]> git.ipfire.org Git - thirdparty/bash.git/blob - execute_cmd.c
Bash-4.3 patch 32
[thirdparty/bash.git] / execute_cmd.c
1 /* execute_cmd.c -- Execute a COMMAND structure. */
2
3 /* Copyright (C) 1987-2013 Free Software Foundation, Inc.
4
5 This file is part of GNU Bash, the Bourne Again SHell.
6
7 Bash is free software: you can redistribute it and/or modify
8 it under the terms of the GNU General Public License as published by
9 the Free Software Foundation, either version 3 of the License, or
10 (at your option) any later version.
11
12 Bash is distributed in the hope that it will be useful,
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
18 along with Bash. If not, see <http://www.gnu.org/licenses/>.
19 */
20
21 #include "config.h"
22
23 #if !defined (__GNUC__) && !defined (HAVE_ALLOCA_H) && defined (_AIX)
24 #pragma alloca
25 #endif /* _AIX && RISC6000 && !__GNUC__ */
26
27 #include <stdio.h>
28 #include "chartypes.h"
29 #include "bashtypes.h"
30 #if !defined (_MINIX) && defined (HAVE_SYS_FILE_H)
31 # include <sys/file.h>
32 #endif
33 #include "filecntl.h"
34 #include "posixstat.h"
35 #include <signal.h>
36 #if defined (HAVE_SYS_PARAM_H)
37 # include <sys/param.h>
38 #endif
39
40 #if defined (HAVE_UNISTD_H)
41 # include <unistd.h>
42 #endif
43
44 #include "posixtime.h"
45
46 #if defined (HAVE_SYS_RESOURCE_H) && !defined (RLIMTYPE)
47 # include <sys/resource.h>
48 #endif
49
50 #if defined (HAVE_SYS_TIMES_H) && defined (HAVE_TIMES)
51 # include <sys/times.h>
52 #endif
53
54 #include <errno.h>
55
56 #if !defined (errno)
57 extern int errno;
58 #endif
59
60 #define NEED_FPURGE_DECL
61
62 #include "bashansi.h"
63 #include "bashintl.h"
64
65 #include "memalloc.h"
66 #include "shell.h"
67 #include <y.tab.h> /* use <...> so we pick it up from the build directory */
68 #include "flags.h"
69 #include "builtins.h"
70 #include "hashlib.h"
71 #include "jobs.h"
72 #include "execute_cmd.h"
73 #include "findcmd.h"
74 #include "redir.h"
75 #include "trap.h"
76 #include "pathexp.h"
77 #include "hashcmd.h"
78
79 #if defined (COND_COMMAND)
80 # include "test.h"
81 #endif
82
83 #include "builtins/common.h"
84 #include "builtins/builtext.h" /* list of builtins */
85
86 #include <glob/strmatch.h>
87 #include <tilde/tilde.h>
88
89 #if defined (BUFFERED_INPUT)
90 # include "input.h"
91 #endif
92
93 #if defined (ALIAS)
94 # include "alias.h"
95 #endif
96
97 #if defined (HISTORY)
98 # include "bashhist.h"
99 #endif
100
101 extern int dollar_dollar_pid;
102 extern int posixly_correct;
103 extern int expand_aliases;
104 extern int autocd;
105 extern int breaking, continuing, loop_level;
106 extern int parse_and_execute_level, running_trap, sourcelevel;
107 extern int command_string_index, line_number;
108 extern int dot_found_in_search;
109 extern int already_making_children;
110 extern int tempenv_assign_error;
111 extern char *the_printed_command, *shell_name;
112 extern pid_t last_command_subst_pid;
113 extern sh_builtin_func_t *last_shell_builtin, *this_shell_builtin;
114 extern char **subshell_argv, **subshell_envp;
115 extern int subshell_argc;
116 extern time_t shell_start_time;
117 #if 0
118 extern char *glob_argv_flags;
119 #endif
120
121 extern int job_control; /* XXX */
122
123 extern int close __P((int));
124
125 /* Static functions defined and used in this file. */
126 static void close_pipes __P((int, int));
127 static void do_piping __P((int, int));
128 static void bind_lastarg __P((char *));
129 static int shell_control_structure __P((enum command_type));
130 static void cleanup_redirects __P((REDIRECT *));
131
132 #if defined (JOB_CONTROL)
133 static int restore_signal_mask __P((sigset_t *));
134 #endif
135
136 static void async_redirect_stdin __P((void));
137
138 static int builtin_status __P((int));
139
140 static int execute_for_command __P((FOR_COM *));
141 #if defined (SELECT_COMMAND)
142 static int displen __P((const char *));
143 static int print_index_and_element __P((int, int, WORD_LIST *));
144 static void indent __P((int, int));
145 static void print_select_list __P((WORD_LIST *, int, int, int));
146 static char *select_query __P((WORD_LIST *, int, char *, int));
147 static int execute_select_command __P((SELECT_COM *));
148 #endif
149 #if defined (DPAREN_ARITHMETIC)
150 static int execute_arith_command __P((ARITH_COM *));
151 #endif
152 #if defined (COND_COMMAND)
153 static int execute_cond_node __P((COND_COM *));
154 static int execute_cond_command __P((COND_COM *));
155 #endif
156 #if defined (COMMAND_TIMING)
157 static int mkfmt __P((char *, int, int, time_t, int));
158 static void print_formatted_time __P((FILE *, char *,
159 time_t, int, time_t, int,
160 time_t, int, int));
161 static int time_command __P((COMMAND *, int, int, int, struct fd_bitmap *));
162 #endif
163 #if defined (ARITH_FOR_COMMAND)
164 static intmax_t eval_arith_for_expr __P((WORD_LIST *, int *));
165 static int execute_arith_for_command __P((ARITH_FOR_COM *));
166 #endif
167 static int execute_case_command __P((CASE_COM *));
168 static int execute_while_command __P((WHILE_COM *));
169 static int execute_until_command __P((WHILE_COM *));
170 static int execute_while_or_until __P((WHILE_COM *, int));
171 static int execute_if_command __P((IF_COM *));
172 static int execute_null_command __P((REDIRECT *, int, int, int));
173 static void fix_assignment_words __P((WORD_LIST *));
174 static int execute_simple_command __P((SIMPLE_COM *, int, int, int, struct fd_bitmap *));
175 static int execute_builtin __P((sh_builtin_func_t *, WORD_LIST *, int, int));
176 static int execute_function __P((SHELL_VAR *, WORD_LIST *, int, struct fd_bitmap *, int, int));
177 static int execute_builtin_or_function __P((WORD_LIST *, sh_builtin_func_t *,
178 SHELL_VAR *,
179 REDIRECT *, struct fd_bitmap *, int));
180 static void execute_subshell_builtin_or_function __P((WORD_LIST *, REDIRECT *,
181 sh_builtin_func_t *,
182 SHELL_VAR *,
183 int, int, int,
184 struct fd_bitmap *,
185 int));
186 static int execute_disk_command __P((WORD_LIST *, REDIRECT *, char *,
187 int, int, int, struct fd_bitmap *, int));
188
189 static char *getinterp __P((char *, int, int *));
190 static void initialize_subshell __P((void));
191 static int execute_in_subshell __P((COMMAND *, int, int, int, struct fd_bitmap *));
192 #if defined (COPROCESS_SUPPORT)
193 static int execute_coproc __P((COMMAND *, int, int, struct fd_bitmap *));
194 #endif
195
196 static int execute_pipeline __P((COMMAND *, int, int, int, struct fd_bitmap *));
197
198 static int execute_connection __P((COMMAND *, int, int, int, struct fd_bitmap *));
199
200 static int execute_intern_function __P((WORD_DESC *, FUNCTION_DEF *));
201
202 /* Set to 1 if fd 0 was the subject of redirection to a subshell. Global
203 so that reader_loop can set it to zero before executing a command. */
204 int stdin_redir;
205
206 /* The name of the command that is currently being executed.
207 `test' needs this, for example. */
208 char *this_command_name;
209
210 /* The printed representation of the currently-executing command (same as
211 the_printed_command), except when a trap is being executed. Useful for
212 a debugger to know where exactly the program is currently executing. */
213 char *the_printed_command_except_trap;
214
215 /* For catching RETURN in a function. */
216 int return_catch_flag;
217 int return_catch_value;
218 procenv_t return_catch;
219
220 /* The value returned by the last synchronous command. */
221 int last_command_exit_value;
222
223 /* Whether or not the last command (corresponding to last_command_exit_value)
224 was terminated by a signal, and, if so, which one. */
225 int last_command_exit_signal;
226
227 /* Are we currently ignoring the -e option for the duration of a builtin's
228 execution? */
229 int builtin_ignoring_errexit = 0;
230
231 /* The list of redirections to perform which will undo the redirections
232 that I made in the shell. */
233 REDIRECT *redirection_undo_list = (REDIRECT *)NULL;
234
235 /* The list of redirections to perform which will undo the internal
236 redirections performed by the `exec' builtin. These are redirections
237 that must be undone even when exec discards redirection_undo_list. */
238 REDIRECT *exec_redirection_undo_list = (REDIRECT *)NULL;
239
240 /* When greater than zero, value is the `level' of builtins we are
241 currently executing (e.g. `eval echo a' would have it set to 2). */
242 int executing_builtin = 0;
243
244 /* Non-zero if we are executing a command list (a;b;c, etc.) */
245 int executing_list = 0;
246
247 /* Non-zero if failing commands in a command substitution should not exit the
248 shell even if -e is set. Used to pass the CMD_IGNORE_RETURN flag down to
249 commands run in command substitutions by parse_and_execute. */
250 int comsub_ignore_return = 0;
251
252 /* Non-zero if we have just forked and are currently running in a subshell
253 environment. */
254 int subshell_environment;
255
256 /* Count of nested subshells, like SHLVL. Available via $BASH_SUBSHELL */
257 int subshell_level = 0;
258
259 /* Currently-executing shell function. */
260 SHELL_VAR *this_shell_function;
261
262 /* If non-zero, matches in case and [[ ... ]] are case-insensitive */
263 int match_ignore_case = 0;
264
265 int executing_command_builtin = 0;
266
267 struct stat SB; /* used for debugging */
268
269 static int special_builtin_failed;
270
271 static COMMAND *currently_executing_command;
272
273 /* The line number that the currently executing function starts on. */
274 static int function_line_number;
275
276 /* XXX - set to 1 if we're running the DEBUG trap and we want to show the line
277 number containing the function name. Used by executing_line_number to
278 report the correct line number. Kind of a hack. */
279 static int showing_function_line;
280
281 /* $LINENO ($BASH_LINENO) for use by an ERR trap. Global so parse_and_execute
282 can save and restore it. */
283 int line_number_for_err_trap;
284
285 /* A sort of function nesting level counter */
286 int funcnest = 0;
287 int funcnest_max = 0; /* bash-4.2 */
288
289 int lastpipe_opt = 0;
290
291 struct fd_bitmap *current_fds_to_close = (struct fd_bitmap *)NULL;
292
293 #define FD_BITMAP_DEFAULT_SIZE 32
294
295 /* Functions to allocate and deallocate the structures used to pass
296 information from the shell to its children about file descriptors
297 to close. */
298 struct fd_bitmap *
299 new_fd_bitmap (size)
300 int size;
301 {
302 struct fd_bitmap *ret;
303
304 ret = (struct fd_bitmap *)xmalloc (sizeof (struct fd_bitmap));
305
306 ret->size = size;
307
308 if (size)
309 {
310 ret->bitmap = (char *)xmalloc (size);
311 memset (ret->bitmap, '\0', size);
312 }
313 else
314 ret->bitmap = (char *)NULL;
315 return (ret);
316 }
317
318 void
319 dispose_fd_bitmap (fdbp)
320 struct fd_bitmap *fdbp;
321 {
322 FREE (fdbp->bitmap);
323 free (fdbp);
324 }
325
326 void
327 close_fd_bitmap (fdbp)
328 struct fd_bitmap *fdbp;
329 {
330 register int i;
331
332 if (fdbp)
333 {
334 for (i = 0; i < fdbp->size; i++)
335 if (fdbp->bitmap[i])
336 {
337 close (i);
338 fdbp->bitmap[i] = 0;
339 }
340 }
341 }
342
343 /* Return the line number of the currently executing command. */
344 int
345 executing_line_number ()
346 {
347 if (executing && showing_function_line == 0 &&
348 (variable_context == 0 || interactive_shell == 0) &&
349 currently_executing_command)
350 {
351 #if defined (COND_COMMAND)
352 if (currently_executing_command->type == cm_cond)
353 return currently_executing_command->value.Cond->line;
354 #endif
355 #if defined (DPAREN_ARITHMETIC)
356 if (currently_executing_command->type == cm_arith)
357 return currently_executing_command->value.Arith->line;
358 #endif
359 #if defined (ARITH_FOR_COMMAND)
360 if (currently_executing_command->type == cm_arith_for)
361 return currently_executing_command->value.ArithFor->line;
362 #endif
363
364 return line_number;
365 }
366 else
367 return line_number;
368 }
369
370 /* Execute the command passed in COMMAND. COMMAND is exactly what
371 read_command () places into GLOBAL_COMMAND. See "command.h" for the
372 details of the command structure.
373
374 EXECUTION_SUCCESS or EXECUTION_FAILURE are the only possible
375 return values. Executing a command with nothing in it returns
376 EXECUTION_SUCCESS. */
377 int
378 execute_command (command)
379 COMMAND *command;
380 {
381 struct fd_bitmap *bitmap;
382 int result;
383
384 current_fds_to_close = (struct fd_bitmap *)NULL;
385 bitmap = new_fd_bitmap (FD_BITMAP_DEFAULT_SIZE);
386 begin_unwind_frame ("execute-command");
387 add_unwind_protect (dispose_fd_bitmap, (char *)bitmap);
388
389 /* Just do the command, but not asynchronously. */
390 result = execute_command_internal (command, 0, NO_PIPE, NO_PIPE, bitmap);
391
392 dispose_fd_bitmap (bitmap);
393 discard_unwind_frame ("execute-command");
394
395 #if defined (PROCESS_SUBSTITUTION)
396 /* don't unlink fifos if we're in a shell function; wait until the function
397 returns. */
398 if (variable_context == 0)
399 unlink_fifo_list ();
400 #endif /* PROCESS_SUBSTITUTION */
401
402 QUIT;
403 return (result);
404 }
405
406 /* Return 1 if TYPE is a shell control structure type. */
407 static int
408 shell_control_structure (type)
409 enum command_type type;
410 {
411 switch (type)
412 {
413 #if defined (ARITH_FOR_COMMAND)
414 case cm_arith_for:
415 #endif
416 #if defined (SELECT_COMMAND)
417 case cm_select:
418 #endif
419 #if defined (DPAREN_ARITHMETIC)
420 case cm_arith:
421 #endif
422 #if defined (COND_COMMAND)
423 case cm_cond:
424 #endif
425 case cm_case:
426 case cm_while:
427 case cm_until:
428 case cm_if:
429 case cm_for:
430 case cm_group:
431 case cm_function_def:
432 return (1);
433
434 default:
435 return (0);
436 }
437 }
438
439 /* A function to use to unwind_protect the redirection undo list
440 for loops. */
441 static void
442 cleanup_redirects (list)
443 REDIRECT *list;
444 {
445 do_redirections (list, RX_ACTIVE);
446 dispose_redirects (list);
447 }
448
449 #if 0
450 /* Function to unwind_protect the redirections for functions and builtins. */
451 static void
452 cleanup_func_redirects (list)
453 REDIRECT *list;
454 {
455 do_redirections (list, RX_ACTIVE);
456 }
457 #endif
458
459 void
460 dispose_exec_redirects ()
461 {
462 if (exec_redirection_undo_list)
463 {
464 dispose_redirects (exec_redirection_undo_list);
465 exec_redirection_undo_list = (REDIRECT *)NULL;
466 }
467 }
468
469 #if defined (JOB_CONTROL)
470 /* A function to restore the signal mask to its proper value when the shell
471 is interrupted or errors occur while creating a pipeline. */
472 static int
473 restore_signal_mask (set)
474 sigset_t *set;
475 {
476 return (sigprocmask (SIG_SETMASK, set, (sigset_t *)NULL));
477 }
478 #endif /* JOB_CONTROL */
479
480 #ifdef DEBUG
481 /* A debugging function that can be called from gdb, for instance. */
482 void
483 open_files ()
484 {
485 register int i;
486 int f, fd_table_size;
487
488 fd_table_size = getdtablesize ();
489
490 fprintf (stderr, "pid %ld open files:", (long)getpid ());
491 for (i = 3; i < fd_table_size; i++)
492 {
493 if ((f = fcntl (i, F_GETFD, 0)) != -1)
494 fprintf (stderr, " %d (%s)", i, f ? "close" : "open");
495 }
496 fprintf (stderr, "\n");
497 }
498 #endif
499
500 static void
501 async_redirect_stdin ()
502 {
503 int fd;
504
505 fd = open ("/dev/null", O_RDONLY);
506 if (fd > 0)
507 {
508 dup2 (fd, 0);
509 close (fd);
510 }
511 else if (fd < 0)
512 internal_error (_("cannot redirect standard input from /dev/null: %s"), strerror (errno));
513 }
514
515 #define DESCRIBE_PID(pid) do { if (interactive) describe_pid (pid); } while (0)
516
517 /* Execute the command passed in COMMAND, perhaps doing it asynchronously.
518 COMMAND is exactly what read_command () places into GLOBAL_COMMAND.
519 ASYNCHROUNOUS, if non-zero, says to do this command in the background.
520 PIPE_IN and PIPE_OUT are file descriptors saying where input comes
521 from and where it goes. They can have the value of NO_PIPE, which means
522 I/O is stdin/stdout.
523 FDS_TO_CLOSE is a list of file descriptors to close once the child has
524 been forked. This list often contains the unusable sides of pipes, etc.
