e964064d8dee7e2526d4a366348d527384ce7187
[deliverable/binutils-gdb.git] / gdb / hppa-hpux-tdep.c
1 /* Target-dependent code for HP-UX on PA-RISC.
2
3 Copyright (C) 2002-2013 Free Software Foundation, Inc.
4
5 This file is part of GDB.
6
7 This program is free software; you can redistribute it and/or modify
8 it under the terms of the GNU General Public License as published by
9 the Free Software Foundation; either version 3 of the License, or
10 (at your option) any later version.
11
12 This program is distributed in the hope that it will be useful,
13 but WITHOUT ANY WARRANTY; without even the implied warranty of
14 MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
15 GNU General Public License for more details.
16
17 You should have received a copy of the GNU General Public License
18 along with this program. If not, see <http://www.gnu.org/licenses/>. */
19
20 #include "defs.h"
21 #include "arch-utils.h"
22 #include "gdbcore.h"
23 #include "osabi.h"
24 #include "frame.h"
25 #include "frame-unwind.h"
26 #include "trad-frame.h"
27 #include "symtab.h"
28 #include "objfiles.h"
29 #include "inferior.h"
30 #include "infcall.h"
31 #include "observer.h"
32 #include "hppa-tdep.h"
33 #include "solib-som.h"
34 #include "solib-pa64.h"
35 #include "regset.h"
36 #include "regcache.h"
37 #include "exceptions.h"
38
39 #include "gdb_string.h"
40
41 #define IS_32BIT_TARGET(_gdbarch) \
42 ((gdbarch_tdep (_gdbarch))->bytes_per_address == 4)
43
44 /* Bit in the `ss_flag' member of `struct save_state' that indicates
45 that the 64-bit register values are live. From
46 <machine/save_state.h>. */
47 #define HPPA_HPUX_SS_WIDEREGS 0x40
48
49 /* Offsets of various parts of `struct save_state'. From
50 <machine/save_state.h>. */
51 #define HPPA_HPUX_SS_FLAGS_OFFSET 0
52 #define HPPA_HPUX_SS_NARROW_OFFSET 4
53 #define HPPA_HPUX_SS_FPBLOCK_OFFSET 256
54 #define HPPA_HPUX_SS_WIDE_OFFSET 640
55
56 /* The size of `struct save_state. */
57 #define HPPA_HPUX_SAVE_STATE_SIZE 1152
58
59 /* The size of `struct pa89_save_state', which corresponds to PA-RISC
60 1.1, the lowest common denominator that we support. */
61 #define HPPA_HPUX_PA89_SAVE_STATE_SIZE 512
62
63
64 /* Forward declarations. */
65 extern void _initialize_hppa_hpux_tdep (void);
66 extern initialize_file_ftype _initialize_hppa_hpux_tdep;
67
68 static int
69 in_opd_section (CORE_ADDR pc)
70 {
71 struct obj_section *s;
72 int retval = 0;
73
74 s = find_pc_section (pc);
75
76 retval = (s != NULL
77 && s->the_bfd_section->name != NULL
78 && strcmp (s->the_bfd_section->name, ".opd") == 0);
79 return (retval);
80 }
81
82 /* Return one if PC is in the call path of a trampoline, else return zero.
83
84 Note we return one for *any* call trampoline (long-call, arg-reloc), not
85 just shared library trampolines (import, export). */
86
87 static int
88 hppa32_hpux_in_solib_call_trampoline (struct gdbarch *gdbarch,
89 CORE_ADDR pc, char *name)
90 {
91 enum bfd_endian byte_order = gdbarch_byte_order (gdbarch);
92 struct bound_minimal_symbol minsym;
93 struct unwind_table_entry *u;
94
95 /* First see if PC is in one of the two C-library trampolines. */
96 if (pc == hppa_symbol_address("$$dyncall")
97 || pc == hppa_symbol_address("_sr4export"))
98 return 1;
99
100 minsym = lookup_minimal_symbol_by_pc (pc);
101 if (minsym.minsym
102 && strcmp (SYMBOL_LINKAGE_NAME (minsym.minsym), ".stub") == 0)
103 return 1;
104
105 /* Get the unwind descriptor corresponding to PC, return zero
106 if no unwind was found. */
107 u = find_unwind_entry (pc);
108 if (!u)
109 return 0;
110
111 /* If this isn't a linker stub, then return now. */
112 if (u->stub_unwind.stub_type == 0)
113 return 0;
114
115 /* By definition a long-branch stub is a call stub. */
116 if (u->stub_unwind.stub_type == LONG_BRANCH)
117 return 1;
118
119 /* The call and return path execute the same instructions within
120 an IMPORT stub! So an IMPORT stub is both a call and return
121 trampoline. */
122 if (u->stub_unwind.stub_type == IMPORT)
123 return 1;
124
125 /* Parameter relocation stubs always have a call path and may have a
126 return path. */
127 if (u->stub_unwind.stub_type == PARAMETER_RELOCATION
128 || u->stub_unwind.stub_type == EXPORT)
129 {
130 CORE_ADDR addr;
131
132 /* Search forward from the current PC until we hit a branch
133 or the end of the stub. */
134 for (addr = pc; addr <= u->region_end; addr += 4)
135 {
136 unsigned long insn;
137
138 insn = read_memory_integer (addr, 4, byte_order);
139
140 /* Does it look like a bl? If so then it's the call path, if
141 we find a bv or be first, then we're on the return path. */
142 if ((insn & 0xfc00e000) == 0xe8000000)
143 return 1;
144 else if ((insn & 0xfc00e001) == 0xe800c000
145 || (insn & 0xfc000000) == 0xe0000000)
146 return 0;
147 }
148
149 /* Should never happen. */
150 warning (_("Unable to find branch in parameter relocation stub."));
151 return 0;
152 }
153
154 /* Unknown stub type. For now, just return zero. */
155 return 0;
156 }
157
158 static int
159 hppa64_hpux_in_solib_call_trampoline (struct gdbarch *gdbarch,
160 CORE_ADDR pc, char *name)
161 {
162 enum bfd_endian byte_order = gdbarch_byte_order (gdbarch);
163
164 /* PA64 has a completely different stub/trampoline scheme. Is it
165 better? Maybe. It's certainly harder to determine with any
166 certainty that we are in a stub because we can not refer to the
167 unwinders to help.
168
169 The heuristic is simple. Try to lookup the current PC value in th
170 minimal symbol table. If that fails, then assume we are not in a
171 stub and return.
172
173 Then see if the PC value falls within the section bounds for the
174 section containing the minimal symbol we found in the first
175 step. If it does, then assume we are not in a stub and return.
176
177 Finally peek at the instructions to see if they look like a stub. */
178 struct bound_minimal_symbol minsym;
179 asection *sec;
180 CORE_ADDR addr;
181 int insn;
182
183 minsym = lookup_minimal_symbol_by_pc (pc);
184 if (! minsym.minsym)
185 return 0;
186
187 sec = SYMBOL_OBJ_SECTION (minsym.objfile, minsym.minsym)->the_bfd_section;
188
189 if (bfd_get_section_vma (sec->owner, sec) <= pc
190 && pc < (bfd_get_section_vma (sec->owner, sec)
191 + bfd_section_size (sec->owner, sec)))
192 return 0;
193
194 /* We might be in a stub. Peek at the instructions. Stubs are 3
195 instructions long. */
196 insn = read_memory_integer (pc, 4, byte_order);
197
198 /* Find out where we think we are within the stub. */
199 if ((insn & 0xffffc00e) == 0x53610000)
200 addr = pc;
201 else if ((insn & 0xffffffff) == 0xe820d000)
202 addr = pc - 4;
203 else if ((insn & 0xffffc00e) == 0x537b0000)
204 addr = pc - 8;
205 else
206 return 0;
207
208 /* Now verify each insn in the range looks like a stub instruction. */
209 insn = read_memory_integer (addr, 4, byte_order);
210 if ((insn & 0xffffc00e) != 0x53610000)
211 return 0;
212
213 /* Now verify each insn in the range looks like a stub instruction. */
214 insn = read_memory_integer (addr + 4, 4, byte_order);
215 if ((insn & 0xffffffff) != 0xe820d000)
216 return 0;
217
218 /* Now verify each insn in the range looks like a stub instruction. */
219 insn = read_memory_integer (addr + 8, 4, byte_order);
220 if ((insn & 0xffffc00e) != 0x537b0000)
221 return 0;
222
223 /* Looks like a stub. */
224 return 1;
225 }
226
227 /* Return one if PC is in the return path of a trampoline, else return zero.
