2 * linux/drivers/mtd/onenand/onenand_base.c
4 * Copyright (C) 2005-2007 Samsung Electronics
5 * Kyungmin Park <kyungmin.park@samsung.com>
8 * Adrian Hunter <ext-adrian.hunter@nokia.com>:
9 * auto-placement support, read-while load support, various fixes
10 * Copyright (C) Nokia Corporation, 2007
12 * This program is free software; you can redistribute it and/or modify
13 * it under the terms of the GNU General Public License version 2 as
14 * published by the Free Software Foundation.
17 #include <linux/kernel.h>
18 #include <linux/module.h>
19 #include <linux/init.h>
20 #include <linux/sched.h>
21 #include <linux/delay.h>
22 #include <linux/interrupt.h>
23 #include <linux/jiffies.h>
24 #include <linux/mtd/mtd.h>
25 #include <linux/mtd/onenand.h>
26 #include <linux/mtd/partitions.h>
31 * onenand_oob_64 - oob info for large (2KB) page
33 static struct nand_ecclayout onenand_oob_64
= {
42 {2, 3}, {14, 2}, {18, 3}, {30, 2},
43 {34, 3}, {46, 2}, {50, 3}, {62, 2}
48 * onenand_oob_32 - oob info for middle (1KB) page
50 static struct nand_ecclayout onenand_oob_32
= {
56 .oobfree
= { {2, 3}, {14, 2}, {18, 3}, {30, 2} }
59 static const unsigned char ffchars
[] = {
60 0xff, 0xff, 0xff, 0xff, 0xff, 0xff, 0xff, 0xff,
61 0xff, 0xff, 0xff, 0xff, 0xff, 0xff, 0xff, 0xff, /* 16 */
62 0xff, 0xff, 0xff, 0xff, 0xff, 0xff, 0xff, 0xff,
63 0xff, 0xff, 0xff, 0xff, 0xff, 0xff, 0xff, 0xff, /* 32 */
64 0xff, 0xff, 0xff, 0xff, 0xff, 0xff, 0xff, 0xff,
65 0xff, 0xff, 0xff, 0xff, 0xff, 0xff, 0xff, 0xff, /* 48 */
66 0xff, 0xff, 0xff, 0xff, 0xff, 0xff, 0xff, 0xff,
67 0xff, 0xff, 0xff, 0xff, 0xff, 0xff, 0xff, 0xff, /* 64 */
71 * onenand_readw - [OneNAND Interface] Read OneNAND register
72 * @param addr address to read
74 * Read OneNAND register
76 static unsigned short onenand_readw(void __iomem
*addr
)
82 * onenand_writew - [OneNAND Interface] Write OneNAND register with value
83 * @param value value to write
84 * @param addr address to write
86 * Write OneNAND register with value
88 static void onenand_writew(unsigned short value
, void __iomem
*addr
)
94 * onenand_block_address - [DEFAULT] Get block address
95 * @param this onenand chip data structure
96 * @param block the block
97 * @return translated block address if DDP, otherwise same
99 * Setup Start Address 1 Register (F100h)
101 static int onenand_block_address(struct onenand_chip
*this, int block
)
103 /* Device Flash Core select, NAND Flash Block Address */
104 if (block
& this->density_mask
)
105 return ONENAND_DDP_CHIP1
| (block
^ this->density_mask
);
111 * onenand_bufferram_address - [DEFAULT] Get bufferram address
112 * @param this onenand chip data structure
113 * @param block the block
114 * @return set DBS value if DDP, otherwise 0
116 * Setup Start Address 2 Register (F101h) for DDP
118 static int onenand_bufferram_address(struct onenand_chip
*this, int block
)
120 /* Device BufferRAM Select */
121 if (block
& this->density_mask
)
122 return ONENAND_DDP_CHIP1
;
124 return ONENAND_DDP_CHIP0
;
128 * onenand_page_address - [DEFAULT] Get page address
129 * @param page the page address
130 * @param sector the sector address
131 * @return combined page and sector address
133 * Setup Start Address 8 Register (F107h)
135 static int onenand_page_address(int page
, int sector
)
137 /* Flash Page Address, Flash Sector Address */
140 fpa
= page
& ONENAND_FPA_MASK
;
141 fsa
= sector
& ONENAND_FSA_MASK
;
143 return ((fpa
<< ONENAND_FPA_SHIFT
) | fsa
);
147 * onenand_buffer_address - [DEFAULT] Get buffer address
148 * @param dataram1 DataRAM index
149 * @param sectors the sector address
150 * @param count the number of sectors
151 * @return the start buffer value
153 * Setup Start Buffer Register (F200h)
155 static int onenand_buffer_address(int dataram1
, int sectors
, int count
)
159 /* BufferRAM Sector Address */
160 bsa
= sectors
& ONENAND_BSA_MASK
;
163 bsa
|= ONENAND_BSA_DATARAM1
; /* DataRAM1 */
165 bsa
|= ONENAND_BSA_DATARAM0
; /* DataRAM0 */
167 /* BufferRAM Sector Count */
168 bsc
= count
& ONENAND_BSC_MASK
;
170 return ((bsa
<< ONENAND_BSA_SHIFT
) | bsc
);
174 * onenand_get_density - [DEFAULT] Get OneNAND density
175 * @param dev_id OneNAND device ID
177 * Get OneNAND density from device ID
179 static inline int onenand_get_density(int dev_id
)
181 int density
= dev_id
>> ONENAND_DEVICE_DENSITY_SHIFT
;
182 return (density
& ONENAND_DEVICE_DENSITY_MASK
);
186 * onenand_command - [DEFAULT] Send command to OneNAND device
187 * @param mtd MTD device structure
188 * @param cmd the command to be sent
189 * @param addr offset to read from or write to
190 * @param len number of bytes to read or write
192 * Send command to OneNAND device. This function is used for middle/large page
193 * devices (1KB/2KB Bytes per page)
195 static int onenand_command(struct mtd_info
*mtd
, int cmd
, loff_t addr
, size_t len
)
197 struct onenand_chip
*this = mtd
->priv
;
198 int value
, block
, page
;
200 /* Address translation */
202 case ONENAND_CMD_UNLOCK
:
203 case ONENAND_CMD_LOCK
:
204 case ONENAND_CMD_LOCK_TIGHT
:
205 case ONENAND_CMD_UNLOCK_ALL
:
210 case ONENAND_CMD_ERASE
:
211 case ONENAND_CMD_BUFFERRAM
:
212 case ONENAND_CMD_OTP_ACCESS
:
213 block
= (int) (addr
>> this->erase_shift
);
218 block
= (int) (addr
>> this->erase_shift
);
219 page
= (int) (addr
>> this->page_shift
);
221 if (ONENAND_IS_2PLANE(this)) {
222 /* Make the even block number */
224 /* Is it the odd plane? */
225 if (addr
& this->writesize
)
229 page
&= this->page_mask
;
233 /* NOTE: The setting order of the registers is very important! */
234 if (cmd
== ONENAND_CMD_BUFFERRAM
) {
235 /* Select DataRAM for DDP */
236 value
= onenand_bufferram_address(this, block
);
237 this->write_word(value
, this->base
+ ONENAND_REG_START_ADDRESS2
);
239 if (ONENAND_IS_2PLANE(this))
240 /* It is always BufferRAM0 */
241 ONENAND_SET_BUFFERRAM0(this);
243 /* Switch to the next data buffer */
244 ONENAND_SET_NEXT_BUFFERRAM(this);
250 /* Write 'DFS, FBA' of Flash */
251 value
= onenand_block_address(this, block
);
252 this->write_word(value
, this->base
+ ONENAND_REG_START_ADDRESS1
);
254 /* Select DataRAM for DDP */
255 value
= onenand_bufferram_address(this, block
);
256 this->write_word(value
, this->base
+ ONENAND_REG_START_ADDRESS2
);
260 /* Now we use page size operation */
261 int sectors
= 4, count
= 4;
265 case ONENAND_CMD_READ
:
266 case ONENAND_CMD_READOOB
:
267 dataram
= ONENAND_SET_NEXT_BUFFERRAM(this);
271 if (ONENAND_IS_2PLANE(this) && cmd
== ONENAND_CMD_PROG
)
272 cmd
= ONENAND_CMD_2X_PROG
;
273 dataram
= ONENAND_CURRENT_BUFFERRAM(this);
277 /* Write 'FPA, FSA' of Flash */
278 value
= onenand_page_address(page
, sectors
);
279 this->write_word(value
, this->base
+ ONENAND_REG_START_ADDRESS8
);
281 /* Write 'BSA, BSC' of DataRAM */
282 value
= onenand_buffer_address(dataram
, sectors
, count
);
283 this->write_word(value
, this->base
+ ONENAND_REG_START_BUFFER
);
286 /* Interrupt clear */
287 this->write_word(ONENAND_INT_CLEAR
, this->base
+ ONENAND_REG_INTERRUPT
);
290 this->write_word(cmd
, this->base
+ ONENAND_REG_COMMAND
);
296 * onenand_wait - [DEFAULT] wait until the command is done
297 * @param mtd MTD device structure
298 * @param state state to select the max. timeout value
300 * Wait for command done. This applies to all OneNAND command
301 * Read can take up to 30us, erase up to 2ms and program up to 350us
302 * according to general OneNAND specs
304 static int onenand_wait(struct mtd_info
*mtd
, int state
)
306 struct onenand_chip
* this = mtd
->priv
;
307 unsigned long timeout
;
308 unsigned int flags
= ONENAND_INT_MASTER
;
309 unsigned int interrupt
= 0;
312 /* The 20 msec is enough */
313 timeout
= jiffies
+ msecs_to_jiffies(20);
314 while (time_before(jiffies
, timeout
)) {
315 interrupt
= this->read_word(this->base
+ ONENAND_REG_INTERRUPT
);
317 if (interrupt
& flags
)
320 if (state
!= FL_READING
)
323 /* To get correct interrupt status in timeout case */
324 interrupt
= this->read_word(this->base
+ ONENAND_REG_INTERRUPT
);
326 ctrl
= this->read_word(this->base
+ ONENAND_REG_CTRL_STATUS
);
329 * In the Spec. it checks the controller status first
330 * However if you get the correct information in case of
331 * power off recovery (POR) test, it should read ECC status first
333 if (interrupt
& ONENAND_INT_READ
) {
334 int ecc
= this->read_word(this->base
+ ONENAND_REG_ECC_STATUS
);
336 if (ecc
& ONENAND_ECC_2BIT_ALL
) {
337 printk(KERN_ERR
"onenand_wait: ECC error = 0x%04x\n", ecc
);
338 mtd
->ecc_stats
.failed
++;
340 } else if (ecc
& ONENAND_ECC_1BIT_ALL
) {
341 printk(KERN_INFO
"onenand_wait: correctable ECC error = 0x%04x\n", ecc
);
342 mtd
->ecc_stats
.corrected
++;
345 } else if (state
== FL_READING
) {
346 printk(KERN_ERR
"onenand_wait: read timeout! ctrl=0x%04x intr=0x%04x\n", ctrl
, interrupt
);
350 /* If there's controller error, it's a real error */
351 if (ctrl
& ONENAND_CTRL_ERROR
) {
352 printk(KERN_ERR
"onenand_wait: controller error = 0x%04x\n",
354 if (ctrl
& ONENAND_CTRL_LOCK
)
355 printk(KERN_ERR
"onenand_wait: it's locked error.\n");
363 * onenand_interrupt - [DEFAULT] onenand interrupt handler
364 * @param irq onenand interrupt number
365 * @param dev_id interrupt data
369 static irqreturn_t
onenand_interrupt(int irq
, void *data
)
371 struct onenand_chip
*this = data
;
373 /* To handle shared interrupt */
374 if (!this->complete
.done
)
375 complete(&this->complete
);
381 * onenand_interrupt_wait - [DEFAULT] wait until the command is done
382 * @param mtd MTD device structure
383 * @param state state to select the max. timeout value
385 * Wait for command done.
