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1 /* Machine independent support for SVR4 /proc (process file system) for GDB.
2
3 Copyright (C) 1999, 2000, 2001, 2002, 2003, 2006, 2007
4 Free Software Foundation, Inc.
5
6 Written by Michael Snyder at Cygnus Solutions.
7 Based on work by Fred Fish, Stu Grossman, Geoff Noer, and others.
8
9 This file is part of GDB.
10
11 This program is free software; you can redistribute it and/or modify
12 it under the terms of the GNU General Public License as published by
13 the Free Software Foundation; either version 3 of the License, or
14 (at your option) any later version.
15
16 This program is distributed in the hope that it will be useful,
17 but WITHOUT ANY WARRANTY; without even the implied warranty of
18 MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
19 GNU General Public License for more details.
20
21 You should have received a copy of the GNU General Public License
22 along with this program. If not, see <http://www.gnu.org/licenses/>. */
23
24 #include "defs.h"
25 #include "inferior.h"
26 #include "target.h"
27 #include "gdbcore.h"
28 #include "elf-bfd.h" /* for elfcore_write_* */
29 #include "gdbcmd.h"
30 #include "gdbthread.h"
31 #include "regcache.h"
32
33 #if defined (NEW_PROC_API)
34 #define _STRUCTURED_PROC 1 /* Should be done by configure script. */
35 #endif
36
37 #include <sys/procfs.h>
38 #ifdef HAVE_SYS_FAULT_H
39 #include <sys/fault.h>
40 #endif
41 #ifdef HAVE_SYS_SYSCALL_H
42 #include <sys/syscall.h>
43 #endif
44 #include <sys/errno.h>
45 #include "gdb_wait.h"
46 #include <signal.h>
47 #include <ctype.h>
48 #include "gdb_string.h"
49 #include "gdb_assert.h"
50 #include "inflow.h"
51 #include "auxv.h"
52
53 /*
54 * PROCFS.C
55 *
56 * This module provides the interface between GDB and the
57 * /proc file system, which is used on many versions of Unix
58 * as a means for debuggers to control other processes.
59 * Examples of the systems that use this interface are:
60 * Irix
61 * Solaris
62 * OSF
63 * Unixware
64 * AIX5
65 *
66 * /proc works by imitating a file system: you open a simulated file
67 * that represents the process you wish to interact with, and
68 * perform operations on that "file" in order to examine or change
69 * the state of the other process.
70 *
71 * The most important thing to know about /proc and this module
72 * is that there are two very different interfaces to /proc:
73 * One that uses the ioctl system call, and
74 * another that uses read and write system calls.
75 * This module has to support both /proc interfaces. This means
76 * that there are two different ways of doing every basic operation.
77 *
78 * In order to keep most of the code simple and clean, I have
79 * defined an interface "layer" which hides all these system calls.
80 * An ifdef (NEW_PROC_API) determines which interface we are using,
81 * and most or all occurrances of this ifdef should be confined to
82 * this interface layer.
83 */
84
85
86 /* Determine which /proc API we are using:
87 The ioctl API defines PIOCSTATUS, while
88 the read/write (multiple fd) API never does. */
89
90 #ifdef NEW_PROC_API
91 #include <sys/types.h>
92 #include "gdb_dirent.h" /* opendir/readdir, for listing the LWP's */
93 #endif
94
95 #include <fcntl.h> /* for O_RDONLY */
96 #include <unistd.h> /* for "X_OK" */
97 #include "gdb_stat.h" /* for struct stat */
98
99 /* Note: procfs-utils.h must be included after the above system header
100 files, because it redefines various system calls using macros.
101 This may be incompatible with the prototype declarations. */
102
103 #include "proc-utils.h"
104
105 /* Prototypes for supply_gregset etc. */
106 #include "gregset.h"
107
108 /* =================== TARGET_OPS "MODULE" =================== */
109
110 /*
111 * This module defines the GDB target vector and its methods.
112 */
113
114 static void procfs_open (char *, int);
115 static void procfs_attach (char *, int);
116 static void procfs_detach (char *, int);
117 static void procfs_resume (ptid_t, int, enum target_signal);
118 static int procfs_can_run (void);
119 static void procfs_stop (void);
120 static void procfs_files_info (struct target_ops *);
121 static void procfs_fetch_registers (struct regcache *, int);
122 static void procfs_store_registers (struct regcache *, int);
123 static void procfs_notice_signals (ptid_t);
124 static void procfs_prepare_to_store (struct regcache *);
125 static void procfs_kill_inferior (void);
126 static void procfs_mourn_inferior (void);
127 static void procfs_create_inferior (char *, char *, char **, int);
128 static ptid_t procfs_wait (ptid_t, struct target_waitstatus *);
129 static int procfs_xfer_memory (CORE_ADDR, char *, int, int,
130 struct mem_attrib *attrib,
131 struct target_ops *);
132 static LONGEST procfs_xfer_partial (struct target_ops *ops,
133 enum target_object object,
134 const char *annex,
135 void *readbuf, const void *writebuf,
136 ULONGEST offset, LONGEST len);
137
138 static int procfs_thread_alive (ptid_t);
139
140 void procfs_find_new_threads (void);
141 char *procfs_pid_to_str (ptid_t);
142
143 static int proc_find_memory_regions (int (*) (CORE_ADDR,
144 unsigned long,
145 int, int, int,
146 void *),
147 void *);
148
149 static char * procfs_make_note_section (bfd *, int *);
150
151 static int procfs_can_use_hw_breakpoint (int, int, int);
152
153 struct target_ops procfs_ops; /* the target vector */
154
155 static void
156 init_procfs_ops (void)
157 {
158 procfs_ops.to_shortname = "procfs";
159 procfs_ops.to_longname = "Unix /proc child process";
160 procfs_ops.to_doc =
161 "Unix /proc child process (started by the \"run\" command).";
162 procfs_ops.to_open = procfs_open;
163 procfs_ops.to_can_run = procfs_can_run;
164 procfs_ops.to_create_inferior = procfs_create_inferior;
165 procfs_ops.to_kill = procfs_kill_inferior;
166 procfs_ops.to_mourn_inferior = procfs_mourn_inferior;
167 procfs_ops.to_attach = procfs_attach;
168 procfs_ops.to_detach = procfs_detach;
169 procfs_ops.to_wait = procfs_wait;
170 procfs_ops.to_resume = procfs_resume;
171 procfs_ops.to_prepare_to_store = procfs_prepare_to_store;
172 procfs_ops.to_fetch_registers = procfs_fetch_registers;
173 procfs_ops.to_store_registers = procfs_store_registers;
174 procfs_ops.to_xfer_partial = procfs_xfer_partial;
175 procfs_ops.deprecated_xfer_memory = procfs_xfer_memory;
176 procfs_ops.to_insert_breakpoint = memory_insert_breakpoint;
177 procfs_ops.to_remove_breakpoint = memory_remove_breakpoint;
178 procfs_ops.to_notice_signals = procfs_notice_signals;
179 procfs_ops.to_files_info = procfs_files_info;
180 procfs_ops.to_stop = procfs_stop;
181
182 procfs_ops.to_terminal_init = terminal_init_inferior;
183 procfs_ops.to_terminal_inferior = terminal_inferior;
184 procfs_ops.to_terminal_ours_for_output = terminal_ours_for_output;
185 procfs_ops.to_terminal_ours = terminal_ours;
186 procfs_ops.to_terminal_save_ours = terminal_save_ours;
187 procfs_ops.to_terminal_info = child_terminal_info;
188
189 procfs_ops.to_find_new_threads = procfs_find_new_threads;
190 procfs_ops.to_thread_alive = procfs_thread_alive;
191 procfs_ops.to_pid_to_str = procfs_pid_to_str;
192
193 procfs_ops.to_has_all_memory = 1;
194 procfs_ops.to_has_memory = 1;
195 procfs_ops.to_has_execution = 1;
196 procfs_ops.to_has_stack = 1;
197 procfs_ops.to_has_registers = 1;
198 procfs_ops.to_stratum = process_stratum;
199 procfs_ops.to_has_thread_control = tc_schedlock;
200 procfs_ops.to_find_memory_regions = proc_find_memory_regions;
201 procfs_ops.to_make_corefile_notes = procfs_make_note_section;
202 procfs_ops.to_can_use_hw_breakpoint = procfs_can_use_hw_breakpoint;
203 procfs_ops.to_magic = OPS_MAGIC;
204 }
205
206 /* =================== END, TARGET_OPS "MODULE" =================== */
207
208 /*
209 * World Unification:
210 *
211 * Put any typedefs, defines etc. here that are required for
212 * the unification of code that handles different versions of /proc.
213 */
214
215 #ifdef NEW_PROC_API /* Solaris 7 && 8 method for watchpoints */
216 #ifdef WA_READ
217 enum { READ_WATCHFLAG = WA_READ,
218 WRITE_WATCHFLAG = WA_WRITE,
219 EXEC_WATCHFLAG = WA_EXEC,
220 AFTER_WATCHFLAG = WA_TRAPAFTER
221 };
222 #endif
223 #else /* Irix method for watchpoints */
224 enum { READ_WATCHFLAG = MA_READ,
225 WRITE_WATCHFLAG = MA_WRITE,
226 EXEC_WATCHFLAG = MA_EXEC,
227 AFTER_WATCHFLAG = 0 /* trapafter not implemented */
228 };
229 #endif
230
231 /* gdb_sigset_t */
232 #ifdef HAVE_PR_SIGSET_T
233 typedef pr_sigset_t gdb_sigset_t;
234 #else
235 typedef sigset_t gdb_sigset_t;
236 #endif
237
238 /* sigaction */
239 #ifdef HAVE_PR_SIGACTION64_T
240 typedef pr_sigaction64_t gdb_sigaction_t;
241 #else
242 typedef struct sigaction gdb_sigaction_t;
243 #endif
244
245 /* siginfo */
246 #ifdef HAVE_PR_SIGINFO64_T
247 typedef pr_siginfo64_t gdb_siginfo_t;
248 #else
249 typedef struct siginfo gdb_siginfo_t;
250 #endif
251
252 /* gdb_premptysysset */
253 #ifdef premptysysset
254 #define gdb_premptysysset premptysysset
255 #else
256 #define gdb_premptysysset premptyset
257 #endif
258
259 /* praddsysset */
260 #ifdef praddsysset
261 #define gdb_praddsysset praddsysset
262 #else
263 #define gdb_praddsysset praddset
264 #endif
265
266 /* prdelsysset */
267 #ifdef prdelsysset
268 #define gdb_prdelsysset prdelsysset
269 #else
270 #define gdb_prdelsysset prdelset
271 #endif
272
273 /* prissyssetmember */
274 #ifdef prissyssetmember
275 #define gdb_pr_issyssetmember prissyssetmember
276 #else
277 #define gdb_pr_issyssetmember prismember
278 #endif
279
280 /* As a feature test, saying ``#if HAVE_PRSYSENT_T'' everywhere isn't
281 as intuitively descriptive as it could be, so we'll define
282 DYNAMIC_SYSCALLS to mean the same thing. Anyway, at the time of
283 this writing, this feature is only found on AIX5 systems and
284 basically means that the set of syscalls is not fixed. I.e,
285 there's no nice table that one can #include to get all of the
286 syscall numbers. Instead, they're stored in /proc/PID/sysent
287 for each process. We are at least guaranteed that they won't
288 change over the lifetime of the process. But each process could
289 (in theory) have different syscall numbers.
290 */
291 #ifdef HAVE_PRSYSENT_T
292 #define DYNAMIC_SYSCALLS
293 #endif
294
295
296
297 /* =================== STRUCT PROCINFO "MODULE" =================== */
298
299 /* FIXME: this comment will soon be out of date W.R.T. threads. */
300
301 /* The procinfo struct is a wrapper to hold all the state information
302 concerning a /proc process. There should be exactly one procinfo
303 for each process, and since GDB currently can debug only one
304 process at a time, that means there should be only one procinfo.
305 All of the LWP's of a process can be accessed indirectly thru the
306 single process procinfo.
307
308 However, against the day when GDB may debug more than one process,
309 this data structure is kept in a list (which for now will hold no
310 more than one member), and many functions will have a pointer to a
311 procinfo as an argument.
312
313 There will be a separate procinfo structure for use by the (not yet
314 implemented) "info proc" command, so that we can print useful
315 information about any random process without interfering with the
316 inferior's procinfo information. */
317
318 #ifdef NEW_PROC_API
319 /* format strings for /proc paths */
320 # ifndef CTL_PROC_NAME_FMT
321 # define MAIN_PROC_NAME_FMT "/proc/%d"
322 # define CTL_PROC_NAME_FMT "/proc/%d/ctl"
323 # define AS_PROC_NAME_FMT "/proc/%d/as"
324 # define MAP_PROC_NAME_FMT "/proc/%d/map"
325 # define STATUS_PROC_NAME_FMT "/proc/%d/status"
326 # define MAX_PROC_NAME_SIZE sizeof("/proc/99999/lwp/8096/lstatus")
327 # endif
328 /* the name of the proc status struct depends on the implementation */
329 typedef pstatus_t gdb_prstatus_t;
330 typedef lwpstatus_t gdb_lwpstatus_t;
331 #else /* ! NEW_PROC_API */
332 /* format strings for /proc paths */
333 # ifndef CTL_PROC_NAME_FMT
334 # define MAIN_PROC_NAME_FMT "/proc/%05d"
335 # define CTL_PROC_NAME_FMT "/proc/%05d"
336 # define AS_PROC_NAME_FMT "/proc/%05d"
337 # define MAP_PROC_NAME_FMT "/proc/%05d"
338 # define STATUS_PROC_NAME_FMT "/proc/%05d"
339 # define MAX_PROC_NAME_SIZE sizeof("/proc/ttttppppp")
340 # endif
341 /* the name of the proc status struct depends on the implementation */
342 typedef prstatus_t gdb_prstatus_t;
343 typedef prstatus_t gdb_lwpstatus_t;
344 #endif /* NEW_PROC_API */
345
346 typedef struct procinfo {
347 struct procinfo *next;
348 int pid; /* Process ID */
349 int tid; /* Thread/LWP id */
350
351 /* process state */
352 int was_stopped;
353 int ignore_next_sigstop;
354
355 /* The following four fd fields may be identical, or may contain
356 several different fd's, depending on the version of /proc
357 (old ioctl or new read/write). */
358
359 int ctl_fd; /* File descriptor for /proc control file */
360 /*
361 * The next three file descriptors are actually only needed in the
362 * read/write, multiple-file-descriptor implemenation (NEW_PROC_API).
363 * However, to avoid a bunch of #ifdefs in the code, we will use
364 * them uniformly by (in the case of the ioctl single-file-descriptor
365 * implementation) filling them with copies of the control fd.
366 */
367 int status_fd; /* File descriptor for /proc status file */
368 int as_fd; /* File descriptor for /proc as file */
369
370 char pathname[MAX_PROC_NAME_SIZE]; /* Pathname to /proc entry */
371
372 fltset_t saved_fltset; /* Saved traced hardware fault set */
373 gdb_sigset_t saved_sigset; /* Saved traced signal set */
374 gdb_sigset_t saved_sighold; /* Saved held signal set */
375 sysset_t *saved_exitset; /* Saved traced system call exit set */
376 sysset_t *saved_entryset; /* Saved traced system call entry set */
377
378 gdb_prstatus_t prstatus; /* Current process status info */
379
380 #ifndef NEW_PROC_API
381 gdb_fpregset_t fpregset; /* Current floating point registers */
382 #endif
383
384 #ifdef DYNAMIC_SYSCALLS
385 int num_syscalls; /* Total number of syscalls */
386 char **syscall_names; /* Syscall number to name map */
387 #endif
388
389 struct procinfo *thread_list;
390
391 int status_valid : 1;
392 int gregs_valid : 1;
393 int fpregs_valid : 1;
394 int threads_valid: 1;
395 } procinfo;
396
397 static char errmsg[128]; /* shared error msg buffer */
398
399 /* Function prototypes for procinfo module: */
400
401 static procinfo *find_procinfo_or_die (int pid, int tid);
402 static procinfo *find_procinfo (int pid, int tid);
403 static procinfo *create_procinfo (int pid, int tid);
404 static void destroy_procinfo (procinfo * p);
405 static void do_destroy_procinfo_cleanup (void *);
406 static void dead_procinfo (procinfo * p, char *msg, int killp);
407 static int open_procinfo_files (procinfo * p, int which);
408 static void close_procinfo_files (procinfo * p);
409 static int sysset_t_size (procinfo *p);
410 static sysset_t *sysset_t_alloc (procinfo * pi);
411 #ifdef DYNAMIC_SYSCALLS
412 static void load_syscalls (procinfo *pi);
413 static void free_syscalls (procinfo *pi);
414 static int find_syscall (procinfo *pi, char *name);
415 #endif /* DYNAMIC_SYSCALLS */
416
417 /* The head of the procinfo list: */
418 static procinfo * procinfo_list;
419
420 /*
421 * Function: find_procinfo
422 *
423 * Search the procinfo list.
424 *
425 * Returns: pointer to procinfo, or NULL if not found.
426 */
427
428 static procinfo *
429 find_procinfo (int pid, int tid)
430 {
431 procinfo *pi;
432
433 for (pi = procinfo_list; pi; pi = pi->next)
434 if (pi->pid == pid)
435 break;
436
437 if (pi)
438 if (tid)
439 {
440 /* Don't check threads_valid. If we're updating the
441 thread_list, we want to find whatever threads are already
442 here. This means that in general it is the caller's
443 responsibility to check threads_valid and update before
444 calling find_procinfo, if the caller wants to find a new
445 thread. */
446
447 for (pi = pi->thread_list; pi; pi = pi->next)
448 if (pi->tid == tid)
449 break;
450 }
451
452 return pi;
453 }
454
455 /*
456 * Function: find_procinfo_or_die
457 *
458 * Calls find_procinfo, but errors on failure.
459 */
460
461 static procinfo *
462 find_procinfo_or_die (int pid, int tid)
463 {
464 procinfo *pi = find_procinfo (pid, tid);
465
466 if (pi == NULL)
467 {
468 if (tid)
469 error (_("procfs: couldn't find pid %d (kernel thread %d) in procinfo list."),
470 pid, tid);
471 else
472 error (_("procfs: couldn't find pid %d in procinfo list."), pid);
473 }
474 return pi;
475 }
476
477 /* open_with_retry() is a wrapper for open(). The appropriate
478 open() call is attempted; if unsuccessful, it will be retried as
479 many times as needed for the EAGAIN and EINTR conditions.
480
481 For other conditions, open_with_retry() will retry the open() a
482 limited number of times. In addition, a short sleep is imposed
483 prior to retrying the open(). The reason for this sleep is to give
484 the kernel a chance to catch up and create the file in question in
485 the event that GDB "wins" the race to open a file before the kernel
486 has created it. */
487
488 static int
489 open_with_retry (const char *pathname, int flags)
490 {
491 int retries_remaining, status;
492
493 retries_remaining = 2;
494
495 while (1)
496 {
497 status = open (pathname, flags);
498
499 if (status >= 0 || retries_remaining == 0)
500 break;
501 else if (errno != EINTR && errno != EAGAIN)
502 {
503 retries_remaining--;
504 sleep (1);
505 }
506 }
507
508 return status;
509 }
510
511 /*
512 * Function: open_procinfo_files
513 *
514 * Open the file descriptor for the process or LWP.
515 * ifdef NEW_PROC_API, we only open the control file descriptor;
516 * the others are opened lazily as needed.
517 * else (if not NEW_PROC_API), there is only one real
518 * file descriptor, but we keep multiple copies of it so that
519 * the code that uses them does not have to be #ifdef'd.
520 *
521 * Return: file descriptor, or zero for failure.
522 */
523
524 enum { FD_CTL, FD_STATUS, FD_AS };
525
526 static int
527 open_procinfo_files (procinfo *pi, int which)
528 {
529 #ifdef NEW_PROC_API
530 char tmp[MAX_PROC_NAME_SIZE];
531 #endif
532 int fd;
533
534 /*
535 * This function is getting ALMOST long enough to break up into several.
536 * Here is some rationale:
537 *
538 * NEW_PROC_API (Solaris 2.6, Solaris 2.7, Unixware):
539 * There are several file descriptors that may need to be open
540 * for any given process or LWP. The ones we're intereted in are:
541 * - control (ctl) write-only change the state
542 * - status (status) read-only query the state
543 * - address space (as) read/write access memory
544 * - map (map) read-only virtual addr map
545 * Most of these are opened lazily as they are needed.
546 * The pathnames for the 'files' for an LWP look slightly
547 * different from those of a first-class process:
548 * Pathnames for a process (<proc-id>):
549 * /proc/<proc-id>/ctl
550 * /proc/<proc-id>/status
551 * /proc/<proc-id>/as
552 * /proc/<proc-id>/map
553 * Pathnames for an LWP (lwp-id):
554 * /proc/<proc-id>/lwp/<lwp-id>/lwpctl
555 * /proc/<proc-id>/lwp/<lwp-id>/lwpstatus
556 * An LWP has no map or address space file descriptor, since
557 * the memory map and address space are shared by all LWPs.
558 *
559 * Everyone else (Solaris 2.5, Irix, OSF)
560 * There is only one file descriptor for each process or LWP.
561 * For convenience, we copy the same file descriptor into all
562 * three fields of the procinfo struct (ctl_fd, status_fd, and
563 * as_fd, see NEW_PROC_API above) so that code that uses them
564 * doesn't need any #ifdef's.
565 * Pathname for all:
566 * /proc/<proc-id>
567 *
568 * Solaris 2.5 LWP's:
569 * Each LWP has an independent file descriptor, but these
570 * are not obtained via the 'open' system call like the rest:
571 * instead, they're obtained thru an ioctl call (PIOCOPENLWP)
572 * to the file descriptor of the parent process.
573 *
574 * OSF threads:
575 * These do not even have their own independent file descriptor.
576 * All operations are carried out on the file descriptor of the
577 * parent process. Therefore we just call open again for each
578 * thread, getting a new handle for the same 'file'.
579 */
580
581 #ifdef NEW_PROC_API
582 /*
583 * In this case, there are several different file descriptors that
584 * we might be asked to open. The control file descriptor will be
585 * opened early, but the others will be opened lazily as they are
586 * needed.
587 */
588
589 strcpy (tmp, pi->pathname);
590 switch (which) { /* which file descriptor to open? */
591 case FD_CTL:
592 if (pi->tid)
593 strcat (tmp, "/lwpctl");
594 else
595 strcat (tmp, "/ctl");
596 fd = open_with_retry (tmp, O_WRONLY);
597 if (fd <= 0)
598 return 0; /* fail */
599 pi->ctl_fd = fd;
600 break;
601 case FD_AS:
602 if (pi->tid)
603 return 0; /* there is no 'as' file descriptor for an lwp */
604 strcat (tmp, "/as");
605 fd = open_with_retry (tmp, O_RDWR);
606 if (fd <= 0)
607 return 0; /* fail */
608 pi->as_fd = fd;
609 break;
610 case FD_STATUS:
611 if (pi->tid)
612 strcat (tmp, "/lwpstatus");
613 else
614 strcat (tmp, "/status");
615 fd = open_with_retry (tmp, O_RDONLY);
616 if (fd <= 0)
617 return 0; /* fail */
618 pi->status_fd = fd;
619 break;
620 default:
621 return 0; /* unknown file descriptor */
622 }
623 #else /* not NEW_PROC_API */
624 /*
625 * In this case, there is only one file descriptor for each procinfo
626 * (ie. each process or LWP). In fact, only the file descriptor for
627 * the process can actually be opened by an 'open' system call.
628 * The ones for the LWPs have to be obtained thru an IOCTL call
629 * on the process's file descriptor.
630 *
631 * For convenience, we copy each procinfo's single file descriptor
632 * into all of the fields occupied by the several file descriptors
633 * of the NEW_PROC_API implementation. That way, the code that uses
634 * them can be written without ifdefs.
635 */
636
637
638 #ifdef PIOCTSTATUS /* OSF */
639 /* Only one FD; just open it. */
640 if ((fd = open_with_retry (pi->pathname, O_RDWR)) == 0)
641 return 0;
642 #else /* Sol 2.5, Irix, other? */
643 if (pi->tid == 0) /* Master procinfo for the process */
644 {
645 fd = open_with_retry (pi->pathname, O_RDWR);
646 if (fd <= 0)
647 return 0; /* fail */
648 }
649 else /* LWP thread procinfo */
650 {
651 #ifdef PIOCOPENLWP /* Sol 2.5, thread/LWP */
652 procinfo *process;
653 int lwpid = pi->tid;
654
655 /* Find the procinfo for the entire process. */
656 if ((process = find_procinfo (pi->pid, 0)) == NULL)
657 return 0; /* fail */
658
659 /* Now obtain the file descriptor for the LWP. */
660 if ((fd = ioctl (process->ctl_fd, PIOCOPENLWP, &lwpid)) <= 0)
661 return 0; /* fail */
662 #else /* Irix, other? */
663 return 0; /* Don't know how to open threads */
664 #endif /* Sol 2.5 PIOCOPENLWP */
665 }
666 #endif /* OSF PIOCTSTATUS */
667 pi->ctl_fd = pi->as_fd = pi->status_fd = fd;
668 #endif /* NEW_PROC_API */
669
670 return 1; /* success */
671 }
672
673 /*
674 * Function: create_procinfo
675 *
676 * Allocate a data structure and link it into the procinfo list.
677 * (First tries to find a pre-existing one (FIXME: why?)
678 *
679 * Return: pointer to new procinfo struct.
680 */
681
682 static procinfo *
683 create_procinfo (int pid, int tid)
684 {
685 procinfo *pi, *parent;
686
687 if ((pi = find_procinfo (pid, tid)))
688 return pi; /* Already exists, nothing to do. */
689
690 /* find parent before doing malloc, to save having to cleanup */
691 if (tid != 0)
692 parent = find_procinfo_or_die (pid, 0); /* FIXME: should I
693 create it if it
694 doesn't exist yet? */
695
696 pi = (procinfo *) xmalloc (sizeof (procinfo));
697 memset (pi, 0, sizeof (procinfo));
698 pi->pid = pid;
699 pi->tid = tid;
700
701 #ifdef DYNAMIC_SYSCALLS
702 load_syscalls (pi);
703 #endif
704
705 pi->saved_entryset = sysset_t_alloc (pi);
706 pi->saved_exitset = sysset_t_alloc (pi);
707
708 /* Chain into list. */
709 if (tid == 0)
710 {
711 sprintf (pi->pathname, MAIN_PROC_NAME_FMT, pid);
712 pi->next = procinfo_list;
713 procinfo_list = pi;
714 }
715 else
716 {
717 #ifdef NEW_PROC_API
718 sprintf (pi->pathname, "/proc/%05d/lwp/%d", pid, tid);
719 #else
720 sprintf (pi->pathname, MAIN_PROC_NAME_FMT, pid);
721 #endif
722 pi->next = parent->thread_list;
723 parent->thread_list = pi;
724 }
725 return pi;
726 }
727
728 /*
729 * Function: close_procinfo_files
730 *
731 * Close all file descriptors associated with the procinfo
732 */
733
734 static void
735 close_procinfo_files (procinfo *pi)
736 {
737 if (pi->ctl_fd > 0)
738 close (pi->ctl_fd);
739 #ifdef NEW_PROC_API
740 if (pi->as_fd > 0)
741 close (pi->as_fd);
742 if (pi->status_fd > 0)
743 close (pi->status_fd);
744 #endif
745 pi->ctl_fd = pi->as_fd = pi->status_fd = 0;
746 }
747
748 /*
749 * Function: destroy_procinfo
750 *
751 * Destructor function. Close, unlink and deallocate the object.
