fsl_soc.c 23 KB

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  1. /*
  2. * FSL SoC setup code
  3. *
  4. * Maintained by Kumar Gala (see MAINTAINERS for contact information)
  5. *
  6. * 2006 (c) MontaVista Software, Inc.
  7. * Vitaly Bordug <vbordug@ru.mvista.com>
  8. *
  9. * This program is free software; you can redistribute it and/or modify it
  10. * under the terms of the GNU General Public License as published by the
  11. * Free Software Foundation; either version 2 of the License, or (at your
  12. * option) any later version.
  13. */
  14. #include <linux/stddef.h>
  15. #include <linux/kernel.h>
  16. #include <linux/init.h>
  17. #include <linux/errno.h>
  18. #include <linux/major.h>
  19. #include <linux/delay.h>
  20. #include <linux/irq.h>
  21. #include <linux/module.h>
  22. #include <linux/device.h>
  23. #include <linux/platform_device.h>
  24. #include <linux/phy.h>
  25. #include <linux/fsl_devices.h>
  26. #include <linux/fs_enet_pd.h>
  27. #include <linux/fs_uart_pd.h>
  28. #include <asm/system.h>
  29. #include <asm/atomic.h>
  30. #include <asm/io.h>
  31. #include <asm/irq.h>
  32. #include <asm/time.h>
  33. #include <asm/prom.h>
  34. #include <sysdev/fsl_soc.h>
  35. #include <mm/mmu_decl.h>
  36. #include <asm/cpm2.h>
  37. extern void init_fcc_ioports(struct fs_platform_info*);
  38. extern void init_fec_ioports(struct fs_platform_info*);
  39. extern void init_smc_ioports(struct fs_uart_platform_info*);
  40. static phys_addr_t immrbase = -1;
  41. phys_addr_t get_immrbase(void)
  42. {
  43. struct device_node *soc;
  44. if (immrbase != -1)
  45. return immrbase;
  46. soc = of_find_node_by_type(NULL, "soc");
  47. if (soc) {
  48. unsigned int size;
  49. const void *prop = get_property(soc, "reg", &size);
  50. if (prop)
  51. immrbase = of_translate_address(soc, prop);
  52. of_node_put(soc);
  53. };
  54. return immrbase;
  55. }
  56. EXPORT_SYMBOL(get_immrbase);
  57. #if defined(CONFIG_CPM2) || defined(CONFIG_8xx)
  58. static u32 brgfreq = -1;
  59. u32 get_brgfreq(void)
  60. {
  61. struct device_node *node;
  62. if (brgfreq != -1)
  63. return brgfreq;
  64. node = of_find_node_by_type(NULL, "cpm");
  65. if (node) {
  66. unsigned int size;
  67. const unsigned int *prop = get_property(node, "brg-frequency",
  68. &size);
  69. if (prop)
  70. brgfreq = *prop;
  71. of_node_put(node);
  72. };
  73. return brgfreq;
  74. }
  75. EXPORT_SYMBOL(get_brgfreq);
  76. static u32 fs_baudrate = -1;
  77. u32 get_baudrate(void)
  78. {
  79. struct device_node *node;
  80. if (fs_baudrate != -1)
  81. return fs_baudrate;
  82. node = of_find_node_by_type(NULL, "serial");
  83. if (node) {
  84. unsigned int size;
  85. const unsigned int *prop = get_property(node, "current-speed",
  86. &size);
  87. if (prop)
  88. fs_baudrate = *prop;
  89. of_node_put(node);
  90. };
  91. return fs_baudrate;
  92. }
  93. EXPORT_SYMBOL(get_baudrate);
  94. #endif /* CONFIG_CPM2 */
  95. static int __init gfar_mdio_of_init(void)
  96. {
  97. struct device_node *np;
  98. unsigned int i;
  99. struct platform_device *mdio_dev;
  100. struct resource res;
  101. int ret;
  102. for (np = NULL, i = 0;
  103. (np = of_find_compatible_node(np, "mdio", "gianfar")) != NULL;
  104. i++) {
  105. int k;
  106. struct device_node *child = NULL;
  107. struct gianfar_mdio_data mdio_data;
  108. memset(&res, 0, sizeof(res));
  109. memset(&mdio_data, 0, sizeof(mdio_data));
