mt_i2c.c 22 KB

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  1. #include <platform/mt_i2c.h>
  2. #include <platform/mt_gpio.h>
  3. /******************************internal API********************************************************/
  4. static inline void i2c_writel(mt_i2c * i2c, U8 offset, U16 value)
  5. {
  6. //__raw_writew(value, (i2c->base) + (offset));
  7. mt_reg_sync_writel(value, (i2c->base) + (offset));
  8. }
  9. static inline U32 i2c_readl(mt_i2c * i2c, U8 offset)
  10. {
  11. return DRV_Reg32((i2c->base) + (offset));
  12. }
  13. /***********************************declare API**************************/
  14. static void mt_i2c_clock_enable(mt_i2c *i2c);
  15. static void mt_i2c_clock_disable(mt_i2c *i2c);
  16. /***********************************I2C common Param **************************/
  17. volatile U32 I2C_TIMING_REG_BACKUP[7]= {0};
  18. /***********************************common API********************************************************/
  19. /*Set i2c port speed*/
  20. S32 i2c_set_speed(mt_i2c *i2c)
  21. {
  22. S32 ret = 0;
  23. static S32 mode = 0;
  24. static U32 khz = 0;
  25. //U32 base = i2c->base;
  26. U16 step_cnt_div = 0;
  27. U16 sample_cnt_div = 0;
  28. U32 tmp, sclk, hclk = i2c->clk;
  29. U16 max_step_cnt_div = 0;
  30. U32 diff, min_diff = i2c->clk;
  31. U16 sample_div = MAX_SAMPLE_CNT_DIV;
  32. U16 step_div = 0;
  33. U16 i2c_timing_reg = 0;
  34. //I2CFUC();
  35. //I2CLOG("i2c_set_speed=================\n");
  36. //compare the current mode with the latest mode
  37. i2c_timing_reg = i2c_readl(i2c, OFFSET_TIMING);
  38. if ((mode == i2c->mode) && (khz == i2c->speed)&&(i2c_timing_reg == I2C_TIMING_REG_BACKUP[i2c->id])) {
  39. //I2CLOG(" set sclk to %ldkhz\n", i2c->speed);
  40. //return 0;
  41. }
  42. mode = i2c->mode;
  43. khz = i2c->speed;
  44. max_step_cnt_div = (mode == HS_MODE) ? MAX_HS_STEP_CNT_DIV : MAX_STEP_CNT_DIV;
  45. step_div = max_step_cnt_div;
  46. if ((mode == FS_MODE && khz > MAX_FS_MODE_SPEED) || (mode == HS_MODE && khz > MAX_HS_MODE_SPEED)) {
  47. I2CERR(" the speed is too fast for this mode.\n");
  48. ret = -EINVAL_I2C;
  49. goto end;
  50. }
  51. //I2CERR("first:khz=%d,mode=%d sclk=%d,min_diff=%d,max_step_cnt_div=%d\n",khz,mode,sclk,min_diff,max_step_cnt_div);
  52. /*Find the best combination*/
  53. for (sample_cnt_div = 1; sample_cnt_div <= MAX_SAMPLE_CNT_DIV; sample_cnt_div++) {
  54. for (step_cnt_div = 1; step_cnt_div <= max_step_cnt_div; step_cnt_div++) {
  55. sclk = (hclk >> 1) / (sample_cnt_div * step_cnt_div);
  56. if (sclk > khz)
  57. continue;
  58. diff = khz - sclk;
  59. if (diff < min_diff) {
  60. min_diff = diff;
  61. sample_div = sample_cnt_div;
  62. step_div = step_cnt_div;
  63. }
  64. }
  65. }
  66. sample_cnt_div = sample_div;
  67. step_cnt_div = step_div;
  68. sclk = hclk / (2 * sample_cnt_div * step_cnt_div);
  69. //I2CERR("second:sclk=%d khz=%d,i2c->speed=%d hclk=%d sample_cnt_div=%d,step_cnt_div=%d.\n",sclk,khz,i2c->speed,hclk,sample_cnt_div,step_cnt_div);
  70. if (sclk > khz) {
  71. I2CERR("%s mode: unsupported speed (%dkhz)\n",(mode == HS_MODE) ? "HS" : "ST/FT", khz);
  72. ret = -ENOTSUPP_I2C;