752 */
753
754 static void
755 destroy_one_procinfo (procinfo **list, procinfo *pi)
756 {
757 procinfo *ptr;
758
759 /* Step one: unlink the procinfo from its list */
760 if (pi == *list)
761 *list = pi->next;
762 else
763 for (ptr = *list; ptr; ptr = ptr->next)
764 if (ptr->next == pi)
765 {
766 ptr->next = pi->next;
767 break;
768 }
769
770 /* Step two: close any open file descriptors */
771 close_procinfo_files (pi);
772
773 /* Step three: free the memory. */
774 #ifdef DYNAMIC_SYSCALLS
775 free_syscalls (pi);
776 #endif
777 xfree (pi->saved_entryset);
778 xfree (pi->saved_exitset);
779 xfree (pi);
780 }
781
782 static void
783 destroy_procinfo (procinfo *pi)
784 {
785 procinfo *tmp;
786
787 if (pi->tid != 0) /* destroy a thread procinfo */
788 {
789 tmp = find_procinfo (pi->pid, 0); /* find the parent process */
790 destroy_one_procinfo (&tmp->thread_list, pi);
791 }
792 else /* destroy a process procinfo and all its threads */
793 {
794 /* First destroy the children, if any; */
795 while (pi->thread_list != NULL)
796 destroy_one_procinfo (&pi->thread_list, pi->thread_list);
797 /* Then destroy the parent. Genocide!!! */
798 destroy_one_procinfo (&procinfo_list, pi);
799 }
800 }
801
802 static void
803 do_destroy_procinfo_cleanup (void *pi)
804 {
805 destroy_procinfo (pi);
806 }
807
808 enum { NOKILL, KILL };
809
810 /*
811 * Function: dead_procinfo
812 *
813 * To be called on a non_recoverable error for a procinfo.
814 * Prints error messages, optionally sends a SIGKILL to the process,
815 * then destroys the data structure.
816 */
817
818 static void
819 dead_procinfo (procinfo *pi, char *msg, int kill_p)
820 {
821 char procfile[80];
822
823 if (pi->pathname)
824 {
825 print_sys_errmsg (pi->pathname, errno);
826 }
827 else
828 {
829 sprintf (procfile, "process %d", pi->pid);
830 print_sys_errmsg (procfile, errno);
831 }
832 if (kill_p == KILL)
833 kill (pi->pid, SIGKILL);
834
835 destroy_procinfo (pi);
836 error ((msg));
837 }
838
839 /*
840 * Function: sysset_t_size
841 *
842 * Returns the (complete) size of a sysset_t struct. Normally, this
843 * is just sizeof (syset_t), but in the case of Monterey/64, the actual
844 * size of sysset_t isn't known until runtime.
845 */
846
847 static int
848 sysset_t_size (procinfo * pi)
849 {
850 #ifndef DYNAMIC_SYSCALLS
851 return sizeof (sysset_t);
852 #else
853 return sizeof (sysset_t) - sizeof (uint64_t)
854 + sizeof (uint64_t) * ((pi->num_syscalls + (8 * sizeof (uint64_t) - 1))
855 / (8 * sizeof (uint64_t)));
856 #endif
857 }
858
859 /* Function: sysset_t_alloc
860
861 Allocate and (partially) initialize a sysset_t struct. */
862
863 static sysset_t *
864 sysset_t_alloc (procinfo * pi)
865 {
866 sysset_t *ret;
867 int size = sysset_t_size (pi);
868 ret = xmalloc (size);
869 #ifdef DYNAMIC_SYSCALLS
870 ret->pr_size = (pi->num_syscalls + (8 * sizeof (uint64_t) - 1))
871 / (8 * sizeof (uint64_t));
872 #endif
873 return ret;
874 }
875
876 #ifdef DYNAMIC_SYSCALLS
877
878 /* Function: load_syscalls
879
880 Extract syscall numbers and names from /proc/<pid>/sysent. Initialize
881 pi->num_syscalls with the number of syscalls and pi->syscall_names
882 with the names. (Certain numbers may be skipped in which case the
883 names for these numbers will be left as NULL.) */
884
885 #define MAX_SYSCALL_NAME_LENGTH 256
886 #define MAX_SYSCALLS 65536
887
888 static void
889 load_syscalls (procinfo *pi)
890 {
891 char pathname[MAX_PROC_NAME_SIZE];
892 int sysent_fd;
893 prsysent_t header;
894 prsyscall_t *syscalls;
895 int i, size, maxcall;
896
897 pi->num_syscalls = 0;
898 pi->syscall_names = 0;
899
900 /* Open the file descriptor for the sysent file */
901 sprintf (pathname, "/proc/%d/sysent", pi->pid);
902 sysent_fd = open_with_retry (pathname, O_RDONLY);
903 if (sysent_fd < 0)
904 {
905 error (_("load_syscalls: Can't open /proc/%d/sysent"), pi->pid);
906 }
907
908 size = sizeof header - sizeof (prsyscall_t);
909 if (read (sysent_fd, &header, size) != size)
910 {
911 error (_("load_syscalls: Error reading /proc/%d/sysent"), pi->pid);
912 }
913
914 if (header.pr_nsyscalls == 0)
915 {
916 error (_("load_syscalls: /proc/%d/sysent contains no syscalls!"), pi->pid);
917 }
918
919 size = header.pr_nsyscalls * sizeof (prsyscall_t);
920 syscalls = xmalloc (size);
921
922 if (read (sysent_fd, syscalls, size) != size)
923 {
924 xfree (syscalls);
925 error (_("load_syscalls: Error reading /proc/%d/sysent"), pi->pid);
926 }
927
928 /* Find maximum syscall number. This may not be the same as
929 pr_nsyscalls since that value refers to the number of entries
930 in the table. (Also, the docs indicate that some system
931 call numbers may be skipped.) */
932
933 maxcall = syscalls[0].pr_number;
934
935 for (i = 1; i < header.pr_nsyscalls; i++)
936 if (syscalls[i].pr_number > maxcall
937 && syscalls[i].pr_nameoff > 0
938 && syscalls[i].pr_number < MAX_SYSCALLS)
939 maxcall = syscalls[i].pr_number;
940
941 pi->num_syscalls = maxcall+1;
942 pi->syscall_names = xmalloc (pi->num_syscalls * sizeof (char *));
943
944 for (i = 0; i < pi->num_syscalls; i++)
945 pi->syscall_names[i] = NULL;
946
947 /* Read the syscall names in */
948 for (i = 0; i < header.pr_nsyscalls; i++)
949 {
950 char namebuf[MAX_SYSCALL_NAME_LENGTH];
951 int nread;
952 int callnum;
953
954 if (syscalls[i].pr_number >= MAX_SYSCALLS
955 || syscalls[i].pr_number < 0
956 || syscalls[i].pr_nameoff <= 0
957 || (lseek (sysent_fd, (off_t) syscalls[i].pr_nameoff, SEEK_SET)
958 != (off_t) syscalls[i].pr_nameoff))
959 continue;
960
961 nread = read (sysent_fd, namebuf, sizeof namebuf);
962 if (nread <= 0)
963 continue;
964
965 callnum = syscalls[i].pr_number;
966
967 if (pi->syscall_names[callnum] != NULL)
968 {
969 /* FIXME: Generate warning */
970 continue;
971 }
972
973 namebuf[nread-1] = '\0';
974 size = strlen (namebuf) + 1;
975 pi->syscall_names[callnum] = xmalloc (size);
976 strncpy (pi->syscall_names[callnum], namebuf, size-1);
977 pi->syscall_names[callnum][size-1] = '\0';
978 }
979
980 close (sysent_fd);
981 xfree (syscalls);
982 }
983
984 /* Function: free_syscalls
985
986 Free the space allocated for the syscall names from the procinfo
987 structure. */
988
989 static void
990 free_syscalls (procinfo *pi)
991 {
992 if (pi->syscall_names)
993 {
994 int i;
995
996 for (i = 0; i < pi->num_syscalls; i++)
997 if (pi->syscall_names[i] != NULL)
998 xfree (pi->syscall_names[i]);
999
1000 xfree (pi->syscall_names);
1001 pi->syscall_names = 0;
1002 }
1003 }
1004
1005 /* Function: find_syscall
1006
1007 Given a name, look up (and return) the corresponding syscall number.
1008 If no match is found, return -1. */
1009
1010 static int
1011 find_syscall (procinfo *pi, char *name)
1012 {
1013 int i;
1014 for (i = 0; i < pi->num_syscalls; i++)
1015 {
1016 if (pi->syscall_names[i] && strcmp (name, pi->syscall_names[i]) == 0)
1017 return i;
1018 }
1019 return -1;
1020 }
1021 #endif
1022
1023 /* =================== END, STRUCT PROCINFO "MODULE" =================== */
1024
1025 /* =================== /proc "MODULE" =================== */
1026
1027 /*
1028 * This "module" is the interface layer between the /proc system API
1029 * and the gdb target vector functions. This layer consists of
1030 * access functions that encapsulate each of the basic operations
1031 * that we need to use from the /proc API.
1032 *
1033 * The main motivation for this layer is to hide the fact that
1034 * there are two very different implementations of the /proc API.
1035 * Rather than have a bunch of #ifdefs all thru the gdb target vector
1036 * functions, we do our best to hide them all in here.
1037 */
1038
1039 int proc_get_status (procinfo * pi);
1040 long proc_flags (procinfo * pi);
1041 int proc_why (procinfo * pi);
1042 int proc_what (procinfo * pi);
1043 int proc_set_run_on_last_close (procinfo * pi);
1044 int proc_unset_run_on_last_close (procinfo * pi);
1045 int proc_set_inherit_on_fork (procinfo * pi);
1046 int proc_unset_inherit_on_fork (procinfo * pi);
1047 int proc_set_async (procinfo * pi);
1048 int proc_unset_async (procinfo * pi);
1049 int proc_stop_process (procinfo * pi);
1050 int proc_trace_signal (procinfo * pi, int signo);
1051 int proc_ignore_signal (procinfo * pi, int signo);
1052 int proc_clear_current_fault (procinfo * pi);
1053 int proc_set_current_signal (procinfo * pi, int signo);
1054 int proc_clear_current_signal (procinfo * pi);
1055 int proc_set_gregs (procinfo * pi);
1056 int proc_set_fpregs (procinfo * pi);
1057 int proc_wait_for_stop (procinfo * pi);
1058 int proc_run_process (procinfo * pi, int step, int signo);
1059 int proc_kill (procinfo * pi, int signo);
1060 int proc_parent_pid (procinfo * pi);
1061 int proc_get_nthreads (procinfo * pi);
1062 int proc_get_current_thread (procinfo * pi);
1063 int proc_set_held_signals (procinfo * pi, gdb_sigset_t * sighold);
1064 int proc_set_traced_sysexit (procinfo * pi, sysset_t * sysset);
1065 int proc_set_traced_sysentry (procinfo * pi, sysset_t * sysset);
1066 int proc_set_traced_faults (procinfo * pi, fltset_t * fltset);
1067 int proc_set_traced_signals (procinfo * pi, gdb_sigset_t * sigset);
1068
1069 int proc_update_threads (procinfo * pi);
1070 int proc_iterate_over_threads (procinfo * pi,
1071 int (*func) (procinfo *, procinfo *, void *),
1072 void *ptr);
1073
1074 gdb_gregset_t *proc_get_gregs (procinfo * pi);
1075 gdb_fpregset_t *proc_get_fpregs (procinfo * pi);
1076 sysset_t *proc_get_traced_sysexit (procinfo * pi, sysset_t * save);
1077 sysset_t *proc_get_traced_sysentry (procinfo * pi, sysset_t * save);
1078 fltset_t *proc_get_traced_faults (procinfo * pi, fltset_t * save);
1079 gdb_sigset_t *proc_get_traced_signals (procinfo * pi, gdb_sigset_t * save);
1080 gdb_sigset_t *proc_get_held_signals (procinfo * pi, gdb_sigset_t * save);
1081 gdb_sigset_t *proc_get_pending_signals (procinfo * pi, gdb_sigset_t * save);
1082 gdb_sigaction_t *proc_get_signal_actions (procinfo * pi, gdb_sigaction_t *save);
1083
1084 void proc_warn (procinfo * pi, char *func, int line);
1085 void proc_error (procinfo * pi, char *func, int line);
1086
1087 void
1088 proc_warn (procinfo *pi, char *func, int line)
1089 {
1090 sprintf (errmsg, "procfs: %s line %d, %s", func, line, pi->pathname);
1091 print_sys_errmsg (errmsg, errno);
1092 }
1093
1094 void
1095 proc_error (procinfo *pi, char *func, int line)
1096 {
1097 sprintf (errmsg, "procfs: %s line %d, %s", func, line, pi->pathname);
1098 perror_with_name (errmsg);
1099 }
1100
1101 /*
1102 * Function: proc_get_status
1103 *
1104 * Updates the status struct in the procinfo.
1105 * There is a 'valid' flag, to let other functions know when
1106 * this function needs to be called (so the status is only
1107 * read when it is needed). The status file descriptor is
1108 * also only opened when it is needed.
1109 *
1110 * Return: non-zero for success, zero for failure.
1111 */
1112
1113 int
1114 proc_get_status (procinfo *pi)
1115 {
1116 /* Status file descriptor is opened "lazily" */
1117 if (pi->status_fd == 0 &&
1118 open_procinfo_files (pi, FD_STATUS) == 0)
1119 {
1120 pi->status_valid = 0;
1121 return 0;
1122 }
1123
1124 #ifdef NEW_PROC_API
1125 if (lseek (pi->status_fd, 0, SEEK_SET) < 0)
1126 pi->status_valid = 0; /* fail */
1127 else
1128 {
1129 /* Sigh... I have to read a different data structure,
1130 depending on whether this is a main process or an LWP. */
1131 if (pi->tid)
1132 pi->status_valid = (read (pi->status_fd,
1133 (char *) &pi->prstatus.pr_lwp,
1134 sizeof (lwpstatus_t))
1135 == sizeof (lwpstatus_t));
1136 else
1137 {
1138 pi->status_valid = (read (pi->status_fd,
1139 (char *) &pi->prstatus,
1140 sizeof (gdb_prstatus_t))
1141 == sizeof (gdb_prstatus_t));
1142 #if 0 /*def UNIXWARE*/
1143 if (pi->status_valid &&
1144 (pi->prstatus.pr_lwp.pr_flags & PR_ISTOP) &&
1145 pi->prstatus.pr_lwp.pr_why == PR_REQUESTED)
1146 /* Unixware peculiarity -- read the damn thing again! */
1147 pi->status_valid = (read (pi->status_fd,
1148 (char *) &pi->prstatus,
1149 sizeof (gdb_prstatus_t))
1150 == sizeof (gdb_prstatus_t));
1151 #endif /* UNIXWARE */
1152 }
1153 }
1154 #else /* ioctl method */
1155 #ifdef PIOCTSTATUS /* osf */
1156 if (pi->tid == 0) /* main process */
1157 {
1158 /* Just read the danged status. Now isn't that simple? */
1159 pi->status_valid =
1160 (ioctl (pi->status_fd, PIOCSTATUS, &pi->prstatus) >= 0);
1161 }
1162 else
1163 {
1164 int win;
1165 struct {
1166 long pr_count;
1167 tid_t pr_error_thread;
1168 struct prstatus status;
1169 } thread_status;
1170
1171 thread_status.pr_count = 1;
1172 thread_status.status.pr_tid = pi->tid;
1173 win = (ioctl (pi->status_fd, PIOCTSTATUS, &thread_status) >= 0);
1174 if (win)
1175 {
1176 memcpy (&pi->prstatus, &thread_status.status,
1177 sizeof (pi->prstatus));
1178 pi->status_valid = 1;
1179 }
1180 }
1181 #else
1182 /* Just read the danged status. Now isn't that simple? */
1183 pi->status_valid = (ioctl (pi->status_fd, PIOCSTATUS, &pi->prstatus) >= 0);
1184 #endif
1185 #endif
1186
1187 if (pi->status_valid)
1188 {
1189 PROC_PRETTYFPRINT_STATUS (proc_flags (pi),
1190 proc_why (pi),
1191 proc_what (pi),
1192 proc_get_current_thread (pi));
1193 }
1194
1195 /* The status struct includes general regs, so mark them valid too */
1196 pi->gregs_valid = pi->status_valid;
1197 #ifdef NEW_PROC_API
1198 /* In the read/write multiple-fd model,
1199 the status struct includes the fp regs too, so mark them valid too */
1200 pi->fpregs_valid = pi->status_valid;
1201 #endif
1202 return pi->status_valid; /* True if success, false if failure. */
1203 }
1204
1205 /*
1206 * Function: proc_flags
1207 *
1208 * returns the process flags (pr_flags field).
1209 */
1210
1211 long
1212 proc_flags (procinfo *pi)
1213 {
1214 if (!pi->status_valid)
1215 if (!proc_get_status (pi))
1216 return 0; /* FIXME: not a good failure value (but what is?) */
1217
1218 #ifdef NEW_PROC_API
1219 # ifdef UNIXWARE
1220 /* UnixWare 7.1 puts process status flags, e.g. PR_ASYNC, in
1221 pstatus_t and LWP status flags, e.g. PR_STOPPED, in lwpstatus_t.
1222 The two sets of flags don't overlap. */
1223 return pi->prstatus.pr_flags | pi->prstatus.pr_lwp.pr_flags;
1224 # else
1225 return pi->prstatus.pr_lwp.pr_flags;
1226 # endif
1227 #else
1228 return pi->prstatus.pr_flags;
1229 #endif
1230 }
1231
1232 /*
1233 * Function: proc_why
1234 *
1235 * returns the pr_why field (why the process stopped).
1236 */
1237
1238 int
1239 proc_why (procinfo *pi)
1240 {
1241 if (!pi->status_valid)
1242 if (!proc_get_status (pi))
1243 return 0; /* FIXME: not a good failure value (but what is?) */
1244
1245 #ifdef NEW_PROC_API
1246 return pi->prstatus.pr_lwp.pr_why;
1247 #else
1248 return pi->prstatus.pr_why;
1249 #endif
1250 }
1251
1252 /*
1253 * Function: proc_what
1254 *
1255 * returns the pr_what field (details of why the process stopped).
1256 */
1257
1258 int
1259 proc_what (procinfo *pi)
1260 {
1261 if (!pi->status_valid)
1262 if (!proc_get_status (pi))
1263 return 0; /* FIXME: not a good failure value (but what is?) */
1264
1265 #ifdef NEW_PROC_API
1266 return pi->prstatus.pr_lwp.pr_what;
1267 #else
1268 return pi->prstatus.pr_what;
1269 #endif
1270 }
1271
1272 #ifndef PIOCSSPCACT /* The following is not supported on OSF. */
1273 /*
1274 * Function: proc_nsysarg
1275 *
1276 * returns the pr_nsysarg field (number of args to the current syscall).
1277 */
1278
1279 int
1280 proc_nsysarg (procinfo *pi)
1281 {
1282 if (!pi->status_valid)
1283 if (!proc_get_status (pi))
1284 return 0;
1285
1286 #ifdef NEW_PROC_API
1287 return pi->prstatus.pr_lwp.pr_nsysarg;
1288 #else
1289 return pi->prstatus.pr_nsysarg;
1290 #endif
1291 }
1292
1293 /*
1294 * Function: proc_sysargs
1295 *
1296 * returns the pr_sysarg field (pointer to the arguments of current syscall).
1297 */
1298
1299 long *
1300 proc_sysargs (procinfo *pi)
1301 {
1302 if (!pi->status_valid)
1303 if (!proc_get_status (pi))
1304 return NULL;
1305
1306 #ifdef NEW_PROC_API
1307 return (long *) &pi->prstatus.pr_lwp.pr_sysarg;
1308 #else
1309 return (long *) &pi->prstatus.pr_sysarg;
1310 #endif
1311 }
1312
1313 /*
1314 * Function: proc_syscall
1315 *
1316 * returns the pr_syscall field (id of current syscall if we are in one).
1317 */
1318
1319 int
1320 proc_syscall (procinfo *pi)
1321 {
1322 if (!pi->status_valid)
1323 if (!proc_get_status (pi))
1324 return 0;
1325
1326 #ifdef NEW_PROC_API
1327 return pi->prstatus.pr_lwp.pr_syscall;
1328 #else
1329 return pi->prstatus.pr_syscall;
1330 #endif
1331 }
1332 #endif /* PIOCSSPCACT */
1333
1334 /*
1335 * Function: proc_cursig:
1336 *
1337 * returns the pr_cursig field (current signal).
1338 */
1339
1340 long
1341 proc_cursig (struct procinfo *pi)
1342 {
1343 if (!pi->status_valid)
1344 if (!proc_get_status (pi))
1345 return 0; /* FIXME: not a good failure value (but what is?) */
1346
1347 #ifdef NEW_PROC_API
1348 return pi->prstatus.pr_lwp.pr_cursig;
1349 #else
1350 return pi->prstatus.pr_cursig;
1351 #endif
1352 }
1353
1354 /*
1355 * Function: proc_modify_flag
1356 *
1357 * === I appologize for the messiness of this function.
1358 * === This is an area where the different versions of
1359 * === /proc are more inconsistent than usual. MVS
1360 *
1361 * Set or reset any of the following process flags:
1362 * PR_FORK -- forked child will inherit trace flags
1363 * PR_RLC -- traced process runs when last /proc file closed.
1364 * PR_KLC -- traced process is killed when last /proc file closed.
1365 * PR_ASYNC -- LWP's get to run/stop independently.
1366 *
1367 * There are three methods for doing this function:
1368 * 1) Newest: read/write [PCSET/PCRESET/PCUNSET]
1369 * [Sol6, Sol7, UW]
1370 * 2) Middle: PIOCSET/PIOCRESET
1371 * [Irix, Sol5]
1372 * 3) Oldest: PIOCSFORK/PIOCRFORK/PIOCSRLC/PIOCRRLC
1373 * [OSF, Sol5]
1374 *
1375 * Note: Irix does not define PR_ASYNC.
1376 * Note: OSF does not define PR_KLC.
1377 * Note: OSF is the only one that can ONLY use the oldest method.
1378 *
1379 * Arguments:
1380 * pi -- the procinfo
1381 * flag -- one of PR_FORK, PR_RLC, or PR_ASYNC
1382 * mode -- 1 for set, 0 for reset.
1383 *
1384 * Returns non-zero for success, zero for failure.
1385 */
1386
1387 enum { FLAG_RESET, FLAG_SET };
1388
1389 static int
1390 proc_modify_flag (procinfo *pi, long flag, long mode)
1391 {
1392 long win = 0; /* default to fail */
1393
1394 /*
1395 * These operations affect the process as a whole, and applying
1396 * them to an individual LWP has the same meaning as applying them
1397 * to the main process. Therefore, if we're ever called with a
1398 * pointer to an LWP's procinfo, let's substitute the process's
1399 * procinfo and avoid opening the LWP's file descriptor
1400 * unnecessarily.
1401 */
1402
1403 if (pi->pid != 0)
1404 pi = find_procinfo_or_die (pi->pid, 0);
1405
1406 #ifdef NEW_PROC_API /* Newest method: UnixWare and newer Solarii */
1407 /* First normalize the PCUNSET/PCRESET command opcode
1408 (which for no obvious reason has a different definition
1409 from one operating system to the next...) */
1410 #ifdef PCUNSET
1411 #define GDBRESET PCUNSET
1412 #else
1413 #ifdef PCRESET
1414 #define GDBRESET PCRESET
1415 #endif
1416 #endif
1417 {
1418 procfs_ctl_t arg[2];
1419
1420 if (mode == FLAG_SET) /* Set the flag (RLC, FORK, or ASYNC) */
1421 arg[0] = PCSET;
1422 else /* Reset the flag */
1423 arg[0] = GDBRESET;
1424
1425 arg[1] = flag;
1426 win = (write (pi->ctl_fd, (void *) &arg, sizeof (arg)) == sizeof (arg));
1427 }
1428 #else
1429 #ifdef PIOCSET /* Irix/Sol5 method */
1430 if (mode == FLAG_SET) /* Set the flag (hopefully RLC, FORK, or ASYNC) */
1431 {
1432 win = (ioctl (pi->ctl_fd, PIOCSET, &flag) >= 0);
1433 }
1434 else /* Reset the flag */
1435 {
1436 win = (ioctl (pi->ctl_fd, PIOCRESET, &flag) >= 0);
1437 }
1438
1439 #else
1440 #ifdef PIOCSRLC /* Oldest method: OSF */
1441 switch (flag) {
1442 case PR_RLC:
1443 if (mode == FLAG_SET) /* Set run-on-last-close */
1444 {
1445 win = (ioctl (pi->ctl_fd, PIOCSRLC, NULL) >= 0);
1446 }
1447 else /* Clear run-on-last-close */
1448 {
1449 win = (ioctl (pi->ctl_fd, PIOCRRLC, NULL) >= 0);
1450 }
1451 break;
1452 case PR_FORK:
1453 if (mode == FLAG_SET) /* Set inherit-on-fork */
1454 {
1455 win = (ioctl (pi->ctl_fd, PIOCSFORK, NULL) >= 0);
1456 }
1457 else /* Clear inherit-on-fork */
1458 {
1459 win = (ioctl (pi->ctl_fd, PIOCRFORK, NULL) >= 0);
1460 }
1461 break;
1462 default:
1463 win = 0; /* fail -- unknown flag (can't do PR_ASYNC) */
1464 break;
1465 }
1466 #endif
1467 #endif
1468 #endif
1469 #undef GDBRESET
1470 /* The above operation renders the procinfo's cached pstatus obsolete. */
1471 pi->status_valid = 0;
1472
1473 if (!win)
1474 warning (_("procfs: modify_flag failed to turn %s %s"),
1475 flag == PR_FORK ? "PR_FORK" :
1476 flag == PR_RLC ? "PR_RLC" :
1477 #ifdef PR_ASYNC
1478 flag == PR_ASYNC ? "PR_ASYNC" :
1479 #endif
1480 #ifdef PR_KLC
1481 flag == PR_KLC ? "PR_KLC" :
1482 #endif
1483 "<unknown flag>",
1484 mode == FLAG_RESET ? "off" : "on");
1485
1486 return win;
1487 }
1488
1489 /*
1490 * Function: proc_set_run_on_last_close
1491 *
1492 * Set the run_on_last_close flag.
1493 * Process with all threads will become runnable
1494 * when debugger closes all /proc fds.
1495 *
1496 * Returns non-zero for success, zero for failure.
1497 */
1498
1499 int
1500 proc_set_run_on_last_close (procinfo *pi)
1501 {
1502 return proc_modify_flag (pi, PR_RLC, FLAG_SET);
1503 }
1504
1505 /*
1506 * Function: proc_unset_run_on_last_close
1507 *
1508 * Reset the run_on_last_close flag.
1509 * Process will NOT become runnable
1510 * when debugger closes its file handles.
1511 *
1512 * Returns non-zero for success, zero for failure.
1513 */
1514
1515 int
1516 proc_unset_run_on_last_close (procinfo *pi)
1517 {
1518 return proc_modify_flag (pi, PR_RLC, FLAG_RESET);
1519 }
1520
1521 #ifdef PR_KLC
1522 /*
1523 * Function: proc_set_kill_on_last_close
1524 *
1525 * Set the kill_on_last_close flag.
1526 * Process with all threads will be killed when debugger
1527 * closes all /proc fds (or debugger exits or dies).
1528 *
1529 * Returns non-zero for success, zero for failure.
