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1// SPDX-License-Identifier: GPL-2.0-only
2/*
3 * Linux driver for SSFDC Flash Translation Layer (Read only)
4 * © 2005 Eptar srl
5 * Author: Claudio Lanconelli <lanconelli.claudio@eptar.com>
6 *
7 * Based on NTFL and MTDBLOCK_RO drivers
8 */
9
10#include <linux/kernel.h>
11#include <linux/module.h>
12#include <linux/init.h>
13#include <linux/slab.h>
14#include <linux/hdreg.h>
15#include <linux/mtd/mtd.h>
16#include <linux/mtd/rawnand.h>
17#include <linux/mtd/blktrans.h>
18
19struct ssfdcr_record {
20 struct mtd_blktrans_dev mbd;
21 unsigned char heads;
22 unsigned char sectors;
23 unsigned short cylinders;
24 int cis_block; /* block n. containing CIS/IDI */
25 int erase_size; /* phys_block_size */
26 unsigned short *logic_block_map; /* all zones (max 8192 phys blocks on
27 the 128MiB) */
28 int map_len; /* n. phys_blocks on the card */
29};
30
31#define SSFDCR_MAJOR 257
32#define SSFDCR_PARTN_BITS 3
33
34#define SECTOR_SIZE 512
35#define SECTOR_SHIFT 9
36#define OOB_SIZE 16
37
38#define MAX_LOGIC_BLK_PER_ZONE 1000
39#define MAX_PHYS_BLK_PER_ZONE 1024
40
41#define KiB(x) ( (x) * 1024L )
42#define MiB(x) ( KiB(x) * 1024L )
43
44/** CHS Table
45 1MiB 2MiB 4MiB 8MiB 16MiB 32MiB 64MiB 128MiB
46NCylinder 125 125 250 250 500 500 500 500
47NHead 4 4 4 4 4 8 8 16
48NSector 4 8 8 16 16 16 32 32
49SumSector 2,000 4,000 8,000 16,000 32,000 64,000 128,000 256,000
50SectorSize 512 512 512 512 512 512 512 512
51**/
52
53typedef struct {
54 unsigned long size;
55 unsigned short cyl;
56 unsigned char head;
57 unsigned char sec;
58} chs_entry_t;
59
60/* Must be ordered by size */
61static const chs_entry_t chs_table[] = {
62 { MiB( 1), 125, 4, 4 },
63 { MiB( 2), 125, 4, 8 },
64 { MiB( 4), 250, 4, 8 },
65 { MiB( 8), 250, 4, 16 },
66 { MiB( 16), 500, 4, 16 },
67 { MiB( 32), 500, 8, 16 },
68 { MiB( 64), 500, 8, 32 },
69 { MiB(128), 500, 16, 32 },
70 { 0 },
71};
72
73static int get_chs(unsigned long size, unsigned short *cyl, unsigned char *head,
74 unsigned char *sec)
75{
76 int k;
77 int found = 0;
78
79 k = 0;
80 while (chs_table[k].size > 0 && size > chs_table[k].size)
81 k++;
82
83 if (chs_table[k].size > 0) {
84 if (cyl)
85 *cyl = chs_table[k].cyl;
86 if (head)
87 *head = chs_table[k].head;
88 if (sec)
89 *sec = chs_table[k].sec;
90 found = 1;
91 }
92
93 return found;
94}
95
96/* These bytes are the signature for the CIS/IDI sector */
97static const uint8_t cis_numbers[] = {
98 0x01, 0x03, 0xD9, 0x01, 0xFF, 0x18, 0x02, 0xDF, 0x01, 0x20
99};
100
101/* Read and check for a valid CIS sector */
102static int get_valid_cis_sector(struct mtd_info *mtd)
103{
104 int ret, k, cis_sector;
105 size_t retlen;
106 loff_t offset;
107 uint8_t *sect_buf;
108
109 cis_sector = -1;
110
111 sect_buf = kmalloc(SECTOR_SIZE, GFP_KERNEL);
112 if (!sect_buf)
113 goto out;
114
115 /*
116 * Look for CIS/IDI sector on the first GOOD block (give up after 4 bad
117 * blocks). If the first good block doesn't contain CIS number the flash
118 * is not SSFDC formatted
119 */
120 for (k = 0, offset = 0; k < 4; k++, offset += mtd->erasesize) {
121 if (mtd_block_isbad(mtd, offset)) {
122 ret = mtd_read(mtd, offset, SECTOR_SIZE, &retlen,
123 sect_buf);
124
