xref: /openbmc/linux/drivers/mtd/spi-nor/core.h (revision 1f0214a8)
1 /* SPDX-License-Identifier: GPL-2.0 */
2 /*
3  * Copyright (C) 2005, Intec Automation Inc.
4  * Copyright (C) 2014, Freescale Semiconductor, Inc.
5  */
6 
7 #ifndef __LINUX_MTD_SPI_NOR_INTERNAL_H
8 #define __LINUX_MTD_SPI_NOR_INTERNAL_H
9 
10 #include "sfdp.h"
11 
12 #define SPI_NOR_MAX_ID_LEN	6
13 
14 enum spi_nor_option_flags {
15 	SNOR_F_HAS_SR_TB	= BIT(0),
16 	SNOR_F_NO_OP_CHIP_ERASE	= BIT(1),
17 	SNOR_F_BROKEN_RESET	= BIT(2),
18 	SNOR_F_4B_OPCODES	= BIT(3),
19 	SNOR_F_HAS_4BAIT	= BIT(4),
20 	SNOR_F_HAS_LOCK		= BIT(5),
21 	SNOR_F_HAS_16BIT_SR	= BIT(6),
22 	SNOR_F_NO_READ_CR	= BIT(7),
23 	SNOR_F_HAS_SR_TB_BIT6	= BIT(8),
24 	SNOR_F_HAS_4BIT_BP      = BIT(9),
25 	SNOR_F_HAS_SR_BP3_BIT6  = BIT(10),
26 	SNOR_F_IO_MODE_EN_VOLATILE = BIT(11),
27 	SNOR_F_SOFT_RESET	= BIT(12),
28 	SNOR_F_SWP_IS_VOLATILE	= BIT(13),
29 };
30 
31 struct spi_nor_read_command {
32 	u8			num_mode_clocks;
33 	u8			num_wait_states;
34 	u8			opcode;
35 	enum spi_nor_protocol	proto;
36 };
37 
38 struct spi_nor_pp_command {
39 	u8			opcode;
40 	enum spi_nor_protocol	proto;
41 };
42 
43 enum spi_nor_read_command_index {
44 	SNOR_CMD_READ,
45 	SNOR_CMD_READ_FAST,
46 	SNOR_CMD_READ_1_1_1_DTR,
47 
48 	/* Dual SPI */
49 	SNOR_CMD_READ_1_1_2,
50 	SNOR_CMD_READ_1_2_2,
51 	SNOR_CMD_READ_2_2_2,
52 	SNOR_CMD_READ_1_2_2_DTR,
53 
54 	/* Quad SPI */
55 	SNOR_CMD_READ_1_1_4,
56 	SNOR_CMD_READ_1_4_4,
57 	SNOR_CMD_READ_4_4_4,
58 	SNOR_CMD_READ_1_4_4_DTR,
59 
60 	/* Octal SPI */
61 	SNOR_CMD_READ_1_1_8,
62 	SNOR_CMD_READ_1_8_8,
63 	SNOR_CMD_READ_8_8_8,
64 	SNOR_CMD_READ_1_8_8_DTR,
65 	SNOR_CMD_READ_8_8_8_DTR,
66 
67 	SNOR_CMD_READ_MAX
68 };
69 
70 enum spi_nor_pp_command_index {
71 	SNOR_CMD_PP,
72 
73 	/* Quad SPI */
74 	SNOR_CMD_PP_1_1_4,
75 	SNOR_CMD_PP_1_4_4,
76 	SNOR_CMD_PP_4_4_4,
77 
78 	/* Octal SPI */
79 	SNOR_CMD_PP_1_1_8,
80 	SNOR_CMD_PP_1_8_8,
81 	SNOR_CMD_PP_8_8_8,
82 	SNOR_CMD_PP_8_8_8_DTR,
83 
84 	SNOR_CMD_PP_MAX
85 };
86 
87 /**
88  * struct spi_nor_erase_type - Structure to describe a SPI NOR erase type
89  * @size:		the size of the sector/block erased by the erase type.
90  *			JEDEC JESD216B imposes erase sizes to be a power of 2.
91  * @size_shift:		@size is a power of 2, the shift is stored in
92  *			@size_shift.
93  * @size_mask:		the size mask based on @size_shift.
