little_flash.c 25 KB

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  1. #include "little_flash.h"
  2. #include "little_flash_table.h"
  3. extern lf_err_t little_flash_port_init(little_flash_t *lf);
  4. static const little_flash_chipinfo_t little_flash_table[] = LITTLE_FLASH_CHIP_TABLE;
  5. lf_err_t little_flash_write_status(const little_flash_t *lf, uint8_t address, uint8_t status){
  6. lf_err_t result = LF_ERR_OK;
  7. uint8_t cmd_data[3]={0};
  8. cmd_data[0]=LF_CMD_WRITE_STATUS_REGISTER;
  9. if (address){
  10. cmd_data[1]=address;
  11. cmd_data[2]=status;
  12. }else{
  13. cmd_data[1]=status;
  14. }
  15. result = lf->spi.transfer(lf,cmd_data, address?3:2,LF_NULL,0);
  16. return result;
  17. }
  18. lf_err_t little_flash_read_status(const little_flash_t *lf, uint8_t address, uint8_t *status){
  19. lf_err_t result = LF_ERR_OK;
  20. uint8_t cmd_data[2]={0};
  21. cmd_data[0]=LF_CMD_READ_STATUS_REGISTER;
  22. if (address){
  23. cmd_data[1]=address;
  24. }
  25. result = lf->spi.transfer(lf,cmd_data, address?2:1,status,1);
  26. return result;
  27. }
  28. static lf_err_t little_flash_wait_busy(const little_flash_t *lf, uint32_t timeout) {
  29. lf_err_t result = LF_ERR_OK;
  30. size_t retry_times = lf->chip_info.retry_times;
  31. uint32_t timeout_us = timeout;
  32. volatile uint8_t status;
  33. do{
  34. timeout_us = timeout;
  35. do{
  36. if (lf->chip_info.type==LF_DRIVER_NOR_FLASH){
  37. result = little_flash_read_status(lf, 0, &status);
  38. }else{
  39. result = little_flash_read_status(lf, LF_NANDFLASH_STATUS_REGISTER3, &status);
  40. }
  41. // LF_DEBUG("status 0x%02x",status);
  42. if (result==LF_ERR_OK && (status&LF_STATUS_REGISTER_BUSY)==0){
  43. return LF_ERR_OK;
  44. }
  45. if (timeout>1000){
  46. lf->wait_ms(1);
  47. timeout_us -= 1000;
  48. }else{
  49. lf->wait_10us(1);
  50. timeout_us -= 10;
  51. }
  52. } while (timeout_us>0);
  53. retry_times--;
  54. } while (retry_times>0);
  55. LF_ERROR("Error: Wait busy timeout.");
  56. return LF_ERR_TIMEOUT;
  57. }
  58. /*
  59. reset device
  60. */
  61. static lf_err_t little_flash_reset(little_flash_t *lf){
  62. lf_err_t result = LF_ERR_OK;
  63. result |= little_flash_wait_busy(lf,1000);
  64. if(lf->chip_info.type==LF_DRIVER_NOR_FLASH){
  65. result |= lf->spi.transfer(lf,(uint8_t[]){LF_CMD_ENABLE_RESET}, 1,LF_NULL,0);
  66. result |= lf->spi.transfer(lf,(uint8_t[]){LF_CMD_NORFLASH_RESET}, 1,LF_NULL,0);
  67. }else{
  68. // nand flash
  69. result |= lf->spi.transfer(lf,(uint8_t[]){LF_CMD_NANDFLASH_RESET}, 1,LF_NULL,0);
  70. }
  71. lf->wait_ms(50);
  72. result |= little_flash_wait_busy(lf,1000);
  73. if (result) return result;
  74. if(lf->chip_info.type==LF_DRIVER_NOR_FLASH){
  75. if(lf->chip_info.prog_size==0) lf->chip_info.prog_size = LF_NORFLASH_PAGE_ZISE;
  76. if(lf->chip_info.read_size==0) lf->chip_info.read_size = LF_NORFLASH_PAGE_ZISE;
  77. if(lf->chip_info.erase_times==0) lf->chip_info.erase_times = LF_NORFLASH_ERASE_TIMES;
  78. // 以下需要根据型号进行适配
