pmif.c 13 KB

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  1. /* Copyright Statement:
  2. *
  3. * This software/firmware and related documentation ("MediaTek Software") are
  4. * protected under relevant copyright laws. The information contained herein is
  5. * confidential and proprietary to MediaTek Inc. and/or its licensors. Without
  6. * the prior written permission of MediaTek inc. and/or its licensors, any
  7. * reproduction, modification, use or disclosure of MediaTek Software, and
  8. * information contained herein, in whole or in part, shall be strictly
  9. * prohibited.
  10. *
  11. * MediaTek Inc. (C) 2019. All rights reserved.
  12. *
  13. * BY OPENING THIS FILE, RECEIVER HEREBY UNEQUIVOCALLY ACKNOWLEDGES AND AGREES
  14. * THAT THE SOFTWARE/FIRMWARE AND ITS DOCUMENTATIONS ("MEDIATEK SOFTWARE")
  15. * RECEIVED FROM MEDIATEK AND/OR ITS REPRESENTATIVES ARE PROVIDED TO RECEIVER
  16. * ON AN "AS-IS" BASIS ONLY. MEDIATEK EXPRESSLY DISCLAIMS ANY AND ALL
  17. * WARRANTIES, EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE IMPLIED
  18. * WARRANTIES OF MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE OR
  19. * NONINFRINGEMENT. NEITHER DOES MEDIATEK PROVIDE ANY WARRANTY WHATSOEVER WITH
  20. * RESPECT TO THE SOFTWARE OF ANY THIRD PARTY WHICH MAY BE USED BY,
  21. * INCORPORATED IN, OR SUPPLIED WITH THE MEDIATEK SOFTWARE, AND RECEIVER AGREES
  22. * TO LOOK ONLY TO SUCH THIRD PARTY FOR ANY WARRANTY CLAIM RELATING THERETO.
  23. * RECEIVER EXPRESSLY ACKNOWLEDGES THAT IT IS RECEIVER'S SOLE RESPONSIBILITY TO
  24. * OBTAIN FROM ANY THIRD PARTY ALL PROPER LICENSES CONTAINED IN MEDIATEK
  25. * SOFTWARE. MEDIATEK SHALL ALSO NOT BE RESPONSIBLE FOR ANY MEDIATEK SOFTWARE
  26. * RELEASES MADE TO RECEIVER'S SPECIFICATION OR TO CONFORM TO A PARTICULAR
  27. * STANDARD OR OPEN FORUM. RECEIVER'S SOLE AND EXCLUSIVE REMEDY AND MEDIATEK'S
  28. * ENTIRE AND CUMULATIVE LIABILITY WITH RESPECT TO THE MEDIATEK SOFTWARE
  29. * RELEASED HEREUNDER WILL BE, AT MEDIATEK'S OPTION, TO REVISE OR REPLACE THE
  30. * MEDIATEK SOFTWARE AT ISSUE, OR REFUND ANY SOFTWARE LICENSE FEES OR SERVICE
  31. * CHARGE PAID BY RECEIVER TO MEDIATEK FOR SUCH MEDIATEK SOFTWARE AT ISSUE.
  32. *
  33. * The following software/firmware and/or related documentation ("MediaTek
  34. * Software") have been modified by MediaTek Inc. All revisions are subject to
  35. * any receiver's applicable license agreements with MediaTek Inc.
  36. */
  37. /*
  38. * MTK PMIF Driver
  39. *
  40. * Copyright 2019 MediaTek Co.,Ltd.
