Files
erofs-freebsd-out-tree/decompressor.c
T
2026-08-18 09:38:06 +02:00

225 lines
6.2 KiB
C

// SPDX-License-Identifier: GPL-2.0-only
/*
* Copyright (C) 2019 HUAWEI, Inc.
* https://www.huawei.com/
* Copyright (C) 2024 Alibaba Cloud
*/
#include <sys/param.h>
#include <sys/endian.h>
#include <sys/libkern.h>
#include <sys/malloc.h>
#include <sys/systm.h>
#include "compress.h"
static int
z_erofs_load_lz4_config(struct erofs_sb_info *sbi,
const struct erofs_super_block *dsb, const void *data, size_t size)
{
const struct z_erofs_lz4_cfgs *lz4;
uint32_t max_pclusterblks;
uint16_t distance;
if (data != NULL) {
if (size < sizeof(*lz4))
return (EINTEGRITY);
lz4 = data;
max_pclusterblks = le16toh(lz4->max_pclusterblks);
if (max_pclusterblks == 0)
max_pclusterblks = 1;
else if (max_pclusterblks >
(Z_EROFS_PCLUSTER_MAX_SIZE >> sbi->blkszbits))
return (EOPNOTSUPP);
} else {
distance = le16toh(dsb->u1.lz4_max_distance);
if (distance == 0 && !erofs_sb_has_lz4_0padding(sbi))
return (0);
sbi->available_compr_algs = 1U << Z_EROFS_COMPRESSION_LZ4;
}
return (0);
}
static int
z_erofs_transform_plain(const struct z_erofs_decompress_req *rq)
{
const uint8_t *src;
uint8_t *dst;
size_t first, offset;
if (rq->outputsize > rq->inputsize)
return (EINTEGRITY);
src = rq->in;
dst = rq->out;
if (rq->map->m_algorithmformat == Z_EROFS_COMPRESSION_SHIFTED) {
memmove(dst, src, rq->outputsize);
return (0);
}
first = MIN((size_t)(rq->sbi->block_size -
(rq->map->m_la & (rq->sbi->block_size - 1))), rq->outputsize);
offset = (rq->inputsize - first) & (rq->sbi->block_size - 1);
if (offset > rq->inputsize || first > rq->inputsize - offset)
return (EINTEGRITY);
memmove(dst, src + offset, first);
if (first < rq->outputsize)
memmove(dst + first, src, rq->outputsize - first);
return (0);
}
static const struct z_erofs_decompressor z_erofs_shifted_decomp = {
.decompress = z_erofs_transform_plain,
.name = "shifted",
};
static const struct z_erofs_decompressor z_erofs_interlaced_decomp = {
.decompress = z_erofs_transform_plain,
.name = "interlaced",
};
static const struct z_erofs_decompressor z_erofs_lz4_decomp = {
.config = z_erofs_load_lz4_config,
.decompress = z_erofs_lz4_decompress,
.supports_subextent = 1,
.name = "lz4",
};
static const struct z_erofs_decompressor * const z_erofs_decomp[] = {
[Z_EROFS_COMPRESSION_SHIFTED] = &z_erofs_shifted_decomp,
[Z_EROFS_COMPRESSION_INTERLACED] = &z_erofs_interlaced_decomp,
[Z_EROFS_COMPRESSION_LZ4] = &z_erofs_lz4_decomp,
[Z_EROFS_COMPRESSION_LZMA] = &z_erofs_lzma_decomp,
[Z_EROFS_COMPRESSION_DEFLATE] = &z_erofs_deflate_decomp,
[Z_EROFS_COMPRESSION_ZSTD] = &z_erofs_zstd_decomp,
};
bool
z_erofs_decompress_supports_subextent(const struct erofs_map_blocks *map)
{
uint8_t algorithm;
algorithm = map->m_algorithmformat;
return (algorithm < nitems(z_erofs_decomp) &&
z_erofs_decomp[algorithm] != NULL &&
z_erofs_decomp[algorithm]->supports_subextent);
}
static int
z_erofs_read_cfg(struct erofs_sb_info *sbi, uint64_t *offset,
struct erofs_buf *buf,
size_t *sizep)
{
struct erofs_buf metabuf = EROFS_BUF_INITIALIZER;