228
229 Note we return one for *any* call trampoline (long-call, arg-reloc), not
230 just shared library trampolines (import, export). */
231
232 static int
233 hppa_hpux_in_solib_return_trampoline (struct gdbarch *gdbarch,
234 CORE_ADDR pc, const char *name)
235 {
236 enum bfd_endian byte_order = gdbarch_byte_order (gdbarch);
237 struct unwind_table_entry *u;
238
239 /* Get the unwind descriptor corresponding to PC, return zero
240 if no unwind was found. */
241 u = find_unwind_entry (pc);
242 if (!u)
243 return 0;
244
245 /* If this isn't a linker stub or it's just a long branch stub, then
246 return zero. */
247 if (u->stub_unwind.stub_type == 0 || u->stub_unwind.stub_type == LONG_BRANCH)
248 return 0;
249
250 /* The call and return path execute the same instructions within
251 an IMPORT stub! So an IMPORT stub is both a call and return
252 trampoline. */
253 if (u->stub_unwind.stub_type == IMPORT)
254 return 1;
255
256 /* Parameter relocation stubs always have a call path and may have a
257 return path. */
258 if (u->stub_unwind.stub_type == PARAMETER_RELOCATION
259 || u->stub_unwind.stub_type == EXPORT)
260 {
261 CORE_ADDR addr;
262
263 /* Search forward from the current PC until we hit a branch
264 or the end of the stub. */
265 for (addr = pc; addr <= u->region_end; addr += 4)
266 {
267 unsigned long insn;
268
269 insn = read_memory_integer (addr, 4, byte_order);
270
271 /* Does it look like a bl? If so then it's the call path, if
272 we find a bv or be first, then we're on the return path. */
273 if ((insn & 0xfc00e000) == 0xe8000000)
274 return 0;
275 else if ((insn & 0xfc00e001) == 0xe800c000
276 || (insn & 0xfc000000) == 0xe0000000)
277 return 1;
278 }
279
280 /* Should never happen. */
281 warning (_("Unable to find branch in parameter relocation stub."));
282 return 0;
283 }
284
285 /* Unknown stub type. For now, just return zero. */
286 return 0;
287
288 }
289
290 /* Figure out if PC is in a trampoline, and if so find out where
291 the trampoline will jump to. If not in a trampoline, return zero.
292
293 Simple code examination probably is not a good idea since the code
294 sequences in trampolines can also appear in user code.
295
296 We use unwinds and information from the minimal symbol table to
297 determine when we're in a trampoline. This won't work for ELF
298 (yet) since it doesn't create stub unwind entries. Whether or
299 not ELF will create stub unwinds or normal unwinds for linker
300 stubs is still being debated.
301
302 This should handle simple calls through dyncall or sr4export,
303 long calls, argument relocation stubs, and dyncall/sr4export
304 calling an argument relocation stub. It even handles some stubs
305 used in dynamic executables. */
306
307 static CORE_ADDR
308 hppa_hpux_skip_trampoline_code (struct frame_info *frame, CORE_ADDR pc)
309 {
310 struct gdbarch *gdbarch = get_frame_arch (frame);
311 enum bfd_endian byte_order = gdbarch_byte_order (gdbarch);
312 int word_size = gdbarch_ptr_bit (gdbarch) / 8;
313 long orig_pc = pc;
314 long prev_inst, curr_inst, loc;
315 struct bound_minimal_symbol msym;
316 struct unwind_table_entry *u;
317
318 /* Addresses passed to dyncall may *NOT* be the actual address
319 of the function. So we may have to do something special. */
320 if (pc == hppa_symbol_address("$$dyncall"))
321 {
322 pc = (CORE_ADDR) get_frame_register_unsigned (frame, 22);
323
324 /* If bit 30 (counting from the left) is on, then pc is the address of
325 the PLT entry for this function, not the address of the function
326 itself. Bit 31 has meaning too, but only for MPE. */
327 if (pc & 0x2)
328 pc = (CORE_ADDR) read_memory_integer (pc & ~0x3, word_size,
329 byte_order);
330 }
331 if (pc == hppa_symbol_address("$$dyncall_external"))
332 {
333 pc = (CORE_ADDR) get_frame_register_unsigned (frame, 22);
334 pc = (CORE_ADDR) read_memory_integer (pc & ~0x3, word_size, byte_order);
335 }
336 else if (pc == hppa_symbol_address("_sr4export"))
337 pc = (CORE_ADDR) get_frame_register_unsigned (frame, 22);
338
339 /* Get the unwind descriptor corresponding to PC, return zero
340 if no unwind was found. */
341 u = find_unwind_entry (pc);
342 if (!u)
343 return 0;
344
345 /* If this isn't a linker stub, then return now. */
346 /* elz: attention here! (FIXME) because of a compiler/linker
347 error, some stubs which should have a non zero stub_unwind.stub_type
348 have unfortunately a value of zero. So this function would return here
349 as if we were not in a trampoline. To fix this, we go look at the partial
350 symbol information, which reports this guy as a stub.
351 (FIXME): Unfortunately, we are not that lucky: it turns out that the
352 partial symbol information is also wrong sometimes. This is because
353 when it is entered (somread.c::som_symtab_read()) it can happen that
354 if the type of the symbol (from the som) is Entry, and the symbol is
355 in a shared library, then it can also be a trampoline. This would be OK,
356 except that I believe the way they decide if we are ina shared library
357 does not work. SOOOO..., even if we have a regular function w/o
358 trampolines its minimal symbol can be assigned type mst_solib_trampoline.
359 Also, if we find that the symbol is a real stub, then we fix the unwind
360 descriptor, and define the stub type to be EXPORT.
361 Hopefully this is correct most of the times. */
362 if (u->stub_unwind.stub_type == 0)
363 {
364
365 /* elz: NOTE (FIXME!) once the problem with the unwind information is fixed
366 we can delete all the code which appears between the lines. */
367 /*--------------------------------------------------------------------------*/
368 msym = lookup_minimal_symbol_by_pc (pc);
369
370 if (msym.minsym == NULL
371 || MSYMBOL_TYPE (msym.minsym) != mst_solib_trampoline)
372 return orig_pc == pc ? 0 : pc & ~0x3;
373
374 else if (msym.minsym != NULL
375 && MSYMBOL_TYPE (msym.minsym) == mst_solib_trampoline)
376 {
377 struct objfile *objfile;
378 struct minimal_symbol *msymbol;
379 int function_found = 0;
380
381 /* Go look if there is another minimal symbol with the same name as
382 this one, but with type mst_text. This would happen if the msym
383 is an actual trampoline, in which case there would be another
384 symbol with the same name corresponding to the real function. */
385
386 ALL_MSYMBOLS (objfile, msymbol)
387 {
388 if (MSYMBOL_TYPE (msymbol) == mst_text
389 && strcmp (SYMBOL_LINKAGE_NAME (msymbol),
390 SYMBOL_LINKAGE_NAME (msym.minsym)) == 0)
391 {
392 function_found = 1;
393 break;
394 }
395 }
396
397 if (function_found)
398 /* The type of msym is correct (mst_solib_trampoline), but
399 the unwind info is wrong, so set it to the correct value. */
400 u->stub_unwind.stub_type = EXPORT;
401 else
402 /* The stub type info in the unwind is correct (this is not a
403 trampoline), but the msym type information is wrong, it
404 should be mst_text. So we need to fix the msym, and also
405 get out of this function. */
406 {
407 MSYMBOL_TYPE (msym.minsym) = mst_text;
408 return orig_pc == pc ? 0 : pc & ~0x3;
409 }
410 }
411
412 /*--------------------------------------------------------------------------*/
413 }
414
415 /* It's a stub. Search for a branch and figure out where it goes.
