board-h2.c 11 KB

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  1. /*
  2. * linux/arch/arm/mach-omap1/board-h2.c
  3. *
  4. * Board specific inits for OMAP-1610 H2
  5. *
  6. * Copyright (C) 2001 RidgeRun, Inc.
  7. * Author: Greg Lonnon <glonnon@ridgerun.com>
  8. *
  9. * Copyright (C) 2002 MontaVista Software, Inc.
  10. *
  11. * Separated FPGA interrupts from innovator1510.c and cleaned up for 2.6
  12. * Copyright (C) 2004 Nokia Corporation by Tony Lindrgen <tony@atomide.com>
  13. *
  14. * H2 specific changes and cleanup
  15. * Copyright (C) 2004 Nokia Corporation by Imre Deak <imre.deak@nokia.com>
  16. *
  17. * This program is free software; you can redistribute it and/or modify
  18. * it under the terms of the GNU General Public License version 2 as
  19. * published by the Free Software Foundation.
  20. */
  21. #include <linux/kernel.h>
  22. #include <linux/platform_device.h>
  23. #include <linux/delay.h>
  24. #include <linux/i2c.h>
  25. #include <linux/mtd/mtd.h>
  26. #include <linux/mtd/nand.h>
  27. #include <linux/mtd/partitions.h>
  28. #include <linux/input.h>
  29. #include <linux/i2c/tps65010.h>
  30. #include <mach/hardware.h>
  31. #include <asm/gpio.h>
  32. #include <asm/mach-types.h>
  33. #include <asm/mach/arch.h>
  34. #include <asm/mach/flash.h>
  35. #include <asm/mach/map.h>
  36. #include <mach/gpio-switch.h>
  37. #include <mach/mux.h>
  38. #include <mach/tc.h>
  39. #include <mach/nand.h>
  40. #include <mach/irda.h>
  41. #include <mach/usb.h>
  42. #include <mach/keypad.h>
  43. #include <mach/common.h>
  44. #include <mach/mcbsp.h>
  45. #include <mach/omap-alsa.h>
  46. static int h2_keymap[] = {
  47. KEY(0, 0, KEY_LEFT),
  48. KEY(0, 1, KEY_RIGHT),
  49. KEY(0, 2, KEY_3),
  50. KEY(0, 3, KEY_F10),
  51. KEY(0, 4, KEY_F5),
  52. KEY(0, 5, KEY_9),
  53. KEY(1, 0, KEY_DOWN),
  54. KEY(1, 1, KEY_UP),
  55. KEY(1, 2, KEY_2),
  56. KEY(1, 3, KEY_F9),
  57. KEY(1, 4, KEY_F7),
  58. KEY(1, 5, KEY_0),
  59. KEY(2, 0, KEY_ENTER),
  60. KEY(2, 1, KEY_6),
  61. KEY(2, 2, KEY_1),
  62. KEY(2, 3, KEY_F2),
  63. KEY(2, 4, KEY_F6),
  64. KEY(2, 5, KEY_HOME),
  65. KEY(3, 0, KEY_8),
  66. KEY(3, 1, KEY_5),
  67. KEY(3, 2, KEY_F12),
  68. KEY(3, 3, KEY_F3),
  69. KEY(3, 4, KEY_F8),
  70. KEY(3, 5, KEY_END),
  71. KEY(4, 0, KEY_7),
  72. KEY(4, 1, KEY_4),
  73. KEY(4, 2, KEY_F11),
  74. KEY(4, 3, KEY_F1),
  75. KEY(4, 4, KEY_F4),
  76. KEY(4, 5, KEY_ESC),
  77. KEY(5, 0, KEY_F13),
  78. KEY(5, 1, KEY_F14),
  79. KEY(5, 2, KEY_F15),
  80. KEY(5, 3, KEY_F16),
  81. KEY(5, 4, KEY_SLEEP),
  82. 0
  83. };
  84. static struct mtd_partition h2_nor_partitions[] = {
  85. /* bootloader (U-Boot, etc) in first sector */
  86. {
  87. .name = "bootloader",
  88. .offset = 0,
  89. .size = SZ_128K,
  90. .mask_flags = MTD_WRITEABLE, /* force read-only */
  91. },
  92. /* bootloader params in the next sector */
  93. {
  94. .name = "params",
  95. .offset = MTDPART_OFS_APPEND,
  96. .size = SZ_128K,
  97. .mask_flags = 0,
