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1.1 root 1: /*
2: * Flash NAND memory emulation. Based on "16M x 8 Bit NAND Flash
3: * Memory" datasheet for the KM29U128AT / K9F2808U0A chips from
4: * Samsung Electronic.
5: *
6: * Copyright (c) 2006 Openedhand Ltd.
7: * Written by Andrzej Zaborowski <[email protected]>
8: *
9: * This code is licensed under the GNU GPL v2.
10: */
11:
12: #ifndef NAND_IO
13:
14: # include "hw.h"
15: # include "flash.h"
16: # include "block.h"
17: /* FIXME: Pass block device as an argument. */
18: # include "sysemu.h"
19:
20: # define NAND_CMD_READ0 0x00
21: # define NAND_CMD_READ1 0x01
22: # define NAND_CMD_READ2 0x50
23: # define NAND_CMD_LPREAD2 0x30
24: # define NAND_CMD_NOSERIALREAD2 0x35
25: # define NAND_CMD_RANDOMREAD1 0x05
26: # define NAND_CMD_RANDOMREAD2 0xe0
27: # define NAND_CMD_READID 0x90
28: # define NAND_CMD_RESET 0xff
29: # define NAND_CMD_PAGEPROGRAM1 0x80
30: # define NAND_CMD_PAGEPROGRAM2 0x10
31: # define NAND_CMD_CACHEPROGRAM2 0x15
32: # define NAND_CMD_BLOCKERASE1 0x60
33: # define NAND_CMD_BLOCKERASE2 0xd0
34: # define NAND_CMD_READSTATUS 0x70
35: # define NAND_CMD_COPYBACKPRG1 0x85
36:
37: # define NAND_IOSTATUS_ERROR (1 << 0)
38: # define NAND_IOSTATUS_PLANE0 (1 << 1)
39: # define NAND_IOSTATUS_PLANE1 (1 << 2)
40: # define NAND_IOSTATUS_PLANE2 (1 << 3)
41: # define NAND_IOSTATUS_PLANE3 (1 << 4)
42: # define NAND_IOSTATUS_BUSY (1 << 6)
43: # define NAND_IOSTATUS_UNPROTCT (1 << 7)
44:
45: # define MAX_PAGE 0x800
46: # define MAX_OOB 0x40
47:
1.1.1.3 ! root 48: struct NANDFlashState {
1.1 root 49: uint8_t manf_id, chip_id;
50: int size, pages;
51: int page_shift, oob_shift, erase_shift, addr_shift;
52: uint8_t *storage;
53: BlockDriverState *bdrv;
54: int mem_oob;
55:
56: int cle, ale, ce, wp, gnd;
57:
58: uint8_t io[MAX_PAGE + MAX_OOB + 0x400];
59: uint8_t *ioaddr;
60: int iolen;
61:
62: uint32_t cmd, addr;
63: int addrlen;
64: int status;
65: int offset;
66:
1.1.1.3 ! root 67: void (*blk_write)(NANDFlashState *s);
! 68: void (*blk_erase)(NANDFlashState *s);
! 69: void (*blk_load)(NANDFlashState *s, uint32_t addr, int offset);
1.1 root 70: };
71:
72: # define NAND_NO_AUTOINCR 0x00000001
73: # define NAND_BUSWIDTH_16 0x00000002
74: # define NAND_NO_PADDING 0x00000004
75: # define NAND_CACHEPRG 0x00000008
76: # define NAND_COPYBACK 0x00000010
77: # define NAND_IS_AND 0x00000020
78: # define NAND_4PAGE_ARRAY 0x00000040
79: # define NAND_NO_READRDY 0x00000100
80: # define NAND_SAMSUNG_LP (NAND_NO_PADDING | NAND_COPYBACK)
81:
82: # define NAND_IO
83:
84: # define PAGE(addr) ((addr) >> ADDR_SHIFT)
85: # define PAGE_START(page) (PAGE(page) * (PAGE_SIZE + OOB_SIZE))
86: # define PAGE_MASK ((1 << ADDR_SHIFT) - 1)
87: # define OOB_SHIFT (PAGE_SHIFT - 5)
88: # define OOB_SIZE (1 << OOB_SHIFT)
89: # define SECTOR(addr) ((addr) >> (9 + ADDR_SHIFT - PAGE_SHIFT))
