renesas-rpc-if.c 21 KB

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  1. // SPDX-License-Identifier: GPL-2.0
  2. /*
  3. * Renesas RPC-IF core driver
  4. *
  5. * Copyright (C) 2018-2019 Renesas Solutions Corp.
  6. * Copyright (C) 2019 Macronix International Co., Ltd.
  7. * Copyright (C) 2019-2020 Cogent Embedded, Inc.
  8. */
  9. #include <linux/bitops.h>
  10. #include <linux/clk.h>
  11. #include <linux/io.h>
  12. #include <linux/module.h>
  13. #include <linux/platform_device.h>
  14. #include <linux/of.h>
  15. #include <linux/regmap.h>
  16. #include <linux/reset.h>
  17. #include <memory/renesas-rpc-if.h>
  18. #define RPCIF_CMNCR 0x0000 /* R/W */
  19. #define RPCIF_CMNCR_MD BIT(31)
  20. #define RPCIF_CMNCR_MOIIO3(val) (((val) & 0x3) << 22)
  21. #define RPCIF_CMNCR_MOIIO2(val) (((val) & 0x3) << 20)
  22. #define RPCIF_CMNCR_MOIIO1(val) (((val) & 0x3) << 18)
  23. #define RPCIF_CMNCR_MOIIO0(val) (((val) & 0x3) << 16)
  24. #define RPCIF_CMNCR_MOIIO(val) (RPCIF_CMNCR_MOIIO0(val) | RPCIF_CMNCR_MOIIO1(val) | \
  25. RPCIF_CMNCR_MOIIO2(val) | RPCIF_CMNCR_MOIIO3(val))
  26. #define RPCIF_CMNCR_IO3FV(val) (((val) & 0x3) << 14) /* documented for RZ/G2L */
  27. #define RPCIF_CMNCR_IO2FV(val) (((val) & 0x3) << 12) /* documented for RZ/G2L */
  28. #define RPCIF_CMNCR_IO0FV(val) (((val) & 0x3) << 8)
  29. #define RPCIF_CMNCR_IOFV(val) (RPCIF_CMNCR_IO0FV(val) | RPCIF_CMNCR_IO2FV(val) | \
  30. RPCIF_CMNCR_IO3FV(val))
  31. #define RPCIF_CMNCR_BSZ(val) (((val) & 0x3) << 0)
  32. #define RPCIF_SSLDR 0x0004 /* R/W */
  33. #define RPCIF_SSLDR_SPNDL(d) (((d) & 0x7) << 16)
  34. #define RPCIF_SSLDR_SLNDL(d) (((d) & 0x7) << 8)
  35. #define RPCIF_SSLDR_SCKDL(d) (((d) & 0x7) << 0)
  36. #define RPCIF_DRCR 0x000C /* R/W */
  37. #define RPCIF_DRCR_SSLN BIT(24)
  38. #define RPCIF_DRCR_RBURST(v) ((((v) - 1) & 0x1F) << 16)
  39. #define RPCIF_DRCR_RCF BIT(9)
  40. #define RPCIF_DRCR_RBE BIT(8)
  41. #define RPCIF_DRCR_SSLE BIT(0)
  42. #define RPCIF_DRCMR 0x0010 /* R/W */
  43. #define RPCIF_DRCMR_CMD(c) (((c) & 0xFF) << 16)
  44. #define RPCIF_DRCMR_OCMD(c) (((c) & 0xFF) << 0)
  45. #define RPCIF_DREAR 0x0014 /* R/W */
  46. #define RPCIF_DREAR_EAV(c) (((c) & 0xF) << 16)
  47. #define RPCIF_DREAR_EAC(c) (((c) & 0x7) << 0)
  48. #define RPCIF_DROPR 0x0018 /* R/W */
  49. #define RPCIF_DRENR 0x001C /* R/W */
  50. #define RPCIF_DRENR_CDB(o) (u32)((((o) & 0x3) << 30))
  51. #define RPCIF_DRENR_OCDB(o) (((o) & 0x3) << 28)
  52. #define RPCIF_DRENR_ADB(o) (((o) & 0x3) << 24)
  53. #define RPCIF_DRENR_OPDB(o) (((o) & 0x3) << 20)
  54. #define RPCIF_DRENR_DRDB(o) (((o) & 0x3) << 16)
  55. #define RPCIF_DRENR_DME BIT(15)
  56. #define RPCIF_DRENR_CDE BIT(14)
  57. #define RPCIF_DRENR_OCDE BIT(12)
  58. #define RPCIF_DRENR_ADE(v) (((v) & 0xF) << 8)
  59. #define RPCIF_DRENR_OPDE(v) (((v) & 0xF) << 4)
  60. #define RPCIF_SMCR 0x0020 /* R/W */
  61. #define RPCIF_SMCR_SSLKP BIT(8)
  62. #define RPCIF_SMCR_SPIRE BIT(2)
