Replace the sync_execution global with a new enum prompt_state tristate
[deliverable/binutils-gdb.git] / gdb / event-top.c
1 /* Top level stuff for GDB, the GNU debugger.
2
3 Copyright (C) 1999-2016 Free Software Foundation, Inc.
4
5 Written by Elena Zannoni <ezannoni@cygnus.com> of Cygnus Solutions.
6
7 This file is part of GDB.
8
9 This program is free software; you can redistribute it and/or modify
10 it under the terms of the GNU General Public License as published by
11 the Free Software Foundation; either version 3 of the License, or
12 (at your option) any later version.
13
14 This program is distributed in the hope that it will be useful,
15 but WITHOUT ANY WARRANTY; without even the implied warranty of
16 MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
17 GNU General Public License for more details.
18
19 You should have received a copy of the GNU General Public License
20 along with this program. If not, see <http://www.gnu.org/licenses/>. */
21
22 #include "defs.h"
23 #include "top.h"
24 #include "inferior.h"
25 #include "infrun.h"
26 #include "target.h"
27 #include "terminal.h" /* for job_control */
28 #include "event-loop.h"
29 #include "event-top.h"
30 #include "interps.h"
31 #include <signal.h>
32 #include "cli/cli-script.h" /* for reset_command_nest_depth */
33 #include "main.h"
34 #include "gdbthread.h"
35 #include "observer.h"
36 #include "continuations.h"
37 #include "gdbcmd.h" /* for dont_repeat() */
38 #include "annotate.h"
39 #include "maint.h"
40 #include "buffer.h"
41 #include "ser-event.h"
42 #include "gdb_select.h"
43
44 /* readline include files. */
45 #include "readline/readline.h"
46 #include "readline/history.h"
47
48 /* readline defines this. */
49 #undef savestring
50
51 static char *top_level_prompt (void);
52
53 /* Signal handlers. */
54 #ifdef SIGQUIT
55 static void handle_sigquit (int sig);
56 #endif
57 #ifdef SIGHUP
58 static void handle_sighup (int sig);
59 #endif
60 static void handle_sigfpe (int sig);
61
62 /* Functions to be invoked by the event loop in response to
63 signals. */
64 #if defined (SIGQUIT) || defined (SIGHUP)
65 static void async_do_nothing (gdb_client_data);
66 #endif
67 #ifdef SIGHUP
68 static void async_disconnect (gdb_client_data);
69 #endif
70 static void async_float_handler (gdb_client_data);
71 #ifdef STOP_SIGNAL
72 static void async_stop_sig (gdb_client_data);
73 #endif
74 static void async_sigterm_handler (gdb_client_data arg);
75
76 /* Instead of invoking (and waiting for) readline to read the command
77 line and pass it back for processing, we use readline's alternate
78 interface, via callback functions, so that the event loop can react
79 to other event sources while we wait for input. */
80
81 /* Important variables for the event loop. */
82
83 /* This is used to determine if GDB is using the readline library or
84 its own simplified form of readline. It is used by the asynchronous
85 form of the set editing command.
86 ezannoni: as of 1999-04-29 I expect that this
87 variable will not be used after gdb is changed to use the event
88 loop as default engine, and event-top.c is merged into top.c. */
89 int set_editing_cmd_var;
90
91 /* This is used to display the notification of the completion of an
92 asynchronous execution command. */
93 int exec_done_display_p = 0;
94
95 /* Used by the stdin event handler to compensate for missed stdin events.
96 Setting this to a non-zero value inside an stdin callback makes the callback
97 run again. */
98 int call_stdin_event_handler_again_p;
99
100 /* Signal handling variables. */
101 /* Each of these is a pointer to a function that the event loop will
102 invoke if the corresponding signal has received. The real signal
103 handlers mark these functions as ready to be executed and the event
104 loop, in a later iteration, calls them. See the function
105 invoke_async_signal_handler. */
106 static struct async_signal_handler *sigint_token;
107 #ifdef SIGHUP
108 static struct async_signal_handler *sighup_token;
109 #endif
110 #ifdef SIGQUIT
111 static struct async_signal_handler *sigquit_token;
112 #endif
113 static struct async_signal_handler *sigfpe_token;
114 #ifdef STOP_SIGNAL
115 static struct async_signal_handler *sigtstp_token;
116 #endif
117 static struct async_signal_handler *async_sigterm_token;
118
119 /* This hook is called by gdb_rl_callback_read_char_wrapper after each
120 character is processed. */
121 void (*after_char_processing_hook) (void);
122 \f
123
124 /* Wrapper function for calling into the readline library. This takes
125 care of a couple things:
126
127 - The event loop expects the callback function to have a parameter,
128 while readline expects none.
129
130 - Propagation of GDB exceptions/errors thrown from INPUT_HANDLER
131 across readline requires special handling.
132
133 On the exceptions issue:
134
135 DWARF-based unwinding cannot cross code built without -fexceptions.
136 Any exception that tries to propagate through such code will fail
137 and the result is a call to std::terminate. While some ABIs, such
138 as x86-64, require all code to be built with exception tables,
139 others don't.
140
141 This is a problem when GDB calls some non-EH-aware C library code,
142 that calls into GDB again through a callback, and that GDB callback
143 code throws a C++ exception. Turns out this is exactly what
144 happens with GDB's readline callback.
