ide-tape: remove struct idetape_block_size_page_t
[pandora-kernel.git] / 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 "1.19"
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
40 #include <asm/byteorder.h>
41 #include <asm/irq.h>
42 #include <asm/uaccess.h>
43 #include <asm/io.h>
44 #include <asm/unaligned.h>
45 #include <linux/mtio.h>
46
47 /**************************** Tunable parameters *****************************/
48
49
50 /*
51  *      Pipelined mode parameters.
52  *
53  *      We try to use the minimum number of stages which is enough to
54  *      keep the tape constantly streaming. To accomplish that, we implement
55  *      a feedback loop around the maximum number of stages:
56  *
57  *      We start from MIN maximum stages (we will not even use MIN stages
58  *      if we don't need them), increment it by RATE*(MAX-MIN)
59  *      whenever we sense that the pipeline is empty, until we reach
60  *      the optimum value or until we reach MAX.
61  *
62  *      Setting the following parameter to 0 is illegal: the pipelined mode
63  *      cannot be disabled (calculate_speeds() divides by tape->max_stages.)
64  */
65 #define IDETAPE_MIN_PIPELINE_STAGES       1
66 #define IDETAPE_MAX_PIPELINE_STAGES     400
67 #define IDETAPE_INCREASE_STAGES_RATE     20
68
69 /*
70  *      The following are used to debug the driver:
71  *
72  *      Setting IDETAPE_DEBUG_LOG to 1 will log driver flow control.
73  *
74  *      Setting them to 0 will restore normal operation mode:
75  *
76  *              1.      Disable logging normal successful operations.
77  *              2.      Disable self-sanity checks.
78  *              3.      Errors will still be logged, of course.
79  *
80  *      All the #if DEBUG code will be removed some day, when the driver
81  *      is verified to be stable enough. This will make it much more
82  *      esthetic.
83  */
84 #define IDETAPE_DEBUG_LOG               0
85
86 /*
87  *      After each failed packet command we issue a request sense command
88  *      and retry the packet command IDETAPE_MAX_PC_RETRIES times.
89  *
90  *      Setting IDETAPE_MAX_PC_RETRIES to 0 will disable retries.
91  */
92 #define IDETAPE_MAX_PC_RETRIES          3
93
94 /*
95  *      With each packet command, we allocate a buffer of
96  *      IDETAPE_PC_BUFFER_SIZE bytes. This is used for several packet
97  *      commands (Not for READ/WRITE commands).
98  */
99 #define IDETAPE_PC_BUFFER_SIZE          256
100
101 /*
102  *      In various places in the driver, we need to allocate storage
103  *      for packet commands and requests, which will remain valid while
104  *      we leave the driver to wait for an interrupt or a timeout event.
105  */
106 #define IDETAPE_PC_STACK                (10 + IDETAPE_MAX_PC_RETRIES)
107
108 /*
109  * Some drives (for example, Seagate STT3401A Travan) require a very long
110  * timeout, because they don't return an interrupt or clear their busy bit
111  * until after the command completes (even retension commands).
112  */
113 #define IDETAPE_WAIT_CMD                (900*HZ)
114
115 /*
116  *      The following parameter is used to select the point in the internal
117  *      tape fifo in which we will start to refill the buffer. Decreasing
118  *      the following parameter will improve the system's latency and
119  *      interactive response, while using a high value might improve system
120  *      throughput.
121  */
122 #define IDETAPE_FIFO_THRESHOLD          2
123
124 /*
125  *      DSC polling parameters.
126  *
127  *      Polling for DSC (a single bit in the status register) is a very
128  *      important function in ide-tape. There are two cases in which we
129  *      poll for DSC:
130  *
131  *      1.      Before a read/write packet command, to ensure that we
132  *              can transfer data from/to the tape's data buffers, without
133  *              causing an actual media access. In case the tape is not
134  *              ready yet, we take out our request from the device
135  *              request queue, so that ide.c will service requests from
136  *              the other device on the same interface meanwhile.
137  *
138  *      2.      After the successful initialization of a "media access
139  *              packet command", which is a command which can take a long
140  *              time to complete (it can be several seconds or even an hour).
141  *
142  *              Again, we postpone our request in the middle to free the bus
143  *              for the other device. The polling frequency here should be
144  *              lower than the read/write frequency since those media access
145  *              commands are slow. We start from a "fast" frequency -
146  *              IDETAPE_DSC_MA_FAST (one second), and if we don't receive DSC
147  *              after IDETAPE_DSC_MA_THRESHOLD (5 minutes), we switch it to a
148  *              lower frequency - IDETAPE_DSC_MA_SLOW (1 minute).
149  *
150  *      We also set a timeout for the timer, in case something goes wrong.
151  *      The timeout should be longer then the maximum execution time of a
152  *      tape operation.
153  */
154  
155 /*
156  *      DSC timings.
157  */
158 #define IDETAPE_DSC_RW_MIN              5*HZ/100        /* 50 msec */
159 #define IDETAPE_DSC_RW_MAX              40*HZ/100       /* 400 msec */
160 #define IDETAPE_DSC_RW_TIMEOUT          2*60*HZ         /* 2 minutes */
161 #define IDETAPE_DSC_MA_FAST             2*HZ            /* 2 seconds */
162 #define IDETAPE_DSC_MA_THRESHOLD        5*60*HZ         /* 5 minutes */
163 #define IDETAPE_DSC_MA_SLOW             30*HZ           /* 30 seconds */
164 #define IDETAPE_DSC_MA_TIMEOUT          2*60*60*HZ      /* 2 hours */
165
166 /*************************** End of tunable parameters ***********************/
167
168 /*
169  *      Read/Write error simulation
170  */
171 #define SIMULATE_ERRORS                 0
172
173 /*
174  *      For general magnetic tape device compatibility.
175  */
176 typedef enum {
177         idetape_direction_none,
178         idetape_direction_read,
179         idetape_direction_write
180 } idetape_chrdev_direction_t;
181
182 struct idetape_bh {
183         u32 b_size;
184         atomic_t b_count;
185         struct idetape_bh *b_reqnext;
186         char *b_data;
187 };
188
189 /*
190  *      Our view of a packet command.
191  */
192 typedef struct idetape_packet_command_s {
193         u8 c[12];                               /* Actual packet bytes */
194         int retries;                            /* On each retry, we increment retries */
195         int error;                              /* Error code */
196         int request_transfer;                   /* Bytes to transfer */
197         int actually_transferred;               /* Bytes actually transferred */
198         int buffer_size;                        /* Size of our data buffer */
199         struct idetape_bh *bh;
200         char *b_data;
201         int b_count;
202         u8 *buffer;                             /* Data buffer */
203         u8 *current_position;                   /* Pointer into the above buffer */
204         ide_startstop_t (*callback) (ide_drive_t *);    /* Called when this packet command is completed */
205         u8 pc_buffer[IDETAPE_PC_BUFFER_SIZE];   /* Temporary buffer */
206         unsigned long flags;                    /* Status/Action bit flags: long for set_bit */
207 } idetape_pc_t;
208
209 /*
210  *      Packet command flag bits.
211  */
212 /* Set when an error is considered normal - We won't retry */
213 #define PC_ABORT                        0
214 /* 1 When polling for DSC on a media access command */
215 #define PC_WAIT_FOR_DSC                 1
216 /* 1 when we prefer to use DMA if possible */
217 #define PC_DMA_RECOMMENDED              2
218 /* 1 while DMA in progress */
219 #define PC_DMA_IN_PROGRESS              3
220 /* 1 when encountered problem during DMA */
221 #define PC_DMA_ERROR                    4
222 /* Data direction */
223 #define PC_WRITING                      5
224
225 /*
226  *      A pipeline stage.
227  */
228 typedef struct idetape_stage_s {
229         struct request rq;                      /* The corresponding request */
230         struct idetape_bh *bh;                  /* The data buffers */
231         struct idetape_stage_s *next;           /* Pointer to the next stage */
232 } idetape_stage_t;
233
234 /*
235  *      Most of our global data which we need to save even as we leave the
236  *      driver due to an interrupt or a timer event is stored in a variable
237  *      of type idetape_tape_t, defined below.
238  */
239 typedef struct ide_tape_obj {
240         ide_drive_t     *drive;
241         ide_driver_t    *driver;
242         struct gendisk  *disk;
243         struct kref     kref;
244
245         /*
246          *      Since a typical character device operation requires more
247          *      than one packet command, we provide here enough memory
248          *      for the maximum of interconnected packet commands.
249          *      The packet commands are stored in the circular array pc_stack.
250          *      pc_stack_index points to the last used entry, and warps around
251          *      to the start when we get to the last array entry.
252          *
253          *      pc points to the current processed packet command.
254          *
255          *      failed_pc points to the last failed packet command, or contains
256          *      NULL if we do not need to retry any packet command. This is
257          *      required since an additional packet command is needed before the
258          *      retry, to get detailed information on what went wrong.
259          */
260         /* Current packet command */
261         idetape_pc_t *pc;
262         /* Last failed packet command */
263         idetape_pc_t *failed_pc;
264         /* Packet command stack */
265         idetape_pc_t pc_stack[IDETAPE_PC_STACK];
266         /* Next free packet command storage space */
267         int pc_stack_index;
268         struct request rq_stack[IDETAPE_PC_STACK];
269         /* We implement a circular array */
270         int rq_stack_index;
271
272         /*
273          *      DSC polling variables.
274          *
275          *      While polling for DSC we use postponed_rq to postpone the
276          *      current request so that ide.c will be able to service
277          *      pending requests on the other device. Note that at most
278          *      we will have only one DSC (usually data transfer) request
279          *      in the device request queue. Additional requests can be
280          *      queued in our internal pipeline, but they will be visible
281          *      to ide.c only one at a time.
282          */
283         struct request *postponed_rq;
284         /* The time in which we started polling for DSC */
285         unsigned long dsc_polling_start;
286         /* Timer used to poll for dsc */
287         struct timer_list dsc_timer;
288         /* Read/Write dsc polling frequency */
289         unsigned long best_dsc_rw_frequency;
290         /* The current polling frequency */
291         unsigned long dsc_polling_frequency;
292         /* Maximum waiting time */
293         unsigned long dsc_timeout;
294
295         /*
296          *      Read position information
297          */
298         u8 partition;
299         /* Current block */
300         unsigned int first_frame_position;
301         unsigned int last_frame_position;
302         unsigned int blocks_in_buffer;
303
304         /*
305          *      Last error information
306          */
307         u8 sense_key, asc, ascq;
308
309         /*
310          *      Character device operation
311          */
312         unsigned int minor;
313         /* device name */
314         char name[4];
315         /* Current character device data transfer direction */
316         idetape_chrdev_direction_t chrdev_direction;
317
318         /*
319          *      Device information
320          */
321         /* Usually 512 or 1024 bytes */
322         unsigned short tape_block_size;
323         int user_bs_factor;
324
325         /* Copy of the tape's Capabilities and Mechanical Page */
326         u8 caps[20];
327
328         /*
329          *      Active data transfer request parameters.
330          *
331          *      At most, there is only one ide-tape originated data transfer
332          *      request in the device request queue. This allows ide.c to
333          *      easily service requests from the other device when we
334          *      postpone our active request. In the pipelined operation
335          *      mode, we use our internal pipeline structure to hold
336          *      more data requests.
337          *
338          *      The data buffer size is chosen based on the tape's
339          *      recommendation.
340          */
341         /* Pointer to the request which is waiting in the device request queue */
342         struct request *active_data_request;
343         /* Data buffer size (chosen based on the tape's recommendation */
344         int stage_size;
345         idetape_stage_t *merge_stage;
346         int merge_stage_size;
347         struct idetape_bh *bh;
348         char *b_data;
349         int b_count;
350         
351         /*
352          *      Pipeline parameters.
353          *
354          *      To accomplish non-pipelined mode, we simply set the following
355          *      variables to zero (or NULL, where appropriate).
356          */
357         /* Number of currently used stages */
358         int nr_stages;
359         /* Number of pending stages */
360         int nr_pending_stages;
361         /* We will not allocate more than this number of stages */
362         int max_stages, min_pipeline, max_pipeline;
363         /* The first stage which will be removed from the pipeline */
364         idetape_stage_t *first_stage;
365         /* The currently active stage */
366         idetape_stage_t *active_stage;
367         /* Will be serviced after the currently active request */
368         idetape_stage_t *next_stage;
369         /* New requests will be added to the pipeline here */
370         idetape_stage_t *last_stage;
371         /* Optional free stage which we can use */
372         idetape_stage_t *cache_stage;
373         int pages_per_stage;
374         /* Wasted space in each stage */
375         int excess_bh_size;
376
377         /* Status/Action flags: long for set_bit */
378         unsigned long flags;
379         /* protects the ide-tape queue */
380         spinlock_t spinlock;
381
382         /*
383          * Measures average tape speed
384          */
385         unsigned long avg_time;
386         int avg_size;
387         int avg_speed;
388
389         char vendor_id[10];
390         char product_id[18];
391         char firmware_revision[6];
392         int firmware_revision_num;
393
394         /* the door is currently locked */
395         int door_locked;
396         /* the tape hardware is write protected */
397         char drv_write_prot;
398         /* the tape is write protected (hardware or opened as read-only) */
399         char write_prot;
400
401         /*
402          * Limit the number of times a request can
403          * be postponed, to avoid an infinite postpone
404          * deadlock.
405          */
406         /* request postpone count limit */
407         int postpone_cnt;
408
409         /*
410          * Measures number of frames:
411          *
412          * 1. written/read to/from the driver pipeline (pipeline_head).
413          * 2. written/read to/from the tape buffers (idetape_bh).
414          * 3. written/read by the tape to/from the media (tape_head).
415          */
416         int pipeline_head;
417         int buffer_head;
418         int tape_head;
419         int last_tape_head;
420
421         /*
422          * Speed control at the tape buffers input/output
423          */
424         unsigned long insert_time;
425         int insert_size;
426         int insert_speed;
427         int max_insert_speed;
428         int measure_insert_time;
429
430         /*
431          * Measure tape still time, in milliseconds
432          */
433         unsigned long tape_still_time_begin;
434         int tape_still_time;
435
436         /*
437          * Speed regulation negative feedback loop
438          */
439         int speed_control;
440         int pipeline_head_speed;
441         int controlled_pipeline_head_speed;
442         int uncontrolled_pipeline_head_speed;
443         int controlled_last_pipeline_head;
444         int uncontrolled_last_pipeline_head;
445         unsigned long uncontrolled_pipeline_head_time;
446         unsigned long controlled_pipeline_head_time;
447         int controlled_previous_pipeline_head;
448         int uncontrolled_previous_pipeline_head;
449         unsigned long controlled_previous_head_time;
450         unsigned long uncontrolled_previous_head_time;
451         int restart_speed_control_req;
452
453         /*
454          * Debug_level determines amount of debugging output;
455          * can be changed using /proc/ide/hdx/settings
456          * 0 : almost no debugging output
457          * 1 : 0+output errors only
458          * 2 : 1+output all sensekey/asc
459          * 3 : 2+follow all chrdev related procedures
460          * 4 : 3+follow all procedures
461          * 5 : 4+include pc_stack rq_stack info
462          * 6 : 5+USE_COUNT updates
463          */
464          int debug_level; 
465 } idetape_tape_t;
466
467 static DEFINE_MUTEX(idetape_ref_mutex);
468
469 static struct class *idetape_sysfs_class;
470
471 #define to_ide_tape(obj) container_of(obj, struct ide_tape_obj, kref)
472
473 #define ide_tape_g(disk) \
474         container_of((disk)->private_data, struct ide_tape_obj, driver)
475
476 static struct ide_tape_obj *ide_tape_get(struct gendisk *disk)
477 {
478         struct ide_tape_obj *tape = NULL;
479
480         mutex_lock(&idetape_ref_mutex);
481         tape = ide_tape_g(disk);
482         if (tape)
483                 kref_get(&tape->kref);
484         mutex_unlock(&idetape_ref_mutex);
485         return tape;
486 }
487
488 static void ide_tape_release(struct kref *);
489
490 static void ide_tape_put(struct ide_tape_obj *tape)
491 {
492         mutex_lock(&idetape_ref_mutex);
493         kref_put(&tape->kref, ide_tape_release);
494         mutex_unlock(&idetape_ref_mutex);
495 }
496
497 /*
498  *      Tape door status
499  */
500 #define DOOR_UNLOCKED                   0
501 #define DOOR_LOCKED                     1
502 #define DOOR_EXPLICITLY_LOCKED          2
503
504 /*
505  *      Tape flag bits values.
506  */
507 #define IDETAPE_IGNORE_DSC              0
508 #define IDETAPE_ADDRESS_VALID           1       /* 0 When the tape position is unknown */
509 #define IDETAPE_BUSY                    2       /* Device already opened */
510 #define IDETAPE_PIPELINE_ERROR          3       /* Error detected in a pipeline stage */
511 #define IDETAPE_DETECT_BS               4       /* Attempt to auto-detect the current user block size */
512 #define IDETAPE_FILEMARK                5       /* Currently on a filemark */
513 #define IDETAPE_DRQ_INTERRUPT           6       /* DRQ interrupt device */
514 #define IDETAPE_READ_ERROR              7
515 #define IDETAPE_PIPELINE_ACTIVE         8       /* pipeline active */
516 /* 0 = no tape is loaded, so we don't rewind after ejecting */
517 #define IDETAPE_MEDIUM_PRESENT          9
518
519 /*
520  *      Supported ATAPI tape drives packet commands
521  */
522 #define IDETAPE_TEST_UNIT_READY_CMD     0x00
523 #define IDETAPE_REWIND_CMD              0x01
524 #define IDETAPE_REQUEST_SENSE_CMD       0x03
525 #define IDETAPE_READ_CMD                0x08
526 #define IDETAPE_WRITE_CMD               0x0a
527 #define IDETAPE_WRITE_FILEMARK_CMD      0x10
528 #define IDETAPE_SPACE_CMD               0x11
529 #define IDETAPE_INQUIRY_CMD             0x12
530 #define IDETAPE_ERASE_CMD               0x19
531 #define IDETAPE_MODE_SENSE_CMD          0x1a
532 #define IDETAPE_MODE_SELECT_CMD         0x15
533 #define IDETAPE_LOAD_UNLOAD_CMD         0x1b
534 #define IDETAPE_PREVENT_CMD             0x1e
535 #define IDETAPE_LOCATE_CMD              0x2b
536 #define IDETAPE_READ_POSITION_CMD       0x34
537 #define IDETAPE_READ_BUFFER_CMD         0x3c
538 #define IDETAPE_SET_SPEED_CMD           0xbb
539
540 /*
541  *      Some defines for the READ BUFFER command
542  */
543 #define IDETAPE_RETRIEVE_FAULTY_BLOCK   6
544
545 /*
546  *      Some defines for the SPACE command
547  */
548 #define IDETAPE_SPACE_OVER_FILEMARK     1
549 #define IDETAPE_SPACE_TO_EOD            3
550
551 /*
552  *      Some defines for the LOAD UNLOAD command
553  */
554 #define IDETAPE_LU_LOAD_MASK            1
555 #define IDETAPE_LU_RETENSION_MASK       2
556 #define IDETAPE_LU_EOT_MASK             4
557
558 /*
559  *      Special requests for our block device strategy routine.
560  *
561  *      In order to service a character device command, we add special
562  *      requests to the tail of our block device request queue and wait
563  *      for their completion.
564  */
565
566 enum {
567         REQ_IDETAPE_PC1         = (1 << 0), /* packet command (first stage) */
568         REQ_IDETAPE_PC2         = (1 << 1), /* packet command (second stage) */
569         REQ_IDETAPE_READ        = (1 << 2),
570         REQ_IDETAPE_WRITE       = (1 << 3),
571         REQ_IDETAPE_READ_BUFFER = (1 << 4),
572 };
573
574 /*
575  *      Error codes which are returned in rq->errors to the higher part
576  *      of the driver.
577  */
578 #define IDETAPE_ERROR_GENERAL           101
579 #define IDETAPE_ERROR_FILEMARK          102
580 #define IDETAPE_ERROR_EOD               103
581
582 /*
583  *      The following is used to format the general configuration word of
584  *      the ATAPI IDENTIFY DEVICE command.
585  */
586 struct idetape_id_gcw { 
587         unsigned packet_size            :2;     /* Packet Size */
588         unsigned reserved234            :3;     /* Reserved */
589         unsigned drq_type               :2;     /* Command packet DRQ type */
590         unsigned removable              :1;     /* Removable media */
591         unsigned device_type            :5;     /* Device type */
592         unsigned reserved13             :1;     /* Reserved */
593         unsigned protocol               :2;     /* Protocol type */
594 };
595
596 /*
597  *      READ POSITION packet command - Data Format (From Table 6-57)
598  */
599 typedef struct {
600         unsigned        reserved0_10    :2;     /* Reserved */
601         unsigned        bpu             :1;     /* Block Position Unknown */    
602         unsigned        reserved0_543   :3;     /* Reserved */
603         unsigned        eop             :1;     /* End Of Partition */
604         unsigned        bop             :1;     /* Beginning Of Partition */
605         u8              partition;              /* Partition Number */
606         u8              reserved2, reserved3;   /* Reserved */
607         u32             first_block;            /* First Block Location */
608         u32             last_block;             /* Last Block Location (Optional) */
609         u8              reserved12;             /* Reserved */
610         u8              blocks_in_buffer[3];    /* Blocks In Buffer - (Optional) */
611         u32             bytes_in_buffer;        /* Bytes In Buffer (Optional) */
612 } idetape_read_position_result_t;
613
614 /*
615  *      Follows structures which are related to the SELECT SENSE / MODE SENSE
616  *      packet commands. Those packet commands are still not supported
617  *      by ide-tape.
618  */
619 #define IDETAPE_BLOCK_DESCRIPTOR        0
620 #define IDETAPE_CAPABILITIES_PAGE       0x2a
621 #define IDETAPE_PARAMTR_PAGE            0x2b   /* Onstream DI-x0 only */
622 #define IDETAPE_BLOCK_SIZE_PAGE         0x30
623 #define IDETAPE_BUFFER_FILLING_PAGE     0x33
624
625 /*
626  *      Run time configurable parameters.