  110. ret = of_address_to_resource(np, 0, &res);
  111. if (ret)
  112. goto err;
  113. mdio_dev =
  114. platform_device_register_simple("fsl-gianfar_mdio",
  115. res.start, &res, 1);
  116. if (IS_ERR(mdio_dev)) {
  117. ret = PTR_ERR(mdio_dev);
  118. goto err;
  119. }
  120. for (k = 0; k < 32; k++)
  121. mdio_data.irq[k] = PHY_POLL;
  122. while ((child = of_get_next_child(np, child)) != NULL) {
  123. int irq = irq_of_parse_and_map(child, 0);
  124. if (irq != NO_IRQ) {
  125. const u32 *id = get_property(child, "reg", NULL);
  126. mdio_data.irq[*id] = irq;
  127. }
  128. }
  129. ret =
  130. platform_device_add_data(mdio_dev, &mdio_data,
  131. sizeof(struct gianfar_mdio_data));
  132. if (ret)
  133. goto unreg;
  134. }
  135. return 0;
  136. unreg:
  137. platform_device_unregister(mdio_dev);
  138. err:
  139. return ret;
  140. }
  141. arch_initcall(gfar_mdio_of_init);
  142. static const char *gfar_tx_intr = "tx";
  143. static const char *gfar_rx_intr = "rx";
  144. static const char *gfar_err_intr = "error";
  145. static int __init gfar_of_init(void)
  146. {
  147. struct device_node *np;
  148. unsigned int i;
  149. struct platform_device *gfar_dev;
  150. struct resource res;
  151. int ret;
  152. for (np = NULL, i = 0;
  153. (np = of_find_compatible_node(np, "network", "gianfar")) != NULL;
  154. i++) {
  155. struct resource r[4];
  156. struct device_node *phy, *mdio;
  157. struct gianfar_platform_data gfar_data;
  158. const unsigned int *id;
  159. const char *model;
  160. const void *mac_addr;
  161. const phandle *ph;
  162. int n_res = 2;
  163. memset(r, 0, sizeof(r));
  164. memset(&gfar_data, 0, sizeof(gfar_data));
  165. ret = of_address_to_resource(np, 0, &r[0]);
  166. if (ret)
  167. goto err;
  168. of_irq_to_resource(np, 0, &r[1]);
  169. model = get_property(np, "model", NULL);
  170. /* If we aren't the FEC we have multiple interrupts */
  171. if (model && strcasecmp(model, "FEC")) {
  172. r[1].name = gfar_tx_intr;
  173. r[2].name = gfar_rx_intr;
  174. of_irq_to_resource(np, 1, &r[2]);
  175. r[3].name = gfar_err_intr;
  176. of_irq_to_resource(np, 2, &r[3]);
  177. n_res += 2;
  178. }
  179. gfar_dev =
  180. platform_device_register_simple("fsl-gianfar", i, &r[0],
  181. n_res);
  182. if (IS_ERR(gfar_dev)) {
  183. ret = PTR_ERR(gfar_dev);
  184. goto err;
  185. }
  186. mac_addr = get_property(np, "local-mac-address", NULL);
  187. if (mac_addr == NULL)
  188. mac_addr = get_property(np, "mac-address", NULL);
  189. if (mac_addr == NULL) {
  190. /* Obsolete */
  191. mac_addr = get_property(np, "address", NULL);
  192. }
  193. if (mac_addr)
  194. memcpy(gfar_data.mac_addr, mac_addr, 6);
  195. if (model && !strcasecmp(model, "TSEC"))
  196. gfar_data.device_flags =
  197. FSL_GIANFAR_DEV_HAS_GIGABIT |
  198. FSL_GIANFAR_DEV_HAS_COALESCE |
  199. FSL_GIANFAR_DEV_HAS_RMON |
  200. FSL_GIANFAR_DEV_HAS_MULTI_INTR;
  201. if (model && !strcasecmp(model, "eTSEC"))
  202. gfar_data.device_flags =
  203. FSL_GIANFAR_DEV_HAS_GIGABIT |
  204. FSL_GIANFAR_DEV_HAS_COALESCE |
  205. FSL_GIANFAR_DEV_HAS_RMON |
  206. FSL_GIANFAR_DEV_HAS_MULTI_INTR |
  207. FSL_GIANFAR_DEV_HAS_CSUM |
  208. FSL_GIANFAR_DEV_HAS_VLAN |
  209. FSL_GIANFAR_DEV_HAS_EXTENDED_HASH;
  210. ph = get_property(np, "phy-handle", NULL);
  211. phy = of_find_node_by_phandle(*ph);
  212. if (phy == NULL) {
  213. ret = -ENODEV;
  214. goto unreg;
  215. }
