Linux 4.19-rc7
[linux-2.6/btrfs-unstable.git] / drivers / block / paride / pd.c
blob7cf947586fe46b90192c670df8700a9194e77248
1 /*
2 pd.c (c) 1997-8 Grant R. Guenther <grant@torque.net>
3 Under the terms of the GNU General Public License.
5 This is the high-level driver for parallel port IDE hard
6 drives based on chips supported by the paride module.
8 By default, the driver will autoprobe for a single parallel
9 port IDE drive, but if their individual parameters are
10 specified, the driver can handle up to 4 drives.
12 The behaviour of the pd driver can be altered by setting
13 some parameters from the insmod command line. The following
14 parameters are adjustable:
16 drive0 These four arguments can be arrays of
17 drive1 1-8 integers as follows:
18 drive2
19 drive3 <prt>,<pro>,<uni>,<mod>,<geo>,<sby>,<dly>,<slv>
21 Where,
23 <prt> is the base of the parallel port address for
24 the corresponding drive. (required)
26 <pro> is the protocol number for the adapter that
27 supports this drive. These numbers are
28 logged by 'paride' when the protocol modules
29 are initialised. (0 if not given)
31 <uni> for those adapters that support chained
32 devices, this is the unit selector for the
33 chain of devices on the given port. It should
34 be zero for devices that don't support chaining.
35 (0 if not given)
37 <mod> this can be -1 to choose the best mode, or one
38 of the mode numbers supported by the adapter.
39 (-1 if not given)
41 <geo> this defaults to 0 to indicate that the driver
42 should use the CHS geometry provided by the drive
43 itself. If set to 1, the driver will provide
44 a logical geometry with 64 heads and 32 sectors
45 per track, to be consistent with most SCSI
46 drivers. (0 if not given)
48 <sby> set this to zero to disable the power saving
49 standby mode, if needed. (1 if not given)
51 <dly> some parallel ports require the driver to
52 go more slowly. -1 sets a default value that
53 should work with the chosen protocol. Otherwise,
54 set this to a small integer, the larger it is
55 the slower the port i/o. In some cases, setting
56 this to zero will speed up the device. (default -1)
58 <slv> IDE disks can be jumpered to master or slave.
59 Set this to 0 to choose the master drive, 1 to
60 choose the slave, -1 (the default) to choose the
61 first drive found.
64 major You may use this parameter to override the
65 default major number (45) that this driver
66 will use. Be sure to change the device
67 name as well.
69 name This parameter is a character string that
70 contains the name the kernel will use for this
71 device (in /proc output, for instance).
72 (default "pd")
74 cluster The driver will attempt to aggregate requests
75 for adjacent blocks into larger multi-block
76 clusters. The maximum cluster size (in 512
77 byte sectors) is set with this parameter.
78 (default 64)
80 verbose This parameter controls the amount of logging
81 that the driver will do. Set it to 0 for
82 normal operation, 1 to see autoprobe progress
83 messages, or 2 to see additional debugging
84 output. (default 0)
86 nice This parameter controls the driver's use of
87 idle CPU time, at the expense of some speed.
89 If this driver is built into the kernel, you can use kernel
90 the following command line parameters, with the same values
91 as the corresponding module parameters listed above:
93 pd.drive0
94 pd.drive1
95 pd.drive2
96 pd.drive3
97 pd.cluster
98 pd.nice
100 In addition, you can use the parameter pd.disable to disable
101 the driver entirely.
105 /* Changes:
107 1.01 GRG 1997.01.24 Restored pd_reset()
108 Added eject ioctl
109 1.02 GRG 1998.05.06 SMP spinlock changes,
110 Added slave support
111 1.03 GRG 1998.06.16 Eliminate an Ugh.
112 1.04 GRG 1998.08.15 Extra debugging, use HZ in loop timing
113 1.05 GRG 1998.09.24 Added jumbo support
117 #define PD_VERSION "1.05"
118 #define PD_MAJOR 45
119 #define PD_NAME "pd"
120 #define PD_UNITS 4
122 /* Here are things one can override from the insmod command.
