* m68k-tdep.c (m68k_dwarf_reg_to_regnum): New.
[deliverable/binutils-gdb.git] / gdb / m68k-tdep.c
1 /* Target-dependent code for the Motorola 68000 series.
2
3 Copyright (C) 1990, 1991, 1992, 1993, 1994, 1995, 1996, 1999, 2000,
4 2001, 2002, 2003, 2004, 2005 Free Software Foundation, Inc.
5
6 This file is part of GDB.
7
8 This program is free software; you can redistribute it and/or modify
9 it under the terms of the GNU General Public License as published by
10 the Free Software Foundation; either version 2 of the License, or
11 (at your option) any later version.
12
13 This program is distributed in the hope that it will be useful,
14 but WITHOUT ANY WARRANTY; without even the implied warranty of
15 MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
16 GNU General Public License for more details.
17
18 You should have received a copy of the GNU General Public License
19 along with this program; if not, write to the Free Software
20 Foundation, Inc., 51 Franklin Street, Fifth Floor,
21 Boston, MA 02110-1301, USA. */
22
23 #include "defs.h"
24 #include "dwarf2-frame.h"
25 #include "frame.h"
26 #include "frame-base.h"
27 #include "frame-unwind.h"
28 #include "floatformat.h"
29 #include "symtab.h"
30 #include "gdbcore.h"
31 #include "value.h"
32 #include "gdb_string.h"
33 #include "gdb_assert.h"
34 #include "inferior.h"
35 #include "regcache.h"
36 #include "arch-utils.h"
37 #include "osabi.h"
38 #include "dis-asm.h"
39
40 #include "m68k-tdep.h"
41 \f
42
43 #define P_LINKL_FP 0x480e
44 #define P_LINKW_FP 0x4e56
45 #define P_PEA_FP 0x4856
46 #define P_MOVEAL_SP_FP 0x2c4f
47 #define P_ADDAW_SP 0xdefc
48 #define P_ADDAL_SP 0xdffc
49 #define P_SUBQW_SP 0x514f
50 #define P_SUBQL_SP 0x518f
51 #define P_LEA_SP_SP 0x4fef
52 #define P_LEA_PC_A5 0x4bfb0170
53 #define P_FMOVEMX_SP 0xf227
54 #define P_MOVEL_SP 0x2f00
55 #define P_MOVEML_SP 0x48e7
56
57
58 #define REGISTER_BYTES_FP (16*4 + 8 + 8*12 + 3*4)
59 #define REGISTER_BYTES_NOFP (16*4 + 8)
60
61 /* Offset from SP to first arg on stack at first instruction of a function */
62 #define SP_ARG0 (1 * 4)
63
64 #if !defined (BPT_VECTOR)
65 #define BPT_VECTOR 0xf
66 #endif
67
68 static const gdb_byte *
69 m68k_local_breakpoint_from_pc (CORE_ADDR *pcptr, int *lenptr)
70 {
71 static gdb_byte break_insn[] = {0x4e, (0x40 | BPT_VECTOR)};
72 *lenptr = sizeof (break_insn);
73 return break_insn;
74 }
75
76
77 static int
78 m68k_register_bytes_ok (long numbytes)
79 {
80 return ((numbytes == REGISTER_BYTES_FP)
81 || (numbytes == REGISTER_BYTES_NOFP));
82 }
83
84 /* Return the GDB type object for the "standard" data type of data in
85 register N. This should be int for D0-D7, SR, FPCONTROL and
86 FPSTATUS, long double for FP0-FP7, and void pointer for all others
87 (A0-A7, PC, FPIADDR). Note, for registers which contain
88 addresses return pointer to void, not pointer to char, because we
89 don't want to attempt to print the string after printing the
90 address. */
91
92 static struct type *
93 m68k_register_type (struct gdbarch *gdbarch, int regnum)
94 {
95 if (regnum >= FP0_REGNUM && regnum <= FP0_REGNUM + 7)
96 return builtin_type_m68881_ext;
97
98 if (regnum == M68K_FPI_REGNUM || regnum == PC_REGNUM)
99 return builtin_type_void_func_ptr;
100
101 if (regnum == M68K_FPC_REGNUM || regnum == M68K_FPS_REGNUM
102 || regnum == PS_REGNUM)
103 return builtin_type_int32;
104
105 if (regnum >= M68K_A0_REGNUM && regnum <= M68K_A0_REGNUM + 7)
106 return builtin_type_void_data_ptr;
107
108 return builtin_type_int32;
109 }
110
111 /* Function: m68k_register_name
112 Returns the name of the standard m68k register regnum. */
113
114 static const char *
115 m68k_register_name (int regnum)
116 {
117 static char *register_names[] = {
118 "d0", "d1", "d2", "d3", "d4", "d5", "d6", "d7",
119 "a0", "a1", "a2", "a3", "a4", "a5", "fp", "sp",
120 "ps", "pc",
121 "fp0", "fp1", "fp2", "fp3", "fp4", "fp5", "fp6", "fp7",
122 "fpcontrol", "fpstatus", "fpiaddr", "fpcode", "fpflags"
123 };
124
125 if (regnum < 0 || regnum >= ARRAY_SIZE (register_names))
126 internal_error (__FILE__, __LINE__,
127 _("m68k_register_name: illegal register number %d"), regnum);
128 else
129 return register_names[regnum];
130 }
131 \f
132 /* Return nonzero if a value of type TYPE stored in register REGNUM
133 needs any special handling. */
134
135 static int
136 m68k_convert_register_p (int regnum, struct type *type)
137 {
138 return (regnum >= M68K_FP0_REGNUM && regnum <= M68K_FP0_REGNUM + 7);
139 }
140
141 /* Read a value of type TYPE from register REGNUM in frame FRAME, and
142 return its contents in TO. */
143
144 static void
145 m68k_register_to_value (struct frame_info *frame, int regnum,
146 struct type *type, gdb_byte *to)
147 {
148 gdb_byte from[M68K_MAX_REGISTER_SIZE];
149
150 /* We only support floating-point values. */
151 if (TYPE_CODE (type) != TYPE_CODE_FLT)
152 {
153 warning (_("Cannot convert floating-point register value "
154 "to non-floating-point type."));
155 return;
156 }
157
158 /* Convert to TYPE. This should be a no-op if TYPE is equivalent to
159 the extended floating-point format used by the FPU. */
160 get_frame_register (frame, regnum, from);
161 convert_typed_floating (from, builtin_type_m68881_ext, to, type);
162 }
163
164 /* Write the contents FROM of a value of type TYPE into register
165 REGNUM in frame FRAME. */
166
167 static void
168 m68k_value_to_register (struct frame_info *frame, int regnum,
169 struct type *type, const gdb_byte *from)
170 {
171 gdb_byte to[M68K_MAX_REGISTER_SIZE];
172
173 /* We only support floating-point values. */
174 if (TYPE_CODE (type) != TYPE_CODE_FLT)
175 {
176 warning (_("Cannot convert non-floating-point type "
177 "to floating-point register value."));
178 return;
179 }
180
181 /* Convert from TYPE. This should be a no-op if TYPE is equivalent
182 to the extended floating-point format used by the FPU. */
183 convert_typed_floating (from, type, to, builtin_type_m68881_ext);
184 put_frame_register (frame, regnum, to);
185 }
186
187 \f
188 /* There is a fair number of calling conventions that are in somewhat
189 wide use. The 68000/08/10 don't support an FPU, not even as a
190 coprocessor. All function return values are stored in %d0/%d1.