1530 */
1531
1532 int
1533 proc_set_kill_on_last_close (procinfo *pi)
1534 {
1535 return proc_modify_flag (pi, PR_KLC, FLAG_SET);
1536 }
1537
1538 /*
1539 * Function: proc_unset_kill_on_last_close
1540 *
1541 * Reset the kill_on_last_close flag.
1542 * Process will NOT be killed when debugger
1543 * closes its file handles (or exits or dies).
1544 *
1545 * Returns non-zero for success, zero for failure.
1546 */
1547
1548 int
1549 proc_unset_kill_on_last_close (procinfo *pi)
1550 {
1551 return proc_modify_flag (pi, PR_KLC, FLAG_RESET);
1552 }
1553 #endif /* PR_KLC */
1554
1555 /*
1556 * Function: proc_set_inherit_on_fork
1557 *
1558 * Set inherit_on_fork flag.
1559 * If the process forks a child while we are registered for events
1560 * in the parent, then we will also recieve events from the child.
1561 *
1562 * Returns non-zero for success, zero for failure.
1563 */
1564
1565 int
1566 proc_set_inherit_on_fork (procinfo *pi)
1567 {
1568 return proc_modify_flag (pi, PR_FORK, FLAG_SET);
1569 }
1570
1571 /*
1572 * Function: proc_unset_inherit_on_fork
1573 *
1574 * Reset inherit_on_fork flag.
1575 * If the process forks a child while we are registered for events
1576 * in the parent, then we will NOT recieve events from the child.
1577 *
1578 * Returns non-zero for success, zero for failure.
1579 */
1580
1581 int
1582 proc_unset_inherit_on_fork (procinfo *pi)
1583 {
1584 return proc_modify_flag (pi, PR_FORK, FLAG_RESET);
1585 }
1586
1587 #ifdef PR_ASYNC
1588 /*
1589 * Function: proc_set_async
1590 *
1591 * Set PR_ASYNC flag.
1592 * If one LWP stops because of a debug event (signal etc.),
1593 * the remaining LWPs will continue to run.
1594 *
1595 * Returns non-zero for success, zero for failure.
1596 */
1597
1598 int
1599 proc_set_async (procinfo *pi)
1600 {
1601 return proc_modify_flag (pi, PR_ASYNC, FLAG_SET);
1602 }
1603
1604 /*
1605 * Function: proc_unset_async
1606 *
1607 * Reset PR_ASYNC flag.
1608 * If one LWP stops because of a debug event (signal etc.),
1609 * then all other LWPs will stop as well.
1610 *
1611 * Returns non-zero for success, zero for failure.
1612 */
1613
1614 int
1615 proc_unset_async (procinfo *pi)
1616 {
1617 return proc_modify_flag (pi, PR_ASYNC, FLAG_RESET);
1618 }
1619 #endif /* PR_ASYNC */
1620
1621 /*
1622 * Function: proc_stop_process
1623 *
1624 * Request the process/LWP to stop. Does not wait.
1625 * Returns non-zero for success, zero for failure.
1626 */
1627
1628 int
1629 proc_stop_process (procinfo *pi)
1630 {
1631 int win;
1632
1633 /*
1634 * We might conceivably apply this operation to an LWP, and
1635 * the LWP's ctl file descriptor might not be open.
1636 */
1637
1638 if (pi->ctl_fd == 0 &&
1639 open_procinfo_files (pi, FD_CTL) == 0)
1640 return 0;
1641 else
1642 {
1643 #ifdef NEW_PROC_API
1644 procfs_ctl_t cmd = PCSTOP;
1645 win = (write (pi->ctl_fd, (char *) &cmd, sizeof (cmd)) == sizeof (cmd));
1646 #else /* ioctl method */
1647 win = (ioctl (pi->ctl_fd, PIOCSTOP, &pi->prstatus) >= 0);
1648 /* Note: the call also reads the prstatus. */
1649 if (win)
1650 {
1651 pi->status_valid = 1;
1652 PROC_PRETTYFPRINT_STATUS (proc_flags (pi),
1653 proc_why (pi),
1654 proc_what (pi),
1655 proc_get_current_thread (pi));
1656 }
1657 #endif
1658 }
1659
1660 return win;
1661 }
1662
1663 /*
1664 * Function: proc_wait_for_stop
1665 *
1666 * Wait for the process or LWP to stop (block until it does).
1667 * Returns non-zero for success, zero for failure.
1668 */
1669
1670 int
1671 proc_wait_for_stop (procinfo *pi)
1672 {
1673 int win;
1674
1675 /*
1676 * We should never have to apply this operation to any procinfo
1677 * except the one for the main process. If that ever changes
1678 * for any reason, then take out the following clause and
1679 * replace it with one that makes sure the ctl_fd is open.
1680 */
1681
1682 if (pi->tid != 0)
1683 pi = find_procinfo_or_die (pi->pid, 0);
1684
1685 #ifdef NEW_PROC_API
1686 {
1687 procfs_ctl_t cmd = PCWSTOP;
1688 win = (write (pi->ctl_fd, (char *) &cmd, sizeof (cmd)) == sizeof (cmd));
1689 /* We been runnin' and we stopped -- need to update status. */
1690 pi->status_valid = 0;
1691 }
1692 #else /* ioctl method */
1693 win = (ioctl (pi->ctl_fd, PIOCWSTOP, &pi->prstatus) >= 0);
1694 /* Above call also refreshes the prstatus. */
1695 if (win)
1696 {
1697 pi->status_valid = 1;
1698 PROC_PRETTYFPRINT_STATUS (proc_flags (pi),
1699 proc_why (pi),
1700 proc_what (pi),
1701 proc_get_current_thread (pi));
1702 }
1703 #endif
1704
1705 return win;
1706 }
1707
1708 /*
1709 * Function: proc_run_process
1710 *
1711 * Make the process or LWP runnable.
1712 * Options (not all are implemented):
1713 * - single-step
1714 * - clear current fault
1715 * - clear current signal
1716 * - abort the current system call
1717 * - stop as soon as finished with system call
1718 * - (ioctl): set traced signal set
1719 * - (ioctl): set held signal set
1720 * - (ioctl): set traced fault set
1721 * - (ioctl): set start pc (vaddr)
1722 * Always clear the current fault.
1723 * Clear the current signal if 'signo' is zero.
1724 *
1725 * Arguments:
1726 * pi the process or LWP to operate on.
1727 * step if true, set the process or LWP to trap after one instr.
1728 * signo if zero, clear the current signal if any.
1729 * if non-zero, set the current signal to this one.
1730 *
1731 * Returns non-zero for success, zero for failure.
1732 */
1733
1734 int
1735 proc_run_process (procinfo *pi, int step, int signo)
1736 {
1737 int win;
1738 int runflags;
1739
1740 /*
1741 * We will probably have to apply this operation to individual threads,
1742 * so make sure the control file descriptor is open.
1743 */
1744
1745 if (pi->ctl_fd == 0 &&
1746 open_procinfo_files (pi, FD_CTL) == 0)
1747 {
1748 return 0;
1749 }
1750
1751 runflags = PRCFAULT; /* always clear current fault */
1752 if (step)
1753 runflags |= PRSTEP;
1754 if (signo == 0)
1755 runflags |= PRCSIG;
1756 else if (signo != -1) /* -1 means do nothing W.R.T. signals */
1757 proc_set_current_signal (pi, signo);
1758
1759 #ifdef NEW_PROC_API
1760 {
1761 procfs_ctl_t cmd[2];
1762
1763 cmd[0] = PCRUN;
1764 cmd[1] = runflags;
1765 win = (write (pi->ctl_fd, (char *) &cmd, sizeof (cmd)) == sizeof (cmd));
1766 }
1767 #else /* ioctl method */
1768 {
1769 prrun_t prrun;
1770
1771 memset (&prrun, 0, sizeof (prrun));
1772 prrun.pr_flags = runflags;
1773 win = (ioctl (pi->ctl_fd, PIOCRUN, &prrun) >= 0);
1774 }
1775 #endif
1776
1777 return win;
1778 }
1779
1780 /*
1781 * Function: proc_set_traced_signals
1782 *
1783 * Register to trace signals in the process or LWP.
1784 * Returns non-zero for success, zero for failure.
1785 */
1786
1787 int
1788 proc_set_traced_signals (procinfo *pi, gdb_sigset_t *sigset)
1789 {
1790 int win;
1791
1792 /*
1793 * We should never have to apply this operation to any procinfo
1794 * except the one for the main process. If that ever changes
1795 * for any reason, then take out the following clause and
1796 * replace it with one that makes sure the ctl_fd is open.
1797 */
1798
1799 if (pi->tid != 0)
1800 pi = find_procinfo_or_die (pi->pid, 0);
1801
1802 #ifdef NEW_PROC_API
1803 {
1804 struct {
1805 procfs_ctl_t cmd;
1806 /* Use char array to avoid alignment issues. */
1807 char sigset[sizeof (gdb_sigset_t)];
1808 } arg;
1809
1810 arg.cmd = PCSTRACE;
1811 memcpy (&arg.sigset, sigset, sizeof (gdb_sigset_t));
1812
1813 win = (write (pi->ctl_fd, (char *) &arg, sizeof (arg)) == sizeof (arg));
1814 }
1815 #else /* ioctl method */
1816 win = (ioctl (pi->ctl_fd, PIOCSTRACE, sigset) >= 0);
1817 #endif
1818 /* The above operation renders the procinfo's cached pstatus obsolete. */
1819 pi->status_valid = 0;
1820
1821 if (!win)
1822 warning (_("procfs: set_traced_signals failed"));
1823 return win;
1824 }
1825
1826 /*
1827 * Function: proc_set_traced_faults
1828 *
1829 * Register to trace hardware faults in the process or LWP.
1830 * Returns non-zero for success, zero for failure.
1831 */
1832
1833 int
1834 proc_set_traced_faults (procinfo *pi, fltset_t *fltset)
1835 {
1836 int win;
1837
1838 /*
1839 * We should never have to apply this operation to any procinfo
1840 * except the one for the main process. If that ever changes
1841 * for any reason, then take out the following clause and
1842 * replace it with one that makes sure the ctl_fd is open.
1843 */
1844
1845 if (pi->tid != 0)
1846 pi = find_procinfo_or_die (pi->pid, 0);
1847
1848 #ifdef NEW_PROC_API
1849 {
1850 struct {
1851 procfs_ctl_t cmd;
1852 /* Use char array to avoid alignment issues. */
1853 char fltset[sizeof (fltset_t)];
1854 } arg;
1855
1856 arg.cmd = PCSFAULT;
1857 memcpy (&arg.fltset, fltset, sizeof (fltset_t));
1858
1859 win = (write (pi->ctl_fd, (char *) &arg, sizeof (arg)) == sizeof (arg));
1860 }
1861 #else /* ioctl method */
1862 win = (ioctl (pi->ctl_fd, PIOCSFAULT, fltset) >= 0);
1863 #endif
1864 /* The above operation renders the procinfo's cached pstatus obsolete. */
1865 pi->status_valid = 0;
1866
1867 return win;
1868 }
1869
1870 /*
1871 * Function: proc_set_traced_sysentry
1872 *
1873 * Register to trace entry to system calls in the process or LWP.
1874 * Returns non-zero for success, zero for failure.
1875 */
1876
1877 int
1878 proc_set_traced_sysentry (procinfo *pi, sysset_t *sysset)
1879 {
1880 int win;
1881
1882 /*
1883 * We should never have to apply this operation to any procinfo
1884 * except the one for the main process. If that ever changes
1885 * for any reason, then take out the following clause and
1886 * replace it with one that makes sure the ctl_fd is open.
1887 */
1888
1889 if (pi->tid != 0)
1890 pi = find_procinfo_or_die (pi->pid, 0);
1891
1892 #ifdef NEW_PROC_API
1893 {
1894 struct gdb_proc_ctl_pcsentry {
1895 procfs_ctl_t cmd;
1896 /* Use char array to avoid alignment issues. */
1897 char sysset[sizeof (sysset_t)];
1898 } *argp;
1899 int argp_size = sizeof (struct gdb_proc_ctl_pcsentry)
1900 - sizeof (sysset_t)
1901 + sysset_t_size (pi);
1902
1903 argp = xmalloc (argp_size);
1904
1905 argp->cmd = PCSENTRY;
1906 memcpy (&argp->sysset, sysset, sysset_t_size (pi));
1907
1908 win = (write (pi->ctl_fd, (char *) argp, argp_size) == argp_size);
1909 xfree (argp);
1910 }
1911 #else /* ioctl method */
1912 win = (ioctl (pi->ctl_fd, PIOCSENTRY, sysset) >= 0);
1913 #endif
1914 /* The above operation renders the procinfo's cached pstatus obsolete. */
1915 pi->status_valid = 0;
1916
1917 return win;
1918 }
1919
1920 /*
1921 * Function: proc_set_traced_sysexit
1922 *
1923 * Register to trace exit from system calls in the process or LWP.
1924 * Returns non-zero for success, zero for failure.
1925 */
1926
1927 int
1928 proc_set_traced_sysexit (procinfo *pi, sysset_t *sysset)
1929 {
1930 int win;
1931
1932 /*
1933 * We should never have to apply this operation to any procinfo
1934 * except the one for the main process. If that ever changes
1935 * for any reason, then take out the following clause and
1936 * replace it with one that makes sure the ctl_fd is open.
1937 */
1938
1939 if (pi->tid != 0)
1940 pi = find_procinfo_or_die (pi->pid, 0);
1941
1942 #ifdef NEW_PROC_API
1943 {
1944 struct gdb_proc_ctl_pcsexit {
1945 procfs_ctl_t cmd;
1946 /* Use char array to avoid alignment issues. */
1947 char sysset[sizeof (sysset_t)];
1948 } *argp;
1949 int argp_size = sizeof (struct gdb_proc_ctl_pcsexit)
1950 - sizeof (sysset_t)
1951 + sysset_t_size (pi);
1952
1953 argp = xmalloc (argp_size);
1954
1955 argp->cmd = PCSEXIT;
1956 memcpy (&argp->sysset, sysset, sysset_t_size (pi));
1957
1958 win = (write (pi->ctl_fd, (char *) argp, argp_size) == argp_size);
1959 xfree (argp);
1960 }
1961 #else /* ioctl method */
1962 win = (ioctl (pi->ctl_fd, PIOCSEXIT, sysset) >= 0);
1963 #endif
1964 /* The above operation renders the procinfo's cached pstatus obsolete. */
1965 pi->status_valid = 0;
1966
1967 return win;
1968 }
1969
1970 /*
1971 * Function: proc_set_held_signals
1972 *
1973 * Specify the set of blocked / held signals in the process or LWP.
1974 * Returns non-zero for success, zero for failure.
1975 */
1976
1977 int
1978 proc_set_held_signals (procinfo *pi, gdb_sigset_t *sighold)
1979 {
1980 int win;
1981
1982 /*
1983 * We should never have to apply this operation to any procinfo
1984 * except the one for the main process. If that ever changes
1985 * for any reason, then take out the following clause and
1986 * replace it with one that makes sure the ctl_fd is open.
1987 */
1988
1989 if (pi->tid != 0)
1990 pi = find_procinfo_or_die (pi->pid, 0);
1991
1992 #ifdef NEW_PROC_API
1993 {
1994 struct {
1995 procfs_ctl_t cmd;
1996 /* Use char array to avoid alignment issues. */
1997 char hold[sizeof (gdb_sigset_t)];
1998 } arg;
1999
2000 arg.cmd = PCSHOLD;
2001 memcpy (&arg.hold, sighold, sizeof (gdb_sigset_t));
2002 win = (write (pi->ctl_fd, (void *) &arg, sizeof (arg)) == sizeof (arg));
2003 }
2004 #else
2005 win = (ioctl (pi->ctl_fd, PIOCSHOLD, sighold) >= 0);
2006 #endif
2007 /* The above operation renders the procinfo's cached pstatus obsolete. */
2008 pi->status_valid = 0;
2009
2010 return win;
2011 }
2012
2013 /*
2014 * Function: proc_get_pending_signals
2015 *
2016 * returns the set of signals that are pending in the process or LWP.
2017 * Will also copy the sigset if 'save' is non-zero.
2018 */
2019
2020 gdb_sigset_t *
2021 proc_get_pending_signals (procinfo *pi, gdb_sigset_t *save)
2022 {
2023 gdb_sigset_t *ret = NULL;
2024
2025 /*
2026 * We should never have to apply this operation to any procinfo
2027 * except the one for the main process. If that ever changes
2028 * for any reason, then take out the following clause and
2029 * replace it with one that makes sure the ctl_fd is open.
2030 */
2031
2032 if (pi->tid != 0)
2033 pi = find_procinfo_or_die (pi->pid, 0);
2034
2035 if (!pi->status_valid)
2036 if (!proc_get_status (pi))
2037 return NULL;
2038
2039 #ifdef NEW_PROC_API
2040 ret = &pi->prstatus.pr_lwp.pr_lwppend;
2041 #else
2042 ret = &pi->prstatus.pr_sigpend;
2043 #endif
2044 if (save && ret)
2045 memcpy (save, ret, sizeof (gdb_sigset_t));
2046
2047 return ret;
2048 }
2049
2050 /*
2051 * Function: proc_get_signal_actions
2052 *
2053 * returns the set of signal actions.
2054 * Will also copy the sigactionset if 'save' is non-zero.
2055 */
2056
2057 gdb_sigaction_t *
2058 proc_get_signal_actions (procinfo *pi, gdb_sigaction_t *save)
2059 {
2060 gdb_sigaction_t *ret = NULL;
2061
2062 /*
2063 * We should never have to apply this operation to any procinfo
2064 * except the one for the main process. If that ever changes
2065 * for any reason, then take out the following clause and
2066 * replace it with one that makes sure the ctl_fd is open.
2067 */
2068
2069 if (pi->tid != 0)
2070 pi = find_procinfo_or_die (pi->pid, 0);
2071
2072 if (!pi->status_valid)
2073 if (!proc_get_status (pi))
2074 return NULL;
2075
2076 #ifdef NEW_PROC_API
2077 ret = &pi->prstatus.pr_lwp.pr_action;
2078 #else
2079 ret = &pi->prstatus.pr_action;
2080 #endif
2081 if (save && ret)
2082 memcpy (save, ret, sizeof (gdb_sigaction_t));
2083
2084 return ret;
2085 }
2086
2087 /*
2088 * Function: proc_get_held_signals
2089 *
2090 * returns the set of signals that are held / blocked.
2091 * Will also copy the sigset if 'save' is non-zero.
2092 */
2093
2094 gdb_sigset_t *
2095 proc_get_held_signals (procinfo *pi, gdb_sigset_t *save)
2096 {
2097 gdb_sigset_t *ret = NULL;
2098
2099 /*
2100 * We should never have to apply this operation to any procinfo
2101 * except the one for the main process. If that ever changes
2102 * for any reason, then take out the following clause and
2103 * replace it with one that makes sure the ctl_fd is open.
2104 */
2105
2106 if (pi->tid != 0)
2107 pi = find_procinfo_or_die (pi->pid, 0);
2108
2109 #ifdef NEW_PROC_API
2110 if (!pi->status_valid)
2111 if (!proc_get_status (pi))
2112 return NULL;
2113
2114 #ifdef UNIXWARE
2115 ret = &pi->prstatus.pr_lwp.pr_context.uc_sigmask;
2116 #else
2117 ret = &pi->prstatus.pr_lwp.pr_lwphold;
2118 #endif /* UNIXWARE */
2119 #else /* not NEW_PROC_API */
2120 {
2121 static gdb_sigset_t sigheld;
2122
2123 if (ioctl (pi->ctl_fd, PIOCGHOLD, &sigheld) >= 0)
2124 ret = &sigheld;
2125 }
2126 #endif /* NEW_PROC_API */
2127 if (save && ret)
2128 memcpy (save, ret, sizeof (gdb_sigset_t));
2129
2130 return ret;
2131 }
2132
2133 /*
2134 * Function: proc_get_traced_signals
2135 *
2136 * returns the set of signals that are traced / debugged.
2137 * Will also copy the sigset if 'save' is non-zero.
2138 */
2139
2140 gdb_sigset_t *
2141 proc_get_traced_signals (procinfo *pi, gdb_sigset_t *save)
2142 {
2143 gdb_sigset_t *ret = NULL;
2144
2145 /*
2146 * We should never have to apply this operation to any procinfo
2147 * except the one for the main process. If that ever changes
2148 * for any reason, then take out the following clause and
2149 * replace it with one that makes sure the ctl_fd is open.
2150 */
2151
2152 if (pi->tid != 0)
2153 pi = find_procinfo_or_die (pi->pid, 0);
2154
2155 #ifdef NEW_PROC_API
2156 if (!pi->status_valid)
2157 if (!proc_get_status (pi))
2158 return NULL;
2159
2160 ret = &pi->prstatus.pr_sigtrace;
2161 #else
2162 {
2163 static gdb_sigset_t sigtrace;
2164
2165 if (ioctl (pi->ctl_fd, PIOCGTRACE, &sigtrace) >= 0)
2166 ret = &sigtrace;
2167 }
2168 #endif
2169 if (save && ret)
2170 memcpy (save, ret, sizeof (gdb_sigset_t));
2171
2172 return ret;
2173 }
2174
2175 /*
2176 * Function: proc_trace_signal
2177 *
2178 * Add 'signo' to the set of signals that are traced.
2179 * Returns non-zero for success, zero for failure.
2180 */
2181
2182 int
2183 proc_trace_signal (procinfo *pi, int signo)
2184 {
2185 gdb_sigset_t temp;
2186
2187 /*
2188 * We should never have to apply this operation to any procinfo
2189 * except the one for the main process. If that ever changes
2190 * for any reason, then take out the following clause and
2191 * replace it with one that makes sure the ctl_fd is open.
2192 */
2193
2194 if (pi->tid != 0)
2195 pi = find_procinfo_or_die (pi->pid, 0);
2196
2197 if (pi)
2198 {
2199 if (proc_get_traced_signals (pi, &temp))
2200 {
2201 praddset (&temp, signo);
2202 return proc_set_traced_signals (pi, &temp);
2203 }
2204 }
2205
2206 return 0; /* failure */
2207 }
2208
2209 /*
2210 * Function: proc_ignore_signal
2211 *
2212 * Remove 'signo' from the set of signals that are traced.
2213 * Returns non-zero for success, zero for failure.
2214 */
2215
2216 int
2217 proc_ignore_signal (procinfo *pi, int signo)
2218 {
2219 gdb_sigset_t temp;
2220
2221 /*
2222 * We should never have to apply this operation to any procinfo
2223 * except the one for the main process. If that ever changes
2224 * for any reason, then take out the following clause and
2225 * replace it with one that makes sure the ctl_fd is open.
2226 */
2227
2228 if (pi->tid != 0)
2229 pi = find_procinfo_or_die (pi->pid, 0);
2230
2231 if (pi)
2232 {
2233 if (proc_get_traced_signals (pi, &temp))
2234 {
2235 prdelset (&temp, signo);
2236 return proc_set_traced_signals (pi, &temp);
2237 }
2238 }
2239
2240 return 0; /* failure */
2241 }
2242
2243 /*
2244 * Function: proc_get_traced_faults
2245 *
2246 * returns the set of hardware faults that are traced /debugged.
2247 * Will also copy the faultset if 'save' is non-zero.
2248 */
2249
2250 fltset_t *
2251 proc_get_traced_faults (procinfo *pi, fltset_t *save)
2252 {
2253 fltset_t *ret = NULL;
2254
2255 /*
2256 * We should never have to apply this operation to any procinfo
2257 * except the one for the main process. If that ever changes
2258 * for any reason, then take out the following clause and
2259 * replace it with one that makes sure the ctl_fd is open.
2260 */
2261
2262 if (pi->tid != 0)
2263 pi = find_procinfo_or_die (pi->pid, 0);
2264
2265 #ifdef NEW_PROC_API
2266 if (!pi->status_valid)
2267 if (!proc_get_status (pi))
2268 return NULL;
2269
2270 ret = &pi->prstatus.pr_flttrace;
2271 #else
2272 {
2273 static fltset_t flttrace;
2274
2275 if (ioctl (pi->ctl_fd, PIOCGFAULT, &flttrace) >= 0)
2276 ret = &flttrace;
2277 }
2278 #endif
2279 if (save && ret)
2280 memcpy (save, ret, sizeof (fltset_t));
2281
2282 return ret;
2283 }
2284
2285 /*
2286 * Function: proc_get_traced_sysentry
2287 *
2288 * returns the set of syscalls that are traced /debugged on entry.
2289 * Will also copy the syscall set if 'save' is non-zero.
2290 */
2291
2292 sysset_t *
2293 proc_get_traced_sysentry (procinfo *pi, sysset_t *save)
2294 {
2295 sysset_t *ret = NULL;
2296
2297 /*
2298 * We should never have to apply this operation to any procinfo
2299 * except the one for the main process. If that ever changes
2300 * for any reason, then take out the following clause and
2301 * replace it with one that makes sure the ctl_fd is open.
2302 */
2303
2304 if (pi->tid != 0)
2305 pi = find_procinfo_or_die (pi->pid, 0);
2306
2307 #ifdef NEW_PROC_API
2308 if (!pi->status_valid)
2309 if (!proc_get_status (pi))
2310 return NULL;
2311
2312 #ifndef DYNAMIC_SYSCALLS
2313 ret = &pi->prstatus.pr_sysentry;
2314 #else /* DYNAMIC_SYSCALLS */
2315 {
2316 static sysset_t *sysentry;
2317 size_t size;
2318
2319 if (!sysentry)
2320 sysentry = sysset_t_alloc (pi);
2321 ret = sysentry;
2322 if (pi->status_fd == 0 && open_procinfo_files (pi, FD_STATUS) == 0)
2323 return NULL;
2324 if (pi->prstatus.pr_sysentry_offset == 0)
2325 {
2326 gdb_premptysysset (sysentry);
2327 }
2328 else
2329 {
2330 int rsize;
2331
2332 if (lseek (pi->status_fd, (off_t) pi->prstatus.pr_sysentry_offset,
2333 SEEK_SET)
2334 != (off_t) pi->prstatus.pr_sysentry_offset)
2335 return NULL;
2336 size = sysset_t_size (pi);
2337 gdb_premptysysset (sysentry);
2338 rsize = read (pi->status_fd, sysentry, size);
2339 if (rsize < 0)
2340 return NULL;
2341 }
2342 }
2343 #endif /* DYNAMIC_SYSCALLS */
2344 #else /* !NEW_PROC_API */
2345 {
2346 static sysset_t sysentry;
2347
2348 if (ioctl (pi->ctl_fd, PIOCGENTRY, &sysentry) >= 0)
2349 ret = &sysentry;
2350 }
2351 #endif /* NEW_PROC_API */
2352 if (save && ret)
2353 memcpy (save, ret, sysset_t_size (pi));
2354
2355 return ret;
2356 }
2357
2358 /*
2359 * Function: proc_get_traced_sysexit
2360 *
2361 * returns the set of syscalls that are traced /debugged on exit.
2362 * Will also copy the syscall set if 'save' is non-zero.
2363 */
2364
2365 sysset_t *
2366 proc_get_traced_sysexit (procinfo *pi, sysset_t *save)
2367 {
2368 sysset_t * ret = NULL;
2369
2370 /*
2371 * We should never have to apply this operation to any procinfo
2372 * except the one for the main process. If that ever changes
2373 * for any reason, then take out the following clause and
2374 * replace it with one that makes sure the ctl_fd is open.
