common.c 27.2 KB
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/*
 * Copyright (c) 2010-2011 Samsung Electronics Co., Ltd.
 *		http://www.samsung.com
 *
 * Common Codes for EXYNOS
 *
 * This program is free software; you can redistribute it and/or modify
 * it under the terms of the GNU General Public License version 2 as
 * published by the Free Software Foundation.
 */

#include <linux/kernel.h>
#include <linux/interrupt.h>
#include <linux/irq.h>
#include <linux/io.h>
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#include <linux/device.h>
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#include <linux/gpio.h>
#include <linux/sched.h>
#include <linux/serial_core.h>
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#include <linux/of.h>
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#include <linux/of_fdt.h>
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#include <linux/of_irq.h>
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#include <linux/export.h>
#include <linux/irqdomain.h>
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#include <linux/of_address.h>
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#include <asm/proc-fns.h>
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#include <asm/exception.h>
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#include <asm/hardware/cache-l2x0.h>
#include <asm/hardware/gic.h>
#include <asm/mach/map.h>
#include <asm/mach/irq.h>
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#include <asm/cacheflush.h>
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#include <mach/regs-irq.h>
#include <mach/regs-pmu.h>
#include <mach/regs-gpio.h>
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#include <mach/pmu.h>
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#include <plat/cpu.h>
#include <plat/clock.h>
#include <plat/devs.h>
#include <plat/pm.h>
#include <plat/sdhci.h>
#include <plat/gpio-cfg.h>
#include <plat/adc-core.h>
#include <plat/fb-core.h>
#include <plat/fimc-core.h>
#include <plat/iic-core.h>
#include <plat/tv-core.h>
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#include <plat/spi-core.h>
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#include <plat/regs-serial.h>

#include "common.h"
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#define L2_AUX_VAL 0x7C470001
#define L2_AUX_MASK 0xC200ffff
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static const char name_exynos4210[] = "EXYNOS4210";
static const char name_exynos4212[] = "EXYNOS4212";
static const char name_exynos4412[] = "EXYNOS4412";
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static const char name_exynos5250[] = "EXYNOS5250";
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static const char name_exynos5440[] = "EXYNOS5440";
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static void exynos4_map_io(void);
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static void exynos5_map_io(void);
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static void exynos5440_map_io(void);
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static void exynos4_init_clocks(int xtal);
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static void exynos5_init_clocks(int xtal);
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static void exynos_init_uarts(struct s3c2410_uartcfg *cfg, int no);
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static int exynos_init(void);
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static struct cpu_table cpu_ids[] __initdata = {
	{
		.idcode		= EXYNOS4210_CPU_ID,
		.idmask		= EXYNOS4_CPU_MASK,
		.map_io		= exynos4_map_io,
		.init_clocks	= exynos4_init_clocks,
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		.init_uarts	= exynos_init_uarts,
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		.init		= exynos_init,
		.name		= name_exynos4210,
	}, {
		.idcode		= EXYNOS4212_CPU_ID,
		.idmask		= EXYNOS4_CPU_MASK,
		.map_io		= exynos4_map_io,
		.init_clocks	= exynos4_init_clocks,
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		.init_uarts	= exynos_init_uarts,
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		.init		= exynos_init,
		.name		= name_exynos4212,
	}, {
		.idcode		= EXYNOS4412_CPU_ID,
		.idmask		= EXYNOS4_CPU_MASK,
		.map_io		= exynos4_map_io,
		.init_clocks	= exynos4_init_clocks,
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		.init_uarts	= exynos_init_uarts,
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		.init		= exynos_init,
		.name		= name_exynos4412,
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	}, {
		.idcode		= EXYNOS5250_SOC_ID,
		.idmask		= EXYNOS5_SOC_MASK,
		.map_io		= exynos5_map_io,
		.init_clocks	= exynos5_init_clocks,
		.init_uarts	= exynos_init_uarts,
		.init		= exynos_init,
		.name		= name_exynos5250,
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	}, {
		.idcode		= EXYNOS5440_SOC_ID,
		.idmask		= EXYNOS5_SOC_MASK,
		.map_io		= exynos5440_map_io,
		.init		= exynos_init,
		.name		= name_exynos5440,
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	},
};

/* Initial IO mappings */

static struct map_desc exynos_iodesc[] __initdata = {
	{
		.virtual	= (unsigned long)S5P_VA_CHIPID,
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		.pfn		= __phys_to_pfn(EXYNOS_PA_CHIPID),
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		.length		= SZ_4K,
		.type		= MT_DEVICE,
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	},
};

