuf + 4);
1336  }
1337  else
1338  internal_error (__FILE__, __LINE__,
1339  _("Don't know how to return a %d-byte value."), len);
1340 }
1341 
1342 static enum return_value_convention
1343 frv_return_value (struct gdbarch *gdbarch, struct value *function,
1344  struct type *valtype, struct regcache *regcache,
1345  gdb_byte *readbuf, const gdb_byte *writebuf)
1346 {
1347  int struct_return = TYPE_CODE (valtype) == TYPE_CODE_STRUCT
1348  || TYPE_CODE (valtype) == TYPE_CODE_UNION
1349  || TYPE_CODE (valtype) == TYPE_CODE_ARRAY;
1350 
1351  if (writebuf != NULL)
1352  {
1354  frv_store_return_value (valtype, regcache, writebuf);
1355  }
1356 
1357  if (readbuf != NULL)
1358  {
1360  frv_extract_return_value (valtype, regcache, readbuf);
1361  }
1362 
1363  if (struct_return)
1365  else
1367 }
1368 
1369 static CORE_ADDR
1370 frv_unwind_pc (struct gdbarch *gdbarch, struct frame_info *next_frame)
1371 {
1372  return frame_unwind_register_unsigned (next_frame, pc_regnum);
1373 }
1374 
1375 /* Given a GDB frame, determine the address of the calling function's
1376  frame. This will be used to create a new GDB frame struct. */
1377 
1378 static void
1379 frv_frame_this_id (struct frame_info *this_frame,
1380  void **this_prologue_cache, struct frame_id *this_id)
1381 {
1382  struct frv_unwind_cache *info
1383  = frv_frame_unwind_cache (this_frame, this_prologue_cache);
1384  CORE_ADDR base;
1385  CORE_ADDR func;
1386  struct bound_minimal_symbol msym_stack;
1387  struct frame_id id;
1388 
1389  /* The FUNC is easy. */
1390  func = get_frame_func (this_frame);
1391 
1392  /* Check if the stack is empty. */
1393  msym_stack = lookup_minimal_symbol ("_stack", NULL, NULL);
1394  if (msym_stack.minsym && info->base == BMSYMBOL_VALUE_ADDRESS (msym_stack))
1395  return;
1396 
1397  /* Hopefully the prologue analysis either correctly determined the
1398  frame's base (which is the SP from the previous frame), or set
1399  that base to "NULL". */
1400  base = info->prev_sp;
1401  if (base == 0)
1402  return;
1403 
1404  id = frame_id_build (base, func);
1405  (*this_id) = id;
1406 }
1407 
1408 static struct value *
1410  void **this_prologue_cache, int regnum)
1411 {
1412  struct frv_unwind_cache *info
1413  = frv_frame_unwind_cache (this_frame, this_prologue_cache);
1414  return trad_frame_get_prev_register (this_frame, info->saved_regs, regnum);
1415 }
1416 
1417 static const struct frame_unwind frv_frame_unwind = {
1418  NORMAL_FRAME,
1422  NULL,
1424 };
1425 
1426 static CORE_ADDR
1427 frv_frame_base_address (struct frame_info *this_frame, void **this_cache)
1428 {
1429  struct frv_unwind_cache *info
1430  = frv_frame_unwind_cache (this_frame, this_cache);
1431  return info->base;
1432 }
1433 
1434 static const struct frame_base frv_frame_base = {
1439 };
1440 
1441 static CORE_ADDR
1442 frv_unwind_sp (struct gdbarch *gdbarch, struct frame_info *next_frame)
1443 {
1444  return frame_unwind_register_unsigned (next_frame, sp_regnum);
1445 }
1446 
1447 
1448 /* Assuming THIS_FRAME is a dummy, return the frame ID of that dummy
1449  frame. The frame ID's base needs to match the TOS value saved by
1450  save_dummy_frame_tos(), and the PC match the dummy frame's breakpoint. */
1451 
1452 static struct frame_id
1453 frv_dummy_id (struct gdbarch *gdbarch, struct frame_info *this_frame)
