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dd3b648e | 1 | /* Convex stuff for GDB. |
e1a623e7 | 2 | Copyright (C) 1990, 1991 Free Software Foundation, Inc. |
dd3b648e RP |
3 | |
4 | This file is part of GDB. | |
5 | ||
99a7de40 | 6 | This program is free software; you can redistribute it and/or modify |
dd3b648e | 7 | it under the terms of the GNU General Public License as published by |
99a7de40 JG |
8 | the Free Software Foundation; either version 2 of the License, or |
9 | (at your option) any later version. | |
dd3b648e | 10 | |
99a7de40 | 11 | This program is distributed in the hope that it will be useful, |
dd3b648e RP |
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 | |
99a7de40 JG |
17 | along with this program; if not, write to the Free Software |
18 | Foundation, Inc., 675 Mass Ave, Cambridge, MA 02139, USA. */ | |
dd3b648e | 19 | |
dd3b648e | 20 | #include "defs.h" |
dd3b648e RP |
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 | ||
31 | #include "gdbcore.h" | |
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 <sys/stat.h> | |
41 | #include <sys/mman.h> | |
42 | ||
43 | #include "gdbcmd.h" | |
44 | ||
45 | exec_file_command (filename, from_tty) | |
46 | char *filename; | |
47 | int from_tty; | |
48 | { | |
49 | int val; | |
50 | int n; | |
51 | struct stat st_exec; | |
52 | ||
53 | /* Eliminate all traces of old exec file. | |
54 | Mark text segment as empty. */ | |
55 | ||
56 | if (execfile) | |
57 | free (execfile); | |
58 | execfile = 0; | |
59 | data_start = 0; | |
60 | data_end = 0; | |
61 | text_start = 0; | |
62 | text_end = 0; | |
63 | exec_data_start = 0; | |
64 | exec_data_end = 0; | |
65 | if (execchan >= 0) | |
66 | close (execchan); | |
67 | execchan = -1; | |
68 | ||
69 | n_exec = 0; | |
70 | ||
71 | /* Now open and digest the file the user requested, if any. */ | |
72 | ||
73 | if (filename) | |
74 | { | |
75 | filename = tilde_expand (filename); | |
76 | make_cleanup (free, filename); | |
77 | ||
78 | execchan = openp (getenv ("PATH"), 1, filename, O_RDONLY, 0, | |
79 | &execfile); | |
80 | if (execchan < 0) | |
81 | perror_with_name (filename); | |
82 | ||
83 | if (myread (execchan, &filehdr, sizeof filehdr) < 0) | |
84 | perror_with_name (filename); | |
85 | ||
86 | if (! IS_SOFF_MAGIC (filehdr.h_magic)) | |
87 | error ("%s: not an executable file.", filename); | |
88 | ||
89 | if (myread (execchan, &opthdr, filehdr.h_opthdr) <= 0) | |
90 | perror_with_name (filename); | |
91 | ||
92 | /* Read through the section headers. | |
93 | For text, data, etc, record an entry in the exec file map. | |
94 | Record text_start and text_end. */ | |
95 | ||
96 | lseek (execchan, (long) filehdr.h_scnptr, 0); | |
97 | ||
98 | for (n = 0; n < filehdr.h_nscns; n++) | |
99 | { | |
100 | if (myread (execchan, &scnhdr, sizeof scnhdr) < 0) | |
101 | perror_with_name (filename); | |
102 | ||
103 | if ((scnhdr.s_flags & S_TYPMASK) >= S_TEXT | |
104 | && (scnhdr.s_flags & S_TYPMASK) <= S_COMON) | |
105 | { | |
106 | exec_map[n_exec].mem_addr = scnhdr.s_vaddr; | |
107 | exec_map[n_exec].mem_end = scnhdr.s_vaddr + scnhdr.s_size; | |
108 | exec_map[n_exec].file_addr = scnhdr.s_scnptr; | |
109 | exec_map[n_exec].type = scnhdr.s_flags & S_TYPMASK; | |
110 | n_exec++; | |
111 | ||
112 | if ((scnhdr.s_flags & S_TYPMASK) == S_TEXT) | |
113 | { | |
114 | text_start = scnhdr.s_vaddr; | |
115 | text_end = scnhdr.s_vaddr + scnhdr.s_size; | |
116 | } | |
117 | } | |
118 | } | |
119 | ||
120 | fstat (execchan, &st_exec); | |
121 | exec_mtime = st_exec.st_mtime; | |
122 | ||
123 | validate_files (); | |
124 | } | |
125 | else if (from_tty) | |
126 | printf_filtered ("No exec file now.\n"); | |
127 | ||
128 | /* Tell display code (if any) about the changed file name. */ | |
129 | if (exec_file_display_hook) | |
130 | (*exec_file_display_hook) (filename); | |
131 | } | |
132 | ||
133 | /* Read data from SOFF exec or core file. | |
134 | Return 0 on success, EIO if address out of bounds. */ | |
135 | ||
