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[net-next-2.6.git] / drivers / block / pktcdvd.c
CommitLineData
1da177e4
LT
1/*
2 * Copyright (C) 2000 Jens Axboe <axboe@suse.de>
3 * Copyright (C) 2001-2004 Peter Osterlund <petero2@telia.com>
adb9250a 4 * Copyright (C) 2006 Thomas Maier <balagi@justmail.de>
1da177e4
LT
5 *
6 * May be copied or modified under the terms of the GNU General Public
7 * License. See linux/COPYING for more information.
8 *
a676f8d0
PO
9 * Packet writing layer for ATAPI and SCSI CD-RW, DVD+RW, DVD-RW and
10 * DVD-RAM devices.
1da177e4
LT
11 *
12 * Theory of operation:
13 *
a676f8d0
PO
14 * At the lowest level, there is the standard driver for the CD/DVD device,
15 * typically ide-cd.c or sr.c. This driver can handle read and write requests,
16 * but it doesn't know anything about the special restrictions that apply to
17 * packet writing. One restriction is that write requests must be aligned to
18 * packet boundaries on the physical media, and the size of a write request
19 * must be equal to the packet size. Another restriction is that a
20 * GPCMD_FLUSH_CACHE command has to be issued to the drive before a read
21 * command, if the previous command was a write.
22 *
23 * The purpose of the packet writing driver is to hide these restrictions from
24 * higher layers, such as file systems, and present a block device that can be
25 * randomly read and written using 2kB-sized blocks.
26 *
27 * The lowest layer in the packet writing driver is the packet I/O scheduler.
28 * Its data is defined by the struct packet_iosched and includes two bio
29 * queues with pending read and write requests. These queues are processed
30 * by the pkt_iosched_process_queue() function. The write requests in this
31 * queue are already properly aligned and sized. This layer is responsible for
32 * issuing the flush cache commands and scheduling the I/O in a good order.
33 *
34 * The next layer transforms unaligned write requests to aligned writes. This
35 * transformation requires reading missing pieces of data from the underlying
36 * block device, assembling the pieces to full packets and queuing them to the
37 * packet I/O scheduler.
38 *
39 * At the top layer there is a custom make_request_fn function that forwards
40 * read requests directly to the iosched queue and puts write requests in the
41 * unaligned write queue. A kernel thread performs the necessary read
42 * gathering to convert the unaligned writes to aligned writes and then feeds
43 * them to the packet I/O scheduler.
1da177e4
LT
44 *
45 *************************************************************************/
46
1da177e4 47#include <linux/pktcdvd.h>
1da177e4
LT
48#include <linux/module.h>
49#include <linux/types.h>
50#include <linux/kernel.h>
51#include <linux/kthread.h>
52#include <linux/errno.h>
53#include <linux/spinlock.h>
54#include <linux/file.h>
55#include <linux/proc_fs.h>
56#include <linux/seq_file.h>
57#include <linux/miscdevice.h>
7dfb7103 58#include <linux/freezer.h>
1657f824 59#include <linux/mutex.h>
1da177e4
LT
60#include <scsi/scsi_cmnd.h>
61#include <scsi/scsi_ioctl.h>
cef28963 62#include <scsi/scsi.h>
32694850
TM
63#include <linux/debugfs.h>
64#include <linux/device.h>
1da177e4
LT
65
66#include <asm/uaccess.h>
67
7822082d
TM
68#define DRIVER_NAME "pktcdvd"
69
1da177e4
LT
70#if PACKET_DEBUG
71#define DPRINTK(fmt, args...) printk(KERN_NOTICE fmt, ##args)
72#else
73#define DPRINTK(fmt, args...)
74#endif
75
76#if PACKET_DEBUG > 1
77#define VPRINTK(fmt, args...) printk(KERN_NOTICE fmt, ##args)
78#else
79#define VPRINTK(fmt, args...)
80#endif
81
82#define MAX_SPEED 0xffff
83
84#define ZONE(sector, pd) (((sector) + (pd)->offset) & ~((pd)->settings.size - 1))
85
86static struct pktcdvd_device *pkt_devs[MAX_WRITERS];
87static struct proc_dir_entry *pkt_proc;
add21660 88static int pktdev_major;
0a0fc960
TM
89static int write_congestion_on = PKT_WRITE_CONGESTION_ON;
90static int write_congestion_off = PKT_WRITE_CONGESTION_OFF;
1657f824 91static struct mutex ctl_mutex; /* Serialize open/close/setup/teardown */
1da177e4
LT
92static mempool_t *psd_pool;
93
32694850
TM
94static struct class *class_pktcdvd = NULL; /* /sys/class/pktcdvd */
95static struct dentry *pkt_debugfs_root = NULL; /* /debug/pktcdvd */
96
97/* forward declaration */
98static int pkt_setup_dev(dev_t dev, dev_t* pkt_dev);
99static int pkt_remove_dev(dev_t pkt_dev);
100static int pkt_seq_show(struct seq_file *m, void *p);
101
102
103
104/*
105 * create and register a pktcdvd kernel object.
106 */
107static struct pktcdvd_kobj* pkt_kobj_create(struct pktcdvd_device *pd,
108 const char* name,
109 struct kobject* parent,
110 struct kobj_type* ktype)
111{
112 struct pktcdvd_kobj *p;
113 p = kzalloc(sizeof(*p), GFP_KERNEL);
114 if (!p)
115 return NULL;
116 kobject_set_name(&p->kobj, "%s", name);
117 p->kobj.parent = parent;
118 p->kobj.ktype = ktype;
119 p->pd = pd;
120 if (kobject_register(&p->kobj) != 0)
121 return NULL;
122 return p;
123}
124/*
125 * remove a pktcdvd kernel object.
126 */
127static void pkt_kobj_remove(struct pktcdvd_kobj *p)
128{
129 if (p)
130 kobject_unregister(&p->kobj);
131}
132/*
133 * default release function for pktcdvd kernel objects.
134 */
135static void pkt_kobj_release(struct kobject *kobj)
136{
137 kfree(to_pktcdvdkobj(kobj));
138}
139
140
141/**********************************************************
142 *
143 * sysfs interface for pktcdvd
144 * by (C) 2006 Thomas Maier <balagi@justmail.de>
145 *
146 **********************************************************/
147
148#define DEF_ATTR(_obj,_name,_mode) \
7b595756 149 static struct attribute _obj = { .name = _name, .mode = _mode }
32694850
TM
150
151/**********************************************************
152 /sys/class/pktcdvd/pktcdvd[0-7]/
153 stat/reset
154 stat/packets_started
155 stat/packets_finished
156 stat/kb_written
157 stat/kb_read
158 stat/kb_read_gather
159 write_queue/size
160 write_queue/congestion_off
161 write_queue/congestion_on
162 **********************************************************/
163
164DEF_ATTR(kobj_pkt_attr_st1, "reset", 0200);
165DEF_ATTR(kobj_pkt_attr_st2, "packets_started", 0444);
166DEF_ATTR(kobj_pkt_attr_st3, "packets_finished", 0444);
167DEF_ATTR(kobj_pkt_attr_st4, "kb_written", 0444);
168DEF_ATTR(kobj_pkt_attr_st5, "kb_read", 0444);
169DEF_ATTR(kobj_pkt_attr_st6, "kb_read_gather", 0444);
170
171static struct attribute *kobj_pkt_attrs_stat[] = {
172 &kobj_pkt_attr_st1,
173 &kobj_pkt_attr_st2,
174 &kobj_pkt_attr_st3,
175 &kobj_pkt_attr_st4,
176 &kobj_pkt_attr_st5,
177 &kobj_pkt_attr_st6,
178 NULL
179};
180
181DEF_ATTR(kobj_pkt_attr_wq1, "size", 0444);
182DEF_ATTR(kobj_pkt_attr_wq2, "congestion_off", 0644);
183DEF_ATTR(kobj_pkt_attr_wq3, "congestion_on", 0644);
184
185static struct attribute *kobj_pkt_attrs_wqueue[] = {
186 &kobj_pkt_attr_wq1,
187 &kobj_pkt_attr_wq2,
188 &kobj_pkt_attr_wq3,
189 NULL
190};
191
32694850
TM
192static ssize_t kobj_pkt_show(struct kobject *kobj,
193 struct attribute *attr, char *data)
194{
195 struct pktcdvd_device *pd = to_pktcdvdkobj(kobj)->pd;
196 int n = 0;
197 int v;
198 if (strcmp(attr->name, "packets_started") == 0) {
199 n = sprintf(data, "%lu\n", pd->stats.pkt_started);
200
201 } else if (strcmp(attr->name, "packets_finished") == 0) {
202 n = sprintf(data, "%lu\n", pd->stats.pkt_ended);
203
204 } else if (strcmp(attr->name, "kb_written") == 0) {
205 n = sprintf(data, "%lu\n", pd->stats.secs_w >> 1);
206
207 } else if (strcmp(attr->name, "kb_read") == 0) {
208 n = sprintf(data, "%lu\n", pd->stats.secs_r >> 1);
209
210 } else if (strcmp(attr->name, "kb_read_gather") == 0) {
211 n = sprintf(data, "%lu\n", pd->stats.secs_rg >> 1);
212
213 } else if (strcmp(attr->name, "size") == 0) {
214 spin_lock(&pd->lock);
215 v = pd->bio_queue_size;
216 spin_unlock(&pd->lock);
217 n = sprintf(data, "%d\n", v);
218
219 } else if (strcmp(attr->name, "congestion_off") == 0) {
220 spin_lock(&pd->lock);
221 v = pd->write_congestion_off;
222 spin_unlock(&pd->lock);
223 n = sprintf(data, "%d\n", v);
224
225 } else if (strcmp(attr->name, "congestion_on") == 0) {
226 spin_lock(&pd->lock);
227 v = pd->write_congestion_on;
228 spin_unlock(&pd->lock);
229 n = sprintf(data, "%d\n", v);
230 }
231 return n;
232}
233
234static void init_write_congestion_marks(int* lo, int* hi)
235{
236 if (*hi > 0) {
237 *hi = max(*hi, 500);
238 *hi = min(*hi, 1000000);
239 if (*lo <= 0)
240 *lo = *hi - 100;
241 else {
242 *lo = min(*lo, *hi - 100);
243 *lo = max(*lo, 100);
244 }
245 } else {
246 *hi = -1;
247 *lo = -1;
248 }
249}
250
251static ssize_t kobj_pkt_store(struct kobject *kobj,
252 struct attribute *attr,
253 const char *data, size_t len)
254{
255 struct pktcdvd_device *pd = to_pktcdvdkobj(kobj)->pd;
256 int val;
32694850 257
83f3aa3d 258 if (strcmp(attr->name, "reset") == 0 && len > 0) {
32694850
TM
259 pd->stats.pkt_started = 0;
260 pd->stats.pkt_ended = 0;
261 pd->stats.secs_w = 0;
262 pd->stats.secs_rg = 0;
263 pd->stats.secs_r = 0;
264
265 } else if (strcmp(attr->name, "congestion_off") == 0
83f3aa3d 266 && sscanf(data, "%d", &val) == 1) {
32694850
TM
267 spin_lock(&pd->lock);
268 pd->write_congestion_off = val;
269 init_write_congestion_marks(&pd->write_congestion_off,
270 &pd->write_congestion_on);
271 spin_unlock(&pd->lock);
272
273 } else if (strcmp(attr->name, "congestion_on") == 0
83f3aa3d 274 && sscanf(data, "%d", &val) == 1) {
32694850
TM
275 spin_lock(&pd->lock);
276 pd->write_congestion_on = val;
277 init_write_congestion_marks(&pd->write_congestion_off,
278 &pd->write_congestion_on);
279 spin_unlock(&pd->lock);
280 }
281 return len;
282}
283
284static struct sysfs_ops kobj_pkt_ops = {
285 .show = kobj_pkt_show,
286 .store = kobj_pkt_store
287};
288static struct kobj_type kobj_pkt_type_stat = {
289 .release = pkt_kobj_release,
290 .sysfs_ops = &kobj_pkt_ops,
291 .default_attrs = kobj_pkt_attrs_stat
292};
293static struct kobj_type kobj_pkt_type_wqueue = {
294 .release = pkt_kobj_release,
295 .sysfs_ops = &kobj_pkt_ops,
296 .default_attrs = kobj_pkt_attrs_wqueue
297};
298
299static void pkt_sysfs_dev_new(struct pktcdvd_device *pd)
300{
301 if (class_pktcdvd) {
302 pd->clsdev = class_device_create(class_pktcdvd,
303 NULL, pd->pkt_dev,
304 NULL, "%s", pd->name);
305 if (IS_ERR(pd->clsdev))
306 pd->clsdev = NULL;
307 }
308 if (pd->clsdev) {
309 pd->kobj_stat = pkt_kobj_create(pd, "stat",
310 &pd->clsdev->kobj,
311 &kobj_pkt_type_stat);
312 pd->kobj_wqueue = pkt_kobj_create(pd, "write_queue",
313 &pd->clsdev->kobj,
314 &kobj_pkt_type_wqueue);
315 }
316}
317
318static void pkt_sysfs_dev_remove(struct pktcdvd_device *pd)
319{
320 pkt_kobj_remove(pd->kobj_stat);
321 pkt_kobj_remove(pd->kobj_wqueue);
322 if (class_pktcdvd)
323 class_device_destroy(class_pktcdvd, pd->pkt_dev);
324}
325
326
327/********************************************************************
328 /sys/class/pktcdvd/
329 add map block device
330 remove unmap packet dev
331 device_map show mappings
332 *******************************************************************/
333
334static void class_pktcdvd_release(struct class *cls)
335{
336 kfree(cls);
337}
338static ssize_t class_pktcdvd_show_map(struct class *c, char *data)
339{
340 int n = 0;
341 int idx;
342 mutex_lock_nested(&ctl_mutex, SINGLE_DEPTH_NESTING);
343 for (idx = 0; idx < MAX_WRITERS; idx++) {
344 struct pktcdvd_device *pd = pkt_devs[idx];
345 if (!pd)
346 continue;
347 n += sprintf(data+n, "%s %u:%u %u:%u\n",
348 pd->name,
349 MAJOR(pd->pkt_dev), MINOR(pd->pkt_dev),
350 MAJOR(pd->bdev->bd_dev),
351 MINOR(pd->bdev->bd_dev));
352 }
353 mutex_unlock(&ctl_mutex);
354 return n;
355}
356
357static ssize_t class_pktcdvd_store_add(struct class *c, const char *buf,
358 size_t count)
359{
360 unsigned int major, minor;
83f3aa3d 361 if (sscanf(buf, "%u:%u", &major, &minor) == 2) {
32694850
TM
362 pkt_setup_dev(MKDEV(major, minor), NULL);
363 return count;
364 }
365 return -EINVAL;
366}
367
368static ssize_t class_pktcdvd_store_remove(struct class *c, const char *buf,
369 size_t count)
370{
371 unsigned int major, minor;
83f3aa3d 372 if (sscanf(buf, "%u:%u", &major, &minor) == 2) {
32694850
TM
373 pkt_remove_dev(MKDEV(major, minor));
374 return count;
375 }
376 return -EINVAL;
377}
378
379static struct class_attribute class_pktcdvd_attrs[] = {
380 __ATTR(add, 0200, NULL, class_pktcdvd_store_add),
381 __ATTR(remove, 0200, NULL, class_pktcdvd_store_remove),
382 __ATTR(device_map, 0444, class_pktcdvd_show_map, NULL),
383 __ATTR_NULL
384};
385
386
387static int pkt_sysfs_init(void)
388{
389 int ret = 0;
390
391 /*
392 * create control files in sysfs
393 * /sys/class/pktcdvd/...