125 /* CIS pattern match on the sector buffer */
126 if (ret < 0 || retlen != SECTOR_SIZE) {
127 printk(KERN_WARNING
128 "SSFDC_RO:can't read CIS/IDI sector\n");
129 } else if (!memcmp(sect_buf, cis_numbers,
130 sizeof(cis_numbers))) {
131 /* Found */
132 cis_sector = (int)(offset >> SECTOR_SHIFT);
133 } else {
134 pr_debug("SSFDC_RO: CIS/IDI sector not found"
135 " on %s (mtd%d)\n", mtd->name,
136 mtd->index);
137 }
138 break;
139 }
140 }
141
142 kfree(sect_buf);
143 out:
144 return cis_sector;
145}
146
147/* Read physical sector (wrapper to MTD_READ) */
148static int read_physical_sector(struct mtd_info *mtd, uint8_t *sect_buf,
149 int sect_no)
150{
151 int ret;
152 size_t retlen;
153 loff_t offset = (loff_t)sect_no << SECTOR_SHIFT;
154
155 ret = mtd_read(mtd, offset, SECTOR_SIZE, &retlen, sect_buf);
156 if (ret < 0 || retlen != SECTOR_SIZE)
157 return -1;
158
159 return 0;
160}
161
162/* Read redundancy area (wrapper to MTD_READ_OOB */
163static int read_raw_oob(struct mtd_info *mtd, loff_t offs, uint8_t *buf)
164{
165 struct mtd_oob_ops ops = { };
166 int ret;
167
168 ops.mode = MTD_OPS_RAW;
169 ops.ooboffs = 0;
170 ops.ooblen = OOB_SIZE;
171 ops.oobbuf = buf;
172 ops.datbuf = NULL;
173
174 ret = mtd_read_oob(mtd, offs, &ops);
175 if (ret < 0 || ops.oobretlen != OOB_SIZE)
176 return -1;
177
178 return 0;
179}
180
181/* Parity calculator on a word of n bit size */
182static int get_parity(int number, int size)
183{
184 int k;
185 int parity;
186
187 parity = 1;
188 for (k = 0; k < size; k++) {
189 parity += (number >> k);
190 parity &= 1;
191 }
192 return parity;
193}
194
195/* Read and validate the logical block address field stored in the OOB */
196static int get_logical_address(uint8_t *oob_buf)
197{
198 int block_address, parity;
199 int offset[2] = {6, 11}; /* offset of the 2 address fields within OOB */
200 int j;
201 int ok = 0;
202
203 /*
204 * Look for the first valid logical address
205 * Valid address has fixed pattern on most significant bits and
206 * parity check
207 */
208 for (j = 0; j < ARRAY_SIZE(offset); j++) {
209 block_address = ((int)oob_buf[offset[j]] << 8) |
210 oob_buf[offset[j]+1];
211
212 /* Check for the signature bits in the address field (MSBits) */
213 if ((block_address & ~0x7FF) == 0x1000) {
214 parity = block_address & 0x01;
215 block_address &= 0x7FF;
216 block_address >>= 1;
217
218 if (get_parity(block_address, 10) != parity) {
219 pr_debug("SSFDC_RO: logical address field%d"
220 "parity error(0x%04X)\n", j+1,
221 block_address);
222 } else {
223 ok = 1;
224 break;
225 }
226 }
227 }
228
229 if (!ok)
230 block_address = -2;
231
232 pr_debug("SSFDC_RO: get_logical_address() %d\n",
233 block_address);
234
235 return block_address;
236}
237
238/* Build the logic block map */
239static int build_logical_block_map(struct ssfdcr_record *ssfdc)
240{
241 unsigned long offset;
242 uint8_t oob_buf[OOB_SIZE];
243 int ret, block_address, phys_block;
244 struct mtd_info *mtd = ssfdc->mbd.mtd;
245
246 pr_debug("SSFDC_RO: build_block_map() nblks=%d (%luK)\n",
247 ssfdc->map_len,
248 (unsigned long)ssfdc->map_len * ssfdc->erase_size / 1024);
249
250 /* Scan every physical block, skip CIS block */
251 for (phys_block = ssfdc->cis_block + 1; phys_block < ssfdc->map_len;