  41. *
  42. * DESCRIPTION:
  43. * This file provides API for other drivers to access PMIC registers
  44. *
  45. */
  46. #include <pmif.h>
  47. #include <spmi.h>
  48. #include <pmif_sw.h>
  49. #include <spmi_sw.h>
  50. #define GET_SWINF_0_FSM(x) ((x>>1) & 0x00000007)
  51. #define GET_PMIF_INIT_DONE(x) ((x>>15) & 0x00000001)
  52. #define TIMEOUT_WAIT_IDLE (1000000) /* ap latency concern 1ms */
  53. static int pmif_spmi_read_cmd(struct pmif *arb, unsigned char opc,
  54. unsigned char sid, unsigned short addr, unsigned char *buf,
  55. unsigned short len);
  56. static int pmif_spmi_write_cmd(struct pmif *arb, unsigned char opc,
  57. unsigned char sid, unsigned short addr, const unsigned char *buf,
  58. unsigned short len);
  59. #if PMIF_NO_PMIC
  60. static int pmif_spmi_read_cmd(struct pmif *arb, unsigned char opc,
  61. unsigned char sid, unsigned short addr, unsigned char *buf,
  62. unsigned short len)
  63. {
  64. PMIF_INFO("do Nothing.\n");
  65. return 0;
  66. }
  67. static int pmif_spmi_write_cmd(struct pmif *arb, unsigned char opc,
  68. unsigned char sid, unsigned short addr, const unsigned char *buf,
  69. unsigned short len)
  70. {
  71. PMIF_INFO("do Nothing.\n");
  72. return 0;
  73. }
  74. /* init interface */
  75. int pmif_spmi_init(int mstid)
  76. {
  77. PMIF_INFO("do Nothing.\n");
  78. return 0;
  79. }
  80. #else /* #if PMIF_NO_PMIC */
  81. /* pmif internal API declaration */
  82. #if PMIF_TIMEOUT
  83. static unsigned long long pmif_get_current_time(void);
  84. static int pmif_timeout_ns(unsigned long long start_time_ns,
  85. unsigned long long timeout_time_ns);
  86. static unsigned long long pmif_time2ns(unsigned long long time_us);
  87. #endif
  88. enum pmif_regs {
  89. PMIF_INIT_DONE,
  90. PMIF_INF_EN,
  91. PMIF_INF_CMD_PER_0,
  92. PMIF_INF_CMD_PER_1,
  93. PMIF_INF_CMD_PER_2,
  94. PMIF_INF_CMD_PER_3,
  95. PMIF_INF_MAX_BYTECNT_PER_0,
  96. PMIF_INF_MAX_BYTECNT_PER_1,
  97. PMIF_INF_MAX_BYTECNT_PER_2,
  98. PMIF_INF_MAX_BYTECNT_PER_3,
  99. PMIF_ARB_EN,
  100. PMIF_LAT_CNTER_EN,
  101. PMIF_LAT_LIMIT_LOADING,
  102. PMIF_LAT_LIMIT_0,
  103. PMIF_LAT_LIMIT_1,
  104. PMIF_LAT_LIMIT_2,
  105. PMIF_LAT_LIMIT_3,
  106. PMIF_LAT_LIMIT_4,
  107. PMIF_LAT_LIMIT_5,
  108. PMIF_LAT_LIMIT_6,
  109. PMIF_LAT_LIMIT_7,
  110. PMIF_LAT_LIMIT_8,
  111. PMIF_LAT_LIMIT_9,
  112. PMIF_CMDISSUE_EN,
  113. PMIF_TIMER_CTRL,
  114. PMIF_SPI_MODE_CTRL,
  115. PMIF_IRQ_EVENT_EN_0,
  116. PMIF_IRQ_FLAG_0,
  117. PMIF_IRQ_CLR_0,
  118. PMIF_SWINF_0_ACC,
  119. PMIF_SWINF_0_WDATA_31_0,
