2004-02-14 Elena Zannoni <ezannoni@redhat.com>
[deliverable/binutils-gdb.git] / gdb / mn10300-tdep.c
CommitLineData
c906108c 1/* Target-dependent code for the Matsushita MN10300 for GDB, the GNU debugger.
cda5a58a 2
464e0365
AC
3 Copyright 1996, 1997, 1998, 1999, 2000, 2001, 2002, 2003, 2004 Free
4 Software Foundation, Inc.
c906108c 5
c5aa993b 6 This file is part of GDB.
c906108c 7
c5aa993b
JM
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.
c906108c 12
c5aa993b
JM
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.
c906108c 17
c5aa993b
JM
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., 59 Temple Place - Suite 330,
21 Boston, MA 02111-1307, USA. */
c906108c
SS
22
23#include "defs.h"
24#include "frame.h"
25#include "inferior.h"
c906108c
SS
26#include "target.h"
27#include "value.h"
28#include "bfd.h"
29#include "gdb_string.h"
30#include "gdbcore.h"
9ab9195f 31#include "objfiles.h"
4e052eda 32#include "regcache.h"
ad8fe2ce 33#include "arch-utils.h"
bd1ce8ba 34#include "gdb_assert.h"
a89aa300 35#include "dis-asm.h"
c906108c 36
6ca173e3
AC
37#define D0_REGNUM 0
38#define D2_REGNUM 2
39#define D3_REGNUM 3
40#define A0_REGNUM 4
41#define A2_REGNUM 6
42#define A3_REGNUM 7
43#define MDR_REGNUM 10
44#define PSW_REGNUM 11
45#define LIR_REGNUM 12
46#define LAR_REGNUM 13
47#define MDRQ_REGNUM 14
48#define E0_REGNUM 15
49#define MCRH_REGNUM 26
50#define MCRL_REGNUM 27
51#define MCVF_REGNUM 28
52
53enum movm_register_bits {
54 movm_exother_bit = 0x01,
55 movm_exreg1_bit = 0x02,
56 movm_exreg0_bit = 0x04,
57 movm_other_bit = 0x08,
58 movm_a3_bit = 0x10,
59 movm_a2_bit = 0x20,
60 movm_d3_bit = 0x40,
61 movm_d2_bit = 0x80
62};
63
c2c6d25f 64extern void _initialize_mn10300_tdep (void);
a14ed312
KB
65static CORE_ADDR mn10300_analyze_prologue (struct frame_info *fi,
66 CORE_ADDR pc);
c906108c 67
91225883
AC
68/* mn10300 private data */
69struct gdbarch_tdep
70{
71 int am33_mode;
72#define AM33_MODE (gdbarch_tdep (current_gdbarch)->am33_mode)
73};
74
c906108c
SS
75/* Additional info used by the frame */
76
77struct frame_extra_info
c5aa993b
JM
78 {
79 int status;
80 int stack_size;
81 };
c906108c 82
0f71a2f6 83
91225883
AC
84static char *
85register_name (int reg, char **regs, long sizeof_regs)
c2d11a7d 86{
91225883
AC
87 if (reg < 0 || reg >= sizeof_regs / sizeof (regs[0]))
88 return NULL;
89 else
90 return regs[reg];
91}
92
fa88f677 93static const char *
91225883 94mn10300_generic_register_name (int reg)
0f71a2f6 95{
91225883
AC
96 static char *regs[] =
97 { "d0", "d1", "d2", "d3", "a0", "a1", "a2", "a3",
98 "sp", "pc", "mdr", "psw", "lir", "lar", "", "",
99 "", "", "", "", "", "", "", "",
100 "", "", "", "", "", "", "", "fp"
101 };
102 return register_name (reg, regs, sizeof regs);
0f71a2f6
JM
103}
104
91225883 105
fa88f677 106static const char *
91225883
AC
107am33_register_name (int reg)
108{
109 static char *regs[] =
110 { "d0", "d1", "d2", "d3", "a0", "a1", "a2", "a3",
111 "sp", "pc", "mdr", "psw", "lir", "lar", "",
112 "r0", "r1", "r2", "r3", "r4", "r5", "r6", "r7",
113 "ssp", "msp", "usp", "mcrh", "mcrl", "mcvf", "", "", ""
114 };
115 return register_name (reg, regs, sizeof regs);
116}
117
2ac51b36 118static CORE_ADDR
fba45db2 119mn10300_saved_pc_after_call (struct frame_info *fi)
0f71a2f6
JM
120{
121 return read_memory_integer (read_register (SP_REGNUM), 4);
122}
123
c064f384 124static void
fba45db2 125mn10300_extract_return_value (struct type *type, char *regbuf, char *valbuf)
0f71a2f6
JM
126{
127 if (TYPE_CODE (type) == TYPE_CODE_PTR)
62700349 128 memcpy (valbuf, regbuf + DEPRECATED_REGISTER_BYTE (4), TYPE_LENGTH (type));
0f71a2f6 129 else
62700349 130 memcpy (valbuf, regbuf + DEPRECATED_REGISTER_BYTE (0), TYPE_LENGTH (type));
0f71a2f6
JM
131}
132
2ac51b36 133static void
fba45db2 134mn10300_store_return_value (struct type *type, char *valbuf)
0f71a2f6
JM
135{
136 if (TYPE_CODE (type) == TYPE_CODE_PTR)
62700349 137 deprecated_write_register_bytes (DEPRECATED_REGISTER_BYTE (4), valbuf,
73937e03 138 TYPE_LENGTH (type));
0f71a2f6 139 else
62700349 140 deprecated_write_register_bytes (DEPRECATED_REGISTER_BYTE (0), valbuf,
73937e03 141 TYPE_LENGTH (type));
0f71a2f6
JM
142}
143
a14ed312 144static struct frame_info *analyze_dummy_frame (CORE_ADDR, CORE_ADDR);
c906108c 145static struct frame_info *
fba45db2 146analyze_dummy_frame (CORE_ADDR pc, CORE_ADDR frame)
c906108c 147{
213cc0ad
AC
148 struct cleanup *old_chain = make_cleanup (null_cleanup, NULL);
149 struct frame_info *dummy
150 = deprecated_frame_xmalloc_with_cleanup (SIZEOF_FRAME_SAVED_REGS,
151 sizeof (struct frame_extra_info));
50abf9e5 152 deprecated_update_frame_pc_hack (dummy, pc);
b0c6b05c 153 deprecated_update_frame_base_hack (dummy, frame);
da50a4b7
AC
154 get_frame_extra_info (dummy)->status = 0;
155 get_frame_extra_info (dummy)->stack_size = 0;
f0d8db19 156 mn10300_analyze_prologue (dummy, pc);
213cc0ad 157 do_cleanups (old_chain);
c906108c
SS
158 return dummy;
159}
160
161/* Values for frame_info.status */
162
163#define MY_FRAME_IN_SP 0x1
164#define MY_FRAME_IN_FP 0x2
165#define NO_MORE_FRAMES 0x4
166
167
168/* Should call_function allocate stack space for a struct return? */
2ac51b36 169static int
fba45db2 170mn10300_use_struct_convention (int gcc_p, struct type *type)
c906108c
SS
171{
172 return (TYPE_NFIELDS (type) > 1 || TYPE_LENGTH (type) > 8);
173}
174
175/* The breakpoint instruction must be the same size as the smallest
176 instruction in the instruction set.
