1 // SPDX-License-Identifier: GPL-2.0
3 * Copyright (C) 1991, 1992 Linus Torvalds
7 * 'tty_io.c' gives an orthogonal feeling to tty's, be they consoles
8 * or rs-channels. It also implements echoing, cooked mode etc.
10 * Kill-line thanks to John T Kohl, who also corrected VMIN = VTIME = 0.
12 * Modified by Theodore Ts'o, 9/14/92, to dynamically allocate the
13 * tty_struct and tty_queue structures. Previously there was an array
14 * of 256 tty_struct's which was statically allocated, and the
15 * tty_queue structures were allocated at boot time. Both are now
16 * dynamically allocated only when the tty is open.
18 * Also restructured routines so that there is more of a separation
19 * between the high-level tty routines (tty_io.c and tty_ioctl.c) and
20 * the low-level tty routines (serial.c, pty.c, console.c). This
21 * makes for cleaner and more compact code. -TYT, 9/17/92
23 * Modified by Fred N. van Kempen, 01/29/93, to add line disciplines
24 * which can be dynamically activated and de-activated by the line
25 * discipline handling modules (like SLIP).
27 * NOTE: pay no attention to the line discipline code (yet); its
28 * interface is still subject to change in this version...
31 * Added functionality to the OPOST tty handling. No delays, but all
32 * other bits should be there.
35 * Rewrote canonical mode and added more termios flags.
38 * Reorganized FASYNC support so mouse code can share it.
41 * New TIOCLINUX variants added.
44 * Restrict vt switching via ioctl()
47 * Move console and virtual terminal code to more appropriate files,
48 * implement CONFIG_VT and generalize console device interface.
51 * Rewrote tty_init_dev and tty_release_dev to eliminate races.
54 * Added devfs support.
57 * Added support for a Unix98-style ptmx device.
60 * Reduced memory usage for older ARM systems
63 * Move do_SAK() into process context. Less stack use in devfs functions.
64 * alloc_tty_struct() always uses kmalloc()
68 #include <linux/types.h>
69 #include <linux/major.h>
70 #include <linux/errno.h>
71 #include <linux/signal.h>
72 #include <linux/fcntl.h>
73 #include <linux/sched/signal.h>
74 #include <linux/sched/task.h>
75 #include <linux/interrupt.h>
76 #include <linux/tty.h>
77 #include <linux/tty_driver.h>
78 #include <linux/tty_flip.h>
79 #include <linux/devpts_fs.h>
80 #include <linux/file.h>
81 #include <linux/fdtable.h>
82 #include <linux/console.h>
83 #include <linux/timer.h>
84 #include <linux/ctype.h>
87 #include <linux/string.h>
88 #include <linux/slab.h>
89 #include <linux/poll.h>
90 #include <linux/ppp-ioctl.h>
91 #include <linux/proc_fs.h>
92 #include <linux/init.h>
93 #include <linux/module.h>
94 #include <linux/device.h>
95 #include <linux/wait.h>
96 #include <linux/bitops.h>
97 #include <linux/delay.h>
98 #include <linux/seq_file.h>
99 #include <linux/serial.h>
100 #include <linux/ratelimit.h>
101 #include <linux/compat.h>
103 #include <linux/uaccess.h>
105 #include <linux/kbd_kern.h>
106 #include <linux/vt_kern.h>
107 #include <linux/selection.h>
109 #include <linux/kmod.h>
110 #include <linux/nsproxy.h>
113 #undef TTY_DEBUG_HANGUP
114 #ifdef TTY_DEBUG_HANGUP
115 # define tty_debug_hangup(tty, f, args...) tty_debug(tty, f, ##args)
117 # define tty_debug_hangup(tty, f, args...) do { } while (0)
120 #define TTY_PARANOIA_CHECK 1
121 #define CHECK_TTY_COUNT 1
123 struct ktermios tty_std_termios = { /* for the benefit of tty drivers */
124 .c_iflag = ICRNL | IXON,
125 .c_oflag = OPOST | ONLCR,
126 .c_cflag = B38400 | CS8 | CREAD | HUPCL,
127 .c_lflag = ISIG | ICANON | ECHO | ECHOE | ECHOK |
128 ECHOCTL | ECHOKE | IEXTEN,
132 /* .c_line = N_TTY, */
134 EXPORT_SYMBOL(tty_std_termios);
136 /* This list gets poked at by procfs and various bits of boot up code. This
137 * could do with some rationalisation such as pulling the tty proc function
141 LIST_HEAD(tty_drivers); /* linked list of tty drivers */
143 /* Mutex to protect creating and releasing a tty */
144 DEFINE_MUTEX(tty_mutex);
146 static ssize_t tty_read(struct kiocb *, struct iov_iter *);
147 static ssize_t tty_write(struct kiocb *, struct iov_iter *);
148 static __poll_t tty_poll(struct file *, poll_table *);
149 static int tty_open(struct inode *, struct file *);
151 static long tty_compat_ioctl(struct file *file, unsigned int cmd,
154 #define tty_compat_ioctl NULL
156 static int __tty_fasync(int fd, struct file *filp, int on);
157 static int tty_fasync(int fd, struct file *filp, int on);
158 static void release_tty(struct tty_struct *tty, int idx);
161 * free_tty_struct - free a disused tty
162 * @tty: tty struct to free
164 * Free the write buffers, tty queue and tty memory itself.
166 * Locking: none. Must be called after tty is definitely unused
169 static void free_tty_struct(struct tty_struct *tty)
171 tty_ldisc_deinit(tty);
172 put_device(tty->dev);
173 kfree(tty->write_buf);
174 tty->magic = 0xDEADDEAD;
178 static inline struct tty_struct *file_tty(struct file *file)
180 return ((struct tty_file_private *)file->private_data)->tty;
183 int tty_alloc_file(struct file *file)
185 struct tty_file_private *priv;
187 priv = kmalloc(sizeof(*priv), GFP_KERNEL);
191 file->private_data = priv;
196 /* Associate a new file with the tty structure */
197 void tty_add_file(struct tty_struct *tty, struct file *file)
199 struct tty_file_private *priv = file->private_data;
204 spin_lock(&tty->files_lock);
205 list_add(&priv->list, &tty->tty_files);
206 spin_unlock(&tty->files_lock);
210 * tty_free_file - free file->private_data
212 * This shall be used only for fail path handling when tty_add_file was not
215 void tty_free_file(struct file *file)
217 struct tty_file_private *priv = file->private_data;
219 file->private_data = NULL;
223 /* Delete file from its tty */
224 static void tty_del_file(struct file *file)
226 struct tty_file_private *priv = file->private_data;
227 struct tty_struct *tty = priv->tty;
229 spin_lock(&tty->files_lock);
230 list_del(&priv->list);
231 spin_unlock(&tty->files_lock);
236 * tty_name - return tty naming
237 * @tty: tty structure
239 * Convert a tty structure into a name. The name reflects the kernel
240 * naming policy and if udev is in use may not reflect user space
245 const char *tty_name(const struct tty_struct *tty)
247 if (!tty) /* Hmm. NULL pointer. That's fun. */
251 EXPORT_SYMBOL(tty_name);
253 const char *tty_driver_name(const struct tty_struct *tty)
255 if (!tty || !tty->driver)
257 return tty->driver->name;
260 static int tty_paranoia_check(struct tty_struct *tty, struct inode *inode,
263 #ifdef TTY_PARANOIA_CHECK
265 pr_warn("(%d:%d): %s: NULL tty\n",
266 imajor(inode), iminor(inode), routine);
269 if (tty->magic != TTY_MAGIC) {
270 pr_warn("(%d:%d): %s: bad magic number\n",
271 imajor(inode), iminor(inode), routine);
278 /* Caller must hold tty_lock */
279 static int check_tty_count(struct tty_struct *tty, const char *routine)
281 #ifdef CHECK_TTY_COUNT
283 int count = 0, kopen_count = 0;
285 spin_lock(&tty->files_lock);
286 list_for_each(p, &tty->tty_files) {
289 spin_unlock(&tty->files_lock);
290 if (tty->driver->type == TTY_DRIVER_TYPE_PTY &&
291 tty->driver->subtype == PTY_TYPE_SLAVE &&
292 tty->link && tty->link->count)
294 if (tty_port_kopened(tty->port))
296 if (tty->count != (count + kopen_count)) {
297 tty_warn(tty, "%s: tty->count(%d) != (#fd's(%d) + #kopen's(%d))\n",
298 routine, tty->count, count, kopen_count);
299 return (count + kopen_count);
306 * get_tty_driver - find device of a tty
307 * @device: device identifier
308 * @index: returns the index of the tty
310 * This routine returns a tty driver structure, given a device number
311 * and also passes back the index number.
313 * Locking: caller must hold tty_mutex
316 static struct tty_driver *get_tty_driver(dev_t device, int *index)
318 struct tty_driver *p;
320 list_for_each_entry(p, &tty_drivers, tty_drivers) {
321 dev_t base = MKDEV(p->major, p->minor_start);
323 if (device < base || device >= base + p->num)
325 *index = device - base;
326 return tty_driver_kref_get(p);
332 * tty_dev_name_to_number - return dev_t for device name
333 * @name: user space name of device under /dev
334 * @number: pointer to dev_t that this function will populate
336 * This function converts device names like ttyS0 or ttyUSB1 into dev_t
337 * like (4, 64) or (188, 1). If no corresponding driver is registered then
338 * the function returns -ENODEV.
340 * Locking: this acquires tty_mutex to protect the tty_drivers list from
341 * being modified while we are traversing it, and makes sure to
342 * release it before exiting.
