e820.c 36.2 KB
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/*
 * Handle the memory map.
 * The functions here do the job until bootmem takes over.
 *
 *  Getting sanitize_e820_map() in sync with i386 version by applying change:
 *  -  Provisions for empty E820 memory regions (reported by certain BIOSes).
 *     Alex Achenbach <xela@slit.de>, December 2002.
 *  Venkatesh Pallipadi <venkatesh.pallipadi@intel.com>
 *
 */
#include <linux/kernel.h>
#include <linux/types.h>
#include <linux/init.h>
#include <linux/bootmem.h>
#include <linux/ioport.h>
#include <linux/string.h>
#include <linux/kexec.h>
#include <linux/module.h>
#include <linux/mm.h>
#include <linux/pfn.h>
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#include <linux/suspend.h>
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#include <linux/firmware-map.h>
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#include <asm/pgtable.h>
#include <asm/page.h>
#include <asm/e820.h>
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#include <asm/proto.h>
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#include <asm/setup.h>
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#include <asm/trampoline.h>
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/*
 * The e820 map is the map that gets modified e.g. with command line parameters
 * and that is also registered with modifications in the kernel resource tree
 * with the iomem_resource as parent.
 *
 * The e820_saved is directly saved after the BIOS-provided memory map is
 * copied. It doesn't get modified afterwards. It's registered for the
 * /sys/firmware/memmap interface.
 *
 * That memory map is not modified and is used as base for kexec. The kexec'd
 * kernel should get the same memory map as the firmware provides. Then the
 * user can e.g. boot the original kernel with mem=1G while still booting the
 * next kernel with full memory.
 */
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struct e820map e820;
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struct e820map e820_saved;
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/* For PCI or other memory-mapped resources */
unsigned long pci_mem_start = 0xaeedbabe;
#ifdef CONFIG_PCI
EXPORT_SYMBOL(pci_mem_start);
#endif

/*
 * This function checks if any part of the range <start,end> is mapped
 * with type.
 */
int
e820_any_mapped(u64 start, u64 end, unsigned type)
{
	int i;

	for (i = 0; i < e820.nr_map; i++) {
		struct e820entry *ei = &e820.map[i];

		if (type && ei->type != type)
			continue;
		if (ei->addr >= end || ei->addr + ei->size <= start)
			continue;
		return 1;
	}
	return 0;
}
EXPORT_SYMBOL_GPL(e820_any_mapped);

/*
 * This function checks if the entire range <start,end> is mapped with type.
 *
 * Note: this function only works correct if the e820 table is sorted and
 * not-overlapping, which is the case
 */
int __init e820_all_mapped(u64 start, u64 end, unsigned type)
{
	int i;

	for (i = 0; i < e820.nr_map; i++) {
		struct e820entry *ei = &e820.map[i];

		if (type && ei->type != type)
			continue;
		/* is the region (part) in overlap with the current region ?*/
		if (ei->addr >= end || ei->addr + ei->size <= start)
			continue;

		/* if the region is at the beginning of <start,end> we move
		 * start to the end of the region since it's ok until there
		 */
		if (ei->addr <= start)
			start = ei->addr + ei->size;
		/*
		 * if start is now at or beyond end, we're done, full
		 * coverage
		 */
		if (start >= end)
			return 1;
	}
	return 0;
}

/*
 * Add a memory region to the kernel e820 map.
 */
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static void __init __e820_add_region(struct e820map *e820x, u64 start, u64 size,
					 int type)
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{
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	int x = e820x->nr_map;
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	if (x >= ARRAY_SIZE(e820x->map)) {
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		printk(KERN_ERR "Ooops! Too many entries in the memory map!\n");
		return;
	}

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	e820x->map[x].addr = start;
	e820x->map[x].size = size;
	e820x->map[x].type = type;
	e820x->nr_map++;
}

void __init e820_add_region(u64 start, u64 size, int type)
{
	__e820_add_region(&e820, start, size, type);
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}

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static void __init e820_print_type(u32 type)
{
	switch (type) {
	case E820_RAM:
	case E820_RESERVED_KERN:
		printk(KERN_CONT "(usable)");
		break;
	case E820_RESERVED:
		printk(KERN_CONT "(reserved)");
		break;
	case E820_ACPI:
		printk(KERN_CONT "(ACPI data)");
		break;
	case E820_NVS:
		printk(KERN_CONT "(ACPI NVS)");
		break;
	case E820_UNUSABLE:
		printk(KERN_CONT "(unusable)");
		break;
	default:
		printk(KERN_CONT "type %u", type);
		break;
	}
}

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void __init e820_print_map(char *who)
{
	int i;

	for (i = 0; i < e820.nr_map; i++) {
		printk(KERN_INFO " %s: %016Lx - %016Lx ", who,
		       (unsigned long long) e820.map[i].addr,
		       (unsigned long long)
		       (e820.map[i].addr + e820.map[i].size));
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		e820_print_type(e820.map[i].type);
		printk(KERN_CONT "\n");
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	}
}

