Tidying up Miniz compression code.
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@ -16,12 +16,12 @@ namespace PolyVox
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uint32_t decompress(void* pSrcData, uint32_t uSrcLength, void* pDstData, uint32_t uDstLength);
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private:
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int m_iCompressionLevel;
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unsigned int m_uCompressionFlags;
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// tdefl_compressor contains all the state needed by the low-level compressor so it's a pretty big struct (~300k).
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// We're storing it by void* because miniz does not supply a header and we don't want to include the .c file from
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// here as it will cause linker problems.
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void* g_deflator;
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void* m_pDeflator;
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};
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}
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@ -23,16 +23,25 @@ namespace PolyVox
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{
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// Compression levels: 0-9 are the standard zlib-style levels, 10 is best possible compression (not zlib compatible, and may be very slow)
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MinizCompressor::MinizCompressor(int iCompressionLevel)
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:m_iCompressionLevel(iCompressionLevel)
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,g_deflator(0)
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:m_pDeflator(0)
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{
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tdefl_compressor* pDeflator = new tdefl_compressor;
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g_deflator = reinterpret_cast<void*>(pDeflator);
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m_pDeflator = reinterpret_cast<void*>(pDeflator);
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// The number of dictionary probes to use at each compression level (0-10). 0=implies fastest/minimal possible probing.
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static const mz_uint s_tdefl_num_probes[11] = { 0, 1, 6, 32, 16, 32, 128, 256, 512, 768, 1500 };
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// create tdefl() compatible flags (we have to compose the low-level flags ourselves, or use tdefl_create_comp_flags_from_zip_params() but that means MINIZ_NO_ZLIB_APIS can't be defined).
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m_uCompressionFlags = TDEFL_WRITE_ZLIB_HEADER | s_tdefl_num_probes[MZ_MIN(10, iCompressionLevel)] | ((iCompressionLevel <= 3) ? TDEFL_GREEDY_PARSING_FLAG : 0);
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if (!iCompressionLevel)
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{
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m_uCompressionFlags |= TDEFL_FORCE_ALL_RAW_BLOCKS;
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}
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}
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MinizCompressor::~MinizCompressor()
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{
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tdefl_compressor* pDeflator = reinterpret_cast<tdefl_compressor*>(g_deflator);
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tdefl_compressor* pDeflator = reinterpret_cast<tdefl_compressor*>(m_pDeflator);
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delete pDeflator;
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}
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@ -68,19 +77,10 @@ namespace PolyVox
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// but it's implemented using the lower level API which does not conflict with zlib or perform any memory allocations.
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uint32_t MinizCompressor::compress(void* pSrcData, uint32_t uSrcLength, void* pDstData, uint32_t uDstLength)
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{
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tdefl_compressor* pDeflator = reinterpret_cast<tdefl_compressor*>(g_deflator);
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tdefl_compressor* pDeflator = reinterpret_cast<tdefl_compressor*>(m_pDeflator);
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// The number of dictionary probes to use at each compression level (0-10). 0=implies fastest/minimal possible probing.
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static const mz_uint s_tdefl_num_probes[11] = { 0, 1, 6, 32, 16, 32, 128, 256, 512, 768, 1500 };
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// create tdefl() compatible flags (we have to compose the low-level flags ourselves, or use tdefl_create_comp_flags_from_zip_params() but that means MINIZ_NO_ZLIB_APIS can't be defined).
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mz_uint comp_flags = TDEFL_WRITE_ZLIB_HEADER | s_tdefl_num_probes[MZ_MIN(10, m_iCompressionLevel)] | ((m_iCompressionLevel <= 3) ? TDEFL_GREEDY_PARSING_FLAG : 0);
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if (!m_iCompressionLevel)
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{
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comp_flags |= TDEFL_FORCE_ALL_RAW_BLOCKS;
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}
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tdefl_status status = tdefl_init(pDeflator, NULL, NULL, comp_flags);
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// It seems we have to reinitialise the deflator for each fresh dataset (it's probably intended for streaming, which we're not doing here)
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tdefl_status status = tdefl_init(pDeflator, NULL, NULL, m_uCompressionFlags);
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if (status != TDEFL_STATUS_OKAY)
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{
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stringstream ss;
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