offb.c 19 KB

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  1. /*
  2. * linux/drivers/video/offb.c -- Open Firmware based frame buffer device
  3. *
  4. * Copyright (C) 1997 Geert Uytterhoeven
  5. *
  6. * This driver is partly based on the PowerMac console driver:
  7. *
  8. * Copyright (C) 1996 Paul Mackerras
  9. *
  10. * This file is subject to the terms and conditions of the GNU General Public
  11. * License. See the file COPYING in the main directory of this archive for
  12. * more details.
  13. */
  14. #include <linux/module.h>
  15. #include <linux/kernel.h>
  16. #include <linux/errno.h>
  17. #include <linux/string.h>
  18. #include <linux/mm.h>
  19. #include <linux/vmalloc.h>
  20. #include <linux/delay.h>
  21. #include <linux/of.h>
  22. #include <linux/of_address.h>
  23. #include <linux/interrupt.h>
  24. #include <linux/fb.h>
  25. #include <linux/init.h>
  26. #include <linux/ioport.h>
  27. #include <linux/pci.h>
  28. #include <asm/io.h>
  29. #ifdef CONFIG_PPC64
  30. #include <asm/pci-bridge.h>
  31. #endif
  32. #ifdef CONFIG_PPC32
  33. #include <asm/bootx.h>
  34. #endif
  35. #include "macmodes.h"
  36. /* Supported palette hacks */
  37. enum {
  38. cmap_unknown,
  39. cmap_m64, /* ATI Mach64 */
  40. cmap_r128, /* ATI Rage128 */
  41. cmap_M3A, /* ATI Rage Mobility M3 Head A */
  42. cmap_M3B, /* ATI Rage Mobility M3 Head B */
  43. cmap_radeon, /* ATI Radeon */
  44. cmap_gxt2000, /* IBM GXT2000 */
  45. cmap_avivo, /* ATI R5xx */
  46. };
  47. struct offb_par {
  48. volatile void __iomem *cmap_adr;
  49. volatile void __iomem *cmap_data;
  50. int cmap_type;
  51. int blanked;
  52. };
  53. struct offb_par default_par;
  54. #ifdef CONFIG_PPC32
  55. extern boot_infos_t *boot_infos;
  56. #endif
  57. /* Definitions used by the Avivo palette hack */
  58. #define AVIVO_DC_LUT_RW_SELECT 0x6480
  59. #define AVIVO_DC_LUT_RW_MODE 0x6484
  60. #define AVIVO_DC_LUT_RW_INDEX 0x6488
  61. #define AVIVO_DC_LUT_SEQ_COLOR 0x648c
  62. #define AVIVO_DC_LUT_PWL_DATA 0x6490
  63. #define AVIVO_DC_LUT_30_COLOR 0x6494
  64. #define AVIVO_DC_LUT_READ_PIPE_SELECT 0x6498
  65. #define AVIVO_DC_LUT_WRITE_EN_MASK 0x649c
  66. #define AVIVO_DC_LUT_AUTOFILL 0x64a0
  67. #define AVIVO_DC_LUTA_CONTROL 0x64c0
  68. #define AVIVO_DC_LUTA_BLACK_OFFSET_BLUE 0x64c4
  69. #define AVIVO_DC_LUTA_BLACK_OFFSET_GREEN 0x64c8
  70. #define AVIVO_DC_LUTA_BLACK_OFFSET_RED 0x64cc
  71. #define AVIVO_DC_LUTA_WHITE_OFFSET_BLUE 0x64d0
  72. #define AVIVO_DC_LUTA_WHITE_OFFSET_GREEN 0x64d4
  73. #define AVIVO_DC_LUTA_WHITE_OFFSET_RED 0x64d8
  74. #define AVIVO_DC_LUTB_CONTROL 0x6cc0
  75. #define AVIVO_DC_LUTB_BLACK_OFFSET_BLUE 0x6cc4
  76. #define AVIVO_DC_LUTB_BLACK_OFFSET_GREEN 0x6cc8
  77. #define AVIVO_DC_LUTB_BLACK_OFFSET_RED 0x6ccc
  78. #define AVIVO_DC_LUTB_WHITE_OFFSET_BLUE 0x6cd0
  79. #define AVIVO_DC_LUTB_WHITE_OFFSET_GREEN 0x6cd4
  80. #define AVIVO_DC_LUTB_WHITE_OFFSET_RED 0x6cd8
  81. /*
  82. * Set a single color register. The values supplied are already
  83. * rounded down to the hardware's capabilities (according to the
  84. * entries in the var structure). Return != 0 for invalid regno.
