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/*
 *  linux/lib/string.c
 *
 *  Copyright (C) 1991, 1992  Linus Torvalds
 */

/*
 * stupid library routines.. The optimized versions should generally be found
 * as inline code in <asm-xx/string.h>
 *
 * These are buggy as well..
 *
 * * Fri Jun 25 1999, Ingo Oeser <ioe@informatik.tu-chemnitz.de>
 * -  Added strsep() which will replace strtok() soon (because strsep() is
 *    reentrant and should be faster). Use only strsep() in new code, please.
 *
 * * Sat Feb 09 2002, Jason Thomas <jason@topic.com.au>,
 *                    Matthew Hawkins <matt@mh.dropbear.id.au>
 * -  Kissed strtok() goodbye
 */

#include <linux/types.h>
#include <linux/string.h>
#include <linux/ctype.h>
#include <linux/module.h>

#ifndef __HAVE_ARCH_STRNICMP
/**
 * strnicmp - Case insensitive, length-limited string comparison
 * @s1: One string
 * @s2: The other string
 * @len: the maximum number of characters to compare
 */
int strnicmp(const char *s1, const char *s2, size_t len)
{
	/* Yes, Virginia, it had better be unsigned */
	unsigned char c1, c2;

	c1 = c2 = 0;
	if (len) {
		do {
			c1 = *s1;
			c2 = *s2;
			s1++;
			s2++;
			if (!c1)
				break;
			if (!c2)
				break;
			if (c1 == c2)
				continue;
			c1 = tolower(c1);
			c2 = tolower(c2);
			if (c1 != c2)
				break;
		} while (--len);
	}
	return (int)c1 - (int)c2;
}
EXPORT_SYMBOL(strnicmp);
#endif

#ifndef __HAVE_ARCH_STRCPY
/**
 * strcpy - Copy a %NUL terminated string
 * @dest: Where to copy the string to
 * @src: Where to copy the string from
 */
#undef strcpy
char *strcpy(char *dest, const char *src)
{
	char *tmp = dest;

	while ((*dest++ = *src++) != '\0')
		/* nothing */;
	return tmp;
}
EXPORT_SYMBOL(strcpy);
#endif

#ifndef __HAVE_ARCH_STRNCPY
/**
 * strncpy - Copy a length-limited, %NUL-terminated string
 * @dest: Where to copy the string to
 * @src: Where to copy the string from
 * @count: The maximum number of bytes to copy
 *
 * The result is not %NUL-terminated if the source exceeds
 * @count bytes.
 *
 * In the case where the length of @src is less than  that  of
 * count, the remainder of @dest will be padded with %NUL.
 *
 */
char *strncpy(char *dest, const char *src, size_t count)
{
	char *tmp = dest;

	while (count) {
		if ((*tmp = *src) != 0)
			src++;
		tmp++;
		count--;
	}
	return dest;
}
EXPORT_SYMBOL(strncpy);
#endif

#ifndef __HAVE_ARCH_STRLCPY
/**
 * strlcpy - Copy a %NUL terminated string into a sized buffer
 * @dest: Where to copy the string to
 * @src: Where to copy the string from
 * @size: size of destination buffer
 *
 * Compatible with *BSD: the result is always a valid
 * NUL-terminated string that fits in the buffer (unless,
 * of course, the buffer size is zero). It does not pad
 * out the result like strncpy() does.
 */
size_t strlcpy(char *dest, const char *src, size_t size)
{
	size_t ret = strlen(src);

	if (size) {
		size_t len = (ret >= size) ? size - 1 : ret;
		memcpy(dest, src, len);
		dest[len] = '\0';
	}
	return ret;
}
EXPORT_SYMBOL(strlcpy);
#endif

#ifndef __HAVE_ARCH_STRCAT
/**
 * strcat - Append one %NUL-terminated string to another
 * @dest: The string to be appended to
 * @src: The string to append to it
 */
#undef strcat
char *strcat(char *dest, const char *src)
{
	char *tmp = dest;

	while (*dest)
		dest++;
	while ((*dest++ = *src++) != '\0')
		;
	return tmp;
}
EXPORT_SYMBOL(strcat);
#endif

#ifndef __HAVE_ARCH_STRNCAT
/**
 * strncat - Append a length-limited, %NUL-terminated string to another
 * @dest: The string to be appended to
 * @src: The string to append to it
 * @count: The maximum numbers of bytes to copy
 *
 * Note that in contrast to strncpy, strncat ensures the result is
 * terminated.
 */
char *strncat(char *dest, const char *src, size_t count)
{
	char *tmp = dest;

	if (count) {
		while (*dest)
			dest++;
		while ((*dest++ = *src++) != 0) {
			if (--count == 0) {
				*dest = '\0';
				break;
			}
		}
	}
	return tmp;
}
EXPORT_SYMBOL(strncat);
#endif

