cmd640: always auto-tune PIO
[linux-2.6] / drivers / ide / ide-tape.c
1 /*
2  * IDE ATAPI streaming tape driver.
3  *
4  * Copyright (C) 1995-1999  Gadi Oxman <gadio@netvision.net.il>
5  * Copyright (C) 2003-2005  Bartlomiej Zolnierkiewicz
6  *
7  * This driver was constructed as a student project in the software laboratory
8  * of the faculty of electrical engineering in the Technion - Israel's
9  * Institute Of Technology, with the guide of Avner Lottem and Dr. Ilana David.
10  *
11  * It is hereby placed under the terms of the GNU general public license.
12  * (See linux/COPYING).
13  *
14  * For a historical changelog see
15  * Documentation/ide/ChangeLog.ide-tape.1995-2002
16  */
17
18 #define IDETAPE_VERSION "1.20"
19
20 #include <linux/module.h>
21 #include <linux/types.h>
22 #include <linux/string.h>
23 #include <linux/kernel.h>
24 #include <linux/delay.h>
25 #include <linux/timer.h>
26 #include <linux/mm.h>
27 #include <linux/interrupt.h>
28 #include <linux/jiffies.h>
29 #include <linux/major.h>
30 #include <linux/errno.h>
31 #include <linux/genhd.h>
32 #include <linux/slab.h>
33 #include <linux/pci.h>
34 #include <linux/ide.h>
35 #include <linux/smp_lock.h>
36 #include <linux/completion.h>
37 #include <linux/bitops.h>
38 #include <linux/mutex.h>
39 #include <scsi/scsi.h>
40
41 #include <asm/byteorder.h>
42 #include <linux/irq.h>
43 #include <linux/uaccess.h>
44 #include <linux/io.h>
45 #include <asm/unaligned.h>
46 #include <linux/mtio.h>
47
48 enum {
49         /* output errors only */
50         DBG_ERR =               (1 << 0),
51         /* output all sense key/asc */
52         DBG_SENSE =             (1 << 1),
53         /* info regarding all chrdev-related procedures */
54         DBG_CHRDEV =            (1 << 2),
55         /* all remaining procedures */
56         DBG_PROCS =             (1 << 3),
57         /* buffer alloc info (pc_stack & rq_stack) */
58         DBG_PCRQ_STACK =        (1 << 4),
59 };
60
61 /* define to see debug info */
62 #define IDETAPE_DEBUG_LOG               0
63
64 #if IDETAPE_DEBUG_LOG
65 #define debug_log(lvl, fmt, args...)                    \
66 {                                                       \
67         if (tape->debug_mask & lvl)                     \
68         printk(KERN_INFO "ide-tape: " fmt, ## args);    \
69 }
70 #else
71 #define debug_log(lvl, fmt, args...) do {} while (0)
72 #endif
73
74 /**************************** Tunable parameters *****************************/
75 /*
76  * After each failed packet command we issue a request sense command and retry
77  * the packet command IDETAPE_MAX_PC_RETRIES times.
78  *
79  * Setting IDETAPE_MAX_PC_RETRIES to 0 will disable retries.
80  */
81 #define IDETAPE_MAX_PC_RETRIES          3
82
83 /*
84  * With each packet command, we allocate a buffer of IDETAPE_PC_BUFFER_SIZE
85  * bytes. This is used for several packet commands (Not for READ/WRITE commands)
86  */
87 #define IDETAPE_PC_BUFFER_SIZE          256
88
89 /*
90  *      In various places in the driver, we need to allocate storage
91  *      for packet commands and requests, which will remain valid while
92  *      we leave the driver to wait for an interrupt or a timeout event.
93  */
94 #define IDETAPE_PC_STACK                (10 + IDETAPE_MAX_PC_RETRIES)
95
96 /*
97  * Some drives (for example, Seagate STT3401A Travan) require a very long
98  * timeout, because they don't return an interrupt or clear their busy bit
99  * until after the command completes (even retension commands).
100  */
101 #define IDETAPE_WAIT_CMD                (900*HZ)
102
103 /*
104  * The following parameter is used to select the point in the internal tape fifo
105  * in which we will start to refill the buffer. Decreasing the following
106  * parameter will improve the system's latency and interactive response, while
107  * using a high value might improve system throughput.
108  */
109 #define IDETAPE_FIFO_THRESHOLD          2
110
111 /*
112  * DSC polling parameters.
113  *
114  * Polling for DSC (a single bit in the status register) is a very important
115  * function in ide-tape. There are two cases in which we poll for DSC:
116  *
117  * 1. Before a read/write packet command, to ensure that we can transfer data
118  * from/to the tape's data buffers, without causing an actual media access.
119  * In case the tape is not ready yet, we take out our request from the device
120  * request queue, so that ide.c could service requests from the other device
121  * on the same interface in the meantime.
122  *
123  * 2. After the successful initialization of a "media access packet command",
124  * which is a command that can take a long time to complete (the interval can
125  * range from several seconds to even an hour). Again, we postpone our request
126  * in the middle to free the bus for the other device. The polling frequency
127  * here should be lower than the read/write frequency since those media access
128  * commands are slow. We start from a "fast" frequency - IDETAPE_DSC_MA_FAST
129  * (1 second), and if we don't receive DSC after IDETAPE_DSC_MA_THRESHOLD
130  * (5 min), we switch it to a lower frequency - IDETAPE_DSC_MA_SLOW (1 min).
131  *
132  * We also set a timeout for the timer, in case something goes wrong. The
133  * timeout should be longer then the maximum execution time of a tape operation.
134  */
135
136 /* DSC timings. */
137 #define IDETAPE_DSC_RW_MIN              5*HZ/100        /* 50 msec */
138 #define IDETAPE_DSC_RW_MAX              40*HZ/100       /* 400 msec */
139 #define IDETAPE_DSC_RW_TIMEOUT          2*60*HZ         /* 2 minutes */
140 #define IDETAPE_DSC_MA_FAST             2*HZ            /* 2 seconds */
141 #define IDETAPE_DSC_MA_THRESHOLD        5*60*HZ         /* 5 minutes */
142 #define IDETAPE_DSC_MA_SLOW             30*HZ           /* 30 seconds */
143 #define IDETAPE_DSC_MA_TIMEOUT          2*60*60*HZ      /* 2 hours */
144
145 /*************************** End of tunable parameters ***********************/
146
147 /* Read/Write error simulation */
148 #define SIMULATE_ERRORS                 0
149
150 /* tape directions */
151 enum {
152         IDETAPE_DIR_NONE  = (1 << 0),
153         IDETAPE_DIR_READ  = (1 << 1),
154         IDETAPE_DIR_WRITE = (1 << 2),
155 };
156
157 struct idetape_bh {
158         u32 b_size;
159         atomic_t b_count;
160         struct idetape_bh *b_reqnext;
161         char *b_data;
162 };
163
164 /* Tape door status */
165 #define DOOR_UNLOCKED                   0
166 #define DOOR_LOCKED                     1
167 #define DOOR_EXPLICITLY_LOCKED          2
168
169 /* Some defines for the SPACE command */
170 #define IDETAPE_SPACE_OVER_FILEMARK     1
171 #define IDETAPE_SPACE_TO_EOD            3
172
173 /* Some defines for the LOAD UNLOAD command */
174 #define IDETAPE_LU_LOAD_MASK            1
175 #define IDETAPE_LU_RETENSION_MASK       2
176 #define IDETAPE_LU_EOT_MASK             4
177
178 /*
179  * Special requests for our block device strategy routine.
180  *
181  * In order to service a character device command, we add special requests to
182  * the tail of our block device request queue and wait for their completion.
183  */
184
185 enum {
186         REQ_IDETAPE_PC1         = (1 << 0), /* packet command (first stage) */
187         REQ_IDETAPE_PC2         = (1 << 1), /* packet command (second stage) */
188         REQ_IDETAPE_READ        = (1 << 2),
189         REQ_IDETAPE_WRITE       = (1 << 3),
190 };
191
192 /* Error codes returned in rq->errors to the higher part of the driver. */
193 #define IDETAPE_ERROR_GENERAL           101
194 #define IDETAPE_ERROR_FILEMARK          102
195 #define IDETAPE_ERROR_EOD               103
196
197 /* Structures related to the SELECT SENSE / MODE SENSE packet commands. */
198 #define IDETAPE_BLOCK_DESCRIPTOR        0
199 #define IDETAPE_CAPABILITIES_PAGE       0x2a
200
201 /* Tape flag bits values. */
202 enum {
203         IDETAPE_FLAG_IGNORE_DSC         = (1 << 0),
204         /* 0 When the tape position is unknown */
205         IDETAPE_FLAG_ADDRESS_VALID      = (1 << 1),
206         /* Device already opened */
207         IDETAPE_FLAG_BUSY               = (1 << 2),
208         /* Attempt to auto-detect the current user block size */
209         IDETAPE_FLAG_DETECT_BS          = (1 << 3),
210         /* Currently on a filemark */
211         IDETAPE_FLAG_FILEMARK           = (1 << 4),
212         /* DRQ interrupt device */
213         IDETAPE_FLAG_DRQ_INTERRUPT      = (1 << 5),
214         /* 0 = no tape is loaded, so we don't rewind after ejecting */
215         IDETAPE_FLAG_MEDIUM_PRESENT     = (1 << 6),
216 };
217
218 /* A pipeline stage. */
219 typedef struct idetape_stage_s {
220         struct request rq;                      /* The corresponding request */
221         struct idetape_bh *bh;                  /* The data buffers */
222         struct idetape_stage_s *next;           /* Pointer to the next stage */
223 } idetape_stage_t;
224
225 /*
226  * Most of our global data which we need to save even as we leave the driver due
227  * to an interrupt or a timer event is stored in the struct defined below.
228  */
229 typedef struct ide_tape_obj {
230         ide_drive_t     *drive;
231         ide_driver_t    *driver;
232         struct gendisk  *disk;
233         struct kref     kref;
234
235         /*
236          *      Since a typical character device operation requires more
237          *      than one packet command, we provide here enough memory
238          *      for the maximum of interconnected packet commands.
239          *      The packet commands are stored in the circular array pc_stack.
240          *      pc_stack_index points to the last used entry, and warps around
241          *      to the start when we get to the last array entry.
242          *
243          *      pc points to the current processed packet command.
244          *
245          *      failed_pc points to the last failed packet command, or contains
246          *      NULL if we do not need to retry any packet command. This is
247          *      required since an additional packet command is needed before the
248          *      retry, to get detailed information on what went wrong.
249          */
250         /* Current packet command */
251         struct ide_atapi_pc *pc;
252         /* Last failed packet command */
253         struct ide_atapi_pc *failed_pc;
254         /* Packet command stack */
255         struct ide_atapi_pc pc_stack[IDETAPE_PC_STACK];
256         /* Next free packet command storage space */
257         int pc_stack_index;
258         struct request rq_stack[IDETAPE_PC_STACK];
259         /* We implement a circular array */
260         int rq_stack_index;
261
262         /*
263          * DSC polling variables.
264          *
265          * While polling for DSC we use postponed_rq to postpone the current
266          * request so that ide.c will be able to service pending requests on the
267          * other device. Note that at most we will have only one DSC (usually
268          * data transfer) request in the device request queue.
269          */
270         struct request *postponed_rq;
271         /* The time in which we started polling for DSC */
272         unsigned long dsc_polling_start;
273         /* Timer used to poll for dsc */
274         struct timer_list dsc_timer;
275         /* Read/Write dsc polling frequency */
276         unsigned long best_dsc_rw_freq;
277         unsigned long dsc_poll_freq;
278         unsigned long dsc_timeout;
279
280         /* Read position information */
281         u8 partition;
282         /* Current block */
283         unsigned int first_frame;
284
285         /* Last error information */
286         u8 sense_key, asc, ascq;
287
288         /* Character device operation */
289         unsigned int minor;
290         /* device name */
291         char name[4];
292         /* Current character device data transfer direction */
293         u8 chrdev_dir;
294
295         /* tape block size, usually 512 or 1024 bytes */
296         unsigned short blk_size;
297         int user_bs_factor;
298
299         /* Copy of the tape's Capabilities and Mechanical Page */
300         u8 caps[20];
301
302         /*
303          * Active data transfer request parameters.
304          *
305          * At most, there is only one ide-tape originated data transfer request
306          * in the device request queue. This allows ide.c to easily service
307          * requests from the other device when we postpone our active request.
308          */
309
310         /* Data buffer size chosen based on the tape's recommendation */
311         int stage_size;
312         idetape_stage_t *merge_stage;
313         int merge_stage_size;
314         struct idetape_bh *bh;
315         char *b_data;
316         int b_count;
317
318         /* Pipeline parameters. */
319         int pages_per_stage;
320         /* Wasted space in each stage */
321         int excess_bh_size;
322
323         /* Status/Action flags: long for set_bit */
324         unsigned long flags;
325         /* protects the ide-tape queue */
326         spinlock_t lock;
327
328         /* Measures average tape speed */
329         unsigned long avg_time;
330         int avg_size;
331         int avg_speed;
332
333         /* the door is currently locked */
334         int door_locked;
335         /* the tape hardware is write protected */
336         char drv_write_prot;
337         /* the tape is write protected (hardware or opened as read-only) */
338         char write_prot;
339
340         u32 debug_mask;
341 } idetape_tape_t;
342
343 static DEFINE_MUTEX(idetape_ref_mutex);
344
345 static struct class *idetape_sysfs_class;
346
347 #define to_ide_tape(obj) container_of(obj, struct ide_tape_obj, kref)
348
349 #define ide_tape_g(disk) \
350         container_of((disk)->private_data, struct ide_tape_obj, driver)
351
352 static struct ide_tape_obj *ide_tape_get(struct gendisk *disk)
353 {
354         struct ide_tape_obj *tape = NULL;
355
356         mutex_lock(&idetape_ref_mutex);
357         tape = ide_tape_g(disk);
358         if (tape)
359                 kref_get(&tape->kref);
360         mutex_unlock(&idetape_ref_mutex);
361         return tape;
362 }
363
364 static void ide_tape_release(struct kref *);
365
366 static void ide_tape_put(struct ide_tape_obj *tape)
367 {
368         mutex_lock(&idetape_ref_mutex);
369         kref_put(&tape->kref, ide_tape_release);
370         mutex_unlock(&idetape_ref_mutex);
371 }
372
373 /*
374  * The variables below are used for the character device interface. Additional
375  * state variables are defined in our ide_drive_t structure.