94  * @opcode:		the SPI command op code to erase the sector/block.
95  * @idx:		Erase Type index as sorted in the Basic Flash Parameter
96  *			Table. It will be used to synchronize the supported
97  *			Erase Types with the ones identified in the SFDP
98  *			optional tables.
99  */
100 struct spi_nor_erase_type {
101 	u32	size;
102 	u32	size_shift;
103 	u32	size_mask;
104 	u8	opcode;
105 	u8	idx;
106 };
107 
108 /**
109  * struct spi_nor_erase_command - Used for non-uniform erases
110  * The structure is used to describe a list of erase commands to be executed
111  * once we validate that the erase can be performed. The elements in the list
112  * are run-length encoded.
113  * @list:		for inclusion into the list of erase commands.
114  * @count:		how many times the same erase command should be
115  *			consecutively used.
116  * @size:		the size of the sector/block erased by the command.
117  * @opcode:		the SPI command op code to erase the sector/block.
118  */
119 struct spi_nor_erase_command {
120 	struct list_head	list;
121 	u32			count;
122 	u32			size;
123 	u8			opcode;
124 };
125 
126 /**
127  * struct spi_nor_erase_region - Structure to describe a SPI NOR erase region
128  * @offset:		the offset in the data array of erase region start.
129  *			LSB bits are used as a bitmask encoding flags to
130  *			determine if this region is overlaid, if this region is
131  *			the last in the SPI NOR flash memory and to indicate
132  *			all the supported erase commands inside this region.
133  *			The erase types are sorted in ascending order with the
134  *			smallest Erase Type size being at BIT(0).
135  * @size:		the size of the region in bytes.
136  */
137 struct spi_nor_erase_region {
138 	u64		offset;
139 	u64		size;
140 };
141 
142 #define SNOR_ERASE_TYPE_MAX	4
143 #define SNOR_ERASE_TYPE_MASK	GENMASK_ULL(SNOR_ERASE_TYPE_MAX - 1, 0)
144 
145 #define SNOR_LAST_REGION	BIT(4)
146 #define SNOR_OVERLAID_REGION	BIT(5)
147 
148 #define SNOR_ERASE_FLAGS_MAX	6
149 #define SNOR_ERASE_FLAGS_MASK	GENMASK_ULL(SNOR_ERASE_FLAGS_MAX - 1, 0)
150 
151 /**
152  * struct spi_nor_erase_map - Structure to describe the SPI NOR erase map
153  * @regions:		array of erase regions. The regions are consecutive in
154  *			address space. Walking through the regions is done
155  *			incrementally.
156  * @uniform_region:	a pre-allocated erase region for SPI NOR with a uniform
157  *			sector size (legacy implementation).
158  * @erase_type:		an array of erase types shared by all the regions.
159  *			The erase types are sorted in ascending order, with the
160  *			smallest Erase Type size being the first member in the
161  *			erase_type array.
162  * @uniform_erase_type:	bitmask encoding erase types that can erase the
163  *			entire memory. This member is completed at init by
164  *			uniform and non-uniform SPI NOR flash memories if they
165  *			support at least one erase type that can erase the
166  *			entire memory.
167  */
168 struct spi_nor_erase_map {
169 	struct spi_nor_erase_region	*regions;
170 	struct spi_nor_erase_region	uniform_region;
171 	struct spi_nor_erase_type	erase_type[SNOR_ERASE_TYPE_MAX];
172 	u8				uniform_erase_type;
173 };
174 
175 /**
176  * struct spi_nor_locking_ops - SPI NOR locking methods
177  * @lock:	lock a region of the SPI NOR.
178  * @unlock:	unlock a region of the SPI NOR.
179  * @is_locked:	check if a region of the SPI NOR is completely locked
180  */
181 struct spi_nor_locking_ops {
182 	int (*lock)(struct spi_nor *nor, loff_t ofs, uint64_t len);
183 	int (*unlock)(struct spi_nor *nor, loff_t ofs, uint64_t len);
184 	int (*is_locked)(struct spi_nor *nor, loff_t ofs, uint64_t len);
185 };
186 
187 /**
188  * struct spi_nor_otp_organization - Structure to describe the SPI NOR OTP regions
189  * @len:	size of one OTP region in bytes.
190  * @base:	start address of the OTP area.