525
526 EXECUTION_SUCCESS or EXECUTION_FAILURE are the only possible
527 return values. Executing a command with nothing in it returns
528 EXECUTION_SUCCESS. */
529 int
530 execute_command_internal (command, asynchronous, pipe_in, pipe_out,
531 fds_to_close)
532 COMMAND *command;
533 int asynchronous;
534 int pipe_in, pipe_out;
535 struct fd_bitmap *fds_to_close;
536 {
537 int exec_result, user_subshell, invert, ignore_return, was_error_trap;
538 REDIRECT *my_undo_list, *exec_undo_list;
539 char *tcmd;
540 volatile int last_pid;
541 volatile int save_line_number;
542 #if defined (PROCESS_SUBSTITUTION)
543 volatile int ofifo, nfifo, osize, saved_fifo;
544 volatile char *ofifo_list;
545 #endif
546
547 if (breaking || continuing)
548 return (last_command_exit_value);
549 if (command == 0 || read_but_dont_execute)
550 return (EXECUTION_SUCCESS);
551
552 QUIT;
553 run_pending_traps ();
554
555 #if 0
556 if (running_trap == 0)
557 #endif
558 currently_executing_command = command;
559
560 invert = (command->flags & CMD_INVERT_RETURN) != 0;
561
562 /* If we're inverting the return value and `set -e' has been executed,
563 we don't want a failing command to inadvertently cause the shell
564 to exit. */
565 if (exit_immediately_on_error && invert) /* XXX */
566 command->flags |= CMD_IGNORE_RETURN; /* XXX */
567
568 exec_result = EXECUTION_SUCCESS;
569
570 /* If a command was being explicitly run in a subshell, or if it is
571 a shell control-structure, and it has a pipe, then we do the command
572 in a subshell. */
573 if (command->type == cm_subshell && (command->flags & CMD_NO_FORK))
574 return (execute_in_subshell (command, asynchronous, pipe_in, pipe_out, fds_to_close));
575
576 #if defined (COPROCESS_SUPPORT)
577 if (command->type == cm_coproc)
578 return (execute_coproc (command, pipe_in, pipe_out, fds_to_close));
579 #endif
580
581 user_subshell = command->type == cm_subshell || ((command->flags & CMD_WANT_SUBSHELL) != 0);
582
583 if (command->type == cm_subshell ||
584 (command->flags & (CMD_WANT_SUBSHELL|CMD_FORCE_SUBSHELL)) ||
585 (shell_control_structure (command->type) &&
586 (pipe_out != NO_PIPE || pipe_in != NO_PIPE || asynchronous)))
587 {
588 pid_t paren_pid;
589 int s;
590
591 /* Fork a subshell, turn off the subshell bit, turn off job
592 control and call execute_command () on the command again. */
593 line_number_for_err_trap = line_number;
594 tcmd = make_command_string (command);
595 paren_pid = make_child (savestring (tcmd), asynchronous);
596
597 if (user_subshell && signal_is_trapped (ERROR_TRAP) &&
598 signal_in_progress (DEBUG_TRAP) == 0 && running_trap == 0)
599 {
600 FREE (the_printed_command_except_trap);
601 the_printed_command_except_trap = savestring (the_printed_command);
602 }
603
604 if (paren_pid == 0)
605 {
606 /* We want to run the exit trap for forced {} subshells, and we
607 want to note this before execute_in_subshell modifies the
608 COMMAND struct. Need to keep in mind that execute_in_subshell
609 runs the exit trap for () subshells itself. */
610 /* This handles { command; } & */
611 s = user_subshell == 0 && command->type == cm_group && pipe_in == NO_PIPE && pipe_out == NO_PIPE && asynchronous;
612 /* run exit trap for : | { ...; } and { ...; } | : */
613 /* run exit trap for : | ( ...; ) and ( ...; ) | : */
614 s += user_subshell == 0 && command->type == cm_group && (pipe_in != NO_PIPE || pipe_out != NO_PIPE) && asynchronous == 0;
615
616 last_command_exit_value = execute_in_subshell (command, asynchronous, pipe_in, pipe_out, fds_to_close);
617 if (s)
618 subshell_exit (last_command_exit_value);
619 else
620 exit (last_command_exit_value);
621 /* NOTREACHED */
622 }
623 else
624 {
625 close_pipes (pipe_in, pipe_out);
626
627 #if defined (PROCESS_SUBSTITUTION) && defined (HAVE_DEV_FD)
628 if (variable_context == 0) /* wait until shell function completes */
629 unlink_fifo_list ();
630 #endif
631 /* If we are part of a pipeline, and not the end of the pipeline,
632 then we should simply return and let the last command in the
633 pipe be waited for. If we are not in a pipeline, or are the
634 last command in the pipeline, then we wait for the subshell
635 and return its exit status as usual. */
636 if (pipe_out != NO_PIPE)
637 return (EXECUTION_SUCCESS);
638
639 stop_pipeline (asynchronous, (COMMAND *)NULL);
640
641 if (asynchronous == 0)
642 {
643 was_error_trap = signal_is_trapped (ERROR_TRAP) && signal_is_ignored (ERROR_TRAP) == 0;
644 invert = (command->flags & CMD_INVERT_RETURN) != 0;
645 ignore_return = (command->flags & CMD_IGNORE_RETURN) != 0;
646
647 exec_result = wait_for (paren_pid);
648
649 /* If we have to, invert the return value. */
650 if (invert)
651 exec_result = ((exec_result == EXECUTION_SUCCESS)
652 ? EXECUTION_FAILURE
653 : EXECUTION_SUCCESS);
654
655 last_command_exit_value = exec_result;
656 if (user_subshell && was_error_trap && ignore_return == 0 && invert == 0 && exec_result != EXECUTION_SUCCESS)
657 {
658 save_line_number = line_number;
659 line_number = line_number_for_err_trap;
660 run_error_trap ();
661 line_number = save_line_number;
662 }
663
664 if (user_subshell && ignore_return == 0 && invert == 0 && exit_immediately_on_error && exec_result != EXECUTION_SUCCESS)
665 {
666 run_pending_traps ();
667 jump_to_top_level (ERREXIT);
668 }
669
670 return (last_command_exit_value);
671 }
672 else
673 {
674 DESCRIBE_PID (paren_pid);
675
676 run_pending_traps ();
677
678 /* Posix 2013 2.9.3.1: "the exit status of an asynchronous list
679 shall be zero." */
680 last_command_exit_value = 0;
681 return (EXECUTION_SUCCESS);
682 }
683 }
684 }
685
686 #if defined (COMMAND_TIMING)
687 if (command->flags & CMD_TIME_PIPELINE)
688 {
689 if (asynchronous)
690 {
691 command->flags |= CMD_FORCE_SUBSHELL;
692 exec_result = execute_command_internal (command, 1, pipe_in, pipe_out, fds_to_close);
693 }
694 else
695 {
696 exec_result = time_command (command, asynchronous, pipe_in, pipe_out, fds_to_close);
697 #if 0
698 if (running_trap == 0)
699 #endif
700 currently_executing_command = (COMMAND *)NULL;
701 }
702 return (exec_result);
703 }
704 #endif /* COMMAND_TIMING */
705
706 if (shell_control_structure (command->type) && command->redirects)
707 stdin_redir = stdin_redirects (command->redirects);
708
709 #if defined (PROCESS_SUBSTITUTION)
710 if (variable_context != 0)
711 {
712 ofifo = num_fifos ();
713 ofifo_list = copy_fifo_list ((int *)&osize);
714 saved_fifo = 1;
715 }
716 else
717 saved_fifo = 0;
718 #endif
719
720 /* Handle WHILE FOR CASE etc. with redirections. (Also '&' input
721 redirection.) */
722 if (do_redirections (command->redirects, RX_ACTIVE|RX_UNDOABLE) != 0)
723 {
724 cleanup_redirects (redirection_undo_list);
725 redirection_undo_list = (REDIRECT *)NULL;
726 dispose_exec_redirects ();
727 #if defined (PROCESS_SUBSTITUTION)
728 if (saved_fifo)
729 free ((void *)ofifo_list);
730 #endif
731 return (last_command_exit_value = EXECUTION_FAILURE);
732 }
733
734 if (redirection_undo_list)
735 {
736 /* XXX - why copy here? */
737 my_undo_list = (REDIRECT *)copy_redirects (redirection_undo_list);
738 dispose_redirects (redirection_undo_list);
739 redirection_undo_list = (REDIRECT *)NULL;
740 }
741 else
742 my_undo_list = (REDIRECT *)NULL;
743
744 if (exec_redirection_undo_list)
745 {
746 /* XXX - why copy here? */
747 exec_undo_list = (REDIRECT *)copy_redirects (exec_redirection_undo_list);
748 dispose_redirects (exec_redirection_undo_list);
749 exec_redirection_undo_list = (REDIRECT *)NULL;
750 }
751 else
752 exec_undo_list = (REDIRECT *)NULL;
753
754 if (my_undo_list || exec_undo_list)
755 begin_unwind_frame ("loop_redirections");
756
757 if (my_undo_list)
758 add_unwind_protect ((Function *)cleanup_redirects, my_undo_list);
759
760 if (exec_undo_list)
761 add_unwind_protect ((Function *)dispose_redirects, exec_undo_list);
762
763 ignore_return = (command->flags & CMD_IGNORE_RETURN) != 0;
764
765 QUIT;
766
767 switch (command->type)
768 {
769 case cm_simple:
770 {
771 save_line_number = line_number;
772 /* We can't rely on variables retaining their values across a
773 call to execute_simple_command if a longjmp occurs as the
774 result of a `return' builtin. This is true for sure with gcc. */
775 #if defined (RECYCLES_PIDS)
776 last_made_pid = NO_PID;
777 #endif
778 last_pid = last_made_pid;
779 was_error_trap = signal_is_trapped (ERROR_TRAP) && signal_is_ignored (ERROR_TRAP) == 0;
780
781 if (ignore_return && command->value.Simple)
782 command->value.Simple->flags |= CMD_IGNORE_RETURN;
783 if (command->flags & CMD_STDIN_REDIR)
784 command->value.Simple->flags |= CMD_STDIN_REDIR;
785
786 line_number_for_err_trap = line_number = command->value.Simple->line;
787 exec_result =
788 execute_simple_command (command->value.Simple, pipe_in, pipe_out,
789 asynchronous, fds_to_close);
790 line_number = save_line_number;
791
792 /* The temporary environment should be used for only the simple
793 command immediately following its definition. */
794 dispose_used_env_vars ();
795
796 #if (defined (ultrix) && defined (mips)) || defined (C_ALLOCA)
797 /* Reclaim memory allocated with alloca () on machines which
798 may be using the alloca emulation code. */
799 (void) alloca (0);
800 #endif /* (ultrix && mips) || C_ALLOCA */
801
802 /* If we forked to do the command, then we must wait_for ()
803 the child. */
804
805 /* XXX - this is something to watch out for if there are problems
806 when the shell is compiled without job control. Don't worry about
807 whether or not last_made_pid == last_pid; already_making_children
808 tells us whether or not there are unwaited-for children to wait
809 for and reap. */
810 if (already_making_children && pipe_out == NO_PIPE)
811 {
812 stop_pipeline (asynchronous, (COMMAND *)NULL);
813
814 if (asynchronous)
815 {
816 DESCRIBE_PID (last_made_pid);
817 }
818 else
819 #if !defined (JOB_CONTROL)
820 /* Do not wait for asynchronous processes started from
821 startup files. */
822 if (last_made_pid != last_asynchronous_pid)
823 #endif
824 /* When executing a shell function that executes other
825 commands, this causes the last simple command in
826 the function to be waited for twice. This also causes
827 subshells forked to execute builtin commands (e.g., in
828 pipelines) to be waited for twice. */
829 exec_result = wait_for (last_made_pid);
830 }
831 }
832
833 /* 2009/02/13 -- pipeline failure is processed elsewhere. This handles
834 only the failure of a simple command. */
835 if (was_error_trap && ignore_return == 0 && invert == 0 && pipe_in == NO_PIPE && pipe_out == NO_PIPE && exec_result != EXECUTION_SUCCESS)
836 {
837 last_command_exit_value = exec_result;
838 line_number = line_number_for_err_trap;
839 run_error_trap ();
840 line_number = save_line_number;
841 }
842
843 if (ignore_return == 0 && invert == 0 &&
844 ((posixly_correct && interactive == 0 && special_builtin_failed) ||
845 (exit_immediately_on_error && pipe_in == NO_PIPE && pipe_out == NO_PIPE && exec_result != EXECUTION_SUCCESS)))
846 {
847 last_command_exit_value = exec_result;
848 run_pending_traps ();
849 jump_to_top_level (ERREXIT);
850 }
851
852 break;
853
854 case cm_for:
855 if (ignore_return)
856 command->value.For->flags |= CMD_IGNORE_RETURN;
857 exec_result = execute_for_command (command->value.For);
858 break;
859
860 #if defined (ARITH_FOR_COMMAND)
861 case cm_arith_for:
862 if (ignore_return)
863 command->value.ArithFor->flags |= CMD_IGNORE_RETURN;
864 exec_result = execute_arith_for_command (command->value.ArithFor);
865 break;
866 #endif
867
868 #if defined (SELECT_COMMAND)
869 case cm_select:
870 if (ignore_return)
871 command->value.Select->flags |= CMD_IGNORE_RETURN;
872 exec_result = execute_select_command (command->value.Select);
873 break;
874 #endif
875
876 case cm_case:
877 if (ignore_return)
878 command->value.Case->flags |= CMD_IGNORE_RETURN;
879 exec_result = execute_case_command (command->value.Case);
880 break;
881
882 case cm_while:
883 if (ignore_return)
884 command->value.While->flags |= CMD_IGNORE_RETURN;
885 exec_result = execute_while_command (command->value.While);
886 break;
887
888 case cm_until:
889 if (ignore_return)
890 command->value.While->flags |= CMD_IGNORE_RETURN;
891 exec_result = execute_until_command (command->value.While);
892 break;
893
894 case cm_if:
895 if (ignore_return)
896 command->value.If->flags |= CMD_IGNORE_RETURN;
897 exec_result = execute_if_command (command->value.If);
898 break;
899
900 case cm_group:
901
902 /* This code can be executed from either of two paths: an explicit
903 '{}' command, or via a function call. If we are executed via a
904 function call, we have already taken care of the function being
905 executed in the background (down there in execute_simple_command ()),
906 and this command should *not* be marked as asynchronous. If we
907 are executing a regular '{}' group command, and asynchronous == 1,
908 we must want to execute the whole command in the background, so we
909 need a subshell, and we want the stuff executed in that subshell
910 (this group command) to be executed in the foreground of that
911 subshell (i.e. there will not be *another* subshell forked).
912
913 What we do is to force a subshell if asynchronous, and then call
914 execute_command_internal again with asynchronous still set to 1,
915 but with the original group command, so the printed command will
916 look right.
917
918 The code above that handles forking off subshells will note that
919 both subshell and async are on, and turn off async in the child
920 after forking the subshell (but leave async set in the parent, so
921 the normal call to describe_pid is made). This turning off
922 async is *crucial*; if it is not done, this will fall into an
923 infinite loop of executions through this spot in subshell after
924 subshell until the process limit is exhausted. */
925
926 if (asynchronous)
927 {
928 command->flags |= CMD_FORCE_SUBSHELL;
929 exec_result =
930 execute_command_internal (command, 1, pipe_in, pipe_out,
931 fds_to_close);
932 }
933 else
934 {
935 if (ignore_return && command->value.Group->command)
936 command->value.Group->command->flags |= CMD_IGNORE_RETURN;
937 exec_result =
938 execute_command_internal (command->value.Group->command,
939 asynchronous, pipe_in, pipe_out,
940 fds_to_close);
941 }
942 break;
943
944 case cm_connection:
945 exec_result = execute_connection (command, asynchronous,
946 pipe_in, pipe_out, fds_to_close);
947 break;
948
949 #if defined (DPAREN_ARITHMETIC)
950 case cm_arith:
951 was_error_trap = signal_is_trapped (ERROR_TRAP) && signal_is_ignored (ERROR_TRAP) == 0;
952 if (ignore_return)
953 command->value.Arith->flags |= CMD_IGNORE_RETURN;
954 line_number_for_err_trap = save_line_number = line_number;
955 exec_result = execute_arith_command (command->value.Arith);
956 line_number = save_line_number;
957
958 if (was_error_trap && ignore_return == 0 && invert == 0 && exec_result != EXECUTION_SUCCESS)
959 {
960 last_command_exit_value = exec_result;
961 save_line_number = line_number;
962 line_number = line_number_for_err_trap;
963 run_error_trap ();
964 line_number = save_line_number;
965 }
966
967 if (ignore_return == 0 && invert == 0 && exit_immediately_on_error && exec_result != EXECUTION_SUCCESS)
968 {
969 last_command_exit_value = exec_result;
970 run_pending_traps ();
971 jump_to_top_level (ERREXIT);
972 }
973
974 break;
975 #endif
976
977 #if defined (COND_COMMAND)
978 case cm_cond:
979 was_error_trap = signal_is_trapped (ERROR_TRAP) && signal_is_ignored (ERROR_TRAP) == 0;
980 if (ignore_return)
981 command->value.Cond->flags |= CMD_IGNORE_RETURN;
982
983 line_number_for_err_trap = save_line_number = line_number;
984 exec_result = execute_cond_command (command->value.Cond);
985 line_number = save_line_number;
986
987 if (was_error_trap && ignore_return == 0 && invert == 0 && exec_result != EXECUTION_SUCCESS)
988 {
989 last_command_exit_value = exec_result;
990 save_line_number = line_number;
991 line_number = line_number_for_err_trap;
992 run_error_trap ();
993 line_number = save_line_number;
994 }
995
996 if (ignore_return == 0 && invert == 0 && exit_immediately_on_error && exec_result != EXECUTION_SUCCESS)
997 {
998 last_command_exit_value = exec_result;
999 run_pending_traps ();
1000 jump_to_top_level (ERREXIT);
1001 }
1002
1003 break;
1004 #endif
1005
1006 case cm_function_def:
1007 exec_result = execute_intern_function (command->value.Function_def->name,
1008 command->value.Function_def);
1009 break;
1010
1011 default:
1012 command_error ("execute_command", CMDERR_BADTYPE, command->type, 0);
1013 }
1014
1015 if (my_undo_list)
1016 {
1017 do_redirections (my_undo_list, RX_ACTIVE);
1018 dispose_redirects (my_undo_list);
1019 }
1020
1021 if (exec_undo_list)
1022 dispose_redirects (exec_undo_list);
1023
1024 if (my_undo_list || exec_undo_list)
1025 discard_unwind_frame ("loop_redirections");
1026
1027 #if defined (PROCESS_SUBSTITUTION)
1028 if (saved_fifo)
1029 {
1030 nfifo = num_fifos ();
1031 if (nfifo > ofifo)
1032 close_new_fifos ((char *)ofifo_list, osize);
1033 free ((void *)ofifo_list);
1034 }
1035 #endif
1036
1037 /* Invert the return value if we have to */
1038 if (invert)
1039 exec_result = (exec_result == EXECUTION_SUCCESS)
1040 ? EXECUTION_FAILURE
1041 : EXECUTION_SUCCESS;
1042
1043 #if defined (DPAREN_ARITHMETIC) || defined (COND_COMMAND)
1044 /* This is where we set PIPESTATUS from the exit status of the appropriate
1045 compound commands (the ones that look enough like simple commands to
1046 cause confusion). We might be able to optimize by not doing this if
1047 subshell_environment != 0. */
1048 switch (command->type)
1049 {
1050 # if defined (DPAREN_ARITHMETIC)
1051 case cm_arith:
1052 # endif
1053 # if defined (COND_COMMAND)
1054 case cm_cond:
1055 # endif
1056 set_pipestatus_from_exit (exec_result);
1057 break;
1058 }
1059 #endif
1060
1061 last_command_exit_value = exec_result;
1062 run_pending_traps ();
1063 #if 0
1064 if (running_trap == 0)
1065 #endif
1066 currently_executing_command = (COMMAND *)NULL;
1067
1068 return (last_command_exit_value);
1069 }
1070
1071 #if defined (COMMAND_TIMING)
1072
1073 #if defined (HAVE_GETRUSAGE) && defined (HAVE_GETTIMEOFDAY)
1074 extern struct timeval *difftimeval __P((struct timeval *, struct timeval *, struct timeval *));
1075 extern struct timeval *addtimeval __P((struct timeval *, struct timeval *, struct timeval *));
1076 extern int timeval_to_cpu __P((struct timeval *, struct timeval *, struct timeval *));
1077 #endif
1078
1079 #define POSIX_TIMEFORMAT "real %2R\nuser %2U\nsys %2S"
1080 #define BASH_TIMEFORMAT "\nreal\t%3lR\nuser\t%3lU\nsys\t%3lS"
1081
1082 static const int precs[] = { 0, 100, 10, 1 };
1083
1084 /* Expand one `%'-prefixed escape sequence from a time format string. */
1085 static int
1086 mkfmt (buf, prec, lng, sec, sec_fraction)
1087 char *buf;
1088 int prec, lng;
1089 time_t sec;
1090 int sec_fraction;
1091 {
1092 time_t min;
1093 char abuf[INT_STRLEN_BOUND(time_t) + 1];
1094 int ind, aind;
1095
1096 ind = 0;
1097 abuf[sizeof(abuf) - 1] = '\0';
1098
1099 /* If LNG is non-zero, we want to decompose SEC into minutes and seconds. */
1100 if (lng)
1101 {
1102 min = sec / 60;
1103 sec %= 60;
1104 aind = sizeof(abuf) - 2;
1105 do
1106 abuf[aind--] = (min % 10) + '0';
1107 while (min /= 10);
1108 aind++;
1109 while (abuf[aind])
1110 buf[ind++] = abuf[aind++];
1111 buf[ind++] = 'm';
1112 }
1113
1114 /* Now add the seconds. */
1115 aind = sizeof (abuf) - 2;
1116 do
1117 abuf[aind--] = (sec % 10) + '0';
1118 while (sec /= 10);
1119 aind++;
1120 while (abuf[aind])
1121 buf[ind++] = abuf[aind++];
1122
1123 /* We want to add a decimal point and PREC places after it if PREC is
1124 nonzero. PREC is not greater than 3. SEC_FRACTION is between 0
1125 and 999. */
1126 if (prec != 0)
1127 {
1128 buf[ind++] = '.';
1129 for (aind = 1; aind <= prec; aind++)
1130 {
1131 buf[ind++] = (sec_fraction / precs[aind]) + '0';
1132 sec_fraction %= precs[aind];
1133 }
1134 }
1135
1136 if (lng)
1137 buf[ind++] = 's';
1138 buf[ind] = '\0';
1139
1140 return (ind);
1141 }
1142
1143 /* Interpret the format string FORMAT, interpolating the following escape
1144 sequences:
1145 %[prec][l][RUS]
1146
1147 where the optional `prec' is a precision, meaning the number of
1148 characters after the decimal point, the optional `l' means to format
1149 using minutes and seconds (MMmNN[.FF]s), like the `times' builtin',
1150 and the last character is one of
1151
1152 R number of seconds of `real' time
1153 U number of seconds of `user' time
1154 S number of seconds of `system' time
1155
1156 An occurrence of `%%' in the format string is translated to a `%'. The
1157 result is printed to FP, a pointer to a FILE. The other variables are
1158 the seconds and thousandths of a second of real, user, and system time,
1159 resectively. */
1160 static void
1161 print_formatted_time (fp, format, rs, rsf, us, usf, ss, ssf, cpu)
1162 FILE *fp;
1163 char *format;
1164 time_t rs;
1165 int rsf;
1166 time_t us;
1167 int usf;
1168 time_t ss;
1169 int ssf, cpu;
1170 {
1171 int prec, lng, len;
1172 char *str, *s, ts[INT_STRLEN_BOUND (time_t) + sizeof ("mSS.FFFF")];
1173 time_t sum;
1174 int sum_frac;
1175 int sindex, ssize;
1176
1177 len = strlen (format);
1178 ssize = (len + 64) - (len % 64);
1179 str = (char *)xmalloc (ssize);
1180 sindex = 0;
1181
1182 for (s = format; *s; s++)
1183 {
1184 if (*s != '%' || s[1] == '\0')
1185 {
1186 RESIZE_MALLOCED_BUFFER (str, sindex, 1, ssize, 64);
1187 str[sindex++] = *s;
1188 }
1189 else if (s[1] == '%')
1190 {
1191 s++;
1192 RESIZE_MALLOCED_BUFFER (str, sindex, 1, ssize, 64);
1193 str[sindex++] = *s;
1194 }
1195 else if (s[1] == 'P')
1196 {
1197 s++;
1198 #if 0
1199 /* clamp CPU usage at 100% */
1200 if (cpu > 10000)
1201 cpu = 10000;
1202 #endif
1203 sum = cpu / 100;
1204 sum_frac = (cpu % 100) * 10;
1205 len = mkfmt (ts, 2, 0, sum, sum_frac);
1206 RESIZE_MALLOCED_BUFFER (str, sindex, len, ssize, 64);
1207 strcpy (str + sindex, ts);
1208 sindex += len;
1209 }
1210 else
1211 {
1212 prec = 3; /* default is three places past the decimal point. */
1213 lng = 0; /* default is to not use minutes or append `s' */
1214 s++;
1215 if (DIGIT (*s)) /* `precision' */
1216 {
1217 prec = *s++ - '0';
1218 if (prec > 3) prec = 3;
1219 }
1220 if (*s == 'l') /* `length extender' */
1221 {
1222 lng = 1;
1223 s++;
1224 }
1225 if (*s == 'R' || *s == 'E')
1226 len = mkfmt (ts, prec, lng, rs, rsf);
1227 else if (*s == 'U')
1228 len = mkfmt (ts, prec, lng, us, usf);
1229 else if (*s == 'S')
1230 len = mkfmt (ts, prec, lng, ss, ssf);
1231 else
1232 {
1233 internal_error (_("TIMEFORMAT: `%c': invalid format character"), *s);
1234 free (str);
1235 return;
1236 }
1237 RESIZE_MALLOCED_BUFFER (str, sindex, len, ssize, 64);
1238 strcpy (str + sindex, ts);
1239 sindex += len;
1240 }
1241 }
1242
1243 str[sindex] = '\0';
1244 fprintf (fp, "%s\n", str);
1245 fflush (fp);
1246
1247 free (str);
1248 }
1249
1250 static int
1251 time_command (command, asynchronous, pipe_in, pipe_out, fds_to_close)
1252 COMMAND *command;
1253 int asynchronous, pipe_in, pipe_out;
1254 struct fd_bitmap *fds_to_close;
1255 {
1256 int rv, posix_time, old_flags, nullcmd;
1257 time_t rs, us, ss;
1258 int rsf, usf, ssf;
1259 int cpu;
1260 char *time_format;
1261
1262 #if defined (HAVE_GETRUSAGE) && defined (HAVE_GETTIMEOFDAY)
1263 struct timeval real, user, sys;
1264 struct timeval before, after;
1265 # if defined (HAVE_STRUCT_TIMEZONE)
1266 struct timezone dtz; /* posix doesn't define this */
1267 # endif
1268 struct rusage selfb, selfa, kidsb, kidsa; /* a = after, b = before */
1269 #else
1270 # if defined (HAVE_TIMES)
1271 clock_t tbefore, tafter, real, user, sys;
1272 struct tms before, after;
1273 # endif
1274 #endif
1275
1276 #if defined (HAVE_GETRUSAGE) && defined (HAVE_GETTIMEOFDAY)
1277 # if defined (HAVE_STRUCT_TIMEZONE)
1278 gettimeofday (&before, &dtz);
1279 # else
1280 gettimeofday (&before, (void *)NULL);
1281 # endif /* !HAVE_STRUCT_TIMEZONE */
1282 getrusage (RUSAGE_SELF, &selfb);
1283 getrusage (RUSAGE_CHILDREN, &kidsb);
1284 #else
1285 # if defined (HAVE_TIMES)
1286 tbefore = times (&before);
1287 # endif
1288 #endif
1289
1290 posix_time = command && (command->flags & CMD_TIME_POSIX);
1291
1292 nullcmd = (command == 0) || (command->type == cm_simple && command->value.Simple->words == 0 && command->value.Simple->redirects == 0);
1293 if (posixly_correct && nullcmd)
1294 {
1295 #if defined (HAVE_GETRUSAGE)
1296 selfb.ru_utime.tv_sec = kidsb.ru_utime.tv_sec = selfb.ru_stime.tv_sec = kidsb.ru_stime.tv_sec = 0;
1297 selfb.ru_utime.tv_usec = kidsb.ru_utime.tv_usec = selfb.ru_stime.tv_usec = kidsb.ru_stime.tv_usec = 0;
1298 before.tv_sec = shell_start_time;
1299 before.tv_usec = 0;
1300 #else
1301 before.tms_utime = before.tms_stime = before.tms_cutime = before.tms_cstime = 0;
1302 tbefore = shell_start_time;
1303 #endif
1304 }
1305
1306 old_flags = command->flags;
1307 command->flags &= ~(CMD_TIME_PIPELINE|CMD_TIME_POSIX);
1308 rv = execute_command_internal (command, asynchronous, pipe_in, pipe_out, fds_to_close);
1309 command->flags = old_flags;
1310
1311 rs = us = ss = 0;
1312 rsf = usf = ssf = cpu = 0;
1313
1314 #if defined (HAVE_GETRUSAGE) && defined (HAVE_GETTIMEOFDAY)
1315 # if defined (HAVE_STRUCT_TIMEZONE)
1316 gettimeofday (&after, &dtz);
1317 # else
1318 gettimeofday (&after, (void *)NULL);
1319 # endif /* !HAVE_STRUCT_TIMEZONE */
1320 getrusage (RUSAGE_SELF, &selfa);
1321 getrusage (RUSAGE_CHILDREN, &kidsa);
1322
1323 difftimeval (&real, &before, &after);
1324 timeval_to_secs (&real, &rs, &rsf);
1325
1326 addtimeval (&user, difftimeval(&after, &selfb.ru_utime, &selfa.ru_utime),
1327 difftimeval(&before, &kidsb.ru_utime, &kidsa.ru_utime));
1328 timeval_to_secs (&user, &us, &usf);
1329
1330 addtimeval (&sys, difftimeval(&after, &selfb.ru_stime, &selfa.ru_stime),
1331 difftimeval(&before, &kidsb.ru_stime, &kidsa.ru_stime));
1332 timeval_to_secs (&sys, &ss, &ssf);
1333
1334 cpu = timeval_to_cpu (&real, &user, &sys);
1335 #else
1336 # if defined (HAVE_TIMES)
1337 tafter = times (&after);
1338
1339 real = tafter - tbefore;
1340 clock_t_to_secs (real, &rs, &rsf);
1341
1342 user = (after.tms_utime - before.tms_utime) + (after.tms_cutime - before.tms_cutime);
1343 clock_t_to_secs (user, &us, &usf);
1344
1345 sys = (after.tms_stime - before.tms_stime) + (after.tms_cstime - before.tms_cstime);
1346 clock_t_to_secs (sys, &ss, &ssf);
1347
1348 cpu = (real == 0) ? 0 : ((user + sys) * 10000) / real;
1349
1350 # else
1351 rs = us = ss = 0;
1352 rsf = usf = ssf = cpu = 0;
1353 # endif
1354 #endif
1355
1356 if (posix_time)
1357 time_format = POSIX_TIMEFORMAT;
1358 else if ((time_format = get_string_value ("TIMEFORMAT")) == 0)
1359 {
1360 if (posixly_correct && nullcmd)
1361 time_format = "user\t%2lU\nsys\t%2lS";
1362 else
1363 time_format = BASH_TIMEFORMAT;
1364 }
1365 if (time_format && *time_format)
1366 print_formatted_time (stderr, time_format, rs, rsf, us, usf, ss, ssf, cpu);
1367
1368 return rv;
1369 }
1370 #endif /* COMMAND_TIMING */
1371
1372 /* Execute a command that's supposed to be in a subshell. This must be
1373 called after make_child and we must be running in the child process.
