93f6b8a8cc
FMAP was developed with assumption about endianness of the target machine. This broke the parsing of the structure on big endian architectures. This patch converts the endianness of the fields where applicable. Signed-off-by: Krystian Hebel <krystian.hebel@3mdeb.com> Change-Id: I8784ac29101531db757249496315f43e4008de4f Reviewed-on: https://review.coreboot.org/c/coreboot/+/55038 Tested-by: build bot (Jenkins) <no-reply@coreboot.org> Reviewed-by: Julius Werner <jwerner@chromium.org>
321 lines
7.3 KiB
C
321 lines
7.3 KiB
C
/* SPDX-License-Identifier: GPL-2.0-only */
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#include <boot_device.h>
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#include <cbmem.h>
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#include <console/console.h>
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#include <fmap.h>
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#include <metadata_hash.h>
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#include <stddef.h>
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#include <string.h>
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#include <symbols.h>
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#include <endian.h>
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#include "fmap_config.h"
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/*
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* See http://code.google.com/p/flashmap/ for more information on FMAP.
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*/
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static int fmap_print_once;
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static struct region_device fmap_cache;
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#define print_once(...) do { \
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if (!fmap_print_once) \
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printk(__VA_ARGS__); \
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} while (0)
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uint64_t get_fmap_flash_offset(void)
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{
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return FMAP_OFFSET;
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}
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static int verify_fmap(const struct fmap *fmap)
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{
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if (memcmp(fmap->signature, FMAP_SIGNATURE, sizeof(fmap->signature)))
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return -1;
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static bool done = false;
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if (!CONFIG(CBFS_VERIFICATION) || !ENV_INITIAL_STAGE || done)
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return 0; /* Only need to check hash in first stage. */
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if (metadata_hash_verify_fmap(fmap, FMAP_SIZE) != VB2_SUCCESS)
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return -1;
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done = true;
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return 0;
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}
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static void report(const struct fmap *fmap)
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{
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print_once(BIOS_DEBUG, "FMAP: Found \"%s\" version %d.%d at %#x.\n",
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fmap->name, fmap->ver_major, fmap->ver_minor, FMAP_OFFSET);
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print_once(BIOS_DEBUG, "FMAP: base = %#llx size = %#x #areas = %d\n",
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(long long)le64toh(fmap->base), le32toh(fmap->size),
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le16toh(fmap->nareas));
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fmap_print_once = 1;
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}
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static void setup_preram_cache(struct region_device *cache_rdev)
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{
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if (CONFIG(NO_FMAP_CACHE))
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return;
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/* No need to use FMAP cache in SMM */
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if (ENV_SMM)
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return;
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if (!ENV_ROMSTAGE_OR_BEFORE) {
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/* We get here if ramstage makes an FMAP access before calling
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cbmem_initialize(). We should avoid letting it come to that,
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so print a warning. */
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print_once(BIOS_WARNING,
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"WARNING: Post-RAM FMAP access too early for cache!\n");
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return;
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}
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struct fmap *fmap = (struct fmap *)_fmap_cache;
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if (!(ENV_INITIAL_STAGE)) {
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/* NOTE: This assumes that the first stage will make
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at least one FMAP access (usually from finding CBFS). */
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if (!verify_fmap(fmap))
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goto register_cache;
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printk(BIOS_ERR, "ERROR: FMAP cache corrupted?!\n");
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if (CONFIG(TOCTOU_SAFETY))
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die("TOCTOU safety relies on FMAP cache");
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}
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/* In case we fail below, make sure the cache is invalid. */
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memset(fmap->signature, 0, sizeof(fmap->signature));
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boot_device_init();
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const struct region_device *boot_rdev = boot_device_ro();
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if (!boot_rdev)
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return;
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/* memlayout statically guarantees that the FMAP_CACHE is big enough. */
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if (rdev_readat(boot_rdev, fmap, FMAP_OFFSET, FMAP_SIZE) != FMAP_SIZE)
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return;
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if (verify_fmap(fmap))
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return;
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report(fmap);
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register_cache:
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rdev_chain_mem(cache_rdev, fmap, FMAP_SIZE);
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}
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static int find_fmap_directory(struct region_device *fmrd)
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{
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const struct region_device *boot;
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struct fmap *fmap;
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size_t offset = FMAP_OFFSET;
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/* Try FMAP cache first */
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if (!region_device_sz(&fmap_cache))
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setup_preram_cache(&fmap_cache);
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if (region_device_sz(&fmap_cache))
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return rdev_chain_full(fmrd, &fmap_cache);
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boot_device_init();
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boot = boot_device_ro();
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if (boot == NULL)
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return -1;
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fmap = rdev_mmap(boot, offset, sizeof(struct fmap));
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if (fmap == NULL)
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return -1;
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if (verify_fmap(fmap)) {
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printk(BIOS_ERR, "FMAP missing or corrupted at offset 0x%zx!\n",
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offset);
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rdev_munmap(boot, fmap);
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return -1;
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}
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report(fmap);
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rdev_munmap(boot, fmap);
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return rdev_chain(fmrd, boot, offset, FMAP_SIZE);
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}
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int fmap_locate_area_as_rdev(const char *name, struct region_device *area)
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{
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struct region ar;
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if (fmap_locate_area(name, &ar))
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return -1;
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return boot_device_ro_subregion(&ar, area);
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}
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int fmap_locate_area_as_rdev_rw(const char *name, struct region_device *area)
