Add --binary-architecture switch to objcopy to allow the output architecture
[deliverable/binutils-gdb.git] / gdb / v850-tdep.c
1 /* Target-dependent code for the NEC V850 for GDB, the GNU debugger.
2 Copyright 1996, 1998, 1999, 2000, 2001 Free Software Foundation, Inc.
3
4 This file is part of GDB.
5
6 This program is free software; you can redistribute it and/or modify
7 it under the terms of the GNU General Public License as published by
8 the Free Software Foundation; either version 2 of the License, or
9 (at your option) any later version.
10
11 This program is distributed in the hope that it will be useful,
12 but WITHOUT ANY WARRANTY; without even the implied warranty of
13 MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
14 GNU General Public License for more details.
15
16 You should have received a copy of the GNU General Public License
17 along with this program; if not, write to the Free Software
18 Foundation, Inc., 59 Temple Place - Suite 330,
19 Boston, MA 02111-1307, USA. */
20
21 #include "defs.h"
22 #include "frame.h"
23 #include "inferior.h"
24 #include "obstack.h"
25 #include "target.h"
26 #include "value.h"
27 #include "bfd.h"
28 #include "gdb_string.h"
29 #include "gdbcore.h"
30 #include "symfile.h"
31 #include "arch-utils.h"
32 #include "regcache.h"
33
34
35 static char *v850_generic_reg_names[] = REGISTER_NAMES;
36
37 static char *v850e_reg_names[] =
38 {
39 "r0", "r1", "r2", "r3", "r4", "r5", "r6", "r7",
40 "r8", "r9", "r10", "r11", "r12", "r13", "r14", "r15",
41 "r16", "r17", "r18", "r19", "r20", "r21", "r22", "r23",
42 "r24", "r25", "r26", "r27", "r28", "r29", "r30", "r31",
43 "eipc", "eipsw", "fepc", "fepsw", "ecr", "psw", "sr6", "sr7",
44 "sr8", "sr9", "sr10", "sr11", "sr12", "sr13", "sr14", "sr15",
45 "ctpc", "ctpsw", "dbpc", "dbpsw", "ctbp", "sr21", "sr22", "sr23",
46 "sr24", "sr25", "sr26", "sr27", "sr28", "sr29", "sr30", "sr31",
47 "pc", "fp"
48 };
49
50 char **v850_register_names = v850_generic_reg_names;
51
52 struct
53 {
54 char **regnames;
55 int mach;
56 }
57 v850_processor_type_table[] =
58 {
59 {
60 v850_generic_reg_names, bfd_mach_v850
61 }
62 ,
63 {
64 v850e_reg_names, bfd_mach_v850e
65 }
66 ,
67 {
68 v850e_reg_names, bfd_mach_v850ea
69 }
70 ,
71 {
72 NULL, 0
73 }
74 };
75
76 /* Info gleaned from scanning a function's prologue. */
77
78 struct pifsr /* Info about one saved reg */
79 {
80 int framereg; /* Frame reg (SP or FP) */
81 int offset; /* Offset from framereg */
82 int cur_frameoffset; /* Current frameoffset */
83 int reg; /* Saved register number */
84 };
85
86 struct prologue_info
87 {
88 int framereg;
89 int frameoffset;
90 int start_function;
91 struct pifsr *pifsrs;
92 };
93
94 static CORE_ADDR v850_scan_prologue (CORE_ADDR pc, struct prologue_info *fs);
95
96
97 /* Should call_function allocate stack space for a struct return? */
98 int
99 v850_use_struct_convention (int gcc_p, struct type *type)
100 {
101 return (TYPE_NFIELDS (type) > 1 || TYPE_LENGTH (type) > 4);
102 }
103 \f
104
105
106 /* Structure for mapping bits in register lists to register numbers. */
107 struct reg_list
108 {
109 long mask;
110 int regno;
111 };
112
113 /* Helper function for v850_scan_prologue to handle prepare instruction. */
114
115 static void