177
178 The Matsushita mn10x00 processors have single byte instructions
179 so we need a single byte breakpoint. Matsushita hasn't defined
180 one, so we defined it ourselves. */
181
f4f9705a 182const static unsigned char *
fba45db2 183mn10300_breakpoint_from_pc (CORE_ADDR *bp_addr, int *bp_size)
c906108c 184{
c5aa993b
JM
185 static char breakpoint[] =
186 {0xff};
c906108c
SS
187 *bp_size = 1;
188 return breakpoint;
189}
190
191
192/* Fix fi->frame if it's bogus at this point. This is a helper
193 function for mn10300_analyze_prologue. */
194
195static void
fba45db2 196fix_frame_pointer (struct frame_info *fi, int stack_size)
c906108c 197{
11c02a10 198 if (fi && get_next_frame (fi) == NULL)
c906108c 199 {
da50a4b7 200 if (get_frame_extra_info (fi)->status & MY_FRAME_IN_SP)
b0c6b05c 201 deprecated_update_frame_base_hack (fi, read_sp () - stack_size);
da50a4b7 202 else if (get_frame_extra_info (fi)->status & MY_FRAME_IN_FP)
b0c6b05c 203 deprecated_update_frame_base_hack (fi, read_register (A3_REGNUM));
c906108c
SS
204 }
205}
206
207
208/* Set offsets of registers saved by movm instruction.
209 This is a helper function for mn10300_analyze_prologue. */
210
211static void
fba45db2 212set_movm_offsets (struct frame_info *fi, int movm_args)
c906108c
SS
213{
214 int offset = 0;
215
216 if (fi == NULL || movm_args == 0)
217 return;
218
ae83b20d
JB
219 if (movm_args & movm_other_bit)
220 {
221 /* The `other' bit leaves a blank area of four bytes at the
222 beginning of its block of saved registers, making it 32 bytes
223 long in total. */
1b1d3794
AC
224 deprecated_get_frame_saved_regs (fi)[LAR_REGNUM] = get_frame_base (fi) + offset + 4;
225 deprecated_get_frame_saved_regs (fi)[LIR_REGNUM] = get_frame_base (fi) + offset + 8;
226 deprecated_get_frame_saved_regs (fi)[MDR_REGNUM] = get_frame_base (fi) + offset + 12;
227 deprecated_get_frame_saved_regs (fi)[A0_REGNUM + 1] = get_frame_base (fi) + offset + 16;
228 deprecated_get_frame_saved_regs (fi)[A0_REGNUM] = get_frame_base (fi) + offset + 20;
229 deprecated_get_frame_saved_regs (fi)[D0_REGNUM + 1] = get_frame_base (fi) + offset + 24;
230 deprecated_get_frame_saved_regs (fi)[D0_REGNUM] = get_frame_base (fi) + offset + 28;
ae83b20d
JB
231 offset += 32;
232 }
233 if (movm_args & movm_a3_bit)
c906108c 234 {
1b1d3794 235 deprecated_get_frame_saved_regs (fi)[A3_REGNUM] = get_frame_base (fi) + offset;
c906108c
SS
236 offset += 4;
237 }
ae83b20d 238 if (movm_args & movm_a2_bit)
c906108c 239 {
1b1d3794 240 deprecated_get_frame_saved_regs (fi)[A2_REGNUM] = get_frame_base (fi) + offset;
c906108c
SS
241 offset += 4;
242 }
ae83b20d 243 if (movm_args & movm_d3_bit)
c906108c 244 {
1b1d3794 245 deprecated_get_frame_saved_regs (fi)[D3_REGNUM] = get_frame_base (fi) + offset;
c906108c
SS
246 offset += 4;
247 }
ae83b20d 248 if (movm_args & movm_d2_bit)
c906108c 249 {
1b1d3794 250 deprecated_get_frame_saved_regs (fi)[D2_REGNUM] = get_frame_base (fi) + offset;
c906108c
SS
251 offset += 4;
252 }
ae83b20d 253 if (AM33_MODE)
c2d11a7d 254 {
ae83b20d
JB
255 if (movm_args & movm_exother_bit)
256 {
1b1d3794
AC
257 deprecated_get_frame_saved_regs (fi)[MCVF_REGNUM] = get_frame_base (fi) + offset;
258 deprecated_get_frame_saved_regs (fi)[MCRL_REGNUM] = get_frame_base (fi) + offset + 4;
259 deprecated_get_frame_saved_regs (fi)[MCRH_REGNUM] = get_frame_base (fi) + offset + 8;
260 deprecated_get_frame_saved_regs (fi)[MDRQ_REGNUM] = get_frame_base (fi) + offset + 12;
261 deprecated_get_frame_saved_regs (fi)[E0_REGNUM + 1] = get_frame_base (fi) + offset + 16;
262 deprecated_get_frame_saved_regs (fi)[E0_REGNUM + 0] = get_frame_base (fi) + offset + 20;
ae83b20d
JB
263 offset += 24;
264 }
265 if (movm_args & movm_exreg1_bit)
266 {
1b1d3794
AC
267 deprecated_get_frame_saved_regs (fi)[E0_REGNUM + 7] = get_frame_base (fi) + offset;
268 deprecated_get_frame_saved_regs (fi)[E0_REGNUM + 6] = get_frame_base (fi) + offset + 4;
269 deprecated_get_frame_saved_regs (fi)[E0_REGNUM + 5] = get_frame_base (fi) + offset + 8;
270 deprecated_get_frame_saved_regs (fi)[E0_REGNUM + 4] = get_frame_base (fi) + offset + 12;
ae83b20d
JB
271 offset += 16;
272 }
273 if (movm_args & movm_exreg0_bit)
274 {
1b1d3794
AC
275 deprecated_get_frame_saved_regs (fi)[E0_REGNUM + 3] = get_frame_base (fi) + offset;
276 deprecated_get_frame_saved_regs (fi)[E0_REGNUM + 2] = get_frame_base (fi) + offset + 4;
ae83b20d
JB
277 offset += 8;
278 }
c2d11a7d 279 }
c906108c
SS
280}
281
282
283/* The main purpose of this file is dealing with prologues to extract
284 information about stack frames and saved registers.