191 Structures are returned in a static buffer, a pointer to which is
192 returned in %d0. This means that functions returning a structure
193 are not re-entrant. To avoid this problem some systems use a
194 convention where the caller passes a pointer to a buffer in %a1
195 where the return values is to be stored. This convention is the
196 default, and is implemented in the function m68k_return_value.
197
198 The 68020/030/040/060 do support an FPU, either as a coprocessor
199 (68881/2) or built-in (68040/68060). That's why System V release 4
200 (SVR4) instroduces a new calling convention specified by the SVR4
201 psABI. Integer values are returned in %d0/%d1, pointer return
202 values in %a0 and floating values in %fp0. When calling functions
203 returning a structure the caller should pass a pointer to a buffer
204 for the return value in %a0. This convention is implemented in the
205 function m68k_svr4_return_value, and by appropriately setting the
206 struct_value_regnum member of `struct gdbarch_tdep'.
207
208 GNU/Linux returns values in the same way as SVR4 does, but uses %a1
209 for passing the structure return value buffer.
210
211 GCC can also generate code where small structures are returned in
212 %d0/%d1 instead of in memory by using -freg-struct-return. This is
213 the default on NetBSD a.out, OpenBSD and GNU/Linux and several
214 embedded systems. This convention is implemented by setting the
215 struct_return member of `struct gdbarch_tdep' to reg_struct_return. */
216
217 /* Read a function return value of TYPE from REGCACHE, and copy that
218 into VALBUF. */
219
220 static void
221 m68k_extract_return_value (struct type *type, struct regcache *regcache,
222 gdb_byte *valbuf)
223 {
224 int len = TYPE_LENGTH (type);
225 gdb_byte buf[M68K_MAX_REGISTER_SIZE];
226
227 if (len <= 4)
228 {
229 regcache_raw_read (regcache, M68K_D0_REGNUM, buf);
230 memcpy (valbuf, buf + (4 - len), len);
231 }
232 else if (len <= 8)
233 {
234 regcache_raw_read (regcache, M68K_D0_REGNUM, buf);
235 memcpy (valbuf, buf + (8 - len), len - 4);
236 regcache_raw_read (regcache, M68K_D1_REGNUM, valbuf + (len - 4));
237 }
238 else
239 internal_error (__FILE__, __LINE__,
240 _("Cannot extract return value of %d bytes long."), len);
241 }
242
243 static void
244 m68k_svr4_extract_return_value (struct type *type, struct regcache *regcache,
245 gdb_byte *valbuf)
246 {
247 int len = TYPE_LENGTH (type);
248 gdb_byte buf[M68K_MAX_REGISTER_SIZE];
249
250 if (TYPE_CODE (type) == TYPE_CODE_FLT)
251 {
252 regcache_raw_read (regcache, M68K_FP0_REGNUM, buf);
253 convert_typed_floating (buf, builtin_type_m68881_ext, valbuf, type);
254 }
255 else if (TYPE_CODE (type) == TYPE_CODE_PTR && len == 4)
256 regcache_raw_read (regcache, M68K_A0_REGNUM, valbuf);
257 else
258 m68k_extract_return_value (type, regcache, valbuf);
259 }
260
261 /* Write a function return value of TYPE from VALBUF into REGCACHE. */
262
263 static void
264 m68k_store_return_value (struct type *type, struct regcache *regcache,
265 const gdb_byte *valbuf)
266 {
267 int len = TYPE_LENGTH (type);
268
269 if (len <= 4)
270 regcache_raw_write_part (regcache, M68K_D0_REGNUM, 4 - len, len, valbuf);
271 else if (len <= 8)
272 {
273 regcache_raw_write_part (regcache, M68K_D0_REGNUM, 8 - len,
274 len - 4, valbuf);
275 regcache_raw_write (regcache, M68K_D1_REGNUM, valbuf + (len - 4));
276 }
277 else
278 internal_error (__FILE__, __LINE__,
279 _("Cannot store return value of %d bytes long."), len);
280 }
281
282 static void
283 m68k_svr4_store_return_value (struct type *type, struct regcache *regcache,
284 const gdb_byte *valbuf)
285 {
286 int len = TYPE_LENGTH (type);
287
288 if (TYPE_CODE (type) == TYPE_CODE_FLT)
