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[net-next-2.6.git] / drivers / staging / lirc / lirc_sir.c
1 /*
2  * LIRC SIR driver, (C) 2000 Milan Pikula <www@fornax.sk>
3  *
4  * lirc_sir - Device driver for use with SIR (serial infra red)
5  * mode of IrDA on many notebooks.
6  *
7  *  This program is free software; you can redistribute it and/or modify
8  *  it under the terms of the GNU General Public License as published by
9  *  the Free Software Foundation; either version 2 of the License, or
10  *  (at your option) any later version.
11  *
12  *  This program is distributed in the hope that it will be useful,
13  *  but WITHOUT ANY WARRANTY; without even the implied warranty of
14  *  MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE.  See the
15  *  GNU General Public License for more details.
16  *
17  *  You should have received a copy of the GNU General Public License
18  *  along with this program; if not, write to the Free Software
19  *  Foundation, Inc., 59 Temple Place, Suite 330, Boston, MA  02111-1307  USA
20  *
21  *
22  * 2000/09/16 Frank Przybylski <mail@frankprzybylski.de> :
23  *  added timeout and relaxed pulse detection, removed gap bug
24  *
25  * 2000/12/15 Christoph Bartelmus <lirc@bartelmus.de> :
26  *   added support for Tekram Irmate 210 (sending does not work yet,
27  *   kind of disappointing that nobody was able to implement that
28  *   before),
29  *   major clean-up
30  *
31  * 2001/02/27 Christoph Bartelmus <lirc@bartelmus.de> :
32  *   added support for StrongARM SA1100 embedded microprocessor
33  *   parts cut'n'pasted from sa1100_ir.c (C) 2000 Russell King
34  */
35
36 #include <linux/module.h>
37 #include <linux/sched.h>
38 #include <linux/errno.h>
39 #include <linux/signal.h>
40 #include <linux/fs.h>
41 #include <linux/interrupt.h>
42 #include <linux/ioport.h>
43 #include <linux/kernel.h>
44 #include <linux/serial_reg.h>
45 #include <linux/time.h>
46 #include <linux/string.h>
47 #include <linux/types.h>
48 #include <linux/wait.h>
49 #include <linux/mm.h>
50 #include <linux/delay.h>
51 #include <linux/poll.h>
52 #include <asm/system.h>
53 #include <linux/io.h>
54 #include <asm/irq.h>
55 #include <linux/fcntl.h>
56 #ifdef LIRC_ON_SA1100
57 #include <asm/hardware.h>
58 #ifdef CONFIG_SA1100_COLLIE
59 #include <asm/arch/tc35143.h>
60 #include <asm/ucb1200.h>
61 #endif
62 #endif
63
64 #include <linux/timer.h>
65
66 #include <media/lirc.h>
67 #include <media/lirc_dev.h>
68
69 /* SECTION: Definitions */
70
71 /*** Tekram dongle ***/
72 #ifdef LIRC_SIR_TEKRAM
73 /* stolen from kernel source */
74 /* definitions for Tekram dongle */
75 #define TEKRAM_115200 0x00
76 #define TEKRAM_57600  0x01
77 #define TEKRAM_38400  0x02
78 #define TEKRAM_19200  0x03
79 #define TEKRAM_9600   0x04
80 #define TEKRAM_2400   0x08
81
82 #define TEKRAM_PW 0x10 /* Pulse select bit */
83
84 /* 10bit * 1s/115200bit in milliseconds = 87ms*/
85 #define TIME_CONST (10000000ul/115200ul)
86
87 #endif
88
89 #ifdef LIRC_SIR_ACTISYS_ACT200L
90 static void init_act200(void);
91 #elif defined(LIRC_SIR_ACTISYS_ACT220L)
92 static void init_act220(void);
93 #endif
94
95 /*** SA1100 ***/
96 #ifdef LIRC_ON_SA1100
97 struct sa1100_ser2_registers {
98         /* HSSP control register */
99         unsigned char hscr0;
100         /* UART registers */
101         unsigned char utcr0;
102         unsigned char utcr1;
103         unsigned char utcr2;
104         unsigned char utcr3;
105         unsigned char utcr4;
106         unsigned char utdr;
107         unsigned char utsr0;
108         unsigned char utsr1;
109 } sr;
110
111 static int irq = IRQ_Ser2ICP;
112
113 #define LIRC_ON_SA1100_TRANSMITTER_LATENCY 0
114
115 /* pulse/space ratio of 50/50 */
116 static unsigned long pulse_width = (13-LIRC_ON_SA1100_TRANSMITTER_LATENCY);
117 /* 1000000/freq-pulse_width */
118 static unsigned long space_width = (13-LIRC_ON_SA1100_TRANSMITTER_LATENCY);
119 static unsigned int freq = 38000;      /* modulation frequency */
120 static unsigned int duty_cycle = 50;   /* duty cycle of 50% */
121
122 #endif
123
124 #define RBUF_LEN 1024
125 #define WBUF_LEN 1024
126
127 #define LIRC_DRIVER_NAME "lirc_sir"
128
129 #define PULSE '['
130
131 #ifndef LIRC_SIR_TEKRAM
132 /* 9bit * 1s/115200bit in milli seconds = 78.125ms*/
133 #define TIME_CONST (9000000ul/115200ul)
134 #endif
135
136
137 /* timeout for sequences in jiffies (=5/100s), must be longer than TIME_CONST */
138 #define SIR_TIMEOUT     (HZ*5/100)
139
140 #ifndef LIRC_ON_SA1100
141 #ifndef LIRC_IRQ
142 #define LIRC_IRQ 4
143 #endif
144 #ifndef LIRC_PORT
145 /* for external dongles, default to com1 */
146 #if defined(LIRC_SIR_ACTISYS_ACT200L) || \
147     defined(LIRC_SIR_ACTISYS_ACT220L) || \
148     defined(LIRC_SIR_TEKRAM)
149 #define LIRC_PORT 0x3f8
150 #else
151 /* onboard sir ports are typically com3 */
152 #define LIRC_PORT 0x3e8
153 #endif
154 #endif
155
156 static int io = LIRC_PORT;
157 static int irq = LIRC_IRQ;
158 static int threshold = 3;
159 #endif
160
161 static DEFINE_SPINLOCK(timer_lock);
162 static struct timer_list timerlist;
163 /* time of last signal change detected */
164 static struct timeval last_tv = {0, 0};
165 /* time of last UART data ready interrupt */
166 static struct timeval last_intr_tv = {0, 0};
167 static int last_value;
168
169 static DECLARE_WAIT_QUEUE_HEAD(lirc_read_queue);
170
171 static DEFINE_SPINLOCK(hardware_lock);
172
173 static int rx_buf[RBUF_LEN];
174 static unsigned int rx_tail, rx_head;
175
176 static int debug;
177 #define dprintk(fmt, args...)                                           \
178         do {                                                            \
179                 if (debug)                                              \
180                         printk(KERN_DEBUG LIRC_DRIVER_NAME ": "         \
181                                 fmt, ## args);                          \
182         } while (0)
183
184 /* SECTION: Prototypes */