1374 The caller will return or exit() immediately with the value this returns. */
1375 static int
1376 execute_in_subshell (command, asynchronous, pipe_in, pipe_out, fds_to_close)
1377 COMMAND *command;
1378 int asynchronous;
1379 int pipe_in, pipe_out;
1380 struct fd_bitmap *fds_to_close;
1381 {
1382 int user_subshell, return_code, function_value, should_redir_stdin, invert;
1383 int ois, user_coproc;
1384 int result;
1385 volatile COMMAND *tcom;
1386
1387 USE_VAR(user_subshell);
1388 USE_VAR(user_coproc);
1389 USE_VAR(invert);
1390 USE_VAR(tcom);
1391 USE_VAR(asynchronous);
1392
1393 subshell_level++;
1394 should_redir_stdin = (asynchronous && (command->flags & CMD_STDIN_REDIR) &&
1395 pipe_in == NO_PIPE &&
1396 stdin_redirects (command->redirects) == 0);
1397
1398 invert = (command->flags & CMD_INVERT_RETURN) != 0;
1399 user_subshell = command->type == cm_subshell || ((command->flags & CMD_WANT_SUBSHELL) != 0);
1400 user_coproc = command->type == cm_coproc;
1401
1402 command->flags &= ~(CMD_FORCE_SUBSHELL | CMD_WANT_SUBSHELL | CMD_INVERT_RETURN);
1403
1404 /* If a command is asynchronous in a subshell (like ( foo ) & or
1405 the special case of an asynchronous GROUP command where the
1406 the subshell bit is turned on down in case cm_group: below),
1407 turn off `asynchronous', so that two subshells aren't spawned.
1408 XXX - asynchronous used to be set to 0 in this block, but that
1409 means that setup_async_signals was never run. Now it's set to
1410 0 after subshell_environment is set appropriately and setup_async_signals
1411 is run.
1412
1413 This seems semantically correct to me. For example,
1414 ( foo ) & seems to say ``do the command `foo' in a subshell
1415 environment, but don't wait for that subshell to finish'',
1416 and "{ foo ; bar ; } &" seems to me to be like functions or
1417 builtins in the background, which executed in a subshell
1418 environment. I just don't see the need to fork two subshells. */
1419
1420 /* Don't fork again, we are already in a subshell. A `doubly
1421 async' shell is not interactive, however. */
1422 if (asynchronous)
1423 {
1424 #if defined (JOB_CONTROL)
1425 /* If a construct like ( exec xxx yyy ) & is given while job
1426 control is active, we want to prevent exec from putting the
1427 subshell back into the original process group, carefully
1428 undoing all the work we just did in make_child. */
1429 original_pgrp = -1;
1430 #endif /* JOB_CONTROL */
1431 ois = interactive_shell;
1432 interactive_shell = 0;
1433 /* This test is to prevent alias expansion by interactive shells that
1434 run `(command) &' but to allow scripts that have enabled alias
1435 expansion with `shopt -s expand_alias' to continue to expand
1436 aliases. */
1437 if (ois != interactive_shell)
1438 expand_aliases = 0;
1439 }
1440
1441 /* Subshells are neither login nor interactive. */
1442 login_shell = interactive = 0;
1443
1444 if (user_subshell)
1445 subshell_environment = SUBSHELL_PAREN;
1446 else
1447 {
1448 subshell_environment = 0; /* XXX */
1449 if (asynchronous)
1450 subshell_environment |= SUBSHELL_ASYNC;
1451 if (pipe_in != NO_PIPE || pipe_out != NO_PIPE)
1452 subshell_environment |= SUBSHELL_PIPE;
1453 if (user_coproc)
1454 subshell_environment |= SUBSHELL_COPROC;
1455 }
1456
1457 reset_terminating_signals (); /* in sig.c */
1458 /* Cancel traps, in trap.c. */
1459 /* Reset the signal handlers in the child, but don't free the
1460 trap strings. Set a flag noting that we have to free the
1461 trap strings if we run trap to change a signal disposition. */
1462 reset_signal_handlers ();
1463 subshell_environment |= SUBSHELL_RESETTRAP;
1464
1465 /* Make sure restore_original_signals doesn't undo the work done by
1466 make_child to ensure that asynchronous children are immune to SIGINT
1467 and SIGQUIT. Turn off asynchronous to make sure more subshells are
1468 not spawned. */
1469 if (asynchronous)
1470 {
1471 setup_async_signals ();
1472 asynchronous = 0;
1473 }
1474
1475 #if defined (JOB_CONTROL)
1476 set_sigchld_handler ();
1477 #endif /* JOB_CONTROL */
1478
1479 set_sigint_handler ();
1480
1481 #if defined (JOB_CONTROL)
1482 /* Delete all traces that there were any jobs running. This is
1483 only for subshells. */
1484 without_job_control ();
1485 #endif /* JOB_CONTROL */
1486
1487 if (fds_to_close)
1488 close_fd_bitmap (fds_to_close);
1489
1490 do_piping (pipe_in, pipe_out);
1491
1492 #if defined (COPROCESS_SUPPORT)
1493 coproc_closeall ();
1494 #endif
1495
1496 /* If this is a user subshell, set a flag if stdin was redirected.
1497 This is used later to decide whether to redirect fd 0 to
1498 /dev/null for async commands in the subshell. This adds more
1499 sh compatibility, but I'm not sure it's the right thing to do. */
1500 if (user_subshell)
1501 {
1502 stdin_redir = stdin_redirects (command->redirects);
1503 restore_default_signal (EXIT_TRAP);
1504 }
1505
1506 /* If this is an asynchronous command (command &), we want to
1507 redirect the standard input from /dev/null in the absence of
1508 any specific redirection involving stdin. */
1509 if (should_redir_stdin && stdin_redir == 0)
1510 async_redirect_stdin ();
1511
1512 /* Do redirections, then dispose of them before recursive call. */
1513 if (command->redirects)
1514 {
1515 if (do_redirections (command->redirects, RX_ACTIVE) != 0)
1516 exit (invert ? EXECUTION_SUCCESS : EXECUTION_FAILURE);
1517
1518 dispose_redirects (command->redirects);
1519 command->redirects = (REDIRECT *)NULL;
1520 }
1521
1522 if (command->type == cm_subshell)
1523 tcom = command->value.Subshell->command;
1524 else if (user_coproc)
1525 tcom = command->value.Coproc->command;
1526 else
1527 tcom = command;
1528
1529 if (command->flags & CMD_TIME_PIPELINE)
1530 tcom->flags |= CMD_TIME_PIPELINE;
1531 if (command->flags & CMD_TIME_POSIX)
1532 tcom->flags |= CMD_TIME_POSIX;
1533
1534 /* Make sure the subshell inherits any CMD_IGNORE_RETURN flag. */
1535 if ((command->flags & CMD_IGNORE_RETURN) && tcom != command)
1536 tcom->flags |= CMD_IGNORE_RETURN;
1537
1538 /* If this is a simple command, tell execute_disk_command that it
1539 might be able to get away without forking and simply exec.
1540 This means things like ( sleep 10 ) will only cause one fork.
1541 If we're timing the command or inverting its return value, however,
1542 we cannot do this optimization. */
1543 if ((user_subshell || user_coproc) && (tcom->type == cm_simple || tcom->type == cm_subshell) &&
1544 ((tcom->flags & CMD_TIME_PIPELINE) == 0) &&
1545 ((tcom->flags & CMD_INVERT_RETURN) == 0))
1546 {
1547 tcom->flags |= CMD_NO_FORK;
1548 if (tcom->type == cm_simple)
1549 tcom->value.Simple->flags |= CMD_NO_FORK;
1550 }
1551
1552 invert = (tcom->flags & CMD_INVERT_RETURN) != 0;
1553 tcom->flags &= ~CMD_INVERT_RETURN;
1554
1555 result = setjmp_nosigs (top_level);
1556
1557 /* If we're inside a function while executing this subshell, we
1558 need to handle a possible `return'. */
1559 function_value = 0;
1560 if (return_catch_flag)
1561 function_value = setjmp_nosigs (return_catch);
1562
1563 /* If we're going to exit the shell, we don't want to invert the return
1564 status. */
1565 if (result == EXITPROG)
1566 invert = 0, return_code = last_command_exit_value;
1567 else if (result)
1568 return_code = EXECUTION_FAILURE;
1569 else if (function_value)
1570 return_code = return_catch_value;
1571 else
1572 return_code = execute_command_internal ((COMMAND *)tcom, asynchronous, NO_PIPE, NO_PIPE, fds_to_close);
1573
1574 /* If we are asked to, invert the return value. */
1575 if (invert)
1576 return_code = (return_code == EXECUTION_SUCCESS) ? EXECUTION_FAILURE
1577 : EXECUTION_SUCCESS;
1578
1579 /* If we were explicitly placed in a subshell with (), we need
1580 to do the `shell cleanup' things, such as running traps[0]. */
1581 if (user_subshell && signal_is_trapped (0))
1582 {
1583 last_command_exit_value = return_code;
1584 return_code = run_exit_trap ();
1585 }
1586
1587 subshell_level--;
1588 return (return_code);
1589 /* NOTREACHED */
1590 }
1591
1592 #if defined (COPROCESS_SUPPORT)
1593 #define COPROC_MAX 16
1594
1595 typedef struct cpelement
1596 {
1597 struct cpelement *next;
1598 struct coproc *coproc;
1599 }
1600 cpelement_t;
1601
1602 typedef struct cplist
1603 {
1604 struct cpelement *head;
1605 struct cpelement *tail;
1606 int ncoproc;
1607 int lock;
1608 }
1609 cplist_t;
1610
1611 static struct cpelement *cpe_alloc __P((struct coproc *));
1612 static void cpe_dispose __P((struct cpelement *));
1613 static struct cpelement *cpl_add __P((struct coproc *));
1614 static struct cpelement *cpl_delete __P((pid_t));
1615 static void cpl_reap __P((void));
1616 static void cpl_flush __P((void));
1617 static void cpl_closeall __P((void));
1618 static struct cpelement *cpl_search __P((pid_t));
1619 static struct cpelement *cpl_searchbyname __P((const char *));
1620 static void cpl_prune __P((void));
1621
1622 static void coproc_free __P((struct coproc *));
1623
1624 /* Will go away when there is fully-implemented support for multiple coprocs. */
1625 Coproc sh_coproc = { 0, NO_PID, -1, -1, 0, 0, 0, 0, 0 };
1626
1627 cplist_t coproc_list = {0, 0, 0};
1628
1629 /* Functions to manage the list of coprocs */
1630
1631 static struct cpelement *
1632 cpe_alloc (cp)
1633 Coproc *cp;
1634 {
1635 struct cpelement *cpe;
1636
1637 cpe = (struct cpelement *)xmalloc (sizeof (struct cpelement));
1638 cpe->coproc = cp;
1639 cpe->next = (struct cpelement *)0;
1640 return cpe;
1641 }
1642
1643 static void
1644 cpe_dispose (cpe)
1645 struct cpelement *cpe;
1646 {
1647 free (cpe);
1648 }
1649
1650 static struct cpelement *
1651 cpl_add (cp)
1652 Coproc *cp;
1653 {
1654 struct cpelement *cpe;
1655
1656 cpe = cpe_alloc (cp);
1657
1658 if (coproc_list.head == 0)
1659 {
1660 coproc_list.head = coproc_list.tail = cpe;
1661 coproc_list.ncoproc = 0; /* just to make sure */
1662 }
1663 else
1664 {
1665 coproc_list.tail->next = cpe;
1666 coproc_list.tail = cpe;
1667 }
1668 coproc_list.ncoproc++;
1669
1670 return cpe;
1671 }
1672
1673 static struct cpelement *
1674 cpl_delete (pid)
1675 pid_t pid;
1676 {
1677 struct cpelement *prev, *p;
1678
1679 for (prev = p = coproc_list.head; p; prev = p, p = p->next)
1680 if (p->coproc->c_pid == pid)
1681 {
1682 prev->next = p->next; /* remove from list */
1683 break;
1684 }
1685
1686 if (p == 0)
1687 return 0; /* not found */
1688
1689 #if defined (DEBUG)
1690 itrace("cpl_delete: deleting %d", pid);
1691 #endif
1692
1693 /* Housekeeping in the border cases. */
1694 if (p == coproc_list.head)
1695 coproc_list.head = coproc_list.head->next;
1696 else if (p == coproc_list.tail)
1697 coproc_list.tail = prev;
1698
1699 coproc_list.ncoproc--;
1700 if (coproc_list.ncoproc == 0)
1701 coproc_list.head = coproc_list.tail = 0;
1702 else if (coproc_list.ncoproc == 1)
1703 coproc_list.tail = coproc_list.head; /* just to make sure */
1704
1705 return (p);
1706 }
1707
1708 static void
1709 cpl_reap ()
1710 {
1711 struct cpelement *p, *next, *nh, *nt;
1712
1713 /* Build a new list by removing dead coprocs and fix up the coproc_list
1714 pointers when done. */
1715 nh = nt = next = (struct cpelement *)0;
1716 for (p = coproc_list.head; p; p = next)
1717 {
1718 next = p->next;
1719 if (p->coproc->c_flags & COPROC_DEAD)
1720 {
1721 coproc_list.ncoproc--; /* keep running count, fix up pointers later */
1722
1723 #if defined (DEBUG)
1724 itrace("cpl_reap: deleting %d", p->coproc->c_pid);
1725 #endif
1726
1727 coproc_dispose (p->coproc);
1728 cpe_dispose (p);
1729 }
1730 else if (nh == 0)
1731 nh = nt = p;
1732 else
1733 {
1734 nt->next = p;
1735 nt = nt->next;
1736 }
1737 }
1738
1739 if (coproc_list.ncoproc == 0)
1740 coproc_list.head = coproc_list.tail = 0;
1741 else
1742 {
1743 if (nt)
1744 nt->next = 0;
1745 coproc_list.head = nh;
1746 coproc_list.tail = nt;
1747 if (coproc_list.ncoproc == 1)
1748 coproc_list.tail = coproc_list.head; /* just to make sure */
1749 }
1750 }
1751
1752 /* Clear out the list of saved statuses */
1753 static void
1754 cpl_flush ()
1755 {
1756 struct cpelement *cpe, *p;
1757
1758 for (cpe = coproc_list.head; cpe; )
1759 {
1760 p = cpe;
1761 cpe = cpe->next;
1762
1763 coproc_dispose (p->coproc);
1764 cpe_dispose (p);
1765 }
1766
1767 coproc_list.head = coproc_list.tail = 0;
1768 coproc_list.ncoproc = 0;
1769 }
1770
1771 static void
1772 cpl_closeall ()
1773 {
1774 struct cpelement *cpe;
1775
1776 for (cpe = coproc_list.head; cpe; cpe = cpe->next)
1777 coproc_close (cpe->coproc);
1778 }
1779
1780 static void
1781 cpl_fdchk (fd)
1782 int fd;
1783 {
1784 struct cpelement *cpe;
1785
1786 for (cpe = coproc_list.head; cpe; cpe = cpe->next)
1787 coproc_checkfd (cpe->coproc, fd);
1788 }
1789
1790 /* Search for PID in the list of coprocs; return the cpelement struct if
1791 found. If not found, return NULL. */
1792 static struct cpelement *
1793 cpl_search (pid)
1794 pid_t pid;
1795 {
1796 struct cpelement *cpe;
1797
1798 for (cpe = coproc_list.head ; cpe; cpe = cpe->next)
1799 if (cpe->coproc->c_pid == pid)
1800 return cpe;
1801 return (struct cpelement *)NULL;
1802 }
1803
1804 /* Search for the coproc named NAME in the list of coprocs; return the
1805 cpelement struct if found. If not found, return NULL. */
1806 static struct cpelement *
1807 cpl_searchbyname (name)
1808 const char *name;
1809 {
1810 struct cpelement *cp;
1811
1812 for (cp = coproc_list.head ; cp; cp = cp->next)
1813 if (STREQ (cp->coproc->c_name, name))
1814 return cp;
1815 return (struct cpelement *)NULL;
1816 }
1817
1818 #if 0
1819 static void
1820 cpl_prune ()
1821 {
1822 struct cpelement *cp;
1823
1824 while (coproc_list.head && coproc_list.ncoproc > COPROC_MAX)
1825 {
1826 cp = coproc_list.head;
1827 coproc_list.head = coproc_list.head->next;
1828 coproc_dispose (cp->coproc);
1829 cpe_dispose (cp);
1830 coproc_list.ncoproc--;
1831 }
1832 }
1833 #endif
1834
1835 /* These currently use a single global "shell coproc" but are written in a
1836 way to not preclude additional coprocs later (using the list management
1837 package above). */
1838
1839 struct coproc *
1840 getcoprocbypid (pid)
1841 pid_t pid;
1842 {
1843 #if MULTIPLE_COPROCS
1844 struct cpelement *p;
1845
1846 p = cpl_search (pid);
1847 return (p ? p->coproc : 0);
1848 #else
1849 return (pid == sh_coproc.c_pid ? &sh_coproc : 0);
1850 #endif
1851 }
1852
1853 struct coproc *
1854 getcoprocbyname (name)
1855 const char *name;
1856 {
1857 #if MULTIPLE_COPROCS
1858 struct cpelement *p;
1859
1860 p = cpl_searchbyname (name);
1861 return (p ? p->coproc : 0);
1862 #else
1863 return ((sh_coproc.c_name && STREQ (sh_coproc.c_name, name)) ? &sh_coproc : 0);
1864 #endif
1865 }
1866
1867 void
1868 coproc_init (cp)
1869 struct coproc *cp;
1870 {
1871 cp->c_name = 0;
1872 cp->c_pid = NO_PID;
1873 cp->c_rfd = cp->c_wfd = -1;
1874 cp->c_rsave = cp->c_wsave = -1;
1875 cp->c_flags = cp->c_status = cp->c_lock = 0;
1876 }
1877
1878 struct coproc *
1879 coproc_alloc (name, pid)
1880 char *name;
1881 pid_t pid;
1882 {
1883 struct coproc *cp;
1884
1885 #if MULTIPLE_COPROCS
1886 cp = (struct coproc *)xmalloc (sizeof (struct coproc));
1887 #else
1888 cp = &sh_coproc;
1889 #endif
1890 coproc_init (cp);
1891 cp->c_lock = 2;
1892
1893 cp->c_pid = pid;
1894 cp->c_name = savestring (name);
1895 #if MULTIPLE_COPROCS
1896 cpl_add (cp);
1897 #endif
1898 cp->c_lock = 0;
1899 return (cp);
1900 }
1901
1902 static void
1903 coproc_free (cp)
1904 struct coproc *cp;
1905 {
1906 free (cp);
1907 }
1908
1909 void
1910 coproc_dispose (cp)
1911 struct coproc *cp;
1912 {
1913 sigset_t set, oset;
1914
1915 if (cp == 0)
1916 return;
1917
1918 BLOCK_SIGNAL (SIGCHLD, set, oset);
1919 cp->c_lock = 3;
1920 coproc_unsetvars (cp);
1921 FREE (cp->c_name);
1922 coproc_close (cp);
1923 #if MULTIPLE_COPROCS
1924 coproc_free (cp);
1925 #else
1926 coproc_init (cp);
1927 cp->c_lock = 0;
1928 #endif
1929 UNBLOCK_SIGNAL (oset);
1930 }
1931
1932 /* Placeholder for now. Will require changes for multiple coprocs */
1933 void
1934 coproc_flush ()
1935 {
1936 #if MULTIPLE_COPROCS
1937 cpl_flush ();
1938 #else
1939 coproc_dispose (&sh_coproc);
1940 #endif
1941 }
1942
1943 void
1944 coproc_close (cp)
1945 struct coproc *cp;
1946 {
1947 if (cp->c_rfd >= 0)
1948 {
1949 close (cp->c_rfd);
1950 cp->c_rfd = -1;
1951 }
1952 if (cp->c_wfd >= 0)
1953 {
1954 close (cp->c_wfd);
1955 cp->c_wfd = -1;
1956 }
1957 cp->c_rsave = cp->c_wsave = -1;
1958 }
1959
1960 void
1961 coproc_closeall ()
1962 {
1963 #if MULTIPLE_COPROCS
1964 cpl_closeall ();
1965 #else
1966 coproc_close (&sh_coproc); /* XXX - will require changes for multiple coprocs */
1967 #endif
1968 }
1969
1970 void
1971 coproc_reap ()
1972 {
1973 #if MULTIPLE_COPROCS
1974 cpl_reap ();
1975 #else
1976 struct coproc *cp;
1977
1978 cp = &sh_coproc; /* XXX - will require changes for multiple coprocs */
1979 if (cp && (cp->c_flags & COPROC_DEAD))
1980 coproc_dispose (cp);
1981 #endif
1982 }
1983
1984 void
1985 coproc_rclose (cp, fd)
1986 struct coproc *cp;
1987 int fd;
1988 {
1989 if (cp->c_rfd >= 0 && cp->c_rfd == fd)
1990 {
1991 close (cp->c_rfd);
1992 cp->c_rfd = -1;
1993 }
1994 }
1995
1996 void
1997 coproc_wclose (cp, fd)
1998 struct coproc *cp;
1999 int fd;
2000 {
2001 if (cp->c_wfd >= 0 && cp->c_wfd == fd)
2002 {
2003 close (cp->c_wfd);
2004 cp->c_wfd = -1;
2005 }
2006 }
2007
2008 void
2009 coproc_checkfd (cp, fd)
2010 struct coproc *cp;
2011 int fd;
2012 {
2013 int update;
2014
2015 update = 0;
2016 if (cp->c_rfd >= 0 && cp->c_rfd == fd)
2017 update = cp->c_rfd = -1;
2018 if (cp->c_wfd >= 0 && cp->c_wfd == fd)
2019 update = cp->c_wfd = -1;
2020 if (update)
2021 coproc_setvars (cp);
2022 }
2023
2024 void
2025 coproc_fdchk (fd)
2026 int fd;
2027 {
2028 #if MULTIPLE_COPROCS
2029 cpl_fdchk (fd);
2030 #else
2031 coproc_checkfd (&sh_coproc, fd);
2032 #endif
2033 }
2034
2035 void
2036 coproc_fdclose (cp, fd)
2037 struct coproc *cp;
2038 int fd;
2039 {
2040 coproc_rclose (cp, fd);
2041 coproc_wclose (cp, fd);
2042 coproc_setvars (cp);
2043 }
2044
2045 void
2046 coproc_fdsave (cp)
2047 struct coproc *cp;
2048 {
2049 cp->c_rsave = cp->c_rfd;
2050 cp->c_wsave = cp->c_wfd;
2051 }
2052
2053 void
2054 coproc_fdrestore (cp)
2055 struct coproc *cp;
2056 {
2057 cp->c_rfd = cp->c_rsave;
2058 cp->c_wfd = cp->c_wsave;
2059 }
2060
2061 void
2062 coproc_pidchk (pid, status)
2063 pid_t pid;
2064 {
2065 struct coproc *cp;
2066
2067 #if MULTIPLE_COPROCS
2068 struct cpelement *cpe;
2069
2070 cpe = cpl_delete (pid);
