Merge git://git.kernel.org/pub/scm/linux/kernel/git/davem/net-2.6
[pandora-kernel.git] / drivers / ide / ide-iops.c
1 /*
2  *  Copyright (C) 2000-2002     Andre Hedrick <andre@linux-ide.org>
3  *  Copyright (C) 2003          Red Hat <alan@redhat.com>
4  *
5  */
6
7 #include <linux/module.h>
8 #include <linux/types.h>
9 #include <linux/string.h>
10 #include <linux/kernel.h>
11 #include <linux/timer.h>
12 #include <linux/mm.h>
13 #include <linux/interrupt.h>
14 #include <linux/major.h>
15 #include <linux/errno.h>
16 #include <linux/genhd.h>
17 #include <linux/blkpg.h>
18 #include <linux/slab.h>
19 #include <linux/pci.h>
20 #include <linux/delay.h>
21 #include <linux/hdreg.h>
22 #include <linux/ide.h>
23 #include <linux/bitops.h>
24 #include <linux/nmi.h>
25
26 #include <asm/byteorder.h>
27 #include <asm/irq.h>
28 #include <asm/uaccess.h>
29 #include <asm/io.h>
30
31 /*
32  *      Conventional PIO operations for ATA devices
33  */
34
35 static u8 ide_inb (unsigned long port)
36 {
37         return (u8) inb(port);
38 }
39
40 static u16 ide_inw (unsigned long port)
41 {
42         return (u16) inw(port);
43 }
44
45 static void ide_insw (unsigned long port, void *addr, u32 count)
46 {
47         insw(port, addr, count);
48 }
49
50 static void ide_insl (unsigned long port, void *addr, u32 count)
51 {
52         insl(port, addr, count);
53 }
54
55 static void ide_outb (u8 val, unsigned long port)
56 {
57         outb(val, port);
58 }
59
60 static void ide_outbsync (ide_drive_t *drive, u8 addr, unsigned long port)
61 {
62         outb(addr, port);
63 }
64
65 static void ide_outw (u16 val, unsigned long port)
66 {
67         outw(val, port);
68 }
69
70 static void ide_outsw (unsigned long port, void *addr, u32 count)
71 {
72         outsw(port, addr, count);
73 }
74
75 static void ide_outsl (unsigned long port, void *addr, u32 count)
76 {
77         outsl(port, addr, count);
78 }
79
80 void default_hwif_iops (ide_hwif_t *hwif)
81 {
82         hwif->OUTB      = ide_outb;
83         hwif->OUTBSYNC  = ide_outbsync;
84         hwif->OUTW      = ide_outw;
85         hwif->OUTSW     = ide_outsw;
86         hwif->OUTSL     = ide_outsl;
87         hwif->INB       = ide_inb;
88         hwif->INW       = ide_inw;
89         hwif->INSW      = ide_insw;
90         hwif->INSL      = ide_insl;
91 }
92
93 /*
94  *      MMIO operations, typically used for SATA controllers
95  */
96
97 static u8 ide_mm_inb (unsigned long port)
98 {
99         return (u8) readb((void __iomem *) port);
100 }
101
102 static u16 ide_mm_inw (unsigned long port)
103 {
104         return (u16) readw((void __iomem *) port);
105 }
106
107 static void ide_mm_insw (unsigned long port, void *addr, u32 count)
108 {
109         __ide_mm_insw((void __iomem *) port, addr, count);
110 }
111
112 static void ide_mm_insl (unsigned long port, void *addr, u32 count)
113 {
114         __ide_mm_insl((void __iomem *) port, addr, count);
115 }
116
117 static void ide_mm_outb (u8 value, unsigned long port)
118 {
119         writeb(value, (void __iomem *) port);
120 }
121
122 static void ide_mm_outbsync (ide_drive_t *drive, u8 value, unsigned long port)
123 {
124         writeb(value, (void __iomem *) port);
125 }
126
127 static void ide_mm_outw (u16 value, unsigned long port)
128 {
129         writew(value, (void __iomem *) port);
130 }
131
132 static void ide_mm_outsw (unsigned long port, void *addr, u32 count)
133 {
134         __ide_mm_outsw((void __iomem *) port, addr, count);
135 }
136
137 static void ide_mm_outsl (unsigned long port, void *addr, u32 count)
138 {
139         __ide_mm_outsl((void __iomem *) port, addr, count);
140 }
141
142 void default_hwif_mmiops (ide_hwif_t *hwif)
143 {
144         hwif->OUTB      = ide_mm_outb;
145         /* Most systems will need to override OUTBSYNC, alas however
146            this one is controller specific! */
147         hwif->OUTBSYNC  = ide_mm_outbsync;
148         hwif->OUTW      = ide_mm_outw;
149         hwif->OUTSW     = ide_mm_outsw;
150         hwif->OUTSL     = ide_mm_outsl;
151         hwif->INB       = ide_mm_inb;
152         hwif->INW       = ide_mm_inw;
153         hwif->INSW      = ide_mm_insw;
154         hwif->INSL      = ide_mm_insl;
155 }
156
157 EXPORT_SYMBOL(default_hwif_mmiops);
158
159 void SELECT_DRIVE (ide_drive_t *drive)
160 {
161         if (HWIF(drive)->selectproc)
162                 HWIF(drive)->selectproc(drive);
163         HWIF(drive)->OUTB(drive->select.all, IDE_SELECT_REG);
164 }
165
166 void SELECT_MASK (ide_drive_t *drive, int mask)
167 {
168         if (HWIF(drive)->maskproc)
169                 HWIF(drive)->maskproc(drive, mask);
170 }
171
172 /*
173  * Some localbus EIDE interfaces require a special access sequence
174  * when using 32-bit I/O instructions to transfer data.  We call this
175  * the "vlb_sync" sequence, which consists of three successive reads
176  * of the sector count register location, with interrupts disabled
177  * to ensure that the reads all happen together.
