2003-07-16 Andrew Cagney <cagney@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
51603483 3 Copyright 1996, 1997, 1998, 1999, 2000, 2001, 2002, 2003 Free Software
cda5a58a 4 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"
31#include "symfile.h"
4e052eda 32#include "regcache.h"
ad8fe2ce 33#include "arch-utils.h"
bd1ce8ba 34#include "gdb_assert.h"
c906108c 35
6ca173e3
AC
36#define D0_REGNUM 0
37#define D2_REGNUM 2
38#define D3_REGNUM 3
39#define A0_REGNUM 4
40#define A2_REGNUM 6
41#define A3_REGNUM 7
42#define MDR_REGNUM 10
43#define PSW_REGNUM 11
44#define LIR_REGNUM 12
45#define LAR_REGNUM 13
46#define MDRQ_REGNUM 14
47#define E0_REGNUM 15
48#define MCRH_REGNUM 26
49#define MCRL_REGNUM 27
50#define MCVF_REGNUM 28
51
52enum movm_register_bits {
53 movm_exother_bit = 0x01,
54 movm_exreg1_bit = 0x02,
55 movm_exreg0_bit = 0x04,
56 movm_other_bit = 0x08,
57 movm_a3_bit = 0x10,
58 movm_a2_bit = 0x20,
59 movm_d3_bit = 0x40,
60 movm_d2_bit = 0x80
61};
62
c2c6d25f 63extern void _initialize_mn10300_tdep (void);
a14ed312
KB
64static CORE_ADDR mn10300_analyze_prologue (struct frame_info *fi,
65 CORE_ADDR pc);
c906108c 66
91225883
AC
67/* mn10300 private data */
68struct gdbarch_tdep
69{
70 int am33_mode;
71#define AM33_MODE (gdbarch_tdep (current_gdbarch)->am33_mode)
72};
73
c906108c
SS
74/* Additional info used by the frame */
75
76struct frame_extra_info
c5aa993b
JM
77 {
78 int status;
79 int stack_size;
80 };
c906108c 81
0f71a2f6 82
91225883
AC
83static char *
84register_name (int reg, char **regs, long sizeof_regs)
c2d11a7d 85{
91225883
AC
86 if (reg < 0 || reg >= sizeof_regs / sizeof (regs[0]))
87 return NULL;
88 else
89 return regs[reg];
90}
91
fa88f677 92static const char *
91225883 93mn10300_generic_register_name (int reg)
0f71a2f6 94{
91225883
AC
95 static char *regs[] =
96 { "d0", "d1", "d2", "d3", "a0", "a1", "a2", "a3",
97 "sp", "pc", "mdr", "psw", "lir", "lar", "", "",
98 "", "", "", "", "", "", "", "",
99 "", "", "", "", "", "", "", "fp"
100 };
101 return register_name (reg, regs, sizeof regs);
0f71a2f6
JM
102}
103
91225883 104
fa88f677 105static const char *
91225883
AC
106am33_register_name (int reg)
107{
108 static char *regs[] =
109 { "d0", "d1", "d2", "d3", "a0", "a1", "a2", "a3",
110 "sp", "pc", "mdr", "psw", "lir", "lar", "",
111 "r0", "r1", "r2", "r3", "r4", "r5", "r6", "r7",
112 "ssp", "msp", "usp", "mcrh", "mcrl", "mcvf", "", "", ""
113 };
114 return register_name (reg, regs, sizeof regs);
115}
116
2ac51b36 117static CORE_ADDR
fba45db2 118mn10300_saved_pc_after_call (struct frame_info *fi)
0f71a2f6
JM
119{
120 return read_memory_integer (read_register (SP_REGNUM), 4);
121}
122
c064f384 123static void
fba45db2 124mn10300_extract_return_value (struct type *type, char *regbuf, char *valbuf)
0f71a2f6
JM
125{
126 if (TYPE_CODE (type) == TYPE_CODE_PTR)
127 memcpy (valbuf, regbuf + REGISTER_BYTE (4), TYPE_LENGTH (type));
128 else
129 memcpy (valbuf, regbuf + REGISTER_BYTE (0), TYPE_LENGTH (type));
130}
131
2ac51b36 132static CORE_ADDR
fba45db2 133mn10300_extract_struct_value_address (char *regbuf)
0f71a2f6 134{
7c0b4a20
AC
135 return extract_unsigned_integer (regbuf + REGISTER_BYTE (4),
136 REGISTER_RAW_SIZE (4));
0f71a2f6
JM
137}
138
2ac51b36 139static void
fba45db2 140mn10300_store_return_value (struct type *type, char *valbuf)
0f71a2f6
JM
141{
142 if (TYPE_CODE (type) == TYPE_CODE_PTR)
73937e03
AC
143 deprecated_write_register_bytes (REGISTER_BYTE (4), valbuf,
144 TYPE_LENGTH (type));
0f71a2f6 145 else
73937e03
AC
146 deprecated_write_register_bytes (REGISTER_BYTE (0), valbuf,
147 TYPE_LENGTH (type));
0f71a2f6
JM
148}
149
a14ed312 150static struct frame_info *analyze_dummy_frame (CORE_ADDR, CORE_ADDR);
c906108c 151static struct frame_info *
fba45db2 152analyze_dummy_frame (CORE_ADDR pc, CORE_ADDR frame)
c906108c
SS
153{
154 static struct frame_info *dummy = NULL;
155 if (dummy == NULL)
156 {
a00a19e9 157 struct frame_extra_info *extra_info;
7b5849cc 158 CORE_ADDR *saved_regs;
f6c609c4 159 dummy = deprecated_frame_xmalloc ();
7b5849cc 160 saved_regs = xmalloc (SIZEOF_FRAME_SAVED_REGS);
7f8ab3a0 161 deprecated_set_frame_saved_regs_hack (dummy, saved_regs);
a00a19e9
AC
162 extra_info = XMALLOC (struct frame_extra_info);
163 deprecated_set_frame_extra_info_hack (dummy, extra_info);
c906108c 164 }
483d36b2
AC
165 deprecated_set_frame_next_hack (dummy, NULL);
166 deprecated_set_frame_prev_hack (dummy, NULL);
50abf9e5 167 deprecated_update_frame_pc_hack (dummy, pc);
b0c6b05c 168 deprecated_update_frame_base_hack (dummy, frame);
da50a4b7
AC
169 get_frame_extra_info (dummy)->status = 0;
170 get_frame_extra_info (dummy)->stack_size = 0;
b2fb4676 171 memset (get_frame_saved_regs (dummy), '\000', SIZEOF_FRAME_SAVED_REGS);
c906108c
SS
172 mn10300_analyze_prologue (dummy, 0);
173 return dummy;
174}
175
176/* Values for frame_info.status */
177
178#define MY_FRAME_IN_SP 0x1
179#define MY_FRAME_IN_FP 0x2
180#define NO_MORE_FRAMES 0x4
181
182
183/* Should call_function allocate stack space for a struct return? */
2ac51b36 184static int
fba45db2 185mn10300_use_struct_convention (int gcc_p, struct type *type)
c906108c
SS
186{
187 return (TYPE_NFIELDS (type) > 1 || TYPE_LENGTH (type) > 8);
188}
189
190/* The breakpoint instruction must be the same size as the smallest
191 instruction in the instruction set.
