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[ARM] pxafb: small cleanup of the smart panel code
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1 /*
2  *  linux/drivers/video/pxafb.c
3  *
4  *  Copyright (C) 1999 Eric A. Thomas.
5  *  Copyright (C) 2004 Jean-Frederic Clere.
6  *  Copyright (C) 2004 Ian Campbell.
7  *  Copyright (C) 2004 Jeff Lackey.
8  *   Based on sa1100fb.c Copyright (C) 1999 Eric A. Thomas
9  *  which in turn is
10  *   Based on acornfb.c Copyright (C) Russell King.
11  *
12  * This file is subject to the terms and conditions of the GNU General Public
13  * License.  See the file COPYING in the main directory of this archive for
14  * more details.
15  *
16  *              Intel PXA250/210 LCD Controller Frame Buffer Driver
17  *
18  * Please direct your questions and comments on this driver to the following
19  * email address:
20  *
21  *      linux-arm-kernel@lists.arm.linux.org.uk
22  *
23  */
24
25 #include <linux/module.h>
26 #include <linux/moduleparam.h>
27 #include <linux/kernel.h>
28 #include <linux/sched.h>
29 #include <linux/errno.h>
30 #include <linux/string.h>
31 #include <linux/interrupt.h>
32 #include <linux/slab.h>
33 #include <linux/mm.h>
34 #include <linux/fb.h>
35 #include <linux/delay.h>
36 #include <linux/init.h>
37 #include <linux/ioport.h>
38 #include <linux/cpufreq.h>
39 #include <linux/platform_device.h>
40 #include <linux/dma-mapping.h>
41 #include <linux/clk.h>
42 #include <linux/err.h>
43 #include <linux/completion.h>
44 #include <linux/mutex.h>
45 #include <linux/kthread.h>
46 #include <linux/freezer.h>
47
48 #include <mach/hardware.h>
49 #include <asm/io.h>
50 #include <asm/irq.h>
51 #include <asm/div64.h>
52 #include <mach/pxa-regs.h>
53 #include <mach/bitfield.h>
54 #include <mach/pxafb.h>
55
56 /*
57  * Complain if VAR is out of range.
58  */
59 #define DEBUG_VAR 1
60
61 #include "pxafb.h"
62
63 /* Bits which should not be set in machine configuration structures */
64 #define LCCR0_INVALID_CONFIG_MASK       (LCCR0_OUM | LCCR0_BM | LCCR0_QDM |\
65                                          LCCR0_DIS | LCCR0_EFM | LCCR0_IUM |\
66                                          LCCR0_SFM | LCCR0_LDM | LCCR0_ENB)
67
68 #define LCCR3_INVALID_CONFIG_MASK       (LCCR3_HSP | LCCR3_VSP |\
69                                          LCCR3_PCD | LCCR3_BPP)
70
71 static int pxafb_activate_var(struct fb_var_screeninfo *var,
72                                 struct pxafb_info *);
73 static void set_ctrlr_state(struct pxafb_info *fbi, u_int state);
74
75 static inline unsigned long
76 lcd_readl(struct pxafb_info *fbi, unsigned int off)
77 {
78         return __raw_readl(fbi->mmio_base + off);
79 }
80
81 static inline void
82 lcd_writel(struct pxafb_info *fbi, unsigned int off, unsigned long val)
83 {
84         __raw_writel(val, fbi->mmio_base + off);
85 }
86
87 static inline void pxafb_schedule_work(struct pxafb_info *fbi, u_int state)
88 {
89         unsigned long flags;
90
91         local_irq_save(flags);
92         /*
93          * We need to handle two requests being made at the same time.
94          * There are two important cases:
95          *  1. When we are changing VT (C_REENABLE) while unblanking
96          *     (C_ENABLE) We must perform the unblanking, which will
97          *     do our REENABLE for us.
98          *  2. When we are blanking, but immediately unblank before
99          *     we have blanked.  We do the "REENABLE" thing here as
100          *     well, just to be sure.
101          */
102         if (fbi->task_state == C_ENABLE && state == C_REENABLE)
103                 state = (u_int) -1;
104         if (fbi->task_state == C_DISABLE && state == C_ENABLE)
105                 state = C_REENABLE;
106
107         if (state != (u_int)-1) {
108                 fbi->task_state = state;
109                 schedule_work(&fbi->task);
110         }
111         local_irq_restore(flags);
112 }
113
114 static inline u_int chan_to_field(u_int chan, struct fb_bitfield *bf)
115 {
116         chan &= 0xffff;
117         chan >>= 16 - bf->length;
118         return chan << bf->offset;
119 }
120
121 static int
122 pxafb_setpalettereg(u_int regno, u_int red, u_int green, u_int blue,
123                        u_int trans, struct fb_info *info)
124 {
125         struct pxafb_info *fbi = (struct pxafb_info *)info;
126         u_int val;
127
128         if (regno >= fbi->palette_size)
129                 return 1;
130
131         if (fbi->fb.var.grayscale) {
132                 fbi->palette_cpu[regno] = ((blue >> 8) & 0x00ff);
133                 return 0;
134         }
135
136         switch (fbi->lccr4 & LCCR4_PAL_FOR_MASK) {
137         case LCCR4_PAL_FOR_0:
138                 val  = ((red   >>  0) & 0xf800);
139                 val |= ((green >>  5) & 0x07e0);
140                 val |= ((blue  >> 11) & 0x001f);
141                 fbi->palette_cpu[regno] = val;
142                 break;
143         case LCCR4_PAL_FOR_1:
144                 val  = ((red   << 8) & 0x00f80000);
145                 val |= ((green >> 0) & 0x0000fc00);
146                 val |= ((blue  >> 8) & 0x000000f8);
147                 ((u32 *)(fbi->palette_cpu))[regno] = val;
148                 break;
149         case LCCR4_PAL_FOR_2:
150                 val  = ((red   << 8) & 0x00fc0000);
151                 val |= ((green >> 0) & 0x0000fc00);
152                 val |= ((blue  >> 8) & 0x000000fc);
153                 ((u32 *)(fbi->palette_cpu))[regno] = val;
154                 break;
155         }
156
157         return 0;
158 }
159
160 static int
161 pxafb_setcolreg(u_int regno, u_int red, u_int green, u_int blue,
162                    u_int trans, struct fb_info *info)
163 {
164         struct pxafb_info *fbi = (struct pxafb_info *)info;
165         unsigned int val;
166         int ret = 1;
167
168         /*
169          * If inverse mode was selected, invert all the colours
170          * rather than the register number.  The register number
171          * is what you poke into the framebuffer to produce the
172          * colour you requested.
173          */
174         if (fbi->cmap_inverse) {
175                 red   = 0xffff - red;
176                 green = 0xffff - green;
177                 blue  = 0xffff - blue;
178         }
179
180         /*
181          * If greyscale is true, then we convert the RGB value
182          * to greyscale no matter what visual we are using.
183          */
184         if (fbi->fb.var.grayscale)
185                 red = green = blue = (19595 * red + 38470 * green +
186                                         7471 * blue) >> 16;
187
188         switch (fbi->fb.fix.visual) {
189         case FB_VISUAL_TRUECOLOR:
190                 /*
191                  * 16-bit True Colour.  We encode the RGB value
192                  * according to the RGB bitfield information.
193                  */
194                 if (regno < 16) {
195                         u32 *pal = fbi->fb.pseudo_palette;
196
197                         val  = chan_to_field(red, &fbi->fb.var.red);
198                         val |= chan_to_field(green, &fbi->fb.var.green);
199                         val |= chan_to_field(blue, &fbi->fb.var.blue);
200
201                         pal[regno] = val;
202                         ret = 0;
203                 }
204                 break;
205
206         case FB_VISUAL_STATIC_PSEUDOCOLOR:
207         case FB_VISUAL_PSEUDOCOLOR:
208                 ret = pxafb_setpalettereg(regno, red, green, blue, trans, info);
209                 break;
210         }
211
212         return ret;
213 }
214
215 /*
216  *  pxafb_bpp_to_lccr3():
217  *    Convert a bits per pixel value to the correct bit pattern for LCCR3
218  */
219 static int pxafb_bpp_to_lccr3(struct fb_var_screeninfo *var)
220 {
221         int ret = 0;
222         switch (var->bits_per_pixel) {
223         case 1:  ret = LCCR3_1BPP; break;
224         case 2:  ret = LCCR3_2BPP; break;
225         case 4:  ret = LCCR3_4BPP; break;
226         case 8:  ret = LCCR3_8BPP; break;
227         case 16: ret = LCCR3_16BPP; break;
228         case 24:
229                 switch (var->red.length + var->green.length +
230                                 var->blue.length + var->transp.length) {
231                 case 18: ret = LCCR3_18BPP_P | LCCR3_PDFOR_3; break;
232                 case 19: ret = LCCR3_19BPP_P; break;
233                 }
234                 break;
235         case 32:
236                 switch (var->red.length + var->green.length +
237                                 var->blue.length + var->transp.length) {
238                 case 18: ret = LCCR3_18BPP | LCCR3_PDFOR_3; break;
239                 case 19: ret = LCCR3_19BPP; break;
240                 case 24: ret = LCCR3_24BPP | LCCR3_PDFOR_3; break;
241                 case 25: ret = LCCR3_25BPP; break;
242                 }
243                 break;
244         }
245         return ret;
246 }
247
248 #ifdef CONFIG_CPU_FREQ
249 /*
250  *  pxafb_display_dma_period()
251  *    Calculate the minimum period (in picoseconds) between two DMA
252  *    requests for the LCD controller.  If we hit this, it means we're
253  *    doing nothing but LCD DMA.