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#ifdef CONFIG_ARCH_EXYNOS5
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static struct map_desc exynos5440_iodesc[] __initdata = {
	{
		.virtual	= (unsigned long)S5P_VA_CHIPID,
		.pfn		= __phys_to_pfn(EXYNOS5440_PA_CHIPID),
		.length		= SZ_4K,
		.type		= MT_DEVICE,
	},
};
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#endif
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static struct map_desc exynos4_iodesc[] __initdata = {
	{
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		.virtual	= (unsigned long)S3C_VA_SYS,
		.pfn		= __phys_to_pfn(EXYNOS4_PA_SYSCON),
		.length		= SZ_64K,
		.type		= MT_DEVICE,
	}, {
		.virtual	= (unsigned long)S3C_VA_TIMER,
		.pfn		= __phys_to_pfn(EXYNOS4_PA_TIMER),
		.length		= SZ_16K,
		.type		= MT_DEVICE,
	}, {
		.virtual	= (unsigned long)S3C_VA_WATCHDOG,
		.pfn		= __phys_to_pfn(EXYNOS4_PA_WATCHDOG),
		.length		= SZ_4K,
		.type		= MT_DEVICE,
	}, {
		.virtual	= (unsigned long)S5P_VA_SROMC,
		.pfn		= __phys_to_pfn(EXYNOS4_PA_SROMC),
		.length		= SZ_4K,
		.type		= MT_DEVICE,
	}, {
		.virtual	= (unsigned long)S5P_VA_SYSTIMER,
		.pfn		= __phys_to_pfn(EXYNOS4_PA_SYSTIMER),
		.length		= SZ_4K,
		.type		= MT_DEVICE,
	}, {
		.virtual	= (unsigned long)S5P_VA_PMU,
		.pfn		= __phys_to_pfn(EXYNOS4_PA_PMU),
		.length		= SZ_64K,
		.type		= MT_DEVICE,
	}, {
		.virtual	= (unsigned long)S5P_VA_COMBINER_BASE,
		.pfn		= __phys_to_pfn(EXYNOS4_PA_COMBINER),
		.length		= SZ_4K,
		.type		= MT_DEVICE,
	}, {
		.virtual	= (unsigned long)S5P_VA_GIC_CPU,
		.pfn		= __phys_to_pfn(EXYNOS4_PA_GIC_CPU),
		.length		= SZ_64K,
		.type		= MT_DEVICE,
	}, {
		.virtual	= (unsigned long)S5P_VA_GIC_DIST,
		.pfn		= __phys_to_pfn(EXYNOS4_PA_GIC_DIST),
		.length		= SZ_64K,
		.type		= MT_DEVICE,
	}, {
		.virtual	= (unsigned long)S3C_VA_UART,
		.pfn		= __phys_to_pfn(EXYNOS4_PA_UART),
		.length		= SZ_512K,
		.type		= MT_DEVICE,
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	}, {
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		.virtual	= (unsigned long)S5P_VA_CMU,
		.pfn		= __phys_to_pfn(EXYNOS4_PA_CMU),
		.length		= SZ_128K,
		.type		= MT_DEVICE,
	}, {
		.virtual	= (unsigned long)S5P_VA_COREPERI_BASE,
		.pfn		= __phys_to_pfn(EXYNOS4_PA_COREPERI),
		.length		= SZ_8K,
		.type		= MT_DEVICE,
	}, {
		.virtual	= (unsigned long)S5P_VA_L2CC,
		.pfn		= __phys_to_pfn(EXYNOS4_PA_L2CC),
		.length		= SZ_4K,
		.type		= MT_DEVICE,
	}, {
		.virtual	= (unsigned long)S5P_VA_DMC0,
		.pfn		= __phys_to_pfn(EXYNOS4_PA_DMC0),
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		.length		= SZ_64K,
		.type		= MT_DEVICE,
	}, {
		.virtual	= (unsigned long)S5P_VA_DMC1,
		.pfn		= __phys_to_pfn(EXYNOS4_PA_DMC1),
		.length		= SZ_64K,
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		.type		= MT_DEVICE,
	}, {
		.virtual	= (unsigned long)S3C_VA_USB_HSPHY,
		.pfn		= __phys_to_pfn(EXYNOS4_PA_HSPHY),
		.length		= SZ_4K,
		.type		= MT_DEVICE,
	},
};

static struct map_desc exynos4_iodesc0[] __initdata = {
	{
		.virtual	= (unsigned long)S5P_VA_SYSRAM,
		.pfn		= __phys_to_pfn(EXYNOS4_PA_SYSRAM0),
		.length		= SZ_4K,
		.type		= MT_DEVICE,
	},
};

static struct map_desc exynos4_iodesc1[] __initdata = {
	{
		.virtual	= (unsigned long)S5P_VA_SYSRAM,
		.pfn		= __phys_to_pfn(EXYNOS4_PA_SYSRAM1),
		.length		= SZ_4K,
		.type		= MT_DEVICE,
	},
};

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static struct map_desc exynos5_iodesc[] __initdata = {
	{
		.virtual	= (unsigned long)S3C_VA_SYS,
		.pfn		= __phys_to_pfn(EXYNOS5_PA_SYSCON),
		.length		= SZ_64K,
		.type		= MT_DEVICE,
	}, {
		.virtual	= (unsigned long)S3C_VA_TIMER,
		.pfn		= __phys_to_pfn(EXYNOS5_PA_TIMER),
		.length		= SZ_16K,
		.type		= MT_DEVICE,
	}, {
		.virtual	= (unsigned long)S3C_VA_WATCHDOG,
		.pfn		= __phys_to_pfn(EXYNOS5_PA_WATCHDOG),
		.length		= SZ_4K,
		.type		= MT_DEVICE,
	}, {
		.virtual	= (unsigned long)S5P_VA_SROMC,
		.pfn		= __phys_to_pfn(EXYNOS5_PA_SROMC),
		.length		= SZ_4K,
		.type		= MT_DEVICE,
	}, {
		.virtual	= (unsigned long)S5P_VA_SYSTIMER,
		.pfn		= __phys_to_pfn(EXYNOS5_PA_SYSTIMER),
		.length		= SZ_4K,
		.type		= MT_DEVICE,
	}, {
		.virtual	= (unsigned long)S5P_VA_SYSRAM,
		.pfn		= __phys_to_pfn(EXYNOS5_PA_SYSRAM),
		.length		= SZ_4K,
		.type		= MT_DEVICE,
	}, {
		.virtual	= (unsigned long)S5P_VA_CMU,
		.pfn		= __phys_to_pfn(EXYNOS5_PA_CMU),
		.length		= 144 * SZ_1K,
		.type		= MT_DEVICE,
	}, {
		.virtual	= (unsigned long)S5P_VA_PMU,
		.pfn		= __phys_to_pfn(EXYNOS5_PA_PMU),
		.length		= SZ_64K,
		.type		= MT_DEVICE,
	}, {
		.virtual	= (unsigned long)S5P_VA_COMBINER_BASE,
		.pfn		= __phys_to_pfn(EXYNOS5_PA_COMBINER),
		.length		= SZ_4K,
		.type		= MT_DEVICE,
	}, {
		.virtual	= (unsigned long)S3C_VA_UART,
		.pfn		= __phys_to_pfn(EXYNOS5_PA_UART),
		.length		= SZ_512K,
		.type		= MT_DEVICE,
	}, {
		.virtual	= (unsigned long)S5P_VA_GIC_CPU,
		.pfn		= __phys_to_pfn(EXYNOS5_PA_GIC_CPU),
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		.length		= SZ_8K,
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		.type		= MT_DEVICE,
	}, {
		.virtual	= (unsigned long)S5P_VA_GIC_DIST,
		.pfn		= __phys_to_pfn(EXYNOS5_PA_GIC_DIST),
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		.length		= SZ_4K,
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		.type		= MT_DEVICE,
	},
};

