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[cascardo/linux.git] / drivers / tty / serial / serial_core.c
1 /*
2  *  Driver core for serial ports
3  *
4  *  Based on drivers/char/serial.c, by Linus Torvalds, Theodore Ts'o.
5  *
6  *  Copyright 1999 ARM Limited
7  *  Copyright (C) 2000-2001 Deep Blue Solutions Ltd.
8  *
9  * This program is free software; you can redistribute it and/or modify
10  * it under the terms of the GNU General Public License as published by
11  * the Free Software Foundation; either version 2 of the License, or
12  * (at your option) any later version.
13  *
14  * This program is distributed in the hope that it will be useful,
15  * but WITHOUT ANY WARRANTY; without even the implied warranty of
16  * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE.  See the
17  * GNU General Public License for more details.
18  *
19  * You should have received a copy of the GNU General Public License
20  * along with this program; if not, write to the Free Software
21  * Foundation, Inc., 59 Temple Place, Suite 330, Boston, MA  02111-1307  USA
22  */
23 #include <linux/module.h>
24 #include <linux/tty.h>
25 #include <linux/tty_flip.h>
26 #include <linux/slab.h>
27 #include <linux/init.h>
28 #include <linux/console.h>
29 #include <linux/of.h>
30 #include <linux/proc_fs.h>
31 #include <linux/seq_file.h>
32 #include <linux/device.h>
33 #include <linux/serial.h> /* for serial_state and serial_icounter_struct */
34 #include <linux/serial_core.h>
35 #include <linux/delay.h>
36 #include <linux/mutex.h>
37
38 #include <asm/irq.h>
39 #include <asm/uaccess.h>
40
41 /*
42  * This is used to lock changes in serial line configuration.
43  */
44 static DEFINE_MUTEX(port_mutex);
45
46 /*
47  * lockdep: port->lock is initialized in two places, but we
48  *          want only one lock-class:
49  */
50 static struct lock_class_key port_lock_key;
51
52 #define HIGH_BITS_OFFSET        ((sizeof(long)-sizeof(int))*8)
53
54 static void uart_change_speed(struct tty_struct *tty, struct uart_state *state,
55                                         struct ktermios *old_termios);
56 static void uart_wait_until_sent(struct tty_struct *tty, int timeout);
57 static void uart_change_pm(struct uart_state *state,
58                            enum uart_pm_state pm_state);
59
60 static void uart_port_shutdown(struct tty_port *port);
61
62 static int uart_dcd_enabled(struct uart_port *uport)
63 {
64         return !!(uport->status & UPSTAT_DCD_ENABLE);
65 }
66
67 /*
68  * This routine is used by the interrupt handler to schedule processing in
69  * the software interrupt portion of the driver.
70  */
71 void uart_write_wakeup(struct uart_port *port)
72 {
73         struct uart_state *state = port->state;
74         /*
75          * This means you called this function _after_ the port was
76          * closed.  No cookie for you.
77          */
78         BUG_ON(!state);
79         tty_wakeup(state->port.tty);
80 }
81
82 static void uart_stop(struct tty_struct *tty)
83 {
84         struct uart_state *state = tty->driver_data;
85         struct uart_port *port = state->uart_port;
86         unsigned long flags;
87
88         spin_lock_irqsave(&port->lock, flags);
89         port->ops->stop_tx(port);
90         spin_unlock_irqrestore(&port->lock, flags);
91 }
92
93 static void __uart_start(struct tty_struct *tty)
94 {
95         struct uart_state *state = tty->driver_data;
96         struct uart_port *port = state->uart_port;
97
98         if (!uart_tx_stopped(port))
99                 port->ops->start_tx(port);
100 }
101
102 static void uart_start(struct tty_struct *tty)
103 {
104         struct uart_state *state = tty->driver_data;
105         struct uart_port *port = state->uart_port;
106         unsigned long flags;
107
108         spin_lock_irqsave(&port->lock, flags);
109         __uart_start(tty);
110         spin_unlock_irqrestore(&port->lock, flags);
111 }
112
113 static inline void
114 uart_update_mctrl(struct uart_port *port, unsigned int set, unsigned int clear)
115 {
116         unsigned long flags;
117         unsigned int old;
118
119         spin_lock_irqsave(&port->lock, flags);
120         old = port->mctrl;
121         port->mctrl = (old & ~clear) | set;
122         if (old != port->mctrl)
123                 port->ops->set_mctrl(port, port->mctrl);
124         spin_unlock_irqrestore(&port->lock, flags);
125 }
126
127 #define uart_set_mctrl(port, set)       uart_update_mctrl(port, set, 0)
128 #define uart_clear_mctrl(port, clear)   uart_update_mctrl(port, 0, clear)
129
130 /*
131  * Startup the port.  This will be called once per open.  All calls
132  * will be serialised by the per-port mutex.
133  */
134 static int uart_port_startup(struct tty_struct *tty, struct uart_state *state,
135                 int init_hw)
136 {
137         struct uart_port *uport = state->uart_port;
138         unsigned long page;
139         int retval = 0;
140
141         if (uport->type == PORT_UNKNOWN)
142                 return 1;
143
144         /*
145          * Make sure the device is in D0 state.
146          */
147         uart_change_pm(state, UART_PM_STATE_ON);
148
149         /*
150          * Initialise and allocate the transmit and temporary
151          * buffer.
152          */
153         if (!state->xmit.buf) {
154                 /* This is protected by the per port mutex */
155                 page = get_zeroed_page(GFP_KERNEL);
156                 if (!page)
157                         return -ENOMEM;
158
159                 state->xmit.buf = (unsigned char *) page;
160                 uart_circ_clear(&state->xmit);
161         }
162
163         retval = uport->ops->startup(uport);
164         if (retval == 0) {
165                 if (uart_console(uport) && uport->cons->cflag) {
166                         tty->termios.c_cflag = uport->cons->cflag;
167                         uport->cons->cflag = 0;
168                 }
169                 /*
170                  * Initialise the hardware port settings.
171                  */
172                 uart_change_speed(tty, state, NULL);
173
174                 if (init_hw) {
175                         /*
176                          * Setup the RTS and DTR signals once the
177                          * port is open and ready to respond.
178                          */
179                         if (tty->termios.c_cflag & CBAUD)
180                                 uart_set_mctrl(uport, TIOCM_RTS | TIOCM_DTR);
181                 }
182
183                 spin_lock_irq(&uport->lock);
184                 if (uart_cts_enabled(uport) &&
185                     !(uport->ops->get_mctrl(uport) & TIOCM_CTS))
186                         uport->hw_stopped = 1;
187                 else
188                         uport->hw_stopped = 0;
189                 spin_unlock_irq(&uport->lock);
190         }
191
192         /*
193          * This is to allow setserial on this port. People may want to set
194          * port/irq/type and then reconfigure the port properly if it failed
195          * now.
196          */
197         if (retval && capable(CAP_SYS_ADMIN))
198                 return 1;
199
200         return retval;
201 }
202
203 static int uart_startup(struct tty_struct *tty, struct uart_state *state,
204                 int init_hw)
205 {
206         struct tty_port *port = &state->port;
207         int retval;
208
209         if (port->flags & ASYNC_INITIALIZED)
210                 return 0;
211
212         /*
213          * Set the TTY IO error marker - we will only clear this
214          * once we have successfully opened the port.
215          */
216         set_bit(TTY_IO_ERROR, &tty->flags);
217
218         retval = uart_port_startup(tty, state, init_hw);
219         if (!retval) {
220                 set_bit(ASYNCB_INITIALIZED, &port->flags);
221                 clear_bit(TTY_IO_ERROR, &tty->flags);
222         } else if (retval > 0)
223                 retval = 0;
224
225         return retval;
226 }
227
228 /*
229  * This routine will shutdown a serial port; interrupts are disabled, and
230  * DTR is dropped if the hangup on close termio flag is on.  Calls to
231  * uart_shutdown are serialised by the per-port semaphore.
232  */
233 static void uart_shutdown(struct tty_struct *tty, struct uart_state *state)
234 {
235         struct uart_port *uport = state->uart_port;
236         struct tty_port *port = &state->port;
237
238         /*
239          * Set the TTY IO error marker
240          */
241         if (tty)
242                 set_bit(TTY_IO_ERROR, &tty->flags);
243
244         if (test_and_clear_bit(ASYNCB_INITIALIZED, &port->flags)) {
245                 /*
246                  * Turn off DTR and RTS early.
247                  */
248                 if (uart_console(uport) && tty)
249                         uport->cons->cflag = tty->termios.c_cflag;
250
251                 if (!tty || (tty->termios.c_cflag & HUPCL))
252                         uart_clear_mctrl(uport, TIOCM_DTR | TIOCM_RTS);
253
254                 uart_port_shutdown(port);
255         }
256
257         /*
258          * It's possible for shutdown to be called after suspend if we get
259          * a DCD drop (hangup) at just the right time.  Clear suspended bit so
260          * we don't try to resume a port that has been shutdown.
261          */
262         clear_bit(ASYNCB_SUSPENDED, &port->flags);
263
264         /*
265          * Free the transmit buffer page.
266          */
267         if (state->xmit.buf) {
268                 free_page((unsigned long)state->xmit.buf);
269                 state->xmit.buf = NULL;
270         }
271 }
272
273 /**
274  *      uart_update_timeout - update per-port FIFO timeout.
275  *      @port:  uart_port structure describing the port
276  *      @cflag: termios cflag value
277  *      @baud:  speed of the port
278  *
279  *      Set the port FIFO timeout value.  The @cflag value should
280  *      reflect the actual hardware settings.
281  */
282 void
283 uart_update_timeout(struct uart_port *port, unsigned int cflag,
284                     unsigned int baud)
285 {
286         unsigned int bits;
287
288         /* byte size and parity */
289         switch (cflag & CSIZE) {
290         case CS5:
291                 bits = 7;
292                 break;
293         case CS6:
294                 bits = 8;
295                 break;
296         case CS7:
297                 bits = 9;
298                 break;
299         default:
300                 bits = 10;
301                 break; /* CS8 */
302         }
303
304         if (cflag & CSTOPB)
305                 bits++;
306         if (cflag & PARENB)
307                 bits++;
308
309         /*
310          * The total number of bits to be transmitted in the fifo.
311          */
312         bits = bits * port->fifosize;
313
314         /*
315          * Figure the timeout to send the above number of bits.
316          * Add .02 seconds of slop
317          */
318         port->timeout = (HZ * bits) / baud + HZ/50;
319 }
320
321 EXPORT_SYMBOL(uart_update_timeout);
322
323 /**
324  *      uart_get_baud_rate - return baud rate for a particular port
325  *      @port: uart_port structure describing the port in question.
326  *      @termios: desired termios settings.
327  *      @old: old termios (or NULL)
328  *      @min: minimum acceptable baud rate
329  *      @max: maximum acceptable baud rate
330  *
331  *      Decode the termios structure into a numeric baud rate,
332  *      taking account of the magic 38400 baud rate (with spd_*
333  *      flags), and mapping the %B0 rate to 9600 baud.
334  *
335  *      If the new baud rate is invalid, try the old termios setting.
336  *      If it's still invalid, we try 9600 baud.
337  *
338  *      Update the @termios structure to reflect the baud rate
339  *      we're actually going to be using. Don't do this for the case
340  *      where B0 is requested ("hang up").
341  */
342 unsigned int
343 uart_get_baud_rate(struct uart_port *port, struct ktermios *termios,
344                    struct ktermios *old, unsigned int min, unsigned int max)
345 {
346         unsigned int try, baud, altbaud = 38400;
347         int hung_up = 0;
348         upf_t flags = port->flags & UPF_SPD_MASK;
349
350         if (flags == UPF_SPD_HI)
351                 altbaud = 57600;
352         else if (flags == UPF_SPD_VHI)
353                 altbaud = 115200;
354         else if (flags == UPF_SPD_SHI)
355                 altbaud = 230400;
356         else if (flags == UPF_SPD_WARP)
357                 altbaud = 460800;
358
359         for (try = 0; try < 2; try++) {
360                 baud = tty_termios_baud_rate(termios);
361
362                 /*
363                  * The spd_hi, spd_vhi, spd_shi, spd_warp kludge...
364                  * Die! Die! Die!
365                  */
366                 if (try == 0 && baud == 38400)
367                         baud = altbaud;
368
369                 /*
370                  * Special case: B0 rate.
371                  */
372                 if (baud == 0) {
373                         hung_up = 1;
374                         baud = 9600;
375                 }
376
377                 if (baud >= min && baud <= max)
378                         return baud;
379
380                 /*
381                  * Oops, the quotient was zero.  Try again with
382                  * the old baud rate if possible.
383                  */
384                 termios->c_cflag &= ~CBAUD;
385                 if (old) {
386                         baud = tty_termios_baud_rate(old);
387                         if (!hung_up)
388                                 tty_termios_encode_baud_rate(termios,
389                                                                 baud, baud);
390                         old = NULL;
391                         continue;
392                 }
393
394                 /*
395                  * As a last resort, if the range cannot be met then clip to
396                  * the nearest chip supported rate.