191  * @offset:	offset between consecutive OTP regions if there are more
192  *              than one.
193  * @n_regions:	number of individual OTP regions.
194  */
195 struct spi_nor_otp_organization {
196 	size_t len;
197 	loff_t base;
198 	loff_t offset;
199 	unsigned int n_regions;
200 };
201 
202 /**
203  * struct spi_nor_otp_ops - SPI NOR OTP methods
204  * @read:	read from the SPI NOR OTP area.
205  * @write:	write to the SPI NOR OTP area.
206  * @lock:	lock an OTP region.
207  * @erase:	erase an OTP region.
208  * @is_locked:	check if an OTP region of the SPI NOR is locked.
209  */
210 struct spi_nor_otp_ops {
211 	int (*read)(struct spi_nor *nor, loff_t addr, size_t len, u8 *buf);
212 	int (*write)(struct spi_nor *nor, loff_t addr, size_t len,
213 		     const u8 *buf);
214 	int (*lock)(struct spi_nor *nor, unsigned int region);
215 	int (*erase)(struct spi_nor *nor, loff_t addr);
216 	int (*is_locked)(struct spi_nor *nor, unsigned int region);
217 };
218 
219 /**
220  * struct spi_nor_otp - SPI NOR OTP grouping structure
221  * @org:	OTP region organization
222  * @ops:	OTP access ops
223  */
224 struct spi_nor_otp {
225 	const struct spi_nor_otp_organization *org;
226 	const struct spi_nor_otp_ops *ops;
227 };
228 
229 /**
230  * struct spi_nor_flash_parameter - SPI NOR flash parameters and settings.
231  * Includes legacy flash parameters and settings that can be overwritten
232  * by the spi_nor_fixups hooks, or dynamically when parsing the JESD216
233  * Serial Flash Discoverable Parameters (SFDP) tables.
234  *
235  * @size:		the flash memory density in bytes.
236  * @writesize		Minimal writable flash unit size. Defaults to 1. Set to
237  *			ECC unit size for ECC-ed flashes.
238  * @page_size:		the page size of the SPI NOR flash memory.
239  * @rdsr_dummy:		dummy cycles needed for Read Status Register command.
240  * @rdsr_addr_nbytes:	dummy address bytes needed for Read Status Register
241  *			command.
242  * @hwcaps:		describes the read and page program hardware
243  *			capabilities.
244  * @reads:		read capabilities ordered by priority: the higher index
245  *                      in the array, the higher priority.
246  * @page_programs:	page program capabilities ordered by priority: the
247  *                      higher index in the array, the higher priority.
248  * @erase_map:		the erase map parsed from the SFDP Sector Map Parameter
249  *                      Table.
250  * @otp:		SPI NOR OTP info.
251  * @octal_dtr_enable:	enables SPI NOR octal DTR mode.
252  * @quad_enable:	enables SPI NOR quad mode.
253  * @set_4byte_addr_mode: puts the SPI NOR in 4 byte addressing mode.
254  * @convert_addr:	converts an absolute address into something the flash
255  *                      will understand. Particularly useful when pagesize is
256  *                      not a power-of-2.
257  * @setup:		(optional) configures the SPI NOR memory. Useful for
258  *			SPI NOR flashes that have peculiarities to the SPI NOR
259  *			standard e.g. different opcodes, specific address
260  *			calculation, page size, etc.
261  * @ready:		(optional) flashes might use a different mechanism
262  *			than reading the status register to indicate they
263  *			are ready for a new command
264  * @locking_ops:	SPI NOR locking methods.
265  */
266 struct spi_nor_flash_parameter {
267 	u64				size;
268 	u32				writesize;
269 	u32				page_size;
270 	u8				rdsr_dummy;
271 	u8				rdsr_addr_nbytes;
272 
273 	struct spi_nor_hwcaps		hwcaps;
274 	struct spi_nor_read_command	reads[SNOR_CMD_READ_MAX];
275 	struct spi_nor_pp_command	page_programs[SNOR_CMD_PP_MAX];
276 
277 	struct spi_nor_erase_map        erase_map;
278 	struct spi_nor_otp		otp;
279 
280 	int (*octal_dtr_enable)(struct spi_nor *nor, bool enable);
281 	int (*quad_enable)(struct spi_nor *nor);
282 	int (*set_4byte_addr_mode)(struct spi_nor *nor, bool enable);
283 	u32 (*convert_addr)(struct spi_nor *nor, u32 addr);
284 	int (*setup)(struct spi_nor *nor, const struct spi_nor_hwcaps *hwcaps);
285 	int (*ready)(struct spi_nor *nor);
286 
287 	const struct spi_nor_locking_ops *locking_ops;
288 };
289 
290 /**
291  * struct spi_nor_fixups - SPI NOR fixup hooks
292  * @default_init: called after default flash parameters init. Used to tweak
293  *                flash parameters when information provided by the flash_info
294  *                table is incomplete or wrong.