2071 cp = cpe ? cpe->coproc : 0;
2072 #else
2073 cp = getcoprocbypid (pid);
2074 #endif
2075 if (cp)
2076 {
2077 cp->c_lock = 4;
2078 cp->c_status = status;
2079 cp->c_flags |= COPROC_DEAD;
2080 cp->c_flags &= ~COPROC_RUNNING;
2081 /* Don't dispose the coproc or unset the COPROC_XXX variables because
2082 this is executed in a signal handler context. Wait until coproc_reap
2083 takes care of it. */
2084 cp->c_lock = 0;
2085 }
2086 }
2087
2088 void
2089 coproc_setvars (cp)
2090 struct coproc *cp;
2091 {
2092 SHELL_VAR *v;
2093 char *namevar, *t;
2094 int l;
2095 #if defined (ARRAY_VARS)
2096 arrayind_t ind;
2097 #endif
2098
2099 if (cp->c_name == 0)
2100 return;
2101
2102 l = strlen (cp->c_name);
2103 namevar = xmalloc (l + 16);
2104
2105 #if defined (ARRAY_VARS)
2106 v = find_variable (cp->c_name);
2107 if (v == 0)
2108 v = make_new_array_variable (cp->c_name);
2109 if (array_p (v) == 0)
2110 v = convert_var_to_array (v);
2111
2112 t = itos (cp->c_rfd);
2113 ind = 0;
2114 v = bind_array_variable (cp->c_name, ind, t, 0);
2115 free (t);
2116
2117 t = itos (cp->c_wfd);
2118 ind = 1;
2119 bind_array_variable (cp->c_name, ind, t, 0);
2120 free (t);
2121 #else
2122 sprintf (namevar, "%s_READ", cp->c_name);
2123 t = itos (cp->c_rfd);
2124 bind_variable (namevar, t, 0);
2125 free (t);
2126 sprintf (namevar, "%s_WRITE", cp->c_name);
2127 t = itos (cp->c_wfd);
2128 bind_variable (namevar, t, 0);
2129 free (t);
2130 #endif
2131
2132 sprintf (namevar, "%s_PID", cp->c_name);
2133 t = itos (cp->c_pid);
2134 bind_variable (namevar, t, 0);
2135 free (t);
2136
2137 free (namevar);
2138 }
2139
2140 void
2141 coproc_unsetvars (cp)
2142 struct coproc *cp;
2143 {
2144 int l;
2145 char *namevar;
2146
2147 if (cp->c_name == 0)
2148 return;
2149
2150 l = strlen (cp->c_name);
2151 namevar = xmalloc (l + 16);
2152
2153 sprintf (namevar, "%s_PID", cp->c_name);
2154 unbind_variable (namevar);
2155
2156 #if defined (ARRAY_VARS)
2157 unbind_variable (cp->c_name);
2158 #else
2159 sprintf (namevar, "%s_READ", cp->c_name);
2160 unbind_variable (namevar);
2161 sprintf (namevar, "%s_WRITE", cp->c_name);
2162 unbind_variable (namevar);
2163 #endif
2164
2165 free (namevar);
2166 }
2167
2168 static int
2169 execute_coproc (command, pipe_in, pipe_out, fds_to_close)
2170 COMMAND *command;
2171 int pipe_in, pipe_out;
2172 struct fd_bitmap *fds_to_close;
2173 {
2174 int rpipe[2], wpipe[2], estat, invert;
2175 pid_t coproc_pid;
2176 Coproc *cp;
2177 char *tcmd;
2178 sigset_t set, oset;
2179
2180 /* XXX -- can be removed after changes to handle multiple coprocs */
2181 #if !MULTIPLE_COPROCS
2182 if (sh_coproc.c_pid != NO_PID)
2183 internal_warning ("execute_coproc: coproc [%d:%s] still exists", sh_coproc.c_pid, sh_coproc.c_name);
2184 coproc_init (&sh_coproc);
2185 #endif
2186
2187 invert = (command->flags & CMD_INVERT_RETURN) != 0;
2188 command_string_index = 0;
2189 tcmd = make_command_string (command);
2190
2191 sh_openpipe ((int *)&rpipe); /* 0 = parent read, 1 = child write */
2192 sh_openpipe ((int *)&wpipe); /* 0 = child read, 1 = parent write */
2193
2194 BLOCK_SIGNAL (SIGCHLD, set, oset);
2195
2196 coproc_pid = make_child (savestring (tcmd), 1);
2197
2198 if (coproc_pid == 0)
2199 {
2200 close (rpipe[0]);
2201 close (wpipe[1]);
2202
2203 UNBLOCK_SIGNAL (oset);
2204 estat = execute_in_subshell (command, 1, wpipe[0], rpipe[1], fds_to_close);
2205
2206 fflush (stdout);
2207 fflush (stderr);
2208
2209 exit (estat);
2210 }
2211
2212 close (rpipe[1]);
2213 close (wpipe[0]);
2214
2215 /* XXX - possibly run Coproc->name through word expansion? */
2216 cp = coproc_alloc (command->value.Coproc->name, coproc_pid);
2217 cp->c_rfd = rpipe[0];
2218 cp->c_wfd = wpipe[1];
2219
2220 SET_CLOSE_ON_EXEC (cp->c_rfd);
2221 SET_CLOSE_ON_EXEC (cp->c_wfd);
2222
2223 coproc_setvars (cp);
2224
2225 UNBLOCK_SIGNAL (oset);
2226
2227 #if 0
2228 itrace ("execute_coproc: [%d] %s", coproc_pid, the_printed_command);
2229 #endif
2230
2231 close_pipes (pipe_in, pipe_out);
2232 #if defined (PROCESS_SUBSTITUTION) && defined (HAVE_DEV_FD)
2233 unlink_fifo_list ();
2234 #endif
2235 stop_pipeline (1, (COMMAND *)NULL);
2236 DESCRIBE_PID (coproc_pid);
2237 run_pending_traps ();
2238
2239 return (invert ? EXECUTION_FAILURE : EXECUTION_SUCCESS);
2240 }
2241 #endif
2242
2243 static void
2244 restore_stdin (s)
2245 int s;
2246 {
2247 dup2 (s, 0);
2248 close (s);
2249 }
2250
2251 /* Catch-all cleanup function for lastpipe code for unwind-protects */
2252 static void
2253 lastpipe_cleanup (s)
2254 int s;
2255 {
2256 unfreeze_jobs_list ();
2257 }
2258
2259 static int
2260 execute_pipeline (command, asynchronous, pipe_in, pipe_out, fds_to_close)
2261 COMMAND *command;
2262 int asynchronous, pipe_in, pipe_out;
2263 struct fd_bitmap *fds_to_close;
2264 {
2265 int prev, fildes[2], new_bitmap_size, dummyfd, ignore_return, exec_result;
2266 int lstdin, lastpipe_flag, lastpipe_jid;
2267 COMMAND *cmd;
2268 struct fd_bitmap *fd_bitmap;
2269 pid_t lastpid;
2270
2271 #if defined (JOB_CONTROL)
2272 sigset_t set, oset;
2273 BLOCK_CHILD (set, oset);
2274 #endif /* JOB_CONTROL */
2275
2276 ignore_return = (command->flags & CMD_IGNORE_RETURN) != 0;
2277
2278 prev = pipe_in;
2279 cmd = command;
2280
2281 while (cmd && cmd->type == cm_connection &&
2282 cmd->value.Connection && cmd->value.Connection->connector == '|')
2283 {
2284 /* Make a pipeline between the two commands. */
2285 if (pipe (fildes) < 0)
2286 {
2287 sys_error (_("pipe error"));
2288 #if defined (JOB_CONTROL)
2289 terminate_current_pipeline ();
2290 kill_current_pipeline ();
2291 UNBLOCK_CHILD (oset);
2292 #endif /* JOB_CONTROL */
2293 last_command_exit_value = EXECUTION_FAILURE;
2294 /* The unwind-protects installed below will take care
2295 of closing all of the open file descriptors. */
2296 throw_to_top_level ();
2297 return (EXECUTION_FAILURE); /* XXX */
2298 }
2299
2300 /* Here is a problem: with the new file close-on-exec
2301 code, the read end of the pipe (fildes[0]) stays open
2302 in the first process, so that process will never get a
2303 SIGPIPE. There is no way to signal the first process
2304 that it should close fildes[0] after forking, so it
2305 remains open. No SIGPIPE is ever sent because there
2306 is still a file descriptor open for reading connected
2307 to the pipe. We take care of that here. This passes
2308 around a bitmap of file descriptors that must be
2309 closed after making a child process in execute_simple_command. */
2310
2311 /* We need fd_bitmap to be at least as big as fildes[0].
2312 If fildes[0] is less than fds_to_close->size, then
2313 use fds_to_close->size. */
2314 new_bitmap_size = (fildes[0] < fds_to_close->size)
2315 ? fds_to_close->size
2316 : fildes[0] + 8;
2317
2318 fd_bitmap = new_fd_bitmap (new_bitmap_size);
2319
2320 /* Now copy the old information into the new bitmap. */
2321 xbcopy ((char *)fds_to_close->bitmap, (char *)fd_bitmap->bitmap, fds_to_close->size);
2322
2323 /* And mark the pipe file descriptors to be closed. */
2324 fd_bitmap->bitmap[fildes[0]] = 1;
2325
2326 /* In case there are pipe or out-of-processes errors, we
2327 want all these file descriptors to be closed when
2328 unwind-protects are run, and the storage used for the
2329 bitmaps freed up. */
2330 begin_unwind_frame ("pipe-file-descriptors");
2331 add_unwind_protect (dispose_fd_bitmap, fd_bitmap);
2332 add_unwind_protect (close_fd_bitmap, fd_bitmap);
2333 if (prev >= 0)
2334 add_unwind_protect (close, prev);
2335 dummyfd = fildes[1];
2336 add_unwind_protect (close, dummyfd);
2337
2338 #if defined (JOB_CONTROL)
2339 add_unwind_protect (restore_signal_mask, &oset);
2340 #endif /* JOB_CONTROL */
2341
2342 if (ignore_return && cmd->value.Connection->first)
2343 cmd->value.Connection->first->flags |= CMD_IGNORE_RETURN;
2344 execute_command_internal (cmd->value.Connection->first, asynchronous,
2345 prev, fildes[1], fd_bitmap);
2346
2347 if (prev >= 0)
2348 close (prev);
2349
2350 prev = fildes[0];
2351 close (fildes[1]);
2352
2353 dispose_fd_bitmap (fd_bitmap);
2354 discard_unwind_frame ("pipe-file-descriptors");
2355
2356 cmd = cmd->value.Connection->second;
2357 }
2358
2359 lastpid = last_made_pid;
2360
2361 /* Now execute the rightmost command in the pipeline. */
2362 if (ignore_return && cmd)
2363 cmd->flags |= CMD_IGNORE_RETURN;
2364
2365 lastpipe_flag = 0;
2366
2367 begin_unwind_frame ("lastpipe-exec");
2368 lstdin = -1;
2369 /* If the `lastpipe' option is set with shopt, and job control is not
2370 enabled, execute the last element of non-async pipelines in the
2371 current shell environment. */
2372 if (lastpipe_opt && job_control == 0 && asynchronous == 0 && pipe_out == NO_PIPE && prev > 0)
2373 {
2374 lstdin = move_to_high_fd (0, 1, -1);
2375 if (lstdin > 0)
2376 {
2377 do_piping (prev, pipe_out);
2378 prev = NO_PIPE;
2379 add_unwind_protect (restore_stdin, lstdin);
2380 lastpipe_flag = 1;
2381 freeze_jobs_list ();
2382 lastpipe_jid = stop_pipeline (0, (COMMAND *)NULL); /* XXX */
2383 add_unwind_protect (lastpipe_cleanup, lastpipe_jid);
2384 }
2385 if (cmd)
2386 cmd->flags |= CMD_LASTPIPE;
2387 }
2388 if (prev >= 0)
2389 add_unwind_protect (close, prev);
2390
2391 exec_result = execute_command_internal (cmd, asynchronous, prev, pipe_out, fds_to_close);
2392
2393 if (lstdin > 0)
2394 restore_stdin (lstdin);
2395
2396 if (prev >= 0)
2397 close (prev);
2398
2399 #if defined (JOB_CONTROL)
2400 UNBLOCK_CHILD (oset);
2401 #endif
2402
2403 QUIT;
2404
2405 if (lastpipe_flag)
2406 {
2407 #if defined (JOB_CONTROL)
2408 append_process (savestring (the_printed_command), dollar_dollar_pid, exec_result, lastpipe_jid);
2409 #endif
2410 lstdin = wait_for (lastpid);
2411 #if defined (JOB_CONTROL)
2412 /* If wait_for removes the job from the jobs table, use result of last
2413 command as pipeline's exit status as usual. The jobs list can get
2414 frozen and unfrozen at inconvenient times if there are multiple pipelines
2415 running simultaneously. */
2416 if (INVALID_JOB (lastpipe_jid) == 0)
2417 exec_result = job_exit_status (lastpipe_jid);
2418 else if (pipefail_opt)
2419 exec_result = exec_result | lstdin; /* XXX */
2420 /* otherwise we use exec_result */
2421
2422 #endif
2423 unfreeze_jobs_list ();
2424 }
2425
2426 discard_unwind_frame ("lastpipe-exec");
2427
2428 return (exec_result);
2429 }
2430
2431 static int
2432 execute_connection (command, asynchronous, pipe_in, pipe_out, fds_to_close)
2433 COMMAND *command;
2434 int asynchronous, pipe_in, pipe_out;
2435 struct fd_bitmap *fds_to_close;
2436 {
2437 COMMAND *tc, *second;
2438 int ignore_return, exec_result, was_error_trap, invert;
2439 volatile int save_line_number;
2440
2441 ignore_return = (command->flags & CMD_IGNORE_RETURN) != 0;
2442
2443 switch (command->value.Connection->connector)
2444 {
2445 /* Do the first command asynchronously. */
2446 case '&':
2447 tc = command->value.Connection->first;
2448 if (tc == 0)
2449 return (EXECUTION_SUCCESS);
2450
2451 if (ignore_return)
2452 tc->flags |= CMD_IGNORE_RETURN;
2453 tc->flags |= CMD_AMPERSAND;
2454
2455 /* If this shell was compiled without job control support,
2456 if we are currently in a subshell via `( xxx )', or if job
2457 control is not active then the standard input for an
2458 asynchronous command is forced to /dev/null. */
2459 #if defined (JOB_CONTROL)
2460 if ((subshell_environment || !job_control) && !stdin_redir)
2461 #else
2462 if (!stdin_redir)
2463 #endif /* JOB_CONTROL */
2464 tc->flags |= CMD_STDIN_REDIR;
2465
2466 exec_result = execute_command_internal (tc, 1, pipe_in, pipe_out, fds_to_close);
2467 QUIT;
2468
2469 if (tc->flags & CMD_STDIN_REDIR)
2470 tc->flags &= ~CMD_STDIN_REDIR;
2471
2472 second = command->value.Connection->second;
2473 if (second)
2474 {
2475 if (ignore_return)
2476 second->flags |= CMD_IGNORE_RETURN;
2477
2478 exec_result = execute_command_internal (second, asynchronous, pipe_in, pipe_out, fds_to_close);
2479 }
2480
2481 break;
2482
2483 /* Just call execute command on both sides. */
2484 case ';':
2485 if (ignore_return)
2486 {
2487 if (command->value.Connection->first)
2488 command->value.Connection->first->flags |= CMD_IGNORE_RETURN;
2489 if (command->value.Connection->second)
2490 command->value.Connection->second->flags |= CMD_IGNORE_RETURN;
2491 }
2492 executing_list++;
2493 QUIT;
2494 execute_command (command->value.Connection->first);
2495 QUIT;
2496 exec_result = execute_command_internal (command->value.Connection->second,
2497 asynchronous, pipe_in, pipe_out,
2498 fds_to_close);
2499 executing_list--;
2500 break;
2501
2502 case '|':
2503 was_error_trap = signal_is_trapped (ERROR_TRAP) && signal_is_ignored (ERROR_TRAP) == 0;
2504 invert = (command->flags & CMD_INVERT_RETURN) != 0;
2505 ignore_return = (command->flags & CMD_IGNORE_RETURN) != 0;
2506
2507 line_number_for_err_trap = line_number;
2508 exec_result = execute_pipeline (command, asynchronous, pipe_in, pipe_out, fds_to_close);
2509
2510 if (was_error_trap && ignore_return == 0 && invert == 0 && exec_result != EXECUTION_SUCCESS)
2511 {
2512 last_command_exit_value = exec_result;
2513 save_line_number = line_number;
2514 line_number = line_number_for_err_trap;
2515 run_error_trap ();
2516 line_number = save_line_number;
2517 }
2518
2519 if (ignore_return == 0 && invert == 0 && exit_immediately_on_error && exec_result != EXECUTION_SUCCESS)
2520 {
2521 last_command_exit_value = exec_result;
2522 run_pending_traps ();
2523 jump_to_top_level (ERREXIT);
2524 }
2525
2526 break;
2527
2528 case AND_AND:
2529 case OR_OR:
2530 if (asynchronous)
2531 {
2532 /* If we have something like `a && b &' or `a || b &', run the
2533 && or || stuff in a subshell. Force a subshell and just call
2534 execute_command_internal again. Leave asynchronous on
2535 so that we get a report from the parent shell about the
2536 background job. */
2537 command->flags |= CMD_FORCE_SUBSHELL;
2538 exec_result = execute_command_internal (command, 1, pipe_in, pipe_out, fds_to_close);
2539 break;
2540 }
2541
2542 /* Execute the first command. If the result of that is successful
2543 and the connector is AND_AND, or the result is not successful
2544 and the connector is OR_OR, then execute the second command,
2545 otherwise return. */
2546
2547 executing_list++;
2548 if (command->value.Connection->first)
2549 command->value.Connection->first->flags |= CMD_IGNORE_RETURN;
2550
2551 exec_result = execute_command (command->value.Connection->first);
2552 QUIT;
2553 if (((command->value.Connection->connector == AND_AND) &&
2554 (exec_result == EXECUTION_SUCCESS)) ||
2555 ((command->value.Connection->connector == OR_OR) &&
2556 (exec_result != EXECUTION_SUCCESS)))
2557 {
2558 if (ignore_return && command->value.Connection->second)
2559 command->value.Connection->second->flags |= CMD_IGNORE_RETURN;
2560
2561 exec_result = execute_command (command->value.Connection->second);
2562 }
2563 executing_list--;
2564 break;
2565
2566 default:
2567 command_error ("execute_connection", CMDERR_BADCONN, command->value.Connection->connector, 0);
2568 jump_to_top_level (DISCARD);
2569 exec_result = EXECUTION_FAILURE;
2570 }
2571
2572 return exec_result;
2573 }
2574
2575 #define REAP() \
2576 do \
2577 { \
2578 if (!interactive_shell) \
2579 reap_dead_jobs (); \
2580 } \
2581 while (0)
2582
2583 /* Execute a FOR command. The syntax is: FOR word_desc IN word_list;
2584 DO command; DONE */
2585 static int
2586 execute_for_command (for_command)
2587 FOR_COM *for_command;
2588 {
2589 register WORD_LIST *releaser, *list;
2590 SHELL_VAR *v;
2591 char *identifier;
2592 int retval, save_line_number;
2593 #if 0
2594 SHELL_VAR *old_value = (SHELL_VAR *)NULL; /* Remember the old value of x. */
2595 #endif
2596
2597 save_line_number = line_number;
2598 if (check_identifier (for_command->name, 1) == 0)
2599 {
2600 if (posixly_correct && interactive_shell == 0)
2601 {
2602 last_command_exit_value = EX_BADUSAGE;
2603 jump_to_top_level (ERREXIT);
2604 }
2605 return (EXECUTION_FAILURE);
2606 }
2607
2608 loop_level++;
2609 identifier = for_command->name->word;
2610
2611 line_number = for_command->line; /* for expansion error messages */
2612 list = releaser = expand_words_no_vars (for_command->map_list);
2613
2614 begin_unwind_frame ("for");
2615 add_unwind_protect (dispose_words, releaser);
2616
2617 #if 0
2618 if (lexical_scoping)
2619 {
2620 old_value = copy_variable (find_variable (identifier));
2621 if (old_value)
2622 add_unwind_protect (dispose_variable, old_value);
2623 }
2624 #endif
2625
2626 if (for_command->flags & CMD_IGNORE_RETURN)
2627 for_command->action->flags |= CMD_IGNORE_RETURN;
2628
2629 for (retval = EXECUTION_SUCCESS; list; list = list->next)
2630 {
2631 QUIT;
2632
2633 line_number = for_command->line;
2634
2635 /* Remember what this command looks like, for debugger. */
2636 command_string_index = 0;
2637 print_for_command_head (for_command);
2638
2639 if (echo_command_at_execute)
2640 xtrace_print_for_command_head (for_command);
2641
2642 /* Save this command unless it's a trap command and we're not running
2643 a debug trap. */
2644 if (signal_in_progress (DEBUG_TRAP) == 0 && running_trap == 0)
2645 {
2646 FREE (the_printed_command_except_trap);
2647 the_printed_command_except_trap = savestring (the_printed_command);
2648 }
2649
2650 retval = run_debug_trap ();
2651 #if defined (DEBUGGER)
2652 /* In debugging mode, if the DEBUG trap returns a non-zero status, we
2653 skip the command. */
2654 if (debugging_mode && retval != EXECUTION_SUCCESS)
2655 continue;
2656 #endif
2657
2658 this_command_name = (char *)NULL;
2659 /* XXX - special ksh93 for command index variable handling */
2660 v = find_variable_last_nameref (identifier);
2661 if (v && nameref_p (v))
2662 {
2663 v = bind_variable_value (v, list->word->word, 0);
2664 }
2665 else
2666 v = bind_variable (identifier, list->word->word, 0);
2667 if (readonly_p (v) || noassign_p (v))
2668 {
2669 line_number = save_line_number;
2670 if (readonly_p (v) && interactive_shell == 0 && posixly_correct)
2671 {
2672 last_command_exit_value = EXECUTION_FAILURE;
2673 jump_to_top_level (FORCE_EOF);
2674 }
2675 else
2676 {
2677 dispose_words (releaser);
2678 discard_unwind_frame ("for");
2679 loop_level--;
2680 return (EXECUTION_FAILURE);
2681 }
2682 }
2683 retval = execute_command (for_command->action);
2684 REAP ();
2685 QUIT;
2686
2687 if (breaking)
2688 {
2689 breaking--;
2690 break;
2691 }
2692
2693 if (continuing)
2694 {
