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/tmp/gdb-8.1/gdb/m32c-tdep.c
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1 /* Renesas M32C target-dependent code for GDB, the GNU debugger.
2 
3  Copyright (C) 2004-2018 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 "elf-bfd.h"
22 #include "elf/m32c.h"
23 #include "gdb/sim-m32c.h"
24 #include "dis-asm.h"
25 #include "gdbtypes.h"
26 #include "regcache.h"
27 #include "arch-utils.h"
28 #include "frame.h"
29 #include "frame-unwind.h"
30 #include "dwarf2-frame.h"
31 #include "dwarf2expr.h"
32 #include "symtab.h"
33 #include "gdbcore.h"
34 #include "value.h"
35 #include "reggroups.h"
36 #include "prologue-value.h"
37 #include "target.h"
38 #include "objfiles.h"
39 
40 
41 /* The m32c tdep structure. */
42 
43 static struct reggroup *m32c_dma_reggroup;
44 
45 struct m32c_reg;
46 
47 /* The type of a function that moves the value of REG between CACHE or
48  BUF --- in either direction. */
49 typedef enum register_status (m32c_write_reg_t) (struct m32c_reg *reg,
50  struct regcache *cache,
51  const gdb_byte *buf);
52 
53 typedef enum register_status (m32c_read_reg_t) (struct m32c_reg *reg,
54  struct regcache *cache,
55  gdb_byte *buf);
56 
57 struct m32c_reg
58 {
59  /* The name of this register. */
60  const char *name;
61 
62  /* Its type. */
63  struct type *type;
64 
65  /* The architecture this register belongs to. */
66  struct gdbarch *arch;
67 
68  /* Its GDB register number. */
69  int num;
70 
71  /* Its sim register number. */
72  int sim_num;
73 
74  /* Its DWARF register number, or -1 if it doesn't have one. */
75  int dwarf_num;
76 
77  /* Register group memberships. */
78  unsigned int general_p : 1;
79  unsigned int dma_p : 1;
80  unsigned int system_p : 1;
81  unsigned int save_restore_p : 1;
82 
83  /* Functions to read its value from a regcache, and write its value
84  to a regcache. */
87 
88  /* Data for READ and WRITE functions. The exact meaning depends on
89  the specific functions selected; see the comments for those
90  functions. */
91  struct m32c_reg *rx, *ry;
92  int n;
93 };
94 
95 
96 /* An overestimate of the number of raw and pseudoregisters we will
97  have. The exact answer depends on the variant of the architecture
98  at hand, but we can use this to declare statically allocated
99  arrays, and bump it up when needed. */
100 #define M32C_MAX_NUM_REGS (75)
101 
102 /* The largest assigned DWARF register number. */
103 #define M32C_MAX_DWARF_REGNUM (40)
104 
105 
106 struct gdbarch_tdep
107 {
108  /* All the registers for this variant, indexed by GDB register
109  number, and the number of registers present. */
111 
112  /* The number of valid registers. */
113  int num_regs;
114 
115  /* Interesting registers. These are pointers into REGS. */
116  struct m32c_reg *pc, *flg;
117  struct m32c_reg *r0, *r1, *r2, *r3, *a0, *a1;
119  struct m32c_reg *sb, *fb, *sp;
120 
121  /* A table indexed by DWARF register numbers, pointing into
122  REGS. */
124 
125  /* Types for this architecture. We can't use the builtin_type_foo
126  types, because they're not initialized when building a gdbarch
127  structure. */
129  struct type *uint8, *uint16;
130  struct type *int8, *int16, *int32, *int64;
131 
132  /* The types for data address and code address registers. */
134 
135  /* The number of bytes a return address pushed by a 'jsr' instruction
136  occupies on the stack. */
138 
139  /* The number of bytes an address register occupies on the stack
140  when saved by an 'enter' or 'pushm' instruction. */
142 };
143 
144 
145 /* Types. */
146 
147 static void
148 make_types (struct gdbarch *arch)
149 {
150  struct gdbarch_tdep *tdep = gdbarch_tdep (arch);
151  unsigned long mach = gdbarch_bfd_arch_info (arch)->mach;
152  int data_addr_reg_bits, code_addr_reg_bits;
153  char type_name[50];
154 
155 #if 0
156  /* This is used to clip CORE_ADDR values, so this value is
157  appropriate both on the m32c, where pointers are 32 bits long,
158  and on the m16c, where pointers are sixteen bits long, but there
159  may be code above the 64k boundary. */
160  set_gdbarch_addr_bit (arch, 24);
161 #else
162  /* GCC uses 32 bits for addrs in the dwarf info, even though
163  only 16/24 bits are used. Setting addr_bit to 24 causes
164  errors in reading the dwarf addresses. */
165  set_gdbarch_addr_bit (arch, 32);
166 #endif
167 
168  set_gdbarch_int_bit (arch, 16);
169  switch (mach)
170  {
171  case bfd_mach_m16c:
172  data_addr_reg_bits = 16;
173  code_addr_reg_bits = 24;
174  set_gdbarch_ptr_bit (arch, 16);
175  tdep->ret_addr_bytes = 3;
176  tdep->push_addr_bytes = 2;
177  break;
178 
179  case bfd_mach_m32c:
180  data_addr_reg_bits = 24;
181  code_addr_reg_bits = 24;
182  set_gdbarch_ptr_bit (arch, 32);
183  tdep->ret_addr_bytes = 4;
184  tdep->push_addr_bytes = 4;
185  break;
186 
187  default:
188  gdb_assert_not_reached ("unexpected mach");
189  }
190 
191  /* The builtin_type_mumble variables are sometimes uninitialized when
192  this is called, so we avoid using them. */
193  tdep->voyd = arch_type (arch, TYPE_CODE_VOID, TARGET_CHAR_BIT, "void");
194  tdep->ptr_voyd
195  = arch_pointer_type (arch, gdbarch_ptr_bit (arch), NULL, tdep->voyd);
196  tdep->func_voyd = lookup_function_type (tdep->voyd);
197 
198  xsnprintf (type_name, sizeof (type_name), "%s_data_addr_t",
199  gdbarch_bfd_arch_info (arch)->printable_name);
200  tdep->data_addr_reg_type
201  = arch_pointer_type (arch, data_addr_reg_bits, type_name, tdep->voyd);
202 
203  xsnprintf (type_name, sizeof (type_name), "%s_code_addr_t",
204  gdbarch_bfd_arch_info (arch)->printable_name);
205  tdep->code_addr_reg_type
206  = arch_pointer_type (arch, code_addr_reg_bits, type_name, tdep->func_voyd);
207 
208  tdep->uint8 = arch_integer_type (arch, 8, 1, "uint8_t");
209  tdep->uint16 = arch_integer_type (arch, 16, 1, "uint16_t");
210  tdep->int8 = arch_integer_type (arch, 8, 0, "int8_t");
211  tdep->int16 = arch_integer_type (arch, 16, 0, "int16_t");
212  tdep->int32 = arch_integer_type (arch, 32, 0, "int32_t");
213  tdep->int64 = arch_integer_type (arch, 64, 0, "int64_t");
214 }
215 
216 
217 
218 /* Register set. */
219 
220 static const char *
222 {
223  return gdbarch_tdep (gdbarch)->regs[num].name;
224 }
225 
226 
227 static struct type *
228 m32c_register_type (struct gdbarch *arch, int reg_nr)
229 {
230  return gdbarch_tdep (arch)->regs[reg_nr].type;
231 }
232 
233 
234 static int
236 {
237  return gdbarch_tdep (gdbarch)->regs[reg_nr].sim_num;
238 }
239 
240 
241 static int
243 {
244  struct gdbarch_tdep *tdep = gdbarch_tdep (gdbarch);
245  if (0 <= reg_nr && reg_nr <= M32C_MAX_DWARF_REGNUM
246  && tdep->dwarf_regs[reg_nr])
247  return tdep->dwarf_regs[reg_nr]->num;
248  else
249  /* The DWARF CFI code expects to see -1 for invalid register
250  numbers. */
251  return -1;
252 }
253 
254 
255 static int
257  struct reggroup *group)
258 {
259  struct gdbarch_tdep *tdep = gdbarch_tdep (gdbarch);
260  struct m32c_reg *reg = &tdep->regs[regnum];
261 
262  /* The anonymous raw registers aren't in any groups. */
263  if (! reg->name)
264  return 0;
265 
266  if (group == all_reggroup)
267  return 1;
268 
269  if (group == general_reggroup
270  && reg->general_p)
271  return 1;
272 
273  if (group == m32c_dma_reggroup
274  && reg->dma_p)
275  return 1;
276 
277  if (group == system_reggroup
278  && reg->system_p)
279  return 1;
280 
281  /* Since the m32c DWARF register numbers refer to cooked registers, not
282  raw registers, and frame_pop depends on the save and restore groups
283  containing registers the DWARF CFI will actually mention, our save
284  and restore groups are cooked registers, not raw registers. (This is
285  why we can't use the default reggroup function.) */
286  if ((group == save_reggroup
287  || group == restore_reggroup)
288  && reg->save_restore_p)
289  return 1;
290 
291  return 0;
292 }
293 
294 
295 /* Register move functions. We declare them here using
296  m32c_{read,write}_reg_t to check the types. */
303 
310 
311 /* Copy the value of the raw register REG from CACHE to BUF. */
312 static enum register_status
313 m32c_raw_read (struct m32c_reg *reg, struct regcache *cache, gdb_byte *buf)
314 {
315  return regcache_raw_read (cache, reg->num, buf);
316 }
317 
318 
319 /* Copy the value of the raw register REG from BUF to CACHE. */
320 static enum register_status
321 m32c_raw_write (struct m32c_reg *reg, struct regcache *cache,
322  const gdb_byte *buf)
323 {
324  regcache_raw_write (cache, reg->num, buf);
325 
326  return REG_VALID;
327 }
328 
329 
330 /* Return the value of the 'flg' register in CACHE. */
331 static int
332 m32c_read_flg (struct regcache *cache)
333 {
334  struct gdbarch_tdep *tdep = gdbarch_tdep (cache->arch ());
335  ULONGEST flg;
336  regcache_raw_read_unsigned (cache, tdep->flg->num, &flg);
337  return flg & 0xffff;
338 }
339 
340 
341 /* Evaluate the real register number of a banked register. */
342 static struct m32c_reg *
343 m32c_banked_register (struct m32c_reg *reg, struct regcache *cache)
344 {
345  return ((m32c_read_flg (cache) & reg->n) ? reg->ry : reg->rx);
346 }
347 
348 
349 /* Move the value of a banked register from CACHE to BUF.
350  If the value of the 'flg' register in CACHE has any of the bits
351  masked in REG->n set, then read REG->ry. Otherwise, read
352  REG->rx. */
353 static enum register_status
354 m32c_banked_read (struct m32c_reg *reg, struct regcache *cache, gdb_byte *buf)
355 {
356  struct m32c_reg *bank_reg = m32c_banked_register (reg, cache);
357  return regcache_raw_read (cache, bank_reg->num, buf);
358 }
359 
360 
361 /* Move the value of a banked register from BUF to CACHE.
362  If the value of the 'flg' register in CACHE has any of the bits
363  masked in REG->n set, then write REG->ry. Otherwise, write
364  REG->rx. */
365 static enum register_status
366 m32c_banked_write (struct m32c_reg *reg, struct regcache *cache,
367  const gdb_byte *buf)
368 {
369  struct m32c_reg *bank_reg = m32c_banked_register (reg, cache);
370  regcache_raw_write (cache, bank_reg->num, buf);
371 
372  return REG_VALID;
373 }
374 
375 
376 /* Move the value of SB from CACHE to BUF. On bfd_mach_m32c, SB is a
377  banked register; on bfd_mach_m16c, it's not. */
378 static enum register_status
379 m32c_sb_read (struct m32c_reg *reg, struct regcache *cache, gdb_byte *buf)
380 {
381  if (gdbarch_bfd_arch_info (reg->arch)->mach == bfd_mach_m16c)
382  return m32c_raw_read (reg->rx, cache, buf);
383  else
384  return m32c_banked_read (reg, cache, buf);
385 }
386 
387 
388 /* Move the value of SB from BUF to CACHE. On bfd_mach_m32c, SB is a
389  banked register; on bfd_mach_m16c, it's not. */
390 static enum register_status
391 m32c_sb_write (struct m32c_reg *reg, struct regcache *cache, const gdb_byte *buf)
392 {
393  if (gdbarch_bfd_arch_info (reg->arch)->mach == bfd_mach_m16c)
394  m32c_raw_write (reg->rx, cache, buf);
395  else
396  m32c_banked_write (reg, cache, buf);
397 
398  return REG_VALID;
399 }
400 
401 
402 /* Assuming REG uses m32c_part_read and m32c_part_write, set *OFFSET_P
403  and *LEN_P to the offset and length, in bytes, of the part REG
404  occupies in its underlying register. The offset is from the
405  lower-addressed end, regardless of the architecture's endianness.
406  (The M32C family is always little-endian, but let's keep those
407  assumptions out of here.) */
408 static void
409 m32c_find_part (struct m32c_reg *reg, int *offset_p, int *len_p)
410 {
411  /* The length of the containing register, of which REG is one part. */
412  int containing_len = TYPE_LENGTH (reg->rx->type);
413 
414  /* The length of one "element" in our imaginary array. */
415  int elt_len = TYPE_LENGTH (reg->type);
416 
417  /* The offset of REG's "element" from the least significant end of
418  the containing register. */
419  int elt_offset = reg->n * elt_len;
420 
421  /* If we extend off the end, trim the length of the element. */
422  if (elt_offset + elt_len > containing_len)
423  {
424  elt_len = containing_len - elt_offset;
425  /* We shouldn't be declaring partial registers that go off the
426  end of their containing registers. */
427  gdb_assert (elt_len > 0);
428  }
429 
430  /* Flip the offset around if we're big-endian. */
431  if (gdbarch_byte_order (reg->arch) == BFD_ENDIAN_BIG)
432  elt_offset = TYPE_LENGTH (reg->rx->type) - elt_offset - elt_len;
433 
434  *offset_p = elt_offset;
435  *len_p = elt_len;
436 }
437 
438 
439 /* Move the value of a partial register (r0h, intbl, etc.) from CACHE
440  to BUF. Treating the value of the register REG->rx as an array of
441  REG->type values, where higher indices refer to more significant
442  bits, read the value of the REG->n'th element. */
443 static enum register_status
444 m32c_part_read (struct m32c_reg *reg, struct regcache *cache, gdb_byte *buf)
445 {
446  int offset, len;
447 
448  memset (buf, 0, TYPE_LENGTH (reg->type));
449  m32c_find_part (reg, &offset, &len);
450  return regcache_cooked_read_part (cache, reg->rx->num, offset, len, buf);
451 }
452 
453 
454 /* Move the value of a banked register from BUF to CACHE.