285
4eab1e18
JB
286 In gcc/config/mn13000/mn10300.c, the expand_prologue prologue
287 function is pretty readable, and has a nice explanation of how the
288 prologue is generated. The prologues generated by that code will
03a0cf8a
JB
289 have the following form (NOTE: the current code doesn't handle all
290 this!):
c906108c 291
4eab1e18
JB
292 + If this is an old-style varargs function, then its arguments
293 need to be flushed back to the stack:
294
295 mov d0,(4,sp)
296 mov d1,(4,sp)
c906108c 297
4eab1e18
JB
298 + If we use any of the callee-saved registers, save them now.
299
300 movm [some callee-saved registers],(sp)
301
302 + If we have any floating-point registers to save:
303
304 - Decrement the stack pointer to reserve space for the registers.
305 If the function doesn't need a frame pointer, we may combine
306 this with the adjustment that reserves space for the frame.
307
308 add -SIZE, sp
309
310 - Save the floating-point registers. We have two possible
311 strategies:
312
313 . Save them at fixed offset from the SP:
314
315 fmov fsN,(OFFSETN,sp)
316 fmov fsM,(OFFSETM,sp)
317 ...
318
03a0cf8a
JB
319 Note that, if OFFSETN happens to be zero, you'll get the
320 different opcode: fmov fsN,(sp)
321
4eab1e18
JB
322 . Or, set a0 to the start of the save area, and then use
323 post-increment addressing to save the FP registers.
324
325 mov sp, a0
326 add SIZE, a0
327 fmov fsN,(a0+)
328 fmov fsM,(a0+)
329 ...
330
331 + If the function needs a frame pointer, we set it here.
332
333 mov sp, a3
334
335 + Now we reserve space for the stack frame proper. This could be
336 merged into the `add -SIZE, sp' instruction for FP saves up
337 above, unless we needed to set the frame pointer in the previous
338 step, or the frame is so large that allocating the whole thing at
339 once would put the FP register save slots out of reach of the
340 addressing mode (128 bytes).
341
342 add -SIZE, sp
c906108c
SS
343
344 One day we might keep the stack pointer constant, that won't
345 change the code for prologues, but it will make the frame
346 pointerless case much more common. */
c5aa993b 347
c906108c
SS
348/* Analyze the prologue to determine where registers are saved,
349 the end of the prologue, etc etc. Return the end of the prologue
350 scanned.
351
352 We store into FI (if non-null) several tidbits of information:
353
c5aa993b
JM
354 * stack_size -- size of this stack frame. Note that if we stop in
355 certain parts of the prologue/epilogue we may claim the size of the
356 current frame is zero. This happens when the current frame has
357 not been allocated yet or has already been deallocated.
c906108c 358
c5aa993b 359 * fsr -- Addresses of registers saved in the stack by this frame.
c906108c 360
c5aa993b
JM
361 * status -- A (relatively) generic status indicator. It's a bitmask
362 with the following bits:
c906108c 363
c5aa993b
JM
364 MY_FRAME_IN_SP: The base of the current frame is actually in
365 the stack pointer. This can happen for frame pointerless
366 functions, or cases where we're stopped in the prologue/epilogue
367 itself. For these cases mn10300_analyze_prologue will need up
368 update fi->frame before returning or analyzing the register
369 save instructions.
c906108c 370
c5aa993b 371 MY_FRAME_IN_FP: The base of the current frame is in the
4eab1e18 372 frame pointer register ($a3).
c906108c 373
c5aa993b
JM
374 NO_MORE_FRAMES: Set this if the current frame is "start" or
375 if the first instruction looks like mov <imm>,sp. This tells
376 frame chain to not bother trying to unwind past this frame. */
c906108c
SS
377
378static CORE_ADDR
fba45db2 379mn10300_analyze_prologue (struct frame_info *fi, CORE_ADDR pc)
c906108c
SS
380{
381 CORE_ADDR func_addr, func_end, addr, stop;
382 CORE_ADDR stack_size;
383 int imm_size;
384 unsigned char buf[4];
385 int status, movm_args = 0;
386 char *name;
387
388 /* Use the PC in the frame if it's provided to look up the
f0d8db19
KB
389 start of this function.
390
391 Note: kevinb/2003-07-16: We used to do the following here:
392 pc = (fi ? get_frame_pc (fi) : pc);
393 But this is (now) badly broken when called from analyze_dummy_frame().
394 */
395 pc = (pc ? pc : get_frame_pc (fi));
c906108c
SS
396
397 /* Find the start of this function. */
398 status = find_pc_partial_function (pc, &name, &func_addr, &func_end);
399
400 /* Do nothing if we couldn't find the start of this function or if we're
401 stopped at the first instruction in the prologue. */
402 if (status == 0)
43ff13b4
JM
403 {
404 return pc;
405 }
c906108c
SS
406
407 /* If we're in start, then give up. */
408 if (strcmp (name, "start") == 0)
409 {
410 if (fi != NULL)
da50a4b7 411 get_frame_extra_info (fi)->status = NO_MORE_FRAMES;
c906108c
SS
412 return pc;
413 }
414
415 /* At the start of a function our frame is in the stack pointer. */
416 if (fi)
da50a4b7 417 get_frame_extra_info (fi)->status = MY_FRAME_IN_SP;
c906108c
SS
418
419 /* Get the next two bytes into buf, we need two because rets is a two
420 byte insn and the first isn't enough to uniquely identify it. */
421 status = read_memory_nobpt (pc, buf, 2);
422 if (status != 0)
423 return pc;
424
f0d8db19
KB
425#if 0
426 /* Note: kevinb/2003-07-16: We shouldn't be making these sorts of
427 changes to the frame in prologue examination code. */
c906108c
SS
428 /* If we're physically on an "rets" instruction, then our frame has
429 already been deallocated. Note this can also be true for retf
430 and ret if they specify a size of zero.