136 | int | |
137 | xfer_core_file (memaddr, myaddr, len) | |
138 | CORE_ADDR memaddr; | |
139 | char *myaddr; | |
140 | int len; | |
141 | { | |
142 | register int i; | |
143 | register int n; | |
144 | register int val; | |
145 | int xferchan; | |
146 | char **xferfile; | |
147 | int fileptr; | |
148 | int returnval = 0; | |
149 | ||
150 | while (len > 0) | |
151 | { | |
152 | xferfile = 0; | |
153 | xferchan = 0; | |
154 | ||
155 | /* Determine which file the next bunch of addresses reside in, | |
156 | and where in the file. Set the file's read/write pointer | |
157 | to point at the proper place for the desired address | |
158 | and set xferfile and xferchan for the correct file. | |
159 | If desired address is nonexistent, leave them zero. | |
160 | i is set to the number of bytes that can be handled | |
161 | along with the next address. */ | |
162 | ||
163 | i = len; | |
164 | ||
165 | for (n = 0; n < n_core; n++) | |
166 | { | |
167 | if (memaddr >= core_map[n].mem_addr && memaddr < core_map[n].mem_end | |
168 | && (core_map[n].thread == -1 | |
169 | || core_map[n].thread == inferior_thread)) | |
170 | { | |
171 | i = min (len, core_map[n].mem_end - memaddr); | |
172 | fileptr = core_map[n].file_addr + memaddr - core_map[n].mem_addr; | |
173 | if (core_map[n].file_addr) | |
174 | { | |
175 | xferfile = &corefile; | |
176 | xferchan = corechan; | |
177 | } | |
178 | break; | |
179 | } | |
180 | else if (core_map[n].mem_addr >= memaddr | |
181 | && core_map[n].mem_addr < memaddr + i) | |
182 | i = core_map[n].mem_addr - memaddr; | |
183 | } | |
184 | ||
185 | if (!xferfile) | |
186 | for (n = 0; n < n_exec; n++) | |
187 | { | |
188 | if (memaddr >= exec_map[n].mem_addr | |
189 | && memaddr < exec_map[n].mem_end) | |
190 | { | |
191 | i = min (len, exec_map[n].mem_end - memaddr); | |
192 | fileptr = exec_map[n].file_addr + memaddr | |
193 | - exec_map[n].mem_addr; | |
194 | if (exec_map[n].file_addr) | |
195 | { | |
196 | xferfile = &execfile; | |
197 | xferchan = execchan; | |
198 | } | |
199 | break; | |
200 | } | |
201 | else if (exec_map[n].mem_addr >= memaddr | |
202 | && exec_map[n].mem_addr < memaddr + i) | |
203 | i = exec_map[n].mem_addr - memaddr; | |
204 | } | |
205 | ||
206 | /* Now we know which file to use. | |
207 | Set up its pointer and transfer the data. */ | |
208 | if (xferfile) | |
209 | { | |
210 | if (*xferfile == 0) | |
211 | if (xferfile == &execfile) | |
212 | error ("No program file to examine."); | |
213 | else | |
214 | error ("No core dump file or running program to examine."); | |
215 | val = lseek (xferchan, fileptr, 0); | |
216 | if (val < 0) | |
217 | perror_with_name (*xferfile); | |
218 | val = myread (xferchan, myaddr, i); | |
219 | if (val < 0) | |
220 | perror_with_name (*xferfile); | |
221 | } | |
222 | /* If this address is for nonexistent memory, | |
223 | read zeros if reading, or do nothing if writing. */ | |
224 | else | |
225 | { | |
226 | bzero (myaddr, i); | |
227 | returnval = EIO; | |
228 | } | |
229 | ||
230 | memaddr += i; | |
231 | myaddr += i; | |
232 | len -= i; | |
233 | } | |
234 | return returnval; | |
235 | } | |
236 | ||
237 | ||
238 | /* Here from info files command to print an address map. */ | |
239 | ||
240 | print_maps () | |
241 | { | |
242 | struct pmap ptrs[200]; | |
243 | int n; | |
244 | ||
245 | /* ID strings for core and executable file sections */ | |
246 | ||
247 | static char *idstr[] = | |
248 | { | |
249 | "0", "text", "data", "tdata", "bss", "tbss", | |
250 | "common", "ttext", "ctx", "tctx", "10", "11", "12", | |
251 | }; | |
252 | ||
253 | for (n = 0; n < n_core; n++) | |
254 | { | |
255 | core_map[n].which = 0; | |
256 | ptrs[n] = core_map[n]; | |
257 | } | |
258 | for (n = 0; n < n_exec; n++) | |
259 | { | |
260 | exec_map[n].which = 1; | |
261 | ptrs[n_core+n] = exec_map[n]; | |
262 | } | |
263 | ||
264 | qsort (ptrs, n_core + n_exec, sizeof *ptrs, ptr_cmp); | |
265 | ||
266 | for (n = 0; n < n_core + n_exec; n++) | |
267 | { | |