2375 */
2376
2377 if (pi->tid != 0)
2378 pi = find_procinfo_or_die (pi->pid, 0);
2379
2380 #ifdef NEW_PROC_API
2381 if (!pi->status_valid)
2382 if (!proc_get_status (pi))
2383 return NULL;
2384
2385 #ifndef DYNAMIC_SYSCALLS
2386 ret = &pi->prstatus.pr_sysexit;
2387 #else /* DYNAMIC_SYSCALLS */
2388 {
2389 static sysset_t *sysexit;
2390 size_t size;
2391
2392 if (!sysexit)
2393 sysexit = sysset_t_alloc (pi);
2394 ret = sysexit;
2395 if (pi->status_fd == 0 && open_procinfo_files (pi, FD_STATUS) == 0)
2396 return NULL;
2397 if (pi->prstatus.pr_sysexit_offset == 0)
2398 {
2399 gdb_premptysysset (sysexit);
2400 }
2401 else
2402 {
2403 int rsize;
2404
2405 if (lseek (pi->status_fd, (off_t) pi->prstatus.pr_sysexit_offset, SEEK_SET)
2406 != (off_t) pi->prstatus.pr_sysexit_offset)
2407 return NULL;
2408 size = sysset_t_size (pi);
2409 gdb_premptysysset (sysexit);
2410 rsize = read (pi->status_fd, sysexit, size);
2411 if (rsize < 0)
2412 return NULL;
2413 }
2414 }
2415 #endif /* DYNAMIC_SYSCALLS */
2416 #else
2417 {
2418 static sysset_t sysexit;
2419
2420 if (ioctl (pi->ctl_fd, PIOCGEXIT, &sysexit) >= 0)
2421 ret = &sysexit;
2422 }
2423 #endif
2424 if (save && ret)
2425 memcpy (save, ret, sysset_t_size (pi));
2426
2427 return ret;
2428 }
2429
2430 /*
2431 * Function: proc_clear_current_fault
2432 *
2433 * The current fault (if any) is cleared; the associated signal
2434 * will not be sent to the process or LWP when it resumes.
2435 * Returns non-zero for success, zero for failure.
2436 */
2437
2438 int
2439 proc_clear_current_fault (procinfo *pi)
2440 {
2441 int win;
2442
2443 /*
2444 * We should never have to apply this operation to any procinfo
2445 * except the one for the main process. If that ever changes
2446 * for any reason, then take out the following clause and
2447 * replace it with one that makes sure the ctl_fd is open.
2448 */
2449
2450 if (pi->tid != 0)
2451 pi = find_procinfo_or_die (pi->pid, 0);
2452
2453 #ifdef NEW_PROC_API
2454 {
2455 procfs_ctl_t cmd = PCCFAULT;
2456 win = (write (pi->ctl_fd, (void *) &cmd, sizeof (cmd)) == sizeof (cmd));
2457 }
2458 #else
2459 win = (ioctl (pi->ctl_fd, PIOCCFAULT, 0) >= 0);
2460 #endif
2461
2462 return win;
2463 }
2464
2465 /*
2466 * Function: proc_set_current_signal
2467 *
2468 * Set the "current signal" that will be delivered next to the process.
2469 * NOTE: semantics are different from those of KILL.
2470 * This signal will be delivered to the process or LWP
2471 * immediately when it is resumed (even if the signal is held/blocked);
2472 * it will NOT immediately cause another event of interest, and will NOT
2473 * first trap back to the debugger.
2474 *
2475 * Returns non-zero for success, zero for failure.
2476 */
2477
2478 int
2479 proc_set_current_signal (procinfo *pi, int signo)
2480 {
2481 int win;
2482 struct {
2483 procfs_ctl_t cmd;
2484 /* Use char array to avoid alignment issues. */
2485 char sinfo[sizeof (gdb_siginfo_t)];
2486 } arg;
2487 gdb_siginfo_t *mysinfo;
2488 ptid_t wait_ptid;
2489 struct target_waitstatus wait_status;
2490
2491 /*
2492 * We should never have to apply this operation to any procinfo
2493 * except the one for the main process. If that ever changes
2494 * for any reason, then take out the following clause and
2495 * replace it with one that makes sure the ctl_fd is open.
2496 */
2497
2498 if (pi->tid != 0)
2499 pi = find_procinfo_or_die (pi->pid, 0);
2500
2501 #ifdef PROCFS_DONT_PIOCSSIG_CURSIG
2502 /* With Alpha OSF/1 procfs, the kernel gets really confused if it
2503 * receives a PIOCSSIG with a signal identical to the current signal,
2504 * it messes up the current signal. Work around the kernel bug.
2505 */
2506 if (signo > 0 &&
2507 signo == proc_cursig (pi))
2508 return 1; /* I assume this is a success? */
2509 #endif
2510
2511 /* The pointer is just a type alias. */
2512 mysinfo = (gdb_siginfo_t *) &arg.sinfo;
2513 get_last_target_status (&wait_ptid, &wait_status);
2514 if (ptid_equal (wait_ptid, inferior_ptid)
2515 && wait_status.kind == TARGET_WAITKIND_STOPPED
2516 && wait_status.value.sig == target_signal_from_host (signo)
2517 && proc_get_status (pi)
2518 #ifdef NEW_PROC_API
2519 && pi->prstatus.pr_lwp.pr_info.si_signo == signo
2520 #else
2521 && pi->prstatus.pr_info.si_signo == signo
2522 #endif
2523 )
2524 /* Use the siginfo associated with the signal being
2525 redelivered. */
2526 #ifdef NEW_PROC_API
2527 memcpy (mysinfo, &pi->prstatus.pr_lwp.pr_info, sizeof (gdb_siginfo_t));
2528 #else
2529 memcpy (mysinfo, &pi->prstatus.pr_info, sizeof (gdb_siginfo_t));
2530 #endif
2531 else
2532 {
2533 mysinfo->si_signo = signo;
2534 mysinfo->si_code = 0;
2535 mysinfo->si_pid = getpid (); /* ?why? */
2536 mysinfo->si_uid = getuid (); /* ?why? */
2537 }
2538
2539 #ifdef NEW_PROC_API
2540 arg.cmd = PCSSIG;
2541 win = (write (pi->ctl_fd, (void *) &arg, sizeof (arg)) == sizeof (arg));
2542 #else
2543 win = (ioctl (pi->ctl_fd, PIOCSSIG, (void *) &arg.sinfo) >= 0);
2544 #endif
2545
2546 return win;
2547 }
2548
2549 /*
2550 * Function: proc_clear_current_signal
2551 *
2552 * The current signal (if any) is cleared, and
2553 * is not sent to the process or LWP when it resumes.
2554 * Returns non-zero for success, zero for failure.
2555 */
2556
2557 int
2558 proc_clear_current_signal (procinfo *pi)
2559 {
2560 int win;
2561
2562 /*
2563 * We should never have to apply this operation to any procinfo
2564 * except the one for the main process. If that ever changes
2565 * for any reason, then take out the following clause and
2566 * replace it with one that makes sure the ctl_fd is open.
2567 */
2568
2569 if (pi->tid != 0)
2570 pi = find_procinfo_or_die (pi->pid, 0);
2571
2572 #ifdef NEW_PROC_API
2573 {
2574 struct {
2575 procfs_ctl_t cmd;
2576 /* Use char array to avoid alignment issues. */
2577 char sinfo[sizeof (gdb_siginfo_t)];
2578 } arg;
2579 gdb_siginfo_t *mysinfo;
2580
2581 arg.cmd = PCSSIG;
2582 /* The pointer is just a type alias. */
2583 mysinfo = (gdb_siginfo_t *) &arg.sinfo;
2584 mysinfo->si_signo = 0;
2585 mysinfo->si_code = 0;
2586 mysinfo->si_errno = 0;
2587 mysinfo->si_pid = getpid (); /* ?why? */
2588 mysinfo->si_uid = getuid (); /* ?why? */
2589
2590 win = (write (pi->ctl_fd, (void *) &arg, sizeof (arg)) == sizeof (arg));
2591 }
2592 #else
2593 win = (ioctl (pi->ctl_fd, PIOCSSIG, 0) >= 0);
2594 #endif
2595
2596 return win;
2597 }
2598
2599 /* Return the general-purpose registers for the process or LWP
2600 corresponding to PI. Upon failure, return NULL. */
2601
2602 gdb_gregset_t *
2603 proc_get_gregs (procinfo *pi)
2604 {
2605 if (!pi->status_valid || !pi->gregs_valid)
2606 if (!proc_get_status (pi))
2607 return NULL;
2608
2609 /* OK, sorry about the ifdef's. There's three cases instead of two,
2610 because in this case Unixware and Solaris/RW differ. */
2611
2612 #ifdef NEW_PROC_API
2613 # ifdef UNIXWARE /* FIXME: Should be autoconfigured. */
2614 return &pi->prstatus.pr_lwp.pr_context.uc_mcontext.gregs;
2615 # else
2616 return &pi->prstatus.pr_lwp.pr_reg;
2617 # endif
2618 #else
2619 return &pi->prstatus.pr_reg;
2620 #endif
2621 }
2622
2623 /* Return the general-purpose registers for the process or LWP
2624 corresponding to PI. Upon failure, return NULL. */
2625
2626 gdb_fpregset_t *
2627 proc_get_fpregs (procinfo *pi)
2628 {
2629 #ifdef NEW_PROC_API
2630 if (!pi->status_valid || !pi->fpregs_valid)
2631 if (!proc_get_status (pi))
2632 return NULL;
2633
2634 # ifdef UNIXWARE /* FIXME: Should be autoconfigured. */
2635 return &pi->prstatus.pr_lwp.pr_context.uc_mcontext.fpregs;
2636 # else
2637 return &pi->prstatus.pr_lwp.pr_fpreg;
2638 # endif
2639
2640 #else /* not NEW_PROC_API */
2641 if (pi->fpregs_valid)
2642 return &pi->fpregset; /* Already got 'em. */
2643 else
2644 {
2645 if (pi->ctl_fd == 0 && open_procinfo_files (pi, FD_CTL) == 0)
2646 {
2647 return NULL;
2648 }
2649 else
2650 {
2651 # ifdef PIOCTGFPREG
2652 struct {
2653 long pr_count;
2654 tid_t pr_error_thread;
2655 tfpregset_t thread_1;
2656 } thread_fpregs;
2657
2658 thread_fpregs.pr_count = 1;
2659 thread_fpregs.thread_1.tid = pi->tid;
2660
2661 if (pi->tid == 0
2662 && ioctl (pi->ctl_fd, PIOCGFPREG, &pi->fpregset) >= 0)
2663 {
2664 pi->fpregs_valid = 1;
2665 return &pi->fpregset; /* Got 'em now! */
2666 }
2667 else if (pi->tid != 0
2668 && ioctl (pi->ctl_fd, PIOCTGFPREG, &thread_fpregs) >= 0)
2669 {
2670 memcpy (&pi->fpregset, &thread_fpregs.thread_1.pr_fpregs,
2671 sizeof (pi->fpregset));
2672 pi->fpregs_valid = 1;
2673 return &pi->fpregset; /* Got 'em now! */
2674 }
2675 else
2676 {
2677 return NULL;
2678 }
2679 # else
2680 if (ioctl (pi->ctl_fd, PIOCGFPREG, &pi->fpregset) >= 0)
2681 {
2682 pi->fpregs_valid = 1;
2683 return &pi->fpregset; /* Got 'em now! */
2684 }
2685 else
2686 {
2687 return NULL;
2688 }
2689 # endif
2690 }
2691 }
2692 #endif /* NEW_PROC_API */
2693 }
2694
2695 /* Write the general-purpose registers back to the process or LWP
2696 corresponding to PI. Return non-zero for success, zero for
2697 failure. */
2698
2699 int
2700 proc_set_gregs (procinfo *pi)
2701 {
2702 gdb_gregset_t *gregs;
2703 int win;
2704
2705 gregs = proc_get_gregs (pi);
2706 if (gregs == NULL)
2707 return 0; /* proc_get_regs has already warned. */
2708
2709 if (pi->ctl_fd == 0 && open_procinfo_files (pi, FD_CTL) == 0)
2710 {
2711 return 0;
2712 }
2713 else
2714 {
2715 #ifdef NEW_PROC_API
2716 struct {
2717 procfs_ctl_t cmd;
2718 /* Use char array to avoid alignment issues. */
2719 char gregs[sizeof (gdb_gregset_t)];
2720 } arg;
2721
2722 arg.cmd = PCSREG;
2723 memcpy (&arg.gregs, gregs, sizeof (arg.gregs));
2724 win = (write (pi->ctl_fd, (void *) &arg, sizeof (arg)) == sizeof (arg));
2725 #else
2726 win = (ioctl (pi->ctl_fd, PIOCSREG, gregs) >= 0);
2727 #endif
2728 }
2729
2730 /* Policy: writing the registers invalidates our cache. */
2731 pi->gregs_valid = 0;
2732 return win;
2733 }
2734
2735 /* Write the floating-pointer registers back to the process or LWP
2736 corresponding to PI. Return non-zero for success, zero for
2737 failure. */
2738
2739 int
2740 proc_set_fpregs (procinfo *pi)
2741 {
2742 gdb_fpregset_t *fpregs;
2743 int win;
2744
2745 fpregs = proc_get_fpregs (pi);
2746 if (fpregs == NULL)
2747 return 0; /* proc_get_fpregs has already warned. */
2748
2749 if (pi->ctl_fd == 0 && open_procinfo_files (pi, FD_CTL) == 0)
2750 {
2751 return 0;
2752 }
2753 else
2754 {
2755 #ifdef NEW_PROC_API
2756 struct {
2757 procfs_ctl_t cmd;
2758 /* Use char array to avoid alignment issues. */
2759 char fpregs[sizeof (gdb_fpregset_t)];
2760 } arg;
2761
2762 arg.cmd = PCSFPREG;
2763 memcpy (&arg.fpregs, fpregs, sizeof (arg.fpregs));
2764 win = (write (pi->ctl_fd, (void *) &arg, sizeof (arg)) == sizeof (arg));
2765 #else
2766 # ifdef PIOCTSFPREG
2767 if (pi->tid == 0)
2768 win = (ioctl (pi->ctl_fd, PIOCSFPREG, fpregs) >= 0);
2769 else
2770 {
2771 struct {
2772 long pr_count;
2773 tid_t pr_error_thread;
2774 tfpregset_t thread_1;
2775 } thread_fpregs;
2776
2777 thread_fpregs.pr_count = 1;
2778 thread_fpregs.thread_1.tid = pi->tid;
2779 memcpy (&thread_fpregs.thread_1.pr_fpregs, fpregs,
2780 sizeof (*fpregs));
2781 win = (ioctl (pi->ctl_fd, PIOCTSFPREG, &thread_fpregs) >= 0);
2782 }
2783 # else
2784 win = (ioctl (pi->ctl_fd, PIOCSFPREG, fpregs) >= 0);
2785 # endif
2786 #endif /* NEW_PROC_API */
2787 }
2788
2789 /* Policy: writing the registers invalidates our cache. */
2790 pi->fpregs_valid = 0;
2791 return win;
2792 }
2793
2794 /*
2795 * Function: proc_kill
2796 *
2797 * Send a signal to the proc or lwp with the semantics of "kill()".
2798 * Returns non-zero for success, zero for failure.
2799 */
2800
2801 int
2802 proc_kill (procinfo *pi, int signo)
2803 {
2804 int win;
2805
2806 /*
2807 * We might conceivably apply this operation to an LWP, and
2808 * the LWP's ctl file descriptor might not be open.
2809 */
2810
2811 if (pi->ctl_fd == 0 &&
2812 open_procinfo_files (pi, FD_CTL) == 0)
2813 {
2814 return 0;
2815 }
2816 else
2817 {
2818 #ifdef NEW_PROC_API
2819 procfs_ctl_t cmd[2];
2820
2821 cmd[0] = PCKILL;
2822 cmd[1] = signo;
2823 win = (write (pi->ctl_fd, (char *) &cmd, sizeof (cmd)) == sizeof (cmd));
2824 #else /* ioctl method */
2825 /* FIXME: do I need the Alpha OSF fixups present in
2826 procfs.c/unconditionally_kill_inferior? Perhaps only for SIGKILL? */
2827 win = (ioctl (pi->ctl_fd, PIOCKILL, &signo) >= 0);
2828 #endif
2829 }
2830
2831 return win;
2832 }
2833
2834 /*
2835 * Function: proc_parent_pid
2836 *
2837 * Find the pid of the process that started this one.
2838 * Returns the parent process pid, or zero.
2839 */
2840
2841 int
2842 proc_parent_pid (procinfo *pi)
2843 {
2844 /*
2845 * We should never have to apply this operation to any procinfo
2846 * except the one for the main process. If that ever changes
2847 * for any reason, then take out the following clause and
2848 * replace it with one that makes sure the ctl_fd is open.
2849 */
2850
2851 if (pi->tid != 0)
2852 pi = find_procinfo_or_die (pi->pid, 0);
2853
2854 if (!pi->status_valid)
2855 if (!proc_get_status (pi))
2856 return 0;
2857
2858 return pi->prstatus.pr_ppid;
2859 }
2860
2861
2862 /* Convert a target address (a.k.a. CORE_ADDR) into a host address
2863 (a.k.a void pointer)! */
2864
2865 static void *
2866 procfs_address_to_host_pointer (CORE_ADDR addr)
2867 {
2868 void *ptr;
2869
2870 gdb_assert (sizeof (ptr) == TYPE_LENGTH (builtin_type_void_data_ptr));
2871 gdbarch_address_to_pointer (current_gdbarch, builtin_type_void_data_ptr,
2872 &ptr, addr);
2873 return ptr;
2874 }
2875
2876 /*
2877 * Function: proc_set_watchpoint
2878 *
2879 */
2880
2881 int
2882 proc_set_watchpoint (procinfo *pi, CORE_ADDR addr, int len, int wflags)
2883 {
2884 #if !defined (TARGET_HAS_HARDWARE_WATCHPOINTS)
2885 return 0;
2886 #else
2887 /* Horrible hack! Detect Solaris 2.5, because this doesn't work on 2.5 */
2888 #if defined (PIOCOPENLWP) || defined (UNIXWARE) /* Solaris 2.5: bail out */
2889 return 0;
2890 #else
2891 struct {
2892 procfs_ctl_t cmd;
2893 char watch[sizeof (prwatch_t)];
2894 } arg;
2895 prwatch_t *pwatch;
2896
2897 pwatch = (prwatch_t *) &arg.watch;
2898 /* NOTE: cagney/2003-02-01: Even more horrible hack. Need to
2899 convert a target address into something that can be stored in a
2900 native data structure. */
2901 #ifdef PCAGENT /* Horrible hack: only defined on Solaris 2.6+ */
2902 pwatch->pr_vaddr = (uintptr_t) procfs_address_to_host_pointer (addr);
2903 #else
2904 pwatch->pr_vaddr = (caddr_t) procfs_address_to_host_pointer (addr);
2905 #endif
2906 pwatch->pr_size = len;
2907 pwatch->pr_wflags = wflags;
2908 #if defined(NEW_PROC_API) && defined (PCWATCH)
2909 arg.cmd = PCWATCH;
2910 return (write (pi->ctl_fd, &arg, sizeof (arg)) == sizeof (arg));
2911 #else
2912 #if defined (PIOCSWATCH)
2913 return (ioctl (pi->ctl_fd, PIOCSWATCH, pwatch) >= 0);
2914 #else
2915 return 0; /* Fail */
2916 #endif
2917 #endif
2918 #endif
2919 #endif
2920 }
2921
2922 #ifdef TM_I386SOL2_H /* Is it hokey to use this? */
2923
2924 #include <sys/sysi86.h>
2925
2926 /*
2927 * Function: proc_get_LDT_entry
2928 *
2929 * Inputs:
2930 * procinfo *pi;
2931 * int key;
2932 *
2933 * The 'key' is actually the value of the lower 16 bits of
2934 * the GS register for the LWP that we're interested in.
2935 *
2936 * Return: matching ssh struct (LDT entry).
2937 */
2938
2939 struct ssd *
2940 proc_get_LDT_entry (procinfo *pi, int key)
2941 {
2942 static struct ssd *ldt_entry = NULL;
2943 #ifdef NEW_PROC_API
2944 char pathname[MAX_PROC_NAME_SIZE];
2945 struct cleanup *old_chain = NULL;
2946 int fd;
2947
2948 /* Allocate space for one LDT entry.
2949 This alloc must persist, because we return a pointer to it. */
2950 if (ldt_entry == NULL)
2951 ldt_entry = (struct ssd *) xmalloc (sizeof (struct ssd));
2952
2953 /* Open the file descriptor for the LDT table. */
2954 sprintf (pathname, "/proc/%d/ldt", pi->pid);
2955 if ((fd = open_with_retry (pathname, O_RDONLY)) < 0)
2956 {
2957 proc_warn (pi, "proc_get_LDT_entry (open)", __LINE__);
2958 return NULL;
2959 }
2960 /* Make sure it gets closed again! */
2961 old_chain = make_cleanup_close (fd);
2962
2963 /* Now 'read' thru the table, find a match and return it. */
2964 while (read (fd, ldt_entry, sizeof (struct ssd)) == sizeof (struct ssd))
2965 {
2966 if (ldt_entry->sel == 0 &&
2967 ldt_entry->bo == 0 &&
2968 ldt_entry->acc1 == 0 &&
2969 ldt_entry->acc2 == 0)
2970 break; /* end of table */
2971 /* If key matches, return this entry. */
2972 if (ldt_entry->sel == key)
2973 return ldt_entry;
2974 }
2975 /* Loop ended, match not found. */
2976 return NULL;
2977 #else
2978 int nldt, i;
2979 static int nalloc = 0;
2980
2981 /* Get the number of LDT entries. */
2982 if (ioctl (pi->ctl_fd, PIOCNLDT, &nldt) < 0)
2983 {
2984 proc_warn (pi, "proc_get_LDT_entry (PIOCNLDT)", __LINE__);
2985 return NULL;
2986 }
2987
2988 /* Allocate space for the number of LDT entries. */
2989 /* This alloc has to persist, 'cause we return a pointer to it. */
2990 if (nldt > nalloc)
2991 {
2992 ldt_entry = (struct ssd *)
2993 xrealloc (ldt_entry, (nldt + 1) * sizeof (struct ssd));
2994 nalloc = nldt;
2995 }
2996
2997 /* Read the whole table in one gulp. */
2998 if (ioctl (pi->ctl_fd, PIOCLDT, ldt_entry) < 0)
2999 {
3000 proc_warn (pi, "proc_get_LDT_entry (PIOCLDT)", __LINE__);
3001 return NULL;
3002 }
3003
3004 /* Search the table and return the (first) entry matching 'key'. */
3005 for (i = 0; i < nldt; i++)
3006 if (ldt_entry[i].sel == key)
3007 return &ldt_entry[i];
3008
3009 /* Loop ended, match not found. */
3010 return NULL;
3011 #endif
3012 }
3013
3014 #endif /* TM_I386SOL2_H */
3015
3016 /* =============== END, non-thread part of /proc "MODULE" =============== */
3017
3018 /* =================== Thread "MODULE" =================== */
3019
3020 /* NOTE: you'll see more ifdefs and duplication of functions here,
3021 since there is a different way to do threads on every OS. */
3022
3023 /*
3024 * Function: proc_get_nthreads
3025 *
3026 * Return the number of threads for the process
3027 */
3028
3029 #if defined (PIOCNTHR) && defined (PIOCTLIST)
3030 /*
3031 * OSF version
3032 */
3033 int
3034 proc_get_nthreads (procinfo *pi)
3035 {
3036 int nthreads = 0;
3037
3038 if (ioctl (pi->ctl_fd, PIOCNTHR, &nthreads) < 0)
3039 proc_warn (pi, "procfs: PIOCNTHR failed", __LINE__);
3040
3041 return nthreads;
3042 }
3043
3044 #else
3045 #if defined (SYS_lwpcreate) || defined (SYS_lwp_create) /* FIXME: multiple */
3046 /*
3047 * Solaris and Unixware version
3048 */
3049 int
3050 proc_get_nthreads (procinfo *pi)
3051 {
3052 if (!pi->status_valid)
3053 if (!proc_get_status (pi))
3054 return 0;
3055
3056 /*
3057 * NEW_PROC_API: only works for the process procinfo,
3058 * because the LWP procinfos do not get prstatus filled in.
3059 */
3060 #ifdef NEW_PROC_API
3061 if (pi->tid != 0) /* find the parent process procinfo */
3062 pi = find_procinfo_or_die (pi->pid, 0);
3063 #endif
3064 return pi->prstatus.pr_nlwp;
3065 }
3066
3067 #else
3068 /*
3069 * Default version
3070 */
3071 int
3072 proc_get_nthreads (procinfo *pi)
3073 {
3074 return 0;
3075 }
3076 #endif
3077 #endif
3078
3079 /*
3080 * Function: proc_get_current_thread (LWP version)
3081 *
3082 * Return the ID of the thread that had an event of interest.
3083 * (ie. the one that hit a breakpoint or other traced event).
3084 * All other things being equal, this should be the ID of a
3085 * thread that is currently executing.
3086 */
3087
3088 #if defined (SYS_lwpcreate) || defined (SYS_lwp_create) /* FIXME: multiple */
3089 /*
3090 * Solaris and Unixware version
3091 */
3092 int
3093 proc_get_current_thread (procinfo *pi)
3094 {
3095 /*
3096 * Note: this should be applied to the root procinfo for the process,
3097 * not to the procinfo for an LWP. If applied to the procinfo for
3098 * an LWP, it will simply return that LWP's ID. In that case,
3099 * find the parent process procinfo.
3100 */
3101
3102 if (pi->tid != 0)
3103 pi = find_procinfo_or_die (pi->pid, 0);
3104
3105 if (!pi->status_valid)
3106 if (!proc_get_status (pi))
3107 return 0;
3108
3109 #ifdef NEW_PROC_API
3110 return pi->prstatus.pr_lwp.pr_lwpid;
3111 #else
3112 return pi->prstatus.pr_who;
3113 #endif
3114 }
3115
3116 #else
3117 #if defined (PIOCNTHR) && defined (PIOCTLIST)
3118 /*
3119 * OSF version
3120 */
3121 int
3122 proc_get_current_thread (procinfo *pi)
3123 {
3124 #if 0 /* FIXME: not ready for prime time? */
3125 return pi->prstatus.pr_tid;
3126 #else
3127 return 0;
3128 #endif
3129 }
3130
3131 #else
3132 /*
3133 * Default version
3134 */
3135 int
3136 proc_get_current_thread (procinfo *pi)
3137 {
3138 return 0;
3139 }
3140
3141 #endif
3142 #endif
3143
3144 /*
3145 * Function: proc_update_threads
3146 *
3147 * Discover the IDs of all the threads within the process, and
3148 * create a procinfo for each of them (chained to the parent).
3149 *
3150 * This unfortunately requires a different method on every OS.
3151 *
3152 * Return: non-zero for success, zero for failure.
3153 */
3154
3155 int
3156 proc_delete_dead_threads (procinfo *parent, procinfo *thread, void *ignore)
3157 {
3158 if (thread && parent) /* sanity */
3159 {
3160 thread->status_valid = 0;
3161 if (!proc_get_status (thread))
3162 destroy_one_procinfo (&parent->thread_list, thread);
3163 }
3164 return 0; /* keep iterating */
3165 }
3166
3167 #if defined (PIOCLSTATUS)
3168 /*
3169 * Solaris 2.5 (ioctl) version
3170 */
3171 int
3172 proc_update_threads (procinfo *pi)
3173 {
3174 gdb_prstatus_t *prstatus;
3175 struct cleanup *old_chain = NULL;
3176 procinfo *thread;
3177 int nlwp, i;
3178
3179 /*
3180 * We should never have to apply this operation to any procinfo
3181 * except the one for the main process. If that ever changes
3182 * for any reason, then take out the following clause and
3183 * replace it with one that makes sure the ctl_fd is open.
