* bcache.c, bcache.h: New files to implement a byte cache.
[deliverable/binutils-gdb.git] / gdb / z8k-tdep.c
CommitLineData
a332e593 1/* Target-machine dependent code for Zilog Z8000, for GDB.
669caa9c 2 Copyright (C) 1992, 1993, 1994 Free Software Foundation, Inc.
a332e593
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3
4This file is part of GDB.
5
6This program is free software; you can redistribute it and/or modify
7it under the terms of the GNU General Public License as published by
8the Free Software Foundation; either version 2 of the License, or
9(at your option) any later version.
10
11This program is distributed in the hope that it will be useful,
12but WITHOUT ANY WARRANTY; without even the implied warranty of
13MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
14GNU General Public License for more details.
15
16You should have received a copy of the GNU General Public License
17along with this program; if not, write to the Free Software
6c9638b4 18Foundation, Inc., 59 Temple Place - Suite 330, Boston, MA 02111-1307, USA. */
a332e593 19
e4ebb8e5 20/*
a332e593 21 Contributed by Steve Chamberlain
e4ebb8e5 22 sac@cygnus.com
a332e593
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23 */
24
a332e593
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25#include "defs.h"
26#include "frame.h"
27#include "obstack.h"
28#include "symtab.h"
e4ebb8e5 29#include "gdbcmd.h"
a332e593 30#include "gdbtypes.h"
52f8e6a0 31#include "dis-asm.h"
669caa9c 32
a332e593
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33/* Return the saved PC from this frame.
34
35 If the frame has a memory copy of SRP_REGNUM, use that. If not,
36 just use the register SRP_REGNUM itself. */
37
38CORE_ADDR
39frame_saved_pc (frame)
669caa9c 40 struct frame_info *frame;
a332e593 41{
669caa9c 42 return read_memory_pointer (frame->frame + (BIG ? 4 : 2));
a332e593
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43}
44
45#define IS_PUSHL(x) (BIG ? ((x & 0xfff0) == 0x91e0):((x & 0xfff0) == 0x91F0))
46#define IS_PUSHW(x) (BIG ? ((x & 0xfff0) == 0x93e0):((x & 0xfff0)==0x93f0))
47#define IS_MOVE_FP(x) (BIG ? x == 0xa1ea : x == 0xa1fa)
48#define IS_MOV_SP_FP(x) (BIG ? x == 0x94ea : x == 0x0d76)
49#define IS_SUB2_SP(x) (x==0x1b87)
50#define IS_MOVK_R5(x) (x==0x7905)
51#define IS_SUB_SP(x) ((x & 0xffff) == 0x020f)
52#define IS_PUSH_FP(x) (BIG ? (x == 0x93ea) : (x == 0x93fa))
53
e4ebb8e5 54/* work out how much local space is on the stack and
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55 return the pc pointing to the first push */
56
e4ebb8e5
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57static CORE_ADDR
58skip_adjust (pc, size)
59 CORE_ADDR pc;
60 int *size;
a332e593
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61{
62 *size = 0;
63
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64 if (IS_PUSH_FP (read_memory_short (pc))
65 && IS_MOV_SP_FP (read_memory_short (pc + 2)))
66 {
67 /* This is a function with an explict frame pointer */
68 pc += 4;
69 *size += 2; /* remember the frame pointer */
70 }
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71
72 /* remember any stack adjustment */
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73 if (IS_SUB_SP (read_memory_short (pc)))
74 {
75 *size += read_memory_short (pc + 2);
76 pc += 4;
77 }
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78 return pc;
79}
80
a332e593 81int
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82examine_frame (pc, regs, sp)