192
193 The Matsushita mn10x00 processors have single byte instructions
194 so we need a single byte breakpoint. Matsushita hasn't defined
195 one, so we defined it ourselves. */
196
f4f9705a 197const static unsigned char *
fba45db2 198mn10300_breakpoint_from_pc (CORE_ADDR *bp_addr, int *bp_size)
c906108c 199{
c5aa993b
JM
200 static char breakpoint[] =
201 {0xff};
c906108c
SS
202 *bp_size = 1;
203 return breakpoint;
204}
205
206
207/* Fix fi->frame if it's bogus at this point. This is a helper
208 function for mn10300_analyze_prologue. */
209
210static void
fba45db2 211fix_frame_pointer (struct frame_info *fi, int stack_size)
c906108c 212{
11c02a10 213 if (fi && get_next_frame (fi) == NULL)
c906108c 214 {
da50a4b7 215 if (get_frame_extra_info (fi)->status & MY_FRAME_IN_SP)
b0c6b05c 216 deprecated_update_frame_base_hack (fi, read_sp () - stack_size);
da50a4b7 217 else if (get_frame_extra_info (fi)->status & MY_FRAME_IN_FP)
b0c6b05c 218 deprecated_update_frame_base_hack (fi, read_register (A3_REGNUM));
c906108c
SS
219 }
220}
221
222
223/* Set offsets of registers saved by movm instruction.
224 This is a helper function for mn10300_analyze_prologue. */
225
226static void
fba45db2 227set_movm_offsets (struct frame_info *fi, int movm_args)
c906108c
SS
228{
229 int offset = 0;
230
231 if (fi == NULL || movm_args == 0)
232 return;
233
ae83b20d
JB
234 if (movm_args & movm_other_bit)
235 {
236 /* The `other' bit leaves a blank area of four bytes at the
237 beginning of its block of saved registers, making it 32 bytes
238 long in total. */
1e2330ba
AC
239 get_frame_saved_regs (fi)[LAR_REGNUM] = get_frame_base (fi) + offset + 4;
240 get_frame_saved_regs (fi)[LIR_REGNUM] = get_frame_base (fi) + offset + 8;
241 get_frame_saved_regs (fi)[MDR_REGNUM] = get_frame_base (fi) + offset + 12;
242 get_frame_saved_regs (fi)[A0_REGNUM + 1] = get_frame_base (fi) + offset + 16;
243 get_frame_saved_regs (fi)[A0_REGNUM] = get_frame_base (fi) + offset + 20;
244 get_frame_saved_regs (fi)[D0_REGNUM + 1] = get_frame_base (fi) + offset + 24;
245 get_frame_saved_regs (fi)[D0_REGNUM] = get_frame_base (fi) + offset + 28;
ae83b20d
JB
246 offset += 32;
247 }
248 if (movm_args & movm_a3_bit)
c906108c 249 {
1e2330ba 250 get_frame_saved_regs (fi)[A3_REGNUM] = get_frame_base (fi) + offset;
c906108c
SS
251 offset += 4;
252 }
ae83b20d 253 if (movm_args & movm_a2_bit)
c906108c 254 {
1e2330ba 255 get_frame_saved_regs (fi)[A2_REGNUM] = get_frame_base (fi) + offset;
c906108c
SS
256 offset += 4;
257 }
ae83b20d 258 if (movm_args & movm_d3_bit)
c906108c 259 {
1e2330ba 260 get_frame_saved_regs (fi)[D3_REGNUM] = get_frame_base (fi) + offset;
c906108c
SS
261 offset += 4;
262 }
ae83b20d 263 if (movm_args & movm_d2_bit)
c906108c 264 {
1e2330ba 265 get_frame_saved_regs (fi)[D2_REGNUM] = get_frame_base (fi) + offset;
c906108c
SS
266 offset += 4;
267 }
ae83b20d 268 if (AM33_MODE)
c2d11a7d 269 {
ae83b20d
JB
270 if (movm_args & movm_exother_bit)
271 {
1e2330ba
AC
272 get_frame_saved_regs (fi)[MCVF_REGNUM] = get_frame_base (fi) + offset;
273 get_frame_saved_regs (fi)[MCRL_REGNUM] = get_frame_base (fi) + offset + 4;
274 get_frame_saved_regs (fi)[MCRH_REGNUM] = get_frame_base (fi) + offset + 8;
275 get_frame_saved_regs (fi)[MDRQ_REGNUM] = get_frame_base (fi) + offset + 12;
276 get_frame_saved_regs (fi)[E0_REGNUM + 1] = get_frame_base (fi) + offset + 16;
277 get_frame_saved_regs (fi)[E0_REGNUM + 0] = get_frame_base (fi) + offset + 20;
ae83b20d
JB
278 offset += 24;
279 }
280 if (movm_args & movm_exreg1_bit)
281 {
1e2330ba
AC
282 get_frame_saved_regs (fi)[E0_REGNUM + 7] = get_frame_base (fi) + offset;
283 get_frame_saved_regs (fi)[E0_REGNUM + 6] = get_frame_base (fi) + offset + 4;
284 get_frame_saved_regs (fi)[E0_REGNUM + 5] = get_frame_base (fi) + offset + 8;
285 get_frame_saved_regs (fi)[E0_REGNUM + 4] = get_frame_base (fi) + offset + 12;
ae83b20d
JB
286 offset += 16;
287 }
288 if (movm_args & movm_exreg0_bit)
289 {
1e2330ba
AC
290 get_frame_saved_regs (fi)[E0_REGNUM + 3] = get_frame_base (fi) + offset;
291 get_frame_saved_regs (fi)[E0_REGNUM + 2] = get_frame_base (fi) + offset + 4;
ae83b20d
JB
292 offset += 8;
293 }
c2d11a7d 294 }
c906108c
SS
295}
296
297
298/* The main purpose of this file is dealing with prologues to extract
299 information about stack frames and saved registers.