3184 */
3185
3186 if (pi->tid != 0)
3187 pi = find_procinfo_or_die (pi->pid, 0);
3188
3189 proc_iterate_over_threads (pi, proc_delete_dead_threads, NULL);
3190
3191 if ((nlwp = proc_get_nthreads (pi)) <= 1)
3192 return 1; /* Process is not multi-threaded; nothing to do. */
3193
3194 prstatus = xmalloc (sizeof (gdb_prstatus_t) * (nlwp + 1));
3195
3196 old_chain = make_cleanup (xfree, prstatus);
3197 if (ioctl (pi->ctl_fd, PIOCLSTATUS, prstatus) < 0)
3198 proc_error (pi, "update_threads (PIOCLSTATUS)", __LINE__);
3199
3200 /* Skip element zero, which represents the process as a whole. */
3201 for (i = 1; i < nlwp + 1; i++)
3202 {
3203 if ((thread = create_procinfo (pi->pid, prstatus[i].pr_who)) == NULL)
3204 proc_error (pi, "update_threads, create_procinfo", __LINE__);
3205
3206 memcpy (&thread->prstatus, &prstatus[i], sizeof (*prstatus));
3207 thread->status_valid = 1;
3208 }
3209 pi->threads_valid = 1;
3210 do_cleanups (old_chain);
3211 return 1;
3212 }
3213 #else
3214 #ifdef NEW_PROC_API
3215 /*
3216 * Unixware and Solaris 6 (and later) version
3217 */
3218 static void
3219 do_closedir_cleanup (void *dir)
3220 {
3221 closedir (dir);
3222 }
3223
3224 int
3225 proc_update_threads (procinfo *pi)
3226 {
3227 char pathname[MAX_PROC_NAME_SIZE + 16];
3228 struct dirent *direntry;
3229 struct cleanup *old_chain = NULL;
3230 procinfo *thread;
3231 DIR *dirp;
3232 int lwpid;
3233
3234 /*
3235 * We should never have to apply this operation to any procinfo
3236 * except the one for the main process. If that ever changes
3237 * for any reason, then take out the following clause and
3238 * replace it with one that makes sure the ctl_fd is open.
3239 */
3240
3241 if (pi->tid != 0)
3242 pi = find_procinfo_or_die (pi->pid, 0);
3243
3244 proc_iterate_over_threads (pi, proc_delete_dead_threads, NULL);
3245
3246 /*
3247 * Unixware
3248 *
3249 * Note: this brute-force method is the only way I know of
3250 * to accomplish this task on Unixware. This method will
3251 * also work on Solaris 2.6 and 2.7. There is a much simpler
3252 * and more elegant way to do this on Solaris, but the margins
3253 * of this manuscript are too small to write it here... ;-)
3254 */
3255
3256 strcpy (pathname, pi->pathname);
3257 strcat (pathname, "/lwp");
3258 if ((dirp = opendir (pathname)) == NULL)
3259 proc_error (pi, "update_threads, opendir", __LINE__);
3260
3261 old_chain = make_cleanup (do_closedir_cleanup, dirp);
3262 while ((direntry = readdir (dirp)) != NULL)
3263 if (direntry->d_name[0] != '.') /* skip '.' and '..' */
3264 {
3265 lwpid = atoi (&direntry->d_name[0]);
3266 if ((thread = create_procinfo (pi->pid, lwpid)) == NULL)
3267 proc_error (pi, "update_threads, create_procinfo", __LINE__);
3268 }
3269 pi->threads_valid = 1;
3270 do_cleanups (old_chain);
3271 return 1;
3272 }
3273 #else
3274 #ifdef PIOCTLIST
3275 /*
3276 * OSF version
3277 */
3278 int
3279 proc_update_threads (procinfo *pi)
3280 {
3281 int nthreads, i;
3282 tid_t *threads;
3283
3284 /*
3285 * We should never have to apply this operation to any procinfo
3286 * except the one for the main process. If that ever changes
3287 * for any reason, then take out the following clause and
3288 * replace it with one that makes sure the ctl_fd is open.
3289 */
3290
3291 if (pi->tid != 0)
3292 pi = find_procinfo_or_die (pi->pid, 0);
3293
3294 proc_iterate_over_threads (pi, proc_delete_dead_threads, NULL);
3295
3296 nthreads = proc_get_nthreads (pi);
3297 if (nthreads < 2)
3298 return 0; /* nothing to do for 1 or fewer threads */
3299
3300 threads = xmalloc (nthreads * sizeof (tid_t));
3301
3302 if (ioctl (pi->ctl_fd, PIOCTLIST, threads) < 0)
3303 proc_error (pi, "procfs: update_threads (PIOCTLIST)", __LINE__);
3304
3305 for (i = 0; i < nthreads; i++)
3306 {
3307 if (!find_procinfo (pi->pid, threads[i]))
3308 if (!create_procinfo (pi->pid, threads[i]))
3309 proc_error (pi, "update_threads, create_procinfo", __LINE__);
3310 }
3311 pi->threads_valid = 1;
3312 return 1;
3313 }
3314 #else
3315 /*
3316 * Default version
3317 */
3318 int
3319 proc_update_threads (procinfo *pi)
3320 {
3321 return 0;
3322 }
3323 #endif /* OSF PIOCTLIST */
3324 #endif /* NEW_PROC_API */
3325 #endif /* SOL 2.5 PIOCLSTATUS */
3326
3327 /*
3328 * Function: proc_iterate_over_threads
3329 *
3330 * Description:
3331 * Given a pointer to a function, call that function once
3332 * for each lwp in the procinfo list, until the function
3333 * returns non-zero, in which event return the value
3334 * returned by the function.
3335 *
3336 * Note: this function does NOT call update_threads.
3337 * If you want to discover new threads first, you must
3338 * call that function explicitly. This function just makes
3339 * a quick pass over the currently-known procinfos.
3340 *
3341 * Arguments:
3342 * pi - parent process procinfo
3343 * func - per-thread function
3344 * ptr - opaque parameter for function.
3345 *
3346 * Return:
3347 * First non-zero return value from the callee, or zero.
3348 */
3349
3350 int
3351 proc_iterate_over_threads (procinfo *pi,
3352 int (*func) (procinfo *, procinfo *, void *),
3353 void *ptr)
3354 {
3355 procinfo *thread, *next;
3356 int retval = 0;
3357
3358 /*
3359 * We should never have to apply this operation to any procinfo
3360 * except the one for the main process. If that ever changes
3361 * for any reason, then take out the following clause and
3362 * replace it with one that makes sure the ctl_fd is open.
3363 */
3364
3365 if (pi->tid != 0)
3366 pi = find_procinfo_or_die (pi->pid, 0);
3367
3368 for (thread = pi->thread_list; thread != NULL; thread = next)
3369 {
3370 next = thread->next; /* in case thread is destroyed */
3371 if ((retval = (*func) (pi, thread, ptr)) != 0)
3372 break;
3373 }
3374
3375 return retval;
3376 }
3377
3378 /* =================== END, Thread "MODULE" =================== */
3379
3380 /* =================== END, /proc "MODULE" =================== */
3381
3382 /* =================== GDB "MODULE" =================== */
3383
3384 /*
3385 * Here are all of the gdb target vector functions and their friends.
3386 */
3387
3388 static ptid_t do_attach (ptid_t ptid);
3389 static void do_detach (int signo);
3390 static int register_gdb_signals (procinfo *, gdb_sigset_t *);
3391 static void proc_trace_syscalls_1 (procinfo *pi, int syscallnum,
3392 int entry_or_exit, int mode, int from_tty);
3393 static int insert_dbx_link_breakpoint (procinfo *pi);
3394 static void remove_dbx_link_breakpoint (void);
3395
3396 /* On mips-irix, we need to insert a breakpoint at __dbx_link during
3397 the startup phase. The following two variables are used to record
3398 the address of the breakpoint, and the code that was replaced by
3399 a breakpoint. */
3400 static int dbx_link_bpt_addr = 0;
3401 static void *dbx_link_bpt;
3402
3403 /*
3404 * Function: procfs_debug_inferior
3405 *
3406 * Sets up the inferior to be debugged.
3407 * Registers to trace signals, hardware faults, and syscalls.
3408 * Note: does not set RLC flag: caller may want to customize that.
3409 *
3410 * Returns: zero for success (note! unlike most functions in this module)
3411 * On failure, returns the LINE NUMBER where it failed!
3412 */
3413
3414 static int
3415 procfs_debug_inferior (procinfo *pi)
3416 {
3417 fltset_t traced_faults;
3418 gdb_sigset_t traced_signals;
3419 sysset_t *traced_syscall_entries;
3420 sysset_t *traced_syscall_exits;
3421 int status;
3422
3423 #ifdef PROCFS_DONT_TRACE_FAULTS
3424 /* On some systems (OSF), we don't trace hardware faults.
3425 Apparently it's enough that we catch them as signals.
3426 Wonder why we don't just do that in general? */
3427 premptyset (&traced_faults); /* don't trace faults. */
3428 #else
3429 /* Register to trace hardware faults in the child. */
3430 prfillset (&traced_faults); /* trace all faults... */
3431 prdelset (&traced_faults, FLTPAGE); /* except page fault. */
3432 #endif
3433 if (!proc_set_traced_faults (pi, &traced_faults))
3434 return __LINE__;
3435
3436 /* Register to trace selected signals in the child. */
3437 premptyset (&traced_signals);
3438 if (!register_gdb_signals (pi, &traced_signals))
3439 return __LINE__;
3440
3441
3442 /* Register to trace the 'exit' system call (on entry). */
3443 traced_syscall_entries = sysset_t_alloc (pi);
3444 gdb_premptysysset (traced_syscall_entries);
3445 #ifdef SYS_exit
3446 gdb_praddsysset (traced_syscall_entries, SYS_exit);
3447 #endif
3448 #ifdef SYS_lwpexit
3449 gdb_praddsysset (traced_syscall_entries, SYS_lwpexit); /* And _lwp_exit... */
3450 #endif
3451 #ifdef SYS_lwp_exit
3452 gdb_praddsysset (traced_syscall_entries, SYS_lwp_exit);
3453 #endif
3454 #ifdef DYNAMIC_SYSCALLS
3455 {
3456 int callnum = find_syscall (pi, "_exit");
3457 if (callnum >= 0)
3458 gdb_praddsysset (traced_syscall_entries, callnum);
3459 }
3460 #endif
3461
3462 status = proc_set_traced_sysentry (pi, traced_syscall_entries);
3463 xfree (traced_syscall_entries);
3464 if (!status)
3465 return __LINE__;
3466
3467 #ifdef PRFS_STOPEXEC /* defined on OSF */
3468 /* OSF method for tracing exec syscalls. Quoting:
3469 Under Alpha OSF/1 we have to use a PIOCSSPCACT ioctl to trace
3470 exits from exec system calls because of the user level loader. */
3471 /* FIXME: make nice and maybe move into an access function. */
3472 {
3473 int prfs_flags;
3474
3475 if (ioctl (pi->ctl_fd, PIOCGSPCACT, &prfs_flags) < 0)
3476 return __LINE__;
3477
3478 prfs_flags |= PRFS_STOPEXEC;
3479
3480 if (ioctl (pi->ctl_fd, PIOCSSPCACT, &prfs_flags) < 0)
3481 return __LINE__;
3482 }
3483 #else /* not PRFS_STOPEXEC */
3484 /* Everyone else's (except OSF) method for tracing exec syscalls */
3485 /* GW: Rationale...
3486 Not all systems with /proc have all the exec* syscalls with the same
3487 names. On the SGI, for example, there is no SYS_exec, but there
3488 *is* a SYS_execv. So, we try to account for that. */
3489
3490 traced_syscall_exits = sysset_t_alloc (pi);
3491 gdb_premptysysset (traced_syscall_exits);
3492 #ifdef SYS_exec
3493 gdb_praddsysset (traced_syscall_exits, SYS_exec);
3494 #endif
3495 #ifdef SYS_execve
3496 gdb_praddsysset (traced_syscall_exits, SYS_execve);
3497 #endif
3498 #ifdef SYS_execv
3499 gdb_praddsysset (traced_syscall_exits, SYS_execv);
3500 #endif
3501
3502 #ifdef SYS_lwpcreate
3503 gdb_praddsysset (traced_syscall_exits, SYS_lwpcreate);
3504 gdb_praddsysset (traced_syscall_exits, SYS_lwpexit);
3505 #endif
3506
3507 #ifdef SYS_lwp_create /* FIXME: once only, please */
3508 gdb_praddsysset (traced_syscall_exits, SYS_lwp_create);
3509 gdb_praddsysset (traced_syscall_exits, SYS_lwp_exit);
3510 #endif
3511
3512 #ifdef DYNAMIC_SYSCALLS
3513 {
3514 int callnum = find_syscall (pi, "execve");
3515 if (callnum >= 0)
3516 gdb_praddsysset (traced_syscall_exits, callnum);
3517 callnum = find_syscall (pi, "ra_execve");
3518 if (callnum >= 0)
3519 gdb_praddsysset (traced_syscall_exits, callnum);
3520 }
3521 #endif
3522
3523 status = proc_set_traced_sysexit (pi, traced_syscall_exits);
3524 xfree (traced_syscall_exits);
3525 if (!status)
3526 return __LINE__;
3527
3528 #endif /* PRFS_STOPEXEC */
3529 return 0;
3530 }
3531
3532 static void
3533 procfs_attach (char *args, int from_tty)
3534 {
3535 char *exec_file;
3536 int pid;
3537
3538 if (!args)
3539 error_no_arg (_("process-id to attach"));
3540
3541 pid = atoi (args);
3542 if (pid == getpid ())
3543 error (_("Attaching GDB to itself is not a good idea..."));
3544
3545 if (from_tty)
3546 {
3547 exec_file = get_exec_file (0);
3548
3549 if (exec_file)
3550 printf_filtered (_("Attaching to program `%s', %s\n"),
3551 exec_file, target_pid_to_str (pid_to_ptid (pid)));
3552 else
3553 printf_filtered (_("Attaching to %s\n"),
3554 target_pid_to_str (pid_to_ptid (pid)));
3555
3556 fflush (stdout);
3557 }
3558 inferior_ptid = do_attach (pid_to_ptid (pid));
3559 push_target (&procfs_ops);
3560 }
3561
3562 static void
3563 procfs_detach (char *args, int from_tty)
3564 {
3565 int sig = 0;
3566
3567 if (args)
3568 sig = atoi (args);
3569
3570 if (from_tty)
3571 {
3572 int pid = PIDGET (inferior_ptid);
3573 char *exec_file;
3574
3575 exec_file = get_exec_file (0);
3576 if (exec_file == NULL)
3577 exec_file = "";
3578
3579 printf_filtered (_("Detaching from program: %s, %s\n"), exec_file,
3580 target_pid_to_str (pid_to_ptid (pid)));
3581 gdb_flush (gdb_stdout);
3582 }
3583
3584 do_detach (sig);
3585
3586 inferior_ptid = null_ptid;
3587 unpush_target (&procfs_ops);
3588 }
3589
3590 static ptid_t
3591 do_attach (ptid_t ptid)
3592 {
3593 procinfo *pi;
3594 int fail;
3595
3596 if ((pi = create_procinfo (PIDGET (ptid), 0)) == NULL)
3597 perror (_("procfs: out of memory in 'attach'"));
3598
3599 if (!open_procinfo_files (pi, FD_CTL))
3600 {
3601 fprintf_filtered (gdb_stderr, "procfs:%d -- ", __LINE__);
3602 sprintf (errmsg, "do_attach: couldn't open /proc file for process %d",
3603 PIDGET (ptid));
3604 dead_procinfo (pi, errmsg, NOKILL);
3605 }
3606
3607 /* Stop the process (if it isn't already stopped). */
3608 if (proc_flags (pi) & (PR_STOPPED | PR_ISTOP))
3609 {
3610 pi->was_stopped = 1;
3611 proc_prettyprint_why (proc_why (pi), proc_what (pi), 1);
3612 }
3613 else
3614 {
3615 pi->was_stopped = 0;
3616 /* Set the process to run again when we close it. */
3617 if (!proc_set_run_on_last_close (pi))
3618 dead_procinfo (pi, "do_attach: couldn't set RLC.", NOKILL);
3619
3620 /* Now stop the process. */
3621 if (!proc_stop_process (pi))
3622 dead_procinfo (pi, "do_attach: couldn't stop the process.", NOKILL);
3623 pi->ignore_next_sigstop = 1;
3624 }
3625 /* Save some of the /proc state to be restored if we detach. */
3626 if (!proc_get_traced_faults (pi, &pi->saved_fltset))
3627 dead_procinfo (pi, "do_attach: couldn't save traced faults.", NOKILL);
3628 if (!proc_get_traced_signals (pi, &pi->saved_sigset))
3629 dead_procinfo (pi, "do_attach: couldn't save traced signals.", NOKILL);
3630 if (!proc_get_traced_sysentry (pi, pi->saved_entryset))
3631 dead_procinfo (pi, "do_attach: couldn't save traced syscall entries.",
3632 NOKILL);
3633 if (!proc_get_traced_sysexit (pi, pi->saved_exitset))
3634 dead_procinfo (pi, "do_attach: couldn't save traced syscall exits.",
3635 NOKILL);
3636 if (!proc_get_held_signals (pi, &pi->saved_sighold))
3637 dead_procinfo (pi, "do_attach: couldn't save held signals.", NOKILL);
3638
3639 if ((fail = procfs_debug_inferior (pi)) != 0)
3640 dead_procinfo (pi, "do_attach: failed in procfs_debug_inferior", NOKILL);
3641
3642 /* Let GDB know that the inferior was attached. */
3643 attach_flag = 1;
3644 return MERGEPID (pi->pid, proc_get_current_thread (pi));
3645 }
3646
3647 static void
3648 do_detach (int signo)
3649 {
3650 procinfo *pi;
3651
3652 /* Find procinfo for the main process */
3653 pi = find_procinfo_or_die (PIDGET (inferior_ptid), 0); /* FIXME: threads */
3654 if (signo)
3655 if (!proc_set_current_signal (pi, signo))
3656 proc_warn (pi, "do_detach, set_current_signal", __LINE__);
3657
3658 if (!proc_set_traced_signals (pi, &pi->saved_sigset))
3659 proc_warn (pi, "do_detach, set_traced_signal", __LINE__);
3660
3661 if (!proc_set_traced_faults (pi, &pi->saved_fltset))
3662 proc_warn (pi, "do_detach, set_traced_faults", __LINE__);
3663
3664 if (!proc_set_traced_sysentry (pi, pi->saved_entryset))
3665 proc_warn (pi, "do_detach, set_traced_sysentry", __LINE__);
3666
3667 if (!proc_set_traced_sysexit (pi, pi->saved_exitset))
3668 proc_warn (pi, "do_detach, set_traced_sysexit", __LINE__);
3669
3670 if (!proc_set_held_signals (pi, &pi->saved_sighold))
3671 proc_warn (pi, "do_detach, set_held_signals", __LINE__);
3672
3673 if (signo || (proc_flags (pi) & (PR_STOPPED | PR_ISTOP)))
3674 if (signo || !(pi->was_stopped) ||
3675 query (_("Was stopped when attached, make it runnable again? ")))
3676 {
3677 /* Clear any pending signal. */
3678 if (!proc_clear_current_fault (pi))
3679 proc_warn (pi, "do_detach, clear_current_fault", __LINE__);
3680
3681 if (signo == 0 && !proc_clear_current_signal (pi))
3682 proc_warn (pi, "do_detach, clear_current_signal", __LINE__);
3683
3684 if (!proc_set_run_on_last_close (pi))
3685 proc_warn (pi, "do_detach, set_rlc", __LINE__);
3686 }
3687
3688 attach_flag = 0;
3689 destroy_procinfo (pi);
3690 }
3691
3692 /* Fetch register REGNUM from the inferior. If REGNUM is -1, do this
3693 for all registers.
3694
3695 ??? Is the following note still relevant? We can't get individual
3696 registers with the PT_GETREGS ptrace(2) request either, yet we
3697 don't bother with caching at all in that case.
3698
3699 NOTE: Since the /proc interface cannot give us individual
3700 registers, we pay no attention to REGNUM, and just fetch them all.
3701 This results in the possibility that we will do unnecessarily many
3702 fetches, since we may be called repeatedly for individual
3703 registers. So we cache the results, and mark the cache invalid
3704 when the process is resumed. */
3705
3706 static void
3707 procfs_fetch_registers (struct regcache *regcache, int regnum)
3708 {
3709 gdb_gregset_t *gregs;
3710 procinfo *pi;
3711 int pid = PIDGET (inferior_ptid);
3712 int tid = TIDGET (inferior_ptid);
3713 struct gdbarch *gdbarch = get_regcache_arch (regcache);
3714
3715 /* First look up procinfo for the main process. */
3716 pi = find_procinfo_or_die (pid, 0);
3717
3718 /* If the event thread is not the same as GDB's requested thread
3719 (ie. inferior_ptid), then look up procinfo for the requested
3720 thread. */
3721 if (tid != 0 && tid != proc_get_current_thread (pi))
3722 pi = find_procinfo_or_die (pid, tid);
3723
3724 if (pi == NULL)
3725 error (_("procfs: fetch_registers failed to find procinfo for %s"),
3726 target_pid_to_str (inferior_ptid));
3727
3728 gregs = proc_get_gregs (pi);
3729 if (gregs == NULL)
3730 proc_error (pi, "fetch_registers, get_gregs", __LINE__);
3731
3732 supply_gregset (regcache, (const gdb_gregset_t *) gregs);
3733
3734 if (gdbarch_fp0_regnum (gdbarch) >= 0) /* Do we have an FPU? */
3735 {
3736 gdb_fpregset_t *fpregs;
3737
3738 if ((regnum >= 0 && regnum < gdbarch_fp0_regnum (gdbarch))
3739 || regnum == gdbarch_pc_regnum (gdbarch)
3740 || regnum == gdbarch_sp_regnum (gdbarch))
3741 return; /* Not a floating point register. */
3742
3743 fpregs = proc_get_fpregs (pi);
3744 if (fpregs == NULL)
3745 proc_error (pi, "fetch_registers, get_fpregs", __LINE__);
3746
3747 supply_fpregset (regcache, (const gdb_fpregset_t *) fpregs);
3748 }
3749 }
3750
3751 /* Get ready to modify the registers array. On machines which store
3752 individual registers, this doesn't need to do anything. On
3753 machines which store all the registers in one fell swoop, such as
3754 /proc, this makes sure that registers contains all the registers
3755 from the program being debugged. */
3756
3757 static void
3758 procfs_prepare_to_store (struct regcache *regcache)
3759 {
3760 }
3761
3762 /* Store register REGNUM back into the inferior. If REGNUM is -1, do
3763 this for all registers.
3764
3765 NOTE: Since the /proc interface will not read individual registers,
3766 we will cache these requests until the process is resumed, and only
3767 then write them back to the inferior process.
3768
3769 FIXME: is that a really bad idea? Have to think about cases where
3770 writing one register might affect the value of others, etc. */
3771
3772 static void
3773 procfs_store_registers (struct regcache *regcache, int regnum)
3774 {
3775 gdb_gregset_t *gregs;
3776 procinfo *pi;
3777 int pid = PIDGET (inferior_ptid);
3778 int tid = TIDGET (inferior_ptid);
3779 struct gdbarch *gdbarch = get_regcache_arch (regcache);
3780
3781 /* First find procinfo for main process. */
3782 pi = find_procinfo_or_die (pid, 0);
3783
3784 /* If the event thread is not the same as GDB's requested thread
3785 (ie. inferior_ptid), then look up procinfo for the requested
3786 thread. */
3787 if (tid != 0 && tid != proc_get_current_thread (pi))
3788 pi = find_procinfo_or_die (pid, tid);
3789
3790 if (pi == NULL)
3791 error (_("procfs: store_registers: failed to find procinfo for %s"),
3792 target_pid_to_str (inferior_ptid));
3793
3794 gregs = proc_get_gregs (pi);
3795 if (gregs == NULL)
3796 proc_error (pi, "store_registers, get_gregs", __LINE__);
3797
3798 fill_gregset (regcache, gregs, regnum);
3799 if (!proc_set_gregs (pi))
3800 proc_error (pi, "store_registers, set_gregs", __LINE__);
3801
3802 if (gdbarch_fp0_regnum (gdbarch) >= 0) /* Do we have an FPU? */
3803 {
3804 gdb_fpregset_t *fpregs;
3805
3806 if ((regnum >= 0 && regnum < gdbarch_fp0_regnum (gdbarch))
3807 || regnum == gdbarch_pc_regnum (gdbarch)
3808 || regnum == gdbarch_sp_regnum (gdbarch))
3809 return; /* Not a floating point register. */
3810
3811 fpregs = proc_get_fpregs (pi);
3812 if (fpregs == NULL)
3813 proc_error (pi, "store_registers, get_fpregs", __LINE__);
3814
3815 fill_fpregset (regcache, fpregs, regnum);
3816 if (!proc_set_fpregs (pi))
3817 proc_error (pi, "store_registers, set_fpregs", __LINE__);
3818 }
3819 }
3820
3821 static int
3822 syscall_is_lwp_exit (procinfo *pi, int scall)
3823 {
3824
3825 #ifdef SYS_lwp_exit
3826 if (scall == SYS_lwp_exit)
3827 return 1;
3828 #endif
3829 #ifdef SYS_lwpexit
3830 if (scall == SYS_lwpexit)
3831 return 1;
3832 #endif
3833 return 0;
3834 }
3835
3836 static int
3837 syscall_is_exit (procinfo *pi, int scall)
3838 {
3839 #ifdef SYS_exit
3840 if (scall == SYS_exit)
3841 return 1;
3842 #endif
3843 #ifdef DYNAMIC_SYSCALLS
3844 if (find_syscall (pi, "_exit") == scall)
3845 return 1;
3846 #endif
3847 return 0;
3848 }
3849
3850 static int
3851 syscall_is_exec (procinfo *pi, int scall)
3852 {
3853 #ifdef SYS_exec
3854 if (scall == SYS_exec)
3855 return 1;
3856 #endif
3857 #ifdef SYS_execv
3858 if (scall == SYS_execv)
3859 return 1;
3860 #endif
3861 #ifdef SYS_execve
3862 if (scall == SYS_execve)
3863 return 1;
3864 #endif
3865 #ifdef DYNAMIC_SYSCALLS
3866 if (find_syscall (pi, "_execve"))
3867 return 1;
3868 if (find_syscall (pi, "ra_execve"))
3869 return 1;
3870 #endif
3871 return 0;
3872 }
3873
3874 static int
3875 syscall_is_lwp_create (procinfo *pi, int scall)
3876 {
3877 #ifdef SYS_lwp_create
3878 if (scall == SYS_lwp_create)
3879 return 1;
3880 #endif
3881 #ifdef SYS_lwpcreate
3882 if (scall == SYS_lwpcreate)
3883 return 1;
3884 #endif
3885 return 0;
3886 }
3887
3888 /*
3889 * Function: target_wait
3890 *
3891 * Retrieve the next stop event from the child process.
3892 * If child has not stopped yet, wait for it to stop.
3893 * Translate /proc eventcodes (or possibly wait eventcodes)
3894 * into gdb internal event codes.
3895 *
3896 * Return: id of process (and possibly thread) that incurred the event.
3897 * event codes are returned thru a pointer parameter.
