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* hppa-tdep.c (skip_trampoline_code): Handle argument relocation
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CommitLineData
66a1aa07
SG
1/* Machine-dependent code which would otherwise be in inflow.c and core.c,
2 for GDB, the GNU debugger. This code is for the HP PA-RISC cpu.
3 Copyright 1986, 1987, 1989, 1990, 1991, 1992, 1993 Free Software Foundation, Inc.
4
5 Contributed by the Center for Software Science at the
6 University of Utah (pa-gdb-bugs@cs.utah.edu).
7
8This file is part of GDB.
9
10This program is free software; you can redistribute it and/or modify
11it under the terms of the GNU General Public License as published by
12the Free Software Foundation; either version 2 of the License, or
13(at your option) any later version.
14
15This program is distributed in the hope that it will be useful,
16but WITHOUT ANY WARRANTY; without even the implied warranty of
17MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
18GNU General Public License for more details.
19
20You should have received a copy of the GNU General Public License
21along with this program; if not, write to the Free Software
22Foundation, Inc., 675 Mass Ave, Cambridge, MA 02139, USA. */
23
24#include "defs.h"
25#include "frame.h"
26#include "inferior.h"
27#include "value.h"
28
29/* For argument passing to the inferior */
30#include "symtab.h"
31
32#ifdef USG
33#include <sys/types.h>
34#endif
35
36#include <sys/param.h>
37#include <sys/dir.h>
38#include <signal.h>
39#include <sys/ioctl.h>
40
41#ifdef COFF_ENCAPSULATE
42#include "a.out.encap.h"
43#else
44#include <a.out.h>
45#endif
46#ifndef N_SET_MAGIC
47#define N_SET_MAGIC(exec, val) ((exec).a_magic = (val))
48#endif
49
50/*#include <sys/user.h> After a.out.h */
51#include <sys/file.h>
52#include <sys/stat.h>
53#include <machine/psl.h>
54#include "wait.h"
55
56#include "gdbcore.h"
57#include "gdbcmd.h"
58#include "target.h"
59#include "symfile.h"
60#include "objfiles.h"
61
62static int restore_pc_queue PARAMS ((struct frame_saved_regs *fsr));
63static int hppa_alignof PARAMS ((struct type *arg));
8fa74880 64CORE_ADDR frame_saved_pc PARAMS ((FRAME frame));
c598654a
JL
65static int prologue_inst_adjust_sp PARAMS ((unsigned long));
66static int is_branch PARAMS ((unsigned long));
67static int inst_saves_gr PARAMS ((unsigned long));
68static int inst_saves_fr PARAMS ((unsigned long));
70e43abe
JL
69static int pc_in_interrupt_handler PARAMS ((CORE_ADDR));
70static int pc_in_linker_stub PARAMS ((CORE_ADDR));
c5152d42
JL
71static int compare_unwind_entries PARAMS ((struct unwind_table_entry *,
72 struct unwind_table_entry *));
73static void read_unwind_info PARAMS ((struct objfile *));
74static void internalize_unwinds PARAMS ((struct objfile *,
75 struct unwind_table_entry *,
76 asection *, unsigned int,
d782a995 77 unsigned int));
66a1aa07
SG
78
79\f
80/* Routines to extract various sized constants out of hppa
81 instructions. */
82
83/* This assumes that no garbage lies outside of the lower bits of
84 value. */
85
86int
87sign_extend (val, bits)
88 unsigned val, bits;
89{
90 return (int)(val >> bits - 1 ? (-1 << bits) | val : val);
91}
92
93/* For many immediate values the sign bit is the low bit! */
94
95int
96low_sign_extend (val, bits)
97 unsigned val, bits;
98{
99 return (int)((val & 0x1 ? (-1 << (bits - 1)) : 0) | val >> 1);
100}
101/* extract the immediate field from a ld{bhw}s instruction */
102
103unsigned
104get_field (val, from, to)
105 unsigned val, from, to;
106{
107 val = val >> 31 - to;
108 return val & ((1 << 32 - from) - 1);
109}
110
111unsigned
112set_field (val, from, to, new_val)
113 unsigned *val, from, to;
114{
115 unsigned mask = ~((1 << (to - from + 1)) << (31 - from));
116 return *val = *val & mask | (new_val << (31 - from));
117}
118
119/* extract a 3-bit space register number from a be, ble, mtsp or mfsp */
120
121extract_3 (word)
122 unsigned word;
123{
124 return GET_FIELD (word, 18, 18) << 2 | GET_FIELD (word, 16, 17);
125}
126
127extract_5_load (word)
128 unsigned word;
129{
130 return low_sign_extend (word >> 16 & MASK_5, 5);
131}
132
133/* extract the immediate field from a st{bhw}s instruction */
134
135int
136extract_5_store (word)
137 unsigned word;
138{
139 return low_sign_extend (word & MASK_5, 5);
140}
141
68c8d698
SG
142/* extract the immediate field from a break instruction */
143
144unsigned
145extract_5r_store (word)
146 unsigned word;
147{
148 return (word & MASK_5);
149}
150
151/* extract the immediate field from a {sr}sm instruction */
152
153unsigned
154extract_5R_store (word)
155 unsigned word;
156{
157 return (word >> 16 & MASK_5);
158}
159
66a1aa07
SG
160/* extract an 11 bit immediate field */
161
162int
163extract_11 (word)
164 unsigned word;
165{
166 return low_sign_extend (word & MASK_11, 11);
167}
168
169/* extract a 14 bit immediate field */
170
171int
172extract_14 (word)
173 unsigned word;
174{
175 return low_sign_extend (word & MASK_14, 14);
176}
177
178/* deposit a 14 bit constant in a word */
179
180unsigned
181deposit_14 (opnd, word)
182 int opnd;
183 unsigned word;
184{
185 unsigned sign = (opnd < 0 ? 1 : 0);
186
187 return word | ((unsigned)opnd << 1 & MASK_14) | sign;
188}
189
190/* extract a 21 bit constant */
191
192int
193extract_21 (word)
194 unsigned word;
195{
196 int val;
197
198 word &= MASK_21;
199 word <<= 11;
200 val = GET_FIELD (word, 20, 20);
201 val <<= 11;
202 val |= GET_FIELD (word, 9, 19);
203 val <<= 2;
204 val |= GET_FIELD (word, 5, 6);
205 val <<= 5;
206 val |= GET_FIELD (word, 0, 4);
207 val <<= 2;
208 val |= GET_FIELD (word, 7, 8);
209 return sign_extend (val, 21) << 11;
210}
211
212/* deposit a 21 bit constant in a word. Although 21 bit constants are
213 usually the top 21 bits of a 32 bit constant, we assume that only
214 the low 21 bits of opnd are relevant */
215
216unsigned
217deposit_21 (opnd, word)
218 unsigned opnd, word;
219{
220 unsigned val = 0;
221
222 val |= GET_FIELD (opnd, 11 + 14, 11 + 18);
223 val <<= 2;
224 val |= GET_FIELD (opnd, 11 + 12, 11 + 13);
225 val <<= 2;
226 val |= GET_FIELD (opnd, 11 + 19, 11 + 20);
227 val <<= 11;
228 val |= GET_FIELD (opnd, 11 + 1, 11 + 11);
229 val <<= 1;
230 val |= GET_FIELD (opnd, 11 + 0, 11 + 0);
231 return word | val;
232}
233
234/* extract a 12 bit constant from branch instructions */
235
236int
237extract_12 (word)
238 unsigned word;
239{
240 return sign_extend (GET_FIELD (word, 19, 28) |
241 GET_FIELD (word, 29, 29) << 10 |
242 (word & 0x1) << 11, 12) << 2;
243}
244
245/* extract a 17 bit constant from branch instructions, returning the
246 19 bit signed value. */
247
248int
249extract_17 (word)
250 unsigned word;
251{
252 return sign_extend (GET_FIELD (word, 19, 28) |
253 GET_FIELD (word, 29, 29) << 10 |
254 GET_FIELD (word, 11, 15) << 11 |
255 (word & 0x1) << 16, 17) << 2;
256}
257\f
c5152d42
JL
258
259/* Compare the start address for two unwind entries returning 1 if
260 the first address is larger than the second, -1 if the second is
261 larger than the first, and zero if they are equal. */
262
263static int
264compare_unwind_entries (a, b)
265 struct unwind_table_entry *a;
266 struct unwind_table_entry *b;
267{
268 if (a->region_start > b->region_start)
269 return 1;
270 else if (a->region_start < b->region_start)
271 return -1;
272 else
273 return 0;
274}
275
276static void
d782a995 277internalize_unwinds (objfile, table, section, entries, size)
c5152d42
JL
278 struct objfile *objfile;
279 struct unwind_table_entry *table;
280 asection *section;
281 unsigned int entries, size;
c5152d42
JL
282{
283 /* We will read the unwind entries into temporary memory, then
284 fill in the actual unwind table. */
285 if (size > 0)
286 {
287 unsigned long tmp;
288 unsigned i;
289 char *buf = alloca (size);
290
291 bfd_get_section_contents (objfile->obfd, section, buf, 0, size);
292
293 /* Now internalize the information being careful to handle host/target
294 endian issues. */
295 for (i = 0; i < entries; i++)
296 {
297 table[i].region_start = bfd_get_32 (objfile->obfd,
298 (bfd_byte *)buf);
299 buf += 4;
300 table[i].region_end = bfd_get_32 (objfile->obfd, (bfd_byte *)buf);
301 buf += 4;
302 tmp = bfd_get_32 (objfile->obfd, (bfd_byte *)buf);
303 buf += 4;
304 table[i].Cannot_unwind = (tmp >> 31) & 0x1;;
305 table[i].Millicode = (tmp >> 30) & 0x1;