  85. */
  86. static int offb_setcolreg(u_int regno, u_int red, u_int green, u_int blue,
  87. u_int transp, struct fb_info *info)
  88. {
  89. struct offb_par *par = (struct offb_par *) info->par;
  90. int i, depth;
  91. u32 *pal = info->pseudo_palette;
  92. depth = info->var.bits_per_pixel;
  93. if (depth == 16)
  94. depth = (info->var.green.length == 5) ? 15 : 16;
  95. if (regno > 255 ||
  96. (depth == 16 && regno > 63) ||
  97. (depth == 15 && regno > 31))
  98. return 1;
  99. if (regno < 16) {
  100. switch (depth) {
  101. case 15:
  102. pal[regno] = (regno << 10) | (regno << 5) | regno;
  103. break;
  104. case 16:
  105. pal[regno] = (regno << 11) | (regno << 5) | regno;
  106. break;
  107. case 24:
  108. pal[regno] = (regno << 16) | (regno << 8) | regno;
  109. break;
  110. case 32:
  111. i = (regno << 8) | regno;
  112. pal[regno] = (i << 16) | i;
  113. break;
  114. }
  115. }
  116. red >>= 8;
  117. green >>= 8;
  118. blue >>= 8;
  119. if (!par->cmap_adr)
  120. return 0;
  121. switch (par->cmap_type) {
  122. case cmap_m64:
  123. writeb(regno, par->cmap_adr);
  124. writeb(red, par->cmap_data);
  125. writeb(green, par->cmap_data);
  126. writeb(blue, par->cmap_data);
  127. break;
  128. case cmap_M3A:
  129. /* Clear PALETTE_ACCESS_CNTL in DAC_CNTL */
  130. out_le32(par->cmap_adr + 0x58,
  131. in_le32(par->cmap_adr + 0x58) & ~0x20);
  132. case cmap_r128:
  133. /* Set palette index & data */
  134. out_8(par->cmap_adr + 0xb0, regno);
  135. out_le32(par->cmap_adr + 0xb4,
  136. (red << 16 | green << 8 | blue));
  137. break;
  138. case cmap_M3B:
  139. /* Set PALETTE_ACCESS_CNTL in DAC_CNTL */
  140. out_le32(par->cmap_adr + 0x58,
  141. in_le32(par->cmap_adr + 0x58) | 0x20);
  142. /* Set palette index & data */
  143. out_8(par->cmap_adr + 0xb0, regno);
  144. out_le32(par->cmap_adr + 0xb4, (red << 16 | green << 8 | blue));
  145. break;
  146. case cmap_radeon:
  147. /* Set palette index & data (could be smarter) */
  148. out_8(par->cmap_adr + 0xb0, regno);
  149. out_le32(par->cmap_adr + 0xb4, (red << 16 | green << 8 | blue));
  150. break;
  151. case cmap_gxt2000:
  152. out_le32(((unsigned __iomem *) par->cmap_adr) + regno,
  153. (red << 16 | green << 8 | blue));
  154. break;
  155. case cmap_avivo:
  156. /* Write to both LUTs for now */
  157. writel(1, par->cmap_adr + AVIVO_DC_LUT_RW_SELECT);
  158. writeb(regno, par->cmap_adr + AVIVO_DC_LUT_RW_INDEX);
  159. writel(((red) << 22) | ((green) << 12) | ((blue) << 2),
  160. par->cmap_adr + AVIVO_DC_LUT_30_COLOR);
  161. writel(0, par->cmap_adr + AVIVO_DC_LUT_RW_SELECT);
  162. writeb(regno, par->cmap_adr + AVIVO_DC_LUT_RW_INDEX);
  163. writel(((red) << 22) | ((green) << 12) | ((blue) << 2),
  164. par->cmap_adr + AVIVO_DC_LUT_30_COLOR);
  165. break;
  166. }
  167. return 0;
  168. }
  169. /*
  170. * Blank the display.