254  */
255 static unsigned int pxafb_display_dma_period(struct fb_var_screeninfo *var)
256 {
257         /*
258          * Period = pixclock * bits_per_byte * bytes_per_transfer
259          *              / memory_bits_per_pixel;
260          */
261         return var->pixclock * 8 * 16 / var->bits_per_pixel;
262 }
263 #endif
264
265 /*
266  * Select the smallest mode that allows the desired resolution to be
267  * displayed. If desired parameters can be rounded up.
268  */
269 static struct pxafb_mode_info *pxafb_getmode(struct pxafb_mach_info *mach,
270                                              struct fb_var_screeninfo *var)
271 {
272         struct pxafb_mode_info *mode = NULL;
273         struct pxafb_mode_info *modelist = mach->modes;
274         unsigned int best_x = 0xffffffff, best_y = 0xffffffff;
275         unsigned int i;
276
277         for (i = 0; i < mach->num_modes; i++) {
278                 if (modelist[i].xres >= var->xres &&
279                     modelist[i].yres >= var->yres &&
280                     modelist[i].xres < best_x &&
281                     modelist[i].yres < best_y &&
282                     modelist[i].bpp >= var->bits_per_pixel) {
283                         best_x = modelist[i].xres;
284                         best_y = modelist[i].yres;
285                         mode = &modelist[i];
286                 }
287         }
288
289         return mode;
290 }
291
292 static void pxafb_setmode(struct fb_var_screeninfo *var,
293                           struct pxafb_mode_info *mode)
294 {
295         var->xres               = mode->xres;
296         var->yres               = mode->yres;
297         var->bits_per_pixel     = mode->bpp;
298         var->pixclock           = mode->pixclock;
299         var->hsync_len          = mode->hsync_len;
300         var->left_margin        = mode->left_margin;
301         var->right_margin       = mode->right_margin;
302         var->vsync_len          = mode->vsync_len;
303         var->upper_margin       = mode->upper_margin;
304         var->lower_margin       = mode->lower_margin;
305         var->sync               = mode->sync;
306         var->grayscale          = mode->cmap_greyscale;
307         var->xres_virtual       = var->xres;
308         var->yres_virtual       = var->yres;
309 }
310
311 /*
312  *  pxafb_check_var():
313  *    Get the video params out of 'var'. If a value doesn't fit, round it up,
314  *    if it's too big, return -EINVAL.
315  *
316  *    Round up in the following order: bits_per_pixel, xres,
317  *    yres, xres_virtual, yres_virtual, xoffset, yoffset, grayscale,
318  *    bitfields, horizontal timing, vertical timing.
319  */
320 static int pxafb_check_var(struct fb_var_screeninfo *var, struct fb_info *info)
321 {
322         struct pxafb_info *fbi = (struct pxafb_info *)info;
323         struct pxafb_mach_info *inf = fbi->dev->platform_data;
324
325         if (var->xres < MIN_XRES)
326                 var->xres = MIN_XRES;
327         if (var->yres < MIN_YRES)
328                 var->yres = MIN_YRES;
329
330         if (inf->fixed_modes) {
331                 struct pxafb_mode_info *mode;
332
333                 mode = pxafb_getmode(inf, var);
334                 if (!mode)
335                         return -EINVAL;
336                 pxafb_setmode(var, mode);
337         } else {
338                 if (var->xres > inf->modes->xres)
339                         return -EINVAL;
340                 if (var->yres > inf->modes->yres)
341                         return -EINVAL;
342                 if (var->bits_per_pixel > inf->modes->bpp)
343                         return -EINVAL;
344         }
345
346         var->xres_virtual =
347                 max(var->xres_virtual, var->xres);
348         var->yres_virtual =
349                 max(var->yres_virtual, var->yres);
350
351         /*
352          * Setup the RGB parameters for this display.
353          *
354          * The pixel packing format is described on page 7-11 of the
355          * PXA2XX Developer's Manual.
356          */
357         if (var->bits_per_pixel == 16) {
358                 var->red.offset   = 11; var->red.length   = 5;
359                 var->green.offset = 5;  var->green.length = 6;
360                 var->blue.offset  = 0;  var->blue.length  = 5;
361                 var->transp.offset = var->transp.length = 0;
362         } else if (var->bits_per_pixel > 16) {
363                 struct pxafb_mode_info *mode;
364
365                 mode = pxafb_getmode(inf, var);
366                 if (!mode)
367                         return -EINVAL;
368
369                 switch (mode->depth) {
370                 case 18: /* RGB666 */
371                         var->transp.offset = var->transp.length     = 0;
372                         var->red.offset    = 12; var->red.length    = 6;
373                         var->green.offset  = 6;  var->green.length  = 6;
374                         var->blue.offset   = 0;  var->blue.length   = 6;
375                         break;
376                 case 19: /* RGBT666 */
377                         var->transp.offset = 18; var->transp.length = 1;
378                         var->red.offset    = 12; var->red.length    = 6;
379                         var->green.offset  = 6;  var->green.length  = 6;
380                         var->blue.offset   = 0;  var->blue.length   = 6;
381                         break;
382                 case 24: /* RGB888 */
383                         var->transp.offset = var->transp.length     = 0;
384                         var->red.offset    = 16; var->red.length    = 8;
385                         var->green.offset  = 8;  var->green.length  = 8;
386                         var->blue.offset   = 0;  var->blue.length   = 8;
387                         break;
388                 case 25: /* RGBT888 */
389                         var->transp.offset = 24; var->transp.length = 1;
390                         var->red.offset    = 16; var->red.length    = 8;
391                         var->green.offset  = 8;  var->green.length  = 8;
392                         var->blue.offset   = 0;  var->blue.length   = 8;
393                         break;
394                 default:
395                         return -EINVAL;
396                 }
397         } else {
398                 var->red.offset = var->green.offset = 0;
399                 var->blue.offset = var->transp.offset = 0;
400                 var->red.length   = 8;
401                 var->green.length = 8;
402                 var->blue.length  = 8;
403                 var->transp.length = 0;
404         }
405
406 #ifdef CONFIG_CPU_FREQ
407         pr_debug("pxafb: dma period = %d ps\n",
408                  pxafb_display_dma_period(var));
409 #endif
410
411         return 0;
412 }
413
414 static inline void pxafb_set_truecolor(u_int is_true_color)
415 {
416         /* do your machine-specific setup if needed */
417 }
418
419 /*
420  * pxafb_set_par():
421  *      Set the user defined part of the display for the specified console
422  */
423 static int pxafb_set_par(struct fb_info *info)
424 {
425         struct pxafb_info *fbi = (struct pxafb_info *)info;
426         struct fb_var_screeninfo *var = &info->var;
427
428         if (var->bits_per_pixel >= 16)
429                 fbi->fb.fix.visual = FB_VISUAL_TRUECOLOR;
430         else if (!fbi->cmap_static)
431                 fbi->fb.fix.visual = FB_VISUAL_PSEUDOCOLOR;
432         else {
433                 /*
434                  * Some people have weird ideas about wanting static
435                  * pseudocolor maps.  I suspect their user space
436                  * applications are broken.
437                  */
438                 fbi->fb.fix.visual = FB_VISUAL_STATIC_PSEUDOCOLOR;
439         }
440
441         fbi->fb.fix.line_length = var->xres_virtual *
442                                   var->bits_per_pixel / 8;
443         if (var->bits_per_pixel >= 16)
444                 fbi->palette_size = 0;
445         else
446                 fbi->palette_size = var->bits_per_pixel == 1 ?
447                                         4 : 1 << var->bits_per_pixel;
448
449         fbi->palette_cpu = (u16 *)&fbi->dma_buff->palette[0];
450
451         /*
452          * Set (any) board control register to handle new color depth
453          */
454         pxafb_set_truecolor(fbi->fb.fix.visual == FB_VISUAL_TRUECOLOR);
455
456         if (fbi->fb.var.bits_per_pixel >= 16)
457                 fb_dealloc_cmap(&fbi->fb.cmap);
458         else
459                 fb_alloc_cmap(&fbi->fb.cmap, 1<<fbi->fb.var.bits_per_pixel, 0);
460
461         pxafb_activate_var(var, fbi);
462
463         return 0;
464 }
465
466 /*
467  * pxafb_blank():
468  *      Blank the display by setting all palette values to zero.  Note, the
469  *      16 bpp mode does not really use the palette, so this will not
470  *      blank the display in all modes.
471  */
472 static int pxafb_blank(int blank, struct fb_info *info)
473 {
474         struct pxafb_info *fbi = (struct pxafb_info *)info;
475         int i;
476
477         switch (blank) {
478         case FB_BLANK_POWERDOWN:
479         case FB_BLANK_VSYNC_SUSPEND:
480         case FB_BLANK_HSYNC_SUSPEND:
481         case FB_BLANK_NORMAL:
482                 if (fbi->fb.fix.visual == FB_VISUAL_PSEUDOCOLOR ||
483                     fbi->fb.fix.visual == FB_VISUAL_STATIC_PSEUDOCOLOR)
484                         for (i = 0; i < fbi->palette_size; i++)
485                                 pxafb_setpalettereg(i, 0, 0, 0, 0, info);
486
487                 pxafb_schedule_work(fbi, C_DISABLE);
488                 /* TODO if (pxafb_blank_helper) pxafb_blank_helper(blank); */
489                 break;
490
491         case FB_BLANK_UNBLANK:
492                 /* TODO if (pxafb_blank_helper) pxafb_blank_helper(blank); */
493                 if (fbi->fb.fix.visual == FB_VISUAL_PSEUDOCOLOR ||
494                     fbi->fb.fix.visual == FB_VISUAL_STATIC_PSEUDOCOLOR)
495                         fb_set_cmap(&fbi->fb.cmap, info);
496                 pxafb_schedule_work(fbi, C_ENABLE);
497         }
498         return 0;
499 }
500
501 static int pxafb_mmap(struct fb_info *info,
502                       struct vm_area_struct *vma)
503 {
504         struct pxafb_info *fbi = (struct pxafb_info *)info;
505         unsigned long off = vma->vm_pgoff << PAGE_SHIFT;
506
507         if (off < info->fix.smem_len) {
508                 vma->vm_pgoff += fbi->video_offset / PAGE_SIZE;
509                 return dma_mmap_writecombine(fbi->dev, vma, fbi->map_cpu,
510                                              fbi->map_dma, fbi->map_size);
511         }
512         return -EINVAL;
513 }
514
515 static struct fb_ops pxafb_ops = {
516         .owner          = THIS_MODULE,
517         .fb_check_var   = pxafb_check_var,
518         .fb_set_par     = pxafb_set_par,
519         .fb_setcolreg   = pxafb_setcolreg,
520         .fb_fillrect    = cfb_fillrect,
521         .fb_copyarea    = cfb_copyarea,
522         .fb_imageblit   = cfb_imageblit,
523         .fb_blank       = pxafb_blank,
524         .fb_mmap        = pxafb_mmap,
525 };
526
527 /*
528  * Calculate the PCD value from the clock rate (in picoseconds).
