blob: 3cb6fc3b1cb18f020f12b85ff1639f6e805d5899 [file] [log] [blame]
wdenkfe8c2802002-11-03 00:38:21 +00001/* vi: set sw=4 ts=4: */
2/*
3 * sh.c -- a prototype Bourne shell grammar parser
4 * Intended to follow the original Thompson and Ritchie
5 * "small and simple is beautiful" philosophy, which
6 * incidentally is a good match to today's BusyBox.
7 *
8 * Copyright (C) 2000,2001 Larry Doolittle <larry@doolittle.boa.org>
9 *
10 * Credits:
11 * The parser routines proper are all original material, first
12 * written Dec 2000 and Jan 2001 by Larry Doolittle.
13 * The execution engine, the builtins, and much of the underlying
14 * support has been adapted from busybox-0.49pre's lash,
15 * which is Copyright (C) 2000 by Lineo, Inc., and
16 * written by Erik Andersen <andersen@lineo.com>, <andersee@debian.org>.
17 * That, in turn, is based in part on ladsh.c, by Michael K. Johnson and
18 * Erik W. Troan, which they placed in the public domain. I don't know
19 * how much of the Johnson/Troan code has survived the repeated rewrites.
20 * Other credits:
21 * simple_itoa() was lifted from boa-0.93.15
22 * b_addchr() derived from similar w_addchar function in glibc-2.2
23 * setup_redirect(), redirect_opt_num(), and big chunks of main()
24 * and many builtins derived from contributions by Erik Andersen
25 * miscellaneous bugfixes from Matt Kraai
26 *
27 * There are two big (and related) architecture differences between
28 * this parser and the lash parser. One is that this version is
29 * actually designed from the ground up to understand nearly all
30 * of the Bourne grammar. The second, consequential change is that
31 * the parser and input reader have been turned inside out. Now,
32 * the parser is in control, and asks for input as needed. The old
33 * way had the input reader in control, and it asked for parsing to
34 * take place as needed. The new way makes it much easier to properly
35 * handle the recursion implicit in the various substitutions, especially
36 * across continuation lines.
37 *
38 * Bash grammar not implemented: (how many of these were in original sh?)
39 * $@ (those sure look like weird quoting rules)
40 * $_
41 * ! negation operator for pipes
42 * &> and >& redirection of stdout+stderr
43 * Brace Expansion
44 * Tilde Expansion
45 * fancy forms of Parameter Expansion
46 * aliases
47 * Arithmetic Expansion
48 * <(list) and >(list) Process Substitution
49 * reserved words: case, esac, select, function
50 * Here Documents ( << word )
51 * Functions
52 * Major bugs:
53 * job handling woefully incomplete and buggy
54 * reserved word execution woefully incomplete and buggy
55 * to-do:
56 * port selected bugfixes from post-0.49 busybox lash - done?
57 * finish implementing reserved words: for, while, until, do, done
58 * change { and } from special chars to reserved words
59 * builtins: break, continue, eval, return, set, trap, ulimit
60 * test magic exec
61 * handle children going into background
62 * clean up recognition of null pipes
63 * check setting of global_argc and global_argv
64 * control-C handling, probably with longjmp
65 * follow IFS rules more precisely, including update semantics
66 * figure out what to do with backslash-newline
67 * explain why we use signal instead of sigaction
68 * propagate syntax errors, die on resource errors?
69 * continuation lines, both explicit and implicit - done?
70 * memory leak finding and plugging - done?
71 * more testing, especially quoting rules and redirection
72 * document how quoting rules not precisely followed for variable assignments
73 * maybe change map[] to use 2-bit entries
74 * (eventually) remove all the printf's
75 *
76 * This program is free software; you can redistribute it and/or modify
77 * it under the terms of the GNU General Public License as published by
78 * the Free Software Foundation; either version 2 of the License, or
79 * (at your option) any later version.
80 *
81 * This program is distributed in the hope that it will be useful,
82 * but WITHOUT ANY WARRANTY; without even the implied warranty of
83 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the GNU
84 * General Public License for more details.
85 *
86 * You should have received a copy of the GNU General Public License
87 * along with this program; if not, write to the Free Software
88 * Foundation, Inc., 59 Temple Place, Suite 330, Boston, MA 02111-1307 USA
89 */
90#define __U_BOOT__
91#ifdef __U_BOOT__
92#include <malloc.h> /* malloc, free, realloc*/
93#include <linux/ctype.h> /* isalpha, isdigit */
94#include <common.h> /* readline */
95#include <hush.h>
96#include <command.h> /* find_cmd */
97#include <cmd_bootm.h> /* do_bootd */
98#endif
99#ifdef CFG_HUSH_PARSER
100#ifndef __U_BOOT__
101#include <ctype.h> /* isalpha, isdigit */
102#include <unistd.h> /* getpid */
103#include <stdlib.h> /* getenv, atoi */
104#include <string.h> /* strchr */
105#include <stdio.h> /* popen etc. */
106#include <glob.h> /* glob, of course */
107#include <stdarg.h> /* va_list */
108#include <errno.h>
109#include <fcntl.h>
110#include <getopt.h> /* should be pretty obvious */
111
112#include <sys/stat.h> /* ulimit */
113#include <sys/types.h>
114#include <sys/wait.h>
115#include <signal.h>
116
117/* #include <dmalloc.h> */
118/* #define DEBUG_SHELL */
119
120#ifdef BB_VER
121#include "busybox.h"
122#include "cmdedit.h"
123#else
124#define applet_name "hush"
125#include "standalone.h"
126#define hush_main main
127#undef BB_FEATURE_SH_FANCY_PROMPT
128#endif
129#endif
130#define SPECIAL_VAR_SYMBOL 03
131#ifndef __U_BOOT__
132#define FLAG_EXIT_FROM_LOOP 1
133#define FLAG_PARSE_SEMICOLON (1 << 1) /* symbol ';' is special for parser */
134#define FLAG_REPARSING (1 << 2) /* >= 2nd pass */
135
136#endif
137
138#ifdef __U_BOOT__
139#define EXIT_SUCCESS 0
140#define EOF -1
141#define syntax() syntax_err()
142#define xstrdup strdup
143#define error_msg printf
144#else
145typedef enum {
146 REDIRECT_INPUT = 1,
147 REDIRECT_OVERWRITE = 2,
148 REDIRECT_APPEND = 3,
149 REDIRECT_HEREIS = 4,
150 REDIRECT_IO = 5
151} redir_type;
152
153/* The descrip member of this structure is only used to make debugging
154 * output pretty */
155struct {int mode; int default_fd; char *descrip;} redir_table[] = {
156 { 0, 0, "()" },
157 { O_RDONLY, 0, "<" },
158 { O_CREAT|O_TRUNC|O_WRONLY, 1, ">" },
159 { O_CREAT|O_APPEND|O_WRONLY, 1, ">>" },
160 { O_RDONLY, -1, "<<" },
161 { O_RDWR, 1, "<>" }
162};
163#endif
164
165typedef enum {
166 PIPE_SEQ = 1,
167 PIPE_AND = 2,
168 PIPE_OR = 3,
169 PIPE_BG = 4,
170} pipe_style;
171
172/* might eventually control execution */
173typedef enum {
174 RES_NONE = 0,
175 RES_IF = 1,
176 RES_THEN = 2,
177 RES_ELIF = 3,
178 RES_ELSE = 4,
179 RES_FI = 5,
180 RES_FOR = 6,
181 RES_WHILE = 7,
182 RES_UNTIL = 8,
183 RES_DO = 9,
184 RES_DONE = 10,
185 RES_XXXX = 11,
186 RES_IN = 12,
187 RES_SNTX = 13
188} reserved_style;
189#define FLAG_END (1<<RES_NONE)
190#define FLAG_IF (1<<RES_IF)
191#define FLAG_THEN (1<<RES_THEN)
192#define FLAG_ELIF (1<<RES_ELIF)
193#define FLAG_ELSE (1<<RES_ELSE)
194#define FLAG_FI (1<<RES_FI)
195#define FLAG_FOR (1<<RES_FOR)
196#define FLAG_WHILE (1<<RES_WHILE)
197#define FLAG_UNTIL (1<<RES_UNTIL)
198#define FLAG_DO (1<<RES_DO)
199#define FLAG_DONE (1<<RES_DONE)
200#define FLAG_IN (1<<RES_IN)
201#define FLAG_START (1<<RES_XXXX)
202
203/* This holds pointers to the various results of parsing */
204struct p_context {
205 struct child_prog *child;
206 struct pipe *list_head;
207 struct pipe *pipe;
208#ifndef __U_BOOT__
209 struct redir_struct *pending_redirect;
210#endif
211 reserved_style w;
212 int old_flag; /* for figuring out valid reserved words */
213 struct p_context *stack;
214 int type; /* define type of parser : ";$" common or special symbol */
215 /* How about quoting status? */
216};
217
218#ifndef __U_BOOT__
219struct redir_struct {
220 redir_type type; /* type of redirection */
221 int fd; /* file descriptor being redirected */
222 int dup; /* -1, or file descriptor being duplicated */
223 struct redir_struct *next; /* pointer to the next redirect in the list */
224 glob_t word; /* *word.gl_pathv is the filename */
225};
226#endif
227
228struct child_prog {
229#ifndef __U_BOOT__
230 pid_t pid; /* 0 if exited */
231#endif
232 char **argv; /* program name and arguments */
233#ifdef __U_BOOT__
234 int argc; /* number of program arguments */
235#endif
236 struct pipe *group; /* if non-NULL, first in group or subshell */
237#ifndef __U_BOOT__
238 int subshell; /* flag, non-zero if group must be forked */
239 struct redir_struct *redirects; /* I/O redirections */
240 glob_t glob_result; /* result of parameter globbing */
241 int is_stopped; /* is the program currently running? */
242 struct pipe *family; /* pointer back to the child's parent pipe */
243#endif
244 int sp; /* number of SPECIAL_VAR_SYMBOL */
245 int type;
246};
247
248struct pipe {
249#ifndef __U_BOOT__
250 int jobid; /* job number */
251#endif
252 int num_progs; /* total number of programs in job */
253#ifndef __U_BOOT__
254 int running_progs; /* number of programs running */
255 char *text; /* name of job */
256 char *cmdbuf; /* buffer various argv's point into */
257 pid_t pgrp; /* process group ID for the job */
258#endif
259 struct child_prog *progs; /* array of commands in pipe */
260 struct pipe *next; /* to track background commands */
261#ifndef __U_BOOT__
262 int stopped_progs; /* number of programs alive, but stopped */
263 int job_context; /* bitmask defining current context */
264#endif
265 pipe_style followup; /* PIPE_BG, PIPE_SEQ, PIPE_OR, PIPE_AND */
266 reserved_style r_mode; /* supports if, for, while, until */
267};
268
269#ifndef __U_BOOT__
270struct close_me {
271 int fd;
272 struct close_me *next;
273};
274#endif
275
276struct variables {
277 char *name;
278 char *value;
279 int flg_export;
280 int flg_read_only;
281 struct variables *next;
282};
283
284/* globals, connect us to the outside world
285 * the first three support $?, $#, and $1 */
286#ifndef __U_BOOT__
287char **global_argv;
288unsigned int global_argc;
289#endif
290unsigned int last_return_code;
291#ifndef __U_BOOT__
292extern char **environ; /* This is in <unistd.h>, but protected with __USE_GNU */
293#endif
294
295/* "globals" within this file */
296static char *ifs;
297static char map[256];
298#ifndef __U_BOOT__
299static int fake_mode;
300static int interactive;
301static struct close_me *close_me_head;
302static const char *cwd;
303static struct pipe *job_list;
304static unsigned int last_bg_pid;
305static unsigned int last_jobid;
306static unsigned int shell_terminal;
307static char *PS1;
308static char *PS2;
309struct variables shell_ver = { "HUSH_VERSION", "0.01", 1, 1, 0 };
310struct variables *top_vars = &shell_ver;
311#else
312static int flag_repeat = 0;
313static int do_repeat = 0;
314static struct variables *top_vars ;
315#endif /*__U_BOOT__ */
316
317#define B_CHUNK (100)
318#define B_NOSPAC 1
319
320typedef struct {
321 char *data;
322 int length;
323 int maxlen;
324 int quote;
325 int nonnull;
326} o_string;
327#define NULL_O_STRING {NULL,0,0,0,0}
328/* used for initialization:
329 o_string foo = NULL_O_STRING; */
330
331/* I can almost use ordinary FILE *. Is open_memstream() universally
332 * available? Where is it documented? */
333struct in_str {
334 const char *p;
335#ifndef __U_BOOT__
336 char peek_buf[2];
337#endif
338 int __promptme;
339 int promptmode;
340#ifndef __U_BOOT__
341 FILE *file;
342#endif
343 int (*get) (struct in_str *);
344 int (*peek) (struct in_str *);
345};
346#define b_getch(input) ((input)->get(input))
347#define b_peek(input) ((input)->peek(input))
348
349#ifndef __U_BOOT__
350#define JOB_STATUS_FORMAT "[%d] %-22s %.40s\n"
351
352struct built_in_command {
353 char *cmd; /* name */
354 char *descr; /* description */
355 int (*function) (struct child_prog *); /* function ptr */
356};
357#endif
358
359/* belongs in busybox.h */
360static inline int max(int a, int b) {
361 return (a>b)?a:b;
362}
363
364/* This should be in utility.c */
365#ifdef DEBUG_SHELL
366#ifndef __U_BOOT__
367static void debug_printf(const char *format, ...)