268 | struct pmap *p = &ptrs[n]; | |
269 | if (n > 0) | |
270 | { | |
271 | if (p->mem_addr < ptrs[n-1].mem_end) | |
272 | p->mem_addr = ptrs[n-1].mem_end; | |
273 | if (p->mem_addr >= p->mem_end) | |
274 | continue; | |
275 | } | |
276 | printf_filtered ("%08x .. %08x %-6s %s\n", | |
277 | p->mem_addr, p->mem_end, idstr[p->type], | |
278 | p->which ? execfile : corefile); | |
279 | } | |
280 | } | |
281 | ||
282 | /* Compare routine to put file sections in order. | |
283 | Sort into increasing order on address, and put core file sections | |
284 | before exec file sections if both files contain the same addresses. */ | |
285 | ||
286 | static ptr_cmp (a, b) | |
287 | struct pmap *a, *b; | |
288 | { | |
289 | if (a->mem_addr != b->mem_addr) return a->mem_addr - b->mem_addr; | |
290 | return a->which - b->which; | |
291 | } | |
292 | \f | |
293 | /* Trapped internal variables are used to handle special registers. | |
294 | A trapped i.v. calls a hook here every time it is dereferenced, | |
295 | to provide a new value for the variable, and it calls a hook here | |
296 | when a new value is assigned, to do something with the value. | |
297 | ||
298 | The vector registers are $vl, $vs, $vm, $vN, $VN (N in 0..7). | |
299 | The communication registers are $cN, $CN (N in 0..63). | |
300 | They not handled as regular registers because it's expensive to | |
301 | read them, and their size varies, and they have too many names. */ | |
302 | ||
303 | ||
304 | /* Return 1 if NAME is a trapped internal variable, else 0. */ | |
305 | ||
306 | int | |
307 | is_trapped_internalvar (name) | |
308 | char *name; | |
309 | { | |
310 | if ((name[0] == 'c' || name[0] == 'C') | |
311 | && name[1] >= '0' && name[1] <= '9' | |
312 | && (name[2] == '\0' | |
313 | || (name[2] >= '0' && name[2] <= '9' | |
314 | && name[3] == '\0' && name[1] != '0')) | |
315 | && atoi (&name[1]) < 64) return 1; | |
316 | ||
317 | if ((name[0] == 'v' || name[0] == 'V') | |
318 | && (((name[1] & -8) == '0' && name[2] == '\0') | |
319 | || !strcmp (name, "vl") | |
320 | || !strcmp (name, "vs") | |
321 | || !strcmp (name, "vm"))) | |
322 | return 1; | |
323 | else return 0; | |
324 | } | |
325 | ||
326 | /* Return the value of trapped internal variable VAR */ | |
327 | ||
328 | value | |
329 | value_of_trapped_internalvar (var) | |
330 | struct internalvar *var; | |
331 | { | |
332 | char *name = var->name; | |
333 | value val; | |
334 | struct type *type; | |
335 | long len = *read_vector_register (VL_REGNUM); | |
336 | if (len <= 0 || len > 128) len = 128; | |
337 | ||
338 | if (!strcmp (name, "vl")) | |
339 | { | |
06b6c733 | 340 | val = value_from_longest (builtin_type_int, |
dd3b648e RP |
341 | (LONGEST) *read_vector_register_1 (VL_REGNUM)); |
342 | } | |
343 | else if (!strcmp (name, "vs")) | |
344 | { | |
06b6c733 | 345 | val = value_from_longest (builtin_type_int, |
dd3b648e RP |
346 | (LONGEST) *read_vector_register_1 (VS_REGNUM)); |
347 | } | |
348 | else if (!strcmp (name, "vm")) | |
349 | { | |
350 | long vm[4]; | |
351 | long i, *p; | |
352 | bcopy (read_vector_register_1 (VM_REGNUM), vm, sizeof vm); | |
353 | type = vector_type (builtin_type_int, len); | |
354 | val = allocate_value (type); | |
355 | p = (long *) VALUE_CONTENTS (val); | |
356 | for (i = 0; i < len; i++) | |
357 | *p++ = !! (vm[3 - (i >> 5)] & (1 << (i & 037))); | |
358 | } | |
359 | else if (name[0] == 'V') | |
360 | { | |
361 | type = vector_type (builtin_type_long_long, len); | |
362 | val = allocate_value (type); | |
363 | bcopy (read_vector_register_1 (name[1] - '0'), | |
364 | VALUE_CONTENTS (val), TYPE_LENGTH (type)); | |
365 | } | |
366 | else if (name[0] == 'v') | |
367 | { | |
368 | long *p1, *p2; | |
369 | type = vector_type (builtin_type_long, len); | |
370 | val = allocate_value (type); | |
371 | p1 = read_vector_register_1 (name[1] - '0'); | |
372 | p2 = (long *) VALUE_CONTENTS (val); | |
373 | while (--len >= 0) {p1++; *p2++ = *p1++;} | |
374 | } | |
375 | ||
376 | else if (name[0] == 'c') | |
