import gdb-19990422 snapshot
[deliverable/binutils-gdb.git] / gdb / convex-xdep.c
1 /* Convex host-dependent code for GDB.
2 Copyright 1990, 1991, 1992 Free Software Foundation, Inc.
3
4 This file is part of GDB.
5
6 This program is free software; you can redistribute it and/or modify
7 it under the terms of the GNU General Public License as published by
8 the Free Software Foundation; either version 2 of the License, or
9 (at your option) any later version.
10
11 This program is distributed in the hope that it will be useful,
12 but WITHOUT ANY WARRANTY; without even the implied warranty of
13 MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
14 GNU General Public License for more details.
15
16 You should have received a copy of the GNU General Public License
17 along with this program; if not, write to the Free Software
18 Foundation, Inc., 59 Temple Place - Suite 330, Boston, MA 02111-1307, USA. */
19
20 #include "defs.h"
21 #include "command.h"
22 #include "symtab.h"
23 #include "value.h"
24 #include "frame.h"
25 #include "inferior.h"
26 #include "wait.h"
27
28 #include <signal.h>
29 #include <fcntl.h>
30 #include "gdbcore.h"
31
32 #include <sys/param.h>
33 #include <sys/dir.h>
34 #include <sys/user.h>
35 #include <sys/ioctl.h>
36 #include <sys/pcntl.h>
37 #include <sys/thread.h>
38 #include <sys/proc.h>
39 #include <sys/file.h>
40 #include "gdb_stat.h"
41 #include <sys/mman.h>
42
43 #include <convex/vmparam.h>
44 #include <convex/filehdr.h>
45 #include <convex/opthdr.h>
46 #include <convex/scnhdr.h>
47 #include <convex/core.h>
48
49 /* Per-thread data, read from the inferior at each stop and written
50 back at each resume. */
51
52 /* Number of active threads.
53 Tables are valid for thread numbers less than this. */
54
55 static int n_threads;
56
57 #define MAXTHREADS 8
58
59 /* Thread state. The remaining data is valid only if this is PI_TALIVE. */
60
61 static int thread_state[MAXTHREADS];
62
63 /* Stop pc, signal, signal subcode */
64
65 static int thread_pc[MAXTHREADS];
66 static int thread_signal[MAXTHREADS];
67 static int thread_sigcode[MAXTHREADS];
68
69 /* Thread registers.
70 If thread is selected, the regs are in registers[] instead. */
71
72 static char thread_regs[MAXTHREADS][REGISTER_BYTES];
73
74 /* 1 if the top frame on the thread's stack was a context frame,
75 meaning that the kernel is up to something and we should not
76 touch the thread at all except to resume it. */
77
78 static char thread_is_in_kernel[MAXTHREADS];
79
80 /* The currently selected thread's number. */
81
82 static int inferior_thread;
83
84 /* Inferior process's file handle and a process control block
85 to feed args to ioctl with. */
86
87 static int inferior_fd;
88 static struct pcntl ps;
89
90 /* SOFF file headers for exec or core file. */
91
92 static FILEHDR filehdr;
93 static OPTHDR opthdr;
94 static SCNHDR scnhdr;
95
96 /* Address maps constructed from section headers of exec and core files.
97 Defines process address -> file address translation. */
98
99 struct pmap
100 {
101 long mem_addr; /* process start address */
102 long mem_end; /* process end+1 address */
103 long file_addr; /* file start address */
104 long thread; /* -1 shared; 0,1,... thread-local */
105 long type; /* S_TEXT S_DATA S_BSS S_TBSS etc */
106 long which; /* used to sort map for info files */
107 };
108
109 static int n_exec, n_core;
110 static struct pmap exec_map[100];
111 static struct pmap core_map[100];
112
113 /* Offsets in the core file of core_context and core_tcontext blocks. */
114
115 static int context_offset;
116 static int tcontext_offset[MAXTHREADS];
117
118 /* Core file control blocks. */
119
120 static struct core_context_v70 c;
121 static struct core_tcontext_v70 tc;
122 static struct user u;
123 static thread_t th;
124 static proc_t pr;
125
126
127 /* Vector and communication registers from core dump or from inferior.
