WO2011033643A1 - Procédé de codage d'image dynamique et procédé de décodage d'image dynamique - Google Patents

Procédé de codage d'image dynamique et procédé de décodage d'image dynamique Download PDF

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Publication number
WO2011033643A1
WO2011033643A1 PCT/JP2009/066303 JP2009066303W WO2011033643A1 WO 2011033643 A1 WO2011033643 A1 WO 2011033643A1 JP 2009066303 W JP2009066303 W JP 2009066303W WO 2011033643 A1 WO2011033643 A1 WO 2011033643A1
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filter
information
block
unit
decoding
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PCT/JP2009/066303
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English (en)
Japanese (ja)
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豪毅 安田
中條 健
昭行 谷沢
隆志 渡辺
直史 和田
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株式会社 東芝
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Priority to CN2009801611724A priority Critical patent/CN102484713A/zh
Priority to PCT/JP2009/066303 priority patent/WO2011033643A1/fr
Priority to JP2011531717A priority patent/JPWO2011033643A1/ja
Publication of WO2011033643A1 publication Critical patent/WO2011033643A1/fr

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    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04NPICTORIAL COMMUNICATION, e.g. TELEVISION
    • H04N19/00Methods or arrangements for coding, decoding, compressing or decompressing digital video signals
    • H04N19/80Details of filtering operations specially adapted for video compression, e.g. for pixel interpolation
    • H04N19/82Details of filtering operations specially adapted for video compression, e.g. for pixel interpolation involving filtering within a prediction loop
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04NPICTORIAL COMMUNICATION, e.g. TELEVISION
    • H04N19/00Methods or arrangements for coding, decoding, compressing or decompressing digital video signals
    • H04N19/10Methods or arrangements for coding, decoding, compressing or decompressing digital video signals using adaptive coding
    • H04N19/102Methods or arrangements for coding, decoding, compressing or decompressing digital video signals using adaptive coding characterised by the element, parameter or selection affected or controlled by the adaptive coding
    • H04N19/103Selection of coding mode or of prediction mode
    • H04N19/109Selection of coding mode or of prediction mode among a plurality of temporal predictive coding modes
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04NPICTORIAL COMMUNICATION, e.g. TELEVISION
    • H04N19/00Methods or arrangements for coding, decoding, compressing or decompressing digital video signals
    • H04N19/10Methods or arrangements for coding, decoding, compressing or decompressing digital video signals using adaptive coding
    • H04N19/102Methods or arrangements for coding, decoding, compressing or decompressing digital video signals using adaptive coding characterised by the element, parameter or selection affected or controlled by the adaptive coding
    • H04N19/117Filters, e.g. for pre-processing or post-processing
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04NPICTORIAL COMMUNICATION, e.g. TELEVISION
    • H04N19/00Methods or arrangements for coding, decoding, compressing or decompressing digital video signals
    • H04N19/10Methods or arrangements for coding, decoding, compressing or decompressing digital video signals using adaptive coding
    • H04N19/102Methods or arrangements for coding, decoding, compressing or decompressing digital video signals using adaptive coding characterised by the element, parameter or selection affected or controlled by the adaptive coding
    • H04N19/119Adaptive subdivision aspects, e.g. subdivision of a picture into rectangular or non-rectangular coding blocks
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04NPICTORIAL COMMUNICATION, e.g. TELEVISION
    • H04N19/00Methods or arrangements for coding, decoding, compressing or decompressing digital video signals
    • H04N19/10Methods or arrangements for coding, decoding, compressing or decompressing digital video signals using adaptive coding
    • H04N19/169Methods or arrangements for coding, decoding, compressing or decompressing digital video signals using adaptive coding characterised by the coding unit, i.e. the structural portion or semantic portion of the video signal being the object or the subject of the adaptive coding
    • H04N19/17Methods or arrangements for coding, decoding, compressing or decompressing digital video signals using adaptive coding characterised by the coding unit, i.e. the structural portion or semantic portion of the video signal being the object or the subject of the adaptive coding the unit being an image region, e.g. an object
    • H04N19/176Methods or arrangements for coding, decoding, compressing or decompressing digital video signals using adaptive coding characterised by the coding unit, i.e. the structural portion or semantic portion of the video signal being the object or the subject of the adaptive coding the unit being an image region, e.g. an object the region being a block, e.g. a macroblock
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04NPICTORIAL COMMUNICATION, e.g. TELEVISION
    • H04N19/00Methods or arrangements for coding, decoding, compressing or decompressing digital video signals
    • H04N19/46Embedding additional information in the video signal during the compression process
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04NPICTORIAL COMMUNICATION, e.g. TELEVISION
    • H04N19/00Methods or arrangements for coding, decoding, compressing or decompressing digital video signals
    • H04N19/60Methods or arrangements for coding, decoding, compressing or decompressing digital video signals using transform coding
    • H04N19/61Methods or arrangements for coding, decoding, compressing or decompressing digital video signals using transform coding in combination with predictive coding

Definitions

  • the present invention relates to encoding and decoding of moving images.
  • H. is one of the international standards for video coding.
  • H.264 / MPEG-4AVC (hereinafter simply referred to as H.264) was jointly established by ITU-T (International Telecommunication Union Telecommunication Standardization Sector) and ISO / IEC (International Organization for Standardization / International Electrotechnical Commission) .
  • H. H.264 achieves a high compression efficiency of more than twice that of MPEG-2.
  • H.H. H.264 a reference image related to an encoded image or a decoded image is used to generate a predicted image.
  • a loop filter process may be performed on the local decoded image or the decoded image.
  • a deblocking filter as disclosed in Non-Patent Document 1 is used in the loop filter processing.
  • the deblocking filter reduces visually noticeable image quality degradation (so-called block distortion) by blurring the local decoded image or the block boundary of the decoded image.
  • block distortion visually noticeable image quality degradation
  • H.H. H.264 employs a mechanism that adaptively changes the filter strength of the deblocking filter in accordance with conditions such as the prediction mode of the processing target block and the size of the pixel difference value near the block boundary.
