mirror of https://git.tukaani.org/xz.git
liblzma: Add raw ARM64, RISC-V, and x86 BCJ filter APIs
Put them behind the LZMA_UNSTABLE macro for now. These low-level special APIs might become useful in erofs-utils.
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@ -96,3 +96,102 @@ typedef struct {
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uint32_t start_offset;
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} lzma_options_bcj;
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#ifdef LZMA_UNSTABLE
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/**
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* \brief Raw ARM64 BCJ encoder
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*
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* This is for special use cases only.
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*
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* \param start_offset The lowest 32 bits of the offset in the
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* executable being filtered. For the ARM64
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* filter, this must be a multiple of four.
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* For the very best results, this should also
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* be in sync with 4096-byte page boundaries
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* in the executable due to how ARM64's ADRP
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* instruction works.
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* \param buf Buffer to be filtered in place
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* \param size Size of the buffer
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*
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* \return Number of bytes that were processed in `buf`. This is at most
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* `size`. With the ARM64 filter, the return value is always
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* a multiple of 4, and at most 3 bytes are left unfiltered.
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*
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* \since 5.7.1alpha
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*/
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extern LZMA_API(size_t) lzma_bcj_arm64_encode(
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uint32_t start_offset, uint8_t *buf, size_t size) lzma_nothrow;
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/**
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* \brief Raw ARM64 BCJ decoder
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*
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* See lzma_bcj_arm64_encode().
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*
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* \since 5.7.1alpha
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*/
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extern LZMA_API(size_t) lzma_bcj_arm64_decode(
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uint32_t start_offset, uint8_t *buf, size_t size) lzma_nothrow;
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/**
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* \brief Raw RISC-V BCJ encoder
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*
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* This is for special use cases only.
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*
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* \param start_offset The lowest 32 bits of the offset in the
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* executable being filtered. For the RISC-V
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* filter, this must be a multiple of 2.
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* \param buf Buffer to be filtered in place
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* \param size Size of the buffer
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*
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* \return Number of bytes that were processed in `buf`. This is at most
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* `size`. With the RISC-V filter, the return value is always
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* a multiple of 2, and at most 7 bytes are left unfiltered.
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*
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* \since 5.7.1alpha
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*/
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extern LZMA_API(size_t) lzma_bcj_riscv_encode(
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uint32_t start_offset, uint8_t *buf, size_t size) lzma_nothrow;
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/**
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* \brief Raw RISC-V BCJ decoder
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*
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* See lzma_bcj_riscv_encode().
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*
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* \since 5.7.1alpha
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*/
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extern LZMA_API(size_t) lzma_bcj_riscv_decode(
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uint32_t start_offset, uint8_t *buf, size_t size) lzma_nothrow;
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/**
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* \brief Raw x86 BCJ encoder
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*
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* This is for special use cases only.
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*
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* \param start_offset The lowest 32 bits of the offset in the
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* executable being filtered. For the x86
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* filter, all values are valid.
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* \param buf Buffer to be filtered in place
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* \param size Size of the buffer
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*
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* \return Number of bytes that were processed in `buf`. This is at most
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* `size`. For the x86 filter, the return value is always
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* a multiple of 1, and at most 4 bytes are left unfiltered.
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*
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* \since 5.7.1alpha
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*/
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extern LZMA_API(size_t) lzma_bcj_x86_encode(
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uint32_t start_offset, uint8_t *buf, size_t size) lzma_nothrow;
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/**
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* \brief Raw x86 BCJ decoder
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*
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* See lzma_bcj_x86_encode().
