Merge branch 'perf/urgent' of git://git.kernel.org/pub/scm/linux/kernel/git/acme...
[deliverable/linux.git] / drivers / video / s3c-fb.c
1 /* linux/drivers/video/s3c-fb.c
2 *
3 * Copyright 2008 Openmoko Inc.
4 * Copyright 2008-2010 Simtec Electronics
5 * Ben Dooks <ben@simtec.co.uk>
6 * http://armlinux.simtec.co.uk/
7 *
8 * Samsung SoC Framebuffer driver
9 *
10 * This program is free software; you can redistribute it and/or modify
11 * it under the terms of the GNU General Public License version 2 as
12 * published by the Free Software FoundatIon.
13 */
14
15 #include <linux/kernel.h>
16 #include <linux/module.h>
17 #include <linux/platform_device.h>
18 #include <linux/dma-mapping.h>
19 #include <linux/slab.h>
20 #include <linux/init.h>
21 #include <linux/clk.h>
22 #include <linux/fb.h>
23 #include <linux/io.h>
24 #include <linux/uaccess.h>
25 #include <linux/interrupt.h>
26 #include <linux/pm_runtime.h>
27
28 #include <mach/map.h>
29 #include <plat/regs-fb-v4.h>
30 #include <plat/fb.h>
31
32 /* This driver will export a number of framebuffer interfaces depending
33 * on the configuration passed in via the platform data. Each fb instance
34 * maps to a hardware window. Currently there is no support for runtime
35 * setting of the alpha-blending functions that each window has, so only
36 * window 0 is actually useful.
37 *
38 * Window 0 is treated specially, it is used for the basis of the LCD
39 * output timings and as the control for the output power-down state.
40 */
41
42 /* note, the previous use of <mach/regs-fb.h> to get platform specific data
43 * has been replaced by using the platform device name to pick the correct
44 * configuration data for the system.
45 */
46
47 #ifdef CONFIG_FB_S3C_DEBUG_REGWRITE
48 #undef writel
49 #define writel(v, r) do { \
50 printk(KERN_DEBUG "%s: %08x => %p\n", __func__, (unsigned int)v, r); \
51 __raw_writel(v, r); \
52 } while (0)
53 #endif /* FB_S3C_DEBUG_REGWRITE */
54
55 /* irq_flags bits */
56 #define S3C_FB_VSYNC_IRQ_EN 0
57
58 #define VSYNC_TIMEOUT_MSEC 50
59
60 struct s3c_fb;
61
62 #define VALID_BPP(x) (1 << ((x) - 1))
63
64 #define OSD_BASE(win, variant) ((variant).osd + ((win) * (variant).osd_stride))
65 #define VIDOSD_A(win, variant) (OSD_BASE(win, variant) + 0x00)
66 #define VIDOSD_B(win, variant) (OSD_BASE(win, variant) + 0x04)
67 #define VIDOSD_C(win, variant) (OSD_BASE(win, variant) + 0x08)
68 #define VIDOSD_D(win, variant) (OSD_BASE(win, variant) + 0x0C)
69
70 /**
71 * struct s3c_fb_variant - fb variant information
72 * @is_2443: Set if S3C2443/S3C2416 style hardware.
73 * @nr_windows: The number of windows.
74 * @vidtcon: The base for the VIDTCONx registers
75 * @wincon: The base for the WINxCON registers.
76 * @winmap: The base for the WINxMAP registers.
77 * @keycon: The abse for the WxKEYCON registers.
78 * @buf_start: Offset of buffer start registers.
79 * @buf_size: Offset of buffer size registers.
80 * @buf_end: Offset of buffer end registers.
81 * @osd: The base for the OSD registers.
82 * @palette: Address of palette memory, or 0 if none.
83 * @has_prtcon: Set if has PRTCON register.
84 * @has_shadowcon: Set if has SHADOWCON register.
85 * @has_blendcon: Set if has BLENDCON register.
86 * @has_clksel: Set if VIDCON0 register has CLKSEL bit.
87 * @has_fixvclk: Set if VIDCON1 register has FIXVCLK bits.
88 */
89 struct s3c_fb_variant {
90 unsigned int is_2443:1;
91 unsigned short nr_windows;
92 unsigned int vidtcon;
93 unsigned short wincon;
94 unsigned short winmap;
95 unsigned short keycon;
96 unsigned short buf_start;
97 unsigned short buf_end;
98 unsigned short buf_size;
99 unsigned short osd;
100 unsigned short osd_stride;
101 unsigned short palette[S3C_FB_MAX_WIN];
102
103 unsigned int has_prtcon:1;
104 unsigned int has_shadowcon:1;
105 unsigned int has_blendcon:1;
106 unsigned int has_clksel:1;
107 unsigned int has_fixvclk:1;
108 };
109
110 /**
111 * struct s3c_fb_win_variant
112 * @has_osd_c: Set if has OSD C register.
113 * @has_osd_d: Set if has OSD D register.
114 * @has_osd_alpha: Set if can change alpha transparency for a window.
115 * @palette_sz: Size of palette in entries.
116 * @palette_16bpp: Set if palette is 16bits wide.
117 * @osd_size_off: If != 0, supports setting up OSD for a window; the appropriate
118 * register is located at the given offset from OSD_BASE.
119 * @valid_bpp: 1 bit per BPP setting to show valid bits-per-pixel.
120 *
121 * valid_bpp bit x is set if (x+1)BPP is supported.
122 */
123 struct s3c_fb_win_variant {
124 unsigned int has_osd_c:1;
125 unsigned int has_osd_d:1;
126 unsigned int has_osd_alpha:1;
127 unsigned int palette_16bpp:1;
128 unsigned short osd_size_off;
129 unsigned short palette_sz;
130 u32 valid_bpp;
131 };
132
133 /**
134 * struct s3c_fb_driverdata - per-device type driver data for init time.
135 * @variant: The variant information for this driver.
136 * @win: The window information for each window.
137 */
138 struct s3c_fb_driverdata {
139 struct s3c_fb_variant variant;
140 struct s3c_fb_win_variant *win[S3C_FB_MAX_WIN];
141 };
142
143 /**
144 * struct s3c_fb_palette - palette information
145 * @r: Red bitfield.
146 * @g: Green bitfield.
147 * @b: Blue bitfield.
148 * @a: Alpha bitfield.
149 */
150 struct s3c_fb_palette {
151 struct fb_bitfield r;
152 struct fb_bitfield g;
153 struct fb_bitfield b;
154 struct fb_bitfield a;
155 };
156
157 /**
158 * struct s3c_fb_win - per window private data for each framebuffer.
159 * @windata: The platform data supplied for the window configuration.
160 * @parent: The hardware that this window is part of.
161 * @fbinfo: Pointer pack to the framebuffer info for this window.
162 * @varint: The variant information for this window.
163 * @palette_buffer: Buffer/cache to hold palette entries.
164 * @pseudo_palette: For use in TRUECOLOUR modes for entries 0..15/
165 * @index: The window number of this window.
166 * @palette: The bitfields for changing r/g/b into a hardware palette entry.
167 */
168 struct s3c_fb_win {
169 struct s3c_fb_pd_win *windata;
170 struct s3c_fb *parent;
171 struct fb_info *fbinfo;
172 struct s3c_fb_palette palette;
173 struct s3c_fb_win_variant variant;
174
175 u32 *palette_buffer;
176 u32 pseudo_palette[16];
177 unsigned int index;
178 };
179
180 /**
181 * struct s3c_fb_vsync - vsync information
182 * @wait: a queue for processes waiting for vsync
183 * @count: vsync interrupt count
184 */
185 struct s3c_fb_vsync {
186 wait_queue_head_t wait;
187 unsigned int count;
188 };
189
190 /**
191 * struct s3c_fb - overall hardware state of the hardware
192 * @slock: The spinlock protection for this data sturcture.
193 * @dev: The device that we bound to, for printing, etc.
194 * @bus_clk: The clk (hclk) feeding our interface and possibly pixclk.
195 * @lcd_clk: The clk (sclk) feeding pixclk.
196 * @regs: The mapped hardware registers.
197 * @variant: Variant information for this hardware.
198 * @enabled: A bitmask of enabled hardware windows.
199 * @output_on: Flag if the physical output is enabled.
200 * @pdata: The platform configuration data passed with the device.
201 * @windows: The hardware windows that have been claimed.
202 * @irq_no: IRQ line number
203 * @irq_flags: irq flags
204 * @vsync_info: VSYNC-related information (count, queues...)
205 */
206 struct s3c_fb {
207 spinlock_t slock;
208 struct device *dev;
209 struct clk *bus_clk;
210 struct clk *lcd_clk;
211 void __iomem *regs;
212 struct s3c_fb_variant variant;
213
214 unsigned char enabled;
215 bool output_on;
216
217 struct s3c_fb_platdata *pdata;
218 struct s3c_fb_win *windows[S3C_FB_MAX_WIN];
219
220 int irq_no;
221 unsigned long irq_flags;
222 struct s3c_fb_vsync vsync_info;
223 };
224
225 /**
226 * s3c_fb_validate_win_bpp - validate the bits-per-pixel for this mode.
227 * @win: The device window.
228 * @bpp: The bit depth.
229 */
230 static bool s3c_fb_validate_win_bpp(struct s3c_fb_win *win, unsigned int bpp)
231 {
232 return win->variant.valid_bpp & VALID_BPP(bpp);
233 }
234
235 /**
236 * s3c_fb_check_var() - framebuffer layer request to verify a given mode.
237 * @var: The screen information to verify.
238 * @info: The framebuffer device.
239 *
240 * Framebuffer layer call to verify the given information and allow us to
241 * update various information depending on the hardware capabilities.