416 Note we have to handle multi insn branch sequences like ldil;ble.
417 Most (all?) other branches can be determined by examining the contents
418 of certain registers and the stack. */
419
420 loc = pc;
421 curr_inst = 0;
422 prev_inst = 0;
423 while (1)
424 {
425 /* Make sure we haven't walked outside the range of this stub. */
426 if (u != find_unwind_entry (loc))
427 {
428 warning (_("Unable to find branch in linker stub"));
429 return orig_pc == pc ? 0 : pc & ~0x3;
430 }
431
432 prev_inst = curr_inst;
433 curr_inst = read_memory_integer (loc, 4, byte_order);
434
435 /* Does it look like a branch external using %r1? Then it's the
436 branch from the stub to the actual function. */
437 if ((curr_inst & 0xffe0e000) == 0xe0202000)
438 {
439 /* Yup. See if the previous instruction loaded
440 a value into %r1. If so compute and return the jump address. */
441 if ((prev_inst & 0xffe00000) == 0x20200000)
442 return (hppa_extract_21 (prev_inst)
443 + hppa_extract_17 (curr_inst)) & ~0x3;
444 else
445 {
446 warning (_("Unable to find ldil X,%%r1 "
447 "before ble Y(%%sr4,%%r1)."));
448 return orig_pc == pc ? 0 : pc & ~0x3;
449 }
450 }
451
452 /* Does it look like a be 0(sr0,%r21)? OR
453 Does it look like a be, n 0(sr0,%r21)? OR
454 Does it look like a bve (r21)? (this is on PA2.0)
455 Does it look like a bve, n(r21)? (this is also on PA2.0)
456 That's the branch from an
457 import stub to an export stub.
458
459 It is impossible to determine the target of the branch via
460 simple examination of instructions and/or data (consider
461 that the address in the plabel may be the address of the
462 bind-on-reference routine in the dynamic loader).
463
464 So we have try an alternative approach.
465
466 Get the name of the symbol at our current location; it should
467 be a stub symbol with the same name as the symbol in the
468 shared library.
469
470 Then lookup a minimal symbol with the same name; we should
471 get the minimal symbol for the target routine in the shared
472 library as those take precedence of import/export stubs. */
473 if ((curr_inst == 0xe2a00000) ||
474 (curr_inst == 0xe2a00002) ||
475 (curr_inst == 0xeaa0d000) ||
476 (curr_inst == 0xeaa0d002))
477 {
478 struct bound_minimal_symbol stubsym;
479 struct minimal_symbol *libsym;
480
481 stubsym = lookup_minimal_symbol_by_pc (loc);
482 if (stubsym.minsym == NULL)
483 {
484 warning (_("Unable to find symbol for 0x%lx"), loc);
485 return orig_pc == pc ? 0 : pc & ~0x3;
486 }
487
488 libsym = lookup_minimal_symbol (SYMBOL_LINKAGE_NAME (stubsym.minsym),
489 NULL, NULL);
490 if (libsym == NULL)
491 {
492 warning (_("Unable to find library symbol for %s."),
493 SYMBOL_PRINT_NAME (stubsym.minsym));
494 return orig_pc == pc ? 0 : pc & ~0x3;
495 }
496
497 return SYMBOL_VALUE (libsym);
498 }
499
500 /* Does it look like bl X,%rp or bl X,%r0? Another way to do a
501 branch from the stub to the actual function. */
502 /*elz */
503 else if ((curr_inst & 0xffe0e000) == 0xe8400000
504 || (curr_inst & 0xffe0e000) == 0xe8000000
505 || (curr_inst & 0xffe0e000) == 0xe800A000)
506 return (loc + hppa_extract_17 (curr_inst) + 8) & ~0x3;
507
508 /* Does it look like bv (rp)? Note this depends on the
509 current stack pointer being the same as the stack
510 pointer in the stub itself! This is a branch on from the
511 stub back to the original caller. */
512 /*else if ((curr_inst & 0xffe0e000) == 0xe840c000) */
513 else if ((curr_inst & 0xffe0f000) == 0xe840c000)
514 {
515 /* Yup. See if the previous instruction loaded
516 rp from sp - 8. */
517 if (prev_inst == 0x4bc23ff1)
518 {
519 CORE_ADDR sp;
520 sp = get_frame_register_unsigned (frame, HPPA_SP_REGNUM);
521 return read_memory_integer (sp - 8, 4, byte_order) & ~0x3;
522 }
523 else
524 {
525 warning (_("Unable to find restore of %%rp before bv (%%rp)."));
526 return orig_pc == pc ? 0 : pc & ~0x3;
527 }
528 }
529
530 /* elz: added this case to capture the new instruction
531 at the end of the return part of an export stub used by
532 the PA2.0: BVE, n (rp) */
533 else if ((curr_inst & 0xffe0f000) == 0xe840d000)
534 {
535 return (read_memory_integer
536 (get_frame_register_unsigned (frame, HPPA_SP_REGNUM) - 24,
537 word_size, byte_order)) & ~0x3;
538 }
539
540 /* What about be,n 0(sr0,%rp)? It's just another way we return to
541 the original caller from the stub. Used in dynamic executables. */
542 else if (curr_inst == 0xe0400002)
543 {
544 /* The value we jump to is sitting in sp - 24. But that's
545 loaded several instructions before the be instruction.
546 I guess we could check for the previous instruction being
547 mtsp %r1,%sr0 if we want to do sanity checking. */
548 return (read_memory_integer
549 (get_frame_register_unsigned (frame, HPPA_SP_REGNUM) - 24,
550 word_size, byte_order)) & ~0x3;
551 }
552
553 /* Haven't found the branch yet, but we're still in the stub.
554 Keep looking. */
555 loc += 4;
556 }
557 }
558
559 static void
560 hppa_skip_permanent_breakpoint (struct regcache *regcache)
561 {
562 /* To step over a breakpoint instruction on the PA takes some
563 fiddling with the instruction address queue.
564
565 When we stop at a breakpoint, the IA queue front (the instruction
566 we're executing now) points at the breakpoint instruction, and
567 the IA queue back (the next instruction to execute) points to
568 whatever instruction we would execute after the breakpoint, if it
569 were an ordinary instruction. This is the case even if the
570 breakpoint is in the delay slot of a branch instruction.
