nand.c 17 KB

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  1. /*
  2. * Copyright (c) 2006-2021, RT-Thread Development Team
  3. *
  4. * SPDX-License-Identifier: Apache-2.0
  5. *
  6. * Change Logs:
  7. * Date Author Notes
  8. * 2011-05-25 Bernard first version
  9. */
  10. #include <rtdevice.h>
  11. #include "nand.h"
  12. #include "mb9bf506r.h"
  13. /*
  14. * NandFlash driver for SamSung K9F5608
  15. * 32M x 8bit
  16. */
  17. #define PAGE_SIZE 512
  18. #define PAGE_PER_BLOCK 32
  19. #define BLOCK_NUM 2048
  20. /* device driver debug trace */
  21. /* #define NAND_DEBUG */
  22. #ifdef NAND_DEBUG
  23. #define trace_log rt_kprintf
  24. #else
  25. #define trace_log(...)
  26. #endif
  27. /*
  28. * OOB,
  29. * when block has been erased, OOB is 0xff.
  30. * when block has been written, OOB is 0x00.
  31. */
  32. struct rt_device_nand
  33. {
  34. struct rt_device parent; /* which is inherited from rt_device */
  35. rt_uint16_t block_num; /* total block number in device */
  36. rt_uint16_t page_per_block; /* pages in one block */
  37. rt_uint16_t page_size; /* page size */
  38. /* this buffer which used as to save data before erase block */
  39. rt_uint8_t block_buffer[PAGE_SIZE * PAGE_PER_BLOCK];
  40. };
  41. static struct rt_device_nand _nand;
  42. /* Flash operation definition */
  43. #define NF_CMD(cmd) {*(volatile unsigned char*)(NF_FLASH_BASE_ADDR+NF_CMD_OFFSET) = (unsigned char)(cmd);}
  44. #define NF_ADDR(addr) {*(volatile unsigned char*)(NF_FLASH_BASE_ADDR+NF_ADDR_OFFSET)= (unsigned char)(addr);}
  45. #define NF_RDDATA() (*(volatile unsigned char*)(NF_FLASH_BASE_ADDR+NF_DATA_OFFSET))
  46. #define NF_WRDATA(data) {*(volatile unsigned char*)(NF_FLASH_BASE_ADDR+NF_DATA_OFFSET)= (unsigned char)(data);}
  47. #define NF_CLR_ALE() {*(volatile unsigned char*)(NF_FLASH_BASE_ADDR+NF_ALE_OFFSET) = (unsigned char)0;}
  48. /* Flash Control IO definition */
  49. #define NF_OE_H() {IO_NF_PDOR |= NF_EN;}
  50. #define NF_OE_L() {IO_NF_PDOR &= ~NF_EN;}
  51. #define NF_DATA_OUT() {IO_NF_PDOR &= ~NF_DATA_DIR;}
  52. #define NF_DATA_IN() {IO_NF_PDOR |= NF_DATA_DIR;}
  53. static unsigned char NF_ReadStatus(void);
  54. static void Wait(unsigned int cnt);
  55. static void NF_Reset(void);
  56. static void Wait(unsigned int cnt)
  57. {
  58. while(cnt--);
  59. }
  60. static void NF_Reset(void)
  61. {
  62. NF_OE_L();
  63. NF_DATA_OUT();
  64. NF_CMD(NAND_CMD_RESET);
  65. NF_OE_H();
  66. Wait(10000); /* wait for Trst */
  67. }
  68. static unsigned char NF_ReadStatus(void)
  69. {
  70. unsigned int timeout=0;
  71. NF_DATA_OUT();
  72. NF_CMD(NAND_CMD_STATUS);
  73. NF_DATA_IN();
  74. while(!(NF_RDDATA() & 0x40))
  75. {
  76. timeout++;
  77. if(timeout == 0x00080000)
  78. return FLASH_NG;
  79. }
  80. if(NF_RDDATA() & 0x01)return FLASH_NG;
  81. return FLASH_OK;
  82. }
  83. /*
  84. * @ Funciton: NF_Init
  85. * Parameter: None
  86. * Return: None
  87. */
  88. static void NF_Init(void)