90: # define SECTOR_OFFSET(addr) ((addr) & ((511 >> PAGE_SHIFT) << 8))
91:
92: # define PAGE_SIZE 256
93: # define PAGE_SHIFT 8
94: # define PAGE_SECTORS 1
95: # define ADDR_SHIFT 8
96: # include "nand.c"
97: # define PAGE_SIZE 512
98: # define PAGE_SHIFT 9
99: # define PAGE_SECTORS 1
100: # define ADDR_SHIFT 8
101: # include "nand.c"
102: # define PAGE_SIZE 2048
103: # define PAGE_SHIFT 11
104: # define PAGE_SECTORS 4
105: # define ADDR_SHIFT 16
106: # include "nand.c"
107:
108: /* Information based on Linux drivers/mtd/nand/nand_ids.c */
1.1.1.3 ! root 109: static const struct {
1.1 root 110: int size;
111: int width;
112: int page_shift;
113: int erase_shift;
114: uint32_t options;
115: } nand_flash_ids[0x100] = {
116: [0 ... 0xff] = { 0 },
117:
118: [0x6e] = { 1, 8, 8, 4, 0 },
119: [0x64] = { 2, 8, 8, 4, 0 },
120: [0x6b] = { 4, 8, 9, 4, 0 },
121: [0xe8] = { 1, 8, 8, 4, 0 },
122: [0xec] = { 1, 8, 8, 4, 0 },
123: [0xea] = { 2, 8, 8, 4, 0 },
124: [0xd5] = { 4, 8, 9, 4, 0 },
125: [0xe3] = { 4, 8, 9, 4, 0 },
126: [0xe5] = { 4, 8, 9, 4, 0 },
127: [0xd6] = { 8, 8, 9, 4, 0 },
128:
129: [0x39] = { 8, 8, 9, 4, 0 },
130: [0xe6] = { 8, 8, 9, 4, 0 },
131: [0x49] = { 8, 16, 9, 4, NAND_BUSWIDTH_16 },
132: [0x59] = { 8, 16, 9, 4, NAND_BUSWIDTH_16 },
133:
134: [0x33] = { 16, 8, 9, 5, 0 },
135: [0x73] = { 16, 8, 9, 5, 0 },
136: [0x43] = { 16, 16, 9, 5, NAND_BUSWIDTH_16 },
137: [0x53] = { 16, 16, 9, 5, NAND_BUSWIDTH_16 },
138:
139: [0x35] = { 32, 8, 9, 5, 0 },
140: [0x75] = { 32, 8, 9, 5, 0 },
141: [0x45] = { 32, 16, 9, 5, NAND_BUSWIDTH_16 },
142: [0x55] = { 32, 16, 9, 5, NAND_BUSWIDTH_16 },
143:
144: [0x36] = { 64, 8, 9, 5, 0 },
145: [0x76] = { 64, 8, 9, 5, 0 },
146: [0x46] = { 64, 16, 9, 5, NAND_BUSWIDTH_16 },
147: [0x56] = { 64, 16, 9, 5, NAND_BUSWIDTH_16 },
148:
149: [0x78] = { 128, 8, 9, 5, 0 },
150: [0x39] = { 128, 8, 9, 5, 0 },
151: [0x79] = { 128, 8, 9, 5, 0 },
152: [0x72] = { 128, 16, 9, 5, NAND_BUSWIDTH_16 },
153: [0x49] = { 128, 16, 9, 5, NAND_BUSWIDTH_16 },
154: [0x74] = { 128, 16, 9, 5, NAND_BUSWIDTH_16 },
155: [0x59] = { 128, 16, 9, 5, NAND_BUSWIDTH_16 },
156:
157: [0x71] = { 256, 8, 9, 5, 0 },
158:
159: /*
160: * These are the new chips with large page size. The pagesize and the
161: * erasesize is determined from the extended id bytes
162: */
163: # define LP_OPTIONS (NAND_SAMSUNG_LP | NAND_NO_READRDY | NAND_NO_AUTOINCR)
164: # define LP_OPTIONS16 (LP_OPTIONS | NAND_BUSWIDTH_16)
165:
166: /* 512 Megabit */
167: [0xa2] = { 64, 8, 0, 0, LP_OPTIONS },
168: [0xf2] = { 64, 8, 0, 0, LP_OPTIONS },
169: [0xb2] = { 64, 16, 0, 0, LP_OPTIONS16 },
170: [0xc2] = { 64, 16, 0, 0, LP_OPTIONS16 },
171:
172: /* 1 Gigabit */
173: [0xa1] = { 128, 8, 0, 0, LP_OPTIONS },
174: [0xf1] = { 128, 8, 0, 0, LP_OPTIONS },
175: [0xb1] = { 128, 16, 0, 0, LP_OPTIONS16 },
176: [0xc1] = { 128, 16, 0, 0, LP_OPTIONS16 },
177:
178: /* 2 Gigabit */
