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3aa6856a | 1 | /* Target-struct-independent code to start (run) and stop an inferior process. |
87273c71 | 2 | Copyright 1986, 1987, 1988, 1989, 1991, 1992, 1993, 1994, 1995, 1996 |
101b7f9c | 3 | Free Software Foundation, Inc. |
bd5635a1 RP |
4 | |
5 | This file is part of GDB. | |
6 | ||
3b271cf4 | 7 | This program is free software; you can redistribute it and/or modify |
bd5635a1 | 8 | it under the terms of the GNU General Public License as published by |
3b271cf4 JG |
9 | the Free Software Foundation; either version 2 of the License, or |
10 | (at your option) any later version. | |
bd5635a1 | 11 | |
3b271cf4 | 12 | This program is distributed in the hope that it will be useful, |
bd5635a1 RP |
13 | but WITHOUT ANY WARRANTY; without even the implied warranty of |
14 | MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the | |
15 | GNU General Public License for more details. | |
16 | ||
17 | You should have received a copy of the GNU General Public License | |
3b271cf4 | 18 | along with this program; if not, write to the Free Software |
3f687c78 | 19 | Foundation, Inc., 59 Temple Place - Suite 330, Boston, MA 02111-1307, USA. */ |
bd5635a1 | 20 | |
bd5635a1 | 21 | #include "defs.h" |
2b576293 | 22 | #include "gdb_string.h" |
a6b98cb9 | 23 | #include <ctype.h> |
bd5635a1 RP |
24 | #include "symtab.h" |
25 | #include "frame.h" | |
26 | #include "inferior.h" | |
27 | #include "breakpoint.h" | |
28 | #include "wait.h" | |
29 | #include "gdbcore.h" | |
3950a34e | 30 | #include "gdbcmd.h" |
bd5635a1 | 31 | #include "target.h" |
100f92e2 | 32 | #include "thread.h" |
1c95d7ab | 33 | #include "annotate.h" |
bd5635a1 RP |
34 | |
35 | #include <signal.h> | |
36 | ||
37 | /* unistd.h is needed to #define X_OK */ | |
38 | #ifdef USG | |
39 | #include <unistd.h> | |
40 | #else | |
41 | #include <sys/file.h> | |
42 | #endif | |
43 | ||
30875e1c | 44 | /* Prototypes for local functions */ |
bd5635a1 | 45 | |
4cc1b3f7 | 46 | static void signals_info PARAMS ((char *, int)); |
619fd145 | 47 | |
4cc1b3f7 | 48 | static void handle_command PARAMS ((char *, int)); |
30875e1c | 49 | |
67ac9759 | 50 | static void sig_print_info PARAMS ((enum target_signal)); |
30875e1c | 51 | |
4cc1b3f7 | 52 | static void sig_print_header PARAMS ((void)); |
30875e1c | 53 | |
4cc1b3f7 | 54 | static void resume_cleanups PARAMS ((int)); |
30875e1c | 55 | |
4cc1b3f7 | 56 | static int hook_stop_stub PARAMS ((char *)); |
3950a34e | 57 | |
30875e1c SG |
58 | /* GET_LONGJMP_TARGET returns the PC at which longjmp() will resume the |
59 | program. It needs to examine the jmp_buf argument and extract the PC | |
60 | from it. The return value is non-zero on success, zero otherwise. */ | |
4cc1b3f7 | 61 | |
30875e1c SG |
62 | #ifndef GET_LONGJMP_TARGET |
63 | #define GET_LONGJMP_TARGET(PC_ADDR) 0 | |
64 | #endif | |
65 | ||
d747e0af MT |
66 | |
67 | /* Some machines have trampoline code that sits between function callers | |
68 | and the actual functions themselves. If this machine doesn't have | |
69 | such things, disable their processing. */ | |
4cc1b3f7 | 70 | |
d747e0af MT |
71 | #ifndef SKIP_TRAMPOLINE_CODE |
72 | #define SKIP_TRAMPOLINE_CODE(pc) 0 | |
73 | #endif | |
74 | ||
87273c71 JL |
75 | /* Dynamic function trampolines are similar to solib trampolines in that they |
76 | are between the caller and the callee. The difference is that when you | |
77 | enter a dynamic trampoline, you can't determine the callee's address. Some | |
78 | (usually complex) code needs to run in the dynamic trampoline to figure out | |
79 | the callee's address. This macro is usually called twice. First, when we | |
80 | enter the trampoline (looks like a normal function call at that point). It | |
81 | should return the PC of a point within the trampoline where the callee's | |
82 | address is known. Second, when we hit the breakpoint, this routine returns | |
83 | the callee's address. At that point, things proceed as per a step resume | |
84 | breakpoint. */ | |
85 | ||
86 | #ifndef DYNAMIC_TRAMPOLINE_NEXTPC | |
87 | #define DYNAMIC_TRAMPOLINE_NEXTPC(pc) 0 | |
88 | #endif | |
89 | ||
1eeba686 | 90 | /* For SVR4 shared libraries, each call goes through a small piece of |
4cc1b3f7 | 91 | trampoline code in the ".plt" section. IN_SOLIB_CALL_TRAMPOLINE evaluates |
1eeba686 | 92 | to nonzero if we are current stopped in one of these. */ |
4cc1b3f7 JK |
93 | |
94 | #ifndef IN_SOLIB_CALL_TRAMPOLINE | |
95 | #define IN_SOLIB_CALL_TRAMPOLINE(pc,name) 0 | |
96 | #endif | |
97 | ||
98 | /* In some shared library schemes, the return path from a shared library | |
99 | call may need to go through a trampoline too. */ | |
100 | ||
101 | #ifndef IN_SOLIB_RETURN_TRAMPOLINE | |
102 | #define IN_SOLIB_RETURN_TRAMPOLINE(pc,name) 0 | |
1eeba686 | 103 | #endif |
d747e0af | 104 | |
9f739abd SG |
105 | /* On some systems, the PC may be left pointing at an instruction that won't |
106 | actually be executed. This is usually indicated by a bit in the PSW. If | |
107 | we find ourselves in such a state, then we step the target beyond the | |
108 | nullified instruction before returning control to the user so as to avoid | |
109 | confusion. */ | |
110 | ||
111 | #ifndef INSTRUCTION_NULLIFIED | |
112 | #define INSTRUCTION_NULLIFIED 0 | |
113 | #endif | |
114 | ||
bd5635a1 RP |
115 | /* Tables of how to react to signals; the user sets them. */ |
116 | ||
072b552a JG |
117 | static unsigned char *signal_stop; |
118 | static unsigned char *signal_print; | |
119 | static unsigned char *signal_program; | |
120 | ||
121 | #define SET_SIGS(nsigs,sigs,flags) \ | |
122 | do { \ | |
123 | int signum = (nsigs); \ | |
124 | while (signum-- > 0) \ | |
125 | if ((sigs)[signum]) \ | |
126 | (flags)[signum] = 1; \ | |
127 | } while (0) | |
128 | ||
129 | #define UNSET_SIGS(nsigs,sigs,flags) \ | |
130 | do { \ | |
131 | int signum = (nsigs); \ | |
132 | while (signum-- > 0) \ | |
133 | if ((sigs)[signum]) \ | |
134 | (flags)[signum] = 0; \ | |
135 | } while (0) | |
bd5635a1 | 136 | |
3950a34e RP |
137 | |
138 | /* Command list pointer for the "stop" placeholder. */ | |
139 | ||
140 | static struct cmd_list_element *stop_command; | |
141 | ||
bd5635a1 | 142 | /* Nonzero if breakpoints are now inserted in the inferior. */ |
bd5635a1 | 143 | |
3950a34e | 144 | static int breakpoints_inserted; |
bd5635a1 RP |
145 | |
146 | /* Function inferior was in as of last step command. */ | |
147 | ||
148 | static struct symbol *step_start_function; | |
149 | ||
bd5635a1 RP |
150 | /* Nonzero if we are expecting a trace trap and should proceed from it. */ |
151 | ||
152 | static int trap_expected; | |
153 | ||
87273c71 JL |
154 | /* Nonzero if we want to give control to the user when we're notified |
155 | of shared library events by the dynamic linker. */ | |
156 | static int stop_on_solib_events; | |
157 | ||
c66ed884 | 158 | #ifdef HP_OS_BUG |
bd5635a1 RP |
159 | /* Nonzero if the next time we try to continue the inferior, it will |
160 | step one instruction and generate a spurious trace trap. | |
161 | This is used to compensate for a bug in HP-UX. */ | |
162 | ||
163 | static int trap_expected_after_continue; | |
c66ed884 | 164 | #endif |
bd5635a1 RP |
165 | |
166 | /* Nonzero means expecting a trace trap | |
167 | and should stop the inferior and return silently when it happens. */ | |
168 | ||
169 | int stop_after_trap; | |
170 | ||
171 | /* Nonzero means expecting a trap and caller will handle it themselves. | |
172 | It is used after attach, due to attaching to a process; | |
173 | when running in the shell before the child program has been exec'd; | |
174 | and when running some kinds of remote stuff (FIXME?). */ | |
175 | ||
176 | int stop_soon_quietly; | |
177 | ||
bd5635a1 RP |
178 | /* Nonzero if proceed is being used for a "finish" command or a similar |
179 | situation when stop_registers should be saved. */ | |
180 | ||
181 | int proceed_to_finish; | |
182 | ||
183 | /* Save register contents here when about to pop a stack dummy frame, | |
184 | if-and-only-if proceed_to_finish is set. | |
185 | Thus this contains the return value from the called function (assuming | |
186 | values are returned in a register). */ | |
187 | ||
188 | char stop_registers[REGISTER_BYTES]; | |
189 | ||
190 | /* Nonzero if program stopped due to error trying to insert breakpoints. */ | |
191 | ||
192 | static int breakpoints_failed; | |
193 | ||
194 | /* Nonzero after stop if current stack frame should be printed. */ | |
195 | ||
196 | static int stop_print_frame; | |
197 | ||
198 | #ifdef NO_SINGLE_STEP | |
199 | extern int one_stepped; /* From machine dependent code */ | |
200 | extern void single_step (); /* Same. */ | |
201 | #endif /* NO_SINGLE_STEP */ | |
202 | ||
a71d17b1 JK |
203 | \f |
204 | /* Things to clean up if we QUIT out of resume (). */ | |
e1ce8aa5 | 205 | /* ARGSUSED */ |
a71d17b1 JK |
206 | static void |
207 | resume_cleanups (arg) | |
208 | int arg; | |
209 | { | |
210 | normal_stop (); | |
211 | } | |
212 | ||
213 | /* Resume the inferior, but allow a QUIT. This is useful if the user | |
214 | wants to interrupt some lengthy single-stepping operation | |
215 | (for child processes, the SIGINT goes to the inferior, and so | |
216 | we get a SIGINT random_signal, but for remote debugging and perhaps | |
217 | other targets, that's not true). | |
218 | ||
219 | STEP nonzero if we should step (zero to continue instead). | |
220 | SIG is the signal to give the inferior (zero for none). */ | |
310cc570 | 221 | void |
a71d17b1 JK |
222 | resume (step, sig) |
223 | int step; | |
67ac9759 | 224 | enum target_signal sig; |
a71d17b1 JK |
225 | { |
226 | struct cleanup *old_cleanups = make_cleanup (resume_cleanups, 0); | |
227 | QUIT; | |
d11c44f1 | 228 | |
cef4c2e7 PS |
229 | #ifdef CANNOT_STEP_BREAKPOINT |
230 | /* Most targets can step a breakpoint instruction, thus executing it | |
231 | normally. But if this one cannot, just continue and we will hit | |
232 | it anyway. */ | |
233 | if (step && breakpoints_inserted && breakpoint_here_p (read_pc ())) | |
234 | step = 0; | |
235 | #endif | |
236 | ||
d11c44f1 JG |
237 | #ifdef NO_SINGLE_STEP |
238 | if (step) { | |
818de002 | 239 | single_step(sig); /* Do it the hard way, w/temp breakpoints */ |
d11c44f1 JG |
240 | step = 0; /* ...and don't ask hardware to do it. */ |
241 | } | |
242 | #endif | |
243 | ||
bdbd5f50 JG |
244 | /* Handle any optimized stores to the inferior NOW... */ |
245 | #ifdef DO_DEFERRED_STORES | |
246 | DO_DEFERRED_STORES; | |
247 | #endif | |
248 | ||
2f1c7c3f JK |
249 | /* Install inferior's terminal modes. */ |
250 | target_terminal_inferior (); | |
251 | ||
de43d7d0 | 252 | target_resume (-1, step, sig); |
a71d17b1 JK |
253 | discard_cleanups (old_cleanups); |
254 | } | |
255 | ||
bd5635a1 RP |
256 | \f |
257 | /* Clear out all variables saying what to do when inferior is continued. | |
258 | First do this, then set the ones you want, then call `proceed'. */ | |
259 | ||
260 | void | |
261 | clear_proceed_status () | |
262 | { | |
263 | trap_expected = 0; | |
264 | step_range_start = 0; | |
265 | step_range_end = 0; | |
266 | step_frame_address = 0; | |
267 | step_over_calls = -1; | |
bd5635a1 RP |
268 | stop_after_trap = 0; |
269 | stop_soon_quietly = 0; | |
270 | proceed_to_finish = 0; | |
271 | breakpoint_proceeded = 1; /* We're about to proceed... */ | |
272 | ||
273 | /* Discard any remaining commands or status from previous stop. */ | |