185
186 /* Communication with user-space */
187 static unsigned int lirc_poll(struct file *file, poll_table *wait);
188 static ssize_t lirc_read(struct file *file, char *buf, size_t count,
189                 loff_t *ppos);
190 static ssize_t lirc_write(struct file *file, const char *buf, size_t n,
191                 loff_t *pos);
192 static long lirc_ioctl(struct file *filep, unsigned int cmd, unsigned long arg);
193 static void add_read_queue(int flag, unsigned long val);
194 static int init_chrdev(void);
195 static void drop_chrdev(void);
196 /* Hardware */
197 static irqreturn_t sir_interrupt(int irq, void *dev_id);
198 static void send_space(unsigned long len);
199 static void send_pulse(unsigned long len);
200 static int init_hardware(void);
201 static void drop_hardware(void);
202 /* Initialisation */
203 static int init_port(void);
204 static void drop_port(void);
205
206 #ifdef LIRC_ON_SA1100
207 static void on(void)
208 {
209         PPSR |= PPC_TXD2;
210 }
211
212 static void off(void)
213 {
214         PPSR &= ~PPC_TXD2;
215 }
216 #else
217 static inline unsigned int sinp(int offset)
218 {
219         return inb(io + offset);
220 }
221
222 static inline void soutp(int offset, int value)
223 {
224         outb(value, io + offset);
225 }
226 #endif
227
228 #ifndef MAX_UDELAY_MS
229 #define MAX_UDELAY_US 5000
230 #else
231 #define MAX_UDELAY_US (MAX_UDELAY_MS*1000)
232 #endif
233
234 static void safe_udelay(unsigned long usecs)
235 {
236         while (usecs > MAX_UDELAY_US) {
237                 udelay(MAX_UDELAY_US);
238                 usecs -= MAX_UDELAY_US;
239         }
240         udelay(usecs);
241 }
242
243 /* SECTION: Communication with user-space */
244
245 static unsigned int lirc_poll(struct file *file, poll_table *wait)
246 {
247         poll_wait(file, &lirc_read_queue, wait);
248         if (rx_head != rx_tail)
249                 return POLLIN | POLLRDNORM;
250         return 0;
251 }
252
253 static ssize_t lirc_read(struct file *file, char *buf, size_t count,
254                 loff_t *ppos)
255 {
256         int n = 0;
257         int retval = 0;
258         DECLARE_WAITQUEUE(wait, current);
259
260         if (count % sizeof(int))
261                 return -EINVAL;
262
263         add_wait_queue(&lirc_read_queue, &wait);
264         set_current_state(TASK_INTERRUPTIBLE);
265         while (n < count) {
266                 if (rx_head != rx_tail) {
267                         if (copy_to_user((void *) buf + n,
268                                         (void *) (rx_buf + rx_head),
269                                         sizeof(int))) {
270                                 retval = -EFAULT;
271                                 break;
272                         }
273                         rx_head = (rx_head + 1) & (RBUF_LEN - 1);
274                         n += sizeof(int);
275                 } else {
276                         if (file->f_flags & O_NONBLOCK) {
277                                 retval = -EAGAIN;
278                                 break;
279                         }
280                         if (signal_pending(current)) {
281                                 retval = -ERESTARTSYS;
282                                 break;
283                         }
284                         schedule();
285                         set_current_state(TASK_INTERRUPTIBLE);
286                 }
287         }
288         remove_wait_queue(&lirc_read_queue, &wait);
289         set_current_state(TASK_RUNNING);
290         return n ? n : retval;
291 }
292 static ssize_t lirc_write(struct file *file, const char *buf, size_t n,
293                                 loff_t *pos)
294 {
295         unsigned long flags;
296         int i, count;
297         int *tx_buf;
298
299         count = n / sizeof(int);
300         if (n % sizeof(int) || count % 2 == 0)
301                 return -EINVAL;
302         tx_buf = memdup_user(buf, n);
303         if (IS_ERR(tx_buf))
304                 return PTR_ERR(tx_buf);
305         i = 0;
306 #ifdef LIRC_ON_SA1100
307         /* disable receiver */
308         Ser2UTCR3 = 0;
309 #endif
310         local_irq_save(flags);
311         while (1) {
312                 if (i >= count)
313                         break;
314                 if (tx_buf[i])
315                         send_pulse(tx_buf[i]);
316                 i++;
317                 if (i >= count)
318                         break;
319                 if (tx_buf[i])
320                         send_space(tx_buf[i]);
321                 i++;
322         }
323         local_irq_restore(flags);
324 #ifdef LIRC_ON_SA1100
325         off();
326         udelay(1000); /* wait 1ms for IR diode to recover */
327         Ser2UTCR3 = 0;
328         /* clear status register to prevent unwanted interrupts */
329         Ser2UTSR0 &= (UTSR0_RID | UTSR0_RBB | UTSR0_REB);
330         /* enable receiver */
331         Ser2UTCR3 = UTCR3_RXE|UTCR3_RIE;
332 #endif
333         return count;
334 }
335
336 static long lirc_ioctl(struct file *filep, unsigned int cmd, unsigned long arg)
337 {
338         int retval = 0;
339         unsigned long value = 0;
340 #ifdef LIRC_ON_SA1100
341         unsigned int ivalue;
342
343         if (cmd == LIRC_GET_FEATURES)
344                 value = LIRC_CAN_SEND_PULSE |
345                         LIRC_CAN_SET_SEND_DUTY_CYCLE |
346                         LIRC_CAN_SET_SEND_CARRIER |
347                         LIRC_CAN_REC_MODE2;
348         else if (cmd == LIRC_GET_SEND_MODE)
349                 value = LIRC_MODE_PULSE;
350         else if (cmd == LIRC_GET_REC_MODE)
351                 value = LIRC_MODE_MODE2;
352 #else
353         if (cmd == LIRC_GET_FEATURES)
354                 value = LIRC_CAN_SEND_PULSE | LIRC_CAN_REC_MODE2;
355         else if (cmd == LIRC_GET_SEND_MODE)
356                 value = LIRC_MODE_PULSE;
357         else if (cmd == LIRC_GET_REC_MODE)
358                 value = LIRC_MODE_MODE2;