387 static int onenand_interrupt_wait(struct mtd_info
*mtd
, int state
)
389 struct onenand_chip
*this = mtd
->priv
;
391 wait_for_completion(&this->complete
);
393 return onenand_wait(mtd
, state
);
397 * onenand_try_interrupt_wait - [DEFAULT] try interrupt wait
398 * @param mtd MTD device structure
399 * @param state state to select the max. timeout value
401 * Try interrupt based wait (It is used one-time)
403 static int onenand_try_interrupt_wait(struct mtd_info
*mtd
, int state
)
405 struct onenand_chip
*this = mtd
->priv
;
406 unsigned long remain
, timeout
;
408 /* We use interrupt wait first */
409 this->wait
= onenand_interrupt_wait
;
411 timeout
= msecs_to_jiffies(100);
412 remain
= wait_for_completion_timeout(&this->complete
, timeout
);
414 printk(KERN_INFO
"OneNAND: There's no interrupt. "
415 "We use the normal wait\n");
417 /* Release the irq */
418 free_irq(this->irq
, this);
420 this->wait
= onenand_wait
;
423 return onenand_wait(mtd
, state
);
427 * onenand_setup_wait - [OneNAND Interface] setup onenand wait method
428 * @param mtd MTD device structure
430 * There's two method to wait onenand work
431 * 1. polling - read interrupt status register
432 * 2. interrupt - use the kernel interrupt method
434 static void onenand_setup_wait(struct mtd_info
*mtd
)
436 struct onenand_chip
*this = mtd
->priv
;
439 init_completion(&this->complete
);
441 if (this->irq
<= 0) {
442 this->wait
= onenand_wait
;
446 if (request_irq(this->irq
, &onenand_interrupt
,
447 IRQF_SHARED
, "onenand", this)) {
448 /* If we can't get irq, use the normal wait */
449 this->wait
= onenand_wait
;
453 /* Enable interrupt */
454 syscfg
= this->read_word(this->base
+ ONENAND_REG_SYS_CFG1
);
455 syscfg
|= ONENAND_SYS_CFG1_IOBE
;
456 this->write_word(syscfg
, this->base
+ ONENAND_REG_SYS_CFG1
);
458 this->wait
= onenand_try_interrupt_wait
;
462 * onenand_bufferram_offset - [DEFAULT] BufferRAM offset
463 * @param mtd MTD data structure
464 * @param area BufferRAM area
465 * @return offset given area
467 * Return BufferRAM offset given area
469 static inline int onenand_bufferram_offset(struct mtd_info
*mtd
, int area
)
471 struct onenand_chip
*this = mtd
->priv
;
473 if (ONENAND_CURRENT_BUFFERRAM(this)) {
474 /* Note: the 'this->writesize' is a real page size */
475 if (area
== ONENAND_DATARAM
)
476 return this->writesize
;
477 if (area
== ONENAND_SPARERAM
)
485 * onenand_read_bufferram - [OneNAND Interface] Read the bufferram area
486 * @param mtd MTD data structure
487 * @param area BufferRAM area
488 * @param buffer the databuffer to put/get data
489 * @param offset offset to read from or write to
490 * @param count number of bytes to read/write
492 * Read the BufferRAM area
494 static int onenand_read_bufferram(struct mtd_info
*mtd
, int area
,
495 unsigned char *buffer
, int offset
, size_t count
)
497 struct onenand_chip
*this = mtd
->priv
;
498 void __iomem
*bufferram
;
500 bufferram
= this->base
+ area
;
502 bufferram
+= onenand_bufferram_offset(mtd
, area
);
504 if (ONENAND_CHECK_BYTE_ACCESS(count
)) {
507 /* Align with word(16-bit) size */
510 /* Read word and save byte */
511 word
= this->read_word(bufferram
+ offset
+ count
);
512 buffer
[count
] = (word
& 0xff);
515 memcpy(buffer
, bufferram
+ offset
, count
);
521 * onenand_sync_read_bufferram - [OneNAND Interface] Read the bufferram area with Sync. Burst mode
522 * @param mtd MTD data structure
523 * @param area BufferRAM area
524 * @param buffer the databuffer to put/get data
525 * @param offset offset to read from or write to
526 * @param count number of bytes to read/write
528 * Read the BufferRAM area with Sync. Burst Mode
530 static int onenand_sync_read_bufferram(struct mtd_info
*mtd
, int area
,
531 unsigned char *buffer
, int offset
, size_t count
)
533 struct onenand_chip
*this = mtd
->priv
;
534 void __iomem
*bufferram
;
536 bufferram
= this->base
+ area
;
538 bufferram
+= onenand_bufferram_offset(mtd
, area
);
540 this->mmcontrol(mtd
, ONENAND_SYS_CFG1_SYNC_READ
);
542 if (ONENAND_CHECK_BYTE_ACCESS(count
)) {
545 /* Align with word(16-bit) size */
548 /* Read word and save byte */
549 word
= this->read_word(bufferram
+ offset
+ count
);
550 buffer
[count
] = (word
& 0xff);
553 memcpy(buffer
, bufferram
+ offset
, count
);
555 this->mmcontrol(mtd
, 0);
561 * onenand_write_bufferram - [OneNAND Interface] Write the bufferram area
562 * @param mtd MTD data structure
563 * @param area BufferRAM area
564 * @param buffer the databuffer to put/get data
565 * @param offset offset to read from or write to
566 * @param count number of bytes to read/write
568 * Write the BufferRAM area
570 static int onenand_write_bufferram(struct mtd_info
*mtd
, int area
,
571 const unsigned char *buffer
, int offset
, size_t count
)
573 struct onenand_chip
*this = mtd
->priv
;
574 void __iomem
*bufferram
;
576 bufferram
= this->base
+ area
;
578 bufferram
+= onenand_bufferram_offset(mtd
, area
);
580 if (ONENAND_CHECK_BYTE_ACCESS(count
)) {
584 /* Align with word(16-bit) size */
587 /* Calculate byte access offset */
588 byte_offset
= offset
+ count
;
590 /* Read word and save byte */
591 word
= this->read_word(bufferram
+ byte_offset
);
592 word
= (word
& ~0xff) | buffer
[count
];
593 this->write_word(word
, bufferram
+ byte_offset
);
596 memcpy(bufferram
+ offset
, buffer
, count
);
602 * onenand_get_2x_blockpage - [GENERIC] Get blockpage at 2x program mode
603 * @param mtd MTD data structure
604 * @param addr address to check
605 * @return blockpage address
607 * Get blockpage address at 2x program mode
609 static int onenand_get_2x_blockpage(struct mtd_info
*mtd
, loff_t addr
)
611 struct onenand_chip
*this = mtd
->priv
;
612 int blockpage
, block
, page
;
614 /* Calculate the even block number */
615 block
= (int) (addr
>> this->erase_shift
) & ~1;
616 /* Is it the odd plane? */
617 if (addr
& this->writesize
)
619 page
= (int) (addr
>> (this->page_shift
+ 1)) & this->page_mask
;
620 blockpage
= (block
<< 7) | page
;
626 * onenand_check_bufferram - [GENERIC] Check BufferRAM information
627 * @param mtd MTD data structure
628 * @param addr address to check
629 * @return 1 if there are valid data, otherwise 0
631 * Check bufferram if there is data we required
633 static int onenand_check_bufferram(struct mtd_info
*mtd
, loff_t addr
)
635 struct onenand_chip
*this = mtd
->priv
;
636 int blockpage
, found
= 0;
639 if (ONENAND_IS_2PLANE(this))
640 blockpage
= onenand_get_2x_blockpage(mtd
, addr
);
642 blockpage
= (int) (addr
>> this->page_shift
);
644 /* Is there valid data? */
645 i
= ONENAND_CURRENT_BUFFERRAM(this);
646 if (this->bufferram
[i
].blockpage
== blockpage
)
649 /* Check another BufferRAM */
650 i
= ONENAND_NEXT_BUFFERRAM(this);
651 if (this->bufferram
[i
].blockpage
== blockpage
) {
652 ONENAND_SET_NEXT_BUFFERRAM(this);
657 if (found
&& ONENAND_IS_DDP(this)) {
658 /* Select DataRAM for DDP */
659 int block
= (int) (addr
>> this->erase_shift
);
660 int value
= onenand_bufferram_address(this, block
);
661 this->write_word(value
, this->base
+ ONENAND_REG_START_ADDRESS2
);
668 * onenand_update_bufferram - [GENERIC] Update BufferRAM information
669 * @param mtd MTD data structure
670 * @param addr address to update
671 * @param valid valid flag
673 * Update BufferRAM information
675 static void onenand_update_bufferram(struct mtd_info
*mtd
, loff_t addr
,
678 struct onenand_chip
*this = mtd
->priv
;
682 if (ONENAND_IS_2PLANE(this))
683 blockpage
= onenand_get_2x_blockpage(mtd
, addr
);
685 blockpage
= (int) (addr
>> this->page_shift
);
687 /* Invalidate another BufferRAM */
688 i
= ONENAND_NEXT_BUFFERRAM(this);
689 if (this->bufferram
[i
].blockpage
== blockpage
)
690 this->bufferram
[i
].blockpage
= -1;
692 /* Update BufferRAM */
693 i
= ONENAND_CURRENT_BUFFERRAM(this);
695 this->bufferram
[i
].blockpage
= blockpage
;
697 this->bufferram
[i
].blockpage
= -1;
701 * onenand_invalidate_bufferram - [GENERIC] Invalidate BufferRAM information
702 * @param mtd MTD data structure
703 * @param addr start address to invalidate
704 * @param len length to invalidate
706 * Invalidate BufferRAM information
708 static void onenand_invalidate_bufferram(struct mtd_info
*mtd
, loff_t addr
,
711 struct onenand_chip
*this = mtd
->priv
;
713 loff_t end_addr
= addr
+ len
;
715 /* Invalidate BufferRAM */
716 for (i
= 0; i
< MAX_BUFFERRAM
; i
++) {
717 loff_t buf_addr
= this->bufferram
[i
].blockpage
<< this->page_shift
;
718 if (buf_addr
>= addr
&& buf_addr
< end_addr
)
719 this->bufferram
[i
].blockpage
= -1;
724 * onenand_get_device - [GENERIC] Get chip for selected access
725 * @param mtd MTD device structure
726 * @param new_state the state which is requested
728 * Get the device and lock it for exclusive access
730 static int onenand_get_device(struct mtd_info
*mtd
, int new_state
)
732 struct onenand_chip
*this = mtd
->priv
;
733 DECLARE_WAITQUEUE(wait
, current
);
736 * Grab the lock and see if the device is available
739 spin_lock(&this->chip_lock
);
740 if (this->state
== FL_READY
) {
741 this->state
= new_state
;
742 spin_unlock(&this->chip_lock
);
745 if (new_state
== FL_PM_SUSPENDED
) {
746 spin_unlock(&this->chip_lock
);
747 return (this->state
== FL_PM_SUSPENDED
) ? 0 : -EAGAIN
;
749 set_current_state(TASK_UNINTERRUPTIBLE
);
750 add_wait_queue(&this->wq
, &wait
);
751 spin_unlock(&this->chip_lock
);
753 remove_wait_queue(&this->wq
, &wait
);