274 | bpstat_clear (&stop_bpstat); | |
275 | } | |
276 | ||
277 | /* Basic routine for continuing the program in various fashions. | |
278 | ||
279 | ADDR is the address to resume at, or -1 for resume where stopped. | |
280 | SIGGNAL is the signal to give it, or 0 for none, | |
281 | or -1 for act according to how it stopped. | |
282 | STEP is nonzero if should trap after one instruction. | |
283 | -1 means return after that and print nothing. | |
284 | You should probably set various step_... variables | |
285 | before calling here, if you are stepping. | |
286 | ||
287 | You should call clear_proceed_status before calling proceed. */ | |
288 | ||
289 | void | |
290 | proceed (addr, siggnal, step) | |
291 | CORE_ADDR addr; | |
67ac9759 | 292 | enum target_signal siggnal; |
bd5635a1 RP |
293 | int step; |
294 | { | |
295 | int oneproc = 0; | |
296 | ||
297 | if (step > 0) | |
298 | step_start_function = find_pc_function (read_pc ()); | |
299 | if (step < 0) | |
300 | stop_after_trap = 1; | |
301 | ||
bdbd5f50 | 302 | if (addr == (CORE_ADDR)-1) |
bd5635a1 RP |
303 | { |
304 | /* If there is a breakpoint at the address we will resume at, | |
305 | step one instruction before inserting breakpoints | |
306 | so that we do not stop right away. */ | |
307 | ||
37c99ddb | 308 | if (breakpoint_here_p (read_pc ())) |
bd5635a1 | 309 | oneproc = 1; |
b5aff268 JK |
310 | |
311 | #ifdef STEP_SKIPS_DELAY | |
312 | /* Check breakpoint_here_p first, because breakpoint_here_p is fast | |
313 | (it just checks internal GDB data structures) and STEP_SKIPS_DELAY | |
314 | is slow (it needs to read memory from the target). */ | |
315 | if (breakpoint_here_p (read_pc () + 4) | |
316 | && STEP_SKIPS_DELAY (read_pc ())) | |
317 | oneproc = 1; | |
318 | #endif /* STEP_SKIPS_DELAY */ | |
bd5635a1 RP |
319 | } |
320 | else | |
101b7f9c | 321 | write_pc (addr); |
bd5635a1 | 322 | |
320f93f7 SG |
323 | #ifdef PREPARE_TO_PROCEED |
324 | /* In a multi-threaded task we may select another thread and then continue. | |
325 | ||
326 | In this case the thread that stopped at a breakpoint will immediately | |
327 | cause another stop, if it is not stepped over first. On the other hand, | |
328 | if (ADDR != -1) we only want to single step over the breakpoint if we did | |
329 | switch to another thread. | |
330 | ||
331 | If we are single stepping, don't do any of the above. | |
332 | (Note that in the current implementation single stepping another | |
333 | thread after a breakpoint and then continuing will cause the original | |
334 | breakpoint to be hit again, but you can always continue, so it's not | |
335 | a big deal.) */ | |
336 | ||
479f0f18 | 337 | if (! step && PREPARE_TO_PROCEED (1) && breakpoint_here_p (read_pc ())) |
320f93f7 SG |
338 | oneproc = 1; |
339 | #endif /* PREPARE_TO_PROCEED */ | |
340 | ||
c66ed884 | 341 | #ifdef HP_OS_BUG |
bd5635a1 RP |
342 | if (trap_expected_after_continue) |
343 | { | |
344 | /* If (step == 0), a trap will be automatically generated after | |
345 | the first instruction is executed. Force step one | |
346 | instruction to clear this condition. This should not occur | |
347 | if step is nonzero, but it is harmless in that case. */ | |
348 | oneproc = 1; | |
349 | trap_expected_after_continue = 0; | |
350 | } | |
c66ed884 | 351 | #endif /* HP_OS_BUG */ |
bd5635a1 RP |
352 | |
353 | if (oneproc) | |
354 | /* We will get a trace trap after one instruction. | |
355 | Continue it automatically and insert breakpoints then. */ | |
356 | trap_expected = 1; | |
357 | else | |
358 | { | |
359 | int temp = insert_breakpoints (); | |
360 | if (temp) | |
361 | { | |
362 | print_sys_errmsg ("ptrace", temp); | |
363 | error ("Cannot insert breakpoints.\n\ | |
364 | The same program may be running in another process."); | |
365 | } | |
366 | breakpoints_inserted = 1; | |
367 | } | |
368 | ||
fcbc95a7 | 369 | if (siggnal != TARGET_SIGNAL_DEFAULT) |
bd5635a1 RP |
370 | stop_signal = siggnal; |
371 | /* If this signal should not be seen by program, | |
372 | give it zero. Used for debugging signals. */ | |
67ac9759 | 373 | else if (!signal_program[stop_signal]) |
fcbc95a7 | 374 | stop_signal = TARGET_SIGNAL_0; |
bd5635a1 | 375 | |
1c95d7ab JK |
376 | annotate_starting (); |
377 | ||
c66ed884 SG |
378 | /* Make sure that output from GDB appears before output from the |
379 | inferior. */ | |
380 | gdb_flush (gdb_stdout); | |
381 | ||
bd5635a1 | 382 | /* Resume inferior. */ |
a71d17b1 | 383 | resume (oneproc || step || bpstat_should_step (), stop_signal); |
bd5635a1 RP |
384 | |
385 | /* Wait for it to stop (if not standalone) | |
386 | and in any case decode why it stopped, and act accordingly. */ | |
387 | ||
388 | wait_for_inferior (); | |
389 | normal_stop (); | |
390 | } | |
391 | ||
bd5635a1 RP |
392 | /* Record the pc and sp of the program the last time it stopped. |
393 | These are just used internally by wait_for_inferior, but need | |
394 | to be preserved over calls to it and cleared when the inferior | |
395 | is started. */ | |
396 | static CORE_ADDR prev_pc; | |
bd5635a1 RP |
397 | static CORE_ADDR prev_func_start; |
398 | static char *prev_func_name; | |
399 | ||
a71d17b1 | 400 | \f |
bd5635a1 RP |
401 | /* Start remote-debugging of a machine over a serial link. */ |
402 | ||
403 | void | |
404 | start_remote () | |
405 | { | |
4cc1b3f7 | 406 | init_thread_list (); |
bd5635a1 RP |
407 | init_wait_for_inferior (); |
408 | clear_proceed_status (); | |
409 | stop_soon_quietly = 1; | |
410 | trap_expected = 0; | |
98885d76 JK |
411 | wait_for_inferior (); |
412 | normal_stop (); | |
bd5635a1 RP |
413 | } |
414 | ||
415 | /* Initialize static vars when a new inferior begins. */ | |
416 | ||
417 | void | |
418 | init_wait_for_inferior () | |
419 | { | |
420 | /* These are meaningless until the first time through wait_for_inferior. */ | |
421 | prev_pc = 0; | |
bd5635a1 RP |
422 | prev_func_start = 0; |
423 | prev_func_name = NULL; | |
424 | ||
c66ed884 | 425 | #ifdef HP_OS_BUG |
bd5635a1 | 426 | trap_expected_after_continue = 0; |
c66ed884 | 427 | #endif |
bd5635a1 | 428 | breakpoints_inserted = 0; |
cf3e377e | 429 | breakpoint_init_inferior (); |
67ac9759 JK |
430 | |
431 | /* Don't confuse first call to proceed(). */ | |
432 | stop_signal = TARGET_SIGNAL_0; | |
bd5635a1 RP |
433 | } |
434 | ||
fe675038 JK |
435 | static void |
436 | delete_breakpoint_current_contents (arg) | |
437 | PTR arg; | |
438 | { | |
439 | struct breakpoint **breakpointp = (struct breakpoint **)arg; | |
440 | if (*breakpointp != NULL) | |
441 | delete_breakpoint (*breakpointp); | |
442 | } | |
bd5635a1 RP |
443 | \f |
444 | /* Wait for control to return from inferior to debugger. | |
445 | If inferior gets a signal, we may decide to start it up again | |
446 | instead of returning. That is why there is a loop in this function. | |
447 | When this function actually returns it means the inferior | |
448 | should be left stopped and GDB should read more commands. */ | |
449 | ||
450 | void | |
451 | wait_for_inferior () | |
452 | { | |
fe675038 | 453 | struct cleanup *old_cleanups; |
67ac9759 | 454 | struct target_waitstatus w; |
bd5635a1 RP |
455 | int another_trap; |
456 | int random_signal; | |
bd5635a1 | 457 | CORE_ADDR stop_func_start; |
67ac9759 | 458 | CORE_ADDR stop_func_end; |
bd5635a1 | 459 | char *stop_func_name; |
37c99ddb | 460 | CORE_ADDR prologue_pc = 0, tmp; |
bd5635a1 RP |
461 | struct symtab_and_line sal; |
462 | int remove_breakpoints_on_following_step = 0; | |
b3b39c0c | 463 | int current_line; |
b2f03c30 | 464 | struct symtab *current_symtab; |
30875e1c | 465 | int handling_longjmp = 0; /* FIXME */ |
fe675038 | 466 | struct breakpoint *step_resume_breakpoint = NULL; |
bcc37718 | 467 | struct breakpoint *through_sigtramp_breakpoint = NULL; |
37c99ddb | 468 | int pid; |
479f0f18 | 469 | int update_step_sp = 0; |
bd5635a1 | 470 | |
fe675038 JK |
471 | old_cleanups = make_cleanup (delete_breakpoint_current_contents, |
472 | &step_resume_breakpoint); | |
bcc37718 JK |
473 | make_cleanup (delete_breakpoint_current_contents, |
474 | &through_sigtramp_breakpoint); | |
b3b39c0c SG |
475 | sal = find_pc_line(prev_pc, 0); |
476 | current_line = sal.line; | |
b2f03c30 | 477 | current_symtab = sal.symtab; |
b3b39c0c | 478 | |
cb6b0202 | 479 | /* Are we stepping? */ |
bcc37718 JK |
480 | #define CURRENTLY_STEPPING() \ |
481 | ((through_sigtramp_breakpoint == NULL \ | |
482 | && !handling_longjmp \ | |
483 | && ((step_range_end && step_resume_breakpoint == NULL) \ | |
484 | || trap_expected)) \ | |
485 | || bpstat_should_step ()) | |
cb6b0202 | 486 | |
bd5635a1 RP |
487 | while (1) |
488 | { | |
320f93f7 SG |
489 | /* We have to invalidate the registers BEFORE calling target_wait because |
490 | they can be loaded from the target while in target_wait. This makes | |
491 | remote debugging a bit more efficient for those targets that provide | |
492 | critical registers as part of their normal status mechanism. */ | |
493 | ||
494 | registers_changed (); | |
495 | ||
479f0f18 SG |
496 | if (target_wait_hook) |
497 | pid = target_wait_hook (-1, &w); | |
498 | else | |
499 | pid = target_wait (-1, &w); | |
1c95d7ab | 500 | |
2b576293 | 501 | #ifdef HAVE_NONSTEPPABLE_WATCHPOINT |
48f4903f | 502 | have_waited: |
2b576293 | 503 | #endif |
48f4903f | 504 | |
bd5635a1 | 505 | flush_cached_frames (); |
320f93f7 SG |
506 | |
507 | /* If it's a new process, add it to the thread database */ | |
508 | ||
509 | if (pid != inferior_pid | |
510 | && !in_thread_list (pid)) | |
511 | { | |
512 | fprintf_unfiltered (gdb_stderr, "[New %s]\n", target_pid_to_str (pid)); | |
513 | add_thread (pid); | |
479f0f18 SG |
514 | |
515 | /* We may want to consider not doing a resume here in order to give | |
516 | the user a chance to play with the new thread. It might be good | |
517 | to make that a user-settable option. */ | |
518 | ||
519 | /* At this point, all threads are stopped (happens automatically in | |
520 | either the OS or the native code). Therefore we need to continue | |
521 | all threads in order to make progress. */ | |
522 | ||
523 | target_resume (-1, 0, TARGET_SIGNAL_0); | |
524 | continue; | |
320f93f7 | 525 | } |
bd5635a1 | 526 | |
fcbc95a7 JK |
527 | switch (w.kind) |
528 | { | |
529 | case TARGET_WAITKIND_LOADED: | |
530 | /* Ignore it gracefully. */ | |
531 | if (breakpoints_inserted) | |
532 | { | |
533 | mark_breakpoints_out (); | |
534 | insert_breakpoints (); | |
535 | } | |
536 | resume (0, TARGET_SIGNAL_0); | |
537 | continue; | |
1eeba686 | 538 | |
fcbc95a7 JK |
539 | case TARGET_WAITKIND_SPURIOUS: |
540 | resume (0, TARGET_SIGNAL_0); | |
541 | continue; | |
1eeba686 | 542 | |
fcbc95a7 | 543 | case TARGET_WAITKIND_EXITED: |
bd5635a1 | 544 | target_terminal_ours (); /* Must do this before mourn anyway */ |
1c95d7ab | 545 | annotate_exited (w.value.integer); |
67ac9759 | 546 | if (w.value.integer) |
e37a6e9c | 547 | printf_filtered ("\nProgram exited with code 0%o.\n", |
67ac9759 | 548 | (unsigned int)w.value.integer); |
bd5635a1 | 549 | else |
479f0f18 | 550 | printf_filtered ("\nProgram exited normally.\n"); |
2b576293 C |
551 | |
552 | /* Record the exit code in the convenience variable $_exitcode, so | |
553 | that the user can inspect this again later. */ | |
554 | set_internalvar (lookup_internalvar ("_exitcode"), | |
555 | value_from_longest (builtin_type_int, | |
556 | (LONGEST) w.value.integer)); | |
199b2450 | 557 | gdb_flush (gdb_stdout); |
bd5635a1 RP |
558 | target_mourn_inferior (); |