295  * @post_bfpt: called after the BFPT table has been parsed
296  * @post_sfdp: called after SFDP has been parsed (is also called for SPI NORs
297  *             that do not support RDSFDP). Typically used to tweak various
298  *             parameters that could not be extracted by other means (i.e.
299  *             when information provided by the SFDP/flash_info tables are
300  *             incomplete or wrong).
301  * @late_init: used to initialize flash parameters that are not declared in the
302  *             JESD216 SFDP standard, or where SFDP tables not defined at all.
303  *             Will replace the default_init() hook.
304  *
305  * Those hooks can be used to tweak the SPI NOR configuration when the SFDP
306  * table is broken or not available.
307  */
308 struct spi_nor_fixups {
309 	void (*default_init)(struct spi_nor *nor);
310 	int (*post_bfpt)(struct spi_nor *nor,
311 			 const struct sfdp_parameter_header *bfpt_header,
312 			 const struct sfdp_bfpt *bfpt);
313 	void (*post_sfdp)(struct spi_nor *nor);
314 	void (*late_init)(struct spi_nor *nor);
315 };
316 
317 /**
318  * struct flash_info - SPI NOR flash_info entry.
319  * @name: the name of the flash.
320  * @id:             the flash's ID bytes. The first three bytes are the
321  *                  JEDIC ID. JEDEC ID zero means "no ID" (mostly older chips).
322  * @id_len:         the number of bytes of ID.
323  * @sector_size:    the size listed here is what works with SPINOR_OP_SE, which
324  *                  isn't necessarily called a "sector" by the vendor.
325  * @n_sectors:      the number of sectors.
326  * @page_size:      the flash's page size.
327  * @addr_width:     the flash's address width.
328  *
329  * @parse_sfdp:     true when flash supports SFDP tables. The false value has no
330  *                  meaning. If one wants to skip the SFDP tables, one should
331  *                  instead use the SPI_NOR_SKIP_SFDP sfdp_flag.
332  * @flags:          flags that indicate support that is not defined by the
333  *                  JESD216 standard in its SFDP tables. Flag meanings:
334  *   SPI_NOR_HAS_LOCK:        flash supports lock/unlock via SR
335  *   SPI_NOR_HAS_TB:          flash SR has Top/Bottom (TB) protect bit. Must be
336  *                            used with SPI_NOR_HAS_LOCK.
337  *   SPI_NOR_TB_SR_BIT6:      Top/Bottom (TB) is bit 6 of status register.
338  *                            Must be used with SPI_NOR_HAS_TB.
339  *   SPI_NOR_4BIT_BP:         flash SR has 4 bit fields (BP0-3) for block
340  *                            protection.
341  *   SPI_NOR_BP3_SR_BIT6:     BP3 is bit 6 of status register. Must be used with
342  *                            SPI_NOR_4BIT_BP.
343  *   SPI_NOR_SWP_IS_VOLATILE: flash has volatile software write protection bits.
344  *                            Usually these will power-up in a write-protected
345  *                            state.
346  *   SPI_NOR_NO_ERASE:        no erase command needed.
347  *   NO_CHIP_ERASE:           chip does not support chip erase.
348  *   SPI_NOR_NO_FR:           can't do fastread.
349  *
350  * @no_sfdp_flags:  flags that indicate support that can be discovered via SFDP.
351  *                  Used when SFDP tables are not defined in the flash. These
352  *                  flags are used together with the SPI_NOR_SKIP_SFDP flag.
353  *   SPI_NOR_SKIP_SFDP:       skip parsing of SFDP tables.
354  *   SECT_4K:                 SPINOR_OP_BE_4K works uniformly.