  98. },
  99. /* kernel */
  100. {
  101. .name = "kernel",
  102. .offset = MTDPART_OFS_APPEND,
  103. .size = SZ_2M,
  104. .mask_flags = 0
  105. },
  106. /* file system */
  107. {
  108. .name = "filesystem",
  109. .offset = MTDPART_OFS_APPEND,
  110. .size = MTDPART_SIZ_FULL,
  111. .mask_flags = 0
  112. }
  113. };
  114. static struct flash_platform_data h2_nor_data = {
  115. .map_name = "cfi_probe",
  116. .width = 2,
  117. .parts = h2_nor_partitions,
  118. .nr_parts = ARRAY_SIZE(h2_nor_partitions),
  119. };
  120. static struct resource h2_nor_resource = {
  121. /* This is on CS3, wherever it's mapped */
  122. .flags = IORESOURCE_MEM,
  123. };
  124. static struct platform_device h2_nor_device = {
  125. .name = "omapflash",
  126. .id = 0,
  127. .dev = {
  128. .platform_data = &h2_nor_data,
  129. },
  130. .num_resources = 1,
  131. .resource = &h2_nor_resource,
  132. };
  133. static struct mtd_partition h2_nand_partitions[] = {
  134. #if 0
  135. /* REVISIT: enable these partitions if you make NAND BOOT
  136. * work on your H2 (rev C or newer); published versions of
  137. * x-load only support P2 and H3.
  138. */
  139. {
  140. .name = "xloader",
  141. .offset = 0,
  142. .size = 64 * 1024,
  143. .mask_flags = MTD_WRITEABLE, /* force read-only */
  144. },
  145. {
  146. .name = "bootloader",
  147. .offset = MTDPART_OFS_APPEND,
  148. .size = 256 * 1024,
  149. .mask_flags = MTD_WRITEABLE, /* force read-only */
  150. },
  151. {
  152. .name = "params",
  153. .offset = MTDPART_OFS_APPEND,
  154. .size = 192 * 1024,
  155. },
  156. {
  157. .name = "kernel",
  158. .offset = MTDPART_OFS_APPEND,
  159. .size = 2 * SZ_1M,
  160. },
  161. #endif
  162. {
  163. .name = "filesystem",
  164. .size = MTDPART_SIZ_FULL,
  165. .offset = MTDPART_OFS_APPEND,
  166. },
  167. };
  168. /* dip switches control NAND chip access: 8 bit, 16 bit, or neither */
  169. static struct omap_nand_platform_data h2_nand_data = {
  170. .options = NAND_SAMSUNG_LP_OPTIONS,
  171. .parts = h2_nand_partitions,
  172. .nr_parts = ARRAY_SIZE(h2_nand_partitions),
  173. };
  174. static struct resource h2_nand_resource = {
  175. .flags = IORESOURCE_MEM,
  176. };
  177. static struct platform_device h2_nand_device = {
  178. .name = "omapnand",
  179. .id = 0,
  180. .dev = {
  181. .platform_data = &h2_nand_data,
  182. },
  183. .num_resources = 1,
  184. .resource = &h2_nand_resource,
  185. };
  186. static struct resource h2_smc91x_resources[] = {
  187. [0] = {
  188. .start = OMAP1610_ETHR_START, /* Physical */
  189. .end = OMAP1610_ETHR_START + 0xf,
  190. .flags = IORESOURCE_MEM,
  191. },
  192. [1] = {
  193. .start = OMAP_GPIO_IRQ(0),
  194. .end = OMAP_GPIO_IRQ(0),
  195. .flags = IORESOURCE_IRQ | IORESOURCE_IRQ_LOWEDGE,
  196. },
  197. };
  198. static struct platform_device h2_smc91x_device = {
  199. .name = "smc91x",
  200. .id = 0,
  201. .num_resources = ARRAY_SIZE(h2_smc91x_resources),
  202. .resource = h2_smc91x_resources,