559 | #ifdef NO_SINGLE_STEP | |
560 | one_stepped = 0; | |
561 | #endif | |
562 | stop_print_frame = 0; | |
fcbc95a7 | 563 | goto stop_stepping; |
67ac9759 | 564 | |
fcbc95a7 | 565 | case TARGET_WAITKIND_SIGNALLED: |
bd5635a1 | 566 | stop_print_frame = 0; |
67ac9759 | 567 | stop_signal = w.value.sig; |
bd5635a1 | 568 | target_terminal_ours (); /* Must do this before mourn anyway */ |
1c95d7ab | 569 | annotate_signalled (); |
4cc1b3f7 JK |
570 | |
571 | /* This looks pretty bogus to me. Doesn't TARGET_WAITKIND_SIGNALLED | |
572 | mean it is already dead? This has been here since GDB 2.8, so | |
573 | perhaps it means rms didn't understand unix waitstatuses? | |
574 | For the moment I'm just kludging around this in remote.c | |
575 | rather than trying to change it here --kingdon, 5 Dec 1994. */ | |
30875e1c | 576 | target_kill (); /* kill mourns as well */ |
4cc1b3f7 | 577 | |
1c95d7ab JK |
578 | printf_filtered ("\nProgram terminated with signal "); |
579 | annotate_signal_name (); | |
580 | printf_filtered ("%s", target_signal_to_name (stop_signal)); | |
581 | annotate_signal_name_end (); | |
582 | printf_filtered (", "); | |
583 | annotate_signal_string (); | |
584 | printf_filtered ("%s", target_signal_to_string (stop_signal)); | |
585 | annotate_signal_string_end (); | |
586 | printf_filtered (".\n"); | |
67ac9759 | 587 | |
fee44494 | 588 | printf_filtered ("The program no longer exists.\n"); |
199b2450 | 589 | gdb_flush (gdb_stdout); |
bd5635a1 RP |
590 | #ifdef NO_SINGLE_STEP |
591 | one_stepped = 0; | |
592 | #endif | |
fcbc95a7 JK |
593 | goto stop_stepping; |
594 | ||
595 | case TARGET_WAITKIND_STOPPED: | |
596 | /* This is the only case in which we keep going; the above cases | |
597 | end in a continue or goto. */ | |
bd5635a1 RP |
598 | break; |
599 | } | |
de43d7d0 | 600 | |
48f4903f JL |
601 | stop_signal = w.value.sig; |
602 | ||
603 | stop_pc = read_pc_pid (pid); | |
604 | ||
320f93f7 SG |
605 | /* See if a thread hit a thread-specific breakpoint that was meant for |
606 | another thread. If so, then step that thread past the breakpoint, | |
607 | and continue it. */ | |
de43d7d0 | 608 | |
67ac9759 | 609 | if (stop_signal == TARGET_SIGNAL_TRAP |
320f93f7 | 610 | && breakpoints_inserted |
de43d7d0 | 611 | && breakpoint_here_p (stop_pc - DECR_PC_AFTER_BREAK)) |
b2f03c30 | 612 | { |
320f93f7 | 613 | random_signal = 0; |
b2f03c30 JK |
614 | if (!breakpoint_thread_match (stop_pc - DECR_PC_AFTER_BREAK, pid)) |
615 | { | |
616 | /* Saw a breakpoint, but it was hit by the wrong thread. Just continue. */ | |
48f4903f | 617 | write_pc_pid (stop_pc - DECR_PC_AFTER_BREAK, pid); |
320f93f7 SG |
618 | |
619 | remove_breakpoints (); | |
620 | target_resume (pid, 1, TARGET_SIGNAL_0); /* Single step */ | |
621 | /* FIXME: What if a signal arrives instead of the single-step | |
622 | happening? */ | |
479f0f18 SG |
623 | |
624 | if (target_wait_hook) | |
625 | target_wait_hook (pid, &w); | |
626 | else | |
627 | target_wait (pid, &w); | |
320f93f7 | 628 | insert_breakpoints (); |
48f4903f JL |
629 | |
630 | /* We need to restart all the threads now. */ | |
631 | target_resume (-1, 0, TARGET_SIGNAL_0); | |
b2f03c30 JK |
632 | continue; |
633 | } | |
b2f03c30 | 634 | } |
320f93f7 SG |
635 | else |
636 | random_signal = 1; | |
637 | ||
638 | /* See if something interesting happened to the non-current thread. If | |
639 | so, then switch to that thread, and eventually give control back to | |
640 | the user. */ | |
de43d7d0 | 641 | |
37c99ddb JK |
642 | if (pid != inferior_pid) |
643 | { | |
644 | int printed = 0; | |
645 | ||
320f93f7 SG |
646 | /* If it's a random signal for a non-current thread, notify user |
647 | if he's expressed an interest. */ | |
648 | ||
649 | if (random_signal | |
650 | && signal_print[stop_signal]) | |
651 | { | |
652 | printed = 1; | |
653 | target_terminal_ours_for_output (); | |
654 | printf_filtered ("\nProgram received signal %s, %s.\n", | |
655 | target_signal_to_name (stop_signal), | |
656 | target_signal_to_string (stop_signal)); | |
657 | gdb_flush (gdb_stdout); | |
658 | } | |
659 | ||
660 | /* If it's not SIGTRAP and not a signal we want to stop for, then | |
661 | continue the thread. */ | |
662 | ||
663 | if (stop_signal != TARGET_SIGNAL_TRAP | |
664 | && !signal_stop[stop_signal]) | |
37c99ddb | 665 | { |
320f93f7 SG |
666 | if (printed) |
667 | target_terminal_inferior (); | |
37c99ddb | 668 | |
320f93f7 SG |
669 | /* Clear the signal if it should not be passed. */ |
670 | if (signal_program[stop_signal] == 0) | |
671 | stop_signal = TARGET_SIGNAL_0; | |
672 | ||
673 | target_resume (pid, 0, stop_signal); | |
37c99ddb JK |
674 | continue; |
675 | } | |
320f93f7 SG |
676 | |
677 | /* It's a SIGTRAP or a signal we're interested in. Switch threads, | |
678 | and fall into the rest of wait_for_inferior(). */ | |
679 | ||
2b576293 C |
680 | /* Save infrun state for the old thread. */ |
681 | save_infrun_state (inferior_pid, prev_pc, | |
682 | prev_func_start, prev_func_name, | |
683 | trap_expected, step_resume_breakpoint, | |
684 | through_sigtramp_breakpoint, | |
685 | step_range_start, step_range_end, | |
686 | step_frame_address, handling_longjmp, | |
687 | another_trap); | |
688 | ||
320f93f7 | 689 | inferior_pid = pid; |
2b576293 C |
690 | |
691 | /* Load infrun state for the new thread. */ | |
692 | load_infrun_state (inferior_pid, &prev_pc, | |
693 | &prev_func_start, &prev_func_name, | |
694 | &trap_expected, &step_resume_breakpoint, | |
695 | &through_sigtramp_breakpoint, | |
696 | &step_range_start, &step_range_end, | |
697 | &step_frame_address, &handling_longjmp, | |
698 | &another_trap); | |
320f93f7 SG |
699 | printf_filtered ("[Switching to %s]\n", target_pid_to_str (pid)); |
700 | ||
701 | flush_cached_frames (); | |
37c99ddb JK |
702 | } |
703 | ||
bd5635a1 RP |
704 | #ifdef NO_SINGLE_STEP |
705 | if (one_stepped) | |
706 | single_step (0); /* This actually cleans up the ss */ | |
707 | #endif /* NO_SINGLE_STEP */ | |
708 | ||
999dd04b JL |
709 | /* If PC is pointing at a nullified instruction, then step beyond |
710 | it so that the user won't be confused when GDB appears to be ready | |
711 | to execute it. */ | |
9f739abd SG |
712 | |
713 | if (INSTRUCTION_NULLIFIED) | |
714 | { | |
715 | resume (1, 0); | |
716 | continue; | |
717 | } | |
718 | ||
48f4903f JL |
719 | #ifdef HAVE_STEPPABLE_WATCHPOINT |
720 | /* It may not be necessary to disable the watchpoint to stop over | |
721 | it. For example, the PA can (with some kernel cooperation) | |
722 | single step over a watchpoint without disabling the watchpoint. */ | |
723 | if (STOPPED_BY_WATCHPOINT (w)) | |
724 | { | |
725 | resume (1, 0); | |
726 | continue; | |
727 | } | |
728 | #endif | |
729 | ||
730 | #ifdef HAVE_NONSTEPPABLE_WATCHPOINT | |
731 | /* It is far more common to need to disable a watchpoint | |
732 | to step the inferior over it. FIXME. What else might | |
733 | a debug register or page protection watchpoint scheme need | |
734 | here? */ | |
735 | if (STOPPED_BY_WATCHPOINT (w)) | |
736 | { | |
737 | /* At this point, we are stopped at an instruction which has attempted to write | |
738 | to a piece of memory under control of a watchpoint. The instruction hasn't | |
739 | actually executed yet. If we were to evaluate the watchpoint expression | |
740 | now, we would get the old value, and therefore no change would seem to have | |
741 | occurred. | |
742 | ||
743 | In order to make watchpoints work `right', we really need to complete the | |
744 | memory write, and then evaluate the watchpoint expression. The following | |
745 | code does that by removing the watchpoint (actually, all watchpoints and | |
746 | breakpoints), single-stepping the target, re-inserting watchpoints, and then | |
747 | falling through to let normal single-step processing handle proceed. Since | |
748 | this includes evaluating watchpoints, things will come to a stop in the | |
749 | correct manner. */ | |
750 | ||
751 | write_pc (stop_pc - DECR_PC_AFTER_BREAK); | |
752 | ||
753 | remove_breakpoints (); | |
754 | target_resume (pid, 1, TARGET_SIGNAL_0); /* Single step */ | |
755 | ||
756 | if (target_wait_hook) | |
757 | target_wait_hook (pid, &w); | |
758 | else | |
759 | target_wait (pid, &w); | |
760 | insert_breakpoints (); | |
761 | /* FIXME-maybe: is this cleaner than setting a flag? Does it | |
762 | handle things like signals arriving and other things happening | |
763 | in combination correctly? */ | |
764 | goto have_waited; | |
765 | } | |
766 | #endif | |
767 | ||
768 | #ifdef HAVE_CONTINUABLE_WATCHPOINT | |
769 | /* It may be possible to simply continue after a watchpoint. */ | |
770 | STOPPED_BY_WATCHPOINT (w); | |
771 | #endif | |
772 | ||
bd5635a1 RP |
773 | stop_func_start = 0; |
774 | stop_func_name = 0; | |
775 | /* Don't care about return value; stop_func_start and stop_func_name | |
776 | will both be 0 if it doesn't work. */ | |
37c99ddb | 777 | find_pc_partial_function (stop_pc, &stop_func_name, &stop_func_start, |
67ac9759 | 778 | &stop_func_end); |
bd5635a1 RP |
779 | stop_func_start += FUNCTION_START_OFFSET; |
780 | another_trap = 0; | |
781 | bpstat_clear (&stop_bpstat); | |
782 | stop_step = 0; | |
783 | stop_stack_dummy = 0; | |
784 | stop_print_frame = 1; | |
bd5635a1 RP |
785 | random_signal = 0; |
786 | stopped_by_random_signal = 0; | |
787 | breakpoints_failed = 0; | |
788 | ||
789 | /* Look at the cause of the stop, and decide what to do. | |
790 | The alternatives are: | |
791 | 1) break; to really stop and return to the debugger, | |
792 | 2) drop through to start up again | |
793 | (set another_trap to 1 to single step once) | |
794 | 3) set random_signal to 1, and the decision between 1 and 2 | |
795 | will be made according to the signal handling tables. */ | |
796 | ||
bd5635a1 RP |
797 | /* First, distinguish signals caused by the debugger from signals |
798 | that have to do with the program's own actions. | |
799 | Note that breakpoint insns may cause SIGTRAP or SIGILL | |
800 | or SIGEMT, depending on the operating system version. | |
801 | Here we detect when a SIGILL or SIGEMT is really a breakpoint | |
802 | and change it to SIGTRAP. */ | |
803 | ||
67ac9759 | 804 | if (stop_signal == TARGET_SIGNAL_TRAP |
bd5635a1 | 805 | || (breakpoints_inserted && |
67ac9759 JK |
806 | (stop_signal == TARGET_SIGNAL_ILL |
807 | || stop_signal == TARGET_SIGNAL_EMT | |
e37a6e9c | 808 | )) |
bd5635a1 RP |
809 | || stop_soon_quietly) |
810 | { | |
67ac9759 | 811 | if (stop_signal == TARGET_SIGNAL_TRAP && stop_after_trap) |
bd5635a1 RP |
812 | { |
813 | stop_print_frame = 0; | |
814 | break; | |
815 | } | |
816 | if (stop_soon_quietly) | |
817 | break; | |
818 | ||
819 | /* Don't even think about breakpoints | |
820 | if just proceeded over a breakpoint. | |
821 | ||
822 | However, if we are trying to proceed over a breakpoint | |
bcc37718 | 823 | and end up in sigtramp, then through_sigtramp_breakpoint |
bd5635a1 RP |
824 | will be set and we should check whether we've hit the |
825 | step breakpoint. */ | |
67ac9759 | 826 | if (stop_signal == TARGET_SIGNAL_TRAP && trap_expected |
bcc37718 | 827 | && through_sigtramp_breakpoint == NULL) |
bd5635a1 RP |
828 | bpstat_clear (&stop_bpstat); |
829 | else | |
830 | { | |
831 | /* See if there is a breakpoint at the current PC. */ | |
cb6b0202 | 832 | stop_bpstat = bpstat_stop_status |
479f0f18 | 833 | (&stop_pc, |
bd5635a1 | 834 | #if DECR_PC_AFTER_BREAK |
cb6b0202 JK |
835 | /* Notice the case of stepping through a jump |
