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[sagit-ice-cold/kernel_xiaomi_msm8998.git] / drivers / block / floppy.c
1 /*
2  *  linux/drivers/block/floppy.c
3  *
4  *  Copyright (C) 1991, 1992  Linus Torvalds
5  *  Copyright (C) 1993, 1994  Alain Knaff
6  *  Copyright (C) 1998 Alan Cox
7  */
8
9 /*
10  * 02.12.91 - Changed to static variables to indicate need for reset
11  * and recalibrate. This makes some things easier (output_byte reset
12  * checking etc), and means less interrupt jumping in case of errors,
13  * so the code is hopefully easier to understand.
14  */
15
16 /*
17  * This file is certainly a mess. I've tried my best to get it working,
18  * but I don't like programming floppies, and I have only one anyway.
19  * Urgel. I should check for more errors, and do more graceful error
20  * recovery. Seems there are problems with several drives. I've tried to
21  * correct them. No promises.
22  */
23
24 /*
25  * As with hd.c, all routines within this file can (and will) be called
26  * by interrupts, so extreme caution is needed. A hardware interrupt
27  * handler may not sleep, or a kernel panic will happen. Thus I cannot
28  * call "floppy-on" directly, but have to set a special timer interrupt
29  * etc.
30  */
31
32 /*
33  * 28.02.92 - made track-buffering routines, based on the routines written
34  * by entropy@wintermute.wpi.edu (Lawrence Foard). Linus.
35  */
36
37 /*
38  * Automatic floppy-detection and formatting written by Werner Almesberger
39  * (almesber@nessie.cs.id.ethz.ch), who also corrected some problems with
40  * the floppy-change signal detection.
41  */
42
43 /*
44  * 1992/7/22 -- Hennus Bergman: Added better error reporting, fixed
45  * FDC data overrun bug, added some preliminary stuff for vertical
46  * recording support.
47  *
48  * 1992/9/17: Added DMA allocation & DMA functions. -- hhb.
49  *
50  * TODO: Errors are still not counted properly.
51  */
52
53 /* 1992/9/20
54  * Modifications for ``Sector Shifting'' by Rob Hooft (hooft@chem.ruu.nl)
55  * modeled after the freeware MS-DOS program fdformat/88 V1.8 by
56  * Christoph H. Hochst\"atter.
57  * I have fixed the shift values to the ones I always use. Maybe a new
58  * ioctl() should be created to be able to modify them.
59  * There is a bug in the driver that makes it impossible to format a
60  * floppy as the first thing after bootup.
61  */
62
63 /*
64  * 1993/4/29 -- Linus -- cleaned up the timer handling in the kernel, and
65  * this helped the floppy driver as well. Much cleaner, and still seems to
66  * work.
67  */
68
69 /* 1994/6/24 --bbroad-- added the floppy table entries and made
70  * minor modifications to allow 2.88 floppies to be run.
71  */
72
73 /* 1994/7/13 -- Paul Vojta -- modified the probing code to allow three or more
74  * disk types.
75  */
76
77 /*
78  * 1994/8/8 -- Alain Knaff -- Switched to fdpatch driver: Support for bigger
79  * format bug fixes, but unfortunately some new bugs too...
80  */
81
82 /* 1994/9/17 -- Koen Holtman -- added logging of physical floppy write
83  * errors to allow safe writing by specialized programs.
84  */
85
86 /* 1995/4/24 -- Dan Fandrich -- added support for Commodore 1581 3.5" disks
87  * by defining bit 1 of the "stretch" parameter to mean put sectors on the
88  * opposite side of the disk, leaving the sector IDs alone (i.e. Commodore's
89  * drives are "upside-down").
90  */
91
92 /*
93  * 1995/8/26 -- Andreas Busse -- added Mips support.
94  */
95
96 /*
97  * 1995/10/18 -- Ralf Baechle -- Portability cleanup; move machine dependent
98  * features to asm/floppy.h.
99  */
100
101 /*
102  * 1998/1/21 -- Richard Gooch <rgooch@atnf.csiro.au> -- devfs support
103  */
104
105 /*
106  * 1998/05/07 -- Russell King -- More portability cleanups; moved definition of
107  * interrupt and dma channel to asm/floppy.h. Cleaned up some formatting &
108  * use of '0' for NULL.
109  */
110
111 /*
112  * 1998/06/07 -- Alan Cox -- Merged the 2.0.34 fixes for resource allocation
113  * failures.
114  */
115
116 /*
117  * 1998/09/20 -- David Weinehall -- Added slow-down code for buggy PS/2-drives.
118  */
119
120 /*
121  * 1999/08/13 -- Paul Slootman -- floppy stopped working on Alpha after 24
122  * days, 6 hours, 32 minutes and 32 seconds (i.e. MAXINT jiffies; ints were
123  * being used to store jiffies, which are unsigned longs).
124  */
125
126 /*
127  * 2000/08/28 -- Arnaldo Carvalho de Melo <acme@conectiva.com.br>
128  * - get rid of check_region
129  * - s/suser/capable/
130  */
131
132 /*
133  * 2001/08/26 -- Paul Gortmaker - fix insmod oops on machines with no
134  * floppy controller (lingering task on list after module is gone... boom.)
135  */
136
137 /*
138  * 2002/02/07 -- Anton Altaparmakov - Fix io ports reservation to correct range
139  * (0x3f2-0x3f5, 0x3f7). This fix is a bit of a hack but the proper fix
140  * requires many non-obvious changes in arch dependent code.
141  */
142
143 /* 2003/07/28 -- Daniele Bellucci <bellucda@tiscali.it>.
144  * Better audit of register_blkdev.
145  */
146
147 #undef  FLOPPY_SILENT_DCL_CLEAR
148
149 #define REALLY_SLOW_IO
150
151 #define DEBUGT 2
152
153 #define DPRINT(format, args...) \
154         pr_info("floppy%d: " format, current_drive, ##args)
155
156 #define DCL_DEBUG               /* debug disk change line */
157 #ifdef DCL_DEBUG
158 #define debug_dcl(test, fmt, args...) \
159         do { if ((test) & FD_DEBUG) DPRINT(fmt, ##args); } while (0)
160 #else
161 #define debug_dcl(test, fmt, args...) \
162         do { if (0) DPRINT(fmt, ##args); } while (0)
163 #endif
164
165 /* do print messages for unexpected interrupts */
166 static int print_unex = 1;
167 #include <linux/module.h>
168 #include <linux/sched.h>
169 #include <linux/fs.h>
170 #include <linux/kernel.h>
171 #include <linux/timer.h>
172 #include <linux/workqueue.h>
173 #define FDPATCHES
174 #include <linux/fdreg.h>
175 #include <linux/fd.h>
176 #include <linux/hdreg.h>
177 #include <linux/errno.h>
178 #include <linux/slab.h>
179 #include <linux/mm.h>
180 #include <linux/bio.h>
181 #include <linux/string.h>
182 #include <linux/jiffies.h>
183 #include <linux/fcntl.h>
184 #include <linux/delay.h>
185 #include <linux/mc146818rtc.h>  /* CMOS defines */
186 #include <linux/ioport.h>
187 #include <linux/interrupt.h>
188 #include <linux/init.h>
189 #include <linux/platform_device.h>
190 #include <linux/mod_devicetable.h>
191 #include <linux/mutex.h>
192 #include <linux/io.h>
193 #include <linux/uaccess.h>
194 #include <linux/async.h>
195 #include <linux/compat.h>
196
197 /*
198  * PS/2 floppies have much slower step rates than regular floppies.
199  * It's been recommended that take about 1/4 of the default speed
200  * in some more extreme cases.
201  */
202 static DEFINE_MUTEX(floppy_mutex);
203 static int slow_floppy;
204
205 #include <asm/dma.h>
206 #include <asm/irq.h>
207
208 static int FLOPPY_IRQ = 6;
209 static int FLOPPY_DMA = 2;
210 static int can_use_virtual_dma = 2;
211 /* =======
212  * can use virtual DMA:
213  * 0 = use of virtual DMA disallowed by config
214  * 1 = use of virtual DMA prescribed by config
215  * 2 = no virtual DMA preference configured.  By default try hard DMA,
216  * but fall back on virtual DMA when not enough memory available
217  */
218
219 static int use_virtual_dma;
220 /* =======
221  * use virtual DMA
222  * 0 using hard DMA
223  * 1 using virtual DMA
224  * This variable is set to virtual when a DMA mem problem arises, and
225  * reset back in floppy_grab_irq_and_dma.
226  * It is not safe to reset it in other circumstances, because the floppy
227  * driver may have several buffers in use at once, and we do currently not
228  * record each buffers capabilities
229  */
230
231 static DEFINE_SPINLOCK(floppy_lock);
232
233 static unsigned short virtual_dma_port = 0x3f0;
234 irqreturn_t floppy_interrupt(int irq, void *dev_id);
235 static int set_dor(int fdc, char mask, char data);
236
237 #define K_64    0x10000         /* 64KB */
238
239 /* the following is the mask of allowed drives. By default units 2 and
240  * 3 of both floppy controllers are disabled, because switching on the
241  * motor of these drives causes system hangs on some PCI computers. drive
242  * 0 is the low bit (0x1), and drive 7 is the high bit (0x80). Bits are on if
243  * a drive is allowed.
244  *
245  * NOTE: This must come before we include the arch floppy header because
246  *       some ports reference this variable from there. -DaveM
247  */
248
249 static int allowed_drive_mask = 0x33;
250
251 #include <asm/floppy.h>
252
253 static int irqdma_allocated;
254
255 #include <linux/blkdev.h>
256 #include <linux/blkpg.h>
257 #include <linux/cdrom.h>        /* for the compatibility eject ioctl */
258 #include <linux/completion.h>
259
260 static struct request *current_req;
261 static void do_fd_request(struct request_queue *q);
262 static int set_next_request(void);
263
264 #ifndef fd_get_dma_residue
265 #define fd_get_dma_residue() get_dma_residue(FLOPPY_DMA)
266 #endif
267
268 /* Dma Memory related stuff */
269
270 #ifndef fd_dma_mem_free
271 #define fd_dma_mem_free(addr, size) free_pages(addr, get_order(size))
272 #endif
273
274 #ifndef fd_dma_mem_alloc
275 #define fd_dma_mem_alloc(size) __get_dma_pages(GFP_KERNEL, get_order(size))
276 #endif
277
278 static inline void fallback_on_nodma_alloc(char **addr, size_t l)
279 {
280 #ifdef FLOPPY_CAN_FALLBACK_ON_NODMA
281         if (*addr)
282                 return;         /* we have the memory */
283         if (can_use_virtual_dma != 2)
284                 return;         /* no fallback allowed */
285         pr_info("DMA memory shortage. Temporarily falling back on virtual DMA\n");
286         *addr = (char *)nodma_mem_alloc(l);
287 #else
288         return;
289 #endif
290 }
291
292 /* End dma memory related stuff */
293
294 static unsigned long fake_change;
295 static bool initialized;
296
297 #define ITYPE(x)        (((x) >> 2) & 0x1f)
298 #define TOMINOR(x)      ((x & 3) | ((x & 4) << 5))
299 #define UNIT(x)         ((x) & 0x03)            /* drive on fdc */
300 #define FDC(x)          (((x) & 0x04) >> 2)     /* fdc of drive */
301         /* reverse mapping from unit and fdc to drive */
302 #define REVDRIVE(fdc, unit) ((unit) + ((fdc) << 2))
303
304 #define DP      (&drive_params[current_drive])
305 #define DRS     (&drive_state[current_drive])
306 #define DRWE    (&write_errors[current_drive])
307 #define FDCS    (&fdc_state[fdc])
308
309 #define UDP     (&drive_params[drive])
310 #define UDRS    (&drive_state[drive])
311 #define UDRWE   (&write_errors[drive])
312 #define UFDCS   (&fdc_state[FDC(drive)])
313
314 #define PH_HEAD(floppy, head) (((((floppy)->stretch & 2) >> 1) ^ head) << 2)
315 #define STRETCH(floppy) ((floppy)->stretch & FD_STRETCH)
316
317 /* read/write */
318 #define COMMAND         (raw_cmd->cmd[0])
319 #define DR_SELECT       (raw_cmd->cmd[1])
320 #define TRACK           (raw_cmd->cmd[2])
321 #define HEAD            (raw_cmd->cmd[3])
322 #define SECTOR          (raw_cmd->cmd[4])
323 #define SIZECODE        (raw_cmd->cmd[5])
324 #define SECT_PER_TRACK  (raw_cmd->cmd[6])
325 #define GAP             (raw_cmd->cmd[7])
326 #define SIZECODE2       (raw_cmd->cmd[8])
327 #define NR_RW 9
328
329 /* format */
330 #define F_SIZECODE      (raw_cmd->cmd[2])
331 #define F_SECT_PER_TRACK (raw_cmd->cmd[3])
332 #define F_GAP           (raw_cmd->cmd[4])
333 #define F_FILL          (raw_cmd->cmd[5])
334 #define NR_F 6
335
336 /*
337  * Maximum disk size (in kilobytes).
338  * This default is used whenever the current disk size is unknown.
339  * [Now it is rather a minimum]
340  */
341 #define MAX_DISK_SIZE 4         /* 3984 */
342
343 /*
344  * globals used by 'result()'
345  */
346 #define MAX_REPLIES 16
347 static unsigned char reply_buffer[MAX_REPLIES];
348 static int inr;         /* size of reply buffer, when called from interrupt */
349 #define ST0             (reply_buffer[0])
350 #define ST1             (reply_buffer[1])
351 #define ST2             (reply_buffer[2])
352 #define ST3             (reply_buffer[0])       /* result of GETSTATUS */
353 #define R_TRACK         (reply_buffer[3])
354 #define R_HEAD          (reply_buffer[4])
355 #define R_SECTOR        (reply_buffer[5])
356 #define R_SIZECODE      (reply_buffer[6])
357
358 #define SEL_DLY         (2 * HZ / 100)
359
360 /*
361  * this struct defines the different floppy drive types.
362  */
363 static struct {
364         struct floppy_drive_params params;
365         const char *name;       /* name printed while booting */
366 } default_drive_params[] = {
367 /* NOTE: the time values in jiffies should be in msec!
368  CMOS drive type
369   |     Maximum data rate supported by drive type
370   |     |   Head load time, msec
371   |     |   |   Head unload time, msec (not used)
372   |     |   |   |     Step rate interval, usec
373   |     |   |   |     |       Time needed for spinup time (jiffies)
374   |     |   |   |     |       |      Timeout for spinning down (jiffies)
375   |     |   |   |     |       |      |   Spindown offset (where disk stops)
376   |     |   |   |     |       |      |   |     Select delay
377   |     |   |   |     |       |      |   |     |     RPS
378   |     |   |   |     |       |      |   |     |     |    Max number of tracks
379   |     |   |   |     |       |      |   |     |     |    |     Interrupt timeout
380   |     |   |   |     |       |      |   |     |     |    |     |   Max nonintlv. sectors
381   |     |   |   |     |       |      |   |     |     |    |     |   | -Max Errors- flags */
382 {{0,  500, 16, 16, 8000,    1*HZ, 3*HZ,  0, SEL_DLY, 5,  80, 3*HZ, 20, {3,1,2,0,2}, 0,
383       0, { 7, 4, 8, 2, 1, 5, 3,10}, 3*HZ/2, 0 }, "unknown" },
384
385 {{1,  300, 16, 16, 8000,    1*HZ, 3*HZ,  0, SEL_DLY, 5,  40, 3*HZ, 17, {3,1,2,0,2}, 0,
386       0, { 1, 0, 0, 0, 0, 0, 0, 0}, 3*HZ/2, 1 }, "360K PC" }, /*5 1/4 360 KB PC*/
387
388 {{2,  500, 16, 16, 6000, 4*HZ/10, 3*HZ, 14, SEL_DLY, 6,  83, 3*HZ, 17, {3,1,2,0,2}, 0,
389       0, { 2, 5, 6,23,10,20,12, 0}, 3*HZ/2, 2 }, "1.2M" }, /*5 1/4 HD AT*/
390
391 {{3,  250, 16, 16, 3000,    1*HZ, 3*HZ,  0, SEL_DLY, 5,  83, 3*HZ, 20, {3,1,2,0,2}, 0,
392       0, { 4,22,21,30, 3, 0, 0, 0}, 3*HZ/2, 4 }, "720k" }, /*3 1/2 DD*/
393
394 {{4,  500, 16, 16, 4000, 4*HZ/10, 3*HZ, 10, SEL_DLY, 5,  83, 3*HZ, 20, {3,1,2,0,2}, 0,
395       0, { 7, 4,25,22,31,21,29,11}, 3*HZ/2, 7 }, "1.44M" }, /*3 1/2 HD*/
396
397 {{5, 1000, 15,  8, 3000, 4*HZ/10, 3*HZ, 10, SEL_DLY, 5,  83, 3*HZ, 40, {3,1,2,0,2}, 0,
398       0, { 7, 8, 4,25,28,22,31,21}, 3*HZ/2, 8 }, "2.88M AMI BIOS" }, /*3 1/2 ED*/
399
400 {{6, 1000, 15,  8, 3000, 4*HZ/10, 3*HZ, 10, SEL_DLY, 5,  83, 3*HZ, 40, {3,1,2,0,2}, 0,
401       0, { 7, 8, 4,25,28,22,31,21}, 3*HZ/2, 8 }, "2.88M" } /*3 1/2 ED*/
402 /*    |  --autodetected formats---    |      |      |
403  *    read_track                      |      |    Name printed when booting
404  *                                    |     Native format
405  *                  Frequency of disk change checks */
406 };
407
408 static struct floppy_drive_params drive_params[N_DRIVE];
409 static struct floppy_drive_struct drive_state[N_DRIVE];
410 static struct floppy_write_errors write_errors[N_DRIVE];
411 static struct timer_list motor_off_timer[N_DRIVE];
412 static struct gendisk *disks[N_DRIVE];
413 static struct block_device *opened_bdev[N_DRIVE];
414 static DEFINE_MUTEX(open_lock);
415 static struct floppy_raw_cmd *raw_cmd, default_raw_cmd;
416 static int fdc_queue;
417
418 /*
419  * This struct defines the different floppy types.
420  *
421  * Bit 0 of 'stretch' tells if the tracks need to be doubled for some
422  * types (e.g. 360kB diskette in 1.2MB drive, etc.).  Bit 1 of 'stretch'
423  * tells if the disk is in Commodore 1581 format, which means side 0 sectors
424  * are located on side 1 of the disk but with a side 0 ID, and vice-versa.
425  * This is the same as the Sharp MZ-80 5.25" CP/M disk format, except that the
426  * 1581's logical side 0 is on physical side 1, whereas the Sharp's logical
427  * side 0 is on physical side 0 (but with the misnamed sector IDs).
428  * 'stretch' should probably be renamed to something more general, like
429  * 'options'.
430  *
431  * Bits 2 through 9 of 'stretch' tell the number of the first sector.
432  * The LSB (bit 2) is flipped. For most disks, the first sector
433  * is 1 (represented by 0x00<<2).  For some CP/M and music sampler
434  * disks (such as Ensoniq EPS 16plus) it is 0 (represented as 0x01<<2).
435  * For Amstrad CPC disks it is 0xC1 (represented as 0xC0<<2).
436  *
437  * Other parameters should be self-explanatory (see also setfdprm(8)).
438  */
439 /*
440             Size
441              |  Sectors per track
442              |  | Head
443              |  | |  Tracks
444              |  | |  | Stretch
445              |  | |  | |  Gap 1 size
446              |  | |  | |    |  Data rate, | 0x40 for perp
447              |  | |  | |    |    |  Spec1 (stepping rate, head unload
448              |  | |  | |    |    |    |    /fmt gap (gap2) */
449 static struct floppy_struct floppy_type[32] = {
450         {    0, 0,0, 0,0,0x00,0x00,0x00,0x00,NULL    }, /*  0 no testing    */
451         {  720, 9,2,40,0,0x2A,0x02,0xDF,0x50,"d360"  }, /*  1 360KB PC      */
452         { 2400,15,2,80,0,0x1B,0x00,0xDF,0x54,"h1200" }, /*  2 1.2MB AT      */
453         {  720, 9,1,80,0,0x2A,0x02,0xDF,0x50,"D360"  }, /*  3 360KB SS 3.5" */
454         { 1440, 9,2,80,0,0x2A,0x02,0xDF,0x50,"D720"  }, /*  4 720KB 3.5"    */
455         {  720, 9,2,40,1,0x23,0x01,0xDF,0x50,"h360"  }, /*  5 360KB AT      */
456         { 1440, 9,2,80,0,0x23,0x01,0xDF,0x50,"h720"  }, /*  6 720KB AT      */
457         { 2880,18,2,80,0,0x1B,0x00,0xCF,0x6C,"H1440" }, /*  7 1.44MB 3.5"   */
458         { 5760,36,2,80,0,0x1B,0x43,0xAF,0x54,"E2880" }, /*  8 2.88MB 3.5"   */
459         { 6240,39,2,80,0,0x1B,0x43,0xAF,0x28,"E3120" }, /*  9 3.12MB 3.5"   */
460
461         { 2880,18,2,80,0,0x25,0x00,0xDF,0x02,"h1440" }, /* 10 1.44MB 5.25"  */
462         { 3360,21,2,80,0,0x1C,0x00,0xCF,0x0C,"H1680" }, /* 11 1.68MB 3.5"   */
463         {  820,10,2,41,1,0x25,0x01,0xDF,0x2E,"h410"  }, /* 12 410KB 5.25"   */
464         { 1640,10,2,82,0,0x25,0x02,0xDF,0x2E,"H820"  }, /* 13 820KB 3.5"    */
465         { 2952,18,2,82,0,0x25,0x00,0xDF,0x02,"h1476" }, /* 14 1.48MB 5.25"  */
466         { 3444,21,2,82,0,0x25,0x00,0xDF,0x0C,"H1722" }, /* 15 1.72MB 3.5"   */
467         {  840,10,2,42,1,0x25,0x01,0xDF,0x2E,"h420"  }, /* 16 420KB 5.25"   */
468         { 1660,10,2,83,0,0x25,0x02,0xDF,0x2E,"H830"  }, /* 17 830KB 3.5"    */
469         { 2988,18,2,83,0,0x25,0x00,0xDF,0x02,"h1494" }, /* 18 1.49MB 5.25"  */
470         { 3486,21,2,83,0,0x25,0x00,0xDF,0x0C,"H1743" }, /* 19 1.74 MB 3.5"  */
471
472         { 1760,11,2,80,0,0x1C,0x09,0xCF,0x00,"h880"  }, /* 20 880KB 5.25"   */
473         { 2080,13,2,80,0,0x1C,0x01,0xCF,0x00,"D1040" }, /* 21 1.04MB 3.5"   */
474         { 2240,14,2,80,0,0x1C,0x19,0xCF,0x00,"D1120" }, /* 22 1.12MB 3.5"   */
475         { 3200,20,2,80,0,0x1C,0x20,0xCF,0x2C,"h1600" }, /* 23 1.6MB 5.25"   */
476         { 3520,22,2,80,0,0x1C,0x08,0xCF,0x2e,"H1760" }, /* 24 1.76MB 3.5"   */
477         { 3840,24,2,80,0,0x1C,0x20,0xCF,0x00,"H1920" }, /* 25 1.92MB 3.5"   */
478         { 6400,40,2,80,0,0x25,0x5B,0xCF,0x00,"E3200" }, /* 26 3.20MB 3.5"   */
479         { 7040,44,2,80,0,0x25,0x5B,0xCF,0x00,"E3520" }, /* 27 3.52MB 3.5"   */
480         { 7680,48,2,80,0,0x25,0x63,0xCF,0x00,"E3840" }, /* 28 3.84MB 3.5"   */
481         { 3680,23,2,80,0,0x1C,0x10,0xCF,0x00,"H1840" }, /* 29 1.84MB 3.5"   */
482
483         { 1600,10,2,80,0,0x25,0x02,0xDF,0x2E,"D800"  }, /* 30 800KB 3.5"    */
484         { 3200,20,2,80,0,0x1C,0x00,0xCF,0x2C,"H1600" }, /* 31 1.6MB 3.5"    */
485 };
486
487 #define SECTSIZE (_FD_SECTSIZE(*floppy))
488
489 /* Auto-detection: Disk type used until the next media change occurs. */
490 static struct floppy_struct *current_type[N_DRIVE];
491
492 /*
493  * User-provided type information. current_type points to
494  * the respective entry of this array.