uint8_t length_buf[2];
uint64_t aligned;
uint16_t length;
int error;
aligned = roundup2(*offset, 4);
if (aligned > UINT64_MAX - sizeof(length_buf))
return (EINTEGRITY);
error = erofs_read_metadata(sbi, 0, aligned, sizeof(length_buf), &metabuf);
if (error != 0)
return (error);
memcpy(length_buf, metabuf.data, sizeof(length_buf));
erofs_put_metabuf(&metabuf);
length = le16dec(length_buf);
*sizep = length != 0 ? length : UINT16_MAX + 1U;
if (*sizep > 65536 || aligned + sizeof(length_buf) >
UINT64_MAX - *sizep)
return (EINTEGRITY);
*offset = aligned + sizeof(length_buf);
error = erofs_read_metadata(sbi, 0, *offset, *sizep, buf);
if (error == 0)
*offset += *sizep;
return (error);
}
int
z_erofs_parse_cfgs(struct erofs_sb_info *sbi,
const struct erofs_super_block *dsb)
{
struct erofs_buf data = EROFS_BUF_INITIALIZER;
const struct z_erofs_decompressor *decompressor;
uint64_t offset;
uint16_t algorithms;
size_t size;
int algorithm, error;
if (!erofs_sb_has_compr_cfgs(sbi))
return (z_erofs_load_lz4_config(sbi, dsb, NULL, 0));
algorithms = le16toh(dsb->u1.available_compr_algs);
sbi->available_compr_algs = algorithms;
if ((algorithms & ~Z_EROFS_ALL_COMPR_ALGS) != 0)
return (EOPNOTSUPP);
offset = EROFS_SUPER_OFFSET + sbi->sb_size;
for (algorithm = 0; algorithm < Z_EROFS_COMPRESSION_MAX;
++algorithm) {
if ((algorithms & (1U << algorithm)) == 0)
continue;
error = z_erofs_read_cfg(sbi, &offset, &data, &size);
if (error != 0)
return (error);
decompressor = z_erofs_decomp[algorithm];
if (decompressor == NULL || decompressor->config == NULL)
error = EOPNOTSUPP;
else
error = decompressor->config(sbi, dsb, data.data, size);
erofs_put_metabuf(&data);
if (error != 0)
return (error);
}
return (0);
}
int
z_erofs_decompress(struct erofs_sb_info *sbi,
const struct erofs_map_blocks *map, const void *src0, size_t srclen,
void *dst, size_t dstlen, bool partial)
{
const struct z_erofs_decompressor *decompressor;
struct z_erofs_decompress_req rq;
const uint8_t *src;
uint8_t algorithm;
size_t padding, padding_limit;
algorithm = map->m_algorithmformat;
if (algorithm >= nitems(z_erofs_decomp) ||
z_erofs_decomp[algorithm] == NULL ||
z_erofs_decomp[algorithm]->decompress == NULL)
return (EOPNOTSUPP);
decompressor = z_erofs_decomp[algorithm];
rq = (struct z_erofs_decompress_req) {
.sbi = sbi,
.map = map,
.in = src0,
.inputsize = srclen,
.out = dst,
.outputsize = dstlen,
.partial_decoding = partial,
};
if (algorithm == Z_EROFS_COMPRESSION_SHIFTED ||
algorithm == Z_EROFS_COMPRESSION_INTERLACED)
return (decompressor->decompress(&rq));
src = src0;
if (map->m_algorithmformat != Z_EROFS_COMPRESSION_LZ4 ||
erofs_sb_has_lz4_0padding(sbi)) {
padding_limit = MIN(srclen, sbi->block_size -
(map->m_pa & (sbi->block_size - 1)));
for (padding = 0; padding < padding_limit && src[padding] == 0;
++padding)
;
if (padding == padding_limit)
return (EINTEGRITY);
src += padding;
srclen -= padding;
}
if (algorithm == Z_EROFS_COMPRESSION_LZMA) {
if (sbi->lzma_dict_size == 0)
return (EINTEGRITY);
}
rq.in = src;
rq.inputsize = srclen;
return (decompressor->decompress(&rq));
}