2007-06-18 Markus Deuling <deuling@de.ibm.com>
[deliverable/binutils-gdb.git] / gdb / aix-thread.c
1 /* Low level interface for debugging AIX 4.3+ pthreads.
2
3 Copyright (C) 1999, 2000, 2002, 2007 Free Software Foundation, Inc.
4 Written by Nick Duffek <nsd@redhat.com>.
5
6 This file is part of GDB.
7
8 This program is free software; you can redistribute it and/or modify
9 it under the terms of the GNU General Public License as published by
10 the Free Software Foundation; either version 2 of the License, or
11 (at your option) any later version.
12
13 This program is distributed in the hope that it will be useful,
14 but WITHOUT ANY WARRANTY; without even the implied warranty of
15 MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
16 GNU General Public License for more details.
17
18 You should have received a copy of the GNU General Public License
19 along with this program; if not, write to the Free Software
20 Foundation, Inc., 51 Franklin Street, Fifth Floor,
21 Boston, MA 02110-1301, USA. */
22
23
24 /* This module uses the libpthdebug.a library provided by AIX 4.3+ for
25 debugging pthread applications.
26
27 Some name prefix conventions:
28 pthdb_ provided by libpthdebug.a
29 pdc_ callbacks that this module provides to libpthdebug.a
30 pd_ variables or functions interfacing with libpthdebug.a
31
32 libpthdebug peculiarities:
33
34 - pthdb_ptid_pthread() is prototyped in <sys/pthdebug.h>, but
35 it's not documented, and after several calls it stops working
36 and causes other libpthdebug functions to fail.
37
38 - pthdb_tid_pthread() doesn't always work after
39 pthdb_session_update(), but it does work after cycling through
40 all threads using pthdb_pthread().
41
42 */
43
44 #include "defs.h"
45 #include "gdb_assert.h"
46 #include "gdbthread.h"
47 #include "target.h"
48 #include "inferior.h"
49 #include "regcache.h"
50 #include "gdbcmd.h"
51 #include "ppc-tdep.h"
52 #include "gdb_string.h"
53 #include "observer.h"
54
55 #include <procinfo.h>
56 #include <sys/types.h>
57 #include <sys/ptrace.h>
58 #include <sys/reg.h>
59 #include <sched.h>
60 #include <sys/pthdebug.h>
61
62 /* Whether to emit debugging output. */
63 static int debug_aix_thread;
64
65 /* In AIX 5.1, functions use pthdb_tid_t instead of tid_t. */
66 #ifndef PTHDB_VERSION_3
67 #define pthdb_tid_t tid_t
68 #endif
69
70 /* Return whether to treat PID as a debuggable thread id. */
71
72 #define PD_TID(ptid) (pd_active && ptid_get_tid (ptid) != 0)
73
74 /* Build a thread ptid. */
75 #define BUILD_THREAD(TID, PID) ptid_build (PID, 0, TID)
76
77 /* Build and lwp ptid. */
78 #define BUILD_LWP(LWP, PID) MERGEPID (PID, LWP)
79
80 /* pthdb_user_t value that we pass to pthdb functions. 0 causes
81 PTHDB_BAD_USER errors, so use 1. */
82
83 #define PD_USER 1
84
85 /* Success and failure values returned by pthdb callbacks. */
86
87 #define PDC_SUCCESS PTHDB_SUCCESS
88 #define PDC_FAILURE PTHDB_CALLBACK
89
90 /* Private data attached to each element in GDB's thread list. */
91
92 struct private_thread_info {
93 pthdb_pthread_t pdtid; /* thread's libpthdebug id */
94 pthdb_tid_t tid; /* kernel thread id */
95 };
96
97 /* Information about a thread of which libpthdebug is aware. */
98
99 struct pd_thread {
100 pthdb_pthread_t pdtid;
101 pthread_t pthid;
102 pthdb_tid_t tid;
103 };
104
105 /* This module's target-specific operations, active while pd_able is true. */
106
107 static struct target_ops aix_thread_ops;
108
109 /* Copy of the target over which ops is pushed. This is more
110 convenient than a pointer to deprecated_child_ops or core_ops,
111 because they lack current_target's default callbacks. */
112
113 static struct target_ops base_target;
114
115 /* Address of the function that libpthread will call when libpthdebug
116 is ready to be initialized. */
117
118 static CORE_ADDR pd_brk_addr;
119
120 /* Whether the current application is debuggable by pthdb. */
121
122 static int pd_able = 0;
123
124 /* Whether a threaded application is being debugged. */
125
126 static int pd_active = 0;
127
128 /* Whether the current architecture is 64-bit.
129 Only valid when pd_able is true. */
130
131 static int arch64;
132
133 /* Forward declarations for pthdb callbacks. */
134
135 static int pdc_symbol_addrs (pthdb_user_t, pthdb_symbol_t *, int);
136 static int pdc_read_data (pthdb_user_t, void *, pthdb_addr_t, size_t);
137 static int pdc_write_data (pthdb_user_t, void *, pthdb_addr_t, size_t);
138 static int pdc_read_regs (pthdb_user_t user, pthdb_tid_t tid,
139 unsigned long long flags,
140 pthdb_context_t *context);
141 static int pdc_write_regs (pthdb_user_t user, pthdb_tid_t tid,
142 unsigned long long flags,
143 pthdb_context_t *context);
144 static int pdc_alloc (pthdb_user_t, size_t, void **);
145 static int pdc_realloc (pthdb_user_t, void *, size_t, void **);
146 static int pdc_dealloc (pthdb_user_t, void *);
147
148 /* pthdb callbacks. */
149
150 static pthdb_callbacks_t pd_callbacks = {
151 pdc_symbol_addrs,
152 pdc_read_data,
153 pdc_write_data,
154 pdc_read_regs,
155 pdc_write_regs,
156 pdc_alloc,
157 pdc_realloc,
158 pdc_dealloc,
159 NULL
160 };
161
162 /* Current pthdb session. */
163
164 static pthdb_session_t pd_session;
165
166 /* Return a printable representation of pthdebug function return
167 STATUS. */
168
169 static char *
170 pd_status2str (int status)
171 {
172 switch (status)
173 {
174 case PTHDB_SUCCESS: return "SUCCESS";
175 case PTHDB_NOSYS: return "NOSYS";
176 case PTHDB_NOTSUP: return "NOTSUP";
177 case PTHDB_BAD_VERSION: return "BAD_VERSION";
178 case PTHDB_BAD_USER: return "BAD_USER";
179 case PTHDB_BAD_SESSION: return "BAD_SESSION";
180 case PTHDB_BAD_MODE: return "BAD_MODE";
181 case PTHDB_BAD_FLAGS: return "BAD_FLAGS";
182 case PTHDB_BAD_CALLBACK: return "BAD_CALLBACK";
183 case PTHDB_BAD_POINTER: return "BAD_POINTER";
184 case PTHDB_BAD_CMD: return "BAD_CMD";
185 case PTHDB_BAD_PTHREAD: return "BAD_PTHREAD";
186 case PTHDB_BAD_ATTR: return "BAD_ATTR";
187 case PTHDB_BAD_MUTEX: return "BAD_MUTEX";
188 case PTHDB_BAD_MUTEXATTR: return "BAD_MUTEXATTR";
189 case PTHDB_BAD_COND: return "BAD_COND";
190 case PTHDB_BAD_CONDATTR: return "BAD_CONDATTR";
191 case PTHDB_BAD_RWLOCK: return "BAD_RWLOCK";
192 case PTHDB_BAD_RWLOCKATTR: return "BAD_RWLOCKATTR";
193 case PTHDB_BAD_KEY: return "BAD_KEY";
194 case PTHDB_BAD_PTID: return "BAD_PTID";
195 case PTHDB_BAD_TID: return "BAD_TID";
196 case PTHDB_CALLBACK: return "CALLBACK";
197 case PTHDB_CONTEXT: return "CONTEXT";
198 case PTHDB_HELD: return "HELD";
199 case PTHDB_NOT_HELD: return "NOT_HELD";
200 case PTHDB_MEMORY: return "MEMORY";