  63. #define RPCIF_SMCR_SPIWE BIT(1)
  64. #define RPCIF_SMCR_SPIE BIT(0)
  65. #define RPCIF_SMCMR 0x0024 /* R/W */
  66. #define RPCIF_SMCMR_CMD(c) (((c) & 0xFF) << 16)
  67. #define RPCIF_SMCMR_OCMD(c) (((c) & 0xFF) << 0)
  68. #define RPCIF_SMADR 0x0028 /* R/W */
  69. #define RPCIF_SMOPR 0x002C /* R/W */
  70. #define RPCIF_SMOPR_OPD3(o) (((o) & 0xFF) << 24)
  71. #define RPCIF_SMOPR_OPD2(o) (((o) & 0xFF) << 16)
  72. #define RPCIF_SMOPR_OPD1(o) (((o) & 0xFF) << 8)
  73. #define RPCIF_SMOPR_OPD0(o) (((o) & 0xFF) << 0)
  74. #define RPCIF_SMENR 0x0030 /* R/W */
  75. #define RPCIF_SMENR_CDB(o) (((o) & 0x3) << 30)
  76. #define RPCIF_SMENR_OCDB(o) (((o) & 0x3) << 28)
  77. #define RPCIF_SMENR_ADB(o) (((o) & 0x3) << 24)
  78. #define RPCIF_SMENR_OPDB(o) (((o) & 0x3) << 20)
  79. #define RPCIF_SMENR_SPIDB(o) (((o) & 0x3) << 16)
  80. #define RPCIF_SMENR_DME BIT(15)
  81. #define RPCIF_SMENR_CDE BIT(14)
  82. #define RPCIF_SMENR_OCDE BIT(12)
  83. #define RPCIF_SMENR_ADE(v) (((v) & 0xF) << 8)
  84. #define RPCIF_SMENR_OPDE(v) (((v) & 0xF) << 4)
  85. #define RPCIF_SMENR_SPIDE(v) (((v) & 0xF) << 0)
  86. #define RPCIF_SMRDR0 0x0038 /* R */
  87. #define RPCIF_SMRDR1 0x003C /* R */
  88. #define RPCIF_SMWDR0 0x0040 /* W */
  89. #define RPCIF_SMWDR1 0x0044 /* W */
  90. #define RPCIF_CMNSR 0x0048 /* R */
  91. #define RPCIF_CMNSR_SSLF BIT(1)
  92. #define RPCIF_CMNSR_TEND BIT(0)
  93. #define RPCIF_DRDMCR 0x0058 /* R/W */
  94. #define RPCIF_DMDMCR_DMCYC(v) ((((v) - 1) & 0x1F) << 0)
  95. #define RPCIF_DRDRENR 0x005C /* R/W */
  96. #define RPCIF_DRDRENR_HYPE(v) (((v) & 0x7) << 12)
  97. #define RPCIF_DRDRENR_ADDRE BIT(8)
  98. #define RPCIF_DRDRENR_OPDRE BIT(4)
  99. #define RPCIF_DRDRENR_DRDRE BIT(0)
  100. #define RPCIF_SMDMCR 0x0060 /* R/W */
  101. #define RPCIF_SMDMCR_DMCYC(v) ((((v) - 1) & 0x1F) << 0)
  102. #define RPCIF_SMDRENR 0x0064 /* R/W */
  103. #define RPCIF_SMDRENR_HYPE(v) (((v) & 0x7) << 12)
  104. #define RPCIF_SMDRENR_ADDRE BIT(8)
  105. #define RPCIF_SMDRENR_OPDRE BIT(4)
  106. #define RPCIF_SMDRENR_SPIDRE BIT(0)
  107. #define RPCIF_PHYADD 0x0070 /* R/W available on R-Car E3/D3/V3M and RZ/G2{E,L} */
  108. #define RPCIF_PHYWR 0x0074 /* R/W available on R-Car E3/D3/V3M and RZ/G2{E,L} */
  109. #define RPCIF_PHYCNT 0x007C /* R/W */
  110. #define RPCIF_PHYCNT_CAL BIT(31)
  111. #define RPCIF_PHYCNT_OCTA(v) (((v) & 0x3) << 22)
  112. #define RPCIF_PHYCNT_EXDS BIT(21)
  113. #define RPCIF_PHYCNT_OCT BIT(20)
  114. #define RPCIF_PHYCNT_DDRCAL BIT(19)
  115. #define RPCIF_PHYCNT_HS BIT(18)
  116. #define RPCIF_PHYCNT_CKSEL(v) (((v) & 0x3) << 16) /* valid only for RZ/G2L */
  117. #define RPCIF_PHYCNT_STRTIM(v) (((v) & 0x7) << 15 | ((v) & 0x8) << 24) /* valid for R-Car and RZ/G2{E,H,M,N} */
  118. #define RPCIF_PHYCNT_WBUF2 BIT(4)
  119. #define RPCIF_PHYCNT_WBUF BIT(2)
  120. #define RPCIF_PHYCNT_PHYMEM(v) (((v) & 0x3) << 0)
  121. #define RPCIF_PHYCNT_PHYMEM_MASK GENMASK(1, 0)
  122. #define RPCIF_PHYOFFSET1 0x0080 /* R/W */