376  */
377 static struct ide_tape_obj *idetape_devs[MAX_HWIFS * MAX_DRIVES];
378
379 #define ide_tape_f(file) ((file)->private_data)
380
381 static struct ide_tape_obj *ide_tape_chrdev_get(unsigned int i)
382 {
383         struct ide_tape_obj *tape = NULL;
384
385         mutex_lock(&idetape_ref_mutex);
386         tape = idetape_devs[i];
387         if (tape)
388                 kref_get(&tape->kref);
389         mutex_unlock(&idetape_ref_mutex);
390         return tape;
391 }
392
393 static void idetape_input_buffers(ide_drive_t *drive, struct ide_atapi_pc *pc,
394                                   unsigned int bcount)
395 {
396         struct idetape_bh *bh = pc->bh;
397         int count;
398
399         while (bcount) {
400                 if (bh == NULL) {
401                         printk(KERN_ERR "ide-tape: bh == NULL in "
402                                 "idetape_input_buffers\n");
403                         ide_atapi_discard_data(drive, bcount);
404                         return;
405                 }
406                 count = min(
407                         (unsigned int)(bh->b_size - atomic_read(&bh->b_count)),
408                         bcount);
409                 HWIF(drive)->atapi_input_bytes(drive, bh->b_data +
410                                         atomic_read(&bh->b_count), count);
411                 bcount -= count;
412                 atomic_add(count, &bh->b_count);
413                 if (atomic_read(&bh->b_count) == bh->b_size) {
414                         bh = bh->b_reqnext;
415                         if (bh)
416                                 atomic_set(&bh->b_count, 0);
417                 }
418         }
419         pc->bh = bh;
420 }
421
422 static void idetape_output_buffers(ide_drive_t *drive, struct ide_atapi_pc *pc,
423                                    unsigned int bcount)
424 {
425         struct idetape_bh *bh = pc->bh;
426         int count;
427
428         while (bcount) {
429                 if (bh == NULL) {
430                         printk(KERN_ERR "ide-tape: bh == NULL in %s\n",
431                                         __func__);
432                         return;
433                 }
434                 count = min((unsigned int)pc->b_count, (unsigned int)bcount);
435                 HWIF(drive)->atapi_output_bytes(drive, pc->b_data, count);
436                 bcount -= count;
437                 pc->b_data += count;
438                 pc->b_count -= count;
439                 if (!pc->b_count) {
440                         bh = bh->b_reqnext;
441                         pc->bh = bh;
442                         if (bh) {
443                                 pc->b_data = bh->b_data;
444                                 pc->b_count = atomic_read(&bh->b_count);
445                         }
446                 }
447         }
448 }
449
450 static void idetape_update_buffers(struct ide_atapi_pc *pc)
451 {
452         struct idetape_bh *bh = pc->bh;
453         int count;
454         unsigned int bcount = pc->xferred;
455
456         if (pc->flags & PC_FLAG_WRITING)
457                 return;
458         while (bcount) {
459                 if (bh == NULL) {
460                         printk(KERN_ERR "ide-tape: bh == NULL in %s\n",
461                                         __func__);
462                         return;
463                 }
464                 count = min((unsigned int)bh->b_size, (unsigned int)bcount);
465                 atomic_set(&bh->b_count, count);
466                 if (atomic_read(&bh->b_count) == bh->b_size)
467                         bh = bh->b_reqnext;
468                 bcount -= count;
469         }
470         pc->bh = bh;
471 }
472
473 /*
474  *      idetape_next_pc_storage returns a pointer to a place in which we can
475  *      safely store a packet command, even though we intend to leave the
476  *      driver. A storage space for a maximum of IDETAPE_PC_STACK packet
477  *      commands is allocated at initialization time.
478  */
479 static struct ide_atapi_pc *idetape_next_pc_storage(ide_drive_t *drive)
480 {
481         idetape_tape_t *tape = drive->driver_data;
482
483         debug_log(DBG_PCRQ_STACK, "pc_stack_index=%d\n", tape->pc_stack_index);
484
485         if (tape->pc_stack_index == IDETAPE_PC_STACK)
486                 tape->pc_stack_index = 0;
487         return (&tape->pc_stack[tape->pc_stack_index++]);
488 }
489
490 /*
491  *      idetape_next_rq_storage is used along with idetape_next_pc_storage.
492  *      Since we queue packet commands in the request queue, we need to
493  *      allocate a request, along with the allocation of a packet command.
494  */
495
496 /**************************************************************
497  *                                                            *
498  *  This should get fixed to use kmalloc(.., GFP_ATOMIC)      *
499  *  followed later on by kfree().   -ml                       *
500  *                                                            *
501  **************************************************************/
502
503 static struct request *idetape_next_rq_storage(ide_drive_t *drive)
504 {
505         idetape_tape_t *tape = drive->driver_data;
506
507         debug_log(DBG_PCRQ_STACK, "rq_stack_index=%d\n", tape->rq_stack_index);
508
509         if (tape->rq_stack_index == IDETAPE_PC_STACK)
510                 tape->rq_stack_index = 0;
511         return (&tape->rq_stack[tape->rq_stack_index++]);
512 }
513
514 static void idetape_init_pc(struct ide_atapi_pc *pc)
515 {
516         memset(pc->c, 0, 12);
517         pc->retries = 0;
518         pc->flags = 0;
519         pc->req_xfer = 0;
520         pc->buf = pc->pc_buf;
521         pc->buf_size = IDETAPE_PC_BUFFER_SIZE;
522         pc->bh = NULL;
523         pc->b_data = NULL;
524 }
525
526 /*
527  * called on each failed packet command retry to analyze the request sense. We
528  * currently do not utilize this information.
529  */
530 static void idetape_analyze_error(ide_drive_t *drive, u8 *sense)
531 {
532         idetape_tape_t *tape = drive->driver_data;
533         struct ide_atapi_pc *pc = tape->failed_pc;
534
535         tape->sense_key = sense[2] & 0xF;
536         tape->asc       = sense[12];
537         tape->ascq      = sense[13];
538
539         debug_log(DBG_ERR, "pc = %x, sense key = %x, asc = %x, ascq = %x\n",
540                  pc->c[0], tape->sense_key, tape->asc, tape->ascq);
541
542         /* Correct pc->xferred by asking the tape.       */
543         if (pc->flags & PC_FLAG_DMA_ERROR) {
544                 pc->xferred = pc->req_xfer -
545                         tape->blk_size *
546                         be32_to_cpu(get_unaligned((u32 *)&sense[3]));
547                 idetape_update_buffers(pc);
548         }
549
550         /*
551          * If error was the result of a zero-length read or write command,
552          * with sense key=5, asc=0x22, ascq=0, let it slide.  Some drives
553          * (i.e. Seagate STT3401A Travan) don't support 0-length read/writes.
554          */
555         if ((pc->c[0] == READ_6 || pc->c[0] == WRITE_6)
556             /* length == 0 */
557             && pc->c[4] == 0 && pc->c[3] == 0 && pc->c[2] == 0) {
558                 if (tape->sense_key == 5) {
559                         /* don't report an error, everything's ok */
560                         pc->error = 0;
561                         /* don't retry read/write */
562                         pc->flags |= PC_FLAG_ABORT;
563                 }
564         }
565         if (pc->c[0] == READ_6 && (sense[2] & 0x80)) {
566                 pc->error = IDETAPE_ERROR_FILEMARK;
567                 pc->flags |= PC_FLAG_ABORT;
568         }
569         if (pc->c[0] == WRITE_6) {
570                 if ((sense[2] & 0x40) || (tape->sense_key == 0xd
571                      && tape->asc == 0x0 && tape->ascq == 0x2)) {
572                         pc->error = IDETAPE_ERROR_EOD;
573                         pc->flags |= PC_FLAG_ABORT;
574                 }
575         }
576         if (pc->c[0] == READ_6 || pc->c[0] == WRITE_6) {
577                 if (tape->sense_key == 8) {
578                         pc->error = IDETAPE_ERROR_EOD;
579                         pc->flags |= PC_FLAG_ABORT;
580                 }
581                 if (!(pc->flags & PC_FLAG_ABORT) &&
582                     pc->xferred)
583                         pc->retries = IDETAPE_MAX_PC_RETRIES + 1;
584         }
585 }
586
587 /* Free a stage along with its related buffers completely. */
588 static void __idetape_kfree_stage(idetape_stage_t *stage)
589 {
590         struct idetape_bh *prev_bh, *bh = stage->bh;
591         int size;
592
593         while (bh != NULL) {
594                 if (bh->b_data != NULL) {
595                         size = (int) bh->b_size;
596                         while (size > 0) {
597                                 free_page((unsigned long) bh->b_data);
598                                 size -= PAGE_SIZE;
599                                 bh->b_data += PAGE_SIZE;
600                         }
601                 }
602                 prev_bh = bh;
603                 bh = bh->b_reqnext;
604                 kfree(prev_bh);
605         }
606         kfree(stage);
607 }
608
609 static int idetape_end_request(ide_drive_t *drive, int uptodate, int nr_sects)
610 {
611         struct request *rq = HWGROUP(drive)->rq;
612         idetape_tape_t *tape = drive->driver_data;
613         unsigned long flags;
614         int error;
615
616         debug_log(DBG_PROCS, "Enter %s\n", __func__);
617
618         switch (uptodate) {
619         case 0: error = IDETAPE_ERROR_GENERAL; break;
620         case 1: error = 0; break;
621         default: error = uptodate;
622         }
623         rq->errors = error;
624         if (error)
625                 tape->failed_pc = NULL;
626
627         if (!blk_special_request(rq)) {
628                 ide_end_request(drive, uptodate, nr_sects);
629                 return 0;
630         }
631
632         spin_lock_irqsave(&tape->lock, flags);
633
634         ide_end_drive_cmd(drive, 0, 0);
635
636         spin_unlock_irqrestore(&tape->lock, flags);
637         return 0;
638 }
639
640 static ide_startstop_t idetape_request_sense_callback(ide_drive_t *drive)
641 {
642         idetape_tape_t *tape = drive->driver_data;
643
644         debug_log(DBG_PROCS, "Enter %s\n", __func__);
645
646         if (!tape->pc->error) {
647                 idetape_analyze_error(drive, tape->pc->buf);
648                 idetape_end_request(drive, 1, 0);
649         } else {
650                 printk(KERN_ERR "ide-tape: Error in REQUEST SENSE itself - "
651                                 "Aborting request!\n");
652                 idetape_end_request(drive, 0, 0);
653         }
654         return ide_stopped;
655 }
656
657 static void idetape_create_request_sense_cmd(struct ide_atapi_pc *pc)
658 {
659         idetape_init_pc(pc);
660         pc->c[0] = REQUEST_SENSE;
661         pc->c[4] = 20;
662         pc->req_xfer = 20;
663         pc->idetape_callback = &idetape_request_sense_callback;
664 }
665
666 static void idetape_init_rq(struct request *rq, u8 cmd)
667 {
668         memset(rq, 0, sizeof(*rq));
669         rq->cmd_type = REQ_TYPE_SPECIAL;
670         rq->cmd[0] = cmd;
671 }
672
673 /*
674  * Generate a new packet command request in front of the request queue, before
675  * the current request, so that it will be processed immediately, on the next
676  * pass through the driver. The function below is called from the request
677  * handling part of the driver (the "bottom" part). Safe storage for the request
678  * should be allocated with ide_tape_next_{pc,rq}_storage() prior to that.
679  *
680  * Memory for those requests is pre-allocated at initialization time, and is
681  * limited to IDETAPE_PC_STACK requests. We assume that we have enough space for
682  * the maximum possible number of inter-dependent packet commands.
683  *
684  * The higher level of the driver - The ioctl handler and the character device
685  * handling functions should queue request to the lower level part and wait for
686  * their completion using idetape_queue_pc_tail or idetape_queue_rw_tail.
687  */
688 static void idetape_queue_pc_head(ide_drive_t *drive, struct ide_atapi_pc *pc,
689                                   struct request *rq)
690 {
691         struct ide_tape_obj *tape = drive->driver_data;
692
693         idetape_init_rq(rq, REQ_IDETAPE_PC1);
694         rq->buffer = (char *) pc;
695         rq->rq_disk = tape->disk;
696         (void) ide_do_drive_cmd(drive, rq, ide_preempt);
697 }
698
699 /*
700  *      idetape_retry_pc is called when an error was detected during the
701  *      last packet command. We queue a request sense packet command in
702  *      the head of the request list.
703  */
704 static ide_startstop_t idetape_retry_pc (ide_drive_t *drive)
705 {
706         idetape_tape_t *tape = drive->driver_data;
707         struct ide_atapi_pc *pc;
708         struct request *rq;
709
710         (void)ide_read_error(drive);
711         pc = idetape_next_pc_storage(drive);
712         rq = idetape_next_rq_storage(drive);
713         idetape_create_request_sense_cmd(pc);
714         set_bit(IDETAPE_FLAG_IGNORE_DSC, &tape->flags);
715         idetape_queue_pc_head(drive, pc, rq);
716         return ide_stopped;
717 }
718
719 /*
720  * Postpone the current request so that ide.c will be able to service requests
721  * from another device on the same hwgroup while we are polling for DSC.
722  */
723 static void idetape_postpone_request(ide_drive_t *drive)
724 {
725         idetape_tape_t *tape = drive->driver_data;
726
727         debug_log(DBG_PROCS, "Enter %s\n", __func__);
728
729         tape->postponed_rq = HWGROUP(drive)->rq;
730         ide_stall_queue(drive, tape->dsc_poll_freq);
731 }
732
733 typedef void idetape_io_buf(ide_drive_t *, struct ide_atapi_pc *, unsigned int);
734
735 /*
736  * This is the usual interrupt handler which will be called during a packet
737  * command. We will transfer some of the data (as requested by the drive) and
738  * will re-point interrupt handler to us. When data transfer is finished, we
739  * will act according to the algorithm described before
740  * idetape_issue_pc.
741  */
742 static ide_startstop_t idetape_pc_intr(ide_drive_t *drive)
743 {
744         ide_hwif_t *hwif = drive->hwif;
745         idetape_tape_t *tape = drive->driver_data;
746         struct ide_atapi_pc *pc = tape->pc;
747         xfer_func_t *xferfunc;
748         idetape_io_buf *iobuf;
749         unsigned int temp;
750 #if SIMULATE_ERRORS
751         static int error_sim_count;
752 #endif
753         u16 bcount;
754         u8 stat, ireason;
755
756         debug_log(DBG_PROCS, "Enter %s - interrupt handler\n", __func__);
757
758         /* Clear the interrupt */
759         stat = ide_read_status(drive);
760
761         if (pc->flags & PC_FLAG_DMA_IN_PROGRESS) {
762                 if (hwif->dma_ops->dma_end(drive) || (stat & ERR_STAT)) {
763                         /*
764                          * A DMA error is sometimes expected. For example,
765                          * if the tape is crossing a filemark during a
766                          * READ command, it will issue an irq and position
767                          * itself before the filemark, so that only a partial
768                          * data transfer will occur (which causes the DMA
769                          * error). In that case, we will later ask the tape
770                          * how much bytes of the original request were
771                          * actually transferred (we can't receive that
772                          * information from the DMA engine on most chipsets).
773                          */
774
775                         /*
776                          * On the contrary, a DMA error is never expected;
777                          * it usually indicates a hardware error or abort.
778                          * If the tape crosses a filemark during a READ
779                          * command, it will issue an irq and position itself
780                          * after the filemark (not before). Only a partial
781                          * data transfer will occur, but no DMA error.