344 int tty_dev_name_to_number(const char *name, dev_t *number)
346 struct tty_driver *p;
348 int index, prefix_length = 0;
351 for (str = name; *str && !isdigit(*str); str++)
357 ret = kstrtoint(str, 10, &index);
361 prefix_length = str - name;
362 mutex_lock(&tty_mutex);
364 list_for_each_entry(p, &tty_drivers, tty_drivers)
365 if (prefix_length == strlen(p->name) && strncmp(name,
366 p->name, prefix_length) == 0) {
367 if (index < p->num) {
368 *number = MKDEV(p->major, p->minor_start + index);
373 /* if here then driver wasn't found */
376 mutex_unlock(&tty_mutex);
379 EXPORT_SYMBOL_GPL(tty_dev_name_to_number);
381 #ifdef CONFIG_CONSOLE_POLL
384 * tty_find_polling_driver - find device of a polled tty
385 * @name: name string to match
386 * @line: pointer to resulting tty line nr
388 * This routine returns a tty driver structure, given a name
389 * and the condition that the tty driver is capable of polled
392 struct tty_driver *tty_find_polling_driver(char *name, int *line)
394 struct tty_driver *p, *res = NULL;
399 for (str = name; *str; str++)
400 if ((*str >= '0' && *str <= '9') || *str == ',')
406 tty_line = simple_strtoul(str, &str, 10);
408 mutex_lock(&tty_mutex);
409 /* Search through the tty devices to look for a match */
410 list_for_each_entry(p, &tty_drivers, tty_drivers) {
411 if (!len || strncmp(name, p->name, len) != 0)
419 if (tty_line >= 0 && tty_line < p->num && p->ops &&
420 p->ops->poll_init && !p->ops->poll_init(p, tty_line, stp)) {
421 res = tty_driver_kref_get(p);
426 mutex_unlock(&tty_mutex);
430 EXPORT_SYMBOL_GPL(tty_find_polling_driver);
433 static ssize_t hung_up_tty_read(struct kiocb *iocb, struct iov_iter *to)
438 static ssize_t hung_up_tty_write(struct kiocb *iocb, struct iov_iter *from)
443 /* No kernel lock held - none needed ;) */
444 static __poll_t hung_up_tty_poll(struct file *filp, poll_table *wait)
446 return EPOLLIN | EPOLLOUT | EPOLLERR | EPOLLHUP | EPOLLRDNORM | EPOLLWRNORM;
449 static long hung_up_tty_ioctl(struct file *file, unsigned int cmd,
452 return cmd == TIOCSPGRP ? -ENOTTY : -EIO;
455 static long hung_up_tty_compat_ioctl(struct file *file,
456 unsigned int cmd, unsigned long arg)
458 return cmd == TIOCSPGRP ? -ENOTTY : -EIO;
461 static int hung_up_tty_fasync(int fd, struct file *file, int on)
466 static void tty_show_fdinfo(struct seq_file *m, struct file *file)
468 struct tty_struct *tty = file_tty(file);
470 if (tty && tty->ops && tty->ops->show_fdinfo)
471 tty->ops->show_fdinfo(tty, m);
474 static const struct file_operations tty_fops = {
476 .read_iter = tty_read,
477 .write_iter = tty_write,
478 .splice_read = generic_file_splice_read,
479 .splice_write = iter_file_splice_write,
481 .unlocked_ioctl = tty_ioctl,
482 .compat_ioctl = tty_compat_ioctl,
484 .release = tty_release,
485 .fasync = tty_fasync,
486 .show_fdinfo = tty_show_fdinfo,
489 static const struct file_operations console_fops = {
491 .read_iter = tty_read,
492 .write_iter = redirected_tty_write,
493 .splice_read = generic_file_splice_read,
494 .splice_write = iter_file_splice_write,
496 .unlocked_ioctl = tty_ioctl,
497 .compat_ioctl = tty_compat_ioctl,
499 .release = tty_release,
500 .fasync = tty_fasync,
503 static const struct file_operations hung_up_tty_fops = {
505 .read_iter = hung_up_tty_read,
506 .write_iter = hung_up_tty_write,
507 .poll = hung_up_tty_poll,
508 .unlocked_ioctl = hung_up_tty_ioctl,
509 .compat_ioctl = hung_up_tty_compat_ioctl,
510 .release = tty_release,
511 .fasync = hung_up_tty_fasync,
514 static DEFINE_SPINLOCK(redirect_lock);
515 static struct file *redirect;
518 * tty_wakeup - request more data
521 * Internal and external helper for wakeups of tty. This function
522 * informs the line discipline if present that the driver is ready
523 * to receive more output data.
526 void tty_wakeup(struct tty_struct *tty)
528 struct tty_ldisc *ld;
530 if (test_bit(TTY_DO_WRITE_WAKEUP, &tty->flags)) {
531 ld = tty_ldisc_ref(tty);
533 if (ld->ops->write_wakeup)
534 ld->ops->write_wakeup(tty);
538 wake_up_interruptible_poll(&tty->write_wait, EPOLLOUT);
540 EXPORT_SYMBOL_GPL(tty_wakeup);
543 * tty_release_redirect - Release a redirect on a pty if present
546 * This is available to the pty code so if the master closes, if the
547 * slave is a redirect it can release the redirect.
549 static struct file *tty_release_redirect(struct tty_struct *tty)
551 struct file *f = NULL;
553 spin_lock(&redirect_lock);
554 if (redirect && file_tty(redirect) == tty) {
558 spin_unlock(&redirect_lock);
564 * __tty_hangup - actual handler for hangup events
566 * @exit_session: if non-zero, signal all foreground group processes
568 * This can be called by a "kworker" kernel thread. That is process
569 * synchronous but doesn't hold any locks, so we need to make sure we
570 * have the appropriate locks for what we're doing.
572 * The hangup event clears any pending redirections onto the hung up
573 * device. It ensures future writes will error and it does the needed
574 * line discipline hangup and signal delivery. The tty object itself
579 * redirect lock for undoing redirection
580 * file list lock for manipulating list of ttys
581 * tty_ldiscs_lock from called functions
582 * termios_rwsem resetting termios data
583 * tasklist_lock to walk task list for hangup event
584 * ->siglock to protect ->signal/->sighand
586 static void __tty_hangup(struct tty_struct *tty, int exit_session)
588 struct file *cons_filp = NULL;
589 struct file *filp, *f;
590 struct tty_file_private *priv;
591 int closecount = 0, n;
597 f = tty_release_redirect(tty);
601 if (test_bit(TTY_HUPPED, &tty->flags)) {
607 * Some console devices aren't actually hung up for technical and
608 * historical reasons, which can lead to indefinite interruptible
609 * sleep in n_tty_read(). The following explicitly tells
610 * n_tty_read() to abort readers.
612 set_bit(TTY_HUPPING, &tty->flags);
614 /* inuse_filps is protected by the single tty lock,
615 * this really needs to change if we want to flush the
616 * workqueue with the lock held.
618 check_tty_count(tty, "tty_hangup");
620 spin_lock(&tty->files_lock);
621 /* This breaks for file handles being sent over AF_UNIX sockets ? */
622 list_for_each_entry(priv, &tty->tty_files, list) {
624 if (filp->f_op->write_iter == redirected_tty_write)
626 if (filp->f_op->write_iter != tty_write)
629 __tty_fasync(-1, filp, 0); /* can't block */
630 filp->f_op = &hung_up_tty_fops;
632 spin_unlock(&tty->files_lock);
634 refs = tty_signal_session_leader(tty, exit_session);
635 /* Account for the p->signal references we killed */
639 tty_ldisc_hangup(tty, cons_filp != NULL);
641 spin_lock_irq(&tty->ctrl.lock);
642 clear_bit(TTY_THROTTLED, &tty->flags);
643 clear_bit(TTY_DO_WRITE_WAKEUP, &tty->flags);
644 put_pid(tty->ctrl.session);
645 put_pid(tty->ctrl.pgrp);
646 tty->ctrl.session = NULL;
647 tty->ctrl.pgrp = NULL;
648 tty->ctrl.pktstatus = 0;
649 spin_unlock_irq(&tty->ctrl.lock);
652 * If one of the devices matches a console pointer, we
653 * cannot just call hangup() because that will cause
654 * tty->count and state->count to go out of sync.
655 * So we just call close() the right number of times.
659 for (n = 0; n < closecount; n++)
660 tty->ops->close(tty, cons_filp);
661 } else if (tty->ops->hangup)
662 tty->ops->hangup(tty);
664 * We don't want to have driver/ldisc interactions beyond the ones
665 * we did here. The driver layer expects no calls after ->hangup()
666 * from the ldisc side, which is now guaranteed.
668 set_bit(TTY_HUPPED, &tty->flags);
669 clear_bit(TTY_HUPPING, &tty->flags);
676 static void do_tty_hangup(struct work_struct *work)
678 struct tty_struct *tty =
679 container_of(work, struct tty_struct, hangup_work);
681 __tty_hangup(tty, 0);
685 * tty_hangup - trigger a hangup event
686 * @tty: tty to hangup
688 * A carrier loss (virtual or otherwise) has occurred on this like
689 * schedule a hangup sequence to run after this event.
692 void tty_hangup(struct tty_struct *tty)
694 tty_debug_hangup(tty, "hangup\n");
695 schedule_work(&tty->hangup_work);
697 EXPORT_SYMBOL(tty_hangup);
700 * tty_vhangup - process vhangup
701 * @tty: tty to hangup
703 * The user has asked via system call for the terminal to be hung up.
704 * We do this synchronously so that when the syscall returns the process
705 * is complete. That guarantee is necessary for security reasons.
708 void tty_vhangup(struct tty_struct *tty)
710 tty_debug_hangup(tty, "vhangup\n");
711 __tty_hangup(tty, 0);
713 EXPORT_SYMBOL(tty_vhangup);
717 * tty_vhangup_self - process vhangup for own ctty
719 * Perform a vhangup on the current controlling tty
722 void tty_vhangup_self(void)
724 struct tty_struct *tty;
726 tty = get_current_tty();
734 * tty_vhangup_session - hangup session leader exit
735 * @tty: tty to hangup
737 * The session leader is exiting and hanging up its controlling terminal.
738 * Every process in the foreground process group is signalled SIGHUP.
740 * We do this synchronously so that when the syscall returns the process
741 * is complete. That guarantee is necessary for security reasons.
744 void tty_vhangup_session(struct tty_struct *tty)
746 tty_debug_hangup(tty, "session hangup\n");
747 __tty_hangup(tty, 1);
751 * tty_hung_up_p - was tty hung up
752 * @filp: file pointer of tty
754 * Return true if the tty has been subject to a vhangup or a carrier
758 int tty_hung_up_p(struct file *filp)
760 return (filp && filp->f_op == &hung_up_tty_fops);
762 EXPORT_SYMBOL(tty_hung_up_p);
764 void __stop_tty(struct tty_struct *tty)
766 if (tty->flow.stopped)
768 tty->flow.stopped = true;
774 * stop_tty - propagate flow control
777 * Perform flow control to the driver. May be called
778 * on an already stopped device and will not re-call the driver
781 * This functionality is used by both the line disciplines for
782 * halting incoming flow and by the driver. It may therefore be
783 * called from any context, may be under the tty atomic_write_lock
789 void stop_tty(struct tty_struct *tty)
793 spin_lock_irqsave(&tty->flow.lock, flags);
795 spin_unlock_irqrestore(&tty->flow.lock, flags);
797 EXPORT_SYMBOL(stop_tty);
799 void __start_tty(struct tty_struct *tty)
801 if (!tty->flow.stopped || tty->flow.tco_stopped)
803 tty->flow.stopped = false;
805 tty->ops->start(tty);
810 * start_tty - propagate flow control
813 * Start a tty that has been stopped if at all possible. If this
814 * tty was previous stopped and is now being started, the driver
815 * start method is invoked and the line discipline woken.
820 void start_tty(struct tty_struct *tty)
824 spin_lock_irqsave(&tty->flow.lock, flags);
826 spin_unlock_irqrestore(&tty->flow.lock, flags);
828 EXPORT_SYMBOL(start_tty);
830 static void tty_update_time(struct timespec64 *time)
832 time64_t sec = ktime_get_real_seconds();
835 * We only care if the two values differ in anything other than the
836 * lower three bits (i.e every 8 seconds). If so, then we can update
837 * the time of the tty device, otherwise it could be construded as a
838 * security leak to let userspace know the exact timing of the tty.
840 if ((sec ^ time->tv_sec) & ~7)
845 * Iterate on the ldisc ->read() function until we've gotten all
846 * the data the ldisc has for us.
848 * The "cookie" is something that the ldisc read function can fill
849 * in to let us know that there is more data to be had.
851 * We promise to continue to call the ldisc until it stops returning
852 * data or clears the cookie. The cookie may be something that the
853 * ldisc maintains state for and needs to free.
855 static int iterate_tty_read(struct tty_ldisc *ld, struct tty_struct *tty,
856 struct file *file, struct iov_iter *to)
860 unsigned long offset = 0;
862 size_t count = iov_iter_count(to);
867 size = count > sizeof(kernel_buf) ? sizeof(kernel_buf) : count;
868 size = ld->ops->read(tty, file, kernel_buf, size, &cookie, offset);
873 /* Did we have an earlier error (ie -EFAULT)? */
879 * -EOVERFLOW means we didn't have enough space
880 * for a whole packet, and we shouldn't return
883 if (retval == -EOVERFLOW)
888 copied = copy_to_iter(kernel_buf, size, to);
893 * If the user copy failed, we still need to do another ->read()
894 * call if we had a cookie to let the ldisc clear up.
896 * But make sure size is zeroed.