  89. {
  90. FM3_GPIO->PFR5 |= (0x7ff); /* D0-D5, CS7, ALE, CLE, WEX, REX */
  91. FM3_GPIO->PFR3 |= (0x3); /* D6-D7 */
  92. FM3_GPIO->EPFR10 |= (1<<13 /* CS enable */
  93. |1<<6 /* ALE, CLE, WEX, REX enable */
  94. |1<<0); /* D0-D7 enable */
  95. FM3_EXBUS->AREA7 = 0x001f00e0; /* Select CS7 area, 32Mbyte size */
  96. FM3_EXBUS->MODE7 |= (1<<4); /* Nand Flash mode turn on, set 8 bit width */
  97. IO_NF_PFR = IO_NF_PFR & ~(NF_EN|NF_DATA_DIR);
  98. IO_NF_DDR = IO_NF_DDR | (NF_EN|NF_DATA_DIR);
  99. IO_NF_PDOR = IO_NF_PDOR | (NF_EN | NF_DATA_DIR); /* disable Flash operation */
  100. /*Reset NAND*/
  101. NF_Reset();
  102. }
  103. static void NF_UnInit(void)
  104. {
  105. FM3_GPIO->PFR5 &= ~(0x7ff); /* disable D0-D5, CS7, ALE, CLE, WEX, REX */
  106. FM3_GPIO->PFR3 &= ~(0x3); /* disable D6-D7 */
  107. FM3_GPIO->EPFR10 &= ~(1<<13 /* disable CS enable */
  108. |1<<6 /* disable ALE, CLE, WEX, REX enable */
  109. |1<<0); /* disable D0-D7 enable */
  110. FM3_EXBUS->MODE7 &= ~(1<<4);
  111. IO_NF_PFR = IO_NF_PFR & ~(NF_EN|NF_DATA_DIR);
  112. IO_NF_DDR = IO_NF_DDR | (NF_EN|NF_DATA_DIR);
  113. IO_NF_PDOR = IO_NF_PDOR | (NF_EN | NF_DATA_DIR); /* disable Flash operation */
  114. }
  115. /*
  116. * @ Funciton: NF_ReadPage
  117. * Parameter: block (max: 2048)
  118. * page (max:32)
  119. * buffer: pointer to data buffer
  120. * Return: 0: Flash Operation OK
  121. * 1: Flash Operation NG
  122. */
  123. int NF_ReadPage(unsigned int block, unsigned int page, unsigned char *buffer,
  124. unsigned char *oob)
  125. {
  126. unsigned int blockPage,i;
  127. NF_Init();
  128. blockPage=(block<<5)+page; /* 1 block=32 page */
  129. NF_OE_L();
  130. NF_DATA_OUT();
  131. if (buffer != RT_NULL)
  132. {
  133. volatile unsigned char ch;
  134. NF_CMD(NAND_CMD_READ0); /* send read data */
  135. NF_ADDR(0);
  136. NF_ADDR(blockPage & 0xff);
  137. NF_ADDR((blockPage>>8) & 0xff); /* send 3 byte address */
  138. NF_CLR_ALE();
  139. NF_DATA_IN();
  140. Wait(500);
  141. for(i=0;i<512;i++) /* read 512 bytes data */
  142. buffer[i] = NF_RDDATA();
  143. for(i=0;i<16;i++) /* read 16 bytes oob */
  144. if (oob != RT_NULL)
  145. oob[i] = NF_RDDATA();
  146. else
  147. ch = NF_RDDATA();
  148. }
  149. else
  150. {
  151. NF_CMD(NAND_CMD_READOOB); /* send read data */
  152. NF_ADDR(0);
  153. NF_ADDR(blockPage & 0xff);
  154. NF_ADDR((blockPage>>8) & 0xff); /* send 3 byte address */
  155. NF_CLR_ALE();
  156. NF_DATA_IN();
  157. Wait(500);
  158. for (i=0; i<16; i++) /* read 16 bytes oob */
  159. oob[i] = NF_RDDATA();
  160. }
  161. NF_OE_H();
  162. NF_UnInit();
  163. return 0;
  164. }
  165. /*
  166. * @ Funciton: NF_EraseBlock
  167. * Parameter: block (max: 2048)
  168. * Return: 0: Flash Operation OK
  169. * 1: Flash Operation NG
  170. */
  171. int NF_EraseBlock(unsigned int block)
  172. {
  173. rt_uint32_t blockPage;
  174. trace_log("Erase block %d: ", block);
  175. NF_Init();
  176. blockPage = (block << 5);