/*
 * Sanitize the BIOS e820 map.
 *
 * Some e820 responses include overlapping entries. The following
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 * replaces the original e820 map with a new one, removing overlaps,
 * and resolving conflicting memory types in favor of highest
 * numbered type.
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 *
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 * The input parameter biosmap points to an array of 'struct
 * e820entry' which on entry has elements in the range [0, *pnr_map)
 * valid, and which has space for up to max_nr_map entries.
 * On return, the resulting sanitized e820 map entries will be in
 * overwritten in the same location, starting at biosmap.
 *
 * The integer pointed to by pnr_map must be valid on entry (the
 * current number of valid entries located at biosmap) and will
 * be updated on return, with the new number of valid entries
 * (something no more than max_nr_map.)
 *
 * The return value from sanitize_e820_map() is zero if it
 * successfully 'sanitized' the map entries passed in, and is -1
 * if it did nothing, which can happen if either of (1) it was
 * only passed one map entry, or (2) any of the input map entries
 * were invalid (start + size < start, meaning that the size was
 * so big the described memory range wrapped around through zero.)
 *
 *	Visually we're performing the following
 *	(1,2,3,4 = memory types)...
 *
 *	Sample memory map (w/overlaps):
 *	   ____22__________________
 *	   ______________________4_
 *	   ____1111________________
 *	   _44_____________________
 *	   11111111________________
 *	   ____________________33__
 *	   ___________44___________
 *	   __________33333_________
 *	   ______________22________
 *	   ___________________2222_
 *	   _________111111111______
 *	   _____________________11_
 *	   _________________4______
 *
 *	Sanitized equivalent (no overlap):
 *	   1_______________________
 *	   _44_____________________
 *	   ___1____________________
 *	   ____22__________________
 *	   ______11________________
 *	   _________1______________
 *	   __________3_____________
 *	   ___________44___________
 *	   _____________33_________
 *	   _______________2________
 *	   ________________1_______
 *	   _________________4______
 *	   ___________________2____
 *	   ____________________33__
 *	   ______________________4_
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 */
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int __init sanitize_e820_map(struct e820entry *biosmap, int max_nr_map,
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			     u32 *pnr_map)
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{
	struct change_member {
		struct e820entry *pbios; /* pointer to original bios entry */
		unsigned long long addr; /* address for this change point */
	};
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	static struct change_member change_point_list[2*E820_X_MAX] __initdata;
	static struct change_member *change_point[2*E820_X_MAX] __initdata;
	static struct e820entry *overlap_list[E820_X_MAX] __initdata;
	static struct e820entry new_bios[E820_X_MAX] __initdata;
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	struct change_member *change_tmp;
	unsigned long current_type, last_type;
	unsigned long long last_addr;
	int chgidx, still_changing;
	int overlap_entries;
	int new_bios_entry;
	int old_nr, new_nr, chg_nr;
	int i;

	/* if there's only one memory region, don't bother */
	if (*pnr_map < 2)
		return -1;

	old_nr = *pnr_map;
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	BUG_ON(old_nr > max_nr_map);
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	/* bail out if we find any unreasonable addresses in bios map */
	for (i = 0; i < old_nr; i++)
		if (biosmap[i].addr + biosmap[i].size < biosmap[i].addr)
			return -1;

	/* create pointers for initial change-point information (for sorting) */
	for (i = 0; i < 2 * old_nr; i++)
		change_point[i] = &change_point_list[i];

	/* record all known change-points (starting and ending addresses),
	   omitting those that are for empty memory regions */
	chgidx = 0;
	for (i = 0; i < old_nr; i++)	{
		if (biosmap[i].size != 0) {
			change_point[chgidx]->addr = biosmap[i].addr;
			change_point[chgidx++]->pbios = &biosmap[i];
			change_point[chgidx]->addr = biosmap[i].addr +
				biosmap[i].size;
			change_point[chgidx++]->pbios = &biosmap[i];
		}
	}
	chg_nr = chgidx;

	/* sort change-point list by memory addresses (low -> high) */
	still_changing = 1;
	while (still_changing)	{
		still_changing = 0;
		for (i = 1; i < chg_nr; i++)  {
			unsigned long long curaddr, lastaddr;
			unsigned long long curpbaddr, lastpbaddr;

			curaddr = change_point[i]->addr;
			lastaddr = change_point[i - 1]->addr;
			curpbaddr = change_point[i]->pbios->addr;
			lastpbaddr = change_point[i - 1]->pbios->addr;

			/*
			 * swap entries, when:
			 *
			 * curaddr > lastaddr or
			 * curaddr == lastaddr and curaddr == curpbaddr and
			 * lastaddr != lastpbaddr
			 */
			if (curaddr < lastaddr ||
			    (curaddr == lastaddr && curaddr == curpbaddr &&
			     lastaddr != lastpbaddr)) {
				change_tmp = change_point[i];
				change_point[i] = change_point[i-1];
				change_point[i-1] = change_tmp;
				still_changing = 1;
			}
		}
	}

	/* create a new bios memory map, removing overlaps */
	overlap_entries = 0;	 /* number of entries in the overlap table */
	new_bios_entry = 0;	 /* index for creating new bios map entries */
	last_type = 0;		 /* start with undefined memory type */
	last_addr = 0;		 /* start with 0 as last starting address */

	/* loop through change-points, determining affect on the new bios map */
	for (chgidx = 0; chgidx < chg_nr; chgidx++) {
		/* keep track of all overlapping bios entries */
		if (change_point[chgidx]->addr ==
		    change_point[chgidx]->pbios->addr) {
			/*
			 * add map entry to overlap list (> 1 entry
			 * implies an overlap)
			 */
			overlap_list[overlap_entries++] =
				change_point[chgidx]->pbios;
		} else {
			/*
			 * remove entry from list (order independent,
			 * so swap with last)
			 */
			for (i = 0; i < overlap_entries; i++) {
				if (overlap_list[i] ==
				    change_point[chgidx]->pbios)
					overlap_list[i] =
						overlap_list[overlap_entries-1];
			}
			overlap_entries--;
		}
		/*
		 * if there are overlapping entries, decide which
		 * "type" to use (larger value takes precedence --
		 * 1=usable, 2,3,4,4+=unusable)
		 */
		current_type = 0;
		for (i = 0; i < overlap_entries; i++)
			if (overlap_list[i]->type > current_type)
				current_type = overlap_list[i]->type;
		/*
		 * continue building up new bios map based on this
		 * information
		 */
		if (current_type != last_type)	{
			if (last_type != 0)	 {
				new_bios[new_bios_entry].size =
					change_point[chgidx]->addr - last_addr;
				/*
				 * move forward only if the new size
				 * was non-zero
				 */
				if (new_bios[new_bios_entry].size != 0)
					/*
					 * no more space left for new
					 * bios entries ?
					 */
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					if (++new_bios_entry >= max_nr_map)
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						break;
			}
			if (current_type != 0)	{
				new_bios[new_bios_entry].addr =
					change_point[chgidx]->addr;
				new_bios[new_bios_entry].type = current_type;
				last_addr = change_point[chgidx]->addr;
			}
			last_type = current_type;
		}
	}
	/* retain count for new bios entries */
	new_nr = new_bios_entry;