  79. result |= little_flash_write_status(lf,0,0x00);
  80. }else{
  81. if(lf->chip_info.prog_size==0) lf->chip_info.prog_size = LF_NANDFLASH_PAGE_ZISE;
  82. if(lf->chip_info.read_size==0) lf->chip_info.read_size = LF_NANDFLASH_PAGE_ZISE;
  83. if(lf->chip_info.erase_times==0) lf->chip_info.erase_times = LF_NANDFLASH_ERASE_TIMES;
  84. // 以下需要根据型号进行适配
  85. result |= little_flash_write_status(lf,LF_NANDFLASH_STATUS_REGISTER1,0x00);
  86. // ECC-E = 1, BUF = 1
  87. result |= little_flash_write_status(lf,LF_NANDFLASH_STATUS_REGISTER2,(1 << 4) | (1 << 3));
  88. }
  89. if(lf->chip_info.retry_times==0) lf->chip_info.retry_times = LF_RETRY_TIMES;
  90. lf->wait_10us(5);
  91. return result;
  92. }
  93. static lf_err_t little_flash_write_enabled(const little_flash_t *lf, uint8_t enable){
  94. lf_err_t result = LF_ERR_OK;
  95. uint8_t status;
  96. lf->spi.transfer(lf,enable?(uint8_t[]){LF_CMD_WRITE_ENABLE}:(uint8_t[]){LF_CMD_WRITE_DISABLE}, 1,LF_NULL,0);
  97. result = little_flash_wait_busy(lf,1);
  98. if (result) {
  99. LF_ERROR("Error: Write enabled timeout.");
  100. return result;
  101. }
  102. if (lf->chip_info.type==LF_DRIVER_NOR_FLASH){
  103. result |= little_flash_read_status(lf, 0, &status);
  104. }else{
  105. result |= little_flash_read_status(lf, LF_NANDFLASH_STATUS_REGISTER3, &status);
  106. }
  107. if (result) return result;
  108. if (enable && (status & LF_STATUS_REGISTER_WEL) == 0) {
  109. LF_ERROR("Error: Can't enable write status.");
  110. result = LF_ERR_WRITE;
  111. } else if (!enable && (status & LF_STATUS_REGISTER_WEL) != 0) {
  112. LF_ERROR("Error: Can't disable write status.");
  113. result = LF_ERR_WRITE;
  114. }
  115. return result;
  116. }
  117. lf_err_t little_flash_init(void){
  118. LF_INFO("Welcome to use little flash V%s .", LF_SW_VERSION);
  119. LF_INFO("Github Repositories https://github.com/Dozingfiretruck/little_flash .");
  120. LF_INFO("Gitee Repositories https://gitee.com/Dozingfiretruck/little_flash .");
  121. return LF_ERR_OK;
  122. }
  123. #ifdef LF_USE_SFDP
  124. static inline lf_err_t little_flash_sfdp_read(const little_flash_t *lf, uint32_t offset, uint8_t *data, size_t size){
  125. lf_err_t result = LF_ERR_OK;
  126. uint8_t cmd_data[]={LF_CMD_SFDP_REGISTER,(uint8_t)(offset>>16),(uint8_t)(offset>>8),(uint8_t)(offset),0XFF};
  127. result = lf->spi.transfer(lf,cmd_data, sizeof(cmd_data), data, size);
  128. return result;
  129. }
  130. lf_err_t little_flash_sfdp_probe(little_flash_t *lf){
  131. lf_err_t result = LF_ERR_OK;
  132. little_flash_sfdp_t sfdp;
  133. uint8_t recv_data[8]={0};
  134. little_flash_sfdp_read(lf, LF_CMD_SFDP_HEADER, recv_data, sizeof(recv_data));
  135. if (recv_data[0]!='S' || recv_data[1]!='F' || recv_data[2]!='D' || recv_data[3]!='P'){
  136. LF_DEBUG("SFDP header not found.");
  137. return LF_ERR_SFDP_HEADER;
  138. }
  139. sfdp.minor_rev=recv_data[4];
  140. sfdp.major_rev=recv_data[5];
  141. sfdp.nph=recv_data[6];
  142. sfdp.access_protocol=recv_data[7];