627  */
628 typedef struct {
629         int     dsc_rw_frequency;
630         int     dsc_media_access_frequency;
631         int     nr_stages;
632 } idetape_config_t;
633
634 /*
635  *      The variables below are used for the character device interface.
636  *      Additional state variables are defined in our ide_drive_t structure.
637  */
638 static struct ide_tape_obj * idetape_devs[MAX_HWIFS * MAX_DRIVES];
639
640 #define ide_tape_f(file) ((file)->private_data)
641
642 static struct ide_tape_obj *ide_tape_chrdev_get(unsigned int i)
643 {
644         struct ide_tape_obj *tape = NULL;
645
646         mutex_lock(&idetape_ref_mutex);
647         tape = idetape_devs[i];
648         if (tape)
649                 kref_get(&tape->kref);
650         mutex_unlock(&idetape_ref_mutex);
651         return tape;
652 }
653
654 /*
655  *      Function declarations
656  *
657  */
658 static int idetape_chrdev_release (struct inode *inode, struct file *filp);
659 static void idetape_write_release (ide_drive_t *drive, unsigned int minor);
660
661 /*
662  * Too bad. The drive wants to send us data which we are not ready to accept.
663  * Just throw it away.
664  */
665 static void idetape_discard_data (ide_drive_t *drive, unsigned int bcount)
666 {
667         while (bcount--)
668                 (void) HWIF(drive)->INB(IDE_DATA_REG);
669 }
670
671 static void idetape_input_buffers (ide_drive_t *drive, idetape_pc_t *pc, unsigned int bcount)
672 {
673         struct idetape_bh *bh = pc->bh;
674         int count;
675
676         while (bcount) {
677                 if (bh == NULL) {
678                         printk(KERN_ERR "ide-tape: bh == NULL in "
679                                 "idetape_input_buffers\n");
680                         idetape_discard_data(drive, bcount);
681                         return;
682                 }
683                 count = min((unsigned int)(bh->b_size - atomic_read(&bh->b_count)), bcount);
684                 HWIF(drive)->atapi_input_bytes(drive, bh->b_data + atomic_read(&bh->b_count), count);
685                 bcount -= count;
686                 atomic_add(count, &bh->b_count);
687                 if (atomic_read(&bh->b_count) == bh->b_size) {
688                         bh = bh->b_reqnext;
689                         if (bh)
690                                 atomic_set(&bh->b_count, 0);
691                 }
692         }
693         pc->bh = bh;
694 }
695
696 static void idetape_output_buffers (ide_drive_t *drive, idetape_pc_t *pc, unsigned int bcount)
697 {
698         struct idetape_bh *bh = pc->bh;
699         int count;
700
701         while (bcount) {
702                 if (bh == NULL) {
703                         printk(KERN_ERR "ide-tape: bh == NULL in "
704                                 "idetape_output_buffers\n");
705                         return;
706                 }
707                 count = min((unsigned int)pc->b_count, (unsigned int)bcount);
708                 HWIF(drive)->atapi_output_bytes(drive, pc->b_data, count);
709                 bcount -= count;
710                 pc->b_data += count;
711                 pc->b_count -= count;
712                 if (!pc->b_count) {
713                         pc->bh = bh = bh->b_reqnext;
714                         if (bh) {
715                                 pc->b_data = bh->b_data;
716                                 pc->b_count = atomic_read(&bh->b_count);
717                         }
718                 }
719         }
720 }
721
722 static void idetape_update_buffers (idetape_pc_t *pc)
723 {
724         struct idetape_bh *bh = pc->bh;
725         int count;
726         unsigned int bcount = pc->actually_transferred;
727
728         if (test_bit(PC_WRITING, &pc->flags))
729                 return;
730         while (bcount) {
731                 if (bh == NULL) {
732                         printk(KERN_ERR "ide-tape: bh == NULL in "
733                                 "idetape_update_buffers\n");
734                         return;
735                 }
736                 count = min((unsigned int)bh->b_size, (unsigned int)bcount);
737                 atomic_set(&bh->b_count, count);
738                 if (atomic_read(&bh->b_count) == bh->b_size)
739                         bh = bh->b_reqnext;
740                 bcount -= count;
741         }
742         pc->bh = bh;
743 }
744
745 /*
746  *      idetape_next_pc_storage returns a pointer to a place in which we can
747  *      safely store a packet command, even though we intend to leave the
748  *      driver. A storage space for a maximum of IDETAPE_PC_STACK packet
749  *      commands is allocated at initialization time.
750  */
751 static idetape_pc_t *idetape_next_pc_storage (ide_drive_t *drive)
752 {
753         idetape_tape_t *tape = drive->driver_data;
754
755 #if IDETAPE_DEBUG_LOG
756         if (tape->debug_level >= 5)
757                 printk(KERN_INFO "ide-tape: pc_stack_index=%d\n",
758                         tape->pc_stack_index);
759 #endif /* IDETAPE_DEBUG_LOG */
760         if (tape->pc_stack_index == IDETAPE_PC_STACK)
761                 tape->pc_stack_index=0;
762         return (&tape->pc_stack[tape->pc_stack_index++]);
763 }
764
765 /*
766  *      idetape_next_rq_storage is used along with idetape_next_pc_storage.
767  *      Since we queue packet commands in the request queue, we need to
768  *      allocate a request, along with the allocation of a packet command.
769  */
770  
771 /**************************************************************
772  *                                                            *
773  *  This should get fixed to use kmalloc(.., GFP_ATOMIC)      *
774  *  followed later on by kfree().   -ml                       *
775  *                                                            *
776  **************************************************************/
777  
778 static struct request *idetape_next_rq_storage (ide_drive_t *drive)
779 {
780         idetape_tape_t *tape = drive->driver_data;
781
782 #if IDETAPE_DEBUG_LOG
783         if (tape->debug_level >= 5)
784                 printk(KERN_INFO "ide-tape: rq_stack_index=%d\n",
785                         tape->rq_stack_index);
786 #endif /* IDETAPE_DEBUG_LOG */
787         if (tape->rq_stack_index == IDETAPE_PC_STACK)
788                 tape->rq_stack_index=0;
789         return (&tape->rq_stack[tape->rq_stack_index++]);
790 }
791
792 /*
793  *      idetape_init_pc initializes a packet command.
794  */
795 static void idetape_init_pc (idetape_pc_t *pc)
796 {
797         memset(pc->c, 0, 12);
798         pc->retries = 0;
799         pc->flags = 0;
800         pc->request_transfer = 0;
801         pc->buffer = pc->pc_buffer;
802         pc->buffer_size = IDETAPE_PC_BUFFER_SIZE;
803         pc->bh = NULL;
804         pc->b_data = NULL;
805 }
806
807 /*
808  * called on each failed packet command retry to analyze the request sense. We
809  * currently do not utilize this information.
810  */
811 static void idetape_analyze_error(ide_drive_t *drive, u8 *sense)
812 {
813         idetape_tape_t *tape = drive->driver_data;
814         idetape_pc_t *pc = tape->failed_pc;
815
816         tape->sense_key = sense[2] & 0xF;
817         tape->asc       = sense[12];
818         tape->ascq      = sense[13];
819 #if IDETAPE_DEBUG_LOG
820         /*
821          * Without debugging, we only log an error if we decided to give up
822          * retrying.
823          */
824         if (tape->debug_level >= 1)
825                 printk(KERN_INFO "ide-tape: pc = %x, sense key = %x, "
826                         "asc = %x, ascq = %x\n",
827                         pc->c[0], tape->sense_key,
828                         tape->asc, tape->ascq);
829 #endif /* IDETAPE_DEBUG_LOG */
830
831         /* Correct pc->actually_transferred by asking the tape.  */
832         if (test_bit(PC_DMA_ERROR, &pc->flags)) {
833                 pc->actually_transferred = pc->request_transfer -
834                         tape->tape_block_size *
835                         ntohl(get_unaligned((u32 *)&sense[3]));
836                 idetape_update_buffers(pc);
837         }
838
839         /*
840          * If error was the result of a zero-length read or write command,
841          * with sense key=5, asc=0x22, ascq=0, let it slide.  Some drives
842          * (i.e. Seagate STT3401A Travan) don't support 0-length read/writes.
843          */
844         if ((pc->c[0] == IDETAPE_READ_CMD || pc->c[0] == IDETAPE_WRITE_CMD)
845             /* length == 0 */
846             && pc->c[4] == 0 && pc->c[3] == 0 && pc->c[2] == 0) {
847                 if (tape->sense_key == 5) {
848                         /* don't report an error, everything's ok */
849                         pc->error = 0;
850                         /* don't retry read/write */
851                         set_bit(PC_ABORT, &pc->flags);
852                 }
853         }
854         if (pc->c[0] == IDETAPE_READ_CMD && (sense[2] & 0x80)) {
855                 pc->error = IDETAPE_ERROR_FILEMARK;
856                 set_bit(PC_ABORT, &pc->flags);
857         }
858         if (pc->c[0] == IDETAPE_WRITE_CMD) {
859                 if ((sense[2] & 0x40) || (tape->sense_key == 0xd
860                      && tape->asc == 0x0 && tape->ascq == 0x2)) {
861                         pc->error = IDETAPE_ERROR_EOD;
862                         set_bit(PC_ABORT, &pc->flags);
863                 }
864         }
865         if (pc->c[0] == IDETAPE_READ_CMD || pc->c[0] == IDETAPE_WRITE_CMD) {
866                 if (tape->sense_key == 8) {
867                         pc->error = IDETAPE_ERROR_EOD;
868                         set_bit(PC_ABORT, &pc->flags);
869                 }
870                 if (!test_bit(PC_ABORT, &pc->flags) &&
871                     pc->actually_transferred)
872                         pc->retries = IDETAPE_MAX_PC_RETRIES + 1;
873         }
874 }
875
876 /*
877  * idetape_active_next_stage will declare the next stage as "active".
878  */
879 static void idetape_active_next_stage (ide_drive_t *drive)
880 {
881         idetape_tape_t *tape = drive->driver_data;
882         idetape_stage_t *stage = tape->next_stage;
883         struct request *rq = &stage->rq;
884
885 #if IDETAPE_DEBUG_LOG
886         if (tape->debug_level >= 4)
887                 printk(KERN_INFO "ide-tape: Reached idetape_active_next_stage\n");
888 #endif /* IDETAPE_DEBUG_LOG */
889         if (stage == NULL) {
890                 printk(KERN_ERR "ide-tape: bug: Trying to activate a non existing stage\n");
891                 return;
892         }
893
894         rq->rq_disk = tape->disk;
895         rq->buffer = NULL;
896         rq->special = (void *)stage->bh;
897         tape->active_data_request = rq;
898         tape->active_stage = stage;
899         tape->next_stage = stage->next;
900 }
901
902 /*
903  *      idetape_increase_max_pipeline_stages is a part of the feedback
904  *      loop which tries to find the optimum number of stages. In the
905  *      feedback loop, we are starting from a minimum maximum number of
906  *      stages, and if we sense that the pipeline is empty, we try to
907  *      increase it, until we reach the user compile time memory limit.
908  */
909 static void idetape_increase_max_pipeline_stages (ide_drive_t *drive)
910 {
911         idetape_tape_t *tape = drive->driver_data;
912         int increase = (tape->max_pipeline - tape->min_pipeline) / 10;
913         
914 #if IDETAPE_DEBUG_LOG
915         if (tape->debug_level >= 4)
916                 printk (KERN_INFO "ide-tape: Reached idetape_increase_max_pipeline_stages\n");
917 #endif /* IDETAPE_DEBUG_LOG */
918
919         tape->max_stages += max(increase, 1);
920         tape->max_stages = max(tape->max_stages, tape->min_pipeline);
921         tape->max_stages = min(tape->max_stages, tape->max_pipeline);
922 }
923
924 /*
925  *      idetape_kfree_stage calls kfree to completely free a stage, along with
926  *      its related buffers.
927  */
928 static void __idetape_kfree_stage (idetape_stage_t *stage)
929 {
930         struct idetape_bh *prev_bh, *bh = stage->bh;
931         int size;
932
933         while (bh != NULL) {
934                 if (bh->b_data != NULL) {
935                         size = (int) bh->b_size;
936                         while (size > 0) {
937                                 free_page((unsigned long) bh->b_data);
938                                 size -= PAGE_SIZE;
939                                 bh->b_data += PAGE_SIZE;
940                         }
941                 }
942                 prev_bh = bh;
943                 bh = bh->b_reqnext;
944                 kfree(prev_bh);
945         }
946         kfree(stage);
947 }
948
949 static void idetape_kfree_stage (idetape_tape_t *tape, idetape_stage_t *stage)
950 {
951         __idetape_kfree_stage(stage);
952 }
953
954 /*
955  *      idetape_remove_stage_head removes tape->first_stage from the pipeline.
956  *      The caller should avoid race conditions.
957  */
958 static void idetape_remove_stage_head (ide_drive_t *drive)
959 {
960         idetape_tape_t *tape = drive->driver_data;
961         idetape_stage_t *stage;
962         
963 #if IDETAPE_DEBUG_LOG
964         if (tape->debug_level >= 4)
965                 printk(KERN_INFO "ide-tape: Reached idetape_remove_stage_head\n");
966 #endif /* IDETAPE_DEBUG_LOG */
967         if (tape->first_stage == NULL) {
968                 printk(KERN_ERR "ide-tape: bug: tape->first_stage is NULL\n");
969                 return;
970         }
971         if (tape->active_stage == tape->first_stage) {
972                 printk(KERN_ERR "ide-tape: bug: Trying to free our active pipeline stage\n");
973                 return;
974         }
975         stage = tape->first_stage;
976         tape->first_stage = stage->next;
977         idetape_kfree_stage(tape, stage);
978         tape->nr_stages--;
979         if (tape->first_stage == NULL) {
980                 tape->last_stage = NULL;
981                 if (tape->next_stage != NULL)
982                         printk(KERN_ERR "ide-tape: bug: tape->next_stage != NULL\n");
983                 if (tape->nr_stages)
984                         printk(KERN_ERR "ide-tape: bug: nr_stages should be 0 now\n");
985         }
986 }
987
988 /*
989  * This will free all the pipeline stages starting from new_last_stage->next
990  * to the end of the list, and point tape->last_stage to new_last_stage.
991  */
992 static void idetape_abort_pipeline(ide_drive_t *drive,
993                                    idetape_stage_t *new_last_stage)
994 {
995         idetape_tape_t *tape = drive->driver_data;
996         idetape_stage_t *stage = new_last_stage->next;
997         idetape_stage_t *nstage;
998
999 #if IDETAPE_DEBUG_LOG
1000         if (tape->debug_level >= 4)
1001                 printk(KERN_INFO "ide-tape: %s: idetape_abort_pipeline called\n", tape->name);
1002 #endif
1003         while (stage) {
1004                 nstage = stage->next;
1005                 idetape_kfree_stage(tape, stage);
1006                 --tape->nr_stages;
1007                 --tape->nr_pending_stages;
1008                 stage = nstage;
1009         }
1010         if (new_last_stage)
1011                 new_last_stage->next = NULL;
1012         tape->last_stage = new_last_stage;
1013         tape->next_stage = NULL;
1014 }
1015
1016 /*
1017  *      idetape_end_request is used to finish servicing a request, and to
1018  *      insert a pending pipeline request into the main device queue.
1019  */
1020 static int idetape_end_request(ide_drive_t *drive, int uptodate, int nr_sects)
1021 {
1022         struct request *rq = HWGROUP(drive)->rq;
1023         idetape_tape_t *tape = drive->driver_data;
1024         unsigned long flags;
1025         int error;
1026         int remove_stage = 0;
1027         idetape_stage_t *active_stage;
1028
1029 #if IDETAPE_DEBUG_LOG
1030         if (tape->debug_level >= 4)
1031         printk(KERN_INFO "ide-tape: Reached idetape_end_request\n");
1032 #endif /* IDETAPE_DEBUG_LOG */
1033
1034         switch (uptodate) {
1035                 case 0: error = IDETAPE_ERROR_GENERAL; break;
1036                 case 1: error = 0; break;
1037                 default: error = uptodate;
1038         }
1039         rq->errors = error;
1040         if (error)
1041                 tape->failed_pc = NULL;
1042
1043         if (!blk_special_request(rq)) {
1044                 ide_end_request(drive, uptodate, nr_sects);
1045                 return 0;
1046         }
1047
1048         spin_lock_irqsave(&tape->spinlock, flags);
1049
1050         /* The request was a pipelined data transfer request */
1051         if (tape->active_data_request == rq) {
1052                 active_stage = tape->active_stage;
1053                 tape->active_stage = NULL;
1054                 tape->active_data_request = NULL;
1055                 tape->nr_pending_stages--;
1056                 if (rq->cmd[0] & REQ_IDETAPE_WRITE) {
1057                         remove_stage = 1;
1058                         if (error) {
1059                                 set_bit(IDETAPE_PIPELINE_ERROR, &tape->flags);
1060                                 if (error == IDETAPE_ERROR_EOD)
1061                                         idetape_abort_pipeline(drive, active_stage);
1062                         }
1063                 } else if (rq->cmd[0] & REQ_IDETAPE_READ) {
1064                         if (error == IDETAPE_ERROR_EOD) {
1065                                 set_bit(IDETAPE_PIPELINE_ERROR, &tape->flags);
1066                                 idetape_abort_pipeline(drive, active_stage);
1067                         }
1068                 }
1069                 if (tape->next_stage != NULL) {
1070                         idetape_active_next_stage(drive);
1071
1072                         /*
1073                          * Insert the next request into the request queue.
1074                          */
1075                         (void) ide_do_drive_cmd(drive, tape->active_data_request, ide_end);
1076                 } else if (!error) {
1077                                 idetape_increase_max_pipeline_stages(drive);
1078                 }
1079         }
1080         ide_end_drive_cmd(drive, 0, 0);
1081 //      blkdev_dequeue_request(rq);
1082 //      drive->rq = NULL;
1083 //      end_that_request_last(rq);
1084
1085         if (remove_stage)
1086                 idetape_remove_stage_head(drive);
1087         if (tape->active_data_request == NULL)
1088                 clear_bit(IDETAPE_PIPELINE_ACTIVE, &tape->flags);
1089         spin_unlock_irqrestore(&tape->spinlock, flags);
1090         return 0;
1091 }
1092
1093 static ide_startstop_t idetape_request_sense_callback (ide_drive_t *drive)
1094 {
1095         idetape_tape_t *tape = drive->driver_data;
1096
1097 #if IDETAPE_DEBUG_LOG
1098         if (tape->debug_level >= 4)
1099                 printk(KERN_INFO "ide-tape: Reached idetape_request_sense_callback\n");
1100 #endif /* IDETAPE_DEBUG_LOG */
1101         if (!tape->pc->error) {
1102                 idetape_analyze_error(drive, tape->pc->buffer);
1103                 idetape_end_request(drive, 1, 0);
1104         } else {
1105                 printk(KERN_ERR "ide-tape: Error in REQUEST SENSE itself - Aborting request!\n");
1106                 idetape_end_request(drive, 0, 0);
1107         }
1108         return ide_stopped;
1109 }
1110
1111 static void idetape_create_request_sense_cmd (idetape_pc_t *pc)
1112 {
1113         idetape_init_pc(pc);    
1114         pc->c[0] = IDETAPE_REQUEST_SENSE_CMD;
1115         pc->c[4] = 20;
1116         pc->request_transfer = 20;
1117         pc->callback = &idetape_request_sense_callback;
1118 }
1119
1120 static void idetape_init_rq(struct request *rq, u8 cmd)
1121 {
1122         memset(rq, 0, sizeof(*rq));
1123         rq->cmd_type = REQ_TYPE_SPECIAL;
1124         rq->cmd[0] = cmd;
1125 }
1126
1127 /*
1128  *      idetape_queue_pc_head generates a new packet command request in front
1129  *      of the request queue, before the current request, so that it will be
1130  *      processed immediately, on the next pass through the driver.
1131  *
1132  *      idetape_queue_pc_head is called from the request handling part of
1133  *      the driver (the "bottom" part). Safe storage for the request should
1134  *      be allocated with idetape_next_pc_storage and idetape_next_rq_storage
1135  *      before calling idetape_queue_pc_head.
1136  *
1137  *      Memory for those requests is pre-allocated at initialization time, and
1138  *      is limited to IDETAPE_PC_STACK requests. We assume that we have enough
1139  *      space for the maximum possible number of inter-dependent packet commands.
1140  *
1141  *      The higher level of the driver - The ioctl handler and the character
1142  *      device handling functions should queue request to the lower level part
1143  *      and wait for their completion using idetape_queue_pc_tail or
1144  *      idetape_queue_rw_tail.
1145  */
1146 static void idetape_queue_pc_head (ide_drive_t *drive, idetape_pc_t *pc,struct request *rq)
1147 {
1148         struct ide_tape_obj *tape = drive->driver_data;
1149
1150         idetape_init_rq(rq, REQ_IDETAPE_PC1);
1151         rq->buffer = (char *) pc;
1152         rq->rq_disk = tape->disk;
1153         (void) ide_do_drive_cmd(drive, rq, ide_preempt);
1154 }
1155
1156 /*
1157  *      idetape_retry_pc is called when an error was detected during the
1158  *      last packet command. We queue a request sense packet command in
1159  *      the head of the request list.
1160  */
1161 static ide_startstop_t idetape_retry_pc (ide_drive_t *drive)
1162 {
1163         idetape_tape_t *tape = drive->driver_data;
1164         idetape_pc_t *pc;
1165         struct request *rq;
1166
1167         (void)drive->hwif->INB(IDE_ERROR_REG);
1168         pc = idetape_next_pc_storage(drive);
1169         rq = idetape_next_rq_storage(drive);
1170         idetape_create_request_sense_cmd(pc);
1171         set_bit(IDETAPE_IGNORE_DSC, &tape->flags);
1172         idetape_queue_pc_head(drive, pc, rq);
1173         return ide_stopped;
1174 }
1175
1176 /*
1177  *      idetape_postpone_request postpones the current request so that
1178  *      ide.c will be able to service requests from another device on
1179  *      the same hwgroup while we are polling for DSC.