394 */
395 class_pktcdvd = kzalloc(sizeof(*class_pktcdvd), GFP_KERNEL);
396 if (!class_pktcdvd)
397 return -ENOMEM;
398 class_pktcdvd->name = DRIVER_NAME;
399 class_pktcdvd->owner = THIS_MODULE;
400 class_pktcdvd->class_release = class_pktcdvd_release;
401 class_pktcdvd->class_attrs = class_pktcdvd_attrs;
402 ret = class_register(class_pktcdvd);
403 if (ret) {
404 kfree(class_pktcdvd);
405 class_pktcdvd = NULL;
406 printk(DRIVER_NAME": failed to create class pktcdvd\n");
407 return ret;
408 }
409 return 0;
410}
411
412static void pkt_sysfs_cleanup(void)
413{
414 if (class_pktcdvd)
415 class_destroy(class_pktcdvd);
416 class_pktcdvd = NULL;
417}
418
419/********************************************************************
420 entries in debugfs
421
422 /debugfs/pktcdvd[0-7]/
423 info
424
425 *******************************************************************/
426
427static int pkt_debugfs_seq_show(struct seq_file *m, void *p)
428{
429 return pkt_seq_show(m, p);
430}
431
432static int pkt_debugfs_fops_open(struct inode *inode, struct file *file)
433{
434 return single_open(file, pkt_debugfs_seq_show, inode->i_private);
435}
436
2b8693c0 437static const struct file_operations debug_fops = {
32694850
TM
438 .open = pkt_debugfs_fops_open,
439 .read = seq_read,
440 .llseek = seq_lseek,
441 .release = single_release,
442 .owner = THIS_MODULE,
443};
444
445static void pkt_debugfs_dev_new(struct pktcdvd_device *pd)
446{
447 if (!pkt_debugfs_root)
448 return;
449 pd->dfs_f_info = NULL;
450 pd->dfs_d_root = debugfs_create_dir(pd->name, pkt_debugfs_root);
451 if (IS_ERR(pd->dfs_d_root)) {
452 pd->dfs_d_root = NULL;
453 return;
454 }
455 pd->dfs_f_info = debugfs_create_file("info", S_IRUGO,
456 pd->dfs_d_root, pd, &debug_fops);
457 if (IS_ERR(pd->dfs_f_info)) {
458 pd->dfs_f_info = NULL;
459 return;
460 }
461}
462
463static void pkt_debugfs_dev_remove(struct pktcdvd_device *pd)
464{
465 if (!pkt_debugfs_root)
466 return;
467 if (pd->dfs_f_info)
468 debugfs_remove(pd->dfs_f_info);
469 pd->dfs_f_info = NULL;
470 if (pd->dfs_d_root)
471 debugfs_remove(pd->dfs_d_root);
472 pd->dfs_d_root = NULL;
473}
474
475static void pkt_debugfs_init(void)
476{
477 pkt_debugfs_root = debugfs_create_dir(DRIVER_NAME, NULL);
478 if (IS_ERR(pkt_debugfs_root)) {
479 pkt_debugfs_root = NULL;
480 return;
481 }
482}
483
484static void pkt_debugfs_cleanup(void)
485{
486 if (!pkt_debugfs_root)
487 return;
488 debugfs_remove(pkt_debugfs_root);
489 pkt_debugfs_root = NULL;
490}
491
492/* ----------------------------------------------------------*/
493
1da177e4
LT
494
495static void pkt_bio_finished(struct pktcdvd_device *pd)
496{
497 BUG_ON(atomic_read(&pd->cdrw.pending_bios) <= 0);
498 if (atomic_dec_and_test(&pd->cdrw.pending_bios)) {
7822082d 499 VPRINTK(DRIVER_NAME": queue empty\n");
1da177e4
LT
500 atomic_set(&pd->iosched.attention, 1);
501 wake_up(&pd->wqueue);
502 }
503}
504
505static void pkt_bio_destructor(struct bio *bio)
506{
507 kfree(bio->bi_io_vec);
508 kfree(bio);
509}
510
511static struct bio *pkt_bio_alloc(int nr_iovecs)
512{
513 struct bio_vec *bvl = NULL;
514 struct bio *bio;
515
516 bio = kmalloc(sizeof(struct bio), GFP_KERNEL);
517 if (!bio)
518 goto no_bio;
519 bio_init(bio);
520
1107d2e0 521 bvl = kcalloc(nr_iovecs, sizeof(struct bio_vec), GFP_KERNEL);
1da177e4
LT
522 if (!bvl)
523 goto no_bvl;
1da177e4
LT
524
525 bio->bi_max_vecs = nr_iovecs;
526 bio->bi_io_vec = bvl;
527 bio->bi_destructor = pkt_bio_destructor;
528
529 return bio;
530
531 no_bvl:
532 kfree(bio);
533 no_bio:
534 return NULL;
535}
536
537/*
538 * Allocate a packet_data struct
539 */
e1bc89bc 540static struct packet_data *pkt_alloc_packet_data(int frames)
1da177e4
LT
541{
542 int i;
543 struct packet_data *pkt;
544
1107d2e0 545 pkt = kzalloc(sizeof(struct packet_data), GFP_KERNEL);
1da177e4
LT
546 if (!pkt)
547 goto no_pkt;
1da177e4 548
e1bc89bc
PO
549 pkt->frames = frames;
550 pkt->w_bio = pkt_bio_alloc(frames);
1da177e4
LT
551 if (!pkt->w_bio)
552 goto no_bio;
553
e1bc89bc 554 for (i = 0; i < frames / FRAMES_PER_PAGE; i++) {
1da177e4
LT
555 pkt->pages[i] = alloc_page(GFP_KERNEL|__GFP_ZERO);
556 if (!pkt->pages[i])
557 goto no_page;
558 }
559
560 spin_lock_init(&pkt->lock);
561
e1bc89bc 562 for (i = 0; i < frames; i++) {
1da177e4
LT
563 struct bio *bio = pkt_bio_alloc(1);
564 if (!bio)
565 goto no_rd_bio;
566 pkt->r_bios[i] = bio;
567 }
568
569 return pkt;
570
571no_rd_bio:
e1bc89bc 572 for (i = 0; i < frames; i++) {
1da177e4
LT
573 struct bio *bio = pkt->r_bios[i];
574 if (bio)
575 bio_put(bio);
576 }
577
578no_page:
e1bc89bc 579 for (i = 0; i < frames / FRAMES_PER_PAGE; i++)
1da177e4
LT
580 if (pkt->pages[i])
581 __free_page(pkt->pages[i]);
582 bio_put(pkt->w_bio);
583no_bio:
584 kfree(pkt);
585no_pkt:
586 return NULL;
587}
588
589/*
590 * Free a packet_data struct
591 */
592static void pkt_free_packet_data(struct packet_data *pkt)
593{
594 int i;
595
e1bc89bc 596 for (i = 0; i < pkt->frames; i++) {
1da177e4
LT
597 struct bio *bio = pkt->r_bios[i];
598 if (bio)
599 bio_put(bio);
600 }
e1bc89bc 601 for (i = 0; i < pkt->frames / FRAMES_PER_PAGE; i++)
1da177e4
LT
602 __free_page(pkt->pages[i]);
603 bio_put(pkt->w_bio);
604 kfree(pkt);
605}
606
607static void pkt_shrink_pktlist(struct pktcdvd_device *pd)
608{
609 struct packet_data *pkt, *next;
610
611 BUG_ON(!list_empty(&pd->cdrw.pkt_active_list));
612
613 list_for_each_entry_safe(pkt, next, &pd->cdrw.pkt_free_list, list) {
614 pkt_free_packet_data(pkt);
615 }
e1bc89bc 616 INIT_LIST_HEAD(&pd->cdrw.pkt_free_list);
1da177e4
LT
617}
618
619static int pkt_grow_pktlist(struct pktcdvd_device *pd, int nr_packets)
620{
621 struct packet_data *pkt;
622
e1bc89bc
PO
623 BUG_ON(!list_empty(&pd->cdrw.pkt_free_list));
624
1da177e4 625 while (nr_packets > 0) {
e1bc89bc 626 pkt = pkt_alloc_packet_data(pd->settings.size >> 2);
1da177e4
LT
627 if (!pkt) {
628 pkt_shrink_pktlist(pd);
629 return 0;
630 }
631 pkt->id = nr_packets;
632 pkt->pd = pd;
633 list_add(&pkt->list, &pd->cdrw.pkt_free_list);
634 nr_packets--;
635 }
636 return 1;
637}
638
1da177e4
LT
639static inline struct pkt_rb_node *pkt_rbtree_next(struct pkt_rb_node *node)
640{
641 struct rb_node *n = rb_next(&node->rb_node);
642 if (!n)
643 return NULL;
644 return rb_entry(n, struct pkt_rb_node, rb_node);
645}
646
ac893963 647static void pkt_rbtree_erase(struct pktcdvd_device *pd, struct pkt_rb_node *node)
1da177e4
LT
648{
649 rb_erase(&node->rb_node, &pd->bio_queue);
650 mempool_free(node, pd->rb_pool);
651 pd->bio_queue_size--;
652 BUG_ON(pd->bio_queue_size < 0);
653}
654
655/*
656 * Find the first node in the pd->bio_queue rb tree with a starting sector >= s.
657 */
658static struct pkt_rb_node *pkt_rbtree_find(struct pktcdvd_device *pd, sector_t s)
659{
660 struct rb_node *n = pd->bio_queue.rb_node;
661 struct rb_node *next;
662 struct pkt_rb_node *tmp;
663
664 if (!n) {
665 BUG_ON(pd->bio_queue_size > 0);
666 return NULL;
667 }
668
669 for (;;) {
670 tmp = rb_entry(n, struct pkt_rb_node, rb_node);
671 if (s <= tmp->bio->bi_sector)
672 next = n->rb_left;
673 else
674 next = n->rb_right;
675 if (!next)
676 break;
677 n = next;
678 }
679
680 if (s > tmp->bio->bi_sector) {
681 tmp = pkt_rbtree_next(tmp);
682 if (!tmp)
683 return NULL;
684 }
685 BUG_ON(s > tmp->bio->bi_sector);
686 return tmp;
687}
688
689/*
690 * Insert a node into the pd->bio_queue rb tree.
691 */
692static void pkt_rbtree_insert(struct pktcdvd_device *pd, struct pkt_rb_node *node)
693{
694 struct rb_node **p = &pd->bio_queue.rb_node;
695 struct rb_node *parent = NULL;
696 sector_t s = node->bio->bi_sector;
697 struct pkt_rb_node *tmp;
698
699 while (*p) {
700 parent = *p;
701 tmp = rb_entry(parent, struct pkt_rb_node, rb_node);
702 if (s < tmp->bio->bi_sector)
703 p = &(*p)->rb_left;
704 else
705 p = &(*p)->rb_right;
706 }
707 rb_link_node(&node->rb_node, parent, p);
708 rb_insert_color(&node->rb_node, &pd->bio_queue);
709 pd->bio_queue_size++;
710}
711
712/*
713 * Add a bio to a single linked list defined by its head and tail pointers.
714 */
ac893963 715static void pkt_add_list_last(struct bio *bio, struct bio **list_head, struct bio **list_tail)
1da177e4
LT
716{
717 bio->bi_next = NULL;
718 if (*list_tail) {
719 BUG_ON((*list_head) == NULL);
720 (*list_tail)->bi_next = bio;
721 (*list_tail) = bio;
722 } else {
723 BUG_ON((*list_head) != NULL);
724 (*list_head) = bio;
725 (*list_tail) = bio;
726 }
727}
728
729/*
730 * Remove and return the first bio from a single linked list defined by its
731 * head and tail pointers.
732 */
733static inline struct bio *pkt_get_list_first(struct bio **list_head, struct bio **list_tail)
734{
735 struct bio *bio;
736
737 if (*list_head == NULL)
738 return NULL;
739
740 bio = *list_head;
741 *list_head = bio->bi_next;
742 if (*list_head == NULL)
743 *list_tail = NULL;
744
745 bio->bi_next = NULL;
746 return bio;
747}
748
749/*
750 * Send a packet_command to the underlying block device and
751 * wait for completion.
752 */
753static int pkt_generic_packet(struct pktcdvd_device *pd, struct packet_command *cgc)
754{
406c9b60 755 request_queue_t *q = bdev_get_queue(pd->bdev);
1da177e4 756 struct request *rq;
406c9b60
CH
757 int ret = 0;
758
759 rq = blk_get_request(q, (cgc->data_direction == CGC_DATA_WRITE) ?
760 WRITE : READ, __GFP_WAIT);
761
762 if (cgc->buflen) {
763 if (blk_rq_map_kern(q, rq, cgc->buffer, cgc->buflen, __GFP_WAIT))
764 goto out;
765 }
1da177e4 766
91e4ee38 767 rq->cmd_len = COMMAND_SIZE(cgc->cmd[0]);
406c9b60
CH
768 memcpy(rq->cmd, cgc->cmd, CDROM_PACKET_SIZE);
769 if (sizeof(rq->cmd) > CDROM_PACKET_SIZE)
770 memset(rq->cmd + CDROM_PACKET_SIZE, 0, sizeof(rq->cmd) - CDROM_PACKET_SIZE);
1da177e4 771
1da177e4 772 rq->timeout = 60*HZ;
4aff5e23
JA
773 rq->cmd_type = REQ_TYPE_BLOCK_PC;
774 rq->cmd_flags |= REQ_HARDBARRIER;
1da177e4 775 if (cgc->quiet)
4aff5e23 776 rq->cmd_flags |= REQ_QUIET;
1da177e4 777
406c9b60 778 blk_execute_rq(rq->q, pd->bdev->bd_disk, rq, 0);
cbc31a47
AM
779 if (rq->errors)
780 ret = -EIO;
406c9b60 781out:
1da177e4 782 blk_put_request(rq);
406c9b60 783 return ret;
1da177e4
LT
784}
785
786/*
787 * A generic sense dump / resolve mechanism should be implemented across
788 * all ATAPI + SCSI devices.
789 */
790static void pkt_dump_sense(struct packet_command *cgc)
791{
792 static char *info[9] = { "No sense", "Recovered error", "Not ready",
793 "Medium error", "Hardware error", "Illegal request",
794 "Unit attention", "Data protect", "Blank check" };
795 int i;
796 struct request_sense *sense = cgc->sense;
797
7822082d 798 printk(DRIVER_NAME":");
1da177e4
LT
799 for (i = 0; i < CDROM_PACKET_SIZE; i++)
800 printk(" %02x", cgc->cmd[i]);
801 printk(" - ");
802
803 if (sense == NULL) {
804 printk("no sense\n");
805 return;
806 }
807
808 printk("sense %02x.%02x.%02x", sense->sense_key, sense->asc, sense->ascq);
809
810 if (sense->sense_key > 8) {
811 printk(" (INVALID)\n");
812 return;
813 }
814
815 printk(" (%s)\n", info[sense->sense_key]);
816}
817
818/*
819 * flush the drive cache to media
820 */
821static int pkt_flush_cache(struct pktcdvd_device *pd)
822{
823 struct packet_command cgc;
824
825 init_cdrom_command(&cgc, NULL, 0, CGC_DATA_NONE);
826 cgc.cmd[0] = GPCMD_FLUSH_CACHE;
827 cgc.quiet = 1;
828
829 /*
830 * the IMMED bit -- we default to not setting it, although that
831 * would allow a much faster close, this is safer
832 */
833#if 0
834 cgc.cmd[1] = 1 << 1;
835#endif
836 return pkt_generic_packet(pd, &cgc);
837}
838
839/*
840 * speed is given as the normal factor, e.g. 4 for 4x
841 */
842static int pkt_set_speed(struct pktcdvd_device *pd, unsigned write_speed, unsigned read_speed)
843{
844 struct packet_command cgc;
845 struct request_sense sense;
846 int ret;
847
848 init_cdrom_command(&cgc, NULL, 0, CGC_DATA_NONE);
849 cgc.sense = &sense;
850 cgc.cmd[0] = GPCMD_SET_SPEED;
851 cgc.cmd[2] = (read_speed >> 8) & 0xff;
852 cgc.cmd[3] = read_speed & 0xff;
853 cgc.cmd[4] = (write_speed >> 8) & 0xff;
854 cgc.cmd[5] = write_speed & 0xff;
855
856 if ((ret = pkt_generic_packet(pd, &cgc)))
857 pkt_dump_sense(&cgc);
858
859 return ret;
860}
861
862/*
863 * Queue a bio for processing by the low-level CD device. Must be called
864 * from process context.