242 */
243 static int s3c_fb_check_var(struct fb_var_screeninfo *var,
244 struct fb_info *info)
245 {
246 struct s3c_fb_win *win = info->par;
247 struct s3c_fb *sfb = win->parent;
248
249 dev_dbg(sfb->dev, "checking parameters\n");
250
251 var->xres_virtual = max(var->xres_virtual, var->xres);
252 var->yres_virtual = max(var->yres_virtual, var->yres);
253
254 if (!s3c_fb_validate_win_bpp(win, var->bits_per_pixel)) {
255 dev_dbg(sfb->dev, "win %d: unsupported bpp %d\n",
256 win->index, var->bits_per_pixel);
257 return -EINVAL;
258 }
259
260 /* always ensure these are zero, for drop through cases below */
261 var->transp.offset = 0;
262 var->transp.length = 0;
263
264 switch (var->bits_per_pixel) {
265 case 1:
266 case 2:
267 case 4:
268 case 8:
269 if (sfb->variant.palette[win->index] != 0) {
270 /* non palletised, A:1,R:2,G:3,B:2 mode */
271 var->red.offset = 4;
272 var->green.offset = 2;
273 var->blue.offset = 0;
274 var->red.length = 5;
275 var->green.length = 3;
276 var->blue.length = 2;
277 var->transp.offset = 7;
278 var->transp.length = 1;
279 } else {
280 var->red.offset = 0;
281 var->red.length = var->bits_per_pixel;
282 var->green = var->red;
283 var->blue = var->red;
284 }
285 break;
286
287 case 19:
288 /* 666 with one bit alpha/transparency */
289 var->transp.offset = 18;
290 var->transp.length = 1;
291 case 18:
292 var->bits_per_pixel = 32;
293
294 /* 666 format */
295 var->red.offset = 12;
296 var->green.offset = 6;
297 var->blue.offset = 0;
298 var->red.length = 6;
299 var->green.length = 6;
300 var->blue.length = 6;
301 break;
302
303 case 16:
304 /* 16 bpp, 565 format */
305 var->red.offset = 11;
306 var->green.offset = 5;
307 var->blue.offset = 0;
308 var->red.length = 5;
309 var->green.length = 6;
310 var->blue.length = 5;
311 break;
312
313 case 32:
314 case 28:
315 case 25:
316 var->transp.length = var->bits_per_pixel - 24;
317 var->transp.offset = 24;
318 /* drop through */
319 case 24:
320 /* our 24bpp is unpacked, so 32bpp */
321 var->bits_per_pixel = 32;
322 var->red.offset = 16;
323 var->red.length = 8;
324 var->green.offset = 8;
325 var->green.length = 8;
326 var->blue.offset = 0;
327 var->blue.length = 8;
328 break;
329
330 default:
331 dev_err(sfb->dev, "invalid bpp\n");
332 }
333
334 dev_dbg(sfb->dev, "%s: verified parameters\n", __func__);
335 return 0;
336 }
337
338 /**
339 * s3c_fb_calc_pixclk() - calculate the divider to create the pixel clock.
340 * @sfb: The hardware state.
341 * @pixclock: The pixel clock wanted, in picoseconds.
342 *
343 * Given the specified pixel clock, work out the necessary divider to get
344 * close to the output frequency.
345 */
346 static int s3c_fb_calc_pixclk(struct s3c_fb *sfb, unsigned int pixclk)
347 {
348 unsigned long clk;
349 unsigned long long tmp;
350 unsigned int result;
351
352 if (sfb->variant.has_clksel)
353 clk = clk_get_rate(sfb->bus_clk);
354 else
355 clk = clk_get_rate(sfb->lcd_clk);
356
357 tmp = (unsigned long long)clk;
358 tmp *= pixclk;
359
360 do_div(tmp, 1000000000UL);
361 result = (unsigned int)tmp / 1000;
362
363 dev_dbg(sfb->dev, "pixclk=%u, clk=%lu, div=%d (%lu)\n",
364 pixclk, clk, result, clk / result);
365
366 return result;
367 }
368
369 /**
370 * s3c_fb_align_word() - align pixel count to word boundary
371 * @bpp: The number of bits per pixel
372 * @pix: The value to be aligned.
373 *
374 * Align the given pixel count so that it will start on an 32bit word
375 * boundary.
376 */
377 static int s3c_fb_align_word(unsigned int bpp, unsigned int pix)
378 {
379 int pix_per_word;
380
381 if (bpp > 16)
382 return pix;
383
384 pix_per_word = (8 * 32) / bpp;
385 return ALIGN(pix, pix_per_word);
386 }
387
388 /**
389 * vidosd_set_size() - set OSD size for a window
390 *
391 * @win: the window to set OSD size for
392 * @size: OSD size register value
393 */
394 static void vidosd_set_size(struct s3c_fb_win *win, u32 size)
395 {
396 struct s3c_fb *sfb = win->parent;
397
398 /* OSD can be set up if osd_size_off != 0 for this window */
399 if (win->variant.osd_size_off)
400 writel(size, sfb->regs + OSD_BASE(win->index, sfb->variant)
401 + win->variant.osd_size_off);
402 }
403
404 /**
405 * vidosd_set_alpha() - set alpha transparency for a window
406 *
407 * @win: the window to set OSD size for
408 * @alpha: alpha register value
409 */
410 static void vidosd_set_alpha(struct s3c_fb_win *win, u32 alpha)
411 {
412 struct s3c_fb *sfb = win->parent;
413
414 if (win->variant.has_osd_alpha)
415 writel(alpha, sfb->regs + VIDOSD_C(win->index, sfb->variant));
416 }
417
418 /**
419 * shadow_protect_win() - disable updating values from shadow registers at vsync
420 *
421 * @win: window to protect registers for
422 * @protect: 1 to protect (disable updates)
423 */
424 static void shadow_protect_win(struct s3c_fb_win *win, bool protect)
425 {
426 struct s3c_fb *sfb = win->parent;
427 u32 reg;
428
429 if (protect) {
430 if (sfb->variant.has_prtcon) {
431 writel(PRTCON_PROTECT, sfb->regs + PRTCON);
432 } else if (sfb->variant.has_shadowcon) {
433 reg = readl(sfb->regs + SHADOWCON);
434 writel(reg | SHADOWCON_WINx_PROTECT(win->index),
435 sfb->regs + SHADOWCON);
436 }
437 } else {
438 if (sfb->variant.has_prtcon) {
439 writel(0, sfb->regs + PRTCON);
440 } else if (sfb->variant.has_shadowcon) {
441 reg = readl(sfb->regs + SHADOWCON);
442 writel(reg & ~SHADOWCON_WINx_PROTECT(win->index),
443 sfb->regs + SHADOWCON);
444 }
445 }
446 }
447
448 /**
449 * s3c_fb_enable() - Set the state of the main LCD output
450 * @sfb: The main framebuffer state.
451 * @enable: The state to set.
452 */
453 static void s3c_fb_enable(struct s3c_fb *sfb, int enable)
454 {
455 u32 vidcon0 = readl(sfb->regs + VIDCON0);
456
457 if (enable && !sfb->output_on)
458 pm_runtime_get_sync(sfb->dev);
459
460 if (enable) {
461 vidcon0 |= VIDCON0_ENVID | VIDCON0_ENVID_F;
462 } else {
463 /* see the note in the framebuffer datasheet about
464 * why you cannot take both of these bits down at the
465 * same time. */
466
467 if (vidcon0 & VIDCON0_ENVID) {
468 vidcon0 |= VIDCON0_ENVID;
469 vidcon0 &= ~VIDCON0_ENVID_F;
470 }
471 }
472
473 writel(vidcon0, sfb->regs + VIDCON0);
474
475 if (!enable && sfb->output_on)
476 pm_runtime_put_sync(sfb->dev);
477
478 sfb->output_on = enable;
479 }
480
481 /**
482 * s3c_fb_set_par() - framebuffer request to set new framebuffer state.
483 * @info: The framebuffer to change.