  120. PMIF_SWINF_0_WDATA_63_32,
  121. PMIF_SWINF_0_RDATA_31_0,
  122. PMIF_SWINF_0_RDATA_63_32,
  123. PMIF_SWINF_0_VLD_CLR,
  124. PMIF_SWINF_0_STA,
  125. PMIF_SWINF_1_ACC,
  126. PMIF_SWINF_1_WDATA_31_0,
  127. PMIF_SWINF_1_WDATA_63_32,
  128. PMIF_SWINF_1_RDATA_31_0,
  129. PMIF_SWINF_1_RDATA_63_32,
  130. PMIF_SWINF_1_VLD_CLR,
  131. PMIF_SWINF_1_STA,
  132. PMIF_SWINF_2_ACC,
  133. PMIF_SWINF_2_WDATA_31_0,
  134. PMIF_SWINF_2_WDATA_63_32,
  135. PMIF_SWINF_2_RDATA_31_0,
  136. PMIF_SWINF_2_RDATA_63_32,
  137. PMIF_SWINF_2_VLD_CLR,
  138. PMIF_SWINF_2_STA,
  139. PMIF_SWINF_3_ACC,
  140. PMIF_SWINF_3_WDATA_31_0,
  141. PMIF_SWINF_3_WDATA_63_32,
  142. PMIF_SWINF_3_RDATA_31_0,
  143. PMIF_SWINF_3_RDATA_63_32,
  144. PMIF_SWINF_3_VLD_CLR,
  145. PMIF_SWINF_3_STA,
  146. };
  147. static int mt6xxx_regs[] = {
  148. [PMIF_SWINF_0_ACC] = 0x0C00,
  149. [PMIF_SWINF_0_WDATA_31_0] = 0x0C04,
  150. [PMIF_SWINF_0_WDATA_63_32] = 0x0C08,
  151. [PMIF_SWINF_0_RDATA_31_0] = 0x0C14,
  152. [PMIF_SWINF_0_RDATA_63_32] = 0x0C18,
  153. [PMIF_SWINF_0_VLD_CLR] = 0x0C24,
  154. [PMIF_SWINF_0_STA] = 0x0C28,
  155. [PMIF_SWINF_1_ACC] = 0x0C40,
  156. [PMIF_SWINF_1_WDATA_31_0] = 0x0C44,
  157. [PMIF_SWINF_1_WDATA_63_32] = 0x0C48,
  158. [PMIF_SWINF_1_RDATA_31_0] = 0x0C54,
  159. [PMIF_SWINF_1_RDATA_63_32] = 0x0C58,
  160. [PMIF_SWINF_1_VLD_CLR] = 0x0C64,
  161. [PMIF_SWINF_1_STA] = 0x0C68,
  162. [PMIF_SWINF_2_ACC] = 0x0C80,
  163. [PMIF_SWINF_2_WDATA_31_0] = 0x0C84,
  164. [PMIF_SWINF_2_WDATA_63_32] = 0x0C88,
  165. [PMIF_SWINF_2_RDATA_31_0] = 0x0C94,
  166. [PMIF_SWINF_2_RDATA_63_32] = 0x0C98,
  167. [PMIF_SWINF_2_VLD_CLR] = 0x0CA4,
  168. [PMIF_SWINF_2_STA] = 0x0CA8,
  169. [PMIF_SWINF_3_ACC] = 0x0CC0,
  170. [PMIF_SWINF_3_WDATA_31_0] = 0x0CC4,
  171. [PMIF_SWINF_3_WDATA_63_32] = 0x0CC8,
  172. [PMIF_SWINF_3_RDATA_31_0] = 0x0CD4,
  173. [PMIF_SWINF_3_RDATA_63_32] = 0x0CD8,
  174. [PMIF_SWINF_3_VLD_CLR] = 0x0CE4,
  175. [PMIF_SWINF_3_STA] = 0x0CE8,
  176. };
  177. static struct pmif pmif_spmi_arb[] = {
  178. {
  179. .base = (unsigned int *)PMIF_SPMI_BASE,
  180. .regs = mt6xxx_regs,
  181. .spmimst_base = (unsigned int *)SPMI_MST_BASE,
  182. .swinf_ch_start = PMIF_SWINF_0_CHAN_NO,
  183. .swinf_no = PMIF_AP_SWINF_NO,
  184. .write = 0x0,
  185. .mstid = SPMI_MASTER_0,
  186. .pmifid = PMIF_PMIFID,
  187. .read_cmd = pmif_spmi_read_cmd,
  188. .write_cmd = pmif_spmi_write_cmd,
  189. .is_pmif_init_done = is_pmif_spmi_init_done,
  190. },
  191. {
  192. .base = (unsigned int *)PMIF_SPMI_BASE,
  193. .regs = mt6xxx_regs,