359 #endif
360
361         switch (cmd) {
362         case LIRC_GET_FEATURES:
363         case LIRC_GET_SEND_MODE:
364         case LIRC_GET_REC_MODE:
365                 retval = put_user(value, (unsigned long *) arg);
366                 break;
367
368         case LIRC_SET_SEND_MODE:
369         case LIRC_SET_REC_MODE:
370                 retval = get_user(value, (unsigned long *) arg);
371                 break;
372 #ifdef LIRC_ON_SA1100
373         case LIRC_SET_SEND_DUTY_CYCLE:
374                 retval = get_user(ivalue, (unsigned int *) arg);
375                 if (retval)
376                         return retval;
377                 if (ivalue <= 0 || ivalue > 100)
378                         return -EINVAL;
379                 /* (ivalue/100)*(1000000/freq) */
380                 duty_cycle = ivalue;
381                 pulse_width = (unsigned long) duty_cycle*10000/freq;
382                 space_width = (unsigned long) 1000000L/freq-pulse_width;
383                 if (pulse_width >= LIRC_ON_SA1100_TRANSMITTER_LATENCY)
384                         pulse_width -= LIRC_ON_SA1100_TRANSMITTER_LATENCY;
385                 if (space_width >= LIRC_ON_SA1100_TRANSMITTER_LATENCY)
386                         space_width -= LIRC_ON_SA1100_TRANSMITTER_LATENCY;
387                 break;
388         case LIRC_SET_SEND_CARRIER:
389                 retval = get_user(ivalue, (unsigned int *) arg);
390                 if (retval)
391                         return retval;
392                 if (ivalue > 500000 || ivalue < 20000)
393                         return -EINVAL;
394                 freq = ivalue;
395                 pulse_width = (unsigned long) duty_cycle*10000/freq;
396                 space_width = (unsigned long) 1000000L/freq-pulse_width;
397                 if (pulse_width >= LIRC_ON_SA1100_TRANSMITTER_LATENCY)
398                         pulse_width -= LIRC_ON_SA1100_TRANSMITTER_LATENCY;
399                 if (space_width >= LIRC_ON_SA1100_TRANSMITTER_LATENCY)
400                         space_width -= LIRC_ON_SA1100_TRANSMITTER_LATENCY;
401                 break;
402 #endif
403         default:
404                 retval = -ENOIOCTLCMD;
405
406         }
407
408         if (retval)
409                 return retval;
410         if (cmd == LIRC_SET_REC_MODE) {
411                 if (value != LIRC_MODE_MODE2)
412                         retval = -ENOSYS;
413         } else if (cmd == LIRC_SET_SEND_MODE) {
414                 if (value != LIRC_MODE_PULSE)
415                         retval = -ENOSYS;
416         }
417
418         return retval;
419 }
420
421 static void add_read_queue(int flag, unsigned long val)
422 {
423         unsigned int new_rx_tail;
424         int newval;
425
426         dprintk("add flag %d with val %lu\n", flag, val);
427
428         newval = val & PULSE_MASK;
429
430         /*
431          * statistically, pulses are ~TIME_CONST/2 too long. we could
432          * maybe make this more exact, but this is good enough
433          */
434         if (flag) {
435                 /* pulse */
436                 if (newval > TIME_CONST/2)
437                         newval -= TIME_CONST/2;
438                 else /* should not ever happen */
439                         newval = 1;
440                 newval |= PULSE_BIT;
441         } else {
442                 newval += TIME_CONST/2;
443         }
444         new_rx_tail = (rx_tail + 1) & (RBUF_LEN - 1);
445         if (new_rx_tail == rx_head) {
446                 dprintk("Buffer overrun.\n");
447                 return;
448         }
449         rx_buf[rx_tail] = newval;
450         rx_tail = new_rx_tail;
451         wake_up_interruptible(&lirc_read_queue);
452 }
453
454 static const struct file_operations lirc_fops = {
455         .owner          = THIS_MODULE,
456         .read           = lirc_read,
457         .write          = lirc_write,
458         .poll           = lirc_poll,
459         .unlocked_ioctl = lirc_ioctl,
460         .open           = lirc_dev_fop_open,
461         .release        = lirc_dev_fop_close,
462         .llseek         = no_llseek,
463 };
464
465 static int set_use_inc(void *data)
466 {
467        return 0;
468 }
469
470 static void set_use_dec(void *data)
471 {
472 }
473
474 static struct lirc_driver driver = {
475        .name            = LIRC_DRIVER_NAME,
476        .minor           = -1,
477        .code_length     = 1,
478        .sample_rate     = 0,
479        .data            = NULL,
480        .add_to_buf      = NULL,
481        .set_use_inc     = set_use_inc,
482        .set_use_dec     = set_use_dec,
483        .fops            = &lirc_fops,
484        .dev             = NULL,
485        .owner           = THIS_MODULE,
486 };
487
488
489 static int init_chrdev(void)
490 {
491         driver.minor = lirc_register_driver(&driver);
492         if (driver.minor < 0) {
493                 printk(KERN_ERR LIRC_DRIVER_NAME ": init_chrdev() failed.\n");
494                 return -EIO;
495         }
496         return 0;
497 }
498
499 static void drop_chrdev(void)
500 {
501         lirc_unregister_driver(driver.minor);
502 }
503
504 /* SECTION: Hardware */
505 static long delta(struct timeval *tv1, struct timeval *tv2)
506 {
507         unsigned long deltv;
508
509         deltv = tv2->tv_sec - tv1->tv_sec;
510         if (deltv > 15)
511                 deltv = 0xFFFFFF;
512         else
513                 deltv = deltv*1000000 +
514                         tv2->tv_usec -
515                         tv1->tv_usec;
516         return deltv;
517 }
518
519 static void sir_timeout(unsigned long data)
520 {
521         /*
522          * if last received signal was a pulse, but receiving stopped
523          * within the 9 bit frame, we need to finish this pulse and
524          * simulate a signal change to from pulse to space. Otherwise
525          * upper layers will receive two sequences next time.
