2 * Common Flash Interface support:
3 * AMD & Fujitsu Standard Vendor Command Set (ID 0x0002)
5 * Copyright (C) 2000 Crossnet Co. <info@crossnet.co.jp>
6 * Copyright (C) 2004 Arcom Control Systems Ltd <linux@arcom.com>
7 * Copyright (C) 2005 MontaVista Software Inc. <source@mvista.com>
9 * 2_by_8 routines added by Simon Munton
11 * 4_by_16 work by Carolyn J. Smith
13 * XIP support hooks by Vitaly Wool (based on code for Intel flash
16 * 25/09/2008 Christopher Moore: TopBottom fixup for many Macronix with CFI V1.0
18 * Occasionally maintained by Thayne Harbaugh tharbaugh at lnxi dot com
23 #include <linux/module.h>
24 #include <linux/types.h>
25 #include <linux/kernel.h>
26 #include <linux/sched.h>
28 #include <asm/byteorder.h>
30 #include <linux/errno.h>
31 #include <linux/slab.h>
32 #include <linux/delay.h>
33 #include <linux/interrupt.h>
34 #include <linux/reboot.h>
36 #include <linux/of_platform.h>
37 #include <linux/mtd/map.h>
38 #include <linux/mtd/mtd.h>
39 #include <linux/mtd/cfi.h>
40 #include <linux/mtd/xip.h>
42 #define AMD_BOOTLOC_BUG
43 #define FORCE_WORD_WRITE 0
45 #define MAX_WORD_RETRIES 3
47 #define SST49LF004B 0x0060
48 #define SST49LF040B 0x0050
49 #define SST49LF008A 0x005a
50 #define AT49BV6416 0x00d6
52 static int cfi_amdstd_read (struct mtd_info
*, loff_t
, size_t, size_t *, u_char
*);
53 static int cfi_amdstd_write_words(struct mtd_info
*, loff_t
, size_t, size_t *, const u_char
*);
54 static int cfi_amdstd_write_buffers(struct mtd_info
*, loff_t
, size_t, size_t *, const u_char
*);
55 static int cfi_amdstd_erase_chip(struct mtd_info
*, struct erase_info
*);
56 static int cfi_amdstd_erase_varsize(struct mtd_info
*, struct erase_info
*);
57 static void cfi_amdstd_sync (struct mtd_info
*);
58 static int cfi_amdstd_suspend (struct mtd_info
*);
59 static void cfi_amdstd_resume (struct mtd_info
*);
60 static int cfi_amdstd_reboot(struct notifier_block
*, unsigned long, void *);
61 static int cfi_amdstd_get_fact_prot_info(struct mtd_info
*, size_t,
62 size_t *, struct otp_info
*);
63 static int cfi_amdstd_get_user_prot_info(struct mtd_info
*, size_t,
64 size_t *, struct otp_info
*);
65 static int cfi_amdstd_secsi_read (struct mtd_info
*, loff_t
, size_t, size_t *, u_char
*);
66 static int cfi_amdstd_read_fact_prot_reg(struct mtd_info
*, loff_t
, size_t,
68 static int cfi_amdstd_read_user_prot_reg(struct mtd_info
*, loff_t
, size_t,
70 static int cfi_amdstd_write_user_prot_reg(struct mtd_info
*, loff_t
, size_t,
72 static int cfi_amdstd_lock_user_prot_reg(struct mtd_info
*, loff_t
, size_t);
74 static int cfi_amdstd_panic_write(struct mtd_info
*mtd
, loff_t to
, size_t len
,
75 size_t *retlen
, const u_char
*buf
);
77 static void cfi_amdstd_destroy(struct mtd_info
*);
79 struct mtd_info
*cfi_cmdset_0002(struct map_info
*, int);
80 static struct mtd_info
*cfi_amdstd_setup (struct mtd_info
*);
82 static int get_chip(struct map_info
*map
, struct flchip
*chip
, unsigned long adr
, int mode
);
83 static void put_chip(struct map_info
*map
, struct flchip
*chip
, unsigned long adr
);
86 static int cfi_atmel_lock(struct mtd_info
*mtd
, loff_t ofs
, uint64_t len
);
87 static int cfi_atmel_unlock(struct mtd_info
*mtd
, loff_t ofs
, uint64_t len
);
89 static int cfi_ppb_lock(struct mtd_info
*mtd
, loff_t ofs
, uint64_t len
);
90 static int cfi_ppb_unlock(struct mtd_info
*mtd
, loff_t ofs
, uint64_t len
);
91 static int cfi_ppb_is_locked(struct mtd_info
*mtd
, loff_t ofs
, uint64_t len
);
93 static struct mtd_chip_driver cfi_amdstd_chipdrv
= {
94 .probe
= NULL
, /* Not usable directly */
95 .destroy
= cfi_amdstd_destroy
,
96 .name
= "cfi_cmdset_0002",
101 /* #define DEBUG_CFI_FEATURES */
104 #ifdef DEBUG_CFI_FEATURES
105 static void cfi_tell_features(struct cfi_pri_amdstd
*extp
)
107 const char* erase_suspend
[3] = {
108 "Not supported", "Read only", "Read/write"
110 const char* top_bottom
[6] = {
111 "No WP", "8x8KiB sectors at top & bottom, no WP",
112 "Bottom boot", "Top boot",
113 "Uniform, Bottom WP", "Uniform, Top WP"
116 printk(" Silicon revision: %d\n", extp
->SiliconRevision
>> 1);
117 printk(" Address sensitive unlock: %s\n",
118 (extp
->SiliconRevision
& 1) ? "Not required" : "Required");
120 if (extp
->EraseSuspend
< ARRAY_SIZE(erase_suspend
))
121 printk(" Erase Suspend: %s\n", erase_suspend
[extp
->EraseSuspend
]);
123 printk(" Erase Suspend: Unknown value %d\n", extp
->EraseSuspend
);
125 if (extp
->BlkProt
== 0)
126 printk(" Block protection: Not supported\n");
128 printk(" Block protection: %d sectors per group\n", extp
->BlkProt
);
131 printk(" Temporary block unprotect: %s\n",
132 extp
->TmpBlkUnprotect
? "Supported" : "Not supported");
133 printk(" Block protect/unprotect scheme: %d\n", extp
->BlkProtUnprot
);
134 printk(" Number of simultaneous operations: %d\n", extp
->SimultaneousOps
);
135 printk(" Burst mode: %s\n",
136 extp
->BurstMode
? "Supported" : "Not supported");
137 if (extp
->PageMode
== 0)
138 printk(" Page mode: Not supported\n");
140 printk(" Page mode: %d word page\n", extp
->PageMode
<< 2);
142 printk(" Vpp Supply Minimum Program/Erase Voltage: %d.%d V\n",
143 extp
->VppMin
>> 4, extp
->VppMin
& 0xf);
144 printk(" Vpp Supply Maximum Program/Erase Voltage: %d.%d V\n",
145 extp
->VppMax
>> 4, extp
->VppMax
& 0xf);
147 if (extp
->TopBottom
< ARRAY_SIZE(top_bottom
))
148 printk(" Top/Bottom Boot Block: %s\n", top_bottom
[extp
->TopBottom
]);
150 printk(" Top/Bottom Boot Block: Unknown value %d\n", extp
->TopBottom
);
154 #ifdef AMD_BOOTLOC_BUG
155 /* Wheee. Bring me the head of someone at AMD. */
156 static void fixup_amd_bootblock(struct mtd_info
*mtd
)
158 struct map_info
*map
= mtd
->priv
;
159 struct cfi_private
*cfi
= map
->fldrv_priv
;
160 struct cfi_pri_amdstd
*extp
= cfi
->cmdset_priv
;
161 __u8 major
= extp
->MajorVersion
;
162 __u8 minor
= extp
->MinorVersion
;
164 if (((major
<< 8) | minor
) < 0x3131) {
165 /* CFI version 1.0 => don't trust bootloc */
167 pr_debug("%s: JEDEC Vendor ID is 0x%02X Device ID is 0x%02X\n",
168 map
->name
, cfi
->mfr
, cfi
->id
);
170 /* AFAICS all 29LV400 with a bottom boot block have a device ID
171 * of 0x22BA in 16-bit mode and 0xBA in 8-bit mode.
172 * These were badly detected as they have the 0x80 bit set
173 * so treat them as a special case.
175 if (((cfi
->id
== 0xBA) || (cfi
->id
== 0x22BA)) &&
177 /* Macronix added CFI to their 2nd generation
178 * MX29LV400C B/T but AFAICS no other 29LV400 (AMD,
179 * Fujitsu, Spansion, EON, ESI and older Macronix)
182 * Therefore also check the manufacturer.
183 * This reduces the risk of false detection due to
184 * the 8-bit device ID.
186 (cfi
->mfr
== CFI_MFR_MACRONIX
)) {
187 pr_debug("%s: Macronix MX29LV400C with bottom boot block"
188 " detected\n", map
->name
);
189 extp
->TopBottom
= 2; /* bottom boot */
191 if (cfi
->id
& 0x80) {
192 printk(KERN_WARNING
"%s: JEDEC Device ID is 0x%02X. Assuming broken CFI table.\n", map
->name
, cfi
->id
);
193 extp
->TopBottom
= 3; /* top boot */
195 extp
->TopBottom
= 2; /* bottom boot */
198 pr_debug("%s: AMD CFI PRI V%c.%c has no boot block field;"
199 " deduced %s from Device ID\n", map
->name
, major
, minor
,
200 extp
->TopBottom
== 2 ? "bottom" : "top");
205 static void fixup_use_write_buffers(struct mtd_info
*mtd
)
207 struct map_info
*map
= mtd
->priv
;
208 struct cfi_private
*cfi
= map
->fldrv_priv
;
209 if (cfi
->cfiq
->BufWriteTimeoutTyp
) {
210 pr_debug("Using buffer write method\n" );
211 mtd
->_write
= cfi_amdstd_write_buffers
;
215 /* Atmel chips don't use the same PRI format as AMD chips */
216 static void fixup_convert_atmel_pri(struct mtd_info
*mtd
)
218 struct map_info
*map
= mtd
->priv
;
219 struct cfi_private
*cfi
= map
->fldrv_priv
;
220 struct cfi_pri_amdstd
*extp
= cfi
->cmdset_priv
;
221 struct cfi_pri_atmel atmel_pri
;
223 memcpy(&atmel_pri
, extp
, sizeof(atmel_pri
));
224 memset((char *)extp
+ 5, 0, sizeof(*extp
) - 5);
226 if (atmel_pri
.Features
& 0x02)
227 extp
->EraseSuspend
= 2;
229 /* Some chips got it backwards... */
230 if (cfi
->id
== AT49BV6416
) {
231 if (atmel_pri
.BottomBoot
)
236 if (atmel_pri
.BottomBoot
)
242 /* burst write mode not supported */
243 cfi
->cfiq
->BufWriteTimeoutTyp
= 0;
244 cfi
->cfiq
->BufWriteTimeoutMax
= 0;
247 static void fixup_use_secsi(struct mtd_info
*mtd
)
249 /* Setup for chips with a secsi area */
250 mtd
->_read_user_prot_reg
= cfi_amdstd_secsi_read
;
251 mtd
->_read_fact_prot_reg
= cfi_amdstd_secsi_read
;
254 static void fixup_use_erase_chip(struct mtd_info
*mtd
)
256 struct map_info
*map
= mtd
->priv
;
257 struct cfi_private
*cfi
= map
->fldrv_priv
;
258 if ((cfi
->cfiq
->NumEraseRegions
== 1) &&
259 ((cfi
->cfiq
->EraseRegionInfo
[0] & 0xffff) == 0)) {
260 mtd
->_erase
= cfi_amdstd_erase_chip
;
266 * Some Atmel chips (e.g. the AT49BV6416) power-up with all sectors
269 static void fixup_use_atmel_lock(struct mtd_info
*mtd
)
271 mtd
->_lock
= cfi_atmel_lock
;
272 mtd
->_unlock
= cfi_atmel_unlock
;
273 mtd
->flags
|= MTD_POWERUP_LOCK
;
276 static void fixup_old_sst_eraseregion(struct mtd_info
*mtd
)
278 struct map_info
*map
= mtd
->priv
;
279 struct cfi_private
*cfi
= map
->fldrv_priv
;
282 * These flashes report two separate eraseblock regions based on the
283 * sector_erase-size and block_erase-size, although they both operate on the
284 * same memory. This is not allowed according to CFI, so we just pick the
287 cfi
->cfiq
->NumEraseRegions
= 1;
290 static void fixup_sst39vf(struct mtd_info
*mtd
)
292 struct map_info
*map
= mtd
->priv
;
293 struct cfi_private
*cfi
= map
->fldrv_priv
;
295 fixup_old_sst_eraseregion(mtd
);
297 cfi
->addr_unlock1
= 0x5555;
298 cfi
->addr_unlock2
= 0x2AAA;
301 static void fixup_sst39vf_rev_b(struct mtd_info
*mtd
)
303 struct map_info
*map
= mtd
->priv
;
304 struct cfi_private
*cfi
= map
->fldrv_priv
;
306 fixup_old_sst_eraseregion(mtd
);
308 cfi
->addr_unlock1
= 0x555;
309 cfi
->addr_unlock2
= 0x2AA;
311 cfi
->sector_erase_cmd
= CMD(0x50);
314 static void fixup_sst38vf640x_sectorsize(struct mtd_info
*mtd
)
316 struct map_info
*map
= mtd
->priv
;
317 struct cfi_private
*cfi
= map
->fldrv_priv
;
319 fixup_sst39vf_rev_b(mtd
);
322 * CFI reports 1024 sectors (0x03ff+1) of 64KBytes (0x0100*256) where
323 * it should report a size of 8KBytes (0x0020*256).