116 handle_prepare (int insn, int insn2, CORE_ADDR * current_pc_ptr,
117 struct prologue_info *pi, struct pifsr **pifsr_ptr)
118 {
119 CORE_ADDR current_pc = *current_pc_ptr;
120 struct pifsr *pifsr = *pifsr_ptr;
121 long next = insn2 & 0xffff;
122 long list12 = ((insn & 1) << 16) + (next & 0xffe0);
123 long offset = (insn & 0x3e) << 1;
124 static struct reg_list reg_table[] =
125 {
126 {0x00800, 20}, /* r20 */
127 {0x00400, 21}, /* r21 */
128 {0x00200, 22}, /* r22 */
129 {0x00100, 23}, /* r23 */
130 {0x08000, 24}, /* r24 */
131 {0x04000, 25}, /* r25 */
132 {0x02000, 26}, /* r26 */
133 {0x01000, 27}, /* r27 */
134 {0x00080, 28}, /* r28 */
135 {0x00040, 29}, /* r29 */
136 {0x10000, 30}, /* ep */
137 {0x00020, 31}, /* lp */
138 {0, 0} /* end of table */
139 };
140 int i;
141
142 if ((next & 0x1f) == 0x0b) /* skip imm16 argument */
143 current_pc += 2;
144 else if ((next & 0x1f) == 0x13) /* skip imm16 argument */
145 current_pc += 2;
146 else if ((next & 0x1f) == 0x1b) /* skip imm32 argument */
147 current_pc += 4;
148
149 /* Calculate the total size of the saved registers, and add it
150 it to the immediate value used to adjust SP. */
151 for (i = 0; reg_table[i].mask != 0; i++)
152 if (list12 & reg_table[i].mask)
153 offset += REGISTER_RAW_SIZE (regtable[i].regno);
154 pi->frameoffset -= offset;
155
156 /* Calculate the offsets of the registers relative to the value
157 the SP will have after the registers have been pushed and the
158 imm5 value has been subtracted from it. */
159 if (pifsr)
160 {
161 for (i = 0; reg_table[i].mask != 0; i++)
162 {
163 if (list12 & reg_table[i].mask)
164 {
165 int reg = reg_table[i].regno;
166 offset -= REGISTER_RAW_SIZE (reg);
167 pifsr->reg = reg;
168 pifsr->offset = offset;
169 pifsr->cur_frameoffset = pi->frameoffset;
170 #ifdef DEBUG
171 printf_filtered ("\tSaved register r%d, offset %d", reg, pifsr->offset);
172 #endif
173 pifsr++;
174 }
175 }
176 }
177 #ifdef DEBUG
178 printf_filtered ("\tfound ctret after regsave func");
179 #endif
180
181 /* Set result parameters. */
182 *current_pc_ptr = current_pc;
183 *pifsr_ptr = pifsr;
184 }
185
186
187 /* Helper function for v850_scan_prologue to handle pushm/pushl instructions.
188 FIXME: the SR bit of the register list is not supported; must check
189 that the compiler does not ever generate this bit. */
190
191 static void
192 handle_pushm (int insn, int insn2, struct prologue_info *pi,
193 struct pifsr **pifsr_ptr)
194 {
195 struct pifsr *pifsr = *pifsr_ptr;
196 long list12 = ((insn & 0x0f) << 16) + (insn2 & 0xfff0);
197 long offset = 0;
198 static struct reg_list pushml_reg_table[] =
199 {
200 {0x80000, PS_REGNUM}, /* PSW */
201 {0x40000, 1}, /* r1 */
202 {0x20000, 2}, /* r2 */
203 {0x10000, 3}, /* r3 */
204 {0x00800, 4}, /* r4 */
205 {0x00400, 5}, /* r5 */
206 {0x00200, 6}, /* r6 */
207 {0x00100, 7}, /* r7 */
208 {0x08000, 8}, /* r8 */
209 {0x04000, 9}, /* r9 */
210 {0x02000, 10}, /* r10 */
211 {0x01000, 11}, /* r11 */
212 {0x00080, 12}, /* r12 */
213 {0x00040, 13}, /* r13 */
214 {0x00020, 14}, /* r14 */
215 {0x00010, 15}, /* r15 */
216 {0, 0} /* end of table */
217 };
218 static struct reg_list pushmh_reg_table[] =
219 {
220 {0x80000, 16}, /* r16 */
221 {0x40000, 17}, /* r17 */
222 {0x20000, 18}, /* r18 */
223 {0x10000, 19}, /* r19 */
