um: convert count_lock to mutex, fix a race in line_open()
[firefly-linux-kernel-4.4.55.git] / arch / um / drivers / line.c
1 /*
2  * Copyright (C) 2001 - 2007 Jeff Dike (jdike@{addtoit,linux.intel}.com)
3  * Licensed under the GPL
4  */
5
6 #include "linux/irqreturn.h"
7 #include "linux/kd.h"
8 #include "linux/sched.h"
9 #include "linux/slab.h"
10 #include "chan.h"
11 #include "irq_kern.h"
12 #include "irq_user.h"
13 #include "kern_util.h"
14 #include "os.h"
15
16 #define LINE_BUFSIZE 4096
17
18 static irqreturn_t line_interrupt(int irq, void *data)
19 {
20         struct chan *chan = data;
21         struct line *line = chan->line;
22
23         if (line)
24                 chan_interrupt(&line->chan_list, &line->task, line->tty, irq);
25         return IRQ_HANDLED;
26 }
27
28 static void line_timer_cb(struct work_struct *work)
29 {
30         struct line *line = container_of(work, struct line, task.work);
31
32         if (!line->throttled)
33                 chan_interrupt(&line->chan_list, &line->task, line->tty,
34                                line->driver->read_irq);
35 }
36
37 /*
38  * Returns the free space inside the ring buffer of this line.
39  *
40  * Should be called while holding line->lock (this does not modify data).
41  */
42 static int write_room(struct line *line)
43 {
44         int n;
45
46         if (line->buffer == NULL)
47                 return LINE_BUFSIZE - 1;
48
49         /* This is for the case where the buffer is wrapped! */
50         n = line->head - line->tail;
51
52         if (n <= 0)
53                 n += LINE_BUFSIZE; /* The other case */
54         return n - 1;
55 }
56
57 int line_write_room(struct tty_struct *tty)
58 {
59         struct line *line = tty->driver_data;
60         unsigned long flags;
61         int room;
62
63         spin_lock_irqsave(&line->lock, flags);
64         room = write_room(line);
65         spin_unlock_irqrestore(&line->lock, flags);
66
67         return room;
68 }
69
70 int line_chars_in_buffer(struct tty_struct *tty)
71 {
72         struct line *line = tty->driver_data;
73         unsigned long flags;
74         int ret;
75
76         spin_lock_irqsave(&line->lock, flags);
77         /* write_room subtracts 1 for the needed NULL, so we readd it.*/
78         ret = LINE_BUFSIZE - (write_room(line) + 1);
79         spin_unlock_irqrestore(&line->lock, flags);
80
81         return ret;
82 }
83
84 /*
85  * This copies the content of buf into the circular buffer associated with
86  * this line.
87  * The return value is the number of characters actually copied, i.e. the ones
88  * for which there was space: this function is not supposed to ever flush out
89  * the circular buffer.
90  *
91  * Must be called while holding line->lock!
92  */
93 static int buffer_data(struct line *line, const char *buf, int len)
94 {
95         int end, room;
96
97         if (line->buffer == NULL) {
98                 line->buffer = kmalloc(LINE_BUFSIZE, GFP_ATOMIC);
99                 if (line->buffer == NULL) {
100                         printk(KERN_ERR "buffer_data - atomic allocation "
101                                "failed\n");
102                         return 0;
103                 }
104                 line->head = line->buffer;
105                 line->tail = line->buffer;
106         }
107
108         room = write_room(line);
109         len = (len > room) ? room : len;
110
111         end = line->buffer + LINE_BUFSIZE - line->tail;
112
113         if (len < end) {
114                 memcpy(line->tail, buf, len);
115                 line->tail += len;
116         }
117         else {
118                 /* The circular buffer is wrapping */
119                 memcpy(line->tail, buf, end);
120                 buf += end;
121                 memcpy(line->buffer, buf, len - end);
122                 line->tail = line->buffer + len - end;
123         }
124
125         return len;
126 }
127
128 /*
129  * Flushes the ring buffer to the output channels. That is, write_chan is
130  * called, passing it line->head as buffer, and an appropriate count.