179: [0xaa] = { 256, 8, 0, 0, LP_OPTIONS },
180: [0xda] = { 256, 8, 0, 0, LP_OPTIONS },
181: [0xba] = { 256, 16, 0, 0, LP_OPTIONS16 },
182: [0xca] = { 256, 16, 0, 0, LP_OPTIONS16 },
183:
184: /* 4 Gigabit */
185: [0xac] = { 512, 8, 0, 0, LP_OPTIONS },
186: [0xdc] = { 512, 8, 0, 0, LP_OPTIONS },
187: [0xbc] = { 512, 16, 0, 0, LP_OPTIONS16 },
188: [0xcc] = { 512, 16, 0, 0, LP_OPTIONS16 },
189:
190: /* 8 Gigabit */
191: [0xa3] = { 1024, 8, 0, 0, LP_OPTIONS },
192: [0xd3] = { 1024, 8, 0, 0, LP_OPTIONS },
193: [0xb3] = { 1024, 16, 0, 0, LP_OPTIONS16 },
194: [0xc3] = { 1024, 16, 0, 0, LP_OPTIONS16 },
195:
196: /* 16 Gigabit */
197: [0xa5] = { 2048, 8, 0, 0, LP_OPTIONS },
198: [0xd5] = { 2048, 8, 0, 0, LP_OPTIONS },
199: [0xb5] = { 2048, 16, 0, 0, LP_OPTIONS16 },
200: [0xc5] = { 2048, 16, 0, 0, LP_OPTIONS16 },
201: };
202:
1.1.1.3 ! root 203: static void nand_reset(NANDFlashState *s)
1.1 root 204: {
205: s->cmd = NAND_CMD_READ0;
206: s->addr = 0;
207: s->addrlen = 0;
208: s->iolen = 0;
209: s->offset = 0;
210: s->status &= NAND_IOSTATUS_UNPROTCT;
211: }
212:
1.1.1.3 ! root 213: static void nand_command(NANDFlashState *s)
1.1 root 214: {
215: switch (s->cmd) {
216: case NAND_CMD_READ0:
217: s->iolen = 0;
218: break;
219:
220: case NAND_CMD_READID:
221: s->io[0] = s->manf_id;
222: s->io[1] = s->chip_id;
223: s->io[2] = 'Q'; /* Don't-care byte (often 0xa5) */
224: if (nand_flash_ids[s->chip_id].options & NAND_SAMSUNG_LP)
225: s->io[3] = 0x15; /* Page Size, Block Size, Spare Size.. */
226: else
227: s->io[3] = 0xc0; /* Multi-plane */
228: s->ioaddr = s->io;
229: s->iolen = 4;
230: break;
231:
232: case NAND_CMD_RANDOMREAD2:
233: case NAND_CMD_NOSERIALREAD2:
234: if (!(nand_flash_ids[s->chip_id].options & NAND_SAMSUNG_LP))
235: break;
236:
237: s->blk_load(s, s->addr, s->addr & ((1 << s->addr_shift) - 1));
238: break;
239:
240: case NAND_CMD_RESET:
241: nand_reset(s);
242: break;
243:
244: case NAND_CMD_PAGEPROGRAM1:
245: s->ioaddr = s->io;
246: s->iolen = 0;
247: break;
248:
249: case NAND_CMD_PAGEPROGRAM2:
250: if (s->wp) {
251: s->blk_write(s);
252: }
253: break;
254:
255: case NAND_CMD_BLOCKERASE1:
256: break;
257:
258: case NAND_CMD_BLOCKERASE2:
259: if (nand_flash_ids[s->chip_id].options & NAND_SAMSUNG_LP)
260: s->addr <<= 16;
261: else
262: s->addr <<= 8;
263:
264: if (s->wp) {
265: s->blk_erase(s);
266: }
267: break;
268:
269: case NAND_CMD_READSTATUS:
270: s->io[0] = s->status;
271: s->ioaddr = s->io;
272: s->iolen = 1;
273: break;
274:
275: default:
276: printf("%s: Unknown NAND command 0x%02x\n", __FUNCTION__, s->cmd);
277: }
278: }
279:
280: static void nand_save(QEMUFile *f, void *opaque)
281: {
1.1.1.3 ! root 282: NANDFlashState *s = (NANDFlashState *) opaque;
1.1 root 283: qemu_put_byte(f, s->cle);
284: qemu_put_byte(f, s->ale);
285: qemu_put_byte(f, s->ce);
286: qemu_put_byte(f, s->wp);
287: qemu_put_byte(f, s->gnd);