201 case PTHDB_NOT_PTHREADED: return "NOT_PTHREADED";
202 case PTHDB_SYMBOL: return "SYMBOL";
203 case PTHDB_NOT_AVAIL: return "NOT_AVAIL";
204 case PTHDB_INTERNAL: return "INTERNAL";
205 default: return "UNKNOWN";
206 }
207 }
208
209 /* A call to ptrace(REQ, ID, ...) just returned RET. Check for
210 exceptional conditions and either return nonlocally or else return
211 1 for success and 0 for failure. */
212
213 static int
214 ptrace_check (int req, int id, int ret)
215 {
216 if (ret == 0 && !errno)
217 return 1;
218
219 /* According to ptrace(2), ptrace may fail with EPERM if "the
220 Identifier parameter corresponds to a kernel thread which is
221 stopped in kernel mode and whose computational state cannot be
222 read or written." This happens quite often with register reads. */
223
224 switch (req)
225 {
226 case PTT_READ_GPRS:
227 case PTT_READ_FPRS:
228 case PTT_READ_SPRS:
229 if (ret == -1 && errno == EPERM)
230 {
231 if (debug_aix_thread)
232 fprintf_unfiltered (gdb_stdlog,
233 "ptrace (%d, %d) = %d (errno = %d)\n",
234 req, id, ret, errno);
235 return ret == -1 ? 0 : 1;
236 }
237 break;
238 }
239 error (_("aix-thread: ptrace (%d, %d) returned %d (errno = %d %s)"),
240 req, id, ret, errno, safe_strerror (errno));
241 return 0; /* Not reached. */
242 }
243
244 /* Call ptracex (REQ, ID, ADDR, DATA, BUF). Return success. */
245
246 static int
247 ptrace64aix (int req, int id, long long addr, int data, int *buf)
248 {
249 errno = 0;
250 return ptrace_check (req, id, ptracex (req, id, addr, data, buf));
251 }
252
253 /* Call ptrace (REQ, ID, ADDR, DATA, BUF). Return success. */
254
255 static int
256 ptrace32 (int req, int id, int *addr, int data, int *buf)
257 {
258 errno = 0;
259 return ptrace_check (req, id,
260 ptrace (req, id, (int *) addr, data, buf));
261 }
262
263 /* If *PIDP is a composite process/thread id, convert it to a
264 process id. */
265
266 static void
267 pid_to_prc (ptid_t *ptidp)
268 {
269 ptid_t ptid;
270
271 ptid = *ptidp;
272 if (PD_TID (ptid))
273 *ptidp = pid_to_ptid (PIDGET (ptid));
274 }
275
276 /* pthdb callback: for <i> from 0 to COUNT, set SYMBOLS[<i>].addr to
277 the address of SYMBOLS[<i>].name. */
278
279 static int
280 pdc_symbol_addrs (pthdb_user_t user, pthdb_symbol_t *symbols, int count)
281 {
282 struct minimal_symbol *ms;
283 int i;
284 char *name;
285
286 if (debug_aix_thread)
287 fprintf_unfiltered (gdb_stdlog,
288 "pdc_symbol_addrs (user = %ld, symbols = 0x%lx, count = %d)\n",
289 user, (long) symbols, count);
290
291 for (i = 0; i < count; i++)
292 {
293 name = symbols[i].name;
294 if (debug_aix_thread)
295 fprintf_unfiltered (gdb_stdlog,
296 " symbols[%d].name = \"%s\"\n", i, name);
297
298 if (!*name)
299 symbols[i].addr = 0;
300 else
301 {
302 if (!(ms = lookup_minimal_symbol (name, NULL, NULL)))
303 {
304 if (debug_aix_thread)
305 fprintf_unfiltered (gdb_stdlog, " returning PDC_FAILURE\n");
306 return PDC_FAILURE;
307 }
308 symbols[i].addr = SYMBOL_VALUE_ADDRESS (ms);
309 }
310 if (debug_aix_thread)
311 fprintf_unfiltered (gdb_stdlog, " symbols[%d].addr = %s\n",
312 i, hex_string (symbols[i].addr));
313 }
314 if (debug_aix_thread)
315 fprintf_unfiltered (gdb_stdlog, " returning PDC_SUCCESS\n");
316 return PDC_SUCCESS;
317 }
318
319 /* Read registers call back function should be able to read the
320 context information of a debuggee kernel thread from an active
321 process or from a core file. The information should be formatted
322 in context64 form for both 32-bit and 64-bit process.
323 If successful return 0, else non-zero is returned. */
324
325 static int
326 pdc_read_regs (pthdb_user_t user,
327 pthdb_tid_t tid,
328 unsigned long long flags,
329 pthdb_context_t *context)
330 {
331 /* This function doesn't appear to be used, so we could probably
332 just return 0 here. HOWEVER, if it is not defined, the OS will
333 complain and several thread debug functions will fail. In case
334 this is needed, I have implemented what I think it should do,
335 however this code is untested. */
336
337 uint64_t gprs64[ppc_num_gprs];
338 uint32_t gprs32[ppc_num_gprs];
339 double fprs[ppc_num_fprs];
340 struct ptxsprs sprs64;
341 struct ptsprs sprs32;
342
343 if (debug_aix_thread)
344 fprintf_unfiltered (gdb_stdlog, "pdc_read_regs tid=%d flags=%s\n",
345 (int) tid, hex_string (flags));
346
347 /* General-purpose registers. */
348 if (flags & PTHDB_FLAG_GPRS)
349 {
350 if (arch64)
351 {
352 if (!ptrace64aix (PTT_READ_GPRS, tid,
353 (unsigned long) gprs64, 0, NULL))
354 memset (gprs64, 0, sizeof (gprs64));
355 memcpy (context->gpr, gprs64, sizeof(gprs64));
356 }
357 else
358 {
359 if (!ptrace32 (PTT_READ_GPRS, tid, gprs32, 0, NULL))
360 memset (gprs32, 0, sizeof (gprs32));
361 memcpy (context->gpr, gprs32, sizeof(gprs32));
362 }
363 }
364
365 /* Floating-point registers. */
366 if (flags & PTHDB_FLAG_FPRS)
367 {
368 if (!ptrace32 (PTT_READ_FPRS, tid, (int *) fprs, 0, NULL))
369 memset (fprs, 0, sizeof (fprs));
370 memcpy (context->fpr, fprs, sizeof(fprs));
371 }
372
373 /* Special-purpose registers. */
374 if (flags & PTHDB_FLAG_SPRS)
375 {
376 if (arch64)
377 {
378 if (!ptrace64aix (PTT_READ_SPRS, tid,
379 (unsigned long) &sprs64, 0, NULL))
380 memset (&sprs64, 0, sizeof (sprs64));
381 memcpy (&context->msr, &sprs64, sizeof(sprs64));
382 }
383 else
384 {
385 if (!ptrace32 (PTT_READ_SPRS, tid, (int *) &sprs32, 0, NULL))
386 memset (&sprs32, 0, sizeof (sprs32));
387 memcpy (&context->msr, &sprs32, sizeof(sprs32));
388 }
389 }
390 return 0;
391 }
392
393 /* Write register function should be able to write requested context
394 information to specified debuggee's kernel thread id.
395 If successful return 0, else non-zero is returned. */
396
397 static int
398 pdc_write_regs (pthdb_user_t user,
399 pthdb_tid_t tid,
400 unsigned long long flags,
401 pthdb_context_t *context)
402 {
403 /* This function doesn't appear to be used, so we could probably
404 just return 0 here. HOWEVER, if it is not defined, the OS will
405 complain and several thread debug functions will fail. In case
406 this is needed, I have implemented what I think it should do,
407 however this code is untested. */
408
409 if (debug_aix_thread)
410 fprintf_unfiltered (gdb_stdlog, "pdc_write_regs tid=%d flags=%s\n",
411 (int) tid, hex_string (flags));
412
413 /* General-purpose registers. */
414 if (flags & PTHDB_FLAG_GPRS)
415 {
416 if (arch64)
417 ptrace64aix (PTT_WRITE_GPRS, tid,
418 (unsigned long) context->gpr, 0, NULL);
419 else
420 ptrace32 (PTT_WRITE_GPRS, tid, (int *) context->gpr, 0, NULL);
421 }
422
423 /* Floating-point registers. */
424 if (flags & PTHDB_FLAG_FPRS)
425 {