252 phys_block++) {
253 offset = (unsigned long)phys_block * ssfdc->erase_size;
254 if (mtd_block_isbad(mtd, offset))
255 continue; /* skip bad blocks */
256
257 ret = read_raw_oob(mtd, offset, oob_buf);
258 if (ret < 0) {
259 pr_debug("SSFDC_RO: mtd read_oob() failed at %lu\n",
260 offset);
261 return -1;
262 }
263 block_address = get_logical_address(oob_buf);
264
265 /* Skip invalid addresses */
266 if (block_address >= 0 &&
267 block_address < MAX_LOGIC_BLK_PER_ZONE) {
268 int zone_index;
269
270 zone_index = phys_block / MAX_PHYS_BLK_PER_ZONE;
271 block_address += zone_index * MAX_LOGIC_BLK_PER_ZONE;
272 ssfdc->logic_block_map[block_address] =
273 (unsigned short)phys_block;
274
275 pr_debug("SSFDC_RO: build_block_map() phys_block=%d,"
276 "logic_block_addr=%d, zone=%d\n",
277 phys_block, block_address, zone_index);
278 }
279 }
280 return 0;
281}
282
283static void ssfdcr_add_mtd(struct mtd_blktrans_ops *tr, struct mtd_info *mtd)
284{
285 struct ssfdcr_record *ssfdc;
286 int cis_sector;
287
288 /* Check for small page NAND flash */
289 if (!mtd_type_is_nand(mtd) || mtd->oobsize != OOB_SIZE ||
290 mtd->size > UINT_MAX)
291 return;
292
293 /* Check for SSDFC format by reading CIS/IDI sector */
294 cis_sector = get_valid_cis_sector(mtd);
295 if (cis_sector == -1)
296 return;
297
298 ssfdc = kzalloc(sizeof(struct ssfdcr_record), GFP_KERNEL);
299 if (!ssfdc)
300 return;
301
302 ssfdc->mbd.mtd = mtd;
303 ssfdc->mbd.devnum = -1;
304 ssfdc->mbd.tr = tr;
305 ssfdc->mbd.readonly = 1;
306
307 ssfdc->cis_block = cis_sector / (mtd->erasesize >> SECTOR_SHIFT);
308 ssfdc->erase_size = mtd->erasesize;
309 ssfdc->map_len = (u32)mtd->size / mtd->erasesize;
310
311 pr_debug("SSFDC_RO: cis_block=%d,erase_size=%d,map_len=%d,n_zones=%d\n",
312 ssfdc->cis_block, ssfdc->erase_size, ssfdc->map_len,
313 DIV_ROUND_UP(ssfdc->map_len, MAX_PHYS_BLK_PER_ZONE));
314
315 /* Set geometry */
316 ssfdc->heads = 16;
317 ssfdc->sectors = 32;
318 get_chs(mtd->size, NULL, &ssfdc->heads, &ssfdc->sectors);
319 ssfdc->cylinders = (unsigned short)(((u32)mtd->size >> SECTOR_SHIFT) /
320 ((long)ssfdc->sectors * (long)ssfdc->heads));
321
322 pr_debug("SSFDC_RO: using C:%d H:%d S:%d == %ld sects\n",
323 ssfdc->cylinders, ssfdc->heads , ssfdc->sectors,
324 (long)ssfdc->cylinders * (long)ssfdc->heads *
325 (long)ssfdc->sectors);
326
327 ssfdc->mbd.size = (long)ssfdc->heads * (long)ssfdc->cylinders *
328 (long)ssfdc->sectors;
329
330 /* Allocate logical block map */
331 ssfdc->logic_block_map =
332 kmalloc_array(ssfdc->map_len,
333 sizeof(ssfdc->logic_block_map[0]), GFP_KERNEL);
334 if (!ssfdc->logic_block_map)
335 goto out_err;
336 memset(ssfdc->logic_block_map, 0xff, sizeof(ssfdc->logic_block_map[0]) *
337 ssfdc->map_len);
338
339 /* Build logical block map */
340 if (build_logical_block_map(ssfdc) < 0)
341 goto out_err;
342
343 /* Register device + partitions */
344 if (add_mtd_blktrans_dev(&ssfdc->mbd))
345 goto out_err;
346
347 printk(KERN_INFO "SSFDC_RO: Found ssfdc%c on mtd%d (%s)\n",
348 ssfdc->mbd.devnum + 'a', mtd->index, mtd->name);
349 return;
350
351out_err:
352 kfree(ssfdc->logic_block_map);
353 kfree(ssfdc);
354}
355
356static void ssfdcr_remove_dev(struct mtd_blktrans_dev *dev)