526          */
527
528         unsigned long flags;
529         unsigned long pulse_end;
530
531         /* avoid interference with interrupt */
532         spin_lock_irqsave(&timer_lock, flags);
533         if (last_value) {
534 #ifndef LIRC_ON_SA1100
535                 /* clear unread bits in UART and restart */
536                 outb(UART_FCR_CLEAR_RCVR, io + UART_FCR);
537 #endif
538                 /* determine 'virtual' pulse end: */
539                 pulse_end = delta(&last_tv, &last_intr_tv);
540                 dprintk("timeout add %d for %lu usec\n", last_value, pulse_end);
541                 add_read_queue(last_value, pulse_end);
542                 last_value = 0;
543                 last_tv = last_intr_tv;
544         }
545         spin_unlock_irqrestore(&timer_lock, flags);
546 }
547
548 static irqreturn_t sir_interrupt(int irq, void *dev_id)
549 {
550         unsigned char data;
551         struct timeval curr_tv;
552         static unsigned long deltv;
553 #ifdef LIRC_ON_SA1100
554         int status;
555         static int n;
556
557         status = Ser2UTSR0;
558         /*
559          * Deal with any receive errors first.  The bytes in error may be
560          * the only bytes in the receive FIFO, so we do this first.
561          */
562         while (status & UTSR0_EIF) {
563                 int bstat;
564
565                 if (debug) {
566                         dprintk("EIF\n");
567                         bstat = Ser2UTSR1;
568
569                         if (bstat & UTSR1_FRE)
570                                 dprintk("frame error\n");
571                         if (bstat & UTSR1_ROR)
572                                 dprintk("receive fifo overrun\n");
573                         if (bstat & UTSR1_PRE)
574                                 dprintk("parity error\n");
575                 }
576
577                 bstat = Ser2UTDR;
578                 n++;
579                 status = Ser2UTSR0;
580         }
581
582         if (status & (UTSR0_RFS | UTSR0_RID)) {
583                 do_gettimeofday(&curr_tv);
584                 deltv = delta(&last_tv, &curr_tv);
585                 do {
586                         data = Ser2UTDR;
587                         dprintk("%d data: %u\n", n, (unsigned int) data);
588                         n++;
589                 } while (status & UTSR0_RID && /* do not empty fifo in order to
590                                                 * get UTSR0_RID in any case */
591                       Ser2UTSR1 & UTSR1_RNE); /* data ready */
592
593                 if (status&UTSR0_RID) {
594                         add_read_queue(0 , deltv - n * TIME_CONST); /*space*/
595                         add_read_queue(1, n * TIME_CONST); /*pulse*/
596                         n = 0;
597                         last_tv = curr_tv;
598                 }
599         }
600
601         if (status & UTSR0_TFS)
602                 printk(KERN_ERR "transmit fifo not full, shouldn't happen\n");
603
604         /* We must clear certain bits. */
605         status &= (UTSR0_RID | UTSR0_RBB | UTSR0_REB);
606         if (status)
607                 Ser2UTSR0 = status;
608 #else
609         unsigned long deltintrtv;
610         unsigned long flags;
611         int iir, lsr;
612
613         while ((iir = inb(io + UART_IIR) & UART_IIR_ID)) {
614                 switch (iir&UART_IIR_ID) { /* FIXME toto treba preriedit */
615                 case UART_IIR_MSI:
616                         (void) inb(io + UART_MSR);
617                         break;
618                 case UART_IIR_RLSI:
619                         (void) inb(io + UART_LSR);
620                         break;
621                 case UART_IIR_THRI:
622 #if 0
623                         if (lsr & UART_LSR_THRE) /* FIFO is empty */
624                                 outb(data, io + UART_TX)
625 #endif
626                         break;
627                 case UART_IIR_RDI:
628                         /* avoid interference with timer */
629                         spin_lock_irqsave(&timer_lock, flags);
630                         do {
631                                 del_timer(&timerlist);
632                                 data = inb(io + UART_RX);
633                                 do_gettimeofday(&curr_tv);
634                                 deltv = delta(&last_tv, &curr_tv);
635                                 deltintrtv = delta(&last_intr_tv, &curr_tv);
636                                 dprintk("t %lu, d %d\n", deltintrtv, (int)data);
637                                 /*
638                                  * if nothing came in last X cycles,
639                                  * it was gap
640                                  */
641                                 if (deltintrtv > TIME_CONST * threshold) {
642                                         if (last_value) {
643                                                 dprintk("GAP\n");
644                                                 /* simulate signal change */
645                                                 add_read_queue(last_value,
646                                                                deltv -
647                                                                deltintrtv);
648                                                 last_value = 0;
649                                                 last_tv.tv_sec =
650                                                         last_intr_tv.tv_sec;
651                                                 last_tv.tv_usec =
652                                                         last_intr_tv.tv_usec;
653                                                 deltv = deltintrtv;
654                                         }
655                                 }
656                                 data = 1;
657                                 if (data ^ last_value) {
658                                         /*
659                                          * deltintrtv > 2*TIME_CONST, remember?