529  * We take account of the PPCR clock setting.
530  * From PXA Developer's Manual:
531  *
532  *   PixelClock =      LCLK
533  *                -------------
534  *                2 ( PCD + 1 )
535  *
536  *   PCD =      LCLK
537  *         ------------- - 1
538  *         2(PixelClock)
539  *
540  * Where:
541  *   LCLK = LCD/Memory Clock
542  *   PCD = LCCR3[7:0]
543  *
544  * PixelClock here is in Hz while the pixclock argument given is the
545  * period in picoseconds. Hence PixelClock = 1 / ( pixclock * 10^-12 )
546  *
547  * The function get_lclk_frequency_10khz returns LCLK in units of
548  * 10khz. Calling the result of this function lclk gives us the
549  * following
550  *
551  *    PCD = (lclk * 10^4 ) * ( pixclock * 10^-12 )
552  *          -------------------------------------- - 1
553  *                          2
554  *
555  * Factoring the 10^4 and 10^-12 out gives 10^-8 == 1 / 100000000 as used below.
556  */
557 static inline unsigned int get_pcd(struct pxafb_info *fbi,
558                                    unsigned int pixclock)
559 {
560         unsigned long long pcd;
561
562         /* FIXME: Need to take into account Double Pixel Clock mode
563          * (DPC) bit? or perhaps set it based on the various clock
564          * speeds */
565         pcd = (unsigned long long)(clk_get_rate(fbi->clk) / 10000);
566         pcd *= pixclock;
567         do_div(pcd, 100000000 * 2);
568         /* no need for this, since we should subtract 1 anyway. they cancel */
569         /* pcd += 1; */ /* make up for integer math truncations */
570         return (unsigned int)pcd;
571 }
572
573 /*
574  * Some touchscreens need hsync information from the video driver to
575  * function correctly. We export it here.  Note that 'hsync_time' and
576  * the value returned from pxafb_get_hsync_time() is the *reciprocal*
577  * of the hsync period in seconds.
578  */
579 static inline void set_hsync_time(struct pxafb_info *fbi, unsigned int pcd)
580 {
581         unsigned long htime;
582
583         if ((pcd == 0) || (fbi->fb.var.hsync_len == 0)) {
584                 fbi->hsync_time = 0;
585                 return;
586         }
587
588         htime = clk_get_rate(fbi->clk) / (pcd * fbi->fb.var.hsync_len);
589
590         fbi->hsync_time = htime;
591 }
592
593 unsigned long pxafb_get_hsync_time(struct device *dev)
594 {
595         struct pxafb_info *fbi = dev_get_drvdata(dev);
596
597         /* If display is blanked/suspended, hsync isn't active */
598         if (!fbi || (fbi->state != C_ENABLE))
599                 return 0;
600
601         return fbi->hsync_time;
602 }
603 EXPORT_SYMBOL(pxafb_get_hsync_time);
604
605 static int setup_frame_dma(struct pxafb_info *fbi, int dma, int pal,
606                 unsigned int offset, size_t size)
607 {
608         struct pxafb_dma_descriptor *dma_desc, *pal_desc;
609         unsigned int dma_desc_off, pal_desc_off;
610
611         if (dma < 0 || dma >= DMA_MAX)
612                 return -EINVAL;
613
614         dma_desc = &fbi->dma_buff->dma_desc[dma];
615         dma_desc_off = offsetof(struct pxafb_dma_buff, dma_desc[dma]);
616
617         dma_desc->fsadr = fbi->screen_dma + offset;
618         dma_desc->fidr  = 0;
619         dma_desc->ldcmd = size;
620
621         if (pal < 0 || pal >= PAL_MAX) {
622                 dma_desc->fdadr = fbi->dma_buff_phys + dma_desc_off;
623                 fbi->fdadr[dma] = fbi->dma_buff_phys + dma_desc_off;
624         } else {
625                 pal_desc = &fbi->dma_buff->pal_desc[pal];
626                 pal_desc_off = offsetof(struct pxafb_dma_buff, pal_desc[pal]);
627
628                 pal_desc->fsadr = fbi->dma_buff_phys + pal * PALETTE_SIZE;
629                 pal_desc->fidr  = 0;
630
631                 if ((fbi->lccr4 & LCCR4_PAL_FOR_MASK) == LCCR4_PAL_FOR_0)
632                         pal_desc->ldcmd = fbi->palette_size * sizeof(u16);
633                 else
634                         pal_desc->ldcmd = fbi->palette_size * sizeof(u32);
635
636                 pal_desc->ldcmd |= LDCMD_PAL;
637
638                 /* flip back and forth between palette and frame buffer */
639                 pal_desc->fdadr = fbi->dma_buff_phys + dma_desc_off;
640                 dma_desc->fdadr = fbi->dma_buff_phys + pal_desc_off;
641                 fbi->fdadr[dma] = fbi->dma_buff_phys + dma_desc_off;
642         }
643
644         return 0;
645 }
646
647 #ifdef CONFIG_FB_PXA_SMARTPANEL
648 static int setup_smart_dma(struct pxafb_info *fbi)
649 {
650         struct pxafb_dma_descriptor *dma_desc;
651         unsigned long dma_desc_off, cmd_buff_off;
652
653         dma_desc = &fbi->dma_buff->dma_desc[DMA_CMD];
654         dma_desc_off = offsetof(struct pxafb_dma_buff, dma_desc[DMA_CMD]);
655         cmd_buff_off = offsetof(struct pxafb_dma_buff, cmd_buff);
656
657         dma_desc->fdadr = fbi->dma_buff_phys + dma_desc_off;
658         dma_desc->fsadr = fbi->dma_buff_phys + cmd_buff_off;
659         dma_desc->fidr  = 0;
660         dma_desc->ldcmd = fbi->n_smart_cmds * sizeof(uint16_t);
661
662         fbi->fdadr[DMA_CMD] = dma_desc->fdadr;
663         return 0;
664 }
665
666 int pxafb_smart_flush(struct fb_info *info)
667 {
668         struct pxafb_info *fbi = container_of(info, struct pxafb_info, fb);
669         uint32_t prsr;
670         int ret = 0;
671
672         /* disable controller until all registers are set up */
673         lcd_writel(fbi, LCCR0, fbi->reg_lccr0 & ~LCCR0_ENB);
674
675         /* 1. make it an even number of commands to align on 32-bit boundary
676          * 2. add the interrupt command to the end of the chain so we can
677          *    keep track of the end of the transfer
678          */
679
680         while (fbi->n_smart_cmds & 1)
681                 fbi->smart_cmds[fbi->n_smart_cmds++] = SMART_CMD_NOOP;
682
683         fbi->smart_cmds[fbi->n_smart_cmds++] = SMART_CMD_INTERRUPT;
684         fbi->smart_cmds[fbi->n_smart_cmds++] = SMART_CMD_WAIT_FOR_VSYNC;
685         setup_smart_dma(fbi);
686
687         /* continue to execute next command */
688         prsr = lcd_readl(fbi, PRSR) | PRSR_ST_OK | PRSR_CON_NT;
689         lcd_writel(fbi, PRSR, prsr);
690
691         /* stop the processor in case it executed "wait for sync" cmd */
692         lcd_writel(fbi, CMDCR, 0x0001);
693
694         /* don't send interrupts for fifo underruns on channel 6 */
695         lcd_writel(fbi, LCCR5, LCCR5_IUM(6));
696
697         lcd_writel(fbi, LCCR1, fbi->reg_lccr1);
698         lcd_writel(fbi, LCCR2, fbi->reg_lccr2);
699         lcd_writel(fbi, LCCR3, fbi->reg_lccr3);
700         lcd_writel(fbi, FDADR0, fbi->fdadr[0]);
701         lcd_writel(fbi, FDADR6, fbi->fdadr[6]);
702
703         /* begin sending */
704         lcd_writel(fbi, LCCR0, fbi->reg_lccr0 | LCCR0_ENB);
705
706         if (wait_for_completion_timeout(&fbi->command_done, HZ/2) == 0) {
707                 pr_warning("%s: timeout waiting for command done\n",
708                                 __func__);
709                 ret = -ETIMEDOUT;
710         }
711
712         /* quick disable */
713         prsr = lcd_readl(fbi, PRSR) & ~(PRSR_ST_OK | PRSR_CON_NT);
714         lcd_writel(fbi, PRSR, prsr);
715         lcd_writel(fbi, LCCR0, fbi->reg_lccr0 & ~LCCR0_ENB);
716         lcd_writel(fbi, FDADR6, 0);
717         fbi->n_smart_cmds = 0;
718         return ret;
719 }
720
721 int pxafb_smart_queue(struct fb_info *info, uint16_t *cmds, int n_cmds)
722 {
723         int i;
724         struct pxafb_info *fbi = container_of(info, struct pxafb_info, fb);
725
726         /* leave 2 commands for INTERRUPT and WAIT_FOR_SYNC */
727         for (i = 0; i < n_cmds; i++) {
728                 if (fbi->n_smart_cmds == CMD_BUFF_SIZE - 8)
729                         pxafb_smart_flush(info);
730
731                 fbi->smart_cmds[fbi->n_smart_cmds++] = *cmds++;
732         }
733
734         return 0;
735 }
736
737 static unsigned int __smart_timing(unsigned time_ns, unsigned long lcd_clk)
738 {
739         unsigned int t = (time_ns * (lcd_clk / 1000000) / 1000);
740         return (t == 0) ? 1 : t;
741 }
742
743 static void setup_smart_timing(struct pxafb_info *fbi,
744                                 struct fb_var_screeninfo *var)
745 {
746         struct pxafb_mach_info *inf = fbi->dev->platform_data;
