mirror of https://github.com/JakubMelka/PDF4QT.git
JBIG2 - pattern dictionary
This commit is contained in:
parent
0b507c2610
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@ -22,6 +22,72 @@
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namespace pdf
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{
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class PDFJBIG2HuffmanCodeTable : public PDFJBIG2Segment
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{
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public:
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explicit PDFJBIG2HuffmanCodeTable(std::vector<PDFJBIG2HuffmanTableEntry>&& entries);
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virtual ~PDFJBIG2HuffmanCodeTable();
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virtual const PDFJBIG2HuffmanCodeTable* asHuffmanCodeTable() const override { return this; }
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virtual PDFJBIG2HuffmanCodeTable* asHuffmanCodeTable() override { return this; }
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const std::vector<PDFJBIG2HuffmanTableEntry>& getEntries() const { return m_entries; }
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/// Builds prefixes using algorithm in annex B.3 of specification. Unused rows are removed.
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/// Rows are sorted according the criteria. Prefixes are then filled.
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/// \param entries Entries for building the table
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static std::vector<PDFJBIG2HuffmanTableEntry> buildPrefixes(const std::vector<PDFJBIG2HuffmanTableEntry>& entries);
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private:
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std::vector<PDFJBIG2HuffmanTableEntry> m_entries;
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};
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class PDFJBIG2SymbolDictionary : public PDFJBIG2Segment
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{
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public:
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explicit inline PDFJBIG2SymbolDictionary() = default;
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explicit inline PDFJBIG2SymbolDictionary(std::vector<PDFJBIG2Bitmap>&& bitmaps,
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PDFJBIG2ArithmeticDecoderState&& genericState,
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PDFJBIG2ArithmeticDecoderState&& genericRefinementState) :
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m_bitmaps(qMove(bitmaps)),
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m_genericState(qMove(genericState)),
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m_genericRefinementState(qMove(genericRefinementState))
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{
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}
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virtual const PDFJBIG2SymbolDictionary* asSymbolDictionary() const override { return this; }
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virtual PDFJBIG2SymbolDictionary* asSymbolDictionary() override { return this; }
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const std::vector<PDFJBIG2Bitmap>& getBitmaps() const { return m_bitmaps; }
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const PDFJBIG2ArithmeticDecoderState& getGenericState() const { return m_genericState; }
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const PDFJBIG2ArithmeticDecoderState& getGenericRefinementState() const { return m_genericRefinementState; }
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private:
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std::vector<PDFJBIG2Bitmap> m_bitmaps;
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PDFJBIG2ArithmeticDecoderState m_genericState;
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PDFJBIG2ArithmeticDecoderState m_genericRefinementState;
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};
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class PDFJBIG2PatternDictionary : public PDFJBIG2Segment
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{
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public:
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explicit inline PDFJBIG2PatternDictionary() = default;
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explicit inline PDFJBIG2PatternDictionary(std::vector<PDFJBIG2Bitmap>&& bitmaps) :
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m_bitmaps(qMove(bitmaps))
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{
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}
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virtual const PDFJBIG2PatternDictionary* asPatternDictionary() const override { return this; }
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virtual PDFJBIG2PatternDictionary* asPatternDictionary() override { return this; }
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const std::vector<PDFJBIG2Bitmap>& getBitmaps() const { return m_bitmaps; }
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private:
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std::vector<PDFJBIG2Bitmap> m_bitmaps;
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};
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/// Structure containing arithmetic decoder states
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struct PDFJBIG2ArithmeticDecoderStates
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{
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@ -300,6 +366,72 @@ struct PDFJBIG2BitmapRefinementDecodingParameters
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PDFJBIG2ArithmeticDecoder* decoder = nullptr;
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};
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/// Info structure for symbol dictionary decoding procedure
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struct PDFJBIG2SymbolDictionaryDecodingParameters
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{
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/// If true, huffman encoding is used to decode dictionary,
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/// otherwise arithmetic decoding is used to decode dictionary.
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bool SDHUFF = false;
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/// If true, each symbol is refinement/aggregate. If false,
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/// then symbols are ordinary bitmaps.