325 cfi
->cfiq
->EraseRegionInfo
[0] = 0x002003ff;
326 pr_warning("%s: Bad 38VF640x CFI data; adjusting sector size from 64 to 8KiB\n", mtd
->name
);
329 static void fixup_s29gl064n_sectors(struct mtd_info
*mtd
)
331 struct map_info
*map
= mtd
->priv
;
332 struct cfi_private
*cfi
= map
->fldrv_priv
;
334 if ((cfi
->cfiq
->EraseRegionInfo
[0] & 0xffff) == 0x003f) {
335 cfi
->cfiq
->EraseRegionInfo
[0] |= 0x0040;
336 pr_warning("%s: Bad S29GL064N CFI data; adjust from 64 to 128 sectors\n", mtd
->name
);
340 static void fixup_s29gl032n_sectors(struct mtd_info
*mtd
)
342 struct map_info
*map
= mtd
->priv
;
343 struct cfi_private
*cfi
= map
->fldrv_priv
;
345 if ((cfi
->cfiq
->EraseRegionInfo
[1] & 0xffff) == 0x007e) {
346 cfi
->cfiq
->EraseRegionInfo
[1] &= ~0x0040;
347 pr_warning("%s: Bad S29GL032N CFI data; adjust from 127 to 63 sectors\n", mtd
->name
);
351 static void fixup_s29ns512p_sectors(struct mtd_info
*mtd
)
353 struct map_info
*map
= mtd
->priv
;
354 struct cfi_private
*cfi
= map
->fldrv_priv
;
357 * S29NS512P flash uses more than 8bits to report number of sectors,
358 * which is not permitted by CFI.
360 cfi
->cfiq
->EraseRegionInfo
[0] = 0x020001ff;
361 pr_warning("%s: Bad S29NS512P CFI data; adjust to 512 sectors\n", mtd
->name
);
364 /* Used to fix CFI-Tables of chips without Extended Query Tables */
365 static struct cfi_fixup cfi_nopri_fixup_table
[] = {
366 { CFI_MFR_SST
, 0x234a, fixup_sst39vf
}, /* SST39VF1602 */
367 { CFI_MFR_SST
, 0x234b, fixup_sst39vf
}, /* SST39VF1601 */
368 { CFI_MFR_SST
, 0x235a, fixup_sst39vf
}, /* SST39VF3202 */
369 { CFI_MFR_SST
, 0x235b, fixup_sst39vf
}, /* SST39VF3201 */
370 { CFI_MFR_SST
, 0x235c, fixup_sst39vf_rev_b
}, /* SST39VF3202B */
371 { CFI_MFR_SST
, 0x235d, fixup_sst39vf_rev_b
}, /* SST39VF3201B */
372 { CFI_MFR_SST
, 0x236c, fixup_sst39vf_rev_b
}, /* SST39VF6402B */
373 { CFI_MFR_SST
, 0x236d, fixup_sst39vf_rev_b
}, /* SST39VF6401B */
377 static struct cfi_fixup cfi_fixup_table
[] = {
378 { CFI_MFR_ATMEL
, CFI_ID_ANY
, fixup_convert_atmel_pri
},
379 #ifdef AMD_BOOTLOC_BUG
380 { CFI_MFR_AMD
, CFI_ID_ANY
, fixup_amd_bootblock
},
381 { CFI_MFR_AMIC
, CFI_ID_ANY
, fixup_amd_bootblock
},
382 { CFI_MFR_MACRONIX
, CFI_ID_ANY
, fixup_amd_bootblock
},
384 { CFI_MFR_AMD
, 0x0050, fixup_use_secsi
},
385 { CFI_MFR_AMD
, 0x0053, fixup_use_secsi
},
386 { CFI_MFR_AMD
, 0x0055, fixup_use_secsi
},
387 { CFI_MFR_AMD
, 0x0056, fixup_use_secsi
},
388 { CFI_MFR_AMD
, 0x005C, fixup_use_secsi
},
389 { CFI_MFR_AMD
, 0x005F, fixup_use_secsi
},
390 { CFI_MFR_AMD
, 0x0c01, fixup_s29gl064n_sectors
},
391 { CFI_MFR_AMD
, 0x1301, fixup_s29gl064n_sectors
},
392 { CFI_MFR_AMD
, 0x1a00, fixup_s29gl032n_sectors
},
393 { CFI_MFR_AMD
, 0x1a01, fixup_s29gl032n_sectors
},
394 { CFI_MFR_AMD
, 0x3f00, fixup_s29ns512p_sectors
},
395 { CFI_MFR_SST
, 0x536a, fixup_sst38vf640x_sectorsize
}, /* SST38VF6402 */
396 { CFI_MFR_SST
, 0x536b, fixup_sst38vf640x_sectorsize
}, /* SST38VF6401 */
397 { CFI_MFR_SST
, 0x536c, fixup_sst38vf640x_sectorsize
}, /* SST38VF6404 */
398 { CFI_MFR_SST
, 0x536d, fixup_sst38vf640x_sectorsize
}, /* SST38VF6403 */
399 #if !FORCE_WORD_WRITE
400 { CFI_MFR_ANY
, CFI_ID_ANY
, fixup_use_write_buffers
},
404 static struct cfi_fixup jedec_fixup_table
[] = {
405 { CFI_MFR_SST
, SST49LF004B
, fixup_use_fwh_lock
},
406 { CFI_MFR_SST
, SST49LF040B
, fixup_use_fwh_lock
},
407 { CFI_MFR_SST
, SST49LF008A
, fixup_use_fwh_lock
},
411 static struct cfi_fixup fixup_table
[] = {
412 /* The CFI vendor ids and the JEDEC vendor IDs appear
413 * to be common. It is like the devices id's are as
414 * well. This table is to pick all cases where
415 * we know that is the case.
417 { CFI_MFR_ANY
, CFI_ID_ANY
, fixup_use_erase_chip
},
418 { CFI_MFR_ATMEL
, AT49BV6416
, fixup_use_atmel_lock
},
423 static void cfi_fixup_major_minor(struct cfi_private
*cfi
,
424 struct cfi_pri_amdstd
*extp
)
426 if (cfi
->mfr
== CFI_MFR_SAMSUNG
) {
427 if ((extp
->MajorVersion
== '0' && extp
->MinorVersion
== '0') ||
428 (extp
->MajorVersion
== '3' && extp
->MinorVersion
== '3')) {
430 * Samsung K8P2815UQB and K8D6x16UxM chips
431 * report major=0 / minor=0.
432 * K8D3x16UxC chips report major=3 / minor=3.
434 printk(KERN_NOTICE
" Fixing Samsung's Amd/Fujitsu"
435 " Extended Query version to 1.%c\n",
437 extp
->MajorVersion
= '1';
442 * SST 38VF640x chips report major=0xFF / minor=0xFF.
444 if (cfi
->mfr
== CFI_MFR_SST
&& (cfi
->id
>> 4) == 0x0536) {
445 extp
->MajorVersion
= '1';
446 extp
->MinorVersion
= '0';
450 static int is_m29ew(struct cfi_private
*cfi
)
452 if (cfi
->mfr
== CFI_MFR_INTEL
&&
453 ((cfi
->device_type
== CFI_DEVICETYPE_X8
&& (cfi
->id
& 0xff) == 0x7e) ||
454 (cfi
->device_type
== CFI_DEVICETYPE_X16
&& cfi
->id
== 0x227e)))
460 * From TN-13-07: Patching the Linux Kernel and U-Boot for M29 Flash, page 20:
461 * Some revisions of the M29EW suffer from erase suspend hang ups. In
462 * particular, it can occur when the sequence
463 * Erase Confirm -> Suspend -> Program -> Resume
464 * causes a lockup due to internal timing issues. The consequence is that the
465 * erase cannot be resumed without inserting a dummy command after programming
466 * and prior to resuming. [...] The work-around is to issue a dummy write cycle
467 * that writes an F0 command code before the RESUME command.
469 static void cfi_fixup_m29ew_erase_suspend(struct map_info
*map
,
472 struct cfi_private
*cfi
= map
->fldrv_priv
;
473 /* before resume, insert a dummy 0xF0 cycle for Micron M29EW devices */
475 map_write(map
, CMD(0xF0), adr
);
479 * From TN-13-07: Patching the Linux Kernel and U-Boot for M29 Flash, page 22:
481 * Some revisions of the M29EW (for example, A1 and A2 step revisions)
482 * are affected by a problem that could cause a hang up when an ERASE SUSPEND
483 * command is issued after an ERASE RESUME operation without waiting for a
484 * minimum delay. The result is that once the ERASE seems to be completed
485 * (no bits are toggling), the contents of the Flash memory block on which
486 * the erase was ongoing could be inconsistent with the expected values
487 * (typically, the array value is stuck to the 0xC0, 0xC4, 0x80, or 0x84
488 * values), causing a consequent failure of the ERASE operation.
489 * The occurrence of this issue could be high, especially when file system
490 * operations on the Flash are intensive. As a result, it is recommended
491 * that a patch be applied. Intensive file system operations can cause many
492 * calls to the garbage routine to free Flash space (also by erasing physical
493 * Flash blocks) and as a result, many consecutive SUSPEND and RESUME
494 * commands can occur. The problem disappears when a delay is inserted after
495 * the RESUME command by using the udelay() function available in Linux.
496 * The DELAY value must be tuned based on the customer's platform.
497 * The maximum value that fixes the problem in all cases is 500us.
498 * But, in our experience, a delay of 30 µs to 50 µs is sufficient
500 * We have chosen 500µs because this latency is acceptable.
502 static void cfi_fixup_m29ew_delay_after_resume(struct cfi_private
*cfi
)
505 * Resolving the Delay After Resume Issue see Micron TN-13-07
506 * Worst case delay must be 500µs but 30-50µs should be ok as well
512 struct mtd_info
*cfi_cmdset_0002(struct map_info
*map
, int primary
)
514 struct cfi_private
*cfi
= map
->fldrv_priv
;
515 struct device_node __maybe_unused
*np
= map
->device_node
;
516 struct mtd_info
*mtd
;
519 mtd
= kzalloc(sizeof(*mtd
), GFP_KERNEL
);
523 mtd
->type
= MTD_NORFLASH
;
525 /* Fill in the default mtd operations */
526 mtd
->_erase
= cfi_amdstd_erase_varsize
;
527 mtd
->_write
= cfi_amdstd_write_words
;
528 mtd
->_read
= cfi_amdstd_read
;
529 mtd
->_sync
= cfi_amdstd_sync
;
530 mtd
->_suspend
= cfi_amdstd_suspend
;
531 mtd
->_resume
= cfi_amdstd_resume
;
532 mtd
->_read_user_prot_reg
= cfi_amdstd_read_user_prot_reg
;
533 mtd
->_read_fact_prot_reg
= cfi_amdstd_read_fact_prot_reg
;
534 mtd
->_get_fact_prot_info
= cfi_amdstd_get_fact_prot_info
;
535 mtd
->_get_user_prot_info
= cfi_amdstd_get_user_prot_info
;
536 mtd
->_write_user_prot_reg
= cfi_amdstd_write_user_prot_reg
;
537 mtd
->_lock_user_prot_reg
= cfi_amdstd_lock_user_prot_reg
;
538 mtd
->flags
= MTD_CAP_NORFLASH
;
539 mtd
->name
= map
->name
;
541 mtd
->writebufsize
= cfi_interleave(cfi
) << cfi
->cfiq
->MaxBufWriteSize
;
543 pr_debug("MTD %s(): write buffer size %d\n", __func__
,
546 mtd
->_panic_write
= cfi_amdstd_panic_write
;
547 mtd
->reboot_notifier
.notifier_call
= cfi_amdstd_reboot
;
549 if (cfi
->cfi_mode
==CFI_MODE_CFI
){
550 unsigned char bootloc
;
551 __u16 adr
= primary
?cfi
->cfiq
->P_ADR
:cfi
->cfiq
->A_ADR
;
552 struct cfi_pri_amdstd
*extp
;
554 extp
= (struct cfi_pri_amdstd
*)cfi_read_pri(map
, adr
, sizeof(*extp
), "Amd/Fujitsu");
557 * It's a real CFI chip, not one for which the probe
558 * routine faked a CFI structure.