306 table[i].Millicode_save_sr0 = (tmp >> 29) & 0x1;
307 table[i].Region_description = (tmp >> 27) & 0x3;
308 table[i].reserved1 = (tmp >> 26) & 0x1;
309 table[i].Entry_SR = (tmp >> 25) & 0x1;
310 table[i].Entry_FR = (tmp >> 21) & 0xf;
311 table[i].Entry_GR = (tmp >> 16) & 0x1f;
312 table[i].Args_stored = (tmp >> 15) & 0x1;
313 table[i].Variable_Frame = (tmp >> 14) & 0x1;
314 table[i].Separate_Package_Body = (tmp >> 13) & 0x1;
315 table[i].Frame_Extension_Millicode = (tmp >> 12 ) & 0x1;
316 table[i].Stack_Overflow_Check = (tmp >> 11) & 0x1;
317 table[i].Two_Instruction_SP_Increment = (tmp >> 10) & 0x1;
318 table[i].Ada_Region = (tmp >> 9) & 0x1;
319 table[i].reserved2 = (tmp >> 5) & 0xf;
320 table[i].Save_SP = (tmp >> 4) & 0x1;
321 table[i].Save_RP = (tmp >> 3) & 0x1;
322 table[i].Save_MRP_in_frame = (tmp >> 2) & 0x1;
323 table[i].extn_ptr_defined = (tmp >> 1) & 0x1;
324 table[i].Cleanup_defined = tmp & 0x1;
325 tmp = bfd_get_32 (objfile->obfd, (bfd_byte *)buf);
326 buf += 4;
327 table[i].MPE_XL_interrupt_marker = (tmp >> 31) & 0x1;
328 table[i].HP_UX_interrupt_marker = (tmp >> 30) & 0x1;
329 table[i].Large_frame = (tmp >> 29) & 0x1;
330 table[i].reserved4 = (tmp >> 27) & 0x3;
331 table[i].Total_frame_size = tmp & 0x7ffffff;
332 }
333 }
334}
335
336/* Read in the backtrace information stored in the `$UNWIND_START$' section of
337 the object file. This info is used mainly by find_unwind_entry() to find
338 out the stack frame size and frame pointer used by procedures. We put
339 everything on the psymbol obstack in the objfile so that it automatically
340 gets freed when the objfile is destroyed. */
341
9c842e0c 342static void
c5152d42
JL
343read_unwind_info (objfile)
344 struct objfile *objfile;
345{
346 asection *unwind_sec, *elf_unwind_sec, *stub_unwind_sec;
347 unsigned unwind_size, elf_unwind_size, stub_unwind_size, total_size;
348 unsigned index, unwind_entries, elf_unwind_entries;
349 unsigned stub_entries, total_entries;
350 struct obj_unwind_info *ui;
351
352 ui = obstack_alloc (&objfile->psymbol_obstack,
353 sizeof (struct obj_unwind_info));
354
355 ui->table = NULL;
356 ui->cache = NULL;
357 ui->last = -1;
358
359 /* Get hooks to all unwind sections. Note there is no linker-stub unwind
360 section in ELF at the moment. */
361 unwind_sec = bfd_get_section_by_name (objfile->obfd, "$UNWIND_START$");
362 elf_unwind_sec = bfd_get_section_by_name (objfile->obfd, ".hppa_unwind");
363 stub_unwind_sec = bfd_get_section_by_name (objfile->obfd, "$UNWIND_END$");
364
365 /* Get sizes and unwind counts for all sections. */
366 if (unwind_sec)
367 {
368 unwind_size = bfd_section_size (objfile->obfd, unwind_sec);
369 unwind_entries = unwind_size / UNWIND_ENTRY_SIZE;
370 }
371 else
372 {
373 unwind_size = 0;
374 unwind_entries = 0;
375 }
376
377 if (elf_unwind_sec)
378 {
379 elf_unwind_size = bfd_section_size (objfile->obfd, elf_unwind_sec);
380 elf_unwind_entries = elf_unwind_size / UNWIND_ENTRY_SIZE;
381 }
382
383 if (stub_unwind_sec)
384 {
385 stub_unwind_size = bfd_section_size (objfile->obfd, stub_unwind_sec);
386 stub_entries = stub_unwind_size / STUB_UNWIND_ENTRY_SIZE;
387 }
388 else
389 {
390 stub_unwind_size = 0;
391 stub_entries = 0;
392 }
393
394 /* Compute total number of unwind entries and their total size. */
395 total_entries = unwind_entries + elf_unwind_entries + stub_entries;
396 total_size = total_entries * sizeof (struct unwind_table_entry);
397
398 /* Allocate memory for the unwind table. */
399 ui->table = obstack_alloc (&objfile->psymbol_obstack, total_size);
400 ui->last = total_entries - 1;
401
402 /* Internalize the standard unwind entries. */
403 index = 0;
404 internalize_unwinds (objfile, &ui->table[index], unwind_sec,
405 unwind_entries, unwind_size);
406 index += unwind_entries;
407 internalize_unwinds (objfile, &ui->table[index], elf_unwind_sec,
408 elf_unwind_entries, elf_unwind_size);
409 index += elf_unwind_entries;
410
411 /* Now internalize the stub unwind entries. */
412 if (stub_unwind_size > 0)
413 {
414 unsigned int i;
415 char *buf = alloca (stub_unwind_size);
416
417 /* Read in the stub unwind entries. */
418 bfd_get_section_contents (objfile->obfd, stub_unwind_sec, buf,
419 0, stub_unwind_size);
420
421 /* Now convert them into regular unwind entries. */
422 for (i = 0; i < stub_entries; i++, index++)
423 {
424 /* Clear out the next unwind entry. */
425 memset (&ui->table[index], 0, sizeof (struct unwind_table_entry));
426
427 /* Convert offset & size into region_start and region_end.
428 Stuff away the stub type into "reserved" fields. */
429 ui->table[index].region_start = bfd_get_32 (objfile->obfd,
430 (bfd_byte *) buf);
431 buf += 4;
432 ui->table[index].stub_type = bfd_get_8 (objfile->obfd,
433 (bfd_byte *) buf);
434 buf += 2;
435 ui->table[index].region_end
436 = ui->table[index].region_start + 4 *
437 (bfd_get_16 (objfile->obfd, (bfd_byte *) buf) - 1);
438 buf += 2;
439 }
440
441 }
442
443 /* Unwind table needs to be kept sorted. */
444 qsort (ui->table, total_entries, sizeof (struct unwind_table_entry),
445 compare_unwind_entries);
446
447 /* Keep a pointer to the unwind information. */
448 objfile->obj_private = (PTR) ui;
449}
450
66a1aa07
SG
451/* Lookup the unwind (stack backtrace) info for the given PC. We search all
452 of the objfiles seeking the unwind table entry for this PC. Each objfile
453 contains a sorted list of struct unwind_table_entry. Since we do a binary
454 search of the unwind tables, we depend upon them to be sorted. */
455
456static struct unwind_table_entry *
457find_unwind_entry(pc)
458 CORE_ADDR pc;
459{
460 int first, middle, last;
461 struct objfile *objfile;
462
463 ALL_OBJFILES (objfile)
464 {
465 struct obj_unwind_info *ui;
466
467 ui = OBJ_UNWIND_INFO (objfile);
468
469 if (!ui)
c5152d42
JL
470 {
471 read_unwind_info (objfile);
472 ui = OBJ_UNWIND_INFO (objfile);
473 }
66a1aa07
SG
474
475 /* First, check the cache */
476
477 if (ui->cache
478 && pc >= ui->cache->region_start
479 && pc <= ui->cache->region_end)
480 return ui->cache;
481
482 /* Not in the cache, do a binary search */
483
484 first = 0;
485 last = ui->last;
486
487 while (first <= last)
488 {
489 middle = (first + last) / 2;
490 if (pc >= ui->table[middle].region_start
491 && pc <= ui->table[middle].region_end)
492 {
493 ui->cache = &ui->table[middle];
494 return &ui->table[middle];
495 }
496
497 if (pc < ui->table[middle].region_start)
498 last = middle - 1;
499 else
500 first = middle + 1;
501 }
502 } /* ALL_OBJFILES() */
503 return NULL;
504}
505
70e43abe
JL
506/* Called to determine if PC is in an interrupt handler of some
507 kind. */
508
509static int
510pc_in_interrupt_handler (pc)
511 CORE_ADDR pc;
512{
513 struct unwind_table_entry *u;
514 struct minimal_symbol *msym_us;
515
516 u = find_unwind_entry (pc);
517 if (!u)
518 return 0;
519
520 /* Oh joys. HPUX sets the interrupt bit for _sigreturn even though
521 its frame isn't a pure interrupt frame. Deal with this. */
522 msym_us = lookup_minimal_symbol_by_pc (pc);
523
524 return u->HP_UX_interrupt_marker && !IN_SIGTRAMP (pc, SYMBOL_NAME (msym_us));
525}
526
5ac7f56e
JK
527/* Called when no unwind descriptor was found for PC. Returns 1 if it
528 appears that PC is in a linker stub. */
5ac7f56e
JK
529
530static int
531pc_in_linker_stub (pc)
532 CORE_ADDR pc;
533{
5ac7f56e
JK
534 int found_magic_instruction = 0;
535 int i;
08ecd8f3
JK
536 char buf[4];
537
538 /* If unable to read memory, assume pc is not in a linker stub. */
539 if (target_read_memory (pc, buf, 4) != 0)
540 return 0;
5ac7f56e 541
d08c6f4c
JK
542 /* We are looking for something like
543
544 ; $$dyncall jams RP into this special spot in the frame (RP')
545 ; before calling the "call stub"
546 ldw -18(sp),rp
547
548 ldsid (rp),r1 ; Get space associated with RP into r1
549 mtsp r1,sp ; Move it into space register 0
550 be,n 0(sr0),rp) ; back to your regularly scheduled program
551 */
552
5ac7f56e
JK
553 /* Maximum known linker stub size is 4 instructions. Search forward
554 from the given PC, then backward. */
555 for (i = 0; i < 4; i++)
556 {
6e35b037 557 /* If we hit something with an unwind, stop searching this direction. */
5ac7f56e
JK
558
559 if (find_unwind_entry (pc + i * 4) != 0)
560 break;
561
562 /* Check for ldsid (rp),r1 which is the magic instruction for a
563 return from a cross-space function call. */