571
572 Clearly, to step past the breakpoint, we need to set the queue
573 front to the back. But what do we put in the back? What
574 instruction comes after that one? Because of the branch delay
575 slot, the next insn is always at the back + 4. */
576
577 ULONGEST pcoq_tail, pcsq_tail;
578 regcache_cooked_read_unsigned (regcache, HPPA_PCOQ_TAIL_REGNUM, &pcoq_tail);
579 regcache_cooked_read_unsigned (regcache, HPPA_PCSQ_TAIL_REGNUM, &pcsq_tail);
580
581 regcache_cooked_write_unsigned (regcache, HPPA_PCOQ_HEAD_REGNUM, pcoq_tail);
582 regcache_cooked_write_unsigned (regcache, HPPA_PCSQ_HEAD_REGNUM, pcsq_tail);
583
584 regcache_cooked_write_unsigned (regcache,
585 HPPA_PCOQ_TAIL_REGNUM, pcoq_tail + 4);
586 /* We can leave the tail's space the same, since there's no jump. */
587 }
588
589
590 /* Signal frames. */
591 struct hppa_hpux_sigtramp_unwind_cache
592 {
593 CORE_ADDR base;
594 struct trad_frame_saved_reg *saved_regs;
595 };
596
597 static int hppa_hpux_tramp_reg[] = {
598 HPPA_SAR_REGNUM,
599 HPPA_PCOQ_HEAD_REGNUM,
600 HPPA_PCSQ_HEAD_REGNUM,
601 HPPA_PCOQ_TAIL_REGNUM,
602 HPPA_PCSQ_TAIL_REGNUM,
603 HPPA_EIEM_REGNUM,
604 HPPA_IIR_REGNUM,
605 HPPA_ISR_REGNUM,
606 HPPA_IOR_REGNUM,
607 HPPA_IPSW_REGNUM,
608 -1,
609 HPPA_SR4_REGNUM,
610 HPPA_SR4_REGNUM + 1,
611 HPPA_SR4_REGNUM + 2,
612 HPPA_SR4_REGNUM + 3,
613 HPPA_SR4_REGNUM + 4,
614 HPPA_SR4_REGNUM + 5,
615 HPPA_SR4_REGNUM + 6,
616 HPPA_SR4_REGNUM + 7,
617 HPPA_RCR_REGNUM,
618 HPPA_PID0_REGNUM,
619 HPPA_PID1_REGNUM,
620 HPPA_CCR_REGNUM,
621 HPPA_PID2_REGNUM,
622 HPPA_PID3_REGNUM,
623 HPPA_TR0_REGNUM,
624 HPPA_TR0_REGNUM + 1,
625 HPPA_TR0_REGNUM + 2,
626 HPPA_CR27_REGNUM
627 };
628
629 static struct hppa_hpux_sigtramp_unwind_cache *
630 hppa_hpux_sigtramp_frame_unwind_cache (struct frame_info *this_frame,
631 void **this_cache)
632
633 {
634 struct gdbarch *gdbarch = get_frame_arch (this_frame);
635 struct gdbarch_tdep *tdep = gdbarch_tdep (gdbarch);
636 enum bfd_endian byte_order = gdbarch_byte_order (gdbarch);
637 struct hppa_hpux_sigtramp_unwind_cache *info;
638 unsigned int flag;
639 CORE_ADDR sp, scptr, off;
640 int i, incr, szoff;
641
642 if (*this_cache)
643 return *this_cache;
644
645 info = FRAME_OBSTACK_ZALLOC (struct hppa_hpux_sigtramp_unwind_cache);
646 *this_cache = info;
647 info->saved_regs = trad_frame_alloc_saved_regs (this_frame);
648
649 sp = get_frame_register_unsigned (this_frame, HPPA_SP_REGNUM);
650
651 if (IS_32BIT_TARGET (gdbarch))
652 scptr = sp - 1352;
653 else
654 scptr = sp - 1520;
655
656 off = scptr;
657
658 /* See /usr/include/machine/save_state.h for the structure of the
659 save_state_t structure. */
660
661 flag = read_memory_unsigned_integer (scptr + HPPA_HPUX_SS_FLAGS_OFFSET,
662 4, byte_order);
663
664 if (!(flag & HPPA_HPUX_SS_WIDEREGS))
665 {
666 /* Narrow registers. */
667 off = scptr + HPPA_HPUX_SS_NARROW_OFFSET;
668 incr = 4;
669 szoff = 0;
670 }
671 else
672 {
673 /* Wide registers. */
674 off = scptr + HPPA_HPUX_SS_WIDE_OFFSET + 8;
675 incr = 8;
676 szoff = (tdep->bytes_per_address == 4 ? 4 : 0);
677 }
678
679 for (i = 1; i < 32; i++)
680 {
681 info->saved_regs[HPPA_R0_REGNUM + i].addr = off + szoff;
682 off += incr;
683 }
684
685 for (i = 0; i < ARRAY_SIZE (hppa_hpux_tramp_reg); i++)
686 {
687 if (hppa_hpux_tramp_reg[i] > 0)
688 info->saved_regs[hppa_hpux_tramp_reg[i]].addr = off + szoff;
689
690 off += incr;
691 }
692
693 /* TODO: fp regs */
694
695 info->base = get_frame_register_unsigned (this_frame, HPPA_SP_REGNUM);
696
697 return info;
698 }
699
700 static void
701 hppa_hpux_sigtramp_frame_this_id (struct frame_info *this_frame,
702 void **this_prologue_cache,
703 struct frame_id *this_id)
704 {
705 struct hppa_hpux_sigtramp_unwind_cache *info
706 = hppa_hpux_sigtramp_frame_unwind_cache (this_frame, this_prologue_cache);
707
708 *this_id = frame_id_build (info->base, get_frame_pc (this_frame));
709 }
710
711 static struct value *
712 hppa_hpux_sigtramp_frame_prev_register (struct frame_info *this_frame,
713 void **this_prologue_cache,
714 int regnum)
715 {
716 struct hppa_hpux_sigtramp_unwind_cache *info
717 = hppa_hpux_sigtramp_frame_unwind_cache (this_frame, this_prologue_cache);
718
719 return hppa_frame_prev_register_helper (this_frame,
720 info->saved_regs, regnum);
721 }
722
723 static int
724 hppa_hpux_sigtramp_unwind_sniffer (const struct frame_unwind *self,
725 struct frame_info *this_frame,
726 void **this_cache)
727 {
728 struct gdbarch *gdbarch = get_frame_arch (this_frame);
729 enum bfd_endian byte_order = gdbarch_byte_order (gdbarch);
730 struct unwind_table_entry *u;
731 CORE_ADDR pc = get_frame_pc (this_frame);
732
733 u = find_unwind_entry (pc);
734
735 /* If this is an export stub, try to get the unwind descriptor for
736 the actual function itself. */
737 if (u && u->stub_unwind.stub_type == EXPORT)
738 {
739 gdb_byte buf[HPPA_INSN_SIZE];
740 unsigned long insn;
741
742 if (!safe_frame_unwind_memory (this_frame, u->region_start,
743 buf, sizeof buf))
744 return 0;
745
746 insn = extract_unsigned_integer (buf, sizeof buf, byte_order);
747 if ((insn & 0xffe0e000) == 0xe8400000)
748 u = find_unwind_entry(u->region_start + hppa_extract_17 (insn) + 8);
749 }
750
751 if (u && u->HP_UX_interrupt_marker)
752 return 1;
753
754 return 0;
755 }
756
757 static const struct frame_unwind hppa_hpux_sigtramp_frame_unwind = {
758 SIGTRAMP_FRAME,
759 default_frame_unwind_stop_reason,
760 hppa_hpux_sigtramp_frame_this_id,
761 hppa_hpux_sigtramp_frame_prev_register,
762 NULL,
763 hppa_hpux_sigtramp_unwind_sniffer
764 };
765
766 static CORE_ADDR
767 hppa32_hpux_find_global_pointer (struct gdbarch *gdbarch,
768 struct value *function)
769 {
770 enum bfd_endian byte_order = gdbarch_byte_order (gdbarch);
771 CORE_ADDR faddr;
772
773 faddr = value_as_address (function);
774
775 /* Is this a plabel? If so, dereference it to get the gp value. */
776 if (faddr & 2)
777 {
778 int status;
779 gdb_byte buf[4];
780
781 faddr &= ~3;
782
783 status = target_read_memory (faddr + 4, buf, sizeof (buf));
784 if (status == 0)
785 return extract_unsigned_integer (buf, sizeof (buf), byte_order);
786 }
787
788 return gdbarch_tdep (gdbarch)->solib_get_got_by_pc (faddr);
789 }
790
791 static CORE_ADDR
792 hppa64_hpux_find_global_pointer (struct gdbarch *gdbarch,
793 struct value *function)
794 {
795 enum bfd_endian byte_order = gdbarch_byte_order (gdbarch);
796 CORE_ADDR faddr;
797 gdb_byte buf[32];
798
799 faddr = value_as_address (function);
800
801 if (in_opd_section (faddr))
802 {
803 target_read_memory (faddr, buf, sizeof (buf));
804 return extract_unsigned_integer (&buf[24], 8, byte_order);
805 }
806 else
807 {
808 return gdbarch_tdep (gdbarch)->solib_get_got_by_pc (faddr);
809 }
810 }
811
812 static unsigned int ldsid_pattern[] = {
813 0x000010a0, /* ldsid (rX),rY */
814 0x00001820, /* mtsp rY,sr0 */
815 0xe0000000 /* be,n (sr0,rX) */
816 };
817
818 static CORE_ADDR
819 hppa_hpux_search_pattern (struct gdbarch *gdbarch,
820 CORE_ADDR start, CORE_ADDR end,
821 unsigned int *patterns, int count)
822 {
823 enum bfd_endian byte_order = gdbarch_byte_order (gdbarch);
824 int num_insns = (end - start + HPPA_INSN_SIZE) / HPPA_INSN_SIZE;
825 unsigned int *insns;
826 gdb_byte *buf;
827 int offset, i;
828
829 buf = alloca (num_insns * HPPA_INSN_SIZE);
830 insns = alloca (num_insns * sizeof (unsigned int));
831
832 read_memory (start, buf, num_insns * HPPA_INSN_SIZE);