898 if (unlikely(copied != size)) {
904 /* We always clear tty buffer in case they contained passwords */
905 memzero_explicit(kernel_buf, sizeof(kernel_buf));
906 return offset ? offset : retval;
911 * tty_read - read method for tty device files
912 * @iocb: kernel I/O control block
913 * @to: destination for the data read
915 * Perform the read system call function on this terminal device. Checks
916 * for hung up devices before calling the line discipline method.
919 * Locks the line discipline internally while needed. Multiple
920 * read calls may be outstanding in parallel.
923 static ssize_t tty_read(struct kiocb *iocb, struct iov_iter *to)
926 struct file *file = iocb->ki_filp;
927 struct inode *inode = file_inode(file);
928 struct tty_struct *tty = file_tty(file);
929 struct tty_ldisc *ld;
931 if (tty_paranoia_check(tty, inode, "tty_read"))
933 if (!tty || tty_io_error(tty))
936 /* We want to wait for the line discipline to sort out in this
939 ld = tty_ldisc_ref_wait(tty);
941 return hung_up_tty_read(iocb, to);
944 i = iterate_tty_read(ld, tty, file, to);
948 tty_update_time(&inode->i_atime);
953 static void tty_write_unlock(struct tty_struct *tty)
955 mutex_unlock(&tty->atomic_write_lock);
956 wake_up_interruptible_poll(&tty->write_wait, EPOLLOUT);
959 static int tty_write_lock(struct tty_struct *tty, int ndelay)
961 if (!mutex_trylock(&tty->atomic_write_lock)) {
964 if (mutex_lock_interruptible(&tty->atomic_write_lock))
971 * Split writes up in sane blocksizes to avoid
972 * denial-of-service type attacks
974 static inline ssize_t do_tty_write(
975 ssize_t (*write)(struct tty_struct *, struct file *, const unsigned char *, size_t),
976 struct tty_struct *tty,
978 struct iov_iter *from)
980 size_t count = iov_iter_count(from);
981 ssize_t ret, written = 0;
984 ret = tty_write_lock(tty, file->f_flags & O_NDELAY);
989 * We chunk up writes into a temporary buffer. This
990 * simplifies low-level drivers immensely, since they
991 * don't have locking issues and user mode accesses.
993 * But if TTY_NO_WRITE_SPLIT is set, we should use a
996 * The default chunk-size is 2kB, because the NTTY
997 * layer has problems with bigger chunks. It will
998 * claim to be able to handle more characters than
1001 * FIXME: This can probably go away now except that 64K chunks
1002 * are too likely to fail unless switched to vmalloc...
1005 if (test_bit(TTY_NO_WRITE_SPLIT, &tty->flags))
1010 /* write_buf/write_cnt is protected by the atomic_write_lock mutex */
1011 if (tty->write_cnt < chunk) {
1012 unsigned char *buf_chunk;
1017 buf_chunk = kmalloc(chunk, GFP_KERNEL);
1022 kfree(tty->write_buf);
1023 tty->write_cnt = chunk;
1024 tty->write_buf = buf_chunk;
1027 /* Do the write .. */
1029 size_t size = count;
1035 if (copy_from_iter(tty->write_buf, size, from) != size)
1038 ret = write(tty, file, tty->write_buf, size);
1046 /* FIXME! Have Al check this! */
1048 iov_iter_revert(from, size-ret);
1054 if (signal_pending(current))
1059 tty_update_time(&file_inode(file)->i_mtime);
1063 tty_write_unlock(tty);
1068 * tty_write_message - write a message to a certain tty, not just the console.
1069 * @tty: the destination tty_struct
1070 * @msg: the message to write
1072 * This is used for messages that need to be redirected to a specific tty.
1073 * We don't put it into the syslog queue right now maybe in the future if
1076 * We must still hold the BTM and test the CLOSING flag for the moment.
1079 void tty_write_message(struct tty_struct *tty, char *msg)
1082 mutex_lock(&tty->atomic_write_lock);
1084 if (tty->ops->write && tty->count > 0)
1085 tty->ops->write(tty, msg, strlen(msg));
1087 tty_write_unlock(tty);
1091 static ssize_t file_tty_write(struct file *file, struct kiocb *iocb, struct iov_iter *from)
1093 struct tty_struct *tty = file_tty(file);
1094 struct tty_ldisc *ld;
1097 if (tty_paranoia_check(tty, file_inode(file), "tty_write"))
1099 if (!tty || !tty->ops->write || tty_io_error(tty))
1101 /* Short term debug to catch buggy drivers */
1102 if (tty->ops->write_room == NULL)
1103 tty_err(tty, "missing write_room method\n");
1104 ld = tty_ldisc_ref_wait(tty);
1106 return hung_up_tty_write(iocb, from);
1107 if (!ld->ops->write)
1110 ret = do_tty_write(ld->ops->write, tty, file, from);
1111 tty_ldisc_deref(ld);
1116 * tty_write - write method for tty device file
1117 * @iocb: kernel I/O control block
1118 * @from: iov_iter with data to write
1120 * Write data to a tty device via the line discipline.
1123 * Locks the line discipline as required
1124 * Writes to the tty driver are serialized by the atomic_write_lock
1125 * and are then processed in chunks to the device. The line
1126 * discipline write method will not be invoked in parallel for
1129 static ssize_t tty_write(struct kiocb *iocb, struct iov_iter *from)
1131 return file_tty_write(iocb->ki_filp, iocb, from);
1134 ssize_t redirected_tty_write(struct kiocb *iocb, struct iov_iter *iter)
1136 struct file *p = NULL;
1138 spin_lock(&redirect_lock);
1140 p = get_file(redirect);
1141 spin_unlock(&redirect_lock);
1144 * We know the redirected tty is just another tty, we can
1145 * call file_tty_write() directly with that file pointer.
1150 res = file_tty_write(p, iocb, iter);
1154 return tty_write(iocb, iter);
1158 * tty_send_xchar - send priority character
1160 * Send a high priority character to the tty even if stopped
1162 * Locking: none for xchar method, write ordering for write method.
1165 int tty_send_xchar(struct tty_struct *tty, char ch)
1167 bool was_stopped = tty->flow.stopped;
1169 if (tty->ops->send_xchar) {
1170 down_read(&tty->termios_rwsem);
1171 tty->ops->send_xchar(tty, ch);
1172 up_read(&tty->termios_rwsem);
1176 if (tty_write_lock(tty, 0) < 0)
1177 return -ERESTARTSYS;
1179 down_read(&tty->termios_rwsem);
1182 tty->ops->write(tty, &ch, 1);
1185 up_read(&tty->termios_rwsem);
1186 tty_write_unlock(tty);
1191 * pty_line_name - generate name for a pty
1192 * @driver: the tty driver in use
1193 * @index: the minor number
1194 * @p: output buffer of at least 6 bytes
1196 * Generate a name from a driver reference and write it to the output
1201 static void pty_line_name(struct tty_driver *driver, int index, char *p)
1203 static const char ptychar[] = "pqrstuvwxyzabcde";
1204 int i = index + driver->name_base;
1205 /* ->name is initialized to "ttyp", but "tty" is expected */
1206 sprintf(p, "%s%c%x",
1207 driver->subtype == PTY_TYPE_SLAVE ? "tty" : driver->name,
1208 ptychar[i >> 4 & 0xf], i & 0xf);
1212 * tty_line_name - generate name for a tty
1213 * @driver: the tty driver in use
1214 * @index: the minor number
1215 * @p: output buffer of at least 7 bytes
1217 * Generate a name from a driver reference and write it to the output
1222 static ssize_t tty_line_name(struct tty_driver *driver, int index, char *p)
1224 if (driver->flags & TTY_DRIVER_UNNUMBERED_NODE)
1225 return sprintf(p, "%s", driver->name);
1227 return sprintf(p, "%s%d", driver->name,
1228 index + driver->name_base);
1232 * tty_driver_lookup_tty() - find an existing tty, if any
1233 * @driver: the driver for the tty
1234 * @file: file object
1235 * @idx: the minor number
1237 * Return the tty, if found. If not found, return NULL or ERR_PTR() if the
1238 * driver lookup() method returns an error.
1240 * Locking: tty_mutex must be held. If the tty is found, bump the tty kref.
1242 static struct tty_struct *tty_driver_lookup_tty(struct tty_driver *driver,
1243 struct file *file, int idx)
1245 struct tty_struct *tty;
1247 if (driver->ops->lookup)
1249 tty = ERR_PTR(-EIO);
1251 tty = driver->ops->lookup(driver, file, idx);
1253 tty = driver->ttys[idx];
1261 * tty_init_termios - helper for termios setup
1262 * @tty: the tty to set up
1264 * Initialise the termios structure for this tty. This runs under
1265 * the tty_mutex currently so we can be relaxed about ordering.
1268 void tty_init_termios(struct tty_struct *tty)
1270 struct ktermios *tp;
1271 int idx = tty->index;
1273 if (tty->driver->flags & TTY_DRIVER_RESET_TERMIOS)
1274 tty->termios = tty->driver->init_termios;
1276 /* Check for lazy saved data */
1277 tp = tty->driver->termios[idx];
1280 tty->termios.c_line = tty->driver->init_termios.c_line;
1282 tty->termios = tty->driver->init_termios;
1284 /* Compatibility until drivers always set this */
1285 tty->termios.c_ispeed = tty_termios_input_baud_rate(&tty->termios);
1286 tty->termios.c_ospeed = tty_termios_baud_rate(&tty->termios);
1288 EXPORT_SYMBOL_GPL(tty_init_termios);
1290 int tty_standard_install(struct tty_driver *driver, struct tty_struct *tty)
1292 tty_init_termios(tty);
1293 tty_driver_kref_get(driver);
1295 driver->ttys[tty->index] = tty;
1298 EXPORT_SYMBOL_GPL(tty_standard_install);
1301 * tty_driver_install_tty() - install a tty entry in the driver
1302 * @driver: the driver for the tty
1305 * Install a tty object into the driver tables. The tty->index field
1306 * will be set by the time this is called. This method is responsible
1307 * for ensuring any need additional structures are allocated and
1310 * Locking: tty_mutex for now
1312 static int tty_driver_install_tty(struct tty_driver *driver,
1313 struct tty_struct *tty)
1315 return driver->ops->install ? driver->ops->install(driver, tty) :
1316 tty_standard_install(driver, tty);
1320 * tty_driver_remove_tty() - remove a tty from the driver tables
1321 * @driver: the driver for the tty
1322 * @tty: tty to remove
1324 * Remvoe a tty object from the driver tables. The tty->index field
1325 * will be set by the time this is called.
1327 * Locking: tty_mutex for now
1329 static void tty_driver_remove_tty(struct tty_driver *driver, struct tty_struct *tty)
1331 if (driver->ops->remove)
1332 driver->ops->remove(driver, tty);
1334 driver->ttys[tty->index] = NULL;
1338 * tty_reopen() - fast re-open of an open tty
1339 * @tty: the tty to open
1341 * Return 0 on success, -errno on error.
1342 * Re-opens on master ptys are not allowed and return -EIO.
1344 * Locking: Caller must hold tty_lock
1346 static int tty_reopen(struct tty_struct *tty)
1348 struct tty_driver *driver = tty->driver;
1349 struct tty_ldisc *ld;
1352 if (driver->type == TTY_DRIVER_TYPE_PTY &&
1353 driver->subtype == PTY_TYPE_MASTER)
1359 if (test_bit(TTY_EXCLUSIVE, &tty->flags) && !capable(CAP_SYS_ADMIN))
1362 ld = tty_ldisc_ref_wait(tty);
1364 tty_ldisc_deref(ld);
1366 retval = tty_ldisc_lock(tty, 5 * HZ);
1371 retval = tty_ldisc_reinit(tty, tty->termios.c_line);
1372 tty_ldisc_unlock(tty);
1382 * tty_init_dev - initialise a tty device
1383 * @driver: tty driver we are opening a device on
1384 * @idx: device index
1386 * Prepare a tty device. This may not be a "new" clean device but
1387 * could also be an active device. The pty drivers require special
1388 * handling because of this.