564 if (read_memory_integer (pc + i * 4, 4) == 0x004010a1)
565 {
566 found_magic_instruction = 1;
567 break;
568 }
569 /* Add code to handle long call/branch and argument relocation stubs
570 here. */
571 }
572
573 if (found_magic_instruction != 0)
574 return 1;
575
576 /* Now look backward. */
577 for (i = 0; i < 4; i++)
578 {
6e35b037 579 /* If we hit something with an unwind, stop searching this direction. */
5ac7f56e
JK
580
581 if (find_unwind_entry (pc - i * 4) != 0)
582 break;
583
584 /* Check for ldsid (rp),r1 which is the magic instruction for a
585 return from a cross-space function call. */
586 if (read_memory_integer (pc - i * 4, 4) == 0x004010a1)
587 {
588 found_magic_instruction = 1;
589 break;
590 }
591 /* Add code to handle long call/branch and argument relocation stubs
592 here. */
593 }
594 return found_magic_instruction;
595}
596
66a1aa07
SG
597static int
598find_return_regnum(pc)
599 CORE_ADDR pc;
600{
601 struct unwind_table_entry *u;
602
603 u = find_unwind_entry (pc);
604
605 if (!u)
606 return RP_REGNUM;
607
608 if (u->Millicode)
609 return 31;
610
611 return RP_REGNUM;
612}
613
5ac7f56e 614/* Return size of frame, or -1 if we should use a frame pointer. */
66a1aa07 615int
70e43abe 616find_proc_framesize (pc)
66a1aa07
SG
617 CORE_ADDR pc;
618{
619 struct unwind_table_entry *u;
70e43abe 620 struct minimal_symbol *msym_us;
66a1aa07 621
66a1aa07
SG
622 u = find_unwind_entry (pc);
623
624 if (!u)
5ac7f56e
JK
625 {
626 if (pc_in_linker_stub (pc))
627 /* Linker stubs have a zero size frame. */
628 return 0;
629 else
630 return -1;
631 }
66a1aa07 632
70e43abe
JL
633 msym_us = lookup_minimal_symbol_by_pc (pc);
634
635 /* If Save_SP is set, and we're not in an interrupt or signal caller,
636 then we have a frame pointer. Use it. */
637 if (u->Save_SP && !pc_in_interrupt_handler (pc)
638 && !IN_SIGTRAMP (pc, SYMBOL_NAME (msym_us)))
eabbe766
JK
639 return -1;
640
66a1aa07
SG
641 return u->Total_frame_size << 3;
642}
643
5ac7f56e
JK
644/* Return offset from sp at which rp is saved, or 0 if not saved. */
645static int rp_saved PARAMS ((CORE_ADDR));
646
647static int
648rp_saved (pc)
649 CORE_ADDR pc;
66a1aa07
SG
650{
651 struct unwind_table_entry *u;
652
653 u = find_unwind_entry (pc);
654
655 if (!u)
5ac7f56e
JK
656 {
657 if (pc_in_linker_stub (pc))
658 /* This is the so-called RP'. */
659 return -24;
660 else
661 return 0;
662 }
66a1aa07
SG
663
664 if (u->Save_RP)
5ac7f56e 665 return -20;
c7f3b703
JL
666 else if (u->stub_type != 0)
667 {
668 switch (u->stub_type)
669 {
670 case EXPORT:
671 return -24;
672 case PARAMETER_RELOCATION:
673 return -8;
674 default:
675 return 0;
676 }
677 }
66a1aa07
SG
678 else
679 return 0;
680}
681\f
8fa74880
SG
682int
683frameless_function_invocation (frame)
684 FRAME frame;
685{
b8ec9a79 686 struct unwind_table_entry *u;
8fa74880 687
b8ec9a79 688 u = find_unwind_entry (frame->pc);
8fa74880 689
b8ec9a79 690 if (u == 0)
7f43b9b7 691 return 0;
b8ec9a79 692
c7f3b703 693 return (u->Total_frame_size == 0 && u->stub_type == 0);
8fa74880
SG
694}
695
66a1aa07
SG
696CORE_ADDR
697saved_pc_after_call (frame)
698 FRAME frame;
699{
700 int ret_regnum;
701
702 ret_regnum = find_return_regnum (get_frame_pc (frame));
703
704 return read_register (ret_regnum) & ~0x3;
705}
706\f
707CORE_ADDR
708frame_saved_pc (frame)
709 FRAME frame;
710{
711 CORE_ADDR pc = get_frame_pc (frame);
7f43b9b7 712 struct unwind_table_entry *u;
66a1aa07 713
70e43abe
JL
714 /* BSD, HPUX & OSF1 all lay out the hardware state in the same manner
715 at the base of the frame in an interrupt handler. Registers within
716 are saved in the exact same order as GDB numbers registers. How
717 convienent. */
718 if (pc_in_interrupt_handler (pc))
719 return read_memory_integer (frame->frame + PC_REGNUM * 4, 4) & ~0x3;
720
721 /* Deal with signal handler caller frames too. */
722 if (frame->signal_handler_caller)
723 {
724 CORE_ADDR rp;
725 FRAME_SAVED_PC_IN_SIGTRAMP (frame, &rp);
726 return rp;
727 }
728
7f43b9b7 729restart:
8fa74880 730 if (frameless_function_invocation (frame))
66a1aa07
SG
731 {
732 int ret_regnum;
733
734 ret_regnum = find_return_regnum (pc);
735
70e43abe
JL
736 /* If the next frame is an interrupt frame or a signal
737 handler caller, then we need to look in the saved
738 register area to get the return pointer (the values
739 in the registers may not correspond to anything useful). */
740 if (frame->next
741 && (frame->next->signal_handler_caller
742 || pc_in_interrupt_handler (frame->next->pc)))
743 {
744 struct frame_info *fi;
745 struct frame_saved_regs saved_regs;
746
747 fi = get_frame_info (frame->next);
748 get_frame_saved_regs (fi, &saved_regs);
749 if (read_memory_integer (saved_regs.regs[FLAGS_REGNUM] & 0x2, 4))
7f43b9b7 750 pc = read_memory_integer (saved_regs.regs[31], 4) & ~0x3;
70e43abe 751 else
7f43b9b7 752 pc = read_memory_integer (saved_regs.regs[RP_REGNUM], 4) & ~0x3;
70e43abe
JL
753 }
754 else
7f43b9b7 755 pc = read_register (ret_regnum) & ~0x3;
66a1aa07 756 }
66a1aa07 757 else
5ac7f56e
JK
758 {
759 int rp_offset = rp_saved (pc);
760
70e43abe
JL
761 /* Similar to code in frameless function case. If the next
762 frame is a signal or interrupt handler, then dig the right
763 information out of the saved register info. */
764 if (rp_offset == 0
765 && frame->next
766 && (frame->next->signal_handler_caller
767 || pc_in_interrupt_handler (frame->next->pc)))
768 {
769 struct frame_info *fi;
770 struct frame_saved_regs saved_regs;
771
772 fi = get_frame_info (frame->next);
773 get_frame_saved_regs (fi, &saved_regs);
774 if (read_memory_integer (saved_regs.regs[FLAGS_REGNUM] & 0x2, 4))
7f43b9b7 775 pc = read_memory_integer (saved_regs.regs[31], 4) & ~0x3;
70e43abe 776 else
7f43b9b7 777 pc = read_memory_integer (saved_regs.regs[RP_REGNUM], 4) & ~0x3;
70e43abe
JL
778 }
779 else if (rp_offset == 0)
7f43b9b7 780 pc = read_register (RP_REGNUM) & ~0x3;
5ac7f56e 781 else
7f43b9b7 782 pc = read_memory_integer (frame->frame + rp_offset, 4) & ~0x3;
5ac7f56e 783 }
7f43b9b7
JL
784
785 /* If PC is inside a linker stub, then dig out the address the stub
786 will return to. */
787 u = find_unwind_entry (pc);
788 if (u && u->stub_type != 0)
789 goto restart;
790
791 return pc;
66a1aa07
SG
792}
793\f
794/* We need to correct the PC and the FP for the outermost frame when we are
795 in a system call. */
796
797void
798init_extra_frame_info (fromleaf, frame)
799 int fromleaf;
800 struct frame_info *frame;
801{
802 int flags;
803 int framesize;
804
192c3eeb 805 if (frame->next && !fromleaf)
66a1aa07
SG
806 return;
807
192c3eeb
JL
808 /* If the next frame represents a frameless function invocation
809 then we have to do some adjustments that are normally done by
810 FRAME_CHAIN. (FRAME_CHAIN is not called in this case.) */
811 if (fromleaf)
812 {
813 /* Find the framesize of *this* frame without peeking at the PC
814 in the current frame structure (it isn't set yet). */
815 framesize = find_proc_framesize (FRAME_SAVED_PC (get_next_frame (frame)));
816
817 /* Now adjust our base frame accordingly. If we have a frame pointer
818 use it, else subtract the size of this frame from the current
819 frame. (we always want frame->frame to point at the lowest address
820 in the frame). */
821 if (framesize == -1)
822 frame->frame = read_register (FP_REGNUM);
823 else
824 frame->frame -= framesize;
825 return;
826 }
827
66a1aa07
SG
828 flags = read_register (FLAGS_REGNUM);
829 if (flags & 2) /* In system call? */
830 frame->pc = read_register (31) & ~0x3;
831
192c3eeb
JL
832 /* The outermost frame is always derived from PC-framesize
833
834 One might think frameless innermost frames should have
835 a frame->frame that is the same as the parent's frame->frame.
836 That is wrong; frame->frame in that case should be the *high*
837 address of the parent's frame. It's complicated as hell to
838 explain, but the parent *always* creates some stack space for
839 the child. So the child actually does have a frame of some
840 sorts, and its base is the high address in its parent's frame. */
66a1aa07
SG
841 framesize = find_proc_framesize(frame->pc);
842 if (framesize == -1)
843 frame->frame = read_register (FP_REGNUM);
844 else
845 frame->frame = read_register (SP_REGNUM) - framesize;
66a1aa07
SG
846}
847\f
8966221d
JK
848/* Given a GDB frame, determine the address of the calling function's frame.