131  *
132  * On exit, returns 1 when the buffer is empty,
133  * 0 when the buffer is not empty on exit,
134  * and -errno when an error occurred.
135  *
136  * Must be called while holding line->lock!*/
137 static int flush_buffer(struct line *line)
138 {
139         int n, count;
140
141         if ((line->buffer == NULL) || (line->head == line->tail))
142                 return 1;
143
144         if (line->tail < line->head) {
145                 /* line->buffer + LINE_BUFSIZE is the end of the buffer! */
146                 count = line->buffer + LINE_BUFSIZE - line->head;
147
148                 n = write_chan(&line->chan_list, line->head, count,
149                                line->driver->write_irq);
150                 if (n < 0)
151                         return n;
152                 if (n == count) {
153                         /*
154                          * We have flushed from ->head to buffer end, now we
155                          * must flush only from the beginning to ->tail.
156                          */
157                         line->head = line->buffer;
158                 } else {
159                         line->head += n;
160                         return 0;
161                 }
162         }
163
164         count = line->tail - line->head;
165         n = write_chan(&line->chan_list, line->head, count,
166                        line->driver->write_irq);
167
168         if (n < 0)
169                 return n;
170
171         line->head += n;
172         return line->head == line->tail;
173 }
174
175 void line_flush_buffer(struct tty_struct *tty)
176 {
177         struct line *line = tty->driver_data;
178         unsigned long flags;
179
180         spin_lock_irqsave(&line->lock, flags);
181         flush_buffer(line);
182         spin_unlock_irqrestore(&line->lock, flags);
183 }
184
185 /*
186  * We map both ->flush_chars and ->put_char (which go in pair) onto
187  * ->flush_buffer and ->write. Hope it's not that bad.
188  */
189 void line_flush_chars(struct tty_struct *tty)
190 {
191         line_flush_buffer(tty);
192 }
193
194 int line_put_char(struct tty_struct *tty, unsigned char ch)
195 {
196         return line_write(tty, &ch, sizeof(ch));
197 }
198
199 int line_write(struct tty_struct *tty, const unsigned char *buf, int len)
200 {
201         struct line *line = tty->driver_data;
202         unsigned long flags;
203         int n, ret = 0;
204
205         spin_lock_irqsave(&line->lock, flags);
206         if (line->head != line->tail)
207                 ret = buffer_data(line, buf, len);
208         else {
209                 n = write_chan(&line->chan_list, buf, len,
210                                line->driver->write_irq);
211                 if (n < 0) {
212                         ret = n;
213                         goto out_up;
214                 }
215
216                 len -= n;
217                 ret += n;
218                 if (len > 0)
219                         ret += buffer_data(line, buf + n, len);
220         }
221 out_up:
222         spin_unlock_irqrestore(&line->lock, flags);
223         return ret;
224 }
225
226 void line_set_termios(struct tty_struct *tty, struct ktermios * old)
227 {
228         /* nothing */
229 }
230
231 static const struct {
232         int  cmd;
233         char *level;
234         char *name;
235 } tty_ioctls[] = {
236         /* don't print these, they flood the log ... */
237         { TCGETS,      NULL,       "TCGETS"      },
238         { TCSETS,      NULL,       "TCSETS"      },
239         { TCSETSW,     NULL,       "TCSETSW"     },
240         { TCFLSH,      NULL,       "TCFLSH"      },
