jobs.c revision 1.13 1 1.1 cgd /*-
2 1.8 jtc * Copyright (c) 1991, 1993
3 1.8 jtc * The Regents of the University of California. All rights reserved.
4 1.1 cgd *
5 1.1 cgd * This code is derived from software contributed to Berkeley by
6 1.1 cgd * Kenneth Almquist.
7 1.1 cgd *
8 1.1 cgd * Redistribution and use in source and binary forms, with or without
9 1.1 cgd * modification, are permitted provided that the following conditions
10 1.1 cgd * are met:
11 1.1 cgd * 1. Redistributions of source code must retain the above copyright
12 1.1 cgd * notice, this list of conditions and the following disclaimer.
13 1.1 cgd * 2. Redistributions in binary form must reproduce the above copyright
14 1.1 cgd * notice, this list of conditions and the following disclaimer in the
15 1.1 cgd * documentation and/or other materials provided with the distribution.
16 1.1 cgd * 3. All advertising materials mentioning features or use of this software
17 1.1 cgd * must display the following acknowledgement:
18 1.1 cgd * This product includes software developed by the University of
19 1.1 cgd * California, Berkeley and its contributors.
20 1.1 cgd * 4. Neither the name of the University nor the names of its contributors
21 1.1 cgd * may be used to endorse or promote products derived from this software
22 1.1 cgd * without specific prior written permission.
23 1.1 cgd *
24 1.1 cgd * THIS SOFTWARE IS PROVIDED BY THE REGENTS AND CONTRIBUTORS ``AS IS'' AND
25 1.1 cgd * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
26 1.1 cgd * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
27 1.1 cgd * ARE DISCLAIMED. IN NO EVENT SHALL THE REGENTS OR CONTRIBUTORS BE LIABLE
28 1.1 cgd * FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL
29 1.1 cgd * DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS
30 1.1 cgd * OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION)
31 1.1 cgd * HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT
32 1.1 cgd * LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
33 1.1 cgd * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
34 1.1 cgd * SUCH DAMAGE.
35 1.1 cgd */
36 1.1 cgd
37 1.1 cgd #ifndef lint
38 1.11 mycroft /*static char sccsid[] = "from: @(#)jobs.c 8.1 (Berkeley) 5/31/93";*/
39 1.13 cgd static char *rcsid = "$Id: jobs.c,v 1.13 1994/12/04 07:12:15 cgd Exp $";
40 1.1 cgd #endif /* not lint */
41 1.1 cgd
42 1.1 cgd #include "shell.h"
43 1.1 cgd #if JOBS
44 1.1 cgd #include "sgtty.h"
45 1.1 cgd #undef CEOF /* syntax.h redefines this */
46 1.1 cgd #endif
47 1.1 cgd #include "main.h"
48 1.1 cgd #include "parser.h"
49 1.1 cgd #include "nodes.h"
50 1.1 cgd #include "jobs.h"
51 1.1 cgd #include "options.h"
52 1.1 cgd #include "trap.h"
53 1.1 cgd #include "syntax.h"
54 1.1 cgd #include "input.h"
55 1.1 cgd #include "output.h"
56 1.1 cgd #include "memalloc.h"
57 1.1 cgd #include "error.h"
58 1.1 cgd #include "mystring.h"
59 1.13 cgd #include "extern.h"
60 1.1 cgd #include <fcntl.h>
61 1.1 cgd #include <signal.h>
62 1.1 cgd #include <errno.h>
63 1.9 jtc #include <unistd.h>
64 1.1 cgd #ifdef BSD
65 1.1 cgd #include <sys/types.h>
66 1.1 cgd #include <sys/wait.h>
67 1.1 cgd #include <sys/time.h>
68 1.1 cgd #include <sys/resource.h>
69 1.1 cgd #endif
70 1.1 cgd
71 1.1 cgd
72 1.1 cgd
73 1.1 cgd struct job *jobtab; /* array of jobs */
74 1.1 cgd int njobs; /* size of array */
75 1.1 cgd MKINIT short backgndpid = -1; /* pid of last background process */
76 1.1 cgd #if JOBS
77 1.1 cgd int initialpgrp; /* pgrp of shell on invocation */
78 1.1 cgd short curjob; /* current job */
79 1.1 cgd #endif
80 1.1 cgd
81 1.1 cgd #ifdef __STDC__
82 1.1 cgd STATIC void restartjob(struct job *);
83 1.1 cgd STATIC struct job *getjob(char *);
84 1.1 cgd STATIC void freejob(struct job *);
85 1.1 cgd STATIC int procrunning(int);
86 1.1 cgd STATIC int dowait(int, struct job *);
87 1.1 cgd STATIC int waitproc(int, int *);
88 1.1 cgd #else
89 1.1 cgd STATIC void restartjob();
90 1.1 cgd STATIC struct job *getjob();
91 1.1 cgd STATIC void freejob();
92 1.1 cgd STATIC int procrunning();
93 1.1 cgd STATIC int dowait();
94 1.1 cgd STATIC int waitproc();
95 1.1 cgd #endif
96 1.1 cgd
97 1.1 cgd
98 1.8 jtc
99 1.1 cgd /*
100 1.1 cgd * Turn job control on and off.
101 1.1 cgd *
102 1.1 cgd * Note: This code assumes that the third arg to ioctl is a character
103 1.1 cgd * pointer, which is true on Berkeley systems but not System V. Since
104 1.1 cgd * System V doesn't have job control yet, this isn't a problem now.