849 This will be used to create a new GDB frame struct, and then
850 INIT_EXTRA_FRAME_INFO and INIT_FRAME_PC will be called for the new frame.
851
852 This may involve searching through prologues for several functions
853 at boundaries where GCC calls HP C code, or where code which has
854 a frame pointer calls code without a frame pointer. */
855
856
66a1aa07
SG
857FRAME_ADDR
858frame_chain (frame)
859 struct frame_info *frame;
860{
8966221d
JK
861 int my_framesize, caller_framesize;
862 struct unwind_table_entry *u;
70e43abe
JL
863 CORE_ADDR frame_base;
864
865 /* Handle HPUX, BSD, and OSF1 style interrupt frames first. These
866 are easy; at *sp we have a full save state strucutre which we can
867 pull the old stack pointer from. Also see frame_saved_pc for
868 code to dig a saved PC out of the save state structure. */
869 if (pc_in_interrupt_handler (frame->pc))
870 frame_base = read_memory_integer (frame->frame + SP_REGNUM * 4, 4);
871 else if (frame->signal_handler_caller)
872 {
873 FRAME_BASE_BEFORE_SIGTRAMP (frame, &frame_base);
874 }
875 else
876 frame_base = frame->frame;
66a1aa07 877
8966221d
JK
878 /* Get frame sizes for the current frame and the frame of the
879 caller. */
880 my_framesize = find_proc_framesize (frame->pc);
881 caller_framesize = find_proc_framesize (FRAME_SAVED_PC(frame));
66a1aa07 882
8966221d
JK
883 /* If caller does not have a frame pointer, then its frame
884 can be found at current_frame - caller_framesize. */
885 if (caller_framesize != -1)
70e43abe 886 return frame_base - caller_framesize;
8966221d
JK
887
888 /* Both caller and callee have frame pointers and are GCC compiled
889 (SAVE_SP bit in unwind descriptor is on for both functions.
890 The previous frame pointer is found at the top of the current frame. */
891 if (caller_framesize == -1 && my_framesize == -1)
70e43abe 892 return read_memory_integer (frame_base, 4);
8966221d
JK
893
894 /* Caller has a frame pointer, but callee does not. This is a little
895 more difficult as GCC and HP C lay out locals and callee register save
896 areas very differently.
897
898 The previous frame pointer could be in a register, or in one of
899 several areas on the stack.
900
901 Walk from the current frame to the innermost frame examining
2f8c3639 902 unwind descriptors to determine if %r3 ever gets saved into the
8966221d 903 stack. If so return whatever value got saved into the stack.
2f8c3639 904 If it was never saved in the stack, then the value in %r3 is still
8966221d
JK
905 valid, so use it.
906
2f8c3639 907 We use information from unwind descriptors to determine if %r3
8966221d
JK
908 is saved into the stack (Entry_GR field has this information). */
909
910 while (frame)
911 {
912 u = find_unwind_entry (frame->pc);
913
914 if (!u)
915 {
01a03545
JK
916 /* We could find this information by examining prologues. I don't
917 think anyone has actually written any tools (not even "strip")
918 which leave them out of an executable, so maybe this is a moot
919 point. */
8966221d
JK
920 warning ("Unable to find unwind for PC 0x%x -- Help!", frame->pc);
921 return 0;
922 }
923
924 /* Entry_GR specifies the number of callee-saved general registers
2f8c3639 925 saved in the stack. It starts at %r3, so %r3 would be 1. */
70e43abe
JL
926 if (u->Entry_GR >= 1 || u->Save_SP
927 || frame->signal_handler_caller
928 || pc_in_interrupt_handler (frame->pc))
8966221d
JK
929 break;
930 else
931 frame = frame->next;
932 }
933
934 if (frame)
935 {
936 /* We may have walked down the chain into a function with a frame
937 pointer. */
70e43abe
JL
938 if (u->Save_SP
939 && !frame->signal_handler_caller
940 && !pc_in_interrupt_handler (frame->pc))
8966221d 941 return read_memory_integer (frame->frame, 4);
2f8c3639 942 /* %r3 was saved somewhere in the stack. Dig it out. */
8966221d 943 else
c598654a
JL
944 {
945 struct frame_info *fi;
946 struct frame_saved_regs saved_regs;
947
948 fi = get_frame_info (frame);
949 get_frame_saved_regs (fi, &saved_regs);
950 return read_memory_integer (saved_regs.regs[FP_REGNUM], 4);
951 }
8966221d
JK
952 }
953 else
954 {
2f8c3639 955 /* The value in %r3 was never saved into the stack (thus %r3 still
8966221d 956 holds the value of the previous frame pointer). */
2f8c3639 957 return read_register (FP_REGNUM);
8966221d
JK
958 }
959}
66a1aa07 960
66a1aa07
SG
961\f
962/* To see if a frame chain is valid, see if the caller looks like it
963 was compiled with gcc. */
964
965int
966frame_chain_valid (chain, thisframe)
967 FRAME_ADDR chain;
968 FRAME thisframe;
969{
247145e6
JK
970 struct minimal_symbol *msym_us;
971 struct minimal_symbol *msym_start;
70e43abe
JL
972 struct unwind_table_entry *u, *next_u = NULL;
973 FRAME next;
66a1aa07
SG
974
975 if (!chain)
976 return 0;
977
b8ec9a79 978 u = find_unwind_entry (thisframe->pc);
4b01383b 979
70e43abe
JL
980 if (u == NULL)
981 return 1;
982
247145e6
JK
983 /* We can't just check that the same of msym_us is "_start", because
984 someone idiotically decided that they were going to make a Ltext_end
985 symbol with the same address. This Ltext_end symbol is totally
986 indistinguishable (as nearly as I can tell) from the symbol for a function
987 which is (legitimately, since it is in the user's namespace)
988 named Ltext_end, so we can't just ignore it. */
989 msym_us = lookup_minimal_symbol_by_pc (FRAME_SAVED_PC (thisframe));
990 msym_start = lookup_minimal_symbol ("_start", NULL);
991 if (msym_us
992 && msym_start
993 && SYMBOL_VALUE_ADDRESS (msym_us) == SYMBOL_VALUE_ADDRESS (msym_start))
b8ec9a79 994 return 0;
5ac7f56e 995
70e43abe
JL
996 next = get_next_frame (thisframe);
997 if (next)
998 next_u = find_unwind_entry (next->pc);
5ac7f56e 999
70e43abe
JL
1000 /* If this frame does not save SP, has no stack, isn't a stub,
1001 and doesn't "call" an interrupt routine or signal handler caller,
1002 then its not valid. */
1003 if (u->Save_SP || u->Total_frame_size || u->stub_type != 0
1004 || (thisframe->next && thisframe->next->signal_handler_caller)
1005 || (next_u && next_u->HP_UX_interrupt_marker))
b8ec9a79 1006 return 1;
5ac7f56e 1007
b8ec9a79
JK
1008 if (pc_in_linker_stub (thisframe->pc))
1009 return 1;
4b01383b 1010
b8ec9a79 1011 return 0;
66a1aa07
SG
1012}
1013
66a1aa07
SG
1014/*
1015 * These functions deal with saving and restoring register state
1016 * around a function call in the inferior. They keep the stack
1017 * double-word aligned; eventually, on an hp700, the stack will have
1018 * to be aligned to a 64-byte boundary.
1019 */
1020
1021int
1022push_dummy_frame ()
1023{
1024 register CORE_ADDR sp;
1025 register int regnum;
1026 int int_buffer;
1027 double freg_buffer;
1028
1029 /* Space for "arguments"; the RP goes in here. */
1030 sp = read_register (SP_REGNUM) + 48;
1031 int_buffer = read_register (RP_REGNUM) | 0x3;
1032 write_memory (sp - 20, (char *)&int_buffer, 4);
1033
1034 int_buffer = read_register (FP_REGNUM);
1035 write_memory (sp, (char *)&int_buffer, 4);
1036
1037 write_register (FP_REGNUM, sp);
1038
1039 sp += 8;
1040
1041 for (regnum = 1; regnum < 32; regnum++)
1042 if (regnum != RP_REGNUM && regnum != FP_REGNUM)
1043 sp = push_word (sp, read_register (regnum));
1044
1045 sp += 4;
1046
1047 for (regnum = FP0_REGNUM; regnum < NUM_REGS; regnum++)
1048 {
1049 read_register_bytes (REGISTER_BYTE (regnum), (char *)&freg_buffer, 8);
1050 sp = push_bytes (sp, (char *)&freg_buffer, 8);
1051 }
1052 sp = push_word (sp, read_register (IPSW_REGNUM));
1053 sp = push_word (sp, read_register (SAR_REGNUM));
1054 sp = push_word (sp, read_register (PCOQ_HEAD_REGNUM));
1055 sp = push_word (sp, read_register (PCSQ_HEAD_REGNUM));
1056 sp = push_word (sp, read_register (PCOQ_TAIL_REGNUM));
1057 sp = push_word (sp, read_register (PCSQ_TAIL_REGNUM));
1058 write_register (SP_REGNUM, sp);
1059}
1060
1061find_dummy_frame_regs (frame, frame_saved_regs)
1062 struct frame_info *frame;
1063 struct frame_saved_regs *frame_saved_regs;
1064{
1065 CORE_ADDR fp = frame->frame;
1066 int i;
1067
1068 frame_saved_regs->regs[RP_REGNUM] = fp - 20 & ~0x3;
1069 frame_saved_regs->regs[FP_REGNUM] = fp;
1070 frame_saved_regs->regs[1] = fp + 8;
66a1aa07 1071
b227992a
SG
1072 for (fp += 12, i = 3; i < 32; i++)
1073 {
1074 if (i != FP_REGNUM)
1075 {
1076 frame_saved_regs->regs[i] = fp;
1077 fp += 4;
1078 }
1079 }
66a1aa07
SG
1080
1081 fp += 4;
1082 for (i = FP0_REGNUM; i < NUM_REGS; i++, fp += 8)
1083 frame_saved_regs->regs[i] = fp;
1084
1085 frame_saved_regs->regs[IPSW_REGNUM] = fp;
b227992a
SG
1086 frame_saved_regs->regs[SAR_REGNUM] = fp + 4;