  123. #define RPCIF_PHYOFFSET1_DDRTMG(v) (((v) & 0x3) << 28)
  124. #define RPCIF_PHYOFFSET2 0x0084 /* R/W */
  125. #define RPCIF_PHYOFFSET2_OCTTMG(v) (((v) & 0x7) << 8)
  126. #define RPCIF_PHYINT 0x0088 /* R/W */
  127. #define RPCIF_PHYINT_WPVAL BIT(1)
  128. static const struct regmap_range rpcif_volatile_ranges[] = {
  129. regmap_reg_range(RPCIF_SMRDR0, RPCIF_SMRDR1),
  130. regmap_reg_range(RPCIF_SMWDR0, RPCIF_SMWDR1),
  131. regmap_reg_range(RPCIF_CMNSR, RPCIF_CMNSR),
  132. };
  133. static const struct regmap_access_table rpcif_volatile_table = {
  134. .yes_ranges = rpcif_volatile_ranges,
  135. .n_yes_ranges = ARRAY_SIZE(rpcif_volatile_ranges),
  136. };
  137. struct rpcif_info {
  138. enum rpcif_type type;
  139. u8 strtim;
  140. };
  141. struct rpcif_priv {
  142. struct device *dev;
  143. void __iomem *base;
  144. void __iomem *dirmap;
  145. struct regmap *regmap;
  146. struct reset_control *rstc;
  147. struct platform_device *vdev;
  148. size_t size;
  149. const struct rpcif_info *info;
  150. enum rpcif_data_dir dir;
  151. u8 bus_size;
  152. u8 xfer_size;
  153. void *buffer;
  154. u32 xferlen;
  155. u32 smcr;
  156. u32 smadr;
  157. u32 command; /* DRCMR or SMCMR */
  158. u32 option; /* DROPR or SMOPR */
  159. u32 enable; /* DRENR or SMENR */
  160. u32 dummy; /* DRDMCR or SMDMCR */
  161. u32 ddr; /* DRDRENR or SMDRENR */
  162. };
  163. static const struct rpcif_info rpcif_info_r8a7796 = {
  164. .type = RPCIF_RCAR_GEN3,
  165. .strtim = 6,
  166. };
  167. static const struct rpcif_info rpcif_info_gen3 = {
  168. .type = RPCIF_RCAR_GEN3,
  169. .strtim = 7,
  170. };
  171. static const struct rpcif_info rpcif_info_rz_g2l = {
  172. .type = RPCIF_RZ_G2L,
  173. .strtim = 7,
  174. };
  175. static const struct rpcif_info rpcif_info_gen4 = {
  176. .type = RPCIF_RCAR_GEN4,
  177. .strtim = 15,
  178. };
  179. /*
  180. * Custom accessor functions to ensure SM[RW]DR[01] are always accessed with
  181. * proper width. Requires rpcif_priv.xfer_size to be correctly set before!
  182. */
  183. static int rpcif_reg_read(void *context, unsigned int reg, unsigned int *val)
  184. {
  185. struct rpcif_priv *rpc = context;
  186. switch (reg) {
  187. case RPCIF_SMRDR0:
  188. case RPCIF_SMWDR0:
  189. switch (rpc->xfer_size) {
  190. case 1:
  191. *val = readb(rpc->base + reg);
  192. return 0;
  193. case 2:
  194. *val = readw(rpc->base + reg);
  195. return 0;
  196. case 4:
  197. case 8:
  198. *val = readl(rpc->base + reg);
  199. return 0;
  200. default:
  201. return -EILSEQ;
  202. }
  203. case RPCIF_SMRDR1:
  204. case RPCIF_SMWDR1:
  205. if (rpc->xfer_size != 8)
  206. return -EILSEQ;
  207. break;
  208. }
  209. *val = readl(rpc->base + reg);
  210. return 0;
  211. }
  212. static int rpcif_reg_write(void *context, unsigned int reg, unsigned int val)
  213. {
  214. struct rpcif_priv *rpc = context;
  215. switch (reg) {
  216. case RPCIF_SMWDR0:
  217. switch (rpc->xfer_size) {