289 {
290 gdb_byte buf[M68K_MAX_REGISTER_SIZE];
291 convert_typed_floating (valbuf, type, buf, builtin_type_m68881_ext);
292 regcache_raw_write (regcache, M68K_FP0_REGNUM, buf);
293 }
294 else if (TYPE_CODE (type) == TYPE_CODE_PTR && len == 4)
295 {
296 regcache_raw_write (regcache, M68K_A0_REGNUM, valbuf);
297 regcache_raw_write (regcache, M68K_D0_REGNUM, valbuf);
298 }
299 else
300 m68k_store_return_value (type, regcache, valbuf);
301 }
302
303 /* Return non-zero if TYPE, which is assumed to be a structure or
304 union type, should be returned in registers for architecture
305 GDBARCH. */
306
307 static int
308 m68k_reg_struct_return_p (struct gdbarch *gdbarch, struct type *type)
309 {
310 struct gdbarch_tdep *tdep = gdbarch_tdep (gdbarch);
311 enum type_code code = TYPE_CODE (type);
312 int len = TYPE_LENGTH (type);
313
314 gdb_assert (code == TYPE_CODE_STRUCT || code == TYPE_CODE_UNION);
315
316 if (tdep->struct_return == pcc_struct_return)
317 return 0;
318
319 return (len == 1 || len == 2 || len == 4 || len == 8);
320 }
321
322 /* Determine, for architecture GDBARCH, how a return value of TYPE
323 should be returned. If it is supposed to be returned in registers,
324 and READBUF is non-zero, read the appropriate value from REGCACHE,
325 and copy it into READBUF. If WRITEBUF is non-zero, write the value
326 from WRITEBUF into REGCACHE. */
327
328 static enum return_value_convention
329 m68k_return_value (struct gdbarch *gdbarch, struct type *type,
330 struct regcache *regcache, gdb_byte *readbuf,
331 const gdb_byte *writebuf)
332 {
333 enum type_code code = TYPE_CODE (type);
334
335 /* GCC returns a `long double' in memory too. */
336 if (((code == TYPE_CODE_STRUCT || code == TYPE_CODE_UNION)
337 && !m68k_reg_struct_return_p (gdbarch, type))
338 || (code == TYPE_CODE_FLT && TYPE_LENGTH (type) == 12))
339 {
340 /* The default on m68k is to return structures in static memory.
341 Consequently a function must return the address where we can
342 find the return value. */
343
344 if (readbuf)
345 {
346 ULONGEST addr;
347
348 regcache_raw_read_unsigned (regcache, M68K_D0_REGNUM, &addr);
349 read_memory (addr, readbuf, TYPE_LENGTH (type));
350 }
351
352 return RETURN_VALUE_ABI_RETURNS_ADDRESS;
353 }
354
355 if (readbuf)
356 m68k_extract_return_value (type, regcache, readbuf);
357 if (writebuf)
358 m68k_store_return_value (type, regcache, writebuf);
359
360 return RETURN_VALUE_REGISTER_CONVENTION;
361 }
362
363 static enum return_value_convention
364 m68k_svr4_return_value (struct gdbarch *gdbarch, struct type *type,
365 struct regcache *regcache, gdb_byte *readbuf,
366 const gdb_byte *writebuf)
367 {
368 enum type_code code = TYPE_CODE (type);
369
370 if ((code == TYPE_CODE_STRUCT || code == TYPE_CODE_UNION)
371 && !m68k_reg_struct_return_p (gdbarch, type))
372 {
373 /* The System V ABI says that:
374
375 "A function returning a structure or union also sets %a0 to
376 the value it finds in %a0. Thus when the caller receives
377 control again, the address of the returned object resides in
378 register %a0."
379
380 So the ABI guarantees that we can always find the return
381 value just after the function has returned. */
382
383 if (readbuf)
384 {
385 ULONGEST addr;
386
387 regcache_raw_read_unsigned (regcache, M68K_A0_REGNUM, &addr);
388 read_memory (addr, readbuf, TYPE_LENGTH (type));
389 }
390
391 return RETURN_VALUE_ABI_RETURNS_ADDRESS;
392 }
393
394 /* This special case is for structures consisting of a single
395 `float' or `double' member. These structures are returned in
396 %fp0. For these structures, we call ourselves recursively,
397 changing TYPE into the type of the first member of the structure.
