nand_boot.c 8.3 KB

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  1. /*
  2. * (C) Copyright 2006-2008
  3. * Stefan Roese, DENX Software Engineering, sr@denx.de.
  4. *
  5. * This program is free software; you can redistribute it and/or
  6. * modify it under the terms of the GNU General Public License as
  7. * published by the Free Software Foundation; either version 2 of
  8. * the License, or (at your option) any later version.
  9. *
  10. * This program is distributed in the hope that it will be useful,
  11. * but WITHOUT ANY WARRANTY; without even the implied warranty of
  12. * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
  13. * GNU General Public License for more details.
  14. *
  15. * You should have received a copy of the GNU General Public License
  16. * along with this program; if not, write to the Free Software
  17. * Foundation, Inc., 59 Temple Place, Suite 330, Boston,
  18. * MA 02111-1307 USA
  19. */
  20. #include <common.h>
  21. #include <nand.h>
  22. #include <asm/io.h>
  23. static int nand_ecc_pos[] = CONFIG_SYS_NAND_ECCPOS;
  24. #if (CONFIG_SYS_NAND_PAGE_SIZE <= 512)
  25. /*
  26. * NAND command for small page NAND devices (512)
  27. */
  28. static int nand_command(struct mtd_info *mtd, int block, int page, int offs, u8 cmd)
  29. {
  30. struct nand_chip *this = mtd->priv;
  31. int page_addr = page + block * CONFIG_SYS_NAND_PAGE_COUNT;
  32. while (!this->dev_ready(mtd))
  33. ;
  34. /* Begin command latch cycle */
  35. this->cmd_ctrl(mtd, cmd, NAND_CTRL_CLE | NAND_CTRL_CHANGE);
  36. /* Set ALE and clear CLE to start address cycle */
  37. /* Column address */
  38. this->cmd_ctrl(mtd, offs, NAND_CTRL_ALE | NAND_CTRL_CHANGE);
  39. this->cmd_ctrl(mtd, page_addr & 0xff, NAND_CTRL_ALE); /* A[16:9] */
  40. this->cmd_ctrl(mtd, (page_addr >> 8) & 0xff,
  41. NAND_CTRL_ALE); /* A[24:17] */
  42. #ifdef CONFIG_SYS_NAND_4_ADDR_CYCLE
  43. /* One more address cycle for devices > 32MiB */
  44. this->cmd_ctrl(mtd, (page_addr >> 16) & 0x0f,
  45. NAND_CTRL_ALE); /* A[28:25] */
  46. #endif
  47. /* Latch in address */
  48. this->cmd_ctrl(mtd, NAND_CMD_NONE, NAND_NCE | NAND_CTRL_CHANGE);
  49. /*
  50. * Wait a while for the data to be ready
  51. */
  52. while (!this->dev_ready(mtd))
  53. ;
  54. return 0;
  55. }
  56. #else
  57. /*
  58. * NAND command for large page NAND devices (2k)
  59. */
  60. static int nand_command(struct mtd_info *mtd, int block, int page, int offs, u8 cmd)
  61. {
  62. struct nand_chip *this = mtd->priv;
  63. int page_addr = page + block * CONFIG_SYS_NAND_PAGE_COUNT;
  64. void (*hwctrl)(struct mtd_info *mtd, int cmd,
  65. unsigned int ctrl) = this->cmd_ctrl;
  66. while (!this->dev_ready(mtd))
  67. ;
  68. /* Emulate NAND_CMD_READOOB */
  69. if (cmd == NAND_CMD_READOOB) {
  70. offs += CONFIG_SYS_NAND_PAGE_SIZE;
  71. cmd = NAND_CMD_READ0;
  72. }
  73. /* Shift the offset from byte addressing to word addressing. */
  74. if (this->options & NAND_BUSWIDTH_16)
  75. offs >>= 1;
  76. /* Begin command latch cycle */
  77. hwctrl(mtd, cmd, NAND_CTRL_CLE | NAND_CTRL_CHANGE);
  78. /* Set ALE and clear CLE to start address cycle */
  79. /* Column address */
  80. hwctrl(mtd, offs & 0xff,
  81. NAND_CTRL_ALE | NAND_CTRL_CHANGE); /* A[7:0] */
  82. hwctrl(mtd, (offs >> 8) & 0xff, NAND_CTRL_ALE); /* A[11:9] */
  83. /* Row address */
  84. hwctrl(mtd, (page_addr & 0xff), NAND_CTRL_ALE); /* A[19:12] */
  85. hwctrl(mtd, ((page_addr >> 8) & 0xff),
  86. NAND_CTRL_ALE); /* A[27:20] */
  87. #ifdef CONFIG_SYS_NAND_5_ADDR_CYCLE
  88. /* One more address cycle for devices > 128MiB */
  89. hwctrl(mtd, (page_addr >> 16) & 0x0f,
  90. NAND_CTRL_ALE); /* A[31:28] */
  91. #endif
  92. /* Latch in address */
  93. hwctrl(mtd, NAND_CMD_READSTART,
  94. NAND_CTRL_CLE | NAND_CTRL_CHANGE);
  95. hwctrl(mtd, NAND_CMD_NONE, NAND_NCE | NAND_CTRL_CHANGE);
  96. /*
  97. * Wait a while for the data to be ready
  98. */
  99. while (!this->dev_ready(mtd))
  100. ;
  101. return 0;
  102. }
  103. #endif
  104. static int nand_is_bad_block(struct mtd_info *mtd, int block)
  105. {
  106. struct nand_chip *this = mtd->priv;
  107. nand_command(mtd, block, 0, CONFIG_SYS_NAND_BAD_BLOCK_POS, NAND_CMD_READOOB);
  108. /*
  109. * Read one byte (or two if it's a 16 bit chip).