  194. .spmimst_base = (unsigned int *)SPMI_MST_BASE,
  195. .swinf_ch_start = PMIF_SWINF_0_CHAN_NO,
  196. .swinf_no = PMIF_AP_SWINF_NO,
  197. .write = 0x0,
  198. .mstid = SPMI_MASTER_1,
  199. .pmifid = PMIF_PMIFID,
  200. .read_cmd = pmif_spmi_read_cmd,
  201. .write_cmd = pmif_spmi_write_cmd,
  202. .is_pmif_init_done = is_pmif_spmi_init_done,
  203. },
  204. {
  205. .base = (unsigned int *)PMIF_SPMI_P_BASE,
  206. .regs = mt6xxx_regs,
  207. .spmimst_base = (unsigned int *)SPMI_MST_P_BASE,
  208. .swinf_ch_start = PMIF_SWINF_0_CHAN_NO_P,
  209. .swinf_no = PMIF_AP_SWINF_NO,
  210. .write = 0x0,
  211. .mstid = SPMI_MASTER_P_1,
  212. .pmifid = PMIF_PMIFID_2,
  213. .read_cmd = pmif_spmi_read_cmd,
  214. .write_cmd = pmif_spmi_write_cmd,
  215. .is_pmif_init_done = is_pmif_spmi_init_done,
  216. },
  217. };
  218. /* static struct pmif pmif_spi_arb[0]; */
  219. /* pmif timeout */
  220. #if PMIF_TIMEOUT
  221. static unsigned long long pmif_get_current_time(void)
  222. {
  223. return gpt4_get_current_tick();
  224. }
  225. static int pmif_timeout_ns(unsigned long long start_time_ns,
  226. unsigned long long timeout_time_ns)
  227. {
  228. return gpt4_timeout_tick(start_time_ns, timeout_time_ns);
  229. }
  230. static unsigned long long pmif_time2ns(unsigned long long time_us)
  231. {
  232. return gpt4_time2tick_us(time_us);
  233. }
  234. #else
  235. static unsigned long long pmif_get_current_time(void)
  236. {
  237. return 0;
  238. }
  239. static int pmif_timeout_ns(unsigned long long start_time_ns,
  240. unsigned long long elapse_time)
  241. {
  242. return 0;
  243. }
  244. static unsigned long long pmif_time2ns(unsigned long long time_us)
  245. {
  246. return 0;
  247. }
  248. #endif
  249. static inline unsigned int pmif_check_idle(int mstid) {
  250. struct pmif *arb = get_pmif_controller(PMIF_SPMI, mstid);
  251. unsigned int reg_rdata, offset = 0;
  252. #if PMIF_TIMEOUT
  253. unsigned long long start_time_ns = 0, end_time_ns = 0, timeout_ns = 0;
  254. unsigned long time_cnt = 100000;
  255. start_time_ns = pmif_get_current_time();
  256. timeout_ns = pmif_time2ns(TIMEOUT_WAIT_IDLE);
  257. #endif
  258. do {
  259. #if PMIF_TIMEOUT
  260. if (pmif_timeout_ns(start_time_ns, timeout_ns)) {
  261. end_time_ns = pmif_get_current_time();
  262. PMIF_ERR("%s timeout %d %d\n", __func__, start_time_ns,
  263. end_time_ns - start_time_ns);
  264. return -ETIMEDOUT;
  265. }
  266. if ((time_cnt--) == 0) {
  267. PMIF_ERR("%s timeout %d %d\n", __func__, start_time_ns,
  268. end_time_ns - start_time_ns);