484 *
485 * Framebuffer layer request to set a new mode for the specified framebuffer
486 */
487 static int s3c_fb_set_par(struct fb_info *info)
488 {
489 struct fb_var_screeninfo *var = &info->var;
490 struct s3c_fb_win *win = info->par;
491 struct s3c_fb *sfb = win->parent;
492 void __iomem *regs = sfb->regs;
493 void __iomem *buf = regs;
494 int win_no = win->index;
495 u32 alpha = 0;
496 u32 data;
497 u32 pagewidth;
498 int clkdiv;
499
500 dev_dbg(sfb->dev, "setting framebuffer parameters\n");
501
502 pm_runtime_get_sync(sfb->dev);
503
504 shadow_protect_win(win, 1);
505
506 switch (var->bits_per_pixel) {
507 case 32:
508 case 24:
509 case 16:
510 case 12:
511 info->fix.visual = FB_VISUAL_TRUECOLOR;
512 break;
513 case 8:
514 if (win->variant.palette_sz >= 256)
515 info->fix.visual = FB_VISUAL_PSEUDOCOLOR;
516 else
517 info->fix.visual = FB_VISUAL_TRUECOLOR;
518 break;
519 case 1:
520 info->fix.visual = FB_VISUAL_MONO01;
521 break;
522 default:
523 info->fix.visual = FB_VISUAL_PSEUDOCOLOR;
524 break;
525 }
526
527 info->fix.line_length = (var->xres_virtual * var->bits_per_pixel) / 8;
528
529 info->fix.xpanstep = info->var.xres_virtual > info->var.xres ? 1 : 0;
530 info->fix.ypanstep = info->var.yres_virtual > info->var.yres ? 1 : 0;
531
532 /* disable the window whilst we update it */
533 writel(0, regs + WINCON(win_no));
534
535 /* use platform specified window as the basis for the lcd timings */
536
537 if (win_no == sfb->pdata->default_win) {
538 clkdiv = s3c_fb_calc_pixclk(sfb, var->pixclock);
539
540 data = sfb->pdata->vidcon0;
541 data &= ~(VIDCON0_CLKVAL_F_MASK | VIDCON0_CLKDIR);
542
543 if (clkdiv > 1)
544 data |= VIDCON0_CLKVAL_F(clkdiv-1) | VIDCON0_CLKDIR;
545 else
546 data &= ~VIDCON0_CLKDIR; /* 1:1 clock */
547
548 /* write the timing data to the panel */
549
550 if (sfb->variant.is_2443)
551 data |= (1 << 5);
552
553 writel(data, regs + VIDCON0);
554
555 s3c_fb_enable(sfb, 1);
556
557 data = VIDTCON0_VBPD(var->upper_margin - 1) |
558 VIDTCON0_VFPD(var->lower_margin - 1) |
559 VIDTCON0_VSPW(var->vsync_len - 1);
560
561 writel(data, regs + sfb->variant.vidtcon);
562
563 data = VIDTCON1_HBPD(var->left_margin - 1) |
564 VIDTCON1_HFPD(var->right_margin - 1) |
565 VIDTCON1_HSPW(var->hsync_len - 1);
566
567 /* VIDTCON1 */
568 writel(data, regs + sfb->variant.vidtcon + 4);
569
570 data = VIDTCON2_LINEVAL(var->yres - 1) |
571 VIDTCON2_HOZVAL(var->xres - 1) |
572 VIDTCON2_LINEVAL_E(var->yres - 1) |
573 VIDTCON2_HOZVAL_E(var->xres - 1);
574 writel(data, regs + sfb->variant.vidtcon + 8);
575 }
576
577 /* write the buffer address */
578
579 /* start and end registers stride is 8 */
580 buf = regs + win_no * 8;
581
582 writel(info->fix.smem_start, buf + sfb->variant.buf_start);
583
584 data = info->fix.smem_start + info->fix.line_length * var->yres;
585 writel(data, buf + sfb->variant.buf_end);
586
587 pagewidth = (var->xres * var->bits_per_pixel) >> 3;
588 data = VIDW_BUF_SIZE_OFFSET(info->fix.line_length - pagewidth) |
589 VIDW_BUF_SIZE_PAGEWIDTH(pagewidth) |
590 VIDW_BUF_SIZE_OFFSET_E(info->fix.line_length - pagewidth) |
591 VIDW_BUF_SIZE_PAGEWIDTH_E(pagewidth);
592 writel(data, regs + sfb->variant.buf_size + (win_no * 4));
593
594 /* write 'OSD' registers to control position of framebuffer */
595
596 data = VIDOSDxA_TOPLEFT_X(0) | VIDOSDxA_TOPLEFT_Y(0) |
597 VIDOSDxA_TOPLEFT_X_E(0) | VIDOSDxA_TOPLEFT_Y_E(0);
598 writel(data, regs + VIDOSD_A(win_no, sfb->variant));
599
600 data = VIDOSDxB_BOTRIGHT_X(s3c_fb_align_word(var->bits_per_pixel,
601 var->xres - 1)) |
602 VIDOSDxB_BOTRIGHT_Y(var->yres - 1) |
603 VIDOSDxB_BOTRIGHT_X_E(s3c_fb_align_word(var->bits_per_pixel,
604 var->xres - 1)) |
605 VIDOSDxB_BOTRIGHT_Y_E(var->yres - 1);
606
607 writel(data, regs + VIDOSD_B(win_no, sfb->variant));
608
609 data = var->xres * var->yres;
610
611 alpha = VIDISD14C_ALPHA1_R(0xf) |
612 VIDISD14C_ALPHA1_G(0xf) |
613 VIDISD14C_ALPHA1_B(0xf);
614
615 vidosd_set_alpha(win, alpha);
616 vidosd_set_size(win, data);
617
618 /* Enable DMA channel for this window */
619 if (sfb->variant.has_shadowcon) {
620 data = readl(sfb->regs + SHADOWCON);
621 data |= SHADOWCON_CHx_ENABLE(win_no);
622 writel(data, sfb->regs + SHADOWCON);
623 }
624
625 data = WINCONx_ENWIN;
626 sfb->enabled |= (1 << win->index);
627
628 /* note, since we have to round up the bits-per-pixel, we end up
629 * relying on the bitfield information for r/g/b/a to work out
630 * exactly which mode of operation is intended. */
631
632 switch (var->bits_per_pixel) {
633 case 1:
634 data |= WINCON0_BPPMODE_1BPP;
635 data |= WINCONx_BITSWP;
636 data |= WINCONx_BURSTLEN_4WORD;
637 break;
638 case 2:
639 data |= WINCON0_BPPMODE_2BPP;
640 data |= WINCONx_BITSWP;
641 data |= WINCONx_BURSTLEN_8WORD;
642 break;
643 case 4:
644 data |= WINCON0_BPPMODE_4BPP;
645 data |= WINCONx_BITSWP;
646 data |= WINCONx_BURSTLEN_8WORD;
647 break;
648 case 8:
649 if (var->transp.length != 0)
650 data |= WINCON1_BPPMODE_8BPP_1232;
651 else
652 data |= WINCON0_BPPMODE_8BPP_PALETTE;
653 data |= WINCONx_BURSTLEN_8WORD;
654 data |= WINCONx_BYTSWP;
655 break;
656 case 16:
657 if (var->transp.length != 0)
658 data |= WINCON1_BPPMODE_16BPP_A1555;
659 else
660 data |= WINCON0_BPPMODE_16BPP_565;
661 data |= WINCONx_HAWSWP;
662 data |= WINCONx_BURSTLEN_16WORD;
663 break;
664 case 24:
665 case 32:
666 if (var->red.length == 6) {
667 if (var->transp.length != 0)
668 data |= WINCON1_BPPMODE_19BPP_A1666;
669 else
670 data |= WINCON1_BPPMODE_18BPP_666;
671 } else if (var->transp.length == 1)
672 data |= WINCON1_BPPMODE_25BPP_A1888
673 | WINCON1_BLD_PIX;
674 else if ((var->transp.length == 4) ||
675 (var->transp.length == 8))
676 data |= WINCON1_BPPMODE_28BPP_A4888
677 | WINCON1_BLD_PIX | WINCON1_ALPHA_SEL;
678 else
679 data |= WINCON0_BPPMODE_24BPP_888;
680
681 data |= WINCONx_WSWP;
682 data |= WINCONx_BURSTLEN_16WORD;
683 break;
684 }
685
686 /* Enable the colour keying for the window below this one */
687 if (win_no > 0) {
688 u32 keycon0_data = 0, keycon1_data = 0;
689 void __iomem *keycon = regs + sfb->variant.keycon;
690
691 keycon0_data = ~(WxKEYCON0_KEYBL_EN |
692 WxKEYCON0_KEYEN_F |
693 WxKEYCON0_DIRCON) | WxKEYCON0_COMPKEY(0);
694
695 keycon1_data = WxKEYCON1_COLVAL(0xffffff);
696
697 keycon += (win_no - 1) * 8;
698
699 writel(keycon0_data, keycon + WKEYCON0);
700 writel(keycon1_data, keycon + WKEYCON1);
701 }
702
703 writel(data, regs + sfb->variant.wincon + (win_no * 4));
704 writel(0x0, regs + sfb->variant.winmap + (win_no * 4));
705
706 /* Set alpha value width */
707 if (sfb->variant.has_blendcon) {
708 data = readl(sfb->regs + BLENDCON);
709 data &= ~BLENDCON_NEW_MASK;
710 if (var->transp.length > 4)
711 data |= BLENDCON_NEW_8BIT_ALPHA_VALUE;
712 else
713 data |= BLENDCON_NEW_4BIT_ALPHA_VALUE;
714 writel(data, sfb->regs + BLENDCON);
715 }
716
717 shadow_protect_win(win, 0);
718
719 pm_runtime_put_sync(sfb->dev);
720
721 return 0;
722 }
723
724 /**
725 * s3c_fb_update_palette() - set or schedule a palette update.
726 * @sfb: The hardware information.
727 * @win: The window being updated.
728 * @reg: The palette index being changed.
729 * @value: The computed palette value.
730 *
731 * Change the value of a palette register, either by directly writing to
732 * the palette (this requires the palette RAM to be disconnected from the
733 * hardware whilst this is in progress) or schedule the update for later.
734 *
735 * At the moment, since we have no VSYNC interrupt support, we simply set
736 * the palette entry directly.
737 */
738 static void s3c_fb_update_palette(struct s3c_fb *sfb,
739 struct s3c_fb_win *win,
740 unsigned int reg,
741 u32 value)
742 {
743 void __iomem *palreg;
744 u32 palcon;
745
746 palreg = sfb->regs + sfb->variant.palette[win->index];
747
748 dev_dbg(sfb->dev, "%s: win %d, reg %d (%p): %08x\n",
749 __func__, win->index, reg, palreg, value);
750
751 win->palette_buffer[reg] = value;
752
753 palcon = readl(sfb->regs + WPALCON);
754 writel(palcon | WPALCON_PAL_UPDATE, sfb->regs + WPALCON);
755
756 if (win->variant.palette_16bpp)
757 writew(value, palreg + (reg * 2));
758 else
759 writel(value, palreg + (reg * 4));
760
761 writel(palcon, sfb->regs + WPALCON);
762 }
763
764 static inline unsigned int chan_to_field(unsigned int chan,
765 struct fb_bitfield *bf)
766 {
767 chan &= 0xffff;
768 chan >>= 16 - bf->length;
769 return chan << bf->offset;
770 }
771
772 /**
773 * s3c_fb_setcolreg() - framebuffer layer request to change palette.
774 * @regno: The palette index to change.
775 * @red: The red field for the palette data.
776 * @green: The green field for the palette data.
777 * @blue: The blue field for the palette data.
778 * @trans: The transparency (alpha) field for the palette data.
779 * @info: The framebuffer being changed.