1391 * The function is called under the tty_mutex, which
1392 * protects us from the tty struct or driver itself going away.
1394 * On exit the tty device has the line discipline attached and
1395 * a reference count of 1. If a pair was created for pty/tty use
1396 * and the other was a pty master then it too has a reference count of 1.
1398 * WSH 06/09/97: Rewritten to remove races and properly clean up after a
1399 * failed open. The new code protects the open with a mutex, so it's
1400 * really quite straightforward. The mutex locking can probably be
1401 * relaxed for the (most common) case of reopening a tty.
1403 * Return: returned tty structure
1406 struct tty_struct *tty_init_dev(struct tty_driver *driver, int idx)
1408 struct tty_struct *tty;
1412 * First time open is complex, especially for PTY devices.
1413 * This code guarantees that either everything succeeds and the
1414 * TTY is ready for operation, or else the table slots are vacated
1415 * and the allocated memory released. (Except that the termios
1419 if (!try_module_get(driver->owner))
1420 return ERR_PTR(-ENODEV);
1422 tty = alloc_tty_struct(driver, idx);
1425 goto err_module_put;
1429 retval = tty_driver_install_tty(driver, tty);
1434 tty->port = driver->ports[idx];
1436 if (WARN_RATELIMIT(!tty->port,
1437 "%s: %s driver does not set tty->port. This would crash the kernel. Fix the driver!\n",
1438 __func__, tty->driver->name)) {
1440 goto err_release_lock;
1443 retval = tty_ldisc_lock(tty, 5 * HZ);
1445 goto err_release_lock;
1446 tty->port->itty = tty;
1449 * Structures all installed ... call the ldisc open routines.
1450 * If we fail here just call release_tty to clean up. No need
1451 * to decrement the use counts, as release_tty doesn't care.
1453 retval = tty_ldisc_setup(tty, tty->link);
1455 goto err_release_tty;
1456 tty_ldisc_unlock(tty);
1457 /* Return the tty locked so that it cannot vanish under the caller */
1462 free_tty_struct(tty);
1464 module_put(driver->owner);
1465 return ERR_PTR(retval);
1467 /* call the tty release_tty routine to clean out this slot */
1469 tty_ldisc_unlock(tty);
1470 tty_info_ratelimited(tty, "ldisc open failed (%d), clearing slot %d\n",
1474 release_tty(tty, idx);
1475 return ERR_PTR(retval);
1479 * tty_save_termios() - save tty termios data in driver table
1480 * @tty: tty whose termios data to save
1482 * Locking: Caller guarantees serialisation with tty_init_termios().
1484 void tty_save_termios(struct tty_struct *tty)
1486 struct ktermios *tp;
1487 int idx = tty->index;
1489 /* If the port is going to reset then it has no termios to save */
1490 if (tty->driver->flags & TTY_DRIVER_RESET_TERMIOS)
1493 /* Stash the termios data */
1494 tp = tty->driver->termios[idx];
1496 tp = kmalloc(sizeof(*tp), GFP_KERNEL);
1499 tty->driver->termios[idx] = tp;
1503 EXPORT_SYMBOL_GPL(tty_save_termios);
1506 * tty_flush_works - flush all works of a tty/pty pair
1507 * @tty: tty device to flush works for (or either end of a pty pair)
1509 * Sync flush all works belonging to @tty (and the 'other' tty).
1511 static void tty_flush_works(struct tty_struct *tty)
1513 flush_work(&tty->SAK_work);
1514 flush_work(&tty->hangup_work);
1516 flush_work(&tty->link->SAK_work);
1517 flush_work(&tty->link->hangup_work);
1522 * release_one_tty - release tty structure memory
1523 * @work: work of tty we are obliterating
1525 * Releases memory associated with a tty structure, and clears out the
1526 * driver table slots. This function is called when a device is no longer
1527 * in use. It also gets called when setup of a device fails.
1530 * takes the file list lock internally when working on the list
1531 * of ttys that the driver keeps.
1533 * This method gets called from a work queue so that the driver private
1534 * cleanup ops can sleep (needed for USB at least)
1536 static void release_one_tty(struct work_struct *work)
1538 struct tty_struct *tty =
1539 container_of(work, struct tty_struct, hangup_work);
1540 struct tty_driver *driver = tty->driver;
1541 struct module *owner = driver->owner;
1543 if (tty->ops->cleanup)
1544 tty->ops->cleanup(tty);
1547 tty_driver_kref_put(driver);
1550 spin_lock(&tty->files_lock);
1551 list_del_init(&tty->tty_files);
1552 spin_unlock(&tty->files_lock);
1554 put_pid(tty->ctrl.pgrp);
1555 put_pid(tty->ctrl.session);
1556 free_tty_struct(tty);
1559 static void queue_release_one_tty(struct kref *kref)
1561 struct tty_struct *tty = container_of(kref, struct tty_struct, kref);
1563 /* The hangup queue is now free so we can reuse it rather than
1564 * waste a chunk of memory for each port.
1566 INIT_WORK(&tty->hangup_work, release_one_tty);
1567 schedule_work(&tty->hangup_work);
1571 * tty_kref_put - release a tty kref
1574 * Release a reference to a tty device and if need be let the kref
1575 * layer destruct the object for us
1578 void tty_kref_put(struct tty_struct *tty)
1581 kref_put(&tty->kref, queue_release_one_tty);
1583 EXPORT_SYMBOL(tty_kref_put);
1586 * release_tty - release tty structure memory
1587 * @tty: tty device release
1588 * @idx: index of the tty device release
1590 * Release both @tty and a possible linked partner (think pty pair),
1591 * and decrement the refcount of the backing module.
1595 * takes the file list lock internally when working on the list
1596 * of ttys that the driver keeps.
1599 static void release_tty(struct tty_struct *tty, int idx)
1601 /* This should always be true but check for the moment */
1602 WARN_ON(tty->index != idx);
1603 WARN_ON(!mutex_is_locked(&tty_mutex));
1604 if (tty->ops->shutdown)
1605 tty->ops->shutdown(tty);
1606 tty_save_termios(tty);
1607 tty_driver_remove_tty(tty->driver, tty);
1609 tty->port->itty = NULL;
1611 tty->link->port->itty = NULL;
1613 tty_buffer_cancel_work(tty->port);
1615 tty_buffer_cancel_work(tty->link->port);
1617 tty_kref_put(tty->link);
1622 * tty_release_checks - check a tty before real release
1623 * @tty: tty to check
1624 * @idx: index of the tty
1626 * Performs some paranoid checking before true release of the @tty.
1627 * This is a no-op unless TTY_PARANOIA_CHECK is defined.
1629 static int tty_release_checks(struct tty_struct *tty, int idx)
1631 #ifdef TTY_PARANOIA_CHECK
1632 if (idx < 0 || idx >= tty->driver->num) {
1633 tty_debug(tty, "bad idx %d\n", idx);
1637 /* not much to check for devpts */
1638 if (tty->driver->flags & TTY_DRIVER_DEVPTS_MEM)
1641 if (tty != tty->driver->ttys[idx]) {
1642 tty_debug(tty, "bad driver table[%d] = %p\n",
1643 idx, tty->driver->ttys[idx]);
1646 if (tty->driver->other) {
1647 struct tty_struct *o_tty = tty->link;
1649 if (o_tty != tty->driver->other->ttys[idx]) {
1650 tty_debug(tty, "bad other table[%d] = %p\n",
1651 idx, tty->driver->other->ttys[idx]);
1654 if (o_tty->link != tty) {
1655 tty_debug(tty, "bad link = %p\n", o_tty->link);
1664 * tty_kclose - closes tty opened by tty_kopen
1667 * Performs the final steps to release and free a tty device. It is the
1668 * same as tty_release_struct except that it also resets TTY_PORT_KOPENED
1669 * flag on tty->port.
1671 void tty_kclose(struct tty_struct *tty)
1674 * Ask the line discipline code to release its structures
1676 tty_ldisc_release(tty);
1678 /* Wait for pending work before tty destruction commmences */
1679 tty_flush_works(tty);
1681 tty_debug_hangup(tty, "freeing structure\n");
1683 * The release_tty function takes care of the details of clearing
1684 * the slots and preserving the termios structure.
1686 mutex_lock(&tty_mutex);
1687 tty_port_set_kopened(tty->port, 0);
1688 release_tty(tty, tty->index);
1689 mutex_unlock(&tty_mutex);
1691 EXPORT_SYMBOL_GPL(tty_kclose);
1694 * tty_release_struct - release a tty struct
1696 * @idx: index of the tty
1698 * Performs the final steps to release and free a tty device. It is
1699 * roughly the reverse of tty_init_dev.
1701 void tty_release_struct(struct tty_struct *tty, int idx)
1704 * Ask the line discipline code to release its structures
1706 tty_ldisc_release(tty);
1708 /* Wait for pending work before tty destruction commmences */
1709 tty_flush_works(tty);
1711 tty_debug_hangup(tty, "freeing structure\n");
1713 * The release_tty function takes care of the details of clearing
1714 * the slots and preserving the termios structure.
1716 mutex_lock(&tty_mutex);
1717 release_tty(tty, idx);
1718 mutex_unlock(&tty_mutex);
1720 EXPORT_SYMBOL_GPL(tty_release_struct);
1723 * tty_release - vfs callback for close
1724 * @inode: inode of tty
1725 * @filp: file pointer for handle to tty
1727 * Called the last time each file handle is closed that references
1728 * this tty. There may however be several such references.
1731 * Takes bkl. See tty_release_dev
1733 * Even releasing the tty structures is a tricky business.. We have
1734 * to be very careful that the structures are all released at the
1735 * same time, as interrupts might otherwise get the wrong pointers.
1737 * WSH 09/09/97: rewritten to avoid some nasty race conditions that could
1738 * lead to double frees or releasing memory still in use.
1741 int tty_release(struct inode *inode, struct file *filp)
1743 struct tty_struct *tty = file_tty(filp);
1744 struct tty_struct *o_tty = NULL;
1745 int do_sleep, final;
1750 if (tty_paranoia_check(tty, inode, __func__))
1754 check_tty_count(tty, __func__);
1756 __tty_fasync(-1, filp, 0);
1759 if (tty->driver->type == TTY_DRIVER_TYPE_PTY &&
1760 tty->driver->subtype == PTY_TYPE_MASTER)
1763 if (tty_release_checks(tty, idx)) {
1768 tty_debug_hangup(tty, "releasing (count=%d)\n", tty->count);
1770 if (tty->ops->close)
1771 tty->ops->close(tty, filp);
1773 /* If tty is pty master, lock the slave pty (stable lock order) */
1774 tty_lock_slave(o_tty);
1777 * Sanity check: if tty->count is going to zero, there shouldn't be
1778 * any waiters on tty->read_wait or tty->write_wait. We test the
1779 * wait queues and kick everyone out _before_ actually starting to
1780 * close. This ensures that we won't block while releasing the tty
1783 * The test for the o_tty closing is necessary, since the master and
1784 * slave sides may close in any order. If the slave side closes out
1785 * first, its count will be one, since the master side holds an open.
