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tty: Fix high cpu load if tty is unreleaseable
[karo-tx-linux.git] / drivers / tty / tty_io.c
1 /*
2  *  Copyright (C) 1991, 1992  Linus Torvalds
3  */
4
5 /*
6  * 'tty_io.c' gives an orthogonal feeling to tty's, be they consoles
7  * or rs-channels. It also implements echoing, cooked mode etc.
8  *
9  * Kill-line thanks to John T Kohl, who also corrected VMIN = VTIME = 0.
10  *
11  * Modified by Theodore Ts'o, 9/14/92, to dynamically allocate the
12  * tty_struct and tty_queue structures.  Previously there was an array
13  * of 256 tty_struct's which was statically allocated, and the
14  * tty_queue structures were allocated at boot time.  Both are now
15  * dynamically allocated only when the tty is open.
16  *
17  * Also restructured routines so that there is more of a separation
18  * between the high-level tty routines (tty_io.c and tty_ioctl.c) and
19  * the low-level tty routines (serial.c, pty.c, console.c).  This
20  * makes for cleaner and more compact code.  -TYT, 9/17/92
21  *
22  * Modified by Fred N. van Kempen, 01/29/93, to add line disciplines
23  * which can be dynamically activated and de-activated by the line
24  * discipline handling modules (like SLIP).
25  *
26  * NOTE: pay no attention to the line discipline code (yet); its
27  * interface is still subject to change in this version...
28  * -- TYT, 1/31/92
29  *
30  * Added functionality to the OPOST tty handling.  No delays, but all
31  * other bits should be there.
32  *      -- Nick Holloway <alfie@dcs.warwick.ac.uk>, 27th May 1993.
33  *
34  * Rewrote canonical mode and added more termios flags.
35  *      -- julian@uhunix.uhcc.hawaii.edu (J. Cowley), 13Jan94
36  *
37  * Reorganized FASYNC support so mouse code can share it.
38  *      -- ctm@ardi.com, 9Sep95
39  *
40  * New TIOCLINUX variants added.
41  *      -- mj@k332.feld.cvut.cz, 19-Nov-95
42  *
43  * Restrict vt switching via ioctl()
44  *      -- grif@cs.ucr.edu, 5-Dec-95
45  *
46  * Move console and virtual terminal code to more appropriate files,
47  * implement CONFIG_VT and generalize console device interface.
48  *      -- Marko Kohtala <Marko.Kohtala@hut.fi>, March 97
49  *
50  * Rewrote tty_init_dev and tty_release_dev to eliminate races.
51  *      -- Bill Hawes <whawes@star.net>, June 97
52  *
53  * Added devfs support.
54  *      -- C. Scott Ananian <cananian@alumni.princeton.edu>, 13-Jan-1998
55  *
56  * Added support for a Unix98-style ptmx device.
57  *      -- C. Scott Ananian <cananian@alumni.princeton.edu>, 14-Jan-1998
58  *
59  * Reduced memory usage for older ARM systems
60  *      -- Russell King <rmk@arm.linux.org.uk>
61  *
62  * Move do_SAK() into process context.  Less stack use in devfs functions.
63  * alloc_tty_struct() always uses kmalloc()
64  *                       -- Andrew Morton <andrewm@uow.edu.eu> 17Mar01
65  */
66
67 #include <linux/types.h>
68 #include <linux/major.h>
69 #include <linux/errno.h>
70 #include <linux/signal.h>
71 #include <linux/fcntl.h>
72 #include <linux/sched.h>
73 #include <linux/interrupt.h>
74 #include <linux/tty.h>
75 #include <linux/tty_driver.h>
76 #include <linux/tty_flip.h>
77 #include <linux/devpts_fs.h>
78 #include <linux/file.h>
79 #include <linux/fdtable.h>
80 #include <linux/console.h>
81 #include <linux/timer.h>
82 #include <linux/ctype.h>
83 #include <linux/kd.h>
84 #include <linux/mm.h>
85 #include <linux/string.h>
86 #include <linux/slab.h>
87 #include <linux/poll.h>
88 #include <linux/proc_fs.h>
89 #include <linux/init.h>
90 #include <linux/module.h>
91 #include <linux/device.h>
92 #include <linux/wait.h>
93 #include <linux/bitops.h>
94 #include <linux/delay.h>
95 #include <linux/seq_file.h>
96 #include <linux/serial.h>
97 #include <linux/ratelimit.h>
98
99 #include <linux/uaccess.h>
100
101 #include <linux/kbd_kern.h>
102 #include <linux/vt_kern.h>
103 #include <linux/selection.h>
104
105 #include <linux/kmod.h>
106 #include <linux/nsproxy.h>
107
108 #undef TTY_DEBUG_HANGUP
109
110 #define TTY_PARANOIA_CHECK 1
111 #define CHECK_TTY_COUNT 1
112
113 struct ktermios tty_std_termios = {     /* for the benefit of tty drivers  */
114         .c_iflag = ICRNL | IXON,
115         .c_oflag = OPOST | ONLCR,
116         .c_cflag = B38400 | CS8 | CREAD | HUPCL,
117         .c_lflag = ISIG | ICANON | ECHO | ECHOE | ECHOK |
118                    ECHOCTL | ECHOKE | IEXTEN,
119         .c_cc = INIT_C_CC,
120         .c_ispeed = 38400,
121         .c_ospeed = 38400
122 };
123
124 EXPORT_SYMBOL(tty_std_termios);
125
126 /* This list gets poked at by procfs and various bits of boot up code. This
127    could do with some rationalisation such as pulling the tty proc function
128    into this file */
129
130 LIST_HEAD(tty_drivers);                 /* linked list of tty drivers */
131
132 /* Mutex to protect creating and releasing a tty. This is shared with
133    vt.c for deeply disgusting hack reasons */
134 DEFINE_MUTEX(tty_mutex);
135 EXPORT_SYMBOL(tty_mutex);
136
137 /* Spinlock to protect the tty->tty_files list */
138 DEFINE_SPINLOCK(tty_files_lock);
139
140 static ssize_t tty_read(struct file *, char __user *, size_t, loff_t *);
141 static ssize_t tty_write(struct file *, const char __user *, size_t, loff_t *);
142 ssize_t redirected_tty_write(struct file *, const char __user *,
143                                                         size_t, loff_t *);
144 static unsigned int tty_poll(struct file *, poll_table *);
145 static int tty_open(struct inode *, struct file *);
146 long tty_ioctl(struct file *file, unsigned int cmd, unsigned long arg);
147 #ifdef CONFIG_COMPAT
148 static long tty_compat_ioctl(struct file *file, unsigned int cmd,
149                                 unsigned long arg);
150 #else
151 #define tty_compat_ioctl NULL
152 #endif
153 static int __tty_fasync(int fd, struct file *filp, int on);
154 static int tty_fasync(int fd, struct file *filp, int on);
155 static void release_tty(struct tty_struct *tty, int idx);
156 static void __proc_set_tty(struct task_struct *tsk, struct tty_struct *tty);
157 static void proc_set_tty(struct task_struct *tsk, struct tty_struct *tty);
158
159 /**
160  *      free_tty_struct         -       free a disused tty
161  *      @tty: tty struct to free
162  *
163  *      Free the write buffers, tty queue and tty memory itself.
164  *
165  *      Locking: none. Must be called after tty is definitely unused
166  */
167
168 void free_tty_struct(struct tty_struct *tty)
169 {
170         if (!tty)
171                 return;
172         if (tty->dev)
173                 put_device(tty->dev);
174         kfree(tty->write_buf);
175         tty->magic = 0xDEADDEAD;
176         kfree(tty);
177 }
178
179 static inline struct tty_struct *file_tty(struct file *file)
180 {
181         return ((struct tty_file_private *)file->private_data)->tty;
182 }
183
184 int tty_alloc_file(struct file *file)
185 {
186         struct tty_file_private *priv;
187
188         priv = kmalloc(sizeof(*priv), GFP_KERNEL);
189         if (!priv)
190                 return -ENOMEM;
191
192         file->private_data = priv;
193
194         return 0;
195 }
196
197 /* Associate a new file with the tty structure */
198 void tty_add_file(struct tty_struct *tty, struct file *file)
199 {
200         struct tty_file_private *priv = file->private_data;
201
202         priv->tty = tty;
203         priv->file = file;
204
205         spin_lock(&tty_files_lock);
206         list_add(&priv->list, &tty->tty_files);
207         spin_unlock(&tty_files_lock);
208 }
209
210 /**
211  * tty_free_file - free file->private_data
212  *
213  * This shall be used only for fail path handling when tty_add_file was not
214  * called yet.
215  */
216 void tty_free_file(struct file *file)
217 {
218         struct tty_file_private *priv = file->private_data;
219
220         file->private_data = NULL;
221         kfree(priv);
222 }
223
224 /* Delete file from its tty */
225 static void tty_del_file(struct file *file)
226 {
227         struct tty_file_private *priv = file->private_data;
228
229         spin_lock(&tty_files_lock);
230         list_del(&priv->list);
231         spin_unlock(&tty_files_lock);
232         tty_free_file(file);
233 }
234
235
236 #define TTY_NUMBER(tty) ((tty)->index + (tty)->driver->name_base)
237
238 /**
239  *      tty_name        -       return tty naming
240  *      @tty: tty structure
241  *      @buf: buffer for output
242  *
243  *      Convert a tty structure into a name. The name reflects the kernel
244  *      naming policy and if udev is in use may not reflect user space
245  *
246  *      Locking: none
247  */
248
249 char *tty_name(struct tty_struct *tty, char *buf)
250 {
251         if (!tty) /* Hmm.  NULL pointer.  That's fun. */
252                 strcpy(buf, "NULL tty");
253         else
254                 strcpy(buf, tty->name);
255         return buf;
256 }
257
258 EXPORT_SYMBOL(tty_name);
259
260 int tty_paranoia_check(struct tty_struct *tty, struct inode *inode,
261                               const char *routine)
262 {
263 #ifdef TTY_PARANOIA_CHECK
264         if (!tty) {
265                 printk(KERN_WARNING
266                         "null TTY for (%d:%d) in %s\n",
267                         imajor(inode), iminor(inode), routine);
268                 return 1;
269         }
270         if (tty->magic != TTY_MAGIC) {
271                 printk(KERN_WARNING
272                         "bad magic number for tty struct (%d:%d) in %s\n",
273                         imajor(inode), iminor(inode), routine);
274                 return 1;
275         }
276 #endif
277         return 0;
278 }
279
280 static int check_tty_count(struct tty_struct *tty, const char *routine)
281 {
282 #ifdef CHECK_TTY_COUNT
283         struct list_head *p;
284         int count = 0;
285
286         spin_lock(&tty_files_lock);
287         list_for_each(p, &tty->tty_files) {
288                 count++;
289         }
290         spin_unlock(&tty_files_lock);
291         if (tty->driver->type == TTY_DRIVER_TYPE_PTY &&
292             tty->driver->subtype == PTY_TYPE_SLAVE &&
293             tty->link && tty->link->count)
294                 count++;
295         if (tty->count != count) {
296                 printk(KERN_WARNING "Warning: dev (%s) tty->count(%d) "
297                                     "!= #fd's(%d) in %s\n",
298                        tty->name, tty->count, count, routine);
299                 return count;
300         }
301 #endif
302         return 0;
303 }
304
305 /**
306  *      get_tty_driver          -       find device of a tty
307  *      @dev_t: device identifier
308  *      @index: returns the index of the tty
309  *
310  *      This routine returns a tty driver structure, given a device number
311  *      and also passes back the index number.
312  *
313  *      Locking: caller must hold tty_mutex
314  */
315
316 static struct tty_driver *get_tty_driver(dev_t device, int *index)
317 {
318         struct tty_driver *p;
319
320         list_for_each_entry(p, &tty_drivers, tty_drivers) {
321                 dev_t base = MKDEV(p->major, p->minor_start);
322                 if (device < base || device >= base + p->num)
323                         continue;
324                 *index = device - base;
325                 return tty_driver_kref_get(p);
326         }
327         return NULL;
328 }
329
330 #ifdef CONFIG_CONSOLE_POLL
331
332 /**
333  *      tty_find_polling_driver -       find device of a polled tty
334  *      @name: name string to match
335  *      @line: pointer to resulting tty line nr
336  *
337  *      This routine returns a tty driver structure, given a name
338  *      and the condition that the tty driver is capable of polled
339  *      operation.
340  */
341 struct tty_driver *tty_find_polling_driver(char *name, int *line)
342 {
343         struct tty_driver *p, *res = NULL;
344         int tty_line = 0;
345         int len;
346         char *str, *stp;
347
348         for (str = name; *str; str++)
349                 if ((*str >= '0' && *str <= '9') || *str == ',')
350                         break;
351         if (!*str)
352                 return NULL;
353
354         len = str - name;
355         tty_line = simple_strtoul(str, &str, 10);
356
357         mutex_lock(&tty_mutex);
358         /* Search through the tty devices to look for a match */
359         list_for_each_entry(p, &tty_drivers, tty_drivers) {
360                 if (strncmp(name, p->name, len) != 0)
361                         continue;
362                 stp = str;
363                 if (*stp == ',')
364                         stp++;
365                 if (*stp == '\0')
366                         stp = NULL;
367
368                 if (tty_line >= 0 && tty_line < p->num && p->ops &&
369                     p->ops->poll_init && !p->ops->poll_init(p, tty_line, stp)) {
370                         res = tty_driver_kref_get(p);
371                         *line = tty_line;
372                         break;
373                 }
374         }
375         mutex_unlock(&tty_mutex);
376
377         return res;
378 }
379 EXPORT_SYMBOL_GPL(tty_find_polling_driver);
380 #endif
381
382 /**
383  *      tty_check_change        -       check for POSIX terminal changes
384  *      @tty: tty to check
385  *
386  *      If we try to write to, or set the state of, a terminal and we're
387  *      not in the foreground, send a SIGTTOU.  If the signal is blocked or
388  *      ignored, go ahead and perform the operation.  (POSIX 7.2)
389  *
390  *      Locking: ctrl_lock
391  */
392
393 int tty_check_change(struct tty_struct *tty)
394 {
395         unsigned long flags;
396         int ret = 0;
397
398         if (current->signal->tty != tty)
399                 return 0;
400
401         spin_lock_irqsave(&tty->ctrl_lock, flags);
402
403         if (!tty->pgrp) {
404                 printk(KERN_WARNING "tty_check_change: tty->pgrp == NULL!\n");
405                 goto out_unlock;
406         }
407         if (task_pgrp(current) == tty->pgrp)
408                 goto out_unlock;
409         spin_unlock_irqrestore(&tty->ctrl_lock, flags);
410         if (is_ignored(SIGTTOU))
411                 goto out;
412         if (is_current_pgrp_orphaned()) {
413                 ret = -EIO;
414                 goto out;
415         }
416         kill_pgrp(task_pgrp(current), SIGTTOU, 1);
417         set_thread_flag(TIF_SIGPENDING);
418         ret = -ERESTARTSYS;
419 out:
420         return ret;
421 out_unlock:
422         spin_unlock_irqrestore(&tty->ctrl_lock, flags);
423         return ret;
424 }
425
426 EXPORT_SYMBOL(tty_check_change);
427
428 static ssize_t hung_up_tty_read(struct file *file, char __user *buf,
429                                 size_t count, loff_t *ppos)
430 {
431         return 0;
432 }
433
434 static ssize_t hung_up_tty_write(struct file *file, const char __user *buf,
435                                  size_t count, loff_t *ppos)
436 {
437         return -EIO;
438 }
439
440 /* No kernel lock held - none needed ;) */
441 static unsigned int hung_up_tty_poll(struct file *filp, poll_table *wait)
442 {
443         return POLLIN | POLLOUT | POLLERR | POLLHUP | POLLRDNORM | POLLWRNORM;
444 }
445
446 static long hung_up_tty_ioctl(struct file *file, unsigned int cmd,
447                 unsigned long arg)
448 {
449         return cmd == TIOCSPGRP ? -ENOTTY : -EIO;
450 }
451
452 static long hung_up_tty_compat_ioctl(struct file *file,
453                                      unsigned int cmd, unsigned long arg)
454 {
455         return cmd == TIOCSPGRP ? -ENOTTY : -EIO;
456 }
457
458 static const struct file_operations tty_fops = {
459         .llseek         = no_llseek,
460         .read           = tty_read,
461         .write          = tty_write,
462         .poll           = tty_poll,
463         .unlocked_ioctl = tty_ioctl,
464         .compat_ioctl   = tty_compat_ioctl,
465         .open           = tty_open,
466         .release        = tty_release,
467         .fasync         = tty_fasync,
468 };
469
470 static const struct file_operations console_fops = {
471         .llseek         = no_llseek,
472         .read           = tty_read,
473         .write          = redirected_tty_write,
474         .poll           = tty_poll,
475         .unlocked_ioctl = tty_ioctl,
476         .compat_ioctl   = tty_compat_ioctl,
477         .open           = tty_open,
478         .release        = tty_release,
479         .fasync         = tty_fasync,
480 };
481
482 static const struct file_operations hung_up_tty_fops = {
483         .llseek         = no_llseek,
484         .read           = hung_up_tty_read,
485         .write          = hung_up_tty_write,
486         .poll           = hung_up_tty_poll,
487         .unlocked_ioctl = hung_up_tty_ioctl,
488         .compat_ioctl   = hung_up_tty_compat_ioctl,
489         .release        = tty_release,
490 };
491
492 static DEFINE_SPINLOCK(redirect_lock);
493 static struct file *redirect;
494
495 /**
496  *      tty_wakeup      -       request more data
497  *      @tty: terminal
498  *
499  *      Internal and external helper for wakeups of tty. This function
500  *      informs the line discipline if present that the driver is ready
501  *      to receive more output data.