368{
369 va_list args;
370 va_start(args, format);
371 vfprintf(stderr, format, args);
372 va_end(args);
373}
374#else
375#define debug_printf printf /* U-Boot debug flag */
376#endif
377#else
378static inline void debug_printf(const char *format, ...) { }
379#endif
380#define final_printf debug_printf
381
382#ifdef __U_BOOT__
383static void syntax_err(void) {
384 printf("syntax error\n");
385}
386#else
387static void __syntax(char *file, int line) {
388 error_msg("syntax error %s:%d", file, line);
389}
390#define syntax() __syntax(__FILE__, __LINE__)
391#endif
392
393#ifdef __U_BOOT__
394static void *xmalloc(size_t size);
395static void *xrealloc(void *ptr, size_t size);
396#else
397/* Index of subroutines: */
398/* function prototypes for builtins */
399static int builtin_cd(struct child_prog *child);
400static int builtin_env(struct child_prog *child);
401static int builtin_eval(struct child_prog *child);
402static int builtin_exec(struct child_prog *child);
403static int builtin_exit(struct child_prog *child);
404static int builtin_export(struct child_prog *child);
405static int builtin_fg_bg(struct child_prog *child);
406static int builtin_help(struct child_prog *child);
407static int builtin_jobs(struct child_prog *child);
408static int builtin_pwd(struct child_prog *child);
409static int builtin_read(struct child_prog *child);
410static int builtin_set(struct child_prog *child);
411static int builtin_shift(struct child_prog *child);
412static int builtin_source(struct child_prog *child);
413static int builtin_umask(struct child_prog *child);
414static int builtin_unset(struct child_prog *child);
415static int builtin_not_written(struct child_prog *child);
416#endif
417/* o_string manipulation: */
418static int b_check_space(o_string *o, int len);
419static int b_addchr(o_string *o, int ch);
420static void b_reset(o_string *o);
421static int b_addqchr(o_string *o, int ch, int quote);
422static int b_adduint(o_string *o, unsigned int i);
423/* in_str manipulations: */
424static int static_get(struct in_str *i);
425static int static_peek(struct in_str *i);
426static int file_get(struct in_str *i);
427static int file_peek(struct in_str *i);
428#ifndef __U_BOOT__
429static void setup_file_in_str(struct in_str *i, FILE *f);
430#else
431static void setup_file_in_str(struct in_str *i);
432#endif
433static void setup_string_in_str(struct in_str *i, const char *s);
434#ifndef __U_BOOT__
435/* close_me manipulations: */
436static void mark_open(int fd);
437static void mark_closed(int fd);
438static void close_all();
439#endif
440/* "run" the final data structures: */
441static char *indenter(int i);
442static int free_pipe_list(struct pipe *head, int indent);
443static int free_pipe(struct pipe *pi, int indent);
444/* really run the final data structures: */
445#ifndef __U_BOOT__
446static int setup_redirects(struct child_prog *prog, int squirrel[]);
447#endif
448static int run_list_real(struct pipe *pi);
449#ifndef __U_BOOT__
450static void pseudo_exec(struct child_prog *child) __attribute__ ((noreturn));
451#endif
452static int run_pipe_real(struct pipe *pi);
453/* extended glob support: */
454#ifndef __U_BOOT__
455static int globhack(const char *src, int flags, glob_t *pglob);
456static int glob_needed(const char *s);
457static int xglob(o_string *dest, int flags, glob_t *pglob);
458#endif
459/* variable assignment: */
460static int is_assignment(const char *s);
461/* data structure manipulation: */
462#ifndef __U_BOOT__
463static int setup_redirect(struct p_context *ctx, int fd, redir_type style, struct in_str *input);
464#endif
465static void initialize_context(struct p_context *ctx);
466static int done_word(o_string *dest, struct p_context *ctx);
467static int done_command(struct p_context *ctx);
468static int done_pipe(struct p_context *ctx, pipe_style type);
469/* primary string parsing: */
470#ifndef __U_BOOT__
471static int redirect_dup_num(struct in_str *input);
472static int redirect_opt_num(o_string *o);
473static int process_command_subs(o_string *dest, struct p_context *ctx, struct in_str *input, int subst_end);
474static int parse_group(o_string *dest, struct p_context *ctx, struct in_str *input, int ch);
475#endif
476static char *lookup_param(char *src);
477static char *make_string(char **inp);
478static int handle_dollar(o_string *dest, struct p_context *ctx, struct in_str *input);
479#ifndef __U_BOOT__
480static int parse_string(o_string *dest, struct p_context *ctx, const char *src);
481#endif
482static int parse_stream(o_string *dest, struct p_context *ctx, struct in_str *input0, int end_trigger);
483/* setup: */
484static int parse_stream_outer(struct in_str *inp, int flag);
485#ifndef __U_BOOT__
486static int parse_string_outer(const char *s, int flag);
487static int parse_file_outer(FILE *f);
488#endif
489#ifndef __U_BOOT__
490/* job management: */
491static int checkjobs(struct pipe* fg_pipe);
492static void insert_bg_job(struct pipe *pi);
493static void remove_bg_job(struct pipe *pi);
494#endif
495/* local variable support */
496static char **make_list_in(char **inp, char *name);
497static char *insert_var_value(char *inp);
498static char *get_local_var(const char *var);
499#ifndef __U_BOOT__
500static void unset_local_var(const char *name);
501#endif
502static int set_local_var(const char *s, int flg_export);
503
504#ifndef __U_BOOT__
505/* Table of built-in functions. They can be forked or not, depending on
506 * context: within pipes, they fork. As simple commands, they do not.
507 * When used in non-forking context, they can change global variables
508 * in the parent shell process. If forked, of course they can not.
509 * For example, 'unset foo | whatever' will parse and run, but foo will
510 * still be set at the end. */
511static struct built_in_command bltins[] = {
512 {"bg", "Resume a job in the background", builtin_fg_bg},
513 {"break", "Exit for, while or until loop", builtin_not_written},
514 {"cd", "Change working directory", builtin_cd},
515 {"continue", "Continue for, while or until loop", builtin_not_written},
516 {"env", "Print all environment variables", builtin_env},
517 {"eval", "Construct and run shell command", builtin_eval},
518 {"exec", "Exec command, replacing this shell with the exec'd process",
519 builtin_exec},
520 {"exit", "Exit from shell()", builtin_exit},
521 {"export", "Set environment variable", builtin_export},
522 {"fg", "Bring job into the foreground", builtin_fg_bg},
523 {"jobs", "Lists the active jobs", builtin_jobs},
524 {"pwd", "Print current directory", builtin_pwd},
525 {"read", "Input environment variable", builtin_read},
526 {"return", "Return from a function", builtin_not_written},
527 {"set", "Set/unset shell local variables", builtin_set},
528 {"shift", "Shift positional parameters", builtin_shift},
529 {"trap", "Trap signals", builtin_not_written},
530 {"ulimit","Controls resource limits", builtin_not_written},
531 {"umask","Sets file creation mask", builtin_umask},
532 {"unset", "Unset environment variable", builtin_unset},
533 {".", "Source-in and run commands in a file", builtin_source},
534 {"help", "List shell built-in commands", builtin_help},
535 {NULL, NULL, NULL}
536};
537
538static const char *set_cwd(void)
539{
540 if(cwd==unknown)
541 cwd = NULL; /* xgetcwd(arg) called free(arg) */
542 cwd = xgetcwd((char *)cwd);
543 if (!cwd)
544 cwd = unknown;
545 return cwd;
546}
547
548/* built-in 'eval' handler */
549static int builtin_eval(struct child_prog *child)
550{
551 char *str = NULL;
552 int rcode = EXIT_SUCCESS;
553
554 if (child->argv[1]) {
555 str = make_string(child->argv + 1);
556 parse_string_outer(str, FLAG_EXIT_FROM_LOOP |
557 FLAG_PARSE_SEMICOLON);
558 free(str);
559 rcode = last_return_code;
560 }
561 return rcode;
562}
563
564/* built-in 'cd <path>' handler */
565static int builtin_cd(struct child_prog *child)
566{
567 char *newdir;
568 if (child->argv[1] == NULL)
569 newdir = getenv("HOME");
570 else
571 newdir = child->argv[1];
572 if (chdir(newdir)) {
573 printf("cd: %s: %s\n", newdir, strerror(errno));
574 return EXIT_FAILURE;
575 }
576 set_cwd();
577 return EXIT_SUCCESS;
578}
579
580/* built-in 'env' handler */
581static int builtin_env(struct child_prog *dummy)
582{
583 char **e = environ;
584 if (e == NULL) return EXIT_FAILURE;
585 for (; *e; e++) {
586 puts(*e);
587 }
588 return EXIT_SUCCESS;
589}
590
591/* built-in 'exec' handler */
592static int builtin_exec(struct child_prog *child)
593{
594 if (child->argv[1] == NULL)
595 return EXIT_SUCCESS; /* Really? */
596 child->argv++;
597 pseudo_exec(child);
598 /* never returns */
599}
600
601/* built-in 'exit' handler */
602static int builtin_exit(struct child_prog *child)
603{
604 if (child->argv[1] == NULL)
605 exit(last_return_code);
606 exit (atoi(child->argv[1]));
607}
608
609/* built-in 'export VAR=value' handler */
610static int builtin_export(struct child_prog *child)
611{
612 int res = 0;
613 char *name = child->argv[1];
614
615 if (name == NULL) {
616 return (builtin_env(child));
617 }
618
619 name = strdup(name);
620
621 if(name) {
622 char *value = strchr(name, '=');
623
624 if (!value) {
625 char *tmp;
626 /* They are exporting something without an =VALUE */
627
628 value = get_local_var(name);
629 if (value) {
630 size_t ln = strlen(name);
631
632 tmp = realloc(name, ln+strlen(value)+2);
633 if(tmp==NULL)
634 res = -1;
635 else {
636 sprintf(tmp+ln, "=%s", value);
637 name = tmp;
638 }
639 } else {
640 /* bash does not return an error when trying to export
641 * an undefined variable. Do likewise. */
642 res = 1;
643 }
644 }
645 }
646 if (res<0)
647 perror_msg("export");
648 else if(res==0)
649 res = set_local_var(name, 1);
650 else
651 res = 0;
652 free(name);
653 return res;
654}
655
656/* built-in 'fg' and 'bg' handler */
657static int builtin_fg_bg(struct child_prog *child)
658{
659 int i, jobnum;
660 struct pipe *pi=NULL;
661
662 if (!interactive)
663 return EXIT_FAILURE;
664 /* If they gave us no args, assume they want the last backgrounded task */
665 if (!child->argv[1]) {
666 for (pi = job_list; pi; pi = pi->next) {
667 if (pi->jobid == last_jobid) {
668 break;
669 }
670 }
671 if (!pi) {
672 error_msg("%s: no current job", child->argv[0]);
673 return EXIT_FAILURE;
674 }
675 } else {
676 if (sscanf(child->argv[1], "%%%d", &jobnum) != 1) {
677 error_msg("%s: bad argument '%s'", child->argv[0], child->argv[1]);
678 return EXIT_FAILURE;
679 }
680 for (pi = job_list; pi; pi = pi->next) {
681 if (pi->jobid == jobnum) {
682 break;
683 }
684 }
685 if (!pi) {
686 error_msg("%s: %d: no such job", child->argv[0], jobnum);
687 return EXIT_FAILURE;
688 }
689 }
690
691 if (*child->argv[0] == 'f') {
692 /* Put the job into the foreground. */
693 tcsetpgrp(shell_terminal, pi->pgrp);
694 }
695
696 /* Restart the processes in the job */
697 for (i = 0; i < pi->num_progs; i++)
698 pi->progs[i].is_stopped = 0;
699
700 if ( (i=kill(- pi->pgrp, SIGCONT)) < 0) {
701 if (i == ESRCH) {
702 remove_bg_job(pi);
703 } else {
704 perror_msg("kill (SIGCONT)");
705 }
706 }
707
708 pi->stopped_progs = 0;
709 return EXIT_SUCCESS;
710}
711
712/* built-in 'help' handler */
713static int builtin_help(struct child_prog *dummy)
714{
715 struct built_in_command *x;
716
717 printf("\nBuilt-in commands:\n");
718 printf("-------------------\n");
719 for (x = bltins; x->cmd; x++) {
720 if (x->descr==NULL)
721 continue;
722 printf("%s\t%s\n", x->cmd, x->descr);
723 }
724 printf("\n\n");
725 return EXIT_SUCCESS;
726}
727
728/* built-in 'jobs' handler */
729static int builtin_jobs(struct child_prog *child)
730{
731 struct pipe *job;
732 char *status_string;
733
734 for (job = job_list; job; job = job->next) {
735 if (job->running_progs == job->stopped_progs)
736 status_string = "Stopped";
737 else
738 status_string = "Running";
739
740 printf(JOB_STATUS_FORMAT, job->jobid, status_string, job->text);
741 }
742 return EXIT_SUCCESS;
743}
744
745
746/* built-in 'pwd' handler */
747static int builtin_pwd(struct child_prog *dummy)
748{
749 puts(set_cwd());
750 return EXIT_SUCCESS;
751}
752
753/* built-in 'read VAR' handler */
754static int builtin_read(struct child_prog *child)
755{
756 int res;
757
758 if (child->argv[1]) {
759 char string[BUFSIZ];
760 char *var = 0;
761
762 string[0] = 0; /* In case stdin has only EOF */
763 /* read string */
764 fgets(string, sizeof(string), stdin);
765 chomp(string);
766 var = malloc(strlen(child->argv[1])+strlen(string)+2);
767 if(var) {
768 sprintf(var, "%s=%s", child->argv[1], string);
769 res = set_local_var(var, 0);
770 } else
771 res = -1;
772 if (res)
773 fprintf(stderr, "read: %m\n");
774 free(var); /* So not move up to avoid breaking errno */
775 return res;
776 } else {
777 do res=getchar(); while(res!='\n' && res!=EOF);
778 return 0;
779 }
780}
781
782/* built-in 'set VAR=value' handler */
783static int builtin_set(struct child_prog *child)
784{
785 char *temp = child->argv[1];
786 struct variables *e;
787
788 if (temp == NULL)
789 for(e = top_vars; e; e=e->next)
790 printf("%s=%s\n", e->name, e->value);
791 else
792 set_local_var(temp, 0);
793
794 return EXIT_SUCCESS;
795}
796
797
798/* Built-in 'shift' handler */
799static int builtin_shift(struct child_prog *child)
800{
801 int n=1;
802 if (child->argv[1]) {
803 n=atoi(child->argv[1]);
804 }
805 if (n>=0 && n<global_argc) {
806 /* XXX This probably breaks $0 */
807 global_argc -= n;
808 global_argv += n;
809 return EXIT_SUCCESS;
810 } else {
811 return EXIT_FAILURE;
812 }
813}
814
815/* Built-in '.' handler (read-in and execute commands from file) */
816static int builtin_source(struct child_prog *child)
817{
818 FILE *input;
819 int status;
820
821 if (child->argv[1] == NULL)
822 return EXIT_FAILURE;
823
824 /* XXX search through $PATH is missing */
825 input = fopen(child->argv[1], "r");
826 if (!input) {
827 error_msg("Couldn't open file '%s'", child->argv[1]);
828 return EXIT_FAILURE;
829 }
830
831 /* Now run the file */
832 /* XXX argv and argc are broken; need to save old global_argv
833 * (pointer only is OK!) on this stack frame,
834 * set global_argv=child->argv+1, recurse, and restore. */
835 mark_open(fileno(input));
836 status = parse_file_outer(input);
837 mark_closed(fileno(input));
838 fclose(input);
839 return (status);
840}
841
842static int builtin_umask(struct child_prog *child)
843{
844 mode_t new_umask;
845 const char *arg = child->argv[1];
846 char *end;
847 if (arg) {
848 new_umask=strtoul(arg, &end, 8);
849 if (*end!='\0' || end == arg) {
850 return EXIT_FAILURE;
851 }
852 } else {
853 printf("%.3o\n", (unsigned int) (new_umask=umask(0)));
854 }
855 umask(new_umask);
856 return EXIT_SUCCESS;
857}
858
859/* built-in 'unset VAR' handler */
860static int builtin_unset(struct child_prog *child)
861{
862 /* bash returned already true */
863 unset_local_var(child->argv[1]);
864 return EXIT_SUCCESS;
865}
866
867static int builtin_not_written(struct child_prog *child)
868{
869 printf("builtin_%s not written\n",child->argv[0]);
870 return EXIT_FAILURE;
871}
872#endif
873
874static int b_check_space(o_string *o, int len)
875{
876 /* It would be easy to drop a more restrictive policy
877 * in here, such as setting a maximum string length */
878 if (o->length + len > o->maxlen) {
879 char *old_data = o->data;
880 /* assert (data == NULL || o->maxlen != 0); */
881 o->maxlen += max(2*len, B_CHUNK);
882 o->data = realloc(o->data, 1 + o->maxlen);
883 if (o->data == NULL) {
884 free(old_data);
885 }
886 }
887 return o->data == NULL;
888}
889
890static int b_addchr(o_string *o, int ch)
891{
892 debug_printf("b_addchr: %c %d %p\n", ch, o->length, o);
893 if (b_check_space(o, 1)) return B_NOSPAC;
894 o->data[o->length] = ch;
895 o->length++;
896 o->data[o->length] = '\0';
897 return 0;
898}
899
900static void b_reset(o_string *o)
901{
902 o->length = 0;
903 o->nonnull = 0;
904 if (o->data != NULL) *o->data = '\0';
905}
906
907static void b_free(o_string *o)
908{
909 b_reset(o);
910 if (o->data != NULL) free(o->data);
911 o->data = NULL;
912 o->maxlen = 0;
913}
914
915/* My analysis of quoting semantics tells me that state information
916 * is associated with a destination, not a source.
