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	Rename some camel-case variables to match U-Boot style. Camel case is not generally allowed in U-Boot. Rename this variable to fit in with the style. Signed-off-by: Simon Glass <sjg@chromium.org> Reviewed-by: Bin Meng <bmeng.cn@gmail.com> Tested-by: Bin Meng <bmeng.cn@gmail.com>
		
			
				
	
	
		
			400 lines
		
	
	
		
			9.0 KiB
		
	
	
	
		
			C
		
	
	
	
	
	
			
		
		
	
	
			400 lines
		
	
	
		
			9.0 KiB
		
	
	
	
		
			C
		
	
	
	
	
	
// SPDX-License-Identifier: GPL-2.0+
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/*
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 * Copyright (c) 2011 The Chromium OS Authors. All rights reserved.
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 */
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#include <common.h>
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#include <cbfs.h>
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#include <malloc.h>
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#include <asm/byteorder.h>
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static const u32 good_magic = 0x4f524243;
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static const u8 good_file_magic[] = "LARCHIVE";
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struct cbfs_priv {
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	int initialized;
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	struct cbfs_header header;
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	struct cbfs_cachenode *file_cache;
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	enum cbfs_result result;
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};
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static struct cbfs_priv cbfs_s;
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const char *file_cbfs_error(void)
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{
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	switch (cbfs_s.result) {
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	case CBFS_SUCCESS:
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		return "Success";
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	case CBFS_NOT_INITIALIZED:
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		return "CBFS not initialized";
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	case CBFS_BAD_HEADER:
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		return "Bad CBFS header";
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	case CBFS_BAD_FILE:
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		return "Bad CBFS file";
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	case CBFS_FILE_NOT_FOUND:
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		return "File not found";
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	default:
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		return "Unknown";
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	}
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}
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enum cbfs_result cbfs_get_result(void)
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{
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	return cbfs_s.result;
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}
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/* Do endian conversion on the CBFS header structure. */
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static void swap_header(struct cbfs_header *dest, struct cbfs_header *src)
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{
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	dest->magic = be32_to_cpu(src->magic);
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	dest->version = be32_to_cpu(src->version);
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	dest->rom_size = be32_to_cpu(src->rom_size);
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	dest->boot_block_size = be32_to_cpu(src->boot_block_size);
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	dest->align = be32_to_cpu(src->align);
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	dest->offset = be32_to_cpu(src->offset);
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}
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/* Do endian conversion on a CBFS file header. */
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static void swap_file_header(struct cbfs_fileheader *dest,
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			     const struct cbfs_fileheader *src)
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{
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	memcpy(&dest->magic, &src->magic, sizeof(dest->magic));
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	dest->len = be32_to_cpu(src->len);
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	dest->type = be32_to_cpu(src->type);
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	dest->attributes_offset = be32_to_cpu(src->attributes_offset);
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	dest->offset = be32_to_cpu(src->offset);
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}
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/*
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 * Given a starting position in memory, scan forward, bounded by a size, and
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 * find the next valid CBFS file. No memory is allocated by this function. The
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 * caller is responsible for allocating space for the new file structure.
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 *
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 * @param start		The location in memory to start from.
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 * @param size		The size of the memory region to search.
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 * @param align		The alignment boundaries to check on.
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 * @param new_node	A pointer to the file structure to load.
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 * @param used		A pointer to the count of of bytes scanned through,
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 *			including the file if one is found.
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 *
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 * @return 1 if a file is found, 0 if one isn't.
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 */
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static int file_cbfs_next_file(struct cbfs_priv *priv, u8 *start, u32 size,
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			       u32 align, struct cbfs_cachenode *new_node,
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			       u32 *used)
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{
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	struct cbfs_fileheader header;
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	*used = 0;
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	while (size >= align) {
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		const struct cbfs_fileheader *file_header =
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			(const struct cbfs_fileheader *)start;
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		u32 name_len;
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		u32 step;
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		/* Check if there's a file here. */
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		if (memcmp(good_file_magic, &file_header->magic,
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			   sizeof(file_header->magic))) {
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			*used += align;
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			size -= align;
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			start += align;
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			continue;
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		}
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		swap_file_header(&header, file_header);
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		if (header.offset < sizeof(struct cbfs_fileheader)) {
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			priv->result = CBFS_BAD_FILE;
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			return -1;
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		}
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		new_node->next = NULL;
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		new_node->type = header.type;
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		new_node->data = start + header.offset;
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		new_node->data_length = header.len;
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		name_len = header.offset - sizeof(struct cbfs_fileheader);
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		new_node->name = (char *)file_header +