836 | that lands just after a breakpoint. | |
837 | Don't confuse that with hitting the breakpoint. | |
838 | What we check for is that 1) stepping is going on | |
839 | and 2) the pc before the last insn does not match | |
840 | the address of the breakpoint before the current pc. */ | |
841 | (prev_pc != stop_pc - DECR_PC_AFTER_BREAK | |
842 | && CURRENTLY_STEPPING ()) | |
843 | #else /* DECR_PC_AFTER_BREAK zero */ | |
844 | 0 | |
845 | #endif /* DECR_PC_AFTER_BREAK zero */ | |
846 | ); | |
847 | /* Following in case break condition called a | |
848 | function. */ | |
849 | stop_print_frame = 1; | |
bd5635a1 | 850 | } |
fe675038 | 851 | |
67ac9759 | 852 | if (stop_signal == TARGET_SIGNAL_TRAP) |
bd5635a1 RP |
853 | random_signal |
854 | = !(bpstat_explains_signal (stop_bpstat) | |
855 | || trap_expected | |
84d59861 | 856 | #ifndef CALL_DUMMY_BREAKPOINT_OFFSET |
479f0f18 SG |
857 | || PC_IN_CALL_DUMMY (stop_pc, read_sp (), |
858 | FRAME_FP (get_current_frame ())) | |
84d59861 | 859 | #endif /* No CALL_DUMMY_BREAKPOINT_OFFSET. */ |
fe675038 | 860 | || (step_range_end && step_resume_breakpoint == NULL)); |
bd5635a1 RP |
861 | else |
862 | { | |
863 | random_signal | |
864 | = !(bpstat_explains_signal (stop_bpstat) | |
bd5635a1 RP |
865 | /* End of a stack dummy. Some systems (e.g. Sony |
866 | news) give another signal besides SIGTRAP, | |
867 | so check here as well as above. */ | |
84d59861 | 868 | #ifndef CALL_DUMMY_BREAKPOINT_OFFSET |
479f0f18 SG |
869 | || PC_IN_CALL_DUMMY (stop_pc, read_sp (), |
870 | FRAME_FP (get_current_frame ())) | |
84d59861 | 871 | #endif /* No CALL_DUMMY_BREAKPOINT_OFFSET. */ |
bd5635a1 RP |
872 | ); |
873 | if (!random_signal) | |
67ac9759 | 874 | stop_signal = TARGET_SIGNAL_TRAP; |
bd5635a1 RP |
875 | } |
876 | } | |
877 | else | |
878 | random_signal = 1; | |
fe675038 | 879 | |
bd5635a1 RP |
880 | /* For the program's own signals, act according to |
881 | the signal handling tables. */ | |
fe675038 | 882 | |
bd5635a1 RP |
883 | if (random_signal) |
884 | { | |
885 | /* Signal not for debugging purposes. */ | |
886 | int printed = 0; | |
887 | ||
888 | stopped_by_random_signal = 1; | |
889 | ||
67ac9759 | 890 | if (signal_print[stop_signal]) |
bd5635a1 RP |
891 | { |
892 | printed = 1; | |
893 | target_terminal_ours_for_output (); | |
1c95d7ab JK |
894 | annotate_signal (); |
895 | printf_filtered ("\nProgram received signal "); | |
896 | annotate_signal_name (); | |
897 | printf_filtered ("%s", target_signal_to_name (stop_signal)); | |
898 | annotate_signal_name_end (); | |
899 | printf_filtered (", "); | |
900 | annotate_signal_string (); | |
901 | printf_filtered ("%s", target_signal_to_string (stop_signal)); | |
902 | annotate_signal_string_end (); | |
903 | printf_filtered (".\n"); | |
199b2450 | 904 | gdb_flush (gdb_stdout); |
bd5635a1 | 905 | } |
67ac9759 | 906 | if (signal_stop[stop_signal]) |
bd5635a1 RP |
907 | break; |
908 | /* If not going to stop, give terminal back | |
909 | if we took it away. */ | |
910 | else if (printed) | |
911 | target_terminal_inferior (); | |
b7f81b57 | 912 | |
101b7f9c PS |
913 | /* Clear the signal if it should not be passed. */ |
914 | if (signal_program[stop_signal] == 0) | |
67ac9759 | 915 | stop_signal = TARGET_SIGNAL_0; |
101b7f9c | 916 | |
fe675038 JK |
917 | /* I'm not sure whether this needs to be check_sigtramp2 or |
918 | whether it could/should be keep_going. */ | |
919 | goto check_sigtramp2; | |
bd5635a1 | 920 | } |
30875e1c | 921 | |
bd5635a1 | 922 | /* Handle cases caused by hitting a breakpoint. */ |
fe675038 JK |
923 | { |
924 | CORE_ADDR jmp_buf_pc; | |
29c6dce2 JK |
925 | struct bpstat_what what; |
926 | ||
927 | what = bpstat_what (stop_bpstat); | |
bd5635a1 | 928 | |
84d59861 JK |
929 | if (what.call_dummy) |
930 | { | |
931 | stop_stack_dummy = 1; | |
932 | #ifdef HP_OS_BUG | |
933 | trap_expected_after_continue = 1; | |
934 | #endif | |
935 | } | |
936 | ||
fe675038 JK |
937 | switch (what.main_action) |
938 | { | |
939 | case BPSTAT_WHAT_SET_LONGJMP_RESUME: | |
940 | /* If we hit the breakpoint at longjmp, disable it for the | |
941 | duration of this command. Then, install a temporary | |
942 | breakpoint at the target of the jmp_buf. */ | |
943 | disable_longjmp_breakpoint(); | |
944 | remove_breakpoints (); | |
945 | breakpoints_inserted = 0; | |
946 | if (!GET_LONGJMP_TARGET(&jmp_buf_pc)) goto keep_going; | |
947 | ||
948 | /* Need to blow away step-resume breakpoint, as it | |
949 | interferes with us */ | |
950 | if (step_resume_breakpoint != NULL) | |
951 | { | |
952 | delete_breakpoint (step_resume_breakpoint); | |
953 | step_resume_breakpoint = NULL; | |
bcc37718 JK |
954 | } |
955 | /* Not sure whether we need to blow this away too, but probably | |
956 | it is like the step-resume breakpoint. */ | |
957 | if (through_sigtramp_breakpoint != NULL) | |
958 | { | |
959 | delete_breakpoint (through_sigtramp_breakpoint); | |
960 | through_sigtramp_breakpoint = NULL; | |
fe675038 | 961 | } |
30875e1c | 962 | |
101b7f9c | 963 | #if 0 |
fe675038 JK |
964 | /* FIXME - Need to implement nested temporary breakpoints */ |
965 | if (step_over_calls > 0) | |
966 | set_longjmp_resume_breakpoint(jmp_buf_pc, | |
967 | get_current_frame()); | |
968 | else | |
30875e1c | 969 | #endif /* 0 */ |
fe675038 JK |
970 | set_longjmp_resume_breakpoint(jmp_buf_pc, NULL); |
971 | handling_longjmp = 1; /* FIXME */ | |
972 | goto keep_going; | |
973 | ||
974 | case BPSTAT_WHAT_CLEAR_LONGJMP_RESUME: | |
975 | case BPSTAT_WHAT_CLEAR_LONGJMP_RESUME_SINGLE: | |
976 | remove_breakpoints (); | |
977 | breakpoints_inserted = 0; | |
101b7f9c | 978 | #if 0 |
fe675038 JK |
979 | /* FIXME - Need to implement nested temporary breakpoints */ |
980 | if (step_over_calls | |
479f0f18 | 981 | && (FRAME_FP (get_current_frame ()) |
fe675038 JK |
982 | INNER_THAN step_frame_address)) |
983 | { | |
984 | another_trap = 1; | |
985 | goto keep_going; | |
986 | } | |
30875e1c | 987 | #endif /* 0 */ |
fe675038 JK |
988 | disable_longjmp_breakpoint(); |
989 | handling_longjmp = 0; /* FIXME */ | |
990 | if (what.main_action == BPSTAT_WHAT_CLEAR_LONGJMP_RESUME) | |
101b7f9c | 991 | break; |
fe675038 JK |
992 | /* else fallthrough */ |
993 | ||
994 | case BPSTAT_WHAT_SINGLE: | |
995 | if (breakpoints_inserted) | |
996 | remove_breakpoints (); | |
997 | breakpoints_inserted = 0; | |
998 | another_trap = 1; | |
999 | /* Still need to check other stuff, at least the case | |
1000 | where we are stepping and step out of the right range. */ | |
1001 | break; | |
1002 | ||
1003 | case BPSTAT_WHAT_STOP_NOISY: | |
1004 | stop_print_frame = 1; | |
bcc37718 JK |
1005 | |
1006 | /* We are about to nuke the step_resume_breakpoint and | |
1007 | through_sigtramp_breakpoint via the cleanup chain, so | |
1008 | no need to worry about it here. */ | |
1009 | ||
fe675038 | 1010 | goto stop_stepping; |
101b7f9c | 1011 | |
fe675038 JK |
1012 | case BPSTAT_WHAT_STOP_SILENT: |
1013 | stop_print_frame = 0; | |
fe675038 | 1014 | |
bcc37718 JK |
1015 | /* We are about to nuke the step_resume_breakpoint and |
1016 | through_sigtramp_breakpoint via the cleanup chain, so | |
1017 | no need to worry about it here. */ | |
100f92e2 | 1018 | |
bcc37718 | 1019 | goto stop_stepping; |
fe675038 | 1020 | |
bcc37718 | 1021 | case BPSTAT_WHAT_STEP_RESUME: |
fe675038 JK |
1022 | delete_breakpoint (step_resume_breakpoint); |
1023 | step_resume_breakpoint = NULL; | |
bcc37718 JK |
1024 | break; |
1025 | ||
1026 | case BPSTAT_WHAT_THROUGH_SIGTRAMP: | |
479f0f18 SG |
1027 | if (through_sigtramp_breakpoint) |
1028 | delete_breakpoint (through_sigtramp_breakpoint); | |
bcc37718 | 1029 | through_sigtramp_breakpoint = NULL; |
30875e1c | 1030 | |
fe675038 JK |
1031 | /* If were waiting for a trap, hitting the step_resume_break |
1032 | doesn't count as getting it. */ | |
1033 | if (trap_expected) | |
1034 | another_trap = 1; | |
bcc37718 JK |
1035 | break; |
1036 | ||
87273c71 JL |
1037 | #ifdef SOLIB_ADD |
1038 | case BPSTAT_WHAT_CHECK_SHLIBS: | |
1039 | { | |
1040 | extern int auto_solib_add; | |
1041 | ||
1042 | /* Check for any newly added shared libraries if we're | |
1043 | supposed to be adding them automatically. */ | |
1044 | if (auto_solib_add) | |
1045 | SOLIB_ADD (NULL, 0, NULL); | |
1046 | ||
1047 | /* If requested, stop when the dynamic linker notifies | |
1048 | gdb of events. This allows the user to get control | |
1049 | and place breakpoints in initializer routines for | |
1050 | dynamically loaded objects (among other things). */ | |
1051 | if (stop_on_solib_events) | |
1052 | { | |
1053 | stop_print_frame = 0; | |
1054 | goto stop_stepping; | |
1055 | } | |
1056 | else | |
1057 | { | |
1058 | /* We want to step over this breakpoint, then keep going. */ | |
1059 | another_trap = 1; | |
1060 | remove_breakpoints_on_following_step = 1; | |
1061 | break; | |
1062 | } | |
1063 | } | |
1064 | #endif | |
1065 | ||
bcc37718 JK |
1066 | case BPSTAT_WHAT_LAST: |
1067 | /* Not a real code, but listed here to shut up gcc -Wall. */ | |
1068 | ||
1069 | case BPSTAT_WHAT_KEEP_CHECKING: | |
1070 | break; | |
30875e1c | 1071 | } |
fe675038 | 1072 | } |
30875e1c SG |
1073 | |
1074 | /* We come here if we hit a breakpoint but should not | |
1075 | stop for it. Possibly we also were stepping | |
1076 | and should stop for that. So fall through and | |
1077 | test for stepping. But, if not stepping, | |
1078 | do not stop. */ | |
1079 | ||
84d59861 JK |
1080 | #ifndef CALL_DUMMY_BREAKPOINT_OFFSET |
1081 | /* This is the old way of detecting the end of the stack dummy. | |
1082 | An architecture which defines CALL_DUMMY_BREAKPOINT_OFFSET gets | |
1083 | handled above. As soon as we can test it on all of them, all | |
1084 | architectures should define it. */ | |
1085 | ||
bd5635a1 | 1086 | /* If this is the breakpoint at the end of a stack dummy, |
c9de302b SG |
1087 | just stop silently, unless the user was doing an si/ni, in which |
1088 | case she'd better know what she's doing. */ | |
1089 | ||
479f0f18 | 1090 | if (PC_IN_CALL_DUMMY (stop_pc, read_sp (), FRAME_FP (get_current_frame ())) |
c9de302b SG |
1091 | && !step_range_end) |
1092 | { | |
1093 | stop_print_frame = 0; | |
1094 | stop_stack_dummy = 1; | |
bd5635a1 | 1095 | #ifdef HP_OS_BUG |
c9de302b | 1096 | trap_expected_after_continue = 1; |
bd5635a1 | 1097 | #endif |
c9de302b SG |
1098 | break; |
1099 | } | |
84d59861 JK |
1100 | #endif /* No CALL_DUMMY_BREAKPOINT_OFFSET. */ |
1101 | ||
fe675038 | 1102 | if (step_resume_breakpoint) |
bd5635a1 RP |
1103 | /* Having a step-resume breakpoint overrides anything |
1104 | else having to do with stepping commands until | |
1105 | that breakpoint is reached. */ | |
bcc37718 JK |
1106 | /* I'm not sure whether this needs to be check_sigtramp2 or |
1107 | whether it could/should be keep_going. */ | |
fe675038 JK |
1108 | goto check_sigtramp2; |
1109 | ||
1110 | if (step_range_end == 0) | |
1111 | /* Likewise if we aren't even stepping. */ | |
1112 | /* I'm not sure whether this needs to be check_sigtramp2 or | |
1113 | whether it could/should be keep_going. */ | |
1114 | goto check_sigtramp2; | |
1115 | ||
bd5635a1 | 1116 | /* If stepping through a line, keep going if still within it. */ |
fe675038 JK |
1117 | if (stop_pc >= step_range_start |
1118 | && stop_pc < step_range_end | |
3f687c78 SG |
1119 | #if 0 |
1120 | /* I haven't a clue what might trigger this clause, and it seems wrong anyway, | |
1121 | so I've disabled it until someone complains. -Stu 10/24/95 */ | |