  171. */
  172. static int offb_blank(int blank, struct fb_info *info)
  173. {
  174. struct offb_par *par = (struct offb_par *) info->par;
  175. int i, j;
  176. if (!par->cmap_adr)
  177. return 0;
  178. if (!par->blanked)
  179. if (!blank)
  180. return 0;
  181. par->blanked = blank;
  182. if (blank)
  183. for (i = 0; i < 256; i++) {
  184. switch (par->cmap_type) {
  185. case cmap_m64:
  186. writeb(i, par->cmap_adr);
  187. for (j = 0; j < 3; j++)
  188. writeb(0, par->cmap_data);
  189. break;
  190. case cmap_M3A:
  191. /* Clear PALETTE_ACCESS_CNTL in DAC_CNTL */
  192. out_le32(par->cmap_adr + 0x58,
  193. in_le32(par->cmap_adr + 0x58) & ~0x20);
  194. case cmap_r128:
  195. /* Set palette index & data */
  196. out_8(par->cmap_adr + 0xb0, i);
  197. out_le32(par->cmap_adr + 0xb4, 0);
  198. break;
  199. case cmap_M3B:
  200. /* Set PALETTE_ACCESS_CNTL in DAC_CNTL */
  201. out_le32(par->cmap_adr + 0x58,
  202. in_le32(par->cmap_adr + 0x58) | 0x20);
  203. /* Set palette index & data */
  204. out_8(par->cmap_adr + 0xb0, i);
  205. out_le32(par->cmap_adr + 0xb4, 0);
  206. break;
  207. case cmap_radeon:
  208. out_8(par->cmap_adr + 0xb0, i);
  209. out_le32(par->cmap_adr + 0xb4, 0);
  210. break;
  211. case cmap_gxt2000:
  212. out_le32(((unsigned __iomem *) par->cmap_adr) + i,
  213. 0);
  214. break;
  215. case cmap_avivo:
  216. writel(1, par->cmap_adr + AVIVO_DC_LUT_RW_SELECT);
  217. writeb(i, par->cmap_adr + AVIVO_DC_LUT_RW_INDEX);
  218. writel(0, par->cmap_adr + AVIVO_DC_LUT_30_COLOR);
  219. writel(0, par->cmap_adr + AVIVO_DC_LUT_RW_SELECT);
  220. writeb(i, par->cmap_adr + AVIVO_DC_LUT_RW_INDEX);
  221. writel(0, par->cmap_adr + AVIVO_DC_LUT_30_COLOR);
  222. break;
  223. }
  224. } else
  225. fb_set_cmap(&info->cmap, info);
  226. return 0;
  227. }
  228. static int offb_set_par(struct fb_info *info)
  229. {
  230. struct offb_par *par = (struct offb_par *) info->par;
  231. /* On avivo, initialize palette control */
  232. if (par->cmap_type == cmap_avivo) {
  233. writel(0, par->cmap_adr + AVIVO_DC_LUTA_CONTROL);
  234. writel(0, par->cmap_adr + AVIVO_DC_LUTA_BLACK_OFFSET_BLUE);
  235. writel(0, par->cmap_adr + AVIVO_DC_LUTA_BLACK_OFFSET_GREEN);
  236. writel(0, par->cmap_adr + AVIVO_DC_LUTA_BLACK_OFFSET_RED);
  237. writel(0x0000ffff, par->cmap_adr + AVIVO_DC_LUTA_WHITE_OFFSET_BLUE);
  238. writel(0x0000ffff, par->cmap_adr + AVIVO_DC_LUTA_WHITE_OFFSET_GREEN);
  239. writel(0x0000ffff, par->cmap_adr + AVIVO_DC_LUTA_WHITE_OFFSET_RED);
  240. writel(0, par->cmap_adr + AVIVO_DC_LUTB_CONTROL);
  241. writel(0, par->cmap_adr + AVIVO_DC_LUTB_BLACK_OFFSET_BLUE);
  242. writel(0, par->cmap_adr + AVIVO_DC_LUTB_BLACK_OFFSET_GREEN);
  243. writel(0, par->cmap_adr + AVIVO_DC_LUTB_BLACK_OFFSET_RED);
  244. writel(0x0000ffff, par->cmap_adr + AVIVO_DC_LUTB_WHITE_OFFSET_BLUE);
  245. writel(0x0000ffff, par->cmap_adr + AVIVO_DC_LUTB_WHITE_OFFSET_GREEN);
  246. writel(0x0000ffff, par->cmap_adr + AVIVO_DC_LUTB_WHITE_OFFSET_RED);
  247. writel(1, par->cmap_adr + AVIVO_DC_LUT_RW_SELECT);
  248. writel(0, par->cmap_adr + AVIVO_DC_LUT_RW_MODE);
  249. writel(0x0000003f, par->cmap_adr + AVIVO_DC_LUT_WRITE_EN_MASK);
  250. writel(0, par->cmap_adr + AVIVO_DC_LUT_RW_SELECT);