  216. mdio = of_get_parent(phy);
  217. id = get_property(phy, "reg", NULL);
  218. ret = of_address_to_resource(mdio, 0, &res);
  219. if (ret) {
  220. of_node_put(phy);
  221. of_node_put(mdio);
  222. goto unreg;
  223. }
  224. gfar_data.phy_id = *id;
  225. gfar_data.bus_id = res.start;
  226. of_node_put(phy);
  227. of_node_put(mdio);
  228. ret =
  229. platform_device_add_data(gfar_dev, &gfar_data,
  230. sizeof(struct
  231. gianfar_platform_data));
  232. if (ret)
  233. goto unreg;
  234. }
  235. return 0;
  236. unreg:
  237. platform_device_unregister(gfar_dev);
  238. err:
  239. return ret;
  240. }
  241. arch_initcall(gfar_of_init);
  242. static int __init fsl_i2c_of_init(void)
  243. {
  244. struct device_node *np;
  245. unsigned int i;
  246. struct platform_device *i2c_dev;
  247. int ret;
  248. for (np = NULL, i = 0;
  249. (np = of_find_compatible_node(np, "i2c", "fsl-i2c")) != NULL;
  250. i++) {
  251. struct resource r[2];
  252. struct fsl_i2c_platform_data i2c_data;
  253. const unsigned char *flags = NULL;
  254. memset(&r, 0, sizeof(r));
  255. memset(&i2c_data, 0, sizeof(i2c_data));
  256. ret = of_address_to_resource(np, 0, &r[0]);
  257. if (ret)
  258. goto err;
  259. of_irq_to_resource(np, 0, &r[1]);
  260. i2c_dev = platform_device_register_simple("fsl-i2c", i, r, 2);
  261. if (IS_ERR(i2c_dev)) {
  262. ret = PTR_ERR(i2c_dev);
  263. goto err;
  264. }
  265. i2c_data.device_flags = 0;
  266. flags = get_property(np, "dfsrr", NULL);
  267. if (flags)
  268. i2c_data.device_flags |= FSL_I2C_DEV_SEPARATE_DFSRR;
  269. flags = get_property(np, "fsl5200-clocking", NULL);
  270. if (flags)
  271. i2c_data.device_flags |= FSL_I2C_DEV_CLOCK_5200;
  272. ret =
  273. platform_device_add_data(i2c_dev, &i2c_data,
  274. sizeof(struct
  275. fsl_i2c_platform_data));
  276. if (ret)
  277. goto unreg;
  278. }
  279. return 0;
  280. unreg:
  281. platform_device_unregister(i2c_dev);
  282. err:
  283. return ret;
  284. }
  285. arch_initcall(fsl_i2c_of_init);
  286. #ifdef CONFIG_PPC_83xx
  287. static int __init mpc83xx_wdt_init(void)
  288. {
  289. struct resource r;
  290. struct device_node *soc, *np;
  291. struct platform_device *dev;
  292. const unsigned int *freq;
  293. int ret;
  294. np = of_find_compatible_node(NULL, "watchdog", "mpc83xx_wdt");
  295. if (!np) {
  296. ret = -ENODEV;
  297. goto nodev;
  298. }
  299. soc = of_find_node_by_type(NULL, "soc");
  300. if (!soc) {
  301. ret = -ENODEV;
  302. goto nosoc;
  303. }
  304. freq = get_property(soc, "bus-frequency", NULL);
  305. if (!freq) {
  306. ret = -ENODEV;
  307. goto err;
  308. }
  309. memset(&r, 0, sizeof(r));
  310. ret = of_address_to_resource(np, 0, &r);
  311. if (ret)
  312. goto err;
  313. dev = platform_device_register_simple("mpc83xx_wdt", 0, &r, 1);
  314. if (IS_ERR(dev)) {
  315. ret = PTR_ERR(dev);
  316. goto err;
  317. }
  318. ret = platform_device_add_data(dev, freq, sizeof(int));
  319. if (ret)
  320. goto unreg;
  321. of_node_put(soc);
  322. of_node_put(np);
  323. return 0;
  324. unreg:
  325. platform_device_unregister(dev);
  326. err:
  327. of_node_put(soc);
  328. nosoc:
  329. of_node_put(np);
  330. nodev:
  331. return ret;
  332. }
  333. arch_initcall(mpc83xx_wdt_init);
  334. #endif
  335. static enum fsl_usb2_phy_modes determine_usb_phy(const char *phy_type)
  336. {
  337. if (!phy_type)
  338. return FSL_USB2_PHY_NONE;