123 Most are autoprobed by paride unless set here. Verbose is off
124 by default.
127 #include <linux/types.h>
129 static int verbose = 0;
130 static int major = PD_MAJOR;
131 static char *name = PD_NAME;
132 static int cluster = 64;
133 static int nice = 0;
134 static int disable = 0;
136 static int drive0[8] = { 0, 0, 0, -1, 0, 1, -1, -1 };
137 static int drive1[8] = { 0, 0, 0, -1, 0, 1, -1, -1 };
138 static int drive2[8] = { 0, 0, 0, -1, 0, 1, -1, -1 };
139 static int drive3[8] = { 0, 0, 0, -1, 0, 1, -1, -1 };
141 static int (*drives[4])[8] = {&drive0, &drive1, &drive2, &drive3};
143 enum {D_PRT, D_PRO, D_UNI, D_MOD, D_GEO, D_SBY, D_DLY, D_SLV};
145 /* end of parameters */
147 #include <linux/init.h>
148 #include <linux/module.h>
149 #include <linux/gfp.h>
150 #include <linux/fs.h>
151 #include <linux/delay.h>
152 #include <linux/hdreg.h>
153 #include <linux/cdrom.h> /* for the eject ioctl */
154 #include <linux/blkdev.h>
155 #include <linux/blkpg.h>
156 #include <linux/kernel.h>
157 #include <linux/mutex.h>
158 #include <linux/uaccess.h>
159 #include <linux/workqueue.h>
161 static DEFINE_MUTEX(pd_mutex);
162 static DEFINE_SPINLOCK(pd_lock);
164 module_param(verbose, int, 0);
165 module_param(major, int, 0);
166 module_param(name, charp, 0);
167 module_param(cluster, int, 0);
168 module_param(nice, int, 0);
169 module_param_array(drive0, int, NULL, 0);
170 module_param_array(drive1, int, NULL, 0);
171 module_param_array(drive2, int, NULL, 0);
172 module_param_array(drive3, int, NULL, 0);
174 #include "paride.h"
176 #define PD_BITS 4
178 /* numbers for "SCSI" geometry */
180 #define PD_LOG_HEADS 64
181 #define PD_LOG_SECTS 32
183 #define PD_ID_OFF 54
184 #define PD_ID_LEN 14
186 #define PD_MAX_RETRIES 5
187 #define PD_TMO 800 /* interrupt timeout in jiffies */
188 #define PD_SPIN_DEL 50 /* spin delay in micro-seconds */
190 #define PD_SPIN (1000000*PD_TMO)/(HZ*PD_SPIN_DEL)
192 #define STAT_ERR 0x00001
193 #define STAT_INDEX 0x00002
194 #define STAT_ECC 0x00004
195 #define STAT_DRQ 0x00008
196 #define STAT_SEEK 0x00010
197 #define STAT_WRERR 0x00020
198 #define STAT_READY 0x00040
199 #define STAT_BUSY 0x00080
201 #define ERR_AMNF 0x00100
202 #define ERR_TK0NF 0x00200
203 #define ERR_ABRT 0x00400
204 #define ERR_MCR 0x00800
205 #define ERR_IDNF 0x01000
206 #define ERR_MC 0x02000
207 #define ERR_UNC 0x04000
208 #define ERR_TMO 0x10000
210 #define IDE_READ 0x20
211 #define IDE_WRITE 0x30
212 #define IDE_READ_VRFY 0x40
213 #define IDE_INIT_DEV_PARMS 0x91
214 #define IDE_STANDBY 0x96
215 #define IDE_ACKCHANGE 0xdb
216 #define IDE_DOORLOCK 0xde
217 #define IDE_DOORUNLOCK 0xdf
218 #define IDE_IDENTIFY 0xec
219 #define IDE_EJECT 0xed
221 #define PD_NAMELEN 8
223 struct pd_unit {
224 struct pi_adapter pia; /* interface to paride layer */
225 struct pi_adapter *pi;
226 int access; /* count of active opens ... */
227 int capacity; /* Size of this volume in sectors */
228 int heads; /* physical geometry */