495  */
496 static struct floppy_struct user_params[N_DRIVE];
497
498 static sector_t floppy_sizes[256];
499
500 static char floppy_device_name[] = "floppy";
501
502 /*
503  * The driver is trying to determine the correct media format
504  * while probing is set. rw_interrupt() clears it after a
505  * successful access.
506  */
507 static int probing;
508
509 /* Synchronization of FDC access. */
510 #define FD_COMMAND_NONE         -1
511 #define FD_COMMAND_ERROR        2
512 #define FD_COMMAND_OKAY         3
513
514 static volatile int command_status = FD_COMMAND_NONE;
515 static unsigned long fdc_busy;
516 static DECLARE_WAIT_QUEUE_HEAD(fdc_wait);
517 static DECLARE_WAIT_QUEUE_HEAD(command_done);
518
519 /* Errors during formatting are counted here. */
520 static int format_errors;
521
522 /* Format request descriptor. */
523 static struct format_descr format_req;
524
525 /*
526  * Rate is 0 for 500kb/s, 1 for 300kbps, 2 for 250kbps
527  * Spec1 is 0xSH, where S is stepping rate (F=1ms, E=2ms, D=3ms etc),
528  * H is head unload time (1=16ms, 2=32ms, etc)
529  */
530
531 /*
532  * Track buffer
533  * Because these are written to by the DMA controller, they must
534  * not contain a 64k byte boundary crossing, or data will be
535  * corrupted/lost.
536  */
537 static char *floppy_track_buffer;
538 static int max_buffer_sectors;
539
540 static int *errors;
541 typedef void (*done_f)(int);
542 static const struct cont_t {
543         void (*interrupt)(void);
544                                 /* this is called after the interrupt of the
545                                  * main command */
546         void (*redo)(void);     /* this is called to retry the operation */
547         void (*error)(void);    /* this is called to tally an error */
548         done_f done;            /* this is called to say if the operation has
549                                  * succeeded/failed */
550 } *cont;
551
552 static void floppy_ready(void);
553 static void floppy_start(void);
554 static void process_fd_request(void);
555 static void recalibrate_floppy(void);
556 static void floppy_shutdown(struct work_struct *);
557
558 static int floppy_request_regions(int);
559 static void floppy_release_regions(int);
560 static int floppy_grab_irq_and_dma(void);
561 static void floppy_release_irq_and_dma(void);
562
563 /*
564  * The "reset" variable should be tested whenever an interrupt is scheduled,
565  * after the commands have been sent. This is to ensure that the driver doesn't
566  * get wedged when the interrupt doesn't come because of a failed command.
567  * reset doesn't need to be tested before sending commands, because
568  * output_byte is automatically disabled when reset is set.
569  */
570 static void reset_fdc(void);
571
572 /*
573  * These are global variables, as that's the easiest way to give
574  * information to interrupts. They are the data used for the current
575  * request.
576  */
577 #define NO_TRACK        -1
578 #define NEED_1_RECAL    -2
579 #define NEED_2_RECAL    -3
580
581 static atomic_t usage_count = ATOMIC_INIT(0);
582
583 /* buffer related variables */
584 static int buffer_track = -1;
585 static int buffer_drive = -1;
586 static int buffer_min = -1;
587 static int buffer_max = -1;
588
589 /* fdc related variables, should end up in a struct */
590 static struct floppy_fdc_state fdc_state[N_FDC];
591 static int fdc;                 /* current fdc */
592
593 static struct workqueue_struct *floppy_wq;
594
595 static struct floppy_struct *_floppy = floppy_type;
596 static unsigned char current_drive;
597 static long current_count_sectors;
598 static unsigned char fsector_t; /* sector in track */
599 static unsigned char in_sector_offset;  /* offset within physical sector,
600                                          * expressed in units of 512 bytes */
601
602 static inline bool drive_no_geom(int drive)
603 {
604         return !current_type[drive] && !ITYPE(UDRS->fd_device);
605 }
606
607 #ifndef fd_eject
608 static inline int fd_eject(int drive)
609 {
610         return -EINVAL;
611 }
612 #endif
613
614 /*
615  * Debugging
616  * =========
617  */
618 #ifdef DEBUGT
619 static long unsigned debugtimer;
620
621 static inline void set_debugt(void)
622 {
623         debugtimer = jiffies;
624 }
625
626 static inline void debugt(const char *func, const char *msg)
627 {
628         if (DP->flags & DEBUGT)
629                 pr_info("%s:%s dtime=%lu\n", func, msg, jiffies - debugtimer);
630 }
631 #else
632 static inline void set_debugt(void) { }
633 static inline void debugt(const char *func, const char *msg) { }
634 #endif /* DEBUGT */
635
636
637 static DECLARE_DELAYED_WORK(fd_timeout, floppy_shutdown);
638 static const char *timeout_message;
639
640 static void is_alive(const char *func, const char *message)
641 {
642         /* this routine checks whether the floppy driver is "alive" */
643         if (test_bit(0, &fdc_busy) && command_status < 2 &&
644             !delayed_work_pending(&fd_timeout)) {
645                 DPRINT("%s: timeout handler died.  %s\n", func, message);
646         }
647 }
648
649 static void (*do_floppy)(void) = NULL;
650
651 #define OLOGSIZE 20
652
653 static void (*lasthandler)(void);
654 static unsigned long interruptjiffies;
655 static unsigned long resultjiffies;
656 static int resultsize;
657 static unsigned long lastredo;
658
659 static struct output_log {
660         unsigned char data;
661         unsigned char status;
662         unsigned long jiffies;
663 } output_log[OLOGSIZE];
664
665 static int output_log_pos;
666
667 #define current_reqD -1
668 #define MAXTIMEOUT -2
669
670 static void __reschedule_timeout(int drive, const char *message)
671 {
672         unsigned long delay;
673
674         if (drive == current_reqD)
675                 drive = current_drive;
676
677         if (drive < 0 || drive >= N_DRIVE) {
678                 delay = 20UL * HZ;
679                 drive = 0;
680         } else
681                 delay = UDP->timeout;
682
683         mod_delayed_work(floppy_wq, &fd_timeout, delay);
684         if (UDP->flags & FD_DEBUG)
685                 DPRINT("reschedule timeout %s\n", message);
686         timeout_message = message;
687 }
688
689 static void reschedule_timeout(int drive, const char *message)
690 {
691         unsigned long flags;
692
693         spin_lock_irqsave(&floppy_lock, flags);
694         __reschedule_timeout(drive, message);
695         spin_unlock_irqrestore(&floppy_lock, flags);
696 }
697
698 #define INFBOUND(a, b) (a) = max_t(int, a, b)
699 #define SUPBOUND(a, b) (a) = min_t(int, a, b)
700
701 /*
702  * Bottom half floppy driver.
703  * ==========================
704  *
705  * This part of the file contains the code talking directly to the hardware,
706  * and also the main service loop (seek-configure-spinup-command)
707  */
708
709 /*
710  * disk change.
711  * This routine is responsible for maintaining the FD_DISK_CHANGE flag,
712  * and the last_checked date.
713  *
714  * last_checked is the date of the last check which showed 'no disk change'
715  * FD_DISK_CHANGE is set under two conditions:
716  * 1. The floppy has been changed after some i/o to that floppy already
717  *    took place.
718  * 2. No floppy disk is in the drive. This is done in order to ensure that
719  *    requests are quickly flushed in case there is no disk in the drive. It
720  *    follows that FD_DISK_CHANGE can only be cleared if there is a disk in
721  *    the drive.
722  *
723  * For 1., maxblock is observed. Maxblock is 0 if no i/o has taken place yet.
724  * For 2., FD_DISK_NEWCHANGE is watched. FD_DISK_NEWCHANGE is cleared on
725  *  each seek. If a disk is present, the disk change line should also be
726  *  cleared on each seek. Thus, if FD_DISK_NEWCHANGE is clear, but the disk
727  *  change line is set, this means either that no disk is in the drive, or
728  *  that it has been removed since the last seek.
729  *
730  * This means that we really have a third possibility too:
731  *  The floppy has been changed after the last seek.
732  */
733
734 static int disk_change(int drive)
735 {
736         int fdc = FDC(drive);
737
738         if (time_before(jiffies, UDRS->select_date + UDP->select_delay))
739                 DPRINT("WARNING disk change called early\n");
740         if (!(FDCS->dor & (0x10 << UNIT(drive))) ||
741             (FDCS->dor & 3) != UNIT(drive) || fdc != FDC(drive)) {
742                 DPRINT("probing disk change on unselected drive\n");
743                 DPRINT("drive=%d fdc=%d dor=%x\n", drive, FDC(drive),
744                        (unsigned int)FDCS->dor);
745         }
746
747         debug_dcl(UDP->flags,
748                   "checking disk change line for drive %d\n", drive);
749         debug_dcl(UDP->flags, "jiffies=%lu\n", jiffies);
750         debug_dcl(UDP->flags, "disk change line=%x\n", fd_inb(FD_DIR) & 0x80);
751         debug_dcl(UDP->flags, "flags=%lx\n", UDRS->flags);
752
753         if (UDP->flags & FD_BROKEN_DCL)
754                 return test_bit(FD_DISK_CHANGED_BIT, &UDRS->flags);
755         if ((fd_inb(FD_DIR) ^ UDP->flags) & 0x80) {
756                 set_bit(FD_VERIFY_BIT, &UDRS->flags);
757                                         /* verify write protection */
758
759                 if (UDRS->maxblock)     /* mark it changed */
760                         set_bit(FD_DISK_CHANGED_BIT, &UDRS->flags);
761
762                 /* invalidate its geometry */
763                 if (UDRS->keep_data >= 0) {
764                         if ((UDP->flags & FTD_MSG) &&
765                             current_type[drive] != NULL)
766                                 DPRINT("Disk type is undefined after disk change\n");
767                         current_type[drive] = NULL;
768                         floppy_sizes[TOMINOR(drive)] = MAX_DISK_SIZE << 1;
769                 }
770
771                 return 1;
772         } else {
773                 UDRS->last_checked = jiffies;
774                 clear_bit(FD_DISK_NEWCHANGE_BIT, &UDRS->flags);
775         }
776         return 0;
777 }
778
779 static inline int is_selected(int dor, int unit)
780 {
781         return ((dor & (0x10 << unit)) && (dor & 3) == unit);
782 }
783
784 static bool is_ready_state(int status)
785 {
786         int state = status & (STATUS_READY | STATUS_DIR | STATUS_DMA);
787         return state == STATUS_READY;
788 }
789
790 static int set_dor(int fdc, char mask, char data)
791 {
792         unsigned char unit;
793         unsigned char drive;
794         unsigned char newdor;
795         unsigned char olddor;
796
797         if (FDCS->address == -1)
798                 return -1;
799
800         olddor = FDCS->dor;
801         newdor = (olddor & mask) | data;
802         if (newdor != olddor) {
803                 unit = olddor & 0x3;
804                 if (is_selected(olddor, unit) && !is_selected(newdor, unit)) {
805                         drive = REVDRIVE(fdc, unit);
806                         debug_dcl(UDP->flags,
807                                   "calling disk change from set_dor\n");
808                         disk_change(drive);
809                 }
810                 FDCS->dor = newdor;
811                 fd_outb(newdor, FD_DOR);
812
813                 unit = newdor & 0x3;
814                 if (!is_selected(olddor, unit) && is_selected(newdor, unit)) {
815                         drive = REVDRIVE(fdc, unit);
816                         UDRS->select_date = jiffies;
817                 }
818         }
819         return olddor;
820 }
821
822 static void twaddle(void)
823 {
824         if (DP->select_delay)
825                 return;
826         fd_outb(FDCS->dor & ~(0x10 << UNIT(current_drive)), FD_DOR);
827         fd_outb(FDCS->dor, FD_DOR);
828         DRS->select_date = jiffies;
829 }
830
831 /*
832  * Reset all driver information about the current fdc.
833  * This is needed after a reset, and after a raw command.
834  */
835 static void reset_fdc_info(int mode)
836 {
837         int drive;
838
839         FDCS->spec1 = FDCS->spec2 = -1;
840         FDCS->need_configure = 1;
841         FDCS->perp_mode = 1;
842         FDCS->rawcmd = 0;
843         for (drive = 0; drive < N_DRIVE; drive++)
844                 if (FDC(drive) == fdc && (mode || UDRS->track != NEED_1_RECAL))
845                         UDRS->track = NEED_2_RECAL;
846 }
847
848 /* selects the fdc and drive, and enables the fdc's input/dma. */
849 static void set_fdc(int drive)
850 {
851         if (drive >= 0 && drive < N_DRIVE) {
852                 fdc = FDC(drive);
853                 current_drive = drive;
854         }
855         if (fdc != 1 && fdc != 0) {
856                 pr_info("bad fdc value\n");
857                 return;
858         }
859         set_dor(fdc, ~0, 8);
860 #if N_FDC > 1
861         set_dor(1 - fdc, ~8, 0);
862 #endif
863         if (FDCS->rawcmd == 2)
864                 reset_fdc_info(1);
865         if (fd_inb(FD_STATUS) != STATUS_READY)
866                 FDCS->reset = 1;
867 }
868
869 /* locks the driver */
870 static int lock_fdc(int drive, bool interruptible)
871 {
872         if (WARN(atomic_read(&usage_count) == 0,
873                  "Trying to lock fdc while usage count=0\n"))
874                 return -1;
875
876         if (wait_event_interruptible(fdc_wait, !test_and_set_bit(0, &fdc_busy)))
877                 return -EINTR;
878
879         command_status = FD_COMMAND_NONE;
880
881         reschedule_timeout(drive, "lock fdc");
882         set_fdc(drive);
883         return 0;
884 }
885
886 /* unlocks the driver */
887 static void unlock_fdc(void)
888 {
889         if (!test_bit(0, &fdc_busy))
890                 DPRINT("FDC access conflict!\n");
891
892         raw_cmd = NULL;
893         command_status = FD_COMMAND_NONE;
894         cancel_delayed_work(&fd_timeout);
895         do_floppy = NULL;
896         cont = NULL;
897         clear_bit(0, &fdc_busy);
898         wake_up(&fdc_wait);
899 }
900
901 /* switches the motor off after a given timeout */
902 static void motor_off_callback(unsigned long nr)
903 {
904         unsigned char mask = ~(0x10 << UNIT(nr));
905
906         set_dor(FDC(nr), mask, 0);
907 }
908
909 /* schedules motor off */
910 static void floppy_off(unsigned int drive)
911 {
912         unsigned long volatile delta;
913         int fdc = FDC(drive);
914
915         if (!(FDCS->dor & (0x10 << UNIT(drive))))
916                 return;
917
918         del_timer(motor_off_timer + drive);
919
920         /* make spindle stop in a position which minimizes spinup time
921          * next time */
922         if (UDP->rps) {
923                 delta = jiffies - UDRS->first_read_date + HZ -
924                     UDP->spindown_offset;
925                 delta = ((delta * UDP->rps) % HZ) / UDP->rps;
926                 motor_off_timer[drive].expires =
927                     jiffies + UDP->spindown - delta;
928         }
929         add_timer(motor_off_timer + drive);
930 }
931
932 /*
933  * cycle through all N_DRIVE floppy drives, for disk change testing.
934  * stopping at current drive. This is done before any long operation, to
935  * be sure to have up to date disk change information.
936  */
937 static void scandrives(void)
938 {
939         int i;
940         int drive;
941         int saved_drive;
942
943         if (DP->select_delay)
944                 return;
945
946         saved_drive = current_drive;
947         for (i = 0; i < N_DRIVE; i++) {
948                 drive = (saved_drive + i + 1) % N_DRIVE;
949                 if (UDRS->fd_ref == 0 || UDP->select_delay != 0)
950                         continue;       /* skip closed drives */
951                 set_fdc(drive);
952                 if (!(set_dor(fdc, ~3, UNIT(drive) | (0x10 << UNIT(drive))) &
953                       (0x10 << UNIT(drive))))
954                         /* switch the motor off again, if it was off to
955                          * begin with */
956                         set_dor(fdc, ~(0x10 << UNIT(drive)), 0);
957         }
958         set_fdc(saved_drive);
959 }
960
961 static void empty(void)
962 {
963 }
964
965 static void (*floppy_work_fn)(void);
966
967 static void floppy_work_workfn(struct work_struct *work)
968 {
969         floppy_work_fn();
970 }
971
972 static DECLARE_WORK(floppy_work, floppy_work_workfn);
973
974 static void schedule_bh(void (*handler)(void))
975 {
976         WARN_ON(work_pending(&floppy_work));
977
978         floppy_work_fn = handler;
979         queue_work(floppy_wq, &floppy_work);
980 }
981
982 static void (*fd_timer_fn)(void) = NULL;
983
984 static void fd_timer_workfn(struct work_struct *work)
985 {
986         fd_timer_fn();
987 }
988
989 static DECLARE_DELAYED_WORK(fd_timer, fd_timer_workfn);
990
991 static void cancel_activity(void)
992 {
993         do_floppy = NULL;
994         cancel_delayed_work_sync(&fd_timer);
995         cancel_work_sync(&floppy_work);
996 }
997
998 /* this function makes sure that the disk stays in the drive during the
999  * transfer */
1000 static void fd_watchdog(void)
1001 {
1002         debug_dcl(DP->flags, "calling disk change from watchdog\n");
1003
1004         if (disk_change(current_drive)) {
1005                 DPRINT("disk removed during i/o\n");
1006                 cancel_activity();
1007                 cont->done(0);
1008                 reset_fdc();
1009         } else {
1010                 cancel_delayed_work(&fd_timer);
1011                 fd_timer_fn = fd_watchdog;
1012                 queue_delayed_work(floppy_wq, &fd_timer, HZ / 10);
1013         }
1014 }
1015
1016 static void main_command_interrupt(void)
1017 {
1018         cancel_delayed_work(&fd_timer);
1019         cont->interrupt();
1020 }
1021
1022 /* waits for a delay (spinup or select) to pass */
1023 static int fd_wait_for_completion(unsigned long expires,
1024                                   void (*function)(void))
1025 {
1026         if (FDCS->reset) {
1027                 reset_fdc();    /* do the reset during sleep to win time
1028                                  * if we don't need to sleep, it's a good
1029                                  * occasion anyways */
1030                 return 1;
1031         }
1032
1033         if (time_before(jiffies, expires)) {
1034                 cancel_delayed_work(&fd_timer);
1035                 fd_timer_fn = function;
1036                 queue_delayed_work(floppy_wq, &fd_timer, expires - jiffies);
1037                 return 1;
1038         }
1039         return 0;
1040 }
1041
1042 static void setup_DMA(void)
1043 {
1044         unsigned long f;
1045
1046         if (raw_cmd->length == 0) {
1047                 int i;
1048
1049                 pr_info("zero dma transfer size:");
1050                 for (i = 0; i < raw_cmd->cmd_count; i++)
1051                         pr_cont("%x,", raw_cmd->cmd[i]);
1052                 pr_cont("\n");
1053                 cont->done(0);
1054                 FDCS->reset = 1;
1055                 return;
1056         }
1057         if (((unsigned long)raw_cmd->kernel_data) % 512) {
1058                 pr_info("non aligned address: %p\n", raw_cmd->kernel_data);
1059                 cont->done(0);
1060                 FDCS->reset = 1;
1061                 return;
1062         }
1063         f = claim_dma_lock();
1064         fd_disable_dma();
1065 #ifdef fd_dma_setup
1066         if (fd_dma_setup(raw_cmd->kernel_data, raw_cmd->length,
1067                          (raw_cmd->flags & FD_RAW_READ) ?
1068                          DMA_MODE_READ : DMA_MODE_WRITE, FDCS->address) < 0) {
1069                 release_dma_lock(f);
1070                 cont->done(0);
1071                 FDCS->reset = 1;
1072                 return;
1073         }
1074         release_dma_lock(f);
1075 #else
1076         fd_clear_dma_ff();
1077         fd_cacheflush(raw_cmd->kernel_data, raw_cmd->length);
1078         fd_set_dma_mode((raw_cmd->flags & FD_RAW_READ) ?
1079                         DMA_MODE_READ : DMA_MODE_WRITE);
1080         fd_set_dma_addr(raw_cmd->kernel_data);
1081         fd_set_dma_count(raw_cmd->length);
1082         virtual_dma_port = FDCS->address;
1083         fd_enable_dma();
1084         release_dma_lock(f);
1085 #endif
1086 }
1087
1088 static void show_floppy(void);
1089
1090 /* waits until the fdc becomes ready */
1091 static int wait_til_ready(void)
1092 {
1093         int status;
1094         int counter;
1095
1096         if (FDCS->reset)
1097                 return -1;
1098         for (counter = 0; counter < 10000; counter++) {
1099                 status = fd_inb(FD_STATUS);
1100                 if (status & STATUS_READY)
1101                         return status;
1102         }
1103         if (initialized) {
1104                 DPRINT("Getstatus times out (%x) on fdc %d\n", status, fdc);
1105                 show_floppy();
1106         }
1107         FDCS->reset = 1;
1108         return -1;
1109 }
1110
1111 /* sends a command byte to the fdc */
1112 static int output_byte(char byte)
1113 {
1114         int status = wait_til_ready();
1115
1116         if (status < 0)
1117                 return -1;
1118
1119         if (is_ready_state(status)) {
1120                 fd_outb(byte, FD_DATA);
1121                 output_log[output_log_pos].data = byte;
1122                 output_log[output_log_pos].status = status;
1123                 output_log[output_log_pos].jiffies = jiffies;
1124                 output_log_pos = (output_log_pos + 1) % OLOGSIZE;
1125                 return 0;
1126         }
1127         FDCS->reset = 1;
1128         if (initialized) {
1129                 DPRINT("Unable to send byte %x to FDC. Fdc=%x Status=%x\n",
1130                        byte, fdc, status);
1131                 show_floppy();
1132         }
1133         return -1;
1134 }
1135
1136 /* gets the response from the fdc */
1137 static int result(void)
1138 {
1139         int i;
1140         int status = 0;
1141
1142         for (i = 0; i < MAX_REPLIES; i++) {
1143                 status = wait_til_ready();
1144                 if (status < 0)
1145                         break;
1146                 status &= STATUS_DIR | STATUS_READY | STATUS_BUSY | STATUS_DMA;
1147                 if ((status & ~STATUS_BUSY) == STATUS_READY) {
1148                         resultjiffies = jiffies;
1149                         resultsize = i;
1150                         return i;
1151                 }
1152                 if (status == (STATUS_DIR | STATUS_READY | STATUS_BUSY))
1153                         reply_buffer[i] = fd_inb(FD_DATA);
1154                 else
1155                         break;
1156         }
1157         if (initialized) {
1158                 DPRINT("get result error. Fdc=%d Last status=%x Read bytes=%d\n",
1159                        fdc, status, i);
1160                 show_floppy();
1161         }
1162         FDCS->reset = 1;
1163         return -1;
1164 }
1165
1166 #define MORE_OUTPUT -2
1167 /* does the fdc need more output? */
1168 static int need_more_output(void)
1169 {
1170         int status = wait_til_ready();
1171
1172         if (status < 0)
1173                 return -1;
1174
1175         if (is_ready_state(status))
1176                 return MORE_OUTPUT;
1177
1178         return result();
1179 }
1180
1181 /* Set perpendicular mode as required, based on data rate, if supported.
1182  * 82077 Now tested. 1Mbps data rate only possible with 82077-1.
1183  */
1184 static void perpendicular_mode(void)
1185 {
1186         unsigned char perp_mode;
1187
1188         if (raw_cmd->rate & 0x40) {
1189                 switch (raw_cmd->rate & 3) {
1190                 case 0:
1191                         perp_mode = 2;
1192                         break;
1193                 case 3:
1194                         perp_mode = 3;
1195                         break;
1196                 default:
1197                         DPRINT("Invalid data rate for perpendicular mode!\n");
1198                         cont->done(0);
1199                         FDCS->reset = 1;
1200                                         /*
1201                                          * convenient way to return to
1202                                          * redo without too much hassle
1203                                          * (deep stack et al.)