426 ptrace32 (PTT_WRITE_FPRS, tid, (int *) context->fpr, 0, NULL);
427 }
428
429 /* Special-purpose registers. */
430 if (flags & PTHDB_FLAG_SPRS)
431 {
432 if (arch64)
433 {
434 ptrace64aix (PTT_WRITE_SPRS, tid,
435 (unsigned long) &context->msr, 0, NULL);
436 }
437 else
438 {
439 ptrace32 (PTT_WRITE_SPRS, tid, (int *) &context->msr, 0, NULL);
440 }
441 }
442 return 0;
443 }
444
445 /* pthdb callback: read LEN bytes from process ADDR into BUF. */
446
447 static int
448 pdc_read_data (pthdb_user_t user, void *buf,
449 pthdb_addr_t addr, size_t len)
450 {
451 int status, ret;
452
453 if (debug_aix_thread)
454 fprintf_unfiltered (gdb_stdlog,
455 "pdc_read_data (user = %ld, buf = 0x%lx, addr = %s, len = %ld)\n",
456 user, (long) buf, hex_string (addr), len);
457
458 status = target_read_memory (addr, buf, len);
459 ret = status == 0 ? PDC_SUCCESS : PDC_FAILURE;
460
461 if (debug_aix_thread)
462 fprintf_unfiltered (gdb_stdlog, " status=%d, returning %s\n",
463 status, pd_status2str (ret));
464 return ret;
465 }
466
467 /* pthdb callback: write LEN bytes from BUF to process ADDR. */
468
469 static int
470 pdc_write_data (pthdb_user_t user, void *buf,
471 pthdb_addr_t addr, size_t len)
472 {
473 int status, ret;
474
475 if (debug_aix_thread)
476 fprintf_unfiltered (gdb_stdlog,
477 "pdc_write_data (user = %ld, buf = 0x%lx, addr = %s, len = %ld)\n",
478 user, (long) buf, hex_string (addr), len);
479
480 status = target_write_memory (addr, buf, len);
481 ret = status == 0 ? PDC_SUCCESS : PDC_FAILURE;
482
483 if (debug_aix_thread)
484 fprintf_unfiltered (gdb_stdlog, " status=%d, returning %s\n", status,
485 pd_status2str (ret));
486 return ret;
487 }
488
489 /* pthdb callback: allocate a LEN-byte buffer and store a pointer to it
490 in BUFP. */
491
492 static int
493 pdc_alloc (pthdb_user_t user, size_t len, void **bufp)
494 {
495 if (debug_aix_thread)
496 fprintf_unfiltered (gdb_stdlog,
497 "pdc_alloc (user = %ld, len = %ld, bufp = 0x%lx)\n",
498 user, len, (long) bufp);
499 *bufp = xmalloc (len);
500 if (debug_aix_thread)
501 fprintf_unfiltered (gdb_stdlog,
502 " malloc returned 0x%lx\n", (long) *bufp);
503
504 /* Note: xmalloc() can't return 0; therefore PDC_FAILURE will never
505 be returned. */
506
507 return *bufp ? PDC_SUCCESS : PDC_FAILURE;
508 }
509
510 /* pthdb callback: reallocate BUF, which was allocated by the alloc or
511 realloc callback, so that it contains LEN bytes, and store a
512 pointer to the result in BUFP. */
513
514 static int
515 pdc_realloc (pthdb_user_t user, void *buf, size_t len, void **bufp)
516 {
517 if (debug_aix_thread)
518 fprintf_unfiltered (gdb_stdlog,
519 "pdc_realloc (user = %ld, buf = 0x%lx, len = %ld, bufp = 0x%lx)\n",
520 user, (long) buf, len, (long) bufp);
521 *bufp = xrealloc (buf, len);
522 if (debug_aix_thread)
523 fprintf_unfiltered (gdb_stdlog,
524 " realloc returned 0x%lx\n", (long) *bufp);
525 return *bufp ? PDC_SUCCESS : PDC_FAILURE;
526 }
527
528 /* pthdb callback: free BUF, which was allocated by the alloc or
529 realloc callback. */
530
531 static int
532 pdc_dealloc (pthdb_user_t user, void *buf)
533 {
534 if (debug_aix_thread)
535 fprintf_unfiltered (gdb_stdlog,
536 "pdc_free (user = %ld, buf = 0x%lx)\n", user,
537 (long) buf);
538 xfree (buf);
539 return PDC_SUCCESS;
540 }
541
542 /* Return a printable representation of pthread STATE. */
543
544 static char *
545 state2str (pthdb_state_t state)
546 {
547 switch (state)
548 {
549 case PST_IDLE:
550 /* i18n: Like "Thread-Id %d, [state] idle" */
551 return _("idle"); /* being created */
552 case PST_RUN:
553 /* i18n: Like "Thread-Id %d, [state] running" */
554 return _("running"); /* running */
555 case PST_SLEEP:
556 /* i18n: Like "Thread-Id %d, [state] sleeping" */
557 return _("sleeping"); /* awaiting an event */
558 case PST_READY:
559 /* i18n: Like "Thread-Id %d, [state] ready" */
560 return _("ready"); /* runnable */
561 case PST_TERM:
562 /* i18n: Like "Thread-Id %d, [state] finished" */
563 return _("finished"); /* awaiting a join/detach */
564 default:
565 /* i18n: Like "Thread-Id %d, [state] unknown" */
566 return _("unknown");
567 }
568 }
569
570 /* qsort() comparison function for sorting pd_thread structs by pthid. */
571
572 static int
573 pcmp (const void *p1v, const void *p2v)
574 {
575 struct pd_thread *p1 = (struct pd_thread *) p1v;
576 struct pd_thread *p2 = (struct pd_thread *) p2v;
577 return p1->pthid < p2->pthid ? -1 : p1->pthid > p2->pthid;
578 }
579
580 /* iterate_over_threads() callback for counting GDB threads. */
581
582 static int
583 giter_count (struct thread_info *thread, void *countp)
584 {
585 (*(int *) countp)++;
586 return 0;
587 }
588
589 /* iterate_over_threads() callback for accumulating GDB thread pids. */
590
591 static int
592 giter_accum (struct thread_info *thread, void *bufp)
593 {
594 **(struct thread_info ***) bufp = thread;
595 (*(struct thread_info ***) bufp)++;
596 return 0;
597 }
598
599 /* ptid comparison function */
600
601 static int
602 ptid_cmp (ptid_t ptid1, ptid_t ptid2)
603 {
604 int pid1, pid2;
605
606 if (ptid_get_pid (ptid1) < ptid_get_pid (ptid2))
607 return -1;
608 else if (ptid_get_pid (ptid1) > ptid_get_pid (ptid2))
609 return 1;
610 else if (ptid_get_tid (ptid1) < ptid_get_tid (ptid2))
611 return -1;
612 else if (ptid_get_tid (ptid1) > ptid_get_tid (ptid2))
613 return 1;
614 else if (ptid_get_lwp (ptid1) < ptid_get_lwp (ptid2))
615 return -1;
616 else if (ptid_get_lwp (ptid1) > ptid_get_lwp (ptid2))
617 return 1;
618 else
619 return 0;
620 }
621
622 /* qsort() comparison function for sorting thread_info structs by pid. */
623
624 static int
625 gcmp (const void *t1v, const void *t2v)
626 {
627 struct thread_info *t1 = *(struct thread_info **) t1v;
628 struct thread_info *t2 = *(struct thread_info **) t2v;
629 return ptid_cmp (t1->ptid, t2->ptid);
630 }
631
632 /* Search through the list of all kernel threads for the thread
633 that has stopped on a SIGTRAP signal, and return its TID.
634 Return 0 if none found. */
635
636 static pthdb_tid_t
637 get_signaled_thread (void)
638 {
639 struct thrdsinfo64 thrinf;
640 pthdb_tid_t ktid = 0;
641 int result = 0;
642
643 /* getthrds(3) isn't prototyped in any AIX 4.3.3 #include file. */
644 extern int getthrds (pid_t, struct thrdsinfo64 *,
645 int, pthdb_tid_t *, int);
646
647 while (1)
648 {
649 if (getthrds (PIDGET (inferior_ptid), &thrinf,
650 sizeof (thrinf), &ktid, 1) != 1)
651 break;
652
653 if (thrinf.ti_cursig == SIGTRAP)
654 return thrinf.ti_tid;
655 }
656
657 /* Didn't find any thread stopped on a SIGTRAP signal. */
658 return 0;
659 }
660
661 /* Synchronize GDB's thread list with libpthdebug's.