917 */
918static int b_addqchr(o_string *o, int ch, int quote)
919{
920 if (quote && strchr("*?[\\",ch)) {
921 int rc;
922 rc = b_addchr(o, '\\');
923 if (rc) return rc;
924 }
925 return b_addchr(o, ch);
926}
927
928/* belongs in utility.c */
929char *simple_itoa(unsigned int i)
930{
931 /* 21 digits plus null terminator, good for 64-bit or smaller ints */
932 static char local[22];
933 char *p = &local[21];
934 *p-- = '\0';
935 do {
936 *p-- = '0' + i % 10;
937 i /= 10;
938 } while (i > 0);
939 return p + 1;
940}
941
942static int b_adduint(o_string *o, unsigned int i)
943{
944 int r;
945 char *p = simple_itoa(i);
946 /* no escape checking necessary */
947 do r=b_addchr(o, *p++); while (r==0 && *p);
948 return r;
949}
950
951static int static_get(struct in_str *i)
952{
953 int ch=*i->p++;
954 if (ch=='\0') return EOF;
955 return ch;
956}
957
958static int static_peek(struct in_str *i)
959{
960 return *i->p;
961}
962
963#ifndef __U_BOOT__
964static inline void cmdedit_set_initial_prompt(void)
965{
966#ifndef BB_FEATURE_SH_FANCY_PROMPT
967 PS1 = NULL;
968#else
969 PS1 = getenv("PS1");
970 if(PS1==0)
971 PS1 = "\\w \\$ ";
972#endif
973}
974
975static inline void setup_prompt_string(int promptmode, char **prompt_str)
976{
977 debug_printf("setup_prompt_string %d ",promptmode);
978#ifndef BB_FEATURE_SH_FANCY_PROMPT
979 /* Set up the prompt */
980 if (promptmode == 1) {
981 if (PS1)
982 free(PS1);
983 PS1=xmalloc(strlen(cwd)+4);
984 sprintf(PS1, "%s %s", cwd, ( geteuid() != 0 ) ? "$ ":"# ");
985 *prompt_str = PS1;
986 } else {
987 *prompt_str = PS2;
988 }
989#else
990 *prompt_str = (promptmode==1)? PS1 : PS2;
991#endif
992 debug_printf("result %s\n",*prompt_str);
993}
994#endif
995
996static void get_user_input(struct in_str *i)
997{
998#ifndef __U_BOOT__
999 char *prompt_str;
1000 static char the_command[BUFSIZ];
1001
1002 setup_prompt_string(i->promptmode, &prompt_str);
1003#ifdef BB_FEATURE_COMMAND_EDITING
1004 /*
1005 ** enable command line editing only while a command line
1006 ** is actually being read; otherwise, we'll end up bequeathing
1007 ** atexit() handlers and other unwanted stuff to our
1008 ** child processes (rob@sysgo.de)
1009 */
1010 cmdedit_read_input(prompt_str, the_command);
1011#else
1012 fputs(prompt_str, stdout);
1013 fflush(stdout);
1014 the_command[0]=fgetc(i->file);
1015 the_command[1]='\0';
1016#endif
1017 fflush(stdout);
1018 i->p = the_command;
1019#else
1020 extern char console_buffer[CFG_CBSIZE];
1021 int n;
1022 static char the_command[CFG_CBSIZE];
1023
1024 i->__promptme = 1;
1025 if (i->promptmode == 1) {
1026 n = readline(CFG_PROMPT);
1027 } else {
1028 n = readline(CFG_PROMPT_HUSH_PS2);
1029 }
1030 if (n == -1 ) {
1031 flag_repeat = 0;
1032 i->__promptme = 0;
1033 }
1034 n = strlen(console_buffer);
1035 console_buffer[n] = '\n';
1036 console_buffer[n+1]= '\0';
1037 if (had_ctrlc()) flag_repeat = 0;
1038 clear_ctrlc();
1039 do_repeat = 0;
1040 if (i->promptmode == 1) {
1041 if (console_buffer[0] == '\n'&& flag_repeat == 0) {
1042 strcpy(the_command,console_buffer);
1043 }
1044 else {
1045 if (console_buffer[0] != '\n') {
1046 strcpy(the_command,console_buffer);
1047 flag_repeat = 1;
1048 }
1049 else {
1050 do_repeat = 1;
1051 }
1052 }
1053 i->p = the_command;
1054 }
1055 else {
1056 if (console_buffer[0] != '\n') {
1057 if (strlen(the_command) + strlen(console_buffer)
1058 < CFG_CBSIZE) {
1059 n = strlen(the_command);
1060 the_command[n-1] = ' ';
1061 strcpy(&the_command[n],console_buffer);
1062 }
1063 else {
1064 the_command[0] = '\n';
1065 the_command[1] = '\0';
1066 flag_repeat = 0;
1067 }
1068 }
1069 if (i->__promptme == 0) {
1070 the_command[0] = '\n';
1071 the_command[1] = '\0';
1072 }
1073 i->p = console_buffer;
1074 }
1075#endif
1076}
1077
1078/* This is the magic location that prints prompts
1079 * and gets data back from the user */
1080static int file_get(struct in_str *i)
1081{
1082 int ch;
1083
1084 ch = 0;
1085 /* If there is data waiting, eat it up */
1086 if (i->p && *i->p) {
1087 ch=*i->p++;
1088 } else {
1089 /* need to double check i->file because we might be doing something
1090 * more complicated by now, like sourcing or substituting. */
1091#ifndef __U_BOOT__
1092 if (i->__promptme && interactive && i->file == stdin) {
1093 while(! i->p || (interactive && strlen(i->p)==0) ) {
1094#else
1095 while(! i->p || strlen(i->p)==0 ) {
1096#endif
1097 get_user_input(i);
1098 }
1099 i->promptmode=2;
1100#ifndef __U_BOOT__
1101 i->__promptme = 0;
1102#endif
1103 if (i->p && *i->p) {
1104 ch=*i->p++;
1105 }
1106#ifndef __U_BOOT__
1107 } else {
1108 ch = fgetc(i->file);
1109 }
1110
1111#endif
1112 debug_printf("b_getch: got a %d\n", ch);
1113 }
1114#ifndef __U_BOOT__
1115 if (ch == '\n') i->__promptme=1;
1116#endif
1117 return ch;
1118}
1119
1120/* All the callers guarantee this routine will never be
1121 * used right after a newline, so prompting is not needed.
1122 */
1123static int file_peek(struct in_str *i)
1124{
1125#ifndef __U_BOOT__
1126 if (i->p && *i->p) {
1127#endif
1128 return *i->p;
1129#ifndef __U_BOOT__
1130 } else {
1131 i->peek_buf[0] = fgetc(i->file);
1132 i->peek_buf[1] = '\0';
1133 i->p = i->peek_buf;
1134 debug_printf("b_peek: got a %d\n", *i->p);
1135 return *i->p;
1136 }
1137#endif
1138}
1139
1140#ifndef __U_BOOT__
1141static void setup_file_in_str(struct in_str *i, FILE *f)
1142#else
1143static void setup_file_in_str(struct in_str *i)
1144#endif
1145{
1146 i->peek = file_peek;
1147 i->get = file_get;
1148 i->__promptme=1;
1149 i->promptmode=1;
1150#ifndef __U_BOOT__
1151 i->file = f;
1152#endif
1153 i->p = NULL;
1154}
1155
1156static void setup_string_in_str(struct in_str *i, const char *s)
1157{
1158 i->peek = static_peek;
1159 i->get = static_get;
1160 i->__promptme=1;
1161 i->promptmode=1;
1162 i->p = s;
1163}
1164
1165#ifndef __U_BOOT__
1166static void mark_open(int fd)
1167{
1168 struct close_me *new = xmalloc(sizeof(struct close_me));
1169 new->fd = fd;
1170 new->next = close_me_head;
1171 close_me_head = new;
1172}
1173
1174static void mark_closed(int fd)
1175{
1176 struct close_me *tmp;
1177 if (close_me_head == NULL || close_me_head->fd != fd)
1178 error_msg_and_die("corrupt close_me");
1179 tmp = close_me_head;
1180 close_me_head = close_me_head->next;
1181 free(tmp);
1182}
1183
1184static void close_all()
1185{
1186 struct close_me *c;
1187 for (c=close_me_head; c; c=c->next) {
1188 close(c->fd);
1189 }
1190 close_me_head = NULL;
1191}
1192
1193/* squirrel != NULL means we squirrel away copies of stdin, stdout,
1194 * and stderr if they are redirected. */
1195static int setup_redirects(struct child_prog *prog, int squirrel[])
1196{
1197 int openfd, mode;
1198 struct redir_struct *redir;
1199
1200 for (redir=prog->redirects; redir; redir=redir->next) {
1201 if (redir->dup == -1 && redir->word.gl_pathv == NULL) {
1202 /* something went wrong in the parse. Pretend it didn't happen */
1203 continue;
1204 }
1205 if (redir->dup == -1) {
1206 mode=redir_table[redir->type].mode;
1207 openfd = open(redir->word.gl_pathv[0], mode, 0666);
1208 if (openfd < 0) {
1209 /* this could get lost if stderr has been redirected, but
1210 bash and ash both lose it as well (though zsh doesn't!) */
1211 perror_msg("error opening %s", redir->word.gl_pathv[0]);
1212 return 1;
1213 }
1214 } else {
1215 openfd = redir->dup;
1216 }
1217
1218 if (openfd != redir->fd) {
1219 if (squirrel && redir->fd < 3) {
1220 squirrel[redir->fd] = dup(redir->fd);
1221 }
1222 if (openfd == -3) {
1223 close(openfd);
1224 } else {
1225 dup2(openfd, redir->fd);
1226 if (redir->dup == -1)
1227 close (openfd);
1228 }
1229 }
1230 }
1231 return 0;
1232}
1233
1234static void restore_redirects(int squirrel[])
1235{
1236 int i, fd;
1237 for (i=0; i<3; i++) {
1238 fd = squirrel[i];
1239 if (fd != -1) {
1240 /* No error checking. I sure wouldn't know what
1241 * to do with an error if I found one! */
1242 dup2(fd, i);
1243 close(fd);
1244 }
1245 }
1246}
1247
1248/* never returns */
1249/* XXX no exit() here. If you don't exec, use _exit instead.
1250 * The at_exit handlers apparently confuse the calling process,
1251 * in particular stdin handling. Not sure why? */
1252static void pseudo_exec(struct child_prog *child)
1253{
1254 int i, rcode;
1255 char *p;
1256 struct built_in_command *x;
1257 if (child->argv) {
1258 for (i=0; is_assignment(child->argv[i]); i++) {
1259 debug_printf("pid %d environment modification: %s\n",getpid(),child->argv[i]);
1260 p = insert_var_value(child->argv[i]);
1261 putenv(strdup(p));
1262 if (p != child->argv[i]) free(p);
1263 }
1264 child->argv+=i; /* XXX this hack isn't so horrible, since we are about
1265 to exit, and therefore don't need to keep data
1266 structures consistent for free() use. */
1267 /* If a variable is assigned in a forest, and nobody listens,
1268 * was it ever really set?
1269 */
1270 if (child->argv[0] == NULL) {
1271 _exit(EXIT_SUCCESS);
1272 }
1273
1274 /*
1275 * Check if the command matches any of the builtins.
1276 * Depending on context, this might be redundant. But it's
1277 * easier to waste a few CPU cycles than it is to figure out
1278 * if this is one of those cases.
1279 */
1280 for (x = bltins; x->cmd; x++) {
1281 if (strcmp(child->argv[0], x->cmd) == 0 ) {
1282 debug_printf("builtin exec %s\n", child->argv[0]);
1283 rcode = x->function(child);
1284 fflush(stdout);
1285 _exit(rcode);
1286 }
1287 }
1288
1289 /* Check if the command matches any busybox internal commands
1290 * ("applets") here.
1291 * FIXME: This feature is not 100% safe, since
1292 * BusyBox is not fully reentrant, so we have no guarantee the things
1293 * from the .bss are still zeroed, or that things from .data are still
1294 * at their defaults. We could exec ourself from /proc/self/exe, but I
1295 * really dislike relying on /proc for things. We could exec ourself
1296 * from global_argv[0], but if we are in a chroot, we may not be able
1297 * to find ourself... */
1298#ifdef BB_FEATURE_SH_STANDALONE_SHELL
1299 {
1300 int argc_l;
1301 char** argv_l=child->argv;
1302 char *name = child->argv[0];
1303
1304#ifdef BB_FEATURE_SH_APPLETS_ALWAYS_WIN
1305 /* Following discussions from November 2000 on the busybox mailing
1306 * list, the default configuration, (without
1307 * get_last_path_component()) lets the user force use of an
1308 * external command by specifying the full (with slashes) filename.