128 These are read on demand, ie, not normally valid. */
129
130 static struct vecst vector_registers;
131 static struct creg_ctx comm_registers;
132
133 /* Flag, set on a vanilla CONT command and cleared when the inferior
134 is continued. */
135
136 static int all_continue;
137
138 /* Flag, set when the inferior is continued by a vanilla CONT command,
139 cleared if it is continued for any other purpose. */
140
141 static int thread_switch_ok;
142
143 /* Stack of signals recieved from threads but not yet delivered to gdb. */
144
145 struct threadpid
146 {
147 int pid;
148 int thread;
149 int signo;
150 int subsig;
151 int pc;
152 };
153
154 static struct threadpid signal_stack_bot[100];
155 static struct threadpid *signal_stack = signal_stack_bot;
156
157 /* How to detect empty stack -- bottom frame is all zero. */
158
159 #define signal_stack_is_empty() (signal_stack->pid == 0)
160
161 /* Mode controlled by SET PIPE command, controls the psw SEQ bit
162 which forces each instruction to complete before the next one starts. */
163
164 static int sequential = 0;
165
166 /* Mode controlled by the SET PARALLEL command. Values are:
167 0 concurrency limit 1 thread, dynamic scheduling
168 1 no concurrency limit, dynamic scheduling
169 2 no concurrency limit, fixed scheduling */
170
171 static int parallel = 1;
172
173 /* Mode controlled by SET BASE command, output radix for unformatted
174 integer typeout, as in argument lists, aggregates, and so on.
175 Zero means guess whether it's an address (hex) or not (decimal). */
176
177 static int output_radix = 0;
178
179 /* Signal subcode at last thread stop. */
180
181 static int stop_sigcode;
182
183 /* Hack, see wait() below. */
184
185 static int exec_trap_timer;
186
187 #include "gdbcmd.h"
188
189 static struct type *vector_type ();
190 static long *read_vector_register ();
191 static long *read_vector_register_1 ();
192 static void write_vector_register ();
193 static ULONGEST read_comm_register ();
194 static void write_comm_register ();
195 static void convex_cont_command ();
196 static void thread_continue ();
197 static void select_thread ();
198 static void scan_stack ();
199 static void set_fixed_scheduling ();
200 static char *subsig_name ();
201 static void psw_info ();
202 static sig_noop ();
203 static ptr_cmp ();
204
205 \f
206 /* Execute ptrace. Convex V7 replaced ptrace with pattach.
207 Allow ptrace (0) as a no-op. */
208
209 int
210 call_ptrace (request, pid, procaddr, buf)
211 int request, pid;
212 PTRACE_ARG3_TYPE procaddr;
213 int buf;
214 {
215 if (request == 0)
216 return;
217 error ("no ptrace");
218 }
219
220 /* Replacement for system execle routine.
221 Convert it to an equivalent exect, which pattach insists on. */
222
223 execle (name, argv)
224 char *name, *argv;
225 {
226 char ***envp = (char ***) &argv;
227 while (*envp++) ;
228
229 signal (SIGTRAP, sig_noop);
230 exect (name, &argv, *envp);
231 }
232
233 /* Stupid handler for stupid trace trap that otherwise causes
234 startup to stupidly hang. */
235
236 static sig_noop ()
237 {}
238
239 /* Read registers from inferior into registers[] array.
240 For convex, they are already there, read in when the inferior stops. */
241
242 void
243 fetch_inferior_registers (regno)
244 int regno;
245 {
246 }
247
248 /* Store our register values back into the inferior.
249 For Convex, do this only once, right before resuming inferior. */
250
251 void
252 store_inferior_registers (regno)
253 int regno;
254 {
255 }
256
257 /* Copy LEN bytes from inferior's memory starting at MEMADDR
258 to debugger memory starting at MYADDR.