300
4eab1e18
JB
301 In gcc/config/mn13000/mn10300.c, the expand_prologue prologue
302 function is pretty readable, and has a nice explanation of how the
303 prologue is generated. The prologues generated by that code will
03a0cf8a
JB
304 have the following form (NOTE: the current code doesn't handle all
305 this!):
c906108c 306
4eab1e18
JB
307 + If this is an old-style varargs function, then its arguments
308 need to be flushed back to the stack:
309
310 mov d0,(4,sp)
311 mov d1,(4,sp)
c906108c 312
4eab1e18
JB
313 + If we use any of the callee-saved registers, save them now.
314
315 movm [some callee-saved registers],(sp)
316
317 + If we have any floating-point registers to save:
318
319 - Decrement the stack pointer to reserve space for the registers.
320 If the function doesn't need a frame pointer, we may combine
321 this with the adjustment that reserves space for the frame.
322
323 add -SIZE, sp
324
325 - Save the floating-point registers. We have two possible
326 strategies:
327
328 . Save them at fixed offset from the SP:
329
330 fmov fsN,(OFFSETN,sp)
331 fmov fsM,(OFFSETM,sp)
332 ...
333
03a0cf8a
JB
334 Note that, if OFFSETN happens to be zero, you'll get the
335 different opcode: fmov fsN,(sp)
336
4eab1e18
JB
337 . Or, set a0 to the start of the save area, and then use
338 post-increment addressing to save the FP registers.
339
340 mov sp, a0
341 add SIZE, a0
342 fmov fsN,(a0+)
343 fmov fsM,(a0+)
344 ...
345
346 + If the function needs a frame pointer, we set it here.
347
348 mov sp, a3
349
350 + Now we reserve space for the stack frame proper. This could be
351 merged into the `add -SIZE, sp' instruction for FP saves up
352 above, unless we needed to set the frame pointer in the previous
353 step, or the frame is so large that allocating the whole thing at
354 once would put the FP register save slots out of reach of the
355 addressing mode (128 bytes).
356
357 add -SIZE, sp
c906108c
SS
358
359 One day we might keep the stack pointer constant, that won't
360 change the code for prologues, but it will make the frame
361 pointerless case much more common. */
c5aa993b 362
c906108c
SS
363/* Analyze the prologue to determine where registers are saved,
364 the end of the prologue, etc etc. Return the end of the prologue
365 scanned.
366
367 We store into FI (if non-null) several tidbits of information:
368
c5aa993b
JM
369 * stack_size -- size of this stack frame. Note that if we stop in
370 certain parts of the prologue/epilogue we may claim the size of the
371 current frame is zero. This happens when the current frame has
372 not been allocated yet or has already been deallocated.
c906108c 373
c5aa993b 374 * fsr -- Addresses of registers saved in the stack by this frame.
c906108c 375
c5aa993b
JM
376 * status -- A (relatively) generic status indicator. It's a bitmask
377 with the following bits:
c906108c 378
c5aa993b
JM
379 MY_FRAME_IN_SP: The base of the current frame is actually in
380 the stack pointer. This can happen for frame pointerless
381 functions, or cases where we're stopped in the prologue/epilogue
382 itself. For these cases mn10300_analyze_prologue will need up
383 update fi->frame before returning or analyzing the register
384 save instructions.
c906108c 385
c5aa993b 386 MY_FRAME_IN_FP: The base of the current frame is in the
4eab1e18 387 frame pointer register ($a3).
c906108c 388
c5aa993b
JM
389 NO_MORE_FRAMES: Set this if the current frame is "start" or
390 if the first instruction looks like mov <imm>,sp. This tells
391 frame chain to not bother trying to unwind past this frame. */
c906108c
SS
392
393static CORE_ADDR
fba45db2 394mn10300_analyze_prologue (struct frame_info *fi, CORE_ADDR pc)
c906108c
SS
395{
396 CORE_ADDR func_addr, func_end, addr, stop;
397 CORE_ADDR stack_size;
398 int imm_size;
399 unsigned char buf[4];
400 int status, movm_args = 0;
401 char *name;
402
403 /* Use the PC in the frame if it's provided to look up the
404 start of this function. */
50abf9e5 405 pc = (fi ? get_frame_pc (fi) : pc);
c906108c
SS
406
407 /* Find the start of this function. */
408 status = find_pc_partial_function (pc, &name, &func_addr, &func_end);
409
410 /* Do nothing if we couldn't find the start of this function or if we're
411 stopped at the first instruction in the prologue. */
412 if (status == 0)
43ff13b4
JM
413 {
414 return pc;
415 }
c906108c
SS
416
417 /* If we're in start, then give up. */
418 if (strcmp (name, "start") == 0)
419 {
420 if (fi != NULL)
da50a4b7 421 get_frame_extra_info (fi)->status = NO_MORE_FRAMES;
c906108c
SS
422 return pc;
423 }
424
425 /* At the start of a function our frame is in the stack pointer. */
426 if (fi)
da50a4b7 427 get_frame_extra_info (fi)->status = MY_FRAME_IN_SP;
c906108c
SS
428
429 /* Get the next two bytes into buf, we need two because rets is a two
430 byte insn and the first isn't enough to uniquely identify it. */
431 status = read_memory_nobpt (pc, buf, 2);
432 if (status != 0)
433 return pc;
434
435 /* If we're physically on an "rets" instruction, then our frame has
436 already been deallocated. Note this can also be true for retf
437 and ret if they specify a size of zero.
438
439 In this case fi->frame is bogus, we need to fix it. */
440 if (fi && buf[0] == 0xf0 && buf[1] == 0xfc)
441 {
11c02a10 442 if (get_next_frame (fi) == NULL)
b0c6b05c 443 deprecated_update_frame_base_hack (fi, read_sp ());
50abf9e5 444 return get_frame_pc (fi);
c906108c
SS
445 }
446
447 /* Similarly if we're stopped on the first insn of a prologue as our
448 frame hasn't been allocated yet. */
50abf9e5 449 if (fi && get_frame_pc (fi) == func_addr)
c906108c 450 {
11c02a10 451 if (get_next_frame (fi) == NULL)
b0c6b05c 452 deprecated_update_frame_base_hack (fi, read_sp ());
50abf9e5 453 return get_frame_pc (fi);
c906108c
SS
454 }
455
456 /* Figure out where to stop scanning. */
50abf9e5 457 stop = fi ? get_frame_pc (fi) : func_end;
c906108c
SS
458
459 /* Don't walk off the end of the function. */
460 stop = stop > func_end ? func_end : stop;
461
462 /* Start scanning on the first instruction of this function. */
463 addr = func_addr;
464
465 /* Suck in two bytes. */
466 status = read_memory_nobpt (addr, buf, 2);
467 if (status != 0)
468 {
469 fix_frame_pointer (fi, 0);
470 return addr;
471 }
472
4eab1e18
JB
473 /* First see if this insn sets the stack pointer from a register; if
474 so, it's probably the initialization of the stack pointer in _start,
475 so mark this as the bottom-most frame. */
c906108c
SS
476 if (buf[0] == 0xf2 && (buf[1] & 0xf3) == 0xf0)
477 {
478 if (fi)
da50a4b7 479 get_frame_extra_info (fi)->status = NO_MORE_FRAMES;
c906108c
SS
480 return addr;
481 }
482
483 /* Now look for movm [regs],sp, which saves the callee saved registers.