760 * onenand_release_device - [GENERIC] release chip
761 * @param mtd MTD device structure
763 * Deselect, release chip lock and wake up anyone waiting on the device
765 static void onenand_release_device(struct mtd_info
*mtd
)
767 struct onenand_chip
*this = mtd
->priv
;
769 /* Release the chip */
770 spin_lock(&this->chip_lock
);
771 this->state
= FL_READY
;
773 spin_unlock(&this->chip_lock
);
777 * onenand_transfer_auto_oob - [Internal] oob auto-placement transfer
778 * @param mtd MTD device structure
779 * @param buf destination address
780 * @param column oob offset to read from
781 * @param thislen oob length to read
783 static int onenand_transfer_auto_oob(struct mtd_info
*mtd
, uint8_t *buf
, int column
,
786 struct onenand_chip
*this = mtd
->priv
;
787 struct nand_oobfree
*free
;
788 int readcol
= column
;
789 int readend
= column
+ thislen
;
792 uint8_t *oob_buf
= this->oob_buf
;
794 free
= this->ecclayout
->oobfree
;
795 for (i
= 0; i
< MTD_MAX_OOBFREE_ENTRIES
&& free
->length
; i
++, free
++) {
796 if (readcol
>= lastgap
)
797 readcol
+= free
->offset
- lastgap
;
798 if (readend
>= lastgap
)
799 readend
+= free
->offset
- lastgap
;
800 lastgap
= free
->offset
+ free
->length
;
802 this->read_bufferram(mtd
, ONENAND_SPARERAM
, oob_buf
, 0, mtd
->oobsize
);
803 free
= this->ecclayout
->oobfree
;
804 for (i
= 0; i
< MTD_MAX_OOBFREE_ENTRIES
&& free
->length
; i
++, free
++) {
805 int free_end
= free
->offset
+ free
->length
;
806 if (free
->offset
< readend
&& free_end
> readcol
) {
807 int st
= max_t(int,free
->offset
,readcol
);
808 int ed
= min_t(int,free_end
,readend
);
810 memcpy(buf
, oob_buf
+ st
, n
);
812 } else if (column
== 0)
819 * onenand_read_ops_nolock - [OneNAND Interface] OneNAND read main and/or out-of-band
820 * @param mtd MTD device structure
821 * @param from offset to read from
822 * @param ops: oob operation description structure
824 * OneNAND read main and/or out-of-band data
826 static int onenand_read_ops_nolock(struct mtd_info
*mtd
, loff_t from
,
827 struct mtd_oob_ops
*ops
)
829 struct onenand_chip
*this = mtd
->priv
;
830 struct mtd_ecc_stats stats
;
831 size_t len
= ops
->len
;
832 size_t ooblen
= ops
->ooblen
;
833 u_char
*buf
= ops
->datbuf
;
834 u_char
*oobbuf
= ops
->oobbuf
;
835 int read
= 0, column
, thislen
;
836 int oobread
= 0, oobcolumn
, thisooblen
, oobsize
;
837 int ret
= 0, boundary
= 0;
838 int writesize
= this->writesize
;
840 DEBUG(MTD_DEBUG_LEVEL3
, "onenand_read_ops_nolock: from = 0x%08x, len = %i\n", (unsigned int) from
, (int) len
);
842 if (ops
->mode
== MTD_OOB_AUTO
)
843 oobsize
= this->ecclayout
->oobavail
;
845 oobsize
= mtd
->oobsize
;
847 oobcolumn
= from
& (mtd
->oobsize
- 1);
849 /* Do not allow reads past end of device */
850 if ((from
+ len
) > mtd
->size
) {
851 printk(KERN_ERR
"onenand_read_ops_nolock: Attempt read beyond end of device\n");
857 stats
= mtd
->ecc_stats
;
859 /* Read-while-load method */
861 /* Do first load to bufferRAM */
863 if (!onenand_check_bufferram(mtd
, from
)) {
864 this->command(mtd
, ONENAND_CMD_READ
, from
, writesize
);
865 ret
= this->wait(mtd
, FL_READING
);
866 onenand_update_bufferram(mtd
, from
, !ret
);
872 thislen
= min_t(int, writesize
, len
- read
);
873 column
= from
& (writesize
- 1);
874 if (column
+ thislen
> writesize
)
875 thislen
= writesize
- column
;
878 /* If there is more to load then start next load */
880 if (read
+ thislen
< len
) {
881 this->command(mtd
, ONENAND_CMD_READ
, from
, writesize
);
883 * Chip boundary handling in DDP
884 * Now we issued chip 1 read and pointed chip 1
885 * bufferam so we have to point chip 0 bufferam.
887 if (ONENAND_IS_DDP(this) &&
888 unlikely(from
== (this->chipsize
>> 1))) {
889 this->write_word(ONENAND_DDP_CHIP0
, this->base
+ ONENAND_REG_START_ADDRESS2
);
893 ONENAND_SET_PREV_BUFFERRAM(this);
895 /* While load is going, read from last bufferRAM */
896 this->read_bufferram(mtd
, ONENAND_DATARAM
, buf
, column
, thislen
);
898 /* Read oob area if needed */
900 thisooblen
= oobsize
- oobcolumn
;
901 thisooblen
= min_t(int, thisooblen
, ooblen
- oobread
);
903 if (ops
->mode
== MTD_OOB_AUTO
)
904 onenand_transfer_auto_oob(mtd
, oobbuf
, oobcolumn
, thisooblen
);
906 this->read_bufferram(mtd
, ONENAND_SPARERAM
, oobbuf
, oobcolumn
, thisooblen
);
907 oobread
+= thisooblen
;
908 oobbuf
+= thisooblen
;
912 /* See if we are done */
916 /* Set up for next read from bufferRAM */
917 if (unlikely(boundary
))
918 this->write_word(ONENAND_DDP_CHIP1
, this->base
+ ONENAND_REG_START_ADDRESS2
);
919 ONENAND_SET_NEXT_BUFFERRAM(this);
921 thislen
= min_t(int, writesize
, len
- read
);
924 /* Now wait for load */
925 ret
= this->wait(mtd
, FL_READING
);
926 onenand_update_bufferram(mtd
, from
, !ret
);
932 * Return success, if no ECC failures, else -EBADMSG
933 * fs driver will take care of that, because
934 * retlen == desired len and result == -EBADMSG
937 ops
->oobretlen
= oobread
;
942 if (mtd
->ecc_stats
.failed
- stats
.failed
)
945 return mtd
->ecc_stats
.corrected
- stats
.corrected
? -EUCLEAN
: 0;
949 * onenand_read_oob_nolock - [MTD Interface] OneNAND read out-of-band
950 * @param mtd MTD device structure
951 * @param from offset to read from
952 * @param ops: oob operation description structure
954 * OneNAND read out-of-band data from the spare area
956 static int onenand_read_oob_nolock(struct mtd_info
*mtd
, loff_t from
,
957 struct mtd_oob_ops
*ops
)
959 struct onenand_chip
*this = mtd
->priv
;
960 struct mtd_ecc_stats stats
;
961 int read
= 0, thislen
, column
, oobsize
;
962 size_t len
= ops
->ooblen
;
963 mtd_oob_mode_t mode
= ops
->mode
;
964 u_char
*buf
= ops
->oobbuf
;
967 from
+= ops
->ooboffs
;
969 DEBUG(MTD_DEBUG_LEVEL3
, "onenand_read_oob_nolock: from = 0x%08x, len = %i\n", (unsigned int) from
, (int) len
);
971 /* Initialize return length value */
974 if (mode
== MTD_OOB_AUTO
)
975 oobsize
= this->ecclayout
->oobavail
;
977 oobsize
= mtd
->oobsize
;
979 column
= from
& (mtd
->oobsize
- 1);
981 if (unlikely(column
>= oobsize
)) {
982 printk(KERN_ERR
"onenand_read_oob_nolock: Attempted to start read outside oob\n");
986 /* Do not allow reads past end of device */
987 if (unlikely(from
>= mtd
->size
||
988 column
+ len
> ((mtd
->size
>> this->page_shift
) -
989 (from
>> this->page_shift
)) * oobsize
)) {
990 printk(KERN_ERR
"onenand_read_oob_nolock: Attempted to read beyond end of device\n");
994 stats
= mtd
->ecc_stats
;
999 thislen
= oobsize
- column
;
1000 thislen
= min_t(int, thislen
, len
);
1002 this->command(mtd
, ONENAND_CMD_READOOB
, from
, mtd
->oobsize
);
1004 onenand_update_bufferram(mtd
, from
, 0);
1006 ret
= this->wait(mtd
, FL_READING
);
1007 if (ret
&& ret
!= -EBADMSG
) {
1008 printk(KERN_ERR
"onenand_read_oob_nolock: read failed = 0x%x\n", ret
);
1012 if (mode
== MTD_OOB_AUTO
)
1013 onenand_transfer_auto_oob(mtd
, buf
, column
, thislen
);
1015 this->read_bufferram(mtd
, ONENAND_SPARERAM
, buf
, column
, thislen
);
1027 from
+= mtd
->writesize
;
1032 ops
->oobretlen
= read
;
1037 if (mtd
->ecc_stats
.failed
- stats
.failed
)
1044 * onenand_read - [MTD Interface] Read data from flash
1045 * @param mtd MTD device structure
1046 * @param from offset to read from
1047 * @param len number of bytes to read
1048 * @param retlen pointer to variable to store the number of read bytes
1049 * @param buf the databuffer to put data
1053 static int onenand_read(struct mtd_info
*mtd
, loff_t from
, size_t len
,
1054 size_t *retlen
, u_char
*buf
)
1056 struct mtd_oob_ops ops
= {
1064 onenand_get_device(mtd
, FL_READING
);
1065 ret
= onenand_read_ops_nolock(mtd
, from
, &ops
);
1066 onenand_release_device(mtd
);
1068 *retlen
= ops
.retlen
;
1073 * onenand_read_oob - [MTD Interface] Read main and/or out-of-band
1074 * @param mtd: MTD device structure
1075 * @param from: offset to read from
1076 * @param ops: oob operation description structure
1078 * Read main and/or out-of-band
1080 static int onenand_read_oob(struct mtd_info
*mtd
, loff_t from
,
1081 struct mtd_oob_ops
*ops
)
1085 switch (ops
->mode
) {
1090 /* Not implemented yet */
1095 onenand_get_device(mtd
, FL_READING
);
1097 ret
= onenand_read_ops_nolock(mtd
, from
, ops
);
1099 ret
= onenand_read_oob_nolock(mtd
, from
, ops
);
1100 onenand_release_device(mtd
);
1106 * onenand_bbt_wait - [DEFAULT] wait until the command is done
1107 * @param mtd MTD device structure
1108 * @param state state to select the max. timeout value
1110 * Wait for command done.
1112 static int onenand_bbt_wait(struct mtd_info
*mtd
, int state
)
1114 struct onenand_chip
*this = mtd
->priv
;
1115 unsigned long timeout
;
1116 unsigned int interrupt
;
1119 /* The 20 msec is enough */
1120 timeout
= jiffies
+ msecs_to_jiffies(20);
1121 while (time_before(jiffies
, timeout
)) {
1122 interrupt
= this->read_word(this->base
+ ONENAND_REG_INTERRUPT
);
1123 if (interrupt
& ONENAND_INT_MASTER
)
1126 /* To get correct interrupt status in timeout case */
1127 interrupt
= this->read_word(this->base
+ ONENAND_REG_INTERRUPT
);
1128 ctrl
= this->read_word(this->base
+ ONENAND_REG_CTRL_STATUS
);
1130 if (interrupt
& ONENAND_INT_READ
) {
1131 int ecc
= this->read_word(this->base
+ ONENAND_REG_ECC_STATUS
);
1132 if (ecc
& ONENAND_ECC_2BIT_ALL
) {
1133 printk(KERN_INFO
"onenand_bbt_wait: ecc error = 0x%04x"
1134 ", controller error 0x%04x\n", ecc
, ctrl
);
1135 return ONENAND_BBT_READ_ERROR
;
1138 printk(KERN_ERR
"onenand_bbt_wait: read timeout!"