#ifndef __HAVE_ARCH_STRLCAT
/**
 * strlcat - Append a length-limited, %NUL-terminated string to another
 * @dest: The string to be appended to
 * @src: The string to append to it
 * @count: The size of the destination buffer.
 */
size_t strlcat(char *dest, const char *src, size_t count)
{
	size_t dsize = strlen(dest);
	size_t len = strlen(src);
	size_t res = dsize + len;

	/* This would be a bug */
	BUG_ON(dsize >= count);

	dest += dsize;
	count -= dsize;
	if (len >= count)
		len = count-1;
	memcpy(dest, src, len);
	dest[len] = 0;
	return res;
}
EXPORT_SYMBOL(strlcat);
#endif

#ifndef __HAVE_ARCH_STRCMP
/**
 * strcmp - Compare two strings
 * @cs: One string
 * @ct: Another string
 */
#undef strcmp
int strcmp(const char *cs, const char *ct)
{
	signed char __res;

	while (1) {
		if ((__res = *cs - *ct++) != 0 || !*cs++)
			break;
	}
	return __res;
}
EXPORT_SYMBOL(strcmp);
#endif

#ifndef __HAVE_ARCH_STRNCMP
/**
 * strncmp - Compare two length-limited strings
 * @cs: One string
 * @ct: Another string
 * @count: The maximum number of bytes to compare
 */
int strncmp(const char *cs, const char *ct, size_t count)
{
	signed char __res = 0;

	while (count) {
		if ((__res = *cs - *ct++) != 0 || !*cs++)
			break;
		count--;
	}
	return __res;
}
EXPORT_SYMBOL(strncmp);
#endif

#ifndef __HAVE_ARCH_STRCHR
/**
 * strchr - Find the first occurrence of a character in a string
 * @s: The string to be searched
 * @c: The character to search for
 */
char *strchr(const char *s, int c)
{
	for (; *s != (char)c; ++s)
		if (*s == '\0')
			return NULL;
	return (char *)s;
}
EXPORT_SYMBOL(strchr);
#endif

#ifndef __HAVE_ARCH_STRRCHR
/**
 * strrchr - Find the last occurrence of a character in a string
 * @s: The string to be searched
 * @c: The character to search for
 */
char *strrchr(const char *s, int c)
{
       const char *p = s + strlen(s);
       do {
           if (*p == (char)c)
               return (char *)p;
       } while (--p >= s);
       return NULL;
}
EXPORT_SYMBOL(strrchr);
#endif

#ifndef __HAVE_ARCH_STRNCHR
/**
 * strnchr - Find a character in a length limited string
 * @s: The string to be searched
 * @count: The number of characters to be searched
 * @c: The character to search for
 */
char *strnchr(const char *s, size_t count, int c)
{
	for (; count-- && *s != '\0'; ++s)
		if (*s == (char)c)
			return (char *)s;
	return NULL;
}
EXPORT_SYMBOL(strnchr);
#endif

#ifndef __HAVE_ARCH_STRLEN
/**
 * strlen - Find the length of a string
 * @s: The string to be sized
 */
size_t strlen(const char *s)
{
	const char *sc;

	for (sc = s; *sc != '\0'; ++sc)
		/* nothing */;
	return sc - s;
}
EXPORT_SYMBOL(strlen);
#endif

#ifndef __HAVE_ARCH_STRNLEN
/**
 * strnlen - Find the length of a length-limited string
 * @s: The string to be sized
 * @count: The maximum number of bytes to search
 */
size_t strnlen(const char *s, size_t count)
{
	const char *sc;

	for (sc = s; count-- && *sc != '\0'; ++sc)
		/* nothing */;
	return sc - s;
}
EXPORT_SYMBOL(strnlen);
#endif

#ifndef __HAVE_ARCH_STRSPN
/**
 * strspn - Calculate the length of the initial substring of @s which only
 * 	contain letters in @accept
 * @s: The string to be searched
 * @accept: The string to search for
 */
size_t strspn(const char *s, const char *accept)
{
	const char *p;
	const char *a;
	size_t count = 0;

	for (p = s; *p != '\0'; ++p) {
		for (a = accept; *a != '\0'; ++a) {
			if (*p == *a)
				break;
		}
		if (*a == '\0')
			return count;
		++count;
	}
	return count;
}