241         { TCSBRK,      NULL,       "TCSBRK"      },
242
243         /* general tty stuff */
244         { TCSETSF,     KERN_DEBUG, "TCSETSF"     },
245         { TCGETA,      KERN_DEBUG, "TCGETA"      },
246         { TIOCMGET,    KERN_DEBUG, "TIOCMGET"    },
247         { TCSBRKP,     KERN_DEBUG, "TCSBRKP"     },
248         { TIOCMSET,    KERN_DEBUG, "TIOCMSET"    },
249
250         /* linux-specific ones */
251         { TIOCLINUX,   KERN_INFO,  "TIOCLINUX"   },
252         { KDGKBMODE,   KERN_INFO,  "KDGKBMODE"   },
253         { KDGKBTYPE,   KERN_INFO,  "KDGKBTYPE"   },
254         { KDSIGACCEPT, KERN_INFO,  "KDSIGACCEPT" },
255 };
256
257 int line_ioctl(struct tty_struct *tty, unsigned int cmd,
258                                 unsigned long arg)
259 {
260         int ret;
261         int i;
262
263         ret = 0;
264         switch(cmd) {
265 #ifdef TIOCGETP
266         case TIOCGETP:
267         case TIOCSETP:
268         case TIOCSETN:
269 #endif
270 #ifdef TIOCGETC
271         case TIOCGETC:
272         case TIOCSETC:
273 #endif
274 #ifdef TIOCGLTC
275         case TIOCGLTC:
276         case TIOCSLTC:
277 #endif
278         /* Note: these are out of date as we now have TCGETS2 etc but this
279            whole lot should probably go away */
280         case TCGETS:
281         case TCSETSF:
282         case TCSETSW:
283         case TCSETS:
284         case TCGETA:
285         case TCSETAF:
286         case TCSETAW:
287         case TCSETA:
288         case TCXONC:
289         case TCFLSH:
290         case TIOCOUTQ:
291         case TIOCINQ:
292         case TIOCGLCKTRMIOS:
293         case TIOCSLCKTRMIOS:
294         case TIOCPKT:
295         case TIOCGSOFTCAR:
296         case TIOCSSOFTCAR:
297                 return -ENOIOCTLCMD;
298 #if 0
299         case TCwhatever:
300                 /* do something */
301                 break;
302 #endif
303         default:
304                 for (i = 0; i < ARRAY_SIZE(tty_ioctls); i++)
305                         if (cmd == tty_ioctls[i].cmd)
306                                 break;
307                 if (i == ARRAY_SIZE(tty_ioctls)) {
308                         printk(KERN_ERR "%s: %s: unknown ioctl: 0x%x\n",
309                                __func__, tty->name, cmd);
310                 }
311                 ret = -ENOIOCTLCMD;
312                 break;
313         }
314         return ret;
315 }
316
317 void line_throttle(struct tty_struct *tty)
318 {
319         struct line *line = tty->driver_data;
320
321         deactivate_chan(&line->chan_list, line->driver->read_irq);
322         line->throttled = 1;
323 }
324
325 void line_unthrottle(struct tty_struct *tty)
326 {
327         struct line *line = tty->driver_data;
328
329         line->throttled = 0;
330         chan_interrupt(&line->chan_list, &line->task, tty,
331                        line->driver->read_irq);
332
333         /*
334          * Maybe there is enough stuff pending that calling the interrupt
335          * throttles us again.  In this case, line->throttled will be 1
336          * again and we shouldn't turn the interrupt back on.
337          */
338         if (!line->throttled)
339                 reactivate_chan(&line->chan_list, line->driver->read_irq);
340 }
341
342 static irqreturn_t line_write_interrupt(int irq, void *data)
343 {
344         struct chan *chan = data;
345         struct line *line = chan->line;
346         struct tty_struct *tty = line->tty;
347         int err;
348
349         /*
350          * Interrupts are disabled here because genirq keep irqs disabled when
351          * calling the action handler.