  339. if (!strcasecmp(phy_type, "ulpi"))
  340. return FSL_USB2_PHY_ULPI;
  341. if (!strcasecmp(phy_type, "utmi"))
  342. return FSL_USB2_PHY_UTMI;
  343. if (!strcasecmp(phy_type, "utmi_wide"))
  344. return FSL_USB2_PHY_UTMI_WIDE;
  345. if (!strcasecmp(phy_type, "serial"))
  346. return FSL_USB2_PHY_SERIAL;
  347. return FSL_USB2_PHY_NONE;
  348. }
  349. static int __init fsl_usb_of_init(void)
  350. {
  351. struct device_node *np;
  352. unsigned int i;
  353. struct platform_device *usb_dev_mph = NULL, *usb_dev_dr = NULL;
  354. int ret;
  355. for (np = NULL, i = 0;
  356. (np = of_find_compatible_node(np, "usb", "fsl-usb2-mph")) != NULL;
  357. i++) {
  358. struct resource r[2];
  359. struct fsl_usb2_platform_data usb_data;
  360. const unsigned char *prop = NULL;
  361. memset(&r, 0, sizeof(r));
  362. memset(&usb_data, 0, sizeof(usb_data));
  363. ret = of_address_to_resource(np, 0, &r[0]);
  364. if (ret)
  365. goto err;
  366. of_irq_to_resource(np, 0, &r[1]);
  367. usb_dev_mph =
  368. platform_device_register_simple("fsl-ehci", i, r, 2);
  369. if (IS_ERR(usb_dev_mph)) {
  370. ret = PTR_ERR(usb_dev_mph);
  371. goto err;
  372. }
  373. usb_dev_mph->dev.coherent_dma_mask = 0xffffffffUL;
  374. usb_dev_mph->dev.dma_mask = &usb_dev_mph->dev.coherent_dma_mask;
  375. usb_data.operating_mode = FSL_USB2_MPH_HOST;
  376. prop = get_property(np, "port0", NULL);
  377. if (prop)
  378. usb_data.port_enables |= FSL_USB2_PORT0_ENABLED;
  379. prop = get_property(np, "port1", NULL);
  380. if (prop)
  381. usb_data.port_enables |= FSL_USB2_PORT1_ENABLED;
  382. prop = get_property(np, "phy_type", NULL);
  383. usb_data.phy_mode = determine_usb_phy(prop);
  384. ret =
  385. platform_device_add_data(usb_dev_mph, &usb_data,
  386. sizeof(struct
  387. fsl_usb2_platform_data));
  388. if (ret)
  389. goto unreg_mph;
  390. }
  391. for (np = NULL;
  392. (np = of_find_compatible_node(np, "usb", "fsl-usb2-dr")) != NULL;
  393. i++) {
  394. struct resource r[2];
  395. struct fsl_usb2_platform_data usb_data;
  396. const unsigned char *prop = NULL;
  397. memset(&r, 0, sizeof(r));
  398. memset(&usb_data, 0, sizeof(usb_data));
  399. ret = of_address_to_resource(np, 0, &r[0]);
  400. if (ret)
  401. goto unreg_mph;
  402. of_irq_to_resource(np, 0, &r[1]);
  403. usb_dev_dr =
  404. platform_device_register_simple("fsl-ehci", i, r, 2);
  405. if (IS_ERR(usb_dev_dr)) {
  406. ret = PTR_ERR(usb_dev_dr);
  407. goto err;
  408. }
  409. usb_dev_dr->dev.coherent_dma_mask = 0xffffffffUL;
  410. usb_dev_dr->dev.dma_mask = &usb_dev_dr->dev.coherent_dma_mask;
  411. usb_data.operating_mode = FSL_USB2_DR_HOST;
  412. prop = get_property(np, "phy_type", NULL);
  413. usb_data.phy_mode = determine_usb_phy(prop);
  414. ret =
  415. platform_device_add_data(usb_dev_dr, &usb_data,
  416. sizeof(struct
  417. fsl_usb2_platform_data));
  418. if (ret)
  419. goto unreg_dr;
  420. }
  421. return 0;
  422. unreg_dr:
  423. if (usb_dev_dr)
  424. platform_device_unregister(usb_dev_dr);
  425. unreg_mph:
  426. if (usb_dev_mph)
  427. platform_device_unregister(usb_dev_mph);
  428. err:
  429. return ret;
  430. }
  431. arch_initcall(fsl_usb_of_init);
  432. #ifdef CONFIG_CPM2
  433. extern void init_scc_ioports(struct fs_uart_platform_info*);
  434. static const char fcc_regs[] = "fcc_regs";
  435. static const char fcc_regs_c[] = "fcc_regs_c";
  436. static const char fcc_pram[] = "fcc_pram";
