nand.c revision 1.9 1 1.9 ahoka /* $NetBSD: nand.c,v 1.9 2011/04/26 13:38:13 ahoka Exp $ */
2 1.1 ahoka
3 1.1 ahoka /*-
4 1.1 ahoka * Copyright (c) 2010 Department of Software Engineering,
5 1.1 ahoka * University of Szeged, Hungary
6 1.1 ahoka * Copyright (c) 2010 Adam Hoka <ahoka (at) NetBSD.org>
7 1.1 ahoka * All rights reserved.
8 1.1 ahoka *
9 1.1 ahoka * This code is derived from software contributed to The NetBSD Foundation
10 1.1 ahoka * by the Department of Software Engineering, University of Szeged, Hungary
11 1.1 ahoka *
12 1.1 ahoka * Redistribution and use in source and binary forms, with or without
13 1.1 ahoka * modification, are permitted provided that the following conditions
14 1.1 ahoka * are met:
15 1.1 ahoka * 1. Redistributions of source code must retain the above copyright
16 1.1 ahoka * notice, this list of conditions and the following disclaimer.
17 1.1 ahoka * 2. Redistributions in binary form must reproduce the above copyright
18 1.1 ahoka * notice, this list of conditions and the following disclaimer in the
19 1.1 ahoka * documentation and/or other materials provided with the distribution.
20 1.1 ahoka *
21 1.1 ahoka * THIS SOFTWARE IS PROVIDED BY THE AUTHOR ``AS IS'' AND ANY EXPRESS OR
22 1.1 ahoka * IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES
23 1.1 ahoka * OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED.
24 1.1 ahoka * IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR ANY DIRECT, INDIRECT,
25 1.1 ahoka * INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING,
26 1.1 ahoka * BUT NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES;
27 1.1 ahoka * LOSS OF USE, DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED
28 1.1 ahoka * AND ON ANY THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY,
29 1.1 ahoka * OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY
30 1.1 ahoka * OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF
31 1.1 ahoka * SUCH DAMAGE.
32 1.1 ahoka */
33 1.1 ahoka
34 1.1 ahoka /* Common driver for NAND chips implementing the ONFI 2.2 specification */
35 1.1 ahoka
36 1.1 ahoka #include <sys/cdefs.h>
37 1.9 ahoka __KERNEL_RCSID(0, "$NetBSD: nand.c,v 1.9 2011/04/26 13:38:13 ahoka Exp $");
38 1.1 ahoka
39 1.1 ahoka #include "locators.h"
40 1.1 ahoka
41 1.1 ahoka #include <sys/param.h>
42 1.1 ahoka #include <sys/types.h>
43 1.1 ahoka #include <sys/device.h>
44 1.1 ahoka #include <sys/kmem.h>
45 1.1 ahoka #include <sys/sysctl.h>
46 1.9 ahoka #include <sys/atomic.h>
47 1.1 ahoka
48 1.1 ahoka #include <dev/flash/flash.h>
49 1.1 ahoka #include <dev/nand/nand.h>
50 1.1 ahoka #include <dev/nand/onfi.h>
51 1.1 ahoka #include <dev/nand/hamming.h>
52 1.1 ahoka #include <dev/nand/nand_bbt.h>
53 1.1 ahoka #include <dev/nand/nand_crc.h>
54 1.1 ahoka
55 1.1 ahoka #include "opt_nand.h"
56 1.1 ahoka
57 1.2 ahoka int nand_match(device_t, cfdata_t, void *);
58 1.2 ahoka void nand_attach(device_t, device_t, void *);
59 1.2 ahoka int nand_detach(device_t, int);
60 1.2 ahoka bool nand_shutdown(device_t, int);
61 1.9 ahoka void nand_childdet(device_t, device_t);
62 1.2 ahoka
63 1.2 ahoka int nand_print(void *, const char *);
64 1.2 ahoka
65 1.2 ahoka static int nand_search(device_t, cfdata_t, const int *, void *);
66 1.2 ahoka static void nand_address_row(device_t, size_t);
67 1.2 ahoka static void nand_address_column(device_t, size_t, size_t);
68 1.6 ahoka static int nand_fill_chip_structure(device_t, struct nand_chip *);
69 1.2 ahoka static int nand_scan_media(device_t, struct nand_chip *);
70 1.2 ahoka static bool nand_check_wp(device_t);
71 1.1 ahoka
72 1.9 ahoka CFATTACH_DECL2_NEW(nand, sizeof(struct nand_softc),
73 1.9 ahoka nand_match, nand_attach, nand_detach,
74 1.9 ahoka NULL, NULL, nand_childdet);
75 1.9 ahoka
76 1.9 ahoka //CFATTACH_DECL_NEW(nand, sizeof(struct nand_softc),
77 1.9 ahoka // nand_match, nand_attach, nand_detach, NULL);
78 1.1 ahoka
79 1.1 ahoka #ifdef NAND_DEBUG
80 1.1 ahoka int nanddebug = NAND_DEBUG;
81 1.1 ahoka #endif
82 1.1 ahoka
83 1.1 ahoka int nand_cachesync_timeout = 1;
84 1.1 ahoka int nand_cachesync_nodenum;
85 1.1 ahoka
86 1.6 ahoka #ifdef NAND_VERBOSE
87 1.1 ahoka const struct nand_manufacturer nand_mfrs[] = {
88 1.1 ahoka { NAND_MFR_AMD, "AMD" },
89 1.1 ahoka { NAND_MFR_FUJITSU, "Fujitsu" },
90 1.1 ahoka { NAND_MFR_RENESAS, "Renesas" },
91 1.1 ahoka { NAND_MFR_STMICRO, "ST Micro" },
92 1.1 ahoka { NAND_MFR_MICRON, "Micron" },
93 1.1 ahoka { NAND_MFR_NATIONAL, "National" },
94 1.1 ahoka { NAND_MFR_TOSHIBA, "Toshiba" },
95 1.1 ahoka { NAND_MFR_HYNIX, "Hynix" },
96 1.1 ahoka { NAND_MFR_SAMSUNG, "Samsung" },
97 1.1 ahoka { NAND_MFR_UNKNOWN, "Unknown" }
98 1.1 ahoka };
99 1.1 ahoka
100 1.6 ahoka static const char *
101 1.6 ahoka nand_midtoname(int id)
102 1.6 ahoka {
103 1.6 ahoka int i;
104 1.6 ahoka
105 1.6 ahoka for (i = 0; nand_mfrs[i].id != 0; i++) {
106 1.6 ahoka if (nand_mfrs[i].id == id)
107 1.6 ahoka return nand_mfrs[i].name;
108 1.6 ahoka }
109 1.6 ahoka
110 1.6 ahoka KASSERT(nand_mfrs[i].id == 0);
111 1.6 ahoka
112 1.6 ahoka return nand_mfrs[i].name;
113 1.6 ahoka }
114 1.6 ahoka #endif
115 1.6 ahoka
116 1.1 ahoka /* ARGSUSED */
117 1.1 ahoka int
118 1.1 ahoka nand_match(device_t parent, cfdata_t match, void *aux)
119 1.1 ahoka {
120 1.1 ahoka /* pseudo device, always attaches */
121 1.1 ahoka return 1;
122 1.1 ahoka }
123 1.1 ahoka
124 1.1 ahoka void
125 1.1 ahoka nand_attach(device_t parent, device_t self, void *aux)
126 1.1 ahoka {
127 1.1 ahoka struct nand_softc *sc = device_private(self);
128 1.1 ahoka struct nand_attach_args *naa = aux;
129 1.1 ahoka struct nand_chip *chip = &sc->sc_chip;
130 1.1 ahoka
131 1.1 ahoka sc->sc_dev = self;
132 1.6 ahoka sc->controller_dev = parent;
133 1.1 ahoka sc->nand_if = naa->naa_nand_if;
134 1.1 ahoka
135 1.9 ahoka sc->sc_children = 0;
136 1.9 ahoka
137 1.1 ahoka aprint_naive("\n");
138 1.1 ahoka
139 1.1 ahoka if (nand_check_wp(self)) {
140 1.1 ahoka aprint_error("NAND chip is write protected!\n");
141 1.1 ahoka return;
142 1.1 ahoka }
143 1.3 ahoka
144 1.3 ahoka if (nand_scan_media(self, chip)) {
145 1.1 ahoka return;
146 1.3 ahoka }
147 1.1 ahoka
148 1.1 ahoka /* allocate cache */
149 1.1 ahoka chip->nc_oob_cache = kmem_alloc(chip->nc_spare_size, KM_SLEEP);
150 1.1 ahoka chip->nc_page_cache = kmem_alloc(chip->nc_page_size, KM_SLEEP);
151 1.1 ahoka
152 1.1 ahoka mutex_init(&sc->sc_device_lock, MUTEX_DEFAULT, IPL_NONE);
153 1.1 ahoka
154 1.1 ahoka if (nand_sync_thread_start(self)) {
155 1.1 ahoka goto error;
156 1.1 ahoka }
157 1.1 ahoka
158 1.1 ahoka if (!pmf_device_register1(sc->sc_dev, NULL, NULL, nand_shutdown))
159 1.1 ahoka aprint_error_dev(sc->sc_dev,
160 1.1 ahoka "couldn't establish power handler\n");
161 1.1 ahoka
162 1.1 ahoka #ifdef NAND_BBT
163 1.1 ahoka nand_bbt_init(self);
164 1.1 ahoka nand_bbt_scan(self);
165 1.1 ahoka #endif
166 1.1 ahoka
167 1.1 ahoka /*
168 1.1 ahoka * Attach all our devices
169 1.1 ahoka */
170 1.1 ahoka config_search_ia(nand_search, self, NULL, NULL);
171 1.1 ahoka
172 1.1 ahoka return;
173 1.1 ahoka error:
174 1.1 ahoka kmem_free(chip->nc_oob_cache, chip->nc_spare_size);
175 1.1 ahoka kmem_free(chip->nc_page_cache, chip->nc_page_size);
176 1.1 ahoka mutex_destroy(&sc->sc_device_lock);
177 1.1 ahoka }
178 1.1 ahoka
179 1.1 ahoka static int
180 1.1 ahoka nand_search(device_t parent, cfdata_t cf, const int *ldesc, void *aux)
181 1.1 ahoka {