06b6c733 | 377 | val = value_from_longest (builtin_type_int, |
dd3b648e RP |
378 | read_comm_register (atoi (&name[1]))); |
379 | else if (name[0] == 'C') | |
06b6c733 | 380 | val = value_from_longest (builtin_type_long_long, |
dd3b648e RP |
381 | read_comm_register (atoi (&name[1]))); |
382 | ||
383 | VALUE_LVAL (val) = lval_internalvar; | |
384 | VALUE_INTERNALVAR (val) = var; | |
385 | return val; | |
386 | } | |
387 | ||
388 | /* Construct the type for a vector register's value -- | |
389 | array[LENGTH] of ELEMENT_TYPE. */ | |
390 | ||
391 | static struct type * | |
392 | vector_type (element_type, length) | |
393 | struct type *element_type; | |
394 | long length; | |
395 | { | |
396 | struct type *type = (struct type *) xmalloc (sizeof (struct type)); | |
397 | bzero (type, sizeof type); | |
398 | TYPE_CODE (type) = TYPE_CODE_ARRAY; | |
399 | TYPE_TARGET_TYPE (type) = element_type; | |
400 | TYPE_LENGTH (type) = length * TYPE_LENGTH (TYPE_TARGET_TYPE (type)); | |
401 | return type; | |
402 | } | |
403 | ||
404 | /* Handle a new value assigned to a trapped internal variable */ | |
405 | ||
406 | void | |
407 | set_trapped_internalvar (var, val, bitpos, bitsize, offset) | |
408 | struct internalvar *var; | |
409 | value val; | |
410 | int bitpos, bitsize, offset; | |
411 | { | |
412 | char *name = var->name; | |
413 | long long newval = value_as_long (val); | |
414 | ||
415 | if (!strcmp (name, "vl")) | |
416 | write_vector_register (VL_REGNUM, 0, newval); | |
417 | else if (!strcmp (name, "vs")) | |
418 | write_vector_register (VS_REGNUM, 0, newval); | |
419 | else if (name[0] == 'c' || name[0] == 'C') | |
420 | write_comm_register (atoi (&name[1]), newval); | |
421 | else if (!strcmp (name, "vm")) | |
422 | error ("can't assign to $vm"); | |
423 | else | |
424 | { | |
425 | offset /= bitsize / 8; | |
426 | write_vector_register (name[1] - '0', offset, newval); | |
427 | } | |
428 | } | |
429 | ||
430 | /* Print an integer value when no format was specified. gdb normally | |
431 | prints these values in decimal, but the the leading 0x80000000 of | |
432 | pointers produces intolerable 10-digit negative numbers. | |
433 | If it looks like an address, print it in hex instead. */ | |
434 | ||
435 | decout (stream, type, val) | |
436 | FILE *stream; | |
437 | struct type *type; | |
438 | LONGEST val; | |
439 | { | |
440 | long lv = val; | |
441 | ||
442 | switch (output_radix) | |
443 | { | |
444 | case 0: | |
445 | if ((lv == val || (unsigned) lv == val) | |
446 | && ((lv & 0xf0000000) == 0x80000000 | |
447 | || ((lv & 0xf0000000) == 0xf0000000 && lv < STACK_END_ADDR))) | |
448 | { | |
449 | fprintf_filtered (stream, "%#x", lv); | |
450 | return; | |
451 | } | |
452 | ||
453 | case 10: | |
454 | fprintf_filtered (stream, TYPE_UNSIGNED (type) ? "%llu" : "%lld", val); | |
455 | return; | |
456 | ||
457 | case 8: | |
458 | if (TYPE_LENGTH (type) <= sizeof lv) | |
459 | fprintf_filtered (stream, "%#o", lv); | |
460 | else | |
461 | fprintf_filtered (stream, "%#llo", val); | |
462 | return; | |
463 | ||
464 | case 16: | |
465 | if (TYPE_LENGTH (type) <= sizeof lv) | |
466 | fprintf_filtered (stream, "%#x", lv); | |
467 | else | |
468 | fprintf_filtered (stream, "%#llx", val); | |
469 | return; | |
470 | } | |
471 | } | |
472 | ||
473 | /* Change the default output radix to 10 or 16, or set it to 0 (heuristic). | |
474 | This command is mostly obsolete now that the print command allows | |
475 | formats to apply to aggregates, but is still handy occasionally. */ | |
476 | ||
477 | static void | |
478 | set_base_command (arg) | |
479 | char *arg; | |
480 | { | |
481 | int new_radix; | |
482 | ||
483 | if (!arg) | |
484 | output_radix = 0; | |
485 | else | |
486 | { | |
487 | new_radix = atoi (arg); | |
488 | if (new_radix != 10 && new_radix != 16 && new_radix != 8) | |
489 | error ("base must be 8, 10 or 16, or null"); | |
490 | else output_radix = new_radix; | |
491 | } | |
492 | } | |
493 | ||