83 CORE_ADDR pc;
84 struct frame_saved_regs *regs;
85 CORE_ADDR sp;
a332e593 86{
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87 int w = read_memory_short (pc);
88 int offset = 0;
89 int regno;
a332e593 90
e4ebb8e5 91 for (regno = 0; regno < NUM_REGS; regno++)
b2ff9b68 92 regs->regs[regno] = 0;
a332e593 93
e4ebb8e5 94 while (IS_PUSHW (w) || IS_PUSHL (w))
e4ebb8e5 95 {
b2ff9b68
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96 /* work out which register is being pushed to where */
97 if (IS_PUSHL (w))
98 {
99 regs->regs[w & 0xf] = offset;
100 regs->regs[(w & 0xf) + 1] = offset + 2;
101 offset += 4;
102 }
103 else
104 {
105 regs->regs[w & 0xf] = offset;
106 offset += 2;
107 }
108 pc += 2;
109 w = read_memory_short (pc);
a332e593 110 }
a332e593 111
e4ebb8e5 112 if (IS_MOVE_FP (w))
b2ff9b68
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113 {
114 /* We know the fp */
e4ebb8e5 115
b2ff9b68 116 }
e4ebb8e5 117 else if (IS_SUB_SP (w))
b2ff9b68
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118 {
119 /* Subtracting a value from the sp, so were in a function
e4ebb8e5
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120 which needs stack space for locals, but has no fp. We fake up
121 the values as if we had an fp */
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122 regs->regs[FP_REGNUM] = sp;
123 }
e4ebb8e5 124 else
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125 {
126 /* This one didn't have an fp, we'll fake it up */
127 regs->regs[SP_REGNUM] = sp;
128 }
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129 /* stack pointer contains address of next frame */
130 /* regs->regs[fp_regnum()] = fp;*/
a332e593
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131 regs->regs[SP_REGNUM] = sp;
132 return pc;
133}
134
b2ff9b68 135CORE_ADDR
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136z8k_skip_prologue (start_pc)
137 CORE_ADDR start_pc;
a332e593
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138{
139 struct frame_saved_regs dummy;
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140
141 return examine_frame (start_pc, &dummy, 0);
a332e593
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142}
143
b2ff9b68 144CORE_ADDR
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145addr_bits_remove (x)
146 CORE_ADDR x;
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147{
148 return x & PTR_MASK;
149}
150
669caa9c 151int
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152read_memory_pointer (x)
153 CORE_ADDR x;
a332e593 154{
e4ebb8e5 155 return read_memory_integer (ADDR_BITS_REMOVE (x), BIG ? 4 : 2);
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156}
157
669caa9c 158CORE_ADDR
a332e593 159frame_chain (thisframe)
669caa9c 160 struct frame_info *thisframe;
a332e593 161{
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162 if (thisframe->prev == 0)
163 {
164 /* This is the top of the stack, let's get the sp for real */
165 }
669caa9c 166 if (!inside_entry_file (thisframe->pc))
e4ebb8e5 167 {
669caa9c 168 return read_memory_pointer (thisframe->frame);
e4ebb8e5 169 }
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170 return 0;
171}
172
e4ebb8e5
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173init_frame_pc ()
174{
175 abort ();
176}
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177
178/* Put here the code to store, into a struct frame_saved_regs,
179 the addresses of the saved registers of frame described by FRAME_INFO.