662
663 There are some benefits of doing this every time the inferior stops:
664
665 - allows users to run thread-specific commands without needing to
666 run "info threads" first
667
668 - helps pthdb_tid_pthread() work properly (see "libpthdebug
669 peculiarities" at the top of this module)
670
671 - simplifies the demands placed on libpthdebug, which seems to
672 have difficulty with certain call patterns */
673
674 static void
675 sync_threadlists (void)
676 {
677 int cmd, status, infpid;
678 int pcount, psize, pi, gcount, gi;
679 struct pd_thread *pbuf;
680 struct thread_info **gbuf, **g, *thread;
681 pthdb_pthread_t pdtid;
682 pthread_t pthid;
683 pthdb_tid_t tid;
684
685 /* Accumulate an array of libpthdebug threads sorted by pthread id. */
686
687 pcount = 0;
688 psize = 1;
689 pbuf = (struct pd_thread *) xmalloc (psize * sizeof *pbuf);
690
691 for (cmd = PTHDB_LIST_FIRST;; cmd = PTHDB_LIST_NEXT)
692 {
693 status = pthdb_pthread (pd_session, &pdtid, cmd);
694 if (status != PTHDB_SUCCESS || pdtid == PTHDB_INVALID_PTHREAD)
695 break;
696
697 status = pthdb_pthread_ptid (pd_session, pdtid, &pthid);
698 if (status != PTHDB_SUCCESS || pthid == PTHDB_INVALID_PTID)
699 continue;
700
701 if (pcount == psize)
702 {
703 psize *= 2;
704 pbuf = (struct pd_thread *) xrealloc (pbuf,
705 psize * sizeof *pbuf);
706 }
707 pbuf[pcount].pdtid = pdtid;
708 pbuf[pcount].pthid = pthid;
709 pcount++;
710 }
711
712 for (pi = 0; pi < pcount; pi++)
713 {
714 status = pthdb_pthread_tid (pd_session, pbuf[pi].pdtid, &tid);
715 if (status != PTHDB_SUCCESS)
716 tid = PTHDB_INVALID_TID;
717 pbuf[pi].tid = tid;
718 }
719
720 qsort (pbuf, pcount, sizeof *pbuf, pcmp);
721
722 /* Accumulate an array of GDB threads sorted by pid. */
723
724 gcount = 0;
725 iterate_over_threads (giter_count, &gcount);
726 g = gbuf = (struct thread_info **) xmalloc (gcount * sizeof *gbuf);
727 iterate_over_threads (giter_accum, &g);
728 qsort (gbuf, gcount, sizeof *gbuf, gcmp);
729
730 /* Apply differences between the two arrays to GDB's thread list. */
731
732 infpid = PIDGET (inferior_ptid);
733 for (pi = gi = 0; pi < pcount || gi < gcount;)
734 {
735 if (pi == pcount)
736 {
737 delete_thread (gbuf[gi]->ptid);
738 gi++;
739 }
740 else if (gi == gcount)
741 {
742 thread = add_thread (BUILD_THREAD (pbuf[pi].pthid, infpid));
743 thread->private = xmalloc (sizeof (struct private_thread_info));
744 thread->private->pdtid = pbuf[pi].pdtid;
745 thread->private->tid = pbuf[pi].tid;
746 pi++;
747 }
748 else
749 {
750 ptid_t pptid, gptid;
751 int cmp_result;
752
753 pptid = BUILD_THREAD (pbuf[pi].pthid, infpid);
754 gptid = gbuf[gi]->ptid;
755 pdtid = pbuf[pi].pdtid;
756 tid = pbuf[pi].tid;
757
758 cmp_result = ptid_cmp (pptid, gptid);
759
760 if (cmp_result == 0)
761 {
762 gbuf[gi]->private->pdtid = pdtid;
763 gbuf[gi]->private->tid = tid;
764 pi++;
765 gi++;
766 }
767 else if (cmp_result > 0)
768 {
769 delete_thread (gptid);
770 gi++;
771 }
772 else
773 {
774 thread = add_thread (pptid);
775 thread->private = xmalloc (sizeof (struct private_thread_info));
776 thread->private->pdtid = pdtid;
777 thread->private->tid = tid;
778 pi++;
779 }
780 }
781 }
782
783 xfree (pbuf);
784 xfree (gbuf);
785 }
786
787 /* Iterate_over_threads() callback for locating a thread, using
788 the TID of its associated kernel thread. */
789
790 static int
791 iter_tid (struct thread_info *thread, void *tidp)
792 {
793 const pthdb_tid_t tid = *(pthdb_tid_t *)tidp;
794
795 return (thread->private->tid == tid);
796 }
797
798 /* Synchronize libpthdebug's state with the inferior and with GDB,
799 generate a composite process/thread <pid> for the current thread,
800 set inferior_ptid to <pid> if SET_INFPID, and return <pid>. */
801
802 static ptid_t
803 pd_update (int set_infpid)
804 {
805 int status;
806 ptid_t ptid;
807 pthdb_tid_t tid;
808 struct thread_info *thread = NULL;
809
810 if (!pd_active)
811 return inferior_ptid;
812
813 status = pthdb_session_update (pd_session);
814 if (status != PTHDB_SUCCESS)
815 return inferior_ptid;
816
817 sync_threadlists ();
818
819 /* Define "current thread" as one that just received a trap signal. */
820
821 tid = get_signaled_thread ();
822 if (tid != 0)
823 thread = iterate_over_threads (iter_tid, &tid);
824 if (!thread)
825 ptid = inferior_ptid;
826 else
827 {
828 ptid = thread->ptid;
829 if (set_infpid)
830 inferior_ptid = ptid;
831 }
832 return ptid;
833 }
834
835 /* Try to start debugging threads in the current process.
836 If successful and SET_INFPID, set inferior_ptid to reflect the
837 current thread. */
838
839 static ptid_t
840 pd_activate (int set_infpid)
841 {
842 int status;
843
844 status = pthdb_session_init (PD_USER, arch64 ? PEM_64BIT : PEM_32BIT,
845 PTHDB_FLAG_REGS, &pd_callbacks,
846 &pd_session);
847 if (status != PTHDB_SUCCESS)
848 {
849 return inferior_ptid;
850 }
851 pd_active = 1;
852 return pd_update (set_infpid);
853 }
854
855 /* Undo the effects of pd_activate(). */
856
857 static void
858 pd_deactivate (void)
859 {
860 if (!pd_active)
861 return;
862 pthdb_session_destroy (pd_session);
863
864 pid_to_prc (&inferior_ptid);
865 pd_active = 0;
866 }
867
868 /* An object file has just been loaded. Check whether the current
869 application is pthreaded, and if so, prepare for thread debugging. */
870
871 static void
872 pd_enable (void)
873 {
874 int status;
875 char *stub_name;
876 struct minimal_symbol *ms;
877
878 /* Don't initialize twice. */
879 if (pd_able)
880 return;
881
882 /* Check application word size. */
883 arch64 = register_size (current_gdbarch, 0) == 8;
884
885 /* Check whether the application is pthreaded. */
886 stub_name = NULL;
887 status = pthdb_session_pthreaded (PD_USER, PTHDB_FLAG_REGS,
888 &pd_callbacks, &stub_name);
889 if ((status != PTHDB_SUCCESS &&
890 status != PTHDB_NOT_PTHREADED) || !stub_name)
891 return;
892
893 /* Set a breakpoint on the returned stub function. */
894 if (!(ms = lookup_minimal_symbol (stub_name, NULL, NULL)))
895 return;
896 pd_brk_addr = SYMBOL_VALUE_ADDRESS (ms);
897 if (!create_thread_event_breakpoint (pd_brk_addr))
898 return;
899
900 /* Prepare for thread debugging. */
901 base_target = current_target;
902 push_target (&aix_thread_ops);
903 pd_able = 1;
904
905 /* If we're debugging a core file or an attached inferior, the
906 pthread library may already have been initialized, so try to
907 activate thread debugging. */
908 pd_activate (1);
909 }
910
911 /* Undo the effects of pd_enable(). */
912
913 static void
914 pd_disable (void)
915 {
916 if (!pd_able)
917 return;
918 if (pd_active)
919 pd_deactivate ();
920 pd_able = 0;
921 unpush_target (&aix_thread_ops);
922 }
923
924 /* new_objfile observer callback.
925
926 If OBJFILE is non-null, check whether a threaded application is
927 being debugged, and if so, prepare for thread debugging.
928
929 If OBJFILE is null, stop debugging threads. */
930
931 static void
932 new_objfile (struct objfile *objfile)
933 {
934 if (objfile)
935 pd_enable ();
936 else
937 pd_disable ();
938 }
939
940 /* Attach to process specified by ARGS. */
941
942 static void
943 aix_thread_attach (char *args, int from_tty)
944 {
945 base_target.to_attach (args, from_tty);
946 pd_activate (1);
947 }
948
949 /* Detach from the process attached to by aix_thread_attach(). */
950
951 static void
952 aix_thread_detach (char *args, int from_tty)
953 {
954 pd_disable ();
955 base_target.to_detach (args, from_tty);
956 }
957
958 /* Tell the inferior process to continue running thread PID if != -1
959 and all threads otherwise. */
960
961 static void
962 aix_thread_resume (ptid_t ptid, int step, enum target_signal sig)
963 {
964 struct thread_info *thread;
965 pthdb_tid_t tid[2];
966
967 if (!PD_TID (ptid))
968 {
969 struct cleanup *cleanup = save_inferior_ptid ();
970 inferior_ptid = pid_to_ptid (PIDGET (inferior_ptid));
971 base_target.to_resume (ptid, step, sig);
972 do_cleanups (cleanup);
973 }
974 else
975 {
976 thread = find_thread_pid (ptid);
977 if (!thread)
978 error (_("aix-thread resume: unknown pthread %ld"),
979 TIDGET (ptid));
980
981 tid[0] = thread->private->tid;
982 if (tid[0] == PTHDB_INVALID_TID)
983 error (_("aix-thread resume: no tid for pthread %ld"),
984 TIDGET (ptid));
985 tid[1] = 0;
986
987 if (arch64)
988 ptrace64aix (PTT_CONTINUE, tid[0], 1,
989 target_signal_to_host (sig), (int *) tid);
990 else
991 ptrace32 (PTT_CONTINUE, tid[0], (int *) 1,
992 target_signal_to_host (sig), (int *) tid);
993 }
994 }
995
996 /* Wait for thread/process ID if != -1 or for any thread otherwise.