  218. case 1:
  219. writeb(val, rpc->base + reg);
  220. return 0;
  221. case 2:
  222. writew(val, rpc->base + reg);
  223. return 0;
  224. case 4:
  225. case 8:
  226. writel(val, rpc->base + reg);
  227. return 0;
  228. default:
  229. return -EILSEQ;
  230. }
  231. case RPCIF_SMWDR1:
  232. if (rpc->xfer_size != 8)
  233. return -EILSEQ;
  234. break;
  235. case RPCIF_SMRDR0:
  236. case RPCIF_SMRDR1:
  237. return -EPERM;
  238. }
  239. writel(val, rpc->base + reg);
  240. return 0;
  241. }
  242. static const struct regmap_config rpcif_regmap_config = {
  243. .reg_bits = 32,
  244. .val_bits = 32,
  245. .reg_stride = 4,
  246. .reg_read = rpcif_reg_read,
  247. .reg_write = rpcif_reg_write,
  248. .fast_io = true,
  249. .max_register = RPCIF_PHYINT,
  250. .volatile_table = &rpcif_volatile_table,
  251. };
  252. int rpcif_sw_init(struct rpcif *rpcif, struct device *dev)
  253. {
  254. struct rpcif_priv *rpc = dev_get_drvdata(dev);
  255. rpcif->dev = dev;
  256. rpcif->dirmap = rpc->dirmap;
  257. rpcif->size = rpc->size;
  258. return 0;
  259. }
  260. EXPORT_SYMBOL(rpcif_sw_init);
  261. static void rpcif_rzg2l_timing_adjust_sdr(struct rpcif_priv *rpc)
  262. {
  263. regmap_write(rpc->regmap, RPCIF_PHYWR, 0xa5390000);
  264. regmap_write(rpc->regmap, RPCIF_PHYADD, 0x80000000);
  265. regmap_write(rpc->regmap, RPCIF_PHYWR, 0x00008080);
  266. regmap_write(rpc->regmap, RPCIF_PHYADD, 0x80000022);
  267. regmap_write(rpc->regmap, RPCIF_PHYWR, 0x00008080);
  268. regmap_write(rpc->regmap, RPCIF_PHYADD, 0x80000024);
  269. regmap_update_bits(rpc->regmap, RPCIF_PHYCNT, RPCIF_PHYCNT_CKSEL(3),
  270. RPCIF_PHYCNT_CKSEL(3));
  271. regmap_write(rpc->regmap, RPCIF_PHYWR, 0x00000030);
  272. regmap_write(rpc->regmap, RPCIF_PHYADD, 0x80000032);
  273. }
  274. int rpcif_hw_init(struct device *dev, bool hyperflash)
  275. {
  276. struct rpcif_priv *rpc = dev_get_drvdata(dev);
  277. u32 dummy;
  278. int ret;
  279. ret = pm_runtime_resume_and_get(dev);
  280. if (ret)
  281. return ret;
  282. if (rpc->info->type == RPCIF_RZ_G2L) {
  283. ret = reset_control_reset(rpc->rstc);
  284. if (ret)
  285. return ret;
  286. usleep_range(200, 300);
  287. rpcif_rzg2l_timing_adjust_sdr(rpc);
  288. }
  289. regmap_update_bits(rpc->regmap, RPCIF_PHYCNT, RPCIF_PHYCNT_PHYMEM_MASK,
  290. RPCIF_PHYCNT_PHYMEM(hyperflash ? 3 : 0));
  291. /* DMA Transfer is not supported */
  292. regmap_update_bits(rpc->regmap, RPCIF_PHYCNT, RPCIF_PHYCNT_HS, 0);
  293. regmap_update_bits(rpc->regmap, RPCIF_PHYCNT,
  294. /* create mask with all affected bits set */
  295. RPCIF_PHYCNT_STRTIM(BIT(fls(rpc->info->strtim)) - 1),
  296. RPCIF_PHYCNT_STRTIM(rpc->info->strtim));
  297. regmap_update_bits(rpc->regmap, RPCIF_PHYOFFSET1, RPCIF_PHYOFFSET1_DDRTMG(3),
  298. RPCIF_PHYOFFSET1_DDRTMG(3));
  299. regmap_update_bits(rpc->regmap, RPCIF_PHYOFFSET2, RPCIF_PHYOFFSET2_OCTTMG(7),
  300. RPCIF_PHYOFFSET2_OCTTMG(4));
  301. if (hyperflash)
