driver_chipcommon_pmu.c 19 KB

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  1. /*
  2. * Sonics Silicon Backplane
  3. * Broadcom ChipCommon Power Management Unit driver
  4. *
  5. * Copyright 2009, Michael Buesch <mb@bu3sch.de>
  6. * Copyright 2007, Broadcom Corporation
  7. *
  8. * Licensed under the GNU/GPL. See COPYING for details.
  9. */
  10. #include <linux/ssb/ssb.h>
  11. #include <linux/ssb/ssb_regs.h>
  12. #include <linux/ssb/ssb_driver_chipcommon.h>
  13. #include <linux/delay.h>
  14. #include "ssb_private.h"
  15. static u32 ssb_chipco_pll_read(struct ssb_chipcommon *cc, u32 offset)
  16. {
  17. chipco_write32(cc, SSB_CHIPCO_PLLCTL_ADDR, offset);
  18. return chipco_read32(cc, SSB_CHIPCO_PLLCTL_DATA);
  19. }
  20. static void ssb_chipco_pll_write(struct ssb_chipcommon *cc,
  21. u32 offset, u32 value)
  22. {
  23. chipco_write32(cc, SSB_CHIPCO_PLLCTL_ADDR, offset);
  24. chipco_write32(cc, SSB_CHIPCO_PLLCTL_DATA, value);
  25. }
  26. static void ssb_chipco_regctl_maskset(struct ssb_chipcommon *cc,
  27. u32 offset, u32 mask, u32 set)
  28. {
  29. u32 value;
  30. chipco_read32(cc, SSB_CHIPCO_REGCTL_ADDR);
  31. chipco_write32(cc, SSB_CHIPCO_REGCTL_ADDR, offset);
  32. chipco_read32(cc, SSB_CHIPCO_REGCTL_ADDR);
  33. value = chipco_read32(cc, SSB_CHIPCO_REGCTL_DATA);
  34. value &= mask;
  35. value |= set;
  36. chipco_write32(cc, SSB_CHIPCO_REGCTL_DATA, value);
  37. chipco_read32(cc, SSB_CHIPCO_REGCTL_DATA);
  38. }
  39. struct pmu0_plltab_entry {
  40. u16 freq; /* Crystal frequency in kHz.*/
  41. u8 xf; /* Crystal frequency value for PMU control */
  42. u8 wb_int;
  43. u32 wb_frac;
  44. };
  45. static const struct pmu0_plltab_entry pmu0_plltab[] = {
  46. { .freq = 12000, .xf = 1, .wb_int = 73, .wb_frac = 349525, },
  47. { .freq = 13000, .xf = 2, .wb_int = 67, .wb_frac = 725937, },
  48. { .freq = 14400, .xf = 3, .wb_int = 61, .wb_frac = 116508, },
  49. { .freq = 15360, .xf = 4, .wb_int = 57, .wb_frac = 305834, },
  50. { .freq = 16200, .xf = 5, .wb_int = 54, .wb_frac = 336579, },
  51. { .freq = 16800, .xf = 6, .wb_int = 52, .wb_frac = 399457, },
  52. { .freq = 19200, .xf = 7, .wb_int = 45, .wb_frac = 873813, },
  53. { .freq = 19800, .xf = 8, .wb_int = 44, .wb_frac = 466033, },
  54. { .freq = 20000, .xf = 9, .wb_int = 44, .wb_frac = 0, },
  55. { .freq = 25000, .xf = 10, .wb_int = 70, .wb_frac = 419430, },
  56. { .freq = 26000, .xf = 11, .wb_int = 67, .wb_frac = 725937, },
  57. { .freq = 30000, .xf = 12, .wb_int = 58, .wb_frac = 699050, },
  58. { .freq = 38400, .xf = 13, .wb_int = 45, .wb_frac = 873813, },
  59. { .freq = 40000, .xf = 14, .wb_int = 45, .wb_frac = 0, },
  60. };
  61. #define SSB_PMU0_DEFAULT_XTALFREQ 20000