1180  */
1181 static void idetape_postpone_request (ide_drive_t *drive)
1182 {
1183         idetape_tape_t *tape = drive->driver_data;
1184
1185 #if IDETAPE_DEBUG_LOG
1186         if (tape->debug_level >= 4)
1187                 printk(KERN_INFO "ide-tape: idetape_postpone_request\n");
1188 #endif
1189         tape->postponed_rq = HWGROUP(drive)->rq;
1190         ide_stall_queue(drive, tape->dsc_polling_frequency);
1191 }
1192
1193 /*
1194  *      idetape_pc_intr is the usual interrupt handler which will be called
1195  *      during a packet command. We will transfer some of the data (as
1196  *      requested by the drive) and will re-point interrupt handler to us.
1197  *      When data transfer is finished, we will act according to the
1198  *      algorithm described before idetape_issue_packet_command.
1199  *
1200  */
1201 static ide_startstop_t idetape_pc_intr (ide_drive_t *drive)
1202 {
1203         ide_hwif_t *hwif = drive->hwif;
1204         idetape_tape_t *tape = drive->driver_data;
1205         idetape_pc_t *pc = tape->pc;
1206         unsigned int temp;
1207 #if SIMULATE_ERRORS
1208         static int error_sim_count = 0;
1209 #endif
1210         u16 bcount;
1211         u8 stat, ireason;
1212
1213 #if IDETAPE_DEBUG_LOG
1214         if (tape->debug_level >= 4)
1215                 printk(KERN_INFO "ide-tape: Reached idetape_pc_intr "
1216                                 "interrupt handler\n");
1217 #endif /* IDETAPE_DEBUG_LOG */  
1218
1219         /* Clear the interrupt */
1220         stat = hwif->INB(IDE_STATUS_REG);
1221
1222         if (test_bit(PC_DMA_IN_PROGRESS, &pc->flags)) {
1223                 if (hwif->ide_dma_end(drive) || (stat & ERR_STAT)) {
1224                         /*
1225                          * A DMA error is sometimes expected. For example,
1226                          * if the tape is crossing a filemark during a
1227                          * READ command, it will issue an irq and position
1228                          * itself before the filemark, so that only a partial
1229                          * data transfer will occur (which causes the DMA
1230                          * error). In that case, we will later ask the tape
1231                          * how much bytes of the original request were
1232                          * actually transferred (we can't receive that
1233                          * information from the DMA engine on most chipsets).
1234                          */
1235
1236                         /*
1237                          * On the contrary, a DMA error is never expected;
1238                          * it usually indicates a hardware error or abort.
1239                          * If the tape crosses a filemark during a READ
1240                          * command, it will issue an irq and position itself
1241                          * after the filemark (not before). Only a partial
1242                          * data transfer will occur, but no DMA error.
1243                          * (AS, 19 Apr 2001)
1244                          */
1245                         set_bit(PC_DMA_ERROR, &pc->flags);
1246                 } else {
1247                         pc->actually_transferred = pc->request_transfer;
1248                         idetape_update_buffers(pc);
1249                 }
1250 #if IDETAPE_DEBUG_LOG
1251                 if (tape->debug_level >= 4)
1252                         printk(KERN_INFO "ide-tape: DMA finished\n");
1253 #endif /* IDETAPE_DEBUG_LOG */
1254         }
1255
1256         /* No more interrupts */
1257         if ((stat & DRQ_STAT) == 0) {
1258 #if IDETAPE_DEBUG_LOG
1259                 if (tape->debug_level >= 2)
1260                         printk(KERN_INFO "ide-tape: Packet command completed, %d bytes transferred\n", pc->actually_transferred);
1261 #endif /* IDETAPE_DEBUG_LOG */
1262                 clear_bit(PC_DMA_IN_PROGRESS, &pc->flags);
1263
1264                 local_irq_enable();
1265
1266 #if SIMULATE_ERRORS
1267                 if ((pc->c[0] == IDETAPE_WRITE_CMD ||
1268                      pc->c[0] == IDETAPE_READ_CMD) &&
1269                     (++error_sim_count % 100) == 0) {
1270                         printk(KERN_INFO "ide-tape: %s: simulating error\n",
1271                                 tape->name);
1272                         stat |= ERR_STAT;
1273                 }
1274 #endif
1275                 if ((stat & ERR_STAT) && pc->c[0] == IDETAPE_REQUEST_SENSE_CMD)
1276                         stat &= ~ERR_STAT;
1277                 if ((stat & ERR_STAT) || test_bit(PC_DMA_ERROR, &pc->flags)) {
1278                         /* Error detected */
1279 #if IDETAPE_DEBUG_LOG
1280                         if (tape->debug_level >= 1)
1281                                 printk(KERN_INFO "ide-tape: %s: I/O error\n",
1282                                         tape->name);
1283 #endif /* IDETAPE_DEBUG_LOG */
1284                         if (pc->c[0] == IDETAPE_REQUEST_SENSE_CMD) {
1285                                 printk(KERN_ERR "ide-tape: I/O error in request sense command\n");
1286                                 return ide_do_reset(drive);
1287                         }
1288 #if IDETAPE_DEBUG_LOG
1289                         if (tape->debug_level >= 1)
1290                                 printk(KERN_INFO "ide-tape: [cmd %x]: check condition\n", pc->c[0]);
1291 #endif
1292                         /* Retry operation */
1293                         return idetape_retry_pc(drive);
1294                 }
1295                 pc->error = 0;
1296                 if (test_bit(PC_WAIT_FOR_DSC, &pc->flags) &&
1297                     (stat & SEEK_STAT) == 0) {
1298                         /* Media access command */
1299                         tape->dsc_polling_start = jiffies;
1300                         tape->dsc_polling_frequency = IDETAPE_DSC_MA_FAST;
1301                         tape->dsc_timeout = jiffies + IDETAPE_DSC_MA_TIMEOUT;
1302                         /* Allow ide.c to handle other requests */
1303                         idetape_postpone_request(drive);
1304                         return ide_stopped;
1305                 }
1306                 if (tape->failed_pc == pc)
1307                         tape->failed_pc = NULL;
1308                 /* Command finished - Call the callback function */
1309                 return pc->callback(drive);
1310         }
1311         if (test_and_clear_bit(PC_DMA_IN_PROGRESS, &pc->flags)) {
1312                 printk(KERN_ERR "ide-tape: The tape wants to issue more "
1313                                 "interrupts in DMA mode\n");
1314                 printk(KERN_ERR "ide-tape: DMA disabled, reverting to PIO\n");
1315                 ide_dma_off(drive);
1316                 return ide_do_reset(drive);
1317         }
1318         /* Get the number of bytes to transfer on this interrupt. */
1319         bcount = (hwif->INB(IDE_BCOUNTH_REG) << 8) |
1320                   hwif->INB(IDE_BCOUNTL_REG);
1321
1322         ireason = hwif->INB(IDE_IREASON_REG);
1323
1324         if (ireason & CD) {
1325                 printk(KERN_ERR "ide-tape: CoD != 0 in idetape_pc_intr\n");
1326                 return ide_do_reset(drive);
1327         }
1328         if (((ireason & IO) == IO) == test_bit(PC_WRITING, &pc->flags)) {
1329                 /* Hopefully, we will never get here */
1330                 printk(KERN_ERR "ide-tape: We wanted to %s, ",
1331                                 (ireason & IO) ? "Write" : "Read");
1332                 printk(KERN_ERR "ide-tape: but the tape wants us to %s !\n",
1333                                 (ireason & IO) ? "Read" : "Write");
1334                 return ide_do_reset(drive);
1335         }
1336         if (!test_bit(PC_WRITING, &pc->flags)) {
1337                 /* Reading - Check that we have enough space */
1338                 temp = pc->actually_transferred + bcount;
1339                 if (temp > pc->request_transfer) {
1340                         if (temp > pc->buffer_size) {
1341                                 printk(KERN_ERR "ide-tape: The tape wants to send us more data than expected - discarding data\n");
1342                                 idetape_discard_data(drive, bcount);
1343                                 ide_set_handler(drive, &idetape_pc_intr, IDETAPE_WAIT_CMD, NULL);
1344                                 return ide_started;
1345                         }
1346 #if IDETAPE_DEBUG_LOG
1347                         if (tape->debug_level >= 2)
1348                                 printk(KERN_NOTICE "ide-tape: The tape wants to send us more data than expected - allowing transfer\n");
1349 #endif /* IDETAPE_DEBUG_LOG */
1350                 }
1351         }
1352         if (test_bit(PC_WRITING, &pc->flags)) {
1353                 if (pc->bh != NULL)
1354                         idetape_output_buffers(drive, pc, bcount);
1355                 else
1356                         /* Write the current buffer */
1357                         hwif->atapi_output_bytes(drive, pc->current_position,
1358                                                  bcount);
1359         } else {
1360                 if (pc->bh != NULL)
1361                         idetape_input_buffers(drive, pc, bcount);
1362                 else
1363                         /* Read the current buffer */
1364                         hwif->atapi_input_bytes(drive, pc->current_position,
1365                                                 bcount);
1366         }
1367         /* Update the current position */
1368         pc->actually_transferred += bcount;
1369         pc->current_position += bcount;
1370 #if IDETAPE_DEBUG_LOG
1371         if (tape->debug_level >= 2)
1372                 printk(KERN_INFO "ide-tape: [cmd %x] transferred %d bytes "
1373                                  "on that interrupt\n", pc->c[0], bcount);
1374 #endif
1375         /* And set the interrupt handler again */
1376         ide_set_handler(drive, &idetape_pc_intr, IDETAPE_WAIT_CMD, NULL);
1377         return ide_started;
1378 }
1379
1380 /*
1381  *      Packet Command Interface
1382  *
1383  *      The current Packet Command is available in tape->pc, and will not
1384  *      change until we finish handling it. Each packet command is associated
1385  *      with a callback function that will be called when the command is
1386  *      finished.
1387  *
1388  *      The handling will be done in three stages:
1389  *
1390  *      1.      idetape_issue_packet_command will send the packet command to the
1391  *              drive, and will set the interrupt handler to idetape_pc_intr.
1392  *
1393  *      2.      On each interrupt, idetape_pc_intr will be called. This step
1394  *              will be repeated until the device signals us that no more
1395  *              interrupts will be issued.
1396  *
1397  *      3.      ATAPI Tape media access commands have immediate status with a
1398  *              delayed process. In case of a successful initiation of a
1399  *              media access packet command, the DSC bit will be set when the
1400  *              actual execution of the command is finished. 
1401  *              Since the tape drive will not issue an interrupt, we have to
1402  *              poll for this event. In this case, we define the request as
1403  *              "low priority request" by setting rq_status to
1404  *              IDETAPE_RQ_POSTPONED,   set a timer to poll for DSC and exit
1405  *              the driver.
1406  *
1407  *              ide.c will then give higher priority to requests which
1408  *              originate from the other device, until will change rq_status
1409  *              to RQ_ACTIVE.
1410  *
1411  *      4.      When the packet command is finished, it will be checked for errors.
1412  *
1413  *      5.      In case an error was found, we queue a request sense packet
1414  *              command in front of the request queue and retry the operation
1415  *              up to IDETAPE_MAX_PC_RETRIES times.
1416  *
1417  *      6.      In case no error was found, or we decided to give up and not
1418  *              to retry again, the callback function will be called and then
1419  *              we will handle the next request.
1420  *
1421  */
1422 static ide_startstop_t idetape_transfer_pc(ide_drive_t *drive)
1423 {
1424         ide_hwif_t *hwif = drive->hwif;
1425         idetape_tape_t *tape = drive->driver_data;
1426         idetape_pc_t *pc = tape->pc;
1427         int retries = 100;
1428         ide_startstop_t startstop;
1429         u8 ireason;
1430
1431         if (ide_wait_stat(&startstop,drive,DRQ_STAT,BUSY_STAT,WAIT_READY)) {
1432                 printk(KERN_ERR "ide-tape: Strange, packet command initiated yet DRQ isn't asserted\n");
1433                 return startstop;
1434         }
1435         ireason = hwif->INB(IDE_IREASON_REG);
1436         while (retries-- && ((ireason & CD) == 0 || (ireason & IO))) {
1437                 printk(KERN_ERR "ide-tape: (IO,CoD != (0,1) while issuing "
1438                                 "a packet command, retrying\n");
1439                 udelay(100);
1440                 ireason = hwif->INB(IDE_IREASON_REG);
1441                 if (retries == 0) {
1442                         printk(KERN_ERR "ide-tape: (IO,CoD != (0,1) while "
1443                                         "issuing a packet command, ignoring\n");
1444                         ireason |= CD;
1445                         ireason &= ~IO;
1446                 }
1447         }
1448         if ((ireason & CD) == 0 || (ireason & IO)) {
1449                 printk(KERN_ERR "ide-tape: (IO,CoD) != (0,1) while issuing "
1450                                 "a packet command\n");
1451                 return ide_do_reset(drive);
1452         }
1453         /* Set the interrupt routine */
1454         ide_set_handler(drive, &idetape_pc_intr, IDETAPE_WAIT_CMD, NULL);
1455 #ifdef CONFIG_BLK_DEV_IDEDMA
1456         /* Begin DMA, if necessary */
1457         if (test_bit(PC_DMA_IN_PROGRESS, &pc->flags))
1458                 hwif->dma_start(drive);
1459 #endif
1460         /* Send the actual packet */
1461         HWIF(drive)->atapi_output_bytes(drive, pc->c, 12);
1462         return ide_started;
1463 }
1464
1465 static ide_startstop_t idetape_issue_packet_command (ide_drive_t *drive, idetape_pc_t *pc)
1466 {
1467         ide_hwif_t *hwif = drive->hwif;
1468         idetape_tape_t *tape = drive->driver_data;
1469         int dma_ok = 0;
1470         u16 bcount;
1471
1472         if (tape->pc->c[0] == IDETAPE_REQUEST_SENSE_CMD &&
1473             pc->c[0] == IDETAPE_REQUEST_SENSE_CMD) {
1474                 printk(KERN_ERR "ide-tape: possible ide-tape.c bug - "
1475                         "Two request sense in serial were issued\n");
1476         }
1477
1478         if (tape->failed_pc == NULL && pc->c[0] != IDETAPE_REQUEST_SENSE_CMD)
1479                 tape->failed_pc = pc;
1480         /* Set the current packet command */
1481         tape->pc = pc;
1482
1483         if (pc->retries > IDETAPE_MAX_PC_RETRIES ||
1484             test_bit(PC_ABORT, &pc->flags)) {
1485                 /*
1486                  *      We will "abort" retrying a packet command in case
1487                  *      a legitimate error code was received (crossing a
1488                  *      filemark, or end of the media, for example).
1489                  */
1490                 if (!test_bit(PC_ABORT, &pc->flags)) {
1491                         if (!(pc->c[0] == IDETAPE_TEST_UNIT_READY_CMD &&
1492                               tape->sense_key == 2 && tape->asc == 4 &&
1493                              (tape->ascq == 1 || tape->ascq == 8))) {
1494                                 printk(KERN_ERR "ide-tape: %s: I/O error, "
1495                                                 "pc = %2x, key = %2x, "
1496                                                 "asc = %2x, ascq = %2x\n",
1497                                                 tape->name, pc->c[0],
1498                                                 tape->sense_key, tape->asc,
1499                                                 tape->ascq);
1500                         }
1501                         /* Giving up */
1502                         pc->error = IDETAPE_ERROR_GENERAL;
1503                 }
1504                 tape->failed_pc = NULL;
1505                 return pc->callback(drive);
1506         }
1507 #if IDETAPE_DEBUG_LOG
1508         if (tape->debug_level >= 2)
1509                 printk(KERN_INFO "ide-tape: Retry number - %d, cmd = %02X\n", pc->retries, pc->c[0]);
1510 #endif /* IDETAPE_DEBUG_LOG */
1511
1512         pc->retries++;
1513         /* We haven't transferred any data yet */
1514         pc->actually_transferred = 0;
1515         pc->current_position = pc->buffer;
1516         /* Request to transfer the entire buffer at once */
1517         bcount = pc->request_transfer;
1518
1519         if (test_and_clear_bit(PC_DMA_ERROR, &pc->flags)) {
1520                 printk(KERN_WARNING "ide-tape: DMA disabled, "
1521                                 "reverting to PIO\n");
1522                 ide_dma_off(drive);
1523         }
1524         if (test_bit(PC_DMA_RECOMMENDED, &pc->flags) && drive->using_dma)
1525                 dma_ok = !hwif->dma_setup(drive);
1526
1527         ide_pktcmd_tf_load(drive, IDE_TFLAG_NO_SELECT_MASK |
1528                            IDE_TFLAG_OUT_DEVICE, bcount, dma_ok);
1529
1530         if (dma_ok)                     /* Will begin DMA later */
1531                 set_bit(PC_DMA_IN_PROGRESS, &pc->flags);
1532         if (test_bit(IDETAPE_DRQ_INTERRUPT, &tape->flags)) {
1533                 ide_execute_command(drive, WIN_PACKETCMD, &idetape_transfer_pc,
1534                                     IDETAPE_WAIT_CMD, NULL);
1535                 return ide_started;
1536         } else {
1537                 hwif->OUTB(WIN_PACKETCMD, IDE_COMMAND_REG);
1538                 return idetape_transfer_pc(drive);
1539         }
1540 }
1541
1542 /*
1543  *      General packet command callback function.
1544  */
1545 static ide_startstop_t idetape_pc_callback (ide_drive_t *drive)
1546 {
1547         idetape_tape_t *tape = drive->driver_data;
1548         
1549 #if IDETAPE_DEBUG_LOG
1550         if (tape->debug_level >= 4)
1551                 printk(KERN_INFO "ide-tape: Reached idetape_pc_callback\n");
1552 #endif /* IDETAPE_DEBUG_LOG */
1553
1554         idetape_end_request(drive, tape->pc->error ? 0 : 1, 0);
1555         return ide_stopped;
1556 }
1557
1558 /*
1559  *      A mode sense command is used to "sense" tape parameters.
1560  */
1561 static void idetape_create_mode_sense_cmd (idetape_pc_t *pc, u8 page_code)
1562 {
1563         idetape_init_pc(pc);
1564         pc->c[0] = IDETAPE_MODE_SENSE_CMD;
1565         if (page_code != IDETAPE_BLOCK_DESCRIPTOR)
1566                 pc->c[1] = 8;   /* DBD = 1 - Don't return block descriptors */
1567         pc->c[2] = page_code;
1568         /*
1569          * Changed pc->c[3] to 0 (255 will at best return unused info).
1570          *
1571          * For SCSI this byte is defined as subpage instead of high byte
1572          * of length and some IDE drives seem to interpret it this way
1573          * and return an error when 255 is used.