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static struct map_desc exynos5440_iodesc0[] __initdata = {
	{
		.virtual	= (unsigned long)S3C_VA_UART,
		.pfn		= __phys_to_pfn(EXYNOS5440_PA_UART0),
		.length		= SZ_512K,
		.type		= MT_DEVICE,
	},
};

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void exynos4_restart(char mode, const char *cmd)
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{
	__raw_writel(0x1, S5P_SWRESET);
}

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void exynos5_restart(char mode, const char *cmd)
{
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	u32 val;
	void __iomem *addr;

	if (of_machine_is_compatible("samsung,exynos5250")) {
		val = 0x1;
		addr = EXYNOS_SWRESET;
	} else if (of_machine_is_compatible("samsung,exynos5440")) {
		val = (0x10 << 20) | (0x1 << 16);
		addr = EXYNOS5440_SWRESET;
	} else {
		pr_err("%s: cannot support non-DT\n", __func__);
		return;
	}

	__raw_writel(val, addr);
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}

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void __init exynos_init_late(void)
{
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	if (of_machine_is_compatible("samsung,exynos5440"))
		/* to be supported later */
		return;

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	exynos_pm_late_initcall();
}

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/*
 * exynos_map_io
 *
 * register the standard cpu IO areas
 */

void __init exynos_init_io(struct map_desc *mach_desc, int size)
{
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	struct map_desc *iodesc = exynos_iodesc;
	int iodesc_sz = ARRAY_SIZE(exynos_iodesc);
#if defined(CONFIG_OF) && defined(CONFIG_ARCH_EXYNOS5)
	unsigned long root = of_get_flat_dt_root();

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	/* initialize the io descriptors we need for initialization */
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	if (of_flat_dt_is_compatible(root, "samsung,exynos5440")) {
		iodesc = exynos5440_iodesc;
		iodesc_sz = ARRAY_SIZE(exynos5440_iodesc);
	}
#endif

	iotable_init(iodesc, iodesc_sz);
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	if (mach_desc)
		iotable_init(mach_desc, size);

	/* detect cpu id and rev. */
	s5p_init_cpu(S5P_VA_CHIPID);

	s3c_init_cpu(samsung_cpu_id, cpu_ids, ARRAY_SIZE(cpu_ids));
}

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static void __init exynos4_map_io(void)
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{
	iotable_init(exynos4_iodesc, ARRAY_SIZE(exynos4_iodesc));

	if (soc_is_exynos4210() && samsung_rev() == EXYNOS4210_REV_0)
		iotable_init(exynos4_iodesc0, ARRAY_SIZE(exynos4_iodesc0));
	else
		iotable_init(exynos4_iodesc1, ARRAY_SIZE(exynos4_iodesc1));

	/* initialize device information early */
	exynos4_default_sdhci0();
	exynos4_default_sdhci1();
	exynos4_default_sdhci2();
	exynos4_default_sdhci3();

	s3c_adc_setname("samsung-adc-v3");

	s3c_fimc_setname(0, "exynos4-fimc");
	s3c_fimc_setname(1, "exynos4-fimc");
	s3c_fimc_setname(2, "exynos4-fimc");
	s3c_fimc_setname(3, "exynos4-fimc");

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	s3c_sdhci_setname(0, "exynos4-sdhci");
	s3c_sdhci_setname(1, "exynos4-sdhci");
	s3c_sdhci_setname(2, "exynos4-sdhci");
	s3c_sdhci_setname(3, "exynos4-sdhci");

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	/* The I2C bus controllers are directly compatible with s3c2440 */
	s3c_i2c0_setname("s3c2440-i2c");
	s3c_i2c1_setname("s3c2440-i2c");
	s3c_i2c2_setname("s3c2440-i2c");

	s5p_fb_setname(0, "exynos4-fb");
	s5p_hdmi_setname("exynos4-hdmi");
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	s3c64xx_spi_setname("exynos4210-spi");
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}

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static void __init exynos5_map_io(void)
{
	iotable_init(exynos5_iodesc, ARRAY_SIZE(exynos5_iodesc));