105 1.1 cgd */
106 1.1 cgd
107 1.1 cgd MKINIT int jobctl;
108 1.1 cgd
109 1.1 cgd void
110 1.13 cgd setjobctl(on)
111 1.13 cgd int on;
112 1.13 cgd {
113 1.8 jtc #ifdef OLD_TTY_DRIVER
114 1.1 cgd int ldisc;
115 1.8 jtc #endif
116 1.1 cgd
117 1.1 cgd if (on == jobctl || rootshell == 0)
118 1.1 cgd return;
119 1.1 cgd if (on) {
120 1.1 cgd do { /* while we are in the background */
121 1.1 cgd if (ioctl(2, TIOCGPGRP, (char *)&initialpgrp) < 0) {
122 1.8 jtc out2str("sh: can't access tty; job control turned off\n");
123 1.8 jtc mflag = 0;
124 1.1 cgd return;
125 1.1 cgd }
126 1.1 cgd if (initialpgrp == -1)
127 1.10 jtc initialpgrp = getpgrp();
128 1.10 jtc else if (initialpgrp != getpgrp()) {
129 1.1 cgd killpg(initialpgrp, SIGTTIN);
130 1.1 cgd continue;
131 1.1 cgd }
132 1.1 cgd } while (0);
133 1.8 jtc #ifdef OLD_TTY_DRIVER
134 1.1 cgd if (ioctl(2, TIOCGETD, (char *)&ldisc) < 0 || ldisc != NTTYDISC) {
135 1.8 jtc out2str("sh: need new tty driver to run job control; job control turned off\n");
136 1.8 jtc mflag = 0;
137 1.1 cgd return;
138 1.1 cgd }
139 1.8 jtc #endif
140 1.1 cgd setsignal(SIGTSTP);
141 1.1 cgd setsignal(SIGTTOU);
142 1.8 jtc setsignal(SIGTTIN);
143 1.12 mycroft setpgid(0, rootpid);
144 1.1 cgd ioctl(2, TIOCSPGRP, (char *)&rootpid);
145 1.1 cgd } else { /* turning job control off */
146 1.12 mycroft setpgid(0, initialpgrp);
147 1.1 cgd ioctl(2, TIOCSPGRP, (char *)&initialpgrp);
148 1.1 cgd setsignal(SIGTSTP);
149 1.1 cgd setsignal(SIGTTOU);
150 1.8 jtc setsignal(SIGTTIN);
151 1.1 cgd }
152 1.1 cgd jobctl = on;
153 1.1 cgd }
154 1.1 cgd
155 1.1 cgd
156 1.1 cgd #ifdef mkinit
157 1.1 cgd
158 1.1 cgd SHELLPROC {
159 1.1 cgd backgndpid = -1;
160 1.1 cgd #if JOBS
161 1.1 cgd jobctl = 0;
162 1.1 cgd #endif
163 1.1 cgd }
164 1.1 cgd
165 1.1 cgd #endif
166 1.1 cgd
167 1.1 cgd
168 1.1 cgd
169 1.1 cgd #if JOBS
170 1.13 cgd int
171 1.13 cgd fgcmd(argc, argv)
172 1.13 cgd int argc;
173 1.13 cgd char **argv;
174 1.13 cgd {
175 1.1 cgd struct job *jp;
176 1.1 cgd int pgrp;
177 1.1 cgd int status;
178 1.1 cgd
179 1.1 cgd jp = getjob(argv[1]);
180 1.1 cgd if (jp->jobctl == 0)
181 1.1 cgd error("job not created under job control");
182 1.1 cgd pgrp = jp->ps[0].pid;
183 1.1 cgd ioctl(2, TIOCSPGRP, (char *)&pgrp);
184 1.1 cgd restartjob(jp);
185 1.1 cgd INTOFF;
186 1.1 cgd status = waitforjob(jp);
187 1.1 cgd INTON;
188 1.1 cgd return status;
189 1.1 cgd }
190 1.1 cgd
191 1.1 cgd
192 1.13 cgd int
193 1.13 cgd bgcmd(argc, argv)
194 1.13 cgd int argc;
195 1.13 cgd char **argv;
196 1.13 cgd {
197 1.1 cgd struct job *jp;
198 1.1 cgd
199 1.1 cgd do {
200 1.1 cgd jp = getjob(*++argv);
201 1.1 cgd if (jp->jobctl == 0)
202 1.1 cgd error("job not created under job control");
203 1.1 cgd restartjob(jp);
204 1.1 cgd } while (--argc > 1);
205 1.1 cgd return 0;
206 1.1 cgd }
207 1.1 cgd
208 1.1 cgd
209 1.1 cgd STATIC void
210 1.1 cgd restartjob(jp)
211 1.1 cgd struct job *jp;
212 1.13 cgd {
213 1.1 cgd struct procstat *ps;
214 1.1 cgd int i;
215 1.1 cgd
216 1.1 cgd if (jp->state == JOBDONE)
217 1.1 cgd return;
218 1.1 cgd INTOFF;
219 1.1 cgd killpg(jp->ps[0].pid, SIGCONT);
220 1.1 cgd for (ps = jp->ps, i = jp->nprocs ; --i >= 0 ; ps++) {
221 1.1 cgd if ((ps->status & 0377) == 0177) {
222 1.1 cgd ps->status = -1;
223 1.1 cgd jp->state = 0;
224 1.1 cgd }
225 1.1 cgd }
226 1.1 cgd INTON;
227 1.1 cgd }
228 1.1 cgd #endif
229 1.1 cgd
230 1.1 cgd
231 1.1 cgd int
232 1.13 cgd jobscmd(argc, argv)
233 1.13 cgd int argc;
234 1.13 cgd char **argv;
235 1.13 cgd {
236 1.1 cgd showjobs(0);
237 1.1 cgd return 0;
238 1.1 cgd }
239 1.1 cgd
240 1.1 cgd
241 1.1 cgd /*
242 1.1 cgd * Print a list of jobs. If "change" is nonzero, only print jobs whose
243 1.1 cgd * statuses have changed since the last call to showjobs.
244 1.1 cgd *
245 1.1 cgd * If the shell is interrupted in the process of creating a job, the
246 1.1 cgd * result may be a job structure containing zero processes. Such structures
247 1.1 cgd * will be freed here.
