k9f2g08.c 8.2 KB

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  1. /*
  2. * uffs/flash/k9f2g08.c
  3. *
  4. * COPYRIGHT (C) 2006 - 2011, RT-Thread Development Team
  5. *
  6. * The license and distribution terms for this file may be
  7. * found in the file LICENSE in this distribution or at
  8. * http://www.rt-thread.org/license/LICENSE
  9. *
  10. * Info:
  11. * Low hardware driver for samsung nandflash.
  12. */
  13. /* XXX UFFS XXX */
  14. #include <uffs/uffs_types.h>
  15. #include <nand.h>
  16. #include "s3c24x0.h"
  17. #include <k9f2g08.h>
  18. #define nand_write_cmd(cmd) (NFCMD = (cmd))
  19. #define nand_write_addr(addr) (NFADDR = (addr))
  20. #define nand_cs_en() (NFCONT &= ~(1<<1))
  21. #define nand_cs_ds() (NFCONT |= (1<<1))
  22. #define nand_Init_ECC() (NFCONT |= (1<<4))
  23. #define nand_read() (NFDATA8)
  24. #define nand_write(data) (NFDATA8 = (data))
  25. #define nand_wait() {while(!(NFSTAT&(1<<0)));} //wait tWB and check F_RNB pin.
  26. /*
  27. *************************************************
  28. ** H/W dependent functions **
  29. *************************************************
  30. */
  31. /* HCLK=100Mhz */
  32. #define TACLS 1 /* 1clk(0ns) */
  33. #define TWRPH0 4 /* 3clk(25ns) */
  34. #define TWRPH1 0 /* 1clk(10ns) */ /* TACLS+TWRPH0+TWRPH1>=50ns */
  35. int read_nand_stats(void) /* R/B is fixed? */
  36. {
  37. u8 stat;
  38. nand_write_cmd(NAND_CMD_STATUS);
  39. stat = nand_read();/* read byte */
  40. if(stat&1) return 1; /* I/O0=1 successful */
  41. else return 0; /* I/O0=0 unsuccessful */
  42. }
  43. /*
  44. *erase a block
  45. *return 0,successful
  46. *return 1,error
  47. */
  48. int K9F2G08_EraseBlock(u32 block)
  49. {
  50. int stat;
  51. u32 _page = block*PAGES_PER_BLOCK;
  52. nand_cs_en();
  53. nand_write_cmd(NAND_CMD_ERASE1); /* Erase one block 1st command */
  54. nand_write_addr(_page&0xff); /* Page number=0 */
  55. nand_write_addr((_page>>8)&0xff);
  56. nand_write_addr((_page>>16)&0xff);
  57. nand_write_cmd(NAND_CMD_ERASE2); /* Erase one blcok 2nd command */
  58. nand_wait(); /* Wait tBERS max 3ms. */
  59. stat = read_nand_stats();
  60. nand_cs_ds();
  61. return stat;
  62. }
  63. /*
  64. * check block is bad?
  65. * return 1 if it's a bad block, 0 if it's good.