  251. writel(0, par->cmap_adr + AVIVO_DC_LUT_RW_MODE);
  252. writel(0x0000003f, par->cmap_adr + AVIVO_DC_LUT_WRITE_EN_MASK);
  253. }
  254. return 0;
  255. }
  256. static void offb_destroy(struct fb_info *info)
  257. {
  258. if (info->screen_base)
  259. iounmap(info->screen_base);
  260. release_mem_region(info->apertures->ranges[0].base, info->apertures->ranges[0].size);
  261. framebuffer_release(info);
  262. }
  263. static struct fb_ops offb_ops = {
  264. .owner = THIS_MODULE,
  265. .fb_destroy = offb_destroy,
  266. .fb_setcolreg = offb_setcolreg,
  267. .fb_set_par = offb_set_par,
  268. .fb_blank = offb_blank,
  269. .fb_fillrect = cfb_fillrect,
  270. .fb_copyarea = cfb_copyarea,
  271. .fb_imageblit = cfb_imageblit,
  272. };
  273. static void __iomem *offb_map_reg(struct device_node *np, int index,
  274. unsigned long offset, unsigned long size)
  275. {
  276. const u32 *addrp;
  277. u64 asize, taddr;
  278. unsigned int flags;
  279. addrp = of_get_pci_address(np, index, &asize, &flags);
  280. if (addrp == NULL)
  281. addrp = of_get_address(np, index, &asize, &flags);
  282. if (addrp == NULL)
  283. return NULL;
  284. if ((flags & (IORESOURCE_IO | IORESOURCE_MEM)) == 0)
  285. return NULL;
  286. if ((offset + size) > asize)
  287. return NULL;
  288. taddr = of_translate_address(np, addrp);
  289. if (taddr == OF_BAD_ADDR)
  290. return NULL;
  291. return ioremap(taddr + offset, size);
  292. }
  293. static void offb_init_palette_hacks(struct fb_info *info, struct device_node *dp,
  294. const char *name, unsigned long address)
  295. {
  296. struct offb_par *par = (struct offb_par *) info->par;
  297. if (dp && !strncmp(name, "ATY,Rage128", 11)) {
  298. par->cmap_adr = offb_map_reg(dp, 2, 0, 0x1fff);
  299. if (par->cmap_adr)
  300. par->cmap_type = cmap_r128;
  301. } else if (dp && (!strncmp(name, "ATY,RageM3pA", 12)
  302. || !strncmp(name, "ATY,RageM3p12A", 14))) {
  303. par->cmap_adr = offb_map_reg(dp, 2, 0, 0x1fff);
  304. if (par->cmap_adr)
  305. par->cmap_type = cmap_M3A;
  306. } else if (dp && !strncmp(name, "ATY,RageM3pB", 12)) {
  307. par->cmap_adr = offb_map_reg(dp, 2, 0, 0x1fff);
  308. if (par->cmap_adr)
  309. par->cmap_type = cmap_M3B;
  310. } else if (dp && !strncmp(name, "ATY,Rage6", 9)) {
  311. par->cmap_adr = offb_map_reg(dp, 1, 0, 0x1fff);
  312. if (par->cmap_adr)
  313. par->cmap_type = cmap_radeon;
  314. } else if (!strncmp(name, "ATY,", 4)) {
  315. unsigned long base = address & 0xff000000UL;
  316. par->cmap_adr =
  317. ioremap(base + 0x7ff000, 0x1000) + 0xcc0;
  318. par->cmap_data = par->cmap_adr + 1;
  319. par->cmap_type = cmap_m64;
  320. } else if (dp && (of_device_is_compatible(dp, "pci1014,b7") ||
  321. of_device_is_compatible(dp, "pci1014,21c"))) {
  322. par->cmap_adr = offb_map_reg(dp, 0, 0x6000, 0x1000);
  323. if (par->cmap_adr)
  324. par->cmap_type = cmap_gxt2000;
  325. } else if (dp && !strncmp(name, "vga,Display-", 12)) {
  326. /* Look for AVIVO initialized by SLOF */
  327. struct device_node *pciparent = of_get_parent(dp);
  328. const u32 *vid, *did;
  329. vid = of_get_property(pciparent, "vendor-id", NULL);
  330. did = of_get_property(pciparent, "device-id", NULL);
  331. /* This will match most R5xx */