248 1.1 cgd */
249 1.1 cgd
250 1.1 cgd void
251 1.13 cgd showjobs(change)
252 1.13 cgd int change;
253 1.13 cgd {
254 1.1 cgd int jobno;
255 1.1 cgd int procno;
256 1.1 cgd int i;
257 1.1 cgd struct job *jp;
258 1.1 cgd struct procstat *ps;
259 1.1 cgd int col;
260 1.1 cgd char s[64];
261 1.1 cgd
262 1.1 cgd TRACE(("showjobs(%d) called\n", change));
263 1.1 cgd while (dowait(0, (struct job *)NULL) > 0);
264 1.1 cgd for (jobno = 1, jp = jobtab ; jobno <= njobs ; jobno++, jp++) {
265 1.1 cgd if (! jp->used)
266 1.1 cgd continue;
267 1.1 cgd if (jp->nprocs == 0) {
268 1.1 cgd freejob(jp);
269 1.1 cgd continue;
270 1.1 cgd }
271 1.1 cgd if (change && ! jp->changed)
272 1.1 cgd continue;
273 1.1 cgd procno = jp->nprocs;
274 1.1 cgd for (ps = jp->ps ; ; ps++) { /* for each process */
275 1.1 cgd if (ps == jp->ps)
276 1.1 cgd fmtstr(s, 64, "[%d] %d ", jobno, ps->pid);
277 1.1 cgd else
278 1.1 cgd fmtstr(s, 64, " %d ", ps->pid);
279 1.1 cgd out1str(s);
280 1.1 cgd col = strlen(s);
281 1.1 cgd s[0] = '\0';
282 1.1 cgd if (ps->status == -1) {
283 1.1 cgd /* don't print anything */
284 1.1 cgd } else if ((ps->status & 0xFF) == 0) {
285 1.1 cgd fmtstr(s, 64, "Exit %d", ps->status >> 8);
286 1.1 cgd } else {
287 1.1 cgd i = ps->status;
288 1.1 cgd #if JOBS
289 1.1 cgd if ((i & 0xFF) == 0177)
290 1.1 cgd i >>= 8;
291 1.1 cgd #endif
292 1.9 jtc if ((i & 0x7F) < NSIG && sys_siglist[i & 0x7F])
293 1.9 jtc scopy(sys_siglist[i & 0x7F], s);
294 1.1 cgd else
295 1.1 cgd fmtstr(s, 64, "Signal %d", i & 0x7F);
296 1.1 cgd if (i & 0x80)
297 1.1 cgd strcat(s, " (core dumped)");
298 1.1 cgd }
299 1.1 cgd out1str(s);
300 1.1 cgd col += strlen(s);
301 1.1 cgd do {
302 1.1 cgd out1c(' ');
303 1.1 cgd col++;
304 1.1 cgd } while (col < 30);
305 1.1 cgd out1str(ps->cmd);
306 1.1 cgd out1c('\n');
307 1.1 cgd if (--procno <= 0)
308 1.1 cgd break;
309 1.1 cgd }
310 1.1 cgd jp->changed = 0;
311 1.1 cgd if (jp->state == JOBDONE) {
312 1.1 cgd freejob(jp);
313 1.1 cgd }
314 1.1 cgd }
315 1.1 cgd }
316 1.1 cgd
317 1.1 cgd
318 1.1 cgd /*
319 1.1 cgd * Mark a job structure as unused.
320 1.1 cgd */
321 1.1 cgd
322 1.1 cgd STATIC void
323 1.1 cgd freejob(jp)
324 1.1 cgd struct job *jp;
325 1.1 cgd {
326 1.1 cgd struct procstat *ps;
327 1.1 cgd int i;
328 1.1 cgd
329 1.1 cgd INTOFF;
330 1.1 cgd for (i = jp->nprocs, ps = jp->ps ; --i >= 0 ; ps++) {
331 1.1 cgd if (ps->cmd != nullstr)
332 1.1 cgd ckfree(ps->cmd);
333 1.1 cgd }
334 1.1 cgd if (jp->ps != &jp->ps0)
335 1.1 cgd ckfree(jp->ps);
336 1.1 cgd jp->used = 0;
337 1.1 cgd #if JOBS
338 1.1 cgd if (curjob == jp - jobtab + 1)
339 1.1 cgd curjob = 0;
340 1.1 cgd #endif
341 1.1 cgd INTON;
342 1.1 cgd }
343 1.1 cgd
344 1.1 cgd
345 1.1 cgd
346 1.1 cgd int
347 1.13 cgd waitcmd(argc, argv)
348 1.13 cgd int argc;
349 1.13 cgd char **argv;
350 1.13 cgd {
351 1.1 cgd struct job *job;
352 1.1 cgd int status;
353 1.1 cgd struct job *jp;
354 1.1 cgd
355 1.1 cgd if (argc > 1) {
356 1.1 cgd job = getjob(argv[1]);
357 1.1 cgd } else {
358 1.1 cgd job = NULL;
359 1.1 cgd }
360 1.1 cgd for (;;) { /* loop until process terminated or stopped */
361 1.1 cgd if (job != NULL) {
362 1.1 cgd if (job->state) {
363 1.1 cgd status = job->ps[job->nprocs - 1].status;
364 1.1 cgd if ((status & 0xFF) == 0)
365 1.1 cgd status = status >> 8 & 0xFF;
366 1.1 cgd #if JOBS
367 1.1 cgd else if ((status & 0xFF) == 0177)
368 1.1 cgd status = (status >> 8 & 0x7F) + 128;
369 1.1 cgd #endif
370 1.1 cgd else
371 1.1 cgd status = (status & 0x7F) + 128;
372 1.1 cgd if (! iflag)
373 1.1 cgd freejob(job);
374 1.1 cgd return status;
375 1.1 cgd }
376 1.1 cgd } else {
377 1.1 cgd for (jp = jobtab ; ; jp++) {
378 1.1 cgd if (jp >= jobtab + njobs) { /* no running procs */
379 1.1 cgd return 0;
380 1.1 cgd }
381 1.1 cgd if (jp->used && jp->state == 0)
382 1.1 cgd break;
383 1.1 cgd }
384 1.1 cgd }
385 1.1 cgd dowait(1, (struct job *)NULL);
386 1.1 cgd }
387 1.1 cgd }
388 1.1 cgd
389 1.1 cgd
390 1.1 cgd
391 1.13 cgd int
392 1.13 cgd jobidcmd(argc, argv)
393 1.13 cgd int argc;
394 1.13 cgd char **argv;
395 1.13 cgd {
396 1.1 cgd struct job *jp;
397 1.1 cgd int i;
398 1.1 cgd
399 1.1 cgd jp = getjob(argv[1]);
400 1.1 cgd for (i = 0 ; i < jp->nprocs ; ) {
401 1.1 cgd out1fmt("%d", jp->ps[i].pid);
402 1.1 cgd out1c(++i < jp->nprocs? ' ' : '\n');
403 1.1 cgd }
404 1.1 cgd return 0;
405 1.1 cgd }
406 1.1 cgd
407 1.1 cgd
408 1.1 cgd
409 1.1 cgd /*
410 1.1 cgd * Convert a job name to a job structure.