  203. };
  204. static struct resource h2_kp_resources[] = {
  205. [0] = {
  206. .start = INT_KEYBOARD,
  207. .end = INT_KEYBOARD,
  208. .flags = IORESOURCE_IRQ,
  209. },
  210. };
  211. static struct omap_kp_platform_data h2_kp_data = {
  212. .rows = 8,
  213. .cols = 8,
  214. .keymap = h2_keymap,
  215. .keymapsize = ARRAY_SIZE(h2_keymap),
  216. .rep = 1,
  217. .delay = 9,
  218. .dbounce = 1,
  219. };
  220. static struct platform_device h2_kp_device = {
  221. .name = "omap-keypad",
  222. .id = -1,
  223. .dev = {
  224. .platform_data = &h2_kp_data,
  225. },
  226. .num_resources = ARRAY_SIZE(h2_kp_resources),
  227. .resource = h2_kp_resources,
  228. };
  229. #define H2_IRDA_FIRSEL_GPIO_PIN 17
  230. #if defined(CONFIG_OMAP_IR) || defined(CONFIG_OMAP_IR_MODULE)
  231. static int h2_transceiver_mode(struct device *dev, int state)
  232. {
  233. if (state & IR_SIRMODE)
  234. omap_set_gpio_dataout(H2_IRDA_FIRSEL_GPIO_PIN, 0);
  235. else /* MIR/FIR */
  236. omap_set_gpio_dataout(H2_IRDA_FIRSEL_GPIO_PIN, 1);
  237. return 0;
  238. }
  239. #endif
  240. static struct omap_irda_config h2_irda_data = {
  241. .transceiver_cap = IR_SIRMODE | IR_MIRMODE | IR_FIRMODE,
  242. .rx_channel = OMAP_DMA_UART3_RX,
  243. .tx_channel = OMAP_DMA_UART3_TX,
  244. .dest_start = UART3_THR,
  245. .src_start = UART3_RHR,
  246. .tx_trigger = 0,
  247. .rx_trigger = 0,
  248. };
  249. static struct resource h2_irda_resources[] = {
  250. [0] = {
  251. .start = INT_UART3,
  252. .end = INT_UART3,
  253. .flags = IORESOURCE_IRQ,
  254. },
  255. };
  256. static u64 irda_dmamask = 0xffffffff;
  257. static struct platform_device h2_irda_device = {
  258. .name = "omapirda",
  259. .id = 0,
  260. .dev = {
  261. .platform_data = &h2_irda_data,
  262. .dma_mask = &irda_dmamask,
  263. },
  264. .num_resources = ARRAY_SIZE(h2_irda_resources),
  265. .resource = h2_irda_resources,
  266. };
  267. static struct platform_device h2_lcd_device = {
  268. .name = "lcd_h2",
  269. .id = -1,
  270. };
  271. static struct omap_mcbsp_reg_cfg mcbsp_regs = {
  272. .spcr2 = FREE | FRST | GRST | XRST | XINTM(3),
  273. .spcr1 = RINTM(3) | RRST,
  274. .rcr2 = RPHASE | RFRLEN2(OMAP_MCBSP_WORD_8) |
  275. RWDLEN2(OMAP_MCBSP_WORD_16) | RDATDLY(1),
  276. .rcr1 = RFRLEN1(OMAP_MCBSP_WORD_8) | RWDLEN1(OMAP_MCBSP_WORD_16),
  277. .xcr2 = XPHASE | XFRLEN2(OMAP_MCBSP_WORD_8) |
  278. XWDLEN2(OMAP_MCBSP_WORD_16) | XDATDLY(1) | XFIG,
  279. .xcr1 = XFRLEN1(OMAP_MCBSP_WORD_8) | XWDLEN1(OMAP_MCBSP_WORD_16),
  280. .srgr1 = FWID(15),
  281. .srgr2 = GSYNC | CLKSP | FSGM | FPER(31),
  282. .pcr0 = CLKXM | CLKRM | FSXP | FSRP | CLKXP | CLKRP,
  283. /*.pcr0 = CLKXP | CLKRP,*/ /* mcbsp: slave */
  284. };
  285. static struct omap_alsa_codec_config alsa_config = {
  286. .name = "H2 TSC2101",
  287. .mcbsp_regs_alsa = &mcbsp_regs,
  288. .codec_configure_dev = NULL, /* tsc2101_configure, */
  289. .codec_set_samplerate = NULL, /* tsc2101_set_samplerate, */