1309 * If you enable BB_FEATURE_SH_APPLETS_ALWAYS_WIN, then applets
1310 * _aways_ override external commands, so if you want to run
1311 * /bin/cat, it will use BusyBox cat even if /bin/cat exists on the
1312 * filesystem and is _not_ busybox. Some systems may want this,
1313 * most do not. */
1314 name = get_last_path_component(name);
1315#endif
1316 /* Count argc for use in a second... */
1317 for(argc_l=0;*argv_l!=NULL; argv_l++, argc_l++);
1318 optind = 1;
1319 debug_printf("running applet %s\n", name);
1320 run_applet_by_name(name, argc_l, child->argv);
1321 }
1322#endif
1323 debug_printf("exec of %s\n",child->argv[0]);
1324 execvp(child->argv[0],child->argv);
1325 perror_msg("couldn't exec: %s",child->argv[0]);
1326 _exit(1);
1327 } else if (child->group) {
1328 debug_printf("runtime nesting to group\n");
1329 interactive=0; /* crucial!!!! */
1330 rcode = run_list_real(child->group);
1331 /* OK to leak memory by not calling free_pipe_list,
1332 * since this process is about to exit */
1333 _exit(rcode);
1334 } else {
1335 /* Can happen. See what bash does with ">foo" by itself. */
1336 debug_printf("trying to pseudo_exec null command\n");
1337 _exit(EXIT_SUCCESS);
1338 }
1339}
1340
1341static void insert_bg_job(struct pipe *pi)
1342{
1343 struct pipe *thejob;
1344
1345 /* Linear search for the ID of the job to use */
1346 pi->jobid = 1;
1347 for (thejob = job_list; thejob; thejob = thejob->next)
1348 if (thejob->jobid >= pi->jobid)
1349 pi->jobid = thejob->jobid + 1;
1350
1351 /* add thejob to the list of running jobs */
1352 if (!job_list) {
1353 thejob = job_list = xmalloc(sizeof(*thejob));
1354 } else {
1355 for (thejob = job_list; thejob->next; thejob = thejob->next) /* nothing */;
1356 thejob->next = xmalloc(sizeof(*thejob));
1357 thejob = thejob->next;
1358 }
1359
1360 /* physically copy the struct job */
1361 memcpy(thejob, pi, sizeof(struct pipe));
1362 thejob->next = NULL;
1363 thejob->running_progs = thejob->num_progs;
1364 thejob->stopped_progs = 0;
1365 thejob->text = xmalloc(BUFSIZ); /* cmdedit buffer size */
1366
1367 /*if (pi->progs[0] && pi->progs[0].argv && pi->progs[0].argv[0]) */
1368 {
1369 char *bar=thejob->text;
1370 char **foo=pi->progs[0].argv;
1371 while(foo && *foo) {
1372 bar += sprintf(bar, "%s ", *foo++);
1373 }
1374 }
1375
1376 /* we don't wait for background thejobs to return -- append it
1377 to the list of backgrounded thejobs and leave it alone */
1378 printf("[%d] %d\n", thejob->jobid, thejob->progs[0].pid);
1379 last_bg_pid = thejob->progs[0].pid;
1380 last_jobid = thejob->jobid;
1381}
1382
1383/* remove a backgrounded job */
1384static void remove_bg_job(struct pipe *pi)
1385{
1386 struct pipe *prev_pipe;
1387
1388 if (pi == job_list) {
1389 job_list = pi->next;
1390 } else {
1391 prev_pipe = job_list;
1392 while (prev_pipe->next != pi)
1393 prev_pipe = prev_pipe->next;
1394 prev_pipe->next = pi->next;
1395 }
1396 if (job_list)
1397 last_jobid = job_list->jobid;
1398 else
1399 last_jobid = 0;
1400
1401 pi->stopped_progs = 0;
1402 free_pipe(pi, 0);
1403 free(pi);
1404}
1405
1406/* Checks to see if any processes have exited -- if they
1407 have, figure out why and see if a job has completed */
1408static int checkjobs(struct pipe* fg_pipe)
1409{
1410 int attributes;
1411 int status;
1412 int prognum = 0;
1413 struct pipe *pi;
1414 pid_t childpid;
1415
1416 attributes = WUNTRACED;
1417 if (fg_pipe==NULL) {
1418 attributes |= WNOHANG;
1419 }
1420
1421 while ((childpid = waitpid(-1, &status, attributes)) > 0) {
1422 if (fg_pipe) {
1423 int i, rcode = 0;
1424 for (i=0; i < fg_pipe->num_progs; i++) {
1425 if (fg_pipe->progs[i].pid == childpid) {
1426 if (i==fg_pipe->num_progs-1)
1427 rcode=WEXITSTATUS(status);
1428 (fg_pipe->num_progs)--;
1429 return(rcode);
1430 }
1431 }
1432 }
1433
1434 for (pi = job_list; pi; pi = pi->next) {
1435 prognum = 0;
1436 while (prognum < pi->num_progs && pi->progs[prognum].pid != childpid) {
1437 prognum++;
1438 }
1439 if (prognum < pi->num_progs)
1440 break;
1441 }
1442
1443 if(pi==NULL) {
1444 debug_printf("checkjobs: pid %d was not in our list!\n", childpid);
1445 continue;
1446 }
1447
1448 if (WIFEXITED(status) || WIFSIGNALED(status)) {
1449 /* child exited */
1450 pi->running_progs--;
1451 pi->progs[prognum].pid = 0;
1452
1453 if (!pi->running_progs) {
1454 printf(JOB_STATUS_FORMAT, pi->jobid, "Done", pi->text);
1455 remove_bg_job(pi);
1456 }
1457 } else {
1458 /* child stopped */
1459 pi->stopped_progs++;
1460 pi->progs[prognum].is_stopped = 1;
1461
1462#if 0
1463 /* Printing this stuff is a pain, since it tends to
1464 * overwrite the prompt an inconveinient moments. So
1465 * don't do that. */
1466 if (pi->stopped_progs == pi->num_progs) {
1467 printf("\n"JOB_STATUS_FORMAT, pi->jobid, "Stopped", pi->text);
1468 }
1469#endif
1470 }
1471 }
1472
1473 if (childpid == -1 && errno != ECHILD)
1474 perror_msg("waitpid");
1475
1476 /* move the shell to the foreground */
1477 /*if (interactive && tcsetpgrp(shell_terminal, getpgid(0))) */
1478 /* perror_msg("tcsetpgrp-2"); */
1479 return -1;
1480}
1481
1482/* Figure out our controlling tty, checking in order stderr,
1483 * stdin, and stdout. If check_pgrp is set, also check that
1484 * we belong to the foreground process group associated with
1485 * that tty. The value of shell_terminal is needed in order to call
1486 * tcsetpgrp(shell_terminal, ...); */
1487void controlling_tty(int check_pgrp)
1488{
1489 pid_t curpgrp;
1490
1491 if ((curpgrp = tcgetpgrp(shell_terminal = 2)) < 0
1492 && (curpgrp = tcgetpgrp(shell_terminal = 0)) < 0
1493 && (curpgrp = tcgetpgrp(shell_terminal = 1)) < 0)
1494 goto shell_terminal_error;
1495
1496 if (check_pgrp && curpgrp != getpgid(0))
1497 goto shell_terminal_error;
1498
1499 return;
1500
1501shell_terminal_error:
1502 shell_terminal = -1;
1503 return;
1504}
1505#endif
1506
1507/* run_pipe_real() starts all the jobs, but doesn't wait for anything
1508 * to finish. See checkjobs().
1509 *
1510 * return code is normally -1, when the caller has to wait for children
1511 * to finish to determine the exit status of the pipe. If the pipe
1512 * is a simple builtin command, however, the action is done by the
1513 * time run_pipe_real returns, and the exit code is provided as the
1514 * return value.
1515 *
1516 * The input of the pipe is always stdin, the output is always
1517 * stdout. The outpipe[] mechanism in BusyBox-0.48 lash is bogus,
1518 * because it tries to avoid running the command substitution in
1519 * subshell, when that is in fact necessary. The subshell process
1520 * now has its stdout directed to the input of the appropriate pipe,
1521 * so this routine is noticeably simpler.
1522 */
1523static int run_pipe_real(struct pipe *pi)
1524{
1525 int i;
1526#ifndef __U_BOOT__
1527 int nextin, nextout;
1528 int pipefds[2]; /* pipefds[0] is for reading */
1529 struct child_prog *child;
1530 struct built_in_command *x;
1531 char *p;
1532#else
1533 int nextin;
1534 int flag = do_repeat ? CMD_FLAG_REPEAT : 0;
1535 struct child_prog *child;
1536 cmd_tbl_t *cmdtp;
1537 char *p;
1538#endif
1539
1540 nextin = 0;
1541#ifndef __U_BOOT__
1542 pi->pgrp = -1;
1543#endif
1544
1545 /* Check if this is a simple builtin (not part of a pipe).
1546 * Builtins within pipes have to fork anyway, and are handled in
1547 * pseudo_exec. "echo foo | read bar" doesn't work on bash, either.
1548 */
1549 if (pi->num_progs == 1) child = & (pi->progs[0]);
1550#ifndef __U_BOOT__
1551 if (pi->num_progs == 1 && child->group && child->subshell == 0) {
1552 int squirrel[] = {-1, -1, -1};
1553 int rcode;
1554 debug_printf("non-subshell grouping\n");
1555 setup_redirects(child, squirrel);
1556 /* XXX could we merge code with following builtin case,
1557 * by creating a pseudo builtin that calls run_list_real? */
1558 rcode = run_list_real(child->group);
1559 restore_redirects(squirrel);
1560#else
1561 if (pi->num_progs == 1 && child->group) {
1562 int rcode;
1563 debug_printf("non-subshell grouping\n");
1564 rcode = run_list_real(child->group);
1565#endif
1566 return rcode;
1567 } else if (pi->num_progs == 1 && pi->progs[0].argv != NULL) {
1568 for (i=0; is_assignment(child->argv[i]); i++) { /* nothing */ }
1569 if (i!=0 && child->argv[i]==NULL) {
1570 /* assignments, but no command: set the local environment */
1571 for (i=0; child->argv[i]!=NULL; i++) {
1572
1573 /* Ok, this case is tricky. We have to decide if this is a
1574 * local variable, or an already exported variable. If it is
1575 * already exported, we have to export the new value. If it is
1576 * not exported, we need only set this as a local variable.
1577 * This junk is all to decide whether or not to export this
1578 * variable. */
1579 int export_me=0;
1580 char *name, *value;
1581 name = xstrdup(child->argv[i]);
1582 debug_printf("Local environment set: %s\n", name);
1583 value = strchr(name, '=');
1584 if (value)
1585 *value=0;
1586#ifndef __U_BOOT__
1587 if ( get_local_var(name)) {
1588 export_me=1;
1589 }
1590#endif
1591 free(name);
1592 p = insert_var_value(child->argv[i]);
1593 set_local_var(p, export_me);
1594 if (p != child->argv[i]) free(p);
1595 }
1596 return EXIT_SUCCESS; /* don't worry about errors in set_local_var() yet */
1597 }
1598 for (i = 0; is_assignment(child->argv[i]); i++) {
1599 p = insert_var_value(child->argv[i]);
1600#ifndef __U_BOOT__
1601 putenv(strdup(p));
1602#else
1603 set_local_var(p, 0);
1604#endif
1605 if (p != child->argv[i]) {
1606 child->sp--;
1607 free(p);
1608 }
1609 }
1610 if (child->sp) {
1611 char * str = NULL;
1612
1613 str = make_string((child->argv + i));
1614 parse_string_outer(str, FLAG_EXIT_FROM_LOOP | FLAG_REPARSING);
1615 free(str);
1616 return last_return_code;
1617 }
1618#ifndef __U_BOOT__
1619 for (x = bltins; x->cmd; x++) {
1620 if (strcmp(child->argv[i], x->cmd) == 0 ) {
1621 int squirrel[] = {-1, -1, -1};
1622 int rcode;
1623 if (x->function == builtin_exec && child->argv[i+1]==NULL) {
1624 debug_printf("magic exec\n");
1625 setup_redirects(child,NULL);
1626 return EXIT_SUCCESS;
1627 }
1628 debug_printf("builtin inline %s\n", child->argv[0]);
1629 /* XXX setup_redirects acts on file descriptors, not FILEs.
1630 * This is perfect for work that comes after exec().