865 */
46c271be 866static void pkt_queue_bio(struct pktcdvd_device *pd, struct bio *bio)
1da177e4
LT
867{
868 spin_lock(&pd->iosched.lock);
869 if (bio_data_dir(bio) == READ) {
870 pkt_add_list_last(bio, &pd->iosched.read_queue,
871 &pd->iosched.read_queue_tail);
1da177e4
LT
872 } else {
873 pkt_add_list_last(bio, &pd->iosched.write_queue,
874 &pd->iosched.write_queue_tail);
875 }
876 spin_unlock(&pd->iosched.lock);
877
878 atomic_set(&pd->iosched.attention, 1);
879 wake_up(&pd->wqueue);
880}
881
882/*
883 * Process the queued read/write requests. This function handles special
884 * requirements for CDRW drives:
885 * - A cache flush command must be inserted before a read request if the
886 * previous request was a write.
46c271be 887 * - Switching between reading and writing is slow, so don't do it more often
1da177e4 888 * than necessary.
46c271be
PO
889 * - Optimize for throughput at the expense of latency. This means that streaming
890 * writes will never be interrupted by a read, but if the drive has to seek
891 * before the next write, switch to reading instead if there are any pending
892 * read requests.
1da177e4
LT
893 * - Set the read speed according to current usage pattern. When only reading
894 * from the device, it's best to use the highest possible read speed, but
895 * when switching often between reading and writing, it's better to have the
896 * same read and write speeds.
1da177e4
LT
897 */
898static void pkt_iosched_process_queue(struct pktcdvd_device *pd)
899{
1da177e4
LT
900
901 if (atomic_read(&pd->iosched.attention) == 0)
902 return;
903 atomic_set(&pd->iosched.attention, 0);
904
1da177e4
LT
905 for (;;) {
906 struct bio *bio;
46c271be 907 int reads_queued, writes_queued;
1da177e4
LT
908
909 spin_lock(&pd->iosched.lock);
910 reads_queued = (pd->iosched.read_queue != NULL);
911 writes_queued = (pd->iosched.write_queue != NULL);
1da177e4
LT
912 spin_unlock(&pd->iosched.lock);
913
914 if (!reads_queued && !writes_queued)
915 break;
916
917 if (pd->iosched.writing) {
46c271be
PO
918 int need_write_seek = 1;
919 spin_lock(&pd->iosched.lock);
920 bio = pd->iosched.write_queue;
921 spin_unlock(&pd->iosched.lock);
922 if (bio && (bio->bi_sector == pd->iosched.last_write))
923 need_write_seek = 0;
924 if (need_write_seek && reads_queued) {
1da177e4 925 if (atomic_read(&pd->cdrw.pending_bios) > 0) {
7822082d 926 VPRINTK(DRIVER_NAME": write, waiting\n");
1da177e4
LT
927 break;
928 }
929 pkt_flush_cache(pd);
930 pd->iosched.writing = 0;
931 }
932 } else {
933 if (!reads_queued && writes_queued) {
934 if (atomic_read(&pd->cdrw.pending_bios) > 0) {
7822082d 935 VPRINTK(DRIVER_NAME": read, waiting\n");
1da177e4
LT
936 break;
937 }
938 pd->iosched.writing = 1;
939 }
940 }
941
942 spin_lock(&pd->iosched.lock);
943 if (pd->iosched.writing) {
944 bio = pkt_get_list_first(&pd->iosched.write_queue,
945 &pd->iosched.write_queue_tail);
946 } else {
947 bio = pkt_get_list_first(&pd->iosched.read_queue,
948 &pd->iosched.read_queue_tail);
949 }
950 spin_unlock(&pd->iosched.lock);
951
952 if (!bio)
953 continue;
954
955 if (bio_data_dir(bio) == READ)
956 pd->iosched.successive_reads += bio->bi_size >> 10;
46c271be 957 else {
1da177e4 958 pd->iosched.successive_reads = 0;
46c271be
PO
959 pd->iosched.last_write = bio->bi_sector + bio_sectors(bio);
960 }
1da177e4
LT
961 if (pd->iosched.successive_reads >= HI_SPEED_SWITCH) {
962 if (pd->read_speed == pd->write_speed) {
963 pd->read_speed = MAX_SPEED;
964 pkt_set_speed(pd, pd->write_speed, pd->read_speed);
965 }
966 } else {
967 if (pd->read_speed != pd->write_speed) {
968 pd->read_speed = pd->write_speed;
969 pkt_set_speed(pd, pd->write_speed, pd->read_speed);
970 }
971 }
972
973 atomic_inc(&pd->cdrw.pending_bios);
974 generic_make_request(bio);
975 }
976}
977
978/*
979 * Special care is needed if the underlying block device has a small
980 * max_phys_segments value.
981 */
982static int pkt_set_segment_merging(struct pktcdvd_device *pd, request_queue_t *q)
983{
984 if ((pd->settings.size << 9) / CD_FRAMESIZE <= q->max_phys_segments) {
985 /*
986 * The cdrom device can handle one segment/frame
987 */
988 clear_bit(PACKET_MERGE_SEGS, &pd->flags);
989 return 0;
990 } else if ((pd->settings.size << 9) / PAGE_SIZE <= q->max_phys_segments) {
991 /*
992 * We can handle this case at the expense of some extra memory
993 * copies during write operations
994 */
995 set_bit(PACKET_MERGE_SEGS, &pd->flags);
996 return 0;
997 } else {
7822082d 998 printk(DRIVER_NAME": cdrom max_phys_segments too small\n");
1da177e4
LT
999 return -EIO;
1000 }
1001}
1002
1003/*
1004 * Copy CD_FRAMESIZE bytes from src_bio into a destination page
1005 */
1006static void pkt_copy_bio_data(struct bio *src_bio, int seg, int offs, struct page *dst_page, int dst_offs)
1007{
1008 unsigned int copy_size = CD_FRAMESIZE;
1009
1010 while (copy_size > 0) {
1011 struct bio_vec *src_bvl = bio_iovec_idx(src_bio, seg);
1012 void *vfrom = kmap_atomic(src_bvl->bv_page, KM_USER0) +
1013 src_bvl->bv_offset + offs;
1014 void *vto = page_address(dst_page) + dst_offs;
1015 int len = min_t(int, copy_size, src_bvl->bv_len - offs);
1016
1017 BUG_ON(len < 0);
1018 memcpy(vto, vfrom, len);
1019 kunmap_atomic(vfrom, KM_USER0);
1020
1021 seg++;
1022 offs = 0;
1023 dst_offs += len;
1024 copy_size -= len;
1025 }
1026}
1027
1028/*
1029 * Copy all data for this packet to pkt->pages[], so that
1030 * a) The number of required segments for the write bio is minimized, which
1031 * is necessary for some scsi controllers.
1032 * b) The data can be used as cache to avoid read requests if we receive a
1033 * new write request for the same zone.
1034 */
72772323 1035static void pkt_make_local_copy(struct packet_data *pkt, struct bio_vec *bvec)
1da177e4
LT
1036{
1037 int f, p, offs;
1038
1039 /* Copy all data to pkt->pages[] */
1040 p = 0;
1041 offs = 0;
1042 for (f = 0; f < pkt->frames; f++) {
72772323
PO
1043 if (bvec[f].bv_page != pkt->pages[p]) {
1044 void *vfrom = kmap_atomic(bvec[f].bv_page, KM_USER0) + bvec[f].bv_offset;
1da177e4
LT
1045 void *vto = page_address(pkt->pages[p]) + offs;
1046 memcpy(vto, vfrom, CD_FRAMESIZE);
1047 kunmap_atomic(vfrom, KM_USER0);
72772323
PO
1048 bvec[f].bv_page = pkt->pages[p];
1049 bvec[f].bv_offset = offs;
1da177e4 1050 } else {
72772323 1051 BUG_ON(bvec[f].bv_offset != offs);
1da177e4
LT
1052 }
1053 offs += CD_FRAMESIZE;
1054 if (offs >= PAGE_SIZE) {
1da177e4
LT
1055 offs = 0;
1056 p++;
1057 }
1058 }
1059}
1060
1061static int pkt_end_io_read(struct bio *bio, unsigned int bytes_done, int err)
1062{
1063 struct packet_data *pkt = bio->bi_private;
1064 struct pktcdvd_device *pd = pkt->pd;
1065 BUG_ON(!pd);
1066
1067 if (bio->bi_size)
1068 return 1;
1069
1070 VPRINTK("pkt_end_io_read: bio=%p sec0=%llx sec=%llx err=%d\n", bio,
1071 (unsigned long long)pkt->sector, (unsigned long long)bio->bi_sector, err);
1072
1073 if (err)
1074 atomic_inc(&pkt->io_errors);
1075 if (atomic_dec_and_test(&pkt->io_wait)) {
1076 atomic_inc(&pkt->run_sm);
1077 wake_up(&pd->wqueue);
1078 }
1079 pkt_bio_finished(pd);
1080
1081 return 0;
1082}
1083
1084static int pkt_end_io_packet_write(struct bio *bio, unsigned int bytes_done, int err)
1085{
1086 struct packet_data *pkt = bio->bi_private;
1087 struct pktcdvd_device *pd = pkt->pd;
1088 BUG_ON(!pd);
1089
1090 if (bio->bi_size)
1091 return 1;
1092
1093 VPRINTK("pkt_end_io_packet_write: id=%d, err=%d\n", pkt->id, err);
1094
1095 pd->stats.pkt_ended++;
1096
1097 pkt_bio_finished(pd);
1098 atomic_dec(&pkt->io_wait);
1099 atomic_inc(&pkt->run_sm);
1100 wake_up(&pd->wqueue);
1101 return 0;
1102}
1103
1104/*
1105 * Schedule reads for the holes in a packet
1106 */
1107static void pkt_gather_data(struct pktcdvd_device *pd, struct packet_data *pkt)
1108{
1109 int frames_read = 0;
1110 struct bio *bio;
1111 int f;
1112 char written[PACKET_MAX_SIZE];
1113
1114 BUG_ON(!pkt->orig_bios);
1115
1116 atomic_set(&pkt->io_wait, 0);
1117 atomic_set(&pkt->io_errors, 0);
1118
1da177e4
LT
1119 /*
1120 * Figure out which frames we need to read before we can write.
1121 */
1122 memset(written, 0, sizeof(written));
1123 spin_lock(&pkt->lock);
1124 for (bio = pkt->orig_bios; bio; bio = bio->bi_next) {
1125 int first_frame = (bio->bi_sector - pkt->sector) / (CD_FRAMESIZE >> 9);
1126 int num_frames = bio->bi_size / CD_FRAMESIZE;
06e7ab53 1127 pd->stats.secs_w += num_frames * (CD_FRAMESIZE >> 9);
1da177e4
LT
1128 BUG_ON(first_frame < 0);
1129 BUG_ON(first_frame + num_frames > pkt->frames);
1130 for (f = first_frame; f < first_frame + num_frames; f++)
1131 written[f] = 1;
1132 }
1133 spin_unlock(&pkt->lock);
1134
06e7ab53
PO
1135 if (pkt->cache_valid) {
1136 VPRINTK("pkt_gather_data: zone %llx cached\n",
1137 (unsigned long long)pkt->sector);
1138 goto out_account;
1139 }
1140
1da177e4
LT
1141 /*
1142 * Schedule reads for missing parts of the packet.
1143 */
1144 for (f = 0; f < pkt->frames; f++) {
1145 int p, offset;
1146 if (written[f])
1147 continue;
1148 bio = pkt->r_bios[f];
1149 bio_init(bio);
1150 bio->bi_max_vecs = 1;
1151 bio->bi_sector = pkt->sector + f * (CD_FRAMESIZE >> 9);
1152 bio->bi_bdev = pd->bdev;
1153 bio->bi_end_io = pkt_end_io_read;
1154 bio->bi_private = pkt;
1155
1156 p = (f * CD_FRAMESIZE) / PAGE_SIZE;
1157 offset = (f * CD_FRAMESIZE) % PAGE_SIZE;
1158 VPRINTK("pkt_gather_data: Adding frame %d, page:%p offs:%d\n",
1159 f, pkt->pages[p], offset);
1160 if (!bio_add_page(bio, pkt->pages[p], CD_FRAMESIZE, offset))
1161 BUG();
1162
1163 atomic_inc(&pkt->io_wait);
1164 bio->bi_rw = READ;
46c271be 1165 pkt_queue_bio(pd, bio);
1da177e4
LT
1166 frames_read++;
1167 }
1168
1169out_account:
1170 VPRINTK("pkt_gather_data: need %d frames for zone %llx\n",
1171 frames_read, (unsigned long long)pkt->sector);
1172 pd->stats.pkt_started++;
1173 pd->stats.secs_rg += frames_read * (CD_FRAMESIZE >> 9);
1da177e4
LT
1174}
1175
1176/*
1177 * Find a packet matching zone, or the least recently used packet if
1178 * there is no match.
1179 */
1180static struct packet_data *pkt_get_packet_data(struct pktcdvd_device *pd, int zone)
1181{
1182 struct packet_data *pkt;
1183
1184 list_for_each_entry(pkt, &pd->cdrw.pkt_free_list, list) {
1185 if (pkt->sector == zone || pkt->list.next == &pd->cdrw.pkt_free_list) {
1186 list_del_init(&pkt->list);
1187 if (pkt->sector != zone)
1188 pkt->cache_valid = 0;
610827de 1189 return pkt;
1da177e4
LT
1190 }
1191 }
610827de
PO
1192 BUG();
1193 return NULL;
1da177e4
LT
1194}
1195
1196static void pkt_put_packet_data(struct pktcdvd_device *pd, struct packet_data *pkt)
1197{
1198 if (pkt->cache_valid) {
1199 list_add(&pkt->list, &pd->cdrw.pkt_free_list);
1200 } else {
1201 list_add_tail(&pkt->list, &pd->cdrw.pkt_free_list);
1202 }
1203}
1204
1205/*
1206 * recover a failed write, query for relocation if possible
1207 *
1208 * returns 1 if recovery is possible, or 0 if not
1209 *
1210 */
1211static int pkt_start_recovery(struct packet_data *pkt)
1212{
1213 /*
1214 * FIXME. We need help from the file system to implement
1215 * recovery handling.
