efi.c 25.3 KB
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// SPDX-License-Identifier: GPL-2.0
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/*
 * Common EFI (Extensible Firmware Interface) support functions
 * Based on Extensible Firmware Interface Specification version 1.0
 *
 * Copyright (C) 1999 VA Linux Systems
 * Copyright (C) 1999 Walt Drummond <drummond@valinux.com>
 * Copyright (C) 1999-2002 Hewlett-Packard Co.
 *	David Mosberger-Tang <davidm@hpl.hp.com>
 *	Stephane Eranian <eranian@hpl.hp.com>
 * Copyright (C) 2005-2008 Intel Co.
 *	Fenghua Yu <fenghua.yu@intel.com>
 *	Bibo Mao <bibo.mao@intel.com>
 *	Chandramouli Narayanan <mouli@linux.intel.com>
 *	Huang Ying <ying.huang@intel.com>
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 * Copyright (C) 2013 SuSE Labs
 *	Borislav Petkov <bp@suse.de> - runtime services VA mapping
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 *
 * Copied from efi_32.c to eliminate the duplicated code between EFI
 * 32/64 support code. --ying 2007-10-26
 *
 * All EFI Runtime Services are not implemented yet as EFI only
 * supports physical mode addressing on SoftSDV. This is to be fixed
 * in a future version.  --drummond 1999-07-20
 *
 * Implemented EFI runtime services and virtual mode calls.  --davidm
 *
 * Goutham Rao: <goutham.rao@intel.com>
 *	Skip non-WB memory and ignore empty memory ranges.
 */

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#define pr_fmt(fmt) KBUILD_MODNAME ": " fmt

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#include <linux/kernel.h>
#include <linux/init.h>
#include <linux/efi.h>
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#include <linux/efi-bgrt.h>
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#include <linux/export.h>
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#include <linux/memblock.h>
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#include <linux/slab.h>
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#include <linux/spinlock.h>
#include <linux/uaccess.h>
#include <linux/time.h>
#include <linux/io.h>
#include <linux/reboot.h>
#include <linux/bcd.h>

#include <asm/setup.h>
#include <asm/efi.h>
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#include <asm/e820/api.h>
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#include <asm/time.h>
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#include <asm/set_memory.h>
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#include <asm/tlbflush.h>
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#include <asm/x86_init.h>
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#include <asm/uv/uv.h>
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struct efi efi_phys __initdata;
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static efi_system_table_t efi_systab __initdata;

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static efi_config_table_type_t arch_tables[] __initdata = {
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#ifdef CONFIG_X86_UV
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	{UV_SYSTEM_TABLE_GUID, "UVsystab", &uv_systab_phys},
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#endif
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	{NULL_GUID, NULL, NULL},
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};

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static const unsigned long * const efi_tables[] = {
	&efi.mps,
	&efi.acpi,
	&efi.acpi20,
	&efi.smbios,
	&efi.smbios3,
	&efi.boot_info,
	&efi.hcdp,
	&efi.uga,
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#ifdef CONFIG_X86_UV
	&uv_systab_phys,
#endif
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	&efi.fw_vendor,
	&efi.runtime,
	&efi.config_table,
	&efi.esrt,
	&efi.properties_table,
	&efi.mem_attr_table,
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#ifdef CONFIG_EFI_RCI2_TABLE
	&rci2_table_phys,
#endif
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};

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u64 efi_setup;		/* efi setup_data physical address */
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static int add_efi_memmap __initdata;
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static int __init setup_add_efi_memmap(char *arg)
{
	add_efi_memmap = 1;
	return 0;
}
early_param("add_efi_memmap", setup_add_efi_memmap);

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void __init efi_find_mirror(void)
{
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	efi_memory_desc_t *md;
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	u64 mirror_size = 0, total_size = 0;

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	if (!efi_enabled(EFI_MEMMAP))
		return;

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	for_each_efi_memory_desc(md) {
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		unsigned long long start = md->phys_addr;
		unsigned long long size = md->num_pages << EFI_PAGE_SHIFT;

		total_size += size;
		if (md->attribute & EFI_MEMORY_MORE_RELIABLE) {
			memblock_mark_mirror(start, size);
			mirror_size += size;
		}
	}
	if (mirror_size)
		pr_info("Memory: %lldM/%lldM mirrored memory\n",
			mirror_size>>20, total_size>>20);
}

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/*
 * Tell the kernel about the EFI memory map.  This might include
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 * more than the max 128 entries that can fit in the passed in e820
 * legacy (zeropage) memory map, but the kernel's e820 table can hold
 * E820_MAX_ENTRIES.
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 */