1087 frame_saved_regs->regs[PCOQ_HEAD_REGNUM] = fp + 8;
1088 frame_saved_regs->regs[PCSQ_HEAD_REGNUM] = fp + 12;
1089 frame_saved_regs->regs[PCOQ_TAIL_REGNUM] = fp + 16;
1090 frame_saved_regs->regs[PCSQ_TAIL_REGNUM] = fp + 20;
66a1aa07
SG
1091}
1092
1093int
1094hppa_pop_frame ()
1095{
1096 register FRAME frame = get_current_frame ();
1097 register CORE_ADDR fp;
1098 register int regnum;
1099 struct frame_saved_regs fsr;
1100 struct frame_info *fi;
1101 double freg_buffer;
1102
1103 fi = get_frame_info (frame);
1104 fp = fi->frame;
1105 get_frame_saved_regs (fi, &fsr);
1106
0a64709e 1107#ifndef NO_PC_SPACE_QUEUE_RESTORE
66a1aa07
SG
1108 if (fsr.regs[IPSW_REGNUM]) /* Restoring a call dummy frame */
1109 restore_pc_queue (&fsr);
0a64709e 1110#endif
66a1aa07
SG
1111
1112 for (regnum = 31; regnum > 0; regnum--)
1113 if (fsr.regs[regnum])
1114 write_register (regnum, read_memory_integer (fsr.regs[regnum], 4));
1115
1116 for (regnum = NUM_REGS - 1; regnum >= FP0_REGNUM ; regnum--)
1117 if (fsr.regs[regnum])
1118 {
1119 read_memory (fsr.regs[regnum], (char *)&freg_buffer, 8);
1120 write_register_bytes (REGISTER_BYTE (regnum), (char *)&freg_buffer, 8);
1121 }
1122
1123 if (fsr.regs[IPSW_REGNUM])
1124 write_register (IPSW_REGNUM,
1125 read_memory_integer (fsr.regs[IPSW_REGNUM], 4));
1126
1127 if (fsr.regs[SAR_REGNUM])
1128 write_register (SAR_REGNUM,
1129 read_memory_integer (fsr.regs[SAR_REGNUM], 4));
1130
ed1a07ad 1131 /* If the PC was explicitly saved, then just restore it. */
66a1aa07
SG
1132 if (fsr.regs[PCOQ_TAIL_REGNUM])
1133 write_register (PCOQ_TAIL_REGNUM,
1134 read_memory_integer (fsr.regs[PCOQ_TAIL_REGNUM], 4));
1135
ed1a07ad
JK
1136 /* Else use the value in %rp to set the new PC. */
1137 else
1138 target_write_pc (read_register (RP_REGNUM));
1139
66a1aa07
SG
1140 write_register (FP_REGNUM, read_memory_integer (fp, 4));
1141
1142 if (fsr.regs[IPSW_REGNUM]) /* call dummy */
1143 write_register (SP_REGNUM, fp - 48);
1144 else
1145 write_register (SP_REGNUM, fp);
1146
1147 flush_cached_frames ();
1148 set_current_frame (create_new_frame (read_register (FP_REGNUM),
1149 read_pc ()));
1150}
1151
1152/*
1153 * After returning to a dummy on the stack, restore the instruction
1154 * queue space registers. */
1155
1156static int
1157restore_pc_queue (fsr)
1158 struct frame_saved_regs *fsr;
1159{
1160 CORE_ADDR pc = read_pc ();
1161 CORE_ADDR new_pc = read_memory_integer (fsr->regs[PCOQ_HEAD_REGNUM], 4);
1162 int pid;
67ac9759 1163 struct target_waitstatus w;
66a1aa07
SG
1164 int insn_count;
1165
1166 /* Advance past break instruction in the call dummy. */
1167 write_register (PCOQ_HEAD_REGNUM, pc + 4);
1168 write_register (PCOQ_TAIL_REGNUM, pc + 8);
1169
1170 /*
1171 * HPUX doesn't let us set the space registers or the space
1172 * registers of the PC queue through ptrace. Boo, hiss.
1173 * Conveniently, the call dummy has this sequence of instructions
1174 * after the break:
1175 * mtsp r21, sr0
1176 * ble,n 0(sr0, r22)
1177 *
1178 * So, load up the registers and single step until we are in the
1179 * right place.
1180 */
1181
1182 write_register (21, read_memory_integer (fsr->regs[PCSQ_HEAD_REGNUM], 4));
1183 write_register (22, new_pc);
1184
1185 for (insn_count = 0; insn_count < 3; insn_count++)
1186 {
8c5e0021
JK
1187 /* FIXME: What if the inferior gets a signal right now? Want to
1188 merge this into wait_for_inferior (as a special kind of
1189 watchpoint? By setting a breakpoint at the end? Is there
1190 any other choice? Is there *any* way to do this stuff with
1191 ptrace() or some equivalent?). */
66a1aa07 1192 resume (1, 0);
67ac9759 1193 target_wait (inferior_pid, &w);
66a1aa07 1194
67ac9759 1195 if (w.kind == TARGET_WAITKIND_SIGNALLED)
66a1aa07 1196 {
67ac9759 1197 stop_signal = w.value.sig;
66a1aa07 1198 terminal_ours_for_output ();
67ac9759
JK
1199 printf_unfiltered ("\nProgram terminated with signal %s, %s.\n",
1200 target_signal_to_name (stop_signal),
1201 target_signal_to_string (stop_signal));
199b2450 1202 gdb_flush (gdb_stdout);
66a1aa07
SG
1203 return 0;
1204 }
1205 }
8c5e0021 1206 target_terminal_ours ();
9c842e0c 1207 (current_target->to_fetch_registers) (-1);
66a1aa07
SG
1208 return 1;
1209}
1210
1211CORE_ADDR
1212hppa_push_arguments (nargs, args, sp, struct_return, struct_addr)
1213 int nargs;
4fd5eed4 1214 value_ptr *args;
66a1aa07
SG
1215 CORE_ADDR sp;
1216 int struct_return;
1217 CORE_ADDR struct_addr;
1218{
1219 /* array of arguments' offsets */
1edc5cd2 1220 int *offset = (int *)alloca(nargs * sizeof (int));
66a1aa07
SG
1221 int cum = 0;
1222 int i, alignment;
1223
1224 for (i = 0; i < nargs; i++)
1225 {
1226 /* Coerce chars to int & float to double if necessary */
1227 args[i] = value_arg_coerce (args[i]);
1228
1229 cum += TYPE_LENGTH (VALUE_TYPE (args[i]));
1230
1231 /* value must go at proper alignment. Assume alignment is a
1232 power of two.*/
1233 alignment = hppa_alignof (VALUE_TYPE (args[i]));
1234 if (cum % alignment)
1235 cum = (cum + alignment) & -alignment;
1236 offset[i] = -cum;
1237 }
558f4183 1238 sp += max ((cum + 7) & -8, 16);
66a1aa07
SG
1239
1240 for (i = 0; i < nargs; i++)
1241 write_memory (sp + offset[i], VALUE_CONTENTS (args[i]),
1242 TYPE_LENGTH (VALUE_TYPE (args[i])));
1243
1244 if (struct_return)
1245 write_register (28, struct_addr);
1246 return sp + 32;
1247}
1248
1249/*
1250 * Insert the specified number of args and function address
1251 * into a call sequence of the above form stored at DUMMYNAME.
1252 *
1253 * On the hppa we need to call the stack dummy through $$dyncall.
1254 * Therefore our version of FIX_CALL_DUMMY takes an extra argument,
1255 * real_pc, which is the location where gdb should start up the
1256 * inferior to do the function call.
1257 */
1258
1259CORE_ADDR
1260hppa_fix_call_dummy (dummy, pc, fun, nargs, args, type, gcc_p)
f4f0d174 1261 char *dummy;
66a1aa07
SG
1262 CORE_ADDR pc;
1263 CORE_ADDR fun;
1264 int nargs;
4fd5eed4 1265 value_ptr *args;
66a1aa07
SG
1266 struct type *type;
1267 int gcc_p;
1268{
1269 CORE_ADDR dyncall_addr, sr4export_addr;
1270 struct minimal_symbol *msymbol;
6cfec929 1271 int flags = read_register (FLAGS_REGNUM);
19cd0c1f 1272 struct unwind_table_entry *u;
66a1aa07
SG
1273
1274 msymbol = lookup_minimal_symbol ("$$dyncall", (struct objfile *) NULL);
1275 if (msymbol == NULL)
1276 error ("Can't find an address for $$dyncall trampoline");
1277
1278 dyncall_addr = SYMBOL_VALUE_ADDRESS (msymbol);
1279
4f915914
JL
1280 /* FUN could be a procedure label, in which case we have to get
1281 its real address and the value of its GOT/DP. */
1282 if (fun & 0x2)
1283 {
1284 /* Get the GOT/DP value for the target function. It's
1285 at *(fun+4). Note the call dummy is *NOT* allowed to
1286 trash %r19 before calling the target function. */
1287 write_register (19, read_memory_integer ((fun & ~0x3) + 4, 4));
1288
1289 /* Now get the real address for the function we are calling, it's
1290 at *fun. */
1291 fun = (CORE_ADDR) read_memory_integer (fun & ~0x3, 4);
1292 }
1293
19cd0c1f
JL
1294 /* If we are calling an import stub (eg calling into a dynamic library)
1295 then have sr4export call the magic __d_plt_call routine which is linked
1296 in from end.o. (You can't use _sr4export to call the import stub as
1297 the value in sp-24 will get fried and you end up returning to the
1298 wrong location. You can't call the import stub directly as the code
1299 to bind the PLT entry to a function can't return to a stack address.) */
1300 u = find_unwind_entry (fun);
1301 if (u && u->stub_type == IMPORT)
1302 {
1303 CORE_ADDR new_fun;
1304 msymbol = lookup_minimal_symbol ("__d_plt_call", (struct objfile *) NULL);
1305 if (msymbol == NULL)
1306 error ("Can't find an address for __d_plt_call trampoline");
1307
1308 /* This is where sr4export will jump to. */
1309 new_fun = SYMBOL_VALUE_ADDRESS (msymbol);
1310
1311 /* We have to store the address of the stub in __shlib_funcptr. */
1312 msymbol = lookup_minimal_symbol ("__shlib_funcptr",
1313 (struct objfile *)NULL);
1314 if (msymbol == NULL)
1315 error ("Can't find an address for __shlib_funcptr");
1316
1317 target_write_memory (SYMBOL_VALUE_ADDRESS (msymbol), (char *)&fun, 4);
1318 fun = new_fun;
1319
1320 }
1321
1322 /* We still need sr4export's address too. */
66a1aa07
SG
1323 msymbol = lookup_minimal_symbol ("_sr4export", (struct objfile *) NULL);
1324 if (msymbol == NULL)
1325 error ("Can't find an address for _sr4export trampoline");
1326
1327 sr4export_addr = SYMBOL_VALUE_ADDRESS (msymbol);
1328
f4f0d174
JK
1329 store_unsigned_integer
1330 (&dummy[9*REGISTER_SIZE],