145
146 In such cases, we must catch and save any C++ exception that might
147 be thrown from the GDB callback before returning to the
148 non-EH-aware code. When the non-EH-aware function itself returns
149 back to GDB, we then rethrow the original C++ exception.
150
151 In the readline case however, the right thing to do is to longjmp
152 out of the callback, rather than do a normal return -- there's no
153 way for the callback to return to readline an indication that an
154 error happened, so a normal return would have rl_callback_read_char
155 potentially continue processing further input, redisplay the
156 prompt, etc. Instead of raw setjmp/longjmp however, we use our
157 sjlj-based TRY/CATCH mechanism, which knows to handle multiple
158 levels of active setjmp/longjmp frames, needed in order to handle
159 the readline callback recursing, as happens with e.g., secondary
160 prompts / queries, through gdb_readline_wrapper. */
161
162 static void
163 gdb_rl_callback_read_char_wrapper (gdb_client_data client_data)
164 {
165 struct gdb_exception gdb_expt = exception_none;
166
167 /* C++ exceptions can't normally be thrown across readline (unless
168 it is built with -fexceptions, but it won't by default on many
169 ABIs). So we instead wrap the readline call with a sjlj-based
170 TRY/CATCH, and rethrow the GDB exception once back in GDB. */
171 TRY_SJLJ
172 {
173 rl_callback_read_char ();
174 if (after_char_processing_hook)
175 (*after_char_processing_hook) ();
176 }
177 CATCH_SJLJ (ex, RETURN_MASK_ALL)
178 {
179 gdb_expt = ex;
180 }
181 END_CATCH_SJLJ
182
183 /* Rethrow using the normal EH mechanism. */
184 if (gdb_expt.reason < 0)
185 throw_exception (gdb_expt);
186 }
187
188 /* GDB's readline callback handler. Calls the current INPUT_HANDLER,
189 and propagates GDB exceptions/errors thrown from INPUT_HANDLER back
190 across readline. See gdb_rl_callback_read_char_wrapper. */
191
192 static void
193 gdb_rl_callback_handler (char *rl)
194 {
195 struct gdb_exception gdb_rl_expt = exception_none;
196 struct ui *ui = current_ui;
197
198 TRY
199 {
200 ui->input_handler (rl);
201 }
202 CATCH (ex, RETURN_MASK_ALL)
203 {
204 gdb_rl_expt = ex;
205 }
206 END_CATCH
207
208 /* If we caught a GDB exception, longjmp out of the readline
209 callback. There's no other way for the callback to signal to
210 readline that an error happened. A normal return would have
211 readline potentially continue processing further input, redisplay
212 the prompt, etc. (This is what GDB historically did when it was
213 a C program.) Note that since we're long jumping, local variable
214 dtors are NOT run automatically. */
215 if (gdb_rl_expt.reason < 0)
216 throw_exception_sjlj (gdb_rl_expt);
217 }
218
219 /* Change the function to be invoked every time there is a character
220 ready on stdin. This is used when the user sets the editing off,
221 therefore bypassing readline, and letting gdb handle the input
222 itself, via gdb_readline_no_editing_callback. Also it is used in
223 the opposite case in which the user sets editing on again, by
224 restoring readline handling of the input.
225
226 NOTE: this operates on input_fd, not instream. If we are reading
227 commands from a file, instream will point to the file. However, we
228 always read commands from a file with editing off. This means that
229 the 'set editing on/off' will have effect only on the interactive
230 session. */
231
232 void
233 change_line_handler (int editing)
234 {
235 struct ui *ui = current_ui;
236
237 /* We can only have one instance of readline, so we only allow
238 editing on the main UI. */
239 if (ui != main_ui)
240 return;
241
242 /* Don't try enabling editing if the interpreter doesn't support it
243 (e.g., MI). */
244 if (!interp_supports_command_editing (top_level_interpreter ())
245 || !interp_supports_command_editing (command_interp ()))
246 return;
247
248 if (editing)
249 {
250 gdb_assert (ui == main_ui);
251
252 /* Turn on editing by using readline. */
253 ui->call_readline = gdb_rl_callback_read_char_wrapper;
254 }
255 else
256 {
257 /* Turn off editing by using gdb_readline_no_editing_callback. */
258 if (ui->command_editing)
259 gdb_rl_callback_handler_remove ();
260 ui->call_readline = gdb_readline_no_editing_callback;
261 }
262 ui->command_editing = editing;
263 }
264
265 /* The functions below are wrappers for rl_callback_handler_remove and
266 rl_callback_handler_install that keep track of whether the callback
267 handler is installed in readline. This is necessary because after
268 handling a target event of a background execution command, we may
269 need to reinstall the callback handler if it was removed due to a
270 secondary prompt. See gdb_readline_wrapper_line. We don't
271 unconditionally install the handler for every target event because
272 that also clears the line buffer, thus installing it while the user
273 is typing would lose input. */
274
275 /* Whether we've registered a callback handler with readline. */
276 static int callback_handler_installed;
277
278 /* See event-top.h, and above. */
279
280 void
281 gdb_rl_callback_handler_remove (void)
282 {
283 gdb_assert (current_ui == main_ui);
284
285 rl_callback_handler_remove ();
286 callback_handler_installed = 0;
287 }
288
289 /* See event-top.h, and above. Note this wrapper doesn't have an
290 actual callback parameter because we always install
291 INPUT_HANDLER. */
292
293 void
294 gdb_rl_callback_handler_install (const char *prompt)
295 {
296 gdb_assert (current_ui == main_ui);
297
298 /* Calling rl_callback_handler_install resets readline's input
299 buffer. Calling this when we were already processing input
300 therefore loses input. */
301 gdb_assert (!callback_handler_installed);
302
303 rl_callback_handler_install (prompt, gdb_rl_callback_handler);
304 callback_handler_installed = 1;
305 }
306
307 /* See event-top.h, and above. */
308
309 void
310 gdb_rl_callback_handler_reinstall (void)
311 {
312 gdb_assert (current_ui == main_ui);
313
314 if (!callback_handler_installed)
315 {
316 /* Passing NULL as prompt argument tells readline to not display
317 a prompt. */
318 gdb_rl_callback_handler_install (NULL);
319 }
320 }
321
322 /* Displays the prompt. If the argument NEW_PROMPT is NULL, the
323 prompt that is displayed is the current top level prompt.