1204                                          */
1205                         return;
1206                 }
1207         } else
1208                 perp_mode = 0;
1209
1210         if (FDCS->perp_mode == perp_mode)
1211                 return;
1212         if (FDCS->version >= FDC_82077_ORIG) {
1213                 output_byte(FD_PERPENDICULAR);
1214                 output_byte(perp_mode);
1215                 FDCS->perp_mode = perp_mode;
1216         } else if (perp_mode) {
1217                 DPRINT("perpendicular mode not supported by this FDC.\n");
1218         }
1219 }                               /* perpendicular_mode */
1220
1221 static int fifo_depth = 0xa;
1222 static int no_fifo;
1223
1224 static int fdc_configure(void)
1225 {
1226         /* Turn on FIFO */
1227         output_byte(FD_CONFIGURE);
1228         if (need_more_output() != MORE_OUTPUT)
1229                 return 0;
1230         output_byte(0);
1231         output_byte(0x10 | (no_fifo & 0x20) | (fifo_depth & 0xf));
1232         output_byte(0);         /* pre-compensation from track
1233                                    0 upwards */
1234         return 1;
1235 }
1236
1237 #define NOMINAL_DTR 500
1238
1239 /* Issue a "SPECIFY" command to set the step rate time, head unload time,
1240  * head load time, and DMA disable flag to values needed by floppy.
1241  *
1242  * The value "dtr" is the data transfer rate in Kbps.  It is needed
1243  * to account for the data rate-based scaling done by the 82072 and 82077
1244  * FDC types.  This parameter is ignored for other types of FDCs (i.e.
1245  * 8272a).
1246  *
1247  * Note that changing the data transfer rate has a (probably deleterious)
1248  * effect on the parameters subject to scaling for 82072/82077 FDCs, so
1249  * fdc_specify is called again after each data transfer rate
1250  * change.
1251  *
1252  * srt: 1000 to 16000 in microseconds
1253  * hut: 16 to 240 milliseconds
1254  * hlt: 2 to 254 milliseconds
1255  *
1256  * These values are rounded up to the next highest available delay time.
1257  */
1258 static void fdc_specify(void)
1259 {
1260         unsigned char spec1;
1261         unsigned char spec2;
1262         unsigned long srt;
1263         unsigned long hlt;
1264         unsigned long hut;
1265         unsigned long dtr = NOMINAL_DTR;
1266         unsigned long scale_dtr = NOMINAL_DTR;
1267         int hlt_max_code = 0x7f;
1268         int hut_max_code = 0xf;
1269
1270         if (FDCS->need_configure && FDCS->version >= FDC_82072A) {
1271                 fdc_configure();
1272                 FDCS->need_configure = 0;
1273         }
1274
1275         switch (raw_cmd->rate & 0x03) {
1276         case 3:
1277                 dtr = 1000;
1278                 break;
1279         case 1:
1280                 dtr = 300;
1281                 if (FDCS->version >= FDC_82078) {
1282                         /* chose the default rate table, not the one
1283                          * where 1 = 2 Mbps */
1284                         output_byte(FD_DRIVESPEC);
1285                         if (need_more_output() == MORE_OUTPUT) {
1286                                 output_byte(UNIT(current_drive));
1287                                 output_byte(0xc0);
1288                         }
1289                 }
1290                 break;
1291         case 2:
1292                 dtr = 250;
1293                 break;
1294         }
1295
1296         if (FDCS->version >= FDC_82072) {
1297                 scale_dtr = dtr;
1298                 hlt_max_code = 0x00;    /* 0==256msec*dtr0/dtr (not linear!) */
1299                 hut_max_code = 0x0;     /* 0==256msec*dtr0/dtr (not linear!) */
1300         }
1301
1302         /* Convert step rate from microseconds to milliseconds and 4 bits */
1303         srt = 16 - DIV_ROUND_UP(DP->srt * scale_dtr / 1000, NOMINAL_DTR);
1304         if (slow_floppy)
1305                 srt = srt / 4;
1306
1307         SUPBOUND(srt, 0xf);
1308         INFBOUND(srt, 0);
1309
1310         hlt = DIV_ROUND_UP(DP->hlt * scale_dtr / 2, NOMINAL_DTR);
1311         if (hlt < 0x01)
1312                 hlt = 0x01;
1313         else if (hlt > 0x7f)
1314                 hlt = hlt_max_code;
1315
1316         hut = DIV_ROUND_UP(DP->hut * scale_dtr / 16, NOMINAL_DTR);
1317         if (hut < 0x1)
1318                 hut = 0x1;
1319         else if (hut > 0xf)
1320                 hut = hut_max_code;
1321
1322         spec1 = (srt << 4) | hut;
1323         spec2 = (hlt << 1) | (use_virtual_dma & 1);
1324
1325         /* If these parameters did not change, just return with success */
1326         if (FDCS->spec1 != spec1 || FDCS->spec2 != spec2) {
1327                 /* Go ahead and set spec1 and spec2 */
1328                 output_byte(FD_SPECIFY);
1329                 output_byte(FDCS->spec1 = spec1);
1330                 output_byte(FDCS->spec2 = spec2);
1331         }
1332 }                               /* fdc_specify */
1333
1334 /* Set the FDC's data transfer rate on behalf of the specified drive.
1335  * NOTE: with 82072/82077 FDCs, changing the data rate requires a reissue
1336  * of the specify command (i.e. using the fdc_specify function).
1337  */
1338 static int fdc_dtr(void)
1339 {
1340         /* If data rate not already set to desired value, set it. */
1341         if ((raw_cmd->rate & 3) == FDCS->dtr)
1342                 return 0;
1343
1344         /* Set dtr */
1345         fd_outb(raw_cmd->rate & 3, FD_DCR);
1346
1347         /* TODO: some FDC/drive combinations (C&T 82C711 with TEAC 1.2MB)
1348          * need a stabilization period of several milliseconds to be
1349          * enforced after data rate changes before R/W operations.
1350          * Pause 5 msec to avoid trouble. (Needs to be 2 jiffies)
1351          */
1352         FDCS->dtr = raw_cmd->rate & 3;
1353         return fd_wait_for_completion(jiffies + 2UL * HZ / 100, floppy_ready);
1354 }                               /* fdc_dtr */
1355
1356 static void tell_sector(void)
1357 {
1358         pr_cont(": track %d, head %d, sector %d, size %d",
1359                 R_TRACK, R_HEAD, R_SECTOR, R_SIZECODE);
1360 }                               /* tell_sector */
1361
1362 static void print_errors(void)
1363 {
1364         DPRINT("");
1365         if (ST0 & ST0_ECE) {
1366                 pr_cont("Recalibrate failed!");
1367         } else if (ST2 & ST2_CRC) {
1368                 pr_cont("data CRC error");
1369                 tell_sector();
1370         } else if (ST1 & ST1_CRC) {
1371                 pr_cont("CRC error");
1372                 tell_sector();
1373         } else if ((ST1 & (ST1_MAM | ST1_ND)) ||
1374                    (ST2 & ST2_MAM)) {
1375                 if (!probing) {
1376                         pr_cont("sector not found");
1377                         tell_sector();
1378                 } else
1379                         pr_cont("probe failed...");
1380         } else if (ST2 & ST2_WC) {      /* seek error */
1381                 pr_cont("wrong cylinder");
1382         } else if (ST2 & ST2_BC) {      /* cylinder marked as bad */
1383                 pr_cont("bad cylinder");
1384         } else {
1385                 pr_cont("unknown error. ST[0..2] are: 0x%x 0x%x 0x%x",
1386                         ST0, ST1, ST2);
1387                 tell_sector();
1388         }
1389         pr_cont("\n");
1390 }
1391
1392 /*
1393  * OK, this error interpreting routine is called after a
1394  * DMA read/write has succeeded
1395  * or failed, so we check the results, and copy any buffers.
1396  * hhb: Added better error reporting.
1397  * ak: Made this into a separate routine.
1398  */
1399 static int interpret_errors(void)
1400 {
1401         char bad;
1402
1403         if (inr != 7) {
1404                 DPRINT("-- FDC reply error\n");
1405                 FDCS->reset = 1;
1406                 return 1;
1407         }
1408
1409         /* check IC to find cause of interrupt */
1410         switch (ST0 & ST0_INTR) {
1411         case 0x40:              /* error occurred during command execution */
1412                 if (ST1 & ST1_EOC)
1413                         return 0;       /* occurs with pseudo-DMA */
1414                 bad = 1;
1415                 if (ST1 & ST1_WP) {
1416                         DPRINT("Drive is write protected\n");
1417                         clear_bit(FD_DISK_WRITABLE_BIT, &DRS->flags);
1418                         cont->done(0);
1419                         bad = 2;
1420                 } else if (ST1 & ST1_ND) {
1421                         set_bit(FD_NEED_TWADDLE_BIT, &DRS->flags);
1422                 } else if (ST1 & ST1_OR) {
1423                         if (DP->flags & FTD_MSG)
1424                                 DPRINT("Over/Underrun - retrying\n");
1425                         bad = 0;
1426                 } else if (*errors >= DP->max_errors.reporting) {
1427                         print_errors();
1428                 }
1429                 if (ST2 & ST2_WC || ST2 & ST2_BC)
1430                         /* wrong cylinder => recal */
1431                         DRS->track = NEED_2_RECAL;
1432                 return bad;
1433         case 0x80:              /* invalid command given */
1434                 DPRINT("Invalid FDC command given!\n");
1435                 cont->done(0);
1436                 return 2;
1437         case 0xc0:
1438                 DPRINT("Abnormal termination caused by polling\n");
1439                 cont->error();
1440                 return 2;
1441         default:                /* (0) Normal command termination */
1442                 return 0;
1443         }
1444 }
1445
1446 /*
1447  * This routine is called when everything should be correctly set up
1448  * for the transfer (i.e. floppy motor is on, the correct floppy is
1449  * selected, and the head is sitting on the right track).
1450  */
1451 static void setup_rw_floppy(void)
1452 {
1453         int i;
1454         int r;
1455         int flags;
1456         int dflags;
1457         unsigned long ready_date;
1458         void (*function)(void);
1459
1460         flags = raw_cmd->flags;
1461         if (flags & (FD_RAW_READ | FD_RAW_WRITE))
1462                 flags |= FD_RAW_INTR;
1463
1464         if ((flags & FD_RAW_SPIN) && !(flags & FD_RAW_NO_MOTOR)) {
1465                 ready_date = DRS->spinup_date + DP->spinup;
1466                 /* If spinup will take a long time, rerun scandrives
1467                  * again just before spinup completion. Beware that
1468                  * after scandrives, we must again wait for selection.
1469                  */
1470                 if (time_after(ready_date, jiffies + DP->select_delay)) {
1471                         ready_date -= DP->select_delay;
1472                         function = floppy_start;
1473                 } else
1474                         function = setup_rw_floppy;
1475
1476                 /* wait until the floppy is spinning fast enough */
1477                 if (fd_wait_for_completion(ready_date, function))
1478                         return;
1479         }
1480         dflags = DRS->flags;
1481
1482         if ((flags & FD_RAW_READ) || (flags & FD_RAW_WRITE))
1483                 setup_DMA();
1484
1485         if (flags & FD_RAW_INTR)
1486                 do_floppy = main_command_interrupt;
1487
1488         r = 0;
1489         for (i = 0; i < raw_cmd->cmd_count; i++)
1490                 r |= output_byte(raw_cmd->cmd[i]);
1491
1492         debugt(__func__, "rw_command");
1493
1494         if (r) {
1495                 cont->error();
1496                 reset_fdc();
1497                 return;
1498         }
1499
1500         if (!(flags & FD_RAW_INTR)) {
1501                 inr = result();
1502                 cont->interrupt();
1503         } else if (flags & FD_RAW_NEED_DISK)
1504                 fd_watchdog();
1505 }
1506
1507 static int blind_seek;
1508
1509 /*
1510  * This is the routine called after every seek (or recalibrate) interrupt
1511  * from the floppy controller.
1512  */
1513 static void seek_interrupt(void)
1514 {
1515         debugt(__func__, "");
1516         if (inr != 2 || (ST0 & 0xF8) != 0x20) {
1517                 DPRINT("seek failed\n");
1518                 DRS->track = NEED_2_RECAL;
1519                 cont->error();
1520                 cont->redo();
1521                 return;
1522         }
1523         if (DRS->track >= 0 && DRS->track != ST1 && !blind_seek) {
1524                 debug_dcl(DP->flags,
1525                           "clearing NEWCHANGE flag because of effective seek\n");
1526                 debug_dcl(DP->flags, "jiffies=%lu\n", jiffies);
1527                 clear_bit(FD_DISK_NEWCHANGE_BIT, &DRS->flags);
1528                                         /* effective seek */
1529                 DRS->select_date = jiffies;
1530         }
1531         DRS->track = ST1;
1532         floppy_ready();
1533 }
1534
1535 static void check_wp(void)
1536 {
1537         if (test_bit(FD_VERIFY_BIT, &DRS->flags)) {
1538                                         /* check write protection */
1539                 output_byte(FD_GETSTATUS);
1540                 output_byte(UNIT(current_drive));
1541                 if (result() != 1) {
1542                         FDCS->reset = 1;
1543                         return;
1544                 }
1545                 clear_bit(FD_VERIFY_BIT, &DRS->flags);
1546                 clear_bit(FD_NEED_TWADDLE_BIT, &DRS->flags);
1547                 debug_dcl(DP->flags,
1548                           "checking whether disk is write protected\n");
1549                 debug_dcl(DP->flags, "wp=%x\n", ST3 & 0x40);
1550                 if (!(ST3 & 0x40))
1551                         set_bit(FD_DISK_WRITABLE_BIT, &DRS->flags);
1552                 else
1553                         clear_bit(FD_DISK_WRITABLE_BIT, &DRS->flags);
1554         }
1555 }
1556
1557 static void seek_floppy(void)
1558 {
1559         int track;
1560
1561         blind_seek = 0;
1562
1563         debug_dcl(DP->flags, "calling disk change from %s\n", __func__);
1564
1565         if (!test_bit(FD_DISK_NEWCHANGE_BIT, &DRS->flags) &&
1566             disk_change(current_drive) && (raw_cmd->flags & FD_RAW_NEED_DISK)) {
1567                 /* the media changed flag should be cleared after the seek.
1568                  * If it isn't, this means that there is really no disk in
1569                  * the drive.
1570                  */
1571                 set_bit(FD_DISK_CHANGED_BIT, &DRS->flags);
1572                 cont->done(0);
1573                 cont->redo();
1574                 return;
1575         }
1576         if (DRS->track <= NEED_1_RECAL) {
1577                 recalibrate_floppy();
1578                 return;
1579         } else if (test_bit(FD_DISK_NEWCHANGE_BIT, &DRS->flags) &&
1580                    (raw_cmd->flags & FD_RAW_NEED_DISK) &&
1581                    (DRS->track <= NO_TRACK || DRS->track == raw_cmd->track)) {
1582                 /* we seek to clear the media-changed condition. Does anybody
1583                  * know a more elegant way, which works on all drives? */
1584                 if (raw_cmd->track)
1585                         track = raw_cmd->track - 1;
1586                 else {
1587                         if (DP->flags & FD_SILENT_DCL_CLEAR) {
1588                                 set_dor(fdc, ~(0x10 << UNIT(current_drive)), 0);
1589                                 blind_seek = 1;
1590                                 raw_cmd->flags |= FD_RAW_NEED_SEEK;
1591                         }
1592                         track = 1;
1593                 }
1594         } else {
1595                 check_wp();
1596                 if (raw_cmd->track != DRS->track &&
1597                     (raw_cmd->flags & FD_RAW_NEED_SEEK))
1598                         track = raw_cmd->track;
1599                 else {
1600                         setup_rw_floppy();
1601                         return;
1602                 }
1603         }
1604
1605         do_floppy = seek_interrupt;
1606         output_byte(FD_SEEK);
1607         output_byte(UNIT(current_drive));
1608         if (output_byte(track) < 0) {
1609                 reset_fdc();
1610                 return;
1611         }
1612         debugt(__func__, "");
1613 }
1614
1615 static void recal_interrupt(void)
1616 {
1617         debugt(__func__, "");
1618         if (inr != 2)
1619                 FDCS->reset = 1;
1620         else if (ST0 & ST0_ECE) {
1621                 switch (DRS->track) {
1622                 case NEED_1_RECAL:
1623                         debugt(__func__, "need 1 recal");
1624                         /* after a second recalibrate, we still haven't
1625                          * reached track 0. Probably no drive. Raise an
1626                          * error, as failing immediately might upset
1627                          * computers possessed by the Devil :-) */
1628                         cont->error();
1629                         cont->redo();
1630                         return;
1631                 case NEED_2_RECAL:
1632                         debugt(__func__, "need 2 recal");
1633                         /* If we already did a recalibrate,
1634                          * and we are not at track 0, this
1635                          * means we have moved. (The only way
1636                          * not to move at recalibration is to
1637                          * be already at track 0.) Clear the
1638                          * new change flag */
1639                         debug_dcl(DP->flags,
1640                                   "clearing NEWCHANGE flag because of second recalibrate\n");
1641
1642                         clear_bit(FD_DISK_NEWCHANGE_BIT, &DRS->flags);
1643                         DRS->select_date = jiffies;
1644                         /* fall through */
1645                 default:
1646                         debugt(__func__, "default");
1647                         /* Recalibrate moves the head by at
1648                          * most 80 steps. If after one
1649                          * recalibrate we don't have reached
1650                          * track 0, this might mean that we
1651                          * started beyond track 80.  Try
1652                          * again.  */
1653                         DRS->track = NEED_1_RECAL;
1654                         break;
1655                 }
1656         } else
1657                 DRS->track = ST1;
1658         floppy_ready();
1659 }
1660
1661 static void print_result(char *message, int inr)
1662 {
1663         int i;
1664
1665         DPRINT("%s ", message);
1666         if (inr >= 0)
1667                 for (i = 0; i < inr; i++)
1668                         pr_cont("repl[%d]=%x ", i, reply_buffer[i]);
1669         pr_cont("\n");
1670 }
1671
1672 /* interrupt handler. Note that this can be called externally on the Sparc */
1673 irqreturn_t floppy_interrupt(int irq, void *dev_id)
1674 {
1675         int do_print;
1676         unsigned long f;
1677         void (*handler)(void) = do_floppy;
1678
1679         lasthandler = handler;
1680         interruptjiffies = jiffies;
1681
1682         f = claim_dma_lock();
1683         fd_disable_dma();
1684         release_dma_lock(f);
1685
1686         do_floppy = NULL;
1687         if (fdc >= N_FDC || FDCS->address == -1) {
1688                 /* we don't even know which FDC is the culprit */
1689                 pr_info("DOR0=%x\n", fdc_state[0].dor);
1690                 pr_info("floppy interrupt on bizarre fdc %d\n", fdc);
1691                 pr_info("handler=%pf\n", handler);
1692                 is_alive(__func__, "bizarre fdc");
1693                 return IRQ_NONE;
1694         }
1695
1696         FDCS->reset = 0;
1697         /* We have to clear the reset flag here, because apparently on boxes
1698          * with level triggered interrupts (PS/2, Sparc, ...), it is needed to
1699          * emit SENSEI's to clear the interrupt line. And FDCS->reset blocks the
1700          * emission of the SENSEI's.
1701          * It is OK to emit floppy commands because we are in an interrupt
1702          * handler here, and thus we have to fear no interference of other
1703          * activity.
1704          */
1705
1706         do_print = !handler && print_unex && initialized;
1707
1708         inr = result();
1709         if (do_print)
1710                 print_result("unexpected interrupt", inr);
1711         if (inr == 0) {
1712                 int max_sensei = 4;
1713                 do {
1714                         output_byte(FD_SENSEI);
1715                         inr = result();
1716                         if (do_print)
1717                                 print_result("sensei", inr);
1718                         max_sensei--;
1719                 } while ((ST0 & 0x83) != UNIT(current_drive) &&
1720                          inr == 2 && max_sensei);
1721         }
1722         if (!handler) {
1723                 FDCS->reset = 1;
1724                 return IRQ_NONE;
1725         }
1726         schedule_bh(handler);
1727         is_alive(__func__, "normal interrupt end");
1728
1729         /* FIXME! Was it really for us? */
1730         return IRQ_HANDLED;
1731 }
1732
1733 static void recalibrate_floppy(void)
1734 {
1735         debugt(__func__, "");
1736         do_floppy = recal_interrupt;
1737         output_byte(FD_RECALIBRATE);
1738         if (output_byte(UNIT(current_drive)) < 0)
1739                 reset_fdc();
1740 }
1741
1742 /*
1743  * Must do 4 FD_SENSEIs after reset because of ``drive polling''.