  • a plurality of inter-pixel filters are prepared in advance, and for example, a loop filter process is selectively performed for each picture. Then, the information on the selected inter-pixel filter is transmitted to the decoding side, thereby realizing a common loop filter process between encoding / decoding.
  • the filter selection unit is set to be small (for example, set to a pixel block) in order to improve image quality, the overhead code amount of the filter selection information increases. That is, in the image encoding method described in Patent Document 1, if a large number of filters are prepared or the filter selection unit is set small, the encoding efficiency is lowered.
  • an object of the present invention is to provide moving image encoding / moving image decoding capable of encoding parameters relating to loop filter processing with high efficiency.
  • a moving image encoding method is a moving image encoding method for generating a predicted image using a reference image related to an encoded image, wherein a local decoded image of a coding unit is divided into a plurality of blocks.
  • Setting block division information including parameters for dividing, setting filter information including filter coefficients of each filter of the filter group for the coding unit, and the number of filters included in the filter group
  • Setting filter number information indicating, setting filter specifying information for specifying a filter to be applied to each block, applying a filter specified by the filter specifying information for each block, and Generating an image; and the filter number information, the filter information, the block division information, and the filter specifying information.
  • Comprising a to-coding including parameters for dividing, setting filter information including filter coefficients of each filter of the filter group for the coding unit, and the number of filters included in the filter group
  • Setting filter number information indicating, setting filter specifying information for specifying a filter to be applied to each block, applying a filter specified by the filter
  • a moving picture decoding method is a moving picture decoding method for generating a predicted picture using a reference picture related to a decoded picture, wherein a decoded picture of a decoding unit is divided into a plurality of blocks.
  • Decoding block division information including parameters for division, decoding filter number information indicating the number of filters included in the filter group for the decoding unit, and each filter of the filter group Decoding the filter information including the filter coefficients, decoding the filter specifying information for specifying the filter to be applied to each block, and applying the filter specified by the filter specifying information for each block And generating the reference image.
  • FIG. 1 is a block diagram showing a moving image encoding apparatus according to a first embodiment.
  • 3 is a block diagram showing a loop filter processing unit 300.
  • movement of the moving image encoder of FIG. The block diagram which shows the moving image decoding apparatus which concerns on 1st Embodiment.
  • FIG. 5 is a flowchart showing the operation of the video decoding device in FIG. 4.
  • movement of the moving image encoder of FIG. The flowchart which shows operation
  • FIG. 11 is a flowchart showing the operation of the video decoding device in FIG. 10.
  • 11 is a flowchart showing the operation of the video decoding device in FIG. 10.
  • FIG. 5 is a diagram showing an example of filter application of a reference image signal according to the first embodiment.
  • the moving picture coding apparatus includes a moving picture coding unit 1000 and a coding control unit 108.
  • the moving image encoding unit 1000 includes a prediction signal generation unit 101, a subtractor 102, a transform / quantization unit 103, an entropy encoding unit 104, an inverse transform / inverse quantization unit 105, an adder 106, a reference image buffer 107, and a loop.
  • a filter processing unit 300 is included.
  • the prediction signal generation unit 101 performs a predetermined prediction process based on the reference image signal 17 related to the encoded image stored in the reference image buffer 107.
  • the prediction signal generation unit 101 generates a prediction image signal 11 of the input image signal 10 by prediction processing, and inputs the prediction image signal 11 to the subtracter 102 and the adder 106.
  • the prediction process may be an inter prediction method that realizes temporal prediction by using motion prediction and motion compensation, or an intra prediction method that realizes spatial prediction by using surrounding pixel values. It may be.
  • the subtracter 102 subtracts the prediction image signal 11 from the prediction signal generation unit 101 from the input image signal 10 to obtain a prediction error signal 12.
  • the subtractor 102 inputs the prediction error signal 12 to the transform / quantization unit 103.
  • the transform / quantization unit 103 orthogonally transforms the prediction error signal 12 from the subtractor 102 to obtain an orthogonal transform coefficient.
  • the transform / quantization unit 103 of this embodiment uses, for example, DCT (Discrete Cosine Transform) as orthogonal transform.
  • the transform / quantization unit 103 quantizes the orthogonal transform coefficient according to the quantization parameter to obtain a quantized orthogonal transform coefficient (hereinafter simply referred to as a quantized transform coefficient) 13.
  • the quantization parameter is controlled by the encoding control unit 108.
  • the transform / quantization unit 103 inputs the quantized transform coefficient 13 to the entropy coding unit 104 and the inverse transform / inverse quantization unit 105.
  • the entropy encoding unit 104 encodes the quantized transform coefficient 13 from the transform / quantization unit 103, the filter number information 31 from the loop filter processing unit 300, the filter information 32, the block division information 33, and the filter identification information 34. Get as. Further, the entropy encoding unit 104 may acquire a prediction mode, a motion vector, a quantization parameter, and the like as encoding parameters. The entropy encoding unit 104 performs entropy encoding (Huffman encoding or arithmetic encoding) on the multiplexed encoding parameter, generates encoded data 14, and outputs the encoded data 14 to the outside.
  • entropy encoding Huffman encoding or arithmetic encoding
  • the inverse transform / inverse quantization unit 105 inversely quantizes the quantized transform coefficient 13 according to the quantization parameter to restore the orthogonal transform coefficient.
  • the quantization parameter is the same as that of the transform / quantization unit 103.
  • the inverse transform / inverse quantization unit 105 performs inverse orthogonal transform such as IDCT (Inverse DCT) on the orthogonal transform coefficient to restore the prediction error signal 12.
  • IDCT Inverse DCT
  • the inverse orthogonal transform corresponds to the orthogonal transform performed in the transform / quantization unit 103.
  • the inverse transform / inverse quantization unit 105 inputs the restored prediction error signal 12 as the prediction error signal 15 to the adder 106.
  • the adder 106 adds the prediction error signal 15 from the inverse transform / inverse quantization unit 105 and the prediction image signal 11 from the prediction signal generation unit 101 to restore the input image signal 10.
  • the adder 106 inputs the restored input image signal 10 as the local decoded image signal 16 to the loop filter processing unit 300.