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static void __init do_add_efi_memmap(void)
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{
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	efi_memory_desc_t *md;
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	if (!efi_enabled(EFI_MEMMAP))
		return;

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	for_each_efi_memory_desc(md) {
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		unsigned long long start = md->phys_addr;
		unsigned long long size = md->num_pages << EFI_PAGE_SHIFT;
		int e820_type;

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		switch (md->type) {
		case EFI_LOADER_CODE:
		case EFI_LOADER_DATA:
		case EFI_BOOT_SERVICES_CODE:
		case EFI_BOOT_SERVICES_DATA:
		case EFI_CONVENTIONAL_MEMORY:
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			if (efi_soft_reserve_enabled()
			    && (md->attribute & EFI_MEMORY_SP))
				e820_type = E820_TYPE_SOFT_RESERVED;
			else if (md->attribute & EFI_MEMORY_WB)
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				e820_type = E820_TYPE_RAM;
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			else
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				e820_type = E820_TYPE_RESERVED;
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			break;
		case EFI_ACPI_RECLAIM_MEMORY:
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			e820_type = E820_TYPE_ACPI;
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			break;
		case EFI_ACPI_MEMORY_NVS:
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			e820_type = E820_TYPE_NVS;
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			break;
		case EFI_UNUSABLE_MEMORY:
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			e820_type = E820_TYPE_UNUSABLE;
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			break;
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		case EFI_PERSISTENT_MEMORY:
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			e820_type = E820_TYPE_PMEM;
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			break;
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		default:
			/*
			 * EFI_RESERVED_TYPE EFI_RUNTIME_SERVICES_CODE
			 * EFI_RUNTIME_SERVICES_DATA EFI_MEMORY_MAPPED_IO
			 * EFI_MEMORY_MAPPED_IO_PORT_SPACE EFI_PAL_CODE
			 */
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			e820_type = E820_TYPE_RESERVED;
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			break;
		}
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		e820__range_add(start, size, e820_type);
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	}
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	e820__update_table(e820_table);
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}

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/*
 * Given add_efi_memmap defaults to 0 and there there is no alternative
 * e820 mechanism for soft-reserved memory, import the full EFI memory
 * map if soft reservations are present and enabled. Otherwise, the
 * mechanism to disable the kernel's consideration of EFI_MEMORY_SP is
 * the efi=nosoftreserve option.
 */
static bool do_efi_soft_reserve(void)
{
	efi_memory_desc_t *md;

	if (!efi_enabled(EFI_MEMMAP))
		return false;

	if (!efi_soft_reserve_enabled())
		return false;

	for_each_efi_memory_desc(md)
		if (md->type == EFI_CONVENTIONAL_MEMORY &&
		    (md->attribute & EFI_MEMORY_SP))
			return true;
	return false;
}

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int __init efi_memblock_x86_reserve_range(void)
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{
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	struct efi_info *e = &boot_params.efi_info;
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	struct efi_memory_map_data data;
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	phys_addr_t pmap;
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	int rv;
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	if (efi_enabled(EFI_PARAVIRT))
		return 0;

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#ifdef CONFIG_X86_32
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	/* Can't handle data above 4GB at this time */
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	if (e->efi_memmap_hi) {
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		pr_err("Memory map is above 4GB, disabling EFI.\n");
		return -EINVAL;
	}
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	pmap =  e->efi_memmap;
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#else
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	pmap = (e->efi_memmap |	((__u64)e->efi_memmap_hi << 32));
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#endif
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	data.phys_map		= pmap;
	data.size 		= e->efi_memmap_size;
	data.desc_size		= e->efi_memdesc_size;
	data.desc_version	= e->efi_memdesc_version;

	rv = efi_memmap_init_early(&data);
	if (rv)
		return rv;

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	if (add_efi_memmap || do_efi_soft_reserve())
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		do_add_efi_memmap();
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	efi_fake_memmap_early();

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	WARN(efi.memmap.desc_version != 1,
	     "Unexpected EFI_MEMORY_DESCRIPTOR version %ld",
	     efi.memmap.desc_version);

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	memblock_reserve(pmap, efi.memmap.nr_map * efi.memmap.desc_size);
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	return 0;
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}