324 Otherwise, it displays whatever NEW_PROMPT is as a local/secondary
325 prompt.
326
327 This is used after each gdb command has completed, and in the
328 following cases:
329
330 1. When the user enters a command line which is ended by '\'
331 indicating that the command will continue on the next line. In
332 that case the prompt that is displayed is the empty string.
333
334 2. When the user is entering 'commands' for a breakpoint, or
335 actions for a tracepoint. In this case the prompt will be '>'
336
337 3. On prompting for pagination. */
338
339 void
340 display_gdb_prompt (const char *new_prompt)
341 {
342 char *actual_gdb_prompt = NULL;
343 struct cleanup *old_chain;
344
345 annotate_display_prompt ();
346
347 /* Reset the nesting depth used when trace-commands is set. */
348 reset_command_nest_depth ();
349
350 old_chain = make_cleanup (free_current_contents, &actual_gdb_prompt);
351
352 /* Do not call the python hook on an explicit prompt change as
353 passed to this function, as this forms a secondary/local prompt,
354 IE, displayed but not set. */
355 if (! new_prompt)
356 {
357 struct ui *ui = current_ui;
358
359 if (ui->prompt_state == PROMPTED)
360 internal_error (__FILE__, __LINE__, _("double prompt"));
361 else if (ui->prompt_state == PROMPT_BLOCKED)
362 {
363 /* This is to trick readline into not trying to display the
364 prompt. Even though we display the prompt using this
365 function, readline still tries to do its own display if
366 we don't call rl_callback_handler_install and
367 rl_callback_handler_remove (which readline detects
368 because a global variable is not set). If readline did
369 that, it could mess up gdb signal handlers for SIGINT.
370 Readline assumes that between calls to rl_set_signals and
371 rl_clear_signals gdb doesn't do anything with the signal
372 handlers. Well, that's not the case, because when the
373 target executes we change the SIGINT signal handler. If
374 we allowed readline to display the prompt, the signal
375 handler change would happen exactly between the calls to
376 the above two functions. Calling
377 rl_callback_handler_remove(), does the job. */
378
379 if (current_ui->command_editing)
380 gdb_rl_callback_handler_remove ();
381 do_cleanups (old_chain);
382 return;
383 }
384 else if (ui->prompt_state == PROMPT_NEEDED)
385 {
386 /* Display the top level prompt. */
387 actual_gdb_prompt = top_level_prompt ();
388 ui->prompt_state = PROMPTED;
389 }
390 }
391 else
392 actual_gdb_prompt = xstrdup (new_prompt);
393
394 if (current_ui->command_editing)
395 {
396 gdb_rl_callback_handler_remove ();
397 gdb_rl_callback_handler_install (actual_gdb_prompt);
398 }
399 /* new_prompt at this point can be the top of the stack or the one
400 passed in. It can't be NULL. */
401 else
402 {
403 /* Don't use a _filtered function here. It causes the assumed
404 character position to be off, since the newline we read from
405 the user is not accounted for. */
406 fputs_unfiltered (actual_gdb_prompt, gdb_stdout);
407 gdb_flush (gdb_stdout);
408 }
409
410 do_cleanups (old_chain);
411 }
412
413 /* Return the top level prompt, as specified by "set prompt", possibly
414 overriden by the python gdb.prompt_hook hook, and then composed
415 with the prompt prefix and suffix (annotations). The caller is
416 responsible for freeing the returned string. */
417
418 static char *
419 top_level_prompt (void)
420 {
421 char *prompt;
422
423 /* Give observers a chance of changing the prompt. E.g., the python
424 `gdb.prompt_hook' is installed as an observer. */
425 observer_notify_before_prompt (get_prompt ());
426
427 prompt = get_prompt ();
428
429 if (annotation_level >= 2)
430 {
431 /* Prefix needs to have new line at end. */
432 const char prefix[] = "\n\032\032pre-prompt\n";
433
434 /* Suffix needs to have a new line at end and \032 \032 at
435 beginning. */
436 const char suffix[] = "\n\032\032prompt\n";
437
438 return concat (prefix, prompt, suffix, (char *) NULL);
439 }
440
441 return xstrdup (prompt);
442 }
443
444 /* The main UI. */
445 static struct ui main_ui_;
446
447 struct ui *main_ui = &main_ui_;
448 struct ui *current_ui = &main_ui_;
449 struct ui *ui_list = &main_ui_;
450
451 /* See top.h. */
452
453 void
454 restore_ui_cleanup (void *data)
455 {
456 current_ui = (struct ui *) data;
457 }
458
459 /* See top.h. */
460
461 void
462 switch_thru_all_uis_init (struct switch_thru_all_uis *state)
463 {
464 state->iter = ui_list;
465 state->old_chain = make_cleanup (restore_ui_cleanup, current_ui);
466 }
467
468 /* See top.h. */
469
470 int
471 switch_thru_all_uis_cond (struct switch_thru_all_uis *state)
472 {
473 if (state->iter != NULL)
474 {
475 current_ui = state->iter;