1574          */
1575         pc->c[3] = 0;
1576         pc->c[4] = 255;         /* (We will just discard data in that case) */
1577         if (page_code == IDETAPE_BLOCK_DESCRIPTOR)
1578                 pc->request_transfer = 12;
1579         else if (page_code == IDETAPE_CAPABILITIES_PAGE)
1580                 pc->request_transfer = 24;
1581         else
1582                 pc->request_transfer = 50;
1583         pc->callback = &idetape_pc_callback;
1584 }
1585
1586 static void calculate_speeds(ide_drive_t *drive)
1587 {
1588         idetape_tape_t *tape = drive->driver_data;
1589         int full = 125, empty = 75;
1590
1591         if (time_after(jiffies, tape->controlled_pipeline_head_time + 120 * HZ)) {
1592                 tape->controlled_previous_pipeline_head = tape->controlled_last_pipeline_head;
1593                 tape->controlled_previous_head_time = tape->controlled_pipeline_head_time;
1594                 tape->controlled_last_pipeline_head = tape->pipeline_head;
1595                 tape->controlled_pipeline_head_time = jiffies;
1596         }
1597         if (time_after(jiffies, tape->controlled_pipeline_head_time + 60 * HZ))
1598                 tape->controlled_pipeline_head_speed = (tape->pipeline_head - tape->controlled_last_pipeline_head) * 32 * HZ / (jiffies - tape->controlled_pipeline_head_time);
1599         else if (time_after(jiffies, tape->controlled_previous_head_time))
1600                 tape->controlled_pipeline_head_speed = (tape->pipeline_head - tape->controlled_previous_pipeline_head) * 32 * HZ / (jiffies - tape->controlled_previous_head_time);
1601
1602         if (tape->nr_pending_stages < tape->max_stages /*- 1 */) {
1603                 /* -1 for read mode error recovery */
1604                 if (time_after(jiffies, tape->uncontrolled_previous_head_time + 10 * HZ)) {
1605                         tape->uncontrolled_pipeline_head_time = jiffies;
1606                         tape->uncontrolled_pipeline_head_speed = (tape->pipeline_head - tape->uncontrolled_previous_pipeline_head) * 32 * HZ / (jiffies - tape->uncontrolled_previous_head_time);
1607                 }
1608         } else {
1609                 tape->uncontrolled_previous_head_time = jiffies;
1610                 tape->uncontrolled_previous_pipeline_head = tape->pipeline_head;
1611                 if (time_after(jiffies, tape->uncontrolled_pipeline_head_time + 30 * HZ)) {
1612                         tape->uncontrolled_pipeline_head_time = jiffies;
1613                 }
1614         }
1615         tape->pipeline_head_speed = max(tape->uncontrolled_pipeline_head_speed, tape->controlled_pipeline_head_speed);
1616         if (tape->speed_control == 0) {
1617                 tape->max_insert_speed = 5000;
1618         } else if (tape->speed_control == 1) {
1619                 if (tape->nr_pending_stages >= tape->max_stages / 2)
1620                         tape->max_insert_speed = tape->pipeline_head_speed +
1621                                 (1100 - tape->pipeline_head_speed) * 2 * (tape->nr_pending_stages - tape->max_stages / 2) / tape->max_stages;
1622                 else
1623                         tape->max_insert_speed = 500 +
1624                                 (tape->pipeline_head_speed - 500) * 2 * tape->nr_pending_stages / tape->max_stages;
1625                 if (tape->nr_pending_stages >= tape->max_stages * 99 / 100)
1626                         tape->max_insert_speed = 5000;
1627         } else if (tape->speed_control == 2) {
1628                 tape->max_insert_speed = tape->pipeline_head_speed * empty / 100 +
1629                         (tape->pipeline_head_speed * full / 100 - tape->pipeline_head_speed * empty / 100) * tape->nr_pending_stages / tape->max_stages;
1630         } else
1631                 tape->max_insert_speed = tape->speed_control;
1632         tape->max_insert_speed = max(tape->max_insert_speed, 500);
1633 }
1634
1635 static ide_startstop_t idetape_media_access_finished (ide_drive_t *drive)
1636 {
1637         idetape_tape_t *tape = drive->driver_data;
1638         idetape_pc_t *pc = tape->pc;
1639         u8 stat;
1640
1641         stat = drive->hwif->INB(IDE_STATUS_REG);
1642         if (stat & SEEK_STAT) {
1643                 if (stat & ERR_STAT) {
1644                         /* Error detected */
1645                         if (pc->c[0] != IDETAPE_TEST_UNIT_READY_CMD)
1646                                 printk(KERN_ERR "ide-tape: %s: I/O error, ",
1647                                                 tape->name);
1648                         /* Retry operation */
1649                         return idetape_retry_pc(drive);
1650                 }
1651                 pc->error = 0;
1652                 if (tape->failed_pc == pc)
1653                         tape->failed_pc = NULL;
1654         } else {
1655                 pc->error = IDETAPE_ERROR_GENERAL;
1656                 tape->failed_pc = NULL;
1657         }
1658         return pc->callback(drive);
1659 }
1660
1661 static ide_startstop_t idetape_rw_callback (ide_drive_t *drive)
1662 {
1663         idetape_tape_t *tape = drive->driver_data;
1664         struct request *rq = HWGROUP(drive)->rq;
1665         int blocks = tape->pc->actually_transferred / tape->tape_block_size;
1666
1667         tape->avg_size += blocks * tape->tape_block_size;
1668         tape->insert_size += blocks * tape->tape_block_size;
1669         if (tape->insert_size > 1024 * 1024)
1670                 tape->measure_insert_time = 1;
1671         if (tape->measure_insert_time) {
1672                 tape->measure_insert_time = 0;
1673                 tape->insert_time = jiffies;
1674                 tape->insert_size = 0;
1675         }
1676         if (time_after(jiffies, tape->insert_time))
1677                 tape->insert_speed = tape->insert_size / 1024 * HZ / (jiffies - tape->insert_time);
1678         if (time_after_eq(jiffies, tape->avg_time + HZ)) {
1679                 tape->avg_speed = tape->avg_size * HZ / (jiffies - tape->avg_time) / 1024;
1680                 tape->avg_size = 0;
1681                 tape->avg_time = jiffies;
1682         }
1683
1684 #if IDETAPE_DEBUG_LOG   
1685         if (tape->debug_level >= 4)
1686                 printk(KERN_INFO "ide-tape: Reached idetape_rw_callback\n");
1687 #endif /* IDETAPE_DEBUG_LOG */
1688
1689         tape->first_frame_position += blocks;
1690         rq->current_nr_sectors -= blocks;
1691
1692         if (!tape->pc->error)
1693                 idetape_end_request(drive, 1, 0);
1694         else
1695                 idetape_end_request(drive, tape->pc->error, 0);
1696         return ide_stopped;
1697 }
1698
1699 static void idetape_create_read_cmd(idetape_tape_t *tape, idetape_pc_t *pc, unsigned int length, struct idetape_bh *bh)
1700 {
1701         idetape_init_pc(pc);
1702         pc->c[0] = IDETAPE_READ_CMD;
1703         put_unaligned(htonl(length), (unsigned int *) &pc->c[1]);
1704         pc->c[1] = 1;
1705         pc->callback = &idetape_rw_callback;
1706         pc->bh = bh;
1707         atomic_set(&bh->b_count, 0);
1708         pc->buffer = NULL;
1709         pc->request_transfer = pc->buffer_size = length * tape->tape_block_size;
1710         if (pc->request_transfer == tape->stage_size)
1711                 set_bit(PC_DMA_RECOMMENDED, &pc->flags);
1712 }
1713
1714 static void idetape_create_read_buffer_cmd(idetape_tape_t *tape, idetape_pc_t *pc, unsigned int length, struct idetape_bh *bh)
1715 {
1716         int size = 32768;
1717         struct idetape_bh *p = bh;
1718
1719         idetape_init_pc(pc);
1720         pc->c[0] = IDETAPE_READ_BUFFER_CMD;
1721         pc->c[1] = IDETAPE_RETRIEVE_FAULTY_BLOCK;
1722         pc->c[7] = size >> 8;
1723         pc->c[8] = size & 0xff;
1724         pc->callback = &idetape_pc_callback;
1725         pc->bh = bh;
1726         atomic_set(&bh->b_count, 0);
1727         pc->buffer = NULL;
1728         while (p) {
1729                 atomic_set(&p->b_count, 0);
1730                 p = p->b_reqnext;
1731         }
1732         pc->request_transfer = pc->buffer_size = size;
1733 }
1734
1735 static void idetape_create_write_cmd(idetape_tape_t *tape, idetape_pc_t *pc, unsigned int length, struct idetape_bh *bh)
1736 {
1737         idetape_init_pc(pc);
1738         pc->c[0] = IDETAPE_WRITE_CMD;
1739         put_unaligned(htonl(length), (unsigned int *) &pc->c[1]);
1740         pc->c[1] = 1;
1741         pc->callback = &idetape_rw_callback;
1742         set_bit(PC_WRITING, &pc->flags);
1743         pc->bh = bh;
1744         pc->b_data = bh->b_data;
1745         pc->b_count = atomic_read(&bh->b_count);
1746         pc->buffer = NULL;
1747         pc->request_transfer = pc->buffer_size = length * tape->tape_block_size;
1748         if (pc->request_transfer == tape->stage_size)
1749                 set_bit(PC_DMA_RECOMMENDED, &pc->flags);
1750 }
1751
1752 /*
1753  * idetape_do_request is our request handling function. 
1754  */
1755 static ide_startstop_t idetape_do_request(ide_drive_t *drive,
1756                                           struct request *rq, sector_t block)
1757 {
1758         idetape_tape_t *tape = drive->driver_data;
1759         idetape_pc_t *pc = NULL;
1760         struct request *postponed_rq = tape->postponed_rq;
1761         u8 stat;
1762
1763 #if IDETAPE_DEBUG_LOG
1764         if (tape->debug_level >= 2)
1765                 printk(KERN_INFO "ide-tape: sector: %ld, "
1766                         "nr_sectors: %ld, current_nr_sectors: %d\n",
1767                         rq->sector, rq->nr_sectors, rq->current_nr_sectors);
1768 #endif /* IDETAPE_DEBUG_LOG */
1769
1770         if (!blk_special_request(rq)) {
1771                 /*
1772                  * We do not support buffer cache originated requests.
1773                  */
1774                 printk(KERN_NOTICE "ide-tape: %s: Unsupported request in "
1775                         "request queue (%d)\n", drive->name, rq->cmd_type);
1776                 ide_end_request(drive, 0, 0);
1777                 return ide_stopped;
1778         }
1779
1780         /*
1781          *      Retry a failed packet command
1782          */
1783         if (tape->failed_pc != NULL &&
1784             tape->pc->c[0] == IDETAPE_REQUEST_SENSE_CMD) {
1785                 return idetape_issue_packet_command(drive, tape->failed_pc);
1786         }
1787         if (postponed_rq != NULL)
1788                 if (rq != postponed_rq) {
1789                         printk(KERN_ERR "ide-tape: ide-tape.c bug - "
1790                                         "Two DSC requests were queued\n");
1791                         idetape_end_request(drive, 0, 0);
1792                         return ide_stopped;
1793                 }
1794
1795         tape->postponed_rq = NULL;
1796
1797         /*
1798          * If the tape is still busy, postpone our request and service
1799          * the other device meanwhile.
1800          */
1801         stat = drive->hwif->INB(IDE_STATUS_REG);
1802
1803         if (!drive->dsc_overlap && !(rq->cmd[0] & REQ_IDETAPE_PC2))
1804                 set_bit(IDETAPE_IGNORE_DSC, &tape->flags);
1805
1806         if (drive->post_reset == 1) {
1807                 set_bit(IDETAPE_IGNORE_DSC, &tape->flags);
1808                 drive->post_reset = 0;
1809         }
1810
1811         if (tape->tape_still_time > 100 && tape->tape_still_time < 200)
1812                 tape->measure_insert_time = 1;
1813         if (time_after(jiffies, tape->insert_time))
1814                 tape->insert_speed = tape->insert_size / 1024 * HZ / (jiffies - tape->insert_time);
1815         calculate_speeds(drive);
1816         if (!test_and_clear_bit(IDETAPE_IGNORE_DSC, &tape->flags) &&
1817             (stat & SEEK_STAT) == 0) {
1818                 if (postponed_rq == NULL) {
1819                         tape->dsc_polling_start = jiffies;
1820                         tape->dsc_polling_frequency = tape->best_dsc_rw_frequency;
1821                         tape->dsc_timeout = jiffies + IDETAPE_DSC_RW_TIMEOUT;
1822                 } else if (time_after(jiffies, tape->dsc_timeout)) {
1823                         printk(KERN_ERR "ide-tape: %s: DSC timeout\n",
1824                                 tape->name);
1825                         if (rq->cmd[0] & REQ_IDETAPE_PC2) {
1826                                 idetape_media_access_finished(drive);
1827                                 return ide_stopped;
1828                         } else {
1829                                 return ide_do_reset(drive);
1830                         }
1831                 } else if (time_after(jiffies, tape->dsc_polling_start + IDETAPE_DSC_MA_THRESHOLD))
1832                         tape->dsc_polling_frequency = IDETAPE_DSC_MA_SLOW;
1833                 idetape_postpone_request(drive);
1834                 return ide_stopped;
1835         }
1836         if (rq->cmd[0] & REQ_IDETAPE_READ) {
1837                 tape->buffer_head++;
1838                 tape->postpone_cnt = 0;
1839                 pc = idetape_next_pc_storage(drive);
1840                 idetape_create_read_cmd(tape, pc, rq->current_nr_sectors, (struct idetape_bh *)rq->special);
1841                 goto out;
1842         }
1843         if (rq->cmd[0] & REQ_IDETAPE_WRITE) {
1844                 tape->buffer_head++;
1845                 tape->postpone_cnt = 0;
1846                 pc = idetape_next_pc_storage(drive);
1847                 idetape_create_write_cmd(tape, pc, rq->current_nr_sectors, (struct idetape_bh *)rq->special);
1848                 goto out;
1849         }
1850         if (rq->cmd[0] & REQ_IDETAPE_READ_BUFFER) {
1851                 tape->postpone_cnt = 0;
1852                 pc = idetape_next_pc_storage(drive);
1853                 idetape_create_read_buffer_cmd(tape, pc, rq->current_nr_sectors, (struct idetape_bh *)rq->special);
1854                 goto out;
1855         }
1856         if (rq->cmd[0] & REQ_IDETAPE_PC1) {
1857                 pc = (idetape_pc_t *) rq->buffer;
1858                 rq->cmd[0] &= ~(REQ_IDETAPE_PC1);
1859                 rq->cmd[0] |= REQ_IDETAPE_PC2;
1860                 goto out;
1861         }
1862         if (rq->cmd[0] & REQ_IDETAPE_PC2) {
1863                 idetape_media_access_finished(drive);
1864                 return ide_stopped;
1865         }
1866         BUG();
1867 out:
1868         return idetape_issue_packet_command(drive, pc);
1869 }
1870
1871 /*
1872  *      Pipeline related functions
1873  */
1874 static inline int idetape_pipeline_active (idetape_tape_t *tape)
1875 {
1876         int rc1, rc2;
1877
1878         rc1 = test_bit(IDETAPE_PIPELINE_ACTIVE, &tape->flags);
1879         rc2 = (tape->active_data_request != NULL);
1880         return rc1;
1881 }
1882
1883 /*
1884  *      idetape_kmalloc_stage uses __get_free_page to allocate a pipeline
1885  *      stage, along with all the necessary small buffers which together make
1886  *      a buffer of size tape->stage_size (or a bit more). We attempt to
1887  *      combine sequential pages as much as possible.
1888  *
1889  *      Returns a pointer to the new allocated stage, or NULL if we
1890  *      can't (or don't want to) allocate a stage.
1891  *
1892  *      Pipeline stages are optional and are used to increase performance.
1893  *      If we can't allocate them, we'll manage without them.
1894  */
1895 static idetape_stage_t *__idetape_kmalloc_stage (idetape_tape_t *tape, int full, int clear)
1896 {
1897         idetape_stage_t *stage;
1898         struct idetape_bh *prev_bh, *bh;
1899         int pages = tape->pages_per_stage;
1900         char *b_data = NULL;
1901
1902         if ((stage = kmalloc(sizeof (idetape_stage_t),GFP_KERNEL)) == NULL)
1903                 return NULL;
1904         stage->next = NULL;
1905
1906         bh = stage->bh = kmalloc(sizeof(struct idetape_bh), GFP_KERNEL);
1907         if (bh == NULL)
1908                 goto abort;
1909         bh->b_reqnext = NULL;
1910         if ((bh->b_data = (char *) __get_free_page (GFP_KERNEL)) == NULL)
1911                 goto abort;
1912         if (clear)
1913                 memset(bh->b_data, 0, PAGE_SIZE);
1914         bh->b_size = PAGE_SIZE;
1915         atomic_set(&bh->b_count, full ? bh->b_size : 0);
1916
1917         while (--pages) {
1918                 if ((b_data = (char *) __get_free_page (GFP_KERNEL)) == NULL)
1919                         goto abort;
1920                 if (clear)
1921                         memset(b_data, 0, PAGE_SIZE);
1922                 if (bh->b_data == b_data + PAGE_SIZE) {
1923                         bh->b_size += PAGE_SIZE;
1924                         bh->b_data -= PAGE_SIZE;
1925                         if (full)
1926                                 atomic_add(PAGE_SIZE, &bh->b_count);
1927                         continue;
1928                 }
1929                 if (b_data == bh->b_data + bh->b_size) {
1930                         bh->b_size += PAGE_SIZE;
1931                         if (full)
1932                                 atomic_add(PAGE_SIZE, &bh->b_count);
1933                         continue;
1934                 }
1935                 prev_bh = bh;
1936                 if ((bh = kmalloc(sizeof(struct idetape_bh), GFP_KERNEL)) == NULL) {
1937                         free_page((unsigned long) b_data);
1938                         goto abort;
1939                 }
1940                 bh->b_reqnext = NULL;
1941                 bh->b_data = b_data;
1942                 bh->b_size = PAGE_SIZE;
1943                 atomic_set(&bh->b_count, full ? bh->b_size : 0);
1944                 prev_bh->b_reqnext = bh;
1945         }
1946         bh->b_size -= tape->excess_bh_size;
1947         if (full)
1948                 atomic_sub(tape->excess_bh_size, &bh->b_count);
1949         return stage;
1950 abort:
1951         __idetape_kfree_stage(stage);
1952         return NULL;
1953 }
1954
1955 static idetape_stage_t *idetape_kmalloc_stage (idetape_tape_t *tape)
1956 {
1957         idetape_stage_t *cache_stage = tape->cache_stage;
1958
1959 #if IDETAPE_DEBUG_LOG
1960         if (tape->debug_level >= 4)
1961                 printk(KERN_INFO "ide-tape: Reached idetape_kmalloc_stage\n");
1962 #endif /* IDETAPE_DEBUG_LOG */
1963
1964         if (tape->nr_stages >= tape->max_stages)
1965                 return NULL;
1966         if (cache_stage != NULL) {
1967                 tape->cache_stage = NULL;
1968                 return cache_stage;
1969         }
1970         return __idetape_kmalloc_stage(tape, 0, 0);
1971 }
1972
1973 static int idetape_copy_stage_from_user (idetape_tape_t *tape, idetape_stage_t *stage, const char __user *buf, int n)
1974 {
1975         struct idetape_bh *bh = tape->bh;
1976         int count;
1977         int ret = 0;
1978
1979         while (n) {
1980                 if (bh == NULL) {
1981                         printk(KERN_ERR "ide-tape: bh == NULL in "
1982                                 "idetape_copy_stage_from_user\n");
1983                         return 1;
1984                 }
1985                 count = min((unsigned int)(bh->b_size - atomic_read(&bh->b_count)), (unsigned int)n);
1986                 if (copy_from_user(bh->b_data + atomic_read(&bh->b_count), buf, count))
1987                         ret = 1;
1988                 n -= count;
1989                 atomic_add(count, &bh->b_count);
1990                 buf += count;
1991                 if (atomic_read(&bh->b_count) == bh->b_size) {
1992                         bh = bh->b_reqnext;
1993                         if (bh)
1994                                 atomic_set(&bh->b_count, 0);
1995                 }
1996         }
1997         tape->bh = bh;
1998         return ret;
1999 }
2000
2001 static int idetape_copy_stage_to_user (idetape_tape_t *tape, char __user *buf, idetape_stage_t *stage, int n)
2002 {
2003         struct idetape_bh *bh = tape->bh;
2004         int count;
2005         int ret = 0;
2006
2007         while (n) {
2008                 if (bh == NULL) {
2009                         printk(KERN_ERR "ide-tape: bh == NULL in "
2010                                 "idetape_copy_stage_to_user\n");
2011                         return 1;
2012                 }
2013                 count = min(tape->b_count, n);
2014                 if  (copy_to_user(buf, tape->b_data, count))
2015                         ret = 1;
2016                 n -= count;
2017                 tape->b_data += count;
2018                 tape->b_count -= count;
2019                 buf += count;
2020                 if (!tape->b_count) {
2021                         tape->bh = bh = bh->b_reqnext;
2022                         if (bh) {
2023                                 tape->b_data = bh->b_data;
2024                                 tape->b_count = atomic_read(&bh->b_count);
2025                         }
2026                 }
2027         }
2028         return ret;
2029 }
2030
2031 static void idetape_init_merge_stage (idetape_tape_t *tape)
2032 {
2033         struct idetape_bh *bh = tape->merge_stage->bh;
2034         
2035         tape->bh = bh;
2036         if (tape->chrdev_direction == idetape_direction_write)
2037                 atomic_set(&bh->b_count, 0);
2038         else {
2039                 tape->b_data = bh->b_data;
2040                 tape->b_count = atomic_read(&bh->b_count);
2041         }
2042 }
2043
2044 static void idetape_switch_buffers (idetape_tape_t *tape, idetape_stage_t *stage)
2045 {
2046         struct idetape_bh *tmp;
2047
2048         tmp = stage->bh;
2049         stage->bh = tape->merge_stage->bh;
2050         tape->merge_stage->bh = tmp;
2051         idetape_init_merge_stage(tape);
2052 }
2053
2054 /*
2055  *      idetape_add_stage_tail adds a new stage at the end of the pipeline.
2056  */
2057 static void idetape_add_stage_tail (ide_drive_t *drive,idetape_stage_t *stage)
2058 {
2059         idetape_tape_t *tape = drive->driver_data;
2060         unsigned long flags;
2061         
2062 #if IDETAPE_DEBUG_LOG
2063         if (tape->debug_level >= 4)
2064                 printk (KERN_INFO "ide-tape: Reached idetape_add_stage_tail\n");
2065 #endif /* IDETAPE_DEBUG_LOG */
2066         spin_lock_irqsave(&tape->spinlock, flags);
2067         stage->next = NULL;
2068         if (tape->last_stage != NULL)
2069                 tape->last_stage->next=stage;
2070         else
2071                 tape->first_stage = tape->next_stage=stage;
2072         tape->last_stage = stage;
2073         if (tape->next_stage == NULL)
2074                 tape->next_stage = tape->last_stage;
2075         tape->nr_stages++;
2076         tape->nr_pending_stages++;
2077         spin_unlock_irqrestore(&tape->spinlock, flags);
2078 }
2079
2080 /*
2081  *      idetape_wait_for_request installs a completion in a pending request
2082  *      and sleeps until it is serviced.
2083  *
2084  *      The caller should ensure that the request will not be serviced
2085  *      before we install the completion (usually by disabling interrupts).
2086  */
2087 static void idetape_wait_for_request (ide_drive_t *drive, struct request *rq)
2088 {
2089         DECLARE_COMPLETION_ONSTACK(wait);
2090         idetape_tape_t *tape = drive->driver_data;
2091
2092         if (rq == NULL || !blk_special_request(rq)) {
2093                 printk (KERN_ERR "ide-tape: bug: Trying to sleep on non-valid request\n");
2094                 return;
2095         }
2096         rq->end_io_data = &wait;
2097         rq->end_io = blk_end_sync_rq;
2098         spin_unlock_irq(&tape->spinlock);
2099         wait_for_completion(&wait);
2100         /* The stage and its struct request have been deallocated */
2101         spin_lock_irq(&tape->spinlock);
2102 }
2103
2104 static ide_startstop_t idetape_read_position_callback (ide_drive_t *drive)
2105 {
2106         idetape_tape_t *tape = drive->driver_data;
2107         idetape_read_position_result_t *result;
2108         
2109 #if IDETAPE_DEBUG_LOG
2110         if (tape->debug_level >= 4)
2111                 printk(KERN_INFO "ide-tape: Reached idetape_read_position_callback\n");
2112 #endif /* IDETAPE_DEBUG_LOG */
2113
2114         if (!tape->pc->error) {
2115                 result = (idetape_read_position_result_t *) tape->pc->buffer;
2116 #if IDETAPE_DEBUG_LOG
2117                 if (tape->debug_level >= 2)
2118                         printk(KERN_INFO "ide-tape: BOP - %s\n",result->bop ? "Yes":"No");
2119                 if (tape->debug_level >= 2)
2120                         printk(KERN_INFO "ide-tape: EOP - %s\n",result->eop ? "Yes":"No");
2121 #endif /* IDETAPE_DEBUG_LOG */
2122                 if (result->bpu) {
2123                         printk(KERN_INFO "ide-tape: Block location is unknown to the tape\n");
2124                         clear_bit(IDETAPE_ADDRESS_VALID, &tape->flags);
2125                         idetape_end_request(drive, 0, 0);
2126                 } else {
2127 #if IDETAPE_DEBUG_LOG
2128                         if (tape->debug_level >= 2)
2129                                 printk(KERN_INFO "ide-tape: Block Location - %u\n", ntohl(result->first_block));
2130 #endif /* IDETAPE_DEBUG_LOG */
2131                         tape->partition = result->partition;
2132                         tape->first_frame_position = ntohl(result->first_block);
2133                         tape->last_frame_position = ntohl(result->last_block);
2134                         tape->blocks_in_buffer = result->blocks_in_buffer[2];
2135                         set_bit(IDETAPE_ADDRESS_VALID, &tape->flags);
2136                         idetape_end_request(drive, 1, 0);
2137                 }
2138         } else {
2139                 idetape_end_request(drive, 0, 0);
2140         }
2141         return ide_stopped;
2142 }
2143
2144 /*
2145  *      idetape_create_write_filemark_cmd will:
2146  *
2147  *              1.      Write a filemark if write_filemark=1.