782                          * (AS, 19 Apr 2001)
783                          */
784                         pc->flags |= PC_FLAG_DMA_ERROR;
785                 } else {
786                         pc->xferred = pc->req_xfer;
787                         idetape_update_buffers(pc);
788                 }
789                 debug_log(DBG_PROCS, "DMA finished\n");
790
791         }
792
793         /* No more interrupts */
794         if ((stat & DRQ_STAT) == 0) {
795                 debug_log(DBG_SENSE, "Packet command completed, %d bytes"
796                                 " transferred\n", pc->xferred);
797
798                 pc->flags &= ~PC_FLAG_DMA_IN_PROGRESS;
799                 local_irq_enable();
800
801 #if SIMULATE_ERRORS
802                 if ((pc->c[0] == WRITE_6 || pc->c[0] == READ_6) &&
803                     (++error_sim_count % 100) == 0) {
804                         printk(KERN_INFO "ide-tape: %s: simulating error\n",
805                                 tape->name);
806                         stat |= ERR_STAT;
807                 }
808 #endif
809                 if ((stat & ERR_STAT) && pc->c[0] == REQUEST_SENSE)
810                         stat &= ~ERR_STAT;
811                 if ((stat & ERR_STAT) || (pc->flags & PC_FLAG_DMA_ERROR)) {
812                         /* Error detected */
813                         debug_log(DBG_ERR, "%s: I/O error\n", tape->name);
814
815                         if (pc->c[0] == REQUEST_SENSE) {
816                                 printk(KERN_ERR "ide-tape: I/O error in request"
817                                                 " sense command\n");
818                                 return ide_do_reset(drive);
819                         }
820                         debug_log(DBG_ERR, "[cmd %x]: check condition\n",
821                                         pc->c[0]);
822
823                         /* Retry operation */
824                         return idetape_retry_pc(drive);
825                 }
826                 pc->error = 0;
827                 if ((pc->flags & PC_FLAG_WAIT_FOR_DSC) &&
828                     (stat & SEEK_STAT) == 0) {
829                         /* Media access command */
830                         tape->dsc_polling_start = jiffies;
831                         tape->dsc_poll_freq = IDETAPE_DSC_MA_FAST;
832                         tape->dsc_timeout = jiffies + IDETAPE_DSC_MA_TIMEOUT;
833                         /* Allow ide.c to handle other requests */
834                         idetape_postpone_request(drive);
835                         return ide_stopped;
836                 }
837                 if (tape->failed_pc == pc)
838                         tape->failed_pc = NULL;
839                 /* Command finished - Call the callback function */
840                 return pc->idetape_callback(drive);
841         }
842
843         if (pc->flags & PC_FLAG_DMA_IN_PROGRESS) {
844                 pc->flags &= ~PC_FLAG_DMA_IN_PROGRESS;
845                 printk(KERN_ERR "ide-tape: The tape wants to issue more "
846                                 "interrupts in DMA mode\n");
847                 printk(KERN_ERR "ide-tape: DMA disabled, reverting to PIO\n");
848                 ide_dma_off(drive);
849                 return ide_do_reset(drive);
850         }
851         /* Get the number of bytes to transfer on this interrupt. */
852         bcount = (hwif->INB(hwif->io_ports[IDE_BCOUNTH_OFFSET]) << 8) |
853                   hwif->INB(hwif->io_ports[IDE_BCOUNTL_OFFSET]);
854
855         ireason = hwif->INB(hwif->io_ports[IDE_IREASON_OFFSET]);
856
857         if (ireason & CD) {
858                 printk(KERN_ERR "ide-tape: CoD != 0 in %s\n", __func__);
859                 return ide_do_reset(drive);
860         }
861         if (((ireason & IO) == IO) == !!(pc->flags & PC_FLAG_WRITING)) {
862                 /* Hopefully, we will never get here */
863                 printk(KERN_ERR "ide-tape: We wanted to %s, ",
864                                 (ireason & IO) ? "Write" : "Read");
865                 printk(KERN_ERR "ide-tape: but the tape wants us to %s !\n",
866                                 (ireason & IO) ? "Read" : "Write");
867                 return ide_do_reset(drive);
868         }
869         if (!(pc->flags & PC_FLAG_WRITING)) {
870                 /* Reading - Check that we have enough space */
871                 temp = pc->xferred + bcount;
872                 if (temp > pc->req_xfer) {
873                         if (temp > pc->buf_size) {
874                                 printk(KERN_ERR "ide-tape: The tape wants to "
875                                         "send us more data than expected "
876                                         "- discarding data\n");
877                                 ide_atapi_discard_data(drive, bcount);
878                                 ide_set_handler(drive, &idetape_pc_intr,
879                                                 IDETAPE_WAIT_CMD, NULL);
880                                 return ide_started;
881                         }
882                         debug_log(DBG_SENSE, "The tape wants to send us more "
883                                 "data than expected - allowing transfer\n");
884                 }
885                 iobuf = &idetape_input_buffers;
886                 xferfunc = hwif->atapi_input_bytes;
887         } else {
888                 iobuf = &idetape_output_buffers;
889                 xferfunc = hwif->atapi_output_bytes;
890         }
891
892         if (pc->bh)
893                 iobuf(drive, pc, bcount);
894         else
895                 xferfunc(drive, pc->cur_pos, bcount);
896
897         /* Update the current position */
898         pc->xferred += bcount;
899         pc->cur_pos += bcount;
900
901         debug_log(DBG_SENSE, "[cmd %x] transferred %d bytes on that intr.\n",
902                         pc->c[0], bcount);
903
904         /* And set the interrupt handler again */
905         ide_set_handler(drive, &idetape_pc_intr, IDETAPE_WAIT_CMD, NULL);
906         return ide_started;
907 }
908
909 /*
910  * Packet Command Interface
911  *
912  * The current Packet Command is available in tape->pc, and will not change
913  * until we finish handling it. Each packet command is associated with a
914  * callback function that will be called when the command is finished.
915  *
916  * The handling will be done in three stages:
917  *
918  * 1. idetape_issue_pc will send the packet command to the drive, and will set
919  * the interrupt handler to idetape_pc_intr.
920  *
921  * 2. On each interrupt, idetape_pc_intr will be called. This step will be
922  * repeated until the device signals us that no more interrupts will be issued.
923  *
924  * 3. ATAPI Tape media access commands have immediate status with a delayed
925  * process. In case of a successful initiation of a media access packet command,
926  * the DSC bit will be set when the actual execution of the command is finished.
927  * Since the tape drive will not issue an interrupt, we have to poll for this
928  * event. In this case, we define the request as "low priority request" by
929  * setting rq_status to IDETAPE_RQ_POSTPONED, set a timer to poll for DSC and
930  * exit the driver.
931  *
932  * ide.c will then give higher priority to requests which originate from the
933  * other device, until will change rq_status to RQ_ACTIVE.
934  *
935  * 4. When the packet command is finished, it will be checked for errors.
936  *
937  * 5. In case an error was found, we queue a request sense packet command in
938  * front of the request queue and retry the operation up to
939  * IDETAPE_MAX_PC_RETRIES times.
940  *
941  * 6. In case no error was found, or we decided to give up and not to retry
942  * again, the callback function will be called and then we will handle the next
943  * request.
944  */
945 static ide_startstop_t idetape_transfer_pc(ide_drive_t *drive)
946 {
947         ide_hwif_t *hwif = drive->hwif;
948         idetape_tape_t *tape = drive->driver_data;
949         struct ide_atapi_pc *pc = tape->pc;
950         int retries = 100;
951         ide_startstop_t startstop;
952         u8 ireason;
953
954         if (ide_wait_stat(&startstop, drive, DRQ_STAT, BUSY_STAT, WAIT_READY)) {
955                 printk(KERN_ERR "ide-tape: Strange, packet command initiated "
956                                 "yet DRQ isn't asserted\n");
957                 return startstop;
958         }
959         ireason = hwif->INB(hwif->io_ports[IDE_IREASON_OFFSET]);
960         while (retries-- && ((ireason & CD) == 0 || (ireason & IO))) {
961                 printk(KERN_ERR "ide-tape: (IO,CoD != (0,1) while issuing "
962                                 "a packet command, retrying\n");
963                 udelay(100);
964                 ireason = hwif->INB(hwif->io_ports[IDE_IREASON_OFFSET]);
965                 if (retries == 0) {
966                         printk(KERN_ERR "ide-tape: (IO,CoD != (0,1) while "
967                                         "issuing a packet command, ignoring\n");
968                         ireason |= CD;
969                         ireason &= ~IO;
970                 }
971         }
972         if ((ireason & CD) == 0 || (ireason & IO)) {
973                 printk(KERN_ERR "ide-tape: (IO,CoD) != (0,1) while issuing "
974                                 "a packet command\n");
975                 return ide_do_reset(drive);
976         }
977         /* Set the interrupt routine */
978         ide_set_handler(drive, &idetape_pc_intr, IDETAPE_WAIT_CMD, NULL);
979 #ifdef CONFIG_BLK_DEV_IDEDMA
980         /* Begin DMA, if necessary */
981         if (pc->flags & PC_FLAG_DMA_IN_PROGRESS)
982                 hwif->dma_ops->dma_start(drive);
983 #endif
984         /* Send the actual packet */
985         HWIF(drive)->atapi_output_bytes(drive, pc->c, 12);
986         return ide_started;
987 }
988
989 static ide_startstop_t idetape_issue_pc(ide_drive_t *drive,
990                 struct ide_atapi_pc *pc)
991 {
992         ide_hwif_t *hwif = drive->hwif;
993         idetape_tape_t *tape = drive->driver_data;
994         int dma_ok = 0;
995         u16 bcount;
996
997         if (tape->pc->c[0] == REQUEST_SENSE &&
998             pc->c[0] == REQUEST_SENSE) {
999                 printk(KERN_ERR "ide-tape: possible ide-tape.c bug - "
1000                         "Two request sense in serial were issued\n");
1001         }
1002
1003         if (tape->failed_pc == NULL && pc->c[0] != REQUEST_SENSE)
1004                 tape->failed_pc = pc;
1005         /* Set the current packet command */
1006         tape->pc = pc;
1007
1008         if (pc->retries > IDETAPE_MAX_PC_RETRIES ||
1009                 (pc->flags & PC_FLAG_ABORT)) {
1010                 /*
1011                  * We will "abort" retrying a packet command in case legitimate
1012                  * error code was received (crossing a filemark, or end of the
1013                  * media, for example).
1014                  */
1015                 if (!(pc->flags & PC_FLAG_ABORT)) {
1016                         if (!(pc->c[0] == TEST_UNIT_READY &&
1017                               tape->sense_key == 2 && tape->asc == 4 &&
1018                              (tape->ascq == 1 || tape->ascq == 8))) {
1019                                 printk(KERN_ERR "ide-tape: %s: I/O error, "
1020                                                 "pc = %2x, key = %2x, "
1021                                                 "asc = %2x, ascq = %2x\n",
1022                                                 tape->name, pc->c[0],
1023                                                 tape->sense_key, tape->asc,
1024                                                 tape->ascq);
1025                         }
1026                         /* Giving up */
1027                         pc->error = IDETAPE_ERROR_GENERAL;
1028                 }
1029                 tape->failed_pc = NULL;
1030                 return pc->idetape_callback(drive);
1031         }
1032         debug_log(DBG_SENSE, "Retry #%d, cmd = %02X\n", pc->retries, pc->c[0]);
1033
1034         pc->retries++;
1035         /* We haven't transferred any data yet */
1036         pc->xferred = 0;
1037         pc->cur_pos = pc->buf;
1038         /* Request to transfer the entire buffer at once */
1039         bcount = pc->req_xfer;
1040
1041         if (pc->flags & PC_FLAG_DMA_ERROR) {
1042                 pc->flags &= ~PC_FLAG_DMA_ERROR;
1043                 printk(KERN_WARNING "ide-tape: DMA disabled, "
1044                                 "reverting to PIO\n");
1045                 ide_dma_off(drive);
1046         }
1047         if ((pc->flags & PC_FLAG_DMA_RECOMMENDED) && drive->using_dma)
1048                 dma_ok = !hwif->dma_ops->dma_setup(drive);
1049
1050         ide_pktcmd_tf_load(drive, IDE_TFLAG_NO_SELECT_MASK |
1051                            IDE_TFLAG_OUT_DEVICE, bcount, dma_ok);
1052
1053         if (dma_ok)
1054                 /* Will begin DMA later */
1055                 pc->flags |= PC_FLAG_DMA_IN_PROGRESS;
1056         if (test_bit(IDETAPE_FLAG_DRQ_INTERRUPT, &tape->flags)) {
1057                 ide_execute_command(drive, WIN_PACKETCMD, &idetape_transfer_pc,
1058                                     IDETAPE_WAIT_CMD, NULL);
1059                 return ide_started;
1060         } else {
1061                 hwif->OUTB(WIN_PACKETCMD, hwif->io_ports[IDE_COMMAND_OFFSET]);
1062                 return idetape_transfer_pc(drive);
1063         }
1064 }
1065
1066 static ide_startstop_t idetape_pc_callback(ide_drive_t *drive)
1067 {
1068         idetape_tape_t *tape = drive->driver_data;
1069
1070         debug_log(DBG_PROCS, "Enter %s\n", __func__);
1071
1072         idetape_end_request(drive, tape->pc->error ? 0 : 1, 0);
1073         return ide_stopped;
1074 }
1075
1076 /* A mode sense command is used to "sense" tape parameters. */
1077 static void idetape_create_mode_sense_cmd(struct ide_atapi_pc *pc, u8 page_code)
1078 {
1079         idetape_init_pc(pc);
1080         pc->c[0] = MODE_SENSE;
1081         if (page_code != IDETAPE_BLOCK_DESCRIPTOR)
1082                 /* DBD = 1 - Don't return block descriptors */
1083                 pc->c[1] = 8;
1084         pc->c[2] = page_code;
1085         /*
1086          * Changed pc->c[3] to 0 (255 will at best return unused info).
1087          *
1088          * For SCSI this byte is defined as subpage instead of high byte
1089          * of length and some IDE drives seem to interpret it this way
1090          * and return an error when 255 is used.