EXPORT_SYMBOL(strspn);
#endif

#ifndef __HAVE_ARCH_STRCSPN
/**
 * strcspn - Calculate the length of the initial substring of @s which does
 * 	not contain letters in @reject
 * @s: The string to be searched
 * @reject: The string to avoid
 */
size_t strcspn(const char *s, const char *reject)
{
	const char *p;
	const char *r;
	size_t count = 0;

	for (p = s; *p != '\0'; ++p) {
		for (r = reject; *r != '\0'; ++r) {
			if (*p == *r)
				return count;
		}
		++count;
	}
	return count;
}
EXPORT_SYMBOL(strcspn);
#endif

#ifndef __HAVE_ARCH_STRPBRK
/**
 * strpbrk - Find the first occurrence of a set of characters
 * @cs: The string to be searched
 * @ct: The characters to search for
 */
char *strpbrk(const char *cs, const char *ct)
{
	const char *sc1, *sc2;

	for (sc1 = cs; *sc1 != '\0'; ++sc1) {
		for (sc2 = ct; *sc2 != '\0'; ++sc2) {
			if (*sc1 == *sc2)
				return (char *)sc1;
		}
	}
	return NULL;
}
EXPORT_SYMBOL(strpbrk);
#endif

#ifndef __HAVE_ARCH_STRSEP
/**
 * strsep - Split a string into tokens
 * @s: The string to be searched
 * @ct: The characters to search for
 *
 * strsep() updates @s to point after the token, ready for the next call.
 *
 * It returns empty tokens, too, behaving exactly like the libc function
 * of that name. In fact, it was stolen from glibc2 and de-fancy-fied.
 * Same semantics, slimmer shape. ;)
 */
char *strsep(char **s, const char *ct)
{
	char *sbegin = *s;
	char *end;

	if (sbegin == NULL)
		return NULL;

	end = strpbrk(sbegin, ct);
	if (end)
		*end++ = '\0';
	*s = end;
	return sbegin;
}
EXPORT_SYMBOL(strsep);
#endif

#ifndef __HAVE_ARCH_MEMSET
/**
 * memset - Fill a region of memory with the given value
 * @s: Pointer to the start of the area.
 * @c: The byte to fill the area with
 * @count: The size of the area.
 *
 * Do not use memset() to access IO space, use memset_io() instead.
 */
void *memset(void *s, int c, size_t count)
{
	char *xs = s;

	while (count--)
		*xs++ = c;
	return s;
}
EXPORT_SYMBOL(memset);
#endif

#ifndef __HAVE_ARCH_MEMCPY
/**
 * memcpy - Copy one area of memory to another
 * @dest: Where to copy to
 * @src: Where to copy from
 * @count: The size of the area.
 *
 * You should not use this function to access IO space, use memcpy_toio()
 * or memcpy_fromio() instead.
 */
void *memcpy(void *dest, const void *src, size_t count)
{
	char *tmp = dest;
	const char *s = src;

	while (count--)
		*tmp++ = *s++;
	return dest;
}
EXPORT_SYMBOL(memcpy);
#endif

#ifndef __HAVE_ARCH_MEMMOVE
/**
 * memmove - Copy one area of memory to another
 * @dest: Where to copy to
 * @src: Where to copy from
 * @count: The size of the area.
 *
 * Unlike memcpy(), memmove() copes with overlapping areas.
 */
void *memmove(void *dest, const void *src, size_t count)
{
	char *tmp;
	const char *s;

	if (dest <= src) {
		tmp = dest;
		s = src;
		while (count--)
			*tmp++ = *s++;
	} else {
		tmp = dest;
		tmp += count;
		s = src;
		s += count;
		while (count--)
			*--tmp = *--s;
	}
	return dest;
}
EXPORT_SYMBOL(memmove);
#endif

#ifndef __HAVE_ARCH_MEMCMP
/**
 * memcmp - Compare two areas of memory
 * @cs: One area of memory
 * @ct: Another area of memory
 * @count: The size of the area.
 */
#undef memcmp
int memcmp(const void *cs, const void *ct, size_t count)
{
	const unsigned char *su1, *su2;
	int res = 0;

	for (su1 = cs, su2 = ct; 0 < count; ++su1, ++su2, count--)
		if ((res = *su1 - *su2) != 0)
			break;
	return res;
}
EXPORT_SYMBOL(memcmp);
#endif