1786 * Thus this test wouldn't be triggered at the time the slave closed,
1792 if (tty->count <= 1) {
1793 if (waitqueue_active(&tty->read_wait)) {
1794 wake_up_poll(&tty->read_wait, EPOLLIN);
1797 if (waitqueue_active(&tty->write_wait)) {
1798 wake_up_poll(&tty->write_wait, EPOLLOUT);
1802 if (o_tty && o_tty->count <= 1) {
1803 if (waitqueue_active(&o_tty->read_wait)) {
1804 wake_up_poll(&o_tty->read_wait, EPOLLIN);
1807 if (waitqueue_active(&o_tty->write_wait)) {
1808 wake_up_poll(&o_tty->write_wait, EPOLLOUT);
1817 tty_warn(tty, "read/write wait queue active!\n");
1819 schedule_timeout_killable(timeout);
1820 if (timeout < 120 * HZ)
1821 timeout = 2 * timeout + 1;
1823 timeout = MAX_SCHEDULE_TIMEOUT;
1827 if (--o_tty->count < 0) {
1828 tty_warn(tty, "bad slave count (%d)\n", o_tty->count);
1832 if (--tty->count < 0) {
1833 tty_warn(tty, "bad tty->count (%d)\n", tty->count);
1838 * We've decremented tty->count, so we need to remove this file
1839 * descriptor off the tty->tty_files list; this serves two
1841 * - check_tty_count sees the correct number of file descriptors
1842 * associated with this tty.
1843 * - do_tty_hangup no longer sees this file descriptor as
1844 * something that needs to be handled for hangups.
1849 * Perform some housekeeping before deciding whether to return.
1851 * If _either_ side is closing, make sure there aren't any
1852 * processes that still think tty or o_tty is their controlling
1856 read_lock(&tasklist_lock);
1857 session_clear_tty(tty->ctrl.session);
1859 session_clear_tty(o_tty->ctrl.session);
1860 read_unlock(&tasklist_lock);
1863 /* check whether both sides are closing ... */
1864 final = !tty->count && !(o_tty && o_tty->count);
1866 tty_unlock_slave(o_tty);
1869 /* At this point, the tty->count == 0 should ensure a dead tty
1870 * cannot be re-opened by a racing opener.
1876 tty_debug_hangup(tty, "final close\n");
1878 tty_release_struct(tty, idx);
1883 * tty_open_current_tty - get locked tty of current task
1884 * @device: device number
1885 * @filp: file pointer to tty
1886 * @return: locked tty of the current task iff @device is /dev/tty
1888 * Performs a re-open of the current task's controlling tty.
1890 * We cannot return driver and index like for the other nodes because
1891 * devpts will not work then. It expects inodes to be from devpts FS.
1893 static struct tty_struct *tty_open_current_tty(dev_t device, struct file *filp)
1895 struct tty_struct *tty;
1898 if (device != MKDEV(TTYAUX_MAJOR, 0))
1901 tty = get_current_tty();
1903 return ERR_PTR(-ENXIO);
1905 filp->f_flags |= O_NONBLOCK; /* Don't let /dev/tty block */
1908 tty_kref_put(tty); /* safe to drop the kref now */
1910 retval = tty_reopen(tty);
1913 tty = ERR_PTR(retval);
1919 * tty_lookup_driver - lookup a tty driver for a given device file
1920 * @device: device number
1921 * @filp: file pointer to tty
1922 * @index: index for the device in the @return driver
1923 * @return: driver for this inode (with increased refcount)
1925 * If @return is not erroneous, the caller is responsible to decrement the
1926 * refcount by tty_driver_kref_put.
1928 * Locking: tty_mutex protects get_tty_driver
1930 static struct tty_driver *tty_lookup_driver(dev_t device, struct file *filp,
1933 struct tty_driver *driver = NULL;
1937 case MKDEV(TTY_MAJOR, 0): {
1938 extern struct tty_driver *console_driver;
1940 driver = tty_driver_kref_get(console_driver);
1941 *index = fg_console;
1945 case MKDEV(TTYAUX_MAJOR, 1): {
1946 struct tty_driver *console_driver = console_device(index);
1948 if (console_driver) {
1949 driver = tty_driver_kref_get(console_driver);
1950 if (driver && filp) {
1951 /* Don't let /dev/console block */
1952 filp->f_flags |= O_NONBLOCK;
1957 tty_driver_kref_put(driver);
1958 return ERR_PTR(-ENODEV);
1961 driver = get_tty_driver(device, index);
1963 return ERR_PTR(-ENODEV);
1969 static struct tty_struct *tty_kopen(dev_t device, int shared)
1971 struct tty_struct *tty;
1972 struct tty_driver *driver;
1975 mutex_lock(&tty_mutex);
1976 driver = tty_lookup_driver(device, NULL, &index);
1977 if (IS_ERR(driver)) {
1978 mutex_unlock(&tty_mutex);
1979 return ERR_CAST(driver);
1982 /* check whether we're reopening an existing tty */
1983 tty = tty_driver_lookup_tty(driver, NULL, index);
1984 if (IS_ERR(tty) || shared)
1988 /* drop kref from tty_driver_lookup_tty() */
1990 tty = ERR_PTR(-EBUSY);
1991 } else { /* tty_init_dev returns tty with the tty_lock held */
1992 tty = tty_init_dev(driver, index);
1995 tty_port_set_kopened(tty->port, 1);
1998 mutex_unlock(&tty_mutex);
1999 tty_driver_kref_put(driver);
2004 * tty_kopen_exclusive - open a tty device for kernel
2005 * @device: dev_t of device to open
2007 * Opens tty exclusively for kernel. Performs the driver lookup,
2008 * makes sure it's not already opened and performs the first-time
2009 * tty initialization.
2011 * Returns the locked initialized &tty_struct
2013 * Claims the global tty_mutex to serialize:
2014 * - concurrent first-time tty initialization
2015 * - concurrent tty driver removal w/ lookup
2016 * - concurrent tty removal from driver table
2018 struct tty_struct *tty_kopen_exclusive(dev_t device)
2020 return tty_kopen(device, 0);
2022 EXPORT_SYMBOL_GPL(tty_kopen_exclusive);
2025 * tty_kopen_shared - open a tty device for shared in-kernel use
2026 * @device: dev_t of device to open
2028 * Opens an already existing tty for in-kernel use. Compared to
2029 * tty_kopen_exclusive() above it doesn't ensure to be the only user.
2031 * Locking is identical to tty_kopen() above.
2033 struct tty_struct *tty_kopen_shared(dev_t device)
2035 return tty_kopen(device, 1);
2037 EXPORT_SYMBOL_GPL(tty_kopen_shared);
2040 * tty_open_by_driver - open a tty device
2041 * @device: dev_t of device to open
2042 * @filp: file pointer to tty
2044 * Performs the driver lookup, checks for a reopen, or otherwise
2045 * performs the first-time tty initialization.
2047 * Returns the locked initialized or re-opened &tty_struct
2049 * Claims the global tty_mutex to serialize:
2050 * - concurrent first-time tty initialization
2051 * - concurrent tty driver removal w/ lookup
2052 * - concurrent tty removal from driver table
2054 static struct tty_struct *tty_open_by_driver(dev_t device,
2057 struct tty_struct *tty;
2058 struct tty_driver *driver = NULL;
2062 mutex_lock(&tty_mutex);
2063 driver = tty_lookup_driver(device, filp, &index);
2064 if (IS_ERR(driver)) {
2065 mutex_unlock(&tty_mutex);
2066 return ERR_CAST(driver);
2069 /* check whether we're reopening an existing tty */
2070 tty = tty_driver_lookup_tty(driver, filp, index);
2072 mutex_unlock(&tty_mutex);
2077 if (tty_port_kopened(tty->port)) {
2079 mutex_unlock(&tty_mutex);
2080 tty = ERR_PTR(-EBUSY);
2083 mutex_unlock(&tty_mutex);
2084 retval = tty_lock_interruptible(tty);
2085 tty_kref_put(tty); /* drop kref from tty_driver_lookup_tty() */
2087 if (retval == -EINTR)
2088 retval = -ERESTARTSYS;
2089 tty = ERR_PTR(retval);
2092 retval = tty_reopen(tty);
2095 tty = ERR_PTR(retval);
2097 } else { /* Returns with the tty_lock held for now */
2098 tty = tty_init_dev(driver, index);
2099 mutex_unlock(&tty_mutex);
2102 tty_driver_kref_put(driver);
2107 * tty_open - open a tty device
2108 * @inode: inode of device file
2109 * @filp: file pointer to tty
2111 * tty_open and tty_release keep up the tty count that contains the
2112 * number of opens done on a tty. We cannot use the inode-count, as
2113 * different inodes might point to the same tty.
2115 * Open-counting is needed for pty masters, as well as for keeping
2116 * track of serial lines: DTR is dropped when the last close happens.
2117 * (This is not done solely through tty->count, now. - Ted 1/27/92)
2119 * The termios state of a pty is reset on first open so that
2120 * settings don't persist across reuse.
2122 * Locking: tty_mutex protects tty, tty_lookup_driver and tty_init_dev.
2123 * tty->count should protect the rest.
2124 * ->siglock protects ->signal/->sighand
2126 * Note: the tty_unlock/lock cases without a ref are only safe due to
2130 static int tty_open(struct inode *inode, struct file *filp)
2132 struct tty_struct *tty;
2134 dev_t device = inode->i_rdev;
2135 unsigned saved_flags = filp->f_flags;
2137 nonseekable_open(inode, filp);
2140 retval = tty_alloc_file(filp);
2144 tty = tty_open_current_tty(device, filp);
2146 tty = tty_open_by_driver(device, filp);
2149 tty_free_file(filp);
2150 retval = PTR_ERR(tty);
2151 if (retval != -EAGAIN || signal_pending(current))
2157 tty_add_file(tty, filp);
2159 check_tty_count(tty, __func__);
2160 tty_debug_hangup(tty, "opening (count=%d)\n", tty->count);
2163 retval = tty->ops->open(tty, filp);
2166 filp->f_flags = saved_flags;
2169 tty_debug_hangup(tty, "open error %d, releasing\n", retval);
2171 tty_unlock(tty); /* need to call tty_release without BTM */
2172 tty_release(inode, filp);
2173 if (retval != -ERESTARTSYS)
2176 if (signal_pending(current))
2181 * Need to reset f_op in case a hangup happened.
2183 if (tty_hung_up_p(filp))
2184 filp->f_op = &tty_fops;
2187 clear_bit(TTY_HUPPED, &tty->flags);
2189 noctty = (filp->f_flags & O_NOCTTY) ||
2190 (IS_ENABLED(CONFIG_VT) && device == MKDEV(TTY_MAJOR, 0)) ||
2191 device == MKDEV(TTYAUX_MAJOR, 1) ||
2192 (tty->driver->type == TTY_DRIVER_TYPE_PTY &&
2193 tty->driver->subtype == PTY_TYPE_MASTER);
2195 tty_open_proc_set_tty(filp, tty);
2203 * tty_poll - check tty status
2204 * @filp: file being polled
2205 * @wait: poll wait structures to update
2207 * Call the line discipline polling method to obtain the poll
2208 * status of the device.
2210 * Locking: locks called line discipline but ldisc poll method
2211 * may be re-entered freely by other callers.