398 Since that should work for all structures that have only one
399 member, we don't bother to check the member's type here. */
400 if (code == TYPE_CODE_STRUCT && TYPE_NFIELDS (type) == 1)
401 {
402 type = check_typedef (TYPE_FIELD_TYPE (type, 0));
403 return m68k_svr4_return_value (gdbarch, type, regcache,
404 readbuf, writebuf);
405 }
406
407 if (readbuf)
408 m68k_svr4_extract_return_value (type, regcache, readbuf);
409 if (writebuf)
410 m68k_svr4_store_return_value (type, regcache, writebuf);
411
412 return RETURN_VALUE_REGISTER_CONVENTION;
413 }
414 \f
415
416 static CORE_ADDR
417 m68k_push_dummy_call (struct gdbarch *gdbarch, struct value *function,
418 struct regcache *regcache, CORE_ADDR bp_addr, int nargs,
419 struct value **args, CORE_ADDR sp, int struct_return,
420 CORE_ADDR struct_addr)
421 {
422 struct gdbarch_tdep *tdep = gdbarch_tdep (gdbarch);
423 gdb_byte buf[4];
424 int i;
425
426 /* Push arguments in reverse order. */
427 for (i = nargs - 1; i >= 0; i--)
428 {
429 struct type *value_type = value_enclosing_type (args[i]);
430 int len = TYPE_LENGTH (value_type);
431 int container_len = (len + 3) & ~3;
432 int offset;
433
434 /* Non-scalars bigger than 4 bytes are left aligned, others are
435 right aligned. */
436 if ((TYPE_CODE (value_type) == TYPE_CODE_STRUCT
437 || TYPE_CODE (value_type) == TYPE_CODE_UNION
438 || TYPE_CODE (value_type) == TYPE_CODE_ARRAY)
439 && len > 4)
440 offset = 0;
441 else
442 offset = container_len - len;
443 sp -= container_len;
444 write_memory (sp + offset, value_contents_all (args[i]), len);
445 }
446
447 /* Store struct value address. */
448 if (struct_return)
449 {
450 store_unsigned_integer (buf, 4, struct_addr);
451 regcache_cooked_write (regcache, tdep->struct_value_regnum, buf);
452 }
453
454 /* Store return address. */
455 sp -= 4;
456 store_unsigned_integer (buf, 4, bp_addr);
457 write_memory (sp, buf, 4);
458
459 /* Finally, update the stack pointer... */
460 store_unsigned_integer (buf, 4, sp);
461 regcache_cooked_write (regcache, M68K_SP_REGNUM, buf);
462
463 /* ...and fake a frame pointer. */
464 regcache_cooked_write (regcache, M68K_FP_REGNUM, buf);
465
466 /* DWARF2/GCC uses the stack address *before* the function call as a
467 frame's CFA. */
468 return sp + 8;
469 }
470
471 /* Convert a dwarf or dwarf2 regnumber to a GDB regnum. */
472
473 static int
474 m68k_dwarf_reg_to_regnum (int num)
475 {
476 if (num < 8)
477 /* d0..7 */
478 return (num - 0) + M68K_D0_REGNUM;
479 else if (num < 16)
480 /* a0..7 */
481 return (num - 8) + M68K_A0_REGNUM;
482 else if (num < 24)
483 /* fp0..7 */
484 return (num - 16) + M68K_FP0_REGNUM;
485 else if (num == 25)
486 /* pc */
487 return M68K_PC_REGNUM;
488 else
489 return NUM_REGS + NUM_PSEUDO_REGS;
490 }
491
492 \f
493 struct m68k_frame_cache
494 {
495 /* Base address. */
496 CORE_ADDR base;
497 CORE_ADDR sp_offset;
498 CORE_ADDR pc;
499
500 /* Saved registers. */
501 CORE_ADDR saved_regs[M68K_NUM_REGS];
502 CORE_ADDR saved_sp;
503
504 /* Stack space reserved for local variables. */
505 long locals;
506 };
507
508 /* Allocate and initialize a frame cache. */
509
510 static struct m68k_frame_cache *
511 m68k_alloc_frame_cache (void)
512 {
513 struct m68k_frame_cache *cache;
514 int i;
515
516 cache = FRAME_OBSTACK_ZALLOC (struct m68k_frame_cache);
517
518 /* Base address. */
519 cache->base = 0;
520 cache->sp_offset = -4;
521 cache->pc = 0;
522
523 /* Saved registers. We initialize these to -1 since zero is a valid
524 offset (that's where %fp is supposed to be stored). */
525 for (i = 0; i < M68K_NUM_REGS; i++)
526 cache->saved_regs[i] = -1;
527
528 /* Frameless until proven otherwise. */
529 cache->locals = -1;
530
531 return cache;
532 }
533
534 /* Check whether PC points at a code that sets up a new stack frame.
535 If so, it updates CACHE and returns the address of the first
536 instruction after the sequence that sets removes the "hidden"
537 argument from the stack or CURRENT_PC, whichever is smaller.
538 Otherwise, return PC. */
539
540 static CORE_ADDR
541 m68k_analyze_frame_setup (CORE_ADDR pc, CORE_ADDR current_pc,
542 struct m68k_frame_cache *cache)
543 {
544 int op;
545
546 if (pc >= current_pc)
547 return current_pc;
548
549 op = read_memory_unsigned_integer (pc, 2);
550
551 if (op == P_LINKW_FP || op == P_LINKL_FP || op == P_PEA_FP)
552 {
553 cache->saved_regs[M68K_FP_REGNUM] = 0;
554 cache->sp_offset += 4;
555 if (op == P_LINKW_FP)
556 {
557 /* link.w %fp, #-N */
558 /* link.w %fp, #0; adda.l #-N, %sp */
559 cache->locals = -read_memory_integer (pc + 2, 2);
560
561 if (pc + 4 < current_pc && cache->locals == 0)
562 {
563 op = read_memory_unsigned_integer (pc + 4, 2);
564 if (op == P_ADDAL_SP)
565 {
566 cache->locals = read_memory_integer (pc + 6, 4);
567 return pc + 10;
568 }
569 }
570
571 return pc + 4;
572 }
573 else if (op == P_LINKL_FP)
574 {
575 /* link.l %fp, #-N */
576 cache->locals = -read_memory_integer (pc + 2, 4);
577 return pc + 6;
578 }
579 else
580 {
581 /* pea (%fp); movea.l %sp, %fp */
582 cache->locals = 0;
583
584 if (pc + 2 < current_pc)
585 {
586 op = read_memory_unsigned_integer (pc + 2, 2);
587
588 if (op == P_MOVEAL_SP_FP)
589 {
590 /* move.l %sp, %fp */
591 return pc + 4;
592 }
593 }
594
595 return pc + 2;
596 }
597 }
598 else if ((op & 0170777) == P_SUBQW_SP || (op & 0170777) == P_SUBQL_SP)
599 {
600 /* subq.[wl] #N,%sp */
601 /* subq.[wl] #8,%sp; subq.[wl] #N,%sp */
602 cache->locals = (op & 07000) == 0 ? 8 : (op & 07000) >> 9;
603 if (pc + 2 < current_pc)
604 {
605 op = read_memory_unsigned_integer (pc + 2, 2);
606 if ((op & 0170777) == P_SUBQW_SP || (op & 0170777) == P_SUBQL_SP)
607 {
608 cache->locals += (op & 07000) == 0 ? 8 : (op & 07000) >> 9;
609 return pc + 4;
610 }
611 }
612 return pc + 2;
613 }
614 else if (op == P_ADDAW_SP || op == P_LEA_SP_SP)
615 {
616 /* adda.w #-N,%sp */
617 /* lea (-N,%sp),%sp */
618 cache->locals = -read_memory_integer (pc + 2, 2);
619 return pc + 4;
620 }
621 else if (op == P_ADDAL_SP)
622 {
623 /* adda.l #-N,%sp */
624 cache->locals = -read_memory_integer (pc + 2, 4);
625 return pc + 6;
626 }
627
628 return pc;
629 }
630
631 /* Check whether PC points at code that saves registers on the stack.