502  */
503
504 void tty_wakeup(struct tty_struct *tty)
505 {
506         struct tty_ldisc *ld;
507
508         if (test_bit(TTY_DO_WRITE_WAKEUP, &tty->flags)) {
509                 ld = tty_ldisc_ref(tty);
510                 if (ld) {
511                         if (ld->ops->write_wakeup)
512                                 ld->ops->write_wakeup(tty);
513                         tty_ldisc_deref(ld);
514                 }
515         }
516         wake_up_interruptible_poll(&tty->write_wait, POLLOUT);
517 }
518
519 EXPORT_SYMBOL_GPL(tty_wakeup);
520
521 /**
522  *      tty_signal_session_leader       - sends SIGHUP to session leader
523  *      @tty            controlling tty
524  *      @exit_session   if non-zero, signal all foreground group processes
525  *
526  *      Send SIGHUP and SIGCONT to the session leader and its process group.
527  *      Optionally, signal all processes in the foreground process group.
528  *
529  *      Returns the number of processes in the session with this tty
530  *      as their controlling terminal. This value is used to drop
531  *      tty references for those processes.
532  */
533 static int tty_signal_session_leader(struct tty_struct *tty, int exit_session)
534 {
535         struct task_struct *p;
536         int refs = 0;
537         struct pid *tty_pgrp = NULL;
538
539         read_lock(&tasklist_lock);
540         if (tty->session) {
541                 do_each_pid_task(tty->session, PIDTYPE_SID, p) {
542                         spin_lock_irq(&p->sighand->siglock);
543                         if (p->signal->tty == tty) {
544                                 p->signal->tty = NULL;
545                                 /* We defer the dereferences outside fo
546                                    the tasklist lock */
547                                 refs++;
548                         }
549                         if (!p->signal->leader) {
550                                 spin_unlock_irq(&p->sighand->siglock);
551                                 continue;
552                         }
553                         __group_send_sig_info(SIGHUP, SEND_SIG_PRIV, p);
554                         __group_send_sig_info(SIGCONT, SEND_SIG_PRIV, p);
555                         put_pid(p->signal->tty_old_pgrp);  /* A noop */
556                         spin_lock(&tty->ctrl_lock);
557                         tty_pgrp = get_pid(tty->pgrp);
558                         if (tty->pgrp)
559                                 p->signal->tty_old_pgrp = get_pid(tty->pgrp);
560                         spin_unlock(&tty->ctrl_lock);
561                         spin_unlock_irq(&p->sighand->siglock);
562                 } while_each_pid_task(tty->session, PIDTYPE_SID, p);
563         }
564         read_unlock(&tasklist_lock);
565
566         if (tty_pgrp) {
567                 if (exit_session)
568                         kill_pgrp(tty_pgrp, SIGHUP, exit_session);
569                 put_pid(tty_pgrp);
570         }
571
572         return refs;
573 }
574
575 /**
576  *      __tty_hangup            -       actual handler for hangup events
577  *      @work: tty device
578  *
579  *      This can be called by a "kworker" kernel thread.  That is process
580  *      synchronous but doesn't hold any locks, so we need to make sure we
581  *      have the appropriate locks for what we're doing.
582  *
583  *      The hangup event clears any pending redirections onto the hung up
584  *      device. It ensures future writes will error and it does the needed
585  *      line discipline hangup and signal delivery. The tty object itself
586  *      remains intact.
587  *
588  *      Locking:
589  *              BTM
590  *                redirect lock for undoing redirection
591  *                file list lock for manipulating list of ttys
592  *                tty_ldiscs_lock from called functions
593  *                termios_rwsem resetting termios data
594  *                tasklist_lock to walk task list for hangup event
595  *                  ->siglock to protect ->signal/->sighand
596  */
597 static void __tty_hangup(struct tty_struct *tty, int exit_session)
598 {
599         struct file *cons_filp = NULL;
600         struct file *filp, *f = NULL;
601         struct tty_file_private *priv;
602         int    closecount = 0, n;
603         int refs;
604
605         if (!tty)
606                 return;
607
608
609         spin_lock(&redirect_lock);
610         if (redirect && file_tty(redirect) == tty) {
611                 f = redirect;
612                 redirect = NULL;
613         }
614         spin_unlock(&redirect_lock);
615
616         tty_lock(tty);
617
618         if (test_bit(TTY_HUPPED, &tty->flags)) {
619                 tty_unlock(tty);
620                 return;
621         }
622
623         /* some functions below drop BTM, so we need this bit */
624         set_bit(TTY_HUPPING, &tty->flags);
625
626         /* inuse_filps is protected by the single tty lock,
627            this really needs to change if we want to flush the
628            workqueue with the lock held */
629         check_tty_count(tty, "tty_hangup");
630
631         spin_lock(&tty_files_lock);
632         /* This breaks for file handles being sent over AF_UNIX sockets ? */
633         list_for_each_entry(priv, &tty->tty_files, list) {
634                 filp = priv->file;
635                 if (filp->f_op->write == redirected_tty_write)
636                         cons_filp = filp;
637                 if (filp->f_op->write != tty_write)
638                         continue;
639                 closecount++;
640                 __tty_fasync(-1, filp, 0);      /* can't block */
641                 filp->f_op = &hung_up_tty_fops;
642         }
643         spin_unlock(&tty_files_lock);
644
645         refs = tty_signal_session_leader(tty, exit_session);
646         /* Account for the p->signal references we killed */
647         while (refs--)
648                 tty_kref_put(tty);
649
650         /*
651          * it drops BTM and thus races with reopen
652          * we protect the race by TTY_HUPPING
653          */
654         tty_ldisc_hangup(tty);
655
656         spin_lock_irq(&tty->ctrl_lock);
657         clear_bit(TTY_THROTTLED, &tty->flags);
658         clear_bit(TTY_DO_WRITE_WAKEUP, &tty->flags);
659         put_pid(tty->session);
660         put_pid(tty->pgrp);
661         tty->session = NULL;
662         tty->pgrp = NULL;
663         tty->ctrl_status = 0;
664         spin_unlock_irq(&tty->ctrl_lock);
665
666         /*
667          * If one of the devices matches a console pointer, we
668          * cannot just call hangup() because that will cause
669          * tty->count and state->count to go out of sync.
670          * So we just call close() the right number of times.
671          */
672         if (cons_filp) {
673                 if (tty->ops->close)
674                         for (n = 0; n < closecount; n++)
675                                 tty->ops->close(tty, cons_filp);
676         } else if (tty->ops->hangup)
677                 tty->ops->hangup(tty);
678         /*
679          * We don't want to have driver/ldisc interactions beyond
680          * the ones we did here. The driver layer expects no
681          * calls after ->hangup() from the ldisc side. However we
682          * can't yet guarantee all that.
683          */
684         set_bit(TTY_HUPPED, &tty->flags);
685         clear_bit(TTY_HUPPING, &tty->flags);
686
687         tty_unlock(tty);
688
689         if (f)
690                 fput(f);
691 }
692
693 static void do_tty_hangup(struct work_struct *work)
694 {
695         struct tty_struct *tty =
696                 container_of(work, struct tty_struct, hangup_work);
697
698         __tty_hangup(tty, 0);
699 }
700
701 /**
702  *      tty_hangup              -       trigger a hangup event
703  *      @tty: tty to hangup
704  *
705  *      A carrier loss (virtual or otherwise) has occurred on this like
706  *      schedule a hangup sequence to run after this event.
707  */
708
709 void tty_hangup(struct tty_struct *tty)
710 {
711 #ifdef TTY_DEBUG_HANGUP
712         char    buf[64];
713         printk(KERN_DEBUG "%s hangup...\n", tty_name(tty, buf));
714 #endif
715         schedule_work(&tty->hangup_work);
716 }
717
718 EXPORT_SYMBOL(tty_hangup);
719
720 /**
721  *      tty_vhangup             -       process vhangup
722  *      @tty: tty to hangup
723  *
724  *      The user has asked via system call for the terminal to be hung up.
725  *      We do this synchronously so that when the syscall returns the process
726  *      is complete. That guarantee is necessary for security reasons.
727  */
728
729 void tty_vhangup(struct tty_struct *tty)
730 {
731 #ifdef TTY_DEBUG_HANGUP
732         char    buf[64];
733
734         printk(KERN_DEBUG "%s vhangup...\n", tty_name(tty, buf));
735 #endif
736         __tty_hangup(tty, 0);
737 }
738
739 EXPORT_SYMBOL(tty_vhangup);
740
741
742 /**
743  *      tty_vhangup_self        -       process vhangup for own ctty
744  *
745  *      Perform a vhangup on the current controlling tty
746  */
747
748 void tty_vhangup_self(void)
749 {
750         struct tty_struct *tty;
751
752         tty = get_current_tty();
753         if (tty) {
754                 tty_vhangup(tty);
755                 tty_kref_put(tty);
756         }
757 }
758
759 /**
760  *      tty_vhangup_session             -       hangup session leader exit
761  *      @tty: tty to hangup
762  *
763  *      The session leader is exiting and hanging up its controlling terminal.
764  *      Every process in the foreground process group is signalled SIGHUP.
765  *
766  *      We do this synchronously so that when the syscall returns the process
767  *      is complete. That guarantee is necessary for security reasons.
768  */
769
770 static void tty_vhangup_session(struct tty_struct *tty)
771 {
772 #ifdef TTY_DEBUG_HANGUP
773         char    buf[64];
774
775         printk(KERN_DEBUG "%s vhangup session...\n", tty_name(tty, buf));
776 #endif
777         __tty_hangup(tty, 1);
778 }
779
780 /**
781  *      tty_hung_up_p           -       was tty hung up
782  *      @filp: file pointer of tty
783  *
784  *      Return true if the tty has been subject to a vhangup or a carrier
785  *      loss
786  */
787
788 int tty_hung_up_p(struct file *filp)
789 {
790         return (filp->f_op == &hung_up_tty_fops);
791 }
792
793 EXPORT_SYMBOL(tty_hung_up_p);
794
795 static void session_clear_tty(struct pid *session)
796 {
797         struct task_struct *p;
798         do_each_pid_task(session, PIDTYPE_SID, p) {
799                 proc_clear_tty(p);
800         } while_each_pid_task(session, PIDTYPE_SID, p);
801 }
802
803 /**
804  *      disassociate_ctty       -       disconnect controlling tty
805  *      @on_exit: true if exiting so need to "hang up" the session
806  *
807  *      This function is typically called only by the session leader, when
808  *      it wants to disassociate itself from its controlling tty.
809  *
810  *      It performs the following functions:
811  *      (1)  Sends a SIGHUP and SIGCONT to the foreground process group
812  *      (2)  Clears the tty from being controlling the session
813  *      (3)  Clears the controlling tty for all processes in the
814  *              session group.
815  *
816  *      The argument on_exit is set to 1 if called when a process is
817  *      exiting; it is 0 if called by the ioctl TIOCNOTTY.
818  *
819  *      Locking:
820  *              BTM is taken for hysterical raisins, and held when
821  *                called from no_tty().
822  *                tty_mutex is taken to protect tty
823  *                ->siglock is taken to protect ->signal/->sighand
824  *                tasklist_lock is taken to walk process list for sessions
825  *                  ->siglock is taken to protect ->signal/->sighand
826  */
827
828 void disassociate_ctty(int on_exit)
829 {
830         struct tty_struct *tty;
831
832         if (!current->signal->leader)
833                 return;
834
835         tty = get_current_tty();
836         if (tty) {
837                 if (on_exit && tty->driver->type != TTY_DRIVER_TYPE_PTY) {
838                         tty_vhangup_session(tty);
839                 } else {
840                         struct pid *tty_pgrp = tty_get_pgrp(tty);
841                         if (tty_pgrp) {
842                                 kill_pgrp(tty_pgrp, SIGHUP, on_exit);
843                                 if (!on_exit)
844                                         kill_pgrp(tty_pgrp, SIGCONT, on_exit);
845                                 put_pid(tty_pgrp);
846                         }
847                 }
848                 tty_kref_put(tty);
849
850         } else if (on_exit) {
851                 struct pid *old_pgrp;
852                 spin_lock_irq(&current->sighand->siglock);
853                 old_pgrp = current->signal->tty_old_pgrp;
854                 current->signal->tty_old_pgrp = NULL;
855                 spin_unlock_irq(&current->sighand->siglock);
856                 if (old_pgrp) {
857                         kill_pgrp(old_pgrp, SIGHUP, on_exit);
858                         kill_pgrp(old_pgrp, SIGCONT, on_exit);
859                         put_pid(old_pgrp);
860                 }
861                 return;
862         }
863
864         spin_lock_irq(&current->sighand->siglock);
865         put_pid(current->signal->tty_old_pgrp);
866         current->signal->tty_old_pgrp = NULL;
867
868         tty = tty_kref_get(current->signal->tty);
869         if (tty) {
870                 unsigned long flags;
871                 spin_lock_irqsave(&tty->ctrl_lock, flags);
872                 put_pid(tty->session);
873                 put_pid(tty->pgrp);
874                 tty->session = NULL;
875                 tty->pgrp = NULL;
876                 spin_unlock_irqrestore(&tty->ctrl_lock, flags);
877                 tty_kref_put(tty);
878         } else {
879 #ifdef TTY_DEBUG_HANGUP
880                 printk(KERN_DEBUG "error attempted to write to tty [0x%p]"
881                        " = NULL", tty);
882 #endif
883         }
884
885         spin_unlock_irq(&current->sighand->siglock);
886         /* Now clear signal->tty under the lock */
887         read_lock(&tasklist_lock);
888         session_clear_tty(task_session(current));
889         read_unlock(&tasklist_lock);
890 }
891
892 /**
893  *
894  *      no_tty  - Ensure the current process does not have a controlling tty
895  */
896 void no_tty(void)
897 {
898         /* FIXME: Review locking here. The tty_lock never covered any race
899            between a new association and proc_clear_tty but possible we need
900            to protect against this anyway */
901         struct task_struct *tsk = current;
902         disassociate_ctty(0);
903         proc_clear_tty(tsk);
904 }
905
906
907 /**
908  *      stop_tty        -       propagate flow control
909  *      @tty: tty to stop
910  *
911  *      Perform flow control to the driver. May be called
912  *      on an already stopped device and will not re-call the driver
913  *      method.
914  *
915  *      This functionality is used by both the line disciplines for
916  *      halting incoming flow and by the driver. It may therefore be
917  *      called from any context, may be under the tty atomic_write_lock
918  *      but not always.