	/* copy new bios mapping into original location */
	memcpy(biosmap, new_bios, new_nr * sizeof(struct e820entry));
	*pnr_map = new_nr;

	return 0;
}

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static int __init __append_e820_map(struct e820entry *biosmap, int nr_map)
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{
	while (nr_map) {
		u64 start = biosmap->addr;
		u64 size = biosmap->size;
		u64 end = start + size;
		u32 type = biosmap->type;

		/* Overflow in 64 bits? Ignore the memory map. */
		if (start > end)
			return -1;

		e820_add_region(start, size, type);

		biosmap++;
		nr_map--;
	}
	return 0;
}

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/*
 * Copy the BIOS e820 map into a safe place.
 *
 * Sanity-check it while we're at it..
 *
 * If we're lucky and live on a modern system, the setup code
 * will have given us a memory map that we can use to properly
 * set up memory.  If we aren't, we'll fake a memory map.
 */
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static int __init append_e820_map(struct e820entry *biosmap, int nr_map)
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{
	/* Only one memory region (or negative)? Ignore it */
	if (nr_map < 2)
		return -1;

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	return __append_e820_map(biosmap, nr_map);
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}

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static u64 __init __e820_update_range(struct e820map *e820x, u64 start,
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					u64 size, unsigned old_type,
					unsigned new_type)
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{
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	u64 end;
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	unsigned int i;
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	u64 real_updated_size = 0;

	BUG_ON(old_type == new_type);

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	if (size > (ULLONG_MAX - start))
		size = ULLONG_MAX - start;

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	end = start + size;
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	printk(KERN_DEBUG "e820 update range: %016Lx - %016Lx ",
		       (unsigned long long) start,
		       (unsigned long long) end);
	e820_print_type(old_type);
	printk(KERN_CONT " ==> ");
	e820_print_type(new_type);
	printk(KERN_CONT "\n");

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	for (i = 0; i < e820x->nr_map; i++) {
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		struct e820entry *ei = &e820x->map[i];
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		u64 final_start, final_end;
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		u64 ei_end;

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		if (ei->type != old_type)
			continue;
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		ei_end = ei->addr + ei->size;
		/* totally covered by new range? */
		if (ei->addr >= start && ei_end <= end) {
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			ei->type = new_type;
			real_updated_size += ei->size;
			continue;
		}
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		/* new range is totally covered? */
		if (ei->addr < start && ei_end > end) {
			__e820_add_region(e820x, start, size, new_type);
			__e820_add_region(e820x, end, ei_end - end, ei->type);
			ei->size = start - ei->addr;
			real_updated_size += size;
			continue;
		}

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		/* partially covered */
		final_start = max(start, ei->addr);
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		final_end = min(end, ei_end);
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		if (final_start >= final_end)
			continue;
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		__e820_add_region(e820x, final_start, final_end - final_start,
				  new_type);
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		real_updated_size += final_end - final_start;
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		/*
		 * left range could be head or tail, so need to update
		 * size at first.
		 */
		ei->size -= final_end - final_start;
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		if (ei->addr < final_start)
			continue;
		ei->addr = final_end;
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	}
	return real_updated_size;
}

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u64 __init e820_update_range(u64 start, u64 size, unsigned old_type,
			     unsigned new_type)
{
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	return __e820_update_range(&e820, start, size, old_type, new_type);
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}

static u64 __init e820_update_range_saved(u64 start, u64 size,
					  unsigned old_type, unsigned new_type)
{
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	return __e820_update_range(&e820_saved, start, size, old_type,
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				     new_type);
}

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/* make e820 not cover the range */
u64 __init e820_remove_range(u64 start, u64 size, unsigned old_type,
			     int checktype)
{
	int i;
	u64 real_removed_size = 0;

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	if (size > (ULLONG_MAX - start))
		size = ULLONG_MAX - start;

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	for (i = 0; i < e820.nr_map; i++) {
		struct e820entry *ei = &e820.map[i];
		u64 final_start, final_end;

		if (checktype && ei->type != old_type)
			continue;
		/* totally covered? */
		if (ei->addr >= start &&
		    (ei->addr + ei->size) <= (start + size)) {
			real_removed_size += ei->size;
			memset(ei, 0, sizeof(struct e820entry));
			continue;
		}
		/* partially covered */
		final_start = max(start, ei->addr);
		final_end = min(start + size, ei->addr + ei->size);
		if (final_start >= final_end)
			continue;
		real_removed_size += final_end - final_start;

		ei->size -= final_end - final_start;
		if (ei->addr < final_start)
			continue;
		ei->addr = final_end;
	}
	return real_removed_size;
}

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void __init update_e820(void)
{
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	u32 nr_map;
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	nr_map = e820.nr_map;
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	if (sanitize_e820_map(e820.map, ARRAY_SIZE(e820.map), &nr_map))
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		return;
	e820.nr_map = nr_map;
	printk(KERN_INFO "modified physical RAM map:\n");
	e820_print_map("modified");
}
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static void __init update_e820_saved(void)
{
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	u32 nr_map;
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	nr_map = e820_saved.nr_map;
	if (sanitize_e820_map(e820_saved.map, ARRAY_SIZE(e820_saved.map), &nr_map))
		return;
	e820_saved.nr_map = nr_map;
}
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#define MAX_GAP_END 0x100000000ull
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/*
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 * Search for a gap in the e820 memory space from start_addr to end_addr.
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 */
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__init int e820_search_gap(unsigned long *gapstart, unsigned long *gapsize,
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		unsigned long start_addr, unsigned long long end_addr)
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{
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	unsigned long long last;
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	int i = e820.nr_map;
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	int found = 0;

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	last = (end_addr && end_addr < MAX_GAP_END) ? end_addr : MAX_GAP_END;

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	while (--i >= 0) {
		unsigned long long start = e820.map[i].addr;
		unsigned long long end = start + e820.map[i].size;

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		if (end < start_addr)
			continue;

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		/*
		 * Since "last" is at most 4GB, we know we'll
		 * fit in 32 bits if this condition is true
		 */
		if (last > end) {
			unsigned long gap = last - end;

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			if (gap >= *gapsize) {
				*gapsize = gap;
				*gapstart = end;
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				found = 1;
			}
		}
		if (start < last)
			last = start;
	}
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	return found;
}