560 cfi_fixup_major_minor(cfi
, extp
);
563 * Valid primary extension versions are: 1.0, 1.1, 1.2, 1.3, 1.4, 1.5
564 * see: http://cs.ozerki.net/zap/pub/axim-x5/docs/cfi_r20.pdf, page 19
565 * http://www.spansion.com/Support/AppNotes/cfi_100_20011201.pdf
566 * http://www.spansion.com/Support/Datasheets/s29ws-p_00_a12_e.pdf
567 * http://www.spansion.com/Support/Datasheets/S29GL_128S_01GS_00_02_e.pdf
569 if (extp
->MajorVersion
!= '1' ||
570 (extp
->MajorVersion
== '1' && (extp
->MinorVersion
< '0' || extp
->MinorVersion
> '5'))) {
571 printk(KERN_ERR
" Unknown Amd/Fujitsu Extended Query "
572 "version %c.%c (%#02x/%#02x).\n",
573 extp
->MajorVersion
, extp
->MinorVersion
,
574 extp
->MajorVersion
, extp
->MinorVersion
);
580 printk(KERN_INFO
" Amd/Fujitsu Extended Query version %c.%c.\n",
581 extp
->MajorVersion
, extp
->MinorVersion
);
583 /* Install our own private info structure */
584 cfi
->cmdset_priv
= extp
;
586 /* Apply cfi device specific fixups */
587 cfi_fixup(mtd
, cfi_fixup_table
);
589 #ifdef DEBUG_CFI_FEATURES
590 /* Tell the user about it in lots of lovely detail */
591 cfi_tell_features(extp
);
595 if (np
&& of_property_read_bool(
596 np
, "use-advanced-sector-protection")
597 && extp
->BlkProtUnprot
== 8) {
598 printk(KERN_INFO
" Advanced Sector Protection (PPB Locking) supported\n");
599 mtd
->_lock
= cfi_ppb_lock
;
600 mtd
->_unlock
= cfi_ppb_unlock
;
601 mtd
->_is_locked
= cfi_ppb_is_locked
;
605 bootloc
= extp
->TopBottom
;
606 if ((bootloc
< 2) || (bootloc
> 5)) {
607 printk(KERN_WARNING
"%s: CFI contains unrecognised boot "
608 "bank location (%d). Assuming bottom.\n",
613 if (bootloc
== 3 && cfi
->cfiq
->NumEraseRegions
> 1) {
614 printk(KERN_WARNING
"%s: Swapping erase regions for top-boot CFI table.\n", map
->name
);
616 for (i
=0; i
<cfi
->cfiq
->NumEraseRegions
/ 2; i
++) {
617 int j
= (cfi
->cfiq
->NumEraseRegions
-1)-i
;
619 swap(cfi
->cfiq
->EraseRegionInfo
[i
],
620 cfi
->cfiq
->EraseRegionInfo
[j
]);
623 /* Set the default CFI lock/unlock addresses */
624 cfi
->addr_unlock1
= 0x555;
625 cfi
->addr_unlock2
= 0x2aa;
627 cfi_fixup(mtd
, cfi_nopri_fixup_table
);
629 if (!cfi
->addr_unlock1
|| !cfi
->addr_unlock2
) {
635 else if (cfi
->cfi_mode
== CFI_MODE_JEDEC
) {
636 /* Apply jedec specific fixups */
637 cfi_fixup(mtd
, jedec_fixup_table
);
639 /* Apply generic fixups */
640 cfi_fixup(mtd
, fixup_table
);
642 for (i
=0; i
< cfi
->numchips
; i
++) {
643 cfi
->chips
[i
].word_write_time
= 1<<cfi
->cfiq
->WordWriteTimeoutTyp
;
644 cfi
->chips
[i
].buffer_write_time
= 1<<cfi
->cfiq
->BufWriteTimeoutTyp
;
645 cfi
->chips
[i
].erase_time
= 1<<cfi
->cfiq
->BlockEraseTimeoutTyp
;
647 * First calculate the timeout max according to timeout field
648 * of struct cfi_ident that probed from chip's CFI aera, if
649 * available. Specify a minimum of 2000us, in case the CFI data
652 if (cfi
->cfiq
->BufWriteTimeoutTyp
&&
653 cfi
->cfiq
->BufWriteTimeoutMax
)
654 cfi
->chips
[i
].buffer_write_time_max
=
655 1 << (cfi
->cfiq
->BufWriteTimeoutTyp
+
656 cfi
->cfiq
->BufWriteTimeoutMax
);
658 cfi
->chips
[i
].buffer_write_time_max
= 0;
660 cfi
->chips
[i
].buffer_write_time_max
=
661 max(cfi
->chips
[i
].buffer_write_time_max
, 2000);
663 cfi
->chips
[i
].ref_point_counter
= 0;
664 init_waitqueue_head(&(cfi
->chips
[i
].wq
));
667 map
->fldrv
= &cfi_amdstd_chipdrv
;
669 return cfi_amdstd_setup(mtd
);
671 struct mtd_info
*cfi_cmdset_0006(struct map_info
*map
, int primary
) __attribute__((alias("cfi_cmdset_0002")));
672 struct mtd_info
*cfi_cmdset_0701(struct map_info
*map
, int primary
) __attribute__((alias("cfi_cmdset_0002")));
673 EXPORT_SYMBOL_GPL(cfi_cmdset_0002
);
674 EXPORT_SYMBOL_GPL(cfi_cmdset_0006
);
675 EXPORT_SYMBOL_GPL(cfi_cmdset_0701
);
677 static struct mtd_info
*cfi_amdstd_setup(struct mtd_info
*mtd
)
679 struct map_info
*map
= mtd
->priv
;
680 struct cfi_private
*cfi
= map
->fldrv_priv
;
681 unsigned long devsize
= (1<<cfi
->cfiq
->DevSize
) * cfi
->interleave
;
682 unsigned long offset
= 0;
685 printk(KERN_NOTICE
"number of %s chips: %d\n",
686 (cfi
->cfi_mode
== CFI_MODE_CFI
)?"CFI":"JEDEC",cfi
->numchips
);
687 /* Select the correct geometry setup */
688 mtd
->size
= devsize
* cfi
->numchips
;
690 mtd
->numeraseregions
= cfi
->cfiq
->NumEraseRegions
* cfi
->numchips
;
691 mtd
->eraseregions
= kmalloc(sizeof(struct mtd_erase_region_info
)
692 * mtd
->numeraseregions
, GFP_KERNEL
);
693 if (!mtd
->eraseregions
)
696 for (i
=0; i
<cfi
->cfiq
->NumEraseRegions
; i
++) {
697 unsigned long ernum
, ersize
;
698 ersize
= ((cfi
->cfiq
->EraseRegionInfo
[i
] >> 8) & ~0xff) * cfi
->interleave
;
699 ernum
= (cfi
->cfiq
->EraseRegionInfo
[i
] & 0xffff) + 1;
701 if (mtd
->erasesize
< ersize
) {
702 mtd
->erasesize
= ersize
;
704 for (j
=0; j
<cfi
->numchips
; j
++) {
705 mtd
->eraseregions
[(j
*cfi
->cfiq
->NumEraseRegions
)+i
].offset
= (j
*devsize
)+offset
;
706 mtd
->eraseregions
[(j
*cfi
->cfiq
->NumEraseRegions
)+i
].erasesize
= ersize
;
707 mtd
->eraseregions
[(j
*cfi
->cfiq
->NumEraseRegions
)+i
].numblocks
= ernum
;
709 offset
+= (ersize
* ernum
);
711 if (offset
!= devsize
) {
713 printk(KERN_WARNING
"Sum of regions (%lx) != total size of set of interleaved chips (%lx)\n", offset
, devsize
);
717 __module_get(THIS_MODULE
);
718 register_reboot_notifier(&mtd
->reboot_notifier
);
722 kfree(mtd
->eraseregions
);
724 kfree(cfi
->cmdset_priv
);
730 * Return true if the chip is ready.
732 * Ready is one of: read mode, query mode, erase-suspend-read mode (in any
733 * non-suspended sector) and is indicated by no toggle bits toggling.
735 * Note that anything more complicated than checking if no bits are toggling
736 * (including checking DQ5 for an error status) is tricky to get working
737 * correctly and is therefore not done (particularly with interleaved chips
738 * as each chip must be checked independently of the others).
740 static int __xipram
chip_ready(struct map_info
*map
, unsigned long addr
)
744 d
= map_read(map
, addr
);
745 t
= map_read(map
, addr
);
747 return map_word_equal(map
, d
, t
);
751 * Return true if the chip is ready and has the correct value.
753 * Ready is one of: read mode, query mode, erase-suspend-read mode (in any
754 * non-suspended sector) and it is indicated by no bits toggling.
756 * Error are indicated by toggling bits or bits held with the wrong value,
757 * or with bits toggling.
759 * Note that anything more complicated than checking if no bits are toggling
760 * (including checking DQ5 for an error status) is tricky to get working
761 * correctly and is therefore not done (particularly with interleaved chips
762 * as each chip must be checked independently of the others).
765 static int __xipram
chip_good(struct map_info
*map
, unsigned long addr
, map_word expected
)
769 oldd
= map_read(map
, addr
);
770 curd
= map_read(map
, addr
);
772 return map_word_equal(map
, oldd
, curd
) &&
773 map_word_equal(map
, curd
, expected
);
776 static int get_chip(struct map_info
*map
, struct flchip
*chip
, unsigned long adr
, int mode
)
778 DECLARE_WAITQUEUE(wait
, current
);
779 struct cfi_private
*cfi
= map
->fldrv_priv
;
781 struct cfi_pri_amdstd
*cfip
= (struct cfi_pri_amdstd
*)cfi
->cmdset_priv
;
784 timeo
= jiffies
+ HZ
;
786 switch (chip
->state
) {
790 if (chip_ready(map
, adr
))
793 if (time_after(jiffies
, timeo
)) {
794 printk(KERN_ERR
"Waiting for chip to be ready timed out.\n");
797 mutex_unlock(&chip
->mutex
);
799 mutex_lock(&chip
->mutex
);
800 /* Someone else might have been playing with it. */
810 if (!cfip
|| !(cfip
->EraseSuspend
& (0x1|0x2)) ||
811 !(mode
== FL_READY
|| mode
== FL_POINT
||
812 (mode
== FL_WRITING
&& (cfip
->EraseSuspend
& 0x2))))
815 /* We could check to see if we're trying to access the sector
816 * that is currently being erased. However, no user will try
817 * anything like that so we just wait for the timeout. */
820 /* It's harmless to issue the Erase-Suspend and Erase-Resume
821 * commands when the erase algorithm isn't in progress. */
822 map_write(map
, CMD(0xB0), chip
->in_progress_block_addr
);
823 chip
->oldstate
= FL_ERASING
;
824 chip
->state
= FL_ERASE_SUSPENDING
;
825 chip
->erase_suspended
= 1;
827 if (chip_ready(map
, adr
))
830 if (time_after(jiffies
, timeo
)) {
831 /* Should have suspended the erase by now.
832 * Send an Erase-Resume command as either
833 * there was an error (so leave the erase
834 * routine to recover from it) or we trying to
835 * use the erase-in-progress sector. */
836 put_chip(map
, chip
, adr
);
837 printk(KERN_ERR
"MTD %s(): chip not ready after erase suspend\n", __func__
);
841 mutex_unlock(&chip
->mutex
);
843 mutex_lock(&chip
->mutex
);
844 /* Nobody will touch it while it's in state FL_ERASE_SUSPENDING.
845 So we can just loop here. */
847 chip
->state
= FL_READY
;
850 case FL_XIP_WHILE_ERASING
:
851 if (mode
!= FL_READY
&& mode
!= FL_POINT
&&
852 (!cfip
|| !(cfip
->EraseSuspend
&2)))
854 chip
->oldstate
= chip
->state
;
855 chip
->state
= FL_READY
;
859 /* The machine is rebooting */
863 /* Only if there's no operation suspended... */
864 if (mode
== FL_READY
&& chip
->oldstate
== FL_READY
)
869 set_current_state(TASK_UNINTERRUPTIBLE
);
870 add_wait_queue(&chip
->wq
, &wait
);
871 mutex_unlock(&chip
->mutex
);
873 remove_wait_queue(&chip
->wq
, &wait
);
874 mutex_lock(&chip
->mutex
);
880 static void put_chip(struct map_info
*map
, struct flchip
*chip
, unsigned long adr
)
882 struct cfi_private
*cfi
= map
->fldrv_priv
;
884 switch(chip
->oldstate
) {
886 cfi_fixup_m29ew_erase_suspend(map
,
887 chip
->in_progress_block_addr
);
888 map_write(map
, cfi
->sector_erase_cmd
, chip
->in_progress_block_addr
);
889 cfi_fixup_m29ew_delay_after_resume(cfi
);
890 chip
->oldstate
= FL_READY
;
891 chip
->state
= FL_ERASING
;
894 case FL_XIP_WHILE_ERASING
:
895 chip
->state
= chip
->oldstate
;
896 chip
->oldstate
= FL_READY
;
903 printk(KERN_ERR
"MTD: put_chip() called with oldstate %d!!\n", chip
->oldstate
);
908 #ifdef CONFIG_MTD_XIP
911 * No interrupt what so ever can be serviced while the flash isn't in array
912 * mode. This is ensured by the xip_disable() and xip_enable() functions
913 * enclosing any code path where the flash is known not to be in array mode.