182 1.1 ahoka struct nand_softc *sc = device_private(parent);
183 1.1 ahoka struct nand_chip *chip = &sc->sc_chip;
184 1.1 ahoka struct flash_interface *flash_if;
185 1.1 ahoka struct flash_attach_args faa;
186 1.1 ahoka
187 1.1 ahoka flash_if = kmem_alloc(sizeof(*flash_if), KM_SLEEP);
188 1.1 ahoka
189 1.1 ahoka flash_if->type = FLASH_TYPE_NAND;
190 1.1 ahoka
191 1.1 ahoka flash_if->read = nand_flash_read;
192 1.1 ahoka flash_if->write = nand_flash_write;
193 1.1 ahoka flash_if->erase = nand_flash_erase;
194 1.1 ahoka flash_if->block_isbad = nand_flash_isbad;
195 1.1 ahoka flash_if->block_markbad = nand_flash_markbad;
196 1.1 ahoka
197 1.1 ahoka flash_if->submit = nand_io_submit;
198 1.1 ahoka
199 1.1 ahoka flash_if->erasesize = chip->nc_block_size;
200 1.1 ahoka flash_if->page_size = chip->nc_page_size;
201 1.1 ahoka flash_if->writesize = chip->nc_page_size;
202 1.1 ahoka
203 1.1 ahoka flash_if->partition.part_offset = cf->cf_loc[FLASHBUSCF_OFFSET];
204 1.1 ahoka
205 1.1 ahoka if (cf->cf_loc[FLASHBUSCF_SIZE] == 0) {
206 1.1 ahoka flash_if->size = chip->nc_size -
207 1.1 ahoka flash_if->partition.part_offset;
208 1.1 ahoka flash_if->partition.part_size = flash_if->size;
209 1.1 ahoka } else {
210 1.1 ahoka flash_if->size = cf->cf_loc[FLASHBUSCF_SIZE];
211 1.1 ahoka flash_if->partition.part_size = cf->cf_loc[FLASHBUSCF_SIZE];
212 1.1 ahoka }
213 1.1 ahoka
214 1.1 ahoka if (cf->cf_loc[FLASHBUSCF_READONLY])
215 1.1 ahoka flash_if->partition.part_flags = FLASH_PART_READONLY;
216 1.1 ahoka else
217 1.1 ahoka flash_if->partition.part_flags = 0;
218 1.1 ahoka
219 1.1 ahoka faa.flash_if = flash_if;
220 1.1 ahoka
221 1.1 ahoka if (config_match(parent, cf, &faa)) {
222 1.9 ahoka if (config_attach(parent, cf, &faa, nand_print) != NULL) {
223 1.9 ahoka atomic_inc_uint(&sc->sc_children);
224 1.9 ahoka return 0;
225 1.9 ahoka } else {
226 1.9 ahoka return 1;
227 1.9 ahoka }
228 1.1 ahoka } else {
229 1.1 ahoka kmem_free(flash_if, sizeof(*flash_if));
230 1.1 ahoka }
231 1.1 ahoka
232 1.1 ahoka return 1;
233 1.1 ahoka }
234 1.1 ahoka
235 1.1 ahoka int
236 1.1 ahoka nand_detach(device_t self, int flags)
237 1.1 ahoka {
238 1.1 ahoka struct nand_softc *sc = device_private(self);
239 1.1 ahoka struct nand_chip *chip = &sc->sc_chip;
240 1.1 ahoka int ret = 0;
241 1.1 ahoka
242 1.9 ahoka if (sc->sc_children != 0) {
243 1.9 ahoka return EBUSY;
244 1.9 ahoka }
245 1.9 ahoka
246 1.9 ahoka nand_sync_thread_stop(self);
247 1.1 ahoka #ifdef NAND_BBT
248 1.1 ahoka nand_bbt_detach(self);
249 1.1 ahoka #endif
250 1.1 ahoka /* free oob cache */
251 1.1 ahoka kmem_free(chip->nc_oob_cache, chip->nc_spare_size);
252 1.1 ahoka kmem_free(chip->nc_page_cache, chip->nc_page_size);
253 1.1 ahoka kmem_free(chip->nc_ecc_cache, chip->nc_ecc->necc_size);
254 1.1 ahoka
255 1.1 ahoka mutex_destroy(&sc->sc_device_lock);
256 1.1 ahoka
257 1.1 ahoka pmf_device_deregister(sc->sc_dev);
258 1.1 ahoka
259 1.1 ahoka return ret;
260 1.1 ahoka }
261 1.1 ahoka
262 1.9 ahoka void
263 1.9 ahoka nand_childdet(device_t self, device_t child)
264 1.9 ahoka {
265 1.9 ahoka struct nand_softc *sc = device_private(self);
266 1.9 ahoka
267 1.9 ahoka atomic_dec_uint(&sc->sc_children);
268 1.9 ahoka KASSERT(sc->sc_children >= 0);
269 1.9 ahoka }
270 1.9 ahoka
271 1.1 ahoka int
272 1.1 ahoka nand_print(void *aux, const char *pnp)
273 1.1 ahoka {
274 1.1 ahoka if (pnp != NULL)
275 1.1 ahoka aprint_normal("nand at %s\n", pnp);
276 1.1 ahoka
277 1.1 ahoka return UNCONF;
278 1.1 ahoka }
279 1.1 ahoka
280 1.6 ahoka /* ask for a nand driver to attach to the controller */
281 1.1 ahoka device_t
282 1.1 ahoka nand_attach_mi(struct nand_interface *nand_if, device_t parent)
283 1.1 ahoka {
284 1.1 ahoka struct nand_attach_args arg;
285 1.1 ahoka
286 1.1 ahoka KASSERT(nand_if != NULL);
287 1.1 ahoka
288 1.6 ahoka /* fill the defaults if we have null pointers */
289 1.6 ahoka if (nand_if->program_page == NULL) {
290 1.6 ahoka nand_if->program_page = &nand_default_program_page;
291 1.6 ahoka }
292 1.6 ahoka
293 1.6 ahoka if (nand_if->read_page == NULL) {
294 1.6 ahoka nand_if->read_page = &nand_default_read_page;
295 1.6 ahoka }
296 1.6 ahoka
297 1.1 ahoka arg.naa_nand_if = nand_if;
298 1.1 ahoka return config_found_ia(parent, "nandbus", &arg, nand_print);
299 1.1 ahoka }
300 1.1 ahoka
301 1.6 ahoka /* default everything to reasonable values, to ease future api changes */
302 1.6 ahoka void
303 1.6 ahoka nand_init_interface(struct nand_interface *interface)
304 1.1 ahoka {
305 1.6 ahoka interface->select = &nand_default_select;
306 1.6 ahoka interface->command = NULL;
307 1.6 ahoka interface->address = NULL;
308 1.6 ahoka interface->read_buf_byte = NULL;
309 1.6 ahoka interface->read_buf_word = NULL;
310 1.6 ahoka interface->read_byte = NULL;
311 1.6 ahoka interface->read_word = NULL;
312 1.6 ahoka interface->write_buf_byte = NULL;
313 1.6 ahoka interface->write_buf_word = NULL;
314 1.6 ahoka interface->write_byte = NULL;
315 1.6 ahoka interface->write_word = NULL;
316 1.6 ahoka interface->busy = NULL;
317 1.6 ahoka
318 1.6 ahoka /*-
319 1.6 ahoka * most drivers dont want to change this, but some implement
320 1.6 ahoka * read/program in one step
321 1.6 ahoka */
322 1.6 ahoka interface->program_page = &nand_default_program_page;
323 1.6 ahoka interface->read_page = &nand_default_read_page;
324 1.1 ahoka
325 1.6 ahoka /* default to soft ecc, that should work everywhere */
326 1.6 ahoka interface->ecc_compute = &nand_default_ecc_compute;
327 1.6 ahoka interface->ecc_correct = &nand_default_ecc_correct;
328 1.6 ahoka interface->ecc_prepare = NULL;
329 1.6 ahoka interface->ecc.necc_code_size = 3;
330 1.6 ahoka interface->ecc.necc_block_size = 256;
331 1.6 ahoka interface->ecc.necc_type = NAND_ECC_TYPE_SW;
332 1.1 ahoka }
333 1.1 ahoka
334 1.1 ahoka #if 0
335 1.1 ahoka /* handle quirks here */
336 1.1 ahoka static void
337 1.1 ahoka nand_quirks(device_t self, struct nand_chip *chip)
338 1.1 ahoka {
339 1.1 ahoka /* this is an example only! */
340 1.1 ahoka switch (chip->nc_manf_id) {
341 1.1 ahoka case NAND_MFR_SAMSUNG:
342 1.1 ahoka if (chip->nc_dev_id == 0x00) {
343 1.1 ahoka /* do something only samsung chips need */
344 1.1 ahoka /* or */
345 1.1 ahoka /* chip->nc_quirks |= NC_QUIRK_NO_READ_START */
346 1.1 ahoka }
347 1.1 ahoka }
348 1.1 ahoka
349 1.1 ahoka return;
350 1.1 ahoka }
351 1.1 ahoka #endif
352 1.1 ahoka
353 1.3 ahoka static int
354 1.6 ahoka nand_fill_chip_structure_legacy(device_t self, struct nand_chip *chip)
355 1.3 ahoka {
356 1.3 ahoka switch (chip->nc_manf_id) {
357 1.3 ahoka case NAND_MFR_MICRON:
358 1.3 ahoka return nand_read_parameters_micron(self, chip);
359 1.3 ahoka default:
360 1.3 ahoka return 1;
361 1.3 ahoka }
362 1.3 ahoka
363 1.3 ahoka return 0;
364 1.3 ahoka }
365 1.3 ahoka
366 1.1 ahoka /**
367 1.1 ahoka * scan media to determine the chip's properties
368 1.1 ahoka * this function resets the device
369 1.1 ahoka */
370 1.1 ahoka static int
371 1.1 ahoka nand_scan_media(device_t self, struct nand_chip *chip)
372 1.1 ahoka {
373 1.1 ahoka struct nand_softc *sc = device_private(self);
374 1.1 ahoka struct nand_ecc *ecc;
375 1.1 ahoka uint8_t onfi_signature[4];
376 1.1 ahoka
377 1.1 ahoka nand_select(self, true);
378 1.1 ahoka nand_command(self, ONFI_RESET);
379 1.1 ahoka nand_select(self, false);
380 1.1 ahoka
381 1.3 ahoka /* check if the device implements the ONFI standard */