  73. goto end;
  74. }
  75. step_cnt_div--;
  76. sample_cnt_div--;
  77. //spin_lock(&i2c->lock);
  78. if (mode == HS_MODE) {
  79. /*Set the high speed timing control register*/
  80. tmp = i2c_readl(i2c, OFFSET_TIMING) & ~((0x7 << 8) | (0x3f << 0));
  81. tmp = (0 & 0x7) << 8 | (16 & 0x3f) << 0 | tmp;
  82. i2c->timing_reg = tmp;
  83. //i2c_writel(i2c, OFFSET_TIMING, tmp);
  84. I2C_TIMING_REG_BACKUP[i2c->id] = tmp;
  85. /*Set the high speed mode register*/
  86. tmp = i2c_readl(i2c, OFFSET_HS) & ~((0x7 << 12) | (0x7 << 8));
  87. tmp = (sample_cnt_div & 0x7) << 12 | (step_cnt_div & 0x7) << 8 | tmp;
  88. /*Enable the high speed transaction*/
  89. tmp |= 0x0001;
  90. i2c->high_speed_reg = tmp;
  91. //i2c_writel(i2c, OFFSET_HS, tmp);
  92. } else {
  93. /*Set non-highspeed timing*/
  94. tmp = i2c_readl(i2c, OFFSET_TIMING) & ~((0x7 << 8) | (0x3f << 0));
  95. tmp = (sample_cnt_div & 0x7) << 8 | (step_cnt_div & 0x3f) << 0 | tmp;
  96. i2c->timing_reg = tmp;
  97. I2C_TIMING_REG_BACKUP[i2c->id] = tmp;
  98. //i2c_writel(i2c, OFFSET_TIMING, tmp);
  99. /*Disable the high speed transaction*/
  100. //I2CERR("NOT HS_MODE============================1\n");
  101. tmp = i2c_readl(i2c, OFFSET_HS) & ~(0x0001);
  102. //I2CERR("NOT HS_MODE============================2\n");
  103. i2c->high_speed_reg = tmp;
  104. //i2c_writel(i2c, OFFSET_HS, tmp);
  105. //I2CERR("NOT HS_MODE============================3\n");
  106. }
  107. //spin_unlock(&i2c->lock);
  108. end:
  109. return ret;
  110. }
  111. void _i2c_dump_info(mt_i2c *i2c)
  112. {
  113. //I2CFUC();
  114. I2CERR("I2C structure:\n"
  115. I2CTAG"Clk=%d,Id=%d,Mode=%x,St_rs=%x,Dma_en=%x,Op=%x,Poll_en=%x,Irq_stat=%x\n"
  116. I2CTAG"Trans_len=%x,Trans_num=%x,Trans_auxlen=%x,Data_size=%x,speed=%d\n",
  117. //,Trans_stop=%u,Trans_comp=%u,Trans_error=%u\n"
  118. i2c->clk,i2c->id,i2c->mode,i2c->st_rs,i2c->dma_en,i2c->op,i2c->poll_en,i2c->irq_stat,
  119. i2c->trans_data.trans_len,i2c->trans_data.trans_num,i2c->trans_data.trans_auxlen,i2c->trans_data.data_size,i2c->speed);
  120. // atomic_read(&i2c->trans_stop),atomic_read(&i2c->trans_comp),atomic_read(&i2c->trans_err),
  121. I2CERR("base address 0x%x\n", i2c->base);
  122. I2CERR("I2C register:\n"
  123. I2CTAG"SLAVE_ADDR=%x,INTR_MASK=%x,INTR_STAT=%x,CONTROL=%x,TRANSFER_LEN=%x\n"
  124. I2CTAG"TRANSAC_LEN=%x,DELAY_LEN=%x,TIMING=%x,START=%x,FIFO_STAT=%x\n"
  125. I2CTAG"IO_CONFIG=%x,HS=%x,DCM_EN=%x,DEBUGSTAT=%x,EXT_CONF=%x,TRANSFER_LEN_AUX=%x\n",
  126. (i2c_readl(i2c, OFFSET_SLAVE_ADDR)),
  127. (i2c_readl(i2c, OFFSET_INTR_MASK)),
  128. (i2c_readl(i2c, OFFSET_INTR_STAT)),
  129. (i2c_readl(i2c, OFFSET_CONTROL)),
  130. (i2c_readl(i2c, OFFSET_TRANSFER_LEN)),
  131. (i2c_readl(i2c, OFFSET_TRANSAC_LEN)),
  132. (i2c_readl(i2c, OFFSET_DELAY_LEN)),
  133. (i2c_readl(i2c, OFFSET_TIMING)),
  134. (i2c_readl(i2c, OFFSET_START)),
  135. (i2c_readl(i2c, OFFSET_FIFO_STAT)),
  136. (i2c_readl(i2c, OFFSET_IO_CONFIG)),
  137. (i2c_readl(i2c, OFFSET_HS)),
  138. (i2c_readl(i2c, OFFSET_DCM_EN)),
  139. (i2c_readl(i2c, OFFSET_DEBUGSTAT)),
  140. (i2c_readl(i2c, OFFSET_EXT_CONF)),
  141. (i2c_readl(i2c, OFFSET_TRANSFER_LEN_AUX)));
  142. /*