  290. .codec_clock_setup = NULL, /* tsc2101_clock_setup, */
  291. .codec_clock_on = NULL, /* tsc2101_clock_on, */
  292. .codec_clock_off = NULL, /* tsc2101_clock_off, */
  293. .get_default_samplerate = NULL, /* tsc2101_get_default_samplerate, */
  294. };
  295. static struct platform_device h2_mcbsp1_device = {
  296. .name = "omap_alsa_mcbsp",
  297. .id = 1,
  298. .dev = {
  299. .platform_data = &alsa_config,
  300. },
  301. };
  302. static struct platform_device *h2_devices[] __initdata = {
  303. &h2_nor_device,
  304. &h2_nand_device,
  305. &h2_smc91x_device,
  306. &h2_irda_device,
  307. &h2_kp_device,
  308. &h2_lcd_device,
  309. &h2_mcbsp1_device,
  310. };
  311. static void __init h2_init_smc91x(void)
  312. {
  313. if ((omap_request_gpio(0)) < 0) {
  314. printk("Error requesting gpio 0 for smc91x irq\n");
  315. return;
  316. }
  317. }
  318. static struct i2c_board_info __initdata h2_i2c_board_info[] = {
  319. {
  320. I2C_BOARD_INFO("tps65010", 0x48),
  321. .irq = OMAP_GPIO_IRQ(58),
  322. }, {
  323. I2C_BOARD_INFO("isp1301_omap", 0x2d),
  324. .irq = OMAP_GPIO_IRQ(2),
  325. },
  326. };
  327. static void __init h2_init_irq(void)
  328. {
  329. omap1_init_common_hw();
  330. omap_init_irq();
  331. omap_gpio_init();
  332. h2_init_smc91x();
  333. }
  334. static struct omap_usb_config h2_usb_config __initdata = {
  335. /* usb1 has a Mini-AB port and external isp1301 transceiver */
  336. .otg = 2,
  337. #ifdef CONFIG_USB_GADGET_OMAP
  338. .hmc_mode = 19, /* 0:host(off) 1:dev|otg 2:disabled */
  339. /* .hmc_mode = 21,*/ /* 0:host(off) 1:dev(loopback) 2:host(loopback) */
  340. #elif defined(CONFIG_USB_OHCI_HCD) || defined(CONFIG_USB_OHCI_HCD_MODULE)
  341. /* needs OTG cable, or NONSTANDARD (B-to-MiniB) */
  342. .hmc_mode = 20, /* 1:dev|otg(off) 1:host 2:disabled */
  343. #endif
  344. .pins[1] = 3,
  345. };
  346. static struct omap_mmc_config h2_mmc_config __initdata = {
  347. .mmc[0] = {
  348. .enabled = 1,
  349. .wire4 = 1,
  350. },
  351. };
  352. extern struct omap_mmc_platform_data h2_mmc_data;
  353. static struct omap_uart_config h2_uart_config __initdata = {
  354. .enabled_uarts = ((1 << 0) | (1 << 1) | (1 << 2)),
  355. };
  356. static struct omap_lcd_config h2_lcd_config __initdata = {
  357. .ctrl_name = "internal",
  358. };
  359. static struct omap_board_config_kernel h2_config[] __initdata = {
  360. { OMAP_TAG_USB, &h2_usb_config },
  361. { OMAP_TAG_MMC, &h2_mmc_config },
  362. { OMAP_TAG_UART, &h2_uart_config },
  363. { OMAP_TAG_LCD, &h2_lcd_config },
  364. };
  365. #define H2_NAND_RB_GPIO_PIN 62
  366. static int h2_nand_dev_ready(struct omap_nand_platform_data *data)
  367. {
  368. return omap_get_gpio_datain(H2_NAND_RB_GPIO_PIN);
  369. }
  370. static void __init h2_init(void)
  371. {
  372. /* Here we assume the NOR boot config: NOR on CS3 (possibly swapped
  373. * to address 0 by a dip switch), NAND on CS2B. The NAND driver will
  374. * notice whether a NAND chip is enabled at probe time.