  332. if (vid && did && *vid == 0x1002 &&
  333. ((*did >= 0x7100 && *did < 0x7800) ||
  334. (*did >= 0x9400))) {
  335. par->cmap_adr = offb_map_reg(pciparent, 2, 0, 0x10000);
  336. if (par->cmap_adr)
  337. par->cmap_type = cmap_avivo;
  338. }
  339. of_node_put(pciparent);
  340. }
  341. info->fix.visual = (par->cmap_type != cmap_unknown) ?
  342. FB_VISUAL_PSEUDOCOLOR : FB_VISUAL_STATIC_PSEUDOCOLOR;
  343. }
  344. static void __init offb_init_fb(const char *name, const char *full_name,
  345. int width, int height, int depth,
  346. int pitch, unsigned long address,
  347. int foreign_endian, struct device_node *dp)
  348. {
  349. unsigned long res_size = pitch * height * (depth + 7) / 8;
  350. struct offb_par *par = &default_par;
  351. unsigned long res_start = address;
  352. struct fb_fix_screeninfo *fix;
  353. struct fb_var_screeninfo *var;
  354. struct fb_info *info;
  355. if (!request_mem_region(res_start, res_size, "offb"))
  356. return;
  357. printk(KERN_INFO
  358. "Using unsupported %dx%d %s at %lx, depth=%d, pitch=%d\n",
  359. width, height, name, address, depth, pitch);
  360. if (depth != 8 && depth != 15 && depth != 16 && depth != 32) {
  361. printk(KERN_ERR "%s: can't use depth = %d\n", full_name,
  362. depth);
  363. release_mem_region(res_start, res_size);
  364. return;
  365. }
  366. info = framebuffer_alloc(sizeof(u32) * 16, NULL);
  367. if (info == 0) {
  368. release_mem_region(res_start, res_size);
  369. return;
  370. }
  371. fix = &info->fix;
  372. var = &info->var;
  373. info->par = par;
  374. strcpy(fix->id, "OFfb ");
  375. strncat(fix->id, name, sizeof(fix->id) - sizeof("OFfb "));
  376. fix->id[sizeof(fix->id) - 1] = '\0';
  377. var->xres = var->xres_virtual = width;
  378. var->yres = var->yres_virtual = height;
  379. fix->line_length = pitch;
  380. fix->smem_start = address;
  381. fix->smem_len = pitch * height;
  382. fix->type = FB_TYPE_PACKED_PIXELS;
  383. fix->type_aux = 0;
  384. par->cmap_type = cmap_unknown;
  385. if (depth == 8)
  386. offb_init_palette_hacks(info, dp, name, address);
  387. else
  388. fix->visual = FB_VISUAL_TRUECOLOR;
  389. var->xoffset = var->yoffset = 0;
  390. switch (depth) {
  391. case 8:
  392. var->bits_per_pixel = 8;
  393. var->red.offset = 0;
  394. var->red.length = 8;
  395. var->green.offset = 0;
  396. var->green.length = 8;
  397. var->blue.offset = 0;
  398. var->blue.length = 8;
  399. var->transp.offset = 0;
  400. var->transp.length = 0;
  401. break;
  402. case 15: /* RGB 555 */
  403. var->bits_per_pixel = 16;
  404. var->red.offset = 10;
  405. var->red.length = 5;
  406. var->green.offset = 5;
  407. var->green.length = 5;
  408. var->blue.offset = 0;
  409. var->blue.length = 5;
  410. var->transp.offset = 0;
  411. var->transp.length = 0;
  412. break;
  413. case 16: /* RGB 565 */
  414. var->bits_per_pixel = 16;
  415. var->red.offset = 11;
  416. var->red.length = 5;
  417. var->green.offset = 5;
  418. var->green.length = 6;
  419. var->blue.offset = 0;
  420. var->blue.length = 5;
  421. var->transp.offset = 0;
  422. var->transp.length = 0;
  423. break;
  424. case 32: /* RGB 888 */
  425. var->bits_per_pixel = 32;
  426. var->red.offset = 16;