  177. NF_OE_L();
  178. NF_DATA_OUT();
  179. NF_CMD(NAND_CMD_ERASE1); /* send erase command */
  180. NF_ADDR(blockPage & 0xff);
  181. NF_ADDR((blockPage >> 8) & 0xff);
  182. NF_CMD(NAND_CMD_ERASE2); /* start erase */
  183. if(NF_ReadStatus())
  184. {
  185. NF_Reset();
  186. NF_OE_H();
  187. NF_UnInit();
  188. trace_log("Failed\n");
  189. rt_kprintf("erase block failed\n");
  190. return FLASH_NG;
  191. }
  192. NF_OE_H();
  193. NF_UnInit();
  194. trace_log("OK\n");
  195. return FLASH_OK;
  196. }
  197. /*
  198. * @ Funciton: NF_WritePage
  199. * Parameter: block (max: 2048)
  200. * page (max:32)
  201. * buffer: pointer to data buffer
  202. * Return: 0: Flash Operation OK
  203. * 1: Flash Operation NG
  204. */
  205. int NF_WritePage(unsigned block, unsigned page, const rt_uint8_t *buffer)
  206. {
  207. unsigned int blockPage,i;
  208. unsigned char se[16] = {0};
  209. unsigned char data;
  210. blockPage = (block<<5)+page;
  211. NF_Init();
  212. NF_OE_L();
  213. NF_DATA_OUT();
  214. NF_CMD(0x00); /* set programming area */
  215. NF_CMD(NAND_CMD_SEQIN); /* send write command */
  216. NF_ADDR(0);
  217. NF_ADDR(blockPage & 0xff);
  218. NF_ADDR((blockPage>>8) & 0xff);
  219. NF_CLR_ALE();
  220. for(i=0;i<512;i++) NF_WRDATA(buffer[i]); /* write data */
  221. for(i=0;i<16;i++) NF_WRDATA(se[i]); /* dummy write */
  222. NF_CMD(NAND_CMD_PAGEPROG); /* start programming */
  223. if(NF_ReadStatus())
  224. {
  225. NF_Reset();
  226. NF_OE_H();
  227. NF_UnInit();
  228. trace_log("write failed\n");
  229. return FLASH_NG;
  230. }
  231. /* verify the write data */
  232. NF_DATA_OUT();
  233. NF_CMD(NAND_CMD_READ0); /* send read command */
  234. NF_ADDR(0);
  235. NF_ADDR(blockPage & 0xff);
  236. NF_ADDR((blockPage>>8) & 0xff);
  237. NF_CLR_ALE();
  238. NF_DATA_IN();
  239. Wait(500);
  240. for(i=0; i<512; i++)
  241. {
  242. data=NF_RDDATA(); /* verify 1-512 byte */
  243. if(data != buffer[i])
  244. {
  245. trace_log("block %d, page %d\n", block , page);
  246. trace_log("write data failed[%d]: %02x %02x\n", i, data, buffer[i]);
  247. NF_Reset();
  248. NF_OE_H();
  249. NF_UnInit();
  250. return FLASH_NG;
  251. }
  252. }
  253. for(i=0; i<16; i++)
  254. {
  255. data=NF_RDDATA(); /* verify 16 byte dummy data */
  256. if(data != se[i])
  257. {
  258. trace_log("block %d, page %d\n", block , page);
  259. trace_log("write oob failed[%d]: %02x %02x\n", i, data, se[i]);
  260. NF_Reset();
  261. NF_OE_H();
  262. NF_UnInit();
  263. return FLASH_NG;
  264. }
  265. }
  266. NF_OE_H();
  267. NF_UnInit();
  268. return FLASH_OK;
  269. }
  270. /*
  271. * @ Funciton: NF_ReadID
  272. * Parameter: id: pointer to device ID
  273. * Return: None
  274. */
  275. void NF_ReadID(unsigned char *id)
  276. {
  277. unsigned char maker_code;
  278. NF_Init();
  279. NF_OE_L();
  280. NF_DATA_OUT();
  281. NF_CMD(NAND_CMD_READID);
  282. NF_ADDR(0x00);
  283. NF_CLR_ALE();
  284. Wait(10);
  285. NF_DATA_IN();