  • the reference image buffer 107 temporarily stores the reference image signal 17 from the loop filter processing unit 300.
  • the reference image signal 17 is appropriately read by the prediction signal generation unit 101.
  • the encoding control unit 108 performs overall control of each component of the moving image encoding unit 1000. For example, the encoding control unit 108 instructs the loop filter processing unit 300 with the filter number information 31, the filter information 32, the block division information 33, and the filter specifying information 34. Also, the encoding control unit 108 performs feedback control of generated code amount, quantization control, mode control, and the like.
  • the loop filter processing unit 300 includes a block dividing unit 301, a filter switching unit 302, a filter processing unit 303, and a block integration unit 304.
  • the loop filter processing unit 300 performs a loop filter process on the local decoded image signal 16 in a coding unit (for example, a frame, a slice, etc.) to obtain a reference image signal 17. More specifically, the loop filter processing unit 300 performs loop filter processing according to the filter number information 31, the filter information 32, the block division information 33, and the filter identification information 34 from the encoding control unit 108.
  • the number-of-filters information 31, the filter information 32, the block division information 33, and the filter specifying information 34 from the encoding control unit 108 are also input to the entropy encoding unit 104.
  • the loop filter processing unit 300 may process an image signal obtained by performing a deblocking filter process on the local decoded image signal 16 in a coding unit.
  • the block division unit 301 divides the local decoded image signal 16 into a plurality of local decoded pixel blocks 35 having a predetermined size according to the block division information 33.
  • the block division information 33 is set for each coding unit.
  • the block division information 33 indicates a division parameter for dividing the local decoded image signal 16 of a coding unit into a plurality of local decoded pixel blocks 35 having a predetermined size.
  • the division parameter is a parameter indicating the predetermined size or the division mode, for example.
  • the block dividing unit 301 inputs the locally decoded pixel block 35 to the filter switching unit 302.
  • the filter switching unit 302 switches the filter for the local decoded pixel block 35 in accordance with the filter specifying information 34.
  • the filter specifying information 34 is set for each local decoded pixel block 35.
  • the filter specifying information 34 specifies a filter selected for the local decoded pixel block 35.
  • the filter switching unit 302 includes a switch SW that switches the output destination of the local decoded pixel block 35 among terminals s1,..., Sn (n is a natural number).
  • the filter processing unit 303 prepares a filter group for each coding unit based on the filter number information 31 and the filter information 32.
  • the filter group includes at least one filter.
  • the filter number information 31 indicates the number of filters included in the filter group.
  • the filter information 32 indicates the filter coefficient of each filter.
  • the filter number information 31 and the filter information 32 are set for each coding unit. That is, the filter processing unit 303 prepares n filters F1,... Fn based on the filter information 32 for each encoding unit. As shown in FIG. 2 (path including the terminal sn), the filter processing unit 303 may prepare an unprocessed (bypass) filter.
  • the filter processing unit 303 applies the filter selected by the filter switching unit 302 to the local decoded pixel block 35 to generate a filtered pixel block 36.
  • the filter prepared by the filter processing unit 303 is an image restoration filter (for example, a two-dimensional Wiener filter), and the filtered pixel block 36 is simply referred to as a restoration pixel block 36.
  • the filter processing unit 303 inputs the restored pixel block 36 to the block integration unit 304.
  • the block integration unit 304 integrates the restored pixel block 36 from the filter processing unit 303 and obtains a reference image signal 17 of a coding unit.
  • the block integration unit 304 inputs the reference image signal 17 of the coding unit to the reference image buffer 107.
  • the encoding control unit 109 sets the filter number information 31, the filter information 32, the block division information 33, and the filter specifying information 34 (step S1100).
  • the filter number information 31, the filter information 32, the block division information 33, and the filter specifying information 34 may be set manually by the user or automatically according to a predetermined algorithm.
  • the filter number information 31 indicates the number n of filters prepared in each coding unit, and an integer value of 1 or more is set.
  • the filter specifying information 34 is selection information regarding n filters. For example, in order to select the filters F1,..., Fn, integer values of 1,.
  • the filter information 32 includes filter coefficients of the filters F1,.
  • the filters F1,... Fn may be two-dimensional Wiener filters. Wiener filter is generally used in image restoration. A filter coefficient for minimizing the mean square error between the reference image signal 17 and the input image signal 10 is set in Wiener filter. By using the Wiener filter, it is possible to effectively improve the image quality while reducing the number of selection candidates, compared to the case where a large number of fixed filters are prepared as selection candidates between the encoding side and the decoding side. . By reducing the number of selection candidates, the overhead code amount of the filter specifying information 34 is suppressed.
  • Filter parameters other than filter coefficients may be defined in advance between the encoding side and the decoding side. However, it may be included in the filter information 32.
  • the filter parameter may be directly expressed by a parameter value or may be expressed by an index.
  • the filter parameter is expressed by an index, a common table in which the index is associated with the parameter value needs to be created in advance between the encoding side and the decoding side.
  • the encoding side can control the image quality improvement performance, the code amount of the filter information 32, the calculation amount of the filter processing, and the like. Also, it is possible to improve the coding efficiency by appropriately controlling the filter parameters in units of sequences, frames, and the like.
  • the block division information 33 indicates a division parameter for dividing the local decoded image signal 16 of a coding unit into a plurality of local decoded pixel blocks 35 having a predetermined size. For example, if the local decoded pixel block 35 is square, the block division information 33 may be the number of pixels on one side of the local decoded pixel block 35. Further, the block division information 33 may be an index indicating the shape, size, division mode, and the like of the locally decoded pixel block 35. When the block division information 33 is expressed by an index, a common table in which the index is associated with the shape, size, division mode, and the like of the local decoded pixel block 35 is created in advance between the encoding side and the decoding side. It is necessary to keep.
  • the loop filter processing unit 300 acquires the filter number information 31 and the filter information 32 set in step S1100 (step S1101).
  • the filter processing unit 303 sets n filters F1,..., Fn based on the filter number information 31 and the filter information 32 acquired in step S1101 (step S1102).
  • the loop filter processing unit 300 acquires the block division information 33 set in step S1100 (step S1103).