1091          */
1092         pc->c[3] = 0;
1093         /* We will just discard data in that case */
1094         pc->c[4] = 255;
1095         if (page_code == IDETAPE_BLOCK_DESCRIPTOR)
1096                 pc->req_xfer = 12;
1097         else if (page_code == IDETAPE_CAPABILITIES_PAGE)
1098                 pc->req_xfer = 24;
1099         else
1100                 pc->req_xfer = 50;
1101         pc->idetape_callback = &idetape_pc_callback;
1102 }
1103
1104 static ide_startstop_t idetape_media_access_finished(ide_drive_t *drive)
1105 {
1106         idetape_tape_t *tape = drive->driver_data;
1107         struct ide_atapi_pc *pc = tape->pc;
1108         u8 stat;
1109
1110         stat = ide_read_status(drive);
1111
1112         if (stat & SEEK_STAT) {
1113                 if (stat & ERR_STAT) {
1114                         /* Error detected */
1115                         if (pc->c[0] != TEST_UNIT_READY)
1116                                 printk(KERN_ERR "ide-tape: %s: I/O error, ",
1117                                                 tape->name);
1118                         /* Retry operation */
1119                         return idetape_retry_pc(drive);
1120                 }
1121                 pc->error = 0;
1122                 if (tape->failed_pc == pc)
1123                         tape->failed_pc = NULL;
1124         } else {
1125                 pc->error = IDETAPE_ERROR_GENERAL;
1126                 tape->failed_pc = NULL;
1127         }
1128         return pc->idetape_callback(drive);
1129 }
1130
1131 static ide_startstop_t idetape_rw_callback(ide_drive_t *drive)
1132 {
1133         idetape_tape_t *tape = drive->driver_data;
1134         struct request *rq = HWGROUP(drive)->rq;
1135         int blocks = tape->pc->xferred / tape->blk_size;
1136
1137         tape->avg_size += blocks * tape->blk_size;
1138
1139         if (time_after_eq(jiffies, tape->avg_time + HZ)) {
1140                 tape->avg_speed = tape->avg_size * HZ /
1141                                 (jiffies - tape->avg_time) / 1024;
1142                 tape->avg_size = 0;
1143                 tape->avg_time = jiffies;
1144         }
1145         debug_log(DBG_PROCS, "Enter %s\n", __func__);
1146
1147         tape->first_frame += blocks;
1148         rq->current_nr_sectors -= blocks;
1149
1150         if (!tape->pc->error)
1151                 idetape_end_request(drive, 1, 0);
1152         else
1153                 idetape_end_request(drive, tape->pc->error, 0);
1154         return ide_stopped;
1155 }
1156
1157 static void idetape_create_read_cmd(idetape_tape_t *tape,
1158                 struct ide_atapi_pc *pc,
1159                 unsigned int length, struct idetape_bh *bh)
1160 {
1161         idetape_init_pc(pc);
1162         pc->c[0] = READ_6;
1163         put_unaligned(cpu_to_be32(length), (unsigned int *) &pc->c[1]);
1164         pc->c[1] = 1;
1165         pc->idetape_callback = &idetape_rw_callback;
1166         pc->bh = bh;
1167         atomic_set(&bh->b_count, 0);
1168         pc->buf = NULL;
1169         pc->buf_size = length * tape->blk_size;
1170         pc->req_xfer = pc->buf_size;
1171         if (pc->req_xfer == tape->stage_size)
1172                 pc->flags |= PC_FLAG_DMA_RECOMMENDED;
1173 }
1174
1175 static void idetape_create_write_cmd(idetape_tape_t *tape,
1176                 struct ide_atapi_pc *pc,
1177                 unsigned int length, struct idetape_bh *bh)
1178 {
1179         idetape_init_pc(pc);
1180         pc->c[0] = WRITE_6;
1181         put_unaligned(cpu_to_be32(length), (unsigned int *) &pc->c[1]);
1182         pc->c[1] = 1;
1183         pc->idetape_callback = &idetape_rw_callback;
1184         pc->flags |= PC_FLAG_WRITING;
1185         pc->bh = bh;
1186         pc->b_data = bh->b_data;
1187         pc->b_count = atomic_read(&bh->b_count);
1188         pc->buf = NULL;
1189         pc->buf_size = length * tape->blk_size;
1190         pc->req_xfer = pc->buf_size;
1191         if (pc->req_xfer == tape->stage_size)
1192                 pc->flags |= PC_FLAG_DMA_RECOMMENDED;
1193 }
1194
1195 static ide_startstop_t idetape_do_request(ide_drive_t *drive,
1196                                           struct request *rq, sector_t block)
1197 {
1198         idetape_tape_t *tape = drive->driver_data;
1199         struct ide_atapi_pc *pc = NULL;
1200         struct request *postponed_rq = tape->postponed_rq;
1201         u8 stat;
1202
1203         debug_log(DBG_SENSE, "sector: %ld, nr_sectors: %ld,"
1204                         " current_nr_sectors: %d\n",
1205                         rq->sector, rq->nr_sectors, rq->current_nr_sectors);
1206
1207         if (!blk_special_request(rq)) {
1208                 /* We do not support buffer cache originated requests. */
1209                 printk(KERN_NOTICE "ide-tape: %s: Unsupported request in "
1210                         "request queue (%d)\n", drive->name, rq->cmd_type);
1211                 ide_end_request(drive, 0, 0);
1212                 return ide_stopped;
1213         }
1214
1215         /* Retry a failed packet command */
1216         if (tape->failed_pc && tape->pc->c[0] == REQUEST_SENSE)
1217                 return idetape_issue_pc(drive, tape->failed_pc);
1218
1219         if (postponed_rq != NULL)
1220                 if (rq != postponed_rq) {
1221                         printk(KERN_ERR "ide-tape: ide-tape.c bug - "
1222                                         "Two DSC requests were queued\n");
1223                         idetape_end_request(drive, 0, 0);
1224                         return ide_stopped;
1225                 }
1226
1227         tape->postponed_rq = NULL;
1228
1229         /*
1230          * If the tape is still busy, postpone our request and service
1231          * the other device meanwhile.
1232          */
1233         stat = ide_read_status(drive);
1234
1235         if (!drive->dsc_overlap && !(rq->cmd[0] & REQ_IDETAPE_PC2))
1236                 set_bit(IDETAPE_FLAG_IGNORE_DSC, &tape->flags);
1237
1238         if (drive->post_reset == 1) {
1239                 set_bit(IDETAPE_FLAG_IGNORE_DSC, &tape->flags);
1240                 drive->post_reset = 0;
1241         }
1242
1243         if (!test_and_clear_bit(IDETAPE_FLAG_IGNORE_DSC, &tape->flags) &&
1244             (stat & SEEK_STAT) == 0) {
1245                 if (postponed_rq == NULL) {
1246                         tape->dsc_polling_start = jiffies;
1247                         tape->dsc_poll_freq = tape->best_dsc_rw_freq;
1248                         tape->dsc_timeout = jiffies + IDETAPE_DSC_RW_TIMEOUT;
1249                 } else if (time_after(jiffies, tape->dsc_timeout)) {
1250                         printk(KERN_ERR "ide-tape: %s: DSC timeout\n",
1251                                 tape->name);
1252                         if (rq->cmd[0] & REQ_IDETAPE_PC2) {
1253                                 idetape_media_access_finished(drive);
1254                                 return ide_stopped;
1255                         } else {
1256                                 return ide_do_reset(drive);
1257                         }
1258                 } else if (time_after(jiffies,
1259                                         tape->dsc_polling_start +
1260                                         IDETAPE_DSC_MA_THRESHOLD))
1261                         tape->dsc_poll_freq = IDETAPE_DSC_MA_SLOW;
1262                 idetape_postpone_request(drive);
1263                 return ide_stopped;
1264         }
1265         if (rq->cmd[0] & REQ_IDETAPE_READ) {
1266                 pc = idetape_next_pc_storage(drive);
1267                 idetape_create_read_cmd(tape, pc, rq->current_nr_sectors,
1268                                         (struct idetape_bh *)rq->special);
1269                 goto out;
1270         }
1271         if (rq->cmd[0] & REQ_IDETAPE_WRITE) {
1272                 pc = idetape_next_pc_storage(drive);
1273                 idetape_create_write_cmd(tape, pc, rq->current_nr_sectors,
1274                                          (struct idetape_bh *)rq->special);
1275                 goto out;
1276         }
1277         if (rq->cmd[0] & REQ_IDETAPE_PC1) {
1278                 pc = (struct ide_atapi_pc *) rq->buffer;
1279                 rq->cmd[0] &= ~(REQ_IDETAPE_PC1);
1280                 rq->cmd[0] |= REQ_IDETAPE_PC2;
1281                 goto out;
1282         }
1283         if (rq->cmd[0] & REQ_IDETAPE_PC2) {
1284                 idetape_media_access_finished(drive);
1285                 return ide_stopped;
1286         }
1287         BUG();
1288 out:
1289         return idetape_issue_pc(drive, pc);
1290 }
1291
1292 /*
1293  * The function below uses __get_free_page to allocate a pipeline stage, along
1294  * with all the necessary small buffers which together make a buffer of size
1295  * tape->stage_size (or a bit more). We attempt to combine sequential pages as
1296  * much as possible.
1297  *
1298  * It returns a pointer to the new allocated stage, or NULL if we can't (or
1299  * don't want to) allocate a stage.
1300  */
1301 static idetape_stage_t *__idetape_kmalloc_stage(idetape_tape_t *tape, int full,
1302                                                 int clear)
1303 {
1304         idetape_stage_t *stage;
1305         struct idetape_bh *prev_bh, *bh;
1306         int pages = tape->pages_per_stage;
1307         char *b_data = NULL;
1308
1309         stage = kmalloc(sizeof(idetape_stage_t), GFP_KERNEL);
1310         if (!stage)
1311                 return NULL;
1312         stage->next = NULL;
1313
1314         stage->bh = kmalloc(sizeof(struct idetape_bh), GFP_KERNEL);
1315         bh = stage->bh;
1316         if (bh == NULL)
1317                 goto abort;
1318         bh->b_reqnext = NULL;
1319         bh->b_data = (char *) __get_free_page(GFP_KERNEL);
1320         if (!bh->b_data)
1321                 goto abort;
1322         if (clear)
1323                 memset(bh->b_data, 0, PAGE_SIZE);
1324         bh->b_size = PAGE_SIZE;
1325         atomic_set(&bh->b_count, full ? bh->b_size : 0);
1326
1327         while (--pages) {
1328                 b_data = (char *) __get_free_page(GFP_KERNEL);
1329                 if (!b_data)
1330                         goto abort;
1331                 if (clear)
1332                         memset(b_data, 0, PAGE_SIZE);
1333                 if (bh->b_data == b_data + PAGE_SIZE) {
1334                         bh->b_size += PAGE_SIZE;
1335                         bh->b_data -= PAGE_SIZE;
1336                         if (full)
1337                                 atomic_add(PAGE_SIZE, &bh->b_count);
1338                         continue;
1339                 }
1340                 if (b_data == bh->b_data + bh->b_size) {
1341                         bh->b_size += PAGE_SIZE;
1342                         if (full)
1343                                 atomic_add(PAGE_SIZE, &bh->b_count);
1344                         continue;
1345                 }
1346                 prev_bh = bh;
1347                 bh = kmalloc(sizeof(struct idetape_bh), GFP_KERNEL);
1348                 if (!bh) {
1349                         free_page((unsigned long) b_data);
1350                         goto abort;
1351                 }
1352                 bh->b_reqnext = NULL;
1353                 bh->b_data = b_data;
1354                 bh->b_size = PAGE_SIZE;
1355                 atomic_set(&bh->b_count, full ? bh->b_size : 0);
1356                 prev_bh->b_reqnext = bh;
1357         }
1358         bh->b_size -= tape->excess_bh_size;
1359         if (full)
1360                 atomic_sub(tape->excess_bh_size, &bh->b_count);
1361         return stage;
1362 abort:
1363         __idetape_kfree_stage(stage);
1364         return NULL;
1365 }
1366
1367 static int idetape_copy_stage_from_user(idetape_tape_t *tape,
1368                                         const char __user *buf, int n)
1369 {
1370         struct idetape_bh *bh = tape->bh;
1371         int count;
1372         int ret = 0;
1373
1374         while (n) {
1375                 if (bh == NULL) {
1376                         printk(KERN_ERR "ide-tape: bh == NULL in %s\n",
1377                                         __func__);
1378                         return 1;
1379                 }
1380                 count = min((unsigned int)
1381                                 (bh->b_size - atomic_read(&bh->b_count)),
1382                                 (unsigned int)n);
1383                 if (copy_from_user(bh->b_data + atomic_read(&bh->b_count), buf,
1384                                 count))
1385                         ret = 1;
1386                 n -= count;
1387                 atomic_add(count, &bh->b_count);
1388                 buf += count;
1389                 if (atomic_read(&bh->b_count) == bh->b_size) {
1390                         bh = bh->b_reqnext;
1391                         if (bh)
1392                                 atomic_set(&bh->b_count, 0);
1393                 }
1394         }
1395         tape->bh = bh;
1396         return ret;
1397 }
1398
1399 static int idetape_copy_stage_to_user(idetape_tape_t *tape, char __user *buf,
1400                                       int n)
1401 {
1402         struct idetape_bh *bh = tape->bh;
1403         int count;
1404         int ret = 0;
1405
1406         while (n) {
1407                 if (bh == NULL) {
1408                         printk(KERN_ERR "ide-tape: bh == NULL in %s\n",
1409                                         __func__);
1410                         return 1;
1411                 }
1412                 count = min(tape->b_count, n);
1413                 if  (copy_to_user(buf, tape->b_data, count))
1414                         ret = 1;
1415                 n -= count;
1416                 tape->b_data += count;
1417                 tape->b_count -= count;
1418                 buf += count;
1419                 if (!tape->b_count) {
1420                         bh = bh->b_reqnext;
1421                         tape->bh = bh;
1422                         if (bh) {
1423                                 tape->b_data = bh->b_data;
1424                                 tape->b_count = atomic_read(&bh->b_count);
1425                         }
1426                 }
1427         }
1428         return ret;
1429 }
1430
1431 static void idetape_init_merge_stage(idetape_tape_t *tape)
1432 {
1433         struct idetape_bh *bh = tape->merge_stage->bh;
1434
1435         tape->bh = bh;
1436         if (tape->chrdev_dir == IDETAPE_DIR_WRITE)
1437                 atomic_set(&bh->b_count, 0);
1438         else {
1439                 tape->b_data = bh->b_data;
1440                 tape->b_count = atomic_read(&bh->b_count);
1441         }
1442 }
1443
1444 static ide_startstop_t idetape_read_position_callback(ide_drive_t *drive)
1445 {
1446         idetape_tape_t *tape = drive->driver_data;
1447         u8 *readpos = tape->pc->buf;
1448
1449         debug_log(DBG_PROCS, "Enter %s\n", __func__);
1450
1451         if (!tape->pc->error) {
1452                 debug_log(DBG_SENSE, "BOP - %s\n",
1453                                 (readpos[0] & 0x80) ? "Yes" : "No");
1454                 debug_log(DBG_SENSE, "EOP - %s\n",
1455                                 (readpos[0] & 0x40) ? "Yes" : "No");
1456
1457                 if (readpos[0] & 0x4) {
1458                         printk(KERN_INFO "ide-tape: Block location is unknown"
1459                                          "to the tape\n");
1460                         clear_bit(IDETAPE_FLAG_ADDRESS_VALID, &tape->flags);
1461                         idetape_end_request(drive, 0, 0);
1462                 } else {
1463                         debug_log(DBG_SENSE, "Block Location - %u\n",
1464                                         be32_to_cpu(*(u32 *)&readpos[4]));
1465
1466                         tape->partition = readpos[1];
1467                         tape->first_frame =
1468                                 be32_to_cpu(*(u32 *)&readpos[4]);
1469                         set_bit(IDETAPE_FLAG_ADDRESS_VALID, &tape->flags);
1470                         idetape_end_request(drive, 1, 0);
1471                 }
1472         } else {
1473                 idetape_end_request(drive, 0, 0);
1474         }
1475         return ide_stopped;
1476 }
1477
1478 /*
1479  * Write a filemark if write_filemark=1. Flush the device buffers without
1480  * writing a filemark otherwise.
1481  */
1482 static void idetape_create_write_filemark_cmd(ide_drive_t *drive,
1483                 struct ide_atapi_pc *pc, int write_filemark)
1484 {
1485         idetape_init_pc(pc);
1486         pc->c[0] = WRITE_FILEMARKS;
1487         pc->c[4] = write_filemark;
1488         pc->flags |= PC_FLAG_WAIT_FOR_DSC;
1489         pc->idetape_callback = &idetape_pc_callback;
1490 }
1491
1492 static void idetape_create_test_unit_ready_cmd(struct ide_atapi_pc *pc)
1493 {
1494         idetape_init_pc(pc);
1495         pc->c[0] = TEST_UNIT_READY;
1496         pc->idetape_callback = &idetape_pc_callback;
1497 }
1498
1499 /*
1500  * We add a special packet command request to the tail of the request queue, and
1501  * wait for it to be serviced. This is not to be called from within the request
1502  * handling part of the driver! We allocate here data on the stack and it is
1503  * valid until the request is finished. This is not the case for the bottom part
1504  * of the driver, where we are always leaving the functions to wait for an
1505  * interrupt or a timer event.
1506  *
1507  * From the bottom part of the driver, we should allocate safe memory using
1508  * idetape_next_pc_storage() and ide_tape_next_rq_storage(), and add the request
1509  * to the request list without waiting for it to be serviced! In that case, we
1510  * usually use idetape_queue_pc_head().