1331 REGISTER_SIZE,
1332 deposit_21 (fun >> 11,
1333 extract_unsigned_integer (&dummy[9*REGISTER_SIZE],
1334 REGISTER_SIZE)));
1335 store_unsigned_integer
1336 (&dummy[10*REGISTER_SIZE],
1337 REGISTER_SIZE,
1338 deposit_14 (fun & MASK_11,
1339 extract_unsigned_integer (&dummy[10*REGISTER_SIZE],
1340 REGISTER_SIZE)));
1341 store_unsigned_integer
1342 (&dummy[12*REGISTER_SIZE],
1343 REGISTER_SIZE,
1344 deposit_21 (sr4export_addr >> 11,
1345 extract_unsigned_integer (&dummy[12*REGISTER_SIZE],
1346 REGISTER_SIZE)));
1347 store_unsigned_integer
1348 (&dummy[13*REGISTER_SIZE],
1349 REGISTER_SIZE,
1350 deposit_14 (sr4export_addr & MASK_11,
1351 extract_unsigned_integer (&dummy[13*REGISTER_SIZE],
1352 REGISTER_SIZE)));
66a1aa07
SG
1353
1354 write_register (22, pc);
1355
6cfec929
JK
1356 /* If we are in a syscall, then we should call the stack dummy
1357 directly. $$dyncall is not needed as the kernel sets up the
1358 space id registers properly based on the value in %r31. In
1359 fact calling $$dyncall will not work because the value in %r22
1360 will be clobbered on the syscall exit path. */
1361 if (flags & 2)
1362 return pc;
1363 else
1364 return dyncall_addr;
1365
66a1aa07
SG
1366}
1367
d3862cae
JK
1368/* Get the PC from %r31 if currently in a syscall. Also mask out privilege
1369 bits. */
1370CORE_ADDR
1371target_read_pc ()
1372{
1373 int flags = read_register (FLAGS_REGNUM);
1374
1375 if (flags & 2)
1376 return read_register (31) & ~0x3;
1377 return read_register (PC_REGNUM) & ~0x3;
1378}
1379
6cfec929
JK
1380/* Write out the PC. If currently in a syscall, then also write the new
1381 PC value into %r31. */
1382void
1383target_write_pc (v)
1384 CORE_ADDR v;
1385{
1386 int flags = read_register (FLAGS_REGNUM);
1387
1388 /* If in a syscall, then set %r31. Also make sure to get the
1389 privilege bits set correctly. */
1390 if (flags & 2)
1391 write_register (31, (long) (v | 0x3));
1392
1393 write_register (PC_REGNUM, (long) v);
1394 write_register (NPC_REGNUM, (long) v + 4);
1395}
1396
66a1aa07
SG
1397/* return the alignment of a type in bytes. Structures have the maximum
1398 alignment required by their fields. */
1399
1400static int
1401hppa_alignof (arg)
1402 struct type *arg;
1403{
1404 int max_align, align, i;
1405 switch (TYPE_CODE (arg))
1406 {
1407 case TYPE_CODE_PTR:
1408 case TYPE_CODE_INT:
1409 case TYPE_CODE_FLT:
1410 return TYPE_LENGTH (arg);
1411 case TYPE_CODE_ARRAY:
1412 return hppa_alignof (TYPE_FIELD_TYPE (arg, 0));
1413 case TYPE_CODE_STRUCT:
1414 case TYPE_CODE_UNION:
1415 max_align = 2;
1416 for (i = 0; i < TYPE_NFIELDS (arg); i++)
1417 {
1418 /* Bit fields have no real alignment. */
1419 if (!TYPE_FIELD_BITPOS (arg, i))
1420 {
1421 align = hppa_alignof (TYPE_FIELD_TYPE (arg, i));
1422 max_align = max (max_align, align);
1423 }
1424 }
1425 return max_align;
1426 default:
1427 return 4;
1428 }
1429}
1430
1431/* Print the register regnum, or all registers if regnum is -1 */
1432
1433pa_do_registers_info (regnum, fpregs)
1434 int regnum;
1435 int fpregs;
1436{
1437 char raw_regs [REGISTER_BYTES];
1438 int i;
1439
1440 for (i = 0; i < NUM_REGS; i++)
1441 read_relative_register_raw_bytes (i, raw_regs + REGISTER_BYTE (i));
1442 if (regnum == -1)
1443 pa_print_registers (raw_regs, regnum, fpregs);
1444 else if (regnum < FP0_REGNUM)
199b2450 1445 printf_unfiltered ("%s %x\n", reg_names[regnum], *(long *)(raw_regs +
66a1aa07
SG
1446 REGISTER_BYTE (regnum)));
1447 else
1448 pa_print_fp_reg (regnum);
1449}
1450
1451pa_print_registers (raw_regs, regnum, fpregs)
1452 char *raw_regs;
1453 int regnum;
1454 int fpregs;
1455{
1456 int i;
1457
1458 for (i = 0; i < 18; i++)
199b2450 1459 printf_unfiltered ("%8.8s: %8x %8.8s: %8x %8.8s: %8x %8.8s: %8x\n",
66a1aa07
SG
1460 reg_names[i],
1461 *(int *)(raw_regs + REGISTER_BYTE (i)),
1462 reg_names[i + 18],
1463 *(int *)(raw_regs + REGISTER_BYTE (i + 18)),
1464 reg_names[i + 36],
1465 *(int *)(raw_regs + REGISTER_BYTE (i + 36)),
1466 reg_names[i + 54],
1467 *(int *)(raw_regs + REGISTER_BYTE (i + 54)));
1468
1469 if (fpregs)
1470 for (i = 72; i < NUM_REGS; i++)
1471 pa_print_fp_reg (i);
1472}
1473
1474pa_print_fp_reg (i)
1475 int i;
1476{
1477 unsigned char raw_buffer[MAX_REGISTER_RAW_SIZE];
1478 unsigned char virtual_buffer[MAX_REGISTER_VIRTUAL_SIZE];
66a1aa07 1479
eb1167c6 1480 /* Get 32bits of data. */
66a1aa07 1481 read_relative_register_raw_bytes (i, raw_buffer);
ad09cb2b 1482
eb1167c6
JL
1483 /* Put it in the buffer. No conversions are ever necessary. */
1484 memcpy (virtual_buffer, raw_buffer, REGISTER_RAW_SIZE (i));
66a1aa07 1485
199b2450 1486 fputs_filtered (reg_names[i], gdb_stdout);
eb1167c6
JL
1487 print_spaces_filtered (8 - strlen (reg_names[i]), gdb_stdout);
1488 fputs_filtered ("(single precision) ", gdb_stdout);
66a1aa07 1489
199b2450 1490 val_print (REGISTER_VIRTUAL_TYPE (i), virtual_buffer, 0, gdb_stdout, 0,
66a1aa07
SG
1491 1, 0, Val_pretty_default);
1492 printf_filtered ("\n");
eb1167c6
JL
1493
1494 /* If "i" is even, then this register can also be a double-precision
1495 FP register. Dump it out as such. */
1496 if ((i % 2) == 0)
1497 {
1498 /* Get the data in raw format for the 2nd half. */
1499 read_relative_register_raw_bytes (i + 1, raw_buffer);
1500
1501 /* Copy it into the appropriate part of the virtual buffer. */
1502 memcpy (virtual_buffer + REGISTER_RAW_SIZE (i), raw_buffer,
1503 REGISTER_RAW_SIZE (i));
1504
1505 /* Dump it as a double. */
1506 fputs_filtered (reg_names[i], gdb_stdout);
1507 print_spaces_filtered (8 - strlen (reg_names[i]), gdb_stdout);
1508 fputs_filtered ("(double precision) ", gdb_stdout);
1509
1510 val_print (builtin_type_double, virtual_buffer, 0, gdb_stdout, 0,
1511 1, 0, Val_pretty_default);
1512 printf_filtered ("\n");
1513 }
66a1aa07
SG
1514}
1515
de482138
JL
1516/* Figure out if PC is in a trampoline, and if so find out where
1517 the trampoline will jump to. If not in a trampoline, return zero.
66a1aa07 1518
de482138
JL
1519 Simple code examination probably is not a good idea since the code
1520 sequences in trampolines can also appear in user code.
1521
1522 We use unwinds and information from the minimal symbol table to
1523 determine when we're in a trampoline. This won't work for ELF
1524 (yet) since it doesn't create stub unwind entries. Whether or
1525 not ELF will create stub unwinds or normal unwinds for linker
1526 stubs is still being debated.
1527
1528 This should handle simple calls through dyncall or sr4export,
1529 long calls, argument relocation stubs, and dyncall/sr4export
1530 calling an argument relocation stub. It even handles some stubs
1531 used in dynamic executables. */
66a1aa07
SG
1532
1533CORE_ADDR
1534skip_trampoline_code (pc, name)
1535 CORE_ADDR pc;
1536 char *name;
1537{
de482138
JL
1538 long orig_pc = pc;
1539 long prev_inst, curr_inst, loc;
66a1aa07 1540 static CORE_ADDR dyncall = 0;
de482138 1541 static CORE_ADDR sr4export = 0;
66a1aa07 1542 struct minimal_symbol *msym;
de482138 1543 struct unwind_table_entry *u;
66a1aa07 1544
de482138
JL
1545/* FIXME XXX - dyncall and sr4export must be initialized whenever we get a
1546 new exec file */
66a1aa07
SG
1547
1548 if (!dyncall)
1549 {
1550 msym = lookup_minimal_symbol ("$$dyncall", NULL);
1551 if (msym)
1552 dyncall = SYMBOL_VALUE_ADDRESS (msym);
1553 else
1554 dyncall = -1;
1555 }
1556
de482138
JL
1557 if (!sr4export)
1558 {
1559 msym = lookup_minimal_symbol ("_sr4export", NULL);
1560 if (msym)
1561 sr4export = SYMBOL_VALUE_ADDRESS (msym);
1562 else
1563 sr4export = -1;
1564 }
1565
1566 /* Addresses passed to dyncall may *NOT* be the actual address
1567 of the funtion. So we may have to do something special. */
66a1aa07 1568 if (pc == dyncall)
de482138
JL
1569 {
1570 pc = (CORE_ADDR) read_register (22);
66a1aa07 1571
de482138
JL
1572 /* If bit 30 (counting from the left) is on, then pc is the address of
1573 the PLT entry for this function, not the address of the function
1574 itself. Bit 31 has meaning too, but only for MPE. */
1575 if (pc & 0x2)
1576 pc = (CORE_ADDR) read_memory_integer (pc & ~0x3, 4);
1577 }
1578 else if (pc == sr4export)
1579 pc = (CORE_ADDR) (read_register (22));
66a1aa07 1580
de482138
JL
1581 /* Get the unwind descriptor corresponding to PC, return zero
1582 if no unwind was found. */
1583 u = find_unwind_entry (pc);
1584 if (!u)
1585 return 0;
1586
1587 /* If this isn't a linker stub, then return now. */
1588 if (u->stub_type == 0)
1589 return orig_pc == pc ? 0 : pc & ~0x3;
1590
1591 /* It's a stub. Search for a branch and figure out where it goes.