259 On failure (cannot read from inferior, usually because address is out
260 of bounds) returns the value of errno. */
261
262 int
263 read_inferior_memory (memaddr, myaddr, len)
264 CORE_ADDR memaddr;
265 char *myaddr;
266 int len;
267 {
268 errno = 0;
269 while (len > 0)
270 {
271 /* little-known undocumented max request size */
272 int i = (len < 12288) ? len : 12288;
273
274 lseek (inferior_fd, memaddr, 0);
275 read (inferior_fd, myaddr, i);
276
277 memaddr += i;
278 myaddr += i;
279 len -= i;
280 }
281 if (errno)
282 memset (myaddr, '\0', len);
283 return errno;
284 }
285
286 /* Copy LEN bytes of data from debugger memory at MYADDR
287 to inferior's memory at MEMADDR.
288 Returns errno on failure (cannot write the inferior) */
289
290 int
291 write_inferior_memory (memaddr, myaddr, len)
292 CORE_ADDR memaddr;
293 char *myaddr;
294 int len;
295 {
296 errno = 0;
297 lseek (inferior_fd, memaddr, 0);
298 write (inferior_fd, myaddr, len);
299 return errno;
300 }
301
302 /* Here from create_inferior when the inferior process has been created
303 and started up. We must do a pattach to grab it for debugging.
304
305 Also, intercept the CONT command by altering its dispatch address. */
306 /* FIXME: This used to be called from a macro CREATE_INFERIOR_HOOK.
307 But now init_trace_fun is in the same place. So re-write this to
308 use the init_trace_fun (making convex a debugging target). */
309
310 create_inferior_hook (pid)
311 int pid;
312 {
313 static char cont[] = "cont";
314 static char cont1[] = "c";
315 char *linep = cont;
316 char *linep1 = cont1;
317 char **line = &linep;
318 char **line1 = &linep1;
319 struct cmd_list_element *c;
320
321 c = lookup_cmd (line, cmdlist, "", 0);
322 c->function = convex_cont_command;
323 c = lookup_cmd (line1, cmdlist, "", 0);
324 c->function = convex_cont_command;
325
326 inferior_fd = pattach (pid, O_EXCL);
327 if (inferior_fd < 0)
328 perror_with_name ("pattach");
329 inferior_thread = 0;
330 set_fixed_scheduling (pid, parallel == 2);
331 }
332
333 /* Attach process PID for debugging. */
334
335 attach (pid)
336 int pid;
337 {
338 int fd = pattach (pid, O_EXCL);
339 if (fd < 0)
340 perror_with_name ("pattach");
341 attach_flag = 1;
342 /* wait for strange kernel reverberations to go away */
343 sleep (1);
344
345 setpgrp (pid, pid);
346
347 inferior_fd = fd;
348 inferior_thread = 0;
349 return pid;
350 }
351
352 /* Stop debugging the process whose number is PID
353 and continue it with signal number SIGNAL.