476 return 1;
477 }
478 else
479 {
480 do_cleanups (state->old_chain);
481 return 0;
482 }
483 }
484
485 /* See top.h. */
486
487 void
488 switch_thru_all_uis_next (struct switch_thru_all_uis *state)
489 {
490 state->iter = state->iter->next;
491 }
492
493 /* Get a pointer to the current UI's line buffer. This is used to
494 construct a whole line of input from partial input. */
495
496 static struct buffer *
497 get_command_line_buffer (void)
498 {
499 return &current_ui->line_buffer;
500 }
501
502 /* When there is an event ready on the stdin file descriptor, instead
503 of calling readline directly throught the callback function, or
504 instead of calling gdb_readline_no_editing_callback, give gdb a
505 chance to detect errors and do something. */
506
507 void
508 stdin_event_handler (int error, gdb_client_data client_data)
509 {
510 struct ui *ui = (struct ui *) client_data;
511
512 /* Switch to the UI whose input descriptor woke up the event
513 loop. */
514 current_ui = ui;
515
516 if (error)
517 {
518 printf_unfiltered (_("error detected on stdin\n"));
519 delete_file_handler (ui->input_fd);
520 /* If stdin died, we may as well kill gdb. */
521 quit_command ((char *) 0, stdin == ui->instream);
522 }
523 else
524 {
525 /* This makes sure a ^C immediately followed by further input is
526 always processed in that order. E.g,. with input like
527 "^Cprint 1\n", the SIGINT handler runs, marks the async signal
528 handler, and then select/poll may return with stdin ready,
529 instead of -1/EINTR. The
530 gdb.base/double-prompt-target-event-error.exp test exercises
531 this. */
532 QUIT;
533
534 do
535 {
536 call_stdin_event_handler_again_p = 0;
537 ui->call_readline (client_data);
538 } while (call_stdin_event_handler_again_p != 0);
539 }
540 }
541
542 /* Re-enable stdin after the end of an execution command in
543 synchronous mode, or after an error from the target, and we aborted
544 the exec operation. */
545
546 void
547 async_enable_stdin (void)
548 {
549 struct ui *ui = current_ui;
550
551 if (ui->prompt_state == PROMPT_BLOCKED)
552 {
553 target_terminal_ours ();
554 ui->prompt_state = PROMPT_NEEDED;
555 }
556 }
557
558 /* Disable reads from stdin (the console) marking the command as
559 synchronous. */
560
561 void
562 async_disable_stdin (void)
563 {
564 struct ui *ui = current_ui;
565
566 ui->prompt_state = PROMPT_BLOCKED;
567 }
568 \f
569
570 /* Handle a gdb command line. This function is called when
571 handle_line_of_input has concatenated one or more input lines into
572 a whole command. */
573
574 void
575 command_handler (char *command)
576 {
577 struct ui *ui = current_ui;
578 struct cleanup *stat_chain;
579 char *c;
580
581 if (ui->instream == stdin)
582 reinitialize_more_filter ();
583
584 stat_chain = make_command_stats_cleanup (1);
585
586 /* Do not execute commented lines. */
587 for (c = command; *c == ' ' || *c == '\t'; c++)
588 ;
589 if (c[0] != '#')
590 {
591 execute_command (command, ui->instream == stdin);
592
593 /* Do any commands attached to breakpoint we stopped at. */
594 bpstat_do_actions ();
595 }
596
597 do_cleanups (stat_chain);
598 }
599
600 /* Append RL, an input line returned by readline or one of its
601 emulations, to CMD_LINE_BUFFER. Returns the command line if we
602 have a whole command line ready to be processed by the command
603 interpreter or NULL if the command line isn't complete yet (input
604 line ends in a backslash). Takes ownership of RL. */
605
606 static char *
607 command_line_append_input_line (struct buffer *cmd_line_buffer, char *rl)
608 {
609 char *cmd;
610 size_t len;
611
612 len = strlen (rl);
613
614 if (len > 0 && rl[len - 1] == '\\')
615 {
616 /* Don't copy the backslash and wait for more. */
617 buffer_grow (cmd_line_buffer, rl, len - 1);
618 cmd = NULL;
619 }
620 else
621 {
622 /* Copy whole line including terminating null, and we're
623 done. */
624 buffer_grow (cmd_line_buffer, rl, len + 1);
625 cmd = cmd_line_buffer->buffer;
626 }
627
628 /* Allocated in readline. */
629 xfree (rl);
630
631 return cmd;
632 }
633
634 /* Handle a line of input coming from readline.
635
636 If the read line ends with a continuation character (backslash),
637 save the partial input in CMD_LINE_BUFFER (except the backslash),
638 and return NULL. Otherwise, save the partial input and return a
639 pointer to CMD_LINE_BUFFER's buffer (null terminated), indicating a
640 whole command line is ready to be executed.
641
642 Returns EOF on end of file.
643
644 If REPEAT, handle command repetitions:
645
646 - If the input command line is NOT empty, the command returned is
647 copied into the global 'saved_command_line' var so that it can
648 be repeated later.