1139 "ctrl=0x%04x intr=0x%04x\n", ctrl
, interrupt
);
1140 return ONENAND_BBT_READ_FATAL_ERROR
;
1143 /* Initial bad block case: 0x2400 or 0x0400 */
1144 if (ctrl
& ONENAND_CTRL_ERROR
) {
1145 printk(KERN_DEBUG
"onenand_bbt_wait: "
1146 "controller error = 0x%04x\n", ctrl
);
1147 return ONENAND_BBT_READ_ERROR
;
1154 * onenand_bbt_read_oob - [MTD Interface] OneNAND read out-of-band for bbt scan
1155 * @param mtd MTD device structure
1156 * @param from offset to read from
1157 * @param ops oob operation description structure
1159 * OneNAND read out-of-band data from the spare area for bbt scan
1161 int onenand_bbt_read_oob(struct mtd_info
*mtd
, loff_t from
,
1162 struct mtd_oob_ops
*ops
)
1164 struct onenand_chip
*this = mtd
->priv
;
1165 int read
= 0, thislen
, column
;
1167 size_t len
= ops
->ooblen
;
1168 u_char
*buf
= ops
->oobbuf
;
1170 DEBUG(MTD_DEBUG_LEVEL3
, "onenand_bbt_read_oob: from = 0x%08x, len = %zi\n", (unsigned int) from
, len
);
1172 /* Initialize return value */
1175 /* Do not allow reads past end of device */
1176 if (unlikely((from
+ len
) > mtd
->size
)) {
1177 printk(KERN_ERR
"onenand_bbt_read_oob: Attempt read beyond end of device\n");
1178 return ONENAND_BBT_READ_FATAL_ERROR
;
1181 /* Grab the lock and see if the device is available */
1182 onenand_get_device(mtd
, FL_READING
);
1184 column
= from
& (mtd
->oobsize
- 1);
1186 while (read
< len
) {
1189 thislen
= mtd
->oobsize
- column
;
1190 thislen
= min_t(int, thislen
, len
);
1192 this->command(mtd
, ONENAND_CMD_READOOB
, from
, mtd
->oobsize
);
1194 onenand_update_bufferram(mtd
, from
, 0);
1196 ret
= onenand_bbt_wait(mtd
, FL_READING
);
1200 this->read_bufferram(mtd
, ONENAND_SPARERAM
, buf
, column
, thislen
);
1209 /* Update Page size */
1210 from
+= this->writesize
;
1215 /* Deselect and wake up anyone waiting on the device */
1216 onenand_release_device(mtd
);
1218 ops
->oobretlen
= read
;
1222 #ifdef CONFIG_MTD_ONENAND_VERIFY_WRITE
1224 * onenand_verify_oob - [GENERIC] verify the oob contents after a write
1225 * @param mtd MTD device structure
1226 * @param buf the databuffer to verify
1227 * @param to offset to read from
1229 static int onenand_verify_oob(struct mtd_info
*mtd
, const u_char
*buf
, loff_t to
)
1231 struct onenand_chip
*this = mtd
->priv
;
1232 u_char
*oob_buf
= this->oob_buf
;
1235 this->command(mtd
, ONENAND_CMD_READOOB
, to
, mtd
->oobsize
);
1236 onenand_update_bufferram(mtd
, to
, 0);
1237 status
= this->wait(mtd
, FL_READING
);
1241 this->read_bufferram(mtd
, ONENAND_SPARERAM
, oob_buf
, 0, mtd
->oobsize
);
1242 for (i
= 0; i
< mtd
->oobsize
; i
++)
1243 if (buf
[i
] != 0xFF && buf
[i
] != oob_buf
[i
])
1250 * onenand_verify - [GENERIC] verify the chip contents after a write
1251 * @param mtd MTD device structure
1252 * @param buf the databuffer to verify
1253 * @param addr offset to read from
1254 * @param len number of bytes to read and compare
1256 static int onenand_verify(struct mtd_info
*mtd
, const u_char
*buf
, loff_t addr
, size_t len
)
1258 struct onenand_chip
*this = mtd
->priv
;
1259 void __iomem
*dataram
;
1261 int thislen
, column
;
1264 thislen
= min_t(int, this->writesize
, len
);
1265 column
= addr
& (this->writesize
- 1);
1266 if (column
+ thislen
> this->writesize
)
1267 thislen
= this->writesize
- column
;
1269 this->command(mtd
, ONENAND_CMD_READ
, addr
, this->writesize
);
1271 onenand_update_bufferram(mtd
, addr
, 0);
1273 ret
= this->wait(mtd
, FL_READING
);
1277 onenand_update_bufferram(mtd
, addr
, 1);
1279 dataram
= this->base
+ ONENAND_DATARAM
;
1280 dataram
+= onenand_bufferram_offset(mtd
, ONENAND_DATARAM
);
1282 if (memcmp(buf
, dataram
+ column
, thislen
))
1293 #define onenand_verify(...) (0)
1294 #define onenand_verify_oob(...) (0)
1297 #define NOTALIGNED(x) ((x & (this->subpagesize - 1)) != 0)
1299 static void onenand_panic_wait(struct mtd_info
*mtd
)
1301 struct onenand_chip
*this = mtd
->priv
;
1302 unsigned int interrupt
;
1305 for (i
= 0; i
< 2000; i
++) {
1306 interrupt
= this->read_word(this->base
+ ONENAND_REG_INTERRUPT
);
1307 if (interrupt
& ONENAND_INT_MASTER
)
1314 * onenand_panic_write - [MTD Interface] write buffer to FLASH in a panic context
1315 * @param mtd MTD device structure
1316 * @param to offset to write to
1317 * @param len number of bytes to write
1318 * @param retlen pointer to variable to store the number of written bytes
1319 * @param buf the data to write
1323 static int onenand_panic_write(struct mtd_info
*mtd
, loff_t to
, size_t len
,
1324 size_t *retlen
, const u_char
*buf
)
1326 struct onenand_chip
*this = mtd
->priv
;
1327 int column
, subpage
;
1331 if (this->state
== FL_PM_SUSPENDED
)
1334 /* Wait for any existing operation to clear */
1335 onenand_panic_wait(mtd
);
1337 DEBUG(MTD_DEBUG_LEVEL3
, "onenand_panic_write: to = 0x%08x, len = %i\n",
1338 (unsigned int) to
, (int) len
);
1340 /* Initialize retlen, in case of early exit */
1343 /* Do not allow writes past end of device */
1344 if (unlikely((to
+ len
) > mtd
->size
)) {
1345 printk(KERN_ERR
"onenand_panic_write: Attempt write to past end of device\n");
1349 /* Reject writes, which are not page aligned */
1350 if (unlikely(NOTALIGNED(to
) || NOTALIGNED(len
))) {
1351 printk(KERN_ERR
"onenand_panic_write: Attempt to write not page aligned data\n");
1355 column
= to
& (mtd
->writesize
- 1);
1357 /* Loop until all data write */
1358 while (written
< len
) {
1359 int thislen
= min_t(int, mtd
->writesize
- column
, len
- written
);
1360 u_char
*wbuf
= (u_char
*) buf
;
1362 this->command(mtd
, ONENAND_CMD_BUFFERRAM
, to
, thislen
);
1364 /* Partial page write */
1365 subpage
= thislen
< mtd
->writesize
;
1367 memset(this->page_buf
, 0xff, mtd
->writesize
);
1368 memcpy(this->page_buf
+ column
, buf
, thislen
);
1369 wbuf
= this->page_buf
;
1372 this->write_bufferram(mtd
, ONENAND_DATARAM
, wbuf
, 0, mtd
->writesize
);
1373 this->write_bufferram(mtd
, ONENAND_SPARERAM
, ffchars
, 0, mtd
->oobsize
);
1375 this->command(mtd
, ONENAND_CMD_PROG
, to
, mtd
->writesize
);
1377 onenand_panic_wait(mtd
);
1379 /* In partial page write we don't update bufferram */
1380 onenand_update_bufferram(mtd
, to
, !ret
&& !subpage
);
1381 if (ONENAND_IS_2PLANE(this)) {
1382 ONENAND_SET_BUFFERRAM1(this);
1383 onenand_update_bufferram(mtd
, to
+ this->writesize
, !ret
&& !subpage
);
1387 printk(KERN_ERR
"onenand_panic_write: write failed %d\n", ret
);
1406 * onenand_fill_auto_oob - [Internal] oob auto-placement transfer
1407 * @param mtd MTD device structure
1408 * @param oob_buf oob buffer
1409 * @param buf source address
1410 * @param column oob offset to write to
1411 * @param thislen oob length to write
1413 static int onenand_fill_auto_oob(struct mtd_info
*mtd
, u_char
*oob_buf
,
1414 const u_char
*buf
, int column
, int thislen
)
1416 struct onenand_chip
*this = mtd
->priv
;
1417 struct nand_oobfree
*free
;
1418 int writecol
= column
;
1419 int writeend
= column
+ thislen
;
1423 free
= this->ecclayout
->oobfree
;
1424 for (i
= 0; i
< MTD_MAX_OOBFREE_ENTRIES
&& free
->length
; i
++, free
++) {
1425 if (writecol
>= lastgap
)
1426 writecol
+= free
->offset
- lastgap
;
1427 if (writeend
>= lastgap
)
1428 writeend
+= free
->offset
- lastgap
;
1429 lastgap
= free
->offset
+ free
->length
;
1431 free
= this->ecclayout
->oobfree
;
1432 for (i
= 0; i
< MTD_MAX_OOBFREE_ENTRIES
&& free
->length
; i
++, free
++) {
1433 int free_end
= free
->offset
+ free
->length
;
1434 if (free
->offset
< writeend
&& free_end
> writecol
) {
1435 int st
= max_t(int,free
->offset
,writecol
);
1436 int ed
= min_t(int,free_end
,writeend
);
1438 memcpy(oob_buf
+ st
, buf
, n
);
1440 } else if (column
== 0)
1447 * onenand_write_ops_nolock - [OneNAND Interface] write main and/or out-of-band
1448 * @param mtd MTD device structure
1449 * @param to offset to write to
1450 * @param ops oob operation description structure
1452 * Write main and/or oob with ECC
1454 static int onenand_write_ops_nolock(struct mtd_info
*mtd
, loff_t to
,
1455 struct mtd_oob_ops
*ops
)
1457 struct onenand_chip
*this = mtd
->priv
;
1458 int written
= 0, column
, thislen
, subpage
;
1459 int oobwritten
= 0, oobcolumn
, thisooblen
, oobsize
;
1460 size_t len
= ops
->len
;
1461 size_t ooblen
= ops
->ooblen
;
1462 const u_char
*buf
= ops
->datbuf
;
1463 const u_char
*oob
= ops
->oobbuf
;
1467 DEBUG(MTD_DEBUG_LEVEL3
, "onenand_write_ops_nolock: to = 0x%08x, len = %i\n", (unsigned int) to
, (int) len
);
1469 /* Initialize retlen, in case of early exit */
1473 /* Do not allow writes past end of device */
1474 if (unlikely((to
+ len
) > mtd
->size
)) {
1475 printk(KERN_ERR
"onenand_write_ops_nolock: Attempt write to past end of device\n");
1479 /* Reject writes, which are not page aligned */
1480 if (unlikely(NOTALIGNED(to
) || NOTALIGNED(len
))) {
1481 printk(KERN_ERR
"onenand_write_ops_nolock: Attempt to write not page aligned data\n");
1485 if (ops
->mode
== MTD_OOB_AUTO
)
1486 oobsize
= this->ecclayout
->oobavail
;
1488 oobsize
= mtd
->oobsize
;
1490 oobcolumn
= to
& (mtd
->oobsize
- 1);
1492 column
= to
& (mtd
->writesize
- 1);
1494 /* Loop until all data write */
1495 while (written
< len
) {
1496 u_char
*wbuf
= (u_char
*) buf
;
1498 thislen
= min_t(int, mtd
->writesize
- column
, len
- written
);
1499 thisooblen
= min_t(int, oobsize
- oobcolumn
, ooblen
- oobwritten
);
1503 this->command(mtd
, ONENAND_CMD_BUFFERRAM