397                  */
398                 if (!hung_up) {
399                         if (baud <= min)
400                                 tty_termios_encode_baud_rate(termios,
401                                                         min + 1, min + 1);
402                         else
403                                 tty_termios_encode_baud_rate(termios,
404                                                         max - 1, max - 1);
405                 }
406         }
407         /* Should never happen */
408         WARN_ON(1);
409         return 0;
410 }
411
412 EXPORT_SYMBOL(uart_get_baud_rate);
413
414 /**
415  *      uart_get_divisor - return uart clock divisor
416  *      @port: uart_port structure describing the port.
417  *      @baud: desired baud rate
418  *
419  *      Calculate the uart clock divisor for the port.
420  */
421 unsigned int
422 uart_get_divisor(struct uart_port *port, unsigned int baud)
423 {
424         unsigned int quot;
425
426         /*
427          * Old custom speed handling.
428          */
429         if (baud == 38400 && (port->flags & UPF_SPD_MASK) == UPF_SPD_CUST)
430                 quot = port->custom_divisor;
431         else
432                 quot = DIV_ROUND_CLOSEST(port->uartclk, 16 * baud);
433
434         return quot;
435 }
436
437 EXPORT_SYMBOL(uart_get_divisor);
438
439 /* Caller holds port mutex */
440 static void uart_change_speed(struct tty_struct *tty, struct uart_state *state,
441                                         struct ktermios *old_termios)
442 {
443         struct uart_port *uport = state->uart_port;
444         struct ktermios *termios;
445
446         /*
447          * If we have no tty, termios, or the port does not exist,
448          * then we can't set the parameters for this port.
449          */
450         if (!tty || uport->type == PORT_UNKNOWN)
451                 return;
452
453         termios = &tty->termios;
454         uport->ops->set_termios(uport, termios, old_termios);
455
456         /*
457          * Set modem status enables based on termios cflag
458          */
459         spin_lock_irq(&uport->lock);
460         if (termios->c_cflag & CRTSCTS)
461                 uport->status |= UPSTAT_CTS_ENABLE;
462         else
463                 uport->status &= ~UPSTAT_CTS_ENABLE;
464
465         if (termios->c_cflag & CLOCAL)
466                 uport->status &= ~UPSTAT_DCD_ENABLE;
467         else
468                 uport->status |= UPSTAT_DCD_ENABLE;
469         spin_unlock_irq(&uport->lock);
470 }
471
472 static inline int __uart_put_char(struct uart_port *port,
473                                 struct circ_buf *circ, unsigned char c)
474 {
475         unsigned long flags;
476         int ret = 0;
477
478         if (!circ->buf)
479                 return 0;
480
481         spin_lock_irqsave(&port->lock, flags);
482         if (uart_circ_chars_free(circ) != 0) {
483                 circ->buf[circ->head] = c;
484                 circ->head = (circ->head + 1) & (UART_XMIT_SIZE - 1);
485                 ret = 1;
486         }
487         spin_unlock_irqrestore(&port->lock, flags);
488         return ret;
489 }
490
491 static int uart_put_char(struct tty_struct *tty, unsigned char ch)
492 {
493         struct uart_state *state = tty->driver_data;
494
495         return __uart_put_char(state->uart_port, &state->xmit, ch);
496 }
497
498 static void uart_flush_chars(struct tty_struct *tty)
499 {
500         uart_start(tty);
501 }
502
503 static int uart_write(struct tty_struct *tty,
504                                         const unsigned char *buf, int count)
505 {
506         struct uart_state *state = tty->driver_data;
507         struct uart_port *port;
508         struct circ_buf *circ;
509         unsigned long flags;
510         int c, ret = 0;
511
512         /*
513          * This means you called this function _after_ the port was
514          * closed.  No cookie for you.
515          */
516         if (!state) {
517                 WARN_ON(1);
518                 return -EL3HLT;
519         }
520
521         port = state->uart_port;
522         circ = &state->xmit;
523
524         if (!circ->buf)
525                 return 0;
526
527         spin_lock_irqsave(&port->lock, flags);
528         while (1) {
529                 c = CIRC_SPACE_TO_END(circ->head, circ->tail, UART_XMIT_SIZE);
530                 if (count < c)
531                         c = count;
532                 if (c <= 0)
533                         break;
534                 memcpy(circ->buf + circ->head, buf, c);
535                 circ->head = (circ->head + c) & (UART_XMIT_SIZE - 1);
536                 buf += c;
537                 count -= c;
538                 ret += c;
539         }
540
541         __uart_start(tty);
542         spin_unlock_irqrestore(&port->lock, flags);
543
544         return ret;
545 }
546
547 static int uart_write_room(struct tty_struct *tty)
548 {
549         struct uart_state *state = tty->driver_data;
550         unsigned long flags;
551         int ret;
552
553         spin_lock_irqsave(&state->uart_port->lock, flags);
554         ret = uart_circ_chars_free(&state->xmit);
555         spin_unlock_irqrestore(&state->uart_port->lock, flags);
556         return ret;
557 }
558
559 static int uart_chars_in_buffer(struct tty_struct *tty)
560 {
561         struct uart_state *state = tty->driver_data;
562         unsigned long flags;
563         int ret;
564
565         spin_lock_irqsave(&state->uart_port->lock, flags);
566         ret = uart_circ_chars_pending(&state->xmit);
567         spin_unlock_irqrestore(&state->uart_port->lock, flags);
568         return ret;
569 }
570
571 static void uart_flush_buffer(struct tty_struct *tty)
572 {
573         struct uart_state *state = tty->driver_data;
574         struct uart_port *port;
575         unsigned long flags;
576
577         /*
578          * This means you called this function _after_ the port was
579          * closed.  No cookie for you.
580          */
581         if (!state) {
582                 WARN_ON(1);
583                 return;
584         }
585
586         port = state->uart_port;
587         pr_debug("uart_flush_buffer(%d) called\n", tty->index);
588
589         spin_lock_irqsave(&port->lock, flags);
590         uart_circ_clear(&state->xmit);
591         if (port->ops->flush_buffer)
592                 port->ops->flush_buffer(port);
593         spin_unlock_irqrestore(&port->lock, flags);
594         tty_wakeup(tty);
595 }
596
597 /*
598  * This function is used to send a high-priority XON/XOFF character to
599  * the device
600  */
601 static void uart_send_xchar(struct tty_struct *tty, char ch)
602 {
603         struct uart_state *state = tty->driver_data;
604         struct uart_port *port = state->uart_port;
605         unsigned long flags;
606
607         if (port->ops->send_xchar)
608                 port->ops->send_xchar(port, ch);
609         else {
610                 spin_lock_irqsave(&port->lock, flags);
611                 port->x_char = ch;
612                 if (ch)
613                         port->ops->start_tx(port);
614                 spin_unlock_irqrestore(&port->lock, flags);
615         }
616 }
617
618 static void uart_throttle(struct tty_struct *tty)
619 {
620         struct uart_state *state = tty->driver_data;
621         struct uart_port *port = state->uart_port;
622         upf_t mask = 0;
623
624         if (I_IXOFF(tty))
625                 mask |= UPF_SOFT_FLOW;
626         if (tty->termios.c_cflag & CRTSCTS)
627                 mask |= UPF_HARD_FLOW;
628
629         if (port->flags & mask) {
630                 port->ops->throttle(port);
631                 mask &= ~port->flags;
632         }
633
634         if (mask & UPF_SOFT_FLOW)
635                 uart_send_xchar(tty, STOP_CHAR(tty));
636
637         if (mask & UPF_HARD_FLOW)
638                 uart_clear_mctrl(port, TIOCM_RTS);
639 }
640
641 static void uart_unthrottle(struct tty_struct *tty)
642 {
643         struct uart_state *state = tty->driver_data;
644         struct uart_port *port = state->uart_port;
645         upf_t mask = 0;
646
647         if (I_IXOFF(tty))
648                 mask |= UPF_SOFT_FLOW;
649         if (tty->termios.c_cflag & CRTSCTS)
650                 mask |= UPF_HARD_FLOW;
651
652         if (port->flags & mask) {
653                 port->ops->unthrottle(port);
654                 mask &= ~port->flags;
655         }
656
657         if (mask & UPF_SOFT_FLOW)
658                 uart_send_xchar(tty, START_CHAR(tty));
659
660         if (mask & UPF_HARD_FLOW)
661                 uart_set_mctrl(port, TIOCM_RTS);
662 }
663
664 static void do_uart_get_info(struct tty_port *port,
665                         struct serial_struct *retinfo)
666 {
667         struct uart_state *state = container_of(port, struct uart_state, port);
668         struct uart_port *uport = state->uart_port;
669
670         memset(retinfo, 0, sizeof(*retinfo));
671
672         retinfo->type       = uport->type;
673         retinfo->line       = uport->line;
674         retinfo->port       = uport->iobase;
675         if (HIGH_BITS_OFFSET)
676                 retinfo->port_high = (long) uport->iobase >> HIGH_BITS_OFFSET;
677         retinfo->irq                = uport->irq;
678         retinfo->flags      = uport->flags;
679         retinfo->xmit_fifo_size  = uport->fifosize;
680         retinfo->baud_base          = uport->uartclk / 16;
681         retinfo->close_delay        = jiffies_to_msecs(port->close_delay) / 10;
682         retinfo->closing_wait    = port->closing_wait == ASYNC_CLOSING_WAIT_NONE ?
683                                 ASYNC_CLOSING_WAIT_NONE :
684                                 jiffies_to_msecs(port->closing_wait) / 10;
685         retinfo->custom_divisor  = uport->custom_divisor;
686         retinfo->hub6       = uport->hub6;
687         retinfo->io_type         = uport->iotype;
688         retinfo->iomem_reg_shift = uport->regshift;
689         retinfo->iomem_base      = (void *)(unsigned long)uport->mapbase;
690 }
691
692 static void uart_get_info(struct tty_port *port,
693                         struct serial_struct *retinfo)
694 {
695         /* Ensure the state we copy is consistent and no hardware changes
696            occur as we go */
697         mutex_lock(&port->mutex);
698         do_uart_get_info(port, retinfo);
699         mutex_unlock(&port->mutex);
700 }
701
702 static int uart_get_info_user(struct tty_port *port,
703                          struct serial_struct __user *retinfo)
704 {
705         struct serial_struct tmp;
706         uart_get_info(port, &tmp);
707
708         if (copy_to_user(retinfo, &tmp, sizeof(*retinfo)))
709                 return -EFAULT;
710         return 0;
711 }
712
713 static int uart_set_info(struct tty_struct *tty, struct tty_port *port,
714                          struct uart_state *state,
715                          struct serial_struct *new_info)
716 {
717         struct uart_port *uport = state->uart_port;
718         unsigned long new_port;
719         unsigned int change_irq, change_port, closing_wait;
720         unsigned int old_custom_divisor, close_delay;
721         upf_t old_flags, new_flags;
722         int retval = 0;
723
724         new_port = new_info->port;
725         if (HIGH_BITS_OFFSET)
726                 new_port += (unsigned long) new_info->port_high << HIGH_BITS_OFFSET;
727
728         new_info->irq = irq_canonicalize(new_info->irq);
729         close_delay = msecs_to_jiffies(new_info->close_delay * 10);
730         closing_wait = new_info->closing_wait == ASYNC_CLOSING_WAIT_NONE ?
731                         ASYNC_CLOSING_WAIT_NONE :
732                         msecs_to_jiffies(new_info->closing_wait * 10);
733
734
735         change_irq  = !(uport->flags & UPF_FIXED_PORT)
736                 && new_info->irq != uport->irq;
737
738         /*
739          * Since changing the 'type' of the port changes its resource
740          * allocations, we should treat type changes the same as
741          * IO port changes.
742          */
743         change_port = !(uport->flags & UPF_FIXED_PORT)
744                 && (new_port != uport->iobase ||
745                     (unsigned long)new_info->iomem_base != uport->mapbase ||
746                     new_info->hub6 != uport->hub6 ||
747                     new_info->io_type != uport->iotype ||
748                     new_info->iomem_reg_shift != uport->regshift ||
749                     new_info->type != uport->type);
750
751         old_flags = uport->flags;
752         new_flags = new_info->flags;
753         old_custom_divisor = uport->custom_divisor;
754
755         if (!capable(CAP_SYS_ADMIN)) {
756                 retval = -EPERM;
757                 if (change_irq || change_port ||
758                     (new_info->baud_base != uport->uartclk / 16) ||
759                     (close_delay != port->close_delay) ||
760                     (closing_wait != port->closing_wait) ||
761                     (new_info->xmit_fifo_size &&
762                      new_info->xmit_fifo_size != uport->fifosize) ||
763                     (((new_flags ^ old_flags) & ~UPF_USR_MASK) != 0))
764                         goto exit;
765                 uport->flags = ((uport->flags & ~UPF_USR_MASK) |
766                                (new_flags & UPF_USR_MASK));
767                 uport->custom_divisor = new_info->custom_divisor;
768                 goto check_and_exit;
769         }
770
771         /*
772          * Ask the low level driver to verify the settings.
773          */
774         if (uport->ops->verify_port)
775                 retval = uport->ops->verify_port(uport, new_info);
776
777         if ((new_info->irq >= nr_irqs) || (new_info->irq < 0) ||
778             (new_info->baud_base < 9600))
779                 retval = -EINVAL;
780
781         if (retval)
782                 goto exit;
783
784         if (change_port || change_irq) {
785                 retval = -EBUSY;
786
787                 /*
788                  * Make sure that we are the sole user of this port.