649
650 - OTOH, if the input command line IS empty, return the previously
651 saved command instead of the empty input line.
652 */
653
654 char *
655 handle_line_of_input (struct buffer *cmd_line_buffer,
656 char *rl, int repeat, char *annotation_suffix)
657 {
658 struct ui *ui = current_ui;
659 char *p1;
660 char *cmd;
661
662 if (rl == NULL)
663 return (char *) EOF;
664
665 cmd = command_line_append_input_line (cmd_line_buffer, rl);
666 if (cmd == NULL)
667 return NULL;
668
669 /* We have a complete command line now. Prepare for the next
670 command, but leave ownership of memory to the buffer . */
671 cmd_line_buffer->used_size = 0;
672
673 if (annotation_level > 1 && ui->instream == stdin)
674 {
675 printf_unfiltered (("\n\032\032post-"));
676 puts_unfiltered (annotation_suffix);
677 printf_unfiltered (("\n"));
678 }
679
680 #define SERVER_COMMAND_PREFIX "server "
681 if (startswith (cmd, SERVER_COMMAND_PREFIX))
682 {
683 /* Note that we don't set `saved_command_line'. Between this
684 and the check in dont_repeat, this insures that repeating
685 will still do the right thing. */
686 return cmd + strlen (SERVER_COMMAND_PREFIX);
687 }
688
689 /* Do history expansion if that is wished. */
690 if (history_expansion_p && ui->instream == stdin
691 && ISATTY (ui->instream))
692 {
693 char *history_value;
694 int expanded;
695
696 expanded = history_expand (cmd, &history_value);
697 if (expanded)
698 {
699 size_t len;
700
701 /* Print the changes. */
702 printf_unfiltered ("%s\n", history_value);
703
704 /* If there was an error, call this function again. */
705 if (expanded < 0)
706 {
707 xfree (history_value);
708 return cmd;
709 }
710
711 /* history_expand returns an allocated string. Just replace
712 our buffer with it. */
713 len = strlen (history_value);
714 xfree (buffer_finish (cmd_line_buffer));
715 cmd_line_buffer->buffer = history_value;
716 cmd_line_buffer->buffer_size = len + 1;
717 cmd = history_value;
718 }
719 }
720
721 /* If we just got an empty line, and that is supposed to repeat the
722 previous command, return the previously saved command. */
723 for (p1 = cmd; *p1 == ' ' || *p1 == '\t'; p1++)
724 ;
725 if (repeat && *p1 == '\0')
726 return saved_command_line;
727
728 /* Add command to history if appropriate. Note: lines consisting
729 solely of comments are also added to the command history. This
730 is useful when you type a command, and then realize you don't
731 want to execute it quite yet. You can comment out the command
732 and then later fetch it from the value history and remove the
733 '#'. The kill ring is probably better, but some people are in
734 the habit of commenting things out. */
735 if (*cmd != '\0' && input_from_terminal_p ())
736 gdb_add_history (cmd);
737
738 /* Save into global buffer if appropriate. */
739 if (repeat)
740 {
741 xfree (saved_command_line);
742 saved_command_line = xstrdup (cmd);
743 return saved_command_line;
744 }
745 else
746 return cmd;
747 }
748
749 /* Handle a complete line of input. This is called by the callback
750 mechanism within the readline library. Deal with incomplete
751 commands as well, by saving the partial input in a global
752 buffer.
753
754 NOTE: This is the asynchronous version of the command_line_input
755 function. */
756
757 void
758 command_line_handler (char *rl)
759 {
760 struct buffer *line_buffer = get_command_line_buffer ();
761 struct ui *ui = current_ui;
762 char *cmd;
763
764 cmd = handle_line_of_input (line_buffer, rl, ui->instream == stdin,
765 "prompt");
766 if (cmd == (char *) EOF)
767 {
768 /* stdin closed. The connection with the terminal is gone.
769 This happens at the end of a testsuite run, after Expect has
770 hung up but GDB is still alive. In such a case, we just quit
771 gdb killing the inferior program too. */
772 printf_unfiltered ("quit\n");
773 execute_command ("quit", stdin == ui->instream);
774 }
775 else if (cmd == NULL)
776 {
777 /* We don't have a full line yet. Print an empty prompt. */
778 display_gdb_prompt ("");
779 }
780 else
781 {
782 ui->prompt_state = PROMPT_NEEDED;
783
784 command_handler (cmd);
785
786 if (ui->prompt_state != PROMPTED)
787 display_gdb_prompt (0);
788 }
789 }
790
791 /* Does reading of input from terminal w/o the editing features
792 provided by the readline library. Calls the line input handler
793 once we have a whole input line. */
794
795 void
796 gdb_readline_no_editing_callback (gdb_client_data client_data)
797 {
798 int c;
799 char *result;
800 struct buffer line_buffer;
801 static int done_once = 0;
802 struct ui *ui = current_ui;
803
804 buffer_init (&line_buffer);
805
806 /* Unbuffer the input stream, so that, later on, the calls to fgetc
807 fetch only one char at the time from the stream. The fgetc's will
808 get up to the first newline, but there may be more chars in the
809 stream after '\n'. If we buffer the input and fgetc drains the
810 stream, getting stuff beyond the newline as well, a select, done
811 afterwards will not trigger. */
812 if (!done_once && !ISATTY (ui->instream))
813 {
814 setbuf (ui->instream, NULL);
815 done_once = 1;
816 }
817
818 /* We still need the while loop here, even though it would seem
819 obvious to invoke gdb_readline_no_editing_callback at every
820 character entered. If not using the readline library, the
821 terminal is in cooked mode, which sends the characters all at
822 once. Poll will notice that the input fd has changed state only
823 after enter is pressed. At this point we still need to fetch all
824 the chars entered. */
825
826 while (1)
827 {
828 /* Read from stdin if we are executing a user defined command.