919  *
920  *      Locking:
921  *              flow_lock
922  */
923
924 void __stop_tty(struct tty_struct *tty)
925 {
926         if (tty->stopped)
927                 return;
928         tty->stopped = 1;
929         if (tty->ops->stop)
930                 (tty->ops->stop)(tty);
931 }
932
933 void stop_tty(struct tty_struct *tty)
934 {
935         unsigned long flags;
936
937         spin_lock_irqsave(&tty->flow_lock, flags);
938         __stop_tty(tty);
939         spin_unlock_irqrestore(&tty->flow_lock, flags);
940 }
941 EXPORT_SYMBOL(stop_tty);
942
943 /**
944  *      start_tty       -       propagate flow control
945  *      @tty: tty to start
946  *
947  *      Start a tty that has been stopped if at all possible. If this
948  *      tty was previous stopped and is now being started, the driver
949  *      start method is invoked and the line discipline woken.
950  *
951  *      Locking:
952  *              flow_lock
953  */
954
955 void __start_tty(struct tty_struct *tty)
956 {
957         if (!tty->stopped || tty->flow_stopped)
958                 return;
959         tty->stopped = 0;
960         if (tty->ops->start)
961                 (tty->ops->start)(tty);
962         tty_wakeup(tty);
963 }
964
965 void start_tty(struct tty_struct *tty)
966 {
967         unsigned long flags;
968
969         spin_lock_irqsave(&tty->flow_lock, flags);
970         __start_tty(tty);
971         spin_unlock_irqrestore(&tty->flow_lock, flags);
972 }
973 EXPORT_SYMBOL(start_tty);
974
975 /* We limit tty time update visibility to every 8 seconds or so. */
976 static void tty_update_time(struct timespec *time)
977 {
978         unsigned long sec = get_seconds() & ~7;
979         if ((long)(sec - time->tv_sec) > 0)
980                 time->tv_sec = sec;
981 }
982
983 /**
984  *      tty_read        -       read method for tty device files
985  *      @file: pointer to tty file
986  *      @buf: user buffer
987  *      @count: size of user buffer
988  *      @ppos: unused
989  *
990  *      Perform the read system call function on this terminal device. Checks
991  *      for hung up devices before calling the line discipline method.
992  *
993  *      Locking:
994  *              Locks the line discipline internally while needed. Multiple
995  *      read calls may be outstanding in parallel.
996  */
997
998 static ssize_t tty_read(struct file *file, char __user *buf, size_t count,
999                         loff_t *ppos)
1000 {
1001         int i;
1002         struct inode *inode = file_inode(file);
1003         struct tty_struct *tty = file_tty(file);
1004         struct tty_ldisc *ld;
1005
1006         if (tty_paranoia_check(tty, inode, "tty_read"))
1007                 return -EIO;
1008         if (!tty || (test_bit(TTY_IO_ERROR, &tty->flags)))
1009                 return -EIO;
1010
1011         /* We want to wait for the line discipline to sort out in this
1012            situation */
1013         ld = tty_ldisc_ref_wait(tty);
1014         if (ld->ops->read)
1015                 i = (ld->ops->read)(tty, file, buf, count);
1016         else
1017                 i = -EIO;
1018         tty_ldisc_deref(ld);
1019
1020         if (i > 0)
1021                 tty_update_time(&inode->i_atime);
1022
1023         return i;
1024 }
1025
1026 static void tty_write_unlock(struct tty_struct *tty)
1027         __releases(&tty->atomic_write_lock)
1028 {
1029         mutex_unlock(&tty->atomic_write_lock);
1030         wake_up_interruptible_poll(&tty->write_wait, POLLOUT);
1031 }
1032
1033 static int tty_write_lock(struct tty_struct *tty, int ndelay)
1034         __acquires(&tty->atomic_write_lock)
1035 {
1036         if (!mutex_trylock(&tty->atomic_write_lock)) {
1037                 if (ndelay)
1038                         return -EAGAIN;
1039                 if (mutex_lock_interruptible(&tty->atomic_write_lock))
1040                         return -ERESTARTSYS;
1041         }
1042         return 0;
1043 }
1044
1045 /*
1046  * Split writes up in sane blocksizes to avoid
1047  * denial-of-service type attacks
1048  */
1049 static inline ssize_t do_tty_write(
1050         ssize_t (*write)(struct tty_struct *, struct file *, const unsigned char *, size_t),
1051         struct tty_struct *tty,
1052         struct file *file,
1053         const char __user *buf,
1054         size_t count)
1055 {
1056         ssize_t ret, written = 0;
1057         unsigned int chunk;
1058
1059         ret = tty_write_lock(tty, file->f_flags & O_NDELAY);
1060         if (ret < 0)
1061                 return ret;
1062
1063         /*
1064          * We chunk up writes into a temporary buffer. This
1065          * simplifies low-level drivers immensely, since they
1066          * don't have locking issues and user mode accesses.
1067          *
1068          * But if TTY_NO_WRITE_SPLIT is set, we should use a
1069          * big chunk-size..
1070          *
1071          * The default chunk-size is 2kB, because the NTTY
1072          * layer has problems with bigger chunks. It will
1073          * claim to be able to handle more characters than
1074          * it actually does.
1075          *
1076          * FIXME: This can probably go away now except that 64K chunks
1077          * are too likely to fail unless switched to vmalloc...
1078          */
1079         chunk = 2048;
1080         if (test_bit(TTY_NO_WRITE_SPLIT, &tty->flags))
1081                 chunk = 65536;
1082         if (count < chunk)
1083                 chunk = count;
1084
1085         /* write_buf/write_cnt is protected by the atomic_write_lock mutex */
1086         if (tty->write_cnt < chunk) {
1087                 unsigned char *buf_chunk;
1088
1089                 if (chunk < 1024)
1090                         chunk = 1024;
1091
1092                 buf_chunk = kmalloc(chunk, GFP_KERNEL);
1093                 if (!buf_chunk) {
1094                         ret = -ENOMEM;
1095                         goto out;
1096                 }
1097                 kfree(tty->write_buf);
1098                 tty->write_cnt = chunk;
1099                 tty->write_buf = buf_chunk;
1100         }
1101
1102         /* Do the write .. */
1103         for (;;) {
1104                 size_t size = count;
1105                 if (size > chunk)
1106                         size = chunk;
1107                 ret = -EFAULT;
1108                 if (copy_from_user(tty->write_buf, buf, size))
1109                         break;
1110                 ret = write(tty, file, tty->write_buf, size);
1111                 if (ret <= 0)
1112                         break;
1113                 written += ret;
1114                 buf += ret;
1115                 count -= ret;
1116                 if (!count)
1117                         break;
1118                 ret = -ERESTARTSYS;
1119                 if (signal_pending(current))
1120                         break;
1121                 cond_resched();
1122         }
1123         if (written) {
1124                 tty_update_time(&file_inode(file)->i_mtime);
1125                 ret = written;
1126         }
1127 out:
1128         tty_write_unlock(tty);
1129         return ret;
1130 }
1131
1132 /**
1133  * tty_write_message - write a message to a certain tty, not just the console.
1134  * @tty: the destination tty_struct
1135  * @msg: the message to write
1136  *
1137  * This is used for messages that need to be redirected to a specific tty.
1138  * We don't put it into the syslog queue right now maybe in the future if
1139  * really needed.
1140  *
1141  * We must still hold the BTM and test the CLOSING flag for the moment.
1142  */
1143
1144 void tty_write_message(struct tty_struct *tty, char *msg)
1145 {
1146         if (tty) {
1147                 mutex_lock(&tty->atomic_write_lock);
1148                 tty_lock(tty);
1149                 if (tty->ops->write && !test_bit(TTY_CLOSING, &tty->flags)) {
1150                         tty_unlock(tty);
1151                         tty->ops->write(tty, msg, strlen(msg));
1152                 } else
1153                         tty_unlock(tty);
1154                 tty_write_unlock(tty);
1155         }
1156         return;
1157 }
1158
1159
1160 /**
1161  *      tty_write               -       write method for tty device file
1162  *      @file: tty file pointer
1163  *      @buf: user data to write
1164  *      @count: bytes to write
1165  *      @ppos: unused
1166  *
1167  *      Write data to a tty device via the line discipline.
1168  *
1169  *      Locking:
1170  *              Locks the line discipline as required
1171  *              Writes to the tty driver are serialized by the atomic_write_lock
1172  *      and are then processed in chunks to the device. The line discipline
1173  *      write method will not be invoked in parallel for each device.
1174  */
1175
1176 static ssize_t tty_write(struct file *file, const char __user *buf,
1177                                                 size_t count, loff_t *ppos)
1178 {
1179         struct tty_struct *tty = file_tty(file);
1180         struct tty_ldisc *ld;
1181         ssize_t ret;
1182
1183         if (tty_paranoia_check(tty, file_inode(file), "tty_write"))
1184                 return -EIO;
1185         if (!tty || !tty->ops->write ||
1186                 (test_bit(TTY_IO_ERROR, &tty->flags)))
1187                         return -EIO;
1188         /* Short term debug to catch buggy drivers */
1189         if (tty->ops->write_room == NULL)
1190                 printk(KERN_ERR "tty driver %s lacks a write_room method.\n",
1191                         tty->driver->name);
1192         ld = tty_ldisc_ref_wait(tty);
1193         if (!ld->ops->write)
1194                 ret = -EIO;
1195         else
1196                 ret = do_tty_write(ld->ops->write, tty, file, buf, count);
1197         tty_ldisc_deref(ld);
1198         return ret;
1199 }
1200
1201 ssize_t redirected_tty_write(struct file *file, const char __user *buf,
1202                                                 size_t count, loff_t *ppos)
1203 {
1204         struct file *p = NULL;
1205
1206         spin_lock(&redirect_lock);
1207         if (redirect)
1208                 p = get_file(redirect);
1209         spin_unlock(&redirect_lock);
1210
1211         if (p) {
1212                 ssize_t res;
1213                 res = vfs_write(p, buf, count, &p->f_pos);
1214                 fput(p);
1215                 return res;
1216         }
1217         return tty_write(file, buf, count, ppos);
1218 }
1219
1220 /**
1221  *      tty_send_xchar  -       send priority character
1222  *
1223  *      Send a high priority character to the tty even if stopped
1224  *
1225  *      Locking: none for xchar method, write ordering for write method.
1226  */
1227
1228 int tty_send_xchar(struct tty_struct *tty, char ch)
1229 {
1230         int     was_stopped = tty->stopped;
1231
1232         if (tty->ops->send_xchar) {
1233                 tty->ops->send_xchar(tty, ch);
1234                 return 0;
1235         }
1236
1237         if (tty_write_lock(tty, 0) < 0)
1238                 return -ERESTARTSYS;
1239
1240         if (was_stopped)
1241                 start_tty(tty);
1242         tty->ops->write(tty, &ch, 1);
1243         if (was_stopped)
1244                 stop_tty(tty);
1245         tty_write_unlock(tty);
1246         return 0;
1247 }
1248
1249 static char ptychar[] = "pqrstuvwxyzabcde";
1250
1251 /**
1252  *      pty_line_name   -       generate name for a pty
1253  *      @driver: the tty driver in use
1254  *      @index: the minor number
1255  *      @p: output buffer of at least 6 bytes
1256  *
1257  *      Generate a name from a driver reference and write it to the output
1258  *      buffer.
1259  *
1260  *      Locking: None
1261  */
1262 static void pty_line_name(struct tty_driver *driver, int index, char *p)
1263 {
1264         int i = index + driver->name_base;
1265         /* ->name is initialized to "ttyp", but "tty" is expected */
1266         sprintf(p, "%s%c%x",
1267                 driver->subtype == PTY_TYPE_SLAVE ? "tty" : driver->name,
1268                 ptychar[i >> 4 & 0xf], i & 0xf);
1269 }
1270
1271 /**
1272  *      tty_line_name   -       generate name for a tty
1273  *      @driver: the tty driver in use
1274  *      @index: the minor number
1275  *      @p: output buffer of at least 7 bytes
1276  *
1277  *      Generate a name from a driver reference and write it to the output
1278  *      buffer.
1279  *
1280  *      Locking: None
1281  */
1282 static ssize_t tty_line_name(struct tty_driver *driver, int index, char *p)
1283 {
1284         if (driver->flags & TTY_DRIVER_UNNUMBERED_NODE)
1285                 return sprintf(p, "%s", driver->name);
1286         else
1287                 return sprintf(p, "%s%d", driver->name,
1288                                index + driver->name_base);
1289 }
1290
1291 /**
1292  *      tty_driver_lookup_tty() - find an existing tty, if any
1293  *      @driver: the driver for the tty
1294  *      @idx:    the minor number
1295  *
1296  *      Return the tty, if found or ERR_PTR() otherwise.
1297  *
1298  *      Locking: tty_mutex must be held. If tty is found, the mutex must
1299  *      be held until the 'fast-open' is also done. Will change once we
1300  *      have refcounting in the driver and per driver locking
1301  */
1302 static struct tty_struct *tty_driver_lookup_tty(struct tty_driver *driver,
1303                 struct inode *inode, int idx)
1304 {
1305         if (driver->ops->lookup)
1306                 return driver->ops->lookup(driver, inode, idx);
1307
1308         return driver->ttys[idx];
1309 }
1310
1311 /**
1312  *      tty_init_termios        -  helper for termios setup
1313  *      @tty: the tty to set up
1314  *
1315  *      Initialise the termios structures for this tty. Thus runs under
1316  *      the tty_mutex currently so we can be relaxed about ordering.
1317  */
1318
1319 int tty_init_termios(struct tty_struct *tty)
1320 {
1321         struct ktermios *tp;
1322         int idx = tty->index;
1323
1324         if (tty->driver->flags & TTY_DRIVER_RESET_TERMIOS)
1325                 tty->termios = tty->driver->init_termios;
1326         else {
1327                 /* Check for lazy saved data */
1328                 tp = tty->driver->termios[idx];
1329                 if (tp != NULL)
1330                         tty->termios = *tp;
1331                 else
1332                         tty->termios = tty->driver->init_termios;
1333         }
1334         /* Compatibility until drivers always set this */
1335         tty->termios.c_ispeed = tty_termios_input_baud_rate(&tty->termios);
1336         tty->termios.c_ospeed = tty_termios_baud_rate(&tty->termios);
1337         return 0;
1338 }
1339 EXPORT_SYMBOL_GPL(tty_init_termios);
1340
1341 int tty_standard_install(struct tty_driver *driver, struct tty_struct *tty)
1342 {
1343         int ret = tty_init_termios(tty);
1344         if (ret)
1345                 return ret;
1346
1347         tty_driver_kref_get(driver);
1348         tty->count++;
1349         driver->ttys[tty->index] = tty;
1350         return 0;
1351 }
1352 EXPORT_SYMBOL_GPL(tty_standard_install);
1353
1354 /**
1355  *      tty_driver_install_tty() - install a tty entry in the driver
1356  *      @driver: the driver for the tty
1357  *      @tty: the tty
1358  *
1359  *      Install a tty object into the driver tables. The tty->index field
1360  *      will be set by the time this is called. This method is responsible
1361  *      for ensuring any need additional structures are allocated and
1362  *      configured.
1363  *
1364  *      Locking: tty_mutex for now
1365  */
1366 static int tty_driver_install_tty(struct tty_driver *driver,
1367                                                 struct tty_struct *tty)
1368 {
1369         return driver->ops->install ? driver->ops->install(driver, tty) :
1370                 tty_standard_install(driver, tty);
1371 }
1372
1373 /**
1374  *      tty_driver_remove_tty() - remove a tty from the driver tables
1375  *      @driver: the driver for the tty
1376  *      @idx:    the minor number
1377  *
1378  *      Remvoe a tty object from the driver tables. The tty->index field
1379  *      will be set by the time this is called.
1380  *
1381  *      Locking: tty_mutex for now
1382  */
1383 void tty_driver_remove_tty(struct tty_driver *driver, struct tty_struct *tty)
1384 {
1385         if (driver->ops->remove)
1386                 driver->ops->remove(driver, tty);
1387         else
1388                 driver->ttys[tty->index] = NULL;
1389 }
1390
1391 /*
1392  *      tty_reopen()    - fast re-open of an open tty
1393  *      @tty    - the tty to open
1394  *
1395  *      Return 0 on success, -errno on error.