2695 continuing--;
2696 if (continuing)
2697 break;
2698 }
2699 }
2700
2701 loop_level--;
2702 line_number = save_line_number;
2703
2704 #if 0
2705 if (lexical_scoping)
2706 {
2707 if (!old_value)
2708 unbind_variable (identifier);
2709 else
2710 {
2711 SHELL_VAR *new_value;
2712
2713 new_value = bind_variable (identifier, value_cell(old_value), 0);
2714 new_value->attributes = old_value->attributes;
2715 dispose_variable (old_value);
2716 }
2717 }
2718 #endif
2719
2720 dispose_words (releaser);
2721 discard_unwind_frame ("for");
2722 return (retval);
2723 }
2724
2725 #if defined (ARITH_FOR_COMMAND)
2726 /* Execute an arithmetic for command. The syntax is
2727
2728 for (( init ; step ; test ))
2729 do
2730 body
2731 done
2732
2733 The execution should be exactly equivalent to
2734
2735 eval \(\( init \)\)
2736 while eval \(\( test \)\) ; do
2737 body;
2738 eval \(\( step \)\)
2739 done
2740 */
2741 static intmax_t
2742 eval_arith_for_expr (l, okp)
2743 WORD_LIST *l;
2744 int *okp;
2745 {
2746 WORD_LIST *new;
2747 intmax_t expresult;
2748 int r;
2749
2750 new = expand_words_no_vars (l);
2751 if (new)
2752 {
2753 if (echo_command_at_execute)
2754 xtrace_print_arith_cmd (new);
2755 this_command_name = "(("; /* )) for expression error messages */
2756
2757 command_string_index = 0;
2758 print_arith_command (new);
2759 if (signal_in_progress (DEBUG_TRAP) == 0)
2760 {
2761 FREE (the_printed_command_except_trap);
2762 the_printed_command_except_trap = savestring (the_printed_command);
2763 }
2764
2765 r = run_debug_trap ();
2766 /* In debugging mode, if the DEBUG trap returns a non-zero status, we
2767 skip the command. */
2768 #if defined (DEBUGGER)
2769 if (debugging_mode == 0 || r == EXECUTION_SUCCESS)
2770 expresult = evalexp (new->word->word, okp);
2771 else
2772 {
2773 expresult = 0;
2774 if (okp)
2775 *okp = 1;
2776 }
2777 #else
2778 expresult = evalexp (new->word->word, okp);
2779 #endif
2780 dispose_words (new);
2781 }
2782 else
2783 {
2784 expresult = 0;
2785 if (okp)
2786 *okp = 1;
2787 }
2788 return (expresult);
2789 }
2790
2791 static int
2792 execute_arith_for_command (arith_for_command)
2793 ARITH_FOR_COM *arith_for_command;
2794 {
2795 intmax_t expresult;
2796 int expok, body_status, arith_lineno, save_lineno;
2797
2798 body_status = EXECUTION_SUCCESS;
2799 loop_level++;
2800 save_lineno = line_number;
2801
2802 if (arith_for_command->flags & CMD_IGNORE_RETURN)
2803 arith_for_command->action->flags |= CMD_IGNORE_RETURN;
2804
2805 this_command_name = "(("; /* )) for expression error messages */
2806
2807 /* save the starting line number of the command so we can reset
2808 line_number before executing each expression -- for $LINENO
2809 and the DEBUG trap. */
2810 line_number = arith_lineno = arith_for_command->line;
2811 if (variable_context && interactive_shell)
2812 line_number -= function_line_number;
2813
2814 /* Evaluate the initialization expression. */
2815 expresult = eval_arith_for_expr (arith_for_command->init, &expok);
2816 if (expok == 0)
2817 {
2818 line_number = save_lineno;
2819 return (EXECUTION_FAILURE);
2820 }
2821
2822 while (1)
2823 {
2824 /* Evaluate the test expression. */
2825 line_number = arith_lineno;
2826 expresult = eval_arith_for_expr (arith_for_command->test, &expok);
2827 line_number = save_lineno;
2828
2829 if (expok == 0)
2830 {
2831 body_status = EXECUTION_FAILURE;
2832 break;
2833 }
2834 REAP ();
2835 if (expresult == 0)
2836 break;
2837
2838 /* Execute the body of the arithmetic for command. */
2839 QUIT;
2840 body_status = execute_command (arith_for_command->action);
2841 QUIT;
2842
2843 /* Handle any `break' or `continue' commands executed by the body. */
2844 if (breaking)
2845 {
2846 breaking--;
2847 break;
2848 }
2849
2850 if (continuing)
2851 {
2852 continuing--;
2853 if (continuing)
2854 break;
2855 }
2856
2857 /* Evaluate the step expression. */
2858 line_number = arith_lineno;
2859 expresult = eval_arith_for_expr (arith_for_command->step, &expok);
2860 line_number = save_lineno;
2861
2862 if (expok == 0)
2863 {
2864 body_status = EXECUTION_FAILURE;
2865 break;
2866 }
2867 }
2868
2869 loop_level--;
2870 line_number = save_lineno;
2871
2872 return (body_status);
2873 }
2874 #endif
2875
2876 #if defined (SELECT_COMMAND)
2877 static int LINES, COLS, tabsize;
2878
2879 #define RP_SPACE ") "
2880 #define RP_SPACE_LEN 2
2881
2882 /* XXX - does not handle numbers > 1000000 at all. */
2883 #define NUMBER_LEN(s) \
2884 ((s < 10) ? 1 \
2885 : ((s < 100) ? 2 \
2886 : ((s < 1000) ? 3 \
2887 : ((s < 10000) ? 4 \
2888 : ((s < 100000) ? 5 \
2889 : 6)))))
2890
2891 static int
2892 displen (s)
2893 const char *s;
2894 {
2895 #if defined (HANDLE_MULTIBYTE)
2896 wchar_t *wcstr;
2897 size_t slen;
2898 int wclen;
2899
2900 wcstr = 0;
2901 slen = mbstowcs (wcstr, s, 0);
2902 if (slen == -1)
2903 slen = 0;
2904 wcstr = (wchar_t *)xmalloc (sizeof (wchar_t) * (slen + 1));
2905 mbstowcs (wcstr, s, slen + 1);
2906 wclen = wcswidth (wcstr, slen);
2907 free (wcstr);
2908 return (wclen < 0 ? STRLEN(s) : wclen);
2909 #else
2910 return (STRLEN (s));
2911 #endif
2912 }
2913
2914 static int
2915 print_index_and_element (len, ind, list)
2916 int len, ind;
2917 WORD_LIST *list;
2918 {
2919 register WORD_LIST *l;
2920 register int i;
2921
2922 if (list == 0)
2923 return (0);
2924 for (i = ind, l = list; l && --i; l = l->next)
2925 ;
2926 if (l == 0) /* don't think this can happen */
2927 return (0);
2928 fprintf (stderr, "%*d%s%s", len, ind, RP_SPACE, l->word->word);
2929 return (displen (l->word->word));
2930 }
2931
2932 static void
2933 indent (from, to)
2934 int from, to;
2935 {
2936 while (from < to)
2937 {
2938 if ((to / tabsize) > (from / tabsize))
2939 {
2940 putc ('\t', stderr);
2941 from += tabsize - from % tabsize;
2942 }
2943 else
2944 {
2945 putc (' ', stderr);
2946 from++;
2947 }
2948 }
2949 }
2950
2951 static void
2952 print_select_list (list, list_len, max_elem_len, indices_len)
2953 WORD_LIST *list;
2954 int list_len, max_elem_len, indices_len;
2955 {
2956 int ind, row, elem_len, pos, cols, rows;
2957 int first_column_indices_len, other_indices_len;
2958
2959 if (list == 0)
2960 {
2961 putc ('\n', stderr);
2962 return;
2963 }
2964
2965 cols = max_elem_len ? COLS / max_elem_len : 1;
2966 if (cols == 0)
2967 cols = 1;
2968 rows = list_len ? list_len / cols + (list_len % cols != 0) : 1;
2969 cols = list_len ? list_len / rows + (list_len % rows != 0) : 1;
2970
2971 if (rows == 1)
2972 {
2973 rows = cols;
2974 cols = 1;
2975 }
2976
2977 first_column_indices_len = NUMBER_LEN (rows);
2978 other_indices_len = indices_len;
2979
2980 for (row = 0; row < rows; row++)
2981 {
2982 ind = row;
2983 pos = 0;
2984 while (1)
2985 {
2986 indices_len = (pos == 0) ? first_column_indices_len : other_indices_len;
2987 elem_len = print_index_and_element (indices_len, ind + 1, list);
2988 elem_len += indices_len + RP_SPACE_LEN;
2989 ind += rows;
2990 if (ind >= list_len)
2991 break;
2992 indent (pos + elem_len, pos + max_elem_len);
2993 pos += max_elem_len;
2994 }
2995 putc ('\n', stderr);
2996 }
2997 }
2998
2999 /* Print the elements of LIST, one per line, preceded by an index from 1 to
3000 LIST_LEN. Then display PROMPT and wait for the user to enter a number.
3001 If the number is between 1 and LIST_LEN, return that selection. If EOF
3002 is read, return a null string. If a blank line is entered, or an invalid
3003 number is entered, the loop is executed again. */
3004 static char *
3005 select_query (list, list_len, prompt, print_menu)
3006 WORD_LIST *list;
3007 int list_len;
3008 char *prompt;
3009 int print_menu;
3010 {
3011 int max_elem_len, indices_len, len;
3012 intmax_t reply;
3013 WORD_LIST *l;
3014 char *repl_string, *t;
3015
3016 #if 0
3017 t = get_string_value ("LINES");
3018 LINES = (t && *t) ? atoi (t) : 24;
3019 #endif
3020 t = get_string_value ("COLUMNS");
3021 COLS = (t && *t) ? atoi (t) : 80;
3022
3023 #if 0
3024 t = get_string_value ("TABSIZE");
3025 tabsize = (t && *t) ? atoi (t) : 8;
3026 if (tabsize <= 0)
3027 tabsize = 8;
3028 #else
3029 tabsize = 8;
3030 #endif
3031
3032 max_elem_len = 0;
3033 for (l = list; l; l = l->next)
3034 {
3035 len = displen (l->word->word);
3036 if (len > max_elem_len)
3037 max_elem_len = len;
3038 }
3039 indices_len = NUMBER_LEN (list_len);
3040 max_elem_len += indices_len + RP_SPACE_LEN + 2;
3041
3042 while (1)
3043 {
3044 if (print_menu)
3045 print_select_list (list, list_len, max_elem_len, indices_len);
3046 fprintf (stderr, "%s", prompt);
3047 fflush (stderr);
3048 QUIT;
3049
3050 if (read_builtin ((WORD_LIST *)NULL) != EXECUTION_SUCCESS)
3051 {
3052 putchar ('\n');
3053 return ((char *)NULL);
3054 }
3055 repl_string = get_string_value ("REPLY");
3056 if (*repl_string == 0)
3057 {
3058 print_menu = 1;
3059 continue;
3060 }
3061 if (legal_number (repl_string, &reply) == 0)
3062 return "";
3063 if (reply < 1 || reply > list_len)
3064 return "";
3065
3066 for (l = list; l && --reply; l = l->next)
3067 ;
3068 return (l->word->word); /* XXX - can't be null? */
3069 }
3070 }
3071
3072 /* Execute a SELECT command. The syntax is:
3073 SELECT word IN list DO command_list DONE
3074 Only `break' or `return' in command_list will terminate
3075 the command. */
3076 static int
3077 execute_select_command (select_command)
3078 SELECT_COM *select_command;
3079 {
3080 WORD_LIST *releaser, *list;
3081 SHELL_VAR *v;
3082 char *identifier, *ps3_prompt, *selection;
3083 int retval, list_len, show_menu, save_line_number;
3084
3085 if (check_identifier (select_command->name, 1) == 0)
3086 return (EXECUTION_FAILURE);
3087
3088 save_line_number = line_number;
3089 line_number = select_command->line;
3090
3091 command_string_index = 0;
3092 print_select_command_head (select_command);
3093
3094 if (echo_command_at_execute)
3095 xtrace_print_select_command_head (select_command);
3096
3097 #if 0
3098 if (signal_in_progress (DEBUG_TRAP) == 0 && (this_command_name == 0 || (STREQ (this_command_name, "trap") == 0)))
3099 #else
3100 if (signal_in_progress (DEBUG_TRAP) == 0 && running_trap == 0)
3101 #endif
3102 {
3103 FREE (the_printed_command_except_trap);
3104 the_printed_command_except_trap = savestring (the_printed_command);
3105 }
3106
3107 retval = run_debug_trap ();
3108 #if defined (DEBUGGER)
3109 /* In debugging mode, if the DEBUG trap returns a non-zero status, we
3110 skip the command. */
3111 if (debugging_mode && retval != EXECUTION_SUCCESS)
3112 return (EXECUTION_SUCCESS);
3113 #endif
3114
3115 loop_level++;
3116 identifier = select_command->name->word;
3117
3118 /* command and arithmetic substitution, parameter and variable expansion,
3119 word splitting, pathname expansion, and quote removal. */
3120 list = releaser = expand_words_no_vars (select_command->map_list);
3121 list_len = list_length (list);
3122 if (list == 0 || list_len == 0)
3123 {
3124 if (list)
3125 dispose_words (list);
3126 line_number = save_line_number;
3127 return (EXECUTION_SUCCESS);
3128 }
3129
3130 begin_unwind_frame ("select");
3131 add_unwind_protect (dispose_words, releaser);
3132
3133 if (select_command->flags & CMD_IGNORE_RETURN)
3134 select_command->action->flags |= CMD_IGNORE_RETURN;
3135
3136 retval = EXECUTION_SUCCESS;
3137 show_menu = 1;
3138
3139 while (1)
3140 {
3141 line_number = select_command->line;
3142 ps3_prompt = get_string_value ("PS3");
3143 if (ps3_prompt == 0)
3144 ps3_prompt = "#? ";
3145
3146 QUIT;
3147 selection = select_query (list, list_len, ps3_prompt, show_menu);
3148 QUIT;
3149 if (selection == 0)
3150 {
3151 /* select_query returns EXECUTION_FAILURE if the read builtin
3152 fails, so we want to return failure in this case. */
3153 retval = EXECUTION_FAILURE;
3154 break;
3155 }
3156
3157 v = bind_variable (identifier, selection, 0);
3158 if (readonly_p (v) || noassign_p (v))
3159 {
3160 if (readonly_p (v) && interactive_shell == 0 && posixly_correct)
3161 {
3162 last_command_exit_value = EXECUTION_FAILURE;
3163 jump_to_top_level (FORCE_EOF);
3164 }
3165 else
3166 {
3167 dispose_words (releaser);
3168 discard_unwind_frame ("select");
3169 loop_level--;
3170 line_number = save_line_number;
3171 return (EXECUTION_FAILURE);
3172 }
3173 }
3174
3175 retval = execute_command (select_command->action);
3176
3177 REAP ();
3178 QUIT;
3179
3180 if (breaking)
3181 {
3182 breaking--;
3183 break;
3184 }
3185
3186 if (continuing)
3187 {
3188 continuing--;
3189 if (continuing)
3190 break;
3191 }
3192
3193 #if defined (KSH_COMPATIBLE_SELECT)
3194 show_menu = 0;
3195 selection = get_string_value ("REPLY");
3196 if (selection && *selection == '\0')
3197 show_menu = 1;
3198 #endif
3199 }
3200
3201 loop_level--;
3202 line_number = save_line_number;
3203
3204 dispose_words (releaser);
3205 discard_unwind_frame ("select");
3206 return (retval);
3207 }
3208 #endif /* SELECT_COMMAND */
3209
3210 /* Execute a CASE command. The syntax is: CASE word_desc IN pattern_list ESAC.
3211 The pattern_list is a linked list of pattern clauses; each clause contains
3212 some patterns to compare word_desc against, and an associated command to
3213 execute. */
3214 static int
3215 execute_case_command (case_command)
3216 CASE_COM *case_command;
3217 {
3218 register WORD_LIST *list;
3219 WORD_LIST *wlist, *es;
3220 PATTERN_LIST *clauses;
3221 char *word, *pattern;
3222 int retval, match, ignore_return, save_line_number;
3223
3224 save_line_number = line_number;
3225 line_number = case_command->line;
3226
3227 command_string_index = 0;
3228 print_case_command_head (case_command);
3229
3230 if (echo_command_at_execute)
3231 xtrace_print_case_command_head (case_command);
3232
3233 #if 0
3234 if (signal_in_progress (DEBUG_TRAP) == 0 && (this_command_name == 0 || (STREQ (this_command_name, "trap") == 0)))
3235 #else
3236 if (signal_in_progress (DEBUG_TRAP) == 0 && running_trap == 0)
3237 #endif
3238 {
3239 FREE (the_printed_command_except_trap);
3240 the_printed_command_except_trap = savestring (the_printed_command);
3241 }
3242
3243 retval = run_debug_trap();
3244 #if defined (DEBUGGER)
3245 /* In debugging mode, if the DEBUG trap returns a non-zero status, we
3246 skip the command. */
3247 if (debugging_mode && retval != EXECUTION_SUCCESS)
3248 {
3249 line_number = save_line_number;
3250 return (EXECUTION_SUCCESS);
3251 }
3252 #endif
3253
3254 wlist = expand_word_unsplit (case_command->word, 0);
3255 word = wlist ? string_list (wlist) : savestring ("");
3256 dispose_words (wlist);
3257
3258 retval = EXECUTION_SUCCESS;
3259 ignore_return = case_command->flags & CMD_IGNORE_RETURN;
3260
3261 begin_unwind_frame ("case");
3262 add_unwind_protect ((Function *)xfree, word);
3263
3264 #define EXIT_CASE() goto exit_case_command
3265
3266 for (clauses = case_command->clauses; clauses; clauses = clauses->next)
3267 {
3268 QUIT;
3269 for (list = clauses->patterns; list; list = list->next)
3270 {
3271 es = expand_word_leave_quoted (list->word, 0);
3272
3273 if (es && es->word && es->word->word && *(es->word->word))
3274 pattern = quote_string_for_globbing (es->word->word, QGLOB_CVTNULL);
3275 else
3276 {
3277 pattern = (char *)xmalloc (1);
3278 pattern[0] = '\0';
3279 }
3280
3281 /* Since the pattern does not undergo quote removal (as per
3282 Posix.2, section 3.9.4.3), the strmatch () call must be able
3283 to recognize backslashes as escape characters. */
3284 match = strmatch (pattern, word, FNMATCH_EXTFLAG|FNMATCH_IGNCASE) != FNM_NOMATCH;
3285 free (pattern);
3286
3287 dispose_words (es);
3288
3289 if (match)
3290 {
3291 do
3292 {
3293 if (clauses->action && ignore_return)
3294 clauses->action->flags |= CMD_IGNORE_RETURN;
3295 retval = execute_command (clauses->action);
3296 }
3297 while ((clauses->flags & CASEPAT_FALLTHROUGH) && (clauses = clauses->next));
3298 if (clauses == 0 || (clauses->flags & CASEPAT_TESTNEXT) == 0)
3299 EXIT_CASE ();
3300 else
3301 break;
3302 }
3303
3304 QUIT;
3305 }
3306 }
3307
3308 exit_case_command:
3309 free (word);
3310 discard_unwind_frame ("case");
3311 line_number = save_line_number;
3312 return (retval);
3313 }
3314
3315 #define CMD_WHILE 0
3316 #define CMD_UNTIL 1
3317
3318 /* The WHILE command. Syntax: WHILE test DO action; DONE.
3319 Repeatedly execute action while executing test produces
3320 EXECUTION_SUCCESS. */
3321 static int
3322 execute_while_command (while_command)
3323 WHILE_COM *while_command;
3324 {
3325 return (execute_while_or_until (while_command, CMD_WHILE));
3326 }
3327
3328 /* UNTIL is just like WHILE except that the test result is negated. */
3329 static int
3330 execute_until_command (while_command)
3331 WHILE_COM *while_command;
3332 {
3333 return (execute_while_or_until (while_command, CMD_UNTIL));
3334 }
3335
3336 /* The body for both while and until. The only difference between the
3337 two is that the test value is treated differently. TYPE is
3338 CMD_WHILE or CMD_UNTIL. The return value for both commands should
3339 be EXECUTION_SUCCESS if no commands in the body are executed, and
3340 the status of the last command executed in the body otherwise. */
3341 static int
3342 execute_while_or_until (while_command, type)
3343 WHILE_COM *while_command;
3344 int type;
3345 {
3346 int return_value, body_status;
3347
3348 body_status = EXECUTION_SUCCESS;
3349 loop_level++;
3350
3351 while_command->test->flags |= CMD_IGNORE_RETURN;
3352 if (while_command->flags & CMD_IGNORE_RETURN)
3353 while_command->action->flags |= CMD_IGNORE_RETURN;
3354
3355 while (1)
3356 {
3357 return_value = execute_command (while_command->test);
3358 REAP ();
3359
3360 /* Need to handle `break' in the test when we would break out of the
3361 loop. The job control code will set `breaking' to loop_level
3362 when a job in a loop is stopped with SIGTSTP. If the stopped job
3363 is in the loop test, `breaking' will not be reset unless we do
3364 this, and the shell will cease to execute commands. */
3365 if (type == CMD_WHILE && return_value != EXECUTION_SUCCESS)
3366 {
3367 if (breaking)
3368 breaking--;
3369 break;
3370 }
3371 if (type == CMD_UNTIL && return_value == EXECUTION_SUCCESS)
3372 {
3373 if (breaking)
3374 breaking--;
3375 break;
3376 }
3377
3378 QUIT;
3379 body_status = execute_command (while_command->action);
3380 QUIT;
3381
3382 if (breaking)
3383 {
3384 breaking--;
3385 break;
3386 }
3387
3388 if (continuing)
3389 {
3390 continuing--;
3391 if (continuing)
3392 break;
3393 }
3394 }
3395 loop_level--;
3396
3397 return (body_status);
3398 }
3399
3400 /* IF test THEN command [ELSE command].