2148  *              2.      Flush the device buffers without writing a filemark
2149  *                      if write_filemark=0.
2150  *
2151  */
2152 static void idetape_create_write_filemark_cmd (ide_drive_t *drive, idetape_pc_t *pc,int write_filemark)
2153 {
2154         idetape_init_pc(pc);
2155         pc->c[0] = IDETAPE_WRITE_FILEMARK_CMD;
2156         pc->c[4] = write_filemark;
2157         set_bit(PC_WAIT_FOR_DSC, &pc->flags);
2158         pc->callback = &idetape_pc_callback;
2159 }
2160
2161 static void idetape_create_test_unit_ready_cmd(idetape_pc_t *pc)
2162 {
2163         idetape_init_pc(pc);
2164         pc->c[0] = IDETAPE_TEST_UNIT_READY_CMD;
2165         pc->callback = &idetape_pc_callback;
2166 }
2167
2168 /*
2169  *      idetape_queue_pc_tail is based on the following functions:
2170  *
2171  *      ide_do_drive_cmd from ide.c
2172  *      cdrom_queue_request and cdrom_queue_packet_command from ide-cd.c
2173  *
2174  *      We add a special packet command request to the tail of the request
2175  *      queue, and wait for it to be serviced.
2176  *
2177  *      This is not to be called from within the request handling part
2178  *      of the driver ! We allocate here data in the stack, and it is valid
2179  *      until the request is finished. This is not the case for the bottom
2180  *      part of the driver, where we are always leaving the functions to wait
2181  *      for an interrupt or a timer event.
2182  *
2183  *      From the bottom part of the driver, we should allocate safe memory
2184  *      using idetape_next_pc_storage and idetape_next_rq_storage, and add
2185  *      the request to the request list without waiting for it to be serviced !
2186  *      In that case, we usually use idetape_queue_pc_head.
2187  */
2188 static int __idetape_queue_pc_tail (ide_drive_t *drive, idetape_pc_t *pc)
2189 {
2190         struct ide_tape_obj *tape = drive->driver_data;
2191         struct request rq;
2192
2193         idetape_init_rq(&rq, REQ_IDETAPE_PC1);
2194         rq.buffer = (char *) pc;
2195         rq.rq_disk = tape->disk;
2196         return ide_do_drive_cmd(drive, &rq, ide_wait);
2197 }
2198
2199 static void idetape_create_load_unload_cmd (ide_drive_t *drive, idetape_pc_t *pc,int cmd)
2200 {
2201         idetape_init_pc(pc);
2202         pc->c[0] = IDETAPE_LOAD_UNLOAD_CMD;
2203         pc->c[4] = cmd;
2204         set_bit(PC_WAIT_FOR_DSC, &pc->flags);
2205         pc->callback = &idetape_pc_callback;
2206 }
2207
2208 static int idetape_wait_ready(ide_drive_t *drive, unsigned long timeout)
2209 {
2210         idetape_tape_t *tape = drive->driver_data;
2211         idetape_pc_t pc;
2212         int load_attempted = 0;
2213
2214         /*
2215          * Wait for the tape to become ready
2216          */
2217         set_bit(IDETAPE_MEDIUM_PRESENT, &tape->flags);
2218         timeout += jiffies;
2219         while (time_before(jiffies, timeout)) {
2220                 idetape_create_test_unit_ready_cmd(&pc);
2221                 if (!__idetape_queue_pc_tail(drive, &pc))
2222                         return 0;
2223                 if ((tape->sense_key == 2 && tape->asc == 4 && tape->ascq == 2)
2224                     || (tape->asc == 0x3A)) {   /* no media */
2225                         if (load_attempted)
2226                                 return -ENOMEDIUM;
2227                         idetape_create_load_unload_cmd(drive, &pc, IDETAPE_LU_LOAD_MASK);
2228                         __idetape_queue_pc_tail(drive, &pc);
2229                         load_attempted = 1;
2230                 /* not about to be ready */
2231                 } else if (!(tape->sense_key == 2 && tape->asc == 4 &&
2232                              (tape->ascq == 1 || tape->ascq == 8)))
2233                         return -EIO;
2234                 msleep(100);
2235         }
2236         return -EIO;
2237 }
2238
2239 static int idetape_queue_pc_tail (ide_drive_t *drive,idetape_pc_t *pc)
2240 {
2241         return __idetape_queue_pc_tail(drive, pc);
2242 }
2243
2244 static int idetape_flush_tape_buffers (ide_drive_t *drive)
2245 {
2246         idetape_pc_t pc;
2247         int rc;
2248
2249         idetape_create_write_filemark_cmd(drive, &pc, 0);
2250         if ((rc = idetape_queue_pc_tail(drive, &pc)))
2251                 return rc;
2252         idetape_wait_ready(drive, 60 * 5 * HZ);
2253         return 0;
2254 }
2255
2256 static void idetape_create_read_position_cmd (idetape_pc_t *pc)
2257 {
2258         idetape_init_pc(pc);
2259         pc->c[0] = IDETAPE_READ_POSITION_CMD;
2260         pc->request_transfer = 20;
2261         pc->callback = &idetape_read_position_callback;
2262 }
2263
2264 static int idetape_read_position (ide_drive_t *drive)
2265 {
2266         idetape_tape_t *tape = drive->driver_data;
2267         idetape_pc_t pc;
2268         int position;
2269
2270 #if IDETAPE_DEBUG_LOG
2271         if (tape->debug_level >= 4)
2272                 printk(KERN_INFO "ide-tape: Reached idetape_read_position\n");
2273 #endif /* IDETAPE_DEBUG_LOG */
2274
2275         idetape_create_read_position_cmd(&pc);
2276         if (idetape_queue_pc_tail(drive, &pc))
2277                 return -1;
2278         position = tape->first_frame_position;
2279         return position;
2280 }
2281
2282 static void idetape_create_locate_cmd (ide_drive_t *drive, idetape_pc_t *pc, unsigned int block, u8 partition, int skip)
2283 {
2284         idetape_init_pc(pc);
2285         pc->c[0] = IDETAPE_LOCATE_CMD;
2286         pc->c[1] = 2;
2287         put_unaligned(htonl(block), (unsigned int *) &pc->c[3]);
2288         pc->c[8] = partition;
2289         set_bit(PC_WAIT_FOR_DSC, &pc->flags);
2290         pc->callback = &idetape_pc_callback;
2291 }
2292
2293 static int idetape_create_prevent_cmd (ide_drive_t *drive, idetape_pc_t *pc, int prevent)
2294 {
2295         idetape_tape_t *tape = drive->driver_data;
2296
2297         /* device supports locking according to capabilities page */
2298         if (!(tape->caps[6] & 0x01))
2299                 return 0;
2300
2301         idetape_init_pc(pc);
2302         pc->c[0] = IDETAPE_PREVENT_CMD;
2303         pc->c[4] = prevent;
2304         pc->callback = &idetape_pc_callback;
2305         return 1;
2306 }
2307
2308 static int __idetape_discard_read_pipeline (ide_drive_t *drive)
2309 {
2310         idetape_tape_t *tape = drive->driver_data;
2311         unsigned long flags;
2312         int cnt;
2313
2314         if (tape->chrdev_direction != idetape_direction_read)
2315                 return 0;
2316
2317         /* Remove merge stage. */
2318         cnt = tape->merge_stage_size / tape->tape_block_size;
2319         if (test_and_clear_bit(IDETAPE_FILEMARK, &tape->flags))
2320                 ++cnt;          /* Filemarks count as 1 sector */
2321         tape->merge_stage_size = 0;
2322         if (tape->merge_stage != NULL) {
2323                 __idetape_kfree_stage(tape->merge_stage);
2324                 tape->merge_stage = NULL;
2325         }
2326
2327         /* Clear pipeline flags. */
2328         clear_bit(IDETAPE_PIPELINE_ERROR, &tape->flags);
2329         tape->chrdev_direction = idetape_direction_none;
2330
2331         /* Remove pipeline stages. */
2332         if (tape->first_stage == NULL)
2333                 return 0;
2334
2335         spin_lock_irqsave(&tape->spinlock, flags);
2336         tape->next_stage = NULL;
2337         if (idetape_pipeline_active(tape))
2338                 idetape_wait_for_request(drive, tape->active_data_request);
2339         spin_unlock_irqrestore(&tape->spinlock, flags);
2340
2341         while (tape->first_stage != NULL) {
2342                 struct request *rq_ptr = &tape->first_stage->rq;
2343
2344                 cnt += rq_ptr->nr_sectors - rq_ptr->current_nr_sectors; 
2345                 if (rq_ptr->errors == IDETAPE_ERROR_FILEMARK)
2346                         ++cnt;
2347                 idetape_remove_stage_head(drive);
2348         }
2349         tape->nr_pending_stages = 0;
2350         tape->max_stages = tape->min_pipeline;
2351         return cnt;
2352 }
2353
2354 /*
2355  *      idetape_position_tape positions the tape to the requested block
2356  *      using the LOCATE packet command. A READ POSITION command is then
2357  *      issued to check where we are positioned.
2358  *
2359  *      Like all higher level operations, we queue the commands at the tail
2360  *      of the request queue and wait for their completion.
2361  *      
2362  */
2363 static int idetape_position_tape (ide_drive_t *drive, unsigned int block, u8 partition, int skip)
2364 {
2365         idetape_tape_t *tape = drive->driver_data;
2366         int retval;
2367         idetape_pc_t pc;
2368
2369         if (tape->chrdev_direction == idetape_direction_read)
2370                 __idetape_discard_read_pipeline(drive);
2371         idetape_wait_ready(drive, 60 * 5 * HZ);
2372         idetape_create_locate_cmd(drive, &pc, block, partition, skip);
2373         retval = idetape_queue_pc_tail(drive, &pc);
2374         if (retval)
2375                 return (retval);
2376
2377         idetape_create_read_position_cmd(&pc);
2378         return (idetape_queue_pc_tail(drive, &pc));
2379 }
2380
2381 static void idetape_discard_read_pipeline (ide_drive_t *drive, int restore_position)
2382 {
2383         idetape_tape_t *tape = drive->driver_data;
2384         int cnt;
2385         int seek, position;
2386
2387         cnt = __idetape_discard_read_pipeline(drive);
2388         if (restore_position) {
2389                 position = idetape_read_position(drive);
2390                 seek = position > cnt ? position - cnt : 0;
2391                 if (idetape_position_tape(drive, seek, 0, 0)) {
2392                         printk(KERN_INFO "ide-tape: %s: position_tape failed in discard_pipeline()\n", tape->name);
2393                         return;
2394                 }
2395         }
2396 }
2397
2398 /*
2399  * idetape_queue_rw_tail generates a read/write request for the block
2400  * device interface and wait for it to be serviced.
2401  */
2402 static int idetape_queue_rw_tail(ide_drive_t *drive, int cmd, int blocks, struct idetape_bh *bh)
2403 {
2404         idetape_tape_t *tape = drive->driver_data;
2405         struct request rq;
2406
2407 #if IDETAPE_DEBUG_LOG
2408         if (tape->debug_level >= 2)
2409                 printk(KERN_INFO "ide-tape: idetape_queue_rw_tail: cmd=%d\n",cmd);
2410 #endif /* IDETAPE_DEBUG_LOG */
2411         if (idetape_pipeline_active(tape)) {
2412                 printk(KERN_ERR "ide-tape: bug: the pipeline is active in idetape_queue_rw_tail\n");
2413                 return (0);
2414         }
2415
2416         idetape_init_rq(&rq, cmd);
2417         rq.rq_disk = tape->disk;
2418         rq.special = (void *)bh;
2419         rq.sector = tape->first_frame_position;
2420         rq.nr_sectors = rq.current_nr_sectors = blocks;
2421         (void) ide_do_drive_cmd(drive, &rq, ide_wait);
2422
2423         if ((cmd & (REQ_IDETAPE_READ | REQ_IDETAPE_WRITE)) == 0)
2424                 return 0;
2425
2426         if (tape->merge_stage)
2427                 idetape_init_merge_stage(tape);
2428         if (rq.errors == IDETAPE_ERROR_GENERAL)
2429                 return -EIO;
2430         return (tape->tape_block_size * (blocks-rq.current_nr_sectors));
2431 }
2432
2433 /*
2434  *      idetape_insert_pipeline_into_queue is used to start servicing the
2435  *      pipeline stages, starting from tape->next_stage.
2436  */
2437 static void idetape_insert_pipeline_into_queue (ide_drive_t *drive)
2438 {
2439         idetape_tape_t *tape = drive->driver_data;
2440
2441         if (tape->next_stage == NULL)
2442                 return;
2443         if (!idetape_pipeline_active(tape)) {
2444                 set_bit(IDETAPE_PIPELINE_ACTIVE, &tape->flags);
2445                 idetape_active_next_stage(drive);
2446                 (void) ide_do_drive_cmd(drive, tape->active_data_request, ide_end);
2447         }
2448 }
2449
2450 static void idetape_create_inquiry_cmd (idetape_pc_t *pc)
2451 {
2452         idetape_init_pc(pc);
2453         pc->c[0] = IDETAPE_INQUIRY_CMD;
2454         pc->c[4] = pc->request_transfer = 254;
2455         pc->callback = &idetape_pc_callback;
2456 }
2457
2458 static void idetape_create_rewind_cmd (ide_drive_t *drive, idetape_pc_t *pc)
2459 {
2460         idetape_init_pc(pc);
2461         pc->c[0] = IDETAPE_REWIND_CMD;
2462         set_bit(PC_WAIT_FOR_DSC, &pc->flags);
2463         pc->callback = &idetape_pc_callback;
2464 }
2465
2466 static void idetape_create_erase_cmd (idetape_pc_t *pc)
2467 {
2468         idetape_init_pc(pc);
2469         pc->c[0] = IDETAPE_ERASE_CMD;
2470         pc->c[1] = 1;
2471         set_bit(PC_WAIT_FOR_DSC, &pc->flags);
2472         pc->callback = &idetape_pc_callback;
2473 }
2474
2475 static void idetape_create_space_cmd (idetape_pc_t *pc,int count, u8 cmd)
2476 {
2477         idetape_init_pc(pc);
2478         pc->c[0] = IDETAPE_SPACE_CMD;
2479         put_unaligned(htonl(count), (unsigned int *) &pc->c[1]);
2480         pc->c[1] = cmd;
2481         set_bit(PC_WAIT_FOR_DSC, &pc->flags);
2482         pc->callback = &idetape_pc_callback;
2483 }
2484
2485 static void idetape_wait_first_stage (ide_drive_t *drive)
2486 {
2487         idetape_tape_t *tape = drive->driver_data;
2488         unsigned long flags;
2489
2490         if (tape->first_stage == NULL)
2491                 return;
2492         spin_lock_irqsave(&tape->spinlock, flags);
2493         if (tape->active_stage == tape->first_stage)
2494                 idetape_wait_for_request(drive, tape->active_data_request);
2495         spin_unlock_irqrestore(&tape->spinlock, flags);
2496 }
2497
2498 /*
2499  *      idetape_add_chrdev_write_request tries to add a character device
2500  *      originated write request to our pipeline. In case we don't succeed,
2501  *      we revert to non-pipelined operation mode for this request.
2502  *
2503  *      1.      Try to allocate a new pipeline stage.
2504  *      2.      If we can't, wait for more and more requests to be serviced
2505  *              and try again each time.
2506  *      3.      If we still can't allocate a stage, fallback to
2507  *              non-pipelined operation mode for this request.
2508  */
2509 static int idetape_add_chrdev_write_request (ide_drive_t *drive, int blocks)
2510 {
2511         idetape_tape_t *tape = drive->driver_data;
2512         idetape_stage_t *new_stage;
2513         unsigned long flags;
2514         struct request *rq;
2515
2516 #if IDETAPE_DEBUG_LOG
2517         if (tape->debug_level >= 3)
2518                 printk(KERN_INFO "ide-tape: Reached idetape_add_chrdev_write_request\n");
2519 #endif /* IDETAPE_DEBUG_LOG */
2520
2521         /*
2522          *      Attempt to allocate a new stage.
2523          *      Pay special attention to possible race conditions.
2524          */
2525         while ((new_stage = idetape_kmalloc_stage(tape)) == NULL) {
2526                 spin_lock_irqsave(&tape->spinlock, flags);
2527                 if (idetape_pipeline_active(tape)) {
2528                         idetape_wait_for_request(drive, tape->active_data_request);
2529                         spin_unlock_irqrestore(&tape->spinlock, flags);
2530                 } else {
2531                         spin_unlock_irqrestore(&tape->spinlock, flags);
2532                         idetape_insert_pipeline_into_queue(drive);
2533                         if (idetape_pipeline_active(tape))
2534                                 continue;
2535                         /*
2536                          *      Linux is short on memory. Fallback to
2537                          *      non-pipelined operation mode for this request.
2538                          */
2539                         return idetape_queue_rw_tail(drive, REQ_IDETAPE_WRITE, blocks, tape->merge_stage->bh);
2540                 }
2541         }
2542         rq = &new_stage->rq;
2543         idetape_init_rq(rq, REQ_IDETAPE_WRITE);
2544         /* Doesn't actually matter - We always assume sequential access */
2545         rq->sector = tape->first_frame_position;
2546         rq->nr_sectors = rq->current_nr_sectors = blocks;
2547
2548         idetape_switch_buffers(tape, new_stage);
2549         idetape_add_stage_tail(drive, new_stage);
2550         tape->pipeline_head++;
2551         calculate_speeds(drive);
2552
2553         /*
2554          *      Estimate whether the tape has stopped writing by checking
2555          *      if our write pipeline is currently empty. If we are not
2556          *      writing anymore, wait for the pipeline to be full enough
2557          *      (90%) before starting to service requests, so that we will
2558          *      be able to keep up with the higher speeds of the tape.
2559          */
2560         if (!idetape_pipeline_active(tape)) {
2561                 if (tape->nr_stages >= tape->max_stages * 9 / 10 ||
2562                     tape->nr_stages >= tape->max_stages - tape->uncontrolled_pipeline_head_speed * 3 * 1024 / tape->tape_block_size) {
2563                         tape->measure_insert_time = 1;
2564                         tape->insert_time = jiffies;
2565                         tape->insert_size = 0;
2566                         tape->insert_speed = 0;
2567                         idetape_insert_pipeline_into_queue(drive);
2568                 }
2569         }
2570         if (test_and_clear_bit(IDETAPE_PIPELINE_ERROR, &tape->flags))
2571                 /* Return a deferred error */
2572                 return -EIO;
2573         return blocks;
2574 }
2575
2576 /*
2577  *      idetape_wait_for_pipeline will wait until all pending pipeline
2578  *      requests are serviced. Typically called on device close.
2579  */
2580 static void idetape_wait_for_pipeline (ide_drive_t *drive)
2581 {
2582         idetape_tape_t *tape = drive->driver_data;
2583         unsigned long flags;
2584
2585         while (tape->next_stage || idetape_pipeline_active(tape)) {
2586                 idetape_insert_pipeline_into_queue(drive);
2587                 spin_lock_irqsave(&tape->spinlock, flags);
2588                 if (idetape_pipeline_active(tape))
2589                         idetape_wait_for_request(drive, tape->active_data_request);
2590                 spin_unlock_irqrestore(&tape->spinlock, flags);
2591         }
2592 }
2593
2594 static void idetape_empty_write_pipeline (ide_drive_t *drive)
2595 {
2596         idetape_tape_t *tape = drive->driver_data;
2597         int blocks, min;
2598         struct idetape_bh *bh;
2599
2600         if (tape->chrdev_direction != idetape_direction_write) {
2601                 printk(KERN_ERR "ide-tape: bug: Trying to empty write pipeline, but we are not writing.\n");
2602                 return;
2603         }
2604         if (tape->merge_stage_size > tape->stage_size) {
2605                 printk(KERN_ERR "ide-tape: bug: merge_buffer too big\n");
2606                 tape->merge_stage_size = tape->stage_size;
2607         }
2608         if (tape->merge_stage_size) {
2609                 blocks = tape->merge_stage_size / tape->tape_block_size;
2610                 if (tape->merge_stage_size % tape->tape_block_size) {
2611                         unsigned int i;
2612
2613                         blocks++;
2614                         i = tape->tape_block_size - tape->merge_stage_size % tape->tape_block_size;
2615                         bh = tape->bh->b_reqnext;
2616                         while (bh) {
2617                                 atomic_set(&bh->b_count, 0);
2618                                 bh = bh->b_reqnext;
2619                         }
2620                         bh = tape->bh;
2621                         while (i) {
2622                                 if (bh == NULL) {
2623
2624                                         printk(KERN_INFO "ide-tape: bug, bh NULL\n");
2625                                         break;
2626                                 }
2627                                 min = min(i, (unsigned int)(bh->b_size - atomic_read(&bh->b_count)));
2628                                 memset(bh->b_data + atomic_read(&bh->b_count), 0, min);
2629                                 atomic_add(min, &bh->b_count);
2630                                 i -= min;
2631                                 bh = bh->b_reqnext;
2632                         }
2633                 }
2634                 (void) idetape_add_chrdev_write_request(drive, blocks);
2635                 tape->merge_stage_size = 0;
2636         }
2637         idetape_wait_for_pipeline(drive);
2638         if (tape->merge_stage != NULL) {
2639                 __idetape_kfree_stage(tape->merge_stage);
2640                 tape->merge_stage = NULL;
2641         }
2642         clear_bit(IDETAPE_PIPELINE_ERROR, &tape->flags);
2643         tape->chrdev_direction = idetape_direction_none;
2644
2645         /*
2646          *      On the next backup, perform the feedback loop again.