288: qemu_put_buffer(f, s->io, sizeof(s->io));
289: qemu_put_be32(f, s->ioaddr - s->io);
290: qemu_put_be32(f, s->iolen);
291:
292: qemu_put_be32s(f, &s->cmd);
293: qemu_put_be32s(f, &s->addr);
294: qemu_put_be32(f, s->addrlen);
295: qemu_put_be32(f, s->status);
296: qemu_put_be32(f, s->offset);
297: /* XXX: do we want to save s->storage too? */
298: }
299:
300: static int nand_load(QEMUFile *f, void *opaque, int version_id)
301: {
1.1.1.3 ! root 302: NANDFlashState *s = (NANDFlashState *) opaque;
1.1 root 303: s->cle = qemu_get_byte(f);
304: s->ale = qemu_get_byte(f);
305: s->ce = qemu_get_byte(f);
306: s->wp = qemu_get_byte(f);
307: s->gnd = qemu_get_byte(f);
308: qemu_get_buffer(f, s->io, sizeof(s->io));
309: s->ioaddr = s->io + qemu_get_be32(f);
310: s->iolen = qemu_get_be32(f);
311: if (s->ioaddr >= s->io + sizeof(s->io) || s->ioaddr < s->io)
312: return -EINVAL;
313:
314: qemu_get_be32s(f, &s->cmd);
315: qemu_get_be32s(f, &s->addr);
316: s->addrlen = qemu_get_be32(f);
317: s->status = qemu_get_be32(f);
318: s->offset = qemu_get_be32(f);
319: return 0;
320: }
321:
322: /*
323: * Chip inputs are CLE, ALE, CE, WP, GND and eight I/O pins. Chip
324: * outputs are R/B and eight I/O pins.
325: *
326: * CE, WP and R/B are active low.
327: */
1.1.1.3 ! root 328: void nand_setpins(NANDFlashState *s,
1.1 root 329: int cle, int ale, int ce, int wp, int gnd)
330: {
331: s->cle = cle;
332: s->ale = ale;
333: s->ce = ce;
334: s->wp = wp;
335: s->gnd = gnd;
336: if (wp)
337: s->status |= NAND_IOSTATUS_UNPROTCT;
338: else
339: s->status &= ~NAND_IOSTATUS_UNPROTCT;
340: }
341:
1.1.1.3 ! root 342: void nand_getpins(NANDFlashState *s, int *rb)
1.1 root 343: {
344: *rb = 1;
345: }
346:
1.1.1.3 ! root 347: void nand_setio(NANDFlashState *s, uint8_t value)
1.1 root 348: {
349: if (!s->ce && s->cle) {
350: if (nand_flash_ids[s->chip_id].options & NAND_SAMSUNG_LP) {
351: if (s->cmd == NAND_CMD_READ0 && value == NAND_CMD_LPREAD2)
352: return;
353: if (value == NAND_CMD_RANDOMREAD1) {
354: s->addr &= ~((1 << s->addr_shift) - 1);
355: s->addrlen = 0;
356: return;
357: }
358: }
359: if (value == NAND_CMD_READ0)
360: s->offset = 0;
361: else if (value == NAND_CMD_READ1) {
362: s->offset = 0x100;
363: value = NAND_CMD_READ0;
364: }
365: else if (value == NAND_CMD_READ2) {
366: s->offset = 1 << s->page_shift;
367: value = NAND_CMD_READ0;
368: }
369:
370: s->cmd = value;
371:
372: if (s->cmd == NAND_CMD_READSTATUS ||
373: s->cmd == NAND_CMD_PAGEPROGRAM2 ||
374: s->cmd == NAND_CMD_BLOCKERASE1 ||
375: s->cmd == NAND_CMD_BLOCKERASE2 ||
376: s->cmd == NAND_CMD_NOSERIALREAD2 ||
377: s->cmd == NAND_CMD_RANDOMREAD2 ||
378: s->cmd == NAND_CMD_RESET)
379: nand_command(s);
380:
381: if (s->cmd != NAND_CMD_RANDOMREAD2) {
382: s->addrlen = 0;
383: s->addr = 0;
384: }
385: }
386:
387: if (s->ale) {
388: s->addr |= value << (s->addrlen * 8);
389: s->addrlen ++;
390:
391: if (s->addrlen == 1 && s->cmd == NAND_CMD_READID)
392: nand_command(s);
393:
394: if (!(nand_flash_ids[s->chip_id].options & NAND_SAMSUNG_LP) &&
395: s->addrlen == 3 && (
396: s->cmd == NAND_CMD_READ0 ||
397: s->cmd == NAND_CMD_PAGEPROGRAM1))
398: nand_command(s);
399: if ((nand_flash_ids[s->chip_id].options & NAND_SAMSUNG_LP) &&
400: s->addrlen == 4 && (
401: s->cmd == NAND_CMD_READ0 ||
402: s->cmd == NAND_CMD_PAGEPROGRAM1))
403: nand_command(s);
404: }
405:
406: if (!s->cle && !s->ale && s->cmd == NAND_CMD_PAGEPROGRAM1) {
407: if (s->iolen < (1 << s->page_shift) + (1 << s->oob_shift))
408: s->io[s->iolen ++] = value;
409: } else if (!s->cle && !s->ale && s->cmd == NAND_CMD_COPYBACKPRG1) {
410: if ((s->addr & ((1 << s->addr_shift) - 1)) <
411: (1 << s->page_shift) + (1 << s->oob_shift)) {
412: s->io[s->iolen + (s->addr & ((1 << s->addr_shift) - 1))] = value;
413: s->addr ++;
414: }
415: }
416: }
417:
1.1.1.3 ! root 418: uint8_t nand_getio(NANDFlashState *s)
1.1 root 419: {
420: int offset;
421:
422: /* Allow sequential reading */
423: if (!s->iolen && s->cmd == NAND_CMD_READ0) {
424: offset = (s->addr & ((1 << s->addr_shift) - 1)) + s->offset;
425: s->offset = 0;
426:
427: s->blk_load(s, s->addr, offset);
428: if (s->gnd)
429: s->iolen = (1 << s->page_shift) - offset;
430: else
431: s->iolen = (1 << s->page_shift) + (1 << s->oob_shift) - offset;
432: }
433:
434: if (s->ce || s->iolen <= 0)
435: return 0;
436:
437: s->iolen --;
438: return *(s->ioaddr ++);
439: }
440:
1.1.1.3 ! root 441: NANDFlashState *nand_init(int manf_id, int chip_id)
1.1 root 442: {
443: int pagesize;
1.1.1.3 ! root 444: NANDFlashState *s;
1.1 root 445: int index;
446:
447: if (nand_flash_ids[chip_id].size == 0) {
1.1.1.3 ! root 448: hw_error("%s: Unsupported NAND chip ID.\n", __FUNCTION__);
1.1 root 449: }
450:
1.1.1.3 ! root 451: s = (NANDFlashState *) qemu_mallocz(sizeof(NANDFlashState));
1.1.1.2 root 452: index = drive_get_index(IF_MTD, 0, 0);
453: if (index != -1)
454: s->bdrv = drives_table[index].bdrv;
1.1 root 455: s->manf_id = manf_id;
456: s->chip_id = chip_id;
457: s->size = nand_flash_ids[s->chip_id].size << 20;
458: if (nand_flash_ids[s->chip_id].options & NAND_SAMSUNG_LP) {
459: s->page_shift = 11;
460: s->erase_shift = 6;
461: } else {
462: s->page_shift = nand_flash_ids[s->chip_id].page_shift;
463: s->erase_shift = nand_flash_ids[s->chip_id].erase_shift;
464: }
465:
466: switch (1 << s->page_shift) {
467: case 256:
468: nand_init_256(s);
469: break;
470: case 512:
471: nand_init_512(s);
472: break;
473: case 2048:
474: nand_init_2048(s);
475: break;
476: default:
1.1.1.3 ! root 477: hw_error("%s: Unsupported NAND block size.\n", __FUNCTION__);
1.1 root 478: }
479:
480: pagesize = 1 << s->oob_shift;
481: s->mem_oob = 1;
482: if (s->bdrv && bdrv_getlength(s->bdrv) >=
483: (s->pages << s->page_shift) + (s->pages << s->oob_shift)) {