/*
 * Search for the biggest gap in the low 32 bits of the e820
 * memory space.  We pass this space to PCI to assign MMIO resources
 * for hotplug or unconfigured devices in.
 * Hopefully the BIOS let enough space left.
 */
__init void e820_setup_gap(void)
{
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	unsigned long gapstart, gapsize;
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	int found;

	gapstart = 0x10000000;
	gapsize = 0x400000;
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	found  = e820_search_gap(&gapstart, &gapsize, 0, MAX_GAP_END);
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#ifdef CONFIG_X86_64
	if (!found) {
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		gapstart = (max_pfn << PAGE_SHIFT) + 1024*1024;
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		printk(KERN_ERR
	"PCI: Warning: Cannot find a gap in the 32bit address range\n"
	"PCI: Unassigned devices with 32bit resource registers may break!\n");
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	}
#endif

	/*
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	 * e820_reserve_resources_late protect stolen RAM already
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	 */
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	pci_mem_start = gapstart;
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	printk(KERN_INFO
	       "Allocating PCI resources starting at %lx (gap: %lx:%lx)\n",
	       pci_mem_start, gapstart, gapsize);
}

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/**
 * Because of the size limitation of struct boot_params, only first
 * 128 E820 memory entries are passed to kernel via
 * boot_params.e820_map, others are passed via SETUP_E820_EXT node of
 * linked list of struct setup_data, which is parsed here.
 */
void __init parse_e820_ext(struct setup_data *sdata, unsigned long pa_data)
{
	u32 map_len;
	int entries;
	struct e820entry *extmap;

	entries = sdata->len / sizeof(struct e820entry);
	map_len = sdata->len + sizeof(struct setup_data);
	if (map_len > PAGE_SIZE)
		sdata = early_ioremap(pa_data, map_len);
	extmap = (struct e820entry *)(sdata->data);
663
	__append_e820_map(extmap, entries);
664 665 666 667 668 669 670
	sanitize_e820_map(e820.map, ARRAY_SIZE(e820.map), &e820.nr_map);
	if (map_len > PAGE_SIZE)
		early_iounmap(sdata, map_len);
	printk(KERN_INFO "extended physical RAM map:\n");
	e820_print_map("extended");
}

671 672 673 674 675 676 677 678 679 680 681 682 683 684 685 686 687 688 689 690 691 692 693
#if defined(CONFIG_X86_64) || \
	(defined(CONFIG_X86_32) && defined(CONFIG_HIBERNATION))
/**
 * Find the ranges of physical addresses that do not correspond to
 * e820 RAM areas and mark the corresponding pages as nosave for
 * hibernation (32 bit) or software suspend and suspend to RAM (64 bit).
 *
 * This function requires the e820 map to be sorted and without any
 * overlapping entries and assumes the first e820 area to be RAM.
 */
void __init e820_mark_nosave_regions(unsigned long limit_pfn)
{
	int i;
	unsigned long pfn;

	pfn = PFN_DOWN(e820.map[0].addr + e820.map[0].size);
	for (i = 1; i < e820.nr_map; i++) {
		struct e820entry *ei = &e820.map[i];

		if (pfn < PFN_UP(ei->addr))
			register_nosave_region(pfn, PFN_UP(ei->addr));

		pfn = PFN_DOWN(ei->addr + ei->size);
694
		if (ei->type != E820_RAM && ei->type != E820_RESERVED_KERN)
695 696 697 698 699 700 701
			register_nosave_region(PFN_UP(ei->addr), pfn);

		if (pfn >= limit_pfn)
			break;
	}
}
#endif
702

703 704 705 706 707 708 709 710 711 712 713 714 715 716 717 718 719 720 721 722 723
#ifdef CONFIG_HIBERNATION
/**
 * Mark ACPI NVS memory region, so that we can save/restore it during
 * hibernation and the subsequent resume.
 */
static int __init e820_mark_nvs_memory(void)
{
	int i;

	for (i = 0; i < e820.nr_map; i++) {
		struct e820entry *ei = &e820.map[i];

		if (ei->type == E820_NVS)
			hibernate_nvs_register(ei->addr, ei->size);
	}

	return 0;
}
core_initcall(e820_mark_nvs_memory);
#endif

724 725 726 727 728 729 730 731
/*
 * Early reserved memory areas.
 */
#define MAX_EARLY_RES 20

struct early_res {
	u64 start, end;
	char name[16];
732
	char overlap_ok;
733 734 735 736 737 738
};
static struct early_res early_res[MAX_EARLY_RES] __initdata = {
	{ 0, PAGE_SIZE, "BIOS data page" },	/* BIOS data page */
	{}
};

739
static int __init find_overlapped_early(u64 start, u64 end)
740 741 742
{
	int i;
	struct early_res *r;
743

744 745 746
	for (i = 0; i < MAX_EARLY_RES && early_res[i].end; i++) {
		r = &early_res[i];
		if (end > r->start && start < r->end)
747
			break;
748
	}
749 750 751 752

	return i;
}

753 754 755 756 757 758 759 760 761 762 763 764 765 766 767 768 769 770 771 772 773 774 775 776 777 778 779 780 781 782 783 784 785 786 787 788 789 790 791 792 793 794 795 796 797 798 799 800 801 802 803 804 805 806 807 808 809 810 811 812 813 814 815 816 817 818 819 820 821 822 823 824 825 826 827 828 829 830 831 832 833 834 835 836 837 838 839
/*
 * Drop the i-th range from the early reservation map,
 * by copying any higher ranges down one over it, and
 * clearing what had been the last slot.
 */
static void __init drop_range(int i)
{
	int j;

	for (j = i + 1; j < MAX_EARLY_RES && early_res[j].end; j++)
		;

	memmove(&early_res[i], &early_res[i + 1],
	       (j - 1 - i) * sizeof(struct early_res));

	early_res[j - 1].end = 0;
}

/*
 * Split any existing ranges that:
 *  1) are marked 'overlap_ok', and
 *  2) overlap with the stated range [start, end)
 * into whatever portion (if any) of the existing range is entirely
 * below or entirely above the stated range.  Drop the portion
 * of the existing range that overlaps with the stated range,
 * which will allow the caller of this routine to then add that
 * stated range without conflicting with any existing range.
 */
static void __init drop_overlaps_that_are_ok(u64 start, u64 end)
{
	int i;
	struct early_res *r;
	u64 lower_start, lower_end;
	u64 upper_start, upper_end;
	char name[16];

	for (i = 0; i < MAX_EARLY_RES && early_res[i].end; i++) {
		r = &early_res[i];