229 int sectors;
230 int cylinders;
231 int can_lba;
232 int drive; /* master=0 slave=1 */
233 int changed; /* Have we seen a disk change ? */
234 int removable; /* removable media device ? */
235 int standby;
236 int alt_geom;
237 char name[PD_NAMELEN]; /* pda, pdb, etc ... */
238 struct gendisk *gd;
241 static struct pd_unit pd[PD_UNITS];
243 static char pd_scratch[512]; /* scratch block buffer */
245 static char *pd_errs[17] = { "ERR", "INDEX", "ECC", "DRQ", "SEEK", "WRERR",
246 "READY", "BUSY", "AMNF", "TK0NF", "ABRT", "MCR",
247 "IDNF", "MC", "UNC", "???", "TMO"
250 static void *par_drv; /* reference of parport driver */
252 static inline int status_reg(struct pd_unit *disk)
254 return pi_read_regr(disk->pi, 1, 6);
257 static inline int read_reg(struct pd_unit *disk, int reg)
259 return pi_read_regr(disk->pi, 0, reg);
262 static inline void write_status(struct pd_unit *disk, int val)
264 pi_write_regr(disk->pi, 1, 6, val);
267 static inline void write_reg(struct pd_unit *disk, int reg, int val)
269 pi_write_regr(disk->pi, 0, reg, val);
272 static inline u8 DRIVE(struct pd_unit *disk)
274 return 0xa0+0x10*disk->drive;
277 /* ide command interface */
279 static void pd_print_error(struct pd_unit *disk, char *msg, int status)
281 int i;
283 printk("%s: %s: status = 0x%x =", disk->name, msg, status);
284 for (i = 0; i < ARRAY_SIZE(pd_errs); i++)
285 if (status & (1 << i))
286 printk(" %s", pd_errs[i]);
287 printk("\n");
290 static void pd_reset(struct pd_unit *disk)
291 { /* called only for MASTER drive */
292 write_status(disk, 4);
293 udelay(50);
294 write_status(disk, 0);
295 udelay(250);
298 #define DBMSG(msg) ((verbose>1)?(msg):NULL)
300 static int pd_wait_for(struct pd_unit *disk, int w, char *msg)
301 { /* polled wait */
302 int k, r, e;
304 k = 0;
305 while (k < PD_SPIN) {
306 r = status_reg(disk);
307 k++;
308 if (((r & w) == w) && !(r & STAT_BUSY))
309 break;
310 udelay(PD_SPIN_DEL);
312 e = (read_reg(disk, 1) << 8) + read_reg(disk, 7);
313 if (k >= PD_SPIN)
314 e |= ERR_TMO;
315 if ((e & (STAT_ERR | ERR_TMO)) && (msg != NULL))
316 pd_print_error(disk, msg, e);
317 return e;
320 static void pd_send_command(struct pd_unit *disk, int n, int s, int h, int c0, int c1, int func)
322 write_reg(disk, 6, DRIVE(disk) + h);
323 write_reg(disk, 1, 0); /* the IDE task file */
324 write_reg(disk, 2, n);
325 write_reg(disk, 3, s);
326 write_reg(disk, 4, c0);
327 write_reg(disk, 5, c1);
328 write_reg(disk, 7, func);
330 udelay(1);
333 static void pd_ide_command(struct pd_unit *disk, int func, int block, int count)
335 int c1, c0, h, s;
337 if (disk->can_lba) {
338 s = block & 255;
339 c0 = (block >>= 8) & 255;
340 c1 = (block >>= 8) & 255;
341 h = ((block >>= 8) & 15) + 0x40;
342 } else {
343 s = (block % disk->sectors) + 1;
344 h = (block /= disk->sectors) % disk->heads;
345 c0 = (block /= disk->heads) % 256;
346 c1 = (block >>= 8);
348 pd_send_command(disk, count, s, h, c0, c1, func);