411 1.1 cgd */
412 1.1 cgd
413 1.1 cgd STATIC struct job *
414 1.1 cgd getjob(name)
415 1.1 cgd char *name;
416 1.1 cgd {
417 1.1 cgd int jobno;
418 1.1 cgd register struct job *jp;
419 1.1 cgd int pid;
420 1.1 cgd int i;
421 1.1 cgd
422 1.1 cgd if (name == NULL) {
423 1.1 cgd #if JOBS
424 1.1 cgd currentjob:
425 1.1 cgd if ((jobno = curjob) == 0 || jobtab[jobno - 1].used == 0)
426 1.1 cgd error("No current job");
427 1.1 cgd return &jobtab[jobno - 1];
428 1.1 cgd #else
429 1.1 cgd error("No current job");
430 1.1 cgd #endif
431 1.1 cgd } else if (name[0] == '%') {
432 1.1 cgd if (is_digit(name[1])) {
433 1.1 cgd jobno = number(name + 1);
434 1.1 cgd if (jobno > 0 && jobno <= njobs
435 1.1 cgd && jobtab[jobno - 1].used != 0)
436 1.1 cgd return &jobtab[jobno - 1];
437 1.1 cgd #if JOBS
438 1.1 cgd } else if (name[1] == '%' && name[2] == '\0') {
439 1.1 cgd goto currentjob;
440 1.1 cgd #endif
441 1.1 cgd } else {
442 1.1 cgd register struct job *found = NULL;
443 1.1 cgd for (jp = jobtab, i = njobs ; --i >= 0 ; jp++) {
444 1.1 cgd if (jp->used && jp->nprocs > 0
445 1.1 cgd && prefix(name + 1, jp->ps[0].cmd)) {
446 1.1 cgd if (found)
447 1.1 cgd error("%s: ambiguous", name);
448 1.1 cgd found = jp;
449 1.1 cgd }
450 1.1 cgd }
451 1.1 cgd if (found)
452 1.1 cgd return found;
453 1.1 cgd }
454 1.1 cgd } else if (is_number(name)) {
455 1.1 cgd pid = number(name);
456 1.1 cgd for (jp = jobtab, i = njobs ; --i >= 0 ; jp++) {
457 1.1 cgd if (jp->used && jp->nprocs > 0
458 1.1 cgd && jp->ps[jp->nprocs - 1].pid == pid)
459 1.1 cgd return jp;
460 1.1 cgd }
461 1.1 cgd }
462 1.1 cgd error("No such job: %s", name);
463 1.1 cgd }
464 1.1 cgd
465 1.1 cgd
466 1.1 cgd
467 1.1 cgd /*
468 1.1 cgd * Return a new job structure,
469 1.1 cgd */
470 1.1 cgd
471 1.1 cgd struct job *
472 1.1 cgd makejob(node, nprocs)
473 1.1 cgd union node *node;
474 1.13 cgd int nprocs;
475 1.13 cgd {
476 1.1 cgd int i;
477 1.1 cgd struct job *jp;
478 1.1 cgd
479 1.1 cgd for (i = njobs, jp = jobtab ; ; jp++) {
480 1.1 cgd if (--i < 0) {
481 1.1 cgd INTOFF;
482 1.1 cgd if (njobs == 0) {
483 1.1 cgd jobtab = ckmalloc(4 * sizeof jobtab[0]);
484 1.1 cgd } else {
485 1.1 cgd jp = ckmalloc((njobs + 4) * sizeof jobtab[0]);
486 1.12 mycroft memcpy(jp, jobtab, njobs * sizeof jp[0]);
487 1.1 cgd ckfree(jobtab);
488 1.1 cgd jobtab = jp;
489 1.1 cgd }
490 1.1 cgd jp = jobtab + njobs;
491 1.1 cgd for (i = 4 ; --i >= 0 ; jobtab[njobs++].used = 0);
492 1.1 cgd INTON;
493 1.1 cgd break;
494 1.1 cgd }
495 1.1 cgd if (jp->used == 0)
496 1.1 cgd break;
497 1.1 cgd }
498 1.1 cgd INTOFF;
499 1.1 cgd jp->state = 0;
500 1.1 cgd jp->used = 1;
501 1.1 cgd jp->changed = 0;
502 1.1 cgd jp->nprocs = 0;
503 1.1 cgd #if JOBS
504 1.1 cgd jp->jobctl = jobctl;
505 1.1 cgd #endif
506 1.1 cgd if (nprocs > 1) {
507 1.1 cgd jp->ps = ckmalloc(nprocs * sizeof (struct procstat));
508 1.1 cgd } else {
509 1.1 cgd jp->ps = &jp->ps0;
510 1.1 cgd }
511 1.1 cgd INTON;
512 1.1 cgd TRACE(("makejob(0x%x, %d) returns %%%d\n", (int)node, nprocs, jp - jobtab + 1));
513 1.1 cgd return jp;
514 1.1 cgd }
515 1.1 cgd
516 1.1 cgd
517 1.1 cgd /*
518 1.1 cgd * Fork of a subshell. If we are doing job control, give the subshell its
519 1.1 cgd * own process group. Jp is a job structure that the job is to be added to.
520 1.1 cgd * N is the command that will be evaluated by the child. Both jp and n may
521 1.1 cgd * be NULL. The mode parameter can be one of the following:
522 1.1 cgd * FORK_FG - Fork off a foreground process.
523 1.1 cgd * FORK_BG - Fork off a background process.
524 1.1 cgd * FORK_NOJOB - Like FORK_FG, but don't give the process its own
525 1.1 cgd * process group even if job control is on.
526 1.1 cgd *
527 1.1 cgd * When job control is turned off, background processes have their standard
528 1.1 cgd * input redirected to /dev/null (except for the second and later processes
529 1.1 cgd * in a pipeline).