224 {0x00800, 20}, /* r20 */
225 {0x00400, 21}, /* r21 */
226 {0x00200, 22}, /* r22 */
227 {0x00100, 23}, /* r23 */
228 {0x08000, 24}, /* r24 */
229 {0x04000, 25}, /* r25 */
230 {0x02000, 26}, /* r26 */
231 {0x01000, 27}, /* r27 */
232 {0x00080, 28}, /* r28 */
233 {0x00040, 29}, /* r29 */
234 {0x00010, 30}, /* r30 */
235 {0x00020, 31}, /* r31 */
236 {0, 0} /* end of table */
237 };
238 struct reg_list *reg_table;
239 int i;
240
241 /* Is this a pushml or a pushmh? */
242 if ((insn2 & 7) == 1)
243 reg_table = pushml_reg_table;
244 else
245 reg_table = pushmh_reg_table;
246
247 /* Calculate the total size of the saved registers, and add it
248 it to the immediate value used to adjust SP. */
249 for (i = 0; reg_table[i].mask != 0; i++)
250 if (list12 & reg_table[i].mask)
251 offset += REGISTER_RAW_SIZE (regtable[i].regno);
252 pi->frameoffset -= offset;
253
254 /* Calculate the offsets of the registers relative to the value
255 the SP will have after the registers have been pushed and the
256 imm5 value is subtracted from it. */
257 if (pifsr)
258 {
259 for (i = 0; reg_table[i].mask != 0; i++)
260 {
261 if (list12 & reg_table[i].mask)
262 {
263 int reg = reg_table[i].regno;
264 offset -= REGISTER_RAW_SIZE (reg);
265 pifsr->reg = reg;
266 pifsr->offset = offset;
267 pifsr->cur_frameoffset = pi->frameoffset;
268 #ifdef DEBUG
269 printf_filtered ("\tSaved register r%d, offset %d", reg, pifsr->offset);
270 #endif
271 pifsr++;
272 }
273 }
274 }
275 #ifdef DEBUG
276 printf_filtered ("\tfound ctret after regsave func");
277 #endif
278
279 /* Set result parameters. */
280 *pifsr_ptr = pifsr;
281 }
282 \f
283
284
285
286 /* Function: scan_prologue
287 Scan the prologue of the function that contains PC, and record what
288 we find in PI. PI->fsr must be zeroed by the called. Returns the
289 pc after the prologue. Note that the addresses saved in pi->fsr
290 are actually just frame relative (negative offsets from the frame
291 pointer). This is because we don't know the actual value of the
292 frame pointer yet. In some circumstances, the frame pointer can't
293 be determined till after we have scanned the prologue. */
294
295 static CORE_ADDR
296 v850_scan_prologue (CORE_ADDR pc, struct prologue_info *pi)
297 {
298 CORE_ADDR func_addr, prologue_end, current_pc;
299 struct pifsr *pifsr, *pifsr_tmp;
300 int fp_used;
301 int ep_used;
302 int reg;
303 CORE_ADDR save_pc, save_end;
304 int regsave_func_p;
305 int r12_tmp;
306
307 /* First, figure out the bounds of the prologue so that we can limit the
308 search to something reasonable. */
309
310 if (find_pc_partial_function (pc, NULL, &func_addr, NULL))
311 {
312 struct symtab_and_line sal;
313
314 sal = find_pc_line (func_addr, 0);
315
316 if (func_addr == entry_point_address ())
317 pi->start_function = 1;
318 else
319 pi->start_function = 0;
320
321 #if 0
322 if (sal.line == 0)
323 prologue_end = pc;
324 else
325 prologue_end = sal.end;
326 #else
327 prologue_end = pc;
328 #endif
329 }
330 else
331 { /* We're in the boondocks */
332 func_addr = pc - 100;
333 prologue_end = pc;
334 }
335
336 prologue_end = min (prologue_end, pc);
337
338 /* Now, search the prologue looking for instructions that setup fp, save
339 rp, adjust sp and such. We also record the frame offset of any saved