789                  */
790                 if (tty_port_users(port) > 1)
791                         goto exit;
792
793                 /*
794                  * We need to shutdown the serial port at the old
795                  * port/type/irq combination.
796                  */
797                 uart_shutdown(tty, state);
798         }
799
800         if (change_port) {
801                 unsigned long old_iobase, old_mapbase;
802                 unsigned int old_type, old_iotype, old_hub6, old_shift;
803
804                 old_iobase = uport->iobase;
805                 old_mapbase = uport->mapbase;
806                 old_type = uport->type;
807                 old_hub6 = uport->hub6;
808                 old_iotype = uport->iotype;
809                 old_shift = uport->regshift;
810
811                 /*
812                  * Free and release old regions
813                  */
814                 if (old_type != PORT_UNKNOWN)
815                         uport->ops->release_port(uport);
816
817                 uport->iobase = new_port;
818                 uport->type = new_info->type;
819                 uport->hub6 = new_info->hub6;
820                 uport->iotype = new_info->io_type;
821                 uport->regshift = new_info->iomem_reg_shift;
822                 uport->mapbase = (unsigned long)new_info->iomem_base;
823
824                 /*
825                  * Claim and map the new regions
826                  */
827                 if (uport->type != PORT_UNKNOWN) {
828                         retval = uport->ops->request_port(uport);
829                 } else {
830                         /* Always success - Jean II */
831                         retval = 0;
832                 }
833
834                 /*
835                  * If we fail to request resources for the
836                  * new port, try to restore the old settings.
837                  */
838                 if (retval) {
839                         uport->iobase = old_iobase;
840                         uport->type = old_type;
841                         uport->hub6 = old_hub6;
842                         uport->iotype = old_iotype;
843                         uport->regshift = old_shift;
844                         uport->mapbase = old_mapbase;
845
846                         if (old_type != PORT_UNKNOWN) {
847                                 retval = uport->ops->request_port(uport);
848                                 /*
849                                  * If we failed to restore the old settings,
850                                  * we fail like this.
851                                  */
852                                 if (retval)
853                                         uport->type = PORT_UNKNOWN;
854
855                                 /*
856                                  * We failed anyway.
857                                  */
858                                 retval = -EBUSY;
859                         }
860
861                         /* Added to return the correct error -Ram Gupta */
862                         goto exit;
863                 }
864         }
865
866         if (change_irq)
867                 uport->irq      = new_info->irq;
868         if (!(uport->flags & UPF_FIXED_PORT))
869                 uport->uartclk  = new_info->baud_base * 16;
870         uport->flags            = (uport->flags & ~UPF_CHANGE_MASK) |
871                                  (new_flags & UPF_CHANGE_MASK);
872         uport->custom_divisor   = new_info->custom_divisor;
873         port->close_delay     = close_delay;
874         port->closing_wait    = closing_wait;
875         if (new_info->xmit_fifo_size)
876                 uport->fifosize = new_info->xmit_fifo_size;
877         port->low_latency = (uport->flags & UPF_LOW_LATENCY) ? 1 : 0;
878
879  check_and_exit:
880         retval = 0;
881         if (uport->type == PORT_UNKNOWN)
882                 goto exit;
883         if (port->flags & ASYNC_INITIALIZED) {
884                 if (((old_flags ^ uport->flags) & UPF_SPD_MASK) ||
885                     old_custom_divisor != uport->custom_divisor) {
886                         /*
887                          * If they're setting up a custom divisor or speed,
888                          * instead of clearing it, then bitch about it. No
889                          * need to rate-limit; it's CAP_SYS_ADMIN only.
890                          */
891                         if (uport->flags & UPF_SPD_MASK) {
892                                 char buf[64];
893
894                                 dev_notice(uport->dev,
895                                        "%s sets custom speed on %s. This is deprecated.\n",
896                                       current->comm,
897                                       tty_name(port->tty, buf));
898                         }
899                         uart_change_speed(tty, state, NULL);
900                 }
901         } else
902                 retval = uart_startup(tty, state, 1);
903  exit:
904         return retval;
905 }
906
907 static int uart_set_info_user(struct tty_struct *tty, struct uart_state *state,
908                          struct serial_struct __user *newinfo)
909 {
910         struct serial_struct new_serial;
911         struct tty_port *port = &state->port;
912         int retval;
913
914         if (copy_from_user(&new_serial, newinfo, sizeof(new_serial)))
915                 return -EFAULT;
916
917         /*
918          * This semaphore protects port->count.  It is also
919          * very useful to prevent opens.  Also, take the
920          * port configuration semaphore to make sure that a
921          * module insertion/removal doesn't change anything
922          * under us.
923          */
924         mutex_lock(&port->mutex);
925         retval = uart_set_info(tty, port, state, &new_serial);
926         mutex_unlock(&port->mutex);
927         return retval;
928 }
929
930 /**
931  *      uart_get_lsr_info       -       get line status register info
932  *      @tty: tty associated with the UART
933  *      @state: UART being queried
934  *      @value: returned modem value
935  *
936  *      Note: uart_ioctl protects us against hangups.
937  */
938 static int uart_get_lsr_info(struct tty_struct *tty,
939                         struct uart_state *state, unsigned int __user *value)
940 {
941         struct uart_port *uport = state->uart_port;
942         unsigned int result;
943
944         result = uport->ops->tx_empty(uport);
945
946         /*
947          * If we're about to load something into the transmit
948          * register, we'll pretend the transmitter isn't empty to
949          * avoid a race condition (depending on when the transmit
950          * interrupt happens).
951          */
952         if (uport->x_char ||
953             ((uart_circ_chars_pending(&state->xmit) > 0) &&
954              !uart_tx_stopped(uport)))
955                 result &= ~TIOCSER_TEMT;
956
957         return put_user(result, value);
958 }
959
960 static int uart_tiocmget(struct tty_struct *tty)
961 {
962         struct uart_state *state = tty->driver_data;
963         struct tty_port *port = &state->port;
964         struct uart_port *uport = state->uart_port;
965         int result = -EIO;
966
967         mutex_lock(&port->mutex);
968         if (!(tty->flags & (1 << TTY_IO_ERROR))) {
969                 result = uport->mctrl;
970                 spin_lock_irq(&uport->lock);
971                 result |= uport->ops->get_mctrl(uport);
972                 spin_unlock_irq(&uport->lock);
973         }
974         mutex_unlock(&port->mutex);
975
976         return result;
977 }
978
979 static int
980 uart_tiocmset(struct tty_struct *tty, unsigned int set, unsigned int clear)
981 {
982         struct uart_state *state = tty->driver_data;
983         struct uart_port *uport = state->uart_port;
984         struct tty_port *port = &state->port;
985         int ret = -EIO;
986
987         mutex_lock(&port->mutex);
988         if (!(tty->flags & (1 << TTY_IO_ERROR))) {
989                 uart_update_mctrl(uport, set, clear);
990                 ret = 0;
991         }
992         mutex_unlock(&port->mutex);
993         return ret;
994 }
995
996 static int uart_break_ctl(struct tty_struct *tty, int break_state)
997 {
998         struct uart_state *state = tty->driver_data;
999         struct tty_port *port = &state->port;
1000         struct uart_port *uport = state->uart_port;
1001
1002         mutex_lock(&port->mutex);
1003
1004         if (uport->type != PORT_UNKNOWN)
1005                 uport->ops->break_ctl(uport, break_state);
1006
1007         mutex_unlock(&port->mutex);
1008         return 0;
1009 }
1010
1011 static int uart_do_autoconfig(struct tty_struct *tty,struct uart_state *state)
1012 {
1013         struct uart_port *uport = state->uart_port;
1014         struct tty_port *port = &state->port;
1015         int flags, ret;
1016
1017         if (!capable(CAP_SYS_ADMIN))
1018                 return -EPERM;
1019
1020         /*
1021          * Take the per-port semaphore.  This prevents count from
1022          * changing, and hence any extra opens of the port while
1023          * we're auto-configuring.
1024          */
1025         if (mutex_lock_interruptible(&port->mutex))
1026                 return -ERESTARTSYS;
1027
1028         ret = -EBUSY;
1029         if (tty_port_users(port) == 1) {
1030                 uart_shutdown(tty, state);
1031
1032                 /*
1033                  * If we already have a port type configured,
1034                  * we must release its resources.
1035                  */
1036                 if (uport->type != PORT_UNKNOWN)
1037                         uport->ops->release_port(uport);
1038
1039                 flags = UART_CONFIG_TYPE;
1040                 if (uport->flags & UPF_AUTO_IRQ)
1041                         flags |= UART_CONFIG_IRQ;
1042
1043                 /*
1044                  * This will claim the ports resources if
1045                  * a port is found.
1046                  */
1047                 uport->ops->config_port(uport, flags);
1048
1049                 ret = uart_startup(tty, state, 1);
1050         }
1051         mutex_unlock(&port->mutex);
1052         return ret;
1053 }
1054
1055 static void uart_enable_ms(struct uart_port *uport)
1056 {
1057         /*
1058          * Force modem status interrupts on
1059          */
1060         if (uport->ops->enable_ms)
1061                 uport->ops->enable_ms(uport);
1062 }
1063
1064 /*
1065  * Wait for any of the 4 modem inputs (DCD,RI,DSR,CTS) to change
1066  * - mask passed in arg for lines of interest
1067  *   (use |'ed TIOCM_RNG/DSR/CD/CTS for masking)
1068  * Caller should use TIOCGICOUNT to see which one it was
1069  *
1070  * FIXME: This wants extracting into a common all driver implementation
1071  * of TIOCMWAIT using tty_port.
1072  */
1073 static int
1074 uart_wait_modem_status(struct uart_state *state, unsigned long arg)
1075 {
1076         struct uart_port *uport = state->uart_port;
1077         struct tty_port *port = &state->port;
1078         DECLARE_WAITQUEUE(wait, current);
1079         struct uart_icount cprev, cnow;
1080         int ret;
1081
1082         /*
1083          * note the counters on entry
1084          */
1085         spin_lock_irq(&uport->lock);
1086         memcpy(&cprev, &uport->icount, sizeof(struct uart_icount));
1087         uart_enable_ms(uport);
1088         spin_unlock_irq(&uport->lock);
1089
1090         add_wait_queue(&port->delta_msr_wait, &wait);
1091         for (;;) {
1092                 spin_lock_irq(&uport->lock);
1093                 memcpy(&cnow, &uport->icount, sizeof(struct uart_icount));
1094                 spin_unlock_irq(&uport->lock);
1095
1096                 set_current_state(TASK_INTERRUPTIBLE);
1097
1098                 if (((arg & TIOCM_RNG) && (cnow.rng != cprev.rng)) ||
1099                     ((arg & TIOCM_DSR) && (cnow.dsr != cprev.dsr)) ||
1100                     ((arg & TIOCM_CD)  && (cnow.dcd != cprev.dcd)) ||
1101                     ((arg & TIOCM_CTS) && (cnow.cts != cprev.cts))) {
1102                         ret = 0;
1103                         break;
1104                 }
1105
1106                 schedule();
1107
1108                 /* see if a signal did it */
1109                 if (signal_pending(current)) {
1110                         ret = -ERESTARTSYS;
1111                         break;
1112                 }
1113
1114                 cprev = cnow;
1115         }
1116
1117         current->state = TASK_RUNNING;
1118         remove_wait_queue(&port->delta_msr_wait, &wait);
1119
1120         return ret;
1121 }
1122
1123 /*
1124  * Get counter of input serial line interrupts (DCD,RI,DSR,CTS)
1125  * Return: write counters to the user passed counter struct
1126  * NB: both 1->0 and 0->1 transitions are counted except for
1127  *     RI where only 0->1 is counted.
1128  */
1129 static int uart_get_icount(struct tty_struct *tty,
1130                           struct serial_icounter_struct *icount)
1131 {
1132         struct uart_state *state = tty->driver_data;
1133         struct uart_icount cnow;
1134         struct uart_port *uport = state->uart_port;
1135
1136         spin_lock_irq(&uport->lock);
1137         memcpy(&cnow, &uport->icount, sizeof(struct uart_icount));
1138         spin_unlock_irq(&uport->lock);
1139
1140         icount->cts         = cnow.cts;
1141         icount->dsr         = cnow.dsr;
1142         icount->rng         = cnow.rng;
1143         icount->dcd         = cnow.dcd;
1144         icount->rx          = cnow.rx;
1145         icount->tx          = cnow.tx;
1146         icount->frame       = cnow.frame;
1147         icount->overrun     = cnow.overrun;
1148         icount->parity      = cnow.parity;
1149         icount->brk         = cnow.brk;
1150         icount->buf_overrun = cnow.buf_overrun;
1151
1152         return 0;
1153 }
1154
1155 static int uart_get_rs485_config(struct uart_port *port,
1156                          struct serial_rs485 __user *rs485)
1157 {
1158         unsigned long flags;
1159         struct serial_rs485 aux;
1160
1161         spin_lock_irqsave(&port->lock, flags);
1162         aux = port->rs485;
1163         spin_unlock_irqrestore(&port->lock, flags);
1164
1165         if (copy_to_user(rs485, &aux, sizeof(aux)))
1166                 return -EFAULT;
1167
1168         return 0;
1169 }
1170
1171 static int uart_set_rs485_config(struct uart_port *port,
1172                          struct serial_rs485 __user *rs485_user)
1173 {
1174         struct serial_rs485 rs485;
1175         int ret;
1176         unsigned long flags;
1177
1178         if (!port->rs485_config)
1179                 return -ENOIOCTLCMD;
1180
1181         if (copy_from_user(&rs485, rs485_user, sizeof(*rs485_user)))
1182                 return -EFAULT;
1183
1184         spin_lock_irqsave(&port->lock, flags);
1185         ret = port->rs485_config(port, &rs485);
1186         spin_unlock_irqrestore(&port->lock, flags);
1187         if (ret)
1188                 return ret;
1189
1190         if (copy_to_user(rs485_user, &port->rs485, sizeof(port->rs485)))
1191                 return -EFAULT;
1192
1193         return 0;
1194 }
1195
1196 /*
1197  * Called via sys_ioctl.  We can use spin_lock_irq() here.