1216 */
1217 return 0;
1218#if 0
1219 struct request *rq = pkt->rq;
1220 struct pktcdvd_device *pd = rq->rq_disk->private_data;
1221 struct block_device *pkt_bdev;
1222 struct super_block *sb = NULL;
1223 unsigned long old_block, new_block;
1224 sector_t new_sector;
1225
1226 pkt_bdev = bdget(kdev_t_to_nr(pd->pkt_dev));
1227 if (pkt_bdev) {
1228 sb = get_super(pkt_bdev);
1229 bdput(pkt_bdev);
1230 }
1231
1232 if (!sb)
1233 return 0;
1234
1235 if (!sb->s_op || !sb->s_op->relocate_blocks)
1236 goto out;
1237
1238 old_block = pkt->sector / (CD_FRAMESIZE >> 9);
1239 if (sb->s_op->relocate_blocks(sb, old_block, &new_block))
1240 goto out;
1241
1242 new_sector = new_block * (CD_FRAMESIZE >> 9);
1243 pkt->sector = new_sector;
1244
1245 pkt->bio->bi_sector = new_sector;
1246 pkt->bio->bi_next = NULL;
1247 pkt->bio->bi_flags = 1 << BIO_UPTODATE;
1248 pkt->bio->bi_idx = 0;
1249
1250 BUG_ON(pkt->bio->bi_rw != (1 << BIO_RW));
1251 BUG_ON(pkt->bio->bi_vcnt != pkt->frames);
1252 BUG_ON(pkt->bio->bi_size != pkt->frames * CD_FRAMESIZE);
1253 BUG_ON(pkt->bio->bi_end_io != pkt_end_io_packet_write);
1254 BUG_ON(pkt->bio->bi_private != pkt);
1255
1256 drop_super(sb);
1257 return 1;
1258
1259out:
1260 drop_super(sb);
1261 return 0;
1262#endif
1263}
1264
1265static inline void pkt_set_state(struct packet_data *pkt, enum packet_data_state state)
1266{
1267#if PACKET_DEBUG > 1
1268 static const char *state_name[] = {
1269 "IDLE", "WAITING", "READ_WAIT", "WRITE_WAIT", "RECOVERY", "FINISHED"
1270 };
1271 enum packet_data_state old_state = pkt->state;
1272 VPRINTK("pkt %2d : s=%6llx %s -> %s\n", pkt->id, (unsigned long long)pkt->sector,
1273 state_name[old_state], state_name[state]);
1274#endif
1275 pkt->state = state;
1276}
1277
1278/*
1279 * Scan the work queue to see if we can start a new packet.
1280 * returns non-zero if any work was done.
1281 */
1282static int pkt_handle_queue(struct pktcdvd_device *pd)
1283{
1284 struct packet_data *pkt, *p;
1285 struct bio *bio = NULL;
1286 sector_t zone = 0; /* Suppress gcc warning */
1287 struct pkt_rb_node *node, *first_node;
1288 struct rb_node *n;
0a0fc960 1289 int wakeup;
1da177e4
LT
1290
1291 VPRINTK("handle_queue\n");
1292
1293 atomic_set(&pd->scan_queue, 0);
1294
1295 if (list_empty(&pd->cdrw.pkt_free_list)) {
1296 VPRINTK("handle_queue: no pkt\n");
1297 return 0;
1298 }
1299
1300 /*
1301 * Try to find a zone we are not already working on.
1302 */
1303 spin_lock(&pd->lock);
1304 first_node = pkt_rbtree_find(pd, pd->current_sector);
1305 if (!first_node) {
1306 n = rb_first(&pd->bio_queue);
1307 if (n)
1308 first_node = rb_entry(n, struct pkt_rb_node, rb_node);
1309 }
1310 node = first_node;
1311 while (node) {
1312 bio = node->bio;
1313 zone = ZONE(bio->bi_sector, pd);
1314 list_for_each_entry(p, &pd->cdrw.pkt_active_list, list) {
7baeb6a5
PO
1315 if (p->sector == zone) {
1316 bio = NULL;
1da177e4 1317 goto try_next_bio;
7baeb6a5 1318 }
1da177e4
LT
1319 }
1320 break;
1321try_next_bio:
1322 node = pkt_rbtree_next(node);
1323 if (!node) {
1324 n = rb_first(&pd->bio_queue);
1325 if (n)
1326 node = rb_entry(n, struct pkt_rb_node, rb_node);
1327 }
1328 if (node == first_node)
1329 node = NULL;
1330 }
1331 spin_unlock(&pd->lock);
1332 if (!bio) {
1333 VPRINTK("handle_queue: no bio\n");
1334 return 0;
1335 }
1336
1337 pkt = pkt_get_packet_data(pd, zone);
1da177e4
LT
1338
1339 pd->current_sector = zone + pd->settings.size;
1340 pkt->sector = zone;
e1bc89bc 1341 BUG_ON(pkt->frames != pd->settings.size >> 2);
1da177e4
LT
1342 pkt->write_size = 0;
1343
1344 /*
1345 * Scan work queue for bios in the same zone and link them
1346 * to this packet.
1347 */
1348 spin_lock(&pd->lock);
1349 VPRINTK("pkt_handle_queue: looking for zone %llx\n", (unsigned long long)zone);
1350 while ((node = pkt_rbtree_find(pd, zone)) != NULL) {
1351 bio = node->bio;
1352 VPRINTK("pkt_handle_queue: found zone=%llx\n",
1353 (unsigned long long)ZONE(bio->bi_sector, pd));
1354 if (ZONE(bio->bi_sector, pd) != zone)
1355 break;
1356 pkt_rbtree_erase(pd, node);
1357 spin_lock(&pkt->lock);
1358 pkt_add_list_last(bio, &pkt->orig_bios, &pkt->orig_bios_tail);
1359 pkt->write_size += bio->bi_size / CD_FRAMESIZE;
1360 spin_unlock(&pkt->lock);
1361 }
0a0fc960
TM
1362 /* check write congestion marks, and if bio_queue_size is
1363 below, wake up any waiters */
1364 wakeup = (pd->write_congestion_on > 0
1365 && pd->bio_queue_size <= pd->write_congestion_off);
1da177e4 1366 spin_unlock(&pd->lock);
0a0fc960 1367 if (wakeup)
83f3aa3d 1368 clear_bdi_congested(&pd->disk->queue->backing_dev_info, WRITE);
1da177e4
LT
1369
1370 pkt->sleep_time = max(PACKET_WAIT_TIME, 1);
1371 pkt_set_state(pkt, PACKET_WAITING_STATE);
1372 atomic_set(&pkt->run_sm, 1);
1373
1374 spin_lock(&pd->cdrw.active_list_lock);
1375 list_add(&pkt->list, &pd->cdrw.pkt_active_list);
1376 spin_unlock(&pd->cdrw.active_list_lock);
1377
1378 return 1;
1379}
1380
1381/*
1382 * Assemble a bio to write one packet and queue the bio for processing
1383 * by the underlying block device.
1384 */
1385static void pkt_start_write(struct pktcdvd_device *pd, struct packet_data *pkt)
1386{
1387 struct bio *bio;
1da177e4
LT
1388 int f;
1389 int frames_write;
72772323 1390 struct bio_vec *bvec = pkt->w_bio->bi_io_vec;
1da177e4
LT
1391
1392 for (f = 0; f < pkt->frames; f++) {
72772323
PO
1393 bvec[f].bv_page = pkt->pages[(f * CD_FRAMESIZE) / PAGE_SIZE];
1394 bvec[f].bv_offset = (f * CD_FRAMESIZE) % PAGE_SIZE;
1da177e4
LT
1395 }
1396
1397 /*
72772323 1398 * Fill-in bvec with data from orig_bios.
1da177e4
LT
1399 */
1400 frames_write = 0;
1401 spin_lock(&pkt->lock);
1402 for (bio = pkt->orig_bios; bio; bio = bio->bi_next) {
1403 int segment = bio->bi_idx;
1404 int src_offs = 0;
1405 int first_frame = (bio->bi_sector - pkt->sector) / (CD_FRAMESIZE >> 9);
1406 int num_frames = bio->bi_size / CD_FRAMESIZE;
1407 BUG_ON(first_frame < 0);
1408 BUG_ON(first_frame + num_frames > pkt->frames);
1409 for (f = first_frame; f < first_frame + num_frames; f++) {
1410 struct bio_vec *src_bvl = bio_iovec_idx(bio, segment);
1411
1412 while (src_offs >= src_bvl->bv_len) {
1413 src_offs -= src_bvl->bv_len;
1414 segment++;
1415 BUG_ON(segment >= bio->bi_vcnt);
1416 src_bvl = bio_iovec_idx(bio, segment);
1417 }
1418
1419 if (src_bvl->bv_len - src_offs >= CD_FRAMESIZE) {
72772323
PO
1420 bvec[f].bv_page = src_bvl->bv_page;
1421 bvec[f].bv_offset = src_bvl->bv_offset + src_offs;
1da177e4
LT
1422 } else {
1423 pkt_copy_bio_data(bio, segment, src_offs,
72772323 1424 bvec[f].bv_page, bvec[f].bv_offset);
1da177e4
LT
1425 }
1426 src_offs += CD_FRAMESIZE;
1427 frames_write++;
1428 }
1429 }
1430 pkt_set_state(pkt, PACKET_WRITE_WAIT_STATE);
1431 spin_unlock(&pkt->lock);
1432
1433 VPRINTK("pkt_start_write: Writing %d frames for zone %llx\n",
1434 frames_write, (unsigned long long)pkt->sector);
1435 BUG_ON(frames_write != pkt->write_size);
1436
1437 if (test_bit(PACKET_MERGE_SEGS, &pd->flags) || (pkt->write_size < pkt->frames)) {
72772323 1438 pkt_make_local_copy(pkt, bvec);
1da177e4
LT
1439 pkt->cache_valid = 1;
1440 } else {
1441 pkt->cache_valid = 0;
1442 }
1443
1444 /* Start the write request */
1445 bio_init(pkt->w_bio);
1446 pkt->w_bio->bi_max_vecs = PACKET_MAX_SIZE;
1447 pkt->w_bio->bi_sector = pkt->sector;
1448 pkt->w_bio->bi_bdev = pd->bdev;
1449 pkt->w_bio->bi_end_io = pkt_end_io_packet_write;
1450 pkt->w_bio->bi_private = pkt;
72772323
PO
1451 for (f = 0; f < pkt->frames; f++)
1452 if (!bio_add_page(pkt->w_bio, bvec[f].bv_page, CD_FRAMESIZE, bvec[f].bv_offset))
1453 BUG();
7822082d 1454 VPRINTK(DRIVER_NAME": vcnt=%d\n", pkt->w_bio->bi_vcnt);
1da177e4
LT
1455
1456 atomic_set(&pkt->io_wait, 1);
1457 pkt->w_bio->bi_rw = WRITE;
46c271be 1458 pkt_queue_bio(pd, pkt->w_bio);
1da177e4
LT
1459}
1460
1461static void pkt_finish_packet(struct packet_data *pkt, int uptodate)
1462{
1463 struct bio *bio, *next;
1464
1465 if (!uptodate)
1466 pkt->cache_valid = 0;
1467
1468 /* Finish all bios corresponding to this packet */
1469 bio = pkt->orig_bios;
1470 while (bio) {
1471 next = bio->bi_next;
1472 bio->bi_next = NULL;
1473 bio_endio(bio, bio->bi_size, uptodate ? 0 : -EIO);
1474 bio = next;
1475 }
1476 pkt->orig_bios = pkt->orig_bios_tail = NULL;
1477}
1478
1479static void pkt_run_state_machine(struct pktcdvd_device *pd, struct packet_data *pkt)
1480{
1481 int uptodate;
1482
1483 VPRINTK("run_state_machine: pkt %d\n", pkt->id);
1484
1485 for (;;) {
1486 switch (pkt->state) {
1487 case PACKET_WAITING_STATE:
1488 if ((pkt->write_size < pkt->frames) && (pkt->sleep_time > 0))
1489 return;
1490
1491 pkt->sleep_time = 0;
1492 pkt_gather_data(pd, pkt);
1493 pkt_set_state(pkt, PACKET_READ_WAIT_STATE);
1494 break;
1495
1496 case PACKET_READ_WAIT_STATE:
1497 if (atomic_read(&pkt->io_wait) > 0)
1498 return;
1499
1500 if (atomic_read(&pkt->io_errors) > 0) {
1501 pkt_set_state(pkt, PACKET_RECOVERY_STATE);
1502 } else {
1503 pkt_start_write(pd, pkt);
1504 }
1505 break;
1506
1507 case PACKET_WRITE_WAIT_STATE:
1508 if (atomic_read(&pkt->io_wait) > 0)
1509 return;
1510
1511 if (test_bit(BIO_UPTODATE, &pkt->w_bio->bi_flags)) {
1512 pkt_set_state(pkt, PACKET_FINISHED_STATE);
1513 } else {
1514 pkt_set_state(pkt, PACKET_RECOVERY_STATE);
1515 }
1516 break;
1517
1518 case PACKET_RECOVERY_STATE:
1519 if (pkt_start_recovery(pkt)) {
1520 pkt_start_write(pd, pkt);
1521 } else {
1522 VPRINTK("No recovery possible\n");
1523 pkt_set_state(pkt, PACKET_FINISHED_STATE);
1524 }
1525 break;
1526
1527 case PACKET_FINISHED_STATE:
1528 uptodate = test_bit(BIO_UPTODATE, &pkt->w_bio->bi_flags);
1529 pkt_finish_packet(pkt, uptodate);
1530 return;
1531
1532 default:
1533 BUG();
1534 break;
1535 }
1536 }
1537}
1538
1539static void pkt_handle_packets(struct pktcdvd_device *pd)
1540{
1541 struct packet_data *pkt, *next;
1542
1543 VPRINTK("pkt_handle_packets\n");
1544
1545 /*
1546 * Run state machine for active packets
1547 */
1548 list_for_each_entry(pkt, &pd->cdrw.pkt_active_list, list) {
1549 if (atomic_read(&pkt->run_sm) > 0) {
1550 atomic_set(&pkt->run_sm, 0);
1551 pkt_run_state_machine(pd, pkt);
1552 }
1553 }
1554
1555 /*
1556 * Move no longer active packets to the free list
1557 */
1558 spin_lock(&pd->cdrw.active_list_lock);
1559 list_for_each_entry_safe(pkt, next, &pd->cdrw.pkt_active_list, list) {
1560 if (pkt->state == PACKET_FINISHED_STATE) {
1561 list_del(&pkt->list);
1562 pkt_put_packet_data(pd, pkt);
1563 pkt_set_state(pkt, PACKET_IDLE_STATE);
1564 atomic_set(&pd->scan_queue, 1);
1565 }
1566 }
1567 spin_unlock(&pd->cdrw.active_list_lock);
1568}
1569
1570static void pkt_count_states(struct pktcdvd_device *pd, int *states)
1571{
1572 struct packet_data *pkt;
1573 int i;
1574
ae7642bb 1575 for (i = 0; i < PACKET_NUM_STATES; i++)
1da177e4
LT
1576 states[i] = 0;
1577
1578 spin_lock(&pd->cdrw.active_list_lock);
1579 list_for_each_entry(pkt, &pd->cdrw.pkt_active_list, list) {
1580 states[pkt->state]++;
1581 }
1582 spin_unlock(&pd->cdrw.active_list_lock);
1583}
1584
1585/*
1586 * kcdrwd is woken up when writes have been queued for one of our
1587 * registered devices
1588 */
1589static int kcdrwd(void *foobar)
1590{
1591 struct pktcdvd_device *pd = foobar;
1592 struct packet_data *pkt;
1593 long min_sleep_time, residue;
1594
1595 set_user_nice(current, -20);
1596
1597 for (;;) {
1598 DECLARE_WAITQUEUE(wait, current);
1599
1600 /*
1601 * Wait until there is something to do
1602 */
1603 add_wait_queue(&pd->wqueue, &wait);
1604 for (;;) {
1605 set_current_state(TASK_INTERRUPTIBLE);
1606
1607 /* Check if we need to run pkt_handle_queue */
1608 if (atomic_read(&pd->scan_queue) > 0)
1609 goto work_to_do;
1610
1611 /* Check if we need to run the state machine for some packet */
1612 list_for_each_entry(pkt, &pd->cdrw.pkt_active_list, list) {
1613 if (atomic_read(&pkt->run_sm) > 0)
1614 goto work_to_do;
1615 }
1616
1617 /* Check if we need to process the iosched queues */
1618 if (atomic_read(&pd->iosched.attention) != 0)
1619 goto work_to_do;
1620
1621 /* Otherwise, go to sleep */
1622 if (PACKET_DEBUG > 1) {
1623 int states[PACKET_NUM_STATES];
1624 pkt_count_states(pd, states);
1625 VPRINTK("kcdrwd: i:%d ow:%d rw:%d ww:%d rec:%d fin:%d\n",
1626 states[0], states[1], states[2], states[3],
1627 states[4], states[5]);
1628 }
1629
1630 min_sleep_time = MAX_SCHEDULE_TIMEOUT;
1631 list_for_each_entry(pkt, &pd->cdrw.pkt_active_list, list) {
1632 if (pkt->sleep_time && pkt->sleep_time < min_sleep_time)
1633 min_sleep_time = pkt->sleep_time;
1634 }
1635
1636 generic_unplug_device(bdev_get_queue(pd->bdev));
1637
1638 VPRINTK("kcdrwd: sleeping\n");
1639 residue = schedule_timeout(min_sleep_time);
1640 VPRINTK("kcdrwd: wake up\n");
1641
1642 /* make swsusp happy with our thread */
3e1d1d28 1643 try_to_freeze();
1da177e4
LT
1644
1645 list_for_each_entry(pkt, &pd->cdrw.pkt_active_list, list) {
1646 if (!pkt->sleep_time)
1647 continue;
1648 pkt->sleep_time -= min_sleep_time - residue;
1649 if (pkt->sleep_time <= 0) {
1650 pkt->sleep_time = 0;
1651 atomic_inc(&pkt->run_sm);
1652 }
1653 }
1654
1da177e4
LT
1655 if (kthread_should_stop())
1656 break;
1657 }
1658work_to_do:
1659 set_current_state(TASK_RUNNING);
1660 remove_wait_queue(&pd->wqueue, &wait);
1661
1662 if (kthread_should_stop())
1663 break;
1664
1665 /*
1666 * if pkt_handle_queue returns true, we can queue
1667 * another request.