  143. I2CERR("DMA register:\nINT_FLAG %x\nCON %x\nTX_MEM_ADDR %x\nRX_MEM_ADDR %x\nTX_LEN %x\nRX_LEN %x\nINT_EN %x\nEN %x\n",
  144. (__raw_readl(i2c->pdmabase+OFFSET_INT_FLAG)),
  145. (__raw_readl(i2c->pdmabase+OFFSET_CON)),
  146. (__raw_readl(i2c->pdmabase+OFFSET_TX_MEM_ADDR)),
  147. (__raw_readl(i2c->pdmabase+OFFSET_RX_MEM_ADDR)),
  148. (__raw_readl(i2c->pdmabase+OFFSET_TX_LEN)),
  149. (__raw_readl(i2c->pdmabase+OFFSET_RX_LEN)),
  150. (__raw_readl(i2c->pdmabase+OFFSET_S32_EN)),
  151. (__raw_readl(i2c->pdmabase+OFFSET_EN)));
  152. */
  153. return;
  154. }
  155. static S32 _i2c_deal_result(mt_i2c *i2c)
  156. {
  157. long tmo = 1;
  158. U16 data_size = 0;
  159. U8 *ptr = i2c->msg_buf;
  160. BOOL TRANSFER_ERROR = FALSE;
  161. S32 ret = i2c->msg_len;
  162. long tmo_poll = 0xffff;
  163. //I2CFUC();
  164. //addr_reg = i2c->read_flag ? ((i2c->addr << 1) | 0x1) : ((i2c->addr << 1) & ~0x1);
  165. if (i2c->poll_en) {
  166. /*master read && poll mode*/
  167. for (;;) {
  168. /*check the interrupt status register*/
  169. i2c->irq_stat = i2c_readl(i2c, OFFSET_INTR_STAT);
  170. //I2CLOG("irq_stat = 0x%x\n", i2c->irq_stat);
  171. if (i2c->irq_stat & (I2C_HS_NACKERR | I2C_ACKERR )) {
  172. //transfer error
  173. //atomic_set(&i2c->trans_stop, 1);
  174. //spin_lock(&i2c->lock);
  175. /*Clear interrupt status,write 1 clear*/
  176. //i2c_writel(i2c, OFFSET_INTR_STAT, (I2C_HS_NACKERR | I2C_ACKERR));
  177. TRANSFER_ERROR = TRUE;
  178. tmo = 1;
  179. //spin_unlock(&i2c->lock);
  180. break;
  181. } else if (i2c->irq_stat & I2C_TRANSAC_COMP) {
  182. //transfer complete
  183. tmo = 1;
  184. break;
  185. }
  186. tmo_poll--;
  187. if (tmo_poll == 0) {
  188. tmo = 0;
  189. break;
  190. }
  191. }
  192. } else { /*Interrupt mode,wait for interrupt wake up*/
  193. //tmo = wait_event_timeout(i2c->wait,atomic_read(&i2c->trans_stop), tmo);
  194. }
  195. //I2CLOG("tmo = 0x%x\n", tmo);
  196. /*Check the transfer status*/
  197. if (!(tmo == 0) && TRANSFER_ERROR == FALSE) {
  198. /*Transfer success ,we need to get data from fifo*/
  199. if ((!i2c->dma_en) && (i2c->op == I2C_MASTER_RD || i2c->op == I2C_MASTER_WRRD)) {
  200. /*only read mode or write_read mode and fifo mode need to get data*/
  201. data_size = (i2c_readl(i2c, OFFSET_FIFO_STAT) >> 4) & 0x000F;
  202. //I2CLOG("data_size=%d\n",data_size);
  203. while (data_size--) {
  204. *ptr = i2c_readl(i2c, OFFSET_DATA_PORT);
  205. #ifdef I2C_EARLY_PORTING
  206. I2CLOG("addr %x read byte = 0x%x\n", i2c->addr, *ptr);
  207. #endif
  208. ptr++;
  209. }
  210. }
  211. } else {
  212. /*Timeout or ACKERR*/
  213. if (tmo == 0) {
  214. I2CERR("id=%d,addr: %x, transfer timeout\n", i2c->id, i2c->addr);
  215. ret = -ETIMEDOUT_I2C;
  216. } else {
  217. I2CERR("id=%d,addr: %x, transfer error\n", i2c->id, i2c->addr);
  218. ret = -EREMOTEIO_I2C;
  219. }
  220. if (i2c->irq_stat & I2C_HS_NACKERR)
  221. I2CERR("I2C_HS_NACKERR\n");
  222. if (i2c->irq_stat & I2C_ACKERR)
  223. I2CERR("I2C_ACKERR\n");
  224. if (i2c->filter_msg == FALSE) { //TEST
  225. _i2c_dump_info(i2c);
  226. }
  227. //spin_lock(&i2c->lock);
  228. /*Reset i2c port*/
  229. i2c_writel(i2c, OFFSET_SOFTRESET, 0x0001);