660                                          * the other case is timeout
661                                          */
662                                         add_read_queue(last_value,
663                                                        deltv-TIME_CONST);
664                                         last_value = data;
665                                         last_tv = curr_tv;
666                                         if (last_tv.tv_usec >= TIME_CONST) {
667                                                 last_tv.tv_usec -= TIME_CONST;
668                                         } else {
669                                                 last_tv.tv_sec--;
670                                                 last_tv.tv_usec += 1000000 -
671                                                         TIME_CONST;
672                                         }
673                                 }
674                                 last_intr_tv = curr_tv;
675                                 if (data) {
676                                         /*
677                                          * start timer for end of
678                                          * sequence detection
679                                          */
680                                         timerlist.expires = jiffies +
681                                                                 SIR_TIMEOUT;
682                                         add_timer(&timerlist);
683                                 }
684
685                                 lsr = inb(io + UART_LSR);
686                         } while (lsr & UART_LSR_DR); /* data ready */
687                         spin_unlock_irqrestore(&timer_lock, flags);
688                         break;
689                 default:
690                         break;
691                 }
692         }
693 #endif
694         return IRQ_RETVAL(IRQ_HANDLED);
695 }
696
697 #ifdef LIRC_ON_SA1100
698 static void send_pulse(unsigned long length)
699 {
700         unsigned long k, delay;
701         int flag;
702
703         if (length == 0)
704                 return;
705         /*
706          * this won't give us the carrier frequency we really want
707          * due to integer arithmetic, but we can accept this inaccuracy
708          */
709
710         for (k = flag = 0; k < length; k += delay, flag = !flag) {
711                 if (flag) {
712                         off();
713                         delay = space_width;
714                 } else {
715                         on();
716                         delay = pulse_width;
717                 }
718                 safe_udelay(delay);
719         }
720         off();
721 }
722
723 static void send_space(unsigned long length)
724 {
725         if (length == 0)
726                 return;
727         off();
728         safe_udelay(length);
729 }
730 #else
731 static void send_space(unsigned long len)
732 {
733         safe_udelay(len);
734 }
735
736 static void send_pulse(unsigned long len)
737 {
738         long bytes_out = len / TIME_CONST;
739         long time_left;
740
741         time_left = (long)len - (long)bytes_out * (long)TIME_CONST;
742         if (bytes_out == 0) {
743                 bytes_out++;
744                 time_left = 0;
745         }
746         while (bytes_out--) {
747                 outb(PULSE, io + UART_TX);
748                 /* FIXME treba seriozne cakanie z char/serial.c */
749                 while (!(inb(io + UART_LSR) & UART_LSR_THRE))
750                         ;
751         }
752 #if 0
753         if (time_left > 0)
754                 safe_udelay(time_left);
755 #endif
756 }
757 #endif
758
759 #ifdef CONFIG_SA1100_COLLIE
760 static int sa1100_irda_set_power_collie(int state)
761 {
762         if (state) {
763                 /*
764                  *  0 - off
765                  *  1 - short range, lowest power
766                  *  2 - medium range, medium power
767                  *  3 - maximum range, high power
768                  */
769                 ucb1200_set_io_direction(TC35143_GPIO_IR_ON,
770                                          TC35143_IODIR_OUTPUT);
771                 ucb1200_set_io(TC35143_GPIO_IR_ON, TC35143_IODAT_LOW);
772                 udelay(100);
773         } else {
774                 /* OFF */
775                 ucb1200_set_io_direction(TC35143_GPIO_IR_ON,
776                                          TC35143_IODIR_OUTPUT);
777                 ucb1200_set_io(TC35143_GPIO_IR_ON, TC35143_IODAT_HIGH);
778         }
779         return 0;
780 }
781 #endif
782
783 static int init_hardware(void)
784 {
785         unsigned long flags;
786
787         spin_lock_irqsave(&hardware_lock, flags);
788         /* reset UART */
789 #ifdef LIRC_ON_SA1100
790 #ifdef CONFIG_SA1100_BITSY
791         if (machine_is_bitsy()) {
792                 printk(KERN_INFO "Power on IR module\n");
793                 set_bitsy_egpio(EGPIO_BITSY_IR_ON);
794         }
795 #endif
796 #ifdef CONFIG_SA1100_COLLIE
797         sa1100_irda_set_power_collie(3);        /* power on */
798 #endif
799         sr.hscr0 = Ser2HSCR0;
800
801         sr.utcr0 = Ser2UTCR0;
802         sr.utcr1 = Ser2UTCR1;
803         sr.utcr2 = Ser2UTCR2;
804         sr.utcr3 = Ser2UTCR3;
805         sr.utcr4 = Ser2UTCR4;
806
807         sr.utdr = Ser2UTDR;
808         sr.utsr0 = Ser2UTSR0;