1511  */
1512 static int idetape_queue_pc_tail(ide_drive_t *drive, struct ide_atapi_pc *pc)
1513 {
1514         struct ide_tape_obj *tape = drive->driver_data;
1515         struct request rq;
1516
1517         idetape_init_rq(&rq, REQ_IDETAPE_PC1);
1518         rq.buffer = (char *) pc;
1519         rq.rq_disk = tape->disk;
1520         return ide_do_drive_cmd(drive, &rq, ide_wait);
1521 }
1522
1523 static void idetape_create_load_unload_cmd(ide_drive_t *drive,
1524                 struct ide_atapi_pc *pc, int cmd)
1525 {
1526         idetape_init_pc(pc);
1527         pc->c[0] = START_STOP;
1528         pc->c[4] = cmd;
1529         pc->flags |= PC_FLAG_WAIT_FOR_DSC;
1530         pc->idetape_callback = &idetape_pc_callback;
1531 }
1532
1533 static int idetape_wait_ready(ide_drive_t *drive, unsigned long timeout)
1534 {
1535         idetape_tape_t *tape = drive->driver_data;
1536         struct ide_atapi_pc pc;
1537         int load_attempted = 0;
1538
1539         /* Wait for the tape to become ready */
1540         set_bit(IDETAPE_FLAG_MEDIUM_PRESENT, &tape->flags);
1541         timeout += jiffies;
1542         while (time_before(jiffies, timeout)) {
1543                 idetape_create_test_unit_ready_cmd(&pc);
1544                 if (!idetape_queue_pc_tail(drive, &pc))
1545                         return 0;
1546                 if ((tape->sense_key == 2 && tape->asc == 4 && tape->ascq == 2)
1547                     || (tape->asc == 0x3A)) {
1548                         /* no media */
1549                         if (load_attempted)
1550                                 return -ENOMEDIUM;
1551                         idetape_create_load_unload_cmd(drive, &pc,
1552                                                         IDETAPE_LU_LOAD_MASK);
1553                         idetape_queue_pc_tail(drive, &pc);
1554                         load_attempted = 1;
1555                 /* not about to be ready */
1556                 } else if (!(tape->sense_key == 2 && tape->asc == 4 &&
1557                              (tape->ascq == 1 || tape->ascq == 8)))
1558                         return -EIO;
1559                 msleep(100);
1560         }
1561         return -EIO;
1562 }
1563
1564 static int idetape_flush_tape_buffers(ide_drive_t *drive)
1565 {
1566         struct ide_atapi_pc pc;
1567         int rc;
1568
1569         idetape_create_write_filemark_cmd(drive, &pc, 0);
1570         rc = idetape_queue_pc_tail(drive, &pc);
1571         if (rc)
1572                 return rc;
1573         idetape_wait_ready(drive, 60 * 5 * HZ);
1574         return 0;
1575 }
1576
1577 static void idetape_create_read_position_cmd(struct ide_atapi_pc *pc)
1578 {
1579         idetape_init_pc(pc);
1580         pc->c[0] = READ_POSITION;
1581         pc->req_xfer = 20;
1582         pc->idetape_callback = &idetape_read_position_callback;
1583 }
1584
1585 static int idetape_read_position(ide_drive_t *drive)
1586 {
1587         idetape_tape_t *tape = drive->driver_data;
1588         struct ide_atapi_pc pc;
1589         int position;
1590
1591         debug_log(DBG_PROCS, "Enter %s\n", __func__);
1592
1593         idetape_create_read_position_cmd(&pc);
1594         if (idetape_queue_pc_tail(drive, &pc))
1595                 return -1;
1596         position = tape->first_frame;
1597         return position;
1598 }
1599
1600 static void idetape_create_locate_cmd(ide_drive_t *drive,
1601                 struct ide_atapi_pc *pc,
1602                 unsigned int block, u8 partition, int skip)
1603 {
1604         idetape_init_pc(pc);
1605         pc->c[0] = POSITION_TO_ELEMENT;
1606         pc->c[1] = 2;
1607         put_unaligned(cpu_to_be32(block), (unsigned int *) &pc->c[3]);
1608         pc->c[8] = partition;
1609         pc->flags |= PC_FLAG_WAIT_FOR_DSC;
1610         pc->idetape_callback = &idetape_pc_callback;
1611 }
1612
1613 static int idetape_create_prevent_cmd(ide_drive_t *drive,
1614                 struct ide_atapi_pc *pc, int prevent)
1615 {
1616         idetape_tape_t *tape = drive->driver_data;
1617
1618         /* device supports locking according to capabilities page */
1619         if (!(tape->caps[6] & 0x01))
1620                 return 0;
1621
1622         idetape_init_pc(pc);
1623         pc->c[0] = ALLOW_MEDIUM_REMOVAL;
1624         pc->c[4] = prevent;
1625         pc->idetape_callback = &idetape_pc_callback;
1626         return 1;
1627 }
1628
1629 static int __idetape_discard_read_pipeline(ide_drive_t *drive)
1630 {
1631         idetape_tape_t *tape = drive->driver_data;
1632
1633         if (tape->chrdev_dir != IDETAPE_DIR_READ)
1634                 return 0;
1635
1636         clear_bit(IDETAPE_FLAG_FILEMARK, &tape->flags);
1637         tape->merge_stage_size = 0;
1638         if (tape->merge_stage != NULL) {
1639                 __idetape_kfree_stage(tape->merge_stage);
1640                 tape->merge_stage = NULL;
1641         }
1642
1643         tape->chrdev_dir = IDETAPE_DIR_NONE;
1644
1645         return 0;
1646 }
1647
1648 /*
1649  * Position the tape to the requested block using the LOCATE packet command.
1650  * A READ POSITION command is then issued to check where we are positioned. Like
1651  * all higher level operations, we queue the commands at the tail of the request
1652  * queue and wait for their completion.
1653  */
1654 static int idetape_position_tape(ide_drive_t *drive, unsigned int block,
1655                 u8 partition, int skip)
1656 {
1657         idetape_tape_t *tape = drive->driver_data;
1658         int retval;
1659         struct ide_atapi_pc pc;
1660
1661         if (tape->chrdev_dir == IDETAPE_DIR_READ)
1662                 __idetape_discard_read_pipeline(drive);
1663         idetape_wait_ready(drive, 60 * 5 * HZ);
1664         idetape_create_locate_cmd(drive, &pc, block, partition, skip);
1665         retval = idetape_queue_pc_tail(drive, &pc);
1666         if (retval)
1667                 return (retval);
1668
1669         idetape_create_read_position_cmd(&pc);
1670         return (idetape_queue_pc_tail(drive, &pc));
1671 }
1672
1673 static void idetape_discard_read_pipeline(ide_drive_t *drive,
1674                                           int restore_position)
1675 {
1676         idetape_tape_t *tape = drive->driver_data;
1677         int cnt;
1678         int seek, position;
1679
1680         cnt = __idetape_discard_read_pipeline(drive);
1681         if (restore_position) {
1682                 position = idetape_read_position(drive);
1683                 seek = position > cnt ? position - cnt : 0;
1684                 if (idetape_position_tape(drive, seek, 0, 0)) {
1685                         printk(KERN_INFO "ide-tape: %s: position_tape failed in"
1686                                          " discard_pipeline()\n", tape->name);
1687                         return;
1688                 }
1689         }
1690 }
1691
1692 /*
1693  * Generate a read/write request for the block device interface and wait for it
1694  * to be serviced.
1695  */
1696 static int idetape_queue_rw_tail(ide_drive_t *drive, int cmd, int blocks,
1697                                  struct idetape_bh *bh)
1698 {
1699         idetape_tape_t *tape = drive->driver_data;
1700         struct request rq;
1701
1702         debug_log(DBG_SENSE, "%s: cmd=%d\n", __func__, cmd);
1703
1704         idetape_init_rq(&rq, cmd);
1705         rq.rq_disk = tape->disk;
1706         rq.special = (void *)bh;
1707         rq.sector = tape->first_frame;
1708         rq.nr_sectors           = blocks;
1709         rq.current_nr_sectors   = blocks;
1710         (void) ide_do_drive_cmd(drive, &rq, ide_wait);
1711
1712         if ((cmd & (REQ_IDETAPE_READ | REQ_IDETAPE_WRITE)) == 0)
1713                 return 0;
1714
1715         if (tape->merge_stage)
1716                 idetape_init_merge_stage(tape);
1717         if (rq.errors == IDETAPE_ERROR_GENERAL)
1718                 return -EIO;
1719         return (tape->blk_size * (blocks-rq.current_nr_sectors));
1720 }
1721
1722 static void idetape_create_inquiry_cmd(struct ide_atapi_pc *pc)
1723 {
1724         idetape_init_pc(pc);
1725         pc->c[0] = INQUIRY;
1726         pc->c[4] = 254;
1727         pc->req_xfer = 254;
1728         pc->idetape_callback = &idetape_pc_callback;
1729 }
1730
1731 static void idetape_create_rewind_cmd(ide_drive_t *drive,
1732                 struct ide_atapi_pc *pc)
1733 {
1734         idetape_init_pc(pc);
1735         pc->c[0] = REZERO_UNIT;
1736         pc->flags |= PC_FLAG_WAIT_FOR_DSC;
1737         pc->idetape_callback = &idetape_pc_callback;
1738 }
1739
1740 static void idetape_create_erase_cmd(struct ide_atapi_pc *pc)
1741 {
1742         idetape_init_pc(pc);
1743         pc->c[0] = ERASE;
1744         pc->c[1] = 1;
1745         pc->flags |= PC_FLAG_WAIT_FOR_DSC;
1746         pc->idetape_callback = &idetape_pc_callback;
1747 }
1748
1749 static void idetape_create_space_cmd(struct ide_atapi_pc *pc, int count, u8 cmd)
1750 {
1751         idetape_init_pc(pc);
1752         pc->c[0] = SPACE;
1753         put_unaligned(cpu_to_be32(count), (unsigned int *) &pc->c[1]);
1754         pc->c[1] = cmd;
1755         pc->flags |= PC_FLAG_WAIT_FOR_DSC;
1756         pc->idetape_callback = &idetape_pc_callback;
1757 }
1758
1759 /* Queue up a character device originated write request. */
1760 static int idetape_add_chrdev_write_request(ide_drive_t *drive, int blocks)
1761 {
1762         idetape_tape_t *tape = drive->driver_data;
1763
1764         debug_log(DBG_CHRDEV, "Enter %s\n", __func__);
1765
1766         return idetape_queue_rw_tail(drive, REQ_IDETAPE_WRITE,
1767                                      blocks, tape->merge_stage->bh);
1768 }
1769
1770 static void idetape_empty_write_pipeline(ide_drive_t *drive)
1771 {
1772         idetape_tape_t *tape = drive->driver_data;
1773         int blocks, min;
1774         struct idetape_bh *bh;
1775
1776         if (tape->chrdev_dir != IDETAPE_DIR_WRITE) {
1777                 printk(KERN_ERR "ide-tape: bug: Trying to empty write pipeline,"
1778                                 " but we are not writing.\n");
1779                 return;
1780         }
1781         if (tape->merge_stage_size > tape->stage_size) {
1782                 printk(KERN_ERR "ide-tape: bug: merge_buffer too big\n");
1783                 tape->merge_stage_size = tape->stage_size;
1784         }
1785         if (tape->merge_stage_size) {
1786                 blocks = tape->merge_stage_size / tape->blk_size;
1787                 if (tape->merge_stage_size % tape->blk_size) {
1788                         unsigned int i;
1789
1790                         blocks++;
1791                         i = tape->blk_size - tape->merge_stage_size %
1792                                 tape->blk_size;
1793                         bh = tape->bh->b_reqnext;
1794                         while (bh) {
1795                                 atomic_set(&bh->b_count, 0);
1796                                 bh = bh->b_reqnext;
1797                         }
1798                         bh = tape->bh;
1799                         while (i) {
1800                                 if (bh == NULL) {
1801                                         printk(KERN_INFO "ide-tape: bug,"
1802                                                          " bh NULL\n");
1803                                         break;
1804                                 }
1805                                 min = min(i, (unsigned int)(bh->b_size -
1806                                                 atomic_read(&bh->b_count)));
1807                                 memset(bh->b_data + atomic_read(&bh->b_count),
1808                                                 0, min);
1809                                 atomic_add(min, &bh->b_count);
1810                                 i -= min;
1811                                 bh = bh->b_reqnext;
1812                         }
1813                 }
1814                 (void) idetape_add_chrdev_write_request(drive, blocks);
1815                 tape->merge_stage_size = 0;
1816         }
1817         if (tape->merge_stage != NULL) {
1818                 __idetape_kfree_stage(tape->merge_stage);
1819                 tape->merge_stage = NULL;
1820         }
1821         tape->chrdev_dir = IDETAPE_DIR_NONE;
1822 }
1823
1824 static int idetape_init_read(ide_drive_t *drive)
1825 {
1826         idetape_tape_t *tape = drive->driver_data;
1827         int bytes_read;
1828
1829         /* Initialize read operation */
1830         if (tape->chrdev_dir != IDETAPE_DIR_READ) {
1831                 if (tape->chrdev_dir == IDETAPE_DIR_WRITE) {
1832                         idetape_empty_write_pipeline(drive);
1833                         idetape_flush_tape_buffers(drive);
1834                 }
1835                 if (tape->merge_stage || tape->merge_stage_size) {
1836                         printk(KERN_ERR "ide-tape: merge_stage_size should be"
1837                                          " 0 now\n");
1838                         tape->merge_stage_size = 0;
1839                 }
1840                 tape->merge_stage = __idetape_kmalloc_stage(tape, 0, 0);
1841                 if (!tape->merge_stage)
1842                         return -ENOMEM;
1843                 tape->chrdev_dir = IDETAPE_DIR_READ;
1844
1845                 /*
1846                  * Issue a read 0 command to ensure that DSC handshake is
1847                  * switched from completion mode to buffer available mode.
1848                  * No point in issuing this if DSC overlap isn't supported, some
1849                  * drives (Seagate STT3401A) will return an error.
1850                  */
1851                 if (drive->dsc_overlap) {
1852                         bytes_read = idetape_queue_rw_tail(drive,
1853                                                         REQ_IDETAPE_READ, 0,
1854                                                         tape->merge_stage->bh);
1855                         if (bytes_read < 0) {
1856                                 __idetape_kfree_stage(tape->merge_stage);
1857                                 tape->merge_stage = NULL;
1858                                 tape->chrdev_dir = IDETAPE_DIR_NONE;
1859                                 return bytes_read;
1860                         }
1861                 }
1862         }
1863
1864         return 0;
1865 }
1866
1867 /* called from idetape_chrdev_read() to service a chrdev read request. */
1868 static int idetape_add_chrdev_read_request(ide_drive_t *drive, int blocks)
1869 {
1870         idetape_tape_t *tape = drive->driver_data;
1871
1872         debug_log(DBG_PROCS, "Enter %s, %d blocks\n", __func__, blocks);
1873
1874         /* If we are at a filemark, return a read length of 0 */
1875         if (test_bit(IDETAPE_FLAG_FILEMARK, &tape->flags))
1876                 return 0;
1877
1878         idetape_init_read(drive);
1879
1880         return idetape_queue_rw_tail(drive, REQ_IDETAPE_READ, blocks,
1881                                      tape->merge_stage->bh);
1882 }
1883
1884 static void idetape_pad_zeros(ide_drive_t *drive, int bcount)
1885 {
1886         idetape_tape_t *tape = drive->driver_data;
1887         struct idetape_bh *bh;
1888         int blocks;
1889
1890         while (bcount) {
1891                 unsigned int count;
1892
1893                 bh = tape->merge_stage->bh;
1894                 count = min(tape->stage_size, bcount);
1895                 bcount -= count;
1896                 blocks = count / tape->blk_size;
1897                 while (count) {
1898                         atomic_set(&bh->b_count,
1899                                    min(count, (unsigned int)bh->b_size));
1900                         memset(bh->b_data, 0, atomic_read(&bh->b_count));
1901                         count -= atomic_read(&bh->b_count);
1902                         bh = bh->b_reqnext;
1903                 }
1904                 idetape_queue_rw_tail(drive, REQ_IDETAPE_WRITE, blocks,
1905                                       tape->merge_stage->bh);
1906         }
1907 }
1908
1909 /*
1910  * Rewinds the tape to the Beginning Of the current Partition (BOP). We
1911  * currently support only one partition.