351 /* The i/o request engine */
353 enum action {Fail = 0, Ok = 1, Hold, Wait};
355 static struct request *pd_req; /* current request */
356 static enum action (*phase)(void);
358 static void run_fsm(void);
360 static void ps_tq_int(struct work_struct *work);
362 static DECLARE_DELAYED_WORK(fsm_tq, ps_tq_int);
364 static void schedule_fsm(void)
366 if (!nice)
367 schedule_delayed_work(&fsm_tq, 0);
368 else
369 schedule_delayed_work(&fsm_tq, nice-1);
372 static void ps_tq_int(struct work_struct *work)
374 run_fsm();
377 static enum action do_pd_io_start(void);
378 static enum action pd_special(void);
379 static enum action do_pd_read_start(void);
380 static enum action do_pd_write_start(void);
381 static enum action do_pd_read_drq(void);
382 static enum action do_pd_write_done(void);
384 static int pd_queue;
385 static int pd_claimed;
387 static struct pd_unit *pd_current; /* current request's drive */
388 static PIA *pi_current; /* current request's PIA */
390 static int set_next_request(void)
392 struct gendisk *disk;
393 struct request_queue *q;
394 int old_pos = pd_queue;
396 do {
397 disk = pd[pd_queue].gd;
398 q = disk ? disk->queue : NULL;
399 if (++pd_queue == PD_UNITS)
400 pd_queue = 0;
401 if (q) {
402 pd_req = blk_fetch_request(q);
403 if (pd_req)
404 break;
406 } while (pd_queue != old_pos);
408 return pd_req != NULL;
411 static void run_fsm(void)
413 while (1) {
414 enum action res;
415 unsigned long saved_flags;
416 int stop = 0;
418 if (!phase) {
419 pd_current = pd_req->rq_disk->private_data;
420 pi_current = pd_current->pi;
421 phase = do_pd_io_start;
424 switch (pd_claimed) {
425 case 0:
426 pd_claimed = 1;
427 if (!pi_schedule_claimed(pi_current, run_fsm))
428 return;
429 /* fall through */
430 case 1:
431 pd_claimed = 2;
432 pi_current->proto->connect(pi_current);
435 switch(res = phase()) {
436 case Ok: case Fail:
437 pi_disconnect(pi_current);
438 pd_claimed = 0;
439 phase = NULL;
440 spin_lock_irqsave(&pd_lock, saved_flags);
441 if (!__blk_end_request_cur(pd_req,
442 res == Ok ? 0 : BLK_STS_IOERR)) {
443 if (!set_next_request())
444 stop = 1;
446 spin_unlock_irqrestore(&pd_lock, saved_flags);
447 if (stop)
448 return;
449 /* fall through */
450 case Hold:
451 schedule_fsm();
452 return;
453 case Wait:
454 pi_disconnect(pi_current);
455 pd_claimed = 0;
460 static int pd_retries = 0; /* i/o error retry count */
461 static int pd_block; /* address of next requested block */
462 static int pd_count; /* number of blocks still to do */
463 static int pd_run; /* sectors in current cluster */
464 static char *pd_buf; /* buffer for request in progress */
466 static enum action do_pd_io_start(void)
468 switch (req_op(pd_req)) {
469 case REQ_OP_DRV_IN:
470 phase = pd_special;
471 return pd_special();
472 case REQ_OP_READ:
473 case REQ_OP_WRITE:
474 pd_block = blk_rq_pos(pd_req);
475 pd_count = blk_rq_cur_sectors(pd_req);
476 if (pd_block + pd_count > get_capacity(pd_req->rq_disk))