#ifndef __HAVE_ARCH_MEMSCAN
/**
 * memscan - Find a character in an area of memory.
 * @addr: The memory area
 * @c: The byte to search for
 * @size: The size of the area.
 *
 * returns the address of the first occurrence of @c, or 1 byte past
 * the area if @c is not found
 */
void *memscan(void *addr, int c, size_t size)
{
	unsigned char *p = addr;

	while (size) {
		if (*p == c)
			return (void *)p;
		p++;
		size--;
	}
  	return (void *)p;
}
EXPORT_SYMBOL(memscan);
#endif

#ifndef __HAVE_ARCH_STRSTR
/**
 * strstr - Find the first substring in a %NUL terminated string
 * @s1: The string to be searched
 * @s2: The string to search for
 */
char *strstr(const char *s1, const char *s2)
{
	int l1, l2;

	l2 = strlen(s2);
	if (!l2)
		return (char *)s1;
	l1 = strlen(s1);
	while (l1 >= l2) {
		l1--;
		if (!memcmp(s1, s2, l2))
			return (char *)s1;
		s1++;
	}
	return NULL;
}
EXPORT_SYMBOL(strstr);
#endif

#ifndef __HAVE_ARCH_MEMCHR
/**
 * memchr - Find a character in an area of memory.
 * @s: The memory area
 * @c: The byte to search for
 * @n: The size of the area.
 *
 * returns the address of the first occurrence of @c, or %NULL
 * if @c is not found
 */
void *memchr(const void *s, int c, size_t n)
{
	const unsigned char *p = s;
	while (n-- != 0) {
        	if ((unsigned char)c == *p++) {
			return (void *)(p - 1);
		}
	}
	return NULL;
}
EXPORT_SYMBOL(memchr);
#endif
"hl com"> * Horizontal period THd - 480 - Clock * Back porch THb - 2 - Clock * Front porch THf - 2 - Clock * * -- Vertical synchronizing -- * Period TV - 286 - Line * Pulse width TVp - 10 - Line * Vertical period TVd - 272 - Line * Back porch TVb - 2 - Line * Front porch TVf - 2 - Line */ #define LCD_CLK (8*1000*1000) /* 8MHz */ /* # active data to transfer after Horizontal Delay clock */ #define EPPI_HCOUNT LCD_X_RES /* # active lines to transfer after Vertical Delay clock */ #define EPPI_VCOUNT LCD_Y_RES /* Samples per Line = 480 (active data) + 45 (padding) */ #define EPPI_LINE 525 /* Lines per Frame = 272 (active data) + 14 (padding) */ #define EPPI_FRAME 286 /* FS1 (Hsync) Width (Typical)*/ #define EPPI_FS1W_HBL 41 /* FS1 (Hsync) Period (Typical) */ #define EPPI_FS1P_AVPL EPPI_LINE /* Horizontal Delay clock after assertion of Hsync (Typical) */ #define EPPI_HDELAY 43 /* FS2 (Vsync) Width = FS1 (Hsync) Period * 10 */ #define EPPI_FS2W_LVB (EPPI_LINE * 10) /* FS2 (Vsync) Period = FS1 (Hsync) Period * Lines per Frame */ #define EPPI_FS2P_LAVF (EPPI_LINE * EPPI_FRAME) /* Vertical Delay after assertion of Vsync (2 Lines) */ #define EPPI_VDELAY 12 #define EPPI_CLIP 0xFF00FF00 /* EPPI Control register configuration value for RGB out * - EPPI as Output * GP 2 frame sync mode, * Internal Clock generation disabled, Internal FS generation enabled, * Receives samples on EPPI_CLK raising edge, Transmits samples on EPPI_CLK falling edge, * FS1 & FS2 are active high, * DLEN = 6 (24 bits for RGB888 out) or 5 (18 bits for RGB666 out) * DMA Unpacking disabled when RGB Formating is enabled, otherwise DMA unpacking enabled * Swapping Enabled, * One (DMA) Channel Mode, * RGB Formatting Enabled for RGB666 output, disabled for RGB888 output * Regular watermark - when FIFO is 100% full, * Urgent watermark - when FIFO is 75% full */ #define EPPI_CONTROL (0x20136E2E | SWAPEN) static inline u16 get_eppi_clkdiv(u32 target_ppi_clk) { u32 sclk = get_sclk(); /* EPPI_CLK = (SCLK) / (2 * (EPPI_CLKDIV[15:0] + 1)) */ return (((sclk / target_ppi_clk) / 2) - 1); } static void config_ppi(struct bfin_bf54xfb_info *fbi) { u16 eppi_clkdiv = get_eppi_clkdiv(LCD_CLK); bfin_write_EPPI0_FS1W_HBL(EPPI_FS1W_HBL); bfin_write_EPPI0_FS1P_AVPL(EPPI_FS1P_AVPL); bfin_write_EPPI0_FS2W_LVB(EPPI_FS2W_LVB); bfin_write_EPPI0_FS2P_LAVF(EPPI_FS2P_LAVF); bfin_write_EPPI0_CLIP(EPPI_CLIP); bfin_write_EPPI0_FRAME(EPPI_FRAME); bfin_write_EPPI0_LINE(EPPI_LINE); bfin_write_EPPI0_HCOUNT(EPPI_HCOUNT); bfin_write_EPPI0_HDELAY(EPPI_HDELAY); bfin_write_EPPI0_VCOUNT(EPPI_VCOUNT); bfin_write_EPPI0_VDELAY(EPPI_VDELAY); bfin_write_EPPI0_CLKDIV(eppi_clkdiv); /* * DLEN = 6 (24 bits for RGB888 out) or 5 (18 bits for RGB666 out) * RGB Formatting Enabled for RGB666 output, disabled for RGB888 output */ if (outp_rgb666) bfin_write_EPPI0_CONTROL((EPPI_CONTROL & ~DLENGTH) | DLEN_18 | RGB_FMT_EN); else bfin_write_EPPI0_CONTROL(((EPPI_CONTROL & ~DLENGTH) | DLEN_24) & ~RGB_FMT_EN); } static int config_dma(struct bfin_bf54xfb_info *fbi) { set_dma_config(CH_EPPI0, set_bfin_dma_config(DIR_READ, DMA_FLOW_AUTO, INTR_DISABLE, DIMENSION_2D, DATA_SIZE_32, DMA_NOSYNC_KEEP_DMA_BUF)); set_dma_x_count(CH_EPPI0, (LCD_X_RES * LCD_BPP) / DMA_BUS_SIZE); set_dma_x_modify(CH_EPPI0, DMA_BUS_SIZE / 8); set_dma_y_count(CH_EPPI0, LCD_Y_RES); set_dma_y_modify(CH_EPPI0, DMA_BUS_SIZE / 8); set_dma_start_addr(CH_EPPI0, (unsigned long)fbi->fb_buffer); return 0; } static int request_ports(struct bfin_bf54xfb_info *fbi) { u16 eppi_req_18[] = EPPI0_18; u16 disp = fbi->mach_info->disp; if (gpio_request(disp, DRIVER_NAME)) { printk(KERN_ERR "Requesting GPIO %d failed\n", disp); return -EFAULT; } if (peripheral_request_list(eppi_req_18, DRIVER_NAME)) { printk(KERN_ERR "Requesting Peripherals failed\n"); gpio_free(disp); return -EFAULT; } if (!outp_rgb666) { u16 eppi_req_24[] = EPPI0_24; if (peripheral_request_list(eppi_req_24, DRIVER_NAME)) { printk(KERN_ERR "Requesting Peripherals failed\n"); peripheral_free_list(eppi_req_18); gpio_free(disp); return -EFAULT; } } gpio_direction_output(disp, 1); return 0; } static void free_ports(struct bfin_bf54xfb_info *fbi) { u16 eppi_req_18[] = EPPI0_18; gpio_free(fbi->mach_info->disp); peripheral_free_list(eppi_req_18); if (!outp_rgb666) { u16 eppi_req_24[] = EPPI0_24; peripheral_free_list(eppi_req_24); } } static int bfin_bf54x_fb_open(struct fb_info *info, int user) { struct bfin_bf54xfb_info *fbi = info->par; spin_lock(&fbi->lock); fbi->lq043_open_cnt++; if (fbi->lq043_open_cnt <= 1) { bfin_write_EPPI0_CONTROL(0); SSYNC(); config_dma(fbi); config_ppi(fbi); /* start dma */ enable_dma(CH_EPPI0); bfin_write_EPPI0_CONTROL(bfin_read_EPPI0_CONTROL() | EPPI_EN); } spin_unlock(&fbi->lock); return 0; } static int bfin_bf54x_fb_release(struct fb_info *info, int user) { struct bfin_bf54xfb_info *fbi = info->par; spin_lock(&fbi->lock); fbi->lq043_open_cnt--; if (fbi->lq043_open_cnt <= 0) { bfin_write_EPPI0_CONTROL(0); SSYNC(); disable_dma(CH_EPPI0); } spin_unlock(&fbi->lock); return 0; } static int bfin_bf54x_fb_check_var(struct fb_var_screeninfo *var, struct fb_info *info) { switch (var->bits_per_pixel) { case 24:/* TRUECOLOUR, 16m */ var->red.offset = 16; var->green.offset = 8; var->blue.offset = 0; var->red.length = var->green.length = var->blue.length = 8; var->transp.offset = 0; var->transp.length = 0; var->transp.msb_right = 0; var->red.msb_right = 0; var->green.msb_right = 0; var->blue.msb_right = 0; break; default: pr_debug("%s: depth not supported: %u BPP\n", __func__, var->bits_per_pixel); return -EINVAL; } if (info->var.xres != var->xres || info->var.yres != var->yres || info->var.xres_virtual != var->xres_virtual || info->var.yres_virtual != var->yres_virtual) { pr_debug("%s: Resolution not supported: X%u x Y%u \n", __func__, var->xres, var->yres); return -EINVAL; } /* * Memory limit */ if ((info->fix.line_length * var->yres_virtual) > info->fix.smem_len) { pr_debug("%s: Memory Limit requested yres_virtual = %u\n", __func__, var->yres_virtual); return -ENOMEM; } return 0; } int bfin_bf54x_fb_cursor(struct fb_info *info, struct fb_cursor *cursor) { if (nocursor) return 0; else return -EINVAL; /* just to force soft_cursor() call */ } static int bfin_bf54x_fb_setcolreg(u_int regno, u_int red, u_int green, u_int blue, u_int transp, struct fb_info *info) { if (regno >= BFIN_LCD_NBR_PALETTE_ENTRIES) return -EINVAL; if (info->var.grayscale) { /* grayscale = 0.30*R + 0.59*G + 0.11*B */ red = green = blue = (red * 77 + green * 151 + blue * 28) >> 8; } if (info->fix.visual == FB_VISUAL_TRUECOLOR) { u32 value; /* Place color in the pseudopalette */ if (regno > 16) return -EINVAL; red >>= (16 - info->var.red.length); green >>= (16 - info->var.green.length); blue >>= (16 - info->var.blue.length); value = (red << info->var.red.offset) | (green << info->var.green.offset) | (blue << info->var.blue.offset); value &= 0xFFFFFF; ((u32 *) (info->pseudo_palette))[regno] = value; } return 0; } static struct fb_ops bfin_bf54x_fb_ops = { .owner = THIS_MODULE, .fb_open = bfin_bf54x_fb_open, .fb_release = bfin_bf54x_fb_release, .fb_check_var = bfin_bf54x_fb_check_var, .fb_fillrect = cfb_fillrect, .fb_copyarea = cfb_copyarea, .fb_imageblit = cfb_imageblit, .fb_cursor = bfin_bf54x_fb_cursor, .fb_setcolreg = bfin_bf54x_fb_setcolreg, }; #ifndef NO_BL_SUPPORT static int bl_get_brightness(struct backlight_device *bd) { return 0; } static const struct backlight_ops bfin_lq043fb_bl_ops = { .get_brightness = bl_get_brightness, }; static struct backlight_device *bl_dev; static int bfin_lcd_get_power(struct lcd_device *dev) { return 0; } static int bfin_lcd_set_power(struct lcd_device *dev, int power) { return 0; } static int bfin_lcd_get_contrast(struct lcd_device *dev) { return 0; } static int bfin_lcd_set_contrast(struct lcd_device *dev, int contrast) { return 0; } static int bfin_lcd_check_fb(struct lcd_device *dev, struct fb_info *fi) { if (!fi || (fi == &bfin_bf54x_fb)) return 1; return 0; } static struct lcd_ops bfin_lcd_ops = { .get_power = bfin_lcd_get_power, .set_power = bfin_lcd_set_power, .get_contrast = bfin_lcd_get_contrast, .set_contrast = bfin_lcd_set_contrast, .check_fb = bfin_lcd_check_fb, }; static struct lcd_device *lcd_dev; #endif static irqreturn_t bfin_bf54x_irq_error(int irq, void *dev_id) { /*struct bfin_bf54xfb_info *info = dev_id;*/ u16 status = bfin_read_EPPI0_STATUS(); bfin_write_EPPI0_STATUS(0xFFFF); if (status) { bfin_write_EPPI0_CONTROL(bfin_read_EPPI0_CONTROL() & ~EPPI_EN); disable_dma(CH_EPPI0); /* start dma */ enable_dma(CH_EPPI0); bfin_write_EPPI0_CONTROL(bfin_read_EPPI0_CONTROL() | EPPI_EN); bfin_write_EPPI0_STATUS(0xFFFF); } return IRQ_HANDLED; } static int __devinit bfin_bf54x_probe(struct platform_device *pdev) { #ifndef NO_BL_SUPPORT struct backlight_properties props; #endif struct bfin_bf54xfb_info *info; struct fb_info *fbinfo; int ret; printk(KERN_INFO DRIVER_NAME ": FrameBuffer initializing...