632 If so, it updates CACHE and returns the address of the first
633 instruction after the register saves or CURRENT_PC, whichever is
634 smaller. Otherwise, return PC. */
635
636 static CORE_ADDR
637 m68k_analyze_register_saves (CORE_ADDR pc, CORE_ADDR current_pc,
638 struct m68k_frame_cache *cache)
639 {
640 if (cache->locals >= 0)
641 {
642 CORE_ADDR offset;
643 int op;
644 int i, mask, regno;
645
646 offset = -4 - cache->locals;
647 while (pc < current_pc)
648 {
649 op = read_memory_unsigned_integer (pc, 2);
650 if (op == P_FMOVEMX_SP)
651 {
652 /* fmovem.x REGS,-(%sp) */
653 op = read_memory_unsigned_integer (pc + 2, 2);
654 if ((op & 0xff00) == 0xe000)
655 {
656 mask = op & 0xff;
657 for (i = 0; i < 16; i++, mask >>= 1)
658 {
659 if (mask & 1)
660 {
661 cache->saved_regs[i + M68K_FP0_REGNUM] = offset;
662 offset -= 12;
663 }
664 }
665 pc += 4;
666 }
667 else
668 break;
669 }
670 else if ((op & 0170677) == P_MOVEL_SP)
671 {
672 /* move.l %R,-(%sp) */
673 regno = ((op & 07000) >> 9) | ((op & 0100) >> 3);
674 cache->saved_regs[regno] = offset;
675 offset -= 4;
676 pc += 2;
677 }
678 else if (op == P_MOVEML_SP)
679 {
680 /* movem.l REGS,-(%sp) */
681 mask = read_memory_unsigned_integer (pc + 2, 2);
682 for (i = 0; i < 16; i++, mask >>= 1)
683 {
684 if (mask & 1)
685 {
686 cache->saved_regs[15 - i] = offset;
687 offset -= 4;
688 }
689 }
690 pc += 4;
691 }
692 else
693 break;
694 }
695 }
696
697 return pc;
698 }
699
700
701 /* Do a full analysis of the prologue at PC and update CACHE
702 accordingly. Bail out early if CURRENT_PC is reached. Return the
703 address where the analysis stopped.
704
705 We handle all cases that can be generated by gcc.
706
707 For allocating a stack frame:
708
709 link.w %a6,#-N
710 link.l %a6,#-N
711 pea (%fp); move.l %sp,%fp
712 link.w %a6,#0; add.l #-N,%sp
713 subq.l #N,%sp
714 subq.w #N,%sp
715 subq.w #8,%sp; subq.w #N-8,%sp
716 add.w #-N,%sp
717 lea (-N,%sp),%sp
718 add.l #-N,%sp
719
720 For saving registers:
721
722 fmovem.x REGS,-(%sp)
723 move.l R1,-(%sp)
724 move.l R1,-(%sp); move.l R2,-(%sp)
725 movem.l REGS,-(%sp)
726
727 For setting up the PIC register:
728
729 lea (%pc,N),%a5
730
731 */
732
733 static CORE_ADDR
734 m68k_analyze_prologue (CORE_ADDR pc, CORE_ADDR current_pc,
735 struct m68k_frame_cache *cache)
736 {
737 unsigned int op;
738
739 pc = m68k_analyze_frame_setup (pc, current_pc, cache);
740 pc = m68k_analyze_register_saves (pc, current_pc, cache);
741 if (pc >= current_pc)
742 return current_pc;
743
744 /* Check for GOT setup. */
745 op = read_memory_unsigned_integer (pc, 4);
746 if (op == P_LEA_PC_A5)
747 {
748 /* lea (%pc,N),%a5 */
749 return pc + 6;
750 }
751
752 return pc;
753 }
754
755 /* Return PC of first real instruction. */
756
757 static CORE_ADDR
758 m68k_skip_prologue (CORE_ADDR start_pc)
759 {
760 struct m68k_frame_cache cache;
761 CORE_ADDR pc;
762 int op;
763
764 cache.locals = -1;
765 pc = m68k_analyze_prologue (start_pc, (CORE_ADDR) -1, &cache);
766 if (cache.locals < 0)
767 return start_pc;
768 return pc;
769 }
770
771 static CORE_ADDR
772 m68k_unwind_pc (struct gdbarch *gdbarch, struct frame_info *next_frame)
773 {
774 gdb_byte buf[8];
775
776 frame_unwind_register (next_frame, PC_REGNUM, buf);
777 return extract_typed_address (buf, builtin_type_void_func_ptr);
778 }
779 \f
780 /* Normal frames. */
781
782 static struct m68k_frame_cache *
783 m68k_frame_cache (struct frame_info *next_frame, void **this_cache)
784 {
785 struct m68k_frame_cache *cache;
786 gdb_byte buf[4];
787 int i;
788
789 if (*this_cache)
790 return *this_cache;
791
792 cache = m68k_alloc_frame_cache ();
793 *this_cache = cache;
794
795 /* In principle, for normal frames, %fp holds the frame pointer,
796 which holds the base address for the current stack frame.
797 However, for functions that don't need it, the frame pointer is
798 optional. For these "frameless" functions the frame pointer is
799 actually the frame pointer of the calling frame. Signal
800 trampolines are just a special case of a "frameless" function.