  286. maker_code = NF_RDDATA();
  287. maker_code = maker_code;
  288. *id = NF_RDDATA();
  289. NF_OE_H();
  290. NF_UnInit();
  291. }
  292. static rt_err_t rt_nand_init (rt_device_t dev)
  293. {
  294. /* empty implementation */
  295. return RT_EOK;
  296. }
  297. static rt_err_t rt_nand_open(rt_device_t dev, rt_uint16_t oflag)
  298. {
  299. /* empty implementation */
  300. return RT_EOK;
  301. }
  302. static rt_err_t rt_nand_close(rt_device_t dev)
  303. {
  304. /* empty implementation */
  305. return RT_EOK;
  306. }
  307. /* nand device read */
  308. static rt_ssize_t rt_nand_read (rt_device_t dev, rt_off_t pos, void* buffer,
  309. rt_size_t size)
  310. {
  311. rt_ubase_t block; /* block of position */
  312. rt_ubase_t page, index; /* page in block of position */
  313. rt_uint8_t *page_ptr, oob[16];
  314. struct rt_device_nand *nand;
  315. /* get nand device */
  316. nand = (struct rt_device_nand*) dev;
  317. RT_ASSERT(nand != RT_NULL);
  318. /* get block and page */
  319. block = pos / nand->page_per_block;
  320. page = pos % nand->page_per_block;
  321. trace_log("nand read: position %d, block %d, page %d, size %d\n",
  322. pos, block, page, size);
  323. /* set page buffer pointer */
  324. page_ptr = (rt_uint8_t*) buffer;
  325. for (index = 0; index < size; index ++)
  326. {
  327. NF_ReadPage(block, page + index, page_ptr, oob);
  328. page_ptr += nand->page_size;
  329. if (page + index > nand->page_per_block)
  330. {
  331. block += 1;
  332. page = 0;
  333. }
  334. }
  335. /* return read size (count of block) */
  336. return size;
  337. }
  338. /*
  339. * write pages by erase block first
  340. * @param nand the nand device driver
  341. * @param block the block of page
  342. * @param page the page
  343. * @param buffer the data buffer to be written
  344. * @param pages the number of pages to be written
  345. */
  346. static int rt_nand_eraseblock_writepage(struct rt_device_nand* nand,
  347. rt_ubase_t block, rt_ubase_t page,
  348. const rt_uint8_t *buffer, rt_ubase_t pages)
  349. {
  350. rt_ubase_t index;
  351. rt_uint32_t page_status;
  352. rt_uint8_t *page_ptr, oob[16];
  353. /* set page status */
  354. page_status = 0;
  355. /* read each page in block */
  356. page_ptr = nand->block_buffer;
  357. for (index = 0; index < nand->page_per_block; index ++)
  358. {
  359. NF_ReadPage(block, index, page_ptr, oob);
  360. if (!oob[0])
  361. page_status |= (1 << index);
  362. page_ptr += nand->page_size;
  363. }
  364. /* erase block */
  365. NF_EraseBlock(block);
  366. page_ptr = &(nand->block_buffer[page * nand->page_size]);
  367. /* merge buffer to page buffer */
  368. for (index = 0; index < pages; index ++)
  369. {
  370. rt_memcpy(page_ptr, buffer, nand->page_size);
  371. /* set page status */
  372. page_status |= (1 << (page + index));
  373. /* move to next page */
  374. page_ptr += nand->page_size;
  375. buffer += nand->page_size;
  376. }