  143. if (sfdp.access_protocol == 0xFA || (sfdp.access_protocol >= 0xFC && sfdp.access_protocol <= 0xFF)){
  144. lf->chip_info.type |= LF_DRIVER_NOR_FLASH;
  145. }else if((sfdp.access_protocol >= 0xF1 && sfdp.access_protocol <= 0xF7)){
  146. lf->chip_info.type |= LF_DRIVER_NAND_FLASH;
  147. }else{
  148. LF_ERROR("Error: Access protocol 0x%02X is not supported.", sfdp.access_protocol);
  149. return LF_ERR_SFDP_PARAMETER;
  150. }
  151. if (sfdp.major_rev>LF_SFDP_MAJOR_REV || sfdp.minor_rev>LF_SFDP_MINOR_REV){
  152. LF_ERROR("Error: SFDP version %d.%d is not supported.", sfdp.major_rev, sfdp.minor_rev);
  153. return LF_ERR_SFDP_PARAMETER;
  154. }
  155. LF_DEBUG("Found SFDP Header. The Revision is V%d.%d, NPN is %d, Access Protocol is 0x%X.",
  156. sfdp.major_rev, sfdp.minor_rev, sfdp.nph, sfdp.access_protocol);
  157. little_flash_sfdp_read(lf, LF_CMD_SFDP_PARAMETER_HEADER1, recv_data, sizeof(recv_data));
  158. sfdp.parameter_id = (uint16_t)recv_data[0] | (uint16_t)recv_data[7] << 8;
  159. sfdp.parameter_minor_rev = recv_data[1];
  160. sfdp.parameter_major_rev = recv_data[2];
  161. sfdp.parameter_length = recv_data[3];
  162. sfdp.parameter_pointer = (uint32_t)recv_data[4] | (uint32_t)recv_data[5] << 8 | (uint32_t)recv_data[6] << 16;
  163. if (sfdp.parameter_id!=0xFF00){
  164. LF_ERROR("Error: SFDP Parameter ID 0x%04X.",sfdp.parameter_id);
  165. return LF_ERR_SFDP_PARAMETER;
  166. }
  167. if (sfdp.parameter_major_rev > LF_SFDP_MAJOR_REV) {
  168. LF_ERROR("Error: SFDP Parameter Table Revision %d.%d is not supported.", sfdp.parameter_major_rev, sfdp.parameter_minor_rev);
  169. return LF_ERR_SFDP_PARAMETER;
  170. }
  171. if (sfdp.parameter_length < 9) {
  172. LF_DEBUG("Error: The Parameter Table Length is %d.", sfdp.parameter_length);
  173. return LF_ERR_SFDP_PARAMETER;
  174. }
  175. LF_DEBUG("Parameter Header is OK. The Parameter ID is 0x%04X, Revision is V%d.%d, Length is %d,Parameter Table Pointer is 0x%06lX.",
  176. sfdp.parameter_id, recv_data[1],recv_data[2],sfdp.parameter_length, sfdp.parameter_pointer);
  177. if (sfdp.parameter_length * 4 > sizeof(little_flash_sfdp_pt_t)){
  178. LF_WARNING("Table Revision %d.%d parameter_length is too long", sfdp.parameter_major_rev, sfdp.parameter_minor_rev);
  179. sfdp.parameter_length = sizeof(little_flash_sfdp_pt_t) / 4;
  180. }
  181. uint8_t parameter_table[sfdp.parameter_length * 4];
  182. little_flash_sfdp_read(lf, sfdp.parameter_pointer, parameter_table, sfdp.parameter_length);
  183. // [1] = 0xE5 0x20 0xF1 0xFF
  184. // [2] = 0xFF 0xFF 0xFF 0x07
  185. // [3] = 0x44 0xD3 0x8B 0x00
  186. // [4] = 0xAB 0x13 0x9A 0x00
  187. // [5] = 0xA7 0xD3 0x8B 0x00
  188. // [6] = 0x00 0xFF 0x00 0x00
  189. // [7] = 0x00 0x00 0x00 0x00
  190. // [8] = 0x01 0x00 0x00 0x00
  191. // [9] = 0x09 0x00 0x00 0x00
  192. memcpy(&sfdp.pt, parameter_table, sfdp.parameter_length*4);
  193. // LF_DEBUG("sfdp.pt Flash_Memory_Density 0x%08X",sfdp.pt.Flash_Memory_Density);