382 1.1 ahoka nand_select(self, true);
383 1.1 ahoka nand_command(self, ONFI_READ_ID);
384 1.1 ahoka nand_address(self, 0x20);
385 1.1 ahoka nand_read_byte(self, &onfi_signature[0]);
386 1.1 ahoka nand_read_byte(self, &onfi_signature[1]);
387 1.1 ahoka nand_read_byte(self, &onfi_signature[2]);
388 1.1 ahoka nand_read_byte(self, &onfi_signature[3]);
389 1.1 ahoka nand_select(self, false);
390 1.1 ahoka
391 1.1 ahoka if (onfi_signature[0] != 'O' || onfi_signature[1] != 'N' ||
392 1.1 ahoka onfi_signature[2] != 'F' || onfi_signature[3] != 'I') {
393 1.3 ahoka chip->nc_isonfi = false;
394 1.3 ahoka
395 1.3 ahoka aprint_normal(": Legacy NAND Flash\n");
396 1.3 ahoka
397 1.6 ahoka nand_read_id(self, &chip->nc_manf_id, &chip->nc_dev_id);
398 1.1 ahoka
399 1.6 ahoka if (nand_fill_chip_structure_legacy(self, chip)) {
400 1.3 ahoka aprint_error_dev(self,
401 1.3 ahoka "can't read device parameters for legacy chip\n");
402 1.3 ahoka return 1;
403 1.3 ahoka }
404 1.3 ahoka } else {
405 1.3 ahoka chip->nc_isonfi = true;
406 1.1 ahoka
407 1.3 ahoka aprint_normal(": ONFI NAND Flash\n");
408 1.1 ahoka
409 1.6 ahoka nand_read_id(self, &chip->nc_manf_id, &chip->nc_dev_id);
410 1.6 ahoka
411 1.6 ahoka if (nand_fill_chip_structure(self, chip)) {
412 1.6 ahoka aprint_error_dev(self,
413 1.6 ahoka "can't read device parameters\n");
414 1.6 ahoka
415 1.6 ahoka return 1;
416 1.6 ahoka }
417 1.3 ahoka }
418 1.1 ahoka
419 1.3 ahoka #ifdef NAND_VERBOSE
420 1.3 ahoka aprint_normal_dev(self,
421 1.1 ahoka "manufacturer id: 0x%.2x (%s), device id: 0x%.2x\n",
422 1.1 ahoka chip->nc_manf_id,
423 1.1 ahoka nand_midtoname(chip->nc_manf_id),
424 1.1 ahoka chip->nc_dev_id);
425 1.3 ahoka #endif
426 1.1 ahoka
427 1.3 ahoka aprint_normal_dev(self,
428 1.5 ahoka "page size: %zu bytes, spare size: %zu bytes, "
429 1.5 ahoka "block size: %zu bytes\n",
430 1.3 ahoka chip->nc_page_size, chip->nc_spare_size, chip->nc_block_size);
431 1.3 ahoka
432 1.3 ahoka aprint_normal_dev(self,
433 1.5 ahoka "LUN size: %" PRIu32 " blocks, LUNs: %" PRIu8
434 1.5 ahoka ", total storage size: %zu MB\n",
435 1.3 ahoka chip->nc_lun_blocks, chip->nc_num_luns,
436 1.3 ahoka chip->nc_size / 1024 / 1024);
437 1.1 ahoka
438 1.3 ahoka #ifdef NAND_VERBOSE
439 1.5 ahoka aprint_normal_dev(self, "column cycles: %" PRIu8 ", row cycles: %"
440 1.5 ahoka PRIu8 "\n",
441 1.3 ahoka chip->nc_addr_cycles_column, chip->nc_addr_cycles_row);
442 1.3 ahoka #endif
443 1.3 ahoka
444 1.1 ahoka ecc = chip->nc_ecc = &sc->nand_if->ecc;
445 1.1 ahoka
446 1.1 ahoka /*
447 1.1 ahoka * calculate the place of ecc data in oob
448 1.1 ahoka * we try to be compatible with Linux here
449 1.1 ahoka */
450 1.1 ahoka switch (chip->nc_spare_size) {
451 1.1 ahoka case 8:
452 1.1 ahoka ecc->necc_offset = 0;
453 1.1 ahoka break;
454 1.1 ahoka case 16:
455 1.1 ahoka ecc->necc_offset = 0;
456 1.1 ahoka break;
457 1.1 ahoka case 64:
458 1.1 ahoka ecc->necc_offset = 40;
459 1.1 ahoka break;
460 1.1 ahoka case 128:
461 1.1 ahoka ecc->necc_offset = 80;
462 1.1 ahoka break;
463 1.1 ahoka default:
464 1.1 ahoka panic("OOB size is unexpected");
465 1.1 ahoka }
466 1.1 ahoka
467 1.1 ahoka ecc->necc_steps = chip->nc_page_size / ecc->necc_block_size;
468 1.1 ahoka ecc->necc_size = ecc->necc_steps * ecc->necc_code_size;
469 1.1 ahoka
470 1.1 ahoka /* check if we fit in oob */
471 1.1 ahoka if (ecc->necc_offset + ecc->necc_size > chip->nc_spare_size) {
472 1.1 ahoka panic("NAND ECC bits dont fit in OOB");
473 1.1 ahoka }
474 1.1 ahoka
475 1.1 ahoka /* TODO: mark free oob area available for file systems */
476 1.1 ahoka
477 1.1 ahoka chip->nc_ecc_cache = kmem_zalloc(ecc->necc_size, KM_SLEEP);
478 1.1 ahoka
479 1.1 ahoka /*
480 1.1 ahoka * calculate badblock marker offset in oob
481 1.1 ahoka * we try to be compatible with linux here
482 1.1 ahoka */
483 1.1 ahoka if (chip->nc_page_size > 512)
484 1.1 ahoka chip->nc_badmarker_offs = 0;
485 1.1 ahoka else
486 1.1 ahoka chip->nc_badmarker_offs = 5;
487 1.1 ahoka
488 1.1 ahoka /* Calculate page shift and mask */
489 1.1 ahoka chip->nc_page_shift = ffs(chip->nc_page_size) - 1;
490 1.1 ahoka chip->nc_page_mask = ~(chip->nc_page_size - 1);
491 1.1 ahoka /* same for block */
492 1.1 ahoka chip->nc_block_shift = ffs(chip->nc_block_size) - 1;
493 1.1 ahoka chip->nc_block_mask = ~(chip->nc_block_size - 1);
494 1.1 ahoka
495 1.1 ahoka /* look for quirks here if needed in future */
496 1.1 ahoka /* nand_quirks(self, chip); */
497 1.1 ahoka
498 1.1 ahoka return 0;
499 1.1 ahoka }
500 1.1 ahoka
501 1.6 ahoka void
502 1.6 ahoka nand_read_id(device_t self, uint8_t *manf, uint8_t *dev)
503 1.1 ahoka {
504 1.1 ahoka nand_select(self, true);
505 1.1 ahoka nand_command(self, ONFI_READ_ID);
506 1.1 ahoka nand_address(self, 0x00);
507 1.3 ahoka
508 1.6 ahoka nand_read_byte(self, manf);
509 1.6 ahoka nand_read_byte(self, dev);
510 1.3 ahoka
511 1.1 ahoka nand_select(self, false);
512 1.1 ahoka }
513 1.1 ahoka
514 1.6 ahoka int
515 1.6 ahoka nand_read_parameter_page(device_t self, struct onfi_parameter_page *params)
516 1.1 ahoka {
517 1.1 ahoka uint8_t *bufp;
518 1.1 ahoka uint16_t crc;
519 1.6 ahoka int i;//, tries = 0;
520 1.1 ahoka
521 1.6 ahoka KASSERT(sizeof(*params) == 256);
522 1.1 ahoka
523 1.6 ahoka //read_params:
524 1.6 ahoka // tries++;
525 1.6 ahoka
526 1.1 ahoka nand_select(self, true);
527 1.1 ahoka nand_command(self, ONFI_READ_PARAMETER_PAGE);
528 1.1 ahoka nand_address(self, 0x00);
529 1.1 ahoka
530 1.1 ahoka nand_busy(self);
531 1.1 ahoka
532 1.6 ahoka /* TODO check the signature if it contains at least 2 letters */
533 1.6 ahoka
534 1.6 ahoka bufp = (uint8_t *)params;
535 1.6 ahoka /* XXX why i am not using read_buf? */
536 1.1 ahoka for (i = 0; i < 256; i++) {
537 1.1 ahoka nand_read_byte(self, &bufp[i]);
538 1.1 ahoka }
539 1.1 ahoka nand_select(self, false);
540 1.1 ahoka
541 1.1 ahoka /* validate the parameter page with the crc */
542 1.1 ahoka crc = nand_crc16(bufp, 254);
543 1.1 ahoka
544 1.6 ahoka if (crc != params->param_integrity_crc) {
545 1.1 ahoka aprint_error_dev(self, "parameter page crc check failed\n");
546 1.1 ahoka /* TODO: we should read the next parameter page copy */
547 1.6 ahoka return 1;
548 1.6 ahoka }
549 1.6 ahoka
550 1.6 ahoka return 0;
551 1.6 ahoka }
552 1.6 ahoka
553 1.6 ahoka static int
554 1.6 ahoka nand_fill_chip_structure(device_t self, struct nand_chip *chip)
555 1.6 ahoka {
556 1.6 ahoka struct onfi_parameter_page params;
557 1.6 ahoka uint8_t vendor[13], model[21];
558 1.6 ahoka int i;
559 1.6 ahoka
560 1.6 ahoka if (nand_read_parameter_page(self, ¶ms)) {
561 1.6 ahoka return 1;
562 1.1 ahoka }
563 1.1 ahoka
564 1.1 ahoka /* strip manufacturer and model string */
565 1.1 ahoka strlcpy(vendor, params.param_manufacturer, sizeof(vendor));
566 1.1 ahoka for (i = 11; i > 0 && vendor[i] == ' '; i--)
567 1.1 ahoka vendor[i] = 0;
568 1.1 ahoka strlcpy(model, params.param_model, sizeof(model));
569 1.1 ahoka for (i = 19; i > 0 && model[i] == ' '; i--)
570 1.1 ahoka model[i] = 0;
571 1.1 ahoka
572 1.1 ahoka aprint_normal_dev(self, "vendor: %s, model: %s\n", vendor, model);
573 1.1 ahoka
574 1.1 ahoka /* XXX TODO multiple LUNs */
575 1.6 ahoka if (params.param_numluns != 1) {
576 1.6 ahoka aprint_error_dev(self,
577 1.6 ahoka "more than one LUNs are not supported yet!\n");
578 1.6 ahoka
579 1.6 ahoka return 1;
580 1.3 ahoka }
581 1.1 ahoka