357{
358 struct ssfdcr_record *ssfdc = (struct ssfdcr_record *)dev;
359
360 pr_debug("SSFDC_RO: remove_dev (i=%d)\n", dev->devnum);
361
362 del_mtd_blktrans_dev(dev);
363 kfree(ssfdc->logic_block_map);
364}
365
366static int ssfdcr_readsect(struct mtd_blktrans_dev *dev,
367 unsigned long logic_sect_no, char *buf)
368{
369 struct ssfdcr_record *ssfdc = (struct ssfdcr_record *)dev;
370 int sectors_per_block, offset, block_address;
371
372 sectors_per_block = ssfdc->erase_size >> SECTOR_SHIFT;
373 offset = (int)(logic_sect_no % sectors_per_block);
374 block_address = (int)(logic_sect_no / sectors_per_block);
375
376 pr_debug("SSFDC_RO: ssfdcr_readsect(%lu) sec_per_blk=%d, ofst=%d,"
377 " block_addr=%d\n", logic_sect_no, sectors_per_block, offset,
378 block_address);
379
380 BUG_ON(block_address >= ssfdc->map_len);
381
382 block_address = ssfdc->logic_block_map[block_address];
383
384 pr_debug("SSFDC_RO: ssfdcr_readsect() phys_block_addr=%d\n",
385 block_address);
386
387 if (block_address < 0xffff) {
388 unsigned long sect_no;
389
390 sect_no = (unsigned long)block_address * sectors_per_block +
391 offset;
392
393 pr_debug("SSFDC_RO: ssfdcr_readsect() phys_sect_no=%lu\n",
394 sect_no);
395
396 if (read_physical_sector(ssfdc->mbd.mtd, buf, sect_no) < 0)
397 return -EIO;
398 } else {
399 memset(buf, 0xff, SECTOR_SIZE);
400 }
401
402 return 0;
403}
404
405static int ssfdcr_getgeo(struct mtd_blktrans_dev *dev, struct hd_geometry *geo)
406{
407 struct ssfdcr_record *ssfdc = (struct ssfdcr_record *)dev;
408
409 pr_debug("SSFDC_RO: ssfdcr_getgeo() C=%d, H=%d, S=%d\n",
410 ssfdc->cylinders, ssfdc->heads, ssfdc->sectors);
411
412 geo->heads = ssfdc->heads;
413 geo->sectors = ssfdc->sectors;
414 geo->cylinders = ssfdc->cylinders;
415
416 return 0;
417}
418
419/****************************************************************************
420 *
421 * Module stuff
422 *
423 ****************************************************************************/
424
425static struct mtd_blktrans_ops ssfdcr_tr = {
426 .name = "ssfdc",
427 .major = SSFDCR_MAJOR,
428 .part_bits = SSFDCR_PARTN_BITS,
429 .blksize = SECTOR_SIZE,
430 .getgeo = ssfdcr_getgeo,
431 .readsect = ssfdcr_readsect,
432 .add_mtd = ssfdcr_add_mtd,
433 .remove_dev = ssfdcr_remove_dev,
434 .owner = THIS_MODULE,
435};
436
437static int __init init_ssfdcr(void)
438{
439 printk(KERN_INFO "SSFDC read-only Flash Translation layer\n");
440
441 return register_mtd_blktrans(&ssfdcr_tr);
442}
443
444static void __exit cleanup_ssfdcr(void)
445{
446 deregister_mtd_blktrans(&ssfdcr_tr);
447}
448
449module_init(init_ssfdcr);
450module_exit(cleanup_ssfdcr);
451
452MODULE_LICENSE("GPL");
453MODULE_AUTHOR("Claudio Lanconelli <lanconelli.claudio@eptar.com>");
454MODULE_DESCRIPTION("Flash Translation Layer for read-only SSFDC SmartMedia card");
1/*
2 * Linux driver for SSFDC Flash Translation Layer (Read only)
3 * © 2005 Eptar srl
4 * Author: Claudio Lanconelli <lanconelli.claudio@eptar.com>
5 *
6 * Based on NTFL and MTDBLOCK_RO drivers
7 *
8 * This program is free software; you can redistribute it and/or modify
9 * it under the terms of the GNU General Public License version 2 as
10 * published by the Free Software Foundation.