340 registers. */
341
342 pi->frameoffset = 0;
343 pi->framereg = SP_REGNUM;
344 fp_used = 0;
345 ep_used = 0;
346 pifsr = pi->pifsrs;
347 regsave_func_p = 0;
348 save_pc = 0;
349 save_end = 0;
350 r12_tmp = 0;
351
352 #ifdef DEBUG
353 printf_filtered ("Current_pc = 0x%.8lx, prologue_end = 0x%.8lx\n",
354 (long) func_addr, (long) prologue_end);
355 #endif
356
357 for (current_pc = func_addr; current_pc < prologue_end;)
358 {
359 int insn, insn2;
360
361 #ifdef DEBUG
362 printf_filtered ("0x%.8lx ", (long) current_pc);
363 (*tm_print_insn) (current_pc, &tm_print_insn_info);
364 #endif
365
366 insn = read_memory_unsigned_integer (current_pc, 2);
367 current_pc += 2;
368 if ((insn & 0x0780) >= 0x0600) /* Four byte instruction? */
369 {
370 insn2 = read_memory_unsigned_integer (current_pc, 2);
371 current_pc += 2;
372 }
373
374 if ((insn & 0xffc0) == ((10 << 11) | 0x0780) && !regsave_func_p)
375 { /* jarl <func>,10 */
376 long low_disp = insn2 & ~(long) 1;
377 long disp = (((((insn & 0x3f) << 16) + low_disp)
378 & ~(long) 1) ^ 0x00200000) - 0x00200000;
379
380 save_pc = current_pc;
381 save_end = prologue_end;
382 regsave_func_p = 1;
383 current_pc += disp - 4;
384 prologue_end = (current_pc
385 + (2 * 3) /* moves to/from ep */
386 + 4 /* addi <const>,sp,sp */
387 + 2 /* jmp [r10] */
388 + (2 * 12) /* sst.w to save r2, r20-r29, r31 */
389 + 20); /* slop area */
390
391 #ifdef DEBUG
392 printf_filtered ("\tfound jarl <func>,r10, disp = %ld, low_disp = %ld, new pc = 0x%.8lx\n",
393 disp, low_disp, (long) current_pc + 2);
394 #endif
395 continue;
396 }
397 else if ((insn & 0xffc0) == 0x0200 && !regsave_func_p)
398 { /* callt <imm6> */
399 long ctbp = read_register (CTBP_REGNUM);
400 long adr = ctbp + ((insn & 0x3f) << 1);
401
402 save_pc = current_pc;
403 save_end = prologue_end;
404 regsave_func_p = 1;
405 current_pc = ctbp + (read_memory_unsigned_integer (adr, 2) & 0xffff);
406 prologue_end = (current_pc
407 + (2 * 3) /* prepare list2,imm5,sp/imm */
408 + 4 /* ctret */
409 + 20); /* slop area */
410
411 #ifdef DEBUG
412 printf_filtered ("\tfound callt, ctbp = 0x%.8lx, adr = %.8lx, new pc = 0x%.8lx\n",
413 ctbp, adr, (long) current_pc);
414 #endif
415 continue;
416 }
417 else if ((insn & 0xffc0) == 0x0780) /* prepare list2,imm5 */
418 {
419 handle_prepare (insn, insn2, &current_pc, pi, &pifsr);
420 continue;
421 }
422 else if (insn == 0x07e0 && regsave_func_p && insn2 == 0x0144)
423 { /* ctret after processing register save function */
424 current_pc = save_pc;
425 prologue_end = save_end;
426 regsave_func_p = 0;
427 #ifdef DEBUG
428 printf_filtered ("\tfound ctret after regsave func");
429 #endif
430 continue;
431 }
432 else if ((insn & 0xfff0) == 0x07e0 && (insn2 & 5) == 1)
433 { /* pushml, pushmh */
434 handle_pushm (insn, insn2, pi, &pifsr);
435 continue;
436 }
437 else if ((insn & 0xffe0) == 0x0060 && regsave_func_p)
438 { /* jmp after processing register save function */
439 current_pc = save_pc;
440 prologue_end = save_end;
441 regsave_func_p = 0;
442 #ifdef DEBUG
443 printf_filtered ("\tfound jmp after regsave func");
444 #endif
445 continue;
446 }
447 else if ((insn & 0x07c0) == 0x0780 /* jarl or jr */
448 || (insn & 0xffe0) == 0x0060 /* jmp */