494 | /* Turn pipelining on or off in the inferior. */ | |
495 | ||
496 | static void | |
497 | set_pipelining_command (arg) | |
498 | char *arg; | |
499 | { | |
500 | if (!arg) | |
501 | { | |
502 | sequential = !sequential; | |
503 | printf_filtered ("%s\n", sequential ? "off" : "on"); | |
504 | } | |
505 | else if (!strcmp (arg, "on")) | |
506 | sequential = 0; | |
507 | else if (!strcmp (arg, "off")) | |
508 | sequential = 1; | |
509 | else error ("valid args are `on', to allow instructions to overlap, or\n\ | |
510 | `off', to prevent it and thereby pinpoint exceptions."); | |
511 | } | |
512 | ||
513 | /* Enable, disable, or force parallel execution in the inferior. */ | |
514 | ||
515 | static void | |
516 | set_parallel_command (arg) | |
517 | char *arg; | |
518 | { | |
519 | struct rlimit rl; | |
520 | int prevparallel = parallel; | |
521 | ||
522 | if (!strncmp (arg, "fixed", strlen (arg))) | |
523 | parallel = 2; | |
524 | else if (!strcmp (arg, "on")) | |
525 | parallel = 1; | |
526 | else if (!strcmp (arg, "off")) | |
527 | parallel = 0; | |
528 | else error ("valid args are `on', to allow multiple threads, or\n\ | |
529 | `fixed', to force multiple threads, or\n\ | |
530 | `off', to run with one thread only."); | |
531 | ||
532 | if ((prevparallel == 0) != (parallel == 0) && inferior_pid) | |
533 | printf_filtered ("will take effect at next run.\n"); | |
534 | ||
535 | getrlimit (RLIMIT_CONCUR, &rl); | |
536 | rl.rlim_cur = parallel ? rl.rlim_max : 1; | |
537 | setrlimit (RLIMIT_CONCUR, &rl); | |
538 | ||
539 | if (inferior_pid) | |
540 | set_fixed_scheduling (inferior_pid, parallel == 2); | |
541 | } | |
542 | ||
543 | /* Add a new name for an existing command. */ | |
544 | ||
545 | static void | |
546 | alias_command (arg) | |
547 | char *arg; | |
548 | { | |
549 | static char *aliaserr = "usage is `alias NEW OLD', no args allowed"; | |
550 | char *newname = arg; | |
551 | struct cmd_list_element *new, *old; | |
552 | ||
553 | if (!arg) | |
554 | error_no_arg ("newname oldname"); | |
555 | ||
556 | new = lookup_cmd (&arg, cmdlist, "", -1); | |
557 | if (new && !strncmp (newname, new->name, strlen (new->name))) | |
558 | { | |
559 | newname = new->name; | |
560 | if (!(*arg == '-' | |
561 | || (*arg >= 'a' && *arg <= 'z') | |
562 | || (*arg >= 'A' && *arg <= 'Z') | |
563 | || (*arg >= '0' && *arg <= '9'))) | |
564 | error (aliaserr); | |
565 | } | |
566 | else | |
567 | { | |
568 | arg = newname; | |
569 | while (*arg == '-' | |
570 | || (*arg >= 'a' && *arg <= 'z') | |
571 | || (*arg >= 'A' && *arg <= 'Z') | |
572 | || (*arg >= '0' && *arg <= '9')) | |
573 | arg++; | |
574 | if (*arg != ' ' && *arg != '\t') | |
575 | error (aliaserr); | |
576 | *arg = '\0'; | |
577 | arg++; | |
578 | } | |
579 | ||
580 | old = lookup_cmd (&arg, cmdlist, "", 0); | |
581 | ||
582 | if (*arg != '\0') | |
583 | error (aliaserr); | |
584 | ||
585 | if (new && !strncmp (newname, new->name, strlen (new->name))) | |
586 | { | |
587 | char *tem; | |
588 | if (new->class == (int) class_user || new->class == (int) class_alias) | |
589 | tem = "Redefine command \"%s\"? "; | |
590 | else | |
591 | tem = "Really redefine built-in command \"%s\"? "; | |
592 | if (!query (tem, new->name)) | |
593 | error ("Command \"%s\" not redefined.", new->name); | |
594 | } | |
595 | ||
596 | add_com (newname, class_alias, old->function, old->doc); | |
597 | } | |
598 | ||
599 | ||
600 | ||
601 | /* Print the current thread number, and any threads with signals in the | |
602 | queue. */ | |
603 | ||
604 | thread_info () | |
605 | { | |
606 | struct threadpid *p; | |
607 | ||
608 | if (have_inferior_p ()) | |
609 | { | |
610 | ps.pi_buffer = (char *) &comm_registers; | |
611 | ps.pi_nbytes = sizeof comm_registers; | |
612 | ps.pi_offset = 0; | |
613 | ps.pi_thread = inferior_thread; | |
614 | ioctl (inferior_fd, PIXRDCREGS, &ps); | |
615 | } | |
616 | ||
617 | printf_filtered ("Current thread %d stopped with signal %d.%d (%s).\n", | |
618 | inferior_thread, stop_signal, stop_sigcode, | |