352          */
353
354         spin_lock(&line->lock);
355         err = flush_buffer(line);
356         if (err == 0) {
357                 return IRQ_NONE;
358         } else if (err < 0) {
359                 line->head = line->buffer;
360                 line->tail = line->buffer;
361         }
362         spin_unlock(&line->lock);
363
364         if (tty == NULL)
365                 return IRQ_NONE;
366
367         tty_wakeup(tty);
368         return IRQ_HANDLED;
369 }
370
371 int line_setup_irq(int fd, int input, int output, struct line *line, void *data)
372 {
373         const struct line_driver *driver = line->driver;
374         int err = 0, flags = IRQF_SHARED | IRQF_SAMPLE_RANDOM;
375
376         if (input)
377                 err = um_request_irq(driver->read_irq, fd, IRQ_READ,
378                                        line_interrupt, flags,
379                                        driver->read_irq_name, data);
380         if (err)
381                 return err;
382         if (output)
383                 err = um_request_irq(driver->write_irq, fd, IRQ_WRITE,
384                                         line_write_interrupt, flags,
385                                         driver->write_irq_name, data);
386         line->have_irq = 1;
387         return err;
388 }
389
390 /*
391  * Normally, a driver like this can rely mostly on the tty layer
392  * locking, particularly when it comes to the driver structure.
393  * However, in this case, mconsole requests can come in "from the
394  * side", and race with opens and closes.
395  *
396  * mconsole config requests will want to be sure the device isn't in
397  * use, and get_config, open, and close will want a stable
398  * configuration.  The checking and modification of the configuration
399  * is done under a spinlock.  Checking whether the device is in use is
400  * line->tty->count > 1, also under the spinlock.
401  *
402  * line->count serves to decide whether the device should be enabled or
403  * disabled on the host.  If it's equal to 0, then we are doing the
404  * first open or last close.  Otherwise, open and close just return.
405  */
406
407 int line_open(struct line *lines, struct tty_struct *tty)
408 {
409         struct line *line = &lines[tty->index];
410         int err = -ENODEV;
411
412         mutex_lock(&line->count_lock);
413         if (!line->valid)
414                 goto out_unlock;
415
416         err = 0;
417         if (line->count++)
418                 goto out_unlock;
419
420         BUG_ON(tty->driver_data);
421         tty->driver_data = line;
422         line->tty = tty;
423
424         err = enable_chan(line);
425         if (err) /* line_close() will be called by our caller */
426                 goto out_unlock;
427
428         INIT_DELAYED_WORK(&line->task, line_timer_cb);
429
430         if (!line->sigio) {
431                 chan_enable_winch(&line->chan_list, tty);
432                 line->sigio = 1;
433         }
434
435         chan_window_size(&line->chan_list, &tty->winsize.ws_row,
436                          &tty->winsize.ws_col);
437 out_unlock:
438         mutex_unlock(&line->count_lock);
439         return err;
440 }
441
442 static void unregister_winch(struct tty_struct *tty);
443
444 void line_close(struct tty_struct *tty, struct file * filp)
445 {
446         struct line *line = tty->driver_data;
447
448         /*
449          * If line_open fails (and tty->driver_data is never set),
450          * tty_open will call line_close.  So just return in this case.
451          */
452         if (line == NULL)
453                 return;
454
455         /* We ignore the error anyway! */
456         flush_buffer(line);
457
458         mutex_lock(&line->count_lock);
459         BUG_ON(!line->valid);
460
461         if (--line->count)
462                 goto out_unlock;
463
464         line->tty = NULL;
465         tty->driver_data = NULL;
466
467         if (line->sigio) {
468                 unregister_winch(tty);
469                 line->sigio = 0;
470         }
471
472 out_unlock:
473         mutex_unlock(&line->count_lock);
474 }
475
476 void close_lines(struct line *lines, int nlines)
477 {
478         int i;
479
480         for(i = 0; i < nlines; i++)
481                 close_chan(&lines[i].chan_list, 0);
482 }
483
484 static int setup_one_line(struct line *lines, int n, char *init,
485                           char **error_out)
486 {
487         struct line *line = &lines[n];
488         int err = -EINVAL;
489
490         mutex_lock(&line->count_lock);
491
492         if (line->count) {
493                 *error_out = "Device is already open";
494                 goto out;
495         }
496
497         if (!strcmp(init, "none"))
498                 line->valid = 0;
499         else {
500                 line->init_str = init;
501                 line->valid = 1;
502         }
503         err = 0;
504 out:
505         mutex_unlock(&line->count_lock);
506         return err;
507 }
508
509 /*
510  * Common setup code for both startup command line and mconsole initialization.