809         sr.utsr1 = Ser2UTSR1;
810
811         /* configure GPIO */
812         /* output */
813         PPDR |= PPC_TXD2;
814         PSDR |= PPC_TXD2;
815         /* set output to 0 */
816         off();
817
818         /* Enable HP-SIR modulation, and ensure that the port is disabled. */
819         Ser2UTCR3 = 0;
820         Ser2HSCR0 = sr.hscr0 & (~HSCR0_HSSP);
821
822         /* clear status register to prevent unwanted interrupts */
823         Ser2UTSR0 &= (UTSR0_RID | UTSR0_RBB | UTSR0_REB);
824
825         /* 7N1 */
826         Ser2UTCR0 = UTCR0_1StpBit|UTCR0_7BitData;
827         /* 115200 */
828         Ser2UTCR1 = 0;
829         Ser2UTCR2 = 1;
830         /* use HPSIR, 1.6 usec pulses */
831         Ser2UTCR4 = UTCR4_HPSIR|UTCR4_Z1_6us;
832
833         /* enable receiver, receive fifo interrupt */
834         Ser2UTCR3 = UTCR3_RXE|UTCR3_RIE;
835
836         /* clear status register to prevent unwanted interrupts */
837         Ser2UTSR0 &= (UTSR0_RID | UTSR0_RBB | UTSR0_REB);
838
839 #elif defined(LIRC_SIR_TEKRAM)
840         /* disable FIFO */
841         soutp(UART_FCR,
842               UART_FCR_CLEAR_RCVR|
843               UART_FCR_CLEAR_XMIT|
844               UART_FCR_TRIGGER_1);
845
846         /* Set DLAB 0. */
847         soutp(UART_LCR, sinp(UART_LCR) & (~UART_LCR_DLAB));
848
849         /* First of all, disable all interrupts */
850         soutp(UART_IER, sinp(UART_IER) &
851               (~(UART_IER_MSI|UART_IER_RLSI|UART_IER_THRI|UART_IER_RDI)));
852
853         /* Set DLAB 1. */
854         soutp(UART_LCR, sinp(UART_LCR) | UART_LCR_DLAB);
855
856         /* Set divisor to 12 => 9600 Baud */
857         soutp(UART_DLM, 0);
858         soutp(UART_DLL, 12);
859
860         /* Set DLAB 0. */
861         soutp(UART_LCR, sinp(UART_LCR) & (~UART_LCR_DLAB));
862
863         /* power supply */
864         soutp(UART_MCR, UART_MCR_RTS|UART_MCR_DTR|UART_MCR_OUT2);
865         safe_udelay(50*1000);
866
867         /* -DTR low -> reset PIC */
868         soutp(UART_MCR, UART_MCR_RTS|UART_MCR_OUT2);
869         udelay(1*1000);
870
871         soutp(UART_MCR, UART_MCR_RTS|UART_MCR_DTR|UART_MCR_OUT2);
872         udelay(100);
873
874
875         /* -RTS low -> send control byte */
876         soutp(UART_MCR, UART_MCR_DTR|UART_MCR_OUT2);
877         udelay(7);
878         soutp(UART_TX, TEKRAM_115200|TEKRAM_PW);
879
880         /* one byte takes ~1042 usec to transmit at 9600,8N1 */
881         udelay(1500);
882
883         /* back to normal operation */
884         soutp(UART_MCR, UART_MCR_RTS|UART_MCR_DTR|UART_MCR_OUT2);
885         udelay(50);
886
887         udelay(1500);
888
889         /* read previous control byte */
890         printk(KERN_INFO LIRC_DRIVER_NAME
891                ": 0x%02x\n", sinp(UART_RX));
892
893         /* Set DLAB 1. */
894         soutp(UART_LCR, sinp(UART_LCR) | UART_LCR_DLAB);
895
896         /* Set divisor to 1 => 115200 Baud */
897         soutp(UART_DLM, 0);
898         soutp(UART_DLL, 1);
899
900         /* Set DLAB 0, 8 Bit */
901         soutp(UART_LCR, UART_LCR_WLEN8);
902         /* enable interrupts */
903         soutp(UART_IER, sinp(UART_IER)|UART_IER_RDI);
904 #else
905         outb(0, io + UART_MCR);
906         outb(0, io + UART_IER);
907         /* init UART */
908         /* set DLAB, speed = 115200 */
909         outb(UART_LCR_DLAB | UART_LCR_WLEN7, io + UART_LCR);
910         outb(1, io + UART_DLL); outb(0, io + UART_DLM);
911         /* 7N1+start = 9 bits at 115200 ~ 3 bits at 44000 */
912         outb(UART_LCR_WLEN7, io + UART_LCR);
913         /* FIFO operation */
914         outb(UART_FCR_ENABLE_FIFO, io + UART_FCR);
915         /* interrupts */
916         /* outb(UART_IER_RLSI|UART_IER_RDI|UART_IER_THRI, io + UART_IER); */
917         outb(UART_IER_RDI, io + UART_IER);
918         /* turn on UART */
919         outb(UART_MCR_DTR|UART_MCR_RTS|UART_MCR_OUT2, io + UART_MCR);
920 #ifdef LIRC_SIR_ACTISYS_ACT200L
921         init_act200();
922 #elif defined(LIRC_SIR_ACTISYS_ACT220L)
923         init_act220();
924 #endif
925 #endif
926         spin_unlock_irqrestore(&hardware_lock, flags);
927         return 0;
928 }
929
930 static void drop_hardware(void)
931 {
932         unsigned long flags;
933
934         spin_lock_irqsave(&hardware_lock, flags);
935
936 #ifdef LIRC_ON_SA1100
937         Ser2UTCR3 = 0;
938
939         Ser2UTCR0 = sr.utcr0;
940         Ser2UTCR1 = sr.utcr1;
941         Ser2UTCR2 = sr.utcr2;
942         Ser2UTCR4 = sr.utcr4;
943         Ser2UTCR3 = sr.utcr3;
944
945         Ser2HSCR0 = sr.hscr0;
946 #ifdef CONFIG_SA1100_BITSY
947         if (machine_is_bitsy())
948                 clr_bitsy_egpio(EGPIO_BITSY_IR_ON);
949 #endif
950 #ifdef CONFIG_SA1100_COLLIE
951         sa1100_irda_set_power_collie(0);        /* power off */
952 #endif
953 #else
954         /* turn off interrupts */
955         outb(0, io + UART_IER);
956 #endif
957         spin_unlock_irqrestore(&hardware_lock, flags);
958 }
959
960 /* SECTION: Initialisation */
961
962 static int init_port(void)
963 {
964         int retval;
965
966         /* get I/O port access and IRQ line */
967 #ifndef LIRC_ON_SA1100
968         if (request_region(io, 8, LIRC_DRIVER_NAME) == NULL) {
969                 printk(KERN_ERR LIRC_DRIVER_NAME
970                        ": i/o port 0x%.4x already in use.\n", io);
971                 return -EBUSY;
972         }
973 #endif