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*
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* \since 5.7.1alpha
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*/
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extern LZMA_API(size_t) lzma_bcj_x86_decode(
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uint32_t start_offset, uint8_t *buf, size_t size) lzma_nothrow;
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#endif
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@ -42,6 +42,8 @@
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#define LZMA_API(type) LZMA_API_EXPORT type LZMA_API_CALL
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#define LZMA_UNSTABLE
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#include "lzma.h"
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// This is for detecting modern GCC and Clang attributes
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@ -126,3 +126,13 @@ XZ_5.6.0 {
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global:
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lzma_mt_block_size;
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} XZ_5.4;
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XZ_5.7.0alpha {
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global:
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lzma_bcj_arm64_encode;
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lzma_bcj_arm64_decode;
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lzma_bcj_riscv_encode;
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lzma_bcj_riscv_decode;
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lzma_bcj_x86_encode;
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lzma_bcj_x86_decode;
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} XZ_5.6.0;
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@ -141,3 +141,13 @@ XZ_5.6.0 {
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global:
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lzma_mt_block_size;
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} XZ_5.4;
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XZ_5.7.0alpha {
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global:
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lzma_bcj_arm64_encode;
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lzma_bcj_arm64_decode;
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lzma_bcj_riscv_encode;
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lzma_bcj_riscv_decode;
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lzma_bcj_x86_encode;
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lzma_bcj_x86_decode;
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} XZ_5.6.0;
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@ -124,6 +124,15 @@ lzma_simple_arm64_encoder_init(lzma_next_coder *next,
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{
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return arm64_coder_init(next, allocator, filters, true);
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}
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extern LZMA_API(size_t)
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lzma_bcj_arm64_encode(uint32_t start_offset, uint8_t *buf, size_t size)
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{
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// start_offset must be a multiple of four.
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start_offset &= ~UINT32_C(3);
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return arm64_code(NULL, start_offset, true, buf, size);
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}
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#endif
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@ -135,4 +144,13 @@ lzma_simple_arm64_decoder_init(lzma_next_coder *next,
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{
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return arm64_coder_init(next, allocator, filters, false);
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}
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extern LZMA_API(size_t)
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lzma_bcj_arm64_decode(uint32_t start_offset, uint8_t *buf, size_t size)
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{
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// start_offset must be a multiple of four.
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start_offset &= ~UINT32_C(3);
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return arm64_code(NULL, start_offset, false, buf, size);
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}
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#endif
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@ -617,6 +617,15 @@ lzma_simple_riscv_encoder_init(lzma_next_coder *next,
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return lzma_simple_coder_init(next, allocator, filters,
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&riscv_encode, 0, 8, 2, true);
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}
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extern LZMA_API(size_t)
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lzma_bcj_riscv_encode(uint32_t start_offset, uint8_t *buf, size_t size)
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{
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// start_offset must be a multiple of two.
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start_offset &= ~UINT32_C(1);
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return riscv_encode(NULL, start_offset, true, buf, size);
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}
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#endif
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@ -752,4 +761,13 @@ lzma_simple_riscv_decoder_init(lzma_next_coder *next,
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return lzma_simple_coder_init(next, allocator, filters,
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&riscv_decode, 0, 8, 2, false);
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}
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extern LZMA_API(size_t)
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lzma_bcj_riscv_decode(uint32_t start_offset, uint8_t *buf, size_t size)
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{
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// start_offset must be a multiple of two.
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start_offset &= ~UINT32_C(1);
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return riscv_decode(NULL, start_offset, false, buf, size);
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}
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#endif
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@ -143,6 +143,18 @@ lzma_simple_x86_encoder_init(lzma_next_coder *next,
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{
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return x86_coder_init(next, allocator, filters, true);
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}
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extern LZMA_API(size_t)
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lzma_bcj_x86_encode(uint32_t start_offset, uint8_t *buf, size_t size)
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{
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lzma_simple_x86 simple = {
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.prev_mask = 0,
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.prev_pos = (uint32_t)(-5),
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};
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return x86_code(&simple, start_offset, true, buf, size);
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}
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#endif
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@ -154,4 +166,16 @@ lzma_simple_x86_decoder_init(lzma_next_coder *next,
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{
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return x86_coder_init(next, allocator, filters, false);
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}
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extern LZMA_API(size_t)
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lzma_bcj_x86_decode(uint32_t start_offset, uint8_t *buf, size_t size)
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{
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lzma_simple_x86 simple = {
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.prev_mask = 0,
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.prev_pos = (uint32_t)(-5),
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};
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return x86_code(&simple, start_offset, false, buf, size);
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}
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#endif
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