582 1.1 ahoka chip->nc_size = params.param_pagesize * params.param_blocksize *
583 1.1 ahoka params.param_lunsize * params.param_numluns;
584 1.1 ahoka
585 1.1 ahoka chip->nc_page_size = params.param_pagesize;
586 1.1 ahoka chip->nc_block_pages = params.param_blocksize;
587 1.1 ahoka chip->nc_block_size = params.param_blocksize * params.param_pagesize;
588 1.1 ahoka chip->nc_spare_size = params.param_sparesize;
589 1.3 ahoka chip->nc_lun_blocks = params.param_lunsize;
590 1.3 ahoka chip->nc_num_luns = params.param_numluns;
591 1.1 ahoka
592 1.1 ahoka /* the lower 4 bits contain the row address cycles */
593 1.1 ahoka chip->nc_addr_cycles_row = params.param_addr_cycles & 0x07;
594 1.1 ahoka /* the upper 4 bits contain the column address cycles */
595 1.1 ahoka chip->nc_addr_cycles_column = (params.param_addr_cycles & ~0x07) >> 4;
596 1.1 ahoka
597 1.1 ahoka if (params.param_features & ONFI_FEATURE_16BIT)
598 1.1 ahoka chip->nc_flags |= NC_BUSWIDTH_16;
599 1.1 ahoka
600 1.1 ahoka if (params.param_features & ONFI_FEATURE_EXTENDED_PARAM)
601 1.1 ahoka chip->nc_flags |= NC_EXTENDED_PARAM;
602 1.6 ahoka
603 1.6 ahoka return 0;
604 1.1 ahoka }
605 1.1 ahoka
606 1.1 ahoka /* ARGSUSED */
607 1.1 ahoka bool
608 1.1 ahoka nand_shutdown(device_t self, int howto)
609 1.1 ahoka {
610 1.1 ahoka return true;
611 1.1 ahoka }
612 1.1 ahoka
613 1.1 ahoka static void
614 1.1 ahoka nand_address_column(device_t self, size_t row, size_t column)
615 1.1 ahoka {
616 1.1 ahoka struct nand_softc *sc = device_private(self);
617 1.1 ahoka struct nand_chip *chip = &sc->sc_chip;
618 1.1 ahoka uint8_t i;
619 1.1 ahoka
620 1.1 ahoka DPRINTF(("addressing row: 0x%jx column: %zu\n",
621 1.1 ahoka (uintmax_t )row, column));
622 1.1 ahoka
623 1.1 ahoka /* XXX TODO */
624 1.1 ahoka row >>= chip->nc_page_shift;
625 1.1 ahoka
626 1.1 ahoka /* Write the column (subpage) address */
627 1.1 ahoka if (chip->nc_flags & NC_BUSWIDTH_16)
628 1.1 ahoka column >>= 1;
629 1.1 ahoka for (i = 0; i < chip->nc_addr_cycles_column; i++, column >>= 8)
630 1.1 ahoka nand_address(self, column & 0xff);
631 1.1 ahoka
632 1.1 ahoka /* Write the row (page) address */
633 1.1 ahoka for (i = 0; i < chip->nc_addr_cycles_row; i++, row >>= 8)
634 1.1 ahoka nand_address(self, row & 0xff);
635 1.1 ahoka }
636 1.1 ahoka
637 1.1 ahoka static void
638 1.1 ahoka nand_address_row(device_t self, size_t row)
639 1.1 ahoka {
640 1.1 ahoka struct nand_softc *sc = device_private(self);
641 1.1 ahoka struct nand_chip *chip = &sc->sc_chip;
642 1.7 ahoka int i;
643 1.1 ahoka
644 1.1 ahoka /* XXX TODO */
645 1.1 ahoka row >>= chip->nc_page_shift;
646 1.1 ahoka
647 1.1 ahoka /* Write the row (page) address */
648 1.1 ahoka for (i = 0; i < chip->nc_addr_cycles_row; i++, row >>= 8)
649 1.1 ahoka nand_address(self, row & 0xff);
650 1.1 ahoka }
651 1.1 ahoka
652 1.1 ahoka static inline uint8_t
653 1.1 ahoka nand_get_status(device_t self)
654 1.1 ahoka {
655 1.1 ahoka uint8_t status;
656 1.1 ahoka
657 1.1 ahoka nand_command(self, ONFI_READ_STATUS);
658 1.1 ahoka nand_busy(self);
659 1.1 ahoka nand_read_byte(self, &status);
660 1.1 ahoka
661 1.1 ahoka return status;
662 1.1 ahoka }
663 1.1 ahoka
664 1.1 ahoka static bool
665 1.1 ahoka nand_check_wp(device_t self)
666 1.1 ahoka {
667 1.1 ahoka if (nand_get_status(self) & 0x80)
668 1.1 ahoka return false;
669 1.1 ahoka else
670 1.1 ahoka return true;
671 1.1 ahoka }
672 1.1 ahoka
673 1.1 ahoka static void
674 1.7 ahoka nand_prepare_read(device_t self, flash_off_t row, flash_off_t column)
675 1.1 ahoka {
676 1.1 ahoka nand_command(self, ONFI_READ);
677 1.1 ahoka nand_address_column(self, row, column);
678 1.1 ahoka nand_command(self, ONFI_READ_START);
679 1.1 ahoka
680 1.1 ahoka nand_busy(self);
681 1.1 ahoka }
682 1.1 ahoka
683 1.6 ahoka /* read a page with ecc correction, default implementation */
684 1.1 ahoka int
685 1.6 ahoka nand_default_read_page(device_t self, size_t offset, uint8_t *data)
686 1.1 ahoka {
687 1.1 ahoka struct nand_softc *sc = device_private(self);
688 1.1 ahoka struct nand_chip *chip = &sc->sc_chip;
689 1.1 ahoka size_t b, bs, e, cs;
690 1.1 ahoka uint8_t *ecc;
691 1.1 ahoka int result;
692 1.1 ahoka
693 1.1 ahoka nand_prepare_read(self, offset, 0);
694 1.1 ahoka
695 1.1 ahoka bs = chip->nc_ecc->necc_block_size;
696 1.1 ahoka cs = chip->nc_ecc->necc_code_size;
697 1.1 ahoka
698 1.1 ahoka /* decide if we access by 8 or 16 bits */
699 1.1 ahoka if (chip->nc_flags & NC_BUSWIDTH_16) {
700 1.1 ahoka for (b = 0, e = 0; b < chip->nc_page_size; b += bs, e += cs) {
701 1.1 ahoka nand_ecc_prepare(self, NAND_ECC_READ);
702 1.1 ahoka nand_read_buf_word(self, data + b, bs);
703 1.1 ahoka nand_ecc_compute(self, data + b,
704 1.1 ahoka chip->nc_ecc_cache + e);
705 1.1 ahoka }
706 1.1 ahoka } else {
707 1.1 ahoka for (b = 0, e = 0; b < chip->nc_page_size; b += bs, e += cs) {
708 1.1 ahoka nand_ecc_prepare(self, NAND_ECC_READ);
709 1.1 ahoka nand_read_buf_byte(self, data + b, bs);
710 1.1 ahoka nand_ecc_compute(self, data + b,
711 1.1 ahoka chip->nc_ecc_cache + e);
712 1.1 ahoka }
713 1.1 ahoka }
714 1.1 ahoka
715 1.2 ahoka /* for debugging new drivers */
716 1.2 ahoka #if 0
717 1.2 ahoka nand_dump_data("page", data, chip->nc_page_size);
718 1.2 ahoka #endif
719 1.1 ahoka
720 1.1 ahoka nand_read_oob(self, offset, chip->nc_oob_cache);
721 1.1 ahoka ecc = chip->nc_oob_cache + chip->nc_ecc->necc_offset;
722 1.1 ahoka
723 1.1 ahoka /* useful for debugging new ecc drivers */
724 1.1 ahoka #if 0
725 1.1 ahoka printf("dumping ecc %d\n--------------\n", chip->nc_ecc->necc_steps);
726 1.1 ahoka for (e = 0; e < chip->nc_ecc->necc_steps; e++) {
727 1.1 ahoka printf("0x");
728 1.1 ahoka for (b = 0; b < cs; b++) {
729 1.1 ahoka printf("%.2hhx", ecc[e+b]);
730 1.1 ahoka }
731 1.1 ahoka printf(" 0x");
732 1.1 ahoka for (b = 0; b < cs; b++) {
733 1.1 ahoka printf("%.2hhx", chip->nc_ecc_cache[e+b]);
734 1.1 ahoka }
735 1.1 ahoka printf("\n");
736 1.1 ahoka }
737 1.1 ahoka printf("--------------\n");
738 1.1 ahoka #endif
739 1.1 ahoka
740 1.1 ahoka for (b = 0, e = 0; b < chip->nc_page_size; b += bs, e += cs) {
741 1.1 ahoka result = nand_ecc_correct(self, data + b, ecc + e,
742 1.1 ahoka chip->nc_ecc_cache + e);
743 1.1 ahoka
744 1.1 ahoka switch (result) {
745 1.1 ahoka case NAND_ECC_OK:
746 1.1 ahoka break;
747 1.1 ahoka case NAND_ECC_CORRECTED:
748 1.1 ahoka aprint_error_dev(self,
749 1.1 ahoka "data corrected with ECC at page offset 0x%jx "
750 1.1 ahoka "block %zu\n", (uintmax_t)offset, b);
751 1.1 ahoka break;
752 1.1 ahoka case NAND_ECC_TWOBIT:
753 1.1 ahoka aprint_error_dev(self,
754 1.1 ahoka "uncorrectable ECC error at page offset 0x%jx "
755 1.1 ahoka "block %zu\n", (uintmax_t)offset, b);
756 1.1 ahoka return EIO;
757 1.1 ahoka break;
758 1.1 ahoka case NAND_ECC_INVALID:
759 1.1 ahoka aprint_error_dev(self,
760 1.1 ahoka "invalid ECC in oob at page offset 0x%jx "
761 1.1 ahoka "block %zu\n", (uintmax_t)offset, b);
762 1.1 ahoka return EIO;
763 1.1 ahoka break;
764 1.1 ahoka default:
765 1.1 ahoka panic("invalid ECC correction errno");
766 1.1 ahoka }
767 1.1 ahoka }
768 1.1 ahoka
769 1.1 ahoka return 0;
770 1.1 ahoka }
771 1.1 ahoka
772 1.6 ahoka int
773 1.6 ahoka nand_default_program_page(device_t self, size_t page, const uint8_t *data)
774 1.1 ahoka {
775 1.1 ahoka struct nand_softc *sc = device_private(self);
776 1.1 ahoka struct nand_chip *chip = &sc->sc_chip;
777 1.1 ahoka size_t bs, cs, e, b;