477 return Fail;
478 pd_run = blk_rq_sectors(pd_req);
479 pd_buf = bio_data(pd_req->bio);
480 pd_retries = 0;
481 if (req_op(pd_req) == REQ_OP_READ)
482 return do_pd_read_start();
483 else
484 return do_pd_write_start();
486 return Fail;
489 static enum action pd_special(void)
491 enum action (*func)(struct pd_unit *) = pd_req->special;
492 return func(pd_current);
495 static int pd_next_buf(void)
497 unsigned long saved_flags;
499 pd_count--;
500 pd_run--;
501 pd_buf += 512;
502 pd_block++;
503 if (!pd_run)
504 return 1;
505 if (pd_count)
506 return 0;
507 spin_lock_irqsave(&pd_lock, saved_flags);
508 __blk_end_request_cur(pd_req, 0);
509 pd_count = blk_rq_cur_sectors(pd_req);
510 pd_buf = bio_data(pd_req->bio);
511 spin_unlock_irqrestore(&pd_lock, saved_flags);
512 return 0;
515 static unsigned long pd_timeout;
517 static enum action do_pd_read_start(void)
519 if (pd_wait_for(pd_current, STAT_READY, "do_pd_read") & STAT_ERR) {
520 if (pd_retries < PD_MAX_RETRIES) {
521 pd_retries++;
522 return Wait;
524 return Fail;
526 pd_ide_command(pd_current, IDE_READ, pd_block, pd_run);
527 phase = do_pd_read_drq;
528 pd_timeout = jiffies + PD_TMO;
529 return Hold;
532 static enum action do_pd_write_start(void)
534 if (pd_wait_for(pd_current, STAT_READY, "do_pd_write") & STAT_ERR) {
535 if (pd_retries < PD_MAX_RETRIES) {
536 pd_retries++;
537 return Wait;
539 return Fail;
541 pd_ide_command(pd_current, IDE_WRITE, pd_block, pd_run);
542 while (1) {
543 if (pd_wait_for(pd_current, STAT_DRQ, "do_pd_write_drq") & STAT_ERR) {
544 if (pd_retries < PD_MAX_RETRIES) {
545 pd_retries++;
546 return Wait;
548 return Fail;
550 pi_write_block(pd_current->pi, pd_buf, 512);
551 if (pd_next_buf())
552 break;
554 phase = do_pd_write_done;
555 pd_timeout = jiffies + PD_TMO;
556 return Hold;
559 static inline int pd_ready(void)
561 return !(status_reg(pd_current) & STAT_BUSY);
564 static enum action do_pd_read_drq(void)
566 if (!pd_ready() && !time_after_eq(jiffies, pd_timeout))
567 return Hold;
569 while (1) {
570 if (pd_wait_for(pd_current, STAT_DRQ, "do_pd_read_drq") & STAT_ERR) {
571 if (pd_retries < PD_MAX_RETRIES) {
572 pd_retries++;
573 phase = do_pd_read_start;
574 return Wait;
576 return Fail;
578 pi_read_block(pd_current->pi, pd_buf, 512);
579 if (pd_next_buf())
580 break;
582 return Ok;
585 static enum action do_pd_write_done(void)
587 if (!pd_ready() && !time_after_eq(jiffies, pd_timeout))
588 return Hold;
590 if (pd_wait_for(pd_current, STAT_READY, "do_pd_write_done") & STAT_ERR) {
591 if (pd_retries < PD_MAX_RETRIES) {
592 pd_retries++;
593 phase = do_pd_write_start;
594 return Wait;
596 return Fail;
598 return Ok;
601 /* special io requests */
603 /* According to the ATA standard, the default CHS geometry should be
604 available following a reset. Some Western Digital drives come up
605 in a mode where only LBA addresses are accepted until the device
606 parameters are initialised.