1631 * Is it really safe for inline use? Experimentally,
1632 * things seem to work with glibc. */
1633 setup_redirects(child, squirrel);
1634#else
1635 /* check ";", because ,example , argv consist from
1636 * "help;flinfo" must not execute
1637 */
1638 if (strchr(child->argv[i], ';')) {
1639 printf ("Unknown command '%s' - try 'help' or use 'run' command\n",
1640 child->argv[i]);
1641 return -1;
1642 }
1643 /* Look up command in command table */
1644 if ((cmdtp = find_cmd(child->argv[i])) == NULL) {
1645 printf ("Unknown command '%s' - try 'help'\n", child->argv[i]);
1646 return -1; /* give up after bad command */
1647 } else {
1648 int rcode;
1649#if (CONFIG_COMMANDS & CFG_CMD_BOOTD)
1650 /* avoid "bootd" recursion */
1651 if (cmdtp->cmd == do_bootd) {
1652 if (flag & CMD_FLAG_BOOTD) {
1653 printf ("'bootd' recursion detected\n");
1654 return -1;
1655 }
1656 else
1657 flag |= CMD_FLAG_BOOTD;
1658 }
1659#endif /* CFG_CMD_BOOTD */
1660 /* found - check max args */
1661 if ((child->argc - i) > cmdtp->maxargs) {
1662 printf ("Usage:\n%s\n", cmdtp->usage);
1663 return -1;
1664 }
1665#endif
1666 child->argv+=i; /* XXX horrible hack */
1667#ifndef __U_BOOT__
1668 rcode = x->function(child);
1669#else
1670 /* OK - call function to do the command */
1671 rcode = (cmdtp->cmd)
1672 (cmdtp, flag,child->argc-i,&child->argv[i]);
1673 if ( !cmdtp->repeatable )
1674 flag_repeat = 0;
1675#endif
1676 child->argv-=i; /* XXX restore hack so free() can work right */
1677#ifndef __U_BOOT__
1678 restore_redirects(squirrel);
1679#endif
1680 return rcode;
1681 }
1682 }
1683#ifndef __U_BOOT__
1684 }
1685
1686 for (i = 0; i < pi->num_progs; i++) {
1687 child = & (pi->progs[i]);
1688
1689 /* pipes are inserted between pairs of commands */
1690 if ((i + 1) < pi->num_progs) {
1691 if (pipe(pipefds)<0) perror_msg_and_die("pipe");
1692 nextout = pipefds[1];
1693 } else {
1694 nextout=1;
1695 pipefds[0] = -1;
1696 }
1697
1698 /* XXX test for failed fork()? */
1699 if (!(child->pid = fork())) {
1700 /* Set the handling for job control signals back to the default. */
1701 signal(SIGINT, SIG_DFL);
1702 signal(SIGQUIT, SIG_DFL);
1703 signal(SIGTERM, SIG_DFL);
1704 signal(SIGTSTP, SIG_DFL);
1705 signal(SIGTTIN, SIG_DFL);
1706 signal(SIGTTOU, SIG_DFL);
1707 signal(SIGCHLD, SIG_DFL);
1708
1709 close_all();
1710
1711 if (nextin != 0) {
1712 dup2(nextin, 0);
1713 close(nextin);
1714 }
1715 if (nextout != 1) {
1716 dup2(nextout, 1);
1717 close(nextout);
1718 }
1719 if (pipefds[0]!=-1) {
1720 close(pipefds[0]); /* opposite end of our output pipe */
1721 }
1722
1723 /* Like bash, explicit redirects override pipes,
1724 * and the pipe fd is available for dup'ing. */
1725 setup_redirects(child,NULL);
1726
1727 if (interactive && pi->followup!=PIPE_BG) {
1728 /* If we (the child) win the race, put ourselves in the process
1729 * group whose leader is the first process in this pipe. */
1730 if (pi->pgrp < 0) {
1731 pi->pgrp = getpid();
1732 }
1733 if (setpgid(0, pi->pgrp) == 0) {
1734 tcsetpgrp(2, pi->pgrp);
1735 }
1736 }
1737
1738 pseudo_exec(child);
1739 }
1740
1741
1742 /* put our child in the process group whose leader is the
1743 first process in this pipe */
1744 if (pi->pgrp < 0) {
1745 pi->pgrp = child->pid;
1746 }
1747 /* Don't check for errors. The child may be dead already,
1748 * in which case setpgid returns error code EACCES. */
1749 setpgid(child->pid, pi->pgrp);
1750
1751 if (nextin != 0)
1752 close(nextin);
1753 if (nextout != 1)
1754 close(nextout);
1755
1756 /* If there isn't another process, nextin is garbage
1757 but it doesn't matter */
1758 nextin = pipefds[0];
1759 }
1760#endif
1761 return -1;
1762}
1763
1764static int run_list_real(struct pipe *pi)
1765{
1766 char *save_name = NULL;
1767 char **list = NULL;
1768 char **save_list = NULL;
1769 struct pipe *rpipe;
1770 int flag_rep = 0;
1771#ifndef __U_BOOT__
1772 int save_num_progs;
1773#endif
1774 int rcode=0, flag_skip=1;
1775 int flag_restore = 0;
1776 int if_code=0, next_if_code=0; /* need double-buffer to handle elif */
1777 reserved_style rmode, skip_more_in_this_rmode=RES_XXXX;
1778 /* check syntax for "for" */
1779 for (rpipe = pi; rpipe; rpipe = rpipe->next) {
1780 if ((rpipe->r_mode == RES_IN ||
1781 rpipe->r_mode == RES_FOR) &&
1782 (rpipe->next == NULL)) {
1783 syntax();
1784#ifdef __U_BOOT__
1785 flag_repeat = 0;
1786#endif
1787 return 1;
1788 }
1789 if ((rpipe->r_mode == RES_IN &&
1790 (rpipe->next->r_mode == RES_IN &&
1791 rpipe->next->progs->argv != NULL))||
1792 (rpipe->r_mode == RES_FOR &&
1793 rpipe->next->r_mode != RES_IN)) {
1794 syntax();
1795#ifdef __U_BOOT__
1796 flag_repeat = 0;
1797#endif
1798 return 1;
1799 }
1800 }
1801 for (; pi; pi = (flag_restore != 0) ? rpipe : pi->next) {
1802 if (pi->r_mode == RES_WHILE || pi->r_mode == RES_UNTIL ||
1803 pi->r_mode == RES_FOR) {
1804#ifdef __U_BOOT__
1805 /* check Ctrl-C */
1806 ctrlc();
1807 if ((had_ctrlc())) {
1808 return 1;
1809 }
1810#endif
1811 flag_restore = 0;
1812 if (!rpipe) {
1813 flag_rep = 0;
1814 rpipe = pi;
1815 }
1816 }
1817 rmode = pi->r_mode;
1818 debug_printf("rmode=%d if_code=%d next_if_code=%d skip_more=%d\n", rmode, if_code, next_if_code, skip_more_in_this_rmode);
1819 if (rmode == skip_more_in_this_rmode && flag_skip) {
1820 if (pi->followup == PIPE_SEQ) flag_skip=0;
1821 continue;
1822 }
1823 flag_skip = 1;
1824 skip_more_in_this_rmode = RES_XXXX;
1825 if (rmode == RES_THEN || rmode == RES_ELSE) if_code = next_if_code;
1826 if (rmode == RES_THEN && if_code) continue;
1827 if (rmode == RES_ELSE && !if_code) continue;
1828 if (rmode == RES_ELIF && !if_code) continue;
1829 if (rmode == RES_FOR && pi->num_progs) {
1830 if (!list) {
1831 /* if no variable values after "in" we skip "for" */
1832 if (!pi->next->progs->argv) continue;
1833 /* create list of variable values */
1834 list = make_list_in(pi->next->progs->argv,
1835 pi->progs->argv[0]);
1836 save_list = list;
1837 save_name = pi->progs->argv[0];
1838 pi->progs->argv[0] = NULL;
1839 flag_rep = 1;
1840 }
1841 if (!(*list)) {
1842 free(pi->progs->argv[0]);
1843 free(save_list);
1844 list = NULL;
1845 flag_rep = 0;
1846 pi->progs->argv[0] = save_name;
1847#ifndef __U_BOOT__
1848 pi->progs->glob_result.gl_pathv[0] =
1849 pi->progs->argv[0];
1850#endif
1851 continue;
1852 } else {
1853 /* insert new value from list for variable */
1854 if (pi->progs->argv[0])
1855 free(pi->progs->argv[0]);
1856 pi->progs->argv[0] = *list++;
1857#ifndef __U_BOOT__
1858 pi->progs->glob_result.gl_pathv[0] =
1859 pi->progs->argv[0];
1860#endif
1861 }
1862 }
1863 if (rmode == RES_IN) continue;
1864 if (rmode == RES_DO) {
1865 if (!flag_rep) continue;
1866 }
1867 if ((rmode == RES_DONE)) {
1868 if (flag_rep) {
1869 flag_restore = 1;
1870 } else {
1871 rpipe = NULL;
1872 }
1873 }
1874 if (pi->num_progs == 0) continue;
1875#ifndef __U_BOOT__
1876 save_num_progs = pi->num_progs; /* save number of programs */
1877#endif
1878 rcode = run_pipe_real(pi);
1879 debug_printf("run_pipe_real returned %d\n",rcode);
1880#ifndef __U_BOOT__
1881 if (rcode!=-1) {
1882 /* We only ran a builtin: rcode was set by the return value
1883 * of run_pipe_real(), and we don't need to wait for anything. */
1884 } else if (pi->followup==PIPE_BG) {
1885 /* XXX check bash's behavior with nontrivial pipes */
1886 /* XXX compute jobid */
1887 /* XXX what does bash do with attempts to background builtins? */
1888 insert_bg_job(pi);
1889 rcode = EXIT_SUCCESS;
1890 } else {
1891 if (interactive) {
1892 /* move the new process group into the foreground */
1893 if (tcsetpgrp(shell_terminal, pi->pgrp) && errno != ENOTTY)
1894 perror_msg("tcsetpgrp-3");
1895 rcode = checkjobs(pi);
1896 /* move the shell to the foreground */
1897 if (tcsetpgrp(shell_terminal, getpgid(0)) && errno != ENOTTY)
1898 perror_msg("tcsetpgrp-4");
1899 } else {
1900 rcode = checkjobs(pi);
1901 }
1902 debug_printf("checkjobs returned %d\n",rcode);
1903 }
1904 last_return_code=rcode;
1905#else
1906 last_return_code=(rcode == 0) ? 0 : 1;
1907#endif
1908#ifndef __U_BOOT__
1909 pi->num_progs = save_num_progs; /* restore number of programs */
1910#endif
1911 if ( rmode == RES_IF || rmode == RES_ELIF )
1912 next_if_code=rcode; /* can be overwritten a number of times */
1913 if (rmode == RES_WHILE)
1914 flag_rep = !last_return_code;
1915 if (rmode == RES_UNTIL)
1916 flag_rep = last_return_code;
1917 if ( (rcode==EXIT_SUCCESS && pi->followup==PIPE_OR) ||
1918 (rcode!=EXIT_SUCCESS && pi->followup==PIPE_AND) )
1919 skip_more_in_this_rmode=rmode;
1920#ifndef __U_BOOT__
1921 checkjobs(NULL);
1922#endif
1923 }
1924 return rcode;
1925}
1926
1927/* broken, of course, but OK for testing */
1928static char *indenter(int i)
1929{
1930 static char blanks[]=" ";
1931 return &blanks[sizeof(blanks)-i-1];
1932}
1933
1934/* return code is the exit status of the pipe */
1935static int free_pipe(struct pipe *pi, int indent)
1936{
1937 char **p;
1938 struct child_prog *child;
1939#ifndef __U_BOOT__
1940 struct redir_struct *r, *rnext;
1941#endif
1942 int a, i, ret_code=0;
1943 char *ind = indenter(indent);
1944
1945#ifndef __U_BOOT__
1946 if (pi->stopped_progs > 0)
1947 return ret_code;
1948 final_printf("%s run pipe: (pid %d)\n",ind,getpid());
1949#endif
1950 for (i=0; i<pi->num_progs; i++) {
1951 child = &pi->progs[i];
1952 final_printf("%s command %d:\n",ind,i);
1953 if (child->argv) {
1954 for (a=0,p=child->argv; *p; a++,p++) {
1955 final_printf("%s argv[%d] = %s\n",ind,a,*p);
1956 }
1957#ifndef __U_BOOT__
1958 globfree(&child->glob_result);
1959#else
1960 for (a = child->argc;a >= 0;a--) {
1961 free(child->argv[a]);
1962 }
1963 free(child->argv);
1964 child->argc = 0;
1965#endif
1966 child->argv=NULL;
1967 } else if (child->group) {
1968#ifndef __U_BOOT__
1969 final_printf("%s begin group (subshell:%d)\n",ind, child->subshell);
1970#endif
1971 ret_code = free_pipe_list(child->group,indent+3);
1972 final_printf("%s end group\n",ind);
1973 } else {
1974 final_printf("%s (nil)\n",ind);
1975 }
1976#ifndef __U_BOOT__
1977 for (r=child->redirects; r; r=rnext) {
1978 final_printf("%s redirect %d%s", ind, r->fd, redir_table[r->type].descrip);
1979 if (r->dup == -1) {
1980 /* guard against the case >$FOO, where foo is unset or blank */
1981 if (r->word.gl_pathv) {
1982 final_printf(" %s\n", *r->word.gl_pathv);
1983 globfree(&r->word);
1984 }
1985 } else {
1986 final_printf("&%d\n", r->dup);
1987 }
1988 rnext=r->next;
1989 free(r);
1990 }
1991 child->redirects=NULL;
1992#endif
1993 }
1994 free(pi->progs); /* children are an array, they get freed all at once */
1995 pi->progs=NULL;
1996 return ret_code;
1997}
1998
1999static int free_pipe_list(struct pipe *head, int indent)
2000{
2001 int rcode=0; /* if list has no members */
2002 struct pipe *pi, *next;
2003 char *ind = indenter(indent);
2004 for (pi=head; pi; pi=next) {
2005 final_printf("%s pipe reserved mode %d\n", ind, pi->r_mode);
2006 rcode = free_pipe(pi, indent);
2007 final_printf("%s pipe followup code %d\n", ind, pi->followup);
2008 next=pi->next;
2009 pi->next=NULL;
2010 free(pi);
2011 }
2012 return rcode;
2013}
2014
2015/* Select which version we will use */
2016static int run_list(struct pipe *pi)
2017{
2018 int rcode=0;
2019#ifndef __U_BOOT__
2020 if (fake_mode==0) {
2021#endif
2022 rcode = run_list_real(pi);
2023#ifndef __U_BOOT__
2024 }
2025#endif
2026 /* free_pipe_list has the side effect of clearing memory
2027 * In the long run that function can be merged with run_list_real,
2028 * but doing that now would hobble the debugging effort. */
2029 free_pipe_list(pi,0);
2030 return rcode;
2031}
2032
2033/* The API for glob is arguably broken. This routine pushes a non-matching
2034 * string into the output structure, removing non-backslashed backslashes.
2035 * If someone can prove me wrong, by performing this function within the
2036 * original glob(3) api, feel free to rewrite this routine into oblivion.
2037 * Return code (0 vs. GLOB_NOSPACE) matches glob(3).
2038 * XXX broken if the last character is '\\', check that before calling.
2039 */
2040#ifndef __U_BOOT__
2041static int globhack(const char *src, int flags, glob_t *pglob)
2042{
2043 int cnt=0, pathc;
2044 const char *s;
2045 char *dest;
2046 for (cnt=1, s=src; s && *s; s++) {
2047 if (*s == '\\') s++;
2048 cnt++;
2049 }
2050 dest = malloc(cnt);
2051 if (!dest) return GLOB_NOSPACE;
2052 if (!(flags & GLOB_APPEND)) {
2053 pglob->gl_pathv=NULL;
2054 pglob->gl_pathc=0;
2055 pglob->gl_offs=0;
2056 pglob->gl_offs=0;
2057 }
2058 pathc = ++pglob->gl_pathc;
2059 pglob->gl_pathv = realloc(pglob->gl_pathv, (pathc+1)*sizeof(*pglob->gl_pathv));
2060 if (pglob->gl_pathv == NULL) return GLOB_NOSPACE;
2061 pglob->gl_pathv[pathc-1]=dest;
2062 pglob->gl_pathv[pathc]=NULL;
2063 for (s=src; s && *s; s++, dest++) {
2064 if (*s == '\\') s++;
2065 *dest = *s;
2066 }
2067 *dest='\0';
2068 return 0;
2069}
2070
2071/* XXX broken if the last character is '\\', check that before calling */
2072static int glob_needed(const char *s)
2073{
2074 for (; *s; s++) {
2075 if (*s == '\\') s++;
2076 if (strchr("*[?",*s)) return 1;
2077 }
2078 return 0;
2079}
2080
2081#if 0
2082static void globprint(glob_t *pglob)
2083{
2084 int i;
2085 debug_printf("glob_t at %p:\n", pglob);
2086 debug_printf(" gl_pathc=%d gl_pathv=%p gl_offs=%d gl_flags=%d\n",
2087 pglob->gl_pathc, pglob->gl_pathv, pglob->gl_offs, pglob->gl_flags);
2088 for (i=0; i<pglob->gl_pathc; i++)
2089 debug_printf("pglob->gl_pathv[%d] = %p = %s\n", i,
2090 pglob->gl_pathv[i], pglob->gl_pathv[i]);
2091}
2092#endif
2093
2094static int xglob(o_string *dest, int flags, glob_t *pglob)
2095{
2096 int gr;
2097
2098 /* short-circuit for null word */
2099 /* we can code this better when the debug_printf's are gone */
2100 if (dest->length == 0) {
2101 if (dest->nonnull) {
2102 /* bash man page calls this an "explicit" null */
2103 gr = globhack(dest->data, flags, pglob);
2104 debug_printf("globhack returned %d\n",gr);
2105 } else {
2106 return 0;
2107 }
2108 } else if (glob_needed(dest->data)) {
2109 gr = glob(dest->data, flags, NULL, pglob);
2110 debug_printf("glob returned %d\n",gr);
2111 if (gr == GLOB_NOMATCH) {
2112 /* quote removal, or more accurately, backslash removal */
2113 gr = globhack(dest->data, flags, pglob);
2114 debug_printf("globhack returned %d\n",gr);
2115 }
2116 } else {
2117 gr = globhack(dest->data, flags, pglob);
2118 debug_printf("globhack returned %d\n",gr);
2119 }
2120 if (gr == GLOB_NOSPACE)
2121 error_msg_and_die("out of memory during glob");
2122 if (gr != 0) { /* GLOB_ABORTED ? */
2123 error_msg("glob(3) error %d",gr);
2124 }
2125 /* globprint(glob_target); */
2126 return gr;
2127}
2128#endif
2129
2130/* This is used to get/check local shell variables */
2131static char *get_local_var(const char *s)
2132{
2133 struct variables *cur;
2134
2135 if (!s)
2136 return NULL;
2137 for (cur = top_vars; cur; cur=cur->next)
2138 if(strcmp(cur->name, s)==0)
2139 return cur->value;
2140 return NULL;
2141}
2142
2143/* This is used to set local shell variables
2144 flg_export==0 if only local (not exporting) variable
2145 flg_export==1 if "new" exporting environ
2146 flg_export>1 if current startup environ (not call putenv()) */
2147static int set_local_var(const char *s, int flg_export)
2148{
2149 char *name, *value;
2150 int result=0;
2151 struct variables *cur;
2152
2153 name=strdup(s);
2154
2155#ifdef __U_BOOT__
2156 if (getenv(name) != NULL) {
2157 printf ("ERROR: "
2158 "There is a global environmet variable with the same name.\n");
2159 return -1;
2160 }
2161#endif
2162 /* Assume when we enter this function that we are already in
2163 * NAME=VALUE format. So the first order of business is to
2164 * split 's' on the '=' into 'name' and 'value' */
2165 value = strchr(name, '=');
2166 if (value==0 && ++value==0) {
2167 free(name);
2168 return -1;
2169 }
2170 *value++ = 0;
2171
2172 for(cur = top_vars; cur; cur = cur->next) {
2173 if(strcmp(cur->name, name)==0)
2174 break;
2175 }
2176
2177 if(cur) {
2178 if(strcmp(cur->value, value)==0) {
2179 if(flg_export>0 && cur->flg_export==0)
2180 cur->flg_export=flg_export;
2181 else
2182 result++;
2183 } else {
2184 if(cur->flg_read_only) {
2185 error_msg("%s: readonly variable", name);
2186 result = -1;
2187 } else {
2188 if(flg_export>0 || cur->flg_export>1)
2189 cur->flg_export=1;
2190 free(cur->value);
2191
2192 cur->value = strdup(value);
2193 }
2194 }
2195 } else {
2196 cur = malloc(sizeof(struct variables));
2197 if(!cur) {
2198 result = -1;
2199 } else {
2200 cur->name = strdup(name);
2201 if(cur->name == 0) {
2202 free(cur);
2203 result = -1;
2204 } else {
2205 struct variables *bottom = top_vars;
2206 cur->value = strdup(value);
2207 cur->next = 0;
2208 cur->flg_export = flg_export;
2209 cur->flg_read_only = 0;
2210 while(bottom->next) bottom=bottom->next;
2211 bottom->next = cur;
2212 }
2213 }
2214 }
2215
2216#ifndef __U_BOOT__
2217 if(result==0 && cur->flg_export==1) {
2218 *(value-1) = '=';
2219 result = putenv(name);
2220 } else {
2221#endif
2222 free(name);
2223#ifndef __U_BOOT__
2224 if(result>0) /* equivalent to previous set */
2225 result = 0;
2226 }
2227#endif
2228 return result;
2229}
2230
2231#ifndef __U_BOOT__
2232static void unset_local_var(const char *name)
2233{
2234 struct variables *cur;
2235
2236 if (name) {
2237 for (cur = top_vars; cur; cur=cur->next) {
2238 if(strcmp(cur->name, name)==0)
2239 break;
2240 }
2241 if(cur!=0) {
2242 struct variables *next = top_vars;
2243 if(cur->flg_read_only) {
2244 error_msg("%s: readonly variable", name);
2245 return;
2246 } else {
2247 if(cur->flg_export)
2248 unsetenv(cur->name);
2249 free(cur->name);
2250 free(cur->value);
2251 while (next->next != cur)
2252 next = next->next;
2253 next->next = cur->next;
2254 }
2255 free(cur);
2256 }
2257 }
2258}
2259#endif
2260
2261static int is_assignment(const char *s)
2262{
2263 if (s==NULL || !isalpha(*s)) return 0;
2264 ++s;
2265 while(isalnum(*s) || *s=='_') ++s;
2266 return *s=='=';
2267}
2268
2269#ifndef __U_BOOT__
2270/* the src parameter allows us to peek forward to a possible &n syntax
2271 * for file descriptor duplication, e.g., "2>&1".