  230. /*Set slave address*/
  231. i2c_writel(i2c, OFFSET_SLAVE_ADDR, 0x0000);
  232. /*Clear interrupt status*/
  233. i2c_writel(i2c, OFFSET_INTR_STAT, (I2C_HS_NACKERR | I2C_ACKERR | I2C_TRANSAC_COMP));
  234. /*Clear fifo address*/
  235. i2c_writel(i2c, OFFSET_FIFO_ADDR_CLR, 0x0001);
  236. //spin_unlock(&i2c->lock);
  237. }
  238. return ret;
  239. }
  240. void _i2c_write_reg(mt_i2c *i2c)
  241. {
  242. U8 *ptr = i2c->msg_buf;
  243. U32 data_size = i2c->trans_data.data_size;
  244. U32 addr_reg = 0;
  245. //I2CFUC();
  246. i2c_writel(i2c, OFFSET_CONTROL, i2c->control_reg);
  247. /*set start condition */
  248. if (i2c->speed <= 100) {
  249. i2c_writel(i2c, OFFSET_EXT_CONF, 0x8001);
  250. } else {
  251. i2c_writel(i2c, OFFSET_EXT_CONF, 0x1800);
  252. }
  253. //set timing reg
  254. i2c_writel(i2c, OFFSET_TIMING, i2c->timing_reg);
  255. i2c_writel(i2c, OFFSET_HS, i2c->high_speed_reg);
  256. if (0 == i2c->delay_len)
  257. i2c->delay_len = 2;
  258. if (~i2c->control_reg & I2C_CONTROL_RS) { // bit is set to 1, i.e.,use repeated stop
  259. i2c_writel(i2c, OFFSET_DELAY_LEN, i2c->delay_len);
  260. }
  261. /*Set ioconfig*/
  262. if (i2c->pushpull) {
  263. i2c_writel(i2c, OFFSET_IO_CONFIG, 0x0000);
  264. } else {
  265. i2c_writel(i2c, OFFSET_IO_CONFIG, 0x0003);
  266. }
  267. /*Set slave address*/
  268. addr_reg = i2c->read_flag ? ((i2c->addr << 1) | 0x1) : ((i2c->addr << 1) & ~0x1);
  269. i2c_writel(i2c, OFFSET_SLAVE_ADDR, addr_reg);
  270. /*Clear interrupt status*/
  271. i2c_writel(i2c, OFFSET_INTR_STAT, (I2C_HS_NACKERR | I2C_ACKERR | I2C_TRANSAC_COMP));
  272. /*Clear fifo address*/
  273. i2c_writel(i2c, OFFSET_FIFO_ADDR_CLR, 0x0001);
  274. /*Setup the interrupt mask flag*/
  275. if (i2c->poll_en)
  276. i2c_writel(i2c, OFFSET_INTR_MASK, i2c_readl(i2c, OFFSET_INTR_MASK) & ~(I2C_HS_NACKERR | I2C_ACKERR | I2C_TRANSAC_COMP)); /*Disable interrupt*/
  277. else
  278. i2c_writel(i2c, OFFSET_INTR_MASK, i2c_readl(i2c, OFFSET_INTR_MASK) | (I2C_HS_NACKERR | I2C_ACKERR | I2C_TRANSAC_COMP)); /*Enable interrupt*/
  279. /*Set transfer len */
  280. i2c_writel(i2c, OFFSET_TRANSFER_LEN, i2c->trans_data.trans_len & 0xFFFF);
  281. i2c_writel(i2c, OFFSET_TRANSFER_LEN_AUX, i2c->trans_data.trans_auxlen & 0xFFFF);
  282. /*Set transaction len*/
  283. i2c_writel(i2c, OFFSET_TRANSAC_LEN, i2c->trans_data.trans_num & 0xFF);
  284. /*Prepare buffer data to start transfer*/
  285. if (i2c->dma_en) {
  286. /* Reset I2C DMA status */
  287. mt_reg_sync_writel(0x0001, i2c->pdmabase + OFFSET_RST);
  288. if (I2C_MASTER_RD == i2c->op) {
  289. mt_reg_sync_writel(0x0000, i2c->pdmabase + OFFSET_INT_FLAG);
  290. mt_reg_sync_writel(0x0001, i2c->pdmabase + OFFSET_CON);
  291. mt_reg_sync_writel((U32)i2c->msg_buf, i2c->pdmabase + OFFSET_RX_MEM_ADDR);
  292. mt_reg_sync_writel(i2c->trans_data.data_size, i2c->pdmabase + OFFSET_RX_LEN);
  293. } else if (I2C_MASTER_WR == i2c->op) {
  294. mt_reg_sync_writel(0x0000, i2c->pdmabase + OFFSET_INT_FLAG);
  295. mt_reg_sync_writel(0x0000, i2c->pdmabase + OFFSET_CON);
  296. mt_reg_sync_writel((U32)i2c->msg_buf, i2c->pdmabase + OFFSET_TX_MEM_ADDR);