778 1.1 ahoka uint8_t status;
779 1.1 ahoka uint8_t *ecc;
780 1.1 ahoka
781 1.1 ahoka nand_command(self, ONFI_PAGE_PROGRAM);
782 1.1 ahoka nand_address_column(self, page, 0);
783 1.1 ahoka
784 1.1 ahoka nand_busy(self);
785 1.1 ahoka
786 1.1 ahoka bs = chip->nc_ecc->necc_block_size;
787 1.1 ahoka cs = chip->nc_ecc->necc_code_size;
788 1.1 ahoka ecc = chip->nc_oob_cache + chip->nc_ecc->necc_offset;
789 1.1 ahoka
790 1.1 ahoka /* XXX code duplication */
791 1.1 ahoka /* decide if we access by 8 or 16 bits */
792 1.1 ahoka if (chip->nc_flags & NC_BUSWIDTH_16) {
793 1.1 ahoka for (b = 0, e = 0; b < chip->nc_page_size; b += bs, e += cs) {
794 1.1 ahoka nand_ecc_prepare(self, NAND_ECC_WRITE);
795 1.1 ahoka nand_write_buf_word(self, data + b, bs);
796 1.1 ahoka nand_ecc_compute(self, data + b, ecc + e);
797 1.1 ahoka }
798 1.1 ahoka /* write oob with ecc correction code */
799 1.1 ahoka nand_write_buf_word(self, chip->nc_oob_cache,
800 1.1 ahoka chip->nc_spare_size);
801 1.1 ahoka } else {
802 1.1 ahoka for (b = 0, e = 0; b < chip->nc_page_size; b += bs, e += cs) {
803 1.1 ahoka nand_ecc_prepare(self, NAND_ECC_WRITE);
804 1.1 ahoka nand_write_buf_byte(self, data + b, bs);
805 1.1 ahoka nand_ecc_compute(self, data + b, ecc + e);
806 1.1 ahoka }
807 1.1 ahoka /* write oob with ecc correction code */
808 1.1 ahoka nand_write_buf_byte(self, chip->nc_oob_cache,
809 1.1 ahoka chip->nc_spare_size);
810 1.1 ahoka }
811 1.1 ahoka
812 1.1 ahoka nand_command(self, ONFI_PAGE_PROGRAM_START);
813 1.1 ahoka
814 1.1 ahoka nand_busy(self);
815 1.1 ahoka
816 1.2 ahoka /* for debugging ecc */
817 1.1 ahoka #if 0
818 1.1 ahoka printf("dumping ecc %d\n--------------\n", chip->nc_ecc->necc_steps);
819 1.1 ahoka for (e = 0; e < chip->nc_ecc->necc_steps; e++) {
820 1.1 ahoka printf("0x");
821 1.1 ahoka for (b = 0; b < cs; b++) {
822 1.1 ahoka printf("%.2hhx", ecc[e+b]);
823 1.1 ahoka }
824 1.1 ahoka printf("\n");
825 1.1 ahoka }
826 1.1 ahoka printf("--------------\n");
827 1.1 ahoka #endif
828 1.1 ahoka
829 1.1 ahoka status = nand_get_status(self);
830 1.1 ahoka KASSERT(status & ONFI_STATUS_RDY);
831 1.1 ahoka if (status & ONFI_STATUS_FAIL) {
832 1.1 ahoka aprint_error_dev(self, "page program failed!\n");
833 1.1 ahoka return EIO;
834 1.1 ahoka }
835 1.1 ahoka
836 1.1 ahoka return 0;
837 1.1 ahoka }
838 1.1 ahoka
839 1.6 ahoka /* read the OOB of a page */
840 1.1 ahoka int
841 1.6 ahoka nand_read_oob(device_t self, size_t page, uint8_t *oob)
842 1.1 ahoka {
843 1.1 ahoka struct nand_softc *sc = device_private(self);
844 1.1 ahoka struct nand_chip *chip = &sc->sc_chip;
845 1.1 ahoka
846 1.1 ahoka nand_prepare_read(self, page, chip->nc_page_size);
847 1.1 ahoka
848 1.1 ahoka if (chip->nc_flags & NC_BUSWIDTH_16)
849 1.1 ahoka nand_read_buf_word(self, oob, chip->nc_spare_size);
850 1.1 ahoka else
851 1.1 ahoka nand_read_buf_byte(self, oob, chip->nc_spare_size);
852 1.1 ahoka
853 1.2 ahoka /* for debugging drivers */
854 1.2 ahoka #if 0
855 1.2 ahoka nand_dump_data("oob", oob, chip->nc_spare_size);
856 1.2 ahoka #endif
857 1.1 ahoka
858 1.1 ahoka return 0;
859 1.1 ahoka }
860 1.1 ahoka
861 1.1 ahoka static int
862 1.1 ahoka nand_write_oob(device_t self, size_t offset, const void *oob)
863 1.1 ahoka {
864 1.1 ahoka struct nand_softc *sc = device_private(self);
865 1.1 ahoka struct nand_chip *chip = &sc->sc_chip;
866 1.1 ahoka uint8_t status;
867 1.1 ahoka
868 1.1 ahoka nand_command(self, ONFI_PAGE_PROGRAM);
869 1.1 ahoka nand_address_column(self, offset, chip->nc_page_size);
870 1.1 ahoka nand_command(self, ONFI_PAGE_PROGRAM_START);
871 1.1 ahoka
872 1.1 ahoka nand_busy(self);
873 1.1 ahoka
874 1.1 ahoka if (chip->nc_flags & NC_BUSWIDTH_16)
875 1.1 ahoka nand_write_buf_word(self, oob, chip->nc_spare_size);
876 1.1 ahoka else
877 1.1 ahoka nand_write_buf_byte(self, oob, chip->nc_spare_size);
878 1.1 ahoka
879 1.1 ahoka status = nand_get_status(self);
880 1.1 ahoka KASSERT(status & ONFI_STATUS_RDY);
881 1.1 ahoka if (status & ONFI_STATUS_FAIL)
882 1.1 ahoka return EIO;
883 1.1 ahoka else
884 1.1 ahoka return 0;
885 1.1 ahoka }
886 1.1 ahoka
887 1.1 ahoka void
888 1.1 ahoka nand_markbad(device_t self, size_t offset)
889 1.1 ahoka {
890 1.1 ahoka struct nand_softc *sc = device_private(self);
891 1.1 ahoka struct nand_chip *chip = &sc->sc_chip;
892 1.7 ahoka flash_off_t blockoffset, marker;
893 1.1 ahoka #ifdef NAND_BBT
894 1.7 ahoka flash_off_t block;
895 1.1 ahoka
896 1.1 ahoka block = offset / chip->nc_block_size;
897 1.1 ahoka
898 1.1 ahoka nand_bbt_block_markbad(self, block);
899 1.1 ahoka #endif
900 1.1 ahoka blockoffset = offset & chip->nc_block_mask;
901 1.1 ahoka marker = chip->nc_badmarker_offs & ~0x01;
902 1.1 ahoka
903 1.1 ahoka /* check if it is already marked bad */
904 1.1 ahoka if (nand_isbad(self, blockoffset))
905 1.1 ahoka return;
906 1.1 ahoka
907 1.1 ahoka nand_read_oob(self, blockoffset, chip->nc_oob_cache);
908 1.1 ahoka
909 1.1 ahoka chip->nc_oob_cache[chip->nc_badmarker_offs] = 0x00;
910 1.1 ahoka chip->nc_oob_cache[chip->nc_badmarker_offs + 1] = 0x00;
911 1.1 ahoka
912 1.1 ahoka nand_write_oob(self, blockoffset, chip->nc_oob_cache);
913 1.1 ahoka }
914 1.1 ahoka
915 1.1 ahoka bool
916 1.7 ahoka nand_isfactorybad(device_t self, flash_off_t offset)
917 1.1 ahoka {
918 1.1 ahoka struct nand_softc *sc = device_private(self);
919 1.1 ahoka struct nand_chip *chip = &sc->sc_chip;
920 1.7 ahoka flash_off_t block, first_page, last_page, page;
921 1.1 ahoka int i;
922 1.1 ahoka
923 1.1 ahoka /* Check for factory bad blocks first
924 1.1 ahoka * Factory bad blocks are marked in the first or last
925 1.1 ahoka * page of the blocks, see: ONFI 2.2, 3.2.2.
926 1.1 ahoka */
927 1.1 ahoka block = offset / chip->nc_block_size;
928 1.1 ahoka first_page = block * chip->nc_block_size;
929 1.1 ahoka last_page = (block + 1) * chip->nc_block_size
930 1.1 ahoka - chip->nc_page_size;
931 1.1 ahoka
932 1.1 ahoka for (i = 0, page = first_page; i < 2; i++, page = last_page) {
933 1.1 ahoka /* address OOB */
934 1.1 ahoka nand_prepare_read(self, page, chip->nc_page_size);
935 1.1 ahoka
936 1.1 ahoka if (chip->nc_flags & NC_BUSWIDTH_16) {
937 1.1 ahoka uint16_t word;
938 1.1 ahoka nand_read_word(self, &word);
939 1.1 ahoka if (word == 0x0000)
940 1.1 ahoka return true;
941 1.1 ahoka } else {
942 1.1 ahoka uint8_t byte;
943 1.1 ahoka nand_read_byte(self, &byte);
944 1.1 ahoka if (byte == 0x00)
945 1.1 ahoka return true;
946 1.1 ahoka }
947 1.1 ahoka }
948 1.1 ahoka
949 1.1 ahoka return false;
950 1.1 ahoka }
951 1.1 ahoka
952 1.1 ahoka bool
953 1.7 ahoka nand_iswornoutbad(device_t self, flash_off_t offset)
954 1.1 ahoka {
955 1.1 ahoka struct nand_softc *sc = device_private(self);
956 1.1 ahoka struct nand_chip *chip = &sc->sc_chip;
957 1.7 ahoka flash_off_t block;
958 1.1 ahoka
959 1.1 ahoka /* we inspect the first page of the block */
960 1.1 ahoka block = offset & chip->nc_block_mask;
961 1.1 ahoka
962 1.1 ahoka /* Linux/u-boot compatible badblock handling */
963 1.1 ahoka if (chip->nc_flags & NC_BUSWIDTH_16) {
964 1.1 ahoka uint16_t word, mark;
965 1.1 ahoka
966 1.1 ahoka nand_prepare_read(self, block,
967 1.1 ahoka chip->nc_page_size + (chip->nc_badmarker_offs & 0xfe));
968 1.1 ahoka
969 1.1 ahoka nand_read_word(self, &word);
970 1.1 ahoka mark = htole16(word);
971 1.1 ahoka if (chip->nc_badmarker_offs & 0x01)
972 1.1 ahoka mark >>= 8;
973 1.1 ahoka if ((mark & 0xff) != 0xff)