178  */
179 static void ata_vlb_sync(ide_drive_t *drive, unsigned long port)
180 {
181         (void) HWIF(drive)->INB(port);
182         (void) HWIF(drive)->INB(port);
183         (void) HWIF(drive)->INB(port);
184 }
185
186 /*
187  * This is used for most PIO data transfers *from* the IDE interface
188  */
189 static void ata_input_data(ide_drive_t *drive, void *buffer, u32 wcount)
190 {
191         ide_hwif_t *hwif        = HWIF(drive);
192         u8 io_32bit             = drive->io_32bit;
193
194         if (io_32bit) {
195                 if (io_32bit & 2) {
196                         unsigned long flags;
197                         local_irq_save(flags);
198                         ata_vlb_sync(drive, IDE_NSECTOR_REG);
199                         hwif->INSL(IDE_DATA_REG, buffer, wcount);
200                         local_irq_restore(flags);
201                 } else
202                         hwif->INSL(IDE_DATA_REG, buffer, wcount);
203         } else {
204                 hwif->INSW(IDE_DATA_REG, buffer, wcount<<1);
205         }
206 }
207
208 /*
209  * This is used for most PIO data transfers *to* the IDE interface
210  */
211 static void ata_output_data(ide_drive_t *drive, void *buffer, u32 wcount)
212 {
213         ide_hwif_t *hwif        = HWIF(drive);
214         u8 io_32bit             = drive->io_32bit;
215
216         if (io_32bit) {
217                 if (io_32bit & 2) {
218                         unsigned long flags;
219                         local_irq_save(flags);
220                         ata_vlb_sync(drive, IDE_NSECTOR_REG);
221                         hwif->OUTSL(IDE_DATA_REG, buffer, wcount);
222                         local_irq_restore(flags);
223                 } else
224                         hwif->OUTSL(IDE_DATA_REG, buffer, wcount);
225         } else {
226                 hwif->OUTSW(IDE_DATA_REG, buffer, wcount<<1);
227         }
228 }
229
230 /*
231  * The following routines are mainly used by the ATAPI drivers.
232  *
233  * These routines will round up any request for an odd number of bytes,
234  * so if an odd bytecount is specified, be sure that there's at least one
235  * extra byte allocated for the buffer.
236  */
237
238 static void atapi_input_bytes(ide_drive_t *drive, void *buffer, u32 bytecount)
239 {
240         ide_hwif_t *hwif = HWIF(drive);
241
242         ++bytecount;
243 #if defined(CONFIG_ATARI) || defined(CONFIG_Q40)
244         if (MACH_IS_ATARI || MACH_IS_Q40) {
245                 /* Atari has a byte-swapped IDE interface */
246                 insw_swapw(IDE_DATA_REG, buffer, bytecount / 2);
247                 return;
248         }
249 #endif /* CONFIG_ATARI || CONFIG_Q40 */
250         hwif->ata_input_data(drive, buffer, bytecount / 4);
251         if ((bytecount & 0x03) >= 2)
252                 hwif->INSW(IDE_DATA_REG, ((u8 *)buffer)+(bytecount & ~0x03), 1);
253 }
254
255 static void atapi_output_bytes(ide_drive_t *drive, void *buffer, u32 bytecount)
256 {
257         ide_hwif_t *hwif = HWIF(drive);
258
259         ++bytecount;
260 #if defined(CONFIG_ATARI) || defined(CONFIG_Q40)
261         if (MACH_IS_ATARI || MACH_IS_Q40) {
262                 /* Atari has a byte-swapped IDE interface */
263                 outsw_swapw(IDE_DATA_REG, buffer, bytecount / 2);
264                 return;
265         }
266 #endif /* CONFIG_ATARI || CONFIG_Q40 */
267         hwif->ata_output_data(drive, buffer, bytecount / 4);
268         if ((bytecount & 0x03) >= 2)
269                 hwif->OUTSW(IDE_DATA_REG, ((u8*)buffer)+(bytecount & ~0x03), 1);
270 }
271
272 void default_hwif_transport(ide_hwif_t *hwif)
273 {
274         hwif->ata_input_data            = ata_input_data;
275         hwif->ata_output_data           = ata_output_data;
276         hwif->atapi_input_bytes         = atapi_input_bytes;
277         hwif->atapi_output_bytes        = atapi_output_bytes;
278 }
279
280 void ide_fix_driveid (struct hd_driveid *id)
281 {
282 #ifndef __LITTLE_ENDIAN
283 # ifdef __BIG_ENDIAN
284         int i;
285         u16 *stringcast;
286
287         id->config         = __le16_to_cpu(id->config);
288         id->cyls           = __le16_to_cpu(id->cyls);
289         id->reserved2      = __le16_to_cpu(id->reserved2);
290         id->heads          = __le16_to_cpu(id->heads);
291         id->track_bytes    = __le16_to_cpu(id->track_bytes);
292         id->sector_bytes   = __le16_to_cpu(id->sector_bytes);
293         id->sectors        = __le16_to_cpu(id->sectors);
294         id->vendor0        = __le16_to_cpu(id->vendor0);
295         id->vendor1        = __le16_to_cpu(id->vendor1);
296         id->vendor2        = __le16_to_cpu(id->vendor2);
297         stringcast = (u16 *)&id->serial_no[0];
298         for (i = 0; i < (20/2); i++)