, to
, thislen
);
1505 /* Partial page write */
1506 subpage
= thislen
< mtd
->writesize
;
1508 memset(this->page_buf
, 0xff, mtd
->writesize
);
1509 memcpy(this->page_buf
+ column
, buf
, thislen
);
1510 wbuf
= this->page_buf
;
1513 this->write_bufferram(mtd
, ONENAND_DATARAM
, wbuf
, 0, mtd
->writesize
);
1516 oobbuf
= this->oob_buf
;
1518 /* We send data to spare ram with oobsize
1519 * to prevent byte access */
1520 memset(oobbuf
, 0xff, mtd
->oobsize
);
1521 if (ops
->mode
== MTD_OOB_AUTO
)
1522 onenand_fill_auto_oob(mtd
, oobbuf
, oob
, oobcolumn
, thisooblen
);
1524 memcpy(oobbuf
+ oobcolumn
, oob
, thisooblen
);
1526 oobwritten
+= thisooblen
;
1530 oobbuf
= (u_char
*) ffchars
;
1532 this->write_bufferram(mtd
, ONENAND_SPARERAM
, oobbuf
, 0, mtd
->oobsize
);
1534 this->command(mtd
, ONENAND_CMD_PROG
, to
, mtd
->writesize
);
1536 ret
= this->wait(mtd
, FL_WRITING
);
1538 /* In partial page write we don't update bufferram */
1539 onenand_update_bufferram(mtd
, to
, !ret
&& !subpage
);
1540 if (ONENAND_IS_2PLANE(this)) {
1541 ONENAND_SET_BUFFERRAM1(this);
1542 onenand_update_bufferram(mtd
, to
+ this->writesize
, !ret
&& !subpage
);
1546 printk(KERN_ERR
"onenand_write_ops_nolock: write filaed %d\n", ret
);
1550 /* Only check verify write turn on */
1551 ret
= onenand_verify(mtd
, buf
, to
, thislen
);
1553 printk(KERN_ERR
"onenand_write_ops_nolock: verify failed %d\n", ret
);
1567 ops
->retlen
= written
;
1574 * onenand_write_oob_nolock - [Internal] OneNAND write out-of-band
1575 * @param mtd MTD device structure
1576 * @param to offset to write to
1577 * @param len number of bytes to write
1578 * @param retlen pointer to variable to store the number of written bytes
1579 * @param buf the data to write
1580 * @param mode operation mode
1582 * OneNAND write out-of-band
1584 static int onenand_write_oob_nolock(struct mtd_info
*mtd
, loff_t to
,
1585 struct mtd_oob_ops
*ops
)
1587 struct onenand_chip
*this = mtd
->priv
;
1588 int column
, ret
= 0, oobsize
;
1591 size_t len
= ops
->ooblen
;
1592 const u_char
*buf
= ops
->oobbuf
;
1593 mtd_oob_mode_t mode
= ops
->mode
;
1597 DEBUG(MTD_DEBUG_LEVEL3
, "onenand_write_oob_nolock: to = 0x%08x, len = %i\n", (unsigned int) to
, (int) len
);
1599 /* Initialize retlen, in case of early exit */
1602 if (mode
== MTD_OOB_AUTO
)
1603 oobsize
= this->ecclayout
->oobavail
;
1605 oobsize
= mtd
->oobsize
;
1607 column
= to
& (mtd
->oobsize
- 1);
1609 if (unlikely(column
>= oobsize
)) {
1610 printk(KERN_ERR
"onenand_write_oob_nolock: Attempted to start write outside oob\n");
1614 /* For compatibility with NAND: Do not allow write past end of page */
1615 if (unlikely(column
+ len
> oobsize
)) {
1616 printk(KERN_ERR
"onenand_write_oob_nolock: "
1617 "Attempt to write past end of page\n");
1621 /* Do not allow reads past end of device */
1622 if (unlikely(to
>= mtd
->size
||
1623 column
+ len
> ((mtd
->size
>> this->page_shift
) -
1624 (to
>> this->page_shift
)) * oobsize
)) {
1625 printk(KERN_ERR
"onenand_write_oob_nolock: Attempted to write past end of device\n");
1629 oobbuf
= this->oob_buf
;
1631 /* Loop until all data write */
1632 while (written
< len
) {
1633 int thislen
= min_t(int, oobsize
, len
- written
);
1637 this->command(mtd
, ONENAND_CMD_BUFFERRAM
, to
, mtd
->oobsize
);
1639 /* We send data to spare ram with oobsize
1640 * to prevent byte access */
1641 memset(oobbuf
, 0xff, mtd
->oobsize
);
1642 if (mode
== MTD_OOB_AUTO
)
1643 onenand_fill_auto_oob(mtd
, oobbuf
, buf
, column
, thislen
);
1645 memcpy(oobbuf
+ column
, buf
, thislen
);
1646 this->write_bufferram(mtd
, ONENAND_SPARERAM
, oobbuf
, 0, mtd
->oobsize
);
1648 this->command(mtd
, ONENAND_CMD_PROGOOB
, to
, mtd
->oobsize
);
1650 onenand_update_bufferram(mtd
, to
, 0);
1651 if (ONENAND_IS_2PLANE(this)) {
1652 ONENAND_SET_BUFFERRAM1(this);
1653 onenand_update_bufferram(mtd
, to
+ this->writesize
, 0);
1656 ret
= this->wait(mtd
, FL_WRITING
);
1658 printk(KERN_ERR
"onenand_write_oob_nolock: write failed %d\n", ret
);
1662 ret
= onenand_verify_oob(mtd
, oobbuf
, to
);
1664 printk(KERN_ERR
"onenand_write_oob_nolock: verify failed %d\n", ret
);
1672 to
+= mtd
->writesize
;
1677 ops
->oobretlen
= written
;
1683 * onenand_write - [MTD Interface] write buffer to FLASH
1684 * @param mtd MTD device structure
1685 * @param to offset to write to
1686 * @param len number of bytes to write
1687 * @param retlen pointer to variable to store the number of written bytes
1688 * @param buf the data to write
1692 static int onenand_write(struct mtd_info
*mtd
, loff_t to
, size_t len
,
1693 size_t *retlen
, const u_char
*buf
)
1695 struct mtd_oob_ops ops
= {
1698 .datbuf
= (u_char
*) buf
,
1703 onenand_get_device(mtd
, FL_WRITING
);
1704 ret
= onenand_write_ops_nolock(mtd
, to
, &ops
);
1705 onenand_release_device(mtd
);
1707 *retlen
= ops
.retlen
;
1712 * onenand_write_oob - [MTD Interface] NAND write data and/or out-of-band
1713 * @param mtd: MTD device structure
1714 * @param to: offset to write
1715 * @param ops: oob operation description structure
1717 static int onenand_write_oob(struct mtd_info
*mtd
, loff_t to
,
1718 struct mtd_oob_ops
*ops
)
1722 switch (ops
->mode
) {
1727 /* Not implemented yet */
1732 onenand_get_device(mtd
, FL_WRITING
);
1734 ret
= onenand_write_ops_nolock(mtd
, to
, ops
);
1736 ret
= onenand_write_oob_nolock(mtd
, to
, ops
);
1737 onenand_release_device(mtd
);
1743 * onenand_block_isbad_nolock - [GENERIC] Check if a block is marked bad
1744 * @param mtd MTD device structure
1745 * @param ofs offset from device start
1746 * @param allowbbt 1, if its allowed to access the bbt area
1748 * Check, if the block is bad. Either by reading the bad block table or
1749 * calling of the scan function.
1751 static int onenand_block_isbad_nolock(struct mtd_info
*mtd
, loff_t ofs
, int allowbbt
)
1753 struct onenand_chip
*this = mtd
->priv
;
1754 struct bbm_info
*bbm
= this->bbm
;
1756 /* Return info from the table */
1757 return bbm
->isbad_bbt(mtd
, ofs
, allowbbt
);
1761 * onenand_erase - [MTD Interface] erase block(s)
1762 * @param mtd MTD device structure
1763 * @param instr erase instruction
1765 * Erase one ore more blocks
1767 static int onenand_erase(struct mtd_info
*mtd
, struct erase_info
*instr
)
1769 struct onenand_chip
*this = mtd
->priv
;
1770 unsigned int block_size
;
1775 DEBUG(MTD_DEBUG_LEVEL3
, "onenand_erase: start = 0x%012llx, len = %llu\n", (unsigned long long) instr
->addr
, (unsigned long long) instr
->len
);
1777 block_size
= (1 << this->erase_shift
);
1779 /* Start address must align on block boundary */
1780 if (unlikely(instr
->addr
& (block_size
- 1))) {
1781 printk(KERN_ERR
"onenand_erase: Unaligned address\n");
1785 /* Length must align on block boundary */
1786 if (unlikely(instr
->len
& (block_size
- 1))) {
1787 printk(KERN_ERR
"onenand_erase: Length not block aligned\n");
1791 /* Do not allow erase past end of device */
1792 if (unlikely((instr
->len
+ instr
->addr
) > mtd
->size
)) {
1793 printk(KERN_ERR
"onenand_erase: Erase past end of device\n");
1797 instr
->fail_addr
= MTD_FAIL_ADDR_UNKNOWN
;
1799 /* Grab the lock and see if the device is available */
1800 onenand_get_device(mtd
, FL_ERASING
);
1802 /* Loop throught the pages */
1806 instr
->state
= MTD_ERASING
;
1811 /* Check if we have a bad block, we do not erase bad blocks */
1812 if (onenand_block_isbad_nolock(mtd
, addr
, 0)) {
1813 printk (KERN_WARNING
"onenand_erase: attempt to erase a bad block at addr 0x%012llx\n", (unsigned long long) addr
);
1814 instr
->state
= MTD_ERASE_FAILED
;
1818 this->command(mtd
, ONENAND_CMD_ERASE
, addr
, block_size
);
1820 onenand_invalidate_bufferram(mtd
, addr
, block_size
);
1822 ret
= this->wait(mtd
, FL_ERASING
);
1823 /* Check, if it is write protected */
1825 printk(KERN_ERR
"onenand_erase: Failed erase, block %d\n", (unsigned) (addr
>> this->erase_shift
));
1826 instr
->state
= MTD_ERASE_FAILED
;
1827 instr
->fail_addr
= addr
;
1835 instr
->state
= MTD_ERASE_DONE
;
1839 ret
= instr
->state
== MTD_ERASE_DONE
? 0 : -EIO
;
1841 /* Deselect and wake up anyone waiting on the device */
1842 onenand_release_device(mtd
);
1844 /* Do call back function */
1846 mtd_erase_callback(instr
);
1852 * onenand_sync - [MTD Interface] sync
1853 * @param mtd MTD device structure
1855 * Sync is actually a wait for chip ready function
1857 static void onenand_sync(struct mtd_info
*mtd
)
1859 DEBUG(MTD_DEBUG_LEVEL3
, "onenand_sync: called\n");
1861 /* Grab the lock and see if the device is available */
1862 onenand_get_device(mtd
, FL_SYNCING
);
1864 /* Release it and go back */
1865 onenand_release_device(mtd
);
1869 * onenand_block_isbad - [MTD Interface] Check whether the block at the given offset is bad
1870 * @param mtd MTD device structure
1871 * @param ofs offset relative to mtd start
1873 * Check whether the block is bad
1875 static int onenand_block_isbad(struct mtd_info
*mtd
, loff_t ofs
)
1879 /* Check for invalid offset */
1880 if (ofs
> mtd
->size
)
1883 onenand_get_device(mtd
, FL_READING
);
1884 ret
= onenand_block_isbad_nolock(mtd
, ofs
, 0);
1885 onenand_release_device(mtd
);
1890 * onenand_default_block_markbad - [DEFAULT] mark a block bad
1891 * @param mtd MTD device structure
1892 * @param ofs offset from device start
1894 * This is the default implementation, which can be overridden by
1895 * a hardware specific driver.