455  Treating the value of the register REG->rx as an array of REG->type
456  values, where higher indices refer to more significant bits, write
457  the value of the REG->n'th element. */
458 static enum register_status
459 m32c_part_write (struct m32c_reg *reg, struct regcache *cache,
460  const gdb_byte *buf)
461 {
462  int offset, len;
463 
464  m32c_find_part (reg, &offset, &len);
465  regcache_cooked_write_part (cache, reg->rx->num, offset, len, buf);
466 
467  return REG_VALID;
468 }
469 
470 
471 /* Move the value of REG from CACHE to BUF. REG's value is the
472  concatenation of the values of the registers REG->rx and REG->ry,
473  with REG->rx contributing the more significant bits. */
474 static enum register_status
475 m32c_cat_read (struct m32c_reg *reg, struct regcache *cache, gdb_byte *buf)
476 {
477  int high_bytes = TYPE_LENGTH (reg->rx->type);
478  int low_bytes = TYPE_LENGTH (reg->ry->type);
479  enum register_status status;
480 
481  gdb_assert (TYPE_LENGTH (reg->type) == high_bytes + low_bytes);
482 
483  if (gdbarch_byte_order (reg->arch) == BFD_ENDIAN_BIG)
484  {
485  status = regcache_cooked_read (cache, reg->rx->num, buf);
486  if (status == REG_VALID)
487  status = regcache_cooked_read (cache, reg->ry->num, buf + high_bytes);
488  }
489  else
490  {
491  status = regcache_cooked_read (cache, reg->rx->num, buf + low_bytes);
492  if (status == REG_VALID)
493  status = regcache_cooked_read (cache, reg->ry->num, buf);
494  }
495 
496  return status;
497 }
498 
499 
500 /* Move the value of REG from CACHE to BUF. REG's value is the
501  concatenation of the values of the registers REG->rx and REG->ry,
502  with REG->rx contributing the more significant bits. */
503 static enum register_status
504 m32c_cat_write (struct m32c_reg *reg, struct regcache *cache,
505  const gdb_byte *buf)
506 {
507  int high_bytes = TYPE_LENGTH (reg->rx->type);
508  int low_bytes = TYPE_LENGTH (reg->ry->type);
509 
510  gdb_assert (TYPE_LENGTH (reg->type) == high_bytes + low_bytes);
511 
512  if (gdbarch_byte_order (reg->arch) == BFD_ENDIAN_BIG)
513  {
514  regcache_cooked_write (cache, reg->rx->num, buf);
515  regcache_cooked_write (cache, reg->ry->num, buf + high_bytes);
516  }
517  else
518  {
519  regcache_cooked_write (cache, reg->rx->num, buf + low_bytes);
520  regcache_cooked_write (cache, reg->ry->num, buf);
521  }
522 
523  return REG_VALID;
524 }
525 
526 
527 /* Copy the value of the raw register REG from CACHE to BUF. REG is
528  the concatenation (from most significant to least) of r3, r2, r1,
529  and r0. */
530 static enum register_status
531 m32c_r3r2r1r0_read (struct m32c_reg *reg, struct regcache *cache, gdb_byte *buf)
532 {
533  struct gdbarch_tdep *tdep = gdbarch_tdep (reg->arch);
534  int len = TYPE_LENGTH (tdep->r0->type);
535  enum register_status status;
536 
537  if (gdbarch_byte_order (reg->arch) == BFD_ENDIAN_BIG)
538  {
539  status = regcache_cooked_read (cache, tdep->r0->num, buf + len * 3);
540  if (status == REG_VALID)
541  status = regcache_cooked_read (cache, tdep->r1->num, buf + len * 2);
542  if (status == REG_VALID)
543  status = regcache_cooked_read (cache, tdep->r2->num, buf + len * 1);
544  if (status == REG_VALID)
545  status = regcache_cooked_read (cache, tdep->r3->num, buf);
546  }
547  else
548  {
549  status = regcache_cooked_read (cache, tdep->r0->num, buf);
550  if (status == REG_VALID)
551  status = regcache_cooked_read (cache, tdep->r1->num, buf + len * 1);
552  if (status == REG_VALID)
553  status = regcache_cooked_read (cache, tdep->r2->num, buf + len * 2);
554  if (status == REG_VALID)
555  status = regcache_cooked_read (cache, tdep->r3->num, buf + len * 3);
556  }
557 
558  return status;
559 }
560 
561 
562 /* Copy the value of the raw register REG from BUF to CACHE. REG is
563  the concatenation (from most significant to least) of r3, r2, r1,
564  and r0. */
565 static enum register_status
566 m32c_r3r2r1r0_write (struct m32c_reg *reg, struct regcache *cache,
567  const gdb_byte *buf)
568 {
569  struct gdbarch_tdep *tdep = gdbarch_tdep (reg->arch);
570  int len = TYPE_LENGTH (tdep->r0->type);
571 
572  if (gdbarch_byte_order (reg->arch) == BFD_ENDIAN_BIG)
573  {
574  regcache_cooked_write (cache, tdep->r0->num, buf + len * 3);
575  regcache_cooked_write (cache, tdep->r1->num, buf + len * 2);
576  regcache_cooked_write (cache, tdep->r2->num, buf + len * 1);
577  regcache_cooked_write (cache, tdep->r3->num, buf);
578  }
579  else
580  {
581  regcache_cooked_write (cache, tdep->r0->num, buf);
582  regcache_cooked_write (cache, tdep->r1->num, buf + len * 1);
583  regcache_cooked_write (cache, tdep->r2->num, buf + len * 2);
584  regcache_cooked_write (cache, tdep->r3->num, buf + len * 3);
585  }
586 
587  return REG_VALID;
588 }
589 
590 
591 static enum register_status
593  struct regcache *cache,
594  int cookednum,
595  gdb_byte *buf)
596 {
597  struct gdbarch_tdep *tdep = gdbarch_tdep (arch);
598  struct m32c_reg *reg;
599 
600  gdb_assert (0 <= cookednum && cookednum < tdep->num_regs);
601  gdb_assert (arch == cache->arch ());
602  gdb_assert (arch == tdep->regs[cookednum].arch);
603  reg = &tdep->regs[cookednum];
604 
605  return reg->read (reg, cache, buf);
606 }
607 
608 
609 static void
611  struct regcache *cache,
612  int cookednum,
613  const gdb_byte *buf)
614 {
615  struct gdbarch_tdep *tdep = gdbarch_tdep (arch);
616  struct m32c_reg *reg;
617 
618  gdb_assert (0 <= cookednum && cookednum < tdep->num_regs);
619  gdb_assert (arch == cache->arch ());
620  gdb_assert (arch == tdep->regs[cookednum].arch);
621  reg = &tdep->regs[cookednum];
622 
623  reg->write (reg, cache, buf);
624 }
625 
626 
627 /* Add a register with the given fields to the end of ARCH's table.
628  Return a pointer to the newly added register. */
629 static struct m32c_reg *
631  const char *name,
632  struct type *type,
633  int sim_num,
636  struct m32c_reg *rx,
637  struct m32c_reg *ry,
638  int n)
639 {
640  struct gdbarch_tdep *tdep = gdbarch_tdep (arch);
641  struct m32c_reg *r = &tdep->regs[tdep->num_regs];
642 
644 
645  r->name = name;
646  r->type = type;
647  r->arch = arch;
648  r->num = tdep->num_regs;
649  r->sim_num = sim_num;
650  r->dwarf_num = -1;
651  r->general_p = 0;
652  r->dma_p = 0;
653  r->system_p = 0;
654  r->save_restore_p = 0;
655  r->read = read;
656  r->write = write;
657  r->rx = rx;
658  r->ry = ry;
659  r->n = n;
660 
661  tdep->num_regs++;
662 
663  return r;
664 }
665 
666 
667 /* Record NUM as REG's DWARF register number. */
668 static void
670 {
672 
673  /* Update the reg->DWARF mapping. Only count the first number
674  assigned to this register. */
675  if (reg->dwarf_num == -1)
676  reg->dwarf_num = num;
677 
678  /* Update the DWARF->reg mapping. */
679  gdbarch_tdep (reg->arch)->dwarf_regs[num] = reg;
680 }
681 
682 
683 /* Mark REG as a general-purpose register, and return it. */
684 static struct m32c_reg *
686 {
687  reg->general_p = 1;
688  return reg;
689 }
690 
691 
692 /* Mark REG as a DMA register, and return it. */
693 static struct m32c_reg *
695 {
696  reg->dma_p = 1;
697  return reg;
698 }
699 
700 
701 /* Mark REG as a SYSTEM register, and return it. */
702 static struct m32c_reg *
704 {
705  reg->system_p = 1;
706  return reg;
707 }
708 
709 
710 /* Mark REG as a save-restore register, and return it. */
711 static struct m32c_reg *
713 {
714  reg->save_restore_p = 1;
715  return reg;
716 }
717 
718 
719 #define FLAGBIT_B 0x0010
720 #define FLAGBIT_U 0x0080
721 
722 /* Handy macros for declaring registers. These all evaluate to
723  pointers to the register declared. Macros that define two
724  registers evaluate to a pointer to the first. */
725 
726 /* A raw register named NAME, with type TYPE and sim number SIM_NUM. */
727 #define R(name, type, sim_num) \
728  (add_reg (arch, (name), (type), (sim_num), \
729  m32c_raw_read, m32c_raw_write, NULL, NULL, 0))
730 
731 /* The simulator register number for a raw register named NAME. */
732 #define SIM(name) (m32c_sim_reg_ ## name)
733 
734 /* A raw unsigned 16-bit data register named NAME.
735  NAME should be an identifier, not a string. */
736 #define R16U(name) \
737  (R(#name, tdep->uint16, SIM (name)))
738 
739 /* A raw data address register named NAME.
740  NAME should be an identifier, not a string. */
741 #define RA(name) \
742  (R(#name, tdep->data_addr_reg_type, SIM (name)))
743 
744 /* A raw code address register named NAME. NAME should
745  be an identifier, not a string. */
746 #define RC(name) \
747  (R(#name, tdep->code_addr_reg_type, SIM (name)))
748 
749 /* A pair of raw registers named NAME0 and NAME1, with type TYPE.
750  NAME should be an identifier, not a string. */
751 #define RP(name, type) \
752  (R(#name "0", (type), SIM (name ## 0)), \
753  R(#name "1", (type), SIM (name ## 1)) - 1)
754 
755 /* A raw banked general-purpose data register named NAME.
756  NAME should be an identifier, not a string. */
757 #define RBD(name) \
758  (R(NULL, tdep->int16, SIM (name ## _bank0)), \
759  R(NULL, tdep->int16, SIM (name ## _bank1)) - 1)
760 
761 /* A raw banked data address register named NAME.
762  NAME should be an identifier, not a string. */
763 #define RBA(name) \
764  (R(NULL, tdep->data_addr_reg_type, SIM (name ## _bank0)), \
765  R(NULL, tdep->data_addr_reg_type, SIM (name ## _bank1)) - 1)
766 
767 /* A cooked register named NAME referring to a raw banked register
768  from the bank selected by the current value of FLG. RAW_PAIR
769  should be a pointer to the first register in the banked pair.
770  NAME must be an identifier, not a string. */
771 #define CB(name, raw_pair) \
772  (add_reg (arch, #name, (raw_pair)->type, 0, \
773  m32c_banked_read, m32c_banked_write, \
774  (raw_pair), (raw_pair + 1), FLAGBIT_B))
775 
776 /* A pair of registers named NAMEH and NAMEL, of type TYPE, that
777  access the top and bottom halves of the register pointed to by
778  NAME. NAME should be an identifier. */
779 #define CHL(name, type) \
780  (add_reg (arch, #name "h", (type), 0, \
781  m32c_part_read, m32c_part_write, name, NULL, 1), \
782  add_reg (arch, #name "l", (type), 0, \
783  m32c_part_read, m32c_part_write, name, NULL, 0) - 1)
784 
785 /* A register constructed by concatenating the two registers HIGH and
786  LOW, whose name is HIGHLOW and whose type is TYPE. */
787 #define CCAT(high, low, type) \
788  (add_reg (arch, #high #low, (type), 0, \
789  m32c_cat_read, m32c_cat_write, (high), (low), 0))
790 
791 /* Abbreviations for marking register group membership. */
792 #define G(reg) (mark_general (reg))
793 #define S(reg) (mark_system (reg))
794 #define DMA(reg) (mark_dma (reg))
795 
796 
797 /* Construct the register set for ARCH. */
798 static void
800 {
801  struct gdbarch_tdep *tdep = gdbarch_tdep (arch);
802  int mach = gdbarch_bfd_arch_info (arch)->mach;
803  int num_raw_regs;
804  int num_cooked_regs;
805 
806  struct m32c_reg *r0;
807  struct m32c_reg *r1;
808  struct m32c_reg *r2;
809  struct m32c_reg *r3;
810  struct m32c_reg *a0;
811  struct m32c_reg *a1;
812  struct m32c_reg *fb;
813  struct m32c_reg *sb;
814  struct m32c_reg *sp;
815  struct m32c_reg *r0hl;
816  struct m32c_reg *r1hl;
817  struct m32c_reg *r2r0;
818  struct m32c_reg *r3r1;
819  struct m32c_reg *r3r1r2r0;
820  struct m32c_reg *r3r2r1r0;
821  struct m32c_reg *a1a0;
822 
823  struct m32c_reg *raw_r0_pair = RBD (r0);
824  struct m32c_reg *raw_r1_pair = RBD (r1);
825  struct m32c_reg *raw_r2_pair = RBD (r2);
826  struct m32c_reg *raw_r3_pair = RBD (r3);
827  struct m32c_reg *raw_a0_pair = RBA (a0);
828  struct m32c_reg *raw_a1_pair = RBA (a1);
829  struct m32c_reg *raw_fb_pair = RBA (fb);
830 
831  /* sb is banked on the bfd_mach_m32c, but not on bfd_mach_m16c.
832  We always declare both raw registers, and deal with the distinction
833  in the pseudoregister. */
834  struct m32c_reg *raw_sb_pair = RBA (sb);
835 
836  struct m32c_reg *usp = S (RA (usp));
837  struct m32c_reg *isp = S (RA (isp));
838  struct m32c_reg *intb = S (RC (intb));
839  struct m32c_reg *pc = G (RC (pc));
840  struct m32c_reg *flg = G (R16U (flg));
841 
842  if (mach == bfd_mach_m32c)
843  {
844  struct m32c_reg *svf = S (R16U (svf));
845  struct m32c_reg *svp = S (RC (svp));
846  struct m32c_reg *vct = S (RC (vct));
847 
848  struct m32c_reg *dmd01 = DMA (RP (dmd, tdep->uint8));
849  struct m32c_reg *dct01 = DMA (RP (dct, tdep->uint16));
850  struct m32c_reg *drc01 = DMA (RP (drc, tdep->uint16));
851  struct m32c_reg *dma01 = DMA (RP (dma, tdep->data_addr_reg_type));
852  struct m32c_reg *dsa01 = DMA (RP (dsa, tdep->data_addr_reg_type));
853  struct m32c_reg *dra01 = DMA (RP (dra, tdep->data_addr_reg_type));
854  }
855 
856  num_raw_regs = tdep->num_regs;
857 
858  r0 = G (CB (r0, raw_r0_pair));
859  r1 = G (CB (r1, raw_r1_pair));
860  r2 = G (CB (r2, raw_r2_pair));
861  r3 = G (CB (r3, raw_r3_pair));
862  a0 = G (CB (a0, raw_a0_pair));
863  a1 = G (CB (a1, raw_a1_pair));
864  fb = G (CB (fb, raw_fb_pair));
865 
866  /* sb is banked on the bfd_mach_m32c, but not on bfd_mach_m16c.