  194. if (sfdp.pt.Flash_Memory_Density & 0x80000000){
  195. lf->chip_info.capacity = sfdp.pt.Flash_Memory_Density;
  196. lf->chip_info.capacity &= 0x7FFFFFFF;
  197. lf->chip_info.capacity = 1L << (lf->chip_info.capacity - 3);
  198. }else{
  199. lf->chip_info.capacity = (sfdp.pt.Flash_Memory_Density+1)>>3;
  200. }
  201. if (sfdp.pt.Erase_Sizes==1 && sfdp.pt.Erase_4k){
  202. lf->chip_info.erase_cmd = sfdp.pt.Erase_4k;
  203. lf->chip_info.erase_size = 4096;
  204. }
  205. if (sfdp.pt.Write_Granularity){
  206. lf->chip_info.prog_size = 256;
  207. }else{
  208. lf->chip_info.prog_size = 1;
  209. }
  210. // Address Bytes
  211. if (sfdp.pt.Address_Bytes == 0){
  212. lf->chip_info.addr_bytes |= LF_ADDR_BYTES_3;
  213. }else if (sfdp.pt.Address_Bytes == 1){
  214. lf->chip_info.addr_bytes |= LF_ADDR_BYTES_3;
  215. lf->chip_info.addr_bytes |= LF_ADDR_BYTES_4;
  216. }else if (sfdp.pt.Address_Bytes == 2){
  217. lf->chip_info.addr_bytes |= LF_ADDR_BYTES_4;
  218. }
  219. // LF_DEBUG("capacity: %d bytes",lf->chip_info.capacity);
  220. // LF_DEBUG("erase_size: %d bytes",lf->chip_info.erase_size);
  221. // LF_DEBUG("prog_size: %d bytes",lf->chip_info.prog_size);
  222. // LF_DEBUG("erase_cmd 0x%02X",lf->chip_info.erase_cmd);
  223. // LF_DEBUG("addr_bytes 0x%02X",lf->chip_info.addr_bytes);
  224. LF_DEBUG("Found a flash chip. Size is %d bytes.",lf->chip_info.capacity);
  225. return result;
  226. }
  227. #endif /* LF_USE_SFDP */
  228. lf_err_t little_flash_device_init(little_flash_t *lf){
  229. lf_err_t result = LF_ERR_OK;
  230. uint8_t manufacturer_id = 0;
  231. uint16_t device_id = 0;
  232. little_flash_port_init(lf);
  233. LF_ASSERT(lf->wait_10us);
  234. LF_ASSERT(lf->wait_ms);
  235. LF_ASSERT(lf->spi.transfer);
  236. #ifdef LF_USE_HEAP
  237. LF_ASSERT(lf->malloc);
  238. LF_ASSERT(lf->free);
  239. #endif
  240. #ifdef LF_USE_SFDP
  241. result = little_flash_sfdp_probe(lf);
  242. if (result == LF_ERR_OK){
  243. return little_flash_reset(lf);
  244. }
  245. #endif
  246. uint8_t recv_data[4]={0};
  247. result = lf->spi.transfer(lf,(uint8_t[]){LF_CMD_JEDEC_ID}, 1, recv_data, sizeof(recv_data));
  248. if(result) return result;
  249. // LF_DEBUG("recv_data [0]:0x%02X [1]:0x%02X [2]:0x%02X [3]:0x%02X",recv_data[0],recv_data[1],recv_data[2],recv_data[3]);
  250. // nor flash?
  251. manufacturer_id = recv_data[0];
  252. device_id = recv_data[1]<<8|recv_data[2];
  253. for (size_t i = 0; i < sizeof(little_flash_table)/sizeof(little_flash_table[0]); i++){
  254. if (manufacturer_id==little_flash_table[i].manufacturer_id && device_id ==little_flash_table[i].device_id){
  255. memcpy(&lf->chip_info.name,&little_flash_table[i],sizeof(little_flash_chipinfo_t));
  256. LF_DEBUG("JEDEC ID: manufacturer_id:0x%02X device_id:0x%04X ",little_flash_table[i].manufacturer_id,little_flash_table[i].device_id);
  257. LF_DEBUG("little flash fonud flash %s",lf->chip_info.name);
  258. result = little_flash_reset(lf);
  259. return result;
  260. }
  261. }
  262. // nand flash?