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	s3c_device_i2c0.resource[0].start = EXYNOS5_PA_IIC(0);
	s3c_device_i2c0.resource[0].end   = EXYNOS5_PA_IIC(0) + SZ_4K - 1;
	s3c_device_i2c0.resource[1].start = EXYNOS5_IRQ_IIC;
	s3c_device_i2c0.resource[1].end   = EXYNOS5_IRQ_IIC;

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	s3c_sdhci_setname(0, "exynos4-sdhci");
	s3c_sdhci_setname(1, "exynos4-sdhci");
	s3c_sdhci_setname(2, "exynos4-sdhci");
	s3c_sdhci_setname(3, "exynos4-sdhci");

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	/* The I2C bus controllers are directly compatible with s3c2440 */
	s3c_i2c0_setname("s3c2440-i2c");
	s3c_i2c1_setname("s3c2440-i2c");
	s3c_i2c2_setname("s3c2440-i2c");
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	s3c64xx_spi_setname("exynos4210-spi");
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}

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static void __init exynos4_init_clocks(int xtal)
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{
	printk(KERN_DEBUG "%s: initializing clocks\n", __func__);

	s3c24xx_register_baseclocks(xtal);
	s5p_register_clocks(xtal);

	if (soc_is_exynos4210())
		exynos4210_register_clocks();
	else if (soc_is_exynos4212() || soc_is_exynos4412())
		exynos4212_register_clocks();

	exynos4_register_clocks();
	exynos4_setup_clocks();
}

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static void __init exynos5440_map_io(void)
{
	iotable_init(exynos5440_iodesc0, ARRAY_SIZE(exynos5440_iodesc0));
}

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static void __init exynos5_init_clocks(int xtal)
{
	printk(KERN_DEBUG "%s: initializing clocks\n", __func__);

	s3c24xx_register_baseclocks(xtal);
	s5p_register_clocks(xtal);

	exynos5_register_clocks();
	exynos5_setup_clocks();
}

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#define COMBINER_ENABLE_SET	0x0
#define COMBINER_ENABLE_CLEAR	0x4
#define COMBINER_INT_STATUS	0xC

static DEFINE_SPINLOCK(irq_controller_lock);

struct combiner_chip_data {
	unsigned int irq_offset;
	unsigned int irq_mask;
	void __iomem *base;
};

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static struct irq_domain *combiner_irq_domain;
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static struct combiner_chip_data combiner_data[MAX_COMBINER_NR];

static inline void __iomem *combiner_base(struct irq_data *data)
{
	struct combiner_chip_data *combiner_data =
		irq_data_get_irq_chip_data(data);

	return combiner_data->base;
}

static void combiner_mask_irq(struct irq_data *data)
{
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	u32 mask = 1 << (data->hwirq % 32);
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	__raw_writel(mask, combiner_base(data) + COMBINER_ENABLE_CLEAR);
}

static void combiner_unmask_irq(struct irq_data *data)
{
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	u32 mask = 1 << (data->hwirq % 32);
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	__raw_writel(mask, combiner_base(data) + COMBINER_ENABLE_SET);
}

static void combiner_handle_cascade_irq(unsigned int irq, struct irq_desc *desc)
{
	struct combiner_chip_data *chip_data = irq_get_handler_data(irq);
	struct irq_chip *chip = irq_get_chip(irq);
	unsigned int cascade_irq, combiner_irq;
	unsigned long status;

	chained_irq_enter(chip, desc);

	spin_lock(&irq_controller_lock);
	status = __raw_readl(chip_data->base + COMBINER_INT_STATUS);
	spin_unlock(&irq_controller_lock);
	status &= chip_data->irq_mask;

	if (status == 0)
		goto out;

	combiner_irq = __ffs(status);

	cascade_irq = combiner_irq + (chip_data->irq_offset & ~31);
	if (unlikely(cascade_irq >= NR_IRQS))
		do_bad_IRQ(cascade_irq, desc);
	else
		generic_handle_irq(cascade_irq);

 out:
	chained_irq_exit(chip, desc);
}

static struct irq_chip combiner_chip = {
	.name		= "COMBINER",
	.irq_mask	= combiner_mask_irq,
	.irq_unmask	= combiner_unmask_irq,
};

static void __init combiner_cascade_irq(unsigned int combiner_nr, unsigned int irq)
{
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	unsigned int max_nr;

	if (soc_is_exynos5250())
		max_nr = EXYNOS5_MAX_COMBINER_NR;
	else
		max_nr = EXYNOS4_MAX_COMBINER_NR;

	if (combiner_nr >= max_nr)
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		BUG();
	if (irq_set_handler_data(irq, &combiner_data[combiner_nr]) != 0)
		BUG();
	irq_set_chained_handler(irq, combiner_handle_cascade_irq);
}

555 556
static void __init combiner_init_one(unsigned int combiner_nr,
				     void __iomem *base)
557 558
{
	combiner_data[combiner_nr].base = base;
559 560
	combiner_data[combiner_nr].irq_offset = irq_find_mapping(
		combiner_irq_domain, combiner_nr * MAX_IRQ_IN_COMBINER);
561 562 563 564 565
	combiner_data[combiner_nr].irq_mask = 0xff << ((combiner_nr % 4) << 3);

	/* Disable all interrupts */
	__raw_writel(combiner_data[combiner_nr].irq_mask,
		     base + COMBINER_ENABLE_CLEAR);
566
}
567

568 569 570 571 572 573 574 575 576 577 578 579 580 581 582 583 584 585 586 587 588 589 590 591 592 593 594 595 596
#ifdef CONFIG_OF
static int combiner_irq_domain_xlate(struct irq_domain *d,
				     struct device_node *controller,
				     const u32 *intspec, unsigned int intsize,
				     unsigned long *out_hwirq,
				     unsigned int *out_type)
{
	if (d->of_node != controller)
		return -EINVAL;

	if (intsize < 2)
		return -EINVAL;