484
485 At this time we don't know if fi->frame is valid, so we only note
486 that we encountered a movm instruction. Later, we'll set the entries
487 in fsr.regs as needed. */
488 if (buf[0] == 0xcf)
489 {
490 /* Extract the register list for the movm instruction. */
491 status = read_memory_nobpt (addr + 1, buf, 1);
492 movm_args = *buf;
493
494 addr += 2;
495
496 /* Quit now if we're beyond the stop point. */
497 if (addr >= stop)
498 {
499 /* Fix fi->frame since it's bogus at this point. */
11c02a10 500 if (fi && get_next_frame (fi) == NULL)
b0c6b05c 501 deprecated_update_frame_base_hack (fi, read_sp ());
c906108c
SS
502
503 /* Note if/where callee saved registers were saved. */
504 set_movm_offsets (fi, movm_args);
505 return addr;
506 }
507
508 /* Get the next two bytes so the prologue scan can continue. */
509 status = read_memory_nobpt (addr, buf, 2);
510 if (status != 0)
511 {
512 /* Fix fi->frame since it's bogus at this point. */
11c02a10 513 if (fi && get_next_frame (fi) == NULL)
b0c6b05c 514 deprecated_update_frame_base_hack (fi, read_sp ());
c906108c
SS
515
516 /* Note if/where callee saved registers were saved. */
517 set_movm_offsets (fi, movm_args);
518 return addr;
519 }
520 }
521
522 /* Now see if we set up a frame pointer via "mov sp,a3" */
523 if (buf[0] == 0x3f)
524 {
525 addr += 1;
526
527 /* The frame pointer is now valid. */
528 if (fi)
529 {
da50a4b7
AC
530 get_frame_extra_info (fi)->status |= MY_FRAME_IN_FP;
531 get_frame_extra_info (fi)->status &= ~MY_FRAME_IN_SP;
c906108c
SS
532 }
533
534 /* Quit now if we're beyond the stop point. */
535 if (addr >= stop)
536 {
537 /* Fix fi->frame if it's bogus at this point. */
538 fix_frame_pointer (fi, 0);
539
540 /* Note if/where callee saved registers were saved. */
541 set_movm_offsets (fi, movm_args);
542 return addr;
543 }
544
545 /* Get two more bytes so scanning can continue. */
546 status = read_memory_nobpt (addr, buf, 2);
547 if (status != 0)
548 {
549 /* Fix fi->frame if it's bogus at this point. */
550 fix_frame_pointer (fi, 0);
551
552 /* Note if/where callee saved registers were saved. */
553 set_movm_offsets (fi, movm_args);
554 return addr;
555 }
556 }
c5aa993b 557
c906108c
SS
558 /* Next we should allocate the local frame. No more prologue insns
559 are found after allocating the local frame.
c5aa993b 560
c906108c 561 Search for add imm8,sp (0xf8feXX)
c5aa993b
JM
562 or add imm16,sp (0xfafeXXXX)
563 or add imm32,sp (0xfcfeXXXXXXXX).
564
c906108c
SS
565 If none of the above was found, then this prologue has no
566 additional stack. */
567
568 status = read_memory_nobpt (addr, buf, 2);
569 if (status != 0)
570 {
571 /* Fix fi->frame if it's bogus at this point. */
572 fix_frame_pointer (fi, 0);
573
574 /* Note if/where callee saved registers were saved. */
575 set_movm_offsets (fi, movm_args);
576 return addr;
577 }
578
579 imm_size = 0;
580 if (buf[0] == 0xf8 && buf[1] == 0xfe)
581 imm_size = 1;
582 else if (buf[0] == 0xfa && buf[1] == 0xfe)
583 imm_size = 2;
584 else if (buf[0] == 0xfc && buf[1] == 0xfe)
585 imm_size = 4;
586
587 if (imm_size != 0)
588 {
589 /* Suck in imm_size more bytes, they'll hold the size of the
590 current frame. */
591 status = read_memory_nobpt (addr + 2, buf, imm_size);
592 if (status != 0)
593 {
594 /* Fix fi->frame if it's bogus at this point. */
595 fix_frame_pointer (fi, 0);
596
597 /* Note if/where callee saved registers were saved. */
598 set_movm_offsets (fi, movm_args);
599 return addr;
600 }
601
602 /* Note the size of the stack in the frame info structure. */
603 stack_size = extract_signed_integer (buf, imm_size);
604 if (fi)
da50a4b7 605 get_frame_extra_info (fi)->stack_size = stack_size;
c906108c
SS
606
607 /* We just consumed 2 + imm_size bytes. */
608 addr += 2 + imm_size;
609
610 /* No more prologue insns follow, so begin preparation to return. */
611 /* Fix fi->frame if it's bogus at this point. */
612 fix_frame_pointer (fi, stack_size);
613
614 /* Note if/where callee saved registers were saved. */
615 set_movm_offsets (fi, movm_args);
616 return addr;
617 }
618
619 /* We never found an insn which allocates local stack space, regardless
620 this is the end of the prologue. */
621 /* Fix fi->frame if it's bogus at this point. */
622 fix_frame_pointer (fi, 0);
623
624 /* Note if/where callee saved registers were saved. */
625 set_movm_offsets (fi, movm_args);
626 return addr;
627}
c5aa993b 628
ae83b20d
JB
629
630/* Function: saved_regs_size
631 Return the size in bytes of the register save area, based on the
632 saved_regs array in FI. */
633static int
634saved_regs_size (struct frame_info *fi)
635{
636 int adjust = 0;
637 int i;
638
639 /* Reserve four bytes for every register saved. */
640 for (i = 0; i < NUM_REGS; i++)
b2fb4676 641 if (get_frame_saved_regs (fi)[i])
ae83b20d
JB
642 adjust += 4;
643
644 /* If we saved LIR, then it's most likely we used a `movm'
645 instruction with the `other' bit set, in which case the SP is
646 decremented by an extra four bytes, "to simplify calculation
647 of the transfer area", according to the processor manual. */
b2fb4676 648 if (get_frame_saved_regs (fi)[LIR_REGNUM])
ae83b20d
JB
649 adjust += 4;
650
651 return adjust;
652}
653
654
c906108c
SS
655/* Function: frame_chain
656 Figure out and return the caller's frame pointer given current
657 frame_info struct.