  377. /* write to flash */
  378. page_ptr = nand->block_buffer;
  379. for (index = 0; index < nand->page_per_block; index ++)
  380. {
  381. if (page_status & (1 << index))
  382. NF_WritePage(block, index, page_ptr);
  383. /* move to next page */
  384. page_ptr += nand->page_size;
  385. }
  386. return 0;
  387. }
  388. /* nand device write */
  389. static rt_ssize_t rt_nand_write (rt_device_t dev, rt_off_t pos,
  390. const void* buffer, rt_size_t size)
  391. {
  392. rt_ubase_t block, page;
  393. rt_uint8_t oob[16];
  394. struct rt_device_nand *nand;
  395. nand = (struct rt_device_nand*) dev;
  396. RT_ASSERT(nand != RT_NULL);
  397. /* get block and page */
  398. block = pos / nand->page_per_block;
  399. page = pos % nand->page_per_block;
  400. trace_log("nand write: position %d, block %d, page %d, size %d\n",
  401. pos, block, page, size);
  402. if (size == 1)
  403. {
  404. /* write one page */
  405. /* read oob to get page status */
  406. NF_ReadPage(block, page, RT_NULL, oob);
  407. if (oob[0])
  408. NF_WritePage(block, page, buffer);
  409. else
  410. /* erase block and then write page */
  411. rt_nand_eraseblock_writepage(nand, block, page, buffer, 1);
  412. }
  413. else if (size > 1)
  414. {
  415. rt_ubase_t index;
  416. rt_ubase_t need_erase_block;
  417. const rt_uint8_t *page_ptr;
  418. rt_ubase_t chunk_pages, pages;
  419. pages = size;
  420. page_ptr = (const rt_uint8_t*) buffer;
  421. do
  422. {
  423. need_erase_block = 0;
  424. /* calculate pages in current chunk */
  425. if (pages > nand->page_per_block - page)
  426. chunk_pages = nand->page_per_block - page;
  427. else
  428. chunk_pages = pages;
  429. /* get page status in current block */
  430. for (index = page; index < page + chunk_pages; index ++)
  431. {
  432. NF_ReadPage(block, index, RT_NULL, oob);
  433. if (!oob[0])
  434. {
  435. /* this page has data, need erase this block firstly */
  436. need_erase_block = 1;
  437. break;
  438. }
  439. }
  440. if (need_erase_block)
  441. {
  442. /* erase block and then write it */
  443. rt_nand_eraseblock_writepage(nand, block, page, page_ptr, chunk_pages);
  444. page_ptr += chunk_pages * nand->page_size;
  445. }
  446. else
  447. {
  448. /* write pages directly */
  449. for (index = page; index < page + chunk_pages; index ++)
  450. {
  451. NF_WritePage(block, index, page_ptr);
  452. page_ptr += nand->page_size;
  453. }
  454. }
  455. pages -= chunk_pages;
  456. page = 0; block ++; /* move to next block */
  457. }
  458. while (pages);
  459. }
  460. return size;
  461. }
  462. static rt_err_t rt_nand_control (rt_device_t dev, int cmd, void *args)
  463. {
  464. struct rt_device_nand *nand;
  465. nand = (struct rt_device_nand*) dev;
  466. RT_ASSERT(dev != RT_NULL);
  467. switch (cmd)
  468. {
  469. case RT_DEVICE_CTRL_BLK_GETGEOME:
  470. {
  471. struct rt_device_blk_geometry *geometry;
  472. geometry = (struct rt_device_blk_geometry *)args;