619 | subsig_name (stop_signal, stop_sigcode)); | |
620 | ||
621 | for (p = signal_stack; p->pid; p--) | |
622 | printf_filtered ("Thread %d stopped with signal %d.%d (%s).\n", | |
623 | p->thread, p->signo, p->subsig, | |
624 | subsig_name (p->signo, p->subsig)); | |
625 | ||
626 | if (iscrlbit (comm_registers.crctl.lbits.cc, 64+13)) | |
627 | printf_filtered ("New thread start pc %#x\n", | |
628 | (long) (comm_registers.crreg.pcpsw >> 32)); | |
629 | } | |
630 | ||
631 | /* Return string describing a signal.subcode number */ | |
632 | ||
633 | static char * | |
634 | subsig_name (signo, subcode) | |
635 | int signo, subcode; | |
636 | { | |
637 | static char *subsig4[] = { | |
638 | "error exit", "privileged instruction", "unknown", | |
639 | "unknown", "undefined opcode", | |
640 | 0}; | |
641 | static char *subsig5[] = {0, | |
642 | "breakpoint", "single step", "fork trap", "exec trap", "pfork trap", | |
643 | "join trap", "idle trap", "last thread", "wfork trap", | |
644 | "process breakpoint", "trap instruction", | |
645 | 0}; | |
646 | static char *subsig8[] = {0, | |
647 | "int overflow", "int divide check", "float overflow", | |
648 | "float divide check", "float underflow", "reserved operand", | |
649 | "sqrt error", "exp error", "ln error", "sin error", "cos error", | |
650 | 0}; | |
651 | static char *subsig10[] = {0, | |
652 | "invalid inward ring address", "invalid outward ring call", | |
653 | "invalid inward ring return", "invalid syscall gate", | |
654 | "invalid rtn frame length", "invalid comm reg address", | |
655 | "invalid trap gate", | |
656 | 0}; | |
657 | static char *subsig11[] = {0, | |
658 | "read access denied", "write access denied", "execute access denied", | |
659 | "segment descriptor fault", "page table fault", "data reference fault", | |
660 | "i/o access denied", "levt pte invalid", | |
661 | 0}; | |
662 | ||
663 | static char **subsig_list[] = | |
664 | {0, 0, 0, 0, subsig4, subsig5, 0, 0, subsig8, 0, subsig10, subsig11, 0}; | |
665 | ||
666 | int i; | |
667 | char *p = signo < NSIG ? sys_siglist[signo] : "unknown"; | |
668 | ||
669 | if (signo >= (sizeof subsig_list / sizeof *subsig_list) | |
670 | || !subsig_list[signo]) | |
671 | return p; | |
672 | for (i = 1; subsig_list[signo][i]; i++) | |
673 | if (i == subcode) | |
674 | return subsig_list[signo][subcode]; | |
675 | return p; | |
676 | } | |
677 | ||
678 | ||
679 | /* Print a compact display of thread status, essentially x/i $pc | |
680 | for all active threads. */ | |
681 | ||
682 | static void | |
683 | threadstat () | |
684 | { | |
685 | int t; | |
686 | ||
687 | for (t = 0; t < n_threads; t++) | |
688 | if (thread_state[t] == PI_TALIVE) | |
689 | { | |
690 | printf_filtered ("%d%c %08x%c %d.%d ", t, | |
691 | (t == inferior_thread ? '*' : ' '), thread_pc[t], | |
692 | (thread_is_in_kernel[t] ? '#' : ' '), | |
693 | thread_signal[t], thread_sigcode[t]); | |
694 | print_insn (thread_pc[t], stdout); | |
695 | printf_filtered ("\n"); | |
696 | } | |
697 | } | |
698 | ||
699 | /* Change the current thread to ARG. */ | |
700 | ||
701 | set_thread_command (arg) | |
702 | char *arg; | |
703 | { | |
704 | int thread; | |
705 | ||
706 | if (!arg) | |
707 | { | |
708 | threadstat (); | |
709 | return; | |
710 | } | |
711 | ||
712 | thread = parse_and_eval_address (arg); | |
713 | ||
714 | if (thread < 0 || thread > n_threads || thread_state[thread] != PI_TALIVE) | |
715 | error ("no such thread."); | |
716 | ||
717 | select_thread (thread); | |
718 | ||
719 | stop_pc = read_pc (); | |
720 | flush_cached_frames (); | |
721 | set_current_frame (create_new_frame (read_register (FP_REGNUM), | |
722 | read_pc ())); | |
723 | select_frame (get_current_frame (), 0); | |
cadbb07a | 724 | print_stack_frame (selected_frame, selected_frame_level, -1); |
dd3b648e RP |
725 | } |
726 | ||
727 | /* Here on CONT command; gdb's dispatch address is changed to come here. | |
728 | Set global variable ALL_CONTINUE to tell resume() that it should | |