1454 {
1455  CORE_ADDR sp = get_frame_register_unsigned (this_frame, sp_regnum);
1456  return frame_id_build (sp, get_frame_pc (this_frame));
1457 }
1458 
1459 static struct gdbarch *
1460 frv_gdbarch_init (struct gdbarch_info info, struct gdbarch_list *arches)
1461 {
1462  struct gdbarch *gdbarch;
1463  struct gdbarch_tdep *var;
1464  int elf_flags = 0;
1465 
1466  /* Check to see if we've already built an appropriate architecture
1467  object for this executable. */
1468  arches = gdbarch_list_lookup_by_info (arches, &info);
1469  if (arches)
1470  return arches->gdbarch;
1471 
1472  /* Select the right tdep structure for this variant. */
1473  var = new_variant ();
1474  switch (info.bfd_arch_info->mach)
1475  {
1476  case bfd_mach_frv:
1477  case bfd_mach_frvsimple:
1478  case bfd_mach_fr300:
1479  case bfd_mach_fr500:
1480  case bfd_mach_frvtomcat:
1481  case bfd_mach_fr550:
1482  set_variant_num_gprs (var, 64);
1483  set_variant_num_fprs (var, 64);
1484  break;
1485 
1486  case bfd_mach_fr400:
1487  case bfd_mach_fr450:
1488  set_variant_num_gprs (var, 32);
1489  set_variant_num_fprs (var, 32);
1490  break;
1491 
1492  default:
1493  /* Never heard of this variant. */
1494  return 0;
1495  }
1496 
1497  /* Extract the ELF flags, if available. */
1498  if (info.abfd && bfd_get_flavour (info.abfd) == bfd_target_elf_flavour)
1499  elf_flags = elf_elfheader (info.abfd)->e_flags;
1500 
1501  if (elf_flags & EF_FRV_FDPIC)
1502  set_variant_abi_fdpic (var);
1503 
1504  if (elf_flags & EF_FRV_CPU_FR450)
1506 
1507  gdbarch = gdbarch_alloc (&info, var);
1508 
1517 
1520 
1524 
1528 
1531 
1534  set_gdbarch_breakpoint_kind_from_pc (gdbarch, frv_breakpoint::kind_from_pc);
1535  set_gdbarch_sw_breakpoint_from_kind (gdbarch, frv_breakpoint::bp_from_kind);
1537  (gdbarch, frv_adjust_breakpoint_address);
1538 
1540 
1541  /* Frame stuff. */
1546  /* We set the sniffer lower down after the OSABI hooks have been
1547  established. */
1548 
1549  /* Settings for calling functions in the inferior. */
1552 
1553  /* Settings that should be unnecessary. */
1555 
1556  /* Hardware watchpoint / breakpoint support. */
1557  switch (info.bfd_arch_info->mach)
1558  {
1559  case bfd_mach_frv:
1560  case bfd_mach_frvsimple:
1561  case bfd_mach_fr300:
1562  case bfd_mach_fr500:
1563  case bfd_mach_frvtomcat:
1564  /* fr500-style hardware debugging support. */
1565  var->num_hw_watchpoints = 4;
1566  var->num_hw_breakpoints = 4;
1567  break;
1568 
1569  case bfd_mach_fr400:
1570  case bfd_mach_fr450:
1571  /* fr400-style hardware debugging support. */
1572  var->num_hw_watchpoints = 2;
1573  var->num_hw_breakpoints = 4;
1574  break;
1575 
1576  default:
1577  /* Otherwise, assume we don't have hardware debugging support. */
1578  var->num_hw_watchpoints = 0;
1579  var->num_hw_breakpoints = 0;
1580  break;
1581  }
1582 
1583  if (frv_abi (gdbarch) == FRV_ABI_FDPIC)
1586 
1588 
1589  /* Hook in ABI-specific overrides, if they have been registered. */
1590  gdbarch_init_osabi (info, gdbarch);
1591 
1592  /* Set the fallback (prologue based) frame sniffer. */
1594 
1595  /* Enable TLS support. */
1598 
1599  return gdbarch;
1600 }
1601 
1602 void
1604 {
1605  register_gdbarch_init (bfd_arch_frv, frv_gdbarch_init);
1606 }