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#define OVERFLOW_ADDR_SHIFT	(64 - EFI_PAGE_SHIFT)
#define OVERFLOW_ADDR_MASK	(U64_MAX << OVERFLOW_ADDR_SHIFT)
#define U64_HIGH_BIT		(~(U64_MAX >> 1))

static bool __init efi_memmap_entry_valid(const efi_memory_desc_t *md, int i)
{
	u64 end = (md->num_pages << EFI_PAGE_SHIFT) + md->phys_addr - 1;
	u64 end_hi = 0;
	char buf[64];

	if (md->num_pages == 0) {
		end = 0;
	} else if (md->num_pages > EFI_PAGES_MAX ||
		   EFI_PAGES_MAX - md->num_pages <
		   (md->phys_addr >> EFI_PAGE_SHIFT)) {
		end_hi = (md->num_pages & OVERFLOW_ADDR_MASK)
			>> OVERFLOW_ADDR_SHIFT;

		if ((md->phys_addr & U64_HIGH_BIT) && !(end & U64_HIGH_BIT))
			end_hi += 1;
	} else {
		return true;
	}

	pr_warn_once(FW_BUG "Invalid EFI memory map entries:\n");

	if (end_hi) {
		pr_warn("mem%02u: %s range=[0x%016llx-0x%llx%016llx] (invalid)\n",
			i, efi_md_typeattr_format(buf, sizeof(buf), md),
			md->phys_addr, end_hi, end);
	} else {
		pr_warn("mem%02u: %s range=[0x%016llx-0x%016llx] (invalid)\n",
			i, efi_md_typeattr_format(buf, sizeof(buf), md),
			md->phys_addr, end);
	}
	return false;
}

static void __init efi_clean_memmap(void)
{
	efi_memory_desc_t *out = efi.memmap.map;
	const efi_memory_desc_t *in = out;
	const efi_memory_desc_t *end = efi.memmap.map_end;
	int i, n_removal;

	for (i = n_removal = 0; in < end; i++) {
		if (efi_memmap_entry_valid(in, i)) {
			if (out != in)
				memcpy(out, in, efi.memmap.desc_size);
			out = (void *)out + efi.memmap.desc_size;
		} else {
			n_removal++;
		}
		in = (void *)in + efi.memmap.desc_size;
	}

	if (n_removal > 0) {
		u64 size = efi.memmap.nr_map - n_removal;

		pr_warn("Removing %d invalid memory map entries.\n", n_removal);
		efi_memmap_install(efi.memmap.phys_map, size);
	}
}

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void __init efi_print_memmap(void)
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{
	efi_memory_desc_t *md;
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	int i = 0;
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	for_each_efi_memory_desc(md) {
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		char buf[64];

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		pr_info("mem%02u: %s range=[0x%016llx-0x%016llx] (%lluMB)\n",
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			i++, efi_md_typeattr_format(buf, sizeof(buf), md),
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			md->phys_addr,
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			md->phys_addr + (md->num_pages << EFI_PAGE_SHIFT) - 1,
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			(md->num_pages >> (20 - EFI_PAGE_SHIFT)));
	}
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}
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static int __init efi_systab_init(void *phys)
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{
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	if (efi_enabled(EFI_64BIT)) {
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		efi_system_table_64_t *systab64;
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		struct efi_setup_data *data = NULL;
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		u64 tmp = 0;

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		if (efi_setup) {
			data = early_memremap(efi_setup, sizeof(*data));
			if (!data)
				return -ENOMEM;
		}
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		systab64 = early_memremap((unsigned long)phys,
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					 sizeof(*systab64));
		if (systab64 == NULL) {
			pr_err("Couldn't map the system table!\n");
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			if (data)
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				early_memunmap(data, sizeof(*data));
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			return -ENOMEM;
		}

		efi_systab.hdr = systab64->hdr;
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		efi_systab.fw_vendor = data ? (unsigned long)data->fw_vendor :
					      systab64->fw_vendor;
		tmp |= data ? data->fw_vendor : systab64->fw_vendor;
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		efi_systab.fw_revision = systab64->fw_revision;
		efi_systab.con_in_handle = systab64->con_in_handle;
		tmp |= systab64->con_in_handle;
		efi_systab.con_in = systab64->con_in;
		tmp |= systab64->con_in;
		efi_systab.con_out_handle = systab64->con_out_handle;
		tmp |= systab64->con_out_handle;
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		efi_systab.con_out = (void *)(unsigned long)systab64->con_out;
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		tmp |= systab64->con_out;
		efi_systab.stderr_handle = systab64->stderr_handle;
		tmp |= systab64->stderr_handle;
		efi_systab.stderr = systab64->stderr;
		tmp |= systab64->stderr;
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		efi_systab.runtime = data ?
				     (void *)(unsigned long)data->runtime :
				     (void *)(unsigned long)systab64->runtime;
		tmp |= data ? data->runtime : systab64->runtime;
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		efi_systab.boottime = (void *)(unsigned long)systab64->boottime;
		tmp |= systab64->boottime;
		efi_systab.nr_tables = systab64->nr_tables;
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		efi_systab.tables = data ? (unsigned long)data->tables :
					   systab64->tables;
		tmp |= data ? data->tables : systab64->tables;
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		early_memunmap(systab64, sizeof(*systab64));
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		if (data)
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			early_memunmap(data, sizeof(*data));
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#ifdef CONFIG_X86_32
		if (tmp >> 32) {
			pr_err("EFI data located above 4GB, disabling EFI.\n");
			return -EINVAL;
		}
#endif
	} else {
		efi_system_table_32_t *systab32;