974 1.1 ahoka return true;
975 1.1 ahoka } else {
976 1.1 ahoka uint8_t byte;
977 1.1 ahoka
978 1.1 ahoka nand_prepare_read(self, block,
979 1.1 ahoka chip->nc_page_size + chip->nc_badmarker_offs);
980 1.1 ahoka
981 1.1 ahoka nand_read_byte(self, &byte);
982 1.1 ahoka if (byte != 0xff)
983 1.1 ahoka return true;
984 1.1 ahoka }
985 1.1 ahoka
986 1.1 ahoka return false;
987 1.1 ahoka }
988 1.1 ahoka
989 1.1 ahoka bool
990 1.7 ahoka nand_isbad(device_t self, flash_off_t offset)
991 1.1 ahoka {
992 1.1 ahoka #ifdef NAND_BBT
993 1.1 ahoka struct nand_softc *sc = device_private(self);
994 1.1 ahoka struct nand_chip *chip = &sc->sc_chip;
995 1.7 ahoka flash_off_t block;
996 1.1 ahoka
997 1.1 ahoka block = offset / chip->nc_block_size;
998 1.1 ahoka
999 1.1 ahoka return nand_bbt_block_isbad(self, block);
1000 1.1 ahoka #else
1001 1.1 ahoka /* ONFI host requirement */
1002 1.1 ahoka if (nand_isfactorybad(self, offset))
1003 1.1 ahoka return true;
1004 1.1 ahoka
1005 1.1 ahoka /* Look for Linux/U-Boot compatible bad marker */
1006 1.1 ahoka if (nand_iswornoutbad(self, offset))
1007 1.1 ahoka return true;
1008 1.1 ahoka
1009 1.1 ahoka return false;
1010 1.1 ahoka #endif
1011 1.1 ahoka }
1012 1.1 ahoka
1013 1.1 ahoka int
1014 1.1 ahoka nand_erase_block(device_t self, size_t offset)
1015 1.1 ahoka {
1016 1.1 ahoka uint8_t status;
1017 1.1 ahoka
1018 1.1 ahoka /* xxx calculate first page of block for address? */
1019 1.1 ahoka
1020 1.1 ahoka nand_command(self, ONFI_BLOCK_ERASE);
1021 1.1 ahoka nand_address_row(self, offset);
1022 1.1 ahoka nand_command(self, ONFI_BLOCK_ERASE_START);
1023 1.1 ahoka
1024 1.1 ahoka nand_busy(self);
1025 1.1 ahoka
1026 1.1 ahoka status = nand_get_status(self);
1027 1.1 ahoka KASSERT(status & ONFI_STATUS_RDY);
1028 1.1 ahoka if (status & ONFI_STATUS_FAIL) {
1029 1.1 ahoka aprint_error_dev(self, "block erase failed!\n");
1030 1.1 ahoka nand_markbad(self, offset);
1031 1.1 ahoka return EIO;
1032 1.1 ahoka } else {
1033 1.1 ahoka return 0;
1034 1.1 ahoka }
1035 1.1 ahoka }
1036 1.1 ahoka
1037 1.1 ahoka /* default functions for driver development */
1038 1.1 ahoka
1039 1.1 ahoka /* default ECC using hamming code of 256 byte chunks */
1040 1.1 ahoka int
1041 1.1 ahoka nand_default_ecc_compute(device_t self, const uint8_t *data, uint8_t *code)
1042 1.1 ahoka {
1043 1.1 ahoka hamming_compute_256(data, code);
1044 1.1 ahoka
1045 1.1 ahoka return 0;
1046 1.1 ahoka }
1047 1.1 ahoka
1048 1.1 ahoka int
1049 1.1 ahoka nand_default_ecc_correct(device_t self, uint8_t *data, const uint8_t *origcode,
1050 1.1 ahoka const uint8_t *compcode)
1051 1.1 ahoka {
1052 1.1 ahoka return hamming_correct_256(data, origcode, compcode);
1053 1.1 ahoka }
1054 1.1 ahoka
1055 1.1 ahoka void
1056 1.1 ahoka nand_default_select(device_t self, bool enable)
1057 1.1 ahoka {
1058 1.1 ahoka /* do nothing */
1059 1.1 ahoka return;
1060 1.1 ahoka }
1061 1.1 ahoka
1062 1.1 ahoka /* implementation of the block device API */
1063 1.1 ahoka
1064 1.1 ahoka /*
1065 1.1 ahoka * handle (page) unaligned write to nand
1066 1.1 ahoka */
1067 1.1 ahoka static int
1068 1.7 ahoka nand_flash_write_unaligned(device_t self, flash_off_t offset, size_t len,
1069 1.1 ahoka size_t *retlen, const uint8_t *buf)
1070 1.1 ahoka {
1071 1.1 ahoka struct nand_softc *sc = device_private(self);
1072 1.1 ahoka struct nand_chip *chip = &sc->sc_chip;
1073 1.7 ahoka flash_off_t first, last, firstoff;
1074 1.1 ahoka const uint8_t *bufp;
1075 1.7 ahoka flash_off_t addr;
1076 1.1 ahoka size_t left, count;
1077 1.8 ahoka int error = 0, i;
1078 1.1 ahoka
1079 1.1 ahoka first = offset & chip->nc_page_mask;
1080 1.1 ahoka firstoff = offset & ~chip->nc_page_mask;
1081 1.1 ahoka /* XXX check if this should be len - 1 */
1082 1.1 ahoka last = (offset + len) & chip->nc_page_mask;
1083 1.1 ahoka count = last - first + 1;
1084 1.1 ahoka
1085 1.1 ahoka addr = first;
1086 1.1 ahoka *retlen = 0;
1087 1.1 ahoka
1088 1.8 ahoka mutex_enter(&sc->sc_device_lock);
1089 1.1 ahoka if (count == 1) {
1090 1.1 ahoka if (nand_isbad(self, addr)) {
1091 1.1 ahoka aprint_error_dev(self,
1092 1.1 ahoka "nand_flash_write_unaligned: "
1093 1.1 ahoka "bad block encountered\n");
1094 1.8 ahoka error = EIO;
1095 1.8 ahoka goto out;
1096 1.1 ahoka }
1097 1.1 ahoka
1098 1.1 ahoka error = nand_read_page(self, addr, chip->nc_page_cache);
1099 1.8 ahoka if (error) {
1100 1.8 ahoka goto out;
1101 1.8 ahoka }
1102 1.1 ahoka
1103 1.1 ahoka memcpy(chip->nc_page_cache + firstoff, buf, len);
1104 1.1 ahoka
1105 1.1 ahoka error = nand_program_page(self, addr, chip->nc_page_cache);
1106 1.8 ahoka if (error) {
1107 1.8 ahoka goto out;
1108 1.8 ahoka }
1109 1.1 ahoka
1110 1.1 ahoka *retlen = len;
1111 1.8 ahoka goto out;
1112 1.1 ahoka }
1113 1.1 ahoka
1114 1.1 ahoka bufp = buf;
1115 1.1 ahoka left = len;
1116 1.1 ahoka
1117 1.1 ahoka for (i = 0; i < count && left != 0; i++) {
1118 1.1 ahoka if (nand_isbad(self, addr)) {
1119 1.1 ahoka aprint_error_dev(self,
1120 1.1 ahoka "nand_flash_write_unaligned: "
1121 1.1 ahoka "bad block encountered\n");
1122 1.8 ahoka error = EIO;
1123 1.8 ahoka goto out;
1124 1.1 ahoka }
1125 1.1 ahoka
1126 1.1 ahoka if (i == 0) {
1127 1.1 ahoka error = nand_read_page(self,
1128 1.1 ahoka addr, chip->nc_page_cache);
1129 1.8 ahoka if (error) {
1130 1.8 ahoka goto out;
1131 1.8 ahoka }
1132 1.1 ahoka
1133 1.1 ahoka memcpy(chip->nc_page_cache + firstoff,
1134 1.1 ahoka bufp, chip->nc_page_size - firstoff);
1135 1.1 ahoka
1136 1.1 ahoka printf("program page: %s: %d\n", __FILE__, __LINE__);
1137 1.1 ahoka error = nand_program_page(self,
1138 1.1 ahoka addr, chip->nc_page_cache);
1139 1.8 ahoka if (error) {
1140 1.8 ahoka goto out;
1141 1.8 ahoka }
1142 1.1 ahoka
1143 1.1 ahoka bufp += chip->nc_page_size - firstoff;
1144 1.1 ahoka left -= chip->nc_page_size - firstoff;
1145 1.1 ahoka *retlen += chip->nc_page_size - firstoff;
1146 1.1 ahoka
1147 1.1 ahoka } else if (i == count - 1) {
1148 1.1 ahoka error = nand_read_page(self,
1149 1.1 ahoka addr, chip->nc_page_cache);
1150 1.8 ahoka if (error) {
1151 1.8 ahoka goto out;
1152 1.8 ahoka }
1153 1.1 ahoka
1154 1.1 ahoka memcpy(chip->nc_page_cache, bufp, left);
1155 1.1 ahoka
1156 1.1 ahoka error = nand_program_page(self,
1157 1.1 ahoka addr, chip->nc_page_cache);
1158 1.8 ahoka if (error) {
1159 1.8 ahoka goto out;
1160 1.8 ahoka }
1161 1.1 ahoka
1162 1.1 ahoka *retlen += left;
1163 1.1 ahoka KASSERT(left < chip->nc_page_size);
1164 1.1 ahoka
1165 1.1 ahoka } else {
1166 1.1 ahoka /* XXX debug */
1167 1.1 ahoka if (left > chip->nc_page_size) {
1168 1.1 ahoka printf("left: %zu, i: %d, count: %zu\n",
1169 1.1 ahoka (size_t )left, i, count);
1170 1.1 ahoka }
1171 1.1 ahoka KASSERT(left > chip->nc_page_size);
1172 1.1 ahoka
1173 1.1 ahoka error = nand_program_page(self, addr, bufp);
1174 1.8 ahoka if (error) {
1175 1.8 ahoka goto out;
1176 1.8 ahoka }
1177 1.1 ahoka
1178 1.1 ahoka bufp += chip->nc_page_size;
1179 1.1 ahoka left -= chip->nc_page_size;
1180 1.1 ahoka *retlen += chip->nc_page_size;
1181 1.1 ahoka }
1182 1.1 ahoka
1183 1.1 ahoka addr += chip->nc_page_size;
1184 1.1 ahoka }
1185 1.1 ahoka
1186 1.1 ahoka KASSERT(*retlen == len);
1187 1.8 ahoka out:
1188 1.8 ahoka mutex_exit(&sc->sc_device_lock);
1189 1.1 ahoka
1190 1.8 ahoka return error;
1191 1.1 ahoka }
1192 1.1 ahoka
1193 1.1 ahoka int
1194 1.7 ahoka nand_flash_write(device_t self, flash_off_t offset, size_t len, size_t *retlen,