1897 static int onenand_default_block_markbad(struct mtd_info
*mtd
, loff_t ofs
)
1899 struct onenand_chip
*this = mtd
->priv
;
1900 struct bbm_info
*bbm
= this->bbm
;
1901 u_char buf
[2] = {0, 0};
1902 struct mtd_oob_ops ops
= {
1903 .mode
= MTD_OOB_PLACE
,
1910 /* Get block number */
1911 block
= ((int) ofs
) >> bbm
->bbt_erase_shift
;
1913 bbm
->bbt
[block
>> 2] |= 0x01 << ((block
& 0x03) << 1);
1915 /* We write two bytes, so we dont have to mess with 16 bit access */
1916 ofs
+= mtd
->oobsize
+ (bbm
->badblockpos
& ~0x01);
1917 return onenand_write_oob_nolock(mtd
, ofs
, &ops
);
1921 * onenand_block_markbad - [MTD Interface] Mark the block at the given offset as bad
1922 * @param mtd MTD device structure
1923 * @param ofs offset relative to mtd start
1925 * Mark the block as bad
1927 static int onenand_block_markbad(struct mtd_info
*mtd
, loff_t ofs
)
1929 struct onenand_chip
*this = mtd
->priv
;
1932 ret
= onenand_block_isbad(mtd
, ofs
);
1934 /* If it was bad already, return success and do nothing */
1940 onenand_get_device(mtd
, FL_WRITING
);
1941 ret
= this->block_markbad(mtd
, ofs
);
1942 onenand_release_device(mtd
);
1947 * onenand_do_lock_cmd - [OneNAND Interface] Lock or unlock block(s)
1948 * @param mtd MTD device structure
1949 * @param ofs offset relative to mtd start
1950 * @param len number of bytes to lock or unlock
1951 * @param cmd lock or unlock command
1953 * Lock or unlock one or more blocks
1955 static int onenand_do_lock_cmd(struct mtd_info
*mtd
, loff_t ofs
, size_t len
, int cmd
)
1957 struct onenand_chip
*this = mtd
->priv
;
1958 int start
, end
, block
, value
, status
;
1961 start
= ofs
>> this->erase_shift
;
1962 end
= len
>> this->erase_shift
;
1964 if (cmd
== ONENAND_CMD_LOCK
)
1965 wp_status_mask
= ONENAND_WP_LS
;
1967 wp_status_mask
= ONENAND_WP_US
;
1969 /* Continuous lock scheme */
1970 if (this->options
& ONENAND_HAS_CONT_LOCK
) {
1971 /* Set start block address */
1972 this->write_word(start
, this->base
+ ONENAND_REG_START_BLOCK_ADDRESS
);
1973 /* Set end block address */
1974 this->write_word(start
+ end
- 1, this->base
+ ONENAND_REG_END_BLOCK_ADDRESS
);
1975 /* Write lock command */
1976 this->command(mtd
, cmd
, 0, 0);
1978 /* There's no return value */
1979 this->wait(mtd
, FL_LOCKING
);
1982 while (this->read_word(this->base
+ ONENAND_REG_CTRL_STATUS
)
1983 & ONENAND_CTRL_ONGO
)
1986 /* Check lock status */
1987 status
= this->read_word(this->base
+ ONENAND_REG_WP_STATUS
);
1988 if (!(status
& wp_status_mask
))
1989 printk(KERN_ERR
"wp status = 0x%x\n", status
);
1994 /* Block lock scheme */
1995 for (block
= start
; block
< start
+ end
; block
++) {
1996 /* Set block address */
1997 value
= onenand_block_address(this, block
);
1998 this->write_word(value
, this->base
+ ONENAND_REG_START_ADDRESS1
);
1999 /* Select DataRAM for DDP */
2000 value
= onenand_bufferram_address(this, block
);
2001 this->write_word(value
, this->base
+ ONENAND_REG_START_ADDRESS2
);
2002 /* Set start block address */
2003 this->write_word(block
, this->base
+ ONENAND_REG_START_BLOCK_ADDRESS
);
2004 /* Write lock command */
2005 this->command(mtd
, cmd
, 0, 0);
2007 /* There's no return value */
2008 this->wait(mtd
, FL_LOCKING
);
2011 while (this->read_word(this->base
+ ONENAND_REG_CTRL_STATUS
)
2012 & ONENAND_CTRL_ONGO
)
2015 /* Check lock status */
2016 status
= this->read_word(this->base
+ ONENAND_REG_WP_STATUS
);
2017 if (!(status
& wp_status_mask
))
2018 printk(KERN_ERR
"block = %d, wp status = 0x%x\n", block
, status
);
2025 * onenand_lock - [MTD Interface] Lock block(s)
2026 * @param mtd MTD device structure
2027 * @param ofs offset relative to mtd start
2028 * @param len number of bytes to unlock
2030 * Lock one or more blocks
2032 static int onenand_lock(struct mtd_info
*mtd
, loff_t ofs
, uint64_t len
)
2036 onenand_get_device(mtd
, FL_LOCKING
);
2037 ret
= onenand_do_lock_cmd(mtd
, ofs
, len
, ONENAND_CMD_LOCK
);
2038 onenand_release_device(mtd
);
2043 * onenand_unlock - [MTD Interface] Unlock block(s)
2044 * @param mtd MTD device structure
2045 * @param ofs offset relative to mtd start
2046 * @param len number of bytes to unlock
2048 * Unlock one or more blocks
2050 static int onenand_unlock(struct mtd_info
*mtd
, loff_t ofs
, uint64_t len
)
2054 onenand_get_device(mtd
, FL_LOCKING
);
2055 ret
= onenand_do_lock_cmd(mtd
, ofs
, len
, ONENAND_CMD_UNLOCK
);
2056 onenand_release_device(mtd
);
2061 * onenand_check_lock_status - [OneNAND Interface] Check lock status
2062 * @param this onenand chip data structure
2066 static int onenand_check_lock_status(struct onenand_chip
*this)
2068 unsigned int value
, block
, status
;
2071 end
= this->chipsize
>> this->erase_shift
;
2072 for (block
= 0; block
< end
; block
++) {
2073 /* Set block address */
2074 value
= onenand_block_address(this, block
);
2075 this->write_word(value
, this->base
+ ONENAND_REG_START_ADDRESS1
);
2076 /* Select DataRAM for DDP */
2077 value
= onenand_bufferram_address(this, block
);
2078 this->write_word(value
, this->base
+ ONENAND_REG_START_ADDRESS2
);
2079 /* Set start block address */
2080 this->write_word(block
, this->base
+ ONENAND_REG_START_BLOCK_ADDRESS
);
2082 /* Check lock status */
2083 status
= this->read_word(this->base
+ ONENAND_REG_WP_STATUS
);
2084 if (!(status
& ONENAND_WP_US
)) {
2085 printk(KERN_ERR
"block = %d, wp status = 0x%x\n", block
, status
);
2094 * onenand_unlock_all - [OneNAND Interface] unlock all blocks
2095 * @param mtd MTD device structure
2099 static void onenand_unlock_all(struct mtd_info
*mtd
)
2101 struct onenand_chip
*this = mtd
->priv
;
2103 size_t len
= this->chipsize
;
2105 if (this->options
& ONENAND_HAS_UNLOCK_ALL
) {
2106 /* Set start block address */
2107 this->write_word(0, this->base
+ ONENAND_REG_START_BLOCK_ADDRESS
);
2108 /* Write unlock command */
2109 this->command(mtd
, ONENAND_CMD_UNLOCK_ALL
, 0, 0);
2111 /* There's no return value */
2112 this->wait(mtd
, FL_LOCKING
);
2115 while (this->read_word(this->base
+ ONENAND_REG_CTRL_STATUS
)
2116 & ONENAND_CTRL_ONGO
)
2119 /* Check lock status */
2120 if (onenand_check_lock_status(this))
2123 /* Workaround for all block unlock in DDP */
2124 if (ONENAND_IS_DDP(this)) {
2125 /* All blocks on another chip */
2126 ofs
= this->chipsize
>> 1;
2127 len
= this->chipsize
>> 1;
2131 onenand_do_lock_cmd(mtd
, ofs
, len
, ONENAND_CMD_UNLOCK
);
2134 #ifdef CONFIG_MTD_ONENAND_OTP
2136 /* Interal OTP operation */
2137 typedef int (*otp_op_t
)(struct mtd_info
*mtd
, loff_t form
, size_t len
,
2138 size_t *retlen
, u_char
*buf
);
2141 * do_otp_read - [DEFAULT] Read OTP block area
2142 * @param mtd MTD device structure
2143 * @param from The offset to read
2144 * @param len number of bytes to read
2145 * @param retlen pointer to variable to store the number of readbytes
2146 * @param buf the databuffer to put/get data
2148 * Read OTP block area.
2150 static int do_otp_read(struct mtd_info
*mtd
, loff_t from
, size_t len
,
2151 size_t *retlen
, u_char
*buf
)
2153 struct onenand_chip
*this = mtd
->priv
;
2154 struct mtd_oob_ops ops
= {
2162 /* Enter OTP access mode */
2163 this->command(mtd
, ONENAND_CMD_OTP_ACCESS
, 0, 0);
2164 this->wait(mtd
, FL_OTPING
);
2166 ret
= onenand_read_ops_nolock(mtd
, from
, &ops
);
2168 /* Exit OTP access mode */
2169 this->command(mtd
, ONENAND_CMD_RESET
, 0, 0);
2170 this->wait(mtd
, FL_RESETING
);
2176 * do_otp_write - [DEFAULT] Write OTP block area
2177 * @param mtd MTD device structure
2178 * @param to The offset to write
2179 * @param len number of bytes to write
2180 * @param retlen pointer to variable to store the number of write bytes
2181 * @param buf the databuffer to put/get data
2183 * Write OTP block area.