\n"); if (request_dma(CH_EPPI0, "CH_EPPI0") < 0) { printk(KERN_ERR DRIVER_NAME ": couldn't request CH_EPPI0 DMA\n"); ret = -EFAULT; goto out1; } fbinfo = framebuffer_alloc(sizeof(struct bfin_bf54xfb_info), &pdev->dev); if (!fbinfo) { ret = -ENOMEM; goto out2; } info = fbinfo->par; info->fb = fbinfo; info->dev = &pdev->dev; platform_set_drvdata(pdev, fbinfo); strcpy(fbinfo->fix.id, driver_name); info->mach_info = pdev->dev.platform_data; if (info->mach_info == NULL) { dev_err(&pdev->dev, "no platform data for lcd, cannot attach\n"); ret = -EINVAL; goto out3; } fbinfo->fix.type = FB_TYPE_PACKED_PIXELS; fbinfo->fix.type_aux = 0; fbinfo->fix.xpanstep = 0; fbinfo->fix.ypanstep = 0; fbinfo->fix.ywrapstep = 0; fbinfo->fix.accel = FB_ACCEL_NONE; fbinfo->fix.visual = FB_VISUAL_TRUECOLOR; fbinfo->var.nonstd = 0; fbinfo->var.activate = FB_ACTIVATE_NOW; fbinfo->var.height = info->mach_info->height; fbinfo->var.width = info->mach_info->width; fbinfo->var.accel_flags = 0; fbinfo->var.vmode = FB_VMODE_NONINTERLACED; fbinfo->fbops = &bfin_bf54x_fb_ops; fbinfo->flags = FBINFO_FLAG_DEFAULT; fbinfo->var.xres = info->mach_info->xres.defval; fbinfo->var.xres_virtual = info->mach_info->xres.defval; fbinfo->var.yres = info->mach_info->yres.defval; fbinfo->var.yres_virtual = info->mach_info->yres.defval; fbinfo->var.bits_per_pixel = info->mach_info->bpp.defval; fbinfo->var.upper_margin = 0; fbinfo->var.lower_margin = 0; fbinfo->var.vsync_len = 0; fbinfo->var.left_margin = 0; fbinfo->var.right_margin = 0; fbinfo->var.hsync_len = 0; fbinfo->var.red.offset = 16; fbinfo->var.green.offset = 8; fbinfo->var.blue.offset = 0; fbinfo->var.transp.offset = 0; fbinfo->var.red.length = 8; fbinfo->var.green.length = 8; fbinfo->var.blue.length = 8; fbinfo->var.transp.length = 0; fbinfo->fix.smem_len = info->mach_info->xres.max * info->mach_info->yres.max * info->mach_info->bpp.max / 8; fbinfo->fix.line_length = fbinfo->var.xres_virtual * fbinfo->var.bits_per_pixel / 8; info->fb_buffer = dma_alloc_coherent(NULL, fbinfo->fix.smem_len, &info->dma_handle, GFP_KERNEL); if (NULL == info->fb_buffer) { printk(KERN_ERR DRIVER_NAME ": couldn't allocate dma buffer.\n"); ret = -ENOMEM; goto out3; } fbinfo->screen_base = (void *)info->fb_buffer; fbinfo->fix.smem_start = (int)info->fb_buffer; fbinfo->fbops = &bfin_bf54x_fb_ops; fbinfo->pseudo_palette = kzalloc(sizeof(u32) * 16, GFP_KERNEL); if (!fbinfo->pseudo_palette) { printk(KERN_ERR DRIVER_NAME "Fail to allocate pseudo_palette\n"); ret = -ENOMEM; goto out4; } if (fb_alloc_cmap(&fbinfo->cmap, BFIN_LCD_NBR_PALETTE_ENTRIES, 0) < 0) { printk(KERN_ERR DRIVER_NAME "Fail to allocate colormap (%d entries)\n", BFIN_LCD_NBR_PALETTE_ENTRIES); ret = -EFAULT; goto out5; } if (request_ports(info)) { printk(KERN_ERR DRIVER_NAME ": couldn't request gpio port.