829 This is the right thing for prompt_for_continue, at least. */
830 c = fgetc (ui->instream ? ui->instream : stdin);
831
832 if (c == EOF)
833 {
834 if (line_buffer.used_size > 0)
835 {
836 /* The last line does not end with a newline. Return it, and
837 if we are called again fgetc will still return EOF and
838 we'll return NULL then. */
839 break;
840 }
841 xfree (buffer_finish (&line_buffer));
842 ui->input_handler (NULL);
843 return;
844 }
845
846 if (c == '\n')
847 {
848 if (line_buffer.used_size > 0
849 && line_buffer.buffer[line_buffer.used_size - 1] == '\r')
850 line_buffer.used_size--;
851 break;
852 }
853
854 buffer_grow_char (&line_buffer, c);
855 }
856
857 buffer_grow_char (&line_buffer, '\0');
858 result = buffer_finish (&line_buffer);
859 ui->input_handler (result);
860 }
861 \f
862
863 /* The serial event associated with the QUIT flag. set_quit_flag sets
864 this, and check_quit_flag clears it. Used by interruptible_select
865 to be able to do interruptible I/O with no race with the SIGINT
866 handler. */
867 static struct serial_event *quit_serial_event;
868
869 /* Initialization of signal handlers and tokens. There is a function
870 handle_sig* for each of the signals GDB cares about. Specifically:
871 SIGINT, SIGFPE, SIGQUIT, SIGTSTP, SIGHUP, SIGWINCH. These
872 functions are the actual signal handlers associated to the signals
873 via calls to signal(). The only job for these functions is to
874 enqueue the appropriate event/procedure with the event loop. Such
875 procedures are the old signal handlers. The event loop will take
876 care of invoking the queued procedures to perform the usual tasks
877 associated with the reception of the signal. */
878 /* NOTE: 1999-04-30 This is the asynchronous version of init_signals.
879 init_signals will become obsolete as we move to have to event loop
880 as the default for gdb. */
881 void
882 async_init_signals (void)
883 {
884 initialize_async_signal_handlers ();
885
886 quit_serial_event = make_serial_event ();
887
888 signal (SIGINT, handle_sigint);
889 sigint_token =
890 create_async_signal_handler (async_request_quit, NULL);
891 signal (SIGTERM, handle_sigterm);
892 async_sigterm_token
893 = create_async_signal_handler (async_sigterm_handler, NULL);
894
895 /* If SIGTRAP was set to SIG_IGN, then the SIG_IGN will get passed
896 to the inferior and breakpoints will be ignored. */
897 #ifdef SIGTRAP
898 signal (SIGTRAP, SIG_DFL);
899 #endif
900
901 #ifdef SIGQUIT
902 /* If we initialize SIGQUIT to SIG_IGN, then the SIG_IGN will get
903 passed to the inferior, which we don't want. It would be
904 possible to do a "signal (SIGQUIT, SIG_DFL)" after we fork, but
905 on BSD4.3 systems using vfork, that can affect the
906 GDB process as well as the inferior (the signal handling tables
907 might be in memory, shared between the two). Since we establish
908 a handler for SIGQUIT, when we call exec it will set the signal
909 to SIG_DFL for us. */
910 signal (SIGQUIT, handle_sigquit);
911 sigquit_token =
912 create_async_signal_handler (async_do_nothing, NULL);
913 #endif
914 #ifdef SIGHUP
915 if (signal (SIGHUP, handle_sighup) != SIG_IGN)
916 sighup_token =
917 create_async_signal_handler (async_disconnect, NULL);
918 else
919 sighup_token =
920 create_async_signal_handler (async_do_nothing, NULL);
921 #endif
922 signal (SIGFPE, handle_sigfpe);
923 sigfpe_token =
924 create_async_signal_handler (async_float_handler, NULL);
925
926 #ifdef STOP_SIGNAL
927 sigtstp_token =
928 create_async_signal_handler (async_stop_sig, NULL);
929 #endif
930 }
931
932 /* See defs.h. */
933
934 void
935 quit_serial_event_set (void)
936 {
937 serial_event_set (quit_serial_event);
938 }
939
940 /* See defs.h. */
941
942 void
943 quit_serial_event_clear (void)
944 {
945 serial_event_clear (quit_serial_event);
946 }
947
948 /* Return the selectable file descriptor of the serial event
949 associated with the quit flag. */
950
951 static int
952 quit_serial_event_fd (void)
953 {
954 return serial_event_fd (quit_serial_event);
955 }
956
957 /* See defs.h. */
958
959 void
960 default_quit_handler (void)
961 {
962 if (check_quit_flag ())
963 {
964 if (target_terminal_is_ours ())
965 quit ();
966 else
967 target_pass_ctrlc ();
968 }
969 }
970