530 1.1 cgd */
531 1.1 cgd
532 1.1 cgd int
533 1.1 cgd forkshell(jp, n, mode)
534 1.1 cgd union node *n;
535 1.1 cgd struct job *jp;
536 1.13 cgd int mode;
537 1.13 cgd {
538 1.1 cgd int pid;
539 1.1 cgd int pgrp;
540 1.1 cgd
541 1.1 cgd TRACE(("forkshell(%%%d, 0x%x, %d) called\n", jp - jobtab, (int)n, mode));
542 1.1 cgd INTOFF;
543 1.1 cgd pid = fork();
544 1.1 cgd if (pid == -1) {
545 1.1 cgd TRACE(("Fork failed, errno=%d\n", errno));
546 1.1 cgd INTON;
547 1.1 cgd error("Cannot fork");
548 1.1 cgd }
549 1.1 cgd if (pid == 0) {
550 1.1 cgd struct job *p;
551 1.1 cgd int wasroot;
552 1.1 cgd int i;
553 1.1 cgd
554 1.1 cgd TRACE(("Child shell %d\n", getpid()));
555 1.1 cgd wasroot = rootshell;
556 1.1 cgd rootshell = 0;
557 1.1 cgd for (i = njobs, p = jobtab ; --i >= 0 ; p++)
558 1.1 cgd if (p->used)
559 1.1 cgd freejob(p);
560 1.1 cgd closescript();
561 1.1 cgd INTON;
562 1.1 cgd clear_traps();
563 1.1 cgd #if JOBS
564 1.1 cgd jobctl = 0; /* do job control only in root shell */
565 1.8 jtc if (wasroot && mode != FORK_NOJOB && mflag) {
566 1.1 cgd if (jp == NULL || jp->nprocs == 0)
567 1.1 cgd pgrp = getpid();
568 1.1 cgd else
569 1.1 cgd pgrp = jp->ps[0].pid;
570 1.12 mycroft setpgid(0, pgrp);
571 1.1 cgd if (mode == FORK_FG) {
572 1.1 cgd /*** this causes superfluous TIOCSPGRPS ***/
573 1.1 cgd if (ioctl(2, TIOCSPGRP, (char *)&pgrp) < 0)
574 1.1 cgd error("TIOCSPGRP failed, errno=%d\n", errno);
575 1.1 cgd }
576 1.1 cgd setsignal(SIGTSTP);
577 1.1 cgd setsignal(SIGTTOU);
578 1.1 cgd } else if (mode == FORK_BG) {
579 1.1 cgd ignoresig(SIGINT);
580 1.1 cgd ignoresig(SIGQUIT);
581 1.8 jtc if ((jp == NULL || jp->nprocs == 0) &&
582 1.8 jtc ! fd0_redirected_p ()) {
583 1.1 cgd close(0);
584 1.1 cgd if (open("/dev/null", O_RDONLY) != 0)
585 1.1 cgd error("Can't open /dev/null");
586 1.1 cgd }
587 1.1 cgd }
588 1.1 cgd #else
589 1.1 cgd if (mode == FORK_BG) {
590 1.1 cgd ignoresig(SIGINT);
591 1.1 cgd ignoresig(SIGQUIT);
592 1.8 jtc if ((jp == NULL || jp->nprocs == 0) &&
593 1.8 jtc ! fd0_redirected_p ()) {
594 1.1 cgd close(0);
595 1.1 cgd if (open("/dev/null", O_RDONLY) != 0)
596 1.1 cgd error("Can't open /dev/null");
597 1.1 cgd }
598 1.1 cgd }
599 1.1 cgd #endif
600 1.1 cgd if (wasroot && iflag) {
601 1.1 cgd setsignal(SIGINT);
602 1.1 cgd setsignal(SIGQUIT);
603 1.1 cgd setsignal(SIGTERM);
604 1.1 cgd }
605 1.1 cgd return pid;
606 1.1 cgd }
607 1.8 jtc if (rootshell && mode != FORK_NOJOB && mflag) {
608 1.1 cgd if (jp == NULL || jp->nprocs == 0)
609 1.1 cgd pgrp = pid;
610 1.1 cgd else
611 1.1 cgd pgrp = jp->ps[0].pid;
612 1.12 mycroft setpgid(pid, pgrp);
613 1.1 cgd }
614 1.1 cgd if (mode == FORK_BG)
615 1.1 cgd backgndpid = pid; /* set $! */
616 1.1 cgd if (jp) {
617 1.1 cgd struct procstat *ps = &jp->ps[jp->nprocs++];
618 1.1 cgd ps->pid = pid;
619 1.1 cgd ps->status = -1;
620 1.1 cgd ps->cmd = nullstr;
621 1.1 cgd if (iflag && rootshell && n)
622 1.1 cgd ps->cmd = commandtext(n);
623 1.1 cgd }
624 1.1 cgd INTON;
625 1.1 cgd TRACE(("In parent shell: child = %d\n", pid));
626 1.1 cgd return pid;
627 1.1 cgd }
628 1.1 cgd
629 1.1 cgd
630 1.1 cgd
631 1.1 cgd /*
632 1.1 cgd * Wait for job to finish.
633 1.1 cgd *
634 1.1 cgd * Under job control we have the problem that while a child process is
635 1.1 cgd * running interrupts generated by the user are sent to the child but not
636 1.1 cgd * to the shell. This means that an infinite loop started by an inter-
637 1.1 cgd * active user may be hard to kill. With job control turned off, an
638 1.1 cgd * interactive user may place an interactive program inside a loop. If
639 1.1 cgd * the interactive program catches interrupts, the user doesn't want
640 1.1 cgd * these interrupts to also abort the loop. The approach we take here
641 1.1 cgd * is to have the shell ignore interrupt signals while waiting for a
642 1.1 cgd * forground process to terminate, and then send itself an interrupt
643 1.1 cgd * signal if the child process was terminated by an interrupt signal.
644 1.1 cgd * Unfortunately, some programs want to do a bit of cleanup and then
645 1.1 cgd * exit on interrupt; unless these processes terminate themselves by
646 1.1 cgd * sending a signal to themselves (instead of calling exit) they will
647 1.1 cgd * confuse this approach.