  427. var->red.length = 8;
  428. var->green.offset = 8;
  429. var->green.length = 8;
  430. var->blue.offset = 0;
  431. var->blue.length = 8;
  432. var->transp.offset = 24;
  433. var->transp.length = 8;
  434. break;
  435. }
  436. var->red.msb_right = var->green.msb_right = var->blue.msb_right =
  437. var->transp.msb_right = 0;
  438. var->grayscale = 0;
  439. var->nonstd = 0;
  440. var->activate = 0;
  441. var->height = var->width = -1;
  442. var->pixclock = 10000;
  443. var->left_margin = var->right_margin = 16;
  444. var->upper_margin = var->lower_margin = 16;
  445. var->hsync_len = var->vsync_len = 8;
  446. var->sync = 0;
  447. var->vmode = FB_VMODE_NONINTERLACED;
  448. /* set offb aperture size for generic probing */
  449. info->apertures = alloc_apertures(1);
  450. if (!info->apertures)
  451. goto out_aper;
  452. info->apertures->ranges[0].base = address;
  453. info->apertures->ranges[0].size = fix->smem_len;
  454. info->fbops = &offb_ops;
  455. info->screen_base = ioremap(address, fix->smem_len);
  456. info->pseudo_palette = (void *) (info + 1);
  457. info->flags = FBINFO_DEFAULT | FBINFO_MISC_FIRMWARE | foreign_endian;
  458. fb_alloc_cmap(&info->cmap, 256, 0);
  459. if (register_framebuffer(info) < 0)
  460. goto out_err;
  461. printk(KERN_INFO "fb%d: Open Firmware frame buffer device on %s\n",
  462. info->node, full_name);
  463. return;
  464. out_err:
  465. iounmap(info->screen_base);
  466. out_aper:
  467. iounmap(par->cmap_adr);
  468. par->cmap_adr = NULL;
  469. framebuffer_release(info);
  470. release_mem_region(res_start, res_size);
  471. }
  472. static void __init offb_init_nodriver(struct device_node *dp, int no_real_node)
  473. {
  474. unsigned int len;
  475. int i, width = 640, height = 480, depth = 8, pitch = 640;
  476. unsigned int flags, rsize, addr_prop = 0;
  477. unsigned long max_size = 0;
  478. u64 rstart, address = OF_BAD_ADDR;
  479. const u32 *pp, *addrp, *up;
  480. u64 asize;
  481. int foreign_endian = 0;
  482. #ifdef __BIG_ENDIAN
  483. if (of_get_property(dp, "little-endian", NULL))
  484. foreign_endian = FBINFO_FOREIGN_ENDIAN;
  485. #else
  486. if (of_get_property(dp, "big-endian", NULL))
  487. foreign_endian = FBINFO_FOREIGN_ENDIAN;
  488. #endif
  489. pp = of_get_property(dp, "linux,bootx-depth", &len);
  490. if (pp == NULL)
  491. pp = of_get_property(dp, "depth", &len);
  492. if (pp && len == sizeof(u32))
  493. depth = *pp;
  494. pp = of_get_property(dp, "linux,bootx-width", &len);
  495. if (pp == NULL)
  496. pp = of_get_property(dp, "width", &len);
  497. if (pp && len == sizeof(u32))
  498. width = *pp;
  499. pp = of_get_property(dp, "linux,bootx-height", &len);
  500. if (pp == NULL)
  501. pp = of_get_property(dp, "height", &len);
  502. if (pp && len == sizeof(u32))
  503. height = *pp;
  504. pp = of_get_property(dp, "linux,bootx-linebytes", &len);
  505. if (pp == NULL)
  506. pp = of_get_property(dp, "linebytes", &len);
  507. if (pp && len == sizeof(u32) && (*pp != 0xffffffffu))
  508. pitch = *pp;
  509. else
  510. pitch = width * ((depth + 7) / 8);
  511. rsize = (unsigned long)pitch * (unsigned long)height;
  512. /* Ok, now we try to figure out the address of the framebuffer.