355  *   SECT_4K_PMC:             SPINOR_OP_BE_4K_PMC works uniformly.
356  *   SPI_NOR_DUAL_READ:       flash supports Dual Read.
357  *   SPI_NOR_QUAD_READ:       flash supports Quad Read.
358  *   SPI_NOR_OCTAL_READ:      flash supports Octal Read.
359  *   SPI_NOR_OCTAL_DTR_READ:  flash supports octal DTR Read.
360  *   SPI_NOR_OCTAL_DTR_PP:    flash supports Octal DTR Page Program.
361  *
362  * @fixup_flags:    flags that indicate support that can be discovered via SFDP
363  *                  ideally, but can not be discovered for this particular flash
364  *                  because the SFDP table that indicates this support is not
365  *                  defined by the flash. In case the table for this support is
366  *                  defined but has wrong values, one should instead use a
367  *                  post_sfdp() hook to set the SNOR_F equivalent flag.
368  *
369  *   SPI_NOR_4B_OPCODES:      use dedicated 4byte address op codes to support
370  *                            memory size above 128Mib.
371  *   SPI_NOR_IO_MODE_EN_VOLATILE: flash enables the best available I/O mode
372  *                            via a volatile bit.
373  * @mfr_flags:      manufacturer private flags. Used in the manufacturer fixup
374  *                  hooks to differentiate support between flashes of the same
375  *                  manufacturer.
376  * @otp_org:        flash's OTP organization.
377  * @fixups:         part specific fixup hooks.
378  */
379 struct flash_info {
380 	char *name;
381 	u8 id[SPI_NOR_MAX_ID_LEN];
382 	u8 id_len;
383 	unsigned sector_size;
384 	u16 n_sectors;
385 	u16 page_size;
386 	u16 addr_width;
387 
388 	bool parse_sfdp;
389 	u16 flags;
390 #define SPI_NOR_HAS_LOCK		BIT(0)
391 #define SPI_NOR_HAS_TB			BIT(1)
392 #define SPI_NOR_TB_SR_BIT6		BIT(2)
393 #define SPI_NOR_4BIT_BP			BIT(3)
394 #define SPI_NOR_BP3_SR_BIT6		BIT(4)
395 #define SPI_NOR_SWP_IS_VOLATILE		BIT(5)
396 #define SPI_NOR_NO_ERASE		BIT(6)
397 #define NO_CHIP_ERASE			BIT(7)
398 #define SPI_NOR_NO_FR			BIT(8)
399 
400 	u8 no_sfdp_flags;
401 #define SPI_NOR_SKIP_SFDP		BIT(0)
402 #define SECT_4K				BIT(1)
403 #define SECT_4K_PMC			BIT(2)
404 #define SPI_NOR_DUAL_READ		BIT(3)
405 #define SPI_NOR_QUAD_READ		BIT(4)
406 #define SPI_NOR_OCTAL_READ		BIT(5)
407 #define SPI_NOR_OCTAL_DTR_READ		BIT(6)
408 #define SPI_NOR_OCTAL_DTR_PP		BIT(7)
409 
410 	u8 fixup_flags;
411 #define SPI_NOR_4B_OPCODES		BIT(0)
412 #define SPI_NOR_IO_MODE_EN_VOLATILE	BIT(1)
413 
414 	u8 mfr_flags;
415 
416 	const struct spi_nor_otp_organization otp_org;
417 	const struct spi_nor_fixups *fixups;
418 };
419 
420 /* Used when the "_ext_id" is two bytes at most */
421 #define INFO(_jedec_id, _ext_id, _sector_size, _n_sectors)		\
422 		.id = {							\
423 			((_jedec_id) >> 16) & 0xff,			\
424 			((_jedec_id) >> 8) & 0xff,			\
425 			(_jedec_id) & 0xff,				\
426 			((_ext_id) >> 8) & 0xff,			\
427 			(_ext_id) & 0xff,				\
428 			},						\
429 		.id_len = (!(_jedec_id) ? 0 : (3 + ((_ext_id) ? 2 : 0))),	\
430 		.sector_size = (_sector_size),				\
431 		.n_sectors = (_n_sectors),				\
432 		.page_size = 256,					\
433 
434 #define INFO6(_jedec_id, _ext_id, _sector_size, _n_sectors)		\
435 		.id = {							\
436 			((_jedec_id) >> 16) & 0xff,			\