	*out_hwirq = intspec[0] * MAX_IRQ_IN_COMBINER + intspec[1];
	*out_type = 0;

	return 0;
}
#else
static int combiner_irq_domain_xlate(struct irq_domain *d,
				     struct device_node *controller,
				     const u32 *intspec, unsigned int intsize,
				     unsigned long *out_hwirq,
				     unsigned int *out_type)
{
	return -EINVAL;
}
#endif

597 598 599 600 601 602 603 604 605
static int combiner_irq_domain_map(struct irq_domain *d, unsigned int irq,
				   irq_hw_number_t hw)
{
	irq_set_chip_and_handler(irq, &combiner_chip, handle_level_irq);
	irq_set_chip_data(irq, &combiner_data[hw >> 3]);
	set_irq_flags(irq, IRQF_VALID | IRQF_PROBE);

	return 0;
}
606

607
static struct irq_domain_ops combiner_irq_domain_ops = {
608
	.xlate	= combiner_irq_domain_xlate,
609 610 611
	.map	= combiner_irq_domain_map,
};

612 613
static void __init combiner_init(void __iomem *combiner_base,
				 struct device_node *np)
614
{
615
	int i, irq, irq_base;
616 617
	unsigned int max_nr, nr_irq;

618 619 620 621 622 623 624 625 626 627 628
	if (np) {
		if (of_property_read_u32(np, "samsung,combiner-nr", &max_nr)) {
			pr_warning("%s: number of combiners not specified, "
				"setting default as %d.\n",
				__func__, EXYNOS4_MAX_COMBINER_NR);
			max_nr = EXYNOS4_MAX_COMBINER_NR;
		}
	} else {
		max_nr = soc_is_exynos5250() ? EXYNOS5_MAX_COMBINER_NR :
						EXYNOS4_MAX_COMBINER_NR;
	}
629 630 631 632 633 634 635 636 637 638 639 640 641 642 643 644 645
	nr_irq = max_nr * MAX_IRQ_IN_COMBINER;

	irq_base = irq_alloc_descs(COMBINER_IRQ(0, 0), 1, nr_irq, 0);
	if (IS_ERR_VALUE(irq_base)) {
		irq_base = COMBINER_IRQ(0, 0);
		pr_warning("%s: irq desc alloc failed. Continuing with %d as linux irq base\n", __func__, irq_base);
	}

	combiner_irq_domain = irq_domain_add_legacy(np, nr_irq, irq_base, 0,
				&combiner_irq_domain_ops, &combiner_data);
	if (WARN_ON(!combiner_irq_domain)) {
		pr_warning("%s: irq domain init failed\n", __func__);
		return;
	}

	for (i = 0; i < max_nr; i++) {
		combiner_init_one(i, combiner_base + (i >> 2) * 0x10);
646 647 648 649 650
		irq = IRQ_SPI(i);
#ifdef CONFIG_OF
		if (np)
			irq = irq_of_parse_and_map(np, i);
#endif
651
		combiner_cascade_irq(i, irq);
652 653 654
	}
}

655
#ifdef CONFIG_OF
656 657 658 659 660 661 662 663 664 665 666 667 668 669 670
int __init combiner_of_init(struct device_node *np, struct device_node *parent)
{
	void __iomem *combiner_base;

	combiner_base = of_iomap(np, 0);
	if (!combiner_base) {
		pr_err("%s: failed to map combiner registers\n", __func__);
		return -ENXIO;
	}

	combiner_init(combiner_base, np);

	return 0;
}

671
static const struct of_device_id exynos_dt_irq_match[] = {
672
	{ .compatible = "arm,cortex-a9-gic", .data = gic_of_init, },
673
	{ .compatible = "arm,cortex-a15-gic", .data = gic_of_init, },
674 675
	{ .compatible = "samsung,exynos4210-combiner",
			.data = combiner_of_init, },
676 677 678
	{},
};
#endif
679 680 681

void __init exynos4_init_irq(void)
{
682
	unsigned int gic_bank_offset;
683 684 685

	gic_bank_offset = soc_is_exynos4412() ? 0x4000 : 0x8000;

686
	if (!of_have_populated_dt())
687
		gic_init_bases(0, IRQ_PPI(0), S5P_VA_GIC_DIST, S5P_VA_GIC_CPU, gic_bank_offset, NULL);
688 689
#ifdef CONFIG_OF
	else
690
		of_irq_init(exynos_dt_irq_match);
691
#endif
692

693 694
	if (!of_have_populated_dt())
		combiner_init(S5P_VA_COMBINER_BASE, NULL);
695 696 697 698 699 700 701 702 703

	/*
	 * The parameters of s5p_init_irq() are for VIC init.
	 * Theses parameters should be NULL and 0 because EXYNOS4
	 * uses GIC instead of VIC.
	 */
	s5p_init_irq(NULL, 0);
}

704 705
void __init exynos5_init_irq(void)
{
706
#ifdef CONFIG_OF
707
	of_irq_init(exynos_dt_irq_match);
708
#endif
709 710 711 712 713 714 715 716
	/*
	 * The parameters of s5p_init_irq() are for VIC init.
	 * Theses parameters should be NULL and 0 because EXYNOS4
	 * uses GIC instead of VIC.
	 */
	s5p_init_irq(NULL, 0);
}

717 718 719
struct bus_type exynos_subsys = {
	.name		= "exynos-core",
	.dev_name	= "exynos-core",
720 721
};