449 || (insn & 0x0780) == 0x0580) /* branch */
450 {
451 #ifdef DEBUG
452 printf_filtered ("\n");
453 #endif
454 break; /* Ran into end of prologue */
455 }
456
457 else if ((insn & 0xffe0) == ((SP_REGNUM << 11) | 0x0240)) /* add <imm>,sp */
458 pi->frameoffset += ((insn & 0x1f) ^ 0x10) - 0x10;
459 else if (insn == ((SP_REGNUM << 11) | 0x0600 | SP_REGNUM)) /* addi <imm>,sp,sp */
460 pi->frameoffset += insn2;
461 else if (insn == ((FP_RAW_REGNUM << 11) | 0x0000 | SP_REGNUM)) /* mov sp,fp */
462 {
463 fp_used = 1;
464 pi->framereg = FP_RAW_REGNUM;
465 }
466
467 else if (insn == ((R12_REGNUM << 11) | 0x0640 | R0_REGNUM)) /* movhi hi(const),r0,r12 */
468 r12_tmp = insn2 << 16;
469 else if (insn == ((R12_REGNUM << 11) | 0x0620 | R12_REGNUM)) /* movea lo(const),r12,r12 */
470 r12_tmp += insn2;
471 else if (insn == ((SP_REGNUM << 11) | 0x01c0 | R12_REGNUM) && r12_tmp) /* add r12,sp */
472 pi->frameoffset = r12_tmp;
473 else if (insn == ((EP_REGNUM << 11) | 0x0000 | SP_REGNUM)) /* mov sp,ep */
474 ep_used = 1;
475 else if (insn == ((EP_REGNUM << 11) | 0x0000 | R1_REGNUM)) /* mov r1,ep */
476 ep_used = 0;
477 else if (((insn & 0x07ff) == (0x0760 | SP_REGNUM) /* st.w <reg>,<offset>[sp] */
478 || (fp_used
479 && (insn & 0x07ff) == (0x0760 | FP_RAW_REGNUM))) /* st.w <reg>,<offset>[fp] */
480 && pifsr
481 && (((reg = (insn >> 11) & 0x1f) >= SAVE1_START_REGNUM && reg <= SAVE1_END_REGNUM)
482 || (reg >= SAVE2_START_REGNUM && reg <= SAVE2_END_REGNUM)
483 || (reg >= SAVE3_START_REGNUM && reg <= SAVE3_END_REGNUM)))
484 {
485 pifsr->reg = reg;
486 pifsr->offset = insn2 & ~1;
487 pifsr->cur_frameoffset = pi->frameoffset;
488 #ifdef DEBUG
489 printf_filtered ("\tSaved register r%d, offset %d", reg, pifsr->offset);
490 #endif
491 pifsr++;
492 }
493
494 else if (ep_used /* sst.w <reg>,<offset>[ep] */
495 && ((insn & 0x0781) == 0x0501)
496 && pifsr
497 && (((reg = (insn >> 11) & 0x1f) >= SAVE1_START_REGNUM && reg <= SAVE1_END_REGNUM)
498 || (reg >= SAVE2_START_REGNUM && reg <= SAVE2_END_REGNUM)
499 || (reg >= SAVE3_START_REGNUM && reg <= SAVE3_END_REGNUM)))
500 {
501 pifsr->reg = reg;
502 pifsr->offset = (insn & 0x007e) << 1;
503 pifsr->cur_frameoffset = pi->frameoffset;
504 #ifdef DEBUG
505 printf_filtered ("\tSaved register r%d, offset %d", reg, pifsr->offset);
506 #endif
507 pifsr++;
508 }
509
510 #ifdef DEBUG
511 printf_filtered ("\n");
512 #endif
513 }
514
515 if (pifsr)
516 pifsr->framereg = 0; /* Tie off last entry */
517
518 /* Fix up any offsets to the final offset. If a frame pointer was created, use it
519 instead of the stack pointer. */
520 for (pifsr_tmp = pi->pifsrs; pifsr_tmp && pifsr_tmp != pifsr; pifsr_tmp++)
521 {
522 pifsr_tmp->offset -= pi->frameoffset - pifsr_tmp->cur_frameoffset;
523 pifsr_tmp->framereg = pi->framereg;
524
525 #ifdef DEBUG
526 printf_filtered ("Saved register r%d, offset = %d, framereg = r%d\n",
527 pifsr_tmp->reg, pifsr_tmp->offset, pifsr_tmp->framereg);
528 #endif
529 }
530
531 #ifdef DEBUG
532 printf_filtered ("Framereg = r%d, frameoffset = %d\n", pi->framereg, pi->frameoffset);
533 #endif
534
535 return current_pc;
536 }
537
538 /* Function: init_extra_frame_info
539 Setup the frame's frame pointer, pc, and frame addresses for saved
540 registers. Most of the work is done in scan_prologue().