2185 static int do_otp_write(struct mtd_info
*mtd
, loff_t to
, size_t len
,
2186 size_t *retlen
, u_char
*buf
)
2188 struct onenand_chip
*this = mtd
->priv
;
2189 unsigned char *pbuf
= buf
;
2191 struct mtd_oob_ops ops
;
2193 /* Force buffer page aligned */
2194 if (len
< mtd
->writesize
) {
2195 memcpy(this->page_buf
, buf
, len
);
2196 memset(this->page_buf
+ len
, 0xff, mtd
->writesize
- len
);
2197 pbuf
= this->page_buf
;
2198 len
= mtd
->writesize
;
2201 /* Enter OTP access mode */
2202 this->command(mtd
, ONENAND_CMD_OTP_ACCESS
, 0, 0);
2203 this->wait(mtd
, FL_OTPING
);
2209 ret
= onenand_write_ops_nolock(mtd
, to
, &ops
);
2210 *retlen
= ops
.retlen
;
2212 /* Exit OTP access mode */
2213 this->command(mtd
, ONENAND_CMD_RESET
, 0, 0);
2214 this->wait(mtd
, FL_RESETING
);
2220 * do_otp_lock - [DEFAULT] Lock OTP block area
2221 * @param mtd MTD device structure
2222 * @param from The offset to lock
2223 * @param len number of bytes to lock
2224 * @param retlen pointer to variable to store the number of lock bytes
2225 * @param buf the databuffer to put/get data
2227 * Lock OTP block area.
2229 static int do_otp_lock(struct mtd_info
*mtd
, loff_t from
, size_t len
,
2230 size_t *retlen
, u_char
*buf
)
2232 struct onenand_chip
*this = mtd
->priv
;
2233 struct mtd_oob_ops ops
= {
2234 .mode
= MTD_OOB_PLACE
,
2241 /* Enter OTP access mode */
2242 this->command(mtd
, ONENAND_CMD_OTP_ACCESS
, 0, 0);
2243 this->wait(mtd
, FL_OTPING
);
2245 ret
= onenand_write_oob_nolock(mtd
, from
, &ops
);
2247 *retlen
= ops
.oobretlen
;
2249 /* Exit OTP access mode */
2250 this->command(mtd
, ONENAND_CMD_RESET
, 0, 0);
2251 this->wait(mtd
, FL_RESETING
);
2257 * onenand_otp_walk - [DEFAULT] Handle OTP operation
2258 * @param mtd MTD device structure
2259 * @param from The offset to read/write
2260 * @param len number of bytes to read/write
2261 * @param retlen pointer to variable to store the number of read bytes
2262 * @param buf the databuffer to put/get data
2263 * @param action do given action
2264 * @param mode specify user and factory
2266 * Handle OTP operation.
2268 static int onenand_otp_walk(struct mtd_info
*mtd
, loff_t from
, size_t len
,
2269 size_t *retlen
, u_char
*buf
,
2270 otp_op_t action
, int mode
)
2272 struct onenand_chip
*this = mtd
->priv
;
2279 density
= onenand_get_density(this->device_id
);
2280 if (density
< ONENAND_DEVICE_DENSITY_512Mb
)
2285 if (mode
== MTD_OTP_FACTORY
) {
2286 from
+= mtd
->writesize
* otp_pages
;
2287 otp_pages
= 64 - otp_pages
;
2290 /* Check User/Factory boundary */
2291 if (((mtd
->writesize
* otp_pages
) - (from
+ len
)) < 0)
2294 onenand_get_device(mtd
, FL_OTPING
);
2295 while (len
> 0 && otp_pages
> 0) {
2296 if (!action
) { /* OTP Info functions */
2297 struct otp_info
*otpinfo
;
2299 len
-= sizeof(struct otp_info
);
2305 otpinfo
= (struct otp_info
*) buf
;
2306 otpinfo
->start
= from
;
2307 otpinfo
->length
= mtd
->writesize
;
2308 otpinfo
->locked
= 0;
2310 from
+= mtd
->writesize
;
2311 buf
+= sizeof(struct otp_info
);
2312 *retlen
+= sizeof(struct otp_info
);
2317 ret
= action(mtd
, from
, len
, &tmp_retlen
, buf
);
2328 onenand_release_device(mtd
);
2334 * onenand_get_fact_prot_info - [MTD Interface] Read factory OTP info
2335 * @param mtd MTD device structure
2336 * @param buf the databuffer to put/get data
2337 * @param len number of bytes to read
2339 * Read factory OTP info.
2341 static int onenand_get_fact_prot_info(struct mtd_info
*mtd
,
2342 struct otp_info
*buf
, size_t len
)
2347 ret
= onenand_otp_walk(mtd
, 0, len
, &retlen
, (u_char
*) buf
, NULL
, MTD_OTP_FACTORY
);
2349 return ret
? : retlen
;
2353 * onenand_read_fact_prot_reg - [MTD Interface] Read factory OTP area
2354 * @param mtd MTD device structure
2355 * @param from The offset to read
2356 * @param len number of bytes to read
2357 * @param retlen pointer to variable to store the number of read bytes
2358 * @param buf the databuffer to put/get data
2360 * Read factory OTP area.
2362 static int onenand_read_fact_prot_reg(struct mtd_info
*mtd
, loff_t from
,
2363 size_t len
, size_t *retlen
, u_char
*buf
)
2365 return onenand_otp_walk(mtd
, from
, len
, retlen
, buf
, do_otp_read
, MTD_OTP_FACTORY
);
2369 * onenand_get_user_prot_info - [MTD Interface] Read user OTP info
2370 * @param mtd MTD device structure
2371 * @param buf the databuffer to put/get data
2372 * @param len number of bytes to read
2374 * Read user OTP info.
2376 static int onenand_get_user_prot_info(struct mtd_info
*mtd
,
2377 struct otp_info
*buf
, size_t len
)
2382 ret
= onenand_otp_walk(mtd
, 0, len
, &retlen
, (u_char
*) buf
, NULL
, MTD_OTP_USER
);
2384 return ret
? : retlen
;
2388 * onenand_read_user_prot_reg - [MTD Interface] Read user OTP area
2389 * @param mtd MTD device structure
2390 * @param from The offset to read
2391 * @param len number of bytes to read
2392 * @param retlen pointer to variable to store the number of read bytes
2393 * @param buf the databuffer to put/get data
2395 * Read user OTP area.
2397 static int onenand_read_user_prot_reg(struct mtd_info
*mtd
, loff_t from
,
2398 size_t len
, size_t *retlen
, u_char
*buf
)
2400 return onenand_otp_walk(mtd
, from
, len
, retlen
, buf
, do_otp_read
, MTD_OTP_USER
);
2404 * onenand_write_user_prot_reg - [MTD Interface] Write user OTP area
2405 * @param mtd MTD device structure
2406 * @param from The offset to write
2407 * @param len number of bytes to write
2408 * @param retlen pointer to variable to store the number of write bytes
2409 * @param buf the databuffer to put/get data
2411 * Write user OTP area.
2413 static int onenand_write_user_prot_reg(struct mtd_info
*mtd
, loff_t from
,
2414 size_t len
, size_t *retlen
, u_char
*buf
)
2416 return onenand_otp_walk(mtd
, from
, len
, retlen
, buf
, do_otp_write
, MTD_OTP_USER
);
2420 * onenand_lock_user_prot_reg - [MTD Interface] Lock user OTP area
2421 * @param mtd MTD device structure
2422 * @param from The offset to lock
2423 * @param len number of bytes to unlock
2425 * Write lock mark on spare area in page 0 in OTP block
2427 static int onenand_lock_user_prot_reg(struct mtd_info
*mtd
, loff_t from
,
2430 struct onenand_chip
*this = mtd
->priv
;
2431 u_char
*oob_buf
= this->oob_buf
;
2435 memset(oob_buf
, 0xff, mtd
->oobsize
);
2437 * Note: OTP lock operation
2438 * OTP block : 0xXXFC
2439 * 1st block : 0xXXF3 (If chip support)
2440 * Both : 0xXXF0 (If chip support)
2442 oob_buf
[ONENAND_OTP_LOCK_OFFSET
] = 0xFC;
2445 * Write lock mark to 8th word of sector0 of page0 of the spare0.
2446 * We write 16 bytes spare area instead of 2 bytes.