1912  */
1913 static int idetape_rewind_tape(ide_drive_t *drive)
1914 {
1915         int retval;
1916         struct ide_atapi_pc pc;
1917         idetape_tape_t *tape;
1918         tape = drive->driver_data;
1919
1920         debug_log(DBG_SENSE, "Enter %s\n", __func__);
1921
1922         idetape_create_rewind_cmd(drive, &pc);
1923         retval = idetape_queue_pc_tail(drive, &pc);
1924         if (retval)
1925                 return retval;
1926
1927         idetape_create_read_position_cmd(&pc);
1928         retval = idetape_queue_pc_tail(drive, &pc);
1929         if (retval)
1930                 return retval;
1931         return 0;
1932 }
1933
1934 /* mtio.h compatible commands should be issued to the chrdev interface. */
1935 static int idetape_blkdev_ioctl(ide_drive_t *drive, unsigned int cmd,
1936                                 unsigned long arg)
1937 {
1938         idetape_tape_t *tape = drive->driver_data;
1939         void __user *argp = (void __user *)arg;
1940
1941         struct idetape_config {
1942                 int dsc_rw_frequency;
1943                 int dsc_media_access_frequency;
1944                 int nr_stages;
1945         } config;
1946
1947         debug_log(DBG_PROCS, "Enter %s\n", __func__);
1948
1949         switch (cmd) {
1950         case 0x0340:
1951                 if (copy_from_user(&config, argp, sizeof(config)))
1952                         return -EFAULT;
1953                 tape->best_dsc_rw_freq = config.dsc_rw_frequency;
1954                 break;
1955         case 0x0350:
1956                 config.dsc_rw_frequency = (int) tape->best_dsc_rw_freq;
1957                 config.nr_stages = 1;
1958                 if (copy_to_user(argp, &config, sizeof(config)))
1959                         return -EFAULT;
1960                 break;
1961         default:
1962                 return -EIO;
1963         }
1964         return 0;
1965 }
1966
1967 static int idetape_space_over_filemarks(ide_drive_t *drive, short mt_op,
1968                                         int mt_count)
1969 {
1970         idetape_tape_t *tape = drive->driver_data;
1971         struct ide_atapi_pc pc;
1972         int retval, count = 0;
1973         int sprev = !!(tape->caps[4] & 0x20);
1974
1975         if (mt_count == 0)
1976                 return 0;
1977         if (MTBSF == mt_op || MTBSFM == mt_op) {
1978                 if (!sprev)
1979                         return -EIO;
1980                 mt_count = -mt_count;
1981         }
1982
1983         if (tape->chrdev_dir == IDETAPE_DIR_READ) {
1984                 tape->merge_stage_size = 0;
1985                 if (test_and_clear_bit(IDETAPE_FLAG_FILEMARK, &tape->flags))
1986                         ++count;
1987                 idetape_discard_read_pipeline(drive, 0);
1988         }
1989
1990         /*
1991          * The filemark was not found in our internal pipeline; now we can issue
1992          * the space command.
1993          */
1994         switch (mt_op) {
1995         case MTFSF:
1996         case MTBSF:
1997                 idetape_create_space_cmd(&pc, mt_count - count,
1998                                          IDETAPE_SPACE_OVER_FILEMARK);
1999                 return idetape_queue_pc_tail(drive, &pc);
2000         case MTFSFM:
2001         case MTBSFM:
2002                 if (!sprev)
2003                         return -EIO;
2004                 retval = idetape_space_over_filemarks(drive, MTFSF,
2005                                                       mt_count - count);
2006                 if (retval)
2007                         return retval;
2008                 count = (MTBSFM == mt_op ? 1 : -1);
2009                 return idetape_space_over_filemarks(drive, MTFSF, count);
2010         default:
2011                 printk(KERN_ERR "ide-tape: MTIO operation %d not supported\n",
2012                                 mt_op);
2013                 return -EIO;
2014         }
2015 }
2016
2017 /*
2018  * Our character device read / write functions.
2019  *
2020  * The tape is optimized to maximize throughput when it is transferring an
2021  * integral number of the "continuous transfer limit", which is a parameter of
2022  * the specific tape (26kB on my particular tape, 32kB for Onstream).
2023  *
2024  * As of version 1.3 of the driver, the character device provides an abstract
2025  * continuous view of the media - any mix of block sizes (even 1 byte) on the
2026  * same backup/restore procedure is supported. The driver will internally
2027  * convert the requests to the recommended transfer unit, so that an unmatch
2028  * between the user's block size to the recommended size will only result in a
2029  * (slightly) increased driver overhead, but will no longer hit performance.
2030  * This is not applicable to Onstream.
2031  */
2032 static ssize_t idetape_chrdev_read(struct file *file, char __user *buf,
2033                                    size_t count, loff_t *ppos)
2034 {
2035         struct ide_tape_obj *tape = ide_tape_f(file);
2036         ide_drive_t *drive = tape->drive;
2037         ssize_t bytes_read, temp, actually_read = 0, rc;
2038         ssize_t ret = 0;
2039         u16 ctl = *(u16 *)&tape->caps[12];
2040
2041         debug_log(DBG_CHRDEV, "Enter %s, count %Zd\n", __func__, count);
2042
2043         if (tape->chrdev_dir != IDETAPE_DIR_READ) {
2044                 if (test_bit(IDETAPE_FLAG_DETECT_BS, &tape->flags))
2045                         if (count > tape->blk_size &&
2046                             (count % tape->blk_size) == 0)
2047                                 tape->user_bs_factor = count / tape->blk_size;
2048         }
2049         rc = idetape_init_read(drive);
2050         if (rc < 0)
2051                 return rc;
2052         if (count == 0)
2053                 return (0);
2054         if (tape->merge_stage_size) {
2055                 actually_read = min((unsigned int)(tape->merge_stage_size),
2056                                     (unsigned int)count);
2057                 if (idetape_copy_stage_to_user(tape, buf, actually_read))
2058                         ret = -EFAULT;
2059                 buf += actually_read;
2060                 tape->merge_stage_size -= actually_read;
2061                 count -= actually_read;
2062         }
2063         while (count >= tape->stage_size) {
2064                 bytes_read = idetape_add_chrdev_read_request(drive, ctl);
2065                 if (bytes_read <= 0)
2066                         goto finish;
2067                 if (idetape_copy_stage_to_user(tape, buf, bytes_read))
2068                         ret = -EFAULT;
2069                 buf += bytes_read;
2070                 count -= bytes_read;
2071                 actually_read += bytes_read;
2072         }
2073         if (count) {
2074                 bytes_read = idetape_add_chrdev_read_request(drive, ctl);
2075                 if (bytes_read <= 0)
2076                         goto finish;
2077                 temp = min((unsigned long)count, (unsigned long)bytes_read);
2078                 if (idetape_copy_stage_to_user(tape, buf, temp))
2079                         ret = -EFAULT;
2080                 actually_read += temp;
2081                 tape->merge_stage_size = bytes_read-temp;
2082         }
2083 finish:
2084         if (!actually_read && test_bit(IDETAPE_FLAG_FILEMARK, &tape->flags)) {
2085                 debug_log(DBG_SENSE, "%s: spacing over filemark\n", tape->name);
2086
2087                 idetape_space_over_filemarks(drive, MTFSF, 1);
2088                 return 0;
2089         }
2090
2091         return ret ? ret : actually_read;
2092 }
2093
2094 static ssize_t idetape_chrdev_write(struct file *file, const char __user *buf,
2095                                      size_t count, loff_t *ppos)
2096 {
2097         struct ide_tape_obj *tape = ide_tape_f(file);
2098         ide_drive_t *drive = tape->drive;
2099         ssize_t actually_written = 0;
2100         ssize_t ret = 0;
2101         u16 ctl = *(u16 *)&tape->caps[12];
2102
2103         /* The drive is write protected. */
2104         if (tape->write_prot)
2105                 return -EACCES;
2106
2107         debug_log(DBG_CHRDEV, "Enter %s, count %Zd\n", __func__, count);
2108
2109         /* Initialize write operation */
2110         if (tape->chrdev_dir != IDETAPE_DIR_WRITE) {
2111                 if (tape->chrdev_dir == IDETAPE_DIR_READ)
2112                         idetape_discard_read_pipeline(drive, 1);
2113                 if (tape->merge_stage || tape->merge_stage_size) {
2114                         printk(KERN_ERR "ide-tape: merge_stage_size "
2115                                 "should be 0 now\n");
2116                         tape->merge_stage_size = 0;
2117                 }
2118                 tape->merge_stage = __idetape_kmalloc_stage(tape, 0, 0);
2119                 if (!tape->merge_stage)
2120                         return -ENOMEM;
2121                 tape->chrdev_dir = IDETAPE_DIR_WRITE;
2122                 idetape_init_merge_stage(tape);
2123
2124                 /*
2125                  * Issue a write 0 command to ensure that DSC handshake is
2126                  * switched from completion mode to buffer available mode. No
2127                  * point in issuing this if DSC overlap isn't supported, some
2128                  * drives (Seagate STT3401A) will return an error.
2129                  */
2130                 if (drive->dsc_overlap) {
2131                         ssize_t retval = idetape_queue_rw_tail(drive,
2132                                                         REQ_IDETAPE_WRITE, 0,
2133                                                         tape->merge_stage->bh);
2134                         if (retval < 0) {
2135                                 __idetape_kfree_stage(tape->merge_stage);
2136                                 tape->merge_stage = NULL;
2137                                 tape->chrdev_dir = IDETAPE_DIR_NONE;
2138                                 return retval;
2139                         }
2140                 }
2141         }
2142         if (count == 0)
2143                 return (0);
2144         if (tape->merge_stage_size) {
2145                 if (tape->merge_stage_size >= tape->stage_size) {
2146                         printk(KERN_ERR "ide-tape: bug: merge buf too big\n");
2147                         tape->merge_stage_size = 0;
2148                 }
2149                 actually_written = min((unsigned int)
2150                                 (tape->stage_size - tape->merge_stage_size),
2151                                 (unsigned int)count);
2152                 if (idetape_copy_stage_from_user(tape, buf, actually_written))
2153                                 ret = -EFAULT;
2154                 buf += actually_written;
2155                 tape->merge_stage_size += actually_written;
2156                 count -= actually_written;
2157
2158                 if (tape->merge_stage_size == tape->stage_size) {
2159                         ssize_t retval;
2160                         tape->merge_stage_size = 0;
2161                         retval = idetape_add_chrdev_write_request(drive, ctl);
2162                         if (retval <= 0)
2163                                 return (retval);
2164                 }
2165         }
2166         while (count >= tape->stage_size) {
2167                 ssize_t retval;
2168                 if (idetape_copy_stage_from_user(tape, buf, tape->stage_size))
2169                         ret = -EFAULT;
2170                 buf += tape->stage_size;
2171                 count -= tape->stage_size;
2172                 retval = idetape_add_chrdev_write_request(drive, ctl);
2173                 actually_written += tape->stage_size;
2174                 if (retval <= 0)
2175                         return (retval);
2176         }
2177         if (count) {
2178                 actually_written += count;
2179                 if (idetape_copy_stage_from_user(tape, buf, count))
2180                         ret = -EFAULT;
2181                 tape->merge_stage_size += count;
2182         }
2183         return ret ? ret : actually_written;
2184 }
2185
2186 static int idetape_write_filemark(ide_drive_t *drive)
2187 {
2188         struct ide_atapi_pc pc;
2189
2190         /* Write a filemark */
2191         idetape_create_write_filemark_cmd(drive, &pc, 1);
2192         if (idetape_queue_pc_tail(drive, &pc)) {
2193                 printk(KERN_ERR "ide-tape: Couldn't write a filemark\n");
2194                 return -EIO;
2195         }
2196         return 0;
2197 }
2198
2199 /*
2200  * Called from idetape_chrdev_ioctl when the general mtio MTIOCTOP ioctl is
2201  * requested.
2202  *
2203  * Note: MTBSF and MTBSFM are not supported when the tape doesn't support
2204  * spacing over filemarks in the reverse direction. In this case, MTFSFM is also
2205  * usually not supported.
2206  *
2207  * The following commands are currently not supported:
2208  *
2209  * MTFSS, MTBSS, MTWSM, MTSETDENSITY, MTSETDRVBUFFER, MT_ST_BOOLEANS,
2210  * MT_ST_WRITE_THRESHOLD.
2211  */
2212 static int idetape_mtioctop(ide_drive_t *drive, short mt_op, int mt_count)
2213 {
2214         idetape_tape_t *tape = drive->driver_data;
2215         struct ide_atapi_pc pc;
2216         int i, retval;
2217
2218         debug_log(DBG_ERR, "Handling MTIOCTOP ioctl: mt_op=%d, mt_count=%d\n",
2219                         mt_op, mt_count);
2220
2221         switch (mt_op) {
2222         case MTFSF:
2223         case MTFSFM:
2224         case MTBSF:
2225         case MTBSFM:
2226                 if (!mt_count)
2227                         return 0;
2228                 return idetape_space_over_filemarks(drive, mt_op, mt_count);
2229         default:
2230                 break;
2231         }
2232
2233         switch (mt_op) {
2234         case MTWEOF:
2235                 if (tape->write_prot)
2236                         return -EACCES;
2237                 idetape_discard_read_pipeline(drive, 1);
2238                 for (i = 0; i < mt_count; i++) {
2239                         retval = idetape_write_filemark(drive);
2240                         if (retval)
2241                                 return retval;
2242                 }
2243                 return 0;
2244         case MTREW:
2245                 idetape_discard_read_pipeline(drive, 0);
2246                 if (idetape_rewind_tape(drive))
2247                         return -EIO;
2248                 return 0;
2249         case MTLOAD:
2250                 idetape_discard_read_pipeline(drive, 0);
2251                 idetape_create_load_unload_cmd(drive, &pc,
2252                                                IDETAPE_LU_LOAD_MASK);
2253                 return idetape_queue_pc_tail(drive, &pc);
2254         case MTUNLOAD:
2255         case MTOFFL:
2256                 /*
2257                  * If door is locked, attempt to unlock before
2258                  * attempting to eject.