648 1.1 cgd */
649 1.1 cgd
650 1.1 cgd int
651 1.1 cgd waitforjob(jp)
652 1.1 cgd register struct job *jp;
653 1.1 cgd {
654 1.1 cgd #if JOBS
655 1.10 jtc int mypgrp = getpgrp();
656 1.1 cgd #endif
657 1.1 cgd int status;
658 1.1 cgd int st;
659 1.1 cgd
660 1.1 cgd INTOFF;
661 1.1 cgd TRACE(("waitforjob(%%%d) called\n", jp - jobtab + 1));
662 1.1 cgd while (jp->state == 0) {
663 1.1 cgd dowait(1, jp);
664 1.1 cgd }
665 1.1 cgd #if JOBS
666 1.1 cgd if (jp->jobctl) {
667 1.1 cgd if (ioctl(2, TIOCSPGRP, (char *)&mypgrp) < 0)
668 1.1 cgd error("TIOCSPGRP failed, errno=%d\n", errno);
669 1.1 cgd }
670 1.1 cgd if (jp->state == JOBSTOPPED)
671 1.1 cgd curjob = jp - jobtab + 1;
672 1.1 cgd #endif
673 1.1 cgd status = jp->ps[jp->nprocs - 1].status;
674 1.1 cgd /* convert to 8 bits */
675 1.1 cgd if ((status & 0xFF) == 0)
676 1.1 cgd st = status >> 8 & 0xFF;
677 1.1 cgd #if JOBS
678 1.1 cgd else if ((status & 0xFF) == 0177)
679 1.1 cgd st = (status >> 8 & 0x7F) + 128;
680 1.1 cgd #endif
681 1.1 cgd else
682 1.1 cgd st = (status & 0x7F) + 128;
683 1.1 cgd if (! JOBS || jp->state == JOBDONE)
684 1.1 cgd freejob(jp);
685 1.1 cgd CLEAR_PENDING_INT;
686 1.1 cgd if ((status & 0x7F) == SIGINT)
687 1.1 cgd kill(getpid(), SIGINT);
688 1.1 cgd INTON;
689 1.1 cgd return st;
690 1.1 cgd }
691 1.1 cgd
692 1.1 cgd
693 1.1 cgd
694 1.1 cgd /*
695 1.1 cgd * Wait for a process to terminate.
696 1.1 cgd */
697 1.1 cgd
698 1.1 cgd STATIC int
699 1.1 cgd dowait(block, job)
700 1.13 cgd int block;
701 1.1 cgd struct job *job;
702 1.13 cgd {
703 1.1 cgd int pid;
704 1.1 cgd int status;
705 1.1 cgd struct procstat *sp;
706 1.1 cgd struct job *jp;
707 1.1 cgd struct job *thisjob;
708 1.1 cgd int done;
709 1.1 cgd int stopped;
710 1.1 cgd int core;
711 1.1 cgd
712 1.1 cgd TRACE(("dowait(%d) called\n", block));
713 1.1 cgd do {
714 1.1 cgd pid = waitproc(block, &status);
715 1.1 cgd TRACE(("wait returns %d, status=%d\n", pid, status));
716 1.1 cgd } while (pid == -1 && errno == EINTR);
717 1.1 cgd if (pid <= 0)
718 1.1 cgd return pid;
719 1.1 cgd INTOFF;
720 1.1 cgd thisjob = NULL;
721 1.1 cgd for (jp = jobtab ; jp < jobtab + njobs ; jp++) {
722 1.1 cgd if (jp->used) {
723 1.1 cgd done = 1;
724 1.1 cgd stopped = 1;
725 1.1 cgd for (sp = jp->ps ; sp < jp->ps + jp->nprocs ; sp++) {
726 1.1 cgd if (sp->pid == -1)
727 1.1 cgd continue;
728 1.1 cgd if (sp->pid == pid) {
729 1.1 cgd TRACE(("Changin status of proc %d from 0x%x to 0x%x\n", pid, sp->status, status));
730 1.1 cgd sp->status = status;
731 1.1 cgd thisjob = jp;
732 1.1 cgd }
733 1.1 cgd if (sp->status == -1)
734 1.1 cgd stopped = 0;
735 1.1 cgd else if ((sp->status & 0377) == 0177)
736 1.1 cgd done = 0;
737 1.1 cgd }
738 1.1 cgd if (stopped) { /* stopped or done */
739 1.1 cgd int state = done? JOBDONE : JOBSTOPPED;
740 1.1 cgd if (jp->state != state) {
741 1.1 cgd TRACE(("Job %d: changing state from %d to %d\n", jp - jobtab + 1, jp->state, state));
742 1.1 cgd jp->state = state;
743 1.1 cgd #if JOBS
744 1.1 cgd if (done && curjob == jp - jobtab + 1)
745 1.1 cgd curjob = 0; /* no current job */
746 1.1 cgd #endif
747 1.1 cgd }
748 1.1 cgd }
749 1.1 cgd }
750 1.1 cgd }
751 1.1 cgd INTON;
752 1.1 cgd if (! rootshell || ! iflag || (job && thisjob == job)) {
753 1.1 cgd #if JOBS
754 1.1 cgd if ((status & 0xFF) == 0177)
755 1.1 cgd status >>= 8;
756 1.1 cgd #endif
757 1.1 cgd core = status & 0x80;
758 1.1 cgd status &= 0x7F;
759 1.1 cgd if (status != 0 && status != SIGINT && status != SIGPIPE) {
760 1.1 cgd if (thisjob != job)
761 1.1 cgd outfmt(out2, "%d: ", pid);
762 1.1 cgd #if JOBS
763 1.1 cgd if (status == SIGTSTP && rootshell && iflag)
764 1.1 cgd outfmt(out2, "%%%d ", job - jobtab + 1);
765 1.1 cgd #endif
766 1.9 jtc if (status < NSIG && sys_siglist[status])
767 1.9 jtc out2str(sys_siglist[status]);
768 1.1 cgd else
769 1.1 cgd outfmt(out2, "Signal %d", status);
770 1.1 cgd if (core)
771 1.1 cgd out2str(" - core dumped");
772 1.1 cgd out2c('\n');
773 1.1 cgd flushout(&errout);
774 1.1 cgd } else {
775 1.1 cgd TRACE(("Not printing status: status=%d\n", status));
776 1.1 cgd }
777 1.1 cgd } else {
778 1.1 cgd TRACE(("Not printing status, rootshell=%d, job=0x%x\n", rootshell, job));
779 1.1 cgd if (thisjob)
780 1.1 cgd thisjob->changed = 1;
781 1.1 cgd }
782 1.1 cgd return pid;
783 1.1 cgd }
784 1.1 cgd
785 1.1 cgd
786 1.1 cgd
787 1.1 cgd /*
788 1.1 cgd * Do a wait system call. If job control is compiled in, we accept
789 1.1 cgd * stopped processes. If block is zero, we return a value of zero
790 1.1 cgd * rather than blocking.
791 1.1 cgd *
792 1.1 cgd * System V doesn't have a non-blocking wait system call. It does
793 1.1 cgd * have a SIGCLD signal that is sent to a process when one of it's
794 1.1 cgd * children dies. The obvious way to use SIGCLD would be to install
795 1.1 cgd * a handler for SIGCLD which simply bumped a counter when a SIGCLD
796 1.1 cgd * was received, and have waitproc bump another counter when it got
797 1.1 cgd * the status of a process. Waitproc would then know that a wait
798 1.1 cgd * system call would not block if the two counters were different.