609 static void pd_init_dev_parms(struct pd_unit *disk)
611 pd_wait_for(disk, 0, DBMSG("before init_dev_parms"));
612 pd_send_command(disk, disk->sectors, 0, disk->heads - 1, 0, 0,
613 IDE_INIT_DEV_PARMS);
614 udelay(300);
615 pd_wait_for(disk, 0, "Initialise device parameters");
618 static enum action pd_door_lock(struct pd_unit *disk)
620 if (!(pd_wait_for(disk, STAT_READY, "Lock") & STAT_ERR)) {
621 pd_send_command(disk, 1, 0, 0, 0, 0, IDE_DOORLOCK);
622 pd_wait_for(disk, STAT_READY, "Lock done");
624 return Ok;
627 static enum action pd_door_unlock(struct pd_unit *disk)
629 if (!(pd_wait_for(disk, STAT_READY, "Lock") & STAT_ERR)) {
630 pd_send_command(disk, 1, 0, 0, 0, 0, IDE_DOORUNLOCK);
631 pd_wait_for(disk, STAT_READY, "Lock done");
633 return Ok;
636 static enum action pd_eject(struct pd_unit *disk)
638 pd_wait_for(disk, 0, DBMSG("before unlock on eject"));
639 pd_send_command(disk, 1, 0, 0, 0, 0, IDE_DOORUNLOCK);
640 pd_wait_for(disk, 0, DBMSG("after unlock on eject"));
641 pd_wait_for(disk, 0, DBMSG("before eject"));
642 pd_send_command(disk, 0, 0, 0, 0, 0, IDE_EJECT);
643 pd_wait_for(disk, 0, DBMSG("after eject"));
644 return Ok;
647 static enum action pd_media_check(struct pd_unit *disk)
649 int r = pd_wait_for(disk, STAT_READY, DBMSG("before media_check"));
650 if (!(r & STAT_ERR)) {
651 pd_send_command(disk, 1, 1, 0, 0, 0, IDE_READ_VRFY);
652 r = pd_wait_for(disk, STAT_READY, DBMSG("RDY after READ_VRFY"));
653 } else
654 disk->changed = 1; /* say changed if other error */
655 if (r & ERR_MC) {
656 disk->changed = 1;
657 pd_send_command(disk, 1, 0, 0, 0, 0, IDE_ACKCHANGE);
658 pd_wait_for(disk, STAT_READY, DBMSG("RDY after ACKCHANGE"));
659 pd_send_command(disk, 1, 1, 0, 0, 0, IDE_READ_VRFY);
660 r = pd_wait_for(disk, STAT_READY, DBMSG("RDY after VRFY"));
662 return Ok;
665 static void pd_standby_off(struct pd_unit *disk)
667 pd_wait_for(disk, 0, DBMSG("before STANDBY"));
668 pd_send_command(disk, 0, 0, 0, 0, 0, IDE_STANDBY);
669 pd_wait_for(disk, 0, DBMSG("after STANDBY"));
672 static enum action pd_identify(struct pd_unit *disk)
674 int j;
675 char id[PD_ID_LEN + 1];
677 /* WARNING: here there may be dragons. reset() applies to both drives,
678 but we call it only on probing the MASTER. This should allow most
679 common configurations to work, but be warned that a reset can clear
680 settings on the SLAVE drive.
683 if (disk->drive == 0)
684 pd_reset(disk);
686 write_reg(disk, 6, DRIVE(disk));
687 pd_wait_for(disk, 0, DBMSG("before IDENT"));
688 pd_send_command(disk, 1, 0, 0, 0, 0, IDE_IDENTIFY);
690 if (pd_wait_for(disk, STAT_DRQ, DBMSG("IDENT DRQ")) & STAT_ERR)
691 return Fail;
692 pi_read_block(disk->pi, pd_scratch, 512);
693 disk->can_lba = pd_scratch[99] & 2;
694 disk->sectors = le16_to_cpu(*(__le16 *) (pd_scratch + 12));
695 disk->heads = le16_to_cpu(*(__le16 *) (pd_scratch + 6));
696 disk->cylinders = le16_to_cpu(*(__le16 *) (pd_scratch + 2));
697 if (disk->can_lba)
698 disk->capacity = le32_to_cpu(*(__le32 *) (pd_scratch + 120));
699 else
700 disk->capacity = disk->sectors * disk->heads * disk->cylinders;
702 for (j = 0; j < PD_ID_LEN; j++)
703 id[j ^ 1] = pd_scratch[j + PD_ID_OFF];
704 j = PD_ID_LEN - 1;