1668 */
1669 while (pkt_handle_queue(pd))
1670 ;
1671
1672 /*
1673 * Handle packet state machine
1674 */
1675 pkt_handle_packets(pd);
1676
1677 /*
1678 * Handle iosched queues
1679 */
1680 pkt_iosched_process_queue(pd);
1681 }
1682
1683 return 0;
1684}
1685
1686static void pkt_print_settings(struct pktcdvd_device *pd)
1687{
7822082d 1688 printk(DRIVER_NAME": %s packets, ", pd->settings.fp ? "Fixed" : "Variable");
1da177e4
LT
1689 printk("%u blocks, ", pd->settings.size >> 2);
1690 printk("Mode-%c disc\n", pd->settings.block_mode == 8 ? '1' : '2');
1691}
1692
1693static int pkt_mode_sense(struct pktcdvd_device *pd, struct packet_command *cgc, int page_code, int page_control)
1694{
1695 memset(cgc->cmd, 0, sizeof(cgc->cmd));
1696
1697 cgc->cmd[0] = GPCMD_MODE_SENSE_10;
1698 cgc->cmd[2] = page_code | (page_control << 6);
1699 cgc->cmd[7] = cgc->buflen >> 8;
1700 cgc->cmd[8] = cgc->buflen & 0xff;
1701 cgc->data_direction = CGC_DATA_READ;
1702 return pkt_generic_packet(pd, cgc);
1703}
1704
1705static int pkt_mode_select(struct pktcdvd_device *pd, struct packet_command *cgc)
1706{
1707 memset(cgc->cmd, 0, sizeof(cgc->cmd));
1708 memset(cgc->buffer, 0, 2);
1709 cgc->cmd[0] = GPCMD_MODE_SELECT_10;
1710 cgc->cmd[1] = 0x10; /* PF */
1711 cgc->cmd[7] = cgc->buflen >> 8;
1712 cgc->cmd[8] = cgc->buflen & 0xff;
1713 cgc->data_direction = CGC_DATA_WRITE;
1714 return pkt_generic_packet(pd, cgc);
1715}
1716
1717static int pkt_get_disc_info(struct pktcdvd_device *pd, disc_information *di)
1718{
1719 struct packet_command cgc;
1720 int ret;
1721
1722 /* set up command and get the disc info */
1723 init_cdrom_command(&cgc, di, sizeof(*di), CGC_DATA_READ);
1724 cgc.cmd[0] = GPCMD_READ_DISC_INFO;
1725 cgc.cmd[8] = cgc.buflen = 2;
1726 cgc.quiet = 1;
1727
1728 if ((ret = pkt_generic_packet(pd, &cgc)))
1729 return ret;
1730
1731 /* not all drives have the same disc_info length, so requeue
1732 * packet with the length the drive tells us it can supply
1733 */
1734 cgc.buflen = be16_to_cpu(di->disc_information_length) +
1735 sizeof(di->disc_information_length);
1736
1737 if (cgc.buflen > sizeof(disc_information))
1738 cgc.buflen = sizeof(disc_information);
1739
1740 cgc.cmd[8] = cgc.buflen;
1741 return pkt_generic_packet(pd, &cgc);
1742}
1743
1744static int pkt_get_track_info(struct pktcdvd_device *pd, __u16 track, __u8 type, track_information *ti)
1745{
1746 struct packet_command cgc;
1747 int ret;
1748
1749 init_cdrom_command(&cgc, ti, 8, CGC_DATA_READ);
1750 cgc.cmd[0] = GPCMD_READ_TRACK_RZONE_INFO;
1751 cgc.cmd[1] = type & 3;
1752 cgc.cmd[4] = (track & 0xff00) >> 8;
1753 cgc.cmd[5] = track & 0xff;
1754 cgc.cmd[8] = 8;
1755 cgc.quiet = 1;
1756
1757 if ((ret = pkt_generic_packet(pd, &cgc)))
1758 return ret;
1759
1760 cgc.buflen = be16_to_cpu(ti->track_information_length) +
1761 sizeof(ti->track_information_length);
1762
1763 if (cgc.buflen > sizeof(track_information))
1764 cgc.buflen = sizeof(track_information);
1765
1766 cgc.cmd[8] = cgc.buflen;
1767 return pkt_generic_packet(pd, &cgc);
1768}
1769
1770static int pkt_get_last_written(struct pktcdvd_device *pd, long *last_written)
1771{
1772 disc_information di;
1773 track_information ti;
1774 __u32 last_track;
1775 int ret = -1;
1776
1777 if ((ret = pkt_get_disc_info(pd, &di)))
1778 return ret;
1779
1780 last_track = (di.last_track_msb << 8) | di.last_track_lsb;
1781 if ((ret = pkt_get_track_info(pd, last_track, 1, &ti)))
1782 return ret;
1783
1784 /* if this track is blank, try the previous. */
1785 if (ti.blank) {
1786 last_track--;
1787 if ((ret = pkt_get_track_info(pd, last_track, 1, &ti)))
1788 return ret;
1789 }
1790
1791 /* if last recorded field is valid, return it. */
1792 if (ti.lra_v) {
1793 *last_written = be32_to_cpu(ti.last_rec_address);
1794 } else {
1795 /* make it up instead */
1796 *last_written = be32_to_cpu(ti.track_start) +
1797 be32_to_cpu(ti.track_size);
1798 if (ti.free_blocks)
1799 *last_written -= (be32_to_cpu(ti.free_blocks) + 7);
1800 }
1801 return 0;
1802}
1803
1804/*
1805 * write mode select package based on pd->settings
1806 */
1807static int pkt_set_write_settings(struct pktcdvd_device *pd)
1808{
1809 struct packet_command cgc;
1810 struct request_sense sense;
1811 write_param_page *wp;
1812 char buffer[128];
1813 int ret, size;
1814
1815 /* doesn't apply to DVD+RW or DVD-RAM */
1816 if ((pd->mmc3_profile == 0x1a) || (pd->mmc3_profile == 0x12))
1817 return 0;
1818
1819 memset(buffer, 0, sizeof(buffer));
1820 init_cdrom_command(&cgc, buffer, sizeof(*wp), CGC_DATA_READ);
1821 cgc.sense = &sense;
1822 if ((ret = pkt_mode_sense(pd, &cgc, GPMODE_WRITE_PARMS_PAGE, 0))) {
1823 pkt_dump_sense(&cgc);
1824 return ret;
1825 }
1826
1827 size = 2 + ((buffer[0] << 8) | (buffer[1] & 0xff));
1828 pd->mode_offset = (buffer[6] << 8) | (buffer[7] & 0xff);
1829 if (size > sizeof(buffer))
1830 size = sizeof(buffer);
1831
1832 /*
1833 * now get it all
1834 */
1835 init_cdrom_command(&cgc, buffer, size, CGC_DATA_READ);
1836 cgc.sense = &sense;
1837 if ((ret = pkt_mode_sense(pd, &cgc, GPMODE_WRITE_PARMS_PAGE, 0))) {
1838 pkt_dump_sense(&cgc);
1839 return ret;
1840 }
1841
1842 /*
1843 * write page is offset header + block descriptor length
1844 */
1845 wp = (write_param_page *) &buffer[sizeof(struct mode_page_header) + pd->mode_offset];
1846
1847 wp->fp = pd->settings.fp;
1848 wp->track_mode = pd->settings.track_mode;
1849 wp->write_type = pd->settings.write_type;
1850 wp->data_block_type = pd->settings.block_mode;
1851
1852 wp->multi_session = 0;
1853
1854#ifdef PACKET_USE_LS
1855 wp->link_size = 7;
1856 wp->ls_v = 1;
1857#endif
1858
1859 if (wp->data_block_type == PACKET_BLOCK_MODE1) {
1860 wp->session_format = 0;
1861 wp->subhdr2 = 0x20;
1862 } else if (wp->data_block_type == PACKET_BLOCK_MODE2) {
1863 wp->session_format = 0x20;
1864 wp->subhdr2 = 8;
1865#if 0
1866 wp->mcn[0] = 0x80;
1867 memcpy(&wp->mcn[1], PACKET_MCN, sizeof(wp->mcn) - 1);
1868#endif
1869 } else {
1870 /*
1871 * paranoia
1872 */
7822082d 1873 printk(DRIVER_NAME": write mode wrong %d\n", wp->data_block_type);
1da177e4
LT
1874 return 1;
1875 }
1876 wp->packet_size = cpu_to_be32(pd->settings.size >> 2);
1877
1878 cgc.buflen = cgc.cmd[8] = size;
1879 if ((ret = pkt_mode_select(pd, &cgc))) {
1880 pkt_dump_sense(&cgc);
1881 return ret;
1882 }
1883
1884 pkt_print_settings(pd);
1885 return 0;
1886}
1887
1888/*
7c613d59 1889 * 1 -- we can write to this track, 0 -- we can't
1da177e4 1890 */
ab863ec3 1891static int pkt_writable_track(struct pktcdvd_device *pd, track_information *ti)
1da177e4 1892{
ab863ec3
PO
1893 switch (pd->mmc3_profile) {
1894 case 0x1a: /* DVD+RW */
1895 case 0x12: /* DVD-RAM */
1896 /* The track is always writable on DVD+RW/DVD-RAM */
1897 return 1;
1898 default:
1899 break;
1900 }
1da177e4 1901
ab863ec3
PO
1902 if (!ti->packet || !ti->fp)
1903 return 0;
1da177e4
LT
1904
1905 /*
1906 * "good" settings as per Mt Fuji.
1907 */
ab863ec3 1908 if (ti->rt == 0 && ti->blank == 0)
7c613d59 1909 return 1;
1da177e4 1910
ab863ec3 1911 if (ti->rt == 0 && ti->blank == 1)
7c613d59 1912 return 1;
1da177e4 1913
ab863ec3 1914 if (ti->rt == 1 && ti->blank == 0)
7c613d59 1915 return 1;
1da177e4 1916
7822082d 1917 printk(DRIVER_NAME": bad state %d-%d-%d\n", ti->rt, ti->blank, ti->packet);
7c613d59 1918 return 0;
1da177e4
LT
1919}
1920
1921/*
7c613d59 1922 * 1 -- we can write to this disc, 0 -- we can't
1da177e4 1923 */
7c613d59 1924static int pkt_writable_disc(struct pktcdvd_device *pd, disc_information *di)
1da177e4
LT
1925{
1926 switch (pd->mmc3_profile) {
1927 case 0x0a: /* CD-RW */
1928 case 0xffff: /* MMC3 not supported */
1929 break;
1930 case 0x1a: /* DVD+RW */
1931 case 0x13: /* DVD-RW */
1932 case 0x12: /* DVD-RAM */
7c613d59 1933 return 1;
1da177e4 1934 default:
7822082d 1935 VPRINTK(DRIVER_NAME": Wrong disc profile (%x)\n", pd->mmc3_profile);
7c613d59 1936 return 0;
1da177e4
LT
1937 }
1938
1939 /*
1940 * for disc type 0xff we should probably reserve a new track.
1941 * but i'm not sure, should we leave this to user apps? probably.
1942 */
1943 if (di->disc_type == 0xff) {
7822082d 1944 printk(DRIVER_NAME": Unknown disc. No track?\n");
7c613d59 1945 return 0;
1da177e4
LT
1946 }
1947
1948 if (di->disc_type != 0x20 && di->disc_type != 0) {
7822082d 1949 printk(DRIVER_NAME": Wrong disc type (%x)\n", di->disc_type);
7c613d59 1950 return 0;
1da177e4
LT
1951 }
1952
1953 if (di->erasable == 0) {
7822082d 1954 printk(DRIVER_NAME": Disc not erasable\n");
7c613d59 1955 return 0;
1da177e4
LT
1956 }
1957
1958 if (di->border_status == PACKET_SESSION_RESERVED) {
7822082d 1959 printk(DRIVER_NAME": Can't write to last track (reserved)\n");
7c613d59 1960 return 0;
1da177e4
LT
1961 }
1962
7c613d59 1963 return 1;
1da177e4
LT
1964}
1965
1966static int pkt_probe_settings(struct pktcdvd_device *pd)
1967{
1968 struct packet_command cgc;
1969 unsigned char buf[12];
1970 disc_information di;
1971 track_information ti;
1972 int ret, track;
1973
1974 init_cdrom_command(&cgc, buf, sizeof(buf), CGC_DATA_READ);
1975 cgc.cmd[0] = GPCMD_GET_CONFIGURATION;
1976 cgc.cmd[8] = 8;
1977 ret = pkt_generic_packet(pd, &cgc);
1978 pd->mmc3_profile = ret ? 0xffff : buf[6] << 8 | buf[7];
1979
1980 memset(&di, 0, sizeof(disc_information));
1981 memset(&ti, 0, sizeof(track_information));
1982
1983 if ((ret = pkt_get_disc_info(pd, &di))) {
1984 printk("failed get_disc\n");
1985 return ret;
1986 }
1987
7c613d59 1988 if (!pkt_writable_disc(pd, &di))
9db91546 1989 return -EROFS;
1da177e4 1990
1da177e4
LT
1991 pd->type = di.erasable ? PACKET_CDRW : PACKET_CDR;
1992
1993 track = 1; /* (di.last_track_msb << 8) | di.last_track_lsb; */
1994 if ((ret = pkt_get_track_info(pd, track, 1, &ti))) {
7822082d 1995 printk(DRIVER_NAME": failed get_track\n");
1da177e4
LT
1996 return ret;
1997 }
1998
ab863ec3 1999 if (!pkt_writable_track(pd, &ti)) {
7822082d 2000 printk(DRIVER_NAME": can't write to this track\n");
9db91546 2001 return -EROFS;
1da177e4
LT
2002 }
2003
2004 /*
2005 * we keep packet size in 512 byte units, makes it easier to
2006 * deal with request calculations.