1396  *
1397  *      Locking: tty_mutex must be held from the time the tty was found
1398  *               till this open completes.
1399  */
1400 static int tty_reopen(struct tty_struct *tty)
1401 {
1402         struct tty_driver *driver = tty->driver;
1403
1404         if (test_bit(TTY_CLOSING, &tty->flags) ||
1405                         test_bit(TTY_HUPPING, &tty->flags))
1406                 return -EIO;
1407
1408         if (driver->type == TTY_DRIVER_TYPE_PTY &&
1409             driver->subtype == PTY_TYPE_MASTER) {
1410                 /*
1411                  * special case for PTY masters: only one open permitted,
1412                  * and the slave side open count is incremented as well.
1413                  */
1414                 if (tty->count)
1415                         return -EIO;
1416
1417                 tty->link->count++;
1418         }
1419         tty->count++;
1420
1421         WARN_ON(!tty->ldisc);
1422
1423         return 0;
1424 }
1425
1426 /**
1427  *      tty_init_dev            -       initialise a tty device
1428  *      @driver: tty driver we are opening a device on
1429  *      @idx: device index
1430  *      @ret_tty: returned tty structure
1431  *
1432  *      Prepare a tty device. This may not be a "new" clean device but
1433  *      could also be an active device. The pty drivers require special
1434  *      handling because of this.
1435  *
1436  *      Locking:
1437  *              The function is called under the tty_mutex, which
1438  *      protects us from the tty struct or driver itself going away.
1439  *
1440  *      On exit the tty device has the line discipline attached and
1441  *      a reference count of 1. If a pair was created for pty/tty use
1442  *      and the other was a pty master then it too has a reference count of 1.
1443  *
1444  * WSH 06/09/97: Rewritten to remove races and properly clean up after a
1445  * failed open.  The new code protects the open with a mutex, so it's
1446  * really quite straightforward.  The mutex locking can probably be
1447  * relaxed for the (most common) case of reopening a tty.
1448  */
1449
1450 struct tty_struct *tty_init_dev(struct tty_driver *driver, int idx)
1451 {
1452         struct tty_struct *tty;
1453         int retval;
1454
1455         /*
1456          * First time open is complex, especially for PTY devices.
1457          * This code guarantees that either everything succeeds and the
1458          * TTY is ready for operation, or else the table slots are vacated
1459          * and the allocated memory released.  (Except that the termios
1460          * and locked termios may be retained.)
1461          */
1462
1463         if (!try_module_get(driver->owner))
1464                 return ERR_PTR(-ENODEV);
1465
1466         tty = alloc_tty_struct(driver, idx);
1467         if (!tty) {
1468                 retval = -ENOMEM;
1469                 goto err_module_put;
1470         }
1471
1472         tty_lock(tty);
1473         retval = tty_driver_install_tty(driver, tty);
1474         if (retval < 0)
1475                 goto err_deinit_tty;
1476
1477         if (!tty->port)
1478                 tty->port = driver->ports[idx];
1479
1480         WARN_RATELIMIT(!tty->port,
1481                         "%s: %s driver does not set tty->port. This will crash the kernel later. Fix the driver!\n",
1482                         __func__, tty->driver->name);
1483
1484         tty->port->itty = tty;
1485
1486         /*
1487          * Structures all installed ... call the ldisc open routines.
1488          * If we fail here just call release_tty to clean up.  No need
1489          * to decrement the use counts, as release_tty doesn't care.
1490          */
1491         retval = tty_ldisc_setup(tty, tty->link);
1492         if (retval)
1493                 goto err_release_tty;
1494         /* Return the tty locked so that it cannot vanish under the caller */
1495         return tty;
1496
1497 err_deinit_tty:
1498         tty_unlock(tty);
1499         deinitialize_tty_struct(tty);
1500         free_tty_struct(tty);
1501 err_module_put:
1502         module_put(driver->owner);
1503         return ERR_PTR(retval);
1504
1505         /* call the tty release_tty routine to clean out this slot */
1506 err_release_tty:
1507         tty_unlock(tty);
1508         printk_ratelimited(KERN_INFO "tty_init_dev: ldisc open failed, "
1509                                  "clearing slot %d\n", idx);
1510         release_tty(tty, idx);
1511         return ERR_PTR(retval);
1512 }
1513
1514 void tty_free_termios(struct tty_struct *tty)
1515 {
1516         struct ktermios *tp;
1517         int idx = tty->index;
1518
1519         /* If the port is going to reset then it has no termios to save */
1520         if (tty->driver->flags & TTY_DRIVER_RESET_TERMIOS)
1521                 return;
1522
1523         /* Stash the termios data */
1524         tp = tty->driver->termios[idx];
1525         if (tp == NULL) {
1526                 tp = kmalloc(sizeof(struct ktermios), GFP_KERNEL);
1527                 if (tp == NULL) {
1528                         pr_warn("tty: no memory to save termios state.\n");
1529                         return;
1530                 }
1531                 tty->driver->termios[idx] = tp;
1532         }
1533         *tp = tty->termios;
1534 }
1535 EXPORT_SYMBOL(tty_free_termios);
1536
1537 /**
1538  *      tty_flush_works         -       flush all works of a tty
1539  *      @tty: tty device to flush works for
1540  *
1541  *      Sync flush all works belonging to @tty.
1542  */
1543 static void tty_flush_works(struct tty_struct *tty)
1544 {
1545         flush_work(&tty->SAK_work);
1546         flush_work(&tty->hangup_work);
1547 }
1548
1549 /**
1550  *      release_one_tty         -       release tty structure memory
1551  *      @kref: kref of tty we are obliterating
1552  *
1553  *      Releases memory associated with a tty structure, and clears out the
1554  *      driver table slots. This function is called when a device is no longer
1555  *      in use. It also gets called when setup of a device fails.
1556  *
1557  *      Locking:
1558  *              takes the file list lock internally when working on the list
1559  *      of ttys that the driver keeps.
1560  *
1561  *      This method gets called from a work queue so that the driver private
1562  *      cleanup ops can sleep (needed for USB at least)
1563  */
1564 static void release_one_tty(struct work_struct *work)
1565 {
1566         struct tty_struct *tty =
1567                 container_of(work, struct tty_struct, hangup_work);
1568         struct tty_driver *driver = tty->driver;
1569         struct module *owner = driver->owner;
1570
1571         if (tty->ops->cleanup)
1572                 tty->ops->cleanup(tty);
1573
1574         tty->magic = 0;
1575         tty_driver_kref_put(driver);
1576         module_put(owner);
1577
1578         spin_lock(&tty_files_lock);
1579         list_del_init(&tty->tty_files);
1580         spin_unlock(&tty_files_lock);
1581
1582         put_pid(tty->pgrp);
1583         put_pid(tty->session);
1584         free_tty_struct(tty);
1585 }
1586
1587 static void queue_release_one_tty(struct kref *kref)
1588 {
1589         struct tty_struct *tty = container_of(kref, struct tty_struct, kref);
1590
1591         /* The hangup queue is now free so we can reuse it rather than
1592            waste a chunk of memory for each port */
1593         INIT_WORK(&tty->hangup_work, release_one_tty);
1594         schedule_work(&tty->hangup_work);
1595 }
1596
1597 /**
1598  *      tty_kref_put            -       release a tty kref
1599  *      @tty: tty device
1600  *
1601  *      Release a reference to a tty device and if need be let the kref
1602  *      layer destruct the object for us
1603  */
1604
1605 void tty_kref_put(struct tty_struct *tty)
1606 {
1607         if (tty)
1608                 kref_put(&tty->kref, queue_release_one_tty);
1609 }
1610 EXPORT_SYMBOL(tty_kref_put);
1611
1612 /**
1613  *      release_tty             -       release tty structure memory
1614  *
1615  *      Release both @tty and a possible linked partner (think pty pair),
1616  *      and decrement the refcount of the backing module.
1617  *
1618  *      Locking:
1619  *              tty_mutex
1620  *              takes the file list lock internally when working on the list
1621  *      of ttys that the driver keeps.
1622  *
1623  */
1624 static void release_tty(struct tty_struct *tty, int idx)
1625 {
1626         /* This should always be true but check for the moment */
1627         WARN_ON(tty->index != idx);
1628         WARN_ON(!mutex_is_locked(&tty_mutex));
1629         if (tty->ops->shutdown)
1630                 tty->ops->shutdown(tty);
1631         tty_free_termios(tty);
1632         tty_driver_remove_tty(tty->driver, tty);
1633         tty->port->itty = NULL;
1634         if (tty->link)
1635                 tty->link->port->itty = NULL;
1636         cancel_work_sync(&tty->port->buf.work);
1637
1638         if (tty->link)
1639                 tty_kref_put(tty->link);
1640         tty_kref_put(tty);
1641 }
1642
1643 /**
1644  *      tty_release_checks - check a tty before real release
1645  *      @tty: tty to check
1646  *      @o_tty: link of @tty (if any)
1647  *      @idx: index of the tty
1648  *
1649  *      Performs some paranoid checking before true release of the @tty.
1650  *      This is a no-op unless TTY_PARANOIA_CHECK is defined.
1651  */
1652 static int tty_release_checks(struct tty_struct *tty, struct tty_struct *o_tty,
1653                 int idx)
1654 {
1655 #ifdef TTY_PARANOIA_CHECK
1656         if (idx < 0 || idx >= tty->driver->num) {
1657                 printk(KERN_DEBUG "%s: bad idx when trying to free (%s)\n",
1658                                 __func__, tty->name);
1659                 return -1;
1660         }
1661
1662         /* not much to check for devpts */
1663         if (tty->driver->flags & TTY_DRIVER_DEVPTS_MEM)
1664                 return 0;
1665
1666         if (tty != tty->driver->ttys[idx]) {
1667                 printk(KERN_DEBUG "%s: driver.table[%d] not tty for (%s)\n",
1668                                 __func__, idx, tty->name);
1669                 return -1;
1670         }
1671         if (tty->driver->other) {
1672                 if (o_tty != tty->driver->other->ttys[idx]) {
1673                         printk(KERN_DEBUG "%s: other->table[%d] not o_tty for (%s)\n",
1674                                         __func__, idx, tty->name);
1675                         return -1;
1676                 }
1677                 if (o_tty->link != tty) {
1678                         printk(KERN_DEBUG "%s: bad pty pointers\n", __func__);
1679                         return -1;
1680                 }
1681         }
1682 #endif
1683         return 0;
1684 }
1685
1686 /**
1687  *      tty_release             -       vfs callback for close
1688  *      @inode: inode of tty
1689  *      @filp: file pointer for handle to tty
1690  *
1691  *      Called the last time each file handle is closed that references
1692  *      this tty. There may however be several such references.
1693  *
1694  *      Locking:
1695  *              Takes bkl. See tty_release_dev
1696  *
1697  * Even releasing the tty structures is a tricky business.. We have
1698  * to be very careful that the structures are all released at the
1699  * same time, as interrupts might otherwise get the wrong pointers.
1700  *
1701  * WSH 09/09/97: rewritten to avoid some nasty race conditions that could
1702  * lead to double frees or releasing memory still in use.
1703  */
1704
1705 int tty_release(struct inode *inode, struct file *filp)
1706 {
1707         struct tty_struct *tty = file_tty(filp);
1708         struct tty_struct *o_tty;
1709         int     pty_master, tty_closing, o_tty_closing, do_sleep;
1710         int     idx;
1711         char    buf[64];
1712         long    timeout = 0;
1713
1714         if (tty_paranoia_check(tty, inode, __func__))
1715                 return 0;
1716
1717         tty_lock(tty);
1718         check_tty_count(tty, __func__);
1719
1720         __tty_fasync(-1, filp, 0);
1721
1722         idx = tty->index;
1723         pty_master = (tty->driver->type == TTY_DRIVER_TYPE_PTY &&
1724                       tty->driver->subtype == PTY_TYPE_MASTER);
1725         /* Review: parallel close */
1726         o_tty = tty->link;
1727
1728         if (tty_release_checks(tty, o_tty, idx)) {
1729                 tty_unlock(tty);
1730                 return 0;
1731         }
1732
1733 #ifdef TTY_DEBUG_HANGUP
1734         printk(KERN_DEBUG "%s: %s (tty count=%d)...\n", __func__,
1735                         tty_name(tty, buf), tty->count);
1736 #endif
1737
1738         if (tty->ops->close)
1739                 tty->ops->close(tty, filp);
1740
1741         tty_unlock(tty);
1742         /*
1743          * Sanity check: if tty->count is going to zero, there shouldn't be
1744          * any waiters on tty->read_wait or tty->write_wait.  We test the
1745          * wait queues and kick everyone out _before_ actually starting to
1746          * close.  This ensures that we won't block while releasing the tty
1747          * structure.
1748          *
1749          * The test for the o_tty closing is necessary, since the master and
1750          * slave sides may close in any order.  If the slave side closes out
1751          * first, its count will be one, since the master side holds an open.
1752          * Thus this test wouldn't be triggered at the time the slave closes,
1753          * so we do it now.
1754          *
1755          * Note that it's possible for the tty to be opened again while we're
1756          * flushing out waiters.  By recalculating the closing flags before
1757          * each iteration we avoid any problems.
1758          */
1759         while (1) {
1760                 /* Guard against races with tty->count changes elsewhere and
1761                    opens on /dev/tty */
1762
1763                 mutex_lock(&tty_mutex);
1764                 tty_lock_pair(tty, o_tty);
1765                 tty_closing = tty->count <= 1;
1766                 o_tty_closing = o_tty &&
1767                         (o_tty->count <= (pty_master ? 1 : 0));
1768                 do_sleep = 0;
1769
1770                 if (tty_closing) {
1771                         if (waitqueue_active(&tty->read_wait)) {
1772                                 wake_up_poll(&tty->read_wait, POLLIN);
1773                                 do_sleep++;
1774                         }
1775                         if (waitqueue_active(&tty->write_wait)) {
1776                                 wake_up_poll(&tty->write_wait, POLLOUT);
1777                                 do_sleep++;
1778                         }
1779                 }
1780                 if (o_tty_closing) {
1781                         if (waitqueue_active(&o_tty->read_wait)) {
1782                                 wake_up_poll(&o_tty->read_wait, POLLIN);
1783                                 do_sleep++;
1784                         }
1785                         if (waitqueue_active(&o_tty->write_wait)) {
1786                                 wake_up_poll(&o_tty->write_wait, POLLOUT);
1787                                 do_sleep++;
1788                         }
1789                 }
1790                 if (!do_sleep)
1791                         break;
1792
1793                 printk(KERN_WARNING "%s: %s: read/write wait queue active!\n",
1794                                 __func__, tty_name(tty, buf));
1795                 tty_unlock_pair(tty, o_tty);
1796                 mutex_unlock(&tty_mutex);
1797                 schedule_timeout_killable(timeout);
1798                 if (timeout < 120 * HZ)
1799                         timeout = 2 * timeout + 1;
1800                 else
1801                         timeout = MAX_SCHEDULE_TIMEOUT;
1802         }
1803
1804         /*
1805          * The closing flags are now consistent with the open counts on
1806          * both sides, and we've completed the last operation that could
1807          * block, so it's safe to proceed with closing.
1808          *
1809          * We must *not* drop the tty_mutex until we ensure that a further
1810          * entry into tty_open can not pick up this tty.
1811          */
1812         if (pty_master) {
1813                 if (--o_tty->count < 0) {
1814                         printk(KERN_WARNING "%s: bad pty slave count (%d) for %s\n",
1815                                 __func__, o_tty->count, tty_name(o_tty, buf));
1816                         o_tty->count = 0;
1817                 }
1818         }
1819         if (--tty->count < 0) {
1820                 printk(KERN_WARNING "%s: bad tty->count (%d) for %s\n",
1821                                 __func__, tty->count, tty_name(tty, buf));
1822                 tty->count = 0;
1823         }
1824
1825         /*
1826          * We've decremented tty->count, so we need to remove this file
1827          * descriptor off the tty->tty_files list; this serves two
1828          * purposes:
1829          *  - check_tty_count sees the correct number of file descriptors
1830          *    associated with this tty.