static const struct frame_base frv_frame_base
Definition: frv-tdep.c:1434
static CORE_ADDR frv_convert_from_func_ptr_addr(struct gdbarch *gdbarch, CORE_ADDR addr, struct target_ops *targ)
Definition: frv-tdep.c:1176
void set_gdbarch_num_regs(struct gdbarch *gdbarch, int num_regs)
Definition: gdbarch.c:2050
void set_gdbarch_double_bit(struct gdbarch *gdbarch, int double_bit)
Definition: gdbarch.c:1723
void set_gdbarch_frame_align(struct gdbarch *gdbarch, gdbarch_frame_align_ftype frame_align)
Definition: gdbarch.c:3151
static struct type * frv_register_type(struct gdbarch *gdbarch, int reg)
Definition: frv-tdep.c:287
enum frv_abi frv_abi(struct gdbarch *gdbarch)
Definition: frv-tdep.c:93
type_code
Definition: gdbtypes.h:80
void set_gdbarch_skip_main_prologue(struct gdbarch *gdbarch, gdbarch_skip_main_prologue_ftype skip_main_prologue)
Definition: gdbarch.c:2796
struct frame_id frame_id_build(CORE_ADDR stack_addr, CORE_ADDR code_addr)
Definition: frame.c:624
int frv_fdpic_loadmap_addresses(struct gdbarch *gdbarch, CORE_ADDR *interp_addr, CORE_ADDR *exec_addr)
Definition: frv-tdep.c:102
CORE_ADDR base
Definition: frv-tdep.c:49
static void set_variant_scratch_registers(struct gdbarch_tdep *var)
Definition: frv-tdep.c:266
void set_gdbarch_float_bit(struct gdbarch *gdbarch, int float_bit)
Definition: gdbarch.c:1690
CORE_ADDR get_frame_pc(struct frame_info *frame)
Definition: frame.c:2376
#define MSYMBOL_LINKAGE_NAME(symbol)
Definition: symtab.h:707
bfd_vma CORE_ADDR
Definition: common-types.h:41
void set_gdbarch_fetch_tls_load_module_address(struct gdbarch *gdbarch, gdbarch_fetch_tls_load_module_address_ftype fetch_tls_load_module_address)
Definition: gdbarch.c:3038
void gdbarch_init_osabi(struct gdbarch_info info, struct gdbarch *gdbarch)
Definition: osabi.c:334
static enum register_status frv_pseudo_register_read(struct gdbarch *gdbarch, struct regcache *regcache, int reg, gdb_byte *buffer)
Definition: frv-tdep.c:298
struct value * trad_frame_get_prev_register(struct frame_info *this_frame, struct trad_frame_saved_reg this_saved_regs[], int regnum)
Definition: trad-frame.c:142
static void set_variant_num_gprs(struct gdbarch_tdep *var, int num_gprs)
Definition: frv-tdep.c:222
static void frv_extract_return_value(struct type *type, struct regcache *regcache, gdb_byte *valbuf)
Definition: frv-tdep.c:1110
LONGEST value_as_long(struct value *val)
Definition: value.c:2749
void(* func)(char *)
void set_solib_ops(struct gdbarch *gdbarch, const struct target_so_ops *new_ops)
Definition: solib.c:77
#define BMSYMBOL_VALUE_ADDRESS(symbol)
Definition: symtab.h:691
void trad_frame_set_value(struct trad_frame_saved_reg this_saved_regs[], int regnum, LONGEST val)
Definition: trad-frame.c:99
static CORE_ADDR frv_frame_align(struct gdbarch *gdbarch, CORE_ADDR sp)
Definition: frv-tdep.c:1138
ULONGEST align_down(ULONGEST v, int n)
Definition: utils.c:3005
ULONGEST frame_unwind_register_unsigned(struct frame_info *frame, int regnum)
Definition: frame.c:1279
void set_gdbarch_short_bit(struct gdbarch *gdbarch, int short_bit)
Definition: gdbarch.c:1572
const struct builtin_type * builtin_type(struct gdbarch *gdbarch)
Definition: gdbtypes.c:5217
void * memset(T *s, int c, size_t n)=delete
void internal_error(const char *file, int line, const char *fmt,...)