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		systab32 = early_memremap((unsigned long)phys,
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					 sizeof(*systab32));
		if (systab32 == NULL) {
			pr_err("Couldn't map the system table!\n");
			return -ENOMEM;
		}

		efi_systab.hdr = systab32->hdr;
		efi_systab.fw_vendor = systab32->fw_vendor;
		efi_systab.fw_revision = systab32->fw_revision;
		efi_systab.con_in_handle = systab32->con_in_handle;
		efi_systab.con_in = systab32->con_in;
		efi_systab.con_out_handle = systab32->con_out_handle;
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		efi_systab.con_out = (void *)(unsigned long)systab32->con_out;
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		efi_systab.stderr_handle = systab32->stderr_handle;
		efi_systab.stderr = systab32->stderr;
		efi_systab.runtime = (void *)(unsigned long)systab32->runtime;
		efi_systab.boottime = (void *)(unsigned long)systab32->boottime;
		efi_systab.nr_tables = systab32->nr_tables;
		efi_systab.tables = systab32->tables;

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		early_memunmap(systab32, sizeof(*systab32));
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	}
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	efi.systab = &efi_systab;

	/*
	 * Verify the EFI Table
	 */
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	if (efi.systab->hdr.signature != EFI_SYSTEM_TABLE_SIGNATURE) {
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		pr_err("System table signature incorrect!\n");
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		return -EINVAL;
	}
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	if ((efi.systab->hdr.revision >> 16) == 0)
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		pr_err("Warning: System table version %d.%02d, expected 1.00 or greater!\n",
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		       efi.systab->hdr.revision >> 16,
		       efi.systab->hdr.revision & 0xffff);
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	return 0;
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}
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void __init efi_init(void)
{
	efi_char16_t *c16;
	char vendor[100] = "unknown";
	int i = 0;

#ifdef CONFIG_X86_32
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	if (boot_params.efi_info.efi_systab_hi ||
	    boot_params.efi_info.efi_memmap_hi) {
		pr_info("Table located above 4GB, disabling EFI.\n");
		return;
	}
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	efi_phys.systab = (efi_system_table_t *)boot_params.efi_info.efi_systab;
#else
	efi_phys.systab = (efi_system_table_t *)
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			  (boot_params.efi_info.efi_systab |
			  ((__u64)boot_params.efi_info.efi_systab_hi<<32));
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#endif

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	if (efi_systab_init(efi_phys.systab))
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		return;
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	efi.config_table = (unsigned long)efi.systab->tables;
	efi.fw_vendor	 = (unsigned long)efi.systab->fw_vendor;
	efi.runtime	 = (unsigned long)efi.systab->runtime;

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	/*
	 * Show what we know for posterity
	 */
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	c16 = early_memremap_ro(efi.systab->fw_vendor,
				sizeof(vendor) * sizeof(efi_char16_t));
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	if (c16) {
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		for (i = 0; i < sizeof(vendor) - 1 && c16[i]; ++i)
			vendor[i] = c16[i];
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		vendor[i] = '\0';
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		early_memunmap(c16, sizeof(vendor) * sizeof(efi_char16_t));
	} else {
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		pr_err("Could not map the firmware vendor!\n");
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	}
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	pr_info("EFI v%u.%.02u by %s\n",
		efi.systab->hdr.revision >> 16,
		efi.systab->hdr.revision & 0xffff, vendor);
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	if (efi_reuse_config(efi.systab->tables, efi.systab->nr_tables))
		return;

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	if (efi_config_init(arch_tables))
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		return;
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	/*
	 * Note: We currently don't support runtime services on an EFI
	 * that doesn't match the kernel 32/64-bit mode.
	 */