		/* Continue past non-overlapping ranges */
		if (end <= r->start || start >= r->end)
			continue;

		/*
		 * Leave non-ok overlaps as is; let caller
		 * panic "Overlapping early reservations"
		 * when it hits this overlap.
		 */
		if (!r->overlap_ok)
			return;

		/*
		 * We have an ok overlap.  We will drop it from the early
		 * reservation map, and add back in any non-overlapping
		 * portions (lower or upper) as separate, overlap_ok,
		 * non-overlapping ranges.
		 */

		/* 1. Note any non-overlapping (lower or upper) ranges. */
		strncpy(name, r->name, sizeof(name) - 1);

		lower_start = lower_end = 0;
		upper_start = upper_end = 0;
		if (r->start < start) {
		 	lower_start = r->start;
			lower_end = start;
		}
		if (r->end > end) {
			upper_start = end;
			upper_end = r->end;
		}

		/* 2. Drop the original ok overlapping range */
		drop_range(i);

		i--;		/* resume for-loop on copied down entry */

		/* 3. Add back in any non-overlapping ranges. */
		if (lower_end)
			reserve_early_overlap_ok(lower_start, lower_end, name);
		if (upper_end)
			reserve_early_overlap_ok(upper_start, upper_end, name);
	}
}

static void __init __reserve_early(u64 start, u64 end, char *name,
						int overlap_ok)
840 841 842 843 844
{
	int i;
	struct early_res *r;

	i = find_overlapped_early(start, end);
845 846 847
	if (i >= MAX_EARLY_RES)
		panic("Too many early reservations");
	r = &early_res[i];
848 849 850 851 852
	if (r->end)
		panic("Overlapping early reservations "
		      "%llx-%llx %s to %llx-%llx %s\n",
		      start, end - 1, name?name:"", r->start,
		      r->end - 1, r->name);
853 854
	r->start = start;
	r->end = end;
855
	r->overlap_ok = overlap_ok;
856 857 858 859
	if (name)
		strncpy(r->name, name, sizeof(r->name) - 1);
}

860 861 862 863 864 865 866 867 868 869 870 871 872 873 874 875 876 877 878 879 880 881 882 883 884 885 886 887 888 889 890 891 892 893 894 895
/*
 * A few early reservtations come here.
 *
 * The 'overlap_ok' in the name of this routine does -not- mean it
 * is ok for these reservations to overlap an earlier reservation.
 * Rather it means that it is ok for subsequent reservations to
 * overlap this one.
 *
 * Use this entry point to reserve early ranges when you are doing
 * so out of "Paranoia", reserving perhaps more memory than you need,
 * just in case, and don't mind a subsequent overlapping reservation
 * that is known to be needed.
 *
 * The drop_overlaps_that_are_ok() call here isn't really needed.
 * It would be needed if we had two colliding 'overlap_ok'
 * reservations, so that the second such would not panic on the
 * overlap with the first.  We don't have any such as of this
 * writing, but might as well tolerate such if it happens in
 * the future.
 */
void __init reserve_early_overlap_ok(u64 start, u64 end, char *name)
{
	drop_overlaps_that_are_ok(start, end);
	__reserve_early(start, end, name, 1);
}

/*
 * Most early reservations come here.
 *
 * We first have drop_overlaps_that_are_ok() drop any pre-existing
 * 'overlap_ok' ranges, so that we can then reserve this memory
 * range without risk of panic'ing on an overlapping overlap_ok
 * early reservation.
 */
void __init reserve_early(u64 start, u64 end, char *name)
{
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	if (start >= end)
		return;

899 900 901 902
	drop_overlaps_that_are_ok(start, end);
	__reserve_early(start, end, name, 0);
}

903 904 905
void __init free_early(u64 start, u64 end)
{
	struct early_res *r;
906
	int i;
907

908 909 910
	i = find_overlapped_early(start, end);
	r = &early_res[i];
	if (i >= MAX_EARLY_RES || r->end != end || r->start != start)
911
		panic("free_early on not reserved area: %llx-%llx!",
912
			 start, end - 1);
913

914
	drop_range(i);
915 916 917 918
}

void __init early_res_to_bootmem(u64 start, u64 end)
{
919
	int i, count;
920
	u64 final_start, final_end;
921 922 923 924 925

	count  = 0;
	for (i = 0; i < MAX_EARLY_RES && early_res[i].end; i++)
		count++;

926 927
	printk(KERN_INFO "(%d early reservations) ==> bootmem [%010llx - %010llx]\n",
			 count, start, end);
928
	for (i = 0; i < count; i++) {
929
		struct early_res *r = &early_res[i];
930
		printk(KERN_INFO "  #%d [%010llx - %010llx] %16s", i,
931
			r->start, r->end, r->name);
932 933
		final_start = max(start, r->start);
		final_end = min(end, r->end);
934 935
		if (final_start >= final_end) {
			printk(KERN_CONT "\n");
936
			continue;
937
		}
938
		printk(KERN_CONT " ==> [%010llx - %010llx]\n",
939
			final_start, final_end);
940
		reserve_bootmem_generic(final_start, final_end - final_start,
941 942 943 944 945 946 947 948
				BOOTMEM_DEFAULT);
	}
}