541
542 Note that when we are called for the last frame (currently active frame),
543 that fi->pc and fi->frame will already be setup. However, fi->frame will
544 be valid only if this routine uses FP. For previous frames, fi-frame will
545 always be correct (since that is derived from v850_frame_chain ()).
546
547 We can be called with the PC in the call dummy under two circumstances.
548 First, during normal backtracing, second, while figuring out the frame
549 pointer just prior to calling the target function (see run_stack_dummy). */
550
551 void
552 v850_init_extra_frame_info (struct frame_info *fi)
553 {
554 struct prologue_info pi;
555 struct pifsr pifsrs[NUM_REGS + 1], *pifsr;
556
557 if (fi->next)
558 fi->pc = FRAME_SAVED_PC (fi->next);
559
560 memset (fi->fsr.regs, '\000', sizeof fi->fsr.regs);
561
562 /* The call dummy doesn't save any registers on the stack, so we can return
563 now. */
564 if (PC_IN_CALL_DUMMY (fi->pc, fi->frame, fi->frame))
565 return;
566
567 pi.pifsrs = pifsrs;
568
569 v850_scan_prologue (fi->pc, &pi);
570
571 if (!fi->next && pi.framereg == SP_REGNUM)
572 fi->frame = read_register (pi.framereg) - pi.frameoffset;
573
574 for (pifsr = pifsrs; pifsr->framereg; pifsr++)
575 {
576 fi->fsr.regs[pifsr->reg] = pifsr->offset + fi->frame;
577
578 if (pifsr->framereg == SP_REGNUM)
579 fi->fsr.regs[pifsr->reg] += pi.frameoffset;
580 }
581 }
582
583 /* Function: frame_chain
584 Figure out the frame prior to FI. Unfortunately, this involves
585 scanning the prologue of the caller, which will also be done
586 shortly by v850_init_extra_frame_info. For the dummy frame, we
587 just return the stack pointer that was in use at the time the
588 function call was made. */
589
590 CORE_ADDR
591 v850_frame_chain (struct frame_info *fi)
592 {
593 struct prologue_info pi;
594 CORE_ADDR callers_pc, fp;
595
596 /* First, find out who called us */
597 callers_pc = FRAME_SAVED_PC (fi);
598 /* If caller is a call-dummy, then our FP bears no relation to his FP! */
599 fp = v850_find_callers_reg (fi, FP_RAW_REGNUM);
600 if (PC_IN_CALL_DUMMY (callers_pc, fp, fp))
601 return fp; /* caller is call-dummy: return oldest value of FP */
602
603 /* Caller is NOT a call-dummy, so everything else should just work.
604 Even if THIS frame is a call-dummy! */
605 pi.pifsrs = NULL;
606
607 v850_scan_prologue (callers_pc, &pi);
608
609 if (pi.start_function)
610 return 0; /* Don't chain beyond the start function */
611
612 if (pi.framereg == FP_RAW_REGNUM)
613 return v850_find_callers_reg (fi, pi.framereg);
614
615 return fi->frame - pi.frameoffset;