1831          *  - do_tty_hangup no longer sees this file descriptor as
1832          *    something that needs to be handled for hangups.
1833          */
1834         tty_del_file(filp);
1835
1836         /*
1837          * Perform some housekeeping before deciding whether to return.
1838          *
1839          * Set the TTY_CLOSING flag if this was the last open.  In the
1840          * case of a pty we may have to wait around for the other side
1841          * to close, and TTY_CLOSING makes sure we can't be reopened.
1842          */
1843         if (tty_closing)
1844                 set_bit(TTY_CLOSING, &tty->flags);
1845         if (o_tty_closing)
1846                 set_bit(TTY_CLOSING, &o_tty->flags);
1847
1848         /*
1849          * If _either_ side is closing, make sure there aren't any
1850          * processes that still think tty or o_tty is their controlling
1851          * tty.
1852          */
1853         if (tty_closing || o_tty_closing) {
1854                 read_lock(&tasklist_lock);
1855                 session_clear_tty(tty->session);
1856                 if (o_tty)
1857                         session_clear_tty(o_tty->session);
1858                 read_unlock(&tasklist_lock);
1859         }
1860
1861         mutex_unlock(&tty_mutex);
1862         tty_unlock_pair(tty, o_tty);
1863         /* At this point the TTY_CLOSING flag should ensure a dead tty
1864            cannot be re-opened by a racing opener */
1865
1866         /* check whether both sides are closing ... */
1867         if (!tty_closing || (o_tty && !o_tty_closing))
1868                 return 0;
1869
1870 #ifdef TTY_DEBUG_HANGUP
1871         printk(KERN_DEBUG "%s: %s: final close\n", __func__, tty_name(tty, buf));
1872 #endif
1873         /*
1874          * Ask the line discipline code to release its structures
1875          */
1876         tty_ldisc_release(tty, o_tty);
1877
1878         /* Wait for pending work before tty destruction commmences */
1879         tty_flush_works(tty);
1880         if (o_tty)
1881                 tty_flush_works(o_tty);
1882
1883 #ifdef TTY_DEBUG_HANGUP
1884         printk(KERN_DEBUG "%s: %s: freeing structure...\n", __func__, tty_name(tty, buf));
1885 #endif
1886         /*
1887          * The release_tty function takes care of the details of clearing
1888          * the slots and preserving the termios structure. The tty_unlock_pair
1889          * should be safe as we keep a kref while the tty is locked (so the
1890          * unlock never unlocks a freed tty).
1891          */
1892         mutex_lock(&tty_mutex);
1893         release_tty(tty, idx);
1894         mutex_unlock(&tty_mutex);
1895
1896         return 0;
1897 }
1898
1899 /**
1900  *      tty_open_current_tty - get tty of current task for open
1901  *      @device: device number
1902  *      @filp: file pointer to tty
1903  *      @return: tty of the current task iff @device is /dev/tty
1904  *
1905  *      We cannot return driver and index like for the other nodes because
1906  *      devpts will not work then. It expects inodes to be from devpts FS.
1907  *
1908  *      We need to move to returning a refcounted object from all the lookup
1909  *      paths including this one.
1910  */
1911 static struct tty_struct *tty_open_current_tty(dev_t device, struct file *filp)
1912 {
1913         struct tty_struct *tty;
1914
1915         if (device != MKDEV(TTYAUX_MAJOR, 0))
1916                 return NULL;
1917
1918         tty = get_current_tty();
1919         if (!tty)
1920                 return ERR_PTR(-ENXIO);
1921
1922         filp->f_flags |= O_NONBLOCK; /* Don't let /dev/tty block */
1923         /* noctty = 1; */
1924         tty_kref_put(tty);
1925         /* FIXME: we put a reference and return a TTY! */
1926         /* This is only safe because the caller holds tty_mutex */
1927         return tty;
1928 }
1929
1930 /**
1931  *      tty_lookup_driver - lookup a tty driver for a given device file
1932  *      @device: device number
1933  *      @filp: file pointer to tty
1934  *      @noctty: set if the device should not become a controlling tty
1935  *      @index: index for the device in the @return driver
1936  *      @return: driver for this inode (with increased refcount)
1937  *
1938  *      If @return is not erroneous, the caller is responsible to decrement the
1939  *      refcount by tty_driver_kref_put.
1940  *
1941  *      Locking: tty_mutex protects get_tty_driver
1942  */
1943 static struct tty_driver *tty_lookup_driver(dev_t device, struct file *filp,
1944                 int *noctty, int *index)
1945 {
1946         struct tty_driver *driver;
1947
1948         switch (device) {
1949 #ifdef CONFIG_VT
1950         case MKDEV(TTY_MAJOR, 0): {
1951                 extern struct tty_driver *console_driver;
1952                 driver = tty_driver_kref_get(console_driver);
1953                 *index = fg_console;
1954                 *noctty = 1;
1955                 break;
1956         }
1957 #endif
1958         case MKDEV(TTYAUX_MAJOR, 1): {
1959                 struct tty_driver *console_driver = console_device(index);
1960                 if (console_driver) {
1961                         driver = tty_driver_kref_get(console_driver);
1962                         if (driver) {
1963                                 /* Don't let /dev/console block */
1964                                 filp->f_flags |= O_NONBLOCK;
1965                                 *noctty = 1;
1966                                 break;
1967                         }
1968                 }
1969                 return ERR_PTR(-ENODEV);
1970         }
1971         default:
1972                 driver = get_tty_driver(device, index);
1973                 if (!driver)
1974                         return ERR_PTR(-ENODEV);
1975                 break;
1976         }
1977         return driver;
1978 }
1979
1980 /**
1981  *      tty_open                -       open a tty device
1982  *      @inode: inode of device file
1983  *      @filp: file pointer to tty
1984  *
1985  *      tty_open and tty_release keep up the tty count that contains the
1986  *      number of opens done on a tty. We cannot use the inode-count, as
1987  *      different inodes might point to the same tty.
1988  *
1989  *      Open-counting is needed for pty masters, as well as for keeping
1990  *      track of serial lines: DTR is dropped when the last close happens.
1991  *      (This is not done solely through tty->count, now.  - Ted 1/27/92)
1992  *
1993  *      The termios state of a pty is reset on first open so that
1994  *      settings don't persist across reuse.
1995  *
1996  *      Locking: tty_mutex protects tty, tty_lookup_driver and tty_init_dev.
1997  *               tty->count should protect the rest.
1998  *               ->siglock protects ->signal/->sighand
1999  *
2000  *      Note: the tty_unlock/lock cases without a ref are only safe due to
2001  *      tty_mutex
2002  */
2003
2004 static int tty_open(struct inode *inode, struct file *filp)
2005 {
2006         struct tty_struct *tty;
2007         int noctty, retval;
2008         struct tty_driver *driver = NULL;
2009         int index;
2010         dev_t device = inode->i_rdev;
2011         unsigned saved_flags = filp->f_flags;
2012
2013         nonseekable_open(inode, filp);
2014
2015 retry_open:
2016         retval = tty_alloc_file(filp);
2017         if (retval)
2018                 return -ENOMEM;
2019
2020         noctty = filp->f_flags & O_NOCTTY;
2021         index  = -1;
2022         retval = 0;
2023
2024         mutex_lock(&tty_mutex);
2025         /* This is protected by the tty_mutex */
2026         tty = tty_open_current_tty(device, filp);
2027         if (IS_ERR(tty)) {
2028                 retval = PTR_ERR(tty);
2029                 goto err_unlock;
2030         } else if (!tty) {
2031                 driver = tty_lookup_driver(device, filp, &noctty, &index);
2032                 if (IS_ERR(driver)) {
2033                         retval = PTR_ERR(driver);
2034                         goto err_unlock;
2035                 }
2036
2037                 /* check whether we're reopening an existing tty */
2038                 tty = tty_driver_lookup_tty(driver, inode, index);
2039                 if (IS_ERR(tty)) {
2040                         retval = PTR_ERR(tty);
2041                         goto err_unlock;
2042                 }
2043         }
2044
2045         if (tty) {
2046                 tty_lock(tty);
2047                 retval = tty_reopen(tty);
2048                 if (retval < 0) {
2049                         tty_unlock(tty);
2050                         tty = ERR_PTR(retval);
2051                 }
2052         } else  /* Returns with the tty_lock held for now */
2053                 tty = tty_init_dev(driver, index);
2054
2055         mutex_unlock(&tty_mutex);
2056         if (driver)
2057                 tty_driver_kref_put(driver);
2058         if (IS_ERR(tty)) {
2059                 retval = PTR_ERR(tty);
2060                 goto err_file;
2061         }
2062
2063         tty_add_file(tty, filp);
2064
2065         check_tty_count(tty, __func__);
2066         if (tty->driver->type == TTY_DRIVER_TYPE_PTY &&
2067             tty->driver->subtype == PTY_TYPE_MASTER)
2068                 noctty = 1;
2069 #ifdef TTY_DEBUG_HANGUP
2070         printk(KERN_DEBUG "%s: opening %s...\n", __func__, tty->name);
2071 #endif
2072         if (tty->ops->open)
2073                 retval = tty->ops->open(tty, filp);
2074         else
2075                 retval = -ENODEV;
2076         filp->f_flags = saved_flags;
2077
2078         if (!retval && test_bit(TTY_EXCLUSIVE, &tty->flags) &&
2079                                                 !capable(CAP_SYS_ADMIN))
2080                 retval = -EBUSY;
2081
2082         if (retval) {
2083 #ifdef TTY_DEBUG_HANGUP
2084                 printk(KERN_DEBUG "%s: error %d in opening %s...\n", __func__,
2085                                 retval, tty->name);
2086 #endif
2087                 tty_unlock(tty); /* need to call tty_release without BTM */
2088                 tty_release(inode, filp);
2089                 if (retval != -ERESTARTSYS)
2090                         return retval;
2091
2092                 if (signal_pending(current))
2093                         return retval;
2094
2095                 schedule();
2096                 /*
2097                  * Need to reset f_op in case a hangup happened.
2098                  */
2099                 if (filp->f_op == &hung_up_tty_fops)
2100                         filp->f_op = &tty_fops;
2101                 goto retry_open;
2102         }
2103         clear_bit(TTY_HUPPED, &tty->flags);
2104         tty_unlock(tty);
2105
2106
2107         mutex_lock(&tty_mutex);
2108         tty_lock(tty);
2109         spin_lock_irq(&current->sighand->siglock);
2110         if (!noctty &&
2111             current->signal->leader &&
2112             !current->signal->tty &&
2113             tty->session == NULL)
2114                 __proc_set_tty(current, tty);
2115         spin_unlock_irq(&current->sighand->siglock);
2116         tty_unlock(tty);
2117         mutex_unlock(&tty_mutex);
2118         return 0;
2119 err_unlock:
2120         mutex_unlock(&tty_mutex);
2121         /* after locks to avoid deadlock */
2122         if (!IS_ERR_OR_NULL(driver))
2123                 tty_driver_kref_put(driver);
2124 err_file:
2125         tty_free_file(filp);
2126         return retval;
2127 }
2128
2129
2130
2131 /**
2132  *      tty_poll        -       check tty status
2133  *      @filp: file being polled
2134  *      @wait: poll wait structures to update
2135  *
2136  *      Call the line discipline polling method to obtain the poll
2137  *      status of the device.
2138  *
2139  *      Locking: locks called line discipline but ldisc poll method
2140  *      may be re-entered freely by other callers.
2141  */
2142
2143 static unsigned int tty_poll(struct file *filp, poll_table *wait)
2144 {
2145         struct tty_struct *tty = file_tty(filp);
2146         struct tty_ldisc *ld;
2147         int ret = 0;
2148
2149         if (tty_paranoia_check(tty, file_inode(filp), "tty_poll"))
2150                 return 0;
2151
2152         ld = tty_ldisc_ref_wait(tty);
2153         if (ld->ops->poll)
2154                 ret = (ld->ops->poll)(tty, filp, wait);
2155         tty_ldisc_deref(ld);
2156         return ret;
2157 }
2158
2159 static int __tty_fasync(int fd, struct file *filp, int on)
2160 {
2161         struct tty_struct *tty = file_tty(filp);
2162         struct tty_ldisc *ldisc;
2163         unsigned long flags;
2164         int retval = 0;
2165
2166         if (tty_paranoia_check(tty, file_inode(filp), "tty_fasync"))
2167                 goto out;
2168
2169         retval = fasync_helper(fd, filp, on, &tty->fasync);
2170         if (retval <= 0)
2171                 goto out;
2172
2173         ldisc = tty_ldisc_ref(tty);
2174         if (ldisc) {
2175                 if (ldisc->ops->fasync)
2176                         ldisc->ops->fasync(tty, on);
2177                 tty_ldisc_deref(ldisc);
2178         }
2179
2180         if (on) {
2181                 enum pid_type type;
2182                 struct pid *pid;
2183
2184                 spin_lock_irqsave(&tty->ctrl_lock, flags);
2185                 if (tty->pgrp) {
2186                         pid = tty->pgrp;
2187                         type = PIDTYPE_PGID;
2188                 } else {
2189                         pid = task_pid(current);
2190                         type = PIDTYPE_PID;
2191                 }
2192                 get_pid(pid);
2193                 spin_unlock_irqrestore(&tty->ctrl_lock, flags);
2194                 __f_setown(filp, pid, type, 0);
2195                 put_pid(pid);
2196                 retval = 0;
2197         }
2198 out:
2199         return retval;
2200 }
2201
2202 static int tty_fasync(int fd, struct file *filp, int on)
2203 {
2204         struct tty_struct *tty = file_tty(filp);
2205         int retval;
2206
2207         tty_lock(tty);
2208         retval = __tty_fasync(fd, filp, on);
2209         tty_unlock(tty);
2210
2211         return retval;
2212 }
2213
2214 /**
2215  *      tiocsti                 -       fake input character
2216  *      @tty: tty to fake input into
2217  *      @p: pointer to character
2218  *
2219  *      Fake input to a tty device. Does the necessary locking and
2220  *      input management.
2221  *
2222  *      FIXME: does not honour flow control ??
2223  *
2224  *      Locking:
2225  *              Called functions take tty_ldiscs_lock
2226  *              current->signal->tty check is safe without locks
2227  *
2228  *      FIXME: may race normal receive processing
2229  */
2230
2231 static int tiocsti(struct tty_struct *tty, char __user *p)
2232 {
2233         char ch, mbz = 0;
2234         struct tty_ldisc *ld;
2235
2236         if ((current->signal->tty != tty) && !capable(CAP_SYS_ADMIN))
2237                 return -EPERM;
2238         if (get_user(ch, p))
2239                 return -EFAULT;
2240         tty_audit_tiocsti(tty, ch);
2241         ld = tty_ldisc_ref_wait(tty);
2242         ld->ops->receive_buf(tty, &ch, &mbz, 1);
2243         tty_ldisc_deref(ld);
2244         return 0;
2245 }
2246
2247 /**
2248  *      tiocgwinsz              -       implement window query ioctl
2249  *      @tty; tty
2250  *      @arg: user buffer for result
2251  *
2252  *      Copies the kernel idea of the window size into the user buffer.
2253  *
2254  *      Locking: tty->winsize_mutex is taken to ensure the winsize data
2255  *              is consistent.