437 			((_jedec_id) >> 8) & 0xff,			\
438 			(_jedec_id) & 0xff,				\
439 			((_ext_id) >> 16) & 0xff,			\
440 			((_ext_id) >> 8) & 0xff,			\
441 			(_ext_id) & 0xff,				\
442 			},						\
443 		.id_len = 6,						\
444 		.sector_size = (_sector_size),				\
445 		.n_sectors = (_n_sectors),				\
446 		.page_size = 256,					\
447 
448 #define CAT25_INFO(_sector_size, _n_sectors, _page_size, _addr_width)	\
449 		.sector_size = (_sector_size),				\
450 		.n_sectors = (_n_sectors),				\
451 		.page_size = (_page_size),				\
452 		.addr_width = (_addr_width),				\
453 		.flags = SPI_NOR_NO_ERASE | SPI_NOR_NO_FR,		\
454 
455 #define OTP_INFO(_len, _n_regions, _base, _offset)			\
456 		.otp_org = {						\
457 			.len = (_len),					\
458 			.base = (_base),				\
459 			.offset = (_offset),				\
460 			.n_regions = (_n_regions),			\
461 		},
462 
463 #define PARSE_SFDP							\
464 	.parse_sfdp = true,						\
465 
466 #define FLAGS(_flags)							\
467 		.flags = (_flags),					\
468 
469 #define NO_SFDP_FLAGS(_no_sfdp_flags)					\
470 		.no_sfdp_flags = (_no_sfdp_flags),			\
471 
472 #define FIXUP_FLAGS(_fixup_flags)					\
473 		.fixup_flags = (_fixup_flags),				\
474 
475 #define MFR_FLAGS(_mfr_flags)						\
476 		.mfr_flags = (_mfr_flags),				\
477 
478 /**
479  * struct spi_nor_manufacturer - SPI NOR manufacturer object
480  * @name: manufacturer name
481  * @parts: array of parts supported by this manufacturer
482  * @nparts: number of entries in the parts array
483  * @fixups: hooks called at various points in time during spi_nor_scan()
484  */
485 struct spi_nor_manufacturer {
486 	const char *name;
487 	const struct flash_info *parts;
488 	unsigned int nparts;
489 	const struct spi_nor_fixups *fixups;
490 };
491 
492 /**
493  * struct sfdp - SFDP data
494  * @num_dwords: number of entries in the dwords array
495  * @dwords: array of double words of the SFDP data
496  */
497 struct sfdp {
498 	size_t	num_dwords;
499 	u32	*dwords;
500 };
501 
502 /* Manufacturer drivers. */
503 extern const struct spi_nor_manufacturer spi_nor_atmel;
504 extern const struct spi_nor_manufacturer spi_nor_catalyst;
505 extern const struct spi_nor_manufacturer spi_nor_eon;
506 extern const struct spi_nor_manufacturer spi_nor_esmt;
507 extern const struct spi_nor_manufacturer spi_nor_everspin;
508 extern const struct spi_nor_manufacturer spi_nor_fujitsu;
509 extern const struct spi_nor_manufacturer spi_nor_gigadevice;
510 extern const struct spi_nor_manufacturer spi_nor_intel;
511 extern const struct spi_nor_manufacturer spi_nor_issi;
512 extern const struct spi_nor_manufacturer spi_nor_macronix;
513 extern const struct spi_nor_manufacturer spi_nor_micron;
514 extern const struct spi_nor_manufacturer spi_nor_st;
515 extern const struct spi_nor_manufacturer spi_nor_spansion;
516 extern const struct spi_nor_manufacturer spi_nor_sst;
517 extern const struct spi_nor_manufacturer spi_nor_winbond;
518 extern const struct spi_nor_manufacturer spi_nor_xilinx;
519 extern const struct spi_nor_manufacturer spi_nor_xmc;
520 
521 extern const struct attribute_group *spi_nor_sysfs_groups[];
522 
523 void spi_nor_spimem_setup_op(const struct spi_nor *nor,
524 			     struct spi_mem_op *op,