11 */
12
13#include <linux/kernel.h>
14#include <linux/module.h>
15#include <linux/init.h>
16#include <linux/slab.h>
17#include <linux/hdreg.h>
18#include <linux/mtd/mtd.h>
19#include <linux/mtd/nand.h>
20#include <linux/mtd/blktrans.h>
21
22struct ssfdcr_record {
23 struct mtd_blktrans_dev mbd;
24 int usecount;
25 unsigned char heads;
26 unsigned char sectors;
27 unsigned short cylinders;
28 int cis_block; /* block n. containing CIS/IDI */
29 int erase_size; /* phys_block_size */
30 unsigned short *logic_block_map; /* all zones (max 8192 phys blocks on
31 the 128MiB) */
32 int map_len; /* n. phys_blocks on the card */
33};
34
35#define SSFDCR_MAJOR 257
36#define SSFDCR_PARTN_BITS 3
37
38#define SECTOR_SIZE 512
39#define SECTOR_SHIFT 9
40#define OOB_SIZE 16
41
42#define MAX_LOGIC_BLK_PER_ZONE 1000
43#define MAX_PHYS_BLK_PER_ZONE 1024
44
45#define KiB(x) ( (x) * 1024L )
46#define MiB(x) ( KiB(x) * 1024L )
47
48/** CHS Table
49 1MiB 2MiB 4MiB 8MiB 16MiB 32MiB 64MiB 128MiB
50NCylinder 125 125 250 250 500 500 500 500
51NHead 4 4 4 4 4 8 8 16
52NSector 4 8 8 16 16 16 32 32
53SumSector 2,000 4,000 8,000 16,000 32,000 64,000 128,000 256,000
54SectorSize 512 512 512 512 512 512 512 512
55**/
56
57typedef struct {
58 unsigned long size;
59 unsigned short cyl;
60 unsigned char head;
61 unsigned char sec;
62} chs_entry_t;
63
64/* Must be ordered by size */
65static const chs_entry_t chs_table[] = {
66 { MiB( 1), 125, 4, 4 },
67 { MiB( 2), 125, 4, 8 },
68 { MiB( 4), 250, 4, 8 },
69 { MiB( 8), 250, 4, 16 },
70 { MiB( 16), 500, 4, 16 },
71 { MiB( 32), 500, 8, 16 },
72 { MiB( 64), 500, 8, 32 },
73 { MiB(128), 500, 16, 32 },
74 { 0 },
75};
76
77static int get_chs(unsigned long size, unsigned short *cyl, unsigned char *head,
78 unsigned char *sec)
79{
80 int k;
81 int found = 0;
82
83 k = 0;
84 while (chs_table[k].size > 0 && size > chs_table[k].size)
85 k++;
86
87 if (chs_table[k].size > 0) {
88 if (cyl)
89 *cyl = chs_table[k].cyl;
90 if (head)
91 *head = chs_table[k].head;
92 if (sec)
93 *sec = chs_table[k].sec;
94 found = 1;
95 }
96
97 return found;
98}
99
100/* These bytes are the signature for the CIS/IDI sector */
101static const uint8_t cis_numbers[] = {
102 0x01, 0x03, 0xD9, 0x01, 0xFF, 0x18, 0x02, 0xDF, 0x01, 0x20
103};
104
105/* Read and check for a valid CIS sector */
106static int get_valid_cis_sector(struct mtd_info *mtd)
107{
108 int ret, k, cis_sector;
109 size_t retlen;
110 loff_t offset;
111 uint8_t *sect_buf;
112
113 cis_sector = -1;
114
115 sect_buf = kmalloc(SECTOR_SIZE, GFP_KERNEL);
116 if (!sect_buf)
117 goto out;
118
119 /*
120 * Look for CIS/IDI sector on the first GOOD block (give up after 4 bad
121 * blocks). If the first good block doesn't contain CIS number the flash
122 * is not SSFDC formatted
123 */
124 for (k = 0, offset = 0; k < 4; k++, offset += mtd->erasesize) {
125 if (mtd_block_isbad(mtd, offset)) {
126 ret = mtd_read(mtd, offset, SECTOR_SIZE, &retlen,
127 sect_buf);
128
129 /* CIS pattern match on the sector buffer */
130 if (ret < 0 || retlen != SECTOR_SIZE) {
131 printk(KERN_WARNING