  302. regmap_update_bits(rpc->regmap, RPCIF_PHYINT,
  303. RPCIF_PHYINT_WPVAL, 0);
  304. if (rpc->info->type == RPCIF_RZ_G2L)
  305. regmap_update_bits(rpc->regmap, RPCIF_CMNCR,
  306. RPCIF_CMNCR_MOIIO(3) | RPCIF_CMNCR_IOFV(3) |
  307. RPCIF_CMNCR_BSZ(3),
  308. RPCIF_CMNCR_MOIIO(1) | RPCIF_CMNCR_IOFV(3) |
  309. RPCIF_CMNCR_BSZ(hyperflash ? 1 : 0));
  310. else
  311. regmap_update_bits(rpc->regmap, RPCIF_CMNCR,
  312. RPCIF_CMNCR_MOIIO(3) | RPCIF_CMNCR_BSZ(3),
  313. RPCIF_CMNCR_MOIIO(3) |
  314. RPCIF_CMNCR_BSZ(hyperflash ? 1 : 0));
  315. /* Set RCF after BSZ update */
  316. regmap_write(rpc->regmap, RPCIF_DRCR, RPCIF_DRCR_RCF);
  317. /* Dummy read according to spec */
  318. regmap_read(rpc->regmap, RPCIF_DRCR, &dummy);
  319. regmap_write(rpc->regmap, RPCIF_SSLDR, RPCIF_SSLDR_SPNDL(7) |
  320. RPCIF_SSLDR_SLNDL(7) | RPCIF_SSLDR_SCKDL(7));
  321. pm_runtime_put(dev);
  322. rpc->bus_size = hyperflash ? 2 : 1;
  323. return 0;
  324. }
  325. EXPORT_SYMBOL(rpcif_hw_init);
  326. static int wait_msg_xfer_end(struct rpcif_priv *rpc)
  327. {
  328. u32 sts;
  329. return regmap_read_poll_timeout(rpc->regmap, RPCIF_CMNSR, sts,
  330. sts & RPCIF_CMNSR_TEND, 0,
  331. USEC_PER_SEC);
  332. }
  333. static u8 rpcif_bits_set(struct rpcif_priv *rpc, u32 nbytes)
  334. {
  335. if (rpc->bus_size == 2)
  336. nbytes /= 2;
  337. nbytes = clamp(nbytes, 1U, 4U);
  338. return GENMASK(3, 4 - nbytes);
  339. }
  340. static u8 rpcif_bit_size(u8 buswidth)
  341. {
  342. return buswidth > 4 ? 2 : ilog2(buswidth);
  343. }
  344. void rpcif_prepare(struct device *dev, const struct rpcif_op *op, u64 *offs,
  345. size_t *len)
  346. {
  347. struct rpcif_priv *rpc = dev_get_drvdata(dev);
  348. rpc->smcr = 0;
  349. rpc->smadr = 0;
  350. rpc->enable = 0;
  351. rpc->command = 0;
  352. rpc->option = 0;
  353. rpc->dummy = 0;
  354. rpc->ddr = 0;
  355. rpc->xferlen = 0;
  356. if (op->cmd.buswidth) {
  357. rpc->enable = RPCIF_SMENR_CDE |
  358. RPCIF_SMENR_CDB(rpcif_bit_size(op->cmd.buswidth));
  359. rpc->command = RPCIF_SMCMR_CMD(op->cmd.opcode);
  360. if (op->cmd.ddr)
  361. rpc->ddr = RPCIF_SMDRENR_HYPE(0x5);
  362. }
  363. if (op->ocmd.buswidth) {
  364. rpc->enable |= RPCIF_SMENR_OCDE |
  365. RPCIF_SMENR_OCDB(rpcif_bit_size(op->ocmd.buswidth));
  366. rpc->command |= RPCIF_SMCMR_OCMD(op->ocmd.opcode);
  367. }
  368. if (op->addr.buswidth) {
  369. rpc->enable |=
  370. RPCIF_SMENR_ADB(rpcif_bit_size(op->addr.buswidth));
  371. if (op->addr.nbytes == 4)
  372. rpc->enable |= RPCIF_SMENR_ADE(0xF);
  373. else
  374. rpc->enable |= RPCIF_SMENR_ADE(GENMASK(
  375. 2, 3 - op->addr.nbytes));
  376. if (op->addr.ddr)
  377. rpc->ddr |= RPCIF_SMDRENR_ADDRE;
  378. if (offs && len)
  379. rpc->smadr = *offs;
  380. else
  381. rpc->smadr = op->addr.val;
  382. }
  383. if (op->dummy.buswidth) {
  384. rpc->enable |= RPCIF_SMENR_DME;
  385. rpc->dummy = RPCIF_SMDMCR_DMCYC(op->dummy.ncycles);
  386. }
  387. if (op->option.buswidth) {