/* Check for already reserved areas */
static inline int __init bad_addr(u64 *addrp, u64 size, u64 align)
{
	int i;
949
	u64 addr = *addrp;
950
	int changed = 0;
951
	struct early_res *r;
952
again:
953 954 955 956 957 958
	i = find_overlapped_early(addr, addr + size);
	r = &early_res[i];
	if (i < MAX_EARLY_RES && r->end) {
		*addrp = addr = round_up(r->end, align);
		changed = 1;
		goto again;
959 960 961 962 963 964 965 966 967 968 969 970 971 972 973 974 975 976 977 978 979 980 981 982 983 984 985 986 987 988 989 990 991 992 993 994 995 996 997 998 999 1000 1001 1002 1003 1004 1005 1006 1007 1008 1009 1010 1011 1012 1013 1014 1015 1016 1017 1018 1019 1020 1021 1022 1023 1024 1025 1026 1027 1028 1029 1030 1031 1032 1033 1034 1035 1036 1037 1038 1039 1040 1041 1042 1043 1044 1045 1046 1047 1048 1049 1050 1051 1052 1053 1054 1055 1056 1057 1058
	}
	return changed;
}

/* Check for already reserved areas */
static inline int __init bad_addr_size(u64 *addrp, u64 *sizep, u64 align)
{
	int i;
	u64 addr = *addrp, last;
	u64 size = *sizep;
	int changed = 0;
again:
	last = addr + size;
	for (i = 0; i < MAX_EARLY_RES && early_res[i].end; i++) {
		struct early_res *r = &early_res[i];
		if (last > r->start && addr < r->start) {
			size = r->start - addr;
			changed = 1;
			goto again;
		}
		if (last > r->end && addr < r->end) {
			addr = round_up(r->end, align);
			size = last - addr;
			changed = 1;
			goto again;
		}
		if (last <= r->end && addr >= r->start) {
			(*sizep)++;
			return 0;
		}
	}
	if (changed) {
		*addrp = addr;
		*sizep = size;
	}
	return changed;
}

/*
 * Find a free area with specified alignment in a specific range.
 */
u64 __init find_e820_area(u64 start, u64 end, u64 size, u64 align)
{
	int i;

	for (i = 0; i < e820.nr_map; i++) {
		struct e820entry *ei = &e820.map[i];
		u64 addr, last;
		u64 ei_last;

		if (ei->type != E820_RAM)
			continue;
		addr = round_up(ei->addr, align);
		ei_last = ei->addr + ei->size;
		if (addr < start)
			addr = round_up(start, align);
		if (addr >= ei_last)
			continue;
		while (bad_addr(&addr, size, align) && addr+size <= ei_last)
			;
		last = addr + size;
		if (last > ei_last)
			continue;
		if (last > end)
			continue;
		return addr;
	}
	return -1ULL;
}

/*
 * Find next free range after *start
 */
u64 __init find_e820_area_size(u64 start, u64 *sizep, u64 align)
{
	int i;

	for (i = 0; i < e820.nr_map; i++) {
		struct e820entry *ei = &e820.map[i];
		u64 addr, last;
		u64 ei_last;

		if (ei->type != E820_RAM)
			continue;
		addr = round_up(ei->addr, align);
		ei_last = ei->addr + ei->size;
		if (addr < start)
			addr = round_up(start, align);
		if (addr >= ei_last)
			continue;
		*sizep = ei_last - addr;
		while (bad_addr_size(&addr, sizep, align) &&
			addr + *sizep <= ei_last)
			;
		last = addr + *sizep;
		if (last > ei_last)
			continue;
		return addr;
	}

1059
	return -1ULL;
1060
}
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/*
 * pre allocated 4k and reserved it in e820
 */
u64 __init early_reserve_e820(u64 startt, u64 sizet, u64 align)
{
	u64 size = 0;
	u64 addr;
	u64 start;

1071
	for (start = startt; ; start += size) {
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1072
		start = find_e820_area_size(start, &size, align);
1073 1074 1075 1076 1077
		if (!(start + 1))
			return 0;
		if (size >= sizet)
			break;
	}
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1079 1080 1081 1082 1083 1084 1085
#ifdef CONFIG_X86_32
	if (start >= MAXMEM)
		return 0;
	if (start + size > MAXMEM)
		size = MAXMEM - start;
#endif

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	addr = round_down(start + size - sizet, align);
1087 1088
	if (addr < start)
		return 0;
1089
	e820_update_range(addr, sizet, E820_RAM, E820_RESERVED);
1090
	e820_update_range_saved(addr, sizet, E820_RAM, E820_RESERVED);
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1091 1092
	printk(KERN_INFO "update e820 for early_reserve_e820\n");
	update_e820();
1093
	update_e820_saved();
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1094 1095 1096 1097

	return addr;
}

1098 1099 1100 1101 1102 1103 1104
#ifdef CONFIG_X86_32
# ifdef CONFIG_X86_PAE
#  define MAX_ARCH_PFN		(1ULL<<(36-PAGE_SHIFT))
# else
#  define MAX_ARCH_PFN		(1ULL<<(32-PAGE_SHIFT))
# endif
#else /* CONFIG_X86_32 */
1105
# define MAX_ARCH_PFN MAXMEM>>PAGE_SHIFT
1106 1107 1108 1109 1110
#endif

/*
 * Find the highest page frame number we have available
 */
1111
static unsigned long __init e820_end_pfn(unsigned long limit_pfn, unsigned type)
1112
{
1113 1114
	int i;
	unsigned long last_pfn = 0;
1115 1116
	unsigned long max_arch_pfn = MAX_ARCH_PFN;

1117 1118
	for (i = 0; i < e820.nr_map; i++) {
		struct e820entry *ei = &e820.map[i];
1119
		unsigned long start_pfn;
1120 1121
		unsigned long end_pfn;

1122
		if (ei->type != type)
1123 1124
			continue;

1125
		start_pfn = ei->addr >> PAGE_SHIFT;
1126
		end_pfn = (ei->addr + ei->size) >> PAGE_SHIFT;
1127 1128 1129 1130 1131 1132 1133

		if (start_pfn >= limit_pfn)
			continue;
		if (end_pfn > limit_pfn) {
			last_pfn = limit_pfn;
			break;
		}
1134 1135 1136
		if (end_pfn > last_pfn)
			last_pfn = end_pfn;
	}
1137 1138 1139 1140

	if (last_pfn > max_arch_pfn)
		last_pfn = max_arch_pfn;