  263. manufacturer_id = recv_data[1];
  264. device_id = recv_data[2]<<8|recv_data[3];
  265. for (size_t i = 0; i < sizeof(little_flash_table)/sizeof(little_flash_table[0]); i++){
  266. if (manufacturer_id==little_flash_table[i].manufacturer_id && device_id ==little_flash_table[i].device_id){
  267. memcpy(&lf->chip_info.name,&little_flash_table[i],sizeof(little_flash_chipinfo_t));
  268. LF_DEBUG("JEDEC ID: manufacturer_id:0x%02X device_id:0x%04X ",little_flash_table[i].manufacturer_id,little_flash_table[i].device_id);
  269. LF_DEBUG("little flash fonud flash %s",lf->chip_info.name);
  270. result = little_flash_reset(lf);
  271. return result;
  272. }
  273. }
  274. // all not found
  275. LF_DEBUG("NOT fonud flash");
  276. return LF_ERR_NO_FLASH;
  277. }
  278. lf_err_t little_flash_device_deinit(little_flash_t *lf){
  279. return LF_ERR_OK;
  280. }
  281. lf_err_t little_flash_deinit(void){
  282. return LF_ERR_OK;
  283. }
  284. static lf_err_t little_flash_cheak_erase(const little_flash_t *lf){
  285. lf_err_t result = LF_ERR_OK;
  286. uint8_t status;
  287. result |= little_flash_wait_busy(lf,4000);
  288. if (result) {
  289. LF_ERROR("Error: Cheak erase timeout.");
  290. return result;
  291. }
  292. if(lf->chip_info.type==LF_DRIVER_NAND_FLASH){
  293. result |= little_flash_read_status(lf, LF_NANDFLASH_STATUS_REGISTER3, &status);
  294. if (result || (status&0x04)){
  295. return LF_ERR_ERASE;
  296. }
  297. }
  298. return result;
  299. }
  300. static lf_err_t little_flash_cheak_write(const little_flash_t *lf){
  301. lf_err_t result = LF_ERR_OK;
  302. uint8_t status;
  303. result |= little_flash_wait_busy(lf,700);
  304. if (result) {
  305. LF_ERROR("Error: Cheak write timeout.");
  306. return result;
  307. }
  308. if(lf->chip_info.type==LF_DRIVER_NAND_FLASH){
  309. result |= little_flash_read_status(lf, LF_NANDFLASH_STATUS_REGISTER3, &status);
  310. if (result||(status&0x08)){
  311. return LF_ERR_WRITE;
  312. }
  313. }
  314. return result;
  315. }
  316. static lf_err_t little_flash_cheak_read(const little_flash_t *lf){
  317. lf_err_t result = LF_ERR_OK;
  318. uint8_t status;
  319. result |= little_flash_wait_busy(lf,60);
  320. if (result) {
  321. LF_ERROR("Error: Cheak read timeout.");
  322. return result;
  323. }
  324. if(lf->chip_info.type==LF_DRIVER_NAND_FLASH){
  325. result |= little_flash_read_status(lf, LF_NANDFLASH_STATUS_REGISTER3, &status);
  326. // 以下也是要根据不同型号移植的
  327. uint8_t ecc = (status & 0x30) >> 4;
  328. if (result==0 && ecc<2){
  329. return LF_ERR_OK;
  330. }
  331. }
  332. return result;
  333. }
  334. lf_err_t little_flash_chip_erase(const little_flash_t *lf){
  335. lf_err_t result = LF_ERR_OK;
  336. uint32_t addr = 0;
  337. uint8_t cmd_data[4];
  338. if (lf->lock) {
  339. lf->lock(lf);
  340. }
  341. if(little_flash_write_enabled(lf, LF_ENABLE)) goto error;
  342. if(lf->chip_info.type==LF_DRIVER_NOR_FLASH){
  343. result |= lf->spi.transfer(lf,(uint8_t[]){LF_CMD_ERASE_CHIP}, 1,LF_NULL,0);
  344. lf->wait_ms(lf->chip_info.capacity / lf->chip_info.erase_size * lf->chip_info.erase_times);