2647          *      (I don't want to keep sense information between backups,
2648          *       as some systems are constantly on, and the system load
2649          *       can be totally different on the next backup).
2650          */
2651         tape->max_stages = tape->min_pipeline;
2652         if (tape->first_stage != NULL ||
2653             tape->next_stage != NULL ||
2654             tape->last_stage != NULL ||
2655             tape->nr_stages != 0) {
2656                 printk(KERN_ERR "ide-tape: ide-tape pipeline bug, "
2657                         "first_stage %p, next_stage %p, "
2658                         "last_stage %p, nr_stages %d\n",
2659                         tape->first_stage, tape->next_stage,
2660                         tape->last_stage, tape->nr_stages);
2661         }
2662 }
2663
2664 static void idetape_restart_speed_control (ide_drive_t *drive)
2665 {
2666         idetape_tape_t *tape = drive->driver_data;
2667
2668         tape->restart_speed_control_req = 0;
2669         tape->pipeline_head = 0;
2670         tape->controlled_last_pipeline_head = tape->uncontrolled_last_pipeline_head = 0;
2671         tape->controlled_previous_pipeline_head = tape->uncontrolled_previous_pipeline_head = 0;
2672         tape->pipeline_head_speed = tape->controlled_pipeline_head_speed = 5000;
2673         tape->uncontrolled_pipeline_head_speed = 0;
2674         tape->controlled_pipeline_head_time = tape->uncontrolled_pipeline_head_time = jiffies;
2675         tape->controlled_previous_head_time = tape->uncontrolled_previous_head_time = jiffies;
2676 }
2677
2678 static int idetape_initiate_read (ide_drive_t *drive, int max_stages)
2679 {
2680         idetape_tape_t *tape = drive->driver_data;
2681         idetape_stage_t *new_stage;
2682         struct request rq;
2683         int bytes_read;
2684         u16 blocks = *(u16 *)&tape->caps[12];
2685
2686         /* Initialize read operation */
2687         if (tape->chrdev_direction != idetape_direction_read) {
2688                 if (tape->chrdev_direction == idetape_direction_write) {
2689                         idetape_empty_write_pipeline(drive);
2690                         idetape_flush_tape_buffers(drive);
2691                 }
2692                 if (tape->merge_stage || tape->merge_stage_size) {
2693                         printk (KERN_ERR "ide-tape: merge_stage_size should be 0 now\n");
2694                         tape->merge_stage_size = 0;
2695                 }
2696                 if ((tape->merge_stage = __idetape_kmalloc_stage(tape, 0, 0)) == NULL)
2697                         return -ENOMEM;
2698                 tape->chrdev_direction = idetape_direction_read;
2699
2700                 /*
2701                  *      Issue a read 0 command to ensure that DSC handshake
2702                  *      is switched from completion mode to buffer available
2703                  *      mode.
2704                  *      No point in issuing this if DSC overlap isn't supported,
2705                  *      some drives (Seagate STT3401A) will return an error.
2706                  */
2707                 if (drive->dsc_overlap) {
2708                         bytes_read = idetape_queue_rw_tail(drive, REQ_IDETAPE_READ, 0, tape->merge_stage->bh);
2709                         if (bytes_read < 0) {
2710                                 __idetape_kfree_stage(tape->merge_stage);
2711                                 tape->merge_stage = NULL;
2712                                 tape->chrdev_direction = idetape_direction_none;
2713                                 return bytes_read;
2714                         }
2715                 }
2716         }
2717         if (tape->restart_speed_control_req)
2718                 idetape_restart_speed_control(drive);
2719         idetape_init_rq(&rq, REQ_IDETAPE_READ);
2720         rq.sector = tape->first_frame_position;
2721         rq.nr_sectors = rq.current_nr_sectors = blocks;
2722         if (!test_bit(IDETAPE_PIPELINE_ERROR, &tape->flags) &&
2723             tape->nr_stages < max_stages) {
2724                 new_stage = idetape_kmalloc_stage(tape);
2725                 while (new_stage != NULL) {
2726                         new_stage->rq = rq;
2727                         idetape_add_stage_tail(drive, new_stage);
2728                         if (tape->nr_stages >= max_stages)
2729                                 break;
2730                         new_stage = idetape_kmalloc_stage(tape);
2731                 }
2732         }
2733         if (!idetape_pipeline_active(tape)) {
2734                 if (tape->nr_pending_stages >= 3 * max_stages / 4) {
2735                         tape->measure_insert_time = 1;
2736                         tape->insert_time = jiffies;
2737                         tape->insert_size = 0;
2738                         tape->insert_speed = 0;
2739                         idetape_insert_pipeline_into_queue(drive);
2740                 }
2741         }
2742         return 0;
2743 }
2744
2745 /*
2746  *      idetape_add_chrdev_read_request is called from idetape_chrdev_read
2747  *      to service a character device read request and add read-ahead
2748  *      requests to our pipeline.
2749  */
2750 static int idetape_add_chrdev_read_request (ide_drive_t *drive,int blocks)
2751 {
2752         idetape_tape_t *tape = drive->driver_data;
2753         unsigned long flags;
2754         struct request *rq_ptr;
2755         int bytes_read;
2756
2757 #if IDETAPE_DEBUG_LOG
2758         if (tape->debug_level >= 4)
2759                 printk(KERN_INFO "ide-tape: Reached idetape_add_chrdev_read_request, %d blocks\n", blocks);
2760 #endif /* IDETAPE_DEBUG_LOG */
2761
2762         /*
2763          * If we are at a filemark, return a read length of 0
2764          */
2765         if (test_bit(IDETAPE_FILEMARK, &tape->flags))
2766                 return 0;
2767
2768         /*
2769          * Wait for the next block to be available at the head
2770          * of the pipeline
2771          */
2772         idetape_initiate_read(drive, tape->max_stages);
2773         if (tape->first_stage == NULL) {
2774                 if (test_bit(IDETAPE_PIPELINE_ERROR, &tape->flags))
2775                         return 0;
2776                 return idetape_queue_rw_tail(drive, REQ_IDETAPE_READ, blocks, tape->merge_stage->bh);
2777         }
2778         idetape_wait_first_stage(drive);
2779         rq_ptr = &tape->first_stage->rq;
2780         bytes_read = tape->tape_block_size * (rq_ptr->nr_sectors - rq_ptr->current_nr_sectors);
2781         rq_ptr->nr_sectors = rq_ptr->current_nr_sectors = 0;
2782
2783
2784         if (rq_ptr->errors == IDETAPE_ERROR_EOD)
2785                 return 0;
2786         else {
2787                 idetape_switch_buffers(tape, tape->first_stage);
2788                 if (rq_ptr->errors == IDETAPE_ERROR_FILEMARK)
2789                         set_bit(IDETAPE_FILEMARK, &tape->flags);
2790                 spin_lock_irqsave(&tape->spinlock, flags);
2791                 idetape_remove_stage_head(drive);
2792                 spin_unlock_irqrestore(&tape->spinlock, flags);
2793                 tape->pipeline_head++;
2794                 calculate_speeds(drive);
2795         }
2796         if (bytes_read > blocks * tape->tape_block_size) {
2797                 printk(KERN_ERR "ide-tape: bug: trying to return more bytes than requested\n");
2798                 bytes_read = blocks * tape->tape_block_size;
2799         }
2800         return (bytes_read);
2801 }
2802
2803 static void idetape_pad_zeros (ide_drive_t *drive, int bcount)
2804 {
2805         idetape_tape_t *tape = drive->driver_data;
2806         struct idetape_bh *bh;
2807         int blocks;
2808         
2809         while (bcount) {
2810                 unsigned int count;
2811
2812                 bh = tape->merge_stage->bh;
2813                 count = min(tape->stage_size, bcount);
2814                 bcount -= count;
2815                 blocks = count / tape->tape_block_size;
2816                 while (count) {
2817                         atomic_set(&bh->b_count, min(count, (unsigned int)bh->b_size));
2818                         memset(bh->b_data, 0, atomic_read(&bh->b_count));
2819                         count -= atomic_read(&bh->b_count);
2820                         bh = bh->b_reqnext;
2821                 }
2822                 idetape_queue_rw_tail(drive, REQ_IDETAPE_WRITE, blocks, tape->merge_stage->bh);
2823         }
2824 }
2825
2826 static int idetape_pipeline_size (ide_drive_t *drive)
2827 {
2828         idetape_tape_t *tape = drive->driver_data;
2829         idetape_stage_t *stage;
2830         struct request *rq;
2831         int size = 0;
2832
2833         idetape_wait_for_pipeline(drive);
2834         stage = tape->first_stage;
2835         while (stage != NULL) {
2836                 rq = &stage->rq;
2837                 size += tape->tape_block_size * (rq->nr_sectors-rq->current_nr_sectors);
2838                 if (rq->errors == IDETAPE_ERROR_FILEMARK)
2839                         size += tape->tape_block_size;
2840                 stage = stage->next;
2841         }
2842         size += tape->merge_stage_size;
2843         return size;
2844 }
2845
2846 /*
2847  *      Rewinds the tape to the Beginning Of the current Partition (BOP).
2848  *
2849  *      We currently support only one partition.
2850  */ 
2851 static int idetape_rewind_tape (ide_drive_t *drive)
2852 {
2853         int retval;
2854         idetape_pc_t pc;
2855 #if IDETAPE_DEBUG_LOG
2856         idetape_tape_t *tape = drive->driver_data;
2857         if (tape->debug_level >= 2)
2858                 printk(KERN_INFO "ide-tape: Reached idetape_rewind_tape\n");
2859 #endif /* IDETAPE_DEBUG_LOG */  
2860         
2861         idetape_create_rewind_cmd(drive, &pc);
2862         retval = idetape_queue_pc_tail(drive, &pc);
2863         if (retval)
2864                 return retval;
2865
2866         idetape_create_read_position_cmd(&pc);
2867         retval = idetape_queue_pc_tail(drive, &pc);
2868         if (retval)
2869                 return retval;
2870         return 0;
2871 }
2872
2873 /*
2874  *      Our special ide-tape ioctl's.
2875  *
2876  *      Currently there aren't any ioctl's.
2877  *      mtio.h compatible commands should be issued to the character device
2878  *      interface.
2879  */
2880 static int idetape_blkdev_ioctl(ide_drive_t *drive, unsigned int cmd, unsigned long arg)
2881 {
2882         idetape_tape_t *tape = drive->driver_data;
2883         idetape_config_t config;
2884         void __user *argp = (void __user *)arg;
2885
2886 #if IDETAPE_DEBUG_LOG   
2887         if (tape->debug_level >= 4)
2888                 printk(KERN_INFO "ide-tape: Reached idetape_blkdev_ioctl\n");
2889 #endif /* IDETAPE_DEBUG_LOG */
2890         switch (cmd) {
2891                 case 0x0340:
2892                         if (copy_from_user(&config, argp, sizeof (idetape_config_t)))
2893                                 return -EFAULT;
2894                         tape->best_dsc_rw_frequency = config.dsc_rw_frequency;
2895                         tape->max_stages = config.nr_stages;
2896                         break;
2897                 case 0x0350:
2898                         config.dsc_rw_frequency = (int) tape->best_dsc_rw_frequency;
2899                         config.nr_stages = tape->max_stages; 
2900                         if (copy_to_user(argp, &config, sizeof (idetape_config_t)))
2901                                 return -EFAULT;
2902                         break;
2903                 default:
2904                         return -EIO;
2905         }
2906         return 0;
2907 }
2908
2909 /*
2910  *      idetape_space_over_filemarks is now a bit more complicated than just
2911  *      passing the command to the tape since we may have crossed some
2912  *      filemarks during our pipelined read-ahead mode.
2913  *
2914  *      As a minor side effect, the pipeline enables us to support MTFSFM when
2915  *      the filemark is in our internal pipeline even if the tape doesn't
2916  *      support spacing over filemarks in the reverse direction.
2917  */
2918 static int idetape_space_over_filemarks (ide_drive_t *drive,short mt_op,int mt_count)
2919 {
2920         idetape_tape_t *tape = drive->driver_data;
2921         idetape_pc_t pc;
2922         unsigned long flags;
2923         int retval,count=0;
2924         int sprev = !!(tape->caps[4] & 0x20);
2925
2926         if (mt_count == 0)
2927                 return 0;
2928         if (MTBSF == mt_op || MTBSFM == mt_op) {
2929                 if (!sprev)
2930                         return -EIO;
2931                 mt_count = - mt_count;
2932         }
2933
2934         if (tape->chrdev_direction == idetape_direction_read) {
2935                 /*
2936                  *      We have a read-ahead buffer. Scan it for crossed
2937                  *      filemarks.
2938                  */
2939                 tape->merge_stage_size = 0;
2940                 if (test_and_clear_bit(IDETAPE_FILEMARK, &tape->flags))
2941                         ++count;
2942                 while (tape->first_stage != NULL) {
2943                         if (count == mt_count) {
2944                                 if (mt_op == MTFSFM)
2945                                         set_bit(IDETAPE_FILEMARK, &tape->flags);
2946                                 return 0;
2947                         }
2948                         spin_lock_irqsave(&tape->spinlock, flags);
2949                         if (tape->first_stage == tape->active_stage) {
2950                                 /*
2951                                  *      We have reached the active stage in the read pipeline.
2952                                  *      There is no point in allowing the drive to continue
2953                                  *      reading any farther, so we stop the pipeline.
2954                                  *
2955                                  *      This section should be moved to a separate subroutine,
2956                                  *      because a similar function is performed in
2957                                  *      __idetape_discard_read_pipeline(), for example.
2958                                  */
2959                                 tape->next_stage = NULL;
2960                                 spin_unlock_irqrestore(&tape->spinlock, flags);
2961                                 idetape_wait_first_stage(drive);
2962                                 tape->next_stage = tape->first_stage->next;
2963                         } else
2964                                 spin_unlock_irqrestore(&tape->spinlock, flags);
2965                         if (tape->first_stage->rq.errors == IDETAPE_ERROR_FILEMARK)
2966                                 ++count;
2967                         idetape_remove_stage_head(drive);
2968                 }
2969                 idetape_discard_read_pipeline(drive, 0);
2970         }
2971
2972         /*
2973          *      The filemark was not found in our internal pipeline.
2974          *      Now we can issue the space command.
2975          */
2976         switch (mt_op) {
2977                 case MTFSF:
2978                 case MTBSF:
2979                         idetape_create_space_cmd(&pc,mt_count-count,IDETAPE_SPACE_OVER_FILEMARK);
2980                         return (idetape_queue_pc_tail(drive, &pc));
2981                 case MTFSFM:
2982                 case MTBSFM:
2983                         if (!sprev)
2984                                 return (-EIO);
2985                         retval = idetape_space_over_filemarks(drive, MTFSF, mt_count-count);
2986                         if (retval) return (retval);
2987                         count = (MTBSFM == mt_op ? 1 : -1);
2988                         return (idetape_space_over_filemarks(drive, MTFSF, count));
2989                 default:
2990                         printk(KERN_ERR "ide-tape: MTIO operation %d not supported\n",mt_op);
2991                         return (-EIO);
2992         }
2993 }
2994
2995
2996 /*
2997  *      Our character device read / write functions.
2998  *
2999  *      The tape is optimized to maximize throughput when it is transferring
3000  *      an integral number of the "continuous transfer limit", which is
3001  *      a parameter of the specific tape (26 KB on my particular tape).
3002  *      (32 kB for Onstream)
3003  *
3004  *      As of version 1.3 of the driver, the character device provides an
3005  *      abstract continuous view of the media - any mix of block sizes (even 1
3006  *      byte) on the same backup/restore procedure is supported. The driver
3007  *      will internally convert the requests to the recommended transfer unit,
3008  *      so that an unmatch between the user's block size to the recommended
3009  *      size will only result in a (slightly) increased driver overhead, but
3010  *      will no longer hit performance.
3011  *      This is not applicable to Onstream.
3012  */
3013 static ssize_t idetape_chrdev_read (struct file *file, char __user *buf,
3014                                     size_t count, loff_t *ppos)
3015 {
3016         struct ide_tape_obj *tape = ide_tape_f(file);
3017         ide_drive_t *drive = tape->drive;
3018         ssize_t bytes_read,temp, actually_read = 0, rc;
3019         ssize_t ret = 0;
3020         u16 ctl = *(u16 *)&tape->caps[12];
3021
3022 #if IDETAPE_DEBUG_LOG
3023         if (tape->debug_level >= 3)
3024                 printk(KERN_INFO "ide-tape: Reached idetape_chrdev_read, count %Zd\n", count);
3025 #endif /* IDETAPE_DEBUG_LOG */
3026
3027         if (tape->chrdev_direction != idetape_direction_read) {
3028                 if (test_bit(IDETAPE_DETECT_BS, &tape->flags))
3029                         if (count > tape->tape_block_size &&
3030                             (count % tape->tape_block_size) == 0)
3031                                 tape->user_bs_factor = count / tape->tape_block_size;
3032         }
3033         if ((rc = idetape_initiate_read(drive, tape->max_stages)) < 0)
3034                 return rc;
3035         if (count == 0)
3036                 return (0);
3037         if (tape->merge_stage_size) {
3038                 actually_read = min((unsigned int)(tape->merge_stage_size), (unsigned int)count);
3039                 if (idetape_copy_stage_to_user(tape, buf, tape->merge_stage, actually_read))
3040                         ret = -EFAULT;
3041                 buf += actually_read;
3042                 tape->merge_stage_size -= actually_read;
3043                 count -= actually_read;
3044         }
3045         while (count >= tape->stage_size) {
3046                 bytes_read = idetape_add_chrdev_read_request(drive, ctl);
3047                 if (bytes_read <= 0)
3048                         goto finish;
3049                 if (idetape_copy_stage_to_user(tape, buf, tape->merge_stage, bytes_read))
3050                         ret = -EFAULT;
3051                 buf += bytes_read;
3052                 count -= bytes_read;
3053                 actually_read += bytes_read;
3054         }
3055         if (count) {
3056                 bytes_read = idetape_add_chrdev_read_request(drive, ctl);
3057                 if (bytes_read <= 0)
3058                         goto finish;
3059                 temp = min((unsigned long)count, (unsigned long)bytes_read);
3060                 if (idetape_copy_stage_to_user(tape, buf, tape->merge_stage, temp))
3061                         ret = -EFAULT;
3062                 actually_read += temp;
3063                 tape->merge_stage_size = bytes_read-temp;
3064         }
3065 finish:
3066         if (!actually_read && test_bit(IDETAPE_FILEMARK, &tape->flags)) {
3067 #if IDETAPE_DEBUG_LOG
3068                 if (tape->debug_level >= 2)
3069                         printk(KERN_INFO "ide-tape: %s: spacing over filemark\n", tape->name);
3070 #endif
3071                 idetape_space_over_filemarks(drive, MTFSF, 1);
3072                 return 0;
3073         }
3074
3075         return (ret) ? ret : actually_read;
3076 }
3077
3078 static ssize_t idetape_chrdev_write (struct file *file, const char __user *buf,
3079                                      size_t count, loff_t *ppos)
3080 {
3081         struct ide_tape_obj *tape = ide_tape_f(file);
3082         ide_drive_t *drive = tape->drive;
3083         ssize_t actually_written = 0;
3084         ssize_t ret = 0;
3085         u16 ctl = *(u16 *)&tape->caps[12];
3086
3087         /* The drive is write protected. */
3088         if (tape->write_prot)
3089                 return -EACCES;
3090
3091 #if IDETAPE_DEBUG_LOG
3092         if (tape->debug_level >= 3)
3093                 printk(KERN_INFO "ide-tape: Reached idetape_chrdev_write, "
3094                         "count %Zd\n", count);
3095 #endif /* IDETAPE_DEBUG_LOG */
3096
3097         /* Initialize write operation */
3098         if (tape->chrdev_direction != idetape_direction_write) {
3099                 if (tape->chrdev_direction == idetape_direction_read)
3100                         idetape_discard_read_pipeline(drive, 1);
3101                 if (tape->merge_stage || tape->merge_stage_size) {
3102                         printk(KERN_ERR "ide-tape: merge_stage_size "
3103                                 "should be 0 now\n");
3104                         tape->merge_stage_size = 0;
3105                 }
3106                 if ((tape->merge_stage = __idetape_kmalloc_stage(tape, 0, 0)) == NULL)
3107                         return -ENOMEM;
3108                 tape->chrdev_direction = idetape_direction_write;
3109                 idetape_init_merge_stage(tape);
3110
3111                 /*
3112                  *      Issue a write 0 command to ensure that DSC handshake
3113                  *      is switched from completion mode to buffer available
3114                  *      mode.
3115                  *      No point in issuing this if DSC overlap isn't supported,
3116                  *      some drives (Seagate STT3401A) will return an error.