299                 stringcast[i] = __le16_to_cpu(stringcast[i]);
300         id->buf_type       = __le16_to_cpu(id->buf_type);
301         id->buf_size       = __le16_to_cpu(id->buf_size);
302         id->ecc_bytes      = __le16_to_cpu(id->ecc_bytes);
303         stringcast = (u16 *)&id->fw_rev[0];
304         for (i = 0; i < (8/2); i++)
305                 stringcast[i] = __le16_to_cpu(stringcast[i]);
306         stringcast = (u16 *)&id->model[0];
307         for (i = 0; i < (40/2); i++)
308                 stringcast[i] = __le16_to_cpu(stringcast[i]);
309         id->dword_io       = __le16_to_cpu(id->dword_io);
310         id->reserved50     = __le16_to_cpu(id->reserved50);
311         id->field_valid    = __le16_to_cpu(id->field_valid);
312         id->cur_cyls       = __le16_to_cpu(id->cur_cyls);
313         id->cur_heads      = __le16_to_cpu(id->cur_heads);
314         id->cur_sectors    = __le16_to_cpu(id->cur_sectors);
315         id->cur_capacity0  = __le16_to_cpu(id->cur_capacity0);
316         id->cur_capacity1  = __le16_to_cpu(id->cur_capacity1);
317         id->lba_capacity   = __le32_to_cpu(id->lba_capacity);
318         id->dma_1word      = __le16_to_cpu(id->dma_1word);
319         id->dma_mword      = __le16_to_cpu(id->dma_mword);
320         id->eide_pio_modes = __le16_to_cpu(id->eide_pio_modes);
321         id->eide_dma_min   = __le16_to_cpu(id->eide_dma_min);
322         id->eide_dma_time  = __le16_to_cpu(id->eide_dma_time);
323         id->eide_pio       = __le16_to_cpu(id->eide_pio);
324         id->eide_pio_iordy = __le16_to_cpu(id->eide_pio_iordy);
325         for (i = 0; i < 2; ++i)
326                 id->words69_70[i] = __le16_to_cpu(id->words69_70[i]);
327         for (i = 0; i < 4; ++i)
328                 id->words71_74[i] = __le16_to_cpu(id->words71_74[i]);
329         id->queue_depth    = __le16_to_cpu(id->queue_depth);
330         for (i = 0; i < 4; ++i)
331                 id->words76_79[i] = __le16_to_cpu(id->words76_79[i]);
332         id->major_rev_num  = __le16_to_cpu(id->major_rev_num);
333         id->minor_rev_num  = __le16_to_cpu(id->minor_rev_num);
334         id->command_set_1  = __le16_to_cpu(id->command_set_1);
335         id->command_set_2  = __le16_to_cpu(id->command_set_2);
336         id->cfsse          = __le16_to_cpu(id->cfsse);
337         id->cfs_enable_1   = __le16_to_cpu(id->cfs_enable_1);
338         id->cfs_enable_2   = __le16_to_cpu(id->cfs_enable_2);
339         id->csf_default    = __le16_to_cpu(id->csf_default);
340         id->dma_ultra      = __le16_to_cpu(id->dma_ultra);
341         id->trseuc         = __le16_to_cpu(id->trseuc);
342         id->trsEuc         = __le16_to_cpu(id->trsEuc);
343         id->CurAPMvalues   = __le16_to_cpu(id->CurAPMvalues);
344         id->mprc           = __le16_to_cpu(id->mprc);
345         id->hw_config      = __le16_to_cpu(id->hw_config);
346         id->acoustic       = __le16_to_cpu(id->acoustic);
347         id->msrqs          = __le16_to_cpu(id->msrqs);
348         id->sxfert         = __le16_to_cpu(id->sxfert);
349         id->sal            = __le16_to_cpu(id->sal);
350         id->spg            = __le32_to_cpu(id->spg);
351         id->lba_capacity_2 = __le64_to_cpu(id->lba_capacity_2);
352         for (i = 0; i < 22; i++)
353                 id->words104_125[i]   = __le16_to_cpu(id->words104_125[i]);
354         id->last_lun       = __le16_to_cpu(id->last_lun);
355         id->word127        = __le16_to_cpu(id->word127);
356         id->dlf            = __le16_to_cpu(id->dlf);
357         id->csfo           = __le16_to_cpu(id->csfo);
358         for (i = 0; i < 26; i++)
359                 id->words130_155[i] = __le16_to_cpu(id->words130_155[i]);
360         id->word156        = __le16_to_cpu(id->word156);
361         for (i = 0; i < 3; i++)
362                 id->words157_159[i] = __le16_to_cpu(id->words157_159[i]);
363         id->cfa_power      = __le16_to_cpu(id->cfa_power);
364         for (i = 0; i < 14; i++)
365                 id->words161_175[i] = __le16_to_cpu(id->words161_175[i]);
366         for (i = 0; i < 31; i++)
367                 id->words176_205[i] = __le16_to_cpu(id->words176_205[i]);
368         for (i = 0; i < 48; i++)
369                 id->words206_254[i] = __le16_to_cpu(id->words206_254[i]);
370         id->integrity_word  = __le16_to_cpu(id->integrity_word);
371 # else
372 #  error "Please fix <asm/byteorder.h>"
373 # endif
374 #endif
375 }
376
377 /*
378  * ide_fixstring() cleans up and (optionally) byte-swaps a text string,
379  * removing leading/trailing blanks and compressing internal blanks.
380  * It is primarily used to tidy up the model name/number fields as
381  * returned by the WIN_[P]IDENTIFY commands.