  437. static char bus_id[9][BUS_ID_SIZE];
  438. static int __init fs_enet_of_init(void)
  439. {
  440. struct device_node *np;
  441. unsigned int i;
  442. struct platform_device *fs_enet_dev;
  443. struct resource res;
  444. int ret;
  445. for (np = NULL, i = 0;
  446. (np = of_find_compatible_node(np, "network", "fs_enet")) != NULL;
  447. i++) {
  448. struct resource r[4];
  449. struct device_node *phy, *mdio;
  450. struct fs_platform_info fs_enet_data;
  451. const unsigned int *id, *phy_addr, *phy_irq;
  452. const void *mac_addr;
  453. const phandle *ph;
  454. const char *model;
  455. memset(r, 0, sizeof(r));
  456. memset(&fs_enet_data, 0, sizeof(fs_enet_data));
  457. ret = of_address_to_resource(np, 0, &r[0]);
  458. if (ret)
  459. goto err;
  460. r[0].name = fcc_regs;
  461. ret = of_address_to_resource(np, 1, &r[1]);
  462. if (ret)
  463. goto err;
  464. r[1].name = fcc_pram;
  465. ret = of_address_to_resource(np, 2, &r[2]);
  466. if (ret)
  467. goto err;
  468. r[2].name = fcc_regs_c;
  469. fs_enet_data.fcc_regs_c = r[2].start;
  470. of_irq_to_resource(np, 0, &r[3]);
  471. fs_enet_dev =
  472. platform_device_register_simple("fsl-cpm-fcc", i, &r[0], 4);
  473. if (IS_ERR(fs_enet_dev)) {
  474. ret = PTR_ERR(fs_enet_dev);
  475. goto err;
  476. }
  477. model = get_property(np, "model", NULL);
  478. if (model == NULL) {
  479. ret = -ENODEV;
  480. goto unreg;
  481. }
  482. mac_addr = get_property(np, "mac-address", NULL);
  483. memcpy(fs_enet_data.macaddr, mac_addr, 6);
  484. ph = get_property(np, "phy-handle", NULL);
  485. phy = of_find_node_by_phandle(*ph);
  486. if (phy == NULL) {
  487. ret = -ENODEV;
  488. goto unreg;
  489. }
  490. phy_addr = get_property(phy, "reg", NULL);
  491. fs_enet_data.phy_addr = *phy_addr;
  492. phy_irq = get_property(phy, "interrupts", NULL);
  493. id = get_property(np, "device-id", NULL);
  494. fs_enet_data.fs_no = *id;
  495. strcpy(fs_enet_data.fs_type, model);
  496. mdio = of_get_parent(phy);
  497. ret = of_address_to_resource(mdio, 0, &res);
  498. if (ret) {
  499. of_node_put(phy);
  500. of_node_put(mdio);
  501. goto unreg;
  502. }
  503. fs_enet_data.clk_rx = *((u32 *) get_property(np, "rx-clock", NULL));
  504. fs_enet_data.clk_tx = *((u32 *) get_property(np, "tx-clock", NULL));
  505. if (strstr(model, "FCC")) {
  506. int fcc_index = *id - 1;
  507. const unsigned char *mdio_bb_prop;
  508. fs_enet_data.dpram_offset = (u32)cpm_dpram_addr(0);
  509. fs_enet_data.rx_ring = 32;
  510. fs_enet_data.tx_ring = 32;
  511. fs_enet_data.rx_copybreak = 240;
  512. fs_enet_data.use_napi = 0;
  513. fs_enet_data.napi_weight = 17;
  514. fs_enet_data.mem_offset = FCC_MEM_OFFSET(fcc_index);
  515. fs_enet_data.cp_page = CPM_CR_FCC_PAGE(fcc_index);
  516. fs_enet_data.cp_block = CPM_CR_FCC_SBLOCK(fcc_index);
  517. snprintf((char*)&bus_id[(*id)], BUS_ID_SIZE, "%x:%02x",
  518. (u32)res.start, fs_enet_data.phy_addr);
  519. fs_enet_data.bus_id = (char*)&bus_id[(*id)];
  520. fs_enet_data.init_ioports = init_fcc_ioports;
  521. mdio_bb_prop = get_property(phy, "bitbang", NULL);
  522. if (mdio_bb_prop) {
  523. struct platform_device *fs_enet_mdio_bb_dev;
  524. struct fs_mii_bb_platform_info fs_enet_mdio_bb_data;
  525. fs_enet_mdio_bb_dev =
  526. platform_device_register_simple("fsl-bb-mdio",
  527. i, NULL, 0);
  528. memset(&fs_enet_mdio_bb_data, 0,
  529. sizeof(struct fs_mii_bb_platform_info));
  530. fs_enet_mdio_bb_data.mdio_dat.bit =