  297. mt_reg_sync_writel(i2c->trans_data.data_size, i2c->pdmabase + OFFSET_TX_LEN);
  298. } else {
  299. mt_reg_sync_writel(0x0000, i2c->pdmabase + OFFSET_INT_FLAG);
  300. mt_reg_sync_writel(0x0000, i2c->pdmabase + OFFSET_CON);
  301. mt_reg_sync_writel((U32)i2c->msg_buf, i2c->pdmabase + OFFSET_TX_MEM_ADDR);
  302. mt_reg_sync_writel((U32)i2c->msg_buf, i2c->pdmabase + OFFSET_RX_MEM_ADDR);
  303. mt_reg_sync_writel(i2c->trans_data.trans_len, i2c->pdmabase + OFFSET_TX_LEN);
  304. mt_reg_sync_writel(i2c->trans_data.trans_auxlen, i2c->pdmabase + OFFSET_RX_LEN);
  305. }
  306. mt_reg_sync_writel(0x0001, i2c->pdmabase + OFFSET_EN);
  307. } else {
  308. /*Set fifo mode data*/
  309. if (I2C_MASTER_RD == i2c->op) {
  310. /*do not need set fifo data*/
  311. } else {
  312. /*both write && write_read mode*/
  313. while (data_size--) {
  314. i2c_writel(i2c, OFFSET_DATA_PORT, *ptr);
  315. //dev_info(i2c->dev, "addr %.2x write byte = 0x%.2X\n", addr, *ptr);
  316. ptr++;
  317. }
  318. }
  319. }
  320. /*Set trans_data*/
  321. i2c->trans_data.data_size = data_size;
  322. }
  323. S32 _i2c_get_transfer_len(mt_i2c *i2c)
  324. {
  325. S32 ret = I2C_OK;
  326. u16 trans_num = 0;
  327. u16 data_size = 0;
  328. u16 trans_len = 0;
  329. u16 trans_auxlen = 0;
  330. //I2CFUC();
  331. /*Get Transfer len and transaux len*/
  332. if (FALSE == i2c->dma_en) {
  333. /*non-DMA mode*/
  334. if (I2C_MASTER_WRRD != i2c->op) {
  335. trans_len = (i2c->msg_len) & 0xFFFF;
  336. trans_num = (i2c->msg_len >> 16) & 0xFF;
  337. if (0 == trans_num)
  338. trans_num = 1;
  339. trans_auxlen = 0;
  340. data_size = trans_len*trans_num;
  341. if (!trans_len || !trans_num || trans_len*trans_num > I2C_FIFO_SIZE) {
  342. I2CERR(" non-WRRD transfer length is not right. trans_len=%x, tans_num=%x, trans_auxlen=%x\n", trans_len, trans_num, trans_auxlen);
  343. ret = -EINVAL_I2C;
  344. }
  345. } else {
  346. trans_len = (i2c->msg_len) & 0xFFFF;
  347. trans_auxlen = (i2c->msg_len >> 16) & 0xFFFF;
  348. trans_num = 2;
  349. data_size = trans_len;
  350. if (!trans_len || !trans_auxlen || trans_len > I2C_FIFO_SIZE || trans_auxlen > I2C_FIFO_SIZE) {
  351. I2CERR(" WRRD transfer length is not right. trans_len=%x, tans_num=%x, trans_auxlen=%x\n", trans_len, trans_num, trans_auxlen);
  352. ret = -EINVAL_I2C;
  353. }
  354. }
  355. } else {
  356. /*DMA mode*/
  357. if (I2C_MASTER_WRRD != i2c->op) {
  358. trans_len = (i2c->msg_len) & 0xFFFF;
  359. trans_num = (i2c->msg_len >> 16) & 0xFF;
  360. if (0 == trans_num)
  361. trans_num = 1;
  362. trans_auxlen = 0;
  363. data_size = trans_len*trans_num;
  364. if (!trans_len || !trans_num || trans_len > MAX_DMA_TRANS_SIZE || trans_num > MAX_DMA_TRANS_NUM) {
  365. I2CERR(" DMA non-WRRD transfer length is not right. trans_len=%x, tans_num=%x, trans_auxlen=%x\n", trans_len, trans_num, trans_auxlen);
  366. ret = -EINVAL_I2C;
  367. }
  368. } else {
  369. trans_len = (i2c->msg_len) & 0xFFFF;
  370. trans_auxlen = (i2c->msg_len >> 16) & 0xFFFF;
  371. trans_num = 2;
  372. data_size = trans_len;
  373. if (!trans_len || !trans_auxlen || trans_len > MAX_DMA_TRANS_SIZE || trans_auxlen > MAX_DMA_TRANS_NUM) {