  66. */
  67. int K9F2G08_Check_badblk(u32 block)
  68. {
  69. u8 data;
  70. u32 _page;/* frist page in block */
  71. _page = block*PAGES_PER_BLOCK; /* For 2'nd cycle I/O[7:5] */
  72. nand_cs_en();
  73. nand_write_cmd(NAND_CMD_READ0); /* Spare array read command */
  74. nand_write_addr(PAGE_DATA_SIZE&0xff); /* Read the mark of bad block in spare array(M addr=5) */
  75. nand_write_addr((PAGE_DATA_SIZE>>8)&0xff);
  76. nand_write_addr(_page&0xff); /* The mark of bad block is in 0 page */
  77. nand_write_addr((_page>>8)&0xff); /* For block number A[24:17] */
  78. nand_write_addr((_page>>16)&0xff); /* For block number A[25] */
  79. nand_write_cmd(NAND_CMD_READSTART);
  80. nand_wait(); /* Wait tR(max 12us) */
  81. data=nand_read();
  82. nand_cs_ds();
  83. if(data==0x00)
  84. return 1;/* bad */
  85. else
  86. return 0;/* good */
  87. }
  88. /*
  89. * mark a block is bad
  90. * return 0 if ok, 1:fail
  91. */
  92. int K9F2G08_Mark_badblk(u32 block)
  93. {
  94. u8 stat;
  95. u32 _page = block*PAGES_PER_BLOCK;
  96. nand_cs_en();
  97. nand_write_cmd(NAND_CMD_SEQIN); /* Write 1st command */
  98. nand_write_addr(PAGE_DATA_SIZE & 0xff);/* The mark of bad block */
  99. nand_write_addr((PAGE_DATA_SIZE>>8)&0xff);
  100. nand_write_addr(_page&0xff); /* marked 1th spare array */
  101. nand_write_addr((_page>>8)&0xff); /* in the 1st page. */
  102. nand_write_addr((_page>>16)&0xff);
  103. nand_write(0x00); /* 0x00 is commendatory make of the bad block. */
  104. nand_write_cmd(NAND_CMD_PAGEPROG); /* Write 2nd command */
  105. nand_wait(); /* Wait tPROG(200~500us) */
  106. stat = read_nand_stats();
  107. nand_cs_ds();
  108. return stat;
  109. }
  110. int K9F2G08_ReadPage(u32 block, u32 page, u8 *buffer, int len, u8 *ecc)
  111. {
  112. int i;
  113. u32 _page = block*PAGES_PER_BLOCK + page;
  114. /* NF_RSTECC(); */ /* Initialize ECC*/
  115. nand_cs_en();
  116. nand_write_cmd(NAND_CMD_READ0); /* Read command */
  117. nand_write_addr(0x00); /* Column = 0 */
  118. nand_write_addr(0x00);
  119. nand_write_addr(_page&0xff);
  120. nand_write_addr((_page>>8)&0xff);
  121. nand_write_addr((_page>>16)&0xff);
  122. nand_write_cmd(NAND_CMD_READSTART);
  123. nand_wait(); /* Wait tR(max 12us) */
  124. for(i=0;i<len;i++)
  125. {
  126. buffer[i] = nand_read(); /* Read one page */
  127. }
  128. nand_cs_ds();
  129. return 1;
  130. }
  131. int K9F2G08_ReadTags(u32 block, u32 page, u8 *spare, int ofs, int len)
  132. {
  133. int i;
  134. u32 _page = block*PAGES_PER_BLOCK + page;
  135. /* NF_RSTECC(); */ /* Initialize ECC */
  136. nand_cs_en();
  137. nand_write_cmd(NAND_CMD_READ0);
  138. nand_write_addr((PAGE_DATA_SIZE+ofs)&0xff);
  139. nand_write_addr(((PAGE_DATA_SIZE+ofs)>>8)&0xff);
  140. nand_write_addr(_page&0xff);
  141. nand_write_addr((_page>>8)&0xff);
  142. nand_write_addr((_page>>16)&0xff);
  143. nand_write_cmd(NAND_CMD_READSTART);
  144. nand_wait(); /* Wait tR(max 12us) */
  145. for(i=0;i<len;i++)
  146. {
  147. spare[i] = nand_read(); /* Read one page */
  148. }
  149. nand_cs_ds();
  150. return 1;
  151. }
  152. /*
  153. * write one page data
  154. * return 0,successful
  155. * return 1,error
  156. */
  157. int K9F2G08_WritePage(u32 block, u32 page, const u8 *buffer, int len, const u8 *ecc)
  158. {