3401 IF also allows ELIF in the place of ELSE IF, but
3402 the parser makes *that* stupidity transparent. */
3403 static int
3404 execute_if_command (if_command)
3405 IF_COM *if_command;
3406 {
3407 int return_value, save_line_number;
3408
3409 save_line_number = line_number;
3410 if_command->test->flags |= CMD_IGNORE_RETURN;
3411 return_value = execute_command (if_command->test);
3412 line_number = save_line_number;
3413
3414 if (return_value == EXECUTION_SUCCESS)
3415 {
3416 QUIT;
3417
3418 if (if_command->true_case && (if_command->flags & CMD_IGNORE_RETURN))
3419 if_command->true_case->flags |= CMD_IGNORE_RETURN;
3420
3421 return (execute_command (if_command->true_case));
3422 }
3423 else
3424 {
3425 QUIT;
3426
3427 if (if_command->false_case && (if_command->flags & CMD_IGNORE_RETURN))
3428 if_command->false_case->flags |= CMD_IGNORE_RETURN;
3429
3430 return (execute_command (if_command->false_case));
3431 }
3432 }
3433
3434 #if defined (DPAREN_ARITHMETIC)
3435 static int
3436 execute_arith_command (arith_command)
3437 ARITH_COM *arith_command;
3438 {
3439 int expok, save_line_number, retval;
3440 intmax_t expresult;
3441 WORD_LIST *new;
3442 char *exp;
3443
3444 expresult = 0;
3445
3446 save_line_number = line_number;
3447 this_command_name = "(("; /* )) */
3448 line_number = arith_command->line;
3449 /* If we're in a function, update the line number information. */
3450 if (variable_context && interactive_shell)
3451 line_number -= function_line_number;
3452
3453 command_string_index = 0;
3454 print_arith_command (arith_command->exp);
3455
3456 if (signal_in_progress (DEBUG_TRAP) == 0)
3457 {
3458 FREE (the_printed_command_except_trap);
3459 the_printed_command_except_trap = savestring (the_printed_command);
3460 }
3461
3462 /* Run the debug trap before each arithmetic command, but do it after we
3463 update the line number information and before we expand the various
3464 words in the expression. */
3465 retval = run_debug_trap ();
3466 #if defined (DEBUGGER)
3467 /* In debugging mode, if the DEBUG trap returns a non-zero status, we
3468 skip the command. */
3469 if (debugging_mode && retval != EXECUTION_SUCCESS)
3470 {
3471 line_number = save_line_number;
3472 return (EXECUTION_SUCCESS);
3473 }
3474 #endif
3475
3476 new = expand_words_no_vars (arith_command->exp);
3477
3478 /* If we're tracing, make a new word list with `((' at the front and `))'
3479 at the back and print it. */
3480 if (echo_command_at_execute)
3481 xtrace_print_arith_cmd (new);
3482
3483 if (new)
3484 {
3485 exp = new->next ? string_list (new) : new->word->word;
3486 expresult = evalexp (exp, &expok);
3487 line_number = save_line_number;
3488 if (exp != new->word->word)
3489 free (exp);
3490 dispose_words (new);
3491 }
3492 else
3493 {
3494 expresult = 0;
3495 expok = 1;
3496 }
3497
3498 if (expok == 0)
3499 return (EXECUTION_FAILURE);
3500
3501 return (expresult == 0 ? EXECUTION_FAILURE : EXECUTION_SUCCESS);
3502 }
3503 #endif /* DPAREN_ARITHMETIC */
3504
3505 #if defined (COND_COMMAND)
3506
3507 static char * const nullstr = "";
3508
3509 /* XXX - can COND ever be NULL when this is called? */
3510 static int
3511 execute_cond_node (cond)
3512 COND_COM *cond;
3513 {
3514 int result, invert, patmatch, rmatch, mflags, ignore;
3515 char *arg1, *arg2;
3516 #if 0
3517 char *t1, *t2;
3518 #endif
3519
3520 invert = (cond->flags & CMD_INVERT_RETURN);
3521 ignore = (cond->flags & CMD_IGNORE_RETURN);
3522 if (ignore)
3523 {
3524 if (cond->left)
3525 cond->left->flags |= CMD_IGNORE_RETURN;
3526 if (cond->right)
3527 cond->right->flags |= CMD_IGNORE_RETURN;
3528 }
3529
3530 if (cond->type == COND_EXPR)
3531 result = execute_cond_node (cond->left);
3532 else if (cond->type == COND_OR)
3533 {
3534 result = execute_cond_node (cond->left);
3535 if (result != EXECUTION_SUCCESS)
3536 result = execute_cond_node (cond->right);
3537 }
3538 else if (cond->type == COND_AND)
3539 {
3540 result = execute_cond_node (cond->left);
3541 if (result == EXECUTION_SUCCESS)
3542 result = execute_cond_node (cond->right);
3543 }
3544 else if (cond->type == COND_UNARY)
3545 {
3546 if (ignore)
3547 comsub_ignore_return++;
3548 arg1 = cond_expand_word (cond->left->op, 0);
3549 if (ignore)
3550 comsub_ignore_return--;
3551 if (arg1 == 0)
3552 arg1 = nullstr;
3553 if (echo_command_at_execute)
3554 xtrace_print_cond_term (cond->type, invert, cond->op, arg1, (char *)NULL);
3555 result = unary_test (cond->op->word, arg1) ? EXECUTION_SUCCESS : EXECUTION_FAILURE;
3556 if (arg1 != nullstr)
3557 free (arg1);
3558 }
3559 else if (cond->type == COND_BINARY)
3560 {
3561 rmatch = 0;
3562 patmatch = (((cond->op->word[1] == '=') && (cond->op->word[2] == '\0') &&
3563 (cond->op->word[0] == '!' || cond->op->word[0] == '=')) ||
3564 (cond->op->word[0] == '=' && cond->op->word[1] == '\0'));
3565 #if defined (COND_REGEXP)
3566 rmatch = (cond->op->word[0] == '=' && cond->op->word[1] == '~' &&
3567 cond->op->word[2] == '\0');
3568 #endif
3569
3570 if (ignore)
3571 comsub_ignore_return++;
3572 arg1 = cond_expand_word (cond->left->op, 0);
3573 if (ignore)
3574 comsub_ignore_return--;
3575 if (arg1 == 0)
3576 arg1 = nullstr;
3577 if (ignore)
3578 comsub_ignore_return++;
3579 arg2 = cond_expand_word (cond->right->op,
3580 (rmatch && shell_compatibility_level > 31) ? 2 : (patmatch ? 1 : 0));
3581 if (ignore)
3582 comsub_ignore_return--;
3583 if (arg2 == 0)
3584 arg2 = nullstr;
3585
3586 if (echo_command_at_execute)
3587 xtrace_print_cond_term (cond->type, invert, cond->op, arg1, arg2);
3588
3589 #if defined (COND_REGEXP)
3590 if (rmatch)
3591 {
3592 mflags = SHMAT_PWARN;
3593 #if defined (ARRAY_VARS)
3594 mflags |= SHMAT_SUBEXP;
3595 #endif
3596
3597 #if 0
3598 t1 = strescape(arg1);
3599 t2 = strescape(arg2);
3600 itrace("execute_cond_node: sh_regmatch on `%s' and `%s'", t1, t2);
3601 free(t1);
3602 free(t2);
3603 #endif
3604
3605 result = sh_regmatch (arg1, arg2, mflags);
3606 }
3607 else
3608 #endif /* COND_REGEXP */
3609 {
3610 int oe;
3611 oe = extended_glob;
3612 extended_glob = 1;
3613 result = binary_test (cond->op->word, arg1, arg2, TEST_PATMATCH|TEST_ARITHEXP|TEST_LOCALE)
3614 ? EXECUTION_SUCCESS
3615 : EXECUTION_FAILURE;
3616 extended_glob = oe;
3617 }
3618 if (arg1 != nullstr)
3619 free (arg1);
3620 if (arg2 != nullstr)
3621 free (arg2);
3622 }
3623 else
3624 {
3625 command_error ("execute_cond_node", CMDERR_BADTYPE, cond->type, 0);
3626 jump_to_top_level (DISCARD);
3627 result = EXECUTION_FAILURE;
3628 }
3629
3630 if (invert)
3631 result = (result == EXECUTION_SUCCESS) ? EXECUTION_FAILURE : EXECUTION_SUCCESS;
3632
3633 return result;
3634 }
3635
3636 static int
3637 execute_cond_command (cond_command)
3638 COND_COM *cond_command;
3639 {
3640 int retval, save_line_number;
3641
3642 retval = EXECUTION_SUCCESS;
3643 save_line_number = line_number;
3644
3645 this_command_name = "[[";
3646 line_number = cond_command->line;
3647 /* If we're in a function, update the line number information. */
3648 if (variable_context && interactive_shell)
3649 line_number -= function_line_number;
3650 command_string_index = 0;
3651 print_cond_command (cond_command);
3652
3653 if (signal_in_progress (DEBUG_TRAP) == 0)
3654 {
3655 FREE (the_printed_command_except_trap);
3656 the_printed_command_except_trap = savestring (the_printed_command);
3657 }
3658
3659 /* Run the debug trap before each conditional command, but do it after we
3660 update the line number information. */
3661 retval = run_debug_trap ();
3662 #if defined (DEBUGGER)
3663 /* In debugging mode, if the DEBUG trap returns a non-zero status, we
3664 skip the command. */
3665 if (debugging_mode && retval != EXECUTION_SUCCESS)
3666 {
3667 line_number = save_line_number;
3668 return (EXECUTION_SUCCESS);
3669 }
3670 #endif
3671
3672 #if 0
3673 debug_print_cond_command (cond_command);
3674 #endif
3675
3676 last_command_exit_value = retval = execute_cond_node (cond_command);
3677 line_number = save_line_number;
3678 return (retval);
3679 }
3680 #endif /* COND_COMMAND */
3681
3682 static void
3683 bind_lastarg (arg)
3684 char *arg;
3685 {
3686 SHELL_VAR *var;
3687
3688 if (arg == 0)
3689 arg = "";
3690 var = bind_variable ("_", arg, 0);
3691 VUNSETATTR (var, att_exported);
3692 }
3693
3694 /* Execute a null command. Fork a subshell if the command uses pipes or is
3695 to be run asynchronously. This handles all the side effects that are
3696 supposed to take place. */
3697 static int
3698 execute_null_command (redirects, pipe_in, pipe_out, async)
3699 REDIRECT *redirects;
3700 int pipe_in, pipe_out, async;
3701 {
3702 int r;
3703 int forcefork;
3704 REDIRECT *rd;
3705
3706 for (forcefork = 0, rd = redirects; rd; rd = rd->next)
3707 forcefork += rd->rflags & REDIR_VARASSIGN;
3708
3709 if (forcefork || pipe_in != NO_PIPE || pipe_out != NO_PIPE || async)
3710 {
3711 /* We have a null command, but we really want a subshell to take
3712 care of it. Just fork, do piping and redirections, and exit. */
3713 if (make_child ((char *)NULL, async) == 0)
3714 {
3715 /* Cancel traps, in trap.c. */
3716 restore_original_signals (); /* XXX */
3717
3718 do_piping (pipe_in, pipe_out);
3719
3720 #if defined (COPROCESS_SUPPORT)
3721 coproc_closeall ();
3722 #endif
3723
3724 subshell_environment = 0;
3725 if (async)
3726 subshell_environment |= SUBSHELL_ASYNC;
3727 if (pipe_in != NO_PIPE || pipe_out != NO_PIPE)
3728 subshell_environment |= SUBSHELL_PIPE;
3729
3730 if (do_redirections (redirects, RX_ACTIVE) == 0)
3731 exit (EXECUTION_SUCCESS);
3732 else
3733 exit (EXECUTION_FAILURE);
3734 }
3735 else
3736 {
3737 close_pipes (pipe_in, pipe_out);
3738 #if defined (PROCESS_SUBSTITUTION) && defined (HAVE_DEV_FD)
3739 if (pipe_out == NO_PIPE)
3740 unlink_fifo_list ();
3741 #endif
3742 return (EXECUTION_SUCCESS);
3743 }
3744 }
3745 else
3746 {
3747 /* Even if there aren't any command names, pretend to do the
3748 redirections that are specified. The user expects the side
3749 effects to take place. If the redirections fail, then return
3750 failure. Otherwise, if a command substitution took place while
3751 expanding the command or a redirection, return the value of that
3752 substitution. Otherwise, return EXECUTION_SUCCESS. */
3753
3754 r = do_redirections (redirects, RX_ACTIVE|RX_UNDOABLE);
3755 cleanup_redirects (redirection_undo_list);
3756 redirection_undo_list = (REDIRECT *)NULL;
3757
3758 if (r != 0)
3759 return (EXECUTION_FAILURE);
3760 else if (last_command_subst_pid != NO_PID)
3761 return (last_command_exit_value);
3762 else
3763 return (EXECUTION_SUCCESS);
3764 }
3765 }
3766
3767 /* This is a hack to suppress word splitting for assignment statements
3768 given as arguments to builtins with the ASSIGNMENT_BUILTIN flag set. */
3769 static void
3770 fix_assignment_words (words)
3771 WORD_LIST *words;
3772 {
3773 WORD_LIST *w, *wcmd;
3774 struct builtin *b;
3775 int assoc, global, array, integer;
3776
3777 if (words == 0)
3778 return;
3779
3780 b = 0;
3781 assoc = global = array = integer = 0;
3782
3783 /* Skip over assignment statements preceding a command name */
3784 wcmd = words;
3785 for (wcmd = words; wcmd; wcmd = wcmd->next)
3786 if ((wcmd->word->flags & W_ASSIGNMENT) == 0)
3787 break;
3788
3789 for (w = wcmd; w; w = w->next)
3790 if (w->word->flags & W_ASSIGNMENT)
3791 {
3792 if (b == 0)
3793 {
3794 /* Posix (post-2008) says that `command' doesn't change whether
3795 or not the builtin it shadows is a `declaration command', even
3796 though it removes other special builtin properties. In Posix
3797 mode, we skip over one or more instances of `command' and
3798 deal with the next word as the assignment builtin. */
3799 while (posixly_correct && wcmd && wcmd->word && wcmd->word->word && STREQ (wcmd->word->word, "command"))
3800 wcmd = wcmd->next;
3801 b = builtin_address_internal (wcmd->word->word, 0);
3802 if (b == 0 || (b->flags & ASSIGNMENT_BUILTIN) == 0)
3803 return;
3804 else if (b && (b->flags & ASSIGNMENT_BUILTIN))
3805 wcmd->word->flags |= W_ASSNBLTIN;
3806 }
3807 w->word->flags |= (W_NOSPLIT|W_NOGLOB|W_TILDEEXP|W_ASSIGNARG);
3808 #if defined (ARRAY_VARS)
3809 if (assoc)
3810 w->word->flags |= W_ASSIGNASSOC;
3811 if (array)
3812 w->word->flags |= W_ASSIGNARRAY;
3813 #endif
3814 if (global)
3815 w->word->flags |= W_ASSNGLOBAL;
3816 if (integer)
3817 w->word->flags |= W_ASSIGNINT;
3818 }
3819 #if defined (ARRAY_VARS)
3820 /* Note that we saw an associative array option to a builtin that takes
3821 assignment statements. This is a bit of a kludge. */
3822 else if (w->word->word[0] == '-' && (strchr (w->word->word+1, 'A') || strchr (w->word->word+1, 'a') || strchr (w->word->word+1, 'g')))
3823 #else
3824 else if (w->word->word[0] == '-' && strchr (w->word->word+1, 'g'))
3825 #endif
3826 {
3827 if (b == 0)
3828 {
3829 while (posixly_correct && wcmd && wcmd->word && wcmd->word->word && STREQ (wcmd->word->word, "command"))
3830 wcmd = wcmd->next;
3831 b = builtin_address_internal (wcmd->word->word, 0);
3832 if (b == 0 || (b->flags & ASSIGNMENT_BUILTIN) == 0)
3833 return;
3834 else if (b && (b->flags & ASSIGNMENT_BUILTIN))
3835 wcmd->word->flags |= W_ASSNBLTIN;
3836 }
3837 if ((wcmd->word->flags & W_ASSNBLTIN) && strchr (w->word->word+1, 'A'))
3838 assoc = 1;
3839 else if ((wcmd->word->flags & W_ASSNBLTIN) && strchr (w->word->word+1, 'a'))
3840 array = 1;
3841 if ((wcmd->word->flags & W_ASSNBLTIN) && strchr (w->word->word+1, 'g'))
3842 global = 1;
3843 if ((wcmd->word->flags & W_ASSNBLTIN) && strchr (w->word->word+1, 'i'))
3844 integer = 1;
3845 }
3846 }
3847
3848 /* Return 1 if the file found by searching $PATH for PATHNAME, defaulting
3849 to PATHNAME, is a directory. Used by the autocd code below. */
3850 static int
3851 is_dirname (pathname)
3852 char *pathname;
3853 {
3854 char *temp;
3855 int ret;
3856
3857 temp = search_for_command (pathname, 0);
3858 ret = (temp ? file_isdir (temp) : file_isdir (pathname));
3859 free (temp);
3860 return ret;
3861 }
3862
3863 /* The meaty part of all the executions. We have to start hacking the
3864 real execution of commands here. Fork a process, set things up,
3865 execute the command. */
3866 static int
3867 execute_simple_command (simple_command, pipe_in, pipe_out, async, fds_to_close)
3868 SIMPLE_COM *simple_command;
3869 int pipe_in, pipe_out, async;
3870 struct fd_bitmap *fds_to_close;
3871 {
3872 WORD_LIST *words, *lastword;
3873 char *command_line, *lastarg, *temp;
3874 int first_word_quoted, result, builtin_is_special, already_forked, dofork;
3875 pid_t old_last_async_pid;
3876 sh_builtin_func_t *builtin;
3877 SHELL_VAR *func;
3878 volatile int old_builtin, old_command_builtin;
3879
3880 result = EXECUTION_SUCCESS;
3881 special_builtin_failed = builtin_is_special = 0;
3882 command_line = (char *)0;
3883
3884 QUIT;
3885
3886 /* If we're in a function, update the line number information. */
3887 if (variable_context && interactive_shell && sourcelevel == 0)
3888 line_number -= function_line_number;
3889
3890 /* Remember what this command line looks like at invocation. */
3891 command_string_index = 0;
3892 print_simple_command (simple_command);
3893
3894 #if 0
3895 if (signal_in_progress (DEBUG_TRAP) == 0 && (this_command_name == 0 || (STREQ (this_command_name, "trap") == 0)))
3896 #else
3897 if (signal_in_progress (DEBUG_TRAP) == 0 && running_trap == 0)
3898 #endif
3899 {
3900 FREE (the_printed_command_except_trap);
3901 the_printed_command_except_trap = the_printed_command ? savestring (the_printed_command) : (char *)0;
3902 }
3903
3904 /* Run the debug trap before each simple command, but do it after we
3905 update the line number information. */
3906 result = run_debug_trap ();
3907 #if defined (DEBUGGER)
3908 /* In debugging mode, if the DEBUG trap returns a non-zero status, we
3909 skip the command. */
3910 if (debugging_mode && result != EXECUTION_SUCCESS)
3911 return (EXECUTION_SUCCESS);
3912 #endif
3913
3914 first_word_quoted =
3915 simple_command->words ? (simple_command->words->word->flags & W_QUOTED) : 0;
3916
3917 last_command_subst_pid = NO_PID;
3918 old_last_async_pid = last_asynchronous_pid;
3919
3920 already_forked = dofork = 0;
3921
3922 /* If we're in a pipeline or run in the background, set DOFORK so we
3923 make the child early, before word expansion. This keeps assignment
3924 statements from affecting the parent shell's environment when they
3925 should not. */
3926 dofork = pipe_in != NO_PIPE || pipe_out != NO_PIPE || async;
3927
3928 /* Something like `%2 &' should restart job 2 in the background, not cause
3929 the shell to fork here. */
3930 if (dofork && pipe_in == NO_PIPE && pipe_out == NO_PIPE &&
3931 simple_command->words && simple_command->words->word &&
3932 simple_command->words->word->word &&
3933 (simple_command->words->word->word[0] == '%'))
3934 dofork = 0;
3935
3936 if (dofork)
3937 {
3938 /* Do this now, because execute_disk_command will do it anyway in the
3939 vast majority of cases. */
3940 maybe_make_export_env ();
3941
3942 /* Don't let a DEBUG trap overwrite the command string to be saved with
3943 the process/job associated with this child. */
3944 if (make_child (savestring (the_printed_command_except_trap), async) == 0)
3945 {
3946 already_forked = 1;
3947 simple_command->flags |= CMD_NO_FORK;
3948
3949 subshell_environment = SUBSHELL_FORK;
3950 if (pipe_in != NO_PIPE || pipe_out != NO_PIPE)
3951 subshell_environment |= SUBSHELL_PIPE;
3952 if (async)
3953 subshell_environment |= SUBSHELL_ASYNC;
3954
3955 /* We need to do this before piping to handle some really
3956 pathological cases where one of the pipe file descriptors
3957 is < 2. */
3958 if (fds_to_close)
3959 close_fd_bitmap (fds_to_close);
3960
3961 do_piping (pipe_in, pipe_out);
3962 pipe_in = pipe_out = NO_PIPE;
3963 #if defined (COPROCESS_SUPPORT)
3964 coproc_closeall ();
3965 #endif
3966
3967 last_asynchronous_pid = old_last_async_pid;
3968
3969 CHECK_SIGTERM;
3970 }
3971 else
3972 {
3973 /* Don't let simple commands that aren't the last command in a
3974 pipeline change $? for the rest of the pipeline (or at all). */
3975 if (pipe_out != NO_PIPE)
3976 result = last_command_exit_value;
3977 close_pipes (pipe_in, pipe_out);
3978 #if defined (PROCESS_SUBSTITUTION) && defined (HAVE_DEV_FD)
3979 /* Close /dev/fd file descriptors in the parent after forking the
3980 last child in a (possibly one-element) pipeline. Defer this
3981 until any running shell function completes. */
3982 if (pipe_out == NO_PIPE && variable_context == 0) /* XXX */
3983 unlink_fifo_list (); /* XXX */
3984 #endif
3985 command_line = (char *)NULL; /* don't free this. */
3986 bind_lastarg ((char *)NULL);
3987 return (result);
3988 }
3989 }
3990
3991 /* If we are re-running this as the result of executing the `command'
3992 builtin, do not expand the command words a second time. */
3993 if ((simple_command->flags & CMD_INHIBIT_EXPANSION) == 0)
3994 {
3995 current_fds_to_close = fds_to_close;
3996 fix_assignment_words (simple_command->words);
3997 /* Pass the ignore return flag down to command substitutions */
3998 if (simple_command->flags & CMD_IGNORE_RETURN) /* XXX */
3999 comsub_ignore_return++;
4000 words = expand_words (simple_command->words);
4001 if (simple_command->flags & CMD_IGNORE_RETURN)
4002 comsub_ignore_return--;
4003 current_fds_to_close = (struct fd_bitmap *)NULL;
4004 }
4005 else
4006 words = copy_word_list (simple_command->words);
4007
4008 /* It is possible for WORDS not to have anything left in it.
4009 Perhaps all the words consisted of `$foo', and there was
4010 no variable `$foo'. */
4011 if (words == 0)
4012 {
4013 this_command_name = 0;
4014 result = execute_null_command (simple_command->redirects,
4015 pipe_in, pipe_out,
4016 already_forked ? 0 : async);
4017 if (already_forked)
4018 exit (result);
4019 else
4020 {
4021 bind_lastarg ((char *)NULL);
4022 set_pipestatus_from_exit (result);
4023 return (result);
4024 }
4025 }
4026
4027 lastarg = (char *)NULL;
4028
4029 begin_unwind_frame ("simple-command");
4030
4031 if (echo_command_at_execute)
4032 xtrace_print_word_list (words, 1);
4033
4034 builtin = (sh_builtin_func_t *)NULL;
4035 func = (SHELL_VAR *)NULL;
4036 if ((simple_command->flags & CMD_NO_FUNCTIONS) == 0)
4037 {
4038 /* Posix.2 says special builtins are found before functions. We
4039 don't set builtin_is_special anywhere other than here, because
4040 this path is followed only when the `command' builtin is *not*
4041 being used, and we don't want to exit the shell if a special
4042 builtin executed with `command builtin' fails. `command' is not
4043 a special builtin. */
4044 if (posixly_correct)
4045 {
4046 builtin = find_special_builtin (words->word->word);
4047 if (builtin)
4048 builtin_is_special = 1;
4049 }
4050 if (builtin == 0)
4051 func = find_function (words->word->word);
4052 }
4053
4054 /* In POSIX mode, assignment errors in the temporary environment cause a
4055 non-interactive shell to exit. */
4056 if (posixly_correct && builtin_is_special && interactive_shell == 0 && tempenv_assign_error)
4057 {
4058 last_command_exit_value = EXECUTION_FAILURE;
4059 jump_to_top_level (ERREXIT);
4060 }
4061 tempenv_assign_error = 0; /* don't care about this any more */
4062
4063 add_unwind_protect (dispose_words, words);
4064 QUIT;
4065
4066 /* Bind the last word in this command to "$_" after execution. */
4067 for (lastword = words; lastword->next; lastword = lastword->next)
4068 ;
4069 lastarg = lastword->word->word;
4070
4071 #if defined (JOB_CONTROL)
4072 /* Is this command a job control related thing? */
4073 if (words->word->word[0] == '%' && already_forked == 0)
4074 {
4075 this_command_name = async ? "bg" : "fg";
4076 last_shell_builtin = this_shell_builtin;
4077 this_shell_builtin = builtin_address (this_command_name);
4078 result = (*this_shell_builtin) (words);
4079 goto return_result;
4080 }
4081
4082 /* One other possibililty. The user may want to resume an existing job.
4083 If they do, find out whether this word is a candidate for a running
4084 job. */
4085 if (job_control && already_forked == 0 && async == 0 &&
4086 !first_word_quoted &&
4087 !words->next &&
4088 words->word->word[0] &&
4089 !simple_command->redirects &&
4090 pipe_in == NO_PIPE &&
4091 pipe_out == NO_PIPE &&
4092 (temp = get_string_value ("auto_resume")))
4093 {
4094 int job, jflags, started_status;
4095
4096 jflags = JM_STOPPED|JM_FIRSTMATCH;
4097 if (STREQ (temp, "exact"))
4098 jflags |= JM_EXACT;
4099 else if (STREQ (temp, "substring"))
4100 jflags |= JM_SUBSTRING;
4101 else
4102 jflags |= JM_PREFIX;
4103 job = get_job_by_name (words->word->word, jflags);
4104 if (job != NO_JOB)
4105 {
4106 run_unwind_frame ("simple-command");
4107 this_command_name = "fg";
4108 last_shell_builtin = this_shell_builtin;
4109 this_shell_builtin = builtin_address ("fg");
4110
4111 started_status = start_job (job, 1);
4112 return ((started_status < 0) ? EXECUTION_FAILURE : started_status);
4113 }
4114 }
4115 #endif /* JOB_CONTROL */
4116
4117 run_builtin:
4118 /* Remember the name of this command globally. */
4119 this_command_name = words->word->word;
4120
4121 QUIT;
4122
4123 /* This command could be a shell builtin or a user-defined function.