132 "SSFDC_RO:can't read CIS/IDI sector\n");
133 } else if (!memcmp(sect_buf, cis_numbers,
134 sizeof(cis_numbers))) {
135 /* Found */
136 cis_sector = (int)(offset >> SECTOR_SHIFT);
137 } else {
138 pr_debug("SSFDC_RO: CIS/IDI sector not found"
139 " on %s (mtd%d)\n", mtd->name,
140 mtd->index);
141 }
142 break;
143 }
144 }
145
146 kfree(sect_buf);
147 out:
148 return cis_sector;
149}
150
151/* Read physical sector (wrapper to MTD_READ) */
152static int read_physical_sector(struct mtd_info *mtd, uint8_t *sect_buf,
153 int sect_no)
154{
155 int ret;
156 size_t retlen;
157 loff_t offset = (loff_t)sect_no << SECTOR_SHIFT;
158
159 ret = mtd_read(mtd, offset, SECTOR_SIZE, &retlen, sect_buf);
160 if (ret < 0 || retlen != SECTOR_SIZE)
161 return -1;
162
163 return 0;
164}
165
166/* Read redundancy area (wrapper to MTD_READ_OOB */
167static int read_raw_oob(struct mtd_info *mtd, loff_t offs, uint8_t *buf)
168{
169 struct mtd_oob_ops ops;
170 int ret;
171
172 ops.mode = MTD_OPS_RAW;
173 ops.ooboffs = 0;
174 ops.ooblen = OOB_SIZE;
175 ops.oobbuf = buf;
176 ops.datbuf = NULL;
177
178 ret = mtd_read_oob(mtd, offs, &ops);
179 if (ret < 0 || ops.oobretlen != OOB_SIZE)
180 return -1;
181
182 return 0;
183}
184
185/* Parity calculator on a word of n bit size */
186static int get_parity(int number, int size)
187{
188 int k;
189 int parity;
190
191 parity = 1;
192 for (k = 0; k < size; k++) {
193 parity += (number >> k);
194 parity &= 1;
195 }
196 return parity;
197}
198
199/* Read and validate the logical block address field stored in the OOB */
200static int get_logical_address(uint8_t *oob_buf)
201{
202 int block_address, parity;
203 int offset[2] = {6, 11}; /* offset of the 2 address fields within OOB */
204 int j;
205 int ok = 0;
206
207 /*
208 * Look for the first valid logical address
209 * Valid address has fixed pattern on most significant bits and
210 * parity check
211 */
212 for (j = 0; j < ARRAY_SIZE(offset); j++) {
213 block_address = ((int)oob_buf[offset[j]] << 8) |
214 oob_buf[offset[j]+1];
215
216 /* Check for the signature bits in the address field (MSBits) */
217 if ((block_address & ~0x7FF) == 0x1000) {
218 parity = block_address & 0x01;
219 block_address &= 0x7FF;
220 block_address >>= 1;
221
222 if (get_parity(block_address, 10) != parity) {
223 pr_debug("SSFDC_RO: logical address field%d"
224 "parity error(0x%04X)\n", j+1,
225 block_address);
226 } else {
227 ok = 1;
228 break;
229 }
230 }
231 }
232
233 if (!ok)
234 block_address = -2;
235
236 pr_debug("SSFDC_RO: get_logical_address() %d\n",
237 block_address);
238
239 return block_address;
240}
241
242/* Build the logic block map */
243static int build_logical_block_map(struct ssfdcr_record *ssfdc)
244{
245 unsigned long offset;
246 uint8_t oob_buf[OOB_SIZE];
247 int ret, block_address, phys_block;
248 struct mtd_info *mtd = ssfdc->mbd.mtd;
249
250 pr_debug("SSFDC_RO: build_block_map() nblks=%d (%luK)\n",
251 ssfdc->map_len,
252 (unsigned long)ssfdc->map_len * ssfdc->erase_size / 1024);
253
254 /* Scan every physical block, skip CIS block */