  374. I2CERR(" DMA WRRD transfer length is not right. trans_len=%x, tans_num=%x, trans_auxlen=%x\n", trans_len, trans_num, trans_auxlen);
  375. ret = -EINVAL_I2C;
  376. }
  377. }
  378. }
  379. i2c->trans_data.trans_num = trans_num;
  380. i2c->trans_data.trans_len = trans_len;
  381. i2c->trans_data.data_size = data_size;
  382. i2c->trans_data.trans_auxlen = trans_auxlen;
  383. return ret;
  384. }
  385. S32 _i2c_transfer_interface(mt_i2c *i2c)
  386. {
  387. S32 return_value = 0;
  388. S32 ret = 0;
  389. U8 *ptr = i2c->msg_buf;
  390. //I2CFUC();
  391. if (i2c->dma_en) {
  392. if (i2c->pdmabase == 0) {
  393. I2CERR(" I2C%d doesnot support DMA mode!\n", i2c->id);
  394. ret = -EINVAL_I2C;
  395. goto err;
  396. }
  397. if ((U32)ptr > DMA_ADDRESS_HIGH) {
  398. I2CERR(" DMA mode should use physical buffer address!\n");
  399. ret = -EINVAL_I2C;
  400. goto err;
  401. }
  402. }
  403. i2c->irq_stat = 0;
  404. return_value = _i2c_get_transfer_len(i2c);
  405. if (return_value < 0) {
  406. I2CERR("_i2c_get_transfer_len fail,return_value=%d\n", return_value);
  407. ret =-EINVAL_I2C;
  408. goto err;
  409. }
  410. //get clock
  411. i2c->clk = I2C_CLK_RATE;
  412. return_value = i2c_set_speed(i2c);
  413. if (return_value < 0) {
  414. I2CERR("i2c_set_speed fail,return_value=%d\n", return_value);
  415. ret = -EINVAL_I2C;
  416. goto err;
  417. }
  418. /*Set Control Register*/
  419. i2c->control_reg = I2C_CONTROL_ACKERR_DET_EN | I2C_CONTROL_CLK_EXT_EN;
  420. if (i2c->dma_en) {
  421. i2c->control_reg |= I2C_CONTROL_DMA_EN;
  422. }
  423. if (I2C_MASTER_WRRD == i2c->op)
  424. i2c->control_reg |= I2C_CONTROL_DIR_CHANGE;
  425. if (HS_MODE == i2c->mode || (i2c->trans_data.trans_num > 1 && I2C_TRANS_REPEATED_START == i2c->st_rs)) {
  426. i2c->control_reg |= I2C_CONTROL_RS;
  427. }
  428. //spin_lock(&i2c->lock);
  429. _i2c_write_reg(i2c);
  430. /*Start the transfer*/
  431. i2c_writel(i2c, OFFSET_START, 0x0001);
  432. //spin_unlock(&i2c->lock);
  433. ret = _i2c_deal_result(i2c);
  434. err:
  435. return ret;
  436. }
  437. S32 _i2c_check_para(mt_i2c *i2c)
  438. {
  439. S32 ret = 0;
  440. //I2CFUC();
  441. if (i2c->addr == 0) {
  442. I2CERR("addr is invalid.\n");
  443. ret = -EINVAL_I2C;
  444. goto err;
  445. }
  446. if (i2c->msg_buf == NULL) {
  447. I2CERR("data buffer is NULL.\n");
  448. ret = -EINVAL_I2C;
  449. goto err;
  450. }
  451. err:
  452. return ret;
  453. }
  454. void _config_mt_i2c(mt_i2c *i2c)
  455. {
  456. //I2CFUC();
  457. switch (i2c->id) {
  458. case I2C0:
  459. i2c->base = I2C0_BASE;
  460. break;
  461. case I2C1:
  462. i2c->base = I2C1_BASE;
  463. break;
  464. case I2C2:
  465. i2c->base = I2C2_BASE;
  466. break;
  467. case I2C_APPM:
  468. i2c->base = I2C3_BASE;
  469. break;
  470. case I2C3:
  471. i2c->base = I2C4_BASE;
  472. break;
  473. default:
  474. I2CERR("invalid para: i2c->id=%d\n", i2c->id);
  475. break;
  476. }
  477. if (i2c->st_rs == I2C_TRANS_REPEATED_START)
  478. i2c->st_rs = I2C_TRANS_REPEATED_START;
  479. else
  480. i2c->st_rs = I2C_TRANS_STOP;
  481. #if 0
  482. if (i2c->dma_en == TRUE)
  483. i2c->dma_en = TRUE;
  484. else
  485. i2c->dma_en = FALSE;