  513. *
  514. * Unfortunately, Open Firmware doesn't provide a standard way to do
  515. * so. All we can do is a dodgy heuristic that happens to work in
  516. * practice. On most machines, the "address" property contains what
  517. * we need, though not on Matrox cards found in IBM machines. What I've
  518. * found that appears to give good results is to go through the PCI
  519. * ranges and pick one that is both big enough and if possible encloses
  520. * the "address" property. If none match, we pick the biggest
  521. */
  522. up = of_get_property(dp, "linux,bootx-addr", &len);
  523. if (up == NULL)
  524. up = of_get_property(dp, "address", &len);
  525. if (up && len == sizeof(u32))
  526. addr_prop = *up;
  527. /* Hack for when BootX is passing us */
  528. if (no_real_node)
  529. goto skip_addr;
  530. for (i = 0; (addrp = of_get_address(dp, i, &asize, &flags))
  531. != NULL; i++) {
  532. int match_addrp = 0;
  533. if (!(flags & IORESOURCE_MEM))
  534. continue;
  535. if (asize < rsize)
  536. continue;
  537. rstart = of_translate_address(dp, addrp);
  538. if (rstart == OF_BAD_ADDR)
  539. continue;
  540. if (addr_prop && (rstart <= addr_prop) &&
  541. ((rstart + asize) >= (addr_prop + rsize)))
  542. match_addrp = 1;
  543. if (match_addrp) {
  544. address = addr_prop;
  545. break;
  546. }
  547. if (rsize > max_size) {
  548. max_size = rsize;
  549. address = OF_BAD_ADDR;
  550. }
  551. if (address == OF_BAD_ADDR)
  552. address = rstart;
  553. }
  554. skip_addr:
  555. if (address == OF_BAD_ADDR && addr_prop)
  556. address = (u64)addr_prop;
  557. if (address != OF_BAD_ADDR) {
  558. /* kludge for valkyrie */
  559. if (strcmp(dp->name, "valkyrie") == 0)
  560. address += 0x1000;
  561. offb_init_fb(no_real_node ? "bootx" : dp->name,
  562. no_real_node ? "display" : dp->full_name,
  563. width, height, depth, pitch, address,
  564. foreign_endian, no_real_node ? NULL : dp);
  565. }
  566. }
  567. static int __init offb_init(void)
  568. {
  569. struct device_node *dp = NULL, *boot_disp = NULL;
  570. if (fb_get_options("offb", NULL))
  571. return -ENODEV;
  572. /* Check if we have a MacOS display without a node spec */
  573. if (of_get_property(of_chosen, "linux,bootx-noscreen", NULL) != NULL) {
  574. /* The old code tried to work out which node was the MacOS
  575. * display based on the address. I'm dropping that since the
  576. * lack of a node spec only happens with old BootX versions
  577. * (users can update) and with this code, they'll still get
  578. * a display (just not the palette hacks).
  579. */
  580. offb_init_nodriver(of_chosen, 1);
  581. }
  582. for (dp = NULL; (dp = of_find_node_by_type(dp, "display"));) {
  583. if (of_get_property(dp, "linux,opened", NULL) &&
  584. of_get_property(dp, "linux,boot-display", NULL)) {
  585. boot_disp = dp;
  586. offb_init_nodriver(dp, 0);
  587. }
  588. }
  589. for (dp = NULL; (dp = of_find_node_by_type(dp, "display"));) {
  590. if (of_get_property(dp, "linux,opened", NULL) &&
  591. dp != boot_disp)
  592. offb_init_nodriver(dp, 0);
  593. }
  594. return 0;
  595. }
  596. module_init(offb_init);
  597. MODULE_LICENSE("GPL");