833 for (i = 0; i < num_insns; i++, buf += HPPA_INSN_SIZE)
834 insns[i] = extract_unsigned_integer (buf, HPPA_INSN_SIZE, byte_order);
835
836 for (offset = 0; offset <= num_insns - count; offset++)
837 {
838 for (i = 0; i < count; i++)
839 {
840 if ((insns[offset + i] & patterns[i]) != patterns[i])
841 break;
842 }
843 if (i == count)
844 break;
845 }
846
847 if (offset <= num_insns - count)
848 return start + offset * HPPA_INSN_SIZE;
849 else
850 return 0;
851 }
852
853 static CORE_ADDR
854 hppa32_hpux_search_dummy_call_sequence (struct gdbarch *gdbarch, CORE_ADDR pc,
855 int *argreg)
856 {
857 enum bfd_endian byte_order = gdbarch_byte_order (gdbarch);
858 struct objfile *obj;
859 struct obj_section *sec;
860 struct hppa_objfile_private *priv;
861 struct frame_info *frame;
862 struct unwind_table_entry *u;
863 CORE_ADDR addr, rp;
864 gdb_byte buf[4];
865 unsigned int insn;
866
867 sec = find_pc_section (pc);
868 obj = sec->objfile;
869 priv = objfile_data (obj, hppa_objfile_priv_data);
870
871 if (!priv)
872 priv = hppa_init_objfile_priv_data (obj);
873 if (!priv)
874 error (_("Internal error creating objfile private data."));
875
876 /* Use the cached value if we have one. */
877 if (priv->dummy_call_sequence_addr != 0)
878 {
879 *argreg = priv->dummy_call_sequence_reg;
880 return priv->dummy_call_sequence_addr;
881 }
882
883 /* First try a heuristic; if we are in a shared library call, our return
884 pointer is likely to point at an export stub. */
885 frame = get_current_frame ();
886 rp = frame_unwind_register_unsigned (frame, 2);
887 u = find_unwind_entry (rp);
888 if (u && u->stub_unwind.stub_type == EXPORT)
889 {
890 addr = hppa_hpux_search_pattern (gdbarch,
891 u->region_start, u->region_end,
892 ldsid_pattern,
893 ARRAY_SIZE (ldsid_pattern));
894 if (addr)
895 goto found_pattern;
896 }
897
898 /* Next thing to try is to look for an export stub. */
899 if (priv->unwind_info)
900 {
901 int i;
902
903 for (i = 0; i < priv->unwind_info->last; i++)
904 {
905 struct unwind_table_entry *u;
906 u = &priv->unwind_info->table[i];
907 if (u->stub_unwind.stub_type == EXPORT)
908 {
909 addr = hppa_hpux_search_pattern (gdbarch,
910 u->region_start, u->region_end,
911 ldsid_pattern,
912 ARRAY_SIZE (ldsid_pattern));
913 if (addr)
914 {
915 goto found_pattern;
916 }
917 }
918 }
919 }
920
921 /* Finally, if this is the main executable, try to locate a sequence
922 from noshlibs */
923 addr = hppa_symbol_address ("noshlibs");
924 sec = find_pc_section (addr);
925
926 if (sec && sec->objfile == obj)
927 {
928 CORE_ADDR start, end;
929
930 find_pc_partial_function (addr, NULL, &start, &end);
931 if (start != 0 && end != 0)
932 {
933 addr = hppa_hpux_search_pattern (gdbarch, start, end, ldsid_pattern,
934 ARRAY_SIZE (ldsid_pattern));
935 if (addr)
936 goto found_pattern;
937 }
938 }
939
940 /* Can't find a suitable sequence. */
941 return 0;
942
943 found_pattern:
944 target_read_memory (addr, buf, sizeof (buf));
945 insn = extract_unsigned_integer (buf, sizeof (buf), byte_order);
946 priv->dummy_call_sequence_addr = addr;
947 priv->dummy_call_sequence_reg = (insn >> 21) & 0x1f;
948
949 *argreg = priv->dummy_call_sequence_reg;
950 return priv->dummy_call_sequence_addr;
951 }
952
953 static CORE_ADDR
954 hppa64_hpux_search_dummy_call_sequence (struct gdbarch *gdbarch, CORE_ADDR pc,
955 int *argreg)
956 {
957 enum bfd_endian byte_order = gdbarch_byte_order (gdbarch);
958 struct objfile *obj;
959 struct obj_section *sec;
960 struct hppa_objfile_private *priv;
961 CORE_ADDR addr;
962 struct minimal_symbol *msym;
963
964 sec = find_pc_section (pc);
965 obj = sec->objfile;
966 priv = objfile_data (obj, hppa_objfile_priv_data);
967
968 if (!priv)
969 priv = hppa_init_objfile_priv_data (obj);
970 if (!priv)
971 error (_("Internal error creating objfile private data."));
972
973 /* Use the cached value if we have one. */
974 if (priv->dummy_call_sequence_addr != 0)
975 {
976 *argreg = priv->dummy_call_sequence_reg;
977 return priv->dummy_call_sequence_addr;
978 }
979
980 /* FIXME: Without stub unwind information, locating a suitable sequence is
981 fairly difficult. For now, we implement a very naive and inefficient
982 scheme; try to read in blocks of code, and look for a "bve,n (rp)"
983 instruction. These are likely to occur at the end of functions, so
984 we only look at the last two instructions of each function. */
985 ALL_OBJFILE_MSYMBOLS (obj, msym)
986 {
987 CORE_ADDR begin, end;
988 const char *name;
989 gdb_byte buf[2 * HPPA_INSN_SIZE];
990 int offset;
991
992 find_pc_partial_function (SYMBOL_VALUE_ADDRESS (msym), &name,
993 &begin, &end);
994
995 if (name == NULL || begin == 0 || end == 0)
996 continue;
997
998 if (target_read_memory (end - sizeof (buf), buf, sizeof (buf)) == 0)
999 {
1000 for (offset = 0; offset < sizeof (buf); offset++)
1001 {
1002 unsigned int insn;
1003
1004 insn = extract_unsigned_integer (buf + offset,
1005 HPPA_INSN_SIZE, byte_order);
1006 if (insn == 0xe840d002) /* bve,n (rp) */
1007 {
1008 addr = (end - sizeof (buf)) + offset;
1009 goto found_pattern;
1010 }
1011 }
1012 }
1013 }
1014
1015 /* Can't find a suitable sequence. */
1016 return 0;
1017
1018 found_pattern:
1019 priv->dummy_call_sequence_addr = addr;
1020 /* Right now we only look for a "bve,l (rp)" sequence, so the register is
1021 always HPPA_RP_REGNUM. */
1022 priv->dummy_call_sequence_reg = HPPA_RP_REGNUM;
1023
1024 *argreg = priv->dummy_call_sequence_reg;
1025 return priv->dummy_call_sequence_addr;
1026 }
1027
1028 static CORE_ADDR
1029 hppa_hpux_find_import_stub_for_addr (CORE_ADDR funcaddr)
1030 {
1031 struct objfile *objfile;
1032 struct bound_minimal_symbol funsym;
1033 struct minimal_symbol *stubsym;
1034 CORE_ADDR stubaddr;
1035
1036 funsym = lookup_minimal_symbol_by_pc (funcaddr);
1037 stubaddr = 0;
1038
1039 ALL_OBJFILES (objfile)
1040 {
1041 stubsym = lookup_minimal_symbol_solib_trampoline
1042 (SYMBOL_LINKAGE_NAME (funsym.minsym), objfile);
1043
1044 if (stubsym)
1045 {
1046 struct unwind_table_entry *u;
1047
1048 u = find_unwind_entry (SYMBOL_VALUE (stubsym));
1049 if (u == NULL
1050 || (u->stub_unwind.stub_type != IMPORT
1051 && u->stub_unwind.stub_type != IMPORT_SHLIB))
1052 continue;
1053
1054 stubaddr = SYMBOL_VALUE (stubsym);
1055
1056 /* If we found an IMPORT stub, then we can stop searching;
1057 if we found an IMPORT_SHLIB, we want to continue the search
1058 in the hopes that we will find an IMPORT stub. */
1059 if (u->stub_unwind.stub_type == IMPORT)
1060 break;
1061 }
1062 }
1063
1064 return stubaddr;
1065 }
1066
1067 static int
1068 hppa_hpux_sr_for_addr (struct gdbarch *gdbarch, CORE_ADDR addr)
1069 {
1070 int sr;
1071 /* The space register to use is encoded in the top 2 bits of the address. */
1072 sr = addr >> (gdbarch_tdep (gdbarch)->bytes_per_address * 8 - 2);
1073 return sr + 4;
1074 }
1075
1076 static CORE_ADDR
1077 hppa_hpux_find_dummy_bpaddr (CORE_ADDR addr)
1078 {
1079 /* In order for us to restore the space register to its starting state,
1080 we need the dummy trampoline to return to an instruction address in
1081 the same space as where we started the call. We used to place the
1082 breakpoint near the current pc, however, this breaks nested dummy calls
1083 as the nested call will hit the breakpoint address and terminate
1084 prematurely. Instead, we try to look for an address in the same space to
1085 put the breakpoint.