  159. int i,stat;
  160. u32 _page = block*PAGES_PER_BLOCK + page;
  161. /* nand_Init_ECC(); */ /* nitialize ECC */
  162. nand_cs_en();
  163. nand_write_cmd(NAND_CMD_SEQIN);
  164. for(i=0;i<10;i++);
  165. nand_write_addr(0x00); /* Column 0 */
  166. nand_write_addr(0x00);
  167. nand_write_addr(_page&0xff);
  168. nand_write_addr((_page>>8)&0xff);
  169. nand_write_addr((_page>>16)&0xff);
  170. for(i=0;i<len;i++)
  171. {
  172. nand_write(*buffer++);
  173. }
  174. nand_write_cmd(NAND_CMD_PAGEPROG);
  175. nand_wait(); /* wait tPROG 200~500us; */
  176. stat = read_nand_stats();
  177. nand_cs_ds();
  178. return stat;
  179. }
  180. int K9F2G08_WriteTags(u32 block, u32 page, const u8 *spare, int ofs, int len)
  181. {
  182. int i,stat;
  183. u32 _page = block*PAGES_PER_BLOCK + page;
  184. /* nand_Init_ECC(); */ /* Initialize ECC */
  185. nand_cs_en();
  186. nand_write_cmd(NAND_CMD_SEQIN);
  187. for(i=0;i<10;i++);
  188. nand_write_addr((PAGE_DATA_SIZE+ofs)&0xff);
  189. nand_write_addr(((PAGE_DATA_SIZE+ofs)>>8)&0xff);
  190. nand_write_addr(_page&0xff);
  191. nand_write_addr((_page>>8)&0xff);
  192. nand_write_addr((_page>>16)&0xff);
  193. for(i=0;i<len;i++)
  194. {
  195. nand_write(*spare++);
  196. }
  197. nand_write_cmd(NAND_CMD_PAGEPROG);
  198. nand_wait(); /* wait tPROG 200~500us; */
  199. stat = read_nand_stats();
  200. if(!stat) /* Page write error */
  201. {
  202. nand_cs_ds();
  203. return 0;
  204. }
  205. else
  206. {
  207. nand_cs_ds();
  208. return 1;
  209. }
  210. }
  211. /* when all is true,read all byte */
  212. void K9F2G08_ReadChipID(u8* buf, UBOOL all)
  213. {
  214. nand_cs_en();
  215. nand_write_cmd(NAND_CMD_READID);
  216. nand_write_addr(NAND_CMD_READ0);
  217. buf[0] = nand_read();/* manufacturer ID */
  218. buf[1] = nand_read();/* physical chip ID */
  219. if(all)
  220. {
  221. buf[2] = nand_read();
  222. buf[3] = nand_read();
  223. /* buf[4] = nand_read(); */ /* Some chips have no 5th byte */
  224. }
  225. nand_cs_ds();
  226. }
  227. void K9F2G08_Init(void)
  228. {
  229. NFCONF = (TACLS<<12)|(TWRPH0<<8)|(TWRPH1<<4)|(0<<0);
  230. NFCONT = (0<<13)|(0<<12)|(0<<10)|(0<<9)|(0<<8)|(1<<6)|(1<<5)|(1<<4)|(1<<1)|(1<<0);
  231. NFSTAT = 0;
  232. /* 1 1 1 1, 1 xxx, r xxx, r xxx */
  233. /* En 512B 4step ECCR nFCE=H tACLS tWRPH0 tWRPH1 */
  234. }
  235. void K9F2G08_Reset(void)
  236. {
  237. nand_cs_en();
  238. nand_write_cmd(0xFF); /* reset command */
  239. nand_wait(); /* wait 200~500us */
  240. nand_cs_ds();
  241. K9F2G08_Init();
  242. }
  243. #if (0)
  244. int K9F2G08_ReadChunk(u32 chunk, u8 *data, u8 *tags)
  245. {
  246. int i;
  247. nand_cs_en();
  248. nand_write_cmd(NAND_CMD_READ0);
  249. nand_write_addr(0x00);
  250. nand_write_addr(0x00);
  251. nand_write_addr(chunk & 0xff);
  252. nand_write_addr((chunk >> 8) & 0xff);
  253. nand_write_addr((chunk >> 16) & 0xff); //
  254. /* nand_Init_ECC(); */
  255. nand_write_cmd(NAND_CMD_READ30);
  256. nand_wait(); /* Wait tR(max 12us) */
  257. for(i = 0; i < PAGE_DATA_SIZE; i++)
  258. {
  259. data[i] = nand_read(); /* Read page data */
  260. }
  261. for(i = 0; i < PAGE_SPARE_SIZE; i++)
  262. {
  263. tags[i] = nand_read(); /* Read spare array */
  264. }
  265. nand_cs_ds();
  266. return 1;
  267. }
  268. #endif