  486. #else
  487. i2c->dma_en = FALSE;
  488. #endif
  489. i2c->poll_en = TRUE;
  490. if (i2c->filter_msg == TRUE)
  491. i2c->filter_msg = TRUE;
  492. else
  493. i2c->filter_msg = FALSE;
  494. ///*Set device speed,set it before set_control register
  495. if (0 == i2c->speed) {
  496. i2c->mode = ST_MODE;
  497. i2c->speed = MAX_ST_MODE_SPEED;
  498. } else {
  499. if (i2c->mode == HS_MODE)
  500. i2c->mode = HS_MODE;
  501. else
  502. i2c->mode = FS_MODE;
  503. }
  504. /*Set ioconfig*/
  505. if (i2c->pushpull == TRUE)
  506. i2c->pushpull = TRUE;
  507. else
  508. i2c->pushpull = FALSE;
  509. }
  510. /*-----------------------------------------------------------------------
  511. * new read interface: Read bytes
  512. * mt_i2c: I2C chip config, see mt_i2c_t.
  513. * buffer: Where to read/write the data.
  514. * len: How many bytes to read/write
  515. * Returns: ERROR_CODE
  516. */
  517. S32 i2c_read(mt_i2c *i2c, U8 *buffer, U32 len)
  518. {
  519. S32 ret = I2C_OK;
  520. #ifdef I2C_EARLY_PORTING
  521. I2CFUC();
  522. #endif
  523. //read
  524. i2c->read_flag |= I2C_M_RD;
  525. i2c->op = I2C_MASTER_RD;
  526. i2c->msg_buf = buffer;
  527. i2c->msg_len = len;
  528. i2c->pdmabase = AP_DMA_BASE + 0x180 + (0x80*(i2c->id));
  529. ret = _i2c_check_para(i2c);
  530. if (ret< 0) {
  531. I2CERR(" _i2c_check_para fail\n");
  532. goto err;
  533. }
  534. _config_mt_i2c(i2c);
  535. //get the addr
  536. ret = _i2c_transfer_interface(i2c);
  537. if ((int)i2c->msg_len != ret) {
  538. I2CERR("read %d bytes fails,ret=%d.\n", i2c->msg_len, ret);
  539. ret = -1;
  540. return ret;
  541. } else {
  542. ret = I2C_OK;
  543. //I2CLOG("read %d bytes pass,ret=%d.\n", i2c->msg_len, ret);
  544. }
  545. err:
  546. return ret;
  547. }
  548. /*-----------------------------------------------------------------------
  549. * New write interface: Write bytes
  550. * i2c: I2C chip config, see mt_i2c_t.
  551. * buffer: Where to read/write the data.
  552. * len: How many bytes to read/write
  553. * Returns: ERROR_CODE
  554. */
  555. S32 i2c_write(mt_i2c *i2c, U8 *buffer, U32 len)
  556. {
  557. S32 ret = I2C_OK;
  558. #ifdef I2C_EARLY_PORTING
  559. I2CFUC();
  560. #endif
  561. //write
  562. i2c->read_flag = !I2C_M_RD;
  563. i2c->op = I2C_MASTER_WR;
  564. i2c->msg_buf = buffer;
  565. i2c->msg_len = len;
  566. i2c->pdmabase = AP_DMA_BASE + 0x180 + (0x80*(i2c->id));
  567. ret = _i2c_check_para(i2c);
  568. if (ret< 0) {
  569. I2CERR(" _i2c_check_para fail\n");
  570. goto err;
  571. }
  572. _config_mt_i2c(i2c);
  573. //get the addr
  574. ret = _i2c_transfer_interface(i2c);
  575. if ((int)i2c->msg_len != ret) {
  576. I2CERR("Write %d bytes fails,ret=%d.\n", i2c->msg_len, ret);
  577. ret = -1;
  578. return ret;
  579. } else {
  580. ret = I2C_OK;
  581. //I2CLOG("Write %d bytes pass,ret=%d.\n", i2c->msg_len, ret);
  582. }
  583. err:
  584. return ret;
  585. }
  586. /*-----------------------------------------------------------------------
  587. * New write then read back interface: Write bytes then read bytes
  588. * i2c: I2C chip config, see mt_i2c_t.
  589. * buffer: Where to read/write the data.