354 SIGNAL = 0 means just continue it. */
355
356 void
357 detach (signal)
358 int signal;
359 {
360 signal_stack = signal_stack_bot;
361 thread_continue (-1, 0, signal);
362 ioctl (inferior_fd, PIXDETACH, &ps);
363 close (inferior_fd);
364 inferior_fd = 0;
365 attach_flag = 0;
366 }
367
368 /* Kill off the inferior process. */
369
370 kill_inferior ()
371 {
372 if (inferior_pid == 0)
373 return;
374 ioctl (inferior_fd, PIXTERMINATE, 0);
375 wait (0);
376 target_mourn_inferior ();
377 }
378
379 /* Read vector register REG, and return a pointer to the value. */
380
381 static long *
382 read_vector_register (reg)
383 int reg;
384 {
385 if (have_inferior_p ())
386 {
387 errno = 0;
388 ps.pi_buffer = (char *) &vector_registers;
389 ps.pi_nbytes = sizeof vector_registers;
390 ps.pi_offset = 0;
391 ps.pi_thread = inferior_thread;
392 ioctl (inferior_fd, PIXRDVREGS, &ps);
393 if (errno)
394 memset (&vector_registers, '\0', sizeof vector_registers);
395 }
396 else if (corechan >= 0)
397 {
398 lseek (corechan, tcontext_offset[inferior_thread], 0);
399 if (myread (corechan, &tc, sizeof tc) < 0)
400 perror_with_name (corefile);
401 lseek (corechan, tc.core_thread_p, 0);
402 if (myread (corechan, &th, sizeof th) < 0)
403 perror_with_name (corefile);
404 lseek (corechan, tc.core_vregs_p, 0);
405 if (myread (corechan, &vector_registers, 16*128) < 0)
406 perror_with_name (corefile);
407 vector_registers.vm[0] = th.t_vect_ctx.vc_vm[0];
408 vector_registers.vm[1] = th.t_vect_ctx.vc_vm[1];
409 vector_registers.vls = th.t_vect_ctx.vc_vls;
410 }
411
412 return read_vector_register_1 (reg);
413 }
414
415 /* Return a pointer to vector register REG, which must already have been
416 fetched from the inferior or core file. */
417
418 static long *
419 read_vector_register_1 (reg)
420 int reg;
421 {
422 switch (reg)
423 {
424 case VM_REGNUM:
425 return (long *) vector_registers.vm;
426 case VS_REGNUM:
427 return (long *) &vector_registers.vls;
428 case VL_REGNUM:
429 return 1 + (long *) &vector_registers.vls;
430 default:
431 return (long *) &vector_registers.vr[reg];
432 }
433 }
434
435 /* Write vector register REG, element ELEMENT, new value VAL.
436 NB: must use read-modify-write on the entire vector state,
437 since pattach does not do offsetted writes correctly. */
438
439 static void
440 write_vector_register (reg, element, val)
441 int reg, element;
442 ULONGEST val;
443 {
444 if (have_inferior_p ())
445 {
446 errno = 0;
447 ps.pi_thread = inferior_thread;
448 ps.pi_offset = 0;
449 ps.pi_buffer = (char *) &vector_registers;
450 ps.pi_nbytes = sizeof vector_registers;
451
452 ioctl (inferior_fd, PIXRDVREGS, &ps);
453
454 switch (reg)
455 {
456 case VL_REGNUM:
457 vector_registers.vls =
458 (vector_registers.vls & 0xffffffff00000000LL)
459 + (unsigned long) val;
460 break;
461
462 case VS_REGNUM:
463 vector_registers.vls =
464 (val << 32) + (unsigned long) vector_registers.vls;
465 break;
466
467 default:
468 vector_registers.vr[reg].el[element] = val;
469 break;
470 }
471
472 ioctl (inferior_fd, PIXWRVREGS, &ps);
473
474 if (errno)
475 perror_with_name ("writing vector register");
476 }
477 }
478
479 /* Return the contents of communication register NUM. */
480
481 static ULONGEST
482 read_comm_register (num)
483 int num;
484 {
485 if (have_inferior_p ())
486 {
487 ps.pi_buffer = (char *) &comm_registers;
488 ps.pi_nbytes = sizeof comm_registers;
489 ps.pi_offset = 0;
490 ps.pi_thread = inferior_thread;
491 ioctl (inferior_fd, PIXRDCREGS, &ps);
492 }
493 return comm_registers.crreg.r4[num];
494 }
495
496 /* Store a new value VAL into communication register NUM.
497 NB: Must use read-modify-write on the whole comm register set
498 since pattach does not do offsetted writes correctly. */
499
500 static void
501 write_comm_register (num, val)
502 int num;
503 ULONGEST val;
504 {
505 if (have_inferior_p ())
506 {
507 ps.pi_buffer = (char *) &comm_registers;
508 ps.pi_nbytes = sizeof comm_registers;
509 ps.pi_offset = 0;
510 ps.pi_thread = inferior_thread;
511 ioctl (inferior_fd, PIXRDCREGS, &ps);
512 comm_registers.crreg.r4[num] = val;
513 ioctl (inferior_fd, PIXWRCREGS, &ps);
514 }
515 }
516
517 /* Resume execution of the inferior process.