1744  */
1745 static void reset_interrupt(void)
1746 {
1747         debugt(__func__, "");
1748         result();               /* get the status ready for set_fdc */
1749         if (FDCS->reset) {
1750                 pr_info("reset set in interrupt, calling %pf\n", cont->error);
1751                 cont->error();  /* a reset just after a reset. BAD! */
1752         }
1753         cont->redo();
1754 }
1755
1756 /*
1757  * reset is done by pulling bit 2 of DOR low for a while (old FDCs),
1758  * or by setting the self clearing bit 7 of STATUS (newer FDCs)
1759  */
1760 static void reset_fdc(void)
1761 {
1762         unsigned long flags;
1763
1764         do_floppy = reset_interrupt;
1765         FDCS->reset = 0;
1766         reset_fdc_info(0);
1767
1768         /* Pseudo-DMA may intercept 'reset finished' interrupt.  */
1769         /* Irrelevant for systems with true DMA (i386).          */
1770
1771         flags = claim_dma_lock();
1772         fd_disable_dma();
1773         release_dma_lock(flags);
1774
1775         if (FDCS->version >= FDC_82072A)
1776                 fd_outb(0x80 | (FDCS->dtr & 3), FD_STATUS);
1777         else {
1778                 fd_outb(FDCS->dor & ~0x04, FD_DOR);
1779                 udelay(FD_RESET_DELAY);
1780                 fd_outb(FDCS->dor, FD_DOR);
1781         }
1782 }
1783
1784 static void show_floppy(void)
1785 {
1786         int i;
1787
1788         pr_info("\n");
1789         pr_info("floppy driver state\n");
1790         pr_info("-------------------\n");
1791         pr_info("now=%lu last interrupt=%lu diff=%lu last called handler=%pf\n",
1792                 jiffies, interruptjiffies, jiffies - interruptjiffies,
1793                 lasthandler);
1794
1795         pr_info("timeout_message=%s\n", timeout_message);
1796         pr_info("last output bytes:\n");
1797         for (i = 0; i < OLOGSIZE; i++)
1798                 pr_info("%2x %2x %lu\n",
1799                         output_log[(i + output_log_pos) % OLOGSIZE].data,
1800                         output_log[(i + output_log_pos) % OLOGSIZE].status,
1801                         output_log[(i + output_log_pos) % OLOGSIZE].jiffies);
1802         pr_info("last result at %lu\n", resultjiffies);
1803         pr_info("last redo_fd_request at %lu\n", lastredo);
1804         print_hex_dump(KERN_INFO, "", DUMP_PREFIX_NONE, 16, 1,
1805                        reply_buffer, resultsize, true);
1806
1807         pr_info("status=%x\n", fd_inb(FD_STATUS));
1808         pr_info("fdc_busy=%lu\n", fdc_busy);
1809         if (do_floppy)
1810                 pr_info("do_floppy=%pf\n", do_floppy);
1811         if (work_pending(&floppy_work))
1812                 pr_info("floppy_work.func=%pf\n", floppy_work.func);
1813         if (delayed_work_pending(&fd_timer))
1814                 pr_info("delayed work.function=%p expires=%ld\n",
1815                        fd_timer.work.func,
1816                        fd_timer.timer.expires - jiffies);
1817         if (delayed_work_pending(&fd_timeout))
1818                 pr_info("timer_function=%p expires=%ld\n",
1819                        fd_timeout.work.func,
1820                        fd_timeout.timer.expires - jiffies);
1821
1822         pr_info("cont=%p\n", cont);
1823         pr_info("current_req=%p\n", current_req);
1824         pr_info("command_status=%d\n", command_status);
1825         pr_info("\n");
1826 }
1827
1828 static void floppy_shutdown(struct work_struct *arg)
1829 {
1830         unsigned long flags;
1831
1832         if (initialized)
1833                 show_floppy();
1834         cancel_activity();
1835
1836         flags = claim_dma_lock();
1837         fd_disable_dma();
1838         release_dma_lock(flags);
1839
1840         /* avoid dma going to a random drive after shutdown */
1841
1842         if (initialized)
1843                 DPRINT("floppy timeout called\n");
1844         FDCS->reset = 1;
1845         if (cont) {
1846                 cont->done(0);
1847                 cont->redo();   /* this will recall reset when needed */
1848         } else {
1849                 pr_info("no cont in shutdown!\n");
1850                 process_fd_request();
1851         }
1852         is_alive(__func__, "");
1853 }
1854
1855 /* start motor, check media-changed condition and write protection */
1856 static int start_motor(void (*function)(void))
1857 {
1858         int mask;
1859         int data;
1860
1861         mask = 0xfc;
1862         data = UNIT(current_drive);
1863         if (!(raw_cmd->flags & FD_RAW_NO_MOTOR)) {
1864                 if (!(FDCS->dor & (0x10 << UNIT(current_drive)))) {
1865                         set_debugt();
1866                         /* no read since this drive is running */
1867                         DRS->first_read_date = 0;
1868                         /* note motor start time if motor is not yet running */
1869                         DRS->spinup_date = jiffies;
1870                         data |= (0x10 << UNIT(current_drive));
1871                 }
1872         } else if (FDCS->dor & (0x10 << UNIT(current_drive)))
1873                 mask &= ~(0x10 << UNIT(current_drive));
1874
1875         /* starts motor and selects floppy */
1876         del_timer(motor_off_timer + current_drive);
1877         set_dor(fdc, mask, data);
1878
1879         /* wait_for_completion also schedules reset if needed. */
1880         return fd_wait_for_completion(DRS->select_date + DP->select_delay,
1881                                       function);
1882 }
1883
1884 static void floppy_ready(void)
1885 {
1886         if (FDCS->reset) {
1887                 reset_fdc();
1888                 return;
1889         }
1890         if (start_motor(floppy_ready))
1891                 return;
1892         if (fdc_dtr())
1893                 return;
1894
1895         debug_dcl(DP->flags, "calling disk change from floppy_ready\n");
1896         if (!(raw_cmd->flags & FD_RAW_NO_MOTOR) &&
1897             disk_change(current_drive) && !DP->select_delay)
1898                 twaddle();      /* this clears the dcl on certain
1899                                  * drive/controller combinations */
1900
1901 #ifdef fd_chose_dma_mode
1902         if ((raw_cmd->flags & FD_RAW_READ) || (raw_cmd->flags & FD_RAW_WRITE)) {
1903                 unsigned long flags = claim_dma_lock();
1904                 fd_chose_dma_mode(raw_cmd->kernel_data, raw_cmd->length);
1905                 release_dma_lock(flags);
1906         }
1907 #endif
1908
1909         if (raw_cmd->flags & (FD_RAW_NEED_SEEK | FD_RAW_NEED_DISK)) {
1910                 perpendicular_mode();
1911                 fdc_specify();  /* must be done here because of hut, hlt ... */
1912                 seek_floppy();
1913         } else {
1914                 if ((raw_cmd->flags & FD_RAW_READ) ||
1915                     (raw_cmd->flags & FD_RAW_WRITE))
1916                         fdc_specify();
1917                 setup_rw_floppy();
1918         }
1919 }
1920
1921 static void floppy_start(void)
1922 {
1923         reschedule_timeout(current_reqD, "floppy start");
1924
1925         scandrives();
1926         debug_dcl(DP->flags, "setting NEWCHANGE in floppy_start\n");
1927         set_bit(FD_DISK_NEWCHANGE_BIT, &DRS->flags);
1928         floppy_ready();
1929 }
1930
1931 /*
1932  * ========================================================================
1933  * here ends the bottom half. Exported routines are:
1934  * floppy_start, floppy_off, floppy_ready, lock_fdc, unlock_fdc, set_fdc,
1935  * start_motor, reset_fdc, reset_fdc_info, interpret_errors.
1936  * Initialization also uses output_byte, result, set_dor, floppy_interrupt
1937  * and set_dor.
1938  * ========================================================================
1939  */
1940 /*
1941  * General purpose continuations.
1942  * ==============================
1943  */
1944
1945 static void do_wakeup(void)
1946 {
1947         reschedule_timeout(MAXTIMEOUT, "do wakeup");
1948         cont = NULL;
1949         command_status += 2;
1950         wake_up(&command_done);
1951 }
1952
1953 static const struct cont_t wakeup_cont = {
1954         .interrupt      = empty,
1955         .redo           = do_wakeup,
1956         .error          = empty,
1957         .done           = (done_f)empty
1958 };
1959
1960 static const struct cont_t intr_cont = {
1961         .interrupt      = empty,
1962         .redo           = process_fd_request,
1963         .error          = empty,
1964         .done           = (done_f)empty
1965 };
1966
1967 static int wait_til_done(void (*handler)(void), bool interruptible)
1968 {
1969         int ret;
1970
1971         schedule_bh(handler);
1972
1973         if (interruptible)
1974                 wait_event_interruptible(command_done, command_status >= 2);
1975         else
1976                 wait_event(command_done, command_status >= 2);
1977
1978         if (command_status < 2) {
1979                 cancel_activity();
1980                 cont = &intr_cont;
1981                 reset_fdc();
1982                 return -EINTR;
1983         }
1984
1985         if (FDCS->reset)
1986                 command_status = FD_COMMAND_ERROR;
1987         if (command_status == FD_COMMAND_OKAY)
1988                 ret = 0;
1989         else
1990                 ret = -EIO;
1991         command_status = FD_COMMAND_NONE;
1992         return ret;
1993 }
1994
1995 static void generic_done(int result)
1996 {
1997         command_status = result;
1998         cont = &wakeup_cont;
1999 }
2000
2001 static void generic_success(void)
2002 {
2003         cont->done(1);
2004 }
2005
2006 static void generic_failure(void)
2007 {
2008         cont->done(0);
2009 }
2010
2011 static void success_and_wakeup(void)
2012 {
2013         generic_success();
2014         cont->redo();
2015 }
2016
2017 /*
2018  * formatting and rw support.
2019  * ==========================
2020  */
2021
2022 static int next_valid_format(void)
2023 {
2024         int probed_format;
2025
2026         probed_format = DRS->probed_format;
2027         while (1) {
2028                 if (probed_format >= 8 || !DP->autodetect[probed_format]) {
2029                         DRS->probed_format = 0;
2030                         return 1;
2031                 }
2032                 if (floppy_type[DP->autodetect[probed_format]].sect) {
2033                         DRS->probed_format = probed_format;
2034                         return 0;
2035                 }
2036                 probed_format++;
2037         }
2038 }
2039
2040 static void bad_flp_intr(void)
2041 {
2042         int err_count;
2043
2044         if (probing) {
2045                 DRS->probed_format++;
2046                 if (!next_valid_format())
2047                         return;
2048         }
2049         err_count = ++(*errors);
2050         INFBOUND(DRWE->badness, err_count);
2051         if (err_count > DP->max_errors.abort)
2052                 cont->done(0);
2053         if (err_count > DP->max_errors.reset)
2054                 FDCS->reset = 1;
2055         else if (err_count > DP->max_errors.recal)
2056                 DRS->track = NEED_2_RECAL;
2057 }
2058
2059 static void set_floppy(int drive)
2060 {
2061         int type = ITYPE(UDRS->fd_device);
2062
2063         if (type)
2064                 _floppy = floppy_type + type;
2065         else
2066                 _floppy = current_type[drive];
2067 }
2068
2069 /*
2070  * formatting support.
2071  * ===================
2072  */
2073 static void format_interrupt(void)
2074 {
2075         switch (interpret_errors()) {
2076         case 1:
2077                 cont->error();
2078         case 2:
2079                 break;
2080         case 0:
2081                 cont->done(1);
2082         }
2083         cont->redo();
2084 }
2085
2086 #define FM_MODE(x, y) ((y) & ~(((x)->rate & 0x80) >> 1))
2087 #define CT(x) ((x) | 0xc0)
2088
2089 static void setup_format_params(int track)
2090 {
2091         int n;
2092         int il;
2093         int count;
2094         int head_shift;
2095         int track_shift;
2096         struct fparm {
2097                 unsigned char track, head, sect, size;
2098         } *here = (struct fparm *)floppy_track_buffer;
2099
2100         raw_cmd = &default_raw_cmd;
2101         raw_cmd->track = track;
2102
2103         raw_cmd->flags = (FD_RAW_WRITE | FD_RAW_INTR | FD_RAW_SPIN |
2104                           FD_RAW_NEED_DISK | FD_RAW_NEED_SEEK);
2105         raw_cmd->rate = _floppy->rate & 0x43;
2106         raw_cmd->cmd_count = NR_F;
2107         COMMAND = FM_MODE(_floppy, FD_FORMAT);
2108         DR_SELECT = UNIT(current_drive) + PH_HEAD(_floppy, format_req.head);
2109         F_SIZECODE = FD_SIZECODE(_floppy);
2110         F_SECT_PER_TRACK = _floppy->sect << 2 >> F_SIZECODE;
2111         F_GAP = _floppy->fmt_gap;
2112         F_FILL = FD_FILL_BYTE;
2113
2114         raw_cmd->kernel_data = floppy_track_buffer;
2115         raw_cmd->length = 4 * F_SECT_PER_TRACK;
2116
2117         if (!F_SECT_PER_TRACK)
2118                 return;
2119
2120         /* allow for about 30ms for data transport per track */
2121         head_shift = (F_SECT_PER_TRACK + 5) / 6;
2122
2123         /* a ``cylinder'' is two tracks plus a little stepping time */
2124         track_shift = 2 * head_shift + 3;
2125
2126         /* position of logical sector 1 on this track */
2127         n = (track_shift * format_req.track + head_shift * format_req.head)
2128             % F_SECT_PER_TRACK;
2129
2130         /* determine interleave */
2131         il = 1;
2132         if (_floppy->fmt_gap < 0x22)
2133                 il++;
2134
2135         /* initialize field */
2136         for (count = 0; count < F_SECT_PER_TRACK; ++count) {
2137                 here[count].track = format_req.track;
2138                 here[count].head = format_req.head;
2139                 here[count].sect = 0;
2140                 here[count].size = F_SIZECODE;
2141         }
2142         /* place logical sectors */
2143         for (count = 1; count <= F_SECT_PER_TRACK; ++count) {
2144                 here[n].sect = count;
2145                 n = (n + il) % F_SECT_PER_TRACK;
2146                 if (here[n].sect) {     /* sector busy, find next free sector */
2147                         ++n;
2148                         if (n >= F_SECT_PER_TRACK) {
2149                                 n -= F_SECT_PER_TRACK;
2150                                 while (here[n].sect)
2151                                         ++n;
2152                         }
2153                 }
2154         }
2155         if (_floppy->stretch & FD_SECTBASEMASK) {
2156                 for (count = 0; count < F_SECT_PER_TRACK; count++)
2157                         here[count].sect += FD_SECTBASE(_floppy) - 1;
2158         }
2159 }
2160
2161 static void redo_format(void)
2162 {
2163         buffer_track = -1;
2164         setup_format_params(format_req.track << STRETCH(_floppy));
2165         floppy_start();
2166         debugt(__func__, "queue format request");
2167 }
2168
2169 static const struct cont_t format_cont = {
2170         .interrupt      = format_interrupt,
2171         .redo           = redo_format,
2172         .error          = bad_flp_intr,
2173         .done           = generic_done
2174 };
2175
2176 static int do_format(int drive, struct format_descr *tmp_format_req)
2177 {
2178         int ret;
2179
2180         if (lock_fdc(drive, true))
2181                 return -EINTR;
2182
2183         set_floppy(drive);
2184         if (!_floppy ||
2185             _floppy->track > DP->tracks ||
2186             tmp_format_req->track >= _floppy->track ||
2187             tmp_format_req->head >= _floppy->head ||
2188             (_floppy->sect << 2) % (1 << FD_SIZECODE(_floppy)) ||
2189             !_floppy->fmt_gap) {
2190                 process_fd_request();
2191                 return -EINVAL;
2192         }
2193         format_req = *tmp_format_req;
2194         format_errors = 0;
2195         cont = &format_cont;
2196         errors = &format_errors;
2197         ret = wait_til_done(redo_format, true);
2198         if (ret == -EINTR)
2199                 return -EINTR;
2200         process_fd_request();
2201         return ret;
2202 }
2203
2204 /*
2205  * Buffer read/write and support
2206  * =============================
2207  */
2208
2209 static void floppy_end_request(struct request *req, int error)
2210 {
2211         unsigned int nr_sectors = current_count_sectors;
2212         unsigned int drive = (unsigned long)req->rq_disk->private_data;
2213
2214         /* current_count_sectors can be zero if transfer failed */
2215         if (error)
2216                 nr_sectors = blk_rq_cur_sectors(req);
2217         if (__blk_end_request(req, error, nr_sectors << 9))
2218                 return;
2219
2220         /* We're done with the request */
2221         floppy_off(drive);
2222         current_req = NULL;
2223 }
2224
2225 /* new request_done. Can handle physical sectors which are smaller than a
2226  * logical buffer */
2227 static void request_done(int uptodate)
2228 {
2229         struct request *req = current_req;
2230         struct request_queue *q;
2231         unsigned long flags;
2232         int block;
2233         char msg[sizeof("request done ") + sizeof(int) * 3];
2234
2235         probing = 0;
2236         snprintf(msg, sizeof(msg), "request done %d", uptodate);
2237         reschedule_timeout(MAXTIMEOUT, msg);
2238
2239         if (!req) {
2240                 pr_info("floppy.c: no request in request_done\n");
2241                 return;
2242         }
2243
2244         q = req->q;
2245
2246         if (uptodate) {
2247                 /* maintain values for invalidation on geometry
2248                  * change */
2249                 block = current_count_sectors + blk_rq_pos(req);
2250                 INFBOUND(DRS->maxblock, block);
2251                 if (block > _floppy->sect)
2252                         DRS->maxtrack = 1;
2253
2254                 /* unlock chained buffers */
2255                 spin_lock_irqsave(q->queue_lock, flags);
2256                 floppy_end_request(req, 0);
2257                 spin_unlock_irqrestore(q->queue_lock, flags);
2258         } else {
2259                 if (rq_data_dir(req) == WRITE) {
2260                         /* record write error information */
2261                         DRWE->write_errors++;
2262                         if (DRWE->write_errors == 1) {
2263                                 DRWE->first_error_sector = blk_rq_pos(req);
2264                                 DRWE->first_error_generation = DRS->generation;
2265                         }
2266                         DRWE->last_error_sector = blk_rq_pos(req);
2267                         DRWE->last_error_generation = DRS->generation;
2268                 }
2269                 spin_lock_irqsave(q->queue_lock, flags);
2270                 floppy_end_request(req, -EIO);
2271                 spin_unlock_irqrestore(q->queue_lock, flags);
2272         }
2273 }
2274
2275 /* Interrupt handler evaluating the result of the r/w operation */
2276 static void rw_interrupt(void)
2277 {
2278         int eoc;
2279         int ssize;
2280         int heads;
2281         int nr_sectors;
2282
2283         if (R_HEAD >= 2) {
2284                 /* some Toshiba floppy controllers occasionnally seem to
2285                  * return bogus interrupts after read/write operations, which
2286                  * can be recognized by a bad head number (>= 2) */
2287                 return;
2288         }
2289
2290         if (!DRS->first_read_date)
2291                 DRS->first_read_date = jiffies;
2292
2293         nr_sectors = 0;
2294         ssize = DIV_ROUND_UP(1 << SIZECODE, 4);
2295
2296         if (ST1 & ST1_EOC)
2297                 eoc = 1;
2298         else
2299                 eoc = 0;
2300
2301         if (COMMAND & 0x80)
2302                 heads = 2;
2303         else
2304                 heads = 1;
2305
2306         nr_sectors = (((R_TRACK - TRACK) * heads +
2307                        R_HEAD - HEAD) * SECT_PER_TRACK +
2308                       R_SECTOR - SECTOR + eoc) << SIZECODE >> 2;
2309
2310         if (nr_sectors / ssize >
2311             DIV_ROUND_UP(in_sector_offset + current_count_sectors, ssize)) {
2312                 DPRINT("long rw: %x instead of %lx\n",
2313                        nr_sectors, current_count_sectors);
2314                 pr_info("rs=%d s=%d\n", R_SECTOR, SECTOR);
2315                 pr_info("rh=%d h=%d\n", R_HEAD, HEAD);
2316                 pr_info("rt=%d t=%d\n", R_TRACK, TRACK);
2317                 pr_info("heads=%d eoc=%d\n", heads, eoc);
2318                 pr_info("spt=%d st=%d ss=%d\n",
2319                         SECT_PER_TRACK, fsector_t, ssize);
2320                 pr_info("in_sector_offset=%d\n", in_sector_offset);
2321         }
2322
2323         nr_sectors -= in_sector_offset;
2324         INFBOUND(nr_sectors, 0);
2325         SUPBOUND(current_count_sectors, nr_sectors);
2326
2327         switch (interpret_errors()) {
2328         case 2:
2329                 cont->redo();
2330                 return;
2331         case 1:
2332                 if (!current_count_sectors) {
2333                         cont->error();
2334                         cont->redo();
2335                         return;
2336                 }
2337                 break;
2338         case 0:
2339                 if (!current_count_sectors) {
2340                         cont->redo();
2341                         return;
2342                 }
2343                 current_type[current_drive] = _floppy;
2344                 floppy_sizes[TOMINOR(current_drive)] = _floppy->size;
2345                 break;
2346         }
2347
2348         if (probing) {
2349                 if (DP->flags & FTD_MSG)
2350                         DPRINT("Auto-detected floppy type %s in fd%d\n",
2351                                _floppy->name, current_drive);
2352                 current_type[current_drive] = _floppy;
2353                 floppy_sizes[TOMINOR(current_drive)] = _floppy->size;
2354                 probing = 0;
2355         }
2356
2357         if (CT(COMMAND) != FD_READ ||
2358             raw_cmd->kernel_data == bio_data(current_req->bio)) {
2359                 /* transfer directly from buffer */
2360                 cont->done(1);
2361         } else if (CT(COMMAND) == FD_READ) {
2362                 buffer_track = raw_cmd->track;
2363                 buffer_drive = current_drive;
2364                 INFBOUND(buffer_max, nr_sectors + fsector_t);
2365         }
2366         cont->redo();
2367 }
2368
2369 /* Compute maximal contiguous buffer size. */
2370 static int buffer_chain_size(void)
2371 {
2372         struct bio_vec bv;
2373         int size;
2374         struct req_iterator iter;
2375         char *base;
2376
2377         base = bio_data(current_req->bio);
2378         size = 0;
2379
2380         rq_for_each_segment(bv, current_req, iter) {
2381                 if (page_address(bv.bv_page) + bv.bv_offset != base + size)
2382                         break;
2383
2384                 size += bv.bv_len;
2385         }
2386
2387         return size >> 9;
2388 }
2389
2390 /* Compute the maximal transfer size */
2391 static int transfer_size(int ssize, int max_sector, int max_size)
2392 {
2393         SUPBOUND(max_sector, fsector_t + max_size);
2394
2395         /* alignment */
2396         max_sector -= (max_sector % _floppy->sect) % ssize;
2397
2398         /* transfer size, beginning not aligned */
2399         current_count_sectors = max_sector - fsector_t;
2400
2401         return max_sector;
2402 }
2403
2404 /*
2405  * Move data from/to the track buffer to/from the buffer cache.
2406  */
2407 static void copy_buffer(int ssize, int max_sector, int max_sector_2)
2408 {
2409         int remaining;          /* number of transferred 512-byte sectors */
2410         struct bio_vec bv;
2411         char *buffer;
2412         char *dma_buffer;
2413         int size;
2414         struct req_iterator iter;
2415
2416         max_sector = transfer_size(ssize,
2417                                    min(max_sector, max_sector_2),
2418                                    blk_rq_sectors(current_req));
2419
2420         if (current_count_sectors <= 0 && CT(COMMAND) == FD_WRITE &&
2421             buffer_max > fsector_t + blk_rq_sectors(current_req))
2422                 current_count_sectors = min_t(int, buffer_max - fsector_t,
2423                                               blk_rq_sectors(current_req));
2424
2425         remaining = current_count_sectors << 9;
2426         if (remaining > blk_rq_bytes(current_req) && CT(COMMAND) == FD_WRITE) {
2427                 DPRINT("in copy buffer\n");
2428                 pr_info("current_count_sectors=%ld\n", current_count_sectors);
2429                 pr_info("remaining=%d\n", remaining >> 9);
2430                 pr_info("current_req->nr_sectors=%u\n",
2431                         blk_rq_sectors(current_req));
2432                 pr_info("current_req->current_nr_sectors=%u\n",
2433                         blk_rq_cur_sectors(current_req));
2434                 pr_info("max_sector=%d\n", max_sector);
2435                 pr_info("ssize=%d\n", ssize);
2436         }
2437
2438         buffer_max = max(max_sector, buffer_max);
2439
2440         dma_buffer = floppy_track_buffer + ((fsector_t - buffer_min) << 9);
2441
2442         size = blk_rq_cur_bytes(current_req);
2443
2444         rq_for_each_segment(bv, current_req, iter) {
2445                 if (!remaining)
2446                         break;
2447
2448                 size = bv.bv_len;
2449                 SUPBOUND(size, remaining);
2450
2451                 buffer = page_address(bv.bv_page) + bv.bv_offset;
2452                 if (dma_buffer + size >
2453                     floppy_track_buffer + (max_buffer_sectors << 10) ||
2454                     dma_buffer < floppy_track_buffer) {
2455                         DPRINT("buffer overrun in copy buffer %d\n",
2456                                (int)((floppy_track_buffer - dma_buffer) >> 9));
2457                         pr_info("fsector_t=%d buffer_min=%d\n",
2458                                 fsector_t, buffer_min);
2459                         pr_info("current_count_sectors=%ld\n",
2460                                 current_count_sectors);
2461                         if (CT(COMMAND) == FD_READ)
2462                                 pr_info("read\n");
2463                         if (CT(COMMAND) == FD_WRITE)
2464                                 pr_info("write\n");
2465                         break;
2466                 }
2467                 if (((unsigned long)buffer) % 512)
2468                         DPRINT("%p buffer not aligned\n", buffer);
2469
2470                 if (CT(COMMAND) == FD_READ)
2471                         memcpy(buffer, dma_buffer, size);
2472                 else
2473                         memcpy(dma_buffer, buffer, size);
2474
2475                 remaining -= size;
2476                 dma_buffer += size;
2477         }
2478         if (remaining) {
2479                 if (remaining > 0)
2480                         max_sector -= remaining >> 9;
2481                 DPRINT("weirdness: remaining %d\n", remaining >> 9);
2482         }
2483 }
2484
2485 /* work around a bug in pseudo DMA
2486  * (on some FDCs) pseudo DMA does not stop when the CPU stops
2487  * sending data.  Hence we need a different way to signal the
2488  * transfer length:  We use SECT_PER_TRACK.  Unfortunately, this
2489  * does not work with MT, hence we can only transfer one head at
2490  * a time
2491  */
2492 static void virtualdmabug_workaround(void)
2493 {
2494         int hard_sectors;
2495         int end_sector;
2496
2497         if (CT(COMMAND) == FD_WRITE) {
2498                 COMMAND &= ~0x80;       /* switch off multiple track mode */
2499
2500                 hard_sectors = raw_cmd->length >> (7 + SIZECODE);
2501                 end_sector = SECTOR + hard_sectors - 1;
2502                 if (end_sector > SECT_PER_TRACK) {
2503                         pr_info("too many sectors %d > %d\n",
2504                                 end_sector, SECT_PER_TRACK);
2505                         return;
2506                 }
2507                 SECT_PER_TRACK = end_sector;
2508                                         /* make sure SECT_PER_TRACK
2509                                          * points to end of transfer */
2510         }
2511 }
2512
2513 /*
2514  * Formulate a read/write request.
2515  * this routine decides where to load the data (directly to buffer, or to
2516  * tmp floppy area), how much data to load (the size of the buffer, the whole
2517  * track, or a single sector)
2518  * All floppy_track_buffer handling goes in here. If we ever add track buffer
2519  * allocation on the fly, it should be done here. No other part should need
2520  * modification.