780 */
781 static int s3c_fb_setcolreg(unsigned regno,
782 unsigned red, unsigned green, unsigned blue,
783 unsigned transp, struct fb_info *info)
784 {
785 struct s3c_fb_win *win = info->par;
786 struct s3c_fb *sfb = win->parent;
787 unsigned int val;
788
789 dev_dbg(sfb->dev, "%s: win %d: %d => rgb=%d/%d/%d\n",
790 __func__, win->index, regno, red, green, blue);
791
792 pm_runtime_get_sync(sfb->dev);
793
794 switch (info->fix.visual) {
795 case FB_VISUAL_TRUECOLOR:
796 /* true-colour, use pseudo-palette */
797
798 if (regno < 16) {
799 u32 *pal = info->pseudo_palette;
800
801 val = chan_to_field(red, &info->var.red);
802 val |= chan_to_field(green, &info->var.green);
803 val |= chan_to_field(blue, &info->var.blue);
804
805 pal[regno] = val;
806 }
807 break;
808
809 case FB_VISUAL_PSEUDOCOLOR:
810 if (regno < win->variant.palette_sz) {
811 val = chan_to_field(red, &win->palette.r);
812 val |= chan_to_field(green, &win->palette.g);
813 val |= chan_to_field(blue, &win->palette.b);
814
815 s3c_fb_update_palette(sfb, win, regno, val);
816 }
817
818 break;
819
820 default:
821 pm_runtime_put_sync(sfb->dev);
822 return 1; /* unknown type */
823 }
824
825 pm_runtime_put_sync(sfb->dev);
826 return 0;
827 }
828
829 /**
830 * s3c_fb_blank() - blank or unblank the given window
831 * @blank_mode: The blank state from FB_BLANK_*
832 * @info: The framebuffer to blank.
833 *
834 * Framebuffer layer request to change the power state.
835 */
836 static int s3c_fb_blank(int blank_mode, struct fb_info *info)
837 {
838 struct s3c_fb_win *win = info->par;
839 struct s3c_fb *sfb = win->parent;
840 unsigned int index = win->index;
841 u32 wincon;
842
843 dev_dbg(sfb->dev, "blank mode %d\n", blank_mode);
844
845 pm_runtime_get_sync(sfb->dev);
846
847 wincon = readl(sfb->regs + sfb->variant.wincon + (index * 4));
848
849 switch (blank_mode) {
850 case FB_BLANK_POWERDOWN:
851 wincon &= ~WINCONx_ENWIN;
852 sfb->enabled &= ~(1 << index);
853 /* fall through to FB_BLANK_NORMAL */
854
855 case FB_BLANK_NORMAL:
856 /* disable the DMA and display 0x0 (black) */
857 shadow_protect_win(win, 1);
858 writel(WINxMAP_MAP | WINxMAP_MAP_COLOUR(0x0),
859 sfb->regs + sfb->variant.winmap + (index * 4));
860 shadow_protect_win(win, 0);
861 break;
862
863 case FB_BLANK_UNBLANK:
864 shadow_protect_win(win, 1);
865 writel(0x0, sfb->regs + sfb->variant.winmap + (index * 4));
866 shadow_protect_win(win, 0);
867 wincon |= WINCONx_ENWIN;
868 sfb->enabled |= (1 << index);
869 break;
870
871 case FB_BLANK_VSYNC_SUSPEND:
872 case FB_BLANK_HSYNC_SUSPEND:
873 default:
874 pm_runtime_put_sync(sfb->dev);
875 return 1;
876 }
877
878 shadow_protect_win(win, 1);
879 writel(wincon, sfb->regs + sfb->variant.wincon + (index * 4));
880 shadow_protect_win(win, 0);
881
882 /* Check the enabled state to see if we need to be running the
883 * main LCD interface, as if there are no active windows then
884 * it is highly likely that we also do not need to output
885 * anything.
886 */
887
888 /* We could do something like the following code, but the current
889 * system of using framebuffer events means that we cannot make
890 * the distinction between just window 0 being inactive and all
891 * the windows being down.
892 *
893 * s3c_fb_enable(sfb, sfb->enabled ? 1 : 0);
894 */
895
896 /* we're stuck with this until we can do something about overriding
897 * the power control using the blanking event for a single fb.
898 */
899 if (index == sfb->pdata->default_win) {
900 shadow_protect_win(win, 1);
901 s3c_fb_enable(sfb, blank_mode != FB_BLANK_POWERDOWN ? 1 : 0);
902 shadow_protect_win(win, 0);
903 }
904
905 pm_runtime_put_sync(sfb->dev);
906
907 return 0;
908 }
909
910 /**
911 * s3c_fb_pan_display() - Pan the display.
912 *
913 * Note that the offsets can be written to the device at any time, as their
914 * values are latched at each vsync automatically. This also means that only
915 * the last call to this function will have any effect on next vsync, but
916 * there is no need to sleep waiting for it to prevent tearing.
917 *
918 * @var: The screen information to verify.
919 * @info: The framebuffer device.
920 */
921 static int s3c_fb_pan_display(struct fb_var_screeninfo *var,
922 struct fb_info *info)
923 {
924 struct s3c_fb_win *win = info->par;
925 struct s3c_fb *sfb = win->parent;
926 void __iomem *buf = sfb->regs + win->index * 8;
927 unsigned int start_boff, end_boff;
928
929 pm_runtime_get_sync(sfb->dev);
930
931 /* Offset in bytes to the start of the displayed area */
932 start_boff = var->yoffset * info->fix.line_length;
933 /* X offset depends on the current bpp */
934 if (info->var.bits_per_pixel >= 8) {
935 start_boff += var->xoffset * (info->var.bits_per_pixel >> 3);
936 } else {
937 switch (info->var.bits_per_pixel) {
938 case 4:
939 start_boff += var->xoffset >> 1;
940 break;
941 case 2:
942 start_boff += var->xoffset >> 2;
943 break;
944 case 1:
945 start_boff += var->xoffset >> 3;
946 break;
947 default:
948 dev_err(sfb->dev, "invalid bpp\n");
949 pm_runtime_put_sync(sfb->dev);
950 return -EINVAL;
951 }
952 }
953 /* Offset in bytes to the end of the displayed area */
954 end_boff = start_boff + info->var.yres * info->fix.line_length;
955
956 /* Temporarily turn off per-vsync update from shadow registers until
957 * both start and end addresses are updated to prevent corruption */
958 shadow_protect_win(win, 1);
959
960 writel(info->fix.smem_start + start_boff, buf + sfb->variant.buf_start);
961 writel(info->fix.smem_start + end_boff, buf + sfb->variant.buf_end);
962
963 shadow_protect_win(win, 0);
964
965 pm_runtime_put_sync(sfb->dev);
966 return 0;
967 }
968
969 /**
970 * s3c_fb_enable_irq() - enable framebuffer interrupts
971 * @sfb: main hardware state
972 */
973 static void s3c_fb_enable_irq(struct s3c_fb *sfb)
974 {
975 void __iomem *regs = sfb->regs;
976 u32 irq_ctrl_reg;
977
978 if (!test_and_set_bit(S3C_FB_VSYNC_IRQ_EN, &sfb->irq_flags)) {
979 /* IRQ disabled, enable it */
980 irq_ctrl_reg = readl(regs + VIDINTCON0);
981
982 irq_ctrl_reg |= VIDINTCON0_INT_ENABLE;
983 irq_ctrl_reg |= VIDINTCON0_INT_FRAME;
984
985 irq_ctrl_reg &= ~VIDINTCON0_FRAMESEL0_MASK;
986 irq_ctrl_reg |= VIDINTCON0_FRAMESEL0_VSYNC;
987 irq_ctrl_reg &= ~VIDINTCON0_FRAMESEL1_MASK;
988 irq_ctrl_reg |= VIDINTCON0_FRAMESEL1_NONE;
989
990 writel(irq_ctrl_reg, regs + VIDINTCON0);
991 }
992 }
993
994 /**
995 * s3c_fb_disable_irq() - disable framebuffer interrupts
996 * @sfb: main hardware state
997 */
998 static void s3c_fb_disable_irq(struct s3c_fb *sfb)
999 {
1000 void __iomem *regs = sfb->regs;
1001 u32 irq_ctrl_reg;
1002
1003 if (test_and_clear_bit(S3C_FB_VSYNC_IRQ_EN, &sfb->irq_flags)) {
1004 /* IRQ enabled, disable it */
1005 irq_ctrl_reg = readl(regs + VIDINTCON0);
1006
1007 irq_ctrl_reg &= ~VIDINTCON0_INT_FRAME;
1008 irq_ctrl_reg &= ~VIDINTCON0_INT_ENABLE;
1009
1010 writel(irq_ctrl_reg, regs + VIDINTCON0);
1011 }
1012 }
1013
1014 static irqreturn_t s3c_fb_irq(int irq, void *dev_id)
1015 {
1016 struct s3c_fb *sfb = dev_id;
1017 void __iomem *regs = sfb->regs;
1018 u32 irq_sts_reg;
1019
1020 spin_lock(&sfb->slock);
1021
1022 irq_sts_reg = readl(regs + VIDINTCON1);
1023
1024 if (irq_sts_reg & VIDINTCON1_INT_FRAME) {
1025
1026 /* VSYNC interrupt, accept it */
1027 writel(VIDINTCON1_INT_FRAME, regs + VIDINTCON1);
1028
1029 sfb->vsync_info.count++;
1030 wake_up_interruptible(&sfb->vsync_info.wait);
1031 }
1032
1033 /* We only support waiting for VSYNC for now, so it's safe
1034 * to always disable irqs here.
1035 */
1036 s3c_fb_disable_irq(sfb);
1037
1038 spin_unlock(&sfb->slock);
1039 return IRQ_HANDLED;
1040 }
1041
1042 /**
1043 * s3c_fb_wait_for_vsync() - sleep until next VSYNC interrupt or timeout
1044 * @sfb: main hardware state
1045 * @crtc: head index.