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	if (!efi_runtime_supported())
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		pr_info("No EFI runtime due to 32/64-bit mismatch with kernel\n");
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	if (!efi_runtime_supported() || efi_runtime_disabled()) {
		efi_memmap_unmap();
		return;
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	}
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	set_bit(EFI_RUNTIME_SERVICES, &efi.flags);
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	efi_clean_memmap();

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	if (efi_enabled(EFI_DBG))
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		efi_print_memmap();
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}

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void __init efi_set_executable(efi_memory_desc_t *md, bool executable)
{
	u64 addr, npages;

	addr = md->virt_addr;
	npages = md->num_pages;

	memrange_efi_to_native(&addr, &npages);

	if (executable)
		set_memory_x(addr, npages);
	else
		set_memory_nx(addr, npages);
}

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void __init runtime_code_page_mkexec(void)
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{
	efi_memory_desc_t *md;

	/* Make EFI runtime service code area executable */
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	for_each_efi_memory_desc(md) {
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		if (md->type != EFI_RUNTIME_SERVICES_CODE)
			continue;

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		efi_set_executable(md, true);
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	}
}

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void __init efi_memory_uc(u64 addr, unsigned long size)
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{
	unsigned long page_shift = 1UL << EFI_PAGE_SHIFT;
	u64 npages;

	npages = round_up(size, page_shift) / page_shift;
	memrange_efi_to_native(&addr, &npages);
	set_memory_uc(addr, npages);
}

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void __init old_map_region(efi_memory_desc_t *md)
{
	u64 start_pfn, end_pfn, end;
	unsigned long size;
	void *va;

	start_pfn = PFN_DOWN(md->phys_addr);
	size	  = md->num_pages << PAGE_SHIFT;
	end	  = md->phys_addr + size;
	end_pfn   = PFN_UP(end);

	if (pfn_range_is_mapped(start_pfn, end_pfn)) {
		va = __va(md->phys_addr);

		if (!(md->attribute & EFI_MEMORY_WB))
			efi_memory_uc((u64)(unsigned long)va, size);
	} else
		va = efi_ioremap(md->phys_addr, size,
				 md->type, md->attribute);

	md->virt_addr = (u64) (unsigned long) va;
	if (!va)
		pr_err("ioremap of 0x%llX failed!\n",
		       (unsigned long long)md->phys_addr);
}

566 567
/* Merge contiguous regions of the same type and attribute */
static void __init efi_merge_regions(void)
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Huang, Ying 已提交
568
{
569 570
	efi_memory_desc_t *md, *prev_md = NULL;

571
	for_each_efi_memory_desc(md) {
572 573 574 575 576 577 578 579 580 581 582 583 584 585 586 587 588 589 590 591 592 593
		u64 prev_size;

		if (!prev_md) {
			prev_md = md;
			continue;
		}

		if (prev_md->type != md->type ||
		    prev_md->attribute != md->attribute) {
			prev_md = md;
			continue;
		}

		prev_size = prev_md->num_pages << EFI_PAGE_SHIFT;

		if (md->phys_addr == (prev_md->phys_addr + prev_size)) {
			prev_md->num_pages += md->num_pages;
			md->type = EFI_RESERVED_TYPE;
			md->attribute = 0;
			continue;
		}
		prev_md = md;
594 595 596 597 598 599 600
	}
}

static void __init get_systab_virt_addr(efi_memory_desc_t *md)
{
	unsigned long size;
	u64 end, systab;
601

602 603 604 605 606 607
	size = md->num_pages << EFI_PAGE_SHIFT;
	end = md->phys_addr + size;
	systab = (u64)(unsigned long)efi_phys.systab;
	if (md->phys_addr <= systab && systab < end) {
		systab += md->virt_addr - md->phys_addr;
		efi.systab = (efi_system_table_t *)(unsigned long)systab;
608
	}
609 610
}

611 612 613 614 615 616 617 618 619 620 621 622 623 624 625 626 627 628 629 630 631
static void *realloc_pages(void *old_memmap, int old_shift)
{
	void *ret;

	ret = (void *)__get_free_pages(GFP_KERNEL, old_shift + 1);
	if (!ret)
		goto out;

	/*
	 * A first-time allocation doesn't have anything to copy.
	 */
	if (!old_memmap)
		return ret;

	memcpy(ret, old_memmap, PAGE_SIZE << old_shift);

out:
	free_pages((unsigned long)old_memmap, old_shift);
	return ret;
}

632 633 634 635 636 637 638 639 640 641
/*
 * Iterate the EFI memory map in reverse order because the regions
 * will be mapped top-down. The end result is the same as if we had
 * mapped things forward, but doesn't require us to change the
 * existing implementation of efi_map_region().
 */
static inline void *efi_map_next_entry_reverse(void *entry)
{
	/* Initial call */
	if (!entry)
642
		return efi.memmap.map_end - efi.memmap.desc_size;
643