747         struct pxafb_mode_info *mode = &inf->modes[0];
748         unsigned long lclk = clk_get_rate(fbi->clk);
749         unsigned t1, t2, t3, t4;
750
751         t1 = max(mode->a0csrd_set_hld, mode->a0cswr_set_hld);
752         t2 = max(mode->rd_pulse_width, mode->wr_pulse_width);
753         t3 = mode->op_hold_time;
754         t4 = mode->cmd_inh_time;
755
756         fbi->reg_lccr1 =
757                 LCCR1_DisWdth(var->xres) |
758                 LCCR1_BegLnDel(__smart_timing(t1, lclk)) |
759                 LCCR1_EndLnDel(__smart_timing(t2, lclk)) |
760                 LCCR1_HorSnchWdth(__smart_timing(t3, lclk));
761
762         fbi->reg_lccr2 = LCCR2_DisHght(var->yres);
763         fbi->reg_lccr3 = LCCR3_PixClkDiv(__smart_timing(t4, lclk));
764
765         /* FIXME: make this configurable */
766         fbi->reg_cmdcr = 1;
767 }
768
769 static int pxafb_smart_thread(void *arg)
770 {
771         struct pxafb_info *fbi = arg;
772         struct pxafb_mach_info *inf = fbi->dev->platform_data;
773
774         if (!fbi || !inf->smart_update) {
775                 pr_err("%s: not properly initialized, thread terminated\n",
776                                 __func__);
777                 return -EINVAL;
778         }
779
780         pr_debug("%s(): task starting\n", __func__);
781
782         set_freezable();
783         while (!kthread_should_stop()) {
784
785                 if (try_to_freeze())
786                         continue;
787
788                 if (fbi->state == C_ENABLE) {
789                         inf->smart_update(&fbi->fb);
790                         complete(&fbi->refresh_done);
791                 }
792
793                 set_current_state(TASK_INTERRUPTIBLE);
794                 schedule_timeout(30 * HZ / 1000);
795         }
796
797         pr_debug("%s(): task ending\n", __func__);
798         return 0;
799 }
800
801 static int pxafb_smart_init(struct pxafb_info *fbi)
802 {
803         if (!(fbi->lccr0 & LCCR0_LCDT))
804                 return 0;
805
806         fbi->smart_cmds = (uint16_t *) fbi->dma_buff->cmd_buff;
807         fbi->n_smart_cmds = 0;
808
809         init_completion(&fbi->command_done);
810         init_completion(&fbi->refresh_done);
811
812         fbi->smart_thread = kthread_run(pxafb_smart_thread, fbi,
813                                         "lcd_refresh");
814         if (IS_ERR(fbi->smart_thread)) {
815                 pr_err("%s: unable to create kernel thread\n", __func__);
816                 return PTR_ERR(fbi->smart_thread);
817         }
818
819         return 0;
820 }
821 #else
822 int pxafb_smart_queue(struct fb_info *info, uint16_t *cmds, int n_cmds)
823 {
824         return 0;
825 }
826
827 int pxafb_smart_flush(struct fb_info *info)
828 {
829         return 0;
830 }
831
832 static inline int pxafb_smart_init(struct pxafb_info *fbi) { return 0; }
833 #endif /* CONFIG_FB_PXA_SMARTPANEL */
834
835 static void setup_parallel_timing(struct pxafb_info *fbi,
836                                   struct fb_var_screeninfo *var)
837 {
838         unsigned int lines_per_panel, pcd = get_pcd(fbi, var->pixclock);
839
840         fbi->reg_lccr1 =
841                 LCCR1_DisWdth(var->xres) +
842                 LCCR1_HorSnchWdth(var->hsync_len) +
843                 LCCR1_BegLnDel(var->left_margin) +
844                 LCCR1_EndLnDel(var->right_margin);
845
846         /*
847          * If we have a dual scan LCD, we need to halve
848          * the YRES parameter.
849          */
850         lines_per_panel = var->yres;
851         if ((fbi->lccr0 & LCCR0_SDS) == LCCR0_Dual)
852                 lines_per_panel /= 2;
853
854         fbi->reg_lccr2 =
855                 LCCR2_DisHght(lines_per_panel) +
856                 LCCR2_VrtSnchWdth(var->vsync_len) +
857                 LCCR2_BegFrmDel(var->upper_margin) +
858                 LCCR2_EndFrmDel(var->lower_margin);
859
860         fbi->reg_lccr3 = fbi->lccr3 |
861                 (var->sync & FB_SYNC_HOR_HIGH_ACT ?
862                  LCCR3_HorSnchH : LCCR3_HorSnchL) |
863                 (var->sync & FB_SYNC_VERT_HIGH_ACT ?
864                  LCCR3_VrtSnchH : LCCR3_VrtSnchL);
865
866         if (pcd) {
867                 fbi->reg_lccr3 |= LCCR3_PixClkDiv(pcd);
868                 set_hsync_time(fbi, pcd);
869         }
870 }
871
872 /*
873  * pxafb_activate_var():
874  *      Configures LCD Controller based on entries in var parameter.
875  *      Settings are only written to the controller if changes were made.
876  */
877 static int pxafb_activate_var(struct fb_var_screeninfo *var,
878                               struct pxafb_info *fbi)
879 {
880         u_long flags;
881         size_t nbytes;
882
883 #if DEBUG_VAR
884         if (!(fbi->lccr0 & LCCR0_LCDT)) {
885                 if (var->xres < 16 || var->xres > 1024)
886                         printk(KERN_ERR "%s: invalid xres %d\n",
887                                 fbi->fb.fix.id, var->xres);
888                 switch (var->bits_per_pixel) {
889                 case 1:
890                 case 2:
891                 case 4:
892                 case 8:
893                 case 16:
894                 case 24:
895                 case 32:
896                         break;
897                 default:
898                         printk(KERN_ERR "%s: invalid bit depth %d\n",
899                                fbi->fb.fix.id, var->bits_per_pixel);
900                         break;
901                 }
902
903                 if (var->hsync_len < 1 || var->hsync_len > 64)
904                         printk(KERN_ERR "%s: invalid hsync_len %d\n",
905                                 fbi->fb.fix.id, var->hsync_len);
906                 if (var->left_margin < 1 || var->left_margin > 255)
907                         printk(KERN_ERR "%s: invalid left_margin %d\n",
908                                 fbi->fb.fix.id, var->left_margin);
909                 if (var->right_margin < 1 || var->right_margin > 255)
910                         printk(KERN_ERR "%s: invalid right_margin %d\n",
911                                 fbi->fb.fix.id, var->right_margin);
912                 if (var->yres < 1 || var->yres > 1024)
913                         printk(KERN_ERR "%s: invalid yres %d\n",
914                                 fbi->fb.fix.id, var->yres);
915                 if (var->vsync_len < 1 || var->vsync_len > 64)
916                         printk(KERN_ERR "%s: invalid vsync_len %d\n",
917                                 fbi->fb.fix.id, var->vsync_len);
918                 if (var->upper_margin < 0 || var->upper_margin > 255)
919                         printk(KERN_ERR "%s: invalid upper_margin %d\n",
920                                 fbi->fb.fix.id, var->upper_margin);
921                 if (var->lower_margin < 0 || var->lower_margin > 255)
922                         printk(KERN_ERR "%s: invalid lower_margin %d\n",
923                                 fbi->fb.fix.id, var->lower_margin);
924         }
925 #endif
926         /* Update shadow copy atomically */
927         local_irq_save(flags);
928
929 #ifdef CONFIG_FB_PXA_SMARTPANEL
930         if (fbi->lccr0 & LCCR0_LCDT)
931                 setup_smart_timing(fbi, var);
932         else
933 #endif
934                 setup_parallel_timing(fbi, var);
935
936         fbi->reg_lccr0 = fbi->lccr0 |
937                 (LCCR0_LDM | LCCR0_SFM | LCCR0_IUM | LCCR0_EFM |
938                  LCCR0_QDM | LCCR0_BM  | LCCR0_OUM);
939
940         fbi->reg_lccr3 |= pxafb_bpp_to_lccr3(var);
941
942         nbytes = var->yres * fbi->fb.fix.line_length;
943
944         if ((fbi->lccr0 & LCCR0_SDS) == LCCR0_Dual) {
945                 nbytes = nbytes / 2;
946                 setup_frame_dma(fbi, DMA_LOWER, PAL_NONE, nbytes, nbytes);
947         }
948
949         if ((var->bits_per_pixel >= 16) || (fbi->lccr0 & LCCR0_LCDT))
950                 setup_frame_dma(fbi, DMA_BASE, PAL_NONE, 0, nbytes);
951         else
952                 setup_frame_dma(fbi, DMA_BASE, PAL_BASE, 0, nbytes);
953
954         fbi->reg_lccr4 = lcd_readl(fbi, LCCR4) & ~LCCR4_PAL_FOR_MASK;
955         fbi->reg_lccr4 |= (fbi->lccr4 & LCCR4_PAL_FOR_MASK);
956         local_irq_restore(flags);
957
958         /*
959          * Only update the registers if the controller is enabled
960          * and something has changed.