2272 * Return code is 0 normally, 1 if a syntax error is detected in src.
2273 * Resource errors (in xmalloc) cause the process to exit */
2274static int setup_redirect(struct p_context *ctx, int fd, redir_type style,
2275 struct in_str *input)
2276{
2277 struct child_prog *child=ctx->child;
2278 struct redir_struct *redir = child->redirects;
2279 struct redir_struct *last_redir=NULL;
2280
2281 /* Create a new redir_struct and drop it onto the end of the linked list */
2282 while(redir) {
2283 last_redir=redir;
2284 redir=redir->next;
2285 }
2286 redir = xmalloc(sizeof(struct redir_struct));
2287 redir->next=NULL;
2288 redir->word.gl_pathv=NULL;
2289 if (last_redir) {
2290 last_redir->next=redir;
2291 } else {
2292 child->redirects=redir;
2293 }
2294
2295 redir->type=style;
2296 redir->fd= (fd==-1) ? redir_table[style].default_fd : fd ;
2297
2298 debug_printf("Redirect type %d%s\n", redir->fd, redir_table[style].descrip);
2299
2300 /* Check for a '2>&1' type redirect */
2301 redir->dup = redirect_dup_num(input);
2302 if (redir->dup == -2) return 1; /* syntax error */
2303 if (redir->dup != -1) {
2304 /* Erik had a check here that the file descriptor in question
2305 * is legit; I postpone that to "run time"
2306 * A "-" representation of "close me" shows up as a -3 here */
2307 debug_printf("Duplicating redirect '%d>&%d'\n", redir->fd, redir->dup);
2308 } else {
2309 /* We do _not_ try to open the file that src points to,
2310 * since we need to return and let src be expanded first.
2311 * Set ctx->pending_redirect, so we know what to do at the
2312 * end of the next parsed word.
2313 */
2314 ctx->pending_redirect = redir;
2315 }
2316 return 0;
2317}
2318#endif
2319
2320struct pipe *new_pipe(void) {
2321 struct pipe *pi;
2322 pi = xmalloc(sizeof(struct pipe));
2323 pi->num_progs = 0;
2324 pi->progs = NULL;
2325 pi->next = NULL;
2326 pi->followup = 0; /* invalid */
2327 return pi;
2328}
2329
2330static void initialize_context(struct p_context *ctx)
2331{
2332 ctx->pipe=NULL;
2333#ifndef __U_BOOT__
2334 ctx->pending_redirect=NULL;
2335#endif
2336 ctx->child=NULL;
2337 ctx->list_head=new_pipe();
2338 ctx->pipe=ctx->list_head;
2339 ctx->w=RES_NONE;
2340 ctx->stack=NULL;
2341#ifdef __U_BOOT__
2342 ctx->old_flag=0;
2343#endif
2344 done_command(ctx); /* creates the memory for working child */
2345}
2346
2347/* normal return is 0
2348 * if a reserved word is found, and processed, return 1
2349 * should handle if, then, elif, else, fi, for, while, until, do, done.
2350 * case, function, and select are obnoxious, save those for later.
2351 */
2352int reserved_word(o_string *dest, struct p_context *ctx)
2353{
2354 struct reserved_combo {
2355 char *literal;
2356 int code;
2357 long flag;
2358 };
2359 /* Mostly a list of accepted follow-up reserved words.
2360 * FLAG_END means we are done with the sequence, and are ready
2361 * to turn the compound list into a command.
2362 * FLAG_START means the word must start a new compound list.
2363 */
2364 static struct reserved_combo reserved_list[] = {
2365 { "if", RES_IF, FLAG_THEN | FLAG_START },
2366 { "then", RES_THEN, FLAG_ELIF | FLAG_ELSE | FLAG_FI },
2367 { "elif", RES_ELIF, FLAG_THEN },
2368 { "else", RES_ELSE, FLAG_FI },
2369 { "fi", RES_FI, FLAG_END },
2370 { "for", RES_FOR, FLAG_IN | FLAG_START },
2371 { "while", RES_WHILE, FLAG_DO | FLAG_START },
2372 { "until", RES_UNTIL, FLAG_DO | FLAG_START },
2373 { "in", RES_IN, FLAG_DO },
2374 { "do", RES_DO, FLAG_DONE },
2375 { "done", RES_DONE, FLAG_END }
2376 };
2377 struct reserved_combo *r;
2378 for (r=reserved_list;
2379#define NRES sizeof(reserved_list)/sizeof(struct reserved_combo)
2380 r<reserved_list+NRES; r++) {
2381 if (strcmp(dest->data, r->literal) == 0) {
2382 debug_printf("found reserved word %s, code %d\n",r->literal,r->code);
2383 if (r->flag & FLAG_START) {
2384 struct p_context *new = xmalloc(sizeof(struct p_context));
2385 debug_printf("push stack\n");
2386 if (ctx->w == RES_IN || ctx->w == RES_FOR) {
2387 syntax();
2388 free(new);
2389 ctx->w = RES_SNTX;
2390 b_reset(dest);
2391 return 1;
2392 }
2393 *new = *ctx; /* physical copy */
2394 initialize_context(ctx);
2395 ctx->stack=new;
2396 } else if ( ctx->w == RES_NONE || ! (ctx->old_flag & (1<<r->code))) {
2397 syntax();
2398 ctx->w = RES_SNTX;
2399 b_reset(dest);
2400 return 1;
2401 }
2402 ctx->w=r->code;
2403 ctx->old_flag = r->flag;
2404 if (ctx->old_flag & FLAG_END) {
2405 struct p_context *old;
2406 debug_printf("pop stack\n");
2407 done_pipe(ctx,PIPE_SEQ);
2408 old = ctx->stack;
2409 old->child->group = ctx->list_head;
2410#ifndef __U_BOOT__
2411 old->child->subshell = 0;
2412#endif
2413 *ctx = *old; /* physical copy */
2414 free(old);
2415 }
2416 b_reset (dest);
2417 return 1;
2418 }
2419 }
2420 return 0;
2421}
2422
2423/* normal return is 0.
2424 * Syntax or xglob errors return 1. */
2425static int done_word(o_string *dest, struct p_context *ctx)
2426{
2427 struct child_prog *child=ctx->child;
2428#ifndef __U_BOOT__
2429 glob_t *glob_target;
2430 int gr, flags = 0;
2431#else
2432 char *str, *s;
2433 int argc, cnt;
2434#endif
2435
2436 debug_printf("done_word: %s %p\n", dest->data, child);
2437 if (dest->length == 0 && !dest->nonnull) {
2438 debug_printf(" true null, ignored\n");
2439 return 0;
2440 }
2441#ifndef __U_BOOT__
2442 if (ctx->pending_redirect) {
2443 glob_target = &ctx->pending_redirect->word;
2444 } else {
2445#endif
2446 if (child->group) {
2447 syntax();
2448 return 1; /* syntax error, groups and arglists don't mix */
2449 }
2450 if (!child->argv && (ctx->type & FLAG_PARSE_SEMICOLON)) {
2451 debug_printf("checking %s for reserved-ness\n",dest->data);
2452 if (reserved_word(dest,ctx)) return ctx->w==RES_SNTX;
2453 }
2454#ifndef __U_BOOT__
2455 glob_target = &child->glob_result;
2456 if (child->argv) flags |= GLOB_APPEND;
2457#else
2458 for (cnt = 1, s = dest->data; s && *s; s++) {
2459 if (*s == '\\') s++;
2460 cnt++;
2461 }
2462 str = malloc(cnt);
2463 if (!str) return 1;
2464 if ( child->argv == NULL) {
2465 child->argc=0;
2466 }
2467 argc = ++child->argc;
2468 child->argv = realloc(child->argv, (argc+1)*sizeof(*child->argv));
2469 if (child->argv == NULL) return 1;
2470 child->argv[argc-1]=str;
2471 child->argv[argc]=NULL;
2472 for (s = dest->data; s && *s; s++,str++) {
2473 if (*s == '\\') s++;
2474 *str = *s;
2475 }
2476 *str = '\0';
2477#endif
2478#ifndef __U_BOOT__
2479 }
2480 gr = xglob(dest, flags, glob_target);
2481 if (gr != 0) return 1;
2482#endif
2483
2484 b_reset(dest);
2485#ifndef __U_BOOT__
2486 if (ctx->pending_redirect) {
2487 ctx->pending_redirect=NULL;
2488 if (glob_target->gl_pathc != 1) {
2489 error_msg("ambiguous redirect");
2490 return 1;
2491 }
2492 } else {
2493 child->argv = glob_target->gl_pathv;
2494 }
2495#endif
2496 if (ctx->w == RES_FOR) {
2497 done_word(dest,ctx);
2498 done_pipe(ctx,PIPE_SEQ);
2499 }
2500 return 0;
2501}
2502
2503/* The only possible error here is out of memory, in which case
2504 * xmalloc exits. */
2505static int done_command(struct p_context *ctx)
2506{
2507 /* The child is really already in the pipe structure, so
2508 * advance the pipe counter and make a new, null child.
2509 * Only real trickiness here is that the uncommitted
2510 * child structure, to which ctx->child points, is not
2511 * counted in pi->num_progs. */
2512 struct pipe *pi=ctx->pipe;
2513 struct child_prog *prog=ctx->child;
2514
2515 if (prog && prog->group == NULL
2516 && prog->argv == NULL
2517#ifndef __U_BOOT__
2518 && prog->redirects == NULL) {
2519#else
2520 ) {
2521#endif
2522 debug_printf("done_command: skipping null command\n");
2523 return 0;
2524 } else if (prog) {
2525 pi->num_progs++;
2526 debug_printf("done_command: num_progs incremented to %d\n",pi->num_progs);
2527 } else {
2528 debug_printf("done_command: initializing\n");
2529 }
2530 pi->progs = xrealloc(pi->progs, sizeof(*pi->progs) * (pi->num_progs+1));
2531
2532 prog = pi->progs + pi->num_progs;
2533#ifndef __U_BOOT__
2534 prog->redirects = NULL;
2535#endif
2536 prog->argv = NULL;
2537#ifndef __U_BOOT__
2538 prog->is_stopped = 0;
2539#endif
2540 prog->group = NULL;
2541#ifndef __U_BOOT__
2542 prog->glob_result.gl_pathv = NULL;
2543 prog->family = pi;
2544#endif
2545 prog->sp = 0;
2546 ctx->child = prog;
2547 prog->type = ctx->type;
2548
2549 /* but ctx->pipe and ctx->list_head remain unchanged */
2550 return 0;
2551}
2552
2553static int done_pipe(struct p_context *ctx, pipe_style type)
2554{
2555 struct pipe *new_p;
2556 done_command(ctx); /* implicit closure of previous command */
2557 debug_printf("done_pipe, type %d\n", type);
2558 ctx->pipe->followup = type;
2559 ctx->pipe->r_mode = ctx->w;
2560 new_p=new_pipe();
2561 ctx->pipe->next = new_p;
2562 ctx->pipe = new_p;
2563 ctx->child = NULL;
2564 done_command(ctx); /* set up new pipe to accept commands */
2565 return 0;
2566}
2567
2568#ifndef __U_BOOT__
2569/* peek ahead in the in_str to find out if we have a "&n" construct,
2570 * as in "2>&1", that represents duplicating a file descriptor.
2571 * returns either -2 (syntax error), -1 (no &), or the number found.
2572 */
2573static int redirect_dup_num(struct in_str *input)
2574{
2575 int ch, d=0, ok=0;
2576 ch = b_peek(input);
2577 if (ch != '&') return -1;
2578
2579 b_getch(input); /* get the & */
2580 ch=b_peek(input);
2581 if (ch == '-') {
2582 b_getch(input);
2583 return -3; /* "-" represents "close me" */
2584 }
2585 while (isdigit(ch)) {
2586 d = d*10+(ch-'0');
2587 ok=1;
2588 b_getch(input);
2589 ch = b_peek(input);
2590 }
2591 if (ok) return d;
2592
2593 error_msg("ambiguous redirect");
2594 return -2;
2595}
2596
2597/* If a redirect is immediately preceded by a number, that number is
2598 * supposed to tell which file descriptor to redirect. This routine
2599 * looks for such preceding numbers. In an ideal world this routine
2600 * needs to handle all the following classes of redirects...