Definition: errors.c:50
return_value_convention
Definition: defs.h:247
CORE_ADDR frv_fdpic_find_global_pointer(CORE_ADDR addr)
Definition: solib-frv.c:920
static int is_caller_saves_reg(int reg)
Definition: frv-tdep.c:478
struct gdbarch_list * gdbarch_list_lookup_by_info(struct gdbarch_list *arches, const struct gdbarch_info *info)
Definition: gdbarch.c:5309
void set_gdbarch_deprecated_fp_regnum(struct gdbarch *gdbarch, int deprecated_fp_regnum)
Definition: gdbarch.c:2357
register_status
CORE_ADDR skip_prologue_using_sal(struct gdbarch *gdbarch, CORE_ADDR func_addr)
Definition: symtab.c:3854
int gdbarch_num_regs(struct gdbarch *gdbarch)
Definition: gdbarch.c:2039
static struct gdbarch_tdep * new_variant(void)
Definition: frv-tdep.c:132
#define _(String)
Definition: gdb_locale.h:35
const struct bfd_arch_info * bfd_arch_info
Definition: gdbarch.h:1629
struct gdbarch_tdep * gdbarch_tdep(struct gdbarch *gdbarch)
Definition: gdbarch.c:1491
frv_abi
Definition: frv-tdep.h:20
void frame_unwind_append_unwinder(struct gdbarch *gdbarch, const struct frame_unwind *unwinder)
Definition: frame-unwind.c:79
struct regcache * get_current_regcache(void)
Definition: regcache.c:446
struct type * builtin_int32
Definition: gdbtypes.h:1538
struct trad_frame_saved_reg * saved_regs
Definition: frv-tdep.c:52
int num_hw_watchpoints
Definition: frv-tdep.c:82
#define FRAME_OBSTACK_ZALLOC(TYPE)
Definition: frame.h:678
static void frv_store_return_value(struct type *type, struct regcache *regcache, const gdb_byte *valbuf)
Definition: frv-tdep.c:1320
static const struct frame_unwind frv_frame_unwind
Definition: frv-tdep.c:1417
static CORE_ADDR frv_analyze_prologue(struct gdbarch *gdbarch, CORE_ADDR pc, struct frame_info *this_frame, struct frv_unwind_cache *info)
Definition: frv-tdep.c:515
static void set_variant_num_fprs(struct gdbarch_tdep *var, int num_fprs)
Definition: frv-tdep.c:241
enum frv_abi frv_abi
Definition: frv-tdep.c:73
void frame_base_set_default(struct gdbarch *gdbarch, const struct frame_base *default_base)
Definition: frame-base.c:95
void set_gdbarch_pseudo_register_write(struct gdbarch *gdbarch, gdbarch_pseudo_register_write_ftype pseudo_register_write)
Definition: gdbarch.c:2032
void set_gdbarch_register_type(struct gdbarch *gdbarch, gdbarch_register_type_ftype register_type)
Definition: gdbarch.c:2316
struct type * check_typedef(struct type *type)
Definition: gdbtypes.c:2421
static struct value * frv_frame_prev_register(struct frame_info *this_frame, void **this_prologue_cache, int regnum)
Definition: frv-tdep.c:1409
const gdb_byte * value_contents(struct value *value)
Definition: value.c:1407
ULONGEST get_target_memory_unsigned(struct target_ops *ops, CORE_ADDR addr, int len, enum bfd_endian byte_order)
Definition: target.c:1974