867  Specify custom read/write functions that do the right thing. */
868  sb = G (add_reg (arch, "sb", raw_sb_pair->type, 0,
870  raw_sb_pair, raw_sb_pair + 1, 0));
871 
872  /* The current sp is either usp or isp, depending on the value of
873  the FLG register's U bit. */
874  sp = G (add_reg (arch, "sp", usp->type, 0,
876  isp, usp, FLAGBIT_U));
877 
878  r0hl = CHL (r0, tdep->int8);
879  r1hl = CHL (r1, tdep->int8);
880  CHL (r2, tdep->int8);
881  CHL (r3, tdep->int8);
882  CHL (intb, tdep->int16);
883 
884  r2r0 = CCAT (r2, r0, tdep->int32);
885  r3r1 = CCAT (r3, r1, tdep->int32);
886  r3r1r2r0 = CCAT (r3r1, r2r0, tdep->int64);
887 
888  r3r2r1r0
889  = add_reg (arch, "r3r2r1r0", tdep->int64, 0,
890  m32c_r3r2r1r0_read, m32c_r3r2r1r0_write, NULL, NULL, 0);
891 
892  if (mach == bfd_mach_m16c)
893  a1a0 = CCAT (a1, a0, tdep->int32);
894  else
895  a1a0 = NULL;
896 
897  num_cooked_regs = tdep->num_regs - num_raw_regs;
898 
899  tdep->pc = pc;
900  tdep->flg = flg;
901  tdep->r0 = r0;
902  tdep->r1 = r1;
903  tdep->r2 = r2;
904  tdep->r3 = r3;
905  tdep->r2r0 = r2r0;
906  tdep->r3r2r1r0 = r3r2r1r0;
907  tdep->r3r1r2r0 = r3r1r2r0;
908  tdep->a0 = a0;
909  tdep->a1 = a1;
910  tdep->sb = sb;
911  tdep->fb = fb;
912  tdep->sp = sp;
913 
914  /* Set up the DWARF register table. */
915  memset (tdep->dwarf_regs, 0, sizeof (tdep->dwarf_regs));
916  set_dwarf_regnum (r0hl + 1, 0x01);
917  set_dwarf_regnum (r0hl + 0, 0x02);
918  set_dwarf_regnum (r1hl + 1, 0x03);
919  set_dwarf_regnum (r1hl + 0, 0x04);
920  set_dwarf_regnum (r0, 0x05);
921  set_dwarf_regnum (r1, 0x06);
922  set_dwarf_regnum (r2, 0x07);
923  set_dwarf_regnum (r3, 0x08);
924  set_dwarf_regnum (a0, 0x09);
925  set_dwarf_regnum (a1, 0x0a);
926  set_dwarf_regnum (fb, 0x0b);
927  set_dwarf_regnum (sp, 0x0c);
928  set_dwarf_regnum (pc, 0x0d); /* GCC's invention */
929  set_dwarf_regnum (sb, 0x13);
930  set_dwarf_regnum (r2r0, 0x15);
931  set_dwarf_regnum (r3r1, 0x16);
932  if (a1a0)
933  set_dwarf_regnum (a1a0, 0x17);
934 
935  /* Enumerate the save/restore register group.
936 
937  The regcache_save and regcache_restore functions apply their read
938  function to each register in this group.
939 
940  Since frame_pop supplies frame_unwind_register as its read
941  function, the registers meaningful to the Dwarf unwinder need to
942  be in this group.
943 
944  On the other hand, when we make inferior calls, save_inferior_status
945  and restore_inferior_status use them to preserve the current register
946  values across the inferior call. For this, you'd kind of like to
947  preserve all the raw registers, to protect the interrupted code from
948  any sort of bank switching the callee might have done. But we handle
949  those cases so badly anyway --- for example, it matters whether we
950  restore FLG before or after we restore the general-purpose registers,
951  but there's no way to express that --- that it isn't worth worrying
952  about.
953 
954  We omit control registers like inthl: if you call a function that
955  changes those, it's probably because you wanted that change to be
956  visible to the interrupted code. */
957  mark_save_restore (r0);
958  mark_save_restore (r1);
959  mark_save_restore (r2);
960  mark_save_restore (r3);
961  mark_save_restore (a0);
962  mark_save_restore (a1);
963  mark_save_restore (sb);
964  mark_save_restore (fb);
965  mark_save_restore (sp);
966  mark_save_restore (pc);
967  mark_save_restore (flg);
968 
969  set_gdbarch_num_regs (arch, num_raw_regs);
970  set_gdbarch_num_pseudo_regs (arch, num_cooked_regs);
981 
988 }
989 
990 
991 
992 /* Breakpoints. */
993 constexpr gdb_byte m32c_break_insn[] = { 0x00 }; /* brk */
994 
995 typedef BP_MANIPULATION (m32c_break_insn) m32c_breakpoint;
996 
997 
998 /* Prologue analysis. */
999 
1000 enum m32c_prologue_kind
1001 {
1002  /* This function uses a frame pointer. */
1003  prologue_with_frame_ptr,
1004 
1005  /* This function has no frame pointer. */
1006  prologue_sans_frame_ptr,
1007 
1008  /* This function sets up the stack, so its frame is the first
1009  frame on the stack. */
1010  prologue_first_frame
1011 };
1012 
1014 {
1015  /* For consistency with the DWARF 2 .debug_frame info generated by
1016  GCC, a frame's CFA is the address immediately after the saved
1017  return address. */
1018 
1019  /* The architecture for which we generated this prologue info. */
1020  struct gdbarch *arch;
1021 
1022  enum m32c_prologue_kind kind;
1023 
1024  /* If KIND is prologue_with_frame_ptr, this is the offset from the
1025  CFA to where the frame pointer points. This is always zero or
1026  negative. */
1028 
1029  /* If KIND is prologue_sans_frame_ptr, the offset from the CFA to
1030  the stack pointer --- always zero or negative.
1031 
1032  Calling this a "size" is a bit misleading, but given that the
1033  stack grows downwards, using offsets for everything keeps one
1034  from going completely sign-crazy: you never change anything's
1035  sign for an ADD instruction; always change the second operand's
1036  sign for a SUB instruction; and everything takes care of
1037  itself.
1038 
1039  Functions that use alloca don't have a constant frame size. But
1040  they always have frame pointers, so we must use that to find the
1041  CFA (and perhaps to unwind the stack pointer). */
1043 
1044  /* The address of the first instruction at which the frame has been
1045  set up and the arguments are where the debug info says they are
1046  --- as best as we can tell. */
1048 
1049  /* reg_offset[R] is the offset from the CFA at which register R is
1050  saved, or 1 if register R has not been saved. (Real values are
1051  always zero or negative.) */
1053 };
1054 
1055 
1056 /* The longest I've seen, anyway. */
1057 #define M32C_MAX_INSN_LEN (9)
1058 
1059 /* Processor state, for the prologue analyzer. */
1061 {
1062  struct gdbarch *arch;
1067  struct pv_area *stack;
1068 
1069  /* Bytes from the current PC, the address they were read from,
1070  and the address of the next unconsumed byte. */
1073 };
1074 
1075 
1076 /* Push VALUE on STATE's stack, occupying SIZE bytes. Return zero if
1077  all went well, or non-zero if simulating the action would trash our
1078  state. */
1079 static int
1081 {
1082  if (state->stack->store_would_trash (state->sp))
1083  return 1;
1084 
1085  state->sp = pv_add_constant (state->sp, -size);
1086  state->stack->store (state->sp, size, value);
1087 
1088  return 0;
1089 }
1090 
1091 
1093 {
1097 };
1098 
1099 /* A source or destination location for an m16c or m32c
1100  instruction. */
1101 struct srcdest
1102 {
1103  /* If srcdest_reg, the location is a register pointed to by REG.
1104  If srcdest_partial_reg, the location is part of a register pointed
1105  to by REG. We don't try to handle this too well.
1106  If srcdest_mem, the location is memory whose address is ADDR. */
1109 };
1110 
1111 
1112 /* Return the SIZE-byte value at LOC in STATE. */
1113 static pv_t
1114 m32c_srcdest_fetch (struct m32c_pv_state *state, struct srcdest loc, int size)
1115 {
1116  if (loc.kind == srcdest_mem)
1117  return state->stack->fetch (loc.addr, size);
1118  else if (loc.kind == srcdest_partial_reg)
1119  return pv_unknown ();
1120  else
1121  return *loc.reg;
1122 }
1123 
1124 
1125 /* Write VALUE, a SIZE-byte value, to LOC in STATE. Return zero if
1126  all went well, or non-zero if simulating the store would trash our
1127  state. */
1128 static int
1129 m32c_srcdest_store (struct m32c_pv_state *state, struct srcdest loc,
1130  pv_t value, int size)
1131 {
1132  if (loc.kind == srcdest_mem)
1133  {
1134  if (state->stack->store_would_trash (loc.addr))
1135  return 1;
1136  state->stack->store (loc.addr, size, value);
1137  }
1138  else if (loc.kind == srcdest_partial_reg)
1139  *loc.reg = pv_unknown ();
1140  else
1141  *loc.reg = value;
1142 
1143  return 0;
1144 }
1145 
1146 
1147 static int
1148 m32c_sign_ext (int v, int bits)
1149 {
1150  int mask = 1 << (bits - 1);
1151  return (v ^ mask) - mask;
1152 }
1153 
1154 static unsigned int
1156 {
1157  gdb_assert (st->next_addr - st->scan_pc < sizeof (st->insn));
1158  return st->insn[st->next_addr++ - st->scan_pc];
1159 }
1160 
1161 static int
1163 {
1164  return m32c_next_byte (st);
1165 }
1166 
1167 
1168 static int
1170 {
1171  return m32c_sign_ext (m32c_next_byte (st), 8);
1172 }
1173 
1174 
1175 static int
1177 {
1178  int low = m32c_next_byte (st);
1179  int high = m32c_next_byte (st);
1180 
1181  return low + (high << 8);
1182 }
1183 
1184 
1185 static int
1187 {
1188  int low = m32c_next_byte (st);
1189  int high = m32c_next_byte (st);
1190 
1191  return m32c_sign_ext (low + (high << 8), 16);
1192 }
1193 
1194 
1195 static int
1197 {
1198  int low = m32c_next_byte (st);
1199  int mid = m32c_next_byte (st);
1200  int high = m32c_next_byte (st);
1201 
1202  return low + (mid << 8) + (high << 16);
1203 }
1204 
1205 
1206 /* Extract the 'source' field from an m32c MOV.size:G-format instruction. */
1207 static int
1208 m32c_get_src23 (unsigned char *i)
1209 {
1210  return (((i[0] & 0x70) >> 2)
1211  | ((i[1] & 0x30) >> 4));
1212 }
1213 
1214 
1215 /* Extract the 'dest' field from an m32c MOV.size:G-format instruction. */
1216 static int
1217 m32c_get_dest23 (unsigned char *i)
1218 {
1219  return (((i[0] & 0x0e) << 1)
1220  | ((i[1] & 0xc0) >> 6));
1221 }
1222 
1223 
1224 static struct srcdest
1226  int code, int size)
1227 {
1228  struct srcdest sd;
1229 
1230  if (code < 6)
1231  sd.kind = (size == 2 ? srcdest_reg : srcdest_partial_reg);
1232  else
1233  sd.kind = srcdest_mem;
1234 
1235  sd.addr = pv_unknown ();
1236  sd.reg = 0;
1237 
1238  switch (code)
1239  {
1240  case 0x0: sd.reg = (size == 1 ? &st->r0 : &st->r0); break;
1241  case 0x1: sd.reg = (size == 1 ? &st->r0 : &st->r1); break;
1242  case 0x2: sd.reg = (size == 1 ? &st->r1 : &st->r2); break;
1243  case 0x3: sd.reg = (size == 1 ? &st->r1 : &st->r3); break;
1244 
1245  case 0x4: sd.reg = &st->a0; break;
1246  case 0x5: sd.reg = &st->a1; break;
1247 
1248  case 0x6: sd.addr = st->a0; break;
1249  case 0x7: sd.addr = st->a1; break;
1250 
1251  case 0x8: sd.addr = pv_add_constant (st->a0, m32c_udisp8 (st)); break;
1252  case 0x9: sd.addr = pv_add_constant (st->a1, m32c_udisp8 (st)); break;
1253  case 0xa: sd.addr = pv_add_constant (st->sb, m32c_udisp8 (st)); break;
1254  case 0xb: sd.addr = pv_add_constant (st->fb, m32c_sdisp8 (st)); break;
1255 
1256  case 0xc: sd.addr = pv_add_constant (st->a0, m32c_udisp16 (st)); break;
1257  case 0xd: sd.addr = pv_add_constant (st->a1, m32c_udisp16 (st)); break;
1258  case 0xe: sd.addr = pv_add_constant (st->sb, m32c_udisp16 (st)); break;
1259  case 0xf: sd.addr = pv_constant (m32c_udisp16 (st)); break;
1260 
1261  default:
1262  gdb_assert_not_reached ("unexpected srcdest4");
1263  }
1264 
1265  return sd;
1266 }
1267 
1268 
1269 static struct srcdest
1270 m32c_decode_sd23 (struct m32c_pv_state *st, int code, int size, int ind)
1271 {
1272  struct srcdest sd;
1273 
1274  sd.addr = pv_unknown ();
1275  sd.reg = 0;
1276 
1277  switch (code)
1278  {
1279  case 0x12:
1280  case 0x13:
1281  case 0x10:
1282  case 0x11:
1283  sd.kind = (size == 1) ? srcdest_partial_reg : srcdest_reg;
1284  break;
1285 
1286  case 0x02:
1287  case 0x03:
1288  sd.kind = (size == 4) ? srcdest_reg : srcdest_partial_reg;
1289  break;
1290 
1291  default:
1292  sd.kind = srcdest_mem;
1293  break;
1294 
1295  }
1296 
1297  switch (code)
1298  {
1299  case 0x12: sd.reg = &st->r0; break;
1300  case 0x13: sd.reg = &st->r1; break;
1301  case 0x10: sd.reg = ((size == 1) ? &st->r0 : &st->r2); break;
1302  case 0x11: sd.reg = ((size == 1) ? &st->r1 : &st->r3); break;
1303  case 0x02: sd.reg = &st->a0; break;
1304  case 0x03: sd.reg = &st->a1; break;
1305 
1306  case 0x00: sd.addr = st->a0; break;
1307  case 0x01: sd.addr = st->a1; break;
1308  case 0x04: sd.addr = pv_add_constant (st->a0, m32c_udisp8 (st)); break;
1309  case 0x05: sd.addr = pv_add_constant (st->a1, m32c_udisp8 (st)); break;
1310  case 0x06: sd.addr = pv_add_constant (st->sb, m32c_udisp8 (st)); break;
1311  case 0x07: sd.addr = pv_add_constant (st->fb, m32c_sdisp8 (st)); break;
1312  case 0x08: sd.addr = pv_add_constant (st->a0, m32c_udisp16 (st)); break;
1313  case 0x09: sd.addr = pv_add_constant (st->a1, m32c_udisp16 (st)); break;
1314  case 0x0a: sd.addr = pv_add_constant (st->sb, m32c_udisp16 (st)); break;
1315  case 0x0b: sd.addr = pv_add_constant (st->fb, m32c_sdisp16 (st)); break;
1316  case 0x0c: sd.addr = pv_add_constant (st->a0, m32c_udisp24 (st)); break;
1317  case 0x0d: sd.addr = pv_add_constant (st->a1, m32c_udisp24 (st)); break;
1318  case 0x0f: sd.addr = pv_constant (m32c_udisp16 (st)); break;
1319  case 0x0e: sd.addr = pv_constant (m32c_udisp24 (st)); break;
1320  default:
1321  gdb_assert_not_reached ("unexpected sd23");
1322  }
1323 
1324  if (ind)
1325  {
1326  sd.addr = m32c_srcdest_fetch (st, sd, 4);
1327  sd.kind = srcdest_mem;
1328  }
1329 
1330  return sd;
1331 }
1332 
1333 
1334 /* The r16c and r32c machines have instructions with similar
1335  semantics, but completely different machine language encodings. So
1336  we break out the semantics into their own functions, and leave
1337  machine-specific decoding in m32c_analyze_prologue.