  269. return -ETIMEDOUT;
  270. }
  271. #endif
  272. offset = arb->regs[PMIF_SWINF_0_STA] + (0x40 * arb->swinf_no);
  273. reg_rdata = DRV_Reg32(arb->base + offset);
  274. } while(GET_SWINF_0_FSM(reg_rdata) != SWINF_FSM_IDLE);
  275. return 0;
  276. }
  277. static inline unsigned int pmif_check_vldclr(int mstid) {
  278. struct pmif *arb = get_pmif_controller(PMIF_SPMI, mstid);
  279. unsigned int reg_rdata, offset = 0;
  280. #if PMIF_TIMEOUT
  281. unsigned long long start_time_ns = 0, end_time_ns = 0, timeout_ns = 0;
  282. unsigned long time_cnt = 100000;
  283. start_time_ns = pmif_get_current_time();
  284. timeout_ns = pmif_time2ns(TIMEOUT_WAIT_IDLE);
  285. #endif
  286. do {
  287. #if PMIF_TIMEOUT
  288. if (pmif_timeout_ns(start_time_ns, timeout_ns)) {
  289. end_time_ns = pmif_get_current_time();
  290. PMIF_ERR("%s timeout %d %d\n", __func__, start_time_ns,
  291. end_time_ns - start_time_ns);
  292. return -ETIMEDOUT;
  293. }
  294. if ((time_cnt--) == 0) {
  295. PMIF_ERR("%s timeout %d %d\n", __func__, start_time_ns,
  296. end_time_ns - start_time_ns);
  297. return -ETIMEDOUT;
  298. }
  299. #endif
  300. offset = arb->regs[PMIF_SWINF_0_STA] + (0x40 * arb->swinf_no);
  301. reg_rdata = DRV_Reg32(arb->base + offset);
  302. } while(GET_SWINF_0_FSM(reg_rdata) != SWINF_FSM_WFVLDCLR);
  303. return 0;
  304. }
  305. static int pmif_spmi_read_cmd(struct pmif *arb, unsigned char opc,
  306. unsigned char sid, unsigned short addr, unsigned char *buf,
  307. unsigned short len)
  308. {
  309. int write = 0x0;
  310. unsigned int ret = 0, offset = 0, data = 0;
  311. unsigned char bc = len - 1;
  312. if ((sid & ~(0xf)) != 0x0)
  313. return -EINVAL;
  314. if (len > PMIF_BYTECNT_MAX)
  315. return -EINVAL;
  316. /* Check the opcode */
  317. if (opc >= 0x60 && opc <= 0x7F)
  318. opc = PMIF_CMD_REG;
  319. else if (opc >= 0x20 && opc <= 0x2F)
  320. opc = PMIF_CMD_EXT_REG;
  321. else if (opc >= 0x38 && opc <= 0x3F)
  322. opc = PMIF_CMD_EXT_REG_LONG;
  323. else
  324. return -EINVAL;
  325. ENTER_CRITICAL();
  326. /* Wait for Software Interface FSM state to be IDLE. */
  327. ret = pmif_check_idle(arb->mstid);
  328. if(ret)
  329. return ret;
  330. /* Send the command. */
  331. offset = arb->regs[PMIF_SWINF_0_ACC] + (0x40 * arb->swinf_no);
  332. DRV_WriteReg32(arb->base + offset,
  333. ((unsigned)opc << 30) | (write << 29) | (sid << 24) | (bc << 16) | addr);
  334. /* Wait for Software Interface FSM state to be WFVLDCLR,
  335. *
  336. * read the data and clear the valid flag.