  531. mdio_bb_prop[0];
  532. fs_enet_mdio_bb_data.mdio_dir.bit =
  533. mdio_bb_prop[1];
  534. fs_enet_mdio_bb_data.mdc_dat.bit =
  535. mdio_bb_prop[2];
  536. fs_enet_mdio_bb_data.mdio_port =
  537. mdio_bb_prop[3];
  538. fs_enet_mdio_bb_data.mdc_port =
  539. mdio_bb_prop[4];
  540. fs_enet_mdio_bb_data.delay =
  541. mdio_bb_prop[5];
  542. fs_enet_mdio_bb_data.irq[0] = phy_irq[0];
  543. fs_enet_mdio_bb_data.irq[1] = -1;
  544. fs_enet_mdio_bb_data.irq[2] = -1;
  545. fs_enet_mdio_bb_data.irq[3] = phy_irq[0];
  546. fs_enet_mdio_bb_data.irq[31] = -1;
  547. fs_enet_mdio_bb_data.mdio_dat.offset =
  548. (u32)&cpm2_immr->im_ioport.iop_pdatc;
  549. fs_enet_mdio_bb_data.mdio_dir.offset =
  550. (u32)&cpm2_immr->im_ioport.iop_pdirc;
  551. fs_enet_mdio_bb_data.mdc_dat.offset =
  552. (u32)&cpm2_immr->im_ioport.iop_pdatc;
  553. ret = platform_device_add_data(
  554. fs_enet_mdio_bb_dev,
  555. &fs_enet_mdio_bb_data,
  556. sizeof(struct fs_mii_bb_platform_info));
  557. if (ret)
  558. goto unreg;
  559. }
  560. of_node_put(phy);
  561. of_node_put(mdio);
  562. ret = platform_device_add_data(fs_enet_dev, &fs_enet_data,
  563. sizeof(struct
  564. fs_platform_info));
  565. if (ret)
  566. goto unreg;
  567. }
  568. }
  569. return 0;
  570. unreg:
  571. platform_device_unregister(fs_enet_dev);
  572. err:
  573. return ret;
  574. }
  575. arch_initcall(fs_enet_of_init);
  576. static const char scc_regs[] = "regs";
  577. static const char scc_pram[] = "pram";
  578. static int __init cpm_uart_of_init(void)
  579. {
  580. struct device_node *np;
  581. unsigned int i;
  582. struct platform_device *cpm_uart_dev;
  583. int ret;
  584. for (np = NULL, i = 0;
  585. (np = of_find_compatible_node(np, "serial", "cpm_uart")) != NULL;
  586. i++) {
  587. struct resource r[3];
  588. struct fs_uart_platform_info cpm_uart_data;
  589. const int *id;
  590. const char *model;
  591. memset(r, 0, sizeof(r));
  592. memset(&cpm_uart_data, 0, sizeof(cpm_uart_data));
  593. ret = of_address_to_resource(np, 0, &r[0]);
  594. if (ret)
  595. goto err;
  596. r[0].name = scc_regs;
  597. ret = of_address_to_resource(np, 1, &r[1]);
  598. if (ret)
  599. goto err;
  600. r[1].name = scc_pram;
  601. of_irq_to_resource(np, 0, &r[2]);
  602. cpm_uart_dev =
  603. platform_device_register_simple("fsl-cpm-scc:uart", i, &r[0], 3);
  604. if (IS_ERR(cpm_uart_dev)) {
  605. ret = PTR_ERR(cpm_uart_dev);
  606. goto err;
  607. }
  608. id = get_property(np, "device-id", NULL);
  609. cpm_uart_data.fs_no = *id;
  610. model = (char*)get_property(np, "model", NULL);
  611. strcpy(cpm_uart_data.fs_type, model);
  612. cpm_uart_data.uart_clk = ppc_proc_freq;
  613. cpm_uart_data.tx_num_fifo = 4;
  614. cpm_uart_data.tx_buf_size = 32;
  615. cpm_uart_data.rx_num_fifo = 4;
  616. cpm_uart_data.rx_buf_size = 32;
  617. cpm_uart_data.clk_rx = *((u32 *) get_property(np, "rx-clock", NULL));
  618. cpm_uart_data.clk_tx = *((u32 *) get_property(np, "tx-clock", NULL));
  619. ret =
  620. platform_device_add_data(cpm_uart_dev, &cpm_uart_data,
  621. sizeof(struct
  622. fs_uart_platform_info));
  623. if (ret)
  624. goto unreg;
  625. }
  626. return 0;
  627. unreg:
  628. platform_device_unregister(cpm_uart_dev);
  629. err:
  630. return ret;
  631. }
  632. arch_initcall(cpm_uart_of_init);
  633. #endif /* CONFIG_CPM2 */
  634. #ifdef CONFIG_8xx
  635. extern void init_scc_ioports(struct fs_platform_info*);