1198  */
1199 static int
1200 uart_ioctl(struct tty_struct *tty, unsigned int cmd,
1201            unsigned long arg)
1202 {
1203         struct uart_state *state = tty->driver_data;
1204         struct tty_port *port = &state->port;
1205         void __user *uarg = (void __user *)arg;
1206         int ret = -ENOIOCTLCMD;
1207
1208
1209         /*
1210          * These ioctls don't rely on the hardware to be present.
1211          */
1212         switch (cmd) {
1213         case TIOCGSERIAL:
1214                 ret = uart_get_info_user(port, uarg);
1215                 break;
1216
1217         case TIOCSSERIAL:
1218                 down_write(&tty->termios_rwsem);
1219                 ret = uart_set_info_user(tty, state, uarg);
1220                 up_write(&tty->termios_rwsem);
1221                 break;
1222
1223         case TIOCSERCONFIG:
1224                 down_write(&tty->termios_rwsem);
1225                 ret = uart_do_autoconfig(tty, state);
1226                 up_write(&tty->termios_rwsem);
1227                 break;
1228
1229         case TIOCSERGWILD: /* obsolete */
1230         case TIOCSERSWILD: /* obsolete */
1231                 ret = 0;
1232                 break;
1233         }
1234
1235         if (ret != -ENOIOCTLCMD)
1236                 goto out;
1237
1238         if (tty->flags & (1 << TTY_IO_ERROR)) {
1239                 ret = -EIO;
1240                 goto out;
1241         }
1242
1243         /*
1244          * The following should only be used when hardware is present.
1245          */
1246         switch (cmd) {
1247         case TIOCMIWAIT:
1248                 ret = uart_wait_modem_status(state, arg);
1249                 break;
1250         }
1251
1252         if (ret != -ENOIOCTLCMD)
1253                 goto out;
1254
1255         mutex_lock(&port->mutex);
1256
1257         if (tty->flags & (1 << TTY_IO_ERROR)) {
1258                 ret = -EIO;
1259                 goto out_up;
1260         }
1261
1262         /*
1263          * All these rely on hardware being present and need to be
1264          * protected against the tty being hung up.
1265          */
1266
1267         switch (cmd) {
1268         case TIOCSERGETLSR: /* Get line status register */
1269                 ret = uart_get_lsr_info(tty, state, uarg);
1270                 break;
1271
1272         case TIOCGRS485:
1273                 ret = uart_get_rs485_config(state->uart_port, uarg);
1274                 break;
1275
1276         case TIOCSRS485:
1277                 ret = uart_set_rs485_config(state->uart_port, uarg);
1278                 break;
1279         default: {
1280                 struct uart_port *uport = state->uart_port;
1281                 if (uport->ops->ioctl)
1282                         ret = uport->ops->ioctl(uport, cmd, arg);
1283                 break;
1284         }
1285         }
1286 out_up:
1287         mutex_unlock(&port->mutex);
1288 out:
1289         return ret;
1290 }
1291
1292 static void uart_set_ldisc(struct tty_struct *tty)
1293 {
1294         struct uart_state *state = tty->driver_data;
1295         struct uart_port *uport = state->uart_port;
1296
1297         if (uport->ops->set_ldisc) {
1298                 mutex_lock(&state->port.mutex);
1299                 uport->ops->set_ldisc(uport, &tty->termios);
1300                 mutex_unlock(&state->port.mutex);
1301         }
1302 }
1303
1304 static void uart_set_termios(struct tty_struct *tty,
1305                                                 struct ktermios *old_termios)
1306 {
1307         struct uart_state *state = tty->driver_data;
1308         struct uart_port *uport = state->uart_port;
1309         unsigned int cflag = tty->termios.c_cflag;
1310         unsigned int iflag_mask = IGNBRK|BRKINT|IGNPAR|PARMRK|INPCK;
1311         bool sw_changed = false;
1312
1313         /*
1314          * Drivers doing software flow control also need to know
1315          * about changes to these input settings.
1316          */
1317         if (uport->flags & UPF_SOFT_FLOW) {
1318                 iflag_mask |= IXANY|IXON|IXOFF;
1319                 sw_changed =
1320                    tty->termios.c_cc[VSTART] != old_termios->c_cc[VSTART] ||
1321                    tty->termios.c_cc[VSTOP] != old_termios->c_cc[VSTOP];
1322         }
1323
1324         /*
1325          * These are the bits that are used to setup various
1326          * flags in the low level driver. We can ignore the Bfoo
1327          * bits in c_cflag; c_[io]speed will always be set
1328          * appropriately by set_termios() in tty_ioctl.c
1329          */
1330         if ((cflag ^ old_termios->c_cflag) == 0 &&
1331             tty->termios.c_ospeed == old_termios->c_ospeed &&
1332             tty->termios.c_ispeed == old_termios->c_ispeed &&
1333             ((tty->termios.c_iflag ^ old_termios->c_iflag) & iflag_mask) == 0 &&
1334             !sw_changed) {
1335                 return;
1336         }
1337
1338         mutex_lock(&state->port.mutex);
1339         uart_change_speed(tty, state, old_termios);
1340         mutex_unlock(&state->port.mutex);
1341         /* reload cflag from termios; port driver may have overriden flags */
1342         cflag = tty->termios.c_cflag;
1343
1344         /* Handle transition to B0 status */
1345         if ((old_termios->c_cflag & CBAUD) && !(cflag & CBAUD))
1346                 uart_clear_mctrl(uport, TIOCM_RTS | TIOCM_DTR);
1347         /* Handle transition away from B0 status */
1348         else if (!(old_termios->c_cflag & CBAUD) && (cflag & CBAUD)) {
1349                 unsigned int mask = TIOCM_DTR;
1350                 if (!(cflag & CRTSCTS) || !test_bit(TTY_THROTTLED, &tty->flags))
1351                         mask |= TIOCM_RTS;
1352                 uart_set_mctrl(uport, mask);
1353         }
1354
1355         /*
1356          * If the port is doing h/w assisted flow control, do nothing.
1357          * We assume that port->hw_stopped has never been set.
1358          */
1359         if (uport->flags & UPF_HARD_FLOW)
1360                 return;
1361
1362         /* Handle turning off CRTSCTS */
1363         if ((old_termios->c_cflag & CRTSCTS) && !(cflag & CRTSCTS)) {
1364                 spin_lock_irq(&uport->lock);
1365                 uport->hw_stopped = 0;
1366                 __uart_start(tty);
1367                 spin_unlock_irq(&uport->lock);
1368         }
1369         /* Handle turning on CRTSCTS */
1370         else if (!(old_termios->c_cflag & CRTSCTS) && (cflag & CRTSCTS)) {
1371                 spin_lock_irq(&uport->lock);
1372                 if (!(uport->ops->get_mctrl(uport) & TIOCM_CTS)) {
1373                         uport->hw_stopped = 1;
1374                         uport->ops->stop_tx(uport);
1375                 }
1376                 spin_unlock_irq(&uport->lock);
1377         }
1378 }
1379
1380 /*
1381  * Calls to uart_close() are serialised via the tty_lock in
1382  *   drivers/tty/tty_io.c:tty_release()
1383  *   drivers/tty/tty_io.c:do_tty_hangup()
1384  * This runs from a workqueue and can sleep for a _short_ time only.
1385  */
1386 static void uart_close(struct tty_struct *tty, struct file *filp)
1387 {
1388         struct uart_state *state = tty->driver_data;
1389         struct tty_port *port;
1390         struct uart_port *uport;
1391         unsigned long flags;
1392
1393         if (!state) {
1394                 struct uart_driver *drv = tty->driver->driver_state;
1395
1396                 state = drv->state + tty->index;
1397                 port = &state->port;
1398                 spin_lock_irq(&port->lock);
1399                 --port->count;
1400                 spin_unlock_irq(&port->lock);
1401                 return;
1402         }
1403
1404         uport = state->uart_port;
1405         port = &state->port;
1406
1407         pr_debug("uart_close(%d) called\n", uport ? uport->line : -1);
1408
1409         if (!port->count || tty_port_close_start(port, tty, filp) == 0)
1410                 return;
1411
1412         /*
1413          * At this point, we stop accepting input.  To do this, we
1414          * disable the receive line status interrupts.
1415          */
1416         if (port->flags & ASYNC_INITIALIZED) {
1417                 unsigned long flags;
1418                 spin_lock_irqsave(&uport->lock, flags);
1419                 uport->ops->stop_rx(uport);
1420                 spin_unlock_irqrestore(&uport->lock, flags);
1421                 /*
1422                  * Before we drop DTR, make sure the UART transmitter
1423                  * has completely drained; this is especially
1424                  * important if there is a transmit FIFO!
1425                  */
1426                 uart_wait_until_sent(tty, uport->timeout);
1427         }
1428
1429         mutex_lock(&port->mutex);
1430         uart_shutdown(tty, state);
1431         tty_port_tty_set(port, NULL);
1432         tty->closing = 0;
1433         spin_lock_irqsave(&port->lock, flags);
1434
1435         if (port->blocked_open) {
1436                 spin_unlock_irqrestore(&port->lock, flags);
1437                 if (port->close_delay)
1438                         msleep_interruptible(jiffies_to_msecs(port->close_delay));
1439                 spin_lock_irqsave(&port->lock, flags);
1440         } else if (!uart_console(uport)) {
1441                 spin_unlock_irqrestore(&port->lock, flags);
1442                 uart_change_pm(state, UART_PM_STATE_OFF);
1443                 spin_lock_irqsave(&port->lock, flags);
1444         }
1445
1446         /*
1447          * Wake up anyone trying to open this port.
1448          */
1449         clear_bit(ASYNCB_NORMAL_ACTIVE, &port->flags);
1450         clear_bit(ASYNCB_CLOSING, &port->flags);
1451         spin_unlock_irqrestore(&port->lock, flags);
1452         wake_up_interruptible(&port->open_wait);
1453         wake_up_interruptible(&port->close_wait);
1454
1455         mutex_unlock(&port->mutex);
1456
1457         tty_ldisc_flush(tty);
1458 }
1459
1460 static void uart_wait_until_sent(struct tty_struct *tty, int timeout)
1461 {
1462         struct uart_state *state = tty->driver_data;
1463         struct uart_port *port = state->uart_port;
1464         unsigned long char_time, expire;
1465
1466         if (port->type == PORT_UNKNOWN || port->fifosize == 0)
1467                 return;
1468
1469         /*
1470          * Set the check interval to be 1/5 of the estimated time to
1471          * send a single character, and make it at least 1.  The check
1472          * interval should also be less than the timeout.
1473          *
1474          * Note: we have to use pretty tight timings here to satisfy
1475          * the NIST-PCTS.
1476          */
1477         char_time = (port->timeout - HZ/50) / port->fifosize;
1478         char_time = char_time / 5;
1479         if (char_time == 0)
1480                 char_time = 1;
1481         if (timeout && timeout < char_time)
1482                 char_time = timeout;
1483
1484         /*
1485          * If the transmitter hasn't cleared in twice the approximate
1486          * amount of time to send the entire FIFO, it probably won't
1487          * ever clear.  This assumes the UART isn't doing flow
1488          * control, which is currently the case.  Hence, if it ever
1489          * takes longer than port->timeout, this is probably due to a
1490          * UART bug of some kind.  So, we clamp the timeout parameter at
1491          * 2*port->timeout.
1492          */
1493         if (timeout == 0 || timeout > 2 * port->timeout)
1494                 timeout = 2 * port->timeout;
1495
1496         expire = jiffies + timeout;
1497
1498         pr_debug("uart_wait_until_sent(%d), jiffies=%lu, expire=%lu...\n",
1499                 port->line, jiffies, expire);
1500
1501         /*
1502          * Check whether the transmitter is empty every 'char_time'.
1503          * 'timeout' / 'expire' give us the maximum amount of time
1504          * we wait.