1592 Note we have to handle multi insn branch sequences like ldil;ble.
1593 Most (all?) other branches can be determined by examining the contents
1594 of certain registers and the stack. */
1595 loc = pc;
1596 curr_inst = 0;
1597 prev_inst = 0;
1598 while (1)
1599 {
1600 /* Make sure we haven't walked outside the range of this stub. */
1601 if (u != find_unwind_entry (loc))
1602 {
1603 warning ("Unable to find branch in linker stub");
1604 return orig_pc == pc ? 0 : pc & ~0x3;
1605 }
1606
1607 prev_inst = curr_inst;
1608 curr_inst = read_memory_integer (loc, 4);
66a1aa07 1609
de482138
JL
1610 /* Does it look like a branch external using %r1? Then it's the
1611 branch from the stub to the actual function. */
1612 if ((curr_inst & 0xffe0e000) == 0xe0202000)
1613 {
1614 /* Yup. See if the previous instruction loaded
1615 a value into %r1. If so compute and return the jump address. */
1616 if ((prev_inst & 0xffe00000) == 0x20202000)
1617 return (extract_21 (prev_inst) + extract_17 (curr_inst)) & ~0x3;
1618 else
1619 {
1620 warning ("Unable to find ldil X,%%r1 before ble Y(%%sr4,%%r1).");
1621 return orig_pc == pc ? 0 : pc & ~0x3;
1622 }
1623 }
1624
88b91d4a
JL
1625 /* Does it look like bl X,%rp or bl X,%r0? Another way to do a
1626 branch from the stub to the actual function. */
1627 else if ((curr_inst & 0xffe0e000) == 0xe8400000
1628 || (curr_inst & 0xffe0e000) == 0xe8000000)
de482138
JL
1629 return (loc + extract_17 (curr_inst) + 8) & ~0x3;
1630
1631 /* Does it look like bv (rp)? Note this depends on the
1632 current stack pointer being the same as the stack
1633 pointer in the stub itself! This is a branch on from the
1634 stub back to the original caller. */
1635 else if ((curr_inst & 0xffe0e000) == 0xe840c000)
1636 {
1637 /* Yup. See if the previous instruction loaded
1638 rp from sp - 8. */
1639 if (prev_inst == 0x4bc23ff1)
1640 return (read_memory_integer
1641 (read_register (SP_REGNUM) - 8, 4)) & ~0x3;
1642 else
1643 {
1644 warning ("Unable to find restore of %%rp before bv (%%rp).");
1645 return orig_pc == pc ? 0 : pc & ~0x3;
1646 }
1647 }
1648
1649 /* What about be,n 0(sr0,%rp)? It's just another way we return to
1650 the original caller from the stub. Used in dynamic executables. */
1651 else if (curr_inst == 0xe0400002)
1652 {
1653 /* The value we jump to is sitting in sp - 24. But that's
1654 loaded several instructions before the be instruction.
1655 I guess we could check for the previous instruction being
1656 mtsp %r1,%sr0 if we want to do sanity checking. */
1657 return (read_memory_integer
1658 (read_register (SP_REGNUM) - 24, 4)) & ~0x3;
1659 }
1660
1661 /* Haven't found the branch yet, but we're still in the stub.
1662 Keep looking. */
1663 loc += 4;
1664 }
66a1aa07
SG
1665}
1666
c598654a
JL
1667/* For the given instruction (INST), return any adjustment it makes
1668 to the stack pointer or zero for no adjustment.
1669
1670 This only handles instructions commonly found in prologues. */
1671
1672static int
1673prologue_inst_adjust_sp (inst)
1674 unsigned long inst;
1675{
1676 /* This must persist across calls. */
1677 static int save_high21;
1678
1679 /* The most common way to perform a stack adjustment ldo X(sp),sp */
1680 if ((inst & 0xffffc000) == 0x37de0000)
1681 return extract_14 (inst);
1682
1683 /* stwm X,D(sp) */
1684 if ((inst & 0xffe00000) == 0x6fc00000)
1685 return extract_14 (inst);
1686
1687 /* addil high21,%r1; ldo low11,(%r1),%r30)
1688 save high bits in save_high21 for later use. */
1689 if ((inst & 0xffe00000) == 0x28200000)
1690 {
1691 save_high21 = extract_21 (inst);
1692 return 0;
1693 }
1694
1695 if ((inst & 0xffff0000) == 0x343e0000)
1696 return save_high21 + extract_14 (inst);
1697
1698 /* fstws as used by the HP compilers. */
1699 if ((inst & 0xffffffe0) == 0x2fd01220)
1700 return extract_5_load (inst);
1701
1702 /* No adjustment. */
1703 return 0;
1704}
1705
1706/* Return nonzero if INST is a branch of some kind, else return zero. */
1707
1708static int
1709is_branch (inst)
1710 unsigned long inst;
1711{
1712 switch (inst >> 26)
1713 {
1714 case 0x20:
1715 case 0x21:
1716 case 0x22:
1717 case 0x23:
1718 case 0x28:
1719 case 0x29:
1720 case 0x2a:
1721 case 0x2b:
1722 case 0x30:
1723 case 0x31:
1724 case 0x32:
1725 case 0x33:
1726 case 0x38:
1727 case 0x39:
1728 case 0x3a:
1729 return 1;
1730
1731 default:
1732 return 0;
1733 }
1734}
1735
1736/* Return the register number for a GR which is saved by INST or
1737 zero it INST does not save a GR.
1738
1739 Note we only care about full 32bit register stores (that's the only
1740 kind of stores the prologue will use). */
1741
1742static int
1743inst_saves_gr (inst)
1744 unsigned long inst;
1745{
1746 /* Does it look like a stw? */
1747 if ((inst >> 26) == 0x1a)
1748 return extract_5R_store (inst);
1749
1750 /* Does it look like a stwm? */
1751 if ((inst >> 26) == 0x1b)
1752 return extract_5R_store (inst);
1753
1754 return 0;
1755}
1756
1757/* Return the register number for a FR which is saved by INST or
1758 zero it INST does not save a FR.
1759
1760 Note we only care about full 64bit register stores (that's the only
1761 kind of stores the prologue will use). */
1762
1763static int
1764inst_saves_fr (inst)
1765 unsigned long inst;
1766{
1767 if ((inst & 0xfc1fffe0) == 0x2c101220)
1768 return extract_5r_store (inst);
1769 return 0;
1770}
1771
66a1aa07 1772/* Advance PC across any function entry prologue instructions
c598654a 1773 to reach some "real" code.
66a1aa07 1774
c598654a
JL
1775 Use information in the unwind table to determine what exactly should
1776 be in the prologue. */
66a1aa07
SG
1777
1778CORE_ADDR
de482138 1779skip_prologue (pc)
66a1aa07
SG
1780 CORE_ADDR pc;
1781{
34df79fc 1782 char buf[4];
c598654a
JL
1783 unsigned long inst, stack_remaining, save_gr, save_fr, save_rp, save_sp;
1784 int status, i;
1785 struct unwind_table_entry *u;
66a1aa07 1786
c598654a
JL
1787 u = find_unwind_entry (pc);
1788 if (!u)
fdafbfad 1789 return pc;
c598654a 1790
de482138
JL
1791 /* If we are not at the beginning of a function, then return now. */
1792 if ((pc & ~0x3) != u->region_start)
1793 return pc;
1794
c598654a
JL
1795 /* This is how much of a frame adjustment we need to account for. */
1796 stack_remaining = u->Total_frame_size << 3;
66a1aa07 1797
c598654a
JL
1798 /* Magic register saves we want to know about. */
1799 save_rp = u->Save_RP;
1800 save_sp = u->Save_SP;
1801
1802 /* Turn the Entry_GR field into a bitmask. */
1803 save_gr = 0;
1804 for (i = 3; i < u->Entry_GR + 3; i++)
66a1aa07 1805 {
c598654a
JL
1806 /* Frame pointer gets saved into a special location. */
1807 if (u->Save_SP && i == FP_REGNUM)
1808 continue;
1809
1810 save_gr |= (1 << i);
1811 }
1812
1813 /* Turn the Entry_FR field into a bitmask too. */
1814 save_fr = 0;
1815 for (i = 12; i < u->Entry_FR + 12; i++)
1816 save_fr |= (1 << i);
1817
1818 /* Loop until we find everything of interest or hit a branch.
1819
1820 For unoptimized GCC code and for any HP CC code this will never ever
1821 examine any user instructions.
1822
1823 For optimzied GCC code we're faced with problems. GCC will schedule
1824 its prologue and make prologue instructions available for delay slot
1825 filling. The end result is user code gets mixed in with the prologue
1826 and a prologue instruction may be in the delay slot of the first branch
1827 or call.