static void frv_frame_this_id(struct frame_info *this_frame, void **this_prologue_cache, struct frame_id *this_id)
Definition: frv-tdep.c:1379
struct symtab_and_line find_pc_line(CORE_ADDR pc, int notcurrent)
Definition: symtab.c:3288
int num_gprs
Definition: frv-tdep.c:76
static ULONGEST extract_unsigned_integer(const gdb_byte *addr, int len, enum bfd_endian byte_order)
Definition: defs.h:577
enum register_status regcache_cooked_read_unsigned(struct regcache *regcache, int regnum, ULONGEST *val)
Definition: regcache.c:777
void set_gdbarch_sp_regnum(struct gdbarch *gdbarch, int sp_regnum)
Definition: gdbarch.c:2156
CORE_ADDR frv_fetch_objfile_link_map(struct objfile *objfile)
Definition: solib-frv.c:1128
bfd * abfd
Definition: gdbarch.h:1637
void set_gdbarch_dummy_id(struct gdbarch *gdbarch, gdbarch_dummy_id_ftype dummy_id)
Definition: gdbarch.c:2340
struct_return
Definition: arm-tdep.h:88
static void set_variant_abi_fdpic(struct gdbarch_tdep *var)
Definition: frv-tdep.c:257
#define gdb_assert_not_reached(message)
Definition: gdb_assert.h:55
static const int frv_instr_size
void set_gdbarch_adjust_breakpoint_address(struct gdbarch *gdbarch, gdbarch_adjust_breakpoint_address_ftype adjust_breakpoint_address)
Definition: gdbarch.c:2929
enum bfd_endian gdbarch_byte_order(struct gdbarch *gdbarch)
Definition: gdbarch.c:1509
void set_gdbarch_register_sim_regno(struct gdbarch *gdbarch, gdbarch_register_sim_regno_ftype register_sim_regno)
Definition: gdbarch.c:2514
Definition: gdbtypes.h:749
int find_pc_partial_function(CORE_ADDR pc, const char **name, CORE_ADDR *address, CORE_ADDR *endaddr)
Definition: blockframe.c:320
static enum return_value_convention frv_return_value(struct gdbarch *gdbarch, struct value *function, struct type *valtype, struct regcache *regcache, gdb_byte *readbuf, const gdb_byte *writebuf)
Definition: frv-tdep.c:1343
void set_gdbarch_unwind_pc(struct gdbarch *gdbarch, gdbarch_unwind_pc_ftype unwind_pc)
Definition: gdbarch.c:3079
int default_frame_sniffer(const struct frame_unwind *self, struct frame_info *this_frame, void **this_prologue_cache)
Definition: frame-unwind.c:174
typedef BP_MANIPULATION(frv_break_insn)
Definition: frv-tdep.c:427
mach_port_t mach_port_t name mach_port_t mach_port_t name kern_return_t int status
Definition: gnu-nat.c:1822
static CORE_ADDR frv_push_dummy_call(struct gdbarch *gdbarch, struct value *function, struct regcache *regcache, CORE_ADDR bp_addr, int nargs, struct value **args, CORE_ADDR sp, int struct_return, CORE_ADDR struct_addr)
Definition: frv-tdep.c:1193
void set_gdbarch_unwind_sp(struct gdbarch *gdbarch, gdbarch_unwind_sp_ftype unwind_sp)
Definition: gdbarch.c:3103
static CORE_ADDR frv_frame_base_address(struct frame_info *this_frame, void **this_cache)
Definition: frv-tdep.c:1427
char * xstrprintf(const char *format,...)