1122 | ||
fe675038 JK |
1123 | /* The step range might include the start of the |
1124 | function, so if we are at the start of the | |
1125 | step range and either the stack or frame pointers | |
1126 | just changed, we've stepped outside */ | |
1127 | && !(stop_pc == step_range_start | |
479f0f18 SG |
1128 | && FRAME_FP (get_current_frame ()) |
1129 | && (read_sp () INNER_THAN step_sp | |
3f687c78 SG |
1130 | || FRAME_FP (get_current_frame ()) != step_frame_address)) |
1131 | #endif | |
1132 | ) | |
bd5635a1 | 1133 | { |
fe675038 JK |
1134 | /* We might be doing a BPSTAT_WHAT_SINGLE and getting a signal. |
1135 | So definately need to check for sigtramp here. */ | |
1136 | goto check_sigtramp2; | |
bd5635a1 | 1137 | } |
fe675038 | 1138 | |
479f0f18 SG |
1139 | /* We stepped out of the stepping range. */ |
1140 | ||
1141 | /* We can't update step_sp every time through the loop, because | |
1142 | reading the stack pointer would slow down stepping too much. | |
1143 | But we can update it every time we leave the step range. */ | |
1144 | update_step_sp = 1; | |
fe675038 JK |
1145 | |
1146 | /* Did we just take a signal? */ | |
1147 | if (IN_SIGTRAMP (stop_pc, stop_func_name) | |
1148 | && !IN_SIGTRAMP (prev_pc, prev_func_name)) | |
bd5635a1 | 1149 | { |
bcc37718 JK |
1150 | /* We've just taken a signal; go until we are back to |
1151 | the point where we took it and one more. */ | |
1152 | ||
fe675038 JK |
1153 | /* This code is needed at least in the following case: |
1154 | The user types "next" and then a signal arrives (before | |
1155 | the "next" is done). */ | |
bcc37718 JK |
1156 | |
1157 | /* Note that if we are stopped at a breakpoint, then we need | |
1158 | the step_resume breakpoint to override any breakpoints at | |
1159 | the same location, so that we will still step over the | |
1160 | breakpoint even though the signal happened. */ | |
1161 | ||
fe675038 JK |
1162 | { |
1163 | struct symtab_and_line sr_sal; | |
1164 | ||
1165 | sr_sal.pc = prev_pc; | |
1166 | sr_sal.symtab = NULL; | |
1167 | sr_sal.line = 0; | |
d1c0c6cf | 1168 | /* We could probably be setting the frame to |
479f0f18 | 1169 | step_frame_address; I don't think anyone thought to try it. */ |
fe675038 | 1170 | step_resume_breakpoint = |
bcc37718 | 1171 | set_momentary_breakpoint (sr_sal, NULL, bp_step_resume); |
fe675038 JK |
1172 | if (breakpoints_inserted) |
1173 | insert_breakpoints (); | |
1174 | } | |
bd5635a1 | 1175 | |
fe675038 JK |
1176 | /* If this is stepi or nexti, make sure that the stepping range |
1177 | gets us past that instruction. */ | |
1178 | if (step_range_end == 1) | |
1179 | /* FIXME: Does this run afoul of the code below which, if | |
1180 | we step into the middle of a line, resets the stepping | |
1181 | range? */ | |
1182 | step_range_end = (step_range_start = prev_pc) + 1; | |
101b7f9c | 1183 | |
fe675038 JK |
1184 | remove_breakpoints_on_following_step = 1; |
1185 | goto keep_going; | |
1186 | } | |
30875e1c | 1187 | |
3f687c78 SG |
1188 | #if 0 |
1189 | /* I disabled this test because it was too complicated and slow. The | |
1190 | SKIP_PROLOGUE was especially slow, because it caused unnecessary | |
1191 | prologue examination on various architectures. The code in the #else | |
1192 | clause has been tested on the Sparc, Mips, PA, and Power | |
1193 | architectures, so it's pretty likely to be correct. -Stu 10/24/95 */ | |
1194 | ||
479f0f18 SG |
1195 | /* See if we left the step range due to a subroutine call that |
1196 | we should proceed to the end of. */ | |
1197 | ||
fe675038 JK |
1198 | if (stop_func_start) |
1199 | { | |
320f93f7 SG |
1200 | struct symtab *s; |
1201 | ||
fe675038 JK |
1202 | /* Do this after the IN_SIGTRAMP check; it might give |
1203 | an error. */ | |
1204 | prologue_pc = stop_func_start; | |
320f93f7 SG |
1205 | |
1206 | /* Don't skip the prologue if this is assembly source */ | |
1207 | s = find_pc_symtab (stop_pc); | |
1208 | if (s && s->language != language_asm) | |
1209 | SKIP_PROLOGUE (prologue_pc); | |
fe675038 | 1210 | } |
30875e1c | 1211 | |
c0c14c1e JK |
1212 | if ((/* Might be a non-recursive call. If the symbols are missing |
1213 | enough that stop_func_start == prev_func_start even though | |
1214 | they are really two functions, we will treat some calls as | |
1215 | jumps. */ | |
1216 | stop_func_start != prev_func_start | |
1217 | ||
1218 | /* Might be a recursive call if either we have a prologue | |
1219 | or the call instruction itself saves the PC on the stack. */ | |
1220 | || prologue_pc != stop_func_start | |
479f0f18 | 1221 | || read_sp () != step_sp) |
199b2450 TL |
1222 | && (/* PC is completely out of bounds of any known objfiles. Treat |
1223 | like a subroutine call. */ | |
1224 | ! stop_func_start | |
c0c14c1e | 1225 | |
f1619234 | 1226 | /* If we do a call, we will be at the start of a function... */ |
c0c14c1e | 1227 | || stop_pc == stop_func_start |
f1619234 JK |
1228 | |
1229 | /* ...except on the Alpha with -O (and also Irix 5 and | |
1230 | perhaps others), in which we might call the address | |
1231 | after the load of gp. Since prologues don't contain | |
1232 | calls, we can't return to within one, and we don't | |
1233 | jump back into them, so this check is OK. */ | |
c0c14c1e | 1234 | |
c0c14c1e | 1235 | || stop_pc < prologue_pc |
d747e0af | 1236 | |
479f0f18 SG |
1237 | /* ...and if it is a leaf function, the prologue might |
1238 | consist of gp loading only, so the call transfers to | |
1239 | the first instruction after the prologue. */ | |
1240 | || (stop_pc == prologue_pc | |
1241 | ||
1242 | /* Distinguish this from the case where we jump back | |
1243 | to the first instruction after the prologue, | |
1244 | within a function. */ | |
1245 | && stop_func_start != prev_func_start) | |
1246 | ||
c0c14c1e JK |
1247 | /* If we end up in certain places, it means we did a subroutine |
1248 | call. I'm not completely sure this is necessary now that we | |
1249 | have the above checks with stop_func_start (and now that | |
100f92e2 | 1250 | find_pc_partial_function is pickier). */ |
4cc1b3f7 | 1251 | || IN_SOLIB_CALL_TRAMPOLINE (stop_pc, stop_func_name) |
c0c14c1e JK |
1252 | |
1253 | /* If none of the above apply, it is a jump within a function, | |
1254 | or a return from a subroutine. The other case is longjmp, | |
1255 | which can no longer happen here as long as the | |
1256 | handling_longjmp stuff is working. */ | |
1257 | )) | |
320f93f7 | 1258 | #else |
87273c71 JL |
1259 | /* This test is a much more streamlined, (but hopefully correct) |
1260 | replacement for the code above. It's been tested on the Sparc, | |
1261 | Mips, PA, and Power architectures with good results. */ | |
320f93f7 | 1262 | |
3f687c78 SG |
1263 | if (stop_pc == stop_func_start /* Quick test */ |
1264 | || in_prologue (stop_pc, stop_func_start) | |
1265 | || IN_SOLIB_CALL_TRAMPOLINE (stop_pc, stop_func_name) | |
1266 | || stop_func_start == 0) | |
320f93f7 | 1267 | #endif |
3f687c78 | 1268 | |
fe675038 JK |
1269 | { |
1270 | /* It's a subroutine call. */ | |
fee44494 | 1271 | |
fe675038 JK |
1272 | if (step_over_calls == 0) |
1273 | { | |
1274 | /* I presume that step_over_calls is only 0 when we're | |
1275 | supposed to be stepping at the assembly language level | |
1276 | ("stepi"). Just stop. */ | |
1277 | stop_step = 1; | |
1278 | break; | |
1279 | } | |
fee44494 | 1280 | |
fe675038 JK |
1281 | if (step_over_calls > 0) |
1282 | /* We're doing a "next". */ | |
1283 | goto step_over_function; | |
1284 | ||
1285 | /* If we are in a function call trampoline (a stub between | |
1286 | the calling routine and the real function), locate the real | |
1287 | function. That's what tells us (a) whether we want to step | |
1288 | into it at all, and (b) what prologue we want to run to | |
1289 | the end of, if we do step into it. */ | |
1290 | tmp = SKIP_TRAMPOLINE_CODE (stop_pc); | |
1291 | if (tmp != 0) | |
1292 | stop_func_start = tmp; | |
87273c71 JL |
1293 | else |
1294 | { | |
1295 | tmp = DYNAMIC_TRAMPOLINE_NEXTPC (stop_pc); | |
1296 | if (tmp) | |
1297 | { | |
1298 | struct symtab_and_line xxx; | |
1299 | ||
1300 | xxx.pc = tmp; | |
1301 | xxx.symtab = NULL; | |
1302 | xxx.line = 0; | |
1303 | step_resume_breakpoint = | |
1304 | set_momentary_breakpoint (xxx, NULL, bp_step_resume); | |
1305 | insert_breakpoints (); | |
1306 | goto keep_going; | |
1307 | } | |
1308 | } | |
fe675038 JK |
1309 | |
1310 | /* If we have line number information for the function we | |
1311 | are thinking of stepping into, step into it. | |
1312 | ||
1313 | If there are several symtabs at that PC (e.g. with include | |
1314 | files), just want to know whether *any* of them have line | |
1315 | numbers. find_pc_line handles this. */ | |
1316 | { | |
1317 | struct symtab_and_line tmp_sal; | |
1318 | ||
1319 | tmp_sal = find_pc_line (stop_func_start, 0); | |
1320 | if (tmp_sal.line != 0) | |
1321 | goto step_into_function; | |
1322 | } | |
d747e0af MT |
1323 | |
1324 | step_over_function: | |
fe675038 JK |
1325 | /* A subroutine call has happened. */ |
1326 | { | |
1327 | /* Set a special breakpoint after the return */ | |
1328 | struct symtab_and_line sr_sal; | |
1329 | sr_sal.pc = | |
1330 | ADDR_BITS_REMOVE | |
1331 | (SAVED_PC_AFTER_CALL (get_current_frame ())); | |
1332 | sr_sal.symtab = NULL; | |
1333 | sr_sal.line = 0; | |
1334 | step_resume_breakpoint = | |
1335 | set_momentary_breakpoint (sr_sal, get_current_frame (), | |
1336 | bp_step_resume); | |
479f0f18 | 1337 | step_resume_breakpoint->frame = step_frame_address; |
fe675038 JK |
1338 | if (breakpoints_inserted) |
1339 | insert_breakpoints (); | |
1340 | } | |
1341 | goto keep_going; | |
d747e0af MT |
1342 | |
1343 | step_into_function: | |
fe675038 JK |
1344 | /* Subroutine call with source code we should not step over. |
1345 | Do step to the first line of code in it. */ | |
320f93f7 SG |
1346 | { |
1347 | struct symtab *s; | |
1348 | ||
1349 | s = find_pc_symtab (stop_pc); | |
1350 | if (s && s->language != language_asm) | |
1351 | SKIP_PROLOGUE (stop_func_start); | |
1352 | } | |
fe675038 JK |
1353 | sal = find_pc_line (stop_func_start, 0); |
1354 | /* Use the step_resume_break to step until | |
1355 | the end of the prologue, even if that involves jumps | |
1356 | (as it seems to on the vax under 4.2). */ | |
1357 | /* If the prologue ends in the middle of a source line, | |
67ac9759 JK |
1358 | continue to the end of that source line (if it is still |
1359 | within the function). Otherwise, just go to end of prologue. */ | |
bd5635a1 | 1360 | #ifdef PROLOGUE_FIRSTLINE_OVERLAP |
fe675038 JK |
1361 | /* no, don't either. It skips any code that's |
1362 | legitimately on the first line. */ | |
bd5635a1 | 1363 | #else |
67ac9759 | 1364 | if (sal.end && sal.pc != stop_func_start && sal.end < stop_func_end) |
fe675038 | 1365 | stop_func_start = sal.end; |
bd5635a1 | 1366 | #endif |
d747e0af | 1367 | |
fe675038 JK |
1368 | if (stop_func_start == stop_pc) |
1369 | { | |
1370 | /* We are already there: stop now. */ | |
1371 | stop_step = 1; | |
1372 | break; | |
1373 | } | |
1374 | else | |
1375 | /* Put the step-breakpoint there and go until there. */ | |
1376 | { | |
1377 | struct symtab_and_line sr_sal; | |
1378 | ||
1379 | sr_sal.pc = stop_func_start; | |
1380 | sr_sal.symtab = NULL; | |
1381 | sr_sal.line = 0; | |
1382 | /* Do not specify what the fp should be when we stop | |
1383 | since on some machines the prologue | |
1384 | is where the new fp value is established. */ | |