1828
1829 Some unexpected things are expected with debugging optimized code, so
1830 we allow this routine to walk past user instructions in optimized
1831 GCC code. */
1832 while (save_gr || save_fr || save_rp || save_sp || stack_remaining > 0)
1833 {
1834 status = target_read_memory (pc, buf, 4);
1835 inst = extract_unsigned_integer (buf, 4);
1836
1837 /* Yow! */
1838 if (status != 0)
1839 return pc;
1840
1841 /* Note the interesting effects of this instruction. */
1842 stack_remaining -= prologue_inst_adjust_sp (inst);
1843
1844 /* There is only one instruction used for saving RP into the stack. */
1845 if (inst == 0x6bc23fd9)
1846 save_rp = 0;
1847
1848 /* This is the only way we save SP into the stack. At this time
1849 the HP compilers never bother to save SP into the stack. */
1850 if ((inst & 0xffffc000) == 0x6fc10000)
1851 save_sp = 0;
1852
1853 /* Account for general and floating-point register saves. */
1854 save_gr &= ~(1 << inst_saves_gr (inst));
1855 save_fr &= ~(1 << inst_saves_fr (inst));
1856
1857 /* Quit if we hit any kind of branch. This can happen if a prologue
1858 instruction is in the delay slot of the first call/branch. */
1859 if (is_branch (inst))
1860 break;
1861
1862 /* Bump the PC. */
1863 pc += 4;
66a1aa07 1864 }
66a1aa07
SG
1865
1866 return pc;
1867}
1868
c598654a
JL
1869/* Put here the code to store, into a struct frame_saved_regs,
1870 the addresses of the saved registers of frame described by FRAME_INFO.
1871 This includes special registers such as pc and fp saved in special
1872 ways in the stack frame. sp is even more special:
1873 the address we return for it IS the sp for the next frame. */
1874
1875void
1876hppa_frame_find_saved_regs (frame_info, frame_saved_regs)
1877 struct frame_info *frame_info;
1878 struct frame_saved_regs *frame_saved_regs;
1879{
1880 CORE_ADDR pc;
1881 struct unwind_table_entry *u;
1882 unsigned long inst, stack_remaining, save_gr, save_fr, save_rp, save_sp;
1883 int status, i, reg;
1884 char buf[4];
1885 int fp_loc = -1;
1886
1887 /* Zero out everything. */
1888 memset (frame_saved_regs, '\0', sizeof (struct frame_saved_regs));
1889
1890 /* Call dummy frames always look the same, so there's no need to
1891 examine the dummy code to determine locations of saved registers;
1892 instead, let find_dummy_frame_regs fill in the correct offsets
1893 for the saved registers. */
1894 if ((frame_info->pc >= frame_info->frame
1895 && frame_info->pc <= (frame_info->frame + CALL_DUMMY_LENGTH
1896 + 32 * 4 + (NUM_REGS - FP0_REGNUM) * 8
1897 + 6 * 4)))
1898 find_dummy_frame_regs (frame_info, frame_saved_regs);
1899
70e43abe
JL
1900 /* Interrupt handlers are special too. They lay out the register
1901 state in the exact same order as the register numbers in GDB. */
1902 if (pc_in_interrupt_handler (frame_info->pc))
1903 {
1904 for (i = 0; i < NUM_REGS; i++)
1905 {
1906 /* SP is a little special. */
1907 if (i == SP_REGNUM)
1908 frame_saved_regs->regs[SP_REGNUM]
1909 = read_memory_integer (frame_info->frame + SP_REGNUM * 4, 4);
1910 else
1911 frame_saved_regs->regs[i] = frame_info->frame + i * 4;
1912 }
1913 return;
1914 }
1915
1916 /* Handle signal handler callers. */
1917 if (frame_info->signal_handler_caller)
1918 {
1919 FRAME_FIND_SAVED_REGS_IN_SIGTRAMP (frame_info, frame_saved_regs);
1920 return;
1921 }
1922
c598654a
JL
1923 /* Get the starting address of the function referred to by the PC
1924 saved in frame_info. */
1925 pc = get_pc_function_start (frame_info->pc);
1926
1927 /* Yow! */
1928 u = find_unwind_entry (pc);
1929 if (!u)
1930 return;
1931
1932 /* This is how much of a frame adjustment we need to account for. */
1933 stack_remaining = u->Total_frame_size << 3;
1934
1935 /* Magic register saves we want to know about. */
1936 save_rp = u->Save_RP;
1937 save_sp = u->Save_SP;
1938
1939 /* Turn the Entry_GR field into a bitmask. */
1940 save_gr = 0;
1941 for (i = 3; i < u->Entry_GR + 3; i++)
1942 {
1943 /* Frame pointer gets saved into a special location. */
1944 if (u->Save_SP && i == FP_REGNUM)
1945 continue;
1946
1947 save_gr |= (1 << i);
1948 }
1949
1950 /* Turn the Entry_FR field into a bitmask too. */
1951 save_fr = 0;
1952 for (i = 12; i < u->Entry_FR + 12; i++)
1953 save_fr |= (1 << i);
1954
70e43abe
JL
1955 /* The frame always represents the value of %sp at entry to the
1956 current function (and is thus equivalent to the "saved" stack
1957 pointer. */
1958 frame_saved_regs->regs[SP_REGNUM] = frame_info->frame;
1959
c598654a
JL
1960 /* Loop until we find everything of interest or hit a branch.
1961
1962 For unoptimized GCC code and for any HP CC code this will never ever
1963 examine any user instructions.
1964
1965 For optimzied GCC code we're faced with problems. GCC will schedule
1966 its prologue and make prologue instructions available for delay slot
1967 filling. The end result is user code gets mixed in with the prologue
1968 and a prologue instruction may be in the delay slot of the first branch
1969 or call.
1970
1971 Some unexpected things are expected with debugging optimized code, so
1972 we allow this routine to walk past user instructions in optimized
1973 GCC code. */
1974 while (save_gr || save_fr || save_rp || save_sp || stack_remaining > 0)
1975 {
1976 status = target_read_memory (pc, buf, 4);
1977 inst = extract_unsigned_integer (buf, 4);
1978
1979 /* Yow! */
1980 if (status != 0)
1981 return;
1982
1983 /* Note the interesting effects of this instruction. */
1984 stack_remaining -= prologue_inst_adjust_sp (inst);
1985
1986 /* There is only one instruction used for saving RP into the stack. */
1987 if (inst == 0x6bc23fd9)
1988 {
1989 save_rp = 0;
1990 frame_saved_regs->regs[RP_REGNUM] = frame_info->frame - 20;
1991 }
1992
70e43abe
JL
1993 /* Just note that we found the save of SP into the stack. The
1994 value for frame_saved_regs was computed above. */
c598654a 1995 if ((inst & 0xffffc000) == 0x6fc10000)
70e43abe 1996 save_sp = 0;
c598654a
JL
1997
1998 /* Account for general and floating-point register saves. */
1999 reg = inst_saves_gr (inst);
2000 if (reg >= 3 && reg <= 18
2001 && (!u->Save_SP || reg != FP_REGNUM))
2002 {
2003 save_gr &= ~(1 << reg);
2004
2005 /* stwm with a positive displacement is a *post modify*. */
2006 if ((inst >> 26) == 0x1b
2007 && extract_14 (inst) >= 0)
2008 frame_saved_regs->regs[reg] = frame_info->frame;
2009 else
2010 {
2011 /* Handle code with and without frame pointers. */
2012 if (u->Save_SP)
2013 frame_saved_regs->regs[reg]
2014 = frame_info->frame + extract_14 (inst);
2015 else
2016 frame_saved_regs->regs[reg]
2017 = frame_info->frame + (u->Total_frame_size << 3)
2018 + extract_14 (inst);
2019 }
2020 }
2021
2022
2023 /* GCC handles callee saved FP regs a little differently.
2024
2025 It emits an instruction to put the value of the start of
2026 the FP store area into %r1. It then uses fstds,ma with
2027 a basereg of %r1 for the stores.
2028
2029 HP CC emits them at the current stack pointer modifying
2030 the stack pointer as it stores each register. */
2031
2032 /* ldo X(%r3),%r1 or ldo X(%r30),%r1. */
2033 if ((inst & 0xffffc000) == 0x34610000
2034 || (inst & 0xffffc000) == 0x37c10000)
2035 fp_loc = extract_14 (inst);
2036
2037 reg = inst_saves_fr (inst);
2038 if (reg >= 12 && reg <= 21)
2039 {
2040 /* Note +4 braindamage below is necessary because the FP status
2041 registers are internally 8 registers rather than the expected
2042 4 registers. */
2043 save_fr &= ~(1 << reg);
2044 if (fp_loc == -1)
2045 {
2046 /* 1st HP CC FP register store. After this instruction
2047 we've set enough state that the GCC and HPCC code are
2048 both handled in the same manner. */
2049 frame_saved_regs->regs[reg + FP4_REGNUM + 4] = frame_info->frame;
2050 fp_loc = 8;
2051 }
2052 else
2053 {
2054 frame_saved_regs->regs[reg + FP0_REGNUM + 4]
2055 = frame_info->frame + fp_loc;
2056 fp_loc += 8;
2057 }
2058 }
2059
2060 /* Quit if we hit any kind of branch. This can happen if a prologue
2061 instruction is in the delay slot of the first call/branch. */
2062 if (is_branch (inst))
2063 break;
2064
2065 /* Bump the PC. */
2066 pc += 4;
2067 }
2068}
2069
63757ecd
JK
2070#ifdef MAINTENANCE_CMDS
2071
66a1aa07
SG
2072static void
2073unwind_command (exp, from_tty)
2074 char *exp;
2075 int from_tty;
2076{
2077 CORE_ADDR address;
2078 union
2079 {
2080 int *foo;
2081 struct unwind_table_entry *u;
2082 } xxx;
2083
2084 /* If we have an expression, evaluate it and use it as the address. */
2085
2086 if (exp != 0 && *exp != 0)
2087 address = parse_and_eval_address (exp);
2088 else
2089 return;
2090
2091 xxx.u = find_unwind_entry (address);
2092
2093 if (!xxx.u)
2094 {
199b2450 2095 printf_unfiltered ("Can't find unwind table entry for PC 0x%x\n", address);
66a1aa07
SG
2096 return;
2097 }
2098
199b2450 2099 printf_unfiltered ("%08x\n%08X\n%08X\n%08X\n", xxx.foo[0], xxx.foo[1], xxx.foo[2],
66a1aa07
SG
2100 xxx.foo[3]);
2101}
976bb0be 2102#endif /* MAINTENANCE_CMDS */
63757ecd
JK
2103
2104void
2105_initialize_hppa_tdep ()
2106{
976bb0be 2107#ifdef MAINTENANCE_CMDS
63757ecd
JK
2108 add_cmd ("unwind", class_maintenance, unwind_command,
2109 "Print unwind table entry at given address.",
2110 &maintenanceprintlist);
63757ecd 2111#endif /* MAINTENANCE_CMDS */
976bb0be 2112}