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bool SDREFAGG = false;
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/// Table selector for huffman table encoding (height)
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uint8_t SDHUFFDH = 0;
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/// Table selector for huffman table encoding (width)
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uint8_t SDHUFFDW = 0;
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/// Table selector for huffman table encoding
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uint8_t SDHUFFBMSIZE = 0;
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/// Table selector for huffman table encoding
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uint8_t SDHUFFAGGINST = 0;
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/// Is statistics for arithmetic coding used from previous symbol dictionary?
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bool isArithmeticCodingStateUsed = false;
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/// Is statistics for arithmetic coding symbols retained for future use?
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bool isArithmeticCodingStateRetained = false;
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/// Template for decoding
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uint8_t SDTEMPLATE = 0;
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/// Template for decoding refinements
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uint8_t SDRTEMPLATE = 0;
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/// Adaptative pixel positions
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PDFJBIG2ATPositions SDAT = { };
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/// Adaptative pixel positions
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PDFJBIG2ATPositions SDRAT = { };
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/// Number of exported symbols
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uint32_t SDNUMEXSYMS = 0;
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/// Number of new symbols
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uint32_t SDNUMNEWSYMS = 0;
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PDFJBIG2HuffmanDecoder SDHUFFDH_Decoder;
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PDFJBIG2HuffmanDecoder SDHUFFDW_Decoder;
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PDFJBIG2HuffmanDecoder SDHUFFBMSIZE_Decoder;
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PDFJBIG2HuffmanDecoder SDHUFFAGGINST_Decoder;
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PDFJBIG2HuffmanDecoder EXRUNLENGTH_Decoder;
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/// Input bitmaps
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std::vector<const PDFJBIG2Bitmap*> SDINSYMS;
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/// Number of input bitmaps
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uint32_t SDNUMINSYMS = 0;
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/// Output bitmaps
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std::vector<PDFJBIG2Bitmap> SDNEWSYMS;
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/// Widths
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std::vector<int32_t> SDNEWSYMWIDTHS;
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};
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static constexpr PDFJBIG2HuffmanTableEntry PDFJBIG2StandardHuffmanTable_A[] =
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{
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{ 0, 1, 4, 0b0, PDFJBIG2HuffmanTableEntry::Type::Standard},
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@ -2024,12 +2156,118 @@ void PDFJBIG2Decoder::processTextRegion(const PDFJBIG2SegmentHeader& header)
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void PDFJBIG2Decoder::processPatternDictionary(const PDFJBIG2SegmentHeader& header)
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{
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// TODO: JBIG2 - processPatternDictionary
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throw PDFException(PDFTranslationContext::tr("JBIG2 NOT IMPLEMENTED."));
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const int segmentStartPosition = m_reader.getPosition();
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const uint8_t flags = m_reader.readUnsignedByte();
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const uint8_t HDPW = m_reader.readUnsignedByte();
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const uint8_t HDPH = m_reader.readUnsignedByte();
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const uint32_t GRAYMAX = m_reader.readUnsignedInt();
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const bool HDMMR = flags & 0x01;
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const uint8_t HDTEMPLATE = (flags >> 1) &0x03;
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if ((flags & 0b11111000) != 0)
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{
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throw PDFException(PDFTranslationContext::tr("JBIG2 invalid pattern dictionary flags."));
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}
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QByteArray mmrData;
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PDFJBIG2ArithmeticDecoder arithmeticDecoder(&m_reader);
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PDFJBIG2ArithmeticDecoderState genericState;
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if (!HDMMR)
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{
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arithmeticDecoder.initialize();
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PDFJBIG2ArithmeticDecoderStates::resetArithmeticStatesGeneric(&genericState, HDTEMPLATE, nullptr);
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}
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else
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{
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// Determine segment data length
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const int segmentDataStartPosition = m_reader.getPosition();