1505          */
1506         while (!port->ops->tx_empty(port)) {
1507                 msleep_interruptible(jiffies_to_msecs(char_time));
1508                 if (signal_pending(current))
1509                         break;
1510                 if (time_after(jiffies, expire))
1511                         break;
1512         }
1513 }
1514
1515 /*
1516  * Calls to uart_hangup() are serialised by the tty_lock in
1517  *   drivers/tty/tty_io.c:do_tty_hangup()
1518  * This runs from a workqueue and can sleep for a _short_ time only.
1519  */
1520 static void uart_hangup(struct tty_struct *tty)
1521 {
1522         struct uart_state *state = tty->driver_data;
1523         struct tty_port *port = &state->port;
1524         unsigned long flags;
1525
1526         pr_debug("uart_hangup(%d)\n", state->uart_port->line);
1527
1528         mutex_lock(&port->mutex);
1529         if (port->flags & ASYNC_NORMAL_ACTIVE) {
1530                 uart_flush_buffer(tty);
1531                 uart_shutdown(tty, state);
1532                 spin_lock_irqsave(&port->lock, flags);
1533                 port->count = 0;
1534                 clear_bit(ASYNCB_NORMAL_ACTIVE, &port->flags);
1535                 spin_unlock_irqrestore(&port->lock, flags);
1536                 tty_port_tty_set(port, NULL);
1537                 if (!uart_console(state->uart_port))
1538                         uart_change_pm(state, UART_PM_STATE_OFF);
1539                 wake_up_interruptible(&port->open_wait);
1540                 wake_up_interruptible(&port->delta_msr_wait);
1541         }
1542         mutex_unlock(&port->mutex);
1543 }
1544
1545 static int uart_port_activate(struct tty_port *port, struct tty_struct *tty)
1546 {
1547         return 0;
1548 }
1549
1550 static void uart_port_shutdown(struct tty_port *port)
1551 {
1552         struct uart_state *state = container_of(port, struct uart_state, port);
1553         struct uart_port *uport = state->uart_port;
1554
1555         /*
1556          * clear delta_msr_wait queue to avoid mem leaks: we may free
1557          * the irq here so the queue might never be woken up.  Note
1558          * that we won't end up waiting on delta_msr_wait again since
1559          * any outstanding file descriptors should be pointing at
1560          * hung_up_tty_fops now.
1561          */
1562         wake_up_interruptible(&port->delta_msr_wait);
1563
1564         /*
1565          * Free the IRQ and disable the port.
1566          */
1567         uport->ops->shutdown(uport);
1568
1569         /*
1570          * Ensure that the IRQ handler isn't running on another CPU.
1571          */
1572         synchronize_irq(uport->irq);
1573 }
1574
1575 static int uart_carrier_raised(struct tty_port *port)
1576 {
1577         struct uart_state *state = container_of(port, struct uart_state, port);
1578         struct uart_port *uport = state->uart_port;
1579         int mctrl;
1580         spin_lock_irq(&uport->lock);
1581         uart_enable_ms(uport);
1582         mctrl = uport->ops->get_mctrl(uport);
1583         spin_unlock_irq(&uport->lock);
1584         if (mctrl & TIOCM_CAR)
1585                 return 1;
1586         return 0;
1587 }
1588
1589 static void uart_dtr_rts(struct tty_port *port, int onoff)
1590 {
1591         struct uart_state *state = container_of(port, struct uart_state, port);
1592         struct uart_port *uport = state->uart_port;
1593
1594         if (onoff)
1595                 uart_set_mctrl(uport, TIOCM_DTR | TIOCM_RTS);
1596         else
1597                 uart_clear_mctrl(uport, TIOCM_DTR | TIOCM_RTS);
1598 }
1599
1600 /*
1601  * Calls to uart_open are serialised by the tty_lock in
1602  *   drivers/tty/tty_io.c:tty_open()
1603  * Note that if this fails, then uart_close() _will_ be called.
1604  *
1605  * In time, we want to scrap the "opening nonpresent ports"
1606  * behaviour and implement an alternative way for setserial
1607  * to set base addresses/ports/types.  This will allow us to
1608  * get rid of a certain amount of extra tests.
1609  */
1610 static int uart_open(struct tty_struct *tty, struct file *filp)
1611 {
1612         struct uart_driver *drv = (struct uart_driver *)tty->driver->driver_state;
1613         int retval, line = tty->index;
1614         struct uart_state *state = drv->state + line;
1615         struct tty_port *port = &state->port;
1616
1617         pr_debug("uart_open(%d) called\n", line);
1618
1619         spin_lock_irq(&port->lock);
1620         ++port->count;
1621         spin_unlock_irq(&port->lock);
1622
1623         /*
1624          * We take the semaphore here to guarantee that we won't be re-entered
1625          * while allocating the state structure, or while we request any IRQs
1626          * that the driver may need.  This also has the nice side-effect that
1627          * it delays the action of uart_hangup, so we can guarantee that
1628          * state->port.tty will always contain something reasonable.
1629          */
1630         if (mutex_lock_interruptible(&port->mutex)) {
1631                 retval = -ERESTARTSYS;
1632                 goto end;
1633         }
1634
1635         if (!state->uart_port || state->uart_port->flags & UPF_DEAD) {
1636                 retval = -ENXIO;
1637                 goto err_unlock;
1638         }
1639
1640         tty->driver_data = state;
1641         state->uart_port->state = state;
1642         state->port.low_latency =
1643                 (state->uart_port->flags & UPF_LOW_LATENCY) ? 1 : 0;
1644         tty_port_tty_set(port, tty);
1645
1646         /*
1647          * Start up the serial port.
1648          */
1649         retval = uart_startup(tty, state, 0);
1650
1651         /*
1652          * If we succeeded, wait until the port is ready.
1653          */
1654         mutex_unlock(&port->mutex);
1655         if (retval == 0)
1656                 retval = tty_port_block_til_ready(port, tty, filp);
1657
1658 end:
1659         return retval;
1660 err_unlock:
1661         mutex_unlock(&port->mutex);
1662         goto end;
1663 }
1664
1665 static const char *uart_type(struct uart_port *port)
1666 {
1667         const char *str = NULL;
1668
1669         if (port->ops->type)
1670                 str = port->ops->type(port);
1671
1672         if (!str)
1673                 str = "unknown";
1674
1675         return str;
1676 }
1677
1678 #ifdef CONFIG_PROC_FS
1679
1680 static void uart_line_info(struct seq_file *m, struct uart_driver *drv, int i)
1681 {
1682         struct uart_state *state = drv->state + i;
1683         struct tty_port *port = &state->port;
1684         enum uart_pm_state pm_state;
1685         struct uart_port *uport = state->uart_port;
1686         char stat_buf[32];
1687         unsigned int status;
1688         int mmio;
1689
1690         if (!uport)
1691                 return;
1692
1693         mmio = uport->iotype >= UPIO_MEM;
1694         seq_printf(m, "%d: uart:%s %s%08llX irq:%d",
1695                         uport->line, uart_type(uport),
1696                         mmio ? "mmio:0x" : "port:",
1697                         mmio ? (unsigned long long)uport->mapbase
1698                              : (unsigned long long)uport->iobase,
1699                         uport->irq);
1700
1701         if (uport->type == PORT_UNKNOWN) {
1702                 seq_putc(m, '\n');
1703                 return;
1704         }
1705
1706         if (capable(CAP_SYS_ADMIN)) {
1707                 mutex_lock(&port->mutex);
1708                 pm_state = state->pm_state;
1709                 if (pm_state != UART_PM_STATE_ON)
1710                         uart_change_pm(state, UART_PM_STATE_ON);
1711                 spin_lock_irq(&uport->lock);
1712                 status = uport->ops->get_mctrl(uport);
1713                 spin_unlock_irq(&uport->lock);
1714                 if (pm_state != UART_PM_STATE_ON)
1715                         uart_change_pm(state, pm_state);
1716                 mutex_unlock(&port->mutex);
1717
1718                 seq_printf(m, " tx:%d rx:%d",
1719                                 uport->icount.tx, uport->icount.rx);
1720                 if (uport->icount.frame)
1721                         seq_printf(m, " fe:%d",
1722                                 uport->icount.frame);
1723                 if (uport->icount.parity)
1724                         seq_printf(m, " pe:%d",
1725                                 uport->icount.parity);
1726                 if (uport->icount.brk)
1727                         seq_printf(m, " brk:%d",
1728                                 uport->icount.brk);
1729                 if (uport->icount.overrun)
1730                         seq_printf(m, " oe:%d",
1731                                 uport->icount.overrun);
1732
1733 #define INFOBIT(bit, str) \
1734         if (uport->mctrl & (bit)) \
1735                 strncat(stat_buf, (str), sizeof(stat_buf) - \
1736                         strlen(stat_buf) - 2)
1737 #define STATBIT(bit, str) \
1738         if (status & (bit)) \
1739                 strncat(stat_buf, (str), sizeof(stat_buf) - \
1740                        strlen(stat_buf) - 2)
1741
1742                 stat_buf[0] = '\0';
1743                 stat_buf[1] = '\0';
1744                 INFOBIT(TIOCM_RTS, "|RTS");
1745                 STATBIT(TIOCM_CTS, "|CTS");
1746                 INFOBIT(TIOCM_DTR, "|DTR");
1747                 STATBIT(TIOCM_DSR, "|DSR");
1748                 STATBIT(TIOCM_CAR, "|CD");
1749                 STATBIT(TIOCM_RNG, "|RI");
1750                 if (stat_buf[0])
1751                         stat_buf[0] = ' ';
1752
1753                 seq_puts(m, stat_buf);
1754         }
1755         seq_putc(m, '\n');
1756 #undef STATBIT
1757 #undef INFOBIT
1758 }
1759
1760 static int uart_proc_show(struct seq_file *m, void *v)
1761 {
1762         struct tty_driver *ttydrv = m->private;
1763         struct uart_driver *drv = ttydrv->driver_state;
1764         int i;
1765
1766         seq_printf(m, "serinfo:1.0 driver%s%s revision:%s\n",
1767                         "", "", "");
1768         for (i = 0; i < drv->nr; i++)
1769                 uart_line_info(m, drv, i);
1770         return 0;
1771 }
1772
1773 static int uart_proc_open(struct inode *inode, struct file *file)
1774 {
1775         return single_open(file, uart_proc_show, PDE_DATA(inode));
1776 }
1777
1778 static const struct file_operations uart_proc_fops = {
1779         .owner          = THIS_MODULE,
1780         .open           = uart_proc_open,
1781         .read           = seq_read,
1782         .llseek         = seq_lseek,
1783         .release        = single_release,
1784 };
1785 #endif
1786
1787 #if defined(CONFIG_SERIAL_CORE_CONSOLE) || defined(CONFIG_CONSOLE_POLL)
1788 /*
1789  *      uart_console_write - write a console message to a serial port
1790  *      @port: the port to write the message
1791  *      @s: array of characters
1792  *      @count: number of characters in string to write
1793  *      @write: function to write character to port
1794  */
1795 void uart_console_write(struct uart_port *port, const char *s,
1796                         unsigned int count,
1797                         void (*putchar)(struct uart_port *, int))
1798 {
1799         unsigned int i;
1800
1801         for (i = 0; i < count; i++, s++) {
1802                 if (*s == '\n')
1803                         putchar(port, '\r');
1804                 putchar(port, *s);
1805         }
1806 }
1807 EXPORT_SYMBOL_GPL(uart_console_write);
1808
1809 /*
1810  *      Check whether an invalid uart number has been specified, and
1811  *      if so, search for the first available port that does have
1812  *      console support.
1813  */
1814 struct uart_port * __init
1815 uart_get_console(struct uart_port *ports, int nr, struct console *co)
1816 {
1817         int idx = co->index;
1818
1819         if (idx < 0 || idx >= nr || (ports[idx].iobase == 0 &&
1820                                      ports[idx].membase == NULL))
1821                 for (idx = 0; idx < nr; idx++)
1822                         if (ports[idx].iobase != 0 ||
1823                             ports[idx].membase != NULL)
1824                                 break;
1825
1826         co->index = idx;
1827
1828         return ports + idx;
1829 }
1830
1831 /**
1832  *      uart_parse_options - Parse serial port baud/parity/bits/flow control.
1833  *      @options: pointer to option string
1834  *      @baud: pointer to an 'int' variable for the baud rate.
1835  *      @parity: pointer to an 'int' variable for the parity.
1836  *      @bits: pointer to an 'int' variable for the number of data bits.
1837  *      @flow: pointer to an 'int' variable for the flow control character.
