soc.c 12 KB

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  1. /*
  2. * Copyright 2014-2015 Freescale Semiconductor
  3. *
  4. * SPDX-License-Identifier: GPL-2.0+
  5. */
  6. #include <common.h>
  7. #include <fsl_ifc.h>
  8. #include <ahci.h>
  9. #include <scsi.h>
  10. #include <asm/arch/fsl_serdes.h>
  11. #include <asm/arch/soc.h>
  12. #include <asm/io.h>
  13. #include <asm/global_data.h>
  14. #include <asm/arch-fsl-layerscape/config.h>
  15. #ifdef CONFIG_LAYERSCAPE_NS_ACCESS
  16. #include <fsl_csu.h>
  17. #endif
  18. #ifdef CONFIG_SYS_FSL_DDR
  19. #include <fsl_ddr_sdram.h>
  20. #include <fsl_ddr.h>
  21. #endif
  22. #ifdef CONFIG_CHAIN_OF_TRUST
  23. #include <fsl_validate.h>
  24. #endif
  25. DECLARE_GLOBAL_DATA_PTR;
  26. bool soc_has_dp_ddr(void)
  27. {
  28. struct ccsr_gur __iomem *gur = (void *)(CONFIG_SYS_FSL_GUTS_ADDR);
  29. u32 svr = gur_in32(&gur->svr);
  30. /* LS2085A, LS2088A, LS2048A has DP_DDR */
  31. if ((SVR_SOC_VER(svr) == SVR_LS2085A) ||
  32. (SVR_SOC_VER(svr) == SVR_LS2088A) ||
  33. (SVR_SOC_VER(svr) == SVR_LS2048A))
  34. return true;
  35. return false;
  36. }
  37. bool soc_has_aiop(void)
  38. {
  39. struct ccsr_gur __iomem *gur = (void *)(CONFIG_SYS_FSL_GUTS_ADDR);
  40. u32 svr = gur_in32(&gur->svr);
  41. /* LS2085A has AIOP */
  42. if (SVR_SOC_VER(svr) == SVR_LS2085A)
  43. return true;
  44. return false;
  45. }
  46. #if defined(CONFIG_FSL_LSCH3)
  47. /*
  48. * This erratum requires setting a value to eddrtqcr1 to
  49. * optimal the DDR performance.
  50. */
  51. static void erratum_a008336(void)
  52. {
  53. #ifdef CONFIG_SYS_FSL_ERRATUM_A008336
  54. u32 *eddrtqcr1;
  55. #ifdef CONFIG_SYS_FSL_DCSR_DDR_ADDR
  56. eddrtqcr1 = (void *)CONFIG_SYS_FSL_DCSR_DDR_ADDR + 0x800;
  57. if (fsl_ddr_get_version(0) == 0x50200)
  58. out_le32(eddrtqcr1, 0x63b30002);
  59. #endif
  60. #ifdef CONFIG_SYS_FSL_DCSR_DDR2_ADDR
  61. eddrtqcr1 = (void *)CONFIG_SYS_FSL_DCSR_DDR2_ADDR + 0x800;
  62. if (fsl_ddr_get_version(0) == 0x50200)
  63. out_le32(eddrtqcr1, 0x63b30002);
  64. #endif
  65. #endif
  66. }
  67. /*
  68. * This erratum requires a register write before being Memory
  69. * controller 3 being enabled.
  70. */
  71. static void erratum_a008514(void)
  72. {
  73. #ifdef CONFIG_SYS_FSL_ERRATUM_A008514
  74. u32 *eddrtqcr1;
  75. #ifdef CONFIG_SYS_FSL_DCSR_DDR3_ADDR
  76. eddrtqcr1 = (void *)CONFIG_SYS_FSL_DCSR_DDR3_ADDR + 0x800;
  77. out_le32(eddrtqcr1, 0x63b20002);
  78. #endif
  79. #endif
  80. }
  81. #ifdef CONFIG_SYS_FSL_ERRATUM_A009635
  82. #define PLATFORM_CYCLE_ENV_VAR "a009635_interval_val"
  83. static unsigned long get_internval_val_mhz(void)
  84. {
  85. char *interval = getenv(PLATFORM_CYCLE_ENV_VAR);
  86. /*
  87. * interval is the number of platform cycles(MHz) between
  88. * wake up events generated by EPU.