382  */
383
384 void ide_fixstring (u8 *s, const int bytecount, const int byteswap)
385 {
386         u8 *p = s, *end = &s[bytecount & ~1]; /* bytecount must be even */
387
388         if (byteswap) {
389                 /* convert from big-endian to host byte order */
390                 for (p = end ; p != s;) {
391                         unsigned short *pp = (unsigned short *) (p -= 2);
392                         *pp = ntohs(*pp);
393                 }
394         }
395         /* strip leading blanks */
396         while (s != end && *s == ' ')
397                 ++s;
398         /* compress internal blanks and strip trailing blanks */
399         while (s != end && *s) {
400                 if (*s++ != ' ' || (s != end && *s && *s != ' '))
401                         *p++ = *(s-1);
402         }
403         /* wipe out trailing garbage */
404         while (p != end)
405                 *p++ = '\0';
406 }
407
408 EXPORT_SYMBOL(ide_fixstring);
409
410 /*
411  * Needed for PCI irq sharing
412  */
413 int drive_is_ready (ide_drive_t *drive)
414 {
415         ide_hwif_t *hwif        = HWIF(drive);
416         u8 stat                 = 0;
417
418         if (drive->waiting_for_dma)
419                 return hwif->ide_dma_test_irq(drive);
420
421 #if 0
422         /* need to guarantee 400ns since last command was issued */
423         udelay(1);
424 #endif
425
426         /*
427          * We do a passive status test under shared PCI interrupts on
428          * cards that truly share the ATA side interrupt, but may also share
429          * an interrupt with another pci card/device.  We make no assumptions
430          * about possible isa-pnp and pci-pnp issues yet.
431          */
432         if (IDE_CONTROL_REG)
433                 stat = hwif->INB(IDE_ALTSTATUS_REG);
434         else
435                 /* Note: this may clear a pending IRQ!! */
436                 stat = hwif->INB(IDE_STATUS_REG);
437
438         if (stat & BUSY_STAT)
439                 /* drive busy:  definitely not interrupting */
440                 return 0;
441
442         /* drive ready: *might* be interrupting */
443         return 1;
444 }
445
446 EXPORT_SYMBOL(drive_is_ready);
447
448 /*
449  * This routine busy-waits for the drive status to be not "busy".
450  * It then checks the status for all of the "good" bits and none
451  * of the "bad" bits, and if all is okay it returns 0.  All other
452  * cases return error -- caller may then invoke ide_error().
453  *
454  * This routine should get fixed to not hog the cpu during extra long waits..
455  * That could be done by busy-waiting for the first jiffy or two, and then
456  * setting a timer to wake up at half second intervals thereafter,
457  * until timeout is achieved, before timing out.
458  */
459 static int __ide_wait_stat(ide_drive_t *drive, u8 good, u8 bad, unsigned long timeout, u8 *rstat)
460 {
461         ide_hwif_t *hwif = drive->hwif;
462         unsigned long flags;
463         int i;
464         u8 stat;
465
466         udelay(1);      /* spec allows drive 400ns to assert "BUSY" */
467         if ((stat = hwif->INB(IDE_STATUS_REG)) & BUSY_STAT) {
468                 local_irq_set(flags);
469                 timeout += jiffies;
470                 while ((stat = hwif->INB(IDE_STATUS_REG)) & BUSY_STAT) {
471                         if (time_after(jiffies, timeout)) {
472                                 /*
473                                  * One last read after the timeout in case
474                                  * heavy interrupt load made us not make any
475                                  * progress during the timeout..
476                                  */
477                                 stat = hwif->INB(IDE_STATUS_REG);
478                                 if (!(stat & BUSY_STAT))
479                                         break;
480
481                                 local_irq_restore(flags);
482                                 *rstat = stat;
483                                 return -EBUSY;
484                         }
485                 }
486                 local_irq_restore(flags);
487         }
488         /*
489          * Allow status to settle, then read it again.
490          * A few rare drives vastly violate the 400ns spec here,
491          * so we'll wait up to 10usec for a "good" status
492          * rather than expensively fail things immediately.
493          * This fix courtesy of Matthew Faupel & Niccolo Rigacci.
494          */
495         for (i = 0; i < 10; i++) {
496                 udelay(1);
497                 if (OK_STAT((stat = hwif->INB(IDE_STATUS_REG)), good, bad)) {
498                         *rstat = stat;
499                         return 0;
500                 }
501         }
502         *rstat = stat;
503         return -EFAULT;
504 }
505
506 /*
507  * In case of error returns error value after doing "*startstop = ide_error()".
508  * The caller should return the updated value of "startstop" in this case,
509  * "startstop" is unchanged when the function returns 0.
510  */
511 int ide_wait_stat(ide_startstop_t *startstop, ide_drive_t *drive, u8 good, u8 bad, unsigned long timeout)
512 {
513         int err;
514         u8 stat;
515
516         /* bail early if we've exceeded max_failures */
517         if (drive->max_failures && (drive->failures > drive->max_failures)) {
518                 *startstop = ide_stopped;
519                 return 1;
520         }
521
522         err = __ide_wait_stat(drive, good, bad, timeout, &stat);
523
524         if (err) {
525                 char *s = (err == -EBUSY) ? "status timeout" : "status error";
526                 *startstop = ide_error(drive, s, stat);
527         }
528
529         return err;
530 }
531
532 EXPORT_SYMBOL(ide_wait_stat);
533
534 /**
535  *      ide_in_drive_list       -       look for drive in black/white list
536  *      @id: drive identifier
537  *      @drive_table: list to inspect
538  *
539  *      Look for a drive in the blacklist and the whitelist tables
540  *      Returns 1 if the drive is found in the table.
541  */
542
543 int ide_in_drive_list(struct hd_driveid *id, const struct drive_list_entry *drive_table)
544 {
545         for ( ; drive_table->id_model; drive_table++)
546                 if ((!strcmp(drive_table->id_model, id->model)) &&
547                     (!drive_table->id_firmware ||
548                      strstr(id->fw_rev, drive_table->id_firmware)))
549                         return 1;
550         return 0;
551 }
552
553 EXPORT_SYMBOL_GPL(ide_in_drive_list);
554
555 /*
556  * Early UDMA66 devices don't set bit14 to 1, only bit13 is valid.