  636. extern int platform_device_skip(char *model, int id);
  637. static int __init fs_enet_mdio_of_init(void)
  638. {
  639. struct device_node *np;
  640. unsigned int i;
  641. struct platform_device *mdio_dev;
  642. struct resource res;
  643. int ret;
  644. for (np = NULL, i = 0;
  645. (np = of_find_compatible_node(np, "mdio", "fs_enet")) != NULL;
  646. i++) {
  647. struct fs_mii_fec_platform_info mdio_data;
  648. memset(&res, 0, sizeof(res));
  649. memset(&mdio_data, 0, sizeof(mdio_data));
  650. ret = of_address_to_resource(np, 0, &res);
  651. if (ret)
  652. goto err;
  653. mdio_dev =
  654. platform_device_register_simple("fsl-cpm-fec-mdio",
  655. res.start, &res, 1);
  656. if (IS_ERR(mdio_dev)) {
  657. ret = PTR_ERR(mdio_dev);
  658. goto err;
  659. }
  660. mdio_data.mii_speed = ((((ppc_proc_freq + 4999999) / 2500000) / 2) & 0x3F) << 1;
  661. ret =
  662. platform_device_add_data(mdio_dev, &mdio_data,
  663. sizeof(struct fs_mii_fec_platform_info));
  664. if (ret)
  665. goto unreg;
  666. }
  667. return 0;
  668. unreg:
  669. platform_device_unregister(mdio_dev);
  670. err:
  671. return ret;
  672. }
  673. arch_initcall(fs_enet_mdio_of_init);
  674. static const char *enet_regs = "regs";
  675. static const char *enet_pram = "pram";
  676. static const char *enet_irq = "interrupt";
  677. static char bus_id[9][BUS_ID_SIZE];
  678. static int __init fs_enet_of_init(void)
  679. {
  680. struct device_node *np;
  681. unsigned int i;
  682. struct platform_device *fs_enet_dev = NULL;
  683. struct resource res;
  684. int ret;
  685. for (np = NULL, i = 0;
  686. (np = of_find_compatible_node(np, "network", "fs_enet")) != NULL;
  687. i++) {
  688. struct resource r[4];
  689. struct device_node *phy = NULL, *mdio = NULL;
  690. struct fs_platform_info fs_enet_data;
  691. unsigned int *id, *phy_addr;
  692. void *mac_addr;
  693. phandle *ph;
  694. char *model;
  695. memset(r, 0, sizeof(r));
  696. memset(&fs_enet_data, 0, sizeof(fs_enet_data));
  697. model = (char *)get_property(np, "model", NULL);
  698. if (model == NULL) {
  699. ret = -ENODEV;
  700. goto unreg;
  701. }
  702. id = (u32 *) get_property(np, "device-id", NULL);
  703. fs_enet_data.fs_no = *id;
  704. if (platform_device_skip(model, *id))
  705. continue;
  706. ret = of_address_to_resource(np, 0, &r[0]);
  707. if (ret)
  708. goto err;
  709. r[0].name = enet_regs;
  710. mac_addr = (void *)get_property(np, "mac-address", NULL);
  711. memcpy(fs_enet_data.macaddr, mac_addr, 6);
  712. ph = (phandle *) get_property(np, "phy-handle", NULL);
  713. if (ph != NULL)
  714. phy = of_find_node_by_phandle(*ph);
  715. if (phy != NULL) {
  716. phy_addr = (u32 *) get_property(phy, "reg", NULL);
  717. fs_enet_data.phy_addr = *phy_addr;
  718. fs_enet_data.has_phy = 1;
  719. mdio = of_get_parent(phy);
  720. ret = of_address_to_resource(mdio, 0, &res);
  721. if (ret) {
  722. of_node_put(phy);
  723. of_node_put(mdio);
  724. goto unreg;
  725. }
  726. }
  727. model = (char*)get_property(np, "model", NULL);
  728. strcpy(fs_enet_data.fs_type, model);
  729. if (strstr(model, "FEC")) {
  730. r[1].start = r[1].end = irq_of_parse_and_map(np, 0);
  731. r[1].flags = IORESOURCE_IRQ;
  732. r[1].name = enet_irq;
  733. fs_enet_dev =
  734. platform_device_register_simple("fsl-cpm-fec", i, &r[0], 2);
  735. if (IS_ERR(fs_enet_dev)) {
  736. ret = PTR_ERR(fs_enet_dev);
  737. goto err;