1046 */
1047 static int s3c_fb_wait_for_vsync(struct s3c_fb *sfb, u32 crtc)
1048 {
1049 unsigned long count;
1050 int ret;
1051
1052 if (crtc != 0)
1053 return -ENODEV;
1054
1055 pm_runtime_get_sync(sfb->dev);
1056
1057 count = sfb->vsync_info.count;
1058 s3c_fb_enable_irq(sfb);
1059 ret = wait_event_interruptible_timeout(sfb->vsync_info.wait,
1060 count != sfb->vsync_info.count,
1061 msecs_to_jiffies(VSYNC_TIMEOUT_MSEC));
1062
1063 pm_runtime_put_sync(sfb->dev);
1064
1065 if (ret == 0)
1066 return -ETIMEDOUT;
1067
1068 return 0;
1069 }
1070
1071 static int s3c_fb_ioctl(struct fb_info *info, unsigned int cmd,
1072 unsigned long arg)
1073 {
1074 struct s3c_fb_win *win = info->par;
1075 struct s3c_fb *sfb = win->parent;
1076 int ret;
1077 u32 crtc;
1078
1079 switch (cmd) {
1080 case FBIO_WAITFORVSYNC:
1081 if (get_user(crtc, (u32 __user *)arg)) {
1082 ret = -EFAULT;
1083 break;
1084 }
1085
1086 ret = s3c_fb_wait_for_vsync(sfb, crtc);
1087 break;
1088 default:
1089 ret = -ENOTTY;
1090 }
1091
1092 return ret;
1093 }
1094
1095 static struct fb_ops s3c_fb_ops = {
1096 .owner = THIS_MODULE,
1097 .fb_check_var = s3c_fb_check_var,
1098 .fb_set_par = s3c_fb_set_par,
1099 .fb_blank = s3c_fb_blank,
1100 .fb_setcolreg = s3c_fb_setcolreg,
1101 .fb_fillrect = cfb_fillrect,
1102 .fb_copyarea = cfb_copyarea,
1103 .fb_imageblit = cfb_imageblit,
1104 .fb_pan_display = s3c_fb_pan_display,
1105 .fb_ioctl = s3c_fb_ioctl,
1106 };
1107
1108 /**
1109 * s3c_fb_missing_pixclock() - calculates pixel clock
1110 * @mode: The video mode to change.
1111 *
1112 * Calculate the pixel clock when none has been given through platform data.
1113 */
1114 static void __devinit s3c_fb_missing_pixclock(struct fb_videomode *mode)
1115 {
1116 u64 pixclk = 1000000000000ULL;
1117 u32 div;
1118
1119 div = mode->left_margin + mode->hsync_len + mode->right_margin +
1120 mode->xres;
1121 div *= mode->upper_margin + mode->vsync_len + mode->lower_margin +
1122 mode->yres;
1123 div *= mode->refresh ? : 60;
1124
1125 do_div(pixclk, div);
1126
1127 mode->pixclock = pixclk;
1128 }
1129
1130 /**
1131 * s3c_fb_alloc_memory() - allocate display memory for framebuffer window
1132 * @sfb: The base resources for the hardware.
1133 * @win: The window to initialise memory for.
1134 *
1135 * Allocate memory for the given framebuffer.
1136 */
1137 static int __devinit s3c_fb_alloc_memory(struct s3c_fb *sfb,
1138 struct s3c_fb_win *win)
1139 {
1140 struct s3c_fb_pd_win *windata = win->windata;
1141 unsigned int real_size, virt_size, size;
1142 struct fb_info *fbi = win->fbinfo;
1143 dma_addr_t map_dma;
1144
1145 dev_dbg(sfb->dev, "allocating memory for display\n");
1146
1147 real_size = windata->win_mode.xres * windata->win_mode.yres;
1148 virt_size = windata->virtual_x * windata->virtual_y;
1149
1150 dev_dbg(sfb->dev, "real_size=%u (%u.%u), virt_size=%u (%u.%u)\n",
1151 real_size, windata->win_mode.xres, windata->win_mode.yres,
1152 virt_size, windata->virtual_x, windata->virtual_y);
1153
1154 size = (real_size > virt_size) ? real_size : virt_size;
1155 size *= (windata->max_bpp > 16) ? 32 : windata->max_bpp;
1156 size /= 8;
1157
1158 fbi->fix.smem_len = size;
1159 size = PAGE_ALIGN(size);
1160
1161 dev_dbg(sfb->dev, "want %u bytes for window\n", size);
1162
1163 fbi->screen_base = dma_alloc_writecombine(sfb->dev, size,
1164 &map_dma, GFP_KERNEL);
1165 if (!fbi->screen_base)
1166 return -ENOMEM;
1167
1168 dev_dbg(sfb->dev, "mapped %x to %p\n",
1169 (unsigned int)map_dma, fbi->screen_base);
1170
1171 memset(fbi->screen_base, 0x0, size);
1172 fbi->fix.smem_start = map_dma;
1173
1174 return 0;
1175 }
1176
1177 /**
1178 * s3c_fb_free_memory() - free the display memory for the given window
1179 * @sfb: The base resources for the hardware.
1180 * @win: The window to free the display memory for.
1181 *
1182 * Free the display memory allocated by s3c_fb_alloc_memory().
1183 */
1184 static void s3c_fb_free_memory(struct s3c_fb *sfb, struct s3c_fb_win *win)
1185 {
1186 struct fb_info *fbi = win->fbinfo;
1187
1188 if (fbi->screen_base)
1189 dma_free_writecombine(sfb->dev, PAGE_ALIGN(fbi->fix.smem_len),
1190 fbi->screen_base, fbi->fix.smem_start);
1191 }
1192
1193 /**
1194 * s3c_fb_release_win() - release resources for a framebuffer window.
1195 * @win: The window to cleanup the resources for.
1196 *
1197 * Release the resources that where claimed for the hardware window,
1198 * such as the framebuffer instance and any memory claimed for it.
1199 */
1200 static void s3c_fb_release_win(struct s3c_fb *sfb, struct s3c_fb_win *win)
1201 {
1202 u32 data;
1203
1204 if (win->fbinfo) {
1205 if (sfb->variant.has_shadowcon) {
1206 data = readl(sfb->regs + SHADOWCON);
1207 data &= ~SHADOWCON_CHx_ENABLE(win->index);
1208 data &= ~SHADOWCON_CHx_LOCAL_ENABLE(win->index);
1209 writel(data, sfb->regs + SHADOWCON);
1210 }
1211 unregister_framebuffer(win->fbinfo);
1212 if (win->fbinfo->cmap.len)
1213 fb_dealloc_cmap(&win->fbinfo->cmap);
1214 s3c_fb_free_memory(sfb, win);
1215 framebuffer_release(win->fbinfo);
1216 }
1217 }
1218
1219 /**
1220 * s3c_fb_probe_win() - register an hardware window
1221 * @sfb: The base resources for the hardware
1222 * @variant: The variant information for this window.
1223 * @res: Pointer to where to place the resultant window.
1224 *
1225 * Allocate and do the basic initialisation for one of the hardware's graphics
1226 * windows.
1227 */
1228 static int __devinit s3c_fb_probe_win(struct s3c_fb *sfb, unsigned int win_no,
1229 struct s3c_fb_win_variant *variant,
1230 struct s3c_fb_win **res)
1231 {
1232 struct fb_var_screeninfo *var;
1233 struct fb_videomode *initmode;
1234 struct s3c_fb_pd_win *windata;
1235 struct s3c_fb_win *win;
1236 struct fb_info *fbinfo;
1237 int palette_size;
1238 int ret;
1239
1240 dev_dbg(sfb->dev, "probing window %d, variant %p\n", win_no, variant);
1241
1242 init_waitqueue_head(&sfb->vsync_info.wait);
1243
1244 palette_size = variant->palette_sz * 4;
1245
1246 fbinfo = framebuffer_alloc(sizeof(struct s3c_fb_win) +
1247 palette_size * sizeof(u32), sfb->dev);
1248 if (!fbinfo) {
1249 dev_err(sfb->dev, "failed to allocate framebuffer\n");
1250 return -ENOENT;
1251 }
1252
1253 windata = sfb->pdata->win[win_no];
1254 initmode = &windata->win_mode;
1255
1256 WARN_ON(windata->max_bpp == 0);
1257 WARN_ON(windata->win_mode.xres == 0);
1258 WARN_ON(windata->win_mode.yres == 0);
1259
1260 win = fbinfo->par;
1261 *res = win;
1262 var = &fbinfo->var;
1263 win->variant = *variant;
1264 win->fbinfo = fbinfo;
1265 win->parent = sfb;
1266 win->windata = windata;
1267 win->index = win_no;
1268 win->palette_buffer = (u32 *)(win + 1);
1269
1270 ret = s3c_fb_alloc_memory(sfb, win);
1271 if (ret) {
1272 dev_err(sfb->dev, "failed to allocate display memory\n");
1273 return ret;
1274 }
1275
1276 /* setup the r/b/g positions for the window's palette */
1277 if (win->variant.palette_16bpp) {
1278 /* Set RGB 5:6:5 as default */
1279 win->palette.r.offset = 11;
1280 win->palette.r.length = 5;
1281 win->palette.g.offset = 5;
1282 win->palette.g.length = 6;
1283 win->palette.b.offset = 0;
1284 win->palette.b.length = 5;
1285
1286 } else {
1287 /* Set 8bpp or 8bpp and 1bit alpha */
1288 win->palette.r.offset = 16;
1289 win->palette.r.length = 8;
1290 win->palette.g.offset = 8;
1291 win->palette.g.length = 8;
1292 win->palette.b.offset = 0;
1293 win->palette.b.length = 8;
1294 }
1295
1296 /* setup the initial video mode from the window */
1297 fb_videomode_to_var(&fbinfo->var, initmode);
1298
1299 fbinfo->fix.type = FB_TYPE_PACKED_PIXELS;
1300 fbinfo->fix.accel = FB_ACCEL_NONE;
1301 fbinfo->var.activate = FB_ACTIVATE_NOW;
1302 fbinfo->var.vmode = FB_VMODE_NONINTERLACED;
1303 fbinfo->var.bits_per_pixel = windata->default_bpp;
1304 fbinfo->fbops = &s3c_fb_ops;
1305 fbinfo->flags = FBINFO_FLAG_DEFAULT;
1306 fbinfo->pseudo_palette = &win->pseudo_palette;
1307
1308 /* prepare to actually start the framebuffer */
1309
1310 ret = s3c_fb_check_var(&fbinfo->var, fbinfo);
1311 if (ret < 0) {
1312 dev_err(sfb->dev, "check_var failed on initial video params\n");
1313 return ret;
1314 }
1315
1316 /* create initial colour map */
1317
1318 ret = fb_alloc_cmap(&fbinfo->cmap, win->variant.palette_sz, 1);
1319 if (ret == 0)
1320 fb_set_cmap(&fbinfo->cmap, fbinfo);
1321 else
1322 dev_err(sfb->dev, "failed to allocate fb cmap\n");
1323
1324 s3c_fb_set_par(fbinfo);
1325
1326 dev_dbg(sfb->dev, "about to register framebuffer\n");
1327
1328 /* run the check_var and set_par on our configuration. */
1329
1330 ret = register_framebuffer(fbinfo);
1331 if (ret < 0) {
1332 dev_err(sfb->dev, "failed to register framebuffer\n");
1333 return ret;
1334 }
1335
1336 dev_info(sfb->dev, "window %d: fb %s\n", win_no, fbinfo->fix.id);
1337
1338 return 0;
1339 }
1340
1341 /**
1342 * s3c_fb_clear_win() - clear hardware window registers.