  • the block division unit 301 divides the local decoded image signal 16 of the coding unit into a plurality of local decoded pixel blocks 35 according to the block division information 33 acquired in step S1103 (step S1104).
  • the loop filter processing unit 300 initializes a counter variable i for counting the processed local decoded pixel block 35 (step S1105), and the process proceeds to step S1106. Note that the processing of step S1106 to step S1109 is performed in units of local decoded pixel blocks 35.
  • step S1106 the filter switching unit 302 acquires the filter specifying information 34 corresponding to the (i-th) local decoded pixel block 35 to be processed.
  • the filter switching unit 302 switches the connection of the switch SW so that the local decoded pixel block 35 to be processed is supplied to one of the filters F1,..., Fn according to the filter specifying information 34 acquired in step S1106 ( Step S1107).
  • the filter processing unit 303 acquires the local decoded pixel block 35 to be processed from the filter switching unit 302 (step S1108).
  • the filter processing unit 303 applies one of the filters F1,..., Fn to the local decoded pixel block 35 acquired in step S1108 according to the connection of the switch SW in step S1107, and generates the restored pixel block 36 ( In step S1109), the process proceeds to step S1110.
  • step S1110 the loop filter processing unit 300 compares the constant NumOfBlock indicating the total number of locally decoded pixel blocks 35 in the coding unit with the value of the counter variable i. If the value of counter variable i is less than the constant NumOfBlock, the process proceeds to step S1111; otherwise, the process proceeds to step S1112. In step S1111, the loop filter processing unit 300 increments the counter variable i by 1, and the process returns to step S1106.
  • the entropy encoding unit 104 entropy encodes the encoding parameters including the filter number information 31, the filter information 32, the block division information 33, and the filter specifying information 34 set in step S1100 (step S1113), and the process ends.
  • the filter number information 31, the filter information 32, and the block division information 33 are set in units of slices, and the filter specifying information 34 is set in units of pixel blocks.
  • High-level syntax 1900 describes parameters of higher layers above the slice.
  • the slice level syntax 1903 describes parameters for each slice.
  • the macro block level syntax 1907 describes parameters (quantized transform coefficient 13, prediction mode, motion vector, etc.) for each macro block.
  • the high level syntax 1900 includes a sequence parameter set syntax 1901 and a picture parameter set syntax 1902.
  • the sequence parameter set syntax 1901 describes parameters for each sequence.
  • the picture parameter set syntax 1902 describes parameters for each picture.
  • the slice level syntax 1903 includes a slice header syntax 1904, a slice data syntax 1905, and a loop filter data syntax 1906.
  • the macroblock level syntax 1907 includes a macroblock layer syntax 1908 and a macroblock prediction syntax 1909.
  • loop filter data syntax 1907 Parameters relating to loop filter processing according to the present embodiment are described in the loop filter data syntax 1907 in FIG. That is, in the loop filter data syntax 1907, as shown in FIG. 16, filter number information 31, filter information 32, block division information 33, and filter specifying information 34 are described.
  • num_of_filter represents the filter number information 31.
  • filter_coeff [idx] [cy] [cx] is a filter coefficient (that is, at least a part of the filter information 32) at the position of the cy-th row and the cx-th column of the idx-th filter in the filter group.
  • the filter coefficient represents the filter coefficient value itself or difference information as a result of the prediction of the filter coefficient.
  • the filter sizes filter_size_x and filter_size_y are predetermined between the encoding side and the decoding side, but may be set by the filter parameter included in the filter information 32. Good.
  • filter_block_size represents block division information 33.
  • filter_idx [i] represents the filter specifying information 34 corresponding to the i-th pixel block.
  • the filter_idx [i] is encoded by commonly used Huffman encoding, arithmetic encoding, or the like.
  • filter_idx [i] may be encoded according to a predetermined variable length table. Note that the variable length table may be switched at a predetermined timing so that a short code is assigned to filter_idx having a high appearance frequency.
  • filter parameters other than the filter coefficient may be further described in the syntax of FIG. Good.
  • the moving picture decoding apparatus includes a moving picture decoding unit 2000 and a decoding control unit 206.
  • the moving picture decoding unit 2000 includes an entropy decoding unit 201, an inverse transform / inverse quantization unit 202, an adder 203, a reference image buffer 204, a prediction signal generation unit 205, and a loop filter processing unit 400.
  • the entropy decoding unit 201 performs entropy decoding on the code string of the encoded data 14 according to the syntax structure of FIG. From the decoded code string, the entropy decoding unit 201 performs quantization transform coefficient 13, filter number information 31, filter information 32, block division information 33, filter identification information 34, prediction mode, motion vector, quantization parameter, and the like. Are demultiplexed. Specifically, the entropy decoding unit 201 decodes the filter number information 31, the filter information 32, the block division information 33, and the filter specifying information 34 according to the syntax of FIG. The entropy decoding unit 201 inputs the filter number information 31, the filter information 32, the block division information 33, and the filter specifying information 34 to the loop filter processing unit 400.
  • the inverse transform / inverse quantization unit 202 dequantizes the quantized transform coefficient 13 from the entropy decoding unit 201 according to the quantization parameter, and restores the orthogonal transform coefficient.
  • the quantization parameter is decoded by the entropy decoding unit 201.
  • the inverse transform / inverse quantization unit 202 performs inverse orthogonal transform on the orthogonal transform coefficient to obtain the prediction error signal 15.
  • the inverse transform / inverse quantization unit 202 inputs the prediction error signal 15 to the adder 203.
  • the adder 203 adds the prediction image signal 11 from the prediction signal generation unit 205 and the prediction error signal 15 from the inverse transform / inverse quantization unit 202 to generate a decoded image signal 21.
  • the reference image buffer 204 temporarily stores the reference image signal 17 from the loop filter processing unit 400. The reference image signal 17 is appropriately read out by the prediction signal generation unit 205.
  • the prediction signal generation unit 205 performs prediction processing (intra prediction processing, inter prediction processing, etc.) according to a prediction mode, a motion vector, and the like based on the reference image signal 17 related to the decoded image stored in the reference image buffer 204. To generate the predicted image signal 11.