974         retval = request_irq(irq, sir_interrupt, IRQF_DISABLED,
975                              LIRC_DRIVER_NAME, NULL);
976         if (retval < 0) {
977 #               ifndef LIRC_ON_SA1100
978                 release_region(io, 8);
979 #               endif
980                 printk(KERN_ERR LIRC_DRIVER_NAME
981                         ": IRQ %d already in use.\n",
982                         irq);
983                 return retval;
984         }
985 #ifndef LIRC_ON_SA1100
986         printk(KERN_INFO LIRC_DRIVER_NAME
987                 ": I/O port 0x%.4x, IRQ %d.\n",
988                 io, irq);
989 #endif
990
991         init_timer(&timerlist);
992         timerlist.function = sir_timeout;
993         timerlist.data = 0xabadcafe;
994
995         return 0;
996 }
997
998 static void drop_port(void)
999 {
1000         free_irq(irq, NULL);
1001         del_timer_sync(&timerlist);
1002 #ifndef LIRC_ON_SA1100
1003         release_region(io, 8);
1004 #endif
1005 }
1006
1007 #ifdef LIRC_SIR_ACTISYS_ACT200L
1008 /* Crystal/Cirrus CS8130 IR transceiver, used in Actisys Act200L dongle */
1009 /* some code borrowed from Linux IRDA driver */
1010
1011 /* Register 0: Control register #1 */
1012 #define ACT200L_REG0    0x00
1013 #define ACT200L_TXEN    0x01 /* Enable transmitter */
1014 #define ACT200L_RXEN    0x02 /* Enable receiver */
1015 #define ACT200L_ECHO    0x08 /* Echo control chars */
1016
1017 /* Register 1: Control register #2 */
1018 #define ACT200L_REG1    0x10
1019 #define ACT200L_LODB    0x01 /* Load new baud rate count value */
1020 #define ACT200L_WIDE    0x04 /* Expand the maximum allowable pulse */
1021
1022 /* Register 3: Transmit mode register #2 */
1023 #define ACT200L_REG3    0x30
1024 #define ACT200L_B0      0x01 /* DataBits, 0=6, 1=7, 2=8, 3=9(8P)  */
1025 #define ACT200L_B1      0x02 /* DataBits, 0=6, 1=7, 2=8, 3=9(8P)  */
1026 #define ACT200L_CHSY    0x04 /* StartBit Synced 0=bittime, 1=startbit */
1027
1028 /* Register 4: Output Power register */
1029 #define ACT200L_REG4    0x40
1030 #define ACT200L_OP0     0x01 /* Enable LED1C output */
1031 #define ACT200L_OP1     0x02 /* Enable LED2C output */
1032 #define ACT200L_BLKR    0x04
1033
1034 /* Register 5: Receive Mode register */
1035 #define ACT200L_REG5    0x50
1036 #define ACT200L_RWIDL   0x01 /* fixed 1.6us pulse mode */
1037     /*.. other various IRDA bit modes, and TV remote modes..*/
1038
1039 /* Register 6: Receive Sensitivity register #1 */
1040 #define ACT200L_REG6    0x60
1041 #define ACT200L_RS0     0x01 /* receive threshold bit 0 */
1042 #define ACT200L_RS1     0x02 /* receive threshold bit 1 */
1043
1044 /* Register 7: Receive Sensitivity register #2 */
1045 #define ACT200L_REG7    0x70
1046 #define ACT200L_ENPOS   0x04 /* Ignore the falling edge */
1047
1048 /* Register 8,9: Baud Rate Divider register #1,#2 */
1049 #define ACT200L_REG8    0x80
1050 #define ACT200L_REG9    0x90
1051
1052 #define ACT200L_2400    0x5f
1053 #define ACT200L_9600    0x17
1054 #define ACT200L_19200   0x0b
1055 #define ACT200L_38400   0x05
1056 #define ACT200L_57600   0x03
1057 #define ACT200L_115200  0x01
1058
1059 /* Register 13: Control register #3 */
1060 #define ACT200L_REG13   0xd0
1061 #define ACT200L_SHDW    0x01 /* Enable access to shadow registers */
1062
1063 /* Register 15: Status register */
1064 #define ACT200L_REG15   0xf0
1065
1066 /* Register 21: Control register #4 */
1067 #define ACT200L_REG21   0x50
1068 #define ACT200L_EXCK    0x02 /* Disable clock output driver */
1069 #define ACT200L_OSCL    0x04 /* oscillator in low power, medium accuracy mode */
1070
1071 static void init_act200(void)
1072 {
1073         int i;
1074         __u8 control[] = {
1075                 ACT200L_REG15,
1076                 ACT200L_REG13 | ACT200L_SHDW,
1077                 ACT200L_REG21 | ACT200L_EXCK | ACT200L_OSCL,
1078                 ACT200L_REG13,
1079                 ACT200L_REG7  | ACT200L_ENPOS,
1080                 ACT200L_REG6  | ACT200L_RS0  | ACT200L_RS1,
1081                 ACT200L_REG5  | ACT200L_RWIDL,
1082                 ACT200L_REG4  | ACT200L_OP0  | ACT200L_OP1 | ACT200L_BLKR,
1083                 ACT200L_REG3  | ACT200L_B0,
1084                 ACT200L_REG0  | ACT200L_TXEN | ACT200L_RXEN,
1085                 ACT200L_REG8 |  (ACT200L_115200       & 0x0f),
1086                 ACT200L_REG9 | ((ACT200L_115200 >> 4) & 0x0f),
1087                 ACT200L_REG1 | ACT200L_LODB | ACT200L_WIDE
1088         };
1089
1090         /* Set DLAB 1. */
1091         soutp(UART_LCR, UART_LCR_DLAB | UART_LCR_WLEN8);
1092
1093         /* Set divisor to 12 => 9600 Baud */
1094         soutp(UART_DLM, 0);
1095         soutp(UART_DLL, 12);
1096
1097         /* Set DLAB 0. */
1098         soutp(UART_LCR, UART_LCR_WLEN8);
1099         /* Set divisor to 12 => 9600 Baud */
1100
1101         /* power supply */
1102         soutp(UART_MCR, UART_MCR_RTS|UART_MCR_DTR|UART_MCR_OUT2);
1103         for (i = 0; i < 50; i++)
1104                 safe_udelay(1000);
1105
1106                 /* Reset the dongle : set RTS low for 25 ms */
1107         soutp(UART_MCR, UART_MCR_DTR|UART_MCR_OUT2);
1108         for (i = 0; i < 25; i++)
1109                 udelay(1000);
1110
1111         soutp(UART_MCR, UART_MCR_RTS|UART_MCR_DTR|UART_MCR_OUT2);
1112         udelay(100);
1113
1114         /* Clear DTR and set RTS to enter command mode */
1115         soutp(UART_MCR, UART_MCR_RTS|UART_MCR_OUT2);