  62. static const struct pmu0_plltab_entry * pmu0_plltab_find_entry(u32 crystalfreq)
  63. {
  64. const struct pmu0_plltab_entry *e;
  65. unsigned int i;
  66. for (i = 0; i < ARRAY_SIZE(pmu0_plltab); i++) {
  67. e = &pmu0_plltab[i];
  68. if (e->freq == crystalfreq)
  69. return e;
  70. }
  71. return NULL;
  72. }
  73. /* Tune the PLL to the crystal speed. crystalfreq is in kHz. */
  74. static void ssb_pmu0_pllinit_r0(struct ssb_chipcommon *cc,
  75. u32 crystalfreq)
  76. {
  77. struct ssb_bus *bus = cc->dev->bus;
  78. const struct pmu0_plltab_entry *e = NULL;
  79. u32 pmuctl, tmp, pllctl;
  80. unsigned int i;
  81. if ((bus->chip_id == 0x5354) && !crystalfreq) {
  82. /* The 5354 crystal freq is 25MHz */
  83. crystalfreq = 25000;
  84. }
  85. if (crystalfreq)
  86. e = pmu0_plltab_find_entry(crystalfreq);
  87. if (!e)
  88. e = pmu0_plltab_find_entry(SSB_PMU0_DEFAULT_XTALFREQ);
  89. BUG_ON(!e);
  90. crystalfreq = e->freq;
  91. cc->pmu.crystalfreq = e->freq;
  92. /* Check if the PLL already is programmed to this frequency. */
  93. pmuctl = chipco_read32(cc, SSB_CHIPCO_PMU_CTL);
  94. if (((pmuctl & SSB_CHIPCO_PMU_CTL_XTALFREQ) >> SSB_CHIPCO_PMU_CTL_XTALFREQ_SHIFT) == e->xf) {
  95. /* We're already there... */
  96. return;
  97. }
  98. ssb_printk(KERN_INFO PFX "Programming PLL to %u.%03u MHz\n",
  99. (crystalfreq / 1000), (crystalfreq % 1000));
  100. /* First turn the PLL off. */
  101. switch (bus->chip_id) {
  102. case 0x4328:
  103. chipco_mask32(cc, SSB_CHIPCO_PMU_MINRES_MSK,
  104. ~(1 << SSB_PMURES_4328_BB_PLL_PU));
  105. chipco_mask32(cc, SSB_CHIPCO_PMU_MAXRES_MSK,
  106. ~(1 << SSB_PMURES_4328_BB_PLL_PU));
  107. break;
  108. case 0x5354:
  109. chipco_mask32(cc, SSB_CHIPCO_PMU_MINRES_MSK,
  110. ~(1 << SSB_PMURES_5354_BB_PLL_PU));
  111. chipco_mask32(cc, SSB_CHIPCO_PMU_MAXRES_MSK,
  112. ~(1 << SSB_PMURES_5354_BB_PLL_PU));
  113. break;
  114. default:
  115. SSB_WARN_ON(1);
  116. }
  117. for (i = 1500; i; i--) {
  118. tmp = chipco_read32(cc, SSB_CHIPCO_CLKCTLST);
  119. if (!(tmp & SSB_CHIPCO_CLKCTLST_HAVEHT))
  120. break;
  121. udelay(10);
  122. }
  123. tmp = chipco_read32(cc, SSB_CHIPCO_CLKCTLST);
  124. if (tmp & SSB_CHIPCO_CLKCTLST_HAVEHT)
  125. ssb_printk(KERN_EMERG PFX "Failed to turn the PLL off!\n");
  126. /* Set PDIV in PLL control 0. */
  127. pllctl = ssb_chipco_pll_read(cc, SSB_PMU0_PLLCTL0);
  128. if (crystalfreq >= SSB_PMU0_PLLCTL0_PDIV_FREQ)
  129. pllctl |= SSB_PMU0_PLLCTL0_PDIV_MSK;
  130. else
  131. pllctl &= ~SSB_PMU0_PLLCTL0_PDIV_MSK;
  132. ssb_chipco_pll_write(cc, SSB_PMU0_PLLCTL0, pllctl);
  133. /* Set WILD in PLL control 1. */
  134. pllctl = ssb_chipco_pll_read(cc, SSB_PMU0_PLLCTL1);
  135. pllctl &= ~SSB_PMU0_PLLCTL1_STOPMOD;
  136. pllctl &= ~(SSB_PMU0_PLLCTL1_WILD_IMSK | SSB_PMU0_PLLCTL1_WILD_FMSK);