  • the prediction mode and the motion vector are decoded by the entropy decoding unit 201.
  • the predicted signal generation unit 205 inputs the predicted image signal 11 to the adder 203.
  • the decoding control unit 206 performs overall control of each component of the moving image decoding unit 2000. For example, the decoding control unit 206 controls the decoding timing.
  • the loop filter processing unit 400 includes a block dividing unit 401, a filter switching unit 402, a filter processing unit 403, and a block integration unit 404.
  • the loop filter processing unit 400 performs a loop filter process on the decoded image signal 21 of a decoding unit (for example, a frame, a slice, etc.) to obtain a reference image signal 17. More specifically, the loop filter processing unit 400 performs loop filter processing according to the filter number information 31, the filter information 32, the block division information 33, and the filter specifying information 34 from the entropy decoding unit 201.
  • the loop filter processing unit 400 may process an image signal obtained by performing a deblocking filter process on the decoded image signal 21 of a decoding unit.
  • the block division unit 401 divides the decoded image signal 21 into a plurality of decoded pixel blocks 41 having a predetermined size according to the block division information 33.
  • the block division information 33 is set for each decoding unit.
  • the block division information 33 indicates a division parameter (for example, the predetermined size, the division mode, etc.) for dividing the decoded image signal 21 of a decoding unit into a plurality of decoded pixel blocks 41 having a predetermined size.
  • the block division unit 401 inputs the decoded pixel block 41 to the filter switching unit 402.
  • the filter switching unit 402 switches the filter for the decoded pixel block 41 in accordance with the filter specifying information 34.
  • the filter specifying information 34 is set for each decoded pixel block 41.
  • the filter specifying information 34 specifies a filter selected for the decoded pixel block 41.
  • the filter switching unit 402 includes a switch SW that switches the output destination of the decoded pixel block 41 between the terminals s1, ..., sn.
  • the filter processing unit 403 prepares a filter group for each decoding unit based on the filter number information 31 and the filter information 32.
  • the filter group includes at least one filter.
  • the filter number information 31 indicates the number of filters included in the filter group.
  • the filter information 32 indicates the filter coefficient of each filter.
  • the filter number information 31 and the filter information 32 are set for each decoding unit. That is, the filter processing unit 403 prepares n filters F1,... Fn based on the filter information 32 for each decoding unit. As shown in FIG. 5 (path including the terminal sn), the filter processing unit 403 may prepare an unprocessed (bypass) filter.
  • the filter processing unit 403 applies the filter selected by the filter switching unit 402 to the decoded pixel block 41 to generate the restored pixel block 36.
  • the filter processing unit 403 inputs the restored pixel block 36 to the block integration unit 404.
  • the block integration unit 404 integrates the restored pixel block 36 from the filter processing unit 403 and obtains a reference image signal 17 of a decoding unit.
  • the block integration unit 404 inputs the reference image signal 17 of the decoding unit to the reference image buffer 204.
  • the entropy decoding unit 201 decodes the filter number information 31, the filter information 32, the block division information 33, and the filter specifying information 34 (step S2100).
  • the loop filter processing unit 400 acquires the filter number information 31 and the filter information 32 set in step S2100 (step S2101).
  • the filter processing unit 403 sets n filters F1,..., Fn based on the filter number information 31 and the filter information 32 acquired in step S2101 (step S2102).
  • the loop filter processing unit 400 acquires the block division information 33 set in step S2100 (step S2103).
  • the block division unit 401 divides the decoded image signal 21 of the decoding unit into a plurality of decoded pixel blocks 41 according to the block division information 33 acquired in step S2103 (step S2104).
  • the loop filter processing unit 400 initializes a counter variable i for counting the processed decoded pixel block 41 (step S2105), and the process proceeds to step S2106. Note that the processing from step S2106 to step S2109 is performed for each decoded pixel block 41.
  • step S2106 the filter switching unit 402 acquires the filter specifying information 34 corresponding to the (i-th) decoded pixel block 41 to be processed.
  • the filter switching unit 402 switches the connection of the switch SW so that the decoding pixel block 41 to be processed is supplied to one of the filters F1,..., Fn according to the filter specifying information 34 acquired in Step S2106 (Step S2106). S2107).
  • the filter processing unit 403 acquires the decoded pixel block 41 to be processed from the filter switching unit 402 (step S2108).
  • the filter processing unit 403 applies one of the filters F1,..., Fn to the decoded pixel block 41 acquired in step S2108 according to the connection of the switch SW in step S2107, and generates the restored pixel block 36 (step S2109). ), The process proceeds to step S2110.
  • step S2110 the loop filter processing unit 400 compares the constant NumOfBlock indicating the total number of decoded pixel blocks 41 in the decoding unit with the value of the counter variable i. If the value of counter variable i is less than the constant NumOfBlock, the process proceeds to step S2111; otherwise, the process proceeds to step S2112. In step S2111, the loop filter processing unit 400 increments the counter variable i by 1, and the process returns to step S2106.
  • the number of filters prepared in the encoding / decoding unit, the filter selection unit, and the like are arbitrarily set on the encoding side. Yes. Therefore, according to the moving image encoding / moving image decoding according to the present embodiment, the overhead code amount related to the loop filter processing is controlled according to the required bit rate and the like, and the parameters related to the loop filter processing are encoded with high efficiency.
  • the code amount of the filter information 32 can be controlled by increasing or decreasing the number of filters indicated by the filter number information 31.
  • the code amount of the filter specifying information 34 can be controlled by changing the division parameter indicated by the block division information 33.
  • the moving picture coding apparatus according to the second embodiment of the present invention corresponds to a configuration in which the loop filter processing unit 300 in the moving picture coding apparatus of FIG. To do.
  • the same parts as those in the first embodiment are denoted by the same reference numerals, and different parts will be mainly described.