1338 
1339  The following functions all expect their arguments already decoded,
1340  and they all return zero if analysis should continue past this
1341  instruction, or non-zero if analysis should stop. */
1342 
1343 
1344 /* Simulate an 'enter SIZE' instruction in STATE. */
1345 static int
1346 m32c_pv_enter (struct m32c_pv_state *state, int size)
1347 {
1348  struct gdbarch_tdep *tdep = gdbarch_tdep (state->arch);
1349 
1350  /* If simulating this store would require us to forget
1351  everything we know about the stack frame in the name of
1352  accuracy, it would be better to just quit now. */
1353  if (state->stack->store_would_trash (state->sp))
1354  return 1;
1355 
1356  if (m32c_pv_push (state, state->fb, tdep->push_addr_bytes))
1357  return 1;
1358  state->fb = state->sp;
1359  state->sp = pv_add_constant (state->sp, -size);
1360 
1361  return 0;
1362 }
1363 
1364 
1365 static int
1367  int bit, int src, int size)
1368 {
1369  if (bit & src)
1370  {
1371  if (m32c_pv_push (state, reg, size))
1372  return 1;
1373  }
1374 
1375  return 0;
1376 }
1377 
1378 
1379 /* Simulate a 'pushm SRC' instruction in STATE. */
1380 static int
1381 m32c_pv_pushm (struct m32c_pv_state *state, int src)
1382 {
1383  struct gdbarch_tdep *tdep = gdbarch_tdep (state->arch);
1384 
1385  /* The bits in SRC indicating which registers to save are:
1386  r0 r1 r2 r3 a0 a1 sb fb */
1387  return
1388  ( m32c_pv_pushm_one (state, state->fb, 0x01, src, tdep->push_addr_bytes)
1389  || m32c_pv_pushm_one (state, state->sb, 0x02, src, tdep->push_addr_bytes)
1390  || m32c_pv_pushm_one (state, state->a1, 0x04, src, tdep->push_addr_bytes)
1391  || m32c_pv_pushm_one (state, state->a0, 0x08, src, tdep->push_addr_bytes)
1392  || m32c_pv_pushm_one (state, state->r3, 0x10, src, 2)
1393  || m32c_pv_pushm_one (state, state->r2, 0x20, src, 2)
1394  || m32c_pv_pushm_one (state, state->r1, 0x40, src, 2)
1395  || m32c_pv_pushm_one (state, state->r0, 0x80, src, 2));
1396 }
1397 
1398 /* Return non-zero if VALUE is the first incoming argument register. */
1399 
1400 static int
1402 {
1403  struct gdbarch_tdep *tdep = gdbarch_tdep (state->arch);
1404  return (value.kind == pvk_register
1405  && (gdbarch_bfd_arch_info (state->arch)->mach == bfd_mach_m16c
1406  ? (value.reg == tdep->r1->num)
1407  : (value.reg == tdep->r0->num))
1408  && value.k == 0);
1409 }
1410 
1411 /* Return non-zero if VALUE is an incoming argument register. */
1412 
1413 static int
1415 {
1416  struct gdbarch_tdep *tdep = gdbarch_tdep (state->arch);
1417  return (value.kind == pvk_register
1418  && (gdbarch_bfd_arch_info (state->arch)->mach == bfd_mach_m16c
1419  ? (value.reg == tdep->r1->num || value.reg == tdep->r2->num)
1420  : (value.reg == tdep->r0->num))
1421  && value.k == 0);
1422 }
1423 
1424 /* Return non-zero if a store of VALUE to LOC is probably spilling an
1425  argument register to its stack slot in STATE. Such instructions
1426  should be included in the prologue, if possible.
1427 
1428  The store is a spill if:
1429  - the value being stored is the original value of an argument register;
1430  - the value has not already been stored somewhere in STACK; and
1431  - LOC is a stack slot (e.g., a memory location whose address is
1432  relative to the original value of the SP). */
1433 
1434 static int
1436  struct srcdest loc,
1437  pv_t value)
1438 {
1439  struct gdbarch_tdep *tdep = gdbarch_tdep (st->arch);
1440 
1441  return (m32c_is_arg_reg (st, value)
1442  && loc.kind == srcdest_mem
1443  && pv_is_register (loc.addr, tdep->sp->num)
1444  && ! st->stack->find_reg (st->arch, value.reg, 0));
1445 }
1446 
1447 /* Return non-zero if a store of VALUE to LOC is probably
1448  copying the struct return address into an address register
1449  for immediate use. This is basically a "spill" into the
1450  address register, instead of onto the stack.
1451 
1452  The prerequisites are:
1453  - value being stored is original value of the FIRST arg register;
1454  - value has not already been stored on stack; and
1455  - LOC is an address register (a0 or a1). */
1456 
1457 static int
1459  struct srcdest loc,
1460  pv_t value)
1461 {
1462  struct gdbarch_tdep *tdep = gdbarch_tdep (st->arch);
1463 
1464  return (m32c_is_1st_arg_reg (st, value)
1465  && !st->stack->find_reg (st->arch, value.reg, 0)
1466  && loc.kind == srcdest_reg
1467  && (pv_is_register (*loc.reg, tdep->a0->num)
1468  || pv_is_register (*loc.reg, tdep->a1->num)));
1469 }
1470 
1471 /* Return non-zero if a 'pushm' saving the registers indicated by SRC
1472  was a register save:
1473  - all the named registers should have their original values, and
1474  - the stack pointer should be at a constant offset from the
1475  original stack pointer. */
1476 static int
1478 {
1479  struct gdbarch_tdep *tdep = gdbarch_tdep (st->arch);
1480  /* The bits in SRC indicating which registers to save are:
1481  r0 r1 r2 r3 a0 a1 sb fb */
1482  return
1483  (pv_is_register (st->sp, tdep->sp->num)
1484  && (! (src & 0x01) || pv_is_register_k (st->fb, tdep->fb->num, 0))
1485  && (! (src & 0x02) || pv_is_register_k (st->sb, tdep->sb->num, 0))
1486  && (! (src & 0x04) || pv_is_register_k (st->a1, tdep->a1->num, 0))
1487  && (! (src & 0x08) || pv_is_register_k (st->a0, tdep->a0->num, 0))
1488  && (! (src & 0x10) || pv_is_register_k (st->r3, tdep->r3->num, 0))
1489  && (! (src & 0x20) || pv_is_register_k (st->r2, tdep->r2->num, 0))
1490  && (! (src & 0x40) || pv_is_register_k (st->r1, tdep->r1->num, 0))
1491  && (! (src & 0x80) || pv_is_register_k (st->r0, tdep->r0->num, 0)));
1492 }
1493 
1494 
1495 /* Function for finding saved registers in a 'struct pv_area'; we pass
1496  this to pv_area::scan.
1497 
1498  If VALUE is a saved register, ADDR says it was saved at a constant
1499  offset from the frame base, and SIZE indicates that the whole
1500  register was saved, record its offset in RESULT_UNTYPED. */
1501 static void
1502 check_for_saved (void *prologue_untyped, pv_t addr, CORE_ADDR size, pv_t value)
1503 {
1504  struct m32c_prologue *prologue = (struct m32c_prologue *) prologue_untyped;
1505  struct gdbarch *arch = prologue->arch;
1506  struct gdbarch_tdep *tdep = gdbarch_tdep (arch);
1507 
1508  /* Is this the unchanged value of some register being saved on the
1509  stack? */
1510  if (value.kind == pvk_register
1511  && value.k == 0
1512  && pv_is_register (addr, tdep->sp->num))
1513  {
1514  /* Some registers require special handling: they're saved as a
1515  larger value than the register itself. */
1516  CORE_ADDR saved_size = register_size (arch, value.reg);
1517 
1518  if (value.reg == tdep->pc->num)
1519  saved_size = tdep->ret_addr_bytes;
1520  else if (register_type (arch, value.reg)
1521  == tdep->data_addr_reg_type)
1522  saved_size = tdep->push_addr_bytes;
1523 
1524  if (size == saved_size)
1525  {
1526  /* Find which end of the saved value corresponds to our
1527  register. */
1528  if (gdbarch_byte_order (arch) == BFD_ENDIAN_BIG)
1529  prologue->reg_offset[value.reg]
1530  = (addr.k + saved_size - register_size (arch, value.reg));
1531  else
1532  prologue->reg_offset[value.reg] = addr.k;
1533  }
1534  }
1535 }
1536 
1537 
1538 /* Analyze the function prologue for ARCH at START, going no further
1539  than LIMIT, and place a description of what we found in
1540  PROLOGUE. */
1541 static void
1543  CORE_ADDR start, CORE_ADDR limit,
1544  struct m32c_prologue *prologue)
1545 {
1546  struct gdbarch_tdep *tdep = gdbarch_tdep (arch);
1547  unsigned long mach = gdbarch_bfd_arch_info (arch)->mach;
1548  CORE_ADDR after_last_frame_related_insn;
1549  struct m32c_pv_state st;
1550 
1551  st.arch = arch;
1552  st.r0 = pv_register (tdep->r0->num, 0);
1553  st.r1 = pv_register (tdep->r1->num, 0);
1554  st.r2 = pv_register (tdep->r2->num, 0);
1555  st.r3 = pv_register (tdep->r3->num, 0);
1556  st.a0 = pv_register (tdep->a0->num, 0);
1557  st.a1 = pv_register (tdep->a1->num, 0);
1558  st.sb = pv_register (tdep->sb->num, 0);
1559  st.fb = pv_register (tdep->fb->num, 0);
1560  st.sp = pv_register (tdep->sp->num, 0);
1561  st.pc = pv_register (tdep->pc->num, 0);
1562  pv_area stack (tdep->sp->num, gdbarch_addr_bit (arch));
1563  st.stack = &stack;
1564 
1565  /* Record that the call instruction has saved the return address on
1566  the stack. */
1567  m32c_pv_push (&st, st.pc, tdep->ret_addr_bytes);
1568 
1569  memset (prologue, 0, sizeof (*prologue));
1570  prologue->arch = arch;
1571  {
1572  int i;
1573  for (i = 0; i < M32C_MAX_NUM_REGS; i++)
1574  prologue->reg_offset[i] = 1;
1575  }
1576 
1577  st.scan_pc = after_last_frame_related_insn = start;
1578 
1579  while (st.scan_pc < limit)
1580  {
1581  pv_t pre_insn_fb = st.fb;
1582  pv_t pre_insn_sp = st.sp;
1583 
1584  /* In theory we could get in trouble by trying to read ahead
1585  here, when we only know we're expecting one byte. In
1586  practice I doubt anyone will care, and it makes the rest of
1587  the code easier. */
1588  if (target_read_memory (st.scan_pc, st.insn, sizeof (st.insn)))
1589  /* If we can't fetch the instruction from memory, stop here
1590  and hope for the best. */
1591  break;
1592  st.next_addr = st.scan_pc;
1593 
1594  /* The assembly instructions are written as they appear in the
1595  section of the processor manuals that describe the
1596  instruction encodings.
1597 
1598  When a single assembly language instruction has several
1599  different machine-language encodings, the manual
1600  distinguishes them by a number in parens, before the
1601  mnemonic. Those numbers are included, as well.
1602 
1603  The srcdest decoding instructions have the same names as the
1604  analogous functions in the simulator. */
1605  if (mach == bfd_mach_m16c)
1606  {
1607  /* (1) ENTER #imm8 */
1608  if (st.insn[0] == 0x7c && st.insn[1] == 0xf2)
1609  {
1610  if (m32c_pv_enter (&st, st.insn[2]))
1611  break;
1612  st.next_addr += 3;
1613  }
1614  /* (1) PUSHM src */
1615  else if (st.insn[0] == 0xec)
1616  {
1617  int src = st.insn[1];
1618  if (m32c_pv_pushm (&st, src))
1619  break;
1620  st.next_addr += 2;
1621 
1622  if (m32c_pushm_is_reg_save (&st, src))
1623  after_last_frame_related_insn = st.next_addr;
1624  }
1625 
1626  /* (6) MOV.size:G src, dest */
1627  else if ((st.insn[0] & 0xfe) == 0x72)
1628  {
1629  int size = (st.insn[0] & 0x01) ? 2 : 1;
1630  struct srcdest src;
1631  struct srcdest dest;
1632  pv_t src_value;
1633  st.next_addr += 2;
1634 
1635  src
1636  = m32c_decode_srcdest4 (&st, (st.insn[1] >> 4) & 0xf, size);
1637  dest
1638  = m32c_decode_srcdest4 (&st, st.insn[1] & 0xf, size);
1639  src_value = m32c_srcdest_fetch (&st, src, size);
1640 
1641  if (m32c_is_arg_spill (&st, dest, src_value))
1642  after_last_frame_related_insn = st.next_addr;
1643  else if (m32c_is_struct_return (&st, dest, src_value))
1644  after_last_frame_related_insn = st.next_addr;
1645 
1646  if (m32c_srcdest_store (&st, dest, src_value, size))
1647  break;
1648  }
1649 
1650  /* (1) LDC #IMM16, sp */
1651  else if (st.insn[0] == 0xeb
1652  && st.insn[1] == 0x50)
1653  {
1654  st.next_addr += 2;
1655  st.sp = pv_constant (m32c_udisp16 (&st));
1656  }
1657 
1658  else
1659  /* We've hit some instruction we don't know how to simulate.
1660  Strictly speaking, we should set every value we're
1661  tracking to "unknown". But we'll be optimistic, assume
1662  that we have enough information already, and stop
1663  analysis here. */
1664  break;
1665  }
1666  else
1667  {
1668  int src_indirect = 0;
1669  int dest_indirect = 0;
1670  int i = 0;
1671 
1672  gdb_assert (mach == bfd_mach_m32c);
1673 
1674  /* Check for prefix bytes indicating indirect addressing. */
1675  if (st.insn[0] == 0x41)
1676  {
1677  src_indirect = 1;
1678  i++;
1679  }
1680  else if (st.insn[0] == 0x09)
1681  {
1682  dest_indirect = 1;
1683  i++;
1684  }
1685  else if (st.insn[0] == 0x49)
1686  {
1687  src_indirect = dest_indirect = 1;
1688  i++;
1689  }
1690 
1691  /* (1) ENTER #imm8 */
1692  if (st.insn[i] == 0xec)
1693  {
1694  if (m32c_pv_enter (&st, st.insn[i + 1]))
1695  break;
1696  st.next_addr += 2;
1697  }
1698 
1699  /* (1) PUSHM src */
1700  else if (st.insn[i] == 0x8f)
1701  {
1702  int src = st.insn[i + 1];
1703  if (m32c_pv_pushm (&st, src))
1704  break;
1705  st.next_addr += 2;
1706 
1707  if (m32c_pushm_is_reg_save (&st, src))
1708  after_last_frame_related_insn = st.next_addr;
1709  }
1710 
1711  /* (7) MOV.size:G src, dest */
1712  else if ((st.insn[i] & 0x80) == 0x80
1713  && (st.insn[i + 1] & 0x0f) == 0x0b
1714  && m32c_get_src23 (&st.insn[i]) < 20
1715  && m32c_get_dest23 (&st.insn[i]) < 20)
1716  {
1717  struct srcdest src;
1718  struct srcdest dest;
1719  pv_t src_value;
1720  int bw = st.insn[i] & 0x01;
1721  int size = bw ? 2 : 1;
1722  st.next_addr += 2;
1723 
1724  src
1725  = m32c_decode_sd23 (&st, m32c_get_src23 (&st.insn[i]),
1726  size, src_indirect);
1727  dest
1728  = m32c_decode_sd23 (&st, m32c_get_dest23 (&st.insn[i]),
1729  size, dest_indirect);
1730  src_value = m32c_srcdest_fetch (&st, src, size);
1731 
1732  if (m32c_is_arg_spill (&st, dest, src_value))
1733  after_last_frame_related_insn = st.next_addr;
1734 
1735  if (m32c_srcdest_store (&st, dest, src_value, size))
1736  break;
1737  }
1738  /* (2) LDC #IMM24, sp */
1739  else if (st.insn[i] == 0xd5
1740  && st.insn[i + 1] == 0x29)
1741  {
1742  st.next_addr += 2;
1743  st.sp = pv_constant (m32c_udisp24 (&st));
1744  }
1745  else
1746  /* We've hit some instruction we don't know how to simulate.