801 They (usually) share their frame pointer with the frame that was
802 in progress when the signal occurred. */
803
804 frame_unwind_register (next_frame, M68K_FP_REGNUM, buf);
805 cache->base = extract_unsigned_integer (buf, 4);
806 if (cache->base == 0)
807 return cache;
808
809 /* For normal frames, %pc is stored at 4(%fp). */
810 cache->saved_regs[M68K_PC_REGNUM] = 4;
811
812 cache->pc = frame_func_unwind (next_frame);
813 if (cache->pc != 0)
814 m68k_analyze_prologue (cache->pc, frame_pc_unwind (next_frame), cache);
815
816 if (cache->locals < 0)
817 {
818 /* We didn't find a valid frame, which means that CACHE->base
819 currently holds the frame pointer for our calling frame. If
820 we're at the start of a function, or somewhere half-way its
821 prologue, the function's frame probably hasn't been fully
822 setup yet. Try to reconstruct the base address for the stack
823 frame by looking at the stack pointer. For truly "frameless"
824 functions this might work too. */
825
826 frame_unwind_register (next_frame, M68K_SP_REGNUM, buf);
827 cache->base = extract_unsigned_integer (buf, 4) + cache->sp_offset;
828 }
829
830 /* Now that we have the base address for the stack frame we can
831 calculate the value of %sp in the calling frame. */
832 cache->saved_sp = cache->base + 8;
833
834 /* Adjust all the saved registers such that they contain addresses
835 instead of offsets. */
836 for (i = 0; i < M68K_NUM_REGS; i++)
837 if (cache->saved_regs[i] != -1)
838 cache->saved_regs[i] += cache->base;
839
840 return cache;
841 }
842
843 static void
844 m68k_frame_this_id (struct frame_info *next_frame, void **this_cache,
845 struct frame_id *this_id)
846 {
847 struct m68k_frame_cache *cache = m68k_frame_cache (next_frame, this_cache);
848
849 /* This marks the outermost frame. */
850 if (cache->base == 0)
851 return;
852
853 /* See the end of m68k_push_dummy_call. */
854 *this_id = frame_id_build (cache->base + 8, cache->pc);
855 }
856
857 static void
858 m68k_frame_prev_register (struct frame_info *next_frame, void **this_cache,
859 int regnum, int *optimizedp,
860 enum lval_type *lvalp, CORE_ADDR *addrp,
861 int *realnump, gdb_byte *valuep)
862 {
863 struct m68k_frame_cache *cache = m68k_frame_cache (next_frame, this_cache);
864
865 gdb_assert (regnum >= 0);
866
867 if (regnum == M68K_SP_REGNUM && cache->saved_sp)
868 {
869 *optimizedp = 0;
870 *lvalp = not_lval;
871 *addrp = 0;
872 *realnump = -1;
873 if (valuep)
874 {
875 /* Store the value. */
876 store_unsigned_integer (valuep, 4, cache->saved_sp);
877 }
878 return;
879 }
880
881 if (regnum < M68K_NUM_REGS && cache->saved_regs[regnum] != -1)
882 {
883 *optimizedp = 0;
884 *lvalp = lval_memory;
885 *addrp = cache->saved_regs[regnum];
886 *realnump = -1;
887 if (valuep)
888 {
889 /* Read the value in from memory. */
890 read_memory (*addrp, valuep,
891 register_size (current_gdbarch, regnum));
892 }
893 return;
894 }
895
896 *optimizedp = 0;
897 *lvalp = lval_register;
898 *addrp = 0;
899 *realnump = regnum;
900 if (valuep)
901 frame_unwind_register (next_frame, (*realnump), valuep);
902 }
903
904 static const struct frame_unwind m68k_frame_unwind =
905 {
906 NORMAL_FRAME,
907 m68k_frame_this_id,
908 m68k_frame_prev_register
909 };
910
911 static const struct frame_unwind *
912 m68k_frame_sniffer (struct frame_info *next_frame)
913 {
914 return &m68k_frame_unwind;
915 }
916 \f
917 static CORE_ADDR
918 m68k_frame_base_address (struct frame_info *next_frame, void **this_cache)
919 {
920 struct m68k_frame_cache *cache = m68k_frame_cache (next_frame, this_cache);
921
922 return cache->base;
923 }
924
925 static const struct frame_base m68k_frame_base =
926 {
927 &m68k_frame_unwind,
928 m68k_frame_base_address,
929 m68k_frame_base_address,
930 m68k_frame_base_address
931 };
932
933 static struct frame_id
934 m68k_unwind_dummy_id (struct gdbarch *gdbarch, struct frame_info *next_frame)
935 {
936 gdb_byte buf[4];
937 CORE_ADDR fp;
938
939 frame_unwind_register (next_frame, M68K_FP_REGNUM, buf);
940 fp = extract_unsigned_integer (buf, 4);
941
942 /* See the end of m68k_push_dummy_call. */
943 return frame_id_build (fp + 8, frame_pc_unwind (next_frame));
944 }
945 \f
946 #ifdef USE_PROC_FS /* Target dependent support for /proc */
947
948 #include <sys/procfs.h>
949
950 /* Prototypes for supply_gregset etc. */
951 #include "gregset.h"
952
953 /* The /proc interface divides the target machine's register set up into
954 two different sets, the general register set (gregset) and the floating
955 point register set (fpregset). For each set, there is an ioctl to get
956 the current register set and another ioctl to set the current values.
957
958 The actual structure passed through the ioctl interface is, of course,
959 naturally machine dependent, and is different for each set of registers.
960 For the m68k for example, the general register set is typically defined
961 by:
962
963 typedef int gregset_t[18];
964
965 #define R_D0 0
966 ...
967 #define R_PS 17
968
969 and the floating point set by:
970
971 typedef struct fpregset {
972 int f_pcr;
973 int f_psr;
974 int f_fpiaddr;
975 int f_fpregs[8][3]; (8 regs, 96 bits each)
976 } fpregset_t;
977
978 These routines provide the packing and unpacking of gregset_t and
979 fpregset_t formatted data.