644 645
	entry -= efi.memmap.desc_size;
	if (entry < efi.memmap.map)
646 647 648 649 650 651 652 653 654 655 656 657 658 659 660 661 662 663 664 665 666 667 668 669 670 671 672 673 674 675 676 677 678 679 680 681 682 683 684 685 686
		return NULL;

	return entry;
}

/*
 * efi_map_next_entry - Return the next EFI memory map descriptor
 * @entry: Previous EFI memory map descriptor
 *
 * This is a helper function to iterate over the EFI memory map, which
 * we do in different orders depending on the current configuration.
 *
 * To begin traversing the memory map @entry must be %NULL.
 *
 * Returns %NULL when we reach the end of the memory map.
 */
static void *efi_map_next_entry(void *entry)
{
	if (!efi_enabled(EFI_OLD_MEMMAP) && efi_enabled(EFI_64BIT)) {
		/*
		 * Starting in UEFI v2.5 the EFI_PROPERTIES_TABLE
		 * config table feature requires us to map all entries
		 * in the same order as they appear in the EFI memory
		 * map. That is to say, entry N must have a lower
		 * virtual address than entry N+1. This is because the
		 * firmware toolchain leaves relative references in
		 * the code/data sections, which are split and become
		 * separate EFI memory regions. Mapping things
		 * out-of-order leads to the firmware accessing
		 * unmapped addresses.
		 *
		 * Since we need to map things this way whether or not
		 * the kernel actually makes use of
		 * EFI_PROPERTIES_TABLE, let's just switch to this
		 * scheme by default for 64-bit.
		 */
		return efi_map_next_entry_reverse(entry);
	}

	/* Initial call */
	if (!entry)
687
		return efi.memmap.map;
688

689 690
	entry += efi.memmap.desc_size;
	if (entry >= efi.memmap.map_end)
691 692 693 694 695
		return NULL;

	return entry;
}

696 697 698 699 700 701 702 703 704 705 706 707 708 709 710 711
static bool should_map_region(efi_memory_desc_t *md)
{
	/*
	 * Runtime regions always require runtime mappings (obviously).
	 */
	if (md->attribute & EFI_MEMORY_RUNTIME)
		return true;

	/*
	 * 32-bit EFI doesn't suffer from the bug that requires us to
	 * reserve boot services regions, and mixed mode support
	 * doesn't exist for 32-bit kernels.
	 */
	if (IS_ENABLED(CONFIG_X86_32))
		return false;

712 713 714 715 716 717 718 719 720
	/*
	 * EFI specific purpose memory may be reserved by default
	 * depending on kernel config and boot options.
	 */
	if (md->type == EFI_CONVENTIONAL_MEMORY &&
	    efi_soft_reserve_enabled() &&
	    (md->attribute & EFI_MEMORY_SP))
		return false;

721 722 723 724
	/*
	 * Map all of RAM so that we can access arguments in the 1:1
	 * mapping when making EFI runtime calls.
	 */
725
	if (efi_is_mixed()) {
726 727 728 729 730 731 732 733 734 735 736 737 738 739 740 741 742 743 744
		if (md->type == EFI_CONVENTIONAL_MEMORY ||
		    md->type == EFI_LOADER_DATA ||
		    md->type == EFI_LOADER_CODE)
			return true;
	}

	/*
	 * Map boot services regions as a workaround for buggy
	 * firmware that accesses them even when they shouldn't.
	 *
	 * See efi_{reserve,free}_boot_services().
	 */
	if (md->type == EFI_BOOT_SERVICES_CODE ||
	    md->type == EFI_BOOT_SERVICES_DATA)
		return true;

	return false;
}

745
/*
746 747
 * Map the efi memory ranges of the runtime services and update new_mmap with
 * virtual addresses.
748
 */
749
static void * __init efi_map_regions(int *count, int *pg_shift)
750
{
751 752
	void *p, *new_memmap = NULL;
	unsigned long left = 0;
753
	unsigned long desc_size;
754
	efi_memory_desc_t *md;
755

756 757
	desc_size = efi.memmap.desc_size;

758 759
	p = NULL;
	while ((p = efi_map_next_entry(p))) {
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Huang, Ying 已提交
760
		md = p;
761 762 763

		if (!should_map_region(md))
			continue;
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Huang, Ying 已提交
764

765
		efi_map_region(md);
766 767
		get_systab_virt_addr(md);