1385 | step_resume_breakpoint = | |
84d59861 | 1386 | set_momentary_breakpoint (sr_sal, NULL, bp_step_resume); |
fe675038 JK |
1387 | if (breakpoints_inserted) |
1388 | insert_breakpoints (); | |
1389 | ||
1390 | /* And make sure stepping stops right away then. */ | |
1391 | step_range_end = step_range_start; | |
bd5635a1 | 1392 | } |
fe675038 JK |
1393 | goto keep_going; |
1394 | } | |
d747e0af | 1395 | |
b2f03c30 | 1396 | /* We've wandered out of the step range. */ |
d747e0af | 1397 | |
fe675038 JK |
1398 | sal = find_pc_line(stop_pc, 0); |
1399 | ||
1400 | if (step_range_end == 1) | |
1401 | { | |
1402 | /* It is stepi or nexti. We always want to stop stepping after | |
1403 | one instruction. */ | |
1404 | stop_step = 1; | |
1405 | break; | |
1406 | } | |
1407 | ||
4cc1b3f7 JK |
1408 | /* If we're in the return path from a shared library trampoline, |
1409 | we want to proceed through the trampoline when stepping. */ | |
1410 | if (IN_SOLIB_RETURN_TRAMPOLINE(stop_pc, stop_func_name)) | |
1411 | { | |
1412 | CORE_ADDR tmp; | |
1413 | ||
1414 | /* Determine where this trampoline returns. */ | |
1415 | tmp = SKIP_TRAMPOLINE_CODE (stop_pc); | |
1416 | ||
1417 | /* Only proceed through if we know where it's going. */ | |
1418 | if (tmp) | |
1419 | { | |
1420 | /* And put the step-breakpoint there and go until there. */ | |
1421 | struct symtab_and_line sr_sal; | |
1422 | ||
1423 | sr_sal.pc = tmp; | |
1424 | sr_sal.symtab = NULL; | |
1425 | sr_sal.line = 0; | |
1426 | /* Do not specify what the fp should be when we stop | |
1427 | since on some machines the prologue | |
1428 | is where the new fp value is established. */ | |
1429 | step_resume_breakpoint = | |
1430 | set_momentary_breakpoint (sr_sal, NULL, bp_step_resume); | |
1431 | if (breakpoints_inserted) | |
1432 | insert_breakpoints (); | |
1433 | ||
1434 | /* Restart without fiddling with the step ranges or | |
1435 | other state. */ | |
1436 | goto keep_going; | |
1437 | } | |
1438 | } | |
1439 | ||
fe675038 JK |
1440 | if (sal.line == 0) |
1441 | { | |
1442 | /* We have no line number information. That means to stop | |
1443 | stepping (does this always happen right after one instruction, | |
1444 | when we do "s" in a function with no line numbers, | |
1445 | or can this happen as a result of a return or longjmp?). */ | |
1446 | stop_step = 1; | |
1447 | break; | |
1448 | } | |
1449 | ||
b2f03c30 JK |
1450 | if (stop_pc == sal.pc |
1451 | && (current_line != sal.line || current_symtab != sal.symtab)) | |
fe675038 JK |
1452 | { |
1453 | /* We are at the start of a different line. So stop. Note that | |
1454 | we don't stop if we step into the middle of a different line. | |
1455 | That is said to make things like for (;;) statements work | |
1456 | better. */ | |
1457 | stop_step = 1; | |
1458 | break; | |
bd5635a1 RP |
1459 | } |
1460 | ||
fe675038 JK |
1461 | /* We aren't done stepping. |
1462 | ||
1463 | Optimize by setting the stepping range to the line. | |
1464 | (We might not be in the original line, but if we entered a | |
1465 | new line in mid-statement, we continue stepping. This makes | |
1466 | things like for(;;) statements work better.) */ | |
67ac9759 JK |
1467 | |
1468 | if (stop_func_end && sal.end >= stop_func_end) | |
1469 | { | |
1470 | /* If this is the last line of the function, don't keep stepping | |
1471 | (it would probably step us out of the function). | |
1472 | This is particularly necessary for a one-line function, | |
1473 | in which after skipping the prologue we better stop even though | |
1474 | we will be in mid-line. */ | |
1475 | stop_step = 1; | |
1476 | break; | |
1477 | } | |
fe675038 JK |
1478 | step_range_start = sal.pc; |
1479 | step_range_end = sal.end; | |
1480 | goto keep_going; | |
1481 | ||
1482 | check_sigtramp2: | |
d747e0af MT |
1483 | if (trap_expected |
1484 | && IN_SIGTRAMP (stop_pc, stop_func_name) | |
1485 | && !IN_SIGTRAMP (prev_pc, prev_func_name)) | |
bd5635a1 RP |
1486 | { |
1487 | /* What has happened here is that we have just stepped the inferior | |
1488 | with a signal (because it is a signal which shouldn't make | |
1489 | us stop), thus stepping into sigtramp. | |
1490 | ||
1491 | So we need to set a step_resume_break_address breakpoint | |
fe675038 JK |
1492 | and continue until we hit it, and then step. FIXME: This should |
1493 | be more enduring than a step_resume breakpoint; we should know | |
1494 | that we will later need to keep going rather than re-hitting | |
1495 | the breakpoint here (see testsuite/gdb.t06/signals.exp where | |
1496 | it says "exceedingly difficult"). */ | |
1497 | struct symtab_and_line sr_sal; | |
1498 | ||
1499 | sr_sal.pc = prev_pc; | |
1500 | sr_sal.symtab = NULL; | |
1501 | sr_sal.line = 0; | |
bcc37718 JK |
1502 | /* We perhaps could set the frame if we kept track of what |
1503 | the frame corresponding to prev_pc was. But we don't, | |
1504 | so don't. */ | |
1505 | through_sigtramp_breakpoint = | |
1506 | set_momentary_breakpoint (sr_sal, NULL, bp_through_sigtramp); | |
bd5635a1 | 1507 | if (breakpoints_inserted) |
fe675038 JK |
1508 | insert_breakpoints (); |
1509 | ||
bd5635a1 RP |
1510 | remove_breakpoints_on_following_step = 1; |
1511 | another_trap = 1; | |
1512 | } | |
1513 | ||
30875e1c | 1514 | keep_going: |
fe675038 JK |
1515 | /* Come to this label when you need to resume the inferior. |
1516 | It's really much cleaner to do a goto than a maze of if-else | |
1517 | conditions. */ | |
30875e1c | 1518 | |
bd5635a1 RP |
1519 | /* Save the pc before execution, to compare with pc after stop. */ |
1520 | prev_pc = read_pc (); /* Might have been DECR_AFTER_BREAK */ | |
1521 | prev_func_start = stop_func_start; /* Ok, since if DECR_PC_AFTER | |
1522 | BREAK is defined, the | |
1523 | original pc would not have | |
1524 | been at the start of a | |
1525 | function. */ | |
1526 | prev_func_name = stop_func_name; | |
479f0f18 SG |
1527 | |
1528 | if (update_step_sp) | |
1529 | step_sp = read_sp (); | |
1530 | update_step_sp = 0; | |
bd5635a1 RP |
1531 | |
1532 | /* If we did not do break;, it means we should keep | |
1533 | running the inferior and not return to debugger. */ | |
1534 | ||
67ac9759 | 1535 | if (trap_expected && stop_signal != TARGET_SIGNAL_TRAP) |
bd5635a1 RP |
1536 | { |
1537 | /* We took a signal (which we are supposed to pass through to | |
1538 | the inferior, else we'd have done a break above) and we | |
1539 | haven't yet gotten our trap. Simply continue. */ | |
cb6b0202 | 1540 | resume (CURRENTLY_STEPPING (), stop_signal); |
bd5635a1 RP |
1541 | } |
1542 | else | |
1543 | { | |
1544 | /* Either the trap was not expected, but we are continuing | |
1545 | anyway (the user asked that this signal be passed to the | |
1546 | child) | |
1547 | -- or -- | |
1548 | The signal was SIGTRAP, e.g. it was our signal, but we | |
1549 | decided we should resume from it. | |
1550 | ||
1551 | We're going to run this baby now! | |
1552 | ||
1553 | Insert breakpoints now, unless we are trying | |
1554 | to one-proceed past a breakpoint. */ | |
1555 | /* If we've just finished a special step resume and we don't | |
1556 | want to hit a breakpoint, pull em out. */ | |
d1c0c6cf JK |
1557 | if (step_resume_breakpoint == NULL |
1558 | && through_sigtramp_breakpoint == NULL | |
1559 | && remove_breakpoints_on_following_step) | |
bd5635a1 RP |
1560 | { |
1561 | remove_breakpoints_on_following_step = 0; | |
1562 | remove_breakpoints (); | |
1563 | breakpoints_inserted = 0; | |
1564 | } | |
1565 | else if (!breakpoints_inserted && | |
bcc37718 | 1566 | (through_sigtramp_breakpoint != NULL || !another_trap)) |
bd5635a1 | 1567 | { |
bd5635a1 RP |
1568 | breakpoints_failed = insert_breakpoints (); |
1569 | if (breakpoints_failed) | |
1570 | break; | |
1571 | breakpoints_inserted = 1; | |
1572 | } | |
1573 | ||
1574 | trap_expected = another_trap; | |
1575 | ||
67ac9759 JK |
1576 | if (stop_signal == TARGET_SIGNAL_TRAP) |
1577 | stop_signal = TARGET_SIGNAL_0; | |
bd5635a1 RP |
1578 | |
1579 | #ifdef SHIFT_INST_REGS | |
1580 | /* I'm not sure when this following segment applies. I do know, now, | |
1581 | that we shouldn't rewrite the regs when we were stopped by a | |
1582 | random signal from the inferior process. */ | |
cef4c2e7 PS |
1583 | /* FIXME: Shouldn't this be based on the valid bit of the SXIP? |
1584 | (this is only used on the 88k). */ | |
bd5635a1 | 1585 | |
d11c44f1 | 1586 | if (!bpstat_explains_signal (stop_bpstat) |
67ac9759 | 1587 | && (stop_signal != TARGET_SIGNAL_CHLD) |
bd5635a1 | 1588 | && !stopped_by_random_signal) |
07a5991a | 1589 | SHIFT_INST_REGS(); |
bd5635a1 RP |
1590 | #endif /* SHIFT_INST_REGS */ |
1591 | ||
cb6b0202 | 1592 | resume (CURRENTLY_STEPPING (), stop_signal); |
bd5635a1 RP |
1593 | } |
1594 | } | |
30875e1c SG |
1595 | |
1596 | stop_stepping: | |
bd5635a1 RP |
1597 | if (target_has_execution) |
1598 | { | |
1599 | /* Assuming the inferior still exists, set these up for next | |
1600 | time, just like we did above if we didn't break out of the | |
1601 | loop. */ | |
1602 | prev_pc = read_pc (); | |
1603 | prev_func_start = stop_func_start; | |
1604 | prev_func_name = stop_func_name; | |
bd5635a1 | 1605 | } |
fe675038 | 1606 | do_cleanups (old_cleanups); |
bd5635a1 RP |
1607 | } |
1608 | \f | |
1609 | /* Here to return control to GDB when the inferior stops for real. | |
1610 | Print appropriate messages, remove breakpoints, give terminal our modes. | |
1611 | ||
1612 | STOP_PRINT_FRAME nonzero means print the executing frame | |
1613 | (pc, function, args, file, line number and line text). | |
1614 | BREAKPOINTS_FAILED nonzero means stop was due to error | |
1615 | attempting to insert breakpoints. */ | |
1616 | ||
1617 | void | |
1618 | normal_stop () | |
1619 | { | |
1620 | /* Make sure that the current_frame's pc is correct. This | |
1621 | is a correction for setting up the frame info before doing | |
1622 | DECR_PC_AFTER_BREAK */ | |
3f0184ac | 1623 | if (target_has_execution && get_current_frame()) |
bd5635a1 RP |
1624 | (get_current_frame ())->pc = read_pc (); |
1625 | ||
1626 | if (breakpoints_failed) | |
1627 | { | |
1628 | target_terminal_ours_for_output (); | |
1629 | print_sys_errmsg ("ptrace", breakpoints_failed); | |
e37a6e9c | 1630 | printf_filtered ("Stopped; cannot insert breakpoints.\n\ |
bd5635a1 RP |
1631 | The same program may be running in another process.\n"); |
1632 | } | |
1633 | ||
bd5635a1 RP |
1634 | if (target_has_execution && breakpoints_inserted) |
1635 | if (remove_breakpoints ()) | |
1636 | { | |
1637 | target_terminal_ours_for_output (); | |
e37a6e9c | 1638 | printf_filtered ("Cannot remove breakpoints because program is no longer writable.\n\ |
bd5635a1 RP |
1639 | It might be running in another process.\n\ |
1640 | Further execution is probably impossible.\n"); | |
1641 | } | |
1642 | ||
1643 | breakpoints_inserted = 0; | |
1644 | ||
1645 | /* Delete the breakpoint we stopped at, if it wants to be deleted. | |
1646 | Delete any breakpoint that is to be deleted at the next stop. */ | |
1647 | ||
1648 | breakpoint_auto_delete (stop_bpstat); | |
1649 | ||
1650 | /* If an auto-display called a function and that got a signal, | |
1651 | delete that auto-display to avoid an infinite recursion. */ | |
1652 | ||
1653 | if (stopped_by_random_signal) | |
1654 | disable_current_display (); | |
1655 | ||
1656 | if (step_multi && stop_step) | |
1c95d7ab | 1657 | goto done; |
bd5635a1 RP |
1658 | |
1659 | target_terminal_ours (); | |
1660 | ||
87273c71 JL |