980
981 */
982
983 /* Atari SVR4 has R_SR but not R_PS */
984
985 #if !defined (R_PS) && defined (R_SR)
986 #define R_PS R_SR
987 #endif
988
989 /* Given a pointer to a general register set in /proc format (gregset_t *),
990 unpack the register contents and supply them as gdb's idea of the current
991 register values. */
992
993 void
994 supply_gregset (gregset_t *gregsetp)
995 {
996 int regi;
997 greg_t *regp = (greg_t *) gregsetp;
998
999 for (regi = 0; regi < R_PC; regi++)
1000 {
1001 regcache_raw_supply (current_regcache, regi, (char *) (regp + regi));
1002 }
1003 regcache_raw_supply (current_regcache, PS_REGNUM, (char *) (regp + R_PS));
1004 regcache_raw_supply (current_regcache, PC_REGNUM, (char *) (regp + R_PC));
1005 }
1006
1007 void
1008 fill_gregset (gregset_t *gregsetp, int regno)
1009 {
1010 int regi;
1011 greg_t *regp = (greg_t *) gregsetp;
1012
1013 for (regi = 0; regi < R_PC; regi++)
1014 {
1015 if (regno == -1 || regno == regi)
1016 regcache_raw_collect (current_regcache, regi, regp + regi);
1017 }
1018 if (regno == -1 || regno == PS_REGNUM)
1019 regcache_raw_collect (current_regcache, PS_REGNUM, regp + R_PS);
1020 if (regno == -1 || regno == PC_REGNUM)
1021 regcache_raw_collect (current_regcache, PC_REGNUM, regp + R_PC);
1022 }
1023
1024 #if defined (FP0_REGNUM)
1025
1026 /* Given a pointer to a floating point register set in /proc format
1027 (fpregset_t *), unpack the register contents and supply them as gdb's
1028 idea of the current floating point register values. */
1029
1030 void
1031 supply_fpregset (fpregset_t *fpregsetp)
1032 {
1033 int regi;
1034 char *from;
1035
1036 for (regi = FP0_REGNUM; regi < M68K_FPC_REGNUM; regi++)
1037 {
1038 from = (char *) &(fpregsetp->f_fpregs[regi - FP0_REGNUM][0]);
1039 regcache_raw_supply (current_regcache, regi, from);
1040 }
1041 regcache_raw_supply (current_regcache, M68K_FPC_REGNUM,
1042 (char *) &(fpregsetp->f_pcr));
1043 regcache_raw_supply (current_regcache, M68K_FPS_REGNUM,
1044 (char *) &(fpregsetp->f_psr));
1045 regcache_raw_supply (current_regcache, M68K_FPI_REGNUM,
1046 (char *) &(fpregsetp->f_fpiaddr));
1047 }
1048
1049 /* Given a pointer to a floating point register set in /proc format
1050 (fpregset_t *), update the register specified by REGNO from gdb's idea
1051 of the current floating point register set. If REGNO is -1, update
1052 them all. */
1053
1054 void
1055 fill_fpregset (fpregset_t *fpregsetp, int regno)
1056 {
1057 int regi;
1058
1059 for (regi = FP0_REGNUM; regi < M68K_FPC_REGNUM; regi++)
1060 {
1061 if (regno == -1 || regno == regi)
1062 regcache_raw_collect (current_regcache, regi,
1063 &fpregsetp->f_fpregs[regi - FP0_REGNUM][0]);
1064 }
1065 if (regno == -1 || regno == M68K_FPC_REGNUM)
1066 regcache_raw_collect (current_regcache, M68K_FPC_REGNUM,
1067 &fpregsetp->f_pcr);
1068 if (regno == -1 || regno == M68K_FPS_REGNUM)
1069 regcache_raw_collect (current_regcache, M68K_FPS_REGNUM,
1070 &fpregsetp->f_psr);
1071 if (regno == -1 || regno == M68K_FPI_REGNUM)
1072 regcache_raw_collect (current_regcache, M68K_FPI_REGNUM,
1073 &fpregsetp->f_fpiaddr);
1074 }
1075
1076 #endif /* defined (FP0_REGNUM) */
1077
1078 #endif /* USE_PROC_FS */
1079
1080 /* Figure out where the longjmp will land. Slurp the args out of the stack.
1081 We expect the first arg to be a pointer to the jmp_buf structure from which
1082 we extract the pc (JB_PC) that we will land at. The pc is copied into PC.
1083 This routine returns true on success. */
1084
1085 static int
1086 m68k_get_longjmp_target (CORE_ADDR *pc)
1087 {
1088 gdb_byte *buf;
1089 CORE_ADDR sp, jb_addr;
1090 struct gdbarch_tdep *tdep = gdbarch_tdep (current_gdbarch);
1091
1092 if (tdep->jb_pc < 0)
1093 {
1094 internal_error (__FILE__, __LINE__,
1095 _("m68k_get_longjmp_target: not implemented"));
1096 return 0;
1097 }
1098
1099 buf = alloca (TARGET_PTR_BIT / TARGET_CHAR_BIT);
1100 sp = read_register (SP_REGNUM);
1101
1102 if (target_read_memory (sp + SP_ARG0, /* Offset of first arg on stack */
1103 buf, TARGET_PTR_BIT / TARGET_CHAR_BIT))
1104 return 0;
1105
1106 jb_addr = extract_unsigned_integer (buf, TARGET_PTR_BIT / TARGET_CHAR_BIT);
1107
1108 if (target_read_memory (jb_addr + tdep->jb_pc * tdep->jb_elt_size, buf,
1109 TARGET_PTR_BIT / TARGET_CHAR_BIT))
1110 return 0;
1111
1112 *pc = extract_unsigned_integer (buf, TARGET_PTR_BIT / TARGET_CHAR_BIT);
1113 return 1;
1114 }
1115 \f
1116
1117 /* System V Release 4 (SVR4). */
1118
1119 void
1120 m68k_svr4_init_abi (struct gdbarch_info info, struct gdbarch *gdbarch)
1121 {
1122 struct gdbarch_tdep *tdep = gdbarch_tdep (gdbarch);
1123
1124 /* SVR4 uses a different calling convention. */
1125 set_gdbarch_return_value (gdbarch, m68k_svr4_return_value);
1126
1127 /* SVR4 uses %a0 instead of %a1. */
1128 tdep->struct_value_regnum = M68K_A0_REGNUM;