2256  */
2257
2258 static int tiocgwinsz(struct tty_struct *tty, struct winsize __user *arg)
2259 {
2260         int err;
2261
2262         mutex_lock(&tty->winsize_mutex);
2263         err = copy_to_user(arg, &tty->winsize, sizeof(*arg));
2264         mutex_unlock(&tty->winsize_mutex);
2265
2266         return err ? -EFAULT: 0;
2267 }
2268
2269 /**
2270  *      tty_do_resize           -       resize event
2271  *      @tty: tty being resized
2272  *      @rows: rows (character)
2273  *      @cols: cols (character)
2274  *
2275  *      Update the termios variables and send the necessary signals to
2276  *      peform a terminal resize correctly
2277  */
2278
2279 int tty_do_resize(struct tty_struct *tty, struct winsize *ws)
2280 {
2281         struct pid *pgrp;
2282         unsigned long flags;
2283
2284         /* Lock the tty */
2285         mutex_lock(&tty->winsize_mutex);
2286         if (!memcmp(ws, &tty->winsize, sizeof(*ws)))
2287                 goto done;
2288         /* Get the PID values and reference them so we can
2289            avoid holding the tty ctrl lock while sending signals */
2290         spin_lock_irqsave(&tty->ctrl_lock, flags);
2291         pgrp = get_pid(tty->pgrp);
2292         spin_unlock_irqrestore(&tty->ctrl_lock, flags);
2293
2294         if (pgrp)
2295                 kill_pgrp(pgrp, SIGWINCH, 1);
2296         put_pid(pgrp);
2297
2298         tty->winsize = *ws;
2299 done:
2300         mutex_unlock(&tty->winsize_mutex);
2301         return 0;
2302 }
2303 EXPORT_SYMBOL(tty_do_resize);
2304
2305 /**
2306  *      tiocswinsz              -       implement window size set ioctl
2307  *      @tty; tty side of tty
2308  *      @arg: user buffer for result
2309  *
2310  *      Copies the user idea of the window size to the kernel. Traditionally
2311  *      this is just advisory information but for the Linux console it
2312  *      actually has driver level meaning and triggers a VC resize.
2313  *
2314  *      Locking:
2315  *              Driver dependent. The default do_resize method takes the
2316  *      tty termios mutex and ctrl_lock. The console takes its own lock
2317  *      then calls into the default method.
2318  */
2319
2320 static int tiocswinsz(struct tty_struct *tty, struct winsize __user *arg)
2321 {
2322         struct winsize tmp_ws;
2323         if (copy_from_user(&tmp_ws, arg, sizeof(*arg)))
2324                 return -EFAULT;
2325
2326         if (tty->ops->resize)
2327                 return tty->ops->resize(tty, &tmp_ws);
2328         else
2329                 return tty_do_resize(tty, &tmp_ws);
2330 }
2331
2332 /**
2333  *      tioccons        -       allow admin to move logical console
2334  *      @file: the file to become console
2335  *
2336  *      Allow the administrator to move the redirected console device
2337  *
2338  *      Locking: uses redirect_lock to guard the redirect information
2339  */
2340
2341 static int tioccons(struct file *file)
2342 {
2343         if (!capable(CAP_SYS_ADMIN))
2344                 return -EPERM;
2345         if (file->f_op->write == redirected_tty_write) {
2346                 struct file *f;
2347                 spin_lock(&redirect_lock);
2348                 f = redirect;
2349                 redirect = NULL;
2350                 spin_unlock(&redirect_lock);
2351                 if (f)
2352                         fput(f);
2353                 return 0;
2354         }
2355         spin_lock(&redirect_lock);
2356         if (redirect) {
2357                 spin_unlock(&redirect_lock);
2358                 return -EBUSY;
2359         }
2360         redirect = get_file(file);
2361         spin_unlock(&redirect_lock);
2362         return 0;
2363 }
2364
2365 /**
2366  *      fionbio         -       non blocking ioctl
2367  *      @file: file to set blocking value
2368  *      @p: user parameter
2369  *
2370  *      Historical tty interfaces had a blocking control ioctl before
2371  *      the generic functionality existed. This piece of history is preserved
2372  *      in the expected tty API of posix OS's.
2373  *
2374  *      Locking: none, the open file handle ensures it won't go away.
2375  */
2376
2377 static int fionbio(struct file *file, int __user *p)
2378 {
2379         int nonblock;
2380
2381         if (get_user(nonblock, p))
2382                 return -EFAULT;
2383
2384         spin_lock(&file->f_lock);
2385         if (nonblock)
2386                 file->f_flags |= O_NONBLOCK;
2387         else
2388                 file->f_flags &= ~O_NONBLOCK;
2389         spin_unlock(&file->f_lock);
2390         return 0;
2391 }
2392
2393 /**
2394  *      tiocsctty       -       set controlling tty
2395  *      @tty: tty structure
2396  *      @arg: user argument
2397  *
2398  *      This ioctl is used to manage job control. It permits a session
2399  *      leader to set this tty as the controlling tty for the session.
2400  *
2401  *      Locking:
2402  *              Takes tty_mutex() to protect tty instance
2403  *              Takes tasklist_lock internally to walk sessions
2404  *              Takes ->siglock() when updating signal->tty
2405  */
2406
2407 static int tiocsctty(struct tty_struct *tty, int arg)
2408 {
2409         int ret = 0;
2410         if (current->signal->leader && (task_session(current) == tty->session))
2411                 return ret;
2412
2413         mutex_lock(&tty_mutex);
2414         /*
2415          * The process must be a session leader and
2416          * not have a controlling tty already.
2417          */
2418         if (!current->signal->leader || current->signal->tty) {
2419                 ret = -EPERM;
2420                 goto unlock;
2421         }
2422
2423         if (tty->session) {
2424                 /*
2425                  * This tty is already the controlling
2426                  * tty for another session group!
2427                  */
2428                 if (arg == 1 && capable(CAP_SYS_ADMIN)) {
2429                         /*
2430                          * Steal it away
2431                          */
2432                         read_lock(&tasklist_lock);
2433                         session_clear_tty(tty->session);
2434                         read_unlock(&tasklist_lock);
2435                 } else {
2436                         ret = -EPERM;
2437                         goto unlock;
2438                 }
2439         }
2440         proc_set_tty(current, tty);
2441 unlock:
2442         mutex_unlock(&tty_mutex);
2443         return ret;
2444 }
2445
2446 /**
2447  *      tty_get_pgrp    -       return a ref counted pgrp pid
2448  *      @tty: tty to read
2449  *
2450  *      Returns a refcounted instance of the pid struct for the process
2451  *      group controlling the tty.
2452  */
2453
2454 struct pid *tty_get_pgrp(struct tty_struct *tty)
2455 {
2456         unsigned long flags;
2457         struct pid *pgrp;
2458
2459         spin_lock_irqsave(&tty->ctrl_lock, flags);
2460         pgrp = get_pid(tty->pgrp);
2461         spin_unlock_irqrestore(&tty->ctrl_lock, flags);
2462
2463         return pgrp;
2464 }
2465 EXPORT_SYMBOL_GPL(tty_get_pgrp);
2466
2467 /**
2468  *      tiocgpgrp               -       get process group
2469  *      @tty: tty passed by user
2470  *      @real_tty: tty side of the tty passed by the user if a pty else the tty
2471  *      @p: returned pid
2472  *
2473  *      Obtain the process group of the tty. If there is no process group
2474  *      return an error.
2475  *
2476  *      Locking: none. Reference to current->signal->tty is safe.
2477  */
2478
2479 static int tiocgpgrp(struct tty_struct *tty, struct tty_struct *real_tty, pid_t __user *p)
2480 {
2481         struct pid *pid;
2482         int ret;
2483         /*
2484          * (tty == real_tty) is a cheap way of
2485          * testing if the tty is NOT a master pty.
2486          */
2487         if (tty == real_tty && current->signal->tty != real_tty)
2488                 return -ENOTTY;
2489         pid = tty_get_pgrp(real_tty);
2490         ret =  put_user(pid_vnr(pid), p);
2491         put_pid(pid);
2492         return ret;
2493 }
2494
2495 /**
2496  *      tiocspgrp               -       attempt to set process group
2497  *      @tty: tty passed by user
2498  *      @real_tty: tty side device matching tty passed by user
2499  *      @p: pid pointer
2500  *
2501  *      Set the process group of the tty to the session passed. Only
2502  *      permitted where the tty session is our session.
2503  *
2504  *      Locking: RCU, ctrl lock
2505  */
2506
2507 static int tiocspgrp(struct tty_struct *tty, struct tty_struct *real_tty, pid_t __user *p)
2508 {
2509         struct pid *pgrp;
2510         pid_t pgrp_nr;
2511         int retval = tty_check_change(real_tty);
2512         unsigned long flags;
2513
2514         if (retval == -EIO)
2515                 return -ENOTTY;
2516         if (retval)
2517                 return retval;
2518         if (!current->signal->tty ||
2519             (current->signal->tty != real_tty) ||
2520             (real_tty->session != task_session(current)))
2521                 return -ENOTTY;
2522         if (get_user(pgrp_nr, p))
2523                 return -EFAULT;
2524         if (pgrp_nr < 0)
2525                 return -EINVAL;
2526         rcu_read_lock();
2527         pgrp = find_vpid(pgrp_nr);
2528         retval = -ESRCH;
2529         if (!pgrp)
2530                 goto out_unlock;
2531         retval = -EPERM;
2532         if (session_of_pgrp(pgrp) != task_session(current))
2533                 goto out_unlock;
2534         retval = 0;
2535         spin_lock_irqsave(&tty->ctrl_lock, flags);
2536         put_pid(real_tty->pgrp);
2537         real_tty->pgrp = get_pid(pgrp);
2538         spin_unlock_irqrestore(&tty->ctrl_lock, flags);
2539 out_unlock:
2540         rcu_read_unlock();
2541         return retval;
2542 }
2543
2544 /**
2545  *      tiocgsid                -       get session id
2546  *      @tty: tty passed by user
2547  *      @real_tty: tty side of the tty passed by the user if a pty else the tty
2548  *      @p: pointer to returned session id
2549  *
2550  *      Obtain the session id of the tty. If there is no session
2551  *      return an error.
2552  *
2553  *      Locking: none. Reference to current->signal->tty is safe.
2554  */
2555
2556 static int tiocgsid(struct tty_struct *tty, struct tty_struct *real_tty, pid_t __user *p)
2557 {
2558         /*
2559          * (tty == real_tty) is a cheap way of
2560          * testing if the tty is NOT a master pty.
2561         */
2562         if (tty == real_tty && current->signal->tty != real_tty)
2563                 return -ENOTTY;
2564         if (!real_tty->session)
2565                 return -ENOTTY;
2566         return put_user(pid_vnr(real_tty->session), p);
2567 }
2568
2569 /**
2570  *      tiocsetd        -       set line discipline
2571  *      @tty: tty device
2572  *      @p: pointer to user data
2573  *
2574  *      Set the line discipline according to user request.
2575  *
2576  *      Locking: see tty_set_ldisc, this function is just a helper
2577  */
2578
2579 static int tiocsetd(struct tty_struct *tty, int __user *p)
2580 {
2581         int ldisc;
2582         int ret;
2583
2584         if (get_user(ldisc, p))
2585                 return -EFAULT;
2586
2587         ret = tty_set_ldisc(tty, ldisc);
2588
2589         return ret;
2590 }
2591
2592 /**
2593  *      send_break      -       performed time break
2594  *      @tty: device to break on
2595  *      @duration: timeout in mS
2596  *
2597  *      Perform a timed break on hardware that lacks its own driver level
2598  *      timed break functionality.
2599  *
2600  *      Locking:
2601  *              atomic_write_lock serializes
2602  *
2603  */
2604
2605 static int send_break(struct tty_struct *tty, unsigned int duration)
2606 {
2607         int retval;
2608
2609         if (tty->ops->break_ctl == NULL)
2610                 return 0;
2611
2612         if (tty->driver->flags & TTY_DRIVER_HARDWARE_BREAK)
2613                 retval = tty->ops->break_ctl(tty, duration);
2614         else {
2615                 /* Do the work ourselves */
2616                 if (tty_write_lock(tty, 0) < 0)
2617                         return -EINTR;
2618                 retval = tty->ops->break_ctl(tty, -1);
2619                 if (retval)
2620                         goto out;
2621                 if (!signal_pending(current))
2622                         msleep_interruptible(duration);
2623                 retval = tty->ops->break_ctl(tty, 0);
2624 out:
2625                 tty_write_unlock(tty);
2626                 if (signal_pending(current))
2627                         retval = -EINTR;
2628         }
2629         return retval;
2630 }
2631
2632 /**
2633  *      tty_tiocmget            -       get modem status
2634  *      @tty: tty device
2635  *      @file: user file pointer
2636  *      @p: pointer to result
2637  *
2638  *      Obtain the modem status bits from the tty driver if the feature
2639  *      is supported. Return -EINVAL if it is not available.
2640  *
2641  *      Locking: none (up to the driver)
2642  */
2643
2644 static int tty_tiocmget(struct tty_struct *tty, int __user *p)
2645 {
2646         int retval = -EINVAL;
2647
2648         if (tty->ops->tiocmget) {
2649                 retval = tty->ops->tiocmget(tty);
2650
2651                 if (retval >= 0)
2652                         retval = put_user(retval, p);
2653         }
2654         return retval;
2655 }
2656
2657 /**
2658  *      tty_tiocmset            -       set modem status
2659  *      @tty: tty device
2660  *      @cmd: command - clear bits, set bits or set all
2661  *      @p: pointer to desired bits
2662  *
2663  *      Set the modem status bits from the tty driver if the feature
2664  *      is supported. Return -EINVAL if it is not available.
2665  *
2666  *      Locking: none (up to the driver)
2667  */
2668
2669 static int tty_tiocmset(struct tty_struct *tty, unsigned int cmd,
2670              unsigned __user *p)
2671 {
2672         int retval;
2673         unsigned int set, clear, val;
2674
2675         if (tty->ops->tiocmset == NULL)
2676                 return -EINVAL;
2677
2678         retval = get_user(val, p);
2679         if (retval)
2680                 return retval;
2681         set = clear = 0;
2682         switch (cmd) {
2683         case TIOCMBIS:
2684                 set = val;
2685                 break;
2686         case TIOCMBIC:
2687                 clear = val;
2688                 break;
2689         case TIOCMSET:
2690                 set = val;
2691                 clear = ~val;
2692                 break;
2693         }
2694         set &= TIOCM_DTR|TIOCM_RTS|TIOCM_OUT1|TIOCM_OUT2|TIOCM_LOOP;
2695         clear &= TIOCM_DTR|TIOCM_RTS|TIOCM_OUT1|TIOCM_OUT2|TIOCM_LOOP;
2696         return tty->ops->tiocmset(tty, set, clear);
2697 }
2698
2699 static int tty_tiocgicount(struct tty_struct *tty, void __user *arg)
2700 {
2701         int retval = -EINVAL;
2702         struct serial_icounter_struct icount;
2703         memset(&icount, 0, sizeof(icount));
2704         if (tty->ops->get_icount)
2705                 retval = tty->ops->get_icount(tty, &icount);
2706         if (retval != 0)
2707                 return retval;
2708         if (copy_to_user(arg, &icount, sizeof(icount)))
2709                 return -EFAULT;
2710         return 0;
2711 }
2712
2713 struct tty_struct *tty_pair_get_tty(struct tty_struct *tty)
2714 {
2715         if (tty->driver->type == TTY_DRIVER_TYPE_PTY &&
2716             tty->driver->subtype == PTY_TYPE_MASTER)
2717                 tty = tty->link;
2718         return tty;
2719 }
2720 EXPORT_SYMBOL(tty_pair_get_tty);
2721
2722 struct tty_struct *tty_pair_get_pty(struct tty_struct *tty)
2723 {
2724         if (tty->driver->type == TTY_DRIVER_TYPE_PTY &&
2725             tty->driver->subtype == PTY_TYPE_MASTER)
2726             return tty;
2727         return tty->link;
2728 }
2729 EXPORT_SYMBOL(tty_pair_get_pty);
2730
2731 /*
2732  * Split this up, as gcc can choke on it otherwise..
2733  */
2734 long tty_ioctl(struct file *file, unsigned int cmd, unsigned long arg)
2735 {
2736         struct tty_struct *tty = file_tty(file);
2737         struct tty_struct *real_tty;
2738         void __user *p = (void __user *)arg;
2739         int retval;
2740         struct tty_ldisc *ld;
2741
2742         if (tty_paranoia_check(tty, file_inode(file), "tty_ioctl"))
2743                 return -EINVAL;
2744
2745         real_tty = tty_pair_get_tty(tty);
2746
2747         /*
2748          * Factor out some common prep work
2749          */
2750         switch (cmd) {
2751         case TIOCSETD:
2752         case TIOCSBRK:
2753         case TIOCCBRK:
2754         case TCSBRK:
2755         case TCSBRKP:
2756                 retval = tty_check_change(tty);
2757                 if (retval)
2758                         return retval;
2759                 if (cmd != TIOCCBRK) {
2760                         tty_wait_until_sent(tty, 0);
2761                         if (signal_pending(current))
2762                                 return -EINTR;
2763                 }
2764                 break;
2765         }
2766
2767         /*
2768          *      Now do the stuff.