  137. pllctl |= ((u32)e->wb_int << SSB_PMU0_PLLCTL1_WILD_IMSK_SHIFT) & SSB_PMU0_PLLCTL1_WILD_IMSK;
  138. pllctl |= ((u32)e->wb_frac << SSB_PMU0_PLLCTL1_WILD_FMSK_SHIFT) & SSB_PMU0_PLLCTL1_WILD_FMSK;
  139. if (e->wb_frac == 0)
  140. pllctl |= SSB_PMU0_PLLCTL1_STOPMOD;
  141. ssb_chipco_pll_write(cc, SSB_PMU0_PLLCTL1, pllctl);
  142. /* Set WILD in PLL control 2. */
  143. pllctl = ssb_chipco_pll_read(cc, SSB_PMU0_PLLCTL2);
  144. pllctl &= ~SSB_PMU0_PLLCTL2_WILD_IMSKHI;
  145. pllctl |= (((u32)e->wb_int >> 4) << SSB_PMU0_PLLCTL2_WILD_IMSKHI_SHIFT) & SSB_PMU0_PLLCTL2_WILD_IMSKHI;
  146. ssb_chipco_pll_write(cc, SSB_PMU0_PLLCTL2, pllctl);
  147. /* Set the crystalfrequency and the divisor. */
  148. pmuctl = chipco_read32(cc, SSB_CHIPCO_PMU_CTL);
  149. pmuctl &= ~SSB_CHIPCO_PMU_CTL_ILP_DIV;
  150. pmuctl |= (((crystalfreq + 127) / 128 - 1) << SSB_CHIPCO_PMU_CTL_ILP_DIV_SHIFT)
  151. & SSB_CHIPCO_PMU_CTL_ILP_DIV;
  152. pmuctl &= ~SSB_CHIPCO_PMU_CTL_XTALFREQ;
  153. pmuctl |= ((u32)e->xf << SSB_CHIPCO_PMU_CTL_XTALFREQ_SHIFT) & SSB_CHIPCO_PMU_CTL_XTALFREQ;
  154. chipco_write32(cc, SSB_CHIPCO_PMU_CTL, pmuctl);
  155. }
  156. struct pmu1_plltab_entry {
  157. u16 freq; /* Crystal frequency in kHz.*/
  158. u8 xf; /* Crystal frequency value for PMU control */
  159. u8 ndiv_int;
  160. u32 ndiv_frac;
  161. u8 p1div;
  162. u8 p2div;
  163. };
  164. static const struct pmu1_plltab_entry pmu1_plltab[] = {
  165. { .freq = 12000, .xf = 1, .p1div = 3, .p2div = 22, .ndiv_int = 0x9, .ndiv_frac = 0xFFFFEF, },
  166. { .freq = 13000, .xf = 2, .p1div = 1, .p2div = 6, .ndiv_int = 0xb, .ndiv_frac = 0x483483, },
  167. { .freq = 14400, .xf = 3, .p1div = 1, .p2div = 10, .ndiv_int = 0xa, .ndiv_frac = 0x1C71C7, },
  168. { .freq = 15360, .xf = 4, .p1div = 1, .p2div = 5, .ndiv_int = 0xb, .ndiv_frac = 0x755555, },
  169. { .freq = 16200, .xf = 5, .p1div = 1, .p2div = 10, .ndiv_int = 0x5, .ndiv_frac = 0x6E9E06, },
  170. { .freq = 16800, .xf = 6, .p1div = 1, .p2div = 10, .ndiv_int = 0x5, .ndiv_frac = 0x3CF3CF, },
  171. { .freq = 19200, .xf = 7, .p1div = 1, .p2div = 9, .ndiv_int = 0x5, .ndiv_frac = 0x17B425, },
  172. { .freq = 19800, .xf = 8, .p1div = 1, .p2div = 11, .ndiv_int = 0x4, .ndiv_frac = 0xA57EB, },
  173. { .freq = 20000, .xf = 9, .p1div = 1, .p2div = 11, .ndiv_int = 0x4, .ndiv_frac = 0, },
  174. { .freq = 24000, .xf = 10, .p1div = 3, .p2div = 11, .ndiv_int = 0xa, .ndiv_frac = 0, },
  175. { .freq = 25000, .xf = 11, .p1div = 5, .p2div = 16, .ndiv_int = 0xb, .ndiv_frac = 0, },
  176. { .freq = 26000, .xf = 12, .p1div = 1, .p2div = 2, .ndiv_int = 0x10, .ndiv_frac = 0xEC4EC4, },
  177. { .freq = 30000, .xf = 13, .p1div = 3, .p2div = 8, .ndiv_int = 0xb, .ndiv_frac = 0, },