1195 1.1 ahoka const uint8_t *buf)
1196 1.1 ahoka {
1197 1.1 ahoka struct nand_softc *sc = device_private(self);
1198 1.1 ahoka struct nand_chip *chip = &sc->sc_chip;
1199 1.1 ahoka const uint8_t *bufp;
1200 1.1 ahoka size_t pages, page;
1201 1.1 ahoka daddr_t addr;
1202 1.1 ahoka int error = 0;
1203 1.1 ahoka
1204 1.1 ahoka if ((offset + len) > chip->nc_size) {
1205 1.1 ahoka DPRINTF(("nand_flash_write: write (off: 0x%jx, len: %ju),"
1206 1.1 ahoka " is over device size (0x%jx)\n",
1207 1.1 ahoka (uintmax_t)offset, (uintmax_t)len,
1208 1.1 ahoka (uintmax_t)chip->nc_size));
1209 1.1 ahoka return EINVAL;
1210 1.1 ahoka }
1211 1.1 ahoka
1212 1.1 ahoka if (len % chip->nc_page_size != 0 ||
1213 1.1 ahoka offset % chip->nc_page_size != 0) {
1214 1.1 ahoka return nand_flash_write_unaligned(self,
1215 1.1 ahoka offset, len, retlen, buf);
1216 1.1 ahoka }
1217 1.1 ahoka
1218 1.1 ahoka pages = len / chip->nc_page_size;
1219 1.1 ahoka KASSERT(pages != 0);
1220 1.1 ahoka *retlen = 0;
1221 1.1 ahoka
1222 1.1 ahoka addr = offset;
1223 1.1 ahoka bufp = buf;
1224 1.1 ahoka
1225 1.1 ahoka mutex_enter(&sc->sc_device_lock);
1226 1.1 ahoka for (page = 0; page < pages; page++) {
1227 1.1 ahoka /* do we need this check here? */
1228 1.1 ahoka if (nand_isbad(self, addr)) {
1229 1.1 ahoka aprint_error_dev(self,
1230 1.1 ahoka "nand_flash_write: bad block encountered\n");
1231 1.1 ahoka
1232 1.1 ahoka error = EIO;
1233 1.1 ahoka goto out;
1234 1.1 ahoka }
1235 1.1 ahoka
1236 1.1 ahoka error = nand_program_page(self, addr, bufp);
1237 1.8 ahoka if (error) {
1238 1.1 ahoka goto out;
1239 1.8 ahoka }
1240 1.1 ahoka
1241 1.1 ahoka addr += chip->nc_page_size;
1242 1.1 ahoka bufp += chip->nc_page_size;
1243 1.1 ahoka *retlen += chip->nc_page_size;
1244 1.1 ahoka }
1245 1.1 ahoka out:
1246 1.1 ahoka mutex_exit(&sc->sc_device_lock);
1247 1.1 ahoka DPRINTF(("page programming: retlen: %zu, len: %zu\n", *retlen, len));
1248 1.1 ahoka
1249 1.1 ahoka return error;
1250 1.1 ahoka }
1251 1.1 ahoka
1252 1.1 ahoka /*
1253 1.1 ahoka * handle (page) unaligned read from nand
1254 1.1 ahoka */
1255 1.1 ahoka static int
1256 1.1 ahoka nand_flash_read_unaligned(device_t self, size_t offset,
1257 1.1 ahoka size_t len, size_t *retlen, uint8_t *buf)
1258 1.1 ahoka {
1259 1.1 ahoka struct nand_softc *sc = device_private(self);
1260 1.1 ahoka struct nand_chip *chip = &sc->sc_chip;
1261 1.1 ahoka daddr_t first, last, count, firstoff;
1262 1.1 ahoka uint8_t *bufp;
1263 1.1 ahoka daddr_t addr;
1264 1.1 ahoka size_t left;
1265 1.1 ahoka int error = 0, i;
1266 1.1 ahoka
1267 1.1 ahoka first = offset & chip->nc_page_mask;
1268 1.1 ahoka firstoff = offset & ~chip->nc_page_mask;
1269 1.1 ahoka last = (offset + len) & chip->nc_page_mask;
1270 1.1 ahoka count = (last - first) / chip->nc_page_size + 1;
1271 1.1 ahoka
1272 1.1 ahoka addr = first;
1273 1.1 ahoka bufp = buf;
1274 1.1 ahoka left = len;
1275 1.1 ahoka *retlen = 0;
1276 1.1 ahoka
1277 1.1 ahoka mutex_enter(&sc->sc_device_lock);
1278 1.1 ahoka if (count == 1) {
1279 1.1 ahoka error = nand_read_page(self, addr, chip->nc_page_cache);
1280 1.8 ahoka if (error) {
1281 1.1 ahoka goto out;
1282 1.8 ahoka }
1283 1.1 ahoka
1284 1.1 ahoka memcpy(bufp, chip->nc_page_cache + firstoff, len);
1285 1.1 ahoka
1286 1.1 ahoka *retlen = len;
1287 1.1 ahoka goto out;
1288 1.1 ahoka }
1289 1.1 ahoka
1290 1.1 ahoka for (i = 0; i < count && left != 0; i++) {
1291 1.1 ahoka error = nand_read_page(self, addr, chip->nc_page_cache);
1292 1.8 ahoka if (error) {
1293 1.1 ahoka goto out;
1294 1.8 ahoka }
1295 1.1 ahoka
1296 1.1 ahoka if (i == 0) {
1297 1.1 ahoka memcpy(bufp, chip->nc_page_cache + firstoff,
1298 1.1 ahoka chip->nc_page_size - firstoff);
1299 1.1 ahoka
1300 1.1 ahoka bufp += chip->nc_page_size - firstoff;
1301 1.1 ahoka left -= chip->nc_page_size - firstoff;
1302 1.1 ahoka *retlen += chip->nc_page_size - firstoff;
1303 1.1 ahoka
1304 1.1 ahoka } else if (i == count - 1) {
1305 1.1 ahoka memcpy(bufp, chip->nc_page_cache, left);
1306 1.1 ahoka *retlen += left;
1307 1.1 ahoka KASSERT(left < chip->nc_page_size);
1308 1.1 ahoka
1309 1.1 ahoka } else {
1310 1.1 ahoka memcpy(bufp, chip->nc_page_cache, chip->nc_page_size);
1311 1.1 ahoka
1312 1.1 ahoka bufp += chip->nc_page_size;
1313 1.1 ahoka left -= chip->nc_page_size;
1314 1.1 ahoka *retlen += chip->nc_page_size;
1315 1.1 ahoka }
1316 1.1 ahoka
1317 1.1 ahoka addr += chip->nc_page_size;
1318 1.1 ahoka }
1319 1.1 ahoka
1320 1.1 ahoka KASSERT(*retlen == len);
1321 1.1 ahoka
1322 1.1 ahoka out:
1323 1.1 ahoka mutex_exit(&sc->sc_device_lock);
1324 1.1 ahoka
1325 1.1 ahoka return error;
1326 1.1 ahoka }
1327 1.1 ahoka
1328 1.1 ahoka int
1329 1.7 ahoka nand_flash_read(device_t self, flash_off_t offset, size_t len, size_t *retlen,
1330 1.1 ahoka uint8_t *buf)
1331 1.1 ahoka {
1332 1.1 ahoka struct nand_softc *sc = device_private(self);
1333 1.1 ahoka struct nand_chip *chip = &sc->sc_chip;
1334 1.1 ahoka uint8_t *bufp;
1335 1.1 ahoka size_t addr;
1336 1.1 ahoka size_t i, pages;
1337 1.1 ahoka int error = 0;
1338 1.1 ahoka
1339 1.1 ahoka *retlen = 0;
1340 1.1 ahoka
1341 1.1 ahoka DPRINTF(("nand_flash_read: off: 0x%jx, len: %zu\n",
1342 1.1 ahoka (uintmax_t)offset, len));
1343 1.1 ahoka
1344 1.1 ahoka if (__predict_false((offset + len) > chip->nc_size)) {
1345 1.1 ahoka DPRINTF(("nand_flash_read: read (off: 0x%jx, len: %zu),"
1346 1.1 ahoka " is over device size (%ju)\n", (uintmax_t)offset,
1347 1.1 ahoka len, (uintmax_t)chip->nc_size));
1348 1.1 ahoka return EINVAL;
1349 1.1 ahoka }
1350 1.1 ahoka
1351 1.1 ahoka /* Handle unaligned access, shouldnt be needed when using the
1352 1.1 ahoka * block device, as strategy handles it, so only low level
1353 1.1 ahoka * accesses will use this path
1354 1.1 ahoka */
1355 1.2 ahoka /* XXX^2 */
1356 1.2 ahoka #if 0
1357 1.2 ahoka if (len < chip->nc_page_size)
1358 1.2 ahoka panic("TODO page size is larger than read size");
1359 1.2 ahoka #endif
1360 1.2 ahoka
1361 1.1 ahoka
1362 1.1 ahoka if (len % chip->nc_page_size != 0 ||
1363 1.1 ahoka offset % chip->nc_page_size != 0) {
1364 1.1 ahoka return nand_flash_read_unaligned(self,
1365 1.1 ahoka offset, len, retlen, buf);
1366 1.1 ahoka }
1367 1.1 ahoka
1368 1.1 ahoka bufp = buf;
1369 1.1 ahoka addr = offset;
1370 1.1 ahoka pages = len / chip->nc_page_size;
1371 1.1 ahoka
1372 1.1 ahoka mutex_enter(&sc->sc_device_lock);
1373 1.1 ahoka for (i = 0; i < pages; i++) {
1374 1.2 ahoka /* XXX do we need this check here? */
1375 1.1 ahoka if (nand_isbad(self, addr)) {
1376 1.1 ahoka aprint_error_dev(self, "bad block encountered\n");
1377 1.1 ahoka error = EIO;
1378 1.1 ahoka goto out;
1379 1.1 ahoka }
1380 1.1 ahoka error = nand_read_page(self, addr, bufp);
1381 1.1 ahoka if (error)
1382 1.1 ahoka goto out;
1383 1.1 ahoka
1384 1.1 ahoka bufp += chip->nc_page_size;
1385 1.1 ahoka addr += chip->nc_page_size;
1386 1.1 ahoka *retlen += chip->nc_page_size;
1387 1.1 ahoka }
1388 1.1 ahoka
1389 1.1 ahoka out:
1390 1.1 ahoka mutex_exit(&sc->sc_device_lock);
1391 1.1 ahoka
1392 1.1 ahoka return error;
1393 1.1 ahoka }
1394 1.1 ahoka
1395 1.1 ahoka int
1396 1.7 ahoka nand_flash_isbad(device_t self, flash_off_t ofs, bool *isbad)
1397 1.1 ahoka {
1398 1.1 ahoka struct nand_softc *sc = device_private(self);
1399 1.1 ahoka struct nand_chip *chip = &sc->sc_chip;
1400 1.1 ahoka bool result;
1401 1.1 ahoka