658
659 We don't handle dummy frames yet but we would probably just return the
660 stack pointer that was in use at the time the function call was made? */
661
2ac51b36 662static CORE_ADDR
fba45db2 663mn10300_frame_chain (struct frame_info *fi)
c906108c
SS
664{
665 struct frame_info *dummy;
666 /* Walk through the prologue to determine the stack size,
667 location of saved registers, end of the prologue, etc. */
da50a4b7 668 if (get_frame_extra_info (fi)->status == 0)
c5aa993b 669 mn10300_analyze_prologue (fi, (CORE_ADDR) 0);
c906108c
SS
670
671 /* Quit now if mn10300_analyze_prologue set NO_MORE_FRAMES. */
da50a4b7 672 if (get_frame_extra_info (fi)->status & NO_MORE_FRAMES)
c906108c
SS
673 return 0;
674
675 /* Now that we've analyzed our prologue, determine the frame
676 pointer for our caller.
677
c5aa993b
JM
678 If our caller has a frame pointer, then we need to
679 find the entry value of $a3 to our function.
680
681 If fsr.regs[A3_REGNUM] is nonzero, then it's at the memory
682 location pointed to by fsr.regs[A3_REGNUM].
c906108c 683
c5aa993b 684 Else it's still in $a3.
c906108c 685
c5aa993b
JM
686 If our caller does not have a frame pointer, then his
687 frame base is fi->frame + -caller's stack size. */
c906108c 688
c906108c
SS
689 /* The easiest way to get that info is to analyze our caller's frame.
690 So we set up a dummy frame and call mn10300_analyze_prologue to
691 find stuff for us. */
8bedc050 692 dummy = analyze_dummy_frame (DEPRECATED_FRAME_SAVED_PC (fi), get_frame_base (fi));
c906108c 693
da50a4b7 694 if (get_frame_extra_info (dummy)->status & MY_FRAME_IN_FP)
c906108c
SS
695 {
696 /* Our caller has a frame pointer. So find the frame in $a3 or
697 in the stack. */
b2fb4676 698 if (get_frame_saved_regs (fi)[A3_REGNUM])
b1e29e33
AC
699 return (read_memory_integer (get_frame_saved_regs (fi)[A3_REGNUM],
700 DEPRECATED_REGISTER_SIZE));
c906108c
SS
701 else
702 return read_register (A3_REGNUM);
703 }
704 else
705 {
ae83b20d 706 int adjust = saved_regs_size (fi);
c906108c
SS
707
708 /* Our caller does not have a frame pointer. So his frame starts
c5aa993b
JM
709 at the base of our frame (fi->frame) + register save space
710 + <his size>. */
da50a4b7 711 return get_frame_base (fi) + adjust + -get_frame_extra_info (dummy)->stack_size;
c906108c
SS
712 }
713}
714
715/* Function: skip_prologue
716 Return the address of the first inst past the prologue of the function. */
717
2ac51b36 718static CORE_ADDR
fba45db2 719mn10300_skip_prologue (CORE_ADDR pc)
c906108c
SS
720{
721 /* We used to check the debug symbols, but that can lose if
722 we have a null prologue. */
723 return mn10300_analyze_prologue (NULL, pc);
724}
725
ee9f9641
JB
726/* generic_pop_current_frame calls this function if the current
727 frame isn't a dummy frame. */
728static void
729mn10300_pop_frame_regular (struct frame_info *frame)
c906108c
SS
730{
731 int regnum;
732
8bedc050 733 write_register (PC_REGNUM, DEPRECATED_FRAME_SAVED_PC (frame));
c906108c 734
ee9f9641
JB
735 /* Restore any saved registers. */
736 for (regnum = 0; regnum < NUM_REGS; regnum++)
b2fb4676 737 if (get_frame_saved_regs (frame)[regnum] != 0)
ee9f9641
JB
738 {
739 ULONGEST value;
c906108c 740
b2fb4676 741 value = read_memory_unsigned_integer (get_frame_saved_regs (frame)[regnum],
ee9f9641
JB
742 REGISTER_RAW_SIZE (regnum));
743 write_register (regnum, value);
744 }
c906108c 745
ee9f9641 746 /* Actually cut back the stack. */
c193f6ac 747 write_register (SP_REGNUM, get_frame_base (frame));
c906108c 748
ee9f9641
JB
749 /* Don't we need to set the PC?!? XXX FIXME. */
750}
751
752/* Function: pop_frame
753 This routine gets called when either the user uses the `return'
754 command, or the call dummy breakpoint gets hit. */
755static void
756mn10300_pop_frame (void)
757{
758 /* This function checks for and handles generic dummy frames, and
759 calls back to our function for ordinary frames. */
760 generic_pop_current_frame (mn10300_pop_frame_regular);
c906108c
SS
761
762 /* Throw away any cached frame information. */
763 flush_cached_frames ();
764}
765
766/* Function: push_arguments
767 Setup arguments for a call to the target. Arguments go in
768 order on the stack. */
769
2ac51b36 770static CORE_ADDR
91225883
AC
771mn10300_push_arguments (int nargs, struct value **args, CORE_ADDR sp,
772 int struct_return, CORE_ADDR struct_addr)
c906108c
SS
773{
774 int argnum = 0;
775 int len = 0;
776 int stack_offset = 0;
777 int regsused = struct_return ? 1 : 0;
778
779 /* This should be a nop, but align the stack just in case something
780 went wrong. Stacks are four byte aligned on the mn10300. */
781 sp &= ~3;
782
783 /* Now make space on the stack for the args.