4124 We have already found special builtins by this time, so we do not
4125 set builtin_is_special. If this is a function or builtin, and we
4126 have pipes, then fork a subshell in here. Otherwise, just execute
4127 the command directly. */
4128 if (func == 0 && builtin == 0)
4129 builtin = find_shell_builtin (this_command_name);
4130
4131 last_shell_builtin = this_shell_builtin;
4132 this_shell_builtin = builtin;
4133
4134 if (builtin || func)
4135 {
4136 if (builtin)
4137 {
4138 old_builtin = executing_builtin;
4139 old_command_builtin = executing_command_builtin;
4140 unwind_protect_int (executing_builtin); /* modified in execute_builtin */
4141 unwind_protect_int (executing_command_builtin); /* ditto */
4142 }
4143 if (already_forked)
4144 {
4145 /* reset_terminating_signals (); */ /* XXX */
4146 /* Reset the signal handlers in the child, but don't free the
4147 trap strings. Set a flag noting that we have to free the
4148 trap strings if we run trap to change a signal disposition. */
4149 reset_signal_handlers ();
4150 subshell_environment |= SUBSHELL_RESETTRAP;
4151
4152 if (async)
4153 {
4154 if ((simple_command->flags & CMD_STDIN_REDIR) &&
4155 pipe_in == NO_PIPE &&
4156 (stdin_redirects (simple_command->redirects) == 0))
4157 async_redirect_stdin ();
4158 setup_async_signals ();
4159 }
4160
4161 subshell_level++;
4162 execute_subshell_builtin_or_function
4163 (words, simple_command->redirects, builtin, func,
4164 pipe_in, pipe_out, async, fds_to_close,
4165 simple_command->flags);
4166 subshell_level--;
4167 }
4168 else
4169 {
4170 result = execute_builtin_or_function
4171 (words, builtin, func, simple_command->redirects, fds_to_close,
4172 simple_command->flags);
4173 if (builtin)
4174 {
4175 if (result > EX_SHERRBASE)
4176 {
4177 switch (result)
4178 {
4179 case EX_REDIRFAIL:
4180 case EX_BADASSIGN:
4181 case EX_EXPFAIL:
4182 /* These errors cause non-interactive posix mode shells to exit */
4183 if (posixly_correct && builtin_is_special && interactive_shell == 0)
4184 {
4185 last_command_exit_value = EXECUTION_FAILURE;
4186 jump_to_top_level (ERREXIT);
4187 }
4188 }
4189 result = builtin_status (result);
4190 if (builtin_is_special)
4191 special_builtin_failed = 1;
4192 }
4193 /* In POSIX mode, if there are assignment statements preceding
4194 a special builtin, they persist after the builtin
4195 completes. */
4196 if (posixly_correct && builtin_is_special && temporary_env)
4197 merge_temporary_env ();
4198 }
4199 else /* function */
4200 {
4201 if (result == EX_USAGE)
4202 result = EX_BADUSAGE;
4203 else if (result > EX_SHERRBASE)
4204 result = EXECUTION_FAILURE;
4205 }
4206
4207 set_pipestatus_from_exit (result);
4208
4209 goto return_result;
4210 }
4211 }
4212
4213 if (autocd && interactive && words->word && is_dirname (words->word->word))
4214 {
4215 words = make_word_list (make_word ("cd"), words);
4216 xtrace_print_word_list (words, 0);
4217 goto run_builtin;
4218 }
4219
4220 if (command_line == 0)
4221 command_line = savestring (the_printed_command_except_trap ? the_printed_command_except_trap : "");
4222
4223 #if defined (PROCESS_SUBSTITUTION)
4224 if ((subshell_environment & SUBSHELL_COMSUB) && (simple_command->flags & CMD_NO_FORK) && fifos_pending() > 0)
4225 simple_command->flags &= ~CMD_NO_FORK;
4226 #endif
4227
4228 result = execute_disk_command (words, simple_command->redirects, command_line,
4229 pipe_in, pipe_out, async, fds_to_close,
4230 simple_command->flags);
4231
4232 return_result:
4233 bind_lastarg (lastarg);
4234 FREE (command_line);
4235 dispose_words (words);
4236 if (builtin)
4237 {
4238 executing_builtin = old_builtin;
4239 executing_command_builtin = old_command_builtin;
4240 }
4241 discard_unwind_frame ("simple-command");
4242 this_command_name = (char *)NULL; /* points to freed memory now */
4243 return (result);
4244 }
4245
4246 /* Translate the special builtin exit statuses. We don't really need a
4247 function for this; it's a placeholder for future work. */
4248 static int
4249 builtin_status (result)
4250 int result;
4251 {
4252 int r;
4253
4254 switch (result)
4255 {
4256 case EX_USAGE:
4257 r = EX_BADUSAGE;
4258 break;
4259 case EX_REDIRFAIL:
4260 case EX_BADSYNTAX:
4261 case EX_BADASSIGN:
4262 case EX_EXPFAIL:
4263 r = EXECUTION_FAILURE;
4264 break;
4265 default:
4266 r = EXECUTION_SUCCESS;
4267 break;
4268 }
4269 return (r);
4270 }
4271
4272 static int
4273 execute_builtin (builtin, words, flags, subshell)
4274 sh_builtin_func_t *builtin;
4275 WORD_LIST *words;
4276 int flags, subshell;
4277 {
4278 int old_e_flag, result, eval_unwind;
4279 int isbltinenv;
4280 char *error_trap;
4281
4282 error_trap = 0;
4283 old_e_flag = exit_immediately_on_error;
4284
4285 /* The eval builtin calls parse_and_execute, which does not know about
4286 the setting of flags, and always calls the execution functions with
4287 flags that will exit the shell on an error if -e is set. If the
4288 eval builtin is being called, and we're supposed to ignore the exit
4289 value of the command, we turn the -e flag off ourselves and disable
4290 the ERR trap, then restore them when the command completes. This is
4291 also a problem (as below) for the command and source/. builtins. */
4292 if (subshell == 0 && (flags & CMD_IGNORE_RETURN) &&
4293 (builtin == eval_builtin || builtin == command_builtin || builtin == source_builtin))
4294 {
4295 begin_unwind_frame ("eval_builtin");
4296 unwind_protect_int (exit_immediately_on_error);
4297 unwind_protect_int (builtin_ignoring_errexit);
4298 error_trap = TRAP_STRING (ERROR_TRAP);
4299 if (error_trap)
4300 {
4301 error_trap = savestring (error_trap);
4302 add_unwind_protect (xfree, error_trap);
4303 add_unwind_protect (set_error_trap, error_trap);
4304 restore_default_signal (ERROR_TRAP);
4305 }
4306 exit_immediately_on_error = 0;
4307 builtin_ignoring_errexit = 1;
4308 eval_unwind = 1;
4309 }
4310 else
4311 eval_unwind = 0;
4312
4313 /* The temporary environment for a builtin is supposed to apply to
4314 all commands executed by that builtin. Currently, this is a
4315 problem only with the `unset', `source' and `eval' builtins.
4316 `mapfile' is a special case because it uses evalstring (same as
4317 eval or source) to run its callbacks. */
4318 isbltinenv = (builtin == source_builtin || builtin == eval_builtin || builtin == unset_builtin || builtin == mapfile_builtin);
4319
4320 if (isbltinenv)
4321 {
4322 if (subshell == 0)
4323 begin_unwind_frame ("builtin_env");
4324
4325 if (temporary_env)
4326 {
4327 push_scope (VC_BLTNENV, temporary_env);
4328 if (subshell == 0)
4329 add_unwind_protect (pop_scope, (flags & CMD_COMMAND_BUILTIN) ? 0 : "1");
4330 temporary_env = (HASH_TABLE *)NULL;
4331 }
4332 }
4333
4334 /* `return' does a longjmp() back to a saved environment in execute_function.
4335 If a variable assignment list preceded the command, and the shell is
4336 running in POSIX mode, we need to merge that into the shell_variables
4337 table, since `return' is a POSIX special builtin. */
4338 if (posixly_correct && subshell == 0 && builtin == return_builtin && temporary_env)
4339 {
4340 begin_unwind_frame ("return_temp_env");
4341 add_unwind_protect (merge_temporary_env, (char *)NULL);
4342 }
4343
4344 executing_builtin++;
4345 executing_command_builtin |= builtin == command_builtin;
4346 result = ((*builtin) (words->next));
4347
4348 /* This shouldn't happen, but in case `return' comes back instead of
4349 longjmp'ing, we need to unwind. */
4350 if (posixly_correct && subshell == 0 && builtin == return_builtin && temporary_env)
4351 discard_unwind_frame ("return_temp_env");
4352
4353 if (subshell == 0 && isbltinenv)
4354 run_unwind_frame ("builtin_env");
4355
4356 if (eval_unwind)
4357 {
4358 exit_immediately_on_error = errexit_flag;
4359 builtin_ignoring_errexit = 0;
4360 if (error_trap)
4361 {
4362 set_error_trap (error_trap);
4363 xfree (error_trap);
4364 }
4365 discard_unwind_frame ("eval_builtin");
4366 }
4367
4368 return (result);
4369 }
4370
4371 static int
4372 execute_function (var, words, flags, fds_to_close, async, subshell)
4373 SHELL_VAR *var;
4374 WORD_LIST *words;
4375 int flags;
4376 struct fd_bitmap *fds_to_close;
4377 int async, subshell;
4378 {
4379 int return_val, result;
4380 COMMAND *tc, *fc, *save_current;
4381 char *debug_trap, *error_trap, *return_trap;
4382 #if defined (ARRAY_VARS)
4383 SHELL_VAR *funcname_v, *nfv, *bash_source_v, *bash_lineno_v;
4384 ARRAY *funcname_a;
4385 volatile ARRAY *bash_source_a;
4386 volatile ARRAY *bash_lineno_a;
4387 #endif
4388 FUNCTION_DEF *shell_fn;
4389 char *sfile, *t;
4390
4391 USE_VAR(fc);
4392
4393 if (funcnest_max > 0 && funcnest >= funcnest_max)
4394 {
4395 internal_error (_("%s: maximum function nesting level exceeded (%d)"), var->name, funcnest);
4396 funcnest = 0; /* XXX - should we reset it somewhere else? */
4397 jump_to_top_level (DISCARD);
4398 }
4399
4400 #if defined (ARRAY_VARS)
4401 GET_ARRAY_FROM_VAR ("FUNCNAME", funcname_v, funcname_a);
4402 GET_ARRAY_FROM_VAR ("BASH_SOURCE", bash_source_v, bash_source_a);
4403 GET_ARRAY_FROM_VAR ("BASH_LINENO", bash_lineno_v, bash_lineno_a);
4404 #endif
4405
4406 tc = (COMMAND *)copy_command (function_cell (var));
4407 if (tc && (flags & CMD_IGNORE_RETURN))
4408 tc->flags |= CMD_IGNORE_RETURN;
4409
4410 if (subshell == 0)
4411 {
4412 begin_unwind_frame ("function_calling");
4413 push_context (var->name, subshell, temporary_env);
4414 add_unwind_protect (pop_context, (char *)NULL);
4415 unwind_protect_int (line_number);
4416 unwind_protect_int (return_catch_flag);
4417 unwind_protect_jmp_buf (return_catch);
4418 add_unwind_protect (dispose_command, (char *)tc);
4419 unwind_protect_pointer (this_shell_function);
4420 unwind_protect_int (loop_level);
4421 unwind_protect_int (funcnest);
4422 }
4423 else
4424 push_context (var->name, subshell, temporary_env); /* don't unwind-protect for subshells */
4425
4426 temporary_env = (HASH_TABLE *)NULL;
4427
4428 this_shell_function = var;
4429 make_funcname_visible (1);
4430
4431 debug_trap = TRAP_STRING(DEBUG_TRAP);
4432 error_trap = TRAP_STRING(ERROR_TRAP);
4433 return_trap = TRAP_STRING(RETURN_TRAP);
4434
4435 /* The order of the unwind protects for debug_trap, error_trap and
4436 return_trap is important here! unwind-protect commands are run
4437 in reverse order of registration. If this causes problems, take
4438 out the xfree unwind-protect calls and live with the small memory leak. */
4439
4440 /* function_trace_mode != 0 means that all functions inherit the DEBUG trap.
4441 if the function has the trace attribute set, it inherits the DEBUG trap */
4442 if (debug_trap && ((trace_p (var) == 0) && function_trace_mode == 0))
4443 {
4444 if (subshell == 0)
4445 {
4446 debug_trap = savestring (debug_trap);
4447 add_unwind_protect (xfree, debug_trap);
4448 add_unwind_protect (set_debug_trap, debug_trap);
4449 }
4450 restore_default_signal (DEBUG_TRAP);
4451 }
4452
4453 /* error_trace_mode != 0 means that functions inherit the ERR trap. */
4454 if (error_trap && error_trace_mode == 0)
4455 {
4456 if (subshell == 0)
4457 {
4458 error_trap = savestring (error_trap);
4459 add_unwind_protect (xfree, error_trap);
4460 add_unwind_protect (set_error_trap, error_trap);
4461 }
4462 restore_default_signal (ERROR_TRAP);
4463 }
4464
4465 /* Shell functions inherit the RETURN trap if function tracing is on
4466 globally or on individually for this function. */
4467 #if 0
4468 if (return_trap && ((trace_p (var) == 0) && function_trace_mode == 0))
4469 #else
4470 if (return_trap && (signal_in_progress (DEBUG_TRAP) || ((trace_p (var) == 0) && function_trace_mode == 0)))
4471 #endif
4472 {
4473 if (subshell == 0)
4474 {
4475 return_trap = savestring (return_trap);
4476 add_unwind_protect (xfree, return_trap);
4477 add_unwind_protect (set_return_trap, return_trap);
4478 }
4479 restore_default_signal (RETURN_TRAP);
4480 }
4481
4482 funcnest++;
4483 #if defined (ARRAY_VARS)
4484 /* This is quite similar to the code in shell.c and elsewhere. */
4485 shell_fn = find_function_def (this_shell_function->name);
4486 sfile = shell_fn ? shell_fn->source_file : "";
4487 array_push ((ARRAY *)funcname_a, this_shell_function->name);
4488
4489 array_push ((ARRAY *)bash_source_a, sfile);
4490 t = itos (executing_line_number ());
4491 array_push ((ARRAY *)bash_lineno_a, t);
4492 free (t);
4493 #endif
4494
4495 /* The temporary environment for a function is supposed to apply to
4496 all commands executed within the function body. */
4497
4498 remember_args (words->next, 1);
4499
4500 /* Update BASH_ARGV and BASH_ARGC */
4501 if (debugging_mode)
4502 push_args (words->next);
4503
4504 /* Number of the line on which the function body starts. */
4505 line_number = function_line_number = tc->line;
4506
4507 #if defined (JOB_CONTROL)
4508 if (subshell)
4509 stop_pipeline (async, (COMMAND *)NULL);
4510 #endif
4511
4512 fc = tc;
4513
4514 return_catch_flag++;
4515 return_val = setjmp_nosigs (return_catch);
4516
4517 if (return_val)
4518 {
4519 result = return_catch_value;
4520 /* Run the RETURN trap in the function's context. */
4521 save_current = currently_executing_command;
4522 run_return_trap ();
4523 currently_executing_command = save_current;
4524 }
4525 else
4526 {
4527 /* Run the debug trap here so we can trap at the start of a function's
4528 execution rather than the execution of the body's first command. */
4529 showing_function_line = 1;
4530 save_current = currently_executing_command;
4531 result = run_debug_trap ();
4532 #if defined (DEBUGGER)
4533 /* In debugging mode, if the DEBUG trap returns a non-zero status, we
4534 skip the command. */
4535 if (debugging_mode == 0 || result == EXECUTION_SUCCESS)
4536 {
4537 showing_function_line = 0;
4538 currently_executing_command = save_current;
4539 result = execute_command_internal (fc, 0, NO_PIPE, NO_PIPE, fds_to_close);
4540
4541 /* Run the RETURN trap in the function's context */
4542 save_current = currently_executing_command;
4543 run_return_trap ();
4544 currently_executing_command = save_current;
4545 }
4546 #else
4547 result = execute_command_internal (fc, 0, NO_PIPE, NO_PIPE, fds_to_close);
4548
4549 save_current = currently_executing_command;
4550 run_return_trap ();
4551 currently_executing_command = save_current;
4552 #endif
4553 showing_function_line = 0;
4554 }
4555
4556 /* Restore BASH_ARGC and BASH_ARGV */
4557 if (debugging_mode)
4558 pop_args ();
4559
4560 if (subshell == 0)
4561 run_unwind_frame ("function_calling");
4562
4563 #if defined (ARRAY_VARS)
4564 /* These two variables cannot be unset, and cannot be affected by the
4565 function. */
4566 array_pop ((ARRAY *)bash_source_a);
4567 array_pop ((ARRAY *)bash_lineno_a);
4568
4569 /* FUNCNAME can be unset, and so can potentially be changed by the
4570 function. */
4571 GET_ARRAY_FROM_VAR ("FUNCNAME", nfv, funcname_a);
4572 if (nfv == funcname_v)
4573 array_pop (funcname_a);
4574 #endif
4575
4576 if (variable_context == 0 || this_shell_function == 0)
4577 {
4578 make_funcname_visible (0);
4579 #if defined (PROCESS_SUBSTITUTION)
4580 unlink_fifo_list ();
4581 #endif
4582 }
4583
4584 return (result);
4585 }
4586
4587 /* A convenience routine for use by other parts of the shell to execute
4588 a particular shell function. */
4589 int
4590 execute_shell_function (var, words)
4591 SHELL_VAR *var;
4592 WORD_LIST *words;
4593 {
4594 int ret;
4595 struct fd_bitmap *bitmap;
4596
4597 bitmap = new_fd_bitmap (FD_BITMAP_DEFAULT_SIZE);
4598 begin_unwind_frame ("execute-shell-function");
4599 add_unwind_protect (dispose_fd_bitmap, (char *)bitmap);
4600
4601 ret = execute_function (var, words, 0, bitmap, 0, 0);
4602
4603 dispose_fd_bitmap (bitmap);
4604 discard_unwind_frame ("execute-shell-function");
4605
4606 return ret;
4607 }
4608
4609 /* Execute a shell builtin or function in a subshell environment. This
4610 routine does not return; it only calls exit(). If BUILTIN is non-null,
4611 it points to a function to call to execute a shell builtin; otherwise
4612 VAR points at the body of a function to execute. WORDS is the arguments
4613 to the command, REDIRECTS specifies redirections to perform before the
4614 command is executed. */
4615 static void
4616 execute_subshell_builtin_or_function (words, redirects, builtin, var,
4617 pipe_in, pipe_out, async, fds_to_close,
4618 flags)
4619 WORD_LIST *words;
4620 REDIRECT *redirects;
4621 sh_builtin_func_t *builtin;
4622 SHELL_VAR *var;
4623 int pipe_in, pipe_out, async;
4624 struct fd_bitmap *fds_to_close;
4625 int flags;
4626 {
4627 int result, r, funcvalue;
4628 #if defined (JOB_CONTROL)
4629 int jobs_hack;
4630
4631 jobs_hack = (builtin == jobs_builtin) &&
4632 ((subshell_environment & SUBSHELL_ASYNC) == 0 || pipe_out != NO_PIPE);
4633 #endif
4634
4635 /* A subshell is neither a login shell nor interactive. */
4636 login_shell = interactive = 0;
4637
4638 if (async)
4639 subshell_environment |= SUBSHELL_ASYNC;
4640 if (pipe_in != NO_PIPE || pipe_out != NO_PIPE)
4641 subshell_environment |= SUBSHELL_PIPE;
4642
4643 maybe_make_export_env (); /* XXX - is this needed? */
4644
4645 #if defined (JOB_CONTROL)
4646 /* Eradicate all traces of job control after we fork the subshell, so
4647 all jobs begun by this subshell are in the same process group as
4648 the shell itself. */
4649
4650 /* Allow the output of `jobs' to be piped. */
4651 if (jobs_hack)
4652 kill_current_pipeline ();
4653 else
4654 without_job_control ();
4655
4656 set_sigchld_handler ();
4657 #endif /* JOB_CONTROL */
4658
4659 set_sigint_handler ();
4660
4661 if (fds_to_close)
4662 close_fd_bitmap (fds_to_close);
4663
4664 do_piping (pipe_in, pipe_out);
4665
4666 if (do_redirections (redirects, RX_ACTIVE) != 0)
4667 exit (EXECUTION_FAILURE);
4668
4669 if (builtin)
4670 {
4671 /* Give builtins a place to jump back to on failure,
4672 so we don't go back up to main(). */
4673 result = setjmp_nosigs (top_level);
4674
4675 /* Give the return builtin a place to jump to when executed in a subshell
4676 or pipeline */
4677 funcvalue = 0;
4678 if (return_catch_flag && builtin == return_builtin)
4679 funcvalue = setjmp_nosigs (return_catch);
4680
4681 if (result == EXITPROG)
4682 exit (last_command_exit_value);
4683 else if (result)
4684 exit (EXECUTION_FAILURE);
4685 else if (funcvalue)
4686 exit (return_catch_value);
4687 else
4688 {
4689 r = execute_builtin (builtin, words, flags, 1);
4690 fflush (stdout);
4691 if (r == EX_USAGE)
4692 r = EX_BADUSAGE;
4693 exit (r);
4694 }
4695 }
4696 else
4697 {
4698 r = execute_function (var, words, flags, fds_to_close, async, 1);
4699 fflush (stdout);
4700 exit (r);
4701 }
4702 }
4703
4704 /* Execute a builtin or function in the current shell context. If BUILTIN
4705 is non-null, it is the builtin command to execute, otherwise VAR points
4706 to the body of a function. WORDS are the command's arguments, REDIRECTS
4707 are the redirections to perform. FDS_TO_CLOSE is the usual bitmap of
4708 file descriptors to close.