431
432 In this case fi->frame is bogus, we need to fix it. */
433 if (fi && buf[0] == 0xf0 && buf[1] == 0xfc)
434 {
11c02a10 435 if (get_next_frame (fi) == NULL)
b0c6b05c 436 deprecated_update_frame_base_hack (fi, read_sp ());
50abf9e5 437 return get_frame_pc (fi);
c906108c
SS
438 }
439
440 /* Similarly if we're stopped on the first insn of a prologue as our
441 frame hasn't been allocated yet. */
50abf9e5 442 if (fi && get_frame_pc (fi) == func_addr)
c906108c 443 {
11c02a10 444 if (get_next_frame (fi) == NULL)
b0c6b05c 445 deprecated_update_frame_base_hack (fi, read_sp ());
50abf9e5 446 return get_frame_pc (fi);
c906108c 447 }
f0d8db19 448#endif
c906108c
SS
449
450 /* Figure out where to stop scanning. */
f0d8db19 451 stop = fi ? pc : func_end;
c906108c
SS
452
453 /* Don't walk off the end of the function. */
454 stop = stop > func_end ? func_end : stop;
455
456 /* Start scanning on the first instruction of this function. */
457 addr = func_addr;
458
459 /* Suck in two bytes. */
460 status = read_memory_nobpt (addr, buf, 2);
461 if (status != 0)
462 {
463 fix_frame_pointer (fi, 0);
464 return addr;
465 }
466
4eab1e18
JB
467 /* First see if this insn sets the stack pointer from a register; if
468 so, it's probably the initialization of the stack pointer in _start,
469 so mark this as the bottom-most frame. */
c906108c
SS
470 if (buf[0] == 0xf2 && (buf[1] & 0xf3) == 0xf0)
471 {
472 if (fi)
da50a4b7 473 get_frame_extra_info (fi)->status = NO_MORE_FRAMES;
c906108c
SS
474 return addr;
475 }
476
477 /* Now look for movm [regs],sp, which saves the callee saved registers.
478
479 At this time we don't know if fi->frame is valid, so we only note
480 that we encountered a movm instruction. Later, we'll set the entries
481 in fsr.regs as needed. */
482 if (buf[0] == 0xcf)
483 {
484 /* Extract the register list for the movm instruction. */
485 status = read_memory_nobpt (addr + 1, buf, 1);
486 movm_args = *buf;
487
488 addr += 2;
489
490 /* Quit now if we're beyond the stop point. */
491 if (addr >= stop)
492 {
493 /* Fix fi->frame since it's bogus at this point. */
11c02a10 494 if (fi && get_next_frame (fi) == NULL)
b0c6b05c 495 deprecated_update_frame_base_hack (fi, read_sp ());
c906108c
SS
496
497 /* Note if/where callee saved registers were saved. */
498 set_movm_offsets (fi, movm_args);
499 return addr;
500 }
501
502 /* Get the next two bytes so the prologue scan can continue. */
503 status = read_memory_nobpt (addr, buf, 2);
504 if (status != 0)
505 {
506 /* Fix fi->frame since it's bogus at this point. */
11c02a10 507 if (fi && get_next_frame (fi) == NULL)
b0c6b05c 508 deprecated_update_frame_base_hack (fi, read_sp ());
c906108c
SS
509
510 /* Note if/where callee saved registers were saved. */
511 set_movm_offsets (fi, movm_args);
512 return addr;
513 }
514 }
515
516 /* Now see if we set up a frame pointer via "mov sp,a3" */
517 if (buf[0] == 0x3f)
518 {
519 addr += 1;
520
521 /* The frame pointer is now valid. */
522 if (fi)
523 {
da50a4b7
AC
524 get_frame_extra_info (fi)->status |= MY_FRAME_IN_FP;
525 get_frame_extra_info (fi)->status &= ~MY_FRAME_IN_SP;
c906108c
SS
526 }
527
528 /* Quit now if we're beyond the stop point. */
529 if (addr >= stop)
530 {
531 /* Fix fi->frame if it's bogus at this point. */
532 fix_frame_pointer (fi, 0);
533
534 /* Note if/where callee saved registers were saved. */
535 set_movm_offsets (fi, movm_args);
536 return addr;
537 }
538
539 /* Get two more bytes so scanning can continue. */
540 status = read_memory_nobpt (addr, buf, 2);
541 if (status != 0)
542 {
543 /* Fix fi->frame if it's bogus at this point. */
544 fix_frame_pointer (fi, 0);
545
546 /* Note if/where callee saved registers were saved. */
547 set_movm_offsets (fi, movm_args);
548 return addr;
549 }
550 }
c5aa993b 551
c906108c
SS
552 /* Next we should allocate the local frame. No more prologue insns
553 are found after allocating the local frame.
c5aa993b 554
c906108c 555 Search for add imm8,sp (0xf8feXX)
c5aa993b
JM
556 or add imm16,sp (0xfafeXXXX)
557 or add imm32,sp (0xfcfeXXXXXXXX).
558
c906108c
SS
559 If none of the above was found, then this prologue has no
560 additional stack. */
561
562 status = read_memory_nobpt (addr, buf, 2);
563 if (status != 0)
564 {
565 /* Fix fi->frame if it's bogus at this point. */
566 fix_frame_pointer (fi, 0);
567
568 /* Note if/where callee saved registers were saved. */
569 set_movm_offsets (fi, movm_args);
570 return addr;
571 }
572
573 imm_size = 0;
574 if (buf[0] == 0xf8 && buf[1] == 0xfe)
575 imm_size = 1;
576 else if (buf[0] == 0xfa && buf[1] == 0xfe)
577 imm_size = 2;
578 else if (buf[0] == 0xfc && buf[1] == 0xfe)
579 imm_size = 4;
580
581 if (imm_size != 0)
582 {
583 /* Suck in imm_size more bytes, they'll hold the size of the
584 current frame. */
585 status = read_memory_nobpt (addr + 2, buf, imm_size);
586 if (status != 0)
587 {
588 /* Fix fi->frame if it's bogus at this point. */
589 fix_frame_pointer (fi, 0);
590
591 /* Note if/where callee saved registers were saved. */
592 set_movm_offsets (fi, movm_args);
593 return addr;
594 }
595
596 /* Note the size of the stack in the frame info structure. */
597 stack_size = extract_signed_integer (buf, imm_size);
598 if (fi)
da50a4b7 599 get_frame_extra_info (fi)->stack_size = stack_size;
c906108c
SS
600
601 /* We just consumed 2 + imm_size bytes. */
602 addr += 2 + imm_size;
603
604 /* No more prologue insns follow, so begin preparation to return. */
605 /* Fix fi->frame if it's bogus at this point. */
606 fix_frame_pointer (fi, stack_size);
607
608 /* Note if/where callee saved registers were saved. */
609 set_movm_offsets (fi, movm_args);
610 return addr;
611 }
612
613 /* We never found an insn which allocates local stack space, regardless
614 this is the end of the prologue. */
615 /* Fix fi->frame if it's bogus at this point. */
616 fix_frame_pointer (fi, 0);
617
618 /* Note if/where callee saved registers were saved. */
619 set_movm_offsets (fi, movm_args);
620 return addr;
621}
c5aa993b 622
ae83b20d
JB
623
624/* Function: saved_regs_size
625 Return the size in bytes of the register save area, based on the
626 saved_regs array in FI. */
627static int
628saved_regs_size (struct frame_info *fi)
629{
630 int adjust = 0;
631 int i;
632
633 /* Reserve four bytes for every register saved. */
634 for (i = 0; i < NUM_REGS; i++)
1b1d3794 635 if (deprecated_get_frame_saved_regs (fi)[i])
ae83b20d
JB
636 adjust += 4;
637
638 /* If we saved LIR, then it's most likely we used a `movm'
639 instruction with the `other' bit set, in which case the SP is
640 decremented by an extra four bytes, "to simplify calculation
641 of the transfer area", according to the processor manual. */
1b1d3794 642 if (deprecated_get_frame_saved_regs (fi)[LIR_REGNUM])
ae83b20d
JB
643 adjust += 4;
644
645 return adjust;
646}
647
648
c906108c
SS
649/* Function: frame_chain
650 Figure out and return the caller's frame pointer given current
651 frame_info struct.