2601 * echo 2>foo # redirects fd 2 to file "foo", nothing passed to echo
2602 * echo 49>foo # redirects fd 49 to file "foo", nothing passed to echo
2603 * echo -2>foo # redirects fd 1 to file "foo", "-2" passed to echo
2604 * echo 49x>foo # redirects fd 1 to file "foo", "49x" passed to echo
2605 * A -1 output from this program means no valid number was found, so the
2606 * caller should use the appropriate default for this redirection.
2607 */
2608static int redirect_opt_num(o_string *o)
2609{
2610 int num;
2611
2612 if (o->length==0) return -1;
2613 for(num=0; num<o->length; num++) {
2614 if (!isdigit(*(o->data+num))) {
2615 return -1;
2616 }
2617 }
2618 /* reuse num (and save an int) */
2619 num=atoi(o->data);
2620 b_reset(o);
2621 return num;
2622}
2623
2624FILE *generate_stream_from_list(struct pipe *head)
2625{
2626 FILE *pf;
2627#if 1
2628 int pid, channel[2];
2629 if (pipe(channel)<0) perror_msg_and_die("pipe");
2630 pid=fork();
2631 if (pid<0) {
2632 perror_msg_and_die("fork");
2633 } else if (pid==0) {
2634 close(channel[0]);
2635 if (channel[1] != 1) {
2636 dup2(channel[1],1);
2637 close(channel[1]);
2638 }
2639#if 0
2640#define SURROGATE "surrogate response"
2641 write(1,SURROGATE,sizeof(SURROGATE));
2642 _exit(run_list(head));
2643#else
2644 _exit(run_list_real(head)); /* leaks memory */
2645#endif
2646 }
2647 debug_printf("forked child %d\n",pid);
2648 close(channel[1]);
2649 pf = fdopen(channel[0],"r");
2650 debug_printf("pipe on FILE *%p\n",pf);
2651#else
2652 free_pipe_list(head,0);
2653 pf=popen("echo surrogate response","r");
2654 debug_printf("started fake pipe on FILE *%p\n",pf);
2655#endif
2656 return pf;
2657}
2658
2659/* this version hacked for testing purposes */
2660/* return code is exit status of the process that is run. */
2661static int process_command_subs(o_string *dest, struct p_context *ctx, struct in_str *input, int subst_end)
2662{
2663 int retcode;
2664 o_string result=NULL_O_STRING;
2665 struct p_context inner;
2666 FILE *p;
2667 struct in_str pipe_str;
2668 initialize_context(&inner);
2669
2670 /* recursion to generate command */
2671 retcode = parse_stream(&result, &inner, input, subst_end);
2672 if (retcode != 0) return retcode; /* syntax error or EOF */
2673 done_word(&result, &inner);
2674 done_pipe(&inner, PIPE_SEQ);
2675 b_free(&result);
2676
2677 p=generate_stream_from_list(inner.list_head);
2678 if (p==NULL) return 1;
2679 mark_open(fileno(p));
2680 setup_file_in_str(&pipe_str, p);
2681
2682 /* now send results of command back into original context */
2683 retcode = parse_stream(dest, ctx, &pipe_str, '\0');
2684 /* XXX In case of a syntax error, should we try to kill the child?
2685 * That would be tough to do right, so just read until EOF. */
2686 if (retcode == 1) {
2687 while (b_getch(&pipe_str)!=EOF) { /* discard */ };
2688 }
2689
2690 debug_printf("done reading from pipe, pclose()ing\n");
2691 /* This is the step that wait()s for the child. Should be pretty
2692 * safe, since we just read an EOF from its stdout. We could try
2693 * to better, by using wait(), and keeping track of background jobs
2694 * at the same time. That would be a lot of work, and contrary
2695 * to the KISS philosophy of this program. */
2696 mark_closed(fileno(p));
2697 retcode=pclose(p);
2698 free_pipe_list(inner.list_head,0);
2699 debug_printf("pclosed, retcode=%d\n",retcode);
2700 /* XXX this process fails to trim a single trailing newline */
2701 return retcode;
2702}
2703
2704static int parse_group(o_string *dest, struct p_context *ctx,
2705 struct in_str *input, int ch)
2706{
2707 int rcode, endch=0;
2708 struct p_context sub;
2709 struct child_prog *child = ctx->child;
2710 if (child->argv) {
2711 syntax();
2712 return 1; /* syntax error, groups and arglists don't mix */
2713 }
2714 initialize_context(&sub);
2715 switch(ch) {
2716 case '(': endch=')'; child->subshell=1; break;
2717 case '{': endch='}'; break;
2718 default: syntax(); /* really logic error */
2719 }
2720 rcode=parse_stream(dest,&sub,input,endch);
2721 done_word(dest,&sub); /* finish off the final word in the subcontext */
2722 done_pipe(&sub, PIPE_SEQ); /* and the final command there, too */
2723 child->group = sub.list_head;
2724 return rcode;
2725 /* child remains "open", available for possible redirects */
2726}
2727#endif
2728
2729/* basically useful version until someone wants to get fancier,
2730 * see the bash man page under "Parameter Expansion" */
2731static char *lookup_param(char *src)
2732{
2733 char *p=NULL;
2734 if (src) {
2735 p = getenv(src);
2736 if (!p)
2737 p = get_local_var(src);
2738 }
2739 return p;
2740}
2741
2742/* return code: 0 for OK, 1 for syntax error */
2743static int handle_dollar(o_string *dest, struct p_context *ctx, struct in_str *input)
2744{
2745#ifndef __U_BOOT__
2746 int i, advance=0;
2747#else
2748 int advance=0;
2749#endif
2750#ifndef __U_BOOT__
2751 char sep[]=" ";
2752#endif
2753 int ch = input->peek(input); /* first character after the $ */
2754 debug_printf("handle_dollar: ch=%c\n",ch);
2755 if (isalpha(ch)) {
2756 b_addchr(dest, SPECIAL_VAR_SYMBOL);
2757 ctx->child->sp++;
2758 while(ch=b_peek(input),isalnum(ch) || ch=='_') {
2759 b_getch(input);
2760 b_addchr(dest,ch);
2761 }
2762 b_addchr(dest, SPECIAL_VAR_SYMBOL);
2763#ifndef __U_BOOT__
2764 } else if (isdigit(ch)) {
2765 i = ch-'0'; /* XXX is $0 special? */
2766 if (i<global_argc) {
2767 parse_string(dest, ctx, global_argv[i]); /* recursion */
2768 }
2769 advance = 1;
2770#endif
2771 } else switch (ch) {
2772#ifndef __U_BOOT__
2773 case '$':
2774 b_adduint(dest,getpid());
2775 advance = 1;
2776 break;
2777 case '!':
2778 if (last_bg_pid > 0) b_adduint(dest, last_bg_pid);
2779 advance = 1;
2780 break;
2781#endif
2782 case '?':
2783 b_adduint(dest,last_return_code);
2784 advance = 1;
2785 break;
2786#ifndef __U_BOOT__
2787 case '#':
2788 b_adduint(dest,global_argc ? global_argc-1 : 0);
2789 advance = 1;
2790 break;
2791#endif
2792 case '{':
2793 b_addchr(dest, SPECIAL_VAR_SYMBOL);
2794 ctx->child->sp++;
2795 b_getch(input);
2796 /* XXX maybe someone will try to escape the '}' */
2797 while(ch=b_getch(input),ch!=EOF && ch!='}') {
2798 b_addchr(dest,ch);
2799 }
2800 if (ch != '}') {
2801 syntax();
2802 return 1;
2803 }
2804 b_addchr(dest, SPECIAL_VAR_SYMBOL);
2805 break;
2806#ifndef __U_BOOT__
2807 case '(':
2808 b_getch(input);
2809 process_command_subs(dest, ctx, input, ')');
2810 break;
2811 case '*':
2812 sep[0]=ifs[0];
2813 for (i=1; i<global_argc; i++) {
2814 parse_string(dest, ctx, global_argv[i]);
2815 if (i+1 < global_argc) parse_string(dest, ctx, sep);
2816 }
2817 break;
2818 case '@':
2819 case '-':
2820 case '_':
2821 /* still unhandled, but should be eventually */
2822 error_msg("unhandled syntax: $%c",ch);
2823 return 1;
2824 break;
2825#endif
2826 default:
2827 b_addqchr(dest,'$',dest->quote);
2828 }
2829 /* Eat the character if the flag was set. If the compiler
2830 * is smart enough, we could substitute "b_getch(input);"
2831 * for all the "advance = 1;" above, and also end up with
2832 * a nice size-optimized program. Hah! That'll be the day.
2833 */
2834 if (advance) b_getch(input);
2835 return 0;
2836}
2837
2838#ifndef __U_BOOT__
2839int parse_string(o_string *dest, struct p_context *ctx, const char *src)
2840{
2841 struct in_str foo;
2842 setup_string_in_str(&foo, src);
2843 return parse_stream(dest, ctx, &foo, '\0');
2844}
2845#endif
2846
2847/* return code is 0 for normal exit, 1 for syntax error */
2848int parse_stream(o_string *dest, struct p_context *ctx,
2849 struct in_str *input, int end_trigger)
2850{
2851 unsigned int ch, m;
2852#ifndef __U_BOOT__
2853 int redir_fd;
2854 redir_type redir_style;
2855#endif
2856 int next;
2857
2858 /* Only double-quote state is handled in the state variable dest->quote.
2859 * A single-quote triggers a bypass of the main loop until its mate is
2860 * found. When recursing, quote state is passed in via dest->quote. */
2861
2862 debug_printf("parse_stream, end_trigger=%d\n",end_trigger);
2863 while ((ch=b_getch(input))!=EOF) {
2864 m = map[ch];
2865#ifdef __U_BOOT__
2866 if (input->__promptme == 0) return 1;
2867#endif
2868 next = (ch == '\n') ? 0 : b_peek(input);
2869 debug_printf("parse_stream: ch=%c (%d) m=%d quote=%d\n",
2870 ch,ch,m,dest->quote);
2871 if (m==0 || ((m==1 || m==2) && dest->quote)) {
2872 b_addqchr(dest, ch, dest->quote);
2873 } else {
2874 if (m==2) { /* unquoted IFS */
2875 if (done_word(dest, ctx)) {
2876 return 1;
2877 }
2878 /* If we aren't performing a substitution, treat a newline as a
2879 * command separator. */
2880 if (end_trigger != '\0' && ch=='\n')
2881 done_pipe(ctx,PIPE_SEQ);
2882 }
2883 if (ch == end_trigger && !dest->quote && ctx->w==RES_NONE) {
2884 debug_printf("leaving parse_stream (triggered)\n");
2885 return 0;
2886 }
2887#if 0
2888 if (ch=='\n') {
2889 /* Yahoo! Time to run with it! */
2890 done_pipe(ctx,PIPE_SEQ);
2891 run_list(ctx->list_head);
2892 initialize_context(ctx);
2893 }
2894#endif
2895 if (m!=2) switch (ch) {
2896 case '#':
2897 if (dest->length == 0 && !dest->quote) {
2898 while(ch=b_peek(input),ch!=EOF && ch!='\n') { b_getch(input); }
2899 } else {
2900 b_addqchr(dest, ch, dest->quote);
2901 }
2902 break;
2903 case '\\':
2904 if (next == EOF) {
2905 syntax();
2906 return 1;
2907 }
2908 b_addqchr(dest, '\\', dest->quote);
2909 b_addqchr(dest, b_getch(input), dest->quote);
2910 break;
2911 case '$':
2912 if (handle_dollar(dest, ctx, input)!=0) return 1;
2913 break;
2914 case '\'':
2915 dest->nonnull = 1;
2916 while(ch=b_getch(input),ch!=EOF && ch!='\'') {
2917#ifdef __U_BOOT__
2918 if(input->__promptme == 0) return 1;
2919#endif
2920 b_addchr(dest,ch);
2921 }
2922 if (ch==EOF) {
2923 syntax();
2924 return 1;
2925 }
2926 break;
2927 case '"':
2928 dest->nonnull = 1;
2929 dest->quote = !dest->quote;
2930 break;
2931#ifndef __U_BOOT__
2932 case '`':
2933 process_command_subs(dest, ctx, input, '`');
2934 break;
2935 case '>':
2936 redir_fd = redirect_opt_num(dest);
2937 done_word(dest, ctx);
2938 redir_style=REDIRECT_OVERWRITE;
2939 if (next == '>') {
2940 redir_style=REDIRECT_APPEND;
2941 b_getch(input);
2942 } else if (next == '(') {
2943 syntax(); /* until we support >(list) Process Substitution */
2944 return 1;
2945 }
2946 setup_redirect(ctx, redir_fd, redir_style, input);
2947 break;
2948 case '<':
2949 redir_fd = redirect_opt_num(dest);
2950 done_word(dest, ctx);
2951 redir_style=REDIRECT_INPUT;
2952 if (next == '<') {
2953 redir_style=REDIRECT_HEREIS;
2954 b_getch(input);
2955 } else if (next == '>') {
2956 redir_style=REDIRECT_IO;
2957 b_getch(input);
2958 } else if (next == '(') {
2959 syntax(); /* until we support <(list) Process Substitution */
2960 return 1;
2961 }
2962 setup_redirect(ctx, redir_fd, redir_style, input);
2963 break;
2964#endif
2965 case ';':
2966 done_word(dest, ctx);
2967 done_pipe(ctx,PIPE_SEQ);
2968 break;
2969 case '&':
2970 done_word(dest, ctx);
2971 if (next=='&') {
2972 b_getch(input);
2973 done_pipe(ctx,PIPE_AND);
2974 } else {
2975#ifndef __U_BOOT__
2976 done_pipe(ctx,PIPE_BG);
2977#else
2978 syntax_err();
2979 return 1;
2980#endif
2981 }
2982 break;
2983 case '|':
2984 done_word(dest, ctx);
2985 if (next=='|') {
2986 b_getch(input);
2987 done_pipe(ctx,PIPE_OR);
2988 } else {
2989 /* we could pick up a file descriptor choice here
2990 * with redirect_opt_num(), but bash doesn't do it.