1747  Strictly speaking, we should set every value we're
1748  tracking to "unknown". But we'll be optimistic, assume
1749  that we have enough information already, and stop
1750  analysis here. */
1751  break;
1752  }
1753 
1754  /* If this instruction changed the FB or decreased the SP (i.e.,
1755  allocated more stack space), then this may be a good place to
1756  declare the prologue finished. However, there are some
1757  exceptions:
1758 
1759  - If the instruction just changed the FB back to its original
1760  value, then that's probably a restore instruction. The
1761  prologue should definitely end before that.
1762 
1763  - If the instruction increased the value of the SP (that is,
1764  shrunk the frame), then it's probably part of a frame
1765  teardown sequence, and the prologue should end before
1766  that. */
1767 
1768  if (! pv_is_identical (st.fb, pre_insn_fb))
1769  {
1770  if (! pv_is_register_k (st.fb, tdep->fb->num, 0))
1771  after_last_frame_related_insn = st.next_addr;
1772  }
1773  else if (! pv_is_identical (st.sp, pre_insn_sp))
1774  {
1775  /* The comparison of the constants looks odd, there, because
1776  .k is unsigned. All it really means is that the SP is
1777  lower than it was before the instruction. */
1778  if ( pv_is_register (pre_insn_sp, tdep->sp->num)
1779  && pv_is_register (st.sp, tdep->sp->num)
1780  && ((pre_insn_sp.k - st.sp.k) < (st.sp.k - pre_insn_sp.k)))
1781  after_last_frame_related_insn = st.next_addr;
1782  }
1783 
1784  st.scan_pc = st.next_addr;
1785  }
1786 
1787  /* Did we load a constant value into the stack pointer? */
1788  if (pv_is_constant (st.sp))
1789  prologue->kind = prologue_first_frame;
1790 
1791  /* Alternatively, did we initialize the frame pointer? Remember
1792  that the CFA is the address after the return address. */
1793  if (pv_is_register (st.fb, tdep->sp->num))
1794  {
1795  prologue->kind = prologue_with_frame_ptr;
1796  prologue->frame_ptr_offset = st.fb.k;
1797  }
1798 
1799  /* Is the frame size a known constant? Remember that frame_size is
1800  actually the offset from the CFA to the SP (i.e., a negative
1801  value). */
1802  else if (pv_is_register (st.sp, tdep->sp->num))
1803  {
1804  prologue->kind = prologue_sans_frame_ptr;
1805  prologue->frame_size = st.sp.k;
1806  }
1807 
1808  /* We haven't been able to make sense of this function's frame. Treat
1809  it as the first frame. */
1810  else
1811  prologue->kind = prologue_first_frame;
1812 
1813  /* Record where all the registers were saved. */
1814  st.stack->scan (check_for_saved, (void *) prologue);
1815 
1816  prologue->prologue_end = after_last_frame_related_insn;
1817 }
1818 
1819 
1820 static CORE_ADDR
1822 {
1823  const char *name;
1824  CORE_ADDR func_addr, func_end, sal_end;
1825  struct m32c_prologue p;
1826 
1827  /* Try to find the extent of the function that contains IP. */
1828  if (! find_pc_partial_function (ip, &name, &func_addr, &func_end))
1829  return ip;
1830 
1831  /* Find end by prologue analysis. */
1832  m32c_analyze_prologue (gdbarch, ip, func_end, &p);
1833  /* Find end by line info. */
1834  sal_end = skip_prologue_using_sal (gdbarch, ip);
1835  /* Return whichever is lower. */
1836  if (sal_end != 0 && sal_end != ip && sal_end < p.prologue_end)
1837  return sal_end;
1838  else
1839  return p.prologue_end;
1840 }
1841 
1842 
1843 
1844 /* Stack unwinding. */
1845 
1846 static struct m32c_prologue *
1848  void **this_prologue_cache)
1849 {
1850  if (! *this_prologue_cache)
1851  {
1852  CORE_ADDR func_start = get_frame_func (this_frame);
1853  CORE_ADDR stop_addr = get_frame_pc (this_frame);
1854 
1855  /* If we couldn't find any function containing the PC, then
1856  just initialize the prologue cache, but don't do anything. */
1857  if (! func_start)
1858  stop_addr = func_start;
1859 
1860  *this_prologue_cache = FRAME_OBSTACK_ZALLOC (struct m32c_prologue);
1861  m32c_analyze_prologue (get_frame_arch (this_frame),
1862  func_start, stop_addr,
1863  (struct m32c_prologue *) *this_prologue_cache);
1864  }
1865 
1866  return (struct m32c_prologue *) *this_prologue_cache;
1867 }
1868 
1869 
1870 static CORE_ADDR
1871 m32c_frame_base (struct frame_info *this_frame,
1872  void **this_prologue_cache)
1873 {
1874  struct m32c_prologue *p
1875  = m32c_analyze_frame_prologue (this_frame, this_prologue_cache);
1876  struct gdbarch_tdep *tdep = gdbarch_tdep (get_frame_arch (this_frame));
1877 
1878  /* In functions that use alloca, the distance between the stack
1879  pointer and the frame base varies dynamically, so we can't use
1880  the SP plus static information like prologue analysis to find the
1881  frame base. However, such functions must have a frame pointer,
1882  to be able to restore the SP on exit. So whenever we do have a
1883  frame pointer, use that to find the base. */
1884  switch (p->kind)
1885  {
1886  case prologue_with_frame_ptr:
1887  {
1888  CORE_ADDR fb
1889  = get_frame_register_unsigned (this_frame, tdep->fb->num);
1890  return fb - p->frame_ptr_offset;
1891  }
1892 
1893  case prologue_sans_frame_ptr:
1894  {
1895  CORE_ADDR sp
1896  = get_frame_register_unsigned (this_frame, tdep->sp->num);
1897  return sp - p->frame_size;
1898  }
1899 
1900  case prologue_first_frame:
1901  return 0;
1902 
1903  default:
1904  gdb_assert_not_reached ("unexpected prologue kind");
1905  }
1906 }
1907 
1908 
1909 static void
1910 m32c_this_id (struct frame_info *this_frame,
1911  void **this_prologue_cache,
1912  struct frame_id *this_id)
1913 {
1914  CORE_ADDR base = m32c_frame_base (this_frame, this_prologue_cache);
1915 
1916  if (base)
1917  *this_id = frame_id_build (base, get_frame_func (this_frame));
1918  /* Otherwise, leave it unset, and that will terminate the backtrace. */
1919 }
1920 
1921 
1922 static struct value *
1923 m32c_prev_register (struct frame_info *this_frame,
1924  void **this_prologue_cache, int regnum)
1925 {
1926  struct gdbarch_tdep *tdep = gdbarch_tdep (get_frame_arch (this_frame));
1927  struct m32c_prologue *p
1928  = m32c_analyze_frame_prologue (this_frame, this_prologue_cache);
1929  CORE_ADDR frame_base = m32c_frame_base (this_frame, this_prologue_cache);
1930 
1931  if (regnum == tdep->sp->num)
1932  return frame_unwind_got_constant (this_frame, regnum, frame_base);
1933 
1934  /* If prologue analysis says we saved this register somewhere,
1935  return a description of the stack slot holding it. */
1936  if (p->reg_offset[regnum] != 1)
1937  return frame_unwind_got_memory (this_frame, regnum,
1938  frame_base + p->reg_offset[regnum]);
1939 
1940  /* Otherwise, presume we haven't changed the value of this
1941  register, and get it from the next frame. */
1942  return frame_unwind_got_register (this_frame, regnum, regnum);
1943 }
1944 
1945 
1946 static const struct frame_unwind m32c_unwind = {
1947  NORMAL_FRAME,
1949  m32c_this_id,
1951  NULL,
1953 };
1954 
1955 
1956 static CORE_ADDR
1957 m32c_unwind_pc (struct gdbarch *arch, struct frame_info *next_frame)
1958 {
1959  struct gdbarch_tdep *tdep = gdbarch_tdep (arch);
1960  return frame_unwind_register_unsigned (next_frame, tdep->pc->num);
1961 }
1962 
1963 
1964 static CORE_ADDR
1965 m32c_unwind_sp (struct gdbarch *arch, struct frame_info *next_frame)
1966 {
1967  struct gdbarch_tdep *tdep = gdbarch_tdep (arch);
1968  return frame_unwind_register_unsigned (next_frame, tdep->sp->num);
1969 }
1970 
1971 
1972 /* Inferior calls. */
1973 
1974 /* The calling conventions, according to GCC:
1975 
1976  r8c, m16c
1977  ---------
1978  First arg may be passed in r1l or r1 if it (1) fits (QImode or
1979  HImode), (2) is named, and (3) is an integer or pointer type (no
1980  structs, floats, etc). Otherwise, it's passed on the stack.
1981 
1982  Second arg may be passed in r2, same restrictions (but not QImode),
1983  even if the first arg is passed on the stack.
1984 
1985  Third and further args are passed on the stack. No padding is
1986  used, stack "alignment" is 8 bits.
1987 
1988  m32cm, m32c
1989  -----------
1990 
1991  First arg may be passed in r0l or r0, same restrictions as above.
1992 
1993  Second and further args are passed on the stack. Padding is used
1994  after QImode parameters (i.e. lower-addressed byte is the value,
1995  higher-addressed byte is the padding), stack "alignment" is 16
1996  bits. */
1997 
1998 
1999 /* Return true if TYPE is a type that can be passed in registers. (We
2000  ignore the size, and pay attention only to the type code;
2001  acceptable sizes depends on which register is being considered to
2002  hold it.) */
2003 static int
2005 {
2006  enum type_code code = TYPE_CODE (type);
2007 
2008  return (code == TYPE_CODE_INT
2009  || code == TYPE_CODE_ENUM
2010  || code == TYPE_CODE_PTR
2011  || TYPE_IS_REFERENCE (type)
2012  || code == TYPE_CODE_BOOL
2013  || code == TYPE_CODE_CHAR);
2014 }
2015 
2016 
2017 static CORE_ADDR
2018 m32c_push_dummy_call (struct gdbarch *gdbarch, struct value *function,
2019  struct regcache *regcache, CORE_ADDR bp_addr, int nargs,
2020  struct value **args, CORE_ADDR sp, int struct_return,
2021  CORE_ADDR struct_addr)
2022 {
2023  struct gdbarch_tdep *tdep = gdbarch_tdep (gdbarch);
2024  enum bfd_endian byte_order = gdbarch_byte_order (gdbarch);
2025  unsigned long mach = gdbarch_bfd_arch_info (gdbarch)->mach;
2026  CORE_ADDR cfa;
2027  int i;
2028 
2029  /* The number of arguments given in this function's prototype, or
2030  zero if it has a non-prototyped function type. The m32c ABI
2031  passes arguments mentioned in the prototype differently from
2032  those in the ellipsis of a varargs function, or from those passed
2033  to a non-prototyped function. */
2034  int num_prototyped_args = 0;
2035 
2036  {
2037  struct type *func_type = value_type (function);
2038 
2039  /* Dereference function pointer types. */
2042 
2045 
2046 #if 0
2047  /* The ABI description in gcc/config/m32c/m32c.abi says that
2048  we need to handle prototyped and non-prototyped functions
2049  separately, but the code in GCC doesn't actually do so. */
2050  if (TYPE_PROTOTYPED (func_type))
2051 #endif
2052  num_prototyped_args = TYPE_NFIELDS (func_type);
2053  }
2054 
2055  /* First, if the function returns an aggregate by value, push a
2056  pointer to a buffer for it. This doesn't affect the way
2057  subsequent arguments are allocated to registers. */
2058  if (struct_return)
2059  {
2060  int ptr_len = TYPE_LENGTH (tdep->ptr_voyd);
2061  sp -= ptr_len;
2062  write_memory_unsigned_integer (sp, ptr_len, byte_order, struct_addr);
2063  }
2064 
2065  /* Push the arguments. */
2066  for (i = nargs - 1; i >= 0; i--)
2067  {
2068  struct value *arg = args[i];
2069  const gdb_byte *arg_bits = value_contents (arg);
2070  struct type *arg_type = value_type (arg);
2071  ULONGEST arg_size = TYPE_LENGTH (arg_type);
2072 
2073  /* Can it go in r1 or r1l (for m16c) or r0 or r0l (for m32c)? */
2074  if (i == 0
2075  && arg_size <= 2
2076  && i < num_prototyped_args
2077  && m32c_reg_arg_type (arg_type))
2078  {
2079  /* Extract and re-store as an integer as a terse way to make
2080  sure it ends up in the least significant end of r1. (GDB
2081  should avoid assuming endianness, even on uni-endian
2082  processors.) */
2083  ULONGEST u = extract_unsigned_integer (arg_bits, arg_size,
2084  byte_order);
2085  struct m32c_reg *reg = (mach == bfd_mach_m16c) ? tdep->r1 : tdep->r0;
2087  }
2088 
2089  /* Can it go in r2? */
2090  else if (mach == bfd_mach_m16c
2091  && i == 1
2092  && arg_size == 2
2093  && i < num_prototyped_args
2094  && m32c_reg_arg_type (arg_type))
2095  regcache_cooked_write (regcache, tdep->r2->num, arg_bits);
2096 
2097  /* Everything else goes on the stack. */
2098  else
2099  {
2100  sp -= arg_size;
2101 
2102  /* Align the stack. */
2103  if (mach == bfd_mach_m32c)
2104  sp &= ~1;
2105 
2106  write_memory (sp, arg_bits, arg_size);
2107  }
2108  }
2109 
2110  /* This is the CFA we use to identify the dummy frame. */
2111  cfa = sp;
2112 
2113  /* Push the return address. */
2114  sp -= tdep->ret_addr_bytes;
2115  write_memory_unsigned_integer (sp, tdep->ret_addr_bytes, byte_order,
2116  bp_addr);
2117 
2118  /* Update the stack pointer. */
2120 
2121  /* We need to borrow an odd trick from the i386 target here.
2122 
2123  The value we return from this function gets used as the stack
2124  address (the CFA) for the dummy frame's ID. The obvious thing is
2125  to return the new TOS. However, that points at the return
2126  address, saved on the stack, which is inconsistent with the CFA's
2127  described by GCC's DWARF 2 .debug_frame information: DWARF 2
2128  .debug_frame info uses the address immediately after the saved
2129  return address. So you end up with a dummy frame whose CFA
2130  points at the return address, but the frame for the function
2131  being called has a CFA pointing after the return address: the
2132  younger CFA is *greater than* the older CFA. The sanity checks
2133  in frame.c don't like that.
2134 
2135  So we try to be consistent with the CFA's used by DWARF 2.
2136  Having a dummy frame and a real frame with the *same* CFA is
2137  tolerable. */
2138  return cfa;
2139 }
2140 
2141 
2142 static struct frame_id
2143 m32c_dummy_id (struct gdbarch *gdbarch, struct frame_info *this_frame)
2144 {
2145  /* This needs to return a frame ID whose PC is the return address
2146  passed to m32c_push_dummy_call, and whose stack_addr is the SP
2147  m32c_push_dummy_call returned.
2148 
2149  m32c_unwind_sp gives us the CFA, which is the value the SP had
2150  before the return address was pushed. */
2151  struct gdbarch_tdep *tdep = gdbarch_tdep (gdbarch);
2152  CORE_ADDR sp = get_frame_register_unsigned (this_frame, tdep->sp->num);
2153  return frame_id_build (sp, get_frame_pc (this_frame));
2154 }
2155 
2156 
2157 
2158 /* Return values. */
2159 
2160 /* Return value conventions, according to GCC:
2161 
2162  r8c, m16c
2163  ---------
2164 
2165  QImode in r0l
2166  HImode in r0
2167  SImode in r2r0
2168  near pointer in r0
2169  far pointer in r2r0
2170 
2171  Aggregate values (regardless of size) are returned by pushing a
2172  pointer to a temporary area on the stack after the args are pushed.
2173  The function fills in this area with the value. Note that this
2174  pointer on the stack does not affect how register arguments, if any,
2175  are configured.