961          */
962         if ((lcd_readl(fbi, LCCR0) != fbi->reg_lccr0) ||
963             (lcd_readl(fbi, LCCR1) != fbi->reg_lccr1) ||
964             (lcd_readl(fbi, LCCR2) != fbi->reg_lccr2) ||
965             (lcd_readl(fbi, LCCR3) != fbi->reg_lccr3) ||
966             (lcd_readl(fbi, FDADR0) != fbi->fdadr[0]) ||
967             (lcd_readl(fbi, FDADR1) != fbi->fdadr[1]))
968                 pxafb_schedule_work(fbi, C_REENABLE);
969
970         return 0;
971 }
972
973 /*
974  * NOTE!  The following functions are purely helpers for set_ctrlr_state.
975  * Do not call them directly; set_ctrlr_state does the correct serialisation
976  * to ensure that things happen in the right way 100% of time time.
977  *      -- rmk
978  */
979 static inline void __pxafb_backlight_power(struct pxafb_info *fbi, int on)
980 {
981         pr_debug("pxafb: backlight o%s\n", on ? "n" : "ff");
982
983         if (fbi->backlight_power)
984                 fbi->backlight_power(on);
985 }
986
987 static inline void __pxafb_lcd_power(struct pxafb_info *fbi, int on)
988 {
989         pr_debug("pxafb: LCD power o%s\n", on ? "n" : "ff");
990
991         if (fbi->lcd_power)
992                 fbi->lcd_power(on, &fbi->fb.var);
993 }
994
995 static void pxafb_enable_controller(struct pxafb_info *fbi)
996 {
997         pr_debug("pxafb: Enabling LCD controller\n");
998         pr_debug("fdadr0 0x%08x\n", (unsigned int) fbi->fdadr[0]);
999         pr_debug("fdadr1 0x%08x\n", (unsigned int) fbi->fdadr[1]);
1000         pr_debug("reg_lccr0 0x%08x\n", (unsigned int) fbi->reg_lccr0);
1001         pr_debug("reg_lccr1 0x%08x\n", (unsigned int) fbi->reg_lccr1);
1002         pr_debug("reg_lccr2 0x%08x\n", (unsigned int) fbi->reg_lccr2);
1003         pr_debug("reg_lccr3 0x%08x\n", (unsigned int) fbi->reg_lccr3);
1004
1005         /* enable LCD controller clock */
1006         clk_enable(fbi->clk);
1007
1008         if (fbi->lccr0 & LCCR0_LCDT)
1009                 return;
1010
1011         /* Sequence from 11.7.10 */
1012         lcd_writel(fbi, LCCR3, fbi->reg_lccr3);
1013         lcd_writel(fbi, LCCR2, fbi->reg_lccr2);
1014         lcd_writel(fbi, LCCR1, fbi->reg_lccr1);
1015         lcd_writel(fbi, LCCR0, fbi->reg_lccr0 & ~LCCR0_ENB);
1016
1017         lcd_writel(fbi, FDADR0, fbi->fdadr[0]);
1018         lcd_writel(fbi, FDADR1, fbi->fdadr[1]);
1019         lcd_writel(fbi, LCCR0, fbi->reg_lccr0 | LCCR0_ENB);
1020 }
1021
1022 static void pxafb_disable_controller(struct pxafb_info *fbi)
1023 {
1024         uint32_t lccr0;
1025
1026 #ifdef CONFIG_FB_PXA_SMARTPANEL
1027         if (fbi->lccr0 & LCCR0_LCDT) {
1028                 wait_for_completion_timeout(&fbi->refresh_done,
1029                                 200 * HZ / 1000);
1030                 return;
1031         }
1032 #endif
1033
1034         /* Clear LCD Status Register */
1035         lcd_writel(fbi, LCSR, 0xffffffff);
1036
1037         lccr0 = lcd_readl(fbi, LCCR0) & ~LCCR0_LDM;
1038         lcd_writel(fbi, LCCR0, lccr0);
1039         lcd_writel(fbi, LCCR0, lccr0 | LCCR0_DIS);
1040
1041         wait_for_completion_timeout(&fbi->disable_done, 200 * HZ / 1000);
1042
1043         /* disable LCD controller clock */
1044         clk_disable(fbi->clk);
1045 }
1046
1047 /*
1048  *  pxafb_handle_irq: Handle 'LCD DONE' interrupts.
1049  */
1050 static irqreturn_t pxafb_handle_irq(int irq, void *dev_id)
1051 {
1052         struct pxafb_info *fbi = dev_id;
1053         unsigned int lccr0, lcsr = lcd_readl(fbi, LCSR);
1054
1055         if (lcsr & LCSR_LDD) {
1056                 lccr0 = lcd_readl(fbi, LCCR0);
1057                 lcd_writel(fbi, LCCR0, lccr0 | LCCR0_LDM);
1058                 complete(&fbi->disable_done);
1059         }
1060
1061 #ifdef CONFIG_FB_PXA_SMARTPANEL
1062         if (lcsr & LCSR_CMD_INT)
1063                 complete(&fbi->command_done);
1064 #endif
1065
1066         lcd_writel(fbi, LCSR, lcsr);
1067         return IRQ_HANDLED;
1068 }
1069
1070 /*
1071  * This function must be called from task context only, since it will
1072  * sleep when disabling the LCD controller, or if we get two contending
1073  * processes trying to alter state.
1074  */
1075 static void set_ctrlr_state(struct pxafb_info *fbi, u_int state)
1076 {
1077         u_int old_state;
1078
1079         mutex_lock(&fbi->ctrlr_lock);
1080
1081         old_state = fbi->state;
1082
1083         /*
1084          * Hack around fbcon initialisation.
1085          */
1086         if (old_state == C_STARTUP && state == C_REENABLE)
1087                 state = C_ENABLE;
1088
1089         switch (state) {
1090         case C_DISABLE_CLKCHANGE:
1091                 /*
1092                  * Disable controller for clock change.  If the
1093                  * controller is already disabled, then do nothing.
1094                  */
1095                 if (old_state != C_DISABLE && old_state != C_DISABLE_PM) {
1096                         fbi->state = state;
1097                         /* TODO __pxafb_lcd_power(fbi, 0); */
1098                         pxafb_disable_controller(fbi);
1099                 }
1100                 break;
1101
1102         case C_DISABLE_PM:
1103         case C_DISABLE:
1104                 /*
1105                  * Disable controller
1106                  */
1107                 if (old_state != C_DISABLE) {
1108                         fbi->state = state;
1109                         __pxafb_backlight_power(fbi, 0);
1110                         __pxafb_lcd_power(fbi, 0);
1111                         if (old_state != C_DISABLE_CLKCHANGE)
1112                                 pxafb_disable_controller(fbi);
1113                 }
1114                 break;
1115
1116         case C_ENABLE_CLKCHANGE:
1117                 /*
1118                  * Enable the controller after clock change.  Only
1119                  * do this if we were disabled for the clock change.
1120                  */
1121                 if (old_state == C_DISABLE_CLKCHANGE) {
1122                         fbi->state = C_ENABLE;
1123                         pxafb_enable_controller(fbi);
1124                         /* TODO __pxafb_lcd_power(fbi, 1); */
1125                 }
1126                 break;
1127
1128         case C_REENABLE:
1129                 /*
1130                  * Re-enable the controller only if it was already
1131                  * enabled.  This is so we reprogram the control
1132                  * registers.
1133                  */
1134                 if (old_state == C_ENABLE) {
1135                         __pxafb_lcd_power(fbi, 0);
1136                         pxafb_disable_controller(fbi);
1137                         pxafb_enable_controller(fbi);
1138                         __pxafb_lcd_power(fbi, 1);
1139                 }
1140                 break;
1141
1142         case C_ENABLE_PM:
1143                 /*
1144                  * Re-enable the controller after PM.  This is not
1145                  * perfect - think about the case where we were doing
1146                  * a clock change, and we suspended half-way through.
1147                  */
1148                 if (old_state != C_DISABLE_PM)
1149                         break;
1150                 /* fall through */
1151
1152         case C_ENABLE:
1153                 /*
1154                  * Power up the LCD screen, enable controller, and
1155                  * turn on the backlight.
1156                  */
1157                 if (old_state != C_ENABLE) {
1158                         fbi->state = C_ENABLE;
1159                         pxafb_enable_controller(fbi);
1160                         __pxafb_lcd_power(fbi, 1);
1161                         __pxafb_backlight_power(fbi, 1);
1162                 }
1163                 break;
1164         }
1165         mutex_unlock(&fbi->ctrlr_lock);
1166 }
1167
1168 /*
1169  * Our LCD controller task (which is called when we blank or unblank)
1170  * via keventd.
1171  */
1172 static void pxafb_task(struct work_struct *work)
1173 {
1174         struct pxafb_info *fbi =
1175                 container_of(work, struct pxafb_info, task);
1176         u_int state = xchg(&fbi->task_state, -1);
1177
1178         set_ctrlr_state(fbi, state);
1179 }
1180
1181 #ifdef CONFIG_CPU_FREQ
1182 /*
1183  * CPU clock speed change handler.  We need to adjust the LCD timing
1184  * parameters when the CPU clock is adjusted by the power management
1185  * subsystem.