518 If STEP is nonzero, single-step it.
519 If SIGNAL is nonzero, give it that signal. */
520
521 void
522 resume (step, signal)
523 int step;
524 int signal;
525 {
526 errno = 0;
527 if (step || signal)
528 thread_continue (inferior_thread, step, signal);
529 else
530 thread_continue (-1, 0, 0);
531 }
532
533 /* Maybe resume some threads.
534 THREAD is which thread to resume, or -1 to resume them all.
535 STEP and SIGNAL are as in resume.
536
537 Global variable ALL_CONTINUE is set when we are here to do a
538 `cont' command; otherwise we may be doing `finish' or a call or
539 something else that will not tolerate an automatic thread switch.
540
541 If there are stopped threads waiting to deliver signals, and
542 ALL_CONTINUE, do not actually resume anything. gdb will do a wait
543 and see one of the stopped threads in the queue. */
544
545 static void
546 thread_continue (thread, step, signal)
547 int thread, step, signal;
548 {
549 int n;
550
551 /* If we are to continue all threads, but not for the CONTINUE command,
552 pay no attention and continue only the selected thread. */
553
554 if (thread < 0 && ! all_continue)
555 thread = inferior_thread;
556
557 /* If we are not stepping, we have now executed the continue part
558 of a CONTINUE command. */
559
560 if (! step)
561 all_continue = 0;
562
563 /* Allow wait() to switch threads if this is an all-out continue. */
564
565 thread_switch_ok = thread < 0;
566
567 /* If there are threads queued up, don't resume. */
568
569 if (thread_switch_ok && ! signal_stack_is_empty ())
570 return;
571
572 /* OK, do it. */
573
574 for (n = 0; n < n_threads; n++)
575 if (thread_state[n] == PI_TALIVE)
576 {
577 select_thread (n);
578
579 if ((thread < 0 || n == thread) && ! thread_is_in_kernel[n])
580 {
581 /* Blam the trace bits in the stack's saved psws to match
582 the desired step mode. This is required so that
583 single-stepping a return doesn't restore a psw with a
584 clear trace bit and fly away, and conversely,
585 proceeding through a return in a routine that was
586 stepped into doesn't cause a phantom break by restoring
587 a psw with the trace bit set. */
588 scan_stack (PSW_T_BIT, step);
589 scan_stack (PSW_S_BIT, sequential);
590 }
591
592 ps.pi_buffer = registers;
593 ps.pi_nbytes = REGISTER_BYTES;
594 ps.pi_offset = 0;
595 ps.pi_thread = n;
596 if (! thread_is_in_kernel[n])
597 if (ioctl (inferior_fd, PIXWRREGS, &ps))
598 perror_with_name ("PIXWRREGS");
599
600 if (thread < 0 || n == thread)
601 {
602 ps.pi_pc = 1;
603 ps.pi_signo = signal;
604 if (ioctl (inferior_fd, step ? PIXSTEP : PIXCONTINUE, &ps) < 0)
605 perror_with_name ("PIXCONTINUE");
606 }
607 }
608
609 if (ioctl (inferior_fd, PIXRUN, &ps) < 0)
610 perror_with_name ("PIXRUN");
611 }
612
613 /* Replacement for system wait routine.
614
615 The system wait returns with one or more threads stopped by
616 signals. Put stopped threads on a stack and return them one by
617 one, so that it appears that wait returns one thread at a time.