  388. rpc->enable |= RPCIF_SMENR_OPDE(
  389. rpcif_bits_set(rpc, op->option.nbytes)) |
  390. RPCIF_SMENR_OPDB(rpcif_bit_size(op->option.buswidth));
  391. if (op->option.ddr)
  392. rpc->ddr |= RPCIF_SMDRENR_OPDRE;
  393. rpc->option = op->option.val;
  394. }
  395. rpc->dir = op->data.dir;
  396. if (op->data.buswidth) {
  397. u32 nbytes;
  398. rpc->buffer = op->data.buf.in;
  399. switch (op->data.dir) {
  400. case RPCIF_DATA_IN:
  401. rpc->smcr = RPCIF_SMCR_SPIRE;
  402. break;
  403. case RPCIF_DATA_OUT:
  404. rpc->smcr = RPCIF_SMCR_SPIWE;
  405. break;
  406. default:
  407. break;
  408. }
  409. if (op->data.ddr)
  410. rpc->ddr |= RPCIF_SMDRENR_SPIDRE;
  411. if (offs && len)
  412. nbytes = *len;
  413. else
  414. nbytes = op->data.nbytes;
  415. rpc->xferlen = nbytes;
  416. rpc->enable |= RPCIF_SMENR_SPIDB(rpcif_bit_size(op->data.buswidth));
  417. }
  418. }
  419. EXPORT_SYMBOL(rpcif_prepare);
  420. int rpcif_manual_xfer(struct device *dev)
  421. {
  422. struct rpcif_priv *rpc = dev_get_drvdata(dev);
  423. u32 smenr, smcr, pos = 0, max = rpc->bus_size == 2 ? 8 : 4;
  424. int ret = 0;
  425. ret = pm_runtime_resume_and_get(dev);
  426. if (ret < 0)
  427. return ret;
  428. regmap_update_bits(rpc->regmap, RPCIF_PHYCNT,
  429. RPCIF_PHYCNT_CAL, RPCIF_PHYCNT_CAL);
  430. regmap_update_bits(rpc->regmap, RPCIF_CMNCR,
  431. RPCIF_CMNCR_MD, RPCIF_CMNCR_MD);
  432. regmap_write(rpc->regmap, RPCIF_SMCMR, rpc->command);
  433. regmap_write(rpc->regmap, RPCIF_SMOPR, rpc->option);
  434. regmap_write(rpc->regmap, RPCIF_SMDMCR, rpc->dummy);
  435. regmap_write(rpc->regmap, RPCIF_SMDRENR, rpc->ddr);
  436. regmap_write(rpc->regmap, RPCIF_SMADR, rpc->smadr);
  437. smenr = rpc->enable;
  438. switch (rpc->dir) {
  439. case RPCIF_DATA_OUT:
  440. while (pos < rpc->xferlen) {
  441. u32 bytes_left = rpc->xferlen - pos;
  442. u32 nbytes, data[2], *p = data;
  443. smcr = rpc->smcr | RPCIF_SMCR_SPIE;
  444. /* nbytes may only be 1, 2, 4, or 8 */
  445. nbytes = bytes_left >= max ? max : (1 << ilog2(bytes_left));
  446. if (bytes_left > nbytes)
  447. smcr |= RPCIF_SMCR_SSLKP;
  448. smenr |= RPCIF_SMENR_SPIDE(rpcif_bits_set(rpc, nbytes));
  449. regmap_write(rpc->regmap, RPCIF_SMENR, smenr);
  450. rpc->xfer_size = nbytes;
  451. memcpy(data, rpc->buffer + pos, nbytes);
  452. if (nbytes == 8)
  453. regmap_write(rpc->regmap, RPCIF_SMWDR1, *p++);
  454. regmap_write(rpc->regmap, RPCIF_SMWDR0, *p);
  455. regmap_write(rpc->regmap, RPCIF_SMCR, smcr);
  456. ret = wait_msg_xfer_end(rpc);
  457. if (ret)
  458. goto err_out;
  459. pos += nbytes;
  460. smenr = rpc->enable &
  461. ~RPCIF_SMENR_CDE & ~RPCIF_SMENR_ADE(0xF);
  462. }
  463. break;
  464. case RPCIF_DATA_IN:
  465. /*
  466. * RPC-IF spoils the data for the commands without an address
  467. * phase (like RDID) in the manual mode, so we'll have to work
  468. * around this issue by using the external address space read
  469. * mode instead.