  178. { .freq = 38400, .xf = 14, .p1div = 1, .p2div = 5, .ndiv_int = 0x4, .ndiv_frac = 0x955555, },
  179. { .freq = 40000, .xf = 15, .p1div = 1, .p2div = 2, .ndiv_int = 0xb, .ndiv_frac = 0, },
  180. };
  181. #define SSB_PMU1_DEFAULT_XTALFREQ 15360
  182. static const struct pmu1_plltab_entry * pmu1_plltab_find_entry(u32 crystalfreq)
  183. {
  184. const struct pmu1_plltab_entry *e;
  185. unsigned int i;
  186. for (i = 0; i < ARRAY_SIZE(pmu1_plltab); i++) {
  187. e = &pmu1_plltab[i];
  188. if (e->freq == crystalfreq)
  189. return e;
  190. }
  191. return NULL;
  192. }
  193. /* Tune the PLL to the crystal speed. crystalfreq is in kHz. */
  194. static void ssb_pmu1_pllinit_r0(struct ssb_chipcommon *cc,
  195. u32 crystalfreq)
  196. {
  197. struct ssb_bus *bus = cc->dev->bus;
  198. const struct pmu1_plltab_entry *e = NULL;
  199. u32 buffer_strength = 0;
  200. u32 tmp, pllctl, pmuctl;
  201. unsigned int i;
  202. if (bus->chip_id == 0x4312) {
  203. /* We do not touch the BCM4312 PLL and assume
  204. * the default crystal settings work out-of-the-box. */
  205. cc->pmu.crystalfreq = 20000;
  206. return;
  207. }
  208. if (crystalfreq)
  209. e = pmu1_plltab_find_entry(crystalfreq);
  210. if (!e)
  211. e = pmu1_plltab_find_entry(SSB_PMU1_DEFAULT_XTALFREQ);
  212. BUG_ON(!e);
  213. crystalfreq = e->freq;
  214. cc->pmu.crystalfreq = e->freq;
  215. /* Check if the PLL already is programmed to this frequency. */
  216. pmuctl = chipco_read32(cc, SSB_CHIPCO_PMU_CTL);
  217. if (((pmuctl & SSB_CHIPCO_PMU_CTL_XTALFREQ) >> SSB_CHIPCO_PMU_CTL_XTALFREQ_SHIFT) == e->xf) {
  218. /* We're already there... */
  219. return;
  220. }
  221. ssb_printk(KERN_INFO PFX "Programming PLL to %u.%03u MHz\n",
  222. (crystalfreq / 1000), (crystalfreq % 1000));
  223. /* First turn the PLL off. */
  224. switch (bus->chip_id) {
  225. case 0x4325:
  226. chipco_mask32(cc, SSB_CHIPCO_PMU_MINRES_MSK,
  227. ~((1 << SSB_PMURES_4325_BBPLL_PWRSW_PU) |
  228. (1 << SSB_PMURES_4325_HT_AVAIL)));
  229. chipco_mask32(cc, SSB_CHIPCO_PMU_MAXRES_MSK,
  230. ~((1 << SSB_PMURES_4325_BBPLL_PWRSW_PU) |
  231. (1 << SSB_PMURES_4325_HT_AVAIL)));
  232. /* Adjust the BBPLL to 2 on all channels later. */
  233. buffer_strength = 0x222222;
  234. break;
  235. default:
  236. SSB_WARN_ON(1);
  237. }
  238. for (i = 1500; i; i--) {
  239. tmp = chipco_read32(cc, SSB_CHIPCO_CLKCTLST);
  240. if (!(tmp & SSB_CHIPCO_CLKCTLST_HAVEHT))
  241. break;
  242. udelay(10);
  243. }
  244. tmp = chipco_read32(cc, SSB_CHIPCO_CLKCTLST);
  245. if (tmp & SSB_CHIPCO_CLKCTLST_HAVEHT)
  246. ssb_printk(KERN_EMERG PFX "Failed to turn the PLL off!\n");
  247. /* Set p1div and p2div. */
  248. pllctl = ssb_chipco_pll_read(cc, SSB_PMU1_PLLCTL0);