  375. *
  376. * FIXME revC boards (and H3) support NAND-boot, with a dip switch to
  377. * put NOR on CS2B and NAND (which on H2 may be 16bit) on CS3. Try
  378. * detecting that in code here, to avoid probing every possible flash
  379. * configuration...
  380. */
  381. h2_nor_resource.end = h2_nor_resource.start = omap_cs3_phys();
  382. h2_nor_resource.end += SZ_32M - 1;
  383. h2_nand_resource.end = h2_nand_resource.start = OMAP_CS2B_PHYS;
  384. h2_nand_resource.end += SZ_4K - 1;
  385. if (!(omap_request_gpio(H2_NAND_RB_GPIO_PIN)))
  386. h2_nand_data.dev_ready = h2_nand_dev_ready;
  387. omap_cfg_reg(L3_1610_FLASH_CS2B_OE);
  388. omap_cfg_reg(M8_1610_FLASH_CS2B_WE);
  389. /* MMC: card detect and WP */
  390. /* omap_cfg_reg(U19_ARMIO1); */ /* CD */
  391. omap_cfg_reg(BALLOUT_V8_ARMIO3); /* WP */
  392. /* Irda */
  393. #if defined(CONFIG_OMAP_IR) || defined(CONFIG_OMAP_IR_MODULE)
  394. omap_writel(omap_readl(FUNC_MUX_CTRL_A) | 7, FUNC_MUX_CTRL_A);
  395. if (!(omap_request_gpio(H2_IRDA_FIRSEL_GPIO_PIN))) {
  396. omap_set_gpio_direction(H2_IRDA_FIRSEL_GPIO_PIN, 0);
  397. h2_irda_data.transceiver_mode = h2_transceiver_mode;
  398. }
  399. #endif
  400. platform_add_devices(h2_devices, ARRAY_SIZE(h2_devices));
  401. omap_board_config = h2_config;
  402. omap_board_config_size = ARRAY_SIZE(h2_config);
  403. omap_serial_init();
  404. omap_register_i2c_bus(1, 100, h2_i2c_board_info,
  405. ARRAY_SIZE(h2_i2c_board_info));
  406. h2_mmc_init();
  407. }
  408. static void __init h2_map_io(void)
  409. {
  410. omap1_map_common_io();
  411. }
  412. MACHINE_START(OMAP_H2, "TI-H2")
  413. /* Maintainer: Imre Deak <imre.deak@nokia.com> */
  414. .phys_io = 0xfff00000,
  415. .io_pg_offst = ((0xfef00000) >> 18) & 0xfffc,
  416. .boot_params = 0x10000100,
  417. .map_io = h2_map_io,
  418. .init_irq = h2_init_irq,
  419. .init_machine = h2_init,
  420. .timer = &omap_timer,
  421. MACHINE_END