616 }
617
618 /* Function: find_callers_reg
619 Find REGNUM on the stack. Otherwise, it's in an active register.
620 One thing we might want to do here is to check REGNUM against the
621 clobber mask, and somehow flag it as invalid if it isn't saved on
622 the stack somewhere. This would provide a graceful failure mode
623 when trying to get the value of caller-saves registers for an inner
624 frame. */
625
626 CORE_ADDR
627 v850_find_callers_reg (struct frame_info *fi, int regnum)
628 {
629 for (; fi; fi = fi->next)
630 if (PC_IN_CALL_DUMMY (fi->pc, fi->frame, fi->frame))
631 return generic_read_register_dummy (fi->pc, fi->frame, regnum);
632 else if (fi->fsr.regs[regnum] != 0)
633 return read_memory_unsigned_integer (fi->fsr.regs[regnum],
634 REGISTER_RAW_SIZE (regnum));
635
636 return read_register (regnum);
637 }
638
639 /* Function: skip_prologue
640 Return the address of the first code past the prologue of the function. */
641
642 CORE_ADDR
643 v850_skip_prologue (CORE_ADDR pc)
644 {
645 CORE_ADDR func_addr, func_end;
646
647 /* See what the symbol table says */
648
649 if (find_pc_partial_function (pc, NULL, &func_addr, &func_end))
650 {
651 struct symtab_and_line sal;
652
653 sal = find_pc_line (func_addr, 0);
654
655 if (sal.line != 0 && sal.end < func_end)
656 return sal.end;
657 else
658 /* Either there's no line info, or the line after the prologue is after
659 the end of the function. In this case, there probably isn't a
660 prologue. */
661 return pc;
662 }
663
664 /* We can't find the start of this function, so there's nothing we can do. */
665 return pc;
666 }
667
668 /* Function: pop_frame
669 This routine gets called when either the user uses the `return'
670 command, or the call dummy breakpoint gets hit. */
671
672 void
673 v850_pop_frame (struct frame_info *frame)
674 {
675 int regnum;
676
677 if (PC_IN_CALL_DUMMY (frame->pc, frame->frame, frame->frame))
678 generic_pop_dummy_frame ();
679 else
680 {
681 write_register (PC_REGNUM, FRAME_SAVED_PC (frame));
682
683 for (regnum = 0; regnum < NUM_REGS; regnum++)
684 if (frame->fsr.regs[regnum] != 0)
685 write_register (regnum,
686 read_memory_unsigned_integer (frame->fsr.regs[regnum],
687 REGISTER_RAW_SIZE (regnum)));
688
689 write_register (SP_REGNUM, FRAME_FP (frame));
690 }
691
692 flush_cached_frames ();
693 }
694
695 /* Function: push_arguments
696 Setup arguments and RP for a call to the target. First four args
697 go in R6->R9, subsequent args go into sp + 16 -> sp + ... Structs
698 are passed by reference. 64 bit quantities (doubles and long
699 longs) may be split between the regs and the stack. When calling a
700 function that returns a struct, a pointer to the struct is passed
701 in as a secret first argument (always in R6).
702
703 Stack space for the args has NOT been allocated: that job is up to us.
704 */
705
706 CORE_ADDR
707 v850_push_arguments (int nargs, value_ptr *args, CORE_ADDR sp,
708 unsigned char struct_return, CORE_ADDR struct_addr)
709 {
710 int argreg;
711 int argnum;
712 int len = 0;
713 int stack_offset;
714
715 /* First, just for safety, make sure stack is aligned */
716 sp &= ~3;
717
718 /* Now make space on the stack for the args. */
719 for (argnum = 0; argnum < nargs; argnum++)
720 len += ((TYPE_LENGTH (VALUE_TYPE (args[argnum])) + 3) & ~3);
721 sp -= len; /* possibly over-allocating, but it works... */
722 /* (you might think we could allocate 16 bytes */
723 /* less, but the ABI seems to use it all! ) */
724 argreg = ARG0_REGNUM;
725
726 /* the struct_return pointer occupies the first parameter-passing reg */
727 if (struct_return)
728 write_register (argreg++, struct_addr);
729
730 stack_offset = 16;
731 /* The offset onto the stack at which we will start copying parameters
732 (after the registers are used up) begins at 16 rather than at zero.