1343 * @sfb: The base resources for the hardware.
1344 * @win: The window to process.
1345 *
1346 * Reset the specific window registers to a known state.
1347 */
1348 static void s3c_fb_clear_win(struct s3c_fb *sfb, int win)
1349 {
1350 void __iomem *regs = sfb->regs;
1351 u32 reg;
1352
1353 writel(0, regs + sfb->variant.wincon + (win * 4));
1354 writel(0, regs + VIDOSD_A(win, sfb->variant));
1355 writel(0, regs + VIDOSD_B(win, sfb->variant));
1356 writel(0, regs + VIDOSD_C(win, sfb->variant));
1357 reg = readl(regs + SHADOWCON);
1358 writel(reg & ~SHADOWCON_WINx_PROTECT(win), regs + SHADOWCON);
1359 }
1360
1361 static int __devinit s3c_fb_probe(struct platform_device *pdev)
1362 {
1363 const struct platform_device_id *platid;
1364 struct s3c_fb_driverdata *fbdrv;
1365 struct device *dev = &pdev->dev;
1366 struct s3c_fb_platdata *pd;
1367 struct s3c_fb *sfb;
1368 struct resource *res;
1369 int win;
1370 int ret = 0;
1371 u32 reg;
1372
1373 platid = platform_get_device_id(pdev);
1374 fbdrv = (struct s3c_fb_driverdata *)platid->driver_data;
1375
1376 if (fbdrv->variant.nr_windows > S3C_FB_MAX_WIN) {
1377 dev_err(dev, "too many windows, cannot attach\n");
1378 return -EINVAL;
1379 }
1380
1381 pd = pdev->dev.platform_data;
1382 if (!pd) {
1383 dev_err(dev, "no platform data specified\n");
1384 return -EINVAL;
1385 }
1386
1387 sfb = devm_kzalloc(dev, sizeof(struct s3c_fb), GFP_KERNEL);
1388 if (!sfb) {
1389 dev_err(dev, "no memory for framebuffers\n");
1390 return -ENOMEM;
1391 }
1392
1393 dev_dbg(dev, "allocate new framebuffer %p\n", sfb);
1394
1395 sfb->dev = dev;
1396 sfb->pdata = pd;
1397 sfb->variant = fbdrv->variant;
1398
1399 spin_lock_init(&sfb->slock);
1400
1401 sfb->bus_clk = clk_get(dev, "lcd");
1402 if (IS_ERR(sfb->bus_clk)) {
1403 dev_err(dev, "failed to get bus clock\n");
1404 ret = PTR_ERR(sfb->bus_clk);
1405 goto err_sfb;
1406 }
1407
1408 clk_enable(sfb->bus_clk);
1409
1410 if (!sfb->variant.has_clksel) {
1411 sfb->lcd_clk = clk_get(dev, "sclk_fimd");
1412 if (IS_ERR(sfb->lcd_clk)) {
1413 dev_err(dev, "failed to get lcd clock\n");
1414 ret = PTR_ERR(sfb->lcd_clk);
1415 goto err_bus_clk;
1416 }
1417
1418 clk_enable(sfb->lcd_clk);
1419 }
1420
1421 pm_runtime_enable(sfb->dev);
1422
1423 res = platform_get_resource(pdev, IORESOURCE_MEM, 0);
1424 if (!res) {
1425 dev_err(dev, "failed to find registers\n");
1426 ret = -ENOENT;
1427 goto err_lcd_clk;
1428 }
1429
1430 sfb->regs = devm_request_and_ioremap(dev, res);
1431 if (!sfb->regs) {
1432 dev_err(dev, "failed to map registers\n");
1433 ret = -ENXIO;
1434 goto err_lcd_clk;
1435 }
1436
1437 res = platform_get_resource(pdev, IORESOURCE_IRQ, 0);
1438 if (!res) {
1439 dev_err(dev, "failed to acquire irq resource\n");
1440 ret = -ENOENT;
1441 goto err_lcd_clk;
1442 }
1443 sfb->irq_no = res->start;
1444 ret = devm_request_irq(dev, sfb->irq_no, s3c_fb_irq,
1445 0, "s3c_fb", sfb);
1446 if (ret) {
1447 dev_err(dev, "irq request failed\n");
1448 goto err_lcd_clk;
1449 }
1450
1451 dev_dbg(dev, "got resources (regs %p), probing windows\n", sfb->regs);
1452
1453 platform_set_drvdata(pdev, sfb);
1454 pm_runtime_get_sync(sfb->dev);
1455
1456 /* setup gpio and output polarity controls */
1457
1458 pd->setup_gpio();
1459
1460 writel(pd->vidcon1, sfb->regs + VIDCON1);
1461
1462 /* set video clock running at under-run */
1463 if (sfb->variant.has_fixvclk) {
1464 reg = readl(sfb->regs + VIDCON1);
1465 reg &= ~VIDCON1_VCLK_MASK;
1466 reg |= VIDCON1_VCLK_RUN;
1467 writel(reg, sfb->regs + VIDCON1);
1468 }
1469
1470 /* zero all windows before we do anything */
1471
1472 for (win = 0; win < fbdrv->variant.nr_windows; win++)
1473 s3c_fb_clear_win(sfb, win);
1474
1475 /* initialise colour key controls */
1476 for (win = 0; win < (fbdrv->variant.nr_windows - 1); win++) {
1477 void __iomem *regs = sfb->regs + sfb->variant.keycon;
1478
1479 regs += (win * 8);
1480 writel(0xffffff, regs + WKEYCON0);
1481 writel(0xffffff, regs + WKEYCON1);
1482 }
1483
1484 /* we have the register setup, start allocating framebuffers */
1485
1486 for (win = 0; win < fbdrv->variant.nr_windows; win++) {
1487 if (!pd->win[win])
1488 continue;
1489
1490 if (!pd->win[win]->win_mode.pixclock)
1491 s3c_fb_missing_pixclock(&pd->win[win]->win_mode);
1492
1493 ret = s3c_fb_probe_win(sfb, win, fbdrv->win[win],
1494 &sfb->windows[win]);
1495 if (ret < 0) {
1496 dev_err(dev, "failed to create window %d\n", win);
1497 for (; win >= 0; win--)
1498 s3c_fb_release_win(sfb, sfb->windows[win]);
1499 goto err_pm_runtime;
1500 }
1501 }
1502
1503 platform_set_drvdata(pdev, sfb);
1504 pm_runtime_put_sync(sfb->dev);
1505
1506 return 0;
1507
1508 err_pm_runtime:
1509 pm_runtime_put_sync(sfb->dev);
1510
1511 err_lcd_clk:
1512 pm_runtime_disable(sfb->dev);
1513
1514 if (!sfb->variant.has_clksel) {
1515 clk_disable(sfb->lcd_clk);
1516 clk_put(sfb->lcd_clk);
1517 }
1518
1519 err_bus_clk:
1520 clk_disable(sfb->bus_clk);
1521 clk_put(sfb->bus_clk);
1522
1523 err_sfb:
1524 return ret;
1525 }
1526
1527 /**
1528 * s3c_fb_remove() - Cleanup on module finalisation
1529 * @pdev: The platform device we are bound to.
1530 *
1531 * Shutdown and then release all the resources that the driver allocated
1532 * on initialisation.