997 If an error occurs, return -1, else return the pid of the stopped
998 thread. */
999
1000 static ptid_t
1001 aix_thread_wait (ptid_t ptid, struct target_waitstatus *status)
1002 {
1003 struct cleanup *cleanup = save_inferior_ptid ();
1004
1005 pid_to_prc (&ptid);
1006
1007 inferior_ptid = pid_to_ptid (PIDGET (inferior_ptid));
1008 ptid = base_target.to_wait (ptid, status);
1009 do_cleanups (cleanup);
1010
1011 if (PIDGET (ptid) == -1)
1012 return pid_to_ptid (-1);
1013
1014 /* Check whether libpthdebug might be ready to be initialized. */
1015 if (!pd_active && status->kind == TARGET_WAITKIND_STOPPED &&
1016 status->value.sig == TARGET_SIGNAL_TRAP
1017 && read_pc_pid (ptid)
1018 - gdbarch_decr_pc_after_break (current_gdbarch) == pd_brk_addr)
1019 return pd_activate (0);
1020
1021 return pd_update (0);
1022 }
1023
1024 /* Record that the 64-bit general-purpose registers contain VALS. */
1025
1026 static void
1027 supply_gprs64 (struct regcache *regcache, uint64_t *vals)
1028 {
1029 struct gdbarch_tdep *tdep = gdbarch_tdep (current_gdbarch);
1030 int regno;
1031
1032 for (regno = 0; regno < ppc_num_gprs; regno++)
1033 regcache_raw_supply (regcache, tdep->ppc_gp0_regnum + regno,
1034 (char *) (vals + regno));
1035 }
1036
1037 /* Record that 32-bit register REGNO contains VAL. */
1038
1039 static void
1040 supply_reg32 (struct regcache *regcache, int regno, uint32_t val)
1041 {
1042 regcache_raw_supply (regcache, regno, (char *) &val);
1043 }
1044
1045 /* Record that the floating-point registers contain VALS. */
1046
1047 static void
1048 supply_fprs (struct regcache *regcache, double *vals)
1049 {
1050 struct gdbarch_tdep *tdep = gdbarch_tdep (current_gdbarch);
1051 int regno;
1052
1053 /* This function should never be called on architectures without
1054 floating-point registers. */
1055 gdb_assert (ppc_floating_point_unit_p (current_gdbarch));
1056
1057 for (regno = 0; regno < ppc_num_fprs; regno++)
1058 regcache_raw_supply (regcache, regno + tdep->ppc_fp0_regnum,
1059 (char *) (vals + regno));
1060 }
1061
1062 /* Predicate to test whether given register number is a "special" register. */
1063 static int
1064 special_register_p (int regno)
1065 {
1066 struct gdbarch_tdep *tdep = gdbarch_tdep (current_gdbarch);
1067
1068 return regno == gdbarch_pc_regnum (current_gdbarch)
1069 || regno == tdep->ppc_ps_regnum
1070 || regno == tdep->ppc_cr_regnum
1071 || regno == tdep->ppc_lr_regnum
1072 || regno == tdep->ppc_ctr_regnum
1073 || regno == tdep->ppc_xer_regnum
1074 || (tdep->ppc_fpscr_regnum >= 0 && regno == tdep->ppc_fpscr_regnum)
1075 || (tdep->ppc_mq_regnum >= 0 && regno == tdep->ppc_mq_regnum);
1076 }
1077
1078
1079 /* Record that the special registers contain the specified 64-bit and
1080 32-bit values. */
1081
1082 static void
1083 supply_sprs64 (struct regcache *regcache,
1084 uint64_t iar, uint64_t msr, uint32_t cr,
1085 uint64_t lr, uint64_t ctr, uint32_t xer,
1086 uint32_t fpscr)
1087 {
1088 struct gdbarch_tdep *tdep = gdbarch_tdep (current_gdbarch);
1089
1090 regcache_raw_supply (regcache, gdbarch_pc_regnum (current_gdbarch),
1091 (char *) &iar);
1092 regcache_raw_supply (regcache, tdep->ppc_ps_regnum, (char *) &msr);
1093 regcache_raw_supply (regcache, tdep->ppc_cr_regnum, (char *) &cr);
1094 regcache_raw_supply (regcache, tdep->ppc_lr_regnum, (char *) &lr);
1095 regcache_raw_supply (regcache, tdep->ppc_ctr_regnum, (char *) &ctr);
1096 regcache_raw_supply (regcache, tdep->ppc_xer_regnum, (char *) &xer);
1097 if (tdep->ppc_fpscr_regnum >= 0)
1098 regcache_raw_supply (regcache, tdep->ppc_fpscr_regnum,
1099 (char *) &fpscr);
1100 }
1101
1102 /* Record that the special registers contain the specified 32-bit
1103 values. */
1104
1105 static void
1106 supply_sprs32 (struct regcache *regcache,
1107 uint32_t iar, uint32_t msr, uint32_t cr,
1108 uint32_t lr, uint32_t ctr, uint32_t xer,
1109 uint32_t fpscr)
1110 {
1111 struct gdbarch_tdep *tdep = gdbarch_tdep (current_gdbarch);
1112
1113 regcache_raw_supply (regcache, gdbarch_pc_regnum (current_gdbarch),
1114 (char *) &iar);
1115 regcache_raw_supply (regcache, tdep->ppc_ps_regnum, (char *) &msr);
1116 regcache_raw_supply (regcache, tdep->ppc_cr_regnum, (char *) &cr);
1117 regcache_raw_supply (regcache, tdep->ppc_lr_regnum, (char *) &lr);
1118 regcache_raw_supply (regcache, tdep->ppc_ctr_regnum, (char *) &ctr);
1119 regcache_raw_supply (regcache, tdep->ppc_xer_regnum, (char *) &xer);
1120 if (tdep->ppc_fpscr_regnum >= 0)
1121 regcache_raw_supply (regcache, tdep->ppc_fpscr_regnum,
1122 (char *) &fpscr);
1123 }
1124
1125 /* Fetch all registers from pthread PDTID, which doesn't have a kernel
1126 thread.
1127
1128 There's no way to query a single register from a non-kernel
1129 pthread, so there's no need for a single-register version of this
1130 function. */
1131
1132 static void
1133 fetch_regs_user_thread (struct regcache *regcache, pthdb_pthread_t pdtid)
1134 {
1135 struct gdbarch_tdep *tdep = gdbarch_tdep (current_gdbarch);
1136 int status, i;
1137 pthdb_context_t ctx;
1138
1139 if (debug_aix_thread)
1140 fprintf_unfiltered (gdb_stdlog,
1141 "fetch_regs_user_thread %lx\n", (long) pdtid);
1142 status = pthdb_pthread_context (pd_session, pdtid, &ctx);
1143 if (status != PTHDB_SUCCESS)
1144 error (_("aix-thread: fetch_registers: pthdb_pthread_context returned %s"),
1145 pd_status2str (status));
1146
1147 /* General-purpose registers. */
1148
1149 if (arch64)
1150 supply_gprs64 (regcache, ctx.gpr);
1151 else
1152 for (i = 0; i < ppc_num_gprs; i++)
1153 supply_reg32 (regcache, tdep->ppc_gp0_regnum + i, ctx.gpr[i]);
1154
1155 /* Floating-point registers. */
1156
1157 if (ppc_floating_point_unit_p (current_gdbarch))
1158 supply_fprs (regcache, ctx.fpr);
1159
1160 /* Special registers. */
1161
1162 if (arch64)
1163 supply_sprs64 (regcache, ctx.iar, ctx.msr, ctx.cr, ctx.lr, ctx.ctr,
1164 ctx.xer, ctx.fpscr);
1165 else
1166 supply_sprs32 (regcache, ctx.iar, ctx.msr, ctx.cr, ctx.lr, ctx.ctr,
1167 ctx.xer, ctx.fpscr);
1168 }
1169
1170 /* Fetch register REGNO if != -1 or all registers otherwise from
1171 kernel thread TID.
1172
1173 AIX provides a way to query all of a kernel thread's GPRs, FPRs, or
1174 SPRs, but there's no way to query individual registers within those
1175 groups. Therefore, if REGNO != -1, this function fetches an entire
1176 group.