557  * We list them here and depend on the device side cable detection for them.
558  *
559  * Some optical devices with the buggy firmwares have the same problem.
560  */
561 static const struct drive_list_entry ivb_list[] = {
562         { "QUANTUM FIREBALLlct10 05"    , "A03.0900"    },
563         { "TSSTcorp CDDVDW SH-S202J"    , "SB00"        },
564         { "TSSTcorp CDDVDW SH-S202J"    , "SB01"        },
565         { "TSSTcorp CDDVDW SH-S202N"    , "SB00"        },
566         { "TSSTcorp CDDVDW SH-S202N"    , "SB01"        },
567         { NULL                          , NULL          }
568 };
569
570 /*
571  *  All hosts that use the 80c ribbon must use!
572  *  The name is derived from upper byte of word 93 and the 80c ribbon.
573  */
574 u8 eighty_ninty_three (ide_drive_t *drive)
575 {
576         ide_hwif_t *hwif = drive->hwif;
577         struct hd_driveid *id = drive->id;
578         int ivb = ide_in_drive_list(id, ivb_list);
579
580         if (hwif->cbl == ATA_CBL_PATA40_SHORT)
581                 return 1;
582
583         if (ivb)
584                 printk(KERN_DEBUG "%s: skipping word 93 validity check\n",
585                                   drive->name);
586
587         if (ide_dev_is_sata(id) && !ivb)
588                 return 1;
589
590         if (hwif->cbl != ATA_CBL_PATA80 && !ivb)
591                 goto no_80w;
592
593         /*
594          * FIXME:
595          * - force bit13 (80c cable present) check also for !ivb devices
596          *   (unless the slave device is pre-ATA3)
597          */
598         if ((id->hw_config & 0x4000) || (ivb && (id->hw_config & 0x2000)))
599                 return 1;
600
601 no_80w:
602         if (drive->udma33_warned == 1)
603                 return 0;
604
605         printk(KERN_WARNING "%s: %s side 80-wire cable detection failed, "
606                             "limiting max speed to UDMA33\n",
607                             drive->name,
608                             hwif->cbl == ATA_CBL_PATA80 ? "drive" : "host");
609
610         drive->udma33_warned = 1;
611
612         return 0;
613 }
614
615 int ide_driveid_update(ide_drive_t *drive)
616 {
617         ide_hwif_t *hwif = drive->hwif;
618         struct hd_driveid *id;
619         unsigned long timeout, flags;
620
621         /*
622          * Re-read drive->id for possible DMA mode
623          * change (copied from ide-probe.c)
624          */
625
626         SELECT_MASK(drive, 1);
627         ide_set_irq(drive, 1);
628         msleep(50);
629         hwif->OUTB(WIN_IDENTIFY, IDE_COMMAND_REG);
630         timeout = jiffies + WAIT_WORSTCASE;
631         do {
632                 if (time_after(jiffies, timeout)) {
633                         SELECT_MASK(drive, 0);
634                         return 0;       /* drive timed-out */
635                 }
636                 msleep(50);     /* give drive a breather */
637         } while (hwif->INB(IDE_ALTSTATUS_REG) & BUSY_STAT);
638         msleep(50);     /* wait for IRQ and DRQ_STAT */
639         if (!OK_STAT(hwif->INB(IDE_STATUS_REG),DRQ_STAT,BAD_R_STAT)) {
640                 SELECT_MASK(drive, 0);
641                 printk("%s: CHECK for good STATUS\n", drive->name);
642                 return 0;
643         }
644         local_irq_save(flags);
645         SELECT_MASK(drive, 0);
646         id = kmalloc(SECTOR_WORDS*4, GFP_ATOMIC);
647         if (!id) {
648                 local_irq_restore(flags);
649                 return 0;
650         }
651         ata_input_data(drive, id, SECTOR_WORDS);
652         (void) hwif->INB(IDE_STATUS_REG);       /* clear drive IRQ */
653         local_irq_enable();
654         local_irq_restore(flags);
655         ide_fix_driveid(id);
656         if (id) {
657                 drive->id->dma_ultra = id->dma_ultra;
658                 drive->id->dma_mword = id->dma_mword;
659                 drive->id->dma_1word = id->dma_1word;
660                 /* anything more ? */
661                 kfree(id);
662
663                 if (drive->using_dma && ide_id_dma_bug(drive))
664                         ide_dma_off(drive);
665         }
666
667         return 1;
668 }
669
670 int ide_config_drive_speed(ide_drive_t *drive, u8 speed)
671 {
672         ide_hwif_t *hwif = drive->hwif;
673         int error = 0;
674         u8 stat;
675
676 //      while (HWGROUP(drive)->busy)
677 //              msleep(50);
678
679 #ifdef CONFIG_BLK_DEV_IDEDMA
680         if (hwif->dma_host_set) /* check if host supports DMA */
681                 hwif->dma_host_set(drive, 0);
682 #endif
683
684         /* Skip setting PIO flow-control modes on pre-EIDE drives */
685         if ((speed & 0xf8) == XFER_PIO_0 && !(drive->id->capability & 0x08))
686                 goto skip;
687
688         /*
689          * Don't use ide_wait_cmd here - it will
690          * attempt to set_geometry and recalibrate,
691          * but for some reason these don't work at
692          * this point (lost interrupt).
693          */
694         /*
695          * Select the drive, and issue the SETFEATURES command
696          */
697         disable_irq_nosync(hwif->irq);
698         
699         /*
700          *      FIXME: we race against the running IRQ here if
701          *      this is called from non IRQ context. If we use
702          *      disable_irq() we hang on the error path. Work
703          *      is needed.