3898 */
3899
3900 static ptid_t
3901 procfs_wait (ptid_t ptid, struct target_waitstatus *status)
3902 {
3903 /* First cut: loosely based on original version 2.1 */
3904 procinfo *pi;
3905 int wstat;
3906 int temp_tid;
3907 ptid_t retval, temp_ptid;
3908 int why, what, flags;
3909 int retry = 0;
3910
3911 wait_again:
3912
3913 retry++;
3914 wstat = 0;
3915 retval = pid_to_ptid (-1);
3916
3917 /* Find procinfo for main process */
3918 pi = find_procinfo_or_die (PIDGET (inferior_ptid), 0);
3919 if (pi)
3920 {
3921 /* We must assume that the status is stale now... */
3922 pi->status_valid = 0;
3923 pi->gregs_valid = 0;
3924 pi->fpregs_valid = 0;
3925
3926 #if 0 /* just try this out... */
3927 flags = proc_flags (pi);
3928 why = proc_why (pi);
3929 if ((flags & PR_STOPPED) && (why == PR_REQUESTED))
3930 pi->status_valid = 0; /* re-read again, IMMEDIATELY... */
3931 #endif
3932 /* If child is not stopped, wait for it to stop. */
3933 if (!(proc_flags (pi) & (PR_STOPPED | PR_ISTOP)) &&
3934 !proc_wait_for_stop (pi))
3935 {
3936 /* wait_for_stop failed: has the child terminated? */
3937 if (errno == ENOENT)
3938 {
3939 int wait_retval;
3940
3941 /* /proc file not found; presumably child has terminated. */
3942 wait_retval = wait (&wstat); /* "wait" for the child's exit */
3943
3944 if (wait_retval != PIDGET (inferior_ptid)) /* wrong child? */
3945 error (_("procfs: couldn't stop process %d: wait returned %d."),
3946 PIDGET (inferior_ptid), wait_retval);
3947 /* FIXME: might I not just use waitpid?
3948 Or try find_procinfo to see if I know about this child? */
3949 retval = pid_to_ptid (wait_retval);
3950 }
3951 else if (errno == EINTR)
3952 goto wait_again;
3953 else
3954 {
3955 /* Unknown error from wait_for_stop. */
3956 proc_error (pi, "target_wait (wait_for_stop)", __LINE__);
3957 }
3958 }
3959 else
3960 {
3961 /* This long block is reached if either:
3962 a) the child was already stopped, or
3963 b) we successfully waited for the child with wait_for_stop.
3964 This block will analyze the /proc status, and translate it
3965 into a waitstatus for GDB.
3966
3967 If we actually had to call wait because the /proc file
3968 is gone (child terminated), then we skip this block,
3969 because we already have a waitstatus. */
3970
3971 flags = proc_flags (pi);
3972 why = proc_why (pi);
3973 what = proc_what (pi);
3974
3975 if (flags & (PR_STOPPED | PR_ISTOP))
3976 {
3977 #ifdef PR_ASYNC
3978 /* If it's running async (for single_thread control),
3979 set it back to normal again. */
3980 if (flags & PR_ASYNC)
3981 if (!proc_unset_async (pi))
3982 proc_error (pi, "target_wait, unset_async", __LINE__);
3983 #endif
3984
3985 if (info_verbose)
3986 proc_prettyprint_why (why, what, 1);
3987
3988 /* The 'pid' we will return to GDB is composed of
3989 the process ID plus the lwp ID. */
3990 retval = MERGEPID (pi->pid, proc_get_current_thread (pi));
3991
3992 switch (why) {
3993 case PR_SIGNALLED:
3994 wstat = (what << 8) | 0177;
3995 break;
3996 case PR_SYSENTRY:
3997 if (syscall_is_lwp_exit (pi, what))
3998 {
3999 printf_filtered (_("[%s exited]\n"),
4000 target_pid_to_str (retval));
4001 delete_thread (retval);
4002 status->kind = TARGET_WAITKIND_SPURIOUS;
4003 return retval;
4004 }
4005 else if (syscall_is_exit (pi, what))
4006 {
4007 /* Handle SYS_exit call only */
4008 /* Stopped at entry to SYS_exit.
4009 Make it runnable, resume it, then use
4010 the wait system call to get its exit code.
4011 Proc_run_process always clears the current
4012 fault and signal.
4013 Then return its exit status. */
4014 pi->status_valid = 0;
4015 wstat = 0;
4016 /* FIXME: what we should do is return
4017 TARGET_WAITKIND_SPURIOUS. */
4018 if (!proc_run_process (pi, 0, 0))
4019 proc_error (pi, "target_wait, run_process", __LINE__);
4020 if (attach_flag)
4021 {
4022 /* Don't call wait: simulate waiting for exit,
4023 return a "success" exit code. Bogus: what if
4024 it returns something else? */
4025 wstat = 0;
4026 retval = inferior_ptid; /* ? ? ? */
4027 }
4028 else
4029 {
4030 int temp = wait (&wstat);
4031
4032 /* FIXME: shouldn't I make sure I get the right
4033 event from the right process? If (for
4034 instance) I have killed an earlier inferior
4035 process but failed to clean up after it
4036 somehow, I could get its termination event
4037 here. */
4038
4039 /* If wait returns -1, that's what we return to GDB. */
4040 if (temp < 0)
4041 retval = pid_to_ptid (temp);
4042 }
4043 }
4044 else
4045 {
4046 printf_filtered (_("procfs: trapped on entry to "));
4047 proc_prettyprint_syscall (proc_what (pi), 0);
4048 printf_filtered ("\n");
4049 #ifndef PIOCSSPCACT
4050 {
4051 long i, nsysargs, *sysargs;
4052
4053 if ((nsysargs = proc_nsysarg (pi)) > 0 &&
4054 (sysargs = proc_sysargs (pi)) != NULL)
4055 {
4056 printf_filtered (_("%ld syscall arguments:\n"), nsysargs);
4057 for (i = 0; i < nsysargs; i++)
4058 printf_filtered ("#%ld: 0x%08lx\n",
4059 i, sysargs[i]);
4060 }
4061
4062 }
4063 #endif
4064 if (status)
4065 {
4066 /* How to exit gracefully, returning "unknown event" */
4067 status->kind = TARGET_WAITKIND_SPURIOUS;
4068 return inferior_ptid;
4069 }
4070 else
4071 {
4072 /* How to keep going without returning to wfi: */
4073 target_resume (ptid, 0, TARGET_SIGNAL_0);
4074 goto wait_again;
4075 }
4076 }
4077 break;
4078 case PR_SYSEXIT:
4079 if (syscall_is_exec (pi, what))
4080 {
4081 /* Hopefully this is our own "fork-child" execing
4082 the real child. Hoax this event into a trap, and
4083 GDB will see the child about to execute its start
4084 address. */
4085 wstat = (SIGTRAP << 8) | 0177;
4086 }
4087 #ifdef SYS_syssgi
4088 else if (what == SYS_syssgi)
4089 {
4090 /* see if we can break on dbx_link(). If yes, then
4091 we no longer need the SYS_syssgi notifications. */
4092 if (insert_dbx_link_breakpoint (pi))
4093 proc_trace_syscalls_1 (pi, SYS_syssgi, PR_SYSEXIT,
4094 FLAG_RESET, 0);
4095
4096 /* This is an internal event and should be transparent
4097 to wfi, so resume the execution and wait again. See
4098 comment in procfs_init_inferior() for more details. */
4099 target_resume (ptid, 0, TARGET_SIGNAL_0);
4100 goto wait_again;
4101 }
4102 #endif
4103 else if (syscall_is_lwp_create (pi, what))
4104 {
4105 /*
4106 * This syscall is somewhat like fork/exec.
4107 * We will get the event twice: once for the parent LWP,
4108 * and once for the child. We should already know about
4109 * the parent LWP, but the child will be new to us. So,
4110 * whenever we get this event, if it represents a new
4111 * thread, simply add the thread to the list.
4112 */
4113
4114 /* If not in procinfo list, add it. */
4115 temp_tid = proc_get_current_thread (pi);
4116 if (!find_procinfo (pi->pid, temp_tid))
4117 create_procinfo (pi->pid, temp_tid);
4118
4119 temp_ptid = MERGEPID (pi->pid, temp_tid);
4120 /* If not in GDB's thread list, add it. */
4121 if (!in_thread_list (temp_ptid))
4122 {
4123 printf_filtered (_("[New %s]\n"),
4124 target_pid_to_str (temp_ptid));
4125 add_thread (temp_ptid);
4126 }
4127 /* Return to WFI, but tell it to immediately resume. */
4128 status->kind = TARGET_WAITKIND_SPURIOUS;
4129 return inferior_ptid;
4130 }
4131 else if (syscall_is_lwp_exit (pi, what))
4132 {
4133 printf_filtered (_("[%s exited]\n"),
4134 target_pid_to_str (retval));
4135 delete_thread (retval);
4136 status->kind = TARGET_WAITKIND_SPURIOUS;
4137 return retval;
4138 }
4139 else if (0)
4140 {
4141 /* FIXME: Do we need to handle SYS_sproc,
4142 SYS_fork, or SYS_vfork here? The old procfs
4143 seemed to use this event to handle threads on
4144 older (non-LWP) systems, where I'm assuming
4145 that threads were actually separate processes.
4146 Irix, maybe? Anyway, low priority for now. */
4147 }
4148 else
4149 {
4150 printf_filtered (_("procfs: trapped on exit from "));
4151 proc_prettyprint_syscall (proc_what (pi), 0);
4152 printf_filtered ("\n");
4153 #ifndef PIOCSSPCACT
4154 {
4155 long i, nsysargs, *sysargs;
4156
4157 if ((nsysargs = proc_nsysarg (pi)) > 0 &&
4158 (sysargs = proc_sysargs (pi)) != NULL)
4159 {
4160 printf_filtered (_("%ld syscall arguments:\n"), nsysargs);
4161 for (i = 0; i < nsysargs; i++)
4162 printf_filtered ("#%ld: 0x%08lx\n",
4163 i, sysargs[i]);
4164 }
4165 }
4166 #endif
4167 status->kind = TARGET_WAITKIND_SPURIOUS;
4168 return inferior_ptid;
4169 }
4170 break;
4171 case PR_REQUESTED:
4172 #if 0 /* FIXME */
4173 wstat = (SIGSTOP << 8) | 0177;
4174 break;
4175 #else
4176 if (retry < 5)
4177 {
4178 printf_filtered (_("Retry #%d:\n"), retry);
4179 pi->status_valid = 0;
4180 goto wait_again;
4181 }
4182 else
4183 {
4184 /* If not in procinfo list, add it. */
4185 temp_tid = proc_get_current_thread (pi);
4186 if (!find_procinfo (pi->pid, temp_tid))
4187 create_procinfo (pi->pid, temp_tid);
4188
4189 /* If not in GDB's thread list, add it. */
4190 temp_ptid = MERGEPID (pi->pid, temp_tid);
4191 if (!in_thread_list (temp_ptid))
4192 {
4193 printf_filtered (_("[New %s]\n"),
4194 target_pid_to_str (temp_ptid));
4195 add_thread (temp_ptid);
4196 }
4197
4198 status->kind = TARGET_WAITKIND_STOPPED;
4199 status->value.sig = 0;
4200 return retval;
4201 }
4202 #endif
4203 case PR_JOBCONTROL:
4204 wstat = (what << 8) | 0177;
4205 break;
4206 case PR_FAULTED:
4207 switch (what) {
4208 #ifdef FLTWATCH
4209 case FLTWATCH:
4210 wstat = (SIGTRAP << 8) | 0177;
4211 break;
4212 #endif
4213 #ifdef FLTKWATCH
4214 case FLTKWATCH:
4215 wstat = (SIGTRAP << 8) | 0177;
4216 break;
4217 #endif
4218 /* FIXME: use si_signo where possible. */
4219 case FLTPRIV:
4220 #if (FLTILL != FLTPRIV) /* avoid "duplicate case" error */
4221 case FLTILL:
4222 #endif
4223 wstat = (SIGILL << 8) | 0177;
4224 break;
4225 case FLTBPT:
4226 #if (FLTTRACE != FLTBPT) /* avoid "duplicate case" error */
4227 case FLTTRACE:
4228 #endif
4229 /* If we hit our __dbx_link() internal breakpoint,
4230 then remove it. See comments in procfs_init_inferior()
4231 for more details. */
4232 if (dbx_link_bpt_addr != 0
4233 && dbx_link_bpt_addr == read_pc ())
4234 remove_dbx_link_breakpoint ();
4235
4236 wstat = (SIGTRAP << 8) | 0177;
4237 break;
4238 case FLTSTACK:
4239 case FLTACCESS:
4240 #if (FLTBOUNDS != FLTSTACK) /* avoid "duplicate case" error */
4241 case FLTBOUNDS:
4242 #endif
4243 wstat = (SIGSEGV << 8) | 0177;
4244 break;
4245 case FLTIOVF:
4246 case FLTIZDIV:
4247 #if (FLTFPE != FLTIOVF) /* avoid "duplicate case" error */
4248 case FLTFPE:
4249 #endif
4250 wstat = (SIGFPE << 8) | 0177;
4251 break;
4252 case FLTPAGE: /* Recoverable page fault */
4253 default: /* FIXME: use si_signo if possible for fault */
4254 retval = pid_to_ptid (-1);
4255 printf_filtered ("procfs:%d -- ", __LINE__);
4256 printf_filtered (_("child stopped for unknown reason:\n"));
4257 proc_prettyprint_why (why, what, 1);
4258 error (_("... giving up..."));
4259 break;
4260 }
4261 break; /* case PR_FAULTED: */
4262 default: /* switch (why) unmatched */
4263 printf_filtered ("procfs:%d -- ", __LINE__);
4264 printf_filtered (_("child stopped for unknown reason:\n"));
4265 proc_prettyprint_why (why, what, 1);
4266 error (_("... giving up..."));
4267 break;
4268 }
4269 /*
4270 * Got this far without error:
4271 * If retval isn't in the threads database, add it.
4272 */
4273 if (PIDGET (retval) > 0 &&
4274 !ptid_equal (retval, inferior_ptid) &&
4275 !in_thread_list (retval))
4276 {
4277 /*
4278 * We have a new thread.
4279 * We need to add it both to GDB's list and to our own.
4280 * If we don't create a procinfo, resume may be unhappy
4281 * later.
4282 */
4283 printf_filtered (_("[New %s]\n"), target_pid_to_str (retval));
4284 add_thread (retval);
4285 if (find_procinfo (PIDGET (retval), TIDGET (retval)) == NULL)
4286 create_procinfo (PIDGET (retval), TIDGET (retval));
4287
4288 /* In addition, it's possible that this is the first
4289 * new thread we've seen, in which case we may not
4290 * have created entries for inferior_ptid yet.
4291 */
4292 if (TIDGET (inferior_ptid) != 0)
4293 {
4294 if (!in_thread_list (inferior_ptid))
4295 add_thread (inferior_ptid);
4296 if (find_procinfo (PIDGET (inferior_ptid),
4297 TIDGET (inferior_ptid)) == NULL)
4298 create_procinfo (PIDGET (inferior_ptid),
4299 TIDGET (inferior_ptid));
4300 }
4301 }
4302 }
4303 else /* flags do not indicate STOPPED */
4304 {
4305 /* surely this can't happen... */
4306 printf_filtered ("procfs:%d -- process not stopped.\n",
4307 __LINE__);
4308 proc_prettyprint_flags (flags, 1);
4309 error (_("procfs: ...giving up..."));
4310 }
4311 }
4312
4313 if (status)
4314 store_waitstatus (status, wstat);
4315 }
4316
4317 return retval;
4318 }
4319
4320 /* Perform a partial transfer to/from the specified object. For
4321 memory transfers, fall back to the old memory xfer functions. */
4322
4323 static LONGEST
4324 procfs_xfer_partial (struct target_ops *ops, enum target_object object,
4325 const char *annex, void *readbuf,
4326 const void *writebuf, ULONGEST offset, LONGEST len)
4327 {
4328 switch (object)
4329 {
4330 case TARGET_OBJECT_MEMORY:
4331 if (readbuf)
4332 return (*ops->deprecated_xfer_memory) (offset, readbuf, len,
4333 0/*write*/, NULL, ops);
4334 if (writebuf)
4335 return (*ops->deprecated_xfer_memory) (offset, writebuf, len,
4336 1/*write*/, NULL, ops);
4337 return -1;
4338
4339 #ifdef NEW_PROC_API
4340 case TARGET_OBJECT_AUXV:
4341 return procfs_xfer_auxv (ops, object, annex, readbuf, writebuf,
4342 offset, len);
4343 #endif
4344
4345 default:
4346 if (ops->beneath != NULL)
4347 return ops->beneath->to_xfer_partial (ops->beneath, object, annex,
4348 readbuf, writebuf, offset, len);
4349 return -1;
4350 }
4351 }
4352
4353
4354 /* Transfer LEN bytes between GDB address MYADDR and target address
4355 MEMADDR. If DOWRITE is non-zero, transfer them to the target,
4356 otherwise transfer them from the target. TARGET is unused.
4357
4358 The return value is 0 if an error occurred or no bytes were
4359 transferred. Otherwise, it will be a positive value which
4360 indicates the number of bytes transferred between gdb and the
4361 target. (Note that the interface also makes provisions for
4362 negative values, but this capability isn't implemented here.) */
4363
4364 static int
4365 procfs_xfer_memory (CORE_ADDR memaddr, char *myaddr, int len, int dowrite,
4366 struct mem_attrib *attrib, struct target_ops *target)
4367 {
4368 procinfo *pi;
4369 int nbytes = 0;
4370
4371 /* Find procinfo for main process */
4372 pi = find_procinfo_or_die (PIDGET (inferior_ptid), 0);
4373 if (pi->as_fd == 0 &&
4374 open_procinfo_files (pi, FD_AS) == 0)
4375 {
4376 proc_warn (pi, "xfer_memory, open_proc_files", __LINE__);
4377 return 0;
4378 }
4379
4380 if (lseek (pi->as_fd, (off_t) memaddr, SEEK_SET) == (off_t) memaddr)
4381 {
4382 if (dowrite)
4383 {
4384 #ifdef NEW_PROC_API
4385 PROCFS_NOTE ("write memory: ");
4386 #else
4387 PROCFS_NOTE ("write memory: \n");
4388 #endif
4389 nbytes = write (pi->as_fd, myaddr, len);
4390 }
4391 else
4392 {
4393 PROCFS_NOTE ("read memory: \n");
4394 nbytes = read (pi->as_fd, myaddr, len);
4395 }
4396 if (nbytes < 0)
4397 {
4398 nbytes = 0;
4399 }
4400 }
4401 return nbytes;
4402 }
4403
4404 /*
4405 * Function: invalidate_cache
4406 *
4407 * Called by target_resume before making child runnable.
4408 * Mark cached registers and status's invalid.
4409 * If there are "dirty" caches that need to be written back
4410 * to the child process, do that.
4411 *
4412 * File descriptors are also cached.
4413 * As they are a limited resource, we cannot hold onto them indefinitely.
4414 * However, as they are expensive to open, we don't want to throw them
4415 * away indescriminately either. As a compromise, we will keep the
4416 * file descriptors for the parent process, but discard any file
4417 * descriptors we may have accumulated for the threads.
4418 *
4419 * Return value:
4420 * As this function is called by iterate_over_threads, it always
4421 * returns zero (so that iterate_over_threads will keep iterating).
4422 */
4423
4424
4425 static int
4426 invalidate_cache (procinfo *parent, procinfo *pi, void *ptr)
4427 {
4428 /*
4429 * About to run the child; invalidate caches and do any other cleanup.
4430 */
4431
4432 #if 0
4433 if (pi->gregs_dirty)
4434 if (parent == NULL ||
4435 proc_get_current_thread (parent) != pi->tid)
4436 if (!proc_set_gregs (pi)) /* flush gregs cache */
4437 proc_warn (pi, "target_resume, set_gregs",
4438 __LINE__);
4439 if (gdbarch_fp0_regnum (current_gdbarch) >= 0)
4440 if (pi->fpregs_dirty)
4441 if (parent == NULL ||
4442 proc_get_current_thread (parent) != pi->tid)
4443 if (!proc_set_fpregs (pi)) /* flush fpregs cache */
4444 proc_warn (pi, "target_resume, set_fpregs",
4445 __LINE__);
4446 #endif
4447
4448 if (parent != NULL)
4449 {
4450 /* The presence of a parent indicates that this is an LWP.
4451 Close any file descriptors that it might have open.
4452 We don't do this to the master (parent) procinfo. */
4453
4454 close_procinfo_files (pi);
4455 }
4456 pi->gregs_valid = 0;
4457 pi->fpregs_valid = 0;
4458 #if 0
4459 pi->gregs_dirty = 0;
4460 pi->fpregs_dirty = 0;
4461 #endif
4462 pi->status_valid = 0;
4463 pi->threads_valid = 0;
4464
4465 return 0;
4466 }
4467
4468 #if 0
4469 /*
4470 * Function: make_signal_thread_runnable
4471 *
4472 * A callback function for iterate_over_threads.
4473 * Find the asynchronous signal thread, and make it runnable.
4474 * See if that helps matters any.
4475 */
4476
4477 static int
4478 make_signal_thread_runnable (procinfo *process, procinfo *pi, void *ptr)
4479 {
4480 #ifdef PR_ASLWP
4481 if (proc_flags (pi) & PR_ASLWP)
4482 {
4483 if (!proc_run_process (pi, 0, -1))
4484 proc_error (pi, "make_signal_thread_runnable", __LINE__);
4485 return 1;
4486 }
4487 #endif
4488 return 0;
4489 }
4490 #endif
4491
4492 /*
4493 * Function: target_resume
4494 *
4495 * Make the child process runnable. Normally we will then call
4496 * procfs_wait and wait for it to stop again (unles gdb is async).
4497 *
4498 * Arguments:
4499 * step: if true, then arrange for the child to stop again
4500 * after executing a single instruction.
4501 * signo: if zero, then cancel any pending signal.
4502 * If non-zero, then arrange for the indicated signal
4503 * to be delivered to the child when it runs.
4504 * pid: if -1, then allow any child thread to run.
4505 * if non-zero, then allow only the indicated thread to run.
4506 ******* (not implemented yet)
4507 */
4508
4509 static void
4510 procfs_resume (ptid_t ptid, int step, enum target_signal signo)
4511 {
4512 procinfo *pi, *thread;
4513 int native_signo;
4514
4515 /* 2.1:
4516 prrun.prflags |= PRSVADDR;
4517 prrun.pr_vaddr = $PC; set resume address
4518 prrun.prflags |= PRSTRACE; trace signals in pr_trace (all)
4519 prrun.prflags |= PRSFAULT; trace faults in pr_fault (all but PAGE)
4520 prrun.prflags |= PRCFAULT; clear current fault.
4521
4522 PRSTRACE and PRSFAULT can be done by other means
4523 (proc_trace_signals, proc_trace_faults)
4524 PRSVADDR is unnecessary.
4525 PRCFAULT may be replaced by a PIOCCFAULT call (proc_clear_current_fault)
4526 This basically leaves PRSTEP and PRCSIG.
4527 PRCSIG is like PIOCSSIG (proc_clear_current_signal).
4528 So basically PR_STEP is the sole argument that must be passed
4529 to proc_run_process (for use in the prrun struct by ioctl). */
4530
4531 /* Find procinfo for main process */
4532 pi = find_procinfo_or_die (PIDGET (inferior_ptid), 0);
4533
4534 /* First cut: ignore pid argument */
4535 errno = 0;
4536
4537 /* Convert signal to host numbering. */
4538 if (signo == 0 ||
4539 (signo == TARGET_SIGNAL_STOP && pi->ignore_next_sigstop))
4540 native_signo = 0;
4541 else
4542 native_signo = target_signal_to_host (signo);
4543
4544 pi->ignore_next_sigstop = 0;
4545
4546 /* Running the process voids all cached registers and status. */
4547 /* Void the threads' caches first */
4548 proc_iterate_over_threads (pi, invalidate_cache, NULL);
4549 /* Void the process procinfo's caches. */
4550 invalidate_cache (NULL, pi, NULL);
4551
4552 if (PIDGET (ptid) != -1)
4553 {
4554 /* Resume a specific thread, presumably suppressing the others. */
4555 thread = find_procinfo (PIDGET (ptid), TIDGET (ptid));
4556 if (thread != NULL)
4557 {
4558 if (thread->tid != 0)
4559 {
4560 /* We're to resume a specific thread, and not the others.
4561 * Set the child process's PR_ASYNC flag.
4562 */
4563 #ifdef PR_ASYNC
4564 if (!proc_set_async (pi))
4565 proc_error (pi, "target_resume, set_async", __LINE__);
4566 #endif
4567 #if 0
4568 proc_iterate_over_threads (pi,
4569 make_signal_thread_runnable,
4570 NULL);
4571 #endif
4572 pi = thread; /* substitute the thread's procinfo for run */
4573 }
4574 }
4575 }
4576
4577 if (!proc_run_process (pi, step, native_signo))
4578 {
4579 if (errno == EBUSY)
4580 warning (_("resume: target already running. Pretend to resume, and hope for the best!"));
4581 else
4582 proc_error (pi, "target_resume", __LINE__);
4583 }
4584 }
4585
4586 /*
4587 * Function: register_gdb_signals
4588 *
4589 * Traverse the list of signals that GDB knows about
4590 * (see "handle" command), and arrange for the target
4591 * to be stopped or not, according to these settings.
4592 *
4593 * Returns non-zero for success, zero for failure.
4594 */
4595
4596 static int
4597 register_gdb_signals (procinfo *pi, gdb_sigset_t *signals)
4598 {
4599 int signo;
4600
4601 for (signo = 0; signo < NSIG; signo ++)
4602 if (signal_stop_state (target_signal_from_host (signo)) == 0 &&
4603 signal_print_state (target_signal_from_host (signo)) == 0 &&
4604 signal_pass_state (target_signal_from_host (signo)) == 1)
4605 prdelset (signals, signo);
4606 else
4607 praddset (signals, signo);
4608
4609 return proc_set_traced_signals (pi, signals);
4610 }
4611
4612 /*
4613 * Function: target_notice_signals
4614 *
4615 * Set up to trace signals in the child process.
4616 */
4617
4618 static void
4619 procfs_notice_signals (ptid_t ptid)
4620 {
4621 gdb_sigset_t signals;
4622 procinfo *pi = find_procinfo_or_die (PIDGET (ptid), 0);
4623
4624 if (proc_get_traced_signals (pi, &signals) &&
4625 register_gdb_signals (pi, &signals))
4626 return;
4627 else
4628 proc_error (pi, "notice_signals", __LINE__);
4629 }
4630
4631 /*
4632 * Function: target_files_info
4633 *
4634 * Print status information about the child process.
4635 */
4636
4637 static void
4638 procfs_files_info (struct target_ops *ignore)
4639 {
4640 printf_filtered (_("\tUsing the running image of %s %s via /proc.\n"),
4641 attach_flag? "attached": "child",
4642 target_pid_to_str (inferior_ptid));
4643 }
4644
4645 /*
4646 * Function: target_open
4647 *
4648 * A dummy: you don't open procfs.
4649 */
4650
4651 static void
4652 procfs_open (char *args, int from_tty)
4653 {
4654 error (_("Use the \"run\" command to start a Unix child process."));
4655 }
4656
4657 /*
4658 * Function: target_can_run
4659 *
4660 * This tells GDB that this target vector can be invoked
4661 * for "run" or "attach".
4662 */
4663
4664 int procfs_suppress_run = 0; /* Non-zero if procfs should pretend not to
4665 be a runnable target. Used by targets
4666 that can sit atop procfs, such as solaris
4667 thread support. */
4668
4669
4670 static int
4671 procfs_can_run (void)
4672 {
4673 /* This variable is controlled by modules that sit atop procfs that
4674 may layer their own process structure atop that provided here.