2176 
2177  m32cm, m32c
2178  -----------
2179  Same. */
2180 
2181 /* Return non-zero if values of type TYPE are returned by storing them
2182  in a buffer whose address is passed on the stack, ahead of the
2183  other arguments. */
2184 static int
2186 {
2187  enum type_code code = TYPE_CODE (type);
2188 
2189  return (code == TYPE_CODE_STRUCT
2190  || code == TYPE_CODE_UNION);
2191 }
2192 
2193 static enum return_value_convention
2195  struct value *function,
2196  struct type *valtype,
2197  struct regcache *regcache,
2198  gdb_byte *readbuf,
2199  const gdb_byte *writebuf)
2200 {
2201  struct gdbarch_tdep *tdep = gdbarch_tdep (gdbarch);
2202  enum bfd_endian byte_order = gdbarch_byte_order (gdbarch);
2203  enum return_value_convention conv;
2204  ULONGEST valtype_len = TYPE_LENGTH (valtype);
2205 
2206  if (m32c_return_by_passed_buf (valtype))
2208  else
2210 
2211  if (readbuf)
2212  {
2213  /* We should never be called to find values being returned by
2214  RETURN_VALUE_STRUCT_CONVENTION. Those can't be located,
2215  unless we made the call ourselves. */
2217 
2218  gdb_assert (valtype_len <= 8);
2219 
2220  /* Anything that fits in r0 is returned there. */
2221  if (valtype_len <= TYPE_LENGTH (tdep->r0->type))
2222  {
2223  ULONGEST u;
2225  store_unsigned_integer (readbuf, valtype_len, byte_order, u);
2226  }
2227  else
2228  {
2229  /* Everything else is passed in mem0, using as many bytes as
2230  needed. This is not what the Renesas tools do, but it's
2231  what GCC does at the moment. */
2232  struct bound_minimal_symbol mem0
2233  = lookup_minimal_symbol ("mem0", NULL, NULL);
2234 
2235  if (! mem0.minsym)
2236  error (_("The return value is stored in memory at 'mem0', "
2237  "but GDB cannot find\n"
2238  "its address."));
2239  read_memory (BMSYMBOL_VALUE_ADDRESS (mem0), readbuf, valtype_len);
2240  }
2241  }
2242 
2243  if (writebuf)
2244  {
2245  /* We should never be called to store values to be returned
2246  using RETURN_VALUE_STRUCT_CONVENTION. We have no way of
2247  finding the buffer, unless we made the call ourselves. */
2249 
2250  gdb_assert (valtype_len <= 8);
2251 
2252  /* Anything that fits in r0 is returned there. */
2253  if (valtype_len <= TYPE_LENGTH (tdep->r0->type))
2254  {
2255  ULONGEST u = extract_unsigned_integer (writebuf, valtype_len,
2256  byte_order);
2258  }
2259  else
2260  {
2261  /* Everything else is passed in mem0, using as many bytes as
2262  needed. This is not what the Renesas tools do, but it's
2263  what GCC does at the moment. */
2264  struct bound_minimal_symbol mem0
2265  = lookup_minimal_symbol ("mem0", NULL, NULL);
2266 
2267  if (! mem0.minsym)
2268  error (_("The return value is stored in memory at 'mem0', "
2269  "but GDB cannot find\n"
2270  " its address."));
2271  write_memory (BMSYMBOL_VALUE_ADDRESS (mem0), writebuf, valtype_len);
2272  }
2273  }
2274 
2275  return conv;
2276 }
2277 
2278 
2279 
2280 /* Trampolines. */
2281 
2282 /* The m16c and m32c use a trampoline function for indirect function
2283  calls. An indirect call looks like this:
2284 
2285  ... push arguments ...
2286  ... push target function address ...
2287  jsr.a m32c_jsri16
2288 
2289  The code for m32c_jsri16 looks like this:
2290 
2291  m32c_jsri16:
2292 
2293  # Save return address.
2294  pop.w m32c_jsri_ret
2295  pop.b m32c_jsri_ret+2
2296 
2297  # Store target function address.
2298  pop.w m32c_jsri_addr
2299 
2300  # Re-push return address.
2301  push.b m32c_jsri_ret+2
2302  push.w m32c_jsri_ret
2303 
2304  # Call the target function.
2305  jmpi.a m32c_jsri_addr
2306 
2307  Without further information, GDB will treat calls to m32c_jsri16
2308  like calls to any other function. Since m32c_jsri16 doesn't have
2309  debugging information, that normally means that GDB sets a step-
2310  resume breakpoint and lets the program continue --- which is not
2311  what the user wanted. (Giving the trampoline debugging info
2312  doesn't help: the user expects the program to stop in the function
2313  their program is calling, not in some trampoline code they've never
2314  seen before.)
2315 
2316  The gdbarch_skip_trampoline_code method tells GDB how to step
2317  through such trampoline functions transparently to the user. When
2318  given the address of a trampoline function's first instruction,
2319  gdbarch_skip_trampoline_code should return the address of the first
2320  instruction of the function really being called. If GDB decides it
2321  wants to step into that function, it will set a breakpoint there
2322  and silently continue to it.
2323 
2324  We recognize the trampoline by name, and extract the target address
2325  directly from the stack. This isn't great, but recognizing by its
2326  code sequence seems more fragile. */
2327 
2328 static CORE_ADDR
2330 {
2331  struct gdbarch *gdbarch = get_frame_arch (frame);
2332  struct gdbarch_tdep *tdep = gdbarch_tdep (gdbarch);
2333  enum bfd_endian byte_order = gdbarch_byte_order (gdbarch);
2334 
2335  /* It would be nicer to simply look up the addresses of known
2336  trampolines once, and then compare stop_pc with them. However,
2337  we'd need to ensure that that cached address got invalidated when
2338  someone loaded a new executable, and I'm not quite sure of the
2339  best way to do that. find_pc_partial_function does do some
2340  caching, so we'll see how this goes. */
2341  const char *name;
2342  CORE_ADDR start, end;
2343 
2344  if (find_pc_partial_function (stop_pc, &name, &start, &end))
2345  {
2346  /* Are we stopped at the beginning of the trampoline function? */
2347  if (strcmp (name, "m32c_jsri16") == 0
2348  && stop_pc == start)
2349  {
2350  /* Get the stack pointer. The return address is at the top,
2351  and the target function's address is just below that. We
2352  know it's a two-byte address, since the trampoline is
2353  m32c_jsri*16*. */
2355  CORE_ADDR target
2357  2, byte_order);
2358 
2359  /* What we have now is the address of a jump instruction.
2360  What we need is the destination of that jump.
2361  The opcode is 1 byte, and the destination is the next 3 bytes. */
2362 
2363  target = read_memory_unsigned_integer (target + 1, 3, byte_order);
2364  return target;
2365  }
2366  }
2367 
2368  return 0;
2369 }
2370 
2371 
2372 /* Address/pointer conversions. */
2373 
2374 /* On the m16c, there is a 24-bit address space, but only a very few
2375  instructions can generate addresses larger than 0xffff: jumps,
2376  jumps to subroutines, and the lde/std (load/store extended)
2377  instructions.
2378 
2379  Since GCC can only support one size of pointer, we can't have
2380  distinct 'near' and 'far' pointer types; we have to pick one size
2381  for everything. If we wanted to use 24-bit pointers, then GCC
2382  would have to use lde and ste for all memory references, which
2383  would be terrible for performance and code size. So the GNU
2384  toolchain uses 16-bit pointers for everything, and gives up the
2385  ability to have pointers point outside the first 64k of memory.
2386 
2387  However, as a special hack, we let the linker place functions at
2388  addresses above 0xffff, as long as it also places a trampoline in
2389  the low 64k for every function whose address is taken. Each
2390  trampoline consists of a single jmp.a instruction that jumps to the
2391  function's real entry point. Pointers to functions can be 16 bits
2392  long, even though the functions themselves are at higher addresses:
2393  the pointers refer to the trampolines, not the functions.
2394 
2395  This complicates things for GDB, however: given the address of a
2396  function (from debug info or linker symbols, say) which could be
2397  anywhere in the 24-bit address space, how can we find an
2398  appropriate 16-bit value to use as a pointer to it?
2399 
2400  If the linker has not generated a trampoline for the function,
2401  we're out of luck. Well, I guess we could malloc some space and
2402  write a jmp.a instruction to it, but I'm not going to get into that
2403  at the moment.
2404 
2405  If the linker has generated a trampoline for the function, then it
2406  also emitted a symbol for the trampoline: if the function's linker
2407  symbol is named NAME, then the function's trampoline's linker
2408  symbol is named NAME.plt.
2409 
2410  So, given a code address:
2411  - We try to find a linker symbol at that address.
2412  - If we find such a symbol named NAME, we look for a linker symbol
2413  named NAME.plt.
2414  - If we find such a symbol, we assume it is a trampoline, and use
2415  its address as the pointer value.
2416 
2417  And, given a function pointer:
2418  - We try to find a linker symbol at that address named NAME.plt.
2419  - If we find such a symbol, we look for a linker symbol named NAME.
2420  - If we find that, we provide that as the function's address.
2421  - If any of the above steps fail, we return the original address
2422  unchanged; it might really be a function in the low 64k.
2423 
2424  See? You *knew* there was a reason you wanted to be a computer
2425  programmer! :) */
2426 
2427 static void
2429  struct type *type, gdb_byte *buf, CORE_ADDR addr)
2430 {
2431  enum bfd_endian byte_order = gdbarch_byte_order (gdbarch);
2432  enum type_code target_code;
2434 
2435  target_code = TYPE_CODE (TYPE_TARGET_TYPE (type));
2436 
2437  if (target_code == TYPE_CODE_FUNC || target_code == TYPE_CODE_METHOD)
2438  {
2439  const char *func_name;
2440  char *tramp_name;
2441  struct bound_minimal_symbol tramp_msym;
2442 
2443  /* Try to find a linker symbol at this address. */
2444  struct bound_minimal_symbol func_msym
2445  = lookup_minimal_symbol_by_pc (addr);
2446 
2447  if (! func_msym.minsym)
2448  error (_("Cannot convert code address %s to function pointer:\n"
2449  "couldn't find a symbol at that address, to find trampoline."),
2450  paddress (gdbarch, addr));
2451 
2452  func_name = MSYMBOL_LINKAGE_NAME (func_msym.minsym);
2453  tramp_name = (char *) xmalloc (strlen (func_name) + 5);
2454  strcpy (tramp_name, func_name);
2455  strcat (tramp_name, ".plt");
2456 
2457  /* Try to find a linker symbol for the trampoline. */
2458  tramp_msym = lookup_minimal_symbol (tramp_name, NULL, NULL);
2459 
2460  /* We've either got another copy of the name now, or don't need
2461  the name any more. */
2462  xfree (tramp_name);
2463 
2464  if (! tramp_msym.minsym)
2465  {
2466  CORE_ADDR ptrval;
2467 
2468  /* No PLT entry found. Mask off the upper bits of the address
2469  to make a pointer. As noted in the warning to the user
2470  below, this value might be useful if converted back into
2471  an address by GDB, but will otherwise, almost certainly,
2472  be garbage.
2473 
2474  Using this masked result does seem to be useful
2475  in gdb.cp/cplusfuncs.exp in which ~40 FAILs turn into
2476  PASSes. These results appear to be correct as well.
2477 
2478  We print a warning here so that the user can make a
2479  determination about whether the result is useful or not. */
2480  ptrval = addr & 0xffff;
2481 
2482  warning (_("Cannot convert code address %s to function pointer:\n"
2483  "couldn't find trampoline named '%s.plt'.\n"
2484  "Returning pointer value %s instead; this may produce\n"
2485  "a useful result if converted back into an address by GDB,\n"
2486  "but will most likely not be useful otherwise.\n"),
2487  paddress (gdbarch, addr), func_name,
2488  paddress (gdbarch, ptrval));
2489 
2490  addr = ptrval;
2491 
2492  }
2493  else
2494  {
2495  /* The trampoline's address is our pointer. */
2496  addr = BMSYMBOL_VALUE_ADDRESS (tramp_msym);
2497  }
2498  }
2499 
2500  store_unsigned_integer (buf, TYPE_LENGTH (type), byte_order, addr);
2501 }
2502 
2503 
2504 static CORE_ADDR
2506  struct type *type, const gdb_byte *buf)
2507 {
2508  enum bfd_endian byte_order = gdbarch_byte_order (gdbarch);
2509  CORE_ADDR ptr;
2510  enum type_code target_code;
2511 
2513 
2514  ptr = extract_unsigned_integer (buf, TYPE_LENGTH (type), byte_order);
2515 
2516  target_code = TYPE_CODE (TYPE_TARGET_TYPE (type));
2517 
2518  if (target_code == TYPE_CODE_FUNC || target_code == TYPE_CODE_METHOD)
2519  {
2520  /* See if there is a minimal symbol at that address whose name is
2521  "NAME.plt". */
2522  struct bound_minimal_symbol ptr_msym = lookup_minimal_symbol_by_pc (ptr);
2523 
2524  if (ptr_msym.minsym)
2525  {
2526  const char *ptr_msym_name = MSYMBOL_LINKAGE_NAME (ptr_msym.minsym);
2527  int len = strlen (ptr_msym_name);
2528 
2529  if (len > 4
2530  && strcmp (ptr_msym_name + len - 4, ".plt") == 0)
2531  {
2532  struct bound_minimal_symbol func_msym;
2533  /* We have a .plt symbol; try to find the symbol for the
2534  corresponding function.
2535 
2536  Since the trampoline contains a jump instruction, we
2537  could also just extract the jump's target address. I
2538  don't see much advantage one way or the other. */
2539  char *func_name = (char *) xmalloc (len - 4 + 1);
2540  memcpy (func_name, ptr_msym_name, len - 4);
2541  func_name[len - 4] = '\0';
2542  func_msym
2543  = lookup_minimal_symbol (func_name, NULL, NULL);
2544 
2545  /* If we do have such a symbol, return its value as the
2546  function's true address. */
2547  if (func_msym.minsym)
2548  ptr = BMSYMBOL_VALUE_ADDRESS (func_msym);
2549  }
2550  }
2551  else
2552  {
2553  int aspace;
2554 
2555  for (aspace = 1; aspace <= 15; aspace++)
2556  {
2557  ptr_msym = lookup_minimal_symbol_by_pc ((aspace << 16) | ptr);
2558 
2559  if (ptr_msym.minsym)
2560  ptr |= aspace << 16;
2561  }
2562  }
2563  }
2564 
2565  return ptr;
2566 }
2567 
2568 static void
2570  int *frame_regnum,
2571  LONGEST *frame_offset)
2572 {
2573  const char *name;
2574  CORE_ADDR func_addr, func_end;
2575  struct m32c_prologue p;
2576 
2577  struct regcache *regcache = get_current_regcache ();
2578  struct gdbarch_tdep *tdep = gdbarch_tdep (gdbarch);
2579 
2580  if (!find_pc_partial_function (pc, &name, &func_addr, &func_end))
2581  internal_error (__FILE__, __LINE__,
2582  _("No virtual frame pointer available"));
2583 
2584  m32c_analyze_prologue (gdbarch, func_addr, pc, &p);
2585  switch (p.kind)
2586  {
2587  case prologue_with_frame_ptr:
2588  *frame_regnum = m32c_banked_register (tdep->fb, regcache)->num;
2589  *frame_offset = p.frame_ptr_offset;
2590  break;
2591  case prologue_sans_frame_ptr:
2592  *frame_regnum = m32c_banked_register (tdep->sp, regcache)->num;
2593  *frame_offset = p.frame_size;
2594  break;
2595  default:
2596  *frame_regnum = m32c_banked_register (tdep->sp, regcache)->num;
2597  *frame_offset = 0;
2598  break;
2599  }
2600  /* Sanity check */
2601  if (*frame_regnum > gdbarch_num_regs (gdbarch))
2602  internal_error (__FILE__, __LINE__,
2603  _("No virtual frame pointer available"));
2604 }
2605 
2606 
2607 /* Initialization. */
2608 
2609 static struct gdbarch *
2610 m32c_gdbarch_init (struct gdbarch_info info, struct gdbarch_list *arches)
2611 {
2612  struct gdbarch *gdbarch;
2613  struct gdbarch_tdep *tdep;
2614  unsigned long mach = info.bfd_arch_info->mach;
2615 
2616  /* Find a candidate among the list of architectures we've created
2617  already. */
2618  for (arches = gdbarch_list_lookup_by_info (arches, &info);
2619  arches != NULL;
2620  arches = gdbarch_list_lookup_by_info (arches->next, &info))
2621  return arches->gdbarch;
2622 
2623  tdep = XCNEW (struct gdbarch_tdep);
2624  gdbarch = gdbarch_alloc (&info, tdep);
2625 
2626  /* Essential types. */
2627  make_types (gdbarch);
2628 
2629  /* Address/pointer conversions. */
2630  if (mach == bfd_mach_m16c)
2631  {
2634  }
2635 
2636  /* Register set. */
2637  make_regs (gdbarch);
2638 
2639  /* Breakpoints. */
2640  set_gdbarch_breakpoint_kind_from_pc (gdbarch, m32c_breakpoint::kind_from_pc);
2641  set_gdbarch_sw_breakpoint_from_kind (gdbarch, m32c_breakpoint::bp_from_kind);
2642 
2643  /* Prologue analysis and unwinding. */
2648 #if 0
2649  /* I'm dropping the dwarf2 sniffer because it has a few problems.
