fsl_espi.c 8.6 KB

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  1. /*
  2. * eSPI controller driver.
  3. *
  4. * Copyright 2010-2011 Freescale Semiconductor, Inc.
  5. * Author: Mingkai Hu (Mingkai.hu@freescale.com)
  6. *
  7. * This program is free software; you can redistribute it and/or
  8. * modify it under the terms of the GNU General Public License as
  9. * published by the Free Software Foundation; either version 2 of
  10. * the License, or (at your option) any later version.
  11. *
  12. * This program is distributed in the hope that it will be useful,
  13. * but WITHOUT ANY WARRANTY; without even the implied warranty of
  14. * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
  15. * GNU General Public License for more details.
  16. *
  17. * You should have received a copy of the GNU General Public License
  18. * along with this program; if not, write to the Free Software
  19. * Foundation, Inc., 59 Temple Place, Suite 330, Boston,
  20. * MA 02111-1307 USA
  21. */
  22. #include <common.h>
  23. #include <malloc.h>
  24. #include <spi.h>
  25. #include <asm/immap_85xx.h>
  26. struct fsl_spi_slave {
  27. struct spi_slave slave;
  28. unsigned int div16;
  29. unsigned int pm;
  30. unsigned int mode;
  31. size_t cmd_len;
  32. u8 cmd_buf[16];
  33. size_t data_len;
  34. unsigned int max_transfer_length;
  35. };
  36. #define to_fsl_spi_slave(s) container_of(s, struct fsl_spi_slave, slave)
  37. #define ESPI_MAX_CS_NUM 4
  38. #define ESPI_EV_RNE (1 << 9)
  39. #define ESPI_EV_TNF (1 << 8)
  40. #define ESPI_MODE_EN (1 << 31) /* Enable interface */
  41. #define ESPI_MODE_TXTHR(x) ((x) << 8) /* Tx FIFO threshold */
  42. #define ESPI_MODE_RXTHR(x) ((x) << 0) /* Rx FIFO threshold */
  43. #define ESPI_COM_CS(x) ((x) << 30)
  44. #define ESPI_COM_TRANLEN(x) ((x) << 0)
  45. #define ESPI_CSMODE_CI_INACTIVEHIGH (1 << 31)
  46. #define ESPI_CSMODE_CP_BEGIN_EDGCLK (1 << 30)
  47. #define ESPI_CSMODE_REV_MSB_FIRST (1 << 29)
  48. #define ESPI_CSMODE_DIV16 (1 << 28)
  49. #define ESPI_CSMODE_PM(x) ((x) << 24)
  50. #define ESPI_CSMODE_POL_ASSERTED_LOW (1 << 20)
  51. #define ESPI_CSMODE_LEN(x) ((x) << 16)
  52. #define ESPI_CSMODE_CSBEF(x) ((x) << 12)
  53. #define ESPI_CSMODE_CSAFT(x) ((x) << 8)
  54. #define ESPI_CSMODE_CSCG(x) ((x) << 3)
  55. #define ESPI_CSMODE_INIT_VAL (ESPI_CSMODE_POL_ASSERTED_LOW | \
  56. ESPI_CSMODE_CSBEF(0) | ESPI_CSMODE_CSAFT(0) | \
  57. ESPI_CSMODE_CSCG(1))
  58. #define ESPI_MAX_DATA_TRANSFER_LEN 0xFFF0
  59. struct spi_slave *spi_setup_slave(unsigned int bus, unsigned int cs,
  60. unsigned int max_hz, unsigned int mode)
  61. {
  62. struct fsl_spi_slave *fsl;
  63. sys_info_t sysinfo;
  64. unsigned long spibrg = 0;
  65. unsigned char pm = 0;
  66. if (!spi_cs_is_valid(bus, cs))
  67. return NULL;
  68. fsl = malloc(sizeof(struct fsl_spi_slave));
  69. if (!fsl)
  70. return NULL;
  71. fsl->slave.bus = bus;
  72. fsl->slave.cs = cs;
  73. fsl->mode = mode;
  74. fsl->max_transfer_length = ESPI_MAX_DATA_TRANSFER_LEN;
  75. /* Set eSPI BRG clock source */
  76. get_sys_info(&sysinfo);
  77. spibrg = sysinfo.freqSystemBus / 2;
  78. fsl->div16 = 0;
  79. if ((spibrg / max_hz) > 32) {
  80. fsl->div16 = ESPI_CSMODE_DIV16;
  81. pm = spibrg / (max_hz * 16 * 2);
  82. if (pm > 16) {
  83. pm = 16;
  84. debug("Requested speed is too low: %d Hz, %ld Hz "
  85. "is used.\n", max_hz, spibrg / (32 * 16));