511  * @lines contains the array (of size @num) to modify;
512  * @init is the setup string;
513  * @error_out is an error string in the case of failure;
514  */
515
516 int line_setup(char **conf, unsigned int num, char **def,
517                char *init, char *name)
518 {
519         char *error;
520
521         if (*init == '=') {
522                 /*
523                  * We said con=/ssl= instead of con#=, so we are configuring all
524                  * consoles at once.
525                  */
526                 *def = init + 1;
527         } else {
528                 char *end;
529                 unsigned n = simple_strtoul(init, &end, 0);
530
531                 if (*end != '=') {
532                         error = "Couldn't parse device number";
533                         goto out;
534                 }
535                 if (n >= num) {
536                         error = "Device number out of range";
537                         goto out;
538                 }
539                 conf[n] = end + 1;
540         }
541         return 0;
542
543 out:
544         printk(KERN_ERR "Failed to set up %s with "
545                "configuration string \"%s\" : %s\n", name, init, error);
546         return -EINVAL;
547 }
548
549 int line_config(struct line *lines, unsigned int num, char *str,
550                 const struct chan_opts *opts, char **error_out)
551 {
552         struct line *line;
553         char *new;
554         char *end;
555         int n, err;
556
557         if (*str == '=') {
558                 *error_out = "Can't configure all devices from mconsole";
559                 return -EINVAL;
560         }
561
562         n = simple_strtoul(str, &end, 0);
563         if (*end++ != '=') {
564                 *error_out = "Couldn't parse device number";
565                 return -EINVAL;
566         }
567         if (n >= num) {
568                 *error_out = "Device number out of range";
569                 return -EINVAL;
570         }
571
572         new = kstrdup(end, GFP_KERNEL);
573         if (new == NULL) {
574                 *error_out = "Failed to allocate memory";
575                 return -ENOMEM;
576         }
577         err = setup_one_line(lines, n, new, error_out);
578         if (err)
579                 return err;
580         line = &lines[n];
581         return parse_chan_pair(line->init_str, line, n, opts, error_out);
582 }
583
584 int line_get_config(char *name, struct line *lines, unsigned int num, char *str,
585                     int size, char **error_out)
586 {
587         struct line *line;
588         char *end;
589         int dev, n = 0;
590
591         dev = simple_strtoul(name, &end, 0);
592         if ((*end != '\0') || (end == name)) {
593                 *error_out = "line_get_config failed to parse device number";
594                 return 0;
595         }
596
597         if ((dev < 0) || (dev >= num)) {
598                 *error_out = "device number out of range";
599                 return 0;
600         }
601
602         line = &lines[dev];
603
604         mutex_lock(&line->count_lock);
605         if (!line->valid)
606                 CONFIG_CHUNK(str, size, n, "none", 1);
607         else if (line->tty == NULL)
608                 CONFIG_CHUNK(str, size, n, line->init_str, 1);
609         else n = chan_config_string(&line->chan_list, str, size, error_out);
610         mutex_unlock(&line->count_lock);
611
612         return n;
613 }
614
615 int line_id(char **str, int *start_out, int *end_out)
616 {
617         char *end;
618         int n;
619
620         n = simple_strtoul(*str, &end, 0);
621         if ((*end != '\0') || (end == *str))
622                 return -1;
623
624         *str = end;
625         *start_out = n;
626         *end_out = n;
627         return n;
628 }
629
630 int line_remove(struct line *lines, unsigned int num, int n, char **error_out)
631 {
632         if (n >= num) {
633                 *error_out = "Device number out of range";
634                 return -EINVAL;
635         }