2650  They may be in the dwarf2 cfi code in GDB, or they may be in
2651  the debug info emitted by the upstream toolchain. I don't
2652  know which, but I do know that the prologue analyzer works better.
2653  MVS 04/13/06 */
2654  dwarf2_append_sniffers (gdbarch);
2655 #endif
2657 
2658  /* Inferior calls. */
2662 
2663  /* Trampolines. */
2665 
2667 
2668  /* m32c function boundary addresses are not necessarily even.
2669  Therefore, the `vbit', which indicates a pointer to a virtual
2670  member function, is stored in the delta field, rather than as
2671  the low bit of a function pointer address.
2672 
2673  In order to verify this, see the definition of
2674  TARGET_PTRMEMFUNC_VBIT_LOCATION in gcc/defaults.h along with the
2675  definition of FUNCTION_BOUNDARY in gcc/config/m32c/m32c.h. */
2677 
2678  return gdbarch;
2679 }
2680 
2681 void
2683 {
2684  register_gdbarch_init (bfd_arch_m32c, m32c_gdbarch_init);
2685 
2687 }
void reggroup_add(struct gdbarch *gdbarch, struct reggroup *group)
Definition: reggroups.c:117
static int m32c_pv_enter(struct m32c_pv_state *state, int size)
Definition: m32c-tdep.c:1346
void set_gdbarch_num_regs(struct gdbarch *gdbarch, int num_regs)
Definition: gdbarch.c:2050
#define M32C_MAX_NUM_REGS
Definition: m32c-tdep.c:100
bool store_would_trash(pv_t addr)
static void m32c_m16c_address_to_pointer(struct gdbarch *gdbarch, struct type *type, gdb_byte *buf, CORE_ADDR addr)
Definition: m32c-tdep.c:2428
static int m32c_get_src23(unsigned char *i)
Definition: m32c-tdep.c:1208
ssize_t read(int fd, void *buf, size_t count)
Definition: expect-read1.c:26
static m32c_read_reg_t m32c_r3r2r1r0_read
Definition: m32c-tdep.c:302
static m32c_write_reg_t m32c_sb_write
Definition: m32c-tdep.c:306
struct m32c_reg * a0
Definition: m32c-tdep.c:117
#define CCAT(high, low, type)
Definition: m32c-tdep.c:787
struct m32c_reg * sb
Definition: m32c-tdep.c:119
type_code
Definition: gdbtypes.h:80
static CORE_ADDR m32c_unwind_sp(struct gdbarch *arch, struct frame_info *next_frame)
Definition: m32c-tdep.c:1965
struct frame_id frame_id_build(CORE_ADDR stack_addr, CORE_ADDR code_addr)
Definition: frame.c:624
struct type * arch_type(struct gdbarch *gdbarch, enum type_code code, int bit, const char *name)
Definition: gdbtypes.c:4941
struct type * ptr_voyd
Definition: m32c-tdep.c:128
static CORE_ADDR m32c_frame_base(struct frame_info *this_frame, void **this_prologue_cache)
Definition: m32c-tdep.c:1871
static m32c_write_reg_t m32c_banked_write
Definition: m32c-tdep.c:305
CORE_ADDR get_frame_pc(struct frame_info *frame)
Definition: frame.c:2376
#define MSYMBOL_LINKAGE_NAME(symbol)
Definition: symtab.h:707
const char * name
Definition: regdef.h:25
struct frame_info * get_current_frame(void)
Definition: frame.c:1563
bfd_vma CORE_ADDR
Definition: common-types.h:41
static CORE_ADDR m32c_skip_trampoline_code(struct frame_info *frame, CORE_ADDR stop_pc)
Definition: m32c-tdep.c:2329
static m32c_write_reg_t m32c_part_write
Definition: m32c-tdep.c:307
struct reggroup * reggroup_new(const char *name, enum reggroup_type type)
Definition: reggroups.c:40
pv_t pv_add_constant(pv_t v, CORE_ADDR k)
struct m32c_reg * fb
Definition: m32c-tdep.c:119
static void m32c_virtual_frame_pointer(struct gdbarch *gdbarch, CORE_ADDR pc, int *frame_regnum, LONGEST *frame_offset)
Definition: m32c-tdep.c:2569
void xfree(void *)
typedef BP_MANIPULATION(m32c_break_insn)
Definition: m32c-tdep.c:995
struct value * frame_unwind_got_memory(struct frame_info *frame, int regnum, CORE_ADDR addr)
Definition: frame-unwind.c:233
void write_memory_unsigned_integer(CORE_ADDR addr, int len, enum bfd_endian byte_order, ULONGEST value)
Definition: corefile.c:417
#define BMSYMBOL_VALUE_ADDRESS(symbol)
Definition: symtab.h:691
static int m32c_reg_arg_type(struct type *type)
Definition: m32c-tdep.c:2004
struct type * data_addr_reg_type
Definition: m32c-tdep.c:133
void set_gdbarch_skip_trampoline_code(struct gdbarch *gdbarch, gdbarch_skip_trampoline_code_ftype skip_trampoline_code)
Definition: gdbarch.c:3316
void warning(const char *fmt,...)
Definition: errors.c:26
static struct reggroup * m32c_dma_reggroup
Definition: m32c-tdep.c:43
void set_gdbarch_stab_reg_to_regnum(struct gdbarch *gdbarch, gdbarch_stab_reg_to_regnum_ftype stab_reg_to_regnum)
Definition: gdbarch.c:2224
struct m32c_reg * r2
Definition: m32c-tdep.c:117
int gdbarch_ptr_bit(struct gdbarch *gdbarch)
Definition: gdbarch.c:1831
static int m32c_srcdest_store(struct m32c_pv_state *state, struct srcdest loc, pv_t value, int size)
Definition: m32c-tdep.c:1129
ULONGEST frame_unwind_register_unsigned(struct frame_info *frame, int regnum)
Definition: frame.c:1279
static struct m32c_reg * mark_general(struct m32c_reg *reg)
Definition: m32c-tdep.c:685
LONGEST reg_offset[M32C_MAX_NUM_REGS]
Definition: m32c-tdep.c:1052
CORE_ADDR get_frame_sp(struct frame_info *this_frame)
Definition: frame.c:2782
int pv_is_register(pv_t a, int r)
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
static const struct frame_unwind m32c_unwind
Definition: m32c-tdep.c:1946
struct m32c_reg * pc
Definition: m32c-tdep.c:116
return_value_convention
Definition: defs.h:247
void set_gdbarch_register_reggroup_p(struct gdbarch *gdbarch, gdbarch_register_reggroup_p_ftype register_reggroup_p)
Definition: gdbarch.c:3599
#define FLAGBIT_U
Definition: m32c-tdep.c:720
void regcache_cooked_write_part(struct regcache *regcache, int regnum, int offset, int len, const gdb_byte *buf)
Definition: regcache.c:987
struct gdbarch_list * gdbarch_list_lookup_by_info(struct gdbarch_list *arches, const struct gdbarch_info *info)
Definition: gdbarch.c:5309
register_status
CORE_ADDR skip_prologue_using_sal(struct gdbarch *gdbarch, CORE_ADDR func_addr)
Definition: symtab.c:3854
struct gdbarch_list * next
Definition: gdbarch.h:1623
struct reggroup *const restore_reggroup
Definition: reggroups.c:320
static void m32c_pseudo_register_write(struct gdbarch *arch, struct regcache *cache, int cookednum, const gdb_byte *buf)
Definition: m32c-tdep.c:610
int gdbarch_num_regs(struct gdbarch *gdbarch)
Definition: gdbarch.c:2039
static void check_for_saved(void *prologue_untyped, pv_t addr, CORE_ADDR size, pv_t value)
Definition: m32c-tdep.c:1502
struct reggroup *const all_reggroup
Definition: reggroups.c:318
#define _(String)
Definition: gdb_locale.h:35
const struct bfd_arch_info * bfd_arch_info
Definition: gdbarch.h:1629
enum register_status() m32c_write_reg_t(struct m32c_reg *reg, struct regcache *cache, const gdb_byte *buf)
void set_gdbarch_dwarf2_reg_to_regnum(struct gdbarch *gdbarch, gdbarch_dwarf2_reg_to_regnum_ftype dwarf2_reg_to_regnum)
Definition: gdbarch.c:2275
pv_t pv_unknown(void)
struct m32c_reg * dwarf_regs[M32C_MAX_DWARF_REGNUM+1]
Definition: m32c-tdep.c:123
static int m32c_sdisp16(struct m32c_pv_state *st)
Definition: m32c-tdep.c:1186
static int m32c_read_flg(struct regcache *cache)
Definition: m32c-tdep.c:332
#define bits(obj, st, fn)
Definition: aarch64-tdep.c:64
struct gdbarch_tdep * gdbarch_tdep(struct gdbarch *gdbarch)
Definition: gdbarch.c:1491
struct type * int8
Definition: m32c-tdep.c:130
#define TYPE_PROTOTYPED(t)
Definition: gdbtypes.h:232
static int m32c_register_sim_regno(struct gdbarch *gdbarch, int reg_nr)
Definition: m32c-tdep.c:235
struct m32c_reg * r0
Definition: m32c-tdep.c:117
#define RA(name)
Definition: m32c-tdep.c:741
struct gdbarch * arch
Definition: m32c-tdep.c:66
void frame_unwind_append_unwinder(struct gdbarch *gdbarch, const struct frame_unwind *unwinder)
Definition: frame-unwind.c:79
pv_t pv_constant(CORE_ADDR k)
struct regcache * get_current_regcache(void)
Definition: regcache.c:446
static int m32c_is_arg_spill(struct m32c_pv_state *st, struct srcdest loc, pv_t value)
Definition: m32c-tdep.c:1435
constexpr gdb_byte m32c_break_insn[]
Definition: m32c-tdep.c:993
#define FRAME_OBSTACK_ZALLOC(TYPE)
Definition: frame.h:678
static int m32c_is_arg_reg(struct m32c_pv_state *state, pv_t value)
Definition: m32c-tdep.c:1414
enum srcdest_kind kind
Definition: m32c-tdep.c:1107
const char * paddress(struct gdbarch *gdbarch, CORE_ADDR addr)
Definition: utils.c:2745
struct type * arch_integer_type(struct gdbarch *gdbarch, int bit, int unsigned_p, const char *name)
Definition: gdbtypes.c:4962
struct value * frame_unwind_got_constant(struct frame_info *frame, int regnum, ULONGEST val)
Definition: frame-unwind.c:246
#define TYPE_IS_REFERENCE(t)
Definition: gdbtypes.h:332
int pv_is_identical(pv_t a, pv_t b)
static void m32c_this_id(struct frame_info *this_frame, void **this_prologue_cache, struct frame_id *this_id)
Definition: m32c-tdep.c:1910
void set_gdbarch_addr_bit(struct gdbarch *gdbarch, int addr_bit)
Definition: gdbarch.c:1859
struct m32c_reg * r3r2r1r0
Definition: m32c-tdep.c:118
static m32c_write_reg_t m32c_cat_write
Definition: m32c-tdep.c:308
const char *const name
Definition: aarch64-tdep.c:76
#define RBA(name)
Definition: m32c-tdep.c:763
static void make_types(struct gdbarch *arch)
Definition: m32c-tdep.c:148
void set_gdbarch_pseudo_register_write(struct gdbarch *gdbarch, gdbarch_pseudo_register_write_ftype pseudo_register_write)
Definition: gdbarch.c:2032
static void set_dwarf_regnum(struct m32c_reg *reg, int num)
Definition: m32c-tdep.c:669
void set_gdbarch_register_type(struct gdbarch *gdbarch, gdbarch_register_type_ftype register_type)
Definition: gdbarch.c:2316
const gdb_byte * value_contents(struct value *value)
Definition: value.c:1407
struct reggroup *const general_reggroup
Definition: reggroups.c:314
int num
Definition: m32c-tdep.c:69
static void make_regs(struct gdbarch *arch)
Definition: m32c-tdep.c:799
#define M32C_MAX_INSN_LEN
Definition: m32c-tdep.c:1057
struct type * int16
Definition: m32c-tdep.c:130
static struct srcdest m32c_decode_srcdest4(struct m32c_pv_state *st, int code, int size)
Definition: m32c-tdep.c:1225
struct m32c_reg * ry
Definition: m32c-tdep.c:91
pv_t addr
Definition: m32c-tdep.c:1108
struct value::@186::@187 reg
static int m32c_register_reggroup_p(struct gdbarch *gdbarch, int regnum, struct reggroup *group)
Definition: m32c-tdep.c:256
LONGEST frame_size
Definition: m32c-tdep.c:1042
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
struct reggroup *const system_reggroup
Definition: reggroups.c:316
void set_gdbarch_sp_regnum(struct gdbarch *gdbarch, int sp_regnum)
Definition: gdbarch.c:2156
struct m32c_reg * r3
Definition: m32c-tdep.c:117
static int m32c_debug_info_reg_to_regnum(struct gdbarch *gdbarch, int reg_nr)
Definition: m32c-tdep.c:242
static m32c_read_reg_t m32c_part_read
Definition: m32c-tdep.c:300
struct type * register_type(struct gdbarch *gdbarch, int regnum)
Definition: regcache.c:152
void set_gdbarch_dummy_id(struct gdbarch *gdbarch, gdbarch_dummy_id_ftype dummy_id)
Definition: gdbarch.c:2340
static CORE_ADDR m32c_skip_prologue(struct gdbarch *gdbarch, CORE_ADDR ip)
Definition: m32c-tdep.c:1821
struct_return
Definition: arm-tdep.h:88
void set_gdbarch_address_to_pointer(struct gdbarch *gdbarch, gdbarch_address_to_pointer_ftype address_to_pointer)
Definition: gdbarch.c:2690
static int m32c_get_dest23(unsigned char *i)
Definition: m32c-tdep.c:1217
#define gdb_assert_not_reached(message)
Definition: gdb_assert.h:55
static int m32c_udisp8(struct m32c_pv_state *st)
Definition: m32c-tdep.c:1162
enum bfd_endian gdbarch_byte_order(struct gdbarch *gdbarch)
Definition: gdbarch.c:1509
int pv_is_register_k(pv_t a, int r, CORE_ADDR k)
void set_gdbarch_register_sim_regno(struct gdbarch *gdbarch, gdbarch_register_sim_regno_ftype register_sim_regno)
Definition: gdbarch.c:2514
int dwarf_num
Definition: m32c-tdep.c:75
struct type * arch_pointer_type(struct gdbarch *gdbarch, int bit, const char *name, struct type *target_type)
Definition: gdbtypes.c:5061
struct type * int32
Definition: m32c-tdep.c:130
#define TARGET_CHAR_BIT
Definition: host-defs.h:29
Definition: gdbtypes.h:749
struct type * int64
Definition: m32c-tdep.c:130
static struct srcdest m32c_decode_sd23(struct m32c_pv_state *st, int code, int size, int ind)
Definition: m32c-tdep.c:1270
int find_pc_partial_function(CORE_ADDR pc, const char **name, CORE_ADDR *address, CORE_ADDR *endaddr)
Definition: blockframe.c:320
struct type * uint16
Definition: m32c-tdep.c:129