3117                  */
3118                 if (drive->dsc_overlap) {
3119                         ssize_t retval = idetape_queue_rw_tail(drive, REQ_IDETAPE_WRITE, 0, tape->merge_stage->bh);
3120                         if (retval < 0) {
3121                                 __idetape_kfree_stage(tape->merge_stage);
3122                                 tape->merge_stage = NULL;
3123                                 tape->chrdev_direction = idetape_direction_none;
3124                                 return retval;
3125                         }
3126                 }
3127         }
3128         if (count == 0)
3129                 return (0);
3130         if (tape->restart_speed_control_req)
3131                 idetape_restart_speed_control(drive);
3132         if (tape->merge_stage_size) {
3133                 if (tape->merge_stage_size >= tape->stage_size) {
3134                         printk(KERN_ERR "ide-tape: bug: merge buffer too big\n");
3135                         tape->merge_stage_size = 0;
3136                 }
3137                 actually_written = min((unsigned int)(tape->stage_size - tape->merge_stage_size), (unsigned int)count);
3138                 if (idetape_copy_stage_from_user(tape, tape->merge_stage, buf, actually_written))
3139                                 ret = -EFAULT;
3140                 buf += actually_written;
3141                 tape->merge_stage_size += actually_written;
3142                 count -= actually_written;
3143
3144                 if (tape->merge_stage_size == tape->stage_size) {
3145                         ssize_t retval;
3146                         tape->merge_stage_size = 0;
3147                         retval = idetape_add_chrdev_write_request(drive, ctl);
3148                         if (retval <= 0)
3149                                 return (retval);
3150                 }
3151         }
3152         while (count >= tape->stage_size) {
3153                 ssize_t retval;
3154                 if (idetape_copy_stage_from_user(tape, tape->merge_stage, buf, tape->stage_size))
3155                         ret = -EFAULT;
3156                 buf += tape->stage_size;
3157                 count -= tape->stage_size;
3158                 retval = idetape_add_chrdev_write_request(drive, ctl);
3159                 actually_written += tape->stage_size;
3160                 if (retval <= 0)
3161                         return (retval);
3162         }
3163         if (count) {
3164                 actually_written += count;
3165                 if (idetape_copy_stage_from_user(tape, tape->merge_stage, buf, count))
3166                         ret = -EFAULT;
3167                 tape->merge_stage_size += count;
3168         }
3169         return (ret) ? ret : actually_written;
3170 }
3171
3172 static int idetape_write_filemark (ide_drive_t *drive)
3173 {
3174         idetape_pc_t pc;
3175
3176         /* Write a filemark */
3177         idetape_create_write_filemark_cmd(drive, &pc, 1);
3178         if (idetape_queue_pc_tail(drive, &pc)) {
3179                 printk(KERN_ERR "ide-tape: Couldn't write a filemark\n");
3180                 return -EIO;
3181         }
3182         return 0;
3183 }
3184
3185 /*
3186  *      idetape_mtioctop is called from idetape_chrdev_ioctl when
3187  *      the general mtio MTIOCTOP ioctl is requested.
3188  *
3189  *      We currently support the following mtio.h operations:
3190  *
3191  *      MTFSF   -       Space over mt_count filemarks in the positive direction.
3192  *                      The tape is positioned after the last spaced filemark.
3193  *
3194  *      MTFSFM  -       Same as MTFSF, but the tape is positioned before the
3195  *                      last filemark.
3196  *
3197  *      MTBSF   -       Steps background over mt_count filemarks, tape is
3198  *                      positioned before the last filemark.
3199  *
3200  *      MTBSFM  -       Like MTBSF, only tape is positioned after the last filemark.
3201  *
3202  *      Note:
3203  *
3204  *              MTBSF and MTBSFM are not supported when the tape doesn't
3205  *              support spacing over filemarks in the reverse direction.
3206  *              In this case, MTFSFM is also usually not supported (it is
3207  *              supported in the rare case in which we crossed the filemark
3208  *              during our read-ahead pipelined operation mode).
3209  *              
3210  *      MTWEOF  -       Writes mt_count filemarks. Tape is positioned after
3211  *                      the last written filemark.
3212  *
3213  *      MTREW   -       Rewinds tape.
3214  *
3215  *      MTLOAD  -       Loads the tape.
3216  *
3217  *      MTOFFL  -       Puts the tape drive "Offline": Rewinds the tape and
3218  *      MTUNLOAD        prevents further access until the media is replaced.
3219  *
3220  *      MTNOP   -       Flushes tape buffers.
3221  *
3222  *      MTRETEN -       Retension media. This typically consists of one end
3223  *                      to end pass on the media.
3224  *
3225  *      MTEOM   -       Moves to the end of recorded data.
3226  *
3227  *      MTERASE -       Erases tape.
3228  *
3229  *      MTSETBLK -      Sets the user block size to mt_count bytes. If
3230  *                      mt_count is 0, we will attempt to autodetect
3231  *                      the block size.
3232  *
3233  *      MTSEEK  -       Positions the tape in a specific block number, where
3234  *                      each block is assumed to contain which user_block_size
3235  *                      bytes.
3236  *
3237  *      MTSETPART -     Switches to another tape partition.
3238  *
3239  *      MTLOCK -        Locks the tape door.
3240  *
3241  *      MTUNLOCK -      Unlocks the tape door.
3242  *
3243  *      The following commands are currently not supported:
3244  *
3245  *      MTFSS, MTBSS, MTWSM, MTSETDENSITY,
3246  *      MTSETDRVBUFFER, MT_ST_BOOLEANS, MT_ST_WRITE_THRESHOLD.
3247  */
3248 static int idetape_mtioctop (ide_drive_t *drive,short mt_op,int mt_count)
3249 {
3250         idetape_tape_t *tape = drive->driver_data;
3251         idetape_pc_t pc;
3252         int i,retval;
3253
3254 #if IDETAPE_DEBUG_LOG
3255         if (tape->debug_level >= 1)
3256                 printk(KERN_INFO "ide-tape: Handling MTIOCTOP ioctl: "
3257                         "mt_op=%d, mt_count=%d\n", mt_op, mt_count);
3258 #endif /* IDETAPE_DEBUG_LOG */
3259         /*
3260          *      Commands which need our pipelined read-ahead stages.
3261          */
3262         switch (mt_op) {
3263                 case MTFSF:
3264                 case MTFSFM:
3265                 case MTBSF:
3266                 case MTBSFM:
3267                         if (!mt_count)
3268                                 return (0);
3269                         return (idetape_space_over_filemarks(drive,mt_op,mt_count));
3270                 default:
3271                         break;
3272         }
3273         switch (mt_op) {
3274                 case MTWEOF:
3275                         if (tape->write_prot)
3276                                 return -EACCES;
3277                         idetape_discard_read_pipeline(drive, 1);
3278                         for (i = 0; i < mt_count; i++) {
3279                                 retval = idetape_write_filemark(drive);
3280                                 if (retval)
3281                                         return retval;
3282                         }
3283                         return (0);
3284                 case MTREW:
3285                         idetape_discard_read_pipeline(drive, 0);
3286                         if (idetape_rewind_tape(drive))
3287                                 return -EIO;
3288                         return 0;
3289                 case MTLOAD:
3290                         idetape_discard_read_pipeline(drive, 0);
3291                         idetape_create_load_unload_cmd(drive, &pc, IDETAPE_LU_LOAD_MASK);
3292                         return (idetape_queue_pc_tail(drive, &pc));
3293                 case MTUNLOAD:
3294                 case MTOFFL:
3295                         /*
3296                          * If door is locked, attempt to unlock before
3297                          * attempting to eject.
3298                          */
3299                         if (tape->door_locked) {
3300                                 if (idetape_create_prevent_cmd(drive, &pc, 0))
3301                                         if (!idetape_queue_pc_tail(drive, &pc))
3302                                                 tape->door_locked = DOOR_UNLOCKED;
3303                         }
3304                         idetape_discard_read_pipeline(drive, 0);
3305                         idetape_create_load_unload_cmd(drive, &pc,!IDETAPE_LU_LOAD_MASK);
3306                         retval = idetape_queue_pc_tail(drive, &pc);
3307                         if (!retval)
3308                                 clear_bit(IDETAPE_MEDIUM_PRESENT, &tape->flags);
3309                         return retval;
3310                 case MTNOP:
3311                         idetape_discard_read_pipeline(drive, 0);
3312                         return (idetape_flush_tape_buffers(drive));
3313                 case MTRETEN:
3314                         idetape_discard_read_pipeline(drive, 0);
3315                         idetape_create_load_unload_cmd(drive, &pc,IDETAPE_LU_RETENSION_MASK | IDETAPE_LU_LOAD_MASK);
3316                         return (idetape_queue_pc_tail(drive, &pc));
3317                 case MTEOM:
3318                         idetape_create_space_cmd(&pc, 0, IDETAPE_SPACE_TO_EOD);
3319                         return (idetape_queue_pc_tail(drive, &pc));
3320                 case MTERASE:
3321                         (void) idetape_rewind_tape(drive);
3322                         idetape_create_erase_cmd(&pc);
3323                         return (idetape_queue_pc_tail(drive, &pc));
3324                 case MTSETBLK:
3325                         if (mt_count) {
3326                                 if (mt_count < tape->tape_block_size || mt_count % tape->tape_block_size)
3327                                         return -EIO;
3328                                 tape->user_bs_factor = mt_count / tape->tape_block_size;
3329                                 clear_bit(IDETAPE_DETECT_BS, &tape->flags);
3330                         } else
3331                                 set_bit(IDETAPE_DETECT_BS, &tape->flags);
3332                         return 0;
3333                 case MTSEEK:
3334                         idetape_discard_read_pipeline(drive, 0);
3335                         return idetape_position_tape(drive, mt_count * tape->user_bs_factor, tape->partition, 0);
3336                 case MTSETPART:
3337                         idetape_discard_read_pipeline(drive, 0);
3338                         return (idetape_position_tape(drive, 0, mt_count, 0));
3339                 case MTFSR:
3340                 case MTBSR:
3341                 case MTLOCK:
3342                         if (!idetape_create_prevent_cmd(drive, &pc, 1))
3343                                 return 0;
3344                         retval = idetape_queue_pc_tail(drive, &pc);
3345                         if (retval) return retval;
3346                         tape->door_locked = DOOR_EXPLICITLY_LOCKED;
3347                         return 0;
3348                 case MTUNLOCK:
3349                         if (!idetape_create_prevent_cmd(drive, &pc, 0))
3350                                 return 0;
3351                         retval = idetape_queue_pc_tail(drive, &pc);
3352                         if (retval) return retval;
3353                         tape->door_locked = DOOR_UNLOCKED;
3354                         return 0;
3355                 default:
3356                         printk(KERN_ERR "ide-tape: MTIO operation %d not "
3357                                 "supported\n", mt_op);
3358                         return (-EIO);
3359         }
3360 }
3361
3362 /*
3363  *      Our character device ioctls.
3364  *
3365  *      General mtio.h magnetic io commands are supported here, and not in
3366  *      the corresponding block interface.
3367  *
3368  *      The following ioctls are supported:
3369  *
3370  *      MTIOCTOP -      Refer to idetape_mtioctop for detailed description.
3371  *
3372  *      MTIOCGET -      The mt_dsreg field in the returned mtget structure
3373  *                      will be set to (user block size in bytes <<
3374  *                      MT_ST_BLKSIZE_SHIFT) & MT_ST_BLKSIZE_MASK.
3375  *
3376  *                      The mt_blkno is set to the current user block number.
3377  *                      The other mtget fields are not supported.
3378  *
3379  *      MTIOCPOS -      The current tape "block position" is returned. We
3380  *                      assume that each block contains user_block_size
3381  *                      bytes.
3382  *
3383  *      Our own ide-tape ioctls are supported on both interfaces.
3384  */
3385 static int idetape_chrdev_ioctl (struct inode *inode, struct file *file, unsigned int cmd, unsigned long arg)
3386 {
3387         struct ide_tape_obj *tape = ide_tape_f(file);
3388         ide_drive_t *drive = tape->drive;
3389         struct mtop mtop;
3390         struct mtget mtget;
3391         struct mtpos mtpos;
3392         int block_offset = 0, position = tape->first_frame_position;
3393         void __user *argp = (void __user *)arg;
3394
3395 #if IDETAPE_DEBUG_LOG
3396         if (tape->debug_level >= 3)
3397                 printk(KERN_INFO "ide-tape: Reached idetape_chrdev_ioctl, "
3398                         "cmd=%u\n", cmd);
3399 #endif /* IDETAPE_DEBUG_LOG */
3400
3401         tape->restart_speed_control_req = 1;
3402         if (tape->chrdev_direction == idetape_direction_write) {
3403                 idetape_empty_write_pipeline(drive);
3404                 idetape_flush_tape_buffers(drive);
3405         }
3406         if (cmd == MTIOCGET || cmd == MTIOCPOS) {
3407                 block_offset = idetape_pipeline_size(drive) / (tape->tape_block_size * tape->user_bs_factor);
3408                 if ((position = idetape_read_position(drive)) < 0)
3409                         return -EIO;
3410         }
3411         switch (cmd) {
3412                 case MTIOCTOP:
3413                         if (copy_from_user(&mtop, argp, sizeof (struct mtop)))
3414                                 return -EFAULT;
3415                         return (idetape_mtioctop(drive,mtop.mt_op,mtop.mt_count));
3416                 case MTIOCGET:
3417                         memset(&mtget, 0, sizeof (struct mtget));
3418                         mtget.mt_type = MT_ISSCSI2;
3419                         mtget.mt_blkno = position / tape->user_bs_factor - block_offset;
3420                         mtget.mt_dsreg = ((tape->tape_block_size * tape->user_bs_factor) << MT_ST_BLKSIZE_SHIFT) & MT_ST_BLKSIZE_MASK;
3421                         if (tape->drv_write_prot) {
3422                                 mtget.mt_gstat |= GMT_WR_PROT(0xffffffff);
3423                         }
3424                         if (copy_to_user(argp, &mtget, sizeof(struct mtget)))
3425                                 return -EFAULT;
3426                         return 0;
3427                 case MTIOCPOS:
3428                         mtpos.mt_blkno = position / tape->user_bs_factor - block_offset;
3429                         if (copy_to_user(argp, &mtpos, sizeof(struct mtpos)))
3430                                 return -EFAULT;
3431                         return 0;
3432                 default:
3433                         if (tape->chrdev_direction == idetape_direction_read)
3434                                 idetape_discard_read_pipeline(drive, 1);
3435                         return idetape_blkdev_ioctl(drive, cmd, arg);
3436         }
3437 }
3438
3439 /*
3440  * Do a mode sense page 0 with block descriptor and if it succeeds set the tape
3441  * block size with the reported value.
3442  */
3443 static void ide_tape_get_bsize_from_bdesc(ide_drive_t *drive)
3444 {
3445         idetape_tape_t *tape = drive->driver_data;
3446         idetape_pc_t pc;
3447
3448         idetape_create_mode_sense_cmd(&pc, IDETAPE_BLOCK_DESCRIPTOR);
3449         if (idetape_queue_pc_tail(drive, &pc)) {
3450                 printk(KERN_ERR "ide-tape: Can't get block descriptor\n");
3451                 if (tape->tape_block_size == 0) {
3452                         printk(KERN_WARNING "ide-tape: Cannot deal with zero "
3453                                             "block size, assuming 32k\n");
3454                         tape->tape_block_size = 32768;
3455                 }
3456                 return;
3457         }
3458         tape->tape_block_size = (pc.buffer[4 + 5] << 16) +
3459                                 (pc.buffer[4 + 6] << 8)  +
3460                                  pc.buffer[4 + 7];
3461         tape->drv_write_prot = (pc.buffer[2] & 0x80) >> 7;
3462 }
3463
3464 /*
3465  *      Our character device open function.
3466  */
3467 static int idetape_chrdev_open (struct inode *inode, struct file *filp)
3468 {
3469         unsigned int minor = iminor(inode), i = minor & ~0xc0;
3470         ide_drive_t *drive;
3471         idetape_tape_t *tape;
3472         idetape_pc_t pc;
3473         int retval;
3474
3475         /*
3476          * We really want to do nonseekable_open(inode, filp); here, but some
3477          * versions of tar incorrectly call lseek on tapes and bail out if that
3478          * fails.  So we disallow pread() and pwrite(), but permit lseeks.
3479          */
3480         filp->f_mode &= ~(FMODE_PREAD | FMODE_PWRITE);
3481
3482 #if IDETAPE_DEBUG_LOG
3483         printk(KERN_INFO "ide-tape: Reached idetape_chrdev_open\n");
3484 #endif /* IDETAPE_DEBUG_LOG */
3485         
3486         if (i >= MAX_HWIFS * MAX_DRIVES)
3487                 return -ENXIO;
3488
3489         if (!(tape = ide_tape_chrdev_get(i)))
3490                 return -ENXIO;
3491
3492         drive = tape->drive;
3493
3494         filp->private_data = tape;
3495
3496         if (test_and_set_bit(IDETAPE_BUSY, &tape->flags)) {
3497                 retval = -EBUSY;
3498                 goto out_put_tape;
3499         }
3500
3501         retval = idetape_wait_ready(drive, 60 * HZ);
3502         if (retval) {
3503                 clear_bit(IDETAPE_BUSY, &tape->flags);
3504                 printk(KERN_ERR "ide-tape: %s: drive not ready\n", tape->name);
3505                 goto out_put_tape;
3506         }
3507
3508         idetape_read_position(drive);
3509         if (!test_bit(IDETAPE_ADDRESS_VALID, &tape->flags))
3510                 (void)idetape_rewind_tape(drive);
3511
3512         if (tape->chrdev_direction != idetape_direction_read)
3513                 clear_bit(IDETAPE_PIPELINE_ERROR, &tape->flags);
3514
3515         /* Read block size and write protect status from drive. */
3516         ide_tape_get_bsize_from_bdesc(drive);
3517
3518         /* Set write protect flag if device is opened as read-only. */
3519         if ((filp->f_flags & O_ACCMODE) == O_RDONLY)
3520                 tape->write_prot = 1;
3521         else
3522                 tape->write_prot = tape->drv_write_prot;
3523
3524         /* Make sure drive isn't write protected if user wants to write. */
3525         if (tape->write_prot) {
3526                 if ((filp->f_flags & O_ACCMODE) == O_WRONLY ||
3527                     (filp->f_flags & O_ACCMODE) == O_RDWR) {
3528                         clear_bit(IDETAPE_BUSY, &tape->flags);
3529                         retval = -EROFS;
3530                         goto out_put_tape;
3531                 }
3532         }
3533
3534         /*
3535          * Lock the tape drive door so user can't eject.
3536          */
3537         if (tape->chrdev_direction == idetape_direction_none) {
3538                 if (idetape_create_prevent_cmd(drive, &pc, 1)) {
3539                         if (!idetape_queue_pc_tail(drive, &pc)) {
3540                                 if (tape->door_locked != DOOR_EXPLICITLY_LOCKED)
3541                                         tape->door_locked = DOOR_LOCKED;
3542                         }
3543                 }
3544         }
3545         idetape_restart_speed_control(drive);
3546         tape->restart_speed_control_req = 0;
3547         return 0;
3548
3549 out_put_tape:
3550         ide_tape_put(tape);
3551         return retval;
3552 }
3553
3554 static void idetape_write_release (ide_drive_t *drive, unsigned int minor)
3555 {
3556         idetape_tape_t *tape = drive->driver_data;
3557
3558         idetape_empty_write_pipeline(drive);
3559         tape->merge_stage = __idetape_kmalloc_stage(tape, 1, 0);
3560         if (tape->merge_stage != NULL) {
3561                 idetape_pad_zeros(drive, tape->tape_block_size * (tape->user_bs_factor - 1));
3562                 __idetape_kfree_stage(tape->merge_stage);
3563                 tape->merge_stage = NULL;
3564         }
3565         idetape_write_filemark(drive);
3566         idetape_flush_tape_buffers(drive);
3567         idetape_flush_tape_buffers(drive);
3568 }
3569
3570 /*
3571  *      Our character device release function.
3572  */
3573 static int idetape_chrdev_release (struct inode *inode, struct file *filp)
3574 {
3575         struct ide_tape_obj *tape = ide_tape_f(filp);
3576         ide_drive_t *drive = tape->drive;
3577         idetape_pc_t pc;
3578         unsigned int minor = iminor(inode);
3579
3580         lock_kernel();
3581         tape = drive->driver_data;
3582 #if IDETAPE_DEBUG_LOG
3583         if (tape->debug_level >= 3)
3584                 printk(KERN_INFO "ide-tape: Reached idetape_chrdev_release\n");
3585 #endif /* IDETAPE_DEBUG_LOG */
3586
3587         if (tape->chrdev_direction == idetape_direction_write)
3588                 idetape_write_release(drive, minor);
3589         if (tape->chrdev_direction == idetape_direction_read) {
3590                 if (minor < 128)
3591                         idetape_discard_read_pipeline(drive, 1);
3592                 else
3593                         idetape_wait_for_pipeline(drive);
3594         }
3595         if (tape->cache_stage != NULL) {
3596                 __idetape_kfree_stage(tape->cache_stage);
3597                 tape->cache_stage = NULL;
3598         }
3599         if (minor < 128 && test_bit(IDETAPE_MEDIUM_PRESENT, &tape->flags))
3600                 (void) idetape_rewind_tape(drive);
3601         if (tape->chrdev_direction == idetape_direction_none) {
3602                 if (tape->door_locked == DOOR_LOCKED) {
3603                         if (idetape_create_prevent_cmd(drive, &pc, 0)) {
3604                                 if (!idetape_queue_pc_tail(drive, &pc))
3605                                         tape->door_locked = DOOR_UNLOCKED;
3606                         }
3607                 }
3608         }
3609         clear_bit(IDETAPE_BUSY, &tape->flags);
3610         ide_tape_put(tape);
3611         unlock_kernel();
3612         return 0;
3613 }
3614
3615 /*
3616  *      idetape_identify_device is called to check the contents of the
3617  *      ATAPI IDENTIFY command results. We return:
3618  *
3619  *      1       If the tape can be supported by us, based on the information
3620  *              we have so far.
3621  *
3622  *      0       If this tape driver is not currently supported by us.