  89. */
  90. ulong interval_mhz = get_bus_freq(0) / (1000 * 1000);
  91. if (interval)
  92. interval_mhz = simple_strtoul(interval, NULL, 10);
  93. return interval_mhz;
  94. }
  95. void erratum_a009635(void)
  96. {
  97. u32 val;
  98. unsigned long interval_mhz = get_internval_val_mhz();
  99. if (!interval_mhz)
  100. return;
  101. val = in_le32(DCSR_CGACRE5);
  102. writel(val | 0x00000200, DCSR_CGACRE5);
  103. val = in_le32(EPU_EPCMPR5);
  104. writel(interval_mhz, EPU_EPCMPR5);
  105. val = in_le32(EPU_EPCCR5);
  106. writel(val | 0x82820000, EPU_EPCCR5);
  107. val = in_le32(EPU_EPSMCR5);
  108. writel(val | 0x002f0000, EPU_EPSMCR5);
  109. val = in_le32(EPU_EPECR5);
  110. writel(val | 0x20000000, EPU_EPECR5);
  111. val = in_le32(EPU_EPGCR);
  112. writel(val | 0x80000000, EPU_EPGCR);
  113. }
  114. #endif /* CONFIG_SYS_FSL_ERRATUM_A009635 */
  115. static void erratum_rcw_src(void)
  116. {
  117. #if defined(CONFIG_SPL)
  118. u32 __iomem *dcfg_ccsr = (u32 __iomem *)DCFG_BASE;
  119. u32 __iomem *dcfg_dcsr = (u32 __iomem *)DCFG_DCSR_BASE;
  120. u32 val;
  121. val = in_le32(dcfg_ccsr + DCFG_PORSR1 / 4);
  122. val &= ~DCFG_PORSR1_RCW_SRC;
  123. val |= DCFG_PORSR1_RCW_SRC_NOR;
  124. out_le32(dcfg_dcsr + DCFG_DCSR_PORCR1 / 4, val);
  125. #endif
  126. }
  127. #define I2C_DEBUG_REG 0x6
  128. #define I2C_GLITCH_EN 0x8
  129. /*
  130. * This erratum requires setting glitch_en bit to enable
  131. * digital glitch filter to improve clock stability.
  132. */
  133. #ifdef CONFIG_SYS_FSL_ERRATUM_A009203
  134. static void erratum_a009203(void)
  135. {
  136. u8 __iomem *ptr;
  137. #ifdef CONFIG_SYS_I2C
  138. #ifdef I2C1_BASE_ADDR
  139. ptr = (u8 __iomem *)(I2C1_BASE_ADDR + I2C_DEBUG_REG);
  140. writeb(I2C_GLITCH_EN, ptr);
  141. #endif
  142. #ifdef I2C2_BASE_ADDR
  143. ptr = (u8 __iomem *)(I2C2_BASE_ADDR + I2C_DEBUG_REG);
  144. writeb(I2C_GLITCH_EN, ptr);
  145. #endif
  146. #ifdef I2C3_BASE_ADDR
  147. ptr = (u8 __iomem *)(I2C3_BASE_ADDR + I2C_DEBUG_REG);
  148. writeb(I2C_GLITCH_EN, ptr);
  149. #endif
  150. #ifdef I2C4_BASE_ADDR
  151. ptr = (u8 __iomem *)(I2C4_BASE_ADDR + I2C_DEBUG_REG);
  152. writeb(I2C_GLITCH_EN, ptr);
  153. #endif
  154. #endif
  155. }
  156. #endif
  157. void bypass_smmu(void)
  158. {
  159. u32 val;
  160. val = (in_le32(SMMU_SCR0) | SCR0_CLIENTPD_MASK) & ~(SCR0_USFCFG_MASK);
  161. out_le32(SMMU_SCR0, val);
  162. val = (in_le32(SMMU_NSCR0) | SCR0_CLIENTPD_MASK) & ~(SCR0_USFCFG_MASK);
  163. out_le32(SMMU_NSCR0, val);
  164. }
  165. void fsl_lsch3_early_init_f(void)
  166. {
  167. erratum_rcw_src();
  168. init_early_memctl_regs(); /* tighten IFC timing */
  169. #ifdef CONFIG_SYS_FSL_ERRATUM_A009203
  170. erratum_a009203();
  171. #endif
  172. erratum_a008514();
  173. erratum_a008336();
  174. #ifdef CONFIG_CHAIN_OF_TRUST
  175. /* In case of Secure Boot, the IBR configures the SMMU
  176. * to allow only Secure transactions.
  177. * SMMU must be reset in bypass mode.