1186  *
1187  * TODO: Determine why f->new != 10*get_lclk_frequency_10khz()
1188  */
1189 static int
1190 pxafb_freq_transition(struct notifier_block *nb, unsigned long val, void *data)
1191 {
1192         struct pxafb_info *fbi = TO_INF(nb, freq_transition);
1193         /* TODO struct cpufreq_freqs *f = data; */
1194         u_int pcd;
1195
1196         switch (val) {
1197         case CPUFREQ_PRECHANGE:
1198                 set_ctrlr_state(fbi, C_DISABLE_CLKCHANGE);
1199                 break;
1200
1201         case CPUFREQ_POSTCHANGE:
1202                 pcd = get_pcd(fbi, fbi->fb.var.pixclock);
1203                 set_hsync_time(fbi, pcd);
1204                 fbi->reg_lccr3 = (fbi->reg_lccr3 & ~0xff) |
1205                                   LCCR3_PixClkDiv(pcd);
1206                 set_ctrlr_state(fbi, C_ENABLE_CLKCHANGE);
1207                 break;
1208         }
1209         return 0;
1210 }
1211
1212 static int
1213 pxafb_freq_policy(struct notifier_block *nb, unsigned long val, void *data)
1214 {
1215         struct pxafb_info *fbi = TO_INF(nb, freq_policy);
1216         struct fb_var_screeninfo *var = &fbi->fb.var;
1217         struct cpufreq_policy *policy = data;
1218
1219         switch (val) {
1220         case CPUFREQ_ADJUST:
1221         case CPUFREQ_INCOMPATIBLE:
1222                 pr_debug("min dma period: %d ps, "
1223                         "new clock %d kHz\n", pxafb_display_dma_period(var),
1224                         policy->max);
1225                 /* TODO: fill in min/max values */
1226                 break;
1227         }
1228         return 0;
1229 }
1230 #endif
1231
1232 #ifdef CONFIG_PM
1233 /*
1234  * Power management hooks.  Note that we won't be called from IRQ context,
1235  * unlike the blank functions above, so we may sleep.
1236  */
1237 static int pxafb_suspend(struct platform_device *dev, pm_message_t state)
1238 {
1239         struct pxafb_info *fbi = platform_get_drvdata(dev);
1240
1241         set_ctrlr_state(fbi, C_DISABLE_PM);
1242         return 0;
1243 }
1244
1245 static int pxafb_resume(struct platform_device *dev)
1246 {
1247         struct pxafb_info *fbi = platform_get_drvdata(dev);
1248
1249         set_ctrlr_state(fbi, C_ENABLE_PM);
1250         return 0;
1251 }
1252 #else
1253 #define pxafb_suspend   NULL
1254 #define pxafb_resume    NULL
1255 #endif
1256
1257 /*
1258  * pxafb_map_video_memory():
1259  *      Allocates the DRAM memory for the frame buffer.  This buffer is
1260  *      remapped into a non-cached, non-buffered, memory region to
1261  *      allow palette and pixel writes to occur without flushing the
1262  *      cache.  Once this area is remapped, all virtual memory
1263  *      access to the video memory should occur at the new region.
1264  */
1265 static int __devinit pxafb_map_video_memory(struct pxafb_info *fbi)
1266 {
1267         /*
1268          * We reserve one page for the palette, plus the size
1269          * of the framebuffer.
1270          */
1271         fbi->video_offset = PAGE_ALIGN(sizeof(struct pxafb_dma_buff));
1272         fbi->map_size = PAGE_ALIGN(fbi->fb.fix.smem_len + fbi->video_offset);
1273         fbi->map_cpu = dma_alloc_writecombine(fbi->dev, fbi->map_size,
1274                                               &fbi->map_dma, GFP_KERNEL);
1275
1276         if (fbi->map_cpu) {
1277                 /* prevent initial garbage on screen */
1278                 memset(fbi->map_cpu, 0, fbi->map_size);
1279                 fbi->fb.screen_base = fbi->map_cpu + fbi->video_offset;
1280                 fbi->screen_dma = fbi->map_dma + fbi->video_offset;
1281
1282                 /*
1283                  * FIXME: this is actually the wrong thing to place in
1284                  * smem_start.  But fbdev suffers from the problem that
1285                  * it needs an API which doesn't exist (in this case,
1286                  * dma_writecombine_mmap)
1287                  */
1288                 fbi->fb.fix.smem_start = fbi->screen_dma;
1289                 fbi->palette_size = fbi->fb.var.bits_per_pixel == 8 ? 256 : 16;
1290
1291                 fbi->dma_buff = (void *) fbi->map_cpu;
1292                 fbi->dma_buff_phys = fbi->map_dma;
1293                 fbi->palette_cpu = (u16 *) fbi->dma_buff->palette;
1294
1295                 pr_debug("pxafb: palette_mem_size = 0x%08x\n", fbi->palette_size*sizeof(u16));
1296         }
1297
1298         return fbi->map_cpu ? 0 : -ENOMEM;
1299 }
1300
1301 static void pxafb_decode_mode_info(struct pxafb_info *fbi,
1302                                    struct pxafb_mode_info *modes,
1303                                    unsigned int num_modes)
1304 {
1305         unsigned int i, smemlen;
1306
1307         pxafb_setmode(&fbi->fb.var, &modes[0]);
1308
1309         for (i = 0; i < num_modes; i++) {
1310                 smemlen = modes[i].xres * modes[i].yres * modes[i].bpp / 8;
1311                 if (smemlen > fbi->fb.fix.smem_len)
1312                         fbi->fb.fix.smem_len = smemlen;
1313         }
1314 }
1315
1316 static void pxafb_decode_mach_info(struct pxafb_info *fbi,
1317                                    struct pxafb_mach_info *inf)
1318 {
1319         unsigned int lcd_conn = inf->lcd_conn;
1320
1321         fbi->cmap_inverse       = inf->cmap_inverse;
1322         fbi->cmap_static        = inf->cmap_static;
1323
1324         switch (lcd_conn & LCD_TYPE_MASK) {
1325         case LCD_TYPE_MONO_STN:
1326                 fbi->lccr0 = LCCR0_CMS;
1327                 break;
1328         case LCD_TYPE_MONO_DSTN:
1329                 fbi->lccr0 = LCCR0_CMS | LCCR0_SDS;
1330                 break;
1331         case LCD_TYPE_COLOR_STN:
1332                 fbi->lccr0 = 0;
1333                 break;
1334         case LCD_TYPE_COLOR_DSTN:
1335                 fbi->lccr0 = LCCR0_SDS;
1336                 break;
1337         case LCD_TYPE_COLOR_TFT:
1338                 fbi->lccr0 = LCCR0_PAS;
1339                 break;
1340         case LCD_TYPE_SMART_PANEL:
1341                 fbi->lccr0 = LCCR0_LCDT | LCCR0_PAS;
1342                 break;
1343         default:
1344                 /* fall back to backward compatibility way */
1345                 fbi->lccr0 = inf->lccr0;
1346                 fbi->lccr3 = inf->lccr3;
1347                 fbi->lccr4 = inf->lccr4;
1348                 goto decode_mode;
1349         }
1350
1351         if (lcd_conn == LCD_MONO_STN_8BPP)
1352                 fbi->lccr0 |= LCCR0_DPD;
1353
1354         fbi->lccr0 |= (lcd_conn & LCD_ALTERNATE_MAPPING) ? LCCR0_LDDALT : 0;
1355
1356         fbi->lccr3 = LCCR3_Acb((inf->lcd_conn >> 10) & 0xff);
1357         fbi->lccr3 |= (lcd_conn & LCD_BIAS_ACTIVE_LOW) ? LCCR3_OEP : 0;
1358         fbi->lccr3 |= (lcd_conn & LCD_PCLK_EDGE_FALL)  ? LCCR3_PCP : 0;
1359
1360 decode_mode:
1361         pxafb_decode_mode_info(fbi, inf->modes, inf->num_modes);
1362 }
1363
1364 static struct pxafb_info * __devinit pxafb_init_fbinfo(struct device *dev)
1365 {
1366         struct pxafb_info *fbi;
1367         void *addr;
1368         struct pxafb_mach_info *inf = dev->platform_data;
1369
1370         /* Alloc the pxafb_info and pseudo_palette in one step */
1371         fbi = kmalloc(sizeof(struct pxafb_info) + sizeof(u32) * 16, GFP_KERNEL);
1372         if (!fbi)
1373                 return NULL;
1374
1375         memset(fbi, 0, sizeof(struct pxafb_info));
1376         fbi->dev = dev;
1377
1378         fbi->clk = clk_get(dev, "LCDCLK");
1379         if (IS_ERR(fbi->clk)) {
1380                 kfree(fbi);
1381                 return NULL;
1382         }
1383
1384         strcpy(fbi->fb.fix.id, PXA_NAME);
1385
1386         fbi->fb.fix.type        = FB_TYPE_PACKED_PIXELS;
1387         fbi->fb.fix.type_aux    = 0;
1388         fbi->fb.fix.xpanstep    = 0;
1389         fbi->fb.fix.ypanstep    = 0;
1390         fbi->fb.fix.ywrapstep   = 0;
1391         fbi->fb.fix.accel       = FB_ACCEL_NONE;
1392
1393         fbi->fb.var.nonstd      = 0;
1394         fbi->fb.var.activate    = FB_ACTIVATE_NOW;
1395         fbi->fb.var.height      = -1;
1396         fbi->fb.var.width       = -1;
1397         fbi->fb.var.accel_flags = 0;
1398         fbi->fb.var.vmode       = FB_VMODE_NONINTERLACED;
1399
1400         fbi->fb.fbops           = &pxafb_ops;
1401         fbi->fb.flags           = FBINFO_DEFAULT;
1402         fbi->fb.node            = -1;
1403
1404         addr = fbi;
1405         addr = addr + sizeof(struct pxafb_info);
1406         fbi->fb.pseudo_palette  = addr;
1407
1408         fbi->state              = C_STARTUP;
1409         fbi->task_state         = (u_char)-1;
1410
1411         pxafb_decode_mach_info(fbi, inf);
1412
1413         init_waitqueue_head(&fbi->ctrlr_wait);
1414         INIT_WORK(&fbi->task, pxafb_task);
1415         mutex_init(&fbi->ctrlr_lock);
1416         init_completion(&fbi->disable_done);
1417
1418         return fbi;
1419 }
1420
1421 #ifdef CONFIG_FB_PXA_PARAMETERS
1422 static int __devinit parse_opt_mode(struct device *dev, const char *this_opt)
1423 {
1424         struct pxafb_mach_info *inf = dev->platform_data;
1425
1426         const char *name = this_opt+5;