  473. if (geometry == RT_NULL) return -RT_ERROR;
  474. geometry->bytes_per_sector = nand->page_size;
  475. geometry->block_size = nand->page_size * nand->page_per_block;
  476. geometry->sector_count = nand->block_num * nand->page_per_block;
  477. }
  478. break;
  479. }
  480. return RT_EOK;
  481. }
  482. void rt_hw_nand_init(void)
  483. {
  484. /* initialize nand flash structure */
  485. _nand.block_num = BLOCK_NUM;
  486. _nand.page_per_block = PAGE_PER_BLOCK;
  487. _nand.page_size = PAGE_SIZE;
  488. rt_memset(_nand.block_buffer, 0, sizeof(_nand.block_buffer));
  489. _nand.parent.type = RT_Device_Class_MTD;
  490. _nand.parent.rx_indicate = RT_NULL;
  491. _nand.parent.tx_complete = RT_NULL;
  492. _nand.parent.init = rt_nand_init;
  493. _nand.parent.open = rt_nand_open;
  494. _nand.parent.close = rt_nand_close;
  495. _nand.parent.read = rt_nand_read;
  496. _nand.parent.write = rt_nand_write;
  497. _nand.parent.control = rt_nand_control;
  498. /* register a MTD device */
  499. rt_device_register(&(_nand.parent), "nand", RT_DEVICE_FLAG_RDWR);
  500. }
  501. #ifdef NAND_DEBUG
  502. #include <finsh.h>
  503. unsigned char nand_buffer[512];
  504. unsigned char nand_oob[16];
  505. void dump_mem(unsigned char* buffer, int length)
  506. {
  507. int i;
  508. if (length > 64) length = 64;
  509. for (i = 0; i < length; i ++)
  510. {
  511. rt_kprintf("%02x ", *buffer++);
  512. if (((i+1) % 16) == 0)
  513. rt_kprintf("\n");
  514. }
  515. rt_kprintf("\n");
  516. }
  517. void nand_read(int block, int page)
  518. {
  519. rt_kprintf("read block %d, page %d\n", block, page);
  520. NF_ReadPage(block, page, nand_buffer, nand_oob);
  521. rt_kprintf("page data:\n");
  522. dump_mem(nand_buffer, 512);
  523. rt_kprintf("oob data:\n");
  524. dump_mem(nand_oob, 16);
  525. }
  526. FINSH_FUNCTION_EXPORT_ALIAS(nand_read, read_page, read page[block/page]);
  527. void nand_write(int block, int page)
  528. {
  529. int i;
  530. for (i = 0; i < 512; i ++)
  531. nand_buffer[i] = i;
  532. NF_WritePage(block, page, nand_buffer);
  533. }
  534. FINSH_FUNCTION_EXPORT_ALIAS(nand_write, write_page, write page[block/page]);
  535. void nand_erase(int block)
  536. {
  537. NF_EraseBlock(block);
  538. }
  539. FINSH_FUNCTION_EXPORT_ALIAS(nand_erase, erase_block, erase block[block]);
  540. void nand_readoob(int block, int page)
  541. {
  542. rt_kprintf("read oob on block %d, page %d\n", block, page);
  543. NF_ReadPage(block, page, RT_NULL, (unsigned char*)nand_oob);
  544. rt_kprintf("oob data:\n");
  545. dump_mem(nand_oob, 16);
  546. }
  547. FINSH_FUNCTION_EXPORT_ALIAS(nand_readoob, readoob, read oob[block/page]);
  548. void nand_erase_chip(void)
  549. {
  550. int i;
  551. unsigned char id;
  552. NF_ReadID(&id);
  553. rt_kprintf("id: %02x\n", id);
  554. for (i = 0; i < 2048; i ++)
  555. {
  556. NF_EraseBlock(i);
  557. }
  558. }
  559. FINSH_FUNCTION_EXPORT_ALIAS(nand_erase_chip, erase_chip, erase whole chip);
  560. #endif