4675 sol-thread.c does this because of the Solaris two-level thread
4676 model. */
4677
4678 /* NOTE: possibly obsolete -- use the thread_stratum approach instead. */
4679
4680 return !procfs_suppress_run;
4681 }
4682
4683 /*
4684 * Function: target_stop
4685 *
4686 * Stop the child process asynchronously, as when the
4687 * gdb user types control-c or presses a "stop" button.
4688 *
4689 * Works by sending kill(SIGINT) to the child's process group.
4690 */
4691
4692 static void
4693 procfs_stop (void)
4694 {
4695 kill (-inferior_process_group, SIGINT);
4696 }
4697
4698 /*
4699 * Function: unconditionally_kill_inferior
4700 *
4701 * Make it die. Wait for it to die. Clean up after it.
4702 * Note: this should only be applied to the real process,
4703 * not to an LWP, because of the check for parent-process.
4704 * If we need this to work for an LWP, it needs some more logic.
4705 */
4706
4707 static void
4708 unconditionally_kill_inferior (procinfo *pi)
4709 {
4710 int parent_pid;
4711
4712 parent_pid = proc_parent_pid (pi);
4713 #ifdef PROCFS_NEED_CLEAR_CURSIG_FOR_KILL
4714 /* FIXME: use access functions */
4715 /* Alpha OSF/1-3.x procfs needs a clear of the current signal
4716 before the PIOCKILL, otherwise it might generate a corrupted core
4717 file for the inferior. */
4718 if (ioctl (pi->ctl_fd, PIOCSSIG, NULL) < 0)
4719 {
4720 printf_filtered ("unconditionally_kill: SSIG failed!\n");
4721 }
4722 #endif
4723 #ifdef PROCFS_NEED_PIOCSSIG_FOR_KILL
4724 /* Alpha OSF/1-2.x procfs needs a PIOCSSIG call with a SIGKILL signal
4725 to kill the inferior, otherwise it might remain stopped with a
4726 pending SIGKILL.
4727 We do not check the result of the PIOCSSIG, the inferior might have
4728 died already. */
4729 {
4730 gdb_siginfo_t newsiginfo;
4731
4732 memset ((char *) &newsiginfo, 0, sizeof (newsiginfo));
4733 newsiginfo.si_signo = SIGKILL;
4734 newsiginfo.si_code = 0;
4735 newsiginfo.si_errno = 0;
4736 newsiginfo.si_pid = getpid ();
4737 newsiginfo.si_uid = getuid ();
4738 /* FIXME: use proc_set_current_signal */
4739 ioctl (pi->ctl_fd, PIOCSSIG, &newsiginfo);
4740 }
4741 #else /* PROCFS_NEED_PIOCSSIG_FOR_KILL */
4742 if (!proc_kill (pi, SIGKILL))
4743 proc_error (pi, "unconditionally_kill, proc_kill", __LINE__);
4744 #endif /* PROCFS_NEED_PIOCSSIG_FOR_KILL */
4745 destroy_procinfo (pi);
4746
4747 /* If pi is GDB's child, wait for it to die. */
4748 if (parent_pid == getpid ())
4749 /* FIXME: should we use waitpid to make sure we get the right event?
4750 Should we check the returned event? */
4751 {
4752 #if 0
4753 int status, ret;
4754
4755 ret = waitpid (pi->pid, &status, 0);
4756 #else
4757 wait (NULL);
4758 #endif
4759 }
4760 }
4761
4762 /*
4763 * Function: target_kill_inferior
4764 *
4765 * We're done debugging it, and we want it to go away.
4766 * Then we want GDB to forget all about it.
4767 */
4768
4769 static void
4770 procfs_kill_inferior (void)
4771 {
4772 if (!ptid_equal (inferior_ptid, null_ptid)) /* ? */
4773 {
4774 /* Find procinfo for main process */
4775 procinfo *pi = find_procinfo (PIDGET (inferior_ptid), 0);
4776
4777 if (pi)
4778 unconditionally_kill_inferior (pi);
4779 target_mourn_inferior ();
4780 }
4781 }
4782
4783 /*
4784 * Function: target_mourn_inferior
4785 *
4786 * Forget we ever debugged this thing!
4787 */
4788
4789 static void
4790 procfs_mourn_inferior (void)
4791 {
4792 procinfo *pi;
4793
4794 if (!ptid_equal (inferior_ptid, null_ptid))
4795 {
4796 /* Find procinfo for main process */
4797 pi = find_procinfo (PIDGET (inferior_ptid), 0);
4798 if (pi)
4799 destroy_procinfo (pi);
4800 }
4801 unpush_target (&procfs_ops);
4802
4803 if (dbx_link_bpt != NULL)
4804 {
4805 deprecated_remove_raw_breakpoint (dbx_link_bpt);
4806 dbx_link_bpt_addr = 0;
4807 dbx_link_bpt = NULL;
4808 }
4809
4810 generic_mourn_inferior ();
4811 }
4812
4813 /*
4814 * Function: init_inferior
4815 *
4816 * When GDB forks to create a runnable inferior process,
4817 * this function is called on the parent side of the fork.
4818 * It's job is to do whatever is necessary to make the child
4819 * ready to be debugged, and then wait for the child to synchronize.
4820 */
4821
4822 static void
4823 procfs_init_inferior (int pid)
4824 {
4825 procinfo *pi;
4826 gdb_sigset_t signals;
4827 int fail;
4828
4829 /* This routine called on the parent side (GDB side)
4830 after GDB forks the inferior. */
4831
4832 push_target (&procfs_ops);
4833
4834 if ((pi = create_procinfo (pid, 0)) == NULL)
4835 perror ("procfs: out of memory in 'init_inferior'");
4836
4837 if (!open_procinfo_files (pi, FD_CTL))
4838 proc_error (pi, "init_inferior, open_proc_files", __LINE__);
4839
4840 /*
4841 xmalloc // done
4842 open_procinfo_files // done
4843 link list // done
4844 prfillset (trace)
4845 procfs_notice_signals
4846 prfillset (fault)
4847 prdelset (FLTPAGE)
4848 PIOCWSTOP
4849 PIOCSFAULT
4850 */
4851
4852 /* If not stopped yet, wait for it to stop. */
4853 if (!(proc_flags (pi) & PR_STOPPED) &&
4854 !(proc_wait_for_stop (pi)))
4855 dead_procinfo (pi, "init_inferior: wait_for_stop failed", KILL);
4856
4857 /* Save some of the /proc state to be restored if we detach. */
4858 /* FIXME: Why? In case another debugger was debugging it?
4859 We're it's parent, for Ghu's sake! */
4860 if (!proc_get_traced_signals (pi, &pi->saved_sigset))
4861 proc_error (pi, "init_inferior, get_traced_signals", __LINE__);
4862 if (!proc_get_held_signals (pi, &pi->saved_sighold))
4863 proc_error (pi, "init_inferior, get_held_signals", __LINE__);
4864 if (!proc_get_traced_faults (pi, &pi->saved_fltset))
4865 proc_error (pi, "init_inferior, get_traced_faults", __LINE__);
4866 if (!proc_get_traced_sysentry (pi, pi->saved_entryset))
4867 proc_error (pi, "init_inferior, get_traced_sysentry", __LINE__);
4868 if (!proc_get_traced_sysexit (pi, pi->saved_exitset))
4869 proc_error (pi, "init_inferior, get_traced_sysexit", __LINE__);
4870
4871 /* Register to trace selected signals in the child. */
4872 prfillset (&signals);
4873 if (!register_gdb_signals (pi, &signals))
4874 proc_error (pi, "init_inferior, register_signals", __LINE__);
4875
4876 if ((fail = procfs_debug_inferior (pi)) != 0)
4877 proc_error (pi, "init_inferior (procfs_debug_inferior)", fail);
4878
4879 /* FIXME: logically, we should really be turning OFF run-on-last-close,
4880 and possibly even turning ON kill-on-last-close at this point. But
4881 I can't make that change without careful testing which I don't have
4882 time to do right now... */
4883 /* Turn on run-on-last-close flag so that the child
4884 will die if GDB goes away for some reason. */
4885 if (!proc_set_run_on_last_close (pi))
4886 proc_error (pi, "init_inferior, set_RLC", __LINE__);
4887
4888 /* The 'process ID' we return to GDB is composed of
4889 the actual process ID plus the lwp ID. */
4890 inferior_ptid = MERGEPID (pi->pid, proc_get_current_thread (pi));
4891
4892 /* Typically two, one trap to exec the shell, one to exec the
4893 program being debugged. Defined by "inferior.h". */
4894 startup_inferior (START_INFERIOR_TRAPS_EXPECTED);
4895
4896 #ifdef SYS_syssgi
4897 /* On mips-irix, we need to stop the inferior early enough during
4898 the startup phase in order to be able to load the shared library
4899 symbols and insert the breakpoints that are located in these shared
4900 libraries. Stopping at the program entry point is not good enough
4901 because the -init code is executed before the execution reaches
4902 that point.
4903
4904 So what we need to do is to insert a breakpoint in the runtime
4905 loader (rld), more precisely in __dbx_link(). This procedure is
4906 called by rld once all shared libraries have been mapped, but before
4907 the -init code is executed. Unfortuantely, this is not straightforward,
4908 as rld is not part of the executable we are running, and thus we need
4909 the inferior to run until rld itself has been mapped in memory.
4910
4911 For this, we trace all syssgi() syscall exit events. Each time
4912 we detect such an event, we iterate over each text memory maps,
4913 get its associated fd, and scan the symbol table for __dbx_link().
4914 When found, we know that rld has been mapped, and that we can insert
4915 the breakpoint at the symbol address. Once the dbx_link() breakpoint
4916 has been inserted, the syssgi() notifications are no longer necessary,
4917 so they should be canceled. */
4918 proc_trace_syscalls_1 (pi, SYS_syssgi, PR_SYSEXIT, FLAG_SET, 0);
4919 #endif
4920 }
4921
4922 /*
4923 * Function: set_exec_trap
4924 *
4925 * When GDB forks to create a new process, this function is called
4926 * on the child side of the fork before GDB exec's the user program.
4927 * Its job is to make the child minimally debuggable, so that the
4928 * parent GDB process can connect to the child and take over.
4929 * This function should do only the minimum to make that possible,
4930 * and to synchronize with the parent process. The parent process
4931 * should take care of the details.
4932 */
4933
4934 static void
4935 procfs_set_exec_trap (void)
4936 {
4937 /* This routine called on the child side (inferior side)
4938 after GDB forks the inferior. It must use only local variables,
4939 because it may be sharing data space with its parent. */
4940
4941 procinfo *pi;
4942 sysset_t *exitset;
4943
4944 if ((pi = create_procinfo (getpid (), 0)) == NULL)
4945 perror_with_name (_("procfs: create_procinfo failed in child."));
4946
4947 if (open_procinfo_files (pi, FD_CTL) == 0)
4948 {
4949 proc_warn (pi, "set_exec_trap, open_proc_files", __LINE__);
4950 gdb_flush (gdb_stderr);
4951 /* no need to call "dead_procinfo", because we're going to exit. */
4952 _exit (127);
4953 }
4954
4955 #ifdef PRFS_STOPEXEC /* defined on OSF */
4956 /* OSF method for tracing exec syscalls. Quoting:
4957 Under Alpha OSF/1 we have to use a PIOCSSPCACT ioctl to trace
4958 exits from exec system calls because of the user level loader. */
4959 /* FIXME: make nice and maybe move into an access function. */
4960 {
4961 int prfs_flags;
4962
4963 if (ioctl (pi->ctl_fd, PIOCGSPCACT, &prfs_flags) < 0)
4964 {
4965 proc_warn (pi, "set_exec_trap (PIOCGSPCACT)", __LINE__);
4966 gdb_flush (gdb_stderr);
4967 _exit (127);
4968 }
4969 prfs_flags |= PRFS_STOPEXEC;
4970
4971 if (ioctl (pi->ctl_fd, PIOCSSPCACT, &prfs_flags) < 0)
4972 {
4973 proc_warn (pi, "set_exec_trap (PIOCSSPCACT)", __LINE__);
4974 gdb_flush (gdb_stderr);
4975 _exit (127);
4976 }
4977 }
4978 #else /* not PRFS_STOPEXEC */
4979 /* Everyone else's (except OSF) method for tracing exec syscalls */
4980 /* GW: Rationale...
4981 Not all systems with /proc have all the exec* syscalls with the same
4982 names. On the SGI, for example, there is no SYS_exec, but there
4983 *is* a SYS_execv. So, we try to account for that. */
4984
4985 exitset = sysset_t_alloc (pi);
4986 gdb_premptysysset (exitset);
4987 #ifdef SYS_exec
4988 gdb_praddsysset (exitset, SYS_exec);
4989 #endif
4990 #ifdef SYS_execve
4991 gdb_praddsysset (exitset, SYS_execve);
4992 #endif
4993 #ifdef SYS_execv
4994 gdb_praddsysset (exitset, SYS_execv);
4995 #endif
4996 #ifdef DYNAMIC_SYSCALLS
4997 {
4998 int callnum = find_syscall (pi, "execve");
4999
5000 if (callnum >= 0)
5001 gdb_praddsysset (exitset, callnum);
5002
5003 callnum = find_syscall (pi, "ra_execve");
5004 if (callnum >= 0)
5005 gdb_praddsysset (exitset, callnum);
5006 }
5007 #endif /* DYNAMIC_SYSCALLS */
5008
5009 if (!proc_set_traced_sysexit (pi, exitset))
5010 {
5011 proc_warn (pi, "set_exec_trap, set_traced_sysexit", __LINE__);
5012 gdb_flush (gdb_stderr);
5013 _exit (127);
5014 }
5015 #endif /* PRFS_STOPEXEC */
5016
5017 /* FIXME: should this be done in the parent instead? */
5018 /* Turn off inherit on fork flag so that all grand-children
5019 of gdb start with tracing flags cleared. */
5020 if (!proc_unset_inherit_on_fork (pi))
5021 proc_warn (pi, "set_exec_trap, unset_inherit", __LINE__);
5022
5023 /* Turn off run on last close flag, so that the child process
5024 cannot run away just because we close our handle on it.
5025 We want it to wait for the parent to attach. */
5026 if (!proc_unset_run_on_last_close (pi))
5027 proc_warn (pi, "set_exec_trap, unset_RLC", __LINE__);
5028
5029 /* FIXME: No need to destroy the procinfo --
5030 we have our own address space, and we're about to do an exec! */
5031 /*destroy_procinfo (pi);*/
5032 }
5033
5034 /*
5035 * Function: create_inferior
5036 *
5037 * This function is called BEFORE gdb forks the inferior process.
5038 * Its only real responsibility is to set things up for the fork,
5039 * and tell GDB which two functions to call after the fork (one
5040 * for the parent, and one for the child).
5041 *
5042 * This function does a complicated search for a unix shell program,
5043 * which it then uses to parse arguments and environment variables
5044 * to be sent to the child. I wonder whether this code could not
5045 * be abstracted out and shared with other unix targets such as
5046 * infptrace?
5047 */
5048
5049 static void
5050 procfs_create_inferior (char *exec_file, char *allargs, char **env,
5051 int from_tty)
5052 {
5053 char *shell_file = getenv ("SHELL");
5054 char *tryname;
5055 if (shell_file != NULL && strchr (shell_file, '/') == NULL)
5056 {
5057
5058 /* We will be looking down the PATH to find shell_file. If we
5059 just do this the normal way (via execlp, which operates by
5060 attempting an exec for each element of the PATH until it
5061 finds one which succeeds), then there will be an exec for
5062 each failed attempt, each of which will cause a PR_SYSEXIT
5063 stop, and we won't know how to distinguish the PR_SYSEXIT's
5064 for these failed execs with the ones for successful execs
5065 (whether the exec has succeeded is stored at that time in the
5066 carry bit or some such architecture-specific and
5067 non-ABI-specified place).
5068
5069 So I can't think of anything better than to search the PATH
5070 now. This has several disadvantages: (1) There is a race
5071 condition; if we find a file now and it is deleted before we
5072 exec it, we lose, even if the deletion leaves a valid file
5073 further down in the PATH, (2) there is no way to know exactly
5074 what an executable (in the sense of "capable of being
5075 exec'd") file is. Using access() loses because it may lose
5076 if the caller is the superuser; failing to use it loses if
5077 there are ACLs or some such. */
5078
5079 char *p;
5080 char *p1;
5081 /* FIXME-maybe: might want "set path" command so user can change what
5082 path is used from within GDB. */
5083 char *path = getenv ("PATH");
5084 int len;
5085 struct stat statbuf;
5086
5087 if (path == NULL)
5088 path = "/bin:/usr/bin";
5089
5090 tryname = alloca (strlen (path) + strlen (shell_file) + 2);
5091 for (p = path; p != NULL; p = p1 ? p1 + 1: NULL)
5092 {
5093 p1 = strchr (p, ':');
5094 if (p1 != NULL)
5095 len = p1 - p;
5096 else
5097 len = strlen (p);
5098 strncpy (tryname, p, len);
5099 tryname[len] = '\0';
5100 strcat (tryname, "/");
5101 strcat (tryname, shell_file);
5102 if (access (tryname, X_OK) < 0)
5103 continue;
5104 if (stat (tryname, &statbuf) < 0)
5105 continue;
5106 if (!S_ISREG (statbuf.st_mode))
5107 /* We certainly need to reject directories. I'm not quite
5108 as sure about FIFOs, sockets, etc., but I kind of doubt
5109 that people want to exec() these things. */
5110 continue;
5111 break;
5112 }
5113 if (p == NULL)
5114 /* Not found. This must be an error rather than merely passing
5115 the file to execlp(), because execlp() would try all the
5116 exec()s, causing GDB to get confused. */
5117 error (_("procfs:%d -- Can't find shell %s in PATH"),
5118 __LINE__, shell_file);
5119
5120 shell_file = tryname;
5121 }
5122
5123 fork_inferior (exec_file, allargs, env, procfs_set_exec_trap,
5124 procfs_init_inferior, NULL, shell_file);
5125
5126 #ifdef SYS_syssgi
5127 /* Make sure to cancel the syssgi() syscall-exit notifications.
5128 They should normally have been removed by now, but they may still
5129 be activated if the inferior doesn't use shared libraries, or if
5130 we didn't locate __dbx_link, or if we never stopped in __dbx_link.
5131 See procfs_init_inferior() for more details. */
5132 proc_trace_syscalls_1 (find_procinfo_or_die (PIDGET (inferior_ptid), 0),
5133 SYS_syssgi, PR_SYSEXIT, FLAG_RESET, 0);
5134 #endif
5135 }
5136
5137 /*
5138 * Function: notice_thread
5139 *
5140 * Callback for find_new_threads.
5141 * Calls "add_thread".
5142 */
5143
5144 static int
5145 procfs_notice_thread (procinfo *pi, procinfo *thread, void *ptr)
5146 {
5147 ptid_t gdb_threadid = MERGEPID (pi->pid, thread->tid);
5148
5149 if (!in_thread_list (gdb_threadid))
5150 add_thread (gdb_threadid);
5151
5152 return 0;
5153 }
5154
5155 /*
5156 * Function: target_find_new_threads
5157 *
5158 * Query all the threads that the target knows about,
5159 * and give them back to GDB to add to its list.
5160 */
5161
5162 void
5163 procfs_find_new_threads (void)
5164 {
5165 procinfo *pi;
5166
5167 /* Find procinfo for main process */
5168 pi = find_procinfo_or_die (PIDGET (inferior_ptid), 0);
5169 proc_update_threads (pi);
5170 proc_iterate_over_threads (pi, procfs_notice_thread, NULL);
5171 }
5172
5173 /*
5174 * Function: target_thread_alive
5175 *
5176 * Return true if the thread is still 'alive'.
5177 *
5178 * This guy doesn't really seem to be doing his job.
5179 * Got to investigate how to tell when a thread is really gone.
5180 */
5181
5182 static int
5183 procfs_thread_alive (ptid_t ptid)
5184 {
5185 int proc, thread;
5186 procinfo *pi;
5187
5188 proc = PIDGET (ptid);
5189 thread = TIDGET (ptid);
5190 /* If I don't know it, it ain't alive! */
5191 if ((pi = find_procinfo (proc, thread)) == NULL)
5192 return 0;
5193
5194 /* If I can't get its status, it ain't alive!
5195 What's more, I need to forget about it! */
5196 if (!proc_get_status (pi))
5197 {
5198 destroy_procinfo (pi);
5199 return 0;
5200 }
5201 /* I couldn't have got its status if it weren't alive, so it's alive. */
5202 return 1;
5203 }
5204
5205 /* Convert PTID to a string. Returns the string in a static buffer. */
5206
5207 char *
5208 procfs_pid_to_str (ptid_t ptid)
5209 {
5210 static char buf[80];
5211
5212 if (TIDGET (ptid) == 0)
5213 sprintf (buf, "process %d", PIDGET (ptid));
5214 else
5215 sprintf (buf, "LWP %ld", TIDGET (ptid));
5216
5217 return buf;
5218 }
5219
5220 /*
5221 * Function: procfs_set_watchpoint
5222 * Insert a watchpoint
5223 */
5224
5225 int
5226 procfs_set_watchpoint (ptid_t ptid, CORE_ADDR addr, int len, int rwflag,
5227 int after)
5228 {
5229 #ifndef UNIXWARE
5230 #ifndef AIX5
5231 int pflags = 0;
5232 procinfo *pi;
5233
5234 pi = find_procinfo_or_die (PIDGET (ptid) == -1 ?
5235 PIDGET (inferior_ptid) : PIDGET (ptid), 0);
5236
5237 /* Translate from GDB's flags to /proc's */
5238 if (len > 0) /* len == 0 means delete watchpoint */
5239 {
5240 switch (rwflag) { /* FIXME: need an enum! */
5241 case hw_write: /* default watchpoint (write) */
5242 pflags = WRITE_WATCHFLAG;
5243 break;
5244 case hw_read: /* read watchpoint */
5245 pflags = READ_WATCHFLAG;
5246 break;
5247 case hw_access: /* access watchpoint */
5248 pflags = READ_WATCHFLAG | WRITE_WATCHFLAG;
5249 break;
5250 case hw_execute: /* execution HW breakpoint */
5251 pflags = EXEC_WATCHFLAG;
5252 break;
5253 default: /* Something weird. Return error. */
5254 return -1;
5255 }
5256 if (after) /* Stop after r/w access is completed. */
5257 pflags |= AFTER_WATCHFLAG;
5258 }
5259
5260 if (!proc_set_watchpoint (pi, addr, len, pflags))
5261 {
5262 if (errno == E2BIG) /* Typical error for no resources */
5263 return -1; /* fail */
5264 /* GDB may try to remove the same watchpoint twice.
5265 If a remove request returns no match, don't error. */
5266 if (errno == ESRCH && len == 0)
5267 return 0; /* ignore */
5268 proc_error (pi, "set_watchpoint", __LINE__);
5269 }
5270 #endif /* AIX5 */
5271 #endif /* UNIXWARE */
5272 return 0;
5273 }
5274
5275 /* Return non-zero if we can set a hardware watchpoint of type TYPE. TYPE
5276 is one of bp_hardware_watchpoint, bp_read_watchpoint, bp_write_watchpoint,
5277 or bp_hardware_watchpoint. CNT is the number of watchpoints used so
5278 far.
5279
5280 Note: procfs_can_use_hw_breakpoint() is not yet used by all
5281 procfs.c targets due to the fact that some of them still define
5282 TARGET_CAN_USE_HARDWARE_WATCHPOINT. */
5283
5284 static int
5285 procfs_can_use_hw_breakpoint (int type, int cnt, int othertype)
5286 {
5287 #ifndef TARGET_HAS_HARDWARE_WATCHPOINTS
5288 return 0;
5289 #else
5290 /* Due to the way that proc_set_watchpoint() is implemented, host
5291 and target pointers must be of the same size. If they are not,
5292 we can't use hardware watchpoints. This limitation is due to the
5293 fact that proc_set_watchpoint() calls
5294 procfs_address_to_host_pointer(); a close inspection of
5295 procfs_address_to_host_pointer will reveal that an internal error
5296 will be generated when the host and target pointer sizes are
5297 different. */
5298 if (sizeof (void *) != TYPE_LENGTH (builtin_type_void_data_ptr))
5299 return 0;
5300
5301 /* Other tests here??? */
5302
5303 return 1;
5304 #endif
5305 }
5306
5307 /*
5308 * Function: stopped_by_watchpoint
5309 *
5310 * Returns non-zero if process is stopped on a hardware watchpoint fault,
5311 * else returns zero.
5312 */
5313
5314 int
5315 procfs_stopped_by_watchpoint (ptid_t ptid)
5316 {
5317 procinfo *pi;
5318
5319 pi = find_procinfo_or_die (PIDGET (ptid) == -1 ?
5320 PIDGET (inferior_ptid) : PIDGET (ptid), 0);
5321
5322 if (!pi) /* If no process, then not stopped by watchpoint! */
5323 return 0;
5324
5325 if (proc_flags (pi) & (PR_STOPPED | PR_ISTOP))
5326 {
5327 if (proc_why (pi) == PR_FAULTED)
5328 {
5329 #ifdef FLTWATCH
5330 if (proc_what (pi) == FLTWATCH)
5331 return 1;
5332 #endif
5333 #ifdef FLTKWATCH
5334 if (proc_what (pi) == FLTKWATCH)
5335 return 1;
5336 #endif
5337 }
5338 }
5339 return 0;
5340 }
5341
5342 #ifdef TM_I386SOL2_H
5343 /*
5344 * Function: procfs_find_LDT_entry
5345 *
5346 * Input:
5347 * ptid_t ptid; // The GDB-style pid-plus-LWP.
5348 *
5349 * Return:
5350 * pointer to the corresponding LDT entry.
5351 */
5352
5353 struct ssd *
5354 procfs_find_LDT_entry (ptid_t ptid)
5355 {
5356 gdb_gregset_t *gregs;
5357 int key;
5358 procinfo *pi;
5359
5360 /* Find procinfo for the lwp. */
5361 if ((pi = find_procinfo (PIDGET (ptid), TIDGET (ptid))) == NULL)
5362 {
5363 warning (_("procfs_find_LDT_entry: could not find procinfo for %d:%d."),
5364 PIDGET (ptid), TIDGET (ptid));
5365 return NULL;
5366 }
5367 /* get its general registers. */
5368 if ((gregs = proc_get_gregs (pi)) == NULL)
5369 {
5370 warning (_("procfs_find_LDT_entry: could not read gregs for %d:%d."),
5371 PIDGET (ptid), TIDGET (ptid));
5372 return NULL;
5373 }
5374 /* Now extract the GS register's lower 16 bits. */
5375 key = (*gregs)[GS] & 0xffff;
5376
5377 /* Find the matching entry and return it. */
5378 return proc_get_LDT_entry (pi, key);
5379 }
5380 #endif /* TM_I386SOL2_H */
5381
5382 /*
5383 * Memory Mappings Functions:
5384 */
5385
5386 /*
5387 * Function: iterate_over_mappings
5388 *
5389 * Call a callback function once for each mapping, passing it the mapping,
5390 * an optional secondary callback function, and some optional opaque data.
5391 * Quit and return the first non-zero value returned from the callback.
5392 *
5393 * Arguments:
5394 * pi -- procinfo struct for the process to be mapped.
5395 * func -- callback function to be called by this iterator.
5396 * data -- optional opaque data to be passed to the callback function.
5397 * child_func -- optional secondary function pointer to be passed
5398 * to the child function.
5399 *
5400 * Return: First non-zero return value from the callback function,
5401 * or zero.