  590. * write_len: How many bytes to write
  591. * read_len: How many bytes to read
  592. * Returns: ERROR_CODE
  593. */
  594. S32 i2c_write_read(mt_i2c *i2c, U8 *buffer, U32 write_len, U32 read_len)
  595. {
  596. S32 ret = I2C_OK;
  597. //I2CFUC();
  598. //write and read
  599. i2c->op = I2C_MASTER_WRRD;
  600. i2c->read_flag = !I2C_M_RD;
  601. i2c->msg_buf = buffer;
  602. i2c->msg_len = ((read_len & 0xFFFF) << 16) | (write_len & 0xFFFF);
  603. i2c->pdmabase = AP_DMA_BASE + 0x180 + (0x80*(i2c->id));
  604. ret = _i2c_check_para(i2c);
  605. if (ret< 0) {
  606. I2CERR(" _i2c_check_para fail\n");
  607. goto err;
  608. }
  609. _config_mt_i2c(i2c);
  610. //get the addr
  611. ret = _i2c_transfer_interface(i2c);
  612. if ((int)i2c->msg_len != ret) {
  613. I2CERR("write_read 0x%x bytes fails,ret=%d.\n", i2c->msg_len, ret);
  614. ret = -1;
  615. return ret;
  616. } else {
  617. ret = I2C_OK;
  618. //I2CLOG("write_read 0x%x bytes pass,ret=%d.\n", i2c->msg_len, ret);
  619. }
  620. err:
  621. return ret;
  622. }
  623. int i2c_hw_init(void)
  624. {
  625. return 0;
  626. }
  627. //Test I2C
  628. #ifdef I2C_EARLY_PORTING
  629. int mt_i2c_test_eeprom(int id)
  630. {
  631. U32 ret = 0;
  632. U32 len = 0;
  633. unsigned char write_byte[2], read_byte[2];
  634. struct mt_i2c_t i2c;
  635. i2c.id = id;
  636. i2c.addr = 0x50;
  637. i2c.mode = FS_MODE;
  638. i2c.speed = 100;
  639. //==================================================
  640. I2CLOG("test i2c write\n");
  641. write_byte[0] = 0x20;
  642. write_byte[1] = 0x55;
  643. len = 2;
  644. ret = i2c_write(&i2c, write_byte, len);
  645. if (I2C_OK != ret) {
  646. I2CERR("Write 2 bytes fails(%x).\n", ret);
  647. ret = -1;
  648. return ret;
  649. } else {
  650. I2CLOG("Write 2 bytes pass,these bytes are %x, %x.\n", write_byte[0], write_byte[1]);
  651. }
  652. mdelay(100);
  653. //==================================================
  654. I2CLOG("test i2c read\n");
  655. //1st:write addree 00,1byte(0x0A)
  656. write_byte[0] = 0x20;
  657. write_byte[1] = 0x0A;
  658. len = 1;
  659. ret = i2c_write(&i2c, write_byte, len);
  660. mdelay(100);
  661. read_byte[0] = 0x20;
  662. len = 1;
  663. ret = i2c_read(&i2c, read_byte, len);
  664. if ((I2C_OK != ret) && read_byte[0] == write_byte[1]) {
  665. I2CERR("read 2 bytes fails(%x).\n", ret);
  666. ret = -1;
  667. return ret;
  668. } else {
  669. I2CLOG("read 2 bytes pass,read_byte=%x,write_byte= %x.\n", read_byte[0], write_byte[1]);
  670. }
  671. mdelay(100);
  672. //==================================================
  673. I2CLOG("test i2c write_read\n");
  674. write_byte[0] = 0x20;
  675. // write_byte[1] = 0x34;
  676. len = ((1 & 0xFFFF) << 16) | (1 & 0xFFFF);
  677. ret = i2c_write_read(&i2c, write_byte, 1, 1);
  678. if (I2C_OK != ret) {
  679. I2CERR("Write 1 byte fails(ret=%x).\n", ret);
  680. ret = -1;
  681. return ret;
  682. } else {
  683. I2CLOG("Read 1 byte pass ,this byte is %x.\n", write_byte[0]);
  684. ret = 0;
  685. }
  686. return ret;
  687. }
  688. int mt_i2c_test(void)
  689. {
  690. int ret;
  691. int i = 0;
  692. I2CFUC();
  693. for (i = 0; i < I2C_NR; i++) {
  694. ret = mt_i2c_test_eeprom(i);
  695. if (0 == ret) {
  696. I2CLOG("I2C%d,EEPROM test PASS!!\n", i);
  697. } else {
  698. I2CLOG("I2C%d,EEPROM test FAIL!!(%d)\n", i, ret);
  699. }
  700. }
  701. return 0;
  702. }
  703. #endif