1533 */
1534 static int __devexit s3c_fb_remove(struct platform_device *pdev)
1535 {
1536 struct s3c_fb *sfb = platform_get_drvdata(pdev);
1537 int win;
1538
1539 pm_runtime_get_sync(sfb->dev);
1540
1541 for (win = 0; win < S3C_FB_MAX_WIN; win++)
1542 if (sfb->windows[win])
1543 s3c_fb_release_win(sfb, sfb->windows[win]);
1544
1545 if (!sfb->variant.has_clksel) {
1546 clk_disable(sfb->lcd_clk);
1547 clk_put(sfb->lcd_clk);
1548 }
1549
1550 clk_disable(sfb->bus_clk);
1551 clk_put(sfb->bus_clk);
1552
1553 pm_runtime_put_sync(sfb->dev);
1554 pm_runtime_disable(sfb->dev);
1555
1556 return 0;
1557 }
1558
1559 #ifdef CONFIG_PM_SLEEP
1560 static int s3c_fb_suspend(struct device *dev)
1561 {
1562 struct platform_device *pdev = to_platform_device(dev);
1563 struct s3c_fb *sfb = platform_get_drvdata(pdev);
1564 struct s3c_fb_win *win;
1565 int win_no;
1566
1567 for (win_no = S3C_FB_MAX_WIN - 1; win_no >= 0; win_no--) {
1568 win = sfb->windows[win_no];
1569 if (!win)
1570 continue;
1571
1572 /* use the blank function to push into power-down */
1573 s3c_fb_blank(FB_BLANK_POWERDOWN, win->fbinfo);
1574 }
1575
1576 if (!sfb->variant.has_clksel)
1577 clk_disable(sfb->lcd_clk);
1578
1579 clk_disable(sfb->bus_clk);
1580 return 0;
1581 }
1582
1583 static int s3c_fb_resume(struct device *dev)
1584 {
1585 struct platform_device *pdev = to_platform_device(dev);
1586 struct s3c_fb *sfb = platform_get_drvdata(pdev);
1587 struct s3c_fb_platdata *pd = sfb->pdata;
1588 struct s3c_fb_win *win;
1589 int win_no;
1590 u32 reg;
1591
1592 clk_enable(sfb->bus_clk);
1593
1594 if (!sfb->variant.has_clksel)
1595 clk_enable(sfb->lcd_clk);
1596
1597 /* setup gpio and output polarity controls */
1598 pd->setup_gpio();
1599 writel(pd->vidcon1, sfb->regs + VIDCON1);
1600
1601 /* set video clock running at under-run */
1602 if (sfb->variant.has_fixvclk) {
1603 reg = readl(sfb->regs + VIDCON1);
1604 reg &= ~VIDCON1_VCLK_MASK;
1605 reg |= VIDCON1_VCLK_RUN;
1606 writel(reg, sfb->regs + VIDCON1);
1607 }
1608
1609 /* zero all windows before we do anything */
1610 for (win_no = 0; win_no < sfb->variant.nr_windows; win_no++)
1611 s3c_fb_clear_win(sfb, win_no);
1612
1613 for (win_no = 0; win_no < sfb->variant.nr_windows - 1; win_no++) {
1614 void __iomem *regs = sfb->regs + sfb->variant.keycon;
1615 win = sfb->windows[win_no];
1616 if (!win)
1617 continue;
1618
1619 shadow_protect_win(win, 1);
1620 regs += (win_no * 8);
1621 writel(0xffffff, regs + WKEYCON0);
1622 writel(0xffffff, regs + WKEYCON1);
1623 shadow_protect_win(win, 0);
1624 }
1625
1626 /* restore framebuffers */
1627 for (win_no = 0; win_no < S3C_FB_MAX_WIN; win_no++) {
1628 win = sfb->windows[win_no];
1629 if (!win)
1630 continue;
1631
1632 dev_dbg(&pdev->dev, "resuming window %d\n", win_no);
1633 s3c_fb_set_par(win->fbinfo);
1634 }
1635
1636 return 0;
1637 }
1638 #endif
1639
1640 #ifdef CONFIG_PM_RUNTIME
1641 static int s3c_fb_runtime_suspend(struct device *dev)
1642 {
1643 struct platform_device *pdev = to_platform_device(dev);
1644 struct s3c_fb *sfb = platform_get_drvdata(pdev);
1645
1646 if (!sfb->variant.has_clksel)
1647 clk_disable(sfb->lcd_clk);
1648
1649 clk_disable(sfb->bus_clk);
1650
1651 return 0;
1652 }
1653
1654 static int s3c_fb_runtime_resume(struct device *dev)
1655 {
1656 struct platform_device *pdev = to_platform_device(dev);
1657 struct s3c_fb *sfb = platform_get_drvdata(pdev);
1658 struct s3c_fb_platdata *pd = sfb->pdata;
1659
1660 clk_enable(sfb->bus_clk);
1661
1662 if (!sfb->variant.has_clksel)
1663 clk_enable(sfb->lcd_clk);
1664
1665 /* setup gpio and output polarity controls */
1666 pd->setup_gpio();
1667 writel(pd->vidcon1, sfb->regs + VIDCON1);
1668
1669 return 0;
1670 }
1671 #endif
1672
1673 #define VALID_BPP124 (VALID_BPP(1) | VALID_BPP(2) | VALID_BPP(4))
1674 #define VALID_BPP1248 (VALID_BPP124 | VALID_BPP(8))
1675
1676 static struct s3c_fb_win_variant s3c_fb_data_64xx_wins[] = {
1677 [0] = {
1678 .has_osd_c = 1,
1679 .osd_size_off = 0x8,
1680 .palette_sz = 256,
1681 .valid_bpp = (VALID_BPP1248 | VALID_BPP(16) |
1682 VALID_BPP(18) | VALID_BPP(24)),
1683 },
1684 [1] = {
1685 .has_osd_c = 1,
1686 .has_osd_d = 1,
1687 .osd_size_off = 0xc,
1688 .has_osd_alpha = 1,
1689 .palette_sz = 256,
1690 .valid_bpp = (VALID_BPP1248 | VALID_BPP(16) |
1691 VALID_BPP(18) | VALID_BPP(19) |
1692 VALID_BPP(24) | VALID_BPP(25) |
1693 VALID_BPP(28)),
1694 },
1695 [2] = {
1696 .has_osd_c = 1,
1697 .has_osd_d = 1,
1698 .osd_size_off = 0xc,
1699 .has_osd_alpha = 1,
1700 .palette_sz = 16,
1701 .palette_16bpp = 1,
1702 .valid_bpp = (VALID_BPP1248 | VALID_BPP(16) |
1703 VALID_BPP(18) | VALID_BPP(19) |
1704 VALID_BPP(24) | VALID_BPP(25) |
1705 VALID_BPP(28)),
1706 },
1707 [3] = {
1708 .has_osd_c = 1,
1709 .has_osd_alpha = 1,
1710 .palette_sz = 16,
1711 .palette_16bpp = 1,
1712 .valid_bpp = (VALID_BPP124 | VALID_BPP(16) |
1713 VALID_BPP(18) | VALID_BPP(19) |
1714 VALID_BPP(24) | VALID_BPP(25) |
1715 VALID_BPP(28)),
1716 },
1717 [4] = {
1718 .has_osd_c = 1,
1719 .has_osd_alpha = 1,
1720 .palette_sz = 4,
1721 .palette_16bpp = 1,
1722 .valid_bpp = (VALID_BPP(1) | VALID_BPP(2) |
1723 VALID_BPP(16) | VALID_BPP(18) |
1724 VALID_BPP(19) | VALID_BPP(24) |
1725 VALID_BPP(25) | VALID_BPP(28)),
1726 },
1727 };
1728
1729 static struct s3c_fb_win_variant s3c_fb_data_s5p_wins[] = {
1730 [0] = {
1731 .has_osd_c = 1,
1732 .osd_size_off = 0x8,
1733 .palette_sz = 256,
1734 .valid_bpp = (VALID_BPP1248 | VALID_BPP(13) |
1735 VALID_BPP(15) | VALID_BPP(16) |
1736 VALID_BPP(18) | VALID_BPP(19) |
1737 VALID_BPP(24) | VALID_BPP(25) |
1738 VALID_BPP(32)),
1739 },
1740 [1] = {
1741 .has_osd_c = 1,
1742 .has_osd_d = 1,
1743 .osd_size_off = 0xc,
1744 .has_osd_alpha = 1,
1745 .palette_sz = 256,
1746 .valid_bpp = (VALID_BPP1248 | VALID_BPP(13) |
1747 VALID_BPP(15) | VALID_BPP(16) |
1748 VALID_BPP(18) | VALID_BPP(19) |
1749 VALID_BPP(24) | VALID_BPP(25) |
1750 VALID_BPP(32)),
1751 },
1752 [2] = {
1753 .has_osd_c = 1,
1754 .has_osd_d = 1,
1755 .osd_size_off = 0xc,
1756 .has_osd_alpha = 1,
1757 .palette_sz = 256,
1758 .valid_bpp = (VALID_BPP1248 | VALID_BPP(13) |
1759 VALID_BPP(15) | VALID_BPP(16) |
1760 VALID_BPP(18) | VALID_BPP(19) |
1761 VALID_BPP(24) | VALID_BPP(25) |
1762 VALID_BPP(32)),
1763 },
1764 [3] = {
1765 .has_osd_c = 1,
1766 .has_osd_alpha = 1,
1767 .palette_sz = 256,
1768 .valid_bpp = (VALID_BPP1248 | VALID_BPP(13) |
1769 VALID_BPP(15) | VALID_BPP(16) |
1770 VALID_BPP(18) | VALID_BPP(19) |
1771 VALID_BPP(24) | VALID_BPP(25) |
1772 VALID_BPP(32)),
1773 },
1774 [4] = {
1775 .has_osd_c = 1,
1776 .has_osd_alpha = 1,
1777 .palette_sz = 256,
1778 .valid_bpp = (VALID_BPP1248 | VALID_BPP(13) |
1779 VALID_BPP(15) | VALID_BPP(16) |
1780 VALID_BPP(18) | VALID_BPP(19) |
1781 VALID_BPP(24) | VALID_BPP(25) |
1782 VALID_BPP(32)),
1783 },
1784 };
1785
1786 static struct s3c_fb_driverdata s3c_fb_data_64xx = {
1787 .variant = {
1788 .nr_windows = 5,
1789 .vidtcon = VIDTCON0,