768
		if (left < desc_size) {
769 770 771 772 773 774 775 776
			new_memmap = realloc_pages(new_memmap, *pg_shift);
			if (!new_memmap)
				return NULL;

			left += PAGE_SIZE << *pg_shift;
			(*pg_shift)++;
		}

777
		memcpy(new_memmap + (*count * desc_size), md, desc_size);
778

779
		left -= desc_size;
780 781
		(*count)++;
	}
782

783 784 785
	return new_memmap;
}

786 787
static void __init kexec_enter_virtual_mode(void)
{
788
#ifdef CONFIG_KEXEC_CORE
789
	efi_memory_desc_t *md;
790
	unsigned int num_pages;
791 792 793 794 795

	efi.systab = NULL;

	/*
	 * We don't do virtual mode, since we don't do runtime services, on
796 797 798
	 * non-native EFI. With efi=old_map, we don't do runtime services in
	 * kexec kernel because in the initial boot something else might
	 * have been mapped at these virtual addresses.
799
	 */
800
	if (efi_is_mixed() || efi_enabled(EFI_OLD_MEMMAP)) {
801
		efi_memmap_unmap();
802
		clear_bit(EFI_RUNTIME_SERVICES, &efi.flags);
803 804 805
		return;
	}

806 807 808 809 810 811
	if (efi_alloc_page_tables()) {
		pr_err("Failed to allocate EFI page tables\n");
		clear_bit(EFI_RUNTIME_SERVICES, &efi.flags);
		return;
	}

812 813 814 815
	/*
	* Map efi regions which were passed via setup_data. The virt_addr is a
	* fixed addr which was used in first kernel of a kexec boot.
	*/
816
	for_each_efi_memory_desc(md) {
817 818 819 820
		efi_map_region_fixed(md); /* FIXME: add error handling */
		get_systab_virt_addr(md);
	}

821 822 823 824 825 826 827 828 829 830 831 832 833
	/*
	 * Unregister the early EFI memmap from efi_init() and install
	 * the new EFI memory map.
	 */
	efi_memmap_unmap();

	if (efi_memmap_init_late(efi.memmap.phys_map,
				 efi.memmap.desc_size * efi.memmap.nr_map)) {
		pr_err("Failed to remap late EFI memory map\n");
		clear_bit(EFI_RUNTIME_SERVICES, &efi.flags);
		return;
	}

834 835
	BUG_ON(!efi.systab);

836
	num_pages = ALIGN(efi.memmap.nr_map * efi.memmap.desc_size, PAGE_SIZE);
837 838
	num_pages >>= PAGE_SHIFT;

839
	if (efi_setup_page_tables(efi.memmap.phys_map, num_pages)) {
840 841 842 843
		clear_bit(EFI_RUNTIME_SERVICES, &efi.flags);
		return;
	}

844 845 846 847 848 849 850 851 852
	efi_sync_low_kernel_mappings();

	/*
	 * Now that EFI is in virtual mode, update the function
	 * pointers in the runtime service table to the new virtual addresses.
	 *
	 * Call EFI services through wrapper functions.
	 */
	efi.runtime_version = efi_systab.hdr.revision;
853

854
	efi_native_runtime_setup();
855

856 857 858 859 860
	if (efi_enabled(EFI_OLD_MEMMAP) && (__supported_pte_mask & _PAGE_NX))
		runtime_code_page_mkexec();
#endif
}

861 862 863 864
/*
 * This function will switch the EFI runtime services to virtual mode.
 * Essentially, we look through the EFI memmap and map every region that
 * has the runtime attribute bit set in its memory descriptor into the
865
 * efi_pgd page table.
866 867 868 869 870 871 872 873 874
 *
 * The old method which used to update that memory descriptor with the
 * virtual address obtained from ioremap() is still supported when the
 * kernel is booted with efi=old_map on its command line. Same old
 * method enabled the runtime services to be called without having to
 * thunk back into physical mode for every invocation.
 *
 * The new method does a pagetable switch in a preemption-safe manner
 * so that we're in a different address space when calling a runtime
875 876
 * function. For function arguments passing we do copy the PUDs of the
 * kernel page table into efi_pgd prior to each call.
877 878 879
 *
 * Specially for kexec boot, efi runtime maps in previous kernel should
 * be passed in via setup_data. In that case runtime ranges will be mapped
880 881
 * to the same virtual addresses as the first kernel, see
 * kexec_enter_virtual_mode().
882
 */
883
static void __init __efi_enter_virtual_mode(void)
884
{
885
	int count = 0, pg_shift = 0;
886
	void *new_memmap = NULL;
887
	efi_status_t status;
888
	unsigned long pa;
H
Huang, Ying 已提交
889