636         return setup_one_line(lines, n, "none", error_out);
637 }
638
639 struct tty_driver *register_lines(struct line_driver *line_driver,
640                                   const struct tty_operations *ops,
641                                   struct line *lines, int nlines)
642 {
643         int i;
644         struct tty_driver *driver = alloc_tty_driver(nlines);
645
646         if (!driver)
647                 return NULL;
648
649         driver->driver_name = line_driver->name;
650         driver->name = line_driver->device_name;
651         driver->major = line_driver->major;
652         driver->minor_start = line_driver->minor_start;
653         driver->type = line_driver->type;
654         driver->subtype = line_driver->subtype;
655         driver->flags = TTY_DRIVER_REAL_RAW;
656         driver->init_termios = tty_std_termios;
657         tty_set_operations(driver, ops);
658
659         if (tty_register_driver(driver)) {
660                 printk(KERN_ERR "register_lines : can't register %s driver\n",
661                        line_driver->name);
662                 put_tty_driver(driver);
663                 return NULL;
664         }
665
666         for(i = 0; i < nlines; i++) {
667                 if (!lines[i].valid)
668                         tty_unregister_device(driver, i);
669         }
670
671         mconsole_register_dev(&line_driver->mc);
672         return driver;
673 }
674
675 static DEFINE_SPINLOCK(winch_handler_lock);
676 static LIST_HEAD(winch_handlers);
677
678 void lines_init(struct line *lines, int nlines, struct chan_opts *opts)
679 {
680         struct line *line;
681         char *error;
682         int i;
683
684         for(i = 0; i < nlines; i++) {
685                 line = &lines[i];
686                 INIT_LIST_HEAD(&line->chan_list);
687
688                 if (line->init_str == NULL)
689                         continue;
690
691                 line->init_str = kstrdup(line->init_str, GFP_KERNEL);
692                 if (line->init_str == NULL)
693                         printk(KERN_ERR "lines_init - kstrdup returned NULL\n");
694
695                 if (parse_chan_pair(line->init_str, line, i, opts, &error)) {
696                         printk(KERN_ERR "parse_chan_pair failed for "
697                                "device %d : %s\n", i, error);
698                         line->valid = 0;
699                 }
700         }
701 }
702
703 struct winch {
704         struct list_head list;
705         int fd;
706         int tty_fd;
707         int pid;
708         struct tty_struct *tty;
709         unsigned long stack;
710         struct work_struct work;
711 };
712
713 static void __free_winch(struct work_struct *work)
714 {
715         struct winch *winch = container_of(work, struct winch, work);
716         free_irq(WINCH_IRQ, winch);
717
718         if (winch->pid != -1)
719                 os_kill_process(winch->pid, 1);
720         if (winch->stack != 0)
721                 free_stack(winch->stack, 0);
722         kfree(winch);
723 }
724
725 static void free_winch(struct winch *winch)
726 {
727         int fd = winch->fd;
728         winch->fd = -1;
729         if (fd != -1)
730                 os_close_file(fd);
731         list_del(&winch->list);
732         __free_winch(&winch->work);
733 }
734
735 static irqreturn_t winch_interrupt(int irq, void *data)
736 {
737         struct winch *winch = data;
738         struct tty_struct *tty;
739         struct line *line;
740         int fd = winch->fd;
741         int err;
742         char c;
743
744         if (fd != -1) {
745                 err = generic_read(fd, &c, NULL);
746                 if (err < 0) {
747                         if (err != -EAGAIN) {
748                                 winch->fd = -1;
749                                 list_del(&winch->list);
750                                 os_close_file(fd);
751                                 printk(KERN_ERR "winch_interrupt : "
752                                        "read failed, errno = %d\n", -err);