729 | start up all threads, and that a thread switch will not blow gdb's | |
730 | mind. */ | |
731 | ||
732 | static void | |
733 | convex_cont_command (proc_count_exp, from_tty) | |
734 | char *proc_count_exp; | |
735 | int from_tty; | |
736 | { | |
737 | all_continue = 1; | |
738 | cont_command (proc_count_exp, from_tty); | |
739 | } | |
740 | ||
741 | /* Here on 1CONT command. Resume only the current thread. */ | |
742 | ||
743 | one_cont_command (proc_count_exp, from_tty) | |
744 | char *proc_count_exp; | |
745 | int from_tty; | |
746 | { | |
747 | cont_command (proc_count_exp, from_tty); | |
748 | } | |
749 | ||
750 | /* Print the contents and lock bits of all communication registers, | |
751 | or just register ARG if ARG is a communication register, | |
752 | or the 3-word resource structure in memory at address ARG. */ | |
753 | ||
754 | comm_registers_info (arg) | |
755 | char *arg; | |
756 | { | |
757 | int i, regnum; | |
758 | ||
759 | if (arg) | |
760 | { | |
e1a623e7 | 761 | if (sscanf (arg, "$c%d", ®num) == 1) { |
dd3b648e | 762 | ; |
e1a623e7 | 763 | } else if (sscanf (arg, "$C%d", ®num) == 1) { |
dd3b648e | 764 | ; |
e1a623e7 | 765 | } else { |
dd3b648e | 766 | regnum = parse_and_eval_address (arg); |
e1a623e7 JG |
767 | if (regnum > 0) |
768 | regnum &= ~0x8000; | |
769 | } | |
dd3b648e RP |
770 | |
771 | if (regnum >= 64) | |
772 | error ("%s: invalid register name.", arg); | |
773 | ||
774 | /* if we got a (user) address, examine the resource struct there */ | |
775 | ||
776 | if (regnum < 0) | |
777 | { | |
778 | static int buf[3]; | |
779 | read_memory (regnum, buf, sizeof buf); | |
780 | printf_filtered ("%08x %08x%08x%s\n", regnum, buf[1], buf[2], | |
781 | buf[0] & 0xff ? " locked" : ""); | |
782 | return; | |
783 | } | |
784 | } | |
785 | ||
786 | ps.pi_buffer = (char *) &comm_registers; | |
787 | ps.pi_nbytes = sizeof comm_registers; | |
788 | ps.pi_offset = 0; | |
789 | ps.pi_thread = inferior_thread; | |
790 | ioctl (inferior_fd, PIXRDCREGS, &ps); | |
791 | ||
792 | for (i = 0; i < 64; i++) | |
793 | if (!arg || i == regnum) | |
794 | printf_filtered ("%2d 0x8%03x %016llx%s\n", i, i, | |
795 | comm_registers.crreg.r4[i], | |
796 | (iscrlbit (comm_registers.crctl.lbits.cc, i) | |
797 | ? " locked" : "")); | |
798 | } | |
799 | ||
800 | /* Print the psw */ | |
801 | ||
802 | static void | |
803 | psw_info (arg) | |
804 | char *arg; | |
805 | { | |
806 | struct pswbit | |
807 | { | |
808 | int bit; | |
809 | int pos; | |
810 | char *text; | |
811 | }; | |
812 | ||
813 | static struct pswbit pswbit[] = | |
814 | { | |
815 | { 0x80000000, -1, "A carry" }, | |
816 | { 0x40000000, -1, "A integer overflow" }, | |
817 | { 0x20000000, -1, "A zero divide" }, | |
818 | { 0x10000000, -1, "Integer overflow enable" }, | |
819 | { 0x08000000, -1, "Trace" }, | |
820 | { 0x06000000, 25, "Frame length" }, | |
821 | { 0x01000000, -1, "Sequential" }, | |
822 | { 0x00800000, -1, "S carry" }, | |
823 | { 0x00400000, -1, "S integer overflow" }, | |
824 | { 0x00200000, -1, "S zero divide" }, | |
825 | { 0x00100000, -1, "Zero divide enable" }, | |
826 | { 0x00080000, -1, "Floating underflow" }, | |
827 | { 0x00040000, -1, "Floating overflow" }, | |
828 | { 0x00020000, -1, "Floating reserved operand" }, | |
829 | { 0x00010000, -1, "Floating zero divide" }, | |
830 | { 0x00008000, -1, "Floating error enable" }, | |
831 | { 0x00004000, -1, "Floating underflow enable" }, | |
832 | { 0x00002000, -1, "IEEE" }, | |
833 | { 0x00001000, -1, "Sequential stores" }, | |
834 | { 0x00000800, -1, "Intrinsic error" }, | |
835 | { 0x00000400, -1, "Intrinsic error enable" }, | |
836 | { 0x00000200, -1, "Trace thread creates" }, | |
837 | { 0x00000100, -1, "Thread init trap" }, | |
838 | { 0x000000e0, 5, "Reserved" }, | |
839 | { 0x0000001f, 0, "Intrinsic error code" }, | |
840 | {0, 0, 0}, | |
841 | }; | |
842 | ||
843 | long psw; | |
844 | struct pswbit *p; | |
845 | ||
846 | if (arg) | |
847 | psw = parse_and_eval_address (arg); | |