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const int segmentHeaderBytes = segmentDataStartPosition - segmentStartPosition;
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if (header.isSegmentDataLengthDefined())
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{
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int segmentDataBytes = header.getSegmentDataLength() - segmentHeaderBytes;
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mmrData = m_reader.readSubstream(segmentDataBytes);
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}
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else
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{
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throw PDFException(PDFTranslationContext::tr("JBIG2 unknown data length for pattern dictionary."));
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}
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}
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PDFJBIG2BitmapDecodingParameters parameters;
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parameters.MMR = HDMMR;
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parameters.GBW = (GRAYMAX + 1) * HDPW;
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parameters.GBH = HDPH;
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parameters.GBTEMPLATE = HDTEMPLATE;
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parameters.TPGDON = false;
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parameters.SKIP = nullptr;
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parameters.GBAT[0] = { -static_cast<int8_t>(HDPW), 0 };
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parameters.GBAT[1] = { -3, -1 };
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parameters.GBAT[2] = { 2, -2 };
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parameters.GBAT[3] = { -2, -2 };
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parameters.arithmeticDecoder = &arithmeticDecoder;
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parameters.arithmeticDecoderState = &genericState;
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parameters.data = qMove(mmrData);
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PDFJBIG2Bitmap collectiveBitmap = readBitmap(parameters);
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if (!HDMMR)
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{
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arithmeticDecoder.finalize();
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}
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if (collectiveBitmap.getWidth() != parameters.GBW || collectiveBitmap.getHeight() != parameters.GBH)
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{
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throw PDFException(PDFTranslationContext::tr("JBIG2 invalid pattern dictionary collective bitmap."));
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}
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std::vector<PDFJBIG2Bitmap> bitmaps;
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bitmaps.reserve(GRAYMAX + 1);
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int offsetX = 0;
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for (uint32_t i = 0; i <= GRAYMAX; ++i)
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{
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bitmaps.push_back(collectiveBitmap.getSubbitmap(offsetX, 0, HDPW, HDPH));
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offsetX += HDPW;
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}
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m_segments[header.getSegmentNumber()] = std::make_unique<PDFJBIG2PatternDictionary>(qMove(bitmaps));
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}
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void PDFJBIG2Decoder::processHalftoneRegion(const PDFJBIG2SegmentHeader& header)
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{
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PDFJBIG2RegionSegmentInformationField field = readRegionSegmentInformationField();
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const uint8_t flags = m_reader.readUnsignedByte();
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const bool HMMR = flags & 0x01;
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const uint8_t HTEMPLATE = (flags >> 1) & 0x03;
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const bool HENABLESKIP = flags & 0x08;
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const uint8_t HCOMBOOP = (flags >> 4) & 0x07;
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const uint8_t HDEFPIXEL = (flags >> 7) & 0x01;
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const uint32_t HGW = m_reader.readUnsignedInt();
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const uint32_t HGH = m_reader.readUnsignedInt();
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const uint32_t HGX = m_reader.readSignedInt();
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const uint32_t HGY = m_reader.readSignedInt();
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const uint16_t HRX = m_reader.readUnsignedWord();
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const uint16_t HRY = m_reader.readUnsignedWord();
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PDFJBIG2ReferencedSegments references = getReferencedSegments(header);
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if (references.patternDictionaries.size() != 1)
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{
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throw PDFException(PDFTranslationContext::tr("JBIG2 invalid referenced pattern dictionaries for halftone segment."));
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}
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std::vector<const PDFJBIG2Bitmap*> HPATS = references.getPatternBitmaps();
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const uint32_t HNUMPATS = static_cast<uint32_t>(HPATS.size());
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if (!HNUMPATS)
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{
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throw PDFException(PDFTranslationContext::tr("JBIG2 invalid patterns for halftone segment."));