1086
1087 This is similar in spirit to putting the breakpoint at the "entry point"
1088 of an executable. */
1089
1090 struct obj_section *sec;
1091 struct unwind_table_entry *u;
1092 struct minimal_symbol *msym;
1093 CORE_ADDR func;
1094
1095 sec = find_pc_section (addr);
1096 if (sec)
1097 {
1098 /* First try the lowest address in the section; we can use it as long
1099 as it is "regular" code (i.e. not a stub). */
1100 u = find_unwind_entry (obj_section_addr (sec));
1101 if (!u || u->stub_unwind.stub_type == 0)
1102 return obj_section_addr (sec);
1103
1104 /* Otherwise, we need to find a symbol for a regular function. We
1105 do this by walking the list of msymbols in the objfile. The symbol
1106 we find should not be the same as the function that was passed in. */
1107
1108 /* FIXME: this is broken, because we can find a function that will be
1109 called by the dummy call target function, which will still not
1110 work. */
1111
1112 find_pc_partial_function (addr, NULL, &func, NULL);
1113 ALL_OBJFILE_MSYMBOLS (sec->objfile, msym)
1114 {
1115 u = find_unwind_entry (SYMBOL_VALUE_ADDRESS (msym));
1116 if (func != SYMBOL_VALUE_ADDRESS (msym)
1117 && (!u || u->stub_unwind.stub_type == 0))
1118 return SYMBOL_VALUE_ADDRESS (msym);
1119 }
1120 }
1121
1122 warning (_("Cannot find suitable address to place dummy breakpoint; nested "
1123 "calls may fail."));
1124 return addr - 4;
1125 }
1126
1127 static CORE_ADDR
1128 hppa_hpux_push_dummy_code (struct gdbarch *gdbarch, CORE_ADDR sp,
1129 CORE_ADDR funcaddr,
1130 struct value **args, int nargs,
1131 struct type *value_type,
1132 CORE_ADDR *real_pc, CORE_ADDR *bp_addr,
1133 struct regcache *regcache)
1134 {
1135 CORE_ADDR pc, stubaddr;
1136 int argreg = 0;
1137
1138 pc = regcache_read_pc (regcache);
1139
1140 /* Note: we don't want to pass a function descriptor here; push_dummy_call
1141 fills in the PIC register for us. */
1142 funcaddr = gdbarch_convert_from_func_ptr_addr (gdbarch, funcaddr, NULL);
1143
1144 /* The simple case is where we call a function in the same space that we are
1145 currently in; in that case we don't really need to do anything. */
1146 if (hppa_hpux_sr_for_addr (gdbarch, pc)
1147 == hppa_hpux_sr_for_addr (gdbarch, funcaddr))
1148 {
1149 /* Intraspace call. */
1150 *bp_addr = hppa_hpux_find_dummy_bpaddr (pc);
1151 *real_pc = funcaddr;
1152 regcache_cooked_write_unsigned (regcache, HPPA_RP_REGNUM, *bp_addr);
1153
1154 return sp;
1155 }
1156
1157 /* In order to make an interspace call, we need to go through a stub.
1158 gcc supplies an appropriate stub called "__gcc_plt_call", however, if
1159 an application is compiled with HP compilers then this stub is not
1160 available. We used to fallback to "__d_plt_call", however that stub
1161 is not entirely useful for us because it doesn't do an interspace
1162 return back to the caller. Also, on hppa64-hpux, there is no
1163 __gcc_plt_call available. In order to keep the code uniform, we
1164 instead don't use either of these stubs, but instead write our own
1165 onto the stack.
1166
1167 A problem arises since the stack is located in a different space than
1168 code, so in order to branch to a stack stub, we will need to do an
1169 interspace branch. Previous versions of gdb did this by modifying code
1170 at the current pc and doing single-stepping to set the pcsq. Since this
1171 is highly undesirable, we use a different scheme:
1172
1173 All we really need to do the branch to the stub is a short instruction
1174 sequence like this:
1175
1176 PA1.1:
1177 ldsid (rX),r1
1178 mtsp r1,sr0
1179 be,n (sr0,rX)
1180
1181 PA2.0:
1182 bve,n (sr0,rX)
1183
1184 Instead of writing these sequences ourselves, we can find it in
1185 the instruction stream that belongs to the current space. While this
1186 seems difficult at first, we are actually guaranteed to find the sequences
1187 in several places:
1188
1189 For 32-bit code:
1190 - in export stubs for shared libraries
1191 - in the "noshlibs" routine in the main module
1192
1193 For 64-bit code:
1194 - at the end of each "regular" function
1195
1196 We cache the address of these sequences in the objfile's private data
1197 since these operations can potentially be quite expensive.