799 1.1 cgd * This approach doesn't work because if a process has children that
800 1.1 cgd * have not been waited for, System V will send it a SIGCLD when it
801 1.1 cgd * installs a signal handler for SIGCLD. What this means is that when
802 1.1 cgd * a child exits, the shell will be sent SIGCLD signals continuously
803 1.1 cgd * until is runs out of stack space, unless it does a wait call before
804 1.1 cgd * restoring the signal handler. The code below takes advantage of
805 1.1 cgd * this (mis)feature by installing a signal handler for SIGCLD and
806 1.1 cgd * then checking to see whether it was called. If there are any
807 1.1 cgd * children to be waited for, it will be.
808 1.1 cgd *
809 1.1 cgd * If neither SYSV nor BSD is defined, we don't implement nonblocking
810 1.1 cgd * waits at all. In this case, the user will not be informed when
811 1.1 cgd * a background process until the next time she runs a real program
812 1.1 cgd * (as opposed to running a builtin command or just typing return),
813 1.1 cgd * and the jobs command may give out of date information.
814 1.1 cgd */
815 1.1 cgd
816 1.1 cgd #ifdef SYSV
817 1.1 cgd STATIC int gotsigchild;
818 1.1 cgd
819 1.1 cgd STATIC int onsigchild() {
820 1.1 cgd gotsigchild = 1;
821 1.1 cgd }
822 1.1 cgd #endif
823 1.1 cgd
824 1.1 cgd
825 1.1 cgd STATIC int
826 1.1 cgd waitproc(block, status)
827 1.13 cgd int block;
828 1.1 cgd int *status;
829 1.13 cgd {
830 1.1 cgd #ifdef BSD
831 1.1 cgd int flags;
832 1.1 cgd
833 1.1 cgd #if JOBS
834 1.1 cgd flags = WUNTRACED;
835 1.1 cgd #else
836 1.1 cgd flags = 0;
837 1.1 cgd #endif
838 1.1 cgd if (block == 0)
839 1.1 cgd flags |= WNOHANG;
840 1.8 jtc return wait3(status, flags, (struct rusage *)NULL);
841 1.1 cgd #else
842 1.1 cgd #ifdef SYSV
843 1.1 cgd int (*save)();
844 1.1 cgd
845 1.1 cgd if (block == 0) {
846 1.1 cgd gotsigchild = 0;
847 1.1 cgd save = signal(SIGCLD, onsigchild);
848 1.1 cgd signal(SIGCLD, save);
849 1.1 cgd if (gotsigchild == 0)
850 1.1 cgd return 0;
851 1.1 cgd }
852 1.1 cgd return wait(status);
853 1.1 cgd #else
854 1.1 cgd if (block == 0)
855 1.1 cgd return 0;
856 1.1 cgd return wait(status);
857 1.1 cgd #endif
858 1.1 cgd #endif
859 1.1 cgd }
860 1.1 cgd
861 1.8 jtc /*
862 1.8 jtc * return 1 if there are stopped jobs, otherwise 0
863 1.8 jtc */
864 1.8 jtc int job_warning = 0;
865 1.8 jtc int
866 1.8 jtc stoppedjobs()
867 1.8 jtc {
868 1.8 jtc register int jobno;
869 1.8 jtc register struct job *jp;
870 1.8 jtc
871 1.8 jtc if (job_warning)
872 1.8 jtc return (0);
873 1.8 jtc for (jobno = 1, jp = jobtab; jobno <= njobs; jobno++, jp++) {
874 1.8 jtc if (jp->used == 0)
875 1.8 jtc continue;
876 1.8 jtc if (jp->state == JOBSTOPPED) {
877 1.8 jtc out2str("You have stopped jobs.\n");
878 1.8 jtc job_warning = 2;
879 1.8 jtc return (1);
880 1.8 jtc }
881 1.8 jtc }
882 1.1 cgd
883 1.8 jtc return (0);
884 1.8 jtc }
885 1.1 cgd
886 1.1 cgd /*
887 1.1 cgd * Return a string identifying a command (to be printed by the
888 1.1 cgd * jobs command.
889 1.1 cgd */
890 1.1 cgd
891 1.1 cgd STATIC char *cmdnextc;
892 1.1 cgd STATIC int cmdnleft;
893 1.1 cgd STATIC void cmdtxt(), cmdputs();
894 1.8 jtc #define MAXCMDTEXT 200
895 1.1 cgd
896 1.8 jtc char *
897 1.1 cgd commandtext(n)
898 1.1 cgd union node *n;
899 1.1 cgd {
900 1.1 cgd char *name;
901 1.1 cgd
902 1.8 jtc cmdnextc = name = ckmalloc(MAXCMDTEXT);
903 1.8 jtc cmdnleft = MAXCMDTEXT - 4;
904 1.1 cgd cmdtxt(n);
905 1.1 cgd *cmdnextc = '\0';
906 1.1 cgd return name;
907 1.1 cgd }
908 1.1 cgd
909 1.1 cgd
910 1.1 cgd STATIC void
911 1.1 cgd cmdtxt(n)
912 1.1 cgd union node *n;
913 1.1 cgd {
914 1.1 cgd union node *np;
915 1.1 cgd struct nodelist *lp;
916 1.1 cgd char *p;
917 1.1 cgd int i;
918 1.1 cgd char s[2];
919 1.1 cgd
920 1.8 jtc if (n == NULL)
921 1.8 jtc return;
922 1.1 cgd switch (n->type) {
923 1.1 cgd case NSEMI:
924 1.1 cgd cmdtxt(n->nbinary.ch1);
925 1.1 cgd cmdputs("; ");
926 1.1 cgd cmdtxt(n->nbinary.ch2);
927 1.1 cgd break;
928 1.1 cgd case NAND:
929 1.1 cgd cmdtxt(n->nbinary.ch1);
930 1.1 cgd cmdputs(" && ");