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}
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const PDFJBIG2Bitmap* firstBitmap = HPATS.front();
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const int HPW = firstBitmap->getWidth();
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const int HPH = firstBitmap->getHeight();
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// TODO: JBIG2 - processHalftoneRegion
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throw PDFException(PDFTranslationContext::tr("JBIG2 NOT IMPLEMENTED."));
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}
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@ -3038,6 +3276,10 @@ PDFJBIG2ReferencedSegments PDFJBIG2Decoder::getReferencedSegments(const PDFJBIG2
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{
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segments.symbolDictionaries.push_back(symbolDictionary);
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}
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else if (const PDFJBIG2PatternDictionary* patternDictionary = referredSegment->asPatternDictionary())
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{
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segments.patternDictionaries.push_back(patternDictionary);
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}
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else
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{
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Q_ASSERT(false);
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@ -3377,6 +3619,23 @@ std::vector<const PDFJBIG2Bitmap*> PDFJBIG2ReferencedSegments::getSymbolBitmaps(
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return result;
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}
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std::vector<const PDFJBIG2Bitmap*> PDFJBIG2ReferencedSegments::getPatternBitmaps() const
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{
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std::vector<const PDFJBIG2Bitmap*> result;
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for (const PDFJBIG2PatternDictionary* dictionary : patternDictionaries)
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{
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const std::vector<PDFJBIG2Bitmap>& bitmaps = dictionary->getBitmaps();
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result.reserve(result.size() + bitmaps.size());
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for (const PDFJBIG2Bitmap& bitmap : bitmaps)
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{
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result.push_back(&bitmap);
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}
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}
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return result;
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}
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PDFJBIG2HuffmanDecoder PDFJBIG2ReferencedSegments::getUserTable(PDFBitReader* reader)
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{
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if (currentUserCodeTableIndex < codeTables.size())
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@ -29,6 +29,7 @@ class PDFJBIG2Bitmap;
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class PDFRenderErrorReporter;
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class PDFJBIG2HuffmanCodeTable;
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class PDFJBIG2SymbolDictionary;
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class PDFJBIG2PatternDictionary;
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struct PDFJBIG2HuffmanTableEntry;
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struct PDFJBIG2BitmapDecodingParameters;
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@ -271,26 +272,9 @@ public:
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virtual const PDFJBIG2SymbolDictionary* asSymbolDictionary() const { return nullptr; }
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virtual PDFJBIG2SymbolDictionary* asSymbolDictionary() { return nullptr; }
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};
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class PDFJBIG2HuffmanCodeTable : public PDFJBIG2Segment
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{
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public:
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explicit PDFJBIG2HuffmanCodeTable(std::vector<PDFJBIG2HuffmanTableEntry>&& entries);
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virtual ~PDFJBIG2HuffmanCodeTable();
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virtual const PDFJBIG2HuffmanCodeTable* asHuffmanCodeTable() const override { return this; }
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virtual PDFJBIG2HuffmanCodeTable* asHuffmanCodeTable() override { return this; }
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const std::vector<PDFJBIG2HuffmanTableEntry>& getEntries() const { return m_entries; }
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/// Builds prefixes using algorithm in annex B.3 of specification. Unused rows are removed.
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/// Rows are sorted according the criteria. Prefixes are then filled.
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/// \param entries Entries for building the table
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static std::vector<PDFJBIG2HuffmanTableEntry> buildPrefixes(const std::vector<PDFJBIG2HuffmanTableEntry>& entries);
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private:
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std::vector<PDFJBIG2HuffmanTableEntry> m_entries;
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virtual const PDFJBIG2PatternDictionary* asPatternDictionary() const { return nullptr; }
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virtual PDFJBIG2PatternDictionary* asPatternDictionary() { return nullptr; }
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};
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/// Huffman decoder - can decode integers / out of band values from huffman table.