  249. pllctl &= ~(SSB_PMU1_PLLCTL0_P1DIV | SSB_PMU1_PLLCTL0_P2DIV);
  250. pllctl |= ((u32)e->p1div << SSB_PMU1_PLLCTL0_P1DIV_SHIFT) & SSB_PMU1_PLLCTL0_P1DIV;
  251. pllctl |= ((u32)e->p2div << SSB_PMU1_PLLCTL0_P2DIV_SHIFT) & SSB_PMU1_PLLCTL0_P2DIV;
  252. ssb_chipco_pll_write(cc, SSB_PMU1_PLLCTL0, pllctl);
  253. /* Set ndiv int and ndiv mode */
  254. pllctl = ssb_chipco_pll_read(cc, SSB_PMU1_PLLCTL2);
  255. pllctl &= ~(SSB_PMU1_PLLCTL2_NDIVINT | SSB_PMU1_PLLCTL2_NDIVMODE);
  256. pllctl |= ((u32)e->ndiv_int << SSB_PMU1_PLLCTL2_NDIVINT_SHIFT) & SSB_PMU1_PLLCTL2_NDIVINT;
  257. pllctl |= (1 << SSB_PMU1_PLLCTL2_NDIVMODE_SHIFT) & SSB_PMU1_PLLCTL2_NDIVMODE;
  258. ssb_chipco_pll_write(cc, SSB_PMU1_PLLCTL2, pllctl);
  259. /* Set ndiv frac */
  260. pllctl = ssb_chipco_pll_read(cc, SSB_PMU1_PLLCTL3);
  261. pllctl &= ~SSB_PMU1_PLLCTL3_NDIVFRAC;
  262. pllctl |= ((u32)e->ndiv_frac << SSB_PMU1_PLLCTL3_NDIVFRAC_SHIFT) & SSB_PMU1_PLLCTL3_NDIVFRAC;
  263. ssb_chipco_pll_write(cc, SSB_PMU1_PLLCTL3, pllctl);
  264. /* Change the drive strength, if required. */
  265. if (buffer_strength) {
  266. pllctl = ssb_chipco_pll_read(cc, SSB_PMU1_PLLCTL5);
  267. pllctl &= ~SSB_PMU1_PLLCTL5_CLKDRV;
  268. pllctl |= (buffer_strength << SSB_PMU1_PLLCTL5_CLKDRV_SHIFT) & SSB_PMU1_PLLCTL5_CLKDRV;
  269. ssb_chipco_pll_write(cc, SSB_PMU1_PLLCTL5, pllctl);
  270. }
  271. /* Tune the crystalfreq and the divisor. */
  272. pmuctl = chipco_read32(cc, SSB_CHIPCO_PMU_CTL);
  273. pmuctl &= ~(SSB_CHIPCO_PMU_CTL_ILP_DIV | SSB_CHIPCO_PMU_CTL_XTALFREQ);
  274. pmuctl |= ((((u32)e->freq + 127) / 128 - 1) << SSB_CHIPCO_PMU_CTL_ILP_DIV_SHIFT)
  275. & SSB_CHIPCO_PMU_CTL_ILP_DIV;
  276. pmuctl |= ((u32)e->xf << SSB_CHIPCO_PMU_CTL_XTALFREQ_SHIFT) & SSB_CHIPCO_PMU_CTL_XTALFREQ;
  277. chipco_write32(cc, SSB_CHIPCO_PMU_CTL, pmuctl);
  278. }
  279. static void ssb_pmu_pll_init(struct ssb_chipcommon *cc)
  280. {
  281. struct ssb_bus *bus = cc->dev->bus;
  282. u32 crystalfreq = 0; /* in kHz. 0 = keep default freq. */
  283. if (bus->bustype == SSB_BUSTYPE_SSB) {
  284. /* TODO: The user may override the crystal frequency. */
  285. }
  286. switch (bus->chip_id) {
  287. case 0x4312:
  288. case 0x4325:
  289. ssb_pmu1_pllinit_r0(cc, crystalfreq);
  290. break;
  291. case 0x4328:
  292. case 0x5354:
  293. ssb_pmu0_pllinit_r0(cc, crystalfreq);
  294. break;
  295. default:
  296. ssb_printk(KERN_ERR PFX
  297. "ERROR: PLL init unknown for device %04X\n",
  298. bus->chip_id);
  299. }
  300. }
  301. struct pmu_res_updown_tab_entry {
  302. u8 resource; /* The resource number */
  303. u16 updown; /* The updown value */
  304. };
  305. enum pmu_res_depend_tab_task {
  306. PMU_RES_DEP_SET = 1,
  307. PMU_RES_DEP_ADD,
  308. PMU_RES_DEP_REMOVE,
  309. };