1141
	printk(KERN_INFO "last_pfn = %#lx max_arch_pfn = %#lx\n",
1142 1143 1144
			 last_pfn, max_arch_pfn);
	return last_pfn;
}
1145 1146 1147 1148
unsigned long __init e820_end_of_ram_pfn(void)
{
	return e820_end_pfn(MAX_ARCH_PFN, E820_RAM);
}
1149

1150 1151 1152 1153
unsigned long __init e820_end_of_low_ram_pfn(void)
{
	return e820_end_pfn(1UL<<(32 - PAGE_SHIFT), E820_RAM);
}
1154 1155 1156 1157 1158 1159 1160 1161 1162 1163 1164 1165 1166 1167 1168 1169 1170 1171 1172 1173 1174 1175 1176 1177 1178 1179 1180 1181 1182 1183 1184 1185 1186 1187 1188 1189 1190 1191 1192 1193 1194 1195 1196 1197 1198 1199 1200 1201 1202 1203 1204 1205 1206 1207 1208 1209 1210 1211 1212 1213 1214 1215 1216 1217 1218 1219 1220 1221
/*
 * Finds an active region in the address range from start_pfn to last_pfn and
 * returns its range in ei_startpfn and ei_endpfn for the e820 entry.
 */
int __init e820_find_active_region(const struct e820entry *ei,
				  unsigned long start_pfn,
				  unsigned long last_pfn,
				  unsigned long *ei_startpfn,
				  unsigned long *ei_endpfn)
{
	u64 align = PAGE_SIZE;

	*ei_startpfn = round_up(ei->addr, align) >> PAGE_SHIFT;
	*ei_endpfn = round_down(ei->addr + ei->size, align) >> PAGE_SHIFT;

	/* Skip map entries smaller than a page */
	if (*ei_startpfn >= *ei_endpfn)
		return 0;

	/* Skip if map is outside the node */
	if (ei->type != E820_RAM || *ei_endpfn <= start_pfn ||
				    *ei_startpfn >= last_pfn)
		return 0;

	/* Check for overlaps */
	if (*ei_startpfn < start_pfn)
		*ei_startpfn = start_pfn;
	if (*ei_endpfn > last_pfn)
		*ei_endpfn = last_pfn;

	return 1;
}

/* Walk the e820 map and register active regions within a node */
void __init e820_register_active_regions(int nid, unsigned long start_pfn,
					 unsigned long last_pfn)
{
	unsigned long ei_startpfn;
	unsigned long ei_endpfn;
	int i;

	for (i = 0; i < e820.nr_map; i++)
		if (e820_find_active_region(&e820.map[i],
					    start_pfn, last_pfn,
					    &ei_startpfn, &ei_endpfn))
			add_active_range(nid, ei_startpfn, ei_endpfn);
}

/*
 * Find the hole size (in bytes) in the memory range.
 * @start: starting address of the memory range to scan
 * @end: ending address of the memory range to scan
 */
u64 __init e820_hole_size(u64 start, u64 end)
{
	unsigned long start_pfn = start >> PAGE_SHIFT;
	unsigned long last_pfn = end >> PAGE_SHIFT;
	unsigned long ei_startpfn, ei_endpfn, ram = 0;
	int i;

	for (i = 0; i < e820.nr_map; i++) {
		if (e820_find_active_region(&e820.map[i],
					    start_pfn, last_pfn,
					    &ei_startpfn, &ei_endpfn))
			ram += ei_endpfn - ei_startpfn;
	}
	return end - start - ((u64)ram << PAGE_SHIFT);
}
1222 1223 1224 1225 1226 1227 1228

static void early_panic(char *msg)
{
	early_printk(msg);
	panic(msg);
}

1229 1230
static int userdef __initdata;

1231 1232 1233 1234 1235 1236 1237 1238 1239 1240 1241 1242 1243 1244 1245
/* "mem=nopentium" disables the 4MB page tables. */
static int __init parse_memopt(char *p)
{
	u64 mem_size;

	if (!p)
		return -EINVAL;

#ifdef CONFIG_X86_32
	if (!strcmp(p, "nopentium")) {
		setup_clear_cpu_cap(X86_FEATURE_PSE);
		return 0;
	}
#endif

1246
	userdef = 1;
1247
	mem_size = memparse(p, &p);
1248
	e820_remove_range(mem_size, ULLONG_MAX - mem_size, E820_RAM, 1);
1249

1250 1251 1252 1253 1254 1255 1256 1257 1258
	return 0;
}
early_param("mem", parse_memopt);

static int __init parse_memmap_opt(char *p)
{
	char *oldp;
	u64 start_at, mem_size;

1259 1260 1261
	if (!p)
		return -EINVAL;

1262
	if (!strncmp(p, "exactmap", 8)) {
1263 1264 1265 1266 1267 1268
#ifdef CONFIG_CRASH_DUMP
		/*
		 * If we are doing a crash dump, we still need to know
		 * the real mem size before original memory map is
		 * reset.
		 */
1269
		saved_max_pfn = e820_end_of_ram_pfn();
1270 1271 1272 1273 1274 1275 1276 1277 1278 1279 1280 1281 1282 1283
#endif
		e820.nr_map = 0;
		userdef = 1;
		return 0;
	}

	oldp = p;
	mem_size = memparse(p, &p);
	if (p == oldp)
		return -EINVAL;

	userdef = 1;
	if (*p == '@') {
		start_at = memparse(p+1, &p);
1284
		e820_add_region(start_at, mem_size, E820_RAM);
1285 1286
	} else if (*p == '#') {
		start_at = memparse(p+1, &p);
1287
		e820_add_region(start_at, mem_size, E820_ACPI);
1288 1289
	} else if (*p == '$') {
		start_at = memparse(p+1, &p);
1290
		e820_add_region(start_at, mem_size, E820_RESERVED);
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	} else
1292
		e820_remove_range(mem_size, ULLONG_MAX - mem_size, E820_RAM, 1);
Y
Yinghai Lu 已提交
1293