2521  */
2522
2523 static int make_raw_rw_request(void)
2524 {
2525         int aligned_sector_t;
2526         int max_sector;
2527         int max_size;
2528         int tracksize;
2529         int ssize;
2530
2531         if (WARN(max_buffer_sectors == 0, "VFS: Block I/O scheduled on unopened device\n"))
2532                 return 0;
2533
2534         set_fdc((long)current_req->rq_disk->private_data);
2535
2536         raw_cmd = &default_raw_cmd;
2537         raw_cmd->flags = FD_RAW_SPIN | FD_RAW_NEED_DISK | FD_RAW_NEED_SEEK;
2538         raw_cmd->cmd_count = NR_RW;
2539         if (rq_data_dir(current_req) == READ) {
2540                 raw_cmd->flags |= FD_RAW_READ;
2541                 COMMAND = FM_MODE(_floppy, FD_READ);
2542         } else if (rq_data_dir(current_req) == WRITE) {
2543                 raw_cmd->flags |= FD_RAW_WRITE;
2544                 COMMAND = FM_MODE(_floppy, FD_WRITE);
2545         } else {
2546                 DPRINT("%s: unknown command\n", __func__);
2547                 return 0;
2548         }
2549
2550         max_sector = _floppy->sect * _floppy->head;
2551
2552         TRACK = (int)blk_rq_pos(current_req) / max_sector;
2553         fsector_t = (int)blk_rq_pos(current_req) % max_sector;
2554         if (_floppy->track && TRACK >= _floppy->track) {
2555                 if (blk_rq_cur_sectors(current_req) & 1) {
2556                         current_count_sectors = 1;
2557                         return 1;
2558                 } else
2559                         return 0;
2560         }
2561         HEAD = fsector_t / _floppy->sect;
2562
2563         if (((_floppy->stretch & (FD_SWAPSIDES | FD_SECTBASEMASK)) ||
2564              test_bit(FD_NEED_TWADDLE_BIT, &DRS->flags)) &&
2565             fsector_t < _floppy->sect)
2566                 max_sector = _floppy->sect;
2567
2568         /* 2M disks have phantom sectors on the first track */
2569         if ((_floppy->rate & FD_2M) && (!TRACK) && (!HEAD)) {
2570                 max_sector = 2 * _floppy->sect / 3;
2571                 if (fsector_t >= max_sector) {
2572                         current_count_sectors =
2573                             min_t(int, _floppy->sect - fsector_t,
2574                                   blk_rq_sectors(current_req));
2575                         return 1;
2576                 }
2577                 SIZECODE = 2;
2578         } else
2579                 SIZECODE = FD_SIZECODE(_floppy);
2580         raw_cmd->rate = _floppy->rate & 0x43;
2581         if ((_floppy->rate & FD_2M) && (TRACK || HEAD) && raw_cmd->rate == 2)
2582                 raw_cmd->rate = 1;
2583
2584         if (SIZECODE)
2585                 SIZECODE2 = 0xff;
2586         else
2587                 SIZECODE2 = 0x80;
2588         raw_cmd->track = TRACK << STRETCH(_floppy);
2589         DR_SELECT = UNIT(current_drive) + PH_HEAD(_floppy, HEAD);
2590         GAP = _floppy->gap;
2591         ssize = DIV_ROUND_UP(1 << SIZECODE, 4);
2592         SECT_PER_TRACK = _floppy->sect << 2 >> SIZECODE;
2593         SECTOR = ((fsector_t % _floppy->sect) << 2 >> SIZECODE) +
2594             FD_SECTBASE(_floppy);
2595
2596         /* tracksize describes the size which can be filled up with sectors
2597          * of size ssize.
2598          */
2599         tracksize = _floppy->sect - _floppy->sect % ssize;
2600         if (tracksize < _floppy->sect) {
2601                 SECT_PER_TRACK++;
2602                 if (tracksize <= fsector_t % _floppy->sect)
2603                         SECTOR--;
2604
2605                 /* if we are beyond tracksize, fill up using smaller sectors */
2606                 while (tracksize <= fsector_t % _floppy->sect) {
2607                         while (tracksize + ssize > _floppy->sect) {
2608                                 SIZECODE--;
2609                                 ssize >>= 1;
2610                         }
2611                         SECTOR++;
2612                         SECT_PER_TRACK++;
2613                         tracksize += ssize;
2614                 }
2615                 max_sector = HEAD * _floppy->sect + tracksize;
2616         } else if (!TRACK && !HEAD && !(_floppy->rate & FD_2M) && probing) {
2617                 max_sector = _floppy->sect;
2618         } else if (!HEAD && CT(COMMAND) == FD_WRITE) {
2619                 /* for virtual DMA bug workaround */
2620                 max_sector = _floppy->sect;
2621         }
2622
2623         in_sector_offset = (fsector_t % _floppy->sect) % ssize;
2624         aligned_sector_t = fsector_t - in_sector_offset;
2625         max_size = blk_rq_sectors(current_req);
2626         if ((raw_cmd->track == buffer_track) &&
2627             (current_drive == buffer_drive) &&
2628             (fsector_t >= buffer_min) && (fsector_t < buffer_max)) {
2629                 /* data already in track buffer */
2630                 if (CT(COMMAND) == FD_READ) {
2631                         copy_buffer(1, max_sector, buffer_max);
2632                         return 1;
2633                 }
2634         } else if (in_sector_offset || blk_rq_sectors(current_req) < ssize) {
2635                 if (CT(COMMAND) == FD_WRITE) {
2636                         unsigned int sectors;
2637
2638                         sectors = fsector_t + blk_rq_sectors(current_req);
2639                         if (sectors > ssize && sectors < ssize + ssize)
2640                                 max_size = ssize + ssize;
2641                         else
2642                                 max_size = ssize;
2643                 }
2644                 raw_cmd->flags &= ~FD_RAW_WRITE;
2645                 raw_cmd->flags |= FD_RAW_READ;
2646                 COMMAND = FM_MODE(_floppy, FD_READ);
2647         } else if ((unsigned long)bio_data(current_req->bio) < MAX_DMA_ADDRESS) {
2648                 unsigned long dma_limit;
2649                 int direct, indirect;
2650
2651                 indirect =
2652                     transfer_size(ssize, max_sector,
2653                                   max_buffer_sectors * 2) - fsector_t;
2654
2655                 /*
2656                  * Do NOT use minimum() here---MAX_DMA_ADDRESS is 64 bits wide
2657                  * on a 64 bit machine!
2658                  */
2659                 max_size = buffer_chain_size();
2660                 dma_limit = (MAX_DMA_ADDRESS -
2661                              ((unsigned long)bio_data(current_req->bio))) >> 9;
2662                 if ((unsigned long)max_size > dma_limit)
2663                         max_size = dma_limit;
2664                 /* 64 kb boundaries */
2665                 if (CROSS_64KB(bio_data(current_req->bio), max_size << 9))
2666                         max_size = (K_64 -
2667                                     ((unsigned long)bio_data(current_req->bio)) %
2668                                     K_64) >> 9;
2669                 direct = transfer_size(ssize, max_sector, max_size) - fsector_t;
2670                 /*
2671                  * We try to read tracks, but if we get too many errors, we
2672                  * go back to reading just one sector at a time.
2673                  *
2674                  * This means we should be able to read a sector even if there
2675                  * are other bad sectors on this track.
2676                  */
2677                 if (!direct ||
2678                     (indirect * 2 > direct * 3 &&
2679                      *errors < DP->max_errors.read_track &&
2680                      ((!probing ||
2681                        (DP->read_track & (1 << DRS->probed_format)))))) {
2682                         max_size = blk_rq_sectors(current_req);
2683                 } else {
2684                         raw_cmd->kernel_data = bio_data(current_req->bio);
2685                         raw_cmd->length = current_count_sectors << 9;
2686                         if (raw_cmd->length == 0) {
2687                                 DPRINT("%s: zero dma transfer attempted\n", __func__);
2688                                 DPRINT("indirect=%d direct=%d fsector_t=%d\n",
2689                                        indirect, direct, fsector_t);
2690                                 return 0;
2691                         }
2692                         virtualdmabug_workaround();
2693                         return 2;
2694                 }
2695         }
2696
2697         if (CT(COMMAND) == FD_READ)
2698                 max_size = max_sector;  /* unbounded */
2699
2700         /* claim buffer track if needed */
2701         if (buffer_track != raw_cmd->track ||   /* bad track */
2702             buffer_drive != current_drive ||    /* bad drive */
2703             fsector_t > buffer_max ||
2704             fsector_t < buffer_min ||
2705             ((CT(COMMAND) == FD_READ ||
2706               (!in_sector_offset && blk_rq_sectors(current_req) >= ssize)) &&
2707              max_sector > 2 * max_buffer_sectors + buffer_min &&
2708              max_size + fsector_t > 2 * max_buffer_sectors + buffer_min)) {
2709                 /* not enough space */
2710                 buffer_track = -1;
2711                 buffer_drive = current_drive;
2712                 buffer_max = buffer_min = aligned_sector_t;
2713         }
2714         raw_cmd->kernel_data = floppy_track_buffer +
2715                 ((aligned_sector_t - buffer_min) << 9);
2716
2717         if (CT(COMMAND) == FD_WRITE) {
2718                 /* copy write buffer to track buffer.
2719                  * if we get here, we know that the write
2720                  * is either aligned or the data already in the buffer
2721                  * (buffer will be overwritten) */
2722                 if (in_sector_offset && buffer_track == -1)
2723                         DPRINT("internal error offset !=0 on write\n");
2724                 buffer_track = raw_cmd->track;
2725                 buffer_drive = current_drive;
2726                 copy_buffer(ssize, max_sector,
2727                             2 * max_buffer_sectors + buffer_min);
2728         } else
2729                 transfer_size(ssize, max_sector,
2730                               2 * max_buffer_sectors + buffer_min -
2731                               aligned_sector_t);
2732
2733         /* round up current_count_sectors to get dma xfer size */
2734         raw_cmd->length = in_sector_offset + current_count_sectors;
2735         raw_cmd->length = ((raw_cmd->length - 1) | (ssize - 1)) + 1;
2736         raw_cmd->length <<= 9;
2737         if ((raw_cmd->length < current_count_sectors << 9) ||
2738             (raw_cmd->kernel_data != bio_data(current_req->bio) &&
2739              CT(COMMAND) == FD_WRITE &&
2740              (aligned_sector_t + (raw_cmd->length >> 9) > buffer_max ||
2741               aligned_sector_t < buffer_min)) ||
2742             raw_cmd->length % (128 << SIZECODE) ||
2743             raw_cmd->length <= 0 || current_count_sectors <= 0) {
2744                 DPRINT("fractionary current count b=%lx s=%lx\n",
2745                        raw_cmd->length, current_count_sectors);
2746                 if (raw_cmd->kernel_data != bio_data(current_req->bio))
2747                         pr_info("addr=%d, length=%ld\n",
2748                                 (int)((raw_cmd->kernel_data -
2749                                        floppy_track_buffer) >> 9),
2750                                 current_count_sectors);
2751                 pr_info("st=%d ast=%d mse=%d msi=%d\n",
2752                         fsector_t, aligned_sector_t, max_sector, max_size);
2753                 pr_info("ssize=%x SIZECODE=%d\n", ssize, SIZECODE);
2754                 pr_info("command=%x SECTOR=%d HEAD=%d, TRACK=%d\n",
2755                         COMMAND, SECTOR, HEAD, TRACK);
2756                 pr_info("buffer drive=%d\n", buffer_drive);
2757                 pr_info("buffer track=%d\n", buffer_track);
2758                 pr_info("buffer_min=%d\n", buffer_min);
2759                 pr_info("buffer_max=%d\n", buffer_max);
2760                 return 0;
2761         }
2762
2763         if (raw_cmd->kernel_data != bio_data(current_req->bio)) {
2764                 if (raw_cmd->kernel_data < floppy_track_buffer ||
2765                     current_count_sectors < 0 ||
2766                     raw_cmd->length < 0 ||
2767                     raw_cmd->kernel_data + raw_cmd->length >
2768                     floppy_track_buffer + (max_buffer_sectors << 10)) {
2769                         DPRINT("buffer overrun in schedule dma\n");
2770                         pr_info("fsector_t=%d buffer_min=%d current_count=%ld\n",
2771                                 fsector_t, buffer_min, raw_cmd->length >> 9);
2772                         pr_info("current_count_sectors=%ld\n",
2773                                 current_count_sectors);
2774                         if (CT(COMMAND) == FD_READ)
2775                                 pr_info("read\n");
2776                         if (CT(COMMAND) == FD_WRITE)
2777                                 pr_info("write\n");
2778                         return 0;
2779                 }
2780         } else if (raw_cmd->length > blk_rq_bytes(current_req) ||
2781                    current_count_sectors > blk_rq_sectors(current_req)) {
2782                 DPRINT("buffer overrun in direct transfer\n");
2783                 return 0;
2784         } else if (raw_cmd->length < current_count_sectors << 9) {
2785                 DPRINT("more sectors than bytes\n");
2786                 pr_info("bytes=%ld\n", raw_cmd->length >> 9);
2787                 pr_info("sectors=%ld\n", current_count_sectors);
2788         }
2789         if (raw_cmd->length == 0) {
2790                 DPRINT("zero dma transfer attempted from make_raw_request\n");
2791                 return 0;
2792         }
2793
2794         virtualdmabug_workaround();
2795         return 2;
2796 }
2797
2798 /*
2799  * Round-robin between our available drives, doing one request from each
2800  */
2801 static int set_next_request(void)
2802 {
2803         struct request_queue *q;
2804         int old_pos = fdc_queue;
2805
2806         do {
2807                 q = disks[fdc_queue]->queue;
2808                 if (++fdc_queue == N_DRIVE)
2809                         fdc_queue = 0;
2810                 if (q) {
2811                         current_req = blk_fetch_request(q);
2812                         if (current_req)
2813                                 break;
2814                 }
2815         } while (fdc_queue != old_pos);
2816
2817         return current_req != NULL;
2818 }
2819
2820 static void redo_fd_request(void)
2821 {
2822         int drive;
2823         int tmp;
2824
2825         lastredo = jiffies;
2826         if (current_drive < N_DRIVE)
2827                 floppy_off(current_drive);
2828
2829 do_request:
2830         if (!current_req) {
2831                 int pending;
2832
2833                 spin_lock_irq(&floppy_lock);
2834                 pending = set_next_request();
2835                 spin_unlock_irq(&floppy_lock);
2836                 if (!pending) {
2837                         do_floppy = NULL;
2838                         unlock_fdc();
2839                         return;
2840                 }
2841         }
2842         drive = (long)current_req->rq_disk->private_data;
2843         set_fdc(drive);
2844         reschedule_timeout(current_reqD, "redo fd request");
2845
2846         set_floppy(drive);
2847         raw_cmd = &default_raw_cmd;
2848         raw_cmd->flags = 0;
2849         if (start_motor(redo_fd_request))
2850                 return;
2851
2852         disk_change(current_drive);
2853         if (test_bit(current_drive, &fake_change) ||
2854             test_bit(FD_DISK_CHANGED_BIT, &DRS->flags)) {
2855                 DPRINT("disk absent or changed during operation\n");
2856                 request_done(0);
2857                 goto do_request;
2858         }
2859         if (!_floppy) { /* Autodetection */
2860                 if (!probing) {
2861                         DRS->probed_format = 0;
2862                         if (next_valid_format()) {
2863                                 DPRINT("no autodetectable formats\n");
2864                                 _floppy = NULL;
2865                                 request_done(0);
2866                                 goto do_request;
2867                         }
2868                 }
2869                 probing = 1;
2870                 _floppy = floppy_type + DP->autodetect[DRS->probed_format];
2871         } else
2872                 probing = 0;
2873         errors = &(current_req->errors);
2874         tmp = make_raw_rw_request();
2875         if (tmp < 2) {
2876                 request_done(tmp);
2877                 goto do_request;
2878         }
2879
2880         if (test_bit(FD_NEED_TWADDLE_BIT, &DRS->flags))
2881                 twaddle();
2882         schedule_bh(floppy_start);
2883         debugt(__func__, "queue fd request");
2884         return;
2885 }
2886
2887 static const struct cont_t rw_cont = {
2888         .interrupt      = rw_interrupt,
2889         .redo           = redo_fd_request,
2890         .error          = bad_flp_intr,
2891         .done           = request_done
2892 };
2893
2894 static void process_fd_request(void)
2895 {
2896         cont = &rw_cont;
2897         schedule_bh(redo_fd_request);
2898 }
2899
2900 static void do_fd_request(struct request_queue *q)
2901 {
2902         if (WARN(max_buffer_sectors == 0,
2903                  "VFS: %s called on non-open device\n", __func__))
2904                 return;
2905
2906         if (WARN(atomic_read(&usage_count) == 0,
2907                  "warning: usage count=0, current_req=%p sect=%ld type=%x flags=%llx\n",
2908                  current_req, (long)blk_rq_pos(current_req), current_req->cmd_type,
2909                  (unsigned long long) current_req->cmd_flags))
2910                 return;
2911
2912         if (test_and_set_bit(0, &fdc_busy)) {
2913                 /* fdc busy, this new request will be treated when the
2914                    current one is done */
2915                 is_alive(__func__, "old request running");
2916                 return;
2917         }
2918         command_status = FD_COMMAND_NONE;
2919         __reschedule_timeout(MAXTIMEOUT, "fd_request");
2920         set_fdc(0);
2921         process_fd_request();
2922         is_alive(__func__, "");
2923 }
2924
2925 static const struct cont_t poll_cont = {
2926         .interrupt      = success_and_wakeup,
2927         .redo           = floppy_ready,
2928         .error          = generic_failure,
2929         .done           = generic_done
2930 };
2931
2932 static int poll_drive(bool interruptible, int flag)
2933 {
2934         /* no auto-sense, just clear dcl */
2935         raw_cmd = &default_raw_cmd;
2936         raw_cmd->flags = flag;
2937         raw_cmd->track = 0;
2938         raw_cmd->cmd_count = 0;
2939         cont = &poll_cont;
2940         debug_dcl(DP->flags, "setting NEWCHANGE in poll_drive\n");
2941         set_bit(FD_DISK_NEWCHANGE_BIT, &DRS->flags);
2942
2943         return wait_til_done(floppy_ready, interruptible);
2944 }
2945
2946 /*
2947  * User triggered reset
2948  * ====================
2949  */
2950
2951 static void reset_intr(void)
2952 {
2953         pr_info("weird, reset interrupt called\n");
2954 }
2955
2956 static const struct cont_t reset_cont = {
2957         .interrupt      = reset_intr,
2958         .redo           = success_and_wakeup,
2959         .error          = generic_failure,
2960         .done           = generic_done
2961 };
2962
2963 static int user_reset_fdc(int drive, int arg, bool interruptible)
2964 {
2965         int ret;
2966
2967         if (lock_fdc(drive, interruptible))
2968                 return -EINTR;
2969
2970         if (arg == FD_RESET_ALWAYS)
2971                 FDCS->reset = 1;
2972         if (FDCS->reset) {
2973                 cont = &reset_cont;
2974                 ret = wait_til_done(reset_fdc, interruptible);
2975                 if (ret == -EINTR)
2976                         return -EINTR;
2977         }
2978         process_fd_request();
2979         return 0;
2980 }
2981
2982 /*
2983  * Misc Ioctl's and support
2984  * ========================
2985  */
2986 static inline int fd_copyout(void __user *param, const void *address,
2987                              unsigned long size)
2988 {
2989         return copy_to_user(param, address, size) ? -EFAULT : 0;
2990 }
2991
2992 static inline int fd_copyin(void __user *param, void *address,
2993                             unsigned long size)
2994 {
2995         return copy_from_user(address, param, size) ? -EFAULT : 0;
2996 }
2997
2998 static const char *drive_name(int type, int drive)
2999 {
3000         struct floppy_struct *floppy;
3001
3002         if (type)
3003                 floppy = floppy_type + type;
3004         else {
3005                 if (UDP->native_format)
3006                         floppy = floppy_type + UDP->native_format;
3007                 else
3008                         return "(null)";
3009         }
3010         if (floppy->name)
3011                 return floppy->name;
3012         else
3013                 return "(null)";
3014 }
3015
3016 /* raw commands */
3017 static void raw_cmd_done(int flag)
3018 {
3019         int i;
3020
3021         if (!flag) {
3022                 raw_cmd->flags |= FD_RAW_FAILURE;
3023                 raw_cmd->flags |= FD_RAW_HARDFAILURE;
3024         } else {
3025                 raw_cmd->reply_count = inr;
3026                 if (raw_cmd->reply_count > MAX_REPLIES)
3027                         raw_cmd->reply_count = 0;
3028                 for (i = 0; i < raw_cmd->reply_count; i++)
3029                         raw_cmd->reply[i] = reply_buffer[i];
3030
3031                 if (raw_cmd->flags & (FD_RAW_READ | FD_RAW_WRITE)) {
3032                         unsigned long flags;
3033                         flags = claim_dma_lock();
3034                         raw_cmd->length = fd_get_dma_residue();
3035                         release_dma_lock(flags);
3036                 }
3037
3038                 if ((raw_cmd->flags & FD_RAW_SOFTFAILURE) &&
3039                     (!raw_cmd->reply_count || (raw_cmd->reply[0] & 0xc0)))
3040                         raw_cmd->flags |= FD_RAW_FAILURE;
3041
3042                 if (disk_change(current_drive))
3043                         raw_cmd->flags |= FD_RAW_DISK_CHANGE;
3044                 else
3045                         raw_cmd->flags &= ~FD_RAW_DISK_CHANGE;
3046                 if (raw_cmd->flags & FD_RAW_NO_MOTOR_AFTER)
3047                         motor_off_callback(current_drive);
3048
3049                 if (raw_cmd->next &&
3050                     (!(raw_cmd->flags & FD_RAW_FAILURE) ||
3051                      !(raw_cmd->flags & FD_RAW_STOP_IF_FAILURE)) &&
3052                     ((raw_cmd->flags & FD_RAW_FAILURE) ||
3053                      !(raw_cmd->flags & FD_RAW_STOP_IF_SUCCESS))) {
3054                         raw_cmd = raw_cmd->next;
3055                         return;
3056                 }
3057         }
3058         generic_done(flag);
3059 }
3060
3061 static const struct cont_t raw_cmd_cont = {
3062         .interrupt      = success_and_wakeup,
3063         .redo           = floppy_start,
3064         .error          = generic_failure,
3065         .done           = raw_cmd_done
3066 };
3067
3068 static int raw_cmd_copyout(int cmd, void __user *param,
3069                                   struct floppy_raw_cmd *ptr)
3070 {
3071         int ret;
3072
3073         while (ptr) {
3074                 struct floppy_raw_cmd cmd = *ptr;
3075                 cmd.next = NULL;
3076                 cmd.kernel_data = NULL;
3077                 ret = copy_to_user(param, &cmd, sizeof(cmd));
3078                 if (ret)
3079                         return -EFAULT;
3080                 param += sizeof(struct floppy_raw_cmd);
3081                 if ((ptr->flags & FD_RAW_READ) && ptr->buffer_length) {
3082                         if (ptr->length >= 0 &&
3083                             ptr->length <= ptr->buffer_length) {
3084                                 long length = ptr->buffer_length - ptr->length;
3085                                 ret = fd_copyout(ptr->data, ptr->kernel_data,
3086                                                  length);
3087                                 if (ret)
3088                                         return ret;
3089                         }
3090                 }
3091                 ptr = ptr->next;
3092         }
3093
3094         return 0;
3095 }
3096
3097 static void raw_cmd_free(struct floppy_raw_cmd **ptr)
3098 {
3099         struct floppy_raw_cmd *next;
3100         struct floppy_raw_cmd *this;
3101
3102         this = *ptr;
3103         *ptr = NULL;
3104         while (this) {
3105                 if (this->buffer_length) {
3106                         fd_dma_mem_free((unsigned long)this->kernel_data,
3107                                         this->buffer_length);
3108                         this->buffer_length = 0;
3109                 }
3110                 next = this->next;
3111                 kfree(this);
3112                 this = next;
3113         }
3114 }
3115
3116 static int raw_cmd_copyin(int cmd, void __user *param,
3117                                  struct floppy_raw_cmd **rcmd)
3118 {
3119         struct floppy_raw_cmd *ptr;
3120         int ret;
3121         int i;
3122
3123         *rcmd = NULL;
3124
3125 loop:
3126         ptr = kmalloc(sizeof(struct floppy_raw_cmd), GFP_USER);
3127         if (!ptr)
3128                 return -ENOMEM;
3129         *rcmd = ptr;
3130         ret = copy_from_user(ptr, param, sizeof(*ptr));
3131         ptr->next = NULL;
3132         ptr->buffer_length = 0;
3133         ptr->kernel_data = NULL;
3134         if (ret)
3135                 return -EFAULT;
3136         param += sizeof(struct floppy_raw_cmd);
3137         if (ptr->cmd_count > 33)
3138                         /* the command may now also take up the space
3139                          * initially intended for the reply & the
3140                          * reply count. Needed for long 82078 commands
3141                          * such as RESTORE, which takes ... 17 command
3142                          * bytes. Murphy's law #137: When you reserve
3143                          * 16 bytes for a structure, you'll one day
3144                          * discover that you really need 17...