  178. * Set the ClientPD bit and Clear the USFCFG Bit
  179. */
  180. if (fsl_check_boot_mode_secure() == 1)
  181. bypass_smmu();
  182. #endif
  183. }
  184. #ifdef CONFIG_SCSI_AHCI_PLAT
  185. int sata_init(void)
  186. {
  187. struct ccsr_ahci __iomem *ccsr_ahci;
  188. ccsr_ahci = (void *)CONFIG_SYS_SATA2;
  189. out_le32(&ccsr_ahci->ppcfg, AHCI_PORT_PHY_1_CFG);
  190. out_le32(&ccsr_ahci->ptc, AHCI_PORT_TRANS_CFG);
  191. out_le32(&ccsr_ahci->axicc, AHCI_PORT_AXICC_CFG);
  192. ccsr_ahci = (void *)CONFIG_SYS_SATA1;
  193. out_le32(&ccsr_ahci->ppcfg, AHCI_PORT_PHY_1_CFG);
  194. out_le32(&ccsr_ahci->ptc, AHCI_PORT_TRANS_CFG);
  195. out_le32(&ccsr_ahci->axicc, AHCI_PORT_AXICC_CFG);
  196. ahci_init((void __iomem *)CONFIG_SYS_SATA1);
  197. scsi_scan(0);
  198. return 0;
  199. }
  200. #endif
  201. #elif defined(CONFIG_FSL_LSCH2)
  202. #ifdef CONFIG_SCSI_AHCI_PLAT
  203. int sata_init(void)
  204. {
  205. struct ccsr_ahci __iomem *ccsr_ahci = (void *)CONFIG_SYS_SATA;
  206. /* Disable SATA ECC */
  207. out_le32((void *)CONFIG_SYS_DCSR_DCFG_ADDR + 0x520, 0x80000000);
  208. out_le32(&ccsr_ahci->ppcfg, AHCI_PORT_PHY_1_CFG);
  209. out_le32(&ccsr_ahci->ptc, AHCI_PORT_TRANS_CFG);
  210. out_le32(&ccsr_ahci->axicc, AHCI_PORT_AXICC_CFG);
  211. ahci_init((void __iomem *)CONFIG_SYS_SATA);
  212. scsi_scan(0);
  213. return 0;
  214. }
  215. #endif
  216. static void erratum_a009929(void)
  217. {
  218. #ifdef CONFIG_SYS_FSL_ERRATUM_A009929
  219. struct ccsr_gur *gur = (void *)CONFIG_SYS_FSL_GUTS_ADDR;
  220. u32 __iomem *dcsr_cop_ccp = (void *)CONFIG_SYS_DCSR_COP_CCP_ADDR;
  221. u32 rstrqmr1 = gur_in32(&gur->rstrqmr1);
  222. rstrqmr1 |= 0x00000400;
  223. gur_out32(&gur->rstrqmr1, rstrqmr1);
  224. writel(0x01000000, dcsr_cop_ccp);
  225. #endif
  226. }
  227. /*
  228. * This erratum requires setting a value to eddrtqcr1 to optimal
  229. * the DDR performance. The eddrtqcr1 register is in SCFG space
  230. * of LS1043A and the offset is 0x157_020c.
  231. */
  232. #if defined(CONFIG_SYS_FSL_ERRATUM_A009660) \
  233. && defined(CONFIG_SYS_FSL_ERRATUM_A008514)
  234. #error A009660 and A008514 can not be both enabled.
  235. #endif
  236. static void erratum_a009660(void)
  237. {
  238. #ifdef CONFIG_SYS_FSL_ERRATUM_A009660
  239. u32 *eddrtqcr1 = (void *)CONFIG_SYS_FSL_SCFG_ADDR + 0x20c;
  240. out_be32(eddrtqcr1, 0x63b20042);
  241. #endif
  242. }
  243. static void erratum_a008850_early(void)
  244. {
  245. #ifdef CONFIG_SYS_FSL_ERRATUM_A008850
  246. /* part 1 of 2 */
  247. struct ccsr_cci400 __iomem *cci = (void *)CONFIG_SYS_CCI400_ADDR;
  248. struct ccsr_ddr __iomem *ddr = (void *)CONFIG_SYS_FSL_DDR_ADDR;
  249. /* disables propagation of barrier transactions to DDRC from CCI400 */
  250. out_le32(&cci->ctrl_ord, CCI400_CTRLORD_TERM_BARRIER);
  251. /* disable the re-ordering in DDRC */
  252. ddr_out32(&ddr->eor, DDR_EOR_RD_REOD_DIS | DDR_EOR_WD_REOD_DIS);
  253. #endif
  254. }
  255. void erratum_a008850_post(void)
  256. {
  257. #ifdef CONFIG_SYS_FSL_ERRATUM_A008850
  258. /* part 2 of 2 */
  259. struct ccsr_cci400 __iomem *cci = (void *)CONFIG_SYS_CCI400_ADDR;