3623  */
3624 static int idetape_identify_device (ide_drive_t *drive)
3625 {
3626         struct idetape_id_gcw gcw;
3627         struct hd_driveid *id = drive->id;
3628
3629         if (drive->id_read == 0)
3630                 return 1;
3631
3632         *((unsigned short *) &gcw) = id->config;
3633
3634         /* Check that we can support this device */
3635
3636         if (gcw.protocol != 2)
3637                 printk(KERN_ERR "ide-tape: Protocol (0x%02x) is not ATAPI\n",
3638                                 gcw.protocol);
3639         else if (gcw.device_type != 1)
3640                 printk(KERN_ERR "ide-tape: Device type (0x%02x) is not set "
3641                                 "to tape\n", gcw.device_type);
3642         else if (!gcw.removable)
3643                 printk(KERN_ERR "ide-tape: The removable flag is not set\n");
3644         else if (gcw.packet_size != 0) {
3645                 printk(KERN_ERR "ide-tape: Packet size (0x%02x) is not 12 "
3646                                 "bytes long\n", gcw.packet_size);
3647         } else
3648                 return 1;
3649         return 0;
3650 }
3651
3652 static void idetape_get_inquiry_results(ide_drive_t *drive)
3653 {
3654         char *r;
3655         idetape_tape_t *tape = drive->driver_data;
3656         idetape_pc_t pc;
3657
3658         idetape_create_inquiry_cmd(&pc);
3659         if (idetape_queue_pc_tail(drive, &pc)) {
3660                 printk(KERN_ERR "ide-tape: %s: can't get INQUIRY results\n",
3661                                 tape->name);
3662                 return;
3663         }
3664         memcpy(tape->vendor_id, &pc.buffer[8], 8);
3665         memcpy(tape->product_id, &pc.buffer[16], 16);
3666         memcpy(tape->firmware_revision, &pc.buffer[32], 4);
3667
3668         ide_fixstring(tape->vendor_id, 10, 0);
3669         ide_fixstring(tape->product_id, 18, 0);
3670         ide_fixstring(tape->firmware_revision, 6, 0);
3671         r = tape->firmware_revision;
3672         if (*(r + 1) == '.')
3673                 tape->firmware_revision_num = (*r - '0') * 100 +
3674                         (*(r + 2) - '0') * 10 + *(r + 3) - '0';
3675         printk(KERN_INFO "ide-tape: %s <-> %s: %s %s rev %s\n",
3676                         drive->name, tape->name, tape->vendor_id,
3677                         tape->product_id, tape->firmware_revision);
3678 }
3679
3680 /*
3681  * Ask the tape about its various parameters. In particular, we will adjust our
3682  * data transfer buffer size to the recommended value as returned by the tape.
3683  */
3684 static void idetape_get_mode_sense_results (ide_drive_t *drive)
3685 {
3686         idetape_tape_t *tape = drive->driver_data;
3687         idetape_pc_t pc;
3688         u8 *caps;
3689         u8 speed, max_speed;
3690
3691         idetape_create_mode_sense_cmd(&pc, IDETAPE_CAPABILITIES_PAGE);
3692         if (idetape_queue_pc_tail(drive, &pc)) {
3693                 printk(KERN_ERR "ide-tape: Can't get tape parameters - assuming"
3694                                 " some default values\n");
3695                 tape->tape_block_size = 512;
3696                 put_unaligned(52,   (u16 *)&tape->caps[12]);
3697                 put_unaligned(540,  (u16 *)&tape->caps[14]);
3698                 put_unaligned(6*52, (u16 *)&tape->caps[16]);
3699                 return;
3700         }
3701         caps = pc.buffer + 4 + pc.buffer[3];
3702
3703         /* convert to host order and save for later use */
3704         speed = be16_to_cpu(*(u16 *)&caps[14]);
3705         max_speed = be16_to_cpu(*(u16 *)&caps[8]);
3706
3707         put_unaligned(max_speed, (u16 *)&caps[8]);
3708         put_unaligned(be16_to_cpu(*(u16 *)&caps[12]), (u16 *)&caps[12]);
3709         put_unaligned(speed, (u16 *)&caps[14]);
3710         put_unaligned(be16_to_cpu(*(u16 *)&caps[16]), (u16 *)&caps[16]);
3711
3712         if (!speed) {
3713                 printk(KERN_INFO "ide-tape: %s: invalid tape speed "
3714                                 "(assuming 650KB/sec)\n", drive->name);
3715                 put_unaligned(650, (u16 *)&caps[14]);
3716         }
3717         if (!max_speed) {
3718                 printk(KERN_INFO "ide-tape: %s: invalid max_speed "
3719                                 "(assuming 650KB/sec)\n", drive->name);
3720                 put_unaligned(650, (u16 *)&caps[8]);
3721         }
3722
3723         memcpy(&tape->caps, caps, 20);
3724         if (caps[7] & 0x02)
3725                 tape->tape_block_size = 512;
3726         else if (caps[7] & 0x04)
3727                 tape->tape_block_size = 1024;
3728 }
3729
3730 #ifdef CONFIG_IDE_PROC_FS
3731 static void idetape_add_settings (ide_drive_t *drive)
3732 {
3733         idetape_tape_t *tape = drive->driver_data;
3734
3735 /*
3736  *                      drive   setting name            read/write      data type       min                     max                     mul_factor                      div_factor      data pointer                            set function
3737  */
3738         ide_add_setting(drive, "buffer", SETTING_READ, TYPE_SHORT, 0, 0xffff,
3739                         1, 2, (u16 *)&tape->caps[16], NULL);
3740         ide_add_setting(drive,  "pipeline_min",         SETTING_RW,     TYPE_INT,       1,                      0xffff,                 tape->stage_size / 1024,        1,              &tape->min_pipeline,                    NULL);
3741         ide_add_setting(drive,  "pipeline",             SETTING_RW,     TYPE_INT,       1,                      0xffff,                 tape->stage_size / 1024,        1,              &tape->max_stages,                      NULL);
3742         ide_add_setting(drive,  "pipeline_max",         SETTING_RW,     TYPE_INT,       1,                      0xffff,                 tape->stage_size / 1024,        1,              &tape->max_pipeline,                    NULL);
3743         ide_add_setting(drive,  "pipeline_used",        SETTING_READ,   TYPE_INT,       0,                      0xffff,                 tape->stage_size / 1024,        1,              &tape->nr_stages,                       NULL);
3744         ide_add_setting(drive,  "pipeline_pending",     SETTING_READ,   TYPE_INT,       0,                      0xffff,                 tape->stage_size / 1024,        1,              &tape->nr_pending_stages,               NULL);
3745         ide_add_setting(drive, "speed", SETTING_READ, TYPE_SHORT, 0, 0xffff,
3746                         1, 1, (u16 *)&tape->caps[14], NULL);
3747         ide_add_setting(drive,  "stage",                SETTING_READ,   TYPE_INT,       0,                      0xffff,                 1,                              1024,           &tape->stage_size,                      NULL);
3748         ide_add_setting(drive,  "tdsc",                 SETTING_RW,     TYPE_INT,       IDETAPE_DSC_RW_MIN,     IDETAPE_DSC_RW_MAX,     1000,                           HZ,             &tape->best_dsc_rw_frequency,           NULL);
3749         ide_add_setting(drive,  "dsc_overlap",          SETTING_RW,     TYPE_BYTE,      0,                      1,                      1,                              1,              &drive->dsc_overlap,                    NULL);
3750         ide_add_setting(drive,  "pipeline_head_speed_c",SETTING_READ,   TYPE_INT,       0,                      0xffff,                 1,                              1,              &tape->controlled_pipeline_head_speed,  NULL);
3751         ide_add_setting(drive,  "pipeline_head_speed_u",SETTING_READ,   TYPE_INT,       0,                      0xffff,                 1,                              1,              &tape->uncontrolled_pipeline_head_speed,NULL);
3752         ide_add_setting(drive,  "avg_speed",            SETTING_READ,   TYPE_INT,       0,                      0xffff,                 1,                              1,              &tape->avg_speed,                       NULL);
3753         ide_add_setting(drive,  "debug_level",          SETTING_RW,     TYPE_INT,       0,                      0xffff,                 1,                              1,              &tape->debug_level,                     NULL);
3754 }
3755 #else
3756 static inline void idetape_add_settings(ide_drive_t *drive) { ; }
3757 #endif
3758
3759 /*
3760  *      ide_setup is called to:
3761  *
3762  *              1.      Initialize our various state variables.
3763  *              2.      Ask the tape for its capabilities.
3764  *              3.      Allocate a buffer which will be used for data
3765  *                      transfer. The buffer size is chosen based on
3766  *                      the recommendation which we received in step (2).
3767  *
3768  *      Note that at this point ide.c already assigned us an irq, so that
3769  *      we can queue requests here and wait for their completion.
3770  */
3771 static void idetape_setup (ide_drive_t *drive, idetape_tape_t *tape, int minor)
3772 {
3773         unsigned long t1, tmid, tn, t;
3774         int speed;
3775         struct idetape_id_gcw gcw;
3776         int stage_size;
3777         struct sysinfo si;
3778         u16 *ctl = (u16 *)&tape->caps[12];
3779
3780         spin_lock_init(&tape->spinlock);
3781         drive->dsc_overlap = 1;
3782         if (drive->hwif->host_flags & IDE_HFLAG_NO_DSC) {
3783                 printk(KERN_INFO "ide-tape: %s: disabling DSC overlap\n",
3784                                  tape->name);
3785                 drive->dsc_overlap = 0;
3786         }
3787         /* Seagate Travan drives do not support DSC overlap. */
3788         if (strstr(drive->id->model, "Seagate STT3401"))
3789                 drive->dsc_overlap = 0;
3790         tape->minor = minor;
3791         tape->name[0] = 'h';
3792         tape->name[1] = 't';
3793         tape->name[2] = '0' + minor;
3794         tape->chrdev_direction = idetape_direction_none;
3795         tape->pc = tape->pc_stack;
3796         tape->max_insert_speed = 10000;
3797         tape->speed_control = 1;
3798         *((unsigned short *) &gcw) = drive->id->config;
3799         if (gcw.drq_type == 1)
3800                 set_bit(IDETAPE_DRQ_INTERRUPT, &tape->flags);
3801
3802         tape->min_pipeline = tape->max_pipeline = tape->max_stages = 10;
3803         
3804         idetape_get_inquiry_results(drive);
3805         idetape_get_mode_sense_results(drive);
3806         ide_tape_get_bsize_from_bdesc(drive);
3807         tape->user_bs_factor = 1;
3808         tape->stage_size = *ctl * tape->tape_block_size;
3809         while (tape->stage_size > 0xffff) {
3810                 printk(KERN_NOTICE "ide-tape: decreasing stage size\n");
3811                 *ctl /= 2;
3812                 tape->stage_size = *ctl * tape->tape_block_size;
3813         }
3814         stage_size = tape->stage_size;
3815         tape->pages_per_stage = stage_size / PAGE_SIZE;
3816         if (stage_size % PAGE_SIZE) {
3817                 tape->pages_per_stage++;
3818                 tape->excess_bh_size = PAGE_SIZE - stage_size % PAGE_SIZE;
3819         }
3820
3821         /* Select the "best" DSC read/write polling freq and pipeline size. */
3822         speed = max(*(u16 *)&tape->caps[14], *(u16 *)&tape->caps[8]);
3823
3824         tape->max_stages = speed * 1000 * 10 / tape->stage_size;
3825
3826         /*
3827          *      Limit memory use for pipeline to 10% of physical memory
3828          */
3829         si_meminfo(&si);
3830         if (tape->max_stages * tape->stage_size > si.totalram * si.mem_unit / 10)
3831                 tape->max_stages = si.totalram * si.mem_unit / (10 * tape->stage_size);
3832         tape->max_stages   = min(tape->max_stages, IDETAPE_MAX_PIPELINE_STAGES);
3833         tape->min_pipeline = min(tape->max_stages, IDETAPE_MIN_PIPELINE_STAGES);
3834         tape->max_pipeline = min(tape->max_stages * 2, IDETAPE_MAX_PIPELINE_STAGES);
3835         if (tape->max_stages == 0)
3836                 tape->max_stages = tape->min_pipeline = tape->max_pipeline = 1;
3837
3838         t1 = (tape->stage_size * HZ) / (speed * 1000);
3839         tmid = (*(u16 *)&tape->caps[16] * 32 * HZ) / (speed * 125);
3840         tn = (IDETAPE_FIFO_THRESHOLD * tape->stage_size * HZ) / (speed * 1000);
3841
3842         if (tape->max_stages)
3843                 t = tn;
3844         else
3845                 t = t1;
3846
3847         /*
3848          *      Ensure that the number we got makes sense; limit
3849          *      it within IDETAPE_DSC_RW_MIN and IDETAPE_DSC_RW_MAX.
3850          */
3851         tape->best_dsc_rw_frequency = max_t(unsigned long, min_t(unsigned long, t, IDETAPE_DSC_RW_MAX), IDETAPE_DSC_RW_MIN);
3852         printk(KERN_INFO "ide-tape: %s <-> %s: %dKBps, %d*%dkB buffer, "
3853                 "%dkB pipeline, %lums tDSC%s\n",
3854                 drive->name, tape->name, *(u16 *)&tape->caps[14],
3855                 (*(u16 *)&tape->caps[16] * 512) / tape->stage_size,
3856                 tape->stage_size / 1024,
3857                 tape->max_stages * tape->stage_size / 1024,
3858                 tape->best_dsc_rw_frequency * 1000 / HZ,
3859                 drive->using_dma ? ", DMA":"");
3860
3861         idetape_add_settings(drive);
3862 }
3863
3864 static void ide_tape_remove(ide_drive_t *drive)
3865 {
3866         idetape_tape_t *tape = drive->driver_data;
3867
3868         ide_proc_unregister_driver(drive, tape->driver);
3869
3870         ide_unregister_region(tape->disk);
3871
3872         ide_tape_put(tape);
3873 }
3874
3875 static void ide_tape_release(struct kref *kref)
3876 {
3877         struct ide_tape_obj *tape = to_ide_tape(kref);
3878         ide_drive_t *drive = tape->drive;
3879         struct gendisk *g = tape->disk;
3880
3881         BUG_ON(tape->first_stage != NULL || tape->merge_stage_size);
3882
3883         drive->dsc_overlap = 0;
3884         drive->driver_data = NULL;
3885         device_destroy(idetape_sysfs_class, MKDEV(IDETAPE_MAJOR, tape->minor));
3886         device_destroy(idetape_sysfs_class, MKDEV(IDETAPE_MAJOR, tape->minor + 128));
3887         idetape_devs[tape->minor] = NULL;
3888         g->private_data = NULL;
3889         put_disk(g);
3890         kfree(tape);
3891 }
3892
3893 #ifdef CONFIG_IDE_PROC_FS
3894 static int proc_idetape_read_name
3895         (char *page, char **start, off_t off, int count, int *eof, void *data)
3896 {
3897         ide_drive_t     *drive = (ide_drive_t *) data;
3898         idetape_tape_t  *tape = drive->driver_data;
3899         char            *out = page;
3900         int             len;
3901
3902         len = sprintf(out, "%s\n", tape->name);
3903         PROC_IDE_READ_RETURN(page, start, off, count, eof, len);
3904 }
3905
3906 static ide_proc_entry_t idetape_proc[] = {
3907         { "capacity",   S_IFREG|S_IRUGO,        proc_ide_read_capacity, NULL },
3908         { "name",       S_IFREG|S_IRUGO,        proc_idetape_read_name, NULL },
3909         { NULL, 0, NULL, NULL }
3910 };
3911 #endif
3912
3913 static int ide_tape_probe(ide_drive_t *);
3914
3915 static ide_driver_t idetape_driver = {
3916         .gen_driver = {
3917                 .owner          = THIS_MODULE,
3918                 .name           = "ide-tape",
3919                 .bus            = &ide_bus_type,
3920         },
3921         .probe                  = ide_tape_probe,
3922         .remove                 = ide_tape_remove,
3923         .version                = IDETAPE_VERSION,
3924         .media                  = ide_tape,
3925         .supports_dsc_overlap   = 1,
3926         .do_request             = idetape_do_request,
3927         .end_request            = idetape_end_request,
3928         .error                  = __ide_error,
3929         .abort                  = __ide_abort,
3930 #ifdef CONFIG_IDE_PROC_FS
3931         .proc                   = idetape_proc,
3932 #endif
3933 };
3934
3935 /*
3936  *      Our character device supporting functions, passed to register_chrdev.
3937  */
3938 static const struct file_operations idetape_fops = {
3939         .owner          = THIS_MODULE,
3940         .read           = idetape_chrdev_read,
3941         .write          = idetape_chrdev_write,
3942         .ioctl          = idetape_chrdev_ioctl,
3943         .open           = idetape_chrdev_open,
3944         .release        = idetape_chrdev_release,
3945 };
3946
3947 static int idetape_open(struct inode *inode, struct file *filp)
3948 {
3949         struct gendisk *disk = inode->i_bdev->bd_disk;
3950         struct ide_tape_obj *tape;
3951
3952         if (!(tape = ide_tape_get(disk)))
3953                 return -ENXIO;
3954
3955         return 0;
3956 }
3957
3958 static int idetape_release(struct inode *inode, struct file *filp)
3959 {
3960         struct gendisk *disk = inode->i_bdev->bd_disk;
3961         struct ide_tape_obj *tape = ide_tape_g(disk);
3962
3963         ide_tape_put(tape);
3964
3965         return 0;
3966 }
3967
3968 static int idetape_ioctl(struct inode *inode, struct file *file,
3969                         unsigned int cmd, unsigned long arg)
3970 {
3971         struct block_device *bdev = inode->i_bdev;
3972         struct ide_tape_obj *tape = ide_tape_g(bdev->bd_disk);
3973         ide_drive_t *drive = tape->drive;
3974         int err = generic_ide_ioctl(drive, file, bdev, cmd, arg);
3975         if (err == -EINVAL)
3976                 err = idetape_blkdev_ioctl(drive, cmd, arg);
3977         return err;
3978 }
3979
3980 static struct block_device_operations idetape_block_ops = {
3981         .owner          = THIS_MODULE,
3982         .open           = idetape_open,
3983         .release        = idetape_release,
3984         .ioctl          = idetape_ioctl,
3985 };
3986
3987 static int ide_tape_probe(ide_drive_t *drive)
3988 {
3989         idetape_tape_t *tape;
3990         struct gendisk *g;
3991         int minor;
3992
3993         if (!strstr("ide-tape", drive->driver_req))
3994                 goto failed;
3995         if (!drive->present)
3996                 goto failed;
3997         if (drive->media != ide_tape)
3998                 goto failed;
3999         if (!idetape_identify_device (drive)) {
4000                 printk(KERN_ERR "ide-tape: %s: not supported by this version of ide-tape\n", drive->name);
4001                 goto failed;
4002         }
4003         if (drive->scsi) {
4004                 printk("ide-tape: passing drive %s to ide-scsi emulation.\n", drive->name);
4005                 goto failed;
4006         }
4007         if (strstr(drive->id->model, "OnStream DI-")) {
4008                 printk(KERN_WARNING "ide-tape: Use drive %s with ide-scsi emulation and osst.\n", drive->name);
4009                 printk(KERN_WARNING "ide-tape: OnStream support will be removed soon from ide-tape!\n");
4010         }
4011         tape = kzalloc(sizeof (idetape_tape_t), GFP_KERNEL);
4012         if (tape == NULL) {
4013                 printk(KERN_ERR "ide-tape: %s: Can't allocate a tape structure\n", drive->name);
4014                 goto failed;
4015         }
4016
4017         g = alloc_disk(1 << PARTN_BITS);
4018         if (!g)
4019                 goto out_free_tape;
4020
4021         ide_init_disk(g, drive);
4022
4023         ide_proc_register_driver(drive, &idetape_driver);
4024
4025         kref_init(&tape->kref);
4026
4027         tape->drive = drive;
4028         tape->driver = &idetape_driver;
4029         tape->disk = g;
4030
4031         g->private_data = &tape->driver;
4032
4033         drive->driver_data = tape;
4034
4035         mutex_lock(&idetape_ref_mutex);
4036         for (minor = 0; idetape_devs[minor]; minor++)
4037                 ;
4038         idetape_devs[minor] = tape;
4039         mutex_unlock(&idetape_ref_mutex);
4040
4041         idetape_setup(drive, tape, minor);
4042
4043         device_create(idetape_sysfs_class, &drive->gendev,
4044                       MKDEV(IDETAPE_MAJOR, minor), "%s", tape->name);
4045         device_create(idetape_sysfs_class, &drive->gendev,
4046                         MKDEV(IDETAPE_MAJOR, minor + 128), "n%s", tape->name);
4047
4048         g->fops = &idetape_block_ops;
4049         ide_register_region(g);
4050
4051         return 0;
4052
4053 out_free_tape:
4054         kfree(tape);
4055 failed:
4056         return -ENODEV;
4057 }
4058
4059 MODULE_DESCRIPTION("ATAPI Streaming TAPE Driver");
4060 MODULE_LICENSE("GPL");
4061
4062 static void __exit idetape_exit (void)
4063 {
4064         driver_unregister(&idetape_driver.gen_driver);
4065         class_destroy(idetape_sysfs_class);
4066         unregister_chrdev(IDETAPE_MAJOR, "ht");
4067 }
4068
4069 static int __init idetape_init(void)
4070 {
4071         int error = 1;
4072         idetape_sysfs_class = class_create(THIS_MODULE, "ide_tape");
4073         if (IS_ERR(idetape_sysfs_class)) {
4074                 idetape_sysfs_class = NULL;
4075                 printk(KERN_ERR "Unable to create sysfs class for ide tapes\n");
4076                 error = -EBUSY;
4077                 goto out;
4078         }
4079
4080         if (register_chrdev(IDETAPE_MAJOR, "ht", &idetape_fops)) {
4081                 printk(KERN_ERR "ide-tape: Failed to register character device interface\n");
4082                 error = -EBUSY;
4083                 goto out_free_class;
4084         }
4085
4086         error = driver_register(&idetape_driver.gen_driver);
4087         if (error)
4088                 goto out_free_driver;
4089
4090         return 0;
4091
4092 out_free_driver:
4093         driver_unregister(&idetape_driver.gen_driver);
4094 out_free_class:
4095         class_destroy(idetape_sysfs_class);
4096 out:
4097         return error;
4098 }
4099
4100 MODULE_ALIAS("ide:*m-tape*");
4101 module_init(idetape_init);
4102 module_exit(idetape_exit);
4103 MODULE_ALIAS_CHARDEV_MAJOR(IDETAPE_MAJOR);