722
static struct device exynos4_dev = {
723
	.bus	= &exynos_subsys,
724 725 726
};

static int __init exynos_core_init(void)
727
{
728
	return subsys_system_register(&exynos_subsys, NULL);
729
}
730
core_initcall(exynos_core_init);
731 732 733 734

#ifdef CONFIG_CACHE_L2X0
static int __init exynos4_l2x0_cache_init(void)
{
I
Il Han 已提交
735 736
	int ret;

737
	if (soc_is_exynos5250() || soc_is_exynos5440())
738 739
		return 0;

740 741 742 743 744 745
	ret = l2x0_of_init(L2_AUX_VAL, L2_AUX_MASK);
	if (!ret) {
		l2x0_regs_phys = virt_to_phys(&l2x0_saved_regs);
		clean_dcache_area(&l2x0_regs_phys, sizeof(unsigned long));
		return 0;
	}
746

747 748 749 750
	if (!(__raw_readl(S5P_VA_L2CC + L2X0_CTRL) & 0x1)) {
		l2x0_saved_regs.phy_base = EXYNOS4_PA_L2CC;
		/* TAG, Data Latency Control: 2 cycles */
		l2x0_saved_regs.tag_latency = 0x110;
751

752 753 754 755 756 757 758 759
		if (soc_is_exynos4212() || soc_is_exynos4412())
			l2x0_saved_regs.data_latency = 0x120;
		else
			l2x0_saved_regs.data_latency = 0x110;

		l2x0_saved_regs.prefetch_ctrl = 0x30000007;
		l2x0_saved_regs.pwr_ctrl =
			(L2X0_DYNAMIC_CLK_GATING_EN | L2X0_STNDBY_MODE_EN);
760

761
		l2x0_regs_phys = virt_to_phys(&l2x0_saved_regs);
762

763 764 765 766
		__raw_writel(l2x0_saved_regs.tag_latency,
				S5P_VA_L2CC + L2X0_TAG_LATENCY_CTRL);
		__raw_writel(l2x0_saved_regs.data_latency,
				S5P_VA_L2CC + L2X0_DATA_LATENCY_CTRL);
767

768 769 770 771 772 773 774 775 776 777 778
		/* L2X0 Prefetch Control */
		__raw_writel(l2x0_saved_regs.prefetch_ctrl,
				S5P_VA_L2CC + L2X0_PREFETCH_CTRL);

		/* L2X0 Power Control */
		__raw_writel(l2x0_saved_regs.pwr_ctrl,
				S5P_VA_L2CC + L2X0_POWER_CTRL);

		clean_dcache_area(&l2x0_regs_phys, sizeof(unsigned long));
		clean_dcache_area(&l2x0_saved_regs, sizeof(struct l2x0_regs));
	}
779

780
	l2x0_init(S5P_VA_L2CC, L2_AUX_VAL, L2_AUX_MASK);
781 782 783 784 785
	return 0;
}
early_initcall(exynos4_l2x0_cache_init);
#endif

786
static int __init exynos_init(void)
787 788
{
	printk(KERN_INFO "EXYNOS: Initializing architecture\n");
789

790
	return device_register(&exynos4_dev);
791 792 793 794
}

/* uart registration process */

795
static void __init exynos_init_uarts(struct s3c2410_uartcfg *cfg, int no)
796 797 798 799
{
	struct s3c2410_uartcfg *tcfg = cfg;
	u32 ucnt;

800 801
	for (ucnt = 0; ucnt < no; ucnt++, tcfg++)
		tcfg->has_fracval = 1;
802

803 804 805 806
	if (soc_is_exynos5250())
		s3c24xx_init_uartdevs("exynos4210-uart", exynos5_uart_resources, cfg, no);
	else
		s3c24xx_init_uartdevs("exynos4210-uart", exynos4_uart_resources, cfg, no);
807 808
}

809 810
static void __iomem *exynos_eint_base;

811 812 813 814
static DEFINE_SPINLOCK(eint_lock);

static unsigned int eint0_15_data[16];

815
static inline int exynos4_irq_to_gpio(unsigned int irq)
816
{
817 818
	if (irq < IRQ_EINT(0))
		return -EINVAL;
819

820 821 822 823 824 825 826 827 828 829 830 831 832 833 834 835 836 837 838 839 840 841 842 843 844 845 846 847 848 849 850 851 852 853 854
	irq -= IRQ_EINT(0);
	if (irq < 8)
		return EXYNOS4_GPX0(irq);

	irq -= 8;
	if (irq < 8)
		return EXYNOS4_GPX1(irq);

	irq -= 8;
	if (irq < 8)
		return EXYNOS4_GPX2(irq);

	irq -= 8;
	if (irq < 8)
		return EXYNOS4_GPX3(irq);

	return -EINVAL;
}

static inline int exynos5_irq_to_gpio(unsigned int irq)
{
	if (irq < IRQ_EINT(0))
		return -EINVAL;

	irq -= IRQ_EINT(0);
	if (irq < 8)
		return EXYNOS5_GPX0(irq);

	irq -= 8;
	if (irq < 8)
		return EXYNOS5_GPX1(irq);

	irq -= 8;
	if (irq < 8)
		return EXYNOS5_GPX2(irq);
855

856 857 858 859 860
	irq -= 8;
	if (irq < 8)
		return EXYNOS5_GPX3(irq);