  345. result |= little_flash_cheak_erase(lf);
  346. }else{
  347. cmd_data[0] = lf->chip_info.erase_cmd;
  348. while (true){
  349. uint32_t page_addr = addr/lf->chip_info.prog_size;
  350. cmd_data[1] = page_addr >> 16;
  351. cmd_data[2] = page_addr >> 8;
  352. cmd_data[3] = page_addr;
  353. result |= lf->spi.transfer(lf,cmd_data, 4,LF_NULL,0);
  354. if(result) goto error;
  355. lf->wait_ms(lf->chip_info.erase_times);
  356. result |= little_flash_cheak_erase(lf);
  357. if(result) goto error;
  358. addr += lf->chip_info.erase_size;
  359. if (addr>=lf->chip_info.capacity){
  360. break;
  361. }
  362. }
  363. }
  364. if (little_flash_write_enabled(lf, LF_DISABLE)) goto error;
  365. if (lf->unlock) {
  366. lf->unlock(lf);
  367. }
  368. return LF_ERR_OK;
  369. error:
  370. LF_ERROR("Error: Chip erase failed.");
  371. little_flash_write_enabled(lf, LF_DISABLE);
  372. if (lf->unlock) {
  373. lf->unlock(lf);
  374. }
  375. return LF_ERR_ERASE;
  376. }
  377. lf_err_t little_flash_erase(const little_flash_t *lf, uint32_t addr, uint32_t len){
  378. uint8_t cmd_data[4]={0};
  379. if (addr + len > lf->chip_info.capacity) {
  380. LF_ERROR("Error: Flash address is out of bound.");
  381. return LF_ERR_BAD_ADDRESS;
  382. }
  383. if (addr == 0 && len == lf->chip_info.capacity) {
  384. return little_flash_chip_erase(lf);
  385. }
  386. if (lf->lock) {
  387. lf->lock(lf);
  388. }
  389. if(little_flash_write_enabled(lf, LF_ENABLE)) goto error;
  390. cmd_data[0] = lf->chip_info.erase_cmd;
  391. uint32_t erase_off = addr % lf->chip_info.erase_size;
  392. uint32_t erase_addr = addr / lf->chip_info.erase_size * lf->chip_info.erase_size;
  393. uint32_t erase_len = len - erase_off;
  394. while (erase_off || erase_len){
  395. cmd_data[1] = erase_addr >> 16;
  396. cmd_data[2] = erase_addr >> 8;
  397. cmd_data[3] = erase_addr;
  398. lf->spi.transfer(lf,cmd_data, 4,LF_NULL,0);
  399. lf->wait_ms(lf->chip_info.erase_times);
  400. if(little_flash_cheak_erase(lf)) goto error;
  401. if (erase_len == 0){
  402. break;
  403. }
  404. erase_addr += lf->chip_info.erase_size;
  405. if (erase_len<=lf->chip_info.erase_size){
  406. erase_len = 0;
  407. }else{
  408. erase_len -= lf->chip_info.erase_size;
  409. }
  410. }
  411. if (little_flash_write_enabled(lf, LF_DISABLE)) goto error;
  412. if (lf->unlock) {
  413. lf->unlock(lf);
  414. }
  415. return LF_ERR_OK;
  416. error:
  417. LF_ERROR("Error: Erase failed.");
  418. little_flash_write_enabled(lf, LF_DISABLE);
  419. if (lf->unlock) {
  420. lf->unlock(lf);
  421. }
  422. return LF_ERR_ERASE;
  423. }
  424. lf_err_t little_flash_write(const little_flash_t *lf, uint32_t addr, const uint8_t *data, uint32_t len){
  425. #ifdef LF_USE_HEAP
  426. uint8_t* cmd_data = (uint8_t*)lf->malloc(4+lf->chip_info.prog_size);
  427. if (!cmd_data){
  428. LF_ERROR("Error: malloc failed.");
  429. return LF_ERR_NO_MEM;
  430. }
  431. #else
  432. uint8_t cmd_data[4+lf->chip_info.prog_size];
  433. #endif /* LF_USE_HEAP */
  434. uint32_t base_addr = addr;
  435. if (lf->lock) {