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				sizeof(struct cbfs_fileheader);
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		new_node->name_length = name_len;
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		new_node->attributes_offset = header.attributes_offset;
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		step = header.len;
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		if (step % align)
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			step = step + align - step % align;
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		*used += step;
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		return 1;
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	}
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	return 0;
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}
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/* Look through a CBFS instance and copy file metadata into regular memory. */
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static void file_cbfs_fill_cache(struct cbfs_priv *priv, u8 *start, u32 size,
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				 u32 align)
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{
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	struct cbfs_cachenode *cache_node;
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	struct cbfs_cachenode *new_node;
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	struct cbfs_cachenode **cache_tail = &priv->file_cache;
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	/* Clear out old information. */
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	cache_node = priv->file_cache;
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	while (cache_node) {
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		struct cbfs_cachenode *old_node = cache_node;
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		cache_node = cache_node->next;
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		free(old_node);
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	}
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	priv->file_cache = NULL;
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	while (size >= align) {
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		int result;
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		u32 used;
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		new_node = (struct cbfs_cachenode *)
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				malloc(sizeof(struct cbfs_cachenode));
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		result = file_cbfs_next_file(priv, start, size, align, new_node,
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					     &used);
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		if (result < 0) {
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			free(new_node);
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			return;
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		} else if (result == 0) {
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			free(new_node);
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			break;
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		}
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		*cache_tail = new_node;
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		cache_tail = &new_node->next;
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		size -= used;
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		start += used;
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	}
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	priv->result = CBFS_SUCCESS;
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}
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/* Get the CBFS header out of the ROM and do endian conversion. */
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static int file_cbfs_load_header(uintptr_t end_of_rom,
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				 struct cbfs_header *header)
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{
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	struct cbfs_header *header_in_rom;
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	int32_t offset = *(u32 *)(end_of_rom - 3);
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	header_in_rom = (struct cbfs_header *)(end_of_rom + offset + 1);
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	swap_header(header, header_in_rom);
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	if (header->magic != good_magic || header->offset >
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			header->rom_size - header->boot_block_size) {
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		cbfs_s.result = CBFS_BAD_HEADER;
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		return 1;
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	}
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	return 0;
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}
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static int cbfs_load_header_ptr(struct cbfs_priv *priv, ulong base,
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				struct cbfs_header *header)
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{
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	struct cbfs_header *header_in_rom;
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	header_in_rom = (struct cbfs_header *)base;
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	swap_header(header, header_in_rom);
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	if (header->magic != good_magic || header->offset >
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			header->rom_size - header->boot_block_size) {
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		priv->result = CBFS_BAD_HEADER;
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		return -EFAULT;
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	}
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	return 0;
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}
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static void cbfs_init(struct cbfs_priv *priv, uintptr_t end_of_rom)
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{
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	u8 *start_of_rom;
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	priv->initialized = 0;
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	if (file_cbfs_load_header(end_of_rom, &priv->header))
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		return;
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	start_of_rom = (u8 *)(end_of_rom + 1 - priv->header.rom_size);
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	file_cbfs_fill_cache(priv, start_of_rom, priv->header.rom_size,
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			     priv->header.align);
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	if (priv->result == CBFS_SUCCESS)
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		priv->initialized = 1;
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}
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void file_cbfs_init(uintptr_t end_of_rom)
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{
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	cbfs_init(&cbfs_s, end_of_rom);
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}
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int cbfs_init_mem(ulong base, ulong size, struct cbfs_priv **privp)
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{
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	struct cbfs_priv priv_s, *priv = &priv_s;
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	int ret;
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	/*
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	 * Use a local variable to start with until we know that the CBFS is
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	 * valid. Assume that a master header appears at the start, at offset
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	 * 0x38.
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	 */
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	ret = cbfs_load_header_ptr(priv, base + 0x38, &priv->header);
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	if (ret)
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		return ret;
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	file_cbfs_fill_cache(priv, (u8 *)base, priv->header.rom_size,
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			     priv->header.align);
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	if (priv->result != CBFS_SUCCESS)
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		return -EINVAL;
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	priv->initialized = 1;
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	priv = malloc(sizeof(priv_s));
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	if (!priv)