struct m32c_reg * r3r1r2r0
Definition: m32c-tdep.c:118
void set_gdbarch_unwind_pc(struct gdbarch *gdbarch, gdbarch_unwind_pc_ftype unwind_pc)
Definition: gdbarch.c:3079
static pv_t m32c_srcdest_fetch(struct m32c_pv_state *state, struct srcdest loc, int size)
Definition: m32c-tdep.c:1114
#define G(reg)
Definition: m32c-tdep.c:792
int default_frame_sniffer(const struct frame_unwind *self, struct frame_info *this_frame, void **this_prologue_cache)
Definition: frame-unwind.c:174
static const char * m32c_register_name(struct gdbarch *gdbarch, int num)
Definition: m32c-tdep.c:221
static const char * type
Definition: language.c:113
void store(pv_t addr, CORE_ADDR size, pv_t value)
void scan(void(*func)(void *closure, pv_t addr, CORE_ADDR size, pv_t value), void *closure)
#define S(reg)
Definition: m32c-tdep.c:793
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 int m32c_pv_push(struct m32c_pv_state *state, pv_t value, int size)
Definition: m32c-tdep.c:1080
static CORE_ADDR m32c_unwind_pc(struct gdbarch *arch, struct frame_info *next_frame)
Definition: m32c-tdep.c:1957
unsigned int system_p
Definition: m32c-tdep.c:80
static int m32c_sdisp8(struct m32c_pv_state *st)
Definition: m32c-tdep.c:1169
static struct frame_id m32c_dummy_id(struct gdbarch *gdbarch, struct frame_info *this_frame)
Definition: m32c-tdep.c:2143
void set_gdbarch_pointer_to_address(struct gdbarch *gdbarch, gdbarch_pointer_to_address_ftype pointer_to_address)
Definition: gdbarch.c:2673
int gdbarch_addr_bit(struct gdbarch *gdbarch)
Definition: gdbarch.c:1848
void set_gdbarch_unwind_sp(struct gdbarch *gdbarch, gdbarch_unwind_sp_ftype unwind_sp)
Definition: gdbarch.c:3103
struct type * type
Definition: m32c-tdep.c:63
#define DMA(reg)
Definition: m32c-tdep.c:794
struct gdbarch * gdbarch
Definition: gdbarch.h:1622
int regnum
Definition: aarch64-tdep.c:77
static int m32c_pv_pushm_one(struct m32c_pv_state *state, pv_t reg, int bit, int src, int size)
Definition: m32c-tdep.c:1366
void read_memory(CORE_ADDR memaddr, gdb_byte *myaddr, ssize_t len)
Definition: corefile.c:258
struct gdbarch * arch
Definition: m32c-tdep.c:1062
pv_t * reg
Definition: m32c-tdep.c:1108
ULONGEST get_frame_register_unsigned(struct frame_info *frame, int regnum)
Definition: frame.c:1308
void * xmalloc(YYSIZE_T)
static m32c_read_reg_t m32c_sb_read
Definition: m32c-tdep.c:299
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 insn_sequence * prologue
Definition: m68hc11-tdep.c:135
m32c_write_reg_t * write
Definition: m32c-tdep.c:86
struct m32c_reg * a1
Definition: m32c-tdep.c:117
void _initialize_m32c_tdep(void)
Definition: m32c-tdep.c:2682
Definition: regdef.h:22
static struct type * m32c_register_type(struct gdbarch *arch, int reg_nr)
Definition: m32c-tdep.c:228
#define gdb_assert(expr)
Definition: gdb_assert.h:32
Definition: value.c:169
struct type * func_voyd
Definition: m32c-tdep.c:128
#define M32C_MAX_DWARF_REGNUM
Definition: m32c-tdep.c:103
struct m32c_reg * r2r0
Definition: m32c-tdep.c:118
srcdest_kind
Definition: m32c-tdep.c:1092
static struct m32c_reg * mark_system(struct m32c_reg *reg)
Definition: m32c-tdep.c:703
static enum register_status m32c_pseudo_register_read(struct gdbarch *arch, struct regcache *cache, int cookednum, gdb_byte *buf)
Definition: m32c-tdep.c:592
static m32c_write_reg_t m32c_raw_write
Definition: m32c-tdep.c:304
int core_addr_lessthan(CORE_ADDR lhs, CORE_ADDR rhs)
Definition: arch-utils.c:117
bfd_byte gdb_byte
Definition: common-types.h:38
static enum return_value_convention m32c_return_value(struct gdbarch *gdbarch, struct value *function, struct type *valtype, struct regcache *regcache, gdb_byte *readbuf, const gdb_byte *writebuf)
Definition: m32c-tdep.c:2194
struct pv_area * stack
Definition: m32c-tdep.c:1067
void set_gdbarch_pseudo_register_read(struct gdbarch *gdbarch, gdbarch_pseudo_register_read_ftype pseudo_register_read)
Definition: gdbarch.c:1984
static CORE_ADDR m32c_m16c_pointer_to_address(struct gdbarch *gdbarch, struct type *type, const gdb_byte *buf)
Definition: m32c-tdep.c:2505
#define TYPE_TARGET_TYPE(thistype)
Definition: gdbtypes.h:1226
static m32c_read_reg_t m32c_raw_read
Definition: m32c-tdep.c:297
struct bound_minimal_symbol lookup_minimal_symbol_by_pc(CORE_ADDR pc)
Definition: minsyms.c:928
unsigned int dma_p
Definition: m32c-tdep.c:79
static m32c_read_reg_t m32c_cat_read
Definition: m32c-tdep.c:301
#define RP(name, type)
Definition: m32c-tdep.c:751
static struct m32c_reg * mark_save_restore(struct m32c_reg *reg)
Definition: m32c-tdep.c:712
static struct m32c_reg * mark_dma(struct m32c_reg *reg)
Definition: m32c-tdep.c:694
#define XCNEW(T)
Definition: poison.h:121
static struct m32c_reg * add_reg(struct gdbarch *arch, const char *name, struct type *type, int sim_num, m32c_read_reg_t *read, m32c_write_reg_t *write, struct m32c_reg *rx, struct m32c_reg *ry, int n)
Definition: m32c-tdep.c:630
int xsnprintf(char *str, size_t size, const char *format,...)
Definition: common-utils.c:134
CORE_ADDR next_addr
Definition: m32c-tdep.c:1072
#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
struct value * frame_unwind_got_register(struct frame_info *frame, int regnum, int new_regnum)
Definition: frame-unwind.c:223
int target_read_memory(CORE_ADDR memaddr, gdb_byte *myaddr, ssize_t len)
Definition: target.c:1370
static struct gdbarch * m32c_gdbarch_init(struct gdbarch_info info, struct gdbarch_list *arches)
Definition: m32c-tdep.c:2610
struct gdbarch * arch
Definition: m32c-tdep.c:1020
static int m32c_return_by_passed_buf(struct type *type)
Definition: m32c-tdep.c:2185
struct type * uint8
Definition: m32c-tdep.c:129
void set_gdbarch_int_bit(struct gdbarch *gdbarch, int int_bit)
Definition: gdbarch.c:1589
struct minimal_symbol * minsym
Definition: minsyms.h:34
#define RC(name)
Definition: m32c-tdep.c:746
static struct m32c_reg * m32c_banked_register(struct m32c_reg *reg, struct regcache *cache)
Definition: m32c-tdep.c:343
static struct m32c_prologue * m32c_analyze_frame_prologue(struct frame_info *this_frame, void **this_prologue_cache)
Definition: m32c-tdep.c:1847
static int m32c_sign_ext(int v, int bits)
Definition: m32c-tdep.c:1148
#define bit(obj, st)
Definition: aarch64-tdep.c:63
int offset
Definition: agent.c:65
struct m32c_reg * rx
Definition: m32c-tdep.c:91
void set_gdbarch_virtual_frame_pointer(struct gdbarch *gdbarch, gdbarch_virtual_frame_pointer_ftype virtual_frame_pointer)
Definition: gdbarch.c:1960
int code
Definition: ser-unix.c:239
static void m32c_analyze_prologue(struct gdbarch *arch, CORE_ADDR start, CORE_ADDR limit, struct m32c_prologue *prologue)
Definition: m32c-tdep.c:1542
static int m32c_is_struct_return(struct m32c_pv_state *st, struct srcdest loc, pv_t value)
Definition: m32c-tdep.c:1458
#define TYPE_NFIELDS(thistype)
Definition: gdbtypes.h:1239
unsigned int general_p
Definition: m32c-tdep.c:78
void set_gdbarch_num_pseudo_regs(struct gdbarch *gdbarch, int num_pseudo_regs)
Definition: gdbarch.c:2067
gdbarch * arch() const
Definition: regcache.c:221
enum register_status regcache_cooked_read(struct regcache *regcache, int regnum, gdb_byte *buf)
Definition: regcache.c:661
CORE_ADDR stop_pc
Definition: infcmd.c:98
gdb_byte insn[M32C_MAX_INSN_LEN]
Definition: m32c-tdep.c:1071
struct m32c_reg regs[M32C_MAX_NUM_REGS]
Definition: m32c-tdep.c:110
static CORE_ADDR m32c_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: m32c-tdep.c:2018
static struct value * m32c_prev_register(struct frame_info *this_frame, void **this_prologue_cache, int regnum)
Definition: m32c-tdep.c:1923
static m32c_write_reg_t m32c_r3r2r1r0_write
Definition: m32c-tdep.c:309
struct m32c_reg * sp
Definition: m32c-tdep.c:119
static void m32c_find_part(struct m32c_reg *reg, int *offset_p, int *len_p)
Definition: m32c-tdep.c:409
static unsigned int m32c_next_byte(struct m32c_pv_state *st)
Definition: m32c-tdep.c:1155
const char * name
Definition: m32c-tdep.c:60
CORE_ADDR prologue_end
Definition: m32c-tdep.c:1047
unsigned long long ULONGEST
Definition: common-types.h:53
enum unwind_stop_reason default_frame_unwind_stop_reason(struct frame_info *this_frame, void **this_cache)
Definition: frame-unwind.c:184
LONGEST frame_ptr_offset
Definition: m32c-tdep.c:1027
enum register_status() m32c_read_reg_t(struct m32c_reg *reg, struct regcache *cache, gdb_byte *buf)
static int m32c_udisp24(struct m32c_pv_state *st)
Definition: m32c-tdep.c:1196
unsigned int save_restore_p
Definition: m32c-tdep.c:81
int register_size(struct gdbarch *gdbarch, int regnum)
Definition: regcache.c:164
struct type * value_type(const struct value *value)
Definition: value.c:1095
static int m32c_pushm_is_reg_save(struct m32c_pv_state *st, int src)
Definition: m32c-tdep.c:1477
enum register_status regcache_cooked_read_part(struct regcache *regcache, int regnum, int offset, int len, gdb_byte *buf)
Definition: regcache.c:972
void set_gdbarch_return_value(struct gdbarch *gdbarch, gdbarch_return_value_ftype return_value)
Definition: gdbarch.c:2738
const struct bfd_arch_info * gdbarch_bfd_arch_info(struct gdbarch *gdbarch)
Definition: gdbarch.c:1500
CORE_ADDR scan_pc
Definition: m32c-tdep.c:1072
bool find_reg(struct gdbarch *gdbarch, int reg, CORE_ADDR *offset_p)
struct type * code_addr_reg_type
Definition: m32c-tdep.c:133
int push_addr_bytes
Definition: m32c-tdep.c:141
static m32c_read_reg_t m32c_banked_read
Definition: m32c-tdep.c:298
struct reggroup *const save_reggroup
Definition: reggroups.c:319
#define TYPE_LENGTH(thistype)
Definition: gdbtypes.h:1235
void set_gdbarch_ptr_bit(struct gdbarch *gdbarch, int ptr_bit)
Definition: gdbarch.c:1841
#define RBD(name)
Definition: m32c-tdep.c:757
enum register_status regcache_raw_read_unsigned(struct regcache *regcache, int regnum, ULONGEST *val)
Definition: regcache.c:612
void set_gdbarch_push_dummy_call(struct gdbarch *gdbarch, gdbarch_push_dummy_call_ftype push_dummy_call)
Definition: gdbarch.c:2381
ULONGEST read_memory_unsigned_integer(CORE_ADDR memaddr, int len, enum bfd_endian byte_order)
Definition: corefile.c:326
struct m32c_reg * r1
Definition: m32c-tdep.c:117
void set_gdbarch_sw_breakpoint_from_kind(struct gdbarch *gdbarch, gdbarch_sw_breakpoint_from_kind_ftype sw_breakpoint_from_kind)
Definition: gdbarch.c:2888
pv_t fetch(pv_t addr, CORE_ADDR size)
static int m32c_udisp16(struct m32c_pv_state *st)
Definition: m32c-tdep.c:1176
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
#define CB(name, raw_pair)
Definition: m32c-tdep.c:771
#define R16U(name)
Definition: m32c-tdep.c:736
struct bound_minimal_symbol lookup_minimal_symbol(const char *name, const char *sfile, struct objfile *objf)
Definition: minsyms.c:311
int n
Definition: m32c-tdep.c:92
void set_gdbarch_pc_regnum(struct gdbarch *gdbarch, int pc_regnum)
Definition: gdbarch.c:2173
void set_gdbarch_register_name(struct gdbarch *gdbarch, gdbarch_register_name_ftype register_name)
Definition: gdbarch.c:2292
int pv_is_constant(pv_t a)
static int m32c_pv_pushm(struct m32c_pv_state *state, int src)
Definition: m32c-tdep.c:1381
CORE_ADDR get_frame_func(struct frame_info *this_frame)
Definition: frame.c:1001
enum m32c_prologue_kind kind
Definition: m32c-tdep.c:1022
void error(const char *fmt,...)
Definition: errors.c:38
m32c_read_reg_t * read
Definition: m32c-tdep.c:85
pv_t pv_register(int reg, CORE_ADDR k)
size_t size
Definition: go32-nat.c:242
int sim_num
Definition: m32c-tdep.c:72
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
int ret_addr_bytes
Definition: m32c-tdep.c:137
struct type * voyd
Definition: m32c-tdep.c:128
struct gdbarch * get_frame_arch(struct frame_info *this_frame)
Definition: frame.c:2691
long long LONGEST
Definition: common-types.h:52
struct m32c_reg * flg
Definition: m32c-tdep.c:116
void regcache_cooked_write(struct regcache *regcache, int regnum, const gdb_byte *buf)
Definition: regcache.c:873
static int m32c_is_1st_arg_reg(struct m32c_pv_state *state, pv_t value)
Definition: m32c-tdep.c:1401
struct type * lookup_function_type(struct type *type)
Definition: gdbtypes.c:519
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
void set_gdbarch_vbit_in_delta(struct gdbarch *gdbarch, int vbit_in_delta)
Definition: gdbarch.c:3874
#define CHL(name, type)
Definition: m32c-tdep.c:779