1294 1295 1296 1297 1298 1299 1300
	return *p == '\0' ? 0 : -EINVAL;
}
early_param("memmap", parse_memmap_opt);

void __init finish_e820_parsing(void)
{
	if (userdef) {
1301
		u32 nr = e820.nr_map;
1302 1303 1304 1305 1306 1307 1308 1309 1310

		if (sanitize_e820_map(e820.map, ARRAY_SIZE(e820.map), &nr) < 0)
			early_panic("Invalid user supplied memory map");
		e820.nr_map = nr;

		printk(KERN_INFO "user-defined physical RAM map:\n");
		e820_print_map("user");
	}
}
1311

1312 1313 1314 1315 1316 1317 1318
static inline const char *e820_type_to_string(int e820_type)
{
	switch (e820_type) {
	case E820_RESERVED_KERN:
	case E820_RAM:	return "System RAM";
	case E820_ACPI:	return "ACPI Tables";
	case E820_NVS:	return "ACPI Non-volatile Storage";
1319
	case E820_UNUSABLE:	return "Unusable memory";
1320 1321 1322 1323
	default:	return "reserved";
	}
}

1324 1325 1326
/*
 * Mark e820 reserved areas as busy for the resource manager.
 */
1327
static struct resource __initdata *e820_res;
1328 1329 1330
void __init e820_reserve_resources(void)
{
	int i;
1331
	struct resource *res;
1332
	u64 end;
1333

1334
	res = alloc_bootmem(sizeof(struct resource) * e820.nr_map);
1335
	e820_res = res;
1336
	for (i = 0; i < e820.nr_map; i++) {
1337
		end = e820.map[i].addr + e820.map[i].size - 1;
1338
		if (end != (resource_size_t)end) {
1339 1340 1341
			res++;
			continue;
		}
1342
		res->name = e820_type_to_string(e820.map[i].type);
1343 1344 1345
		res->start = e820.map[i].addr;
		res->end = end;

1346
		res->flags = IORESOURCE_MEM;
1347 1348 1349 1350 1351 1352

		/*
		 * don't register the region that could be conflicted with
		 * pci device BAR resource and insert them later in
		 * pcibios_resource_survey()
		 */
1353 1354
		if (e820.map[i].type != E820_RESERVED || res->start < (1ULL<<20)) {
			res->flags |= IORESOURCE_BUSY;
1355
			insert_resource(&iomem_resource, res);
1356
		}
1357 1358
		res++;
	}
1359 1360 1361 1362 1363 1364 1365

	for (i = 0; i < e820_saved.nr_map; i++) {
		struct e820entry *entry = &e820_saved.map[i];
		firmware_map_add_early(entry->addr,
			entry->addr + entry->size - 1,
			e820_type_to_string(entry->type));
	}
1366 1367
}

1368 1369 1370 1371 1372 1373 1374 1375 1376 1377 1378 1379 1380 1381 1382 1383 1384
/* How much should we pad RAM ending depending on where it is? */
static unsigned long ram_alignment(resource_size_t pos)
{
	unsigned long mb = pos >> 20;

	/* To 64kB in the first megabyte */
	if (!mb)
		return 64*1024;

	/* To 1MB in the first 16MB */
	if (mb < 16)
		return 1024*1024;

	/* To 32MB for anything above that */
	return 32*1024*1024;
}

1385 1386
#define MAX_RESOURCE_SIZE ((resource_size_t)-1)

1387 1388 1389 1390 1391 1392 1393
void __init e820_reserve_resources_late(void)
{
	int i;
	struct resource *res;

	res = e820_res;
	for (i = 0; i < e820.nr_map; i++) {
1394
		if (!res->parent && res->end)
1395
			insert_resource_expand_to_fit(&iomem_resource, res);
1396 1397
		res++;
	}
1398 1399 1400 1401 1402 1403

	/*
	 * Try to bump up RAM regions to reasonable boundaries to
	 * avoid stolen RAM:
	 */
	for (i = 0; i < e820.nr_map; i++) {
1404 1405
		struct e820entry *entry = &e820.map[i];
		u64 start, end;
1406 1407 1408 1409

		if (entry->type != E820_RAM)
			continue;
		start = entry->addr + entry->size;
1410 1411 1412 1413
		end = round_up(start, ram_alignment(start)) - 1;
		if (end > MAX_RESOURCE_SIZE)
			end = MAX_RESOURCE_SIZE;
		if (start >= end)
1414
			continue;
1415 1416
		reserve_region_with_split(&iomem_resource, start, end,
					  "RAM buffer");
1417
	}
1418 1419
}

1420
char *__init default_machine_specific_memory_setup(void)
1421 1422
{
	char *who = "BIOS-e820";
1423
	u32 new_nr;
1424 1425 1426 1427 1428 1429 1430 1431 1432 1433 1434
	/*
	 * Try to copy the BIOS-supplied E820-map.
	 *
	 * Otherwise fake a memory map; one section from 0k->640k,
	 * the next section from 1mb->appropriate_mem_k
	 */
	new_nr = boot_params.e820_entries;
	sanitize_e820_map(boot_params.e820_map,
			ARRAY_SIZE(boot_params.e820_map),
			&new_nr);
	boot_params.e820_entries = new_nr;
1435 1436
	if (append_e820_map(boot_params.e820_map, boot_params.e820_entries)
	  < 0) {
1437
		u64 mem_size;
1438 1439 1440 1441 1442 1443 1444 1445 1446 1447 1448 1449 1450 1451 1452 1453 1454 1455 1456 1457 1458 1459

		/* compare results from other methods and take the greater */
		if (boot_params.alt_mem_k
		    < boot_params.screen_info.ext_mem_k) {
			mem_size = boot_params.screen_info.ext_mem_k;
			who = "BIOS-88";
		} else {
			mem_size = boot_params.alt_mem_k;
			who = "BIOS-e801";
		}

		e820.nr_map = 0;
		e820_add_region(0, LOWMEMSIZE(), E820_RAM);
		e820_add_region(HIGH_MEMORY, mem_size << 10, E820_RAM);
	}

	/* In case someone cares... */
	return who;
}

void __init setup_memory_map(void)
{
1460 1461
	char *who;

1462
	who = x86_init.resources.memory_setup();
1463
	memcpy(&e820_saved, &e820, sizeof(struct e820map));
1464
	printk(KERN_INFO "BIOS-provided physical RAM map:\n");
1465
	e820_print_map(who);
1466
}