1661 | if (stop_bpstat && stop_bpstat->breakpoint_at->type == bp_shlib_event) |
1662 | printf_filtered ("Stopped due to shared library event\n"); | |
1663 | ||
3950a34e RP |
1664 | /* Look up the hook_stop and run it if it exists. */ |
1665 | ||
1666 | if (stop_command->hook) | |
1667 | { | |
1668 | catch_errors (hook_stop_stub, (char *)stop_command->hook, | |
fee44494 | 1669 | "Error while running hook_stop:\n", RETURN_MASK_ALL); |
3950a34e RP |
1670 | } |
1671 | ||
bd5635a1 | 1672 | if (!target_has_stack) |
1c95d7ab | 1673 | goto done; |
bd5635a1 RP |
1674 | |
1675 | /* Select innermost stack frame except on return from a stack dummy routine, | |
1515ff18 JG |
1676 | or if the program has exited. Print it without a level number if |
1677 | we have changed functions or hit a breakpoint. Print source line | |
1678 | if we have one. */ | |
bd5635a1 RP |
1679 | if (!stop_stack_dummy) |
1680 | { | |
479f0f18 SG |
1681 | select_frame (get_current_frame (), 0); |
1682 | ||
bd5635a1 RP |
1683 | if (stop_print_frame) |
1684 | { | |
1515ff18 JG |
1685 | int source_only; |
1686 | ||
1687 | source_only = bpstat_print (stop_bpstat); | |
1688 | source_only = source_only || | |
1689 | ( stop_step | |
479f0f18 | 1690 | && step_frame_address == FRAME_FP (get_current_frame ()) |
1515ff18 JG |
1691 | && step_start_function == find_pc_function (stop_pc)); |
1692 | ||
1693 | print_stack_frame (selected_frame, -1, source_only? -1: 1); | |
bd5635a1 RP |
1694 | |
1695 | /* Display the auto-display expressions. */ | |
1696 | do_displays (); | |
1697 | } | |
1698 | } | |
1699 | ||
1700 | /* Save the function value return registers, if we care. | |
1701 | We might be about to restore their previous contents. */ | |
1702 | if (proceed_to_finish) | |
1703 | read_register_bytes (0, stop_registers, REGISTER_BYTES); | |
1704 | ||
1705 | if (stop_stack_dummy) | |
1706 | { | |
1707 | /* Pop the empty frame that contains the stack dummy. | |
1708 | POP_FRAME ends with a setting of the current frame, so we | |
1709 | can use that next. */ | |
1710 | POP_FRAME; | |
f1de67d3 PS |
1711 | /* Set stop_pc to what it was before we called the function. Can't rely |
1712 | on restore_inferior_status because that only gets called if we don't | |
1713 | stop in the called function. */ | |
1714 | stop_pc = read_pc(); | |
bd5635a1 RP |
1715 | select_frame (get_current_frame (), 0); |
1716 | } | |
1c95d7ab JK |
1717 | done: |
1718 | annotate_stopped (); | |
bd5635a1 | 1719 | } |
3950a34e RP |
1720 | |
1721 | static int | |
1722 | hook_stop_stub (cmd) | |
1723 | char *cmd; | |
1724 | { | |
1725 | execute_user_command ((struct cmd_list_element *)cmd, 0); | |
a8a69e63 | 1726 | return (0); |
3950a34e | 1727 | } |
bd5635a1 | 1728 | \f |
cc221e76 FF |
1729 | int signal_stop_state (signo) |
1730 | int signo; | |
1731 | { | |
67ac9759 | 1732 | return signal_stop[signo]; |
cc221e76 FF |
1733 | } |
1734 | ||
1735 | int signal_print_state (signo) | |
1736 | int signo; | |
1737 | { | |
67ac9759 | 1738 | return signal_print[signo]; |
cc221e76 FF |
1739 | } |
1740 | ||
1741 | int signal_pass_state (signo) | |
1742 | int signo; | |
1743 | { | |
67ac9759 | 1744 | return signal_program[signo]; |
cc221e76 FF |
1745 | } |
1746 | ||
bd5635a1 RP |
1747 | static void |
1748 | sig_print_header () | |
1749 | { | |
67ac9759 JK |
1750 | printf_filtered ("\ |
1751 | Signal Stop\tPrint\tPass to program\tDescription\n"); | |
bd5635a1 RP |
1752 | } |
1753 | ||
1754 | static void | |
67ac9759 JK |
1755 | sig_print_info (oursig) |
1756 | enum target_signal oursig; | |
bd5635a1 | 1757 | { |
67ac9759 JK |
1758 | char *name = target_signal_to_name (oursig); |
1759 | printf_filtered ("%s", name); | |
1760 | printf_filtered ("%*.*s ", 13 - strlen (name), 13 - strlen (name), | |
1761 | " "); | |
1762 | printf_filtered ("%s\t", signal_stop[oursig] ? "Yes" : "No"); | |
1763 | printf_filtered ("%s\t", signal_print[oursig] ? "Yes" : "No"); | |
1764 | printf_filtered ("%s\t\t", signal_program[oursig] ? "Yes" : "No"); | |
1765 | printf_filtered ("%s\n", target_signal_to_string (oursig)); | |
bd5635a1 RP |
1766 | } |
1767 | ||
1768 | /* Specify how various signals in the inferior should be handled. */ | |
1769 | ||
1770 | static void | |
1771 | handle_command (args, from_tty) | |
1772 | char *args; | |
1773 | int from_tty; | |
1774 | { | |
072b552a JG |
1775 | char **argv; |
1776 | int digits, wordlen; | |
1777 | int sigfirst, signum, siglast; | |
67ac9759 | 1778 | enum target_signal oursig; |
072b552a JG |
1779 | int allsigs; |
1780 | int nsigs; | |
1781 | unsigned char *sigs; | |
1782 | struct cleanup *old_chain; | |
1783 | ||
1784 | if (args == NULL) | |
1785 | { | |
1786 | error_no_arg ("signal to handle"); | |
1787 | } | |
bd5635a1 | 1788 | |
072b552a JG |
1789 | /* Allocate and zero an array of flags for which signals to handle. */ |
1790 | ||
67ac9759 | 1791 | nsigs = (int)TARGET_SIGNAL_LAST; |
072b552a JG |
1792 | sigs = (unsigned char *) alloca (nsigs); |
1793 | memset (sigs, 0, nsigs); | |
bd5635a1 | 1794 | |
072b552a JG |
1795 | /* Break the command line up into args. */ |
1796 | ||
1797 | argv = buildargv (args); | |
1798 | if (argv == NULL) | |
bd5635a1 | 1799 | { |
072b552a JG |
1800 | nomem (0); |
1801 | } | |
1802 | old_chain = make_cleanup (freeargv, (char *) argv); | |
bd5635a1 | 1803 | |
67ac9759 | 1804 | /* Walk through the args, looking for signal oursigs, signal names, and |
072b552a JG |
1805 | actions. Signal numbers and signal names may be interspersed with |
1806 | actions, with the actions being performed for all signals cumulatively | |
1807 | specified. Signal ranges can be specified as <LOW>-<HIGH>. */ | |
bd5635a1 | 1808 | |
072b552a JG |
1809 | while (*argv != NULL) |
1810 | { | |
1811 | wordlen = strlen (*argv); | |
1812 | for (digits = 0; isdigit ((*argv)[digits]); digits++) {;} | |
1813 | allsigs = 0; | |
1814 | sigfirst = siglast = -1; | |
1815 | ||
1816 | if (wordlen >= 1 && !strncmp (*argv, "all", wordlen)) | |
1817 | { | |
1818 | /* Apply action to all signals except those used by the | |
1819 | debugger. Silently skip those. */ | |
1820 | allsigs = 1; | |
1821 | sigfirst = 0; | |
1822 | siglast = nsigs - 1; | |
1823 | } | |
1824 | else if (wordlen >= 1 && !strncmp (*argv, "stop", wordlen)) | |
1825 | { | |
1826 | SET_SIGS (nsigs, sigs, signal_stop); | |
1827 | SET_SIGS (nsigs, sigs, signal_print); | |
1828 | } | |
1829 | else if (wordlen >= 1 && !strncmp (*argv, "ignore", wordlen)) | |
1830 | { | |
1831 | UNSET_SIGS (nsigs, sigs, signal_program); | |
1832 | } | |
1833 | else if (wordlen >= 2 && !strncmp (*argv, "print", wordlen)) | |
1834 | { | |
1835 | SET_SIGS (nsigs, sigs, signal_print); | |
1836 | } | |
1837 | else if (wordlen >= 2 && !strncmp (*argv, "pass", wordlen)) | |
1838 | { | |
1839 | SET_SIGS (nsigs, sigs, signal_program); | |
1840 | } | |
1841 | else if (wordlen >= 3 && !strncmp (*argv, "nostop", wordlen)) | |
1842 | { | |
1843 | UNSET_SIGS (nsigs, sigs, signal_stop); | |
1844 | } | |
1845 | else if (wordlen >= 3 && !strncmp (*argv, "noignore", wordlen)) | |
1846 | { | |
1847 | SET_SIGS (nsigs, sigs, signal_program); | |
1848 | } | |
1849 | else if (wordlen >= 4 && !strncmp (*argv, "noprint", wordlen)) | |
1850 | { | |
1851 | UNSET_SIGS (nsigs, sigs, signal_print); | |
1852 | UNSET_SIGS (nsigs, sigs, signal_stop); | |
1853 | } | |
1854 | else if (wordlen >= 4 && !strncmp (*argv, "nopass", wordlen)) | |
1855 | { | |
1856 | UNSET_SIGS (nsigs, sigs, signal_program); | |
1857 | } | |
1858 | else if (digits > 0) | |
bd5635a1 | 1859 | { |
67ac9759 JK |
1860 | /* It is numeric. The numeric signal refers to our own internal |
1861 | signal numbering from target.h, not to host/target signal number. | |
1862 | This is a feature; users really should be using symbolic names | |
1863 | anyway, and the common ones like SIGHUP, SIGINT, SIGALRM, etc. | |
1864 | will work right anyway. */ | |
1865 | ||
c66ed884 | 1866 | sigfirst = siglast = (int) target_signal_from_command (atoi (*argv)); |
072b552a | 1867 | if ((*argv)[digits] == '-') |
bd5635a1 | 1868 | { |
c66ed884 SG |
1869 | siglast = |
1870 | (int) target_signal_from_command (atoi ((*argv) + digits + 1)); | |
bd5635a1 | 1871 | } |
072b552a | 1872 | if (sigfirst > siglast) |
bd5635a1 | 1873 | { |
072b552a JG |
1874 | /* Bet he didn't figure we'd think of this case... */ |
1875 | signum = sigfirst; | |
1876 | sigfirst = siglast; | |
1877 | siglast = signum; | |
bd5635a1 | 1878 | } |
bd5635a1 | 1879 | } |
072b552a | 1880 | else |
bd5635a1 | 1881 | { |
fcbc95a7 JK |
1882 | oursig = target_signal_from_name (*argv); |
1883 | if (oursig != TARGET_SIGNAL_UNKNOWN) | |
1884 | { | |
1885 | sigfirst = siglast = (int)oursig; | |
1886 | } | |
1887 | else | |
1888 | { | |
1889 | /* Not a number and not a recognized flag word => complain. */ | |
1890 | error ("Unrecognized or ambiguous flag word: \"%s\".", *argv); | |
1891 | } | |
bd5635a1 | 1892 | } |
072b552a JG |
1893 | |
1894 | /* If any signal numbers or symbol names were found, set flags for | |
1895 | which signals to apply actions to. */ | |
1896 | ||
1897 | for (signum = sigfirst; signum >= 0 && signum <= siglast; signum++) | |
bd5635a1 | 1898 | { |
67ac9759 | 1899 | switch ((enum target_signal)signum) |
072b552a | 1900 | { |
67ac9759 JK |
1901 | case TARGET_SIGNAL_TRAP: |
1902 | case TARGET_SIGNAL_INT: | |
072b552a JG |
1903 | if (!allsigs && !sigs[signum]) |
1904 | { | |
67ac9759 JK |
1905 | if (query ("%s is used by the debugger.\n\ |
1906 | Are you sure you want to change it? ", | |
1907 | target_signal_to_name | |
1908 | ((enum target_signal)signum))) | |
072b552a JG |
1909 | { |
1910 | sigs[signum] = 1; | |
1911 | } | |
1912 | else | |
1913 | { | |
199b2450 TL |
1914 | printf_unfiltered ("Not confirmed, unchanged.\n"); |
1915 | gdb_flush (gdb_stdout); | |
072b552a JG |
1916 | } |
1917 | } | |
1918 | break; | |
c66ed884 SG |
1919 | case TARGET_SIGNAL_0: |
1920 | case TARGET_SIGNAL_DEFAULT: | |
1921 | case TARGET_SIGNAL_UNKNOWN: | |
1922 | /* Make sure that "all" doesn't print these. */ | |
1923 | break; | |
072b552a JG |
1924 | default: |
1925 | sigs[signum] = 1; | |
1926 | break; | |
1927 | } | |
bd5635a1 RP |
1928 | } |
1929 | ||
072b552a | 1930 | argv++; |
bd5635a1 RP |
1931 | } |
1932 | ||
de43d7d0 | 1933 | target_notice_signals(inferior_pid); |
cc221e76 | 1934 | |
bd5635a1 RP |
1935 | if (from_tty) |
1936 | { | |
1937 | /* Show the results. */ | |
1938 | sig_print_header (); | |
072b552a JG |
1939 | for (signum = 0; signum < nsigs; signum++) |
1940 | { | |
1941 | if (sigs[signum]) | |
1942 | { | |
1943 | sig_print_info (signum); | |
1944 | } | |
1945 | } | |
bd5635a1 | 1946 | } |
072b552a JG |
1947 | |
1948 | do_cleanups (old_chain); | |
bd5635a1 RP |
1949 | } |
1950 | ||
67ac9759 JK |
1951 | /* Print current contents of the tables set by the handle command. |
1952 | It is possible we should just be printing signals actually used | |
1953 | by the current target (but for things to work right when switching | |
1954 | targets, all signals should be in the signal tables). */ | |
bd5635a1 RP |
1955 | |
1956 | static void | |
e37a6e9c | 1957 | signals_info (signum_exp, from_tty) |
bd5635a1 | 1958 | char *signum_exp; |
e37a6e9c | 1959 | int from_tty; |
bd5635a1 | 1960 | { |
67ac9759 | 1961 | enum target_signal oursig; |
bd5635a1 RP |
1962 | sig_print_header (); |
1963 | ||
1964 | if (signum_exp) | |
1965 | { | |
1966 | /* First see if this is a symbol name. */ | |
67ac9759 JK |
1967 | oursig = target_signal_from_name (signum_exp); |