848 | else | |
849 | psw = read_register (PS_REGNUM); | |
850 | ||
851 | for (p = pswbit; p->bit; p++) | |
852 | { | |
853 | if (p->pos < 0) | |
854 | printf_filtered ("%08x %s %s\n", p->bit, | |
855 | (psw & p->bit) ? "yes" : "no ", p->text); | |
856 | else | |
857 | printf_filtered ("%08x %3d %s\n", p->bit, | |
858 | (psw & p->bit) >> p->pos, p->text); | |
859 | } | |
860 | } | |
861 | \f | |
862 | _initialize_convex_dep () | |
863 | { | |
864 | add_com ("alias", class_support, alias_command, | |
865 | "Add a new name for an existing command."); | |
866 | ||
867 | add_cmd ("base", class_vars, set_base_command, | |
868 | "Change the integer output radix to 8, 10 or 16\n\ | |
869 | or use just `set base' with no args to return to the ad-hoc default,\n\ | |
870 | which is 16 for integers that look like addresses, 10 otherwise.", | |
871 | &setlist); | |
872 | ||
873 | add_cmd ("pipeline", class_run, set_pipelining_command, | |
874 | "Enable or disable overlapped execution of instructions.\n\ | |
875 | With `set pipe off', exceptions are reported with\n\ | |
876 | $pc pointing at the instruction after the faulting one.\n\ | |
877 | The default is `set pipe on', which runs faster.", | |
878 | &setlist); | |
879 | ||
880 | add_cmd ("parallel", class_run, set_parallel_command, | |
881 | "Enable or disable multi-threaded execution of parallel code.\n\ | |
882 | `set parallel off' means run the program on a single CPU.\n\ | |
883 | `set parallel fixed' means run the program with all CPUs assigned to it.\n\ | |
884 | `set parallel on' means run the program on any CPUs that are available.", | |
885 | &setlist); | |
886 | ||
887 | add_com ("1cont", class_run, one_cont_command, | |
888 | "Continue the program, activating only the current thread.\n\ | |
889 | Args are the same as the `cont' command."); | |
890 | ||
891 | add_com ("thread", class_run, set_thread_command, | |
892 | "Change the current thread, the one under scrutiny and control.\n\ | |
893 | With no arg, show the active threads, the current one marked with *."); | |
894 | ||
895 | add_info ("threads", thread_info, | |
896 | "List status of active threads."); | |
897 | ||
898 | add_info ("comm-registers", comm_registers_info, | |
899 | "List communication registers and their contents.\n\ | |
900 | A communication register name as argument means describe only that register.\n\ | |
901 | An address as argument means describe the resource structure at that address.\n\ | |
902 | `Locked' means that the register has been sent to but not yet received from."); | |
903 | ||
904 | add_info ("psw", psw_info, | |
905 | "Display $ps, the processor status word, bit by bit.\n\ | |
906 | An argument means display that value's interpretation as a psw."); | |
907 | ||
908 | add_cmd ("convex", no_class, 0, "Convex-specific commands.\n\ | |
909 | 32-bit registers $pc $ps $sp $ap $fp $a1-5 $s0-7 $v0-7 $vl $vs $vm $c0-63\n\ | |
910 | 64-bit registers $S0-7 $V0-7 $C0-63\n\ | |
911 | \n\ | |
912 | info threads display info on stopped threads waiting to signal\n\ | |
913 | thread display list of active threads\n\ | |
914 | thread N select thread N (its registers, stack, memory, etc.)\n\ | |
915 | step, next, etc step selected thread only\n\ | |
916 | 1cont continue selected thread only\n\ | |
917 | cont continue all threads\n\ | |
918 | info comm-registers display contents of comm register(s) or a resource struct\n\ | |
919 | info psw display processor status word $ps\n\ | |
920 | set base N change integer radix used by `print' without a format\n\ | |
921 | set pipeline off exceptions are precise, $pc points after the faulting insn\n\ | |
922 | set pipeline on normal mode, $pc is somewhere ahead of faulting insn\n\ | |
923 | set parallel off program runs on a single CPU\n\ | |
924 | set parallel fixed all CPUs are assigned to the program\n\ | |
925 | set parallel on normal mode, parallel execution on random available CPUs\n\ | |
926 | ", | |
927 | &cmdlist); | |
928 | ||
929 | } |