180 This includes special registers such as pc and fp saved in special
181 ways in the stack frame. sp is even more special:
182 the address we return for it IS the sp for the next frame. */
183
b2ff9b68 184void
e4ebb8e5 185get_frame_saved_regs (frame_info, frame_saved_regs)
a332e593
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186 struct frame_info *frame_info;
187 struct frame_saved_regs *frame_saved_regs;
188
189{
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190 CORE_ADDR pc;
191 int w;
192
4ed97c9a 193 memset (frame_saved_regs, '\0', sizeof (*frame_saved_regs));
e4ebb8e5 194 pc = get_pc_function_start (frame_info->pc);
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195
196/* wander down the instruction stream */
e4ebb8e5 197 examine_frame (pc, frame_saved_regs, frame_info->frame);
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198
199}
200
b2ff9b68 201void
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202z8k_push_dummy_frame ()
203{
204 abort ();
a332e593 205}
a332e593 206
b2ff9b68 207int
18b46e7c
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208gdb_print_insn_z8k (memaddr, info)
209 bfd_vma memaddr;
210 disassemble_info *info;
a332e593 211{
e4ebb8e5 212 if (BIG)
18b46e7c 213 return print_insn_z8001 (memaddr, info);
e4ebb8e5 214 else
18b46e7c 215 return print_insn_z8002 (memaddr, info);
a332e593 216}
a332e593
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217
218/* Fetch the instruction at ADDR, returning 0 if ADDR is beyond LIM or
219 is not the address of a valid instruction, the address of the next
220 instruction beyond ADDR otherwise. *PWORD1 receives the first word
221 of the instruction.*/
222
a332e593 223CORE_ADDR
e4ebb8e5
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224NEXT_PROLOGUE_INSN (addr, lim, pword1)
225 CORE_ADDR addr;
226 CORE_ADDR lim;
227 short *pword1;
a332e593 228{
34df79fc 229 char buf[2];
e4ebb8e5
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230 if (addr < lim + 8)
231 {
34df79fc
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232 read_memory (addr, buf, 2);
233 *pword1 = extract_signed_integer (buf, 2);
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234
235 return addr + 2;
236 }
a332e593 237 return 0;
a332e593
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238}
239
a332e593
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240/* Put here the code to store, into a struct frame_saved_regs,
241 the addresses of the saved registers of frame described by FRAME_INFO.
242 This includes special registers such as pc and fp saved in special
243 ways in the stack frame. sp is even more special:
244 the address we return for it IS the sp for the next frame.
245
246 We cache the result of doing this in the frame_cache_obstack, since
247 it is fairly expensive. */
248
249void
250frame_find_saved_regs (fip, fsrp)
251 struct frame_info *fip;
252 struct frame_saved_regs *fsrp;
253{
254 int locals;
255 CORE_ADDR pc;
256 CORE_ADDR adr;
257 int i;
e4ebb8e5 258
a332e593
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259 memset (fsrp, 0, sizeof *fsrp);
260
e4ebb8e5
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261 pc = skip_adjust (get_pc_function_start (fip->pc), &locals);
262
263 {
669caa9c 264 adr = FRAME_FP (fip) - locals;
e4ebb8e5
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265 for (i = 0; i < 8; i++)
266 {
267 int word = read_memory_short (pc);
268
269 pc += 2;
270 if (IS_PUSHL (word))
271 {
272 fsrp->regs[word & 0xf] = adr;
273 fsrp->regs[(word & 0xf) + 1] = adr - 2;
274 adr -= 4;
275 }
276 else if (IS_PUSHW (word))
277 {
278 fsrp->regs[word & 0xf] = adr;
279 adr -= 2;
280 }
281 else
282 break;
283 }
284
285 }
286
a332e593
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287 fsrp->regs[PC_REGNUM] = fip->frame + 4;
288 fsrp->regs[FP_REGNUM] = fip->frame;
289
290}
291
a332e593 292int
e4ebb8e5
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293saved_pc_after_call ()
294{
2d8d693a
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295 return addr_bits_remove
296 (read_memory_integer (read_register (SP_REGNUM), PTR_SIZE));
297}
298
299
669caa9c
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300extract_return_value (type, regbuf, valbuf)
301 struct type *type;
302 char *regbuf;
303 char *valbuf;
2d8d693a
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304{
305 int b;
669caa9c 306 int len = TYPE_LENGTH (type);
2d8d693a 307
669caa9c
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308 for (b = 0; b < len; b += 2)
309 {
310 int todo = len - b;
311
312 if (todo > 2)
313 todo = 2;
314 memcpy (valbuf + b, regbuf + b, todo);
315 }
a332e593
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316}
317
2d8d693a 318void
669caa9c