784
785 XXX This doesn't appear to handle pass-by-invisible reference
786 arguments. */
787 for (argnum = 0; argnum < nargs; argnum++)
788 {
789 int arg_length = (TYPE_LENGTH (VALUE_TYPE (args[argnum])) + 3) & ~3;
790
791 while (regsused < 2 && arg_length > 0)
792 {
793 regsused++;
794 arg_length -= 4;
795 }
796 len += arg_length;
797 }
798
799 /* Allocate stack space. */
800 sp -= len;
801
802 regsused = struct_return ? 1 : 0;
803 /* Push all arguments onto the stack. */
804 for (argnum = 0; argnum < nargs; argnum++)
805 {
806 int len;
807 char *val;
808
809 /* XXX Check this. What about UNIONS? */
810 if (TYPE_CODE (VALUE_TYPE (*args)) == TYPE_CODE_STRUCT
811 && TYPE_LENGTH (VALUE_TYPE (*args)) > 8)
812 {
813 /* XXX Wrong, we want a pointer to this argument. */
c5aa993b
JM
814 len = TYPE_LENGTH (VALUE_TYPE (*args));
815 val = (char *) VALUE_CONTENTS (*args);
c906108c
SS
816 }
817 else
818 {
819 len = TYPE_LENGTH (VALUE_TYPE (*args));
c5aa993b 820 val = (char *) VALUE_CONTENTS (*args);
c906108c
SS
821 }
822
823 while (regsused < 2 && len > 0)
824 {
825 write_register (regsused, extract_unsigned_integer (val, 4));
826 val += 4;
827 len -= 4;
828 regsused++;
829 }
830
831 while (len > 0)
832 {
833 write_memory (sp + stack_offset, val, 4);
834 len -= 4;
835 val += 4;
836 stack_offset += 4;
837 }
838
839 args++;
840 }
841
842 /* Make space for the flushback area. */
843 sp -= 8;
844 return sp;
845}
846
847/* Function: push_return_address (pc)
848 Set up the return address for the inferior function call.
849 Needed for targets where we don't actually execute a JSR/BSR instruction */
c5aa993b 850
2ac51b36 851static CORE_ADDR
fba45db2 852mn10300_push_return_address (CORE_ADDR pc, CORE_ADDR sp)
c906108c
SS
853{
854 unsigned char buf[4];
855
856 store_unsigned_integer (buf, 4, CALL_DUMMY_ADDRESS ());
857 write_memory (sp - 4, buf, 4);
858 return sp - 4;
859}
860
861/* Function: store_struct_return (addr,sp)
862 Store the structure value return address for an inferior function
863 call. */
c5aa993b 864
2ac51b36 865static void
fba45db2 866mn10300_store_struct_return (CORE_ADDR addr, CORE_ADDR sp)
c906108c
SS
867{
868 /* The structure return address is passed as the first argument. */
869 write_register (0, addr);
c906108c 870}
c5aa993b 871
c906108c
SS
872/* Function: frame_saved_pc
873 Find the caller of this frame. We do this by seeing if RP_REGNUM
874 is saved in the stack anywhere, otherwise we get it from the
875 registers. If the inner frame is a dummy frame, return its PC
876 instead of RP, because that's where "caller" of the dummy-frame
877 will be found. */
878
2ac51b36 879static CORE_ADDR
fba45db2 880mn10300_frame_saved_pc (struct frame_info *fi)
c906108c 881{
ae83b20d 882 int adjust = saved_regs_size (fi);
c906108c 883
b1e29e33
AC
884 return (read_memory_integer (get_frame_base (fi) + adjust,
885 DEPRECATED_REGISTER_SIZE));
c906108c
SS
886}
887
c906108c
SS
888/* Function: mn10300_init_extra_frame_info
889 Setup the frame's frame pointer, pc, and frame addresses for saved
890 registers. Most of the work is done in mn10300_analyze_prologue().
891
892 Note that when we are called for the last frame (currently active frame),
50abf9e5 893 that get_frame_pc (fi) and fi->frame will already be setup. However, fi->frame will
c906108c
SS
894 be valid only if this routine uses FP. For previous frames, fi-frame will
895 always be correct. mn10300_analyze_prologue will fix fi->frame if
896 it's not valid.
897
04714b91
AC
898 We can be called with the PC in the call dummy under two
899 circumstances. First, during normal backtracing, second, while
900 figuring out the frame pointer just prior to calling the target
901 function (see call_function_by_hand). */
c906108c 902
2ac51b36 903static void
ad8fe2ce 904mn10300_init_extra_frame_info (int fromleaf, struct frame_info *fi)
c906108c 905{
11c02a10 906 if (get_next_frame (fi))
8bedc050 907 deprecated_update_frame_pc_hack (fi, DEPRECATED_FRAME_SAVED_PC (get_next_frame (fi)));
c906108c
SS
908
909 frame_saved_regs_zalloc (fi);
a00a19e9 910 frame_extra_info_zalloc (fi, sizeof (struct frame_extra_info));
c906108c 911
da50a4b7
AC
912 get_frame_extra_info (fi)->status = 0;
913 get_frame_extra_info (fi)->stack_size = 0;
c906108c
SS
914
915 mn10300_analyze_prologue (fi, 0);
916}
917
ad8fe2ce
JB
918
919/* This function's job is handled by init_extra_frame_info. */
2ac51b36 920static void
ad8fe2ce
JB
921mn10300_frame_init_saved_regs (struct frame_info *frame)
922{
923}
924
925
c906108c
SS
926/* Function: mn10300_virtual_frame_pointer
927 Return the register that the function uses for a frame pointer,
928 plus any necessary offset to be applied to the register before
929 any frame pointer offsets. */
930
39d4ef09
AC
931static void
932mn10300_virtual_frame_pointer (CORE_ADDR pc,
933 int *reg,
934 LONGEST *offset)
c906108c
SS
935{
936 struct frame_info *dummy = analyze_dummy_frame (pc, 0);
937 /* Set up a dummy frame_info, Analyze the prolog and fill in the
938 extra info. */
939 /* Results will tell us which type of frame it uses. */
da50a4b7 940 if (get_frame_extra_info (dummy)->status & MY_FRAME_IN_SP)
c906108c 941 {
c5aa993b 942 *reg = SP_REGNUM;
da50a4b7 943 *offset = -(get_frame_extra_info (dummy)->stack_size);
c906108c
SS
944 }
945 else
946 {
c5aa993b 947 *reg = A3_REGNUM;
c906108c
SS
948 *offset = 0;
949 }
950}
c5aa993b 951
91225883
AC
952static int
953mn10300_reg_struct_has_addr (int gcc_p, struct type *type)
c906108c 954{
91225883
AC
955 return (TYPE_LENGTH (type) > 8);
956}
c906108c 957
f6df245f
AC
958static struct type *
959mn10300_register_virtual_type (int reg)
960{
961 return builtin_type_int;
962}
963
964static int
965mn10300_register_byte (int reg)
966{
967 return (reg * 4);
968}
969
970static int
971mn10300_register_virtual_size (int reg)
972{
973 return 4;
974}
975
976static int
977mn10300_register_raw_size (int reg)
978{
979 return 4;
980}
981
23436510
JB
982/* If DWARF2 is a register number appearing in Dwarf2 debug info, then
983 mn10300_dwarf2_reg_to_regnum (DWARF2) is the corresponding GDB
984 register number. Why don't Dwarf2 and GDB use the same numbering?