2007 */
2008 pd->settings.size = be32_to_cpu(ti.fixed_packet_size) << 2;
2009 if (pd->settings.size == 0) {
7822082d 2010 printk(DRIVER_NAME": detected zero packet size!\n");
a460ad62 2011 return -ENXIO;
1da177e4 2012 }
d0272e78 2013 if (pd->settings.size > PACKET_MAX_SECTORS) {
7822082d 2014 printk(DRIVER_NAME": packet size is too big\n");
9db91546 2015 return -EROFS;
d0272e78 2016 }
1da177e4
LT
2017 pd->settings.fp = ti.fp;
2018 pd->offset = (be32_to_cpu(ti.track_start) << 2) & (pd->settings.size - 1);
2019
2020 if (ti.nwa_v) {
2021 pd->nwa = be32_to_cpu(ti.next_writable);
2022 set_bit(PACKET_NWA_VALID, &pd->flags);
2023 }
2024
2025 /*
2026 * in theory we could use lra on -RW media as well and just zero
2027 * blocks that haven't been written yet, but in practice that
2028 * is just a no-go. we'll use that for -R, naturally.
2029 */
2030 if (ti.lra_v) {
2031 pd->lra = be32_to_cpu(ti.last_rec_address);
2032 set_bit(PACKET_LRA_VALID, &pd->flags);
2033 } else {
2034 pd->lra = 0xffffffff;
2035 set_bit(PACKET_LRA_VALID, &pd->flags);
2036 }
2037
2038 /*
2039 * fine for now
2040 */
2041 pd->settings.link_loss = 7;
2042 pd->settings.write_type = 0; /* packet */
2043 pd->settings.track_mode = ti.track_mode;
2044
2045 /*
2046 * mode1 or mode2 disc
2047 */
2048 switch (ti.data_mode) {
2049 case PACKET_MODE1:
2050 pd->settings.block_mode = PACKET_BLOCK_MODE1;
2051 break;
2052 case PACKET_MODE2:
2053 pd->settings.block_mode = PACKET_BLOCK_MODE2;
2054 break;
2055 default:
7822082d 2056 printk(DRIVER_NAME": unknown data mode\n");
9db91546 2057 return -EROFS;
1da177e4
LT
2058 }
2059 return 0;
2060}
2061
2062/*
2063 * enable/disable write caching on drive
2064 */
2065static int pkt_write_caching(struct pktcdvd_device *pd, int set)
2066{
2067 struct packet_command cgc;
2068 struct request_sense sense;
2069 unsigned char buf[64];
2070 int ret;
2071
2072 memset(buf, 0, sizeof(buf));
2073 init_cdrom_command(&cgc, buf, sizeof(buf), CGC_DATA_READ);
2074 cgc.sense = &sense;
2075 cgc.buflen = pd->mode_offset + 12;
2076
2077 /*
2078 * caching mode page might not be there, so quiet this command
2079 */
2080 cgc.quiet = 1;
2081
2082 if ((ret = pkt_mode_sense(pd, &cgc, GPMODE_WCACHING_PAGE, 0)))
2083 return ret;
2084
2085 buf[pd->mode_offset + 10] |= (!!set << 2);
2086
2087 cgc.buflen = cgc.cmd[8] = 2 + ((buf[0] << 8) | (buf[1] & 0xff));
2088 ret = pkt_mode_select(pd, &cgc);
2089 if (ret) {
7822082d 2090 printk(DRIVER_NAME": write caching control failed\n");
1da177e4
LT
2091 pkt_dump_sense(&cgc);
2092 } else if (!ret && set)
7822082d 2093 printk(DRIVER_NAME": enabled write caching on %s\n", pd->name);
1da177e4
LT
2094 return ret;
2095}
2096
2097static int pkt_lock_door(struct pktcdvd_device *pd, int lockflag)
2098{
2099 struct packet_command cgc;
2100
2101 init_cdrom_command(&cgc, NULL, 0, CGC_DATA_NONE);
2102 cgc.cmd[0] = GPCMD_PREVENT_ALLOW_MEDIUM_REMOVAL;
2103 cgc.cmd[4] = lockflag ? 1 : 0;
2104 return pkt_generic_packet(pd, &cgc);
2105}
2106
2107/*
2108 * Returns drive maximum write speed
2109 */
2110static int pkt_get_max_speed(struct pktcdvd_device *pd, unsigned *write_speed)
2111{
2112 struct packet_command cgc;
2113 struct request_sense sense;
2114 unsigned char buf[256+18];
2115 unsigned char *cap_buf;
2116 int ret, offset;
2117
2118 memset(buf, 0, sizeof(buf));
2119 cap_buf = &buf[sizeof(struct mode_page_header) + pd->mode_offset];
2120 init_cdrom_command(&cgc, buf, sizeof(buf), CGC_DATA_UNKNOWN);
2121 cgc.sense = &sense;
2122
2123 ret = pkt_mode_sense(pd, &cgc, GPMODE_CAPABILITIES_PAGE, 0);
2124 if (ret) {
2125 cgc.buflen = pd->mode_offset + cap_buf[1] + 2 +
2126 sizeof(struct mode_page_header);
2127 ret = pkt_mode_sense(pd, &cgc, GPMODE_CAPABILITIES_PAGE, 0);
2128 if (ret) {
2129 pkt_dump_sense(&cgc);
2130 return ret;
2131 }
2132 }
2133
2134 offset = 20; /* Obsoleted field, used by older drives */
2135 if (cap_buf[1] >= 28)
2136 offset = 28; /* Current write speed selected */
2137 if (cap_buf[1] >= 30) {
2138 /* If the drive reports at least one "Logical Unit Write
2139 * Speed Performance Descriptor Block", use the information
2140 * in the first block. (contains the highest speed)
2141 */
2142 int num_spdb = (cap_buf[30] << 8) + cap_buf[31];
2143 if (num_spdb > 0)
2144 offset = 34;
2145 }
2146
2147 *write_speed = (cap_buf[offset] << 8) | cap_buf[offset + 1];
2148 return 0;
2149}
2150
2151/* These tables from cdrecord - I don't have orange book */
2152/* standard speed CD-RW (1-4x) */
2153static char clv_to_speed[16] = {
2154 /* 0 1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 */
2155 0, 2, 4, 6, 8, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0
2156};
2157/* high speed CD-RW (-10x) */
2158static char hs_clv_to_speed[16] = {
2159 /* 0 1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 */
2160 0, 2, 4, 6, 10, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0
2161};
2162/* ultra high speed CD-RW */
2163static char us_clv_to_speed[16] = {
2164 /* 0 1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 */
2165 0, 2, 4, 8, 0, 0,16, 0,24,32,40,48, 0, 0, 0, 0
2166};
2167
2168/*
2169 * reads the maximum media speed from ATIP
2170 */
2171static int pkt_media_speed(struct pktcdvd_device *pd, unsigned *speed)
2172{
2173 struct packet_command cgc;
2174 struct request_sense sense;
2175 unsigned char buf[64];
2176 unsigned int size, st, sp;
2177 int ret;
2178
2179 init_cdrom_command(&cgc, buf, 2, CGC_DATA_READ);
2180 cgc.sense = &sense;
2181 cgc.cmd[0] = GPCMD_READ_TOC_PMA_ATIP;
2182 cgc.cmd[1] = 2;
2183 cgc.cmd[2] = 4; /* READ ATIP */
2184 cgc.cmd[8] = 2;
2185 ret = pkt_generic_packet(pd, &cgc);
2186 if (ret) {
2187 pkt_dump_sense(&cgc);
2188 return ret;
2189 }
2190 size = ((unsigned int) buf[0]<<8) + buf[1] + 2;
2191 if (size > sizeof(buf))
2192 size = sizeof(buf);
2193
2194 init_cdrom_command(&cgc, buf, size, CGC_DATA_READ);
2195 cgc.sense = &sense;
2196 cgc.cmd[0] = GPCMD_READ_TOC_PMA_ATIP;
2197 cgc.cmd[1] = 2;
2198 cgc.cmd[2] = 4;
2199 cgc.cmd[8] = size;
2200 ret = pkt_generic_packet(pd, &cgc);
2201 if (ret) {
2202 pkt_dump_sense(&cgc);
2203 return ret;
2204 }
2205
2206 if (!buf[6] & 0x40) {
7822082d 2207 printk(DRIVER_NAME": Disc type is not CD-RW\n");
1da177e4
LT
2208 return 1;
2209 }
2210 if (!buf[6] & 0x4) {
7822082d 2211 printk(DRIVER_NAME": A1 values on media are not valid, maybe not CDRW?\n");
1da177e4
LT
2212 return 1;
2213 }
2214
2215 st = (buf[6] >> 3) & 0x7; /* disc sub-type */
2216
2217 sp = buf[16] & 0xf; /* max speed from ATIP A1 field */
2218
2219 /* Info from cdrecord */
2220 switch (st) {
2221 case 0: /* standard speed */
2222 *speed = clv_to_speed[sp];
2223 break;
2224 case 1: /* high speed */
2225 *speed = hs_clv_to_speed[sp];
2226 break;
2227 case 2: /* ultra high speed */
2228 *speed = us_clv_to_speed[sp];
2229 break;
2230 default:
7822082d 2231 printk(DRIVER_NAME": Unknown disc sub-type %d\n",st);
1da177e4
LT
2232 return 1;
2233 }
2234 if (*speed) {
7822082d 2235 printk(DRIVER_NAME": Max. media speed: %d\n",*speed);
1da177e4
LT
2236 return 0;
2237 } else {
7822082d 2238 printk(DRIVER_NAME": Unknown speed %d for sub-type %d\n",sp,st);
1da177e4
LT
2239 return 1;
2240 }
2241}
2242
2243static int pkt_perform_opc(struct pktcdvd_device *pd)
2244{
2245 struct packet_command cgc;
2246 struct request_sense sense;
2247 int ret;
2248
7822082d 2249 VPRINTK(DRIVER_NAME": Performing OPC\n");
1da177e4
LT
2250
2251 init_cdrom_command(&cgc, NULL, 0, CGC_DATA_NONE);
2252 cgc.sense = &sense;
2253 cgc.timeout = 60*HZ;
2254 cgc.cmd[0] = GPCMD_SEND_OPC;
2255 cgc.cmd[1] = 1;
2256 if ((ret = pkt_generic_packet(pd, &cgc)))
2257 pkt_dump_sense(&cgc);
2258 return ret;
2259}
2260
2261static int pkt_open_write(struct pktcdvd_device *pd)
2262{
2263 int ret;
2264 unsigned int write_speed, media_write_speed, read_speed;
2265
2266 if ((ret = pkt_probe_settings(pd))) {
7822082d 2267 VPRINTK(DRIVER_NAME": %s failed probe\n", pd->name);
9db91546 2268 return ret;
1da177e4
LT
2269 }
2270
2271 if ((ret = pkt_set_write_settings(pd))) {
7822082d 2272 DPRINTK(DRIVER_NAME": %s failed saving write settings\n", pd->name);
1da177e4
LT
2273 return -EIO;
2274 }
2275
2276 pkt_write_caching(pd, USE_WCACHING);
2277
2278 if ((ret = pkt_get_max_speed(pd, &write_speed)))
2279 write_speed = 16 * 177;
2280 switch (pd->mmc3_profile) {
2281 case 0x13: /* DVD-RW */
2282 case 0x1a: /* DVD+RW */
2283 case 0x12: /* DVD-RAM */
7822082d 2284 DPRINTK(DRIVER_NAME": write speed %ukB/s\n", write_speed);
1da177e4
LT
2285 break;
2286 default:
2287 if ((ret = pkt_media_speed(pd, &media_write_speed)))
2288 media_write_speed = 16;
2289 write_speed = min(write_speed, media_write_speed * 177);
7822082d 2290 DPRINTK(DRIVER_NAME": write speed %ux\n", write_speed / 176);
1da177e4
LT
2291 break;
2292 }
2293 read_speed = write_speed;
2294
2295 if ((ret = pkt_set_speed(pd, write_speed, read_speed))) {
7822082d 2296 DPRINTK(DRIVER_NAME": %s couldn't set write speed\n", pd->name);
1da177e4
LT
2297 return -EIO;
2298 }
2299 pd->write_speed = write_speed;
2300 pd->read_speed = read_speed;
2301
2302 if ((ret = pkt_perform_opc(pd))) {
7822082d 2303 DPRINTK(DRIVER_NAME": %s Optimum Power Calibration failed\n", pd->name);
1da177e4
LT
2304 }
2305
2306 return 0;
2307}
2308
2309/*
2310 * called at open time.
2311 */
2312static int pkt_open_dev(struct pktcdvd_device *pd, int write)
2313{
2314 int ret;
2315 long lba;
2316 request_queue_t *q;
2317
2318 /*
2319 * We need to re-open the cdrom device without O_NONBLOCK to be able
2320 * to read/write from/to it. It is already opened in O_NONBLOCK mode
2321 * so bdget() can't fail.
2322 */
2323 bdget(pd->bdev->bd_dev);
2324 if ((ret = blkdev_get(pd->bdev, FMODE_READ, O_RDONLY)))
2325 goto out;
2326
8382bf2e
PO
2327 if ((ret = bd_claim(pd->bdev, pd)))
2328 goto out_putdev;
2329
1da177e4 2330 if ((ret = pkt_get_last_written(pd, &lba))) {
7822082d 2331 printk(DRIVER_NAME": pkt_get_last_written failed\n");
8382bf2e 2332 goto out_unclaim;
1da177e4
LT
2333 }
2334
2335 set_capacity(pd->disk, lba << 2);
2336 set_capacity(pd->bdev->bd_disk, lba << 2);
2337 bd_set_size(pd->bdev, (loff_t)lba << 11);
2338
2339 q = bdev_get_queue(pd->bdev);
2340 if (write) {
2341 if ((ret = pkt_open_write(pd)))
8382bf2e 2342 goto out_unclaim;
1da177e4
LT
2343 /*
2344 * Some CDRW drives can not handle writes larger than one packet,
2345 * even if the size is a multiple of the packet size.
2346 */
2347 spin_lock_irq(q->queue_lock);
2348 blk_queue_max_sectors(q, pd->settings.size);
2349 spin_unlock_irq(q->queue_lock);
2350 set_bit(PACKET_WRITABLE, &pd->flags);
2351 } else {
2352 pkt_set_speed(pd, MAX_SPEED, MAX_SPEED);
2353 clear_bit(PACKET_WRITABLE, &pd->flags);
2354 }
2355
2356 if ((ret = pkt_set_segment_merging(pd, q)))
8382bf2e 2357 goto out_unclaim;
1da177e4 2358
e1bc89bc
PO
2359 if (write) {
2360 if (!pkt_grow_pktlist(pd, CONFIG_CDROM_PKTCDVD_BUFFERS)) {
7822082d 2361 printk(DRIVER_NAME": not enough memory for buffers\n");
e1bc89bc
PO
2362 ret = -ENOMEM;
2363 goto out_unclaim;
2364 }
7822082d 2365 printk(DRIVER_NAME": %lukB available on disc\n", lba << 1);
e1bc89bc 2366 }
1da177e4
LT
2367
2368 return 0;
2369
8382bf2e
PO
2370out_unclaim:
2371 bd_release(pd->bdev);
1da177e4
LT
2372out_putdev:
2373 blkdev_put(pd->bdev);
2374out:
2375 return ret;
2376}
2377
2378/*
2379 * called when the device is closed. makes sure that the device flushes
2380 * the internal cache before we close.