1177
1178 Unfortunately, kernel thread register queries often fail with
1179 EPERM, indicating that the thread is in kernel space. This breaks
1180 backtraces of threads other than the current one. To make that
1181 breakage obvious without throwing an error to top level (which is
1182 bad e.g. during "info threads" output), zero registers that can't
1183 be retrieved. */
1184
1185 static void
1186 fetch_regs_kernel_thread (struct regcache *regcache, int regno,
1187 pthdb_tid_t tid)
1188 {
1189 struct gdbarch_tdep *tdep = gdbarch_tdep (current_gdbarch);
1190 uint64_t gprs64[ppc_num_gprs];
1191 uint32_t gprs32[ppc_num_gprs];
1192 double fprs[ppc_num_fprs];
1193 struct ptxsprs sprs64;
1194 struct ptsprs sprs32;
1195 int i;
1196
1197 if (debug_aix_thread)
1198 fprintf_unfiltered (gdb_stdlog,
1199 "fetch_regs_kernel_thread tid=%lx regno=%d arch64=%d\n",
1200 (long) tid, regno, arch64);
1201
1202 /* General-purpose registers. */
1203 if (regno == -1
1204 || (tdep->ppc_gp0_regnum <= regno
1205 && regno < tdep->ppc_gp0_regnum + ppc_num_gprs))
1206 {
1207 if (arch64)
1208 {
1209 if (!ptrace64aix (PTT_READ_GPRS, tid,
1210 (unsigned long) gprs64, 0, NULL))
1211 memset (gprs64, 0, sizeof (gprs64));
1212 supply_gprs64 (regcache, gprs64);
1213 }
1214 else
1215 {
1216 if (!ptrace32 (PTT_READ_GPRS, tid, gprs32, 0, NULL))
1217 memset (gprs32, 0, sizeof (gprs32));
1218 for (i = 0; i < ppc_num_gprs; i++)
1219 supply_reg32 (regcache, tdep->ppc_gp0_regnum + i, gprs32[i]);
1220 }
1221 }
1222
1223 /* Floating-point registers. */
1224
1225 if (ppc_floating_point_unit_p (current_gdbarch)
1226 && (regno == -1
1227 || (regno >= tdep->ppc_fp0_regnum
1228 && regno < tdep->ppc_fp0_regnum + ppc_num_fprs)))
1229 {
1230 if (!ptrace32 (PTT_READ_FPRS, tid, (int *) fprs, 0, NULL))
1231 memset (fprs, 0, sizeof (fprs));
1232 supply_fprs (regcache, fprs);
1233 }
1234
1235 /* Special-purpose registers. */
1236
1237 if (regno == -1 || special_register_p (regno))
1238 {
1239 if (arch64)
1240 {
1241 if (!ptrace64aix (PTT_READ_SPRS, tid,
1242 (unsigned long) &sprs64, 0, NULL))
1243 memset (&sprs64, 0, sizeof (sprs64));
1244 supply_sprs64 (regcache, sprs64.pt_iar, sprs64.pt_msr,
1245 sprs64.pt_cr, sprs64.pt_lr, sprs64.pt_ctr,
1246 sprs64.pt_xer, sprs64.pt_fpscr);
1247 }
1248 else
1249 {
1250 struct gdbarch_tdep *tdep = gdbarch_tdep (current_gdbarch);
1251
1252 if (!ptrace32 (PTT_READ_SPRS, tid, (int *) &sprs32, 0, NULL))
1253 memset (&sprs32, 0, sizeof (sprs32));
1254 supply_sprs32 (regcache, sprs32.pt_iar, sprs32.pt_msr, sprs32.pt_cr,
1255 sprs32.pt_lr, sprs32.pt_ctr, sprs32.pt_xer,
1256 sprs32.pt_fpscr);
1257
1258 if (tdep->ppc_mq_regnum >= 0)
1259 regcache_raw_supply (regcache, tdep->ppc_mq_regnum,
1260 (char *) &sprs32.pt_mq);
1261 }
1262 }
1263 }
1264
1265 /* Fetch register REGNO if != -1 or all registers otherwise in the
1266 thread/process specified by inferior_ptid. */
1267
1268 static void
1269 aix_thread_fetch_registers (struct regcache *regcache, int regno)
1270 {
1271 struct thread_info *thread;
1272 pthdb_tid_t tid;
1273
1274 if (!PD_TID (inferior_ptid))
1275 base_target.to_fetch_registers (regcache, regno);
1276 else
1277 {
1278 thread = find_thread_pid (inferior_ptid);
1279 tid = thread->private->tid;
1280
1281 if (tid == PTHDB_INVALID_TID)
1282 fetch_regs_user_thread (regcache, thread->private->pdtid);
1283 else
1284 fetch_regs_kernel_thread (regcache, regno, tid);
1285 }
1286 }
1287
1288 /* Store the gp registers into an array of uint32_t or uint64_t. */
1289
1290 static void
1291 fill_gprs64 (const struct regcache *regcache, uint64_t *vals)
1292 {
1293 struct gdbarch_tdep *tdep = gdbarch_tdep (current_gdbarch);
1294 int regno;
1295
1296 for (regno = 0; regno < ppc_num_gprs; regno++)
1297 if (regcache_valid_p (regcache, tdep->ppc_gp0_regnum + regno))
1298 regcache_raw_collect (regcache, tdep->ppc_gp0_regnum + regno,
1299 vals + regno);
1300 }
1301
1302 static void
1303 fill_gprs32 (const struct regcache *regcache, uint32_t *vals)
1304 {
1305 struct gdbarch_tdep *tdep = gdbarch_tdep (current_gdbarch);
1306 int regno;
1307
1308 for (regno = 0; regno < ppc_num_gprs; regno++)
1309 if (regcache_valid_p (regcache, tdep->ppc_gp0_regnum + regno))
1310 regcache_raw_collect (regcache, tdep->ppc_gp0_regnum + regno,
1311 vals + regno);
1312 }
1313
1314 /* Store the floating point registers into a double array. */
1315 static void
1316 fill_fprs (const struct regcache *regcache, double *vals)
1317 {
1318 struct gdbarch_tdep *tdep = gdbarch_tdep (current_gdbarch);
1319 int regno;
1320
1321 /* This function should never be called on architectures without
1322 floating-point registers. */
1323 gdb_assert (ppc_floating_point_unit_p (current_gdbarch));
1324
1325 for (regno = tdep->ppc_fp0_regnum;
1326 regno < tdep->ppc_fp0_regnum + ppc_num_fprs;
1327 regno++)
1328 if (regcache_valid_p (regcache, regno))
1329 regcache_raw_collect (regcache, regno, vals + regno);
1330 }
1331
1332 /* Store the special registers into the specified 64-bit and 32-bit
1333 locations. */
1334
1335 static void
1336 fill_sprs64 (const struct regcache *regcache,
1337 uint64_t *iar, uint64_t *msr, uint32_t *cr,
1338 uint64_t *lr, uint64_t *ctr, uint32_t *xer,
1339 uint32_t *fpscr)
1340 {
1341 struct gdbarch_tdep *tdep = gdbarch_tdep (current_gdbarch);
1342
1343 /* Verify that the size of the size of the IAR buffer is the
1344 same as the raw size of the PC (in the register cache). If
1345 they're not, then either GDB has been built incorrectly, or
1346 there's some other kind of internal error. To be really safe,
1347 we should check all of the sizes. */
1348 gdb_assert (sizeof (*iar) == register_size
1349 (current_gdbarch,
1350 gdbarch_pc_regnum (current_gdbarch)));
1351
1352 if (regcache_valid_p (regcache, gdbarch_pc_regnum (current_gdbarch)))
1353 regcache_raw_collect (regcache, gdbarch_pc_regnum (current_gdbarch), iar);
1354 if (regcache_valid_p (regcache, tdep->ppc_ps_regnum))
1355 regcache_raw_collect (regcache, tdep->ppc_ps_regnum, msr);
1356 if (regcache_valid_p (regcache, tdep->ppc_cr_regnum))
1357 regcache_raw_collect (regcache, tdep->ppc_cr_regnum, cr);
1358 if (regcache_valid_p (regcache, tdep->ppc_lr_regnum))
1359 regcache_raw_collect (regcache, tdep->ppc_lr_regnum, lr);
1360 if (regcache_valid_p (regcache, tdep->ppc_ctr_regnum))
1361 regcache_raw_collect (regcache, tdep->ppc_ctr_regnum, ctr);
1362 if (regcache_valid_p (regcache, tdep->ppc_xer_regnum))
1363 regcache_raw_collect (regcache, tdep->ppc_xer_regnum, xer);
1364 if (tdep->ppc_fpscr_regnum >= 0
1365 && regcache_valid_p (regcache, tdep->ppc_fpscr_regnum))
1366 regcache_raw_collect (regcache, tdep->ppc_fpscr_regnum, fpscr);
1367 }
1368
1369 static void
1370 fill_sprs32 (const struct regcache *regcache,
1371 uint32_t *iar, uint32_t *msr, uint32_t *cr,
1372 uint32_t *lr, uint32_t *ctr, uint32_t *xer,
1373 uint32_t *fpscr)
1374 {
1375 struct gdbarch_tdep *tdep = gdbarch_tdep (current_gdbarch);
1376
1377 /* Verify that the size of the size of the IAR buffer is the
1378 same as the raw size of the PC (in the register cache). If
1379 they're not, then either GDB has been built incorrectly, or
1380 there's some other kind of internal error. To be really safe,
1381 we should check all of the sizes. */
1382 gdb_assert (sizeof (*iar) == register_size (current_gdbarch,
1383 gdbarch_pc_regnum
1384 (current_gdbarch)));
1385
1386 if (regcache_valid_p (regcache, gdbarch_pc_regnum (current_gdbarch)))
1387 regcache_raw_collect (regcache, gdbarch_pc_regnum (current_gdbarch), iar);
1388 if (regcache_valid_p (regcache, tdep->ppc_ps_regnum))
1389 regcache_raw_collect (regcache, tdep->ppc_ps_regnum, msr);
1390 if (regcache_valid_p (regcache, tdep->ppc_cr_regnum))
1391 regcache_raw_collect (regcache, tdep->ppc_cr_regnum, cr);
1392 if (regcache_valid_p (regcache, tdep->ppc_lr_regnum))
1393 regcache_raw_collect (regcache, tdep->ppc_lr_regnum, lr);
1394 if (regcache_valid_p (regcache, tdep->ppc_ctr_regnum))
1395 regcache_raw_collect (regcache, tdep->ppc_ctr_regnum, ctr);
1396 if (regcache_valid_p (regcache, tdep->ppc_xer_regnum))
1397 regcache_raw_collect (regcache, tdep->ppc_xer_regnum, xer);
1398 if (tdep->ppc_fpscr_regnum >= 0
1399 && regcache_valid_p (regcache, tdep->ppc_fpscr_regnum))
1400 regcache_raw_collect (regcache, tdep->ppc_fpscr_regnum, fpscr);
1401 }
1402
1403 /* Store all registers into pthread PDTID, which doesn't have a kernel
1404 thread.