  310. struct pmu_res_depend_tab_entry {
  311. u8 resource; /* The resource number */
  312. u8 task; /* SET | ADD | REMOVE */
  313. u32 depend; /* The depend mask */
  314. };
  315. static const struct pmu_res_updown_tab_entry pmu_res_updown_tab_4328a0[] = {
  316. { .resource = SSB_PMURES_4328_EXT_SWITCHER_PWM, .updown = 0x0101, },
  317. { .resource = SSB_PMURES_4328_BB_SWITCHER_PWM, .updown = 0x1F01, },
  318. { .resource = SSB_PMURES_4328_BB_SWITCHER_BURST, .updown = 0x010F, },
  319. { .resource = SSB_PMURES_4328_BB_EXT_SWITCHER_BURST, .updown = 0x0101, },
  320. { .resource = SSB_PMURES_4328_ILP_REQUEST, .updown = 0x0202, },
  321. { .resource = SSB_PMURES_4328_RADIO_SWITCHER_PWM, .updown = 0x0F01, },
  322. { .resource = SSB_PMURES_4328_RADIO_SWITCHER_BURST, .updown = 0x0F01, },
  323. { .resource = SSB_PMURES_4328_ROM_SWITCH, .updown = 0x0101, },
  324. { .resource = SSB_PMURES_4328_PA_REF_LDO, .updown = 0x0F01, },
  325. { .resource = SSB_PMURES_4328_RADIO_LDO, .updown = 0x0F01, },
  326. { .resource = SSB_PMURES_4328_AFE_LDO, .updown = 0x0F01, },
  327. { .resource = SSB_PMURES_4328_PLL_LDO, .updown = 0x0F01, },
  328. { .resource = SSB_PMURES_4328_BG_FILTBYP, .updown = 0x0101, },
  329. { .resource = SSB_PMURES_4328_TX_FILTBYP, .updown = 0x0101, },
  330. { .resource = SSB_PMURES_4328_RX_FILTBYP, .updown = 0x0101, },
  331. { .resource = SSB_PMURES_4328_XTAL_PU, .updown = 0x0101, },
  332. { .resource = SSB_PMURES_4328_XTAL_EN, .updown = 0xA001, },
  333. { .resource = SSB_PMURES_4328_BB_PLL_FILTBYP, .updown = 0x0101, },
  334. { .resource = SSB_PMURES_4328_RF_PLL_FILTBYP, .updown = 0x0101, },
  335. { .resource = SSB_PMURES_4328_BB_PLL_PU, .updown = 0x0701, },
  336. };
  337. static const struct pmu_res_depend_tab_entry pmu_res_depend_tab_4328a0[] = {
  338. {
  339. /* Adjust ILP Request to avoid forcing EXT/BB into burst mode. */
  340. .resource = SSB_PMURES_4328_ILP_REQUEST,
  341. .task = PMU_RES_DEP_SET,
  342. .depend = ((1 << SSB_PMURES_4328_EXT_SWITCHER_PWM) |
  343. (1 << SSB_PMURES_4328_BB_SWITCHER_PWM)),
  344. },
  345. };
  346. static const struct pmu_res_updown_tab_entry pmu_res_updown_tab_4325a0[] = {
  347. { .resource = SSB_PMURES_4325_XTAL_PU, .updown = 0x1501, },
  348. };
  349. static const struct pmu_res_depend_tab_entry pmu_res_depend_tab_4325a0[] = {
  350. {
  351. /* Adjust HT-Available dependencies. */
  352. .resource = SSB_PMURES_4325_HT_AVAIL,
  353. .task = PMU_RES_DEP_ADD,
  354. .depend = ((1 << SSB_PMURES_4325_RX_PWRSW_PU) |
  355. (1 << SSB_PMURES_4325_TX_PWRSW_PU) |
  356. (1 << SSB_PMURES_4325_LOGEN_PWRSW_PU) |
  357. (1 << SSB_PMURES_4325_AFE_PWRSW_PU)),
  358. },
  359. };
  360. static void ssb_pmu_resources_init(struct ssb_chipcommon *cc)
  361. {