914 * And within a XIP disabled code path, only functions marked with __xipram
915 * may be called and nothing else (it's a good thing to inspect generated
916 * assembly to make sure inline functions were actually inlined and that gcc
917 * didn't emit calls to its own support functions). Also configuring MTD CFI
918 * support to a single buswidth and a single interleave is also recommended.
921 static void xip_disable(struct map_info
*map
, struct flchip
*chip
,
924 /* TODO: chips with no XIP use should ignore and return */
925 (void) map_read(map
, adr
); /* ensure mmu mapping is up to date */
929 static void __xipram
xip_enable(struct map_info
*map
, struct flchip
*chip
,
932 struct cfi_private
*cfi
= map
->fldrv_priv
;
934 if (chip
->state
!= FL_POINT
&& chip
->state
!= FL_READY
) {
935 map_write(map
, CMD(0xf0), adr
);
936 chip
->state
= FL_READY
;
938 (void) map_read(map
, adr
);
944 * When a delay is required for the flash operation to complete, the
945 * xip_udelay() function is polling for both the given timeout and pending
946 * (but still masked) hardware interrupts. Whenever there is an interrupt
947 * pending then the flash erase operation is suspended, array mode restored
948 * and interrupts unmasked. Task scheduling might also happen at that
949 * point. The CPU eventually returns from the interrupt or the call to
950 * schedule() and the suspended flash operation is resumed for the remaining
951 * of the delay period.
953 * Warning: this function _will_ fool interrupt latency tracing tools.
956 static void __xipram
xip_udelay(struct map_info
*map
, struct flchip
*chip
,
957 unsigned long adr
, int usec
)
959 struct cfi_private
*cfi
= map
->fldrv_priv
;
960 struct cfi_pri_amdstd
*extp
= cfi
->cmdset_priv
;
961 map_word status
, OK
= CMD(0x80);
962 unsigned long suspended
, start
= xip_currtime();
967 if (xip_irqpending() && extp
&&
968 ((chip
->state
== FL_ERASING
&& (extp
->EraseSuspend
& 2))) &&
969 (cfi_interleave_is_1(cfi
) || chip
->oldstate
== FL_READY
)) {
971 * Let's suspend the erase operation when supported.
972 * Note that we currently don't try to suspend
973 * interleaved chips if there is already another
974 * operation suspended (imagine what happens
975 * when one chip was already done with the current
976 * operation while another chip suspended it, then
977 * we resume the whole thing at once). Yes, it
980 map_write(map
, CMD(0xb0), adr
);
981 usec
-= xip_elapsed_since(start
);
982 suspended
= xip_currtime();
984 if (xip_elapsed_since(suspended
) > 100000) {
986 * The chip doesn't want to suspend
987 * after waiting for 100 msecs.
988 * This is a critical error but there
989 * is not much we can do here.
993 status
= map_read(map
, adr
);
994 } while (!map_word_andequal(map
, status
, OK
, OK
));
996 /* Suspend succeeded */
997 oldstate
= chip
->state
;
998 if (!map_word_bitsset(map
, status
, CMD(0x40)))
1000 chip
->state
= FL_XIP_WHILE_ERASING
;
1001 chip
->erase_suspended
= 1;
1002 map_write(map
, CMD(0xf0), adr
);
1003 (void) map_read(map
, adr
);
1006 mutex_unlock(&chip
->mutex
);
1011 * We're back. However someone else might have
1012 * decided to go write to the chip if we are in
1013 * a suspended erase state. If so let's wait
1016 mutex_lock(&chip
->mutex
);
1017 while (chip
->state
!= FL_XIP_WHILE_ERASING
) {
1018 DECLARE_WAITQUEUE(wait
, current
);
1019 set_current_state(TASK_UNINTERRUPTIBLE
);
1020 add_wait_queue(&chip
->wq
, &wait
);
1021 mutex_unlock(&chip
->mutex
);
1023 remove_wait_queue(&chip
->wq
, &wait
);
1024 mutex_lock(&chip
->mutex
);
1026 /* Disallow XIP again */
1027 local_irq_disable();
1029 /* Correct Erase Suspend Hangups for M29EW */
1030 cfi_fixup_m29ew_erase_suspend(map
, adr
);
1031 /* Resume the write or erase operation */
1032 map_write(map
, cfi
->sector_erase_cmd
, adr
);
1033 chip
->state
= oldstate
;
1034 start
= xip_currtime();
1035 } else if (usec
>= 1000000/HZ
) {
1037 * Try to save on CPU power when waiting delay
1038 * is at least a system timer tick period.
1039 * No need to be extremely accurate here.
1043 status
= map_read(map
, adr
);
1044 } while (!map_word_andequal(map
, status
, OK
, OK
)
1045 && xip_elapsed_since(start
) < usec
);
1048 #define UDELAY(map, chip, adr, usec) xip_udelay(map, chip, adr, usec)
1051 * The INVALIDATE_CACHED_RANGE() macro is normally used in parallel while
1052 * the flash is actively programming or erasing since we have to poll for
1053 * the operation to complete anyway. We can't do that in a generic way with
1054 * a XIP setup so do it before the actual flash operation in this case
1055 * and stub it out from INVALIDATE_CACHE_UDELAY.
1057 #define XIP_INVAL_CACHED_RANGE(map, from, size) \
1058 INVALIDATE_CACHED_RANGE(map, from, size)
1060 #define INVALIDATE_CACHE_UDELAY(map, chip, adr, len, usec) \
1061 UDELAY(map, chip, adr, usec)
1066 * Activating this XIP support changes the way the code works a bit. For
1067 * example the code to suspend the current process when concurrent access
1068 * happens is never executed because xip_udelay() will always return with the
1069 * same chip state as it was entered with. This is why there is no care for
1070 * the presence of add_wait_queue() or schedule() calls from within a couple
1071 * xip_disable()'d areas of code, like in do_erase_oneblock for example.
1072 * The queueing and scheduling are always happening within xip_udelay().
1074 * Similarly, get_chip() and put_chip() just happen to always be executed
1075 * with chip->state set to FL_READY (or FL_XIP_WHILE_*) where flash state
1076 * is in array mode, therefore never executing many cases therein and not
1077 * causing any problem with XIP.
1082 #define xip_disable(map, chip, adr)
1083 #define xip_enable(map, chip, adr)
1084 #define XIP_INVAL_CACHED_RANGE(x...)
1086 #define UDELAY(map, chip, adr, usec) \
1088 mutex_unlock(&chip->mutex); \
1090 mutex_lock(&chip->mutex); \
1093 #define INVALIDATE_CACHE_UDELAY(map, chip, adr, len, usec) \
1095 mutex_unlock(&chip->mutex); \
1096 INVALIDATE_CACHED_RANGE(map, adr, len); \
1098 mutex_lock(&chip->mutex); \
1103 static inline int do_read_onechip(struct map_info
*map
, struct flchip
*chip
, loff_t adr
, size_t len
, u_char
*buf
)
1105 unsigned long cmd_addr
;
1106 struct cfi_private
*cfi
= map
->fldrv_priv
;
1111 /* Ensure cmd read/writes are aligned. */
1112 cmd_addr
= adr
& ~(map_bankwidth(map
)-1);
1114 mutex_lock(&chip
->mutex
);
1115 ret
= get_chip(map
, chip
, cmd_addr
, FL_READY
);
1117 mutex_unlock(&chip
->mutex
);
1121 if (chip
->state
!= FL_POINT
&& chip
->state
!= FL_READY
) {
1122 map_write(map
, CMD(0xf0), cmd_addr
);
1123 chip
->state
= FL_READY
;
1126 map_copy_from(map
, buf
, adr
, len
);
1128 put_chip(map
, chip
, cmd_addr
);
1130 mutex_unlock(&chip
->mutex
);
1135 static int cfi_amdstd_read (struct mtd_info
*mtd
, loff_t from
, size_t len
, size_t *retlen
, u_char
*buf
)
1137 struct map_info
*map
= mtd
->priv
;
1138 struct cfi_private
*cfi
= map
->fldrv_priv
;
1143 /* ofs: offset within the first chip that the first read should start */
1144 chipnum
= (from
>> cfi
->chipshift
);
1145 ofs
= from
- (chipnum
<< cfi
->chipshift
);
1148 unsigned long thislen
;
1150 if (chipnum
>= cfi
->numchips
)
1153 if ((len
+ ofs
-1) >> cfi
->chipshift
)
1154 thislen
= (1<<cfi
->chipshift
) - ofs
;
1158 ret
= do_read_onechip(map
, &cfi
->chips
[chipnum
], ofs
, thislen
, buf
);
1172 typedef int (*otp_op_t
)(struct map_info
*map
, struct flchip
*chip
,
1173 loff_t adr
, size_t len
, u_char
*buf
, size_t grouplen
);
1175 static inline void otp_enter(struct map_info
*map
, struct flchip
*chip
,
1176 loff_t adr
, size_t len
)
1178 struct cfi_private
*cfi
= map
->fldrv_priv
;
1180 cfi_send_gen_cmd(0xAA, cfi
->addr_unlock1
, chip
->start
, map
, cfi
,
1181 cfi
->device_type
, NULL
);
1182 cfi_send_gen_cmd(0x55, cfi
->addr_unlock2
, chip
->start
, map
, cfi
,
1183 cfi
->device_type
, NULL
);
1184 cfi_send_gen_cmd(0x88, cfi
->addr_unlock1
, chip
->start
, map
, cfi
,
1185 cfi
->device_type
, NULL
);
1187 INVALIDATE_CACHED_RANGE(map
, chip
->start
+ adr
, len
);
1190 static inline void otp_exit(struct map_info
*map
, struct flchip
*chip
,
1191 loff_t adr
, size_t len
)
1193 struct cfi_private
*cfi
= map
->fldrv_priv
;
1195 cfi_send_gen_cmd(0xAA, cfi
->addr_unlock1
, chip
->start
, map
, cfi
,
1196 cfi
->device_type
, NULL
);
1197 cfi_send_gen_cmd(0x55, cfi
->addr_unlock2
, chip
->start
, map
, cfi
,
1198 cfi
->device_type
, NULL
);
1199 cfi_send_gen_cmd(0x90, cfi
->addr_unlock1
, chip
->start
, map
, cfi
,
1200 cfi
->device_type
, NULL
);
1201 cfi_send_gen_cmd(0x00, cfi
->addr_unlock1
, chip
->start
, map
, cfi
,
1202 cfi
->device_type
, NULL
);
1204 INVALIDATE_CACHED_RANGE(map
, chip
->start
+ adr
, len
);
1207 static inline int do_read_secsi_onechip(struct map_info
*map
,
1208 struct flchip
*chip
, loff_t adr
,
1209 size_t len
, u_char
*buf
,
1212 DECLARE_WAITQUEUE(wait
, current
);
1213 unsigned long timeo
= jiffies
+ HZ
;
1216 mutex_lock(&chip
->mutex
);
1218 if (chip
->state
!= FL_READY
){
1219 set_current_state(TASK_UNINTERRUPTIBLE
);
1220 add_wait_queue(&chip
->wq
, &wait
);
1222 mutex_unlock(&chip
->mutex
);
1225 remove_wait_queue(&chip
->wq
, &wait
);
1226 timeo
= jiffies
+ HZ
;
1233 chip
->state
= FL_READY
;
1235 otp_enter(map
, chip
, adr
, len
);
1236 map_copy_from(map
, buf
, adr
, len
);
1237 otp_exit(map
, chip
, adr
, len
);
1240 mutex_unlock(&chip
->mutex
);
1245 static int cfi_amdstd_secsi_read (struct mtd_info
*mtd
, loff_t from
, size_t len
, size_t *retlen
, u_char
*buf
)
1247 struct map_info
*map
= mtd
->priv
;
1248 struct cfi_private
*cfi
= map
->fldrv_priv
;
1253 /* ofs: offset within the first chip that the first read should start */
1254 /* 8 secsi bytes per chip */
1259 unsigned long thislen
;
1261 if (chipnum
>= cfi
->numchips
)
1264 if ((len
+ ofs
-1) >> 3)
1265 thislen
= (1<<3) - ofs
;
1269 ret
= do_read_secsi_onechip(map
, &cfi
->chips
[chipnum
], ofs
,
1284 static int __xipram
do_write_oneword(struct map_info
*map
, struct flchip
*chip
,
1285 unsigned long adr
, map_word datum
,
1288 static int do_otp_write(struct map_info
*map
, struct flchip
*chip
, loff_t adr
,
1289 size_t len
, u_char
*buf
, size_t grouplen
)
1293 unsigned long bus_ofs
= adr
& ~(map_bankwidth(map
)-1);
1294 int gap
= adr
- bus_ofs
;
1295 int n
= min_t(int, len
, map_bankwidth(map
) - gap
);
1296 map_word datum
= map_word_ff(map
);
1298 if (n
!= map_bankwidth(map
)) {
1299 /* partial write of a word, load old contents */
1300 otp_enter(map
, chip
, bus_ofs
, map_bankwidth(map
));
1301 datum
= map_read(map
, bus_ofs
);
1302 otp_exit(map
, chip
, bus_ofs
, map_bankwidth(map
));
1305 datum
= map_word_load_partial(map
, datum
, buf
, gap
, n
);
1306 ret
= do_write_oneword(map
, chip
, bus_ofs
, datum
, FL_OTP_WRITE
);
1318 static int do_otp_lock(struct map_info
*map
, struct flchip
*chip
, loff_t adr
,
1319 size_t len
, u_char
*buf
, size_t grouplen
)
1321 struct cfi_private
*cfi
= map
->fldrv_priv
;
1323 unsigned long timeo
;
1326 /* make sure area matches group boundaries */