1198
1199 So, what we do is:
1200 - write a stack trampoline
1201 - look for a suitable instruction sequence in the current space
1202 - point the sequence at the trampoline
1203 - set the return address of the trampoline to the current space
1204 (see hppa_hpux_find_dummy_call_bpaddr)
1205 - set the continuing address of the "dummy code" as the sequence. */
1206
1207 if (IS_32BIT_TARGET (gdbarch))
1208 {
1209 #define INSN(I1, I2, I3, I4) 0x ## I1, 0x ## I2, 0x ## I3, 0x ## I4
1210 static const gdb_byte hppa32_tramp[] = {
1211 INSN(0f,df,12,91), /* stw r31,-8(,sp) */
1212 INSN(02,c0,10,a1), /* ldsid (,r22),r1 */
1213 INSN(00,01,18,20), /* mtsp r1,sr0 */
1214 INSN(e6,c0,00,00), /* be,l 0(sr0,r22),%sr0,%r31 */
1215 INSN(08,1f,02,42), /* copy r31,rp */
1216 INSN(0f,d1,10,82), /* ldw -8(,sp),rp */
1217 INSN(00,40,10,a1), /* ldsid (,rp),r1 */
1218 INSN(00,01,18,20), /* mtsp r1,sr0 */
1219 INSN(e0,40,00,00), /* be 0(sr0,rp) */
1220 INSN(08,00,02,40) /* nop */
1221 };
1222
1223 /* for hppa32, we must call the function through a stub so that on
1224 return it can return to the space of our trampoline. */
1225 stubaddr = hppa_hpux_find_import_stub_for_addr (funcaddr);
1226 if (stubaddr == 0)
1227 error (_("Cannot call external function not referenced by application "
1228 "(no import stub).\n"));
1229 regcache_cooked_write_unsigned (regcache, 22, stubaddr);
1230
1231 write_memory (sp, hppa32_tramp, sizeof (hppa32_tramp));
1232
1233 *bp_addr = hppa_hpux_find_dummy_bpaddr (pc);
1234 regcache_cooked_write_unsigned (regcache, 31, *bp_addr);
1235
1236 *real_pc = hppa32_hpux_search_dummy_call_sequence (gdbarch, pc, &argreg);
1237 if (*real_pc == 0)
1238 error (_("Cannot make interspace call from here."));
1239
1240 regcache_cooked_write_unsigned (regcache, argreg, sp);
1241
1242 sp += sizeof (hppa32_tramp);
1243 }
1244 else
1245 {
1246 static const gdb_byte hppa64_tramp[] = {
1247 INSN(ea,c0,f0,00), /* bve,l (r22),%r2 */
1248 INSN(0f,df,12,d1), /* std r31,-8(,sp) */
1249 INSN(0f,d1,10,c2), /* ldd -8(,sp),rp */
1250 INSN(e8,40,d0,02), /* bve,n (rp) */
1251 INSN(08,00,02,40) /* nop */
1252 };
1253 #undef INSN
1254
1255 /* for hppa64, we don't need to call through a stub; all functions
1256 return via a bve. */
1257 regcache_cooked_write_unsigned (regcache, 22, funcaddr);
1258 write_memory (sp, hppa64_tramp, sizeof (hppa64_tramp));
1259
1260 *bp_addr = pc - 4;
1261 regcache_cooked_write_unsigned (regcache, 31, *bp_addr);
1262
1263 *real_pc = hppa64_hpux_search_dummy_call_sequence (gdbarch, pc, &argreg);
1264 if (*real_pc == 0)
1265 error (_("Cannot make interspace call from here."));
1266
1267 regcache_cooked_write_unsigned (regcache, argreg, sp);
1268
1269 sp += sizeof (hppa64_tramp);
1270 }
1271
1272 sp = gdbarch_frame_align (gdbarch, sp);
1273
1274 return sp;
1275 }
1276
1277 \f
1278
1279 static void
1280 hppa_hpux_supply_ss_narrow (struct regcache *regcache,
1281 int regnum, const char *save_state)
1282 {
1283 const char *ss_narrow = save_state + HPPA_HPUX_SS_NARROW_OFFSET;
1284 int i, offset = 0;
1285
1286 for (i = HPPA_R1_REGNUM; i < HPPA_FP0_REGNUM; i++)
1287 {
1288 if (regnum == i || regnum == -1)
1289 regcache_raw_supply (regcache, i, ss_narrow + offset);
1290
1291 offset += 4;
1292 }
1293 }
1294
1295 static void
1296 hppa_hpux_supply_ss_fpblock (struct regcache *regcache,
1297 int regnum, const char *save_state)
1298 {
1299 const char *ss_fpblock = save_state + HPPA_HPUX_SS_FPBLOCK_OFFSET;
1300 int i, offset = 0;
1301
1302 /* FIXME: We view the floating-point state as 64 single-precision
1303 registers for 32-bit code, and 32 double-precision register for
1304 64-bit code. This distinction is artificial and should be
1305 eliminated. If that ever happens, we should remove the if-clause
1306 below. */
1307
1308 if (register_size (get_regcache_arch (regcache), HPPA_FP0_REGNUM) == 4)
1309 {
1310 for (i = HPPA_FP0_REGNUM; i < HPPA_FP0_REGNUM + 64; i++)
1311 {
1312 if (regnum == i || regnum == -1)
1313 regcache_raw_supply (regcache, i, ss_fpblock + offset);
1314
1315 offset += 4;
1316 }
1317 }
1318 else
1319 {
1320 for (i = HPPA_FP0_REGNUM; i < HPPA_FP0_REGNUM + 32; i++)
1321 {
1322 if (regnum == i || regnum == -1)
1323 regcache_raw_supply (regcache, i, ss_fpblock + offset);
1324
1325 offset += 8;
1326 }
1327 }
1328 }
1329
1330 static void
1331 hppa_hpux_supply_ss_wide (struct regcache *regcache,
1332 int regnum, const char *save_state)
1333 {
1334 const char *ss_wide = save_state + HPPA_HPUX_SS_WIDE_OFFSET;
1335 int i, offset = 8;
1336
1337 if (register_size (get_regcache_arch (regcache), HPPA_R1_REGNUM) == 4)
1338 offset += 4;
1339
1340 for (i = HPPA_R1_REGNUM; i < HPPA_FP0_REGNUM; i++)
1341 {
1342 if (regnum == i || regnum == -1)
1343 regcache_raw_supply (regcache, i, ss_wide + offset);
1344
1345 offset += 8;
1346 }
1347 }
1348
1349 static void
1350 hppa_hpux_supply_save_state (const struct regset *regset,
1351 struct regcache *regcache,
1352 int regnum, const void *regs, size_t len)
1353 {
1354 struct gdbarch *gdbarch = get_regcache_arch (regcache);
1355 enum bfd_endian byte_order = gdbarch_byte_order (gdbarch);
1356 const char *proc_info = regs;
1357 const char *save_state = proc_info + 8;
1358 ULONGEST flags;
1359
1360 flags = extract_unsigned_integer (save_state + HPPA_HPUX_SS_FLAGS_OFFSET,
1361 4, byte_order);
1362 if (regnum == -1 || regnum == HPPA_FLAGS_REGNUM)
1363 {
1364 size_t size = register_size (gdbarch, HPPA_FLAGS_REGNUM);
1365 gdb_byte buf[8];
1366
1367 store_unsigned_integer (buf, size, byte_order, flags);
1368 regcache_raw_supply (regcache, HPPA_FLAGS_REGNUM, buf);
1369 }
1370
1371 /* If the SS_WIDEREGS flag is set, we really do need the full
1372 `struct save_state'. */
1373 if (flags & HPPA_HPUX_SS_WIDEREGS && len < HPPA_HPUX_SAVE_STATE_SIZE)
1374 error (_("Register set contents too small"));
1375
1376 if (flags & HPPA_HPUX_SS_WIDEREGS)
1377 hppa_hpux_supply_ss_wide (regcache, regnum, save_state);
1378 else
1379 hppa_hpux_supply_ss_narrow (regcache, regnum, save_state);
1380
1381 hppa_hpux_supply_ss_fpblock (regcache, regnum, save_state);
1382 }
1383
1384 /* HP-UX register set. */
1385
1386 static struct regset hppa_hpux_regset =
1387 {
1388 NULL,
1389 hppa_hpux_supply_save_state
1390 };
1391
1392 static const struct regset *
1393 hppa_hpux_regset_from_core_section (struct gdbarch *gdbarch,
1394 const char *sect_name, size_t sect_size)
1395 {
1396 if (strcmp (sect_name, ".reg") == 0
1397 && sect_size >= HPPA_HPUX_PA89_SAVE_STATE_SIZE + 8)
1398 return &hppa_hpux_regset;
1399
1400 return NULL;
1401 }
1402 \f
1403
1404 /* Bit in the `ss_flag' member of `struct save_state' that indicates
1405 the state was saved from a system call. From
1406 <machine/save_state.h>. */
1407 #define HPPA_HPUX_SS_INSYSCALL 0x02
1408
1409 static CORE_ADDR
1410 hppa_hpux_read_pc (struct regcache *regcache)
1411 {
1412 ULONGEST flags;
1413
1414 /* If we're currently in a system call return the contents of %r31. */
1415 regcache_cooked_read_unsigned (regcache, HPPA_FLAGS_REGNUM, &flags);
1416 if (flags & HPPA_HPUX_SS_INSYSCALL)
1417 {
1418 ULONGEST pc;
1419 regcache_cooked_read_unsigned (regcache, HPPA_R31_REGNUM, &pc);
1420 return pc & ~0x3;
1421 }
1422
1423 return hppa_read_pc (regcache);
1424 }
1425
1426 static void
1427 hppa_hpux_write_pc (struct regcache *regcache, CORE_ADDR pc)
1428 {
1429 ULONGEST flags;
1430
1431 /* If we're currently in a system call also write PC into %r31. */
1432 regcache_cooked_read_unsigned (regcache, HPPA_FLAGS_REGNUM, &flags);
1433 if (flags & HPPA_HPUX_SS_INSYSCALL)
1434 regcache_cooked_write_unsigned (regcache, HPPA_R31_REGNUM, pc | 0x3);
1435
1436 hppa_write_pc (regcache, pc);
1437 }
1438
1439 static CORE_ADDR
1440 hppa_hpux_unwind_pc (struct gdbarch *gdbarch, struct frame_info *next_frame)
1441 {
1442 ULONGEST flags;
1443
1444 /* If we're currently in a system call return the contents of %r31. */
1445 flags = frame_unwind_register_unsigned (next_frame, HPPA_FLAGS_REGNUM);
1446 if (flags & HPPA_HPUX_SS_INSYSCALL)
1447 return frame_unwind_register_unsigned (next_frame, HPPA_R31_REGNUM) & ~0x3;
1448
1449 return hppa_unwind_pc (gdbarch, next_frame);
1450 }
1451 \f
1452
1453 /* Given the current value of the pc, check to see if it is inside a stub, and
1454 if so, change the value of the pc to point to the caller of the stub.