  86. }
  87. } else
  88. pm = spibrg / (max_hz * 2);
  89. if (pm)
  90. pm--;
  91. fsl->pm = pm;
  92. return &fsl->slave;
  93. }
  94. void spi_free_slave(struct spi_slave *slave)
  95. {
  96. struct fsl_spi_slave *fsl = to_fsl_spi_slave(slave);
  97. free(fsl);
  98. }
  99. void spi_init(void)
  100. {
  101. }
  102. int spi_claim_bus(struct spi_slave *slave)
  103. {
  104. struct fsl_spi_slave *fsl = to_fsl_spi_slave(slave);
  105. ccsr_espi_t *espi = (void *)(CONFIG_SYS_MPC85xx_ESPI_ADDR);
  106. unsigned char pm = fsl->pm;
  107. unsigned int cs = slave->cs;
  108. unsigned int mode = fsl->mode;
  109. unsigned int div16 = fsl->div16;
  110. int i;
  111. debug("%s: bus:%i cs:%i\n", __func__, slave->bus, cs);
  112. /* Enable eSPI interface */
  113. out_be32(&espi->mode, ESPI_MODE_RXTHR(3)
  114. | ESPI_MODE_TXTHR(4) | ESPI_MODE_EN);
  115. out_be32(&espi->event, 0xffffffff); /* Clear all eSPI events */
  116. out_be32(&espi->mask, 0x00000000); /* Mask all eSPI interrupts */
  117. /* Init CS mode interface */
  118. for (i = 0; i < ESPI_MAX_CS_NUM; i++)
  119. out_be32(&espi->csmode[i], ESPI_CSMODE_INIT_VAL);
  120. out_be32(&espi->csmode[cs], in_be32(&espi->csmode[cs]) &
  121. ~(ESPI_CSMODE_PM(0xF) | ESPI_CSMODE_DIV16
  122. | ESPI_CSMODE_CI_INACTIVEHIGH | ESPI_CSMODE_CP_BEGIN_EDGCLK
  123. | ESPI_CSMODE_REV_MSB_FIRST | ESPI_CSMODE_LEN(0xF)));
  124. /* Set eSPI BRG clock source */
  125. out_be32(&espi->csmode[cs], in_be32(&espi->csmode[cs])
  126. | ESPI_CSMODE_PM(pm) | div16);
  127. /* Set eSPI mode */
  128. if (mode & SPI_CPHA)
  129. out_be32(&espi->csmode[cs], in_be32(&espi->csmode[cs])
  130. | ESPI_CSMODE_CP_BEGIN_EDGCLK);
  131. if (mode & SPI_CPOL)
  132. out_be32(&espi->csmode[cs], in_be32(&espi->csmode[cs])
  133. | ESPI_CSMODE_CI_INACTIVEHIGH);
  134. /* Character bit order: msb first */
  135. out_be32(&espi->csmode[cs], in_be32(&espi->csmode[cs])
  136. | ESPI_CSMODE_REV_MSB_FIRST);
  137. /* Character length in bits, between 0x3~0xf, i.e. 4bits~16bits */
  138. out_be32(&espi->csmode[cs], in_be32(&espi->csmode[cs])
  139. | ESPI_CSMODE_LEN(7));
  140. return 0;
  141. }
  142. void spi_release_bus(struct spi_slave *slave)
  143. {
  144. }
  145. int spi_xfer(struct spi_slave *slave, unsigned int bitlen, const void *data_out,
  146. void *data_in, unsigned long flags)
  147. {
  148. struct fsl_spi_slave *fsl = to_fsl_spi_slave(slave);
  149. ccsr_espi_t *espi = (void *)(CONFIG_SYS_MPC85xx_ESPI_ADDR);
  150. unsigned int tmpdout, tmpdin, event;
  151. const void *dout = NULL;
  152. void *din = NULL;
  153. int len = 0;
  154. int num_blks, num_chunks, max_tran_len, tran_len;
  155. int num_bytes;
  156. unsigned char *ch;
  157. unsigned char *buffer = NULL;
  158. size_t buf_len;
  159. u8 *cmd_buf = fsl->cmd_buf;
  160. size_t cmd_len = fsl->cmd_len;
  161. size_t data_len = bitlen / 8;
  162. size_t rx_offset = 0;
  163. max_tran_len = fsl->max_transfer_length;
  164. switch (flags) {
  165. case SPI_XFER_BEGIN:
  166. cmd_len = fsl->cmd_len = data_len;
  167. memcpy(cmd_buf, data_out, cmd_len);
  168. return 0;
  169. case 0:
  170. case SPI_XFER_END:
  171. if (bitlen == 0) {
  172. spi_cs_deactivate(slave);
  173. return 0;
  174. }
  175. buf_len = 2 * cmd_len + min(data_len, max_tran_len);
  176. len = cmd_len + data_len;
  177. rx_offset = cmd_len;
  178. buffer = (unsigned char *)malloc(buf_len);