  470. */
  471. if (!(smenr & RPCIF_SMENR_ADE(0xF)) && rpc->dirmap) {
  472. u32 dummy;
  473. regmap_update_bits(rpc->regmap, RPCIF_CMNCR,
  474. RPCIF_CMNCR_MD, 0);
  475. regmap_write(rpc->regmap, RPCIF_DRCR,
  476. RPCIF_DRCR_RBURST(32) | RPCIF_DRCR_RBE);
  477. regmap_write(rpc->regmap, RPCIF_DRCMR, rpc->command);
  478. regmap_write(rpc->regmap, RPCIF_DREAR,
  479. RPCIF_DREAR_EAC(1));
  480. regmap_write(rpc->regmap, RPCIF_DROPR, rpc->option);
  481. regmap_write(rpc->regmap, RPCIF_DRENR,
  482. smenr & ~RPCIF_SMENR_SPIDE(0xF));
  483. regmap_write(rpc->regmap, RPCIF_DRDMCR, rpc->dummy);
  484. regmap_write(rpc->regmap, RPCIF_DRDRENR, rpc->ddr);
  485. memcpy_fromio(rpc->buffer, rpc->dirmap, rpc->xferlen);
  486. regmap_write(rpc->regmap, RPCIF_DRCR, RPCIF_DRCR_RCF);
  487. /* Dummy read according to spec */
  488. regmap_read(rpc->regmap, RPCIF_DRCR, &dummy);
  489. break;
  490. }
  491. while (pos < rpc->xferlen) {
  492. u32 bytes_left = rpc->xferlen - pos;
  493. u32 nbytes, data[2], *p = data;
  494. /* nbytes may only be 1, 2, 4, or 8 */
  495. nbytes = bytes_left >= max ? max : (1 << ilog2(bytes_left));
  496. regmap_write(rpc->regmap, RPCIF_SMADR,
  497. rpc->smadr + pos);
  498. smenr &= ~RPCIF_SMENR_SPIDE(0xF);
  499. smenr |= RPCIF_SMENR_SPIDE(rpcif_bits_set(rpc, nbytes));
  500. regmap_write(rpc->regmap, RPCIF_SMENR, smenr);
  501. regmap_write(rpc->regmap, RPCIF_SMCR,
  502. rpc->smcr | RPCIF_SMCR_SPIE);
  503. rpc->xfer_size = nbytes;
  504. ret = wait_msg_xfer_end(rpc);
  505. if (ret)
  506. goto err_out;
  507. if (nbytes == 8)
  508. regmap_read(rpc->regmap, RPCIF_SMRDR1, p++);
  509. regmap_read(rpc->regmap, RPCIF_SMRDR0, p);
  510. memcpy(rpc->buffer + pos, data, nbytes);
  511. pos += nbytes;
  512. }
  513. break;
  514. default:
  515. regmap_write(rpc->regmap, RPCIF_SMENR, rpc->enable);
  516. regmap_write(rpc->regmap, RPCIF_SMCR,
  517. rpc->smcr | RPCIF_SMCR_SPIE);
  518. ret = wait_msg_xfer_end(rpc);
  519. if (ret)
  520. goto err_out;
  521. }
  522. exit:
  523. pm_runtime_put(dev);
  524. return ret;
  525. err_out:
  526. if (reset_control_reset(rpc->rstc))
  527. dev_err(dev, "Failed to reset HW\n");
  528. rpcif_hw_init(dev, rpc->bus_size == 2);
  529. goto exit;
  530. }
  531. EXPORT_SYMBOL(rpcif_manual_xfer);
  532. static void memcpy_fromio_readw(void *to,
  533. const void __iomem *from,
  534. size_t count)
  535. {
  536. const int maxw = (IS_ENABLED(CONFIG_64BIT)) ? 8 : 4;
  537. u8 buf[2];
  538. if (count && ((unsigned long)from & 1)) {
  539. *(u16 *)buf = __raw_readw((void __iomem *)((unsigned long)from & ~1));
  540. *(u8 *)to = buf[1];
  541. from++;
  542. to++;
  543. count--;
  544. }
  545. while (count >= 2 && !IS_ALIGNED((unsigned long)from, maxw)) {
  546. *(u16 *)to = __raw_readw(from);
  547. from += 2;
  548. to += 2;
  549. count -= 2;
  550. }
  551. while (count >= maxw) {
  552. #ifdef CONFIG_64BIT
  553. *(u64 *)to = __raw_readq(from);
  554. #else
  555. *(u32 *)to = __raw_readl(from);
  556. #endif
  557. from += maxw;
  558. to += maxw;
  559. count -= maxw;
  560. }
  561. while (count >= 2) {
  562. *(u16 *)to = __raw_readw(from);
  563. from += 2;
  564. to += 2;
  565. count -= 2;
  566. }
  567. if (count) {
  568. *(u16 *)buf = __raw_readw(from);
  569. *(u8 *)to = buf[0];
  570. }
  571. }
  572. ssize_t rpcif_dirmap_read(struct device *dev, u64 offs, size_t len, void *buf)
  573. {
  574. struct rpcif_priv *rpc = dev_get_drvdata(dev);
  575. loff_t from = offs & (rpc->size - 1);
  576. size_t size = rpc->size - from;
  577. int ret;
  578. if (len > size)
  579. len = size;
  580. ret = pm_runtime_resume_and_get(dev);
  581. if (ret < 0)
  582. return ret;
  583. regmap_update_bits(rpc->regmap, RPCIF_CMNCR, RPCIF_CMNCR_MD, 0);