2259                  */
2260                 if (tape->door_locked) {
2261                         if (idetape_create_prevent_cmd(drive, &pc, 0))
2262                                 if (!idetape_queue_pc_tail(drive, &pc))
2263                                         tape->door_locked = DOOR_UNLOCKED;
2264                 }
2265                 idetape_discard_read_pipeline(drive, 0);
2266                 idetape_create_load_unload_cmd(drive, &pc,
2267                                               !IDETAPE_LU_LOAD_MASK);
2268                 retval = idetape_queue_pc_tail(drive, &pc);
2269                 if (!retval)
2270                         clear_bit(IDETAPE_FLAG_MEDIUM_PRESENT, &tape->flags);
2271                 return retval;
2272         case MTNOP:
2273                 idetape_discard_read_pipeline(drive, 0);
2274                 return idetape_flush_tape_buffers(drive);
2275         case MTRETEN:
2276                 idetape_discard_read_pipeline(drive, 0);
2277                 idetape_create_load_unload_cmd(drive, &pc,
2278                         IDETAPE_LU_RETENSION_MASK | IDETAPE_LU_LOAD_MASK);
2279                 return idetape_queue_pc_tail(drive, &pc);
2280         case MTEOM:
2281                 idetape_create_space_cmd(&pc, 0, IDETAPE_SPACE_TO_EOD);
2282                 return idetape_queue_pc_tail(drive, &pc);
2283         case MTERASE:
2284                 (void)idetape_rewind_tape(drive);
2285                 idetape_create_erase_cmd(&pc);
2286                 return idetape_queue_pc_tail(drive, &pc);
2287         case MTSETBLK:
2288                 if (mt_count) {
2289                         if (mt_count < tape->blk_size ||
2290                             mt_count % tape->blk_size)
2291                                 return -EIO;
2292                         tape->user_bs_factor = mt_count / tape->blk_size;
2293                         clear_bit(IDETAPE_FLAG_DETECT_BS, &tape->flags);
2294                 } else
2295                         set_bit(IDETAPE_FLAG_DETECT_BS, &tape->flags);
2296                 return 0;
2297         case MTSEEK:
2298                 idetape_discard_read_pipeline(drive, 0);
2299                 return idetape_position_tape(drive,
2300                         mt_count * tape->user_bs_factor, tape->partition, 0);
2301         case MTSETPART:
2302                 idetape_discard_read_pipeline(drive, 0);
2303                 return idetape_position_tape(drive, 0, mt_count, 0);
2304         case MTFSR:
2305         case MTBSR:
2306         case MTLOCK:
2307                 if (!idetape_create_prevent_cmd(drive, &pc, 1))
2308                         return 0;
2309                 retval = idetape_queue_pc_tail(drive, &pc);
2310                 if (retval)
2311                         return retval;
2312                 tape->door_locked = DOOR_EXPLICITLY_LOCKED;
2313                 return 0;
2314         case MTUNLOCK:
2315                 if (!idetape_create_prevent_cmd(drive, &pc, 0))
2316                         return 0;
2317                 retval = idetape_queue_pc_tail(drive, &pc);
2318                 if (retval)
2319                         return retval;
2320                 tape->door_locked = DOOR_UNLOCKED;
2321                 return 0;
2322         default:
2323                 printk(KERN_ERR "ide-tape: MTIO operation %d not supported\n",
2324                                 mt_op);
2325                 return -EIO;
2326         }
2327 }
2328
2329 /*
2330  * Our character device ioctls. General mtio.h magnetic io commands are
2331  * supported here, and not in the corresponding block interface. Our own
2332  * ide-tape ioctls are supported on both interfaces.
2333  */
2334 static int idetape_chrdev_ioctl(struct inode *inode, struct file *file,
2335                                 unsigned int cmd, unsigned long arg)
2336 {
2337         struct ide_tape_obj *tape = ide_tape_f(file);
2338         ide_drive_t *drive = tape->drive;
2339         struct mtop mtop;
2340         struct mtget mtget;
2341         struct mtpos mtpos;
2342         int block_offset = 0, position = tape->first_frame;
2343         void __user *argp = (void __user *)arg;
2344
2345         debug_log(DBG_CHRDEV, "Enter %s, cmd=%u\n", __func__, cmd);
2346
2347         if (tape->chrdev_dir == IDETAPE_DIR_WRITE) {
2348                 idetape_empty_write_pipeline(drive);
2349                 idetape_flush_tape_buffers(drive);
2350         }
2351         if (cmd == MTIOCGET || cmd == MTIOCPOS) {
2352                 block_offset = tape->merge_stage_size /
2353                         (tape->blk_size * tape->user_bs_factor);
2354                 position = idetape_read_position(drive);
2355                 if (position < 0)
2356                         return -EIO;
2357         }
2358         switch (cmd) {
2359         case MTIOCTOP:
2360                 if (copy_from_user(&mtop, argp, sizeof(struct mtop)))
2361                         return -EFAULT;
2362                 return idetape_mtioctop(drive, mtop.mt_op, mtop.mt_count);
2363         case MTIOCGET:
2364                 memset(&mtget, 0, sizeof(struct mtget));
2365                 mtget.mt_type = MT_ISSCSI2;
2366                 mtget.mt_blkno = position / tape->user_bs_factor - block_offset;
2367                 mtget.mt_dsreg =
2368                         ((tape->blk_size * tape->user_bs_factor)
2369                          << MT_ST_BLKSIZE_SHIFT) & MT_ST_BLKSIZE_MASK;
2370
2371                 if (tape->drv_write_prot)
2372                         mtget.mt_gstat |= GMT_WR_PROT(0xffffffff);
2373
2374                 if (copy_to_user(argp, &mtget, sizeof(struct mtget)))
2375                         return -EFAULT;
2376                 return 0;
2377         case MTIOCPOS:
2378                 mtpos.mt_blkno = position / tape->user_bs_factor - block_offset;
2379                 if (copy_to_user(argp, &mtpos, sizeof(struct mtpos)))
2380                         return -EFAULT;
2381                 return 0;
2382         default:
2383                 if (tape->chrdev_dir == IDETAPE_DIR_READ)
2384                         idetape_discard_read_pipeline(drive, 1);
2385                 return idetape_blkdev_ioctl(drive, cmd, arg);
2386         }
2387 }
2388
2389 /*
2390  * Do a mode sense page 0 with block descriptor and if it succeeds set the tape
2391  * block size with the reported value.
2392  */
2393 static void ide_tape_get_bsize_from_bdesc(ide_drive_t *drive)
2394 {
2395         idetape_tape_t *tape = drive->driver_data;
2396         struct ide_atapi_pc pc;
2397
2398         idetape_create_mode_sense_cmd(&pc, IDETAPE_BLOCK_DESCRIPTOR);
2399         if (idetape_queue_pc_tail(drive, &pc)) {
2400                 printk(KERN_ERR "ide-tape: Can't get block descriptor\n");
2401                 if (tape->blk_size == 0) {
2402                         printk(KERN_WARNING "ide-tape: Cannot deal with zero "
2403                                             "block size, assuming 32k\n");
2404                         tape->blk_size = 32768;
2405                 }
2406                 return;
2407         }
2408         tape->blk_size = (pc.buf[4 + 5] << 16) +
2409                                 (pc.buf[4 + 6] << 8)  +
2410                                  pc.buf[4 + 7];
2411         tape->drv_write_prot = (pc.buf[2] & 0x80) >> 7;
2412 }
2413
2414 static int idetape_chrdev_open(struct inode *inode, struct file *filp)
2415 {
2416         unsigned int minor = iminor(inode), i = minor & ~0xc0;
2417         ide_drive_t *drive;
2418         idetape_tape_t *tape;
2419         struct ide_atapi_pc pc;
2420         int retval;
2421
2422         if (i >= MAX_HWIFS * MAX_DRIVES)
2423                 return -ENXIO;
2424
2425         tape = ide_tape_chrdev_get(i);
2426         if (!tape)
2427                 return -ENXIO;
2428
2429         debug_log(DBG_CHRDEV, "Enter %s\n", __func__);
2430
2431         /*
2432          * We really want to do nonseekable_open(inode, filp); here, but some
2433          * versions of tar incorrectly call lseek on tapes and bail out if that
2434          * fails.  So we disallow pread() and pwrite(), but permit lseeks.
2435          */
2436         filp->f_mode &= ~(FMODE_PREAD | FMODE_PWRITE);
2437
2438         drive = tape->drive;
2439
2440         filp->private_data = tape;
2441
2442         if (test_and_set_bit(IDETAPE_FLAG_BUSY, &tape->flags)) {
2443                 retval = -EBUSY;
2444                 goto out_put_tape;
2445         }
2446
2447         retval = idetape_wait_ready(drive, 60 * HZ);
2448         if (retval) {
2449                 clear_bit(IDETAPE_FLAG_BUSY, &tape->flags);
2450                 printk(KERN_ERR "ide-tape: %s: drive not ready\n", tape->name);
2451                 goto out_put_tape;
2452         }
2453
2454         idetape_read_position(drive);
2455         if (!test_bit(IDETAPE_FLAG_ADDRESS_VALID, &tape->flags))
2456                 (void)idetape_rewind_tape(drive);
2457
2458         /* Read block size and write protect status from drive. */
2459         ide_tape_get_bsize_from_bdesc(drive);
2460
2461         /* Set write protect flag if device is opened as read-only. */
2462         if ((filp->f_flags & O_ACCMODE) == O_RDONLY)
2463                 tape->write_prot = 1;
2464         else
2465                 tape->write_prot = tape->drv_write_prot;
2466
2467         /* Make sure drive isn't write protected if user wants to write. */
2468         if (tape->write_prot) {
2469                 if ((filp->f_flags & O_ACCMODE) == O_WRONLY ||
2470                     (filp->f_flags & O_ACCMODE) == O_RDWR) {
2471                         clear_bit(IDETAPE_FLAG_BUSY, &tape->flags);
2472                         retval = -EROFS;
2473                         goto out_put_tape;
2474                 }
2475         }
2476
2477         /* Lock the tape drive door so user can't eject. */
2478         if (tape->chrdev_dir == IDETAPE_DIR_NONE) {
2479                 if (idetape_create_prevent_cmd(drive, &pc, 1)) {
2480                         if (!idetape_queue_pc_tail(drive, &pc)) {
2481                                 if (tape->door_locked != DOOR_EXPLICITLY_LOCKED)
2482                                         tape->door_locked = DOOR_LOCKED;
2483                         }
2484                 }
2485         }
2486         return 0;
2487
2488 out_put_tape:
2489         ide_tape_put(tape);
2490         return retval;
2491 }
2492
2493 static void idetape_write_release(ide_drive_t *drive, unsigned int minor)
2494 {
2495         idetape_tape_t *tape = drive->driver_data;
2496
2497         idetape_empty_write_pipeline(drive);
2498         tape->merge_stage = __idetape_kmalloc_stage(tape, 1, 0);
2499         if (tape->merge_stage != NULL) {
2500                 idetape_pad_zeros(drive, tape->blk_size *
2501                                 (tape->user_bs_factor - 1));
2502                 __idetape_kfree_stage(tape->merge_stage);
2503                 tape->merge_stage = NULL;
2504         }
2505         idetape_write_filemark(drive);
2506         idetape_flush_tape_buffers(drive);
2507         idetape_flush_tape_buffers(drive);
2508 }
2509
2510 static int idetape_chrdev_release(struct inode *inode, struct file *filp)
2511 {
2512         struct ide_tape_obj *tape = ide_tape_f(filp);
2513         ide_drive_t *drive = tape->drive;
2514         struct ide_atapi_pc pc;
2515         unsigned int minor = iminor(inode);
2516
2517         lock_kernel();
2518         tape = drive->driver_data;
2519
2520         debug_log(DBG_CHRDEV, "Enter %s\n", __func__);
2521
2522         if (tape->chrdev_dir == IDETAPE_DIR_WRITE)
2523                 idetape_write_release(drive, minor);
2524         if (tape->chrdev_dir == IDETAPE_DIR_READ) {
2525                 if (minor < 128)
2526                         idetape_discard_read_pipeline(drive, 1);
2527         }
2528
2529         if (minor < 128 && test_bit(IDETAPE_FLAG_MEDIUM_PRESENT, &tape->flags))
2530                 (void) idetape_rewind_tape(drive);
2531         if (tape->chrdev_dir == IDETAPE_DIR_NONE) {
2532                 if (tape->door_locked == DOOR_LOCKED) {
2533                         if (idetape_create_prevent_cmd(drive, &pc, 0)) {
2534                                 if (!idetape_queue_pc_tail(drive, &pc))
2535                                         tape->door_locked = DOOR_UNLOCKED;
2536                         }
2537                 }
2538         }
2539         clear_bit(IDETAPE_FLAG_BUSY, &tape->flags);
2540         ide_tape_put(tape);
2541         unlock_kernel();
2542         return 0;
2543 }
2544
2545 /*
2546  * check the contents of the ATAPI IDENTIFY command results. We return:
2547  *
2548  * 1 - If the tape can be supported by us, based on the information we have so
2549  * far.
2550  *
2551  * 0 - If this tape driver is not currently supported by us.
2552  */
2553 static int idetape_identify_device(ide_drive_t *drive)
2554 {
2555         u8 gcw[2], protocol, device_type, removable, packet_size;
2556
2557         if (drive->id_read == 0)
2558                 return 1;
2559
2560         *((unsigned short *) &gcw) = drive->id->config;
2561
2562         protocol        =   (gcw[1] & 0xC0) >> 6;
2563         device_type     =    gcw[1] & 0x1F;
2564         removable       = !!(gcw[0] & 0x80);
2565         packet_size     =    gcw[0] & 0x3;
2566
2567         /* Check that we can support this device */
2568         if (protocol != 2)
2569                 printk(KERN_ERR "ide-tape: Protocol (0x%02x) is not ATAPI\n",
2570                                 protocol);
2571         else if (device_type != 1)
2572                 printk(KERN_ERR "ide-tape: Device type (0x%02x) is not set "
2573                                 "to tape\n", device_type);
2574         else if (!removable)
2575                 printk(KERN_ERR "ide-tape: The removable flag is not set\n");
2576         else if (packet_size != 0) {
2577                 printk(KERN_ERR "ide-tape: Packet size (0x%02x) is not 12"
2578                                 " bytes\n", packet_size);
2579         } else
2580                 return 1;
2581         return 0;
2582 }
2583
2584 static void idetape_get_inquiry_results(ide_drive_t *drive)
2585 {
2586         idetape_tape_t *tape = drive->driver_data;
2587         struct ide_atapi_pc pc;
2588         char fw_rev[6], vendor_id[10], product_id[18];
2589
2590         idetape_create_inquiry_cmd(&pc);
2591         if (idetape_queue_pc_tail(drive, &pc)) {
2592                 printk(KERN_ERR "ide-tape: %s: can't get INQUIRY results\n",
2593                                 tape->name);
2594                 return;
2595         }
2596         memcpy(vendor_id, &pc.buf[8], 8);
2597         memcpy(product_id, &pc.buf[16], 16);
2598         memcpy(fw_rev, &pc.buf[32], 4);
2599
2600         ide_fixstring(vendor_id, 10, 0);
2601         ide_fixstring(product_id, 18, 0);
2602         ide_fixstring(fw_rev, 6, 0);
2603
2604         printk(KERN_INFO "ide-tape: %s <-> %s: %s %s rev %s\n",
2605                         drive->name, tape->name, vendor_id, product_id, fw_rev);
2606 }
2607
2608 /*
2609  * Ask the tape about its various parameters. In particular, we will adjust our
2610  * data transfer buffer size to the recommended value as returned by the tape.