1129 }
1130 \f
1131
1132 /* Function: m68k_gdbarch_init
1133 Initializer function for the m68k gdbarch vector.
1134 Called by gdbarch. Sets up the gdbarch vector(s) for this target. */
1135
1136 static struct gdbarch *
1137 m68k_gdbarch_init (struct gdbarch_info info, struct gdbarch_list *arches)
1138 {
1139 struct gdbarch_tdep *tdep = NULL;
1140 struct gdbarch *gdbarch;
1141
1142 /* find a candidate among the list of pre-declared architectures. */
1143 arches = gdbarch_list_lookup_by_info (arches, &info);
1144 if (arches != NULL)
1145 return (arches->gdbarch);
1146
1147 tdep = xmalloc (sizeof (struct gdbarch_tdep));
1148 gdbarch = gdbarch_alloc (&info, tdep);
1149
1150 set_gdbarch_long_double_format (gdbarch, &floatformat_m68881_ext);
1151 set_gdbarch_long_double_bit (gdbarch, 96);
1152
1153 set_gdbarch_skip_prologue (gdbarch, m68k_skip_prologue);
1154 set_gdbarch_breakpoint_from_pc (gdbarch, m68k_local_breakpoint_from_pc);
1155
1156 /* Stack grows down. */
1157 set_gdbarch_inner_than (gdbarch, core_addr_lessthan);
1158
1159 set_gdbarch_believe_pcc_promotion (gdbarch, 1);
1160 set_gdbarch_decr_pc_after_break (gdbarch, 2);
1161
1162 set_gdbarch_frame_args_skip (gdbarch, 8);
1163 set_gdbarch_dwarf_reg_to_regnum (gdbarch, m68k_dwarf_reg_to_regnum);
1164 set_gdbarch_dwarf2_reg_to_regnum (gdbarch, m68k_dwarf_reg_to_regnum);
1165
1166 set_gdbarch_register_type (gdbarch, m68k_register_type);
1167 set_gdbarch_register_name (gdbarch, m68k_register_name);
1168 set_gdbarch_num_regs (gdbarch, M68K_NUM_REGS);
1169 set_gdbarch_register_bytes_ok (gdbarch, m68k_register_bytes_ok);
1170 set_gdbarch_sp_regnum (gdbarch, M68K_SP_REGNUM);
1171 set_gdbarch_pc_regnum (gdbarch, M68K_PC_REGNUM);
1172 set_gdbarch_ps_regnum (gdbarch, M68K_PS_REGNUM);
1173 set_gdbarch_fp0_regnum (gdbarch, M68K_FP0_REGNUM);
1174 set_gdbarch_convert_register_p (gdbarch, m68k_convert_register_p);
1175 set_gdbarch_register_to_value (gdbarch, m68k_register_to_value);
1176 set_gdbarch_value_to_register (gdbarch, m68k_value_to_register);
1177
1178 set_gdbarch_push_dummy_call (gdbarch, m68k_push_dummy_call);
1179 set_gdbarch_return_value (gdbarch, m68k_return_value);
1180
1181 /* Disassembler. */
1182 set_gdbarch_print_insn (gdbarch, print_insn_m68k);
1183
1184 #if defined JB_PC && defined JB_ELEMENT_SIZE
1185 tdep->jb_pc = JB_PC;
1186 tdep->jb_elt_size = JB_ELEMENT_SIZE;
1187 #else
1188 tdep->jb_pc = -1;
1189 #endif
1190 tdep->struct_value_regnum = M68K_A1_REGNUM;
1191 tdep->struct_return = reg_struct_return;
1192
1193 /* Frame unwinder. */
1194 set_gdbarch_unwind_dummy_id (gdbarch, m68k_unwind_dummy_id);
1195 set_gdbarch_unwind_pc (gdbarch, m68k_unwind_pc);
1196
1197 /* Hook in the DWARF CFI frame unwinder. */
1198 frame_unwind_append_sniffer (gdbarch, dwarf2_frame_sniffer);
1199
1200 frame_base_set_default (gdbarch, &m68k_frame_base);
1201
1202 /* Hook in ABI-specific overrides, if they have been registered. */
1203 gdbarch_init_osabi (info, gdbarch);
1204
1205 /* Now we have tuned the configuration, set a few final things,
1206 based on what the OS ABI has told us. */
1207
1208 if (tdep->jb_pc >= 0)
1209 set_gdbarch_get_longjmp_target (gdbarch, m68k_get_longjmp_target);
1210
1211 frame_unwind_append_sniffer (gdbarch, m68k_frame_sniffer);
1212
1213 return gdbarch;
1214 }
1215
1216
1217 static void
1218 m68k_dump_tdep (struct gdbarch *current_gdbarch, struct ui_file *file)
1219 {
1220 struct gdbarch_tdep *tdep = gdbarch_tdep (current_gdbarch);
1221
1222 if (tdep == NULL)
1223 return;
1224 }
1225
1226 extern initialize_file_ftype _initialize_m68k_tdep; /* -Wmissing-prototypes */
1227
1228 void
1229 _initialize_m68k_tdep (void)
1230 {
1231 gdbarch_register (bfd_arch_m68k, m68k_gdbarch_init, m68k_dump_tdep);
1232 }
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