	return -EINVAL;
861 862
}

863 864 865 866 867 868 869 870 871 872 873 874 875 876 877 878 879 880
static unsigned int exynos4_eint0_15_src_int[16] = {
	EXYNOS4_IRQ_EINT0,
	EXYNOS4_IRQ_EINT1,
	EXYNOS4_IRQ_EINT2,
	EXYNOS4_IRQ_EINT3,
	EXYNOS4_IRQ_EINT4,
	EXYNOS4_IRQ_EINT5,
	EXYNOS4_IRQ_EINT6,
	EXYNOS4_IRQ_EINT7,
	EXYNOS4_IRQ_EINT8,
	EXYNOS4_IRQ_EINT9,
	EXYNOS4_IRQ_EINT10,
	EXYNOS4_IRQ_EINT11,
	EXYNOS4_IRQ_EINT12,
	EXYNOS4_IRQ_EINT13,
	EXYNOS4_IRQ_EINT14,
	EXYNOS4_IRQ_EINT15,
};
881

882 883 884 885 886 887 888 889 890 891 892 893 894 895 896 897 898 899
static unsigned int exynos5_eint0_15_src_int[16] = {
	EXYNOS5_IRQ_EINT0,
	EXYNOS5_IRQ_EINT1,
	EXYNOS5_IRQ_EINT2,
	EXYNOS5_IRQ_EINT3,
	EXYNOS5_IRQ_EINT4,
	EXYNOS5_IRQ_EINT5,
	EXYNOS5_IRQ_EINT6,
	EXYNOS5_IRQ_EINT7,
	EXYNOS5_IRQ_EINT8,
	EXYNOS5_IRQ_EINT9,
	EXYNOS5_IRQ_EINT10,
	EXYNOS5_IRQ_EINT11,
	EXYNOS5_IRQ_EINT12,
	EXYNOS5_IRQ_EINT13,
	EXYNOS5_IRQ_EINT14,
	EXYNOS5_IRQ_EINT15,
};
900
static inline void exynos_irq_eint_mask(struct irq_data *data)
901 902 903 904
{
	u32 mask;

	spin_lock(&eint_lock);
905 906 907
	mask = __raw_readl(EINT_MASK(exynos_eint_base, data->irq));
	mask |= EINT_OFFSET_BIT(data->irq);
	__raw_writel(mask, EINT_MASK(exynos_eint_base, data->irq));
908 909 910
	spin_unlock(&eint_lock);
}

911
static void exynos_irq_eint_unmask(struct irq_data *data)
912 913 914 915
{
	u32 mask;

	spin_lock(&eint_lock);
916 917 918
	mask = __raw_readl(EINT_MASK(exynos_eint_base, data->irq));
	mask &= ~(EINT_OFFSET_BIT(data->irq));
	__raw_writel(mask, EINT_MASK(exynos_eint_base, data->irq));
919 920 921
	spin_unlock(&eint_lock);
}

922
static inline void exynos_irq_eint_ack(struct irq_data *data)
923
{
924 925
	__raw_writel(EINT_OFFSET_BIT(data->irq),
		     EINT_PEND(exynos_eint_base, data->irq));
926 927
}

928
static void exynos_irq_eint_maskack(struct irq_data *data)
929
{
930 931
	exynos_irq_eint_mask(data);
	exynos_irq_eint_ack(data);
932 933
}

934
static int exynos_irq_eint_set_type(struct irq_data *data, unsigned int type)
935 936 937 938 939 940 941 942 943 944 945 946 947 948 949 950 951 952 953 954 955 956 957 958 959 960 961 962 963 964 965 966 967 968 969 970
{
	int offs = EINT_OFFSET(data->irq);
	int shift;
	u32 ctrl, mask;
	u32 newvalue = 0;

	switch (type) {
	case IRQ_TYPE_EDGE_RISING:
		newvalue = S5P_IRQ_TYPE_EDGE_RISING;
		break;

	case IRQ_TYPE_EDGE_FALLING:
		newvalue = S5P_IRQ_TYPE_EDGE_FALLING;
		break;

	case IRQ_TYPE_EDGE_BOTH:
		newvalue = S5P_IRQ_TYPE_EDGE_BOTH;
		break;

	case IRQ_TYPE_LEVEL_LOW:
		newvalue = S5P_IRQ_TYPE_LEVEL_LOW;
		break;

	case IRQ_TYPE_LEVEL_HIGH:
		newvalue = S5P_IRQ_TYPE_LEVEL_HIGH;
		break;

	default:
		printk(KERN_ERR "No such irq type %d", type);
		return -EINVAL;
	}

	shift = (offs & 0x7) * 4;
	mask = 0x7 << shift;

	spin_lock(&eint_lock);
971
	ctrl = __raw_readl(EINT_CON(exynos_eint_base, data->irq));
972 973
	ctrl &= ~mask;
	ctrl |= newvalue << shift;
974
	__raw_writel(ctrl, EINT_CON(exynos_eint_base, data->irq));
975 976
	spin_unlock(&eint_lock);

977 978 979 980
	if (soc_is_exynos5250())
		s3c_gpio_cfgpin(exynos5_irq_to_gpio(data->irq), S3C_GPIO_SFN(0xf));
	else
		s3c_gpio_cfgpin(exynos4_irq_to_gpio(data->irq), S3C_GPIO_SFN(0xf));
981 982 983 984

	return 0;
}

985 986 987 988 989 990 991
static struct irq_chip exynos_irq_eint = {
	.name		= "exynos-eint",
	.irq_mask	= exynos_irq_eint_mask,
	.irq_unmask	= exynos_irq_eint_unmask,
	.irq_mask_ack	= exynos_irq_eint_maskack,
	.irq_ack	= exynos_irq_eint_ack,
	.irq_set_type	= exynos_irq_eint_set_type,
992 993 994 995 996 997 998 999 1000 1001 1002 1003 1004 1005
#ifdef CONFIG_PM
	.irq_set_wake	= s3c_irqext_wake,
#endif
};