2611  */
2612 static void idetape_get_mode_sense_results(ide_drive_t *drive)
2613 {
2614         idetape_tape_t *tape = drive->driver_data;
2615         struct ide_atapi_pc pc;
2616         u8 *caps;
2617         u8 speed, max_speed;
2618
2619         idetape_create_mode_sense_cmd(&pc, IDETAPE_CAPABILITIES_PAGE);
2620         if (idetape_queue_pc_tail(drive, &pc)) {
2621                 printk(KERN_ERR "ide-tape: Can't get tape parameters - assuming"
2622                                 " some default values\n");
2623                 tape->blk_size = 512;
2624                 put_unaligned(52,   (u16 *)&tape->caps[12]);
2625                 put_unaligned(540,  (u16 *)&tape->caps[14]);
2626                 put_unaligned(6*52, (u16 *)&tape->caps[16]);
2627                 return;
2628         }
2629         caps = pc.buf + 4 + pc.buf[3];
2630
2631         /* convert to host order and save for later use */
2632         speed = be16_to_cpu(*(u16 *)&caps[14]);
2633         max_speed = be16_to_cpu(*(u16 *)&caps[8]);
2634
2635         put_unaligned(max_speed, (u16 *)&caps[8]);
2636         put_unaligned(be16_to_cpu(*(u16 *)&caps[12]), (u16 *)&caps[12]);
2637         put_unaligned(speed, (u16 *)&caps[14]);
2638         put_unaligned(be16_to_cpu(*(u16 *)&caps[16]), (u16 *)&caps[16]);
2639
2640         if (!speed) {
2641                 printk(KERN_INFO "ide-tape: %s: invalid tape speed "
2642                                 "(assuming 650KB/sec)\n", drive->name);
2643                 put_unaligned(650, (u16 *)&caps[14]);
2644         }
2645         if (!max_speed) {
2646                 printk(KERN_INFO "ide-tape: %s: invalid max_speed "
2647                                 "(assuming 650KB/sec)\n", drive->name);
2648                 put_unaligned(650, (u16 *)&caps[8]);
2649         }
2650
2651         memcpy(&tape->caps, caps, 20);
2652         if (caps[7] & 0x02)
2653                 tape->blk_size = 512;
2654         else if (caps[7] & 0x04)
2655                 tape->blk_size = 1024;
2656 }
2657
2658 #ifdef CONFIG_IDE_PROC_FS
2659 static void idetape_add_settings(ide_drive_t *drive)
2660 {
2661         idetape_tape_t *tape = drive->driver_data;
2662
2663         ide_add_setting(drive, "buffer", SETTING_READ, TYPE_SHORT, 0, 0xffff,
2664                         1, 2, (u16 *)&tape->caps[16], NULL);
2665         ide_add_setting(drive, "speed", SETTING_READ, TYPE_SHORT, 0, 0xffff,
2666                         1, 1, (u16 *)&tape->caps[14], NULL);
2667         ide_add_setting(drive, "stage", SETTING_READ, TYPE_INT, 0, 0xffff, 1,
2668                         1024, &tape->stage_size, NULL);
2669         ide_add_setting(drive, "tdsc", SETTING_RW, TYPE_INT, IDETAPE_DSC_RW_MIN,
2670                         IDETAPE_DSC_RW_MAX, 1000, HZ, &tape->best_dsc_rw_freq,
2671                         NULL);
2672         ide_add_setting(drive, "dsc_overlap", SETTING_RW, TYPE_BYTE, 0, 1, 1,
2673                         1, &drive->dsc_overlap, NULL);
2674         ide_add_setting(drive, "avg_speed", SETTING_READ, TYPE_INT, 0, 0xffff,
2675                         1, 1, &tape->avg_speed, NULL);
2676         ide_add_setting(drive, "debug_mask", SETTING_RW, TYPE_INT, 0, 0xffff, 1,
2677                         1, &tape->debug_mask, NULL);
2678 }
2679 #else
2680 static inline void idetape_add_settings(ide_drive_t *drive) { ; }
2681 #endif
2682
2683 /*
2684  * The function below is called to:
2685  *
2686  * 1. Initialize our various state variables.
2687  * 2. Ask the tape for its capabilities.
2688  * 3. Allocate a buffer which will be used for data transfer. The buffer size
2689  * is chosen based on the recommendation which we received in step 2.
2690  *
2691  * Note that at this point ide.c already assigned us an irq, so that we can
2692  * queue requests here and wait for their completion.
2693  */
2694 static void idetape_setup(ide_drive_t *drive, idetape_tape_t *tape, int minor)
2695 {
2696         unsigned long t;
2697         int speed;
2698         int stage_size;
2699         u8 gcw[2];
2700         u16 *ctl = (u16 *)&tape->caps[12];
2701
2702         spin_lock_init(&tape->lock);
2703         drive->dsc_overlap = 1;
2704         if (drive->hwif->host_flags & IDE_HFLAG_NO_DSC) {
2705                 printk(KERN_INFO "ide-tape: %s: disabling DSC overlap\n",
2706                                  tape->name);
2707                 drive->dsc_overlap = 0;
2708         }
2709         /* Seagate Travan drives do not support DSC overlap. */
2710         if (strstr(drive->id->model, "Seagate STT3401"))
2711                 drive->dsc_overlap = 0;
2712         tape->minor = minor;
2713         tape->name[0] = 'h';
2714         tape->name[1] = 't';
2715         tape->name[2] = '0' + minor;
2716         tape->chrdev_dir = IDETAPE_DIR_NONE;
2717         tape->pc = tape->pc_stack;
2718         *((unsigned short *) &gcw) = drive->id->config;
2719
2720         /* Command packet DRQ type */
2721         if (((gcw[0] & 0x60) >> 5) == 1)
2722                 set_bit(IDETAPE_FLAG_DRQ_INTERRUPT, &tape->flags);
2723
2724         idetape_get_inquiry_results(drive);
2725         idetape_get_mode_sense_results(drive);
2726         ide_tape_get_bsize_from_bdesc(drive);
2727         tape->user_bs_factor = 1;
2728         tape->stage_size = *ctl * tape->blk_size;
2729         while (tape->stage_size > 0xffff) {
2730                 printk(KERN_NOTICE "ide-tape: decreasing stage size\n");
2731                 *ctl /= 2;
2732                 tape->stage_size = *ctl * tape->blk_size;
2733         }
2734         stage_size = tape->stage_size;
2735         tape->pages_per_stage = stage_size / PAGE_SIZE;
2736         if (stage_size % PAGE_SIZE) {
2737                 tape->pages_per_stage++;
2738                 tape->excess_bh_size = PAGE_SIZE - stage_size % PAGE_SIZE;
2739         }
2740
2741         /* select the "best" DSC read/write polling freq */
2742         speed = max(*(u16 *)&tape->caps[14], *(u16 *)&tape->caps[8]);
2743
2744         t = (IDETAPE_FIFO_THRESHOLD * tape->stage_size * HZ) / (speed * 1000);
2745
2746         /*
2747          * Ensure that the number we got makes sense; limit it within
2748          * IDETAPE_DSC_RW_MIN and IDETAPE_DSC_RW_MAX.
2749          */
2750         tape->best_dsc_rw_freq = max_t(unsigned long,
2751                                 min_t(unsigned long, t, IDETAPE_DSC_RW_MAX),
2752                                 IDETAPE_DSC_RW_MIN);
2753         printk(KERN_INFO "ide-tape: %s <-> %s: %dKBps, %d*%dkB buffer, "
2754                 "%lums tDSC%s\n",
2755                 drive->name, tape->name, *(u16 *)&tape->caps[14],
2756                 (*(u16 *)&tape->caps[16] * 512) / tape->stage_size,
2757                 tape->stage_size / 1024,
2758                 tape->best_dsc_rw_freq * 1000 / HZ,
2759                 drive->using_dma ? ", DMA":"");
2760
2761         idetape_add_settings(drive);
2762 }
2763
2764 static void ide_tape_remove(ide_drive_t *drive)
2765 {
2766         idetape_tape_t *tape = drive->driver_data;
2767
2768         ide_proc_unregister_driver(drive, tape->driver);
2769
2770         ide_unregister_region(tape->disk);
2771
2772         ide_tape_put(tape);
2773 }
2774
2775 static void ide_tape_release(struct kref *kref)
2776 {
2777         struct ide_tape_obj *tape = to_ide_tape(kref);
2778         ide_drive_t *drive = tape->drive;
2779         struct gendisk *g = tape->disk;
2780
2781         BUG_ON(tape->merge_stage_size);
2782
2783         drive->dsc_overlap = 0;
2784         drive->driver_data = NULL;
2785         device_destroy(idetape_sysfs_class, MKDEV(IDETAPE_MAJOR, tape->minor));
2786         device_destroy(idetape_sysfs_class,
2787                         MKDEV(IDETAPE_MAJOR, tape->minor + 128));
2788         idetape_devs[tape->minor] = NULL;
2789         g->private_data = NULL;
2790         put_disk(g);
2791         kfree(tape);
2792 }
2793
2794 #ifdef CONFIG_IDE_PROC_FS
2795 static int proc_idetape_read_name
2796         (char *page, char **start, off_t off, int count, int *eof, void *data)
2797 {
2798         ide_drive_t     *drive = (ide_drive_t *) data;
2799         idetape_tape_t  *tape = drive->driver_data;
2800         char            *out = page;
2801         int             len;
2802
2803         len = sprintf(out, "%s\n", tape->name);
2804         PROC_IDE_READ_RETURN(page, start, off, count, eof, len);
2805 }
2806
2807 static ide_proc_entry_t idetape_proc[] = {
2808         { "capacity",   S_IFREG|S_IRUGO,        proc_ide_read_capacity, NULL },
2809         { "name",       S_IFREG|S_IRUGO,        proc_idetape_read_name, NULL },
2810         { NULL, 0, NULL, NULL }
2811 };
2812 #endif
2813
2814 static int ide_tape_probe(ide_drive_t *);
2815
2816 static ide_driver_t idetape_driver = {
2817         .gen_driver = {
2818                 .owner          = THIS_MODULE,
2819                 .name           = "ide-tape",
2820                 .bus            = &ide_bus_type,
2821         },
2822         .probe                  = ide_tape_probe,
2823         .remove                 = ide_tape_remove,
2824         .version                = IDETAPE_VERSION,
2825         .media                  = ide_tape,
2826         .supports_dsc_overlap   = 1,
2827         .do_request             = idetape_do_request,
2828         .end_request            = idetape_end_request,
2829         .error                  = __ide_error,
2830         .abort                  = __ide_abort,
2831 #ifdef CONFIG_IDE_PROC_FS
2832         .proc                   = idetape_proc,
2833 #endif
2834 };
2835
2836 /* Our character device supporting functions, passed to register_chrdev. */
2837 static const struct file_operations idetape_fops = {
2838         .owner          = THIS_MODULE,
2839         .read           = idetape_chrdev_read,
2840         .write          = idetape_chrdev_write,
2841         .ioctl          = idetape_chrdev_ioctl,
2842         .open           = idetape_chrdev_open,
2843         .release        = idetape_chrdev_release,
2844 };
2845
2846 static int idetape_open(struct inode *inode, struct file *filp)
2847 {
2848         struct gendisk *disk = inode->i_bdev->bd_disk;
2849         struct ide_tape_obj *tape;
2850
2851         tape = ide_tape_get(disk);
2852         if (!tape)
2853                 return -ENXIO;
2854
2855         return 0;
2856 }
2857
2858 static int idetape_release(struct inode *inode, struct file *filp)
2859 {
2860         struct gendisk *disk = inode->i_bdev->bd_disk;
2861         struct ide_tape_obj *tape = ide_tape_g(disk);
2862
2863         ide_tape_put(tape);
2864
2865         return 0;
2866 }
2867
2868 static int idetape_ioctl(struct inode *inode, struct file *file,
2869                         unsigned int cmd, unsigned long arg)
2870 {
2871         struct block_device *bdev = inode->i_bdev;
2872         struct ide_tape_obj *tape = ide_tape_g(bdev->bd_disk);
2873         ide_drive_t *drive = tape->drive;
2874         int err = generic_ide_ioctl(drive, file, bdev, cmd, arg);
2875         if (err == -EINVAL)
2876                 err = idetape_blkdev_ioctl(drive, cmd, arg);
2877         return err;
2878 }
2879
2880 static struct block_device_operations idetape_block_ops = {
2881         .owner          = THIS_MODULE,
2882         .open           = idetape_open,
2883         .release        = idetape_release,
2884         .ioctl          = idetape_ioctl,
2885 };
2886
2887 static int ide_tape_probe(ide_drive_t *drive)
2888 {
2889         idetape_tape_t *tape;
2890         struct gendisk *g;
2891         int minor;
2892
2893         if (!strstr("ide-tape", drive->driver_req))
2894                 goto failed;
2895         if (!drive->present)
2896                 goto failed;
2897         if (drive->media != ide_tape)
2898                 goto failed;
2899         if (!idetape_identify_device(drive)) {
2900                 printk(KERN_ERR "ide-tape: %s: not supported by this version of"
2901                                 " the driver\n", drive->name);
2902                 goto failed;
2903         }
2904         if (drive->scsi) {
2905                 printk(KERN_INFO "ide-tape: passing drive %s to ide-scsi"
2906                                  " emulation.\n", drive->name);
2907                 goto failed;
2908         }
2909         tape = kzalloc(sizeof(idetape_tape_t), GFP_KERNEL);
2910         if (tape == NULL) {
2911                 printk(KERN_ERR "ide-tape: %s: Can't allocate a tape struct\n",
2912                                 drive->name);
2913                 goto failed;
2914         }
2915
2916         g = alloc_disk(1 << PARTN_BITS);
2917         if (!g)
2918                 goto out_free_tape;
2919
2920         ide_init_disk(g, drive);
2921
2922         ide_proc_register_driver(drive, &idetape_driver);
2923
2924         kref_init(&tape->kref);
2925
2926         tape->drive = drive;
2927         tape->driver = &idetape_driver;
2928         tape->disk = g;
2929
2930         g->private_data = &tape->driver;
2931
2932         drive->driver_data = tape;
2933
2934         mutex_lock(&idetape_ref_mutex);
2935         for (minor = 0; idetape_devs[minor]; minor++)
2936                 ;
2937         idetape_devs[minor] = tape;
2938         mutex_unlock(&idetape_ref_mutex);
2939
2940         idetape_setup(drive, tape, minor);
2941
2942         device_create(idetape_sysfs_class, &drive->gendev,
2943                       MKDEV(IDETAPE_MAJOR, minor), "%s", tape->name);
2944         device_create(idetape_sysfs_class, &drive->gendev,
2945                         MKDEV(IDETAPE_MAJOR, minor + 128), "n%s", tape->name);
2946
2947         g->fops = &idetape_block_ops;
2948         ide_register_region(g);
2949
2950         return 0;
2951
2952 out_free_tape:
2953         kfree(tape);
2954 failed:
2955         return -ENODEV;
2956 }
2957
2958 static void __exit idetape_exit(void)
2959 {
2960         driver_unregister(&idetape_driver.gen_driver);
2961         class_destroy(idetape_sysfs_class);
2962         unregister_chrdev(IDETAPE_MAJOR, "ht");
2963 }
2964
2965 static int __init idetape_init(void)
2966 {
2967         int error = 1;
2968         idetape_sysfs_class = class_create(THIS_MODULE, "ide_tape");
2969         if (IS_ERR(idetape_sysfs_class)) {
2970                 idetape_sysfs_class = NULL;
2971                 printk(KERN_ERR "Unable to create sysfs class for ide tapes\n");
2972                 error = -EBUSY;
2973                 goto out;
2974         }
2975
2976         if (register_chrdev(IDETAPE_MAJOR, "ht", &idetape_fops)) {
2977                 printk(KERN_ERR "ide-tape: Failed to register chrdev"
2978                                 " interface\n");
2979                 error = -EBUSY;
2980                 goto out_free_class;
2981         }
2982
2983         error = driver_register(&idetape_driver.gen_driver);
2984         if (error)
2985                 goto out_free_driver;
2986
2987         return 0;
2988
2989 out_free_driver:
2990         driver_unregister(&idetape_driver.gen_driver);
2991 out_free_class:
2992         class_destroy(idetape_sysfs_class);
2993 out:
2994         return error;
2995 }
2996
2997 MODULE_ALIAS("ide:*m-tape*");
2998 module_init(idetape_init);
2999 module_exit(idetape_exit);
3000 MODULE_ALIAS_CHARDEV_MAJOR(IDETAPE_MAJOR);
3001 MODULE_DESCRIPTION("ATAPI Streaming TAPE Driver");
3002 MODULE_LICENSE("GPL");