971 /* See defs.h. */
972 quit_handler_ftype *quit_handler = default_quit_handler;
973
974 /* Data for make_cleanup_override_quit_handler. Wrap the previous
975 handler pointer in a data struct because it's not portable to cast
976 a function pointer to a data pointer, which is what make_cleanup
977 expects. */
978 struct quit_handler_cleanup_data
979 {
980 /* The previous quit handler. */
981 quit_handler_ftype *prev_handler;
982 };
983
984 /* Cleanup call that restores the previous quit handler. */
985
986 static void
987 restore_quit_handler (void *arg)
988 {
989 struct quit_handler_cleanup_data *data
990 = (struct quit_handler_cleanup_data *) arg;
991
992 quit_handler = data->prev_handler;
993 }
994
995 /* Destructor for the quit handler cleanup. */
996
997 static void
998 restore_quit_handler_dtor (void *arg)
999 {
1000 xfree (arg);
1001 }
1002
1003 /* See defs.h. */
1004
1005 struct cleanup *
1006 make_cleanup_override_quit_handler (quit_handler_ftype *new_quit_handler)
1007 {
1008 struct cleanup *old_chain;
1009 struct quit_handler_cleanup_data *data;
1010
1011 data = XNEW (struct quit_handler_cleanup_data);
1012 data->prev_handler = quit_handler;
1013 old_chain = make_cleanup_dtor (restore_quit_handler, data,
1014 restore_quit_handler_dtor);
1015 quit_handler = new_quit_handler;
1016 return old_chain;
1017 }
1018
1019 /* Handle a SIGINT. */
1020
1021 void
1022 handle_sigint (int sig)
1023 {
1024 signal (sig, handle_sigint);
1025
1026 /* We could be running in a loop reading in symfiles or something so
1027 it may be quite a while before we get back to the event loop. So
1028 set quit_flag to 1 here. Then if QUIT is called before we get to
1029 the event loop, we will unwind as expected. */
1030 set_quit_flag ();
1031
1032 /* In case nothing calls QUIT before the event loop is reached, the
1033 event loop handles it. */
1034 mark_async_signal_handler (sigint_token);
1035 }
1036
1037 /* See gdb_select.h. */
1038
1039 int
1040 interruptible_select (int n,
1041 fd_set *readfds, fd_set *writefds, fd_set *exceptfds,
1042 struct timeval *timeout)
1043 {
1044 fd_set my_readfds;
1045 int fd;
1046 int res;
1047
1048 if (readfds == NULL)
1049 {
1050 readfds = &my_readfds;
1051 FD_ZERO (&my_readfds);
1052 }
1053
1054 fd = quit_serial_event_fd ();
1055 FD_SET (fd, readfds);
1056 if (n <= fd)
1057 n = fd + 1;
1058
1059 do
1060 {
1061 res = gdb_select (n, readfds, writefds, exceptfds, timeout);
1062 }
1063 while (res == -1 && errno == EINTR);
1064
1065 if (res == 1 && FD_ISSET (fd, readfds))
1066 {
1067 errno = EINTR;
1068 return -1;
1069 }
1070 return res;
1071 }
1072
1073 /* Handle GDB exit upon receiving SIGTERM if target_can_async_p (). */
1074
1075 static void
1076 async_sigterm_handler (gdb_client_data arg)
1077 {
1078 quit_force (NULL, stdin == current_ui->instream);
1079 }
1080
1081 /* See defs.h. */
1082 volatile int sync_quit_force_run;
1083
1084 /* Quit GDB if SIGTERM is received.
1085 GDB would quit anyway, but this way it will clean up properly. */
1086 void
1087 handle_sigterm (int sig)
1088 {
1089 signal (sig, handle_sigterm);
1090
1091 sync_quit_force_run = 1;
1092 set_quit_flag ();
1093
1094 mark_async_signal_handler (async_sigterm_token);
1095 }
1096
1097 /* Do the quit. All the checks have been done by the caller. */
1098 void
1099 async_request_quit (gdb_client_data arg)
1100 {
1101 /* If the quit_flag has gotten reset back to 0 by the time we get
1102 back here, that means that an exception was thrown to unwind the
1103 current command before we got back to the event loop. So there
1104 is no reason to call quit again here. */
1105 QUIT;
1106 }
1107
1108 #ifdef SIGQUIT
1109 /* Tell the event loop what to do if SIGQUIT is received.
1110 See event-signal.c. */
1111 static void
1112 handle_sigquit (int sig)
1113 {
1114 mark_async_signal_handler (sigquit_token);
1115 signal (sig, handle_sigquit);
1116 }
1117 #endif
1118
1119 #if defined (SIGQUIT) || defined (SIGHUP)
1120 /* Called by the event loop in response to a SIGQUIT or an
1121 ignored SIGHUP. */
1122 static void
1123 async_do_nothing (gdb_client_data arg)
1124 {
1125 /* Empty function body. */
1126 }
1127 #endif
1128
1129 #ifdef SIGHUP
1130 /* Tell the event loop what to do if SIGHUP is received.