3145                          */
3146                 return -EINVAL;
3147
3148         for (i = 0; i < 16; i++)
3149                 ptr->reply[i] = 0;
3150         ptr->resultcode = 0;
3151
3152         if (ptr->flags & (FD_RAW_READ | FD_RAW_WRITE)) {
3153                 if (ptr->length <= 0)
3154                         return -EINVAL;
3155                 ptr->kernel_data = (char *)fd_dma_mem_alloc(ptr->length);
3156                 fallback_on_nodma_alloc(&ptr->kernel_data, ptr->length);
3157                 if (!ptr->kernel_data)
3158                         return -ENOMEM;
3159                 ptr->buffer_length = ptr->length;
3160         }
3161         if (ptr->flags & FD_RAW_WRITE) {
3162                 ret = fd_copyin(ptr->data, ptr->kernel_data, ptr->length);
3163                 if (ret)
3164                         return ret;
3165         }
3166
3167         if (ptr->flags & FD_RAW_MORE) {
3168                 rcmd = &(ptr->next);
3169                 ptr->rate &= 0x43;
3170                 goto loop;
3171         }
3172
3173         return 0;
3174 }
3175
3176 static int raw_cmd_ioctl(int cmd, void __user *param)
3177 {
3178         struct floppy_raw_cmd *my_raw_cmd;
3179         int drive;
3180         int ret2;
3181         int ret;
3182
3183         if (FDCS->rawcmd <= 1)
3184                 FDCS->rawcmd = 1;
3185         for (drive = 0; drive < N_DRIVE; drive++) {
3186                 if (FDC(drive) != fdc)
3187                         continue;
3188                 if (drive == current_drive) {
3189                         if (UDRS->fd_ref > 1) {
3190                                 FDCS->rawcmd = 2;
3191                                 break;
3192                         }
3193                 } else if (UDRS->fd_ref) {
3194                         FDCS->rawcmd = 2;
3195                         break;
3196                 }
3197         }
3198
3199         if (FDCS->reset)
3200                 return -EIO;
3201
3202         ret = raw_cmd_copyin(cmd, param, &my_raw_cmd);
3203         if (ret) {
3204                 raw_cmd_free(&my_raw_cmd);
3205                 return ret;
3206         }
3207
3208         raw_cmd = my_raw_cmd;
3209         cont = &raw_cmd_cont;
3210         ret = wait_til_done(floppy_start, true);
3211         debug_dcl(DP->flags, "calling disk change from raw_cmd ioctl\n");
3212
3213         if (ret != -EINTR && FDCS->reset)
3214                 ret = -EIO;
3215
3216         DRS->track = NO_TRACK;
3217
3218         ret2 = raw_cmd_copyout(cmd, param, my_raw_cmd);
3219         if (!ret)
3220                 ret = ret2;
3221         raw_cmd_free(&my_raw_cmd);
3222         return ret;
3223 }
3224
3225 static int invalidate_drive(struct block_device *bdev)
3226 {
3227         /* invalidate the buffer track to force a reread */
3228         set_bit((long)bdev->bd_disk->private_data, &fake_change);
3229         process_fd_request();
3230         check_disk_change(bdev);
3231         return 0;
3232 }
3233
3234 static int set_geometry(unsigned int cmd, struct floppy_struct *g,
3235                                int drive, int type, struct block_device *bdev)
3236 {
3237         int cnt;
3238
3239         /* sanity checking for parameters. */
3240         if ((int)g->sect <= 0 ||
3241             (int)g->head <= 0 ||
3242             /* check for overflow in max_sector */
3243             (int)(g->sect * g->head) <= 0 ||
3244             /* check for zero in F_SECT_PER_TRACK */
3245             (unsigned char)((g->sect << 2) >> FD_SIZECODE(g)) == 0 ||
3246             g->track <= 0 || g->track > UDP->tracks >> STRETCH(g) ||
3247             /* check if reserved bits are set */
3248             (g->stretch & ~(FD_STRETCH | FD_SWAPSIDES | FD_SECTBASEMASK)) != 0)
3249                 return -EINVAL;
3250         if (type) {
3251                 if (!capable(CAP_SYS_ADMIN))
3252                         return -EPERM;
3253                 mutex_lock(&open_lock);
3254                 if (lock_fdc(drive, true)) {
3255                         mutex_unlock(&open_lock);
3256                         return -EINTR;
3257                 }
3258                 floppy_type[type] = *g;
3259                 floppy_type[type].name = "user format";
3260                 for (cnt = type << 2; cnt < (type << 2) + 4; cnt++)
3261                         floppy_sizes[cnt] = floppy_sizes[cnt + 0x80] =
3262                             floppy_type[type].size + 1;
3263                 process_fd_request();
3264                 for (cnt = 0; cnt < N_DRIVE; cnt++) {
3265                         struct block_device *bdev = opened_bdev[cnt];
3266                         if (!bdev || ITYPE(drive_state[cnt].fd_device) != type)
3267                                 continue;
3268                         __invalidate_device(bdev, true);
3269                 }
3270                 mutex_unlock(&open_lock);
3271         } else {
3272                 int oldStretch;
3273
3274                 if (lock_fdc(drive, true))
3275                         return -EINTR;
3276                 if (cmd != FDDEFPRM) {
3277                         /* notice a disk change immediately, else
3278                          * we lose our settings immediately*/
3279                         if (poll_drive(true, FD_RAW_NEED_DISK) == -EINTR)
3280                                 return -EINTR;
3281                 }
3282                 oldStretch = g->stretch;
3283                 user_params[drive] = *g;
3284                 if (buffer_drive == drive)
3285                         SUPBOUND(buffer_max, user_params[drive].sect);
3286                 current_type[drive] = &user_params[drive];
3287                 floppy_sizes[drive] = user_params[drive].size;
3288                 if (cmd == FDDEFPRM)
3289                         DRS->keep_data = -1;
3290                 else
3291                         DRS->keep_data = 1;
3292                 /* invalidation. Invalidate only when needed, i.e.
3293                  * when there are already sectors in the buffer cache
3294                  * whose number will change. This is useful, because
3295                  * mtools often changes the geometry of the disk after
3296                  * looking at the boot block */
3297                 if (DRS->maxblock > user_params[drive].sect ||
3298                     DRS->maxtrack ||
3299                     ((user_params[drive].sect ^ oldStretch) &
3300                      (FD_SWAPSIDES | FD_SECTBASEMASK)))
3301                         invalidate_drive(bdev);
3302                 else
3303                         process_fd_request();
3304         }
3305         return 0;
3306 }
3307
3308 /* handle obsolete ioctl's */
3309 static unsigned int ioctl_table[] = {
3310         FDCLRPRM,
3311         FDSETPRM,
3312         FDDEFPRM,
3313         FDGETPRM,
3314         FDMSGON,
3315         FDMSGOFF,
3316         FDFMTBEG,
3317         FDFMTTRK,
3318         FDFMTEND,
3319         FDSETEMSGTRESH,
3320         FDFLUSH,
3321         FDSETMAXERRS,
3322         FDGETMAXERRS,
3323         FDGETDRVTYP,
3324         FDSETDRVPRM,
3325         FDGETDRVPRM,
3326         FDGETDRVSTAT,
3327         FDPOLLDRVSTAT,
3328         FDRESET,
3329         FDGETFDCSTAT,
3330         FDWERRORCLR,
3331         FDWERRORGET,
3332         FDRAWCMD,
3333         FDEJECT,
3334         FDTWADDLE
3335 };
3336
3337 static int normalize_ioctl(unsigned int *cmd, int *size)
3338 {
3339         int i;
3340
3341         for (i = 0; i < ARRAY_SIZE(ioctl_table); i++) {
3342                 if ((*cmd & 0xffff) == (ioctl_table[i] & 0xffff)) {
3343                         *size = _IOC_SIZE(*cmd);
3344                         *cmd = ioctl_table[i];
3345                         if (*size > _IOC_SIZE(*cmd)) {
3346                                 pr_info("ioctl not yet supported\n");
3347                                 return -EFAULT;
3348                         }
3349                         return 0;
3350                 }
3351         }
3352         return -EINVAL;
3353 }
3354
3355 static int get_floppy_geometry(int drive, int type, struct floppy_struct **g)
3356 {
3357         if (type)
3358                 *g = &floppy_type[type];
3359         else {
3360                 if (lock_fdc(drive, false))
3361                         return -EINTR;
3362                 if (poll_drive(false, 0) == -EINTR)
3363                         return -EINTR;
3364                 process_fd_request();
3365                 *g = current_type[drive];
3366         }
3367         if (!*g)
3368                 return -ENODEV;
3369         return 0;
3370 }
3371
3372 static int fd_getgeo(struct block_device *bdev, struct hd_geometry *geo)
3373 {
3374         int drive = (long)bdev->bd_disk->private_data;
3375         int type = ITYPE(drive_state[drive].fd_device);
3376         struct floppy_struct *g;
3377         int ret;
3378
3379         ret = get_floppy_geometry(drive, type, &g);
3380         if (ret)
3381                 return ret;
3382
3383         geo->heads = g->head;
3384         geo->sectors = g->sect;
3385         geo->cylinders = g->track;
3386         return 0;
3387 }
3388
3389 static bool valid_floppy_drive_params(const short autodetect[8],
3390                 int native_format)
3391 {
3392         size_t floppy_type_size = ARRAY_SIZE(floppy_type);
3393         size_t i = 0;
3394
3395         for (i = 0; i < 8; ++i) {
3396                 if (autodetect[i] < 0 ||
3397                     autodetect[i] >= floppy_type_size)
3398                         return false;
3399         }
3400
3401         if (native_format < 0 || native_format >= floppy_type_size)
3402                 return false;
3403
3404         return true;
3405 }
3406
3407 static int fd_locked_ioctl(struct block_device *bdev, fmode_t mode, unsigned int cmd,
3408                     unsigned long param)
3409 {
3410         int drive = (long)bdev->bd_disk->private_data;
3411         int type = ITYPE(UDRS->fd_device);
3412         int i;
3413         int ret;
3414         int size;
3415         union inparam {
3416                 struct floppy_struct g; /* geometry */
3417                 struct format_descr f;
3418                 struct floppy_max_errors max_errors;
3419                 struct floppy_drive_params dp;
3420         } inparam;              /* parameters coming from user space */
3421         const void *outparam;   /* parameters passed back to user space */
3422
3423         /* convert compatibility eject ioctls into floppy eject ioctl.
3424          * We do this in order to provide a means to eject floppy disks before
3425          * installing the new fdutils package */
3426         if (cmd == CDROMEJECT ||        /* CD-ROM eject */
3427             cmd == 0x6470) {            /* SunOS floppy eject */
3428                 DPRINT("obsolete eject ioctl\n");
3429                 DPRINT("please use floppycontrol --eject\n");
3430                 cmd = FDEJECT;
3431         }
3432
3433         if (!((cmd & 0xff00) == 0x0200))
3434                 return -EINVAL;
3435
3436         /* convert the old style command into a new style command */
3437         ret = normalize_ioctl(&cmd, &size);
3438         if (ret)
3439                 return ret;
3440
3441         /* permission checks */
3442         if (((cmd & 0x40) && !(mode & (FMODE_WRITE | FMODE_WRITE_IOCTL))) ||
3443             ((cmd & 0x80) && !capable(CAP_SYS_ADMIN)))
3444                 return -EPERM;
3445
3446         if (WARN_ON(size < 0 || size > sizeof(inparam)))
3447                 return -EINVAL;
3448
3449         /* copyin */
3450         memset(&inparam, 0, sizeof(inparam));
3451         if (_IOC_DIR(cmd) & _IOC_WRITE) {
3452                 ret = fd_copyin((void __user *)param, &inparam, size);
3453                 if (ret)
3454                         return ret;
3455         }
3456
3457         switch (cmd) {
3458         case FDEJECT:
3459                 if (UDRS->fd_ref != 1)
3460                         /* somebody else has this drive open */
3461                         return -EBUSY;
3462                 if (lock_fdc(drive, true))
3463                         return -EINTR;
3464
3465                 /* do the actual eject. Fails on
3466                  * non-Sparc architectures */
3467                 ret = fd_eject(UNIT(drive));
3468
3469                 set_bit(FD_DISK_CHANGED_BIT, &UDRS->flags);
3470                 set_bit(FD_VERIFY_BIT, &UDRS->flags);
3471                 process_fd_request();
3472                 return ret;
3473         case FDCLRPRM:
3474                 if (lock_fdc(drive, true))
3475                         return -EINTR;
3476                 current_type[drive] = NULL;
3477                 floppy_sizes[drive] = MAX_DISK_SIZE << 1;
3478                 UDRS->keep_data = 0;
3479                 return invalidate_drive(bdev);
3480         case FDSETPRM:
3481         case FDDEFPRM:
3482                 return set_geometry(cmd, &inparam.g, drive, type, bdev);
3483         case FDGETPRM:
3484                 ret = get_floppy_geometry(drive, type,
3485                                           (struct floppy_struct **)&outparam);
3486                 if (ret)
3487                         return ret;
3488                 memcpy(&inparam.g, outparam,
3489                                 offsetof(struct floppy_struct, name));
3490                 outparam = &inparam.g;
3491                 break;
3492         case FDMSGON:
3493                 UDP->flags |= FTD_MSG;
3494                 return 0;
3495         case FDMSGOFF:
3496                 UDP->flags &= ~FTD_MSG;
3497                 return 0;
3498         case FDFMTBEG:
3499                 if (lock_fdc(drive, true))
3500                         return -EINTR;
3501                 if (poll_drive(true, FD_RAW_NEED_DISK) == -EINTR)
3502                         return -EINTR;
3503                 ret = UDRS->flags;
3504                 process_fd_request();
3505                 if (ret & FD_VERIFY)
3506                         return -ENODEV;
3507                 if (!(ret & FD_DISK_WRITABLE))
3508                         return -EROFS;
3509                 return 0;
3510         case FDFMTTRK:
3511                 if (UDRS->fd_ref != 1)
3512                         return -EBUSY;
3513                 return do_format(drive, &inparam.f);
3514         case FDFMTEND:
3515         case FDFLUSH:
3516                 if (lock_fdc(drive, true))
3517                         return -EINTR;
3518                 return invalidate_drive(bdev);
3519         case FDSETEMSGTRESH:
3520                 UDP->max_errors.reporting = (unsigned short)(param & 0x0f);
3521                 return 0;
3522         case FDGETMAXERRS:
3523                 outparam = &UDP->max_errors;
3524                 break;
3525         case FDSETMAXERRS:
3526                 UDP->max_errors = inparam.max_errors;
3527                 break;
3528         case FDGETDRVTYP:
3529                 outparam = drive_name(type, drive);
3530                 SUPBOUND(size, strlen((const char *)outparam) + 1);
3531                 break;
3532         case FDSETDRVPRM:
3533                 if (!valid_floppy_drive_params(inparam.dp.autodetect,
3534                                 inparam.dp.native_format))
3535                         return -EINVAL;
3536                 *UDP = inparam.dp;
3537                 break;
3538         case FDGETDRVPRM:
3539                 outparam = UDP;
3540                 break;
3541         case FDPOLLDRVSTAT:
3542                 if (lock_fdc(drive, true))
3543                         return -EINTR;
3544                 if (poll_drive(true, FD_RAW_NEED_DISK) == -EINTR)
3545                         return -EINTR;
3546                 process_fd_request();
3547                 /* fall through */
3548         case FDGETDRVSTAT:
3549                 outparam = UDRS;
3550                 break;
3551         case FDRESET:
3552                 return user_reset_fdc(drive, (int)param, true);
3553         case FDGETFDCSTAT:
3554                 outparam = UFDCS;
3555                 break;
3556         case FDWERRORCLR:
3557                 memset(UDRWE, 0, sizeof(*UDRWE));
3558                 return 0;
3559         case FDWERRORGET:
3560                 outparam = UDRWE;
3561                 break;
3562         case FDRAWCMD:
3563                 if (type)
3564                         return -EINVAL;
3565                 if (lock_fdc(drive, true))
3566                         return -EINTR;
3567                 set_floppy(drive);
3568                 i = raw_cmd_ioctl(cmd, (void __user *)param);
3569                 if (i == -EINTR)
3570                         return -EINTR;
3571                 process_fd_request();
3572                 return i;
3573         case FDTWADDLE:
3574                 if (lock_fdc(drive, true))
3575                         return -EINTR;
3576                 twaddle();
3577                 process_fd_request();
3578                 return 0;
3579         default:
3580                 return -EINVAL;
3581         }
3582
3583         if (_IOC_DIR(cmd) & _IOC_READ)
3584                 return fd_copyout((void __user *)param, outparam, size);
3585
3586         return 0;
3587 }
3588
3589 static int fd_ioctl(struct block_device *bdev, fmode_t mode,
3590                              unsigned int cmd, unsigned long param)
3591 {
3592         int ret;
3593
3594         mutex_lock(&floppy_mutex);
3595         ret = fd_locked_ioctl(bdev, mode, cmd, param);
3596         mutex_unlock(&floppy_mutex);
3597
3598         return ret;
3599 }
3600
3601 #ifdef CONFIG_COMPAT
3602
3603 struct compat_floppy_drive_params {
3604         char            cmos;
3605         compat_ulong_t  max_dtr;
3606         compat_ulong_t  hlt;
3607         compat_ulong_t  hut;
3608         compat_ulong_t  srt;
3609         compat_ulong_t  spinup;
3610         compat_ulong_t  spindown;
3611         unsigned char   spindown_offset;
3612         unsigned char   select_delay;
3613         unsigned char   rps;
3614         unsigned char   tracks;
3615         compat_ulong_t  timeout;
3616         unsigned char   interleave_sect;
3617         struct floppy_max_errors max_errors;
3618         char            flags;
3619         char            read_track;
3620         short           autodetect[8];
3621         compat_int_t    checkfreq;
3622         compat_int_t    native_format;
3623 };
3624
3625 struct compat_floppy_drive_struct {
3626         signed char     flags;
3627         compat_ulong_t  spinup_date;
3628         compat_ulong_t  select_date;
3629         compat_ulong_t  first_read_date;
3630         short           probed_format;
3631         short           track;
3632         short           maxblock;
3633         short           maxtrack;
3634         compat_int_t    generation;
3635         compat_int_t    keep_data;
3636         compat_int_t    fd_ref;
3637         compat_int_t    fd_device;
3638         compat_int_t    last_checked;
3639         compat_caddr_t dmabuf;
3640         compat_int_t    bufblocks;
3641 };
3642
3643 struct compat_floppy_fdc_state {
3644         compat_int_t    spec1;
3645         compat_int_t    spec2;
3646         compat_int_t    dtr;
3647         unsigned char   version;
3648         unsigned char   dor;
3649         compat_ulong_t  address;
3650         unsigned int    rawcmd:2;
3651         unsigned int    reset:1;
3652         unsigned int    need_configure:1;
3653         unsigned int    perp_mode:2;
3654         unsigned int    has_fifo:1;
3655         unsigned int    driver_version;
3656         unsigned char   track[4];
3657 };
3658
3659 struct compat_floppy_write_errors {
3660         unsigned int    write_errors;
3661         compat_ulong_t  first_error_sector;
3662         compat_int_t    first_error_generation;
3663         compat_ulong_t  last_error_sector;
3664         compat_int_t    last_error_generation;
3665         compat_uint_t   badness;
3666 };
3667
3668 #define FDSETPRM32 _IOW(2, 0x42, struct compat_floppy_struct)
3669 #define FDDEFPRM32 _IOW(2, 0x43, struct compat_floppy_struct)
3670 #define FDSETDRVPRM32 _IOW(2, 0x90, struct compat_floppy_drive_params)
3671 #define FDGETDRVPRM32 _IOR(2, 0x11, struct compat_floppy_drive_params)
3672 #define FDGETDRVSTAT32 _IOR(2, 0x12, struct compat_floppy_drive_struct)
3673 #define FDPOLLDRVSTAT32 _IOR(2, 0x13, struct compat_floppy_drive_struct)
3674 #define FDGETFDCSTAT32 _IOR(2, 0x15, struct compat_floppy_fdc_state)
3675 #define FDWERRORGET32  _IOR(2, 0x17, struct compat_floppy_write_errors)
3676
3677 static int compat_set_geometry(struct block_device *bdev, fmode_t mode, unsigned int cmd,
3678                     struct compat_floppy_struct __user *arg)
3679 {
3680         struct floppy_struct v;
3681         int drive, type;
3682         int err;
3683
3684         BUILD_BUG_ON(offsetof(struct floppy_struct, name) !=
3685                      offsetof(struct compat_floppy_struct, name));
3686
3687         if (!(mode & (FMODE_WRITE | FMODE_WRITE_IOCTL)))
3688                 return -EPERM;
3689
3690         memset(&v, 0, sizeof(struct floppy_struct));
3691         if (copy_from_user(&v, arg, offsetof(struct floppy_struct, name)))
3692                 return -EFAULT;
3693
3694         mutex_lock(&floppy_mutex);
3695         drive = (long)bdev->bd_disk->private_data;
3696         type = ITYPE(UDRS->fd_device);
3697         err = set_geometry(cmd == FDSETPRM32 ? FDSETPRM : FDDEFPRM,
3698                         &v, drive, type, bdev);
3699         mutex_unlock(&floppy_mutex);
3700         return err;
3701 }
3702
3703 static int compat_get_prm(int drive,
3704                           struct compat_floppy_struct __user *arg)
3705 {
3706         struct compat_floppy_struct v;
3707         struct floppy_struct *p;
3708         int err;
3709
3710         memset(&v, 0, sizeof(v));
3711         mutex_lock(&floppy_mutex);
3712         err = get_floppy_geometry(drive, ITYPE(UDRS->fd_device), &p);
3713         if (err) {
3714                 mutex_unlock(&floppy_mutex);
3715                 return err;
3716         }
3717         memcpy(&v, p, offsetof(struct floppy_struct, name));
3718         mutex_unlock(&floppy_mutex);
3719         if (copy_to_user(arg, &v, sizeof(struct compat_floppy_struct)))
3720                 return -EFAULT;
3721         return 0;
3722 }
3723
3724 static int compat_setdrvprm(int drive,
3725                             struct compat_floppy_drive_params __user *arg)
3726 {
3727         struct compat_floppy_drive_params v;
3728
3729         if (!capable(CAP_SYS_ADMIN))
3730                 return -EPERM;
3731         if (copy_from_user(&v, arg, sizeof(struct compat_floppy_drive_params)))
3732                 return -EFAULT;
3733         if (!valid_floppy_drive_params(v.autodetect, v.native_format))
3734                 return -EINVAL;
3735         mutex_lock(&floppy_mutex);
3736         UDP->cmos = v.cmos;
3737         UDP->max_dtr = v.max_dtr;
3738         UDP->hlt = v.hlt;
3739         UDP->hut = v.hut;
3740         UDP->srt = v.srt;
3741         UDP->spinup = v.spinup;
3742         UDP->spindown = v.spindown;
3743         UDP->spindown_offset = v.spindown_offset;
3744         UDP->select_delay = v.select_delay;
3745         UDP->rps = v.rps;
3746         UDP->tracks = v.tracks;
3747         UDP->timeout = v.timeout;
3748         UDP->interleave_sect = v.interleave_sect;
3749         UDP->max_errors = v.max_errors;
3750         UDP->flags = v.flags;
3751         UDP->read_track = v.read_track;
3752         memcpy(UDP->autodetect, v.autodetect, sizeof(v.autodetect));
3753         UDP->checkfreq = v.checkfreq;
3754         UDP->native_format = v.native_format;
3755         mutex_unlock(&floppy_mutex);
3756         return 0;
3757 }
3758
3759 static int compat_getdrvprm(int drive,
3760                             struct compat_floppy_drive_params __user *arg)
3761 {
3762         struct compat_floppy_drive_params v;
3763
3764         memset(&v, 0, sizeof(struct compat_floppy_drive_params));
3765         mutex_lock(&floppy_mutex);
3766         v.cmos = UDP->cmos;
3767         v.max_dtr = UDP->max_dtr;
3768         v.hlt = UDP->hlt;
3769         v.hut = UDP->hut;
3770         v.srt = UDP->srt;
3771         v.spinup = UDP->spinup;
3772         v.spindown = UDP->spindown;
3773         v.spindown_offset = UDP->spindown_offset;
3774         v.select_delay = UDP->select_delay;
3775         v.rps = UDP->rps;
3776         v.tracks = UDP->tracks;
3777         v.timeout = UDP->timeout;
3778         v.interleave_sect = UDP->interleave_sect;
3779         v.max_errors = UDP->max_errors;
3780         v.flags = UDP->flags;
3781         v.read_track = UDP->read_track;
3782         memcpy(v.autodetect, UDP->autodetect, sizeof(v.autodetect));
3783         v.checkfreq = UDP->checkfreq;
3784         v.native_format = UDP->native_format;
3785         mutex_unlock(&floppy_mutex);
3786
3787         if (copy_to_user(arg, &v, sizeof(struct compat_floppy_drive_params)))
3788                 return -EFAULT;
3789         return 0;
3790 }
3791
3792 static int compat_getdrvstat(int drive, bool poll,
3793                             struct compat_floppy_drive_struct __user *arg)
3794 {
3795         struct compat_floppy_drive_struct v;
3796
3797         memset(&v, 0, sizeof(struct compat_floppy_drive_struct));
3798         mutex_lock(&floppy_mutex);
3799
3800         if (poll) {