1327 if ((adr
!= 0) || (len
!= grouplen
))
1330 mutex_lock(&chip
->mutex
);
1331 ret
= get_chip(map
, chip
, chip
->start
, FL_LOCKING
);
1333 mutex_unlock(&chip
->mutex
);
1336 chip
->state
= FL_LOCKING
;
1338 /* Enter lock register command */
1339 cfi_send_gen_cmd(0xAA, cfi
->addr_unlock1
, chip
->start
, map
, cfi
,
1340 cfi
->device_type
, NULL
);
1341 cfi_send_gen_cmd(0x55, cfi
->addr_unlock2
, chip
->start
, map
, cfi
,
1342 cfi
->device_type
, NULL
);
1343 cfi_send_gen_cmd(0x40, cfi
->addr_unlock1
, chip
->start
, map
, cfi
,
1344 cfi
->device_type
, NULL
);
1346 /* read lock register */
1347 lockreg
= cfi_read_query(map
, 0);
1349 /* set bit 0 to protect extended memory block */
1352 /* set bit 0 to protect extended memory block */
1353 /* write lock register */
1354 map_write(map
, CMD(0xA0), chip
->start
);
1355 map_write(map
, CMD(lockreg
), chip
->start
);
1357 /* wait for chip to become ready */
1358 timeo
= jiffies
+ msecs_to_jiffies(2);
1360 if (chip_ready(map
, adr
))
1363 if (time_after(jiffies
, timeo
)) {
1364 pr_err("Waiting for chip to be ready timed out.\n");
1368 UDELAY(map
, chip
, 0, 1);
1371 /* exit protection commands */
1372 map_write(map
, CMD(0x90), chip
->start
);
1373 map_write(map
, CMD(0x00), chip
->start
);
1375 chip
->state
= FL_READY
;
1376 put_chip(map
, chip
, chip
->start
);
1377 mutex_unlock(&chip
->mutex
);
1382 static int cfi_amdstd_otp_walk(struct mtd_info
*mtd
, loff_t from
, size_t len
,
1383 size_t *retlen
, u_char
*buf
,
1384 otp_op_t action
, int user_regs
)
1386 struct map_info
*map
= mtd
->priv
;
1387 struct cfi_private
*cfi
= map
->fldrv_priv
;
1388 int ofs_factor
= cfi
->interleave
* cfi
->device_type
;
1391 struct flchip
*chip
;
1392 uint8_t otp
, lockreg
;
1395 size_t user_size
, factory_size
, otpsize
;
1396 loff_t user_offset
, factory_offset
, otpoffset
;
1397 int user_locked
= 0, otplocked
;
1401 for (chipnum
= 0; chipnum
< cfi
->numchips
; chipnum
++) {
1402 chip
= &cfi
->chips
[chipnum
];
1406 /* Micron M29EW family */
1407 if (is_m29ew(cfi
)) {
1410 /* check whether secsi area is factory locked
1412 mutex_lock(&chip
->mutex
);
1413 ret
= get_chip(map
, chip
, base
, FL_CFI_QUERY
);
1415 mutex_unlock(&chip
->mutex
);
1418 cfi_qry_mode_on(base
, map
, cfi
);
1419 otp
= cfi_read_query(map
, base
+ 0x3 * ofs_factor
);
1420 cfi_qry_mode_off(base
, map
, cfi
);
1421 put_chip(map
, chip
, base
);
1422 mutex_unlock(&chip
->mutex
);
1425 /* factory locked */
1427 factory_size
= 0x100;
1429 /* customer lockable */
1433 mutex_lock(&chip
->mutex
);
1434 ret
= get_chip(map
, chip
, base
, FL_LOCKING
);
1436 mutex_unlock(&chip
->mutex
);
1440 /* Enter lock register command */
1441 cfi_send_gen_cmd(0xAA, cfi
->addr_unlock1
,
1442 chip
->start
, map
, cfi
,
1443 cfi
->device_type
, NULL
);
1444 cfi_send_gen_cmd(0x55, cfi
->addr_unlock2
,
1445 chip
->start
, map
, cfi
,
1446 cfi
->device_type
, NULL
);
1447 cfi_send_gen_cmd(0x40, cfi
->addr_unlock1
,
1448 chip
->start
, map
, cfi
,
1449 cfi
->device_type
, NULL
);
1450 /* read lock register */
1451 lockreg
= cfi_read_query(map
, 0);
1452 /* exit protection commands */
1453 map_write(map
, CMD(0x90), chip
->start
);
1454 map_write(map
, CMD(0x00), chip
->start
);
1455 put_chip(map
, chip
, chip
->start
);
1456 mutex_unlock(&chip
->mutex
);
1458 user_locked
= ((lockreg
& 0x01) == 0x00);
1462 otpsize
= user_regs
? user_size
: factory_size
;
1465 otpoffset
= user_regs
? user_offset
: factory_offset
;
1466 otplocked
= user_regs
? user_locked
: 1;
1469 /* return otpinfo */
1470 struct otp_info
*otpinfo
;
1471 len
-= sizeof(*otpinfo
);
1474 otpinfo
= (struct otp_info
*)buf
;
1475 otpinfo
->start
= from
;
1476 otpinfo
->length
= otpsize
;
1477 otpinfo
->locked
= otplocked
;
1478 buf
+= sizeof(*otpinfo
);
1479 *retlen
+= sizeof(*otpinfo
);
1481 } else if ((from
< otpsize
) && (len
> 0)) {
1483 size
= (len
< otpsize
- from
) ? len
: otpsize
- from
;
1484 ret
= action(map
, chip
, otpoffset
+ from
, size
, buf
,
1500 static int cfi_amdstd_get_fact_prot_info(struct mtd_info
*mtd
, size_t len
,
1501 size_t *retlen
, struct otp_info
*buf
)
1503 return cfi_amdstd_otp_walk(mtd
, 0, len
, retlen
, (u_char
*)buf
,
1507 static int cfi_amdstd_get_user_prot_info(struct mtd_info
*mtd
, size_t len
,
1508 size_t *retlen
, struct otp_info
*buf
)
1510 return cfi_amdstd_otp_walk(mtd
, 0, len
, retlen
, (u_char
*)buf
,
1514 static int cfi_amdstd_read_fact_prot_reg(struct mtd_info
*mtd
, loff_t from
,
1515 size_t len
, size_t *retlen
,
1518 return cfi_amdstd_otp_walk(mtd
, from
, len
, retlen
,
1519 buf
, do_read_secsi_onechip
, 0);
1522 static int cfi_amdstd_read_user_prot_reg(struct mtd_info
*mtd
, loff_t from
,
1523 size_t len
, size_t *retlen
,
1526 return cfi_amdstd_otp_walk(mtd
, from
, len
, retlen
,
1527 buf
, do_read_secsi_onechip
, 1);
1530 static int cfi_amdstd_write_user_prot_reg(struct mtd_info
*mtd
, loff_t from
,
1531 size_t len
, size_t *retlen
,
1534 return cfi_amdstd_otp_walk(mtd
, from
, len
, retlen
, buf
,
1538 static int cfi_amdstd_lock_user_prot_reg(struct mtd_info
*mtd
, loff_t from
,
1542 return cfi_amdstd_otp_walk(mtd
, from
, len
, &retlen
, NULL
,
1546 static int __xipram
do_write_oneword(struct map_info
*map
, struct flchip
*chip
,
1547 unsigned long adr
, map_word datum
,
1550 struct cfi_private
*cfi
= map
->fldrv_priv
;
1551 unsigned long timeo
= jiffies
+ HZ
;
1553 * We use a 1ms + 1 jiffies generic timeout for writes (most devices
1554 * have a max write time of a few hundreds usec). However, we should
1555 * use the maximum timeout value given by the chip at probe time
1556 * instead. Unfortunately, struct flchip does have a field for
1557 * maximum timeout, only for typical which can be far too short
1558 * depending of the conditions. The ' + 1' is to avoid having a
1559 * timeout of 0 jiffies if HZ is smaller than 1000.
1561 unsigned long uWriteTimeout
= ( HZ
/ 1000 ) + 1;
1568 mutex_lock(&chip
->mutex
);
1569 ret
= get_chip(map
, chip
, adr
, mode
);
1571 mutex_unlock(&chip
->mutex
);
1575 pr_debug("MTD %s(): WRITE 0x%.8lx(0x%.8lx)\n",
1576 __func__
, adr
, datum
.x
[0] );
1578 if (mode
== FL_OTP_WRITE
)
1579 otp_enter(map
, chip
, adr
, map_bankwidth(map
));
1582 * Check for a NOP for the case when the datum to write is already
1583 * present - it saves time and works around buggy chips that corrupt
1584 * data at other locations when 0xff is written to a location that
1585 * already contains 0xff.
1587 oldd
= map_read(map
, adr
);
1588 if (map_word_equal(map
, oldd
, datum
)) {
1589 pr_debug("MTD %s(): NOP\n",
1594 XIP_INVAL_CACHED_RANGE(map
, adr
, map_bankwidth(map
));
1596 xip_disable(map
, chip
, adr
);
1599 cfi_send_gen_cmd(0xAA, cfi
->addr_unlock1
, chip
->start
, map
, cfi
, cfi
->device_type
, NULL
);
1600 cfi_send_gen_cmd(0x55, cfi
->addr_unlock2
, chip
->start
, map
, cfi
, cfi
->device_type
, NULL
);
1601 cfi_send_gen_cmd(0xA0, cfi
->addr_unlock1
, chip
->start
, map
, cfi
, cfi
->device_type
, NULL
);
1602 map_write(map
, datum
, adr
);
1605 INVALIDATE_CACHE_UDELAY(map
, chip
,
1606 adr
, map_bankwidth(map
),
1607 chip
->word_write_time
);
1609 /* See comment above for timeout value. */
1610 timeo
= jiffies
+ uWriteTimeout
;
1612 if (chip
->state
!= mode
) {
1613 /* Someone's suspended the write. Sleep */
1614 DECLARE_WAITQUEUE(wait
, current
);
1616 set_current_state(TASK_UNINTERRUPTIBLE
);
1617 add_wait_queue(&chip
->wq
, &wait
);
1618 mutex_unlock(&chip
->mutex
);
1620 remove_wait_queue(&chip
->wq
, &wait
);
1621 timeo
= jiffies
+ (HZ
/ 2); /* FIXME */
1622 mutex_lock(&chip
->mutex
);
1626 if (time_after(jiffies
, timeo
) && !chip_ready(map
, adr
)){
1627 xip_enable(map
, chip
, adr
);
1628 printk(KERN_WARNING
"MTD %s(): software timeout\n", __func__
);
1629 xip_disable(map
, chip
, adr
);
1633 if (chip_ready(map
, adr
))
1636 /* Latency issues. Drop the lock, wait a while and retry */
1637 UDELAY(map
, chip
, adr
, 1);
1639 /* Did we succeed? */
1640 if (!chip_good(map
, adr
, datum
)) {
1641 /* reset on all failures. */
1642 map_write( map
, CMD(0xF0), chip
->start
);
1643 /* FIXME - should have reset delay before continuing */
1645 if (++retry_cnt
<= MAX_WORD_RETRIES
)
1650 xip_enable(map
, chip
, adr
);
1652 if (mode
== FL_OTP_WRITE
)
1653 otp_exit(map
, chip
, adr
, map_bankwidth(map
));
1654 chip
->state
= FL_READY
;
1656 put_chip(map
, chip
, adr
);
1657 mutex_unlock(&chip
->mutex
);
1663 static int cfi_amdstd_write_words(struct mtd_info
*mtd
, loff_t to
, size_t len
,
1664 size_t *retlen
, const u_char
*buf
)
1666 struct map_info
*map
= mtd
->priv
;
1667 struct cfi_private
*cfi
= map
->fldrv_priv
;
1670 unsigned long ofs
, chipstart
;
1671 DECLARE_WAITQUEUE(wait
, current
);
1673 chipnum
= to
>> cfi
->chipshift
;
1674 ofs
= to
- (chipnum
<< cfi
->chipshift
);
1675 chipstart
= cfi
->chips
[chipnum
].start
;
1677 /* If it's not bus-aligned, do the first byte write */
1678 if (ofs
& (map_bankwidth(map
)-1)) {
1679 unsigned long bus_ofs
= ofs
& ~(map_bankwidth(map
)-1);
1680 int i
= ofs
- bus_ofs
;
1685 mutex_lock(&cfi
->chips
[chipnum
].mutex
);
1687 if (cfi
->chips
[chipnum
].state
!= FL_READY
) {
1688 set_current_state(TASK_UNINTERRUPTIBLE
);
1689 add_wait_queue(&cfi
->chips
[chipnum
].wq
, &wait
);
1691 mutex_unlock(&cfi
->chips
[chipnum
].mutex
);
1694 remove_wait_queue(&cfi
->chips
[chipnum
].wq
, &wait
);
1698 /* Load 'tmp_buf' with old contents of flash */
1699 tmp_buf
= map_read(map
, bus_ofs
+chipstart
);
1701 mutex_unlock(&cfi
->chips
[chipnum
].mutex
);
1703 /* Number of bytes to copy from buffer */
1704 n
= min_t(int, len
, map_bankwidth(map
)-i
);
1706 tmp_buf
= map_word_load_partial(map
, tmp_buf
, buf
, i
, n
);
1708 ret
= do_write_oneword(map
, &cfi
->chips
[chipnum
],
1709 bus_ofs
, tmp_buf
, FL_WRITING
);
1718 if (ofs
>> cfi
->chipshift
) {
1721 if (chipnum
== cfi
->numchips
)
1726 /* We are now aligned, write as much as possible */
1727 while(len
>= map_bankwidth(map
)) {
1730 datum
= map_word_load(map
, buf
);
1732 ret
= do_write_oneword(map
, &cfi
->chips
[chipnum
],
1733 ofs
, datum
, FL_WRITING
);
1737 ofs
+= map_bankwidth(map
);
1738 buf
+= map_bankwidth(map
);
1739 (*retlen
) += map_bankwidth(map
);
1740 len
-= map_bankwidth(map
);
1742 if (ofs
>> cfi
->chipshift
) {
1745 if (chipnum
== cfi
->numchips
)
1747 chipstart
= cfi
->chips
[chipnum
].start
;
1751 /* Write the trailing bytes if any */
1752 if (len
& (map_bankwidth(map
)-1)) {
1756 mutex_lock(&cfi
->chips
[chipnum
].mutex
);
1758 if (cfi
->chips
[chipnum
].state
!= FL_READY
) {
1759 set_current_state(TASK_UNINTERRUPTIBLE
);
1760 add_wait_queue(&cfi
->chips
[chipnum
].wq
, &wait
);
1762 mutex_unlock(&cfi
->chips
[chipnum
].mutex
);
1765 remove_wait_queue(&cfi
->chips
[chipnum
].wq
, &wait
);
1769 tmp_buf
= map_read(map
, ofs
+ chipstart
);
1771 mutex_unlock(&cfi
->chips
[chipnum
].mutex
);
1773 tmp_buf
= map_word_load_partial(map
, tmp_buf
, buf
, 0, len
);
1775 ret
= do_write_oneword(map
, &cfi
->chips
[chipnum
],
1776 ofs
, tmp_buf
, FL_WRITING
);
1788 * FIXME: interleaved mode not tested, and probably not supported!