1405
1406 It's possible to store a single register into a non-kernel pthread,
1407 but I doubt it's worth the effort. */
1408
1409 static void
1410 store_regs_user_thread (const struct regcache *regcache, pthdb_pthread_t pdtid)
1411 {
1412 struct gdbarch_tdep *tdep = gdbarch_tdep (current_gdbarch);
1413 int status, i;
1414 pthdb_context_t ctx;
1415 uint32_t int32;
1416 uint64_t int64;
1417 double dbl;
1418
1419 if (debug_aix_thread)
1420 fprintf_unfiltered (gdb_stdlog,
1421 "store_regs_user_thread %lx\n", (long) pdtid);
1422
1423 /* Retrieve the thread's current context for its non-register
1424 values. */
1425 status = pthdb_pthread_context (pd_session, pdtid, &ctx);
1426 if (status != PTHDB_SUCCESS)
1427 error (_("aix-thread: store_registers: pthdb_pthread_context returned %s"),
1428 pd_status2str (status));
1429
1430 /* Collect general-purpose register values from the regcache. */
1431
1432 for (i = 0; i < ppc_num_gprs; i++)
1433 if (regcache_valid_p (regcache, tdep->ppc_gp0_regnum + i))
1434 {
1435 if (arch64)
1436 {
1437 regcache_raw_collect (regcache, tdep->ppc_gp0_regnum + i,
1438 (void *) &int64);
1439 ctx.gpr[i] = int64;
1440 }
1441 else
1442 {
1443 regcache_raw_collect (regcache, tdep->ppc_gp0_regnum + i,
1444 (void *) &int32);
1445 ctx.gpr[i] = int32;
1446 }
1447 }
1448
1449 /* Collect floating-point register values from the regcache. */
1450 if (ppc_floating_point_unit_p (current_gdbarch))
1451 fill_fprs (regcache, ctx.fpr);
1452
1453 /* Special registers (always kept in ctx as 64 bits). */
1454 if (arch64)
1455 {
1456 fill_sprs64 (regcache, &ctx.iar, &ctx.msr, &ctx.cr, &ctx.lr, &ctx.ctr,
1457 &ctx.xer, &ctx.fpscr);
1458 }
1459 else
1460 {
1461 /* Problem: ctx.iar etc. are 64 bits, but raw_registers are 32.
1462 Solution: use 32-bit temp variables. */
1463 uint32_t tmp_iar, tmp_msr, tmp_cr, tmp_lr, tmp_ctr, tmp_xer,
1464 tmp_fpscr;
1465
1466 fill_sprs32 (regcache, &tmp_iar, &tmp_msr, &tmp_cr, &tmp_lr, &tmp_ctr,
1467 &tmp_xer, &tmp_fpscr);
1468 if (regcache_valid_p (regcache, gdbarch_pc_regnum (current_gdbarch)))
1469 ctx.iar = tmp_iar;
1470 if (regcache_valid_p (regcache, tdep->ppc_ps_regnum))
1471 ctx.msr = tmp_msr;
1472 if (regcache_valid_p (regcache, tdep->ppc_cr_regnum))
1473 ctx.cr = tmp_cr;
1474 if (regcache_valid_p (regcache, tdep->ppc_lr_regnum))
1475 ctx.lr = tmp_lr;
1476 if (regcache_valid_p (regcache, tdep->ppc_ctr_regnum))
1477 ctx.ctr = tmp_ctr;
1478 if (regcache_valid_p (regcache, tdep->ppc_xer_regnum))
1479 ctx.xer = tmp_xer;
1480 if (regcache_valid_p (regcache, tdep->ppc_xer_regnum))
1481 ctx.fpscr = tmp_fpscr;
1482 }
1483
1484 status = pthdb_pthread_setcontext (pd_session, pdtid, &ctx);
1485 if (status != PTHDB_SUCCESS)
1486 error (_("aix-thread: store_registers: pthdb_pthread_setcontext returned %s"),
1487 pd_status2str (status));
1488 }
1489
1490 /* Store register REGNO if != -1 or all registers otherwise into
1491 kernel thread TID.
1492
1493 AIX provides a way to set all of a kernel thread's GPRs, FPRs, or
1494 SPRs, but there's no way to set individual registers within those
1495 groups. Therefore, if REGNO != -1, this function stores an entire
1496 group. */
1497
1498 static void
1499 store_regs_kernel_thread (const struct regcache *regcache, int regno,
1500 pthdb_tid_t tid)
1501 {
1502 struct gdbarch_tdep *tdep = gdbarch_tdep (current_gdbarch);
1503 uint64_t gprs64[ppc_num_gprs];
1504 uint32_t gprs32[ppc_num_gprs];
1505 double fprs[ppc_num_fprs];
1506 struct ptxsprs sprs64;
1507 struct ptsprs sprs32;
1508 int i;
1509
1510 if (debug_aix_thread)
1511 fprintf_unfiltered (gdb_stdlog,
1512 "store_regs_kernel_thread tid=%lx regno=%d\n",
1513 (long) tid, regno);
1514
1515 /* General-purpose registers. */
1516 if (regno == -1
1517 || (tdep->ppc_gp0_regnum <= regno
1518 && regno < tdep->ppc_gp0_regnum + ppc_num_fprs))
1519 {
1520 if (arch64)
1521 {
1522 /* Pre-fetch: some regs may not be in the cache. */
1523 ptrace64aix (PTT_READ_GPRS, tid, (unsigned long) gprs64, 0, NULL);
1524 fill_gprs64 (regcache, gprs64);
1525 ptrace64aix (PTT_WRITE_GPRS, tid, (unsigned long) gprs64, 0, NULL);
1526 }
1527 else
1528 {
1529 /* Pre-fetch: some regs may not be in the cache. */
1530 ptrace32 (PTT_READ_GPRS, tid, gprs32, 0, NULL);
1531 fill_gprs32 (regcache, gprs32);
1532 ptrace32 (PTT_WRITE_GPRS, tid, gprs32, 0, NULL);
1533 }
1534 }
1535
1536 /* Floating-point registers. */
1537
1538 if (ppc_floating_point_unit_p (current_gdbarch)
1539 && (regno == -1
1540 || (regno >= tdep->ppc_fp0_regnum
1541 && regno < tdep->ppc_fp0_regnum + ppc_num_fprs)))
1542 {
1543 /* Pre-fetch: some regs may not be in the cache. */
1544 ptrace32 (PTT_READ_FPRS, tid, (int *) fprs, 0, NULL);
1545 fill_fprs (regcache, fprs);
1546 ptrace32 (PTT_WRITE_FPRS, tid, (int *) fprs, 0, NULL);
1547 }
1548
1549 /* Special-purpose registers. */
1550
1551 if (regno == -1 || special_register_p (regno))
1552 {
1553 if (arch64)
1554 {
1555 /* Pre-fetch: some registers won't be in the cache. */
1556 ptrace64aix (PTT_READ_SPRS, tid,
1557 (unsigned long) &sprs64, 0, NULL);
1558 fill_sprs64 (regcache, &sprs64.pt_iar, &sprs64.pt_msr,
1559 &sprs64.pt_cr, &sprs64.pt_lr, &sprs64.pt_ctr,
1560 &sprs64.pt_xer, &sprs64.pt_fpscr);
1561 ptrace64aix (PTT_WRITE_SPRS, tid,
1562 (unsigned long) &sprs64, 0, NULL);
1563 }
1564 else
1565 {
1566 /* The contents of "struct ptspr" were declared as "unsigned
1567 long" up to AIX 5.2, but are "unsigned int" since 5.3.