3801                 if (lock_fdc(drive, true))
3802                         goto Eintr;
3803                 if (poll_drive(true, FD_RAW_NEED_DISK) == -EINTR)
3804                         goto Eintr;
3805                 process_fd_request();
3806         }
3807         v.spinup_date = UDRS->spinup_date;
3808         v.select_date = UDRS->select_date;
3809         v.first_read_date = UDRS->first_read_date;
3810         v.probed_format = UDRS->probed_format;
3811         v.track = UDRS->track;
3812         v.maxblock = UDRS->maxblock;
3813         v.maxtrack = UDRS->maxtrack;
3814         v.generation = UDRS->generation;
3815         v.keep_data = UDRS->keep_data;
3816         v.fd_ref = UDRS->fd_ref;
3817         v.fd_device = UDRS->fd_device;
3818         v.last_checked = UDRS->last_checked;
3819         v.dmabuf = (uintptr_t)UDRS->dmabuf;
3820         v.bufblocks = UDRS->bufblocks;
3821         mutex_unlock(&floppy_mutex);
3822
3823         if (copy_to_user(arg, &v, sizeof(struct compat_floppy_drive_struct)))
3824                 return -EFAULT;
3825         return 0;
3826 Eintr:
3827         mutex_unlock(&floppy_mutex);
3828         return -EINTR;
3829 }
3830
3831 static int compat_getfdcstat(int drive,
3832                             struct compat_floppy_fdc_state __user *arg)
3833 {
3834         struct compat_floppy_fdc_state v32;
3835         struct floppy_fdc_state v;
3836
3837         mutex_lock(&floppy_mutex);
3838         v = *UFDCS;
3839         mutex_unlock(&floppy_mutex);
3840
3841         memset(&v32, 0, sizeof(struct compat_floppy_fdc_state));
3842         v32.spec1 = v.spec1;
3843         v32.spec2 = v.spec2;
3844         v32.dtr = v.dtr;
3845         v32.version = v.version;
3846         v32.dor = v.dor;
3847         v32.address = v.address;
3848         v32.rawcmd = v.rawcmd;
3849         v32.reset = v.reset;
3850         v32.need_configure = v.need_configure;
3851         v32.perp_mode = v.perp_mode;
3852         v32.has_fifo = v.has_fifo;
3853         v32.driver_version = v.driver_version;
3854         memcpy(v32.track, v.track, 4);
3855         if (copy_to_user(arg, &v32, sizeof(struct compat_floppy_fdc_state)))
3856                 return -EFAULT;
3857         return 0;
3858 }
3859
3860 static int compat_werrorget(int drive,
3861                             struct compat_floppy_write_errors __user *arg)
3862 {
3863         struct compat_floppy_write_errors v32;
3864         struct floppy_write_errors v;
3865
3866         memset(&v32, 0, sizeof(struct compat_floppy_write_errors));
3867         mutex_lock(&floppy_mutex);
3868         v = *UDRWE;
3869         mutex_unlock(&floppy_mutex);
3870         v32.write_errors = v.write_errors;
3871         v32.first_error_sector = v.first_error_sector;
3872         v32.first_error_generation = v.first_error_generation;
3873         v32.last_error_sector = v.last_error_sector;
3874         v32.last_error_generation = v.last_error_generation;
3875         v32.badness = v.badness;
3876         if (copy_to_user(arg, &v32, sizeof(struct compat_floppy_write_errors)))
3877                 return -EFAULT;
3878         return 0;
3879 }
3880
3881 static int fd_compat_ioctl(struct block_device *bdev, fmode_t mode, unsigned int cmd,
3882                     unsigned long param)
3883 {
3884         int drive = (long)bdev->bd_disk->private_data;
3885         switch (cmd) {
3886         case FDMSGON:
3887         case FDMSGOFF:
3888         case FDSETEMSGTRESH:
3889         case FDFLUSH:
3890         case FDWERRORCLR:
3891         case FDEJECT:
3892         case FDCLRPRM:
3893         case FDFMTBEG:
3894         case FDRESET:
3895         case FDTWADDLE:
3896                 return fd_ioctl(bdev, mode, cmd, param);
3897         case FDSETMAXERRS:
3898         case FDGETMAXERRS:
3899         case FDGETDRVTYP:
3900         case FDFMTEND:
3901         case FDFMTTRK:
3902         case FDRAWCMD:
3903                 return fd_ioctl(bdev, mode, cmd,
3904                                 (unsigned long)compat_ptr(param));
3905         case FDSETPRM32:
3906         case FDDEFPRM32:
3907                 return compat_set_geometry(bdev, mode, cmd, compat_ptr(param));
3908         case FDGETPRM32:
3909                 return compat_get_prm(drive, compat_ptr(param));
3910         case FDSETDRVPRM32:
3911                 return compat_setdrvprm(drive, compat_ptr(param));
3912         case FDGETDRVPRM32:
3913                 return compat_getdrvprm(drive, compat_ptr(param));
3914         case FDPOLLDRVSTAT32:
3915                 return compat_getdrvstat(drive, true, compat_ptr(param));
3916         case FDGETDRVSTAT32:
3917                 return compat_getdrvstat(drive, false, compat_ptr(param));
3918         case FDGETFDCSTAT32:
3919                 return compat_getfdcstat(drive, compat_ptr(param));
3920         case FDWERRORGET32:
3921                 return compat_werrorget(drive, compat_ptr(param));
3922         }
3923         return -EINVAL;
3924 }
3925 #endif
3926
3927 static void __init config_types(void)
3928 {
3929         bool has_drive = false;
3930         int drive;
3931
3932         /* read drive info out of physical CMOS */
3933         drive = 0;
3934         if (!UDP->cmos)
3935                 UDP->cmos = FLOPPY0_TYPE;
3936         drive = 1;
3937         if (!UDP->cmos && FLOPPY1_TYPE)
3938                 UDP->cmos = FLOPPY1_TYPE;
3939
3940         /* FIXME: additional physical CMOS drive detection should go here */
3941
3942         for (drive = 0; drive < N_DRIVE; drive++) {
3943                 unsigned int type = UDP->cmos;
3944                 struct floppy_drive_params *params;
3945                 const char *name = NULL;
3946                 static char temparea[32];
3947
3948                 if (type < ARRAY_SIZE(default_drive_params)) {
3949                         params = &default_drive_params[type].params;
3950                         if (type) {
3951                                 name = default_drive_params[type].name;
3952                                 allowed_drive_mask |= 1 << drive;
3953                         } else
3954                                 allowed_drive_mask &= ~(1 << drive);
3955                 } else {
3956                         params = &default_drive_params[0].params;
3957                         sprintf(temparea, "unknown type %d (usb?)", type);
3958                         name = temparea;
3959                 }
3960                 if (name) {
3961                         const char *prepend;
3962                         if (!has_drive) {
3963                                 prepend = "";
3964                                 has_drive = true;
3965                                 pr_info("Floppy drive(s):");
3966                         } else {
3967                                 prepend = ",";
3968                         }
3969
3970                         pr_cont("%s fd%d is %s", prepend, drive, name);
3971                 }
3972                 *UDP = *params;
3973         }
3974
3975         if (has_drive)
3976                 pr_cont("\n");
3977 }
3978
3979 static void floppy_release(struct gendisk *disk, fmode_t mode)
3980 {
3981         int drive = (long)disk->private_data;
3982
3983         mutex_lock(&floppy_mutex);
3984         mutex_lock(&open_lock);
3985         if (!UDRS->fd_ref--) {
3986                 DPRINT("floppy_release with fd_ref == 0");
3987                 UDRS->fd_ref = 0;
3988         }
3989         if (!UDRS->fd_ref)
3990                 opened_bdev[drive] = NULL;
3991         mutex_unlock(&open_lock);
3992         mutex_unlock(&floppy_mutex);
3993 }
3994
3995 /*
3996  * floppy_open check for aliasing (/dev/fd0 can be the same as
3997  * /dev/PS0 etc), and disallows simultaneous access to the same
3998  * drive with different device numbers.
3999  */
4000 static int floppy_open(struct block_device *bdev, fmode_t mode)
4001 {
4002         int drive = (long)bdev->bd_disk->private_data;
4003         int old_dev, new_dev;
4004         int try;
4005         int res = -EBUSY;
4006         char *tmp;
4007
4008         mutex_lock(&floppy_mutex);
4009         mutex_lock(&open_lock);
4010         old_dev = UDRS->fd_device;
4011         if (opened_bdev[drive] && opened_bdev[drive] != bdev)
4012                 goto out2;
4013
4014         if (!UDRS->fd_ref && (UDP->flags & FD_BROKEN_DCL)) {
4015                 set_bit(FD_DISK_CHANGED_BIT, &UDRS->flags);
4016                 set_bit(FD_VERIFY_BIT, &UDRS->flags);
4017         }
4018
4019         UDRS->fd_ref++;
4020
4021         opened_bdev[drive] = bdev;
4022
4023         res = -ENXIO;
4024
4025         if (!floppy_track_buffer) {
4026                 /* if opening an ED drive, reserve a big buffer,
4027                  * else reserve a small one */
4028                 if ((UDP->cmos == 6) || (UDP->cmos == 5))
4029                         try = 64;       /* Only 48 actually useful */
4030                 else
4031                         try = 32;       /* Only 24 actually useful */
4032
4033                 tmp = (char *)fd_dma_mem_alloc(1024 * try);
4034                 if (!tmp && !floppy_track_buffer) {
4035                         try >>= 1;      /* buffer only one side */
4036                         INFBOUND(try, 16);
4037                         tmp = (char *)fd_dma_mem_alloc(1024 * try);
4038                 }
4039                 if (!tmp && !floppy_track_buffer)
4040                         fallback_on_nodma_alloc(&tmp, 2048 * try);
4041                 if (!tmp && !floppy_track_buffer) {
4042                         DPRINT("Unable to allocate DMA memory\n");
4043                         goto out;
4044                 }
4045                 if (floppy_track_buffer) {
4046                         if (tmp)
4047                                 fd_dma_mem_free((unsigned long)tmp, try * 1024);
4048                 } else {
4049                         buffer_min = buffer_max = -1;
4050                         floppy_track_buffer = tmp;
4051                         max_buffer_sectors = try;
4052                 }
4053         }
4054
4055         new_dev = MINOR(bdev->bd_dev);
4056         UDRS->fd_device = new_dev;
4057         set_capacity(disks[drive], floppy_sizes[new_dev]);
4058         if (old_dev != -1 && old_dev != new_dev) {
4059                 if (buffer_drive == drive)
4060                         buffer_track = -1;
4061         }
4062
4063         if (UFDCS->rawcmd == 1)
4064                 UFDCS->rawcmd = 2;
4065
4066         if (!(mode & FMODE_NDELAY)) {
4067                 if (mode & (FMODE_READ|FMODE_WRITE)) {
4068                         UDRS->last_checked = 0;
4069                         clear_bit(FD_OPEN_SHOULD_FAIL_BIT, &UDRS->flags);
4070                         check_disk_change(bdev);
4071                         if (test_bit(FD_DISK_CHANGED_BIT, &UDRS->flags))
4072                                 goto out;
4073                         if (test_bit(FD_OPEN_SHOULD_FAIL_BIT, &UDRS->flags))
4074                                 goto out;
4075                 }
4076                 res = -EROFS;
4077                 if ((mode & FMODE_WRITE) &&
4078                     !test_bit(FD_DISK_WRITABLE_BIT, &UDRS->flags))
4079                         goto out;
4080         }
4081         mutex_unlock(&open_lock);
4082         mutex_unlock(&floppy_mutex);
4083         return 0;
4084 out:
4085         UDRS->fd_ref--;
4086
4087         if (!UDRS->fd_ref)
4088                 opened_bdev[drive] = NULL;
4089 out2:
4090         mutex_unlock(&open_lock);
4091         mutex_unlock(&floppy_mutex);
4092         return res;
4093 }
4094
4095 /*
4096  * Check if the disk has been changed or if a change has been faked.
4097  */
4098 static unsigned int floppy_check_events(struct gendisk *disk,
4099                                         unsigned int clearing)
4100 {
4101         int drive = (long)disk->private_data;
4102
4103         if (test_bit(FD_DISK_CHANGED_BIT, &UDRS->flags) ||
4104             test_bit(FD_VERIFY_BIT, &UDRS->flags))
4105                 return DISK_EVENT_MEDIA_CHANGE;
4106
4107         if (time_after(jiffies, UDRS->last_checked + UDP->checkfreq)) {
4108                 lock_fdc(drive, false);
4109                 poll_drive(false, 0);
4110                 process_fd_request();
4111         }
4112
4113         if (test_bit(FD_DISK_CHANGED_BIT, &UDRS->flags) ||
4114             test_bit(FD_VERIFY_BIT, &UDRS->flags) ||
4115             test_bit(drive, &fake_change) ||
4116             drive_no_geom(drive))
4117                 return DISK_EVENT_MEDIA_CHANGE;
4118         return 0;
4119 }
4120
4121 /*
4122  * This implements "read block 0" for floppy_revalidate().
4123  * Needed for format autodetection, checking whether there is
4124  * a disk in the drive, and whether that disk is writable.
4125  */
4126
4127 struct rb0_cbdata {
4128         int drive;
4129         struct completion complete;
4130 };
4131
4132 static void floppy_rb0_cb(struct bio *bio)
4133 {
4134         struct rb0_cbdata *cbdata = (struct rb0_cbdata *)bio->bi_private;
4135         int drive = cbdata->drive;
4136
4137         if (bio->bi_error) {
4138                 pr_info("floppy: error %d while reading block 0\n",
4139                         bio->bi_error);
4140                 set_bit(FD_OPEN_SHOULD_FAIL_BIT, &UDRS->flags);
4141         }
4142         complete(&cbdata->complete);
4143 }
4144
4145 static int __floppy_read_block_0(struct block_device *bdev, int drive)
4146 {
4147         struct bio bio;
4148         struct bio_vec bio_vec;
4149         struct page *page;
4150         struct rb0_cbdata cbdata;
4151         size_t size;
4152
4153         page = alloc_page(GFP_NOIO);
4154         if (!page) {
4155                 process_fd_request();
4156                 return -ENOMEM;
4157         }
4158
4159         size = bdev->bd_block_size;
4160         if (!size)
4161                 size = 1024;
4162
4163         cbdata.drive = drive;
4164
4165         bio_init(&bio);
4166         bio.bi_io_vec = &bio_vec;
4167         bio_vec.bv_page = page;
4168         bio_vec.bv_len = size;
4169         bio_vec.bv_offset = 0;
4170         bio.bi_vcnt = 1;
4171         bio.bi_iter.bi_size = size;
4172         bio.bi_bdev = bdev;
4173         bio.bi_iter.bi_sector = 0;
4174         bio.bi_flags |= (1 << BIO_QUIET);
4175         bio.bi_private = &cbdata;
4176         bio.bi_end_io = floppy_rb0_cb;
4177
4178         submit_bio(READ, &bio);
4179         process_fd_request();
4180
4181         init_completion(&cbdata.complete);
4182         wait_for_completion(&cbdata.complete);
4183
4184         __free_page(page);
4185
4186         return 0;
4187 }
4188
4189 /* revalidate the floppy disk, i.e. trigger format autodetection by reading
4190  * the bootblock (block 0). "Autodetection" is also needed to check whether
4191  * there is a disk in the drive at all... Thus we also do it for fixed
4192  * geometry formats */
4193 static int floppy_revalidate(struct gendisk *disk)
4194 {
4195         int drive = (long)disk->private_data;
4196         int cf;
4197         int res = 0;
4198
4199         if (test_bit(FD_DISK_CHANGED_BIT, &UDRS->flags) ||
4200             test_bit(FD_VERIFY_BIT, &UDRS->flags) ||
4201             test_bit(drive, &fake_change) ||
4202             drive_no_geom(drive)) {
4203                 if (WARN(atomic_read(&usage_count) == 0,
4204                          "VFS: revalidate called on non-open device.\n"))
4205                         return -EFAULT;
4206
4207                 lock_fdc(drive, false);
4208                 cf = (test_bit(FD_DISK_CHANGED_BIT, &UDRS->flags) ||
4209                       test_bit(FD_VERIFY_BIT, &UDRS->flags));
4210                 if (!(cf || test_bit(drive, &fake_change) || drive_no_geom(drive))) {
4211                         process_fd_request();   /*already done by another thread */
4212                         return 0;
4213                 }
4214                 UDRS->maxblock = 0;
4215                 UDRS->maxtrack = 0;
4216                 if (buffer_drive == drive)
4217                         buffer_track = -1;
4218                 clear_bit(drive, &fake_change);
4219                 clear_bit(FD_DISK_CHANGED_BIT, &UDRS->flags);
4220                 if (cf)
4221                         UDRS->generation++;
4222                 if (drive_no_geom(drive)) {
4223                         /* auto-sensing */
4224                         res = __floppy_read_block_0(opened_bdev[drive], drive);
4225                 } else {
4226                         if (cf)
4227                                 poll_drive(false, FD_RAW_NEED_DISK);
4228                         process_fd_request();
4229                 }
4230         }
4231         set_capacity(disk, floppy_sizes[UDRS->fd_device]);
4232         return res;
4233 }
4234
4235 static const struct block_device_operations floppy_fops = {
4236         .owner                  = THIS_MODULE,
4237         .open                   = floppy_open,
4238         .release                = floppy_release,
4239         .ioctl                  = fd_ioctl,
4240         .getgeo                 = fd_getgeo,
4241         .check_events           = floppy_check_events,
4242         .revalidate_disk        = floppy_revalidate,
4243 #ifdef CONFIG_COMPAT
4244         .compat_ioctl           = fd_compat_ioctl,
4245 #endif
4246 };
4247
4248 /*
4249  * Floppy Driver initialization
4250  * =============================
4251  */
4252
4253 /* Determine the floppy disk controller type */
4254 /* This routine was written by David C. Niemi */
4255 static char __init get_fdc_version(void)
4256 {
4257         int r;
4258
4259         output_byte(FD_DUMPREGS);       /* 82072 and better know DUMPREGS */
4260         if (FDCS->reset)
4261                 return FDC_NONE;
4262         r = result();
4263         if (r <= 0x00)
4264                 return FDC_NONE;        /* No FDC present ??? */
4265         if ((r == 1) && (reply_buffer[0] == 0x80)) {
4266                 pr_info("FDC %d is an 8272A\n", fdc);
4267                 return FDC_8272A;       /* 8272a/765 don't know DUMPREGS */
4268         }
4269         if (r != 10) {
4270                 pr_info("FDC %d init: DUMPREGS: unexpected return of %d bytes.\n",
4271                         fdc, r);
4272                 return FDC_UNKNOWN;
4273         }
4274
4275         if (!fdc_configure()) {
4276                 pr_info("FDC %d is an 82072\n", fdc);
4277                 return FDC_82072;       /* 82072 doesn't know CONFIGURE */
4278         }
4279
4280         output_byte(FD_PERPENDICULAR);
4281         if (need_more_output() == MORE_OUTPUT) {
4282                 output_byte(0);
4283         } else {
4284                 pr_info("FDC %d is an 82072A\n", fdc);
4285                 return FDC_82072A;      /* 82072A as found on Sparcs. */
4286         }
4287
4288         output_byte(FD_UNLOCK);
4289         r = result();
4290         if ((r == 1) && (reply_buffer[0] == 0x80)) {
4291                 pr_info("FDC %d is a pre-1991 82077\n", fdc);
4292                 return FDC_82077_ORIG;  /* Pre-1991 82077, doesn't know
4293                                          * LOCK/UNLOCK */
4294         }
4295         if ((r != 1) || (reply_buffer[0] != 0x00)) {
4296                 pr_info("FDC %d init: UNLOCK: unexpected return of %d bytes.\n",
4297                         fdc, r);
4298                 return FDC_UNKNOWN;
4299         }
4300         output_byte(FD_PARTID);
4301         r = result();
4302         if (r != 1) {
4303                 pr_info("FDC %d init: PARTID: unexpected return of %d bytes.\n",
4304                         fdc, r);
4305                 return FDC_UNKNOWN;
4306         }
4307         if (reply_buffer[0] == 0x80) {
4308                 pr_info("FDC %d is a post-1991 82077\n", fdc);
4309                 return FDC_82077;       /* Revised 82077AA passes all the tests */
4310         }
4311         switch (reply_buffer[0] >> 5) {
4312         case 0x0:
4313                 /* Either a 82078-1 or a 82078SL running at 5Volt */
4314                 pr_info("FDC %d is an 82078.\n", fdc);
4315                 return FDC_82078;
4316         case 0x1:
4317                 pr_info("FDC %d is a 44pin 82078\n", fdc);
4318                 return FDC_82078;
4319         case 0x2:
4320                 pr_info("FDC %d is a S82078B\n", fdc);
4321                 return FDC_S82078B;
4322         case 0x3:
4323                 pr_info("FDC %d is a National Semiconductor PC87306\n", fdc);
4324                 return FDC_87306;
4325         default:
4326                 pr_info("FDC %d init: 82078 variant with unknown PARTID=%d.\n",
4327                         fdc, reply_buffer[0] >> 5);
4328                 return FDC_82078_UNKN;
4329         }
4330 }                               /* get_fdc_version */
4331
4332 /* lilo configuration */
4333
4334 static void __init floppy_set_flags(int *ints, int param, int param2)
4335 {
4336         int i;
4337
4338         for (i = 0; i < ARRAY_SIZE(default_drive_params); i++) {
4339                 if (param)
4340                         default_drive_params[i].params.flags |= param2;
4341                 else
4342                         default_drive_params[i].params.flags &= ~param2;
4343         }
4344         DPRINT("%s flag 0x%x\n", param2 ? "Setting" : "Clearing", param);
4345 }
4346
4347 static void __init daring(int *ints, int param, int param2)
4348 {
4349         int i;
4350
4351         for (i = 0; i < ARRAY_SIZE(default_drive_params); i++) {
4352                 if (param) {
4353                         default_drive_params[i].params.select_delay = 0;
4354                         default_drive_params[i].params.flags |=
4355                             FD_SILENT_DCL_CLEAR;
4356                 } else {
4357                         default_drive_params[i].params.select_delay =
4358                             2 * HZ / 100;
4359                         default_drive_params[i].params.flags &=
4360                             ~FD_SILENT_DCL_CLEAR;
4361                 }
4362         }
4363         DPRINT("Assuming %s floppy hardware\n", param ? "standard" : "broken");
4364 }
4365
4366 static void __init set_cmos(int *ints, int dummy, int dummy2)
4367 {
4368         int current_drive = 0;
4369
4370         if (ints[0] != 2) {
4371                 DPRINT("wrong number of parameters for CMOS\n");
4372                 return;
4373         }
4374         current_drive = ints[1];
4375         if (current_drive < 0 || current_drive >= 8) {
4376                 DPRINT("bad drive for set_cmos\n");
4377                 return;
4378         }
4379 #if N_FDC > 1
4380         if (current_drive >= 4 && !FDC2)
4381                 FDC2 = 0x370;
4382 #endif
4383         DP->cmos = ints[2];
4384         DPRINT("setting CMOS code to %d\n", ints[2]);
4385 }
4386
4387 static struct param_table {
4388         const char *name;
4389         void (*fn) (int *ints, int param, int param2);
4390         int *var;
4391         int def_param;
4392         int param2;
4393 } config_params[] __initdata = {
4394         {"allowed_drive_mask", NULL, &allowed_drive_mask, 0xff, 0}, /* obsolete */
4395         {"all_drives", NULL, &allowed_drive_mask, 0xff, 0},     /* obsolete */
4396         {"asus_pci", NULL, &allowed_drive_mask, 0x33, 0},
4397         {"irq", NULL, &FLOPPY_IRQ, 6, 0},
4398         {"dma", NULL, &FLOPPY_DMA, 2, 0},
4399         {"daring", daring, NULL, 1, 0},
4400 #if N_FDC > 1
4401         {"two_fdc", NULL, &FDC2, 0x370, 0},
4402         {"one_fdc", NULL, &FDC2, 0, 0},
4403 #endif
4404         {"thinkpad", floppy_set_flags, NULL, 1, FD_INVERTED_DCL},
4405         {"broken_dcl", floppy_set_flags, NULL, 1, FD_BROKEN_DCL},
4406         {"messages", floppy_set_flags, NULL, 1, FTD_MSG},
4407         {"silent_dcl_clear", floppy_set_flags, NULL, 1, FD_SILENT_DCL_CLEAR},
4408         {"debug", floppy_set_flags, NULL, 1, FD_DEBUG},
4409         {"nodma", NULL, &can_use_virtual_dma, 1, 0},
4410         {"omnibook", NULL, &can_use_virtual_dma, 1, 0},
4411         {"yesdma", NULL, &can_use_virtual_dma, 0, 0},
4412         {"fifo_depth", NULL, &fifo_depth, 0xa, 0},
4413         {"nofifo", NULL, &no_fifo, 0x20, 0},
4414         {"usefifo", NULL, &no_fifo, 0, 0},
4415         {"cmos", set_cmos, NULL, 0, 0},
4416         {"slow", NULL, &slow_floppy, 1, 0},
4417         {"unexpected_interrupts", NULL, &print_unex, 1, 0},
4418         {"no_unexpected_interrupts", NULL, &print_unex, 0, 0},
4419         {"L40SX", NULL, &print_unex, 0, 0}
4420
4421         EXTRA_FLOPPY_PARAMS
4422 };
4423
4424 static int __init floppy_setup(char *str)
4425 {
4426         int i;
4427         int param;
4428         int ints[11];
4429
4430         str = get_options(str, ARRAY_SIZE(ints), ints);
4431         if (str) {
4432                 for (i = 0; i < ARRAY_SIZE(config_params); i++) {
4433                         if (strcmp(str, config_params[i].name) == 0) {
4434                                 if (ints[0])
4435                                         param = ints[1];
4436                                 else
4437                                         param = config_params[i].def_param;
4438                                 if (config_params[i].fn)
4439                                         config_params[i].fn(ints, param,
4440                                                             config_params[i].