618
619 Global variable THREAD_SWITCH_OK is set when gdb can tolerate wait
620 returning a new thread. If it is false, then only one thread is
621 running; we will do a real wait, the thread will do something, and
622 we will return that. */
623
624 pid_t
625 wait (w)
626 union wait *w;
627 {
628 int pid;
629
630 if (!w)
631 return wait3 (0, 0, 0);
632
633 /* Do a real wait if we were told to, or if there are no queued threads. */
634
635 if (! thread_switch_ok || signal_stack_is_empty ())
636 {
637 int thread;
638
639 pid = wait3 (w, 0, 0);
640
641 if (!WIFSTOPPED (*w) || pid != inferior_pid)
642 return pid;
643
644 /* The inferior has done something and stopped. Read in all the
645 threads' registers, and queue up any signals that happened. */
646
647 if (ioctl (inferior_fd, PIXGETTHCOUNT, &ps) < 0)
648 perror_with_name ("PIXGETTHCOUNT");
649
650 n_threads = ps.pi_othdcnt;
651 for (thread = 0; thread < n_threads; thread++)
652 {
653 ps.pi_thread = thread;
654 if (ioctl (inferior_fd, PIXGETSUBCODE, &ps) < 0)
655 perror_with_name ("PIXGETSUBCODE");
656 thread_state[thread] = ps.pi_otstate;
657
658 if (ps.pi_otstate == PI_TALIVE)
659 {
660 select_thread (thread);
661 ps.pi_buffer = registers;
662 ps.pi_nbytes = REGISTER_BYTES;
663 ps.pi_offset = 0;
664 ps.pi_thread = thread;
665 if (ioctl (inferior_fd, PIXRDREGS, &ps) < 0)
666 perror_with_name ("PIXRDREGS");
667
668 registers_fetched ();
669
670 thread_pc[thread] = read_pc ();
671 thread_signal[thread] = ps.pi_osigno;
672 thread_sigcode[thread] = ps.pi_osigcode;
673
674 /* If the thread's stack has a context frame
675 on top, something fucked is going on. I do not
676 know what, but do I know this: the only thing you
677 can do with such a thread is continue it. */
678
679 thread_is_in_kernel[thread] =
680 ((read_register (PS_REGNUM) >> 25) & 3) == 0;
681
682 /* Signals push an extended frame and then fault
683 with a ridiculous pc. Pop the frame. */
684
685 if (thread_pc[thread] > STACK_END_ADDR)
686 {
687 POP_FRAME;
688 if (is_break_pc (thread_pc[thread]))
689 thread_pc[thread] = read_pc () - 2;
690 else
691 thread_pc[thread] = read_pc ();
692 write_register (PC_REGNUM, thread_pc[thread]);
693 }
694
695 if (ps.pi_osigno || ps.pi_osigcode)
696 {
697 signal_stack++;
698 signal_stack->pid = pid;
699 signal_stack->thread = thread;
700 signal_stack->signo = thread_signal[thread];
701 signal_stack->subsig = thread_sigcode[thread];
702 signal_stack->pc = thread_pc[thread];
703 }
704
705 /* The following hackery is caused by a unix 7.1 feature:
706 the inferior's fixed scheduling mode is cleared when
707 it execs the shell (since the shell is not a parallel
708 program). So, note the 5.4 trap we get when
709 the shell does its exec, then catch the 5.0 trap
710 that occurs when the debuggee starts, and set fixed
711 scheduling mode properly. */
712
713 if (ps.pi_osigno == 5 && ps.pi_osigcode == 4)
714 exec_trap_timer = 1;
715 else
716 exec_trap_timer--;
717
718 if (ps.pi_osigno == 5 && exec_trap_timer == 0)
719 set_fixed_scheduling (pid, parallel == 2);
720 }
721 }
722
723 if (signal_stack_is_empty ())
724 error ("no active threads?!");
725 }
726
727 /* Select the thread that stopped, and return *w saying why. */
728
729 select_thread (signal_stack->thread);
730
731 FIXME: need to convert from host sig.
732 stop_signal = signal_stack->signo;
733 stop_sigcode = signal_stack->subsig;
734
735 WSETSTOP (*w, signal_stack->signo);
736 w->w_thread = signal_stack->thread;
737 return (signal_stack--)->pid;
738 }
739
740 /* Select thread THREAD -- its registers, stack, per-thread memory.