1568 Use temporaries to work around this problem. Also, add an
1569 assert here to make sure we fail if the system header files
1570 use "unsigned long", and the size of that type is not what
1571 the headers expect. */
1572 uint32_t tmp_iar, tmp_msr, tmp_cr, tmp_lr, tmp_ctr, tmp_xer,
1573 tmp_fpscr;
1574
1575 gdb_assert (sizeof (sprs32.pt_iar) == 4);
1576
1577 /* Pre-fetch: some registers won't be in the cache. */
1578 ptrace32 (PTT_READ_SPRS, tid, (int *) &sprs32, 0, NULL);
1579
1580 fill_sprs32 (regcache, &tmp_iar, &tmp_msr, &tmp_cr, &tmp_lr,
1581 &tmp_ctr, &tmp_xer, &tmp_fpscr);
1582
1583 sprs32.pt_iar = tmp_iar;
1584 sprs32.pt_msr = tmp_msr;
1585 sprs32.pt_cr = tmp_cr;
1586 sprs32.pt_lr = tmp_lr;
1587 sprs32.pt_ctr = tmp_ctr;
1588 sprs32.pt_xer = tmp_xer;
1589 sprs32.pt_fpscr = tmp_fpscr;
1590
1591 if (tdep->ppc_mq_regnum >= 0)
1592 if (regcache_valid_p (regcache, tdep->ppc_mq_regnum))
1593 regcache_raw_collect (regcache, tdep->ppc_mq_regnum,
1594 &sprs32.pt_mq);
1595
1596 ptrace32 (PTT_WRITE_SPRS, tid, (int *) &sprs32, 0, NULL);
1597 }
1598 }
1599 }
1600
1601 /* Store gdb's current view of the register set into the
1602 thread/process specified by inferior_ptid. */
1603
1604 static void
1605 aix_thread_store_registers (struct regcache *regcache, int regno)
1606 {
1607 struct thread_info *thread;
1608 pthdb_tid_t tid;
1609
1610 if (!PD_TID (inferior_ptid))
1611 base_target.to_store_registers (regcache, regno);
1612 else
1613 {
1614 thread = find_thread_pid (inferior_ptid);
1615 tid = thread->private->tid;
1616
1617 if (tid == PTHDB_INVALID_TID)
1618 store_regs_user_thread (regcache, thread->private->pdtid);
1619 else
1620 store_regs_kernel_thread (regcache, regno, tid);
1621 }
1622 }
1623
1624 /* Attempt a transfer all LEN bytes starting at OFFSET between the
1625 inferior's OBJECT:ANNEX space and GDB's READBUF/WRITEBUF buffer.
1626 Return the number of bytes actually transferred. */
1627
1628 static LONGEST
1629 aix_thread_xfer_partial (struct target_ops *ops, enum target_object object,
1630 const char *annex, gdb_byte *readbuf,
1631 const gdb_byte *writebuf, ULONGEST offset, LONGEST len)
1632 {
1633 struct cleanup *old_chain = save_inferior_ptid ();
1634 LONGEST xfer;
1635
1636 inferior_ptid = pid_to_ptid (PIDGET (inferior_ptid));
1637 xfer = base_target.to_xfer_partial (ops, object, annex,
1638 readbuf, writebuf, offset, len);
1639
1640 do_cleanups (old_chain);
1641 return xfer;
1642 }
1643
1644 /* Kill and forget about the inferior process. */
1645
1646 static void
1647 aix_thread_kill (void)
1648 {
1649 struct cleanup *cleanup = save_inferior_ptid ();
1650
1651 inferior_ptid = pid_to_ptid (PIDGET (inferior_ptid));
1652 base_target.to_kill ();
1653 do_cleanups (cleanup);
1654 }
1655
1656 /* Clean up after the inferior exits. */
1657
1658 static void
1659 aix_thread_mourn_inferior (void)
1660 {
1661 pd_deactivate ();
1662 base_target.to_mourn_inferior ();
1663 }
1664
1665 /* Return whether thread PID is still valid. */
1666
1667 static int
1668 aix_thread_thread_alive (ptid_t ptid)
1669 {
1670 if (!PD_TID (ptid))
1671 return base_target.to_thread_alive (ptid);
1672
1673 /* We update the thread list every time the child stops, so all
1674 valid threads should be in the thread list. */
1675 return in_thread_list (ptid);
1676 }
1677
1678 /* Return a printable representation of composite PID for use in
1679 "info threads" output. */
1680
1681 static char *
1682 aix_thread_pid_to_str (ptid_t ptid)
1683 {
1684 static char *ret = NULL;
1685
1686 if (!PD_TID (ptid))
1687 return base_target.to_pid_to_str (ptid);
1688
1689 /* Free previous return value; a new one will be allocated by
1690 xstrprintf(). */
1691 xfree (ret);
1692
1693 ret = xstrprintf (_("Thread %ld"), ptid_get_tid (ptid));
1694 return ret;
1695 }
1696
1697 /* Return a printable representation of extra information about
1698 THREAD, for use in "info threads" output. */
1699
1700 static char *
1701 aix_thread_extra_thread_info (struct thread_info *thread)
1702 {
1703 struct ui_file *buf;
1704 int status;
1705 pthdb_pthread_t pdtid;
1706 pthdb_tid_t tid;
1707 pthdb_state_t state;
1708 pthdb_suspendstate_t suspendstate;
1709 pthdb_detachstate_t detachstate;
1710 int cancelpend;
1711 long length;
1712 static char *ret = NULL;
1713
1714 if (!PD_TID (thread->ptid))
1715 return NULL;
1716
1717 buf = mem_fileopen ();
1718
1719 pdtid = thread->private->pdtid;
1720 tid = thread->private->tid;
1721
1722 if (tid != PTHDB_INVALID_TID)
1723 /* i18n: Like "thread-identifier %d, [state] running, suspended" */
1724 fprintf_unfiltered (buf, _("tid %d"), (int)tid);
1725
1726 status = pthdb_pthread_state (pd_session, pdtid, &state);
1727 if (status != PTHDB_SUCCESS)
1728 state = PST_NOTSUP;
1729 fprintf_unfiltered (buf, ", %s", state2str (state));
1730
1731 status = pthdb_pthread_suspendstate (pd_session, pdtid,
1732 &suspendstate);
1733 if (status == PTHDB_SUCCESS && suspendstate == PSS_SUSPENDED)
1734 /* i18n: Like "Thread-Id %d, [state] running, suspended" */
1735 fprintf_unfiltered (buf, _(", suspended"));
1736
1737 status = pthdb_pthread_detachstate (pd_session, pdtid,
1738 &detachstate);
1739 if (status == PTHDB_SUCCESS && detachstate == PDS_DETACHED)
1740 /* i18n: Like "Thread-Id %d, [state] running, detached" */
1741 fprintf_unfiltered (buf, _(", detached"));
1742
1743 pthdb_pthread_cancelpend (pd_session, pdtid, &cancelpend);
1744 if (status == PTHDB_SUCCESS && cancelpend)
1745 /* i18n: Like "Thread-Id %d, [state] running, cancel pending" */
1746 fprintf_unfiltered (buf, _(", cancel pending"));
1747
1748 ui_file_write (buf, "", 1);
1749
1750 xfree (ret); /* Free old buffer. */
1751
1752 ret = ui_file_xstrdup (buf, &length);
1753 ui_file_delete (buf);
1754
1755 return ret;
1756 }
1757
1758 /* Initialize target aix_thread_ops. */
1759
1760 static void
1761 init_aix_thread_ops (void)
1762 {
1763 aix_thread_ops.to_shortname = "aix-threads";
1764 aix_thread_ops.to_longname = _("AIX pthread support");
1765 aix_thread_ops.to_doc = _("AIX pthread support");
1766
1767 aix_thread_ops.to_attach = aix_thread_attach;
1768 aix_thread_ops.to_detach = aix_thread_detach;
1769 aix_thread_ops.to_resume = aix_thread_resume;
1770 aix_thread_ops.to_wait = aix_thread_wait;
1771 aix_thread_ops.to_fetch_registers = aix_thread_fetch_registers;
1772 aix_thread_ops.to_store_registers = aix_thread_store_registers;
1773 aix_thread_ops.to_xfer_partial = aix_thread_xfer_partial;
1774 /* No need for aix_thread_ops.to_create_inferior, because we activate thread
1775 debugging when the inferior reaches pd_brk_addr. */
1776 aix_thread_ops.to_kill = aix_thread_kill;
1777 aix_thread_ops.to_mourn_inferior = aix_thread_mourn_inferior;
1778 aix_thread_ops.to_thread_alive = aix_thread_thread_alive;
1779 aix_thread_ops.to_pid_to_str = aix_thread_pid_to_str;
1780 aix_thread_ops.to_extra_thread_info = aix_thread_extra_thread_info;
1781 aix_thread_ops.to_stratum = thread_stratum;
1782 aix_thread_ops.to_magic = OPS_MAGIC;
1783 }
1784
1785 /* Module startup initialization function, automagically called by
1786 init.c. */
1787
1788 void
1789 _initialize_aix_thread (void)
1790 {
1791 init_aix_thread_ops ();
1792 add_target (&aix_thread_ops);
1793
1794 /* Notice when object files get loaded and unloaded. */
1795 observer_attach_new_objfile (new_objfile);
1796
1797 add_setshow_boolean_cmd ("aix-thread", class_maintenance, &debug_aix_thread,
1798 _("Set debugging of AIX thread module."),
1799 _("Show debugging of AIX thread module."),
1800 _("Enables debugging output (used to debug GDB)."),
1801 NULL, NULL, /* FIXME: i18n: Debugging of AIX thread module is \"%d\". */
1802 &setdebuglist, &showdebuglist);
1803 }
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