733 I don't really know why, that's just the way it seems to work. */
734
735 /* Now load as many as possible of the first arguments into
736 registers, and push the rest onto the stack. There are 16 bytes
737 in four registers available. Loop thru args from first to last. */
738 for (argnum = 0; argnum < nargs; argnum++)
739 {
740 int len;
741 char *val;
742 char valbuf[REGISTER_RAW_SIZE (ARG0_REGNUM)];
743
744 if (TYPE_CODE (VALUE_TYPE (*args)) == TYPE_CODE_STRUCT
745 && TYPE_LENGTH (VALUE_TYPE (*args)) > 8)
746 {
747 store_address (valbuf, 4, VALUE_ADDRESS (*args));
748 len = 4;
749 val = valbuf;
750 }
751 else
752 {
753 len = TYPE_LENGTH (VALUE_TYPE (*args));
754 val = (char *) VALUE_CONTENTS (*args);
755 }
756
757 while (len > 0)
758 if (argreg <= ARGLAST_REGNUM)
759 {
760 CORE_ADDR regval;
761
762 regval = extract_address (val, REGISTER_RAW_SIZE (argreg));
763 write_register (argreg, regval);
764
765 len -= REGISTER_RAW_SIZE (argreg);
766 val += REGISTER_RAW_SIZE (argreg);
767 argreg++;
768 }
769 else
770 {
771 write_memory (sp + stack_offset, val, 4);
772
773 len -= 4;
774 val += 4;
775 stack_offset += 4;
776 }
777 args++;
778 }
779 return sp;
780 }
781
782 /* Function: push_return_address (pc)
783 Set up the return address for the inferior function call.
784 Needed for targets where we don't actually execute a JSR/BSR instruction */
785
786 CORE_ADDR
787 v850_push_return_address (CORE_ADDR pc, CORE_ADDR sp)
788 {
789 write_register (RP_REGNUM, CALL_DUMMY_ADDRESS ());
790 return sp;
791 }
792
793 /* Function: frame_saved_pc
794 Find the caller of this frame. We do this by seeing if RP_REGNUM
795 is saved in the stack anywhere, otherwise we get it from the
796 registers. If the inner frame is a dummy frame, return its PC
797 instead of RP, because that's where "caller" of the dummy-frame
798 will be found. */
799
800 CORE_ADDR
801 v850_frame_saved_pc (struct frame_info *fi)
802 {
803 if (PC_IN_CALL_DUMMY (fi->pc, fi->frame, fi->frame))
804 return generic_read_register_dummy (fi->pc, fi->frame, PC_REGNUM);
805 else
806 return v850_find_callers_reg (fi, RP_REGNUM);
807 }
808
809
810 /* Function: fix_call_dummy
811 Pokes the callee function's address into the CALL_DUMMY assembly stub.
812 Assumes that the CALL_DUMMY looks like this:
813 jarl <offset24>, r31
814 trap
815 */
816
817 int
818 v850_fix_call_dummy (char *dummy, CORE_ADDR sp, CORE_ADDR fun, int nargs,
819 value_ptr *args, struct type *type, int gcc_p)
820 {
821 long offset24;
822
823 offset24 = (long) fun - (long) entry_point_address ();
824 offset24 &= 0x3fffff;
825 offset24 |= 0xff800000; /* jarl <offset24>, r31 */
826
827 store_unsigned_integer ((unsigned int *) &dummy[2], 2, offset24 & 0xffff);
828 store_unsigned_integer ((unsigned int *) &dummy[0], 2, offset24 >> 16);
829 return 0;
830 }
831
832 /* Change the register names based on the current machine type. */
833
834 static int
835 v850_target_architecture_hook (const bfd_arch_info_type *ap)
836 {
837 int i, j;
838
839 if (ap->arch != bfd_arch_v850)
840 return 0;
841
842 for (i = 0; v850_processor_type_table[i].regnames != NULL; i++)
843 {
844 if (v850_processor_type_table[i].mach == ap->mach)
845 {
846 v850_register_names = v850_processor_type_table[i].regnames;
847 tm_print_insn_info.mach = ap->mach;
848 return 1;
849 }
850 }
851
852 internal_error (__FILE__, __LINE__,
853 "Architecture `%s' unrecognized", ap->printable_name);
854 }
855
856 void
857 _initialize_v850_tdep (void)
858 {
859 tm_print_insn = print_insn_v850;
860 target_architecture_hook = v850_target_architecture_hook;
861 }
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