753                                 printk(KERN_ERR "fd %d is losing SIGWINCH "
754                                        "support\n", winch->tty_fd);
755                                 INIT_WORK(&winch->work, __free_winch);
756                                 schedule_work(&winch->work);
757                                 return IRQ_HANDLED;
758                         }
759                         goto out;
760                 }
761         }
762         tty = winch->tty;
763         if (tty != NULL) {
764                 line = tty->driver_data;
765                 if (line != NULL) {
766                         chan_window_size(&line->chan_list, &tty->winsize.ws_row,
767                                          &tty->winsize.ws_col);
768                         kill_pgrp(tty->pgrp, SIGWINCH, 1);
769                 }
770         }
771  out:
772         if (winch->fd != -1)
773                 reactivate_fd(winch->fd, WINCH_IRQ);
774         return IRQ_HANDLED;
775 }
776
777 void register_winch_irq(int fd, int tty_fd, int pid, struct tty_struct *tty,
778                         unsigned long stack)
779 {
780         struct winch *winch;
781
782         winch = kmalloc(sizeof(*winch), GFP_KERNEL);
783         if (winch == NULL) {
784                 printk(KERN_ERR "register_winch_irq - kmalloc failed\n");
785                 goto cleanup;
786         }
787
788         *winch = ((struct winch) { .list        = LIST_HEAD_INIT(winch->list),
789                                    .fd          = fd,
790                                    .tty_fd      = tty_fd,
791                                    .pid         = pid,
792                                    .tty         = tty,
793                                    .stack       = stack });
794
795         if (um_request_irq(WINCH_IRQ, fd, IRQ_READ, winch_interrupt,
796                            IRQF_SHARED | IRQF_SAMPLE_RANDOM,
797                            "winch", winch) < 0) {
798                 printk(KERN_ERR "register_winch_irq - failed to register "
799                        "IRQ\n");
800                 goto out_free;
801         }
802
803         spin_lock(&winch_handler_lock);
804         list_add(&winch->list, &winch_handlers);
805         spin_unlock(&winch_handler_lock);
806
807         return;
808
809  out_free:
810         kfree(winch);
811  cleanup:
812         os_kill_process(pid, 1);
813         os_close_file(fd);
814         if (stack != 0)
815                 free_stack(stack, 0);
816 }
817
818 static void unregister_winch(struct tty_struct *tty)
819 {
820         struct list_head *ele, *next;
821         struct winch *winch;
822
823         spin_lock(&winch_handler_lock);
824
825         list_for_each_safe(ele, next, &winch_handlers) {
826                 winch = list_entry(ele, struct winch, list);
827                 if (winch->tty == tty) {
828                         free_winch(winch);
829                         break;
830                 }
831         }
832         spin_unlock(&winch_handler_lock);
833 }
834
835 static void winch_cleanup(void)
836 {
837         struct list_head *ele, *next;
838         struct winch *winch;
839
840         spin_lock(&winch_handler_lock);
841
842         list_for_each_safe(ele, next, &winch_handlers) {
843                 winch = list_entry(ele, struct winch, list);
844                 free_winch(winch);
845         }
846
847         spin_unlock(&winch_handler_lock);
848 }
849 __uml_exitcall(winch_cleanup);
850
851 char *add_xterm_umid(char *base)
852 {
853         char *umid, *title;
854         int len;
855
856         umid = get_umid();
857         if (*umid == '\0')
858                 return base;
859
860         len = strlen(base) + strlen(" ()") + strlen(umid) + 1;
861         title = kmalloc(len, GFP_KERNEL);
862         if (title == NULL) {
863                 printk(KERN_ERR "Failed to allocate buffer for xterm title\n");
864                 return base;
865         }
866
867         snprintf(title, len, "%s (%s)", base, umid);
868         return title;
869 }