/*
 * exynos4_irq_demux_eint
 *
 * This function demuxes the IRQ from from EINTs 16 to 31.
 * It is designed to be inlined into the specific handler
 * s5p_irq_demux_eintX_Y.
 *
 * Each EINT pend/mask registers handle eight of them.
 */
1006
static inline void exynos_irq_demux_eint(unsigned int start)
1007 1008 1009
{
	unsigned int irq;

1010 1011
	u32 status = __raw_readl(EINT_PEND(exynos_eint_base, start));
	u32 mask = __raw_readl(EINT_MASK(exynos_eint_base, start));
1012 1013 1014 1015 1016 1017 1018 1019 1020 1021 1022

	status &= ~mask;
	status &= 0xff;

	while (status) {
		irq = fls(status) - 1;
		generic_handle_irq(irq + start);
		status &= ~(1 << irq);
	}
}

1023
static void exynos_irq_demux_eint16_31(unsigned int irq, struct irq_desc *desc)
1024 1025 1026
{
	struct irq_chip *chip = irq_get_chip(irq);
	chained_irq_enter(chip, desc);
1027 1028
	exynos_irq_demux_eint(IRQ_EINT(16));
	exynos_irq_demux_eint(IRQ_EINT(24));
1029 1030 1031
	chained_irq_exit(chip, desc);
}

1032
static void exynos_irq_eint0_15(unsigned int irq, struct irq_desc *desc)
1033 1034 1035 1036 1037 1038 1039 1040 1041 1042 1043 1044 1045 1046 1047 1048
{
	u32 *irq_data = irq_get_handler_data(irq);
	struct irq_chip *chip = irq_get_chip(irq);

	chained_irq_enter(chip, desc);
	chip->irq_mask(&desc->irq_data);

	if (chip->irq_ack)
		chip->irq_ack(&desc->irq_data);

	generic_handle_irq(*irq_data);

	chip->irq_unmask(&desc->irq_data);
	chained_irq_exit(chip, desc);
}

1049
static int __init exynos_init_irq_eint(void)
1050 1051 1052
{
	int irq;

1053 1054 1055 1056 1057 1058 1059 1060 1061 1062 1063 1064 1065 1066 1067 1068 1069 1070 1071 1072 1073 1074 1075 1076 1077
#ifdef CONFIG_PINCTRL_SAMSUNG
	/*
	 * The Samsung pinctrl driver provides an integrated gpio/pinmux/pinconf
	 * functionality along with support for external gpio and wakeup
	 * interrupts. If the samsung pinctrl driver is enabled and includes
	 * the wakeup interrupt support, then the setting up external wakeup
	 * interrupts here can be skipped. This check here is temporary to
	 * allow exynos4 platforms that do not use Samsung pinctrl driver to
	 * co-exist with platforms that do. When all of the Samsung Exynos4
	 * platforms switch over to using the pinctrl driver, the wakeup
	 * interrupt support code here can be completely removed.
	 */
	struct device_node *pctrl_np, *wkup_np;
	const char *pctrl_compat = "samsung,pinctrl-exynos4210";
	const char *wkup_compat = "samsung,exynos4210-wakeup-eint";

	for_each_compatible_node(pctrl_np, NULL, pctrl_compat) {
		if (of_device_is_available(pctrl_np)) {
			wkup_np = of_find_compatible_node(pctrl_np, NULL,
							wkup_compat);
			if (wkup_np)
				return -ENODEV;
		}
	}
#endif
1078 1079
	if (soc_is_exynos5440())
		return 0;
1080

1081
	if (soc_is_exynos5250())
1082 1083 1084 1085 1086 1087 1088 1089
		exynos_eint_base = ioremap(EXYNOS5_PA_GPIO1, SZ_4K);
	else
		exynos_eint_base = ioremap(EXYNOS4_PA_GPIO2, SZ_4K);

	if (exynos_eint_base == NULL) {
		pr_err("unable to ioremap for EINT base address\n");
		return -ENOMEM;
	}
1090

1091
	for (irq = 0 ; irq <= 31 ; irq++) {
1092
		irq_set_chip_and_handler(IRQ_EINT(irq), &exynos_irq_eint,
1093 1094 1095 1096
					 handle_level_irq);
		set_irq_flags(IRQ_EINT(irq), IRQF_VALID);
	}

1097
	irq_set_chained_handler(EXYNOS_IRQ_EINT16_31, exynos_irq_demux_eint16_31);
1098 1099 1100 1101

	for (irq = 0 ; irq <= 15 ; irq++) {
		eint0_15_data[irq] = IRQ_EINT(irq);

1102 1103 1104 1105 1106 1107 1108 1109 1110 1111 1112
		if (soc_is_exynos5250()) {
			irq_set_handler_data(exynos5_eint0_15_src_int[irq],
					     &eint0_15_data[irq]);
			irq_set_chained_handler(exynos5_eint0_15_src_int[irq],
						exynos_irq_eint0_15);
		} else {
			irq_set_handler_data(exynos4_eint0_15_src_int[irq],
					     &eint0_15_data[irq]);
			irq_set_chained_handler(exynos4_eint0_15_src_int[irq],
						exynos_irq_eint0_15);
		}
1113 1114 1115 1116
	}

	return 0;
}
1117
arch_initcall(exynos_init_irq_eint);