2381 */
2382static void pkt_release_dev(struct pktcdvd_device *pd, int flush)
2383{
2384 if (flush && pkt_flush_cache(pd))
7822082d 2385 DPRINTK(DRIVER_NAME": %s not flushing cache\n", pd->name);
1da177e4
LT
2386
2387 pkt_lock_door(pd, 0);
2388
2389 pkt_set_speed(pd, MAX_SPEED, MAX_SPEED);
8382bf2e 2390 bd_release(pd->bdev);
1da177e4 2391 blkdev_put(pd->bdev);
e1bc89bc
PO
2392
2393 pkt_shrink_pktlist(pd);
1da177e4
LT
2394}
2395
2396static struct pktcdvd_device *pkt_find_dev_from_minor(int dev_minor)
2397{
2398 if (dev_minor >= MAX_WRITERS)
2399 return NULL;
2400 return pkt_devs[dev_minor];
2401}
2402
2403static int pkt_open(struct inode *inode, struct file *file)
2404{
2405 struct pktcdvd_device *pd = NULL;
2406 int ret;
2407
7822082d 2408 VPRINTK(DRIVER_NAME": entering open\n");
1da177e4 2409
1657f824 2410 mutex_lock(&ctl_mutex);
1da177e4
LT
2411 pd = pkt_find_dev_from_minor(iminor(inode));
2412 if (!pd) {
2413 ret = -ENODEV;
2414 goto out;
2415 }
2416 BUG_ON(pd->refcnt < 0);
2417
2418 pd->refcnt++;
46f4e1b7
PO
2419 if (pd->refcnt > 1) {
2420 if ((file->f_mode & FMODE_WRITE) &&
2421 !test_bit(PACKET_WRITABLE, &pd->flags)) {
2422 ret = -EBUSY;
2423 goto out_dec;
2424 }
2425 } else {
01fd9fda
PO
2426 ret = pkt_open_dev(pd, file->f_mode & FMODE_WRITE);
2427 if (ret)
1da177e4 2428 goto out_dec;
1da177e4
LT
2429 /*
2430 * needed here as well, since ext2 (among others) may change
2431 * the blocksize at mount time
2432 */
2433 set_blocksize(inode->i_bdev, CD_FRAMESIZE);
2434 }
2435
1657f824 2436 mutex_unlock(&ctl_mutex);
1da177e4
LT
2437 return 0;
2438
2439out_dec:
2440 pd->refcnt--;
2441out:
7822082d 2442 VPRINTK(DRIVER_NAME": failed open (%d)\n", ret);
1657f824 2443 mutex_unlock(&ctl_mutex);
1da177e4
LT
2444 return ret;
2445}
2446
2447static int pkt_close(struct inode *inode, struct file *file)
2448{
2449 struct pktcdvd_device *pd = inode->i_bdev->bd_disk->private_data;
2450 int ret = 0;
2451
1657f824 2452 mutex_lock(&ctl_mutex);
1da177e4
LT
2453 pd->refcnt--;
2454 BUG_ON(pd->refcnt < 0);
2455 if (pd->refcnt == 0) {
2456 int flush = test_bit(PACKET_WRITABLE, &pd->flags);
2457 pkt_release_dev(pd, flush);
2458 }
1657f824 2459 mutex_unlock(&ctl_mutex);
1da177e4
LT
2460 return ret;
2461}
2462
2463
1da177e4
LT
2464static int pkt_end_io_read_cloned(struct bio *bio, unsigned int bytes_done, int err)
2465{
2466 struct packet_stacked_data *psd = bio->bi_private;
2467 struct pktcdvd_device *pd = psd->pd;
2468
2469 if (bio->bi_size)
2470 return 1;
2471
2472 bio_put(bio);
2473 bio_endio(psd->bio, psd->bio->bi_size, err);
2474 mempool_free(psd, psd_pool);
2475 pkt_bio_finished(pd);
2476 return 0;
2477}
2478
2479static int pkt_make_request(request_queue_t *q, struct bio *bio)
2480{
2481 struct pktcdvd_device *pd;
2482 char b[BDEVNAME_SIZE];
2483 sector_t zone;
2484 struct packet_data *pkt;
2485 int was_empty, blocked_bio;
2486 struct pkt_rb_node *node;
2487
2488 pd = q->queuedata;
2489 if (!pd) {
7822082d 2490 printk(DRIVER_NAME": %s incorrect request queue\n", bdevname(bio->bi_bdev, b));
1da177e4
LT
2491 goto end_io;
2492 }
2493
2494 /*
2495 * Clone READ bios so we can have our own bi_end_io callback.
2496 */
2497 if (bio_data_dir(bio) == READ) {
2498 struct bio *cloned_bio = bio_clone(bio, GFP_NOIO);
2499 struct packet_stacked_data *psd = mempool_alloc(psd_pool, GFP_NOIO);
2500
2501 psd->pd = pd;
2502 psd->bio = bio;
2503 cloned_bio->bi_bdev = pd->bdev;
2504 cloned_bio->bi_private = psd;
2505 cloned_bio->bi_end_io = pkt_end_io_read_cloned;
2506 pd->stats.secs_r += bio->bi_size >> 9;
46c271be 2507 pkt_queue_bio(pd, cloned_bio);
1da177e4
LT
2508 return 0;
2509 }
2510
2511 if (!test_bit(PACKET_WRITABLE, &pd->flags)) {
7822082d 2512 printk(DRIVER_NAME": WRITE for ro device %s (%llu)\n",
1da177e4
LT
2513 pd->name, (unsigned long long)bio->bi_sector);
2514 goto end_io;
2515 }
2516
2517 if (!bio->bi_size || (bio->bi_size % CD_FRAMESIZE)) {
7822082d 2518 printk(DRIVER_NAME": wrong bio size\n");
1da177e4
LT
2519 goto end_io;
2520 }
2521
2522 blk_queue_bounce(q, &bio);
2523
2524 zone = ZONE(bio->bi_sector, pd);
2525 VPRINTK("pkt_make_request: start = %6llx stop = %6llx\n",
2526 (unsigned long long)bio->bi_sector,
2527 (unsigned long long)(bio->bi_sector + bio_sectors(bio)));
2528
2529 /* Check if we have to split the bio */
2530 {
2531 struct bio_pair *bp;
2532 sector_t last_zone;
2533 int first_sectors;
2534
2535 last_zone = ZONE(bio->bi_sector + bio_sectors(bio) - 1, pd);
2536 if (last_zone != zone) {
2537 BUG_ON(last_zone != zone + pd->settings.size);
2538 first_sectors = last_zone - bio->bi_sector;
2539 bp = bio_split(bio, bio_split_pool, first_sectors);
2540 BUG_ON(!bp);
2541 pkt_make_request(q, &bp->bio1);
2542 pkt_make_request(q, &bp->bio2);
2543 bio_pair_release(bp);
2544 return 0;
2545 }
2546 }
2547
2548 /*
2549 * If we find a matching packet in state WAITING or READ_WAIT, we can
2550 * just append this bio to that packet.
2551 */
2552 spin_lock(&pd->cdrw.active_list_lock);
2553 blocked_bio = 0;
2554 list_for_each_entry(pkt, &pd->cdrw.pkt_active_list, list) {
2555 if (pkt->sector == zone) {
2556 spin_lock(&pkt->lock);
2557 if ((pkt->state == PACKET_WAITING_STATE) ||
2558 (pkt->state == PACKET_READ_WAIT_STATE)) {
2559 pkt_add_list_last(bio, &pkt->orig_bios,
2560 &pkt->orig_bios_tail);
2561 pkt->write_size += bio->bi_size / CD_FRAMESIZE;
2562 if ((pkt->write_size >= pkt->frames) &&
2563 (pkt->state == PACKET_WAITING_STATE)) {
2564 atomic_inc(&pkt->run_sm);
2565 wake_up(&pd->wqueue);
2566 }
2567 spin_unlock(&pkt->lock);
2568 spin_unlock(&pd->cdrw.active_list_lock);
2569 return 0;
2570 } else {
2571 blocked_bio = 1;
2572 }
2573 spin_unlock(&pkt->lock);
2574 }
2575 }
2576 spin_unlock(&pd->cdrw.active_list_lock);
2577
0a0fc960
TM
2578 /*
2579 * Test if there is enough room left in the bio work queue
2580 * (queue size >= congestion on mark).
2581 * If not, wait till the work queue size is below the congestion off mark.
2582 */
2583 spin_lock(&pd->lock);
2584 if (pd->write_congestion_on > 0
2585 && pd->bio_queue_size >= pd->write_congestion_on) {
83f3aa3d 2586 set_bdi_congested(&q->backing_dev_info, WRITE);
0a0fc960
TM
2587 do {
2588 spin_unlock(&pd->lock);
2589 congestion_wait(WRITE, HZ);
2590 spin_lock(&pd->lock);
2591 } while(pd->bio_queue_size > pd->write_congestion_off);
2592 }
2593 spin_unlock(&pd->lock);
2594
1da177e4
LT
2595 /*
2596 * No matching packet found. Store the bio in the work queue.
2597 */
2598 node = mempool_alloc(pd->rb_pool, GFP_NOIO);
1da177e4
LT
2599 node->bio = bio;
2600 spin_lock(&pd->lock);
2601 BUG_ON(pd->bio_queue_size < 0);
2602 was_empty = (pd->bio_queue_size == 0);
2603 pkt_rbtree_insert(pd, node);
2604 spin_unlock(&pd->lock);
2605
2606 /*
2607 * Wake up the worker thread.
2608 */
2609 atomic_set(&pd->scan_queue, 1);
2610 if (was_empty) {
2611 /* This wake_up is required for correct operation */
2612 wake_up(&pd->wqueue);
2613 } else if (!list_empty(&pd->cdrw.pkt_free_list) && !blocked_bio) {
2614 /*
2615 * This wake up is not required for correct operation,
2616 * but improves performance in some cases.
2617 */
2618 wake_up(&pd->wqueue);
2619 }
2620 return 0;
2621end_io:
2622 bio_io_error(bio, bio->bi_size);
2623 return 0;
2624}
2625
2626
2627
2628static int pkt_merge_bvec(request_queue_t *q, struct bio *bio, struct bio_vec *bvec)
2629{
2630 struct pktcdvd_device *pd = q->queuedata;
2631 sector_t zone = ZONE(bio->bi_sector, pd);
2632 int used = ((bio->bi_sector - zone) << 9) + bio->bi_size;
2633 int remaining = (pd->settings.size << 9) - used;
2634 int remaining2;
2635
2636 /*
2637 * A bio <= PAGE_SIZE must be allowed. If it crosses a packet
2638 * boundary, pkt_make_request() will split the bio.
2639 */
2640 remaining2 = PAGE_SIZE - bio->bi_size;
2641 remaining = max(remaining, remaining2);
2642
2643 BUG_ON(remaining < 0);
2644 return remaining;
2645}
2646
2647static void pkt_init_queue(struct pktcdvd_device *pd)
2648{
2649 request_queue_t *q = pd->disk->queue;
2650
2651 blk_queue_make_request(q, pkt_make_request);
2652 blk_queue_hardsect_size(q, CD_FRAMESIZE);
2653 blk_queue_max_sectors(q, PACKET_MAX_SECTORS);
2654 blk_queue_merge_bvec(q, pkt_merge_bvec);
2655 q->queuedata = pd;
2656}
2657
2658static int pkt_seq_show(struct seq_file *m, void *p)
2659{
2660 struct pktcdvd_device *pd = m->private;
2661 char *msg;
2662 char bdev_buf[BDEVNAME_SIZE];
2663 int states[PACKET_NUM_STATES];
2664
2665 seq_printf(m, "Writer %s mapped to %s:\n", pd->name,
2666 bdevname(pd->bdev, bdev_buf));
2667
2668 seq_printf(m, "\nSettings:\n");
2669 seq_printf(m, "\tpacket size:\t\t%dkB\n", pd->settings.size / 2);
2670
2671 if (pd->settings.write_type == 0)
2672 msg = "Packet";
2673 else
2674 msg = "Unknown";
2675 seq_printf(m, "\twrite type:\t\t%s\n", msg);
2676
2677 seq_printf(m, "\tpacket type:\t\t%s\n", pd->settings.fp ? "Fixed" : "Variable");
2678 seq_printf(m, "\tlink loss:\t\t%d\n", pd->settings.link_loss);
2679
2680 seq_printf(m, "\ttrack mode:\t\t%d\n", pd->settings.track_mode);
2681
2682 if (pd->settings.block_mode == PACKET_BLOCK_MODE1)
2683 msg = "Mode 1";
2684 else if (pd->settings.block_mode == PACKET_BLOCK_MODE2)
2685 msg = "Mode 2";
2686 else
2687 msg = "Unknown";
2688 seq_printf(m, "\tblock mode:\t\t%s\n", msg);
2689
2690 seq_printf(m, "\nStatistics:\n");
2691 seq_printf(m, "\tpackets started:\t%lu\n", pd->stats.pkt_started);
2692 seq_printf(m, "\tpackets ended:\t\t%lu\n", pd->stats.pkt_ended);
2693 seq_printf(m, "\twritten:\t\t%lukB\n", pd->stats.secs_w >> 1);
2694 seq_printf(m, "\tread gather:\t\t%lukB\n", pd->stats.secs_rg >> 1);
2695 seq_printf(m, "\tread:\t\t\t%lukB\n", pd->stats.secs_r >> 1);
2696
2697 seq_printf(m, "\nMisc:\n");
2698 seq_printf(m, "\treference count:\t%d\n", pd->refcnt);
2699 seq_printf(m, "\tflags:\t\t\t0x%lx\n", pd->flags);
2700 seq_printf(m, "\tread speed:\t\t%ukB/s\n", pd->read_speed);
2701 seq_printf(m, "\twrite speed:\t\t%ukB/s\n", pd->write_speed);
2702 seq_printf(m, "\tstart offset:\t\t%lu\n", pd->offset);
2703 seq_printf(m, "\tmode page offset:\t%u\n", pd->mode_offset);
2704
2705 seq_printf(m, "\nQueue state:\n");
2706 seq_printf(m, "\tbios queued:\t\t%d\n", pd->bio_queue_size);
2707 seq_printf(m, "\tbios pending:\t\t%d\n", atomic_read(&pd->cdrw.pending_bios));
2708 seq_printf(m, "\tcurrent sector:\t\t0x%llx\n", (unsigned long long)pd->current_sector);
2709
2710 pkt_count_states(pd, states);
2711 seq_printf(m, "\tstate:\t\t\ti:%d ow:%d rw:%d ww:%d rec:%d fin:%d\n",
2712 states[0], states[1], states[2], states[3], states[4], states[5]);
2713
0a0fc960
TM
2714 seq_printf(m, "\twrite congestion marks:\toff=%d on=%d\n",
2715 pd->write_congestion_off,
2716 pd->write_congestion_on);
1da177e4
LT
2717 return 0;
2718}
2719
2720static int pkt_seq_open(struct inode *inode, struct file *file)
2721{
2722 return single_open(file, pkt_seq_show, PDE(inode)->data);
2723}
2724
2b8693c0 2725static const struct file_operations pkt_proc_fops = {
1da177e4
LT
2726 .open = pkt_seq_open,
2727 .read = seq_read,
2728 .llseek = seq_lseek,
2729 .release = single_release
2730};
2731
2732static int pkt_new_dev(struct pktcdvd_device *pd, dev_t dev)
2733{
2734 int i;
2735 int ret = 0;
2736 char b[BDEVNAME_SIZE];
2737 struct proc_dir_entry *proc;
2738 struct block_device *bdev;
2739
2740 if (pd->pkt_dev == dev) {
7822082d 2741 printk(DRIVER_NAME": Recursive setup not allowed\n");
1da177e4
LT
2742 return -EBUSY;
2743 }
2744 for (i = 0; i < MAX_WRITERS; i++) {
2745 struct pktcdvd_device *pd2 = pkt_devs[i];
2746 if (!pd2)
2747 continue;
2748 if (pd2->bdev->bd_dev == dev) {
7822082d 2749 printk(DRIVER_NAME": %s already setup\n", bdevname(pd2->bdev, b));
1da177e4
LT
2750 return -EBUSY;
2751 }
2752 if (pd2->pkt_dev == dev) {
7822082d 2753 printk(DRIVER_NAME": Can't chain pktcdvd devices\n");
1da177e4
LT
2754 return -EBUSY;
2755 }
2756 }
2757
2758 bdev = bdget(dev);
2759 if (!bdev)
2760 return -ENOMEM;
2761 ret = blkdev_get(bdev, FMODE_READ, O_RDONLY | O_NONBLOCK);
2762 if (ret)
2763 return ret;
2764
2765 /* This is safe, since we have a reference from open(). */
2766 __module_get(THIS_MODULE);
2767
1da177e4
LT
2768 pd->bdev = bdev;
2769 set_blocksize(bdev, CD_FRAMESIZE);
2770
2771 pkt_init_queue(pd);
2772
2773 atomic_set(&pd->cdrw.pending_bios, 0);
2774 pd->cdrw.thread = kthread_run(kcdrwd, pd, "%s", pd->name);
2775 if (IS_ERR(pd->cdrw.thread)) {
7822082d 2776 printk(DRIVER_NAME": can't start kernel thread\n");
1da177e4 2777 ret = -ENOMEM;
e1bc89bc 2778 goto out_mem;
1da177e4
LT
2779 }
2780
2781 proc = create_proc_entry(pd->name, 0, pkt_proc);
2782 if (proc) {
2783 proc->data = pd;
2784 proc->proc_fops = &pkt_proc_fops;
2785 }
7822082d 2786 DPRINTK(DRIVER_NAME": writer %s mapped to %s\n", pd->name, bdevname(bdev, b));
1da177e4
LT
2787 return 0;
2788
1da177e4
LT
2789out_mem:
2790 blkdev_put(bdev);
2791 /* This is safe: open() is still holding a reference. */
2792 module_put(THIS_MODULE);
2793 return ret;
2794}
2795
2796static int pkt_ioctl(struct inode *inode, struct file *file, unsigned int cmd, unsigned long arg)
2797{
2798 struct pktcdvd_device *pd = inode->i_bdev->bd_disk->private_data;
2799
2800 VPRINTK("pkt_ioctl: cmd %x, dev %d:%d\n", cmd, imajor(inode), iminor(inode));
1da177e4
LT
2801
2802 switch (cmd) {
2803 /*
2804 * forward selected CDROM ioctls to CD-ROM, for UDF
2805 */
2806 case CDROMMULTISESSION:
2807 case CDROMREADTOCENTRY:
2808 case CDROM_LAST_WRITTEN:
2809 case CDROM_SEND_PACKET:
2810 case SCSI_IOCTL_SEND_COMMAND:
118326e9 2811 return blkdev_ioctl(pd->bdev->bd_inode, file, cmd, arg);
1da177e4
LT
2812
2813 case CDROMEJECT:
2814 /*
2815 * The door gets locked when the device is opened, so we
2816 * have to unlock it or else the eject command fails.