2214 static __poll_t tty_poll(struct file *filp, poll_table *wait)
2216 struct tty_struct *tty = file_tty(filp);
2217 struct tty_ldisc *ld;
2220 if (tty_paranoia_check(tty, file_inode(filp), "tty_poll"))
2223 ld = tty_ldisc_ref_wait(tty);
2225 return hung_up_tty_poll(filp, wait);
2227 ret = ld->ops->poll(tty, filp, wait);
2228 tty_ldisc_deref(ld);
2232 static int __tty_fasync(int fd, struct file *filp, int on)
2234 struct tty_struct *tty = file_tty(filp);
2235 unsigned long flags;
2238 if (tty_paranoia_check(tty, file_inode(filp), "tty_fasync"))
2241 retval = fasync_helper(fd, filp, on, &tty->fasync);
2249 spin_lock_irqsave(&tty->ctrl.lock, flags);
2250 if (tty->ctrl.pgrp) {
2251 pid = tty->ctrl.pgrp;
2252 type = PIDTYPE_PGID;
2254 pid = task_pid(current);
2255 type = PIDTYPE_TGID;
2258 spin_unlock_irqrestore(&tty->ctrl.lock, flags);
2259 __f_setown(filp, pid, type, 0);
2267 static int tty_fasync(int fd, struct file *filp, int on)
2269 struct tty_struct *tty = file_tty(filp);
2270 int retval = -ENOTTY;
2273 if (!tty_hung_up_p(filp))
2274 retval = __tty_fasync(fd, filp, on);
2281 * tiocsti - fake input character
2282 * @tty: tty to fake input into
2283 * @p: pointer to character
2285 * Fake input to a tty device. Does the necessary locking and
2288 * FIXME: does not honour flow control ??
2291 * Called functions take tty_ldiscs_lock
2292 * current->signal->tty check is safe without locks
2295 static int tiocsti(struct tty_struct *tty, char __user *p)
2298 struct tty_ldisc *ld;
2300 if ((current->signal->tty != tty) && !capable(CAP_SYS_ADMIN))
2302 if (get_user(ch, p))
2304 tty_audit_tiocsti(tty, ch);
2305 ld = tty_ldisc_ref_wait(tty);
2308 tty_buffer_lock_exclusive(tty->port);
2309 if (ld->ops->receive_buf)
2310 ld->ops->receive_buf(tty, &ch, &mbz, 1);
2311 tty_buffer_unlock_exclusive(tty->port);
2312 tty_ldisc_deref(ld);
2317 * tiocgwinsz - implement window query ioctl
2319 * @arg: user buffer for result
2321 * Copies the kernel idea of the window size into the user buffer.
2323 * Locking: tty->winsize_mutex is taken to ensure the winsize data
2327 static int tiocgwinsz(struct tty_struct *tty, struct winsize __user *arg)
2331 mutex_lock(&tty->winsize_mutex);
2332 err = copy_to_user(arg, &tty->winsize, sizeof(*arg));
2333 mutex_unlock(&tty->winsize_mutex);
2335 return err ? -EFAULT : 0;
2339 * tty_do_resize - resize event
2340 * @tty: tty being resized
2341 * @ws: new dimensions
2343 * Update the termios variables and send the necessary signals to
2344 * peform a terminal resize correctly
2347 int tty_do_resize(struct tty_struct *tty, struct winsize *ws)
2352 mutex_lock(&tty->winsize_mutex);
2353 if (!memcmp(ws, &tty->winsize, sizeof(*ws)))
2356 /* Signal the foreground process group */
2357 pgrp = tty_get_pgrp(tty);
2359 kill_pgrp(pgrp, SIGWINCH, 1);
2364 mutex_unlock(&tty->winsize_mutex);
2367 EXPORT_SYMBOL(tty_do_resize);
2370 * tiocswinsz - implement window size set ioctl
2371 * @tty: tty side of tty
2372 * @arg: user buffer for result
2374 * Copies the user idea of the window size to the kernel. Traditionally
2375 * this is just advisory information but for the Linux console it
2376 * actually has driver level meaning and triggers a VC resize.
2379 * Driver dependent. The default do_resize method takes the
2380 * tty termios mutex and ctrl.lock. The console takes its own lock
2381 * then calls into the default method.
2384 static int tiocswinsz(struct tty_struct *tty, struct winsize __user *arg)
2386 struct winsize tmp_ws;
2388 if (copy_from_user(&tmp_ws, arg, sizeof(*arg)))
2391 if (tty->ops->resize)
2392 return tty->ops->resize(tty, &tmp_ws);
2394 return tty_do_resize(tty, &tmp_ws);
2398 * tioccons - allow admin to move logical console
2399 * @file: the file to become console
2401 * Allow the administrator to move the redirected console device
2403 * Locking: uses redirect_lock to guard the redirect information
2406 static int tioccons(struct file *file)
2408 if (!capable(CAP_SYS_ADMIN))
2410 if (file->f_op->write_iter == redirected_tty_write) {
2413 spin_lock(&redirect_lock);
2416 spin_unlock(&redirect_lock);
2421 if (file->f_op->write_iter != tty_write)
2423 if (!(file->f_mode & FMODE_WRITE))
2425 if (!(file->f_mode & FMODE_CAN_WRITE))
2427 spin_lock(&redirect_lock);
2429 spin_unlock(&redirect_lock);
2432 redirect = get_file(file);
2433 spin_unlock(&redirect_lock);
2438 * tiocsetd - set line discipline
2440 * @p: pointer to user data
2442 * Set the line discipline according to user request.
2444 * Locking: see tty_set_ldisc, this function is just a helper
2447 static int tiocsetd(struct tty_struct *tty, int __user *p)
2452 if (get_user(disc, p))
2455 ret = tty_set_ldisc(tty, disc);
2461 * tiocgetd - get line discipline
2463 * @p: pointer to user data
2465 * Retrieves the line discipline id directly from the ldisc.
2467 * Locking: waits for ldisc reference (in case the line discipline
2468 * is changing or the tty is being hungup)
2471 static int tiocgetd(struct tty_struct *tty, int __user *p)
2473 struct tty_ldisc *ld;
2476 ld = tty_ldisc_ref_wait(tty);
2479 ret = put_user(ld->ops->num, p);
2480 tty_ldisc_deref(ld);
2485 * send_break - performed time break
2486 * @tty: device to break on
2487 * @duration: timeout in mS
2489 * Perform a timed break on hardware that lacks its own driver level
2490 * timed break functionality.
2493 * atomic_write_lock serializes
2497 static int send_break(struct tty_struct *tty, unsigned int duration)
2501 if (tty->ops->break_ctl == NULL)
2504 if (tty->driver->flags & TTY_DRIVER_HARDWARE_BREAK)
2505 retval = tty->ops->break_ctl(tty, duration);
2507 /* Do the work ourselves */
2508 if (tty_write_lock(tty, 0) < 0)
2510 retval = tty->ops->break_ctl(tty, -1);
2513 if (!signal_pending(current))
2514 msleep_interruptible(duration);
2515 retval = tty->ops->break_ctl(tty, 0);
2517 tty_write_unlock(tty);
2518 if (signal_pending(current))
2525 * tty_tiocmget - get modem status
2527 * @p: pointer to result
2529 * Obtain the modem status bits from the tty driver if the feature
2530 * is supported. Return -ENOTTY if it is not available.
2532 * Locking: none (up to the driver)
2535 static int tty_tiocmget(struct tty_struct *tty, int __user *p)
2537 int retval = -ENOTTY;
2539 if (tty->ops->tiocmget) {
2540 retval = tty->ops->tiocmget(tty);
2543 retval = put_user(retval, p);
2549 * tty_tiocmset - set modem status
2551 * @cmd: command - clear bits, set bits or set all
2552 * @p: pointer to desired bits
2554 * Set the modem status bits from the tty driver if the feature
2555 * is supported. Return -ENOTTY if it is not available.
2557 * Locking: none (up to the driver)
2560 static int tty_tiocmset(struct tty_struct *tty, unsigned int cmd,
2564 unsigned int set, clear, val;
2566 if (tty->ops->tiocmset == NULL)
2569 retval = get_user(val, p);
2585 set &= TIOCM_DTR|TIOCM_RTS|TIOCM_OUT1|TIOCM_OUT2|TIOCM_LOOP;
2586 clear &= TIOCM_DTR|TIOCM_RTS|TIOCM_OUT1|TIOCM_OUT2|TIOCM_LOOP;
2587 return tty->ops->tiocmset(tty, set, clear);
2591 * tty_get_icount - get tty statistics
2593 * @icount: output parameter
2595 * Gets a copy of the tty's icount statistics.
2597 * Locking: none (up to the driver)
2599 int tty_get_icount(struct tty_struct *tty,
2600 struct serial_icounter_struct *icount)
2602 memset(icount, 0, sizeof(*icount));
2604 if (tty->ops->get_icount)
2605 return tty->ops->get_icount(tty, icount);
2609 EXPORT_SYMBOL_GPL(tty_get_icount);
2611 static int tty_tiocgicount(struct tty_struct *tty, void __user *arg)
2613 struct serial_icounter_struct icount;
2616 retval = tty_get_icount(tty, &icount);
2620 if (copy_to_user(arg, &icount, sizeof(icount)))
2625 static int tty_set_serial(struct tty_struct *tty, struct serial_struct *ss)
2627 char comm[TASK_COMM_LEN];
2630 flags = ss->flags & ASYNC_DEPRECATED;
2633 pr_warn_ratelimited("%s: '%s' is using deprecated serial flags (with no effect): %.8x\n",
2634 __func__, get_task_comm(comm, current), flags);
2636 if (!tty->ops->set_serial)
2639 return tty->ops->set_serial(tty, ss);
2642 static int tty_tiocsserial(struct tty_struct *tty, struct serial_struct __user *ss)
2644 struct serial_struct v;
2646 if (copy_from_user(&v, ss, sizeof(*ss)))
2649 return tty_set_serial(tty, &v);
2652 static int tty_tiocgserial(struct tty_struct *tty, struct serial_struct __user *ss)
2654 struct serial_struct v;
2657 memset(&v, 0, sizeof(v));
2658 if (!tty->ops->get_serial)
2660 err = tty->ops->get_serial(tty, &v);
2661 if (!err && copy_to_user(ss, &v, sizeof(v)))
2667 * if pty, return the slave side (real_tty)
2668 * otherwise, return self
2670 static struct tty_struct *tty_pair_get_tty(struct tty_struct *tty)
2672 if (tty->driver->type == TTY_DRIVER_TYPE_PTY &&
2673 tty->driver->subtype == PTY_TYPE_MASTER)
2679 * Split this up, as gcc can choke on it otherwise..
2681 long tty_ioctl(struct file *file, unsigned int cmd, unsigned long arg)
2683 struct tty_struct *tty = file_tty(file);
2684 struct tty_struct *real_tty;
2685 void __user *p = (void __user *)arg;
2687 struct tty_ldisc *ld;
2689 if (tty_paranoia_check(tty, file_inode(file), "tty_ioctl"))
2692 real_tty = tty_pair_get_tty(tty);
2695 * Factor out some common prep work
2703 retval = tty_check_change(tty);
2706 if (cmd != TIOCCBRK) {
2707 tty_wait_until_sent(tty, 0);
2708 if (signal_pending(current))
2719 return tiocsti(tty, p);
2721 return tiocgwinsz(real_tty, p);
2723 return tiocswinsz(real_tty, p);
2725 return real_tty != tty ? -EINVAL : tioccons(file);
2727 set_bit(TTY_EXCLUSIVE, &tty->flags);
2730 clear_bit(TTY_EXCLUSIVE, &tty->flags);
2734 int excl = test_bit(TTY_EXCLUSIVE, &tty->flags);
2736 return put_user(excl, (int __user *)p);
2739 return tiocgetd(tty, p);
2741 return tiocsetd(tty, p);
2743 if (!capable(CAP_SYS_ADMIN))
2749 unsigned int ret = new_encode_dev(tty_devnum(real_tty));
2751 return put_user(ret, (unsigned int __user *)p);
2756 case TIOCSBRK: /* Turn break on, unconditionally */
2757 if (tty->ops->break_ctl)
2758 return tty->ops->break_ctl(tty, -1);
2760 case TIOCCBRK: /* Turn break off, unconditionally */
2761 if (tty->ops->break_ctl)
2762 return tty->ops->break_ctl(tty, 0);
2764 case TCSBRK: /* SVID version: non-zero arg --> no break */
2765 /* non-zero arg means wait for all output data
2766 * to be sent (performed above) but don't send break.