1838  *
1839  *      uart_parse_options decodes a string containing the serial console
1840  *      options.  The format of the string is <baud><parity><bits><flow>,
1841  *      eg: 115200n8r
1842  */
1843 void
1844 uart_parse_options(char *options, int *baud, int *parity, int *bits, int *flow)
1845 {
1846         char *s = options;
1847
1848         *baud = simple_strtoul(s, NULL, 10);
1849         while (*s >= '0' && *s <= '9')
1850                 s++;
1851         if (*s)
1852                 *parity = *s++;
1853         if (*s)
1854                 *bits = *s++ - '0';
1855         if (*s)
1856                 *flow = *s;
1857 }
1858 EXPORT_SYMBOL_GPL(uart_parse_options);
1859
1860 struct baud_rates {
1861         unsigned int rate;
1862         unsigned int cflag;
1863 };
1864
1865 static const struct baud_rates baud_rates[] = {
1866         { 921600, B921600 },
1867         { 460800, B460800 },
1868         { 230400, B230400 },
1869         { 115200, B115200 },
1870         {  57600, B57600  },
1871         {  38400, B38400  },
1872         {  19200, B19200  },
1873         {   9600, B9600   },
1874         {   4800, B4800   },
1875         {   2400, B2400   },
1876         {   1200, B1200   },
1877         {      0, B38400  }
1878 };
1879
1880 /**
1881  *      uart_set_options - setup the serial console parameters
1882  *      @port: pointer to the serial ports uart_port structure
1883  *      @co: console pointer
1884  *      @baud: baud rate
1885  *      @parity: parity character - 'n' (none), 'o' (odd), 'e' (even)
1886  *      @bits: number of data bits
1887  *      @flow: flow control character - 'r' (rts)
1888  */
1889 int
1890 uart_set_options(struct uart_port *port, struct console *co,
1891                  int baud, int parity, int bits, int flow)
1892 {
1893         struct ktermios termios;
1894         static struct ktermios dummy;
1895         int i;
1896
1897         /*
1898          * Ensure that the serial console lock is initialised
1899          * early.
1900          * If this port is a console, then the spinlock is already
1901          * initialised.
1902          */
1903         if (!(uart_console(port) && (port->cons->flags & CON_ENABLED))) {
1904                 spin_lock_init(&port->lock);
1905                 lockdep_set_class(&port->lock, &port_lock_key);
1906         }
1907
1908         memset(&termios, 0, sizeof(struct ktermios));
1909
1910         termios.c_cflag = CREAD | HUPCL | CLOCAL;
1911
1912         /*
1913          * Construct a cflag setting.
1914          */
1915         for (i = 0; baud_rates[i].rate; i++)
1916                 if (baud_rates[i].rate <= baud)
1917                         break;
1918
1919         termios.c_cflag |= baud_rates[i].cflag;
1920
1921         if (bits == 7)
1922                 termios.c_cflag |= CS7;
1923         else
1924                 termios.c_cflag |= CS8;
1925
1926         switch (parity) {
1927         case 'o': case 'O':
1928                 termios.c_cflag |= PARODD;
1929                 /*fall through*/
1930         case 'e': case 'E':
1931                 termios.c_cflag |= PARENB;
1932                 break;
1933         }
1934
1935         if (flow == 'r')
1936                 termios.c_cflag |= CRTSCTS;
1937
1938         /*
1939          * some uarts on other side don't support no flow control.
1940          * So we set * DTR in host uart to make them happy
1941          */
1942         port->mctrl |= TIOCM_DTR;
1943
1944         port->ops->set_termios(port, &termios, &dummy);
1945         /*
1946          * Allow the setting of the UART parameters with a NULL console
1947          * too:
1948          */
1949         if (co)
1950                 co->cflag = termios.c_cflag;
1951
1952         return 0;
1953 }
1954 EXPORT_SYMBOL_GPL(uart_set_options);
1955 #endif /* CONFIG_SERIAL_CORE_CONSOLE */
1956
1957 /**
1958  * uart_change_pm - set power state of the port
1959  *
1960  * @state: port descriptor
1961  * @pm_state: new state
1962  *
1963  * Locking: port->mutex has to be held
1964  */
1965 static void uart_change_pm(struct uart_state *state,
1966                            enum uart_pm_state pm_state)
1967 {
1968         struct uart_port *port = state->uart_port;
1969
1970         if (state->pm_state != pm_state) {
1971                 if (port->ops->pm)
1972                         port->ops->pm(port, pm_state, state->pm_state);
1973                 state->pm_state = pm_state;
1974         }
1975 }
1976
1977 struct uart_match {
1978         struct uart_port *port;
1979         struct uart_driver *driver;
1980 };
1981
1982 static int serial_match_port(struct device *dev, void *data)
1983 {
1984         struct uart_match *match = data;
1985         struct tty_driver *tty_drv = match->driver->tty_driver;
1986         dev_t devt = MKDEV(tty_drv->major, tty_drv->minor_start) +
1987                 match->port->line;
1988
1989         return dev->devt == devt; /* Actually, only one tty per port */
1990 }
1991
1992 int uart_suspend_port(struct uart_driver *drv, struct uart_port *uport)
1993 {
1994         struct uart_state *state = drv->state + uport->line;
1995         struct tty_port *port = &state->port;
1996         struct device *tty_dev;
1997         struct uart_match match = {uport, drv};
1998
1999         mutex_lock(&port->mutex);
2000
2001         tty_dev = device_find_child(uport->dev, &match, serial_match_port);
2002         if (device_may_wakeup(tty_dev)) {
2003                 if (!enable_irq_wake(uport->irq))
2004                         uport->irq_wake = 1;
2005                 put_device(tty_dev);
2006                 mutex_unlock(&port->mutex);
2007                 return 0;
2008         }
2009         put_device(tty_dev);
2010
2011         if (console_suspend_enabled || !uart_console(uport))
2012                 uport->suspended = 1;
2013
2014         if (port->flags & ASYNC_INITIALIZED) {
2015                 const struct uart_ops *ops = uport->ops;
2016                 int tries;
2017
2018                 if (console_suspend_enabled || !uart_console(uport)) {
2019                         set_bit(ASYNCB_SUSPENDED, &port->flags);
2020                         clear_bit(ASYNCB_INITIALIZED, &port->flags);
2021
2022                         spin_lock_irq(&uport->lock);
2023                         ops->stop_tx(uport);
2024                         ops->set_mctrl(uport, 0);
2025                         ops->stop_rx(uport);
2026                         spin_unlock_irq(&uport->lock);
2027                 }
2028
2029                 /*
2030                  * Wait for the transmitter to empty.
2031                  */
2032                 for (tries = 3; !ops->tx_empty(uport) && tries; tries--)
2033                         msleep(10);
2034                 if (!tries)
2035                         dev_err(uport->dev, "%s%d: Unable to drain transmitter\n",
2036                                 drv->dev_name,
2037                                 drv->tty_driver->name_base + uport->line);
2038
2039                 if (console_suspend_enabled || !uart_console(uport))
2040                         ops->shutdown(uport);
2041         }
2042
2043         /*
2044          * Disable the console device before suspending.
2045          */
2046         if (console_suspend_enabled && uart_console(uport))
2047                 console_stop(uport->cons);
2048
2049         if (console_suspend_enabled || !uart_console(uport))
2050                 uart_change_pm(state, UART_PM_STATE_OFF);
2051
2052         mutex_unlock(&port->mutex);
2053
2054         return 0;
2055 }
2056
2057 int uart_resume_port(struct uart_driver *drv, struct uart_port *uport)
2058 {
2059         struct uart_state *state = drv->state + uport->line;
2060         struct tty_port *port = &state->port;
2061         struct device *tty_dev;
2062         struct uart_match match = {uport, drv};
2063         struct ktermios termios;
2064
2065         mutex_lock(&port->mutex);
2066
2067         tty_dev = device_find_child(uport->dev, &match, serial_match_port);
2068         if (!uport->suspended && device_may_wakeup(tty_dev)) {
2069                 if (uport->irq_wake) {
2070                         disable_irq_wake(uport->irq);
2071                         uport->irq_wake = 0;
2072                 }
2073                 put_device(tty_dev);
2074                 mutex_unlock(&port->mutex);
2075                 return 0;
2076         }
2077         put_device(tty_dev);
2078         uport->suspended = 0;
2079
2080         /*
2081          * Re-enable the console device after suspending.
2082          */
2083         if (uart_console(uport)) {
2084                 /*
2085                  * First try to use the console cflag setting.
2086                  */
2087                 memset(&termios, 0, sizeof(struct ktermios));
2088                 termios.c_cflag = uport->cons->cflag;
2089
2090                 /*
2091                  * If that's unset, use the tty termios setting.
2092                  */
2093                 if (port->tty && termios.c_cflag == 0)
2094                         termios = port->tty->termios;
2095
2096                 if (console_suspend_enabled)
2097                         uart_change_pm(state, UART_PM_STATE_ON);
2098                 uport->ops->set_termios(uport, &termios, NULL);
2099                 if (console_suspend_enabled)
2100                         console_start(uport->cons);
2101         }
2102
2103         if (port->flags & ASYNC_SUSPENDED) {
2104                 const struct uart_ops *ops = uport->ops;
2105                 int ret;
2106
2107                 uart_change_pm(state, UART_PM_STATE_ON);
2108                 spin_lock_irq(&uport->lock);
2109                 ops->set_mctrl(uport, 0);
2110                 spin_unlock_irq(&uport->lock);
2111                 if (console_suspend_enabled || !uart_console(uport)) {
2112                         /* Protected by port mutex for now */
2113                         struct tty_struct *tty = port->tty;
2114                         ret = ops->startup(uport);
2115                         if (ret == 0) {
2116                                 if (tty)
2117                                         uart_change_speed(tty, state, NULL);
2118                                 spin_lock_irq(&uport->lock);
2119                                 ops->set_mctrl(uport, uport->mctrl);
2120                                 ops->start_tx(uport);
2121                                 spin_unlock_irq(&uport->lock);
2122                                 set_bit(ASYNCB_INITIALIZED, &port->flags);
2123                         } else {
2124                                 /*
2125                                  * Failed to resume - maybe hardware went away?
2126                                  * Clear the "initialized" flag so we won't try
2127                                  * to call the low level drivers shutdown method.
2128                                  */
2129                                 uart_shutdown(tty, state);
2130                         }
2131                 }
2132
2133                 clear_bit(ASYNCB_SUSPENDED, &port->flags);
2134         }
2135
2136         mutex_unlock(&port->mutex);
2137
2138         return 0;
2139 }
2140
2141 static inline void
2142 uart_report_port(struct uart_driver *drv, struct uart_port *port)
2143 {
2144         char address[64];
2145
2146         switch (port->iotype) {
2147         case UPIO_PORT:
2148                 snprintf(address, sizeof(address), "I/O 0x%lx", port->iobase);
2149                 break;
2150         case UPIO_HUB6:
2151                 snprintf(address, sizeof(address),
2152                          "I/O 0x%lx offset 0x%x", port->iobase, port->hub6);
2153                 break;
2154         case UPIO_MEM:
2155         case UPIO_MEM32:
2156         case UPIO_MEM32BE:
2157         case UPIO_AU:
2158         case UPIO_TSI:
2159                 snprintf(address, sizeof(address),
2160                          "MMIO 0x%llx", (unsigned long long)port->mapbase);
2161                 break;
2162         default:
2163                 strlcpy(address, "*unknown*", sizeof(address));
2164                 break;
2165         }
2166
2167         printk(KERN_INFO "%s%s%s%d at %s (irq = %d, base_baud = %d) is a %s\n",
2168                port->dev ? dev_name(port->dev) : "",
2169                port->dev ? ": " : "",
2170                drv->dev_name,
2171                drv->tty_driver->name_base + port->line,
2172                address, port->irq, port->uartclk / 16, uart_type(port));
2173 }
2174
2175 static void
2176 uart_configure_port(struct uart_driver *drv, struct uart_state *state,
2177                     struct uart_port *port)
2178 {
2179         unsigned int flags;
2180
2181         /*
2182          * If there isn't a port here, don't do anything further.
2183          */
2184         if (!port->iobase && !port->mapbase && !port->membase)
2185                 return;
2186
2187         /*
2188          * Now do the auto configuration stuff.  Note that config_port
2189          * is expected to claim the resources and map the port for us.
2190          */
2191         flags = 0;
2192         if (port->flags & UPF_AUTO_IRQ)
2193                 flags |= UART_CONFIG_IRQ;
2194         if (port->flags & UPF_BOOT_AUTOCONF) {
2195                 if (!(port->flags & UPF_FIXED_TYPE)) {
2196                         port->type = PORT_UNKNOWN;
2197                         flags |= UART_CONFIG_TYPE;
2198                 }
2199                 port->ops->config_port(port, flags);
2200         }
2201
2202         if (port->type != PORT_UNKNOWN) {
2203                 unsigned long flags;
2204
2205                 uart_report_port(drv, port);
2206
2207                 /* Power up port for set_mctrl() */
2208                 uart_change_pm(state, UART_PM_STATE_ON);
2209
2210                 /*
2211                  * Ensure that the modem control lines are de-activated.
2212                  * keep the DTR setting that is set in uart_set_options()
2213                  * We probably don't need a spinlock around this, but
2214                  */
2215                 spin_lock_irqsave(&port->lock, flags);
2216                 port->ops->set_mctrl(port, port->mctrl & TIOCM_DTR);
2217                 spin_unlock_irqrestore(&port->lock, flags);
2218
2219                 /*
2220                  * If this driver supports console, and it hasn't been
2221                  * successfully registered yet, try to re-register it.
2222                  * It may be that the port was not available.
2223                  */
2224                 if (port->cons && !(port->cons->flags & CON_ENABLED))
2225                         register_console(port->cons);
2226
2227                 /*
2228                  * Power down all ports by default, except the
2229                  * console if we have one.