704          */
705          
706         udelay(1);
707         SELECT_DRIVE(drive);
708         SELECT_MASK(drive, 0);
709         udelay(1);
710         ide_set_irq(drive, 0);
711         hwif->OUTB(speed, IDE_NSECTOR_REG);
712         hwif->OUTB(SETFEATURES_XFER, IDE_FEATURE_REG);
713         hwif->OUTBSYNC(drive, WIN_SETFEATURES, IDE_COMMAND_REG);
714         if (drive->quirk_list == 2)
715                 ide_set_irq(drive, 1);
716
717         error = __ide_wait_stat(drive, drive->ready_stat,
718                                 BUSY_STAT|DRQ_STAT|ERR_STAT,
719                                 WAIT_CMD, &stat);
720
721         SELECT_MASK(drive, 0);
722
723         enable_irq(hwif->irq);
724
725         if (error) {
726                 (void) ide_dump_status(drive, "set_drive_speed_status", stat);
727                 return error;
728         }
729
730         drive->id->dma_ultra &= ~0xFF00;
731         drive->id->dma_mword &= ~0x0F00;
732         drive->id->dma_1word &= ~0x0F00;
733
734  skip:
735 #ifdef CONFIG_BLK_DEV_IDEDMA
736         if ((speed >= XFER_SW_DMA_0 || (hwif->host_flags & IDE_HFLAG_VDMA)) &&
737             drive->using_dma)
738                 hwif->dma_host_set(drive, 1);
739         else if (hwif->dma_host_set)    /* check if host supports DMA */
740                 ide_dma_off_quietly(drive);
741 #endif
742
743         switch(speed) {
744                 case XFER_UDMA_7:   drive->id->dma_ultra |= 0x8080; break;
745                 case XFER_UDMA_6:   drive->id->dma_ultra |= 0x4040; break;
746                 case XFER_UDMA_5:   drive->id->dma_ultra |= 0x2020; break;
747                 case XFER_UDMA_4:   drive->id->dma_ultra |= 0x1010; break;
748                 case XFER_UDMA_3:   drive->id->dma_ultra |= 0x0808; break;
749                 case XFER_UDMA_2:   drive->id->dma_ultra |= 0x0404; break;
750                 case XFER_UDMA_1:   drive->id->dma_ultra |= 0x0202; break;
751                 case XFER_UDMA_0:   drive->id->dma_ultra |= 0x0101; break;
752                 case XFER_MW_DMA_2: drive->id->dma_mword |= 0x0404; break;
753                 case XFER_MW_DMA_1: drive->id->dma_mword |= 0x0202; break;
754                 case XFER_MW_DMA_0: drive->id->dma_mword |= 0x0101; break;
755                 case XFER_SW_DMA_2: drive->id->dma_1word |= 0x0404; break;
756                 case XFER_SW_DMA_1: drive->id->dma_1word |= 0x0202; break;
757                 case XFER_SW_DMA_0: drive->id->dma_1word |= 0x0101; break;
758                 default: break;
759         }
760         if (!drive->init_speed)
761                 drive->init_speed = speed;
762         drive->current_speed = speed;
763         return error;
764 }
765
766 /*
767  * This should get invoked any time we exit the driver to
768  * wait for an interrupt response from a drive.  handler() points
769  * at the appropriate code to handle the next interrupt, and a
770  * timer is started to prevent us from waiting forever in case
771  * something goes wrong (see the ide_timer_expiry() handler later on).
772  *
773  * See also ide_execute_command
774  */
775 static void __ide_set_handler (ide_drive_t *drive, ide_handler_t *handler,
776                       unsigned int timeout, ide_expiry_t *expiry)
777 {
778         ide_hwgroup_t *hwgroup = HWGROUP(drive);
779
780         if (hwgroup->handler != NULL) {
781                 printk(KERN_CRIT "%s: ide_set_handler: handler not null; "
782                         "old=%p, new=%p\n",
783                         drive->name, hwgroup->handler, handler);
784         }
785         hwgroup->handler        = handler;
786         hwgroup->expiry         = expiry;
787         hwgroup->timer.expires  = jiffies + timeout;
788         hwgroup->req_gen_timer = hwgroup->req_gen;
789         add_timer(&hwgroup->timer);
790 }
791
792 void ide_set_handler (ide_drive_t *drive, ide_handler_t *handler,
793                       unsigned int timeout, ide_expiry_t *expiry)
794 {
795         unsigned long flags;
796         spin_lock_irqsave(&ide_lock, flags);
797         __ide_set_handler(drive, handler, timeout, expiry);
798         spin_unlock_irqrestore(&ide_lock, flags);
799 }
800
801 EXPORT_SYMBOL(ide_set_handler);
802  
803 /**
804  *      ide_execute_command     -       execute an IDE command
805  *      @drive: IDE drive to issue the command against
806  *      @command: command byte to write
807  *      @handler: handler for next phase
808  *      @timeout: timeout for command
809  *      @expiry:  handler to run on timeout
810  *
811  *      Helper function to issue an IDE command. This handles the
812  *      atomicity requirements, command timing and ensures that the 
813  *      handler and IRQ setup do not race. All IDE command kick off
814  *      should go via this function or do equivalent locking.
815  */
816
817 void ide_execute_command(ide_drive_t *drive, u8 cmd, ide_handler_t *handler,
818                          unsigned timeout, ide_expiry_t *expiry)
819 {
820         unsigned long flags;
821         ide_hwgroup_t *hwgroup = HWGROUP(drive);
822         ide_hwif_t *hwif = HWIF(drive);
823
824         spin_lock_irqsave(&ide_lock, flags);
825         BUG_ON(hwgroup->handler);
826         __ide_set_handler(drive, handler, timeout, expiry);
827         hwif->OUTBSYNC(drive, cmd, IDE_COMMAND_REG);
828         /*
829          * Drive takes 400nS to respond, we must avoid the IRQ being
830          * serviced before that.