5402 */
5403
5404 static int
5405 iterate_over_mappings (procinfo *pi, int (*child_func) (), void *data,
5406 int (*func) (struct prmap *map,
5407 int (*child_func) (),
5408 void *data))
5409 {
5410 char pathname[MAX_PROC_NAME_SIZE];
5411 struct prmap *prmaps;
5412 struct prmap *prmap;
5413 int funcstat;
5414 int map_fd;
5415 int nmap;
5416 #ifdef NEW_PROC_API
5417 struct stat sbuf;
5418 #endif
5419
5420 /* Get the number of mappings, allocate space,
5421 and read the mappings into prmaps. */
5422 #ifdef NEW_PROC_API
5423 /* Open map fd. */
5424 sprintf (pathname, "/proc/%d/map", pi->pid);
5425 if ((map_fd = open (pathname, O_RDONLY)) < 0)
5426 proc_error (pi, "iterate_over_mappings (open)", __LINE__);
5427
5428 /* Make sure it gets closed again. */
5429 make_cleanup_close (map_fd);
5430
5431 /* Use stat to determine the file size, and compute
5432 the number of prmap_t objects it contains. */
5433 if (fstat (map_fd, &sbuf) != 0)
5434 proc_error (pi, "iterate_over_mappings (fstat)", __LINE__);
5435
5436 nmap = sbuf.st_size / sizeof (prmap_t);
5437 prmaps = (struct prmap *) alloca ((nmap + 1) * sizeof (*prmaps));
5438 if (read (map_fd, (char *) prmaps, nmap * sizeof (*prmaps))
5439 != (nmap * sizeof (*prmaps)))
5440 proc_error (pi, "iterate_over_mappings (read)", __LINE__);
5441 #else
5442 /* Use ioctl command PIOCNMAP to get number of mappings. */
5443 if (ioctl (pi->ctl_fd, PIOCNMAP, &nmap) != 0)
5444 proc_error (pi, "iterate_over_mappings (PIOCNMAP)", __LINE__);
5445
5446 prmaps = (struct prmap *) alloca ((nmap + 1) * sizeof (*prmaps));
5447 if (ioctl (pi->ctl_fd, PIOCMAP, prmaps) != 0)
5448 proc_error (pi, "iterate_over_mappings (PIOCMAP)", __LINE__);
5449 #endif
5450
5451 for (prmap = prmaps; nmap > 0; prmap++, nmap--)
5452 if ((funcstat = (*func) (prmap, child_func, data)) != 0)
5453 return funcstat;
5454
5455 return 0;
5456 }
5457
5458 /*
5459 * Function: solib_mappings_callback
5460 *
5461 * Calls the supplied callback function once for each mapped address
5462 * space in the process. The callback function receives an open
5463 * file descriptor for the file corresponding to that mapped
5464 * address space (if there is one), and the base address of the
5465 * mapped space. Quit when the callback function returns a
5466 * nonzero value, or at teh end of the mappings.
5467 *
5468 * Returns: the first non-zero return value of the callback function,
5469 * or zero.
5470 */
5471
5472 int solib_mappings_callback (struct prmap *map,
5473 int (*func) (int, CORE_ADDR),
5474 void *data)
5475 {
5476 procinfo *pi = data;
5477 int fd;
5478
5479 #ifdef NEW_PROC_API
5480 char name[MAX_PROC_NAME_SIZE + sizeof (map->pr_mapname)];
5481
5482 if (map->pr_vaddr == 0 && map->pr_size == 0)
5483 return -1; /* sanity */
5484
5485 if (map->pr_mapname[0] == 0)
5486 {
5487 fd = -1; /* no map file */
5488 }
5489 else
5490 {
5491 sprintf (name, "/proc/%d/object/%s", pi->pid, map->pr_mapname);
5492 /* Note: caller's responsibility to close this fd! */
5493 fd = open_with_retry (name, O_RDONLY);
5494 /* Note: we don't test the above call for failure;
5495 we just pass the FD on as given. Sometimes there is
5496 no file, so the open may return failure, but that's
5497 not a problem. */
5498 }
5499 #else
5500 fd = ioctl (pi->ctl_fd, PIOCOPENM, &map->pr_vaddr);
5501 /* Note: we don't test the above call for failure;
5502 we just pass the FD on as given. Sometimes there is
5503 no file, so the ioctl may return failure, but that's
5504 not a problem. */
5505 #endif
5506 return (*func) (fd, (CORE_ADDR) map->pr_vaddr);
5507 }
5508
5509 /*
5510 * Function: proc_iterate_over_mappings
5511 *
5512 * Uses the unified "iterate_over_mappings" function
5513 * to implement the exported interface to solib-svr4.c.
5514 *
5515 * Given a pointer to a function, call that function once for every
5516 * mapped address space in the process. The callback function
5517 * receives an open file descriptor for the file corresponding to
5518 * that mapped address space (if there is one), and the base address
5519 * of the mapped space. Quit when the callback function returns a
5520 * nonzero value, or at teh end of the mappings.
5521 *
5522 * Returns: the first non-zero return value of the callback function,
5523 * or zero.
5524 */
5525
5526 int
5527 proc_iterate_over_mappings (int (*func) (int, CORE_ADDR))
5528 {
5529 procinfo *pi = find_procinfo_or_die (PIDGET (inferior_ptid), 0);
5530
5531 return iterate_over_mappings (pi, func, pi, solib_mappings_callback);
5532 }
5533
5534 /*
5535 * Function: find_memory_regions_callback
5536 *
5537 * Implements the to_find_memory_regions method.
5538 * Calls an external function for each memory region.
5539 * External function will have the signiture:
5540 *
5541 * int callback (CORE_ADDR vaddr,
5542 * unsigned long size,
5543 * int read, int write, int execute,
5544 * void *data);
5545 *
5546 * Returns the integer value returned by the callback.
5547 */
5548
5549 static int
5550 find_memory_regions_callback (struct prmap *map,
5551 int (*func) (CORE_ADDR,
5552 unsigned long,
5553 int, int, int,
5554 void *),
5555 void *data)
5556 {
5557 return (*func) ((CORE_ADDR) map->pr_vaddr,
5558 map->pr_size,
5559 (map->pr_mflags & MA_READ) != 0,
5560 (map->pr_mflags & MA_WRITE) != 0,
5561 (map->pr_mflags & MA_EXEC) != 0,
5562 data);
5563 }
5564
5565 /*
5566 * Function: proc_find_memory_regions
5567 *
5568 * External interface. Calls a callback function once for each
5569 * mapped memory region in the child process, passing as arguments
5570 * CORE_ADDR virtual_address,
5571 * unsigned long size,
5572 * int read, TRUE if region is readable by the child
5573 * int write, TRUE if region is writable by the child
5574 * int execute TRUE if region is executable by the child.
5575 *
5576 * Stops iterating and returns the first non-zero value
5577 * returned by the callback.
5578 */
5579
5580 static int
5581 proc_find_memory_regions (int (*func) (CORE_ADDR,
5582 unsigned long,
5583 int, int, int,
5584 void *),
5585 void *data)
5586 {
5587 procinfo *pi = find_procinfo_or_die (PIDGET (inferior_ptid), 0);
5588
5589 return iterate_over_mappings (pi, func, data,
5590 find_memory_regions_callback);
5591 }
5592
5593 /* Remove the breakpoint that we inserted in __dbx_link().
5594 Does nothing if the breakpoint hasn't been inserted or has already
5595 been removed. */
5596
5597 static void
5598 remove_dbx_link_breakpoint (void)
5599 {
5600 if (dbx_link_bpt_addr == 0)
5601 return;
5602
5603 if (deprecated_remove_raw_breakpoint (dbx_link_bpt) != 0)
5604 warning (_("Unable to remove __dbx_link breakpoint."));
5605
5606 dbx_link_bpt_addr = 0;
5607 dbx_link_bpt = NULL;
5608 }
5609
5610 /* Return the address of the __dbx_link() function in the file
5611 refernced by ABFD by scanning its symbol table. Return 0 if
5612 the symbol was not found. */
5613
5614 static CORE_ADDR
5615 dbx_link_addr (bfd *abfd)
5616 {
5617 long storage_needed;
5618 asymbol **symbol_table;
5619 long number_of_symbols;
5620 long i;
5621
5622 storage_needed = bfd_get_symtab_upper_bound (abfd);
5623 if (storage_needed <= 0)
5624 return 0;
5625
5626 symbol_table = (asymbol **) xmalloc (storage_needed);
5627 make_cleanup (xfree, symbol_table);
5628
5629 number_of_symbols = bfd_canonicalize_symtab (abfd, symbol_table);
5630
5631 for (i = 0; i < number_of_symbols; i++)
5632 {
5633 asymbol *sym = symbol_table[i];
5634
5635 if ((sym->flags & BSF_GLOBAL)
5636 && sym->name != NULL && strcmp (sym->name, "__dbx_link") == 0)
5637 return (sym->value + sym->section->vma);
5638 }
5639
5640 /* Symbol not found, return NULL. */
5641 return 0;
5642 }
5643
5644 /* Search the symbol table of the file referenced by FD for a symbol
5645 named __dbx_link(). If found, then insert a breakpoint at this location,
5646 and return nonzero. Return zero otherwise. */
5647
5648 static int
5649 insert_dbx_link_bpt_in_file (int fd, CORE_ADDR ignored)
5650 {
5651 bfd *abfd;
5652 long storage_needed;
5653 CORE_ADDR sym_addr;
5654
5655 abfd = bfd_fdopenr ("unamed", 0, fd);
5656 if (abfd == NULL)
5657 {
5658 warning (_("Failed to create a bfd: %s."), bfd_errmsg (bfd_get_error ()));
5659 return 0;
5660 }
5661
5662 if (!bfd_check_format (abfd, bfd_object))
5663 {
5664 /* Not the correct format, so we can not possibly find the dbx_link
5665 symbol in it. */
5666 bfd_close (abfd);
5667 return 0;
5668 }
5669
5670 sym_addr = dbx_link_addr (abfd);
5671 if (sym_addr != 0)
5672 {
5673 /* Insert the breakpoint. */
5674 dbx_link_bpt_addr = sym_addr;
5675 dbx_link_bpt = deprecated_insert_raw_breakpoint (sym_addr);
5676 if (dbx_link_bpt == NULL)
5677 {
5678 warning (_("Failed to insert dbx_link breakpoint."));
5679 bfd_close (abfd);
5680 return 0;
5681 }
5682 bfd_close (abfd);
5683 return 1;
5684 }
5685
5686 bfd_close (abfd);
5687 return 0;
5688 }
5689
5690 /* If the given memory region MAP contains a symbol named __dbx_link,
5691 insert a breakpoint at this location and return nonzero. Return
5692 zero otherwise. */
5693
5694 static int
5695 insert_dbx_link_bpt_in_region (struct prmap *map,
5696 int (*child_func) (),
5697 void *data)
5698 {
5699 procinfo *pi = (procinfo *) data;
5700
5701 /* We know the symbol we're looking for is in a text region, so
5702 only look for it if the region is a text one. */
5703 if (map->pr_mflags & MA_EXEC)
5704 return solib_mappings_callback (map, insert_dbx_link_bpt_in_file, pi);
5705
5706 return 0;
5707 }
5708
5709 /* Search all memory regions for a symbol named __dbx_link. If found,
5710 insert a breakpoint at its location, and return nonzero. Return zero
5711 otherwise. */
5712
5713 static int
5714 insert_dbx_link_breakpoint (procinfo *pi)
5715 {
5716 return iterate_over_mappings (pi, NULL, pi, insert_dbx_link_bpt_in_region);
5717 }
5718
5719 /*
5720 * Function: mappingflags
5721 *
5722 * Returns an ascii representation of a memory mapping's flags.
5723 */
5724
5725 static char *
5726 mappingflags (long flags)
5727 {
5728 static char asciiflags[8];
5729
5730 strcpy (asciiflags, "-------");
5731 #if defined (MA_PHYS)
5732 if (flags & MA_PHYS)
5733 asciiflags[0] = 'd';
5734 #endif
5735 if (flags & MA_STACK)
5736 asciiflags[1] = 's';
5737 if (flags & MA_BREAK)
5738 asciiflags[2] = 'b';
5739 if (flags & MA_SHARED)
5740 asciiflags[3] = 's';
5741 if (flags & MA_READ)
5742 asciiflags[4] = 'r';
5743 if (flags & MA_WRITE)
5744 asciiflags[5] = 'w';
5745 if (flags & MA_EXEC)
5746 asciiflags[6] = 'x';
5747 return (asciiflags);
5748 }
5749
5750 /*
5751 * Function: info_mappings_callback
5752 *
5753 * Callback function, does the actual work for 'info proc mappings'.
5754 */
5755
5756 static int
5757 info_mappings_callback (struct prmap *map, int (*ignore) (), void *unused)
5758 {
5759 char *data_fmt_string;
5760
5761 if (gdbarch_addr_bit (current_gdbarch) == 32)
5762 data_fmt_string = "\t%#10lx %#10lx %#10x %#10x %7s\n";
5763 else
5764 data_fmt_string = " %#18lx %#18lx %#10x %#10x %7s\n";
5765
5766 printf_filtered (data_fmt_string,
5767 (unsigned long) map->pr_vaddr,
5768 (unsigned long) map->pr_vaddr + map->pr_size - 1,
5769 map->pr_size,
5770 #ifdef PCAGENT /* Horrible hack: only defined on Solaris 2.6+ */
5771 (unsigned int) map->pr_offset,
5772 #else
5773 map->pr_off,
5774 #endif
5775 mappingflags (map->pr_mflags));
5776
5777 return 0;
5778 }
5779
5780 /*
5781 * Function: info_proc_mappings
5782 *
5783 * Implement the "info proc mappings" subcommand.
5784 */
5785
5786 static void
5787 info_proc_mappings (procinfo *pi, int summary)
5788 {
5789 char *header_fmt_string;
5790
5791 if (gdbarch_ptr_bit (current_gdbarch) == 32)
5792 header_fmt_string = "\t%10s %10s %10s %10s %7s\n";
5793 else
5794 header_fmt_string = " %18s %18s %10s %10s %7s\n";
5795
5796 if (summary)
5797 return; /* No output for summary mode. */
5798
5799 printf_filtered (_("Mapped address spaces:\n\n"));
5800 printf_filtered (header_fmt_string,
5801 "Start Addr",
5802 " End Addr",
5803 " Size",
5804 " Offset",
5805 "Flags");
5806
5807 iterate_over_mappings (pi, NULL, NULL, info_mappings_callback);
5808 printf_filtered ("\n");
5809 }
5810
5811 /*
5812 * Function: info_proc_cmd
5813 *
5814 * Implement the "info proc" command.
5815 */
5816
5817 static void
5818 info_proc_cmd (char *args, int from_tty)
5819 {
5820 struct cleanup *old_chain;
5821 procinfo *process = NULL;
5822 procinfo *thread = NULL;
5823 char **argv = NULL;
5824 char *tmp = NULL;
5825 int pid = 0;
5826 int tid = 0;
5827 int mappings = 0;
5828
5829 old_chain = make_cleanup (null_cleanup, 0);
5830 if (args)
5831 {
5832 if ((argv = buildargv (args)) == NULL)
5833 nomem (0);
5834 else
5835 make_cleanup_freeargv (argv);
5836 }
5837 while (argv != NULL && *argv != NULL)
5838 {
5839 if (isdigit (argv[0][0]))
5840 {
5841 pid = strtoul (argv[0], &tmp, 10);
5842 if (*tmp == '/')
5843 tid = strtoul (++tmp, NULL, 10);
5844 }
5845 else if (argv[0][0] == '/')
5846 {
5847 tid = strtoul (argv[0] + 1, NULL, 10);
5848 }
5849 else if (strncmp (argv[0], "mappings", strlen (argv[0])) == 0)
5850 {
5851 mappings = 1;
5852 }
5853 else
5854 {
5855 /* [...] */
5856 }
5857 argv++;
5858 }
5859 if (pid == 0)
5860 pid = PIDGET (inferior_ptid);
5861 if (pid == 0)
5862 error (_("No current process: you must name one."));
5863 else
5864 {
5865 /* Have pid, will travel.
5866 First see if it's a process we're already debugging. */
5867 process = find_procinfo (pid, 0);
5868 if (process == NULL)
5869 {
5870 /* No. So open a procinfo for it, but
5871 remember to close it again when finished. */
5872 process = create_procinfo (pid, 0);
5873 make_cleanup (do_destroy_procinfo_cleanup, process);
5874 if (!open_procinfo_files (process, FD_CTL))
5875 proc_error (process, "info proc, open_procinfo_files", __LINE__);
5876 }
5877 }
5878 if (tid != 0)
5879 thread = create_procinfo (pid, tid);
5880
5881 if (process)
5882 {
5883 printf_filtered (_("process %d flags:\n"), process->pid);
5884 proc_prettyprint_flags (proc_flags (process), 1);
5885 if (proc_flags (process) & (PR_STOPPED | PR_ISTOP))
5886 proc_prettyprint_why (proc_why (process), proc_what (process), 1);
5887 if (proc_get_nthreads (process) > 1)
5888 printf_filtered ("Process has %d threads.\n",
5889 proc_get_nthreads (process));
5890 }
5891 if (thread)
5892 {
5893 printf_filtered (_("thread %d flags:\n"), thread->tid);
5894 proc_prettyprint_flags (proc_flags (thread), 1);
5895 if (proc_flags (thread) & (PR_STOPPED | PR_ISTOP))
5896 proc_prettyprint_why (proc_why (thread), proc_what (thread), 1);
5897 }
5898
5899 if (mappings)
5900 {
5901 info_proc_mappings (process, 0);
5902 }
5903
5904 do_cleanups (old_chain);
5905 }
5906
5907 /* Modify the status of the system call identified by SYSCALLNUM in
5908 the set of syscalls that are currently traced/debugged.
5909
5910 If ENTRY_OR_EXIT is set to PR_SYSENTRY, then the entry syscalls set
5911 will be updated. Otherwise, the exit syscalls set will be updated.
5912
5913 If MODE is FLAG_SET, then traces will be enabled. Otherwise, they
5914 will be disabled. */
5915
5916 static void
5917 proc_trace_syscalls_1 (procinfo *pi, int syscallnum, int entry_or_exit,
5918 int mode, int from_tty)
5919 {
5920 sysset_t *sysset;
5921
5922 if (entry_or_exit == PR_SYSENTRY)
5923 sysset = proc_get_traced_sysentry (pi, NULL);
5924 else
5925 sysset = proc_get_traced_sysexit (pi, NULL);
5926
5927 if (sysset == NULL)
5928 proc_error (pi, "proc-trace, get_traced_sysset", __LINE__);
5929
5930 if (mode == FLAG_SET)
5931 gdb_praddsysset (sysset, syscallnum);
5932 else
5933 gdb_prdelsysset (sysset, syscallnum);
5934
5935 if (entry_or_exit == PR_SYSENTRY)
5936 {
5937 if (!proc_set_traced_sysentry (pi, sysset))
5938 proc_error (pi, "proc-trace, set_traced_sysentry", __LINE__);
5939 }
5940 else
5941 {
5942 if (!proc_set_traced_sysexit (pi, sysset))
5943 proc_error (pi, "proc-trace, set_traced_sysexit", __LINE__);
5944 }
5945 }
5946
5947 static void
5948 proc_trace_syscalls (char *args, int from_tty, int entry_or_exit, int mode)
5949 {
5950 procinfo *pi;
5951
5952 if (PIDGET (inferior_ptid) <= 0)
5953 error (_("you must be debugging a process to use this command."));
5954
5955 if (args == NULL || args[0] == 0)
5956 error_no_arg (_("system call to trace"));
5957
5958 pi = find_procinfo_or_die (PIDGET (inferior_ptid), 0);
5959 if (isdigit (args[0]))
5960 {
5961 const int syscallnum = atoi (args);
5962
5963 proc_trace_syscalls_1 (pi, syscallnum, entry_or_exit, mode, from_tty);
5964 }
5965 }
5966
5967 static void
5968 proc_trace_sysentry_cmd (char *args, int from_tty)
5969 {
5970 proc_trace_syscalls (args, from_tty, PR_SYSENTRY, FLAG_SET);
5971 }
5972
5973 static void
5974 proc_trace_sysexit_cmd (char *args, int from_tty)
5975 {
5976 proc_trace_syscalls (args, from_tty, PR_SYSEXIT, FLAG_SET);
5977 }
5978
5979 static void
5980 proc_untrace_sysentry_cmd (char *args, int from_tty)
5981 {
5982 proc_trace_syscalls (args, from_tty, PR_SYSENTRY, FLAG_RESET);
5983 }
5984
5985 static void
5986 proc_untrace_sysexit_cmd (char *args, int from_tty)
5987 {
5988 proc_trace_syscalls (args, from_tty, PR_SYSEXIT, FLAG_RESET);
5989 }
5990
5991
5992 void
5993 _initialize_procfs (void)
5994 {
5995 init_procfs_ops ();
5996 add_target (&procfs_ops);
5997 add_info ("proc", info_proc_cmd, _("\
5998 Show /proc process information about any running process.\n\
5999 Specify process id, or use the program being debugged by default.\n\
6000 Specify keyword 'mappings' for detailed info on memory mappings."));
6001 add_com ("proc-trace-entry", no_class, proc_trace_sysentry_cmd,
6002 _("Give a trace of entries into the syscall."));
6003 add_com ("proc-trace-exit", no_class, proc_trace_sysexit_cmd,
6004 _("Give a trace of exits from the syscall."));
6005 add_com ("proc-untrace-entry", no_class, proc_untrace_sysentry_cmd,
6006 _("Cancel a trace of entries into the syscall."));
6007 add_com ("proc-untrace-exit", no_class, proc_untrace_sysexit_cmd,
6008 _("Cancel a trace of exits from the syscall."));
6009 }
6010
6011 /* =================== END, GDB "MODULE" =================== */
6012
6013
6014
6015 /* miscellaneous stubs: */
6016 /* The following satisfy a few random symbols mostly created by */
6017 /* the solaris threads implementation, which I will chase down */
6018 /* later. */
6019
6020 /*
6021 * Return a pid for which we guarantee
6022 * we will be able to find a 'live' procinfo.
6023 */
6024
6025 ptid_t
6026 procfs_first_available (void)
6027 {
6028 return pid_to_ptid (procinfo_list ? procinfo_list->pid : -1);
6029 }
6030
6031 /* =================== GCORE .NOTE "MODULE" =================== */
6032 #if defined (UNIXWARE) || defined (PIOCOPENLWP) || defined (PCAGENT)
6033 /* gcore only implemented on solaris and unixware (so far) */
6034
6035 static char *
6036 procfs_do_thread_registers (bfd *obfd, ptid_t ptid,
6037 char *note_data, int *note_size)
6038 {
6039 struct regcache *regcache = get_thread_regcache (ptid);
6040 gdb_gregset_t gregs;
6041 gdb_fpregset_t fpregs;
6042 unsigned long merged_pid;
6043
6044 merged_pid = TIDGET (ptid) << 16 | PIDGET (ptid);
6045
6046 fill_gregset (regcache, &gregs, -1);
6047 #if defined (UNIXWARE)
6048 note_data = (char *) elfcore_write_lwpstatus (obfd,
6049 note_data,
6050 note_size,
6051 merged_pid,
6052 stop_signal,
6053 &gregs);
6054 #else
6055 note_data = (char *) elfcore_write_prstatus (obfd,
6056 note_data,
6057 note_size,
6058 merged_pid,
6059 stop_signal,
6060 &gregs);
6061 #endif
6062 fill_fpregset (regcache, &fpregs, -1);
6063 note_data = (char *) elfcore_write_prfpreg (obfd,
6064 note_data,
6065 note_size,
6066 &fpregs,
6067 sizeof (fpregs));
6068 return note_data;
6069 }
6070
6071 struct procfs_corefile_thread_data {
6072 bfd *obfd;
6073 char *note_data;
6074 int *note_size;
6075 };
6076
6077 static int
6078 procfs_corefile_thread_callback (procinfo *pi, procinfo *thread, void *data)
6079 {
6080 struct procfs_corefile_thread_data *args = data;
6081
6082 if (pi != NULL && thread->tid != 0)
6083 {
6084 ptid_t saved_ptid = inferior_ptid;
6085 inferior_ptid = MERGEPID (pi->pid, thread->tid);
6086 args->note_data = procfs_do_thread_registers (args->obfd, inferior_ptid,
6087 args->note_data,
6088 args->note_size);
6089 inferior_ptid = saved_ptid;
6090 }
6091 return 0;
6092 }
6093
6094 static char *
6095 procfs_make_note_section (bfd *obfd, int *note_size)
6096 {
6097 struct cleanup *old_chain;
6098 gdb_gregset_t gregs;
6099 gdb_fpregset_t fpregs;
6100 char fname[16] = {'\0'};
6101 char psargs[80] = {'\0'};
6102 procinfo *pi = find_procinfo_or_die (PIDGET (inferior_ptid), 0);
6103 char *note_data = NULL;
6104 char *inf_args;
6105 struct procfs_corefile_thread_data thread_args;
6106 char *auxv;
6107 int auxv_len;
6108
6109 if (get_exec_file (0))
6110 {
6111 strncpy (fname, strrchr (get_exec_file (0), '/') + 1, sizeof (fname));
6112 strncpy (psargs, get_exec_file (0),
6113 sizeof (psargs));
6114
6115 inf_args = get_inferior_args ();
6116 if (inf_args && *inf_args &&
6117 strlen (inf_args) < ((int) sizeof (psargs) - (int) strlen (psargs)))
6118 {
6119 strncat (psargs, " ",
6120 sizeof (psargs) - strlen (psargs));
6121 strncat (psargs, inf_args,
6122 sizeof (psargs) - strlen (psargs));
6123 }
6124 }
6125
6126 note_data = (char *) elfcore_write_prpsinfo (obfd,
6127 note_data,
6128 note_size,
6129 fname,
6130 psargs);
6131
6132 #ifdef UNIXWARE
6133 fill_gregset (get_current_regcache (), &gregs, -1);
6134 note_data = elfcore_write_pstatus (obfd, note_data, note_size,
6135 PIDGET (inferior_ptid),
6136 stop_signal, &gregs);
6137 #endif
6138
6139 thread_args.obfd = obfd;
6140 thread_args.note_data = note_data;
6141 thread_args.note_size = note_size;
6142 proc_iterate_over_threads (pi, procfs_corefile_thread_callback, &thread_args);
6143
6144 if (thread_args.note_data == note_data)
6145 {
6146 /* iterate_over_threads didn't come up with any threads;
6147 just use inferior_ptid. */
6148 note_data = procfs_do_thread_registers (obfd, inferior_ptid,
6149 note_data, note_size);
6150 }
6151 else
6152 {
6153 note_data = thread_args.note_data;
6154 }
6155
6156 auxv_len = target_read_alloc (&current_target, TARGET_OBJECT_AUXV,
6157 NULL, &auxv);
6158 if (auxv_len > 0)
6159 {
6160 note_data = elfcore_write_note (obfd, note_data, note_size,
6161 "CORE", NT_AUXV, auxv, auxv_len);
6162 xfree (auxv);
6163 }
6164
6165 make_cleanup (xfree, note_data);
6166 return note_data;
6167 }
6168 #else /* !(Solaris or Unixware) */
6169 static char *
6170 procfs_make_note_section (bfd *obfd, int *note_size)
6171 {
6172 error (_("gcore not implemented for this host."));
6173 return NULL; /* lint */
6174 }
6175 #endif /* Solaris or Unixware */
6176 /* =================== END GCORE .NOTE "MODULE" =================== */