  362. struct ssb_bus *bus = cc->dev->bus;
  363. u32 min_msk = 0, max_msk = 0;
  364. unsigned int i;
  365. const struct pmu_res_updown_tab_entry *updown_tab = NULL;
  366. unsigned int updown_tab_size;
  367. const struct pmu_res_depend_tab_entry *depend_tab = NULL;
  368. unsigned int depend_tab_size;
  369. switch (bus->chip_id) {
  370. case 0x4312:
  371. /* We keep the default settings:
  372. * min_msk = 0xCBB
  373. * max_msk = 0x7FFFF
  374. */
  375. break;
  376. case 0x4325:
  377. /* Power OTP down later. */
  378. min_msk = (1 << SSB_PMURES_4325_CBUCK_BURST) |
  379. (1 << SSB_PMURES_4325_LNLDO2_PU);
  380. if (chipco_read32(cc, SSB_CHIPCO_CHIPSTAT) &
  381. SSB_CHIPCO_CHST_4325_PMUTOP_2B)
  382. min_msk |= (1 << SSB_PMURES_4325_CLDO_CBUCK_BURST);
  383. /* The PLL may turn on, if it decides so. */
  384. max_msk = 0xFFFFF;
  385. updown_tab = pmu_res_updown_tab_4325a0;
  386. updown_tab_size = ARRAY_SIZE(pmu_res_updown_tab_4325a0);
  387. depend_tab = pmu_res_depend_tab_4325a0;
  388. depend_tab_size = ARRAY_SIZE(pmu_res_depend_tab_4325a0);
  389. break;
  390. case 0x4328:
  391. min_msk = (1 << SSB_PMURES_4328_EXT_SWITCHER_PWM) |
  392. (1 << SSB_PMURES_4328_BB_SWITCHER_PWM) |
  393. (1 << SSB_PMURES_4328_XTAL_EN);
  394. /* The PLL may turn on, if it decides so. */
  395. max_msk = 0xFFFFF;
  396. updown_tab = pmu_res_updown_tab_4328a0;
  397. updown_tab_size = ARRAY_SIZE(pmu_res_updown_tab_4328a0);
  398. depend_tab = pmu_res_depend_tab_4328a0;
  399. depend_tab_size = ARRAY_SIZE(pmu_res_depend_tab_4328a0);
  400. break;
  401. case 0x5354:
  402. /* The PLL may turn on, if it decides so. */
  403. max_msk = 0xFFFFF;
  404. break;
  405. default:
  406. ssb_printk(KERN_ERR PFX
  407. "ERROR: PMU resource config unknown for device %04X\n",
  408. bus->chip_id);
  409. }
  410. if (updown_tab) {
  411. for (i = 0; i < updown_tab_size; i++) {
  412. chipco_write32(cc, SSB_CHIPCO_PMU_RES_TABSEL,
  413. updown_tab[i].resource);
  414. chipco_write32(cc, SSB_CHIPCO_PMU_RES_UPDNTM,
  415. updown_tab[i].updown);
  416. }
  417. }
  418. if (depend_tab) {
  419. for (i = 0; i < depend_tab_size; i++) {
  420. chipco_write32(cc, SSB_CHIPCO_PMU_RES_TABSEL,
  421. depend_tab[i].resource);
  422. switch (depend_tab[i].task) {
  423. case PMU_RES_DEP_SET:
  424. chipco_write32(cc, SSB_CHIPCO_PMU_RES_DEPMSK,
  425. depend_tab[i].depend);
  426. break;
  427. case PMU_RES_DEP_ADD:
  428. chipco_set32(cc, SSB_CHIPCO_PMU_RES_DEPMSK,
  429. depend_tab[i].depend);
  430. break;
  431. case PMU_RES_DEP_REMOVE:
  432. chipco_mask32(cc, SSB_CHIPCO_PMU_RES_DEPMSK,
  433. ~(depend_tab[i].depend));
  434. break;
  435. default:
  436. SSB_WARN_ON(1);
  437. }
  438. }
  439. }
  440. /* Set the resource masks. */