4441                                                             param2);
4442                                 if (config_params[i].var) {
4443                                         DPRINT("%s=%d\n", str, param);
4444                                         *config_params[i].var = param;
4445                                 }
4446                                 return 1;
4447                         }
4448                 }
4449         }
4450         if (str) {
4451                 DPRINT("unknown floppy option [%s]\n", str);
4452
4453                 DPRINT("allowed options are:");
4454                 for (i = 0; i < ARRAY_SIZE(config_params); i++)
4455                         pr_cont(" %s", config_params[i].name);
4456                 pr_cont("\n");
4457         } else
4458                 DPRINT("botched floppy option\n");
4459         DPRINT("Read Documentation/blockdev/floppy.txt\n");
4460         return 0;
4461 }
4462
4463 static int have_no_fdc = -ENODEV;
4464
4465 static ssize_t floppy_cmos_show(struct device *dev,
4466                                 struct device_attribute *attr, char *buf)
4467 {
4468         struct platform_device *p = to_platform_device(dev);
4469         int drive;
4470
4471         drive = p->id;
4472         return sprintf(buf, "%X\n", UDP->cmos);
4473 }
4474
4475 static DEVICE_ATTR(cmos, S_IRUGO, floppy_cmos_show, NULL);
4476
4477 static struct attribute *floppy_dev_attrs[] = {
4478         &dev_attr_cmos.attr,
4479         NULL
4480 };
4481
4482 ATTRIBUTE_GROUPS(floppy_dev);
4483
4484 static void floppy_device_release(struct device *dev)
4485 {
4486 }
4487
4488 static int floppy_resume(struct device *dev)
4489 {
4490         int fdc;
4491
4492         for (fdc = 0; fdc < N_FDC; fdc++)
4493                 if (FDCS->address != -1)
4494                         user_reset_fdc(-1, FD_RESET_ALWAYS, false);
4495
4496         return 0;
4497 }
4498
4499 static const struct dev_pm_ops floppy_pm_ops = {
4500         .resume = floppy_resume,
4501         .restore = floppy_resume,
4502 };
4503
4504 static struct platform_driver floppy_driver = {
4505         .driver = {
4506                    .name = "floppy",
4507                    .pm = &floppy_pm_ops,
4508         },
4509 };
4510
4511 static struct platform_device floppy_device[N_DRIVE];
4512
4513 static bool floppy_available(int drive)
4514 {
4515         if (!(allowed_drive_mask & (1 << drive)))
4516                 return false;
4517         if (fdc_state[FDC(drive)].version == FDC_NONE)
4518                 return false;
4519         return true;
4520 }
4521
4522 static struct kobject *floppy_find(dev_t dev, int *part, void *data)
4523 {
4524         int drive = (*part & 3) | ((*part & 0x80) >> 5);
4525         if (drive >= N_DRIVE || !floppy_available(drive))
4526                 return NULL;
4527         if (((*part >> 2) & 0x1f) >= ARRAY_SIZE(floppy_type))
4528                 return NULL;
4529         *part = 0;
4530         return get_disk(disks[drive]);
4531 }
4532
4533 static int __init do_floppy_init(void)
4534 {
4535         int i, unit, drive, err;
4536
4537         set_debugt();
4538         interruptjiffies = resultjiffies = jiffies;
4539
4540 #if defined(CONFIG_PPC)
4541         if (check_legacy_ioport(FDC1))
4542                 return -ENODEV;
4543 #endif
4544
4545         raw_cmd = NULL;
4546
4547         floppy_wq = alloc_ordered_workqueue("floppy", 0);
4548         if (!floppy_wq)
4549                 return -ENOMEM;
4550
4551         for (drive = 0; drive < N_DRIVE; drive++) {
4552                 disks[drive] = alloc_disk(1);
4553                 if (!disks[drive]) {
4554                         err = -ENOMEM;
4555                         goto out_put_disk;
4556                 }
4557
4558                 disks[drive]->queue = blk_init_queue(do_fd_request, &floppy_lock);
4559                 if (!disks[drive]->queue) {
4560                         err = -ENOMEM;
4561                         goto out_put_disk;
4562                 }
4563
4564                 blk_queue_max_hw_sectors(disks[drive]->queue, 64);
4565                 disks[drive]->major = FLOPPY_MAJOR;
4566                 disks[drive]->first_minor = TOMINOR(drive);
4567                 disks[drive]->fops = &floppy_fops;
4568                 sprintf(disks[drive]->disk_name, "fd%d", drive);
4569
4570                 init_timer(&motor_off_timer[drive]);
4571                 motor_off_timer[drive].data = drive;
4572                 motor_off_timer[drive].function = motor_off_callback;
4573         }
4574
4575         err = register_blkdev(FLOPPY_MAJOR, "fd");
4576         if (err)
4577                 goto out_put_disk;
4578
4579         err = platform_driver_register(&floppy_driver);
4580         if (err)
4581                 goto out_unreg_blkdev;
4582
4583         blk_register_region(MKDEV(FLOPPY_MAJOR, 0), 256, THIS_MODULE,
4584                             floppy_find, NULL, NULL);
4585
4586         for (i = 0; i < 256; i++)
4587                 if (ITYPE(i))
4588                         floppy_sizes[i] = floppy_type[ITYPE(i)].size;
4589                 else
4590                         floppy_sizes[i] = MAX_DISK_SIZE << 1;
4591
4592         reschedule_timeout(MAXTIMEOUT, "floppy init");
4593         config_types();
4594
4595         for (i = 0; i < N_FDC; i++) {
4596                 fdc = i;
4597                 memset(FDCS, 0, sizeof(*FDCS));
4598                 FDCS->dtr = -1;
4599                 FDCS->dor = 0x4;
4600 #if defined(__sparc__) || defined(__mc68000__)
4601         /*sparcs/sun3x don't have a DOR reset which we can fall back on to */
4602 #ifdef __mc68000__
4603                 if (MACH_IS_SUN3X)
4604 #endif
4605                         FDCS->version = FDC_82072A;
4606 #endif
4607         }
4608
4609         use_virtual_dma = can_use_virtual_dma & 1;
4610         fdc_state[0].address = FDC1;
4611         if (fdc_state[0].address == -1) {
4612                 cancel_delayed_work(&fd_timeout);
4613                 err = -ENODEV;
4614                 goto out_unreg_region;
4615         }
4616 #if N_FDC > 1
4617         fdc_state[1].address = FDC2;
4618 #endif
4619
4620         fdc = 0;                /* reset fdc in case of unexpected interrupt */
4621         err = floppy_grab_irq_and_dma();
4622         if (err) {
4623                 cancel_delayed_work(&fd_timeout);
4624                 err = -EBUSY;
4625                 goto out_unreg_region;
4626         }
4627
4628         /* initialise drive state */
4629         for (drive = 0; drive < N_DRIVE; drive++) {
4630                 memset(UDRS, 0, sizeof(*UDRS));
4631                 memset(UDRWE, 0, sizeof(*UDRWE));
4632                 set_bit(FD_DISK_NEWCHANGE_BIT, &UDRS->flags);
4633                 set_bit(FD_DISK_CHANGED_BIT, &UDRS->flags);
4634                 set_bit(FD_VERIFY_BIT, &UDRS->flags);
4635                 UDRS->fd_device = -1;
4636                 floppy_track_buffer = NULL;
4637                 max_buffer_sectors = 0;
4638         }
4639         /*
4640          * Small 10 msec delay to let through any interrupt that
4641          * initialization might have triggered, to not
4642          * confuse detection:
4643          */
4644         msleep(10);
4645
4646         for (i = 0; i < N_FDC; i++) {
4647                 fdc = i;
4648                 FDCS->driver_version = FD_DRIVER_VERSION;
4649                 for (unit = 0; unit < 4; unit++)
4650                         FDCS->track[unit] = 0;
4651                 if (FDCS->address == -1)
4652                         continue;
4653                 FDCS->rawcmd = 2;
4654                 if (user_reset_fdc(-1, FD_RESET_ALWAYS, false)) {
4655                         /* free ioports reserved by floppy_grab_irq_and_dma() */
4656                         floppy_release_regions(fdc);
4657                         FDCS->address = -1;
4658                         FDCS->version = FDC_NONE;
4659                         continue;
4660                 }
4661                 /* Try to determine the floppy controller type */
4662                 FDCS->version = get_fdc_version();
4663                 if (FDCS->version == FDC_NONE) {
4664                         /* free ioports reserved by floppy_grab_irq_and_dma() */
4665                         floppy_release_regions(fdc);
4666                         FDCS->address = -1;
4667                         continue;
4668                 }
4669                 if (can_use_virtual_dma == 2 && FDCS->version < FDC_82072A)
4670                         can_use_virtual_dma = 0;
4671
4672                 have_no_fdc = 0;
4673                 /* Not all FDCs seem to be able to handle the version command
4674                  * properly, so force a reset for the standard FDC clones,
4675                  * to avoid interrupt garbage.
4676                  */
4677                 user_reset_fdc(-1, FD_RESET_ALWAYS, false);
4678         }
4679         fdc = 0;
4680         cancel_delayed_work(&fd_timeout);
4681         current_drive = 0;
4682         initialized = true;
4683         if (have_no_fdc) {
4684                 DPRINT("no floppy controllers found\n");
4685                 err = have_no_fdc;
4686                 goto out_release_dma;
4687         }
4688
4689         for (drive = 0; drive < N_DRIVE; drive++) {
4690                 if (!floppy_available(drive))
4691                         continue;
4692
4693                 floppy_device[drive].name = floppy_device_name;
4694                 floppy_device[drive].id = drive;
4695                 floppy_device[drive].dev.release = floppy_device_release;
4696                 floppy_device[drive].dev.groups = floppy_dev_groups;
4697
4698                 err = platform_device_register(&floppy_device[drive]);
4699                 if (err)
4700                         goto out_remove_drives;
4701
4702                 /* to be cleaned up... */
4703                 disks[drive]->private_data = (void *)(long)drive;
4704                 disks[drive]->flags |= GENHD_FL_REMOVABLE;
4705                 disks[drive]->driverfs_dev = &floppy_device[drive].dev;
4706                 add_disk(disks[drive]);
4707         }
4708
4709         return 0;
4710
4711 out_remove_drives:
4712         while (drive--) {
4713                 if (floppy_available(drive)) {
4714                         del_gendisk(disks[drive]);
4715                         platform_device_unregister(&floppy_device[drive]);
4716                 }
4717         }
4718 out_release_dma:
4719         if (atomic_read(&usage_count))
4720                 floppy_release_irq_and_dma();
4721 out_unreg_region:
4722         blk_unregister_region(MKDEV(FLOPPY_MAJOR, 0), 256);
4723         platform_driver_unregister(&floppy_driver);
4724 out_unreg_blkdev:
4725         unregister_blkdev(FLOPPY_MAJOR, "fd");
4726 out_put_disk:
4727         destroy_workqueue(floppy_wq);
4728         for (drive = 0; drive < N_DRIVE; drive++) {
4729                 if (!disks[drive])
4730                         break;
4731                 if (disks[drive]->queue) {
4732                         del_timer_sync(&motor_off_timer[drive]);
4733                         blk_cleanup_queue(disks[drive]->queue);
4734                         disks[drive]->queue = NULL;
4735                 }
4736                 put_disk(disks[drive]);
4737         }
4738         return err;
4739 }
4740
4741 #ifndef MODULE
4742 static __init void floppy_async_init(void *data, async_cookie_t cookie)
4743 {
4744         do_floppy_init();
4745 }
4746 #endif
4747
4748 static int __init floppy_init(void)
4749 {
4750 #ifdef MODULE
4751         return do_floppy_init();
4752 #else
4753         /* Don't hold up the bootup by the floppy initialization */
4754         async_schedule(floppy_async_init, NULL);
4755         return 0;
4756 #endif
4757 }
4758
4759 static const struct io_region {
4760         int offset;
4761         int size;
4762 } io_regions[] = {
4763         { 2, 1 },
4764         /* address + 3 is sometimes reserved by pnp bios for motherboard */
4765         { 4, 2 },
4766         /* address + 6 is reserved, and may be taken by IDE.
4767          * Unfortunately, Adaptec doesn't know this :-(, */
4768         { 7, 1 },
4769 };
4770
4771 static void floppy_release_allocated_regions(int fdc, const struct io_region *p)
4772 {
4773         while (p != io_regions) {
4774                 p--;
4775                 release_region(FDCS->address + p->offset, p->size);
4776         }
4777 }
4778
4779 #define ARRAY_END(X) (&((X)[ARRAY_SIZE(X)]))
4780
4781 static int floppy_request_regions(int fdc)
4782 {
4783         const struct io_region *p;
4784
4785         for (p = io_regions; p < ARRAY_END(io_regions); p++) {
4786                 if (!request_region(FDCS->address + p->offset,
4787                                     p->size, "floppy")) {
4788                         DPRINT("Floppy io-port 0x%04lx in use\n",
4789                                FDCS->address + p->offset);
4790                         floppy_release_allocated_regions(fdc, p);
4791                         return -EBUSY;
4792                 }
4793         }
4794         return 0;
4795 }
4796
4797 static void floppy_release_regions(int fdc)
4798 {
4799         floppy_release_allocated_regions(fdc, ARRAY_END(io_regions));
4800 }
4801
4802 static int floppy_grab_irq_and_dma(void)
4803 {
4804         if (atomic_inc_return(&usage_count) > 1)
4805                 return 0;
4806
4807         /*
4808          * We might have scheduled a free_irq(), wait it to
4809          * drain first:
4810          */
4811         flush_workqueue(floppy_wq);
4812
4813         if (fd_request_irq()) {
4814                 DPRINT("Unable to grab IRQ%d for the floppy driver\n",
4815                        FLOPPY_IRQ);
4816                 atomic_dec(&usage_count);
4817                 return -1;
4818         }
4819         if (fd_request_dma()) {
4820                 DPRINT("Unable to grab DMA%d for the floppy driver\n",
4821                        FLOPPY_DMA);
4822                 if (can_use_virtual_dma & 2)
4823                         use_virtual_dma = can_use_virtual_dma = 1;
4824                 if (!(can_use_virtual_dma & 1)) {
4825                         fd_free_irq();
4826                         atomic_dec(&usage_count);
4827                         return -1;
4828                 }
4829         }
4830
4831         for (fdc = 0; fdc < N_FDC; fdc++) {
4832                 if (FDCS->address != -1) {
4833                         if (floppy_request_regions(fdc))
4834                                 goto cleanup;
4835                 }
4836         }
4837         for (fdc = 0; fdc < N_FDC; fdc++) {
4838                 if (FDCS->address != -1) {
4839                         reset_fdc_info(1);
4840                         fd_outb(FDCS->dor, FD_DOR);
4841                 }
4842         }
4843         fdc = 0;
4844         set_dor(0, ~0, 8);      /* avoid immediate interrupt */
4845
4846         for (fdc = 0; fdc < N_FDC; fdc++)
4847                 if (FDCS->address != -1)
4848                         fd_outb(FDCS->dor, FD_DOR);
4849         /*
4850          * The driver will try and free resources and relies on us
4851          * to know if they were allocated or not.
4852          */
4853         fdc = 0;
4854         irqdma_allocated = 1;
4855         return 0;
4856 cleanup:
4857         fd_free_irq();
4858         fd_free_dma();
4859         while (--fdc >= 0)
4860                 floppy_release_regions(fdc);
4861         atomic_dec(&usage_count);
4862         return -1;
4863 }
4864
4865 static void floppy_release_irq_and_dma(void)
4866 {
4867         int old_fdc;
4868 #ifndef __sparc__
4869         int drive;
4870 #endif
4871         long tmpsize;
4872         unsigned long tmpaddr;
4873
4874         if (!atomic_dec_and_test(&usage_count))
4875                 return;
4876
4877         if (irqdma_allocated) {
4878                 fd_disable_dma();
4879                 fd_free_dma();
4880                 fd_free_irq();
4881                 irqdma_allocated = 0;
4882         }
4883         set_dor(0, ~0, 8);
4884 #if N_FDC > 1
4885         set_dor(1, ~8, 0);
4886 #endif
4887
4888         if (floppy_track_buffer && max_buffer_sectors) {
4889                 tmpsize = max_buffer_sectors * 1024;
4890                 tmpaddr = (unsigned long)floppy_track_buffer;
4891                 floppy_track_buffer = NULL;
4892                 max_buffer_sectors = 0;
4893                 buffer_min = buffer_max = -1;
4894                 fd_dma_mem_free(tmpaddr, tmpsize);
4895         }
4896 #ifndef __sparc__
4897         for (drive = 0; drive < N_FDC * 4; drive++)
4898                 if (timer_pending(motor_off_timer + drive))
4899                         pr_info("motor off timer %d still active\n", drive);
4900 #endif
4901
4902         if (delayed_work_pending(&fd_timeout))
4903                 pr_info("floppy timer still active:%s\n", timeout_message);
4904         if (delayed_work_pending(&fd_timer))
4905                 pr_info("auxiliary floppy timer still active\n");
4906         if (work_pending(&floppy_work))
4907                 pr_info("work still pending\n");
4908         old_fdc = fdc;
4909         for (fdc = 0; fdc < N_FDC; fdc++)
4910                 if (FDCS->address != -1)
4911                         floppy_release_regions(fdc);
4912         fdc = old_fdc;
4913 }
4914
4915 #ifdef MODULE
4916
4917 static char *floppy;
4918
4919 static void __init parse_floppy_cfg_string(char *cfg)
4920 {
4921         char *ptr;
4922
4923         while (*cfg) {
4924                 ptr = cfg;
4925                 while (*cfg && *cfg != ' ' && *cfg != '\t')
4926                         cfg++;
4927                 if (*cfg) {
4928                         *cfg = '\0';
4929                         cfg++;
4930                 }
4931                 if (*ptr)
4932                         floppy_setup(ptr);
4933         }
4934 }
4935
4936 static int __init floppy_module_init(void)
4937 {
4938         if (floppy)
4939                 parse_floppy_cfg_string(floppy);
4940         return floppy_init();
4941 }
4942 module_init(floppy_module_init);
4943
4944 static void __exit floppy_module_exit(void)
4945 {
4946         int drive;
4947
4948         blk_unregister_region(MKDEV(FLOPPY_MAJOR, 0), 256);
4949         unregister_blkdev(FLOPPY_MAJOR, "fd");
4950         platform_driver_unregister(&floppy_driver);
4951
4952         destroy_workqueue(floppy_wq);
4953
4954         for (drive = 0; drive < N_DRIVE; drive++) {
4955                 del_timer_sync(&motor_off_timer[drive]);
4956
4957                 if (floppy_available(drive)) {
4958                         del_gendisk(disks[drive]);
4959                         platform_device_unregister(&floppy_device[drive]);
4960                 }
4961                 blk_cleanup_queue(disks[drive]->queue);
4962
4963                 /*
4964                  * These disks have not called add_disk().  Don't put down
4965                  * queue reference in put_disk().
4966                  */
4967                 if (!(allowed_drive_mask & (1 << drive)) ||
4968                     fdc_state[FDC(drive)].version == FDC_NONE)
4969                         disks[drive]->queue = NULL;
4970
4971                 put_disk(disks[drive]);
4972         }
4973
4974         cancel_delayed_work_sync(&fd_timeout);
4975         cancel_delayed_work_sync(&fd_timer);
4976
4977         if (atomic_read(&usage_count))
4978                 floppy_release_irq_and_dma();
4979
4980         /* eject disk, if any */
4981         fd_eject(0);
4982 }
4983
4984 module_exit(floppy_module_exit);
4985
4986 module_param(floppy, charp, 0);
4987 module_param(FLOPPY_IRQ, int, 0);
4988 module_param(FLOPPY_DMA, int, 0);
4989 MODULE_AUTHOR("Alain L. Knaff");
4990 MODULE_SUPPORTED_DEVICE("fd");
4991 MODULE_LICENSE("GPL");
4992
4993 /* This doesn't actually get used other than for module information */
4994 static const struct pnp_device_id floppy_pnpids[] = {
4995         {"PNP0700", 0},
4996         {}
4997 };
4998
4999 MODULE_DEVICE_TABLE(pnp, floppy_pnpids);
5000
5001 #else
5002
5003 __setup("floppy=", floppy_setup);
5004 module_init(floppy_init)
5005 #endif
5006
5007 MODULE_ALIAS_BLOCKDEV_MAJOR(FLOPPY_MAJOR);