255 for (phys_block = ssfdc->cis_block + 1; phys_block < ssfdc->map_len;
256 phys_block++) {
257 offset = (unsigned long)phys_block * ssfdc->erase_size;
258 if (mtd_block_isbad(mtd, offset))
259 continue; /* skip bad blocks */
260
261 ret = read_raw_oob(mtd, offset, oob_buf);
262 if (ret < 0) {
263 pr_debug("SSFDC_RO: mtd read_oob() failed at %lu\n",
264 offset);
265 return -1;
266 }
267 block_address = get_logical_address(oob_buf);
268
269 /* Skip invalid addresses */
270 if (block_address >= 0 &&
271 block_address < MAX_LOGIC_BLK_PER_ZONE) {
272 int zone_index;
273
274 zone_index = phys_block / MAX_PHYS_BLK_PER_ZONE;
275 block_address += zone_index * MAX_LOGIC_BLK_PER_ZONE;
276 ssfdc->logic_block_map[block_address] =
277 (unsigned short)phys_block;
278
279 pr_debug("SSFDC_RO: build_block_map() phys_block=%d,"
280 "logic_block_addr=%d, zone=%d\n",
281 phys_block, block_address, zone_index);
282 }
283 }
284 return 0;
285}
286
287static void ssfdcr_add_mtd(struct mtd_blktrans_ops *tr, struct mtd_info *mtd)
288{
289 struct ssfdcr_record *ssfdc;
290 int cis_sector;
291
292 /* Check for small page NAND flash */
293 if (!mtd_type_is_nand(mtd) || mtd->oobsize != OOB_SIZE ||
294 mtd->size > UINT_MAX)
295 return;
296
297 /* Check for SSDFC format by reading CIS/IDI sector */
298 cis_sector = get_valid_cis_sector(mtd);
299 if (cis_sector == -1)
300 return;
301
302 ssfdc = kzalloc(sizeof(struct ssfdcr_record), GFP_KERNEL);
303 if (!ssfdc)
304 return;
305
306 ssfdc->mbd.mtd = mtd;
307 ssfdc->mbd.devnum = -1;
308 ssfdc->mbd.tr = tr;
309 ssfdc->mbd.readonly = 1;
310
311 ssfdc->cis_block = cis_sector / (mtd->erasesize >> SECTOR_SHIFT);
312 ssfdc->erase_size = mtd->erasesize;
313 ssfdc->map_len = (u32)mtd->size / mtd->erasesize;
314
315 pr_debug("SSFDC_RO: cis_block=%d,erase_size=%d,map_len=%d,n_zones=%d\n",
316 ssfdc->cis_block, ssfdc->erase_size, ssfdc->map_len,
317 DIV_ROUND_UP(ssfdc->map_len, MAX_PHYS_BLK_PER_ZONE));
318
319 /* Set geometry */
320 ssfdc->heads = 16;
321 ssfdc->sectors = 32;
322 get_chs(mtd->size, NULL, &ssfdc->heads, &ssfdc->sectors);
323 ssfdc->cylinders = (unsigned short)(((u32)mtd->size >> SECTOR_SHIFT) /
324 ((long)ssfdc->sectors * (long)ssfdc->heads));
325
326 pr_debug("SSFDC_RO: using C:%d H:%d S:%d == %ld sects\n",
327 ssfdc->cylinders, ssfdc->heads , ssfdc->sectors,
328 (long)ssfdc->cylinders * (long)ssfdc->heads *
329 (long)ssfdc->sectors);
330
331 ssfdc->mbd.size = (long)ssfdc->heads * (long)ssfdc->cylinders *
332 (long)ssfdc->sectors;
333
334 /* Allocate logical block map */
335 ssfdc->logic_block_map = kmalloc(sizeof(ssfdc->logic_block_map[0]) *
336 ssfdc->map_len, GFP_KERNEL);
337 if (!ssfdc->logic_block_map)
338 goto out_err;
339 memset(ssfdc->logic_block_map, 0xff, sizeof(ssfdc->logic_block_map[0]) *
340 ssfdc->map_len);
341
342 /* Build logical block map */
343 if (build_logical_block_map(ssfdc) < 0)
344 goto out_err;
345
346 /* Register device + partitions */
347 if (add_mtd_blktrans_dev(&ssfdc->mbd))
348 goto out_err;
349
350 printk(KERN_INFO "SSFDC_RO: Found ssfdc%c on mtd%d (%s)\n",