652
653 We don't handle dummy frames yet but we would probably just return the
654 stack pointer that was in use at the time the function call was made? */
655
2ac51b36 656static CORE_ADDR
fba45db2 657mn10300_frame_chain (struct frame_info *fi)
c906108c
SS
658{
659 struct frame_info *dummy;
660 /* Walk through the prologue to determine the stack size,
661 location of saved registers, end of the prologue, etc. */
da50a4b7 662 if (get_frame_extra_info (fi)->status == 0)
c5aa993b 663 mn10300_analyze_prologue (fi, (CORE_ADDR) 0);
c906108c
SS
664
665 /* Quit now if mn10300_analyze_prologue set NO_MORE_FRAMES. */
da50a4b7 666 if (get_frame_extra_info (fi)->status & NO_MORE_FRAMES)
c906108c
SS
667 return 0;
668
669 /* Now that we've analyzed our prologue, determine the frame
670 pointer for our caller.
671
c5aa993b
JM
672 If our caller has a frame pointer, then we need to
673 find the entry value of $a3 to our function.
674
675 If fsr.regs[A3_REGNUM] is nonzero, then it's at the memory
676 location pointed to by fsr.regs[A3_REGNUM].
c906108c 677
c5aa993b 678 Else it's still in $a3.
c906108c 679
c5aa993b
JM
680 If our caller does not have a frame pointer, then his
681 frame base is fi->frame + -caller's stack size. */
c906108c 682
c906108c
SS
683 /* The easiest way to get that info is to analyze our caller's frame.
684 So we set up a dummy frame and call mn10300_analyze_prologue to
685 find stuff for us. */
8bedc050 686 dummy = analyze_dummy_frame (DEPRECATED_FRAME_SAVED_PC (fi), get_frame_base (fi));
c906108c 687
da50a4b7 688 if (get_frame_extra_info (dummy)->status & MY_FRAME_IN_FP)
c906108c
SS
689 {
690 /* Our caller has a frame pointer. So find the frame in $a3 or
691 in the stack. */
1b1d3794
AC
692 if (deprecated_get_frame_saved_regs (fi)[A3_REGNUM])
693 return (read_memory_integer (deprecated_get_frame_saved_regs (fi)[A3_REGNUM],
b1e29e33 694 DEPRECATED_REGISTER_SIZE));
c906108c
SS
695 else
696 return read_register (A3_REGNUM);
697 }
698 else
699 {
ae83b20d 700 int adjust = saved_regs_size (fi);
c906108c
SS
701
702 /* Our caller does not have a frame pointer. So his frame starts
c5aa993b
JM
703 at the base of our frame (fi->frame) + register save space
704 + <his size>. */
da50a4b7 705 return get_frame_base (fi) + adjust + -get_frame_extra_info (dummy)->stack_size;
c906108c
SS
706 }
707}
708
709/* Function: skip_prologue
710 Return the address of the first inst past the prologue of the function. */
711
2ac51b36 712static CORE_ADDR
fba45db2 713mn10300_skip_prologue (CORE_ADDR pc)
c906108c
SS
714{
715 /* We used to check the debug symbols, but that can lose if
716 we have a null prologue. */
717 return mn10300_analyze_prologue (NULL, pc);
718}
719
ee9f9641
JB
720/* generic_pop_current_frame calls this function if the current
721 frame isn't a dummy frame. */
722static void
723mn10300_pop_frame_regular (struct frame_info *frame)
c906108c
SS
724{
725 int regnum;
726
8bedc050 727 write_register (PC_REGNUM, DEPRECATED_FRAME_SAVED_PC (frame));
c906108c 728
ee9f9641
JB
729 /* Restore any saved registers. */
730 for (regnum = 0; regnum < NUM_REGS; regnum++)
1b1d3794 731 if (deprecated_get_frame_saved_regs (frame)[regnum] != 0)
ee9f9641
JB
732 {
733 ULONGEST value;
c906108c 734
1b1d3794 735 value = read_memory_unsigned_integer (deprecated_get_frame_saved_regs (frame)[regnum],
12c266ea 736 DEPRECATED_REGISTER_RAW_SIZE (regnum));
ee9f9641
JB
737 write_register (regnum, value);
738 }
c906108c 739
ee9f9641 740 /* Actually cut back the stack. */
c193f6ac 741 write_register (SP_REGNUM, get_frame_base (frame));
c906108c 742
ee9f9641
JB
743 /* Don't we need to set the PC?!? XXX FIXME. */
744}
745
746/* Function: pop_frame
747 This routine gets called when either the user uses the `return'
748 command, or the call dummy breakpoint gets hit. */
749static void
750mn10300_pop_frame (void)
751{
752 /* This function checks for and handles generic dummy frames, and
753 calls back to our function for ordinary frames. */
754 generic_pop_current_frame (mn10300_pop_frame_regular);
c906108c
SS
755
756 /* Throw away any cached frame information. */
757 flush_cached_frames ();
758}
759
760/* Function: push_arguments
761 Setup arguments for a call to the target. Arguments go in
762 order on the stack. */
763
2ac51b36 764static CORE_ADDR
91225883
AC
765mn10300_push_arguments (int nargs, struct value **args, CORE_ADDR sp,
766 int struct_return, CORE_ADDR struct_addr)
c906108c
SS
767{
768 int argnum = 0;
769 int len = 0;
770 int stack_offset = 0;
771 int regsused = struct_return ? 1 : 0;
772
773 /* This should be a nop, but align the stack just in case something
774 went wrong. Stacks are four byte aligned on the mn10300. */
775 sp &= ~3;
776
777 /* Now make space on the stack for the args.