484: pagesize = 0;
485: s->mem_oob = 0;
486: }
487:
488: if (!s->bdrv)
489: pagesize += 1 << s->page_shift;
490: if (pagesize)
491: s->storage = (uint8_t *) memset(qemu_malloc(s->pages * pagesize),
492: 0xff, s->pages * pagesize);
1.1.1.2 root 493: /* Give s->ioaddr a sane value in case we save state before it
494: is used. */
495: s->ioaddr = s->io;
1.1 root 496:
1.1.1.2 root 497: register_savevm("nand", -1, 0, nand_save, nand_load, s);
1.1 root 498:
499: return s;
500: }
501:
1.1.1.3 ! root 502: void nand_done(NANDFlashState *s)
1.1 root 503: {
504: if (s->bdrv) {
505: bdrv_close(s->bdrv);
506: bdrv_delete(s->bdrv);
507: }
508:
509: if (!s->bdrv || s->mem_oob)
510: free(s->storage);
511:
512: free(s);
513: }
514:
515: #else
516:
517: /* Program a single page */
1.1.1.3 ! root 518: static void glue(nand_blk_write_, PAGE_SIZE)(NANDFlashState *s)
1.1 root 519: {
520: uint32_t off, page, sector, soff;
521: uint8_t iobuf[(PAGE_SECTORS + 2) * 0x200];
522: if (PAGE(s->addr) >= s->pages)
523: return;
524:
525: if (!s->bdrv) {
526: memcpy(s->storage + PAGE_START(s->addr) + (s->addr & PAGE_MASK) +
527: s->offset, s->io, s->iolen);
528: } else if (s->mem_oob) {
529: sector = SECTOR(s->addr);
530: off = (s->addr & PAGE_MASK) + s->offset;
531: soff = SECTOR_OFFSET(s->addr);
532: if (bdrv_read(s->bdrv, sector, iobuf, PAGE_SECTORS) == -1) {
533: printf("%s: read error in sector %i\n", __FUNCTION__, sector);
534: return;
535: }
536:
537: memcpy(iobuf + (soff | off), s->io, MIN(s->iolen, PAGE_SIZE - off));
538: if (off + s->iolen > PAGE_SIZE) {
539: page = PAGE(s->addr);
540: memcpy(s->storage + (page << OOB_SHIFT), s->io + PAGE_SIZE - off,
541: MIN(OOB_SIZE, off + s->iolen - PAGE_SIZE));
542: }
543:
544: if (bdrv_write(s->bdrv, sector, iobuf, PAGE_SECTORS) == -1)
545: printf("%s: write error in sector %i\n", __FUNCTION__, sector);
546: } else {
547: off = PAGE_START(s->addr) + (s->addr & PAGE_MASK) + s->offset;
548: sector = off >> 9;
549: soff = off & 0x1ff;
550: if (bdrv_read(s->bdrv, sector, iobuf, PAGE_SECTORS + 2) == -1) {
551: printf("%s: read error in sector %i\n", __FUNCTION__, sector);
552: return;
553: }
554:
555: memcpy(iobuf + soff, s->io, s->iolen);
556:
557: if (bdrv_write(s->bdrv, sector, iobuf, PAGE_SECTORS + 2) == -1)
558: printf("%s: write error in sector %i\n", __FUNCTION__, sector);
559: }
560: s->offset = 0;
561: }
562:
563: /* Erase a single block */
1.1.1.3 ! root 564: static void glue(nand_blk_erase_, PAGE_SIZE)(NANDFlashState *s)
1.1 root 565: {
566: uint32_t i, page, addr;
567: uint8_t iobuf[0x200] = { [0 ... 0x1ff] = 0xff, };
568: addr = s->addr & ~((1 << (ADDR_SHIFT + s->erase_shift)) - 1);
569:
570: if (PAGE(addr) >= s->pages)
571: return;
572:
573: if (!s->bdrv) {
574: memset(s->storage + PAGE_START(addr),
575: 0xff, (PAGE_SIZE + OOB_SIZE) << s->erase_shift);
576: } else if (s->mem_oob) {