985 Who knows? But since people have object files lying around with
986 the existing Dwarf2 numbering, and other people have written stubs
987 to work with the existing GDB, neither of them can change. So we
988 just have to cope. */
989static int
990mn10300_dwarf2_reg_to_regnum (int dwarf2)
991{
992 /* This table is supposed to be shaped like the REGISTER_NAMES
993 initializer in gcc/config/mn10300/mn10300.h. Registers which
994 appear in GCC's numbering, but have no counterpart in GDB's
995 world, are marked with a -1. */
996 static int dwarf2_to_gdb[] = {
997 0, 1, 2, 3, 4, 5, 6, 7, -1, 8,
998 15, 16, 17, 18, 19, 20, 21, 22
999 };
1000 int gdb;
1001
1002 if (dwarf2 < 0
1003 || dwarf2 >= (sizeof (dwarf2_to_gdb) / sizeof (dwarf2_to_gdb[0]))
1004 || dwarf2_to_gdb[dwarf2] == -1)
1005 internal_error (__FILE__, __LINE__,
1006 "bogus register number in debug info: %d", dwarf2);
1007
1008 return dwarf2_to_gdb[dwarf2];
1009}
1010
f6df245f
AC
1011static void
1012mn10300_print_register (const char *name, int regnum, int reg_width)
1013{
d9d9c31f 1014 char raw_buffer[MAX_REGISTER_SIZE];
f6df245f
AC
1015
1016 if (reg_width)
1017 printf_filtered ("%*s: ", reg_width, name);
1018 else
1019 printf_filtered ("%s: ", name);
1020
1021 /* Get the data */
6e7f8b9c 1022 if (!frame_register_read (deprecated_selected_frame, regnum, raw_buffer))
f6df245f
AC
1023 {
1024 printf_filtered ("[invalid]");
1025 return;
1026 }
1027 else
1028 {
1029 int byte;
d7449b42 1030 if (TARGET_BYTE_ORDER == BFD_ENDIAN_BIG)
f6df245f
AC
1031 {
1032 for (byte = REGISTER_RAW_SIZE (regnum) - REGISTER_VIRTUAL_SIZE (regnum);
1033 byte < REGISTER_RAW_SIZE (regnum);
1034 byte++)
1035 printf_filtered ("%02x", (unsigned char) raw_buffer[byte]);
1036 }
1037 else
1038 {
1039 for (byte = REGISTER_VIRTUAL_SIZE (regnum) - 1;
1040 byte >= 0;
1041 byte--)
1042 printf_filtered ("%02x", (unsigned char) raw_buffer[byte]);
1043 }
1044 }
1045}
1046
1047static void
1048mn10300_do_registers_info (int regnum, int fpregs)
1049{
1050 if (regnum >= 0)
1051 {
1052 const char *name = REGISTER_NAME (regnum);
1053 if (name == NULL || name[0] == '\0')
1054 error ("Not a valid register for the current processor type");
1055 mn10300_print_register (name, regnum, 0);
1056 printf_filtered ("\n");
1057 }
1058 else
1059 {
1060 /* print registers in an array 4x8 */
1061 int r;
1062 int reg;
1063 const int nr_in_row = 4;
1064 const int reg_width = 4;
1065 for (r = 0; r < NUM_REGS; r += nr_in_row)
1066 {
1067 int c;
1068 int printing = 0;
1069 int padding = 0;
1070 for (c = r; c < r + nr_in_row; c++)
1071 {
1072 const char *name = REGISTER_NAME (c);
1073 if (name != NULL && *name != '\0')
1074 {
1075 printing = 1;
1076 while (padding > 0)
1077 {
1078 printf_filtered (" ");
1079 padding--;
1080 }
1081 mn10300_print_register (name, c, reg_width);
1082 printf_filtered (" ");
1083 }
1084 else
1085 {
1086 padding += (reg_width + 2 + 8 + 1);
1087 }
1088 }
1089 if (printing)
1090 printf_filtered ("\n");
1091 }
1092 }
1093}
1094
bd1ce8ba
AC
1095static CORE_ADDR
1096mn10300_read_fp (void)
1097{
1098 /* That's right, we're using the stack pointer as our frame pointer. */
1099 gdb_assert (SP_REGNUM >= 0);
1100 return read_register (SP_REGNUM);
1101}
1102
91225883 1103/* Dump out the mn10300 speciic architecture information. */
c906108c 1104
91225883
AC
1105static void
1106mn10300_dump_tdep (struct gdbarch *current_gdbarch, struct ui_file *file)
1107{
1108 struct gdbarch_tdep *tdep = gdbarch_tdep (current_gdbarch);
1109 fprintf_unfiltered (file, "mn10300_dump_tdep: am33_mode = %d\n",
1110 tdep->am33_mode);
1111}
c2d11a7d 1112
91225883
AC
1113static struct gdbarch *
1114mn10300_gdbarch_init (struct gdbarch_info info,
1115 struct gdbarch_list *arches)
1116{
ad8fe2ce 1117 static LONGEST mn10300_call_dummy_words[] = { 0 };
91225883
AC
1118 struct gdbarch *gdbarch;
1119 struct gdbarch_tdep *tdep = NULL;
1120 int am33_mode;
1121 gdbarch_register_name_ftype *register_name;
1122 int mach;
1123 int num_regs;
1124
1125 arches = gdbarch_list_lookup_by_info (arches, &info);
1126 if (arches != NULL)
1127 return arches->gdbarch;
1128 tdep = xmalloc (sizeof (struct gdbarch_tdep));
1129 gdbarch = gdbarch_alloc (&info, tdep);
1130
1131 if (info.bfd_arch_info != NULL
f6df245f 1132 && info.bfd_arch_info->arch == bfd_arch_mn10300)
91225883
AC
1133 mach = info.bfd_arch_info->mach;
1134 else
1135 mach = 0;
1136 switch (mach)
1137 {
1138 case 0:
f6df245f 1139 case bfd_mach_mn10300:
91225883
AC
1140 am33_mode = 0;
1141 register_name = mn10300_generic_register_name;
1142 num_regs = 32;
1143 break;
1144 case bfd_mach_am33:
c2d11a7d 1145 am33_mode = 1;
91225883
AC