  337. */
  338. if(write == 0)
  339. {
  340. ret = pmif_check_vldclr(arb->mstid);
  341. if(ret)
  342. return ret;
  343. offset =
  344. arb->regs[PMIF_SWINF_0_RDATA_31_0] + (0x40 * arb->swinf_no);
  345. data = DRV_Reg32(arb->base + offset);
  346. memcpy(buf, &data, (bc & 3) + 1);
  347. offset =
  348. arb->regs[PMIF_SWINF_0_VLD_CLR] + (0x40 * arb->swinf_no);
  349. DRV_WriteReg32(arb->base + offset, 0x1);
  350. }
  351. EXIT_CRITICAL();
  352. return 0x0;
  353. }
  354. static int pmif_spmi_write_cmd(struct pmif *arb, unsigned char opc,
  355. unsigned char sid, unsigned short addr, const unsigned char *buf,
  356. unsigned short len)
  357. {
  358. int write = 0x1;
  359. unsigned int ret = 0, offset = 0, data = 0;
  360. unsigned char bc = len - 1;
  361. if ((sid & ~(0xf)) != 0x0)
  362. return -EINVAL;
  363. if (len > PMIF_BYTECNT_MAX)
  364. return -EINVAL;
  365. /* Check the opcode */
  366. if (opc >= 0x40 && opc <= 0x5F)
  367. opc = PMIF_CMD_REG;
  368. else if (opc <= 0x0F)
  369. opc = PMIF_CMD_EXT_REG;
  370. else if (opc >= 0x30 && opc <= 0x37)
  371. opc = PMIF_CMD_EXT_REG_LONG;
  372. else if (opc >= 0x80)
  373. opc = PMIF_CMD_REG_0;
  374. else
  375. return -EINVAL;
  376. ENTER_CRITICAL();
  377. /* Wait for Software Interface FSM state to be IDLE. */
  378. ret = pmif_check_idle(arb->mstid);
  379. if(ret)
  380. return ret;
  381. /* Set the write data. */
  382. if (write == 1)
  383. {
  384. offset =
  385. arb->regs[PMIF_SWINF_0_WDATA_31_0] + (0x40 * arb->swinf_no);
  386. memcpy(&data, buf, (bc & 3) + 1);
  387. DRV_WriteReg32(arb->base + offset, data);
  388. }
  389. /* Send the command. */
  390. offset = arb->regs[PMIF_SWINF_0_ACC] + (0x40 * arb->swinf_no);
  391. DRV_WriteReg32(arb->base + offset,
  392. ((unsigned)opc << 30) | (write << 29) | (sid << 24) |
  393. (bc << 16) | addr);
  394. EXIT_CRITICAL();
  395. return 0x0;
  396. }
  397. struct pmif *get_pmif_controller(int inf, int mstid)
  398. {
  399. if (inf == PMIF_SPMI) {
  400. return &pmif_spmi_arb[mstid];
  401. } else if (inf == PMIF_SPI) {
  402. /* TBD
  403. *pmif_spi_arb[mstid].base = (unsigned int *)PMIF_SPI_BASE;
  404. *pmif_spi_arb[mstid].swinf_no = 0x0;
  405. *pmif_spi_arb[mstid].write = 0x0;
  406. *pmif_spi_arb[mstid].pmifid = 0x0;
  407. *pmif_spi_arb[mstid].read_cmd = pmif_spi_read_cmd;
  408. *pmif_spi_arb[mstid].write_cmd = pmif_spi_write_cmd;
  409. *pmif_spi_arb[mstid].read_cmd_nochk = pmif_spi_read_cmd_nochk;
  410. *pmif_spi_arb[mstid].write_cmd_nochk =
  411. * pmif_spi_write_cmd_nochk;
  412. *return &pmif_spi_arb[mstid];
  413. */
  414. }
  415. return 0;
  416. }
  417. int is_pmif_spmi_init_done(int mstid)
  418. {
  419. int ret = 0;
  420. struct pmif *arb = get_pmif_controller(PMIF_SPMI, mstid);
  421. ret = DRV_Reg32(arb->base + arb->regs[PMIF_INIT_DONE]);
  422. PMIF_INFO("%s ret = %d\n", __func__, ret);
  423. if ((ret & 0x1) == 1)
  424. return 0;
  425. return -ENODEV;
  426. }
  427. int pmif_spmi_init(int mstid)
  428. {
  429. struct pmif *arb = get_pmif_controller(PMIF_SPMI, mstid);
  430. int ret = 0;
  431. INIT_CRITICAL();
  432. ret = arb->is_pmif_init_done(mstid);
  433. if(ret) {
  434. PMIF_ERR("init done check fail\n");
  435. return -ENODEV;
  436. }
  437. spmi_pmif_dbg_init(arb);
  438. ret = spmi_init(arb);
  439. if(ret) {
  440. PMIF_ERR("init fail\n");
  441. return -ENODEV;
  442. }
  443. return 0;
  444. }
  445. #endif /* endif PMIF_NO_PMIC */