931 1.1 cgd cmdtxt(n->nbinary.ch2);
932 1.1 cgd break;
933 1.1 cgd case NOR:
934 1.1 cgd cmdtxt(n->nbinary.ch1);
935 1.1 cgd cmdputs(" || ");
936 1.1 cgd cmdtxt(n->nbinary.ch2);
937 1.1 cgd break;
938 1.1 cgd case NPIPE:
939 1.1 cgd for (lp = n->npipe.cmdlist ; lp ; lp = lp->next) {
940 1.1 cgd cmdtxt(lp->n);
941 1.1 cgd if (lp->next)
942 1.1 cgd cmdputs(" | ");
943 1.1 cgd }
944 1.1 cgd break;
945 1.1 cgd case NSUBSHELL:
946 1.1 cgd cmdputs("(");
947 1.1 cgd cmdtxt(n->nredir.n);
948 1.1 cgd cmdputs(")");
949 1.1 cgd break;
950 1.1 cgd case NREDIR:
951 1.1 cgd case NBACKGND:
952 1.1 cgd cmdtxt(n->nredir.n);
953 1.1 cgd break;
954 1.1 cgd case NIF:
955 1.1 cgd cmdputs("if ");
956 1.1 cgd cmdtxt(n->nif.test);
957 1.1 cgd cmdputs("; then ");
958 1.1 cgd cmdtxt(n->nif.ifpart);
959 1.1 cgd cmdputs("...");
960 1.1 cgd break;
961 1.1 cgd case NWHILE:
962 1.1 cgd cmdputs("while ");
963 1.1 cgd goto until;
964 1.1 cgd case NUNTIL:
965 1.1 cgd cmdputs("until ");
966 1.1 cgd until:
967 1.1 cgd cmdtxt(n->nbinary.ch1);
968 1.1 cgd cmdputs("; do ");
969 1.1 cgd cmdtxt(n->nbinary.ch2);
970 1.1 cgd cmdputs("; done");
971 1.1 cgd break;
972 1.1 cgd case NFOR:
973 1.1 cgd cmdputs("for ");
974 1.1 cgd cmdputs(n->nfor.var);
975 1.1 cgd cmdputs(" in ...");
976 1.1 cgd break;
977 1.1 cgd case NCASE:
978 1.1 cgd cmdputs("case ");
979 1.1 cgd cmdputs(n->ncase.expr->narg.text);
980 1.1 cgd cmdputs(" in ...");
981 1.1 cgd break;
982 1.1 cgd case NDEFUN:
983 1.1 cgd cmdputs(n->narg.text);
984 1.1 cgd cmdputs("() ...");
985 1.1 cgd break;
986 1.1 cgd case NCMD:
987 1.1 cgd for (np = n->ncmd.args ; np ; np = np->narg.next) {
988 1.1 cgd cmdtxt(np);
989 1.1 cgd if (np->narg.next)
990 1.1 cgd cmdputs(" ");
991 1.1 cgd }
992 1.1 cgd for (np = n->ncmd.redirect ; np ; np = np->nfile.next) {
993 1.1 cgd cmdputs(" ");
994 1.1 cgd cmdtxt(np);
995 1.1 cgd }
996 1.1 cgd break;
997 1.1 cgd case NARG:
998 1.1 cgd cmdputs(n->narg.text);
999 1.1 cgd break;
1000 1.1 cgd case NTO:
1001 1.1 cgd p = ">"; i = 1; goto redir;
1002 1.1 cgd case NAPPEND:
1003 1.1 cgd p = ">>"; i = 1; goto redir;
1004 1.1 cgd case NTOFD:
1005 1.1 cgd p = ">&"; i = 1; goto redir;
1006 1.1 cgd case NFROM:
1007 1.1 cgd p = "<"; i = 0; goto redir;
1008 1.1 cgd case NFROMFD:
1009 1.1 cgd p = "<&"; i = 0; goto redir;
1010 1.1 cgd redir:
1011 1.1 cgd if (n->nfile.fd != i) {
1012 1.1 cgd s[0] = n->nfile.fd + '0';
1013 1.1 cgd s[1] = '\0';
1014 1.1 cgd cmdputs(s);
1015 1.1 cgd }
1016 1.1 cgd cmdputs(p);
1017 1.1 cgd if (n->type == NTOFD || n->type == NFROMFD) {
1018 1.1 cgd s[0] = n->ndup.dupfd + '0';
1019 1.1 cgd s[1] = '\0';
1020 1.1 cgd cmdputs(s);
1021 1.1 cgd } else {
1022 1.1 cgd cmdtxt(n->nfile.fname);
1023 1.1 cgd }
1024 1.1 cgd break;
1025 1.1 cgd case NHERE:
1026 1.1 cgd case NXHERE:
1027 1.1 cgd cmdputs("<<...");
1028 1.1 cgd break;
1029 1.1 cgd default:
1030 1.1 cgd cmdputs("???");
1031 1.1 cgd break;
1032 1.1 cgd }
1033 1.1 cgd }
1034 1.1 cgd
1035 1.1 cgd
1036 1.1 cgd
1037 1.1 cgd STATIC void
1038 1.1 cgd cmdputs(s)
1039 1.1 cgd char *s;
1040 1.1 cgd {
1041 1.1 cgd register char *p, *q;
1042 1.1 cgd register char c;
1043 1.1 cgd int subtype = 0;
1044 1.1 cgd
1045 1.1 cgd if (cmdnleft <= 0)
1046 1.1 cgd return;
1047 1.1 cgd p = s;
1048 1.1 cgd q = cmdnextc;
1049 1.1 cgd while ((c = *p++) != '\0') {
1050 1.1 cgd if (c == CTLESC)
1051 1.1 cgd *q++ = *p++;
1052 1.1 cgd else if (c == CTLVAR) {
1053 1.1 cgd *q++ = '$';
1054 1.1 cgd if (--cmdnleft > 0)
1055 1.1 cgd *q++ = '{';
1056 1.1 cgd subtype = *p++;
1057 1.1 cgd } else if (c == '=' && subtype != 0) {
1058 1.1 cgd *q++ = "}-+?="[(subtype & VSTYPE) - VSNORMAL];
1059 1.1 cgd subtype = 0;
1060 1.1 cgd } else if (c == CTLENDVAR) {
1061 1.1 cgd *q++ = '}';
1062 1.1 cgd } else if (c == CTLBACKQ | c == CTLBACKQ+CTLQUOTE)
1063 1.1 cgd cmdnleft++; /* ignore it */
1064 1.1 cgd else
1065 1.1 cgd *q++ = c;
1066 1.1 cgd if (--cmdnleft <= 0) {
1067 1.1 cgd *q++ = '.';
1068 1.1 cgd *q++ = '.';
1069 1.1 cgd *q++ = '.';
1070 1.1 cgd break;
1071 1.1 cgd }
1072 1.1 cgd }
1073 1.1 cgd cmdnextc = q;
1074 1.1 cgd }
1075