4709
4710 If BUILTIN is exec_builtin, the redirections specified in REDIRECTS are
4711 not undone before this function returns. */
4712 static int
4713 execute_builtin_or_function (words, builtin, var, redirects,
4714 fds_to_close, flags)
4715 WORD_LIST *words;
4716 sh_builtin_func_t *builtin;
4717 SHELL_VAR *var;
4718 REDIRECT *redirects;
4719 struct fd_bitmap *fds_to_close;
4720 int flags;
4721 {
4722 int result;
4723 REDIRECT *saved_undo_list;
4724 #if defined (PROCESS_SUBSTITUTION)
4725 int ofifo, nfifo, osize;
4726 char *ofifo_list;
4727 #endif
4728
4729
4730 #if defined (PROCESS_SUBSTITUTION)
4731 ofifo = num_fifos ();
4732 ofifo_list = copy_fifo_list (&osize);
4733 #endif
4734
4735 if (do_redirections (redirects, RX_ACTIVE|RX_UNDOABLE) != 0)
4736 {
4737 cleanup_redirects (redirection_undo_list);
4738 redirection_undo_list = (REDIRECT *)NULL;
4739 dispose_exec_redirects ();
4740 #if defined (PROCESS_SUBSTITUTION)
4741 free (ofifo_list);
4742 #endif
4743 return (EX_REDIRFAIL); /* was EXECUTION_FAILURE */
4744 }
4745
4746 saved_undo_list = redirection_undo_list;
4747
4748 /* Calling the "exec" builtin changes redirections forever. */
4749 if (builtin == exec_builtin)
4750 {
4751 dispose_redirects (saved_undo_list);
4752 saved_undo_list = exec_redirection_undo_list;
4753 exec_redirection_undo_list = (REDIRECT *)NULL;
4754 }
4755 else
4756 dispose_exec_redirects ();
4757
4758 if (saved_undo_list)
4759 {
4760 begin_unwind_frame ("saved redirects");
4761 add_unwind_protect (cleanup_redirects, (char *)saved_undo_list);
4762 }
4763
4764 redirection_undo_list = (REDIRECT *)NULL;
4765
4766 if (builtin)
4767 result = execute_builtin (builtin, words, flags, 0);
4768 else
4769 result = execute_function (var, words, flags, fds_to_close, 0, 0);
4770
4771 /* We do this before undoing the effects of any redirections. */
4772 fflush (stdout);
4773 fpurge (stdout);
4774 if (ferror (stdout))
4775 clearerr (stdout);
4776
4777 /* If we are executing the `command' builtin, but this_shell_builtin is
4778 set to `exec_builtin', we know that we have something like
4779 `command exec [redirection]', since otherwise `exec' would have
4780 overwritten the shell and we wouldn't get here. In this case, we
4781 want to behave as if the `command' builtin had not been specified
4782 and preserve the redirections. */
4783 if (builtin == command_builtin && this_shell_builtin == exec_builtin)
4784 {
4785 int discard;
4786
4787 discard = 0;
4788 if (saved_undo_list)
4789 {
4790 dispose_redirects (saved_undo_list);
4791 discard = 1;
4792 }
4793 redirection_undo_list = exec_redirection_undo_list;
4794 saved_undo_list = exec_redirection_undo_list = (REDIRECT *)NULL;
4795 if (discard)
4796 discard_unwind_frame ("saved redirects");
4797 }
4798
4799 if (saved_undo_list)
4800 {
4801 redirection_undo_list = saved_undo_list;
4802 discard_unwind_frame ("saved redirects");
4803 }
4804
4805 if (redirection_undo_list)
4806 {
4807 cleanup_redirects (redirection_undo_list);
4808 redirection_undo_list = (REDIRECT *)NULL;
4809 }
4810
4811 #if defined (PROCESS_SUBSTITUTION)
4812 /* Close any FIFOs created by this builtin or function. */
4813 nfifo = num_fifos ();
4814 if (nfifo > ofifo)
4815 close_new_fifos (ofifo_list, osize);
4816 free (ofifo_list);
4817 #endif
4818
4819 return (result);
4820 }
4821
4822 void
4823 setup_async_signals ()
4824 {
4825 #if defined (__BEOS__)
4826 set_signal_handler (SIGHUP, SIG_IGN); /* they want csh-like behavior */
4827 #endif
4828
4829 #if defined (JOB_CONTROL)
4830 if (job_control == 0)
4831 #endif
4832 {
4833 /* Make sure we get the original signal dispositions now so we don't
4834 confuse the trap builtin later if the subshell tries to use it to
4835 reset SIGINT/SIGQUIT. Don't call set_signal_ignored; that sets
4836 the value of original_signals to SIG_IGN. Posix interpretation 751. */
4837 get_original_signal (SIGINT);
4838 set_signal_handler (SIGINT, SIG_IGN);
4839
4840 get_original_signal (SIGQUIT);
4841 set_signal_handler (SIGQUIT, SIG_IGN);
4842 }
4843 }
4844
4845 /* Execute a simple command that is hopefully defined in a disk file
4846 somewhere.
4847
4848 1) fork ()
4849 2) connect pipes
4850 3) look up the command
4851 4) do redirections
4852 5) execve ()
4853 6) If the execve failed, see if the file has executable mode set.
4854 If so, and it isn't a directory, then execute its contents as
4855 a shell script.
4856
4857 Note that the filename hashing stuff has to take place up here,
4858 in the parent. This is probably why the Bourne style shells
4859 don't handle it, since that would require them to go through
4860 this gnarly hair, for no good reason.
4861
4862 NOTE: callers expect this to fork or exit(). */
4863
4864 /* Name of a shell function to call when a command name is not found. */
4865 #ifndef NOTFOUND_HOOK
4866 # define NOTFOUND_HOOK "command_not_found_handle"
4867 #endif
4868
4869 static int
4870 execute_disk_command (words, redirects, command_line, pipe_in, pipe_out,
4871 async, fds_to_close, cmdflags)
4872 WORD_LIST *words;
4873 REDIRECT *redirects;
4874 char *command_line;
4875 int pipe_in, pipe_out, async;
4876 struct fd_bitmap *fds_to_close;
4877 int cmdflags;
4878 {
4879 char *pathname, *command, **args;
4880 int nofork, result;
4881 pid_t pid;
4882 SHELL_VAR *hookf;
4883 WORD_LIST *wl;
4884
4885 nofork = (cmdflags & CMD_NO_FORK); /* Don't fork, just exec, if no pipes */
4886 pathname = words->word->word;
4887
4888 result = EXECUTION_SUCCESS;
4889 #if defined (RESTRICTED_SHELL)
4890 command = (char *)NULL;
4891 if (restricted && mbschr (pathname, '/'))
4892 {
4893 internal_error (_("%s: restricted: cannot specify `/' in command names"),
4894 pathname);
4895 result = last_command_exit_value = EXECUTION_FAILURE;
4896
4897 /* If we're not going to fork below, we must already be in a child
4898 process or a context in which it's safe to call exit(2). */
4899 if (nofork && pipe_in == NO_PIPE && pipe_out == NO_PIPE)
4900 exit (last_command_exit_value);
4901 else
4902 goto parent_return;
4903 }
4904 #endif /* RESTRICTED_SHELL */
4905
4906 command = search_for_command (pathname, 1);
4907
4908 if (command)
4909 {
4910 maybe_make_export_env ();
4911 put_command_name_into_env (command);
4912 }
4913
4914 /* We have to make the child before we check for the non-existence
4915 of COMMAND, since we want the error messages to be redirected. */
4916 /* If we can get away without forking and there are no pipes to deal with,
4917 don't bother to fork, just directly exec the command. */
4918 if (nofork && pipe_in == NO_PIPE && pipe_out == NO_PIPE)
4919 pid = 0;
4920 else
4921 pid = make_child (savestring (command_line), async);
4922
4923 if (pid == 0)
4924 {
4925 int old_interactive;
4926
4927 reset_terminating_signals (); /* XXX */
4928 /* Cancel traps, in trap.c. */
4929 restore_original_signals ();
4930
4931 CHECK_SIGTERM;
4932
4933 /* restore_original_signals may have undone the work done
4934 by make_child to ensure that SIGINT and SIGQUIT are ignored
4935 in asynchronous children. */
4936 if (async)
4937 {
4938 if ((cmdflags & CMD_STDIN_REDIR) &&
4939 pipe_in == NO_PIPE &&
4940 (stdin_redirects (redirects) == 0))
4941 async_redirect_stdin ();
4942 setup_async_signals ();
4943 }
4944
4945 /* This functionality is now provided by close-on-exec of the
4946 file descriptors manipulated by redirection and piping.
4947 Some file descriptors still need to be closed in all children
4948 because of the way bash does pipes; fds_to_close is a
4949 bitmap of all such file descriptors. */
4950 if (fds_to_close)
4951 close_fd_bitmap (fds_to_close);
4952
4953 do_piping (pipe_in, pipe_out);
4954
4955 old_interactive = interactive;
4956 if (async)
4957 interactive = 0;
4958
4959 subshell_environment = SUBSHELL_FORK;
4960
4961 if (redirects && (do_redirections (redirects, RX_ACTIVE) != 0))
4962 {
4963 #if defined (PROCESS_SUBSTITUTION)
4964 /* Try to remove named pipes that may have been created as the
4965 result of redirections. */
4966 unlink_fifo_list ();
4967 #endif /* PROCESS_SUBSTITUTION */
4968 exit (EXECUTION_FAILURE);
4969 }
4970
4971 if (async)
4972 interactive = old_interactive;
4973
4974 if (command == 0)
4975 {
4976 hookf = find_function (NOTFOUND_HOOK);
4977 if (hookf == 0)
4978 {
4979 /* Make sure filenames are displayed using printable characters */
4980 if (ansic_shouldquote (pathname))
4981 pathname = ansic_quote (pathname, 0, NULL);
4982 internal_error (_("%s: command not found"), pathname);
4983 exit (EX_NOTFOUND); /* Posix.2 says the exit status is 127 */
4984 }
4985
4986 #if defined (JOB_CONTROL)
4987 /* May need to reinitialize more of the job control state here. */
4988 kill_current_pipeline ();
4989 #endif
4990
4991 wl = make_word_list (make_word (NOTFOUND_HOOK), words);
4992 exit (execute_shell_function (hookf, wl));
4993 }
4994
4995 CHECK_SIGTERM;
4996
4997 /* Execve expects the command name to be in args[0]. So we
4998 leave it there, in the same format that the user used to
4999 type it in. */
5000 args = strvec_from_word_list (words, 0, 0, (int *)NULL);
5001 exit (shell_execve (command, args, export_env));
5002 }
5003 else
5004 {
5005 parent_return:
5006 QUIT;
5007
5008 /* Make sure that the pipes are closed in the parent. */
5009 close_pipes (pipe_in, pipe_out);
5010 #if defined (PROCESS_SUBSTITUTION) && defined (HAVE_DEV_FD)
5011 if (variable_context == 0)
5012 unlink_fifo_list ();
5013 #endif
5014 FREE (command);
5015 return (result);
5016 }
5017 }
5018
5019 /* CPP defines to decide whether a particular index into the #! line
5020 corresponds to a valid interpreter name or argument character, or
5021 whitespace. The MSDOS define is to allow \r to be treated the same
5022 as \n. */
5023
5024 #if !defined (MSDOS)
5025 # define STRINGCHAR(ind) \
5026 (ind < sample_len && !whitespace (sample[ind]) && sample[ind] != '\n')
5027 # define WHITECHAR(ind) \
5028 (ind < sample_len && whitespace (sample[ind]))
5029 #else /* MSDOS */
5030 # define STRINGCHAR(ind) \
5031 (ind < sample_len && !whitespace (sample[ind]) && sample[ind] != '\n' && sample[ind] != '\r')
5032 # define WHITECHAR(ind) \
5033 (ind < sample_len && whitespace (sample[ind]))
5034 #endif /* MSDOS */
5035
5036 static char *
5037 getinterp (sample, sample_len, endp)
5038 char *sample;
5039 int sample_len, *endp;
5040 {
5041 register int i;
5042 char *execname;
5043 int start;
5044
5045 /* Find the name of the interpreter to exec. */
5046 for (i = 2; i < sample_len && whitespace (sample[i]); i++)
5047 ;
5048
5049 for (start = i; STRINGCHAR(i); i++)
5050 ;
5051
5052 execname = substring (sample, start, i);
5053
5054 if (endp)
5055 *endp = i;
5056 return execname;
5057 }
5058
5059 #if !defined (HAVE_HASH_BANG_EXEC)
5060 /* If the operating system on which we're running does not handle
5061 the #! executable format, then help out. SAMPLE is the text read
5062 from the file, SAMPLE_LEN characters. COMMAND is the name of
5063 the script; it and ARGS, the arguments given by the user, will
5064 become arguments to the specified interpreter. ENV is the environment
5065 to pass to the interpreter.
5066
5067 The word immediately following the #! is the interpreter to execute.
5068 A single argument to the interpreter is allowed. */
5069
5070 static int
5071 execute_shell_script (sample, sample_len, command, args, env)
5072 char *sample;
5073 int sample_len;
5074 char *command;
5075 char **args, **env;
5076 {
5077 char *execname, *firstarg;
5078 int i, start, size_increment, larry;
5079
5080 /* Find the name of the interpreter to exec. */
5081 execname = getinterp (sample, sample_len, &i);
5082 size_increment = 1;
5083
5084 /* Now the argument, if any. */
5085 for (firstarg = (char *)NULL, start = i; WHITECHAR(i); i++)
5086 ;
5087
5088 /* If there is more text on the line, then it is an argument for the
5089 interpreter. */
5090
5091 if (STRINGCHAR(i))
5092 {
5093 for (start = i; STRINGCHAR(i); i++)
5094 ;
5095 firstarg = substring ((char *)sample, start, i);
5096 size_increment = 2;
5097 }
5098
5099 larry = strvec_len (args) + size_increment;
5100 args = strvec_resize (args, larry + 1);
5101
5102 for (i = larry - 1; i; i--)
5103 args[i] = args[i - size_increment];
5104
5105 args[0] = execname;
5106 if (firstarg)
5107 {
5108 args[1] = firstarg;
5109 args[2] = command;
5110 }
5111 else
5112 args[1] = command;
5113
5114 args[larry] = (char *)NULL;
5115
5116 return (shell_execve (execname, args, env));
5117 }
5118 #undef STRINGCHAR
5119 #undef WHITECHAR
5120
5121 #endif /* !HAVE_HASH_BANG_EXEC */
5122
5123 static void
5124 initialize_subshell ()
5125 {
5126 #if defined (ALIAS)
5127 /* Forget about any aliases that we knew of. We are in a subshell. */
5128 delete_all_aliases ();
5129 #endif /* ALIAS */
5130
5131 #if defined (HISTORY)
5132 /* Forget about the history lines we have read. This is a non-interactive
5133 subshell. */
5134 history_lines_this_session = 0;
5135 #endif
5136
5137 #if defined (JOB_CONTROL)
5138 /* Forget about the way job control was working. We are in a subshell. */
5139 without_job_control ();
5140 set_sigchld_handler ();
5141 init_job_stats ();
5142 #endif /* JOB_CONTROL */
5143
5144 /* Reset the values of the shell flags and options. */
5145 reset_shell_flags ();
5146 reset_shell_options ();
5147 reset_shopt_options ();
5148
5149 /* Zero out builtin_env, since this could be a shell script run from a
5150 sourced file with a temporary environment supplied to the `source/.'
5151 builtin. Such variables are not supposed to be exported (empirical
5152 testing with sh and ksh). Just throw it away; don't worry about a
5153 memory leak. */
5154 if (vc_isbltnenv (shell_variables))
5155 shell_variables = shell_variables->down;
5156
5157 clear_unwind_protect_list (0);
5158 /* XXX -- are there other things we should be resetting here? */
5159 parse_and_execute_level = 0; /* nothing left to restore it */
5160
5161 /* We're no longer inside a shell function. */
5162 variable_context = return_catch_flag = funcnest = 0;
5163
5164 executing_list = 0; /* XXX */
5165
5166 /* If we're not interactive, close the file descriptor from which we're
5167 reading the current shell script. */
5168 if (interactive_shell == 0)
5169 unset_bash_input (0);
5170 }
5171
5172 #if defined (HAVE_SETOSTYPE) && defined (_POSIX_SOURCE)
5173 # define SETOSTYPE(x) __setostype(x)
5174 #else
5175 # define SETOSTYPE(x)
5176 #endif
5177
5178 #define READ_SAMPLE_BUF(file, buf, len) \
5179 do \
5180 { \
5181 fd = open(file, O_RDONLY); \
5182 if (fd >= 0) \
5183 { \
5184 len = read (fd, buf, 80); \
5185 close (fd); \
5186 } \
5187 else \
5188 len = -1; \
5189 } \
5190 while (0)
5191
5192 /* Call execve (), handling interpreting shell scripts, and handling
5193 exec failures. */
5194 int
5195 shell_execve (command, args, env)
5196 char *command;
5197 char **args, **env;
5198 {
5199 int larray, i, fd;
5200 char sample[80];
5201 int sample_len;
5202
5203 SETOSTYPE (0); /* Some systems use for USG/POSIX semantics */
5204 execve (command, args, env);
5205 i = errno; /* error from execve() */
5206 CHECK_TERMSIG;
5207 SETOSTYPE (1);
5208
5209 /* If we get to this point, then start checking out the file.
5210 Maybe it is something we can hack ourselves. */
5211 if (i != ENOEXEC)
5212 {
5213 if (file_isdir (command))
5214 #if defined (EISDIR)
5215 internal_error (_("%s: %s"), command, strerror (EISDIR));
5216 #else
5217 internal_error (_("%s: is a directory"), command);
5218 #endif
5219 else if (executable_file (command) == 0)
5220 {
5221 errno = i;
5222 file_error (command);
5223 }
5224 /* errors not involving the path argument to execve. */
5225 else if (i == E2BIG || i == ENOMEM)
5226 {
5227 errno = i;
5228 file_error (command);
5229 }
5230 else
5231 {
5232 /* The file has the execute bits set, but the kernel refuses to
5233 run it for some reason. See why. */
5234 #if defined (HAVE_HASH_BANG_EXEC)
5235 READ_SAMPLE_BUF (command, sample, sample_len);
5236 sample[sample_len - 1] = '\0';
5237 if (sample_len > 2 && sample[0] == '#' && sample[1] == '!')
5238 {
5239 char *interp;
5240 int ilen;
5241
5242 interp = getinterp (sample, sample_len, (int *)NULL);
5243 ilen = strlen (interp);
5244 errno = i;
5245 if (interp[ilen - 1] == '\r')
5246 {
5247 interp = xrealloc (interp, ilen + 2);
5248 interp[ilen - 1] = '^';
5249 interp[ilen] = 'M';
5250 interp[ilen + 1] = '\0';
5251 }
5252 sys_error (_("%s: %s: bad interpreter"), command, interp ? interp : "");
5253 FREE (interp);
5254 return (EX_NOEXEC);
5255 }
5256 #endif
5257 errno = i;
5258 file_error (command);
5259 }
5260 return ((i == ENOENT) ? EX_NOTFOUND : EX_NOEXEC); /* XXX Posix.2 says that exit status is 126 */
5261 }
5262
5263 /* This file is executable.
5264 If it begins with #!, then help out people with losing operating
5265 systems. Otherwise, check to see if it is a binary file by seeing
5266 if the contents of the first line (or up to 80 characters) are in the
5267 ASCII set. If it's a text file, execute the contents as shell commands,
5268 otherwise return 126 (EX_BINARY_FILE). */
5269 READ_SAMPLE_BUF (command, sample, sample_len);
5270
5271 if (sample_len == 0)
5272 return (EXECUTION_SUCCESS);
5273
5274 /* Is this supposed to be an executable script?
5275 If so, the format of the line is "#! interpreter [argument]".
5276 A single argument is allowed. The BSD kernel restricts
5277 the length of the entire line to 32 characters (32 bytes
5278 being the size of the BSD exec header), but we allow 80
5279 characters. */
5280 if (sample_len > 0)
5281 {
5282 #if !defined (HAVE_HASH_BANG_EXEC)
5283 if (sample_len > 2 && sample[0] == '#' && sample[1] == '!')
5284 return (execute_shell_script (sample, sample_len, command, args, env));
5285 else
5286 #endif
5287 if (check_binary_file (sample, sample_len))
5288 {
5289 internal_error (_("%s: cannot execute binary file: %s"), command, strerror (i));
5290 return (EX_BINARY_FILE);
5291 }
5292 }
5293
5294 /* We have committed to attempting to execute the contents of this file
5295 as shell commands. */
5296
5297 initialize_subshell ();
5298
5299 set_sigint_handler ();
5300
5301 /* Insert the name of this shell into the argument list. */
5302 larray = strvec_len (args) + 1;
5303 args = strvec_resize (args, larray + 1);
5304
5305 for (i = larray - 1; i; i--)
5306 args[i] = args[i - 1];
5307
5308 args[0] = shell_name;
5309 args[1] = command;
5310 args[larray] = (char *)NULL;
5311
5312 if (args[0][0] == '-')
5313 args[0]++;
5314
5315 #if defined (RESTRICTED_SHELL)
5316 if (restricted)
5317 change_flag ('r', FLAG_OFF);
5318 #endif
5319
5320 if (subshell_argv)
5321 {
5322 /* Can't free subshell_argv[0]; that is shell_name. */
5323 for (i = 1; i < subshell_argc; i++)
5324 free (subshell_argv[i]);
5325 free (subshell_argv);
5326 }
5327
5328 dispose_command (currently_executing_command); /* XXX */
5329 currently_executing_command = (COMMAND *)NULL;
5330
5331 subshell_argc = larray;
5332 subshell_argv = args;
5333 subshell_envp = env;
5334
5335 unbind_args (); /* remove the positional parameters */
5336
5337 longjmp (subshell_top_level, 1);
5338 /*NOTREACHED*/
5339 }
5340
5341 static int
5342 execute_intern_function (name, funcdef)
5343 WORD_DESC *name;
5344 FUNCTION_DEF *funcdef;
5345 {
5346 SHELL_VAR *var;
5347
5348 if (check_identifier (name, posixly_correct) == 0)
5349 {
5350 if (posixly_correct && interactive_shell == 0)
5351 {
5352 last_command_exit_value = EX_BADUSAGE;
5353 jump_to_top_level (ERREXIT);
5354 }
5355 return (EXECUTION_FAILURE);
5356 }
5357
5358 /* Posix interpretation 383 */
5359 if (posixly_correct && find_special_builtin (name->word))
5360 {
5361 internal_error (_("`%s': is a special builtin"), name->word);
5362 last_command_exit_value = EX_BADUSAGE;
5363 jump_to_top_level (ERREXIT);
5364 }
5365
5366 var = find_function (name->word);
5367 if (var && (readonly_p (var) || noassign_p (var)))
5368 {
5369 if (readonly_p (var))
5370 internal_error (_("%s: readonly function"), var->name);
5371 return (EXECUTION_FAILURE);
5372 }
5373
5374 #if defined (DEBUGGER)
5375 bind_function_def (name->word, funcdef);
5376 #endif
5377
5378 bind_function (name->word, funcdef->command);
5379 return (EXECUTION_SUCCESS);
5380 }
5381
5382 #if defined (INCLUDE_UNUSED)
5383 #if defined (PROCESS_SUBSTITUTION)
5384 void
5385 close_all_files ()
5386 {
5387 register int i, fd_table_size;
5388
5389 fd_table_size = getdtablesize ();
5390 if (fd_table_size > 256) /* clamp to a reasonable value */
5391 fd_table_size = 256;
5392
5393 for (i = 3; i < fd_table_size; i++)
5394 close (i);
5395 }
5396 #endif /* PROCESS_SUBSTITUTION */
5397 #endif
5398
5399 static void
5400 close_pipes (in, out)
5401 int in, out;
5402 {
5403 if (in >= 0)
5404 close (in);
5405 if (out >= 0)
5406 close (out);
5407 }
5408
5409 static void
5410 dup_error (oldd, newd)
5411 int oldd, newd;
5412 {
5413 sys_error (_("cannot duplicate fd %d to fd %d"), oldd, newd);
5414 }
5415
5416 /* Redirect input and output to be from and to the specified pipes.
5417 NO_PIPE and REDIRECT_BOTH are handled correctly. */
5418 static void
5419 do_piping (pipe_in, pipe_out)
5420 int pipe_in, pipe_out;
5421 {
5422 if (pipe_in != NO_PIPE)
5423 {
5424 if (dup2 (pipe_in, 0) < 0)
5425 dup_error (pipe_in, 0);
5426 if (pipe_in > 0)
5427 close (pipe_in);
5428 #ifdef __CYGWIN__
5429 /* Let stdio know the fd may have changed from text to binary mode. */
5430 freopen (NULL, "r", stdin);
5431 #endif /* __CYGWIN__ */
5432 }
5433 if (pipe_out != NO_PIPE)
5434 {
5435 if (pipe_out != REDIRECT_BOTH)
5436 {
5437 if (dup2 (pipe_out, 1) < 0)
5438 dup_error (pipe_out, 1);
5439 if (pipe_out == 0 || pipe_out > 1)
5440 close (pipe_out);
5441 }
5442 else
5443 {
5444 if (dup2 (1, 2) < 0)
5445 dup_error (1, 2);
5446 }
5447 #ifdef __CYGWIN__
5448 /* Let stdio know the fd may have changed from text to binary mode, and
5449 make sure to preserve stdout line buffering. */
5450 freopen (NULL, "w", stdout);
5451 sh_setlinebuf (stdout);
5452 #endif /* __CYGWIN__ */
5453 }
5454 }