  441. if (min_msk)
  442. chipco_write32(cc, SSB_CHIPCO_PMU_MINRES_MSK, min_msk);
  443. if (max_msk)
  444. chipco_write32(cc, SSB_CHIPCO_PMU_MAXRES_MSK, max_msk);
  445. }
  446. void ssb_pmu_init(struct ssb_chipcommon *cc)
  447. {
  448. struct ssb_bus *bus = cc->dev->bus;
  449. u32 pmucap;
  450. if (!(cc->capabilities & SSB_CHIPCO_CAP_PMU))
  451. return;
  452. pmucap = chipco_read32(cc, SSB_CHIPCO_PMU_CAP);
  453. cc->pmu.rev = (pmucap & SSB_CHIPCO_PMU_CAP_REVISION);
  454. ssb_dprintk(KERN_DEBUG PFX "Found rev %u PMU (capabilities 0x%08X)\n",
  455. cc->pmu.rev, pmucap);
  456. if (cc->pmu.rev >= 1) {
  457. if ((bus->chip_id == 0x4325) && (bus->chip_rev < 2)) {
  458. chipco_mask32(cc, SSB_CHIPCO_PMU_CTL,
  459. ~SSB_CHIPCO_PMU_CTL_NOILPONW);
  460. } else {
  461. chipco_set32(cc, SSB_CHIPCO_PMU_CTL,
  462. SSB_CHIPCO_PMU_CTL_NOILPONW);
  463. }
  464. }
  465. ssb_pmu_pll_init(cc);
  466. ssb_pmu_resources_init(cc);
  467. }
  468. void ssb_pmu_set_ldo_voltage(struct ssb_chipcommon *cc,
  469. enum ssb_pmu_ldo_volt_id id, u32 voltage)
  470. {
  471. struct ssb_bus *bus = cc->dev->bus;
  472. u32 addr, shift, mask;
  473. switch (bus->chip_id) {
  474. case 0x4328:
  475. case 0x5354:
  476. switch (id) {
  477. case LDO_VOLT1:
  478. addr = 2;
  479. shift = 25;
  480. mask = 0xF;
  481. break;
  482. case LDO_VOLT2:
  483. addr = 3;
  484. shift = 1;
  485. mask = 0xF;
  486. break;
  487. case LDO_VOLT3:
  488. addr = 3;
  489. shift = 9;
  490. mask = 0xF;
  491. break;
  492. case LDO_PAREF:
  493. addr = 3;
  494. shift = 17;
  495. mask = 0x3F;
  496. break;
  497. default:
  498. SSB_WARN_ON(1);
  499. return;
  500. }
  501. break;
  502. case 0x4312:
  503. if (SSB_WARN_ON(id != LDO_PAREF))
  504. return;
  505. addr = 0;
  506. shift = 21;
  507. mask = 0x3F;
  508. break;
  509. default:
  510. return;
  511. }
  512. ssb_chipco_regctl_maskset(cc, addr, ~(mask << shift),
  513. (voltage & mask) << shift);
  514. }
  515. void ssb_pmu_set_ldo_paref(struct ssb_chipcommon *cc, bool on)
  516. {
  517. struct ssb_bus *bus = cc->dev->bus;
  518. int ldo;
  519. switch (bus->chip_id) {
  520. case 0x4312:
  521. ldo = SSB_PMURES_4312_PA_REF_LDO;
  522. break;
  523. case 0x4328:
  524. ldo = SSB_PMURES_4328_PA_REF_LDO;
  525. break;
  526. case 0x5354:
  527. ldo = SSB_PMURES_5354_PA_REF_LDO;
  528. break;
  529. default:
  530. return;
  531. }
  532. if (on)
  533. chipco_set32(cc, SSB_CHIPCO_PMU_MINRES_MSK, 1 << ldo);
  534. else
  535. chipco_mask32(cc, SSB_CHIPCO_PMU_MINRES_MSK, ~(1 << ldo));
  536. chipco_read32(cc, SSB_CHIPCO_PMU_MINRES_MSK); //SPEC FIXME found via mmiotrace - dummy read?
  537. }
  538. EXPORT_SYMBOL(ssb_pmu_set_ldo_voltage);
  539. EXPORT_SYMBOL(ssb_pmu_set_ldo_paref);