1790 static int __xipram
do_write_buffer(struct map_info
*map
, struct flchip
*chip
,
1791 unsigned long adr
, const u_char
*buf
,
1794 struct cfi_private
*cfi
= map
->fldrv_priv
;
1795 unsigned long timeo
= jiffies
+ HZ
;
1797 * Timeout is calculated according to CFI data, if available.
1798 * See more comments in cfi_cmdset_0002().
1800 unsigned long uWriteTimeout
=
1801 usecs_to_jiffies(chip
->buffer_write_time_max
);
1803 unsigned long cmd_adr
;
1810 mutex_lock(&chip
->mutex
);
1811 ret
= get_chip(map
, chip
, adr
, FL_WRITING
);
1813 mutex_unlock(&chip
->mutex
);
1817 datum
= map_word_load(map
, buf
);
1819 pr_debug("MTD %s(): WRITE 0x%.8lx(0x%.8lx)\n",
1820 __func__
, adr
, datum
.x
[0] );
1822 XIP_INVAL_CACHED_RANGE(map
, adr
, len
);
1824 xip_disable(map
, chip
, cmd_adr
);
1826 cfi_send_gen_cmd(0xAA, cfi
->addr_unlock1
, chip
->start
, map
, cfi
, cfi
->device_type
, NULL
);
1827 cfi_send_gen_cmd(0x55, cfi
->addr_unlock2
, chip
->start
, map
, cfi
, cfi
->device_type
, NULL
);
1829 /* Write Buffer Load */
1830 map_write(map
, CMD(0x25), cmd_adr
);
1832 chip
->state
= FL_WRITING_TO_BUFFER
;
1834 /* Write length of data to come */
1835 words
= len
/ map_bankwidth(map
);
1836 map_write(map
, CMD(words
- 1), cmd_adr
);
1839 while(z
< words
* map_bankwidth(map
)) {
1840 datum
= map_word_load(map
, buf
);
1841 map_write(map
, datum
, adr
+ z
);
1843 z
+= map_bankwidth(map
);
1844 buf
+= map_bankwidth(map
);
1846 z
-= map_bankwidth(map
);
1850 /* Write Buffer Program Confirm: GO GO GO */
1851 map_write(map
, CMD(0x29), cmd_adr
);
1852 chip
->state
= FL_WRITING
;
1854 INVALIDATE_CACHE_UDELAY(map
, chip
,
1855 adr
, map_bankwidth(map
),
1856 chip
->word_write_time
);
1858 timeo
= jiffies
+ uWriteTimeout
;
1861 if (chip
->state
!= FL_WRITING
) {
1862 /* Someone's suspended the write. Sleep */
1863 DECLARE_WAITQUEUE(wait
, current
);
1865 set_current_state(TASK_UNINTERRUPTIBLE
);
1866 add_wait_queue(&chip
->wq
, &wait
);
1867 mutex_unlock(&chip
->mutex
);
1869 remove_wait_queue(&chip
->wq
, &wait
);
1870 timeo
= jiffies
+ (HZ
/ 2); /* FIXME */
1871 mutex_lock(&chip
->mutex
);
1875 if (time_after(jiffies
, timeo
) && !chip_ready(map
, adr
))
1878 if (chip_ready(map
, adr
)) {
1879 xip_enable(map
, chip
, adr
);
1883 /* Latency issues. Drop the lock, wait a while and retry */
1884 UDELAY(map
, chip
, adr
, 1);
1888 * Recovery from write-buffer programming failures requires
1889 * the write-to-buffer-reset sequence. Since the last part
1890 * of the sequence also works as a normal reset, we can run
1891 * the same commands regardless of why we are here.
1893 * http://www.spansion.com/Support/Application%20Notes/MirrorBit_Write_Buffer_Prog_Page_Buffer_Read_AN.pdf
1895 cfi_send_gen_cmd(0xAA, cfi
->addr_unlock1
, chip
->start
, map
, cfi
,
1896 cfi
->device_type
, NULL
);
1897 cfi_send_gen_cmd(0x55, cfi
->addr_unlock2
, chip
->start
, map
, cfi
,
1898 cfi
->device_type
, NULL
);
1899 cfi_send_gen_cmd(0xF0, cfi
->addr_unlock1
, chip
->start
, map
, cfi
,
1900 cfi
->device_type
, NULL
);
1901 xip_enable(map
, chip
, adr
);
1902 /* FIXME - should have reset delay before continuing */
1904 printk(KERN_WARNING
"MTD %s(): software timeout, address:0x%.8lx.\n",
1909 chip
->state
= FL_READY
;
1911 put_chip(map
, chip
, adr
);
1912 mutex_unlock(&chip
->mutex
);
1918 static int cfi_amdstd_write_buffers(struct mtd_info
*mtd
, loff_t to
, size_t len
,
1919 size_t *retlen
, const u_char
*buf
)
1921 struct map_info
*map
= mtd
->priv
;
1922 struct cfi_private
*cfi
= map
->fldrv_priv
;
1923 int wbufsize
= cfi_interleave(cfi
) << cfi
->cfiq
->MaxBufWriteSize
;
1928 chipnum
= to
>> cfi
->chipshift
;
1929 ofs
= to
- (chipnum
<< cfi
->chipshift
);
1931 /* If it's not bus-aligned, do the first word write */
1932 if (ofs
& (map_bankwidth(map
)-1)) {
1933 size_t local_len
= (-ofs
)&(map_bankwidth(map
)-1);
1934 if (local_len
> len
)
1936 ret
= cfi_amdstd_write_words(mtd
, ofs
+ (chipnum
<<cfi
->chipshift
),
1937 local_len
, retlen
, buf
);
1944 if (ofs
>> cfi
->chipshift
) {
1947 if (chipnum
== cfi
->numchips
)
1952 /* Write buffer is worth it only if more than one word to write... */
1953 while (len
>= map_bankwidth(map
) * 2) {
1954 /* We must not cross write block boundaries */
1955 int size
= wbufsize
- (ofs
& (wbufsize
-1));
1959 if (size
% map_bankwidth(map
))
1960 size
-= size
% map_bankwidth(map
);
1962 ret
= do_write_buffer(map
, &cfi
->chips
[chipnum
],
1972 if (ofs
>> cfi
->chipshift
) {
1975 if (chipnum
== cfi
->numchips
)
1981 size_t retlen_dregs
= 0;
1983 ret
= cfi_amdstd_write_words(mtd
, ofs
+ (chipnum
<<cfi
->chipshift
),
1984 len
, &retlen_dregs
, buf
);
1986 *retlen
+= retlen_dregs
;
1994 * Wait for the flash chip to become ready to write data
1996 * This is only called during the panic_write() path. When panic_write()
1997 * is called, the kernel is in the process of a panic, and will soon be
1998 * dead. Therefore we don't take any locks, and attempt to get access
1999 * to the chip as soon as possible.
2001 static int cfi_amdstd_panic_wait(struct map_info
*map
, struct flchip
*chip
,
2004 struct cfi_private
*cfi
= map
->fldrv_priv
;
2009 * If the driver thinks the chip is idle, and no toggle bits
2010 * are changing, then the chip is actually idle for sure.
2012 if (chip
->state
== FL_READY
&& chip_ready(map
, adr
))
2016 * Try several times to reset the chip and then wait for it
2017 * to become idle. The upper limit of a few milliseconds of
2018 * delay isn't a big problem: the kernel is dying anyway. It
2019 * is more important to save the messages.
2021 while (retries
> 0) {
2022 const unsigned long timeo
= (HZ
/ 1000) + 1;
2024 /* send the reset command */
2025 map_write(map
, CMD(0xF0), chip
->start
);
2027 /* wait for the chip to become ready */
2028 for (i
= 0; i
< jiffies_to_usecs(timeo
); i
++) {
2029 if (chip_ready(map
, adr
))
2038 /* the chip never became ready */
2043 * Write out one word of data to a single flash chip during a kernel panic
2045 * This is only called during the panic_write() path. When panic_write()
2046 * is called, the kernel is in the process of a panic, and will soon be
2047 * dead. Therefore we don't take any locks, and attempt to get access
2048 * to the chip as soon as possible.
2050 * The implementation of this routine is intentionally similar to
2051 * do_write_oneword(), in order to ease code maintenance.
2053 static int do_panic_write_oneword(struct map_info
*map
, struct flchip
*chip
,
2054 unsigned long adr
, map_word datum
)
2056 const unsigned long uWriteTimeout
= (HZ
/ 1000) + 1;
2057 struct cfi_private
*cfi
= map
->fldrv_priv
;
2065 ret
= cfi_amdstd_panic_wait(map
, chip
, adr
);
2069 pr_debug("MTD %s(): PANIC WRITE 0x%.8lx(0x%.8lx)\n",
2070 __func__
, adr
, datum
.x
[0]);
2073 * Check for a NOP for the case when the datum to write is already
2074 * present - it saves time and works around buggy chips that corrupt
2075 * data at other locations when 0xff is written to a location that
2076 * already contains 0xff.
2078 oldd
= map_read(map
, adr
);
2079 if (map_word_equal(map
, oldd
, datum
)) {
2080 pr_debug("MTD %s(): NOP\n", __func__
);
2087 cfi_send_gen_cmd(0xAA, cfi
->addr_unlock1
, chip
->start
, map
, cfi
, cfi
->device_type
, NULL
);
2088 cfi_send_gen_cmd(0x55, cfi
->addr_unlock2
, chip
->start
, map
, cfi
, cfi
->device_type
, NULL
);
2089 cfi_send_gen_cmd(0xA0, cfi
->addr_unlock1
, chip
->start
, map
, cfi
, cfi
->device_type
, NULL
);
2090 map_write(map
, datum
, adr
);
2092 for (i
= 0; i
< jiffies_to_usecs(uWriteTimeout
); i
++) {
2093 if (chip_ready(map
, adr
))
2099 if (!chip_good(map
, adr
, datum
)) {
2100 /* reset on all failures. */
2101 map_write(map
, CMD(0xF0), chip
->start
);
2102 /* FIXME - should have reset delay before continuing */
2104 if (++retry_cnt
<= MAX_WORD_RETRIES
)
2116 * Write out some data during a kernel panic
2118 * This is used by the mtdoops driver to save the dying messages from a
2119 * kernel which has panic'd.