1146 register_name = am33_register_name;
1147 num_regs = 32;
1148 break;
1149 default:
8e65ff28
AC
1150 internal_error (__FILE__, __LINE__,
1151 "mn10300_gdbarch_init: Unknown mn10300 variant");
91225883 1152 return NULL; /* keep GCC happy. */
c2d11a7d 1153 }
c906108c 1154
584f96a8
JB
1155 /* Registers. */
1156 set_gdbarch_num_regs (gdbarch, num_regs);
1157 set_gdbarch_register_name (gdbarch, register_name);
b1e29e33 1158 set_gdbarch_deprecated_register_size (gdbarch, 4);
b8b527c5 1159 set_gdbarch_deprecated_register_bytes (gdbarch, num_regs * gdbarch_deprecated_register_size (gdbarch));
a0ed5532 1160 set_gdbarch_deprecated_max_register_raw_size (gdbarch, 4);
9c04cab7
AC
1161 set_gdbarch_deprecated_register_raw_size (gdbarch, mn10300_register_raw_size);
1162 set_gdbarch_deprecated_register_byte (gdbarch, mn10300_register_byte);
a0ed5532 1163 set_gdbarch_deprecated_max_register_virtual_size (gdbarch, 4);
9c04cab7
AC
1164 set_gdbarch_deprecated_register_virtual_size (gdbarch, mn10300_register_virtual_size);
1165 set_gdbarch_deprecated_register_virtual_type (gdbarch, mn10300_register_virtual_type);
23436510 1166 set_gdbarch_dwarf2_reg_to_regnum (gdbarch, mn10300_dwarf2_reg_to_regnum);
903ad3a6 1167 set_gdbarch_deprecated_do_registers_info (gdbarch, mn10300_do_registers_info);
a15525c1
AC
1168 set_gdbarch_sp_regnum (gdbarch, 8);
1169 set_gdbarch_pc_regnum (gdbarch, 9);
0ba6dca9 1170 set_gdbarch_deprecated_fp_regnum (gdbarch, 31);
39d4ef09 1171 set_gdbarch_virtual_frame_pointer (gdbarch, mn10300_virtual_frame_pointer);
584f96a8
JB
1172
1173 /* Breakpoints. */
ad8fe2ce
JB
1174 set_gdbarch_breakpoint_from_pc (gdbarch, mn10300_breakpoint_from_pc);
1175 set_gdbarch_function_start_offset (gdbarch, 0);
1176 set_gdbarch_decr_pc_after_break (gdbarch, 0);
584f96a8
JB
1177
1178 /* Stack unwinding. */
ad8fe2ce 1179 set_gdbarch_inner_than (gdbarch, core_addr_lessthan);
6913c89a 1180 set_gdbarch_deprecated_saved_pc_after_call (gdbarch, mn10300_saved_pc_after_call);
e9582e71 1181 set_gdbarch_deprecated_init_extra_frame_info (gdbarch, mn10300_init_extra_frame_info);
a5afb99f 1182 set_gdbarch_deprecated_init_frame_pc (gdbarch, init_frame_pc_noop);
f30ee0bc 1183 set_gdbarch_deprecated_frame_init_saved_regs (gdbarch, mn10300_frame_init_saved_regs);
618ce49f 1184 set_gdbarch_deprecated_frame_chain (gdbarch, mn10300_frame_chain);
8bedc050 1185 set_gdbarch_deprecated_frame_saved_pc (gdbarch, mn10300_frame_saved_pc);
26e9b323
AC
1186 set_gdbarch_deprecated_extract_return_value (gdbarch, mn10300_extract_return_value);
1187 set_gdbarch_deprecated_extract_struct_value_address
ad8fe2ce 1188 (gdbarch, mn10300_extract_struct_value_address);
ebba8386 1189 set_gdbarch_deprecated_store_return_value (gdbarch, mn10300_store_return_value);
4183d812 1190 set_gdbarch_deprecated_store_struct_return (gdbarch, mn10300_store_struct_return);
749b82f6 1191 set_gdbarch_deprecated_pop_frame (gdbarch, mn10300_pop_frame);
ad8fe2ce
JB
1192 set_gdbarch_skip_prologue (gdbarch, mn10300_skip_prologue);
1193 set_gdbarch_frame_args_skip (gdbarch, 0);
ad8fe2ce 1194 /* That's right, we're using the stack pointer as our frame pointer. */
bd1ce8ba 1195 set_gdbarch_deprecated_target_read_fp (gdbarch, mn10300_read_fp);
584f96a8
JB
1196
1197 /* Calling functions in the inferior from GDB. */
b1e29e33
AC
1198 set_gdbarch_deprecated_call_dummy_words (gdbarch, mn10300_call_dummy_words);
1199 set_gdbarch_deprecated_sizeof_call_dummy_words (gdbarch, sizeof (mn10300_call_dummy_words));
ae45cd16 1200 set_gdbarch_deprecated_pc_in_call_dummy (gdbarch, deprecated_pc_in_call_dummy_at_entry_point);
b81774d8 1201 set_gdbarch_deprecated_push_arguments (gdbarch, mn10300_push_arguments);
584f96a8 1202 set_gdbarch_reg_struct_has_addr (gdbarch, mn10300_reg_struct_has_addr);
28f617b3 1203 set_gdbarch_deprecated_push_return_address (gdbarch, mn10300_push_return_address);
a59fe496 1204 set_gdbarch_deprecated_save_dummy_frame_tos (gdbarch, generic_save_dummy_frame_tos);
ad8fe2ce
JB
1205 set_gdbarch_use_struct_convention (gdbarch, mn10300_use_struct_convention);
1206
91225883
AC
1207 tdep->am33_mode = am33_mode;
1208
6c0e89ed 1209 /* Should be using push_dummy_call. */
b46e02f6 1210 set_gdbarch_deprecated_dummy_write_sp (gdbarch, deprecated_write_sp);
6c0e89ed 1211
91225883
AC
1212 return gdbarch;
1213}
1214
c906108c 1215void
fba45db2 1216_initialize_mn10300_tdep (void)
c906108c
SS
1217{
1218/* printf("_initialize_mn10300_tdep\n"); */
1219
d7a27068 1220 deprecated_tm_print_insn = print_insn_mn10300;
c906108c 1221
91225883 1222 register_gdbarch_init (bfd_arch_mn10300, mn10300_gdbarch_init);
c906108c 1223}
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