351 ssfdc->mbd.devnum + 'a', mtd->index, mtd->name);
352 return;
353
354out_err:
355 kfree(ssfdc->logic_block_map);
356 kfree(ssfdc);
357}
358
359static void ssfdcr_remove_dev(struct mtd_blktrans_dev *dev)
360{
361 struct ssfdcr_record *ssfdc = (struct ssfdcr_record *)dev;
362
363 pr_debug("SSFDC_RO: remove_dev (i=%d)\n", dev->devnum);
364
365 del_mtd_blktrans_dev(dev);
366 kfree(ssfdc->logic_block_map);
367}
368
369static int ssfdcr_readsect(struct mtd_blktrans_dev *dev,
370 unsigned long logic_sect_no, char *buf)
371{
372 struct ssfdcr_record *ssfdc = (struct ssfdcr_record *)dev;
373 int sectors_per_block, offset, block_address;
374
375 sectors_per_block = ssfdc->erase_size >> SECTOR_SHIFT;
376 offset = (int)(logic_sect_no % sectors_per_block);
377 block_address = (int)(logic_sect_no / sectors_per_block);
378
379 pr_debug("SSFDC_RO: ssfdcr_readsect(%lu) sec_per_blk=%d, ofst=%d,"
380 " block_addr=%d\n", logic_sect_no, sectors_per_block, offset,
381 block_address);
382
383 BUG_ON(block_address >= ssfdc->map_len);
384
385 block_address = ssfdc->logic_block_map[block_address];
386
387 pr_debug("SSFDC_RO: ssfdcr_readsect() phys_block_addr=%d\n",
388 block_address);
389
390 if (block_address < 0xffff) {
391 unsigned long sect_no;
392
393 sect_no = (unsigned long)block_address * sectors_per_block +
394 offset;
395
396 pr_debug("SSFDC_RO: ssfdcr_readsect() phys_sect_no=%lu\n",
397 sect_no);
398
399 if (read_physical_sector(ssfdc->mbd.mtd, buf, sect_no) < 0)
400 return -EIO;
401 } else {
402 memset(buf, 0xff, SECTOR_SIZE);
403 }
404
405 return 0;
406}
407
408static int ssfdcr_getgeo(struct mtd_blktrans_dev *dev, struct hd_geometry *geo)
409{
410 struct ssfdcr_record *ssfdc = (struct ssfdcr_record *)dev;
411
412 pr_debug("SSFDC_RO: ssfdcr_getgeo() C=%d, H=%d, S=%d\n",
413 ssfdc->cylinders, ssfdc->heads, ssfdc->sectors);
414
415 geo->heads = ssfdc->heads;
416 geo->sectors = ssfdc->sectors;
417 geo->cylinders = ssfdc->cylinders;
418
419 return 0;
420}
421
422/****************************************************************************
423 *
424 * Module stuff
425 *
426 ****************************************************************************/
427
428static struct mtd_blktrans_ops ssfdcr_tr = {
429 .name = "ssfdc",
430 .major = SSFDCR_MAJOR,
431 .part_bits = SSFDCR_PARTN_BITS,
432 .blksize = SECTOR_SIZE,
433 .getgeo = ssfdcr_getgeo,
434 .readsect = ssfdcr_readsect,
435 .add_mtd = ssfdcr_add_mtd,
436 .remove_dev = ssfdcr_remove_dev,
437 .owner = THIS_MODULE,
438};
439
440static int __init init_ssfdcr(void)
441{
442 printk(KERN_INFO "SSFDC read-only Flash Translation layer\n");
443
444 return register_mtd_blktrans(&ssfdcr_tr);
445}
446
447static void __exit cleanup_ssfdcr(void)
448{
449 deregister_mtd_blktrans(&ssfdcr_tr);
450}
451
452module_init(init_ssfdcr);
453module_exit(cleanup_ssfdcr);
454
455MODULE_LICENSE("GPL");
456MODULE_AUTHOR("Claudio Lanconelli <lanconelli.claudio@eptar.com>");
457MODULE_DESCRIPTION("Flash Translation Layer for read-only SSFDC SmartMedia card");