2121 * This routine ignores all of the locking used throughout the rest of the
2122 * driver, in order to ensure that the data gets written out no matter what
2123 * state this driver (and the flash chip itself) was in when the kernel crashed.
2125 * The implementation of this routine is intentionally similar to
2126 * cfi_amdstd_write_words(), in order to ease code maintenance.
2128 static int cfi_amdstd_panic_write(struct mtd_info
*mtd
, loff_t to
, size_t len
,
2129 size_t *retlen
, const u_char
*buf
)
2131 struct map_info
*map
= mtd
->priv
;
2132 struct cfi_private
*cfi
= map
->fldrv_priv
;
2133 unsigned long ofs
, chipstart
;
2137 chipnum
= to
>> cfi
->chipshift
;
2138 ofs
= to
- (chipnum
<< cfi
->chipshift
);
2139 chipstart
= cfi
->chips
[chipnum
].start
;
2141 /* If it's not bus aligned, do the first byte write */
2142 if (ofs
& (map_bankwidth(map
) - 1)) {
2143 unsigned long bus_ofs
= ofs
& ~(map_bankwidth(map
) - 1);
2144 int i
= ofs
- bus_ofs
;
2148 ret
= cfi_amdstd_panic_wait(map
, &cfi
->chips
[chipnum
], bus_ofs
);
2152 /* Load 'tmp_buf' with old contents of flash */
2153 tmp_buf
= map_read(map
, bus_ofs
+ chipstart
);
2155 /* Number of bytes to copy from buffer */
2156 n
= min_t(int, len
, map_bankwidth(map
) - i
);
2158 tmp_buf
= map_word_load_partial(map
, tmp_buf
, buf
, i
, n
);
2160 ret
= do_panic_write_oneword(map
, &cfi
->chips
[chipnum
],
2170 if (ofs
>> cfi
->chipshift
) {
2173 if (chipnum
== cfi
->numchips
)
2178 /* We are now aligned, write as much as possible */
2179 while (len
>= map_bankwidth(map
)) {
2182 datum
= map_word_load(map
, buf
);
2184 ret
= do_panic_write_oneword(map
, &cfi
->chips
[chipnum
],
2189 ofs
+= map_bankwidth(map
);
2190 buf
+= map_bankwidth(map
);
2191 (*retlen
) += map_bankwidth(map
);
2192 len
-= map_bankwidth(map
);
2194 if (ofs
>> cfi
->chipshift
) {
2197 if (chipnum
== cfi
->numchips
)
2200 chipstart
= cfi
->chips
[chipnum
].start
;
2204 /* Write the trailing bytes if any */
2205 if (len
& (map_bankwidth(map
) - 1)) {
2208 ret
= cfi_amdstd_panic_wait(map
, &cfi
->chips
[chipnum
], ofs
);
2212 tmp_buf
= map_read(map
, ofs
+ chipstart
);
2214 tmp_buf
= map_word_load_partial(map
, tmp_buf
, buf
, 0, len
);
2216 ret
= do_panic_write_oneword(map
, &cfi
->chips
[chipnum
],
2229 * Handle devices with one erase region, that only implement
2230 * the chip erase command.
2232 static int __xipram
do_erase_chip(struct map_info
*map
, struct flchip
*chip
)
2234 struct cfi_private
*cfi
= map
->fldrv_priv
;
2235 unsigned long timeo
= jiffies
+ HZ
;
2236 unsigned long int adr
;
2237 DECLARE_WAITQUEUE(wait
, current
);
2240 adr
= cfi
->addr_unlock1
;
2242 mutex_lock(&chip
->mutex
);
2243 ret
= get_chip(map
, chip
, adr
, FL_WRITING
);
2245 mutex_unlock(&chip
->mutex
);
2249 pr_debug("MTD %s(): ERASE 0x%.8lx\n",
2250 __func__
, chip
->start
);
2252 XIP_INVAL_CACHED_RANGE(map
, adr
, map
->size
);
2254 xip_disable(map
, chip
, adr
);
2256 cfi_send_gen_cmd(0xAA, cfi
->addr_unlock1
, chip
->start
, map
, cfi
, cfi
->device_type
, NULL
);
2257 cfi_send_gen_cmd(0x55, cfi
->addr_unlock2
, chip
->start
, map
, cfi
, cfi
->device_type
, NULL
);
2258 cfi_send_gen_cmd(0x80, cfi
->addr_unlock1
, chip
->start
, map
, cfi
, cfi
->device_type
, NULL
);
2259 cfi_send_gen_cmd(0xAA, cfi
->addr_unlock1
, chip
->start
, map
, cfi
, cfi
->device_type
, NULL
);
2260 cfi_send_gen_cmd(0x55, cfi
->addr_unlock2
, chip
->start
, map
, cfi
, cfi
->device_type
, NULL
);
2261 cfi_send_gen_cmd(0x10, cfi
->addr_unlock1
, chip
->start
, map
, cfi
, cfi
->device_type
, NULL
);
2263 chip
->state
= FL_ERASING
;
2264 chip
->erase_suspended
= 0;
2265 chip
->in_progress_block_addr
= adr
;
2267 INVALIDATE_CACHE_UDELAY(map
, chip
,
2269 chip
->erase_time
*500);
2271 timeo
= jiffies
+ (HZ
*20);
2274 if (chip
->state
!= FL_ERASING
) {
2275 /* Someone's suspended the erase. Sleep */
2276 set_current_state(TASK_UNINTERRUPTIBLE
);
2277 add_wait_queue(&chip
->wq
, &wait
);
2278 mutex_unlock(&chip
->mutex
);
2280 remove_wait_queue(&chip
->wq
, &wait
);
2281 mutex_lock(&chip
->mutex
);
2284 if (chip
->erase_suspended
) {
2285 /* This erase was suspended and resumed.
2286 Adjust the timeout */
2287 timeo
= jiffies
+ (HZ
*20); /* FIXME */
2288 chip
->erase_suspended
= 0;
2291 if (chip_ready(map
, adr
))
2294 if (time_after(jiffies
, timeo
)) {
2295 printk(KERN_WARNING
"MTD %s(): software timeout\n",
2300 /* Latency issues. Drop the lock, wait a while and retry */
2301 UDELAY(map
, chip
, adr
, 1000000/HZ
);
2303 /* Did we succeed? */
2304 if (!chip_good(map
, adr
, map_word_ff(map
))) {
2305 /* reset on all failures. */
2306 map_write( map
, CMD(0xF0), chip
->start
);
2307 /* FIXME - should have reset delay before continuing */
2312 chip
->state
= FL_READY
;
2313 xip_enable(map
, chip
, adr
);
2315 put_chip(map
, chip
, adr
);
2316 mutex_unlock(&chip
->mutex
);
2322 static int __xipram
do_erase_oneblock(struct map_info
*map
, struct flchip
*chip
, unsigned long adr
, int len
, void *thunk
)
2324 struct cfi_private
*cfi
= map
->fldrv_priv
;
2325 unsigned long timeo
= jiffies
+ HZ
;
2326 DECLARE_WAITQUEUE(wait
, current
);
2331 mutex_lock(&chip
->mutex
);
2332 ret
= get_chip(map
, chip
, adr
, FL_ERASING
);
2334 mutex_unlock(&chip
->mutex
);
2338 pr_debug("MTD %s(): ERASE 0x%.8lx\n",
2341 XIP_INVAL_CACHED_RANGE(map
, adr
, len
);
2343 xip_disable(map
, chip
, adr
);
2345 cfi_send_gen_cmd(0xAA, cfi
->addr_unlock1
, chip
->start
, map
, cfi
, cfi
->device_type
, NULL
);
2346 cfi_send_gen_cmd(0x55, cfi
->addr_unlock2
, chip
->start
, map
, cfi
, cfi
->device_type
, NULL
);
2347 cfi_send_gen_cmd(0x80, cfi
->addr_unlock1
, chip
->start
, map
, cfi
, cfi
->device_type
, NULL
);
2348 cfi_send_gen_cmd(0xAA, cfi
->addr_unlock1
, chip
->start
, map
, cfi
, cfi
->device_type
, NULL
);
2349 cfi_send_gen_cmd(0x55, cfi
->addr_unlock2
, chip
->start
, map
, cfi
, cfi
->device_type
, NULL
);
2350 map_write(map
, cfi
->sector_erase_cmd
, adr
);
2352 chip
->state
= FL_ERASING
;
2353 chip
->erase_suspended
= 0;
2354 chip
->in_progress_block_addr
= adr
;
2356 INVALIDATE_CACHE_UDELAY(map
, chip
,
2358 chip
->erase_time
*500);
2360 timeo
= jiffies
+ (HZ
*20);
2363 if (chip
->state
!= FL_ERASING
) {
2364 /* Someone's suspended the erase. Sleep */
2365 set_current_state(TASK_UNINTERRUPTIBLE
);
2366 add_wait_queue(&chip
->wq
, &wait
);
2367 mutex_unlock(&chip
->mutex
);
2369 remove_wait_queue(&chip
->wq
, &wait
);
2370 mutex_lock(&chip
->mutex
);
2373 if (chip
->erase_suspended
) {
2374 /* This erase was suspended and resumed.