  436. lf->lock(lf);
  437. }
  438. if(little_flash_write_enabled(lf, LF_ENABLE)){
  439. goto error;
  440. }
  441. while (len){
  442. if (little_flash_wait_busy(lf,100)){
  443. goto error;
  444. }
  445. if (lf->chip_info.type==LF_DRIVER_NOR_FLASH){
  446. cmd_data[0] = LF_CMD_PROG_DATA;
  447. cmd_data[1] = addr >> 16;
  448. cmd_data[2] = addr >> 8;
  449. cmd_data[3] = addr;
  450. uint16_t column_addr = addr%lf->chip_info.prog_size;
  451. if (column_addr){
  452. if ((column_addr+len)<=lf->chip_info.prog_size){
  453. memcpy(&cmd_data[4],&data[addr-base_addr],len);
  454. lf->spi.transfer(lf,cmd_data, 4+len,LF_NULL,0);
  455. break;
  456. }else{
  457. memcpy(&cmd_data[4],&data[addr-base_addr],lf->chip_info.prog_size-column_addr);
  458. lf->spi.transfer(lf,cmd_data, 4+lf->chip_info.prog_size-column_addr,LF_NULL,0);
  459. len -= (lf->chip_info.prog_size-column_addr);
  460. addr += (lf->chip_info.prog_size-column_addr);
  461. }
  462. }else{
  463. if (len<=lf->chip_info.prog_size){
  464. memcpy(&cmd_data[4],&data[addr-base_addr],len);
  465. lf->spi.transfer(lf,cmd_data, 4+len,LF_NULL,0);
  466. break;
  467. }else{
  468. memcpy(&cmd_data[4],&data[addr-base_addr],lf->chip_info.prog_size);
  469. lf->spi.transfer(lf,cmd_data, 4+lf->chip_info.prog_size,LF_NULL,0);
  470. len -= lf->chip_info.prog_size;
  471. addr += lf->chip_info.prog_size;
  472. }
  473. }
  474. }else{
  475. uint32_t page_addr = addr/lf->chip_info.prog_size;
  476. uint16_t column_addr = addr%lf->chip_info.prog_size;
  477. cmd_data[0] = LF_CMD_PROG_DATA;
  478. cmd_data[1] = column_addr >> 8;
  479. cmd_data[2] = column_addr;
  480. if (column_addr){
  481. if ((column_addr+len)<=lf->chip_info.prog_size){
  482. memcpy(&cmd_data[3],&data[addr-base_addr],len);
  483. lf->spi.transfer(lf,cmd_data, 3+len,LF_NULL,0);
  484. little_flash_wait_busy(lf,100);
  485. cmd_data[0] = LF_NANDFLASH_PAGE_PROG_EXEC;
  486. cmd_data[1] = page_addr >> 16;
  487. cmd_data[2] = page_addr >> 8;
  488. cmd_data[3] = page_addr;
  489. lf->spi.transfer(lf,cmd_data, 4,LF_NULL,0);
  490. little_flash_cheak_write(lf);
  491. break;
  492. }else{
  493. memcpy(&cmd_data[3],&data[addr-base_addr],lf->chip_info.prog_size-column_addr);
  494. lf->spi.transfer(lf,cmd_data, 3+lf->chip_info.prog_size-column_addr,LF_NULL,0);
  495. len -= (lf->chip_info.prog_size-column_addr);
  496. addr += (lf->chip_info.prog_size-column_addr);
  497. }
  498. }else{
  499. if (len<=lf->chip_info.prog_size){
  500. memcpy(&cmd_data[3],&data[addr-base_addr],len);
  501. lf->spi.transfer(lf,cmd_data, 3+len,LF_NULL,0);
  502. little_flash_wait_busy(lf,100);
  503. cmd_data[0] = LF_NANDFLASH_PAGE_PROG_EXEC;
  504. cmd_data[1] = page_addr >> 16;
  505. cmd_data[2] = page_addr >> 8;
  506. cmd_data[3] = page_addr;
  507. lf->spi.transfer(lf,cmd_data, 4,LF_NULL,0);
  508. little_flash_cheak_write(lf);
  509. break;
  510. }else{
  511. memcpy(&cmd_data[3],&data[addr-base_addr],lf->chip_info.prog_size);
  512. lf->spi.transfer(lf,cmd_data, 3+lf->chip_info.prog_size,LF_NULL,0);
  513. len -= lf->chip_info.prog_size;
  514. addr += lf->chip_info.prog_size;