741 This is the only routine that may assign to inferior_thread
742 or thread_regs[]. */
743
744 static void
745 select_thread (thread)
746 int thread;
747 {
748 if (thread == inferior_thread)
749 return;
750
751 memcpy (thread_regs[inferior_thread], registers, REGISTER_BYTES);
752 ps.pi_thread = inferior_thread = thread;
753 if (have_inferior_p ())
754 ioctl (inferior_fd, PISETRWTID, &ps);
755 memcpy (registers, thread_regs[thread], REGISTER_BYTES);
756 }
757
758 /* Routine to set or clear a psw bit in the psw and also all psws
759 saved on the stack. Quits when we get to a frame in which the
760 saved psw is correct. */
761
762 static void
763 scan_stack (bit, val)
764 long bit, val;
765 {
766 long ps = read_register (PS_REGNUM);
767 long fp;
768 if (val ? !(ps & bit) : (ps & bit))
769 {
770 ps ^= bit;
771 write_register (PS_REGNUM, ps);
772
773 fp = read_register (FP_REGNUM);
774 while (fp & 0x80000000)
775 {
776 ps = read_memory_integer (fp + 4, 4);
777 if (val ? (ps & bit) : !(ps & bit))
778 break;
779 ps ^= bit;
780 write_memory (fp + 4, &ps, 4);
781 fp = read_memory_integer (fp + 8, 4);
782 }
783 }
784 }
785
786 /* Set fixed scheduling (alliant mode) of process PID to ARG (0 or 1). */
787
788 static void
789 set_fixed_scheduling (pid, arg)
790 int arg;
791 {
792 struct pattributes pattr;
793 getpattr (pid, &pattr);
794 pattr.pattr_pfixed = arg;
795 setpattr (pid, &pattr);
796 }
797 \f
798 void
799 core_file_command (filename, from_tty)
800 char *filename;
801 int from_tty;
802 {
803 int n;
804
805 /* Discard all vestiges of any previous core file
806 and mark data and stack spaces as empty. */
807
808 if (corefile)
809 free (corefile);
810 corefile = 0;
811
812 if (corechan >= 0)
813 close (corechan);
814 corechan = -1;
815
816 data_start = 0;
817 data_end = 0;
818 stack_start = STACK_END_ADDR;
819 stack_end = STACK_END_ADDR;
820 n_core = 0;
821
822 /* Now, if a new core file was specified, open it and digest it. */
823
824 if (filename)
825 {
826 filename = tilde_expand (filename);
827 make_cleanup (free, filename);
828
829 if (have_inferior_p ())
830 error ("To look at a core file, you must kill the program with \"kill\".");
831 corechan = open (filename, O_RDONLY, 0);
832 if (corechan < 0)
833 perror_with_name (filename);
834
835 if (myread (corechan, &filehdr, sizeof filehdr) < 0)
836 perror_with_name (filename);
837
838 if (!IS_CORE_SOFF_MAGIC (filehdr.h_magic))
839 error ("%s: not a core file.\n", filename);
840
841 if (myread (corechan, &opthdr, filehdr.h_opthdr) < 0)
842 perror_with_name (filename);
843
844 /* Read through the section headers.