1131 See event-signal.c. */
1132 static void
1133 handle_sighup (int sig)
1134 {
1135 mark_async_signal_handler (sighup_token);
1136 signal (sig, handle_sighup);
1137 }
1138
1139 /* Called by the event loop to process a SIGHUP. */
1140 static void
1141 async_disconnect (gdb_client_data arg)
1142 {
1143
1144 TRY
1145 {
1146 quit_cover ();
1147 }
1148
1149 CATCH (exception, RETURN_MASK_ALL)
1150 {
1151 fputs_filtered ("Could not kill the program being debugged",
1152 gdb_stderr);
1153 exception_print (gdb_stderr, exception);
1154 }
1155 END_CATCH
1156
1157 TRY
1158 {
1159 pop_all_targets ();
1160 }
1161 CATCH (exception, RETURN_MASK_ALL)
1162 {
1163 }
1164 END_CATCH
1165
1166 signal (SIGHUP, SIG_DFL); /*FIXME: ??????????? */
1167 raise (SIGHUP);
1168 }
1169 #endif
1170
1171 #ifdef STOP_SIGNAL
1172 void
1173 handle_stop_sig (int sig)
1174 {
1175 mark_async_signal_handler (sigtstp_token);
1176 signal (sig, handle_stop_sig);
1177 }
1178
1179 static void
1180 async_stop_sig (gdb_client_data arg)
1181 {
1182 char *prompt = get_prompt ();
1183
1184 #if STOP_SIGNAL == SIGTSTP
1185 signal (SIGTSTP, SIG_DFL);
1186 #if HAVE_SIGPROCMASK
1187 {
1188 sigset_t zero;
1189
1190 sigemptyset (&zero);
1191 sigprocmask (SIG_SETMASK, &zero, 0);
1192 }
1193 #elif HAVE_SIGSETMASK
1194 sigsetmask (0);
1195 #endif
1196 raise (SIGTSTP);
1197 signal (SIGTSTP, handle_stop_sig);
1198 #else
1199 signal (STOP_SIGNAL, handle_stop_sig);
1200 #endif
1201 printf_unfiltered ("%s", prompt);
1202 gdb_flush (gdb_stdout);
1203
1204 /* Forget about any previous command -- null line now will do
1205 nothing. */
1206 dont_repeat ();
1207 }
1208 #endif /* STOP_SIGNAL */
1209
1210 /* Tell the event loop what to do if SIGFPE is received.
1211 See event-signal.c. */
1212 static void
1213 handle_sigfpe (int sig)
1214 {
1215 mark_async_signal_handler (sigfpe_token);
1216 signal (sig, handle_sigfpe);
1217 }
1218
1219 /* Event loop will call this functin to process a SIGFPE. */
1220 static void
1221 async_float_handler (gdb_client_data arg)
1222 {
1223 /* This message is based on ANSI C, section 4.7. Note that integer
1224 divide by zero causes this, so "float" is a misnomer. */
1225 error (_("Erroneous arithmetic operation."));
1226 }
1227 \f
1228
1229 /* Set things up for readline to be invoked via the alternate
1230 interface, i.e. via a callback function
1231 (gdb_rl_callback_read_char), and hook up instream to the event
1232 loop. */
1233
1234 void
1235 gdb_setup_readline (int editing)
1236 {
1237 struct ui *ui = current_ui;
1238
1239 /* This function is a noop for the sync case. The assumption is
1240 that the sync setup is ALL done in gdb_init, and we would only
1241 mess it up here. The sync stuff should really go away over
1242 time. */
1243 if (!batch_silent)
1244 gdb_stdout = stdio_fileopen (ui->outstream);
1245 gdb_stderr = stderr_fileopen (ui->errstream);
1246 gdb_stdlog = gdb_stderr; /* for moment */
1247 gdb_stdtarg = gdb_stderr; /* for moment */
1248 gdb_stdtargerr = gdb_stderr; /* for moment */
1249
1250 /* If the input stream is connected to a terminal, turn on editing.
1251 However, that is only allowed on the main UI, as we can only have
1252 one instance of readline. */
1253 if (ISATTY (ui->instream) && editing && ui == main_ui)
1254 {
1255 /* Tell gdb that we will be using the readline library. This
1256 could be overwritten by a command in .gdbinit like 'set
1257 editing on' or 'off'. */
1258 ui->command_editing = 1;
1259
1260 /* When a character is detected on instream by select or poll,
1261 readline will be invoked via this callback function. */
1262 ui->call_readline = gdb_rl_callback_read_char_wrapper;
1263
1264 /* Tell readline to use the same input stream that gdb uses. */
1265 rl_instream = ui->instream;
1266 }
1267 else
1268 {
1269 ui->command_editing = 0;
1270 ui->call_readline = gdb_readline_no_editing_callback;
1271 }
1272
1273 /* Now create the event source for this UI's input file descriptor.
1274 Another source is going to be the target program (inferior), but
1275 that must be registered only when it actually exists (I.e. after
1276 we say 'run' or after we connect to a remote target. */
1277 add_file_handler (ui->input_fd, stdin_event_handler, ui);
1278 }
1279
1280 /* Disable command input through the standard CLI channels. Used in
1281 the suspend proc for interpreters that use the standard gdb readline
1282 interface, like the cli & the mi. */
1283
1284 void
1285 gdb_disable_readline (void)
1286 {
1287 struct ui *ui = current_ui;
1288
1289 /* FIXME - It is too heavyweight to delete and remake these every
1290 time you run an interpreter that needs readline. It is probably
1291 better to have the interpreters cache these, which in turn means
1292 that this needs to be moved into interpreter specific code. */
1293
1294 #if 0
1295 ui_file_delete (gdb_stdout);
1296 ui_file_delete (gdb_stderr);
1297 gdb_stdlog = NULL;
1298 gdb_stdtarg = NULL;
1299 gdb_stdtargerr = NULL;
1300 #endif
1301
1302 if (ui->command_editing)
1303 gdb_rl_callback_handler_remove ();
1304 delete_file_handler (ui->input_fd);
1305 }
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