2230                  */
2231                 if (!uart_console(port))
2232                         uart_change_pm(state, UART_PM_STATE_OFF);
2233         }
2234 }
2235
2236 #ifdef CONFIG_CONSOLE_POLL
2237
2238 static int uart_poll_init(struct tty_driver *driver, int line, char *options)
2239 {
2240         struct uart_driver *drv = driver->driver_state;
2241         struct uart_state *state = drv->state + line;
2242         struct uart_port *port;
2243         int baud = 9600;
2244         int bits = 8;
2245         int parity = 'n';
2246         int flow = 'n';
2247         int ret;
2248
2249         if (!state || !state->uart_port)
2250                 return -1;
2251
2252         port = state->uart_port;
2253         if (!(port->ops->poll_get_char && port->ops->poll_put_char))
2254                 return -1;
2255
2256         if (port->ops->poll_init) {
2257                 struct tty_port *tport = &state->port;
2258
2259                 ret = 0;
2260                 mutex_lock(&tport->mutex);
2261                 /*
2262                  * We don't set ASYNCB_INITIALIZED as we only initialized the
2263                  * hw, e.g. state->xmit is still uninitialized.
2264                  */
2265                 if (!test_bit(ASYNCB_INITIALIZED, &tport->flags))
2266                         ret = port->ops->poll_init(port);
2267                 mutex_unlock(&tport->mutex);
2268                 if (ret)
2269                         return ret;
2270         }
2271
2272         if (options) {
2273                 uart_parse_options(options, &baud, &parity, &bits, &flow);
2274                 return uart_set_options(port, NULL, baud, parity, bits, flow);
2275         }
2276
2277         return 0;
2278 }
2279
2280 static int uart_poll_get_char(struct tty_driver *driver, int line)
2281 {
2282         struct uart_driver *drv = driver->driver_state;
2283         struct uart_state *state = drv->state + line;
2284         struct uart_port *port;
2285
2286         if (!state || !state->uart_port)
2287                 return -1;
2288
2289         port = state->uart_port;
2290         return port->ops->poll_get_char(port);
2291 }
2292
2293 static void uart_poll_put_char(struct tty_driver *driver, int line, char ch)
2294 {
2295         struct uart_driver *drv = driver->driver_state;
2296         struct uart_state *state = drv->state + line;
2297         struct uart_port *port;
2298
2299         if (!state || !state->uart_port)
2300                 return;
2301
2302         port = state->uart_port;
2303
2304         if (ch == '\n')
2305                 port->ops->poll_put_char(port, '\r');
2306         port->ops->poll_put_char(port, ch);
2307 }
2308 #endif
2309
2310 static const struct tty_operations uart_ops = {
2311         .open           = uart_open,
2312         .close          = uart_close,
2313         .write          = uart_write,
2314         .put_char       = uart_put_char,
2315         .flush_chars    = uart_flush_chars,
2316         .write_room     = uart_write_room,
2317         .chars_in_buffer= uart_chars_in_buffer,
2318         .flush_buffer   = uart_flush_buffer,
2319         .ioctl          = uart_ioctl,
2320         .throttle       = uart_throttle,
2321         .unthrottle     = uart_unthrottle,
2322         .send_xchar     = uart_send_xchar,
2323         .set_termios    = uart_set_termios,
2324         .set_ldisc      = uart_set_ldisc,
2325         .stop           = uart_stop,
2326         .start          = uart_start,
2327         .hangup         = uart_hangup,
2328         .break_ctl      = uart_break_ctl,
2329         .wait_until_sent= uart_wait_until_sent,
2330 #ifdef CONFIG_PROC_FS
2331         .proc_fops      = &uart_proc_fops,
2332 #endif
2333         .tiocmget       = uart_tiocmget,
2334         .tiocmset       = uart_tiocmset,
2335         .get_icount     = uart_get_icount,
2336 #ifdef CONFIG_CONSOLE_POLL
2337         .poll_init      = uart_poll_init,
2338         .poll_get_char  = uart_poll_get_char,
2339         .poll_put_char  = uart_poll_put_char,
2340 #endif
2341 };
2342
2343 static const struct tty_port_operations uart_port_ops = {
2344         .activate       = uart_port_activate,
2345         .shutdown       = uart_port_shutdown,
2346         .carrier_raised = uart_carrier_raised,
2347         .dtr_rts        = uart_dtr_rts,
2348 };
2349
2350 /**
2351  *      uart_register_driver - register a driver with the uart core layer
2352  *      @drv: low level driver structure
2353  *
2354  *      Register a uart driver with the core driver.  We in turn register
2355  *      with the tty layer, and initialise the core driver per-port state.
2356  *
2357  *      We have a proc file in /proc/tty/driver which is named after the
2358  *      normal driver.
2359  *
2360  *      drv->port should be NULL, and the per-port structures should be
2361  *      registered using uart_add_one_port after this call has succeeded.
2362  */
2363 int uart_register_driver(struct uart_driver *drv)
2364 {
2365         struct tty_driver *normal;
2366         int i, retval;
2367
2368         BUG_ON(drv->state);
2369
2370         /*
2371          * Maybe we should be using a slab cache for this, especially if
2372          * we have a large number of ports to handle.
2373          */
2374         drv->state = kzalloc(sizeof(struct uart_state) * drv->nr, GFP_KERNEL);
2375         if (!drv->state)
2376                 goto out;
2377
2378         normal = alloc_tty_driver(drv->nr);
2379         if (!normal)
2380                 goto out_kfree;
2381
2382         drv->tty_driver = normal;
2383
2384         normal->driver_name     = drv->driver_name;
2385         normal->name            = drv->dev_name;
2386         normal->major           = drv->major;
2387         normal->minor_start     = drv->minor;
2388         normal->type            = TTY_DRIVER_TYPE_SERIAL;
2389         normal->subtype         = SERIAL_TYPE_NORMAL;
2390         normal->init_termios    = tty_std_termios;
2391         normal->init_termios.c_cflag = B9600 | CS8 | CREAD | HUPCL | CLOCAL;
2392         normal->init_termios.c_ispeed = normal->init_termios.c_ospeed = 9600;
2393         normal->flags           = TTY_DRIVER_REAL_RAW | TTY_DRIVER_DYNAMIC_DEV;
2394         normal->driver_state    = drv;
2395         tty_set_operations(normal, &uart_ops);
2396
2397         /*
2398          * Initialise the UART state(s).
2399          */
2400         for (i = 0; i < drv->nr; i++) {
2401                 struct uart_state *state = drv->state + i;
2402                 struct tty_port *port = &state->port;
2403
2404                 tty_port_init(port);
2405                 port->ops = &uart_port_ops;
2406         }
2407
2408         retval = tty_register_driver(normal);
2409         if (retval >= 0)
2410                 return retval;
2411
2412         for (i = 0; i < drv->nr; i++)
2413                 tty_port_destroy(&drv->state[i].port);
2414         put_tty_driver(normal);
2415 out_kfree:
2416         kfree(drv->state);
2417 out:
2418         return -ENOMEM;
2419 }
2420
2421 /**
2422  *      uart_unregister_driver - remove a driver from the uart core layer
2423  *      @drv: low level driver structure
2424  *
2425  *      Remove all references to a driver from the core driver.  The low
2426  *      level driver must have removed all its ports via the
2427  *      uart_remove_one_port() if it registered them with uart_add_one_port().
2428  *      (ie, drv->port == NULL)
2429  */
2430 void uart_unregister_driver(struct uart_driver *drv)
2431 {
2432         struct tty_driver *p = drv->tty_driver;
2433         unsigned int i;
2434
2435         tty_unregister_driver(p);
2436         put_tty_driver(p);
2437         for (i = 0; i < drv->nr; i++)
2438                 tty_port_destroy(&drv->state[i].port);
2439         kfree(drv->state);
2440         drv->state = NULL;
2441         drv->tty_driver = NULL;
2442 }
2443
2444 struct tty_driver *uart_console_device(struct console *co, int *index)
2445 {
2446         struct uart_driver *p = co->data;
2447         *index = co->index;
2448         return p->tty_driver;
2449 }
2450
2451 static ssize_t uart_get_attr_uartclk(struct device *dev,
2452         struct device_attribute *attr, char *buf)
2453 {
2454         struct serial_struct tmp;
2455         struct tty_port *port = dev_get_drvdata(dev);
2456
2457         uart_get_info(port, &tmp);
2458         return snprintf(buf, PAGE_SIZE, "%d\n", tmp.baud_base * 16);
2459 }
2460
2461 static ssize_t uart_get_attr_type(struct device *dev,
2462         struct device_attribute *attr, char *buf)
2463 {
2464         struct serial_struct tmp;
2465         struct tty_port *port = dev_get_drvdata(dev);
2466
2467         uart_get_info(port, &tmp);
2468         return snprintf(buf, PAGE_SIZE, "%d\n", tmp.type);
2469 }
2470 static ssize_t uart_get_attr_line(struct device *dev,
2471         struct device_attribute *attr, char *buf)
2472 {
2473         struct serial_struct tmp;
2474         struct tty_port *port = dev_get_drvdata(dev);
2475
2476         uart_get_info(port, &tmp);
2477         return snprintf(buf, PAGE_SIZE, "%d\n", tmp.line);
2478 }
2479
2480 static ssize_t uart_get_attr_port(struct device *dev,
2481         struct device_attribute *attr, char *buf)
2482 {
2483         struct serial_struct tmp;
2484         struct tty_port *port = dev_get_drvdata(dev);
2485         unsigned long ioaddr;
2486
2487         uart_get_info(port, &tmp);
2488         ioaddr = tmp.port;
2489         if (HIGH_BITS_OFFSET)
2490                 ioaddr |= (unsigned long)tmp.port_high << HIGH_BITS_OFFSET;
2491         return snprintf(buf, PAGE_SIZE, "0x%lX\n", ioaddr);
2492 }
2493
2494 static ssize_t uart_get_attr_irq(struct device *dev,
2495         struct device_attribute *attr, char *buf)
2496 {
2497         struct serial_struct tmp;
2498         struct tty_port *port = dev_get_drvdata(dev);
2499
2500         uart_get_info(port, &tmp);
2501         return snprintf(buf, PAGE_SIZE, "%d\n", tmp.irq);
2502 }
2503
2504 static ssize_t uart_get_attr_flags(struct device *dev,
2505         struct device_attribute *attr, char *buf)
2506 {
2507         struct serial_struct tmp;
2508         struct tty_port *port = dev_get_drvdata(dev);
2509
2510         uart_get_info(port, &tmp);
2511         return snprintf(buf, PAGE_SIZE, "0x%X\n", tmp.flags);
2512 }
2513
2514 static ssize_t uart_get_attr_xmit_fifo_size(struct device *dev,
2515         struct device_attribute *attr, char *buf)
2516 {
2517         struct serial_struct tmp;
2518         struct tty_port *port = dev_get_drvdata(dev);
2519
2520         uart_get_info(port, &tmp);
2521         return snprintf(buf, PAGE_SIZE, "%d\n", tmp.xmit_fifo_size);
2522 }
2523
2524
2525 static ssize_t uart_get_attr_close_delay(struct device *dev,
2526         struct device_attribute *attr, char *buf)
2527 {
2528         struct serial_struct tmp;
2529         struct tty_port *port = dev_get_drvdata(dev);
2530
2531         uart_get_info(port, &tmp);
2532         return snprintf(buf, PAGE_SIZE, "%d\n", tmp.close_delay);
2533 }
2534
2535
2536 static ssize_t uart_get_attr_closing_wait(struct device *dev,
2537         struct device_attribute *attr, char *buf)
2538 {
2539         struct serial_struct tmp;
2540         struct tty_port *port = dev_get_drvdata(dev);
2541
2542         uart_get_info(port, &tmp);
2543         return snprintf(buf, PAGE_SIZE, "%d\n", tmp.closing_wait);
2544 }
2545
2546 static ssize_t uart_get_attr_custom_divisor(struct device *dev,
2547         struct device_attribute *attr, char *buf)
2548 {
2549         struct serial_struct tmp;
2550         struct tty_port *port = dev_get_drvdata(dev);
2551
2552         uart_get_info(port, &tmp);
2553         return snprintf(buf, PAGE_SIZE, "%d\n", tmp.custom_divisor);
2554 }
2555
2556 static ssize_t uart_get_attr_io_type(struct device *dev,
2557         struct device_attribute *attr, char *buf)
2558 {
2559         struct serial_struct tmp;
2560         struct tty_port *port = dev_get_drvdata(dev);
2561
2562         uart_get_info(port, &tmp);
2563         return snprintf(buf, PAGE_SIZE, "%d\n", tmp.io_type);
2564 }
2565
2566 static ssize_t uart_get_attr_iomem_base(struct device *dev,
2567         struct device_attribute *attr, char *buf)
2568 {
2569         struct serial_struct tmp;
2570         struct tty_port *port = dev_get_drvdata(dev);
2571
2572         uart_get_info(port, &tmp);
2573         return snprintf(buf, PAGE_SIZE, "0x%lX\n", (unsigned long)tmp.iomem_base);
2574 }
2575
2576 static ssize_t uart_get_attr_iomem_reg_shift(struct device *dev,
2577         struct device_attribute *attr, char *buf)
2578 {
2579         struct serial_struct tmp;
2580         struct tty_port *port = dev_get_drvdata(dev);
2581
2582         uart_get_info(port, &tmp);
2583         return snprintf(buf, PAGE_SIZE, "%d\n", tmp.iomem_reg_shift);
2584 }
2585
2586 static DEVICE_ATTR(type, S_IRUSR | S_IRGRP, uart_get_attr_type, NULL);
2587 static DEVICE_ATTR(line, S_IRUSR | S_IRGRP, uart_get_attr_line, NULL);
2588 static DEVICE_ATTR(port, S_IRUSR | S_IRGRP, uart_get_attr_port, NULL);
2589 static DEVICE_ATTR(irq, S_IRUSR | S_IRGRP, uart_get_attr_irq, NULL);
2590 static DEVICE_ATTR(flags, S_IRUSR | S_IRGRP, uart_get_attr_flags, NULL);
2591 static DEVICE_ATTR(xmit_fifo_size, S_IRUSR | S_IRGRP, uart_get_attr_xmit_fifo_size, NULL);
2592 static DEVICE_ATTR(uartclk, S_IRUSR | S_IRGRP, uart_get_attr_uartclk, NULL);
2593 static DEVICE_ATTR(close_delay, S_IRUSR | S_IRGRP, uart_get_attr_close_delay, NULL);
2594 static DEVICE_ATTR(closing_wait, S_IRUSR | S_IRGRP, uart_get_attr_closing_wait, NULL);
2595 static DEVICE_ATTR(custom_divisor, S_IRUSR | S_IRGRP, uart_get_attr_custom_divisor, NULL);
2596 static DEVICE_ATTR(io_type, S_IRUSR | S_IRGRP, uart_get_attr_io_type, NULL);
2597 static DEVICE_ATTR(iomem_base, S_IRUSR | S_IRGRP, uart_get_attr_iomem_base, NULL);
2598 static DEVICE_ATTR(iomem_reg_shift, S_IRUSR | S_IRGRP, uart_get_attr_iomem_reg_shift, NULL);
2599
2600 static struct attribute *tty_dev_attrs[] = {
2601         &dev_attr_type.attr,
2602         &dev_attr_line.attr,
2603         &dev_attr_port.attr,
2604         &dev_attr_irq.attr,
2605         &dev_attr_flags.attr,
2606         &dev_attr_xmit_fifo_size.attr,
2607         &dev_attr_uartclk.attr,
2608         &dev_attr_close_delay.attr,
2609         &dev_attr_closing_wait.attr,
2610         &dev_attr_custom_divisor.attr,
2611         &dev_attr_io_type.attr,
2612         &dev_attr_iomem_base.attr,
2613         &dev_attr_iomem_reg_shift.attr,
2614         NULL,
2615         };
2616
2617 static const struct attribute_group tty_dev_attr_group = {
2618         .attrs = tty_dev_attrs,
2619         };
2620
2621 /**
2622  *      uart_add_one_port - attach a driver-defined port structure
2623  *      @drv: pointer to the uart low level driver structure for this port
2624  *      @uport: uart port structure to use for this port.