1427         unsigned int namelen = strlen(name);
1428         int res_specified = 0, bpp_specified = 0;
1429         unsigned int xres = 0, yres = 0, bpp = 0;
1430         int yres_specified = 0;
1431         int i;
1432         for (i = namelen-1; i >= 0; i--) {
1433                 switch (name[i]) {
1434                 case '-':
1435                         namelen = i;
1436                         if (!bpp_specified && !yres_specified) {
1437                                 bpp = simple_strtoul(&name[i+1], NULL, 0);
1438                                 bpp_specified = 1;
1439                         } else
1440                                 goto done;
1441                         break;
1442                 case 'x':
1443                         if (!yres_specified) {
1444                                 yres = simple_strtoul(&name[i+1], NULL, 0);
1445                                 yres_specified = 1;
1446                         } else
1447                                 goto done;
1448                         break;
1449                 case '0' ... '9':
1450                         break;
1451                 default:
1452                         goto done;
1453                 }
1454         }
1455         if (i < 0 && yres_specified) {
1456                 xres = simple_strtoul(name, NULL, 0);
1457                 res_specified = 1;
1458         }
1459 done:
1460         if (res_specified) {
1461                 dev_info(dev, "overriding resolution: %dx%d\n", xres, yres);
1462                 inf->modes[0].xres = xres; inf->modes[0].yres = yres;
1463         }
1464         if (bpp_specified)
1465                 switch (bpp) {
1466                 case 1:
1467                 case 2:
1468                 case 4:
1469                 case 8:
1470                 case 16:
1471                         inf->modes[0].bpp = bpp;
1472                         dev_info(dev, "overriding bit depth: %d\n", bpp);
1473                         break;
1474                 default:
1475                         dev_err(dev, "Depth %d is not valid\n", bpp);
1476                         return -EINVAL;
1477                 }
1478         return 0;
1479 }
1480
1481 static int __devinit parse_opt(struct device *dev, char *this_opt)
1482 {
1483         struct pxafb_mach_info *inf = dev->platform_data;
1484         struct pxafb_mode_info *mode = &inf->modes[0];
1485         char s[64];
1486
1487         s[0] = '\0';
1488
1489         if (!strncmp(this_opt, "mode:", 5)) {
1490                 return parse_opt_mode(dev, this_opt);
1491         } else if (!strncmp(this_opt, "pixclock:", 9)) {
1492                 mode->pixclock = simple_strtoul(this_opt+9, NULL, 0);
1493                 sprintf(s, "pixclock: %ld\n", mode->pixclock);
1494         } else if (!strncmp(this_opt, "left:", 5)) {
1495                 mode->left_margin = simple_strtoul(this_opt+5, NULL, 0);
1496                 sprintf(s, "left: %u\n", mode->left_margin);
1497         } else if (!strncmp(this_opt, "right:", 6)) {
1498                 mode->right_margin = simple_strtoul(this_opt+6, NULL, 0);
1499                 sprintf(s, "right: %u\n", mode->right_margin);
1500         } else if (!strncmp(this_opt, "upper:", 6)) {
1501                 mode->upper_margin = simple_strtoul(this_opt+6, NULL, 0);
1502                 sprintf(s, "upper: %u\n", mode->upper_margin);
1503         } else if (!strncmp(this_opt, "lower:", 6)) {
1504                 mode->lower_margin = simple_strtoul(this_opt+6, NULL, 0);
1505                 sprintf(s, "lower: %u\n", mode->lower_margin);
1506         } else if (!strncmp(this_opt, "hsynclen:", 9)) {
1507                 mode->hsync_len = simple_strtoul(this_opt+9, NULL, 0);
1508                 sprintf(s, "hsynclen: %u\n", mode->hsync_len);
1509         } else if (!strncmp(this_opt, "vsynclen:", 9)) {
1510                 mode->vsync_len = simple_strtoul(this_opt+9, NULL, 0);
1511                 sprintf(s, "vsynclen: %u\n", mode->vsync_len);
1512         } else if (!strncmp(this_opt, "hsync:", 6)) {
1513                 if (simple_strtoul(this_opt+6, NULL, 0) == 0) {
1514                         sprintf(s, "hsync: Active Low\n");
1515                         mode->sync &= ~FB_SYNC_HOR_HIGH_ACT;
1516                 } else {
1517                         sprintf(s, "hsync: Active High\n");
1518                         mode->sync |= FB_SYNC_HOR_HIGH_ACT;
1519                 }
1520         } else if (!strncmp(this_opt, "vsync:", 6)) {
1521                 if (simple_strtoul(this_opt+6, NULL, 0) == 0) {
1522                         sprintf(s, "vsync: Active Low\n");
1523                         mode->sync &= ~FB_SYNC_VERT_HIGH_ACT;
1524                 } else {
1525                         sprintf(s, "vsync: Active High\n");
1526                         mode->sync |= FB_SYNC_VERT_HIGH_ACT;
1527                 }
1528         } else if (!strncmp(this_opt, "dpc:", 4)) {
1529                 if (simple_strtoul(this_opt+4, NULL, 0) == 0) {
1530                         sprintf(s, "double pixel clock: false\n");
1531                         inf->lccr3 &= ~LCCR3_DPC;
1532                 } else {
1533                         sprintf(s, "double pixel clock: true\n");
1534                         inf->lccr3 |= LCCR3_DPC;
1535                 }
1536         } else if (!strncmp(this_opt, "outputen:", 9)) {
1537                 if (simple_strtoul(this_opt+9, NULL, 0) == 0) {
1538                         sprintf(s, "output enable: active low\n");
1539                         inf->lccr3 = (inf->lccr3 & ~LCCR3_OEP) | LCCR3_OutEnL;
1540                 } else {
1541                         sprintf(s, "output enable: active high\n");
1542                         inf->lccr3 = (inf->lccr3 & ~LCCR3_OEP) | LCCR3_OutEnH;
1543                 }
1544         } else if (!strncmp(this_opt, "pixclockpol:", 12)) {
1545                 if (simple_strtoul(this_opt+12, NULL, 0) == 0) {
1546                         sprintf(s, "pixel clock polarity: falling edge\n");
1547                         inf->lccr3 = (inf->lccr3 & ~LCCR3_PCP) | LCCR3_PixFlEdg;
1548                 } else {
1549                         sprintf(s, "pixel clock polarity: rising edge\n");
1550                         inf->lccr3 = (inf->lccr3 & ~LCCR3_PCP) | LCCR3_PixRsEdg;
1551                 }
1552         } else if (!strncmp(this_opt, "color", 5)) {
1553                 inf->lccr0 = (inf->lccr0 & ~LCCR0_CMS) | LCCR0_Color;
1554         } else if (!strncmp(this_opt, "mono", 4)) {
1555                 inf->lccr0 = (inf->lccr0 & ~LCCR0_CMS) | LCCR0_Mono;
1556         } else if (!strncmp(this_opt, "active", 6)) {
1557                 inf->lccr0 = (inf->lccr0 & ~LCCR0_PAS) | LCCR0_Act;
1558         } else if (!strncmp(this_opt, "passive", 7)) {
1559                 inf->lccr0 = (inf->lccr0 & ~LCCR0_PAS) | LCCR0_Pas;
1560         } else if (!strncmp(this_opt, "single", 6)) {
1561                 inf->lccr0 = (inf->lccr0 & ~LCCR0_SDS) | LCCR0_Sngl;
1562         } else if (!strncmp(this_opt, "dual", 4)) {
1563                 inf->lccr0 = (inf->lccr0 & ~LCCR0_SDS) | LCCR0_Dual;
1564         } else if (!strncmp(this_opt, "4pix", 4)) {
1565                 inf->lccr0 = (inf->lccr0 & ~LCCR0_DPD) | LCCR0_4PixMono;
1566         } else if (!strncmp(this_opt, "8pix", 4)) {
1567                 inf->lccr0 = (inf->lccr0 & ~LCCR0_DPD) | LCCR0_8PixMono;
1568         } else {
1569                 dev_err(dev, "unknown option: %s\n", this_opt);
1570                 return -EINVAL;
1571         }
1572
1573         if (s[0] != '\0')
1574                 dev_info(dev, "override %s", s);
1575
1576         return 0;
1577 }
1578
1579 static int __devinit pxafb_parse_options(struct device *dev, char *options)
1580 {
1581         char *this_opt;
1582         int ret;
1583
1584         if (!options || !*options)
1585                 return 0;
1586
1587         dev_dbg(dev, "options are \"%s\"\n", options ? options : "null");
1588
1589         /* could be made table driven or similar?... */
1590         while ((this_opt = strsep(&options, ",")) != NULL) {
1591                 ret = parse_opt(dev, this_opt);
1592                 if (ret)
1593                         return ret;
1594         }
1595         return 0;
1596 }
1597
1598 static char g_options[256] __devinitdata = "";
1599
1600 #ifndef MODULE
1601 static int __init pxafb_setup_options(void)
1602 {
1603         char *options = NULL;
1604
1605         if (fb_get_options("pxafb", &options))
1606                 return -ENODEV;
1607
1608         if (options)
1609                 strlcpy(g_options, options, sizeof(g_options));
1610
1611         return 0;
1612 }
1613 #else
1614 #define pxafb_setup_options()           (0)
1615
1616 module_param_string(options, g_options, sizeof(g_options), 0);
1617 MODULE_PARM_DESC(options, "LCD parameters (see Documentation/fb/pxafb.txt)");
1618 #endif
1619
1620 #else
1621 #define pxafb_parse_options(...)        (0)
1622 #define pxafb_setup_options()           (0)
1623 #endif
1624
1625 #ifdef DEBUG_VAR
1626 /* Check for various illegal bit-combinations. Currently only