577: memset(s->storage + (PAGE(addr) << OOB_SHIFT),
578: 0xff, OOB_SIZE << s->erase_shift);
579: i = SECTOR(addr);
580: page = SECTOR(addr + (ADDR_SHIFT + s->erase_shift));
581: for (; i < page; i ++)
582: if (bdrv_write(s->bdrv, i, iobuf, 1) == -1)
583: printf("%s: write error in sector %i\n", __FUNCTION__, i);
584: } else {
585: addr = PAGE_START(addr);
586: page = addr >> 9;
587: if (bdrv_read(s->bdrv, page, iobuf, 1) == -1)
588: printf("%s: read error in sector %i\n", __FUNCTION__, page);
589: memset(iobuf + (addr & 0x1ff), 0xff, (~addr & 0x1ff) + 1);
590: if (bdrv_write(s->bdrv, page, iobuf, 1) == -1)
591: printf("%s: write error in sector %i\n", __FUNCTION__, page);
592:
593: memset(iobuf, 0xff, 0x200);
594: i = (addr & ~0x1ff) + 0x200;
595: for (addr += ((PAGE_SIZE + OOB_SIZE) << s->erase_shift) - 0x200;
596: i < addr; i += 0x200)
597: if (bdrv_write(s->bdrv, i >> 9, iobuf, 1) == -1)
598: printf("%s: write error in sector %i\n", __FUNCTION__, i >> 9);
599:
600: page = i >> 9;
601: if (bdrv_read(s->bdrv, page, iobuf, 1) == -1)
602: printf("%s: read error in sector %i\n", __FUNCTION__, page);
603: memset(iobuf, 0xff, ((addr - 1) & 0x1ff) + 1);
604: if (bdrv_write(s->bdrv, page, iobuf, 1) == -1)
605: printf("%s: write error in sector %i\n", __FUNCTION__, page);
606: }
607: }
608:
1.1.1.3 ! root 609: static void glue(nand_blk_load_, PAGE_SIZE)(NANDFlashState *s,
1.1 root 610: uint32_t addr, int offset)
611: {
612: if (PAGE(addr) >= s->pages)
613: return;
614:
615: if (s->bdrv) {
616: if (s->mem_oob) {
617: if (bdrv_read(s->bdrv, SECTOR(addr), s->io, PAGE_SECTORS) == -1)
618: printf("%s: read error in sector %i\n",
619: __FUNCTION__, SECTOR(addr));
620: memcpy(s->io + SECTOR_OFFSET(s->addr) + PAGE_SIZE,
621: s->storage + (PAGE(s->addr) << OOB_SHIFT),
622: OOB_SIZE);
623: s->ioaddr = s->io + SECTOR_OFFSET(s->addr) + offset;
624: } else {
625: if (bdrv_read(s->bdrv, PAGE_START(addr) >> 9,
626: s->io, (PAGE_SECTORS + 2)) == -1)
627: printf("%s: read error in sector %i\n",
628: __FUNCTION__, PAGE_START(addr) >> 9);
629: s->ioaddr = s->io + (PAGE_START(addr) & 0x1ff) + offset;
630: }
631: } else {
632: memcpy(s->io, s->storage + PAGE_START(s->addr) +
633: offset, PAGE_SIZE + OOB_SIZE - offset);
634: s->ioaddr = s->io;
635: }
636:
637: s->addr &= PAGE_SIZE - 1;
638: s->addr += PAGE_SIZE;
639: }
640:
1.1.1.3 ! root 641: static void glue(nand_init_, PAGE_SIZE)(NANDFlashState *s)
1.1 root 642: {
643: s->oob_shift = PAGE_SHIFT - 5;
644: s->pages = s->size >> PAGE_SHIFT;
645: s->addr_shift = ADDR_SHIFT;
646:
647: s->blk_erase = glue(nand_blk_erase_, PAGE_SIZE);
648: s->blk_write = glue(nand_blk_write_, PAGE_SIZE);
649: s->blk_load = glue(nand_blk_load_, PAGE_SIZE);
650: }
651:
652: # undef PAGE_SIZE
653: # undef PAGE_SHIFT
654: # undef PAGE_SECTORS
655: # undef ADDR_SHIFT
656: #endif /* NAND_IO */
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