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@ -396,43 +380,20 @@ private:
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std::vector<uint8_t> m_data;
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};
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class PDFJBIG2SymbolDictionary : public PDFJBIG2Segment
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{
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public:
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explicit inline PDFJBIG2SymbolDictionary() = default;
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explicit inline PDFJBIG2SymbolDictionary(std::vector<PDFJBIG2Bitmap>&& bitmaps,
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PDFJBIG2ArithmeticDecoderState&& genericState,
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PDFJBIG2ArithmeticDecoderState&& genericRefinementState) :
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m_bitmaps(qMove(bitmaps)),
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m_genericState(qMove(genericState)),
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m_genericRefinementState(qMove(genericRefinementState))
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{
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}
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virtual const PDFJBIG2SymbolDictionary* asSymbolDictionary() const override { return this; }
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virtual PDFJBIG2SymbolDictionary* asSymbolDictionary() override { return this; }
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const std::vector<PDFJBIG2Bitmap>& getBitmaps() const { return m_bitmaps; }
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const PDFJBIG2ArithmeticDecoderState& getGenericState() const { return m_genericState; }
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const PDFJBIG2ArithmeticDecoderState& getGenericRefinementState() const { return m_genericRefinementState; }
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private:
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std::vector<PDFJBIG2Bitmap> m_bitmaps;
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PDFJBIG2ArithmeticDecoderState m_genericState;
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PDFJBIG2ArithmeticDecoderState m_genericRefinementState;
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};
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struct PDFJBIG2ReferencedSegments
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{
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std::vector<const PDFJBIG2Bitmap*> bitmaps;
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std::vector<const PDFJBIG2HuffmanCodeTable*> codeTables;
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std::vector<const PDFJBIG2SymbolDictionary*> symbolDictionaries;
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std::vector<const PDFJBIG2PatternDictionary*> patternDictionaries;
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size_t currentUserCodeTableIndex = 0;
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/// Returns symbol bitmaps from all symbol dictionaries
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std::vector<const PDFJBIG2Bitmap*> getSymbolBitmaps() const;
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/// Returns pattern bitmaps from all pattern dictionaries
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std::vector<const PDFJBIG2Bitmap*> getPatternBitmaps() const;
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/// Returns current user huffman table according the index. If index
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/// is out of range, then exception is thrown.
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PDFJBIG2HuffmanDecoder getUserTable(PDFBitReader* reader);
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@ -457,72 +418,6 @@ struct PDFJBIG2ATPosition
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using PDFJBIG2ATPositions = std::array<PDFJBIG2ATPosition, 4>;
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/// Info structure for symbol dictionary decoding procedure
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struct PDFJBIG2SymbolDictionaryDecodingParameters
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{
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/// If true, huffman encoding is used to decode dictionary,
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/// otherwise arithmetic decoding is used to decode dictionary.
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bool SDHUFF = false;
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/// If true, each symbol is refinement/aggregate. If false,
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/// then symbols are ordinary bitmaps.
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bool SDREFAGG = false;
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/// Table selector for huffman table encoding (height)
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uint8_t SDHUFFDH = 0;
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/// Table selector for huffman table encoding (width)
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uint8_t SDHUFFDW = 0;
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/// Table selector for huffman table encoding
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uint8_t SDHUFFBMSIZE = 0;
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/// Table selector for huffman table encoding
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uint8_t SDHUFFAGGINST = 0;
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/// Is statistics for arithmetic coding used from previous symbol dictionary?
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bool isArithmeticCodingStateUsed = false;
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/// Is statistics for arithmetic coding symbols retained for future use?
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bool isArithmeticCodingStateRetained = false;
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/// Template for decoding
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uint8_t SDTEMPLATE = 0;
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/// Template for decoding refinements
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uint8_t SDRTEMPLATE = 0;
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/// Adaptative pixel positions
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PDFJBIG2ATPositions SDAT = { };
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/// Adaptative pixel positions
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PDFJBIG2ATPositions SDRAT = { };
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/// Number of exported symbols
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uint32_t SDNUMEXSYMS = 0;
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/// Number of new symbols
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uint32_t SDNUMNEWSYMS = 0;
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PDFJBIG2HuffmanDecoder SDHUFFDH_Decoder;
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PDFJBIG2HuffmanDecoder SDHUFFDW_Decoder;
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PDFJBIG2HuffmanDecoder SDHUFFBMSIZE_Decoder;
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PDFJBIG2HuffmanDecoder SDHUFFAGGINST_Decoder;
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PDFJBIG2HuffmanDecoder EXRUNLENGTH_Decoder;
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/// Input bitmaps
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std::vector<const PDFJBIG2Bitmap*> SDINSYMS;
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/// Number of input bitmaps
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uint32_t SDNUMINSYMS = 0;
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/// Output bitmaps
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std::vector<PDFJBIG2Bitmap> SDNEWSYMS;
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/// Widths
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std::vector<int32_t> SDNEWSYMWIDTHS;
|
||||
};
|
||||
|
||||
/// Decoder of JBIG2 data streams. Decodes the black/white monochrome image.
|
||||
/// Handles also global segments. Decoder decodes data using the specification
|
||||
/// ISO/IEC 14492:2001, T.88.
|
||||
|
|
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Reference in New Issue