1402 1.1 ahoka if (ofs > chip->nc_size) {
1403 1.1 ahoka DPRINTF(("nand_flash_isbad: offset 0x%jx is larger than"
1404 1.1 ahoka " device size (0x%jx)\n", (uintmax_t)ofs,
1405 1.1 ahoka (uintmax_t)chip->nc_size));
1406 1.1 ahoka return EINVAL;
1407 1.1 ahoka }
1408 1.1 ahoka
1409 1.1 ahoka if (ofs % chip->nc_block_size != 0) {
1410 1.7 ahoka DPRINTF(("offset (0x%jx) is not the multiple of block size "
1411 1.7 ahoka "(%ju)",
1412 1.7 ahoka (uintmax_t)ofs, (uintmax_t)chip->nc_block_size));
1413 1.7 ahoka return EINVAL;
1414 1.1 ahoka }
1415 1.1 ahoka
1416 1.1 ahoka mutex_enter(&sc->sc_device_lock);
1417 1.1 ahoka result = nand_isbad(self, ofs);
1418 1.1 ahoka mutex_exit(&sc->sc_device_lock);
1419 1.1 ahoka
1420 1.7 ahoka *isbad = result;
1421 1.7 ahoka
1422 1.7 ahoka return 0;
1423 1.1 ahoka }
1424 1.1 ahoka
1425 1.1 ahoka int
1426 1.7 ahoka nand_flash_markbad(device_t self, flash_off_t ofs)
1427 1.1 ahoka {
1428 1.1 ahoka struct nand_softc *sc = device_private(self);
1429 1.1 ahoka struct nand_chip *chip = &sc->sc_chip;
1430 1.1 ahoka
1431 1.1 ahoka if (ofs > chip->nc_size) {
1432 1.1 ahoka DPRINTF(("nand_flash_markbad: offset 0x%jx is larger than"
1433 1.1 ahoka " device size (0x%jx)\n", ofs,
1434 1.1 ahoka (uintmax_t)chip->nc_size));
1435 1.1 ahoka return EINVAL;
1436 1.1 ahoka }
1437 1.1 ahoka
1438 1.1 ahoka if (ofs % chip->nc_block_size != 0) {
1439 1.1 ahoka panic("offset (%ju) is not the multiple of block size (%ju)",
1440 1.1 ahoka (uintmax_t)ofs, (uintmax_t)chip->nc_block_size);
1441 1.1 ahoka }
1442 1.1 ahoka
1443 1.1 ahoka mutex_enter(&sc->sc_device_lock);
1444 1.1 ahoka nand_markbad(self, ofs);
1445 1.1 ahoka mutex_exit(&sc->sc_device_lock);
1446 1.1 ahoka
1447 1.1 ahoka return 0;
1448 1.1 ahoka }
1449 1.1 ahoka
1450 1.1 ahoka int
1451 1.1 ahoka nand_flash_erase(device_t self,
1452 1.1 ahoka struct flash_erase_instruction *ei)
1453 1.1 ahoka {
1454 1.1 ahoka struct nand_softc *sc = device_private(self);
1455 1.1 ahoka struct nand_chip *chip = &sc->sc_chip;
1456 1.7 ahoka flash_off_t addr;
1457 1.8 ahoka int error = 0;
1458 1.1 ahoka
1459 1.1 ahoka if (ei->ei_addr < 0 || ei->ei_len < chip->nc_block_size)
1460 1.1 ahoka return EINVAL;
1461 1.1 ahoka
1462 1.1 ahoka if (ei->ei_addr + ei->ei_len > chip->nc_size) {
1463 1.1 ahoka DPRINTF(("nand_flash_erase: erase address is over the end"
1464 1.1 ahoka " of the device\n"));
1465 1.1 ahoka return EINVAL;
1466 1.1 ahoka }
1467 1.1 ahoka
1468 1.1 ahoka if (ei->ei_addr % chip->nc_block_size != 0) {
1469 1.1 ahoka aprint_error_dev(self,
1470 1.1 ahoka "nand_flash_erase: ei_addr (%ju) is not"
1471 1.1 ahoka "the multiple of block size (%ju)",
1472 1.1 ahoka (uintmax_t)ei->ei_addr,
1473 1.1 ahoka (uintmax_t)chip->nc_block_size);
1474 1.1 ahoka return EINVAL;
1475 1.1 ahoka }
1476 1.1 ahoka
1477 1.1 ahoka if (ei->ei_len % chip->nc_block_size != 0) {
1478 1.1 ahoka aprint_error_dev(self,
1479 1.1 ahoka "nand_flash_erase: ei_len (%ju) is not"
1480 1.1 ahoka "the multiple of block size (%ju)",
1481 1.1 ahoka (uintmax_t)ei->ei_addr,
1482 1.1 ahoka (uintmax_t)chip->nc_block_size);
1483 1.1 ahoka return EINVAL;
1484 1.1 ahoka }
1485 1.1 ahoka
1486 1.1 ahoka mutex_enter(&sc->sc_device_lock);
1487 1.1 ahoka addr = ei->ei_addr;
1488 1.1 ahoka while (addr < ei->ei_addr + ei->ei_len) {
1489 1.1 ahoka if (nand_isbad(self, addr)) {
1490 1.1 ahoka aprint_error_dev(self, "bad block encountered\n");
1491 1.1 ahoka ei->ei_state = FLASH_ERASE_FAILED;
1492 1.8 ahoka
1493 1.8 ahoka error = EIO;
1494 1.8 ahoka goto out;
1495 1.1 ahoka }
1496 1.1 ahoka
1497 1.1 ahoka error = nand_erase_block(self, addr);
1498 1.1 ahoka if (error) {
1499 1.1 ahoka ei->ei_state = FLASH_ERASE_FAILED;
1500 1.8 ahoka
1501 1.8 ahoka goto out;
1502 1.1 ahoka }
1503 1.1 ahoka
1504 1.1 ahoka addr += chip->nc_block_size;
1505 1.1 ahoka }
1506 1.1 ahoka mutex_exit(&sc->sc_device_lock);
1507 1.1 ahoka
1508 1.1 ahoka ei->ei_state = FLASH_ERASE_DONE;
1509 1.8 ahoka if (ei->ei_callback != NULL) {
1510 1.1 ahoka ei->ei_callback(ei);
1511 1.8 ahoka }
1512 1.1 ahoka
1513 1.1 ahoka return 0;
1514 1.8 ahoka out:
1515 1.8 ahoka mutex_exit(&sc->sc_device_lock);
1516 1.8 ahoka
1517 1.8 ahoka return error;
1518 1.1 ahoka }
1519 1.1 ahoka
1520 1.1 ahoka static int
1521 1.1 ahoka sysctl_nand_verify(SYSCTLFN_ARGS)
1522 1.1 ahoka {
1523 1.1 ahoka int error, t;
1524 1.1 ahoka struct sysctlnode node;
1525 1.1 ahoka
1526 1.1 ahoka node = *rnode;
1527 1.1 ahoka t = *(int *)rnode->sysctl_data;
1528 1.1 ahoka node.sysctl_data = &t;
1529 1.1 ahoka error = sysctl_lookup(SYSCTLFN_CALL(&node));
1530 1.1 ahoka if (error || newp == NULL)
1531 1.1 ahoka return error;
1532 1.1 ahoka
1533 1.1 ahoka if (node.sysctl_num == nand_cachesync_nodenum) {
1534 1.1 ahoka if (t <= 0 || t > 60)
1535 1.1 ahoka return EINVAL;
1536 1.1 ahoka } else {
1537 1.1 ahoka return EINVAL;
1538 1.1 ahoka }
1539 1.1 ahoka
1540 1.1 ahoka *(int *)rnode->sysctl_data = t;
1541 1.1 ahoka
1542 1.1 ahoka return 0;
1543 1.1 ahoka }
1544 1.1 ahoka
1545 1.1 ahoka SYSCTL_SETUP(sysctl_nand, "sysctl nand subtree setup")
1546 1.1 ahoka {
1547 1.1 ahoka int rc, nand_root_num;
1548 1.1 ahoka const struct sysctlnode *node;
1549 1.1 ahoka
1550 1.1 ahoka if ((rc = sysctl_createv(clog, 0, NULL, NULL,
1551 1.1 ahoka CTLFLAG_PERMANENT, CTLTYPE_NODE, "hw", NULL,
1552 1.1 ahoka NULL, 0, NULL, 0, CTL_HW, CTL_EOL)) != 0) {
1553 1.1 ahoka goto error;
1554 1.1 ahoka }
1555 1.1 ahoka
1556 1.1 ahoka if ((rc = sysctl_createv(clog, 0, NULL, &node,
1557 1.1 ahoka CTLFLAG_PERMANENT, CTLTYPE_NODE, "nand",
1558 1.1 ahoka SYSCTL_DESCR("NAND driver controls"),
1559 1.1 ahoka NULL, 0, NULL, 0, CTL_HW, CTL_CREATE, CTL_EOL)) != 0) {
1560 1.1 ahoka goto error;
1561 1.1 ahoka }
1562 1.1 ahoka
1563 1.1 ahoka nand_root_num = node->sysctl_num;
1564 1.1 ahoka
1565 1.1 ahoka if ((rc = sysctl_createv(clog, 0, NULL, &node,
1566 1.1 ahoka CTLFLAG_PERMANENT|CTLFLAG_READWRITE,
1567 1.1 ahoka CTLTYPE_INT, "cache_sync_timeout",
1568 1.1 ahoka SYSCTL_DESCR("NAND write cache sync timeout in seconds"),
1569 1.1 ahoka sysctl_nand_verify, 0, &nand_cachesync_timeout,
1570 1.1 ahoka 0, CTL_HW, nand_root_num, CTL_CREATE,
1571 1.1 ahoka CTL_EOL)) != 0) {
1572 1.1 ahoka goto error;
1573 1.1 ahoka }
1574 1.1 ahoka
1575 1.1 ahoka nand_cachesync_nodenum = node->sysctl_num;
1576 1.1 ahoka
1577 1.1 ahoka return;
1578 1.1 ahoka
1579 1.1 ahoka error:
1580 1.1 ahoka aprint_error("%s: sysctl_createv failed (rc = %d)\n", __func__, rc);
1581 1.1 ahoka }
1582 1.1 ahoka
1583 1.1 ahoka MODULE(MODULE_CLASS_DRIVER, nand, "flash");
1584 1.1 ahoka
1585 1.1 ahoka #ifdef _MODULE
1586 1.1 ahoka #include "ioconf.c"
1587 1.1 ahoka #endif
1588 1.1 ahoka
1589 1.1 ahoka static int
1590 1.1 ahoka nand_modcmd(modcmd_t cmd, void *opaque)
1591 1.1 ahoka {
1592 1.1 ahoka switch (cmd) {
1593 1.1 ahoka case MODULE_CMD_INIT:
1594 1.1 ahoka #ifdef _MODULE
1595 1.1 ahoka return config_init_component(cfdriver_ioconf_nand,
1596 1.1 ahoka cfattach_ioconf_nand, cfdata_ioconf_nand);
1597 1.1 ahoka #else
1598 1.1 ahoka return 0;
1599 1.1 ahoka #endif
1600 1.1 ahoka case MODULE_CMD_FINI:
1601 1.1 ahoka #ifdef _MODULE
1602 1.1 ahoka return config_fini_component(cfdriver_ioconf_nand,
1603 1.1 ahoka cfattach_ioconf_nand, cfdata_ioconf_nand);
1604 1.1 ahoka #else
1605 1.1 ahoka return 0;
1606 1.1 ahoka #endif
1607 1.1 ahoka default:
1608 1.1 ahoka return ENOTTY;
1609 1.1 ahoka }
1610 1.1 ahoka }
1611