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319write_return_value (type, valbuf)
320 struct type *type;
321 char *valbuf;
2d8d693a
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322{
323 int reg;
324 int len;
669caa9c
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325
326 for (len = 0; len < TYPE_LENGTH (type); len += 2)
327 write_register_bytes (REGISTER_BYTE (len / 2 + 2), valbuf + len, 2);
2d8d693a
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328}
329
330void
669caa9c
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331store_struct_return (addr, sp)
332 CORE_ADDR addr;
333 CORE_ADDR sp;
2d8d693a 334{
669caa9c 335 write_register (2, addr);
2d8d693a
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336}
337
338
a332e593 339void
e4ebb8e5
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340print_register_hook (regno)
341 int regno;
a332e593 342{
e4ebb8e5
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343 if ((regno & 1) == 0 && regno < 16)
344 {
345 unsigned short l[2];
a332e593 346
e4ebb8e5
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347 read_relative_register_raw_bytes (regno, (char *) (l + 0));
348 read_relative_register_raw_bytes (regno + 1, (char *) (l + 1));
199b2450
TL
349 printf_unfiltered ("\t");
350 printf_unfiltered ("%04x%04x", l[0], l[1]);
e4ebb8e5
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351 }
352
353 if ((regno & 3) == 0 && regno < 16)
354 {
355 unsigned short l[4];
356
b2ff9b68
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357 read_relative_register_raw_bytes (regno, (char *) (l + 0));
358 read_relative_register_raw_bytes (regno + 1, (char *) (l + 1));
359 read_relative_register_raw_bytes (regno + 2, (char *) (l + 2));
360 read_relative_register_raw_bytes (regno + 3, (char *) (l + 3));
a332e593 361
199b2450
TL
362 printf_unfiltered ("\t");
363 printf_unfiltered ("%04x%04x%04x%04x", l[0], l[1], l[2], l[3]);
a332e593 364 }
e4ebb8e5
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365 if (regno == 15)
366 {
367 unsigned short rval;
368 int i;
a332e593 369
e4ebb8e5
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370 read_relative_register_raw_bytes (regno, (char *) (&rval));
371
199b2450 372 printf_unfiltered ("\n");
e4ebb8e5
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373 for (i = 0; i < 10; i += 2)
374 {
199b2450 375 printf_unfiltered ("(sp+%d=%04x)", i, read_memory_short (rval + i));
e4ebb8e5
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376 }
377 }
378
379}
a332e593 380
b2ff9b68 381void
e4ebb8e5 382z8k_pop_frame ()
a332e593 383{
a332e593
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384}
385
e4ebb8e5
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386struct cmd_list_element *setmemorylist;
387
b2ff9b68 388void
e4ebb8e5
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389z8k_set_pointer_size (newsize)
390 int newsize;
391{
392 static int oldsize = 0;
a332e593 393
e4ebb8e5
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394 if (oldsize != newsize)
395 {
199b2450 396 printf_unfiltered ("pointer size set to %d bits\n", newsize);
e4ebb8e5
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397 oldsize = newsize;
398 if (newsize == 32)
399 {
400 BIG = 1;
401 }
402 else
403 {
404 BIG = 0;
405 }
406 _initialize_gdbtypes ();
407 }
408}
a332e593 409
e4ebb8e5
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410static void
411segmented_command (args, from_tty)
412 char *args;
413 int from_tty;
414{
2d8d693a 415 z8k_set_pointer_size (32);
e4ebb8e5
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416}
417
418static void
419unsegmented_command (args, from_tty)
420 char *args;
421 int from_tty;
422{
423 z8k_set_pointer_size (16);
e4ebb8e5
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424}
425
426static void
427set_memory (args, from_tty)
428 char *args;
429 int from_tty;
430{
199b2450
TL
431 printf_unfiltered ("\"set memory\" must be followed by the name of a memory subcommand.\n");
432 help_list (setmemorylist, "set memory ", -1, gdb_stdout);
e4ebb8e5
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433}
434
976bb0be 435void
e4ebb8e5
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436_initialize_z8ktdep ()
437{
18b46e7c
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438 tm_print_insn = gdb_print_insn_z8k;
439
e4ebb8e5
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440 add_prefix_cmd ("memory", no_class, set_memory,
441 "set the memory model", &setmemorylist, "set memory ", 0,
442 &setlist);
443 add_cmd ("segmented", class_support, segmented_command,
444 "Set segmented memory model.", &setmemorylist);
445 add_cmd ("unsegmented", class_support, unsegmented_command,
446 "Set unsegmented memory model.", &setmemorylist);
447
448}
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