831          *
832          * FIXME: we could skip this delay with care on non shared devices
833          */
834         ndelay(400);
835         spin_unlock_irqrestore(&ide_lock, flags);
836 }
837
838 EXPORT_SYMBOL(ide_execute_command);
839
840
841 /* needed below */
842 static ide_startstop_t do_reset1 (ide_drive_t *, int);
843
844 /*
845  * atapi_reset_pollfunc() gets invoked to poll the interface for completion every 50ms
846  * during an atapi drive reset operation. If the drive has not yet responded,
847  * and we have not yet hit our maximum waiting time, then the timer is restarted
848  * for another 50ms.
849  */
850 static ide_startstop_t atapi_reset_pollfunc (ide_drive_t *drive)
851 {
852         ide_hwgroup_t *hwgroup  = HWGROUP(drive);
853         ide_hwif_t *hwif        = HWIF(drive);
854         u8 stat;
855
856         SELECT_DRIVE(drive);
857         udelay (10);
858
859         if (OK_STAT(stat = hwif->INB(IDE_STATUS_REG), 0, BUSY_STAT)) {
860                 printk("%s: ATAPI reset complete\n", drive->name);
861         } else {
862                 if (time_before(jiffies, hwgroup->poll_timeout)) {
863                         BUG_ON(HWGROUP(drive)->handler != NULL);
864                         ide_set_handler(drive, &atapi_reset_pollfunc, HZ/20, NULL);
865                         /* continue polling */
866                         return ide_started;
867                 }
868                 /* end of polling */
869                 hwgroup->polling = 0;
870                 printk("%s: ATAPI reset timed-out, status=0x%02x\n",
871                                 drive->name, stat);
872                 /* do it the old fashioned way */
873                 return do_reset1(drive, 1);
874         }
875         /* done polling */
876         hwgroup->polling = 0;
877         hwgroup->resetting = 0;
878         return ide_stopped;
879 }
880
881 /*
882  * reset_pollfunc() gets invoked to poll the interface for completion every 50ms
883  * during an ide reset operation. If the drives have not yet responded,
884  * and we have not yet hit our maximum waiting time, then the timer is restarted
885  * for another 50ms.
886  */
887 static ide_startstop_t reset_pollfunc (ide_drive_t *drive)
888 {
889         ide_hwgroup_t *hwgroup  = HWGROUP(drive);
890         ide_hwif_t *hwif        = HWIF(drive);
891         u8 tmp;
892
893         if (hwif->reset_poll != NULL) {
894                 if (hwif->reset_poll(drive)) {
895                         printk(KERN_ERR "%s: host reset_poll failure for %s.\n",
896                                 hwif->name, drive->name);
897                         return ide_stopped;
898                 }
899         }
900
901         if (!OK_STAT(tmp = hwif->INB(IDE_STATUS_REG), 0, BUSY_STAT)) {
902                 if (time_before(jiffies, hwgroup->poll_timeout)) {
903                         BUG_ON(HWGROUP(drive)->handler != NULL);
904                         ide_set_handler(drive, &reset_pollfunc, HZ/20, NULL);
905                         /* continue polling */
906                         return ide_started;
907                 }
908                 printk("%s: reset timed-out, status=0x%02x\n", hwif->name, tmp);
909                 drive->failures++;
910         } else  {
911                 printk("%s: reset: ", hwif->name);
912                 if ((tmp = hwif->INB(IDE_ERROR_REG)) == 1) {
913                         printk("success\n");
914                         drive->failures = 0;
915                 } else {
916                         drive->failures++;
917                         printk("master: ");
918                         switch (tmp & 0x7f) {
919                                 case 1: printk("passed");
920                                         break;
921                                 case 2: printk("formatter device error");
922                                         break;
923                                 case 3: printk("sector buffer error");
924                                         break;
925                                 case 4: printk("ECC circuitry error");
926                                         break;
927                                 case 5: printk("controlling MPU error");
928                                         break;
929                                 default:printk("error (0x%02x?)", tmp);
930                         }
931                         if (tmp & 0x80)
932                                 printk("; slave: failed");
933                         printk("\n");
934                 }
935         }
936         hwgroup->polling = 0;   /* done polling */
937         hwgroup->resetting = 0; /* done reset attempt */
938         return ide_stopped;
939 }
940
941 static void ide_disk_pre_reset(ide_drive_t *drive)
942 {
943         int legacy = (drive->id->cfs_enable_2 & 0x0400) ? 0 : 1;
944
945         drive->special.all = 0;
946         drive->special.b.set_geometry = legacy;
947         drive->special.b.recalibrate  = legacy;
948         drive->mult_count = 0;
949         if (!drive->keep_settings && !drive->using_dma)
950                 drive->mult_req = 0;
951         if (drive->mult_req != drive->mult_count)
952                 drive->special.b.set_multmode = 1;
953 }
954
955 static void pre_reset(ide_drive_t *drive)
956 {
957         if (drive->media == ide_disk)
958                 ide_disk_pre_reset(drive);
959         else
960                 drive->post_reset = 1;
961
962         if (drive->using_dma) {
963                 if (drive->crc_count)
964                         ide_check_dma_crc(drive);
965                 else
966                         ide_dma_off(drive);
967         }
968
969         if (!drive->keep_settings) {
970                 if (!drive->using_dma) {
971                         drive->unmask = 0;
972                         drive->io_32bit = 0;
973                 }
974                 return;
975         }
976
977         if (HWIF(drive)->pre_reset != NULL)
978                 HWIF(drive)->pre_reset(drive);
979
980         if (drive->current_speed != 0xff)
981                 drive->desired_speed = drive->current_speed;
982         drive->current_speed = 0xff;
983 }
984
985 /*
986  * do_reset1() attempts to recover a confused drive by resetting it.