2817 */
948423e5
PO
2818 if (pd->refcnt == 1)
2819 pkt_lock_door(pd, 0);
118326e9 2820 return blkdev_ioctl(pd->bdev->bd_inode, file, cmd, arg);
1da177e4
LT
2821
2822 default:
7822082d 2823 VPRINTK(DRIVER_NAME": Unknown ioctl for %s (%x)\n", pd->name, cmd);
1da177e4
LT
2824 return -ENOTTY;
2825 }
2826
2827 return 0;
2828}
2829
2830static int pkt_media_changed(struct gendisk *disk)
2831{
2832 struct pktcdvd_device *pd = disk->private_data;
2833 struct gendisk *attached_disk;
2834
2835 if (!pd)
2836 return 0;
2837 if (!pd->bdev)
2838 return 0;
2839 attached_disk = pd->bdev->bd_disk;
2840 if (!attached_disk)
2841 return 0;
2842 return attached_disk->fops->media_changed(attached_disk);
2843}
2844
2845static struct block_device_operations pktcdvd_ops = {
2846 .owner = THIS_MODULE,
2847 .open = pkt_open,
2848 .release = pkt_close,
2849 .ioctl = pkt_ioctl,
2850 .media_changed = pkt_media_changed,
2851};
2852
2853/*
2854 * Set up mapping from pktcdvd device to CD-ROM device.
2855 */
adb9250a 2856static int pkt_setup_dev(dev_t dev, dev_t* pkt_dev)
1da177e4
LT
2857{
2858 int idx;
2859 int ret = -ENOMEM;
2860 struct pktcdvd_device *pd;
2861 struct gendisk *disk;
adb9250a
TM
2862
2863 mutex_lock_nested(&ctl_mutex, SINGLE_DEPTH_NESTING);
1da177e4
LT
2864
2865 for (idx = 0; idx < MAX_WRITERS; idx++)
2866 if (!pkt_devs[idx])
2867 break;
2868 if (idx == MAX_WRITERS) {
7822082d 2869 printk(DRIVER_NAME": max %d writers supported\n", MAX_WRITERS);
adb9250a
TM
2870 ret = -EBUSY;
2871 goto out_mutex;
1da177e4
LT
2872 }
2873
1107d2e0 2874 pd = kzalloc(sizeof(struct pktcdvd_device), GFP_KERNEL);
1da177e4 2875 if (!pd)
adb9250a 2876 goto out_mutex;
1da177e4 2877
0eaae62a
MD
2878 pd->rb_pool = mempool_create_kmalloc_pool(PKT_RB_POOL_SIZE,
2879 sizeof(struct pkt_rb_node));
1da177e4
LT
2880 if (!pd->rb_pool)
2881 goto out_mem;
2882
e1bc89bc
PO
2883 INIT_LIST_HEAD(&pd->cdrw.pkt_free_list);
2884 INIT_LIST_HEAD(&pd->cdrw.pkt_active_list);
2885 spin_lock_init(&pd->cdrw.active_list_lock);
2886
1da177e4
LT
2887 spin_lock_init(&pd->lock);
2888 spin_lock_init(&pd->iosched.lock);
7822082d 2889 sprintf(pd->name, DRIVER_NAME"%d", idx);
1da177e4
LT
2890 init_waitqueue_head(&pd->wqueue);
2891 pd->bio_queue = RB_ROOT;
2892
0a0fc960
TM
2893 pd->write_congestion_on = write_congestion_on;
2894 pd->write_congestion_off = write_congestion_off;
2895
adb9250a
TM
2896 disk = alloc_disk(1);
2897 if (!disk)
2898 goto out_mem;
2899 pd->disk = disk;
add21660 2900 disk->major = pktdev_major;
1da177e4
LT
2901 disk->first_minor = idx;
2902 disk->fops = &pktcdvd_ops;
2903 disk->flags = GENHD_FL_REMOVABLE;
adb9250a 2904 strcpy(disk->disk_name, pd->name);
1da177e4
LT
2905 disk->private_data = pd;
2906 disk->queue = blk_alloc_queue(GFP_KERNEL);
2907 if (!disk->queue)
2908 goto out_mem2;
2909
2910 pd->pkt_dev = MKDEV(disk->major, disk->first_minor);
2911 ret = pkt_new_dev(pd, dev);
2912 if (ret)
2913 goto out_new_dev;
2914
2915 add_disk(disk);
adb9250a 2916
32694850
TM
2917 pkt_sysfs_dev_new(pd);
2918 pkt_debugfs_dev_new(pd);
2919
1da177e4 2920 pkt_devs[idx] = pd;
adb9250a
TM
2921 if (pkt_dev)
2922 *pkt_dev = pd->pkt_dev;
2923
2924 mutex_unlock(&ctl_mutex);
1da177e4
LT
2925 return 0;
2926
2927out_new_dev:
1312f40e 2928 blk_cleanup_queue(disk->queue);
1da177e4
LT
2929out_mem2:
2930 put_disk(disk);
2931out_mem:
2932 if (pd->rb_pool)
2933 mempool_destroy(pd->rb_pool);
2934 kfree(pd);
adb9250a
TM
2935out_mutex:
2936 mutex_unlock(&ctl_mutex);
2937 printk(DRIVER_NAME": setup of pktcdvd device failed\n");
1da177e4
LT
2938 return ret;
2939}
2940
2941/*
2942 * Tear down mapping from pktcdvd device to CD-ROM device.
2943 */
adb9250a 2944static int pkt_remove_dev(dev_t pkt_dev)
1da177e4
LT
2945{
2946 struct pktcdvd_device *pd;
2947 int idx;
adb9250a
TM
2948 int ret = 0;
2949
2950 mutex_lock_nested(&ctl_mutex, SINGLE_DEPTH_NESTING);
1da177e4
LT
2951
2952 for (idx = 0; idx < MAX_WRITERS; idx++) {
2953 pd = pkt_devs[idx];
2954 if (pd && (pd->pkt_dev == pkt_dev))
2955 break;
2956 }
2957 if (idx == MAX_WRITERS) {
7822082d 2958 DPRINTK(DRIVER_NAME": dev not setup\n");
adb9250a
TM
2959 ret = -ENXIO;
2960 goto out;
1da177e4
LT
2961 }
2962
adb9250a
TM
2963 if (pd->refcnt > 0) {
2964 ret = -EBUSY;
2965 goto out;
2966 }
1da177e4
LT
2967 if (!IS_ERR(pd->cdrw.thread))
2968 kthread_stop(pd->cdrw.thread);
2969
32694850
TM
2970 pkt_devs[idx] = NULL;
2971
2972 pkt_debugfs_dev_remove(pd);
2973 pkt_sysfs_dev_remove(pd);
2974
1da177e4
LT
2975 blkdev_put(pd->bdev);
2976
1da177e4 2977 remove_proc_entry(pd->name, pkt_proc);
7822082d 2978 DPRINTK(DRIVER_NAME": writer %s unmapped\n", pd->name);
1da177e4
LT
2979
2980 del_gendisk(pd->disk);
1312f40e 2981 blk_cleanup_queue(pd->disk->queue);
1da177e4
LT
2982 put_disk(pd->disk);
2983
1da177e4
LT
2984 mempool_destroy(pd->rb_pool);
2985 kfree(pd);
2986
2987 /* This is safe: open() is still holding a reference. */
2988 module_put(THIS_MODULE);
adb9250a
TM
2989
2990out:
2991 mutex_unlock(&ctl_mutex);
2992 return ret;
1da177e4
LT
2993}
2994
2995static void pkt_get_status(struct pkt_ctrl_command *ctrl_cmd)
2996{
adb9250a
TM
2997 struct pktcdvd_device *pd;
2998
2999 mutex_lock_nested(&ctl_mutex, SINGLE_DEPTH_NESTING);
3000
3001 pd = pkt_find_dev_from_minor(ctrl_cmd->dev_index);
1da177e4
LT
3002 if (pd) {
3003 ctrl_cmd->dev = new_encode_dev(pd->bdev->bd_dev);
3004 ctrl_cmd->pkt_dev = new_encode_dev(pd->pkt_dev);
3005 } else {
3006 ctrl_cmd->dev = 0;
3007 ctrl_cmd->pkt_dev = 0;
3008 }
3009 ctrl_cmd->num_devices = MAX_WRITERS;
adb9250a
TM
3010
3011 mutex_unlock(&ctl_mutex);
1da177e4
LT
3012}
3013
3014static int pkt_ctl_ioctl(struct inode *inode, struct file *file, unsigned int cmd, unsigned long arg)
3015{
3016 void __user *argp = (void __user *)arg;
3017 struct pkt_ctrl_command ctrl_cmd;
3018 int ret = 0;
adb9250a 3019 dev_t pkt_dev = 0;
1da177e4
LT
3020
3021 if (cmd != PACKET_CTRL_CMD)
3022 return -ENOTTY;
3023
3024 if (copy_from_user(&ctrl_cmd, argp, sizeof(struct pkt_ctrl_command)))
3025 return -EFAULT;
3026
3027 switch (ctrl_cmd.command) {
3028 case PKT_CTRL_CMD_SETUP:
3029 if (!capable(CAP_SYS_ADMIN))
3030 return -EPERM;
adb9250a
TM
3031 ret = pkt_setup_dev(new_decode_dev(ctrl_cmd.dev), &pkt_dev);
3032 ctrl_cmd.pkt_dev = new_encode_dev(pkt_dev);
1da177e4
LT
3033 break;
3034 case PKT_CTRL_CMD_TEARDOWN:
3035 if (!capable(CAP_SYS_ADMIN))
3036 return -EPERM;
adb9250a 3037 ret = pkt_remove_dev(new_decode_dev(ctrl_cmd.pkt_dev));
1da177e4
LT
3038 break;
3039 case PKT_CTRL_CMD_STATUS:
1da177e4 3040 pkt_get_status(&ctrl_cmd);
1da177e4
LT
3041 break;
3042 default:
3043 return -ENOTTY;
3044 }
3045
3046 if (copy_to_user(argp, &ctrl_cmd, sizeof(struct pkt_ctrl_command)))
3047 return -EFAULT;
3048 return ret;
3049}
3050
3051
2b8693c0 3052static const struct file_operations pkt_ctl_fops = {
1da177e4
LT
3053 .ioctl = pkt_ctl_ioctl,
3054 .owner = THIS_MODULE,
3055};
3056
3057static struct miscdevice pkt_misc = {
3058 .minor = MISC_DYNAMIC_MINOR,
7822082d 3059 .name = DRIVER_NAME,
1da177e4
LT
3060 .fops = &pkt_ctl_fops
3061};
3062
3063static int __init pkt_init(void)
3064{
3065 int ret;
3066
32694850
TM
3067 mutex_init(&ctl_mutex);
3068
0eaae62a
MD
3069 psd_pool = mempool_create_kmalloc_pool(PSD_POOL_SIZE,
3070 sizeof(struct packet_stacked_data));
1da177e4
LT
3071 if (!psd_pool)
3072 return -ENOMEM;
3073
add21660 3074 ret = register_blkdev(pktdev_major, DRIVER_NAME);
1da177e4 3075 if (ret < 0) {
7822082d 3076 printk(DRIVER_NAME": Unable to register block device\n");
1da177e4
LT
3077 goto out2;
3078 }
add21660
TM
3079 if (!pktdev_major)
3080 pktdev_major = ret;
1da177e4 3081
32694850
TM
3082 ret = pkt_sysfs_init();
3083 if (ret)
3084 goto out;
3085
3086 pkt_debugfs_init();
3087
1da177e4
LT
3088 ret = misc_register(&pkt_misc);
3089 if (ret) {
7822082d 3090 printk(DRIVER_NAME": Unable to register misc device\n");
32694850 3091 goto out_misc;
1da177e4
LT
3092 }
3093
7822082d 3094 pkt_proc = proc_mkdir(DRIVER_NAME, proc_root_driver);
1da177e4 3095
1da177e4
LT
3096 return 0;
3097
32694850
TM
3098out_misc:
3099 pkt_debugfs_cleanup();
3100 pkt_sysfs_cleanup();
1da177e4 3101out:
add21660 3102 unregister_blkdev(pktdev_major, DRIVER_NAME);
1da177e4
LT
3103out2:
3104 mempool_destroy(psd_pool);
3105 return ret;
3106}
3107
3108static void __exit pkt_exit(void)
3109{
7822082d 3110 remove_proc_entry(DRIVER_NAME, proc_root_driver);
1da177e4 3111 misc_deregister(&pkt_misc);
32694850
TM
3112
3113 pkt_debugfs_cleanup();
3114 pkt_sysfs_cleanup();
3115
add21660 3116 unregister_blkdev(pktdev_major, DRIVER_NAME);
1da177e4
LT
3117 mempool_destroy(psd_pool);
3118}
3119
3120MODULE_DESCRIPTION("Packet writing layer for CD/DVD drives");
3121MODULE_AUTHOR("Jens Axboe <axboe@suse.de>");
3122MODULE_LICENSE("GPL");
3123
3124module_init(pkt_init);
3125module_exit(pkt_exit);