  110. */
  111. if (this->options & NAND_BUSWIDTH_16) {
  112. if (readw(this->IO_ADDR_R) != 0xffff)
  113. return 1;
  114. } else {
  115. if (readb(this->IO_ADDR_R) != 0xff)
  116. return 1;
  117. }
  118. return 0;
  119. }
  120. #if defined(CONFIG_SYS_NAND_4BIT_HW_ECC_OOBFIRST)
  121. static int nand_read_page(struct mtd_info *mtd, int block, int page, uchar *dst)
  122. {
  123. struct nand_chip *this = mtd->priv;
  124. u_char *ecc_calc;
  125. u_char *ecc_code;
  126. u_char *oob_data;
  127. int i;
  128. int eccsize = CONFIG_SYS_NAND_ECCSIZE;
  129. int eccbytes = CONFIG_SYS_NAND_ECCBYTES;
  130. int eccsteps = CONFIG_SYS_NAND_ECCSTEPS;
  131. uint8_t *p = dst;
  132. /*
  133. * No malloc available for now, just use some temporary locations
  134. * in SDRAM
  135. */
  136. ecc_calc = (u_char *)(CONFIG_SYS_SDRAM_BASE + 0x10000);
  137. ecc_code = ecc_calc + 0x100;
  138. oob_data = ecc_calc + 0x200;
  139. nand_command(mtd, block, page, 0, NAND_CMD_READOOB);
  140. this->read_buf(mtd, oob_data, CONFIG_SYS_NAND_OOBSIZE);
  141. nand_command(mtd, block, page, 0, NAND_CMD_READ0);
  142. /* Pick the ECC bytes out of the oob data */
  143. for (i = 0; i < CONFIG_SYS_NAND_ECCTOTAL; i++)
  144. ecc_code[i] = oob_data[nand_ecc_pos[i]];
  145. for (i = 0; eccsteps; eccsteps--, i += eccbytes, p += eccsize) {
  146. this->ecc.hwctl(mtd, NAND_ECC_READ);
  147. this->read_buf(mtd, p, eccsize);
  148. this->ecc.calculate(mtd, p, &ecc_calc[i]);
  149. this->ecc.correct(mtd, p, &ecc_code[i], &ecc_calc[i]);
  150. }
  151. return 0;
  152. }
  153. #else
  154. static int nand_read_page(struct mtd_info *mtd, int block, int page, uchar *dst)
  155. {
  156. struct nand_chip *this = mtd->priv;
  157. u_char *ecc_calc;
  158. u_char *ecc_code;
  159. u_char *oob_data;
  160. int i;
  161. int eccsize = CONFIG_SYS_NAND_ECCSIZE;
  162. int eccbytes = CONFIG_SYS_NAND_ECCBYTES;
  163. int eccsteps = CONFIG_SYS_NAND_ECCSTEPS;
  164. uint8_t *p = dst;
  165. nand_command(mtd, block, page, 0, NAND_CMD_READ0);
  166. /* No malloc available for now, just use some temporary locations
  167. * in SDRAM
  168. */
  169. ecc_calc = (u_char *)(CONFIG_SYS_SDRAM_BASE + 0x10000);
  170. ecc_code = ecc_calc + 0x100;
  171. oob_data = ecc_calc + 0x200;
  172. for (i = 0; eccsteps; eccsteps--, i += eccbytes, p += eccsize) {
  173. this->ecc.hwctl(mtd, NAND_ECC_READ);
  174. this->read_buf(mtd, p, eccsize);
  175. this->ecc.calculate(mtd, p, &ecc_calc[i]);
  176. }
  177. this->read_buf(mtd, oob_data, CONFIG_SYS_NAND_OOBSIZE);
  178. /* Pick the ECC bytes out of the oob data */
  179. for (i = 0; i < CONFIG_SYS_NAND_ECCTOTAL; i++)
  180. ecc_code[i] = oob_data[nand_ecc_pos[i]];
  181. eccsteps = CONFIG_SYS_NAND_ECCSTEPS;
  182. p = dst;
  183. for (i = 0 ; eccsteps; eccsteps--, i += eccbytes, p += eccsize) {
  184. /* No chance to do something with the possible error message
  185. * from correct_data(). We just hope that all possible errors
  186. * are corrected by this routine.