987  * Unfortunately, resetting a disk drive actually resets all devices on
988  * the same interface, so it can really be thought of as resetting the
989  * interface rather than resetting the drive.
990  *
991  * ATAPI devices have their own reset mechanism which allows them to be
992  * individually reset without clobbering other devices on the same interface.
993  *
994  * Unfortunately, the IDE interface does not generate an interrupt to let
995  * us know when the reset operation has finished, so we must poll for this.
996  * Equally poor, though, is the fact that this may a very long time to complete,
997  * (up to 30 seconds worstcase).  So, instead of busy-waiting here for it,
998  * we set a timer to poll at 50ms intervals.
999  */
1000 static ide_startstop_t do_reset1 (ide_drive_t *drive, int do_not_try_atapi)
1001 {
1002         unsigned int unit;
1003         unsigned long flags;
1004         ide_hwif_t *hwif;
1005         ide_hwgroup_t *hwgroup;
1006         
1007         spin_lock_irqsave(&ide_lock, flags);
1008         hwif = HWIF(drive);
1009         hwgroup = HWGROUP(drive);
1010
1011         /* We must not reset with running handlers */
1012         BUG_ON(hwgroup->handler != NULL);
1013
1014         /* For an ATAPI device, first try an ATAPI SRST. */
1015         if (drive->media != ide_disk && !do_not_try_atapi) {
1016                 hwgroup->resetting = 1;
1017                 pre_reset(drive);
1018                 SELECT_DRIVE(drive);
1019                 udelay (20);
1020                 hwif->OUTBSYNC(drive, WIN_SRST, IDE_COMMAND_REG);
1021                 ndelay(400);
1022                 hwgroup->poll_timeout = jiffies + WAIT_WORSTCASE;
1023                 hwgroup->polling = 1;
1024                 __ide_set_handler(drive, &atapi_reset_pollfunc, HZ/20, NULL);
1025                 spin_unlock_irqrestore(&ide_lock, flags);
1026                 return ide_started;
1027         }
1028
1029         /*
1030          * First, reset any device state data we were maintaining
1031          * for any of the drives on this interface.
1032          */
1033         for (unit = 0; unit < MAX_DRIVES; ++unit)
1034                 pre_reset(&hwif->drives[unit]);
1035
1036         if (!IDE_CONTROL_REG) {
1037                 spin_unlock_irqrestore(&ide_lock, flags);
1038                 return ide_stopped;
1039         }
1040
1041         hwgroup->resetting = 1;
1042         /*
1043          * Note that we also set nIEN while resetting the device,
1044          * to mask unwanted interrupts from the interface during the reset.
1045          * However, due to the design of PC hardware, this will cause an
1046          * immediate interrupt due to the edge transition it produces.
1047          * This single interrupt gives us a "fast poll" for drives that
1048          * recover from reset very quickly, saving us the first 50ms wait time.
1049          */
1050         /* set SRST and nIEN */
1051         hwif->OUTBSYNC(drive, drive->ctl|6,IDE_CONTROL_REG);
1052         /* more than enough time */
1053         udelay(10);
1054         if (drive->quirk_list == 2) {
1055                 /* clear SRST and nIEN */
1056                 hwif->OUTBSYNC(drive, drive->ctl, IDE_CONTROL_REG);
1057         } else {
1058                 /* clear SRST, leave nIEN */
1059                 hwif->OUTBSYNC(drive, drive->ctl|2, IDE_CONTROL_REG);
1060         }
1061         /* more than enough time */
1062         udelay(10);
1063         hwgroup->poll_timeout = jiffies + WAIT_WORSTCASE;
1064         hwgroup->polling = 1;
1065         __ide_set_handler(drive, &reset_pollfunc, HZ/20, NULL);
1066
1067         /*
1068          * Some weird controller like resetting themselves to a strange
1069          * state when the disks are reset this way. At least, the Winbond
1070          * 553 documentation says that
1071          */
1072         if (hwif->resetproc)
1073                 hwif->resetproc(drive);
1074
1075         spin_unlock_irqrestore(&ide_lock, flags);
1076         return ide_started;
1077 }
1078
1079 /*
1080  * ide_do_reset() is the entry point to the drive/interface reset code.
1081  */
1082
1083 ide_startstop_t ide_do_reset (ide_drive_t *drive)
1084 {
1085         return do_reset1(drive, 0);
1086 }
1087
1088 EXPORT_SYMBOL(ide_do_reset);
1089
1090 /*
1091  * ide_wait_not_busy() waits for the currently selected device on the hwif
1092  * to report a non-busy status, see comments in ide_probe_port().
1093  */
1094 int ide_wait_not_busy(ide_hwif_t *hwif, unsigned long timeout)
1095 {
1096         u8 stat = 0;
1097
1098         while(timeout--) {
1099                 /*
1100                  * Turn this into a schedule() sleep once I'm sure
1101                  * about locking issues (2.5 work ?).
1102                  */
1103                 mdelay(1);
1104                 stat = hwif->INB(hwif->io_ports[IDE_STATUS_OFFSET]);
1105                 if ((stat & BUSY_STAT) == 0)
1106                         return 0;
1107                 /*
1108                  * Assume a value of 0xff means nothing is connected to
1109                  * the interface and it doesn't implement the pull-down
1110                  * resistor on D7.
1111                  */
1112                 if (stat == 0xff)
1113                         return -ENODEV;
1114                 touch_softlockup_watchdog();
1115                 touch_nmi_watchdog();
1116         }
1117         return -EBUSY;
1118 }
1119
1120 EXPORT_SYMBOL_GPL(ide_wait_not_busy);
1121