1627  * a warning is given. */
1628 static void __devinit pxafb_check_options(struct device *dev,
1629                                           struct pxafb_mach_info *inf)
1630 {
1631         if (inf->lcd_conn)
1632                 return;
1633
1634         if (inf->lccr0 & LCCR0_INVALID_CONFIG_MASK)
1635                 dev_warn(dev, "machine LCCR0 setting contains "
1636                                 "illegal bits: %08x\n",
1637                         inf->lccr0 & LCCR0_INVALID_CONFIG_MASK);
1638         if (inf->lccr3 & LCCR3_INVALID_CONFIG_MASK)
1639                 dev_warn(dev, "machine LCCR3 setting contains "
1640                                 "illegal bits: %08x\n",
1641                         inf->lccr3 & LCCR3_INVALID_CONFIG_MASK);
1642         if (inf->lccr0 & LCCR0_DPD &&
1643             ((inf->lccr0 & LCCR0_PAS) != LCCR0_Pas ||
1644              (inf->lccr0 & LCCR0_SDS) != LCCR0_Sngl ||
1645              (inf->lccr0 & LCCR0_CMS) != LCCR0_Mono))
1646                 dev_warn(dev, "Double Pixel Data (DPD) mode is "
1647                                 "only valid in passive mono"
1648                                 " single panel mode\n");
1649         if ((inf->lccr0 & LCCR0_PAS) == LCCR0_Act &&
1650             (inf->lccr0 & LCCR0_SDS) == LCCR0_Dual)
1651                 dev_warn(dev, "Dual panel only valid in passive mode\n");
1652         if ((inf->lccr0 & LCCR0_PAS) == LCCR0_Pas &&
1653              (inf->modes->upper_margin || inf->modes->lower_margin))
1654                 dev_warn(dev, "Upper and lower margins must be 0 in "
1655                                 "passive mode\n");
1656 }
1657 #else
1658 #define pxafb_check_options(...)        do {} while (0)
1659 #endif
1660
1661 static int __devinit pxafb_probe(struct platform_device *dev)
1662 {
1663         struct pxafb_info *fbi;
1664         struct pxafb_mach_info *inf;
1665         struct resource *r;
1666         int irq, ret;
1667
1668         dev_dbg(&dev->dev, "pxafb_probe\n");
1669
1670         inf = dev->dev.platform_data;
1671         ret = -ENOMEM;
1672         fbi = NULL;
1673         if (!inf)
1674                 goto failed;
1675
1676         ret = pxafb_parse_options(&dev->dev, g_options);
1677         if (ret < 0)
1678                 goto failed;
1679
1680         pxafb_check_options(&dev->dev, inf);
1681
1682         dev_dbg(&dev->dev, "got a %dx%dx%d LCD\n",
1683                         inf->modes->xres,
1684                         inf->modes->yres,
1685                         inf->modes->bpp);
1686         if (inf->modes->xres == 0 ||
1687             inf->modes->yres == 0 ||
1688             inf->modes->bpp == 0) {
1689                 dev_err(&dev->dev, "Invalid resolution or bit depth\n");
1690                 ret = -EINVAL;
1691                 goto failed;
1692         }
1693
1694         fbi = pxafb_init_fbinfo(&dev->dev);
1695         if (!fbi) {
1696                 /* only reason for pxafb_init_fbinfo to fail is kmalloc */
1697                 dev_err(&dev->dev, "Failed to initialize framebuffer device\n");
1698                 ret = -ENOMEM;
1699                 goto failed;
1700         }
1701
1702         fbi->backlight_power = inf->pxafb_backlight_power;
1703         fbi->lcd_power = inf->pxafb_lcd_power;
1704
1705         r = platform_get_resource(dev, IORESOURCE_MEM, 0);
1706         if (r == NULL) {
1707                 dev_err(&dev->dev, "no I/O memory resource defined\n");
1708                 ret = -ENODEV;
1709                 goto failed_fbi;
1710         }
1711
1712         r = request_mem_region(r->start, r->end - r->start + 1, dev->name);
1713         if (r == NULL) {
1714                 dev_err(&dev->dev, "failed to request I/O memory\n");
1715                 ret = -EBUSY;
1716                 goto failed_fbi;
1717         }
1718
1719         fbi->mmio_base = ioremap(r->start, r->end - r->start + 1);
1720         if (fbi->mmio_base == NULL) {
1721                 dev_err(&dev->dev, "failed to map I/O memory\n");
1722                 ret = -EBUSY;
1723                 goto failed_free_res;
1724         }
1725
1726         /* Initialize video memory */
1727         ret = pxafb_map_video_memory(fbi);
1728         if (ret) {
1729                 dev_err(&dev->dev, "Failed to allocate video RAM: %d\n", ret);
1730                 ret = -ENOMEM;
1731                 goto failed_free_io;
1732         }
1733
1734         irq = platform_get_irq(dev, 0);
1735         if (irq < 0) {
1736                 dev_err(&dev->dev, "no IRQ defined\n");
1737                 ret = -ENODEV;
1738                 goto failed_free_mem;
1739         }
1740
1741         ret = request_irq(irq, pxafb_handle_irq, IRQF_DISABLED, "LCD", fbi);
1742         if (ret) {
1743                 dev_err(&dev->dev, "request_irq failed: %d\n", ret);
1744                 ret = -EBUSY;
1745                 goto failed_free_mem;
1746         }
1747
1748         ret = pxafb_smart_init(fbi);
1749         if (ret) {
1750                 dev_err(&dev->dev, "failed to initialize smartpanel\n");
1751                 goto failed_free_irq;
1752         }
1753
1754         /*
1755          * This makes sure that our colour bitfield
1756          * descriptors are correctly initialised.
1757          */
1758         ret = pxafb_check_var(&fbi->fb.var, &fbi->fb);
1759         if (ret) {
1760                 dev_err(&dev->dev, "failed to get suitable mode\n");
1761                 goto failed_free_irq;
1762         }
1763
1764         ret = pxafb_set_par(&fbi->fb);
1765         if (ret) {
1766                 dev_err(&dev->dev, "Failed to set parameters\n");
1767                 goto failed_free_irq;
1768         }
1769
1770         platform_set_drvdata(dev, fbi);
1771
1772         ret = register_framebuffer(&fbi->fb);
1773         if (ret < 0) {
1774                 dev_err(&dev->dev,
1775                         "Failed to register framebuffer device: %d\n", ret);
1776                 goto failed_free_cmap;
1777         }
1778
1779 #ifdef CONFIG_CPU_FREQ
1780         fbi->freq_transition.notifier_call = pxafb_freq_transition;
1781         fbi->freq_policy.notifier_call = pxafb_freq_policy;
1782         cpufreq_register_notifier(&fbi->freq_transition,
1783                                 CPUFREQ_TRANSITION_NOTIFIER);
1784         cpufreq_register_notifier(&fbi->freq_policy,
1785                                 CPUFREQ_POLICY_NOTIFIER);
1786 #endif
1787
1788         /*
1789          * Ok, now enable the LCD controller
1790          */
1791         set_ctrlr_state(fbi, C_ENABLE);
1792
1793         return 0;
1794
1795 failed_free_cmap:
1796         if (fbi->fb.cmap.len)
1797                 fb_dealloc_cmap(&fbi->fb.cmap);
1798 failed_free_irq:
1799         free_irq(irq, fbi);
1800 failed_free_mem:
1801         dma_free_writecombine(&dev->dev, fbi->map_size,
1802                         fbi->map_cpu, fbi->map_dma);
1803 failed_free_io:
1804         iounmap(fbi->mmio_base);
1805 failed_free_res:
1806         release_mem_region(r->start, r->end - r->start + 1);
1807 failed_fbi:
1808         clk_put(fbi->clk);
1809         platform_set_drvdata(dev, NULL);
1810         kfree(fbi);
1811 failed:
1812         return ret;
1813 }
1814
1815 static int __devexit pxafb_remove(struct platform_device *dev)
1816 {
1817         struct pxafb_info *fbi = platform_get_drvdata(dev);
1818         struct resource *r;
1819         int irq;
1820         struct fb_info *info;
1821
1822         if (!fbi)
1823                 return 0;
1824
1825         info = &fbi->fb;
1826
1827         unregister_framebuffer(info);
1828
1829         pxafb_disable_controller(fbi);
1830
1831         if (fbi->fb.cmap.len)
1832                 fb_dealloc_cmap(&fbi->fb.cmap);
1833
1834         irq = platform_get_irq(dev, 0);
1835         free_irq(irq, fbi);
1836
1837         dma_free_writecombine(&dev->dev, fbi->map_size,
1838                                         fbi->map_cpu, fbi->map_dma);
1839
1840         iounmap(fbi->mmio_base);
1841
1842         r = platform_get_resource(dev, IORESOURCE_MEM, 0);
1843         release_mem_region(r->start, r->end - r->start + 1);
1844
1845         clk_put(fbi->clk);
1846         kfree(fbi);
1847
1848         return 0;
1849 }
1850
1851 static struct platform_driver pxafb_driver = {
1852         .probe          = pxafb_probe,
1853         .remove         = pxafb_remove,
1854         .suspend        = pxafb_suspend,
1855         .resume         = pxafb_resume,
1856         .driver         = {
1857                 .owner  = THIS_MODULE,
1858                 .name   = "pxa2xx-fb",
1859         },
1860 };
1861
1862 static int __init pxafb_init(void)
1863 {
1864         if (pxafb_setup_options())
1865                 return -EINVAL;
1866
1867         return platform_driver_register(&pxafb_driver);
1868 }
1869
1870 static void __exit pxafb_exit(void)
1871 {
1872         platform_driver_unregister(&pxafb_driver);
1873 }
1874
1875 module_init(pxafb_init);
1876 module_exit(pxafb_exit);
1877
1878 MODULE_DESCRIPTION("loadable framebuffer driver for PXA");
1879 MODULE_LICENSE("GPL");