1455 THIS_FRAME is the current frame in the current list of frames.
1456 BASE contains to stack frame base of the current frame.
1457 SAVE_REGS is the register file stored in the frame cache. */
1458 static void
1459 hppa_hpux_unwind_adjust_stub (struct frame_info *this_frame, CORE_ADDR base,
1460 struct trad_frame_saved_reg *saved_regs)
1461 {
1462 struct gdbarch *gdbarch = get_frame_arch (this_frame);
1463 enum bfd_endian byte_order = gdbarch_byte_order (gdbarch);
1464 int word_size = gdbarch_ptr_bit (gdbarch) / 8;
1465 struct value *pcoq_head_val;
1466 ULONGEST pcoq_head;
1467 CORE_ADDR stubpc;
1468 struct unwind_table_entry *u;
1469
1470 pcoq_head_val = trad_frame_get_prev_register (this_frame, saved_regs,
1471 HPPA_PCOQ_HEAD_REGNUM);
1472 pcoq_head =
1473 extract_unsigned_integer (value_contents_all (pcoq_head_val),
1474 register_size (gdbarch, HPPA_PCOQ_HEAD_REGNUM),
1475 byte_order);
1476
1477 u = find_unwind_entry (pcoq_head);
1478 if (u && u->stub_unwind.stub_type == EXPORT)
1479 {
1480 stubpc = read_memory_integer (base - 24, word_size, byte_order);
1481 trad_frame_set_value (saved_regs, HPPA_PCOQ_HEAD_REGNUM, stubpc);
1482 }
1483 else if (hppa_symbol_address ("__gcc_plt_call")
1484 == get_pc_function_start (pcoq_head))
1485 {
1486 stubpc = read_memory_integer (base - 8, word_size, byte_order);
1487 trad_frame_set_value (saved_regs, HPPA_PCOQ_HEAD_REGNUM, stubpc);
1488 }
1489 }
1490
1491 static void
1492 hppa_hpux_init_abi (struct gdbarch_info info, struct gdbarch *gdbarch)
1493 {
1494 struct gdbarch_tdep *tdep = gdbarch_tdep (gdbarch);
1495
1496 if (IS_32BIT_TARGET (gdbarch))
1497 tdep->in_solib_call_trampoline = hppa32_hpux_in_solib_call_trampoline;
1498 else
1499 tdep->in_solib_call_trampoline = hppa64_hpux_in_solib_call_trampoline;
1500
1501 tdep->unwind_adjust_stub = hppa_hpux_unwind_adjust_stub;
1502
1503 set_gdbarch_in_solib_return_trampoline
1504 (gdbarch, hppa_hpux_in_solib_return_trampoline);
1505 set_gdbarch_skip_trampoline_code (gdbarch, hppa_hpux_skip_trampoline_code);
1506
1507 set_gdbarch_push_dummy_code (gdbarch, hppa_hpux_push_dummy_code);
1508 set_gdbarch_call_dummy_location (gdbarch, ON_STACK);
1509
1510 set_gdbarch_read_pc (gdbarch, hppa_hpux_read_pc);
1511 set_gdbarch_write_pc (gdbarch, hppa_hpux_write_pc);
1512 set_gdbarch_unwind_pc (gdbarch, hppa_hpux_unwind_pc);
1513 set_gdbarch_skip_permanent_breakpoint
1514 (gdbarch, hppa_skip_permanent_breakpoint);
1515
1516 set_gdbarch_regset_from_core_section
1517 (gdbarch, hppa_hpux_regset_from_core_section);
1518
1519 frame_unwind_append_unwinder (gdbarch, &hppa_hpux_sigtramp_frame_unwind);
1520 }
1521
1522 static void
1523 hppa_hpux_som_init_abi (struct gdbarch_info info, struct gdbarch *gdbarch)
1524 {
1525 struct gdbarch_tdep *tdep = gdbarch_tdep (gdbarch);
1526
1527 tdep->is_elf = 0;
1528
1529 tdep->find_global_pointer = hppa32_hpux_find_global_pointer;
1530
1531 hppa_hpux_init_abi (info, gdbarch);
1532 som_solib_select (gdbarch);
1533 }
1534
1535 static void
1536 hppa_hpux_elf_init_abi (struct gdbarch_info info, struct gdbarch *gdbarch)
1537 {
1538 struct gdbarch_tdep *tdep = gdbarch_tdep (gdbarch);
1539
1540 tdep->is_elf = 1;
1541 tdep->find_global_pointer = hppa64_hpux_find_global_pointer;
1542
1543 hppa_hpux_init_abi (info, gdbarch);
1544 pa64_solib_select (gdbarch);
1545 }
1546
1547 static enum gdb_osabi
1548 hppa_hpux_core_osabi_sniffer (bfd *abfd)
1549 {
1550 if (strcmp (bfd_get_target (abfd), "hpux-core") == 0)
1551 return GDB_OSABI_HPUX_SOM;
1552 else if (strcmp (bfd_get_target (abfd), "elf64-hppa") == 0)
1553 {
1554 asection *section;
1555
1556 section = bfd_get_section_by_name (abfd, ".kernel");
1557 if (section)
1558 {
1559 bfd_size_type size;
1560 char *contents;
1561
1562 size = bfd_section_size (abfd, section);
1563 contents = alloca (size);
1564 if (bfd_get_section_contents (abfd, section, contents,
1565 (file_ptr) 0, size)
1566 && strcmp (contents, "HP-UX") == 0)
1567 return GDB_OSABI_HPUX_ELF;
1568 }
1569 }
1570
1571 return GDB_OSABI_UNKNOWN;
1572 }
1573
1574 void
1575 _initialize_hppa_hpux_tdep (void)
1576 {
1577 /* BFD doesn't set a flavour for HP-UX style core files. It doesn't
1578 set the architecture either. */
1579 gdbarch_register_osabi_sniffer (bfd_arch_unknown,
1580 bfd_target_unknown_flavour,
1581 hppa_hpux_core_osabi_sniffer);
1582 gdbarch_register_osabi_sniffer (bfd_arch_hppa,
1583 bfd_target_elf_flavour,
1584 hppa_hpux_core_osabi_sniffer);
1585
1586 gdbarch_register_osabi (bfd_arch_hppa, 0, GDB_OSABI_HPUX_SOM,
1587 hppa_hpux_som_init_abi);
1588 gdbarch_register_osabi (bfd_arch_hppa, bfd_mach_hppa20w, GDB_OSABI_HPUX_ELF,
1589 hppa_hpux_elf_init_abi);
1590 }
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