2769          */
2770         switch (cmd) {
2771         case TIOCSTI:
2772                 return tiocsti(tty, p);
2773         case TIOCGWINSZ:
2774                 return tiocgwinsz(real_tty, p);
2775         case TIOCSWINSZ:
2776                 return tiocswinsz(real_tty, p);
2777         case TIOCCONS:
2778                 return real_tty != tty ? -EINVAL : tioccons(file);
2779         case FIONBIO:
2780                 return fionbio(file, p);
2781         case TIOCEXCL:
2782                 set_bit(TTY_EXCLUSIVE, &tty->flags);
2783                 return 0;
2784         case TIOCNXCL:
2785                 clear_bit(TTY_EXCLUSIVE, &tty->flags);
2786                 return 0;
2787         case TIOCGEXCL:
2788         {
2789                 int excl = test_bit(TTY_EXCLUSIVE, &tty->flags);
2790                 return put_user(excl, (int __user *)p);
2791         }
2792         case TIOCNOTTY:
2793                 if (current->signal->tty != tty)
2794                         return -ENOTTY;
2795                 no_tty();
2796                 return 0;
2797         case TIOCSCTTY:
2798                 return tiocsctty(tty, arg);
2799         case TIOCGPGRP:
2800                 return tiocgpgrp(tty, real_tty, p);
2801         case TIOCSPGRP:
2802                 return tiocspgrp(tty, real_tty, p);
2803         case TIOCGSID:
2804                 return tiocgsid(tty, real_tty, p);
2805         case TIOCGETD:
2806                 return put_user(tty->ldisc->ops->num, (int __user *)p);
2807         case TIOCSETD:
2808                 return tiocsetd(tty, p);
2809         case TIOCVHANGUP:
2810                 if (!capable(CAP_SYS_ADMIN))
2811                         return -EPERM;
2812                 tty_vhangup(tty);
2813                 return 0;
2814         case TIOCGDEV:
2815         {
2816                 unsigned int ret = new_encode_dev(tty_devnum(real_tty));
2817                 return put_user(ret, (unsigned int __user *)p);
2818         }
2819         /*
2820          * Break handling
2821          */
2822         case TIOCSBRK:  /* Turn break on, unconditionally */
2823                 if (tty->ops->break_ctl)
2824                         return tty->ops->break_ctl(tty, -1);
2825                 return 0;
2826         case TIOCCBRK:  /* Turn break off, unconditionally */
2827                 if (tty->ops->break_ctl)
2828                         return tty->ops->break_ctl(tty, 0);
2829                 return 0;
2830         case TCSBRK:   /* SVID version: non-zero arg --> no break */
2831                 /* non-zero arg means wait for all output data
2832                  * to be sent (performed above) but don't send break.
2833                  * This is used by the tcdrain() termios function.
2834                  */
2835                 if (!arg)
2836                         return send_break(tty, 250);
2837                 return 0;
2838         case TCSBRKP:   /* support for POSIX tcsendbreak() */
2839                 return send_break(tty, arg ? arg*100 : 250);
2840
2841         case TIOCMGET:
2842                 return tty_tiocmget(tty, p);
2843         case TIOCMSET:
2844         case TIOCMBIC:
2845         case TIOCMBIS:
2846                 return tty_tiocmset(tty, cmd, p);
2847         case TIOCGICOUNT:
2848                 retval = tty_tiocgicount(tty, p);
2849                 /* For the moment allow fall through to the old method */
2850                 if (retval != -EINVAL)
2851                         return retval;
2852                 break;
2853         case TCFLSH:
2854                 switch (arg) {
2855                 case TCIFLUSH:
2856                 case TCIOFLUSH:
2857                 /* flush tty buffer and allow ldisc to process ioctl */
2858                         tty_buffer_flush(tty);
2859                         break;
2860                 }
2861                 break;
2862         }
2863         if (tty->ops->ioctl) {
2864                 retval = (tty->ops->ioctl)(tty, cmd, arg);
2865                 if (retval != -ENOIOCTLCMD)
2866                         return retval;
2867         }
2868         ld = tty_ldisc_ref_wait(tty);
2869         retval = -EINVAL;
2870         if (ld->ops->ioctl) {
2871                 retval = ld->ops->ioctl(tty, file, cmd, arg);
2872                 if (retval == -ENOIOCTLCMD)
2873                         retval = -ENOTTY;
2874         }
2875         tty_ldisc_deref(ld);
2876         return retval;
2877 }
2878
2879 #ifdef CONFIG_COMPAT
2880 static long tty_compat_ioctl(struct file *file, unsigned int cmd,
2881                                 unsigned long arg)
2882 {
2883         struct tty_struct *tty = file_tty(file);
2884         struct tty_ldisc *ld;
2885         int retval = -ENOIOCTLCMD;
2886
2887         if (tty_paranoia_check(tty, file_inode(file), "tty_ioctl"))
2888                 return -EINVAL;
2889
2890         if (tty->ops->compat_ioctl) {
2891                 retval = (tty->ops->compat_ioctl)(tty, cmd, arg);
2892                 if (retval != -ENOIOCTLCMD)
2893                         return retval;
2894         }
2895
2896         ld = tty_ldisc_ref_wait(tty);
2897         if (ld->ops->compat_ioctl)
2898                 retval = ld->ops->compat_ioctl(tty, file, cmd, arg);
2899         else
2900                 retval = n_tty_compat_ioctl_helper(tty, file, cmd, arg);
2901         tty_ldisc_deref(ld);
2902
2903         return retval;
2904 }
2905 #endif
2906
2907 static int this_tty(const void *t, struct file *file, unsigned fd)
2908 {
2909         if (likely(file->f_op->read != tty_read))
2910                 return 0;
2911         return file_tty(file) != t ? 0 : fd + 1;
2912 }
2913         
2914 /*
2915  * This implements the "Secure Attention Key" ---  the idea is to
2916  * prevent trojan horses by killing all processes associated with this
2917  * tty when the user hits the "Secure Attention Key".  Required for
2918  * super-paranoid applications --- see the Orange Book for more details.
2919  *
2920  * This code could be nicer; ideally it should send a HUP, wait a few
2921  * seconds, then send a INT, and then a KILL signal.  But you then
2922  * have to coordinate with the init process, since all processes associated
2923  * with the current tty must be dead before the new getty is allowed
2924  * to spawn.
2925  *
2926  * Now, if it would be correct ;-/ The current code has a nasty hole -
2927  * it doesn't catch files in flight. We may send the descriptor to ourselves
2928  * via AF_UNIX socket, close it and later fetch from socket. FIXME.
2929  *
2930  * Nasty bug: do_SAK is being called in interrupt context.  This can
2931  * deadlock.  We punt it up to process context.  AKPM - 16Mar2001
2932  */
2933 void __do_SAK(struct tty_struct *tty)
2934 {
2935 #ifdef TTY_SOFT_SAK
2936         tty_hangup(tty);
2937 #else
2938         struct task_struct *g, *p;
2939         struct pid *session;
2940         int             i;
2941
2942         if (!tty)
2943                 return;
2944         session = tty->session;
2945
2946         tty_ldisc_flush(tty);
2947
2948         tty_driver_flush_buffer(tty);
2949
2950         read_lock(&tasklist_lock);
2951         /* Kill the entire session */
2952         do_each_pid_task(session, PIDTYPE_SID, p) {
2953                 printk(KERN_NOTICE "SAK: killed process %d"
2954                         " (%s): task_session(p)==tty->session\n",
2955                         task_pid_nr(p), p->comm);
2956                 send_sig(SIGKILL, p, 1);
2957         } while_each_pid_task(session, PIDTYPE_SID, p);
2958         /* Now kill any processes that happen to have the
2959          * tty open.
2960          */
2961         do_each_thread(g, p) {
2962                 if (p->signal->tty == tty) {
2963                         printk(KERN_NOTICE "SAK: killed process %d"
2964                             " (%s): task_session(p)==tty->session\n",
2965                             task_pid_nr(p), p->comm);
2966                         send_sig(SIGKILL, p, 1);
2967                         continue;
2968                 }
2969                 task_lock(p);
2970                 i = iterate_fd(p->files, 0, this_tty, tty);
2971                 if (i != 0) {
2972                         printk(KERN_NOTICE "SAK: killed process %d"
2973                             " (%s): fd#%d opened to the tty\n",
2974                                     task_pid_nr(p), p->comm, i - 1);
2975                         force_sig(SIGKILL, p);
2976                 }
2977                 task_unlock(p);
2978         } while_each_thread(g, p);
2979         read_unlock(&tasklist_lock);
2980 #endif
2981 }
2982
2983 static void do_SAK_work(struct work_struct *work)
2984 {
2985         struct tty_struct *tty =
2986                 container_of(work, struct tty_struct, SAK_work);
2987         __do_SAK(tty);
2988 }
2989
2990 /*
2991  * The tq handling here is a little racy - tty->SAK_work may already be queued.
2992  * Fortunately we don't need to worry, because if ->SAK_work is already queued,
2993  * the values which we write to it will be identical to the values which it
2994  * already has. --akpm
2995  */
2996 void do_SAK(struct tty_struct *tty)
2997 {
2998         if (!tty)
2999                 return;
3000         schedule_work(&tty->SAK_work);
3001 }
3002
3003 EXPORT_SYMBOL(do_SAK);
3004
3005 static int dev_match_devt(struct device *dev, const void *data)
3006 {
3007         const dev_t *devt = data;
3008         return dev->devt == *devt;
3009 }
3010
3011 /* Must put_device() after it's unused! */
3012 static struct device *tty_get_device(struct tty_struct *tty)
3013 {
3014         dev_t devt = tty_devnum(tty);
3015         return class_find_device(tty_class, NULL, &devt, dev_match_devt);
3016 }
3017
3018
3019 /**
3020  *      alloc_tty_struct
3021  *
3022  *      This subroutine allocates and initializes a tty structure.
3023  *
3024  *      Locking: none - tty in question is not exposed at this point
3025  */
3026
3027 struct tty_struct *alloc_tty_struct(struct tty_driver *driver, int idx)
3028 {
3029         struct tty_struct *tty;
3030
3031         tty = kzalloc(sizeof(*tty), GFP_KERNEL);
3032         if (!tty)
3033                 return NULL;
3034
3035         kref_init(&tty->kref);
3036         tty->magic = TTY_MAGIC;
3037         tty_ldisc_init(tty);
3038         tty->session = NULL;
3039         tty->pgrp = NULL;
3040         mutex_init(&tty->legacy_mutex);
3041         mutex_init(&tty->throttle_mutex);
3042         init_rwsem(&tty->termios_rwsem);
3043         mutex_init(&tty->winsize_mutex);
3044         init_ldsem(&tty->ldisc_sem);
3045         init_waitqueue_head(&tty->write_wait);
3046         init_waitqueue_head(&tty->read_wait);
3047         INIT_WORK(&tty->hangup_work, do_tty_hangup);
3048         mutex_init(&tty->atomic_write_lock);
3049         spin_lock_init(&tty->ctrl_lock);
3050         spin_lock_init(&tty->flow_lock);
3051         INIT_LIST_HEAD(&tty->tty_files);
3052         INIT_WORK(&tty->SAK_work, do_SAK_work);
3053
3054         tty->driver = driver;
3055         tty->ops = driver->ops;
3056         tty->index = idx;
3057         tty_line_name(driver, idx, tty->name);
3058         tty->dev = tty_get_device(tty);
3059
3060         return tty;
3061 }
3062
3063 /**
3064  *      deinitialize_tty_struct
3065  *      @tty: tty to deinitialize
3066  *
3067  *      This subroutine deinitializes a tty structure that has been newly
3068  *      allocated but tty_release cannot be called on that yet.
3069  *
3070  *      Locking: none - tty in question must not be exposed at this point
3071  */
3072 void deinitialize_tty_struct(struct tty_struct *tty)
3073 {
3074         tty_ldisc_deinit(tty);
3075 }
3076
3077 /**
3078  *      tty_put_char    -       write one character to a tty
3079  *      @tty: tty
3080  *      @ch: character
3081  *
3082  *      Write one byte to the tty using the provided put_char method
3083  *      if present. Returns the number of characters successfully output.
3084  *
3085  *      Note: the specific put_char operation in the driver layer may go
3086  *      away soon. Don't call it directly, use this method
3087  */
3088
3089 int tty_put_char(struct tty_struct *tty, unsigned char ch)
3090 {
3091         if (tty->ops->put_char)
3092                 return tty->ops->put_char(tty, ch);
3093         return tty->ops->write(tty, &ch, 1);
3094 }
3095 EXPORT_SYMBOL_GPL(tty_put_char);
3096
3097 struct class *tty_class;
3098
3099 static int tty_cdev_add(struct tty_driver *driver, dev_t dev,
3100                 unsigned int index, unsigned int count)
3101 {
3102         /* init here, since reused cdevs cause crashes */
3103         cdev_init(&driver->cdevs[index], &tty_fops);
3104         driver->cdevs[index].owner = driver->owner;
3105         return cdev_add(&driver->cdevs[index], dev, count);
3106 }
3107
3108 /**
3109  *      tty_register_device - register a tty device
3110  *      @driver: the tty driver that describes the tty device
3111  *      @index: the index in the tty driver for this tty device
3112  *      @device: a struct device that is associated with this tty device.
3113  *              This field is optional, if there is no known struct device
3114  *              for this tty device it can be set to NULL safely.
3115  *
3116  *      Returns a pointer to the struct device for this tty device
3117  *      (or ERR_PTR(-EFOO) on error).
3118  *
3119  *      This call is required to be made to register an individual tty device
3120  *      if the tty driver's flags have the TTY_DRIVER_DYNAMIC_DEV bit set.  If
3121  *      that bit is not set, this function should not be called by a tty
3122  *      driver.
3123  *
3124  *      Locking: ??
3125  */
3126
3127 struct device *tty_register_device(struct tty_driver *driver, unsigned index,
3128                                    struct device *device)
3129 {
3130         return tty_register_device_attr(driver, index, device, NULL, NULL);
3131 }
3132 EXPORT_SYMBOL(tty_register_device);
3133
3134 static void tty_device_create_release(struct device *dev)
3135 {
3136         pr_debug("device: '%s': %s\n", dev_name(dev), __func__);
3137         kfree(dev);
3138 }
3139
3140 /**
3141  *      tty_register_device_attr - register a tty device
3142  *      @driver: the tty driver that describes the tty device
3143  *      @index: the index in the tty driver for this tty device
3144  *      @device: a struct device that is associated with this tty device.
3145  *              This field is optional, if there is no known struct device
3146  *              for this tty device it can be set to NULL safely.
3147  *      @drvdata: Driver data to be set to device.
3148  *      @attr_grp: Attribute group to be set on device.
3149  *
3150  *      Returns a pointer to the struct device for this tty device
3151  *      (or ERR_PTR(-EFOO) on error).
3152  *
3153  *      This call is required to be made to register an individual tty device
3154  *      if the tty driver's flags have the TTY_DRIVER_DYNAMIC_DEV bit set.  If
3155  *      that bit is not set, this function should not be called by a tty
3156  *      driver.
3157  *
3158  *      Locking: ??