Definition: common-utils.c:107
struct gdbarch * gdbarch
Definition: gdbarch.h:1622
void set_gdbarch_convert_from_func_ptr_addr(struct gdbarch *gdbarch, gdbarch_convert_from_func_ptr_addr_ftype convert_from_func_ptr_addr)
Definition: gdbarch.c:3201
int regnum
Definition: aarch64-tdep.c:77
ULONGEST get_frame_register_unsigned(struct frame_info *frame, int regnum)
Definition: frame.c:1308
void * xmalloc(YYSIZE_T)
static const char * frv_register_name(struct gdbarch *gdbarch, int reg)
Definition: frv-tdep.c:275
void set_gdbarch_breakpoint_kind_from_pc(struct gdbarch *gdbarch, gdbarch_breakpoint_kind_from_pc_ftype breakpoint_kind_from_pc)
Definition: gdbarch.c:2871
struct trad_frame_saved_reg * trad_frame_alloc_saved_regs(struct gdbarch *gdbarch)
Definition: trad-frame.c:47
static CORE_ADDR frv_unwind_sp(struct gdbarch *gdbarch, struct frame_info *next_frame)
Definition: frv-tdep.c:1442
void set_gdbarch_long_long_bit(struct gdbarch *gdbarch, int long_long_bit)
Definition: gdbarch.c:1623
Definition: regdef.h:22
#define gdb_assert(expr)
Definition: gdb_assert.h:32
Definition: value.c:169
const char ** register_names
Definition: frv-tdep.c:88
static struct frv_unwind_cache * frv_frame_unwind_cache(struct frame_info *this_frame, void **this_prologue_cache)
Definition: frv-tdep.c:1089
static int is_callee_saves_reg(int reg)
Definition: frv-tdep.c:488
int core_addr_lessthan(CORE_ADDR lhs, CORE_ADDR rhs)
Definition: arch-utils.c:117
bfd_byte gdb_byte
Definition: common-types.h:38
void _initialize_frv_tdep(void)
Definition: frv-tdep.c:1603
void set_gdbarch_pseudo_register_read(struct gdbarch *gdbarch, gdbarch_pseudo_register_read_ftype pseudo_register_read)
Definition: gdbarch.c:1984
ULONGEST align_up(ULONGEST v, int n)
Definition: utils.c:2997
#define TYPE_TARGET_TYPE(thistype)
Definition: gdbtypes.h:1226
struct bound_minimal_symbol lookup_minimal_symbol_by_pc(CORE_ADDR pc)
Definition: minsyms.c:928
#define XCNEW(T)
Definition: poison.h:121
int xsnprintf(char *str, size_t size, const char *format,...)
Definition: common-utils.c:134
#define TYPE_CODE(thistype)
Definition: gdbtypes.h:1238
enum register_status regcache_raw_read(struct regcache *regcache, int regnum, gdb_byte *buf)
Definition: regcache.c:565
void regcache_cooked_write_unsigned(struct regcache *regcache, int regnum, ULONGEST val)
Definition: regcache.c:806
int target_read_memory(CORE_ADDR memaddr, gdb_byte *myaddr, ssize_t len)
Definition: target.c:1370
CORE_ADDR find_function_addr(struct value *function, struct type **retval_type)
Definition: infcall.c:250
void set_gdbarch_int_bit(struct gdbarch *gdbarch, int int_bit)
Definition: gdbarch.c:1589
struct minimal_symbol * minsym
Definition: minsyms.h:34
static int frv_register_sim_regno(struct gdbarch *gdbarch, int reg)
Definition: frv-tdep.c:359
constexpr gdb_byte frv_break_insn[]
Definition: frv-tdep.c:425
static void frv_pseudo_register_write(struct gdbarch *gdbarch, struct regcache *regcache, int reg, const gdb_byte *buffer)
Definition: frv-tdep.c:335
CORE_ADDR frv_fdpic_find_canonical_descriptor(CORE_ADDR entry_point)
Definition: solib-frv.c:955
static CORE_ADDR frv_unwind_pc(struct gdbarch *gdbarch, struct frame_info *next_frame)
Definition: frv-tdep.c:1370
int offset
Definition: agent.c:65
Definition: buffer.h:23
void set_gdbarch_num_pseudo_regs(struct gdbarch *gdbarch, int num_pseudo_regs)
Definition: gdbarch.c:2067
gdbarch * arch() const
Definition: regcache.c:221
static int is_argument_reg(int reg)
Definition: frv-tdep.c:497
CORE_ADDR pc
Definition: symtab.h:1759
static LONGEST extract_signed_integer(const gdb_byte *addr, int len, enum bfd_endian byte_order)
Definition: defs.h:570