778
779 XXX This doesn't appear to handle pass-by-invisible reference
780 arguments. */
781 for (argnum = 0; argnum < nargs; argnum++)
782 {
783 int arg_length = (TYPE_LENGTH (VALUE_TYPE (args[argnum])) + 3) & ~3;
784
785 while (regsused < 2 && arg_length > 0)
786 {
787 regsused++;
788 arg_length -= 4;
789 }
790 len += arg_length;
791 }
792
793 /* Allocate stack space. */
794 sp -= len;
795
796 regsused = struct_return ? 1 : 0;
797 /* Push all arguments onto the stack. */
798 for (argnum = 0; argnum < nargs; argnum++)
799 {
800 int len;
801 char *val;
802
803 /* XXX Check this. What about UNIONS? */
804 if (TYPE_CODE (VALUE_TYPE (*args)) == TYPE_CODE_STRUCT
805 && TYPE_LENGTH (VALUE_TYPE (*args)) > 8)
806 {
807 /* XXX Wrong, we want a pointer to this argument. */
c5aa993b
JM
808 len = TYPE_LENGTH (VALUE_TYPE (*args));
809 val = (char *) VALUE_CONTENTS (*args);
c906108c
SS
810 }
811 else
812 {
813 len = TYPE_LENGTH (VALUE_TYPE (*args));
c5aa993b 814 val = (char *) VALUE_CONTENTS (*args);
c906108c
SS
815 }
816
817 while (regsused < 2 && len > 0)
818 {
819 write_register (regsused, extract_unsigned_integer (val, 4));
820 val += 4;
821 len -= 4;
822 regsused++;
823 }
824
825 while (len > 0)
826 {
827 write_memory (sp + stack_offset, val, 4);
828 len -= 4;
829 val += 4;
830 stack_offset += 4;
831 }
832
833 args++;
834 }
835
836 /* Make space for the flushback area. */
837 sp -= 8;
838 return sp;
839}
840
841/* Function: push_return_address (pc)
842 Set up the return address for the inferior function call.
843 Needed for targets where we don't actually execute a JSR/BSR instruction */
c5aa993b 844
2ac51b36 845static CORE_ADDR
fba45db2 846mn10300_push_return_address (CORE_ADDR pc, CORE_ADDR sp)
c906108c
SS
847{
848 unsigned char buf[4];
849
88a82a65 850 store_unsigned_integer (buf, 4, entry_point_address ());
c906108c
SS
851 write_memory (sp - 4, buf, 4);
852 return sp - 4;
853}
854
855/* Function: store_struct_return (addr,sp)
856 Store the structure value return address for an inferior function
857 call. */
c5aa993b 858
2ac51b36 859static void
fba45db2 860mn10300_store_struct_return (CORE_ADDR addr, CORE_ADDR sp)
c906108c
SS
861{
862 /* The structure return address is passed as the first argument. */
863 write_register (0, addr);
c906108c 864}
c5aa993b 865
c906108c
SS
866/* Function: frame_saved_pc
867 Find the caller of this frame. We do this by seeing if RP_REGNUM
868 is saved in the stack anywhere, otherwise we get it from the
869 registers. If the inner frame is a dummy frame, return its PC
870 instead of RP, because that's where "caller" of the dummy-frame
871 will be found. */
872
2ac51b36 873static CORE_ADDR
fba45db2 874mn10300_frame_saved_pc (struct frame_info *fi)
c906108c 875{
ae83b20d 876 int adjust = saved_regs_size (fi);
c906108c 877
b1e29e33
AC
878 return (read_memory_integer (get_frame_base (fi) + adjust,
879 DEPRECATED_REGISTER_SIZE));
c906108c
SS
880}
881
c906108c
SS
882/* Function: mn10300_init_extra_frame_info
883 Setup the frame's frame pointer, pc, and frame addresses for saved
884 registers. Most of the work is done in mn10300_analyze_prologue().
885
886 Note that when we are called for the last frame (currently active frame),
50abf9e5 887 that get_frame_pc (fi) and fi->frame will already be setup. However, fi->frame will
c906108c
SS
888 be valid only if this routine uses FP. For previous frames, fi-frame will
889 always be correct. mn10300_analyze_prologue will fix fi->frame if
890 it's not valid.
891
04714b91
AC
892 We can be called with the PC in the call dummy under two
893 circumstances. First, during normal backtracing, second, while
894 figuring out the frame pointer just prior to calling the target
895 function (see call_function_by_hand). */
c906108c 896
2ac51b36 897static void
ad8fe2ce 898mn10300_init_extra_frame_info (int fromleaf, struct frame_info *fi)
c906108c 899{
11c02a10 900 if (get_next_frame (fi))
8bedc050 901 deprecated_update_frame_pc_hack (fi, DEPRECATED_FRAME_SAVED_PC (get_next_frame (fi)));
c906108c
SS
902
903 frame_saved_regs_zalloc (fi);
a00a19e9 904 frame_extra_info_zalloc (fi, sizeof (struct frame_extra_info));
c906108c 905
da50a4b7
AC
906 get_frame_extra_info (fi)->status = 0;
907 get_frame_extra_info (fi)->stack_size = 0;
c906108c
SS
908
909 mn10300_analyze_prologue (fi, 0);
910}
911
ad8fe2ce
JB
912
913/* This function's job is handled by init_extra_frame_info. */
2ac51b36 914static void
ad8fe2ce
JB
915mn10300_frame_init_saved_regs (struct frame_info *frame)
916{
917}
918
919
c906108c
SS
920/* Function: mn10300_virtual_frame_pointer
921 Return the register that the function uses for a frame pointer,
922 plus any necessary offset to be applied to the register before
923 any frame pointer offsets. */
924
39d4ef09
AC
925static void
926mn10300_virtual_frame_pointer (CORE_ADDR pc,
927 int *reg,
928 LONGEST *offset)
c906108c
SS
929{
930 struct frame_info *dummy = analyze_dummy_frame (pc, 0);
931 /* Set up a dummy frame_info, Analyze the prolog and fill in the
932 extra info. */
933 /* Results will tell us which type of frame it uses. */
da50a4b7 934 if (get_frame_extra_info (dummy)->status & MY_FRAME_IN_SP)
c906108c 935 {
c5aa993b 936 *reg = SP_REGNUM;
da50a4b7 937 *offset = -(get_frame_extra_info (dummy)->stack_size);
c906108c
SS
938 }
939 else
940 {
c5aa993b 941 *reg = A3_REGNUM;
c906108c
SS
942 *offset = 0;
943 }
944}
c5aa993b 945
91225883
AC
946static int
947mn10300_reg_struct_has_addr (int gcc_p, struct type *type)
c906108c 948{
91225883
AC
949 return (TYPE_LENGTH (type) > 8);
950}
c906108c 951
f6df245f
AC
952static struct type *
953mn10300_register_virtual_type (int reg)
954{
955 return builtin_type_int;
956}
957
958static int
959mn10300_register_byte (int reg)
960{
961 return (reg * 4);
962}
963
964static int
965mn10300_register_virtual_size (int reg)
966{
967 return 4;
968}
969
970static int
971mn10300_register_raw_size (int reg)
972{
973 return 4;
974}
975
23436510
JB
976/* If DWARF2 is a register number appearing in Dwarf2 debug info, then
977 mn10300_dwarf2_reg_to_regnum (DWARF2) is the corresponding GDB
978 register number. Why don't Dwarf2 and GDB use the same numbering?