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		return -ENOMEM;
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	memcpy(priv, &priv_s, sizeof(priv_s));
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	*privp = priv;
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	return 0;
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}
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const struct cbfs_header *file_cbfs_get_header(void)
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{
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	struct cbfs_priv *priv = &cbfs_s;
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	if (priv->initialized) {
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		priv->result = CBFS_SUCCESS;
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		return &priv->header;
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	} else {
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		priv->result = CBFS_NOT_INITIALIZED;
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		return NULL;
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	}
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}
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const struct cbfs_cachenode *file_cbfs_get_first(void)
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{
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	struct cbfs_priv *priv = &cbfs_s;
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	if (!priv->initialized) {
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		priv->result = CBFS_NOT_INITIALIZED;
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		return NULL;
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	} else {
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		priv->result = CBFS_SUCCESS;
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		return priv->file_cache;
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	}
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}
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void file_cbfs_get_next(const struct cbfs_cachenode **file)
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{
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	struct cbfs_priv *priv = &cbfs_s;
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	if (!priv->initialized) {
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		priv->result = CBFS_NOT_INITIALIZED;
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		*file = NULL;
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		return;
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	}
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	if (*file)
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		*file = (*file)->next;
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	priv->result = CBFS_SUCCESS;
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}
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const struct cbfs_cachenode *cbfs_find_file(struct cbfs_priv *priv,
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					    const char *name)
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{
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	struct cbfs_cachenode *cache_node = priv->file_cache;
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	if (!priv->initialized) {
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		priv->result = CBFS_NOT_INITIALIZED;
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		return NULL;
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	}
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	while (cache_node) {
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		if (!strcmp(name, cache_node->name))
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			break;
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		cache_node = cache_node->next;
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	}
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	if (!cache_node)
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		priv->result = CBFS_FILE_NOT_FOUND;
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	else
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		priv->result = CBFS_SUCCESS;
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	return cache_node;
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}
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const struct cbfs_cachenode *file_cbfs_find(const char *name)
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{
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	return cbfs_find_file(&cbfs_s, name);
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}
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const struct cbfs_cachenode *file_cbfs_find_uncached(uintptr_t end_of_rom,
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						     const char *name)
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{
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	struct cbfs_priv *priv = &cbfs_s;
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	u8 *start;
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	u32 size;
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	u32 align;
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	static struct cbfs_cachenode node;
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	if (file_cbfs_load_header(end_of_rom, &priv->header))
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		return NULL;
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	start = (u8 *)(end_of_rom + 1 - priv->header.rom_size);
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	size = priv->header.rom_size;
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	align = priv->header.align;
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	while (size >= align) {
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		int result;
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		u32 used;
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		result = file_cbfs_next_file(priv, start, size, align, &node,
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					     &used);
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		if (result < 0)
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			return NULL;
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		else if (result == 0)
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			break;
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		if (!strcmp(name, node.name))
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			return &node;
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		size -= used;
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		start += used;
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	}
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	cbfs_s.result = CBFS_FILE_NOT_FOUND;
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	return NULL;
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}
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const char *file_cbfs_name(const struct cbfs_cachenode *file)
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{
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	cbfs_s.result = CBFS_SUCCESS;
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	return file->name;
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}
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u32 file_cbfs_size(const struct cbfs_cachenode *file)
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{
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	cbfs_s.result = CBFS_SUCCESS;
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	return file->data_length;
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}
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u32 file_cbfs_type(const struct cbfs_cachenode *file)
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{
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	cbfs_s.result = CBFS_SUCCESS;
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	return file->type;
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}
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long file_cbfs_read(const struct cbfs_cachenode *file, void *buffer,
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		    unsigned long maxsize)
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{
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	u32 size;
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	size = file->data_length;
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	if (maxsize && size > maxsize)
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		size = maxsize;
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	memcpy(buffer, file->data, size);
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	cbfs_s.result = CBFS_SUCCESS;
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	return size;
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}
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