\n"); ret = -EFAULT; goto out6; } info->irq = platform_get_irq(pdev, 0); if (info->irq < 0) { ret = -EINVAL; goto out7; } if (request_irq(info->irq, bfin_bf54x_irq_error, IRQF_DISABLED, "PPI ERROR", info) < 0) { printk(KERN_ERR DRIVER_NAME ": unable to request PPI ERROR IRQ\n"); ret = -EFAULT; goto out7; } if (register_framebuffer(fbinfo) < 0) { printk(KERN_ERR DRIVER_NAME ": unable to register framebuffer.\n"); ret = -EINVAL; goto out8; } #ifndef NO_BL_SUPPORT memset(&props, 0, sizeof(struct backlight_properties)); props.type = BACKLIGHT_RAW; props.max_brightness = 255; bl_dev = backlight_device_register("bf54x-bl", NULL, NULL, &bfin_lq043fb_bl_ops, &props); if (IS_ERR(bl_dev)) { printk(KERN_ERR DRIVER_NAME ": unable to register backlight.\n"); ret = -EINVAL; unregister_framebuffer(fbinfo); goto out8; } lcd_dev = lcd_device_register(DRIVER_NAME, &pdev->dev, NULL, &bfin_lcd_ops); lcd_dev->props.max_contrast = 255, printk(KERN_INFO "Done.\n"); #endif return 0; out8: free_irq(info->irq, info); out7: free_ports(info); out6: fb_dealloc_cmap(&fbinfo->cmap); out5: kfree(fbinfo->pseudo_palette); out4: dma_free_coherent(NULL, fbinfo->fix.smem_len, info->fb_buffer, info->dma_handle); out3: framebuffer_release(fbinfo); out2: free_dma(CH_EPPI0); out1: platform_set_drvdata(pdev, NULL); return ret; } static int __devexit bfin_bf54x_remove(struct platform_device *pdev) { struct fb_info *fbinfo = platform_get_drvdata(pdev); struct bfin_bf54xfb_info *info = fbinfo->par; free_dma(CH_EPPI0); free_irq(info->irq, info); if (info->fb_buffer != NULL) dma_free_coherent(NULL, fbinfo->fix.smem_len, info->fb_buffer, info->dma_handle); kfree(fbinfo->pseudo_palette); fb_dealloc_cmap(&fbinfo->cmap); #ifndef NO_BL_SUPPORT lcd_device_unregister(lcd_dev); backlight_device_unregister(bl_dev); #endif unregister_framebuffer(fbinfo); free_ports(info); printk(KERN_INFO DRIVER_NAME ": Unregister LCD driver.\n"); return 0; } #ifdef CONFIG_PM static int bfin_bf54x_suspend(struct platform_device *pdev, pm_message_t state) { struct fb_info *fbinfo = platform_get_drvdata(pdev); bfin_write_EPPI0_CONTROL(bfin_read_EPPI0_CONTROL() & ~EPPI_EN); disable_dma(CH_EPPI0); bfin_write_EPPI0_STATUS(0xFFFF); return 0; } static int bfin_bf54x_resume(struct platform_device *pdev) { struct fb_info *fbinfo = platform_get_drvdata(pdev); struct bfin_bf54xfb_info *info = fbinfo->par; if (info->lq043_open_cnt) { bfin_write_EPPI0_CONTROL(0); SSYNC(); config_dma(info); config_ppi(info); /* start dma */ enable_dma(CH_EPPI0); bfin_write_EPPI0_CONTROL(bfin_read_EPPI0_CONTROL() | EPPI_EN); } return 0; } #else #define bfin_bf54x_suspend NULL #define bfin_bf54x_resume NULL #endif static struct platform_driver bfin_bf54x_driver = { .probe = bfin_bf54x_probe, .remove = __devexit_p(bfin_bf54x_remove), .suspend = bfin_bf54x_suspend, .resume = bfin_bf54x_resume, .driver = { .name = DRIVER_NAME, .owner = THIS_MODULE, }, }; static int __init bfin_bf54x_driver_init(void) { return platform_driver_register(&bfin_bf54x_driver); } static void __exit bfin_bf54x_driver_cleanup(void) { platform_driver_unregister(&bfin_bf54x_driver); } MODULE_DESCRIPTION("Blackfin BF54x TFT LCD Driver"); MODULE_LICENSE("GPL"); module_init(bfin_bf54x_driver_init); module_exit(bfin_bf54x_driver_cleanup);