3159  */
3160 struct device *tty_register_device_attr(struct tty_driver *driver,
3161                                    unsigned index, struct device *device,
3162                                    void *drvdata,
3163                                    const struct attribute_group **attr_grp)
3164 {
3165         char name[64];
3166         dev_t devt = MKDEV(driver->major, driver->minor_start) + index;
3167         struct device *dev = NULL;
3168         int retval = -ENODEV;
3169         bool cdev = false;
3170
3171         if (index >= driver->num) {
3172                 printk(KERN_ERR "Attempt to register invalid tty line number "
3173                        " (%d).\n", index);
3174                 return ERR_PTR(-EINVAL);
3175         }
3176
3177         if (driver->type == TTY_DRIVER_TYPE_PTY)
3178                 pty_line_name(driver, index, name);
3179         else
3180                 tty_line_name(driver, index, name);
3181
3182         if (!(driver->flags & TTY_DRIVER_DYNAMIC_ALLOC)) {
3183                 retval = tty_cdev_add(driver, devt, index, 1);
3184                 if (retval)
3185                         goto error;
3186                 cdev = true;
3187         }
3188
3189         dev = kzalloc(sizeof(*dev), GFP_KERNEL);
3190         if (!dev) {
3191                 retval = -ENOMEM;
3192                 goto error;
3193         }
3194
3195         dev->devt = devt;
3196         dev->class = tty_class;
3197         dev->parent = device;
3198         dev->release = tty_device_create_release;
3199         dev_set_name(dev, "%s", name);
3200         dev->groups = attr_grp;
3201         dev_set_drvdata(dev, drvdata);
3202
3203         retval = device_register(dev);
3204         if (retval)
3205                 goto error;
3206
3207         return dev;
3208
3209 error:
3210         put_device(dev);
3211         if (cdev)
3212                 cdev_del(&driver->cdevs[index]);
3213         return ERR_PTR(retval);
3214 }
3215 EXPORT_SYMBOL_GPL(tty_register_device_attr);
3216
3217 /**
3218  *      tty_unregister_device - unregister a tty device
3219  *      @driver: the tty driver that describes the tty device
3220  *      @index: the index in the tty driver for this tty device
3221  *
3222  *      If a tty device is registered with a call to tty_register_device() then
3223  *      this function must be called when the tty device is gone.
3224  *
3225  *      Locking: ??
3226  */
3227
3228 void tty_unregister_device(struct tty_driver *driver, unsigned index)
3229 {
3230         device_destroy(tty_class,
3231                 MKDEV(driver->major, driver->minor_start) + index);
3232         if (!(driver->flags & TTY_DRIVER_DYNAMIC_ALLOC))
3233                 cdev_del(&driver->cdevs[index]);
3234 }
3235 EXPORT_SYMBOL(tty_unregister_device);
3236
3237 /**
3238  * __tty_alloc_driver -- allocate tty driver
3239  * @lines: count of lines this driver can handle at most
3240  * @owner: module which is repsonsible for this driver
3241  * @flags: some of TTY_DRIVER_* flags, will be set in driver->flags
3242  *
3243  * This should not be called directly, some of the provided macros should be
3244  * used instead. Use IS_ERR and friends on @retval.
3245  */
3246 struct tty_driver *__tty_alloc_driver(unsigned int lines, struct module *owner,
3247                 unsigned long flags)
3248 {
3249         struct tty_driver *driver;
3250         unsigned int cdevs = 1;
3251         int err;
3252
3253         if (!lines || (flags & TTY_DRIVER_UNNUMBERED_NODE && lines > 1))
3254                 return ERR_PTR(-EINVAL);
3255
3256         driver = kzalloc(sizeof(struct tty_driver), GFP_KERNEL);
3257         if (!driver)
3258                 return ERR_PTR(-ENOMEM);
3259
3260         kref_init(&driver->kref);
3261         driver->magic = TTY_DRIVER_MAGIC;
3262         driver->num = lines;
3263         driver->owner = owner;
3264         driver->flags = flags;
3265
3266         if (!(flags & TTY_DRIVER_DEVPTS_MEM)) {
3267                 driver->ttys = kcalloc(lines, sizeof(*driver->ttys),
3268                                 GFP_KERNEL);
3269                 driver->termios = kcalloc(lines, sizeof(*driver->termios),
3270                                 GFP_KERNEL);
3271                 if (!driver->ttys || !driver->termios) {
3272                         err = -ENOMEM;
3273                         goto err_free_all;
3274                 }
3275         }
3276
3277         if (!(flags & TTY_DRIVER_DYNAMIC_ALLOC)) {
3278                 driver->ports = kcalloc(lines, sizeof(*driver->ports),
3279                                 GFP_KERNEL);
3280                 if (!driver->ports) {
3281                         err = -ENOMEM;
3282                         goto err_free_all;
3283                 }
3284                 cdevs = lines;
3285         }
3286
3287         driver->cdevs = kcalloc(cdevs, sizeof(*driver->cdevs), GFP_KERNEL);
3288         if (!driver->cdevs) {
3289                 err = -ENOMEM;
3290                 goto err_free_all;
3291         }
3292
3293         return driver;
3294 err_free_all:
3295         kfree(driver->ports);
3296         kfree(driver->ttys);
3297         kfree(driver->termios);
3298         kfree(driver);
3299         return ERR_PTR(err);
3300 }
3301 EXPORT_SYMBOL(__tty_alloc_driver);
3302
3303 static void destruct_tty_driver(struct kref *kref)
3304 {
3305         struct tty_driver *driver = container_of(kref, struct tty_driver, kref);
3306         int i;
3307         struct ktermios *tp;
3308
3309         if (driver->flags & TTY_DRIVER_INSTALLED) {
3310                 /*
3311                  * Free the termios and termios_locked structures because
3312                  * we don't want to get memory leaks when modular tty
3313                  * drivers are removed from the kernel.
3314                  */
3315                 for (i = 0; i < driver->num; i++) {
3316                         tp = driver->termios[i];
3317                         if (tp) {
3318                                 driver->termios[i] = NULL;
3319                                 kfree(tp);
3320                         }
3321                         if (!(driver->flags & TTY_DRIVER_DYNAMIC_DEV))
3322                                 tty_unregister_device(driver, i);
3323                 }
3324                 proc_tty_unregister_driver(driver);
3325                 if (driver->flags & TTY_DRIVER_DYNAMIC_ALLOC)
3326                         cdev_del(&driver->cdevs[0]);
3327         }
3328         kfree(driver->cdevs);
3329         kfree(driver->ports);
3330         kfree(driver->termios);
3331         kfree(driver->ttys);
3332         kfree(driver);
3333 }
3334
3335 void tty_driver_kref_put(struct tty_driver *driver)
3336 {
3337         kref_put(&driver->kref, destruct_tty_driver);
3338 }
3339 EXPORT_SYMBOL(tty_driver_kref_put);
3340
3341 void tty_set_operations(struct tty_driver *driver,
3342                         const struct tty_operations *op)
3343 {
3344         driver->ops = op;
3345 };
3346 EXPORT_SYMBOL(tty_set_operations);
3347
3348 void put_tty_driver(struct tty_driver *d)
3349 {
3350         tty_driver_kref_put(d);
3351 }
3352 EXPORT_SYMBOL(put_tty_driver);
3353
3354 /*
3355  * Called by a tty driver to register itself.
3356  */
3357 int tty_register_driver(struct tty_driver *driver)
3358 {
3359         int error;
3360         int i;
3361         dev_t dev;
3362         struct device *d;
3363
3364         if (!driver->major) {
3365                 error = alloc_chrdev_region(&dev, driver->minor_start,
3366                                                 driver->num, driver->name);
3367                 if (!error) {
3368                         driver->major = MAJOR(dev);
3369                         driver->minor_start = MINOR(dev);
3370                 }
3371         } else {
3372                 dev = MKDEV(driver->major, driver->minor_start);
3373                 error = register_chrdev_region(dev, driver->num, driver->name);
3374         }
3375         if (error < 0)
3376                 goto err;
3377
3378         if (driver->flags & TTY_DRIVER_DYNAMIC_ALLOC) {
3379                 error = tty_cdev_add(driver, dev, 0, driver->num);
3380                 if (error)
3381                         goto err_unreg_char;
3382         }
3383
3384         mutex_lock(&tty_mutex);
3385         list_add(&driver->tty_drivers, &tty_drivers);
3386         mutex_unlock(&tty_mutex);
3387
3388         if (!(driver->flags & TTY_DRIVER_DYNAMIC_DEV)) {
3389                 for (i = 0; i < driver->num; i++) {
3390                         d = tty_register_device(driver, i, NULL);
3391                         if (IS_ERR(d)) {
3392                                 error = PTR_ERR(d);
3393                                 goto err_unreg_devs;
3394                         }
3395                 }
3396         }
3397         proc_tty_register_driver(driver);
3398         driver->flags |= TTY_DRIVER_INSTALLED;
3399         return 0;
3400
3401 err_unreg_devs:
3402         for (i--; i >= 0; i--)
3403                 tty_unregister_device(driver, i);
3404
3405         mutex_lock(&tty_mutex);
3406         list_del(&driver->tty_drivers);
3407         mutex_unlock(&tty_mutex);
3408
3409 err_unreg_char:
3410         unregister_chrdev_region(dev, driver->num);
3411 err:
3412         return error;
3413 }
3414 EXPORT_SYMBOL(tty_register_driver);
3415
3416 /*
3417  * Called by a tty driver to unregister itself.
3418  */
3419 int tty_unregister_driver(struct tty_driver *driver)
3420 {
3421 #if 0
3422         /* FIXME */
3423         if (driver->refcount)
3424                 return -EBUSY;
3425 #endif
3426         unregister_chrdev_region(MKDEV(driver->major, driver->minor_start),
3427                                 driver->num);
3428         mutex_lock(&tty_mutex);
3429         list_del(&driver->tty_drivers);
3430         mutex_unlock(&tty_mutex);
3431         return 0;
3432 }
3433
3434 EXPORT_SYMBOL(tty_unregister_driver);
3435
3436 dev_t tty_devnum(struct tty_struct *tty)
3437 {
3438         return MKDEV(tty->driver->major, tty->driver->minor_start) + tty->index;
3439 }
3440 EXPORT_SYMBOL(tty_devnum);
3441
3442 void proc_clear_tty(struct task_struct *p)
3443 {
3444         unsigned long flags;
3445         struct tty_struct *tty;
3446         spin_lock_irqsave(&p->sighand->siglock, flags);
3447         tty = p->signal->tty;
3448         p->signal->tty = NULL;
3449         spin_unlock_irqrestore(&p->sighand->siglock, flags);
3450         tty_kref_put(tty);
3451 }
3452
3453 /* Called under the sighand lock */
3454
3455 static void __proc_set_tty(struct task_struct *tsk, struct tty_struct *tty)
3456 {
3457         if (tty) {
3458                 unsigned long flags;
3459                 /* We should not have a session or pgrp to put here but.... */
3460                 spin_lock_irqsave(&tty->ctrl_lock, flags);
3461                 put_pid(tty->session);
3462                 put_pid(tty->pgrp);
3463                 tty->pgrp = get_pid(task_pgrp(tsk));
3464                 spin_unlock_irqrestore(&tty->ctrl_lock, flags);
3465                 tty->session = get_pid(task_session(tsk));
3466                 if (tsk->signal->tty) {
3467                         printk(KERN_DEBUG "tty not NULL!!\n");
3468                         tty_kref_put(tsk->signal->tty);
3469                 }
3470         }
3471         put_pid(tsk->signal->tty_old_pgrp);
3472         tsk->signal->tty = tty_kref_get(tty);
3473         tsk->signal->tty_old_pgrp = NULL;
3474 }
3475
3476 static void proc_set_tty(struct task_struct *tsk, struct tty_struct *tty)
3477 {
3478         spin_lock_irq(&tsk->sighand->siglock);
3479         __proc_set_tty(tsk, tty);
3480         spin_unlock_irq(&tsk->sighand->siglock);
3481 }
3482
3483 struct tty_struct *get_current_tty(void)
3484 {
3485         struct tty_struct *tty;
3486         unsigned long flags;
3487
3488         spin_lock_irqsave(&current->sighand->siglock, flags);
3489         tty = tty_kref_get(current->signal->tty);
3490         spin_unlock_irqrestore(&current->sighand->siglock, flags);
3491         return tty;
3492 }
3493 EXPORT_SYMBOL_GPL(get_current_tty);
3494
3495 void tty_default_fops(struct file_operations *fops)
3496 {
3497         *fops = tty_fops;
3498 }
3499
3500 /*
3501  * Initialize the console device. This is called *early*, so
3502  * we can't necessarily depend on lots of kernel help here.
3503  * Just do some early initializations, and do the complex setup
3504  * later.
3505  */
3506 void __init console_init(void)
3507 {
3508         initcall_t *call;
3509
3510         /* Setup the default TTY line discipline. */
3511         tty_ldisc_begin();
3512
3513         /*
3514          * set up the console device so that later boot sequences can
3515          * inform about problems etc..
3516          */
3517         call = __con_initcall_start;
3518         while (call < __con_initcall_end) {
3519                 (*call)();
3520                 call++;
3521         }
3522 }
3523
3524 static char *tty_devnode(struct device *dev, umode_t *mode)
3525 {
3526         if (!mode)
3527                 return NULL;
3528         if (dev->devt == MKDEV(TTYAUX_MAJOR, 0) ||
3529             dev->devt == MKDEV(TTYAUX_MAJOR, 2))
3530                 *mode = 0666;
3531         return NULL;
3532 }
3533
3534 static int __init tty_class_init(void)
3535 {
3536         tty_class = class_create(THIS_MODULE, "tty");
3537         if (IS_ERR(tty_class))
3538                 return PTR_ERR(tty_class);
3539         tty_class->devnode = tty_devnode;
3540         return 0;
3541 }
3542
3543 postcore_initcall(tty_class_init);
3544
3545 /* 3/2004 jmc: why do these devices exist? */
3546 static struct cdev tty_cdev, console_cdev;
3547
3548 static ssize_t show_cons_active(struct device *dev,
3549                                 struct device_attribute *attr, char *buf)
3550 {
3551         struct console *cs[16];
3552         int i = 0;
3553         struct console *c;
3554         ssize_t count = 0;
3555
3556         console_lock();
3557         for_each_console(c) {
3558                 if (!c->device)
3559                         continue;
3560                 if (!c->write)
3561                         continue;
3562                 if ((c->flags & CON_ENABLED) == 0)
3563                         continue;
3564                 cs[i++] = c;
3565                 if (i >= ARRAY_SIZE(cs))
3566                         break;
3567         }
3568         while (i--) {
3569                 int index = cs[i]->index;
3570                 struct tty_driver *drv = cs[i]->device(cs[i], &index);
3571
3572                 /* don't resolve tty0 as some programs depend on it */
3573                 if (drv && (cs[i]->index > 0 || drv->major != TTY_MAJOR))
3574                         count += tty_line_name(drv, index, buf + count);
3575                 else
3576                         count += sprintf(buf + count, "%s%d",
3577                                          cs[i]->name, cs[i]->index);
3578
3579                 count += sprintf(buf + count, "%c", i ? ' ':'\n');
3580         }
3581         console_unlock();
3582
3583         return count;
3584 }
3585 static DEVICE_ATTR(active, S_IRUGO, show_cons_active, NULL);
3586
3587 static struct device *consdev;
3588
3589 void console_sysfs_notify(void)
3590 {
3591         if (consdev)
3592                 sysfs_notify(&consdev->kobj, NULL, "active");
3593 }
3594
3595 /*
3596  * Ok, now we can initialize the rest of the tty devices and can count
3597  * on memory allocations, interrupts etc..
3598  */
3599 int __init tty_init(void)
3600 {
3601         cdev_init(&tty_cdev, &tty_fops);
3602         if (cdev_add(&tty_cdev, MKDEV(TTYAUX_MAJOR, 0), 1) ||
3603             register_chrdev_region(MKDEV(TTYAUX_MAJOR, 0), 1, "/dev/tty") < 0)
3604                 panic("Couldn't register /dev/tty driver\n");
3605         device_create(tty_class, NULL, MKDEV(TTYAUX_MAJOR, 0), NULL, "tty");
3606
3607         cdev_init(&console_cdev, &console_fops);
3608         if (cdev_add(&console_cdev, MKDEV(TTYAUX_MAJOR, 1), 1) ||
3609             register_chrdev_region(MKDEV(TTYAUX_MAJOR, 1), 1, "/dev/console") < 0)
3610                 panic("Couldn't register /dev/console driver\n");
3611         consdev = device_create(tty_class, NULL, MKDEV(TTYAUX_MAJOR, 1), NULL,
3612                               "console");
3613         if (IS_ERR(consdev))
3614                 consdev = NULL;
3615         else
3616                 WARN_ON(device_create_file(consdev, &dev_attr_active) < 0);
3617
3618 #ifdef CONFIG_VT
3619         vty_init(&console_fops);
3620 #endif
3621         return 0;
3622 }
3623