  260. struct ccsr_ddr __iomem *ddr = (void *)CONFIG_SYS_FSL_DDR_ADDR;
  261. u32 tmp;
  262. /* enable propagation of barrier transactions to DDRC from CCI400 */
  263. out_le32(&cci->ctrl_ord, CCI400_CTRLORD_EN_BARRIER);
  264. /* enable the re-ordering in DDRC */
  265. tmp = ddr_in32(&ddr->eor);
  266. tmp &= ~(DDR_EOR_RD_REOD_DIS | DDR_EOR_WD_REOD_DIS);
  267. ddr_out32(&ddr->eor, tmp);
  268. #endif
  269. }
  270. #ifdef CONFIG_SYS_FSL_ERRATUM_A010315
  271. void erratum_a010315(void)
  272. {
  273. int i;
  274. for (i = PCIE1; i <= PCIE4; i++)
  275. if (!is_serdes_configured(i)) {
  276. debug("PCIe%d: disabled all R/W permission!\n", i);
  277. set_pcie_ns_access(i, 0);
  278. }
  279. }
  280. #endif
  281. static void erratum_a010539(void)
  282. {
  283. #if defined(CONFIG_SYS_FSL_ERRATUM_A010539) && defined(CONFIG_QSPI_BOOT)
  284. struct ccsr_gur __iomem *gur = (void *)(CONFIG_SYS_FSL_GUTS_ADDR);
  285. u32 porsr1;
  286. porsr1 = in_be32(&gur->porsr1);
  287. porsr1 &= ~FSL_CHASSIS2_CCSR_PORSR1_RCW_MASK;
  288. out_be32((void *)(CONFIG_SYS_DCSR_DCFG_ADDR + DCFG_DCSR_PORCR1),
  289. porsr1);
  290. #endif
  291. }
  292. /* Get VDD in the unit mV from voltage ID */
  293. int get_core_volt_from_fuse(void)
  294. {
  295. struct ccsr_gur *gur = (void *)(CONFIG_SYS_FSL_GUTS_ADDR);
  296. int vdd;
  297. u32 fusesr;
  298. u8 vid;
  299. fusesr = in_be32(&gur->dcfg_fusesr);
  300. debug("%s: fusesr = 0x%x\n", __func__, fusesr);
  301. vid = (fusesr >> FSL_CHASSIS2_DCFG_FUSESR_ALTVID_SHIFT) &
  302. FSL_CHASSIS2_DCFG_FUSESR_ALTVID_MASK;
  303. if ((vid == 0) || (vid == FSL_CHASSIS2_DCFG_FUSESR_ALTVID_MASK)) {
  304. vid = (fusesr >> FSL_CHASSIS2_DCFG_FUSESR_VID_SHIFT) &
  305. FSL_CHASSIS2_DCFG_FUSESR_VID_MASK;
  306. }
  307. debug("%s: VID = 0x%x\n", __func__, vid);
  308. switch (vid) {
  309. case 0x00: /* VID isn't supported */
  310. vdd = -EINVAL;
  311. debug("%s: The VID feature is not supported\n", __func__);
  312. break;
  313. case 0x08: /* 0.9V silicon */
  314. vdd = 900;
  315. break;
  316. case 0x10: /* 1.0V silicon */
  317. vdd = 1000;
  318. break;
  319. default: /* Other core voltage */
  320. vdd = -EINVAL;
  321. printf("%s: The VID(%x) isn't supported\n", __func__, vid);
  322. break;
  323. }
  324. debug("%s: The required minimum volt of CORE is %dmV\n", __func__, vdd);
  325. return vdd;
  326. }
  327. __weak int board_switch_core_volt(u32 vdd)
  328. {
  329. return 0;
  330. }
  331. static int setup_core_volt(u32 vdd)
  332. {
  333. return board_setup_core_volt(vdd);
  334. }
  335. #ifdef CONFIG_SYS_FSL_DDR
  336. static void ddr_enable_0v9_volt(bool en)
  337. {
  338. struct ccsr_ddr __iomem *ddr = (void *)CONFIG_SYS_FSL_DDR_ADDR;
  339. u32 tmp;
  340. tmp = ddr_in32(&ddr->ddr_cdr1);
  341. if (en)
  342. tmp |= DDR_CDR1_V0PT9_EN;
  343. else
  344. tmp &= ~DDR_CDR1_V0PT9_EN;
  345. ddr_out32(&ddr->ddr_cdr1, tmp);
  346. }
  347. #endif
  348. int setup_chip_volt(void)
  349. {
  350. int vdd;
  351. vdd = get_core_volt_from_fuse();
  352. /* Nothing to do for silicons doesn't support VID */