1116         udelay(7);
1117
1118         /* send out the control register settings for 115K 7N1 SIR operation */
1119         for (i = 0; i < sizeof(control); i++) {
1120                 soutp(UART_TX, control[i]);
1121                 /* one byte takes ~1042 usec to transmit at 9600,8N1 */
1122                 udelay(1500);
1123         }
1124
1125         /* back to normal operation */
1126         soutp(UART_MCR, UART_MCR_RTS|UART_MCR_DTR|UART_MCR_OUT2);
1127         udelay(50);
1128
1129         udelay(1500);
1130         soutp(UART_LCR, sinp(UART_LCR) | UART_LCR_DLAB);
1131
1132         /* Set DLAB 1. */
1133         soutp(UART_LCR, UART_LCR_DLAB | UART_LCR_WLEN7);
1134
1135         /* Set divisor to 1 => 115200 Baud */
1136         soutp(UART_DLM, 0);
1137         soutp(UART_DLL, 1);
1138
1139         /* Set DLAB 0. */
1140         soutp(UART_LCR, sinp(UART_LCR) & (~UART_LCR_DLAB));
1141
1142         /* Set DLAB 0, 7 Bit */
1143         soutp(UART_LCR, UART_LCR_WLEN7);
1144
1145         /* enable interrupts */
1146         soutp(UART_IER, sinp(UART_IER)|UART_IER_RDI);
1147 }
1148 #endif
1149
1150 #ifdef LIRC_SIR_ACTISYS_ACT220L
1151 /*
1152  * Derived from linux IrDA driver (net/irda/actisys.c)
1153  * Drop me a mail for any kind of comment: maxx@spaceboyz.net
1154  */
1155
1156 void init_act220(void)
1157 {
1158         int i;
1159
1160         /* DLAB 1 */
1161         soutp(UART_LCR, UART_LCR_DLAB|UART_LCR_WLEN7);
1162
1163         /* 9600 baud */
1164         soutp(UART_DLM, 0);
1165         soutp(UART_DLL, 12);
1166
1167         /* DLAB 0 */
1168         soutp(UART_LCR, UART_LCR_WLEN7);
1169
1170         /* reset the dongle, set DTR low for 10us */
1171         soutp(UART_MCR, UART_MCR_RTS|UART_MCR_OUT2);
1172         udelay(10);
1173
1174         /* back to normal (still 9600) */
1175         soutp(UART_MCR, UART_MCR_DTR|UART_MCR_RTS|UART_MCR_OUT2);
1176
1177         /*
1178          * send RTS pulses until we reach 115200
1179          * i hope this is really the same for act220l/act220l+
1180          */
1181         for (i = 0; i < 3; i++) {
1182                 udelay(10);
1183                 /* set RTS low for 10 us */
1184                 soutp(UART_MCR, UART_MCR_DTR|UART_MCR_OUT2);
1185                 udelay(10);
1186                 /* set RTS high for 10 us */
1187                 soutp(UART_MCR, UART_MCR_RTS|UART_MCR_DTR|UART_MCR_OUT2);
1188         }
1189
1190         /* back to normal operation */
1191         udelay(1500); /* better safe than sorry ;) */
1192
1193         /* Set DLAB 1. */
1194         soutp(UART_LCR, UART_LCR_DLAB | UART_LCR_WLEN7);
1195
1196         /* Set divisor to 1 => 115200 Baud */
1197         soutp(UART_DLM, 0);
1198         soutp(UART_DLL, 1);
1199
1200         /* Set DLAB 0, 7 Bit */
1201         /* The dongle doesn't seem to have any problems with operation at 7N1 */
1202         soutp(UART_LCR, UART_LCR_WLEN7);
1203
1204         /* enable interrupts */
1205         soutp(UART_IER, UART_IER_RDI);
1206 }
1207 #endif
1208
1209 static int init_lirc_sir(void)
1210 {
1211         int retval;
1212
1213         init_waitqueue_head(&lirc_read_queue);
1214         retval = init_port();
1215         if (retval < 0)
1216                 return retval;
1217         init_hardware();
1218         printk(KERN_INFO LIRC_DRIVER_NAME
1219                 ": Installed.\n");
1220         return 0;
1221 }
1222
1223
1224 static int __init lirc_sir_init(void)
1225 {
1226         int retval;
1227
1228         retval = init_chrdev();
1229         if (retval < 0)
1230                 return retval;
1231         retval = init_lirc_sir();
1232         if (retval) {
1233                 drop_chrdev();
1234                 return retval;
1235         }
1236         return 0;
1237 }
1238
1239 static void __exit lirc_sir_exit(void)
1240 {
1241         drop_hardware();
1242         drop_chrdev();
1243         drop_port();
1244         printk(KERN_INFO LIRC_DRIVER_NAME ": Uninstalled.\n");
1245 }
1246
1247 module_init(lirc_sir_init);
1248 module_exit(lirc_sir_exit);
1249
1250 #ifdef LIRC_SIR_TEKRAM
1251 MODULE_DESCRIPTION("Infrared receiver driver for Tekram Irmate 210");
1252 MODULE_AUTHOR("Christoph Bartelmus");
1253 #elif defined(LIRC_ON_SA1100)
1254 MODULE_DESCRIPTION("LIRC driver for StrongARM SA1100 embedded microprocessor");
1255 MODULE_AUTHOR("Christoph Bartelmus");
1256 #elif defined(LIRC_SIR_ACTISYS_ACT200L)
1257 MODULE_DESCRIPTION("LIRC driver for Actisys Act200L");
1258 MODULE_AUTHOR("Karl Bongers");
1259 #elif defined(LIRC_SIR_ACTISYS_ACT220L)
1260 MODULE_DESCRIPTION("LIRC driver for Actisys Act220L(+)");
1261 MODULE_AUTHOR("Jan Roemisch");
1262 #else
1263 MODULE_DESCRIPTION("Infrared receiver driver for SIR type serial ports");
1264 MODULE_AUTHOR("Milan Pikula");
1265 #endif
1266 MODULE_LICENSE("GPL");
1267
1268 #ifdef LIRC_ON_SA1100
1269 module_param(irq, int, S_IRUGO);
1270 MODULE_PARM_DESC(irq, "Interrupt (16)");
1271 #else
1272 module_param(io, int, S_IRUGO);
1273 MODULE_PARM_DESC(io, "I/O address base (0x3f8 or 0x2f8)");
1274
1275 module_param(irq, int, S_IRUGO);
1276 MODULE_PARM_DESC(irq, "Interrupt (4 or 3)");
1277
1278 module_param(threshold, int, S_IRUGO);
1279 MODULE_PARM_DESC(threshold, "space detection threshold (3)");
1280 #endif
1281
1282 module_param(debug, bool, S_IRUGO | S_IWUSR);
1283 MODULE_PARM_DESC(debug, "Enable debugging messages");