525 			     const enum spi_nor_protocol proto);
526 int spi_nor_write_enable(struct spi_nor *nor);
527 int spi_nor_write_disable(struct spi_nor *nor);
528 int spi_nor_set_4byte_addr_mode(struct spi_nor *nor, bool enable);
529 int spi_nor_write_ear(struct spi_nor *nor, u8 ear);
530 int spi_nor_wait_till_ready(struct spi_nor *nor);
531 int spi_nor_global_block_unlock(struct spi_nor *nor);
532 int spi_nor_lock_and_prep(struct spi_nor *nor);
533 void spi_nor_unlock_and_unprep(struct spi_nor *nor);
534 int spi_nor_sr1_bit6_quad_enable(struct spi_nor *nor);
535 int spi_nor_sr2_bit1_quad_enable(struct spi_nor *nor);
536 int spi_nor_sr2_bit7_quad_enable(struct spi_nor *nor);
537 int spi_nor_read_sr(struct spi_nor *nor, u8 *sr);
538 int spi_nor_sr_ready(struct spi_nor *nor);
539 int spi_nor_read_cr(struct spi_nor *nor, u8 *cr);
540 int spi_nor_write_sr(struct spi_nor *nor, const u8 *sr, size_t len);
541 int spi_nor_write_sr_and_check(struct spi_nor *nor, u8 sr1);
542 int spi_nor_write_16bit_cr_and_check(struct spi_nor *nor, u8 cr);
543 
544 ssize_t spi_nor_read_data(struct spi_nor *nor, loff_t from, size_t len,
545 			  u8 *buf);
546 ssize_t spi_nor_write_data(struct spi_nor *nor, loff_t to, size_t len,
547 			   const u8 *buf);
548 int spi_nor_erase_sector(struct spi_nor *nor, u32 addr);
549 
550 int spi_nor_otp_read_secr(struct spi_nor *nor, loff_t addr, size_t len, u8 *buf);
551 int spi_nor_otp_write_secr(struct spi_nor *nor, loff_t addr, size_t len,
552 			   const u8 *buf);
553 int spi_nor_otp_erase_secr(struct spi_nor *nor, loff_t addr);
554 int spi_nor_otp_lock_sr2(struct spi_nor *nor, unsigned int region);
555 int spi_nor_otp_is_locked_sr2(struct spi_nor *nor, unsigned int region);
556 
557 int spi_nor_hwcaps_read2cmd(u32 hwcaps);
558 u8 spi_nor_convert_3to4_read(u8 opcode);
559 void spi_nor_set_read_settings(struct spi_nor_read_command *read,
560 			       u8 num_mode_clocks,
561 			       u8 num_wait_states,
562 			       u8 opcode,
563 			       enum spi_nor_protocol proto);
564 void spi_nor_set_pp_settings(struct spi_nor_pp_command *pp, u8 opcode,
565 			     enum spi_nor_protocol proto);
566 
567 void spi_nor_set_erase_type(struct spi_nor_erase_type *erase, u32 size,
568 			    u8 opcode);
569 struct spi_nor_erase_region *
570 spi_nor_region_next(struct spi_nor_erase_region *region);
571 void spi_nor_init_uniform_erase_map(struct spi_nor_erase_map *map,
572 				    u8 erase_mask, u64 flash_size);
573 
574 int spi_nor_post_bfpt_fixups(struct spi_nor *nor,
575 			     const struct sfdp_parameter_header *bfpt_header,
576 			     const struct sfdp_bfpt *bfpt);
577 
578 void spi_nor_init_default_locking_ops(struct spi_nor *nor);
579 void spi_nor_try_unlock_all(struct spi_nor *nor);
580 void spi_nor_set_mtd_locking_ops(struct spi_nor *nor);
581 void spi_nor_set_mtd_otp_ops(struct spi_nor *nor);
582 
583 int spi_nor_controller_ops_read_reg(struct spi_nor *nor, u8 opcode,
584 				    u8 *buf, size_t len);
585 int spi_nor_controller_ops_write_reg(struct spi_nor *nor, u8 opcode,
586 				     const u8 *buf, size_t len);
587 
588 static inline struct spi_nor *mtd_to_spi_nor(struct mtd_info *mtd)
589 {
590 	return container_of(mtd, struct spi_nor, mtd);
591 }
592 
593 #endif /* __LINUX_MTD_SPI_NOR_INTERNAL_H */
594