890
	efi.systab = NULL;
891

892 893 894 895 896 897
	if (efi_alloc_page_tables()) {
		pr_err("Failed to allocate EFI page tables\n");
		clear_bit(EFI_RUNTIME_SERVICES, &efi.flags);
		return;
	}

898 899 900 901
	efi_merge_regions();
	new_memmap = efi_map_regions(&count, &pg_shift);
	if (!new_memmap) {
		pr_err("Error reallocating memory, EFI runtime non-functional!\n");
902
		clear_bit(EFI_RUNTIME_SERVICES, &efi.flags);
903
		return;
904
	}
905

906 907 908 909 910 911 912 913 914 915 916 917 918 919 920
	pa = __pa(new_memmap);

	/*
	 * Unregister the early EFI memmap from efi_init() and install
	 * the new EFI memory map that we are about to pass to the
	 * firmware via SetVirtualAddressMap().
	 */
	efi_memmap_unmap();

	if (efi_memmap_init_late(pa, efi.memmap.desc_size * count)) {
		pr_err("Failed to remap late EFI memory map\n");
		clear_bit(EFI_RUNTIME_SERVICES, &efi.flags);
		return;
	}

921 922 923 924 925
	if (efi_enabled(EFI_DBG)) {
		pr_info("EFI runtime memory map:\n");
		efi_print_memmap();
	}

H
Huang, Ying 已提交
926 927
	BUG_ON(!efi.systab);

928
	if (efi_setup_page_tables(pa, 1 << pg_shift)) {
929
		clear_bit(EFI_RUNTIME_SERVICES, &efi.flags);
930
		return;
931
	}
932

933 934
	efi_sync_low_kernel_mappings();

935 936 937 938
	status = efi_set_virtual_address_map(efi.memmap.desc_size * count,
					     efi.memmap.desc_size,
					     efi.memmap.desc_version,
					     (efi_memory_desc_t *)pa);
939 940 941 942
	if (status != EFI_SUCCESS) {
		pr_alert("Unable to switch EFI into virtual mode (status=%lx)!\n",
			 status);
		panic("EFI call to SetVirtualAddressMap() failed!");
H
Huang, Ying 已提交
943 944
	}

945 946
	efi_free_boot_services();

H
Huang, Ying 已提交
947 948 949 950 951 952
	/*
	 * Now that EFI is in virtual mode, update the function
	 * pointers in the runtime service table to the new virtual addresses.
	 *
	 * Call EFI services through wrapper functions.
	 */
953
	efi.runtime_version = efi_systab.hdr.revision;
954

955
	if (!efi_is_mixed())
956
		efi_native_runtime_setup();
957 958 959
	else
		efi_thunk_runtime_setup();

960 961 962 963 964 965
	/*
	 * Apply more restrictive page table mapping attributes now that
	 * SVAM() has been called and the firmware has performed all
	 * necessary relocation fixups for the new virtual addresses.
	 */
	efi_runtime_update_mappings();
966

M
Matthew Garrett 已提交
967
	/* clean DUMMY object */
968
	efi_delete_dummy_variable();
H
Huang, Ying 已提交
969 970
}

971 972
void __init efi_enter_virtual_mode(void)
{
D
Daniel Kiper 已提交
973 974 975
	if (efi_enabled(EFI_PARAVIRT))
		return;

976 977 978 979
	if (efi_setup)
		kexec_enter_virtual_mode();
	else
		__efi_enter_virtual_mode();
980 981

	efi_dump_pagetable();
982 983
}

D
Dave Young 已提交
984
static int __init arch_parse_efi_cmdline(char *str)
985
{
986 987 988 989 990
	if (!str) {
		pr_warn("need at least one option\n");
		return -EINVAL;
	}

991 992
	if (parse_option_str(str, "old_map"))
		set_bit(EFI_OLD_MEMMAP, &efi.flags);
993 994 995

	return 0;
}
D
Dave Young 已提交
996
early_param("efi", arch_parse_efi_cmdline);
997 998 999 1000 1001 1002 1003 1004 1005 1006 1007 1008 1009 1010

bool efi_is_table_address(unsigned long phys_addr)
{
	unsigned int i;

	if (phys_addr == EFI_INVALID_TABLE_ADDR)
		return false;

	for (i = 0; i < ARRAY_SIZE(efi_tables); i++)
		if (*(efi_tables[i]) == phys_addr)
			return true;

	return false;
}