  738. }
  739. fs_enet_data.rx_ring = 128;
  740. fs_enet_data.tx_ring = 16;
  741. fs_enet_data.rx_copybreak = 240;
  742. fs_enet_data.use_napi = 1;
  743. fs_enet_data.napi_weight = 17;
  744. snprintf((char*)&bus_id[i], BUS_ID_SIZE, "%x:%02x",
  745. (u32)res.start, fs_enet_data.phy_addr);
  746. fs_enet_data.bus_id = (char*)&bus_id[i];
  747. fs_enet_data.init_ioports = init_fec_ioports;
  748. }
  749. if (strstr(model, "SCC")) {
  750. ret = of_address_to_resource(np, 1, &r[1]);
  751. if (ret)
  752. goto err;
  753. r[1].name = enet_pram;
  754. r[2].start = r[2].end = irq_of_parse_and_map(np, 0);
  755. r[2].flags = IORESOURCE_IRQ;
  756. r[2].name = enet_irq;
  757. fs_enet_dev =
  758. platform_device_register_simple("fsl-cpm-scc", i, &r[0], 3);
  759. if (IS_ERR(fs_enet_dev)) {
  760. ret = PTR_ERR(fs_enet_dev);
  761. goto err;
  762. }
  763. fs_enet_data.rx_ring = 64;
  764. fs_enet_data.tx_ring = 8;
  765. fs_enet_data.rx_copybreak = 240;
  766. fs_enet_data.use_napi = 1;
  767. fs_enet_data.napi_weight = 17;
  768. snprintf((char*)&bus_id[i], BUS_ID_SIZE, "%s", "fixed@10:1");
  769. fs_enet_data.bus_id = (char*)&bus_id[i];
  770. fs_enet_data.init_ioports = init_scc_ioports;
  771. }
  772. of_node_put(phy);
  773. of_node_put(mdio);
  774. ret = platform_device_add_data(fs_enet_dev, &fs_enet_data,
  775. sizeof(struct
  776. fs_platform_info));
  777. if (ret)
  778. goto unreg;
  779. }
  780. return 0;
  781. unreg:
  782. platform_device_unregister(fs_enet_dev);
  783. err:
  784. return ret;
  785. }
  786. arch_initcall(fs_enet_of_init);
  787. static const char *smc_regs = "regs";
  788. static const char *smc_pram = "pram";
  789. static int __init cpm_smc_uart_of_init(void)
  790. {
  791. struct device_node *np;
  792. unsigned int i;
  793. struct platform_device *cpm_uart_dev;
  794. int ret;
  795. for (np = NULL, i = 0;
  796. (np = of_find_compatible_node(np, "serial", "cpm_uart")) != NULL;
  797. i++) {
  798. struct resource r[3];
  799. struct fs_uart_platform_info cpm_uart_data;
  800. int *id;
  801. char *model;
  802. memset(r, 0, sizeof(r));
  803. memset(&cpm_uart_data, 0, sizeof(cpm_uart_data));
  804. ret = of_address_to_resource(np, 0, &r[0]);
  805. if (ret)
  806. goto err;
  807. r[0].name = smc_regs;
  808. ret = of_address_to_resource(np, 1, &r[1]);
  809. if (ret)
  810. goto err;
  811. r[1].name = smc_pram;
  812. r[2].start = r[2].end = irq_of_parse_and_map(np, 0);
  813. r[2].flags = IORESOURCE_IRQ;
  814. cpm_uart_dev =
  815. platform_device_register_simple("fsl-cpm-smc:uart", i, &r[0], 3);
  816. if (IS_ERR(cpm_uart_dev)) {
  817. ret = PTR_ERR(cpm_uart_dev);
  818. goto err;
  819. }
  820. model = (char*)get_property(np, "model", NULL);
  821. strcpy(cpm_uart_data.fs_type, model);
  822. id = (int*)get_property(np, "device-id", NULL);
  823. cpm_uart_data.fs_no = *id;
  824. cpm_uart_data.uart_clk = ppc_proc_freq;
  825. cpm_uart_data.tx_num_fifo = 4;
  826. cpm_uart_data.tx_buf_size = 32;
  827. cpm_uart_data.rx_num_fifo = 4;
  828. cpm_uart_data.rx_buf_size = 32;
  829. ret =
  830. platform_device_add_data(cpm_uart_dev, &cpm_uart_data,
  831. sizeof(struct
  832. fs_uart_platform_info));
  833. if (ret)
  834. goto unreg;
  835. }
  836. return 0;
  837. unreg:
  838. platform_device_unregister(cpm_uart_dev);
  839. err:
  840. return ret;
  841. }
  842. arch_initcall(cpm_smc_uart_of_init);
  843. #endif /* CONFIG_8xx */