2767 * This is used by the tcdrain() termios function.
2770 return send_break(tty, 250);
2772 case TCSBRKP: /* support for POSIX tcsendbreak() */
2773 return send_break(tty, arg ? arg*100 : 250);
2776 return tty_tiocmget(tty, p);
2780 return tty_tiocmset(tty, cmd, p);
2782 return tty_tiocgicount(tty, p);
2787 /* flush tty buffer and allow ldisc to process ioctl */
2788 tty_buffer_flush(tty, NULL);
2793 return tty_tiocsserial(tty, p);
2795 return tty_tiocgserial(tty, p);
2797 /* Special because the struct file is needed */
2798 return ptm_open_peer(file, tty, (int)arg);
2800 retval = tty_jobctrl_ioctl(tty, real_tty, file, cmd, arg);
2801 if (retval != -ENOIOCTLCMD)
2804 if (tty->ops->ioctl) {
2805 retval = tty->ops->ioctl(tty, cmd, arg);
2806 if (retval != -ENOIOCTLCMD)
2809 ld = tty_ldisc_ref_wait(tty);
2811 return hung_up_tty_ioctl(file, cmd, arg);
2813 if (ld->ops->ioctl) {
2814 retval = ld->ops->ioctl(tty, cmd, arg);
2815 if (retval == -ENOIOCTLCMD)
2818 tty_ldisc_deref(ld);
2822 #ifdef CONFIG_COMPAT
2824 struct serial_struct32 {
2830 compat_int_t xmit_fifo_size;
2831 compat_int_t custom_divisor;
2832 compat_int_t baud_base;
2833 unsigned short close_delay;
2837 unsigned short closing_wait; /* time to wait before closing */
2838 unsigned short closing_wait2; /* no longer used... */
2839 compat_uint_t iomem_base;
2840 unsigned short iomem_reg_shift;
2841 unsigned int port_high;
2842 /* compat_ulong_t iomap_base FIXME */
2843 compat_int_t reserved;
2846 static int compat_tty_tiocsserial(struct tty_struct *tty,
2847 struct serial_struct32 __user *ss)
2849 struct serial_struct32 v32;
2850 struct serial_struct v;
2852 if (copy_from_user(&v32, ss, sizeof(*ss)))
2855 memcpy(&v, &v32, offsetof(struct serial_struct32, iomem_base));
2856 v.iomem_base = compat_ptr(v32.iomem_base);
2857 v.iomem_reg_shift = v32.iomem_reg_shift;
2858 v.port_high = v32.port_high;
2861 return tty_set_serial(tty, &v);
2864 static int compat_tty_tiocgserial(struct tty_struct *tty,
2865 struct serial_struct32 __user *ss)
2867 struct serial_struct32 v32;
2868 struct serial_struct v;
2871 memset(&v, 0, sizeof(v));
2872 memset(&v32, 0, sizeof(v32));
2874 if (!tty->ops->get_serial)
2876 err = tty->ops->get_serial(tty, &v);
2878 memcpy(&v32, &v, offsetof(struct serial_struct32, iomem_base));
2879 v32.iomem_base = (unsigned long)v.iomem_base >> 32 ?
2880 0xfffffff : ptr_to_compat(v.iomem_base);
2881 v32.iomem_reg_shift = v.iomem_reg_shift;
2882 v32.port_high = v.port_high;
2883 if (copy_to_user(ss, &v32, sizeof(v32)))
2888 static long tty_compat_ioctl(struct file *file, unsigned int cmd,
2891 struct tty_struct *tty = file_tty(file);
2892 struct tty_ldisc *ld;
2893 int retval = -ENOIOCTLCMD;
2942 case TIOCGLCKTRMIOS:
2943 case TIOCSLCKTRMIOS:
2955 return tty_ioctl(file, cmd, (unsigned long)compat_ptr(arg));
2971 return tty_ioctl(file, cmd, arg);
2974 if (tty_paranoia_check(tty, file_inode(file), "tty_ioctl"))
2979 return compat_tty_tiocsserial(tty, compat_ptr(arg));
2981 return compat_tty_tiocgserial(tty, compat_ptr(arg));
2983 if (tty->ops->compat_ioctl) {
2984 retval = tty->ops->compat_ioctl(tty, cmd, arg);
2985 if (retval != -ENOIOCTLCMD)
2989 ld = tty_ldisc_ref_wait(tty);
2991 return hung_up_tty_compat_ioctl(file, cmd, arg);
2992 if (ld->ops->compat_ioctl)
2993 retval = ld->ops->compat_ioctl(tty, cmd, arg);
2994 if (retval == -ENOIOCTLCMD && ld->ops->ioctl)
2995 retval = ld->ops->ioctl(tty, (unsigned long)compat_ptr(cmd),
2997 tty_ldisc_deref(ld);
3003 static int this_tty(const void *t, struct file *file, unsigned fd)
3005 if (likely(file->f_op->read_iter != tty_read))
3007 return file_tty(file) != t ? 0 : fd + 1;
3011 * This implements the "Secure Attention Key" --- the idea is to
3012 * prevent trojan horses by killing all processes associated with this
3013 * tty when the user hits the "Secure Attention Key". Required for
3014 * super-paranoid applications --- see the Orange Book for more details.
3016 * This code could be nicer; ideally it should send a HUP, wait a few
3017 * seconds, then send a INT, and then a KILL signal. But you then
3018 * have to coordinate with the init process, since all processes associated
3019 * with the current tty must be dead before the new getty is allowed
3022 * Now, if it would be correct ;-/ The current code has a nasty hole -
3023 * it doesn't catch files in flight. We may send the descriptor to ourselves
3024 * via AF_UNIX socket, close it and later fetch from socket. FIXME.
3026 * Nasty bug: do_SAK is being called in interrupt context. This can
3027 * deadlock. We punt it up to process context. AKPM - 16Mar2001
3029 void __do_SAK(struct tty_struct *tty)
3031 struct task_struct *g, *p;
3032 struct pid *session;
3034 unsigned long flags;
3036 spin_lock_irqsave(&tty->ctrl.lock, flags);
3037 session = get_pid(tty->ctrl.session);
3038 spin_unlock_irqrestore(&tty->ctrl.lock, flags);
3040 tty_ldisc_flush(tty);
3042 tty_driver_flush_buffer(tty);
3044 read_lock(&tasklist_lock);
3045 /* Kill the entire session */
3046 do_each_pid_task(session, PIDTYPE_SID, p) {
3047 tty_notice(tty, "SAK: killed process %d (%s): by session\n",
3048 task_pid_nr(p), p->comm);
3049 group_send_sig_info(SIGKILL, SEND_SIG_PRIV, p, PIDTYPE_SID);
3050 } while_each_pid_task(session, PIDTYPE_SID, p);
3052 /* Now kill any processes that happen to have the tty open */
3053 do_each_thread(g, p) {
3054 if (p->signal->tty == tty) {
3055 tty_notice(tty, "SAK: killed process %d (%s): by controlling tty\n",
3056 task_pid_nr(p), p->comm);
3057 group_send_sig_info(SIGKILL, SEND_SIG_PRIV, p,
3062 i = iterate_fd(p->files, 0, this_tty, tty);
3064 tty_notice(tty, "SAK: killed process %d (%s): by fd#%d\n",
3065 task_pid_nr(p), p->comm, i - 1);
3066 group_send_sig_info(SIGKILL, SEND_SIG_PRIV, p,
3070 } while_each_thread(g, p);
3071 read_unlock(&tasklist_lock);
3075 static void do_SAK_work(struct work_struct *work)
3077 struct tty_struct *tty =
3078 container_of(work, struct tty_struct, SAK_work);
3083 * The tq handling here is a little racy - tty->SAK_work may already be queued.
3084 * Fortunately we don't need to worry, because if ->SAK_work is already queued,
3085 * the values which we write to it will be identical to the values which it
3086 * already has. --akpm
3088 void do_SAK(struct tty_struct *tty)
3092 schedule_work(&tty->SAK_work);
3094 EXPORT_SYMBOL(do_SAK);
3096 /* Must put_device() after it's unused! */
3097 static struct device *tty_get_device(struct tty_struct *tty)
3099 dev_t devt = tty_devnum(tty);
3101 return class_find_device_by_devt(tty_class, devt);
3108 * This subroutine allocates and initializes a tty structure.
3110 * Locking: none - tty in question is not exposed at this point
3113 struct tty_struct *alloc_tty_struct(struct tty_driver *driver, int idx)
3115 struct tty_struct *tty;
3117 tty = kzalloc(sizeof(*tty), GFP_KERNEL);
3121 kref_init(&tty->kref);
3122 tty->magic = TTY_MAGIC;
3123 if (tty_ldisc_init(tty)) {
3127 tty->ctrl.session = NULL;
3128 tty->ctrl.pgrp = NULL;
3129 mutex_init(&tty->legacy_mutex);
3130 mutex_init(&tty->throttle_mutex);
3131 init_rwsem(&tty->termios_rwsem);
3132 mutex_init(&tty->winsize_mutex);
3133 init_ldsem(&tty->ldisc_sem);
3134 init_waitqueue_head(&tty->write_wait);
3135 init_waitqueue_head(&tty->read_wait);
3136 INIT_WORK(&tty->hangup_work, do_tty_hangup);
3137 mutex_init(&tty->atomic_write_lock);
3138 spin_lock_init(&tty->ctrl.lock);
3139 spin_lock_init(&tty->flow.lock);
3140 spin_lock_init(&tty->files_lock);
3141 INIT_LIST_HEAD(&tty->tty_files);
3142 INIT_WORK(&tty->SAK_work, do_SAK_work);
3144 tty->driver = driver;
3145 tty->ops = driver->ops;
3147 tty_line_name(driver, idx, tty->name);
3148 tty->dev = tty_get_device(tty);
3154 * tty_put_char - write one character to a tty
3158 * Write one byte to the tty using the provided put_char method
3159 * if present. Returns the number of characters successfully output.
3161 * Note: the specific put_char operation in the driver layer may go
3162 * away soon. Don't call it directly, use this method
3165 int tty_put_char(struct tty_struct *tty, unsigned char ch)
3167 if (tty->ops->put_char)
3168 return tty->ops->put_char(tty, ch);
3169 return tty->ops->write(tty, &ch, 1);
3171 EXPORT_SYMBOL_GPL(tty_put_char);
3173 struct class *tty_class;
3175 static int tty_cdev_add(struct tty_driver *driver, dev_t dev,
3176 unsigned int index, unsigned int count)
3180 /* init here, since reused cdevs cause crashes */
3181 driver->cdevs[index] = cdev_alloc();
3182 if (!driver->cdevs[index])
3184 driver->cdevs[index]->ops = &tty_fops;
3185 driver->cdevs[index]->owner = driver->owner;
3186 err = cdev_add(driver->cdevs[index], dev, count);
3188 kobject_put(&driver->cdevs[index]->kobj);
3193 * tty_register_device - register a tty device
3194 * @driver: the tty driver that describes the tty device
3195 * @index: the index in the tty driver for this tty device
3196 * @device: a struct device that is associated with this tty device.
3197 * This field is optional, if there is no known struct device
3198 * for this tty device it can be set to NULL safely.
3200 * Returns a pointer to the struct device for this tty device
3201 * (or ERR_PTR(-EFOO) on error).