  • the entropy encoding unit 104 includes the quantized transform coefficient 13 from the transform / quantization unit 103, the filter number information 31, the filter information 32, the block division information 33, the filter specifying information 34, and the filter application information from the loop filter processing unit 300. 51 is acquired as an encoding parameter. Further, the entropy encoding unit 104 may acquire a prediction mode, a motion vector, a quantization parameter, and the like as encoding parameters. The entropy encoding unit 104 performs entropy encoding on the multiplexed encoding parameter, generates encoded data 14 and outputs the encoded data 14 to the outside.
  • the loop filter processing unit 500 includes a block dividing unit 301, a filter switching unit 302, a filter application switching unit 510, a filter processing unit 503, and a block integration unit 304.
  • the loop filter processing unit 500 performs a loop filter process on the local decoded image signal 16 in a coding unit (for example, a frame, a slice, etc.) to obtain a reference image signal 17. More specifically, the loop filter processing unit 500 performs loop filter processing according to the filter number information 31, the filter information 32, the block division information 33, the filter specifying information 34, and the filter application information 51 from the encoding control unit 108. .
  • the filter number information 31, the filter information 32, the block division information 33, the filter identification information 34, and the filter application information 51 from the encoding control unit 108 are also input to the entropy encoding unit 104.
  • the loop filter processing unit 500 may process an image signal obtained by performing a deblocking filter process on the local decoded image signal 16 in a coding unit.
  • the filter application switching unit 510 switches application / non-application of the filter for each sub-block obtained by further dividing the local decoded pixel block 35 (hereinafter also referred to as a main block for convenience) according to the filter application information 51.
  • the filter application information 51 is set for each sub-block.
  • the filter application information 51 specifies application / non-application of the filter selected for the main block according to the filter specifying information 34 for each sub-block.
  • the filter application switching unit 510 is a total of the switches SWn for switching the output destination of each sub-block between the terminal t1 and the terminal u1, and the switch SWn for switching between the terminal tn and the terminal un. Includes n switches.
  • the division parameter for dividing the main block into sub-blocks may be controlled by the block division information 33 or other information, or may be determined in advance on the encoding side and decoding side.
  • the division parameter may be a sub-block size or a division mode (such as quadtree division).
  • the filter processing unit 503 prepares a filter group including the number of filters specified by the filter number information 31 based on the filter information 32, similarly to the filter processing unit 303. That is, the filter processing unit 503 prepares n filters F1,... Fn based on the filter information 32 for each encoding unit. Each filter F1,..., Fn is connected to a terminal t1,. In addition, an unprocessed (bypass) path is connected to the terminals u1,..., Un corresponding to the non-application of the filters F1,. The filter processing unit 503 processes the filters F1,..., Fn on the sub-blocks input from the terminals t1,. The filter processing unit 503 outputs the sub-blocks input from the terminals u1,.
  • the encoding control unit 109 sets the filter number information 31, the filter information 32, the block division information 33, the filter specifying information 34, and the filter application information 51 (step S3100).
  • the filter number information 31, the filter information 32, the block division information 33, the filter specifying information 34, and the filter application information 51 may be set manually by the user or automatically according to a predetermined algorithm.
  • the filter application information 51 is a parameter that specifies application / non-application of the filter selected for the main block in accordance with the filter identification information 34 in units of sub-blocks.
  • the value of the filter application information 51 is, for example, 1 when indicating application of a filter, and 0 when indicating non-application of a filter.
  • the loop filter processing unit 500 acquires the filter number information 31 and the filter information 32 set in step S3100 (step S3101).
  • the filter processing unit 503 sets n filters F1,..., Fn based on the filter number information 31 and the filter information 32 acquired in step S3101 (step S3102).
  • the loop filter processing unit 500 acquires the block division information 33 set in step S3100 (step S3103).
  • the block division unit 301 divides the local decoded image signal 16 of the coding unit into a plurality of local decoded pixel blocks 35 according to the block division information 33 acquired in step S3103 (step S3104).
  • the loop filter processing unit 500 initializes a counter variable i for counting the processed local decoded pixel block 35 (main block) (step S3105), and the process proceeds to step S3106. Note that the processing in steps S3106 to S3108 is performed in units of main blocks.
  • step S3106 the filter switching unit 302 acquires the filter specifying information 34 corresponding to the (i-th) local decoded pixel block 35 to be processed.
  • the filter switching unit 302 switches the connection of the switch SW so that the processing target local decoded pixel block 35 is supplied to the switch SWx (x is an integer of 1 to n) according to the filter specifying information 34 acquired in step S3106.
  • Step S3107 The loop filter processing unit 500 initializes a counter variable j for counting processed sub-blocks (step S3108), and the process proceeds to step S3109. Note that the processing from step S3109 to step S3114 is performed in units of sub-blocks.
  • step S3109 the loop filter processing unit 500 acquires filter application information 51 corresponding to the j-th sub-block in the i-th main block.
  • the filter application switching unit 510 switches the connection of the switch SWx between the terminal tx and the terminal ux according to the filter application information 51 acquired in step S3109 (step S3110).
  • the filter processing unit 503 acquires a sub-block from the terminal tx or the terminal ut (step S3111). If a sub-block is acquired from terminal tx in step S3111, the process proceeds to step S3113, and if it is acquired from terminal ux, the process proceeds to step S3114.
  • step S3113 the filter processing unit 503 applies the filter Fx to the subblock acquired in step S3111 to output the subblock, and the process proceeds to step S3115.
  • step S3114 the filter processing unit 503 outputs the sub block as it is without applying the filter Fx to the sub block acquired in step S3111, and the process proceeds to step S3115.
  • step S3115 the loop filter processing unit 500 compares the constant NumOfSubBlock indicating the total number of sub blocks in the main block with the value of the counter variable j. If the value of counter variable j is less than the constant NumOfSubBlock, the process proceeds to step S3116; otherwise, the process proceeds to step S3117. In step S3116, the loop filter processing unit 500 increments the counter variable j by 1, and the process returns to step S3109.
  • step S3117 the loop filter processing unit 500 compares the constant NumOfBlock indicating the total number of locally decoded pixel blocks 35 in the coding unit with the value of the counter variable i. If the value of counter variable i is less than the constant NumOfBlock, the process proceeds to step S3118; otherwise, the process proceeds to step S3119. In step S3118, the loop filter processing unit 500 increments the counter variable i by 1, and the process returns to step S3106.