2625  *
2626  *      This allows the driver to register its own uart_port structure
2627  *      with the core driver.  The main purpose is to allow the low
2628  *      level uart drivers to expand uart_port, rather than having yet
2629  *      more levels of structures.
2630  */
2631 int uart_add_one_port(struct uart_driver *drv, struct uart_port *uport)
2632 {
2633         struct uart_state *state;
2634         struct tty_port *port;
2635         int ret = 0;
2636         struct device *tty_dev;
2637         int num_groups;
2638
2639         BUG_ON(in_interrupt());
2640
2641         if (uport->line >= drv->nr)
2642                 return -EINVAL;
2643
2644         state = drv->state + uport->line;
2645         port = &state->port;
2646
2647         mutex_lock(&port_mutex);
2648         mutex_lock(&port->mutex);
2649         if (state->uart_port) {
2650                 ret = -EINVAL;
2651                 goto out;
2652         }
2653
2654         /* Link the port to the driver state table and vice versa */
2655         state->uart_port = uport;
2656         uport->state = state;
2657
2658         state->pm_state = UART_PM_STATE_UNDEFINED;
2659         uport->cons = drv->cons;
2660
2661         /*
2662          * If this port is a console, then the spinlock is already
2663          * initialised.
2664          */
2665         if (!(uart_console(uport) && (uport->cons->flags & CON_ENABLED))) {
2666                 spin_lock_init(&uport->lock);
2667                 lockdep_set_class(&uport->lock, &port_lock_key);
2668         }
2669         if (uport->cons && uport->dev)
2670                 of_console_check(uport->dev->of_node, uport->cons->name, uport->line);
2671
2672         uart_configure_port(drv, state, uport);
2673
2674         num_groups = 2;
2675         if (uport->attr_group)
2676                 num_groups++;
2677
2678         uport->tty_groups = kcalloc(num_groups, sizeof(*uport->tty_groups),
2679                                     GFP_KERNEL);
2680         if (!uport->tty_groups) {
2681                 ret = -ENOMEM;
2682                 goto out;
2683         }
2684         uport->tty_groups[0] = &tty_dev_attr_group;
2685         if (uport->attr_group)
2686                 uport->tty_groups[1] = uport->attr_group;
2687
2688         /*
2689          * Register the port whether it's detected or not.  This allows
2690          * setserial to be used to alter this port's parameters.
2691          */
2692         tty_dev = tty_port_register_device_attr(port, drv->tty_driver,
2693                         uport->line, uport->dev, port, uport->tty_groups);
2694         if (likely(!IS_ERR(tty_dev))) {
2695                 device_set_wakeup_capable(tty_dev, 1);
2696         } else {
2697                 dev_err(uport->dev, "Cannot register tty device on line %d\n",
2698                        uport->line);
2699         }
2700
2701         /*
2702          * Ensure UPF_DEAD is not set.
2703          */
2704         uport->flags &= ~UPF_DEAD;
2705
2706  out:
2707         mutex_unlock(&port->mutex);
2708         mutex_unlock(&port_mutex);
2709
2710         return ret;
2711 }
2712
2713 /**
2714  *      uart_remove_one_port - detach a driver defined port structure
2715  *      @drv: pointer to the uart low level driver structure for this port
2716  *      @uport: uart port structure for this port
2717  *
2718  *      This unhooks (and hangs up) the specified port structure from the
2719  *      core driver.  No further calls will be made to the low-level code
2720  *      for this port.
2721  */
2722 int uart_remove_one_port(struct uart_driver *drv, struct uart_port *uport)
2723 {
2724         struct uart_state *state = drv->state + uport->line;
2725         struct tty_port *port = &state->port;
2726         struct tty_struct *tty;
2727         int ret = 0;
2728
2729         BUG_ON(in_interrupt());
2730
2731         if (state->uart_port != uport)
2732                 dev_alert(uport->dev, "Removing wrong port: %p != %p\n",
2733                         state->uart_port, uport);
2734
2735         mutex_lock(&port_mutex);
2736
2737         /*
2738          * Mark the port "dead" - this prevents any opens from
2739          * succeeding while we shut down the port.
2740          */
2741         mutex_lock(&port->mutex);
2742         if (!state->uart_port) {
2743                 mutex_unlock(&port->mutex);
2744                 ret = -EINVAL;
2745                 goto out;
2746         }
2747         uport->flags |= UPF_DEAD;
2748         mutex_unlock(&port->mutex);
2749
2750         /*
2751          * Remove the devices from the tty layer
2752          */
2753         tty_unregister_device(drv->tty_driver, uport->line);
2754
2755         tty = tty_port_tty_get(port);
2756         if (tty) {
2757                 tty_vhangup(port->tty);
2758                 tty_kref_put(tty);
2759         }
2760
2761         /*
2762          * If the port is used as a console, unregister it
2763          */
2764         if (uart_console(uport))
2765                 unregister_console(uport->cons);
2766
2767         /*
2768          * Free the port IO and memory resources, if any.
2769          */
2770         if (uport->type != PORT_UNKNOWN)
2771                 uport->ops->release_port(uport);
2772         kfree(uport->tty_groups);
2773
2774         /*
2775          * Indicate that there isn't a port here anymore.
2776          */
2777         uport->type = PORT_UNKNOWN;
2778
2779         state->uart_port = NULL;
2780 out:
2781         mutex_unlock(&port_mutex);
2782
2783         return ret;
2784 }
2785
2786 /*
2787  *      Are the two ports equivalent?
2788  */
2789 int uart_match_port(struct uart_port *port1, struct uart_port *port2)
2790 {
2791         if (port1->iotype != port2->iotype)
2792                 return 0;
2793
2794         switch (port1->iotype) {
2795         case UPIO_PORT:
2796                 return (port1->iobase == port2->iobase);
2797         case UPIO_HUB6:
2798                 return (port1->iobase == port2->iobase) &&
2799                        (port1->hub6   == port2->hub6);
2800         case UPIO_MEM:
2801         case UPIO_MEM32:
2802         case UPIO_MEM32BE:
2803         case UPIO_AU:
2804         case UPIO_TSI:
2805                 return (port1->mapbase == port2->mapbase);
2806         }
2807         return 0;
2808 }
2809 EXPORT_SYMBOL(uart_match_port);
2810
2811 /**
2812  *      uart_handle_dcd_change - handle a change of carrier detect state
2813  *      @uport: uart_port structure for the open port
2814  *      @status: new carrier detect status, nonzero if active
2815  *
2816  *      Caller must hold uport->lock
2817  */
2818 void uart_handle_dcd_change(struct uart_port *uport, unsigned int status)
2819 {
2820         struct tty_port *port = &uport->state->port;
2821         struct tty_struct *tty = port->tty;
2822         struct tty_ldisc *ld;
2823
2824         lockdep_assert_held_once(&uport->lock);
2825
2826         if (tty) {
2827                 ld = tty_ldisc_ref(tty);
2828                 if (ld) {
2829                         if (ld->ops->dcd_change)
2830                                 ld->ops->dcd_change(tty, status);
2831                         tty_ldisc_deref(ld);
2832                 }
2833         }
2834
2835         uport->icount.dcd++;
2836
2837         if (uart_dcd_enabled(uport)) {
2838                 if (status)
2839                         wake_up_interruptible(&port->open_wait);
2840                 else if (tty)
2841                         tty_hangup(tty);
2842         }
2843 }
2844 EXPORT_SYMBOL_GPL(uart_handle_dcd_change);
2845
2846 /**
2847  *      uart_handle_cts_change - handle a change of clear-to-send state
2848  *      @uport: uart_port structure for the open port
2849  *      @status: new clear to send status, nonzero if active
2850  *
2851  *      Caller must hold uport->lock
2852  */
2853 void uart_handle_cts_change(struct uart_port *uport, unsigned int status)
2854 {
2855         lockdep_assert_held_once(&uport->lock);
2856
2857         uport->icount.cts++;
2858
2859         if (uart_cts_enabled(uport)) {
2860                 if (uport->hw_stopped) {
2861                         if (status) {
2862                                 uport->hw_stopped = 0;
2863                                 uport->ops->start_tx(uport);
2864                                 uart_write_wakeup(uport);
2865                         }
2866                 } else {
2867                         if (!status) {
2868                                 uport->hw_stopped = 1;
2869                                 uport->ops->stop_tx(uport);
2870                         }
2871                 }
2872         }
2873 }
2874 EXPORT_SYMBOL_GPL(uart_handle_cts_change);
2875
2876 /**
2877  * uart_insert_char - push a char to the uart layer
2878  *
2879  * User is responsible to call tty_flip_buffer_push when they are done with
2880  * insertion.
2881  *
2882  * @port: corresponding port
2883  * @status: state of the serial port RX buffer (LSR for 8250)
2884  * @overrun: mask of overrun bits in @status
2885  * @ch: character to push
2886  * @flag: flag for the character (see TTY_NORMAL and friends)
2887  */
2888 void uart_insert_char(struct uart_port *port, unsigned int status,
2889                  unsigned int overrun, unsigned int ch, unsigned int flag)
2890 {
2891         struct tty_port *tport = &port->state->port;
2892
2893         if ((status & port->ignore_status_mask & ~overrun) == 0)
2894                 if (tty_insert_flip_char(tport, ch, flag) == 0)
2895                         ++port->icount.buf_overrun;
2896
2897         /*
2898          * Overrun is special.  Since it's reported immediately,
2899          * it doesn't affect the current character.
2900          */
2901         if (status & ~port->ignore_status_mask & overrun)
2902                 if (tty_insert_flip_char(tport, 0, TTY_OVERRUN) == 0)
2903                         ++port->icount.buf_overrun;
2904 }
2905 EXPORT_SYMBOL_GPL(uart_insert_char);
2906
2907 EXPORT_SYMBOL(uart_write_wakeup);
2908 EXPORT_SYMBOL(uart_register_driver);
2909 EXPORT_SYMBOL(uart_unregister_driver);
2910 EXPORT_SYMBOL(uart_suspend_port);
2911 EXPORT_SYMBOL(uart_resume_port);
2912 EXPORT_SYMBOL(uart_add_one_port);
2913 EXPORT_SYMBOL(uart_remove_one_port);
2914
2915 MODULE_DESCRIPTION("Serial driver core");
2916 MODULE_LICENSE("GPL");