3203 * This call is required to be made to register an individual tty device
3204 * if the tty driver's flags have the TTY_DRIVER_DYNAMIC_DEV bit set. If
3205 * that bit is not set, this function should not be called by a tty
3211 struct device *tty_register_device(struct tty_driver *driver, unsigned index,
3212 struct device *device)
3214 return tty_register_device_attr(driver, index, device, NULL, NULL);
3216 EXPORT_SYMBOL(tty_register_device);
3218 static void tty_device_create_release(struct device *dev)
3220 dev_dbg(dev, "releasing...\n");
3225 * tty_register_device_attr - register a tty device
3226 * @driver: the tty driver that describes the tty device
3227 * @index: the index in the tty driver for this tty device
3228 * @device: a struct device that is associated with this tty device.
3229 * This field is optional, if there is no known struct device
3230 * for this tty device it can be set to NULL safely.
3231 * @drvdata: Driver data to be set to device.
3232 * @attr_grp: Attribute group to be set on device.
3234 * Returns a pointer to the struct device for this tty device
3235 * (or ERR_PTR(-EFOO) on error).
3237 * This call is required to be made to register an individual tty device
3238 * if the tty driver's flags have the TTY_DRIVER_DYNAMIC_DEV bit set. If
3239 * that bit is not set, this function should not be called by a tty
3244 struct device *tty_register_device_attr(struct tty_driver *driver,
3245 unsigned index, struct device *device,
3247 const struct attribute_group **attr_grp)
3250 dev_t devt = MKDEV(driver->major, driver->minor_start) + index;
3251 struct ktermios *tp;
3255 if (index >= driver->num) {
3256 pr_err("%s: Attempt to register invalid tty line number (%d)\n",
3257 driver->name, index);
3258 return ERR_PTR(-EINVAL);
3261 if (driver->type == TTY_DRIVER_TYPE_PTY)
3262 pty_line_name(driver, index, name);
3264 tty_line_name(driver, index, name);
3266 dev = kzalloc(sizeof(*dev), GFP_KERNEL);
3268 return ERR_PTR(-ENOMEM);
3271 dev->class = tty_class;
3272 dev->parent = device;
3273 dev->release = tty_device_create_release;
3274 dev_set_name(dev, "%s", name);
3275 dev->groups = attr_grp;
3276 dev_set_drvdata(dev, drvdata);
3278 dev_set_uevent_suppress(dev, 1);
3280 retval = device_register(dev);
3284 if (!(driver->flags & TTY_DRIVER_DYNAMIC_ALLOC)) {
3286 * Free any saved termios data so that the termios state is
3287 * reset when reusing a minor number.
3289 tp = driver->termios[index];
3291 driver->termios[index] = NULL;
3295 retval = tty_cdev_add(driver, devt, index, 1);
3300 dev_set_uevent_suppress(dev, 0);
3301 kobject_uevent(&dev->kobj, KOBJ_ADD);
3310 return ERR_PTR(retval);
3312 EXPORT_SYMBOL_GPL(tty_register_device_attr);
3315 * tty_unregister_device - unregister a tty device
3316 * @driver: the tty driver that describes the tty device
3317 * @index: the index in the tty driver for this tty device
3319 * If a tty device is registered with a call to tty_register_device() then
3320 * this function must be called when the tty device is gone.
3325 void tty_unregister_device(struct tty_driver *driver, unsigned index)
3327 device_destroy(tty_class,
3328 MKDEV(driver->major, driver->minor_start) + index);
3329 if (!(driver->flags & TTY_DRIVER_DYNAMIC_ALLOC)) {
3330 cdev_del(driver->cdevs[index]);
3331 driver->cdevs[index] = NULL;
3334 EXPORT_SYMBOL(tty_unregister_device);
3337 * __tty_alloc_driver -- allocate tty driver
3338 * @lines: count of lines this driver can handle at most
3339 * @owner: module which is responsible for this driver
3340 * @flags: some of TTY_DRIVER_* flags, will be set in driver->flags
3342 * This should not be called directly, some of the provided macros should be
3343 * used instead. Use IS_ERR and friends on @retval.
3345 struct tty_driver *__tty_alloc_driver(unsigned int lines, struct module *owner,
3346 unsigned long flags)
3348 struct tty_driver *driver;
3349 unsigned int cdevs = 1;
3352 if (!lines || (flags & TTY_DRIVER_UNNUMBERED_NODE && lines > 1))
3353 return ERR_PTR(-EINVAL);
3355 driver = kzalloc(sizeof(*driver), GFP_KERNEL);
3357 return ERR_PTR(-ENOMEM);
3359 kref_init(&driver->kref);
3360 driver->magic = TTY_DRIVER_MAGIC;
3361 driver->num = lines;
3362 driver->owner = owner;
3363 driver->flags = flags;
3365 if (!(flags & TTY_DRIVER_DEVPTS_MEM)) {
3366 driver->ttys = kcalloc(lines, sizeof(*driver->ttys),
3368 driver->termios = kcalloc(lines, sizeof(*driver->termios),
3370 if (!driver->ttys || !driver->termios) {
3376 if (!(flags & TTY_DRIVER_DYNAMIC_ALLOC)) {
3377 driver->ports = kcalloc(lines, sizeof(*driver->ports),
3379 if (!driver->ports) {
3386 driver->cdevs = kcalloc(cdevs, sizeof(*driver->cdevs), GFP_KERNEL);
3387 if (!driver->cdevs) {
3394 kfree(driver->ports);
3395 kfree(driver->ttys);
3396 kfree(driver->termios);
3397 kfree(driver->cdevs);
3399 return ERR_PTR(err);
3401 EXPORT_SYMBOL(__tty_alloc_driver);
3403 static void destruct_tty_driver(struct kref *kref)
3405 struct tty_driver *driver = container_of(kref, struct tty_driver, kref);
3407 struct ktermios *tp;
3409 if (driver->flags & TTY_DRIVER_INSTALLED) {
3410 for (i = 0; i < driver->num; i++) {
3411 tp = driver->termios[i];
3413 driver->termios[i] = NULL;
3416 if (!(driver->flags & TTY_DRIVER_DYNAMIC_DEV))
3417 tty_unregister_device(driver, i);
3419 proc_tty_unregister_driver(driver);
3420 if (driver->flags & TTY_DRIVER_DYNAMIC_ALLOC)
3421 cdev_del(driver->cdevs[0]);
3423 kfree(driver->cdevs);
3424 kfree(driver->ports);
3425 kfree(driver->termios);
3426 kfree(driver->ttys);
3430 void tty_driver_kref_put(struct tty_driver *driver)
3432 kref_put(&driver->kref, destruct_tty_driver);
3434 EXPORT_SYMBOL(tty_driver_kref_put);
3437 * Called by a tty driver to register itself.
3439 int tty_register_driver(struct tty_driver *driver)
3446 if (!driver->major) {
3447 error = alloc_chrdev_region(&dev, driver->minor_start,
3448 driver->num, driver->name);
3450 driver->major = MAJOR(dev);
3451 driver->minor_start = MINOR(dev);
3454 dev = MKDEV(driver->major, driver->minor_start);
3455 error = register_chrdev_region(dev, driver->num, driver->name);
3460 if (driver->flags & TTY_DRIVER_DYNAMIC_ALLOC) {
3461 error = tty_cdev_add(driver, dev, 0, driver->num);
3463 goto err_unreg_char;
3466 mutex_lock(&tty_mutex);
3467 list_add(&driver->tty_drivers, &tty_drivers);
3468 mutex_unlock(&tty_mutex);
3470 if (!(driver->flags & TTY_DRIVER_DYNAMIC_DEV)) {
3471 for (i = 0; i < driver->num; i++) {
3472 d = tty_register_device(driver, i, NULL);
3475 goto err_unreg_devs;
3479 proc_tty_register_driver(driver);
3480 driver->flags |= TTY_DRIVER_INSTALLED;
3484 for (i--; i >= 0; i--)
3485 tty_unregister_device(driver, i);
3487 mutex_lock(&tty_mutex);
3488 list_del(&driver->tty_drivers);
3489 mutex_unlock(&tty_mutex);
3492 unregister_chrdev_region(dev, driver->num);
3496 EXPORT_SYMBOL(tty_register_driver);
3499 * Called by a tty driver to unregister itself.
3501 void tty_unregister_driver(struct tty_driver *driver)
3503 unregister_chrdev_region(MKDEV(driver->major, driver->minor_start),
3505 mutex_lock(&tty_mutex);
3506 list_del(&driver->tty_drivers);
3507 mutex_unlock(&tty_mutex);
3509 EXPORT_SYMBOL(tty_unregister_driver);
3511 dev_t tty_devnum(struct tty_struct *tty)
3513 return MKDEV(tty->driver->major, tty->driver->minor_start) + tty->index;
3515 EXPORT_SYMBOL(tty_devnum);
3517 void tty_default_fops(struct file_operations *fops)
3522 static char *tty_devnode(struct device *dev, umode_t *mode)
3526 if (dev->devt == MKDEV(TTYAUX_MAJOR, 0) ||
3527 dev->devt == MKDEV(TTYAUX_MAJOR, 2))
3532 static int __init tty_class_init(void)
3534 tty_class = class_create(THIS_MODULE, "tty");
3535 if (IS_ERR(tty_class))
3536 return PTR_ERR(tty_class);
3537 tty_class->devnode = tty_devnode;
3541 postcore_initcall(tty_class_init);
3543 /* 3/2004 jmc: why do these devices exist? */
3544 static struct cdev tty_cdev, console_cdev;
3546 static ssize_t show_cons_active(struct device *dev,
3547 struct device_attribute *attr, char *buf)
3549 struct console *cs[16];
3555 for_each_console(c) {
3560 if ((c->flags & CON_ENABLED) == 0)
3563 if (i >= ARRAY_SIZE(cs))
3567 int index = cs[i]->index;
3568 struct tty_driver *drv = cs[i]->device(cs[i], &index);
3570 /* don't resolve tty0 as some programs depend on it */
3571 if (drv && (cs[i]->index > 0 || drv->major != TTY_MAJOR))
3572 count += tty_line_name(drv, index, buf + count);
3574 count += sprintf(buf + count, "%s%d",
3575 cs[i]->name, cs[i]->index);
3577 count += sprintf(buf + count, "%c", i ? ' ':'\n');
3583 static DEVICE_ATTR(active, S_IRUGO, show_cons_active, NULL);
3585 static struct attribute *cons_dev_attrs[] = {
3586 &dev_attr_active.attr,
3590 ATTRIBUTE_GROUPS(cons_dev);
3592 static struct device *consdev;
3594 void console_sysfs_notify(void)
3597 sysfs_notify(&consdev->kobj, NULL, "active");
3601 * Ok, now we can initialize the rest of the tty devices and can count
3602 * on memory allocations, interrupts etc..
3604 int __init tty_init(void)
3607 cdev_init(&tty_cdev, &tty_fops);
3608 if (cdev_add(&tty_cdev, MKDEV(TTYAUX_MAJOR, 0), 1) ||
3609 register_chrdev_region(MKDEV(TTYAUX_MAJOR, 0), 1, "/dev/tty") < 0)
3610 panic("Couldn't register /dev/tty driver\n");
3611 device_create(tty_class, NULL, MKDEV(TTYAUX_MAJOR, 0), NULL, "tty");
3613 cdev_init(&console_cdev, &console_fops);
3614 if (cdev_add(&console_cdev, MKDEV(TTYAUX_MAJOR, 1), 1) ||
3615 register_chrdev_region(MKDEV(TTYAUX_MAJOR, 1), 1, "/dev/console") < 0)
3616 panic("Couldn't register /dev/console driver\n");
3617 consdev = device_create_with_groups(tty_class, NULL,
3618 MKDEV(TTYAUX_MAJOR, 1), NULL,
3619 cons_dev_groups, "console");
3620 if (IS_ERR(consdev))
3624 vty_init(&console_fops);