2451 ret
= onenand_otp_walk(mtd
, from
, len
, &retlen
, oob_buf
, do_otp_lock
, MTD_OTP_USER
);
2453 return ret
? : retlen
;
2455 #endif /* CONFIG_MTD_ONENAND_OTP */
2458 * onenand_check_features - Check and set OneNAND features
2459 * @param mtd MTD data structure
2461 * Check and set OneNAND features
2465 static void onenand_check_features(struct mtd_info
*mtd
)
2467 struct onenand_chip
*this = mtd
->priv
;
2468 unsigned int density
, process
;
2470 /* Lock scheme depends on density and process */
2471 density
= onenand_get_density(this->device_id
);
2472 process
= this->version_id
>> ONENAND_VERSION_PROCESS_SHIFT
;
2476 case ONENAND_DEVICE_DENSITY_4Gb
:
2477 this->options
|= ONENAND_HAS_2PLANE
;
2479 case ONENAND_DEVICE_DENSITY_2Gb
:
2480 /* 2Gb DDP don't have 2 plane */
2481 if (!ONENAND_IS_DDP(this))
2482 this->options
|= ONENAND_HAS_2PLANE
;
2483 this->options
|= ONENAND_HAS_UNLOCK_ALL
;
2485 case ONENAND_DEVICE_DENSITY_1Gb
:
2486 /* A-Die has all block unlock */
2488 this->options
|= ONENAND_HAS_UNLOCK_ALL
;
2492 /* Some OneNAND has continuous lock scheme */
2494 this->options
|= ONENAND_HAS_CONT_LOCK
;
2498 if (this->options
& ONENAND_HAS_CONT_LOCK
)
2499 printk(KERN_DEBUG
"Lock scheme is Continuous Lock\n");
2500 if (this->options
& ONENAND_HAS_UNLOCK_ALL
)
2501 printk(KERN_DEBUG
"Chip support all block unlock\n");
2502 if (this->options
& ONENAND_HAS_2PLANE
)
2503 printk(KERN_DEBUG
"Chip has 2 plane\n");
2507 * onenand_print_device_info - Print device & version ID
2508 * @param device device ID
2509 * @param version version ID
2511 * Print device & version ID
2513 static void onenand_print_device_info(int device
, int version
)
2515 int vcc
, demuxed
, ddp
, density
;
2517 vcc
= device
& ONENAND_DEVICE_VCC_MASK
;
2518 demuxed
= device
& ONENAND_DEVICE_IS_DEMUX
;
2519 ddp
= device
& ONENAND_DEVICE_IS_DDP
;
2520 density
= onenand_get_density(device
);
2521 printk(KERN_INFO
"%sOneNAND%s %dMB %sV 16-bit (0x%02x)\n",
2522 demuxed
? "" : "Muxed ",
2525 vcc
? "2.65/3.3" : "1.8",
2527 printk(KERN_INFO
"OneNAND version = 0x%04x\n", version
);
2530 static const struct onenand_manufacturers onenand_manuf_ids
[] = {
2531 {ONENAND_MFR_SAMSUNG
, "Samsung"},
2535 * onenand_check_maf - Check manufacturer ID
2536 * @param manuf manufacturer ID
2538 * Check manufacturer ID
2540 static int onenand_check_maf(int manuf
)
2542 int size
= ARRAY_SIZE(onenand_manuf_ids
);
2546 for (i
= 0; i
< size
; i
++)
2547 if (manuf
== onenand_manuf_ids
[i
].id
)
2551 name
= onenand_manuf_ids
[i
].name
;
2555 printk(KERN_DEBUG
"OneNAND Manufacturer: %s (0x%0x)\n", name
, manuf
);
2561 * onenand_probe - [OneNAND Interface] Probe the OneNAND device
2562 * @param mtd MTD device structure
2564 * OneNAND detection method:
2565 * Compare the values from command with ones from register
2567 static int onenand_probe(struct mtd_info
*mtd
)
2569 struct onenand_chip
*this = mtd
->priv
;
2570 int bram_maf_id
, bram_dev_id
, maf_id
, dev_id
, ver_id
;
2574 /* Save system configuration 1 */
2575 syscfg
= this->read_word(this->base
+ ONENAND_REG_SYS_CFG1
);
2576 /* Clear Sync. Burst Read mode to read BootRAM */
2577 this->write_word((syscfg
& ~ONENAND_SYS_CFG1_SYNC_READ
), this->base
+ ONENAND_REG_SYS_CFG1
);
2579 /* Send the command for reading device ID from BootRAM */
2580 this->write_word(ONENAND_CMD_READID
, this->base
+ ONENAND_BOOTRAM
);
2582 /* Read manufacturer and device IDs from BootRAM */
2583 bram_maf_id
= this->read_word(this->base
+ ONENAND_BOOTRAM
+ 0x0);
2584 bram_dev_id
= this->read_word(this->base
+ ONENAND_BOOTRAM
+ 0x2);
2586 /* Reset OneNAND to read default register values */
2587 this->write_word(ONENAND_CMD_RESET
, this->base
+ ONENAND_BOOTRAM
);
2589 this->wait(mtd
, FL_RESETING
);
2591 /* Restore system configuration 1 */
2592 this->write_word(syscfg
, this->base
+ ONENAND_REG_SYS_CFG1
);
2594 /* Check manufacturer ID */
2595 if (onenand_check_maf(bram_maf_id
))
2598 /* Read manufacturer and device IDs from Register */
2599 maf_id
= this->read_word(this->base
+ ONENAND_REG_MANUFACTURER_ID
);
2600 dev_id
= this->read_word(this->base
+ ONENAND_REG_DEVICE_ID
);
2601 ver_id
= this->read_word(this->base
+ ONENAND_REG_VERSION_ID
);
2603 /* Check OneNAND device */
2604 if (maf_id
!= bram_maf_id
|| dev_id
!= bram_dev_id
)
2607 /* Flash device information */
2608 onenand_print_device_info(dev_id
, ver_id
);
2609 this->device_id
= dev_id
;
2610 this->version_id
= ver_id
;
2612 density
= onenand_get_density(dev_id
);
2613 this->chipsize
= (16 << density
) << 20;
2614 /* Set density mask. it is used for DDP */
2615 if (ONENAND_IS_DDP(this))
2616 this->density_mask
= (1 << (density
+ 6));
2618 this->density_mask
= 0;
2620 /* OneNAND page size & block size */
2621 /* The data buffer size is equal to page size */
2622 mtd
->writesize
= this->read_word(this->base
+ ONENAND_REG_DATA_BUFFER_SIZE
);
2623 mtd
->oobsize
= mtd
->writesize
>> 5;
2624 /* Pages per a block are always 64 in OneNAND */
2625 mtd
->erasesize
= mtd
->writesize
<< 6;
2627 this->erase_shift
= ffs(mtd
->erasesize
) - 1;
2628 this->page_shift
= ffs(mtd
->writesize
) - 1;
2629 this->page_mask
= (1 << (this->erase_shift
- this->page_shift
)) - 1;
2630 /* It's real page size */
2631 this->writesize
= mtd
->writesize
;
2633 /* REVIST: Multichip handling */
2635 mtd
->size
= this->chipsize
;
2637 /* Check OneNAND features */
2638 onenand_check_features(mtd
);
2641 * We emulate the 4KiB page and 256KiB erase block size
2642 * But oobsize is still 64 bytes.
2643 * It is only valid if you turn on 2X program support,
2644 * Otherwise it will be ignored by compiler.
2646 if (ONENAND_IS_2PLANE(this)) {
2647 mtd
->writesize
<<= 1;
2648 mtd
->erasesize
<<= 1;
2655 * onenand_suspend - [MTD Interface] Suspend the OneNAND flash
2656 * @param mtd MTD device structure
2658 static int onenand_suspend(struct mtd_info
*mtd
)
2660 return onenand_get_device(mtd
, FL_PM_SUSPENDED
);
2664 * onenand_resume - [MTD Interface] Resume the OneNAND flash
2665 * @param mtd MTD device structure
2667 static void onenand_resume(struct mtd_info
*mtd
)
2669 struct onenand_chip
*this = mtd
->priv
;
2671 if (this->state
== FL_PM_SUSPENDED
)
2672 onenand_release_device(mtd
);
2674 printk(KERN_ERR
"resume() called for the chip which is not"
2675 "in suspended state\n");
2679 * onenand_scan - [OneNAND Interface] Scan for the OneNAND device
2680 * @param mtd MTD device structure
2681 * @param maxchips Number of chips to scan for
2683 * This fills out all the not initialized function pointers
2684 * with the defaults.
2685 * The flash ID is read and the mtd/chip structures are
2686 * filled with the appropriate values.
2688 int onenand_scan(struct mtd_info
*mtd
, int maxchips
)
2691 struct onenand_chip
*this = mtd
->priv
;
2693 if (!this->read_word
)
2694 this->read_word
= onenand_readw
;
2695 if (!this->write_word
)
2696 this->write_word
= onenand_writew
;
2699 this->command
= onenand_command
;
2701 onenand_setup_wait(mtd
);
2703 if (!this->read_bufferram
)
2704 this->read_bufferram
= onenand_read_bufferram
;
2705 if (!this->write_bufferram
)
2706 this->write_bufferram
= onenand_write_bufferram
;
2708 if (!this->block_markbad
)
2709 this->block_markbad
= onenand_default_block_markbad
;
2710 if (!this->scan_bbt
)
2711 this->scan_bbt
= onenand_default_bbt
;
2713 if (onenand_probe(mtd
))
2716 /* Set Sync. Burst Read after probing */
2717 if (this->mmcontrol
) {
2718 printk(KERN_INFO
"OneNAND Sync. Burst Read support\n");
2719 this->read_bufferram
= onenand_sync_read_bufferram
;
2722 /* Allocate buffers, if necessary */
2723 if (!this->page_buf
) {
2724 this->page_buf
= kzalloc(mtd
->writesize
, GFP_KERNEL
);
2725 if (!this->page_buf
) {
2726 printk(KERN_ERR
"onenand_scan(): Can't allocate page_buf\n");
2729 this->options
|= ONENAND_PAGEBUF_ALLOC
;
2731 if (!this->oob_buf
) {
2732 this->oob_buf
= kzalloc(mtd
->oobsize
, GFP_KERNEL
);
2733 if (!this->oob_buf
) {
2734 printk(KERN_ERR
"onenand_scan(): Can't allocate oob_buf\n");
2735 if (this->options
& ONENAND_PAGEBUF_ALLOC
) {
2736 this->options
&= ~ONENAND_PAGEBUF_ALLOC
;
2737 kfree(this->page_buf
);
2741 this->options
|= ONENAND_OOBBUF_ALLOC
;
2744 this->state
= FL_READY
;
2745 init_waitqueue_head(&this->wq
);
2746 spin_lock_init(&this->chip_lock
);
2749 * Allow subpage writes up to oobsize.
2751 switch (mtd
->oobsize
) {
2753 this->ecclayout
= &onenand_oob_64
;
2754 mtd
->subpage_sft
= 2;
2758 this->ecclayout
= &onenand_oob_32
;
2759 mtd
->subpage_sft
= 1;
2763 printk(KERN_WARNING
"No OOB scheme defined for oobsize %d\n",
2765 mtd
->subpage_sft
= 0;
2766 /* To prevent kernel oops */
2767 this->ecclayout
= &onenand_oob_32
;
2771 this->subpagesize
= mtd
->writesize
>> mtd
->subpage_sft
;
2774 * The number of bytes available for a client to place data into
2775 * the out of band area
2777 this->ecclayout
->oobavail
= 0;
2778 for (i
= 0; i
< MTD_MAX_OOBFREE_ENTRIES
&&
2779 this->ecclayout
->oobfree
[i
].length
; i
++)
2780 this->ecclayout
->oobavail
+=
2781 this->ecclayout
->oobfree
[i
].length
;
2782 mtd
->oobavail
= this->ecclayout
->oobavail
;
2784 mtd
->ecclayout
= this->ecclayout
;
2786 /* Fill in remaining MTD driver data */
2787 mtd
->type
= MTD_NANDFLASH
;
2788 mtd
->flags
= MTD_CAP_NANDFLASH
;
2789 mtd
->erase
= onenand_erase
;
2791 mtd
->unpoint
= NULL
;
2792 mtd
->read
= onenand_read
;
2793 mtd
->write
= onenand_write
;
2794 mtd
->read_oob
= onenand_read_oob
;
2795 mtd
->write_oob
= onenand_write_oob
;
2796 mtd
->panic_write
= onenand_panic_write
;
2797 #ifdef CONFIG_MTD_ONENAND_OTP
2798 mtd
->get_fact_prot_info
= onenand_get_fact_prot_info
;
2799 mtd
->read_fact_prot_reg
= onenand_read_fact_prot_reg
;
2800 mtd
->get_user_prot_info
= onenand_get_user_prot_info
;
2801 mtd
->read_user_prot_reg
= onenand_read_user_prot_reg
;
2802 mtd
->write_user_prot_reg
= onenand_write_user_prot_reg
;
2803 mtd
->lock_user_prot_reg
= onenand_lock_user_prot_reg
;
2805 mtd
->sync
= onenand_sync
;
2806 mtd
->lock
= onenand_lock
;
2807 mtd
->unlock
= onenand_unlock
;
2808 mtd
->suspend
= onenand_suspend
;
2809 mtd
->resume
= onenand_resume
;
2810 mtd
->block_isbad
= onenand_block_isbad
;
2811 mtd
->block_markbad
= onenand_block_markbad
;
2812 mtd
->owner
= THIS_MODULE
;
2814 /* Unlock whole block */
2815 onenand_unlock_all(mtd
);
2817 return this->scan_bbt(mtd
);
2821 * onenand_release - [OneNAND Interface] Free resources held by the OneNAND device
2822 * @param mtd MTD device structure
2824 void onenand_release(struct mtd_info
*mtd
)
2826 struct onenand_chip
*this = mtd
->priv
;
2828 #ifdef CONFIG_MTD_PARTITIONS
2829 /* Deregister partitions */
2830 del_mtd_partitions (mtd
);
2832 /* Deregister the device */
2833 del_mtd_device (mtd
);
2835 /* Free bad block table memory, if allocated */
2837 struct bbm_info
*bbm
= this->bbm
;
2841 /* Buffers allocated by onenand_scan */
2842 if (this->options
& ONENAND_PAGEBUF_ALLOC
)
2843 kfree(this->page_buf
);
2844 if (this->options
& ONENAND_OOBBUF_ALLOC
)
2845 kfree(this->oob_buf
);
2848 EXPORT_SYMBOL_GPL(onenand_scan
);
2849 EXPORT_SYMBOL_GPL(onenand_release
);
2851 MODULE_LICENSE("GPL");
2852 MODULE_AUTHOR("Kyungmin Park <kyungmin.park@samsung.com>");
2853 MODULE_DESCRIPTION("Generic OneNAND flash driver code");