  515. }
  516. }
  517. little_flash_wait_busy(lf,100);
  518. cmd_data[0] = LF_NANDFLASH_PAGE_PROG_EXEC;
  519. cmd_data[1] = page_addr >> 16;
  520. cmd_data[2] = page_addr >> 8;
  521. cmd_data[3] = page_addr;
  522. lf->spi.transfer(lf,cmd_data, 4,LF_NULL,0);
  523. little_flash_cheak_write(lf);
  524. }
  525. }
  526. if (little_flash_write_enabled(lf, LF_DISABLE)) goto error;
  527. #ifdef LF_USE_HEAP
  528. lf->free(cmd_data);
  529. #endif /* LF_USE_HEAP */
  530. if (lf->unlock) {
  531. lf->unlock(lf);
  532. }
  533. return LF_ERR_OK;
  534. error:
  535. LF_ERROR("Error: Write failed.");
  536. if (lf->unlock) {
  537. lf->unlock(lf);
  538. }
  539. return LF_ERR_WRITE;
  540. }
  541. lf_err_t little_flash_erase_write(const little_flash_t *lf, uint32_t addr, const uint8_t *data, uint32_t len){
  542. lf_err_t result = LF_ERR_OK;
  543. result = little_flash_erase(lf, addr, len);
  544. if (result == LF_ERR_OK) {
  545. result = little_flash_write(lf, addr, data, len);
  546. }
  547. return result;
  548. }
  549. lf_err_t little_flash_read(const little_flash_t *lf, uint32_t addr, uint8_t *data, uint32_t len){
  550. uint8_t cmd_data[4];
  551. uint32_t base_addr = addr;
  552. if (lf->lock) {
  553. lf->lock(lf);
  554. }
  555. if (lf->chip_info.type==LF_DRIVER_NOR_FLASH){
  556. cmd_data[0] = LF_CMD_READ_DATA;
  557. cmd_data[1] = addr >> 16;
  558. cmd_data[2] = addr >> 8;
  559. cmd_data[3] = addr;
  560. lf->spi.transfer(lf,cmd_data, 4,data,len);
  561. if (little_flash_cheak_read(lf)){
  562. goto error;
  563. }
  564. }else{
  565. while (len){
  566. uint32_t page_addr = addr/lf->chip_info.read_size;
  567. uint16_t column_addr = addr%lf->chip_info.read_size;
  568. cmd_data[0] = LF_NANDFLASH_PAGE_DATA_READ;
  569. cmd_data[1] = page_addr >> 16;
  570. cmd_data[2] = page_addr >> 8;
  571. cmd_data[3] = page_addr;
  572. lf->spi.transfer(lf,cmd_data, 4,LF_NULL,0);
  573. if (little_flash_cheak_read(lf)){
  574. goto error;
  575. }
  576. cmd_data[0] = LF_CMD_READ_DATA;
  577. cmd_data[1] = column_addr >> 8;
  578. cmd_data[2] = column_addr;
  579. cmd_data[3] = 0;
  580. if (column_addr){
  581. if ((column_addr+len)<=lf->chip_info.read_size){
  582. lf->spi.transfer(lf,cmd_data, 4,&data[addr-base_addr],len);
  583. break;
  584. }else{
  585. lf->spi.transfer(lf,cmd_data, 4,&data[addr-base_addr],lf->chip_info.read_size-column_addr);
  586. len -= (lf->chip_info.read_size-column_addr);
  587. addr += (lf->chip_info.read_size-column_addr);
  588. }
  589. }else{
  590. if (len<=lf->chip_info.read_size){
  591. lf->spi.transfer(lf,cmd_data, 4,&data[addr-base_addr],len);
  592. break;
  593. }else{
  594. lf->spi.transfer(lf,cmd_data, 4,&data[addr-base_addr],lf->chip_info.read_size);
  595. len -= lf->chip_info.read_size;
  596. addr += lf->chip_info.read_size;
  597. }
  598. }
  599. }
  600. }
  601. if (lf->unlock) {
  602. lf->unlock(lf);
  603. }
  604. return LF_ERR_OK;
  605. error:
  606. LF_ERROR("Error: Read failed.");
  607. if (lf->unlock) {
  608. lf->unlock(lf);
  609. }
  610. return LF_ERR_READ;
  611. }