1968 | if (oursig == TARGET_SIGNAL_UNKNOWN) | |
bd5635a1 | 1969 | { |
c66ed884 SG |
1970 | /* No, try numeric. */ |
1971 | oursig = | |
1972 | target_signal_from_command (parse_and_eval_address (signum_exp)); | |
bd5635a1 | 1973 | } |
67ac9759 | 1974 | sig_print_info (oursig); |
bd5635a1 RP |
1975 | return; |
1976 | } | |
1977 | ||
1978 | printf_filtered ("\n"); | |
db4340a6 | 1979 | /* These ugly casts brought to you by the native VAX compiler. */ |
2fe3b329 | 1980 | for (oursig = TARGET_SIGNAL_FIRST; |
db4340a6 JK |
1981 | (int)oursig < (int)TARGET_SIGNAL_LAST; |
1982 | oursig = (enum target_signal)((int)oursig + 1)) | |
bd5635a1 RP |
1983 | { |
1984 | QUIT; | |
1985 | ||
fcbc95a7 JK |
1986 | if (oursig != TARGET_SIGNAL_UNKNOWN |
1987 | && oursig != TARGET_SIGNAL_DEFAULT | |
1988 | && oursig != TARGET_SIGNAL_0) | |
67ac9759 | 1989 | sig_print_info (oursig); |
bd5635a1 RP |
1990 | } |
1991 | ||
1992 | printf_filtered ("\nUse the \"handle\" command to change these tables.\n"); | |
1993 | } | |
1994 | \f | |
1995 | /* Save all of the information associated with the inferior<==>gdb | |
1996 | connection. INF_STATUS is a pointer to a "struct inferior_status" | |
1997 | (defined in inferior.h). */ | |
1998 | ||
1999 | void | |
2000 | save_inferior_status (inf_status, restore_stack_info) | |
2001 | struct inferior_status *inf_status; | |
2002 | int restore_stack_info; | |
2003 | { | |
bd5635a1 RP |
2004 | inf_status->stop_signal = stop_signal; |
2005 | inf_status->stop_pc = stop_pc; | |
bd5635a1 RP |
2006 | inf_status->stop_step = stop_step; |
2007 | inf_status->stop_stack_dummy = stop_stack_dummy; | |
2008 | inf_status->stopped_by_random_signal = stopped_by_random_signal; | |
2009 | inf_status->trap_expected = trap_expected; | |
2010 | inf_status->step_range_start = step_range_start; | |
2011 | inf_status->step_range_end = step_range_end; | |
2012 | inf_status->step_frame_address = step_frame_address; | |
2013 | inf_status->step_over_calls = step_over_calls; | |
bd5635a1 RP |
2014 | inf_status->stop_after_trap = stop_after_trap; |
2015 | inf_status->stop_soon_quietly = stop_soon_quietly; | |
2016 | /* Save original bpstat chain here; replace it with copy of chain. | |
2017 | If caller's caller is walking the chain, they'll be happier if we | |
2018 | hand them back the original chain when restore_i_s is called. */ | |
2019 | inf_status->stop_bpstat = stop_bpstat; | |
2020 | stop_bpstat = bpstat_copy (stop_bpstat); | |
2021 | inf_status->breakpoint_proceeded = breakpoint_proceeded; | |
2022 | inf_status->restore_stack_info = restore_stack_info; | |
2023 | inf_status->proceed_to_finish = proceed_to_finish; | |
2024 | ||
072b552a | 2025 | memcpy (inf_status->stop_registers, stop_registers, REGISTER_BYTES); |
37c99ddb JK |
2026 | |
2027 | read_register_bytes (0, inf_status->registers, REGISTER_BYTES); | |
2028 | ||
bd5635a1 RP |
2029 | record_selected_frame (&(inf_status->selected_frame_address), |
2030 | &(inf_status->selected_level)); | |
2031 | return; | |
2032 | } | |
2033 | ||
37c99ddb | 2034 | struct restore_selected_frame_args { |
4cc1b3f7 | 2035 | CORE_ADDR frame_address; |
37c99ddb JK |
2036 | int level; |
2037 | }; | |
2038 | ||
2039 | static int restore_selected_frame PARAMS ((char *)); | |
2040 | ||
2041 | /* Restore the selected frame. args is really a struct | |
2042 | restore_selected_frame_args * (declared as char * for catch_errors) | |
2043 | telling us what frame to restore. Returns 1 for success, or 0 for | |
2044 | failure. An error message will have been printed on error. */ | |
4cc1b3f7 | 2045 | |
37c99ddb JK |
2046 | static int |
2047 | restore_selected_frame (args) | |
2048 | char *args; | |
2049 | { | |
2050 | struct restore_selected_frame_args *fr = | |
2051 | (struct restore_selected_frame_args *) args; | |
4cc1b3f7 | 2052 | struct frame_info *frame; |
37c99ddb JK |
2053 | int level = fr->level; |
2054 | ||
4cc1b3f7 | 2055 | frame = find_relative_frame (get_current_frame (), &level); |
37c99ddb JK |
2056 | |
2057 | /* If inf_status->selected_frame_address is NULL, there was no | |
2058 | previously selected frame. */ | |
4cc1b3f7 JK |
2059 | if (frame == NULL || |
2060 | FRAME_FP (frame) != fr->frame_address || | |
37c99ddb JK |
2061 | level != 0) |
2062 | { | |
2063 | warning ("Unable to restore previously selected frame.\n"); | |
2064 | return 0; | |
2065 | } | |
4cc1b3f7 | 2066 | select_frame (frame, fr->level); |
37c99ddb JK |
2067 | return(1); |
2068 | } | |
2069 | ||
bd5635a1 RP |
2070 | void |
2071 | restore_inferior_status (inf_status) | |
2072 | struct inferior_status *inf_status; | |
2073 | { | |
bd5635a1 RP |
2074 | stop_signal = inf_status->stop_signal; |
2075 | stop_pc = inf_status->stop_pc; | |
bd5635a1 RP |
2076 | stop_step = inf_status->stop_step; |
2077 | stop_stack_dummy = inf_status->stop_stack_dummy; | |
2078 | stopped_by_random_signal = inf_status->stopped_by_random_signal; | |
2079 | trap_expected = inf_status->trap_expected; | |
2080 | step_range_start = inf_status->step_range_start; | |
2081 | step_range_end = inf_status->step_range_end; | |
2082 | step_frame_address = inf_status->step_frame_address; | |
2083 | step_over_calls = inf_status->step_over_calls; | |
bd5635a1 RP |
2084 | stop_after_trap = inf_status->stop_after_trap; |
2085 | stop_soon_quietly = inf_status->stop_soon_quietly; | |
2086 | bpstat_clear (&stop_bpstat); | |
2087 | stop_bpstat = inf_status->stop_bpstat; | |
2088 | breakpoint_proceeded = inf_status->breakpoint_proceeded; | |
2089 | proceed_to_finish = inf_status->proceed_to_finish; | |
2090 | ||
072b552a | 2091 | memcpy (stop_registers, inf_status->stop_registers, REGISTER_BYTES); |
bd5635a1 RP |
2092 | |
2093 | /* The inferior can be gone if the user types "print exit(0)" | |
2094 | (and perhaps other times). */ | |
37c99ddb JK |
2095 | if (target_has_execution) |
2096 | write_register_bytes (0, inf_status->registers, REGISTER_BYTES); | |
2097 | ||
2098 | /* The inferior can be gone if the user types "print exit(0)" | |
2099 | (and perhaps other times). */ | |
2100 | ||
2101 | /* FIXME: If we are being called after stopping in a function which | |
2102 | is called from gdb, we should not be trying to restore the | |
2103 | selected frame; it just prints a spurious error message (The | |
2104 | message is useful, however, in detecting bugs in gdb (like if gdb | |
2105 | clobbers the stack)). In fact, should we be restoring the | |
2106 | inferior status at all in that case? . */ | |
2107 | ||
bd5635a1 RP |
2108 | if (target_has_stack && inf_status->restore_stack_info) |
2109 | { | |
37c99ddb JK |
2110 | struct restore_selected_frame_args fr; |
2111 | fr.level = inf_status->selected_level; | |
2112 | fr.frame_address = inf_status->selected_frame_address; | |
2113 | /* The point of catch_errors is that if the stack is clobbered, | |
2114 | walking the stack might encounter a garbage pointer and error() | |
2115 | trying to dereference it. */ | |
2116 | if (catch_errors (restore_selected_frame, &fr, | |
2117 | "Unable to restore previously selected frame:\n", | |
2118 | RETURN_MASK_ERROR) == 0) | |
2119 | /* Error in restoring the selected frame. Select the innermost | |
2120 | frame. */ | |
2121 | select_frame (get_current_frame (), 0); | |
bd5635a1 RP |
2122 | } |
2123 | } | |
2124 | ||
2125 | \f | |
2126 | void | |
2127 | _initialize_infrun () | |
2128 | { | |
2129 | register int i; | |
e37a6e9c | 2130 | register int numsigs; |
bd5635a1 RP |
2131 | |
2132 | add_info ("signals", signals_info, | |
2133 | "What debugger does when program gets various signals.\n\ | |
c66ed884 | 2134 | Specify a signal as argument to print info on that signal only."); |
6b50c5c2 | 2135 | add_info_alias ("handle", "signals", 0); |
bd5635a1 RP |
2136 | |
2137 | add_com ("handle", class_run, handle_command, | |
c66ed884 SG |
2138 | concat ("Specify how to handle a signal.\n\ |
2139 | Args are signals and actions to apply to those signals.\n\ | |
2140 | Symbolic signals (e.g. SIGSEGV) are recommended but numeric signals\n\ | |
2141 | from 1-15 are allowed for compatibility with old versions of GDB.\n\ | |
2142 | Numeric ranges may be specified with the form LOW-HIGH (e.g. 1-5).\n\ | |
072b552a | 2143 | The special arg \"all\" is recognized to mean all signals except those\n\ |
c66ed884 SG |
2144 | used by the debugger, typically SIGTRAP and SIGINT.\n", |
2145 | "Recognized actions include \"stop\", \"nostop\", \"print\", \"noprint\",\n\ | |
072b552a | 2146 | \"pass\", \"nopass\", \"ignore\", or \"noignore\".\n\ |
bd5635a1 | 2147 | Stop means reenter debugger if this signal happens (implies print).\n\ |
072b552a | 2148 | Print means print a message if this signal happens.\n\ |
bd5635a1 | 2149 | Pass means let program see this signal; otherwise program doesn't know.\n\ |
072b552a | 2150 | Ignore is a synonym for nopass and noignore is a synonym for pass.\n\ |
c66ed884 | 2151 | Pass and Stop may be combined.", NULL)); |
bd5635a1 | 2152 | |
a8a69e63 | 2153 | stop_command = add_cmd ("stop", class_obscure, not_just_help_class_command, |
3950a34e RP |
2154 | "There is no `stop' command, but you can set a hook on `stop'.\n\ |
2155 | This allows you to set a list of commands to be run each time execution\n\ | |
fee44494 | 2156 | of the program stops.", &cmdlist); |
3950a34e | 2157 | |
67ac9759 JK |
2158 | numsigs = (int)TARGET_SIGNAL_LAST; |
2159 | signal_stop = (unsigned char *) | |
2160 | xmalloc (sizeof (signal_stop[0]) * numsigs); | |
2161 | signal_print = (unsigned char *) | |
2162 | xmalloc (sizeof (signal_print[0]) * numsigs); | |
072b552a | 2163 | signal_program = (unsigned char *) |
67ac9759 | 2164 | xmalloc (sizeof (signal_program[0]) * numsigs); |
e37a6e9c | 2165 | for (i = 0; i < numsigs; i++) |
bd5635a1 RP |
2166 | { |
2167 | signal_stop[i] = 1; | |
2168 | signal_print[i] = 1; | |
2169 | signal_program[i] = 1; | |
2170 | } | |
2171 | ||
2172 | /* Signals caused by debugger's own actions | |
2173 | should not be given to the program afterwards. */ | |
67ac9759 JK |
2174 | signal_program[TARGET_SIGNAL_TRAP] = 0; |
2175 | signal_program[TARGET_SIGNAL_INT] = 0; | |
bd5635a1 RP |
2176 | |
2177 | /* Signals that are not errors should not normally enter the debugger. */ | |
67ac9759 JK |
2178 | signal_stop[TARGET_SIGNAL_ALRM] = 0; |
2179 | signal_print[TARGET_SIGNAL_ALRM] = 0; | |
2180 | signal_stop[TARGET_SIGNAL_VTALRM] = 0; | |
2181 | signal_print[TARGET_SIGNAL_VTALRM] = 0; | |
2182 | signal_stop[TARGET_SIGNAL_PROF] = 0; | |
2183 | signal_print[TARGET_SIGNAL_PROF] = 0; | |
2184 | signal_stop[TARGET_SIGNAL_CHLD] = 0; | |
2185 | signal_print[TARGET_SIGNAL_CHLD] = 0; | |
2186 | signal_stop[TARGET_SIGNAL_IO] = 0; | |
2187 | signal_print[TARGET_SIGNAL_IO] = 0; | |
4d4f2d50 JK |
2188 | signal_stop[TARGET_SIGNAL_POLL] = 0; |
2189 | signal_print[TARGET_SIGNAL_POLL] = 0; | |
67ac9759 JK |
2190 | signal_stop[TARGET_SIGNAL_URG] = 0; |
2191 | signal_print[TARGET_SIGNAL_URG] = 0; | |
87273c71 JL |
2192 | |
2193 | #ifdef SOLIB_ADD | |
2194 | add_show_from_set | |
2195 | (add_set_cmd ("stop-on-solib-events", class_support, var_zinteger, | |
2196 | (char *) &stop_on_solib_events, | |
2197 | "Set stopping for shared library events.\n\ | |
2198 | If nonzero, gdb will give control to the user when the dynamic linker\n\ | |
2199 | notifies gdb of shared library events. The most common event of interest\n\ | |
2200 | to the user would be loading/unloading of a new library.\n", | |
2201 | &setlist), | |
2202 | &showlist); | |
2203 | #endif | |
bd5635a1 | 2204 | } |