  179. if (!buffer) {
  180. debug("SF: Failed to malloc memory.\n");
  181. return 1;
  182. }
  183. memcpy(buffer, cmd_buf, cmd_len);
  184. if (data_in == NULL)
  185. memcpy(buffer + cmd_len, data_out, data_len);
  186. break;
  187. case SPI_XFER_BEGIN | SPI_XFER_END:
  188. len = data_len;
  189. buffer = (unsigned char *)malloc(len * 2);
  190. if (!buffer) {
  191. debug("SF: Failed to malloc memory.\n");
  192. return 1;
  193. }
  194. memcpy(buffer, data_out, len);
  195. rx_offset = len;
  196. cmd_len = 0;
  197. break;
  198. }
  199. debug("spi_xfer: slave %u:%u dout %08X(%p) din %08X(%p) len %u\n",
  200. slave->bus, slave->cs, *(uint *) dout,
  201. dout, *(uint *) din, din, len);
  202. num_chunks = data_len / max_tran_len +
  203. (data_len % max_tran_len ? 1 : 0);
  204. while (num_chunks--) {
  205. if (data_in)
  206. din = buffer + rx_offset;
  207. dout = buffer;
  208. tran_len = min(data_len , max_tran_len);
  209. num_blks = (tran_len + cmd_len) / 4 +
  210. ((tran_len + cmd_len) % 4 ? 1 : 0);
  211. num_bytes = (tran_len + cmd_len) % 4;
  212. fsl->data_len = tran_len + cmd_len;
  213. spi_cs_activate(slave);
  214. /* Clear all eSPI events */
  215. out_be32(&espi->event , 0xffffffff);
  216. /* handle data in 32-bit chunks */
  217. while (num_blks--) {
  218. event = in_be32(&espi->event);
  219. if (event & ESPI_EV_TNF) {
  220. tmpdout = *(u32 *)dout;
  221. /* Set up the next iteration */
  222. if (len > 4) {
  223. len -= 4;
  224. dout += 4;
  225. }
  226. out_be32(&espi->tx, tmpdout);
  227. out_be32(&espi->event, ESPI_EV_TNF);
  228. debug("***spi_xfer:...%08x written\n", tmpdout);
  229. }
  230. /* Wait for eSPI transmit to get out */
  231. udelay(80);
  232. event = in_be32(&espi->event);
  233. if (event & ESPI_EV_RNE) {
  234. tmpdin = in_be32(&espi->rx);
  235. if (num_blks == 0 && num_bytes != 0) {
  236. ch = (unsigned char *)&tmpdin;
  237. while (num_bytes--)
  238. *(unsigned char *)din++ = *ch++;
  239. } else {
  240. *(u32 *) din = tmpdin;
  241. din += 4;
  242. }
  243. out_be32(&espi->event, in_be32(&espi->event)
  244. | ESPI_EV_RNE);
  245. debug("***spi_xfer:...%08x readed\n", tmpdin);
  246. }
  247. }
  248. if (data_in) {
  249. memcpy(data_in, buffer + 2 * cmd_len, tran_len);
  250. if (*buffer == 0x0b) {
  251. data_in += tran_len;
  252. data_len -= tran_len;
  253. *(int *)buffer += tran_len;
  254. }
  255. }
  256. spi_cs_deactivate(slave);
  257. }
  258. free(buffer);
  259. return 0;
  260. }
  261. int spi_cs_is_valid(unsigned int bus, unsigned int cs)
  262. {
  263. return bus == 0 && cs < ESPI_MAX_CS_NUM;
  264. }
  265. void spi_cs_activate(struct spi_slave *slave)
  266. {
  267. struct fsl_spi_slave *fsl = to_fsl_spi_slave(slave);
  268. ccsr_espi_t *espi = (void *)(CONFIG_SYS_MPC85xx_ESPI_ADDR);
  269. unsigned int com = 0;
  270. size_t data_len = fsl->data_len;
  271. com &= ~(ESPI_COM_CS(0x3) | ESPI_COM_TRANLEN(0xFFFF));
  272. com |= ESPI_COM_CS(slave->cs);
  273. com |= ESPI_COM_TRANLEN(data_len - 1);
  274. out_be32(&espi->com, com);
  275. }
  276. void spi_cs_deactivate(struct spi_slave *slave)
  277. {
  278. ccsr_espi_t *espi = (void *)(CONFIG_SYS_MPC85xx_ESPI_ADDR);
  279. /* clear the RXCNT and TXCNT */
  280. out_be32(&espi->mode, in_be32(&espi->mode) & (~ESPI_MODE_EN));
  281. out_be32(&espi->mode, in_be32(&espi->mode) | ESPI_MODE_EN);
  282. }