2375 Adjust the timeout */
2376 timeo
= jiffies
+ (HZ
*20); /* FIXME */
2377 chip
->erase_suspended
= 0;
2380 if (chip_ready(map
, adr
)) {
2381 xip_enable(map
, chip
, adr
);
2385 if (time_after(jiffies
, timeo
)) {
2386 xip_enable(map
, chip
, adr
);
2387 printk(KERN_WARNING
"MTD %s(): software timeout\n",
2392 /* Latency issues. Drop the lock, wait a while and retry */
2393 UDELAY(map
, chip
, adr
, 1000000/HZ
);
2395 /* Did we succeed? */
2396 if (!chip_good(map
, adr
, map_word_ff(map
))) {
2397 /* reset on all failures. */
2398 map_write( map
, CMD(0xF0), chip
->start
);
2399 /* FIXME - should have reset delay before continuing */
2404 chip
->state
= FL_READY
;
2406 put_chip(map
, chip
, adr
);
2407 mutex_unlock(&chip
->mutex
);
2412 static int cfi_amdstd_erase_varsize(struct mtd_info
*mtd
, struct erase_info
*instr
)
2414 unsigned long ofs
, len
;
2420 ret
= cfi_varsize_frob(mtd
, do_erase_oneblock
, ofs
, len
, NULL
);
2424 instr
->state
= MTD_ERASE_DONE
;
2425 mtd_erase_callback(instr
);
2431 static int cfi_amdstd_erase_chip(struct mtd_info
*mtd
, struct erase_info
*instr
)
2433 struct map_info
*map
= mtd
->priv
;
2434 struct cfi_private
*cfi
= map
->fldrv_priv
;
2437 if (instr
->addr
!= 0)
2440 if (instr
->len
!= mtd
->size
)
2443 ret
= do_erase_chip(map
, &cfi
->chips
[0]);
2447 instr
->state
= MTD_ERASE_DONE
;
2448 mtd_erase_callback(instr
);
2453 static int do_atmel_lock(struct map_info
*map
, struct flchip
*chip
,
2454 unsigned long adr
, int len
, void *thunk
)
2456 struct cfi_private
*cfi
= map
->fldrv_priv
;
2459 mutex_lock(&chip
->mutex
);
2460 ret
= get_chip(map
, chip
, adr
+ chip
->start
, FL_LOCKING
);
2463 chip
->state
= FL_LOCKING
;
2465 pr_debug("MTD %s(): LOCK 0x%08lx len %d\n", __func__
, adr
, len
);
2467 cfi_send_gen_cmd(0xAA, cfi
->addr_unlock1
, chip
->start
, map
, cfi
,
2468 cfi
->device_type
, NULL
);
2469 cfi_send_gen_cmd(0x55, cfi
->addr_unlock2
, chip
->start
, map
, cfi
,
2470 cfi
->device_type
, NULL
);
2471 cfi_send_gen_cmd(0x80, cfi
->addr_unlock1
, chip
->start
, map
, cfi
,
2472 cfi
->device_type
, NULL
);
2473 cfi_send_gen_cmd(0xAA, cfi
->addr_unlock1
, chip
->start
, map
, cfi
,
2474 cfi
->device_type
, NULL
);
2475 cfi_send_gen_cmd(0x55, cfi
->addr_unlock2
, chip
->start
, map
, cfi
,
2476 cfi
->device_type
, NULL
);
2477 map_write(map
, CMD(0x40), chip
->start
+ adr
);
2479 chip
->state
= FL_READY
;
2480 put_chip(map
, chip
, adr
+ chip
->start
);
2484 mutex_unlock(&chip
->mutex
);
2488 static int do_atmel_unlock(struct map_info
*map
, struct flchip
*chip
,
2489 unsigned long adr
, int len
, void *thunk
)
2491 struct cfi_private
*cfi
= map
->fldrv_priv
;
2494 mutex_lock(&chip
->mutex
);
2495 ret
= get_chip(map
, chip
, adr
+ chip
->start
, FL_UNLOCKING
);
2498 chip
->state
= FL_UNLOCKING
;
2500 pr_debug("MTD %s(): LOCK 0x%08lx len %d\n", __func__
, adr
, len
);
2502 cfi_send_gen_cmd(0xAA, cfi
->addr_unlock1
, chip
->start
, map
, cfi
,
2503 cfi
->device_type
, NULL
);
2504 map_write(map
, CMD(0x70), adr
);
2506 chip
->state
= FL_READY
;
2507 put_chip(map
, chip
, adr
+ chip
->start
);
2511 mutex_unlock(&chip
->mutex
);
2515 static int cfi_atmel_lock(struct mtd_info
*mtd
, loff_t ofs
, uint64_t len
)
2517 return cfi_varsize_frob(mtd
, do_atmel_lock
, ofs
, len
, NULL
);
2520 static int cfi_atmel_unlock(struct mtd_info
*mtd
, loff_t ofs
, uint64_t len
)
2522 return cfi_varsize_frob(mtd
, do_atmel_unlock
, ofs
, len
, NULL
);
2526 * Advanced Sector Protection - PPB (Persistent Protection Bit) locking
2530 struct flchip
*chip
;
2535 #define MAX_SECTORS 512
2537 #define DO_XXLOCK_ONEBLOCK_LOCK ((void *)1)
2538 #define DO_XXLOCK_ONEBLOCK_UNLOCK ((void *)2)
2539 #define DO_XXLOCK_ONEBLOCK_GETLOCK ((void *)3)
2541 static int __maybe_unused
do_ppb_xxlock(struct map_info
*map
,
2542 struct flchip
*chip
,
2543 unsigned long adr
, int len
, void *thunk
)
2545 struct cfi_private
*cfi
= map
->fldrv_priv
;
2546 unsigned long timeo
;
2549 mutex_lock(&chip
->mutex
);
2550 ret
= get_chip(map
, chip
, adr
+ chip
->start
, FL_LOCKING
);
2552 mutex_unlock(&chip
->mutex
);
2556 pr_debug("MTD %s(): XXLOCK 0x%08lx len %d\n", __func__
, adr
, len
);
2558 cfi_send_gen_cmd(0xAA, cfi
->addr_unlock1
, chip
->start
, map
, cfi
,
2559 cfi
->device_type
, NULL
);
2560 cfi_send_gen_cmd(0x55, cfi
->addr_unlock2
, chip
->start
, map
, cfi
,
2561 cfi
->device_type
, NULL
);
2562 /* PPB entry command */
2563 cfi_send_gen_cmd(0xC0, cfi
->addr_unlock1
, chip
->start
, map
, cfi
,
2564 cfi
->device_type
, NULL
);
2566 if (thunk
== DO_XXLOCK_ONEBLOCK_LOCK
) {
2567 chip
->state
= FL_LOCKING
;
2568 map_write(map
, CMD(0xA0), chip
->start
+ adr
);
2569 map_write(map
, CMD(0x00), chip
->start
+ adr
);
2570 } else if (thunk
== DO_XXLOCK_ONEBLOCK_UNLOCK
) {
2572 * Unlocking of one specific sector is not supported, so we
2573 * have to unlock all sectors of this device instead
2575 chip
->state
= FL_UNLOCKING
;
2576 map_write(map
, CMD(0x80), chip
->start
);
2577 map_write(map
, CMD(0x30), chip
->start
);
2578 } else if (thunk
== DO_XXLOCK_ONEBLOCK_GETLOCK
) {
2579 chip
->state
= FL_JEDEC_QUERY
;
2580 /* Return locked status: 0->locked, 1->unlocked */
2581 ret
= !cfi_read_query(map
, adr
);
2586 * Wait for some time as unlocking of all sectors takes quite long
2588 timeo
= jiffies
+ msecs_to_jiffies(2000); /* 2s max (un)locking */
2590 if (chip_ready(map
, adr
))
2593 if (time_after(jiffies
, timeo
)) {
2594 printk(KERN_ERR
"Waiting for chip to be ready timed out.\n");
2599 UDELAY(map
, chip
, adr
, 1);
2602 /* Exit BC commands */
2603 map_write(map
, CMD(0x90), chip
->start
);
2604 map_write(map
, CMD(0x00), chip
->start
);
2606 chip
->state
= FL_READY
;
2607 put_chip(map
, chip
, adr
+ chip
->start
);
2608 mutex_unlock(&chip
->mutex
);
2613 static int __maybe_unused
cfi_ppb_lock(struct mtd_info
*mtd
, loff_t ofs
,
2616 return cfi_varsize_frob(mtd
, do_ppb_xxlock
, ofs
, len
,
2617 DO_XXLOCK_ONEBLOCK_LOCK
);
2620 static int __maybe_unused
cfi_ppb_unlock(struct mtd_info
*mtd
, loff_t ofs
,
2623 struct mtd_erase_region_info
*regions
= mtd
->eraseregions
;
2624 struct map_info
*map
= mtd
->priv
;
2625 struct cfi_private
*cfi
= map
->fldrv_priv
;
2626 struct ppb_lock
*sect
;
2636 * PPB unlocking always unlocks all sectors of the flash chip.
2637 * We need to re-lock all previously locked sectors. So lets
2638 * first check the locking status of all sectors and save
2639 * it for future use.
2641 sect
= kzalloc(MAX_SECTORS
* sizeof(struct ppb_lock
), GFP_KERNEL
);
2646 * This code to walk all sectors is a slightly modified version
2647 * of the cfi_varsize_frob() code.
2657 int size
= regions
[i
].erasesize
;
2660 * Only test sectors that shall not be unlocked. The other
2661 * sectors shall be unlocked, so lets keep their locking
2662 * status at "unlocked" (locked=0) for the final re-locking.
2664 if ((adr
< ofs
) || (adr
>= (ofs
+ len
))) {
2665 sect
[sectors
].chip
= &cfi
->chips
[chipnum
];
2666 sect
[sectors
].offset
= offset
;
2667 sect
[sectors
].locked
= do_ppb_xxlock(
2668 map
, &cfi
->chips
[chipnum
], adr
, 0,
2669 DO_XXLOCK_ONEBLOCK_GETLOCK
);
2676 if (offset
== regions
[i
].offset
+ size
* regions
[i
].numblocks
)
2679 if (adr
>> cfi
->chipshift
) {
2683 if (chipnum
>= cfi
->numchips
)
2688 if (sectors
>= MAX_SECTORS
) {
2689 printk(KERN_ERR
"Only %d sectors for PPB locking supported!\n",
2696 /* Now unlock the whole chip */
2697 ret
= cfi_varsize_frob(mtd
, do_ppb_xxlock
, ofs
, len
,
2698 DO_XXLOCK_ONEBLOCK_UNLOCK
);
2705 * PPB unlocking always unlocks all sectors of the flash chip.
2706 * We need to re-lock all previously locked sectors.
2708 for (i
= 0; i
< sectors
; i
++) {
2710 do_ppb_xxlock(map
, sect
[i
].chip
, sect
[i
].offset
, 0,
2711 DO_XXLOCK_ONEBLOCK_LOCK
);
2718 static int __maybe_unused
cfi_ppb_is_locked(struct mtd_info
*mtd
, loff_t ofs
,
2721 return cfi_varsize_frob(mtd
, do_ppb_xxlock
, ofs
, len
,
2722 DO_XXLOCK_ONEBLOCK_GETLOCK
) ? 1 : 0;
2725 static void cfi_amdstd_sync (struct mtd_info
*mtd
)
2727 struct map_info
*map
= mtd
->priv
;
2728 struct cfi_private
*cfi
= map
->fldrv_priv
;
2730 struct flchip
*chip
;
2732 DECLARE_WAITQUEUE(wait
, current
);
2734 for (i
=0; !ret
&& i
<cfi
->numchips
; i
++) {
2735 chip
= &cfi
->chips
[i
];
2738 mutex_lock(&chip
->mutex
);
2740 switch(chip
->state
) {
2744 case FL_JEDEC_QUERY
:
2745 chip
->oldstate
= chip
->state
;
2746 chip
->state
= FL_SYNCING
;
2747 /* No need to wake_up() on this state change -
2748 * as the whole point is that nobody can do anything
2749 * with the chip now anyway.
2752 mutex_unlock(&chip
->mutex
);
2756 /* Not an idle state */
2757 set_current_state(TASK_UNINTERRUPTIBLE
);
2758 add_wait_queue(&chip
->wq
, &wait
);
2760 mutex_unlock(&chip
->mutex
);
2764 remove_wait_queue(&chip
->wq
, &wait
);
2770 /* Unlock the chips again */
2772 for (i
--; i
>=0; i
--) {
2773 chip
= &cfi
->chips
[i
];
2775 mutex_lock(&chip
->mutex
);
2777 if (chip
->state
== FL_SYNCING
) {
2778 chip
->state
= chip
->oldstate
;
2781 mutex_unlock(&chip
->mutex
);
2786 static int cfi_amdstd_suspend(struct mtd_info
*mtd
)
2788 struct map_info
*map
= mtd
->priv
;
2789 struct cfi_private
*cfi
= map
->fldrv_priv
;
2791 struct flchip
*chip
;
2794 for (i
=0; !ret
&& i
<cfi
->numchips
; i
++) {
2795 chip
= &cfi
->chips
[i
];
2797 mutex_lock(&chip
->mutex
);
2799 switch(chip
->state
) {
2803 case FL_JEDEC_QUERY
:
2804 chip
->oldstate
= chip
->state
;
2805 chip
->state
= FL_PM_SUSPENDED
;
2806 /* No need to wake_up() on this state change -
2807 * as the whole point is that nobody can do anything
2808 * with the chip now anyway.
2810 case FL_PM_SUSPENDED
:
2817 mutex_unlock(&chip
->mutex
);
2820 /* Unlock the chips again */
2823 for (i
--; i
>=0; i
--) {
2824 chip
= &cfi
->chips
[i
];
2826 mutex_lock(&chip
->mutex
);
2828 if (chip
->state
== FL_PM_SUSPENDED
) {
2829 chip
->state
= chip
->oldstate
;
2832 mutex_unlock(&chip
->mutex
);
2840 static void cfi_amdstd_resume(struct mtd_info
*mtd
)
2842 struct map_info
*map
= mtd
->priv
;
2843 struct cfi_private
*cfi
= map
->fldrv_priv
;
2845 struct flchip
*chip
;
2847 for (i
=0; i
<cfi
->numchips
; i
++) {
2849 chip
= &cfi
->chips
[i
];
2851 mutex_lock(&chip
->mutex
);
2853 if (chip
->state
== FL_PM_SUSPENDED
) {
2854 chip
->state
= FL_READY
;
2855 map_write(map
, CMD(0xF0), chip
->start
);
2859 printk(KERN_ERR
"Argh. Chip not in PM_SUSPENDED state upon resume()\n");
2861 mutex_unlock(&chip
->mutex
);
2867 * Ensure that the flash device is put back into read array mode before
2868 * unloading the driver or rebooting. On some systems, rebooting while
2869 * the flash is in query/program/erase mode will prevent the CPU from
2870 * fetching the bootloader code, requiring a hard reset or power cycle.
2872 static int cfi_amdstd_reset(struct mtd_info
*mtd
)
2874 struct map_info
*map
= mtd
->priv
;
2875 struct cfi_private
*cfi
= map
->fldrv_priv
;
2877 struct flchip
*chip
;
2879 for (i
= 0; i
< cfi
->numchips
; i
++) {
2881 chip
= &cfi
->chips
[i
];
2883 mutex_lock(&chip
->mutex
);
2885 ret
= get_chip(map
, chip
, chip
->start
, FL_SHUTDOWN
);
2887 map_write(map
, CMD(0xF0), chip
->start
);
2888 chip
->state
= FL_SHUTDOWN
;
2889 put_chip(map
, chip
, chip
->start
);
2892 mutex_unlock(&chip
->mutex
);
2899 static int cfi_amdstd_reboot(struct notifier_block
*nb
, unsigned long val
,
2902 struct mtd_info
*mtd
;
2904 mtd
= container_of(nb
, struct mtd_info
, reboot_notifier
);
2905 cfi_amdstd_reset(mtd
);
2910 static void cfi_amdstd_destroy(struct mtd_info
*mtd
)
2912 struct map_info
*map
= mtd
->priv
;
2913 struct cfi_private
*cfi
= map
->fldrv_priv
;
2915 cfi_amdstd_reset(mtd
);
2916 unregister_reboot_notifier(&mtd
->reboot_notifier
);
2917 kfree(cfi
->cmdset_priv
);
2920 kfree(mtd
->eraseregions
);
2923 MODULE_LICENSE("GPL");
2924 MODULE_AUTHOR("Crossnet Co. <info@crossnet.co.jp> et al.");
2925 MODULE_DESCRIPTION("MTD chip driver for AMD/Fujitsu flash chips");
2926 MODULE_ALIAS("cfi_cmdset_0006");
2927 MODULE_ALIAS("cfi_cmdset_0701");