  584. regmap_write(rpc->regmap, RPCIF_DRCR, 0);
  585. regmap_write(rpc->regmap, RPCIF_DRCMR, rpc->command);
  586. regmap_write(rpc->regmap, RPCIF_DREAR,
  587. RPCIF_DREAR_EAV(offs >> 25) | RPCIF_DREAR_EAC(1));
  588. regmap_write(rpc->regmap, RPCIF_DROPR, rpc->option);
  589. regmap_write(rpc->regmap, RPCIF_DRENR,
  590. rpc->enable & ~RPCIF_SMENR_SPIDE(0xF));
  591. regmap_write(rpc->regmap, RPCIF_DRDMCR, rpc->dummy);
  592. regmap_write(rpc->regmap, RPCIF_DRDRENR, rpc->ddr);
  593. if (rpc->bus_size == 2)
  594. memcpy_fromio_readw(buf, rpc->dirmap + from, len);
  595. else
  596. memcpy_fromio(buf, rpc->dirmap + from, len);
  597. pm_runtime_put(dev);
  598. return len;
  599. }
  600. EXPORT_SYMBOL(rpcif_dirmap_read);
  601. static int rpcif_probe(struct platform_device *pdev)
  602. {
  603. struct device *dev = &pdev->dev;
  604. struct platform_device *vdev;
  605. struct device_node *flash;
  606. struct rpcif_priv *rpc;
  607. struct resource *res;
  608. const char *name;
  609. int ret;
  610. flash = of_get_next_child(dev->of_node, NULL);
  611. if (!flash) {
  612. dev_warn(dev, "no flash node found\n");
  613. return -ENODEV;
  614. }
  615. if (of_device_is_compatible(flash, "jedec,spi-nor")) {
  616. name = "rpc-if-spi";
  617. } else if (of_device_is_compatible(flash, "cfi-flash")) {
  618. name = "rpc-if-hyperflash";
  619. } else {
  620. of_node_put(flash);
  621. dev_warn(dev, "unknown flash type\n");
  622. return -ENODEV;
  623. }
  624. of_node_put(flash);
  625. rpc = devm_kzalloc(dev, sizeof(*rpc), GFP_KERNEL);
  626. if (!rpc)
  627. return -ENOMEM;
  628. rpc->base = devm_platform_ioremap_resource_byname(pdev, "regs");
  629. if (IS_ERR(rpc->base))
  630. return PTR_ERR(rpc->base);
  631. rpc->regmap = devm_regmap_init(dev, NULL, rpc, &rpcif_regmap_config);
  632. if (IS_ERR(rpc->regmap)) {
  633. dev_err(dev, "failed to init regmap for rpcif, error %ld\n",
  634. PTR_ERR(rpc->regmap));
  635. return PTR_ERR(rpc->regmap);
  636. }
  637. res = platform_get_resource_byname(pdev, IORESOURCE_MEM, "dirmap");
  638. rpc->dirmap = devm_ioremap_resource(dev, res);
  639. if (IS_ERR(rpc->dirmap))
  640. return PTR_ERR(rpc->dirmap);
  641. rpc->size = resource_size(res);
  642. rpc->info = of_device_get_match_data(dev);
  643. rpc->rstc = devm_reset_control_get_exclusive(dev, NULL);
  644. if (IS_ERR(rpc->rstc))
  645. return PTR_ERR(rpc->rstc);
  646. vdev = platform_device_alloc(name, pdev->id);
  647. if (!vdev)
  648. return -ENOMEM;
  649. vdev->dev.parent = dev;
  650. rpc->dev = dev;
  651. rpc->vdev = vdev;
  652. platform_set_drvdata(pdev, rpc);
  653. ret = platform_device_add(vdev);
  654. if (ret) {
  655. platform_device_put(vdev);
  656. return ret;
  657. }
  658. return 0;
  659. }
  660. static void rpcif_remove(struct platform_device *pdev)
  661. {
  662. struct rpcif_priv *rpc = platform_get_drvdata(pdev);
  663. platform_device_unregister(rpc->vdev);
  664. }
  665. static const struct of_device_id rpcif_of_match[] = {
  666. { .compatible = "renesas,r8a7796-rpc-if", .data = &rpcif_info_r8a7796 },
  667. { .compatible = "renesas,rcar-gen3-rpc-if", .data = &rpcif_info_gen3 },
  668. { .compatible = "renesas,rcar-gen4-rpc-if", .data = &rpcif_info_gen4 },
  669. { .compatible = "renesas,rzg2l-rpc-if", .data = &rpcif_info_rz_g2l },
  670. {},
  671. };
  672. MODULE_DEVICE_TABLE(of, rpcif_of_match);
  673. static struct platform_driver rpcif_driver = {
  674. .probe = rpcif_probe,
  675. .remove_new = rpcif_remove,
  676. .driver = {
  677. .name = "rpc-if",
  678. .of_match_table = rpcif_of_match,
  679. },
  680. };
  681. module_platform_driver(rpcif_driver);
  682. MODULE_DESCRIPTION("Renesas RPC-IF core driver");
  683. MODULE_LICENSE("GPL v2");