  353. if (vdd < 0)
  354. return vdd;
  355. if (setup_core_volt(vdd))
  356. printf("%s: Switch core VDD to %dmV failed\n", __func__, vdd);
  357. #ifdef CONFIG_SYS_HAS_SERDES
  358. if (setup_serdes_volt(vdd))
  359. printf("%s: Switch SVDD to %dmV failed\n", __func__, vdd);
  360. #endif
  361. #ifdef CONFIG_SYS_FSL_DDR
  362. if (vdd == 900)
  363. ddr_enable_0v9_volt(true);
  364. #endif
  365. return 0;
  366. }
  367. void fsl_lsch2_early_init_f(void)
  368. {
  369. struct ccsr_cci400 *cci = (struct ccsr_cci400 *)CONFIG_SYS_CCI400_ADDR;
  370. struct ccsr_scfg *scfg = (struct ccsr_scfg *)CONFIG_SYS_FSL_SCFG_ADDR;
  371. #ifdef CONFIG_LAYERSCAPE_NS_ACCESS
  372. enable_layerscape_ns_access();
  373. #endif
  374. #ifdef CONFIG_FSL_IFC
  375. init_early_memctl_regs(); /* tighten IFC timing */
  376. #endif
  377. #if defined(CONFIG_FSL_QSPI) && !defined(CONFIG_QSPI_BOOT)
  378. out_be32(&scfg->qspi_cfg, SCFG_QSPI_CLKSEL);
  379. #endif
  380. /* Make SEC reads and writes snoopable */
  381. setbits_be32(&scfg->snpcnfgcr, SCFG_SNPCNFGCR_SECRDSNP |
  382. SCFG_SNPCNFGCR_SECWRSNP |
  383. SCFG_SNPCNFGCR_SATARDSNP |
  384. SCFG_SNPCNFGCR_SATAWRSNP);
  385. /*
  386. * Enable snoop requests and DVM message requests for
  387. * Slave insterface S4 (A53 core cluster)
  388. */
  389. out_le32(&cci->slave[4].snoop_ctrl,
  390. CCI400_DVM_MESSAGE_REQ_EN | CCI400_SNOOP_REQ_EN);
  391. /* Erratum */
  392. erratum_a008850_early(); /* part 1 of 2 */
  393. erratum_a009929();
  394. erratum_a009660();
  395. erratum_a010539();
  396. }
  397. #endif
  398. #ifdef CONFIG_QSPI_AHB_INIT
  399. /* Enable 4bytes address support and fast read */
  400. int qspi_ahb_init(void)
  401. {
  402. u32 *qspi_lut, lut_key, *qspi_key;
  403. qspi_key = (void *)SYS_FSL_QSPI_ADDR + 0x300;
  404. qspi_lut = (void *)SYS_FSL_QSPI_ADDR + 0x310;
  405. lut_key = in_be32(qspi_key);
  406. if (lut_key == 0x5af05af0) {
  407. /* That means the register is BE */
  408. out_be32(qspi_key, 0x5af05af0);
  409. /* Unlock the lut table */
  410. out_be32(qspi_key + 1, 0x00000002);
  411. out_be32(qspi_lut, 0x0820040c);
  412. out_be32(qspi_lut + 1, 0x1c080c08);
  413. out_be32(qspi_lut + 2, 0x00002400);
  414. /* Lock the lut table */
  415. out_be32(qspi_key, 0x5af05af0);
  416. out_be32(qspi_key + 1, 0x00000001);
  417. } else {
  418. /* That means the register is LE */
  419. out_le32(qspi_key, 0x5af05af0);
  420. /* Unlock the lut table */
  421. out_le32(qspi_key + 1, 0x00000002);
  422. out_le32(qspi_lut, 0x0820040c);
  423. out_le32(qspi_lut + 1, 0x1c080c08);
  424. out_le32(qspi_lut + 2, 0x00002400);
  425. /* Lock the lut table */
  426. out_le32(qspi_key, 0x5af05af0);
  427. out_le32(qspi_key + 1, 0x00000001);
  428. }
  429. return 0;
  430. }
  431. #endif
  432. #ifdef CONFIG_BOARD_LATE_INIT
  433. int board_late_init(void)
  434. {
  435. #ifdef CONFIG_SCSI_AHCI_PLAT
  436. sata_init();
  437. #endif
  438. #ifdef CONFIG_CHAIN_OF_TRUST
  439. fsl_setenv_chain_of_trust();
  440. #endif
  441. #ifdef CONFIG_QSPI_AHB_INIT
  442. qspi_ahb_init();
  443. #endif
  444. return 0;
  445. }
  446. #endif