705 while ((j >= 0) && (id[j] <= 0x20))
706 j--;
707 j++;
708 id[j] = 0;
710 disk->removable = pd_scratch[0] & 0x80;
712 printk("%s: %s, %s, %d blocks [%dM], (%d/%d/%d), %s media\n",
713 disk->name, id,
714 disk->drive ? "slave" : "master",
715 disk->capacity, disk->capacity / 2048,
716 disk->cylinders, disk->heads, disk->sectors,
717 disk->removable ? "removable" : "fixed");
719 if (disk->capacity)
720 pd_init_dev_parms(disk);
721 if (!disk->standby)
722 pd_standby_off(disk);
724 return Ok;
727 /* end of io request engine */
729 static void do_pd_request(struct request_queue * q)
731 if (pd_req)
732 return;
733 pd_req = blk_fetch_request(q);
734 if (!pd_req)
735 return;
737 schedule_fsm();
740 static int pd_special_command(struct pd_unit *disk,
741 enum action (*func)(struct pd_unit *disk))
743 struct request *rq;
745 rq = blk_get_request(disk->gd->queue, REQ_OP_DRV_IN, 0);
746 if (IS_ERR(rq))
747 return PTR_ERR(rq);
749 rq->special = func;
750 blk_execute_rq(disk->gd->queue, disk->gd, rq, 0);
751 blk_put_request(rq);
752 return 0;
755 /* kernel glue structures */
757 static int pd_open(struct block_device *bdev, fmode_t mode)
759 struct pd_unit *disk = bdev->bd_disk->private_data;
761 mutex_lock(&pd_mutex);
762 disk->access++;
764 if (disk->removable) {
765 pd_special_command(disk, pd_media_check);
766 pd_special_command(disk, pd_door_lock);
768 mutex_unlock(&pd_mutex);
769 return 0;
772 static int pd_getgeo(struct block_device *bdev, struct hd_geometry *geo)
774 struct pd_unit *disk = bdev->bd_disk->private_data;
776 if (disk->alt_geom) {
777 geo->heads = PD_LOG_HEADS;
778 geo->sectors = PD_LOG_SECTS;
779 geo->cylinders = disk->capacity / (geo->heads * geo->sectors);
780 } else {
781 geo->heads = disk->heads;
782 geo->sectors = disk->sectors;
783 geo->cylinders = disk->cylinders;
786 return 0;
789 static int pd_ioctl(struct block_device *bdev, fmode_t mode,
790 unsigned int cmd, unsigned long arg)
792 struct pd_unit *disk = bdev->bd_disk->private_data;
794 switch (cmd) {
795 case CDROMEJECT:
796 mutex_lock(&pd_mutex);
797 if (disk->access == 1)
798 pd_special_command(disk, pd_eject);
799 mutex_unlock(&pd_mutex);
800 return 0;
801 default:
802 return -EINVAL;
806 static void pd_release(struct gendisk *p, fmode_t mode)
808 struct pd_unit *disk = p->private_data;
810 mutex_lock(&pd_mutex);
811 if (!--disk->access && disk->removable)
812 pd_special_command(disk, pd_door_unlock);
813 mutex_unlock(&pd_mutex);
816 static unsigned int pd_check_events(struct gendisk *p, unsigned int clearing)
818 struct pd_unit *disk = p->private_data;
819 int r;
820 if (!disk->removable)
821 return 0;
822 pd_special_command(disk, pd_media_check);
823 r = disk->changed;
824 disk->changed = 0;
825 return r ? DISK_EVENT_MEDIA_CHANGE : 0;
828 static int pd_revalidate(struct gendisk *p)
830 struct pd_unit *disk = p->private_data;
831 if (pd_special_command(disk, pd_identify) == 0)
832 set_capacity(p, disk->capacity);
833 else
834 set_capacity(p, 0);
835 return 0;
838 static const struct block_device_operations pd_fops = {
839 .owner = THIS_MODULE,
840 .open = pd_open,
841 .release = pd_release,
842 .ioctl = pd_ioctl,
843 .getgeo = pd_getgeo,
844 .check_events = pd_check_events,