  • the entropy encoding unit 104 entropy-encodes the encoding parameters including the filter number information 31, the filter information 32, the block division information 33, the filter specifying information 34, and the filter application information 51 set in step S3100 (step S3120). Ends.
  • the filter number information 31, the filter information 32, and the block division information 33 are set in units of slices, the filter specifying information 34 is set in units of main blocks, and the filter application information 51 is set in units of sub blocks.
  • loop filter data syntax 1907 Parameters relating to loop filter processing according to the present embodiment are described in the loop filter data syntax 1907 in FIG. That is, in the loop filter data syntax 1907, as shown in FIG. 17, filter number information 31, filter information 32, block division information 33, filter specifying information 34, and filter application information 51 are described.
  • num_of_filter represents the filter number information 31.
  • filter_coeff [idx] [cy] [cx] is a filter coefficient (that is, at least a part of the filter information 32) at the position of the cy-th row and the cx-th column of the idx-th filter in the filter group.
  • the filter coefficient represents the filter coefficient value itself or difference information as a result of the prediction of the filter coefficient.
  • the filter sizes filter_size_x and filter_size_y are predetermined between the encoding side and the decoding side, but may be set by filter parameters included in the filter information 32. .
  • filter_main_block_size and filter_sub_block_size [i] represent block division information 33.
  • filter_main_block_size represents a division parameter (size of the main block) for dividing the locally decoded image signal 16 of the coding unit into a plurality of main blocks
  • fitler_sub_block_size [i] represents a plurality of i-th main blocks.
  • the block division information 33 may be expressed differently.
  • the block division information 33 may be expressed by an index indicating the size or division mode of the main block or sub block.
  • filter_idx [i] represents the filter specifying information 34 corresponding to the i-th main block.
  • the filter_idx [i] is encoded by commonly used Huffman encoding, arithmetic encoding, or the like.
  • filter_idx [i] may be encoded according to a predetermined variable length table. Note that the variable length table may be switched at a predetermined timing so that a short code is assigned to filter_idx having a high appearance frequency.
  • filter_flag [i] [j] represents filter application information 51 corresponding to the jth sub-block in the i-th main block.
  • the moving picture decoding apparatus corresponds to a configuration in which the loop filter processing unit 400 in the moving picture decoding apparatus of FIG.
  • the same parts as those in the first embodiment are denoted by the same reference numerals, and different parts will be mainly described.
  • the entropy decoding unit 201 performs entropy decoding on the code string of the encoded data 14 according to the syntax structure of FIG.
  • the entropy decoding unit 201 generates a quantized transform coefficient 13, filter number information 31, filter information 32, block division information 33, filter identification information 34, filter application information 51, prediction mode, and motion vector from the decoded code string.
  • Demultiplexing decoding parameters such as quantization parameters.
  • the entropy decoding unit 201 decodes the filter number information 31, the filter information 32, the block division information 33, the filter specifying information 34, and the filter application information 51 according to the syntax of FIG.
  • the entropy decoding unit 201 inputs the filter number information 31, the filter information 32, the block division information 33, the filter specifying information 34, and the filter application information 51 to the loop filter processing unit 600.
  • the loop filter processing unit 600 includes a block dividing unit 401, a filter switching unit 402, a filter application switching unit 610, a filter processing unit 603, and a block integration unit 404.
  • the loop filter processing unit 600 performs a loop filter process on the decoded image signal 21 in a decoding unit (for example, a frame, a slice, etc.) to obtain a reference image signal 17. More specifically, the loop filter processing unit 600 performs loop filter processing according to the filter number information 31, the filter information 32, the block division information 33, the filter specifying information 34, and the filter application information 51 from the entropy decoding unit 201. .
  • the loop filter processing unit 600 may process an image signal obtained by performing a deblocking filter process on the decoded image signal 21 of a decoding unit.
  • the filter application switching unit 610 switches application / non-application of the filter for each sub-block obtained by further dividing the decoded pixel block 41 (hereinafter also referred to as a main block for convenience) according to the filter application information 51.
  • the filter application information 51 is set for each sub-block.
  • the filter application information 51 specifies application / non-application of the filter selected for the main block according to the filter specifying information 34 for each sub-block.
  • the filter application switching unit 610 is a total of the switches SWn that switch the output destination of each sub-block between the terminal t1 and the terminal u1, and the switch SWn that switches between the terminal tn and the terminal un. Includes n switches.
  • the division parameter for dividing the main block into sub-blocks may be controlled by the block division information 33 or other information, or may be determined in advance on the encoding side and decoding side.
  • the division parameter may be a sub-block size or a division mode (such as quadtree division).
  • the filter processing unit 603 prepares a filter group including the number of filters specified by the filter number information 31 based on the filter information 32, similarly to the filter processing unit 403. That is, the filter processing unit 603 prepares n filters F1,... Fn based on the filter information 32 for each decoding unit. Each filter F1,..., Fn is connected to a terminal t1,. In addition, an unprocessed (bypass) path is connected to the terminals u1,..., Un corresponding to the non-application of the filters F1,. The filter processing unit 603 processes the filters F1,..., Fn on the sub-blocks input from the terminals t1,. The filter processing unit 603 outputs the sub-blocks input from the terminals u1,.
  • the entropy decoding unit 201 decodes the filter number information 31, the filter information 32, the block division information 33, the filter specifying information 34, and the filter application information 51 (step S4100).
  • the loop filter processing unit 600 acquires the filter number information 31 and the filter information 32 set in step S4100 (step S4101).
  • the filter processing unit 603 sets n filters F1,..., Fn based on the filter number information 31 and the filter information 32 acquired in step S4101 (step S4102).
  • the loop filter processing unit 600 acquires the block division information 33 set in step S4100 (step S4103).
  • the block division unit 401 divides the decoded image signal 21 of the decoding unit into a plurality of decoded pixel blocks 41 according to the block division information 33 acquired in step S4103 (step S4104).
  • the loop filter processing unit 600 initializes a counter variable i for counting the processed decoded pixel block 41 (main block) (step S4105), and the process proceeds to step S4106. Note that the processing in steps S4106 to S4108 is performed in units of main blocks.