2991 * "echo foo 2| cat" yields "foo 2". */
2992#ifndef __U_BOOT__
2993 done_command(ctx);
2994#else
2995 syntax_err();
2996 return 1;
2997#endif
2998 }
2999 break;
3000#ifndef __U_BOOT__
3001 case '(':
3002 case '{':
3003 if (parse_group(dest, ctx, input, ch)!=0) return 1;
3004 break;
3005 case ')':
3006 case '}':
3007 syntax(); /* Proper use of this character caught by end_trigger */
3008 return 1;
3009 break;
3010#endif
3011 default:
3012 syntax(); /* this is really an internal logic error */
3013 return 1;
3014 }
3015 }
3016 }
3017 /* complain if quote? No, maybe we just finished a command substitution
3018 * that was quoted. Example:
3019 * $ echo "`cat foo` plus more"
3020 * and we just got the EOF generated by the subshell that ran "cat foo"
3021 * The only real complaint is if we got an EOF when end_trigger != '\0',
3022 * that is, we were really supposed to get end_trigger, and never got
3023 * one before the EOF. Can't use the standard "syntax error" return code,
3024 * so that parse_stream_outer can distinguish the EOF and exit smoothly. */
3025 debug_printf("leaving parse_stream (EOF)\n");
3026 if (end_trigger != '\0') return -1;
3027 return 0;
3028}
3029
3030void mapset(const unsigned char *set, int code)
3031{
3032 const unsigned char *s;
3033 for (s=set; *s; s++) map[*s] = code;
3034}
3035
3036void update_ifs_map(void)
3037{
3038 /* char *ifs and char map[256] are both globals. */
3039 ifs = getenv("IFS");
3040 if (ifs == NULL) ifs=" \t\n";
3041 /* Precompute a list of 'flow through' behavior so it can be treated
3042 * quickly up front. Computation is necessary because of IFS.
3043 * Special case handling of IFS == " \t\n" is not implemented.
3044 * The map[] array only really needs two bits each, and on most machines
3045 * that would be faster because of the reduced L1 cache footprint.
3046 */
3047 memset(map,0,sizeof(map)); /* most characters flow through always */
3048#ifndef __U_BOOT__
3049 mapset("\\$'\"`", 3); /* never flow through */
3050 mapset("<>;&|(){}#", 1); /* flow through if quoted */
3051#else
3052 mapset("\\$'\"", 3); /* never flow through */
3053 mapset(";&|#", 1); /* flow through if quoted */
3054#endif
3055 mapset(ifs, 2); /* also flow through if quoted */
3056}
3057
3058/* most recursion does not come through here, the exeception is
3059 * from builtin_source() */
3060int parse_stream_outer(struct in_str *inp, int flag)
3061{
3062
3063 struct p_context ctx;
3064 o_string temp=NULL_O_STRING;
3065 int rcode;
3066#ifdef __U_BOOT__
3067 int code = 0;
3068#endif
3069 do {
3070 ctx.type = flag;
3071 initialize_context(&ctx);
3072 update_ifs_map();
3073 if (!(flag & FLAG_PARSE_SEMICOLON) || (flag & FLAG_REPARSING)) mapset(";$&|", 0);
3074 inp->promptmode=1;
3075 rcode = parse_stream(&temp, &ctx, inp, '\n');
3076#ifdef __U_BOOT__
3077 if (rcode == 1) flag_repeat = 0;
3078#endif
3079 if (rcode != 1 && ctx.old_flag != 0) {
3080 syntax();
3081#ifdef __U_BOOT__
3082 flag_repeat = 0;
3083#endif
3084 }
3085 if (rcode != 1 && ctx.old_flag == 0) {
3086 done_word(&temp, &ctx);
3087 done_pipe(&ctx,PIPE_SEQ);
3088#ifndef __U_BOOT__
3089 run_list(ctx.list_head);
3090#else
3091 if (((code = run_list(ctx.list_head)) == -1))
3092 flag_repeat = 0;
3093#endif
3094 } else {
3095 if (ctx.old_flag != 0) {
3096 free(ctx.stack);
3097 b_reset(&temp);
3098 }
3099#ifdef __U_BOOT__
3100 if (inp->__promptme == 0) printf("<INTERRUPT>\n");
3101 inp->__promptme = 1;
3102#endif
3103 temp.nonnull = 0;
3104 temp.quote = 0;
3105 inp->p = NULL;
3106 free_pipe_list(ctx.list_head,0);
3107 }
3108 b_free(&temp);
3109 } while (rcode != -1 && !(flag & FLAG_EXIT_FROM_LOOP)); /* loop on syntax errors, return on EOF */
3110#ifndef __U_BOOT__
3111 return 0;
3112#else
3113 return (code != 0) ? 1 : 0;
3114#endif /* __U_BOOT__ */
3115}
3116
3117#ifndef __U_BOOT__
3118static int parse_string_outer(const char *s, int flag)
3119#else
3120int parse_string_outer(char *s, int flag)
3121#endif /* __U_BOOT__ */
3122{
3123 struct in_str input;
3124#ifdef __U_BOOT__
3125 char *p = NULL;
3126 int rcode;
3127 if ( !s || !*s)
3128 return 1;
3129 if (!(p = strchr(s, '\n')) || *++p) {
3130 p = xmalloc(strlen(s) + 2);
3131 strcpy(p, s);
3132 strcat(p, "\n");
3133 setup_string_in_str(&input, p);
3134 rcode = parse_stream_outer(&input, flag);
3135 free(p);
3136 return rcode;
3137 } else {
3138#endif
3139 setup_string_in_str(&input, s);
3140 return parse_stream_outer(&input, flag);
3141#ifdef __U_BOOT__
3142 }
3143#endif
3144}
3145
3146#ifndef __U_BOOT__
3147static int parse_file_outer(FILE *f)
3148#else
3149int parse_file_outer(void)
3150#endif
3151{
3152 int rcode;
3153 struct in_str input;
3154#ifndef __U_BOOT__
3155 setup_file_in_str(&input, f);
3156#else
3157 setup_file_in_str(&input);
3158#endif
3159 rcode = parse_stream_outer(&input, FLAG_PARSE_SEMICOLON);
3160 return rcode;
3161}
3162
3163#ifdef __U_BOOT__
3164int u_boot_hush_start(void)
3165{
3166 top_vars = malloc(sizeof(struct variables));
3167 top_vars->name = "HUSH_VERSION";
3168 top_vars->value = "0.01";
3169 top_vars->next = 0;
3170 top_vars->flg_export = 0;
3171 top_vars->flg_read_only = 1;
3172 return 0;
3173}
3174
3175static void *xmalloc(size_t size)
3176{
3177 void *p = NULL;
3178
3179 if (!(p = malloc(size))) {
3180 printf("ERROR : memory not allocated\n");
3181 for(;;);
3182 }
3183 return p;
3184}
3185
3186static void *xrealloc(void *ptr, size_t size)
3187{
3188 void *p = NULL;
3189
3190 if (!(p = realloc(ptr, size))) {
3191 printf("ERROR : memory not allocated\n");
3192 for(;;);
3193 }
3194 return p;
3195}
3196#endif /* __U_BOOT__ */
3197
3198#ifndef __U_BOOT__
3199/* Make sure we have a controlling tty. If we get started under a job
3200 * aware app (like bash for example), make sure we are now in charge so
3201 * we don't fight over who gets the foreground */
3202static void setup_job_control()
3203{
3204 static pid_t shell_pgrp;
3205 /* Loop until we are in the foreground. */
3206 while (tcgetpgrp (shell_terminal) != (shell_pgrp = getpgrp ()))
3207 kill (- shell_pgrp, SIGTTIN);
3208
3209 /* Ignore interactive and job-control signals. */
3210 signal(SIGINT, SIG_IGN);
3211 signal(SIGQUIT, SIG_IGN);
3212 signal(SIGTERM, SIG_IGN);
3213 signal(SIGTSTP, SIG_IGN);
3214 signal(SIGTTIN, SIG_IGN);
3215 signal(SIGTTOU, SIG_IGN);
3216 signal(SIGCHLD, SIG_IGN);
3217
3218 /* Put ourselves in our own process group. */
3219 setsid();
3220 shell_pgrp = getpid ();
3221 setpgid (shell_pgrp, shell_pgrp);
3222
3223 /* Grab control of the terminal. */
3224 tcsetpgrp(shell_terminal, shell_pgrp);
3225}
3226
3227int hush_main(int argc, char **argv)
3228{
3229 int opt;
3230 FILE *input;
3231 char **e = environ;
3232
3233 /* XXX what should these be while sourcing /etc/profile? */
3234 global_argc = argc;
3235 global_argv = argv;
3236
3237 /* (re?) initialize globals. Sometimes hush_main() ends up calling
3238 * hush_main(), therefore we cannot rely on the BSS to zero out this
3239 * stuff. Reset these to 0 every time. */
3240 ifs = NULL;
3241 /* map[] is taken care of with call to update_ifs_map() */
3242 fake_mode = 0;
3243 interactive = 0;
3244 close_me_head = NULL;
3245 last_bg_pid = 0;
3246 job_list = NULL;
3247 last_jobid = 0;
3248
3249 /* Initialize some more globals to non-zero values */
3250 set_cwd();
3251#ifdef BB_FEATURE_COMMAND_EDITING
3252 cmdedit_set_initial_prompt();
3253#else
3254 PS1 = NULL;
3255#endif
3256 PS2 = "> ";
3257
3258 /* initialize our shell local variables with the values
3259 * currently living in the environment */
3260 if (e) {
3261 for (; *e; e++)
3262 set_local_var(*e, 2); /* without call putenv() */
3263 }
3264
3265 last_return_code=EXIT_SUCCESS;
3266
3267
3268 if (argv[0] && argv[0][0] == '-') {
3269 debug_printf("\nsourcing /etc/profile\n");
3270 if ((input = fopen("/etc/profile", "r")) != NULL) {
3271 mark_open(fileno(input));
3272 parse_file_outer(input);
3273 mark_closed(fileno(input));
3274 fclose(input);
3275 }
3276 }
3277 input=stdin;
3278
3279 while ((opt = getopt(argc, argv, "c:xif")) > 0) {
3280 switch (opt) {
3281 case 'c':
3282 {
3283 global_argv = argv+optind;
3284 global_argc = argc-optind;
3285 opt = parse_string_outer(optarg, FLAG_PARSE_SEMICOLON);
3286 goto final_return;
3287 }
3288 break;
3289 case 'i':
3290 interactive++;
3291 break;
3292 case 'f':
3293 fake_mode++;
3294 break;
3295 default:
3296#ifndef BB_VER
3297 fprintf(stderr, "Usage: sh [FILE]...\n"
3298 " or: sh -c command [args]...\n\n");
3299 exit(EXIT_FAILURE);
3300#else
3301 show_usage();
3302#endif
3303 }
3304 }
3305 /* A shell is interactive if the `-i' flag was given, or if all of
3306 * the following conditions are met:
3307 * no -c command
3308 * no arguments remaining or the -s flag given
3309 * standard input is a terminal
3310 * standard output is a terminal
3311 * Refer to Posix.2, the description of the `sh' utility. */
3312 if (argv[optind]==NULL && input==stdin &&
3313 isatty(fileno(stdin)) && isatty(fileno(stdout))) {
3314 interactive++;
3315 }
3316
3317 debug_printf("\ninteractive=%d\n", interactive);
3318 if (interactive) {
3319 /* Looks like they want an interactive shell */
3320 fprintf(stdout, "\nhush -- the humble shell v0.01 (testing)\n\n");
3321 setup_job_control();
3322 }
3323
3324 if (argv[optind]==NULL) {
3325 opt=parse_file_outer(stdin);
3326 goto final_return;
3327 }
3328
3329 debug_printf("\nrunning script '%s'\n", argv[optind]);
3330 global_argv = argv+optind;
3331 global_argc = argc-optind;
3332 input = xfopen(argv[optind], "r");
3333 opt = parse_file_outer(input);
3334
3335#ifdef BB_FEATURE_CLEAN_UP
3336 fclose(input);
3337 if (cwd && cwd != unknown)
3338 free((char*)cwd);
3339 {
3340 struct variables *cur, *tmp;
3341 for(cur = top_vars; cur; cur = tmp) {
3342 tmp = cur->next;
3343 if (!cur->flg_read_only) {
3344 free(cur->name);
3345 free(cur->value);
3346 free(cur);
3347 }
3348 }
3349 }
3350#endif
3351
3352final_return:
3353 return(opt?opt:last_return_code);
3354}
3355#endif
3356
3357static char *insert_var_value(char *inp)
3358{
3359 int res_str_len = 0;
3360 int len;
3361 int done = 0;
3362 char *p, *p1, *res_str = NULL;
3363
3364 while ((p = strchr(inp, SPECIAL_VAR_SYMBOL))) {
3365 if (p != inp) {
3366 len = p - inp;
3367 res_str = xrealloc(res_str, (res_str_len + len));
3368 strncpy((res_str + res_str_len), inp, len);
3369 res_str_len += len;
3370 }
3371 inp = ++p;
3372 p = strchr(inp, SPECIAL_VAR_SYMBOL);
3373 *p = '\0';
3374 if ((p1 = lookup_param(inp))) {
3375 len = res_str_len + strlen(p1);
3376 res_str = xrealloc(res_str, (1 + len));
3377 strcpy((res_str + res_str_len), p1);
3378 res_str_len = len;
3379 }
3380 *p = SPECIAL_VAR_SYMBOL;
3381 inp = ++p;
3382 done = 1;
3383 }
3384 if (done) {
3385 res_str = xrealloc(res_str, (1 + res_str_len + strlen(inp)));
3386 strcpy((res_str + res_str_len), inp);
3387 while ((p = strchr(res_str, '\n'))) {
3388 *p = ' ';
3389 }
3390 }
3391 return (res_str == NULL) ? inp : res_str;
3392}
3393
3394static char **make_list_in(char **inp, char *name)
3395{
3396 int len, i;
3397 int name_len = strlen(name);
3398 int n = 0;
3399 char **list;
3400 char *p1, *p2, *p3;
3401
3402 /* create list of variable values */
3403 list = xmalloc(sizeof(*list));
3404 for (i = 0; inp[i]; i++) {
3405 p3 = insert_var_value(inp[i]);
3406 p1 = p3;
3407 while (*p1) {
3408 if ((*p1 == ' ')) {
3409 p1++;
3410 continue;
3411 }
3412 if ((p2 = strchr(p1, ' '))) {
3413 len = p2 - p1;
3414 } else {
3415 len = strlen(p1);
3416 p2 = p1 + len;
3417 }
3418 /* we use n + 2 in realloc for list,because we add
3419 * new element and then we will add NULL element */
3420 list = xrealloc(list, sizeof(*list) * (n + 2));
3421 list[n] = xmalloc(2 + name_len + len);
3422 strcpy(list[n], name);
3423 strcat(list[n], "=");
3424 strncat(list[n], p1, len);
3425 list[n++][name_len + len + 1] = '\0';
3426 p1 = p2;
3427 }
3428 if (p3 != inp[i]) free(p3);
3429 }
3430 list[n] = NULL;
3431 return list;
3432}
3433
3434/* Make new string for parser */
3435static char * make_string(char ** inp)
3436{
3437 char *p;
3438 char *str = NULL;
3439 int n;
3440 int len = 2;
3441
3442 for (n = 0; inp[n]; n++) {
3443 p = insert_var_value(inp[n]);
3444 str = xrealloc(str, (len + strlen(p)));
3445 if (n) {
3446 strcat(str, " ");
3447 } else {
3448 *str = '\0';
3449 }
3450 strcat(str, p);
3451 len = strlen(str) + 3;
3452 if (p != inp[n]) free(p);
3453 }
3454 len = strlen(str);
3455 *(str + len) = '\n';
3456 *(str + len + 1) = '\0';
3457 return str;
3458}
3459
3460#endif /* CFG_HUSH_PARSER */
3461/****************************************************************************/