979 Who knows? But since people have object files lying around with
980 the existing Dwarf2 numbering, and other people have written stubs
981 to work with the existing GDB, neither of them can change. So we
982 just have to cope. */
983static int
984mn10300_dwarf2_reg_to_regnum (int dwarf2)
985{
986 /* This table is supposed to be shaped like the REGISTER_NAMES
987 initializer in gcc/config/mn10300/mn10300.h. Registers which
988 appear in GCC's numbering, but have no counterpart in GDB's
989 world, are marked with a -1. */
990 static int dwarf2_to_gdb[] = {
991 0, 1, 2, 3, 4, 5, 6, 7, -1, 8,
992 15, 16, 17, 18, 19, 20, 21, 22
993 };
994 int gdb;
995
996 if (dwarf2 < 0
997 || dwarf2 >= (sizeof (dwarf2_to_gdb) / sizeof (dwarf2_to_gdb[0]))
998 || dwarf2_to_gdb[dwarf2] == -1)
999 internal_error (__FILE__, __LINE__,
1000 "bogus register number in debug info: %d", dwarf2);
1001
1002 return dwarf2_to_gdb[dwarf2];
1003}
1004
f6df245f
AC
1005static void
1006mn10300_print_register (const char *name, int regnum, int reg_width)
1007{
d9d9c31f 1008 char raw_buffer[MAX_REGISTER_SIZE];
f6df245f
AC
1009
1010 if (reg_width)
1011 printf_filtered ("%*s: ", reg_width, name);
1012 else
1013 printf_filtered ("%s: ", name);
1014
1015 /* Get the data */
6e7f8b9c 1016 if (!frame_register_read (deprecated_selected_frame, regnum, raw_buffer))
f6df245f
AC
1017 {
1018 printf_filtered ("[invalid]");
1019 return;
1020 }
1021 else
1022 {
1023 int byte;
d7449b42 1024 if (TARGET_BYTE_ORDER == BFD_ENDIAN_BIG)
f6df245f 1025 {
12c266ea
AC
1026 for (byte = DEPRECATED_REGISTER_RAW_SIZE (regnum) - DEPRECATED_REGISTER_VIRTUAL_SIZE (regnum);
1027 byte < DEPRECATED_REGISTER_RAW_SIZE (regnum);
f6df245f
AC
1028 byte++)
1029 printf_filtered ("%02x", (unsigned char) raw_buffer[byte]);
1030 }
1031 else
1032 {
f30992d4 1033 for (byte = DEPRECATED_REGISTER_VIRTUAL_SIZE (regnum) - 1;
f6df245f
AC
1034 byte >= 0;
1035 byte--)
1036 printf_filtered ("%02x", (unsigned char) raw_buffer[byte]);
1037 }
1038 }
1039}
1040
1041static void
1042mn10300_do_registers_info (int regnum, int fpregs)
1043{
1044 if (regnum >= 0)
1045 {
1046 const char *name = REGISTER_NAME (regnum);
1047 if (name == NULL || name[0] == '\0')
1048 error ("Not a valid register for the current processor type");
1049 mn10300_print_register (name, regnum, 0);
1050 printf_filtered ("\n");
1051 }
1052 else
1053 {
1054 /* print registers in an array 4x8 */
1055 int r;
1056 int reg;
1057 const int nr_in_row = 4;
1058 const int reg_width = 4;
1059 for (r = 0; r < NUM_REGS; r += nr_in_row)
1060 {
1061 int c;
1062 int printing = 0;
1063 int padding = 0;
1064 for (c = r; c < r + nr_in_row; c++)
1065 {
1066 const char *name = REGISTER_NAME (c);
1067 if (name != NULL && *name != '\0')
1068 {
1069 printing = 1;
1070 while (padding > 0)
1071 {
1072 printf_filtered (" ");
1073 padding--;
1074 }
1075 mn10300_print_register (name, c, reg_width);
1076 printf_filtered (" ");
1077 }
1078 else
1079 {
1080 padding += (reg_width + 2 + 8 + 1);
1081 }
1082 }
1083 if (printing)
1084 printf_filtered ("\n");
1085 }
1086 }
1087}
1088
bd1ce8ba
AC
1089static CORE_ADDR
1090mn10300_read_fp (void)
1091{
1092 /* That's right, we're using the stack pointer as our frame pointer. */
1093 gdb_assert (SP_REGNUM >= 0);
1094 return read_register (SP_REGNUM);
1095}
1096
91225883 1097/* Dump out the mn10300 speciic architecture information. */
c906108c 1098
91225883
AC
1099static void
1100mn10300_dump_tdep (struct gdbarch *current_gdbarch, struct ui_file *file)
1101{
1102 struct gdbarch_tdep *tdep = gdbarch_tdep (current_gdbarch);
1103 fprintf_unfiltered (file, "mn10300_dump_tdep: am33_mode = %d\n",
1104 tdep->am33_mode);
1105}
c2d11a7d 1106
91225883
AC
1107static struct gdbarch *
1108mn10300_gdbarch_init (struct gdbarch_info info,
1109 struct gdbarch_list *arches)
1110{
ad8fe2ce 1111 static LONGEST mn10300_call_dummy_words[] = { 0 };
91225883
AC
1112 struct gdbarch *gdbarch;
1113 struct gdbarch_tdep *tdep = NULL;
1114 int am33_mode;
1115 gdbarch_register_name_ftype *register_name;
1116 int mach;
1117 int num_regs;
1118
1119 arches = gdbarch_list_lookup_by_info (arches, &info);
1120 if (arches != NULL)
1121 return arches->gdbarch;
1122 tdep = xmalloc (sizeof (struct gdbarch_tdep));
1123 gdbarch = gdbarch_alloc (&info, tdep);
1124
1125 if (info.bfd_arch_info != NULL
f6df245f 1126 && info.bfd_arch_info->arch == bfd_arch_mn10300)
91225883
AC
1127 mach = info.bfd_arch_info->mach;
1128 else
1129 mach = 0;
1130 switch (mach)
1131 {
1132 case 0:
f6df245f 1133 case bfd_mach_mn10300:
91225883
AC
1134 am33_mode = 0;
1135 register_name = mn10300_generic_register_name;
1136 num_regs = 32;
1137 break;
1138 case bfd_mach_am33:
c2d11a7d 1139 am33_mode = 1;
91225883
AC
1140 register_name = am33_register_name;
1141 num_regs = 32;
1142 break;
1143 default:
8e65ff28
AC
1144 internal_error (__FILE__, __LINE__,
1145 "mn10300_gdbarch_init: Unknown mn10300 variant");
91225883 1146 return NULL; /* keep GCC happy. */
c2d11a7d 1147 }
c906108c 1148
584f96a8
JB
1149 /* Registers. */
1150 set_gdbarch_num_regs (gdbarch, num_regs);
1151 set_gdbarch_register_name (gdbarch, register_name);
b1e29e33 1152 set_gdbarch_deprecated_register_size (gdbarch, 4);
b8b527c5 1153 set_gdbarch_deprecated_register_bytes (gdbarch, num_regs * gdbarch_deprecated_register_size (gdbarch));
a0ed5532 1154 set_gdbarch_deprecated_max_register_raw_size (gdbarch, 4);
9c04cab7
AC
1155 set_gdbarch_deprecated_register_raw_size (gdbarch, mn10300_register_raw_size);
1156 set_gdbarch_deprecated_register_byte (gdbarch, mn10300_register_byte);
a0ed5532 1157 set_gdbarch_deprecated_max_register_virtual_size (gdbarch, 4);
9c04cab7
AC
1158 set_gdbarch_deprecated_register_virtual_size (gdbarch, mn10300_register_virtual_size);
1159 set_gdbarch_deprecated_register_virtual_type (gdbarch, mn10300_register_virtual_type);
23436510 1160 set_gdbarch_dwarf2_reg_to_regnum (gdbarch, mn10300_dwarf2_reg_to_regnum);
903ad3a6 1161 set_gdbarch_deprecated_do_registers_info (gdbarch, mn10300_do_registers_info);
a15525c1
AC
1162 set_gdbarch_sp_regnum (gdbarch, 8);
1163 set_gdbarch_pc_regnum (gdbarch, 9);
0ba6dca9 1164 set_gdbarch_deprecated_fp_regnum (gdbarch, 31);
39d4ef09 1165 set_gdbarch_virtual_frame_pointer (gdbarch, mn10300_virtual_frame_pointer);
584f96a8
JB
1166
1167 /* Breakpoints. */
ad8fe2ce 1168 set_gdbarch_breakpoint_from_pc (gdbarch, mn10300_breakpoint_from_pc);
584f96a8
JB
1169
1170 /* Stack unwinding. */
ad8fe2ce 1171 set_gdbarch_inner_than (gdbarch, core_addr_lessthan);
6913c89a 1172 set_gdbarch_deprecated_saved_pc_after_call (gdbarch, mn10300_saved_pc_after_call);
e9582e71 1173 set_gdbarch_deprecated_init_extra_frame_info (gdbarch, mn10300_init_extra_frame_info);
f30ee0bc 1174 set_gdbarch_deprecated_frame_init_saved_regs (gdbarch, mn10300_frame_init_saved_regs);
618ce49f 1175 set_gdbarch_deprecated_frame_chain (gdbarch, mn10300_frame_chain);
8bedc050 1176 set_gdbarch_deprecated_frame_saved_pc (gdbarch, mn10300_frame_saved_pc);
26e9b323 1177 set_gdbarch_deprecated_extract_return_value (gdbarch, mn10300_extract_return_value);
ebba8386 1178 set_gdbarch_deprecated_store_return_value (gdbarch, mn10300_store_return_value);
4183d812 1179 set_gdbarch_deprecated_store_struct_return (gdbarch, mn10300_store_struct_return);
749b82f6 1180 set_gdbarch_deprecated_pop_frame (gdbarch, mn10300_pop_frame);
ad8fe2ce 1181 set_gdbarch_skip_prologue (gdbarch, mn10300_skip_prologue);
ad8fe2ce 1182 /* That's right, we're using the stack pointer as our frame pointer. */
bd1ce8ba 1183 set_gdbarch_deprecated_target_read_fp (gdbarch, mn10300_read_fp);
584f96a8
JB
1184
1185 /* Calling functions in the inferior from GDB. */
b1e29e33
AC
1186 set_gdbarch_deprecated_call_dummy_words (gdbarch, mn10300_call_dummy_words);
1187 set_gdbarch_deprecated_sizeof_call_dummy_words (gdbarch, sizeof (mn10300_call_dummy_words));
ae45cd16 1188 set_gdbarch_deprecated_pc_in_call_dummy (gdbarch, deprecated_pc_in_call_dummy_at_entry_point);
b81774d8 1189 set_gdbarch_deprecated_push_arguments (gdbarch, mn10300_push_arguments);
2110b94f
MK
1190 set_gdbarch_deprecated_reg_struct_has_addr
1191 (gdbarch, mn10300_reg_struct_has_addr);
28f617b3 1192 set_gdbarch_deprecated_push_return_address (gdbarch, mn10300_push_return_address);
a59fe496 1193 set_gdbarch_deprecated_save_dummy_frame_tos (gdbarch, generic_save_dummy_frame_tos);
ad8fe2ce
JB
1194 set_gdbarch_use_struct_convention (gdbarch, mn10300_use_struct_convention);
1195
91225883
AC
1196 tdep->am33_mode = am33_mode;
1197
6c0e89ed 1198 /* Should be using push_dummy_call. */
b46e02f6 1199 set_gdbarch_deprecated_dummy_write_sp (gdbarch, deprecated_write_sp);
6c0e89ed 1200
36482093
AC
1201 set_gdbarch_print_insn (gdbarch, print_insn_mn10300);
1202
91225883
AC
1203 return gdbarch;
1204}
1205
c906108c 1206void
fba45db2 1207_initialize_mn10300_tdep (void)
c906108c
SS
1208{
1209/* printf("_initialize_mn10300_tdep\n"); */
43e9390b 1210 gdbarch_register (bfd_arch_mn10300, mn10300_gdbarch_init, mn10300_dump_tdep);
c906108c 1211}
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