struct target_so_ops frv_so_ops
Definition: solib-frv.c:1154
int num_fprs
Definition: frv-tdep.c:79
unsigned long long ULONGEST
Definition: common-types.h:53
int num_hw_breakpoints
Definition: frv-tdep.c:85
enum unwind_stop_reason default_frame_unwind_stop_reason(struct frame_info *this_frame, void **this_cache)
Definition: frame-unwind.c:184
static CORE_ADDR find_func_descr(struct gdbarch *gdbarch, CORE_ADDR entry_point)
Definition: frv-tdep.c:1145
struct value * value_allocate_space_in_inferior(int len)
Definition: valops.c:185
void set_gdbarch_long_double_bit(struct gdbarch *gdbarch, int long_double_bit)
Definition: gdbarch.c:1756
struct type * value_type(const struct value *value)
Definition: value.c:1095
struct type * builtin_int64
Definition: gdbtypes.h:1540
void set_gdbarch_long_bit(struct gdbarch *gdbarch, int long_bit)
Definition: gdbarch.c:1606
void set_gdbarch_return_value(struct gdbarch *gdbarch, gdbarch_return_value_ftype return_value)
Definition: gdbarch.c:2738
#define TYPE_LENGTH(thistype)
Definition: gdbtypes.h:1235
void set_gdbarch_ptr_bit(struct gdbarch *gdbarch, int ptr_bit)
Definition: gdbarch.c:1841
void set_gdbarch_push_dummy_call(struct gdbarch *gdbarch, gdbarch_push_dummy_call_ftype push_dummy_call)
Definition: gdbarch.c:2381
CORE_ADDR prev_sp
Definition: frv-tdep.c:46
static CORE_ADDR frv_skip_prologue(struct gdbarch *gdbarch, CORE_ADDR pc)
Definition: frv-tdep.c:977
CORE_ADDR get_pc_function_start(CORE_ADDR pc)
Definition: blockframe.c:86
static struct gdbarch * frv_gdbarch_init(struct gdbarch_info info, struct gdbarch_list *arches)
Definition: frv-tdep.c:1460
void set_gdbarch_sw_breakpoint_from_kind(struct gdbarch *gdbarch, gdbarch_sw_breakpoint_from_kind_ftype sw_breakpoint_from_kind)
Definition: gdbarch.c:2888
void register_gdbarch_init(enum bfd_architecture bfd_architecture, gdbarch_init_ftype *init)
Definition: gdbarch.c:5299
void write_memory(CORE_ADDR memaddr, const bfd_byte *myaddr, ssize_t len)
Definition: corefile.c:394
void set_gdbarch_skip_prologue(struct gdbarch *gdbarch, gdbarch_skip_prologue_ftype skip_prologue)
Definition: gdbarch.c:2772
CORE_ADDR value_address(const struct value *value)
Definition: value.c:1529
struct bound_minimal_symbol lookup_minimal_symbol(const char *name, const char *sfile, struct objfile *objf)
Definition: minsyms.c:311
enum bfd_endian byte_order
Definition: gdbarch.c:137
void set_gdbarch_pc_regnum(struct gdbarch *gdbarch, int pc_regnum)
Definition: gdbarch.c:2173
static struct frame_id frv_dummy_id(struct gdbarch *gdbarch, struct frame_info *this_frame)
Definition: frv-tdep.c:1453
void set_gdbarch_register_name(struct gdbarch *gdbarch, gdbarch_register_name_ftype register_name)
Definition: gdbarch.c:2292
CORE_ADDR get_frame_func(struct frame_info *this_frame)
Definition: frame.c:1001
static CORE_ADDR frv_skip_main_prologue(struct gdbarch *gdbarch, CORE_ADDR pc)
Definition: frv-tdep.c:1013
struct gdbarch * gdbarch_alloc(const struct gdbarch_info *info, struct gdbarch_tdep *tdep)
Definition: gdbarch.c:361
void set_gdbarch_inner_than(struct gdbarch *gdbarch, gdbarch_inner_than_ftype inner_than)
Definition: gdbarch.c:2837
struct gdbarch * get_frame_arch(struct frame_info *this_frame)
Definition: frame.c:2691
long long LONGEST
Definition: common-types.h:52
void regcache_cooked_write(struct regcache *regcache, int regnum, const gdb_byte *buf)
Definition: regcache.c:873
struct type * builtin_float
Definition: gdbtypes.h:1510
static void store_unsigned_integer(gdb_byte *addr, int len, enum bfd_endian byte_order, ULONGEST val)
Definition: defs.h:604
void regcache_raw_write(struct regcache *regcache, int regnum, const gdb_byte *buf)
Definition: regcache.c:831