845 .revalidate_disk= pd_revalidate
848 /* probing */
850 static void pd_probe_drive(struct pd_unit *disk)
852 struct gendisk *p = alloc_disk(1 << PD_BITS);
853 if (!p)
854 return;
855 strcpy(p->disk_name, disk->name);
856 p->fops = &pd_fops;
857 p->major = major;
858 p->first_minor = (disk - pd) << PD_BITS;
859 disk->gd = p;
860 p->private_data = disk;
861 p->queue = blk_init_queue(do_pd_request, &pd_lock);
862 if (!p->queue) {
863 disk->gd = NULL;
864 put_disk(p);
865 return;
867 blk_queue_max_hw_sectors(p->queue, cluster);
868 blk_queue_bounce_limit(p->queue, BLK_BOUNCE_HIGH);
870 if (disk->drive == -1) {
871 for (disk->drive = 0; disk->drive <= 1; disk->drive++)
872 if (pd_special_command(disk, pd_identify) == 0)
873 return;
874 } else if (pd_special_command(disk, pd_identify) == 0)
875 return;
876 disk->gd = NULL;
877 put_disk(p);
880 static int pd_detect(void)
882 int found = 0, unit, pd_drive_count = 0;
883 struct pd_unit *disk;
885 for (unit = 0; unit < PD_UNITS; unit++) {
886 int *parm = *drives[unit];
887 struct pd_unit *disk = pd + unit;
888 disk->pi = &disk->pia;
889 disk->access = 0;
890 disk->changed = 1;
891 disk->capacity = 0;
892 disk->drive = parm[D_SLV];
893 snprintf(disk->name, PD_NAMELEN, "%s%c", name, 'a'+unit);
894 disk->alt_geom = parm[D_GEO];
895 disk->standby = parm[D_SBY];
896 if (parm[D_PRT])
897 pd_drive_count++;
900 par_drv = pi_register_driver(name);
901 if (!par_drv) {
902 pr_err("failed to register %s driver\n", name);
903 return -1;
906 if (pd_drive_count == 0) { /* nothing spec'd - so autoprobe for 1 */
907 disk = pd;
908 if (pi_init(disk->pi, 1, -1, -1, -1, -1, -1, pd_scratch,
909 PI_PD, verbose, disk->name)) {
910 pd_probe_drive(disk);
911 if (!disk->gd)
912 pi_release(disk->pi);
915 } else {
916 for (unit = 0, disk = pd; unit < PD_UNITS; unit++, disk++) {
917 int *parm = *drives[unit];
918 if (!parm[D_PRT])
919 continue;
920 if (pi_init(disk->pi, 0, parm[D_PRT], parm[D_MOD],
921 parm[D_UNI], parm[D_PRO], parm[D_DLY],
922 pd_scratch, PI_PD, verbose, disk->name)) {
923 pd_probe_drive(disk);
924 if (!disk->gd)
925 pi_release(disk->pi);
929 for (unit = 0, disk = pd; unit < PD_UNITS; unit++, disk++) {
930 if (disk->gd) {
931 set_capacity(disk->gd, disk->capacity);
932 add_disk(disk->gd);
933 found = 1;
936 if (!found) {
937 printk("%s: no valid drive found\n", name);
938 pi_unregister_driver(par_drv);
940 return found;
943 static int __init pd_init(void)
945 if (disable)
946 goto out1;
948 if (register_blkdev(major, name))
949 goto out1;
951 printk("%s: %s version %s, major %d, cluster %d, nice %d\n",
952 name, name, PD_VERSION, major, cluster, nice);
953 if (!pd_detect())
954 goto out2;
956 return 0;
958 out2:
959 unregister_blkdev(major, name);
960 out1:
961 return -ENODEV;
964 static void __exit pd_exit(void)
966 struct pd_unit *disk;
967 int unit;
968 unregister_blkdev(major, name);
969 for (unit = 0, disk = pd; unit < PD_UNITS; unit++, disk++) {
970 struct gendisk *p = disk->gd;
971 if (p) {
972 disk->gd = NULL;
973 del_gendisk(p);
974 blk_cleanup_queue(p->queue);
975 put_disk(p);
976 pi_release(disk->pi);
981 MODULE_LICENSE("GPL");
982 module_init(pd_init)
983 module_exit(pd_exit)