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{
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struct region ar;
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if (fmap_locate_area(name, &ar))
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return -1;
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return boot_device_rw_subregion(&ar, area);
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}
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int fmap_locate_area(const char *name, struct region *ar)
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{
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struct region_device fmrd;
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size_t offset;
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if (name == NULL || ar == NULL)
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return -1;
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if (find_fmap_directory(&fmrd))
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return -1;
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/* Start reading the areas just after fmap header. */
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offset = sizeof(struct fmap);
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while (1) {
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struct fmap_area *area;
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area = rdev_mmap(&fmrd, offset, sizeof(*area));
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if (area == NULL)
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return -1;
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if (strcmp((const char *)area->name, name)) {
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rdev_munmap(&fmrd, area);
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offset += sizeof(struct fmap_area);
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continue;
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}
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printk(BIOS_DEBUG, "FMAP: area %s found @ %x (%d bytes)\n",
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name, le32toh(area->offset), le32toh(area->size));
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ar->offset = le32toh(area->offset);
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ar->size = le32toh(area->size);
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rdev_munmap(&fmrd, area);
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return 0;
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}
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printk(BIOS_DEBUG, "FMAP: area %s not found\n", name);
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return -1;
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}
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int fmap_find_region_name(const struct region * const ar,
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char name[FMAP_STRLEN])
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{
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struct region_device fmrd;
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size_t offset;
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if (name == NULL || ar == NULL)
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return -1;
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if (find_fmap_directory(&fmrd))
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return -1;
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/* Start reading the areas just after fmap header. */
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offset = sizeof(struct fmap);
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while (1) {
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struct fmap_area *area;
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area = rdev_mmap(&fmrd, offset, sizeof(*area));
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if (area == NULL)
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return -1;
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if ((ar->offset != le32toh(area->offset)) ||
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(ar->size != le32toh(area->size))) {
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rdev_munmap(&fmrd, area);
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offset += sizeof(struct fmap_area);
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continue;
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}
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printk(BIOS_DEBUG, "FMAP: area (%zx, %zx) found, named %s\n",
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ar->offset, ar->size, area->name);
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memcpy(name, area->name, FMAP_STRLEN);
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rdev_munmap(&fmrd, area);
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return 0;
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}
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printk(BIOS_DEBUG, "FMAP: area (%zx, %zx) not found\n",
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ar->offset, ar->size);
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return -1;
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}
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ssize_t fmap_read_area(const char *name, void *buffer, size_t size)
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{
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struct region_device rdev;
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if (fmap_locate_area_as_rdev(name, &rdev))
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return -1;
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return rdev_readat(&rdev, buffer, 0,
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MIN(size, region_device_sz(&rdev)));
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}
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ssize_t fmap_overwrite_area(const char *name, const void *buffer, size_t size)
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{
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struct region_device rdev;
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if (fmap_locate_area_as_rdev_rw(name, &rdev))
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return -1;
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if (size > region_device_sz(&rdev))
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return -1;
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if (rdev_eraseat(&rdev, 0, region_device_sz(&rdev)) < 0)
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return -1;
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return rdev_writeat(&rdev, buffer, 0, size);
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}
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static void fmap_register_cbmem_cache(int unused)
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{
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const struct cbmem_entry *e;
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/* Find the FMAP cache installed by previous stage */
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e = cbmem_entry_find(CBMEM_ID_FMAP);
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/* Don't set fmap_cache so that find_fmap_directory will use regular path */
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if (!e)
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return;
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rdev_chain_mem(&fmap_cache, cbmem_entry_start(e), cbmem_entry_size(e));
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}
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/*
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* The main reason to copy the FMAP into CBMEM is to make it available to the
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* OS on every architecture. As side effect use the CBMEM copy as cache.
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*/
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static void fmap_setup_cbmem_cache(int unused)
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{
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struct region_device fmrd;
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if (find_fmap_directory(&fmrd))
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return;
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/* Reloads the FMAP even on ACPI S3 resume */
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const size_t s = region_device_sz(&fmrd);
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struct fmap *fmap = cbmem_add(CBMEM_ID_FMAP, s);
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if (!fmap) {
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printk(BIOS_ERR, "ERROR: Failed to allocate CBMEM\n");
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return;
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}
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const ssize_t ret = rdev_readat(&fmrd, fmap, 0, s);
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if (ret != s) {
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printk(BIOS_ERR, "ERROR: Failed to read FMAP into CBMEM\n");
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cbmem_entry_remove(cbmem_entry_find(CBMEM_ID_FMAP));
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return;
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}
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/* Finally advertise the cache for the current stage */
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fmap_register_cbmem_cache(unused);
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}
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ROMSTAGE_CBMEM_INIT_HOOK(fmap_setup_cbmem_cache)
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RAMSTAGE_CBMEM_INIT_HOOK(fmap_register_cbmem_cache)
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POSTCAR_CBMEM_INIT_HOOK(fmap_register_cbmem_cache)
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