  • step S4106 the filter switching unit 402 acquires the filter specifying information 34 corresponding to the processing target (i-th) decoded pixel block 41.
  • the filter switching unit 402 switches the connection of the switch SW so that the decoding pixel block 41 to be processed is supplied to the switch SWx according to the filter specifying information 34 acquired in step S4106 (step S4107).
  • the loop filter processing unit 600 initializes a counter variable j for counting processed sub-blocks (step S4108), and the process proceeds to step S4109. Note that the processing in steps S4109 to S4114 is performed in units of sub-blocks.
  • step S4109 the loop filter processing unit 600 acquires filter application information 51 corresponding to the j-th sub-block in the i-th main block.
  • the filter application switching unit 610 switches the connection of the switch SWx between the terminal tx and the terminal ux according to the filter application information 51 acquired in step S4109 (step S4110).
  • the filter processing unit 603 acquires a sub-block from the terminal tx or the terminal ut (step S4111). If a sub-block is acquired from terminal tx in step S4111, the process proceeds to step S4113, and if it is acquired from terminal ux, the process proceeds to step S4114.
  • step S4113 the filter processing unit 603 applies the filter Fx to the subblock acquired in step S4111, and outputs the subblock, and the process proceeds to step S4115.
  • step S4114 the filter processing unit 603 outputs the sub block as it is without applying the filter Fx to the sub block acquired in step S4111, and the process proceeds to step S4115.
  • step S4115 the loop filter processing unit 600 compares the constant NumOfSubBlock indicating the total number of sub blocks in the main block with the value of the counter variable j. If the value of counter variable j is less than the constant NumOfSubBlock, the process proceeds to step S4116; otherwise, the process proceeds to step S4117. In step S4116, the loop filter processing unit 600 increments the counter variable j by 1, and the process returns to step S4109.
  • step S4117 the loop filter processing unit 600 compares the constant NumOfBlock indicating the total number of decoded pixel blocks 41 in the decoding unit with the value of the counter variable i. If the value of counter variable i is less than constant NumOfBlock, the process proceeds to step S4118; otherwise, the process proceeds to step S4119. In step S4118, the loop filter processing unit 600 increments the counter variable i by 1, and the process returns to step S4106.
  • step S4119 the block integration unit 404 integrates the restored pixel block 36 (main block), which is a set of sub-blocks processed by the filter processing unit 603, to generate the reference image signal 17 in decoding units, and the processing ends.
  • main block which is a set of sub-blocks processed by the filter processing unit 603, to generate the reference image signal 17 in decoding units, and the processing ends.
  • n 3 as shown in FIG. 14, any one of the filters F1,..., F3 is selected as the main block in the reference image signal 17, and the selected filter is the main block.
  • Application / non-application is determined for each sub-block.
  • the moving image encoding / moving image decoding according to the present embodiment uses filter application information that specifies application / non-application of a filter in units of sub-blocks obtained by further dividing the main block. Therefore, according to the moving image coding / moving image decoding according to the present embodiment, the loop filter processing can be executed locally within the main block, so that the decoding side can efficiently reduce the amount of calculation of the loop filter processing. Image quality can be improved. Moreover, the moving image encoding / moving image decoding according to the present embodiment also has the same effects as those of the first embodiment described above.
  • the present invention is not limited to the above-described embodiments as they are, and can be embodied by modifying the constituent elements without departing from the scope of the invention in the implementation stage.
  • Various inventions can be formed by appropriately combining a plurality of constituent elements disclosed in the above embodiments. Further, for example, a configuration in which some components are deleted from all the components shown in each embodiment is also conceivable. Furthermore, you may combine suitably the component described in different embodiment.
  • the moving image encoding device / moving image decoding device may be realized using a general-purpose computer as basic hardware. That is, the prediction signal generation unit 101, the subtractor 102, the transform / quantization unit 103, the entropy encoding unit 104, the inverse transform / inverse quantization unit 105, the adder 106, the encoding control unit 108, the entropy decoding unit 201, The inverse transform / inverse quantization unit 202, the adder 203, the prediction signal generation unit 205, the decoding control unit 206, and the loop filter processing units 300, 400, 500, and 600 execute predetermined programs on a processor mounted on the computer. This can be realized.
  • the reference image buffers 107 and 204 can be realized by appropriately using a storage medium such as a memory, a hard disk, a CD-R, a CD-RW, a DVD-RAM, or a DVD-R built in or external to the computer.
  • a storage medium such as a memory, a hard disk, a CD-R, a CD-RW, a DVD-RAM, or a DVD-R built in or external to the computer.
  • the predetermined program can be provided by being stored in a computer-readable storage medium, for example.
  • Storage media that can store programs and can be read by computers, such as magnetic disks, optical disks (CD-ROM, CD-R, DVD, etc.), magneto-optical disks (MO, etc.), semiconductor memories, etc.
  • the storage format may be any form.
  • a predetermined program may be stored on a computer (server) connected to a network such as the Internet and downloaded to the computer (client) via the network.

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Abstract

L'invention porte sur un procédé de codage d'image dynamique qui comprend : une étape S1100 de réglage d'informations de division en blocs contenant un paramètre pour diviser une image de décodage local de l'unité de codage en une pluralité de blocs, d'informations de filtre contenant un coefficient de filtre pour chaque filtre d'un groupe de filtres pour l'unité de codage, d'informations de quantité de filtres indiquant le nombre de filtres contenus dans le groupe de filtres, et d'informations d'identification de filtre pour identifier un filtre devant être appliqué pour chaque bloc ; des étapes S1109 et S1112 d'application du filtre identifié pour chaque bloc par les informations d'identification de filtre à chaque filtre de façon à générer une image de référence ; et une étape S1113 de codage des informations de quantité de filtres, des informations de filtre, des informations de division en blocs et des informations d'identification de filtre.
PCT/JP2009/066303 2009-09-17 2009-09-17 Procédé de codage d'image dynamique et procédé de décodage d'image dynamique WO2011033643A1 (fr)

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