845 For text, data, etc, record an entry in the core file map.
846 For context and tcontext, record the file address of
847 the context blocks. */
848
849 lseek (corechan, (long) filehdr.h_scnptr, 0);
850
851 n_threads = 0;
852 for (n = 0; n < filehdr.h_nscns; n++)
853 {
854 if (myread (corechan, &scnhdr, sizeof scnhdr) < 0)
855 perror_with_name (filename);
856 if ((scnhdr.s_flags & S_TYPMASK) >= S_TEXT
857 && (scnhdr.s_flags & S_TYPMASK) <= S_COMON)
858 {
859 core_map[n_core].mem_addr = scnhdr.s_vaddr;
860 core_map[n_core].mem_end = scnhdr.s_vaddr + scnhdr.s_size;
861 core_map[n_core].file_addr = scnhdr.s_scnptr;
862 core_map[n_core].type = scnhdr.s_flags & S_TYPMASK;
863 if (core_map[n_core].type != S_TBSS
864 && core_map[n_core].type != S_TDATA
865 && core_map[n_core].type != S_TTEXT)
866 core_map[n_core].thread = -1;
867 else if (n_core == 0
868 || core_map[n_core-1].mem_addr != scnhdr.s_vaddr)
869 core_map[n_core].thread = 0;
870 else
871 core_map[n_core].thread = core_map[n_core-1].thread + 1;
872 n_core++;
873 }
874 else if ((scnhdr.s_flags & S_TYPMASK) == S_CONTEXT)
875 context_offset = scnhdr.s_scnptr;
876 else if ((scnhdr.s_flags & S_TYPMASK) == S_TCONTEXT)
877 tcontext_offset[n_threads++] = scnhdr.s_scnptr;
878 }
879
880 /* Read the context block, struct user, struct proc,
881 and the comm regs. */
882
883 lseek (corechan, context_offset, 0);
884 if (myread (corechan, &c, sizeof c) < 0)
885 perror_with_name (filename);
886 lseek (corechan, c.core_user_p, 0);
887 if (myread (corechan, &u, sizeof u) < 0)
888 perror_with_name (filename);
889 lseek (corechan, c.core_proc_p, 0);
890 if (myread (corechan, &pr, sizeof pr) < 0)
891 perror_with_name (filename);
892 comm_registers = pr.p_creg;
893
894 /* Core file apparently is really there. Make it really exist
895 for xfer_core_file so we can do read_memory on it. */
896
897 if (filename[0] == '/')
898 corefile = savestring (filename, strlen (filename));
899 else
900 corefile = concat (current_directory, "/", filename, NULL);
901
902 printf_filtered ("Program %s ", u.u_comm);
903
904 /* Read the thread registers and fill in the thread_xxx[] data. */
905
906 for (n = 0; n < n_threads; n++)
907 {
908 select_thread (n);
909
910 lseek (corechan, tcontext_offset[n], 0);
911 if (myread (corechan, &tc, sizeof tc) < 0)
912 perror_with_name (corefile);
913 lseek (corechan, tc.core_thread_p, 0);
914 if (myread (corechan, &th, sizeof th) < 0)
915 perror_with_name (corefile);
916
917 lseek (corechan, tc.core_syscall_context_p, 0);
918 if (myread (corechan, registers, REGISTER_BYTES) < 0)
919 perror_with_name (corefile);
920
921 thread_signal[n] = th.t_cursig;
922 thread_sigcode[n] = th.t_code;
923 thread_state[n] = th.t_state;
924 thread_pc[n] = read_pc ();
925
926 if (thread_pc[n] > STACK_END_ADDR)
927 {
928 POP_FRAME;
929 if (is_break_pc (thread_pc[n]))
930 thread_pc[n] = read_pc () - 2;
931 else
932 thread_pc[n] = read_pc ();
933 write_register (PC_REGNUM, thread_pc[n]);
934 }
935
936 printf_filtered ("thread %d received signal %d, %s\n",
937 n, thread_signal[n],
938 safe_strsignal (thread_signal[n]));
939 }
940
941 /* Select an interesting thread -- also-rans died with SIGKILL,
942 so find one that didn't. */
943
944 for (n = 0; n < n_threads; n++)
945 if (thread_signal[n] != 0 && thread_signal[n] != SIGKILL)
946 {
947 select_thread (n);
948 stop_signal = thread_signal[n];
949 stop_sigcode = thread_sigcode[n];
950 break;
951 }
952
953 core_aouthdr.a_magic = 0;
954
955 flush_cached_frames ();
956 select_frame (get_current_frame (), 0);
957 validate_files ();
958
959 print_stack_frame (selected_frame, selected_frame_level, -1);
960 }
961 else if (from_tty)
962 printf_filtered ("No core file now.\n");
963 }
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