1790 .wincon = WINCON(0),
1791 .winmap = WINxMAP(0),
1792 .keycon = WKEYCON,
1793 .osd = VIDOSD_BASE,
1794 .osd_stride = 16,
1795 .buf_start = VIDW_BUF_START(0),
1796 .buf_size = VIDW_BUF_SIZE(0),
1797 .buf_end = VIDW_BUF_END(0),
1798
1799 .palette = {
1800 [0] = 0x400,
1801 [1] = 0x800,
1802 [2] = 0x300,
1803 [3] = 0x320,
1804 [4] = 0x340,
1805 },
1806
1807 .has_prtcon = 1,
1808 .has_clksel = 1,
1809 },
1810 .win[0] = &s3c_fb_data_64xx_wins[0],
1811 .win[1] = &s3c_fb_data_64xx_wins[1],
1812 .win[2] = &s3c_fb_data_64xx_wins[2],
1813 .win[3] = &s3c_fb_data_64xx_wins[3],
1814 .win[4] = &s3c_fb_data_64xx_wins[4],
1815 };
1816
1817 static struct s3c_fb_driverdata s3c_fb_data_s5pc100 = {
1818 .variant = {
1819 .nr_windows = 5,
1820 .vidtcon = VIDTCON0,
1821 .wincon = WINCON(0),
1822 .winmap = WINxMAP(0),
1823 .keycon = WKEYCON,
1824 .osd = VIDOSD_BASE,
1825 .osd_stride = 16,
1826 .buf_start = VIDW_BUF_START(0),
1827 .buf_size = VIDW_BUF_SIZE(0),
1828 .buf_end = VIDW_BUF_END(0),
1829
1830 .palette = {
1831 [0] = 0x2400,
1832 [1] = 0x2800,
1833 [2] = 0x2c00,
1834 [3] = 0x3000,
1835 [4] = 0x3400,
1836 },
1837
1838 .has_prtcon = 1,
1839 .has_blendcon = 1,
1840 .has_clksel = 1,
1841 },
1842 .win[0] = &s3c_fb_data_s5p_wins[0],
1843 .win[1] = &s3c_fb_data_s5p_wins[1],
1844 .win[2] = &s3c_fb_data_s5p_wins[2],
1845 .win[3] = &s3c_fb_data_s5p_wins[3],
1846 .win[4] = &s3c_fb_data_s5p_wins[4],
1847 };
1848
1849 static struct s3c_fb_driverdata s3c_fb_data_s5pv210 = {
1850 .variant = {
1851 .nr_windows = 5,
1852 .vidtcon = VIDTCON0,
1853 .wincon = WINCON(0),
1854 .winmap = WINxMAP(0),
1855 .keycon = WKEYCON,
1856 .osd = VIDOSD_BASE,
1857 .osd_stride = 16,
1858 .buf_start = VIDW_BUF_START(0),
1859 .buf_size = VIDW_BUF_SIZE(0),
1860 .buf_end = VIDW_BUF_END(0),
1861
1862 .palette = {
1863 [0] = 0x2400,
1864 [1] = 0x2800,
1865 [2] = 0x2c00,
1866 [3] = 0x3000,
1867 [4] = 0x3400,
1868 },
1869
1870 .has_shadowcon = 1,
1871 .has_blendcon = 1,
1872 .has_clksel = 1,
1873 .has_fixvclk = 1,
1874 },
1875 .win[0] = &s3c_fb_data_s5p_wins[0],
1876 .win[1] = &s3c_fb_data_s5p_wins[1],
1877 .win[2] = &s3c_fb_data_s5p_wins[2],
1878 .win[3] = &s3c_fb_data_s5p_wins[3],
1879 .win[4] = &s3c_fb_data_s5p_wins[4],
1880 };
1881
1882 static struct s3c_fb_driverdata s3c_fb_data_exynos4 = {
1883 .variant = {
1884 .nr_windows = 5,
1885 .vidtcon = VIDTCON0,
1886 .wincon = WINCON(0),
1887 .winmap = WINxMAP(0),
1888 .keycon = WKEYCON,
1889 .osd = VIDOSD_BASE,
1890 .osd_stride = 16,
1891 .buf_start = VIDW_BUF_START(0),
1892 .buf_size = VIDW_BUF_SIZE(0),
1893 .buf_end = VIDW_BUF_END(0),
1894
1895 .palette = {
1896 [0] = 0x2400,
1897 [1] = 0x2800,
1898 [2] = 0x2c00,
1899 [3] = 0x3000,
1900 [4] = 0x3400,
1901 },
1902
1903 .has_shadowcon = 1,
1904 .has_blendcon = 1,
1905 .has_fixvclk = 1,
1906 },
1907 .win[0] = &s3c_fb_data_s5p_wins[0],
1908 .win[1] = &s3c_fb_data_s5p_wins[1],
1909 .win[2] = &s3c_fb_data_s5p_wins[2],
1910 .win[3] = &s3c_fb_data_s5p_wins[3],
1911 .win[4] = &s3c_fb_data_s5p_wins[4],
1912 };
1913
1914 static struct s3c_fb_driverdata s3c_fb_data_exynos5 = {
1915 .variant = {
1916 .nr_windows = 5,
1917 .vidtcon = VIDTCON0,
1918 .wincon = WINCON(0),
1919 .winmap = WINxMAP(0),
1920 .keycon = WKEYCON,
1921 .osd = VIDOSD_BASE,
1922 .osd_stride = 16,
1923 .buf_start = VIDW_BUF_START(0),
1924 .buf_size = VIDW_BUF_SIZE(0),
1925 .buf_end = VIDW_BUF_END(0),
1926
1927 .palette = {
1928 [0] = 0x2400,
1929 [1] = 0x2800,
1930 [2] = 0x2c00,
1931 [3] = 0x3000,
1932 [4] = 0x3400,
1933 },
1934 .has_shadowcon = 1,
1935 .has_blendcon = 1,
1936 .has_fixvclk = 1,
1937 },
1938 .win[0] = &s3c_fb_data_s5p_wins[0],
1939 .win[1] = &s3c_fb_data_s5p_wins[1],
1940 .win[2] = &s3c_fb_data_s5p_wins[2],
1941 .win[3] = &s3c_fb_data_s5p_wins[3],
1942 .win[4] = &s3c_fb_data_s5p_wins[4],
1943 };
1944
1945 /* S3C2443/S3C2416 style hardware */
1946 static struct s3c_fb_driverdata s3c_fb_data_s3c2443 = {
1947 .variant = {
1948 .nr_windows = 2,
1949 .is_2443 = 1,
1950
1951 .vidtcon = 0x08,
1952 .wincon = 0x14,
1953 .winmap = 0xd0,
1954 .keycon = 0xb0,
1955 .osd = 0x28,
1956 .osd_stride = 12,
1957 .buf_start = 0x64,
1958 .buf_size = 0x94,
1959 .buf_end = 0x7c,
1960
1961 .palette = {
1962 [0] = 0x400,
1963 [1] = 0x800,
1964 },
1965 .has_clksel = 1,
1966 },
1967 .win[0] = &(struct s3c_fb_win_variant) {
1968 .palette_sz = 256,
1969 .valid_bpp = VALID_BPP1248 | VALID_BPP(16) | VALID_BPP(24),
1970 },
1971 .win[1] = &(struct s3c_fb_win_variant) {
1972 .has_osd_c = 1,
1973 .has_osd_alpha = 1,
1974 .palette_sz = 256,
1975 .valid_bpp = (VALID_BPP1248 | VALID_BPP(16) |
1976 VALID_BPP(18) | VALID_BPP(19) |
1977 VALID_BPP(24) | VALID_BPP(25) |
1978 VALID_BPP(28)),
1979 },
1980 };
1981
1982 static struct s3c_fb_driverdata s3c_fb_data_s5p64x0 = {
1983 .variant = {
1984 .nr_windows = 3,
1985 .vidtcon = VIDTCON0,
1986 .wincon = WINCON(0),
1987 .winmap = WINxMAP(0),
1988 .keycon = WKEYCON,
1989 .osd = VIDOSD_BASE,
1990 .osd_stride = 16,
1991 .buf_start = VIDW_BUF_START(0),
1992 .buf_size = VIDW_BUF_SIZE(0),
1993 .buf_end = VIDW_BUF_END(0),
1994
1995 .palette = {
1996 [0] = 0x2400,
1997 [1] = 0x2800,
1998 [2] = 0x2c00,
1999 },
2000
2001 .has_blendcon = 1,
2002 .has_fixvclk = 1,
2003 },
2004 .win[0] = &s3c_fb_data_s5p_wins[0],
2005 .win[1] = &s3c_fb_data_s5p_wins[1],
2006 .win[2] = &s3c_fb_data_s5p_wins[2],
2007 };
2008
2009 static struct platform_device_id s3c_fb_driver_ids[] = {
2010 {
2011 .name = "s3c-fb",
2012 .driver_data = (unsigned long)&s3c_fb_data_64xx,
2013 }, {
2014 .name = "s5pc100-fb",
2015 .driver_data = (unsigned long)&s3c_fb_data_s5pc100,
2016 }, {
2017 .name = "s5pv210-fb",
2018 .driver_data = (unsigned long)&s3c_fb_data_s5pv210,
2019 }, {
2020 .name = "exynos4-fb",
2021 .driver_data = (unsigned long)&s3c_fb_data_exynos4,
2022 }, {
2023 .name = "exynos5-fb",
2024 .driver_data = (unsigned long)&s3c_fb_data_exynos5,
2025 }, {
2026 .name = "s3c2443-fb",
2027 .driver_data = (unsigned long)&s3c_fb_data_s3c2443,
2028 }, {
2029 .name = "s5p64x0-fb",
2030 .driver_data = (unsigned long)&s3c_fb_data_s5p64x0,
2031 },
2032 {},
2033 };
2034 MODULE_DEVICE_TABLE(platform, s3c_fb_driver_ids);
2035
2036 static const struct dev_pm_ops s3cfb_pm_ops = {
2037 SET_SYSTEM_SLEEP_PM_OPS(s3c_fb_suspend, s3c_fb_resume)
2038 SET_RUNTIME_PM_OPS(s3c_fb_runtime_suspend, s3c_fb_runtime_resume,
2039 NULL)
2040 };
2041
2042 static struct platform_driver s3c_fb_driver = {
2043 .probe = s3c_fb_probe,
2044 .remove = __devexit_p(s3c_fb_remove),
2045 .id_table = s3c_fb_driver_ids,
2046 .driver = {
2047 .name = "s3c-fb",
2048 .owner = THIS_MODULE,
2049 .pm = &s3cfb_pm_ops,
2050 },
2051 };
2052
2053 module_platform_driver(s3c_fb_driver);
2054
2055 MODULE_AUTHOR("Ben Dooks <ben@simtec.co.uk>");
2056 MODULE_DESCRIPTION("Samsung S3C SoC Framebuffer driver");
2057 MODULE_LICENSE("GPL");
2058 MODULE_ALIAS("platform:s3c-fb");
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