  187. */
  188. this->ecc.correct(mtd, p, &ecc_code[i], &ecc_calc[i]);
  189. }
  190. return 0;
  191. }
  192. #endif /* #if defined(CONFIG_SYS_NAND_4BIT_HW_ECC_OOBFIRST) */
  193. static int nand_load(struct mtd_info *mtd, unsigned int offs,
  194. unsigned int uboot_size, uchar *dst)
  195. {
  196. unsigned int block, lastblock;
  197. unsigned int page;
  198. /*
  199. * offs has to be aligned to a page address!
  200. */
  201. block = offs / CONFIG_SYS_NAND_BLOCK_SIZE;
  202. lastblock = (offs + uboot_size - 1) / CONFIG_SYS_NAND_BLOCK_SIZE;
  203. page = (offs % CONFIG_SYS_NAND_BLOCK_SIZE) / CONFIG_SYS_NAND_PAGE_SIZE;
  204. while (block <= lastblock) {
  205. if (!nand_is_bad_block(mtd, block)) {
  206. /*
  207. * Skip bad blocks
  208. */
  209. while (page < CONFIG_SYS_NAND_PAGE_COUNT) {
  210. nand_read_page(mtd, block, page, dst);
  211. dst += CONFIG_SYS_NAND_PAGE_SIZE;
  212. page++;
  213. }
  214. page = 0;
  215. } else {
  216. lastblock++;
  217. }
  218. block++;
  219. }
  220. return 0;
  221. }
  222. /*
  223. * The main entry for NAND booting. It's necessary that SDRAM is already
  224. * configured and available since this code loads the main U-Boot image
  225. * from NAND into SDRAM and starts it from there.
  226. */
  227. void nand_boot(void)
  228. {
  229. struct nand_chip nand_chip;
  230. nand_info_t nand_info;
  231. __attribute__((noreturn)) void (*uboot)(void);
  232. /*
  233. * Init board specific nand support
  234. */
  235. nand_chip.select_chip = NULL;
  236. nand_info.priv = &nand_chip;
  237. nand_chip.IO_ADDR_R = nand_chip.IO_ADDR_W = (void __iomem *)CONFIG_SYS_NAND_BASE;
  238. nand_chip.dev_ready = NULL; /* preset to NULL */
  239. nand_chip.options = 0;
  240. board_nand_init(&nand_chip);
  241. if (nand_chip.select_chip)
  242. nand_chip.select_chip(&nand_info, 0);
  243. /*
  244. * Load U-Boot image from NAND into RAM
  245. */
  246. nand_load(&nand_info, CONFIG_SYS_NAND_U_BOOT_OFFS, CONFIG_SYS_NAND_U_BOOT_SIZE,
  247. (uchar *)CONFIG_SYS_NAND_U_BOOT_DST);
  248. #ifdef CONFIG_NAND_ENV_DST
  249. nand_load(&nand_info, CONFIG_ENV_OFFSET, CONFIG_ENV_SIZE,
  250. (uchar *)CONFIG_NAND_ENV_DST);
  251. #ifdef CONFIG_ENV_OFFSET_REDUND
  252. nand_load(&nand_info, CONFIG_ENV_OFFSET_REDUND, CONFIG_ENV_SIZE,
  253. (uchar *)CONFIG_NAND_ENV_DST + CONFIG_ENV_SIZE);
  254. #endif
  255. #endif
  256. if (nand_chip.select_chip)
  257. nand_chip.select_chip(&nand_info, -1);
  258. /*
  259. * Jump to U-Boot image
  260. */
  261. uboot = (void *)CONFIG_SYS_NAND_U_BOOT_START;
  262. (*uboot)();
  263. }